1 /*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 *
21 * $FreeBSD$
22 */
23
24 /*
25 * Copyright (c) 2003, 2010, Oracle and/or its affiliates. All rights reserved.
26 * Copyright (c) 2016, Joyent, Inc. All rights reserved.
27 * Copyright (c) 2012, 2014 by Delphix. All rights reserved.
28 */
29
30 /*
31 * DTrace - Dynamic Tracing for Solaris
32 *
33 * This is the implementation of the Solaris Dynamic Tracing framework
34 * (DTrace). The user-visible interface to DTrace is described at length in
35 * the "Solaris Dynamic Tracing Guide". The interfaces between the libdtrace
36 * library, the in-kernel DTrace framework, and the DTrace providers are
37 * described in the block comments in the <sys/dtrace.h> header file. The
38 * internal architecture of DTrace is described in the block comments in the
39 * <sys/dtrace_impl.h> header file. The comments contained within the DTrace
40 * implementation very much assume mastery of all of these sources; if one has
41 * an unanswered question about the implementation, one should consult them
42 * first.
43 *
44 * The functions here are ordered roughly as follows:
45 *
46 * - Probe context functions
47 * - Probe hashing functions
48 * - Non-probe context utility functions
49 * - Matching functions
50 * - Provider-to-Framework API functions
51 * - Probe management functions
52 * - DIF object functions
53 * - Format functions
54 * - Predicate functions
55 * - ECB functions
56 * - Buffer functions
57 * - Enabling functions
58 * - DOF functions
59 * - Anonymous enabling functions
60 * - Consumer state functions
61 * - Helper functions
62 * - Hook functions
63 * - Driver cookbook functions
64 *
65 * Each group of functions begins with a block comment labelled the "DTrace
66 * [Group] Functions", allowing one to find each block by searching forward
67 * on capital-f functions.
68 */
69 #include <sys/errno.h>
70 #include <sys/param.h>
71 #include <sys/types.h>
72 #ifndef illumos
73 #include <sys/time.h>
74 #endif
75 #include <sys/stat.h>
76 #include <sys/conf.h>
77 #include <sys/systm.h>
78 #include <sys/endian.h>
79 #ifdef illumos
80 #include <sys/ddi.h>
81 #include <sys/sunddi.h>
82 #endif
83 #include <sys/cpuvar.h>
84 #include <sys/kmem.h>
85 #ifdef illumos
86 #include <sys/strsubr.h>
87 #endif
88 #include <sys/sysmacros.h>
89 #include <sys/dtrace_impl.h>
90 #include <sys/atomic.h>
91 #include <sys/cmn_err.h>
92 #ifdef illumos
93 #include <sys/mutex_impl.h>
94 #include <sys/rwlock_impl.h>
95 #endif
96 #include <sys/ctf_api.h>
97 #ifdef illumos
98 #include <sys/panic.h>
99 #include <sys/priv_impl.h>
100 #endif
101 #ifdef illumos
102 #include <sys/cred_impl.h>
103 #include <sys/procfs_isa.h>
104 #endif
105 #include <sys/taskq.h>
106 #ifdef illumos
107 #include <sys/mkdev.h>
108 #include <sys/kdi.h>
109 #endif
110 #include <sys/zone.h>
111 #include <sys/socket.h>
112 #include <netinet/in.h>
113 #include "strtolctype.h"
114
115 /* FreeBSD includes: */
116 #ifndef illumos
117 #include <sys/callout.h>
118 #include <sys/ctype.h>
119 #include <sys/eventhandler.h>
120 #include <sys/limits.h>
121 #include <sys/linker.h>
122 #include <sys/kdb.h>
123 #include <sys/jail.h>
124 #include <sys/kernel.h>
125 #include <sys/malloc.h>
126 #include <sys/lock.h>
127 #include <sys/mutex.h>
128 #include <sys/ptrace.h>
129 #include <sys/random.h>
130 #include <sys/rwlock.h>
131 #include <sys/sx.h>
132 #include <sys/sysctl.h>
133
134
135 #include <sys/mount.h>
136 #undef AT_UID
137 #undef AT_GID
138 #include <sys/vnode.h>
139 #include <sys/cred.h>
140
141 #include <sys/dtrace_bsd.h>
142
143 #include <netinet/in.h>
144
145 #include "dtrace_cddl.h"
146 #include "dtrace_debug.c"
147 #endif
148
149 #include "dtrace_xoroshiro128_plus.h"
150
151 /*
152 * DTrace Tunable Variables
153 *
154 * The following variables may be tuned by adding a line to /etc/system that
155 * includes both the name of the DTrace module ("dtrace") and the name of the
156 * variable. For example:
157 *
158 * set dtrace:dtrace_destructive_disallow = 1
159 *
160 * In general, the only variables that one should be tuning this way are those
161 * that affect system-wide DTrace behavior, and for which the default behavior
162 * is undesirable. Most of these variables are tunable on a per-consumer
163 * basis using DTrace options, and need not be tuned on a system-wide basis.
164 * When tuning these variables, avoid pathological values; while some attempt
165 * is made to verify the integrity of these variables, they are not considered
166 * part of the supported interface to DTrace, and they are therefore not
167 * checked comprehensively. Further, these variables should not be tuned
168 * dynamically via "mdb -kw" or other means; they should only be tuned via
169 * /etc/system.
170 */
171 int dtrace_destructive_disallow = 0;
172 #ifndef illumos
173 /* Positive logic version of dtrace_destructive_disallow for loader tunable */
174 int dtrace_allow_destructive = 1;
175 #endif
176 dtrace_optval_t dtrace_nonroot_maxsize = (16 * 1024 * 1024);
177 size_t dtrace_difo_maxsize = (256 * 1024);
178 dtrace_optval_t dtrace_dof_maxsize = (8 * 1024 * 1024);
179 size_t dtrace_statvar_maxsize = (16 * 1024);
180 size_t dtrace_actions_max = (16 * 1024);
181 size_t dtrace_retain_max = 1024;
182 dtrace_optval_t dtrace_helper_actions_max = 128;
183 dtrace_optval_t dtrace_helper_providers_max = 32;
184 dtrace_optval_t dtrace_dstate_defsize = (1 * 1024 * 1024);
185 size_t dtrace_strsize_default = 256;
186 dtrace_optval_t dtrace_cleanrate_default = 9900990; /* 101 hz */
187 dtrace_optval_t dtrace_cleanrate_min = 200000; /* 5000 hz */
188 dtrace_optval_t dtrace_cleanrate_max = (uint64_t)60 * NANOSEC; /* 1/minute */
189 dtrace_optval_t dtrace_aggrate_default = NANOSEC; /* 1 hz */
190 dtrace_optval_t dtrace_statusrate_default = NANOSEC; /* 1 hz */
191 dtrace_optval_t dtrace_statusrate_max = (hrtime_t)10 * NANOSEC; /* 6/minute */
192 dtrace_optval_t dtrace_switchrate_default = NANOSEC; /* 1 hz */
193 dtrace_optval_t dtrace_nspec_default = 1;
194 dtrace_optval_t dtrace_specsize_default = 32 * 1024;
195 dtrace_optval_t dtrace_stackframes_default = 20;
196 dtrace_optval_t dtrace_ustackframes_default = 20;
197 dtrace_optval_t dtrace_jstackframes_default = 50;
198 dtrace_optval_t dtrace_jstackstrsize_default = 512;
199 int dtrace_msgdsize_max = 128;
200 hrtime_t dtrace_chill_max = MSEC2NSEC(500); /* 500 ms */
201 hrtime_t dtrace_chill_interval = NANOSEC; /* 1000 ms */
202 int dtrace_devdepth_max = 32;
203 int dtrace_err_verbose;
204 hrtime_t dtrace_deadman_interval = NANOSEC;
205 hrtime_t dtrace_deadman_timeout = (hrtime_t)10 * NANOSEC;
206 hrtime_t dtrace_deadman_user = (hrtime_t)30 * NANOSEC;
207 hrtime_t dtrace_unregister_defunct_reap = (hrtime_t)60 * NANOSEC;
208 #ifndef illumos
209 int dtrace_memstr_max = 4096;
210 int dtrace_bufsize_max_frac = 128;
211 #endif
212
213 /*
214 * DTrace External Variables
215 *
216 * As dtrace(7D) is a kernel module, any DTrace variables are obviously
217 * available to DTrace consumers via the backtick (`) syntax. One of these,
218 * dtrace_zero, is made deliberately so: it is provided as a source of
219 * well-known, zero-filled memory. While this variable is not documented,
220 * it is used by some translators as an implementation detail.
221 */
222 const char dtrace_zero[256] = { 0 }; /* zero-filled memory */
223
224 /*
225 * DTrace Internal Variables
226 */
227 #ifdef illumos
228 static dev_info_t *dtrace_devi; /* device info */
229 #endif
230 #ifdef illumos
231 static vmem_t *dtrace_arena; /* probe ID arena */
232 static vmem_t *dtrace_minor; /* minor number arena */
233 #else
234 static taskq_t *dtrace_taskq; /* task queue */
235 static struct unrhdr *dtrace_arena; /* Probe ID number. */
236 #endif
237 static dtrace_probe_t **dtrace_probes; /* array of all probes */
238 static int dtrace_nprobes; /* number of probes */
239 static dtrace_provider_t *dtrace_provider; /* provider list */
240 static dtrace_meta_t *dtrace_meta_pid; /* user-land meta provider */
241 static int dtrace_opens; /* number of opens */
242 static int dtrace_helpers; /* number of helpers */
243 static int dtrace_getf; /* number of unpriv getf()s */
244 #ifdef illumos
245 static void *dtrace_softstate; /* softstate pointer */
246 #endif
247 static dtrace_hash_t *dtrace_bymod; /* probes hashed by module */
248 static dtrace_hash_t *dtrace_byfunc; /* probes hashed by function */
249 static dtrace_hash_t *dtrace_byname; /* probes hashed by name */
250 static dtrace_toxrange_t *dtrace_toxrange; /* toxic range array */
251 static int dtrace_toxranges; /* number of toxic ranges */
252 static int dtrace_toxranges_max; /* size of toxic range array */
253 static dtrace_anon_t dtrace_anon; /* anonymous enabling */
254 static kmem_cache_t *dtrace_state_cache; /* cache for dynamic state */
255 static uint64_t dtrace_vtime_references; /* number of vtimestamp refs */
256 static kthread_t *dtrace_panicked; /* panicking thread */
257 static dtrace_ecb_t *dtrace_ecb_create_cache; /* cached created ECB */
258 static dtrace_genid_t dtrace_probegen; /* current probe generation */
259 static dtrace_helpers_t *dtrace_deferred_pid; /* deferred helper list */
260 static dtrace_enabling_t *dtrace_retained; /* list of retained enablings */
261 static dtrace_genid_t dtrace_retained_gen; /* current retained enab gen */
262 static dtrace_dynvar_t dtrace_dynhash_sink; /* end of dynamic hash chains */
263 static int dtrace_dynvar_failclean; /* dynvars failed to clean */
264 #ifndef illumos
265 static struct mtx dtrace_unr_mtx;
266 MTX_SYSINIT(dtrace_unr_mtx, &dtrace_unr_mtx, "Unique resource identifier", MTX_DEF);
267 static eventhandler_tag dtrace_kld_load_tag;
268 static eventhandler_tag dtrace_kld_unload_try_tag;
269 #endif
270
271 /*
272 * DTrace Locking
273 * DTrace is protected by three (relatively coarse-grained) locks:
274 *
275 * (1) dtrace_lock is required to manipulate essentially any DTrace state,
276 * including enabling state, probes, ECBs, consumer state, helper state,
277 * etc. Importantly, dtrace_lock is _not_ required when in probe context;
278 * probe context is lock-free -- synchronization is handled via the
279 * dtrace_sync() cross call mechanism.
280 *
281 * (2) dtrace_provider_lock is required when manipulating provider state, or
282 * when provider state must be held constant.
283 *
284 * (3) dtrace_meta_lock is required when manipulating meta provider state, or
285 * when meta provider state must be held constant.
286 *
287 * The lock ordering between these three locks is dtrace_meta_lock before
288 * dtrace_provider_lock before dtrace_lock. (In particular, there are
289 * several places where dtrace_provider_lock is held by the framework as it
290 * calls into the providers -- which then call back into the framework,
291 * grabbing dtrace_lock.)
292 *
293 * There are two other locks in the mix: mod_lock and cpu_lock. With respect
294 * to dtrace_provider_lock and dtrace_lock, cpu_lock continues its historical
295 * role as a coarse-grained lock; it is acquired before both of these locks.
296 * With respect to dtrace_meta_lock, its behavior is stranger: cpu_lock must
297 * be acquired _between_ dtrace_meta_lock and any other DTrace locks.
298 * mod_lock is similar with respect to dtrace_provider_lock in that it must be
299 * acquired _between_ dtrace_provider_lock and dtrace_lock.
300 */
301 static kmutex_t dtrace_lock; /* probe state lock */
302 static kmutex_t dtrace_provider_lock; /* provider state lock */
303 static kmutex_t dtrace_meta_lock; /* meta-provider state lock */
304
305 #ifndef illumos
306 /* XXX FreeBSD hacks. */
307 #define cr_suid cr_svuid
308 #define cr_sgid cr_svgid
309 #define ipaddr_t in_addr_t
310 #define mod_modname pathname
311 #define vuprintf vprintf
312 #ifndef crgetzoneid
313 #define crgetzoneid(_a) 0
314 #endif
315 #define ttoproc(_a) ((_a)->td_proc)
316 #define SNOCD 0
317 #define CPU_ON_INTR(_a) 0
318
319 #define PRIV_EFFECTIVE (1 << 0)
320 #define PRIV_DTRACE_KERNEL (1 << 1)
321 #define PRIV_DTRACE_PROC (1 << 2)
322 #define PRIV_DTRACE_USER (1 << 3)
323 #define PRIV_PROC_OWNER (1 << 4)
324 #define PRIV_PROC_ZONE (1 << 5)
325 #define PRIV_ALL ~0
326
327 SYSCTL_DECL(_debug_dtrace);
328 SYSCTL_DECL(_kern_dtrace);
329 #endif
330
331 #ifdef illumos
332 #define curcpu CPU->cpu_id
333 #endif
334
335
336 /*
337 * DTrace Provider Variables
338 *
339 * These are the variables relating to DTrace as a provider (that is, the
340 * provider of the BEGIN, END, and ERROR probes).
341 */
342 static dtrace_pattr_t dtrace_provider_attr = {
343 { DTRACE_STABILITY_STABLE, DTRACE_STABILITY_STABLE, DTRACE_CLASS_COMMON },
344 { DTRACE_STABILITY_PRIVATE, DTRACE_STABILITY_PRIVATE, DTRACE_CLASS_UNKNOWN },
345 { DTRACE_STABILITY_PRIVATE, DTRACE_STABILITY_PRIVATE, DTRACE_CLASS_UNKNOWN },
346 { DTRACE_STABILITY_STABLE, DTRACE_STABILITY_STABLE, DTRACE_CLASS_COMMON },
347 { DTRACE_STABILITY_STABLE, DTRACE_STABILITY_STABLE, DTRACE_CLASS_COMMON },
348 };
349
350 static void
dtrace_nullop(void)351 dtrace_nullop(void)
352 {}
353
354 static dtrace_pops_t dtrace_provider_ops = {
355 .dtps_provide = (void (*)(void *, dtrace_probedesc_t *))dtrace_nullop,
356 .dtps_provide_module = (void (*)(void *, modctl_t *))dtrace_nullop,
357 .dtps_enable = (void (*)(void *, dtrace_id_t, void *))dtrace_nullop,
358 .dtps_disable = (void (*)(void *, dtrace_id_t, void *))dtrace_nullop,
359 .dtps_suspend = (void (*)(void *, dtrace_id_t, void *))dtrace_nullop,
360 .dtps_resume = (void (*)(void *, dtrace_id_t, void *))dtrace_nullop,
361 .dtps_getargdesc = NULL,
362 .dtps_getargval = NULL,
363 .dtps_usermode = NULL,
364 .dtps_destroy = (void (*)(void *, dtrace_id_t, void *))dtrace_nullop,
365 };
366
367 static dtrace_id_t dtrace_probeid_begin; /* special BEGIN probe */
368 static dtrace_id_t dtrace_probeid_end; /* special END probe */
369 dtrace_id_t dtrace_probeid_error; /* special ERROR probe */
370
371 /*
372 * DTrace Helper Tracing Variables
373 *
374 * These variables should be set dynamically to enable helper tracing. The
375 * only variables that should be set are dtrace_helptrace_enable (which should
376 * be set to a non-zero value to allocate helper tracing buffers on the next
377 * open of /dev/dtrace) and dtrace_helptrace_disable (which should be set to a
378 * non-zero value to deallocate helper tracing buffers on the next close of
379 * /dev/dtrace). When (and only when) helper tracing is disabled, the
380 * buffer size may also be set via dtrace_helptrace_bufsize.
381 */
382 int dtrace_helptrace_enable = 0;
383 int dtrace_helptrace_disable = 0;
384 int dtrace_helptrace_bufsize = 16 * 1024 * 1024;
385 uint32_t dtrace_helptrace_nlocals;
386 static dtrace_helptrace_t *dtrace_helptrace_buffer;
387 static uint32_t dtrace_helptrace_next = 0;
388 static int dtrace_helptrace_wrapped = 0;
389
390 /*
391 * DTrace Error Hashing
392 *
393 * On DEBUG kernels, DTrace will track the errors that has seen in a hash
394 * table. This is very useful for checking coverage of tests that are
395 * expected to induce DIF or DOF processing errors, and may be useful for
396 * debugging problems in the DIF code generator or in DOF generation . The
397 * error hash may be examined with the ::dtrace_errhash MDB dcmd.
398 */
399 #ifdef DEBUG
400 static dtrace_errhash_t dtrace_errhash[DTRACE_ERRHASHSZ];
401 static const char *dtrace_errlast;
402 static kthread_t *dtrace_errthread;
403 static kmutex_t dtrace_errlock;
404 #endif
405
406 /*
407 * DTrace Macros and Constants
408 *
409 * These are various macros that are useful in various spots in the
410 * implementation, along with a few random constants that have no meaning
411 * outside of the implementation. There is no real structure to this cpp
412 * mishmash -- but is there ever?
413 */
414 #define DTRACE_HASHSTR(hash, probe) \
415 dtrace_hash_str(*((char **)((uintptr_t)(probe) + (hash)->dth_stroffs)))
416
417 #define DTRACE_HASHNEXT(hash, probe) \
418 (dtrace_probe_t **)((uintptr_t)(probe) + (hash)->dth_nextoffs)
419
420 #define DTRACE_HASHPREV(hash, probe) \
421 (dtrace_probe_t **)((uintptr_t)(probe) + (hash)->dth_prevoffs)
422
423 #define DTRACE_HASHEQ(hash, lhs, rhs) \
424 (strcmp(*((char **)((uintptr_t)(lhs) + (hash)->dth_stroffs)), \
425 *((char **)((uintptr_t)(rhs) + (hash)->dth_stroffs))) == 0)
426
427 #define DTRACE_AGGHASHSIZE_SLEW 17
428
429 #define DTRACE_V4MAPPED_OFFSET (sizeof (uint32_t) * 3)
430
431 /*
432 * The key for a thread-local variable consists of the lower 61 bits of the
433 * t_did, plus the 3 bits of the highest active interrupt above LOCK_LEVEL.
434 * We add DIF_VARIABLE_MAX to t_did to assure that the thread key is never
435 * equal to a variable identifier. This is necessary (but not sufficient) to
436 * assure that global associative arrays never collide with thread-local
437 * variables. To guarantee that they cannot collide, we must also define the
438 * order for keying dynamic variables. That order is:
439 *
440 * [ key0 ] ... [ keyn ] [ variable-key ] [ tls-key ]
441 *
442 * Because the variable-key and the tls-key are in orthogonal spaces, there is
443 * no way for a global variable key signature to match a thread-local key
444 * signature.
445 */
446 #ifdef illumos
447 #define DTRACE_TLS_THRKEY(where) { \
448 uint_t intr = 0; \
449 uint_t actv = CPU->cpu_intr_actv >> (LOCK_LEVEL + 1); \
450 for (; actv; actv >>= 1) \
451 intr++; \
452 ASSERT(intr < (1 << 3)); \
453 (where) = ((curthread->t_did + DIF_VARIABLE_MAX) & \
454 (((uint64_t)1 << 61) - 1)) | ((uint64_t)intr << 61); \
455 }
456 #else
457 #define DTRACE_TLS_THRKEY(where) { \
458 solaris_cpu_t *_c = &solaris_cpu[curcpu]; \
459 uint_t intr = 0; \
460 uint_t actv = _c->cpu_intr_actv; \
461 for (; actv; actv >>= 1) \
462 intr++; \
463 ASSERT(intr < (1 << 3)); \
464 (where) = ((curthread->td_tid + DIF_VARIABLE_MAX) & \
465 (((uint64_t)1 << 61) - 1)) | ((uint64_t)intr << 61); \
466 }
467 #endif
468
469 #define DT_BSWAP_8(x) ((x) & 0xff)
470 #define DT_BSWAP_16(x) ((DT_BSWAP_8(x) << 8) | DT_BSWAP_8((x) >> 8))
471 #define DT_BSWAP_32(x) ((DT_BSWAP_16(x) << 16) | DT_BSWAP_16((x) >> 16))
472 #define DT_BSWAP_64(x) ((DT_BSWAP_32(x) << 32) | DT_BSWAP_32((x) >> 32))
473
474 #define DT_MASK_LO 0x00000000FFFFFFFFULL
475
476 #define DTRACE_STORE(type, tomax, offset, what) \
477 *((type *)((uintptr_t)(tomax) + (uintptr_t)offset)) = (type)(what);
478
479 #if !defined(__x86) && !defined(__aarch64__)
480 #define DTRACE_ALIGNCHECK(addr, size, flags) \
481 if (addr & (size - 1)) { \
482 *flags |= CPU_DTRACE_BADALIGN; \
483 cpu_core[curcpu].cpuc_dtrace_illval = addr; \
484 return (0); \
485 }
486 #else
487 #define DTRACE_ALIGNCHECK(addr, size, flags)
488 #endif
489
490 /*
491 * Test whether a range of memory starting at testaddr of size testsz falls
492 * within the range of memory described by addr, sz. We take care to avoid
493 * problems with overflow and underflow of the unsigned quantities, and
494 * disallow all negative sizes. Ranges of size 0 are allowed.
495 */
496 #define DTRACE_INRANGE(testaddr, testsz, baseaddr, basesz) \
497 ((testaddr) - (uintptr_t)(baseaddr) < (basesz) && \
498 (testaddr) + (testsz) - (uintptr_t)(baseaddr) <= (basesz) && \
499 (testaddr) + (testsz) >= (testaddr))
500
501 #define DTRACE_RANGE_REMAIN(remp, addr, baseaddr, basesz) \
502 do { \
503 if ((remp) != NULL) { \
504 *(remp) = (uintptr_t)(baseaddr) + (basesz) - (addr); \
505 } \
506 } while (0)
507
508
509 /*
510 * Test whether alloc_sz bytes will fit in the scratch region. We isolate
511 * alloc_sz on the righthand side of the comparison in order to avoid overflow
512 * or underflow in the comparison with it. This is simpler than the INRANGE
513 * check above, because we know that the dtms_scratch_ptr is valid in the
514 * range. Allocations of size zero are allowed.
515 */
516 #define DTRACE_INSCRATCH(mstate, alloc_sz) \
517 ((mstate)->dtms_scratch_base + (mstate)->dtms_scratch_size - \
518 (mstate)->dtms_scratch_ptr >= (alloc_sz))
519
520 #define DTRACE_LOADFUNC(bits) \
521 /*CSTYLED*/ \
522 uint##bits##_t \
523 dtrace_load##bits(uintptr_t addr) \
524 { \
525 size_t size = bits / NBBY; \
526 /*CSTYLED*/ \
527 uint##bits##_t rval; \
528 int i; \
529 volatile uint16_t *flags = (volatile uint16_t *) \
530 &cpu_core[curcpu].cpuc_dtrace_flags; \
531 \
532 DTRACE_ALIGNCHECK(addr, size, flags); \
533 \
534 for (i = 0; i < dtrace_toxranges; i++) { \
535 if (addr >= dtrace_toxrange[i].dtt_limit) \
536 continue; \
537 \
538 if (addr + size <= dtrace_toxrange[i].dtt_base) \
539 continue; \
540 \
541 /* \
542 * This address falls within a toxic region; return 0. \
543 */ \
544 *flags |= CPU_DTRACE_BADADDR; \
545 cpu_core[curcpu].cpuc_dtrace_illval = addr; \
546 return (0); \
547 } \
548 \
549 *flags |= CPU_DTRACE_NOFAULT; \
550 /*CSTYLED*/ \
551 rval = *((volatile uint##bits##_t *)addr); \
552 *flags &= ~CPU_DTRACE_NOFAULT; \
553 \
554 return (!(*flags & CPU_DTRACE_FAULT) ? rval : 0); \
555 }
556
557 #ifdef _LP64
558 #define dtrace_loadptr dtrace_load64
559 #else
560 #define dtrace_loadptr dtrace_load32
561 #endif
562
563 #define DTRACE_DYNHASH_FREE 0
564 #define DTRACE_DYNHASH_SINK 1
565 #define DTRACE_DYNHASH_VALID 2
566
567 #define DTRACE_MATCH_NEXT 0
568 #define DTRACE_MATCH_DONE 1
569 #define DTRACE_ANCHORED(probe) ((probe)->dtpr_func[0] != '\0')
570 #define DTRACE_STATE_ALIGN 64
571
572 #define DTRACE_FLAGS2FLT(flags) \
573 (((flags) & CPU_DTRACE_BADADDR) ? DTRACEFLT_BADADDR : \
574 ((flags) & CPU_DTRACE_ILLOP) ? DTRACEFLT_ILLOP : \
575 ((flags) & CPU_DTRACE_DIVZERO) ? DTRACEFLT_DIVZERO : \
576 ((flags) & CPU_DTRACE_KPRIV) ? DTRACEFLT_KPRIV : \
577 ((flags) & CPU_DTRACE_UPRIV) ? DTRACEFLT_UPRIV : \
578 ((flags) & CPU_DTRACE_TUPOFLOW) ? DTRACEFLT_TUPOFLOW : \
579 ((flags) & CPU_DTRACE_BADALIGN) ? DTRACEFLT_BADALIGN : \
580 ((flags) & CPU_DTRACE_NOSCRATCH) ? DTRACEFLT_NOSCRATCH : \
581 ((flags) & CPU_DTRACE_BADSTACK) ? DTRACEFLT_BADSTACK : \
582 DTRACEFLT_UNKNOWN)
583
584 #define DTRACEACT_ISSTRING(act) \
585 ((act)->dta_kind == DTRACEACT_DIFEXPR && \
586 (act)->dta_difo->dtdo_rtype.dtdt_kind == DIF_TYPE_STRING)
587
588 /* Function prototype definitions: */
589 static size_t dtrace_strlen(const char *, size_t);
590 static dtrace_probe_t *dtrace_probe_lookup_id(dtrace_id_t id);
591 static void dtrace_enabling_provide(dtrace_provider_t *);
592 static int dtrace_enabling_match(dtrace_enabling_t *, int *);
593 static void dtrace_enabling_matchall(void);
594 static void dtrace_enabling_reap(void);
595 static dtrace_state_t *dtrace_anon_grab(void);
596 static uint64_t dtrace_helper(int, dtrace_mstate_t *,
597 dtrace_state_t *, uint64_t, uint64_t);
598 static dtrace_helpers_t *dtrace_helpers_create(proc_t *);
599 static void dtrace_buffer_drop(dtrace_buffer_t *);
600 static int dtrace_buffer_consumed(dtrace_buffer_t *, hrtime_t when);
601 static intptr_t dtrace_buffer_reserve(dtrace_buffer_t *, size_t, size_t,
602 dtrace_state_t *, dtrace_mstate_t *);
603 static int dtrace_state_option(dtrace_state_t *, dtrace_optid_t,
604 dtrace_optval_t);
605 static int dtrace_ecb_create_enable(dtrace_probe_t *, void *);
606 static void dtrace_helper_provider_destroy(dtrace_helper_provider_t *);
607 uint16_t dtrace_load16(uintptr_t);
608 uint32_t dtrace_load32(uintptr_t);
609 uint64_t dtrace_load64(uintptr_t);
610 uint8_t dtrace_load8(uintptr_t);
611 void dtrace_dynvar_clean(dtrace_dstate_t *);
612 dtrace_dynvar_t *dtrace_dynvar(dtrace_dstate_t *, uint_t, dtrace_key_t *,
613 size_t, dtrace_dynvar_op_t, dtrace_mstate_t *, dtrace_vstate_t *);
614 uintptr_t dtrace_dif_varstr(uintptr_t, dtrace_state_t *, dtrace_mstate_t *);
615 static int dtrace_priv_proc(dtrace_state_t *);
616 static void dtrace_getf_barrier(void);
617 static int dtrace_canload_remains(uint64_t, size_t, size_t *,
618 dtrace_mstate_t *, dtrace_vstate_t *);
619 static int dtrace_canstore_remains(uint64_t, size_t, size_t *,
620 dtrace_mstate_t *, dtrace_vstate_t *);
621
622 /*
623 * DTrace Probe Context Functions
624 *
625 * These functions are called from probe context. Because probe context is
626 * any context in which C may be called, arbitrarily locks may be held,
627 * interrupts may be disabled, we may be in arbitrary dispatched state, etc.
628 * As a result, functions called from probe context may only call other DTrace
629 * support functions -- they may not interact at all with the system at large.
630 * (Note that the ASSERT macro is made probe-context safe by redefining it in
631 * terms of dtrace_assfail(), a probe-context safe function.) If arbitrary
632 * loads are to be performed from probe context, they _must_ be in terms of
633 * the safe dtrace_load*() variants.
634 *
635 * Some functions in this block are not actually called from probe context;
636 * for these functions, there will be a comment above the function reading
637 * "Note: not called from probe context."
638 */
639 void
dtrace_panic(const char * format,...)640 dtrace_panic(const char *format, ...)
641 {
642 va_list alist;
643
644 va_start(alist, format);
645 #ifdef __FreeBSD__
646 vpanic(format, alist);
647 #else
648 dtrace_vpanic(format, alist);
649 #endif
650 va_end(alist);
651 }
652
653 int
dtrace_assfail(const char * a,const char * f,int l)654 dtrace_assfail(const char *a, const char *f, int l)
655 {
656 dtrace_panic("assertion failed: %s, file: %s, line: %d", a, f, l);
657
658 /*
659 * We just need something here that even the most clever compiler
660 * cannot optimize away.
661 */
662 return (a[(uintptr_t)f]);
663 }
664
665 /*
666 * Atomically increment a specified error counter from probe context.
667 */
668 static void
dtrace_error(uint32_t * counter)669 dtrace_error(uint32_t *counter)
670 {
671 /*
672 * Most counters stored to in probe context are per-CPU counters.
673 * However, there are some error conditions that are sufficiently
674 * arcane that they don't merit per-CPU storage. If these counters
675 * are incremented concurrently on different CPUs, scalability will be
676 * adversely affected -- but we don't expect them to be white-hot in a
677 * correctly constructed enabling...
678 */
679 uint32_t oval, nval;
680
681 do {
682 oval = *counter;
683
684 if ((nval = oval + 1) == 0) {
685 /*
686 * If the counter would wrap, set it to 1 -- assuring
687 * that the counter is never zero when we have seen
688 * errors. (The counter must be 32-bits because we
689 * aren't guaranteed a 64-bit compare&swap operation.)
690 * To save this code both the infamy of being fingered
691 * by a priggish news story and the indignity of being
692 * the target of a neo-puritan witch trial, we're
693 * carefully avoiding any colorful description of the
694 * likelihood of this condition -- but suffice it to
695 * say that it is only slightly more likely than the
696 * overflow of predicate cache IDs, as discussed in
697 * dtrace_predicate_create().
698 */
699 nval = 1;
700 }
701 } while (dtrace_cas32(counter, oval, nval) != oval);
702 }
703
704 /*
705 * Use the DTRACE_LOADFUNC macro to define functions for each of loading a
706 * uint8_t, a uint16_t, a uint32_t and a uint64_t.
707 */
708 /* BEGIN CSTYLED */
709 DTRACE_LOADFUNC(8)
710 DTRACE_LOADFUNC(16)
711 DTRACE_LOADFUNC(32)
712 DTRACE_LOADFUNC(64)
713 /* END CSTYLED */
714
715 static int
dtrace_inscratch(uintptr_t dest,size_t size,dtrace_mstate_t * mstate)716 dtrace_inscratch(uintptr_t dest, size_t size, dtrace_mstate_t *mstate)
717 {
718 if (dest < mstate->dtms_scratch_base)
719 return (0);
720
721 if (dest + size < dest)
722 return (0);
723
724 if (dest + size > mstate->dtms_scratch_ptr)
725 return (0);
726
727 return (1);
728 }
729
730 static int
dtrace_canstore_statvar(uint64_t addr,size_t sz,size_t * remain,dtrace_statvar_t ** svars,int nsvars)731 dtrace_canstore_statvar(uint64_t addr, size_t sz, size_t *remain,
732 dtrace_statvar_t **svars, int nsvars)
733 {
734 int i;
735 size_t maxglobalsize, maxlocalsize;
736
737 if (nsvars == 0)
738 return (0);
739
740 maxglobalsize = dtrace_statvar_maxsize + sizeof (uint64_t);
741 maxlocalsize = maxglobalsize * NCPU;
742
743 for (i = 0; i < nsvars; i++) {
744 dtrace_statvar_t *svar = svars[i];
745 uint8_t scope;
746 size_t size;
747
748 if (svar == NULL || (size = svar->dtsv_size) == 0)
749 continue;
750
751 scope = svar->dtsv_var.dtdv_scope;
752
753 /*
754 * We verify that our size is valid in the spirit of providing
755 * defense in depth: we want to prevent attackers from using
756 * DTrace to escalate an orthogonal kernel heap corruption bug
757 * into the ability to store to arbitrary locations in memory.
758 */
759 VERIFY((scope == DIFV_SCOPE_GLOBAL && size <= maxglobalsize) ||
760 (scope == DIFV_SCOPE_LOCAL && size <= maxlocalsize));
761
762 if (DTRACE_INRANGE(addr, sz, svar->dtsv_data,
763 svar->dtsv_size)) {
764 DTRACE_RANGE_REMAIN(remain, addr, svar->dtsv_data,
765 svar->dtsv_size);
766 return (1);
767 }
768 }
769
770 return (0);
771 }
772
773 /*
774 * Check to see if the address is within a memory region to which a store may
775 * be issued. This includes the DTrace scratch areas, and any DTrace variable
776 * region. The caller of dtrace_canstore() is responsible for performing any
777 * alignment checks that are needed before stores are actually executed.
778 */
779 static int
dtrace_canstore(uint64_t addr,size_t sz,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)780 dtrace_canstore(uint64_t addr, size_t sz, dtrace_mstate_t *mstate,
781 dtrace_vstate_t *vstate)
782 {
783 return (dtrace_canstore_remains(addr, sz, NULL, mstate, vstate));
784 }
785
786 /*
787 * Implementation of dtrace_canstore which communicates the upper bound of the
788 * allowed memory region.
789 */
790 static int
dtrace_canstore_remains(uint64_t addr,size_t sz,size_t * remain,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)791 dtrace_canstore_remains(uint64_t addr, size_t sz, size_t *remain,
792 dtrace_mstate_t *mstate, dtrace_vstate_t *vstate)
793 {
794 /*
795 * First, check to see if the address is in scratch space...
796 */
797 if (DTRACE_INRANGE(addr, sz, mstate->dtms_scratch_base,
798 mstate->dtms_scratch_size)) {
799 DTRACE_RANGE_REMAIN(remain, addr, mstate->dtms_scratch_base,
800 mstate->dtms_scratch_size);
801 return (1);
802 }
803
804 /*
805 * Now check to see if it's a dynamic variable. This check will pick
806 * up both thread-local variables and any global dynamically-allocated
807 * variables.
808 */
809 if (DTRACE_INRANGE(addr, sz, vstate->dtvs_dynvars.dtds_base,
810 vstate->dtvs_dynvars.dtds_size)) {
811 dtrace_dstate_t *dstate = &vstate->dtvs_dynvars;
812 uintptr_t base = (uintptr_t)dstate->dtds_base +
813 (dstate->dtds_hashsize * sizeof (dtrace_dynhash_t));
814 uintptr_t chunkoffs;
815 dtrace_dynvar_t *dvar;
816
817 /*
818 * Before we assume that we can store here, we need to make
819 * sure that it isn't in our metadata -- storing to our
820 * dynamic variable metadata would corrupt our state. For
821 * the range to not include any dynamic variable metadata,
822 * it must:
823 *
824 * (1) Start above the hash table that is at the base of
825 * the dynamic variable space
826 *
827 * (2) Have a starting chunk offset that is beyond the
828 * dtrace_dynvar_t that is at the base of every chunk
829 *
830 * (3) Not span a chunk boundary
831 *
832 * (4) Not be in the tuple space of a dynamic variable
833 *
834 */
835 if (addr < base)
836 return (0);
837
838 chunkoffs = (addr - base) % dstate->dtds_chunksize;
839
840 if (chunkoffs < sizeof (dtrace_dynvar_t))
841 return (0);
842
843 if (chunkoffs + sz > dstate->dtds_chunksize)
844 return (0);
845
846 dvar = (dtrace_dynvar_t *)((uintptr_t)addr - chunkoffs);
847
848 if (dvar->dtdv_hashval == DTRACE_DYNHASH_FREE)
849 return (0);
850
851 if (chunkoffs < sizeof (dtrace_dynvar_t) +
852 ((dvar->dtdv_tuple.dtt_nkeys - 1) * sizeof (dtrace_key_t)))
853 return (0);
854
855 DTRACE_RANGE_REMAIN(remain, addr, dvar, dstate->dtds_chunksize);
856 return (1);
857 }
858
859 /*
860 * Finally, check the static local and global variables. These checks
861 * take the longest, so we perform them last.
862 */
863 if (dtrace_canstore_statvar(addr, sz, remain,
864 vstate->dtvs_locals, vstate->dtvs_nlocals))
865 return (1);
866
867 if (dtrace_canstore_statvar(addr, sz, remain,
868 vstate->dtvs_globals, vstate->dtvs_nglobals))
869 return (1);
870
871 return (0);
872 }
873
874
875 /*
876 * Convenience routine to check to see if the address is within a memory
877 * region in which a load may be issued given the user's privilege level;
878 * if not, it sets the appropriate error flags and loads 'addr' into the
879 * illegal value slot.
880 *
881 * DTrace subroutines (DIF_SUBR_*) should use this helper to implement
882 * appropriate memory access protection.
883 */
884 static int
dtrace_canload(uint64_t addr,size_t sz,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)885 dtrace_canload(uint64_t addr, size_t sz, dtrace_mstate_t *mstate,
886 dtrace_vstate_t *vstate)
887 {
888 return (dtrace_canload_remains(addr, sz, NULL, mstate, vstate));
889 }
890
891 /*
892 * Implementation of dtrace_canload which communicates the uppoer bound of the
893 * allowed memory region.
894 */
895 static int
dtrace_canload_remains(uint64_t addr,size_t sz,size_t * remain,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)896 dtrace_canload_remains(uint64_t addr, size_t sz, size_t *remain,
897 dtrace_mstate_t *mstate, dtrace_vstate_t *vstate)
898 {
899 volatile uintptr_t *illval = &cpu_core[curcpu].cpuc_dtrace_illval;
900 file_t *fp;
901
902 /*
903 * If we hold the privilege to read from kernel memory, then
904 * everything is readable.
905 */
906 if ((mstate->dtms_access & DTRACE_ACCESS_KERNEL) != 0) {
907 DTRACE_RANGE_REMAIN(remain, addr, addr, sz);
908 return (1);
909 }
910
911 /*
912 * You can obviously read that which you can store.
913 */
914 if (dtrace_canstore_remains(addr, sz, remain, mstate, vstate))
915 return (1);
916
917 /*
918 * We're allowed to read from our own string table.
919 */
920 if (DTRACE_INRANGE(addr, sz, mstate->dtms_difo->dtdo_strtab,
921 mstate->dtms_difo->dtdo_strlen)) {
922 DTRACE_RANGE_REMAIN(remain, addr,
923 mstate->dtms_difo->dtdo_strtab,
924 mstate->dtms_difo->dtdo_strlen);
925 return (1);
926 }
927
928 if (vstate->dtvs_state != NULL &&
929 dtrace_priv_proc(vstate->dtvs_state)) {
930 proc_t *p;
931
932 /*
933 * When we have privileges to the current process, there are
934 * several context-related kernel structures that are safe to
935 * read, even absent the privilege to read from kernel memory.
936 * These reads are safe because these structures contain only
937 * state that (1) we're permitted to read, (2) is harmless or
938 * (3) contains pointers to additional kernel state that we're
939 * not permitted to read (and as such, do not present an
940 * opportunity for privilege escalation). Finally (and
941 * critically), because of the nature of their relation with
942 * the current thread context, the memory associated with these
943 * structures cannot change over the duration of probe context,
944 * and it is therefore impossible for this memory to be
945 * deallocated and reallocated as something else while it's
946 * being operated upon.
947 */
948 if (DTRACE_INRANGE(addr, sz, curthread, sizeof (kthread_t))) {
949 DTRACE_RANGE_REMAIN(remain, addr, curthread,
950 sizeof (kthread_t));
951 return (1);
952 }
953
954 if ((p = curthread->t_procp) != NULL && DTRACE_INRANGE(addr,
955 sz, curthread->t_procp, sizeof (proc_t))) {
956 DTRACE_RANGE_REMAIN(remain, addr, curthread->t_procp,
957 sizeof (proc_t));
958 return (1);
959 }
960
961 if (curthread->t_cred != NULL && DTRACE_INRANGE(addr, sz,
962 curthread->t_cred, sizeof (cred_t))) {
963 DTRACE_RANGE_REMAIN(remain, addr, curthread->t_cred,
964 sizeof (cred_t));
965 return (1);
966 }
967
968 #ifdef illumos
969 if (p != NULL && p->p_pidp != NULL && DTRACE_INRANGE(addr, sz,
970 &(p->p_pidp->pid_id), sizeof (pid_t))) {
971 DTRACE_RANGE_REMAIN(remain, addr, &(p->p_pidp->pid_id),
972 sizeof (pid_t));
973 return (1);
974 }
975
976 if (curthread->t_cpu != NULL && DTRACE_INRANGE(addr, sz,
977 curthread->t_cpu, offsetof(cpu_t, cpu_pause_thread))) {
978 DTRACE_RANGE_REMAIN(remain, addr, curthread->t_cpu,
979 offsetof(cpu_t, cpu_pause_thread));
980 return (1);
981 }
982 #endif
983 }
984
985 if ((fp = mstate->dtms_getf) != NULL) {
986 uintptr_t psz = sizeof (void *);
987 vnode_t *vp;
988 vnodeops_t *op;
989
990 /*
991 * When getf() returns a file_t, the enabling is implicitly
992 * granted the (transient) right to read the returned file_t
993 * as well as the v_path and v_op->vnop_name of the underlying
994 * vnode. These accesses are allowed after a successful
995 * getf() because the members that they refer to cannot change
996 * once set -- and the barrier logic in the kernel's closef()
997 * path assures that the file_t and its referenced vode_t
998 * cannot themselves be stale (that is, it impossible for
999 * either dtms_getf itself or its f_vnode member to reference
1000 * freed memory).
1001 */
1002 if (DTRACE_INRANGE(addr, sz, fp, sizeof (file_t))) {
1003 DTRACE_RANGE_REMAIN(remain, addr, fp, sizeof (file_t));
1004 return (1);
1005 }
1006
1007 if ((vp = fp->f_vnode) != NULL) {
1008 size_t slen;
1009 #ifdef illumos
1010 if (DTRACE_INRANGE(addr, sz, &vp->v_path, psz)) {
1011 DTRACE_RANGE_REMAIN(remain, addr, &vp->v_path,
1012 psz);
1013 return (1);
1014 }
1015 slen = strlen(vp->v_path) + 1;
1016 if (DTRACE_INRANGE(addr, sz, vp->v_path, slen)) {
1017 DTRACE_RANGE_REMAIN(remain, addr, vp->v_path,
1018 slen);
1019 return (1);
1020 }
1021 #endif
1022
1023 if (DTRACE_INRANGE(addr, sz, &vp->v_op, psz)) {
1024 DTRACE_RANGE_REMAIN(remain, addr, &vp->v_op,
1025 psz);
1026 return (1);
1027 }
1028
1029 #ifdef illumos
1030 if ((op = vp->v_op) != NULL &&
1031 DTRACE_INRANGE(addr, sz, &op->vnop_name, psz)) {
1032 DTRACE_RANGE_REMAIN(remain, addr,
1033 &op->vnop_name, psz);
1034 return (1);
1035 }
1036
1037 if (op != NULL && op->vnop_name != NULL &&
1038 DTRACE_INRANGE(addr, sz, op->vnop_name,
1039 (slen = strlen(op->vnop_name) + 1))) {
1040 DTRACE_RANGE_REMAIN(remain, addr,
1041 op->vnop_name, slen);
1042 return (1);
1043 }
1044 #endif
1045 }
1046 }
1047
1048 DTRACE_CPUFLAG_SET(CPU_DTRACE_KPRIV);
1049 *illval = addr;
1050 return (0);
1051 }
1052
1053 /*
1054 * Convenience routine to check to see if a given string is within a memory
1055 * region in which a load may be issued given the user's privilege level;
1056 * this exists so that we don't need to issue unnecessary dtrace_strlen()
1057 * calls in the event that the user has all privileges.
1058 */
1059 static int
dtrace_strcanload(uint64_t addr,size_t sz,size_t * remain,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)1060 dtrace_strcanload(uint64_t addr, size_t sz, size_t *remain,
1061 dtrace_mstate_t *mstate, dtrace_vstate_t *vstate)
1062 {
1063 size_t rsize;
1064
1065 /*
1066 * If we hold the privilege to read from kernel memory, then
1067 * everything is readable.
1068 */
1069 if ((mstate->dtms_access & DTRACE_ACCESS_KERNEL) != 0) {
1070 DTRACE_RANGE_REMAIN(remain, addr, addr, sz);
1071 return (1);
1072 }
1073
1074 /*
1075 * Even if the caller is uninterested in querying the remaining valid
1076 * range, it is required to ensure that the access is allowed.
1077 */
1078 if (remain == NULL) {
1079 remain = &rsize;
1080 }
1081 if (dtrace_canload_remains(addr, 0, remain, mstate, vstate)) {
1082 size_t strsz;
1083 /*
1084 * Perform the strlen after determining the length of the
1085 * memory region which is accessible. This prevents timing
1086 * information from being used to find NULs in memory which is
1087 * not accessible to the caller.
1088 */
1089 strsz = 1 + dtrace_strlen((char *)(uintptr_t)addr,
1090 MIN(sz, *remain));
1091 if (strsz <= *remain) {
1092 return (1);
1093 }
1094 }
1095
1096 return (0);
1097 }
1098
1099 /*
1100 * Convenience routine to check to see if a given variable is within a memory
1101 * region in which a load may be issued given the user's privilege level.
1102 */
1103 static int
dtrace_vcanload(void * src,dtrace_diftype_t * type,size_t * remain,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)1104 dtrace_vcanload(void *src, dtrace_diftype_t *type, size_t *remain,
1105 dtrace_mstate_t *mstate, dtrace_vstate_t *vstate)
1106 {
1107 size_t sz;
1108 ASSERT(type->dtdt_flags & DIF_TF_BYREF);
1109
1110 /*
1111 * Calculate the max size before performing any checks since even
1112 * DTRACE_ACCESS_KERNEL-credentialed callers expect that this function
1113 * return the max length via 'remain'.
1114 */
1115 if (type->dtdt_kind == DIF_TYPE_STRING) {
1116 dtrace_state_t *state = vstate->dtvs_state;
1117
1118 if (state != NULL) {
1119 sz = state->dts_options[DTRACEOPT_STRSIZE];
1120 } else {
1121 /*
1122 * In helper context, we have a NULL state; fall back
1123 * to using the system-wide default for the string size
1124 * in this case.
1125 */
1126 sz = dtrace_strsize_default;
1127 }
1128 } else {
1129 sz = type->dtdt_size;
1130 }
1131
1132 /*
1133 * If we hold the privilege to read from kernel memory, then
1134 * everything is readable.
1135 */
1136 if ((mstate->dtms_access & DTRACE_ACCESS_KERNEL) != 0) {
1137 DTRACE_RANGE_REMAIN(remain, (uintptr_t)src, src, sz);
1138 return (1);
1139 }
1140
1141 if (type->dtdt_kind == DIF_TYPE_STRING) {
1142 return (dtrace_strcanload((uintptr_t)src, sz, remain, mstate,
1143 vstate));
1144 }
1145 return (dtrace_canload_remains((uintptr_t)src, sz, remain, mstate,
1146 vstate));
1147 }
1148
1149 /*
1150 * Convert a string to a signed integer using safe loads.
1151 *
1152 * NOTE: This function uses various macros from strtolctype.h to manipulate
1153 * digit values, etc -- these have all been checked to ensure they make
1154 * no additional function calls.
1155 */
1156 static int64_t
dtrace_strtoll(char * input,int base,size_t limit)1157 dtrace_strtoll(char *input, int base, size_t limit)
1158 {
1159 uintptr_t pos = (uintptr_t)input;
1160 int64_t val = 0;
1161 int x;
1162 boolean_t neg = B_FALSE;
1163 char c, cc, ccc;
1164 uintptr_t end = pos + limit;
1165
1166 /*
1167 * Consume any whitespace preceding digits.
1168 */
1169 while ((c = dtrace_load8(pos)) == ' ' || c == '\t')
1170 pos++;
1171
1172 /*
1173 * Handle an explicit sign if one is present.
1174 */
1175 if (c == '-' || c == '+') {
1176 if (c == '-')
1177 neg = B_TRUE;
1178 c = dtrace_load8(++pos);
1179 }
1180
1181 /*
1182 * Check for an explicit hexadecimal prefix ("0x" or "0X") and skip it
1183 * if present.
1184 */
1185 if (base == 16 && c == '0' && ((cc = dtrace_load8(pos + 1)) == 'x' ||
1186 cc == 'X') && isxdigit(ccc = dtrace_load8(pos + 2))) {
1187 pos += 2;
1188 c = ccc;
1189 }
1190
1191 /*
1192 * Read in contiguous digits until the first non-digit character.
1193 */
1194 for (; pos < end && c != '\0' && lisalnum(c) && (x = DIGIT(c)) < base;
1195 c = dtrace_load8(++pos))
1196 val = val * base + x;
1197
1198 return (neg ? -val : val);
1199 }
1200
1201 /*
1202 * Compare two strings using safe loads.
1203 */
1204 static int
dtrace_strncmp(char * s1,char * s2,size_t limit)1205 dtrace_strncmp(char *s1, char *s2, size_t limit)
1206 {
1207 uint8_t c1, c2;
1208 volatile uint16_t *flags;
1209
1210 if (s1 == s2 || limit == 0)
1211 return (0);
1212
1213 flags = (volatile uint16_t *)&cpu_core[curcpu].cpuc_dtrace_flags;
1214
1215 do {
1216 if (s1 == NULL) {
1217 c1 = '\0';
1218 } else {
1219 c1 = dtrace_load8((uintptr_t)s1++);
1220 }
1221
1222 if (s2 == NULL) {
1223 c2 = '\0';
1224 } else {
1225 c2 = dtrace_load8((uintptr_t)s2++);
1226 }
1227
1228 if (c1 != c2)
1229 return (c1 - c2);
1230 } while (--limit && c1 != '\0' && !(*flags & CPU_DTRACE_FAULT));
1231
1232 return (0);
1233 }
1234
1235 /*
1236 * Compute strlen(s) for a string using safe memory accesses. The additional
1237 * len parameter is used to specify a maximum length to ensure completion.
1238 */
1239 static size_t
dtrace_strlen(const char * s,size_t lim)1240 dtrace_strlen(const char *s, size_t lim)
1241 {
1242 uint_t len;
1243
1244 for (len = 0; len != lim; len++) {
1245 if (dtrace_load8((uintptr_t)s++) == '\0')
1246 break;
1247 }
1248
1249 return (len);
1250 }
1251
1252 /*
1253 * Check if an address falls within a toxic region.
1254 */
1255 static int
dtrace_istoxic(uintptr_t kaddr,size_t size)1256 dtrace_istoxic(uintptr_t kaddr, size_t size)
1257 {
1258 uintptr_t taddr, tsize;
1259 int i;
1260
1261 for (i = 0; i < dtrace_toxranges; i++) {
1262 taddr = dtrace_toxrange[i].dtt_base;
1263 tsize = dtrace_toxrange[i].dtt_limit - taddr;
1264
1265 if (kaddr - taddr < tsize) {
1266 DTRACE_CPUFLAG_SET(CPU_DTRACE_BADADDR);
1267 cpu_core[curcpu].cpuc_dtrace_illval = kaddr;
1268 return (1);
1269 }
1270
1271 if (taddr - kaddr < size) {
1272 DTRACE_CPUFLAG_SET(CPU_DTRACE_BADADDR);
1273 cpu_core[curcpu].cpuc_dtrace_illval = taddr;
1274 return (1);
1275 }
1276 }
1277
1278 return (0);
1279 }
1280
1281 /*
1282 * Copy src to dst using safe memory accesses. The src is assumed to be unsafe
1283 * memory specified by the DIF program. The dst is assumed to be safe memory
1284 * that we can store to directly because it is managed by DTrace. As with
1285 * standard bcopy, overlapping copies are handled properly.
1286 */
1287 static void
dtrace_bcopy(const void * src,void * dst,size_t len)1288 dtrace_bcopy(const void *src, void *dst, size_t len)
1289 {
1290 if (len != 0) {
1291 uint8_t *s1 = dst;
1292 const uint8_t *s2 = src;
1293
1294 if (s1 <= s2) {
1295 do {
1296 *s1++ = dtrace_load8((uintptr_t)s2++);
1297 } while (--len != 0);
1298 } else {
1299 s2 += len;
1300 s1 += len;
1301
1302 do {
1303 *--s1 = dtrace_load8((uintptr_t)--s2);
1304 } while (--len != 0);
1305 }
1306 }
1307 }
1308
1309 /*
1310 * Copy src to dst using safe memory accesses, up to either the specified
1311 * length, or the point that a nul byte is encountered. The src is assumed to
1312 * be unsafe memory specified by the DIF program. The dst is assumed to be
1313 * safe memory that we can store to directly because it is managed by DTrace.
1314 * Unlike dtrace_bcopy(), overlapping regions are not handled.
1315 */
1316 static void
dtrace_strcpy(const void * src,void * dst,size_t len)1317 dtrace_strcpy(const void *src, void *dst, size_t len)
1318 {
1319 if (len != 0) {
1320 uint8_t *s1 = dst, c;
1321 const uint8_t *s2 = src;
1322
1323 do {
1324 *s1++ = c = dtrace_load8((uintptr_t)s2++);
1325 } while (--len != 0 && c != '\0');
1326 }
1327 }
1328
1329 /*
1330 * Copy src to dst, deriving the size and type from the specified (BYREF)
1331 * variable type. The src is assumed to be unsafe memory specified by the DIF
1332 * program. The dst is assumed to be DTrace variable memory that is of the
1333 * specified type; we assume that we can store to directly.
1334 */
1335 static void
dtrace_vcopy(void * src,void * dst,dtrace_diftype_t * type,size_t limit)1336 dtrace_vcopy(void *src, void *dst, dtrace_diftype_t *type, size_t limit)
1337 {
1338 ASSERT(type->dtdt_flags & DIF_TF_BYREF);
1339
1340 if (type->dtdt_kind == DIF_TYPE_STRING) {
1341 dtrace_strcpy(src, dst, MIN(type->dtdt_size, limit));
1342 } else {
1343 dtrace_bcopy(src, dst, MIN(type->dtdt_size, limit));
1344 }
1345 }
1346
1347 /*
1348 * Compare s1 to s2 using safe memory accesses. The s1 data is assumed to be
1349 * unsafe memory specified by the DIF program. The s2 data is assumed to be
1350 * safe memory that we can access directly because it is managed by DTrace.
1351 */
1352 static int
dtrace_bcmp(const void * s1,const void * s2,size_t len)1353 dtrace_bcmp(const void *s1, const void *s2, size_t len)
1354 {
1355 volatile uint16_t *flags;
1356
1357 flags = (volatile uint16_t *)&cpu_core[curcpu].cpuc_dtrace_flags;
1358
1359 if (s1 == s2)
1360 return (0);
1361
1362 if (s1 == NULL || s2 == NULL)
1363 return (1);
1364
1365 if (s1 != s2 && len != 0) {
1366 const uint8_t *ps1 = s1;
1367 const uint8_t *ps2 = s2;
1368
1369 do {
1370 if (dtrace_load8((uintptr_t)ps1++) != *ps2++)
1371 return (1);
1372 } while (--len != 0 && !(*flags & CPU_DTRACE_FAULT));
1373 }
1374 return (0);
1375 }
1376
1377 /*
1378 * Zero the specified region using a simple byte-by-byte loop. Note that this
1379 * is for safe DTrace-managed memory only.
1380 */
1381 static void
dtrace_bzero(void * dst,size_t len)1382 dtrace_bzero(void *dst, size_t len)
1383 {
1384 uchar_t *cp;
1385
1386 for (cp = dst; len != 0; len--)
1387 *cp++ = 0;
1388 }
1389
1390 static void
dtrace_add_128(uint64_t * addend1,uint64_t * addend2,uint64_t * sum)1391 dtrace_add_128(uint64_t *addend1, uint64_t *addend2, uint64_t *sum)
1392 {
1393 uint64_t result[2];
1394
1395 result[0] = addend1[0] + addend2[0];
1396 result[1] = addend1[1] + addend2[1] +
1397 (result[0] < addend1[0] || result[0] < addend2[0] ? 1 : 0);
1398
1399 sum[0] = result[0];
1400 sum[1] = result[1];
1401 }
1402
1403 /*
1404 * Shift the 128-bit value in a by b. If b is positive, shift left.
1405 * If b is negative, shift right.
1406 */
1407 static void
dtrace_shift_128(uint64_t * a,int b)1408 dtrace_shift_128(uint64_t *a, int b)
1409 {
1410 uint64_t mask;
1411
1412 if (b == 0)
1413 return;
1414
1415 if (b < 0) {
1416 b = -b;
1417 if (b >= 64) {
1418 a[0] = a[1] >> (b - 64);
1419 a[1] = 0;
1420 } else {
1421 a[0] >>= b;
1422 mask = 1LL << (64 - b);
1423 mask -= 1;
1424 a[0] |= ((a[1] & mask) << (64 - b));
1425 a[1] >>= b;
1426 }
1427 } else {
1428 if (b >= 64) {
1429 a[1] = a[0] << (b - 64);
1430 a[0] = 0;
1431 } else {
1432 a[1] <<= b;
1433 mask = a[0] >> (64 - b);
1434 a[1] |= mask;
1435 a[0] <<= b;
1436 }
1437 }
1438 }
1439
1440 /*
1441 * The basic idea is to break the 2 64-bit values into 4 32-bit values,
1442 * use native multiplication on those, and then re-combine into the
1443 * resulting 128-bit value.
1444 *
1445 * (hi1 << 32 + lo1) * (hi2 << 32 + lo2) =
1446 * hi1 * hi2 << 64 +
1447 * hi1 * lo2 << 32 +
1448 * hi2 * lo1 << 32 +
1449 * lo1 * lo2
1450 */
1451 static void
dtrace_multiply_128(uint64_t factor1,uint64_t factor2,uint64_t * product)1452 dtrace_multiply_128(uint64_t factor1, uint64_t factor2, uint64_t *product)
1453 {
1454 uint64_t hi1, hi2, lo1, lo2;
1455 uint64_t tmp[2];
1456
1457 hi1 = factor1 >> 32;
1458 hi2 = factor2 >> 32;
1459
1460 lo1 = factor1 & DT_MASK_LO;
1461 lo2 = factor2 & DT_MASK_LO;
1462
1463 product[0] = lo1 * lo2;
1464 product[1] = hi1 * hi2;
1465
1466 tmp[0] = hi1 * lo2;
1467 tmp[1] = 0;
1468 dtrace_shift_128(tmp, 32);
1469 dtrace_add_128(product, tmp, product);
1470
1471 tmp[0] = hi2 * lo1;
1472 tmp[1] = 0;
1473 dtrace_shift_128(tmp, 32);
1474 dtrace_add_128(product, tmp, product);
1475 }
1476
1477 /*
1478 * This privilege check should be used by actions and subroutines to
1479 * verify that the user credentials of the process that enabled the
1480 * invoking ECB match the target credentials
1481 */
1482 static int
dtrace_priv_proc_common_user(dtrace_state_t * state)1483 dtrace_priv_proc_common_user(dtrace_state_t *state)
1484 {
1485 cred_t *cr, *s_cr = state->dts_cred.dcr_cred;
1486
1487 /*
1488 * We should always have a non-NULL state cred here, since if cred
1489 * is null (anonymous tracing), we fast-path bypass this routine.
1490 */
1491 ASSERT(s_cr != NULL);
1492
1493 if ((cr = CRED()) != NULL &&
1494 s_cr->cr_uid == cr->cr_uid &&
1495 s_cr->cr_uid == cr->cr_ruid &&
1496 s_cr->cr_uid == cr->cr_suid &&
1497 s_cr->cr_gid == cr->cr_gid &&
1498 s_cr->cr_gid == cr->cr_rgid &&
1499 s_cr->cr_gid == cr->cr_sgid)
1500 return (1);
1501
1502 return (0);
1503 }
1504
1505 /*
1506 * This privilege check should be used by actions and subroutines to
1507 * verify that the zone of the process that enabled the invoking ECB
1508 * matches the target credentials
1509 */
1510 static int
dtrace_priv_proc_common_zone(dtrace_state_t * state)1511 dtrace_priv_proc_common_zone(dtrace_state_t *state)
1512 {
1513 #ifdef illumos
1514 cred_t *cr, *s_cr = state->dts_cred.dcr_cred;
1515
1516 /*
1517 * We should always have a non-NULL state cred here, since if cred
1518 * is null (anonymous tracing), we fast-path bypass this routine.
1519 */
1520 ASSERT(s_cr != NULL);
1521
1522 if ((cr = CRED()) != NULL && s_cr->cr_zone == cr->cr_zone)
1523 return (1);
1524
1525 return (0);
1526 #else
1527 return (1);
1528 #endif
1529 }
1530
1531 /*
1532 * This privilege check should be used by actions and subroutines to
1533 * verify that the process has not setuid or changed credentials.
1534 */
1535 static int
dtrace_priv_proc_common_nocd(void)1536 dtrace_priv_proc_common_nocd(void)
1537 {
1538 proc_t *proc;
1539
1540 if ((proc = ttoproc(curthread)) != NULL &&
1541 !(proc->p_flag & SNOCD))
1542 return (1);
1543
1544 return (0);
1545 }
1546
1547 static int
dtrace_priv_proc_destructive(dtrace_state_t * state)1548 dtrace_priv_proc_destructive(dtrace_state_t *state)
1549 {
1550 int action = state->dts_cred.dcr_action;
1551
1552 if (((action & DTRACE_CRA_PROC_DESTRUCTIVE_ALLZONE) == 0) &&
1553 dtrace_priv_proc_common_zone(state) == 0)
1554 goto bad;
1555
1556 if (((action & DTRACE_CRA_PROC_DESTRUCTIVE_ALLUSER) == 0) &&
1557 dtrace_priv_proc_common_user(state) == 0)
1558 goto bad;
1559
1560 if (((action & DTRACE_CRA_PROC_DESTRUCTIVE_CREDCHG) == 0) &&
1561 dtrace_priv_proc_common_nocd() == 0)
1562 goto bad;
1563
1564 return (1);
1565
1566 bad:
1567 cpu_core[curcpu].cpuc_dtrace_flags |= CPU_DTRACE_UPRIV;
1568
1569 return (0);
1570 }
1571
1572 static int
dtrace_priv_proc_control(dtrace_state_t * state)1573 dtrace_priv_proc_control(dtrace_state_t *state)
1574 {
1575 if (state->dts_cred.dcr_action & DTRACE_CRA_PROC_CONTROL)
1576 return (1);
1577
1578 if (dtrace_priv_proc_common_zone(state) &&
1579 dtrace_priv_proc_common_user(state) &&
1580 dtrace_priv_proc_common_nocd())
1581 return (1);
1582
1583 cpu_core[curcpu].cpuc_dtrace_flags |= CPU_DTRACE_UPRIV;
1584
1585 return (0);
1586 }
1587
1588 static int
dtrace_priv_proc(dtrace_state_t * state)1589 dtrace_priv_proc(dtrace_state_t *state)
1590 {
1591 if (state->dts_cred.dcr_action & DTRACE_CRA_PROC)
1592 return (1);
1593
1594 cpu_core[curcpu].cpuc_dtrace_flags |= CPU_DTRACE_UPRIV;
1595
1596 return (0);
1597 }
1598
1599 static int
dtrace_priv_kernel(dtrace_state_t * state)1600 dtrace_priv_kernel(dtrace_state_t *state)
1601 {
1602 if (state->dts_cred.dcr_action & DTRACE_CRA_KERNEL)
1603 return (1);
1604
1605 cpu_core[curcpu].cpuc_dtrace_flags |= CPU_DTRACE_KPRIV;
1606
1607 return (0);
1608 }
1609
1610 static int
dtrace_priv_kernel_destructive(dtrace_state_t * state)1611 dtrace_priv_kernel_destructive(dtrace_state_t *state)
1612 {
1613 if (state->dts_cred.dcr_action & DTRACE_CRA_KERNEL_DESTRUCTIVE)
1614 return (1);
1615
1616 cpu_core[curcpu].cpuc_dtrace_flags |= CPU_DTRACE_KPRIV;
1617
1618 return (0);
1619 }
1620
1621 /*
1622 * Determine if the dte_cond of the specified ECB allows for processing of
1623 * the current probe to continue. Note that this routine may allow continued
1624 * processing, but with access(es) stripped from the mstate's dtms_access
1625 * field.
1626 */
1627 static int
dtrace_priv_probe(dtrace_state_t * state,dtrace_mstate_t * mstate,dtrace_ecb_t * ecb)1628 dtrace_priv_probe(dtrace_state_t *state, dtrace_mstate_t *mstate,
1629 dtrace_ecb_t *ecb)
1630 {
1631 dtrace_probe_t *probe = ecb->dte_probe;
1632 dtrace_provider_t *prov = probe->dtpr_provider;
1633 dtrace_pops_t *pops = &prov->dtpv_pops;
1634 int mode = DTRACE_MODE_NOPRIV_DROP;
1635
1636 ASSERT(ecb->dte_cond);
1637
1638 #ifdef illumos
1639 if (pops->dtps_mode != NULL) {
1640 mode = pops->dtps_mode(prov->dtpv_arg,
1641 probe->dtpr_id, probe->dtpr_arg);
1642
1643 ASSERT((mode & DTRACE_MODE_USER) ||
1644 (mode & DTRACE_MODE_KERNEL));
1645 ASSERT((mode & DTRACE_MODE_NOPRIV_RESTRICT) ||
1646 (mode & DTRACE_MODE_NOPRIV_DROP));
1647 }
1648
1649 /*
1650 * If the dte_cond bits indicate that this consumer is only allowed to
1651 * see user-mode firings of this probe, call the provider's dtps_mode()
1652 * entry point to check that the probe was fired while in a user
1653 * context. If that's not the case, use the policy specified by the
1654 * provider to determine if we drop the probe or merely restrict
1655 * operation.
1656 */
1657 if (ecb->dte_cond & DTRACE_COND_USERMODE) {
1658 ASSERT(mode != DTRACE_MODE_NOPRIV_DROP);
1659
1660 if (!(mode & DTRACE_MODE_USER)) {
1661 if (mode & DTRACE_MODE_NOPRIV_DROP)
1662 return (0);
1663
1664 mstate->dtms_access &= ~DTRACE_ACCESS_ARGS;
1665 }
1666 }
1667 #endif
1668
1669 /*
1670 * This is more subtle than it looks. We have to be absolutely certain
1671 * that CRED() isn't going to change out from under us so it's only
1672 * legit to examine that structure if we're in constrained situations.
1673 * Currently, the only times we'll this check is if a non-super-user
1674 * has enabled the profile or syscall providers -- providers that
1675 * allow visibility of all processes. For the profile case, the check
1676 * above will ensure that we're examining a user context.
1677 */
1678 if (ecb->dte_cond & DTRACE_COND_OWNER) {
1679 cred_t *cr;
1680 cred_t *s_cr = state->dts_cred.dcr_cred;
1681 proc_t *proc;
1682
1683 ASSERT(s_cr != NULL);
1684
1685 if ((cr = CRED()) == NULL ||
1686 s_cr->cr_uid != cr->cr_uid ||
1687 s_cr->cr_uid != cr->cr_ruid ||
1688 s_cr->cr_uid != cr->cr_suid ||
1689 s_cr->cr_gid != cr->cr_gid ||
1690 s_cr->cr_gid != cr->cr_rgid ||
1691 s_cr->cr_gid != cr->cr_sgid ||
1692 (proc = ttoproc(curthread)) == NULL ||
1693 (proc->p_flag & SNOCD)) {
1694 if (mode & DTRACE_MODE_NOPRIV_DROP)
1695 return (0);
1696
1697 #ifdef illumos
1698 mstate->dtms_access &= ~DTRACE_ACCESS_PROC;
1699 #endif
1700 }
1701 }
1702
1703 #ifdef illumos
1704 /*
1705 * If our dte_cond is set to DTRACE_COND_ZONEOWNER and we are not
1706 * in our zone, check to see if our mode policy is to restrict rather
1707 * than to drop; if to restrict, strip away both DTRACE_ACCESS_PROC
1708 * and DTRACE_ACCESS_ARGS
1709 */
1710 if (ecb->dte_cond & DTRACE_COND_ZONEOWNER) {
1711 cred_t *cr;
1712 cred_t *s_cr = state->dts_cred.dcr_cred;
1713
1714 ASSERT(s_cr != NULL);
1715
1716 if ((cr = CRED()) == NULL ||
1717 s_cr->cr_zone->zone_id != cr->cr_zone->zone_id) {
1718 if (mode & DTRACE_MODE_NOPRIV_DROP)
1719 return (0);
1720
1721 mstate->dtms_access &=
1722 ~(DTRACE_ACCESS_PROC | DTRACE_ACCESS_ARGS);
1723 }
1724 }
1725 #endif
1726
1727 return (1);
1728 }
1729
1730 /*
1731 * Note: not called from probe context. This function is called
1732 * asynchronously (and at a regular interval) from outside of probe context to
1733 * clean the dirty dynamic variable lists on all CPUs. Dynamic variable
1734 * cleaning is explained in detail in <sys/dtrace_impl.h>.
1735 */
1736 void
dtrace_dynvar_clean(dtrace_dstate_t * dstate)1737 dtrace_dynvar_clean(dtrace_dstate_t *dstate)
1738 {
1739 dtrace_dynvar_t *dirty;
1740 dtrace_dstate_percpu_t *dcpu;
1741 dtrace_dynvar_t **rinsep;
1742 int i, j, work = 0;
1743
1744 for (i = 0; i < NCPU; i++) {
1745 dcpu = &dstate->dtds_percpu[i];
1746 rinsep = &dcpu->dtdsc_rinsing;
1747
1748 /*
1749 * If the dirty list is NULL, there is no dirty work to do.
1750 */
1751 if (dcpu->dtdsc_dirty == NULL)
1752 continue;
1753
1754 if (dcpu->dtdsc_rinsing != NULL) {
1755 /*
1756 * If the rinsing list is non-NULL, then it is because
1757 * this CPU was selected to accept another CPU's
1758 * dirty list -- and since that time, dirty buffers
1759 * have accumulated. This is a highly unlikely
1760 * condition, but we choose to ignore the dirty
1761 * buffers -- they'll be picked up a future cleanse.
1762 */
1763 continue;
1764 }
1765
1766 if (dcpu->dtdsc_clean != NULL) {
1767 /*
1768 * If the clean list is non-NULL, then we're in a
1769 * situation where a CPU has done deallocations (we
1770 * have a non-NULL dirty list) but no allocations (we
1771 * also have a non-NULL clean list). We can't simply
1772 * move the dirty list into the clean list on this
1773 * CPU, yet we also don't want to allow this condition
1774 * to persist, lest a short clean list prevent a
1775 * massive dirty list from being cleaned (which in
1776 * turn could lead to otherwise avoidable dynamic
1777 * drops). To deal with this, we look for some CPU
1778 * with a NULL clean list, NULL dirty list, and NULL
1779 * rinsing list -- and then we borrow this CPU to
1780 * rinse our dirty list.
1781 */
1782 for (j = 0; j < NCPU; j++) {
1783 dtrace_dstate_percpu_t *rinser;
1784
1785 rinser = &dstate->dtds_percpu[j];
1786
1787 if (rinser->dtdsc_rinsing != NULL)
1788 continue;
1789
1790 if (rinser->dtdsc_dirty != NULL)
1791 continue;
1792
1793 if (rinser->dtdsc_clean != NULL)
1794 continue;
1795
1796 rinsep = &rinser->dtdsc_rinsing;
1797 break;
1798 }
1799
1800 if (j == NCPU) {
1801 /*
1802 * We were unable to find another CPU that
1803 * could accept this dirty list -- we are
1804 * therefore unable to clean it now.
1805 */
1806 dtrace_dynvar_failclean++;
1807 continue;
1808 }
1809 }
1810
1811 work = 1;
1812
1813 /*
1814 * Atomically move the dirty list aside.
1815 */
1816 do {
1817 dirty = dcpu->dtdsc_dirty;
1818
1819 /*
1820 * Before we zap the dirty list, set the rinsing list.
1821 * (This allows for a potential assertion in
1822 * dtrace_dynvar(): if a free dynamic variable appears
1823 * on a hash chain, either the dirty list or the
1824 * rinsing list for some CPU must be non-NULL.)
1825 */
1826 *rinsep = dirty;
1827 dtrace_membar_producer();
1828 } while (dtrace_casptr(&dcpu->dtdsc_dirty,
1829 dirty, NULL) != dirty);
1830 }
1831
1832 if (!work) {
1833 /*
1834 * We have no work to do; we can simply return.
1835 */
1836 return;
1837 }
1838
1839 dtrace_sync();
1840
1841 for (i = 0; i < NCPU; i++) {
1842 dcpu = &dstate->dtds_percpu[i];
1843
1844 if (dcpu->dtdsc_rinsing == NULL)
1845 continue;
1846
1847 /*
1848 * We are now guaranteed that no hash chain contains a pointer
1849 * into this dirty list; we can make it clean.
1850 */
1851 ASSERT(dcpu->dtdsc_clean == NULL);
1852 dcpu->dtdsc_clean = dcpu->dtdsc_rinsing;
1853 dcpu->dtdsc_rinsing = NULL;
1854 }
1855
1856 /*
1857 * Before we actually set the state to be DTRACE_DSTATE_CLEAN, make
1858 * sure that all CPUs have seen all of the dtdsc_clean pointers.
1859 * This prevents a race whereby a CPU incorrectly decides that
1860 * the state should be something other than DTRACE_DSTATE_CLEAN
1861 * after dtrace_dynvar_clean() has completed.
1862 */
1863 dtrace_sync();
1864
1865 dstate->dtds_state = DTRACE_DSTATE_CLEAN;
1866 }
1867
1868 /*
1869 * Depending on the value of the op parameter, this function looks-up,
1870 * allocates or deallocates an arbitrarily-keyed dynamic variable. If an
1871 * allocation is requested, this function will return a pointer to a
1872 * dtrace_dynvar_t corresponding to the allocated variable -- or NULL if no
1873 * variable can be allocated. If NULL is returned, the appropriate counter
1874 * will be incremented.
1875 */
1876 dtrace_dynvar_t *
dtrace_dynvar(dtrace_dstate_t * dstate,uint_t nkeys,dtrace_key_t * key,size_t dsize,dtrace_dynvar_op_t op,dtrace_mstate_t * mstate,dtrace_vstate_t * vstate)1877 dtrace_dynvar(dtrace_dstate_t *dstate, uint_t nkeys,
1878 dtrace_key_t *key, size_t dsize, dtrace_dynvar_op_t op,
1879 dtrace_mstate_t *mstate, dtrace_vstate_t *vstate)
1880 {
1881 uint64_t hashval = DTRACE_DYNHASH_VALID;
1882 dtrace_dynhash_t *hash = dstate->dtds_hash;
1883 dtrace_dynvar_t *free, *new_free, *next, *dvar, *start, *prev = NULL;
1884 processorid_t me = curcpu, cpu = me;
1885 dtrace_dstate_percpu_t *dcpu = &dstate->dtds_percpu[me];
1886 size_t bucket, ksize;
1887 size_t chunksize = dstate->dtds_chunksize;
1888 uintptr_t kdata, lock, nstate;
1889 uint_t i;
1890
1891 ASSERT(nkeys != 0);
1892
1893 /*
1894 * Hash the key. As with aggregations, we use Jenkins' "One-at-a-time"
1895 * algorithm. For the by-value portions, we perform the algorithm in
1896 * 16-bit chunks (as opposed to 8-bit chunks). This speeds things up a
1897 * bit, and seems to have only a minute effect on distribution. For
1898 * the by-reference data, we perform "One-at-a-time" iterating (safely)
1899 * over each referenced byte. It's painful to do this, but it's much
1900 * better than pathological hash distribution. The efficacy of the
1901 * hashing algorithm (and a comparison with other algorithms) may be
1902 * found by running the ::dtrace_dynstat MDB dcmd.
1903 */
1904 for (i = 0; i < nkeys; i++) {
1905 if (key[i].dttk_size == 0) {
1906 uint64_t val = key[i].dttk_value;
1907
1908 hashval += (val >> 48) & 0xffff;
1909 hashval += (hashval << 10);
1910 hashval ^= (hashval >> 6);
1911
1912 hashval += (val >> 32) & 0xffff;
1913 hashval += (hashval << 10);
1914 hashval ^= (hashval >> 6);
1915
1916 hashval += (val >> 16) & 0xffff;
1917 hashval += (hashval << 10);
1918 hashval ^= (hashval >> 6);
1919
1920 hashval += val & 0xffff;
1921 hashval += (hashval << 10);
1922 hashval ^= (hashval >> 6);
1923 } else {
1924 /*
1925 * This is incredibly painful, but it beats the hell
1926 * out of the alternative.
1927 */
1928 uint64_t j, size = key[i].dttk_size;
1929 uintptr_t base = (uintptr_t)key[i].dttk_value;
1930
1931 if (!dtrace_canload(base, size, mstate, vstate))
1932 break;
1933
1934 for (j = 0; j < size; j++) {
1935 hashval += dtrace_load8(base + j);
1936 hashval += (hashval << 10);
1937 hashval ^= (hashval >> 6);
1938 }
1939 }
1940 }
1941
1942 if (DTRACE_CPUFLAG_ISSET(CPU_DTRACE_FAULT))
1943 return (NULL);
1944
1945 hashval += (hashval << 3);
1946 hashval ^= (hashval >> 11);
1947 hashval += (hashval << 15);
1948
1949 /*
1950 * There is a remote chance (ideally, 1 in 2^31) that our hashval
1951 * comes out to be one of our two sentinel hash values. If this
1952 * actually happens, we set the hashval to be a value known to be a
1953 * non-sentinel value.
1954 */
1955 if (hashval == DTRACE_DYNHASH_FREE || hashval == DTRACE_DYNHASH_SINK)
1956 hashval = DTRACE_DYNHASH_VALID;
1957
1958 /*
1959 * Yes, it's painful to do a divide here. If the cycle count becomes
1960 * important here, tricks can be pulled to reduce it. (However, it's
1961 * critical that hash collisions be kept to an absolute minimum;
1962 * they're much more painful than a divide.) It's better to have a
1963 * solution that generates few collisions and still keeps things
1964 * relatively simple.
1965 */
1966 bucket = hashval % dstate->dtds_hashsize;
1967
1968 if (op == DTRACE_DYNVAR_DEALLOC) {
1969 volatile uintptr_t *lockp = &hash[bucket].dtdh_lock;
1970
1971 for (;;) {
1972 while ((lock = *lockp) & 1)
1973 continue;
1974
1975 if (dtrace_casptr((volatile void *)lockp,
1976 (volatile void *)lock, (volatile void *)(lock + 1)) == (void *)lock)
1977 break;
1978 }
1979
1980 dtrace_membar_producer();
1981 }
1982
1983 top:
1984 prev = NULL;
1985 lock = hash[bucket].dtdh_lock;
1986
1987 dtrace_membar_consumer();
1988
1989 start = hash[bucket].dtdh_chain;
1990 ASSERT(start != NULL && (start->dtdv_hashval == DTRACE_DYNHASH_SINK ||
1991 start->dtdv_hashval != DTRACE_DYNHASH_FREE ||
1992 op != DTRACE_DYNVAR_DEALLOC));
1993
1994 for (dvar = start; dvar != NULL; dvar = dvar->dtdv_next) {
1995 dtrace_tuple_t *dtuple = &dvar->dtdv_tuple;
1996 dtrace_key_t *dkey = &dtuple->dtt_key[0];
1997
1998 if (dvar->dtdv_hashval != hashval) {
1999 if (dvar->dtdv_hashval == DTRACE_DYNHASH_SINK) {
2000 /*
2001 * We've reached the sink, and therefore the
2002 * end of the hash chain; we can kick out of
2003 * the loop knowing that we have seen a valid
2004 * snapshot of state.
2005 */
2006 ASSERT(dvar->dtdv_next == NULL);
2007 ASSERT(dvar == &dtrace_dynhash_sink);
2008 break;
2009 }
2010
2011 if (dvar->dtdv_hashval == DTRACE_DYNHASH_FREE) {
2012 /*
2013 * We've gone off the rails: somewhere along
2014 * the line, one of the members of this hash
2015 * chain was deleted. Note that we could also
2016 * detect this by simply letting this loop run
2017 * to completion, as we would eventually hit
2018 * the end of the dirty list. However, we
2019 * want to avoid running the length of the
2020 * dirty list unnecessarily (it might be quite
2021 * long), so we catch this as early as
2022 * possible by detecting the hash marker. In
2023 * this case, we simply set dvar to NULL and
2024 * break; the conditional after the loop will
2025 * send us back to top.
2026 */
2027 dvar = NULL;
2028 break;
2029 }
2030
2031 goto next;
2032 }
2033
2034 if (dtuple->dtt_nkeys != nkeys)
2035 goto next;
2036
2037 for (i = 0; i < nkeys; i++, dkey++) {
2038 if (dkey->dttk_size != key[i].dttk_size)
2039 goto next; /* size or type mismatch */
2040
2041 if (dkey->dttk_size != 0) {
2042 if (dtrace_bcmp(
2043 (void *)(uintptr_t)key[i].dttk_value,
2044 (void *)(uintptr_t)dkey->dttk_value,
2045 dkey->dttk_size))
2046 goto next;
2047 } else {
2048 if (dkey->dttk_value != key[i].dttk_value)
2049 goto next;
2050 }
2051 }
2052
2053 if (op != DTRACE_DYNVAR_DEALLOC)
2054 return (dvar);
2055
2056 ASSERT(dvar->dtdv_next == NULL ||
2057 dvar->dtdv_next->dtdv_hashval != DTRACE_DYNHASH_FREE);
2058
2059 if (prev != NULL) {
2060 ASSERT(hash[bucket].dtdh_chain != dvar);
2061 ASSERT(start != dvar);
2062 ASSERT(prev->dtdv_next == dvar);
2063 prev->dtdv_next = dvar->dtdv_next;
2064 } else {
2065 if (dtrace_casptr(&hash[bucket].dtdh_chain,
2066 start, dvar->dtdv_next) != start) {
2067 /*
2068 * We have failed to atomically swing the
2069 * hash table head pointer, presumably because
2070 * of a conflicting allocation on another CPU.
2071 * We need to reread the hash chain and try
2072 * again.
2073 */
2074 goto top;
2075 }
2076 }
2077
2078 dtrace_membar_producer();
2079
2080 /*
2081 * Now set the hash value to indicate that it's free.
2082 */
2083 ASSERT(hash[bucket].dtdh_chain != dvar);
2084 dvar->dtdv_hashval = DTRACE_DYNHASH_FREE;
2085
2086 dtrace_membar_producer();
2087
2088 /*
2089 * Set the next pointer to point at the dirty list, and
2090 * atomically swing the dirty pointer to the newly freed dvar.
2091 */
2092 do {
2093 next = dcpu->dtdsc_dirty;
2094 dvar->dtdv_next = next;
2095 } while (dtrace_casptr(&dcpu->dtdsc_dirty, next, dvar) != next);
2096
2097 /*
2098 * Finally, unlock this hash bucket.
2099 */
2100 ASSERT(hash[bucket].dtdh_lock == lock);
2101 ASSERT(lock & 1);
2102 hash[bucket].dtdh_lock++;
2103
2104 return (NULL);
2105 next:
2106 prev = dvar;
2107 continue;
2108 }
2109
2110 if (dvar == NULL) {
2111 /*
2112 * If dvar is NULL, it is because we went off the rails:
2113 * one of the elements that we traversed in the hash chain
2114 * was deleted while we were traversing it. In this case,
2115 * we assert that we aren't doing a dealloc (deallocs lock
2116 * the hash bucket to prevent themselves from racing with
2117 * one another), and retry the hash chain traversal.
2118 */
2119 ASSERT(op != DTRACE_DYNVAR_DEALLOC);
2120 goto top;
2121 }
2122
2123 if (op != DTRACE_DYNVAR_ALLOC) {
2124 /*
2125 * If we are not to allocate a new variable, we want to
2126 * return NULL now. Before we return, check that the value
2127 * of the lock word hasn't changed. If it has, we may have
2128 * seen an inconsistent snapshot.
2129 */
2130 if (op == DTRACE_DYNVAR_NOALLOC) {
2131 if (hash[bucket].dtdh_lock != lock)
2132 goto top;
2133 } else {
2134 ASSERT(op == DTRACE_DYNVAR_DEALLOC);
2135 ASSERT(hash[bucket].dtdh_lock == lock);
2136 ASSERT(lock & 1);
2137 hash[bucket].dtdh_lock++;
2138 }
2139
2140 return (NULL);
2141 }
2142
2143 /*
2144 * We need to allocate a new dynamic variable. The size we need is the
2145 * size of dtrace_dynvar plus the size of nkeys dtrace_key_t's plus the
2146 * size of any auxiliary key data (rounded up to 8-byte alignment) plus
2147 * the size of any referred-to data (dsize). We then round the final
2148 * size up to the chunksize for allocation.
2149 */
2150 for (ksize = 0, i = 0; i < nkeys; i++)
2151 ksize += P2ROUNDUP(key[i].dttk_size, sizeof (uint64_t));
2152
2153 /*
2154 * This should be pretty much impossible, but could happen if, say,
2155 * strange DIF specified the tuple. Ideally, this should be an
2156 * assertion and not an error condition -- but that requires that the
2157 * chunksize calculation in dtrace_difo_chunksize() be absolutely
2158 * bullet-proof. (That is, it must not be able to be fooled by
2159 * malicious DIF.) Given the lack of backwards branches in DIF,
2160 * solving this would presumably not amount to solving the Halting
2161 * Problem -- but it still seems awfully hard.
2162 */
2163 if (sizeof (dtrace_dynvar_t) + sizeof (dtrace_key_t) * (nkeys - 1) +
2164 ksize + dsize > chunksize) {
2165 dcpu->dtdsc_drops++;
2166 return (NULL);
2167 }
2168
2169 nstate = DTRACE_DSTATE_EMPTY;
2170
2171 do {
2172 retry:
2173 free = dcpu->dtdsc_free;
2174
2175 if (free == NULL) {
2176 dtrace_dynvar_t *clean = dcpu->dtdsc_clean;
2177 void *rval;
2178
2179 if (clean == NULL) {
2180 /*
2181 * We're out of dynamic variable space on
2182 * this CPU. Unless we have tried all CPUs,
2183 * we'll try to allocate from a different
2184 * CPU.
2185 */
2186 switch (dstate->dtds_state) {
2187 case DTRACE_DSTATE_CLEAN: {
2188 void *sp = &dstate->dtds_state;
2189
2190 if (++cpu >= NCPU)
2191 cpu = 0;
2192
2193 if (dcpu->dtdsc_dirty != NULL &&
2194 nstate == DTRACE_DSTATE_EMPTY)
2195 nstate = DTRACE_DSTATE_DIRTY;
2196
2197 if (dcpu->dtdsc_rinsing != NULL)
2198 nstate = DTRACE_DSTATE_RINSING;
2199
2200 dcpu = &dstate->dtds_percpu[cpu];
2201
2202 if (cpu != me)
2203 goto retry;
2204
2205 (void) dtrace_cas32(sp,
2206 DTRACE_DSTATE_CLEAN, nstate);
2207
2208 /*
2209 * To increment the correct bean
2210 * counter, take another lap.
2211 */
2212 goto retry;
2213 }
2214
2215 case DTRACE_DSTATE_DIRTY:
2216 dcpu->dtdsc_dirty_drops++;
2217 break;
2218
2219 case DTRACE_DSTATE_RINSING:
2220 dcpu->dtdsc_rinsing_drops++;
2221 break;
2222
2223 case DTRACE_DSTATE_EMPTY:
2224 dcpu->dtdsc_drops++;
2225 break;
2226 }
2227
2228 DTRACE_CPUFLAG_SET(CPU_DTRACE_DROP);
2229 return (NULL);
2230 }
2231
2232 /*
2233 * The clean list appears to be non-empty. We want to
2234 * move the clean list to the free list; we start by
2235 * moving the clean pointer aside.
2236 */
2237 if (dtrace_casptr(&dcpu->dtdsc_clean,
2238 clean, NULL) != clean) {
2239 /*
2240 * We are in one of two situations:
2241 *
2242 * (a) The clean list was switched to the
2243 * free list by another CPU.
2244 *
2245 * (b) The clean list was added to by the
2246 * cleansing cyclic.
2247 *
2248 * In either of these situations, we can
2249 * just reattempt the free list allocation.
2250 */
2251 goto retry;
2252 }
2253
2254 ASSERT(clean->dtdv_hashval == DTRACE_DYNHASH_FREE);
2255
2256 /*
2257 * Now we'll move the clean list to our free list.
2258 * It's impossible for this to fail: the only way
2259 * the free list can be updated is through this
2260 * code path, and only one CPU can own the clean list.
2261 * Thus, it would only be possible for this to fail if
2262 * this code were racing with dtrace_dynvar_clean().
2263 * (That is, if dtrace_dynvar_clean() updated the clean
2264 * list, and we ended up racing to update the free
2265 * list.) This race is prevented by the dtrace_sync()
2266 * in dtrace_dynvar_clean() -- which flushes the
2267 * owners of the clean lists out before resetting
2268 * the clean lists.
2269 */
2270 dcpu = &dstate->dtds_percpu[me];
2271 rval = dtrace_casptr(&dcpu->dtdsc_free, NULL, clean);
2272 ASSERT(rval == NULL);
2273 goto retry;
2274 }
2275
2276 dvar = free;
2277 new_free = dvar->dtdv_next;
2278 } while (dtrace_casptr(&dcpu->dtdsc_free, free, new_free) != free);
2279
2280 /*
2281 * We have now allocated a new chunk. We copy the tuple keys into the
2282 * tuple array and copy any referenced key data into the data space
2283 * following the tuple array. As we do this, we relocate dttk_value
2284 * in the final tuple to point to the key data address in the chunk.
2285 */
2286 kdata = (uintptr_t)&dvar->dtdv_tuple.dtt_key[nkeys];
2287 dvar->dtdv_data = (void *)(kdata + ksize);
2288 dvar->dtdv_tuple.dtt_nkeys = nkeys;
2289
2290 for (i = 0; i < nkeys; i++) {
2291 dtrace_key_t *dkey = &dvar->dtdv_tuple.dtt_key[i];
2292 size_t kesize = key[i].dttk_size;
2293
2294 if (kesize != 0) {
2295 dtrace_bcopy(
2296 (const void *)(uintptr_t)key[i].dttk_value,
2297 (void *)kdata, kesize);
2298 dkey->dttk_value = kdata;
2299 kdata += P2ROUNDUP(kesize, sizeof (uint64_t));
2300 } else {
2301 dkey->dttk_value = key[i].dttk_value;
2302 }
2303
2304 dkey->dttk_size = kesize;
2305 }
2306
2307 ASSERT(dvar->dtdv_hashval == DTRACE_DYNHASH_FREE);
2308 dvar->dtdv_hashval = hashval;
2309 dvar->dtdv_next = start;
2310
2311 if (dtrace_casptr(&hash[bucket].dtdh_chain, start, dvar) == start)
2312 return (dvar);
2313
2314 /*
2315 * The cas has failed. Either another CPU is adding an element to
2316 * this hash chain, or another CPU is deleting an element from this
2317 * hash chain. The simplest way to deal with both of these cases
2318 * (though not necessarily the most efficient) is to free our
2319 * allocated block and re-attempt it all. Note that the free is
2320 * to the dirty list and _not_ to the free list. This is to prevent
2321 * races with allocators, above.
2322 */
2323 dvar->dtdv_hashval = DTRACE_DYNHASH_FREE;
2324
2325 dtrace_membar_producer();
2326
2327 do {
2328 free = dcpu->dtdsc_dirty;
2329 dvar->dtdv_next = free;
2330 } while (dtrace_casptr(&dcpu->dtdsc_dirty, free, dvar) != free);
2331
2332 goto top;
2333 }
2334
2335 /*ARGSUSED*/
2336 static void
dtrace_aggregate_min(uint64_t * oval,uint64_t nval,uint64_t arg)2337 dtrace_aggregate_min(uint64_t *oval, uint64_t nval, uint64_t arg)
2338 {
2339 if ((int64_t)nval < (int64_t)*oval)
2340 *oval = nval;
2341 }
2342
2343 /*ARGSUSED*/
2344 static void
dtrace_aggregate_max(uint64_t * oval,uint64_t nval,uint64_t arg)2345 dtrace_aggregate_max(uint64_t *oval, uint64_t nval, uint64_t arg)
2346 {
2347 if ((int64_t)nval > (int64_t)*oval)
2348 *oval = nval;
2349 }
2350
2351 static void
dtrace_aggregate_quantize(uint64_t * quanta,uint64_t nval,uint64_t incr)2352 dtrace_aggregate_quantize(uint64_t *quanta, uint64_t nval, uint64_t incr)
2353 {
2354 int i, zero = DTRACE_QUANTIZE_ZEROBUCKET;
2355 int64_t val = (int64_t)nval;
2356
2357 if (val < 0) {
2358 for (i = 0; i < zero; i++) {
2359 if (val <= DTRACE_QUANTIZE_BUCKETVAL(i)) {
2360 quanta[i] += incr;
2361 return;
2362 }
2363 }
2364 } else {
2365 for (i = zero + 1; i < DTRACE_QUANTIZE_NBUCKETS; i++) {
2366 if (val < DTRACE_QUANTIZE_BUCKETVAL(i)) {
2367 quanta[i - 1] += incr;
2368 return;
2369 }
2370 }
2371
2372 quanta[DTRACE_QUANTIZE_NBUCKETS - 1] += incr;
2373 return;
2374 }
2375
2376 ASSERT(0);
2377 }
2378
2379 static void
dtrace_aggregate_lquantize(uint64_t * lquanta,uint64_t nval,uint64_t incr)2380 dtrace_aggregate_lquantize(uint64_t *lquanta, uint64_t nval, uint64_t incr)
2381 {
2382 uint64_t arg = *lquanta++;
2383 int32_t base = DTRACE_LQUANTIZE_BASE(arg);
2384 uint16_t step = DTRACE_LQUANTIZE_STEP(arg);
2385 uint16_t levels = DTRACE_LQUANTIZE_LEVELS(arg);
2386 int32_t val = (int32_t)nval, level;
2387
2388 ASSERT(step != 0);
2389 ASSERT(levels != 0);
2390
2391 if (val < base) {
2392 /*
2393 * This is an underflow.
2394 */
2395 lquanta[0] += incr;
2396 return;
2397 }
2398
2399 level = (val - base) / step;
2400
2401 if (level < levels) {
2402 lquanta[level + 1] += incr;
2403 return;
2404 }
2405
2406 /*
2407 * This is an overflow.
2408 */
2409 lquanta[levels + 1] += incr;
2410 }
2411
2412 static int
dtrace_aggregate_llquantize_bucket(uint16_t factor,uint16_t low,uint16_t high,uint16_t nsteps,int64_t value)2413 dtrace_aggregate_llquantize_bucket(uint16_t factor, uint16_t low,
2414 uint16_t high, uint16_t nsteps, int64_t value)
2415 {
2416 int64_t this = 1, last, next;
2417 int base = 1, order;
2418
2419 ASSERT(factor <= nsteps);
2420 ASSERT(nsteps % factor == 0);
2421
2422 for (order = 0; order < low; order++)
2423 this *= factor;
2424
2425 /*
2426 * If our value is less than our factor taken to the power of the
2427 * low order of magnitude, it goes into the zeroth bucket.
2428 */
2429 if (value < (last = this))
2430 return (0);
2431
2432 for (this *= factor; order <= high; order++) {
2433 int nbuckets = this > nsteps ? nsteps : this;
2434
2435 if ((next = this * factor) < this) {
2436 /*
2437 * We should not generally get log/linear quantizations
2438 * with a high magnitude that allows 64-bits to
2439 * overflow, but we nonetheless protect against this
2440 * by explicitly checking for overflow, and clamping
2441 * our value accordingly.
2442 */
2443 value = this - 1;
2444 }
2445
2446 if (value < this) {
2447 /*
2448 * If our value lies within this order of magnitude,
2449 * determine its position by taking the offset within
2450 * the order of magnitude, dividing by the bucket
2451 * width, and adding to our (accumulated) base.
2452 */
2453 return (base + (value - last) / (this / nbuckets));
2454 }
2455
2456 base += nbuckets - (nbuckets / factor);
2457 last = this;
2458 this = next;
2459 }
2460
2461 /*
2462 * Our value is greater than or equal to our factor taken to the
2463 * power of one plus the high magnitude -- return the top bucket.
2464 */
2465 return (base);
2466 }
2467
2468 static void
dtrace_aggregate_llquantize(uint64_t * llquanta,uint64_t nval,uint64_t incr)2469 dtrace_aggregate_llquantize(uint64_t *llquanta, uint64_t nval, uint64_t incr)
2470 {
2471 uint64_t arg = *llquanta++;
2472 uint16_t factor = DTRACE_LLQUANTIZE_FACTOR(arg);
2473 uint16_t low = DTRACE_LLQUANTIZE_LOW(arg);
2474 uint16_t high = DTRACE_LLQUANTIZE_HIGH(arg);
2475 uint16_t nsteps = DTRACE_LLQUANTIZE_NSTEP(arg);
2476
2477 llquanta[dtrace_aggregate_llquantize_bucket(factor,
2478 low, high, nsteps, nval)] += incr;
2479 }
2480
2481 /*ARGSUSED*/
2482 static void
dtrace_aggregate_avg(uint64_t * data,uint64_t nval,uint64_t arg)2483 dtrace_aggregate_avg(uint64_t *data, uint64_t nval, uint64_t arg)
2484 {
2485 data[0]++;
2486 data[1] += nval;
2487 }
2488
2489 /*ARGSUSED*/
2490 static void
dtrace_aggregate_stddev(uint64_t * data,uint64_t nval,uint64_t arg)2491 dtrace_aggregate_stddev(uint64_t *data, uint64_t nval, uint64_t arg)
2492 {
2493 int64_t snval = (int64_t)nval;
2494 uint64_t tmp[2];
2495
2496 data[0]++;
2497 data[1] += nval;
2498
2499 /*
2500 * What we want to say here is:
2501 *
2502 * data[2] += nval * nval;
2503 *
2504 * But given that nval is 64-bit, we could easily overflow, so
2505 * we do this as 128-bit arithmetic.
2506 */
2507 if (snval < 0)
2508 snval = -snval;
2509
2510 dtrace_multiply_128((uint64_t)snval, (uint64_t)snval, tmp);
2511 dtrace_add_128(data + 2, tmp, data + 2);
2512 }
2513
2514 /*ARGSUSED*/
2515 static void
dtrace_aggregate_count(uint64_t * oval,uint64_t nval,uint64_t arg)2516 dtrace_aggregate_count(uint64_t *oval, uint64_t nval, uint64_t arg)
2517 {
2518 *oval = *oval + 1;
2519 }
2520
2521 /*ARGSUSED*/
2522 static void
dtrace_aggregate_sum(uint64_t * oval,uint64_t nval,uint64_t arg)2523 dtrace_aggregate_sum(uint64_t *oval, uint64_t nval, uint64_t arg)
2524 {
2525 *oval += nval;
2526 }
2527
2528 /*
2529 * Aggregate given the tuple in the principal data buffer, and the aggregating
2530 * action denoted by the specified dtrace_aggregation_t. The aggregation
2531 * buffer is specified as the buf parameter. This routine does not return
2532 * failure; if there is no space in the aggregation buffer, the data will be
2533 * dropped, and a corresponding counter incremented.
2534 */
2535 static void
dtrace_aggregate(dtrace_aggregation_t * agg,dtrace_buffer_t * dbuf,intptr_t offset,dtrace_buffer_t * buf,uint64_t expr,uint64_t arg)2536 dtrace_aggregate(dtrace_aggregation_t *agg, dtrace_buffer_t *dbuf,
2537 intptr_t offset, dtrace_buffer_t *buf, uint64_t expr, uint64_t arg)
2538 {
2539 dtrace_recdesc_t *rec = &agg->dtag_action.dta_rec;
2540 uint32_t i, ndx, size, fsize;
2541 uint32_t align = sizeof (uint64_t) - 1;
2542 dtrace_aggbuffer_t *agb;
2543 dtrace_aggkey_t *key;
2544 uint32_t hashval = 0, limit, isstr;
2545 caddr_t tomax, data, kdata;
2546 dtrace_actkind_t action;
2547 dtrace_action_t *act;
2548 uintptr_t offs;
2549
2550 if (buf == NULL)
2551 return;
2552
2553 if (!agg->dtag_hasarg) {
2554 /*
2555 * Currently, only quantize() and lquantize() take additional
2556 * arguments, and they have the same semantics: an increment
2557 * value that defaults to 1 when not present. If additional
2558 * aggregating actions take arguments, the setting of the
2559 * default argument value will presumably have to become more
2560 * sophisticated...
2561 */
2562 arg = 1;
2563 }
2564
2565 action = agg->dtag_action.dta_kind - DTRACEACT_AGGREGATION;
2566 size = rec->dtrd_offset - agg->dtag_base;
2567 fsize = size + rec->dtrd_size;
2568
2569 ASSERT(dbuf->dtb_tomax != NULL);
2570 data = dbuf->dtb_tomax + offset + agg->dtag_base;
2571
2572 if ((tomax = buf->dtb_tomax) == NULL) {
2573 dtrace_buffer_drop(buf);
2574 return;
2575 }
2576
2577 /*
2578 * The metastructure is always at the bottom of the buffer.
2579 */
2580 agb = (dtrace_aggbuffer_t *)(tomax + buf->dtb_size -
2581 sizeof (dtrace_aggbuffer_t));
2582
2583 if (buf->dtb_offset == 0) {
2584 /*
2585 * We just kludge up approximately 1/8th of the size to be
2586 * buckets. If this guess ends up being routinely
2587 * off-the-mark, we may need to dynamically readjust this
2588 * based on past performance.
2589 */
2590 uintptr_t hashsize = (buf->dtb_size >> 3) / sizeof (uintptr_t);
2591
2592 if ((uintptr_t)agb - hashsize * sizeof (dtrace_aggkey_t *) <
2593 (uintptr_t)tomax || hashsize == 0) {
2594 /*
2595 * We've been given a ludicrously small buffer;
2596 * increment our drop count and leave.
2597 */
2598 dtrace_buffer_drop(buf);
2599 return;
2600 }
2601
2602 /*
2603 * And now, a pathetic attempt to try to get a an odd (or
2604 * perchance, a prime) hash size for better hash distribution.
2605 */
2606 if (hashsize > (DTRACE_AGGHASHSIZE_SLEW << 3))
2607 hashsize -= DTRACE_AGGHASHSIZE_SLEW;
2608
2609 agb->dtagb_hashsize = hashsize;
2610 agb->dtagb_hash = (dtrace_aggkey_t **)((uintptr_t)agb -
2611 agb->dtagb_hashsize * sizeof (dtrace_aggkey_t *));
2612 agb->dtagb_free = (uintptr_t)agb->dtagb_hash;
2613
2614 for (i = 0; i < agb->dtagb_hashsize; i++)
2615 agb->dtagb_hash[i] = NULL;
2616 }
2617
2618 ASSERT(agg->dtag_first != NULL);
2619 ASSERT(agg->dtag_first->dta_intuple);
2620
2621 /*
2622 * Calculate the hash value based on the key. Note that we _don't_
2623 * include the aggid in the hashing (but we will store it as part of
2624 * the key). The hashing algorithm is Bob Jenkins' "One-at-a-time"
2625 * algorithm: a simple, quick algorithm that has no known funnels, and
2626 * gets good distribution in practice. The efficacy of the hashing
2627 * algorithm (and a comparison with other algorithms) may be found by
2628 * running the ::dtrace_aggstat MDB dcmd.
2629 */
2630 for (act = agg->dtag_first; act->dta_intuple; act = act->dta_next) {
2631 i = act->dta_rec.dtrd_offset - agg->dtag_base;
2632 limit = i + act->dta_rec.dtrd_size;
2633 ASSERT(limit <= size);
2634 isstr = DTRACEACT_ISSTRING(act);
2635
2636 for (; i < limit; i++) {
2637 hashval += data[i];
2638 hashval += (hashval << 10);
2639 hashval ^= (hashval >> 6);
2640
2641 if (isstr && data[i] == '\0')
2642 break;
2643 }
2644 }
2645
2646 hashval += (hashval << 3);
2647 hashval ^= (hashval >> 11);
2648 hashval += (hashval << 15);
2649
2650 /*
2651 * Yes, the divide here is expensive -- but it's generally the least
2652 * of the performance issues given the amount of data that we iterate
2653 * over to compute hash values, compare data, etc.
2654 */
2655 ndx = hashval % agb->dtagb_hashsize;
2656
2657 for (key = agb->dtagb_hash[ndx]; key != NULL; key = key->dtak_next) {
2658 ASSERT((caddr_t)key >= tomax);
2659 ASSERT((caddr_t)key < tomax + buf->dtb_size);
2660
2661 if (hashval != key->dtak_hashval || key->dtak_size != size)
2662 continue;
2663
2664 kdata = key->dtak_data;
2665 ASSERT(kdata >= tomax && kdata < tomax + buf->dtb_size);
2666
2667 for (act = agg->dtag_first; act->dta_intuple;
2668 act = act->dta_next) {
2669 i = act->dta_rec.dtrd_offset - agg->dtag_base;
2670 limit = i + act->dta_rec.dtrd_size;
2671 ASSERT(limit <= size);
2672 isstr = DTRACEACT_ISSTRING(act);
2673
2674 for (; i < limit; i++) {
2675 if (kdata[i] != data[i])
2676 goto next;
2677
2678 if (isstr && data[i] == '\0')
2679 break;
2680 }
2681 }
2682
2683 if (action != key->dtak_action) {
2684 /*
2685 * We are aggregating on the same value in the same
2686 * aggregation with two different aggregating actions.
2687 * (This should have been picked up in the compiler,
2688 * so we may be dealing with errant or devious DIF.)
2689 * This is an error condition; we indicate as much,
2690 * and return.
2691 */
2692 DTRACE_CPUFLAG_SET(CPU_DTRACE_ILLOP);
2693 return;
2694 }
2695
2696 /*
2697 * This is a hit: we need to apply the aggregator to
2698 * the value at this key.
2699 */
2700 agg->dtag_aggregate((uint64_t *)(kdata + size), expr, arg);
2701 return;
2702 next:
2703 continue;
2704 }
2705
2706 /*
2707 * We didn't find it. We need to allocate some zero-filled space,
2708 * link it into the hash table appropriately, and apply the aggregator
2709 * to the (zero-filled) value.
2710 */
2711 offs = buf->dtb_offset;
2712 while (offs & (align - 1))
2713 offs += sizeof (uint32_t);
2714
2715 /*
2716 * If we don't have enough room to both allocate a new key _and_
2717 * its associated data, increment the drop count and return.
2718 */
2719 if ((uintptr_t)tomax + offs + fsize >
2720 agb->dtagb_free - sizeof (dtrace_aggkey_t)) {
2721 dtrace_buffer_drop(buf);
2722 return;
2723 }
2724
2725 /*CONSTCOND*/
2726 ASSERT(!(sizeof (dtrace_aggkey_t) & (sizeof (uintptr_t) - 1)));
2727 key = (dtrace_aggkey_t *)(agb->dtagb_free - sizeof (dtrace_aggkey_t));
2728 agb->dtagb_free -= sizeof (dtrace_aggkey_t);
2729
2730 key->dtak_data = kdata = tomax + offs;
2731 buf->dtb_offset = offs + fsize;
2732
2733 /*
2734 * Now copy the data across.
2735 */
2736 *((dtrace_aggid_t *)kdata) = agg->dtag_id;
2737
2738 for (i = sizeof (dtrace_aggid_t); i < size; i++)
2739 kdata[i] = data[i];
2740
2741 /*
2742 * Because strings are not zeroed out by default, we need to iterate
2743 * looking for actions that store strings, and we need to explicitly
2744 * pad these strings out with zeroes.
2745 */
2746 for (act = agg->dtag_first; act->dta_intuple; act = act->dta_next) {
2747 int nul;
2748
2749 if (!DTRACEACT_ISSTRING(act))
2750 continue;
2751
2752 i = act->dta_rec.dtrd_offset - agg->dtag_base;
2753 limit = i + act->dta_rec.dtrd_size;
2754 ASSERT(limit <= size);
2755
2756 for (nul = 0; i < limit; i++) {
2757 if (nul) {
2758 kdata[i] = '\0';
2759 continue;
2760 }
2761
2762 if (data[i] != '\0')
2763 continue;
2764
2765 nul = 1;
2766 }
2767 }
2768
2769 for (i = size; i < fsize; i++)
2770 kdata[i] = 0;
2771
2772 key->dtak_hashval = hashval;
2773 key->dtak_size = size;
2774 key->dtak_action = action;
2775 key->dtak_next = agb->dtagb_hash[ndx];
2776 agb->dtagb_hash[ndx] = key;
2777
2778 /*
2779 * Finally, apply the aggregator.
2780 */
2781 *((uint64_t *)(key->dtak_data + size)) = agg->dtag_initial;
2782 agg->dtag_aggregate((uint64_t *)(key->dtak_data + size), expr, arg);
2783 }
2784
2785 /*
2786 * Given consumer state, this routine finds a speculation in the INACTIVE
2787 * state and transitions it into the ACTIVE state. If there is no speculation
2788 * in the INACTIVE state, 0 is returned. In this case, no error counter is
2789 * incremented -- it is up to the caller to take appropriate action.
2790 */
2791 static int
dtrace_speculation(dtrace_state_t * state)2792 dtrace_speculation(dtrace_state_t *state)
2793 {
2794 int i = 0;
2795 dtrace_speculation_state_t curstate;
2796 uint32_t *stat = &state->dts_speculations_unavail, count;
2797
2798 while (i < state->dts_nspeculations) {
2799 dtrace_speculation_t *spec = &state->dts_speculations[i];
2800
2801 curstate = spec->dtsp_state;
2802
2803 if (curstate != DTRACESPEC_INACTIVE) {
2804 if (curstate == DTRACESPEC_COMMITTINGMANY ||
2805 curstate == DTRACESPEC_COMMITTING ||
2806 curstate == DTRACESPEC_DISCARDING)
2807 stat = &state->dts_speculations_busy;
2808 i++;
2809 continue;
2810 }
2811
2812 if (dtrace_cas32((uint32_t *)&spec->dtsp_state,
2813 curstate, DTRACESPEC_ACTIVE) == curstate)
2814 return (i + 1);
2815 }
2816
2817 /*
2818 * We couldn't find a speculation. If we found as much as a single
2819 * busy speculation buffer, we'll attribute this failure as "busy"
2820 * instead of "unavail".
2821 */
2822 do {
2823 count = *stat;
2824 } while (dtrace_cas32(stat, count, count + 1) != count);
2825
2826 return (0);
2827 }
2828
2829 /*
2830 * This routine commits an active speculation. If the specified speculation
2831 * is not in a valid state to perform a commit(), this routine will silently do
2832 * nothing. The state of the specified speculation is transitioned according
2833 * to the state transition diagram outlined in <sys/dtrace_impl.h>
2834 */
2835 static void
dtrace_speculation_commit(dtrace_state_t * state,processorid_t cpu,dtrace_specid_t which)2836 dtrace_speculation_commit(dtrace_state_t *state, processorid_t cpu,
2837 dtrace_specid_t which)
2838 {
2839 dtrace_speculation_t *spec;
2840 dtrace_buffer_t *src, *dest;
2841 uintptr_t daddr, saddr, dlimit, slimit;
2842 dtrace_speculation_state_t curstate, new = 0;
2843 intptr_t offs;
2844 uint64_t timestamp;
2845
2846 if (which == 0)
2847 return;
2848
2849 if (which > state->dts_nspeculations) {
2850 cpu_core[cpu].cpuc_dtrace_flags |= CPU_DTRACE_ILLOP;
2851 return;
2852 }
2853
2854 spec = &state->dts_speculations[which - 1];
2855 src = &spec->dtsp_buffer[cpu];
2856 dest = &state->dts_buffer[cpu];
2857
2858 do {
2859 curstate = spec->dtsp_state;
2860
2861 if (curstate == DTRACESPEC_COMMITTINGMANY)
2862 break;
2863
2864 switch (curstate) {
2865 case DTRACESPEC_INACTIVE:
2866 case DTRACESPEC_DISCARDING:
2867 return;
2868
2869 case DTRACESPEC_COMMITTING:
2870 /*
2871 * This is only possible if we are (a) commit()'ing
2872 * without having done a prior speculate() on this CPU
2873 * and (b) racing with another commit() on a different
2874 * CPU. There's nothing to do -- we just assert that
2875 * our offset is 0.
2876 */
2877 ASSERT(src->dtb_offset == 0);
2878 return;
2879
2880 case DTRACESPEC_ACTIVE:
2881 new = DTRACESPEC_COMMITTING;
2882 break;
2883
2884 case DTRACESPEC_ACTIVEONE:
2885 /*
2886 * This speculation is active on one CPU. If our
2887 * buffer offset is non-zero, we know that the one CPU
2888 * must be us. Otherwise, we are committing on a
2889 * different CPU from the speculate(), and we must
2890 * rely on being asynchronously cleaned.
2891 */
2892 if (src->dtb_offset != 0) {
2893 new = DTRACESPEC_COMMITTING;
2894 break;
2895 }
2896 /*FALLTHROUGH*/
2897
2898 case DTRACESPEC_ACTIVEMANY:
2899 new = DTRACESPEC_COMMITTINGMANY;
2900 break;
2901
2902 default:
2903 ASSERT(0);
2904 }
2905 } while (dtrace_cas32((uint32_t *)&spec->dtsp_state,
2906 curstate, new) != curstate);
2907
2908 /*
2909 * We have set the state to indicate that we are committing this
2910 * speculation. Now reserve the necessary space in the destination
2911 * buffer.
2912 */
2913 if ((offs = dtrace_buffer_reserve(dest, src->dtb_offset,
2914 sizeof (uint64_t), state, NULL)) < 0) {
2915 dtrace_buffer_drop(dest);
2916 goto out;
2917 }
2918
2919 /*
2920 * We have sufficient space to copy the speculative buffer into the
2921 * primary buffer. First, modify the speculative buffer, filling
2922 * in the timestamp of all entries with the curstate time. The data
2923 * must have the commit() time rather than the time it was traced,
2924 * so that all entries in the primary buffer are in timestamp order.
2925 */
2926 timestamp = dtrace_gethrtime();
2927 saddr = (uintptr_t)src->dtb_tomax;
2928 slimit = saddr + src->dtb_offset;
2929 while (saddr < slimit) {
2930 size_t size;
2931 dtrace_rechdr_t *dtrh = (dtrace_rechdr_t *)saddr;
2932
2933 if (dtrh->dtrh_epid == DTRACE_EPIDNONE) {
2934 saddr += sizeof (dtrace_epid_t);
2935 continue;
2936 }
2937 ASSERT3U(dtrh->dtrh_epid, <=, state->dts_necbs);
2938 size = state->dts_ecbs[dtrh->dtrh_epid - 1]->dte_size;
2939
2940 ASSERT3U(saddr + size, <=, slimit);
2941 ASSERT3U(size, >=, sizeof (dtrace_rechdr_t));
2942 ASSERT3U(DTRACE_RECORD_LOAD_TIMESTAMP(dtrh), ==, UINT64_MAX);
2943
2944 DTRACE_RECORD_STORE_TIMESTAMP(dtrh, timestamp);
2945
2946 saddr += size;
2947 }
2948
2949 /*
2950 * Copy the buffer across. (Note that this is a
2951 * highly subobtimal bcopy(); in the unlikely event that this becomes
2952 * a serious performance issue, a high-performance DTrace-specific
2953 * bcopy() should obviously be invented.)
2954 */
2955 daddr = (uintptr_t)dest->dtb_tomax + offs;
2956 dlimit = daddr + src->dtb_offset;
2957 saddr = (uintptr_t)src->dtb_tomax;
2958
2959 /*
2960 * First, the aligned portion.
2961 */
2962 while (dlimit - daddr >= sizeof (uint64_t)) {
2963 *((uint64_t *)daddr) = *((uint64_t *)saddr);
2964
2965 daddr += sizeof (uint64_t);
2966 saddr += sizeof (uint64_t);
2967 }
2968
2969 /*
2970 * Now any left-over bit...
2971 */
2972 while (dlimit - daddr)
2973 *((uint8_t *)daddr++) = *((uint8_t *)saddr++);
2974
2975 /*
2976 * Finally, commit the reserved space in the destination buffer.
2977 */
2978 dest->dtb_offset = offs + src->dtb_offset;
2979
2980 out:
2981 /*
2982 * If we're lucky enough to be the only active CPU on this speculation
2983 * buffer, we can just set the state back to DTRACESPEC_INACTIVE.
2984 */
2985 if (curstate == DTRACESPEC_ACTIVE ||
2986 (curstate == DTRACESPEC_ACTIVEONE && new == DTRACESPEC_COMMITTING)) {
2987 uint32_t rval = dtrace_cas32((uint32_t *)&spec->dtsp_state,
2988 DTRACESPEC_COMMITTING, DTRACESPEC_INACTIVE);
2989
2990 ASSERT(rval == DTRACESPEC_COMMITTING);
2991 }
2992
2993 src->dtb_offset = 0;
2994 src->dtb_xamot_drops += src->dtb_drops;
2995 src->dtb_drops = 0;
2996 }
2997
2998 /*
2999 * This routine discards an active speculation. If the specified speculation
3000 * is not in a valid state to perform a discard(), this routine will silently
3001 * do nothing. The state of the specified speculation is transitioned
3002 * according to the state transition diagram outlined in <sys/dtrace_impl.h>
3003 */
3004 static void
dtrace_speculation_discard(dtrace_state_t * state,processorid_t cpu,dtrace_specid_t which)3005 dtrace_speculation_discard(dtrace_state_t *state, processorid_t cpu,
3006 dtrace_specid_t which)
3007 {
3008 dtrace_speculation_t *spec;
3009 dtrace_speculation_state_t curstate, new = 0;
3010 dtrace_buffer_t *buf;
3011
3012 if (which == 0)
3013 return;
3014
3015 if (which > state->dts_nspeculations) {
3016 cpu_core[cpu].cpuc_dtrace_flags |= CPU_DTRACE_ILLOP;
3017 return;
3018 }
3019
3020 spec = &state->dts_speculations[which - 1];
3021 buf = &spec->dtsp_buffer[cpu];
3022
3023 do {
3024 curstate = spec->dtsp_state;
3025
3026 switch (curstate) {
3027 case DTRACESPEC_INACTIVE:
3028 case DTRACESPEC_COMMITTINGMANY:
3029 case DTRACESPEC_COMMITTING:
3030 case DTRACESPEC_DISCARDING:
3031 return;
3032
3033 case DTRACESPEC_ACTIVE:
3034 case DTRACESPEC_ACTIVEMANY:
3035 new = DTRACESPEC_DISCARDING;
3036 break;
3037
3038 case DTRACESPEC_ACTIVEONE:
3039 if (buf->dtb_offset != 0) {
3040 new = DTRACESPEC_INACTIVE;
3041 } else {
3042 new = DTRACESPEC_DISCARDING;
3043 }
3044 break;
3045
3046 default:
3047 ASSERT(0);
3048 }
3049 } while (dtrace_cas32((uint32_t *)&spec->dtsp_state,
3050 curstate, new) != curstate);
3051
3052 buf->dtb_offset = 0;
3053 buf->dtb_drops = 0;
3054 }
3055
3056 /*
3057 * Note: not called from probe context. This function is called
3058 * asynchronously from cross call context to clean any speculations that are
3059 * in the COMMITTINGMANY or DISCARDING states. These speculations may not be
3060 * transitioned back to the INACTIVE state until all CPUs have cleaned the
3061 * speculation.
3062 */
3063 static void
dtrace_speculation_clean_here(dtrace_state_t * state)3064 dtrace_speculation_clean_here(dtrace_state_t *state)
3065 {
3066 dtrace_icookie_t cookie;
3067 processorid_t cpu = curcpu;
3068 dtrace_buffer_t *dest = &state->dts_buffer[cpu];
3069 dtrace_specid_t i;
3070
3071 cookie = dtrace_interrupt_disable();
3072
3073 if (dest->dtb_tomax == NULL) {
3074 dtrace_interrupt_enable(cookie);
3075 return;
3076 }
3077
3078 for (i = 0; i < state->dts_nspeculations; i++) {
3079 dtrace_speculation_t *spec = &state->dts_speculations[i];
3080 dtrace_buffer_t *src = &spec->dtsp_buffer[cpu];
3081
3082 if (src->dtb_tomax == NULL)
3083 continue;
3084
3085 if (spec->dtsp_state == DTRACESPEC_DISCARDING) {
3086 src->dtb_offset = 0;
3087 continue;
3088 }
3089
3090 if (spec->dtsp_state != DTRACESPEC_COMMITTINGMANY)
3091 continue;
3092
3093 if (src->dtb_offset == 0)
3094 continue;
3095
3096 dtrace_speculation_commit(state, cpu, i + 1);
3097 }
3098
3099 dtrace_interrupt_enable(cookie);
3100 }
3101
3102 /*
3103 * Note: not called from probe context. This function is called
3104 * asynchronously (and at a regular interval) to clean any speculations that
3105 * are in the COMMITTINGMANY or DISCARDING states. If it discovers that there
3106 * is work to be done, it cross calls all CPUs to perform that work;
3107 * COMMITMANY and DISCARDING speculations may not be transitioned back to the
3108 * INACTIVE state until they have been cleaned by all CPUs.
3109 */
3110 static void
dtrace_speculation_clean(dtrace_state_t * state)3111 dtrace_speculation_clean(dtrace_state_t *state)
3112 {
3113 int work = 0, rv;
3114 dtrace_specid_t i;
3115
3116 for (i = 0; i < state->dts_nspeculations; i++) {
3117 dtrace_speculation_t *spec = &state->dts_speculations[i];
3118
3119 ASSERT(!spec->dtsp_cleaning);
3120
3121 if (spec->dtsp_state != DTRACESPEC_DISCARDING &&
3122 spec->dtsp_state != DTRACESPEC_COMMITTINGMANY)
3123 continue;
3124
3125 work++;
3126 spec->dtsp_cleaning = 1;
3127 }
3128
3129 if (!work)
3130 return;
3131
3132 dtrace_xcall(DTRACE_CPUALL,
3133 (dtrace_xcall_t)dtrace_speculation_clean_here, state);
3134
3135 /*
3136 * We now know that all CPUs have committed or discarded their
3137 * speculation buffers, as appropriate. We can now set the state
3138 * to inactive.
3139 */
3140 for (i = 0; i < state->dts_nspeculations; i++) {
3141 dtrace_speculation_t *spec = &state->dts_speculations[i];
3142 dtrace_speculation_state_t curstate, new;
3143
3144 if (!spec->dtsp_cleaning)
3145 continue;
3146
3147 curstate = spec->dtsp_state;
3148 ASSERT(curstate == DTRACESPEC_DISCARDING ||
3149 curstate == DTRACESPEC_COMMITTINGMANY);
3150
3151 new = DTRACESPEC_INACTIVE;
3152
3153 rv = dtrace_cas32((uint32_t *)&spec->dtsp_state, curstate, new);
3154 ASSERT(rv == curstate);
3155 spec->dtsp_cleaning = 0;
3156 }
3157 }
3158
3159 /*
3160 * Called as part of a speculate() to get the speculative buffer associated
3161 * with a given speculation. Returns NULL if the specified speculation is not
3162 * in an ACTIVE state. If the speculation is in the ACTIVEONE state -- and
3163 * the active CPU is not the specified CPU -- the speculation will be
3164 * atomically transitioned into the ACTIVEMANY state.
3165 */
3166 static dtrace_buffer_t *
dtrace_speculation_buffer(dtrace_state_t * state,processorid_t cpuid,dtrace_specid_t which)3167 dtrace_speculation_buffer(dtrace_state_t *state, processorid_t cpuid,
3168 dtrace_specid_t which)
3169 {
3170 dtrace_speculation_t *spec;
3171 dtrace_speculation_state_t curstate, new = 0;
3172 dtrace_buffer_t *buf;
3173
3174 if (which == 0)
3175 return (NULL);
3176
3177 if (which > state->dts_nspeculations) {
3178 cpu_core[cpuid].cpuc_dtrace_flags |= CPU_DTRACE_ILLOP;
3179 return (NULL);
3180 }
3181
3182 spec = &state->dts_speculations[which - 1];
3183 buf = &spec->dtsp_buffer[cpuid];
3184
3185 do {
3186 curstate = spec->dtsp_state;
3187
3188 switch (curstate) {
3189 case DTRACESPEC_INACTIVE:
3190 case DTRACESPEC_COMMITTINGMANY:
3191 case DTRACESPEC_DISCARDING:
3192 return (NULL);
3193
3194 case DTRACESPEC_COMMITTING:
3195 ASSERT(buf->dtb_offset == 0);
3196 return (NULL);
3197
3198 case DTRACESPEC_ACTIVEONE:
3199 /*
3200 * This speculation is currently active on one CPU.
3201 * Check the offset in the buffer; if it's non-zero,
3202 * that CPU must be us (and we leave the state alone).
3203 * If it's zero, assume that we're starting on a new
3204 * CPU -- and change the state to indicate that the
3205 * speculation is active on more than one CPU.
3206 */
3207 if (buf->dtb_offset != 0)
3208 return (buf);
3209
3210 new = DTRACESPEC_ACTIVEMANY;
3211 break;
3212
3213 case DTRACESPEC_ACTIVEMANY:
3214 return (buf);
3215
3216 case DTRACESPEC_ACTIVE:
3217 new = DTRACESPEC_ACTIVEONE;
3218 break;
3219
3220 default:
3221 ASSERT(0);
3222 }
3223 } while (dtrace_cas32((uint32_t *)&spec->dtsp_state,
3224 curstate, new) != curstate);
3225
3226 ASSERT(new == DTRACESPEC_ACTIVEONE || new == DTRACESPEC_ACTIVEMANY);
3227 return (buf);
3228 }
3229
3230 /*
3231 * Return a string. In the event that the user lacks the privilege to access
3232 * arbitrary kernel memory, we copy the string out to scratch memory so that we
3233 * don't fail access checking.
3234 *
3235 * dtrace_dif_variable() uses this routine as a helper for various
3236 * builtin values such as 'execname' and 'probefunc.'
3237 */
3238 uintptr_t
dtrace_dif_varstr(uintptr_t addr,dtrace_state_t * state,dtrace_mstate_t * mstate)3239 dtrace_dif_varstr(uintptr_t addr, dtrace_state_t *state,
3240 dtrace_mstate_t *mstate)
3241 {
3242 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
3243 uintptr_t ret;
3244 size_t strsz;
3245
3246 /*
3247 * The easy case: this probe is allowed to read all of memory, so
3248 * we can just return this as a vanilla pointer.
3249 */
3250 if ((mstate->dtms_access & DTRACE_ACCESS_KERNEL) != 0)
3251 return (addr);
3252
3253 /*
3254 * This is the tougher case: we copy the string in question from
3255 * kernel memory into scratch memory and return it that way: this
3256 * ensures that we won't trip up when access checking tests the
3257 * BYREF return value.
3258 */
3259 strsz = dtrace_strlen((char *)addr, size) + 1;
3260
3261 if (mstate->dtms_scratch_ptr + strsz >
3262 mstate->dtms_scratch_base + mstate->dtms_scratch_size) {
3263 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
3264 return (0);
3265 }
3266
3267 dtrace_strcpy((const void *)addr, (void *)mstate->dtms_scratch_ptr,
3268 strsz);
3269 ret = mstate->dtms_scratch_ptr;
3270 mstate->dtms_scratch_ptr += strsz;
3271 return (ret);
3272 }
3273
3274 /*
3275 * Return a string from a memoy address which is known to have one or
3276 * more concatenated, individually zero terminated, sub-strings.
3277 * In the event that the user lacks the privilege to access
3278 * arbitrary kernel memory, we copy the string out to scratch memory so that we
3279 * don't fail access checking.
3280 *
3281 * dtrace_dif_variable() uses this routine as a helper for various
3282 * builtin values such as 'execargs'.
3283 */
3284 static uintptr_t
dtrace_dif_varstrz(uintptr_t addr,size_t strsz,dtrace_state_t * state,dtrace_mstate_t * mstate)3285 dtrace_dif_varstrz(uintptr_t addr, size_t strsz, dtrace_state_t *state,
3286 dtrace_mstate_t *mstate)
3287 {
3288 char *p;
3289 size_t i;
3290 uintptr_t ret;
3291
3292 if (mstate->dtms_scratch_ptr + strsz >
3293 mstate->dtms_scratch_base + mstate->dtms_scratch_size) {
3294 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
3295 return (0);
3296 }
3297
3298 dtrace_bcopy((const void *)addr, (void *)mstate->dtms_scratch_ptr,
3299 strsz);
3300
3301 /* Replace sub-string termination characters with a space. */
3302 for (p = (char *) mstate->dtms_scratch_ptr, i = 0; i < strsz - 1;
3303 p++, i++)
3304 if (*p == '\0')
3305 *p = ' ';
3306
3307 ret = mstate->dtms_scratch_ptr;
3308 mstate->dtms_scratch_ptr += strsz;
3309 return (ret);
3310 }
3311
3312 /*
3313 * This function implements the DIF emulator's variable lookups. The emulator
3314 * passes a reserved variable identifier and optional built-in array index.
3315 */
3316 static uint64_t
dtrace_dif_variable(dtrace_mstate_t * mstate,dtrace_state_t * state,uint64_t v,uint64_t ndx)3317 dtrace_dif_variable(dtrace_mstate_t *mstate, dtrace_state_t *state, uint64_t v,
3318 uint64_t ndx)
3319 {
3320 /*
3321 * If we're accessing one of the uncached arguments, we'll turn this
3322 * into a reference in the args array.
3323 */
3324 if (v >= DIF_VAR_ARG0 && v <= DIF_VAR_ARG9) {
3325 ndx = v - DIF_VAR_ARG0;
3326 v = DIF_VAR_ARGS;
3327 }
3328
3329 switch (v) {
3330 case DIF_VAR_ARGS:
3331 ASSERT(mstate->dtms_present & DTRACE_MSTATE_ARGS);
3332 if (ndx >= sizeof (mstate->dtms_arg) /
3333 sizeof (mstate->dtms_arg[0])) {
3334 int aframes = mstate->dtms_probe->dtpr_aframes + 2;
3335 dtrace_provider_t *pv;
3336 uint64_t val;
3337
3338 pv = mstate->dtms_probe->dtpr_provider;
3339 if (pv->dtpv_pops.dtps_getargval != NULL)
3340 val = pv->dtpv_pops.dtps_getargval(pv->dtpv_arg,
3341 mstate->dtms_probe->dtpr_id,
3342 mstate->dtms_probe->dtpr_arg, ndx, aframes);
3343 else
3344 val = dtrace_getarg(ndx, aframes);
3345
3346 /*
3347 * This is regrettably required to keep the compiler
3348 * from tail-optimizing the call to dtrace_getarg().
3349 * The condition always evaluates to true, but the
3350 * compiler has no way of figuring that out a priori.
3351 * (None of this would be necessary if the compiler
3352 * could be relied upon to _always_ tail-optimize
3353 * the call to dtrace_getarg() -- but it can't.)
3354 */
3355 if (mstate->dtms_probe != NULL)
3356 return (val);
3357
3358 ASSERT(0);
3359 }
3360
3361 return (mstate->dtms_arg[ndx]);
3362
3363 #ifdef illumos
3364 case DIF_VAR_UREGS: {
3365 klwp_t *lwp;
3366
3367 if (!dtrace_priv_proc(state))
3368 return (0);
3369
3370 if ((lwp = curthread->t_lwp) == NULL) {
3371 DTRACE_CPUFLAG_SET(CPU_DTRACE_BADADDR);
3372 cpu_core[curcpu].cpuc_dtrace_illval = NULL;
3373 return (0);
3374 }
3375
3376 return (dtrace_getreg(lwp->lwp_regs, ndx));
3377 return (0);
3378 }
3379 #else
3380 case DIF_VAR_UREGS: {
3381 struct trapframe *tframe;
3382
3383 if (!dtrace_priv_proc(state))
3384 return (0);
3385
3386 if ((tframe = curthread->td_frame) == NULL) {
3387 DTRACE_CPUFLAG_SET(CPU_DTRACE_BADADDR);
3388 cpu_core[curcpu].cpuc_dtrace_illval = 0;
3389 return (0);
3390 }
3391
3392 return (dtrace_getreg(tframe, ndx));
3393 }
3394 #endif
3395
3396 case DIF_VAR_CURTHREAD:
3397 if (!dtrace_priv_proc(state))
3398 return (0);
3399 return ((uint64_t)(uintptr_t)curthread);
3400
3401 case DIF_VAR_TIMESTAMP:
3402 if (!(mstate->dtms_present & DTRACE_MSTATE_TIMESTAMP)) {
3403 mstate->dtms_timestamp = dtrace_gethrtime();
3404 mstate->dtms_present |= DTRACE_MSTATE_TIMESTAMP;
3405 }
3406 return (mstate->dtms_timestamp);
3407
3408 case DIF_VAR_VTIMESTAMP:
3409 ASSERT(dtrace_vtime_references != 0);
3410 return (curthread->t_dtrace_vtime);
3411
3412 case DIF_VAR_WALLTIMESTAMP:
3413 if (!(mstate->dtms_present & DTRACE_MSTATE_WALLTIMESTAMP)) {
3414 mstate->dtms_walltimestamp = dtrace_gethrestime();
3415 mstate->dtms_present |= DTRACE_MSTATE_WALLTIMESTAMP;
3416 }
3417 return (mstate->dtms_walltimestamp);
3418
3419 #ifdef illumos
3420 case DIF_VAR_IPL:
3421 if (!dtrace_priv_kernel(state))
3422 return (0);
3423 if (!(mstate->dtms_present & DTRACE_MSTATE_IPL)) {
3424 mstate->dtms_ipl = dtrace_getipl();
3425 mstate->dtms_present |= DTRACE_MSTATE_IPL;
3426 }
3427 return (mstate->dtms_ipl);
3428 #endif
3429
3430 case DIF_VAR_EPID:
3431 ASSERT(mstate->dtms_present & DTRACE_MSTATE_EPID);
3432 return (mstate->dtms_epid);
3433
3434 case DIF_VAR_ID:
3435 ASSERT(mstate->dtms_present & DTRACE_MSTATE_PROBE);
3436 return (mstate->dtms_probe->dtpr_id);
3437
3438 case DIF_VAR_STACKDEPTH:
3439 if (!dtrace_priv_kernel(state))
3440 return (0);
3441 if (!(mstate->dtms_present & DTRACE_MSTATE_STACKDEPTH)) {
3442 int aframes = mstate->dtms_probe->dtpr_aframes + 2;
3443
3444 mstate->dtms_stackdepth = dtrace_getstackdepth(aframes);
3445 mstate->dtms_present |= DTRACE_MSTATE_STACKDEPTH;
3446 }
3447 return (mstate->dtms_stackdepth);
3448
3449 case DIF_VAR_USTACKDEPTH:
3450 if (!dtrace_priv_proc(state))
3451 return (0);
3452 if (!(mstate->dtms_present & DTRACE_MSTATE_USTACKDEPTH)) {
3453 /*
3454 * See comment in DIF_VAR_PID.
3455 */
3456 if (DTRACE_ANCHORED(mstate->dtms_probe) &&
3457 CPU_ON_INTR(CPU)) {
3458 mstate->dtms_ustackdepth = 0;
3459 } else {
3460 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
3461 mstate->dtms_ustackdepth =
3462 dtrace_getustackdepth();
3463 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
3464 }
3465 mstate->dtms_present |= DTRACE_MSTATE_USTACKDEPTH;
3466 }
3467 return (mstate->dtms_ustackdepth);
3468
3469 case DIF_VAR_CALLER:
3470 if (!dtrace_priv_kernel(state))
3471 return (0);
3472 if (!(mstate->dtms_present & DTRACE_MSTATE_CALLER)) {
3473 int aframes = mstate->dtms_probe->dtpr_aframes + 2;
3474
3475 if (!DTRACE_ANCHORED(mstate->dtms_probe)) {
3476 /*
3477 * If this is an unanchored probe, we are
3478 * required to go through the slow path:
3479 * dtrace_caller() only guarantees correct
3480 * results for anchored probes.
3481 */
3482 pc_t caller[2] = {0, 0};
3483
3484 dtrace_getpcstack(caller, 2, aframes,
3485 (uint32_t *)(uintptr_t)mstate->dtms_arg[0]);
3486 mstate->dtms_caller = caller[1];
3487 } else if ((mstate->dtms_caller =
3488 dtrace_caller(aframes)) == -1) {
3489 /*
3490 * We have failed to do this the quick way;
3491 * we must resort to the slower approach of
3492 * calling dtrace_getpcstack().
3493 */
3494 pc_t caller = 0;
3495
3496 dtrace_getpcstack(&caller, 1, aframes, NULL);
3497 mstate->dtms_caller = caller;
3498 }
3499
3500 mstate->dtms_present |= DTRACE_MSTATE_CALLER;
3501 }
3502 return (mstate->dtms_caller);
3503
3504 case DIF_VAR_UCALLER:
3505 if (!dtrace_priv_proc(state))
3506 return (0);
3507
3508 if (!(mstate->dtms_present & DTRACE_MSTATE_UCALLER)) {
3509 uint64_t ustack[3];
3510
3511 /*
3512 * dtrace_getupcstack() fills in the first uint64_t
3513 * with the current PID. The second uint64_t will
3514 * be the program counter at user-level. The third
3515 * uint64_t will contain the caller, which is what
3516 * we're after.
3517 */
3518 ustack[2] = 0;
3519 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
3520 dtrace_getupcstack(ustack, 3);
3521 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
3522 mstate->dtms_ucaller = ustack[2];
3523 mstate->dtms_present |= DTRACE_MSTATE_UCALLER;
3524 }
3525
3526 return (mstate->dtms_ucaller);
3527
3528 case DIF_VAR_PROBEPROV:
3529 ASSERT(mstate->dtms_present & DTRACE_MSTATE_PROBE);
3530 return (dtrace_dif_varstr(
3531 (uintptr_t)mstate->dtms_probe->dtpr_provider->dtpv_name,
3532 state, mstate));
3533
3534 case DIF_VAR_PROBEMOD:
3535 ASSERT(mstate->dtms_present & DTRACE_MSTATE_PROBE);
3536 return (dtrace_dif_varstr(
3537 (uintptr_t)mstate->dtms_probe->dtpr_mod,
3538 state, mstate));
3539
3540 case DIF_VAR_PROBEFUNC:
3541 ASSERT(mstate->dtms_present & DTRACE_MSTATE_PROBE);
3542 return (dtrace_dif_varstr(
3543 (uintptr_t)mstate->dtms_probe->dtpr_func,
3544 state, mstate));
3545
3546 case DIF_VAR_PROBENAME:
3547 ASSERT(mstate->dtms_present & DTRACE_MSTATE_PROBE);
3548 return (dtrace_dif_varstr(
3549 (uintptr_t)mstate->dtms_probe->dtpr_name,
3550 state, mstate));
3551
3552 case DIF_VAR_PID:
3553 if (!dtrace_priv_proc(state))
3554 return (0);
3555
3556 #ifdef illumos
3557 /*
3558 * Note that we are assuming that an unanchored probe is
3559 * always due to a high-level interrupt. (And we're assuming
3560 * that there is only a single high level interrupt.)
3561 */
3562 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3563 return (pid0.pid_id);
3564
3565 /*
3566 * It is always safe to dereference one's own t_procp pointer:
3567 * it always points to a valid, allocated proc structure.
3568 * Further, it is always safe to dereference the p_pidp member
3569 * of one's own proc structure. (These are truisms becuase
3570 * threads and processes don't clean up their own state --
3571 * they leave that task to whomever reaps them.)
3572 */
3573 return ((uint64_t)curthread->t_procp->p_pidp->pid_id);
3574 #else
3575 return ((uint64_t)curproc->p_pid);
3576 #endif
3577
3578 case DIF_VAR_PPID:
3579 if (!dtrace_priv_proc(state))
3580 return (0);
3581
3582 #ifdef illumos
3583 /*
3584 * See comment in DIF_VAR_PID.
3585 */
3586 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3587 return (pid0.pid_id);
3588
3589 /*
3590 * It is always safe to dereference one's own t_procp pointer:
3591 * it always points to a valid, allocated proc structure.
3592 * (This is true because threads don't clean up their own
3593 * state -- they leave that task to whomever reaps them.)
3594 */
3595 return ((uint64_t)curthread->t_procp->p_ppid);
3596 #else
3597 if (curproc->p_pid == proc0.p_pid)
3598 return (curproc->p_pid);
3599 else
3600 return (curproc->p_pptr->p_pid);
3601 #endif
3602
3603 case DIF_VAR_TID:
3604 #ifdef illumos
3605 /*
3606 * See comment in DIF_VAR_PID.
3607 */
3608 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3609 return (0);
3610 #endif
3611
3612 return ((uint64_t)curthread->t_tid);
3613
3614 case DIF_VAR_EXECARGS: {
3615 struct pargs *p_args = curthread->td_proc->p_args;
3616
3617 if (p_args == NULL)
3618 return(0);
3619
3620 return (dtrace_dif_varstrz(
3621 (uintptr_t) p_args->ar_args, p_args->ar_length, state, mstate));
3622 }
3623
3624 case DIF_VAR_EXECNAME:
3625 #ifdef illumos
3626 if (!dtrace_priv_proc(state))
3627 return (0);
3628
3629 /*
3630 * See comment in DIF_VAR_PID.
3631 */
3632 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3633 return ((uint64_t)(uintptr_t)p0.p_user.u_comm);
3634
3635 /*
3636 * It is always safe to dereference one's own t_procp pointer:
3637 * it always points to a valid, allocated proc structure.
3638 * (This is true because threads don't clean up their own
3639 * state -- they leave that task to whomever reaps them.)
3640 */
3641 return (dtrace_dif_varstr(
3642 (uintptr_t)curthread->t_procp->p_user.u_comm,
3643 state, mstate));
3644 #else
3645 return (dtrace_dif_varstr(
3646 (uintptr_t) curthread->td_proc->p_comm, state, mstate));
3647 #endif
3648
3649 case DIF_VAR_ZONENAME:
3650 #ifdef illumos
3651 if (!dtrace_priv_proc(state))
3652 return (0);
3653
3654 /*
3655 * See comment in DIF_VAR_PID.
3656 */
3657 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3658 return ((uint64_t)(uintptr_t)p0.p_zone->zone_name);
3659
3660 /*
3661 * It is always safe to dereference one's own t_procp pointer:
3662 * it always points to a valid, allocated proc structure.
3663 * (This is true because threads don't clean up their own
3664 * state -- they leave that task to whomever reaps them.)
3665 */
3666 return (dtrace_dif_varstr(
3667 (uintptr_t)curthread->t_procp->p_zone->zone_name,
3668 state, mstate));
3669 #elif defined(__FreeBSD__)
3670 /*
3671 * On FreeBSD, we introduce compatibility to zonename by falling through
3672 * into jailname.
3673 */
3674 case DIF_VAR_JAILNAME:
3675 if (!dtrace_priv_kernel(state))
3676 return (0);
3677
3678 return (dtrace_dif_varstr(
3679 (uintptr_t)curthread->td_ucred->cr_prison->pr_name,
3680 state, mstate));
3681
3682 case DIF_VAR_JID:
3683 if (!dtrace_priv_kernel(state))
3684 return (0);
3685
3686 return ((uint64_t)curthread->td_ucred->cr_prison->pr_id);
3687 #else
3688 return (0);
3689 #endif
3690
3691 case DIF_VAR_UID:
3692 if (!dtrace_priv_proc(state))
3693 return (0);
3694
3695 #ifdef illumos
3696 /*
3697 * See comment in DIF_VAR_PID.
3698 */
3699 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3700 return ((uint64_t)p0.p_cred->cr_uid);
3701
3702 /*
3703 * It is always safe to dereference one's own t_procp pointer:
3704 * it always points to a valid, allocated proc structure.
3705 * (This is true because threads don't clean up their own
3706 * state -- they leave that task to whomever reaps them.)
3707 *
3708 * Additionally, it is safe to dereference one's own process
3709 * credential, since this is never NULL after process birth.
3710 */
3711 return ((uint64_t)curthread->t_procp->p_cred->cr_uid);
3712 #else
3713 return ((uint64_t)curthread->td_ucred->cr_uid);
3714 #endif
3715
3716 case DIF_VAR_GID:
3717 if (!dtrace_priv_proc(state))
3718 return (0);
3719
3720 #ifdef illumos
3721 /*
3722 * See comment in DIF_VAR_PID.
3723 */
3724 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3725 return ((uint64_t)p0.p_cred->cr_gid);
3726
3727 /*
3728 * It is always safe to dereference one's own t_procp pointer:
3729 * it always points to a valid, allocated proc structure.
3730 * (This is true because threads don't clean up their own
3731 * state -- they leave that task to whomever reaps them.)
3732 *
3733 * Additionally, it is safe to dereference one's own process
3734 * credential, since this is never NULL after process birth.
3735 */
3736 return ((uint64_t)curthread->t_procp->p_cred->cr_gid);
3737 #else
3738 return ((uint64_t)curthread->td_ucred->cr_gid);
3739 #endif
3740
3741 case DIF_VAR_ERRNO: {
3742 #ifdef illumos
3743 klwp_t *lwp;
3744 if (!dtrace_priv_proc(state))
3745 return (0);
3746
3747 /*
3748 * See comment in DIF_VAR_PID.
3749 */
3750 if (DTRACE_ANCHORED(mstate->dtms_probe) && CPU_ON_INTR(CPU))
3751 return (0);
3752
3753 /*
3754 * It is always safe to dereference one's own t_lwp pointer in
3755 * the event that this pointer is non-NULL. (This is true
3756 * because threads and lwps don't clean up their own state --
3757 * they leave that task to whomever reaps them.)
3758 */
3759 if ((lwp = curthread->t_lwp) == NULL)
3760 return (0);
3761
3762 return ((uint64_t)lwp->lwp_errno);
3763 #else
3764 return (curthread->td_errno);
3765 #endif
3766 }
3767 #ifndef illumos
3768 case DIF_VAR_CPU: {
3769 return curcpu;
3770 }
3771 #endif
3772 default:
3773 DTRACE_CPUFLAG_SET(CPU_DTRACE_ILLOP);
3774 return (0);
3775 }
3776 }
3777
3778
3779 typedef enum dtrace_json_state {
3780 DTRACE_JSON_REST = 1,
3781 DTRACE_JSON_OBJECT,
3782 DTRACE_JSON_STRING,
3783 DTRACE_JSON_STRING_ESCAPE,
3784 DTRACE_JSON_STRING_ESCAPE_UNICODE,
3785 DTRACE_JSON_COLON,
3786 DTRACE_JSON_COMMA,
3787 DTRACE_JSON_VALUE,
3788 DTRACE_JSON_IDENTIFIER,
3789 DTRACE_JSON_NUMBER,
3790 DTRACE_JSON_NUMBER_FRAC,
3791 DTRACE_JSON_NUMBER_EXP,
3792 DTRACE_JSON_COLLECT_OBJECT
3793 } dtrace_json_state_t;
3794
3795 /*
3796 * This function possesses just enough knowledge about JSON to extract a single
3797 * value from a JSON string and store it in the scratch buffer. It is able
3798 * to extract nested object values, and members of arrays by index.
3799 *
3800 * elemlist is a list of JSON keys, stored as packed NUL-terminated strings, to
3801 * be looked up as we descend into the object tree. e.g.
3802 *
3803 * foo[0].bar.baz[32] --> "foo" NUL "0" NUL "bar" NUL "baz" NUL "32" NUL
3804 * with nelems = 5.
3805 *
3806 * The run time of this function must be bounded above by strsize to limit the
3807 * amount of work done in probe context. As such, it is implemented as a
3808 * simple state machine, reading one character at a time using safe loads
3809 * until we find the requested element, hit a parsing error or run off the
3810 * end of the object or string.
3811 *
3812 * As there is no way for a subroutine to return an error without interrupting
3813 * clause execution, we simply return NULL in the event of a missing key or any
3814 * other error condition. Each NULL return in this function is commented with
3815 * the error condition it represents -- parsing or otherwise.
3816 *
3817 * The set of states for the state machine closely matches the JSON
3818 * specification (http://json.org/). Briefly:
3819 *
3820 * DTRACE_JSON_REST:
3821 * Skip whitespace until we find either a top-level Object, moving
3822 * to DTRACE_JSON_OBJECT; or an Array, moving to DTRACE_JSON_VALUE.
3823 *
3824 * DTRACE_JSON_OBJECT:
3825 * Locate the next key String in an Object. Sets a flag to denote
3826 * the next String as a key string and moves to DTRACE_JSON_STRING.
3827 *
3828 * DTRACE_JSON_COLON:
3829 * Skip whitespace until we find the colon that separates key Strings
3830 * from their values. Once found, move to DTRACE_JSON_VALUE.
3831 *
3832 * DTRACE_JSON_VALUE:
3833 * Detects the type of the next value (String, Number, Identifier, Object
3834 * or Array) and routes to the states that process that type. Here we also
3835 * deal with the element selector list if we are requested to traverse down
3836 * into the object tree.
3837 *
3838 * DTRACE_JSON_COMMA:
3839 * Skip whitespace until we find the comma that separates key-value pairs
3840 * in Objects (returning to DTRACE_JSON_OBJECT) or values in Arrays
3841 * (similarly DTRACE_JSON_VALUE). All following literal value processing
3842 * states return to this state at the end of their value, unless otherwise
3843 * noted.
3844 *
3845 * DTRACE_JSON_NUMBER, DTRACE_JSON_NUMBER_FRAC, DTRACE_JSON_NUMBER_EXP:
3846 * Processes a Number literal from the JSON, including any exponent
3847 * component that may be present. Numbers are returned as strings, which
3848 * may be passed to strtoll() if an integer is required.
3849 *
3850 * DTRACE_JSON_IDENTIFIER:
3851 * Processes a "true", "false" or "null" literal in the JSON.
3852 *
3853 * DTRACE_JSON_STRING, DTRACE_JSON_STRING_ESCAPE,
3854 * DTRACE_JSON_STRING_ESCAPE_UNICODE:
3855 * Processes a String literal from the JSON, whether the String denotes
3856 * a key, a value or part of a larger Object. Handles all escape sequences
3857 * present in the specification, including four-digit unicode characters,
3858 * but merely includes the escape sequence without converting it to the
3859 * actual escaped character. If the String is flagged as a key, we
3860 * move to DTRACE_JSON_COLON rather than DTRACE_JSON_COMMA.
3861 *
3862 * DTRACE_JSON_COLLECT_OBJECT:
3863 * This state collects an entire Object (or Array), correctly handling
3864 * embedded strings. If the full element selector list matches this nested
3865 * object, we return the Object in full as a string. If not, we use this
3866 * state to skip to the next value at this level and continue processing.
3867 *
3868 * NOTE: This function uses various macros from strtolctype.h to manipulate
3869 * digit values, etc -- these have all been checked to ensure they make
3870 * no additional function calls.
3871 */
3872 static char *
dtrace_json(uint64_t size,uintptr_t json,char * elemlist,int nelems,char * dest)3873 dtrace_json(uint64_t size, uintptr_t json, char *elemlist, int nelems,
3874 char *dest)
3875 {
3876 dtrace_json_state_t state = DTRACE_JSON_REST;
3877 int64_t array_elem = INT64_MIN;
3878 int64_t array_pos = 0;
3879 uint8_t escape_unicount = 0;
3880 boolean_t string_is_key = B_FALSE;
3881 boolean_t collect_object = B_FALSE;
3882 boolean_t found_key = B_FALSE;
3883 boolean_t in_array = B_FALSE;
3884 uint32_t braces = 0, brackets = 0;
3885 char *elem = elemlist;
3886 char *dd = dest;
3887 uintptr_t cur;
3888
3889 for (cur = json; cur < json + size; cur++) {
3890 char cc = dtrace_load8(cur);
3891 if (cc == '\0')
3892 return (NULL);
3893
3894 switch (state) {
3895 case DTRACE_JSON_REST:
3896 if (isspace(cc))
3897 break;
3898
3899 if (cc == '{') {
3900 state = DTRACE_JSON_OBJECT;
3901 break;
3902 }
3903
3904 if (cc == '[') {
3905 in_array = B_TRUE;
3906 array_pos = 0;
3907 array_elem = dtrace_strtoll(elem, 10, size);
3908 found_key = array_elem == 0 ? B_TRUE : B_FALSE;
3909 state = DTRACE_JSON_VALUE;
3910 break;
3911 }
3912
3913 /*
3914 * ERROR: expected to find a top-level object or array.
3915 */
3916 return (NULL);
3917 case DTRACE_JSON_OBJECT:
3918 if (isspace(cc))
3919 break;
3920
3921 if (cc == '"') {
3922 state = DTRACE_JSON_STRING;
3923 string_is_key = B_TRUE;
3924 break;
3925 }
3926
3927 /*
3928 * ERROR: either the object did not start with a key
3929 * string, or we've run off the end of the object
3930 * without finding the requested key.
3931 */
3932 return (NULL);
3933 case DTRACE_JSON_STRING:
3934 if (cc == '\\') {
3935 *dd++ = '\\';
3936 state = DTRACE_JSON_STRING_ESCAPE;
3937 break;
3938 }
3939
3940 if (cc == '"') {
3941 if (collect_object) {
3942 /*
3943 * We don't reset the dest here, as
3944 * the string is part of a larger
3945 * object being collected.
3946 */
3947 *dd++ = cc;
3948 collect_object = B_FALSE;
3949 state = DTRACE_JSON_COLLECT_OBJECT;
3950 break;
3951 }
3952 *dd = '\0';
3953 dd = dest; /* reset string buffer */
3954 if (string_is_key) {
3955 if (dtrace_strncmp(dest, elem,
3956 size) == 0)
3957 found_key = B_TRUE;
3958 } else if (found_key) {
3959 if (nelems > 1) {
3960 /*
3961 * We expected an object, not
3962 * this string.
3963 */
3964 return (NULL);
3965 }
3966 return (dest);
3967 }
3968 state = string_is_key ? DTRACE_JSON_COLON :
3969 DTRACE_JSON_COMMA;
3970 string_is_key = B_FALSE;
3971 break;
3972 }
3973
3974 *dd++ = cc;
3975 break;
3976 case DTRACE_JSON_STRING_ESCAPE:
3977 *dd++ = cc;
3978 if (cc == 'u') {
3979 escape_unicount = 0;
3980 state = DTRACE_JSON_STRING_ESCAPE_UNICODE;
3981 } else {
3982 state = DTRACE_JSON_STRING;
3983 }
3984 break;
3985 case DTRACE_JSON_STRING_ESCAPE_UNICODE:
3986 if (!isxdigit(cc)) {
3987 /*
3988 * ERROR: invalid unicode escape, expected
3989 * four valid hexidecimal digits.
3990 */
3991 return (NULL);
3992 }
3993
3994 *dd++ = cc;
3995 if (++escape_unicount == 4)
3996 state = DTRACE_JSON_STRING;
3997 break;
3998 case DTRACE_JSON_COLON:
3999 if (isspace(cc))
4000 break;
4001
4002 if (cc == ':') {
4003 state = DTRACE_JSON_VALUE;
4004 break;
4005 }
4006
4007 /*
4008 * ERROR: expected a colon.
4009 */
4010 return (NULL);
4011 case DTRACE_JSON_COMMA:
4012 if (isspace(cc))
4013 break;
4014
4015 if (cc == ',') {
4016 if (in_array) {
4017 state = DTRACE_JSON_VALUE;
4018 if (++array_pos == array_elem)
4019 found_key = B_TRUE;
4020 } else {
4021 state = DTRACE_JSON_OBJECT;
4022 }
4023 break;
4024 }
4025
4026 /*
4027 * ERROR: either we hit an unexpected character, or
4028 * we reached the end of the object or array without
4029 * finding the requested key.
4030 */
4031 return (NULL);
4032 case DTRACE_JSON_IDENTIFIER:
4033 if (islower(cc)) {
4034 *dd++ = cc;
4035 break;
4036 }
4037
4038 *dd = '\0';
4039 dd = dest; /* reset string buffer */
4040
4041 if (dtrace_strncmp(dest, "true", 5) == 0 ||
4042 dtrace_strncmp(dest, "false", 6) == 0 ||
4043 dtrace_strncmp(dest, "null", 5) == 0) {
4044 if (found_key) {
4045 if (nelems > 1) {
4046 /*
4047 * ERROR: We expected an object,
4048 * not this identifier.
4049 */
4050 return (NULL);
4051 }
4052 return (dest);
4053 } else {
4054 cur--;
4055 state = DTRACE_JSON_COMMA;
4056 break;
4057 }
4058 }
4059
4060 /*
4061 * ERROR: we did not recognise the identifier as one
4062 * of those in the JSON specification.
4063 */
4064 return (NULL);
4065 case DTRACE_JSON_NUMBER:
4066 if (cc == '.') {
4067 *dd++ = cc;
4068 state = DTRACE_JSON_NUMBER_FRAC;
4069 break;
4070 }
4071
4072 if (cc == 'x' || cc == 'X') {
4073 /*
4074 * ERROR: specification explicitly excludes
4075 * hexidecimal or octal numbers.
4076 */
4077 return (NULL);
4078 }
4079
4080 /* FALLTHRU */
4081 case DTRACE_JSON_NUMBER_FRAC:
4082 if (cc == 'e' || cc == 'E') {
4083 *dd++ = cc;
4084 state = DTRACE_JSON_NUMBER_EXP;
4085 break;
4086 }
4087
4088 if (cc == '+' || cc == '-') {
4089 /*
4090 * ERROR: expect sign as part of exponent only.
4091 */
4092 return (NULL);
4093 }
4094 /* FALLTHRU */
4095 case DTRACE_JSON_NUMBER_EXP:
4096 if (isdigit(cc) || cc == '+' || cc == '-') {
4097 *dd++ = cc;
4098 break;
4099 }
4100
4101 *dd = '\0';
4102 dd = dest; /* reset string buffer */
4103 if (found_key) {
4104 if (nelems > 1) {
4105 /*
4106 * ERROR: We expected an object, not
4107 * this number.
4108 */
4109 return (NULL);
4110 }
4111 return (dest);
4112 }
4113
4114 cur--;
4115 state = DTRACE_JSON_COMMA;
4116 break;
4117 case DTRACE_JSON_VALUE:
4118 if (isspace(cc))
4119 break;
4120
4121 if (cc == '{' || cc == '[') {
4122 if (nelems > 1 && found_key) {
4123 in_array = cc == '[' ? B_TRUE : B_FALSE;
4124 /*
4125 * If our element selector directs us
4126 * to descend into this nested object,
4127 * then move to the next selector
4128 * element in the list and restart the
4129 * state machine.
4130 */
4131 while (*elem != '\0')
4132 elem++;
4133 elem++; /* skip the inter-element NUL */
4134 nelems--;
4135 dd = dest;
4136 if (in_array) {
4137 state = DTRACE_JSON_VALUE;
4138 array_pos = 0;
4139 array_elem = dtrace_strtoll(
4140 elem, 10, size);
4141 found_key = array_elem == 0 ?
4142 B_TRUE : B_FALSE;
4143 } else {
4144 found_key = B_FALSE;
4145 state = DTRACE_JSON_OBJECT;
4146 }
4147 break;
4148 }
4149
4150 /*
4151 * Otherwise, we wish to either skip this
4152 * nested object or return it in full.
4153 */
4154 if (cc == '[')
4155 brackets = 1;
4156 else
4157 braces = 1;
4158 *dd++ = cc;
4159 state = DTRACE_JSON_COLLECT_OBJECT;
4160 break;
4161 }
4162
4163 if (cc == '"') {
4164 state = DTRACE_JSON_STRING;
4165 break;
4166 }
4167
4168 if (islower(cc)) {
4169 /*
4170 * Here we deal with true, false and null.
4171 */
4172 *dd++ = cc;
4173 state = DTRACE_JSON_IDENTIFIER;
4174 break;
4175 }
4176
4177 if (cc == '-' || isdigit(cc)) {
4178 *dd++ = cc;
4179 state = DTRACE_JSON_NUMBER;
4180 break;
4181 }
4182
4183 /*
4184 * ERROR: unexpected character at start of value.
4185 */
4186 return (NULL);
4187 case DTRACE_JSON_COLLECT_OBJECT:
4188 if (cc == '\0')
4189 /*
4190 * ERROR: unexpected end of input.
4191 */
4192 return (NULL);
4193
4194 *dd++ = cc;
4195 if (cc == '"') {
4196 collect_object = B_TRUE;
4197 state = DTRACE_JSON_STRING;
4198 break;
4199 }
4200
4201 if (cc == ']') {
4202 if (brackets-- == 0) {
4203 /*
4204 * ERROR: unbalanced brackets.
4205 */
4206 return (NULL);
4207 }
4208 } else if (cc == '}') {
4209 if (braces-- == 0) {
4210 /*
4211 * ERROR: unbalanced braces.
4212 */
4213 return (NULL);
4214 }
4215 } else if (cc == '{') {
4216 braces++;
4217 } else if (cc == '[') {
4218 brackets++;
4219 }
4220
4221 if (brackets == 0 && braces == 0) {
4222 if (found_key) {
4223 *dd = '\0';
4224 return (dest);
4225 }
4226 dd = dest; /* reset string buffer */
4227 state = DTRACE_JSON_COMMA;
4228 }
4229 break;
4230 }
4231 }
4232 return (NULL);
4233 }
4234
4235 /*
4236 * Emulate the execution of DTrace ID subroutines invoked by the call opcode.
4237 * Notice that we don't bother validating the proper number of arguments or
4238 * their types in the tuple stack. This isn't needed because all argument
4239 * interpretation is safe because of our load safety -- the worst that can
4240 * happen is that a bogus program can obtain bogus results.
4241 */
4242 static void
dtrace_dif_subr(uint_t subr,uint_t rd,uint64_t * regs,dtrace_key_t * tupregs,int nargs,dtrace_mstate_t * mstate,dtrace_state_t * state)4243 dtrace_dif_subr(uint_t subr, uint_t rd, uint64_t *regs,
4244 dtrace_key_t *tupregs, int nargs,
4245 dtrace_mstate_t *mstate, dtrace_state_t *state)
4246 {
4247 volatile uint16_t *flags = &cpu_core[curcpu].cpuc_dtrace_flags;
4248 volatile uintptr_t *illval = &cpu_core[curcpu].cpuc_dtrace_illval;
4249 dtrace_vstate_t *vstate = &state->dts_vstate;
4250
4251 #ifdef illumos
4252 union {
4253 mutex_impl_t mi;
4254 uint64_t mx;
4255 } m;
4256
4257 union {
4258 krwlock_t ri;
4259 uintptr_t rw;
4260 } r;
4261 #else
4262 struct thread *lowner;
4263 union {
4264 struct lock_object *li;
4265 uintptr_t lx;
4266 } l;
4267 #endif
4268
4269 switch (subr) {
4270 case DIF_SUBR_RAND:
4271 regs[rd] = dtrace_xoroshiro128_plus_next(
4272 state->dts_rstate[curcpu]);
4273 break;
4274
4275 #ifdef illumos
4276 case DIF_SUBR_MUTEX_OWNED:
4277 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (kmutex_t),
4278 mstate, vstate)) {
4279 regs[rd] = 0;
4280 break;
4281 }
4282
4283 m.mx = dtrace_load64(tupregs[0].dttk_value);
4284 if (MUTEX_TYPE_ADAPTIVE(&m.mi))
4285 regs[rd] = MUTEX_OWNER(&m.mi) != MUTEX_NO_OWNER;
4286 else
4287 regs[rd] = LOCK_HELD(&m.mi.m_spin.m_spinlock);
4288 break;
4289
4290 case DIF_SUBR_MUTEX_OWNER:
4291 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (kmutex_t),
4292 mstate, vstate)) {
4293 regs[rd] = 0;
4294 break;
4295 }
4296
4297 m.mx = dtrace_load64(tupregs[0].dttk_value);
4298 if (MUTEX_TYPE_ADAPTIVE(&m.mi) &&
4299 MUTEX_OWNER(&m.mi) != MUTEX_NO_OWNER)
4300 regs[rd] = (uintptr_t)MUTEX_OWNER(&m.mi);
4301 else
4302 regs[rd] = 0;
4303 break;
4304
4305 case DIF_SUBR_MUTEX_TYPE_ADAPTIVE:
4306 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (kmutex_t),
4307 mstate, vstate)) {
4308 regs[rd] = 0;
4309 break;
4310 }
4311
4312 m.mx = dtrace_load64(tupregs[0].dttk_value);
4313 regs[rd] = MUTEX_TYPE_ADAPTIVE(&m.mi);
4314 break;
4315
4316 case DIF_SUBR_MUTEX_TYPE_SPIN:
4317 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (kmutex_t),
4318 mstate, vstate)) {
4319 regs[rd] = 0;
4320 break;
4321 }
4322
4323 m.mx = dtrace_load64(tupregs[0].dttk_value);
4324 regs[rd] = MUTEX_TYPE_SPIN(&m.mi);
4325 break;
4326
4327 case DIF_SUBR_RW_READ_HELD: {
4328 uintptr_t tmp;
4329
4330 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (uintptr_t),
4331 mstate, vstate)) {
4332 regs[rd] = 0;
4333 break;
4334 }
4335
4336 r.rw = dtrace_loadptr(tupregs[0].dttk_value);
4337 regs[rd] = _RW_READ_HELD(&r.ri, tmp);
4338 break;
4339 }
4340
4341 case DIF_SUBR_RW_WRITE_HELD:
4342 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (krwlock_t),
4343 mstate, vstate)) {
4344 regs[rd] = 0;
4345 break;
4346 }
4347
4348 r.rw = dtrace_loadptr(tupregs[0].dttk_value);
4349 regs[rd] = _RW_WRITE_HELD(&r.ri);
4350 break;
4351
4352 case DIF_SUBR_RW_ISWRITER:
4353 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (krwlock_t),
4354 mstate, vstate)) {
4355 regs[rd] = 0;
4356 break;
4357 }
4358
4359 r.rw = dtrace_loadptr(tupregs[0].dttk_value);
4360 regs[rd] = _RW_ISWRITER(&r.ri);
4361 break;
4362
4363 #else /* !illumos */
4364 case DIF_SUBR_MUTEX_OWNED:
4365 if (!dtrace_canload(tupregs[0].dttk_value,
4366 sizeof (struct lock_object), mstate, vstate)) {
4367 regs[rd] = 0;
4368 break;
4369 }
4370 l.lx = dtrace_loadptr((uintptr_t)&tupregs[0].dttk_value);
4371 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4372 regs[rd] = LOCK_CLASS(l.li)->lc_owner(l.li, &lowner);
4373 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4374 break;
4375
4376 case DIF_SUBR_MUTEX_OWNER:
4377 if (!dtrace_canload(tupregs[0].dttk_value,
4378 sizeof (struct lock_object), mstate, vstate)) {
4379 regs[rd] = 0;
4380 break;
4381 }
4382 l.lx = dtrace_loadptr((uintptr_t)&tupregs[0].dttk_value);
4383 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4384 LOCK_CLASS(l.li)->lc_owner(l.li, &lowner);
4385 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4386 regs[rd] = (uintptr_t)lowner;
4387 break;
4388
4389 case DIF_SUBR_MUTEX_TYPE_ADAPTIVE:
4390 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (struct mtx),
4391 mstate, vstate)) {
4392 regs[rd] = 0;
4393 break;
4394 }
4395 l.lx = dtrace_loadptr((uintptr_t)&tupregs[0].dttk_value);
4396 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4397 regs[rd] = (LOCK_CLASS(l.li)->lc_flags & LC_SLEEPLOCK) != 0;
4398 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4399 break;
4400
4401 case DIF_SUBR_MUTEX_TYPE_SPIN:
4402 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (struct mtx),
4403 mstate, vstate)) {
4404 regs[rd] = 0;
4405 break;
4406 }
4407 l.lx = dtrace_loadptr((uintptr_t)&tupregs[0].dttk_value);
4408 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4409 regs[rd] = (LOCK_CLASS(l.li)->lc_flags & LC_SPINLOCK) != 0;
4410 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4411 break;
4412
4413 case DIF_SUBR_RW_READ_HELD:
4414 case DIF_SUBR_SX_SHARED_HELD:
4415 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (uintptr_t),
4416 mstate, vstate)) {
4417 regs[rd] = 0;
4418 break;
4419 }
4420 l.lx = dtrace_loadptr((uintptr_t)&tupregs[0].dttk_value);
4421 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4422 regs[rd] = LOCK_CLASS(l.li)->lc_owner(l.li, &lowner) &&
4423 lowner == NULL;
4424 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4425 break;
4426
4427 case DIF_SUBR_RW_WRITE_HELD:
4428 case DIF_SUBR_SX_EXCLUSIVE_HELD:
4429 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (uintptr_t),
4430 mstate, vstate)) {
4431 regs[rd] = 0;
4432 break;
4433 }
4434 l.lx = dtrace_loadptr(tupregs[0].dttk_value);
4435 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4436 regs[rd] = LOCK_CLASS(l.li)->lc_owner(l.li, &lowner) &&
4437 lowner != NULL;
4438 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4439 break;
4440
4441 case DIF_SUBR_RW_ISWRITER:
4442 case DIF_SUBR_SX_ISEXCLUSIVE:
4443 if (!dtrace_canload(tupregs[0].dttk_value, sizeof (uintptr_t),
4444 mstate, vstate)) {
4445 regs[rd] = 0;
4446 break;
4447 }
4448 l.lx = dtrace_loadptr(tupregs[0].dttk_value);
4449 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4450 LOCK_CLASS(l.li)->lc_owner(l.li, &lowner);
4451 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4452 regs[rd] = (lowner == curthread);
4453 break;
4454 #endif /* illumos */
4455
4456 case DIF_SUBR_BCOPY: {
4457 /*
4458 * We need to be sure that the destination is in the scratch
4459 * region -- no other region is allowed.
4460 */
4461 uintptr_t src = tupregs[0].dttk_value;
4462 uintptr_t dest = tupregs[1].dttk_value;
4463 size_t size = tupregs[2].dttk_value;
4464
4465 if (!dtrace_inscratch(dest, size, mstate)) {
4466 *flags |= CPU_DTRACE_BADADDR;
4467 *illval = regs[rd];
4468 break;
4469 }
4470
4471 if (!dtrace_canload(src, size, mstate, vstate)) {
4472 regs[rd] = 0;
4473 break;
4474 }
4475
4476 dtrace_bcopy((void *)src, (void *)dest, size);
4477 break;
4478 }
4479
4480 case DIF_SUBR_ALLOCA:
4481 case DIF_SUBR_COPYIN: {
4482 uintptr_t dest = P2ROUNDUP(mstate->dtms_scratch_ptr, 8);
4483 uint64_t size =
4484 tupregs[subr == DIF_SUBR_ALLOCA ? 0 : 1].dttk_value;
4485 size_t scratch_size = (dest - mstate->dtms_scratch_ptr) + size;
4486
4487 /*
4488 * This action doesn't require any credential checks since
4489 * probes will not activate in user contexts to which the
4490 * enabling user does not have permissions.
4491 */
4492
4493 /*
4494 * Rounding up the user allocation size could have overflowed
4495 * a large, bogus allocation (like -1ULL) to 0.
4496 */
4497 if (scratch_size < size ||
4498 !DTRACE_INSCRATCH(mstate, scratch_size)) {
4499 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
4500 regs[rd] = 0;
4501 break;
4502 }
4503
4504 if (subr == DIF_SUBR_COPYIN) {
4505 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4506 dtrace_copyin(tupregs[0].dttk_value, dest, size, flags);
4507 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4508 }
4509
4510 mstate->dtms_scratch_ptr += scratch_size;
4511 regs[rd] = dest;
4512 break;
4513 }
4514
4515 case DIF_SUBR_COPYINTO: {
4516 uint64_t size = tupregs[1].dttk_value;
4517 uintptr_t dest = tupregs[2].dttk_value;
4518
4519 /*
4520 * This action doesn't require any credential checks since
4521 * probes will not activate in user contexts to which the
4522 * enabling user does not have permissions.
4523 */
4524 if (!dtrace_inscratch(dest, size, mstate)) {
4525 *flags |= CPU_DTRACE_BADADDR;
4526 *illval = regs[rd];
4527 break;
4528 }
4529
4530 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4531 dtrace_copyin(tupregs[0].dttk_value, dest, size, flags);
4532 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4533 break;
4534 }
4535
4536 case DIF_SUBR_COPYINSTR: {
4537 uintptr_t dest = mstate->dtms_scratch_ptr;
4538 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
4539
4540 if (nargs > 1 && tupregs[1].dttk_value < size)
4541 size = tupregs[1].dttk_value + 1;
4542
4543 /*
4544 * This action doesn't require any credential checks since
4545 * probes will not activate in user contexts to which the
4546 * enabling user does not have permissions.
4547 */
4548 if (!DTRACE_INSCRATCH(mstate, size)) {
4549 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
4550 regs[rd] = 0;
4551 break;
4552 }
4553
4554 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4555 dtrace_copyinstr(tupregs[0].dttk_value, dest, size, flags);
4556 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4557
4558 ((char *)dest)[size - 1] = '\0';
4559 mstate->dtms_scratch_ptr += size;
4560 regs[rd] = dest;
4561 break;
4562 }
4563
4564 #ifdef illumos
4565 case DIF_SUBR_MSGSIZE:
4566 case DIF_SUBR_MSGDSIZE: {
4567 uintptr_t baddr = tupregs[0].dttk_value, daddr;
4568 uintptr_t wptr, rptr;
4569 size_t count = 0;
4570 int cont = 0;
4571
4572 while (baddr != 0 && !(*flags & CPU_DTRACE_FAULT)) {
4573
4574 if (!dtrace_canload(baddr, sizeof (mblk_t), mstate,
4575 vstate)) {
4576 regs[rd] = 0;
4577 break;
4578 }
4579
4580 wptr = dtrace_loadptr(baddr +
4581 offsetof(mblk_t, b_wptr));
4582
4583 rptr = dtrace_loadptr(baddr +
4584 offsetof(mblk_t, b_rptr));
4585
4586 if (wptr < rptr) {
4587 *flags |= CPU_DTRACE_BADADDR;
4588 *illval = tupregs[0].dttk_value;
4589 break;
4590 }
4591
4592 daddr = dtrace_loadptr(baddr +
4593 offsetof(mblk_t, b_datap));
4594
4595 baddr = dtrace_loadptr(baddr +
4596 offsetof(mblk_t, b_cont));
4597
4598 /*
4599 * We want to prevent against denial-of-service here,
4600 * so we're only going to search the list for
4601 * dtrace_msgdsize_max mblks.
4602 */
4603 if (cont++ > dtrace_msgdsize_max) {
4604 *flags |= CPU_DTRACE_ILLOP;
4605 break;
4606 }
4607
4608 if (subr == DIF_SUBR_MSGDSIZE) {
4609 if (dtrace_load8(daddr +
4610 offsetof(dblk_t, db_type)) != M_DATA)
4611 continue;
4612 }
4613
4614 count += wptr - rptr;
4615 }
4616
4617 if (!(*flags & CPU_DTRACE_FAULT))
4618 regs[rd] = count;
4619
4620 break;
4621 }
4622 #endif
4623
4624 case DIF_SUBR_PROGENYOF: {
4625 pid_t pid = tupregs[0].dttk_value;
4626 proc_t *p;
4627 int rval = 0;
4628
4629 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4630
4631 for (p = curthread->t_procp; p != NULL; p = p->p_parent) {
4632 #ifdef illumos
4633 if (p->p_pidp->pid_id == pid) {
4634 #else
4635 if (p->p_pid == pid) {
4636 #endif
4637 rval = 1;
4638 break;
4639 }
4640 }
4641
4642 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4643
4644 regs[rd] = rval;
4645 break;
4646 }
4647
4648 case DIF_SUBR_SPECULATION:
4649 regs[rd] = dtrace_speculation(state);
4650 break;
4651
4652 case DIF_SUBR_COPYOUT: {
4653 uintptr_t kaddr = tupregs[0].dttk_value;
4654 uintptr_t uaddr = tupregs[1].dttk_value;
4655 uint64_t size = tupregs[2].dttk_value;
4656
4657 if (!dtrace_destructive_disallow &&
4658 dtrace_priv_proc_control(state) &&
4659 !dtrace_istoxic(kaddr, size) &&
4660 dtrace_canload(kaddr, size, mstate, vstate)) {
4661 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4662 dtrace_copyout(kaddr, uaddr, size, flags);
4663 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4664 }
4665 break;
4666 }
4667
4668 case DIF_SUBR_COPYOUTSTR: {
4669 uintptr_t kaddr = tupregs[0].dttk_value;
4670 uintptr_t uaddr = tupregs[1].dttk_value;
4671 uint64_t size = tupregs[2].dttk_value;
4672 size_t lim;
4673
4674 if (!dtrace_destructive_disallow &&
4675 dtrace_priv_proc_control(state) &&
4676 !dtrace_istoxic(kaddr, size) &&
4677 dtrace_strcanload(kaddr, size, &lim, mstate, vstate)) {
4678 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
4679 dtrace_copyoutstr(kaddr, uaddr, lim, flags);
4680 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
4681 }
4682 break;
4683 }
4684
4685 case DIF_SUBR_STRLEN: {
4686 size_t size = state->dts_options[DTRACEOPT_STRSIZE];
4687 uintptr_t addr = (uintptr_t)tupregs[0].dttk_value;
4688 size_t lim;
4689
4690 if (!dtrace_strcanload(addr, size, &lim, mstate, vstate)) {
4691 regs[rd] = 0;
4692 break;
4693 }
4694
4695 regs[rd] = dtrace_strlen((char *)addr, lim);
4696 break;
4697 }
4698
4699 case DIF_SUBR_STRCHR:
4700 case DIF_SUBR_STRRCHR: {
4701 /*
4702 * We're going to iterate over the string looking for the
4703 * specified character. We will iterate until we have reached
4704 * the string length or we have found the character. If this
4705 * is DIF_SUBR_STRRCHR, we will look for the last occurrence
4706 * of the specified character instead of the first.
4707 */
4708 uintptr_t addr = tupregs[0].dttk_value;
4709 uintptr_t addr_limit;
4710 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
4711 size_t lim;
4712 char c, target = (char)tupregs[1].dttk_value;
4713
4714 if (!dtrace_strcanload(addr, size, &lim, mstate, vstate)) {
4715 regs[rd] = 0;
4716 break;
4717 }
4718 addr_limit = addr + lim;
4719
4720 for (regs[rd] = 0; addr < addr_limit; addr++) {
4721 if ((c = dtrace_load8(addr)) == target) {
4722 regs[rd] = addr;
4723
4724 if (subr == DIF_SUBR_STRCHR)
4725 break;
4726 }
4727
4728 if (c == '\0')
4729 break;
4730 }
4731 break;
4732 }
4733
4734 case DIF_SUBR_STRSTR:
4735 case DIF_SUBR_INDEX:
4736 case DIF_SUBR_RINDEX: {
4737 /*
4738 * We're going to iterate over the string looking for the
4739 * specified string. We will iterate until we have reached
4740 * the string length or we have found the string. (Yes, this
4741 * is done in the most naive way possible -- but considering
4742 * that the string we're searching for is likely to be
4743 * relatively short, the complexity of Rabin-Karp or similar
4744 * hardly seems merited.)
4745 */
4746 char *addr = (char *)(uintptr_t)tupregs[0].dttk_value;
4747 char *substr = (char *)(uintptr_t)tupregs[1].dttk_value;
4748 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
4749 size_t len = dtrace_strlen(addr, size);
4750 size_t sublen = dtrace_strlen(substr, size);
4751 char *limit = addr + len, *orig = addr;
4752 int notfound = subr == DIF_SUBR_STRSTR ? 0 : -1;
4753 int inc = 1;
4754
4755 regs[rd] = notfound;
4756
4757 if (!dtrace_canload((uintptr_t)addr, len + 1, mstate, vstate)) {
4758 regs[rd] = 0;
4759 break;
4760 }
4761
4762 if (!dtrace_canload((uintptr_t)substr, sublen + 1, mstate,
4763 vstate)) {
4764 regs[rd] = 0;
4765 break;
4766 }
4767
4768 /*
4769 * strstr() and index()/rindex() have similar semantics if
4770 * both strings are the empty string: strstr() returns a
4771 * pointer to the (empty) string, and index() and rindex()
4772 * both return index 0 (regardless of any position argument).
4773 */
4774 if (sublen == 0 && len == 0) {
4775 if (subr == DIF_SUBR_STRSTR)
4776 regs[rd] = (uintptr_t)addr;
4777 else
4778 regs[rd] = 0;
4779 break;
4780 }
4781
4782 if (subr != DIF_SUBR_STRSTR) {
4783 if (subr == DIF_SUBR_RINDEX) {
4784 limit = orig - 1;
4785 addr += len;
4786 inc = -1;
4787 }
4788
4789 /*
4790 * Both index() and rindex() take an optional position
4791 * argument that denotes the starting position.
4792 */
4793 if (nargs == 3) {
4794 int64_t pos = (int64_t)tupregs[2].dttk_value;
4795
4796 /*
4797 * If the position argument to index() is
4798 * negative, Perl implicitly clamps it at
4799 * zero. This semantic is a little surprising
4800 * given the special meaning of negative
4801 * positions to similar Perl functions like
4802 * substr(), but it appears to reflect a
4803 * notion that index() can start from a
4804 * negative index and increment its way up to
4805 * the string. Given this notion, Perl's
4806 * rindex() is at least self-consistent in
4807 * that it implicitly clamps positions greater
4808 * than the string length to be the string
4809 * length. Where Perl completely loses
4810 * coherence, however, is when the specified
4811 * substring is the empty string (""). In
4812 * this case, even if the position is
4813 * negative, rindex() returns 0 -- and even if
4814 * the position is greater than the length,
4815 * index() returns the string length. These
4816 * semantics violate the notion that index()
4817 * should never return a value less than the
4818 * specified position and that rindex() should
4819 * never return a value greater than the
4820 * specified position. (One assumes that
4821 * these semantics are artifacts of Perl's
4822 * implementation and not the results of
4823 * deliberate design -- it beggars belief that
4824 * even Larry Wall could desire such oddness.)
4825 * While in the abstract one would wish for
4826 * consistent position semantics across
4827 * substr(), index() and rindex() -- or at the
4828 * very least self-consistent position
4829 * semantics for index() and rindex() -- we
4830 * instead opt to keep with the extant Perl
4831 * semantics, in all their broken glory. (Do
4832 * we have more desire to maintain Perl's
4833 * semantics than Perl does? Probably.)
4834 */
4835 if (subr == DIF_SUBR_RINDEX) {
4836 if (pos < 0) {
4837 if (sublen == 0)
4838 regs[rd] = 0;
4839 break;
4840 }
4841
4842 if (pos > len)
4843 pos = len;
4844 } else {
4845 if (pos < 0)
4846 pos = 0;
4847
4848 if (pos >= len) {
4849 if (sublen == 0)
4850 regs[rd] = len;
4851 break;
4852 }
4853 }
4854
4855 addr = orig + pos;
4856 }
4857 }
4858
4859 for (regs[rd] = notfound; addr != limit; addr += inc) {
4860 if (dtrace_strncmp(addr, substr, sublen) == 0) {
4861 if (subr != DIF_SUBR_STRSTR) {
4862 /*
4863 * As D index() and rindex() are
4864 * modeled on Perl (and not on awk),
4865 * we return a zero-based (and not a
4866 * one-based) index. (For you Perl
4867 * weenies: no, we're not going to add
4868 * $[ -- and shouldn't you be at a con
4869 * or something?)
4870 */
4871 regs[rd] = (uintptr_t)(addr - orig);
4872 break;
4873 }
4874
4875 ASSERT(subr == DIF_SUBR_STRSTR);
4876 regs[rd] = (uintptr_t)addr;
4877 break;
4878 }
4879 }
4880
4881 break;
4882 }
4883
4884 case DIF_SUBR_STRTOK: {
4885 uintptr_t addr = tupregs[0].dttk_value;
4886 uintptr_t tokaddr = tupregs[1].dttk_value;
4887 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
4888 uintptr_t limit, toklimit;
4889 size_t clim;
4890 uint8_t c = 0, tokmap[32]; /* 256 / 8 */
4891 char *dest = (char *)mstate->dtms_scratch_ptr;
4892 int i;
4893
4894 /*
4895 * Check both the token buffer and (later) the input buffer,
4896 * since both could be non-scratch addresses.
4897 */
4898 if (!dtrace_strcanload(tokaddr, size, &clim, mstate, vstate)) {
4899 regs[rd] = 0;
4900 break;
4901 }
4902 toklimit = tokaddr + clim;
4903
4904 if (!DTRACE_INSCRATCH(mstate, size)) {
4905 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
4906 regs[rd] = 0;
4907 break;
4908 }
4909
4910 if (addr == 0) {
4911 /*
4912 * If the address specified is NULL, we use our saved
4913 * strtok pointer from the mstate. Note that this
4914 * means that the saved strtok pointer is _only_
4915 * valid within multiple enablings of the same probe --
4916 * it behaves like an implicit clause-local variable.
4917 */
4918 addr = mstate->dtms_strtok;
4919 limit = mstate->dtms_strtok_limit;
4920 } else {
4921 /*
4922 * If the user-specified address is non-NULL we must
4923 * access check it. This is the only time we have
4924 * a chance to do so, since this address may reside
4925 * in the string table of this clause-- future calls
4926 * (when we fetch addr from mstate->dtms_strtok)
4927 * would fail this access check.
4928 */
4929 if (!dtrace_strcanload(addr, size, &clim, mstate,
4930 vstate)) {
4931 regs[rd] = 0;
4932 break;
4933 }
4934 limit = addr + clim;
4935 }
4936
4937 /*
4938 * First, zero the token map, and then process the token
4939 * string -- setting a bit in the map for every character
4940 * found in the token string.
4941 */
4942 for (i = 0; i < sizeof (tokmap); i++)
4943 tokmap[i] = 0;
4944
4945 for (; tokaddr < toklimit; tokaddr++) {
4946 if ((c = dtrace_load8(tokaddr)) == '\0')
4947 break;
4948
4949 ASSERT((c >> 3) < sizeof (tokmap));
4950 tokmap[c >> 3] |= (1 << (c & 0x7));
4951 }
4952
4953 for (; addr < limit; addr++) {
4954 /*
4955 * We're looking for a character that is _not_
4956 * contained in the token string.
4957 */
4958 if ((c = dtrace_load8(addr)) == '\0')
4959 break;
4960
4961 if (!(tokmap[c >> 3] & (1 << (c & 0x7))))
4962 break;
4963 }
4964
4965 if (c == '\0') {
4966 /*
4967 * We reached the end of the string without finding
4968 * any character that was not in the token string.
4969 * We return NULL in this case, and we set the saved
4970 * address to NULL as well.
4971 */
4972 regs[rd] = 0;
4973 mstate->dtms_strtok = 0;
4974 mstate->dtms_strtok_limit = 0;
4975 break;
4976 }
4977
4978 /*
4979 * From here on, we're copying into the destination string.
4980 */
4981 for (i = 0; addr < limit && i < size - 1; addr++) {
4982 if ((c = dtrace_load8(addr)) == '\0')
4983 break;
4984
4985 if (tokmap[c >> 3] & (1 << (c & 0x7)))
4986 break;
4987
4988 ASSERT(i < size);
4989 dest[i++] = c;
4990 }
4991
4992 ASSERT(i < size);
4993 dest[i] = '\0';
4994 regs[rd] = (uintptr_t)dest;
4995 mstate->dtms_scratch_ptr += size;
4996 mstate->dtms_strtok = addr;
4997 mstate->dtms_strtok_limit = limit;
4998 break;
4999 }
5000
5001 case DIF_SUBR_SUBSTR: {
5002 uintptr_t s = tupregs[0].dttk_value;
5003 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5004 char *d = (char *)mstate->dtms_scratch_ptr;
5005 int64_t index = (int64_t)tupregs[1].dttk_value;
5006 int64_t remaining = (int64_t)tupregs[2].dttk_value;
5007 size_t len = dtrace_strlen((char *)s, size);
5008 int64_t i;
5009
5010 if (!dtrace_canload(s, len + 1, mstate, vstate)) {
5011 regs[rd] = 0;
5012 break;
5013 }
5014
5015 if (!DTRACE_INSCRATCH(mstate, size)) {
5016 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5017 regs[rd] = 0;
5018 break;
5019 }
5020
5021 if (nargs <= 2)
5022 remaining = (int64_t)size;
5023
5024 if (index < 0) {
5025 index += len;
5026
5027 if (index < 0 && index + remaining > 0) {
5028 remaining += index;
5029 index = 0;
5030 }
5031 }
5032
5033 if (index >= len || index < 0) {
5034 remaining = 0;
5035 } else if (remaining < 0) {
5036 remaining += len - index;
5037 } else if (index + remaining > size) {
5038 remaining = size - index;
5039 }
5040
5041 for (i = 0; i < remaining; i++) {
5042 if ((d[i] = dtrace_load8(s + index + i)) == '\0')
5043 break;
5044 }
5045
5046 d[i] = '\0';
5047
5048 mstate->dtms_scratch_ptr += size;
5049 regs[rd] = (uintptr_t)d;
5050 break;
5051 }
5052
5053 case DIF_SUBR_JSON: {
5054 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5055 uintptr_t json = tupregs[0].dttk_value;
5056 size_t jsonlen = dtrace_strlen((char *)json, size);
5057 uintptr_t elem = tupregs[1].dttk_value;
5058 size_t elemlen = dtrace_strlen((char *)elem, size);
5059
5060 char *dest = (char *)mstate->dtms_scratch_ptr;
5061 char *elemlist = (char *)mstate->dtms_scratch_ptr + jsonlen + 1;
5062 char *ee = elemlist;
5063 int nelems = 1;
5064 uintptr_t cur;
5065
5066 if (!dtrace_canload(json, jsonlen + 1, mstate, vstate) ||
5067 !dtrace_canload(elem, elemlen + 1, mstate, vstate)) {
5068 regs[rd] = 0;
5069 break;
5070 }
5071
5072 if (!DTRACE_INSCRATCH(mstate, jsonlen + 1 + elemlen + 1)) {
5073 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5074 regs[rd] = 0;
5075 break;
5076 }
5077
5078 /*
5079 * Read the element selector and split it up into a packed list
5080 * of strings.
5081 */
5082 for (cur = elem; cur < elem + elemlen; cur++) {
5083 char cc = dtrace_load8(cur);
5084
5085 if (cur == elem && cc == '[') {
5086 /*
5087 * If the first element selector key is
5088 * actually an array index then ignore the
5089 * bracket.
5090 */
5091 continue;
5092 }
5093
5094 if (cc == ']')
5095 continue;
5096
5097 if (cc == '.' || cc == '[') {
5098 nelems++;
5099 cc = '\0';
5100 }
5101
5102 *ee++ = cc;
5103 }
5104 *ee++ = '\0';
5105
5106 if ((regs[rd] = (uintptr_t)dtrace_json(size, json, elemlist,
5107 nelems, dest)) != 0)
5108 mstate->dtms_scratch_ptr += jsonlen + 1;
5109 break;
5110 }
5111
5112 case DIF_SUBR_TOUPPER:
5113 case DIF_SUBR_TOLOWER: {
5114 uintptr_t s = tupregs[0].dttk_value;
5115 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5116 char *dest = (char *)mstate->dtms_scratch_ptr, c;
5117 size_t len = dtrace_strlen((char *)s, size);
5118 char lower, upper, convert;
5119 int64_t i;
5120
5121 if (subr == DIF_SUBR_TOUPPER) {
5122 lower = 'a';
5123 upper = 'z';
5124 convert = 'A';
5125 } else {
5126 lower = 'A';
5127 upper = 'Z';
5128 convert = 'a';
5129 }
5130
5131 if (!dtrace_canload(s, len + 1, mstate, vstate)) {
5132 regs[rd] = 0;
5133 break;
5134 }
5135
5136 if (!DTRACE_INSCRATCH(mstate, size)) {
5137 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5138 regs[rd] = 0;
5139 break;
5140 }
5141
5142 for (i = 0; i < size - 1; i++) {
5143 if ((c = dtrace_load8(s + i)) == '\0')
5144 break;
5145
5146 if (c >= lower && c <= upper)
5147 c = convert + (c - lower);
5148
5149 dest[i] = c;
5150 }
5151
5152 ASSERT(i < size);
5153 dest[i] = '\0';
5154 regs[rd] = (uintptr_t)dest;
5155 mstate->dtms_scratch_ptr += size;
5156 break;
5157 }
5158
5159 #ifdef illumos
5160 case DIF_SUBR_GETMAJOR:
5161 #ifdef _LP64
5162 regs[rd] = (tupregs[0].dttk_value >> NBITSMINOR64) & MAXMAJ64;
5163 #else
5164 regs[rd] = (tupregs[0].dttk_value >> NBITSMINOR) & MAXMAJ;
5165 #endif
5166 break;
5167
5168 case DIF_SUBR_GETMINOR:
5169 #ifdef _LP64
5170 regs[rd] = tupregs[0].dttk_value & MAXMIN64;
5171 #else
5172 regs[rd] = tupregs[0].dttk_value & MAXMIN;
5173 #endif
5174 break;
5175
5176 case DIF_SUBR_DDI_PATHNAME: {
5177 /*
5178 * This one is a galactic mess. We are going to roughly
5179 * emulate ddi_pathname(), but it's made more complicated
5180 * by the fact that we (a) want to include the minor name and
5181 * (b) must proceed iteratively instead of recursively.
5182 */
5183 uintptr_t dest = mstate->dtms_scratch_ptr;
5184 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5185 char *start = (char *)dest, *end = start + size - 1;
5186 uintptr_t daddr = tupregs[0].dttk_value;
5187 int64_t minor = (int64_t)tupregs[1].dttk_value;
5188 char *s;
5189 int i, len, depth = 0;
5190
5191 /*
5192 * Due to all the pointer jumping we do and context we must
5193 * rely upon, we just mandate that the user must have kernel
5194 * read privileges to use this routine.
5195 */
5196 if ((mstate->dtms_access & DTRACE_ACCESS_KERNEL) == 0) {
5197 *flags |= CPU_DTRACE_KPRIV;
5198 *illval = daddr;
5199 regs[rd] = 0;
5200 }
5201
5202 if (!DTRACE_INSCRATCH(mstate, size)) {
5203 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5204 regs[rd] = 0;
5205 break;
5206 }
5207
5208 *end = '\0';
5209
5210 /*
5211 * We want to have a name for the minor. In order to do this,
5212 * we need to walk the minor list from the devinfo. We want
5213 * to be sure that we don't infinitely walk a circular list,
5214 * so we check for circularity by sending a scout pointer
5215 * ahead two elements for every element that we iterate over;
5216 * if the list is circular, these will ultimately point to the
5217 * same element. You may recognize this little trick as the
5218 * answer to a stupid interview question -- one that always
5219 * seems to be asked by those who had to have it laboriously
5220 * explained to them, and who can't even concisely describe
5221 * the conditions under which one would be forced to resort to
5222 * this technique. Needless to say, those conditions are
5223 * found here -- and probably only here. Is this the only use
5224 * of this infamous trick in shipping, production code? If it
5225 * isn't, it probably should be...
5226 */
5227 if (minor != -1) {
5228 uintptr_t maddr = dtrace_loadptr(daddr +
5229 offsetof(struct dev_info, devi_minor));
5230
5231 uintptr_t next = offsetof(struct ddi_minor_data, next);
5232 uintptr_t name = offsetof(struct ddi_minor_data,
5233 d_minor) + offsetof(struct ddi_minor, name);
5234 uintptr_t dev = offsetof(struct ddi_minor_data,
5235 d_minor) + offsetof(struct ddi_minor, dev);
5236 uintptr_t scout;
5237
5238 if (maddr != NULL)
5239 scout = dtrace_loadptr(maddr + next);
5240
5241 while (maddr != NULL && !(*flags & CPU_DTRACE_FAULT)) {
5242 uint64_t m;
5243 #ifdef _LP64
5244 m = dtrace_load64(maddr + dev) & MAXMIN64;
5245 #else
5246 m = dtrace_load32(maddr + dev) & MAXMIN;
5247 #endif
5248 if (m != minor) {
5249 maddr = dtrace_loadptr(maddr + next);
5250
5251 if (scout == NULL)
5252 continue;
5253
5254 scout = dtrace_loadptr(scout + next);
5255
5256 if (scout == NULL)
5257 continue;
5258
5259 scout = dtrace_loadptr(scout + next);
5260
5261 if (scout == NULL)
5262 continue;
5263
5264 if (scout == maddr) {
5265 *flags |= CPU_DTRACE_ILLOP;
5266 break;
5267 }
5268
5269 continue;
5270 }
5271
5272 /*
5273 * We have the minor data. Now we need to
5274 * copy the minor's name into the end of the
5275 * pathname.
5276 */
5277 s = (char *)dtrace_loadptr(maddr + name);
5278 len = dtrace_strlen(s, size);
5279
5280 if (*flags & CPU_DTRACE_FAULT)
5281 break;
5282
5283 if (len != 0) {
5284 if ((end -= (len + 1)) < start)
5285 break;
5286
5287 *end = ':';
5288 }
5289
5290 for (i = 1; i <= len; i++)
5291 end[i] = dtrace_load8((uintptr_t)s++);
5292 break;
5293 }
5294 }
5295
5296 while (daddr != NULL && !(*flags & CPU_DTRACE_FAULT)) {
5297 ddi_node_state_t devi_state;
5298
5299 devi_state = dtrace_load32(daddr +
5300 offsetof(struct dev_info, devi_node_state));
5301
5302 if (*flags & CPU_DTRACE_FAULT)
5303 break;
5304
5305 if (devi_state >= DS_INITIALIZED) {
5306 s = (char *)dtrace_loadptr(daddr +
5307 offsetof(struct dev_info, devi_addr));
5308 len = dtrace_strlen(s, size);
5309
5310 if (*flags & CPU_DTRACE_FAULT)
5311 break;
5312
5313 if (len != 0) {
5314 if ((end -= (len + 1)) < start)
5315 break;
5316
5317 *end = '@';
5318 }
5319
5320 for (i = 1; i <= len; i++)
5321 end[i] = dtrace_load8((uintptr_t)s++);
5322 }
5323
5324 /*
5325 * Now for the node name...
5326 */
5327 s = (char *)dtrace_loadptr(daddr +
5328 offsetof(struct dev_info, devi_node_name));
5329
5330 daddr = dtrace_loadptr(daddr +
5331 offsetof(struct dev_info, devi_parent));
5332
5333 /*
5334 * If our parent is NULL (that is, if we're the root
5335 * node), we're going to use the special path
5336 * "devices".
5337 */
5338 if (daddr == 0)
5339 s = "devices";
5340
5341 len = dtrace_strlen(s, size);
5342 if (*flags & CPU_DTRACE_FAULT)
5343 break;
5344
5345 if ((end -= (len + 1)) < start)
5346 break;
5347
5348 for (i = 1; i <= len; i++)
5349 end[i] = dtrace_load8((uintptr_t)s++);
5350 *end = '/';
5351
5352 if (depth++ > dtrace_devdepth_max) {
5353 *flags |= CPU_DTRACE_ILLOP;
5354 break;
5355 }
5356 }
5357
5358 if (end < start)
5359 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5360
5361 if (daddr == 0) {
5362 regs[rd] = (uintptr_t)end;
5363 mstate->dtms_scratch_ptr += size;
5364 }
5365
5366 break;
5367 }
5368 #endif
5369
5370 case DIF_SUBR_STRJOIN: {
5371 char *d = (char *)mstate->dtms_scratch_ptr;
5372 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5373 uintptr_t s1 = tupregs[0].dttk_value;
5374 uintptr_t s2 = tupregs[1].dttk_value;
5375 int i = 0, j = 0;
5376 size_t lim1, lim2;
5377 char c;
5378
5379 if (!dtrace_strcanload(s1, size, &lim1, mstate, vstate) ||
5380 !dtrace_strcanload(s2, size, &lim2, mstate, vstate)) {
5381 regs[rd] = 0;
5382 break;
5383 }
5384
5385 if (!DTRACE_INSCRATCH(mstate, size)) {
5386 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5387 regs[rd] = 0;
5388 break;
5389 }
5390
5391 for (;;) {
5392 if (i >= size) {
5393 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5394 regs[rd] = 0;
5395 break;
5396 }
5397 c = (i >= lim1) ? '\0' : dtrace_load8(s1++);
5398 if ((d[i++] = c) == '\0') {
5399 i--;
5400 break;
5401 }
5402 }
5403
5404 for (;;) {
5405 if (i >= size) {
5406 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5407 regs[rd] = 0;
5408 break;
5409 }
5410
5411 c = (j++ >= lim2) ? '\0' : dtrace_load8(s2++);
5412 if ((d[i++] = c) == '\0')
5413 break;
5414 }
5415
5416 if (i < size) {
5417 mstate->dtms_scratch_ptr += i;
5418 regs[rd] = (uintptr_t)d;
5419 }
5420
5421 break;
5422 }
5423
5424 case DIF_SUBR_STRTOLL: {
5425 uintptr_t s = tupregs[0].dttk_value;
5426 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5427 size_t lim;
5428 int base = 10;
5429
5430 if (nargs > 1) {
5431 if ((base = tupregs[1].dttk_value) <= 1 ||
5432 base > ('z' - 'a' + 1) + ('9' - '0' + 1)) {
5433 *flags |= CPU_DTRACE_ILLOP;
5434 break;
5435 }
5436 }
5437
5438 if (!dtrace_strcanload(s, size, &lim, mstate, vstate)) {
5439 regs[rd] = INT64_MIN;
5440 break;
5441 }
5442
5443 regs[rd] = dtrace_strtoll((char *)s, base, lim);
5444 break;
5445 }
5446
5447 case DIF_SUBR_LLTOSTR: {
5448 int64_t i = (int64_t)tupregs[0].dttk_value;
5449 uint64_t val, digit;
5450 uint64_t size = 65; /* enough room for 2^64 in binary */
5451 char *end = (char *)mstate->dtms_scratch_ptr + size - 1;
5452 int base = 10;
5453
5454 if (nargs > 1) {
5455 if ((base = tupregs[1].dttk_value) <= 1 ||
5456 base > ('z' - 'a' + 1) + ('9' - '0' + 1)) {
5457 *flags |= CPU_DTRACE_ILLOP;
5458 break;
5459 }
5460 }
5461
5462 val = (base == 10 && i < 0) ? i * -1 : i;
5463
5464 if (!DTRACE_INSCRATCH(mstate, size)) {
5465 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5466 regs[rd] = 0;
5467 break;
5468 }
5469
5470 for (*end-- = '\0'; val; val /= base) {
5471 if ((digit = val % base) <= '9' - '0') {
5472 *end-- = '0' + digit;
5473 } else {
5474 *end-- = 'a' + (digit - ('9' - '0') - 1);
5475 }
5476 }
5477
5478 if (i == 0 && base == 16)
5479 *end-- = '0';
5480
5481 if (base == 16)
5482 *end-- = 'x';
5483
5484 if (i == 0 || base == 8 || base == 16)
5485 *end-- = '0';
5486
5487 if (i < 0 && base == 10)
5488 *end-- = '-';
5489
5490 regs[rd] = (uintptr_t)end + 1;
5491 mstate->dtms_scratch_ptr += size;
5492 break;
5493 }
5494
5495 case DIF_SUBR_HTONS:
5496 case DIF_SUBR_NTOHS:
5497 #if BYTE_ORDER == BIG_ENDIAN
5498 regs[rd] = (uint16_t)tupregs[0].dttk_value;
5499 #else
5500 regs[rd] = DT_BSWAP_16((uint16_t)tupregs[0].dttk_value);
5501 #endif
5502 break;
5503
5504
5505 case DIF_SUBR_HTONL:
5506 case DIF_SUBR_NTOHL:
5507 #if BYTE_ORDER == BIG_ENDIAN
5508 regs[rd] = (uint32_t)tupregs[0].dttk_value;
5509 #else
5510 regs[rd] = DT_BSWAP_32((uint32_t)tupregs[0].dttk_value);
5511 #endif
5512 break;
5513
5514
5515 case DIF_SUBR_HTONLL:
5516 case DIF_SUBR_NTOHLL:
5517 #if BYTE_ORDER == BIG_ENDIAN
5518 regs[rd] = (uint64_t)tupregs[0].dttk_value;
5519 #else
5520 regs[rd] = DT_BSWAP_64((uint64_t)tupregs[0].dttk_value);
5521 #endif
5522 break;
5523
5524
5525 case DIF_SUBR_DIRNAME:
5526 case DIF_SUBR_BASENAME: {
5527 char *dest = (char *)mstate->dtms_scratch_ptr;
5528 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5529 uintptr_t src = tupregs[0].dttk_value;
5530 int i, j, len = dtrace_strlen((char *)src, size);
5531 int lastbase = -1, firstbase = -1, lastdir = -1;
5532 int start, end;
5533
5534 if (!dtrace_canload(src, len + 1, mstate, vstate)) {
5535 regs[rd] = 0;
5536 break;
5537 }
5538
5539 if (!DTRACE_INSCRATCH(mstate, size)) {
5540 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5541 regs[rd] = 0;
5542 break;
5543 }
5544
5545 /*
5546 * The basename and dirname for a zero-length string is
5547 * defined to be "."
5548 */
5549 if (len == 0) {
5550 len = 1;
5551 src = (uintptr_t)".";
5552 }
5553
5554 /*
5555 * Start from the back of the string, moving back toward the
5556 * front until we see a character that isn't a slash. That
5557 * character is the last character in the basename.
5558 */
5559 for (i = len - 1; i >= 0; i--) {
5560 if (dtrace_load8(src + i) != '/')
5561 break;
5562 }
5563
5564 if (i >= 0)
5565 lastbase = i;
5566
5567 /*
5568 * Starting from the last character in the basename, move
5569 * towards the front until we find a slash. The character
5570 * that we processed immediately before that is the first
5571 * character in the basename.
5572 */
5573 for (; i >= 0; i--) {
5574 if (dtrace_load8(src + i) == '/')
5575 break;
5576 }
5577
5578 if (i >= 0)
5579 firstbase = i + 1;
5580
5581 /*
5582 * Now keep going until we find a non-slash character. That
5583 * character is the last character in the dirname.
5584 */
5585 for (; i >= 0; i--) {
5586 if (dtrace_load8(src + i) != '/')
5587 break;
5588 }
5589
5590 if (i >= 0)
5591 lastdir = i;
5592
5593 ASSERT(!(lastbase == -1 && firstbase != -1));
5594 ASSERT(!(firstbase == -1 && lastdir != -1));
5595
5596 if (lastbase == -1) {
5597 /*
5598 * We didn't find a non-slash character. We know that
5599 * the length is non-zero, so the whole string must be
5600 * slashes. In either the dirname or the basename
5601 * case, we return '/'.
5602 */
5603 ASSERT(firstbase == -1);
5604 firstbase = lastbase = lastdir = 0;
5605 }
5606
5607 if (firstbase == -1) {
5608 /*
5609 * The entire string consists only of a basename
5610 * component. If we're looking for dirname, we need
5611 * to change our string to be just "."; if we're
5612 * looking for a basename, we'll just set the first
5613 * character of the basename to be 0.
5614 */
5615 if (subr == DIF_SUBR_DIRNAME) {
5616 ASSERT(lastdir == -1);
5617 src = (uintptr_t)".";
5618 lastdir = 0;
5619 } else {
5620 firstbase = 0;
5621 }
5622 }
5623
5624 if (subr == DIF_SUBR_DIRNAME) {
5625 if (lastdir == -1) {
5626 /*
5627 * We know that we have a slash in the name --
5628 * or lastdir would be set to 0, above. And
5629 * because lastdir is -1, we know that this
5630 * slash must be the first character. (That
5631 * is, the full string must be of the form
5632 * "/basename".) In this case, the last
5633 * character of the directory name is 0.
5634 */
5635 lastdir = 0;
5636 }
5637
5638 start = 0;
5639 end = lastdir;
5640 } else {
5641 ASSERT(subr == DIF_SUBR_BASENAME);
5642 ASSERT(firstbase != -1 && lastbase != -1);
5643 start = firstbase;
5644 end = lastbase;
5645 }
5646
5647 for (i = start, j = 0; i <= end && j < size - 1; i++, j++)
5648 dest[j] = dtrace_load8(src + i);
5649
5650 dest[j] = '\0';
5651 regs[rd] = (uintptr_t)dest;
5652 mstate->dtms_scratch_ptr += size;
5653 break;
5654 }
5655
5656 case DIF_SUBR_GETF: {
5657 uintptr_t fd = tupregs[0].dttk_value;
5658 struct filedesc *fdp;
5659 file_t *fp;
5660
5661 if (!dtrace_priv_proc(state)) {
5662 regs[rd] = 0;
5663 break;
5664 }
5665 fdp = curproc->p_fd;
5666 FILEDESC_SLOCK(fdp);
5667 fp = fget_locked(fdp, fd);
5668 mstate->dtms_getf = fp;
5669 regs[rd] = (uintptr_t)fp;
5670 FILEDESC_SUNLOCK(fdp);
5671 break;
5672 }
5673
5674 case DIF_SUBR_CLEANPATH: {
5675 char *dest = (char *)mstate->dtms_scratch_ptr, c;
5676 uint64_t size = state->dts_options[DTRACEOPT_STRSIZE];
5677 uintptr_t src = tupregs[0].dttk_value;
5678 size_t lim;
5679 int i = 0, j = 0;
5680 #ifdef illumos
5681 zone_t *z;
5682 #endif
5683
5684 if (!dtrace_strcanload(src, size, &lim, mstate, vstate)) {
5685 regs[rd] = 0;
5686 break;
5687 }
5688
5689 if (!DTRACE_INSCRATCH(mstate, size)) {
5690 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5691 regs[rd] = 0;
5692 break;
5693 }
5694
5695 /*
5696 * Move forward, loading each character.
5697 */
5698 do {
5699 c = (i >= lim) ? '\0' : dtrace_load8(src + i++);
5700 next:
5701 if (j + 5 >= size) /* 5 = strlen("/..c\0") */
5702 break;
5703
5704 if (c != '/') {
5705 dest[j++] = c;
5706 continue;
5707 }
5708
5709 c = (i >= lim) ? '\0' : dtrace_load8(src + i++);
5710
5711 if (c == '/') {
5712 /*
5713 * We have two slashes -- we can just advance
5714 * to the next character.
5715 */
5716 goto next;
5717 }
5718
5719 if (c != '.') {
5720 /*
5721 * This is not "." and it's not ".." -- we can
5722 * just store the "/" and this character and
5723 * drive on.
5724 */
5725 dest[j++] = '/';
5726 dest[j++] = c;
5727 continue;
5728 }
5729
5730 c = (i >= lim) ? '\0' : dtrace_load8(src + i++);
5731
5732 if (c == '/') {
5733 /*
5734 * This is a "/./" component. We're not going
5735 * to store anything in the destination buffer;
5736 * we're just going to go to the next component.
5737 */
5738 goto next;
5739 }
5740
5741 if (c != '.') {
5742 /*
5743 * This is not ".." -- we can just store the
5744 * "/." and this character and continue
5745 * processing.
5746 */
5747 dest[j++] = '/';
5748 dest[j++] = '.';
5749 dest[j++] = c;
5750 continue;
5751 }
5752
5753 c = (i >= lim) ? '\0' : dtrace_load8(src + i++);
5754
5755 if (c != '/' && c != '\0') {
5756 /*
5757 * This is not ".." -- it's "..[mumble]".
5758 * We'll store the "/.." and this character
5759 * and continue processing.
5760 */
5761 dest[j++] = '/';
5762 dest[j++] = '.';
5763 dest[j++] = '.';
5764 dest[j++] = c;
5765 continue;
5766 }
5767
5768 /*
5769 * This is "/../" or "/..\0". We need to back up
5770 * our destination pointer until we find a "/".
5771 */
5772 i--;
5773 while (j != 0 && dest[--j] != '/')
5774 continue;
5775
5776 if (c == '\0')
5777 dest[++j] = '/';
5778 } while (c != '\0');
5779
5780 dest[j] = '\0';
5781
5782 #ifdef illumos
5783 if (mstate->dtms_getf != NULL &&
5784 !(mstate->dtms_access & DTRACE_ACCESS_KERNEL) &&
5785 (z = state->dts_cred.dcr_cred->cr_zone) != kcred->cr_zone) {
5786 /*
5787 * If we've done a getf() as a part of this ECB and we
5788 * don't have kernel access (and we're not in the global
5789 * zone), check if the path we cleaned up begins with
5790 * the zone's root path, and trim it off if so. Note
5791 * that this is an output cleanliness issue, not a
5792 * security issue: knowing one's zone root path does
5793 * not enable privilege escalation.
5794 */
5795 if (strstr(dest, z->zone_rootpath) == dest)
5796 dest += strlen(z->zone_rootpath) - 1;
5797 }
5798 #endif
5799
5800 regs[rd] = (uintptr_t)dest;
5801 mstate->dtms_scratch_ptr += size;
5802 break;
5803 }
5804
5805 case DIF_SUBR_INET_NTOA:
5806 case DIF_SUBR_INET_NTOA6:
5807 case DIF_SUBR_INET_NTOP: {
5808 size_t size;
5809 int af, argi, i;
5810 char *base, *end;
5811
5812 if (subr == DIF_SUBR_INET_NTOP) {
5813 af = (int)tupregs[0].dttk_value;
5814 argi = 1;
5815 } else {
5816 af = subr == DIF_SUBR_INET_NTOA ? AF_INET: AF_INET6;
5817 argi = 0;
5818 }
5819
5820 if (af == AF_INET) {
5821 ipaddr_t ip4;
5822 uint8_t *ptr8, val;
5823
5824 if (!dtrace_canload(tupregs[argi].dttk_value,
5825 sizeof (ipaddr_t), mstate, vstate)) {
5826 regs[rd] = 0;
5827 break;
5828 }
5829
5830 /*
5831 * Safely load the IPv4 address.
5832 */
5833 ip4 = dtrace_load32(tupregs[argi].dttk_value);
5834
5835 /*
5836 * Check an IPv4 string will fit in scratch.
5837 */
5838 size = INET_ADDRSTRLEN;
5839 if (!DTRACE_INSCRATCH(mstate, size)) {
5840 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5841 regs[rd] = 0;
5842 break;
5843 }
5844 base = (char *)mstate->dtms_scratch_ptr;
5845 end = (char *)mstate->dtms_scratch_ptr + size - 1;
5846
5847 /*
5848 * Stringify as a dotted decimal quad.
5849 */
5850 *end-- = '\0';
5851 ptr8 = (uint8_t *)&ip4;
5852 for (i = 3; i >= 0; i--) {
5853 val = ptr8[i];
5854
5855 if (val == 0) {
5856 *end-- = '0';
5857 } else {
5858 for (; val; val /= 10) {
5859 *end-- = '0' + (val % 10);
5860 }
5861 }
5862
5863 if (i > 0)
5864 *end-- = '.';
5865 }
5866 ASSERT(end + 1 >= base);
5867
5868 } else if (af == AF_INET6) {
5869 struct in6_addr ip6;
5870 int firstzero, tryzero, numzero, v6end;
5871 uint16_t val;
5872 const char digits[] = "0123456789abcdef";
5873
5874 /*
5875 * Stringify using RFC 1884 convention 2 - 16 bit
5876 * hexadecimal values with a zero-run compression.
5877 * Lower case hexadecimal digits are used.
5878 * eg, fe80::214:4fff:fe0b:76c8.
5879 * The IPv4 embedded form is returned for inet_ntop,
5880 * just the IPv4 string is returned for inet_ntoa6.
5881 */
5882
5883 if (!dtrace_canload(tupregs[argi].dttk_value,
5884 sizeof (struct in6_addr), mstate, vstate)) {
5885 regs[rd] = 0;
5886 break;
5887 }
5888
5889 /*
5890 * Safely load the IPv6 address.
5891 */
5892 dtrace_bcopy(
5893 (void *)(uintptr_t)tupregs[argi].dttk_value,
5894 (void *)(uintptr_t)&ip6, sizeof (struct in6_addr));
5895
5896 /*
5897 * Check an IPv6 string will fit in scratch.
5898 */
5899 size = INET6_ADDRSTRLEN;
5900 if (!DTRACE_INSCRATCH(mstate, size)) {
5901 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
5902 regs[rd] = 0;
5903 break;
5904 }
5905 base = (char *)mstate->dtms_scratch_ptr;
5906 end = (char *)mstate->dtms_scratch_ptr + size - 1;
5907 *end-- = '\0';
5908
5909 /*
5910 * Find the longest run of 16 bit zero values
5911 * for the single allowed zero compression - "::".
5912 */
5913 firstzero = -1;
5914 tryzero = -1;
5915 numzero = 1;
5916 for (i = 0; i < sizeof (struct in6_addr); i++) {
5917 #ifdef illumos
5918 if (ip6._S6_un._S6_u8[i] == 0 &&
5919 #else
5920 if (ip6.__u6_addr.__u6_addr8[i] == 0 &&
5921 #endif
5922 tryzero == -1 && i % 2 == 0) {
5923 tryzero = i;
5924 continue;
5925 }
5926
5927 if (tryzero != -1 &&
5928 #ifdef illumos
5929 (ip6._S6_un._S6_u8[i] != 0 ||
5930 #else
5931 (ip6.__u6_addr.__u6_addr8[i] != 0 ||
5932 #endif
5933 i == sizeof (struct in6_addr) - 1)) {
5934
5935 if (i - tryzero <= numzero) {
5936 tryzero = -1;
5937 continue;
5938 }
5939
5940 firstzero = tryzero;
5941 numzero = i - i % 2 - tryzero;
5942 tryzero = -1;
5943
5944 #ifdef illumos
5945 if (ip6._S6_un._S6_u8[i] == 0 &&
5946 #else
5947 if (ip6.__u6_addr.__u6_addr8[i] == 0 &&
5948 #endif
5949 i == sizeof (struct in6_addr) - 1)
5950 numzero += 2;
5951 }
5952 }
5953 ASSERT(firstzero + numzero <= sizeof (struct in6_addr));
5954
5955 /*
5956 * Check for an IPv4 embedded address.
5957 */
5958 v6end = sizeof (struct in6_addr) - 2;
5959 if (IN6_IS_ADDR_V4MAPPED(&ip6) ||
5960 IN6_IS_ADDR_V4COMPAT(&ip6)) {
5961 for (i = sizeof (struct in6_addr) - 1;
5962 i >= DTRACE_V4MAPPED_OFFSET; i--) {
5963 ASSERT(end >= base);
5964
5965 #ifdef illumos
5966 val = ip6._S6_un._S6_u8[i];
5967 #else
5968 val = ip6.__u6_addr.__u6_addr8[i];
5969 #endif
5970
5971 if (val == 0) {
5972 *end-- = '0';
5973 } else {
5974 for (; val; val /= 10) {
5975 *end-- = '0' + val % 10;
5976 }
5977 }
5978
5979 if (i > DTRACE_V4MAPPED_OFFSET)
5980 *end-- = '.';
5981 }
5982
5983 if (subr == DIF_SUBR_INET_NTOA6)
5984 goto inetout;
5985
5986 /*
5987 * Set v6end to skip the IPv4 address that
5988 * we have already stringified.
5989 */
5990 v6end = 10;
5991 }
5992
5993 /*
5994 * Build the IPv6 string by working through the
5995 * address in reverse.
5996 */
5997 for (i = v6end; i >= 0; i -= 2) {
5998 ASSERT(end >= base);
5999
6000 if (i == firstzero + numzero - 2) {
6001 *end-- = ':';
6002 *end-- = ':';
6003 i -= numzero - 2;
6004 continue;
6005 }
6006
6007 if (i < 14 && i != firstzero - 2)
6008 *end-- = ':';
6009
6010 #ifdef illumos
6011 val = (ip6._S6_un._S6_u8[i] << 8) +
6012 ip6._S6_un._S6_u8[i + 1];
6013 #else
6014 val = (ip6.__u6_addr.__u6_addr8[i] << 8) +
6015 ip6.__u6_addr.__u6_addr8[i + 1];
6016 #endif
6017
6018 if (val == 0) {
6019 *end-- = '0';
6020 } else {
6021 for (; val; val /= 16) {
6022 *end-- = digits[val % 16];
6023 }
6024 }
6025 }
6026 ASSERT(end + 1 >= base);
6027
6028 } else {
6029 /*
6030 * The user didn't use AH_INET or AH_INET6.
6031 */
6032 DTRACE_CPUFLAG_SET(CPU_DTRACE_ILLOP);
6033 regs[rd] = 0;
6034 break;
6035 }
6036
6037 inetout: regs[rd] = (uintptr_t)end + 1;
6038 mstate->dtms_scratch_ptr += size;
6039 break;
6040 }
6041
6042 case DIF_SUBR_MEMREF: {
6043 uintptr_t size = 2 * sizeof(uintptr_t);
6044 uintptr_t *memref = (uintptr_t *) P2ROUNDUP(mstate->dtms_scratch_ptr, sizeof(uintptr_t));
6045 size_t scratch_size = ((uintptr_t) memref - mstate->dtms_scratch_ptr) + size;
6046
6047 /* address and length */
6048 memref[0] = tupregs[0].dttk_value;
6049 memref[1] = tupregs[1].dttk_value;
6050
6051 regs[rd] = (uintptr_t) memref;
6052 mstate->dtms_scratch_ptr += scratch_size;
6053 break;
6054 }
6055
6056 #ifndef illumos
6057 case DIF_SUBR_MEMSTR: {
6058 char *str = (char *)mstate->dtms_scratch_ptr;
6059 uintptr_t mem = tupregs[0].dttk_value;
6060 char c = tupregs[1].dttk_value;
6061 size_t size = tupregs[2].dttk_value;
6062 uint8_t n;
6063 int i;
6064
6065 regs[rd] = 0;
6066
6067 if (size == 0)
6068 break;
6069
6070 if (!dtrace_canload(mem, size - 1, mstate, vstate))
6071 break;
6072
6073 if (!DTRACE_INSCRATCH(mstate, size)) {
6074 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
6075 break;
6076 }
6077
6078 if (dtrace_memstr_max != 0 && size > dtrace_memstr_max) {
6079 *flags |= CPU_DTRACE_ILLOP;
6080 break;
6081 }
6082
6083 for (i = 0; i < size - 1; i++) {
6084 n = dtrace_load8(mem++);
6085 str[i] = (n == 0) ? c : n;
6086 }
6087 str[size - 1] = 0;
6088
6089 regs[rd] = (uintptr_t)str;
6090 mstate->dtms_scratch_ptr += size;
6091 break;
6092 }
6093 #endif
6094 }
6095 }
6096
6097 /*
6098 * Emulate the execution of DTrace IR instructions specified by the given
6099 * DIF object. This function is deliberately void of assertions as all of
6100 * the necessary checks are handled by a call to dtrace_difo_validate().
6101 */
6102 static uint64_t
6103 dtrace_dif_emulate(dtrace_difo_t *difo, dtrace_mstate_t *mstate,
6104 dtrace_vstate_t *vstate, dtrace_state_t *state)
6105 {
6106 const dif_instr_t *text = difo->dtdo_buf;
6107 const uint_t textlen = difo->dtdo_len;
6108 const char *strtab = difo->dtdo_strtab;
6109 const uint64_t *inttab = difo->dtdo_inttab;
6110
6111 uint64_t rval = 0;
6112 dtrace_statvar_t *svar;
6113 dtrace_dstate_t *dstate = &vstate->dtvs_dynvars;
6114 dtrace_difv_t *v;
6115 volatile uint16_t *flags = &cpu_core[curcpu].cpuc_dtrace_flags;
6116 volatile uintptr_t *illval = &cpu_core[curcpu].cpuc_dtrace_illval;
6117
6118 dtrace_key_t tupregs[DIF_DTR_NREGS + 2]; /* +2 for thread and id */
6119 uint64_t regs[DIF_DIR_NREGS];
6120 uint64_t *tmp;
6121
6122 uint8_t cc_n = 0, cc_z = 0, cc_v = 0, cc_c = 0;
6123 int64_t cc_r;
6124 uint_t pc = 0, id, opc = 0;
6125 uint8_t ttop = 0;
6126 dif_instr_t instr;
6127 uint_t r1, r2, rd;
6128
6129 /*
6130 * We stash the current DIF object into the machine state: we need it
6131 * for subsequent access checking.
6132 */
6133 mstate->dtms_difo = difo;
6134
6135 regs[DIF_REG_R0] = 0; /* %r0 is fixed at zero */
6136
6137 while (pc < textlen && !(*flags & CPU_DTRACE_FAULT)) {
6138 opc = pc;
6139
6140 instr = text[pc++];
6141 r1 = DIF_INSTR_R1(instr);
6142 r2 = DIF_INSTR_R2(instr);
6143 rd = DIF_INSTR_RD(instr);
6144
6145 switch (DIF_INSTR_OP(instr)) {
6146 case DIF_OP_OR:
6147 regs[rd] = regs[r1] | regs[r2];
6148 break;
6149 case DIF_OP_XOR:
6150 regs[rd] = regs[r1] ^ regs[r2];
6151 break;
6152 case DIF_OP_AND:
6153 regs[rd] = regs[r1] & regs[r2];
6154 break;
6155 case DIF_OP_SLL:
6156 regs[rd] = regs[r1] << regs[r2];
6157 break;
6158 case DIF_OP_SRL:
6159 regs[rd] = regs[r1] >> regs[r2];
6160 break;
6161 case DIF_OP_SUB:
6162 regs[rd] = regs[r1] - regs[r2];
6163 break;
6164 case DIF_OP_ADD:
6165 regs[rd] = regs[r1] + regs[r2];
6166 break;
6167 case DIF_OP_MUL:
6168 regs[rd] = regs[r1] * regs[r2];
6169 break;
6170 case DIF_OP_SDIV:
6171 if (regs[r2] == 0) {
6172 regs[rd] = 0;
6173 *flags |= CPU_DTRACE_DIVZERO;
6174 } else {
6175 regs[rd] = (int64_t)regs[r1] /
6176 (int64_t)regs[r2];
6177 }
6178 break;
6179
6180 case DIF_OP_UDIV:
6181 if (regs[r2] == 0) {
6182 regs[rd] = 0;
6183 *flags |= CPU_DTRACE_DIVZERO;
6184 } else {
6185 regs[rd] = regs[r1] / regs[r2];
6186 }
6187 break;
6188
6189 case DIF_OP_SREM:
6190 if (regs[r2] == 0) {
6191 regs[rd] = 0;
6192 *flags |= CPU_DTRACE_DIVZERO;
6193 } else {
6194 regs[rd] = (int64_t)regs[r1] %
6195 (int64_t)regs[r2];
6196 }
6197 break;
6198
6199 case DIF_OP_UREM:
6200 if (regs[r2] == 0) {
6201 regs[rd] = 0;
6202 *flags |= CPU_DTRACE_DIVZERO;
6203 } else {
6204 regs[rd] = regs[r1] % regs[r2];
6205 }
6206 break;
6207
6208 case DIF_OP_NOT:
6209 regs[rd] = ~regs[r1];
6210 break;
6211 case DIF_OP_MOV:
6212 regs[rd] = regs[r1];
6213 break;
6214 case DIF_OP_CMP:
6215 cc_r = regs[r1] - regs[r2];
6216 cc_n = cc_r < 0;
6217 cc_z = cc_r == 0;
6218 cc_v = 0;
6219 cc_c = regs[r1] < regs[r2];
6220 break;
6221 case DIF_OP_TST:
6222 cc_n = cc_v = cc_c = 0;
6223 cc_z = regs[r1] == 0;
6224 break;
6225 case DIF_OP_BA:
6226 pc = DIF_INSTR_LABEL(instr);
6227 break;
6228 case DIF_OP_BE:
6229 if (cc_z)
6230 pc = DIF_INSTR_LABEL(instr);
6231 break;
6232 case DIF_OP_BNE:
6233 if (cc_z == 0)
6234 pc = DIF_INSTR_LABEL(instr);
6235 break;
6236 case DIF_OP_BG:
6237 if ((cc_z | (cc_n ^ cc_v)) == 0)
6238 pc = DIF_INSTR_LABEL(instr);
6239 break;
6240 case DIF_OP_BGU:
6241 if ((cc_c | cc_z) == 0)
6242 pc = DIF_INSTR_LABEL(instr);
6243 break;
6244 case DIF_OP_BGE:
6245 if ((cc_n ^ cc_v) == 0)
6246 pc = DIF_INSTR_LABEL(instr);
6247 break;
6248 case DIF_OP_BGEU:
6249 if (cc_c == 0)
6250 pc = DIF_INSTR_LABEL(instr);
6251 break;
6252 case DIF_OP_BL:
6253 if (cc_n ^ cc_v)
6254 pc = DIF_INSTR_LABEL(instr);
6255 break;
6256 case DIF_OP_BLU:
6257 if (cc_c)
6258 pc = DIF_INSTR_LABEL(instr);
6259 break;
6260 case DIF_OP_BLE:
6261 if (cc_z | (cc_n ^ cc_v))
6262 pc = DIF_INSTR_LABEL(instr);
6263 break;
6264 case DIF_OP_BLEU:
6265 if (cc_c | cc_z)
6266 pc = DIF_INSTR_LABEL(instr);
6267 break;
6268 case DIF_OP_RLDSB:
6269 if (!dtrace_canload(regs[r1], 1, mstate, vstate))
6270 break;
6271 /*FALLTHROUGH*/
6272 case DIF_OP_LDSB:
6273 regs[rd] = (int8_t)dtrace_load8(regs[r1]);
6274 break;
6275 case DIF_OP_RLDSH:
6276 if (!dtrace_canload(regs[r1], 2, mstate, vstate))
6277 break;
6278 /*FALLTHROUGH*/
6279 case DIF_OP_LDSH:
6280 regs[rd] = (int16_t)dtrace_load16(regs[r1]);
6281 break;
6282 case DIF_OP_RLDSW:
6283 if (!dtrace_canload(regs[r1], 4, mstate, vstate))
6284 break;
6285 /*FALLTHROUGH*/
6286 case DIF_OP_LDSW:
6287 regs[rd] = (int32_t)dtrace_load32(regs[r1]);
6288 break;
6289 case DIF_OP_RLDUB:
6290 if (!dtrace_canload(regs[r1], 1, mstate, vstate))
6291 break;
6292 /*FALLTHROUGH*/
6293 case DIF_OP_LDUB:
6294 regs[rd] = dtrace_load8(regs[r1]);
6295 break;
6296 case DIF_OP_RLDUH:
6297 if (!dtrace_canload(regs[r1], 2, mstate, vstate))
6298 break;
6299 /*FALLTHROUGH*/
6300 case DIF_OP_LDUH:
6301 regs[rd] = dtrace_load16(regs[r1]);
6302 break;
6303 case DIF_OP_RLDUW:
6304 if (!dtrace_canload(regs[r1], 4, mstate, vstate))
6305 break;
6306 /*FALLTHROUGH*/
6307 case DIF_OP_LDUW:
6308 regs[rd] = dtrace_load32(regs[r1]);
6309 break;
6310 case DIF_OP_RLDX:
6311 if (!dtrace_canload(regs[r1], 8, mstate, vstate))
6312 break;
6313 /*FALLTHROUGH*/
6314 case DIF_OP_LDX:
6315 regs[rd] = dtrace_load64(regs[r1]);
6316 break;
6317 case DIF_OP_ULDSB:
6318 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6319 regs[rd] = (int8_t)
6320 dtrace_fuword8((void *)(uintptr_t)regs[r1]);
6321 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6322 break;
6323 case DIF_OP_ULDSH:
6324 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6325 regs[rd] = (int16_t)
6326 dtrace_fuword16((void *)(uintptr_t)regs[r1]);
6327 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6328 break;
6329 case DIF_OP_ULDSW:
6330 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6331 regs[rd] = (int32_t)
6332 dtrace_fuword32((void *)(uintptr_t)regs[r1]);
6333 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6334 break;
6335 case DIF_OP_ULDUB:
6336 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6337 regs[rd] =
6338 dtrace_fuword8((void *)(uintptr_t)regs[r1]);
6339 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6340 break;
6341 case DIF_OP_ULDUH:
6342 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6343 regs[rd] =
6344 dtrace_fuword16((void *)(uintptr_t)regs[r1]);
6345 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6346 break;
6347 case DIF_OP_ULDUW:
6348 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6349 regs[rd] =
6350 dtrace_fuword32((void *)(uintptr_t)regs[r1]);
6351 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6352 break;
6353 case DIF_OP_ULDX:
6354 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
6355 regs[rd] =
6356 dtrace_fuword64((void *)(uintptr_t)regs[r1]);
6357 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
6358 break;
6359 case DIF_OP_RET:
6360 rval = regs[rd];
6361 pc = textlen;
6362 break;
6363 case DIF_OP_NOP:
6364 break;
6365 case DIF_OP_SETX:
6366 regs[rd] = inttab[DIF_INSTR_INTEGER(instr)];
6367 break;
6368 case DIF_OP_SETS:
6369 regs[rd] = (uint64_t)(uintptr_t)
6370 (strtab + DIF_INSTR_STRING(instr));
6371 break;
6372 case DIF_OP_SCMP: {
6373 size_t sz = state->dts_options[DTRACEOPT_STRSIZE];
6374 uintptr_t s1 = regs[r1];
6375 uintptr_t s2 = regs[r2];
6376 size_t lim1, lim2;
6377
6378 /*
6379 * If one of the strings is NULL then the limit becomes
6380 * 0 which compares 0 characters in dtrace_strncmp()
6381 * resulting in a false positive. dtrace_strncmp()
6382 * treats a NULL as an empty 1-char string.
6383 */
6384 lim1 = lim2 = 1;
6385
6386 if (s1 != 0 &&
6387 !dtrace_strcanload(s1, sz, &lim1, mstate, vstate))
6388 break;
6389 if (s2 != 0 &&
6390 !dtrace_strcanload(s2, sz, &lim2, mstate, vstate))
6391 break;
6392
6393 cc_r = dtrace_strncmp((char *)s1, (char *)s2,
6394 MIN(lim1, lim2));
6395
6396 cc_n = cc_r < 0;
6397 cc_z = cc_r == 0;
6398 cc_v = cc_c = 0;
6399 break;
6400 }
6401 case DIF_OP_LDGA:
6402 regs[rd] = dtrace_dif_variable(mstate, state,
6403 r1, regs[r2]);
6404 break;
6405 case DIF_OP_LDGS:
6406 id = DIF_INSTR_VAR(instr);
6407
6408 if (id >= DIF_VAR_OTHER_UBASE) {
6409 uintptr_t a;
6410
6411 id -= DIF_VAR_OTHER_UBASE;
6412 svar = vstate->dtvs_globals[id];
6413 ASSERT(svar != NULL);
6414 v = &svar->dtsv_var;
6415
6416 if (!(v->dtdv_type.dtdt_flags & DIF_TF_BYREF)) {
6417 regs[rd] = svar->dtsv_data;
6418 break;
6419 }
6420
6421 a = (uintptr_t)svar->dtsv_data;
6422
6423 if (*(uint8_t *)a == UINT8_MAX) {
6424 /*
6425 * If the 0th byte is set to UINT8_MAX
6426 * then this is to be treated as a
6427 * reference to a NULL variable.
6428 */
6429 regs[rd] = 0;
6430 } else {
6431 regs[rd] = a + sizeof (uint64_t);
6432 }
6433
6434 break;
6435 }
6436
6437 regs[rd] = dtrace_dif_variable(mstate, state, id, 0);
6438 break;
6439
6440 case DIF_OP_STGS:
6441 id = DIF_INSTR_VAR(instr);
6442
6443 ASSERT(id >= DIF_VAR_OTHER_UBASE);
6444 id -= DIF_VAR_OTHER_UBASE;
6445
6446 VERIFY(id < vstate->dtvs_nglobals);
6447 svar = vstate->dtvs_globals[id];
6448 ASSERT(svar != NULL);
6449 v = &svar->dtsv_var;
6450
6451 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6452 uintptr_t a = (uintptr_t)svar->dtsv_data;
6453 size_t lim;
6454
6455 ASSERT(a != 0);
6456 ASSERT(svar->dtsv_size != 0);
6457
6458 if (regs[rd] == 0) {
6459 *(uint8_t *)a = UINT8_MAX;
6460 break;
6461 } else {
6462 *(uint8_t *)a = 0;
6463 a += sizeof (uint64_t);
6464 }
6465 if (!dtrace_vcanload(
6466 (void *)(uintptr_t)regs[rd], &v->dtdv_type,
6467 &lim, mstate, vstate))
6468 break;
6469
6470 dtrace_vcopy((void *)(uintptr_t)regs[rd],
6471 (void *)a, &v->dtdv_type, lim);
6472 break;
6473 }
6474
6475 svar->dtsv_data = regs[rd];
6476 break;
6477
6478 case DIF_OP_LDTA:
6479 /*
6480 * There are no DTrace built-in thread-local arrays at
6481 * present. This opcode is saved for future work.
6482 */
6483 *flags |= CPU_DTRACE_ILLOP;
6484 regs[rd] = 0;
6485 break;
6486
6487 case DIF_OP_LDLS:
6488 id = DIF_INSTR_VAR(instr);
6489
6490 if (id < DIF_VAR_OTHER_UBASE) {
6491 /*
6492 * For now, this has no meaning.
6493 */
6494 regs[rd] = 0;
6495 break;
6496 }
6497
6498 id -= DIF_VAR_OTHER_UBASE;
6499
6500 ASSERT(id < vstate->dtvs_nlocals);
6501 ASSERT(vstate->dtvs_locals != NULL);
6502
6503 svar = vstate->dtvs_locals[id];
6504 ASSERT(svar != NULL);
6505 v = &svar->dtsv_var;
6506
6507 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6508 uintptr_t a = (uintptr_t)svar->dtsv_data;
6509 size_t sz = v->dtdv_type.dtdt_size;
6510 size_t lim;
6511
6512 sz += sizeof (uint64_t);
6513 ASSERT(svar->dtsv_size == NCPU * sz);
6514 a += curcpu * sz;
6515
6516 if (*(uint8_t *)a == UINT8_MAX) {
6517 /*
6518 * If the 0th byte is set to UINT8_MAX
6519 * then this is to be treated as a
6520 * reference to a NULL variable.
6521 */
6522 regs[rd] = 0;
6523 } else {
6524 regs[rd] = a + sizeof (uint64_t);
6525 }
6526
6527 break;
6528 }
6529
6530 ASSERT(svar->dtsv_size == NCPU * sizeof (uint64_t));
6531 tmp = (uint64_t *)(uintptr_t)svar->dtsv_data;
6532 regs[rd] = tmp[curcpu];
6533 break;
6534
6535 case DIF_OP_STLS:
6536 id = DIF_INSTR_VAR(instr);
6537
6538 ASSERT(id >= DIF_VAR_OTHER_UBASE);
6539 id -= DIF_VAR_OTHER_UBASE;
6540 VERIFY(id < vstate->dtvs_nlocals);
6541
6542 ASSERT(vstate->dtvs_locals != NULL);
6543 svar = vstate->dtvs_locals[id];
6544 ASSERT(svar != NULL);
6545 v = &svar->dtsv_var;
6546
6547 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6548 uintptr_t a = (uintptr_t)svar->dtsv_data;
6549 size_t sz = v->dtdv_type.dtdt_size;
6550 size_t lim;
6551
6552 sz += sizeof (uint64_t);
6553 ASSERT(svar->dtsv_size == NCPU * sz);
6554 a += curcpu * sz;
6555
6556 if (regs[rd] == 0) {
6557 *(uint8_t *)a = UINT8_MAX;
6558 break;
6559 } else {
6560 *(uint8_t *)a = 0;
6561 a += sizeof (uint64_t);
6562 }
6563
6564 if (!dtrace_vcanload(
6565 (void *)(uintptr_t)regs[rd], &v->dtdv_type,
6566 &lim, mstate, vstate))
6567 break;
6568
6569 dtrace_vcopy((void *)(uintptr_t)regs[rd],
6570 (void *)a, &v->dtdv_type, lim);
6571 break;
6572 }
6573
6574 ASSERT(svar->dtsv_size == NCPU * sizeof (uint64_t));
6575 tmp = (uint64_t *)(uintptr_t)svar->dtsv_data;
6576 tmp[curcpu] = regs[rd];
6577 break;
6578
6579 case DIF_OP_LDTS: {
6580 dtrace_dynvar_t *dvar;
6581 dtrace_key_t *key;
6582
6583 id = DIF_INSTR_VAR(instr);
6584 ASSERT(id >= DIF_VAR_OTHER_UBASE);
6585 id -= DIF_VAR_OTHER_UBASE;
6586 v = &vstate->dtvs_tlocals[id];
6587
6588 key = &tupregs[DIF_DTR_NREGS];
6589 key[0].dttk_value = (uint64_t)id;
6590 key[0].dttk_size = 0;
6591 DTRACE_TLS_THRKEY(key[1].dttk_value);
6592 key[1].dttk_size = 0;
6593
6594 dvar = dtrace_dynvar(dstate, 2, key,
6595 sizeof (uint64_t), DTRACE_DYNVAR_NOALLOC,
6596 mstate, vstate);
6597
6598 if (dvar == NULL) {
6599 regs[rd] = 0;
6600 break;
6601 }
6602
6603 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6604 regs[rd] = (uint64_t)(uintptr_t)dvar->dtdv_data;
6605 } else {
6606 regs[rd] = *((uint64_t *)dvar->dtdv_data);
6607 }
6608
6609 break;
6610 }
6611
6612 case DIF_OP_STTS: {
6613 dtrace_dynvar_t *dvar;
6614 dtrace_key_t *key;
6615
6616 id = DIF_INSTR_VAR(instr);
6617 ASSERT(id >= DIF_VAR_OTHER_UBASE);
6618 id -= DIF_VAR_OTHER_UBASE;
6619 VERIFY(id < vstate->dtvs_ntlocals);
6620
6621 key = &tupregs[DIF_DTR_NREGS];
6622 key[0].dttk_value = (uint64_t)id;
6623 key[0].dttk_size = 0;
6624 DTRACE_TLS_THRKEY(key[1].dttk_value);
6625 key[1].dttk_size = 0;
6626 v = &vstate->dtvs_tlocals[id];
6627
6628 dvar = dtrace_dynvar(dstate, 2, key,
6629 v->dtdv_type.dtdt_size > sizeof (uint64_t) ?
6630 v->dtdv_type.dtdt_size : sizeof (uint64_t),
6631 regs[rd] ? DTRACE_DYNVAR_ALLOC :
6632 DTRACE_DYNVAR_DEALLOC, mstate, vstate);
6633
6634 /*
6635 * Given that we're storing to thread-local data,
6636 * we need to flush our predicate cache.
6637 */
6638 curthread->t_predcache = 0;
6639
6640 if (dvar == NULL)
6641 break;
6642
6643 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6644 size_t lim;
6645
6646 if (!dtrace_vcanload(
6647 (void *)(uintptr_t)regs[rd],
6648 &v->dtdv_type, &lim, mstate, vstate))
6649 break;
6650
6651 dtrace_vcopy((void *)(uintptr_t)regs[rd],
6652 dvar->dtdv_data, &v->dtdv_type, lim);
6653 } else {
6654 *((uint64_t *)dvar->dtdv_data) = regs[rd];
6655 }
6656
6657 break;
6658 }
6659
6660 case DIF_OP_SRA:
6661 regs[rd] = (int64_t)regs[r1] >> regs[r2];
6662 break;
6663
6664 case DIF_OP_CALL:
6665 dtrace_dif_subr(DIF_INSTR_SUBR(instr), rd,
6666 regs, tupregs, ttop, mstate, state);
6667 break;
6668
6669 case DIF_OP_PUSHTR:
6670 if (ttop == DIF_DTR_NREGS) {
6671 *flags |= CPU_DTRACE_TUPOFLOW;
6672 break;
6673 }
6674
6675 if (r1 == DIF_TYPE_STRING) {
6676 /*
6677 * If this is a string type and the size is 0,
6678 * we'll use the system-wide default string
6679 * size. Note that we are _not_ looking at
6680 * the value of the DTRACEOPT_STRSIZE option;
6681 * had this been set, we would expect to have
6682 * a non-zero size value in the "pushtr".
6683 */
6684 tupregs[ttop].dttk_size =
6685 dtrace_strlen((char *)(uintptr_t)regs[rd],
6686 regs[r2] ? regs[r2] :
6687 dtrace_strsize_default) + 1;
6688 } else {
6689 if (regs[r2] > LONG_MAX) {
6690 *flags |= CPU_DTRACE_ILLOP;
6691 break;
6692 }
6693
6694 tupregs[ttop].dttk_size = regs[r2];
6695 }
6696
6697 tupregs[ttop++].dttk_value = regs[rd];
6698 break;
6699
6700 case DIF_OP_PUSHTV:
6701 if (ttop == DIF_DTR_NREGS) {
6702 *flags |= CPU_DTRACE_TUPOFLOW;
6703 break;
6704 }
6705
6706 tupregs[ttop].dttk_value = regs[rd];
6707 tupregs[ttop++].dttk_size = 0;
6708 break;
6709
6710 case DIF_OP_POPTS:
6711 if (ttop != 0)
6712 ttop--;
6713 break;
6714
6715 case DIF_OP_FLUSHTS:
6716 ttop = 0;
6717 break;
6718
6719 case DIF_OP_LDGAA:
6720 case DIF_OP_LDTAA: {
6721 dtrace_dynvar_t *dvar;
6722 dtrace_key_t *key = tupregs;
6723 uint_t nkeys = ttop;
6724
6725 id = DIF_INSTR_VAR(instr);
6726 ASSERT(id >= DIF_VAR_OTHER_UBASE);
6727 id -= DIF_VAR_OTHER_UBASE;
6728
6729 key[nkeys].dttk_value = (uint64_t)id;
6730 key[nkeys++].dttk_size = 0;
6731
6732 if (DIF_INSTR_OP(instr) == DIF_OP_LDTAA) {
6733 DTRACE_TLS_THRKEY(key[nkeys].dttk_value);
6734 key[nkeys++].dttk_size = 0;
6735 VERIFY(id < vstate->dtvs_ntlocals);
6736 v = &vstate->dtvs_tlocals[id];
6737 } else {
6738 VERIFY(id < vstate->dtvs_nglobals);
6739 v = &vstate->dtvs_globals[id]->dtsv_var;
6740 }
6741
6742 dvar = dtrace_dynvar(dstate, nkeys, key,
6743 v->dtdv_type.dtdt_size > sizeof (uint64_t) ?
6744 v->dtdv_type.dtdt_size : sizeof (uint64_t),
6745 DTRACE_DYNVAR_NOALLOC, mstate, vstate);
6746
6747 if (dvar == NULL) {
6748 regs[rd] = 0;
6749 break;
6750 }
6751
6752 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6753 regs[rd] = (uint64_t)(uintptr_t)dvar->dtdv_data;
6754 } else {
6755 regs[rd] = *((uint64_t *)dvar->dtdv_data);
6756 }
6757
6758 break;
6759 }
6760
6761 case DIF_OP_STGAA:
6762 case DIF_OP_STTAA: {
6763 dtrace_dynvar_t *dvar;
6764 dtrace_key_t *key = tupregs;
6765 uint_t nkeys = ttop;
6766
6767 id = DIF_INSTR_VAR(instr);
6768 ASSERT(id >= DIF_VAR_OTHER_UBASE);
6769 id -= DIF_VAR_OTHER_UBASE;
6770
6771 key[nkeys].dttk_value = (uint64_t)id;
6772 key[nkeys++].dttk_size = 0;
6773
6774 if (DIF_INSTR_OP(instr) == DIF_OP_STTAA) {
6775 DTRACE_TLS_THRKEY(key[nkeys].dttk_value);
6776 key[nkeys++].dttk_size = 0;
6777 VERIFY(id < vstate->dtvs_ntlocals);
6778 v = &vstate->dtvs_tlocals[id];
6779 } else {
6780 VERIFY(id < vstate->dtvs_nglobals);
6781 v = &vstate->dtvs_globals[id]->dtsv_var;
6782 }
6783
6784 dvar = dtrace_dynvar(dstate, nkeys, key,
6785 v->dtdv_type.dtdt_size > sizeof (uint64_t) ?
6786 v->dtdv_type.dtdt_size : sizeof (uint64_t),
6787 regs[rd] ? DTRACE_DYNVAR_ALLOC :
6788 DTRACE_DYNVAR_DEALLOC, mstate, vstate);
6789
6790 if (dvar == NULL)
6791 break;
6792
6793 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF) {
6794 size_t lim;
6795
6796 if (!dtrace_vcanload(
6797 (void *)(uintptr_t)regs[rd], &v->dtdv_type,
6798 &lim, mstate, vstate))
6799 break;
6800
6801 dtrace_vcopy((void *)(uintptr_t)regs[rd],
6802 dvar->dtdv_data, &v->dtdv_type, lim);
6803 } else {
6804 *((uint64_t *)dvar->dtdv_data) = regs[rd];
6805 }
6806
6807 break;
6808 }
6809
6810 case DIF_OP_ALLOCS: {
6811 uintptr_t ptr = P2ROUNDUP(mstate->dtms_scratch_ptr, 8);
6812 size_t size = ptr - mstate->dtms_scratch_ptr + regs[r1];
6813
6814 /*
6815 * Rounding up the user allocation size could have
6816 * overflowed large, bogus allocations (like -1ULL) to
6817 * 0.
6818 */
6819 if (size < regs[r1] ||
6820 !DTRACE_INSCRATCH(mstate, size)) {
6821 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
6822 regs[rd] = 0;
6823 break;
6824 }
6825
6826 dtrace_bzero((void *) mstate->dtms_scratch_ptr, size);
6827 mstate->dtms_scratch_ptr += size;
6828 regs[rd] = ptr;
6829 break;
6830 }
6831
6832 case DIF_OP_COPYS:
6833 if (!dtrace_canstore(regs[rd], regs[r2],
6834 mstate, vstate)) {
6835 *flags |= CPU_DTRACE_BADADDR;
6836 *illval = regs[rd];
6837 break;
6838 }
6839
6840 if (!dtrace_canload(regs[r1], regs[r2], mstate, vstate))
6841 break;
6842
6843 dtrace_bcopy((void *)(uintptr_t)regs[r1],
6844 (void *)(uintptr_t)regs[rd], (size_t)regs[r2]);
6845 break;
6846
6847 case DIF_OP_STB:
6848 if (!dtrace_canstore(regs[rd], 1, mstate, vstate)) {
6849 *flags |= CPU_DTRACE_BADADDR;
6850 *illval = regs[rd];
6851 break;
6852 }
6853 *((uint8_t *)(uintptr_t)regs[rd]) = (uint8_t)regs[r1];
6854 break;
6855
6856 case DIF_OP_STH:
6857 if (!dtrace_canstore(regs[rd], 2, mstate, vstate)) {
6858 *flags |= CPU_DTRACE_BADADDR;
6859 *illval = regs[rd];
6860 break;
6861 }
6862 if (regs[rd] & 1) {
6863 *flags |= CPU_DTRACE_BADALIGN;
6864 *illval = regs[rd];
6865 break;
6866 }
6867 *((uint16_t *)(uintptr_t)regs[rd]) = (uint16_t)regs[r1];
6868 break;
6869
6870 case DIF_OP_STW:
6871 if (!dtrace_canstore(regs[rd], 4, mstate, vstate)) {
6872 *flags |= CPU_DTRACE_BADADDR;
6873 *illval = regs[rd];
6874 break;
6875 }
6876 if (regs[rd] & 3) {
6877 *flags |= CPU_DTRACE_BADALIGN;
6878 *illval = regs[rd];
6879 break;
6880 }
6881 *((uint32_t *)(uintptr_t)regs[rd]) = (uint32_t)regs[r1];
6882 break;
6883
6884 case DIF_OP_STX:
6885 if (!dtrace_canstore(regs[rd], 8, mstate, vstate)) {
6886 *flags |= CPU_DTRACE_BADADDR;
6887 *illval = regs[rd];
6888 break;
6889 }
6890 if (regs[rd] & 7) {
6891 *flags |= CPU_DTRACE_BADALIGN;
6892 *illval = regs[rd];
6893 break;
6894 }
6895 *((uint64_t *)(uintptr_t)regs[rd]) = regs[r1];
6896 break;
6897 }
6898 }
6899
6900 if (!(*flags & CPU_DTRACE_FAULT))
6901 return (rval);
6902
6903 mstate->dtms_fltoffs = opc * sizeof (dif_instr_t);
6904 mstate->dtms_present |= DTRACE_MSTATE_FLTOFFS;
6905
6906 return (0);
6907 }
6908
6909 static void
6910 dtrace_action_breakpoint(dtrace_ecb_t *ecb)
6911 {
6912 dtrace_probe_t *probe = ecb->dte_probe;
6913 dtrace_provider_t *prov = probe->dtpr_provider;
6914 char c[DTRACE_FULLNAMELEN + 80], *str;
6915 char *msg = "dtrace: breakpoint action at probe ";
6916 char *ecbmsg = " (ecb ";
6917 uintptr_t mask = (0xf << (sizeof (uintptr_t) * NBBY / 4));
6918 uintptr_t val = (uintptr_t)ecb;
6919 int shift = (sizeof (uintptr_t) * NBBY) - 4, i = 0;
6920
6921 if (dtrace_destructive_disallow)
6922 return;
6923
6924 /*
6925 * It's impossible to be taking action on the NULL probe.
6926 */
6927 ASSERT(probe != NULL);
6928
6929 /*
6930 * This is a poor man's (destitute man's?) sprintf(): we want to
6931 * print the provider name, module name, function name and name of
6932 * the probe, along with the hex address of the ECB with the breakpoint
6933 * action -- all of which we must place in the character buffer by
6934 * hand.
6935 */
6936 while (*msg != '\0')
6937 c[i++] = *msg++;
6938
6939 for (str = prov->dtpv_name; *str != '\0'; str++)
6940 c[i++] = *str;
6941 c[i++] = ':';
6942
6943 for (str = probe->dtpr_mod; *str != '\0'; str++)
6944 c[i++] = *str;
6945 c[i++] = ':';
6946
6947 for (str = probe->dtpr_func; *str != '\0'; str++)
6948 c[i++] = *str;
6949 c[i++] = ':';
6950
6951 for (str = probe->dtpr_name; *str != '\0'; str++)
6952 c[i++] = *str;
6953
6954 while (*ecbmsg != '\0')
6955 c[i++] = *ecbmsg++;
6956
6957 while (shift >= 0) {
6958 mask = (uintptr_t)0xf << shift;
6959
6960 if (val >= ((uintptr_t)1 << shift))
6961 c[i++] = "0123456789abcdef"[(val & mask) >> shift];
6962 shift -= 4;
6963 }
6964
6965 c[i++] = ')';
6966 c[i] = '\0';
6967
6968 #ifdef illumos
6969 debug_enter(c);
6970 #else
6971 kdb_enter(KDB_WHY_DTRACE, "breakpoint action");
6972 #endif
6973 }
6974
6975 static void
6976 dtrace_action_panic(dtrace_ecb_t *ecb)
6977 {
6978 dtrace_probe_t *probe = ecb->dte_probe;
6979
6980 /*
6981 * It's impossible to be taking action on the NULL probe.
6982 */
6983 ASSERT(probe != NULL);
6984
6985 if (dtrace_destructive_disallow)
6986 return;
6987
6988 if (dtrace_panicked != NULL)
6989 return;
6990
6991 if (dtrace_casptr(&dtrace_panicked, NULL, curthread) != NULL)
6992 return;
6993
6994 /*
6995 * We won the right to panic. (We want to be sure that only one
6996 * thread calls panic() from dtrace_probe(), and that panic() is
6997 * called exactly once.)
6998 */
6999 dtrace_panic("dtrace: panic action at probe %s:%s:%s:%s (ecb %p)",
7000 probe->dtpr_provider->dtpv_name, probe->dtpr_mod,
7001 probe->dtpr_func, probe->dtpr_name, (void *)ecb);
7002 }
7003
7004 static void
7005 dtrace_action_raise(uint64_t sig)
7006 {
7007 if (dtrace_destructive_disallow)
7008 return;
7009
7010 if (sig >= NSIG) {
7011 DTRACE_CPUFLAG_SET(CPU_DTRACE_ILLOP);
7012 return;
7013 }
7014
7015 #ifdef illumos
7016 /*
7017 * raise() has a queue depth of 1 -- we ignore all subsequent
7018 * invocations of the raise() action.
7019 */
7020 if (curthread->t_dtrace_sig == 0)
7021 curthread->t_dtrace_sig = (uint8_t)sig;
7022
7023 curthread->t_sig_check = 1;
7024 aston(curthread);
7025 #else
7026 struct proc *p = curproc;
7027 PROC_LOCK(p);
7028 kern_psignal(p, sig);
7029 PROC_UNLOCK(p);
7030 #endif
7031 }
7032
7033 static void
7034 dtrace_action_stop(void)
7035 {
7036 if (dtrace_destructive_disallow)
7037 return;
7038
7039 #ifdef illumos
7040 if (!curthread->t_dtrace_stop) {
7041 curthread->t_dtrace_stop = 1;
7042 curthread->t_sig_check = 1;
7043 aston(curthread);
7044 }
7045 #else
7046 struct proc *p = curproc;
7047 PROC_LOCK(p);
7048 kern_psignal(p, SIGSTOP);
7049 PROC_UNLOCK(p);
7050 #endif
7051 }
7052
7053 static void
7054 dtrace_action_chill(dtrace_mstate_t *mstate, hrtime_t val)
7055 {
7056 hrtime_t now;
7057 volatile uint16_t *flags;
7058 #ifdef illumos
7059 cpu_t *cpu = CPU;
7060 #else
7061 cpu_t *cpu = &solaris_cpu[curcpu];
7062 #endif
7063
7064 if (dtrace_destructive_disallow)
7065 return;
7066
7067 flags = (volatile uint16_t *)&cpu_core[curcpu].cpuc_dtrace_flags;
7068
7069 now = dtrace_gethrtime();
7070
7071 if (now - cpu->cpu_dtrace_chillmark > dtrace_chill_interval) {
7072 /*
7073 * We need to advance the mark to the current time.
7074 */
7075 cpu->cpu_dtrace_chillmark = now;
7076 cpu->cpu_dtrace_chilled = 0;
7077 }
7078
7079 /*
7080 * Now check to see if the requested chill time would take us over
7081 * the maximum amount of time allowed in the chill interval. (Or
7082 * worse, if the calculation itself induces overflow.)
7083 */
7084 if (cpu->cpu_dtrace_chilled + val > dtrace_chill_max ||
7085 cpu->cpu_dtrace_chilled + val < cpu->cpu_dtrace_chilled) {
7086 *flags |= CPU_DTRACE_ILLOP;
7087 return;
7088 }
7089
7090 while (dtrace_gethrtime() - now < val)
7091 continue;
7092
7093 /*
7094 * Normally, we assure that the value of the variable "timestamp" does
7095 * not change within an ECB. The presence of chill() represents an
7096 * exception to this rule, however.
7097 */
7098 mstate->dtms_present &= ~DTRACE_MSTATE_TIMESTAMP;
7099 cpu->cpu_dtrace_chilled += val;
7100 }
7101
7102 static void
7103 dtrace_action_ustack(dtrace_mstate_t *mstate, dtrace_state_t *state,
7104 uint64_t *buf, uint64_t arg)
7105 {
7106 int nframes = DTRACE_USTACK_NFRAMES(arg);
7107 int strsize = DTRACE_USTACK_STRSIZE(arg);
7108 uint64_t *pcs = &buf[1], *fps;
7109 char *str = (char *)&pcs[nframes];
7110 int size, offs = 0, i, j;
7111 size_t rem;
7112 uintptr_t old = mstate->dtms_scratch_ptr, saved;
7113 uint16_t *flags = &cpu_core[curcpu].cpuc_dtrace_flags;
7114 char *sym;
7115
7116 /*
7117 * Should be taking a faster path if string space has not been
7118 * allocated.
7119 */
7120 ASSERT(strsize != 0);
7121
7122 /*
7123 * We will first allocate some temporary space for the frame pointers.
7124 */
7125 fps = (uint64_t *)P2ROUNDUP(mstate->dtms_scratch_ptr, 8);
7126 size = (uintptr_t)fps - mstate->dtms_scratch_ptr +
7127 (nframes * sizeof (uint64_t));
7128
7129 if (!DTRACE_INSCRATCH(mstate, size)) {
7130 /*
7131 * Not enough room for our frame pointers -- need to indicate
7132 * that we ran out of scratch space.
7133 */
7134 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOSCRATCH);
7135 return;
7136 }
7137
7138 mstate->dtms_scratch_ptr += size;
7139 saved = mstate->dtms_scratch_ptr;
7140
7141 /*
7142 * Now get a stack with both program counters and frame pointers.
7143 */
7144 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
7145 dtrace_getufpstack(buf, fps, nframes + 1);
7146 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
7147
7148 /*
7149 * If that faulted, we're cooked.
7150 */
7151 if (*flags & CPU_DTRACE_FAULT)
7152 goto out;
7153
7154 /*
7155 * Now we want to walk up the stack, calling the USTACK helper. For
7156 * each iteration, we restore the scratch pointer.
7157 */
7158 for (i = 0; i < nframes; i++) {
7159 mstate->dtms_scratch_ptr = saved;
7160
7161 if (offs >= strsize)
7162 break;
7163
7164 sym = (char *)(uintptr_t)dtrace_helper(
7165 DTRACE_HELPER_ACTION_USTACK,
7166 mstate, state, pcs[i], fps[i]);
7167
7168 /*
7169 * If we faulted while running the helper, we're going to
7170 * clear the fault and null out the corresponding string.
7171 */
7172 if (*flags & CPU_DTRACE_FAULT) {
7173 *flags &= ~CPU_DTRACE_FAULT;
7174 str[offs++] = '\0';
7175 continue;
7176 }
7177
7178 if (sym == NULL) {
7179 str[offs++] = '\0';
7180 continue;
7181 }
7182
7183 if (!dtrace_strcanload((uintptr_t)sym, strsize, &rem, mstate,
7184 &(state->dts_vstate))) {
7185 str[offs++] = '\0';
7186 continue;
7187 }
7188
7189 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
7190
7191 /*
7192 * Now copy in the string that the helper returned to us.
7193 */
7194 for (j = 0; offs + j < strsize && j < rem; j++) {
7195 if ((str[offs + j] = sym[j]) == '\0')
7196 break;
7197 }
7198
7199 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
7200
7201 offs += j + 1;
7202 }
7203
7204 if (offs >= strsize) {
7205 /*
7206 * If we didn't have room for all of the strings, we don't
7207 * abort processing -- this needn't be a fatal error -- but we
7208 * still want to increment a counter (dts_stkstroverflows) to
7209 * allow this condition to be warned about. (If this is from
7210 * a jstack() action, it is easily tuned via jstackstrsize.)
7211 */
7212 dtrace_error(&state->dts_stkstroverflows);
7213 }
7214
7215 while (offs < strsize)
7216 str[offs++] = '\0';
7217
7218 out:
7219 mstate->dtms_scratch_ptr = old;
7220 }
7221
7222 static void
7223 dtrace_store_by_ref(dtrace_difo_t *dp, caddr_t tomax, size_t size,
7224 size_t *valoffsp, uint64_t *valp, uint64_t end, int intuple, int dtkind)
7225 {
7226 volatile uint16_t *flags;
7227 uint64_t val = *valp;
7228 size_t valoffs = *valoffsp;
7229
7230 flags = (volatile uint16_t *)&cpu_core[curcpu].cpuc_dtrace_flags;
7231 ASSERT(dtkind == DIF_TF_BYREF || dtkind == DIF_TF_BYUREF);
7232
7233 /*
7234 * If this is a string, we're going to only load until we find the zero
7235 * byte -- after which we'll store zero bytes.
7236 */
7237 if (dp->dtdo_rtype.dtdt_kind == DIF_TYPE_STRING) {
7238 char c = '\0' + 1;
7239 size_t s;
7240
7241 for (s = 0; s < size; s++) {
7242 if (c != '\0' && dtkind == DIF_TF_BYREF) {
7243 c = dtrace_load8(val++);
7244 } else if (c != '\0' && dtkind == DIF_TF_BYUREF) {
7245 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
7246 c = dtrace_fuword8((void *)(uintptr_t)val++);
7247 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
7248 if (*flags & CPU_DTRACE_FAULT)
7249 break;
7250 }
7251
7252 DTRACE_STORE(uint8_t, tomax, valoffs++, c);
7253
7254 if (c == '\0' && intuple)
7255 break;
7256 }
7257 } else {
7258 uint8_t c;
7259 while (valoffs < end) {
7260 if (dtkind == DIF_TF_BYREF) {
7261 c = dtrace_load8(val++);
7262 } else if (dtkind == DIF_TF_BYUREF) {
7263 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
7264 c = dtrace_fuword8((void *)(uintptr_t)val++);
7265 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
7266 if (*flags & CPU_DTRACE_FAULT)
7267 break;
7268 }
7269
7270 DTRACE_STORE(uint8_t, tomax,
7271 valoffs++, c);
7272 }
7273 }
7274
7275 *valp = val;
7276 *valoffsp = valoffs;
7277 }
7278
7279 /*
7280 * Disables interrupts and sets the per-thread inprobe flag. When DEBUG is
7281 * defined, we also assert that we are not recursing unless the probe ID is an
7282 * error probe.
7283 */
7284 static dtrace_icookie_t
7285 dtrace_probe_enter(dtrace_id_t id)
7286 {
7287 dtrace_icookie_t cookie;
7288
7289 cookie = dtrace_interrupt_disable();
7290
7291 /*
7292 * Unless this is an ERROR probe, we are not allowed to recurse in
7293 * dtrace_probe(). Recursing into DTrace probe usually means that a
7294 * function is instrumented that should not have been instrumented or
7295 * that the ordering guarantee of the records will be violated,
7296 * resulting in unexpected output. If there is an exception to this
7297 * assertion, a new case should be added.
7298 */
7299 ASSERT(curthread->t_dtrace_inprobe == 0 ||
7300 id == dtrace_probeid_error);
7301 curthread->t_dtrace_inprobe = 1;
7302
7303 return (cookie);
7304 }
7305
7306 /*
7307 * Clears the per-thread inprobe flag and enables interrupts.
7308 */
7309 static void
7310 dtrace_probe_exit(dtrace_icookie_t cookie)
7311 {
7312
7313 curthread->t_dtrace_inprobe = 0;
7314 dtrace_interrupt_enable(cookie);
7315 }
7316
7317 /*
7318 * If you're looking for the epicenter of DTrace, you just found it. This
7319 * is the function called by the provider to fire a probe -- from which all
7320 * subsequent probe-context DTrace activity emanates.
7321 */
7322 void
7323 dtrace_probe(dtrace_id_t id, uintptr_t arg0, uintptr_t arg1,
7324 uintptr_t arg2, uintptr_t arg3, uintptr_t arg4)
7325 {
7326 processorid_t cpuid;
7327 dtrace_icookie_t cookie;
7328 dtrace_probe_t *probe;
7329 dtrace_mstate_t mstate;
7330 dtrace_ecb_t *ecb;
7331 dtrace_action_t *act;
7332 intptr_t offs;
7333 size_t size;
7334 int vtime, onintr;
7335 volatile uint16_t *flags;
7336 hrtime_t now;
7337
7338 if (panicstr != NULL)
7339 return;
7340
7341 #ifdef illumos
7342 /*
7343 * Kick out immediately if this CPU is still being born (in which case
7344 * curthread will be set to -1) or the current thread can't allow
7345 * probes in its current context.
7346 */
7347 if (((uintptr_t)curthread & 1) || (curthread->t_flag & T_DONTDTRACE))
7348 return;
7349 #endif
7350
7351 cookie = dtrace_probe_enter(id);
7352 probe = dtrace_probes[id - 1];
7353 cpuid = curcpu;
7354 onintr = CPU_ON_INTR(CPU);
7355
7356 if (!onintr && probe->dtpr_predcache != DTRACE_CACHEIDNONE &&
7357 probe->dtpr_predcache == curthread->t_predcache) {
7358 /*
7359 * We have hit in the predicate cache; we know that
7360 * this predicate would evaluate to be false.
7361 */
7362 dtrace_probe_exit(cookie);
7363 return;
7364 }
7365
7366 #ifdef illumos
7367 if (panic_quiesce) {
7368 #else
7369 if (panicstr != NULL) {
7370 #endif
7371 /*
7372 * We don't trace anything if we're panicking.
7373 */
7374 dtrace_probe_exit(cookie);
7375 return;
7376 }
7377
7378 now = mstate.dtms_timestamp = dtrace_gethrtime();
7379 mstate.dtms_present = DTRACE_MSTATE_TIMESTAMP;
7380 vtime = dtrace_vtime_references != 0;
7381
7382 if (vtime && curthread->t_dtrace_start)
7383 curthread->t_dtrace_vtime += now - curthread->t_dtrace_start;
7384
7385 mstate.dtms_difo = NULL;
7386 mstate.dtms_probe = probe;
7387 mstate.dtms_strtok = 0;
7388 mstate.dtms_arg[0] = arg0;
7389 mstate.dtms_arg[1] = arg1;
7390 mstate.dtms_arg[2] = arg2;
7391 mstate.dtms_arg[3] = arg3;
7392 mstate.dtms_arg[4] = arg4;
7393
7394 flags = (volatile uint16_t *)&cpu_core[cpuid].cpuc_dtrace_flags;
7395
7396 for (ecb = probe->dtpr_ecb; ecb != NULL; ecb = ecb->dte_next) {
7397 dtrace_predicate_t *pred = ecb->dte_predicate;
7398 dtrace_state_t *state = ecb->dte_state;
7399 dtrace_buffer_t *buf = &state->dts_buffer[cpuid];
7400 dtrace_buffer_t *aggbuf = &state->dts_aggbuffer[cpuid];
7401 dtrace_vstate_t *vstate = &state->dts_vstate;
7402 dtrace_provider_t *prov = probe->dtpr_provider;
7403 uint64_t tracememsize = 0;
7404 int committed = 0;
7405 caddr_t tomax;
7406
7407 /*
7408 * A little subtlety with the following (seemingly innocuous)
7409 * declaration of the automatic 'val': by looking at the
7410 * code, you might think that it could be declared in the
7411 * action processing loop, below. (That is, it's only used in
7412 * the action processing loop.) However, it must be declared
7413 * out of that scope because in the case of DIF expression
7414 * arguments to aggregating actions, one iteration of the
7415 * action loop will use the last iteration's value.
7416 */
7417 uint64_t val = 0;
7418
7419 mstate.dtms_present = DTRACE_MSTATE_ARGS | DTRACE_MSTATE_PROBE;
7420 mstate.dtms_getf = NULL;
7421
7422 *flags &= ~CPU_DTRACE_ERROR;
7423
7424 if (prov == dtrace_provider) {
7425 /*
7426 * If dtrace itself is the provider of this probe,
7427 * we're only going to continue processing the ECB if
7428 * arg0 (the dtrace_state_t) is equal to the ECB's
7429 * creating state. (This prevents disjoint consumers
7430 * from seeing one another's metaprobes.)
7431 */
7432 if (arg0 != (uint64_t)(uintptr_t)state)
7433 continue;
7434 }
7435
7436 if (state->dts_activity != DTRACE_ACTIVITY_ACTIVE) {
7437 /*
7438 * We're not currently active. If our provider isn't
7439 * the dtrace pseudo provider, we're not interested.
7440 */
7441 if (prov != dtrace_provider)
7442 continue;
7443
7444 /*
7445 * Now we must further check if we are in the BEGIN
7446 * probe. If we are, we will only continue processing
7447 * if we're still in WARMUP -- if one BEGIN enabling
7448 * has invoked the exit() action, we don't want to
7449 * evaluate subsequent BEGIN enablings.
7450 */
7451 if (probe->dtpr_id == dtrace_probeid_begin &&
7452 state->dts_activity != DTRACE_ACTIVITY_WARMUP) {
7453 ASSERT(state->dts_activity ==
7454 DTRACE_ACTIVITY_DRAINING);
7455 continue;
7456 }
7457 }
7458
7459 if (ecb->dte_cond) {
7460 /*
7461 * If the dte_cond bits indicate that this
7462 * consumer is only allowed to see user-mode firings
7463 * of this probe, call the provider's dtps_usermode()
7464 * entry point to check that the probe was fired
7465 * while in a user context. Skip this ECB if that's
7466 * not the case.
7467 */
7468 if ((ecb->dte_cond & DTRACE_COND_USERMODE) &&
7469 prov->dtpv_pops.dtps_usermode(prov->dtpv_arg,
7470 probe->dtpr_id, probe->dtpr_arg) == 0)
7471 continue;
7472
7473 #ifdef illumos
7474 /*
7475 * This is more subtle than it looks. We have to be
7476 * absolutely certain that CRED() isn't going to
7477 * change out from under us so it's only legit to
7478 * examine that structure if we're in constrained
7479 * situations. Currently, the only times we'll this
7480 * check is if a non-super-user has enabled the
7481 * profile or syscall providers -- providers that
7482 * allow visibility of all processes. For the
7483 * profile case, the check above will ensure that
7484 * we're examining a user context.
7485 */
7486 if (ecb->dte_cond & DTRACE_COND_OWNER) {
7487 cred_t *cr;
7488 cred_t *s_cr =
7489 ecb->dte_state->dts_cred.dcr_cred;
7490 proc_t *proc;
7491
7492 ASSERT(s_cr != NULL);
7493
7494 if ((cr = CRED()) == NULL ||
7495 s_cr->cr_uid != cr->cr_uid ||
7496 s_cr->cr_uid != cr->cr_ruid ||
7497 s_cr->cr_uid != cr->cr_suid ||
7498 s_cr->cr_gid != cr->cr_gid ||
7499 s_cr->cr_gid != cr->cr_rgid ||
7500 s_cr->cr_gid != cr->cr_sgid ||
7501 (proc = ttoproc(curthread)) == NULL ||
7502 (proc->p_flag & SNOCD))
7503 continue;
7504 }
7505
7506 if (ecb->dte_cond & DTRACE_COND_ZONEOWNER) {
7507 cred_t *cr;
7508 cred_t *s_cr =
7509 ecb->dte_state->dts_cred.dcr_cred;
7510
7511 ASSERT(s_cr != NULL);
7512
7513 if ((cr = CRED()) == NULL ||
7514 s_cr->cr_zone->zone_id !=
7515 cr->cr_zone->zone_id)
7516 continue;
7517 }
7518 #endif
7519 }
7520
7521 if (now - state->dts_alive > dtrace_deadman_timeout) {
7522 /*
7523 * We seem to be dead. Unless we (a) have kernel
7524 * destructive permissions (b) have explicitly enabled
7525 * destructive actions and (c) destructive actions have
7526 * not been disabled, we're going to transition into
7527 * the KILLED state, from which no further processing
7528 * on this state will be performed.
7529 */
7530 if (!dtrace_priv_kernel_destructive(state) ||
7531 !state->dts_cred.dcr_destructive ||
7532 dtrace_destructive_disallow) {
7533 void *activity = &state->dts_activity;
7534 dtrace_activity_t curstate;
7535
7536 do {
7537 curstate = state->dts_activity;
7538 } while (dtrace_cas32(activity, curstate,
7539 DTRACE_ACTIVITY_KILLED) != curstate);
7540
7541 continue;
7542 }
7543 }
7544
7545 if ((offs = dtrace_buffer_reserve(buf, ecb->dte_needed,
7546 ecb->dte_alignment, state, &mstate)) < 0)
7547 continue;
7548
7549 tomax = buf->dtb_tomax;
7550 ASSERT(tomax != NULL);
7551
7552 if (ecb->dte_size != 0) {
7553 dtrace_rechdr_t dtrh;
7554 if (!(mstate.dtms_present & DTRACE_MSTATE_TIMESTAMP)) {
7555 mstate.dtms_timestamp = dtrace_gethrtime();
7556 mstate.dtms_present |= DTRACE_MSTATE_TIMESTAMP;
7557 }
7558 ASSERT3U(ecb->dte_size, >=, sizeof (dtrace_rechdr_t));
7559 dtrh.dtrh_epid = ecb->dte_epid;
7560 DTRACE_RECORD_STORE_TIMESTAMP(&dtrh,
7561 mstate.dtms_timestamp);
7562 *((dtrace_rechdr_t *)(tomax + offs)) = dtrh;
7563 }
7564
7565 mstate.dtms_epid = ecb->dte_epid;
7566 mstate.dtms_present |= DTRACE_MSTATE_EPID;
7567
7568 if (state->dts_cred.dcr_visible & DTRACE_CRV_KERNEL)
7569 mstate.dtms_access = DTRACE_ACCESS_KERNEL;
7570 else
7571 mstate.dtms_access = 0;
7572
7573 if (pred != NULL) {
7574 dtrace_difo_t *dp = pred->dtp_difo;
7575 uint64_t rval;
7576
7577 rval = dtrace_dif_emulate(dp, &mstate, vstate, state);
7578
7579 if (!(*flags & CPU_DTRACE_ERROR) && !rval) {
7580 dtrace_cacheid_t cid = probe->dtpr_predcache;
7581
7582 if (cid != DTRACE_CACHEIDNONE && !onintr) {
7583 /*
7584 * Update the predicate cache...
7585 */
7586 ASSERT(cid == pred->dtp_cacheid);
7587 curthread->t_predcache = cid;
7588 }
7589
7590 continue;
7591 }
7592 }
7593
7594 for (act = ecb->dte_action; !(*flags & CPU_DTRACE_ERROR) &&
7595 act != NULL; act = act->dta_next) {
7596 size_t valoffs;
7597 dtrace_difo_t *dp;
7598 dtrace_recdesc_t *rec = &act->dta_rec;
7599
7600 size = rec->dtrd_size;
7601 valoffs = offs + rec->dtrd_offset;
7602
7603 if (DTRACEACT_ISAGG(act->dta_kind)) {
7604 uint64_t v = 0xbad;
7605 dtrace_aggregation_t *agg;
7606
7607 agg = (dtrace_aggregation_t *)act;
7608
7609 if ((dp = act->dta_difo) != NULL)
7610 v = dtrace_dif_emulate(dp,
7611 &mstate, vstate, state);
7612
7613 if (*flags & CPU_DTRACE_ERROR)
7614 continue;
7615
7616 /*
7617 * Note that we always pass the expression
7618 * value from the previous iteration of the
7619 * action loop. This value will only be used
7620 * if there is an expression argument to the
7621 * aggregating action, denoted by the
7622 * dtag_hasarg field.
7623 */
7624 dtrace_aggregate(agg, buf,
7625 offs, aggbuf, v, val);
7626 continue;
7627 }
7628
7629 switch (act->dta_kind) {
7630 case DTRACEACT_STOP:
7631 if (dtrace_priv_proc_destructive(state))
7632 dtrace_action_stop();
7633 continue;
7634
7635 case DTRACEACT_BREAKPOINT:
7636 if (dtrace_priv_kernel_destructive(state))
7637 dtrace_action_breakpoint(ecb);
7638 continue;
7639
7640 case DTRACEACT_PANIC:
7641 if (dtrace_priv_kernel_destructive(state))
7642 dtrace_action_panic(ecb);
7643 continue;
7644
7645 case DTRACEACT_STACK:
7646 if (!dtrace_priv_kernel(state))
7647 continue;
7648
7649 dtrace_getpcstack((pc_t *)(tomax + valoffs),
7650 size / sizeof (pc_t), probe->dtpr_aframes,
7651 DTRACE_ANCHORED(probe) ? NULL :
7652 (uint32_t *)arg0);
7653 continue;
7654
7655 case DTRACEACT_JSTACK:
7656 case DTRACEACT_USTACK:
7657 if (!dtrace_priv_proc(state))
7658 continue;
7659
7660 /*
7661 * See comment in DIF_VAR_PID.
7662 */
7663 if (DTRACE_ANCHORED(mstate.dtms_probe) &&
7664 CPU_ON_INTR(CPU)) {
7665 int depth = DTRACE_USTACK_NFRAMES(
7666 rec->dtrd_arg) + 1;
7667
7668 dtrace_bzero((void *)(tomax + valoffs),
7669 DTRACE_USTACK_STRSIZE(rec->dtrd_arg)
7670 + depth * sizeof (uint64_t));
7671
7672 continue;
7673 }
7674
7675 if (DTRACE_USTACK_STRSIZE(rec->dtrd_arg) != 0 &&
7676 curproc->p_dtrace_helpers != NULL) {
7677 /*
7678 * This is the slow path -- we have
7679 * allocated string space, and we're
7680 * getting the stack of a process that
7681 * has helpers. Call into a separate
7682 * routine to perform this processing.
7683 */
7684 dtrace_action_ustack(&mstate, state,
7685 (uint64_t *)(tomax + valoffs),
7686 rec->dtrd_arg);
7687 continue;
7688 }
7689
7690 DTRACE_CPUFLAG_SET(CPU_DTRACE_NOFAULT);
7691 dtrace_getupcstack((uint64_t *)
7692 (tomax + valoffs),
7693 DTRACE_USTACK_NFRAMES(rec->dtrd_arg) + 1);
7694 DTRACE_CPUFLAG_CLEAR(CPU_DTRACE_NOFAULT);
7695 continue;
7696
7697 default:
7698 break;
7699 }
7700
7701 dp = act->dta_difo;
7702 ASSERT(dp != NULL);
7703
7704 val = dtrace_dif_emulate(dp, &mstate, vstate, state);
7705
7706 if (*flags & CPU_DTRACE_ERROR)
7707 continue;
7708
7709 switch (act->dta_kind) {
7710 case DTRACEACT_SPECULATE: {
7711 dtrace_rechdr_t *dtrh;
7712
7713 ASSERT(buf == &state->dts_buffer[cpuid]);
7714 buf = dtrace_speculation_buffer(state,
7715 cpuid, val);
7716
7717 if (buf == NULL) {
7718 *flags |= CPU_DTRACE_DROP;
7719 continue;
7720 }
7721
7722 offs = dtrace_buffer_reserve(buf,
7723 ecb->dte_needed, ecb->dte_alignment,
7724 state, NULL);
7725
7726 if (offs < 0) {
7727 *flags |= CPU_DTRACE_DROP;
7728 continue;
7729 }
7730
7731 tomax = buf->dtb_tomax;
7732 ASSERT(tomax != NULL);
7733
7734 if (ecb->dte_size == 0)
7735 continue;
7736
7737 ASSERT3U(ecb->dte_size, >=,
7738 sizeof (dtrace_rechdr_t));
7739 dtrh = ((void *)(tomax + offs));
7740 dtrh->dtrh_epid = ecb->dte_epid;
7741 /*
7742 * When the speculation is committed, all of
7743 * the records in the speculative buffer will
7744 * have their timestamps set to the commit
7745 * time. Until then, it is set to a sentinel
7746 * value, for debugability.
7747 */
7748 DTRACE_RECORD_STORE_TIMESTAMP(dtrh, UINT64_MAX);
7749 continue;
7750 }
7751
7752 case DTRACEACT_PRINTM: {
7753 /* The DIF returns a 'memref'. */
7754 uintptr_t *memref = (uintptr_t *)(uintptr_t) val;
7755
7756 /* Get the size from the memref. */
7757 size = memref[1];
7758
7759 /*
7760 * Check if the size exceeds the allocated
7761 * buffer size.
7762 */
7763 if (size + sizeof(uintptr_t) > dp->dtdo_rtype.dtdt_size) {
7764 /* Flag a drop! */
7765 *flags |= CPU_DTRACE_DROP;
7766 continue;
7767 }
7768
7769 /* Store the size in the buffer first. */
7770 DTRACE_STORE(uintptr_t, tomax,
7771 valoffs, size);
7772
7773 /*
7774 * Offset the buffer address to the start
7775 * of the data.
7776 */
7777 valoffs += sizeof(uintptr_t);
7778
7779 /*
7780 * Reset to the memory address rather than
7781 * the memref array, then let the BYREF
7782 * code below do the work to store the
7783 * memory data in the buffer.
7784 */
7785 val = memref[0];
7786 break;
7787 }
7788
7789 case DTRACEACT_CHILL:
7790 if (dtrace_priv_kernel_destructive(state))
7791 dtrace_action_chill(&mstate, val);
7792 continue;
7793
7794 case DTRACEACT_RAISE:
7795 if (dtrace_priv_proc_destructive(state))
7796 dtrace_action_raise(val);
7797 continue;
7798
7799 case DTRACEACT_COMMIT:
7800 ASSERT(!committed);
7801
7802 /*
7803 * We need to commit our buffer state.
7804 */
7805 if (ecb->dte_size)
7806 buf->dtb_offset = offs + ecb->dte_size;
7807 buf = &state->dts_buffer[cpuid];
7808 dtrace_speculation_commit(state, cpuid, val);
7809 committed = 1;
7810 continue;
7811
7812 case DTRACEACT_DISCARD:
7813 dtrace_speculation_discard(state, cpuid, val);
7814 continue;
7815
7816 case DTRACEACT_DIFEXPR:
7817 case DTRACEACT_LIBACT:
7818 case DTRACEACT_PRINTF:
7819 case DTRACEACT_PRINTA:
7820 case DTRACEACT_SYSTEM:
7821 case DTRACEACT_FREOPEN:
7822 case DTRACEACT_TRACEMEM:
7823 break;
7824
7825 case DTRACEACT_TRACEMEM_DYNSIZE:
7826 tracememsize = val;
7827 break;
7828
7829 case DTRACEACT_SYM:
7830 case DTRACEACT_MOD:
7831 if (!dtrace_priv_kernel(state))
7832 continue;
7833 break;
7834
7835 case DTRACEACT_USYM:
7836 case DTRACEACT_UMOD:
7837 case DTRACEACT_UADDR: {
7838 #ifdef illumos
7839 struct pid *pid = curthread->t_procp->p_pidp;
7840 #endif
7841
7842 if (!dtrace_priv_proc(state))
7843 continue;
7844
7845 DTRACE_STORE(uint64_t, tomax,
7846 #ifdef illumos
7847 valoffs, (uint64_t)pid->pid_id);
7848 #else
7849 valoffs, (uint64_t) curproc->p_pid);
7850 #endif
7851 DTRACE_STORE(uint64_t, tomax,
7852 valoffs + sizeof (uint64_t), val);
7853
7854 continue;
7855 }
7856
7857 case DTRACEACT_EXIT: {
7858 /*
7859 * For the exit action, we are going to attempt
7860 * to atomically set our activity to be
7861 * draining. If this fails (either because
7862 * another CPU has beat us to the exit action,
7863 * or because our current activity is something
7864 * other than ACTIVE or WARMUP), we will
7865 * continue. This assures that the exit action
7866 * can be successfully recorded at most once
7867 * when we're in the ACTIVE state. If we're
7868 * encountering the exit() action while in
7869 * COOLDOWN, however, we want to honor the new
7870 * status code. (We know that we're the only
7871 * thread in COOLDOWN, so there is no race.)
7872 */
7873 void *activity = &state->dts_activity;
7874 dtrace_activity_t curstate = state->dts_activity;
7875
7876 if (curstate == DTRACE_ACTIVITY_COOLDOWN)
7877 break;
7878
7879 if (curstate != DTRACE_ACTIVITY_WARMUP)
7880 curstate = DTRACE_ACTIVITY_ACTIVE;
7881
7882 if (dtrace_cas32(activity, curstate,
7883 DTRACE_ACTIVITY_DRAINING) != curstate) {
7884 *flags |= CPU_DTRACE_DROP;
7885 continue;
7886 }
7887
7888 break;
7889 }
7890
7891 default:
7892 ASSERT(0);
7893 }
7894
7895 if (dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF ||
7896 dp->dtdo_rtype.dtdt_flags & DIF_TF_BYUREF) {
7897 uintptr_t end = valoffs + size;
7898
7899 if (tracememsize != 0 &&
7900 valoffs + tracememsize < end) {
7901 end = valoffs + tracememsize;
7902 tracememsize = 0;
7903 }
7904
7905 if (dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF &&
7906 !dtrace_vcanload((void *)(uintptr_t)val,
7907 &dp->dtdo_rtype, NULL, &mstate, vstate))
7908 continue;
7909
7910 dtrace_store_by_ref(dp, tomax, size, &valoffs,
7911 &val, end, act->dta_intuple,
7912 dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF ?
7913 DIF_TF_BYREF: DIF_TF_BYUREF);
7914 continue;
7915 }
7916
7917 switch (size) {
7918 case 0:
7919 break;
7920
7921 case sizeof (uint8_t):
7922 DTRACE_STORE(uint8_t, tomax, valoffs, val);
7923 break;
7924 case sizeof (uint16_t):
7925 DTRACE_STORE(uint16_t, tomax, valoffs, val);
7926 break;
7927 case sizeof (uint32_t):
7928 DTRACE_STORE(uint32_t, tomax, valoffs, val);
7929 break;
7930 case sizeof (uint64_t):
7931 DTRACE_STORE(uint64_t, tomax, valoffs, val);
7932 break;
7933 default:
7934 /*
7935 * Any other size should have been returned by
7936 * reference, not by value.
7937 */
7938 ASSERT(0);
7939 break;
7940 }
7941 }
7942
7943 if (*flags & CPU_DTRACE_DROP)
7944 continue;
7945
7946 if (*flags & CPU_DTRACE_FAULT) {
7947 int ndx;
7948 dtrace_action_t *err;
7949
7950 buf->dtb_errors++;
7951
7952 if (probe->dtpr_id == dtrace_probeid_error) {
7953 /*
7954 * There's nothing we can do -- we had an
7955 * error on the error probe. We bump an
7956 * error counter to at least indicate that
7957 * this condition happened.
7958 */
7959 dtrace_error(&state->dts_dblerrors);
7960 continue;
7961 }
7962
7963 if (vtime) {
7964 /*
7965 * Before recursing on dtrace_probe(), we
7966 * need to explicitly clear out our start
7967 * time to prevent it from being accumulated
7968 * into t_dtrace_vtime.
7969 */
7970 curthread->t_dtrace_start = 0;
7971 }
7972
7973 /*
7974 * Iterate over the actions to figure out which action
7975 * we were processing when we experienced the error.
7976 * Note that act points _past_ the faulting action; if
7977 * act is ecb->dte_action, the fault was in the
7978 * predicate, if it's ecb->dte_action->dta_next it's
7979 * in action #1, and so on.
7980 */
7981 for (err = ecb->dte_action, ndx = 0;
7982 err != act; err = err->dta_next, ndx++)
7983 continue;
7984
7985 dtrace_probe_error(state, ecb->dte_epid, ndx,
7986 (mstate.dtms_present & DTRACE_MSTATE_FLTOFFS) ?
7987 mstate.dtms_fltoffs : -1, DTRACE_FLAGS2FLT(*flags),
7988 cpu_core[cpuid].cpuc_dtrace_illval);
7989
7990 continue;
7991 }
7992
7993 if (!committed)
7994 buf->dtb_offset = offs + ecb->dte_size;
7995 }
7996
7997 if (vtime)
7998 curthread->t_dtrace_start = dtrace_gethrtime();
7999
8000 dtrace_probe_exit(cookie);
8001 }
8002
8003 /*
8004 * DTrace Probe Hashing Functions
8005 *
8006 * The functions in this section (and indeed, the functions in remaining
8007 * sections) are not _called_ from probe context. (Any exceptions to this are
8008 * marked with a "Note:".) Rather, they are called from elsewhere in the
8009 * DTrace framework to look-up probes in, add probes to and remove probes from
8010 * the DTrace probe hashes. (Each probe is hashed by each element of the
8011 * probe tuple -- allowing for fast lookups, regardless of what was
8012 * specified.)
8013 */
8014 static uint_t
8015 dtrace_hash_str(const char *p)
8016 {
8017 unsigned int g;
8018 uint_t hval = 0;
8019
8020 while (*p) {
8021 hval = (hval << 4) + *p++;
8022 if ((g = (hval & 0xf0000000)) != 0)
8023 hval ^= g >> 24;
8024 hval &= ~g;
8025 }
8026 return (hval);
8027 }
8028
8029 static dtrace_hash_t *
8030 dtrace_hash_create(uintptr_t stroffs, uintptr_t nextoffs, uintptr_t prevoffs)
8031 {
8032 dtrace_hash_t *hash = kmem_zalloc(sizeof (dtrace_hash_t), KM_SLEEP);
8033
8034 hash->dth_stroffs = stroffs;
8035 hash->dth_nextoffs = nextoffs;
8036 hash->dth_prevoffs = prevoffs;
8037
8038 hash->dth_size = 1;
8039 hash->dth_mask = hash->dth_size - 1;
8040
8041 hash->dth_tab = kmem_zalloc(hash->dth_size *
8042 sizeof (dtrace_hashbucket_t *), KM_SLEEP);
8043
8044 return (hash);
8045 }
8046
8047 static void
8048 dtrace_hash_destroy(dtrace_hash_t *hash)
8049 {
8050 #ifdef DEBUG
8051 int i;
8052
8053 for (i = 0; i < hash->dth_size; i++)
8054 ASSERT(hash->dth_tab[i] == NULL);
8055 #endif
8056
8057 kmem_free(hash->dth_tab,
8058 hash->dth_size * sizeof (dtrace_hashbucket_t *));
8059 kmem_free(hash, sizeof (dtrace_hash_t));
8060 }
8061
8062 static void
8063 dtrace_hash_resize(dtrace_hash_t *hash)
8064 {
8065 int size = hash->dth_size, i, ndx;
8066 int new_size = hash->dth_size << 1;
8067 int new_mask = new_size - 1;
8068 dtrace_hashbucket_t **new_tab, *bucket, *next;
8069
8070 ASSERT((new_size & new_mask) == 0);
8071
8072 new_tab = kmem_zalloc(new_size * sizeof (void *), KM_SLEEP);
8073
8074 for (i = 0; i < size; i++) {
8075 for (bucket = hash->dth_tab[i]; bucket != NULL; bucket = next) {
8076 dtrace_probe_t *probe = bucket->dthb_chain;
8077
8078 ASSERT(probe != NULL);
8079 ndx = DTRACE_HASHSTR(hash, probe) & new_mask;
8080
8081 next = bucket->dthb_next;
8082 bucket->dthb_next = new_tab[ndx];
8083 new_tab[ndx] = bucket;
8084 }
8085 }
8086
8087 kmem_free(hash->dth_tab, hash->dth_size * sizeof (void *));
8088 hash->dth_tab = new_tab;
8089 hash->dth_size = new_size;
8090 hash->dth_mask = new_mask;
8091 }
8092
8093 static void
8094 dtrace_hash_add(dtrace_hash_t *hash, dtrace_probe_t *new)
8095 {
8096 int hashval = DTRACE_HASHSTR(hash, new);
8097 int ndx = hashval & hash->dth_mask;
8098 dtrace_hashbucket_t *bucket = hash->dth_tab[ndx];
8099 dtrace_probe_t **nextp, **prevp;
8100
8101 for (; bucket != NULL; bucket = bucket->dthb_next) {
8102 if (DTRACE_HASHEQ(hash, bucket->dthb_chain, new))
8103 goto add;
8104 }
8105
8106 if ((hash->dth_nbuckets >> 1) > hash->dth_size) {
8107 dtrace_hash_resize(hash);
8108 dtrace_hash_add(hash, new);
8109 return;
8110 }
8111
8112 bucket = kmem_zalloc(sizeof (dtrace_hashbucket_t), KM_SLEEP);
8113 bucket->dthb_next = hash->dth_tab[ndx];
8114 hash->dth_tab[ndx] = bucket;
8115 hash->dth_nbuckets++;
8116
8117 add:
8118 nextp = DTRACE_HASHNEXT(hash, new);
8119 ASSERT(*nextp == NULL && *(DTRACE_HASHPREV(hash, new)) == NULL);
8120 *nextp = bucket->dthb_chain;
8121
8122 if (bucket->dthb_chain != NULL) {
8123 prevp = DTRACE_HASHPREV(hash, bucket->dthb_chain);
8124 ASSERT(*prevp == NULL);
8125 *prevp = new;
8126 }
8127
8128 bucket->dthb_chain = new;
8129 bucket->dthb_len++;
8130 }
8131
8132 static dtrace_probe_t *
8133 dtrace_hash_lookup(dtrace_hash_t *hash, dtrace_probe_t *template)
8134 {
8135 int hashval = DTRACE_HASHSTR(hash, template);
8136 int ndx = hashval & hash->dth_mask;
8137 dtrace_hashbucket_t *bucket = hash->dth_tab[ndx];
8138
8139 for (; bucket != NULL; bucket = bucket->dthb_next) {
8140 if (DTRACE_HASHEQ(hash, bucket->dthb_chain, template))
8141 return (bucket->dthb_chain);
8142 }
8143
8144 return (NULL);
8145 }
8146
8147 static int
8148 dtrace_hash_collisions(dtrace_hash_t *hash, dtrace_probe_t *template)
8149 {
8150 int hashval = DTRACE_HASHSTR(hash, template);
8151 int ndx = hashval & hash->dth_mask;
8152 dtrace_hashbucket_t *bucket = hash->dth_tab[ndx];
8153
8154 for (; bucket != NULL; bucket = bucket->dthb_next) {
8155 if (DTRACE_HASHEQ(hash, bucket->dthb_chain, template))
8156 return (bucket->dthb_len);
8157 }
8158
8159 return (0);
8160 }
8161
8162 static void
8163 dtrace_hash_remove(dtrace_hash_t *hash, dtrace_probe_t *probe)
8164 {
8165 int ndx = DTRACE_HASHSTR(hash, probe) & hash->dth_mask;
8166 dtrace_hashbucket_t *bucket = hash->dth_tab[ndx];
8167
8168 dtrace_probe_t **prevp = DTRACE_HASHPREV(hash, probe);
8169 dtrace_probe_t **nextp = DTRACE_HASHNEXT(hash, probe);
8170
8171 /*
8172 * Find the bucket that we're removing this probe from.
8173 */
8174 for (; bucket != NULL; bucket = bucket->dthb_next) {
8175 if (DTRACE_HASHEQ(hash, bucket->dthb_chain, probe))
8176 break;
8177 }
8178
8179 ASSERT(bucket != NULL);
8180
8181 if (*prevp == NULL) {
8182 if (*nextp == NULL) {
8183 /*
8184 * The removed probe was the only probe on this
8185 * bucket; we need to remove the bucket.
8186 */
8187 dtrace_hashbucket_t *b = hash->dth_tab[ndx];
8188
8189 ASSERT(bucket->dthb_chain == probe);
8190 ASSERT(b != NULL);
8191
8192 if (b == bucket) {
8193 hash->dth_tab[ndx] = bucket->dthb_next;
8194 } else {
8195 while (b->dthb_next != bucket)
8196 b = b->dthb_next;
8197 b->dthb_next = bucket->dthb_next;
8198 }
8199
8200 ASSERT(hash->dth_nbuckets > 0);
8201 hash->dth_nbuckets--;
8202 kmem_free(bucket, sizeof (dtrace_hashbucket_t));
8203 return;
8204 }
8205
8206 bucket->dthb_chain = *nextp;
8207 } else {
8208 *(DTRACE_HASHNEXT(hash, *prevp)) = *nextp;
8209 }
8210
8211 if (*nextp != NULL)
8212 *(DTRACE_HASHPREV(hash, *nextp)) = *prevp;
8213 }
8214
8215 /*
8216 * DTrace Utility Functions
8217 *
8218 * These are random utility functions that are _not_ called from probe context.
8219 */
8220 static int
8221 dtrace_badattr(const dtrace_attribute_t *a)
8222 {
8223 return (a->dtat_name > DTRACE_STABILITY_MAX ||
8224 a->dtat_data > DTRACE_STABILITY_MAX ||
8225 a->dtat_class > DTRACE_CLASS_MAX);
8226 }
8227
8228 /*
8229 * Return a duplicate copy of a string. If the specified string is NULL,
8230 * this function returns a zero-length string.
8231 */
8232 static char *
8233 dtrace_strdup(const char *str)
8234 {
8235 char *new = kmem_zalloc((str != NULL ? strlen(str) : 0) + 1, KM_SLEEP);
8236
8237 if (str != NULL)
8238 (void) strcpy(new, str);
8239
8240 return (new);
8241 }
8242
8243 #define DTRACE_ISALPHA(c) \
8244 (((c) >= 'a' && (c) <= 'z') || ((c) >= 'A' && (c) <= 'Z'))
8245
8246 static int
8247 dtrace_badname(const char *s)
8248 {
8249 char c;
8250
8251 if (s == NULL || (c = *s++) == '\0')
8252 return (0);
8253
8254 if (!DTRACE_ISALPHA(c) && c != '-' && c != '_' && c != '.')
8255 return (1);
8256
8257 while ((c = *s++) != '\0') {
8258 if (!DTRACE_ISALPHA(c) && (c < '0' || c > '9') &&
8259 c != '-' && c != '_' && c != '.' && c != '`')
8260 return (1);
8261 }
8262
8263 return (0);
8264 }
8265
8266 static void
8267 dtrace_cred2priv(cred_t *cr, uint32_t *privp, uid_t *uidp, zoneid_t *zoneidp)
8268 {
8269 uint32_t priv;
8270
8271 #ifdef illumos
8272 if (cr == NULL || PRIV_POLICY_ONLY(cr, PRIV_ALL, B_FALSE)) {
8273 /*
8274 * For DTRACE_PRIV_ALL, the uid and zoneid don't matter.
8275 */
8276 priv = DTRACE_PRIV_ALL;
8277 } else {
8278 *uidp = crgetuid(cr);
8279 *zoneidp = crgetzoneid(cr);
8280
8281 priv = 0;
8282 if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_KERNEL, B_FALSE))
8283 priv |= DTRACE_PRIV_KERNEL | DTRACE_PRIV_USER;
8284 else if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_USER, B_FALSE))
8285 priv |= DTRACE_PRIV_USER;
8286 if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_PROC, B_FALSE))
8287 priv |= DTRACE_PRIV_PROC;
8288 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_OWNER, B_FALSE))
8289 priv |= DTRACE_PRIV_OWNER;
8290 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_ZONE, B_FALSE))
8291 priv |= DTRACE_PRIV_ZONEOWNER;
8292 }
8293 #else
8294 priv = DTRACE_PRIV_ALL;
8295 #endif
8296
8297 *privp = priv;
8298 }
8299
8300 #ifdef DTRACE_ERRDEBUG
8301 static void
8302 dtrace_errdebug(const char *str)
8303 {
8304 int hval = dtrace_hash_str(str) % DTRACE_ERRHASHSZ;
8305 int occupied = 0;
8306
8307 mutex_enter(&dtrace_errlock);
8308 dtrace_errlast = str;
8309 dtrace_errthread = curthread;
8310
8311 while (occupied++ < DTRACE_ERRHASHSZ) {
8312 if (dtrace_errhash[hval].dter_msg == str) {
8313 dtrace_errhash[hval].dter_count++;
8314 goto out;
8315 }
8316
8317 if (dtrace_errhash[hval].dter_msg != NULL) {
8318 hval = (hval + 1) % DTRACE_ERRHASHSZ;
8319 continue;
8320 }
8321
8322 dtrace_errhash[hval].dter_msg = str;
8323 dtrace_errhash[hval].dter_count = 1;
8324 goto out;
8325 }
8326
8327 panic("dtrace: undersized error hash");
8328 out:
8329 mutex_exit(&dtrace_errlock);
8330 }
8331 #endif
8332
8333 /*
8334 * DTrace Matching Functions
8335 *
8336 * These functions are used to match groups of probes, given some elements of
8337 * a probe tuple, or some globbed expressions for elements of a probe tuple.
8338 */
8339 static int
8340 dtrace_match_priv(const dtrace_probe_t *prp, uint32_t priv, uid_t uid,
8341 zoneid_t zoneid)
8342 {
8343 if (priv != DTRACE_PRIV_ALL) {
8344 uint32_t ppriv = prp->dtpr_provider->dtpv_priv.dtpp_flags;
8345 uint32_t match = priv & ppriv;
8346
8347 /*
8348 * No PRIV_DTRACE_* privileges...
8349 */
8350 if ((priv & (DTRACE_PRIV_PROC | DTRACE_PRIV_USER |
8351 DTRACE_PRIV_KERNEL)) == 0)
8352 return (0);
8353
8354 /*
8355 * No matching bits, but there were bits to match...
8356 */
8357 if (match == 0 && ppriv != 0)
8358 return (0);
8359
8360 /*
8361 * Need to have permissions to the process, but don't...
8362 */
8363 if (((ppriv & ~match) & DTRACE_PRIV_OWNER) != 0 &&
8364 uid != prp->dtpr_provider->dtpv_priv.dtpp_uid) {
8365 return (0);
8366 }
8367
8368 /*
8369 * Need to be in the same zone unless we possess the
8370 * privilege to examine all zones.
8371 */
8372 if (((ppriv & ~match) & DTRACE_PRIV_ZONEOWNER) != 0 &&
8373 zoneid != prp->dtpr_provider->dtpv_priv.dtpp_zoneid) {
8374 return (0);
8375 }
8376 }
8377
8378 return (1);
8379 }
8380
8381 /*
8382 * dtrace_match_probe compares a dtrace_probe_t to a pre-compiled key, which
8383 * consists of input pattern strings and an ops-vector to evaluate them.
8384 * This function returns >0 for match, 0 for no match, and <0 for error.
8385 */
8386 static int
8387 dtrace_match_probe(const dtrace_probe_t *prp, const dtrace_probekey_t *pkp,
8388 uint32_t priv, uid_t uid, zoneid_t zoneid)
8389 {
8390 dtrace_provider_t *pvp = prp->dtpr_provider;
8391 int rv;
8392
8393 if (pvp->dtpv_defunct)
8394 return (0);
8395
8396 if ((rv = pkp->dtpk_pmatch(pvp->dtpv_name, pkp->dtpk_prov, 0)) <= 0)
8397 return (rv);
8398
8399 if ((rv = pkp->dtpk_mmatch(prp->dtpr_mod, pkp->dtpk_mod, 0)) <= 0)
8400 return (rv);
8401
8402 if ((rv = pkp->dtpk_fmatch(prp->dtpr_func, pkp->dtpk_func, 0)) <= 0)
8403 return (rv);
8404
8405 if ((rv = pkp->dtpk_nmatch(prp->dtpr_name, pkp->dtpk_name, 0)) <= 0)
8406 return (rv);
8407
8408 if (dtrace_match_priv(prp, priv, uid, zoneid) == 0)
8409 return (0);
8410
8411 return (rv);
8412 }
8413
8414 /*
8415 * dtrace_match_glob() is a safe kernel implementation of the gmatch(3GEN)
8416 * interface for matching a glob pattern 'p' to an input string 's'. Unlike
8417 * libc's version, the kernel version only applies to 8-bit ASCII strings.
8418 * In addition, all of the recursion cases except for '*' matching have been
8419 * unwound. For '*', we still implement recursive evaluation, but a depth
8420 * counter is maintained and matching is aborted if we recurse too deep.
8421 * The function returns 0 if no match, >0 if match, and <0 if recursion error.
8422 */
8423 static int
8424 dtrace_match_glob(const char *s, const char *p, int depth)
8425 {
8426 const char *olds;
8427 char s1, c;
8428 int gs;
8429
8430 if (depth > DTRACE_PROBEKEY_MAXDEPTH)
8431 return (-1);
8432
8433 if (s == NULL)
8434 s = ""; /* treat NULL as empty string */
8435
8436 top:
8437 olds = s;
8438 s1 = *s++;
8439
8440 if (p == NULL)
8441 return (0);
8442
8443 if ((c = *p++) == '\0')
8444 return (s1 == '\0');
8445
8446 switch (c) {
8447 case '[': {
8448 int ok = 0, notflag = 0;
8449 char lc = '\0';
8450
8451 if (s1 == '\0')
8452 return (0);
8453
8454 if (*p == '!') {
8455 notflag = 1;
8456 p++;
8457 }
8458
8459 if ((c = *p++) == '\0')
8460 return (0);
8461
8462 do {
8463 if (c == '-' && lc != '\0' && *p != ']') {
8464 if ((c = *p++) == '\0')
8465 return (0);
8466 if (c == '\\' && (c = *p++) == '\0')
8467 return (0);
8468
8469 if (notflag) {
8470 if (s1 < lc || s1 > c)
8471 ok++;
8472 else
8473 return (0);
8474 } else if (lc <= s1 && s1 <= c)
8475 ok++;
8476
8477 } else if (c == '\\' && (c = *p++) == '\0')
8478 return (0);
8479
8480 lc = c; /* save left-hand 'c' for next iteration */
8481
8482 if (notflag) {
8483 if (s1 != c)
8484 ok++;
8485 else
8486 return (0);
8487 } else if (s1 == c)
8488 ok++;
8489
8490 if ((c = *p++) == '\0')
8491 return (0);
8492
8493 } while (c != ']');
8494
8495 if (ok)
8496 goto top;
8497
8498 return (0);
8499 }
8500
8501 case '\\':
8502 if ((c = *p++) == '\0')
8503 return (0);
8504 /*FALLTHRU*/
8505
8506 default:
8507 if (c != s1)
8508 return (0);
8509 /*FALLTHRU*/
8510
8511 case '?':
8512 if (s1 != '\0')
8513 goto top;
8514 return (0);
8515
8516 case '*':
8517 while (*p == '*')
8518 p++; /* consecutive *'s are identical to a single one */
8519
8520 if (*p == '\0')
8521 return (1);
8522
8523 for (s = olds; *s != '\0'; s++) {
8524 if ((gs = dtrace_match_glob(s, p, depth + 1)) != 0)
8525 return (gs);
8526 }
8527
8528 return (0);
8529 }
8530 }
8531
8532 /*ARGSUSED*/
8533 static int
8534 dtrace_match_string(const char *s, const char *p, int depth)
8535 {
8536 return (s != NULL && strcmp(s, p) == 0);
8537 }
8538
8539 /*ARGSUSED*/
8540 static int
8541 dtrace_match_nul(const char *s, const char *p, int depth)
8542 {
8543 return (1); /* always match the empty pattern */
8544 }
8545
8546 /*ARGSUSED*/
8547 static int
8548 dtrace_match_nonzero(const char *s, const char *p, int depth)
8549 {
8550 return (s != NULL && s[0] != '\0');
8551 }
8552
8553 static int
8554 dtrace_match(const dtrace_probekey_t *pkp, uint32_t priv, uid_t uid,
8555 zoneid_t zoneid, int (*matched)(dtrace_probe_t *, void *), void *arg)
8556 {
8557 dtrace_probe_t template, *probe;
8558 dtrace_hash_t *hash = NULL;
8559 int len, best = INT_MAX, nmatched = 0;
8560 dtrace_id_t i;
8561
8562 ASSERT(MUTEX_HELD(&dtrace_lock));
8563
8564 /*
8565 * If the probe ID is specified in the key, just lookup by ID and
8566 * invoke the match callback once if a matching probe is found.
8567 */
8568 if (pkp->dtpk_id != DTRACE_IDNONE) {
8569 if ((probe = dtrace_probe_lookup_id(pkp->dtpk_id)) != NULL &&
8570 dtrace_match_probe(probe, pkp, priv, uid, zoneid) > 0) {
8571 (void) (*matched)(probe, arg);
8572 nmatched++;
8573 }
8574 return (nmatched);
8575 }
8576
8577 template.dtpr_mod = (char *)pkp->dtpk_mod;
8578 template.dtpr_func = (char *)pkp->dtpk_func;
8579 template.dtpr_name = (char *)pkp->dtpk_name;
8580
8581 /*
8582 * We want to find the most distinct of the module name, function
8583 * name, and name. So for each one that is not a glob pattern or
8584 * empty string, we perform a lookup in the corresponding hash and
8585 * use the hash table with the fewest collisions to do our search.
8586 */
8587 if (pkp->dtpk_mmatch == &dtrace_match_string &&
8588 (len = dtrace_hash_collisions(dtrace_bymod, &template)) < best) {
8589 best = len;
8590 hash = dtrace_bymod;
8591 }
8592
8593 if (pkp->dtpk_fmatch == &dtrace_match_string &&
8594 (len = dtrace_hash_collisions(dtrace_byfunc, &template)) < best) {
8595 best = len;
8596 hash = dtrace_byfunc;
8597 }
8598
8599 if (pkp->dtpk_nmatch == &dtrace_match_string &&
8600 (len = dtrace_hash_collisions(dtrace_byname, &template)) < best) {
8601 best = len;
8602 hash = dtrace_byname;
8603 }
8604
8605 /*
8606 * If we did not select a hash table, iterate over every probe and
8607 * invoke our callback for each one that matches our input probe key.
8608 */
8609 if (hash == NULL) {
8610 for (i = 0; i < dtrace_nprobes; i++) {
8611 if ((probe = dtrace_probes[i]) == NULL ||
8612 dtrace_match_probe(probe, pkp, priv, uid,
8613 zoneid) <= 0)
8614 continue;
8615
8616 nmatched++;
8617
8618 if ((*matched)(probe, arg) != DTRACE_MATCH_NEXT)
8619 break;
8620 }
8621
8622 return (nmatched);
8623 }
8624
8625 /*
8626 * If we selected a hash table, iterate over each probe of the same key
8627 * name and invoke the callback for every probe that matches the other
8628 * attributes of our input probe key.
8629 */
8630 for (probe = dtrace_hash_lookup(hash, &template); probe != NULL;
8631 probe = *(DTRACE_HASHNEXT(hash, probe))) {
8632
8633 if (dtrace_match_probe(probe, pkp, priv, uid, zoneid) <= 0)
8634 continue;
8635
8636 nmatched++;
8637
8638 if ((*matched)(probe, arg) != DTRACE_MATCH_NEXT)
8639 break;
8640 }
8641
8642 return (nmatched);
8643 }
8644
8645 /*
8646 * Return the function pointer dtrace_probecmp() should use to compare the
8647 * specified pattern with a string. For NULL or empty patterns, we select
8648 * dtrace_match_nul(). For glob pattern strings, we use dtrace_match_glob().
8649 * For non-empty non-glob strings, we use dtrace_match_string().
8650 */
8651 static dtrace_probekey_f *
8652 dtrace_probekey_func(const char *p)
8653 {
8654 char c;
8655
8656 if (p == NULL || *p == '\0')
8657 return (&dtrace_match_nul);
8658
8659 while ((c = *p++) != '\0') {
8660 if (c == '[' || c == '?' || c == '*' || c == '\\')
8661 return (&dtrace_match_glob);
8662 }
8663
8664 return (&dtrace_match_string);
8665 }
8666
8667 /*
8668 * Build a probe comparison key for use with dtrace_match_probe() from the
8669 * given probe description. By convention, a null key only matches anchored
8670 * probes: if each field is the empty string, reset dtpk_fmatch to
8671 * dtrace_match_nonzero().
8672 */
8673 static void
8674 dtrace_probekey(dtrace_probedesc_t *pdp, dtrace_probekey_t *pkp)
8675 {
8676 pkp->dtpk_prov = pdp->dtpd_provider;
8677 pkp->dtpk_pmatch = dtrace_probekey_func(pdp->dtpd_provider);
8678
8679 pkp->dtpk_mod = pdp->dtpd_mod;
8680 pkp->dtpk_mmatch = dtrace_probekey_func(pdp->dtpd_mod);
8681
8682 pkp->dtpk_func = pdp->dtpd_func;
8683 pkp->dtpk_fmatch = dtrace_probekey_func(pdp->dtpd_func);
8684
8685 pkp->dtpk_name = pdp->dtpd_name;
8686 pkp->dtpk_nmatch = dtrace_probekey_func(pdp->dtpd_name);
8687
8688 pkp->dtpk_id = pdp->dtpd_id;
8689
8690 if (pkp->dtpk_id == DTRACE_IDNONE &&
8691 pkp->dtpk_pmatch == &dtrace_match_nul &&
8692 pkp->dtpk_mmatch == &dtrace_match_nul &&
8693 pkp->dtpk_fmatch == &dtrace_match_nul &&
8694 pkp->dtpk_nmatch == &dtrace_match_nul)
8695 pkp->dtpk_fmatch = &dtrace_match_nonzero;
8696 }
8697
8698 /*
8699 * DTrace Provider-to-Framework API Functions
8700 *
8701 * These functions implement much of the Provider-to-Framework API, as
8702 * described in <sys/dtrace.h>. The parts of the API not in this section are
8703 * the functions in the API for probe management (found below), and
8704 * dtrace_probe() itself (found above).
8705 */
8706
8707 /*
8708 * Register the calling provider with the DTrace framework. This should
8709 * generally be called by DTrace providers in their attach(9E) entry point.
8710 */
8711 int
8712 dtrace_register(const char *name, const dtrace_pattr_t *pap, uint32_t priv,
8713 cred_t *cr, const dtrace_pops_t *pops, void *arg, dtrace_provider_id_t *idp)
8714 {
8715 dtrace_provider_t *provider;
8716
8717 if (name == NULL || pap == NULL || pops == NULL || idp == NULL) {
8718 cmn_err(CE_WARN, "failed to register provider '%s': invalid "
8719 "arguments", name ? name : "<NULL>");
8720 return (EINVAL);
8721 }
8722
8723 if (name[0] == '\0' || dtrace_badname(name)) {
8724 cmn_err(CE_WARN, "failed to register provider '%s': invalid "
8725 "provider name", name);
8726 return (EINVAL);
8727 }
8728
8729 if ((pops->dtps_provide == NULL && pops->dtps_provide_module == NULL) ||
8730 pops->dtps_enable == NULL || pops->dtps_disable == NULL ||
8731 pops->dtps_destroy == NULL ||
8732 ((pops->dtps_resume == NULL) != (pops->dtps_suspend == NULL))) {
8733 cmn_err(CE_WARN, "failed to register provider '%s': invalid "
8734 "provider ops", name);
8735 return (EINVAL);
8736 }
8737
8738 if (dtrace_badattr(&pap->dtpa_provider) ||
8739 dtrace_badattr(&pap->dtpa_mod) ||
8740 dtrace_badattr(&pap->dtpa_func) ||
8741 dtrace_badattr(&pap->dtpa_name) ||
8742 dtrace_badattr(&pap->dtpa_args)) {
8743 cmn_err(CE_WARN, "failed to register provider '%s': invalid "
8744 "provider attributes", name);
8745 return (EINVAL);
8746 }
8747
8748 if (priv & ~DTRACE_PRIV_ALL) {
8749 cmn_err(CE_WARN, "failed to register provider '%s': invalid "
8750 "privilege attributes", name);
8751 return (EINVAL);
8752 }
8753
8754 if ((priv & DTRACE_PRIV_KERNEL) &&
8755 (priv & (DTRACE_PRIV_USER | DTRACE_PRIV_OWNER)) &&
8756 pops->dtps_usermode == NULL) {
8757 cmn_err(CE_WARN, "failed to register provider '%s': need "
8758 "dtps_usermode() op for given privilege attributes", name);
8759 return (EINVAL);
8760 }
8761
8762 provider = kmem_zalloc(sizeof (dtrace_provider_t), KM_SLEEP);
8763 provider->dtpv_name = kmem_alloc(strlen(name) + 1, KM_SLEEP);
8764 (void) strcpy(provider->dtpv_name, name);
8765
8766 provider->dtpv_attr = *pap;
8767 provider->dtpv_priv.dtpp_flags = priv;
8768 if (cr != NULL) {
8769 provider->dtpv_priv.dtpp_uid = crgetuid(cr);
8770 provider->dtpv_priv.dtpp_zoneid = crgetzoneid(cr);
8771 }
8772 provider->dtpv_pops = *pops;
8773
8774 if (pops->dtps_provide == NULL) {
8775 ASSERT(pops->dtps_provide_module != NULL);
8776 provider->dtpv_pops.dtps_provide =
8777 (void (*)(void *, dtrace_probedesc_t *))dtrace_nullop;
8778 }
8779
8780 if (pops->dtps_provide_module == NULL) {
8781 ASSERT(pops->dtps_provide != NULL);
8782 provider->dtpv_pops.dtps_provide_module =
8783 (void (*)(void *, modctl_t *))dtrace_nullop;
8784 }
8785
8786 if (pops->dtps_suspend == NULL) {
8787 ASSERT(pops->dtps_resume == NULL);
8788 provider->dtpv_pops.dtps_suspend =
8789 (void (*)(void *, dtrace_id_t, void *))dtrace_nullop;
8790 provider->dtpv_pops.dtps_resume =
8791 (void (*)(void *, dtrace_id_t, void *))dtrace_nullop;
8792 }
8793
8794 provider->dtpv_arg = arg;
8795 *idp = (dtrace_provider_id_t)provider;
8796
8797 if (pops == &dtrace_provider_ops) {
8798 ASSERT(MUTEX_HELD(&dtrace_provider_lock));
8799 ASSERT(MUTEX_HELD(&dtrace_lock));
8800 ASSERT(dtrace_anon.dta_enabling == NULL);
8801
8802 /*
8803 * We make sure that the DTrace provider is at the head of
8804 * the provider chain.
8805 */
8806 provider->dtpv_next = dtrace_provider;
8807 dtrace_provider = provider;
8808 return (0);
8809 }
8810
8811 mutex_enter(&dtrace_provider_lock);
8812 mutex_enter(&dtrace_lock);
8813
8814 /*
8815 * If there is at least one provider registered, we'll add this
8816 * provider after the first provider.
8817 */
8818 if (dtrace_provider != NULL) {
8819 provider->dtpv_next = dtrace_provider->dtpv_next;
8820 dtrace_provider->dtpv_next = provider;
8821 } else {
8822 dtrace_provider = provider;
8823 }
8824
8825 if (dtrace_retained != NULL) {
8826 dtrace_enabling_provide(provider);
8827
8828 /*
8829 * Now we need to call dtrace_enabling_matchall() -- which
8830 * will acquire cpu_lock and dtrace_lock. We therefore need
8831 * to drop all of our locks before calling into it...
8832 */
8833 mutex_exit(&dtrace_lock);
8834 mutex_exit(&dtrace_provider_lock);
8835 dtrace_enabling_matchall();
8836
8837 return (0);
8838 }
8839
8840 mutex_exit(&dtrace_lock);
8841 mutex_exit(&dtrace_provider_lock);
8842
8843 return (0);
8844 }
8845
8846 /*
8847 * Unregister the specified provider from the DTrace framework. This should
8848 * generally be called by DTrace providers in their detach(9E) entry point.
8849 */
8850 int
8851 dtrace_unregister(dtrace_provider_id_t id)
8852 {
8853 dtrace_provider_t *old = (dtrace_provider_t *)id;
8854 dtrace_provider_t *prev = NULL;
8855 int i, self = 0, noreap = 0;
8856 dtrace_probe_t *probe, *first = NULL;
8857
8858 if (old->dtpv_pops.dtps_enable ==
8859 (void (*)(void *, dtrace_id_t, void *))dtrace_nullop) {
8860 /*
8861 * If DTrace itself is the provider, we're called with locks
8862 * already held.
8863 */
8864 ASSERT(old == dtrace_provider);
8865 #ifdef illumos
8866 ASSERT(dtrace_devi != NULL);
8867 #endif
8868 ASSERT(MUTEX_HELD(&dtrace_provider_lock));
8869 ASSERT(MUTEX_HELD(&dtrace_lock));
8870 self = 1;
8871
8872 if (dtrace_provider->dtpv_next != NULL) {
8873 /*
8874 * There's another provider here; return failure.
8875 */
8876 return (EBUSY);
8877 }
8878 } else {
8879 mutex_enter(&dtrace_provider_lock);
8880 #ifdef illumos
8881 mutex_enter(&mod_lock);
8882 #endif
8883 mutex_enter(&dtrace_lock);
8884 }
8885
8886 /*
8887 * If anyone has /dev/dtrace open, or if there are anonymous enabled
8888 * probes, we refuse to let providers slither away, unless this
8889 * provider has already been explicitly invalidated.
8890 */
8891 if (!old->dtpv_defunct &&
8892 (dtrace_opens || (dtrace_anon.dta_state != NULL &&
8893 dtrace_anon.dta_state->dts_necbs > 0))) {
8894 if (!self) {
8895 mutex_exit(&dtrace_lock);
8896 #ifdef illumos
8897 mutex_exit(&mod_lock);
8898 #endif
8899 mutex_exit(&dtrace_provider_lock);
8900 }
8901 return (EBUSY);
8902 }
8903
8904 /*
8905 * Attempt to destroy the probes associated with this provider.
8906 */
8907 for (i = 0; i < dtrace_nprobes; i++) {
8908 if ((probe = dtrace_probes[i]) == NULL)
8909 continue;
8910
8911 if (probe->dtpr_provider != old)
8912 continue;
8913
8914 if (probe->dtpr_ecb == NULL)
8915 continue;
8916
8917 /*
8918 * If we are trying to unregister a defunct provider, and the
8919 * provider was made defunct within the interval dictated by
8920 * dtrace_unregister_defunct_reap, we'll (asynchronously)
8921 * attempt to reap our enablings. To denote that the provider
8922 * should reattempt to unregister itself at some point in the
8923 * future, we will return a differentiable error code (EAGAIN
8924 * instead of EBUSY) in this case.
8925 */
8926 if (dtrace_gethrtime() - old->dtpv_defunct >
8927 dtrace_unregister_defunct_reap)
8928 noreap = 1;
8929
8930 if (!self) {
8931 mutex_exit(&dtrace_lock);
8932 #ifdef illumos
8933 mutex_exit(&mod_lock);
8934 #endif
8935 mutex_exit(&dtrace_provider_lock);
8936 }
8937
8938 if (noreap)
8939 return (EBUSY);
8940
8941 (void) taskq_dispatch(dtrace_taskq,
8942 (task_func_t *)dtrace_enabling_reap, NULL, TQ_SLEEP);
8943
8944 return (EAGAIN);
8945 }
8946
8947 /*
8948 * All of the probes for this provider are disabled; we can safely
8949 * remove all of them from their hash chains and from the probe array.
8950 */
8951 for (i = 0; i < dtrace_nprobes; i++) {
8952 if ((probe = dtrace_probes[i]) == NULL)
8953 continue;
8954
8955 if (probe->dtpr_provider != old)
8956 continue;
8957
8958 dtrace_probes[i] = NULL;
8959
8960 dtrace_hash_remove(dtrace_bymod, probe);
8961 dtrace_hash_remove(dtrace_byfunc, probe);
8962 dtrace_hash_remove(dtrace_byname, probe);
8963
8964 if (first == NULL) {
8965 first = probe;
8966 probe->dtpr_nextmod = NULL;
8967 } else {
8968 probe->dtpr_nextmod = first;
8969 first = probe;
8970 }
8971 }
8972
8973 /*
8974 * The provider's probes have been removed from the hash chains and
8975 * from the probe array. Now issue a dtrace_sync() to be sure that
8976 * everyone has cleared out from any probe array processing.
8977 */
8978 dtrace_sync();
8979
8980 for (probe = first; probe != NULL; probe = first) {
8981 first = probe->dtpr_nextmod;
8982
8983 old->dtpv_pops.dtps_destroy(old->dtpv_arg, probe->dtpr_id,
8984 probe->dtpr_arg);
8985 kmem_free(probe->dtpr_mod, strlen(probe->dtpr_mod) + 1);
8986 kmem_free(probe->dtpr_func, strlen(probe->dtpr_func) + 1);
8987 kmem_free(probe->dtpr_name, strlen(probe->dtpr_name) + 1);
8988 #ifdef illumos
8989 vmem_free(dtrace_arena, (void *)(uintptr_t)(probe->dtpr_id), 1);
8990 #else
8991 free_unr(dtrace_arena, probe->dtpr_id);
8992 #endif
8993 kmem_free(probe, sizeof (dtrace_probe_t));
8994 }
8995
8996 if ((prev = dtrace_provider) == old) {
8997 #ifdef illumos
8998 ASSERT(self || dtrace_devi == NULL);
8999 ASSERT(old->dtpv_next == NULL || dtrace_devi == NULL);
9000 #endif
9001 dtrace_provider = old->dtpv_next;
9002 } else {
9003 while (prev != NULL && prev->dtpv_next != old)
9004 prev = prev->dtpv_next;
9005
9006 if (prev == NULL) {
9007 panic("attempt to unregister non-existent "
9008 "dtrace provider %p\n", (void *)id);
9009 }
9010
9011 prev->dtpv_next = old->dtpv_next;
9012 }
9013
9014 if (!self) {
9015 mutex_exit(&dtrace_lock);
9016 #ifdef illumos
9017 mutex_exit(&mod_lock);
9018 #endif
9019 mutex_exit(&dtrace_provider_lock);
9020 }
9021
9022 kmem_free(old->dtpv_name, strlen(old->dtpv_name) + 1);
9023 kmem_free(old, sizeof (dtrace_provider_t));
9024
9025 return (0);
9026 }
9027
9028 /*
9029 * Invalidate the specified provider. All subsequent probe lookups for the
9030 * specified provider will fail, but its probes will not be removed.
9031 */
9032 void
9033 dtrace_invalidate(dtrace_provider_id_t id)
9034 {
9035 dtrace_provider_t *pvp = (dtrace_provider_t *)id;
9036
9037 ASSERT(pvp->dtpv_pops.dtps_enable !=
9038 (void (*)(void *, dtrace_id_t, void *))dtrace_nullop);
9039
9040 mutex_enter(&dtrace_provider_lock);
9041 mutex_enter(&dtrace_lock);
9042
9043 pvp->dtpv_defunct = dtrace_gethrtime();
9044
9045 mutex_exit(&dtrace_lock);
9046 mutex_exit(&dtrace_provider_lock);
9047 }
9048
9049 /*
9050 * Indicate whether or not DTrace has attached.
9051 */
9052 int
9053 dtrace_attached(void)
9054 {
9055 /*
9056 * dtrace_provider will be non-NULL iff the DTrace driver has
9057 * attached. (It's non-NULL because DTrace is always itself a
9058 * provider.)
9059 */
9060 return (dtrace_provider != NULL);
9061 }
9062
9063 /*
9064 * Remove all the unenabled probes for the given provider. This function is
9065 * not unlike dtrace_unregister(), except that it doesn't remove the provider
9066 * -- just as many of its associated probes as it can.
9067 */
9068 int
9069 dtrace_condense(dtrace_provider_id_t id)
9070 {
9071 dtrace_provider_t *prov = (dtrace_provider_t *)id;
9072 int i;
9073 dtrace_probe_t *probe;
9074
9075 /*
9076 * Make sure this isn't the dtrace provider itself.
9077 */
9078 ASSERT(prov->dtpv_pops.dtps_enable !=
9079 (void (*)(void *, dtrace_id_t, void *))dtrace_nullop);
9080
9081 mutex_enter(&dtrace_provider_lock);
9082 mutex_enter(&dtrace_lock);
9083
9084 /*
9085 * Attempt to destroy the probes associated with this provider.
9086 */
9087 for (i = 0; i < dtrace_nprobes; i++) {
9088 if ((probe = dtrace_probes[i]) == NULL)
9089 continue;
9090
9091 if (probe->dtpr_provider != prov)
9092 continue;
9093
9094 if (probe->dtpr_ecb != NULL)
9095 continue;
9096
9097 dtrace_probes[i] = NULL;
9098
9099 dtrace_hash_remove(dtrace_bymod, probe);
9100 dtrace_hash_remove(dtrace_byfunc, probe);
9101 dtrace_hash_remove(dtrace_byname, probe);
9102
9103 prov->dtpv_pops.dtps_destroy(prov->dtpv_arg, i + 1,
9104 probe->dtpr_arg);
9105 kmem_free(probe->dtpr_mod, strlen(probe->dtpr_mod) + 1);
9106 kmem_free(probe->dtpr_func, strlen(probe->dtpr_func) + 1);
9107 kmem_free(probe->dtpr_name, strlen(probe->dtpr_name) + 1);
9108 kmem_free(probe, sizeof (dtrace_probe_t));
9109 #ifdef illumos
9110 vmem_free(dtrace_arena, (void *)((uintptr_t)i + 1), 1);
9111 #else
9112 free_unr(dtrace_arena, i + 1);
9113 #endif
9114 }
9115
9116 mutex_exit(&dtrace_lock);
9117 mutex_exit(&dtrace_provider_lock);
9118
9119 return (0);
9120 }
9121
9122 /*
9123 * DTrace Probe Management Functions
9124 *
9125 * The functions in this section perform the DTrace probe management,
9126 * including functions to create probes, look-up probes, and call into the
9127 * providers to request that probes be provided. Some of these functions are
9128 * in the Provider-to-Framework API; these functions can be identified by the
9129 * fact that they are not declared "static".
9130 */
9131
9132 /*
9133 * Create a probe with the specified module name, function name, and name.
9134 */
9135 dtrace_id_t
9136 dtrace_probe_create(dtrace_provider_id_t prov, const char *mod,
9137 const char *func, const char *name, int aframes, void *arg)
9138 {
9139 dtrace_probe_t *probe, **probes;
9140 dtrace_provider_t *provider = (dtrace_provider_t *)prov;
9141 dtrace_id_t id;
9142
9143 if (provider == dtrace_provider) {
9144 ASSERT(MUTEX_HELD(&dtrace_lock));
9145 } else {
9146 mutex_enter(&dtrace_lock);
9147 }
9148
9149 #ifdef illumos
9150 id = (dtrace_id_t)(uintptr_t)vmem_alloc(dtrace_arena, 1,
9151 VM_BESTFIT | VM_SLEEP);
9152 #else
9153 id = alloc_unr(dtrace_arena);
9154 #endif
9155 probe = kmem_zalloc(sizeof (dtrace_probe_t), KM_SLEEP);
9156
9157 probe->dtpr_id = id;
9158 probe->dtpr_gen = dtrace_probegen++;
9159 probe->dtpr_mod = dtrace_strdup(mod);
9160 probe->dtpr_func = dtrace_strdup(func);
9161 probe->dtpr_name = dtrace_strdup(name);
9162 probe->dtpr_arg = arg;
9163 probe->dtpr_aframes = aframes;
9164 probe->dtpr_provider = provider;
9165
9166 dtrace_hash_add(dtrace_bymod, probe);
9167 dtrace_hash_add(dtrace_byfunc, probe);
9168 dtrace_hash_add(dtrace_byname, probe);
9169
9170 if (id - 1 >= dtrace_nprobes) {
9171 size_t osize = dtrace_nprobes * sizeof (dtrace_probe_t *);
9172 size_t nsize = osize << 1;
9173
9174 if (nsize == 0) {
9175 ASSERT(osize == 0);
9176 ASSERT(dtrace_probes == NULL);
9177 nsize = sizeof (dtrace_probe_t *);
9178 }
9179
9180 probes = kmem_zalloc(nsize, KM_SLEEP);
9181
9182 if (dtrace_probes == NULL) {
9183 ASSERT(osize == 0);
9184 dtrace_probes = probes;
9185 dtrace_nprobes = 1;
9186 } else {
9187 dtrace_probe_t **oprobes = dtrace_probes;
9188
9189 bcopy(oprobes, probes, osize);
9190 dtrace_membar_producer();
9191 dtrace_probes = probes;
9192
9193 dtrace_sync();
9194
9195 /*
9196 * All CPUs are now seeing the new probes array; we can
9197 * safely free the old array.
9198 */
9199 kmem_free(oprobes, osize);
9200 dtrace_nprobes <<= 1;
9201 }
9202
9203 ASSERT(id - 1 < dtrace_nprobes);
9204 }
9205
9206 ASSERT(dtrace_probes[id - 1] == NULL);
9207 dtrace_probes[id - 1] = probe;
9208
9209 if (provider != dtrace_provider)
9210 mutex_exit(&dtrace_lock);
9211
9212 return (id);
9213 }
9214
9215 static dtrace_probe_t *
9216 dtrace_probe_lookup_id(dtrace_id_t id)
9217 {
9218 ASSERT(MUTEX_HELD(&dtrace_lock));
9219
9220 if (id == 0 || id > dtrace_nprobes)
9221 return (NULL);
9222
9223 return (dtrace_probes[id - 1]);
9224 }
9225
9226 static int
9227 dtrace_probe_lookup_match(dtrace_probe_t *probe, void *arg)
9228 {
9229 *((dtrace_id_t *)arg) = probe->dtpr_id;
9230
9231 return (DTRACE_MATCH_DONE);
9232 }
9233
9234 /*
9235 * Look up a probe based on provider and one or more of module name, function
9236 * name and probe name.
9237 */
9238 dtrace_id_t
9239 dtrace_probe_lookup(dtrace_provider_id_t prid, char *mod,
9240 char *func, char *name)
9241 {
9242 dtrace_probekey_t pkey;
9243 dtrace_id_t id;
9244 int match;
9245
9246 pkey.dtpk_prov = ((dtrace_provider_t *)prid)->dtpv_name;
9247 pkey.dtpk_pmatch = &dtrace_match_string;
9248 pkey.dtpk_mod = mod;
9249 pkey.dtpk_mmatch = mod ? &dtrace_match_string : &dtrace_match_nul;
9250 pkey.dtpk_func = func;
9251 pkey.dtpk_fmatch = func ? &dtrace_match_string : &dtrace_match_nul;
9252 pkey.dtpk_name = name;
9253 pkey.dtpk_nmatch = name ? &dtrace_match_string : &dtrace_match_nul;
9254 pkey.dtpk_id = DTRACE_IDNONE;
9255
9256 mutex_enter(&dtrace_lock);
9257 match = dtrace_match(&pkey, DTRACE_PRIV_ALL, 0, 0,
9258 dtrace_probe_lookup_match, &id);
9259 mutex_exit(&dtrace_lock);
9260
9261 ASSERT(match == 1 || match == 0);
9262 return (match ? id : 0);
9263 }
9264
9265 /*
9266 * Returns the probe argument associated with the specified probe.
9267 */
9268 void *
9269 dtrace_probe_arg(dtrace_provider_id_t id, dtrace_id_t pid)
9270 {
9271 dtrace_probe_t *probe;
9272 void *rval = NULL;
9273
9274 mutex_enter(&dtrace_lock);
9275
9276 if ((probe = dtrace_probe_lookup_id(pid)) != NULL &&
9277 probe->dtpr_provider == (dtrace_provider_t *)id)
9278 rval = probe->dtpr_arg;
9279
9280 mutex_exit(&dtrace_lock);
9281
9282 return (rval);
9283 }
9284
9285 /*
9286 * Copy a probe into a probe description.
9287 */
9288 static void
9289 dtrace_probe_description(const dtrace_probe_t *prp, dtrace_probedesc_t *pdp)
9290 {
9291 bzero(pdp, sizeof (dtrace_probedesc_t));
9292 pdp->dtpd_id = prp->dtpr_id;
9293
9294 (void) strncpy(pdp->dtpd_provider,
9295 prp->dtpr_provider->dtpv_name, DTRACE_PROVNAMELEN - 1);
9296
9297 (void) strncpy(pdp->dtpd_mod, prp->dtpr_mod, DTRACE_MODNAMELEN - 1);
9298 (void) strncpy(pdp->dtpd_func, prp->dtpr_func, DTRACE_FUNCNAMELEN - 1);
9299 (void) strncpy(pdp->dtpd_name, prp->dtpr_name, DTRACE_NAMELEN - 1);
9300 }
9301
9302 /*
9303 * Called to indicate that a probe -- or probes -- should be provided by a
9304 * specfied provider. If the specified description is NULL, the provider will
9305 * be told to provide all of its probes. (This is done whenever a new
9306 * consumer comes along, or whenever a retained enabling is to be matched.) If
9307 * the specified description is non-NULL, the provider is given the
9308 * opportunity to dynamically provide the specified probe, allowing providers
9309 * to support the creation of probes on-the-fly. (So-called _autocreated_
9310 * probes.) If the provider is NULL, the operations will be applied to all
9311 * providers; if the provider is non-NULL the operations will only be applied
9312 * to the specified provider. The dtrace_provider_lock must be held, and the
9313 * dtrace_lock must _not_ be held -- the provider's dtps_provide() operation
9314 * will need to grab the dtrace_lock when it reenters the framework through
9315 * dtrace_probe_lookup(), dtrace_probe_create(), etc.
9316 */
9317 static void
9318 dtrace_probe_provide(dtrace_probedesc_t *desc, dtrace_provider_t *prv)
9319 {
9320 #ifdef illumos
9321 modctl_t *ctl;
9322 #endif
9323 int all = 0;
9324
9325 ASSERT(MUTEX_HELD(&dtrace_provider_lock));
9326
9327 if (prv == NULL) {
9328 all = 1;
9329 prv = dtrace_provider;
9330 }
9331
9332 do {
9333 /*
9334 * First, call the blanket provide operation.
9335 */
9336 prv->dtpv_pops.dtps_provide(prv->dtpv_arg, desc);
9337
9338 #ifdef illumos
9339 /*
9340 * Now call the per-module provide operation. We will grab
9341 * mod_lock to prevent the list from being modified. Note
9342 * that this also prevents the mod_busy bits from changing.
9343 * (mod_busy can only be changed with mod_lock held.)
9344 */
9345 mutex_enter(&mod_lock);
9346
9347 ctl = &modules;
9348 do {
9349 if (ctl->mod_busy || ctl->mod_mp == NULL)
9350 continue;
9351
9352 prv->dtpv_pops.dtps_provide_module(prv->dtpv_arg, ctl);
9353
9354 } while ((ctl = ctl->mod_next) != &modules);
9355
9356 mutex_exit(&mod_lock);
9357 #endif
9358 } while (all && (prv = prv->dtpv_next) != NULL);
9359 }
9360
9361 #ifdef illumos
9362 /*
9363 * Iterate over each probe, and call the Framework-to-Provider API function
9364 * denoted by offs.
9365 */
9366 static void
9367 dtrace_probe_foreach(uintptr_t offs)
9368 {
9369 dtrace_provider_t *prov;
9370 void (*func)(void *, dtrace_id_t, void *);
9371 dtrace_probe_t *probe;
9372 dtrace_icookie_t cookie;
9373 int i;
9374
9375 /*
9376 * We disable interrupts to walk through the probe array. This is
9377 * safe -- the dtrace_sync() in dtrace_unregister() assures that we
9378 * won't see stale data.
9379 */
9380 cookie = dtrace_interrupt_disable();
9381
9382 for (i = 0; i < dtrace_nprobes; i++) {
9383 if ((probe = dtrace_probes[i]) == NULL)
9384 continue;
9385
9386 if (probe->dtpr_ecb == NULL) {
9387 /*
9388 * This probe isn't enabled -- don't call the function.
9389 */
9390 continue;
9391 }
9392
9393 prov = probe->dtpr_provider;
9394 func = *((void(**)(void *, dtrace_id_t, void *))
9395 ((uintptr_t)&prov->dtpv_pops + offs));
9396
9397 func(prov->dtpv_arg, i + 1, probe->dtpr_arg);
9398 }
9399
9400 dtrace_interrupt_enable(cookie);
9401 }
9402 #endif
9403
9404 static int
9405 dtrace_probe_enable(dtrace_probedesc_t *desc, dtrace_enabling_t *enab)
9406 {
9407 dtrace_probekey_t pkey;
9408 uint32_t priv;
9409 uid_t uid;
9410 zoneid_t zoneid;
9411
9412 ASSERT(MUTEX_HELD(&dtrace_lock));
9413 dtrace_ecb_create_cache = NULL;
9414
9415 if (desc == NULL) {
9416 /*
9417 * If we're passed a NULL description, we're being asked to
9418 * create an ECB with a NULL probe.
9419 */
9420 (void) dtrace_ecb_create_enable(NULL, enab);
9421 return (0);
9422 }
9423
9424 dtrace_probekey(desc, &pkey);
9425 dtrace_cred2priv(enab->dten_vstate->dtvs_state->dts_cred.dcr_cred,
9426 &priv, &uid, &zoneid);
9427
9428 return (dtrace_match(&pkey, priv, uid, zoneid, dtrace_ecb_create_enable,
9429 enab));
9430 }
9431
9432 /*
9433 * DTrace Helper Provider Functions
9434 */
9435 static void
9436 dtrace_dofattr2attr(dtrace_attribute_t *attr, const dof_attr_t dofattr)
9437 {
9438 attr->dtat_name = DOF_ATTR_NAME(dofattr);
9439 attr->dtat_data = DOF_ATTR_DATA(dofattr);
9440 attr->dtat_class = DOF_ATTR_CLASS(dofattr);
9441 }
9442
9443 static void
9444 dtrace_dofprov2hprov(dtrace_helper_provdesc_t *hprov,
9445 const dof_provider_t *dofprov, char *strtab)
9446 {
9447 hprov->dthpv_provname = strtab + dofprov->dofpv_name;
9448 dtrace_dofattr2attr(&hprov->dthpv_pattr.dtpa_provider,
9449 dofprov->dofpv_provattr);
9450 dtrace_dofattr2attr(&hprov->dthpv_pattr.dtpa_mod,
9451 dofprov->dofpv_modattr);
9452 dtrace_dofattr2attr(&hprov->dthpv_pattr.dtpa_func,
9453 dofprov->dofpv_funcattr);
9454 dtrace_dofattr2attr(&hprov->dthpv_pattr.dtpa_name,
9455 dofprov->dofpv_nameattr);
9456 dtrace_dofattr2attr(&hprov->dthpv_pattr.dtpa_args,
9457 dofprov->dofpv_argsattr);
9458 }
9459
9460 static void
9461 dtrace_helper_provide_one(dof_helper_t *dhp, dof_sec_t *sec, pid_t pid)
9462 {
9463 uintptr_t daddr = (uintptr_t)dhp->dofhp_dof;
9464 dof_hdr_t *dof = (dof_hdr_t *)daddr;
9465 dof_sec_t *str_sec, *prb_sec, *arg_sec, *off_sec, *enoff_sec;
9466 dof_provider_t *provider;
9467 dof_probe_t *probe;
9468 uint32_t *off, *enoff;
9469 uint8_t *arg;
9470 char *strtab;
9471 uint_t i, nprobes;
9472 dtrace_helper_provdesc_t dhpv;
9473 dtrace_helper_probedesc_t dhpb;
9474 dtrace_meta_t *meta = dtrace_meta_pid;
9475 dtrace_mops_t *mops = &meta->dtm_mops;
9476 void *parg;
9477
9478 provider = (dof_provider_t *)(uintptr_t)(daddr + sec->dofs_offset);
9479 str_sec = (dof_sec_t *)(uintptr_t)(daddr + dof->dofh_secoff +
9480 provider->dofpv_strtab * dof->dofh_secsize);
9481 prb_sec = (dof_sec_t *)(uintptr_t)(daddr + dof->dofh_secoff +
9482 provider->dofpv_probes * dof->dofh_secsize);
9483 arg_sec = (dof_sec_t *)(uintptr_t)(daddr + dof->dofh_secoff +
9484 provider->dofpv_prargs * dof->dofh_secsize);
9485 off_sec = (dof_sec_t *)(uintptr_t)(daddr + dof->dofh_secoff +
9486 provider->dofpv_proffs * dof->dofh_secsize);
9487
9488 strtab = (char *)(uintptr_t)(daddr + str_sec->dofs_offset);
9489 off = (uint32_t *)(uintptr_t)(daddr + off_sec->dofs_offset);
9490 arg = (uint8_t *)(uintptr_t)(daddr + arg_sec->dofs_offset);
9491 enoff = NULL;
9492
9493 /*
9494 * See dtrace_helper_provider_validate().
9495 */
9496 if (dof->dofh_ident[DOF_ID_VERSION] != DOF_VERSION_1 &&
9497 provider->dofpv_prenoffs != DOF_SECT_NONE) {
9498 enoff_sec = (dof_sec_t *)(uintptr_t)(daddr + dof->dofh_secoff +
9499 provider->dofpv_prenoffs * dof->dofh_secsize);
9500 enoff = (uint32_t *)(uintptr_t)(daddr + enoff_sec->dofs_offset);
9501 }
9502
9503 nprobes = prb_sec->dofs_size / prb_sec->dofs_entsize;
9504
9505 /*
9506 * Create the provider.
9507 */
9508 dtrace_dofprov2hprov(&dhpv, provider, strtab);
9509
9510 if ((parg = mops->dtms_provide_pid(meta->dtm_arg, &dhpv, pid)) == NULL)
9511 return;
9512
9513 meta->dtm_count++;
9514
9515 /*
9516 * Create the probes.
9517 */
9518 for (i = 0; i < nprobes; i++) {
9519 probe = (dof_probe_t *)(uintptr_t)(daddr +
9520 prb_sec->dofs_offset + i * prb_sec->dofs_entsize);
9521
9522 /* See the check in dtrace_helper_provider_validate(). */
9523 if (strlen(strtab + probe->dofpr_func) >= DTRACE_FUNCNAMELEN)
9524 continue;
9525
9526 dhpb.dthpb_mod = dhp->dofhp_mod;
9527 dhpb.dthpb_func = strtab + probe->dofpr_func;
9528 dhpb.dthpb_name = strtab + probe->dofpr_name;
9529 dhpb.dthpb_base = probe->dofpr_addr;
9530 dhpb.dthpb_offs = off + probe->dofpr_offidx;
9531 dhpb.dthpb_noffs = probe->dofpr_noffs;
9532 if (enoff != NULL) {
9533 dhpb.dthpb_enoffs = enoff + probe->dofpr_enoffidx;
9534 dhpb.dthpb_nenoffs = probe->dofpr_nenoffs;
9535 } else {
9536 dhpb.dthpb_enoffs = NULL;
9537 dhpb.dthpb_nenoffs = 0;
9538 }
9539 dhpb.dthpb_args = arg + probe->dofpr_argidx;
9540 dhpb.dthpb_nargc = probe->dofpr_nargc;
9541 dhpb.dthpb_xargc = probe->dofpr_xargc;
9542 dhpb.dthpb_ntypes = strtab + probe->dofpr_nargv;
9543 dhpb.dthpb_xtypes = strtab + probe->dofpr_xargv;
9544
9545 mops->dtms_create_probe(meta->dtm_arg, parg, &dhpb);
9546 }
9547 }
9548
9549 static void
9550 dtrace_helper_provide(dof_helper_t *dhp, pid_t pid)
9551 {
9552 uintptr_t daddr = (uintptr_t)dhp->dofhp_dof;
9553 dof_hdr_t *dof = (dof_hdr_t *)daddr;
9554 int i;
9555
9556 ASSERT(MUTEX_HELD(&dtrace_meta_lock));
9557
9558 for (i = 0; i < dof->dofh_secnum; i++) {
9559 dof_sec_t *sec = (dof_sec_t *)(uintptr_t)(daddr +
9560 dof->dofh_secoff + i * dof->dofh_secsize);
9561
9562 if (sec->dofs_type != DOF_SECT_PROVIDER)
9563 continue;
9564
9565 dtrace_helper_provide_one(dhp, sec, pid);
9566 }
9567
9568 /*
9569 * We may have just created probes, so we must now rematch against
9570 * any retained enablings. Note that this call will acquire both
9571 * cpu_lock and dtrace_lock; the fact that we are holding
9572 * dtrace_meta_lock now is what defines the ordering with respect to
9573 * these three locks.
9574 */
9575 dtrace_enabling_matchall();
9576 }
9577
9578 static void
9579 dtrace_helper_provider_remove_one(dof_helper_t *dhp, dof_sec_t *sec, pid_t pid)
9580 {
9581 uintptr_t daddr = (uintptr_t)dhp->dofhp_dof;
9582 dof_hdr_t *dof = (dof_hdr_t *)daddr;
9583 dof_sec_t *str_sec;
9584 dof_provider_t *provider;
9585 char *strtab;
9586 dtrace_helper_provdesc_t dhpv;
9587 dtrace_meta_t *meta = dtrace_meta_pid;
9588 dtrace_mops_t *mops = &meta->dtm_mops;
9589
9590 provider = (dof_provider_t *)(uintptr_t)(daddr + sec->dofs_offset);
9591 str_sec = (dof_sec_t *)(uintptr_t)(daddr + dof->dofh_secoff +
9592 provider->dofpv_strtab * dof->dofh_secsize);
9593
9594 strtab = (char *)(uintptr_t)(daddr + str_sec->dofs_offset);
9595
9596 /*
9597 * Create the provider.
9598 */
9599 dtrace_dofprov2hprov(&dhpv, provider, strtab);
9600
9601 mops->dtms_remove_pid(meta->dtm_arg, &dhpv, pid);
9602
9603 meta->dtm_count--;
9604 }
9605
9606 static void
9607 dtrace_helper_provider_remove(dof_helper_t *dhp, pid_t pid)
9608 {
9609 uintptr_t daddr = (uintptr_t)dhp->dofhp_dof;
9610 dof_hdr_t *dof = (dof_hdr_t *)daddr;
9611 int i;
9612
9613 ASSERT(MUTEX_HELD(&dtrace_meta_lock));
9614
9615 for (i = 0; i < dof->dofh_secnum; i++) {
9616 dof_sec_t *sec = (dof_sec_t *)(uintptr_t)(daddr +
9617 dof->dofh_secoff + i * dof->dofh_secsize);
9618
9619 if (sec->dofs_type != DOF_SECT_PROVIDER)
9620 continue;
9621
9622 dtrace_helper_provider_remove_one(dhp, sec, pid);
9623 }
9624 }
9625
9626 /*
9627 * DTrace Meta Provider-to-Framework API Functions
9628 *
9629 * These functions implement the Meta Provider-to-Framework API, as described
9630 * in <sys/dtrace.h>.
9631 */
9632 int
9633 dtrace_meta_register(const char *name, const dtrace_mops_t *mops, void *arg,
9634 dtrace_meta_provider_id_t *idp)
9635 {
9636 dtrace_meta_t *meta;
9637 dtrace_helpers_t *help, *next;
9638 int i;
9639
9640 *idp = DTRACE_METAPROVNONE;
9641
9642 /*
9643 * We strictly don't need the name, but we hold onto it for
9644 * debuggability. All hail error queues!
9645 */
9646 if (name == NULL) {
9647 cmn_err(CE_WARN, "failed to register meta-provider: "
9648 "invalid name");
9649 return (EINVAL);
9650 }
9651
9652 if (mops == NULL ||
9653 mops->dtms_create_probe == NULL ||
9654 mops->dtms_provide_pid == NULL ||
9655 mops->dtms_remove_pid == NULL) {
9656 cmn_err(CE_WARN, "failed to register meta-register %s: "
9657 "invalid ops", name);
9658 return (EINVAL);
9659 }
9660
9661 meta = kmem_zalloc(sizeof (dtrace_meta_t), KM_SLEEP);
9662 meta->dtm_mops = *mops;
9663 meta->dtm_name = kmem_alloc(strlen(name) + 1, KM_SLEEP);
9664 (void) strcpy(meta->dtm_name, name);
9665 meta->dtm_arg = arg;
9666
9667 mutex_enter(&dtrace_meta_lock);
9668 mutex_enter(&dtrace_lock);
9669
9670 if (dtrace_meta_pid != NULL) {
9671 mutex_exit(&dtrace_lock);
9672 mutex_exit(&dtrace_meta_lock);
9673 cmn_err(CE_WARN, "failed to register meta-register %s: "
9674 "user-land meta-provider exists", name);
9675 kmem_free(meta->dtm_name, strlen(meta->dtm_name) + 1);
9676 kmem_free(meta, sizeof (dtrace_meta_t));
9677 return (EINVAL);
9678 }
9679
9680 dtrace_meta_pid = meta;
9681 *idp = (dtrace_meta_provider_id_t)meta;
9682
9683 /*
9684 * If there are providers and probes ready to go, pass them
9685 * off to the new meta provider now.
9686 */
9687
9688 help = dtrace_deferred_pid;
9689 dtrace_deferred_pid = NULL;
9690
9691 mutex_exit(&dtrace_lock);
9692
9693 while (help != NULL) {
9694 for (i = 0; i < help->dthps_nprovs; i++) {
9695 dtrace_helper_provide(&help->dthps_provs[i]->dthp_prov,
9696 help->dthps_pid);
9697 }
9698
9699 next = help->dthps_next;
9700 help->dthps_next = NULL;
9701 help->dthps_prev = NULL;
9702 help->dthps_deferred = 0;
9703 help = next;
9704 }
9705
9706 mutex_exit(&dtrace_meta_lock);
9707
9708 return (0);
9709 }
9710
9711 int
9712 dtrace_meta_unregister(dtrace_meta_provider_id_t id)
9713 {
9714 dtrace_meta_t **pp, *old = (dtrace_meta_t *)id;
9715
9716 mutex_enter(&dtrace_meta_lock);
9717 mutex_enter(&dtrace_lock);
9718
9719 if (old == dtrace_meta_pid) {
9720 pp = &dtrace_meta_pid;
9721 } else {
9722 panic("attempt to unregister non-existent "
9723 "dtrace meta-provider %p\n", (void *)old);
9724 }
9725
9726 if (old->dtm_count != 0) {
9727 mutex_exit(&dtrace_lock);
9728 mutex_exit(&dtrace_meta_lock);
9729 return (EBUSY);
9730 }
9731
9732 *pp = NULL;
9733
9734 mutex_exit(&dtrace_lock);
9735 mutex_exit(&dtrace_meta_lock);
9736
9737 kmem_free(old->dtm_name, strlen(old->dtm_name) + 1);
9738 kmem_free(old, sizeof (dtrace_meta_t));
9739
9740 return (0);
9741 }
9742
9743
9744 /*
9745 * DTrace DIF Object Functions
9746 */
9747 static int
9748 dtrace_difo_err(uint_t pc, const char *format, ...)
9749 {
9750 if (dtrace_err_verbose) {
9751 va_list alist;
9752
9753 (void) uprintf("dtrace DIF object error: [%u]: ", pc);
9754 va_start(alist, format);
9755 (void) vuprintf(format, alist);
9756 va_end(alist);
9757 }
9758
9759 #ifdef DTRACE_ERRDEBUG
9760 dtrace_errdebug(format);
9761 #endif
9762 return (1);
9763 }
9764
9765 /*
9766 * Validate a DTrace DIF object by checking the IR instructions. The following
9767 * rules are currently enforced by dtrace_difo_validate():
9768 *
9769 * 1. Each instruction must have a valid opcode
9770 * 2. Each register, string, variable, or subroutine reference must be valid
9771 * 3. No instruction can modify register %r0 (must be zero)
9772 * 4. All instruction reserved bits must be set to zero
9773 * 5. The last instruction must be a "ret" instruction
9774 * 6. All branch targets must reference a valid instruction _after_ the branch
9775 */
9776 static int
9777 dtrace_difo_validate(dtrace_difo_t *dp, dtrace_vstate_t *vstate, uint_t nregs,
9778 cred_t *cr)
9779 {
9780 int err = 0, i;
9781 int (*efunc)(uint_t pc, const char *, ...) = dtrace_difo_err;
9782 int kcheckload;
9783 uint_t pc;
9784 int maxglobal = -1, maxlocal = -1, maxtlocal = -1;
9785
9786 kcheckload = cr == NULL ||
9787 (vstate->dtvs_state->dts_cred.dcr_visible & DTRACE_CRV_KERNEL) == 0;
9788
9789 dp->dtdo_destructive = 0;
9790
9791 for (pc = 0; pc < dp->dtdo_len && err == 0; pc++) {
9792 dif_instr_t instr = dp->dtdo_buf[pc];
9793
9794 uint_t r1 = DIF_INSTR_R1(instr);
9795 uint_t r2 = DIF_INSTR_R2(instr);
9796 uint_t rd = DIF_INSTR_RD(instr);
9797 uint_t rs = DIF_INSTR_RS(instr);
9798 uint_t label = DIF_INSTR_LABEL(instr);
9799 uint_t v = DIF_INSTR_VAR(instr);
9800 uint_t subr = DIF_INSTR_SUBR(instr);
9801 uint_t type = DIF_INSTR_TYPE(instr);
9802 uint_t op = DIF_INSTR_OP(instr);
9803
9804 switch (op) {
9805 case DIF_OP_OR:
9806 case DIF_OP_XOR:
9807 case DIF_OP_AND:
9808 case DIF_OP_SLL:
9809 case DIF_OP_SRL:
9810 case DIF_OP_SRA:
9811 case DIF_OP_SUB:
9812 case DIF_OP_ADD:
9813 case DIF_OP_MUL:
9814 case DIF_OP_SDIV:
9815 case DIF_OP_UDIV:
9816 case DIF_OP_SREM:
9817 case DIF_OP_UREM:
9818 case DIF_OP_COPYS:
9819 if (r1 >= nregs)
9820 err += efunc(pc, "invalid register %u\n", r1);
9821 if (r2 >= nregs)
9822 err += efunc(pc, "invalid register %u\n", r2);
9823 if (rd >= nregs)
9824 err += efunc(pc, "invalid register %u\n", rd);
9825 if (rd == 0)
9826 err += efunc(pc, "cannot write to %r0\n");
9827 break;
9828 case DIF_OP_NOT:
9829 case DIF_OP_MOV:
9830 case DIF_OP_ALLOCS:
9831 if (r1 >= nregs)
9832 err += efunc(pc, "invalid register %u\n", r1);
9833 if (r2 != 0)
9834 err += efunc(pc, "non-zero reserved bits\n");
9835 if (rd >= nregs)
9836 err += efunc(pc, "invalid register %u\n", rd);
9837 if (rd == 0)
9838 err += efunc(pc, "cannot write to %r0\n");
9839 break;
9840 case DIF_OP_LDSB:
9841 case DIF_OP_LDSH:
9842 case DIF_OP_LDSW:
9843 case DIF_OP_LDUB:
9844 case DIF_OP_LDUH:
9845 case DIF_OP_LDUW:
9846 case DIF_OP_LDX:
9847 if (r1 >= nregs)
9848 err += efunc(pc, "invalid register %u\n", r1);
9849 if (r2 != 0)
9850 err += efunc(pc, "non-zero reserved bits\n");
9851 if (rd >= nregs)
9852 err += efunc(pc, "invalid register %u\n", rd);
9853 if (rd == 0)
9854 err += efunc(pc, "cannot write to %r0\n");
9855 if (kcheckload)
9856 dp->dtdo_buf[pc] = DIF_INSTR_LOAD(op +
9857 DIF_OP_RLDSB - DIF_OP_LDSB, r1, rd);
9858 break;
9859 case DIF_OP_RLDSB:
9860 case DIF_OP_RLDSH:
9861 case DIF_OP_RLDSW:
9862 case DIF_OP_RLDUB:
9863 case DIF_OP_RLDUH:
9864 case DIF_OP_RLDUW:
9865 case DIF_OP_RLDX:
9866 if (r1 >= nregs)
9867 err += efunc(pc, "invalid register %u\n", r1);
9868 if (r2 != 0)
9869 err += efunc(pc, "non-zero reserved bits\n");
9870 if (rd >= nregs)
9871 err += efunc(pc, "invalid register %u\n", rd);
9872 if (rd == 0)
9873 err += efunc(pc, "cannot write to %r0\n");
9874 break;
9875 case DIF_OP_ULDSB:
9876 case DIF_OP_ULDSH:
9877 case DIF_OP_ULDSW:
9878 case DIF_OP_ULDUB:
9879 case DIF_OP_ULDUH:
9880 case DIF_OP_ULDUW:
9881 case DIF_OP_ULDX:
9882 if (r1 >= nregs)
9883 err += efunc(pc, "invalid register %u\n", r1);
9884 if (r2 != 0)
9885 err += efunc(pc, "non-zero reserved bits\n");
9886 if (rd >= nregs)
9887 err += efunc(pc, "invalid register %u\n", rd);
9888 if (rd == 0)
9889 err += efunc(pc, "cannot write to %r0\n");
9890 break;
9891 case DIF_OP_STB:
9892 case DIF_OP_STH:
9893 case DIF_OP_STW:
9894 case DIF_OP_STX:
9895 if (r1 >= nregs)
9896 err += efunc(pc, "invalid register %u\n", r1);
9897 if (r2 != 0)
9898 err += efunc(pc, "non-zero reserved bits\n");
9899 if (rd >= nregs)
9900 err += efunc(pc, "invalid register %u\n", rd);
9901 if (rd == 0)
9902 err += efunc(pc, "cannot write to 0 address\n");
9903 break;
9904 case DIF_OP_CMP:
9905 case DIF_OP_SCMP:
9906 if (r1 >= nregs)
9907 err += efunc(pc, "invalid register %u\n", r1);
9908 if (r2 >= nregs)
9909 err += efunc(pc, "invalid register %u\n", r2);
9910 if (rd != 0)
9911 err += efunc(pc, "non-zero reserved bits\n");
9912 break;
9913 case DIF_OP_TST:
9914 if (r1 >= nregs)
9915 err += efunc(pc, "invalid register %u\n", r1);
9916 if (r2 != 0 || rd != 0)
9917 err += efunc(pc, "non-zero reserved bits\n");
9918 break;
9919 case DIF_OP_BA:
9920 case DIF_OP_BE:
9921 case DIF_OP_BNE:
9922 case DIF_OP_BG:
9923 case DIF_OP_BGU:
9924 case DIF_OP_BGE:
9925 case DIF_OP_BGEU:
9926 case DIF_OP_BL:
9927 case DIF_OP_BLU:
9928 case DIF_OP_BLE:
9929 case DIF_OP_BLEU:
9930 if (label >= dp->dtdo_len) {
9931 err += efunc(pc, "invalid branch target %u\n",
9932 label);
9933 }
9934 if (label <= pc) {
9935 err += efunc(pc, "backward branch to %u\n",
9936 label);
9937 }
9938 break;
9939 case DIF_OP_RET:
9940 if (r1 != 0 || r2 != 0)
9941 err += efunc(pc, "non-zero reserved bits\n");
9942 if (rd >= nregs)
9943 err += efunc(pc, "invalid register %u\n", rd);
9944 break;
9945 case DIF_OP_NOP:
9946 case DIF_OP_POPTS:
9947 case DIF_OP_FLUSHTS:
9948 if (r1 != 0 || r2 != 0 || rd != 0)
9949 err += efunc(pc, "non-zero reserved bits\n");
9950 break;
9951 case DIF_OP_SETX:
9952 if (DIF_INSTR_INTEGER(instr) >= dp->dtdo_intlen) {
9953 err += efunc(pc, "invalid integer ref %u\n",
9954 DIF_INSTR_INTEGER(instr));
9955 }
9956 if (rd >= nregs)
9957 err += efunc(pc, "invalid register %u\n", rd);
9958 if (rd == 0)
9959 err += efunc(pc, "cannot write to %r0\n");
9960 break;
9961 case DIF_OP_SETS:
9962 if (DIF_INSTR_STRING(instr) >= dp->dtdo_strlen) {
9963 err += efunc(pc, "invalid string ref %u\n",
9964 DIF_INSTR_STRING(instr));
9965 }
9966 if (rd >= nregs)
9967 err += efunc(pc, "invalid register %u\n", rd);
9968 if (rd == 0)
9969 err += efunc(pc, "cannot write to %r0\n");
9970 break;
9971 case DIF_OP_LDGA:
9972 case DIF_OP_LDTA:
9973 if (r1 > DIF_VAR_ARRAY_MAX)
9974 err += efunc(pc, "invalid array %u\n", r1);
9975 if (r2 >= nregs)
9976 err += efunc(pc, "invalid register %u\n", r2);
9977 if (rd >= nregs)
9978 err += efunc(pc, "invalid register %u\n", rd);
9979 if (rd == 0)
9980 err += efunc(pc, "cannot write to %r0\n");
9981 break;
9982 case DIF_OP_LDGS:
9983 case DIF_OP_LDTS:
9984 case DIF_OP_LDLS:
9985 case DIF_OP_LDGAA:
9986 case DIF_OP_LDTAA:
9987 if (v < DIF_VAR_OTHER_MIN || v > DIF_VAR_OTHER_MAX)
9988 err += efunc(pc, "invalid variable %u\n", v);
9989 if (rd >= nregs)
9990 err += efunc(pc, "invalid register %u\n", rd);
9991 if (rd == 0)
9992 err += efunc(pc, "cannot write to %r0\n");
9993 break;
9994 case DIF_OP_STGS:
9995 case DIF_OP_STTS:
9996 case DIF_OP_STLS:
9997 case DIF_OP_STGAA:
9998 case DIF_OP_STTAA:
9999 if (v < DIF_VAR_OTHER_UBASE || v > DIF_VAR_OTHER_MAX)
10000 err += efunc(pc, "invalid variable %u\n", v);
10001 if (rs >= nregs)
10002 err += efunc(pc, "invalid register %u\n", rd);
10003 break;
10004 case DIF_OP_CALL:
10005 if (subr > DIF_SUBR_MAX)
10006 err += efunc(pc, "invalid subr %u\n", subr);
10007 if (rd >= nregs)
10008 err += efunc(pc, "invalid register %u\n", rd);
10009 if (rd == 0)
10010 err += efunc(pc, "cannot write to %r0\n");
10011
10012 if (subr == DIF_SUBR_COPYOUT ||
10013 subr == DIF_SUBR_COPYOUTSTR) {
10014 dp->dtdo_destructive = 1;
10015 }
10016
10017 if (subr == DIF_SUBR_GETF) {
10018 #ifdef __FreeBSD__
10019 err += efunc(pc, "getf() not supported");
10020 #else
10021 /*
10022 * If we have a getf() we need to record that
10023 * in our state. Note that our state can be
10024 * NULL if this is a helper -- but in that
10025 * case, the call to getf() is itself illegal,
10026 * and will be caught (slightly later) when
10027 * the helper is validated.
10028 */
10029 if (vstate->dtvs_state != NULL)
10030 vstate->dtvs_state->dts_getf++;
10031 #endif
10032 }
10033
10034 break;
10035 case DIF_OP_PUSHTR:
10036 if (type != DIF_TYPE_STRING && type != DIF_TYPE_CTF)
10037 err += efunc(pc, "invalid ref type %u\n", type);
10038 if (r2 >= nregs)
10039 err += efunc(pc, "invalid register %u\n", r2);
10040 if (rs >= nregs)
10041 err += efunc(pc, "invalid register %u\n", rs);
10042 break;
10043 case DIF_OP_PUSHTV:
10044 if (type != DIF_TYPE_CTF)
10045 err += efunc(pc, "invalid val type %u\n", type);
10046 if (r2 >= nregs)
10047 err += efunc(pc, "invalid register %u\n", r2);
10048 if (rs >= nregs)
10049 err += efunc(pc, "invalid register %u\n", rs);
10050 break;
10051 default:
10052 err += efunc(pc, "invalid opcode %u\n",
10053 DIF_INSTR_OP(instr));
10054 }
10055 }
10056
10057 if (dp->dtdo_len != 0 &&
10058 DIF_INSTR_OP(dp->dtdo_buf[dp->dtdo_len - 1]) != DIF_OP_RET) {
10059 err += efunc(dp->dtdo_len - 1,
10060 "expected 'ret' as last DIF instruction\n");
10061 }
10062
10063 if (!(dp->dtdo_rtype.dtdt_flags & (DIF_TF_BYREF | DIF_TF_BYUREF))) {
10064 /*
10065 * If we're not returning by reference, the size must be either
10066 * 0 or the size of one of the base types.
10067 */
10068 switch (dp->dtdo_rtype.dtdt_size) {
10069 case 0:
10070 case sizeof (uint8_t):
10071 case sizeof (uint16_t):
10072 case sizeof (uint32_t):
10073 case sizeof (uint64_t):
10074 break;
10075
10076 default:
10077 err += efunc(dp->dtdo_len - 1, "bad return size\n");
10078 }
10079 }
10080
10081 for (i = 0; i < dp->dtdo_varlen && err == 0; i++) {
10082 dtrace_difv_t *v = &dp->dtdo_vartab[i], *existing = NULL;
10083 dtrace_diftype_t *vt, *et;
10084 uint_t id, ndx;
10085
10086 if (v->dtdv_scope != DIFV_SCOPE_GLOBAL &&
10087 v->dtdv_scope != DIFV_SCOPE_THREAD &&
10088 v->dtdv_scope != DIFV_SCOPE_LOCAL) {
10089 err += efunc(i, "unrecognized variable scope %d\n",
10090 v->dtdv_scope);
10091 break;
10092 }
10093
10094 if (v->dtdv_kind != DIFV_KIND_ARRAY &&
10095 v->dtdv_kind != DIFV_KIND_SCALAR) {
10096 err += efunc(i, "unrecognized variable type %d\n",
10097 v->dtdv_kind);
10098 break;
10099 }
10100
10101 if ((id = v->dtdv_id) > DIF_VARIABLE_MAX) {
10102 err += efunc(i, "%d exceeds variable id limit\n", id);
10103 break;
10104 }
10105
10106 if (id < DIF_VAR_OTHER_UBASE)
10107 continue;
10108
10109 /*
10110 * For user-defined variables, we need to check that this
10111 * definition is identical to any previous definition that we
10112 * encountered.
10113 */
10114 ndx = id - DIF_VAR_OTHER_UBASE;
10115
10116 switch (v->dtdv_scope) {
10117 case DIFV_SCOPE_GLOBAL:
10118 if (maxglobal == -1 || ndx > maxglobal)
10119 maxglobal = ndx;
10120
10121 if (ndx < vstate->dtvs_nglobals) {
10122 dtrace_statvar_t *svar;
10123
10124 if ((svar = vstate->dtvs_globals[ndx]) != NULL)
10125 existing = &svar->dtsv_var;
10126 }
10127
10128 break;
10129
10130 case DIFV_SCOPE_THREAD:
10131 if (maxtlocal == -1 || ndx > maxtlocal)
10132 maxtlocal = ndx;
10133
10134 if (ndx < vstate->dtvs_ntlocals)
10135 existing = &vstate->dtvs_tlocals[ndx];
10136 break;
10137
10138 case DIFV_SCOPE_LOCAL:
10139 if (maxlocal == -1 || ndx > maxlocal)
10140 maxlocal = ndx;
10141
10142 if (ndx < vstate->dtvs_nlocals) {
10143 dtrace_statvar_t *svar;
10144
10145 if ((svar = vstate->dtvs_locals[ndx]) != NULL)
10146 existing = &svar->dtsv_var;
10147 }
10148
10149 break;
10150 }
10151
10152 vt = &v->dtdv_type;
10153
10154 if (vt->dtdt_flags & DIF_TF_BYREF) {
10155 if (vt->dtdt_size == 0) {
10156 err += efunc(i, "zero-sized variable\n");
10157 break;
10158 }
10159
10160 if ((v->dtdv_scope == DIFV_SCOPE_GLOBAL ||
10161 v->dtdv_scope == DIFV_SCOPE_LOCAL) &&
10162 vt->dtdt_size > dtrace_statvar_maxsize) {
10163 err += efunc(i, "oversized by-ref static\n");
10164 break;
10165 }
10166 }
10167
10168 if (existing == NULL || existing->dtdv_id == 0)
10169 continue;
10170
10171 ASSERT(existing->dtdv_id == v->dtdv_id);
10172 ASSERT(existing->dtdv_scope == v->dtdv_scope);
10173
10174 if (existing->dtdv_kind != v->dtdv_kind)
10175 err += efunc(i, "%d changed variable kind\n", id);
10176
10177 et = &existing->dtdv_type;
10178
10179 if (vt->dtdt_flags != et->dtdt_flags) {
10180 err += efunc(i, "%d changed variable type flags\n", id);
10181 break;
10182 }
10183
10184 if (vt->dtdt_size != 0 && vt->dtdt_size != et->dtdt_size) {
10185 err += efunc(i, "%d changed variable type size\n", id);
10186 break;
10187 }
10188 }
10189
10190 for (pc = 0; pc < dp->dtdo_len && err == 0; pc++) {
10191 dif_instr_t instr = dp->dtdo_buf[pc];
10192
10193 uint_t v = DIF_INSTR_VAR(instr);
10194 uint_t op = DIF_INSTR_OP(instr);
10195
10196 switch (op) {
10197 case DIF_OP_LDGS:
10198 case DIF_OP_LDGAA:
10199 case DIF_OP_STGS:
10200 case DIF_OP_STGAA:
10201 if (v > DIF_VAR_OTHER_UBASE + maxglobal)
10202 err += efunc(pc, "invalid variable %u\n", v);
10203 break;
10204 case DIF_OP_LDTS:
10205 case DIF_OP_LDTAA:
10206 case DIF_OP_STTS:
10207 case DIF_OP_STTAA:
10208 if (v > DIF_VAR_OTHER_UBASE + maxtlocal)
10209 err += efunc(pc, "invalid variable %u\n", v);
10210 break;
10211 case DIF_OP_LDLS:
10212 case DIF_OP_STLS:
10213 if (v > DIF_VAR_OTHER_UBASE + maxlocal)
10214 err += efunc(pc, "invalid variable %u\n", v);
10215 break;
10216 default:
10217 break;
10218 }
10219 }
10220
10221 return (err);
10222 }
10223
10224 /*
10225 * Validate a DTrace DIF object that it is to be used as a helper. Helpers
10226 * are much more constrained than normal DIFOs. Specifically, they may
10227 * not:
10228 *
10229 * 1. Make calls to subroutines other than copyin(), copyinstr() or
10230 * miscellaneous string routines
10231 * 2. Access DTrace variables other than the args[] array, and the
10232 * curthread, pid, ppid, tid, execname, zonename, uid and gid variables.
10233 * 3. Have thread-local variables.
10234 * 4. Have dynamic variables.
10235 */
10236 static int
10237 dtrace_difo_validate_helper(dtrace_difo_t *dp)
10238 {
10239 int (*efunc)(uint_t pc, const char *, ...) = dtrace_difo_err;
10240 int err = 0;
10241 uint_t pc;
10242
10243 for (pc = 0; pc < dp->dtdo_len; pc++) {
10244 dif_instr_t instr = dp->dtdo_buf[pc];
10245
10246 uint_t v = DIF_INSTR_VAR(instr);
10247 uint_t subr = DIF_INSTR_SUBR(instr);
10248 uint_t op = DIF_INSTR_OP(instr);
10249
10250 switch (op) {
10251 case DIF_OP_OR:
10252 case DIF_OP_XOR:
10253 case DIF_OP_AND:
10254 case DIF_OP_SLL:
10255 case DIF_OP_SRL:
10256 case DIF_OP_SRA:
10257 case DIF_OP_SUB:
10258 case DIF_OP_ADD:
10259 case DIF_OP_MUL:
10260 case DIF_OP_SDIV:
10261 case DIF_OP_UDIV:
10262 case DIF_OP_SREM:
10263 case DIF_OP_UREM:
10264 case DIF_OP_COPYS:
10265 case DIF_OP_NOT:
10266 case DIF_OP_MOV:
10267 case DIF_OP_RLDSB:
10268 case DIF_OP_RLDSH:
10269 case DIF_OP_RLDSW:
10270 case DIF_OP_RLDUB:
10271 case DIF_OP_RLDUH:
10272 case DIF_OP_RLDUW:
10273 case DIF_OP_RLDX:
10274 case DIF_OP_ULDSB:
10275 case DIF_OP_ULDSH:
10276 case DIF_OP_ULDSW:
10277 case DIF_OP_ULDUB:
10278 case DIF_OP_ULDUH:
10279 case DIF_OP_ULDUW:
10280 case DIF_OP_ULDX:
10281 case DIF_OP_STB:
10282 case DIF_OP_STH:
10283 case DIF_OP_STW:
10284 case DIF_OP_STX:
10285 case DIF_OP_ALLOCS:
10286 case DIF_OP_CMP:
10287 case DIF_OP_SCMP:
10288 case DIF_OP_TST:
10289 case DIF_OP_BA:
10290 case DIF_OP_BE:
10291 case DIF_OP_BNE:
10292 case DIF_OP_BG:
10293 case DIF_OP_BGU:
10294 case DIF_OP_BGE:
10295 case DIF_OP_BGEU:
10296 case DIF_OP_BL:
10297 case DIF_OP_BLU:
10298 case DIF_OP_BLE:
10299 case DIF_OP_BLEU:
10300 case DIF_OP_RET:
10301 case DIF_OP_NOP:
10302 case DIF_OP_POPTS:
10303 case DIF_OP_FLUSHTS:
10304 case DIF_OP_SETX:
10305 case DIF_OP_SETS:
10306 case DIF_OP_LDGA:
10307 case DIF_OP_LDLS:
10308 case DIF_OP_STGS:
10309 case DIF_OP_STLS:
10310 case DIF_OP_PUSHTR:
10311 case DIF_OP_PUSHTV:
10312 break;
10313
10314 case DIF_OP_LDGS:
10315 if (v >= DIF_VAR_OTHER_UBASE)
10316 break;
10317
10318 if (v >= DIF_VAR_ARG0 && v <= DIF_VAR_ARG9)
10319 break;
10320
10321 if (v == DIF_VAR_CURTHREAD || v == DIF_VAR_PID ||
10322 v == DIF_VAR_PPID || v == DIF_VAR_TID ||
10323 v == DIF_VAR_EXECARGS ||
10324 v == DIF_VAR_EXECNAME || v == DIF_VAR_ZONENAME ||
10325 v == DIF_VAR_UID || v == DIF_VAR_GID)
10326 break;
10327
10328 err += efunc(pc, "illegal variable %u\n", v);
10329 break;
10330
10331 case DIF_OP_LDTA:
10332 case DIF_OP_LDTS:
10333 case DIF_OP_LDGAA:
10334 case DIF_OP_LDTAA:
10335 err += efunc(pc, "illegal dynamic variable load\n");
10336 break;
10337
10338 case DIF_OP_STTS:
10339 case DIF_OP_STGAA:
10340 case DIF_OP_STTAA:
10341 err += efunc(pc, "illegal dynamic variable store\n");
10342 break;
10343
10344 case DIF_OP_CALL:
10345 if (subr == DIF_SUBR_ALLOCA ||
10346 subr == DIF_SUBR_BCOPY ||
10347 subr == DIF_SUBR_COPYIN ||
10348 subr == DIF_SUBR_COPYINTO ||
10349 subr == DIF_SUBR_COPYINSTR ||
10350 subr == DIF_SUBR_INDEX ||
10351 subr == DIF_SUBR_INET_NTOA ||
10352 subr == DIF_SUBR_INET_NTOA6 ||
10353 subr == DIF_SUBR_INET_NTOP ||
10354 subr == DIF_SUBR_JSON ||
10355 subr == DIF_SUBR_LLTOSTR ||
10356 subr == DIF_SUBR_STRTOLL ||
10357 subr == DIF_SUBR_RINDEX ||
10358 subr == DIF_SUBR_STRCHR ||
10359 subr == DIF_SUBR_STRJOIN ||
10360 subr == DIF_SUBR_STRRCHR ||
10361 subr == DIF_SUBR_STRSTR ||
10362 subr == DIF_SUBR_HTONS ||
10363 subr == DIF_SUBR_HTONL ||
10364 subr == DIF_SUBR_HTONLL ||
10365 subr == DIF_SUBR_NTOHS ||
10366 subr == DIF_SUBR_NTOHL ||
10367 subr == DIF_SUBR_NTOHLL ||
10368 subr == DIF_SUBR_MEMREF)
10369 break;
10370 #ifdef __FreeBSD__
10371 if (subr == DIF_SUBR_MEMSTR)
10372 break;
10373 #endif
10374
10375 err += efunc(pc, "invalid subr %u\n", subr);
10376 break;
10377
10378 default:
10379 err += efunc(pc, "invalid opcode %u\n",
10380 DIF_INSTR_OP(instr));
10381 }
10382 }
10383
10384 return (err);
10385 }
10386
10387 /*
10388 * Returns 1 if the expression in the DIF object can be cached on a per-thread
10389 * basis; 0 if not.
10390 */
10391 static int
10392 dtrace_difo_cacheable(dtrace_difo_t *dp)
10393 {
10394 int i;
10395
10396 if (dp == NULL)
10397 return (0);
10398
10399 for (i = 0; i < dp->dtdo_varlen; i++) {
10400 dtrace_difv_t *v = &dp->dtdo_vartab[i];
10401
10402 if (v->dtdv_scope != DIFV_SCOPE_GLOBAL)
10403 continue;
10404
10405 switch (v->dtdv_id) {
10406 case DIF_VAR_CURTHREAD:
10407 case DIF_VAR_PID:
10408 case DIF_VAR_TID:
10409 case DIF_VAR_EXECARGS:
10410 case DIF_VAR_EXECNAME:
10411 case DIF_VAR_ZONENAME:
10412 break;
10413
10414 default:
10415 return (0);
10416 }
10417 }
10418
10419 /*
10420 * This DIF object may be cacheable. Now we need to look for any
10421 * array loading instructions, any memory loading instructions, or
10422 * any stores to thread-local variables.
10423 */
10424 for (i = 0; i < dp->dtdo_len; i++) {
10425 uint_t op = DIF_INSTR_OP(dp->dtdo_buf[i]);
10426
10427 if ((op >= DIF_OP_LDSB && op <= DIF_OP_LDX) ||
10428 (op >= DIF_OP_ULDSB && op <= DIF_OP_ULDX) ||
10429 (op >= DIF_OP_RLDSB && op <= DIF_OP_RLDX) ||
10430 op == DIF_OP_LDGA || op == DIF_OP_STTS)
10431 return (0);
10432 }
10433
10434 return (1);
10435 }
10436
10437 static void
10438 dtrace_difo_hold(dtrace_difo_t *dp)
10439 {
10440 int i;
10441
10442 ASSERT(MUTEX_HELD(&dtrace_lock));
10443
10444 dp->dtdo_refcnt++;
10445 ASSERT(dp->dtdo_refcnt != 0);
10446
10447 /*
10448 * We need to check this DIF object for references to the variable
10449 * DIF_VAR_VTIMESTAMP.
10450 */
10451 for (i = 0; i < dp->dtdo_varlen; i++) {
10452 dtrace_difv_t *v = &dp->dtdo_vartab[i];
10453
10454 if (v->dtdv_id != DIF_VAR_VTIMESTAMP)
10455 continue;
10456
10457 if (dtrace_vtime_references++ == 0)
10458 dtrace_vtime_enable();
10459 }
10460 }
10461
10462 /*
10463 * This routine calculates the dynamic variable chunksize for a given DIF
10464 * object. The calculation is not fool-proof, and can probably be tricked by
10465 * malicious DIF -- but it works for all compiler-generated DIF. Because this
10466 * calculation is likely imperfect, dtrace_dynvar() is able to gracefully fail
10467 * if a dynamic variable size exceeds the chunksize.
10468 */
10469 static void
10470 dtrace_difo_chunksize(dtrace_difo_t *dp, dtrace_vstate_t *vstate)
10471 {
10472 uint64_t sval = 0;
10473 dtrace_key_t tupregs[DIF_DTR_NREGS + 2]; /* +2 for thread and id */
10474 const dif_instr_t *text = dp->dtdo_buf;
10475 uint_t pc, srd = 0;
10476 uint_t ttop = 0;
10477 size_t size, ksize;
10478 uint_t id, i;
10479
10480 for (pc = 0; pc < dp->dtdo_len; pc++) {
10481 dif_instr_t instr = text[pc];
10482 uint_t op = DIF_INSTR_OP(instr);
10483 uint_t rd = DIF_INSTR_RD(instr);
10484 uint_t r1 = DIF_INSTR_R1(instr);
10485 uint_t nkeys = 0;
10486 uchar_t scope = 0;
10487
10488 dtrace_key_t *key = tupregs;
10489
10490 switch (op) {
10491 case DIF_OP_SETX:
10492 sval = dp->dtdo_inttab[DIF_INSTR_INTEGER(instr)];
10493 srd = rd;
10494 continue;
10495
10496 case DIF_OP_STTS:
10497 key = &tupregs[DIF_DTR_NREGS];
10498 key[0].dttk_size = 0;
10499 key[1].dttk_size = 0;
10500 nkeys = 2;
10501 scope = DIFV_SCOPE_THREAD;
10502 break;
10503
10504 case DIF_OP_STGAA:
10505 case DIF_OP_STTAA:
10506 nkeys = ttop;
10507
10508 if (DIF_INSTR_OP(instr) == DIF_OP_STTAA)
10509 key[nkeys++].dttk_size = 0;
10510
10511 key[nkeys++].dttk_size = 0;
10512
10513 if (op == DIF_OP_STTAA) {
10514 scope = DIFV_SCOPE_THREAD;
10515 } else {
10516 scope = DIFV_SCOPE_GLOBAL;
10517 }
10518
10519 break;
10520
10521 case DIF_OP_PUSHTR:
10522 if (ttop == DIF_DTR_NREGS)
10523 return;
10524
10525 if ((srd == 0 || sval == 0) && r1 == DIF_TYPE_STRING) {
10526 /*
10527 * If the register for the size of the "pushtr"
10528 * is %r0 (or the value is 0) and the type is
10529 * a string, we'll use the system-wide default
10530 * string size.
10531 */
10532 tupregs[ttop++].dttk_size =
10533 dtrace_strsize_default;
10534 } else {
10535 if (srd == 0)
10536 return;
10537
10538 if (sval > LONG_MAX)
10539 return;
10540
10541 tupregs[ttop++].dttk_size = sval;
10542 }
10543
10544 break;
10545
10546 case DIF_OP_PUSHTV:
10547 if (ttop == DIF_DTR_NREGS)
10548 return;
10549
10550 tupregs[ttop++].dttk_size = 0;
10551 break;
10552
10553 case DIF_OP_FLUSHTS:
10554 ttop = 0;
10555 break;
10556
10557 case DIF_OP_POPTS:
10558 if (ttop != 0)
10559 ttop--;
10560 break;
10561 }
10562
10563 sval = 0;
10564 srd = 0;
10565
10566 if (nkeys == 0)
10567 continue;
10568
10569 /*
10570 * We have a dynamic variable allocation; calculate its size.
10571 */
10572 for (ksize = 0, i = 0; i < nkeys; i++)
10573 ksize += P2ROUNDUP(key[i].dttk_size, sizeof (uint64_t));
10574
10575 size = sizeof (dtrace_dynvar_t);
10576 size += sizeof (dtrace_key_t) * (nkeys - 1);
10577 size += ksize;
10578
10579 /*
10580 * Now we need to determine the size of the stored data.
10581 */
10582 id = DIF_INSTR_VAR(instr);
10583
10584 for (i = 0; i < dp->dtdo_varlen; i++) {
10585 dtrace_difv_t *v = &dp->dtdo_vartab[i];
10586
10587 if (v->dtdv_id == id && v->dtdv_scope == scope) {
10588 size += v->dtdv_type.dtdt_size;
10589 break;
10590 }
10591 }
10592
10593 if (i == dp->dtdo_varlen)
10594 return;
10595
10596 /*
10597 * We have the size. If this is larger than the chunk size
10598 * for our dynamic variable state, reset the chunk size.
10599 */
10600 size = P2ROUNDUP(size, sizeof (uint64_t));
10601
10602 /*
10603 * Before setting the chunk size, check that we're not going
10604 * to set it to a negative value...
10605 */
10606 if (size > LONG_MAX)
10607 return;
10608
10609 /*
10610 * ...and make certain that we didn't badly overflow.
10611 */
10612 if (size < ksize || size < sizeof (dtrace_dynvar_t))
10613 return;
10614
10615 if (size > vstate->dtvs_dynvars.dtds_chunksize)
10616 vstate->dtvs_dynvars.dtds_chunksize = size;
10617 }
10618 }
10619
10620 static void
10621 dtrace_difo_init(dtrace_difo_t *dp, dtrace_vstate_t *vstate)
10622 {
10623 int i, oldsvars, osz, nsz, otlocals, ntlocals;
10624 uint_t id;
10625
10626 ASSERT(MUTEX_HELD(&dtrace_lock));
10627 ASSERT(dp->dtdo_buf != NULL && dp->dtdo_len != 0);
10628
10629 for (i = 0; i < dp->dtdo_varlen; i++) {
10630 dtrace_difv_t *v = &dp->dtdo_vartab[i];
10631 dtrace_statvar_t *svar, ***svarp = NULL;
10632 size_t dsize = 0;
10633 uint8_t scope = v->dtdv_scope;
10634 int *np = NULL;
10635
10636 if ((id = v->dtdv_id) < DIF_VAR_OTHER_UBASE)
10637 continue;
10638
10639 id -= DIF_VAR_OTHER_UBASE;
10640
10641 switch (scope) {
10642 case DIFV_SCOPE_THREAD:
10643 while (id >= (otlocals = vstate->dtvs_ntlocals)) {
10644 dtrace_difv_t *tlocals;
10645
10646 if ((ntlocals = (otlocals << 1)) == 0)
10647 ntlocals = 1;
10648
10649 osz = otlocals * sizeof (dtrace_difv_t);
10650 nsz = ntlocals * sizeof (dtrace_difv_t);
10651
10652 tlocals = kmem_zalloc(nsz, KM_SLEEP);
10653
10654 if (osz != 0) {
10655 bcopy(vstate->dtvs_tlocals,
10656 tlocals, osz);
10657 kmem_free(vstate->dtvs_tlocals, osz);
10658 }
10659
10660 vstate->dtvs_tlocals = tlocals;
10661 vstate->dtvs_ntlocals = ntlocals;
10662 }
10663
10664 vstate->dtvs_tlocals[id] = *v;
10665 continue;
10666
10667 case DIFV_SCOPE_LOCAL:
10668 np = &vstate->dtvs_nlocals;
10669 svarp = &vstate->dtvs_locals;
10670
10671 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF)
10672 dsize = NCPU * (v->dtdv_type.dtdt_size +
10673 sizeof (uint64_t));
10674 else
10675 dsize = NCPU * sizeof (uint64_t);
10676
10677 break;
10678
10679 case DIFV_SCOPE_GLOBAL:
10680 np = &vstate->dtvs_nglobals;
10681 svarp = &vstate->dtvs_globals;
10682
10683 if (v->dtdv_type.dtdt_flags & DIF_TF_BYREF)
10684 dsize = v->dtdv_type.dtdt_size +
10685 sizeof (uint64_t);
10686
10687 break;
10688
10689 default:
10690 ASSERT(0);
10691 }
10692
10693 while (id >= (oldsvars = *np)) {
10694 dtrace_statvar_t **statics;
10695 int newsvars, oldsize, newsize;
10696
10697 if ((newsvars = (oldsvars << 1)) == 0)
10698 newsvars = 1;
10699
10700 oldsize = oldsvars * sizeof (dtrace_statvar_t *);
10701 newsize = newsvars * sizeof (dtrace_statvar_t *);
10702
10703 statics = kmem_zalloc(newsize, KM_SLEEP);
10704
10705 if (oldsize != 0) {
10706 bcopy(*svarp, statics, oldsize);
10707 kmem_free(*svarp, oldsize);
10708 }
10709
10710 *svarp = statics;
10711 *np = newsvars;
10712 }
10713
10714 if ((svar = (*svarp)[id]) == NULL) {
10715 svar = kmem_zalloc(sizeof (dtrace_statvar_t), KM_SLEEP);
10716 svar->dtsv_var = *v;
10717
10718 if ((svar->dtsv_size = dsize) != 0) {
10719 svar->dtsv_data = (uint64_t)(uintptr_t)
10720 kmem_zalloc(dsize, KM_SLEEP);
10721 }
10722
10723 (*svarp)[id] = svar;
10724 }
10725
10726 svar->dtsv_refcnt++;
10727 }
10728
10729 dtrace_difo_chunksize(dp, vstate);
10730 dtrace_difo_hold(dp);
10731 }
10732
10733 static dtrace_difo_t *
10734 dtrace_difo_duplicate(dtrace_difo_t *dp, dtrace_vstate_t *vstate)
10735 {
10736 dtrace_difo_t *new;
10737 size_t sz;
10738
10739 ASSERT(dp->dtdo_buf != NULL);
10740 ASSERT(dp->dtdo_refcnt != 0);
10741
10742 new = kmem_zalloc(sizeof (dtrace_difo_t), KM_SLEEP);
10743
10744 ASSERT(dp->dtdo_buf != NULL);
10745 sz = dp->dtdo_len * sizeof (dif_instr_t);
10746 new->dtdo_buf = kmem_alloc(sz, KM_SLEEP);
10747 bcopy(dp->dtdo_buf, new->dtdo_buf, sz);
10748 new->dtdo_len = dp->dtdo_len;
10749
10750 if (dp->dtdo_strtab != NULL) {
10751 ASSERT(dp->dtdo_strlen != 0);
10752 new->dtdo_strtab = kmem_alloc(dp->dtdo_strlen, KM_SLEEP);
10753 bcopy(dp->dtdo_strtab, new->dtdo_strtab, dp->dtdo_strlen);
10754 new->dtdo_strlen = dp->dtdo_strlen;
10755 }
10756
10757 if (dp->dtdo_inttab != NULL) {
10758 ASSERT(dp->dtdo_intlen != 0);
10759 sz = dp->dtdo_intlen * sizeof (uint64_t);
10760 new->dtdo_inttab = kmem_alloc(sz, KM_SLEEP);
10761 bcopy(dp->dtdo_inttab, new->dtdo_inttab, sz);
10762 new->dtdo_intlen = dp->dtdo_intlen;
10763 }
10764
10765 if (dp->dtdo_vartab != NULL) {
10766 ASSERT(dp->dtdo_varlen != 0);
10767 sz = dp->dtdo_varlen * sizeof (dtrace_difv_t);
10768 new->dtdo_vartab = kmem_alloc(sz, KM_SLEEP);
10769 bcopy(dp->dtdo_vartab, new->dtdo_vartab, sz);
10770 new->dtdo_varlen = dp->dtdo_varlen;
10771 }
10772
10773 dtrace_difo_init(new, vstate);
10774 return (new);
10775 }
10776
10777 static void
10778 dtrace_difo_destroy(dtrace_difo_t *dp, dtrace_vstate_t *vstate)
10779 {
10780 int i;
10781
10782 ASSERT(dp->dtdo_refcnt == 0);
10783
10784 for (i = 0; i < dp->dtdo_varlen; i++) {
10785 dtrace_difv_t *v = &dp->dtdo_vartab[i];
10786 dtrace_statvar_t *svar, **svarp = NULL;
10787 uint_t id;
10788 uint8_t scope = v->dtdv_scope;
10789 int *np = NULL;
10790
10791 switch (scope) {
10792 case DIFV_SCOPE_THREAD:
10793 continue;
10794
10795 case DIFV_SCOPE_LOCAL:
10796 np = &vstate->dtvs_nlocals;
10797 svarp = vstate->dtvs_locals;
10798 break;
10799
10800 case DIFV_SCOPE_GLOBAL:
10801 np = &vstate->dtvs_nglobals;
10802 svarp = vstate->dtvs_globals;
10803 break;
10804
10805 default:
10806 ASSERT(0);
10807 }
10808
10809 if ((id = v->dtdv_id) < DIF_VAR_OTHER_UBASE)
10810 continue;
10811
10812 id -= DIF_VAR_OTHER_UBASE;
10813 ASSERT(id < *np);
10814
10815 svar = svarp[id];
10816 ASSERT(svar != NULL);
10817 ASSERT(svar->dtsv_refcnt > 0);
10818
10819 if (--svar->dtsv_refcnt > 0)
10820 continue;
10821
10822 if (svar->dtsv_size != 0) {
10823 ASSERT(svar->dtsv_data != 0);
10824 kmem_free((void *)(uintptr_t)svar->dtsv_data,
10825 svar->dtsv_size);
10826 }
10827
10828 kmem_free(svar, sizeof (dtrace_statvar_t));
10829 svarp[id] = NULL;
10830 }
10831
10832 if (dp->dtdo_buf != NULL)
10833 kmem_free(dp->dtdo_buf, dp->dtdo_len * sizeof (dif_instr_t));
10834 if (dp->dtdo_inttab != NULL)
10835 kmem_free(dp->dtdo_inttab, dp->dtdo_intlen * sizeof (uint64_t));
10836 if (dp->dtdo_strtab != NULL)
10837 kmem_free(dp->dtdo_strtab, dp->dtdo_strlen);
10838 if (dp->dtdo_vartab != NULL)
10839 kmem_free(dp->dtdo_vartab, dp->dtdo_varlen * sizeof (dtrace_difv_t));
10840
10841 kmem_free(dp, sizeof (dtrace_difo_t));
10842 }
10843
10844 static void
10845 dtrace_difo_release(dtrace_difo_t *dp, dtrace_vstate_t *vstate)
10846 {
10847 int i;
10848
10849 ASSERT(MUTEX_HELD(&dtrace_lock));
10850 ASSERT(dp->dtdo_refcnt != 0);
10851
10852 for (i = 0; i < dp->dtdo_varlen; i++) {
10853 dtrace_difv_t *v = &dp->dtdo_vartab[i];
10854
10855 if (v->dtdv_id != DIF_VAR_VTIMESTAMP)
10856 continue;
10857
10858 ASSERT(dtrace_vtime_references > 0);
10859 if (--dtrace_vtime_references == 0)
10860 dtrace_vtime_disable();
10861 }
10862
10863 if (--dp->dtdo_refcnt == 0)
10864 dtrace_difo_destroy(dp, vstate);
10865 }
10866
10867 /*
10868 * DTrace Format Functions
10869 */
10870 static uint16_t
10871 dtrace_format_add(dtrace_state_t *state, char *str)
10872 {
10873 char *fmt, **new;
10874 uint16_t ndx, len = strlen(str) + 1;
10875
10876 fmt = kmem_zalloc(len, KM_SLEEP);
10877 bcopy(str, fmt, len);
10878
10879 for (ndx = 0; ndx < state->dts_nformats; ndx++) {
10880 if (state->dts_formats[ndx] == NULL) {
10881 state->dts_formats[ndx] = fmt;
10882 return (ndx + 1);
10883 }
10884 }
10885
10886 if (state->dts_nformats == USHRT_MAX) {
10887 /*
10888 * This is only likely if a denial-of-service attack is being
10889 * attempted. As such, it's okay to fail silently here.
10890 */
10891 kmem_free(fmt, len);
10892 return (0);
10893 }
10894
10895 /*
10896 * For simplicity, we always resize the formats array to be exactly the
10897 * number of formats.
10898 */
10899 ndx = state->dts_nformats++;
10900 new = kmem_alloc((ndx + 1) * sizeof (char *), KM_SLEEP);
10901
10902 if (state->dts_formats != NULL) {
10903 ASSERT(ndx != 0);
10904 bcopy(state->dts_formats, new, ndx * sizeof (char *));
10905 kmem_free(state->dts_formats, ndx * sizeof (char *));
10906 }
10907
10908 state->dts_formats = new;
10909 state->dts_formats[ndx] = fmt;
10910
10911 return (ndx + 1);
10912 }
10913
10914 static void
10915 dtrace_format_remove(dtrace_state_t *state, uint16_t format)
10916 {
10917 char *fmt;
10918
10919 ASSERT(state->dts_formats != NULL);
10920 ASSERT(format <= state->dts_nformats);
10921 ASSERT(state->dts_formats[format - 1] != NULL);
10922
10923 fmt = state->dts_formats[format - 1];
10924 kmem_free(fmt, strlen(fmt) + 1);
10925 state->dts_formats[format - 1] = NULL;
10926 }
10927
10928 static void
10929 dtrace_format_destroy(dtrace_state_t *state)
10930 {
10931 int i;
10932
10933 if (state->dts_nformats == 0) {
10934 ASSERT(state->dts_formats == NULL);
10935 return;
10936 }
10937
10938 ASSERT(state->dts_formats != NULL);
10939
10940 for (i = 0; i < state->dts_nformats; i++) {
10941 char *fmt = state->dts_formats[i];
10942
10943 if (fmt == NULL)
10944 continue;
10945
10946 kmem_free(fmt, strlen(fmt) + 1);
10947 }
10948
10949 kmem_free(state->dts_formats, state->dts_nformats * sizeof (char *));
10950 state->dts_nformats = 0;
10951 state->dts_formats = NULL;
10952 }
10953
10954 /*
10955 * DTrace Predicate Functions
10956 */
10957 static dtrace_predicate_t *
10958 dtrace_predicate_create(dtrace_difo_t *dp)
10959 {
10960 dtrace_predicate_t *pred;
10961
10962 ASSERT(MUTEX_HELD(&dtrace_lock));
10963 ASSERT(dp->dtdo_refcnt != 0);
10964
10965 pred = kmem_zalloc(sizeof (dtrace_predicate_t), KM_SLEEP);
10966 pred->dtp_difo = dp;
10967 pred->dtp_refcnt = 1;
10968
10969 if (!dtrace_difo_cacheable(dp))
10970 return (pred);
10971
10972 if (dtrace_predcache_id == DTRACE_CACHEIDNONE) {
10973 /*
10974 * This is only theoretically possible -- we have had 2^32
10975 * cacheable predicates on this machine. We cannot allow any
10976 * more predicates to become cacheable: as unlikely as it is,
10977 * there may be a thread caching a (now stale) predicate cache
10978 * ID. (N.B.: the temptation is being successfully resisted to
10979 * have this cmn_err() "Holy shit -- we executed this code!")
10980 */
10981 return (pred);
10982 }
10983
10984 pred->dtp_cacheid = dtrace_predcache_id++;
10985
10986 return (pred);
10987 }
10988
10989 static void
10990 dtrace_predicate_hold(dtrace_predicate_t *pred)
10991 {
10992 ASSERT(MUTEX_HELD(&dtrace_lock));
10993 ASSERT(pred->dtp_difo != NULL && pred->dtp_difo->dtdo_refcnt != 0);
10994 ASSERT(pred->dtp_refcnt > 0);
10995
10996 pred->dtp_refcnt++;
10997 }
10998
10999 static void
11000 dtrace_predicate_release(dtrace_predicate_t *pred, dtrace_vstate_t *vstate)
11001 {
11002 dtrace_difo_t *dp = pred->dtp_difo;
11003
11004 ASSERT(MUTEX_HELD(&dtrace_lock));
11005 ASSERT(dp != NULL && dp->dtdo_refcnt != 0);
11006 ASSERT(pred->dtp_refcnt > 0);
11007
11008 if (--pred->dtp_refcnt == 0) {
11009 dtrace_difo_release(pred->dtp_difo, vstate);
11010 kmem_free(pred, sizeof (dtrace_predicate_t));
11011 }
11012 }
11013
11014 /*
11015 * DTrace Action Description Functions
11016 */
11017 static dtrace_actdesc_t *
11018 dtrace_actdesc_create(dtrace_actkind_t kind, uint32_t ntuple,
11019 uint64_t uarg, uint64_t arg)
11020 {
11021 dtrace_actdesc_t *act;
11022
11023 #ifdef illumos
11024 ASSERT(!DTRACEACT_ISPRINTFLIKE(kind) || (arg != NULL &&
11025 arg >= KERNELBASE) || (arg == NULL && kind == DTRACEACT_PRINTA));
11026 #endif
11027
11028 act = kmem_zalloc(sizeof (dtrace_actdesc_t), KM_SLEEP);
11029 act->dtad_kind = kind;
11030 act->dtad_ntuple = ntuple;
11031 act->dtad_uarg = uarg;
11032 act->dtad_arg = arg;
11033 act->dtad_refcnt = 1;
11034
11035 return (act);
11036 }
11037
11038 static void
11039 dtrace_actdesc_hold(dtrace_actdesc_t *act)
11040 {
11041 ASSERT(act->dtad_refcnt >= 1);
11042 act->dtad_refcnt++;
11043 }
11044
11045 static void
11046 dtrace_actdesc_release(dtrace_actdesc_t *act, dtrace_vstate_t *vstate)
11047 {
11048 dtrace_actkind_t kind = act->dtad_kind;
11049 dtrace_difo_t *dp;
11050
11051 ASSERT(act->dtad_refcnt >= 1);
11052
11053 if (--act->dtad_refcnt != 0)
11054 return;
11055
11056 if ((dp = act->dtad_difo) != NULL)
11057 dtrace_difo_release(dp, vstate);
11058
11059 if (DTRACEACT_ISPRINTFLIKE(kind)) {
11060 char *str = (char *)(uintptr_t)act->dtad_arg;
11061
11062 #ifdef illumos
11063 ASSERT((str != NULL && (uintptr_t)str >= KERNELBASE) ||
11064 (str == NULL && act->dtad_kind == DTRACEACT_PRINTA));
11065 #endif
11066
11067 if (str != NULL)
11068 kmem_free(str, strlen(str) + 1);
11069 }
11070
11071 kmem_free(act, sizeof (dtrace_actdesc_t));
11072 }
11073
11074 /*
11075 * DTrace ECB Functions
11076 */
11077 static dtrace_ecb_t *
11078 dtrace_ecb_add(dtrace_state_t *state, dtrace_probe_t *probe)
11079 {
11080 dtrace_ecb_t *ecb;
11081 dtrace_epid_t epid;
11082
11083 ASSERT(MUTEX_HELD(&dtrace_lock));
11084
11085 ecb = kmem_zalloc(sizeof (dtrace_ecb_t), KM_SLEEP);
11086 ecb->dte_predicate = NULL;
11087 ecb->dte_probe = probe;
11088
11089 /*
11090 * The default size is the size of the default action: recording
11091 * the header.
11092 */
11093 ecb->dte_size = ecb->dte_needed = sizeof (dtrace_rechdr_t);
11094 ecb->dte_alignment = sizeof (dtrace_epid_t);
11095
11096 epid = state->dts_epid++;
11097
11098 if (epid - 1 >= state->dts_necbs) {
11099 dtrace_ecb_t **oecbs = state->dts_ecbs, **ecbs;
11100 int necbs = state->dts_necbs << 1;
11101
11102 ASSERT(epid == state->dts_necbs + 1);
11103
11104 if (necbs == 0) {
11105 ASSERT(oecbs == NULL);
11106 necbs = 1;
11107 }
11108
11109 ecbs = kmem_zalloc(necbs * sizeof (*ecbs), KM_SLEEP);
11110
11111 if (oecbs != NULL)
11112 bcopy(oecbs, ecbs, state->dts_necbs * sizeof (*ecbs));
11113
11114 dtrace_membar_producer();
11115 state->dts_ecbs = ecbs;
11116
11117 if (oecbs != NULL) {
11118 /*
11119 * If this state is active, we must dtrace_sync()
11120 * before we can free the old dts_ecbs array: we're
11121 * coming in hot, and there may be active ring
11122 * buffer processing (which indexes into the dts_ecbs
11123 * array) on another CPU.
11124 */
11125 if (state->dts_activity != DTRACE_ACTIVITY_INACTIVE)
11126 dtrace_sync();
11127
11128 kmem_free(oecbs, state->dts_necbs * sizeof (*ecbs));
11129 }
11130
11131 dtrace_membar_producer();
11132 state->dts_necbs = necbs;
11133 }
11134
11135 ecb->dte_state = state;
11136
11137 ASSERT(state->dts_ecbs[epid - 1] == NULL);
11138 dtrace_membar_producer();
11139 state->dts_ecbs[(ecb->dte_epid = epid) - 1] = ecb;
11140
11141 return (ecb);
11142 }
11143
11144 static void
11145 dtrace_ecb_enable(dtrace_ecb_t *ecb)
11146 {
11147 dtrace_probe_t *probe = ecb->dte_probe;
11148
11149 ASSERT(MUTEX_HELD(&cpu_lock));
11150 ASSERT(MUTEX_HELD(&dtrace_lock));
11151 ASSERT(ecb->dte_next == NULL);
11152
11153 if (probe == NULL) {
11154 /*
11155 * This is the NULL probe -- there's nothing to do.
11156 */
11157 return;
11158 }
11159
11160 if (probe->dtpr_ecb == NULL) {
11161 dtrace_provider_t *prov = probe->dtpr_provider;
11162
11163 /*
11164 * We're the first ECB on this probe.
11165 */
11166 probe->dtpr_ecb = probe->dtpr_ecb_last = ecb;
11167
11168 if (ecb->dte_predicate != NULL)
11169 probe->dtpr_predcache = ecb->dte_predicate->dtp_cacheid;
11170
11171 prov->dtpv_pops.dtps_enable(prov->dtpv_arg,
11172 probe->dtpr_id, probe->dtpr_arg);
11173 } else {
11174 /*
11175 * This probe is already active. Swing the last pointer to
11176 * point to the new ECB, and issue a dtrace_sync() to assure
11177 * that all CPUs have seen the change.
11178 */
11179 ASSERT(probe->dtpr_ecb_last != NULL);
11180 probe->dtpr_ecb_last->dte_next = ecb;
11181 probe->dtpr_ecb_last = ecb;
11182 probe->dtpr_predcache = 0;
11183
11184 dtrace_sync();
11185 }
11186 }
11187
11188 static int
11189 dtrace_ecb_resize(dtrace_ecb_t *ecb)
11190 {
11191 dtrace_action_t *act;
11192 uint32_t curneeded = UINT32_MAX;
11193 uint32_t aggbase = UINT32_MAX;
11194
11195 /*
11196 * If we record anything, we always record the dtrace_rechdr_t. (And
11197 * we always record it first.)
11198 */
11199 ecb->dte_size = sizeof (dtrace_rechdr_t);
11200 ecb->dte_alignment = sizeof (dtrace_epid_t);
11201
11202 for (act = ecb->dte_action; act != NULL; act = act->dta_next) {
11203 dtrace_recdesc_t *rec = &act->dta_rec;
11204 ASSERT(rec->dtrd_size > 0 || rec->dtrd_alignment == 1);
11205
11206 ecb->dte_alignment = MAX(ecb->dte_alignment,
11207 rec->dtrd_alignment);
11208
11209 if (DTRACEACT_ISAGG(act->dta_kind)) {
11210 dtrace_aggregation_t *agg = (dtrace_aggregation_t *)act;
11211
11212 ASSERT(rec->dtrd_size != 0);
11213 ASSERT(agg->dtag_first != NULL);
11214 ASSERT(act->dta_prev->dta_intuple);
11215 ASSERT(aggbase != UINT32_MAX);
11216 ASSERT(curneeded != UINT32_MAX);
11217
11218 agg->dtag_base = aggbase;
11219
11220 curneeded = P2ROUNDUP(curneeded, rec->dtrd_alignment);
11221 rec->dtrd_offset = curneeded;
11222 if (curneeded + rec->dtrd_size < curneeded)
11223 return (EINVAL);
11224 curneeded += rec->dtrd_size;
11225 ecb->dte_needed = MAX(ecb->dte_needed, curneeded);
11226
11227 aggbase = UINT32_MAX;
11228 curneeded = UINT32_MAX;
11229 } else if (act->dta_intuple) {
11230 if (curneeded == UINT32_MAX) {
11231 /*
11232 * This is the first record in a tuple. Align
11233 * curneeded to be at offset 4 in an 8-byte
11234 * aligned block.
11235 */
11236 ASSERT(act->dta_prev == NULL ||
11237 !act->dta_prev->dta_intuple);
11238 ASSERT3U(aggbase, ==, UINT32_MAX);
11239 curneeded = P2PHASEUP(ecb->dte_size,
11240 sizeof (uint64_t), sizeof (dtrace_aggid_t));
11241
11242 aggbase = curneeded - sizeof (dtrace_aggid_t);
11243 ASSERT(IS_P2ALIGNED(aggbase,
11244 sizeof (uint64_t)));
11245 }
11246 curneeded = P2ROUNDUP(curneeded, rec->dtrd_alignment);
11247 rec->dtrd_offset = curneeded;
11248 if (curneeded + rec->dtrd_size < curneeded)
11249 return (EINVAL);
11250 curneeded += rec->dtrd_size;
11251 } else {
11252 /* tuples must be followed by an aggregation */
11253 ASSERT(act->dta_prev == NULL ||
11254 !act->dta_prev->dta_intuple);
11255
11256 ecb->dte_size = P2ROUNDUP(ecb->dte_size,
11257 rec->dtrd_alignment);
11258 rec->dtrd_offset = ecb->dte_size;
11259 if (ecb->dte_size + rec->dtrd_size < ecb->dte_size)
11260 return (EINVAL);
11261 ecb->dte_size += rec->dtrd_size;
11262 ecb->dte_needed = MAX(ecb->dte_needed, ecb->dte_size);
11263 }
11264 }
11265
11266 if ((act = ecb->dte_action) != NULL &&
11267 !(act->dta_kind == DTRACEACT_SPECULATE && act->dta_next == NULL) &&
11268 ecb->dte_size == sizeof (dtrace_rechdr_t)) {
11269 /*
11270 * If the size is still sizeof (dtrace_rechdr_t), then all
11271 * actions store no data; set the size to 0.
11272 */
11273 ecb->dte_size = 0;
11274 }
11275
11276 ecb->dte_size = P2ROUNDUP(ecb->dte_size, sizeof (dtrace_epid_t));
11277 ecb->dte_needed = P2ROUNDUP(ecb->dte_needed, (sizeof (dtrace_epid_t)));
11278 ecb->dte_state->dts_needed = MAX(ecb->dte_state->dts_needed,
11279 ecb->dte_needed);
11280 return (0);
11281 }
11282
11283 static dtrace_action_t *
11284 dtrace_ecb_aggregation_create(dtrace_ecb_t *ecb, dtrace_actdesc_t *desc)
11285 {
11286 dtrace_aggregation_t *agg;
11287 size_t size = sizeof (uint64_t);
11288 int ntuple = desc->dtad_ntuple;
11289 dtrace_action_t *act;
11290 dtrace_recdesc_t *frec;
11291 dtrace_aggid_t aggid;
11292 dtrace_state_t *state = ecb->dte_state;
11293
11294 agg = kmem_zalloc(sizeof (dtrace_aggregation_t), KM_SLEEP);
11295 agg->dtag_ecb = ecb;
11296
11297 ASSERT(DTRACEACT_ISAGG(desc->dtad_kind));
11298
11299 switch (desc->dtad_kind) {
11300 case DTRACEAGG_MIN:
11301 agg->dtag_initial = INT64_MAX;
11302 agg->dtag_aggregate = dtrace_aggregate_min;
11303 break;
11304
11305 case DTRACEAGG_MAX:
11306 agg->dtag_initial = INT64_MIN;
11307 agg->dtag_aggregate = dtrace_aggregate_max;
11308 break;
11309
11310 case DTRACEAGG_COUNT:
11311 agg->dtag_aggregate = dtrace_aggregate_count;
11312 break;
11313
11314 case DTRACEAGG_QUANTIZE:
11315 agg->dtag_aggregate = dtrace_aggregate_quantize;
11316 size = (((sizeof (uint64_t) * NBBY) - 1) * 2 + 1) *
11317 sizeof (uint64_t);
11318 break;
11319
11320 case DTRACEAGG_LQUANTIZE: {
11321 uint16_t step = DTRACE_LQUANTIZE_STEP(desc->dtad_arg);
11322 uint16_t levels = DTRACE_LQUANTIZE_LEVELS(desc->dtad_arg);
11323
11324 agg->dtag_initial = desc->dtad_arg;
11325 agg->dtag_aggregate = dtrace_aggregate_lquantize;
11326
11327 if (step == 0 || levels == 0)
11328 goto err;
11329
11330 size = levels * sizeof (uint64_t) + 3 * sizeof (uint64_t);
11331 break;
11332 }
11333
11334 case DTRACEAGG_LLQUANTIZE: {
11335 uint16_t factor = DTRACE_LLQUANTIZE_FACTOR(desc->dtad_arg);
11336 uint16_t low = DTRACE_LLQUANTIZE_LOW(desc->dtad_arg);
11337 uint16_t high = DTRACE_LLQUANTIZE_HIGH(desc->dtad_arg);
11338 uint16_t nsteps = DTRACE_LLQUANTIZE_NSTEP(desc->dtad_arg);
11339 int64_t v;
11340
11341 agg->dtag_initial = desc->dtad_arg;
11342 agg->dtag_aggregate = dtrace_aggregate_llquantize;
11343
11344 if (factor < 2 || low >= high || nsteps < factor)
11345 goto err;
11346
11347 /*
11348 * Now check that the number of steps evenly divides a power
11349 * of the factor. (This assures both integer bucket size and
11350 * linearity within each magnitude.)
11351 */
11352 for (v = factor; v < nsteps; v *= factor)
11353 continue;
11354
11355 if ((v % nsteps) || (nsteps % factor))
11356 goto err;
11357
11358 size = (dtrace_aggregate_llquantize_bucket(factor,
11359 low, high, nsteps, INT64_MAX) + 2) * sizeof (uint64_t);
11360 break;
11361 }
11362
11363 case DTRACEAGG_AVG:
11364 agg->dtag_aggregate = dtrace_aggregate_avg;
11365 size = sizeof (uint64_t) * 2;
11366 break;
11367
11368 case DTRACEAGG_STDDEV:
11369 agg->dtag_aggregate = dtrace_aggregate_stddev;
11370 size = sizeof (uint64_t) * 4;
11371 break;
11372
11373 case DTRACEAGG_SUM:
11374 agg->dtag_aggregate = dtrace_aggregate_sum;
11375 break;
11376
11377 default:
11378 goto err;
11379 }
11380
11381 agg->dtag_action.dta_rec.dtrd_size = size;
11382
11383 if (ntuple == 0)
11384 goto err;
11385
11386 /*
11387 * We must make sure that we have enough actions for the n-tuple.
11388 */
11389 for (act = ecb->dte_action_last; act != NULL; act = act->dta_prev) {
11390 if (DTRACEACT_ISAGG(act->dta_kind))
11391 break;
11392
11393 if (--ntuple == 0) {
11394 /*
11395 * This is the action with which our n-tuple begins.
11396 */
11397 agg->dtag_first = act;
11398 goto success;
11399 }
11400 }
11401
11402 /*
11403 * This n-tuple is short by ntuple elements. Return failure.
11404 */
11405 ASSERT(ntuple != 0);
11406 err:
11407 kmem_free(agg, sizeof (dtrace_aggregation_t));
11408 return (NULL);
11409
11410 success:
11411 /*
11412 * If the last action in the tuple has a size of zero, it's actually
11413 * an expression argument for the aggregating action.
11414 */
11415 ASSERT(ecb->dte_action_last != NULL);
11416 act = ecb->dte_action_last;
11417
11418 if (act->dta_kind == DTRACEACT_DIFEXPR) {
11419 ASSERT(act->dta_difo != NULL);
11420
11421 if (act->dta_difo->dtdo_rtype.dtdt_size == 0)
11422 agg->dtag_hasarg = 1;
11423 }
11424
11425 /*
11426 * We need to allocate an id for this aggregation.
11427 */
11428 #ifdef illumos
11429 aggid = (dtrace_aggid_t)(uintptr_t)vmem_alloc(state->dts_aggid_arena, 1,
11430 VM_BESTFIT | VM_SLEEP);
11431 #else
11432 aggid = alloc_unr(state->dts_aggid_arena);
11433 #endif
11434
11435 if (aggid - 1 >= state->dts_naggregations) {
11436 dtrace_aggregation_t **oaggs = state->dts_aggregations;
11437 dtrace_aggregation_t **aggs;
11438 int naggs = state->dts_naggregations << 1;
11439 int onaggs = state->dts_naggregations;
11440
11441 ASSERT(aggid == state->dts_naggregations + 1);
11442
11443 if (naggs == 0) {
11444 ASSERT(oaggs == NULL);
11445 naggs = 1;
11446 }
11447
11448 aggs = kmem_zalloc(naggs * sizeof (*aggs), KM_SLEEP);
11449
11450 if (oaggs != NULL) {
11451 bcopy(oaggs, aggs, onaggs * sizeof (*aggs));
11452 kmem_free(oaggs, onaggs * sizeof (*aggs));
11453 }
11454
11455 state->dts_aggregations = aggs;
11456 state->dts_naggregations = naggs;
11457 }
11458
11459 ASSERT(state->dts_aggregations[aggid - 1] == NULL);
11460 state->dts_aggregations[(agg->dtag_id = aggid) - 1] = agg;
11461
11462 frec = &agg->dtag_first->dta_rec;
11463 if (frec->dtrd_alignment < sizeof (dtrace_aggid_t))
11464 frec->dtrd_alignment = sizeof (dtrace_aggid_t);
11465
11466 for (act = agg->dtag_first; act != NULL; act = act->dta_next) {
11467 ASSERT(!act->dta_intuple);
11468 act->dta_intuple = 1;
11469 }
11470
11471 return (&agg->dtag_action);
11472 }
11473
11474 static void
11475 dtrace_ecb_aggregation_destroy(dtrace_ecb_t *ecb, dtrace_action_t *act)
11476 {
11477 dtrace_aggregation_t *agg = (dtrace_aggregation_t *)act;
11478 dtrace_state_t *state = ecb->dte_state;
11479 dtrace_aggid_t aggid = agg->dtag_id;
11480
11481 ASSERT(DTRACEACT_ISAGG(act->dta_kind));
11482 #ifdef illumos
11483 vmem_free(state->dts_aggid_arena, (void *)(uintptr_t)aggid, 1);
11484 #else
11485 free_unr(state->dts_aggid_arena, aggid);
11486 #endif
11487
11488 ASSERT(state->dts_aggregations[aggid - 1] == agg);
11489 state->dts_aggregations[aggid - 1] = NULL;
11490
11491 kmem_free(agg, sizeof (dtrace_aggregation_t));
11492 }
11493
11494 static int
11495 dtrace_ecb_action_add(dtrace_ecb_t *ecb, dtrace_actdesc_t *desc)
11496 {
11497 dtrace_action_t *action, *last;
11498 dtrace_difo_t *dp = desc->dtad_difo;
11499 uint32_t size = 0, align = sizeof (uint8_t), mask;
11500 uint16_t format = 0;
11501 dtrace_recdesc_t *rec;
11502 dtrace_state_t *state = ecb->dte_state;
11503 dtrace_optval_t *opt = state->dts_options, nframes = 0, strsize;
11504 uint64_t arg = desc->dtad_arg;
11505
11506 ASSERT(MUTEX_HELD(&dtrace_lock));
11507 ASSERT(ecb->dte_action == NULL || ecb->dte_action->dta_refcnt == 1);
11508
11509 if (DTRACEACT_ISAGG(desc->dtad_kind)) {
11510 /*
11511 * If this is an aggregating action, there must be neither
11512 * a speculate nor a commit on the action chain.
11513 */
11514 dtrace_action_t *act;
11515
11516 for (act = ecb->dte_action; act != NULL; act = act->dta_next) {
11517 if (act->dta_kind == DTRACEACT_COMMIT)
11518 return (EINVAL);
11519
11520 if (act->dta_kind == DTRACEACT_SPECULATE)
11521 return (EINVAL);
11522 }
11523
11524 action = dtrace_ecb_aggregation_create(ecb, desc);
11525
11526 if (action == NULL)
11527 return (EINVAL);
11528 } else {
11529 if (DTRACEACT_ISDESTRUCTIVE(desc->dtad_kind) ||
11530 (desc->dtad_kind == DTRACEACT_DIFEXPR &&
11531 dp != NULL && dp->dtdo_destructive)) {
11532 state->dts_destructive = 1;
11533 }
11534
11535 switch (desc->dtad_kind) {
11536 case DTRACEACT_PRINTF:
11537 case DTRACEACT_PRINTA:
11538 case DTRACEACT_SYSTEM:
11539 case DTRACEACT_FREOPEN:
11540 case DTRACEACT_DIFEXPR:
11541 /*
11542 * We know that our arg is a string -- turn it into a
11543 * format.
11544 */
11545 if (arg == 0) {
11546 ASSERT(desc->dtad_kind == DTRACEACT_PRINTA ||
11547 desc->dtad_kind == DTRACEACT_DIFEXPR);
11548 format = 0;
11549 } else {
11550 ASSERT(arg != 0);
11551 #ifdef illumos
11552 ASSERT(arg > KERNELBASE);
11553 #endif
11554 format = dtrace_format_add(state,
11555 (char *)(uintptr_t)arg);
11556 }
11557
11558 /*FALLTHROUGH*/
11559 case DTRACEACT_LIBACT:
11560 case DTRACEACT_TRACEMEM:
11561 case DTRACEACT_TRACEMEM_DYNSIZE:
11562 if (dp == NULL)
11563 return (EINVAL);
11564
11565 if ((size = dp->dtdo_rtype.dtdt_size) != 0)
11566 break;
11567
11568 if (dp->dtdo_rtype.dtdt_kind == DIF_TYPE_STRING) {
11569 if (!(dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF))
11570 return (EINVAL);
11571
11572 size = opt[DTRACEOPT_STRSIZE];
11573 }
11574
11575 break;
11576
11577 case DTRACEACT_STACK:
11578 if ((nframes = arg) == 0) {
11579 nframes = opt[DTRACEOPT_STACKFRAMES];
11580 ASSERT(nframes > 0);
11581 arg = nframes;
11582 }
11583
11584 size = nframes * sizeof (pc_t);
11585 break;
11586
11587 case DTRACEACT_JSTACK:
11588 if ((strsize = DTRACE_USTACK_STRSIZE(arg)) == 0)
11589 strsize = opt[DTRACEOPT_JSTACKSTRSIZE];
11590
11591 if ((nframes = DTRACE_USTACK_NFRAMES(arg)) == 0)
11592 nframes = opt[DTRACEOPT_JSTACKFRAMES];
11593
11594 arg = DTRACE_USTACK_ARG(nframes, strsize);
11595
11596 /*FALLTHROUGH*/
11597 case DTRACEACT_USTACK:
11598 if (desc->dtad_kind != DTRACEACT_JSTACK &&
11599 (nframes = DTRACE_USTACK_NFRAMES(arg)) == 0) {
11600 strsize = DTRACE_USTACK_STRSIZE(arg);
11601 nframes = opt[DTRACEOPT_USTACKFRAMES];
11602 ASSERT(nframes > 0);
11603 arg = DTRACE_USTACK_ARG(nframes, strsize);
11604 }
11605
11606 /*
11607 * Save a slot for the pid.
11608 */
11609 size = (nframes + 1) * sizeof (uint64_t);
11610 size += DTRACE_USTACK_STRSIZE(arg);
11611 size = P2ROUNDUP(size, (uint32_t)(sizeof (uintptr_t)));
11612
11613 break;
11614
11615 case DTRACEACT_SYM:
11616 case DTRACEACT_MOD:
11617 if (dp == NULL || ((size = dp->dtdo_rtype.dtdt_size) !=
11618 sizeof (uint64_t)) ||
11619 (dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF))
11620 return (EINVAL);
11621 break;
11622
11623 case DTRACEACT_USYM:
11624 case DTRACEACT_UMOD:
11625 case DTRACEACT_UADDR:
11626 if (dp == NULL ||
11627 (dp->dtdo_rtype.dtdt_size != sizeof (uint64_t)) ||
11628 (dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF))
11629 return (EINVAL);
11630
11631 /*
11632 * We have a slot for the pid, plus a slot for the
11633 * argument. To keep things simple (aligned with
11634 * bitness-neutral sizing), we store each as a 64-bit
11635 * quantity.
11636 */
11637 size = 2 * sizeof (uint64_t);
11638 break;
11639
11640 case DTRACEACT_STOP:
11641 case DTRACEACT_BREAKPOINT:
11642 case DTRACEACT_PANIC:
11643 break;
11644
11645 case DTRACEACT_CHILL:
11646 case DTRACEACT_DISCARD:
11647 case DTRACEACT_RAISE:
11648 if (dp == NULL)
11649 return (EINVAL);
11650 break;
11651
11652 case DTRACEACT_EXIT:
11653 if (dp == NULL ||
11654 (size = dp->dtdo_rtype.dtdt_size) != sizeof (int) ||
11655 (dp->dtdo_rtype.dtdt_flags & DIF_TF_BYREF))
11656 return (EINVAL);
11657 break;
11658
11659 case DTRACEACT_SPECULATE:
11660 if (ecb->dte_size > sizeof (dtrace_rechdr_t))
11661 return (EINVAL);
11662
11663 if (dp == NULL)
11664 return (EINVAL);
11665
11666 state->dts_speculates = 1;
11667 break;
11668
11669 case DTRACEACT_PRINTM:
11670 size = dp->dtdo_rtype.dtdt_size;
11671 break;
11672
11673 case DTRACEACT_COMMIT: {
11674 dtrace_action_t *act = ecb->dte_action;
11675
11676 for (; act != NULL; act = act->dta_next) {
11677 if (act->dta_kind == DTRACEACT_COMMIT)
11678 return (EINVAL);
11679 }
11680
11681 if (dp == NULL)
11682 return (EINVAL);
11683 break;
11684 }
11685
11686 default:
11687 return (EINVAL);
11688 }
11689
11690 if (size != 0 || desc->dtad_kind == DTRACEACT_SPECULATE) {
11691 /*
11692 * If this is a data-storing action or a speculate,
11693 * we must be sure that there isn't a commit on the
11694 * action chain.
11695 */
11696 dtrace_action_t *act = ecb->dte_action;
11697
11698 for (; act != NULL; act = act->dta_next) {
11699 if (act->dta_kind == DTRACEACT_COMMIT)
11700 return (EINVAL);
11701 }
11702 }
11703
11704 action = kmem_zalloc(sizeof (dtrace_action_t), KM_SLEEP);
11705 action->dta_rec.dtrd_size = size;
11706 }
11707
11708 action->dta_refcnt = 1;
11709 rec = &action->dta_rec;
11710 size = rec->dtrd_size;
11711
11712 for (mask = sizeof (uint64_t) - 1; size != 0 && mask > 0; mask >>= 1) {
11713 if (!(size & mask)) {
11714 align = mask + 1;
11715 break;
11716 }
11717 }
11718
11719 action->dta_kind = desc->dtad_kind;
11720
11721 if ((action->dta_difo = dp) != NULL)
11722 dtrace_difo_hold(dp);
11723
11724 rec->dtrd_action = action->dta_kind;
11725 rec->dtrd_arg = arg;
11726 rec->dtrd_uarg = desc->dtad_uarg;
11727 rec->dtrd_alignment = (uint16_t)align;
11728 rec->dtrd_format = format;
11729
11730 if ((last = ecb->dte_action_last) != NULL) {
11731 ASSERT(ecb->dte_action != NULL);
11732 action->dta_prev = last;
11733 last->dta_next = action;
11734 } else {
11735 ASSERT(ecb->dte_action == NULL);
11736 ecb->dte_action = action;
11737 }
11738
11739 ecb->dte_action_last = action;
11740
11741 return (0);
11742 }
11743
11744 static void
11745 dtrace_ecb_action_remove(dtrace_ecb_t *ecb)
11746 {
11747 dtrace_action_t *act = ecb->dte_action, *next;
11748 dtrace_vstate_t *vstate = &ecb->dte_state->dts_vstate;
11749 dtrace_difo_t *dp;
11750 uint16_t format;
11751
11752 if (act != NULL && act->dta_refcnt > 1) {
11753 ASSERT(act->dta_next == NULL || act->dta_next->dta_refcnt == 1);
11754 act->dta_refcnt--;
11755 } else {
11756 for (; act != NULL; act = next) {
11757 next = act->dta_next;
11758 ASSERT(next != NULL || act == ecb->dte_action_last);
11759 ASSERT(act->dta_refcnt == 1);
11760
11761 if ((format = act->dta_rec.dtrd_format) != 0)
11762 dtrace_format_remove(ecb->dte_state, format);
11763
11764 if ((dp = act->dta_difo) != NULL)
11765 dtrace_difo_release(dp, vstate);
11766
11767 if (DTRACEACT_ISAGG(act->dta_kind)) {
11768 dtrace_ecb_aggregation_destroy(ecb, act);
11769 } else {
11770 kmem_free(act, sizeof (dtrace_action_t));
11771 }
11772 }
11773 }
11774
11775 ecb->dte_action = NULL;
11776 ecb->dte_action_last = NULL;
11777 ecb->dte_size = 0;
11778 }
11779
11780 static void
11781 dtrace_ecb_disable(dtrace_ecb_t *ecb)
11782 {
11783 /*
11784 * We disable the ECB by removing it from its probe.
11785 */
11786 dtrace_ecb_t *pecb, *prev = NULL;
11787 dtrace_probe_t *probe = ecb->dte_probe;
11788
11789 ASSERT(MUTEX_HELD(&dtrace_lock));
11790
11791 if (probe == NULL) {
11792 /*
11793 * This is the NULL probe; there is nothing to disable.
11794 */
11795 return;
11796 }
11797
11798 for (pecb = probe->dtpr_ecb; pecb != NULL; pecb = pecb->dte_next) {
11799 if (pecb == ecb)
11800 break;
11801 prev = pecb;
11802 }
11803
11804 ASSERT(pecb != NULL);
11805
11806 if (prev == NULL) {
11807 probe->dtpr_ecb = ecb->dte_next;
11808 } else {
11809 prev->dte_next = ecb->dte_next;
11810 }
11811
11812 if (ecb == probe->dtpr_ecb_last) {
11813 ASSERT(ecb->dte_next == NULL);
11814 probe->dtpr_ecb_last = prev;
11815 }
11816
11817 /*
11818 * The ECB has been disconnected from the probe; now sync to assure
11819 * that all CPUs have seen the change before returning.
11820 */
11821 dtrace_sync();
11822
11823 if (probe->dtpr_ecb == NULL) {
11824 /*
11825 * That was the last ECB on the probe; clear the predicate
11826 * cache ID for the probe, disable it and sync one more time
11827 * to assure that we'll never hit it again.
11828 */
11829 dtrace_provider_t *prov = probe->dtpr_provider;
11830
11831 ASSERT(ecb->dte_next == NULL);
11832 ASSERT(probe->dtpr_ecb_last == NULL);
11833 probe->dtpr_predcache = DTRACE_CACHEIDNONE;
11834 prov->dtpv_pops.dtps_disable(prov->dtpv_arg,
11835 probe->dtpr_id, probe->dtpr_arg);
11836 dtrace_sync();
11837 } else {
11838 /*
11839 * There is at least one ECB remaining on the probe. If there
11840 * is _exactly_ one, set the probe's predicate cache ID to be
11841 * the predicate cache ID of the remaining ECB.
11842 */
11843 ASSERT(probe->dtpr_ecb_last != NULL);
11844 ASSERT(probe->dtpr_predcache == DTRACE_CACHEIDNONE);
11845
11846 if (probe->dtpr_ecb == probe->dtpr_ecb_last) {
11847 dtrace_predicate_t *p = probe->dtpr_ecb->dte_predicate;
11848
11849 ASSERT(probe->dtpr_ecb->dte_next == NULL);
11850
11851 if (p != NULL)
11852 probe->dtpr_predcache = p->dtp_cacheid;
11853 }
11854
11855 ecb->dte_next = NULL;
11856 }
11857 }
11858
11859 static void
11860 dtrace_ecb_destroy(dtrace_ecb_t *ecb)
11861 {
11862 dtrace_state_t *state = ecb->dte_state;
11863 dtrace_vstate_t *vstate = &state->dts_vstate;
11864 dtrace_predicate_t *pred;
11865 dtrace_epid_t epid = ecb->dte_epid;
11866
11867 ASSERT(MUTEX_HELD(&dtrace_lock));
11868 ASSERT(ecb->dte_next == NULL);
11869 ASSERT(ecb->dte_probe == NULL || ecb->dte_probe->dtpr_ecb != ecb);
11870
11871 if ((pred = ecb->dte_predicate) != NULL)
11872 dtrace_predicate_release(pred, vstate);
11873
11874 dtrace_ecb_action_remove(ecb);
11875
11876 ASSERT(state->dts_ecbs[epid - 1] == ecb);
11877 state->dts_ecbs[epid - 1] = NULL;
11878
11879 kmem_free(ecb, sizeof (dtrace_ecb_t));
11880 }
11881
11882 static dtrace_ecb_t *
11883 dtrace_ecb_create(dtrace_state_t *state, dtrace_probe_t *probe,
11884 dtrace_enabling_t *enab)
11885 {
11886 dtrace_ecb_t *ecb;
11887 dtrace_predicate_t *pred;
11888 dtrace_actdesc_t *act;
11889 dtrace_provider_t *prov;
11890 dtrace_ecbdesc_t *desc = enab->dten_current;
11891
11892 ASSERT(MUTEX_HELD(&dtrace_lock));
11893 ASSERT(state != NULL);
11894
11895 ecb = dtrace_ecb_add(state, probe);
11896 ecb->dte_uarg = desc->dted_uarg;
11897
11898 if ((pred = desc->dted_pred.dtpdd_predicate) != NULL) {
11899 dtrace_predicate_hold(pred);
11900 ecb->dte_predicate = pred;
11901 }
11902
11903 if (probe != NULL) {
11904 /*
11905 * If the provider shows more leg than the consumer is old
11906 * enough to see, we need to enable the appropriate implicit
11907 * predicate bits to prevent the ecb from activating at
11908 * revealing times.
11909 *
11910 * Providers specifying DTRACE_PRIV_USER at register time
11911 * are stating that they need the /proc-style privilege
11912 * model to be enforced, and this is what DTRACE_COND_OWNER
11913 * and DTRACE_COND_ZONEOWNER will then do at probe time.
11914 */
11915 prov = probe->dtpr_provider;
11916 if (!(state->dts_cred.dcr_visible & DTRACE_CRV_ALLPROC) &&
11917 (prov->dtpv_priv.dtpp_flags & DTRACE_PRIV_USER))
11918 ecb->dte_cond |= DTRACE_COND_OWNER;
11919
11920 if (!(state->dts_cred.dcr_visible & DTRACE_CRV_ALLZONE) &&
11921 (prov->dtpv_priv.dtpp_flags & DTRACE_PRIV_USER))
11922 ecb->dte_cond |= DTRACE_COND_ZONEOWNER;
11923
11924 /*
11925 * If the provider shows us kernel innards and the user
11926 * is lacking sufficient privilege, enable the
11927 * DTRACE_COND_USERMODE implicit predicate.
11928 */
11929 if (!(state->dts_cred.dcr_visible & DTRACE_CRV_KERNEL) &&
11930 (prov->dtpv_priv.dtpp_flags & DTRACE_PRIV_KERNEL))
11931 ecb->dte_cond |= DTRACE_COND_USERMODE;
11932 }
11933
11934 if (dtrace_ecb_create_cache != NULL) {
11935 /*
11936 * If we have a cached ecb, we'll use its action list instead
11937 * of creating our own (saving both time and space).
11938 */
11939 dtrace_ecb_t *cached = dtrace_ecb_create_cache;
11940 dtrace_action_t *act = cached->dte_action;
11941
11942 if (act != NULL) {
11943 ASSERT(act->dta_refcnt > 0);
11944 act->dta_refcnt++;
11945 ecb->dte_action = act;
11946 ecb->dte_action_last = cached->dte_action_last;
11947 ecb->dte_needed = cached->dte_needed;
11948 ecb->dte_size = cached->dte_size;
11949 ecb->dte_alignment = cached->dte_alignment;
11950 }
11951
11952 return (ecb);
11953 }
11954
11955 for (act = desc->dted_action; act != NULL; act = act->dtad_next) {
11956 if ((enab->dten_error = dtrace_ecb_action_add(ecb, act)) != 0) {
11957 dtrace_ecb_destroy(ecb);
11958 return (NULL);
11959 }
11960 }
11961
11962 if ((enab->dten_error = dtrace_ecb_resize(ecb)) != 0) {
11963 dtrace_ecb_destroy(ecb);
11964 return (NULL);
11965 }
11966
11967 return (dtrace_ecb_create_cache = ecb);
11968 }
11969
11970 static int
11971 dtrace_ecb_create_enable(dtrace_probe_t *probe, void *arg)
11972 {
11973 dtrace_ecb_t *ecb;
11974 dtrace_enabling_t *enab = arg;
11975 dtrace_state_t *state = enab->dten_vstate->dtvs_state;
11976
11977 ASSERT(state != NULL);
11978
11979 if (probe != NULL && probe->dtpr_gen < enab->dten_probegen) {
11980 /*
11981 * This probe was created in a generation for which this
11982 * enabling has previously created ECBs; we don't want to
11983 * enable it again, so just kick out.
11984 */
11985 return (DTRACE_MATCH_NEXT);
11986 }
11987
11988 if ((ecb = dtrace_ecb_create(state, probe, enab)) == NULL)
11989 return (DTRACE_MATCH_DONE);
11990
11991 dtrace_ecb_enable(ecb);
11992 return (DTRACE_MATCH_NEXT);
11993 }
11994
11995 static dtrace_ecb_t *
11996 dtrace_epid2ecb(dtrace_state_t *state, dtrace_epid_t id)
11997 {
11998 dtrace_ecb_t *ecb;
11999
12000 ASSERT(MUTEX_HELD(&dtrace_lock));
12001
12002 if (id == 0 || id > state->dts_necbs)
12003 return (NULL);
12004
12005 ASSERT(state->dts_necbs > 0 && state->dts_ecbs != NULL);
12006 ASSERT((ecb = state->dts_ecbs[id - 1]) == NULL || ecb->dte_epid == id);
12007
12008 return (state->dts_ecbs[id - 1]);
12009 }
12010
12011 static dtrace_aggregation_t *
12012 dtrace_aggid2agg(dtrace_state_t *state, dtrace_aggid_t id)
12013 {
12014 dtrace_aggregation_t *agg;
12015
12016 ASSERT(MUTEX_HELD(&dtrace_lock));
12017
12018 if (id == 0 || id > state->dts_naggregations)
12019 return (NULL);
12020
12021 ASSERT(state->dts_naggregations > 0 && state->dts_aggregations != NULL);
12022 ASSERT((agg = state->dts_aggregations[id - 1]) == NULL ||
12023 agg->dtag_id == id);
12024
12025 return (state->dts_aggregations[id - 1]);
12026 }
12027
12028 /*
12029 * DTrace Buffer Functions
12030 *
12031 * The following functions manipulate DTrace buffers. Most of these functions
12032 * are called in the context of establishing or processing consumer state;
12033 * exceptions are explicitly noted.
12034 */
12035
12036 /*
12037 * Note: called from cross call context. This function switches the two
12038 * buffers on a given CPU. The atomicity of this operation is assured by
12039 * disabling interrupts while the actual switch takes place; the disabling of
12040 * interrupts serializes the execution with any execution of dtrace_probe() on
12041 * the same CPU.
12042 */
12043 static void
12044 dtrace_buffer_switch(dtrace_buffer_t *buf)
12045 {
12046 caddr_t tomax = buf->dtb_tomax;
12047 caddr_t xamot = buf->dtb_xamot;
12048 dtrace_icookie_t cookie;
12049 hrtime_t now;
12050
12051 ASSERT(!(buf->dtb_flags & DTRACEBUF_NOSWITCH));
12052 ASSERT(!(buf->dtb_flags & DTRACEBUF_RING));
12053
12054 cookie = dtrace_interrupt_disable();
12055 now = dtrace_gethrtime();
12056 buf->dtb_tomax = xamot;
12057 buf->dtb_xamot = tomax;
12058 buf->dtb_xamot_drops = buf->dtb_drops;
12059 buf->dtb_xamot_offset = buf->dtb_offset;
12060 buf->dtb_xamot_errors = buf->dtb_errors;
12061 buf->dtb_xamot_flags = buf->dtb_flags;
12062 buf->dtb_offset = 0;
12063 buf->dtb_drops = 0;
12064 buf->dtb_errors = 0;
12065 buf->dtb_flags &= ~(DTRACEBUF_ERROR | DTRACEBUF_DROPPED);
12066 buf->dtb_interval = now - buf->dtb_switched;
12067 buf->dtb_switched = now;
12068 dtrace_interrupt_enable(cookie);
12069 }
12070
12071 /*
12072 * Note: called from cross call context. This function activates a buffer
12073 * on a CPU. As with dtrace_buffer_switch(), the atomicity of the operation
12074 * is guaranteed by the disabling of interrupts.
12075 */
12076 static void
12077 dtrace_buffer_activate(dtrace_state_t *state)
12078 {
12079 dtrace_buffer_t *buf;
12080 dtrace_icookie_t cookie = dtrace_interrupt_disable();
12081
12082 buf = &state->dts_buffer[curcpu];
12083
12084 if (buf->dtb_tomax != NULL) {
12085 /*
12086 * We might like to assert that the buffer is marked inactive,
12087 * but this isn't necessarily true: the buffer for the CPU
12088 * that processes the BEGIN probe has its buffer activated
12089 * manually. In this case, we take the (harmless) action
12090 * re-clearing the bit INACTIVE bit.
12091 */
12092 buf->dtb_flags &= ~DTRACEBUF_INACTIVE;
12093 }
12094
12095 dtrace_interrupt_enable(cookie);
12096 }
12097
12098 #ifdef __FreeBSD__
12099 /*
12100 * Activate the specified per-CPU buffer. This is used instead of
12101 * dtrace_buffer_activate() when APs have not yet started, i.e. when
12102 * activating anonymous state.
12103 */
12104 static void
12105 dtrace_buffer_activate_cpu(dtrace_state_t *state, int cpu)
12106 {
12107
12108 if (state->dts_buffer[cpu].dtb_tomax != NULL)
12109 state->dts_buffer[cpu].dtb_flags &= ~DTRACEBUF_INACTIVE;
12110 }
12111 #endif
12112
12113 static int
12114 dtrace_buffer_alloc(dtrace_buffer_t *bufs, size_t size, int flags,
12115 processorid_t cpu, int *factor)
12116 {
12117 #ifdef illumos
12118 cpu_t *cp;
12119 #endif
12120 dtrace_buffer_t *buf;
12121 int allocated = 0, desired = 0;
12122
12123 #ifdef illumos
12124 ASSERT(MUTEX_HELD(&cpu_lock));
12125 ASSERT(MUTEX_HELD(&dtrace_lock));
12126
12127 *factor = 1;
12128
12129 if (size > dtrace_nonroot_maxsize &&
12130 !PRIV_POLICY_CHOICE(CRED(), PRIV_ALL, B_FALSE))
12131 return (EFBIG);
12132
12133 cp = cpu_list;
12134
12135 do {
12136 if (cpu != DTRACE_CPUALL && cpu != cp->cpu_id)
12137 continue;
12138
12139 buf = &bufs[cp->cpu_id];
12140
12141 /*
12142 * If there is already a buffer allocated for this CPU, it
12143 * is only possible that this is a DR event. In this case,
12144 */
12145 if (buf->dtb_tomax != NULL) {
12146 ASSERT(buf->dtb_size == size);
12147 continue;
12148 }
12149
12150 ASSERT(buf->dtb_xamot == NULL);
12151
12152 if ((buf->dtb_tomax = kmem_zalloc(size,
12153 KM_NOSLEEP | KM_NORMALPRI)) == NULL)
12154 goto err;
12155
12156 buf->dtb_size = size;
12157 buf->dtb_flags = flags;
12158 buf->dtb_offset = 0;
12159 buf->dtb_drops = 0;
12160
12161 if (flags & DTRACEBUF_NOSWITCH)
12162 continue;
12163
12164 if ((buf->dtb_xamot = kmem_zalloc(size,
12165 KM_NOSLEEP | KM_NORMALPRI)) == NULL)
12166 goto err;
12167 } while ((cp = cp->cpu_next) != cpu_list);
12168
12169 return (0);
12170
12171 err:
12172 cp = cpu_list;
12173
12174 do {
12175 if (cpu != DTRACE_CPUALL && cpu != cp->cpu_id)
12176 continue;
12177
12178 buf = &bufs[cp->cpu_id];
12179 desired += 2;
12180
12181 if (buf->dtb_xamot != NULL) {
12182 ASSERT(buf->dtb_tomax != NULL);
12183 ASSERT(buf->dtb_size == size);
12184 kmem_free(buf->dtb_xamot, size);
12185 allocated++;
12186 }
12187
12188 if (buf->dtb_tomax != NULL) {
12189 ASSERT(buf->dtb_size == size);
12190 kmem_free(buf->dtb_tomax, size);
12191 allocated++;
12192 }
12193
12194 buf->dtb_tomax = NULL;
12195 buf->dtb_xamot = NULL;
12196 buf->dtb_size = 0;
12197 } while ((cp = cp->cpu_next) != cpu_list);
12198 #else
12199 int i;
12200
12201 *factor = 1;
12202 #if defined(__aarch64__) || defined(__amd64__) || defined(__arm__) || \
12203 defined(__mips__) || defined(__powerpc__) || defined(__riscv)
12204 /*
12205 * FreeBSD isn't good at limiting the amount of memory we
12206 * ask to malloc, so let's place a limit here before trying
12207 * to do something that might well end in tears at bedtime.
12208 */
12209 int bufsize_percpu_frac = dtrace_bufsize_max_frac * mp_ncpus;
12210 if (size > physmem * PAGE_SIZE / bufsize_percpu_frac)
12211 return (ENOMEM);
12212 #endif
12213
12214 ASSERT(MUTEX_HELD(&dtrace_lock));
12215 CPU_FOREACH(i) {
12216 if (cpu != DTRACE_CPUALL && cpu != i)
12217 continue;
12218
12219 buf = &bufs[i];
12220
12221 /*
12222 * If there is already a buffer allocated for this CPU, it
12223 * is only possible that this is a DR event. In this case,
12224 * the buffer size must match our specified size.
12225 */
12226 if (buf->dtb_tomax != NULL) {
12227 ASSERT(buf->dtb_size == size);
12228 continue;
12229 }
12230
12231 ASSERT(buf->dtb_xamot == NULL);
12232
12233 if ((buf->dtb_tomax = kmem_zalloc(size,
12234 KM_NOSLEEP | KM_NORMALPRI)) == NULL)
12235 goto err;
12236
12237 buf->dtb_size = size;
12238 buf->dtb_flags = flags;
12239 buf->dtb_offset = 0;
12240 buf->dtb_drops = 0;
12241
12242 if (flags & DTRACEBUF_NOSWITCH)
12243 continue;
12244
12245 if ((buf->dtb_xamot = kmem_zalloc(size,
12246 KM_NOSLEEP | KM_NORMALPRI)) == NULL)
12247 goto err;
12248 }
12249
12250 return (0);
12251
12252 err:
12253 /*
12254 * Error allocating memory, so free the buffers that were
12255 * allocated before the failed allocation.
12256 */
12257 CPU_FOREACH(i) {
12258 if (cpu != DTRACE_CPUALL && cpu != i)
12259 continue;
12260
12261 buf = &bufs[i];
12262 desired += 2;
12263
12264 if (buf->dtb_xamot != NULL) {
12265 ASSERT(buf->dtb_tomax != NULL);
12266 ASSERT(buf->dtb_size == size);
12267 kmem_free(buf->dtb_xamot, size);
12268 allocated++;
12269 }
12270
12271 if (buf->dtb_tomax != NULL) {
12272 ASSERT(buf->dtb_size == size);
12273 kmem_free(buf->dtb_tomax, size);
12274 allocated++;
12275 }
12276
12277 buf->dtb_tomax = NULL;
12278 buf->dtb_xamot = NULL;
12279 buf->dtb_size = 0;
12280
12281 }
12282 #endif
12283 *factor = desired / (allocated > 0 ? allocated : 1);
12284
12285 return (ENOMEM);
12286 }
12287
12288 /*
12289 * Note: called from probe context. This function just increments the drop
12290 * count on a buffer. It has been made a function to allow for the
12291 * possibility of understanding the source of mysterious drop counts. (A
12292 * problem for which one may be particularly disappointed that DTrace cannot
12293 * be used to understand DTrace.)
12294 */
12295 static void
12296 dtrace_buffer_drop(dtrace_buffer_t *buf)
12297 {
12298 buf->dtb_drops++;
12299 }
12300
12301 /*
12302 * Note: called from probe context. This function is called to reserve space
12303 * in a buffer. If mstate is non-NULL, sets the scratch base and size in the
12304 * mstate. Returns the new offset in the buffer, or a negative value if an
12305 * error has occurred.
12306 */
12307 static intptr_t
12308 dtrace_buffer_reserve(dtrace_buffer_t *buf, size_t needed, size_t align,
12309 dtrace_state_t *state, dtrace_mstate_t *mstate)
12310 {
12311 intptr_t offs = buf->dtb_offset, soffs;
12312 intptr_t woffs;
12313 caddr_t tomax;
12314 size_t total;
12315
12316 if (buf->dtb_flags & DTRACEBUF_INACTIVE)
12317 return (-1);
12318
12319 if ((tomax = buf->dtb_tomax) == NULL) {
12320 dtrace_buffer_drop(buf);
12321 return (-1);
12322 }
12323
12324 if (!(buf->dtb_flags & (DTRACEBUF_RING | DTRACEBUF_FILL))) {
12325 while (offs & (align - 1)) {
12326 /*
12327 * Assert that our alignment is off by a number which
12328 * is itself sizeof (uint32_t) aligned.
12329 */
12330 ASSERT(!((align - (offs & (align - 1))) &
12331 (sizeof (uint32_t) - 1)));
12332 DTRACE_STORE(uint32_t, tomax, offs, DTRACE_EPIDNONE);
12333 offs += sizeof (uint32_t);
12334 }
12335
12336 if ((soffs = offs + needed) > buf->dtb_size) {
12337 dtrace_buffer_drop(buf);
12338 return (-1);
12339 }
12340
12341 if (mstate == NULL)
12342 return (offs);
12343
12344 mstate->dtms_scratch_base = (uintptr_t)tomax + soffs;
12345 mstate->dtms_scratch_size = buf->dtb_size - soffs;
12346 mstate->dtms_scratch_ptr = mstate->dtms_scratch_base;
12347
12348 return (offs);
12349 }
12350
12351 if (buf->dtb_flags & DTRACEBUF_FILL) {
12352 if (state->dts_activity != DTRACE_ACTIVITY_COOLDOWN &&
12353 (buf->dtb_flags & DTRACEBUF_FULL))
12354 return (-1);
12355 goto out;
12356 }
12357
12358 total = needed + (offs & (align - 1));
12359
12360 /*
12361 * For a ring buffer, life is quite a bit more complicated. Before
12362 * we can store any padding, we need to adjust our wrapping offset.
12363 * (If we've never before wrapped or we're not about to, no adjustment
12364 * is required.)
12365 */
12366 if ((buf->dtb_flags & DTRACEBUF_WRAPPED) ||
12367 offs + total > buf->dtb_size) {
12368 woffs = buf->dtb_xamot_offset;
12369
12370 if (offs + total > buf->dtb_size) {
12371 /*
12372 * We can't fit in the end of the buffer. First, a
12373 * sanity check that we can fit in the buffer at all.
12374 */
12375 if (total > buf->dtb_size) {
12376 dtrace_buffer_drop(buf);
12377 return (-1);
12378 }
12379
12380 /*
12381 * We're going to be storing at the top of the buffer,
12382 * so now we need to deal with the wrapped offset. We
12383 * only reset our wrapped offset to 0 if it is
12384 * currently greater than the current offset. If it
12385 * is less than the current offset, it is because a
12386 * previous allocation induced a wrap -- but the
12387 * allocation didn't subsequently take the space due
12388 * to an error or false predicate evaluation. In this
12389 * case, we'll just leave the wrapped offset alone: if
12390 * the wrapped offset hasn't been advanced far enough
12391 * for this allocation, it will be adjusted in the
12392 * lower loop.
12393 */
12394 if (buf->dtb_flags & DTRACEBUF_WRAPPED) {
12395 if (woffs >= offs)
12396 woffs = 0;
12397 } else {
12398 woffs = 0;
12399 }
12400
12401 /*
12402 * Now we know that we're going to be storing to the
12403 * top of the buffer and that there is room for us
12404 * there. We need to clear the buffer from the current
12405 * offset to the end (there may be old gunk there).
12406 */
12407 while (offs < buf->dtb_size)
12408 tomax[offs++] = 0;
12409
12410 /*
12411 * We need to set our offset to zero. And because we
12412 * are wrapping, we need to set the bit indicating as
12413 * much. We can also adjust our needed space back
12414 * down to the space required by the ECB -- we know
12415 * that the top of the buffer is aligned.
12416 */
12417 offs = 0;
12418 total = needed;
12419 buf->dtb_flags |= DTRACEBUF_WRAPPED;
12420 } else {
12421 /*
12422 * There is room for us in the buffer, so we simply
12423 * need to check the wrapped offset.
12424 */
12425 if (woffs < offs) {
12426 /*
12427 * The wrapped offset is less than the offset.
12428 * This can happen if we allocated buffer space
12429 * that induced a wrap, but then we didn't
12430 * subsequently take the space due to an error
12431 * or false predicate evaluation. This is
12432 * okay; we know that _this_ allocation isn't
12433 * going to induce a wrap. We still can't
12434 * reset the wrapped offset to be zero,
12435 * however: the space may have been trashed in
12436 * the previous failed probe attempt. But at
12437 * least the wrapped offset doesn't need to
12438 * be adjusted at all...
12439 */
12440 goto out;
12441 }
12442 }
12443
12444 while (offs + total > woffs) {
12445 dtrace_epid_t epid = *(uint32_t *)(tomax + woffs);
12446 size_t size;
12447
12448 if (epid == DTRACE_EPIDNONE) {
12449 size = sizeof (uint32_t);
12450 } else {
12451 ASSERT3U(epid, <=, state->dts_necbs);
12452 ASSERT(state->dts_ecbs[epid - 1] != NULL);
12453
12454 size = state->dts_ecbs[epid - 1]->dte_size;
12455 }
12456
12457 ASSERT(woffs + size <= buf->dtb_size);
12458 ASSERT(size != 0);
12459
12460 if (woffs + size == buf->dtb_size) {
12461 /*
12462 * We've reached the end of the buffer; we want
12463 * to set the wrapped offset to 0 and break
12464 * out. However, if the offs is 0, then we're
12465 * in a strange edge-condition: the amount of
12466 * space that we want to reserve plus the size
12467 * of the record that we're overwriting is
12468 * greater than the size of the buffer. This
12469 * is problematic because if we reserve the
12470 * space but subsequently don't consume it (due
12471 * to a failed predicate or error) the wrapped
12472 * offset will be 0 -- yet the EPID at offset 0
12473 * will not be committed. This situation is
12474 * relatively easy to deal with: if we're in
12475 * this case, the buffer is indistinguishable
12476 * from one that hasn't wrapped; we need only
12477 * finish the job by clearing the wrapped bit,
12478 * explicitly setting the offset to be 0, and
12479 * zero'ing out the old data in the buffer.
12480 */
12481 if (offs == 0) {
12482 buf->dtb_flags &= ~DTRACEBUF_WRAPPED;
12483 buf->dtb_offset = 0;
12484 woffs = total;
12485
12486 while (woffs < buf->dtb_size)
12487 tomax[woffs++] = 0;
12488 }
12489
12490 woffs = 0;
12491 break;
12492 }
12493
12494 woffs += size;
12495 }
12496
12497 /*
12498 * We have a wrapped offset. It may be that the wrapped offset
12499 * has become zero -- that's okay.
12500 */
12501 buf->dtb_xamot_offset = woffs;
12502 }
12503
12504 out:
12505 /*
12506 * Now we can plow the buffer with any necessary padding.
12507 */
12508 while (offs & (align - 1)) {
12509 /*
12510 * Assert that our alignment is off by a number which
12511 * is itself sizeof (uint32_t) aligned.
12512 */
12513 ASSERT(!((align - (offs & (align - 1))) &
12514 (sizeof (uint32_t) - 1)));
12515 DTRACE_STORE(uint32_t, tomax, offs, DTRACE_EPIDNONE);
12516 offs += sizeof (uint32_t);
12517 }
12518
12519 if (buf->dtb_flags & DTRACEBUF_FILL) {
12520 if (offs + needed > buf->dtb_size - state->dts_reserve) {
12521 buf->dtb_flags |= DTRACEBUF_FULL;
12522 return (-1);
12523 }
12524 }
12525
12526 if (mstate == NULL)
12527 return (offs);
12528
12529 /*
12530 * For ring buffers and fill buffers, the scratch space is always
12531 * the inactive buffer.
12532 */
12533 mstate->dtms_scratch_base = (uintptr_t)buf->dtb_xamot;
12534 mstate->dtms_scratch_size = buf->dtb_size;
12535 mstate->dtms_scratch_ptr = mstate->dtms_scratch_base;
12536
12537 return (offs);
12538 }
12539
12540 static void
12541 dtrace_buffer_polish(dtrace_buffer_t *buf)
12542 {
12543 ASSERT(buf->dtb_flags & DTRACEBUF_RING);
12544 ASSERT(MUTEX_HELD(&dtrace_lock));
12545
12546 if (!(buf->dtb_flags & DTRACEBUF_WRAPPED))
12547 return;
12548
12549 /*
12550 * We need to polish the ring buffer. There are three cases:
12551 *
12552 * - The first (and presumably most common) is that there is no gap
12553 * between the buffer offset and the wrapped offset. In this case,
12554 * there is nothing in the buffer that isn't valid data; we can
12555 * mark the buffer as polished and return.
12556 *
12557 * - The second (less common than the first but still more common
12558 * than the third) is that there is a gap between the buffer offset
12559 * and the wrapped offset, and the wrapped offset is larger than the
12560 * buffer offset. This can happen because of an alignment issue, or
12561 * can happen because of a call to dtrace_buffer_reserve() that
12562 * didn't subsequently consume the buffer space. In this case,
12563 * we need to zero the data from the buffer offset to the wrapped
12564 * offset.
12565 *
12566 * - The third (and least common) is that there is a gap between the
12567 * buffer offset and the wrapped offset, but the wrapped offset is
12568 * _less_ than the buffer offset. This can only happen because a
12569 * call to dtrace_buffer_reserve() induced a wrap, but the space
12570 * was not subsequently consumed. In this case, we need to zero the
12571 * space from the offset to the end of the buffer _and_ from the
12572 * top of the buffer to the wrapped offset.
12573 */
12574 if (buf->dtb_offset < buf->dtb_xamot_offset) {
12575 bzero(buf->dtb_tomax + buf->dtb_offset,
12576 buf->dtb_xamot_offset - buf->dtb_offset);
12577 }
12578
12579 if (buf->dtb_offset > buf->dtb_xamot_offset) {
12580 bzero(buf->dtb_tomax + buf->dtb_offset,
12581 buf->dtb_size - buf->dtb_offset);
12582 bzero(buf->dtb_tomax, buf->dtb_xamot_offset);
12583 }
12584 }
12585
12586 /*
12587 * This routine determines if data generated at the specified time has likely
12588 * been entirely consumed at user-level. This routine is called to determine
12589 * if an ECB on a defunct probe (but for an active enabling) can be safely
12590 * disabled and destroyed.
12591 */
12592 static int
12593 dtrace_buffer_consumed(dtrace_buffer_t *bufs, hrtime_t when)
12594 {
12595 int i;
12596
12597 for (i = 0; i < NCPU; i++) {
12598 dtrace_buffer_t *buf = &bufs[i];
12599
12600 if (buf->dtb_size == 0)
12601 continue;
12602
12603 if (buf->dtb_flags & DTRACEBUF_RING)
12604 return (0);
12605
12606 if (!buf->dtb_switched && buf->dtb_offset != 0)
12607 return (0);
12608
12609 if (buf->dtb_switched - buf->dtb_interval < when)
12610 return (0);
12611 }
12612
12613 return (1);
12614 }
12615
12616 static void
12617 dtrace_buffer_free(dtrace_buffer_t *bufs)
12618 {
12619 int i;
12620
12621 for (i = 0; i < NCPU; i++) {
12622 dtrace_buffer_t *buf = &bufs[i];
12623
12624 if (buf->dtb_tomax == NULL) {
12625 ASSERT(buf->dtb_xamot == NULL);
12626 ASSERT(buf->dtb_size == 0);
12627 continue;
12628 }
12629
12630 if (buf->dtb_xamot != NULL) {
12631 ASSERT(!(buf->dtb_flags & DTRACEBUF_NOSWITCH));
12632 kmem_free(buf->dtb_xamot, buf->dtb_size);
12633 }
12634
12635 kmem_free(buf->dtb_tomax, buf->dtb_size);
12636 buf->dtb_size = 0;
12637 buf->dtb_tomax = NULL;
12638 buf->dtb_xamot = NULL;
12639 }
12640 }
12641
12642 /*
12643 * DTrace Enabling Functions
12644 */
12645 static dtrace_enabling_t *
12646 dtrace_enabling_create(dtrace_vstate_t *vstate)
12647 {
12648 dtrace_enabling_t *enab;
12649
12650 enab = kmem_zalloc(sizeof (dtrace_enabling_t), KM_SLEEP);
12651 enab->dten_vstate = vstate;
12652
12653 return (enab);
12654 }
12655
12656 static void
12657 dtrace_enabling_add(dtrace_enabling_t *enab, dtrace_ecbdesc_t *ecb)
12658 {
12659 dtrace_ecbdesc_t **ndesc;
12660 size_t osize, nsize;
12661
12662 /*
12663 * We can't add to enablings after we've enabled them, or after we've
12664 * retained them.
12665 */
12666 ASSERT(enab->dten_probegen == 0);
12667 ASSERT(enab->dten_next == NULL && enab->dten_prev == NULL);
12668
12669 if (enab->dten_ndesc < enab->dten_maxdesc) {
12670 enab->dten_desc[enab->dten_ndesc++] = ecb;
12671 return;
12672 }
12673
12674 osize = enab->dten_maxdesc * sizeof (dtrace_enabling_t *);
12675
12676 if (enab->dten_maxdesc == 0) {
12677 enab->dten_maxdesc = 1;
12678 } else {
12679 enab->dten_maxdesc <<= 1;
12680 }
12681
12682 ASSERT(enab->dten_ndesc < enab->dten_maxdesc);
12683
12684 nsize = enab->dten_maxdesc * sizeof (dtrace_enabling_t *);
12685 ndesc = kmem_zalloc(nsize, KM_SLEEP);
12686 bcopy(enab->dten_desc, ndesc, osize);
12687 if (enab->dten_desc != NULL)
12688 kmem_free(enab->dten_desc, osize);
12689
12690 enab->dten_desc = ndesc;
12691 enab->dten_desc[enab->dten_ndesc++] = ecb;
12692 }
12693
12694 static void
12695 dtrace_enabling_addlike(dtrace_enabling_t *enab, dtrace_ecbdesc_t *ecb,
12696 dtrace_probedesc_t *pd)
12697 {
12698 dtrace_ecbdesc_t *new;
12699 dtrace_predicate_t *pred;
12700 dtrace_actdesc_t *act;
12701
12702 /*
12703 * We're going to create a new ECB description that matches the
12704 * specified ECB in every way, but has the specified probe description.
12705 */
12706 new = kmem_zalloc(sizeof (dtrace_ecbdesc_t), KM_SLEEP);
12707
12708 if ((pred = ecb->dted_pred.dtpdd_predicate) != NULL)
12709 dtrace_predicate_hold(pred);
12710
12711 for (act = ecb->dted_action; act != NULL; act = act->dtad_next)
12712 dtrace_actdesc_hold(act);
12713
12714 new->dted_action = ecb->dted_action;
12715 new->dted_pred = ecb->dted_pred;
12716 new->dted_probe = *pd;
12717 new->dted_uarg = ecb->dted_uarg;
12718
12719 dtrace_enabling_add(enab, new);
12720 }
12721
12722 static void
12723 dtrace_enabling_dump(dtrace_enabling_t *enab)
12724 {
12725 int i;
12726
12727 for (i = 0; i < enab->dten_ndesc; i++) {
12728 dtrace_probedesc_t *desc = &enab->dten_desc[i]->dted_probe;
12729
12730 #ifdef __FreeBSD__
12731 printf("dtrace: enabling probe %d (%s:%s:%s:%s)\n", i,
12732 desc->dtpd_provider, desc->dtpd_mod,
12733 desc->dtpd_func, desc->dtpd_name);
12734 #else
12735 cmn_err(CE_NOTE, "enabling probe %d (%s:%s:%s:%s)", i,
12736 desc->dtpd_provider, desc->dtpd_mod,
12737 desc->dtpd_func, desc->dtpd_name);
12738 #endif
12739 }
12740 }
12741
12742 static void
12743 dtrace_enabling_destroy(dtrace_enabling_t *enab)
12744 {
12745 int i;
12746 dtrace_ecbdesc_t *ep;
12747 dtrace_vstate_t *vstate = enab->dten_vstate;
12748
12749 ASSERT(MUTEX_HELD(&dtrace_lock));
12750
12751 for (i = 0; i < enab->dten_ndesc; i++) {
12752 dtrace_actdesc_t *act, *next;
12753 dtrace_predicate_t *pred;
12754
12755 ep = enab->dten_desc[i];
12756
12757 if ((pred = ep->dted_pred.dtpdd_predicate) != NULL)
12758 dtrace_predicate_release(pred, vstate);
12759
12760 for (act = ep->dted_action; act != NULL; act = next) {
12761 next = act->dtad_next;
12762 dtrace_actdesc_release(act, vstate);
12763 }
12764
12765 kmem_free(ep, sizeof (dtrace_ecbdesc_t));
12766 }
12767
12768 if (enab->dten_desc != NULL)
12769 kmem_free(enab->dten_desc,
12770 enab->dten_maxdesc * sizeof (dtrace_enabling_t *));
12771
12772 /*
12773 * If this was a retained enabling, decrement the dts_nretained count
12774 * and take it off of the dtrace_retained list.
12775 */
12776 if (enab->dten_prev != NULL || enab->dten_next != NULL ||
12777 dtrace_retained == enab) {
12778 ASSERT(enab->dten_vstate->dtvs_state != NULL);
12779 ASSERT(enab->dten_vstate->dtvs_state->dts_nretained > 0);
12780 enab->dten_vstate->dtvs_state->dts_nretained--;
12781 dtrace_retained_gen++;
12782 }
12783
12784 if (enab->dten_prev == NULL) {
12785 if (dtrace_retained == enab) {
12786 dtrace_retained = enab->dten_next;
12787
12788 if (dtrace_retained != NULL)
12789 dtrace_retained->dten_prev = NULL;
12790 }
12791 } else {
12792 ASSERT(enab != dtrace_retained);
12793 ASSERT(dtrace_retained != NULL);
12794 enab->dten_prev->dten_next = enab->dten_next;
12795 }
12796
12797 if (enab->dten_next != NULL) {
12798 ASSERT(dtrace_retained != NULL);
12799 enab->dten_next->dten_prev = enab->dten_prev;
12800 }
12801
12802 kmem_free(enab, sizeof (dtrace_enabling_t));
12803 }
12804
12805 static int
12806 dtrace_enabling_retain(dtrace_enabling_t *enab)
12807 {
12808 dtrace_state_t *state;
12809
12810 ASSERT(MUTEX_HELD(&dtrace_lock));
12811 ASSERT(enab->dten_next == NULL && enab->dten_prev == NULL);
12812 ASSERT(enab->dten_vstate != NULL);
12813
12814 state = enab->dten_vstate->dtvs_state;
12815 ASSERT(state != NULL);
12816
12817 /*
12818 * We only allow each state to retain dtrace_retain_max enablings.
12819 */
12820 if (state->dts_nretained >= dtrace_retain_max)
12821 return (ENOSPC);
12822
12823 state->dts_nretained++;
12824 dtrace_retained_gen++;
12825
12826 if (dtrace_retained == NULL) {
12827 dtrace_retained = enab;
12828 return (0);
12829 }
12830
12831 enab->dten_next = dtrace_retained;
12832 dtrace_retained->dten_prev = enab;
12833 dtrace_retained = enab;
12834
12835 return (0);
12836 }
12837
12838 static int
12839 dtrace_enabling_replicate(dtrace_state_t *state, dtrace_probedesc_t *match,
12840 dtrace_probedesc_t *create)
12841 {
12842 dtrace_enabling_t *new, *enab;
12843 int found = 0, err = ENOENT;
12844
12845 ASSERT(MUTEX_HELD(&dtrace_lock));
12846 ASSERT(strlen(match->dtpd_provider) < DTRACE_PROVNAMELEN);
12847 ASSERT(strlen(match->dtpd_mod) < DTRACE_MODNAMELEN);
12848 ASSERT(strlen(match->dtpd_func) < DTRACE_FUNCNAMELEN);
12849 ASSERT(strlen(match->dtpd_name) < DTRACE_NAMELEN);
12850
12851 new = dtrace_enabling_create(&state->dts_vstate);
12852
12853 /*
12854 * Iterate over all retained enablings, looking for enablings that
12855 * match the specified state.
12856 */
12857 for (enab = dtrace_retained; enab != NULL; enab = enab->dten_next) {
12858 int i;
12859
12860 /*
12861 * dtvs_state can only be NULL for helper enablings -- and
12862 * helper enablings can't be retained.
12863 */
12864 ASSERT(enab->dten_vstate->dtvs_state != NULL);
12865
12866 if (enab->dten_vstate->dtvs_state != state)
12867 continue;
12868
12869 /*
12870 * Now iterate over each probe description; we're looking for
12871 * an exact match to the specified probe description.
12872 */
12873 for (i = 0; i < enab->dten_ndesc; i++) {
12874 dtrace_ecbdesc_t *ep = enab->dten_desc[i];
12875 dtrace_probedesc_t *pd = &ep->dted_probe;
12876
12877 if (strcmp(pd->dtpd_provider, match->dtpd_provider))
12878 continue;
12879
12880 if (strcmp(pd->dtpd_mod, match->dtpd_mod))
12881 continue;
12882
12883 if (strcmp(pd->dtpd_func, match->dtpd_func))
12884 continue;
12885
12886 if (strcmp(pd->dtpd_name, match->dtpd_name))
12887 continue;
12888
12889 /*
12890 * We have a winning probe! Add it to our growing
12891 * enabling.
12892 */
12893 found = 1;
12894 dtrace_enabling_addlike(new, ep, create);
12895 }
12896 }
12897
12898 if (!found || (err = dtrace_enabling_retain(new)) != 0) {
12899 dtrace_enabling_destroy(new);
12900 return (err);
12901 }
12902
12903 return (0);
12904 }
12905
12906 static void
12907 dtrace_enabling_retract(dtrace_state_t *state)
12908 {
12909 dtrace_enabling_t *enab, *next;
12910
12911 ASSERT(MUTEX_HELD(&dtrace_lock));
12912
12913 /*
12914 * Iterate over all retained enablings, destroy the enablings retained
12915 * for the specified state.
12916 */
12917 for (enab = dtrace_retained; enab != NULL; enab = next) {
12918 next = enab->dten_next;
12919
12920 /*
12921 * dtvs_state can only be NULL for helper enablings -- and
12922 * helper enablings can't be retained.
12923 */
12924 ASSERT(enab->dten_vstate->dtvs_state != NULL);
12925
12926 if (enab->dten_vstate->dtvs_state == state) {
12927 ASSERT(state->dts_nretained > 0);
12928 dtrace_enabling_destroy(enab);
12929 }
12930 }
12931
12932 ASSERT(state->dts_nretained == 0);
12933 }
12934
12935 static int
12936 dtrace_enabling_match(dtrace_enabling_t *enab, int *nmatched)
12937 {
12938 int i = 0;
12939 int matched = 0;
12940
12941 ASSERT(MUTEX_HELD(&cpu_lock));
12942 ASSERT(MUTEX_HELD(&dtrace_lock));
12943
12944 for (i = 0; i < enab->dten_ndesc; i++) {
12945 dtrace_ecbdesc_t *ep = enab->dten_desc[i];
12946
12947 enab->dten_current = ep;
12948 enab->dten_error = 0;
12949
12950 matched += dtrace_probe_enable(&ep->dted_probe, enab);
12951
12952 if (enab->dten_error != 0) {
12953 /*
12954 * If we get an error half-way through enabling the
12955 * probes, we kick out -- perhaps with some number of
12956 * them enabled. Leaving enabled probes enabled may
12957 * be slightly confusing for user-level, but we expect
12958 * that no one will attempt to actually drive on in
12959 * the face of such errors. If this is an anonymous
12960 * enabling (indicated with a NULL nmatched pointer),
12961 * we cmn_err() a message. We aren't expecting to
12962 * get such an error -- such as it can exist at all,
12963 * it would be a result of corrupted DOF in the driver
12964 * properties.
12965 */
12966 if (nmatched == NULL) {
12967 cmn_err(CE_WARN, "dtrace_enabling_match() "
12968 "error on %p: %d", (void *)ep,
12969 enab->dten_error);
12970 }
12971
12972 return (enab->dten_error);
12973 }
12974 }
12975
12976 enab->dten_probegen = dtrace_probegen;
12977 if (nmatched != NULL)
12978 *nmatched = matched;
12979
12980 return (0);
12981 }
12982
12983 static void
12984 dtrace_enabling_matchall(void)
12985 {
12986 dtrace_enabling_t *enab;
12987
12988 mutex_enter(&cpu_lock);
12989 mutex_enter(&dtrace_lock);
12990
12991 /*
12992 * Iterate over all retained enablings to see if any probes match
12993 * against them. We only perform this operation on enablings for which
12994 * we have sufficient permissions by virtue of being in the global zone
12995 * or in the same zone as the DTrace client. Because we can be called
12996 * after dtrace_detach() has been called, we cannot assert that there
12997 * are retained enablings. We can safely load from dtrace_retained,
12998 * however: the taskq_destroy() at the end of dtrace_detach() will
12999 * block pending our completion.
13000 */
13001 for (enab = dtrace_retained; enab != NULL; enab = enab->dten_next) {
13002 #ifdef illumos
13003 cred_t *cr = enab->dten_vstate->dtvs_state->dts_cred.dcr_cred;
13004
13005 if (INGLOBALZONE(curproc) ||
13006 cr != NULL && getzoneid() == crgetzoneid(cr))
13007 #endif
13008 (void) dtrace_enabling_match(enab, NULL);
13009 }
13010
13011 mutex_exit(&dtrace_lock);
13012 mutex_exit(&cpu_lock);
13013 }
13014
13015 /*
13016 * If an enabling is to be enabled without having matched probes (that is, if
13017 * dtrace_state_go() is to be called on the underlying dtrace_state_t), the
13018 * enabling must be _primed_ by creating an ECB for every ECB description.
13019 * This must be done to assure that we know the number of speculations, the
13020 * number of aggregations, the minimum buffer size needed, etc. before we
13021 * transition out of DTRACE_ACTIVITY_INACTIVE. To do this without actually
13022 * enabling any probes, we create ECBs for every ECB decription, but with a
13023 * NULL probe -- which is exactly what this function does.
13024 */
13025 static void
13026 dtrace_enabling_prime(dtrace_state_t *state)
13027 {
13028 dtrace_enabling_t *enab;
13029 int i;
13030
13031 for (enab = dtrace_retained; enab != NULL; enab = enab->dten_next) {
13032 ASSERT(enab->dten_vstate->dtvs_state != NULL);
13033
13034 if (enab->dten_vstate->dtvs_state != state)
13035 continue;
13036
13037 /*
13038 * We don't want to prime an enabling more than once, lest
13039 * we allow a malicious user to induce resource exhaustion.
13040 * (The ECBs that result from priming an enabling aren't
13041 * leaked -- but they also aren't deallocated until the
13042 * consumer state is destroyed.)
13043 */
13044 if (enab->dten_primed)
13045 continue;
13046
13047 for (i = 0; i < enab->dten_ndesc; i++) {
13048 enab->dten_current = enab->dten_desc[i];
13049 (void) dtrace_probe_enable(NULL, enab);
13050 }
13051
13052 enab->dten_primed = 1;
13053 }
13054 }
13055
13056 /*
13057 * Called to indicate that probes should be provided due to retained
13058 * enablings. This is implemented in terms of dtrace_probe_provide(), but it
13059 * must take an initial lap through the enabling calling the dtps_provide()
13060 * entry point explicitly to allow for autocreated probes.
13061 */
13062 static void
13063 dtrace_enabling_provide(dtrace_provider_t *prv)
13064 {
13065 int i, all = 0;
13066 dtrace_probedesc_t desc;
13067 dtrace_genid_t gen;
13068
13069 ASSERT(MUTEX_HELD(&dtrace_lock));
13070 ASSERT(MUTEX_HELD(&dtrace_provider_lock));
13071
13072 if (prv == NULL) {
13073 all = 1;
13074 prv = dtrace_provider;
13075 }
13076
13077 do {
13078 dtrace_enabling_t *enab;
13079 void *parg = prv->dtpv_arg;
13080
13081 retry:
13082 gen = dtrace_retained_gen;
13083 for (enab = dtrace_retained; enab != NULL;
13084 enab = enab->dten_next) {
13085 for (i = 0; i < enab->dten_ndesc; i++) {
13086 desc = enab->dten_desc[i]->dted_probe;
13087 mutex_exit(&dtrace_lock);
13088 prv->dtpv_pops.dtps_provide(parg, &desc);
13089 mutex_enter(&dtrace_lock);
13090 /*
13091 * Process the retained enablings again if
13092 * they have changed while we weren't holding
13093 * dtrace_lock.
13094 */
13095 if (gen != dtrace_retained_gen)
13096 goto retry;
13097 }
13098 }
13099 } while (all && (prv = prv->dtpv_next) != NULL);
13100
13101 mutex_exit(&dtrace_lock);
13102 dtrace_probe_provide(NULL, all ? NULL : prv);
13103 mutex_enter(&dtrace_lock);
13104 }
13105
13106 /*
13107 * Called to reap ECBs that are attached to probes from defunct providers.
13108 */
13109 static void
13110 dtrace_enabling_reap(void)
13111 {
13112 dtrace_provider_t *prov;
13113 dtrace_probe_t *probe;
13114 dtrace_ecb_t *ecb;
13115 hrtime_t when;
13116 int i;
13117
13118 mutex_enter(&cpu_lock);
13119 mutex_enter(&dtrace_lock);
13120
13121 for (i = 0; i < dtrace_nprobes; i++) {
13122 if ((probe = dtrace_probes[i]) == NULL)
13123 continue;
13124
13125 if (probe->dtpr_ecb == NULL)
13126 continue;
13127
13128 prov = probe->dtpr_provider;
13129
13130 if ((when = prov->dtpv_defunct) == 0)
13131 continue;
13132
13133 /*
13134 * We have ECBs on a defunct provider: we want to reap these
13135 * ECBs to allow the provider to unregister. The destruction
13136 * of these ECBs must be done carefully: if we destroy the ECB
13137 * and the consumer later wishes to consume an EPID that
13138 * corresponds to the destroyed ECB (and if the EPID metadata
13139 * has not been previously consumed), the consumer will abort
13140 * processing on the unknown EPID. To reduce (but not, sadly,
13141 * eliminate) the possibility of this, we will only destroy an
13142 * ECB for a defunct provider if, for the state that
13143 * corresponds to the ECB:
13144 *
13145 * (a) There is no speculative tracing (which can effectively
13146 * cache an EPID for an arbitrary amount of time).
13147 *
13148 * (b) The principal buffers have been switched twice since the
13149 * provider became defunct.
13150 *
13151 * (c) The aggregation buffers are of zero size or have been
13152 * switched twice since the provider became defunct.
13153 *
13154 * We use dts_speculates to determine (a) and call a function
13155 * (dtrace_buffer_consumed()) to determine (b) and (c). Note
13156 * that as soon as we've been unable to destroy one of the ECBs
13157 * associated with the probe, we quit trying -- reaping is only
13158 * fruitful in as much as we can destroy all ECBs associated
13159 * with the defunct provider's probes.
13160 */
13161 while ((ecb = probe->dtpr_ecb) != NULL) {
13162 dtrace_state_t *state = ecb->dte_state;
13163 dtrace_buffer_t *buf = state->dts_buffer;
13164 dtrace_buffer_t *aggbuf = state->dts_aggbuffer;
13165
13166 if (state->dts_speculates)
13167 break;
13168
13169 if (!dtrace_buffer_consumed(buf, when))
13170 break;
13171
13172 if (!dtrace_buffer_consumed(aggbuf, when))
13173 break;
13174
13175 dtrace_ecb_disable(ecb);
13176 ASSERT(probe->dtpr_ecb != ecb);
13177 dtrace_ecb_destroy(ecb);
13178 }
13179 }
13180
13181 mutex_exit(&dtrace_lock);
13182 mutex_exit(&cpu_lock);
13183 }
13184
13185 /*
13186 * DTrace DOF Functions
13187 */
13188 /*ARGSUSED*/
13189 static void
13190 dtrace_dof_error(dof_hdr_t *dof, const char *str)
13191 {
13192 if (dtrace_err_verbose)
13193 cmn_err(CE_WARN, "failed to process DOF: %s", str);
13194
13195 #ifdef DTRACE_ERRDEBUG
13196 dtrace_errdebug(str);
13197 #endif
13198 }
13199
13200 /*
13201 * Create DOF out of a currently enabled state. Right now, we only create
13202 * DOF containing the run-time options -- but this could be expanded to create
13203 * complete DOF representing the enabled state.
13204 */
13205 static dof_hdr_t *
13206 dtrace_dof_create(dtrace_state_t *state)
13207 {
13208 dof_hdr_t *dof;
13209 dof_sec_t *sec;
13210 dof_optdesc_t *opt;
13211 int i, len = sizeof (dof_hdr_t) +
13212 roundup(sizeof (dof_sec_t), sizeof (uint64_t)) +
13213 sizeof (dof_optdesc_t) * DTRACEOPT_MAX;
13214
13215 ASSERT(MUTEX_HELD(&dtrace_lock));
13216
13217 dof = kmem_zalloc(len, KM_SLEEP);
13218 dof->dofh_ident[DOF_ID_MAG0] = DOF_MAG_MAG0;
13219 dof->dofh_ident[DOF_ID_MAG1] = DOF_MAG_MAG1;
13220 dof->dofh_ident[DOF_ID_MAG2] = DOF_MAG_MAG2;
13221 dof->dofh_ident[DOF_ID_MAG3] = DOF_MAG_MAG3;
13222
13223 dof->dofh_ident[DOF_ID_MODEL] = DOF_MODEL_NATIVE;
13224 dof->dofh_ident[DOF_ID_ENCODING] = DOF_ENCODE_NATIVE;
13225 dof->dofh_ident[DOF_ID_VERSION] = DOF_VERSION;
13226 dof->dofh_ident[DOF_ID_DIFVERS] = DIF_VERSION;
13227 dof->dofh_ident[DOF_ID_DIFIREG] = DIF_DIR_NREGS;
13228 dof->dofh_ident[DOF_ID_DIFTREG] = DIF_DTR_NREGS;
13229
13230 dof->dofh_flags = 0;
13231 dof->dofh_hdrsize = sizeof (dof_hdr_t);
13232 dof->dofh_secsize = sizeof (dof_sec_t);
13233 dof->dofh_secnum = 1; /* only DOF_SECT_OPTDESC */
13234 dof->dofh_secoff = sizeof (dof_hdr_t);
13235 dof->dofh_loadsz = len;
13236 dof->dofh_filesz = len;
13237 dof->dofh_pad = 0;
13238
13239 /*
13240 * Fill in the option section header...
13241 */
13242 sec = (dof_sec_t *)((uintptr_t)dof + sizeof (dof_hdr_t));
13243 sec->dofs_type = DOF_SECT_OPTDESC;
13244 sec->dofs_align = sizeof (uint64_t);
13245 sec->dofs_flags = DOF_SECF_LOAD;
13246 sec->dofs_entsize = sizeof (dof_optdesc_t);
13247
13248 opt = (dof_optdesc_t *)((uintptr_t)sec +
13249 roundup(sizeof (dof_sec_t), sizeof (uint64_t)));
13250
13251 sec->dofs_offset = (uintptr_t)opt - (uintptr_t)dof;
13252 sec->dofs_size = sizeof (dof_optdesc_t) * DTRACEOPT_MAX;
13253
13254 for (i = 0; i < DTRACEOPT_MAX; i++) {
13255 opt[i].dofo_option = i;
13256 opt[i].dofo_strtab = DOF_SECIDX_NONE;
13257 opt[i].dofo_value = state->dts_options[i];
13258 }
13259
13260 return (dof);
13261 }
13262
13263 static dof_hdr_t *
13264 dtrace_dof_copyin(uintptr_t uarg, int *errp)
13265 {
13266 dof_hdr_t hdr, *dof;
13267
13268 ASSERT(!MUTEX_HELD(&dtrace_lock));
13269
13270 /*
13271 * First, we're going to copyin() the sizeof (dof_hdr_t).
13272 */
13273 if (copyin((void *)uarg, &hdr, sizeof (hdr)) != 0) {
13274 dtrace_dof_error(NULL, "failed to copyin DOF header");
13275 *errp = EFAULT;
13276 return (NULL);
13277 }
13278
13279 /*
13280 * Now we'll allocate the entire DOF and copy it in -- provided
13281 * that the length isn't outrageous.
13282 */
13283 if (hdr.dofh_loadsz >= dtrace_dof_maxsize) {
13284 dtrace_dof_error(&hdr, "load size exceeds maximum");
13285 *errp = E2BIG;
13286 return (NULL);
13287 }
13288
13289 if (hdr.dofh_loadsz < sizeof (hdr)) {
13290 dtrace_dof_error(&hdr, "invalid load size");
13291 *errp = EINVAL;
13292 return (NULL);
13293 }
13294
13295 dof = kmem_alloc(hdr.dofh_loadsz, KM_SLEEP);
13296
13297 if (copyin((void *)uarg, dof, hdr.dofh_loadsz) != 0 ||
13298 dof->dofh_loadsz != hdr.dofh_loadsz) {
13299 kmem_free(dof, hdr.dofh_loadsz);
13300 *errp = EFAULT;
13301 return (NULL);
13302 }
13303
13304 return (dof);
13305 }
13306
13307 #ifdef __FreeBSD__
13308 static dof_hdr_t *
13309 dtrace_dof_copyin_proc(struct proc *p, uintptr_t uarg, int *errp)
13310 {
13311 dof_hdr_t hdr, *dof;
13312 struct thread *td;
13313 size_t loadsz;
13314
13315 ASSERT(!MUTEX_HELD(&dtrace_lock));
13316
13317 td = curthread;
13318
13319 /*
13320 * First, we're going to copyin() the sizeof (dof_hdr_t).
13321 */
13322 if (proc_readmem(td, p, uarg, &hdr, sizeof(hdr)) != sizeof(hdr)) {
13323 dtrace_dof_error(NULL, "failed to copyin DOF header");
13324 *errp = EFAULT;
13325 return (NULL);
13326 }
13327
13328 /*
13329 * Now we'll allocate the entire DOF and copy it in -- provided
13330 * that the length isn't outrageous.
13331 */
13332 if (hdr.dofh_loadsz >= dtrace_dof_maxsize) {
13333 dtrace_dof_error(&hdr, "load size exceeds maximum");
13334 *errp = E2BIG;
13335 return (NULL);
13336 }
13337 loadsz = (size_t)hdr.dofh_loadsz;
13338
13339 if (loadsz < sizeof (hdr)) {
13340 dtrace_dof_error(&hdr, "invalid load size");
13341 *errp = EINVAL;
13342 return (NULL);
13343 }
13344
13345 dof = kmem_alloc(loadsz, KM_SLEEP);
13346
13347 if (proc_readmem(td, p, uarg, dof, loadsz) != loadsz ||
13348 dof->dofh_loadsz != loadsz) {
13349 kmem_free(dof, hdr.dofh_loadsz);
13350 *errp = EFAULT;
13351 return (NULL);
13352 }
13353
13354 return (dof);
13355 }
13356
13357 static __inline uchar_t
13358 dtrace_dof_char(char c)
13359 {
13360
13361 switch (c) {
13362 case '0':
13363 case '1':
13364 case '2':
13365 case '3':
13366 case '4':
13367 case '5':
13368 case '6':
13369 case '7':
13370 case '8':
13371 case '9':
13372 return (c - '0');
13373 case 'A':
13374 case 'B':
13375 case 'C':
13376 case 'D':
13377 case 'E':
13378 case 'F':
13379 return (c - 'A' + 10);
13380 case 'a':
13381 case 'b':
13382 case 'c':
13383 case 'd':
13384 case 'e':
13385 case 'f':
13386 return (c - 'a' + 10);
13387 }
13388 /* Should not reach here. */
13389 return (UCHAR_MAX);
13390 }
13391 #endif /* __FreeBSD__ */
13392
13393 static dof_hdr_t *
13394 dtrace_dof_property(const char *name)
13395 {
13396 #ifdef __FreeBSD__
13397 uint8_t *dofbuf;
13398 u_char *data, *eol;
13399 caddr_t doffile;
13400 size_t bytes, len, i;
13401 dof_hdr_t *dof;
13402 u_char c1, c2;
13403
13404 dof = NULL;
13405
13406 doffile = preload_search_by_type("dtrace_dof");
13407 if (doffile == NULL)
13408 return (NULL);
13409
13410 data = preload_fetch_addr(doffile);
13411 len = preload_fetch_size(doffile);
13412 for (;;) {
13413 /* Look for the end of the line. All lines end in a newline. */
13414 eol = memchr(data, '\n', len);
13415 if (eol == NULL)
13416 return (NULL);
13417
13418 if (strncmp(name, data, strlen(name)) == 0)
13419 break;
13420
13421 eol++; /* skip past the newline */
13422 len -= eol - data;
13423 data = eol;
13424 }
13425
13426 /* We've found the data corresponding to the specified key. */
13427
13428 data += strlen(name) + 1; /* skip past the '=' */
13429 len = eol - data;
13430 if (len % 2 != 0) {
13431 dtrace_dof_error(NULL, "invalid DOF encoding length");
13432 goto doferr;
13433 }
13434 bytes = len / 2;
13435 if (bytes < sizeof(dof_hdr_t)) {
13436 dtrace_dof_error(NULL, "truncated header");
13437 goto doferr;
13438 }
13439
13440 /*
13441 * Each byte is represented by the two ASCII characters in its hex
13442 * representation.
13443 */
13444 dofbuf = malloc(bytes, M_SOLARIS, M_WAITOK);
13445 for (i = 0; i < bytes; i++) {
13446 c1 = dtrace_dof_char(data[i * 2]);
13447 c2 = dtrace_dof_char(data[i * 2 + 1]);
13448 if (c1 == UCHAR_MAX || c2 == UCHAR_MAX) {
13449 dtrace_dof_error(NULL, "invalid hex char in DOF");
13450 goto doferr;
13451 }
13452 dofbuf[i] = c1 * 16 + c2;
13453 }
13454
13455 dof = (dof_hdr_t *)dofbuf;
13456 if (bytes < dof->dofh_loadsz) {
13457 dtrace_dof_error(NULL, "truncated DOF");
13458 goto doferr;
13459 }
13460
13461 if (dof->dofh_loadsz >= dtrace_dof_maxsize) {
13462 dtrace_dof_error(NULL, "oversized DOF");
13463 goto doferr;
13464 }
13465
13466 return (dof);
13467
13468 doferr:
13469 free(dof, M_SOLARIS);
13470 return (NULL);
13471 #else /* __FreeBSD__ */
13472 uchar_t *buf;
13473 uint64_t loadsz;
13474 unsigned int len, i;
13475 dof_hdr_t *dof;
13476
13477 /*
13478 * Unfortunately, array of values in .conf files are always (and
13479 * only) interpreted to be integer arrays. We must read our DOF
13480 * as an integer array, and then squeeze it into a byte array.
13481 */
13482 if (ddi_prop_lookup_int_array(DDI_DEV_T_ANY, dtrace_devi, 0,
13483 (char *)name, (int **)&buf, &len) != DDI_PROP_SUCCESS)
13484 return (NULL);
13485
13486 for (i = 0; i < len; i++)
13487 buf[i] = (uchar_t)(((int *)buf)[i]);
13488
13489 if (len < sizeof (dof_hdr_t)) {
13490 ddi_prop_free(buf);
13491 dtrace_dof_error(NULL, "truncated header");
13492 return (NULL);
13493 }
13494
13495 if (len < (loadsz = ((dof_hdr_t *)buf)->dofh_loadsz)) {
13496 ddi_prop_free(buf);
13497 dtrace_dof_error(NULL, "truncated DOF");
13498 return (NULL);
13499 }
13500
13501 if (loadsz >= dtrace_dof_maxsize) {
13502 ddi_prop_free(buf);
13503 dtrace_dof_error(NULL, "oversized DOF");
13504 return (NULL);
13505 }
13506
13507 dof = kmem_alloc(loadsz, KM_SLEEP);
13508 bcopy(buf, dof, loadsz);
13509 ddi_prop_free(buf);
13510
13511 return (dof);
13512 #endif /* !__FreeBSD__ */
13513 }
13514
13515 static void
13516 dtrace_dof_destroy(dof_hdr_t *dof)
13517 {
13518 kmem_free(dof, dof->dofh_loadsz);
13519 }
13520
13521 /*
13522 * Return the dof_sec_t pointer corresponding to a given section index. If the
13523 * index is not valid, dtrace_dof_error() is called and NULL is returned. If
13524 * a type other than DOF_SECT_NONE is specified, the header is checked against
13525 * this type and NULL is returned if the types do not match.
13526 */
13527 static dof_sec_t *
13528 dtrace_dof_sect(dof_hdr_t *dof, uint32_t type, dof_secidx_t i)
13529 {
13530 dof_sec_t *sec = (dof_sec_t *)(uintptr_t)
13531 ((uintptr_t)dof + dof->dofh_secoff + i * dof->dofh_secsize);
13532
13533 if (i >= dof->dofh_secnum) {
13534 dtrace_dof_error(dof, "referenced section index is invalid");
13535 return (NULL);
13536 }
13537
13538 if (!(sec->dofs_flags & DOF_SECF_LOAD)) {
13539 dtrace_dof_error(dof, "referenced section is not loadable");
13540 return (NULL);
13541 }
13542
13543 if (type != DOF_SECT_NONE && type != sec->dofs_type) {
13544 dtrace_dof_error(dof, "referenced section is the wrong type");
13545 return (NULL);
13546 }
13547
13548 return (sec);
13549 }
13550
13551 static dtrace_probedesc_t *
13552 dtrace_dof_probedesc(dof_hdr_t *dof, dof_sec_t *sec, dtrace_probedesc_t *desc)
13553 {
13554 dof_probedesc_t *probe;
13555 dof_sec_t *strtab;
13556 uintptr_t daddr = (uintptr_t)dof;
13557 uintptr_t str;
13558 size_t size;
13559
13560 if (sec->dofs_type != DOF_SECT_PROBEDESC) {
13561 dtrace_dof_error(dof, "invalid probe section");
13562 return (NULL);
13563 }
13564
13565 if (sec->dofs_align != sizeof (dof_secidx_t)) {
13566 dtrace_dof_error(dof, "bad alignment in probe description");
13567 return (NULL);
13568 }
13569
13570 if (sec->dofs_offset + sizeof (dof_probedesc_t) > dof->dofh_loadsz) {
13571 dtrace_dof_error(dof, "truncated probe description");
13572 return (NULL);
13573 }
13574
13575 probe = (dof_probedesc_t *)(uintptr_t)(daddr + sec->dofs_offset);
13576 strtab = dtrace_dof_sect(dof, DOF_SECT_STRTAB, probe->dofp_strtab);
13577
13578 if (strtab == NULL)
13579 return (NULL);
13580
13581 str = daddr + strtab->dofs_offset;
13582 size = strtab->dofs_size;
13583
13584 if (probe->dofp_provider >= strtab->dofs_size) {
13585 dtrace_dof_error(dof, "corrupt probe provider");
13586 return (NULL);
13587 }
13588
13589 (void) strncpy(desc->dtpd_provider,
13590 (char *)(str + probe->dofp_provider),
13591 MIN(DTRACE_PROVNAMELEN - 1, size - probe->dofp_provider));
13592
13593 if (probe->dofp_mod >= strtab->dofs_size) {
13594 dtrace_dof_error(dof, "corrupt probe module");
13595 return (NULL);
13596 }
13597
13598 (void) strncpy(desc->dtpd_mod, (char *)(str + probe->dofp_mod),
13599 MIN(DTRACE_MODNAMELEN - 1, size - probe->dofp_mod));
13600
13601 if (probe->dofp_func >= strtab->dofs_size) {
13602 dtrace_dof_error(dof, "corrupt probe function");
13603 return (NULL);
13604 }
13605
13606 (void) strncpy(desc->dtpd_func, (char *)(str + probe->dofp_func),
13607 MIN(DTRACE_FUNCNAMELEN - 1, size - probe->dofp_func));
13608
13609 if (probe->dofp_name >= strtab->dofs_size) {
13610 dtrace_dof_error(dof, "corrupt probe name");
13611 return (NULL);
13612 }
13613
13614 (void) strncpy(desc->dtpd_name, (char *)(str + probe->dofp_name),
13615 MIN(DTRACE_NAMELEN - 1, size - probe->dofp_name));
13616
13617 return (desc);
13618 }
13619
13620 static dtrace_difo_t *
13621 dtrace_dof_difo(dof_hdr_t *dof, dof_sec_t *sec, dtrace_vstate_t *vstate,
13622 cred_t *cr)
13623 {
13624 dtrace_difo_t *dp;
13625 size_t ttl = 0;
13626 dof_difohdr_t *dofd;
13627 uintptr_t daddr = (uintptr_t)dof;
13628 size_t max = dtrace_difo_maxsize;
13629 int i, l, n;
13630
13631 static const struct {
13632 int section;
13633 int bufoffs;
13634 int lenoffs;
13635 int entsize;
13636 int align;
13637 const char *msg;
13638 } difo[] = {
13639 { DOF_SECT_DIF, offsetof(dtrace_difo_t, dtdo_buf),
13640 offsetof(dtrace_difo_t, dtdo_len), sizeof (dif_instr_t),
13641 sizeof (dif_instr_t), "multiple DIF sections" },
13642
13643 { DOF_SECT_INTTAB, offsetof(dtrace_difo_t, dtdo_inttab),
13644 offsetof(dtrace_difo_t, dtdo_intlen), sizeof (uint64_t),
13645 sizeof (uint64_t), "multiple integer tables" },
13646
13647 { DOF_SECT_STRTAB, offsetof(dtrace_difo_t, dtdo_strtab),
13648 offsetof(dtrace_difo_t, dtdo_strlen), 0,
13649 sizeof (char), "multiple string tables" },
13650
13651 { DOF_SECT_VARTAB, offsetof(dtrace_difo_t, dtdo_vartab),
13652 offsetof(dtrace_difo_t, dtdo_varlen), sizeof (dtrace_difv_t),
13653 sizeof (uint_t), "multiple variable tables" },
13654
13655 { DOF_SECT_NONE, 0, 0, 0, 0, NULL }
13656 };
13657
13658 if (sec->dofs_type != DOF_SECT_DIFOHDR) {
13659 dtrace_dof_error(dof, "invalid DIFO header section");
13660 return (NULL);
13661 }
13662
13663 if (sec->dofs_align != sizeof (dof_secidx_t)) {
13664 dtrace_dof_error(dof, "bad alignment in DIFO header");
13665 return (NULL);
13666 }
13667
13668 if (sec->dofs_size < sizeof (dof_difohdr_t) ||
13669 sec->dofs_size % sizeof (dof_secidx_t)) {
13670 dtrace_dof_error(dof, "bad size in DIFO header");
13671 return (NULL);
13672 }
13673
13674 dofd = (dof_difohdr_t *)(uintptr_t)(daddr + sec->dofs_offset);
13675 n = (sec->dofs_size - sizeof (*dofd)) / sizeof (dof_secidx_t) + 1;
13676
13677 dp = kmem_zalloc(sizeof (dtrace_difo_t), KM_SLEEP);
13678 dp->dtdo_rtype = dofd->dofd_rtype;
13679
13680 for (l = 0; l < n; l++) {
13681 dof_sec_t *subsec;
13682 void **bufp;
13683 uint32_t *lenp;
13684
13685 if ((subsec = dtrace_dof_sect(dof, DOF_SECT_NONE,
13686 dofd->dofd_links[l])) == NULL)
13687 goto err; /* invalid section link */
13688
13689 if (ttl + subsec->dofs_size > max) {
13690 dtrace_dof_error(dof, "exceeds maximum size");
13691 goto err;
13692 }
13693
13694 ttl += subsec->dofs_size;
13695
13696 for (i = 0; difo[i].section != DOF_SECT_NONE; i++) {
13697 if (subsec->dofs_type != difo[i].section)
13698 continue;
13699
13700 if (!(subsec->dofs_flags & DOF_SECF_LOAD)) {
13701 dtrace_dof_error(dof, "section not loaded");
13702 goto err;
13703 }
13704
13705 if (subsec->dofs_align != difo[i].align) {
13706 dtrace_dof_error(dof, "bad alignment");
13707 goto err;
13708 }
13709
13710 bufp = (void **)((uintptr_t)dp + difo[i].bufoffs);
13711 lenp = (uint32_t *)((uintptr_t)dp + difo[i].lenoffs);
13712
13713 if (*bufp != NULL) {
13714 dtrace_dof_error(dof, difo[i].msg);
13715 goto err;
13716 }
13717
13718 if (difo[i].entsize != subsec->dofs_entsize) {
13719 dtrace_dof_error(dof, "entry size mismatch");
13720 goto err;
13721 }
13722
13723 if (subsec->dofs_entsize != 0 &&
13724 (subsec->dofs_size % subsec->dofs_entsize) != 0) {
13725 dtrace_dof_error(dof, "corrupt entry size");
13726 goto err;
13727 }
13728
13729 *lenp = subsec->dofs_size;
13730 *bufp = kmem_alloc(subsec->dofs_size, KM_SLEEP);
13731 bcopy((char *)(uintptr_t)(daddr + subsec->dofs_offset),
13732 *bufp, subsec->dofs_size);
13733
13734 if (subsec->dofs_entsize != 0)
13735 *lenp /= subsec->dofs_entsize;
13736
13737 break;
13738 }
13739
13740 /*
13741 * If we encounter a loadable DIFO sub-section that is not
13742 * known to us, assume this is a broken program and fail.
13743 */
13744 if (difo[i].section == DOF_SECT_NONE &&
13745 (subsec->dofs_flags & DOF_SECF_LOAD)) {
13746 dtrace_dof_error(dof, "unrecognized DIFO subsection");
13747 goto err;
13748 }
13749 }
13750
13751 if (dp->dtdo_buf == NULL) {
13752 /*
13753 * We can't have a DIF object without DIF text.
13754 */
13755 dtrace_dof_error(dof, "missing DIF text");
13756 goto err;
13757 }
13758
13759 /*
13760 * Before we validate the DIF object, run through the variable table
13761 * looking for the strings -- if any of their size are under, we'll set
13762 * their size to be the system-wide default string size. Note that
13763 * this should _not_ happen if the "strsize" option has been set --
13764 * in this case, the compiler should have set the size to reflect the
13765 * setting of the option.
13766 */
13767 for (i = 0; i < dp->dtdo_varlen; i++) {
13768 dtrace_difv_t *v = &dp->dtdo_vartab[i];
13769 dtrace_diftype_t *t = &v->dtdv_type;
13770
13771 if (v->dtdv_id < DIF_VAR_OTHER_UBASE)
13772 continue;
13773
13774 if (t->dtdt_kind == DIF_TYPE_STRING && t->dtdt_size == 0)
13775 t->dtdt_size = dtrace_strsize_default;
13776 }
13777
13778 if (dtrace_difo_validate(dp, vstate, DIF_DIR_NREGS, cr) != 0)
13779 goto err;
13780
13781 dtrace_difo_init(dp, vstate);
13782 return (dp);
13783
13784 err:
13785 kmem_free(dp->dtdo_buf, dp->dtdo_len * sizeof (dif_instr_t));
13786 kmem_free(dp->dtdo_inttab, dp->dtdo_intlen * sizeof (uint64_t));
13787 kmem_free(dp->dtdo_strtab, dp->dtdo_strlen);
13788 kmem_free(dp->dtdo_vartab, dp->dtdo_varlen * sizeof (dtrace_difv_t));
13789
13790 kmem_free(dp, sizeof (dtrace_difo_t));
13791 return (NULL);
13792 }
13793
13794 static dtrace_predicate_t *
13795 dtrace_dof_predicate(dof_hdr_t *dof, dof_sec_t *sec, dtrace_vstate_t *vstate,
13796 cred_t *cr)
13797 {
13798 dtrace_difo_t *dp;
13799
13800 if ((dp = dtrace_dof_difo(dof, sec, vstate, cr)) == NULL)
13801 return (NULL);
13802
13803 return (dtrace_predicate_create(dp));
13804 }
13805
13806 static dtrace_actdesc_t *
13807 dtrace_dof_actdesc(dof_hdr_t *dof, dof_sec_t *sec, dtrace_vstate_t *vstate,
13808 cred_t *cr)
13809 {
13810 dtrace_actdesc_t *act, *first = NULL, *last = NULL, *next;
13811 dof_actdesc_t *desc;
13812 dof_sec_t *difosec;
13813 size_t offs;
13814 uintptr_t daddr = (uintptr_t)dof;
13815 uint64_t arg;
13816 dtrace_actkind_t kind;
13817
13818 if (sec->dofs_type != DOF_SECT_ACTDESC) {
13819 dtrace_dof_error(dof, "invalid action section");
13820 return (NULL);
13821 }
13822
13823 if (sec->dofs_offset + sizeof (dof_actdesc_t) > dof->dofh_loadsz) {
13824 dtrace_dof_error(dof, "truncated action description");
13825 return (NULL);
13826 }
13827
13828 if (sec->dofs_align != sizeof (uint64_t)) {
13829 dtrace_dof_error(dof, "bad alignment in action description");
13830 return (NULL);
13831 }
13832
13833 if (sec->dofs_size < sec->dofs_entsize) {
13834 dtrace_dof_error(dof, "section entry size exceeds total size");
13835 return (NULL);
13836 }
13837
13838 if (sec->dofs_entsize != sizeof (dof_actdesc_t)) {
13839 dtrace_dof_error(dof, "bad entry size in action description");
13840 return (NULL);
13841 }
13842
13843 if (sec->dofs_size / sec->dofs_entsize > dtrace_actions_max) {
13844 dtrace_dof_error(dof, "actions exceed dtrace_actions_max");
13845 return (NULL);
13846 }
13847
13848 for (offs = 0; offs < sec->dofs_size; offs += sec->dofs_entsize) {
13849 desc = (dof_actdesc_t *)(daddr +
13850 (uintptr_t)sec->dofs_offset + offs);
13851 kind = (dtrace_actkind_t)desc->dofa_kind;
13852
13853 if ((DTRACEACT_ISPRINTFLIKE(kind) &&
13854 (kind != DTRACEACT_PRINTA ||
13855 desc->dofa_strtab != DOF_SECIDX_NONE)) ||
13856 (kind == DTRACEACT_DIFEXPR &&
13857 desc->dofa_strtab != DOF_SECIDX_NONE)) {
13858 dof_sec_t *strtab;
13859 char *str, *fmt;
13860 uint64_t i;
13861
13862 /*
13863 * The argument to these actions is an index into the
13864 * DOF string table. For printf()-like actions, this
13865 * is the format string. For print(), this is the
13866 * CTF type of the expression result.
13867 */
13868 if ((strtab = dtrace_dof_sect(dof,
13869 DOF_SECT_STRTAB, desc->dofa_strtab)) == NULL)
13870 goto err;
13871
13872 str = (char *)((uintptr_t)dof +
13873 (uintptr_t)strtab->dofs_offset);
13874
13875 for (i = desc->dofa_arg; i < strtab->dofs_size; i++) {
13876 if (str[i] == '\0')
13877 break;
13878 }
13879
13880 if (i >= strtab->dofs_size) {
13881 dtrace_dof_error(dof, "bogus format string");
13882 goto err;
13883 }
13884
13885 if (i == desc->dofa_arg) {
13886 dtrace_dof_error(dof, "empty format string");
13887 goto err;
13888 }
13889
13890 i -= desc->dofa_arg;
13891 fmt = kmem_alloc(i + 1, KM_SLEEP);
13892 bcopy(&str[desc->dofa_arg], fmt, i + 1);
13893 arg = (uint64_t)(uintptr_t)fmt;
13894 } else {
13895 if (kind == DTRACEACT_PRINTA) {
13896 ASSERT(desc->dofa_strtab == DOF_SECIDX_NONE);
13897 arg = 0;
13898 } else {
13899 arg = desc->dofa_arg;
13900 }
13901 }
13902
13903 act = dtrace_actdesc_create(kind, desc->dofa_ntuple,
13904 desc->dofa_uarg, arg);
13905
13906 if (last != NULL) {
13907 last->dtad_next = act;
13908 } else {
13909 first = act;
13910 }
13911
13912 last = act;
13913
13914 if (desc->dofa_difo == DOF_SECIDX_NONE)
13915 continue;
13916
13917 if ((difosec = dtrace_dof_sect(dof,
13918 DOF_SECT_DIFOHDR, desc->dofa_difo)) == NULL)
13919 goto err;
13920
13921 act->dtad_difo = dtrace_dof_difo(dof, difosec, vstate, cr);
13922
13923 if (act->dtad_difo == NULL)
13924 goto err;
13925 }
13926
13927 ASSERT(first != NULL);
13928 return (first);
13929
13930 err:
13931 for (act = first; act != NULL; act = next) {
13932 next = act->dtad_next;
13933 dtrace_actdesc_release(act, vstate);
13934 }
13935
13936 return (NULL);
13937 }
13938
13939 static dtrace_ecbdesc_t *
13940 dtrace_dof_ecbdesc(dof_hdr_t *dof, dof_sec_t *sec, dtrace_vstate_t *vstate,
13941 cred_t *cr)
13942 {
13943 dtrace_ecbdesc_t *ep;
13944 dof_ecbdesc_t *ecb;
13945 dtrace_probedesc_t *desc;
13946 dtrace_predicate_t *pred = NULL;
13947
13948 if (sec->dofs_size < sizeof (dof_ecbdesc_t)) {
13949 dtrace_dof_error(dof, "truncated ECB description");
13950 return (NULL);
13951 }
13952
13953 if (sec->dofs_align != sizeof (uint64_t)) {
13954 dtrace_dof_error(dof, "bad alignment in ECB description");
13955 return (NULL);
13956 }
13957
13958 ecb = (dof_ecbdesc_t *)((uintptr_t)dof + (uintptr_t)sec->dofs_offset);
13959 sec = dtrace_dof_sect(dof, DOF_SECT_PROBEDESC, ecb->dofe_probes);
13960
13961 if (sec == NULL)
13962 return (NULL);
13963
13964 ep = kmem_zalloc(sizeof (dtrace_ecbdesc_t), KM_SLEEP);
13965 ep->dted_uarg = ecb->dofe_uarg;
13966 desc = &ep->dted_probe;
13967
13968 if (dtrace_dof_probedesc(dof, sec, desc) == NULL)
13969 goto err;
13970
13971 if (ecb->dofe_pred != DOF_SECIDX_NONE) {
13972 if ((sec = dtrace_dof_sect(dof,
13973 DOF_SECT_DIFOHDR, ecb->dofe_pred)) == NULL)
13974 goto err;
13975
13976 if ((pred = dtrace_dof_predicate(dof, sec, vstate, cr)) == NULL)
13977 goto err;
13978
13979 ep->dted_pred.dtpdd_predicate = pred;
13980 }
13981
13982 if (ecb->dofe_actions != DOF_SECIDX_NONE) {
13983 if ((sec = dtrace_dof_sect(dof,
13984 DOF_SECT_ACTDESC, ecb->dofe_actions)) == NULL)
13985 goto err;
13986
13987 ep->dted_action = dtrace_dof_actdesc(dof, sec, vstate, cr);
13988
13989 if (ep->dted_action == NULL)
13990 goto err;
13991 }
13992
13993 return (ep);
13994
13995 err:
13996 if (pred != NULL)
13997 dtrace_predicate_release(pred, vstate);
13998 kmem_free(ep, sizeof (dtrace_ecbdesc_t));
13999 return (NULL);
14000 }
14001
14002 /*
14003 * Apply the relocations from the specified 'sec' (a DOF_SECT_URELHDR) to the
14004 * specified DOF. SETX relocations are computed using 'ubase', the base load
14005 * address of the object containing the DOF, and DOFREL relocations are relative
14006 * to the relocation offset within the DOF.
14007 */
14008 static int
14009 dtrace_dof_relocate(dof_hdr_t *dof, dof_sec_t *sec, uint64_t ubase,
14010 uint64_t udaddr)
14011 {
14012 uintptr_t daddr = (uintptr_t)dof;
14013 uintptr_t ts_end;
14014 dof_relohdr_t *dofr =
14015 (dof_relohdr_t *)(uintptr_t)(daddr + sec->dofs_offset);
14016 dof_sec_t *ss, *rs, *ts;
14017 dof_relodesc_t *r;
14018 uint_t i, n;
14019
14020 if (sec->dofs_size < sizeof (dof_relohdr_t) ||
14021 sec->dofs_align != sizeof (dof_secidx_t)) {
14022 dtrace_dof_error(dof, "invalid relocation header");
14023 return (-1);
14024 }
14025
14026 ss = dtrace_dof_sect(dof, DOF_SECT_STRTAB, dofr->dofr_strtab);
14027 rs = dtrace_dof_sect(dof, DOF_SECT_RELTAB, dofr->dofr_relsec);
14028 ts = dtrace_dof_sect(dof, DOF_SECT_NONE, dofr->dofr_tgtsec);
14029 ts_end = (uintptr_t)ts + sizeof (dof_sec_t);
14030
14031 if (ss == NULL || rs == NULL || ts == NULL)
14032 return (-1); /* dtrace_dof_error() has been called already */
14033
14034 if (rs->dofs_entsize < sizeof (dof_relodesc_t) ||
14035 rs->dofs_align != sizeof (uint64_t)) {
14036 dtrace_dof_error(dof, "invalid relocation section");
14037 return (-1);
14038 }
14039
14040 r = (dof_relodesc_t *)(uintptr_t)(daddr + rs->dofs_offset);
14041 n = rs->dofs_size / rs->dofs_entsize;
14042
14043 for (i = 0; i < n; i++) {
14044 uintptr_t taddr = daddr + ts->dofs_offset + r->dofr_offset;
14045
14046 switch (r->dofr_type) {
14047 case DOF_RELO_NONE:
14048 break;
14049 case DOF_RELO_SETX:
14050 case DOF_RELO_DOFREL:
14051 if (r->dofr_offset >= ts->dofs_size || r->dofr_offset +
14052 sizeof (uint64_t) > ts->dofs_size) {
14053 dtrace_dof_error(dof, "bad relocation offset");
14054 return (-1);
14055 }
14056
14057 if (taddr >= (uintptr_t)ts && taddr < ts_end) {
14058 dtrace_dof_error(dof, "bad relocation offset");
14059 return (-1);
14060 }
14061
14062 if (!IS_P2ALIGNED(taddr, sizeof (uint64_t))) {
14063 dtrace_dof_error(dof, "misaligned setx relo");
14064 return (-1);
14065 }
14066
14067 if (r->dofr_type == DOF_RELO_SETX)
14068 *(uint64_t *)taddr += ubase;
14069 else
14070 *(uint64_t *)taddr +=
14071 udaddr + ts->dofs_offset + r->dofr_offset;
14072 break;
14073 default:
14074 dtrace_dof_error(dof, "invalid relocation type");
14075 return (-1);
14076 }
14077
14078 r = (dof_relodesc_t *)((uintptr_t)r + rs->dofs_entsize);
14079 }
14080
14081 return (0);
14082 }
14083
14084 /*
14085 * The dof_hdr_t passed to dtrace_dof_slurp() should be a partially validated
14086 * header: it should be at the front of a memory region that is at least
14087 * sizeof (dof_hdr_t) in size -- and then at least dof_hdr.dofh_loadsz in
14088 * size. It need not be validated in any other way.
14089 */
14090 static int
14091 dtrace_dof_slurp(dof_hdr_t *dof, dtrace_vstate_t *vstate, cred_t *cr,
14092 dtrace_enabling_t **enabp, uint64_t ubase, uint64_t udaddr, int noprobes)
14093 {
14094 uint64_t len = dof->dofh_loadsz, seclen;
14095 uintptr_t daddr = (uintptr_t)dof;
14096 dtrace_ecbdesc_t *ep;
14097 dtrace_enabling_t *enab;
14098 uint_t i;
14099
14100 ASSERT(MUTEX_HELD(&dtrace_lock));
14101 ASSERT(dof->dofh_loadsz >= sizeof (dof_hdr_t));
14102
14103 /*
14104 * Check the DOF header identification bytes. In addition to checking
14105 * valid settings, we also verify that unused bits/bytes are zeroed so
14106 * we can use them later without fear of regressing existing binaries.
14107 */
14108 if (bcmp(&dof->dofh_ident[DOF_ID_MAG0],
14109 DOF_MAG_STRING, DOF_MAG_STRLEN) != 0) {
14110 dtrace_dof_error(dof, "DOF magic string mismatch");
14111 return (-1);
14112 }
14113
14114 if (dof->dofh_ident[DOF_ID_MODEL] != DOF_MODEL_ILP32 &&
14115 dof->dofh_ident[DOF_ID_MODEL] != DOF_MODEL_LP64) {
14116 dtrace_dof_error(dof, "DOF has invalid data model");
14117 return (-1);
14118 }
14119
14120 if (dof->dofh_ident[DOF_ID_ENCODING] != DOF_ENCODE_NATIVE) {
14121 dtrace_dof_error(dof, "DOF encoding mismatch");
14122 return (-1);
14123 }
14124
14125 if (dof->dofh_ident[DOF_ID_VERSION] != DOF_VERSION_1 &&
14126 dof->dofh_ident[DOF_ID_VERSION] != DOF_VERSION_2) {
14127 dtrace_dof_error(dof, "DOF version mismatch");
14128 return (-1);
14129 }
14130
14131 if (dof->dofh_ident[DOF_ID_DIFVERS] != DIF_VERSION_2) {
14132 dtrace_dof_error(dof, "DOF uses unsupported instruction set");
14133 return (-1);
14134 }
14135
14136 if (dof->dofh_ident[DOF_ID_DIFIREG] > DIF_DIR_NREGS) {
14137 dtrace_dof_error(dof, "DOF uses too many integer registers");
14138 return (-1);
14139 }
14140
14141 if (dof->dofh_ident[DOF_ID_DIFTREG] > DIF_DTR_NREGS) {
14142 dtrace_dof_error(dof, "DOF uses too many tuple registers");
14143 return (-1);
14144 }
14145
14146 for (i = DOF_ID_PAD; i < DOF_ID_SIZE; i++) {
14147 if (dof->dofh_ident[i] != 0) {
14148 dtrace_dof_error(dof, "DOF has invalid ident byte set");
14149 return (-1);
14150 }
14151 }
14152
14153 if (dof->dofh_flags & ~DOF_FL_VALID) {
14154 dtrace_dof_error(dof, "DOF has invalid flag bits set");
14155 return (-1);
14156 }
14157
14158 if (dof->dofh_secsize == 0) {
14159 dtrace_dof_error(dof, "zero section header size");
14160 return (-1);
14161 }
14162
14163 /*
14164 * Check that the section headers don't exceed the amount of DOF
14165 * data. Note that we cast the section size and number of sections
14166 * to uint64_t's to prevent possible overflow in the multiplication.
14167 */
14168 seclen = (uint64_t)dof->dofh_secnum * (uint64_t)dof->dofh_secsize;
14169
14170 if (dof->dofh_secoff > len || seclen > len ||
14171 dof->dofh_secoff + seclen > len) {
14172 dtrace_dof_error(dof, "truncated section headers");
14173 return (-1);
14174 }
14175
14176 if (!IS_P2ALIGNED(dof->dofh_secoff, sizeof (uint64_t))) {
14177 dtrace_dof_error(dof, "misaligned section headers");
14178 return (-1);
14179 }
14180
14181 if (!IS_P2ALIGNED(dof->dofh_secsize, sizeof (uint64_t))) {
14182 dtrace_dof_error(dof, "misaligned section size");
14183 return (-1);
14184 }
14185
14186 /*
14187 * Take an initial pass through the section headers to be sure that
14188 * the headers don't have stray offsets. If the 'noprobes' flag is
14189 * set, do not permit sections relating to providers, probes, or args.
14190 */
14191 for (i = 0; i < dof->dofh_secnum; i++) {
14192 dof_sec_t *sec = (dof_sec_t *)(daddr +
14193 (uintptr_t)dof->dofh_secoff + i * dof->dofh_secsize);
14194
14195 if (noprobes) {
14196 switch (sec->dofs_type) {
14197 case DOF_SECT_PROVIDER:
14198 case DOF_SECT_PROBES:
14199 case DOF_SECT_PRARGS:
14200 case DOF_SECT_PROFFS:
14201 dtrace_dof_error(dof, "illegal sections "
14202 "for enabling");
14203 return (-1);
14204 }
14205 }
14206
14207 if (DOF_SEC_ISLOADABLE(sec->dofs_type) &&
14208 !(sec->dofs_flags & DOF_SECF_LOAD)) {
14209 dtrace_dof_error(dof, "loadable section with load "
14210 "flag unset");
14211 return (-1);
14212 }
14213
14214 if (!(sec->dofs_flags & DOF_SECF_LOAD))
14215 continue; /* just ignore non-loadable sections */
14216
14217 if (!ISP2(sec->dofs_align)) {
14218 dtrace_dof_error(dof, "bad section alignment");
14219 return (-1);
14220 }
14221
14222 if (sec->dofs_offset & (sec->dofs_align - 1)) {
14223 dtrace_dof_error(dof, "misaligned section");
14224 return (-1);
14225 }
14226
14227 if (sec->dofs_offset > len || sec->dofs_size > len ||
14228 sec->dofs_offset + sec->dofs_size > len) {
14229 dtrace_dof_error(dof, "corrupt section header");
14230 return (-1);
14231 }
14232
14233 if (sec->dofs_type == DOF_SECT_STRTAB && *((char *)daddr +
14234 sec->dofs_offset + sec->dofs_size - 1) != '\0') {
14235 dtrace_dof_error(dof, "non-terminating string table");
14236 return (-1);
14237 }
14238 }
14239
14240 /*
14241 * Take a second pass through the sections and locate and perform any
14242 * relocations that are present. We do this after the first pass to
14243 * be sure that all sections have had their headers validated.
14244 */
14245 for (i = 0; i < dof->dofh_secnum; i++) {
14246 dof_sec_t *sec = (dof_sec_t *)(daddr +
14247 (uintptr_t)dof->dofh_secoff + i * dof->dofh_secsize);
14248
14249 if (!(sec->dofs_flags & DOF_SECF_LOAD))
14250 continue; /* skip sections that are not loadable */
14251
14252 switch (sec->dofs_type) {
14253 case DOF_SECT_URELHDR:
14254 if (dtrace_dof_relocate(dof, sec, ubase, udaddr) != 0)
14255 return (-1);
14256 break;
14257 }
14258 }
14259
14260 if ((enab = *enabp) == NULL)
14261 enab = *enabp = dtrace_enabling_create(vstate);
14262
14263 for (i = 0; i < dof->dofh_secnum; i++) {
14264 dof_sec_t *sec = (dof_sec_t *)(daddr +
14265 (uintptr_t)dof->dofh_secoff + i * dof->dofh_secsize);
14266
14267 if (sec->dofs_type != DOF_SECT_ECBDESC)
14268 continue;
14269
14270 if ((ep = dtrace_dof_ecbdesc(dof, sec, vstate, cr)) == NULL) {
14271 dtrace_enabling_destroy(enab);
14272 *enabp = NULL;
14273 return (-1);
14274 }
14275
14276 dtrace_enabling_add(enab, ep);
14277 }
14278
14279 return (0);
14280 }
14281
14282 /*
14283 * Process DOF for any options. This routine assumes that the DOF has been
14284 * at least processed by dtrace_dof_slurp().
14285 */
14286 static int
14287 dtrace_dof_options(dof_hdr_t *dof, dtrace_state_t *state)
14288 {
14289 int i, rval;
14290 uint32_t entsize;
14291 size_t offs;
14292 dof_optdesc_t *desc;
14293
14294 for (i = 0; i < dof->dofh_secnum; i++) {
14295 dof_sec_t *sec = (dof_sec_t *)((uintptr_t)dof +
14296 (uintptr_t)dof->dofh_secoff + i * dof->dofh_secsize);
14297
14298 if (sec->dofs_type != DOF_SECT_OPTDESC)
14299 continue;
14300
14301 if (sec->dofs_align != sizeof (uint64_t)) {
14302 dtrace_dof_error(dof, "bad alignment in "
14303 "option description");
14304 return (EINVAL);
14305 }
14306
14307 if ((entsize = sec->dofs_entsize) == 0) {
14308 dtrace_dof_error(dof, "zeroed option entry size");
14309 return (EINVAL);
14310 }
14311
14312 if (entsize < sizeof (dof_optdesc_t)) {
14313 dtrace_dof_error(dof, "bad option entry size");
14314 return (EINVAL);
14315 }
14316
14317 for (offs = 0; offs < sec->dofs_size; offs += entsize) {
14318 desc = (dof_optdesc_t *)((uintptr_t)dof +
14319 (uintptr_t)sec->dofs_offset + offs);
14320
14321 if (desc->dofo_strtab != DOF_SECIDX_NONE) {
14322 dtrace_dof_error(dof, "non-zero option string");
14323 return (EINVAL);
14324 }
14325
14326 if (desc->dofo_value == DTRACEOPT_UNSET) {
14327 dtrace_dof_error(dof, "unset option");
14328 return (EINVAL);
14329 }
14330
14331 if ((rval = dtrace_state_option(state,
14332 desc->dofo_option, desc->dofo_value)) != 0) {
14333 dtrace_dof_error(dof, "rejected option");
14334 return (rval);
14335 }
14336 }
14337 }
14338
14339 return (0);
14340 }
14341
14342 /*
14343 * DTrace Consumer State Functions
14344 */
14345 static int
14346 dtrace_dstate_init(dtrace_dstate_t *dstate, size_t size)
14347 {
14348 size_t hashsize, maxper, min, chunksize = dstate->dtds_chunksize;
14349 void *base;
14350 uintptr_t limit;
14351 dtrace_dynvar_t *dvar, *next, *start;
14352 int i;
14353
14354 ASSERT(MUTEX_HELD(&dtrace_lock));
14355 ASSERT(dstate->dtds_base == NULL && dstate->dtds_percpu == NULL);
14356
14357 bzero(dstate, sizeof (dtrace_dstate_t));
14358
14359 if ((dstate->dtds_chunksize = chunksize) == 0)
14360 dstate->dtds_chunksize = DTRACE_DYNVAR_CHUNKSIZE;
14361
14362 VERIFY(dstate->dtds_chunksize < LONG_MAX);
14363
14364 if (size < (min = dstate->dtds_chunksize + sizeof (dtrace_dynhash_t)))
14365 size = min;
14366
14367 if ((base = kmem_zalloc(size, KM_NOSLEEP | KM_NORMALPRI)) == NULL)
14368 return (ENOMEM);
14369
14370 dstate->dtds_size = size;
14371 dstate->dtds_base = base;
14372 dstate->dtds_percpu = kmem_cache_alloc(dtrace_state_cache, KM_SLEEP);
14373 bzero(dstate->dtds_percpu, NCPU * sizeof (dtrace_dstate_percpu_t));
14374
14375 hashsize = size / (dstate->dtds_chunksize + sizeof (dtrace_dynhash_t));
14376
14377 if (hashsize != 1 && (hashsize & 1))
14378 hashsize--;
14379
14380 dstate->dtds_hashsize = hashsize;
14381 dstate->dtds_hash = dstate->dtds_base;
14382
14383 /*
14384 * Set all of our hash buckets to point to the single sink, and (if
14385 * it hasn't already been set), set the sink's hash value to be the
14386 * sink sentinel value. The sink is needed for dynamic variable
14387 * lookups to know that they have iterated over an entire, valid hash
14388 * chain.
14389 */
14390 for (i = 0; i < hashsize; i++)
14391 dstate->dtds_hash[i].dtdh_chain = &dtrace_dynhash_sink;
14392
14393 if (dtrace_dynhash_sink.dtdv_hashval != DTRACE_DYNHASH_SINK)
14394 dtrace_dynhash_sink.dtdv_hashval = DTRACE_DYNHASH_SINK;
14395
14396 /*
14397 * Determine number of active CPUs. Divide free list evenly among
14398 * active CPUs.
14399 */
14400 start = (dtrace_dynvar_t *)
14401 ((uintptr_t)base + hashsize * sizeof (dtrace_dynhash_t));
14402 limit = (uintptr_t)base + size;
14403
14404 VERIFY((uintptr_t)start < limit);
14405 VERIFY((uintptr_t)start >= (uintptr_t)base);
14406
14407 maxper = (limit - (uintptr_t)start) / NCPU;
14408 maxper = (maxper / dstate->dtds_chunksize) * dstate->dtds_chunksize;
14409
14410 #ifndef illumos
14411 CPU_FOREACH(i) {
14412 #else
14413 for (i = 0; i < NCPU; i++) {
14414 #endif
14415 dstate->dtds_percpu[i].dtdsc_free = dvar = start;
14416
14417 /*
14418 * If we don't even have enough chunks to make it once through
14419 * NCPUs, we're just going to allocate everything to the first
14420 * CPU. And if we're on the last CPU, we're going to allocate
14421 * whatever is left over. In either case, we set the limit to
14422 * be the limit of the dynamic variable space.
14423 */
14424 if (maxper == 0 || i == NCPU - 1) {
14425 limit = (uintptr_t)base + size;
14426 start = NULL;
14427 } else {
14428 limit = (uintptr_t)start + maxper;
14429 start = (dtrace_dynvar_t *)limit;
14430 }
14431
14432 VERIFY(limit <= (uintptr_t)base + size);
14433
14434 for (;;) {
14435 next = (dtrace_dynvar_t *)((uintptr_t)dvar +
14436 dstate->dtds_chunksize);
14437
14438 if ((uintptr_t)next + dstate->dtds_chunksize >= limit)
14439 break;
14440
14441 VERIFY((uintptr_t)dvar >= (uintptr_t)base &&
14442 (uintptr_t)dvar <= (uintptr_t)base + size);
14443 dvar->dtdv_next = next;
14444 dvar = next;
14445 }
14446
14447 if (maxper == 0)
14448 break;
14449 }
14450
14451 return (0);
14452 }
14453
14454 static void
14455 dtrace_dstate_fini(dtrace_dstate_t *dstate)
14456 {
14457 ASSERT(MUTEX_HELD(&cpu_lock));
14458
14459 if (dstate->dtds_base == NULL)
14460 return;
14461
14462 kmem_free(dstate->dtds_base, dstate->dtds_size);
14463 kmem_cache_free(dtrace_state_cache, dstate->dtds_percpu);
14464 }
14465
14466 static void
14467 dtrace_vstate_fini(dtrace_vstate_t *vstate)
14468 {
14469 /*
14470 * Logical XOR, where are you?
14471 */
14472 ASSERT((vstate->dtvs_nglobals == 0) ^ (vstate->dtvs_globals != NULL));
14473
14474 if (vstate->dtvs_nglobals > 0) {
14475 kmem_free(vstate->dtvs_globals, vstate->dtvs_nglobals *
14476 sizeof (dtrace_statvar_t *));
14477 }
14478
14479 if (vstate->dtvs_ntlocals > 0) {
14480 kmem_free(vstate->dtvs_tlocals, vstate->dtvs_ntlocals *
14481 sizeof (dtrace_difv_t));
14482 }
14483
14484 ASSERT((vstate->dtvs_nlocals == 0) ^ (vstate->dtvs_locals != NULL));
14485
14486 if (vstate->dtvs_nlocals > 0) {
14487 kmem_free(vstate->dtvs_locals, vstate->dtvs_nlocals *
14488 sizeof (dtrace_statvar_t *));
14489 }
14490 }
14491
14492 #ifdef illumos
14493 static void
14494 dtrace_state_clean(dtrace_state_t *state)
14495 {
14496 if (state->dts_activity == DTRACE_ACTIVITY_INACTIVE)
14497 return;
14498
14499 dtrace_dynvar_clean(&state->dts_vstate.dtvs_dynvars);
14500 dtrace_speculation_clean(state);
14501 }
14502
14503 static void
14504 dtrace_state_deadman(dtrace_state_t *state)
14505 {
14506 hrtime_t now;
14507
14508 dtrace_sync();
14509
14510 now = dtrace_gethrtime();
14511
14512 if (state != dtrace_anon.dta_state &&
14513 now - state->dts_laststatus >= dtrace_deadman_user)
14514 return;
14515
14516 /*
14517 * We must be sure that dts_alive never appears to be less than the
14518 * value upon entry to dtrace_state_deadman(), and because we lack a
14519 * dtrace_cas64(), we cannot store to it atomically. We thus instead
14520 * store INT64_MAX to it, followed by a memory barrier, followed by
14521 * the new value. This assures that dts_alive never appears to be
14522 * less than its true value, regardless of the order in which the
14523 * stores to the underlying storage are issued.
14524 */
14525 state->dts_alive = INT64_MAX;
14526 dtrace_membar_producer();
14527 state->dts_alive = now;
14528 }
14529 #else /* !illumos */
14530 static void
14531 dtrace_state_clean(void *arg)
14532 {
14533 dtrace_state_t *state = arg;
14534 dtrace_optval_t *opt = state->dts_options;
14535
14536 if (state->dts_activity == DTRACE_ACTIVITY_INACTIVE)
14537 return;
14538
14539 dtrace_dynvar_clean(&state->dts_vstate.dtvs_dynvars);
14540 dtrace_speculation_clean(state);
14541
14542 callout_reset(&state->dts_cleaner, hz * opt[DTRACEOPT_CLEANRATE] / NANOSEC,
14543 dtrace_state_clean, state);
14544 }
14545
14546 static void
14547 dtrace_state_deadman(void *arg)
14548 {
14549 dtrace_state_t *state = arg;
14550 hrtime_t now;
14551
14552 dtrace_sync();
14553
14554 dtrace_debug_output();
14555
14556 now = dtrace_gethrtime();
14557
14558 if (state != dtrace_anon.dta_state &&
14559 now - state->dts_laststatus >= dtrace_deadman_user)
14560 return;
14561
14562 /*
14563 * We must be sure that dts_alive never appears to be less than the
14564 * value upon entry to dtrace_state_deadman(), and because we lack a
14565 * dtrace_cas64(), we cannot store to it atomically. We thus instead
14566 * store INT64_MAX to it, followed by a memory barrier, followed by
14567 * the new value. This assures that dts_alive never appears to be
14568 * less than its true value, regardless of the order in which the
14569 * stores to the underlying storage are issued.
14570 */
14571 state->dts_alive = INT64_MAX;
14572 dtrace_membar_producer();
14573 state->dts_alive = now;
14574
14575 callout_reset(&state->dts_deadman, hz * dtrace_deadman_interval / NANOSEC,
14576 dtrace_state_deadman, state);
14577 }
14578 #endif /* illumos */
14579
14580 static dtrace_state_t *
14581 #ifdef illumos
14582 dtrace_state_create(dev_t *devp, cred_t *cr)
14583 #else
14584 dtrace_state_create(struct cdev *dev, struct ucred *cred __unused)
14585 #endif
14586 {
14587 #ifdef illumos
14588 minor_t minor;
14589 major_t major;
14590 #else
14591 cred_t *cr = NULL;
14592 int m = 0;
14593 #endif
14594 char c[30];
14595 dtrace_state_t *state;
14596 dtrace_optval_t *opt;
14597 int bufsize = NCPU * sizeof (dtrace_buffer_t), i;
14598 int cpu_it;
14599
14600 ASSERT(MUTEX_HELD(&dtrace_lock));
14601 ASSERT(MUTEX_HELD(&cpu_lock));
14602
14603 #ifdef illumos
14604 minor = (minor_t)(uintptr_t)vmem_alloc(dtrace_minor, 1,
14605 VM_BESTFIT | VM_SLEEP);
14606
14607 if (ddi_soft_state_zalloc(dtrace_softstate, minor) != DDI_SUCCESS) {
14608 vmem_free(dtrace_minor, (void *)(uintptr_t)minor, 1);
14609 return (NULL);
14610 }
14611
14612 state = ddi_get_soft_state(dtrace_softstate, minor);
14613 #else
14614 if (dev != NULL) {
14615 cr = dev->si_cred;
14616 m = dev2unit(dev);
14617 }
14618
14619 /* Allocate memory for the state. */
14620 state = kmem_zalloc(sizeof(dtrace_state_t), KM_SLEEP);
14621 #endif
14622
14623 state->dts_epid = DTRACE_EPIDNONE + 1;
14624
14625 (void) snprintf(c, sizeof (c), "dtrace_aggid_%d", m);
14626 #ifdef illumos
14627 state->dts_aggid_arena = vmem_create(c, (void *)1, UINT32_MAX, 1,
14628 NULL, NULL, NULL, 0, VM_SLEEP | VMC_IDENTIFIER);
14629
14630 if (devp != NULL) {
14631 major = getemajor(*devp);
14632 } else {
14633 major = ddi_driver_major(dtrace_devi);
14634 }
14635
14636 state->dts_dev = makedevice(major, minor);
14637
14638 if (devp != NULL)
14639 *devp = state->dts_dev;
14640 #else
14641 state->dts_aggid_arena = new_unrhdr(1, INT_MAX, &dtrace_unr_mtx);
14642 state->dts_dev = dev;
14643 #endif
14644
14645 /*
14646 * We allocate NCPU buffers. On the one hand, this can be quite
14647 * a bit of memory per instance (nearly 36K on a Starcat). On the
14648 * other hand, it saves an additional memory reference in the probe
14649 * path.
14650 */
14651 state->dts_buffer = kmem_zalloc(bufsize, KM_SLEEP);
14652 state->dts_aggbuffer = kmem_zalloc(bufsize, KM_SLEEP);
14653
14654 /*
14655 * Allocate and initialise the per-process per-CPU random state.
14656 * SI_SUB_RANDOM < SI_SUB_DTRACE_ANON therefore entropy device is
14657 * assumed to be seeded at this point (if from Fortuna seed file).
14658 */
14659 arc4random_buf(&state->dts_rstate[0], 2 * sizeof(uint64_t));
14660 for (cpu_it = 1; cpu_it < NCPU; cpu_it++) {
14661 /*
14662 * Each CPU is assigned a 2^64 period, non-overlapping
14663 * subsequence.
14664 */
14665 dtrace_xoroshiro128_plus_jump(state->dts_rstate[cpu_it-1],
14666 state->dts_rstate[cpu_it]);
14667 }
14668
14669 #ifdef illumos
14670 state->dts_cleaner = CYCLIC_NONE;
14671 state->dts_deadman = CYCLIC_NONE;
14672 #else
14673 callout_init(&state->dts_cleaner, 1);
14674 callout_init(&state->dts_deadman, 1);
14675 #endif
14676 state->dts_vstate.dtvs_state = state;
14677
14678 for (i = 0; i < DTRACEOPT_MAX; i++)
14679 state->dts_options[i] = DTRACEOPT_UNSET;
14680
14681 /*
14682 * Set the default options.
14683 */
14684 opt = state->dts_options;
14685 opt[DTRACEOPT_BUFPOLICY] = DTRACEOPT_BUFPOLICY_SWITCH;
14686 opt[DTRACEOPT_BUFRESIZE] = DTRACEOPT_BUFRESIZE_AUTO;
14687 opt[DTRACEOPT_NSPEC] = dtrace_nspec_default;
14688 opt[DTRACEOPT_SPECSIZE] = dtrace_specsize_default;
14689 opt[DTRACEOPT_CPU] = (dtrace_optval_t)DTRACE_CPUALL;
14690 opt[DTRACEOPT_STRSIZE] = dtrace_strsize_default;
14691 opt[DTRACEOPT_STACKFRAMES] = dtrace_stackframes_default;
14692 opt[DTRACEOPT_USTACKFRAMES] = dtrace_ustackframes_default;
14693 opt[DTRACEOPT_CLEANRATE] = dtrace_cleanrate_default;
14694 opt[DTRACEOPT_AGGRATE] = dtrace_aggrate_default;
14695 opt[DTRACEOPT_SWITCHRATE] = dtrace_switchrate_default;
14696 opt[DTRACEOPT_STATUSRATE] = dtrace_statusrate_default;
14697 opt[DTRACEOPT_JSTACKFRAMES] = dtrace_jstackframes_default;
14698 opt[DTRACEOPT_JSTACKSTRSIZE] = dtrace_jstackstrsize_default;
14699
14700 state->dts_activity = DTRACE_ACTIVITY_INACTIVE;
14701
14702 /*
14703 * Depending on the user credentials, we set flag bits which alter probe
14704 * visibility or the amount of destructiveness allowed. In the case of
14705 * actual anonymous tracing, or the possession of all privileges, all of
14706 * the normal checks are bypassed.
14707 */
14708 if (cr == NULL || PRIV_POLICY_ONLY(cr, PRIV_ALL, B_FALSE)) {
14709 state->dts_cred.dcr_visible = DTRACE_CRV_ALL;
14710 state->dts_cred.dcr_action = DTRACE_CRA_ALL;
14711 } else {
14712 /*
14713 * Set up the credentials for this instantiation. We take a
14714 * hold on the credential to prevent it from disappearing on
14715 * us; this in turn prevents the zone_t referenced by this
14716 * credential from disappearing. This means that we can
14717 * examine the credential and the zone from probe context.
14718 */
14719 crhold(cr);
14720 state->dts_cred.dcr_cred = cr;
14721
14722 /*
14723 * CRA_PROC means "we have *some* privilege for dtrace" and
14724 * unlocks the use of variables like pid, zonename, etc.
14725 */
14726 if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_USER, B_FALSE) ||
14727 PRIV_POLICY_ONLY(cr, PRIV_DTRACE_PROC, B_FALSE)) {
14728 state->dts_cred.dcr_action |= DTRACE_CRA_PROC;
14729 }
14730
14731 /*
14732 * dtrace_user allows use of syscall and profile providers.
14733 * If the user also has proc_owner and/or proc_zone, we
14734 * extend the scope to include additional visibility and
14735 * destructive power.
14736 */
14737 if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_USER, B_FALSE)) {
14738 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_OWNER, B_FALSE)) {
14739 state->dts_cred.dcr_visible |=
14740 DTRACE_CRV_ALLPROC;
14741
14742 state->dts_cred.dcr_action |=
14743 DTRACE_CRA_PROC_DESTRUCTIVE_ALLUSER;
14744 }
14745
14746 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_ZONE, B_FALSE)) {
14747 state->dts_cred.dcr_visible |=
14748 DTRACE_CRV_ALLZONE;
14749
14750 state->dts_cred.dcr_action |=
14751 DTRACE_CRA_PROC_DESTRUCTIVE_ALLZONE;
14752 }
14753
14754 /*
14755 * If we have all privs in whatever zone this is,
14756 * we can do destructive things to processes which
14757 * have altered credentials.
14758 */
14759 #ifdef illumos
14760 if (priv_isequalset(priv_getset(cr, PRIV_EFFECTIVE),
14761 cr->cr_zone->zone_privset)) {
14762 state->dts_cred.dcr_action |=
14763 DTRACE_CRA_PROC_DESTRUCTIVE_CREDCHG;
14764 }
14765 #endif
14766 }
14767
14768 /*
14769 * Holding the dtrace_kernel privilege also implies that
14770 * the user has the dtrace_user privilege from a visibility
14771 * perspective. But without further privileges, some
14772 * destructive actions are not available.
14773 */
14774 if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_KERNEL, B_FALSE)) {
14775 /*
14776 * Make all probes in all zones visible. However,
14777 * this doesn't mean that all actions become available
14778 * to all zones.
14779 */
14780 state->dts_cred.dcr_visible |= DTRACE_CRV_KERNEL |
14781 DTRACE_CRV_ALLPROC | DTRACE_CRV_ALLZONE;
14782
14783 state->dts_cred.dcr_action |= DTRACE_CRA_KERNEL |
14784 DTRACE_CRA_PROC;
14785 /*
14786 * Holding proc_owner means that destructive actions
14787 * for *this* zone are allowed.
14788 */
14789 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_OWNER, B_FALSE))
14790 state->dts_cred.dcr_action |=
14791 DTRACE_CRA_PROC_DESTRUCTIVE_ALLUSER;
14792
14793 /*
14794 * Holding proc_zone means that destructive actions
14795 * for this user/group ID in all zones is allowed.
14796 */
14797 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_ZONE, B_FALSE))
14798 state->dts_cred.dcr_action |=
14799 DTRACE_CRA_PROC_DESTRUCTIVE_ALLZONE;
14800
14801 #ifdef illumos
14802 /*
14803 * If we have all privs in whatever zone this is,
14804 * we can do destructive things to processes which
14805 * have altered credentials.
14806 */
14807 if (priv_isequalset(priv_getset(cr, PRIV_EFFECTIVE),
14808 cr->cr_zone->zone_privset)) {
14809 state->dts_cred.dcr_action |=
14810 DTRACE_CRA_PROC_DESTRUCTIVE_CREDCHG;
14811 }
14812 #endif
14813 }
14814
14815 /*
14816 * Holding the dtrace_proc privilege gives control over fasttrap
14817 * and pid providers. We need to grant wider destructive
14818 * privileges in the event that the user has proc_owner and/or
14819 * proc_zone.
14820 */
14821 if (PRIV_POLICY_ONLY(cr, PRIV_DTRACE_PROC, B_FALSE)) {
14822 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_OWNER, B_FALSE))
14823 state->dts_cred.dcr_action |=
14824 DTRACE_CRA_PROC_DESTRUCTIVE_ALLUSER;
14825
14826 if (PRIV_POLICY_ONLY(cr, PRIV_PROC_ZONE, B_FALSE))
14827 state->dts_cred.dcr_action |=
14828 DTRACE_CRA_PROC_DESTRUCTIVE_ALLZONE;
14829 }
14830 }
14831
14832 return (state);
14833 }
14834
14835 static int
14836 dtrace_state_buffer(dtrace_state_t *state, dtrace_buffer_t *buf, int which)
14837 {
14838 dtrace_optval_t *opt = state->dts_options, size;
14839 processorid_t cpu = 0;
14840 int flags = 0, rval, factor, divisor = 1;
14841
14842 ASSERT(MUTEX_HELD(&dtrace_lock));
14843 ASSERT(MUTEX_HELD(&cpu_lock));
14844 ASSERT(which < DTRACEOPT_MAX);
14845 ASSERT(state->dts_activity == DTRACE_ACTIVITY_INACTIVE ||
14846 (state == dtrace_anon.dta_state &&
14847 state->dts_activity == DTRACE_ACTIVITY_ACTIVE));
14848
14849 if (opt[which] == DTRACEOPT_UNSET || opt[which] == 0)
14850 return (0);
14851
14852 if (opt[DTRACEOPT_CPU] != DTRACEOPT_UNSET)
14853 cpu = opt[DTRACEOPT_CPU];
14854
14855 if (which == DTRACEOPT_SPECSIZE)
14856 flags |= DTRACEBUF_NOSWITCH;
14857
14858 if (which == DTRACEOPT_BUFSIZE) {
14859 if (opt[DTRACEOPT_BUFPOLICY] == DTRACEOPT_BUFPOLICY_RING)
14860 flags |= DTRACEBUF_RING;
14861
14862 if (opt[DTRACEOPT_BUFPOLICY] == DTRACEOPT_BUFPOLICY_FILL)
14863 flags |= DTRACEBUF_FILL;
14864
14865 if (state != dtrace_anon.dta_state ||
14866 state->dts_activity != DTRACE_ACTIVITY_ACTIVE)
14867 flags |= DTRACEBUF_INACTIVE;
14868 }
14869
14870 for (size = opt[which]; size >= sizeof (uint64_t); size /= divisor) {
14871 /*
14872 * The size must be 8-byte aligned. If the size is not 8-byte
14873 * aligned, drop it down by the difference.
14874 */
14875 if (size & (sizeof (uint64_t) - 1))
14876 size -= size & (sizeof (uint64_t) - 1);
14877
14878 if (size < state->dts_reserve) {
14879 /*
14880 * Buffers always must be large enough to accommodate
14881 * their prereserved space. We return E2BIG instead
14882 * of ENOMEM in this case to allow for user-level
14883 * software to differentiate the cases.
14884 */
14885 return (E2BIG);
14886 }
14887
14888 rval = dtrace_buffer_alloc(buf, size, flags, cpu, &factor);
14889
14890 if (rval != ENOMEM) {
14891 opt[which] = size;
14892 return (rval);
14893 }
14894
14895 if (opt[DTRACEOPT_BUFRESIZE] == DTRACEOPT_BUFRESIZE_MANUAL)
14896 return (rval);
14897
14898 for (divisor = 2; divisor < factor; divisor <<= 1)
14899 continue;
14900 }
14901
14902 return (ENOMEM);
14903 }
14904
14905 static int
14906 dtrace_state_buffers(dtrace_state_t *state)
14907 {
14908 dtrace_speculation_t *spec = state->dts_speculations;
14909 int rval, i;
14910
14911 if ((rval = dtrace_state_buffer(state, state->dts_buffer,
14912 DTRACEOPT_BUFSIZE)) != 0)
14913 return (rval);
14914
14915 if ((rval = dtrace_state_buffer(state, state->dts_aggbuffer,
14916 DTRACEOPT_AGGSIZE)) != 0)
14917 return (rval);
14918
14919 for (i = 0; i < state->dts_nspeculations; i++) {
14920 if ((rval = dtrace_state_buffer(state,
14921 spec[i].dtsp_buffer, DTRACEOPT_SPECSIZE)) != 0)
14922 return (rval);
14923 }
14924
14925 return (0);
14926 }
14927
14928 static void
14929 dtrace_state_prereserve(dtrace_state_t *state)
14930 {
14931 dtrace_ecb_t *ecb;
14932 dtrace_probe_t *probe;
14933
14934 state->dts_reserve = 0;
14935
14936 if (state->dts_options[DTRACEOPT_BUFPOLICY] != DTRACEOPT_BUFPOLICY_FILL)
14937 return;
14938
14939 /*
14940 * If our buffer policy is a "fill" buffer policy, we need to set the
14941 * prereserved space to be the space required by the END probes.
14942 */
14943 probe = dtrace_probes[dtrace_probeid_end - 1];
14944 ASSERT(probe != NULL);
14945
14946 for (ecb = probe->dtpr_ecb; ecb != NULL; ecb = ecb->dte_next) {
14947 if (ecb->dte_state != state)
14948 continue;
14949
14950 state->dts_reserve += ecb->dte_needed + ecb->dte_alignment;
14951 }
14952 }
14953
14954 static int
14955 dtrace_state_go(dtrace_state_t *state, processorid_t *cpu)
14956 {
14957 dtrace_optval_t *opt = state->dts_options, sz, nspec;
14958 dtrace_speculation_t *spec;
14959 dtrace_buffer_t *buf;
14960 #ifdef illumos
14961 cyc_handler_t hdlr;
14962 cyc_time_t when;
14963 #endif
14964 int rval = 0, i, bufsize = NCPU * sizeof (dtrace_buffer_t);
14965 dtrace_icookie_t cookie;
14966
14967 mutex_enter(&cpu_lock);
14968 mutex_enter(&dtrace_lock);
14969
14970 if (state->dts_activity != DTRACE_ACTIVITY_INACTIVE) {
14971 rval = EBUSY;
14972 goto out;
14973 }
14974
14975 /*
14976 * Before we can perform any checks, we must prime all of the
14977 * retained enablings that correspond to this state.
14978 */
14979 dtrace_enabling_prime(state);
14980
14981 if (state->dts_destructive && !state->dts_cred.dcr_destructive) {
14982 rval = EACCES;
14983 goto out;
14984 }
14985
14986 dtrace_state_prereserve(state);
14987
14988 /*
14989 * Now we want to do is try to allocate our speculations.
14990 * We do not automatically resize the number of speculations; if
14991 * this fails, we will fail the operation.
14992 */
14993 nspec = opt[DTRACEOPT_NSPEC];
14994 ASSERT(nspec != DTRACEOPT_UNSET);
14995
14996 if (nspec > INT_MAX) {
14997 rval = ENOMEM;
14998 goto out;
14999 }
15000
15001 spec = kmem_zalloc(nspec * sizeof (dtrace_speculation_t),
15002 KM_NOSLEEP | KM_NORMALPRI);
15003
15004 if (spec == NULL) {
15005 rval = ENOMEM;
15006 goto out;
15007 }
15008
15009 state->dts_speculations = spec;
15010 state->dts_nspeculations = (int)nspec;
15011
15012 for (i = 0; i < nspec; i++) {
15013 if ((buf = kmem_zalloc(bufsize,
15014 KM_NOSLEEP | KM_NORMALPRI)) == NULL) {
15015 rval = ENOMEM;
15016 goto err;
15017 }
15018
15019 spec[i].dtsp_buffer = buf;
15020 }
15021
15022 if (opt[DTRACEOPT_GRABANON] != DTRACEOPT_UNSET) {
15023 if (dtrace_anon.dta_state == NULL) {
15024 rval = ENOENT;
15025 goto out;
15026 }
15027
15028 if (state->dts_necbs != 0) {
15029 rval = EALREADY;
15030 goto out;
15031 }
15032
15033 state->dts_anon = dtrace_anon_grab();
15034 ASSERT(state->dts_anon != NULL);
15035 state = state->dts_anon;
15036
15037 /*
15038 * We want "grabanon" to be set in the grabbed state, so we'll
15039 * copy that option value from the grabbing state into the
15040 * grabbed state.
15041 */
15042 state->dts_options[DTRACEOPT_GRABANON] =
15043 opt[DTRACEOPT_GRABANON];
15044
15045 *cpu = dtrace_anon.dta_beganon;
15046
15047 /*
15048 * If the anonymous state is active (as it almost certainly
15049 * is if the anonymous enabling ultimately matched anything),
15050 * we don't allow any further option processing -- but we
15051 * don't return failure.
15052 */
15053 if (state->dts_activity != DTRACE_ACTIVITY_INACTIVE)
15054 goto out;
15055 }
15056
15057 if (opt[DTRACEOPT_AGGSIZE] != DTRACEOPT_UNSET &&
15058 opt[DTRACEOPT_AGGSIZE] != 0) {
15059 if (state->dts_aggregations == NULL) {
15060 /*
15061 * We're not going to create an aggregation buffer
15062 * because we don't have any ECBs that contain
15063 * aggregations -- set this option to 0.
15064 */
15065 opt[DTRACEOPT_AGGSIZE] = 0;
15066 } else {
15067 /*
15068 * If we have an aggregation buffer, we must also have
15069 * a buffer to use as scratch.
15070 */
15071 if (opt[DTRACEOPT_BUFSIZE] == DTRACEOPT_UNSET ||
15072 opt[DTRACEOPT_BUFSIZE] < state->dts_needed) {
15073 opt[DTRACEOPT_BUFSIZE] = state->dts_needed;
15074 }
15075 }
15076 }
15077
15078 if (opt[DTRACEOPT_SPECSIZE] != DTRACEOPT_UNSET &&
15079 opt[DTRACEOPT_SPECSIZE] != 0) {
15080 if (!state->dts_speculates) {
15081 /*
15082 * We're not going to create speculation buffers
15083 * because we don't have any ECBs that actually
15084 * speculate -- set the speculation size to 0.
15085 */
15086 opt[DTRACEOPT_SPECSIZE] = 0;
15087 }
15088 }
15089
15090 /*
15091 * The bare minimum size for any buffer that we're actually going to
15092 * do anything to is sizeof (uint64_t).
15093 */
15094 sz = sizeof (uint64_t);
15095
15096 if ((state->dts_needed != 0 && opt[DTRACEOPT_BUFSIZE] < sz) ||
15097 (state->dts_speculates && opt[DTRACEOPT_SPECSIZE] < sz) ||
15098 (state->dts_aggregations != NULL && opt[DTRACEOPT_AGGSIZE] < sz)) {
15099 /*
15100 * A buffer size has been explicitly set to 0 (or to a size
15101 * that will be adjusted to 0) and we need the space -- we
15102 * need to return failure. We return ENOSPC to differentiate
15103 * it from failing to allocate a buffer due to failure to meet
15104 * the reserve (for which we return E2BIG).
15105 */
15106 rval = ENOSPC;
15107 goto out;
15108 }
15109
15110 if ((rval = dtrace_state_buffers(state)) != 0)
15111 goto err;
15112
15113 if ((sz = opt[DTRACEOPT_DYNVARSIZE]) == DTRACEOPT_UNSET)
15114 sz = dtrace_dstate_defsize;
15115
15116 do {
15117 rval = dtrace_dstate_init(&state->dts_vstate.dtvs_dynvars, sz);
15118
15119 if (rval == 0)
15120 break;
15121
15122 if (opt[DTRACEOPT_BUFRESIZE] == DTRACEOPT_BUFRESIZE_MANUAL)
15123 goto err;
15124 } while (sz >>= 1);
15125
15126 opt[DTRACEOPT_DYNVARSIZE] = sz;
15127
15128 if (rval != 0)
15129 goto err;
15130
15131 if (opt[DTRACEOPT_STATUSRATE] > dtrace_statusrate_max)
15132 opt[DTRACEOPT_STATUSRATE] = dtrace_statusrate_max;
15133
15134 if (opt[DTRACEOPT_CLEANRATE] == 0)
15135 opt[DTRACEOPT_CLEANRATE] = dtrace_cleanrate_max;
15136
15137 if (opt[DTRACEOPT_CLEANRATE] < dtrace_cleanrate_min)
15138 opt[DTRACEOPT_CLEANRATE] = dtrace_cleanrate_min;
15139
15140 if (opt[DTRACEOPT_CLEANRATE] > dtrace_cleanrate_max)
15141 opt[DTRACEOPT_CLEANRATE] = dtrace_cleanrate_max;
15142
15143 state->dts_alive = state->dts_laststatus = dtrace_gethrtime();
15144 #ifdef illumos
15145 hdlr.cyh_func = (cyc_func_t)dtrace_state_clean;
15146 hdlr.cyh_arg = state;
15147 hdlr.cyh_level = CY_LOW_LEVEL;
15148
15149 when.cyt_when = 0;
15150 when.cyt_interval = opt[DTRACEOPT_CLEANRATE];
15151
15152 state->dts_cleaner = cyclic_add(&hdlr, &when);
15153
15154 hdlr.cyh_func = (cyc_func_t)dtrace_state_deadman;
15155 hdlr.cyh_arg = state;
15156 hdlr.cyh_level = CY_LOW_LEVEL;
15157
15158 when.cyt_when = 0;
15159 when.cyt_interval = dtrace_deadman_interval;
15160
15161 state->dts_deadman = cyclic_add(&hdlr, &when);
15162 #else
15163 callout_reset(&state->dts_cleaner, hz * opt[DTRACEOPT_CLEANRATE] / NANOSEC,
15164 dtrace_state_clean, state);
15165 callout_reset(&state->dts_deadman, hz * dtrace_deadman_interval / NANOSEC,
15166 dtrace_state_deadman, state);
15167 #endif
15168
15169 state->dts_activity = DTRACE_ACTIVITY_WARMUP;
15170
15171 #ifdef illumos
15172 if (state->dts_getf != 0 &&
15173 !(state->dts_cred.dcr_visible & DTRACE_CRV_KERNEL)) {
15174 /*
15175 * We don't have kernel privs but we have at least one call
15176 * to getf(); we need to bump our zone's count, and (if
15177 * this is the first enabling to have an unprivileged call
15178 * to getf()) we need to hook into closef().
15179 */
15180 state->dts_cred.dcr_cred->cr_zone->zone_dtrace_getf++;
15181
15182 if (dtrace_getf++ == 0) {
15183 ASSERT(dtrace_closef == NULL);
15184 dtrace_closef = dtrace_getf_barrier;
15185 }
15186 }
15187 #endif
15188
15189 /*
15190 * Now it's time to actually fire the BEGIN probe. We need to disable
15191 * interrupts here both to record the CPU on which we fired the BEGIN
15192 * probe (the data from this CPU will be processed first at user
15193 * level) and to manually activate the buffer for this CPU.
15194 */
15195 cookie = dtrace_interrupt_disable();
15196 *cpu = curcpu;
15197 ASSERT(state->dts_buffer[*cpu].dtb_flags & DTRACEBUF_INACTIVE);
15198 state->dts_buffer[*cpu].dtb_flags &= ~DTRACEBUF_INACTIVE;
15199
15200 dtrace_probe(dtrace_probeid_begin,
15201 (uint64_t)(uintptr_t)state, 0, 0, 0, 0);
15202 dtrace_interrupt_enable(cookie);
15203 /*
15204 * We may have had an exit action from a BEGIN probe; only change our
15205 * state to ACTIVE if we're still in WARMUP.
15206 */
15207 ASSERT(state->dts_activity == DTRACE_ACTIVITY_WARMUP ||
15208 state->dts_activity == DTRACE_ACTIVITY_DRAINING);
15209
15210 if (state->dts_activity == DTRACE_ACTIVITY_WARMUP)
15211 state->dts_activity = DTRACE_ACTIVITY_ACTIVE;
15212
15213 #ifdef __FreeBSD__
15214 /*
15215 * We enable anonymous tracing before APs are started, so we must
15216 * activate buffers using the current CPU.
15217 */
15218 if (state == dtrace_anon.dta_state)
15219 for (int i = 0; i < NCPU; i++)
15220 dtrace_buffer_activate_cpu(state, i);
15221 else
15222 dtrace_xcall(DTRACE_CPUALL,
15223 (dtrace_xcall_t)dtrace_buffer_activate, state);
15224 #else
15225 /*
15226 * Regardless of whether or not now we're in ACTIVE or DRAINING, we
15227 * want each CPU to transition its principal buffer out of the
15228 * INACTIVE state. Doing this assures that no CPU will suddenly begin
15229 * processing an ECB halfway down a probe's ECB chain; all CPUs will
15230 * atomically transition from processing none of a state's ECBs to
15231 * processing all of them.
15232 */
15233 dtrace_xcall(DTRACE_CPUALL,
15234 (dtrace_xcall_t)dtrace_buffer_activate, state);
15235 #endif
15236 goto out;
15237
15238 err:
15239 dtrace_buffer_free(state->dts_buffer);
15240 dtrace_buffer_free(state->dts_aggbuffer);
15241
15242 if ((nspec = state->dts_nspeculations) == 0) {
15243 ASSERT(state->dts_speculations == NULL);
15244 goto out;
15245 }
15246
15247 spec = state->dts_speculations;
15248 ASSERT(spec != NULL);
15249
15250 for (i = 0; i < state->dts_nspeculations; i++) {
15251 if ((buf = spec[i].dtsp_buffer) == NULL)
15252 break;
15253
15254 dtrace_buffer_free(buf);
15255 kmem_free(buf, bufsize);
15256 }
15257
15258 kmem_free(spec, nspec * sizeof (dtrace_speculation_t));
15259 state->dts_nspeculations = 0;
15260 state->dts_speculations = NULL;
15261
15262 out:
15263 mutex_exit(&dtrace_lock);
15264 mutex_exit(&cpu_lock);
15265
15266 return (rval);
15267 }
15268
15269 static int
15270 dtrace_state_stop(dtrace_state_t *state, processorid_t *cpu)
15271 {
15272 dtrace_icookie_t cookie;
15273
15274 ASSERT(MUTEX_HELD(&dtrace_lock));
15275
15276 if (state->dts_activity != DTRACE_ACTIVITY_ACTIVE &&
15277 state->dts_activity != DTRACE_ACTIVITY_DRAINING)
15278 return (EINVAL);
15279
15280 /*
15281 * We'll set the activity to DTRACE_ACTIVITY_DRAINING, and issue a sync
15282 * to be sure that every CPU has seen it. See below for the details
15283 * on why this is done.
15284 */
15285 state->dts_activity = DTRACE_ACTIVITY_DRAINING;
15286 dtrace_sync();
15287
15288 /*
15289 * By this point, it is impossible for any CPU to be still processing
15290 * with DTRACE_ACTIVITY_ACTIVE. We can thus set our activity to
15291 * DTRACE_ACTIVITY_COOLDOWN and know that we're not racing with any
15292 * other CPU in dtrace_buffer_reserve(). This allows dtrace_probe()
15293 * and callees to know that the activity is DTRACE_ACTIVITY_COOLDOWN
15294 * iff we're in the END probe.
15295 */
15296 state->dts_activity = DTRACE_ACTIVITY_COOLDOWN;
15297 dtrace_sync();
15298 ASSERT(state->dts_activity == DTRACE_ACTIVITY_COOLDOWN);
15299
15300 /*
15301 * Finally, we can release the reserve and call the END probe. We
15302 * disable interrupts across calling the END probe to allow us to
15303 * return the CPU on which we actually called the END probe. This
15304 * allows user-land to be sure that this CPU's principal buffer is
15305 * processed last.
15306 */
15307 state->dts_reserve = 0;
15308
15309 cookie = dtrace_interrupt_disable();
15310 *cpu = curcpu;
15311 dtrace_probe(dtrace_probeid_end,
15312 (uint64_t)(uintptr_t)state, 0, 0, 0, 0);
15313 dtrace_interrupt_enable(cookie);
15314
15315 state->dts_activity = DTRACE_ACTIVITY_STOPPED;
15316 dtrace_sync();
15317
15318 #ifdef illumos
15319 if (state->dts_getf != 0 &&
15320 !(state->dts_cred.dcr_visible & DTRACE_CRV_KERNEL)) {
15321 /*
15322 * We don't have kernel privs but we have at least one call
15323 * to getf(); we need to lower our zone's count, and (if
15324 * this is the last enabling to have an unprivileged call
15325 * to getf()) we need to clear the closef() hook.
15326 */
15327 ASSERT(state->dts_cred.dcr_cred->cr_zone->zone_dtrace_getf > 0);
15328 ASSERT(dtrace_closef == dtrace_getf_barrier);
15329 ASSERT(dtrace_getf > 0);
15330
15331 state->dts_cred.dcr_cred->cr_zone->zone_dtrace_getf--;
15332
15333 if (--dtrace_getf == 0)
15334 dtrace_closef = NULL;
15335 }
15336 #endif
15337
15338 return (0);
15339 }
15340
15341 static int
15342 dtrace_state_option(dtrace_state_t *state, dtrace_optid_t option,
15343 dtrace_optval_t val)
15344 {
15345 ASSERT(MUTEX_HELD(&dtrace_lock));
15346
15347 if (state->dts_activity != DTRACE_ACTIVITY_INACTIVE)
15348 return (EBUSY);
15349
15350 if (option >= DTRACEOPT_MAX)
15351 return (EINVAL);
15352
15353 if (option != DTRACEOPT_CPU && val < 0)
15354 return (EINVAL);
15355
15356 switch (option) {
15357 case DTRACEOPT_DESTRUCTIVE:
15358 if (dtrace_destructive_disallow)
15359 return (EACCES);
15360
15361 state->dts_cred.dcr_destructive = 1;
15362 break;
15363
15364 case DTRACEOPT_BUFSIZE:
15365 case DTRACEOPT_DYNVARSIZE:
15366 case DTRACEOPT_AGGSIZE:
15367 case DTRACEOPT_SPECSIZE:
15368 case DTRACEOPT_STRSIZE:
15369 if (val < 0)
15370 return (EINVAL);
15371
15372 if (val >= LONG_MAX) {
15373 /*
15374 * If this is an otherwise negative value, set it to
15375 * the highest multiple of 128m less than LONG_MAX.
15376 * Technically, we're adjusting the size without
15377 * regard to the buffer resizing policy, but in fact,
15378 * this has no effect -- if we set the buffer size to
15379 * ~LONG_MAX and the buffer policy is ultimately set to
15380 * be "manual", the buffer allocation is guaranteed to
15381 * fail, if only because the allocation requires two
15382 * buffers. (We set the the size to the highest
15383 * multiple of 128m because it ensures that the size
15384 * will remain a multiple of a megabyte when
15385 * repeatedly halved -- all the way down to 15m.)
15386 */
15387 val = LONG_MAX - (1 << 27) + 1;
15388 }
15389 }
15390
15391 state->dts_options[option] = val;
15392
15393 return (0);
15394 }
15395
15396 static void
15397 dtrace_state_destroy(dtrace_state_t *state)
15398 {
15399 dtrace_ecb_t *ecb;
15400 dtrace_vstate_t *vstate = &state->dts_vstate;
15401 #ifdef illumos
15402 minor_t minor = getminor(state->dts_dev);
15403 #endif
15404 int i, bufsize = NCPU * sizeof (dtrace_buffer_t);
15405 dtrace_speculation_t *spec = state->dts_speculations;
15406 int nspec = state->dts_nspeculations;
15407 uint32_t match;
15408
15409 ASSERT(MUTEX_HELD(&dtrace_lock));
15410 ASSERT(MUTEX_HELD(&cpu_lock));
15411
15412 /*
15413 * First, retract any retained enablings for this state.
15414 */
15415 dtrace_enabling_retract(state);
15416 ASSERT(state->dts_nretained == 0);
15417
15418 if (state->dts_activity == DTRACE_ACTIVITY_ACTIVE ||
15419 state->dts_activity == DTRACE_ACTIVITY_DRAINING) {
15420 /*
15421 * We have managed to come into dtrace_state_destroy() on a
15422 * hot enabling -- almost certainly because of a disorderly
15423 * shutdown of a consumer. (That is, a consumer that is
15424 * exiting without having called dtrace_stop().) In this case,
15425 * we're going to set our activity to be KILLED, and then
15426 * issue a sync to be sure that everyone is out of probe
15427 * context before we start blowing away ECBs.
15428 */
15429 state->dts_activity = DTRACE_ACTIVITY_KILLED;
15430 dtrace_sync();
15431 }
15432
15433 /*
15434 * Release the credential hold we took in dtrace_state_create().
15435 */
15436 if (state->dts_cred.dcr_cred != NULL)
15437 crfree(state->dts_cred.dcr_cred);
15438
15439 /*
15440 * Now we can safely disable and destroy any enabled probes. Because
15441 * any DTRACE_PRIV_KERNEL probes may actually be slowing our progress
15442 * (especially if they're all enabled), we take two passes through the
15443 * ECBs: in the first, we disable just DTRACE_PRIV_KERNEL probes, and
15444 * in the second we disable whatever is left over.
15445 */
15446 for (match = DTRACE_PRIV_KERNEL; ; match = 0) {
15447 for (i = 0; i < state->dts_necbs; i++) {
15448 if ((ecb = state->dts_ecbs[i]) == NULL)
15449 continue;
15450
15451 if (match && ecb->dte_probe != NULL) {
15452 dtrace_probe_t *probe = ecb->dte_probe;
15453 dtrace_provider_t *prov = probe->dtpr_provider;
15454
15455 if (!(prov->dtpv_priv.dtpp_flags & match))
15456 continue;
15457 }
15458
15459 dtrace_ecb_disable(ecb);
15460 dtrace_ecb_destroy(ecb);
15461 }
15462
15463 if (!match)
15464 break;
15465 }
15466
15467 /*
15468 * Before we free the buffers, perform one more sync to assure that
15469 * every CPU is out of probe context.
15470 */
15471 dtrace_sync();
15472
15473 dtrace_buffer_free(state->dts_buffer);
15474 dtrace_buffer_free(state->dts_aggbuffer);
15475
15476 for (i = 0; i < nspec; i++)
15477 dtrace_buffer_free(spec[i].dtsp_buffer);
15478
15479 #ifdef illumos
15480 if (state->dts_cleaner != CYCLIC_NONE)
15481 cyclic_remove(state->dts_cleaner);
15482
15483 if (state->dts_deadman != CYCLIC_NONE)
15484 cyclic_remove(state->dts_deadman);
15485 #else
15486 callout_stop(&state->dts_cleaner);
15487 callout_drain(&state->dts_cleaner);
15488 callout_stop(&state->dts_deadman);
15489 callout_drain(&state->dts_deadman);
15490 #endif
15491
15492 dtrace_dstate_fini(&vstate->dtvs_dynvars);
15493 dtrace_vstate_fini(vstate);
15494 if (state->dts_ecbs != NULL)
15495 kmem_free(state->dts_ecbs, state->dts_necbs * sizeof (dtrace_ecb_t *));
15496
15497 if (state->dts_aggregations != NULL) {
15498 #ifdef DEBUG
15499 for (i = 0; i < state->dts_naggregations; i++)
15500 ASSERT(state->dts_aggregations[i] == NULL);
15501 #endif
15502 ASSERT(state->dts_naggregations > 0);
15503 kmem_free(state->dts_aggregations,
15504 state->dts_naggregations * sizeof (dtrace_aggregation_t *));
15505 }
15506
15507 kmem_free(state->dts_buffer, bufsize);
15508 kmem_free(state->dts_aggbuffer, bufsize);
15509
15510 for (i = 0; i < nspec; i++)
15511 kmem_free(spec[i].dtsp_buffer, bufsize);
15512
15513 if (spec != NULL)
15514 kmem_free(spec, nspec * sizeof (dtrace_speculation_t));
15515
15516 dtrace_format_destroy(state);
15517
15518 if (state->dts_aggid_arena != NULL) {
15519 #ifdef illumos
15520 vmem_destroy(state->dts_aggid_arena);
15521 #else
15522 delete_unrhdr(state->dts_aggid_arena);
15523 #endif
15524 state->dts_aggid_arena = NULL;
15525 }
15526 #ifdef illumos
15527 ddi_soft_state_free(dtrace_softstate, minor);
15528 vmem_free(dtrace_minor, (void *)(uintptr_t)minor, 1);
15529 #endif
15530 }
15531
15532 /*
15533 * DTrace Anonymous Enabling Functions
15534 */
15535 static dtrace_state_t *
15536 dtrace_anon_grab(void)
15537 {
15538 dtrace_state_t *state;
15539
15540 ASSERT(MUTEX_HELD(&dtrace_lock));
15541
15542 if ((state = dtrace_anon.dta_state) == NULL) {
15543 ASSERT(dtrace_anon.dta_enabling == NULL);
15544 return (NULL);
15545 }
15546
15547 ASSERT(dtrace_anon.dta_enabling != NULL);
15548 ASSERT(dtrace_retained != NULL);
15549
15550 dtrace_enabling_destroy(dtrace_anon.dta_enabling);
15551 dtrace_anon.dta_enabling = NULL;
15552 dtrace_anon.dta_state = NULL;
15553
15554 return (state);
15555 }
15556
15557 static void
15558 dtrace_anon_property(void)
15559 {
15560 int i, rv;
15561 dtrace_state_t *state;
15562 dof_hdr_t *dof;
15563 char c[32]; /* enough for "dof-data-" + digits */
15564
15565 ASSERT(MUTEX_HELD(&dtrace_lock));
15566 ASSERT(MUTEX_HELD(&cpu_lock));
15567
15568 for (i = 0; ; i++) {
15569 (void) snprintf(c, sizeof (c), "dof-data-%d", i);
15570
15571 dtrace_err_verbose = 1;
15572
15573 if ((dof = dtrace_dof_property(c)) == NULL) {
15574 dtrace_err_verbose = 0;
15575 break;
15576 }
15577
15578 #ifdef illumos
15579 /*
15580 * We want to create anonymous state, so we need to transition
15581 * the kernel debugger to indicate that DTrace is active. If
15582 * this fails (e.g. because the debugger has modified text in
15583 * some way), we won't continue with the processing.
15584 */
15585 if (kdi_dtrace_set(KDI_DTSET_DTRACE_ACTIVATE) != 0) {
15586 cmn_err(CE_NOTE, "kernel debugger active; anonymous "
15587 "enabling ignored.");
15588 dtrace_dof_destroy(dof);
15589 break;
15590 }
15591 #endif
15592
15593 /*
15594 * If we haven't allocated an anonymous state, we'll do so now.
15595 */
15596 if ((state = dtrace_anon.dta_state) == NULL) {
15597 state = dtrace_state_create(NULL, NULL);
15598 dtrace_anon.dta_state = state;
15599
15600 if (state == NULL) {
15601 /*
15602 * This basically shouldn't happen: the only
15603 * failure mode from dtrace_state_create() is a
15604 * failure of ddi_soft_state_zalloc() that
15605 * itself should never happen. Still, the
15606 * interface allows for a failure mode, and
15607 * we want to fail as gracefully as possible:
15608 * we'll emit an error message and cease
15609 * processing anonymous state in this case.
15610 */
15611 cmn_err(CE_WARN, "failed to create "
15612 "anonymous state");
15613 dtrace_dof_destroy(dof);
15614 break;
15615 }
15616 }
15617
15618 rv = dtrace_dof_slurp(dof, &state->dts_vstate, CRED(),
15619 &dtrace_anon.dta_enabling, 0, 0, B_TRUE);
15620
15621 if (rv == 0)
15622 rv = dtrace_dof_options(dof, state);
15623
15624 dtrace_err_verbose = 0;
15625 dtrace_dof_destroy(dof);
15626
15627 if (rv != 0) {
15628 /*
15629 * This is malformed DOF; chuck any anonymous state
15630 * that we created.
15631 */
15632 ASSERT(dtrace_anon.dta_enabling == NULL);
15633 dtrace_state_destroy(state);
15634 dtrace_anon.dta_state = NULL;
15635 break;
15636 }
15637
15638 ASSERT(dtrace_anon.dta_enabling != NULL);
15639 }
15640
15641 if (dtrace_anon.dta_enabling != NULL) {
15642 int rval;
15643
15644 /*
15645 * dtrace_enabling_retain() can only fail because we are
15646 * trying to retain more enablings than are allowed -- but
15647 * we only have one anonymous enabling, and we are guaranteed
15648 * to be allowed at least one retained enabling; we assert
15649 * that dtrace_enabling_retain() returns success.
15650 */
15651 rval = dtrace_enabling_retain(dtrace_anon.dta_enabling);
15652 ASSERT(rval == 0);
15653
15654 dtrace_enabling_dump(dtrace_anon.dta_enabling);
15655 }
15656 }
15657
15658 /*
15659 * DTrace Helper Functions
15660 */
15661 static void
15662 dtrace_helper_trace(dtrace_helper_action_t *helper,
15663 dtrace_mstate_t *mstate, dtrace_vstate_t *vstate, int where)
15664 {
15665 uint32_t size, next, nnext, i;
15666 dtrace_helptrace_t *ent, *buffer;
15667 uint16_t flags = cpu_core[curcpu].cpuc_dtrace_flags;
15668
15669 if ((buffer = dtrace_helptrace_buffer) == NULL)
15670 return;
15671
15672 ASSERT(vstate->dtvs_nlocals <= dtrace_helptrace_nlocals);
15673
15674 /*
15675 * What would a tracing framework be without its own tracing
15676 * framework? (Well, a hell of a lot simpler, for starters...)
15677 */
15678 size = sizeof (dtrace_helptrace_t) + dtrace_helptrace_nlocals *
15679 sizeof (uint64_t) - sizeof (uint64_t);
15680
15681 /*
15682 * Iterate until we can allocate a slot in the trace buffer.
15683 */
15684 do {
15685 next = dtrace_helptrace_next;
15686
15687 if (next + size < dtrace_helptrace_bufsize) {
15688 nnext = next + size;
15689 } else {
15690 nnext = size;
15691 }
15692 } while (dtrace_cas32(&dtrace_helptrace_next, next, nnext) != next);
15693
15694 /*
15695 * We have our slot; fill it in.
15696 */
15697 if (nnext == size) {
15698 dtrace_helptrace_wrapped++;
15699 next = 0;
15700 }
15701
15702 ent = (dtrace_helptrace_t *)((uintptr_t)buffer + next);
15703 ent->dtht_helper = helper;
15704 ent->dtht_where = where;
15705 ent->dtht_nlocals = vstate->dtvs_nlocals;
15706
15707 ent->dtht_fltoffs = (mstate->dtms_present & DTRACE_MSTATE_FLTOFFS) ?
15708 mstate->dtms_fltoffs : -1;
15709 ent->dtht_fault = DTRACE_FLAGS2FLT(flags);
15710 ent->dtht_illval = cpu_core[curcpu].cpuc_dtrace_illval;
15711
15712 for (i = 0; i < vstate->dtvs_nlocals; i++) {
15713 dtrace_statvar_t *svar;
15714
15715 if ((svar = vstate->dtvs_locals[i]) == NULL)
15716 continue;
15717
15718 ASSERT(svar->dtsv_size >= NCPU * sizeof (uint64_t));
15719 ent->dtht_locals[i] =
15720 ((uint64_t *)(uintptr_t)svar->dtsv_data)[curcpu];
15721 }
15722 }
15723
15724 static uint64_t
15725 dtrace_helper(int which, dtrace_mstate_t *mstate,
15726 dtrace_state_t *state, uint64_t arg0, uint64_t arg1)
15727 {
15728 uint16_t *flags = &cpu_core[curcpu].cpuc_dtrace_flags;
15729 uint64_t sarg0 = mstate->dtms_arg[0];
15730 uint64_t sarg1 = mstate->dtms_arg[1];
15731 uint64_t rval = 0;
15732 dtrace_helpers_t *helpers = curproc->p_dtrace_helpers;
15733 dtrace_helper_action_t *helper;
15734 dtrace_vstate_t *vstate;
15735 dtrace_difo_t *pred;
15736 int i, trace = dtrace_helptrace_buffer != NULL;
15737
15738 ASSERT(which >= 0 && which < DTRACE_NHELPER_ACTIONS);
15739
15740 if (helpers == NULL)
15741 return (0);
15742
15743 if ((helper = helpers->dthps_actions[which]) == NULL)
15744 return (0);
15745
15746 vstate = &helpers->dthps_vstate;
15747 mstate->dtms_arg[0] = arg0;
15748 mstate->dtms_arg[1] = arg1;
15749
15750 /*
15751 * Now iterate over each helper. If its predicate evaluates to 'true',
15752 * we'll call the corresponding actions. Note that the below calls
15753 * to dtrace_dif_emulate() may set faults in machine state. This is
15754 * okay: our caller (the outer dtrace_dif_emulate()) will simply plow
15755 * the stored DIF offset with its own (which is the desired behavior).
15756 * Also, note the calls to dtrace_dif_emulate() may allocate scratch
15757 * from machine state; this is okay, too.
15758 */
15759 for (; helper != NULL; helper = helper->dtha_next) {
15760 if ((pred = helper->dtha_predicate) != NULL) {
15761 if (trace)
15762 dtrace_helper_trace(helper, mstate, vstate, 0);
15763
15764 if (!dtrace_dif_emulate(pred, mstate, vstate, state))
15765 goto next;
15766
15767 if (*flags & CPU_DTRACE_FAULT)
15768 goto err;
15769 }
15770
15771 for (i = 0; i < helper->dtha_nactions; i++) {
15772 if (trace)
15773 dtrace_helper_trace(helper,
15774 mstate, vstate, i + 1);
15775
15776 rval = dtrace_dif_emulate(helper->dtha_actions[i],
15777 mstate, vstate, state);
15778
15779 if (*flags & CPU_DTRACE_FAULT)
15780 goto err;
15781 }
15782
15783 next:
15784 if (trace)
15785 dtrace_helper_trace(helper, mstate, vstate,
15786 DTRACE_HELPTRACE_NEXT);
15787 }
15788
15789 if (trace)
15790 dtrace_helper_trace(helper, mstate, vstate,
15791 DTRACE_HELPTRACE_DONE);
15792
15793 /*
15794 * Restore the arg0 that we saved upon entry.
15795 */
15796 mstate->dtms_arg[0] = sarg0;
15797 mstate->dtms_arg[1] = sarg1;
15798
15799 return (rval);
15800
15801 err:
15802 if (trace)
15803 dtrace_helper_trace(helper, mstate, vstate,
15804 DTRACE_HELPTRACE_ERR);
15805
15806 /*
15807 * Restore the arg0 that we saved upon entry.
15808 */
15809 mstate->dtms_arg[0] = sarg0;
15810 mstate->dtms_arg[1] = sarg1;
15811
15812 return (0);
15813 }
15814
15815 static void
15816 dtrace_helper_action_destroy(dtrace_helper_action_t *helper,
15817 dtrace_vstate_t *vstate)
15818 {
15819 int i;
15820
15821 if (helper->dtha_predicate != NULL)
15822 dtrace_difo_release(helper->dtha_predicate, vstate);
15823
15824 for (i = 0; i < helper->dtha_nactions; i++) {
15825 ASSERT(helper->dtha_actions[i] != NULL);
15826 dtrace_difo_release(helper->dtha_actions[i], vstate);
15827 }
15828
15829 kmem_free(helper->dtha_actions,
15830 helper->dtha_nactions * sizeof (dtrace_difo_t *));
15831 kmem_free(helper, sizeof (dtrace_helper_action_t));
15832 }
15833
15834 static int
15835 dtrace_helper_destroygen(dtrace_helpers_t *help, int gen)
15836 {
15837 proc_t *p = curproc;
15838 dtrace_vstate_t *vstate;
15839 int i;
15840
15841 if (help == NULL)
15842 help = p->p_dtrace_helpers;
15843
15844 ASSERT(MUTEX_HELD(&dtrace_lock));
15845
15846 if (help == NULL || gen > help->dthps_generation)
15847 return (EINVAL);
15848
15849 vstate = &help->dthps_vstate;
15850
15851 for (i = 0; i < DTRACE_NHELPER_ACTIONS; i++) {
15852 dtrace_helper_action_t *last = NULL, *h, *next;
15853
15854 for (h = help->dthps_actions[i]; h != NULL; h = next) {
15855 next = h->dtha_next;
15856
15857 if (h->dtha_generation == gen) {
15858 if (last != NULL) {
15859 last->dtha_next = next;
15860 } else {
15861 help->dthps_actions[i] = next;
15862 }
15863
15864 dtrace_helper_action_destroy(h, vstate);
15865 } else {
15866 last = h;
15867 }
15868 }
15869 }
15870
15871 /*
15872 * Interate until we've cleared out all helper providers with the
15873 * given generation number.
15874 */
15875 for (;;) {
15876 dtrace_helper_provider_t *prov;
15877
15878 /*
15879 * Look for a helper provider with the right generation. We
15880 * have to start back at the beginning of the list each time
15881 * because we drop dtrace_lock. It's unlikely that we'll make
15882 * more than two passes.
15883 */
15884 for (i = 0; i < help->dthps_nprovs; i++) {
15885 prov = help->dthps_provs[i];
15886
15887 if (prov->dthp_generation == gen)
15888 break;
15889 }
15890
15891 /*
15892 * If there were no matches, we're done.
15893 */
15894 if (i == help->dthps_nprovs)
15895 break;
15896
15897 /*
15898 * Move the last helper provider into this slot.
15899 */
15900 help->dthps_nprovs--;
15901 help->dthps_provs[i] = help->dthps_provs[help->dthps_nprovs];
15902 help->dthps_provs[help->dthps_nprovs] = NULL;
15903
15904 mutex_exit(&dtrace_lock);
15905
15906 /*
15907 * If we have a meta provider, remove this helper provider.
15908 */
15909 mutex_enter(&dtrace_meta_lock);
15910 if (dtrace_meta_pid != NULL) {
15911 ASSERT(dtrace_deferred_pid == NULL);
15912 dtrace_helper_provider_remove(&prov->dthp_prov,
15913 p->p_pid);
15914 }
15915 mutex_exit(&dtrace_meta_lock);
15916
15917 dtrace_helper_provider_destroy(prov);
15918
15919 mutex_enter(&dtrace_lock);
15920 }
15921
15922 return (0);
15923 }
15924
15925 static int
15926 dtrace_helper_validate(dtrace_helper_action_t *helper)
15927 {
15928 int err = 0, i;
15929 dtrace_difo_t *dp;
15930
15931 if ((dp = helper->dtha_predicate) != NULL)
15932 err += dtrace_difo_validate_helper(dp);
15933
15934 for (i = 0; i < helper->dtha_nactions; i++)
15935 err += dtrace_difo_validate_helper(helper->dtha_actions[i]);
15936
15937 return (err == 0);
15938 }
15939
15940 static int
15941 dtrace_helper_action_add(int which, dtrace_ecbdesc_t *ep,
15942 dtrace_helpers_t *help)
15943 {
15944 dtrace_helper_action_t *helper, *last;
15945 dtrace_actdesc_t *act;
15946 dtrace_vstate_t *vstate;
15947 dtrace_predicate_t *pred;
15948 int count = 0, nactions = 0, i;
15949
15950 if (which < 0 || which >= DTRACE_NHELPER_ACTIONS)
15951 return (EINVAL);
15952
15953 last = help->dthps_actions[which];
15954 vstate = &help->dthps_vstate;
15955
15956 for (count = 0; last != NULL; last = last->dtha_next) {
15957 count++;
15958 if (last->dtha_next == NULL)
15959 break;
15960 }
15961
15962 /*
15963 * If we already have dtrace_helper_actions_max helper actions for this
15964 * helper action type, we'll refuse to add a new one.
15965 */
15966 if (count >= dtrace_helper_actions_max)
15967 return (ENOSPC);
15968
15969 helper = kmem_zalloc(sizeof (dtrace_helper_action_t), KM_SLEEP);
15970 helper->dtha_generation = help->dthps_generation;
15971
15972 if ((pred = ep->dted_pred.dtpdd_predicate) != NULL) {
15973 ASSERT(pred->dtp_difo != NULL);
15974 dtrace_difo_hold(pred->dtp_difo);
15975 helper->dtha_predicate = pred->dtp_difo;
15976 }
15977
15978 for (act = ep->dted_action; act != NULL; act = act->dtad_next) {
15979 if (act->dtad_kind != DTRACEACT_DIFEXPR)
15980 goto err;
15981
15982 if (act->dtad_difo == NULL)
15983 goto err;
15984
15985 nactions++;
15986 }
15987
15988 helper->dtha_actions = kmem_zalloc(sizeof (dtrace_difo_t *) *
15989 (helper->dtha_nactions = nactions), KM_SLEEP);
15990
15991 for (act = ep->dted_action, i = 0; act != NULL; act = act->dtad_next) {
15992 dtrace_difo_hold(act->dtad_difo);
15993 helper->dtha_actions[i++] = act->dtad_difo;
15994 }
15995
15996 if (!dtrace_helper_validate(helper))
15997 goto err;
15998
15999 if (last == NULL) {
16000 help->dthps_actions[which] = helper;
16001 } else {
16002 last->dtha_next = helper;
16003 }
16004
16005 if (vstate->dtvs_nlocals > dtrace_helptrace_nlocals) {
16006 dtrace_helptrace_nlocals = vstate->dtvs_nlocals;
16007 dtrace_helptrace_next = 0;
16008 }
16009
16010 return (0);
16011 err:
16012 dtrace_helper_action_destroy(helper, vstate);
16013 return (EINVAL);
16014 }
16015
16016 static void
16017 dtrace_helper_provider_register(proc_t *p, dtrace_helpers_t *help,
16018 dof_helper_t *dofhp)
16019 {
16020 ASSERT(MUTEX_NOT_HELD(&dtrace_lock));
16021
16022 mutex_enter(&dtrace_meta_lock);
16023 mutex_enter(&dtrace_lock);
16024
16025 if (!dtrace_attached() || dtrace_meta_pid == NULL) {
16026 /*
16027 * If the dtrace module is loaded but not attached, or if
16028 * there aren't isn't a meta provider registered to deal with
16029 * these provider descriptions, we need to postpone creating
16030 * the actual providers until later.
16031 */
16032
16033 if (help->dthps_next == NULL && help->dthps_prev == NULL &&
16034 dtrace_deferred_pid != help) {
16035 help->dthps_deferred = 1;
16036 help->dthps_pid = p->p_pid;
16037 help->dthps_next = dtrace_deferred_pid;
16038 help->dthps_prev = NULL;
16039 if (dtrace_deferred_pid != NULL)
16040 dtrace_deferred_pid->dthps_prev = help;
16041 dtrace_deferred_pid = help;
16042 }
16043
16044 mutex_exit(&dtrace_lock);
16045
16046 } else if (dofhp != NULL) {
16047 /*
16048 * If the dtrace module is loaded and we have a particular
16049 * helper provider description, pass that off to the
16050 * meta provider.
16051 */
16052
16053 mutex_exit(&dtrace_lock);
16054
16055 dtrace_helper_provide(dofhp, p->p_pid);
16056
16057 } else {
16058 /*
16059 * Otherwise, just pass all the helper provider descriptions
16060 * off to the meta provider.
16061 */
16062
16063 int i;
16064 mutex_exit(&dtrace_lock);
16065
16066 for (i = 0; i < help->dthps_nprovs; i++) {
16067 dtrace_helper_provide(&help->dthps_provs[i]->dthp_prov,
16068 p->p_pid);
16069 }
16070 }
16071
16072 mutex_exit(&dtrace_meta_lock);
16073 }
16074
16075 static int
16076 dtrace_helper_provider_add(dof_helper_t *dofhp, dtrace_helpers_t *help, int gen)
16077 {
16078 dtrace_helper_provider_t *hprov, **tmp_provs;
16079 uint_t tmp_maxprovs, i;
16080
16081 ASSERT(MUTEX_HELD(&dtrace_lock));
16082 ASSERT(help != NULL);
16083
16084 /*
16085 * If we already have dtrace_helper_providers_max helper providers,
16086 * we're refuse to add a new one.
16087 */
16088 if (help->dthps_nprovs >= dtrace_helper_providers_max)
16089 return (ENOSPC);
16090
16091 /*
16092 * Check to make sure this isn't a duplicate.
16093 */
16094 for (i = 0; i < help->dthps_nprovs; i++) {
16095 if (dofhp->dofhp_addr ==
16096 help->dthps_provs[i]->dthp_prov.dofhp_addr)
16097 return (EALREADY);
16098 }
16099
16100 hprov = kmem_zalloc(sizeof (dtrace_helper_provider_t), KM_SLEEP);
16101 hprov->dthp_prov = *dofhp;
16102 hprov->dthp_ref = 1;
16103 hprov->dthp_generation = gen;
16104
16105 /*
16106 * Allocate a bigger table for helper providers if it's already full.
16107 */
16108 if (help->dthps_maxprovs == help->dthps_nprovs) {
16109 tmp_maxprovs = help->dthps_maxprovs;
16110 tmp_provs = help->dthps_provs;
16111
16112 if (help->dthps_maxprovs == 0)
16113 help->dthps_maxprovs = 2;
16114 else
16115 help->dthps_maxprovs *= 2;
16116 if (help->dthps_maxprovs > dtrace_helper_providers_max)
16117 help->dthps_maxprovs = dtrace_helper_providers_max;
16118
16119 ASSERT(tmp_maxprovs < help->dthps_maxprovs);
16120
16121 help->dthps_provs = kmem_zalloc(help->dthps_maxprovs *
16122 sizeof (dtrace_helper_provider_t *), KM_SLEEP);
16123
16124 if (tmp_provs != NULL) {
16125 bcopy(tmp_provs, help->dthps_provs, tmp_maxprovs *
16126 sizeof (dtrace_helper_provider_t *));
16127 kmem_free(tmp_provs, tmp_maxprovs *
16128 sizeof (dtrace_helper_provider_t *));
16129 }
16130 }
16131
16132 help->dthps_provs[help->dthps_nprovs] = hprov;
16133 help->dthps_nprovs++;
16134
16135 return (0);
16136 }
16137
16138 static void
16139 dtrace_helper_provider_destroy(dtrace_helper_provider_t *hprov)
16140 {
16141 mutex_enter(&dtrace_lock);
16142
16143 if (--hprov->dthp_ref == 0) {
16144 dof_hdr_t *dof;
16145 mutex_exit(&dtrace_lock);
16146 dof = (dof_hdr_t *)(uintptr_t)hprov->dthp_prov.dofhp_dof;
16147 dtrace_dof_destroy(dof);
16148 kmem_free(hprov, sizeof (dtrace_helper_provider_t));
16149 } else {
16150 mutex_exit(&dtrace_lock);
16151 }
16152 }
16153
16154 static int
16155 dtrace_helper_provider_validate(dof_hdr_t *dof, dof_sec_t *sec)
16156 {
16157 uintptr_t daddr = (uintptr_t)dof;
16158 dof_sec_t *str_sec, *prb_sec, *arg_sec, *off_sec, *enoff_sec;
16159 dof_provider_t *provider;
16160 dof_probe_t *probe;
16161 uint8_t *arg;
16162 char *strtab, *typestr;
16163 dof_stridx_t typeidx;
16164 size_t typesz;
16165 uint_t nprobes, j, k;
16166
16167 ASSERT(sec->dofs_type == DOF_SECT_PROVIDER);
16168
16169 if (sec->dofs_offset & (sizeof (uint_t) - 1)) {
16170 dtrace_dof_error(dof, "misaligned section offset");
16171 return (-1);
16172 }
16173
16174 /*
16175 * The section needs to be large enough to contain the DOF provider
16176 * structure appropriate for the given version.
16177 */
16178 if (sec->dofs_size <
16179 ((dof->dofh_ident[DOF_ID_VERSION] == DOF_VERSION_1) ?
16180 offsetof(dof_provider_t, dofpv_prenoffs) :
16181 sizeof (dof_provider_t))) {
16182 dtrace_dof_error(dof, "provider section too small");
16183 return (-1);
16184 }
16185
16186 provider = (dof_provider_t *)(uintptr_t)(daddr + sec->dofs_offset);
16187 str_sec = dtrace_dof_sect(dof, DOF_SECT_STRTAB, provider->dofpv_strtab);
16188 prb_sec = dtrace_dof_sect(dof, DOF_SECT_PROBES, provider->dofpv_probes);
16189 arg_sec = dtrace_dof_sect(dof, DOF_SECT_PRARGS, provider->dofpv_prargs);
16190 off_sec = dtrace_dof_sect(dof, DOF_SECT_PROFFS, provider->dofpv_proffs);
16191
16192 if (str_sec == NULL || prb_sec == NULL ||
16193 arg_sec == NULL || off_sec == NULL)
16194 return (-1);
16195
16196 enoff_sec = NULL;
16197
16198 if (dof->dofh_ident[DOF_ID_VERSION] != DOF_VERSION_1 &&
16199 provider->dofpv_prenoffs != DOF_SECT_NONE &&
16200 (enoff_sec = dtrace_dof_sect(dof, DOF_SECT_PRENOFFS,
16201 provider->dofpv_prenoffs)) == NULL)
16202 return (-1);
16203
16204 strtab = (char *)(uintptr_t)(daddr + str_sec->dofs_offset);
16205
16206 if (provider->dofpv_name >= str_sec->dofs_size ||
16207 strlen(strtab + provider->dofpv_name) >= DTRACE_PROVNAMELEN) {
16208 dtrace_dof_error(dof, "invalid provider name");
16209 return (-1);
16210 }
16211
16212 if (prb_sec->dofs_entsize == 0 ||
16213 prb_sec->dofs_entsize > prb_sec->dofs_size) {
16214 dtrace_dof_error(dof, "invalid entry size");
16215 return (-1);
16216 }
16217
16218 if (prb_sec->dofs_entsize & (sizeof (uintptr_t) - 1)) {
16219 dtrace_dof_error(dof, "misaligned entry size");
16220 return (-1);
16221 }
16222
16223 if (off_sec->dofs_entsize != sizeof (uint32_t)) {
16224 dtrace_dof_error(dof, "invalid entry size");
16225 return (-1);
16226 }
16227
16228 if (off_sec->dofs_offset & (sizeof (uint32_t) - 1)) {
16229 dtrace_dof_error(dof, "misaligned section offset");
16230 return (-1);
16231 }
16232
16233 if (arg_sec->dofs_entsize != sizeof (uint8_t)) {
16234 dtrace_dof_error(dof, "invalid entry size");
16235 return (-1);
16236 }
16237
16238 arg = (uint8_t *)(uintptr_t)(daddr + arg_sec->dofs_offset);
16239
16240 nprobes = prb_sec->dofs_size / prb_sec->dofs_entsize;
16241
16242 /*
16243 * Take a pass through the probes to check for errors.
16244 */
16245 for (j = 0; j < nprobes; j++) {
16246 probe = (dof_probe_t *)(uintptr_t)(daddr +
16247 prb_sec->dofs_offset + j * prb_sec->dofs_entsize);
16248
16249 if (probe->dofpr_func >= str_sec->dofs_size) {
16250 dtrace_dof_error(dof, "invalid function name");
16251 return (-1);
16252 }
16253
16254 if (strlen(strtab + probe->dofpr_func) >= DTRACE_FUNCNAMELEN) {
16255 dtrace_dof_error(dof, "function name too long");
16256 /*
16257 * Keep going if the function name is too long.
16258 * Unlike provider and probe names, we cannot reasonably
16259 * impose restrictions on function names, since they're
16260 * a property of the code being instrumented. We will
16261 * skip this probe in dtrace_helper_provide_one().
16262 */
16263 }
16264
16265 if (probe->dofpr_name >= str_sec->dofs_size ||
16266 strlen(strtab + probe->dofpr_name) >= DTRACE_NAMELEN) {
16267 dtrace_dof_error(dof, "invalid probe name");
16268 return (-1);
16269 }
16270
16271 /*
16272 * The offset count must not wrap the index, and the offsets
16273 * must also not overflow the section's data.
16274 */
16275 if (probe->dofpr_offidx + probe->dofpr_noffs <
16276 probe->dofpr_offidx ||
16277 (probe->dofpr_offidx + probe->dofpr_noffs) *
16278 off_sec->dofs_entsize > off_sec->dofs_size) {
16279 dtrace_dof_error(dof, "invalid probe offset");
16280 return (-1);
16281 }
16282
16283 if (dof->dofh_ident[DOF_ID_VERSION] != DOF_VERSION_1) {
16284 /*
16285 * If there's no is-enabled offset section, make sure
16286 * there aren't any is-enabled offsets. Otherwise
16287 * perform the same checks as for probe offsets
16288 * (immediately above).
16289 */
16290 if (enoff_sec == NULL) {
16291 if (probe->dofpr_enoffidx != 0 ||
16292 probe->dofpr_nenoffs != 0) {
16293 dtrace_dof_error(dof, "is-enabled "
16294 "offsets with null section");
16295 return (-1);
16296 }
16297 } else if (probe->dofpr_enoffidx +
16298 probe->dofpr_nenoffs < probe->dofpr_enoffidx ||
16299 (probe->dofpr_enoffidx + probe->dofpr_nenoffs) *
16300 enoff_sec->dofs_entsize > enoff_sec->dofs_size) {
16301 dtrace_dof_error(dof, "invalid is-enabled "
16302 "offset");
16303 return (-1);
16304 }
16305
16306 if (probe->dofpr_noffs + probe->dofpr_nenoffs == 0) {
16307 dtrace_dof_error(dof, "zero probe and "
16308 "is-enabled offsets");
16309 return (-1);
16310 }
16311 } else if (probe->dofpr_noffs == 0) {
16312 dtrace_dof_error(dof, "zero probe offsets");
16313 return (-1);
16314 }
16315
16316 if (probe->dofpr_argidx + probe->dofpr_xargc <
16317 probe->dofpr_argidx ||
16318 (probe->dofpr_argidx + probe->dofpr_xargc) *
16319 arg_sec->dofs_entsize > arg_sec->dofs_size) {
16320 dtrace_dof_error(dof, "invalid args");
16321 return (-1);
16322 }
16323
16324 typeidx = probe->dofpr_nargv;
16325 typestr = strtab + probe->dofpr_nargv;
16326 for (k = 0; k < probe->dofpr_nargc; k++) {
16327 if (typeidx >= str_sec->dofs_size) {
16328 dtrace_dof_error(dof, "bad "
16329 "native argument type");
16330 return (-1);
16331 }
16332
16333 typesz = strlen(typestr) + 1;
16334 if (typesz > DTRACE_ARGTYPELEN) {
16335 dtrace_dof_error(dof, "native "
16336 "argument type too long");
16337 return (-1);
16338 }
16339 typeidx += typesz;
16340 typestr += typesz;
16341 }
16342
16343 typeidx = probe->dofpr_xargv;
16344 typestr = strtab + probe->dofpr_xargv;
16345 for (k = 0; k < probe->dofpr_xargc; k++) {
16346 if (arg[probe->dofpr_argidx + k] > probe->dofpr_nargc) {
16347 dtrace_dof_error(dof, "bad "
16348 "native argument index");
16349 return (-1);
16350 }
16351
16352 if (typeidx >= str_sec->dofs_size) {
16353 dtrace_dof_error(dof, "bad "
16354 "translated argument type");
16355 return (-1);
16356 }
16357
16358 typesz = strlen(typestr) + 1;
16359 if (typesz > DTRACE_ARGTYPELEN) {
16360 dtrace_dof_error(dof, "translated argument "
16361 "type too long");
16362 return (-1);
16363 }
16364
16365 typeidx += typesz;
16366 typestr += typesz;
16367 }
16368 }
16369
16370 return (0);
16371 }
16372
16373 static int
16374 dtrace_helper_slurp(dof_hdr_t *dof, dof_helper_t *dhp, struct proc *p)
16375 {
16376 dtrace_helpers_t *help;
16377 dtrace_vstate_t *vstate;
16378 dtrace_enabling_t *enab = NULL;
16379 int i, gen, rv, nhelpers = 0, nprovs = 0, destroy = 1;
16380 uintptr_t daddr = (uintptr_t)dof;
16381
16382 ASSERT(MUTEX_HELD(&dtrace_lock));
16383
16384 if ((help = p->p_dtrace_helpers) == NULL)
16385 help = dtrace_helpers_create(p);
16386
16387 vstate = &help->dthps_vstate;
16388
16389 if ((rv = dtrace_dof_slurp(dof, vstate, NULL, &enab, dhp->dofhp_addr,
16390 dhp->dofhp_dof, B_FALSE)) != 0) {
16391 dtrace_dof_destroy(dof);
16392 return (rv);
16393 }
16394
16395 /*
16396 * Look for helper providers and validate their descriptions.
16397 */
16398 for (i = 0; i < dof->dofh_secnum; i++) {
16399 dof_sec_t *sec = (dof_sec_t *)(uintptr_t)(daddr +
16400 dof->dofh_secoff + i * dof->dofh_secsize);
16401
16402 if (sec->dofs_type != DOF_SECT_PROVIDER)
16403 continue;
16404
16405 if (dtrace_helper_provider_validate(dof, sec) != 0) {
16406 dtrace_enabling_destroy(enab);
16407 dtrace_dof_destroy(dof);
16408 return (-1);
16409 }
16410
16411 nprovs++;
16412 }
16413
16414 /*
16415 * Now we need to walk through the ECB descriptions in the enabling.
16416 */
16417 for (i = 0; i < enab->dten_ndesc; i++) {
16418 dtrace_ecbdesc_t *ep = enab->dten_desc[i];
16419 dtrace_probedesc_t *desc = &ep->dted_probe;
16420
16421 if (strcmp(desc->dtpd_provider, "dtrace") != 0)
16422 continue;
16423
16424 if (strcmp(desc->dtpd_mod, "helper") != 0)
16425 continue;
16426
16427 if (strcmp(desc->dtpd_func, "ustack") != 0)
16428 continue;
16429
16430 if ((rv = dtrace_helper_action_add(DTRACE_HELPER_ACTION_USTACK,
16431 ep, help)) != 0) {
16432 /*
16433 * Adding this helper action failed -- we are now going
16434 * to rip out the entire generation and return failure.
16435 */
16436 (void) dtrace_helper_destroygen(help,
16437 help->dthps_generation);
16438 dtrace_enabling_destroy(enab);
16439 dtrace_dof_destroy(dof);
16440 return (-1);
16441 }
16442
16443 nhelpers++;
16444 }
16445
16446 if (nhelpers < enab->dten_ndesc)
16447 dtrace_dof_error(dof, "unmatched helpers");
16448
16449 gen = help->dthps_generation++;
16450 dtrace_enabling_destroy(enab);
16451
16452 if (nprovs > 0) {
16453 /*
16454 * Now that this is in-kernel, we change the sense of the
16455 * members: dofhp_dof denotes the in-kernel copy of the DOF
16456 * and dofhp_addr denotes the address at user-level.
16457 */
16458 dhp->dofhp_addr = dhp->dofhp_dof;
16459 dhp->dofhp_dof = (uint64_t)(uintptr_t)dof;
16460
16461 if (dtrace_helper_provider_add(dhp, help, gen) == 0) {
16462 mutex_exit(&dtrace_lock);
16463 dtrace_helper_provider_register(p, help, dhp);
16464 mutex_enter(&dtrace_lock);
16465
16466 destroy = 0;
16467 }
16468 }
16469
16470 if (destroy)
16471 dtrace_dof_destroy(dof);
16472
16473 return (gen);
16474 }
16475
16476 static dtrace_helpers_t *
16477 dtrace_helpers_create(proc_t *p)
16478 {
16479 dtrace_helpers_t *help;
16480
16481 ASSERT(MUTEX_HELD(&dtrace_lock));
16482 ASSERT(p->p_dtrace_helpers == NULL);
16483
16484 help = kmem_zalloc(sizeof (dtrace_helpers_t), KM_SLEEP);
16485 help->dthps_actions = kmem_zalloc(sizeof (dtrace_helper_action_t *) *
16486 DTRACE_NHELPER_ACTIONS, KM_SLEEP);
16487
16488 p->p_dtrace_helpers = help;
16489 dtrace_helpers++;
16490
16491 return (help);
16492 }
16493
16494 #ifdef illumos
16495 static
16496 #endif
16497 void
16498 dtrace_helpers_destroy(proc_t *p)
16499 {
16500 dtrace_helpers_t *help;
16501 dtrace_vstate_t *vstate;
16502 #ifdef illumos
16503 proc_t *p = curproc;
16504 #endif
16505 int i;
16506
16507 mutex_enter(&dtrace_lock);
16508
16509 ASSERT(p->p_dtrace_helpers != NULL);
16510 ASSERT(dtrace_helpers > 0);
16511
16512 help = p->p_dtrace_helpers;
16513 vstate = &help->dthps_vstate;
16514
16515 /*
16516 * We're now going to lose the help from this process.
16517 */
16518 p->p_dtrace_helpers = NULL;
16519 dtrace_sync();
16520
16521 /*
16522 * Destory the helper actions.
16523 */
16524 for (i = 0; i < DTRACE_NHELPER_ACTIONS; i++) {
16525 dtrace_helper_action_t *h, *next;
16526
16527 for (h = help->dthps_actions[i]; h != NULL; h = next) {
16528 next = h->dtha_next;
16529 dtrace_helper_action_destroy(h, vstate);
16530 h = next;
16531 }
16532 }
16533
16534 mutex_exit(&dtrace_lock);
16535
16536 /*
16537 * Destroy the helper providers.
16538 */
16539 if (help->dthps_maxprovs > 0) {
16540 mutex_enter(&dtrace_meta_lock);
16541 if (dtrace_meta_pid != NULL) {
16542 ASSERT(dtrace_deferred_pid == NULL);
16543
16544 for (i = 0; i < help->dthps_nprovs; i++) {
16545 dtrace_helper_provider_remove(
16546 &help->dthps_provs[i]->dthp_prov, p->p_pid);
16547 }
16548 } else {
16549 mutex_enter(&dtrace_lock);
16550 ASSERT(help->dthps_deferred == 0 ||
16551 help->dthps_next != NULL ||
16552 help->dthps_prev != NULL ||
16553 help == dtrace_deferred_pid);
16554
16555 /*
16556 * Remove the helper from the deferred list.
16557 */
16558 if (help->dthps_next != NULL)
16559 help->dthps_next->dthps_prev = help->dthps_prev;
16560 if (help->dthps_prev != NULL)
16561 help->dthps_prev->dthps_next = help->dthps_next;
16562 if (dtrace_deferred_pid == help) {
16563 dtrace_deferred_pid = help->dthps_next;
16564 ASSERT(help->dthps_prev == NULL);
16565 }
16566
16567 mutex_exit(&dtrace_lock);
16568 }
16569
16570 mutex_exit(&dtrace_meta_lock);
16571
16572 for (i = 0; i < help->dthps_nprovs; i++) {
16573 dtrace_helper_provider_destroy(help->dthps_provs[i]);
16574 }
16575
16576 kmem_free(help->dthps_provs, help->dthps_maxprovs *
16577 sizeof (dtrace_helper_provider_t *));
16578 }
16579
16580 mutex_enter(&dtrace_lock);
16581
16582 dtrace_vstate_fini(&help->dthps_vstate);
16583 kmem_free(help->dthps_actions,
16584 sizeof (dtrace_helper_action_t *) * DTRACE_NHELPER_ACTIONS);
16585 kmem_free(help, sizeof (dtrace_helpers_t));
16586
16587 --dtrace_helpers;
16588 mutex_exit(&dtrace_lock);
16589 }
16590
16591 #ifdef illumos
16592 static
16593 #endif
16594 void
16595 dtrace_helpers_duplicate(proc_t *from, proc_t *to)
16596 {
16597 dtrace_helpers_t *help, *newhelp;
16598 dtrace_helper_action_t *helper, *new, *last;
16599 dtrace_difo_t *dp;
16600 dtrace_vstate_t *vstate;
16601 int i, j, sz, hasprovs = 0;
16602
16603 mutex_enter(&dtrace_lock);
16604 ASSERT(from->p_dtrace_helpers != NULL);
16605 ASSERT(dtrace_helpers > 0);
16606
16607 help = from->p_dtrace_helpers;
16608 newhelp = dtrace_helpers_create(to);
16609 ASSERT(to->p_dtrace_helpers != NULL);
16610
16611 newhelp->dthps_generation = help->dthps_generation;
16612 vstate = &newhelp->dthps_vstate;
16613
16614 /*
16615 * Duplicate the helper actions.
16616 */
16617 for (i = 0; i < DTRACE_NHELPER_ACTIONS; i++) {
16618 if ((helper = help->dthps_actions[i]) == NULL)
16619 continue;
16620
16621 for (last = NULL; helper != NULL; helper = helper->dtha_next) {
16622 new = kmem_zalloc(sizeof (dtrace_helper_action_t),
16623 KM_SLEEP);
16624 new->dtha_generation = helper->dtha_generation;
16625
16626 if ((dp = helper->dtha_predicate) != NULL) {
16627 dp = dtrace_difo_duplicate(dp, vstate);
16628 new->dtha_predicate = dp;
16629 }
16630
16631 new->dtha_nactions = helper->dtha_nactions;
16632 sz = sizeof (dtrace_difo_t *) * new->dtha_nactions;
16633 new->dtha_actions = kmem_alloc(sz, KM_SLEEP);
16634
16635 for (j = 0; j < new->dtha_nactions; j++) {
16636 dtrace_difo_t *dp = helper->dtha_actions[j];
16637
16638 ASSERT(dp != NULL);
16639 dp = dtrace_difo_duplicate(dp, vstate);
16640 new->dtha_actions[j] = dp;
16641 }
16642
16643 if (last != NULL) {
16644 last->dtha_next = new;
16645 } else {
16646 newhelp->dthps_actions[i] = new;
16647 }
16648
16649 last = new;
16650 }
16651 }
16652
16653 /*
16654 * Duplicate the helper providers and register them with the
16655 * DTrace framework.
16656 */
16657 if (help->dthps_nprovs > 0) {
16658 newhelp->dthps_nprovs = help->dthps_nprovs;
16659 newhelp->dthps_maxprovs = help->dthps_nprovs;
16660 newhelp->dthps_provs = kmem_alloc(newhelp->dthps_nprovs *
16661 sizeof (dtrace_helper_provider_t *), KM_SLEEP);
16662 for (i = 0; i < newhelp->dthps_nprovs; i++) {
16663 newhelp->dthps_provs[i] = help->dthps_provs[i];
16664 newhelp->dthps_provs[i]->dthp_ref++;
16665 }
16666
16667 hasprovs = 1;
16668 }
16669
16670 mutex_exit(&dtrace_lock);
16671
16672 if (hasprovs)
16673 dtrace_helper_provider_register(to, newhelp, NULL);
16674 }
16675
16676 /*
16677 * DTrace Hook Functions
16678 */
16679 static void
16680 dtrace_module_loaded(modctl_t *ctl)
16681 {
16682 dtrace_provider_t *prv;
16683
16684 mutex_enter(&dtrace_provider_lock);
16685 #ifdef illumos
16686 mutex_enter(&mod_lock);
16687 #endif
16688
16689 #ifdef illumos
16690 ASSERT(ctl->mod_busy);
16691 #endif
16692
16693 /*
16694 * We're going to call each providers per-module provide operation
16695 * specifying only this module.
16696 */
16697 for (prv = dtrace_provider; prv != NULL; prv = prv->dtpv_next)
16698 prv->dtpv_pops.dtps_provide_module(prv->dtpv_arg, ctl);
16699
16700 #ifdef illumos
16701 mutex_exit(&mod_lock);
16702 #endif
16703 mutex_exit(&dtrace_provider_lock);
16704
16705 /*
16706 * If we have any retained enablings, we need to match against them.
16707 * Enabling probes requires that cpu_lock be held, and we cannot hold
16708 * cpu_lock here -- it is legal for cpu_lock to be held when loading a
16709 * module. (In particular, this happens when loading scheduling
16710 * classes.) So if we have any retained enablings, we need to dispatch
16711 * our task queue to do the match for us.
16712 */
16713 mutex_enter(&dtrace_lock);
16714
16715 if (dtrace_retained == NULL) {
16716 mutex_exit(&dtrace_lock);
16717 return;
16718 }
16719
16720 (void) taskq_dispatch(dtrace_taskq,
16721 (task_func_t *)dtrace_enabling_matchall, NULL, TQ_SLEEP);
16722
16723 mutex_exit(&dtrace_lock);
16724
16725 /*
16726 * And now, for a little heuristic sleaze: in general, we want to
16727 * match modules as soon as they load. However, we cannot guarantee
16728 * this, because it would lead us to the lock ordering violation
16729 * outlined above. The common case, of course, is that cpu_lock is
16730 * _not_ held -- so we delay here for a clock tick, hoping that that's
16731 * long enough for the task queue to do its work. If it's not, it's
16732 * not a serious problem -- it just means that the module that we
16733 * just loaded may not be immediately instrumentable.
16734 */
16735 delay(1);
16736 }
16737
16738 static void
16739 #ifdef illumos
16740 dtrace_module_unloaded(modctl_t *ctl)
16741 #else
16742 dtrace_module_unloaded(modctl_t *ctl, int *error)
16743 #endif
16744 {
16745 dtrace_probe_t template, *probe, *first, *next;
16746 dtrace_provider_t *prov;
16747 #ifndef illumos
16748 char modname[DTRACE_MODNAMELEN];
16749 size_t len;
16750 #endif
16751
16752 #ifdef illumos
16753 template.dtpr_mod = ctl->mod_modname;
16754 #else
16755 /* Handle the fact that ctl->filename may end in ".ko". */
16756 strlcpy(modname, ctl->filename, sizeof(modname));
16757 len = strlen(ctl->filename);
16758 if (len > 3 && strcmp(modname + len - 3, ".ko") == 0)
16759 modname[len - 3] = '\0';
16760 template.dtpr_mod = modname;
16761 #endif
16762
16763 mutex_enter(&dtrace_provider_lock);
16764 #ifdef illumos
16765 mutex_enter(&mod_lock);
16766 #endif
16767 mutex_enter(&dtrace_lock);
16768
16769 #ifndef illumos
16770 if (ctl->nenabled > 0) {
16771 /* Don't allow unloads if a probe is enabled. */
16772 mutex_exit(&dtrace_provider_lock);
16773 mutex_exit(&dtrace_lock);
16774 *error = -1;
16775 printf(
16776 "kldunload: attempt to unload module that has DTrace probes enabled\n");
16777 return;
16778 }
16779 #endif
16780
16781 if (dtrace_bymod == NULL) {
16782 /*
16783 * The DTrace module is loaded (obviously) but not attached;
16784 * we don't have any work to do.
16785 */
16786 mutex_exit(&dtrace_provider_lock);
16787 #ifdef illumos
16788 mutex_exit(&mod_lock);
16789 #endif
16790 mutex_exit(&dtrace_lock);
16791 return;
16792 }
16793
16794 for (probe = first = dtrace_hash_lookup(dtrace_bymod, &template);
16795 probe != NULL; probe = probe->dtpr_nextmod) {
16796 if (probe->dtpr_ecb != NULL) {
16797 mutex_exit(&dtrace_provider_lock);
16798 #ifdef illumos
16799 mutex_exit(&mod_lock);
16800 #endif
16801 mutex_exit(&dtrace_lock);
16802
16803 /*
16804 * This shouldn't _actually_ be possible -- we're
16805 * unloading a module that has an enabled probe in it.
16806 * (It's normally up to the provider to make sure that
16807 * this can't happen.) However, because dtps_enable()
16808 * doesn't have a failure mode, there can be an
16809 * enable/unload race. Upshot: we don't want to
16810 * assert, but we're not going to disable the
16811 * probe, either.
16812 */
16813 if (dtrace_err_verbose) {
16814 #ifdef illumos
16815 cmn_err(CE_WARN, "unloaded module '%s' had "
16816 "enabled probes", ctl->mod_modname);
16817 #else
16818 cmn_err(CE_WARN, "unloaded module '%s' had "
16819 "enabled probes", modname);
16820 #endif
16821 }
16822
16823 return;
16824 }
16825 }
16826
16827 probe = first;
16828
16829 for (first = NULL; probe != NULL; probe = next) {
16830 ASSERT(dtrace_probes[probe->dtpr_id - 1] == probe);
16831
16832 dtrace_probes[probe->dtpr_id - 1] = NULL;
16833
16834 next = probe->dtpr_nextmod;
16835 dtrace_hash_remove(dtrace_bymod, probe);
16836 dtrace_hash_remove(dtrace_byfunc, probe);
16837 dtrace_hash_remove(dtrace_byname, probe);
16838
16839 if (first == NULL) {
16840 first = probe;
16841 probe->dtpr_nextmod = NULL;
16842 } else {
16843 probe->dtpr_nextmod = first;
16844 first = probe;
16845 }
16846 }
16847
16848 /*
16849 * We've removed all of the module's probes from the hash chains and
16850 * from the probe array. Now issue a dtrace_sync() to be sure that
16851 * everyone has cleared out from any probe array processing.
16852 */
16853 dtrace_sync();
16854
16855 for (probe = first; probe != NULL; probe = first) {
16856 first = probe->dtpr_nextmod;
16857 prov = probe->dtpr_provider;
16858 prov->dtpv_pops.dtps_destroy(prov->dtpv_arg, probe->dtpr_id,
16859 probe->dtpr_arg);
16860 kmem_free(probe->dtpr_mod, strlen(probe->dtpr_mod) + 1);
16861 kmem_free(probe->dtpr_func, strlen(probe->dtpr_func) + 1);
16862 kmem_free(probe->dtpr_name, strlen(probe->dtpr_name) + 1);
16863 #ifdef illumos
16864 vmem_free(dtrace_arena, (void *)(uintptr_t)probe->dtpr_id, 1);
16865 #else
16866 free_unr(dtrace_arena, probe->dtpr_id);
16867 #endif
16868 kmem_free(probe, sizeof (dtrace_probe_t));
16869 }
16870
16871 mutex_exit(&dtrace_lock);
16872 #ifdef illumos
16873 mutex_exit(&mod_lock);
16874 #endif
16875 mutex_exit(&dtrace_provider_lock);
16876 }
16877
16878 #ifndef illumos
16879 static void
16880 dtrace_kld_load(void *arg __unused, linker_file_t lf)
16881 {
16882
16883 dtrace_module_loaded(lf);
16884 }
16885
16886 static void
16887 dtrace_kld_unload_try(void *arg __unused, linker_file_t lf, int *error)
16888 {
16889
16890 if (*error != 0)
16891 /* We already have an error, so don't do anything. */
16892 return;
16893 dtrace_module_unloaded(lf, error);
16894 }
16895 #endif
16896
16897 #ifdef illumos
16898 static void
16899 dtrace_suspend(void)
16900 {
16901 dtrace_probe_foreach(offsetof(dtrace_pops_t, dtps_suspend));
16902 }
16903
16904 static void
16905 dtrace_resume(void)
16906 {
16907 dtrace_probe_foreach(offsetof(dtrace_pops_t, dtps_resume));
16908 }
16909 #endif
16910
16911 static int
16912 dtrace_cpu_setup(cpu_setup_t what, processorid_t cpu)
16913 {
16914 ASSERT(MUTEX_HELD(&cpu_lock));
16915 mutex_enter(&dtrace_lock);
16916
16917 switch (what) {
16918 case CPU_CONFIG: {
16919 dtrace_state_t *state;
16920 dtrace_optval_t *opt, rs, c;
16921
16922 /*
16923 * For now, we only allocate a new buffer for anonymous state.
16924 */
16925 if ((state = dtrace_anon.dta_state) == NULL)
16926 break;
16927
16928 if (state->dts_activity != DTRACE_ACTIVITY_ACTIVE)
16929 break;
16930
16931 opt = state->dts_options;
16932 c = opt[DTRACEOPT_CPU];
16933
16934 if (c != DTRACE_CPUALL && c != DTRACEOPT_UNSET && c != cpu)
16935 break;
16936
16937 /*
16938 * Regardless of what the actual policy is, we're going to
16939 * temporarily set our resize policy to be manual. We're
16940 * also going to temporarily set our CPU option to denote
16941 * the newly configured CPU.
16942 */
16943 rs = opt[DTRACEOPT_BUFRESIZE];
16944 opt[DTRACEOPT_BUFRESIZE] = DTRACEOPT_BUFRESIZE_MANUAL;
16945 opt[DTRACEOPT_CPU] = (dtrace_optval_t)cpu;
16946
16947 (void) dtrace_state_buffers(state);
16948
16949 opt[DTRACEOPT_BUFRESIZE] = rs;
16950 opt[DTRACEOPT_CPU] = c;
16951
16952 break;
16953 }
16954
16955 case CPU_UNCONFIG:
16956 /*
16957 * We don't free the buffer in the CPU_UNCONFIG case. (The
16958 * buffer will be freed when the consumer exits.)
16959 */
16960 break;
16961
16962 default:
16963 break;
16964 }
16965
16966 mutex_exit(&dtrace_lock);
16967 return (0);
16968 }
16969
16970 #ifdef illumos
16971 static void
16972 dtrace_cpu_setup_initial(processorid_t cpu)
16973 {
16974 (void) dtrace_cpu_setup(CPU_CONFIG, cpu);
16975 }
16976 #endif
16977
16978 static void
16979 dtrace_toxrange_add(uintptr_t base, uintptr_t limit)
16980 {
16981 if (dtrace_toxranges >= dtrace_toxranges_max) {
16982 int osize, nsize;
16983 dtrace_toxrange_t *range;
16984
16985 osize = dtrace_toxranges_max * sizeof (dtrace_toxrange_t);
16986
16987 if (osize == 0) {
16988 ASSERT(dtrace_toxrange == NULL);
16989 ASSERT(dtrace_toxranges_max == 0);
16990 dtrace_toxranges_max = 1;
16991 } else {
16992 dtrace_toxranges_max <<= 1;
16993 }
16994
16995 nsize = dtrace_toxranges_max * sizeof (dtrace_toxrange_t);
16996 range = kmem_zalloc(nsize, KM_SLEEP);
16997
16998 if (dtrace_toxrange != NULL) {
16999 ASSERT(osize != 0);
17000 bcopy(dtrace_toxrange, range, osize);
17001 kmem_free(dtrace_toxrange, osize);
17002 }
17003
17004 dtrace_toxrange = range;
17005 }
17006
17007 ASSERT(dtrace_toxrange[dtrace_toxranges].dtt_base == 0);
17008 ASSERT(dtrace_toxrange[dtrace_toxranges].dtt_limit == 0);
17009
17010 dtrace_toxrange[dtrace_toxranges].dtt_base = base;
17011 dtrace_toxrange[dtrace_toxranges].dtt_limit = limit;
17012 dtrace_toxranges++;
17013 }
17014
17015 static void
17016 dtrace_getf_barrier()
17017 {
17018 #ifdef illumos
17019 /*
17020 * When we have unprivileged (that is, non-DTRACE_CRV_KERNEL) enablings
17021 * that contain calls to getf(), this routine will be called on every
17022 * closef() before either the underlying vnode is released or the
17023 * file_t itself is freed. By the time we are here, it is essential
17024 * that the file_t can no longer be accessed from a call to getf()
17025 * in probe context -- that assures that a dtrace_sync() can be used
17026 * to clear out any enablings referring to the old structures.
17027 */
17028 if (curthread->t_procp->p_zone->zone_dtrace_getf != 0 ||
17029 kcred->cr_zone->zone_dtrace_getf != 0)
17030 dtrace_sync();
17031 #endif
17032 }
17033
17034 /*
17035 * DTrace Driver Cookbook Functions
17036 */
17037 #ifdef illumos
17038 /*ARGSUSED*/
17039 static int
17040 dtrace_attach(dev_info_t *devi, ddi_attach_cmd_t cmd)
17041 {
17042 dtrace_provider_id_t id;
17043 dtrace_state_t *state = NULL;
17044 dtrace_enabling_t *enab;
17045
17046 mutex_enter(&cpu_lock);
17047 mutex_enter(&dtrace_provider_lock);
17048 mutex_enter(&dtrace_lock);
17049
17050 if (ddi_soft_state_init(&dtrace_softstate,
17051 sizeof (dtrace_state_t), 0) != 0) {
17052 cmn_err(CE_NOTE, "/dev/dtrace failed to initialize soft state");
17053 mutex_exit(&cpu_lock);
17054 mutex_exit(&dtrace_provider_lock);
17055 mutex_exit(&dtrace_lock);
17056 return (DDI_FAILURE);
17057 }
17058
17059 if (ddi_create_minor_node(devi, DTRACEMNR_DTRACE, S_IFCHR,
17060 DTRACEMNRN_DTRACE, DDI_PSEUDO, NULL) == DDI_FAILURE ||
17061 ddi_create_minor_node(devi, DTRACEMNR_HELPER, S_IFCHR,
17062 DTRACEMNRN_HELPER, DDI_PSEUDO, NULL) == DDI_FAILURE) {
17063 cmn_err(CE_NOTE, "/dev/dtrace couldn't create minor nodes");
17064 ddi_remove_minor_node(devi, NULL);
17065 ddi_soft_state_fini(&dtrace_softstate);
17066 mutex_exit(&cpu_lock);
17067 mutex_exit(&dtrace_provider_lock);
17068 mutex_exit(&dtrace_lock);
17069 return (DDI_FAILURE);
17070 }
17071
17072 ddi_report_dev(devi);
17073 dtrace_devi = devi;
17074
17075 dtrace_modload = dtrace_module_loaded;
17076 dtrace_modunload = dtrace_module_unloaded;
17077 dtrace_cpu_init = dtrace_cpu_setup_initial;
17078 dtrace_helpers_cleanup = dtrace_helpers_destroy;
17079 dtrace_helpers_fork = dtrace_helpers_duplicate;
17080 dtrace_cpustart_init = dtrace_suspend;
17081 dtrace_cpustart_fini = dtrace_resume;
17082 dtrace_debugger_init = dtrace_suspend;
17083 dtrace_debugger_fini = dtrace_resume;
17084
17085 register_cpu_setup_func((cpu_setup_func_t *)dtrace_cpu_setup, NULL);
17086
17087 ASSERT(MUTEX_HELD(&cpu_lock));
17088
17089 dtrace_arena = vmem_create("dtrace", (void *)1, UINT32_MAX, 1,
17090 NULL, NULL, NULL, 0, VM_SLEEP | VMC_IDENTIFIER);
17091 dtrace_minor = vmem_create("dtrace_minor", (void *)DTRACEMNRN_CLONE,
17092 UINT32_MAX - DTRACEMNRN_CLONE, 1, NULL, NULL, NULL, 0,
17093 VM_SLEEP | VMC_IDENTIFIER);
17094 dtrace_taskq = taskq_create("dtrace_taskq", 1, maxclsyspri,
17095 1, INT_MAX, 0);
17096
17097 dtrace_state_cache = kmem_cache_create("dtrace_state_cache",
17098 sizeof (dtrace_dstate_percpu_t) * NCPU, DTRACE_STATE_ALIGN,
17099 NULL, NULL, NULL, NULL, NULL, 0);
17100
17101 ASSERT(MUTEX_HELD(&cpu_lock));
17102 dtrace_bymod = dtrace_hash_create(offsetof(dtrace_probe_t, dtpr_mod),
17103 offsetof(dtrace_probe_t, dtpr_nextmod),
17104 offsetof(dtrace_probe_t, dtpr_prevmod));
17105
17106 dtrace_byfunc = dtrace_hash_create(offsetof(dtrace_probe_t, dtpr_func),
17107 offsetof(dtrace_probe_t, dtpr_nextfunc),
17108 offsetof(dtrace_probe_t, dtpr_prevfunc));
17109
17110 dtrace_byname = dtrace_hash_create(offsetof(dtrace_probe_t, dtpr_name),
17111 offsetof(dtrace_probe_t, dtpr_nextname),
17112 offsetof(dtrace_probe_t, dtpr_prevname));
17113
17114 if (dtrace_retain_max < 1) {
17115 cmn_err(CE_WARN, "illegal value (%lu) for dtrace_retain_max; "
17116 "setting to 1", dtrace_retain_max);
17117 dtrace_retain_max = 1;
17118 }
17119
17120 /*
17121 * Now discover our toxic ranges.
17122 */
17123 dtrace_toxic_ranges(dtrace_toxrange_add);
17124
17125 /*
17126 * Before we register ourselves as a provider to our own framework,
17127 * we would like to assert that dtrace_provider is NULL -- but that's
17128 * not true if we were loaded as a dependency of a DTrace provider.
17129 * Once we've registered, we can assert that dtrace_provider is our
17130 * pseudo provider.
17131 */
17132 (void) dtrace_register("dtrace", &dtrace_provider_attr,
17133 DTRACE_PRIV_NONE, 0, &dtrace_provider_ops, NULL, &id);
17134
17135 ASSERT(dtrace_provider != NULL);
17136 ASSERT((dtrace_provider_id_t)dtrace_provider == id);
17137
17138 dtrace_probeid_begin = dtrace_probe_create((dtrace_provider_id_t)
17139 dtrace_provider, NULL, NULL, "BEGIN", 0, NULL);
17140 dtrace_probeid_end = dtrace_probe_create((dtrace_provider_id_t)
17141 dtrace_provider, NULL, NULL, "END", 0, NULL);
17142 dtrace_probeid_error = dtrace_probe_create((dtrace_provider_id_t)
17143 dtrace_provider, NULL, NULL, "ERROR", 1, NULL);
17144
17145 dtrace_anon_property();
17146 mutex_exit(&cpu_lock);
17147
17148 /*
17149 * If there are already providers, we must ask them to provide their
17150 * probes, and then match any anonymous enabling against them. Note
17151 * that there should be no other retained enablings at this time:
17152 * the only retained enablings at this time should be the anonymous
17153 * enabling.
17154 */
17155 if (dtrace_anon.dta_enabling != NULL) {
17156 ASSERT(dtrace_retained == dtrace_anon.dta_enabling);
17157
17158 dtrace_enabling_provide(NULL);
17159 state = dtrace_anon.dta_state;
17160
17161 /*
17162 * We couldn't hold cpu_lock across the above call to
17163 * dtrace_enabling_provide(), but we must hold it to actually
17164 * enable the probes. We have to drop all of our locks, pick
17165 * up cpu_lock, and regain our locks before matching the
17166 * retained anonymous enabling.
17167 */
17168 mutex_exit(&dtrace_lock);
17169 mutex_exit(&dtrace_provider_lock);
17170
17171 mutex_enter(&cpu_lock);
17172 mutex_enter(&dtrace_provider_lock);
17173 mutex_enter(&dtrace_lock);
17174
17175 if ((enab = dtrace_anon.dta_enabling) != NULL)
17176 (void) dtrace_enabling_match(enab, NULL);
17177
17178 mutex_exit(&cpu_lock);
17179 }
17180
17181 mutex_exit(&dtrace_lock);
17182 mutex_exit(&dtrace_provider_lock);
17183
17184 if (state != NULL) {
17185 /*
17186 * If we created any anonymous state, set it going now.
17187 */
17188 (void) dtrace_state_go(state, &dtrace_anon.dta_beganon);
17189 }
17190
17191 return (DDI_SUCCESS);
17192 }
17193 #endif /* illumos */
17194
17195 #ifndef illumos
17196 static void dtrace_dtr(void *);
17197 #endif
17198
17199 /*ARGSUSED*/
17200 static int
17201 #ifdef illumos
17202 dtrace_open(dev_t *devp, int flag, int otyp, cred_t *cred_p)
17203 #else
17204 dtrace_open(struct cdev *dev, int oflags, int devtype, struct thread *td)
17205 #endif
17206 {
17207 dtrace_state_t *state;
17208 uint32_t priv;
17209 uid_t uid;
17210 zoneid_t zoneid;
17211
17212 #ifdef illumos
17213 if (getminor(*devp) == DTRACEMNRN_HELPER)
17214 return (0);
17215
17216 /*
17217 * If this wasn't an open with the "helper" minor, then it must be
17218 * the "dtrace" minor.
17219 */
17220 if (getminor(*devp) == DTRACEMNRN_DTRACE)
17221 return (ENXIO);
17222 #else
17223 cred_t *cred_p = NULL;
17224 cred_p = dev->si_cred;
17225
17226 /*
17227 * If no DTRACE_PRIV_* bits are set in the credential, then the
17228 * caller lacks sufficient permission to do anything with DTrace.
17229 */
17230 dtrace_cred2priv(cred_p, &priv, &uid, &zoneid);
17231 if (priv == DTRACE_PRIV_NONE) {
17232 #endif
17233
17234 return (EACCES);
17235 }
17236
17237 /*
17238 * Ask all providers to provide all their probes.
17239 */
17240 mutex_enter(&dtrace_provider_lock);
17241 dtrace_probe_provide(NULL, NULL);
17242 mutex_exit(&dtrace_provider_lock);
17243
17244 mutex_enter(&cpu_lock);
17245 mutex_enter(&dtrace_lock);
17246 dtrace_opens++;
17247 dtrace_membar_producer();
17248
17249 #ifdef illumos
17250 /*
17251 * If the kernel debugger is active (that is, if the kernel debugger
17252 * modified text in some way), we won't allow the open.
17253 */
17254 if (kdi_dtrace_set(KDI_DTSET_DTRACE_ACTIVATE) != 0) {
17255 dtrace_opens--;
17256 mutex_exit(&cpu_lock);
17257 mutex_exit(&dtrace_lock);
17258 return (EBUSY);
17259 }
17260
17261 if (dtrace_helptrace_enable && dtrace_helptrace_buffer == NULL) {
17262 /*
17263 * If DTrace helper tracing is enabled, we need to allocate the
17264 * trace buffer and initialize the values.
17265 */
17266 dtrace_helptrace_buffer =
17267 kmem_zalloc(dtrace_helptrace_bufsize, KM_SLEEP);
17268 dtrace_helptrace_next = 0;
17269 dtrace_helptrace_wrapped = 0;
17270 dtrace_helptrace_enable = 0;
17271 }
17272
17273 state = dtrace_state_create(devp, cred_p);
17274 #else
17275 state = dtrace_state_create(dev, NULL);
17276 devfs_set_cdevpriv(state, dtrace_dtr);
17277 #endif
17278
17279 mutex_exit(&cpu_lock);
17280
17281 if (state == NULL) {
17282 #ifdef illumos
17283 if (--dtrace_opens == 0 && dtrace_anon.dta_enabling == NULL)
17284 (void) kdi_dtrace_set(KDI_DTSET_DTRACE_DEACTIVATE);
17285 #else
17286 --dtrace_opens;
17287 #endif
17288 mutex_exit(&dtrace_lock);
17289 return (EAGAIN);
17290 }
17291
17292 mutex_exit(&dtrace_lock);
17293
17294 return (0);
17295 }
17296
17297 /*ARGSUSED*/
17298 #ifdef illumos
17299 static int
17300 dtrace_close(dev_t dev, int flag, int otyp, cred_t *cred_p)
17301 #else
17302 static void
17303 dtrace_dtr(void *data)
17304 #endif
17305 {
17306 #ifdef illumos
17307 minor_t minor = getminor(dev);
17308 dtrace_state_t *state;
17309 #endif
17310 dtrace_helptrace_t *buf = NULL;
17311
17312 #ifdef illumos
17313 if (minor == DTRACEMNRN_HELPER)
17314 return (0);
17315
17316 state = ddi_get_soft_state(dtrace_softstate, minor);
17317 #else
17318 dtrace_state_t *state = data;
17319 #endif
17320
17321 mutex_enter(&cpu_lock);
17322 mutex_enter(&dtrace_lock);
17323
17324 #ifdef illumos
17325 if (state->dts_anon)
17326 #else
17327 if (state != NULL && state->dts_anon)
17328 #endif
17329 {
17330 /*
17331 * There is anonymous state. Destroy that first.
17332 */
17333 ASSERT(dtrace_anon.dta_state == NULL);
17334 dtrace_state_destroy(state->dts_anon);
17335 }
17336
17337 if (dtrace_helptrace_disable) {
17338 /*
17339 * If we have been told to disable helper tracing, set the
17340 * buffer to NULL before calling into dtrace_state_destroy();
17341 * we take advantage of its dtrace_sync() to know that no
17342 * CPU is in probe context with enabled helper tracing
17343 * after it returns.
17344 */
17345 buf = dtrace_helptrace_buffer;
17346 dtrace_helptrace_buffer = NULL;
17347 }
17348
17349 #ifdef illumos
17350 dtrace_state_destroy(state);
17351 #else
17352 if (state != NULL) {
17353 dtrace_state_destroy(state);
17354 kmem_free(state, 0);
17355 }
17356 #endif
17357 ASSERT(dtrace_opens > 0);
17358
17359 #ifdef illumos
17360 /*
17361 * Only relinquish control of the kernel debugger interface when there
17362 * are no consumers and no anonymous enablings.
17363 */
17364 if (--dtrace_opens == 0 && dtrace_anon.dta_enabling == NULL)
17365 (void) kdi_dtrace_set(KDI_DTSET_DTRACE_DEACTIVATE);
17366 #else
17367 --dtrace_opens;
17368 #endif
17369
17370 if (buf != NULL) {
17371 kmem_free(buf, dtrace_helptrace_bufsize);
17372 dtrace_helptrace_disable = 0;
17373 }
17374
17375 mutex_exit(&dtrace_lock);
17376 mutex_exit(&cpu_lock);
17377
17378 #ifdef illumos
17379 return (0);
17380 #endif
17381 }
17382
17383 #ifdef illumos
17384 /*ARGSUSED*/
17385 static int
17386 dtrace_ioctl_helper(int cmd, intptr_t arg, int *rv)
17387 {
17388 int rval;
17389 dof_helper_t help, *dhp = NULL;
17390
17391 switch (cmd) {
17392 case DTRACEHIOC_ADDDOF:
17393 if (copyin((void *)arg, &help, sizeof (help)) != 0) {
17394 dtrace_dof_error(NULL, "failed to copyin DOF helper");
17395 return (EFAULT);
17396 }
17397
17398 dhp = &help;
17399 arg = (intptr_t)help.dofhp_dof;
17400 /*FALLTHROUGH*/
17401
17402 case DTRACEHIOC_ADD: {
17403 dof_hdr_t *dof = dtrace_dof_copyin(arg, &rval);
17404
17405 if (dof == NULL)
17406 return (rval);
17407
17408 mutex_enter(&dtrace_lock);
17409
17410 /*
17411 * dtrace_helper_slurp() takes responsibility for the dof --
17412 * it may free it now or it may save it and free it later.
17413 */
17414 if ((rval = dtrace_helper_slurp(dof, dhp)) != -1) {
17415 *rv = rval;
17416 rval = 0;
17417 } else {
17418 rval = EINVAL;
17419 }
17420
17421 mutex_exit(&dtrace_lock);
17422 return (rval);
17423 }
17424
17425 case DTRACEHIOC_REMOVE: {
17426 mutex_enter(&dtrace_lock);
17427 rval = dtrace_helper_destroygen(NULL, arg);
17428 mutex_exit(&dtrace_lock);
17429
17430 return (rval);
17431 }
17432
17433 default:
17434 break;
17435 }
17436
17437 return (ENOTTY);
17438 }
17439
17440 /*ARGSUSED*/
17441 static int
17442 dtrace_ioctl(dev_t dev, int cmd, intptr_t arg, int md, cred_t *cr, int *rv)
17443 {
17444 minor_t minor = getminor(dev);
17445 dtrace_state_t *state;
17446 int rval;
17447
17448 if (minor == DTRACEMNRN_HELPER)
17449 return (dtrace_ioctl_helper(cmd, arg, rv));
17450
17451 state = ddi_get_soft_state(dtrace_softstate, minor);
17452
17453 if (state->dts_anon) {
17454 ASSERT(dtrace_anon.dta_state == NULL);
17455 state = state->dts_anon;
17456 }
17457
17458 switch (cmd) {
17459 case DTRACEIOC_PROVIDER: {
17460 dtrace_providerdesc_t pvd;
17461 dtrace_provider_t *pvp;
17462
17463 if (copyin((void *)arg, &pvd, sizeof (pvd)) != 0)
17464 return (EFAULT);
17465
17466 pvd.dtvd_name[DTRACE_PROVNAMELEN - 1] = '\0';
17467 mutex_enter(&dtrace_provider_lock);
17468
17469 for (pvp = dtrace_provider; pvp != NULL; pvp = pvp->dtpv_next) {
17470 if (strcmp(pvp->dtpv_name, pvd.dtvd_name) == 0)
17471 break;
17472 }
17473
17474 mutex_exit(&dtrace_provider_lock);
17475
17476 if (pvp == NULL)
17477 return (ESRCH);
17478
17479 bcopy(&pvp->dtpv_priv, &pvd.dtvd_priv, sizeof (dtrace_ppriv_t));
17480 bcopy(&pvp->dtpv_attr, &pvd.dtvd_attr, sizeof (dtrace_pattr_t));
17481
17482 if (copyout(&pvd, (void *)arg, sizeof (pvd)) != 0)
17483 return (EFAULT);
17484
17485 return (0);
17486 }
17487
17488 case DTRACEIOC_EPROBE: {
17489 dtrace_eprobedesc_t epdesc;
17490 dtrace_ecb_t *ecb;
17491 dtrace_action_t *act;
17492 void *buf;
17493 size_t size;
17494 uintptr_t dest;
17495 int nrecs;
17496
17497 if (copyin((void *)arg, &epdesc, sizeof (epdesc)) != 0)
17498 return (EFAULT);
17499
17500 mutex_enter(&dtrace_lock);
17501
17502 if ((ecb = dtrace_epid2ecb(state, epdesc.dtepd_epid)) == NULL) {
17503 mutex_exit(&dtrace_lock);
17504 return (EINVAL);
17505 }
17506
17507 if (ecb->dte_probe == NULL) {
17508 mutex_exit(&dtrace_lock);
17509 return (EINVAL);
17510 }
17511
17512 epdesc.dtepd_probeid = ecb->dte_probe->dtpr_id;
17513 epdesc.dtepd_uarg = ecb->dte_uarg;
17514 epdesc.dtepd_size = ecb->dte_size;
17515
17516 nrecs = epdesc.dtepd_nrecs;
17517 epdesc.dtepd_nrecs = 0;
17518 for (act = ecb->dte_action; act != NULL; act = act->dta_next) {
17519 if (DTRACEACT_ISAGG(act->dta_kind) || act->dta_intuple)
17520 continue;
17521
17522 epdesc.dtepd_nrecs++;
17523 }
17524
17525 /*
17526 * Now that we have the size, we need to allocate a temporary
17527 * buffer in which to store the complete description. We need
17528 * the temporary buffer to be able to drop dtrace_lock()
17529 * across the copyout(), below.
17530 */
17531 size = sizeof (dtrace_eprobedesc_t) +
17532 (epdesc.dtepd_nrecs * sizeof (dtrace_recdesc_t));
17533
17534 buf = kmem_alloc(size, KM_SLEEP);
17535 dest = (uintptr_t)buf;
17536
17537 bcopy(&epdesc, (void *)dest, sizeof (epdesc));
17538 dest += offsetof(dtrace_eprobedesc_t, dtepd_rec[0]);
17539
17540 for (act = ecb->dte_action; act != NULL; act = act->dta_next) {
17541 if (DTRACEACT_ISAGG(act->dta_kind) || act->dta_intuple)
17542 continue;
17543
17544 if (nrecs-- == 0)
17545 break;
17546
17547 bcopy(&act->dta_rec, (void *)dest,
17548 sizeof (dtrace_recdesc_t));
17549 dest += sizeof (dtrace_recdesc_t);
17550 }
17551
17552 mutex_exit(&dtrace_lock);
17553
17554 if (copyout(buf, (void *)arg, dest - (uintptr_t)buf) != 0) {
17555 kmem_free(buf, size);
17556 return (EFAULT);
17557 }
17558
17559 kmem_free(buf, size);
17560 return (0);
17561 }
17562
17563 case DTRACEIOC_AGGDESC: {
17564 dtrace_aggdesc_t aggdesc;
17565 dtrace_action_t *act;
17566 dtrace_aggregation_t *agg;
17567 int nrecs;
17568 uint32_t offs;
17569 dtrace_recdesc_t *lrec;
17570 void *buf;
17571 size_t size;
17572 uintptr_t dest;
17573
17574 if (copyin((void *)arg, &aggdesc, sizeof (aggdesc)) != 0)
17575 return (EFAULT);
17576
17577 mutex_enter(&dtrace_lock);
17578
17579 if ((agg = dtrace_aggid2agg(state, aggdesc.dtagd_id)) == NULL) {
17580 mutex_exit(&dtrace_lock);
17581 return (EINVAL);
17582 }
17583
17584 aggdesc.dtagd_epid = agg->dtag_ecb->dte_epid;
17585
17586 nrecs = aggdesc.dtagd_nrecs;
17587 aggdesc.dtagd_nrecs = 0;
17588
17589 offs = agg->dtag_base;
17590 lrec = &agg->dtag_action.dta_rec;
17591 aggdesc.dtagd_size = lrec->dtrd_offset + lrec->dtrd_size - offs;
17592
17593 for (act = agg->dtag_first; ; act = act->dta_next) {
17594 ASSERT(act->dta_intuple ||
17595 DTRACEACT_ISAGG(act->dta_kind));
17596
17597 /*
17598 * If this action has a record size of zero, it
17599 * denotes an argument to the aggregating action.
17600 * Because the presence of this record doesn't (or
17601 * shouldn't) affect the way the data is interpreted,
17602 * we don't copy it out to save user-level the
17603 * confusion of dealing with a zero-length record.
17604 */
17605 if (act->dta_rec.dtrd_size == 0) {
17606 ASSERT(agg->dtag_hasarg);
17607 continue;
17608 }
17609
17610 aggdesc.dtagd_nrecs++;
17611
17612 if (act == &agg->dtag_action)
17613 break;
17614 }
17615
17616 /*
17617 * Now that we have the size, we need to allocate a temporary
17618 * buffer in which to store the complete description. We need
17619 * the temporary buffer to be able to drop dtrace_lock()
17620 * across the copyout(), below.
17621 */
17622 size = sizeof (dtrace_aggdesc_t) +
17623 (aggdesc.dtagd_nrecs * sizeof (dtrace_recdesc_t));
17624
17625 buf = kmem_alloc(size, KM_SLEEP);
17626 dest = (uintptr_t)buf;
17627
17628 bcopy(&aggdesc, (void *)dest, sizeof (aggdesc));
17629 dest += offsetof(dtrace_aggdesc_t, dtagd_rec[0]);
17630
17631 for (act = agg->dtag_first; ; act = act->dta_next) {
17632 dtrace_recdesc_t rec = act->dta_rec;
17633
17634 /*
17635 * See the comment in the above loop for why we pass
17636 * over zero-length records.
17637 */
17638 if (rec.dtrd_size == 0) {
17639 ASSERT(agg->dtag_hasarg);
17640 continue;
17641 }
17642
17643 if (nrecs-- == 0)
17644 break;
17645
17646 rec.dtrd_offset -= offs;
17647 bcopy(&rec, (void *)dest, sizeof (rec));
17648 dest += sizeof (dtrace_recdesc_t);
17649
17650 if (act == &agg->dtag_action)
17651 break;
17652 }
17653
17654 mutex_exit(&dtrace_lock);
17655
17656 if (copyout(buf, (void *)arg, dest - (uintptr_t)buf) != 0) {
17657 kmem_free(buf, size);
17658 return (EFAULT);
17659 }
17660
17661 kmem_free(buf, size);
17662 return (0);
17663 }
17664
17665 case DTRACEIOC_ENABLE: {
17666 dof_hdr_t *dof;
17667 dtrace_enabling_t *enab = NULL;
17668 dtrace_vstate_t *vstate;
17669 int err = 0;
17670
17671 *rv = 0;
17672
17673 /*
17674 * If a NULL argument has been passed, we take this as our
17675 * cue to reevaluate our enablings.
17676 */
17677 if (arg == NULL) {
17678 dtrace_enabling_matchall();
17679
17680 return (0);
17681 }
17682
17683 if ((dof = dtrace_dof_copyin(arg, &rval)) == NULL)
17684 return (rval);
17685
17686 mutex_enter(&cpu_lock);
17687 mutex_enter(&dtrace_lock);
17688 vstate = &state->dts_vstate;
17689
17690 if (state->dts_activity != DTRACE_ACTIVITY_INACTIVE) {
17691 mutex_exit(&dtrace_lock);
17692 mutex_exit(&cpu_lock);
17693 dtrace_dof_destroy(dof);
17694 return (EBUSY);
17695 }
17696
17697 if (dtrace_dof_slurp(dof, vstate, cr, &enab, 0, B_TRUE) != 0) {
17698 mutex_exit(&dtrace_lock);
17699 mutex_exit(&cpu_lock);
17700 dtrace_dof_destroy(dof);
17701 return (EINVAL);
17702 }
17703
17704 if ((rval = dtrace_dof_options(dof, state)) != 0) {
17705 dtrace_enabling_destroy(enab);
17706 mutex_exit(&dtrace_lock);
17707 mutex_exit(&cpu_lock);
17708 dtrace_dof_destroy(dof);
17709 return (rval);
17710 }
17711
17712 if ((err = dtrace_enabling_match(enab, rv)) == 0) {
17713 err = dtrace_enabling_retain(enab);
17714 } else {
17715 dtrace_enabling_destroy(enab);
17716 }
17717
17718 mutex_exit(&cpu_lock);
17719 mutex_exit(&dtrace_lock);
17720 dtrace_dof_destroy(dof);
17721
17722 return (err);
17723 }
17724
17725 case DTRACEIOC_REPLICATE: {
17726 dtrace_repldesc_t desc;
17727 dtrace_probedesc_t *match = &desc.dtrpd_match;
17728 dtrace_probedesc_t *create = &desc.dtrpd_create;
17729 int err;
17730
17731 if (copyin((void *)arg, &desc, sizeof (desc)) != 0)
17732 return (EFAULT);
17733
17734 match->dtpd_provider[DTRACE_PROVNAMELEN - 1] = '\0';
17735 match->dtpd_mod[DTRACE_MODNAMELEN - 1] = '\0';
17736 match->dtpd_func[DTRACE_FUNCNAMELEN - 1] = '\0';
17737 match->dtpd_name[DTRACE_NAMELEN - 1] = '\0';
17738
17739 create->dtpd_provider[DTRACE_PROVNAMELEN - 1] = '\0';
17740 create->dtpd_mod[DTRACE_MODNAMELEN - 1] = '\0';
17741 create->dtpd_func[DTRACE_FUNCNAMELEN - 1] = '\0';
17742 create->dtpd_name[DTRACE_NAMELEN - 1] = '\0';
17743
17744 mutex_enter(&dtrace_lock);
17745 err = dtrace_enabling_replicate(state, match, create);
17746 mutex_exit(&dtrace_lock);
17747
17748 return (err);
17749 }
17750
17751 case DTRACEIOC_PROBEMATCH:
17752 case DTRACEIOC_PROBES: {
17753 dtrace_probe_t *probe = NULL;
17754 dtrace_probedesc_t desc;
17755 dtrace_probekey_t pkey;
17756 dtrace_id_t i;
17757 int m = 0;
17758 uint32_t priv;
17759 uid_t uid;
17760 zoneid_t zoneid;
17761
17762 if (copyin((void *)arg, &desc, sizeof (desc)) != 0)
17763 return (EFAULT);
17764
17765 desc.dtpd_provider[DTRACE_PROVNAMELEN - 1] = '\0';
17766 desc.dtpd_mod[DTRACE_MODNAMELEN - 1] = '\0';
17767 desc.dtpd_func[DTRACE_FUNCNAMELEN - 1] = '\0';
17768 desc.dtpd_name[DTRACE_NAMELEN - 1] = '\0';
17769
17770 /*
17771 * Before we attempt to match this probe, we want to give
17772 * all providers the opportunity to provide it.
17773 */
17774 if (desc.dtpd_id == DTRACE_IDNONE) {
17775 mutex_enter(&dtrace_provider_lock);
17776 dtrace_probe_provide(&desc, NULL);
17777 mutex_exit(&dtrace_provider_lock);
17778 desc.dtpd_id++;
17779 }
17780
17781 if (cmd == DTRACEIOC_PROBEMATCH) {
17782 dtrace_probekey(&desc, &pkey);
17783 pkey.dtpk_id = DTRACE_IDNONE;
17784 }
17785
17786 dtrace_cred2priv(cr, &priv, &uid, &zoneid);
17787
17788 mutex_enter(&dtrace_lock);
17789
17790 if (cmd == DTRACEIOC_PROBEMATCH) {
17791 for (i = desc.dtpd_id; i <= dtrace_nprobes; i++) {
17792 if ((probe = dtrace_probes[i - 1]) != NULL &&
17793 (m = dtrace_match_probe(probe, &pkey,
17794 priv, uid, zoneid)) != 0)
17795 break;
17796 }
17797
17798 if (m < 0) {
17799 mutex_exit(&dtrace_lock);
17800 return (EINVAL);
17801 }
17802
17803 } else {
17804 for (i = desc.dtpd_id; i <= dtrace_nprobes; i++) {
17805 if ((probe = dtrace_probes[i - 1]) != NULL &&
17806 dtrace_match_priv(probe, priv, uid, zoneid))
17807 break;
17808 }
17809 }
17810
17811 if (probe == NULL) {
17812 mutex_exit(&dtrace_lock);
17813 return (ESRCH);
17814 }
17815
17816 dtrace_probe_description(probe, &desc);
17817 mutex_exit(&dtrace_lock);
17818
17819 if (copyout(&desc, (void *)arg, sizeof (desc)) != 0)
17820 return (EFAULT);
17821
17822 return (0);
17823 }
17824
17825 case DTRACEIOC_PROBEARG: {
17826 dtrace_argdesc_t desc;
17827 dtrace_probe_t *probe;
17828 dtrace_provider_t *prov;
17829
17830 if (copyin((void *)arg, &desc, sizeof (desc)) != 0)
17831 return (EFAULT);
17832
17833 if (desc.dtargd_id == DTRACE_IDNONE)
17834 return (EINVAL);
17835
17836 if (desc.dtargd_ndx == DTRACE_ARGNONE)
17837 return (EINVAL);
17838
17839 mutex_enter(&dtrace_provider_lock);
17840 mutex_enter(&mod_lock);
17841 mutex_enter(&dtrace_lock);
17842
17843 if (desc.dtargd_id > dtrace_nprobes) {
17844 mutex_exit(&dtrace_lock);
17845 mutex_exit(&mod_lock);
17846 mutex_exit(&dtrace_provider_lock);
17847 return (EINVAL);
17848 }
17849
17850 if ((probe = dtrace_probes[desc.dtargd_id - 1]) == NULL) {
17851 mutex_exit(&dtrace_lock);
17852 mutex_exit(&mod_lock);
17853 mutex_exit(&dtrace_provider_lock);
17854 return (EINVAL);
17855 }
17856
17857 mutex_exit(&dtrace_lock);
17858
17859 prov = probe->dtpr_provider;
17860
17861 if (prov->dtpv_pops.dtps_getargdesc == NULL) {
17862 /*
17863 * There isn't any typed information for this probe.
17864 * Set the argument number to DTRACE_ARGNONE.
17865 */
17866 desc.dtargd_ndx = DTRACE_ARGNONE;
17867 } else {
17868 desc.dtargd_native[0] = '\0';
17869 desc.dtargd_xlate[0] = '\0';
17870 desc.dtargd_mapping = desc.dtargd_ndx;
17871
17872 prov->dtpv_pops.dtps_getargdesc(prov->dtpv_arg,
17873 probe->dtpr_id, probe->dtpr_arg, &desc);
17874 }
17875
17876 mutex_exit(&mod_lock);
17877 mutex_exit(&dtrace_provider_lock);
17878
17879 if (copyout(&desc, (void *)arg, sizeof (desc)) != 0)
17880 return (EFAULT);
17881
17882 return (0);
17883 }
17884
17885 case DTRACEIOC_GO: {
17886 processorid_t cpuid;
17887 rval = dtrace_state_go(state, &cpuid);
17888
17889 if (rval != 0)
17890 return (rval);
17891
17892 if (copyout(&cpuid, (void *)arg, sizeof (cpuid)) != 0)
17893 return (EFAULT);
17894
17895 return (0);
17896 }
17897
17898 case DTRACEIOC_STOP: {
17899 processorid_t cpuid;
17900
17901 mutex_enter(&dtrace_lock);
17902 rval = dtrace_state_stop(state, &cpuid);
17903 mutex_exit(&dtrace_lock);
17904
17905 if (rval != 0)
17906 return (rval);
17907
17908 if (copyout(&cpuid, (void *)arg, sizeof (cpuid)) != 0)
17909 return (EFAULT);
17910
17911 return (0);
17912 }
17913
17914 case DTRACEIOC_DOFGET: {
17915 dof_hdr_t hdr, *dof;
17916 uint64_t len;
17917
17918 if (copyin((void *)arg, &hdr, sizeof (hdr)) != 0)
17919 return (EFAULT);
17920
17921 mutex_enter(&dtrace_lock);
17922 dof = dtrace_dof_create(state);
17923 mutex_exit(&dtrace_lock);
17924
17925 len = MIN(hdr.dofh_loadsz, dof->dofh_loadsz);
17926 rval = copyout(dof, (void *)arg, len);
17927 dtrace_dof_destroy(dof);
17928
17929 return (rval == 0 ? 0 : EFAULT);
17930 }
17931
17932 case DTRACEIOC_AGGSNAP:
17933 case DTRACEIOC_BUFSNAP: {
17934 dtrace_bufdesc_t desc;
17935 caddr_t cached;
17936 dtrace_buffer_t *buf;
17937
17938 if (copyin((void *)arg, &desc, sizeof (desc)) != 0)
17939 return (EFAULT);
17940
17941 if (desc.dtbd_cpu < 0 || desc.dtbd_cpu >= NCPU)
17942 return (EINVAL);
17943
17944 mutex_enter(&dtrace_lock);
17945
17946 if (cmd == DTRACEIOC_BUFSNAP) {
17947 buf = &state->dts_buffer[desc.dtbd_cpu];
17948 } else {
17949 buf = &state->dts_aggbuffer[desc.dtbd_cpu];
17950 }
17951
17952 if (buf->dtb_flags & (DTRACEBUF_RING | DTRACEBUF_FILL)) {
17953 size_t sz = buf->dtb_offset;
17954
17955 if (state->dts_activity != DTRACE_ACTIVITY_STOPPED) {
17956 mutex_exit(&dtrace_lock);
17957 return (EBUSY);
17958 }
17959
17960 /*
17961 * If this buffer has already been consumed, we're
17962 * going to indicate that there's nothing left here
17963 * to consume.
17964 */
17965 if (buf->dtb_flags & DTRACEBUF_CONSUMED) {
17966 mutex_exit(&dtrace_lock);
17967
17968 desc.dtbd_size = 0;
17969 desc.dtbd_drops = 0;
17970 desc.dtbd_errors = 0;
17971 desc.dtbd_oldest = 0;
17972 sz = sizeof (desc);
17973
17974 if (copyout(&desc, (void *)arg, sz) != 0)
17975 return (EFAULT);
17976
17977 return (0);
17978 }
17979
17980 /*
17981 * If this is a ring buffer that has wrapped, we want
17982 * to copy the whole thing out.
17983 */
17984 if (buf->dtb_flags & DTRACEBUF_WRAPPED) {
17985 dtrace_buffer_polish(buf);
17986 sz = buf->dtb_size;
17987 }
17988
17989 if (copyout(buf->dtb_tomax, desc.dtbd_data, sz) != 0) {
17990 mutex_exit(&dtrace_lock);
17991 return (EFAULT);
17992 }
17993
17994 desc.dtbd_size = sz;
17995 desc.dtbd_drops = buf->dtb_drops;
17996 desc.dtbd_errors = buf->dtb_errors;
17997 desc.dtbd_oldest = buf->dtb_xamot_offset;
17998 desc.dtbd_timestamp = dtrace_gethrtime();
17999
18000 mutex_exit(&dtrace_lock);
18001
18002 if (copyout(&desc, (void *)arg, sizeof (desc)) != 0)
18003 return (EFAULT);
18004
18005 buf->dtb_flags |= DTRACEBUF_CONSUMED;
18006
18007 return (0);
18008 }
18009
18010 if (buf->dtb_tomax == NULL) {
18011 ASSERT(buf->dtb_xamot == NULL);
18012 mutex_exit(&dtrace_lock);
18013 return (ENOENT);
18014 }
18015
18016 cached = buf->dtb_tomax;
18017 ASSERT(!(buf->dtb_flags & DTRACEBUF_NOSWITCH));
18018
18019 dtrace_xcall(desc.dtbd_cpu,
18020 (dtrace_xcall_t)dtrace_buffer_switch, buf);
18021
18022 state->dts_errors += buf->dtb_xamot_errors;
18023
18024 /*
18025 * If the buffers did not actually switch, then the cross call
18026 * did not take place -- presumably because the given CPU is
18027 * not in the ready set. If this is the case, we'll return
18028 * ENOENT.
18029 */
18030 if (buf->dtb_tomax == cached) {
18031 ASSERT(buf->dtb_xamot != cached);
18032 mutex_exit(&dtrace_lock);
18033 return (ENOENT);
18034 }
18035
18036 ASSERT(cached == buf->dtb_xamot);
18037
18038 /*
18039 * We have our snapshot; now copy it out.
18040 */
18041 if (copyout(buf->dtb_xamot, desc.dtbd_data,
18042 buf->dtb_xamot_offset) != 0) {
18043 mutex_exit(&dtrace_lock);
18044 return (EFAULT);
18045 }
18046
18047 desc.dtbd_size = buf->dtb_xamot_offset;
18048 desc.dtbd_drops = buf->dtb_xamot_drops;
18049 desc.dtbd_errors = buf->dtb_xamot_errors;
18050 desc.dtbd_oldest = 0;
18051 desc.dtbd_timestamp = buf->dtb_switched;
18052
18053 mutex_exit(&dtrace_lock);
18054
18055 /*
18056 * Finally, copy out the buffer description.
18057 */
18058 if (copyout(&desc, (void *)arg, sizeof (desc)) != 0)
18059 return (EFAULT);
18060
18061 return (0);
18062 }
18063
18064 case DTRACEIOC_CONF: {
18065 dtrace_conf_t conf;
18066
18067 bzero(&conf, sizeof (conf));
18068 conf.dtc_difversion = DIF_VERSION;
18069 conf.dtc_difintregs = DIF_DIR_NREGS;
18070 conf.dtc_diftupregs = DIF_DTR_NREGS;
18071 conf.dtc_ctfmodel = CTF_MODEL_NATIVE;
18072
18073 if (copyout(&conf, (void *)arg, sizeof (conf)) != 0)
18074 return (EFAULT);
18075
18076 return (0);
18077 }
18078
18079 case DTRACEIOC_STATUS: {
18080 dtrace_status_t stat;
18081 dtrace_dstate_t *dstate;
18082 int i, j;
18083 uint64_t nerrs;
18084
18085 /*
18086 * See the comment in dtrace_state_deadman() for the reason
18087 * for setting dts_laststatus to INT64_MAX before setting
18088 * it to the correct value.
18089 */
18090 state->dts_laststatus = INT64_MAX;
18091 dtrace_membar_producer();
18092 state->dts_laststatus = dtrace_gethrtime();
18093
18094 bzero(&stat, sizeof (stat));
18095
18096 mutex_enter(&dtrace_lock);
18097
18098 if (state->dts_activity == DTRACE_ACTIVITY_INACTIVE) {
18099 mutex_exit(&dtrace_lock);
18100 return (ENOENT);
18101 }
18102
18103 if (state->dts_activity == DTRACE_ACTIVITY_DRAINING)
18104 stat.dtst_exiting = 1;
18105
18106 nerrs = state->dts_errors;
18107 dstate = &state->dts_vstate.dtvs_dynvars;
18108
18109 for (i = 0; i < NCPU; i++) {
18110 dtrace_dstate_percpu_t *dcpu = &dstate->dtds_percpu[i];
18111
18112 stat.dtst_dyndrops += dcpu->dtdsc_drops;
18113 stat.dtst_dyndrops_dirty += dcpu->dtdsc_dirty_drops;
18114 stat.dtst_dyndrops_rinsing += dcpu->dtdsc_rinsing_drops;
18115
18116 if (state->dts_buffer[i].dtb_flags & DTRACEBUF_FULL)
18117 stat.dtst_filled++;
18118
18119 nerrs += state->dts_buffer[i].dtb_errors;
18120
18121 for (j = 0; j < state->dts_nspeculations; j++) {
18122 dtrace_speculation_t *spec;
18123 dtrace_buffer_t *buf;
18124
18125 spec = &state->dts_speculations[j];
18126 buf = &spec->dtsp_buffer[i];
18127 stat.dtst_specdrops += buf->dtb_xamot_drops;
18128 }
18129 }
18130
18131 stat.dtst_specdrops_busy = state->dts_speculations_busy;
18132 stat.dtst_specdrops_unavail = state->dts_speculations_unavail;
18133 stat.dtst_stkstroverflows = state->dts_stkstroverflows;
18134 stat.dtst_dblerrors = state->dts_dblerrors;
18135 stat.dtst_killed =
18136 (state->dts_activity == DTRACE_ACTIVITY_KILLED);
18137 stat.dtst_errors = nerrs;
18138
18139 mutex_exit(&dtrace_lock);
18140
18141 if (copyout(&stat, (void *)arg, sizeof (stat)) != 0)
18142 return (EFAULT);
18143
18144 return (0);
18145 }
18146
18147 case DTRACEIOC_FORMAT: {
18148 dtrace_fmtdesc_t fmt;
18149 char *str;
18150 int len;
18151
18152 if (copyin((void *)arg, &fmt, sizeof (fmt)) != 0)
18153 return (EFAULT);
18154
18155 mutex_enter(&dtrace_lock);
18156
18157 if (fmt.dtfd_format == 0 ||
18158 fmt.dtfd_format > state->dts_nformats) {
18159 mutex_exit(&dtrace_lock);
18160 return (EINVAL);
18161 }
18162
18163 /*
18164 * Format strings are allocated contiguously and they are
18165 * never freed; if a format index is less than the number
18166 * of formats, we can assert that the format map is non-NULL
18167 * and that the format for the specified index is non-NULL.
18168 */
18169 ASSERT(state->dts_formats != NULL);
18170 str = state->dts_formats[fmt.dtfd_format - 1];
18171 ASSERT(str != NULL);
18172
18173 len = strlen(str) + 1;
18174
18175 if (len > fmt.dtfd_length) {
18176 fmt.dtfd_length = len;
18177
18178 if (copyout(&fmt, (void *)arg, sizeof (fmt)) != 0) {
18179 mutex_exit(&dtrace_lock);
18180 return (EINVAL);
18181 }
18182 } else {
18183 if (copyout(str, fmt.dtfd_string, len) != 0) {
18184 mutex_exit(&dtrace_lock);
18185 return (EINVAL);
18186 }
18187 }
18188
18189 mutex_exit(&dtrace_lock);
18190 return (0);
18191 }
18192
18193 default:
18194 break;
18195 }
18196
18197 return (ENOTTY);
18198 }
18199
18200 /*ARGSUSED*/
18201 static int
18202 dtrace_detach(dev_info_t *dip, ddi_detach_cmd_t cmd)
18203 {
18204 dtrace_state_t *state;
18205
18206 switch (cmd) {
18207 case DDI_DETACH:
18208 break;
18209
18210 case DDI_SUSPEND:
18211 return (DDI_SUCCESS);
18212
18213 default:
18214 return (DDI_FAILURE);
18215 }
18216
18217 mutex_enter(&cpu_lock);
18218 mutex_enter(&dtrace_provider_lock);
18219 mutex_enter(&dtrace_lock);
18220
18221 ASSERT(dtrace_opens == 0);
18222
18223 if (dtrace_helpers > 0) {
18224 mutex_exit(&dtrace_provider_lock);
18225 mutex_exit(&dtrace_lock);
18226 mutex_exit(&cpu_lock);
18227 return (DDI_FAILURE);
18228 }
18229
18230 if (dtrace_unregister((dtrace_provider_id_t)dtrace_provider) != 0) {
18231 mutex_exit(&dtrace_provider_lock);
18232 mutex_exit(&dtrace_lock);
18233 mutex_exit(&cpu_lock);
18234 return (DDI_FAILURE);
18235 }
18236
18237 dtrace_provider = NULL;
18238
18239 if ((state = dtrace_anon_grab()) != NULL) {
18240 /*
18241 * If there were ECBs on this state, the provider should
18242 * have not been allowed to detach; assert that there is
18243 * none.
18244 */
18245 ASSERT(state->dts_necbs == 0);
18246 dtrace_state_destroy(state);
18247
18248 /*
18249 * If we're being detached with anonymous state, we need to
18250 * indicate to the kernel debugger that DTrace is now inactive.
18251 */
18252 (void) kdi_dtrace_set(KDI_DTSET_DTRACE_DEACTIVATE);
18253 }
18254
18255 bzero(&dtrace_anon, sizeof (dtrace_anon_t));
18256 unregister_cpu_setup_func((cpu_setup_func_t *)dtrace_cpu_setup, NULL);
18257 dtrace_cpu_init = NULL;
18258 dtrace_helpers_cleanup = NULL;
18259 dtrace_helpers_fork = NULL;
18260 dtrace_cpustart_init = NULL;
18261 dtrace_cpustart_fini = NULL;
18262 dtrace_debugger_init = NULL;
18263 dtrace_debugger_fini = NULL;
18264 dtrace_modload = NULL;
18265 dtrace_modunload = NULL;
18266
18267 ASSERT(dtrace_getf == 0);
18268 ASSERT(dtrace_closef == NULL);
18269
18270 mutex_exit(&cpu_lock);
18271
18272 kmem_free(dtrace_probes, dtrace_nprobes * sizeof (dtrace_probe_t *));
18273 dtrace_probes = NULL;
18274 dtrace_nprobes = 0;
18275
18276 dtrace_hash_destroy(dtrace_bymod);
18277 dtrace_hash_destroy(dtrace_byfunc);
18278 dtrace_hash_destroy(dtrace_byname);
18279 dtrace_bymod = NULL;
18280 dtrace_byfunc = NULL;
18281 dtrace_byname = NULL;
18282
18283 kmem_cache_destroy(dtrace_state_cache);
18284 vmem_destroy(dtrace_minor);
18285 vmem_destroy(dtrace_arena);
18286
18287 if (dtrace_toxrange != NULL) {
18288 kmem_free(dtrace_toxrange,
18289 dtrace_toxranges_max * sizeof (dtrace_toxrange_t));
18290 dtrace_toxrange = NULL;
18291 dtrace_toxranges = 0;
18292 dtrace_toxranges_max = 0;
18293 }
18294
18295 ddi_remove_minor_node(dtrace_devi, NULL);
18296 dtrace_devi = NULL;
18297
18298 ddi_soft_state_fini(&dtrace_softstate);
18299
18300 ASSERT(dtrace_vtime_references == 0);
18301 ASSERT(dtrace_opens == 0);
18302 ASSERT(dtrace_retained == NULL);
18303
18304 mutex_exit(&dtrace_lock);
18305 mutex_exit(&dtrace_provider_lock);
18306
18307 /*
18308 * We don't destroy the task queue until after we have dropped our
18309 * locks (taskq_destroy() may block on running tasks). To prevent
18310 * attempting to do work after we have effectively detached but before
18311 * the task queue has been destroyed, all tasks dispatched via the
18312 * task queue must check that DTrace is still attached before
18313 * performing any operation.
18314 */
18315 taskq_destroy(dtrace_taskq);
18316 dtrace_taskq = NULL;
18317
18318 return (DDI_SUCCESS);
18319 }
18320 #endif
18321
18322 #ifdef illumos
18323 /*ARGSUSED*/
18324 static int
18325 dtrace_info(dev_info_t *dip, ddi_info_cmd_t infocmd, void *arg, void **result)
18326 {
18327 int error;
18328
18329 switch (infocmd) {
18330 case DDI_INFO_DEVT2DEVINFO:
18331 *result = (void *)dtrace_devi;
18332 error = DDI_SUCCESS;
18333 break;
18334 case DDI_INFO_DEVT2INSTANCE:
18335 *result = (void *)0;
18336 error = DDI_SUCCESS;
18337 break;
18338 default:
18339 error = DDI_FAILURE;
18340 }
18341 return (error);
18342 }
18343 #endif
18344
18345 #ifdef illumos
18346 static struct cb_ops dtrace_cb_ops = {
18347 dtrace_open, /* open */
18348 dtrace_close, /* close */
18349 nulldev, /* strategy */
18350 nulldev, /* print */
18351 nodev, /* dump */
18352 nodev, /* read */
18353 nodev, /* write */
18354 dtrace_ioctl, /* ioctl */
18355 nodev, /* devmap */
18356 nodev, /* mmap */
18357 nodev, /* segmap */
18358 nochpoll, /* poll */
18359 ddi_prop_op, /* cb_prop_op */
18360 0, /* streamtab */
18361 D_NEW | D_MP /* Driver compatibility flag */
18362 };
18363
18364 static struct dev_ops dtrace_ops = {
18365 DEVO_REV, /* devo_rev */
18366 0, /* refcnt */
18367 dtrace_info, /* get_dev_info */
18368 nulldev, /* identify */
18369 nulldev, /* probe */
18370 dtrace_attach, /* attach */
18371 dtrace_detach, /* detach */
18372 nodev, /* reset */
18373 &dtrace_cb_ops, /* driver operations */
18374 NULL, /* bus operations */
18375 nodev /* dev power */
18376 };
18377
18378 static struct modldrv modldrv = {
18379 &mod_driverops, /* module type (this is a pseudo driver) */
18380 "Dynamic Tracing", /* name of module */
18381 &dtrace_ops, /* driver ops */
18382 };
18383
18384 static struct modlinkage modlinkage = {
18385 MODREV_1,
18386 (void *)&modldrv,
18387 NULL
18388 };
18389
18390 int
18391 _init(void)
18392 {
18393 return (mod_install(&modlinkage));
18394 }
18395
18396 int
18397 _info(struct modinfo *modinfop)
18398 {
18399 return (mod_info(&modlinkage, modinfop));
18400 }
18401
18402 int
18403 _fini(void)
18404 {
18405 return (mod_remove(&modlinkage));
18406 }
18407 #else
18408
18409 static d_ioctl_t dtrace_ioctl;
18410 static d_ioctl_t dtrace_ioctl_helper;
18411 static void dtrace_load(void *);
18412 static int dtrace_unload(void);
18413 static struct cdev *dtrace_dev;
18414 static struct cdev *helper_dev;
18415
18416 void dtrace_invop_init(void);
18417 void dtrace_invop_uninit(void);
18418
18419 static struct cdevsw dtrace_cdevsw = {
18420 .d_version = D_VERSION,
18421 .d_ioctl = dtrace_ioctl,
18422 .d_open = dtrace_open,
18423 .d_name = "dtrace",
18424 };
18425
18426 static struct cdevsw helper_cdevsw = {
18427 .d_version = D_VERSION,
18428 .d_ioctl = dtrace_ioctl_helper,
18429 .d_name = "helper",
18430 };
18431
18432 #include <dtrace_anon.c>
18433 #include <dtrace_ioctl.c>
18434 #include <dtrace_load.c>
18435 #include <dtrace_modevent.c>
18436 #include <dtrace_sysctl.c>
18437 #include <dtrace_unload.c>
18438 #include <dtrace_vtime.c>
18439 #include <dtrace_hacks.c>
18440 #include <dtrace_isa.c>
18441
18442 SYSINIT(dtrace_load, SI_SUB_DTRACE, SI_ORDER_FIRST, dtrace_load, NULL);
18443 SYSUNINIT(dtrace_unload, SI_SUB_DTRACE, SI_ORDER_FIRST, dtrace_unload, NULL);
18444 SYSINIT(dtrace_anon_init, SI_SUB_DTRACE_ANON, SI_ORDER_FIRST, dtrace_anon_init, NULL);
18445
18446 DEV_MODULE(dtrace, dtrace_modevent, NULL);
18447 MODULE_VERSION(dtrace, 1);
18448 MODULE_DEPEND(dtrace, opensolaris, 1, 1, 1);
18449 #endif
18450