1 /*-
2 * Copyright (c) 1989, 1992, 1993
3 * The Regents of the University of California. All rights reserved.
4 *
5 * This code is derived from software developed by the Computer Systems
6 * Engineering group at Lawrence Berkeley Laboratory under DARPA contract
7 * BG 91-66 and contributed to Berkeley.
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. Neither the name of the University nor the names of its contributors
18 * may be used to endorse or promote products derived from this software
19 * without specific prior written permission.
20 *
21 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
22 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
25 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 * SUCH DAMAGE.
32 */
33
34 #include <sys/cdefs.h>
35 #include <sys/param.h>
36 #include <sys/fnv_hash.h>
37
38 #define _WANT_VNET
39
40 #include <sys/user.h>
41 #include <sys/linker.h>
42 #include <sys/pcpu.h>
43 #include <sys/stat.h>
44 #include <sys/mman.h>
45
46 #include <stdbool.h>
47 #include <net/vnet.h>
48
49 #include <assert.h>
50 #include <fcntl.h>
51 #include <vm/vm.h>
52 #include <kvm.h>
53 #include <limits.h>
54 #include <paths.h>
55 #include <stdint.h>
56 #include <stdio.h>
57 #include <stdlib.h>
58 #include <string.h>
59 #include <unistd.h>
60 #include <stdarg.h>
61 #include <inttypes.h>
62
63 #include "kvm_private.h"
64
65 /*
66 * Routines private to libkvm.
67 */
68
69 /* from src/lib/libc/gen/nlist.c */
70 int __fdnlist(int, struct nlist *);
71
72 /*
73 * Report an error using printf style arguments. "program" is kd->program
74 * on hard errors, and 0 on soft errors, so that under sun error emulation,
75 * only hard errors are printed out (otherwise, programs like gdb will
76 * generate tons of error messages when trying to access bogus pointers).
77 */
78 void
_kvm_err(kvm_t * kd,const char * program,const char * fmt,...)79 _kvm_err(kvm_t *kd, const char *program, const char *fmt, ...)
80 {
81 va_list ap;
82
83 va_start(ap, fmt);
84 if (program != NULL) {
85 (void)fprintf(stderr, "%s: ", program);
86 (void)vfprintf(stderr, fmt, ap);
87 (void)fputc('\n', stderr);
88 } else
89 (void)vsnprintf(kd->errbuf,
90 sizeof(kd->errbuf), fmt, ap);
91
92 va_end(ap);
93 }
94
95 void
_kvm_syserr(kvm_t * kd,const char * program,const char * fmt,...)96 _kvm_syserr(kvm_t *kd, const char *program, const char *fmt, ...)
97 {
98 va_list ap;
99 int n;
100
101 va_start(ap, fmt);
102 if (program != NULL) {
103 (void)fprintf(stderr, "%s: ", program);
104 (void)vfprintf(stderr, fmt, ap);
105 (void)fprintf(stderr, ": %s\n", strerror(errno));
106 } else {
107 char *cp = kd->errbuf;
108
109 (void)vsnprintf(cp, sizeof(kd->errbuf), fmt, ap);
110 n = strlen(cp);
111 (void)snprintf(&cp[n], sizeof(kd->errbuf) - n, ": %s",
112 strerror(errno));
113 }
114 va_end(ap);
115 }
116
117 void *
_kvm_malloc(kvm_t * kd,size_t n)118 _kvm_malloc(kvm_t *kd, size_t n)
119 {
120 void *p;
121
122 if ((p = calloc(n, sizeof(char))) == NULL)
123 _kvm_err(kd, kd->program, "can't allocate %zu bytes: %s",
124 n, strerror(errno));
125 return (p);
126 }
127
128 int
_kvm_probe_elf_kernel(kvm_t * kd,int class,int machine)129 _kvm_probe_elf_kernel(kvm_t *kd, int class, int machine)
130 {
131
132 return (kd->nlehdr.e_ident[EI_CLASS] == class &&
133 ((machine == EM_PPC || machine == EM_PPC64) ?
134 kd->nlehdr.e_type == ET_DYN : kd->nlehdr.e_type == ET_EXEC) &&
135 kd->nlehdr.e_machine == machine);
136 }
137
138 int
_kvm_is_minidump(kvm_t * kd)139 _kvm_is_minidump(kvm_t *kd)
140 {
141 char minihdr[8];
142
143 if (kd->rawdump)
144 return (0);
145 if (pread(kd->pmfd, &minihdr, 8, 0) == 8 &&
146 memcmp(&minihdr, "minidump", 8) == 0)
147 return (1);
148 return (0);
149 }
150
151 /*
152 * The powerpc backend has a hack to strip a leading kerneldump
153 * header from the core before treating it as an ELF header.
154 *
155 * We can add that here if we can get a change to libelf to support
156 * an initial offset into the file. Alternatively we could patch
157 * savecore to extract cores from a regular file instead.
158 */
159 int
_kvm_read_core_phdrs(kvm_t * kd,size_t * phnump,GElf_Phdr ** phdrp)160 _kvm_read_core_phdrs(kvm_t *kd, size_t *phnump, GElf_Phdr **phdrp)
161 {
162 GElf_Ehdr ehdr;
163 GElf_Phdr *phdr;
164 Elf *elf;
165 size_t i, phnum;
166
167 elf = elf_begin(kd->pmfd, ELF_C_READ, NULL);
168 if (elf == NULL) {
169 _kvm_err(kd, kd->program, "%s", elf_errmsg(0));
170 return (-1);
171 }
172 if (elf_kind(elf) != ELF_K_ELF) {
173 _kvm_err(kd, kd->program, "invalid core");
174 goto bad;
175 }
176 if (gelf_getclass(elf) != kd->nlehdr.e_ident[EI_CLASS]) {
177 _kvm_err(kd, kd->program, "invalid core");
178 goto bad;
179 }
180 if (gelf_getehdr(elf, &ehdr) == NULL) {
181 _kvm_err(kd, kd->program, "%s", elf_errmsg(0));
182 goto bad;
183 }
184 if (ehdr.e_type != ET_CORE) {
185 _kvm_err(kd, kd->program, "invalid core");
186 goto bad;
187 }
188 if (ehdr.e_machine != kd->nlehdr.e_machine) {
189 _kvm_err(kd, kd->program, "invalid core");
190 goto bad;
191 }
192
193 if (elf_getphdrnum(elf, &phnum) == -1) {
194 _kvm_err(kd, kd->program, "%s", elf_errmsg(0));
195 goto bad;
196 }
197
198 phdr = calloc(phnum, sizeof(*phdr));
199 if (phdr == NULL) {
200 _kvm_err(kd, kd->program, "failed to allocate phdrs");
201 goto bad;
202 }
203
204 for (i = 0; i < phnum; i++) {
205 if (gelf_getphdr(elf, i, &phdr[i]) == NULL) {
206 free(phdr);
207 _kvm_err(kd, kd->program, "%s", elf_errmsg(0));
208 goto bad;
209 }
210 }
211 elf_end(elf);
212 *phnump = phnum;
213 *phdrp = phdr;
214 return (0);
215
216 bad:
217 elf_end(elf);
218 return (-1);
219 }
220
221 /*
222 * Transform v such that only bits [bit0, bitN) may be set. Generates a
223 * bitmask covering the number of bits, then shifts so +bit0+ is the first.
224 */
225 static uint64_t
bitmask_range(uint64_t v,uint64_t bit0,uint64_t bitN)226 bitmask_range(uint64_t v, uint64_t bit0, uint64_t bitN)
227 {
228 if (bit0 == 0 && bitN == BITS_IN(v))
229 return (v);
230
231 return (v & (((1ULL << (bitN - bit0)) - 1ULL) << bit0));
232 }
233
234 /*
235 * Returns the number of bits in a given byte array range starting at a
236 * given base, from bit0 to bitN. bit0 may be non-zero in the case of
237 * counting backwards from bitN.
238 */
239 static uint64_t
popcount_bytes(uint64_t * addr,uint32_t bit0,uint32_t bitN)240 popcount_bytes(uint64_t *addr, uint32_t bit0, uint32_t bitN)
241 {
242 uint32_t res = bitN - bit0;
243 uint64_t count = 0;
244 uint32_t bound;
245
246 /* Align to 64-bit boundary on the left side if needed. */
247 if ((bit0 % BITS_IN(*addr)) != 0) {
248 bound = MIN(bitN, roundup2(bit0, BITS_IN(*addr)));
249 count += __bitcount64(bitmask_range(*addr, bit0, bound));
250 res -= (bound - bit0);
251 addr++;
252 }
253
254 while (res > 0) {
255 bound = MIN(res, BITS_IN(*addr));
256 count += __bitcount64(bitmask_range(*addr, 0, bound));
257 res -= bound;
258 addr++;
259 }
260
261 return (count);
262 }
263
264 void *
_kvm_pmap_get(kvm_t * kd,u_long idx,size_t len)265 _kvm_pmap_get(kvm_t *kd, u_long idx, size_t len)
266 {
267 uintptr_t off = idx * len;
268
269 if ((off_t)off >= kd->pt_sparse_off)
270 return (NULL);
271 return (void *)((uintptr_t)kd->page_map + off);
272 }
273
274 void *
_kvm_map_get(kvm_t * kd,u_long pa,unsigned int page_size)275 _kvm_map_get(kvm_t *kd, u_long pa, unsigned int page_size)
276 {
277 off_t off;
278 uintptr_t addr;
279
280 off = _kvm_pt_find(kd, pa, page_size);
281 if (off == -1)
282 return NULL;
283
284 addr = (uintptr_t)kd->page_map + off;
285 if (off >= kd->pt_sparse_off)
286 addr = (uintptr_t)kd->sparse_map + (off - kd->pt_sparse_off);
287 return (void *)addr;
288 }
289
290 int
_kvm_pt_init(kvm_t * kd,size_t dump_avail_size,off_t dump_avail_off,size_t map_len,off_t map_off,off_t sparse_off,int page_size)291 _kvm_pt_init(kvm_t *kd, size_t dump_avail_size, off_t dump_avail_off,
292 size_t map_len, off_t map_off, off_t sparse_off, int page_size)
293 {
294 uint64_t *addr;
295 uint32_t *popcount_bin;
296 int bin_popcounts = 0;
297 uint64_t pc_bins, res;
298 ssize_t rd;
299
300 kd->dump_avail_size = dump_avail_size;
301 if (dump_avail_size > 0) {
302 kd->dump_avail = mmap(NULL, kd->dump_avail_size, PROT_READ,
303 MAP_PRIVATE, kd->pmfd, dump_avail_off);
304 } else {
305 /*
306 * Older version minidumps don't provide dump_avail[],
307 * so the bitmap is fully populated from 0 to
308 * last_pa. Create an implied dump_avail that
309 * expresses this.
310 */
311 kd->dump_avail = calloc(4, sizeof(uint64_t));
312 kd->dump_avail[1] = _kvm64toh(kd, map_len * 8 * page_size);
313 }
314
315 /*
316 * Map the bitmap specified by the arguments.
317 */
318 kd->pt_map = _kvm_malloc(kd, map_len);
319 if (kd->pt_map == NULL) {
320 _kvm_err(kd, kd->program, "cannot allocate %zu bytes for bitmap",
321 map_len);
322 return (-1);
323 }
324 rd = pread(kd->pmfd, kd->pt_map, map_len, map_off);
325 if (rd < 0 || rd != (ssize_t)map_len) {
326 _kvm_err(kd, kd->program, "cannot read %zu bytes for bitmap",
327 map_len);
328 return (-1);
329 }
330 kd->pt_map_size = map_len;
331
332 /*
333 * Generate a popcount cache for every POPCOUNT_BITS in the bitmap,
334 * so lookups only have to calculate the number of bits set between
335 * a cache point and their bit. This reduces lookups to O(1),
336 * without significantly increasing memory requirements.
337 *
338 * Round up the number of bins so that 'upper half' lookups work for
339 * the final bin, if needed. The first popcount is 0, since no bits
340 * precede bit 0, so add 1 for that also. Without this, extra work
341 * would be needed to handle the first PTEs in _kvm_pt_find().
342 */
343 addr = kd->pt_map;
344 res = map_len;
345 pc_bins = 1 + (res * NBBY + POPCOUNT_BITS / 2) / POPCOUNT_BITS;
346 kd->pt_popcounts = calloc(pc_bins, sizeof(uint32_t));
347 if (kd->pt_popcounts == NULL) {
348 _kvm_err(kd, kd->program, "cannot allocate popcount bins");
349 return (-1);
350 }
351
352 for (popcount_bin = &kd->pt_popcounts[1]; res > 0;
353 addr++, res -= sizeof(*addr)) {
354 *popcount_bin += popcount_bytes(addr, 0,
355 MIN(res * NBBY, BITS_IN(*addr)));
356 if (++bin_popcounts == POPCOUNTS_IN(*addr)) {
357 popcount_bin++;
358 *popcount_bin = *(popcount_bin - 1);
359 bin_popcounts = 0;
360 }
361 }
362
363 assert(pc_bins * sizeof(*popcount_bin) ==
364 ((uintptr_t)popcount_bin - (uintptr_t)kd->pt_popcounts));
365
366 kd->pt_sparse_off = sparse_off;
367 kd->pt_sparse_size = (uint64_t)*popcount_bin * page_size;
368 kd->pt_page_size = page_size;
369
370 /*
371 * Map the sparse page array. This is useful for performing point
372 * lookups of specific pages, e.g. for kvm_walk_pages. Generally,
373 * this is much larger than is reasonable to read in up front, so
374 * mmap it in instead.
375 */
376 kd->sparse_map = mmap(NULL, kd->pt_sparse_size, PROT_READ,
377 MAP_PRIVATE, kd->pmfd, kd->pt_sparse_off);
378 if (kd->sparse_map == MAP_FAILED) {
379 _kvm_err(kd, kd->program, "cannot map %" PRIu64
380 " bytes from fd %d offset %jd for sparse map: %s",
381 kd->pt_sparse_size, kd->pmfd,
382 (intmax_t)kd->pt_sparse_off, strerror(errno));
383 return (-1);
384 }
385 return (0);
386 }
387
388 int
_kvm_pmap_init(kvm_t * kd,uint32_t pmap_size,off_t pmap_off)389 _kvm_pmap_init(kvm_t *kd, uint32_t pmap_size, off_t pmap_off)
390 {
391 ssize_t exp_len = pmap_size;
392
393 kd->page_map_size = pmap_size;
394 kd->page_map_off = pmap_off;
395 kd->page_map = _kvm_malloc(kd, pmap_size);
396 if (kd->page_map == NULL) {
397 _kvm_err(kd, kd->program, "cannot allocate %u bytes "
398 "for page map", pmap_size);
399 return (-1);
400 }
401 if (pread(kd->pmfd, kd->page_map, pmap_size, pmap_off) != exp_len) {
402 _kvm_err(kd, kd->program, "cannot read %d bytes from "
403 "offset %jd for page map", pmap_size, (intmax_t)pmap_off);
404 return (-1);
405 }
406 return (0);
407 }
408
409 static inline uint64_t
dump_avail_n(kvm_t * kd,long i)410 dump_avail_n(kvm_t *kd, long i)
411 {
412 return (_kvm64toh(kd, kd->dump_avail[i]));
413 }
414
415 uint64_t
_kvm_pa_bit_id(kvm_t * kd,uint64_t pa,unsigned int page_size)416 _kvm_pa_bit_id(kvm_t *kd, uint64_t pa, unsigned int page_size)
417 {
418 uint64_t adj;
419 long i;
420
421 adj = 0;
422 for (i = 0; dump_avail_n(kd, i + 1) != 0; i += 2) {
423 if (pa >= dump_avail_n(kd, i + 1)) {
424 adj += howmany(dump_avail_n(kd, i + 1), page_size) -
425 dump_avail_n(kd, i) / page_size;
426 } else {
427 return (pa / page_size -
428 dump_avail_n(kd, i) / page_size + adj);
429 }
430 }
431 return (_KVM_BIT_ID_INVALID);
432 }
433
434 uint64_t
_kvm_bit_id_pa(kvm_t * kd,uint64_t bit_id,unsigned int page_size)435 _kvm_bit_id_pa(kvm_t *kd, uint64_t bit_id, unsigned int page_size)
436 {
437 uint64_t sz;
438 long i;
439
440 for (i = 0; dump_avail_n(kd, i + 1) != 0; i += 2) {
441 sz = howmany(dump_avail_n(kd, i + 1), page_size) -
442 dump_avail_n(kd, i) / page_size;
443 if (bit_id < sz) {
444 return (rounddown2(dump_avail_n(kd, i), page_size) +
445 bit_id * page_size);
446 }
447 bit_id -= sz;
448 }
449 return (_KVM_PA_INVALID);
450 }
451
452 /*
453 * Find the offset for the given physical page address; returns -1 otherwise.
454 *
455 * A page's offset is represented by the sparse page base offset plus the
456 * number of bits set before its bit multiplied by page size. This means
457 * that if a page exists in the dump, it's necessary to know how many pages
458 * in the dump precede it. Reduce this O(n) counting to O(1) by caching the
459 * number of bits set at POPCOUNT_BITS intervals.
460 *
461 * Then to find the number of pages before the requested address, simply
462 * index into the cache and count the number of bits set between that cache
463 * bin and the page's bit. Halve the number of bytes that have to be
464 * checked by also counting down from the next higher bin if it's closer.
465 */
466 off_t
_kvm_pt_find(kvm_t * kd,uint64_t pa,unsigned int page_size)467 _kvm_pt_find(kvm_t *kd, uint64_t pa, unsigned int page_size)
468 {
469 uint64_t *bitmap = kd->pt_map;
470 uint64_t pte_bit_id = _kvm_pa_bit_id(kd, pa, page_size);
471 uint64_t pte_u64 = pte_bit_id / BITS_IN(*bitmap);
472 uint64_t popcount_id = pte_bit_id / POPCOUNT_BITS;
473 uint64_t pte_mask = 1ULL << (pte_bit_id % BITS_IN(*bitmap));
474 uint64_t bitN;
475 uint32_t count;
476
477 /* Check whether the page address requested is in the dump. */
478 if (pte_bit_id == _KVM_BIT_ID_INVALID ||
479 pte_bit_id >= (kd->pt_map_size * NBBY) ||
480 (bitmap[pte_u64] & pte_mask) == 0)
481 return (-1);
482
483 /*
484 * Add/sub popcounts from the bitmap until the PTE's bit is reached.
485 * For bits that are in the upper half between the calculated
486 * popcount id and the next one, use the next one and subtract to
487 * minimize the number of popcounts required.
488 */
489 if ((pte_bit_id % POPCOUNT_BITS) < (POPCOUNT_BITS / 2)) {
490 count = kd->pt_popcounts[popcount_id] + popcount_bytes(
491 bitmap + popcount_id * POPCOUNTS_IN(*bitmap),
492 0, pte_bit_id - popcount_id * POPCOUNT_BITS);
493 } else {
494 /*
495 * Counting in reverse is trickier, since we must avoid
496 * reading from bytes that are not in range, and invert.
497 */
498 uint64_t pte_u64_bit_off = pte_u64 * BITS_IN(*bitmap);
499
500 popcount_id++;
501 bitN = MIN(popcount_id * POPCOUNT_BITS,
502 kd->pt_map_size * BITS_IN(uint8_t));
503 count = kd->pt_popcounts[popcount_id] - popcount_bytes(
504 bitmap + pte_u64,
505 pte_bit_id - pte_u64_bit_off, bitN - pte_u64_bit_off);
506 }
507
508 /*
509 * This can only happen if the core is truncated. Treat these
510 * entries as if they don't exist, since their backing doesn't.
511 */
512 if (count >= (kd->pt_sparse_size / page_size))
513 return (-1);
514
515 return (kd->pt_sparse_off + (uint64_t)count * page_size);
516 }
517
518 static int
kvm_fdnlist(kvm_t * kd,struct kvm_nlist * list)519 kvm_fdnlist(kvm_t *kd, struct kvm_nlist *list)
520 {
521 kvaddr_t addr;
522 int error, nfail;
523
524 if (kd->resolve_symbol == NULL) {
525 struct nlist *nl;
526 int count, i;
527
528 for (count = 0; list[count].n_name != NULL &&
529 list[count].n_name[0] != '\0'; count++)
530 ;
531 nl = calloc(count + 1, sizeof(*nl));
532 for (i = 0; i < count; i++)
533 nl[i].n_name = list[i].n_name;
534 nfail = __fdnlist(kd->nlfd, nl);
535 for (i = 0; i < count; i++) {
536 list[i].n_type = nl[i].n_type;
537 list[i].n_value = nl[i].n_value;
538 }
539 free(nl);
540 return (nfail);
541 }
542
543 nfail = 0;
544 while (list->n_name != NULL && list->n_name[0] != '\0') {
545 error = kd->resolve_symbol(list->n_name, &addr);
546 if (error != 0) {
547 nfail++;
548 list->n_value = 0;
549 list->n_type = 0;
550 } else {
551 list->n_value = addr;
552 list->n_type = N_DATA | N_EXT;
553 }
554 list++;
555 }
556 return (nfail);
557 }
558
559 /*
560 * Walk the list of unresolved symbols, generate a new list and prefix the
561 * symbol names, try again, and merge back what we could resolve.
562 */
563 static int
kvm_fdnlist_prefix(kvm_t * kd,struct kvm_nlist * nl,int missing,const char * prefix,kvaddr_t (* validate_fn)(kvm_t *,kvaddr_t))564 kvm_fdnlist_prefix(kvm_t *kd, struct kvm_nlist *nl, int missing,
565 const char *prefix, kvaddr_t (*validate_fn)(kvm_t *, kvaddr_t))
566 {
567 struct kvm_nlist *n, *np, *p;
568 char *cp, *ce;
569 const char *ccp;
570 size_t len;
571 int slen, unresolved;
572
573 /*
574 * Calculate the space we need to malloc for nlist and names.
575 * We are going to store the name twice for later lookups: once
576 * with the prefix and once the unmodified name delmited by \0.
577 */
578 len = 0;
579 unresolved = 0;
580 for (p = nl; p->n_name && p->n_name[0]; ++p) {
581 if (p->n_type != N_UNDF)
582 continue;
583 len += sizeof(struct kvm_nlist) + strlen(prefix) +
584 2 * (strlen(p->n_name) + 1);
585 unresolved++;
586 }
587 if (unresolved == 0)
588 return (unresolved);
589 /* Add space for the terminating nlist entry. */
590 len += sizeof(struct kvm_nlist);
591 unresolved++;
592
593 /* Alloc one chunk for (nlist, [names]) and setup pointers. */
594 n = np = malloc(len);
595 bzero(n, len);
596 if (n == NULL)
597 return (missing);
598 cp = ce = (char *)np;
599 cp += unresolved * sizeof(struct kvm_nlist);
600 ce += len;
601
602 /* Generate shortened nlist with special prefix. */
603 unresolved = 0;
604 for (p = nl; p->n_name && p->n_name[0]; ++p) {
605 if (p->n_type != N_UNDF)
606 continue;
607 *np = *p;
608 /* Save the new\0orig. name so we can later match it again. */
609 slen = snprintf(cp, ce - cp, "%s%s%c%s", prefix,
610 (prefix[0] != '\0' && p->n_name[0] == '_') ?
611 (p->n_name + 1) : p->n_name, '\0', p->n_name);
612 if (slen < 0 || slen >= ce - cp)
613 continue;
614 np->n_name = cp;
615 cp += slen + 1;
616 np++;
617 unresolved++;
618 }
619
620 /* Do lookup on the reduced list. */
621 np = n;
622 unresolved = kvm_fdnlist(kd, np);
623
624 /* Check if we could resolve further symbols and update the list. */
625 if (unresolved >= 0 && unresolved < missing) {
626 /* Find the first freshly resolved entry. */
627 for (; np->n_name && np->n_name[0]; np++)
628 if (np->n_type != N_UNDF)
629 break;
630 /*
631 * The lists are both in the same order,
632 * so we can walk them in parallel.
633 */
634 for (p = nl; np->n_name && np->n_name[0] &&
635 p->n_name && p->n_name[0]; ++p) {
636 if (p->n_type != N_UNDF)
637 continue;
638 /* Skip expanded name and compare to orig. one. */
639 ccp = np->n_name + strlen(np->n_name) + 1;
640 if (strcmp(ccp, p->n_name) != 0)
641 continue;
642 /* Update nlist with new, translated results. */
643 p->n_type = np->n_type;
644 if (validate_fn)
645 p->n_value = (*validate_fn)(kd, np->n_value);
646 else
647 p->n_value = np->n_value;
648 missing--;
649 /* Find next freshly resolved entry. */
650 for (np++; np->n_name && np->n_name[0]; np++)
651 if (np->n_type != N_UNDF)
652 break;
653 }
654 }
655 /* We could assert missing = unresolved here. */
656
657 free(n);
658 return (unresolved);
659 }
660
661 int
_kvm_nlist(kvm_t * kd,struct kvm_nlist * nl,int initialize)662 _kvm_nlist(kvm_t *kd, struct kvm_nlist *nl, int initialize)
663 {
664 struct kvm_nlist *p;
665 int nvalid;
666 struct kld_sym_lookup lookup;
667 int error;
668 const char *prefix = "";
669 char symname[1024]; /* XXX-BZ symbol name length limit? */
670 int tried_vnet, tried_dpcpu;
671
672 /*
673 * If we can't use the kld symbol lookup, revert to the
674 * slow library call.
675 */
676 if (!ISALIVE(kd)) {
677 error = kvm_fdnlist(kd, nl);
678 if (error <= 0) /* Hard error or success. */
679 return (error);
680
681 if (_kvm_vnet_initialized(kd, initialize))
682 error = kvm_fdnlist_prefix(kd, nl, error,
683 VNET_SYMPREFIX, _kvm_vnet_validaddr);
684
685 if (error > 0 && _kvm_dpcpu_initialized(kd, initialize))
686 error = kvm_fdnlist_prefix(kd, nl, error,
687 DPCPU_SYMPREFIX, _kvm_dpcpu_validaddr);
688
689 return (error);
690 }
691
692 /*
693 * We can use the kld lookup syscall. Go through each nlist entry
694 * and look it up with a kldsym(2) syscall.
695 */
696 nvalid = 0;
697 tried_vnet = 0;
698 tried_dpcpu = 0;
699 again:
700 for (p = nl; p->n_name && p->n_name[0]; ++p) {
701 if (p->n_type != N_UNDF)
702 continue;
703
704 lookup.version = sizeof(lookup);
705 lookup.symvalue = 0;
706 lookup.symsize = 0;
707
708 error = snprintf(symname, sizeof(symname), "%s%s", prefix,
709 (prefix[0] != '\0' && p->n_name[0] == '_') ?
710 (p->n_name + 1) : p->n_name);
711 if (error < 0 || error >= (int)sizeof(symname))
712 continue;
713 lookup.symname = symname;
714 if (lookup.symname[0] == '_')
715 lookup.symname++;
716
717 if (kldsym(0, KLDSYM_LOOKUP, &lookup) != -1) {
718 p->n_type = N_TEXT;
719 if (_kvm_vnet_initialized(kd, initialize) &&
720 strcmp(prefix, VNET_SYMPREFIX) == 0)
721 p->n_value =
722 _kvm_vnet_validaddr(kd, lookup.symvalue);
723 else if (_kvm_dpcpu_initialized(kd, initialize) &&
724 strcmp(prefix, DPCPU_SYMPREFIX) == 0)
725 p->n_value =
726 _kvm_dpcpu_validaddr(kd, lookup.symvalue);
727 else
728 p->n_value = lookup.symvalue;
729 ++nvalid;
730 /* lookup.symsize */
731 }
732 }
733
734 /*
735 * Check the number of entries that weren't found. If they exist,
736 * try again with a prefix for virtualized or DPCPU symbol names.
737 */
738 error = ((p - nl) - nvalid);
739 if (error && _kvm_vnet_initialized(kd, initialize) && !tried_vnet) {
740 tried_vnet = 1;
741 prefix = VNET_SYMPREFIX;
742 goto again;
743 }
744 if (error && _kvm_dpcpu_initialized(kd, initialize) && !tried_dpcpu) {
745 tried_dpcpu = 1;
746 prefix = DPCPU_SYMPREFIX;
747 goto again;
748 }
749
750 /*
751 * Return the number of entries that weren't found. If they exist,
752 * also fill internal error buffer.
753 */
754 error = ((p - nl) - nvalid);
755 if (error)
756 _kvm_syserr(kd, kd->program, "kvm_nlist");
757 return (error);
758 }
759
760 int
_kvm_bitmap_init(struct kvm_bitmap * bm,u_long bitmapsize,u_long * idx)761 _kvm_bitmap_init(struct kvm_bitmap *bm, u_long bitmapsize, u_long *idx)
762 {
763
764 *idx = ULONG_MAX;
765 bm->map = calloc(bitmapsize, sizeof *bm->map);
766 if (bm->map == NULL)
767 return (0);
768 bm->size = bitmapsize;
769 return (1);
770 }
771
772 void
_kvm_bitmap_set(struct kvm_bitmap * bm,u_long bm_index)773 _kvm_bitmap_set(struct kvm_bitmap *bm, u_long bm_index)
774 {
775 uint8_t *byte = &bm->map[bm_index / 8];
776
777 if (bm_index / 8 < bm->size)
778 *byte |= (1UL << (bm_index % 8));
779 }
780
781 int
_kvm_bitmap_next(struct kvm_bitmap * bm,u_long * idx)782 _kvm_bitmap_next(struct kvm_bitmap *bm, u_long *idx)
783 {
784 u_long first_invalid = bm->size * CHAR_BIT;
785
786 if (*idx == ULONG_MAX)
787 *idx = 0;
788 else
789 (*idx)++;
790
791 /* Find the next valid idx. */
792 for (; *idx < first_invalid; (*idx)++) {
793 unsigned int mask = 1U << (*idx % CHAR_BIT);
794 if ((bm->map[*idx / CHAR_BIT] & mask) != 0)
795 break;
796 }
797
798 return (*idx < first_invalid);
799 }
800
801 void
_kvm_bitmap_deinit(struct kvm_bitmap * bm)802 _kvm_bitmap_deinit(struct kvm_bitmap *bm)
803 {
804
805 free(bm->map);
806 }
807
808 int
_kvm_visit_cb(kvm_t * kd,kvm_walk_pages_cb_t * cb,void * arg,u_long pa,u_long kmap_vaddr,u_long dmap_vaddr,vm_prot_t prot,size_t len,unsigned int page_size)809 _kvm_visit_cb(kvm_t *kd, kvm_walk_pages_cb_t *cb, void *arg, u_long pa,
810 u_long kmap_vaddr, u_long dmap_vaddr, vm_prot_t prot, size_t len,
811 unsigned int page_size)
812 {
813 unsigned int pgsz = page_size ? page_size : len;
814 struct kvm_page p = {
815 .kp_version = LIBKVM_WALK_PAGES_VERSION,
816 .kp_paddr = pa,
817 .kp_kmap_vaddr = kmap_vaddr,
818 .kp_dmap_vaddr = dmap_vaddr,
819 .kp_prot = prot,
820 .kp_offset = _kvm_pt_find(kd, pa, pgsz),
821 .kp_len = len,
822 };
823
824 return cb(&p, arg);
825 }
826