1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 *
4 * Copyright (c) 2018 Matthew Macy
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
9 *
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 */
27
28 #include <sys/cdefs.h>
29 __FBSDID("$FreeBSD$");
30
31 #include <sys/param.h>
32 #include <sys/kernel.h>
33 #include <sys/systm.h>
34 #include <sys/conf.h>
35 #include <sys/bitstring.h>
36 #include <sys/queue.h>
37 #include <sys/cpuset.h>
38 #include <sys/endian.h>
39 #include <sys/kerneldump.h>
40 #include <sys/ktr.h>
41 #include <sys/lock.h>
42 #include <sys/syslog.h>
43 #include <sys/msgbuf.h>
44 #include <sys/malloc.h>
45 #include <sys/mman.h>
46 #include <sys/mutex.h>
47 #include <sys/proc.h>
48 #include <sys/rwlock.h>
49 #include <sys/sched.h>
50 #include <sys/sysctl.h>
51 #include <sys/systm.h>
52 #include <sys/vmem.h>
53 #include <sys/vmmeter.h>
54 #include <sys/smp.h>
55
56 #include <sys/kdb.h>
57
58 #include <dev/ofw/openfirm.h>
59
60 #include <vm/vm.h>
61 #include <vm/pmap.h>
62 #include <vm/vm_param.h>
63 #include <vm/vm_kern.h>
64 #include <vm/vm_page.h>
65 #include <vm/vm_map.h>
66 #include <vm/vm_object.h>
67 #include <vm/vm_extern.h>
68 #include <vm/vm_pageout.h>
69 #include <vm/vm_phys.h>
70 #include <vm/vm_reserv.h>
71 #include <vm/vm_dumpset.h>
72 #include <vm/uma.h>
73
74 #include <machine/_inttypes.h>
75 #include <machine/cpu.h>
76 #include <machine/platform.h>
77 #include <machine/frame.h>
78 #include <machine/md_var.h>
79 #include <machine/psl.h>
80 #include <machine/bat.h>
81 #include <machine/hid.h>
82 #include <machine/pte.h>
83 #include <machine/sr.h>
84 #include <machine/trap.h>
85 #include <machine/mmuvar.h>
86
87 #ifdef INVARIANTS
88 #include <vm/uma_dbg.h>
89 #endif
90
91 #define PPC_BITLSHIFT(bit) (sizeof(long)*NBBY - 1 - (bit))
92 #define PPC_BIT(bit) (1UL << PPC_BITLSHIFT(bit))
93 #define PPC_BITLSHIFT_VAL(val, bit) ((val) << PPC_BITLSHIFT(bit))
94
95 #include "opt_ddb.h"
96 #ifdef DDB
97 static void pmap_pte_walk(pml1_entry_t *l1, vm_offset_t va);
98 #endif
99
100 #define PG_W RPTE_WIRED
101 #define PG_V RPTE_VALID
102 #define PG_MANAGED RPTE_MANAGED
103 #define PG_PROMOTED RPTE_PROMOTED
104 #define PG_M RPTE_C
105 #define PG_A RPTE_R
106 #define PG_X RPTE_EAA_X
107 #define PG_RW RPTE_EAA_W
108 #define PG_PTE_CACHE RPTE_ATTR_MASK
109
110 #define RPTE_SHIFT 9
111 #define NLS_MASK ((1UL<<5)-1)
112 #define RPTE_ENTRIES (1UL<<RPTE_SHIFT)
113 #define RPTE_MASK (RPTE_ENTRIES-1)
114
115 #define NLB_SHIFT 0
116 #define NLB_MASK (((1UL<<52)-1) << 8)
117
118 extern int nkpt;
119 extern caddr_t crashdumpmap;
120
121 #define RIC_FLUSH_TLB 0
122 #define RIC_FLUSH_PWC 1
123 #define RIC_FLUSH_ALL 2
124
125 #define POWER9_TLB_SETS_RADIX 128 /* # sets in POWER9 TLB Radix mode */
126
127 #define PPC_INST_TLBIE 0x7c000264
128 #define PPC_INST_TLBIEL 0x7c000224
129 #define PPC_INST_SLBIA 0x7c0003e4
130
131 #define ___PPC_RA(a) (((a) & 0x1f) << 16)
132 #define ___PPC_RB(b) (((b) & 0x1f) << 11)
133 #define ___PPC_RS(s) (((s) & 0x1f) << 21)
134 #define ___PPC_RT(t) ___PPC_RS(t)
135 #define ___PPC_R(r) (((r) & 0x1) << 16)
136 #define ___PPC_PRS(prs) (((prs) & 0x1) << 17)
137 #define ___PPC_RIC(ric) (((ric) & 0x3) << 18)
138
139 #define PPC_SLBIA(IH) __XSTRING(.long PPC_INST_SLBIA | \
140 ((IH & 0x7) << 21))
141 #define PPC_TLBIE_5(rb,rs,ric,prs,r) \
142 __XSTRING(.long PPC_INST_TLBIE | \
143 ___PPC_RB(rb) | ___PPC_RS(rs) | \
144 ___PPC_RIC(ric) | ___PPC_PRS(prs) | \
145 ___PPC_R(r))
146
147 #define PPC_TLBIEL(rb,rs,ric,prs,r) \
148 __XSTRING(.long PPC_INST_TLBIEL | \
149 ___PPC_RB(rb) | ___PPC_RS(rs) | \
150 ___PPC_RIC(ric) | ___PPC_PRS(prs) | \
151 ___PPC_R(r))
152
153 #define PPC_INVALIDATE_ERAT PPC_SLBIA(7)
154
155 static __inline void
ttusync(void)156 ttusync(void)
157 {
158 __asm __volatile("eieio; tlbsync; ptesync" ::: "memory");
159 }
160
161 #define TLBIEL_INVAL_SEL_MASK 0xc00 /* invalidation selector */
162 #define TLBIEL_INVAL_PAGE 0x000 /* invalidate a single page */
163 #define TLBIEL_INVAL_SET_PID 0x400 /* invalidate a set for the current PID */
164 #define TLBIEL_INVAL_SET_LPID 0x800 /* invalidate a set for current LPID */
165 #define TLBIEL_INVAL_SET 0xc00 /* invalidate a set for all LPIDs */
166
167 #define TLBIE_ACTUAL_PAGE_MASK 0xe0
168 #define TLBIE_ACTUAL_PAGE_4K 0x00
169 #define TLBIE_ACTUAL_PAGE_64K 0xa0
170 #define TLBIE_ACTUAL_PAGE_2M 0x20
171 #define TLBIE_ACTUAL_PAGE_1G 0x40
172
173 #define TLBIE_PRS_PARTITION_SCOPE 0x0
174 #define TLBIE_PRS_PROCESS_SCOPE 0x1
175
176 #define TLBIE_RIC_INVALIDATE_TLB 0x0 /* Invalidate just TLB */
177 #define TLBIE_RIC_INVALIDATE_PWC 0x1 /* Invalidate just PWC */
178 #define TLBIE_RIC_INVALIDATE_ALL 0x2 /* Invalidate TLB, PWC,
179 * cached {proc, part}tab entries
180 */
181 #define TLBIE_RIC_INVALIDATE_SEQ 0x3 /* HPT - only:
182 * Invalidate a range of translations
183 */
184
185 static __always_inline void
radix_tlbie(uint8_t ric,uint8_t prs,uint16_t is,uint32_t pid,uint32_t lpid,vm_offset_t va,uint16_t ap)186 radix_tlbie(uint8_t ric, uint8_t prs, uint16_t is, uint32_t pid, uint32_t lpid,
187 vm_offset_t va, uint16_t ap)
188 {
189 uint64_t rb, rs;
190
191 MPASS((va & PAGE_MASK) == 0);
192
193 rs = ((uint64_t)pid << 32) | lpid;
194 rb = va | is | ap;
195 __asm __volatile(PPC_TLBIE_5(%0, %1, %2, %3, 1) : :
196 "r" (rb), "r" (rs), "i" (ric), "i" (prs) : "memory");
197 }
198
199 static __inline void
radix_tlbie_fixup(uint32_t pid,vm_offset_t va,int ap)200 radix_tlbie_fixup(uint32_t pid, vm_offset_t va, int ap)
201 {
202
203 __asm __volatile("ptesync" ::: "memory");
204 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
205 TLBIEL_INVAL_PAGE, 0, 0, va, ap);
206 __asm __volatile("ptesync" ::: "memory");
207 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
208 TLBIEL_INVAL_PAGE, pid, 0, va, ap);
209 }
210
211 static __inline void
radix_tlbie_invlpg_user_4k(uint32_t pid,vm_offset_t va)212 radix_tlbie_invlpg_user_4k(uint32_t pid, vm_offset_t va)
213 {
214
215 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
216 TLBIEL_INVAL_PAGE, pid, 0, va, TLBIE_ACTUAL_PAGE_4K);
217 radix_tlbie_fixup(pid, va, TLBIE_ACTUAL_PAGE_4K);
218 }
219
220 static __inline void
radix_tlbie_invlpg_user_2m(uint32_t pid,vm_offset_t va)221 radix_tlbie_invlpg_user_2m(uint32_t pid, vm_offset_t va)
222 {
223
224 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
225 TLBIEL_INVAL_PAGE, pid, 0, va, TLBIE_ACTUAL_PAGE_2M);
226 radix_tlbie_fixup(pid, va, TLBIE_ACTUAL_PAGE_2M);
227 }
228
229 static __inline void
radix_tlbie_invlpwc_user(uint32_t pid)230 radix_tlbie_invlpwc_user(uint32_t pid)
231 {
232
233 radix_tlbie(TLBIE_RIC_INVALIDATE_PWC, TLBIE_PRS_PROCESS_SCOPE,
234 TLBIEL_INVAL_SET_PID, pid, 0, 0, 0);
235 }
236
237 static __inline void
radix_tlbie_flush_user(uint32_t pid)238 radix_tlbie_flush_user(uint32_t pid)
239 {
240
241 radix_tlbie(TLBIE_RIC_INVALIDATE_ALL, TLBIE_PRS_PROCESS_SCOPE,
242 TLBIEL_INVAL_SET_PID, pid, 0, 0, 0);
243 }
244
245 static __inline void
radix_tlbie_invlpg_kernel_4k(vm_offset_t va)246 radix_tlbie_invlpg_kernel_4k(vm_offset_t va)
247 {
248
249 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
250 TLBIEL_INVAL_PAGE, 0, 0, va, TLBIE_ACTUAL_PAGE_4K);
251 radix_tlbie_fixup(0, va, TLBIE_ACTUAL_PAGE_4K);
252 }
253
254 static __inline void
radix_tlbie_invlpg_kernel_2m(vm_offset_t va)255 radix_tlbie_invlpg_kernel_2m(vm_offset_t va)
256 {
257
258 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
259 TLBIEL_INVAL_PAGE, 0, 0, va, TLBIE_ACTUAL_PAGE_2M);
260 radix_tlbie_fixup(0, va, TLBIE_ACTUAL_PAGE_2M);
261 }
262
263 /* 1GB pages aren't currently supported. */
264 static __inline __unused void
radix_tlbie_invlpg_kernel_1g(vm_offset_t va)265 radix_tlbie_invlpg_kernel_1g(vm_offset_t va)
266 {
267
268 radix_tlbie(TLBIE_RIC_INVALIDATE_TLB, TLBIE_PRS_PROCESS_SCOPE,
269 TLBIEL_INVAL_PAGE, 0, 0, va, TLBIE_ACTUAL_PAGE_1G);
270 radix_tlbie_fixup(0, va, TLBIE_ACTUAL_PAGE_1G);
271 }
272
273 static __inline void
radix_tlbie_invlpwc_kernel(void)274 radix_tlbie_invlpwc_kernel(void)
275 {
276
277 radix_tlbie(TLBIE_RIC_INVALIDATE_PWC, TLBIE_PRS_PROCESS_SCOPE,
278 TLBIEL_INVAL_SET_LPID, 0, 0, 0, 0);
279 }
280
281 static __inline void
radix_tlbie_flush_kernel(void)282 radix_tlbie_flush_kernel(void)
283 {
284
285 radix_tlbie(TLBIE_RIC_INVALIDATE_ALL, TLBIE_PRS_PROCESS_SCOPE,
286 TLBIEL_INVAL_SET_LPID, 0, 0, 0, 0);
287 }
288
289 static __inline vm_pindex_t
pmap_l3e_pindex(vm_offset_t va)290 pmap_l3e_pindex(vm_offset_t va)
291 {
292 return ((va & PG_FRAME) >> L3_PAGE_SIZE_SHIFT);
293 }
294
295 static __inline vm_pindex_t
pmap_pml3e_index(vm_offset_t va)296 pmap_pml3e_index(vm_offset_t va)
297 {
298
299 return ((va >> L3_PAGE_SIZE_SHIFT) & RPTE_MASK);
300 }
301
302 static __inline vm_pindex_t
pmap_pml2e_index(vm_offset_t va)303 pmap_pml2e_index(vm_offset_t va)
304 {
305 return ((va >> L2_PAGE_SIZE_SHIFT) & RPTE_MASK);
306 }
307
308 static __inline vm_pindex_t
pmap_pml1e_index(vm_offset_t va)309 pmap_pml1e_index(vm_offset_t va)
310 {
311 return ((va & PG_FRAME) >> L1_PAGE_SIZE_SHIFT);
312 }
313
314 /* Return various clipped indexes for a given VA */
315 static __inline vm_pindex_t
pmap_pte_index(vm_offset_t va)316 pmap_pte_index(vm_offset_t va)
317 {
318
319 return ((va >> PAGE_SHIFT) & RPTE_MASK);
320 }
321
322 /* Return a pointer to the PT slot that corresponds to a VA */
323 static __inline pt_entry_t *
pmap_l3e_to_pte(pt_entry_t * l3e,vm_offset_t va)324 pmap_l3e_to_pte(pt_entry_t *l3e, vm_offset_t va)
325 {
326 pt_entry_t *pte;
327 vm_paddr_t ptepa;
328
329 ptepa = (be64toh(*l3e) & NLB_MASK);
330 pte = (pt_entry_t *)PHYS_TO_DMAP(ptepa);
331 return (&pte[pmap_pte_index(va)]);
332 }
333
334 /* Return a pointer to the PD slot that corresponds to a VA */
335 static __inline pt_entry_t *
pmap_l2e_to_l3e(pt_entry_t * l2e,vm_offset_t va)336 pmap_l2e_to_l3e(pt_entry_t *l2e, vm_offset_t va)
337 {
338 pt_entry_t *l3e;
339 vm_paddr_t l3pa;
340
341 l3pa = (be64toh(*l2e) & NLB_MASK);
342 l3e = (pml3_entry_t *)PHYS_TO_DMAP(l3pa);
343 return (&l3e[pmap_pml3e_index(va)]);
344 }
345
346 /* Return a pointer to the PD slot that corresponds to a VA */
347 static __inline pt_entry_t *
pmap_l1e_to_l2e(pt_entry_t * l1e,vm_offset_t va)348 pmap_l1e_to_l2e(pt_entry_t *l1e, vm_offset_t va)
349 {
350 pt_entry_t *l2e;
351 vm_paddr_t l2pa;
352
353 l2pa = (be64toh(*l1e) & NLB_MASK);
354
355 l2e = (pml2_entry_t *)PHYS_TO_DMAP(l2pa);
356 return (&l2e[pmap_pml2e_index(va)]);
357 }
358
359 static __inline pml1_entry_t *
pmap_pml1e(pmap_t pmap,vm_offset_t va)360 pmap_pml1e(pmap_t pmap, vm_offset_t va)
361 {
362
363 return (&pmap->pm_pml1[pmap_pml1e_index(va)]);
364 }
365
366 static pt_entry_t *
pmap_pml2e(pmap_t pmap,vm_offset_t va)367 pmap_pml2e(pmap_t pmap, vm_offset_t va)
368 {
369 pt_entry_t *l1e;
370
371 l1e = pmap_pml1e(pmap, va);
372 if (l1e == NULL || (be64toh(*l1e) & RPTE_VALID) == 0)
373 return (NULL);
374 return (pmap_l1e_to_l2e(l1e, va));
375 }
376
377 static __inline pt_entry_t *
pmap_pml3e(pmap_t pmap,vm_offset_t va)378 pmap_pml3e(pmap_t pmap, vm_offset_t va)
379 {
380 pt_entry_t *l2e;
381
382 l2e = pmap_pml2e(pmap, va);
383 if (l2e == NULL || (be64toh(*l2e) & RPTE_VALID) == 0)
384 return (NULL);
385 return (pmap_l2e_to_l3e(l2e, va));
386 }
387
388 static __inline pt_entry_t *
pmap_pte(pmap_t pmap,vm_offset_t va)389 pmap_pte(pmap_t pmap, vm_offset_t va)
390 {
391 pt_entry_t *l3e;
392
393 l3e = pmap_pml3e(pmap, va);
394 if (l3e == NULL || (be64toh(*l3e) & RPTE_VALID) == 0)
395 return (NULL);
396 return (pmap_l3e_to_pte(l3e, va));
397 }
398
399 int nkpt = 64;
400 SYSCTL_INT(_machdep, OID_AUTO, nkpt, CTLFLAG_RD, &nkpt, 0,
401 "Number of kernel page table pages allocated on bootup");
402
403 vm_paddr_t dmaplimit;
404
405 SYSCTL_DECL(_vm_pmap);
406
407 #ifdef INVARIANTS
408 #define VERBOSE_PMAP 0
409 #define VERBOSE_PROTECT 0
410 static int pmap_logging;
411 SYSCTL_INT(_vm_pmap, OID_AUTO, pmap_logging, CTLFLAG_RWTUN,
412 &pmap_logging, 0, "verbose debug logging");
413 #endif
414
415 static u_int64_t KPTphys; /* phys addr of kernel level 1 */
416
417 //static vm_paddr_t KERNend; /* phys addr of end of bootstrap data */
418
419 static vm_offset_t qframe = 0;
420 static struct mtx qframe_mtx;
421
422 void mmu_radix_activate(struct thread *);
423 void mmu_radix_advise(pmap_t, vm_offset_t, vm_offset_t, int);
424 void mmu_radix_align_superpage(vm_object_t, vm_ooffset_t, vm_offset_t *,
425 vm_size_t);
426 void mmu_radix_clear_modify(vm_page_t);
427 void mmu_radix_copy(pmap_t, pmap_t, vm_offset_t, vm_size_t, vm_offset_t);
428 int mmu_radix_decode_kernel_ptr(vm_offset_t, int *, vm_offset_t *);
429 int mmu_radix_enter(pmap_t, vm_offset_t, vm_page_t, vm_prot_t, u_int, int8_t);
430 void mmu_radix_enter_object(pmap_t, vm_offset_t, vm_offset_t, vm_page_t,
431 vm_prot_t);
432 void mmu_radix_enter_quick(pmap_t, vm_offset_t, vm_page_t, vm_prot_t);
433 vm_paddr_t mmu_radix_extract(pmap_t pmap, vm_offset_t va);
434 vm_page_t mmu_radix_extract_and_hold(pmap_t, vm_offset_t, vm_prot_t);
435 void mmu_radix_kenter(vm_offset_t, vm_paddr_t);
436 vm_paddr_t mmu_radix_kextract(vm_offset_t);
437 void mmu_radix_kremove(vm_offset_t);
438 boolean_t mmu_radix_is_modified(vm_page_t);
439 boolean_t mmu_radix_is_prefaultable(pmap_t, vm_offset_t);
440 boolean_t mmu_radix_is_referenced(vm_page_t);
441 void mmu_radix_object_init_pt(pmap_t, vm_offset_t, vm_object_t,
442 vm_pindex_t, vm_size_t);
443 boolean_t mmu_radix_page_exists_quick(pmap_t, vm_page_t);
444 void mmu_radix_page_init(vm_page_t);
445 boolean_t mmu_radix_page_is_mapped(vm_page_t m);
446 void mmu_radix_page_set_memattr(vm_page_t, vm_memattr_t);
447 int mmu_radix_page_wired_mappings(vm_page_t);
448 int mmu_radix_pinit(pmap_t);
449 void mmu_radix_protect(pmap_t, vm_offset_t, vm_offset_t, vm_prot_t);
450 bool mmu_radix_ps_enabled(pmap_t);
451 void mmu_radix_qenter(vm_offset_t, vm_page_t *, int);
452 void mmu_radix_qremove(vm_offset_t, int);
453 vm_offset_t mmu_radix_quick_enter_page(vm_page_t);
454 void mmu_radix_quick_remove_page(vm_offset_t);
455 boolean_t mmu_radix_ts_referenced(vm_page_t);
456 void mmu_radix_release(pmap_t);
457 void mmu_radix_remove(pmap_t, vm_offset_t, vm_offset_t);
458 void mmu_radix_remove_all(vm_page_t);
459 void mmu_radix_remove_pages(pmap_t);
460 void mmu_radix_remove_write(vm_page_t);
461 void mmu_radix_unwire(pmap_t, vm_offset_t, vm_offset_t);
462 void mmu_radix_zero_page(vm_page_t);
463 void mmu_radix_zero_page_area(vm_page_t, int, int);
464 int mmu_radix_change_attr(vm_offset_t, vm_size_t, vm_memattr_t);
465 void mmu_radix_page_array_startup(long pages);
466
467 #include "mmu_oea64.h"
468
469 /*
470 * Kernel MMU interface
471 */
472
473 static void mmu_radix_bootstrap(vm_offset_t, vm_offset_t);
474
475 static void mmu_radix_copy_page(vm_page_t, vm_page_t);
476 static void mmu_radix_copy_pages(vm_page_t *ma, vm_offset_t a_offset,
477 vm_page_t *mb, vm_offset_t b_offset, int xfersize);
478 static void mmu_radix_growkernel(vm_offset_t);
479 static void mmu_radix_init(void);
480 static int mmu_radix_mincore(pmap_t, vm_offset_t, vm_paddr_t *);
481 static vm_offset_t mmu_radix_map(vm_offset_t *, vm_paddr_t, vm_paddr_t, int);
482 static void mmu_radix_pinit0(pmap_t);
483
484 static void *mmu_radix_mapdev(vm_paddr_t, vm_size_t);
485 static void *mmu_radix_mapdev_attr(vm_paddr_t, vm_size_t, vm_memattr_t);
486 static void mmu_radix_unmapdev(vm_offset_t, vm_size_t);
487 static void mmu_radix_kenter_attr(vm_offset_t, vm_paddr_t, vm_memattr_t ma);
488 static boolean_t mmu_radix_dev_direct_mapped(vm_paddr_t, vm_size_t);
489 static void mmu_radix_dumpsys_map(vm_paddr_t pa, size_t sz, void **va);
490 static void mmu_radix_scan_init(void);
491 static void mmu_radix_cpu_bootstrap(int ap);
492 static void mmu_radix_tlbie_all(void);
493
494 static struct pmap_funcs mmu_radix_methods = {
495 .bootstrap = mmu_radix_bootstrap,
496 .copy_page = mmu_radix_copy_page,
497 .copy_pages = mmu_radix_copy_pages,
498 .cpu_bootstrap = mmu_radix_cpu_bootstrap,
499 .growkernel = mmu_radix_growkernel,
500 .init = mmu_radix_init,
501 .map = mmu_radix_map,
502 .mincore = mmu_radix_mincore,
503 .pinit = mmu_radix_pinit,
504 .pinit0 = mmu_radix_pinit0,
505
506 .mapdev = mmu_radix_mapdev,
507 .mapdev_attr = mmu_radix_mapdev_attr,
508 .unmapdev = mmu_radix_unmapdev,
509 .kenter_attr = mmu_radix_kenter_attr,
510 .dev_direct_mapped = mmu_radix_dev_direct_mapped,
511 .dumpsys_pa_init = mmu_radix_scan_init,
512 .dumpsys_map_chunk = mmu_radix_dumpsys_map,
513 .page_is_mapped = mmu_radix_page_is_mapped,
514 .ps_enabled = mmu_radix_ps_enabled,
515 .object_init_pt = mmu_radix_object_init_pt,
516 .protect = mmu_radix_protect,
517 /* pmap dispatcher interface */
518 .clear_modify = mmu_radix_clear_modify,
519 .copy = mmu_radix_copy,
520 .enter = mmu_radix_enter,
521 .enter_object = mmu_radix_enter_object,
522 .enter_quick = mmu_radix_enter_quick,
523 .extract = mmu_radix_extract,
524 .extract_and_hold = mmu_radix_extract_and_hold,
525 .is_modified = mmu_radix_is_modified,
526 .is_prefaultable = mmu_radix_is_prefaultable,
527 .is_referenced = mmu_radix_is_referenced,
528 .ts_referenced = mmu_radix_ts_referenced,
529 .page_exists_quick = mmu_radix_page_exists_quick,
530 .page_init = mmu_radix_page_init,
531 .page_wired_mappings = mmu_radix_page_wired_mappings,
532 .qenter = mmu_radix_qenter,
533 .qremove = mmu_radix_qremove,
534 .release = mmu_radix_release,
535 .remove = mmu_radix_remove,
536 .remove_all = mmu_radix_remove_all,
537 .remove_write = mmu_radix_remove_write,
538 .unwire = mmu_radix_unwire,
539 .zero_page = mmu_radix_zero_page,
540 .zero_page_area = mmu_radix_zero_page_area,
541 .activate = mmu_radix_activate,
542 .quick_enter_page = mmu_radix_quick_enter_page,
543 .quick_remove_page = mmu_radix_quick_remove_page,
544 .page_set_memattr = mmu_radix_page_set_memattr,
545 .page_array_startup = mmu_radix_page_array_startup,
546
547 /* Internal interfaces */
548 .kenter = mmu_radix_kenter,
549 .kextract = mmu_radix_kextract,
550 .kremove = mmu_radix_kremove,
551 .change_attr = mmu_radix_change_attr,
552 .decode_kernel_ptr = mmu_radix_decode_kernel_ptr,
553
554 .tlbie_all = mmu_radix_tlbie_all,
555 };
556
557 MMU_DEF(mmu_radix, MMU_TYPE_RADIX, mmu_radix_methods);
558
559 static boolean_t pmap_demote_l3e_locked(pmap_t pmap, pml3_entry_t *l3e, vm_offset_t va,
560 struct rwlock **lockp);
561 static boolean_t pmap_demote_l3e(pmap_t pmap, pml3_entry_t *pde, vm_offset_t va);
562 static int pmap_unuse_pt(pmap_t, vm_offset_t, pml3_entry_t, struct spglist *);
563 static int pmap_remove_l3e(pmap_t pmap, pml3_entry_t *pdq, vm_offset_t sva,
564 struct spglist *free, struct rwlock **lockp);
565 static int pmap_remove_pte(pmap_t pmap, pt_entry_t *ptq, vm_offset_t sva,
566 pml3_entry_t ptepde, struct spglist *free, struct rwlock **lockp);
567 static vm_page_t pmap_remove_pt_page(pmap_t pmap, vm_offset_t va);
568 static bool pmap_remove_page(pmap_t pmap, vm_offset_t va, pml3_entry_t *pde,
569 struct spglist *free);
570 static bool pmap_remove_ptes(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
571 pml3_entry_t *l3e, struct spglist *free, struct rwlock **lockp);
572
573 static bool pmap_pv_insert_l3e(pmap_t pmap, vm_offset_t va, pml3_entry_t l3e,
574 u_int flags, struct rwlock **lockp);
575 #if VM_NRESERVLEVEL > 0
576 static void pmap_pv_promote_l3e(pmap_t pmap, vm_offset_t va, vm_paddr_t pa,
577 struct rwlock **lockp);
578 #endif
579 static void pmap_pvh_free(struct md_page *pvh, pmap_t pmap, vm_offset_t va);
580 static int pmap_insert_pt_page(pmap_t pmap, vm_page_t mpte);
581 static vm_page_t mmu_radix_enter_quick_locked(pmap_t pmap, vm_offset_t va, vm_page_t m,
582 vm_prot_t prot, vm_page_t mpte, struct rwlock **lockp, bool *invalidate);
583
584 static bool pmap_enter_2mpage(pmap_t pmap, vm_offset_t va, vm_page_t m,
585 vm_prot_t prot, struct rwlock **lockp);
586 static int pmap_enter_l3e(pmap_t pmap, vm_offset_t va, pml3_entry_t newpde,
587 u_int flags, vm_page_t m, struct rwlock **lockp);
588
589 static vm_page_t reclaim_pv_chunk(pmap_t locked_pmap, struct rwlock **lockp);
590 static void free_pv_chunk(struct pv_chunk *pc);
591 static vm_page_t _pmap_allocpte(pmap_t pmap, vm_pindex_t ptepindex, struct rwlock **lockp);
592 static vm_page_t pmap_allocl3e(pmap_t pmap, vm_offset_t va,
593 struct rwlock **lockp);
594 static vm_page_t pmap_allocpte(pmap_t pmap, vm_offset_t va,
595 struct rwlock **lockp);
596 static void _pmap_unwire_ptp(pmap_t pmap, vm_offset_t va, vm_page_t m,
597 struct spglist *free);
598 static boolean_t pmap_unwire_ptp(pmap_t pmap, vm_offset_t va, vm_page_t m, struct spglist *free);
599
600 static void pmap_invalidate_page(pmap_t pmap, vm_offset_t start);
601 static void pmap_invalidate_all(pmap_t pmap);
602 static int pmap_change_attr_locked(vm_offset_t va, vm_size_t size, int mode, bool flush);
603
604 /*
605 * Internal flags for pmap_enter()'s helper functions.
606 */
607 #define PMAP_ENTER_NORECLAIM 0x1000000 /* Don't reclaim PV entries. */
608 #define PMAP_ENTER_NOREPLACE 0x2000000 /* Don't replace mappings. */
609
610 #define UNIMPLEMENTED() panic("%s not implemented", __func__)
611 #define UNTESTED() panic("%s not yet tested", __func__)
612
613 /* Number of supported PID bits */
614 static unsigned int isa3_pid_bits;
615
616 /* PID to start allocating from */
617 static unsigned int isa3_base_pid;
618
619 #define PROCTAB_SIZE_SHIFT (isa3_pid_bits + 4)
620 #define PROCTAB_ENTRIES (1ul << isa3_pid_bits)
621
622 /*
623 * Map of physical memory regions.
624 */
625 static struct mem_region *regions, *pregions;
626 static struct numa_mem_region *numa_pregions;
627 static u_int phys_avail_count;
628 static int regions_sz, pregions_sz, numa_pregions_sz;
629 static struct pate *isa3_parttab;
630 static struct prte *isa3_proctab;
631 static vmem_t *asid_arena;
632
633 extern void bs_remap_earlyboot(void);
634
635 #define RADIX_PGD_SIZE_SHIFT 16
636 #define RADIX_PGD_SIZE (1UL << RADIX_PGD_SIZE_SHIFT)
637
638 #define RADIX_PGD_INDEX_SHIFT (RADIX_PGD_SIZE_SHIFT-3)
639 #define NL2EPG (PAGE_SIZE/sizeof(pml2_entry_t))
640 #define NL3EPG (PAGE_SIZE/sizeof(pml3_entry_t))
641
642 #define NUPML1E (RADIX_PGD_SIZE/sizeof(uint64_t)) /* number of userland PML1 pages */
643 #define NUPDPE (NUPML1E * NL2EPG)/* number of userland PDP pages */
644 #define NUPDE (NUPDPE * NL3EPG) /* number of userland PD entries */
645
646 /* POWER9 only permits a 64k partition table size. */
647 #define PARTTAB_SIZE_SHIFT 16
648 #define PARTTAB_SIZE (1UL << PARTTAB_SIZE_SHIFT)
649
650 #define PARTTAB_HR (1UL << 63) /* host uses radix */
651 #define PARTTAB_GR (1UL << 63) /* guest uses radix must match host */
652
653 /* TLB flush actions. Used as argument to tlbiel_all() */
654 enum {
655 TLB_INVAL_SCOPE_LPID = 0, /* invalidate TLBs for current LPID */
656 TLB_INVAL_SCOPE_GLOBAL = 1, /* invalidate all TLBs */
657 };
658
659 #define NPV_LIST_LOCKS MAXCPU
660 static int pmap_initialized;
661 static vm_paddr_t proctab0pa;
662 static vm_paddr_t parttab_phys;
663 CTASSERT(sizeof(struct pv_chunk) == PAGE_SIZE);
664
665 /*
666 * Data for the pv entry allocation mechanism.
667 * Updates to pv_invl_gen are protected by the pv_list_locks[]
668 * elements, but reads are not.
669 */
670 static TAILQ_HEAD(pch, pv_chunk) pv_chunks = TAILQ_HEAD_INITIALIZER(pv_chunks);
671 static struct mtx __exclusive_cache_line pv_chunks_mutex;
672 static struct rwlock __exclusive_cache_line pv_list_locks[NPV_LIST_LOCKS];
673 static struct md_page *pv_table;
674 static struct md_page pv_dummy;
675
676 #ifdef PV_STATS
677 #define PV_STAT(x) do { x ; } while (0)
678 #else
679 #define PV_STAT(x) do { } while (0)
680 #endif
681
682 #define pa_radix_index(pa) ((pa) >> L3_PAGE_SIZE_SHIFT)
683 #define pa_to_pvh(pa) (&pv_table[pa_radix_index(pa)])
684
685 #define PHYS_TO_PV_LIST_LOCK(pa) \
686 (&pv_list_locks[pa_radix_index(pa) % NPV_LIST_LOCKS])
687
688 #define CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa) do { \
689 struct rwlock **_lockp = (lockp); \
690 struct rwlock *_new_lock; \
691 \
692 _new_lock = PHYS_TO_PV_LIST_LOCK(pa); \
693 if (_new_lock != *_lockp) { \
694 if (*_lockp != NULL) \
695 rw_wunlock(*_lockp); \
696 *_lockp = _new_lock; \
697 rw_wlock(*_lockp); \
698 } \
699 } while (0)
700
701 #define CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m) \
702 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, VM_PAGE_TO_PHYS(m))
703
704 #define RELEASE_PV_LIST_LOCK(lockp) do { \
705 struct rwlock **_lockp = (lockp); \
706 \
707 if (*_lockp != NULL) { \
708 rw_wunlock(*_lockp); \
709 *_lockp = NULL; \
710 } \
711 } while (0)
712
713 #define VM_PAGE_TO_PV_LIST_LOCK(m) \
714 PHYS_TO_PV_LIST_LOCK(VM_PAGE_TO_PHYS(m))
715
716 /*
717 * We support 52 bits, hence:
718 * bits 52 - 31 = 21, 0b10101
719 * RTS encoding details
720 * bits 0 - 3 of rts -> bits 6 - 8 unsigned long
721 * bits 4 - 5 of rts -> bits 62 - 63 of unsigned long
722 */
723 #define RTS_SIZE ((0x2UL << 61) | (0x5UL << 5))
724
725 static int powernv_enabled = 1;
726
727 static __always_inline void
tlbiel_radix_set_isa300(uint32_t set,uint32_t is,uint32_t pid,uint32_t ric,uint32_t prs)728 tlbiel_radix_set_isa300(uint32_t set, uint32_t is,
729 uint32_t pid, uint32_t ric, uint32_t prs)
730 {
731 uint64_t rb;
732 uint64_t rs;
733
734 rb = PPC_BITLSHIFT_VAL(set, 51) | PPC_BITLSHIFT_VAL(is, 53);
735 rs = PPC_BITLSHIFT_VAL((uint64_t)pid, 31);
736
737 __asm __volatile(PPC_TLBIEL(%0, %1, %2, %3, 1)
738 : : "r"(rb), "r"(rs), "i"(ric), "i"(prs)
739 : "memory");
740 }
741
742 static void
tlbiel_flush_isa3(uint32_t num_sets,uint32_t is)743 tlbiel_flush_isa3(uint32_t num_sets, uint32_t is)
744 {
745 uint32_t set;
746
747 __asm __volatile("ptesync": : :"memory");
748
749 /*
750 * Flush the first set of the TLB, and the entire Page Walk Cache
751 * and partition table entries. Then flush the remaining sets of the
752 * TLB.
753 */
754 tlbiel_radix_set_isa300(0, is, 0, RIC_FLUSH_ALL, 0);
755 for (set = 1; set < num_sets; set++)
756 tlbiel_radix_set_isa300(set, is, 0, RIC_FLUSH_TLB, 0);
757
758 /* Do the same for process scoped entries. */
759 tlbiel_radix_set_isa300(0, is, 0, RIC_FLUSH_ALL, 1);
760 for (set = 1; set < num_sets; set++)
761 tlbiel_radix_set_isa300(set, is, 0, RIC_FLUSH_TLB, 1);
762
763 __asm __volatile("ptesync": : :"memory");
764 }
765
766 static void
mmu_radix_tlbiel_flush(int scope)767 mmu_radix_tlbiel_flush(int scope)
768 {
769 int is;
770
771 MPASS(scope == TLB_INVAL_SCOPE_LPID ||
772 scope == TLB_INVAL_SCOPE_GLOBAL);
773 is = scope + 2;
774
775 tlbiel_flush_isa3(POWER9_TLB_SETS_RADIX, is);
776 __asm __volatile(PPC_INVALIDATE_ERAT "; isync" : : :"memory");
777 }
778
779 static void
mmu_radix_tlbie_all()780 mmu_radix_tlbie_all()
781 {
782 /* TODO: LPID invalidate */
783 mmu_radix_tlbiel_flush(TLB_INVAL_SCOPE_GLOBAL);
784 }
785
786 static void
mmu_radix_init_amor(void)787 mmu_radix_init_amor(void)
788 {
789 /*
790 * In HV mode, we init AMOR (Authority Mask Override Register) so that
791 * the hypervisor and guest can setup IAMR (Instruction Authority Mask
792 * Register), enable key 0 and set it to 1.
793 *
794 * AMOR = 0b1100 .... 0000 (Mask for key 0 is 11)
795 */
796 mtspr(SPR_AMOR, (3ul << 62));
797 }
798
799 static void
mmu_radix_init_iamr(void)800 mmu_radix_init_iamr(void)
801 {
802 /*
803 * Radix always uses key0 of the IAMR to determine if an access is
804 * allowed. We set bit 0 (IBM bit 1) of key0, to prevent instruction
805 * fetch.
806 */
807 mtspr(SPR_IAMR, (1ul << 62));
808 }
809
810 static void
mmu_radix_pid_set(pmap_t pmap)811 mmu_radix_pid_set(pmap_t pmap)
812 {
813
814 mtspr(SPR_PID, pmap->pm_pid);
815 isync();
816 }
817
818 /* Quick sort callout for comparing physical addresses. */
819 static int
pa_cmp(const void * a,const void * b)820 pa_cmp(const void *a, const void *b)
821 {
822 const vm_paddr_t *pa = a, *pb = b;
823
824 if (*pa < *pb)
825 return (-1);
826 else if (*pa > *pb)
827 return (1);
828 else
829 return (0);
830 }
831
832 #define pte_load_store(ptep, pte) atomic_swap_long(ptep, pte)
833 #define pte_load_clear(ptep) atomic_swap_long(ptep, 0)
834 #define pte_store(ptep, pte) do { \
835 MPASS((pte) & (RPTE_EAA_R | RPTE_EAA_W | RPTE_EAA_X)); \
836 *(u_long *)(ptep) = htobe64((u_long)((pte) | PG_V | RPTE_LEAF)); \
837 } while (0)
838 /*
839 * NB: should only be used for adding directories - not for direct mappings
840 */
841 #define pde_store(ptep, pa) do { \
842 *(u_long *)(ptep) = htobe64((u_long)(pa|RPTE_VALID|RPTE_SHIFT)); \
843 } while (0)
844
845 #define pte_clear(ptep) do { \
846 *(u_long *)(ptep) = (u_long)(0); \
847 } while (0)
848
849 #define PMAP_PDE_SUPERPAGE (1 << 8) /* supports 2MB superpages */
850
851 /*
852 * Promotion to a 2MB (PDE) page mapping requires that the corresponding 4KB
853 * (PTE) page mappings have identical settings for the following fields:
854 */
855 #define PG_PTE_PROMOTE (PG_X | PG_MANAGED | PG_W | PG_PTE_CACHE | \
856 PG_M | PG_A | RPTE_EAA_MASK | PG_V)
857
858 static __inline void
pmap_resident_count_inc(pmap_t pmap,int count)859 pmap_resident_count_inc(pmap_t pmap, int count)
860 {
861
862 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
863 pmap->pm_stats.resident_count += count;
864 }
865
866 static __inline void
pmap_resident_count_dec(pmap_t pmap,int count)867 pmap_resident_count_dec(pmap_t pmap, int count)
868 {
869
870 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
871 KASSERT(pmap->pm_stats.resident_count >= count,
872 ("pmap %p resident count underflow %ld %d", pmap,
873 pmap->pm_stats.resident_count, count));
874 pmap->pm_stats.resident_count -= count;
875 }
876
877 static void
pagezero(vm_offset_t va)878 pagezero(vm_offset_t va)
879 {
880 va = trunc_page(va);
881
882 bzero((void *)va, PAGE_SIZE);
883 }
884
885 static uint64_t
allocpages(int n)886 allocpages(int n)
887 {
888 u_int64_t ret;
889
890 ret = moea64_bootstrap_alloc(n * PAGE_SIZE, PAGE_SIZE);
891 for (int i = 0; i < n; i++)
892 pagezero(PHYS_TO_DMAP(ret + i * PAGE_SIZE));
893 return (ret);
894 }
895
896 static pt_entry_t *
kvtopte(vm_offset_t va)897 kvtopte(vm_offset_t va)
898 {
899 pt_entry_t *l3e;
900
901 l3e = pmap_pml3e(kernel_pmap, va);
902 if (l3e == NULL || (be64toh(*l3e) & RPTE_VALID) == 0)
903 return (NULL);
904 return (pmap_l3e_to_pte(l3e, va));
905 }
906
907 void
mmu_radix_kenter(vm_offset_t va,vm_paddr_t pa)908 mmu_radix_kenter(vm_offset_t va, vm_paddr_t pa)
909 {
910 pt_entry_t *pte;
911
912 pte = kvtopte(va);
913 MPASS(pte != NULL);
914 *pte = htobe64(pa | RPTE_VALID | RPTE_LEAF | RPTE_EAA_R | \
915 RPTE_EAA_W | RPTE_EAA_P | PG_M | PG_A);
916 }
917
918 bool
mmu_radix_ps_enabled(pmap_t pmap)919 mmu_radix_ps_enabled(pmap_t pmap)
920 {
921 return (superpages_enabled && (pmap->pm_flags & PMAP_PDE_SUPERPAGE) != 0);
922 }
923
924 static pt_entry_t *
pmap_nofault_pte(pmap_t pmap,vm_offset_t va,int * is_l3e)925 pmap_nofault_pte(pmap_t pmap, vm_offset_t va, int *is_l3e)
926 {
927 pml3_entry_t *l3e;
928 pt_entry_t *pte;
929
930 va &= PG_PS_FRAME;
931 l3e = pmap_pml3e(pmap, va);
932 if (l3e == NULL || (be64toh(*l3e) & PG_V) == 0)
933 return (NULL);
934
935 if (be64toh(*l3e) & RPTE_LEAF) {
936 *is_l3e = 1;
937 return (l3e);
938 }
939 *is_l3e = 0;
940 va &= PG_FRAME;
941 pte = pmap_l3e_to_pte(l3e, va);
942 if (pte == NULL || (be64toh(*pte) & PG_V) == 0)
943 return (NULL);
944 return (pte);
945 }
946
947 int
pmap_nofault(pmap_t pmap,vm_offset_t va,vm_prot_t flags)948 pmap_nofault(pmap_t pmap, vm_offset_t va, vm_prot_t flags)
949 {
950 pt_entry_t *pte;
951 pt_entry_t startpte, origpte, newpte;
952 vm_page_t m;
953 int is_l3e;
954
955 startpte = 0;
956 retry:
957 if ((pte = pmap_nofault_pte(pmap, va, &is_l3e)) == NULL)
958 return (KERN_INVALID_ADDRESS);
959 origpte = newpte = be64toh(*pte);
960 if (startpte == 0) {
961 startpte = origpte;
962 if (((flags & VM_PROT_WRITE) && (startpte & PG_M)) ||
963 ((flags & VM_PROT_READ) && (startpte & PG_A))) {
964 pmap_invalidate_all(pmap);
965 #ifdef INVARIANTS
966 if (VERBOSE_PMAP || pmap_logging)
967 printf("%s(%p, %#lx, %#x) (%#lx) -- invalidate all\n",
968 __func__, pmap, va, flags, origpte);
969 #endif
970 return (KERN_FAILURE);
971 }
972 }
973 #ifdef INVARIANTS
974 if (VERBOSE_PMAP || pmap_logging)
975 printf("%s(%p, %#lx, %#x) (%#lx)\n", __func__, pmap, va,
976 flags, origpte);
977 #endif
978 PMAP_LOCK(pmap);
979 if ((pte = pmap_nofault_pte(pmap, va, &is_l3e)) == NULL ||
980 be64toh(*pte) != origpte) {
981 PMAP_UNLOCK(pmap);
982 return (KERN_FAILURE);
983 }
984 m = PHYS_TO_VM_PAGE(newpte & PG_FRAME);
985 MPASS(m != NULL);
986 switch (flags) {
987 case VM_PROT_READ:
988 if ((newpte & (RPTE_EAA_R|RPTE_EAA_X)) == 0)
989 goto protfail;
990 newpte |= PG_A;
991 vm_page_aflag_set(m, PGA_REFERENCED);
992 break;
993 case VM_PROT_WRITE:
994 if ((newpte & RPTE_EAA_W) == 0)
995 goto protfail;
996 if (is_l3e)
997 goto protfail;
998 newpte |= PG_M;
999 vm_page_dirty(m);
1000 break;
1001 case VM_PROT_EXECUTE:
1002 if ((newpte & RPTE_EAA_X) == 0)
1003 goto protfail;
1004 newpte |= PG_A;
1005 vm_page_aflag_set(m, PGA_REFERENCED);
1006 break;
1007 }
1008
1009 if (!atomic_cmpset_long(pte, htobe64(origpte), htobe64(newpte)))
1010 goto retry;
1011 ptesync();
1012 PMAP_UNLOCK(pmap);
1013 if (startpte == newpte)
1014 return (KERN_FAILURE);
1015 return (0);
1016 protfail:
1017 PMAP_UNLOCK(pmap);
1018 return (KERN_PROTECTION_FAILURE);
1019 }
1020
1021 /*
1022 * Returns TRUE if the given page is mapped individually or as part of
1023 * a 2mpage. Otherwise, returns FALSE.
1024 */
1025 boolean_t
mmu_radix_page_is_mapped(vm_page_t m)1026 mmu_radix_page_is_mapped(vm_page_t m)
1027 {
1028 struct rwlock *lock;
1029 boolean_t rv;
1030
1031 if ((m->oflags & VPO_UNMANAGED) != 0)
1032 return (FALSE);
1033 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
1034 rw_rlock(lock);
1035 rv = !TAILQ_EMPTY(&m->md.pv_list) ||
1036 ((m->flags & PG_FICTITIOUS) == 0 &&
1037 !TAILQ_EMPTY(&pa_to_pvh(VM_PAGE_TO_PHYS(m))->pv_list));
1038 rw_runlock(lock);
1039 return (rv);
1040 }
1041
1042 /*
1043 * Determine the appropriate bits to set in a PTE or PDE for a specified
1044 * caching mode.
1045 */
1046 static int
pmap_cache_bits(vm_memattr_t ma)1047 pmap_cache_bits(vm_memattr_t ma)
1048 {
1049 if (ma != VM_MEMATTR_DEFAULT) {
1050 switch (ma) {
1051 case VM_MEMATTR_UNCACHEABLE:
1052 return (RPTE_ATTR_GUARDEDIO);
1053 case VM_MEMATTR_CACHEABLE:
1054 return (RPTE_ATTR_MEM);
1055 case VM_MEMATTR_WRITE_BACK:
1056 case VM_MEMATTR_PREFETCHABLE:
1057 case VM_MEMATTR_WRITE_COMBINING:
1058 return (RPTE_ATTR_UNGUARDEDIO);
1059 }
1060 }
1061 return (0);
1062 }
1063
1064 static void
pmap_invalidate_page(pmap_t pmap,vm_offset_t start)1065 pmap_invalidate_page(pmap_t pmap, vm_offset_t start)
1066 {
1067 ptesync();
1068 if (pmap == kernel_pmap)
1069 radix_tlbie_invlpg_kernel_4k(start);
1070 else
1071 radix_tlbie_invlpg_user_4k(pmap->pm_pid, start);
1072 ttusync();
1073 }
1074
1075 static void
pmap_invalidate_page_2m(pmap_t pmap,vm_offset_t start)1076 pmap_invalidate_page_2m(pmap_t pmap, vm_offset_t start)
1077 {
1078 ptesync();
1079 if (pmap == kernel_pmap)
1080 radix_tlbie_invlpg_kernel_2m(start);
1081 else
1082 radix_tlbie_invlpg_user_2m(pmap->pm_pid, start);
1083 ttusync();
1084 }
1085
1086 static void
pmap_invalidate_pwc(pmap_t pmap)1087 pmap_invalidate_pwc(pmap_t pmap)
1088 {
1089 ptesync();
1090 if (pmap == kernel_pmap)
1091 radix_tlbie_invlpwc_kernel();
1092 else
1093 radix_tlbie_invlpwc_user(pmap->pm_pid);
1094 ttusync();
1095 }
1096
1097 static void
pmap_invalidate_range(pmap_t pmap,vm_offset_t start,vm_offset_t end)1098 pmap_invalidate_range(pmap_t pmap, vm_offset_t start, vm_offset_t end)
1099 {
1100 if (((start - end) >> PAGE_SHIFT) > 8) {
1101 pmap_invalidate_all(pmap);
1102 return;
1103 }
1104 ptesync();
1105 if (pmap == kernel_pmap) {
1106 while (start < end) {
1107 radix_tlbie_invlpg_kernel_4k(start);
1108 start += PAGE_SIZE;
1109 }
1110 } else {
1111 while (start < end) {
1112 radix_tlbie_invlpg_user_4k(pmap->pm_pid, start);
1113 start += PAGE_SIZE;
1114 }
1115 }
1116 ttusync();
1117 }
1118
1119 static void
pmap_invalidate_all(pmap_t pmap)1120 pmap_invalidate_all(pmap_t pmap)
1121 {
1122 ptesync();
1123 if (pmap == kernel_pmap)
1124 radix_tlbie_flush_kernel();
1125 else
1126 radix_tlbie_flush_user(pmap->pm_pid);
1127 ttusync();
1128 }
1129
1130 static void
pmap_invalidate_l3e_page(pmap_t pmap,vm_offset_t va,pml3_entry_t l3e)1131 pmap_invalidate_l3e_page(pmap_t pmap, vm_offset_t va, pml3_entry_t l3e)
1132 {
1133
1134 /*
1135 * When the PDE has PG_PROMOTED set, the 2MB page mapping was created
1136 * by a promotion that did not invalidate the 512 4KB page mappings
1137 * that might exist in the TLB. Consequently, at this point, the TLB
1138 * may hold both 4KB and 2MB page mappings for the address range [va,
1139 * va + L3_PAGE_SIZE). Therefore, the entire range must be invalidated here.
1140 * In contrast, when PG_PROMOTED is clear, the TLB will not hold any
1141 * 4KB page mappings for the address range [va, va + L3_PAGE_SIZE), and so a
1142 * single INVLPG suffices to invalidate the 2MB page mapping from the
1143 * TLB.
1144 */
1145 ptesync();
1146 if ((l3e & PG_PROMOTED) != 0)
1147 pmap_invalidate_range(pmap, va, va + L3_PAGE_SIZE - 1);
1148 else
1149 pmap_invalidate_page_2m(pmap, va);
1150
1151 pmap_invalidate_pwc(pmap);
1152 }
1153
1154 static __inline struct pv_chunk *
pv_to_chunk(pv_entry_t pv)1155 pv_to_chunk(pv_entry_t pv)
1156 {
1157
1158 return ((struct pv_chunk *)((uintptr_t)pv & ~(uintptr_t)PAGE_MASK));
1159 }
1160
1161 #define PV_PMAP(pv) (pv_to_chunk(pv)->pc_pmap)
1162
1163 #define PC_FREE0 0xfffffffffffffffful
1164 #define PC_FREE1 0x3ffffffffffffffful
1165
1166 static const uint64_t pc_freemask[_NPCM] = { PC_FREE0, PC_FREE1 };
1167
1168 /*
1169 * Ensure that the number of spare PV entries in the specified pmap meets or
1170 * exceeds the given count, "needed".
1171 *
1172 * The given PV list lock may be released.
1173 */
1174 static void
reserve_pv_entries(pmap_t pmap,int needed,struct rwlock ** lockp)1175 reserve_pv_entries(pmap_t pmap, int needed, struct rwlock **lockp)
1176 {
1177 struct pch new_tail;
1178 struct pv_chunk *pc;
1179 vm_page_t m;
1180 int avail, free;
1181 bool reclaimed;
1182
1183 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1184 KASSERT(lockp != NULL, ("reserve_pv_entries: lockp is NULL"));
1185
1186 /*
1187 * Newly allocated PV chunks must be stored in a private list until
1188 * the required number of PV chunks have been allocated. Otherwise,
1189 * reclaim_pv_chunk() could recycle one of these chunks. In
1190 * contrast, these chunks must be added to the pmap upon allocation.
1191 */
1192 TAILQ_INIT(&new_tail);
1193 retry:
1194 avail = 0;
1195 TAILQ_FOREACH(pc, &pmap->pm_pvchunk, pc_list) {
1196 // if ((cpu_feature2 & CPUID2_POPCNT) == 0)
1197 bit_count((bitstr_t *)pc->pc_map, 0,
1198 sizeof(pc->pc_map) * NBBY, &free);
1199 #if 0
1200 free = popcnt_pc_map_pq(pc->pc_map);
1201 #endif
1202 if (free == 0)
1203 break;
1204 avail += free;
1205 if (avail >= needed)
1206 break;
1207 }
1208 for (reclaimed = false; avail < needed; avail += _NPCPV) {
1209 m = vm_page_alloc_noobj(VM_ALLOC_WIRED);
1210 if (m == NULL) {
1211 m = reclaim_pv_chunk(pmap, lockp);
1212 if (m == NULL)
1213 goto retry;
1214 reclaimed = true;
1215 }
1216 PV_STAT(atomic_add_int(&pc_chunk_count, 1));
1217 PV_STAT(atomic_add_int(&pc_chunk_allocs, 1));
1218 dump_add_page(m->phys_addr);
1219 pc = (void *)PHYS_TO_DMAP(m->phys_addr);
1220 pc->pc_pmap = pmap;
1221 pc->pc_map[0] = PC_FREE0;
1222 pc->pc_map[1] = PC_FREE1;
1223 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
1224 TAILQ_INSERT_TAIL(&new_tail, pc, pc_lru);
1225 PV_STAT(atomic_add_int(&pv_entry_spare, _NPCPV));
1226
1227 /*
1228 * The reclaim might have freed a chunk from the current pmap.
1229 * If that chunk contained available entries, we need to
1230 * re-count the number of available entries.
1231 */
1232 if (reclaimed)
1233 goto retry;
1234 }
1235 if (!TAILQ_EMPTY(&new_tail)) {
1236 mtx_lock(&pv_chunks_mutex);
1237 TAILQ_CONCAT(&pv_chunks, &new_tail, pc_lru);
1238 mtx_unlock(&pv_chunks_mutex);
1239 }
1240 }
1241
1242 /*
1243 * First find and then remove the pv entry for the specified pmap and virtual
1244 * address from the specified pv list. Returns the pv entry if found and NULL
1245 * otherwise. This operation can be performed on pv lists for either 4KB or
1246 * 2MB page mappings.
1247 */
1248 static __inline pv_entry_t
pmap_pvh_remove(struct md_page * pvh,pmap_t pmap,vm_offset_t va)1249 pmap_pvh_remove(struct md_page *pvh, pmap_t pmap, vm_offset_t va)
1250 {
1251 pv_entry_t pv;
1252
1253 TAILQ_FOREACH(pv, &pvh->pv_list, pv_link) {
1254 #ifdef INVARIANTS
1255 if (PV_PMAP(pv) == NULL) {
1256 printf("corrupted pv_chunk/pv %p\n", pv);
1257 printf("pv_chunk: %64D\n", pv_to_chunk(pv), ":");
1258 }
1259 MPASS(PV_PMAP(pv) != NULL);
1260 MPASS(pv->pv_va != 0);
1261 #endif
1262 if (pmap == PV_PMAP(pv) && va == pv->pv_va) {
1263 TAILQ_REMOVE(&pvh->pv_list, pv, pv_link);
1264 pvh->pv_gen++;
1265 break;
1266 }
1267 }
1268 return (pv);
1269 }
1270
1271 /*
1272 * After demotion from a 2MB page mapping to 512 4KB page mappings,
1273 * destroy the pv entry for the 2MB page mapping and reinstantiate the pv
1274 * entries for each of the 4KB page mappings.
1275 */
1276 static void
pmap_pv_demote_l3e(pmap_t pmap,vm_offset_t va,vm_paddr_t pa,struct rwlock ** lockp)1277 pmap_pv_demote_l3e(pmap_t pmap, vm_offset_t va, vm_paddr_t pa,
1278 struct rwlock **lockp)
1279 {
1280 struct md_page *pvh;
1281 struct pv_chunk *pc;
1282 pv_entry_t pv;
1283 vm_offset_t va_last;
1284 vm_page_t m;
1285 int bit, field;
1286
1287 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1288 KASSERT((pa & L3_PAGE_MASK) == 0,
1289 ("pmap_pv_demote_pde: pa is not 2mpage aligned"));
1290 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa);
1291
1292 /*
1293 * Transfer the 2mpage's pv entry for this mapping to the first
1294 * page's pv list. Once this transfer begins, the pv list lock
1295 * must not be released until the last pv entry is reinstantiated.
1296 */
1297 pvh = pa_to_pvh(pa);
1298 va = trunc_2mpage(va);
1299 pv = pmap_pvh_remove(pvh, pmap, va);
1300 KASSERT(pv != NULL, ("pmap_pv_demote_pde: pv not found"));
1301 m = PHYS_TO_VM_PAGE(pa);
1302 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_link);
1303
1304 m->md.pv_gen++;
1305 /* Instantiate the remaining NPTEPG - 1 pv entries. */
1306 PV_STAT(atomic_add_long(&pv_entry_allocs, NPTEPG - 1));
1307 va_last = va + L3_PAGE_SIZE - PAGE_SIZE;
1308 for (;;) {
1309 pc = TAILQ_FIRST(&pmap->pm_pvchunk);
1310 KASSERT(pc->pc_map[0] != 0 || pc->pc_map[1] != 0
1311 , ("pmap_pv_demote_pde: missing spare"));
1312 for (field = 0; field < _NPCM; field++) {
1313 while (pc->pc_map[field]) {
1314 bit = cnttzd(pc->pc_map[field]);
1315 pc->pc_map[field] &= ~(1ul << bit);
1316 pv = &pc->pc_pventry[field * 64 + bit];
1317 va += PAGE_SIZE;
1318 pv->pv_va = va;
1319 m++;
1320 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
1321 ("pmap_pv_demote_pde: page %p is not managed", m));
1322 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_link);
1323
1324 m->md.pv_gen++;
1325 if (va == va_last)
1326 goto out;
1327 }
1328 }
1329 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
1330 TAILQ_INSERT_TAIL(&pmap->pm_pvchunk, pc, pc_list);
1331 }
1332 out:
1333 if (pc->pc_map[0] == 0 && pc->pc_map[1] == 0) {
1334 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
1335 TAILQ_INSERT_TAIL(&pmap->pm_pvchunk, pc, pc_list);
1336 }
1337 PV_STAT(atomic_add_long(&pv_entry_count, NPTEPG - 1));
1338 PV_STAT(atomic_subtract_int(&pv_entry_spare, NPTEPG - 1));
1339 }
1340
1341 static void
reclaim_pv_chunk_leave_pmap(pmap_t pmap,pmap_t locked_pmap)1342 reclaim_pv_chunk_leave_pmap(pmap_t pmap, pmap_t locked_pmap)
1343 {
1344
1345 if (pmap == NULL)
1346 return;
1347 pmap_invalidate_all(pmap);
1348 if (pmap != locked_pmap)
1349 PMAP_UNLOCK(pmap);
1350 }
1351
1352 /*
1353 * We are in a serious low memory condition. Resort to
1354 * drastic measures to free some pages so we can allocate
1355 * another pv entry chunk.
1356 *
1357 * Returns NULL if PV entries were reclaimed from the specified pmap.
1358 *
1359 * We do not, however, unmap 2mpages because subsequent accesses will
1360 * allocate per-page pv entries until repromotion occurs, thereby
1361 * exacerbating the shortage of free pv entries.
1362 */
1363 static int active_reclaims = 0;
1364 static vm_page_t
reclaim_pv_chunk(pmap_t locked_pmap,struct rwlock ** lockp)1365 reclaim_pv_chunk(pmap_t locked_pmap, struct rwlock **lockp)
1366 {
1367 struct pv_chunk *pc, *pc_marker, *pc_marker_end;
1368 struct pv_chunk_header pc_marker_b, pc_marker_end_b;
1369 struct md_page *pvh;
1370 pml3_entry_t *l3e;
1371 pmap_t next_pmap, pmap;
1372 pt_entry_t *pte, tpte;
1373 pv_entry_t pv;
1374 vm_offset_t va;
1375 vm_page_t m, m_pc;
1376 struct spglist free;
1377 uint64_t inuse;
1378 int bit, field, freed;
1379
1380 PMAP_LOCK_ASSERT(locked_pmap, MA_OWNED);
1381 KASSERT(lockp != NULL, ("reclaim_pv_chunk: lockp is NULL"));
1382 pmap = NULL;
1383 m_pc = NULL;
1384 SLIST_INIT(&free);
1385 bzero(&pc_marker_b, sizeof(pc_marker_b));
1386 bzero(&pc_marker_end_b, sizeof(pc_marker_end_b));
1387 pc_marker = (struct pv_chunk *)&pc_marker_b;
1388 pc_marker_end = (struct pv_chunk *)&pc_marker_end_b;
1389
1390 mtx_lock(&pv_chunks_mutex);
1391 active_reclaims++;
1392 TAILQ_INSERT_HEAD(&pv_chunks, pc_marker, pc_lru);
1393 TAILQ_INSERT_TAIL(&pv_chunks, pc_marker_end, pc_lru);
1394 while ((pc = TAILQ_NEXT(pc_marker, pc_lru)) != pc_marker_end &&
1395 SLIST_EMPTY(&free)) {
1396 next_pmap = pc->pc_pmap;
1397 if (next_pmap == NULL) {
1398 /*
1399 * The next chunk is a marker. However, it is
1400 * not our marker, so active_reclaims must be
1401 * > 1. Consequently, the next_chunk code
1402 * will not rotate the pv_chunks list.
1403 */
1404 goto next_chunk;
1405 }
1406 mtx_unlock(&pv_chunks_mutex);
1407
1408 /*
1409 * A pv_chunk can only be removed from the pc_lru list
1410 * when both pc_chunks_mutex is owned and the
1411 * corresponding pmap is locked.
1412 */
1413 if (pmap != next_pmap) {
1414 reclaim_pv_chunk_leave_pmap(pmap, locked_pmap);
1415 pmap = next_pmap;
1416 /* Avoid deadlock and lock recursion. */
1417 if (pmap > locked_pmap) {
1418 RELEASE_PV_LIST_LOCK(lockp);
1419 PMAP_LOCK(pmap);
1420 mtx_lock(&pv_chunks_mutex);
1421 continue;
1422 } else if (pmap != locked_pmap) {
1423 if (PMAP_TRYLOCK(pmap)) {
1424 mtx_lock(&pv_chunks_mutex);
1425 continue;
1426 } else {
1427 pmap = NULL; /* pmap is not locked */
1428 mtx_lock(&pv_chunks_mutex);
1429 pc = TAILQ_NEXT(pc_marker, pc_lru);
1430 if (pc == NULL ||
1431 pc->pc_pmap != next_pmap)
1432 continue;
1433 goto next_chunk;
1434 }
1435 }
1436 }
1437
1438 /*
1439 * Destroy every non-wired, 4 KB page mapping in the chunk.
1440 */
1441 freed = 0;
1442 for (field = 0; field < _NPCM; field++) {
1443 for (inuse = ~pc->pc_map[field] & pc_freemask[field];
1444 inuse != 0; inuse &= ~(1UL << bit)) {
1445 bit = cnttzd(inuse);
1446 pv = &pc->pc_pventry[field * 64 + bit];
1447 va = pv->pv_va;
1448 l3e = pmap_pml3e(pmap, va);
1449 if ((be64toh(*l3e) & RPTE_LEAF) != 0)
1450 continue;
1451 pte = pmap_l3e_to_pte(l3e, va);
1452 if ((be64toh(*pte) & PG_W) != 0)
1453 continue;
1454 tpte = be64toh(pte_load_clear(pte));
1455 m = PHYS_TO_VM_PAGE(tpte & PG_FRAME);
1456 if ((tpte & (PG_M | PG_RW)) == (PG_M | PG_RW))
1457 vm_page_dirty(m);
1458 if ((tpte & PG_A) != 0)
1459 vm_page_aflag_set(m, PGA_REFERENCED);
1460 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
1461 TAILQ_REMOVE(&m->md.pv_list, pv, pv_link);
1462
1463 m->md.pv_gen++;
1464 if (TAILQ_EMPTY(&m->md.pv_list) &&
1465 (m->flags & PG_FICTITIOUS) == 0) {
1466 pvh = pa_to_pvh(VM_PAGE_TO_PHYS(m));
1467 if (TAILQ_EMPTY(&pvh->pv_list)) {
1468 vm_page_aflag_clear(m,
1469 PGA_WRITEABLE);
1470 }
1471 }
1472 pc->pc_map[field] |= 1UL << bit;
1473 pmap_unuse_pt(pmap, va, be64toh(*l3e), &free);
1474 freed++;
1475 }
1476 }
1477 if (freed == 0) {
1478 mtx_lock(&pv_chunks_mutex);
1479 goto next_chunk;
1480 }
1481 /* Every freed mapping is for a 4 KB page. */
1482 pmap_resident_count_dec(pmap, freed);
1483 PV_STAT(atomic_add_long(&pv_entry_frees, freed));
1484 PV_STAT(atomic_add_int(&pv_entry_spare, freed));
1485 PV_STAT(atomic_subtract_long(&pv_entry_count, freed));
1486 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
1487 if (pc->pc_map[0] == PC_FREE0 && pc->pc_map[1] == PC_FREE1) {
1488 PV_STAT(atomic_subtract_int(&pv_entry_spare, _NPCPV));
1489 PV_STAT(atomic_subtract_int(&pc_chunk_count, 1));
1490 PV_STAT(atomic_add_int(&pc_chunk_frees, 1));
1491 /* Entire chunk is free; return it. */
1492 m_pc = PHYS_TO_VM_PAGE(DMAP_TO_PHYS((vm_offset_t)pc));
1493 dump_drop_page(m_pc->phys_addr);
1494 mtx_lock(&pv_chunks_mutex);
1495 TAILQ_REMOVE(&pv_chunks, pc, pc_lru);
1496 break;
1497 }
1498 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
1499 mtx_lock(&pv_chunks_mutex);
1500 /* One freed pv entry in locked_pmap is sufficient. */
1501 if (pmap == locked_pmap)
1502 break;
1503 next_chunk:
1504 TAILQ_REMOVE(&pv_chunks, pc_marker, pc_lru);
1505 TAILQ_INSERT_AFTER(&pv_chunks, pc, pc_marker, pc_lru);
1506 if (active_reclaims == 1 && pmap != NULL) {
1507 /*
1508 * Rotate the pv chunks list so that we do not
1509 * scan the same pv chunks that could not be
1510 * freed (because they contained a wired
1511 * and/or superpage mapping) on every
1512 * invocation of reclaim_pv_chunk().
1513 */
1514 while ((pc = TAILQ_FIRST(&pv_chunks)) != pc_marker) {
1515 MPASS(pc->pc_pmap != NULL);
1516 TAILQ_REMOVE(&pv_chunks, pc, pc_lru);
1517 TAILQ_INSERT_TAIL(&pv_chunks, pc, pc_lru);
1518 }
1519 }
1520 }
1521 TAILQ_REMOVE(&pv_chunks, pc_marker, pc_lru);
1522 TAILQ_REMOVE(&pv_chunks, pc_marker_end, pc_lru);
1523 active_reclaims--;
1524 mtx_unlock(&pv_chunks_mutex);
1525 reclaim_pv_chunk_leave_pmap(pmap, locked_pmap);
1526 if (m_pc == NULL && !SLIST_EMPTY(&free)) {
1527 m_pc = SLIST_FIRST(&free);
1528 SLIST_REMOVE_HEAD(&free, plinks.s.ss);
1529 /* Recycle a freed page table page. */
1530 m_pc->ref_count = 1;
1531 }
1532 vm_page_free_pages_toq(&free, true);
1533 return (m_pc);
1534 }
1535
1536 /*
1537 * free the pv_entry back to the free list
1538 */
1539 static void
free_pv_entry(pmap_t pmap,pv_entry_t pv)1540 free_pv_entry(pmap_t pmap, pv_entry_t pv)
1541 {
1542 struct pv_chunk *pc;
1543 int idx, field, bit;
1544
1545 #ifdef VERBOSE_PV
1546 if (pmap != kernel_pmap)
1547 printf("%s(%p, %p)\n", __func__, pmap, pv);
1548 #endif
1549 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1550 PV_STAT(atomic_add_long(&pv_entry_frees, 1));
1551 PV_STAT(atomic_add_int(&pv_entry_spare, 1));
1552 PV_STAT(atomic_subtract_long(&pv_entry_count, 1));
1553 pc = pv_to_chunk(pv);
1554 idx = pv - &pc->pc_pventry[0];
1555 field = idx / 64;
1556 bit = idx % 64;
1557 pc->pc_map[field] |= 1ul << bit;
1558 if (pc->pc_map[0] != PC_FREE0 || pc->pc_map[1] != PC_FREE1) {
1559 /* 98% of the time, pc is already at the head of the list. */
1560 if (__predict_false(pc != TAILQ_FIRST(&pmap->pm_pvchunk))) {
1561 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
1562 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
1563 }
1564 return;
1565 }
1566 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
1567 free_pv_chunk(pc);
1568 }
1569
1570 static void
free_pv_chunk(struct pv_chunk * pc)1571 free_pv_chunk(struct pv_chunk *pc)
1572 {
1573 vm_page_t m;
1574
1575 mtx_lock(&pv_chunks_mutex);
1576 TAILQ_REMOVE(&pv_chunks, pc, pc_lru);
1577 mtx_unlock(&pv_chunks_mutex);
1578 PV_STAT(atomic_subtract_int(&pv_entry_spare, _NPCPV));
1579 PV_STAT(atomic_subtract_int(&pc_chunk_count, 1));
1580 PV_STAT(atomic_add_int(&pc_chunk_frees, 1));
1581 /* entire chunk is free, return it */
1582 m = PHYS_TO_VM_PAGE(DMAP_TO_PHYS((vm_offset_t)pc));
1583 dump_drop_page(m->phys_addr);
1584 vm_page_unwire_noq(m);
1585 vm_page_free(m);
1586 }
1587
1588 /*
1589 * Returns a new PV entry, allocating a new PV chunk from the system when
1590 * needed. If this PV chunk allocation fails and a PV list lock pointer was
1591 * given, a PV chunk is reclaimed from an arbitrary pmap. Otherwise, NULL is
1592 * returned.
1593 *
1594 * The given PV list lock may be released.
1595 */
1596 static pv_entry_t
get_pv_entry(pmap_t pmap,struct rwlock ** lockp)1597 get_pv_entry(pmap_t pmap, struct rwlock **lockp)
1598 {
1599 int bit, field;
1600 pv_entry_t pv;
1601 struct pv_chunk *pc;
1602 vm_page_t m;
1603
1604 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1605 PV_STAT(atomic_add_long(&pv_entry_allocs, 1));
1606 retry:
1607 pc = TAILQ_FIRST(&pmap->pm_pvchunk);
1608 if (pc != NULL) {
1609 for (field = 0; field < _NPCM; field++) {
1610 if (pc->pc_map[field]) {
1611 bit = cnttzd(pc->pc_map[field]);
1612 break;
1613 }
1614 }
1615 if (field < _NPCM) {
1616 pv = &pc->pc_pventry[field * 64 + bit];
1617 pc->pc_map[field] &= ~(1ul << bit);
1618 /* If this was the last item, move it to tail */
1619 if (pc->pc_map[0] == 0 && pc->pc_map[1] == 0) {
1620 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
1621 TAILQ_INSERT_TAIL(&pmap->pm_pvchunk, pc,
1622 pc_list);
1623 }
1624 PV_STAT(atomic_add_long(&pv_entry_count, 1));
1625 PV_STAT(atomic_subtract_int(&pv_entry_spare, 1));
1626 MPASS(PV_PMAP(pv) != NULL);
1627 return (pv);
1628 }
1629 }
1630 /* No free items, allocate another chunk */
1631 m = vm_page_alloc_noobj(VM_ALLOC_WIRED);
1632 if (m == NULL) {
1633 if (lockp == NULL) {
1634 PV_STAT(pc_chunk_tryfail++);
1635 return (NULL);
1636 }
1637 m = reclaim_pv_chunk(pmap, lockp);
1638 if (m == NULL)
1639 goto retry;
1640 }
1641 PV_STAT(atomic_add_int(&pc_chunk_count, 1));
1642 PV_STAT(atomic_add_int(&pc_chunk_allocs, 1));
1643 dump_add_page(m->phys_addr);
1644 pc = (void *)PHYS_TO_DMAP(m->phys_addr);
1645 pc->pc_pmap = pmap;
1646 pc->pc_map[0] = PC_FREE0 & ~1ul; /* preallocated bit 0 */
1647 pc->pc_map[1] = PC_FREE1;
1648 mtx_lock(&pv_chunks_mutex);
1649 TAILQ_INSERT_TAIL(&pv_chunks, pc, pc_lru);
1650 mtx_unlock(&pv_chunks_mutex);
1651 pv = &pc->pc_pventry[0];
1652 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
1653 PV_STAT(atomic_add_long(&pv_entry_count, 1));
1654 PV_STAT(atomic_add_int(&pv_entry_spare, _NPCPV - 1));
1655 MPASS(PV_PMAP(pv) != NULL);
1656 return (pv);
1657 }
1658
1659 #if VM_NRESERVLEVEL > 0
1660 /*
1661 * After promotion from 512 4KB page mappings to a single 2MB page mapping,
1662 * replace the many pv entries for the 4KB page mappings by a single pv entry
1663 * for the 2MB page mapping.
1664 */
1665 static void
pmap_pv_promote_l3e(pmap_t pmap,vm_offset_t va,vm_paddr_t pa,struct rwlock ** lockp)1666 pmap_pv_promote_l3e(pmap_t pmap, vm_offset_t va, vm_paddr_t pa,
1667 struct rwlock **lockp)
1668 {
1669 struct md_page *pvh;
1670 pv_entry_t pv;
1671 vm_offset_t va_last;
1672 vm_page_t m;
1673
1674 KASSERT((pa & L3_PAGE_MASK) == 0,
1675 ("pmap_pv_promote_pde: pa is not 2mpage aligned"));
1676 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa);
1677
1678 /*
1679 * Transfer the first page's pv entry for this mapping to the 2mpage's
1680 * pv list. Aside from avoiding the cost of a call to get_pv_entry(),
1681 * a transfer avoids the possibility that get_pv_entry() calls
1682 * reclaim_pv_chunk() and that reclaim_pv_chunk() removes one of the
1683 * mappings that is being promoted.
1684 */
1685 m = PHYS_TO_VM_PAGE(pa);
1686 va = trunc_2mpage(va);
1687 pv = pmap_pvh_remove(&m->md, pmap, va);
1688 KASSERT(pv != NULL, ("pmap_pv_promote_pde: pv not found"));
1689 pvh = pa_to_pvh(pa);
1690 TAILQ_INSERT_TAIL(&pvh->pv_list, pv, pv_link);
1691 pvh->pv_gen++;
1692 /* Free the remaining NPTEPG - 1 pv entries. */
1693 va_last = va + L3_PAGE_SIZE - PAGE_SIZE;
1694 do {
1695 m++;
1696 va += PAGE_SIZE;
1697 pmap_pvh_free(&m->md, pmap, va);
1698 } while (va < va_last);
1699 }
1700 #endif /* VM_NRESERVLEVEL > 0 */
1701
1702 /*
1703 * First find and then destroy the pv entry for the specified pmap and virtual
1704 * address. This operation can be performed on pv lists for either 4KB or 2MB
1705 * page mappings.
1706 */
1707 static void
pmap_pvh_free(struct md_page * pvh,pmap_t pmap,vm_offset_t va)1708 pmap_pvh_free(struct md_page *pvh, pmap_t pmap, vm_offset_t va)
1709 {
1710 pv_entry_t pv;
1711
1712 pv = pmap_pvh_remove(pvh, pmap, va);
1713 KASSERT(pv != NULL, ("pmap_pvh_free: pv not found"));
1714 free_pv_entry(pmap, pv);
1715 }
1716
1717 /*
1718 * Conditionally create the PV entry for a 4KB page mapping if the required
1719 * memory can be allocated without resorting to reclamation.
1720 */
1721 static boolean_t
pmap_try_insert_pv_entry(pmap_t pmap,vm_offset_t va,vm_page_t m,struct rwlock ** lockp)1722 pmap_try_insert_pv_entry(pmap_t pmap, vm_offset_t va, vm_page_t m,
1723 struct rwlock **lockp)
1724 {
1725 pv_entry_t pv;
1726
1727 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1728 /* Pass NULL instead of the lock pointer to disable reclamation. */
1729 if ((pv = get_pv_entry(pmap, NULL)) != NULL) {
1730 pv->pv_va = va;
1731 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
1732 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_link);
1733 m->md.pv_gen++;
1734 return (TRUE);
1735 } else
1736 return (FALSE);
1737 }
1738
1739 vm_paddr_t phys_avail_debug[2 * VM_PHYSSEG_MAX];
1740 #ifdef INVARIANTS
1741 static void
validate_addr(vm_paddr_t addr,vm_size_t size)1742 validate_addr(vm_paddr_t addr, vm_size_t size)
1743 {
1744 vm_paddr_t end = addr + size;
1745 bool found = false;
1746
1747 for (int i = 0; i < 2 * phys_avail_count; i += 2) {
1748 if (addr >= phys_avail_debug[i] &&
1749 end <= phys_avail_debug[i + 1]) {
1750 found = true;
1751 break;
1752 }
1753 }
1754 KASSERT(found, ("%#lx-%#lx outside of initial phys_avail array",
1755 addr, end));
1756 }
1757 #else
validate_addr(vm_paddr_t addr,vm_size_t size)1758 static void validate_addr(vm_paddr_t addr, vm_size_t size) {}
1759 #endif
1760 #define DMAP_PAGE_BITS (RPTE_VALID | RPTE_LEAF | RPTE_EAA_MASK | PG_M | PG_A)
1761
1762 static vm_paddr_t
alloc_pt_page(void)1763 alloc_pt_page(void)
1764 {
1765 vm_paddr_t page;
1766
1767 page = allocpages(1);
1768 pagezero(PHYS_TO_DMAP(page));
1769 return (page);
1770 }
1771
1772 static void
mmu_radix_dmap_range(vm_paddr_t start,vm_paddr_t end)1773 mmu_radix_dmap_range(vm_paddr_t start, vm_paddr_t end)
1774 {
1775 pt_entry_t *pte, pteval;
1776 vm_paddr_t page;
1777
1778 if (bootverbose)
1779 printf("%s %lx -> %lx\n", __func__, start, end);
1780 while (start < end) {
1781 pteval = start | DMAP_PAGE_BITS;
1782 pte = pmap_pml1e(kernel_pmap, PHYS_TO_DMAP(start));
1783 if ((be64toh(*pte) & RPTE_VALID) == 0) {
1784 page = alloc_pt_page();
1785 pde_store(pte, page);
1786 }
1787 pte = pmap_l1e_to_l2e(pte, PHYS_TO_DMAP(start));
1788 if ((start & L2_PAGE_MASK) == 0 &&
1789 end - start >= L2_PAGE_SIZE) {
1790 start += L2_PAGE_SIZE;
1791 goto done;
1792 } else if ((be64toh(*pte) & RPTE_VALID) == 0) {
1793 page = alloc_pt_page();
1794 pde_store(pte, page);
1795 }
1796
1797 pte = pmap_l2e_to_l3e(pte, PHYS_TO_DMAP(start));
1798 if ((start & L3_PAGE_MASK) == 0 &&
1799 end - start >= L3_PAGE_SIZE) {
1800 start += L3_PAGE_SIZE;
1801 goto done;
1802 } else if ((be64toh(*pte) & RPTE_VALID) == 0) {
1803 page = alloc_pt_page();
1804 pde_store(pte, page);
1805 }
1806 pte = pmap_l3e_to_pte(pte, PHYS_TO_DMAP(start));
1807 start += PAGE_SIZE;
1808 done:
1809 pte_store(pte, pteval);
1810 }
1811 }
1812
1813 static void
mmu_radix_dmap_populate(vm_size_t hwphyssz)1814 mmu_radix_dmap_populate(vm_size_t hwphyssz)
1815 {
1816 vm_paddr_t start, end;
1817
1818 for (int i = 0; i < pregions_sz; i++) {
1819 start = pregions[i].mr_start;
1820 end = start + pregions[i].mr_size;
1821 if (hwphyssz && start >= hwphyssz)
1822 break;
1823 if (hwphyssz && hwphyssz < end)
1824 end = hwphyssz;
1825 mmu_radix_dmap_range(start, end);
1826 }
1827 }
1828
1829 static void
mmu_radix_setup_pagetables(vm_size_t hwphyssz)1830 mmu_radix_setup_pagetables(vm_size_t hwphyssz)
1831 {
1832 vm_paddr_t ptpages, pages;
1833 pt_entry_t *pte;
1834 vm_paddr_t l1phys;
1835
1836 bzero(kernel_pmap, sizeof(struct pmap));
1837 PMAP_LOCK_INIT(kernel_pmap);
1838
1839 ptpages = allocpages(3);
1840 l1phys = moea64_bootstrap_alloc(RADIX_PGD_SIZE, RADIX_PGD_SIZE);
1841 validate_addr(l1phys, RADIX_PGD_SIZE);
1842 if (bootverbose)
1843 printf("l1phys=%lx\n", l1phys);
1844 MPASS((l1phys & (RADIX_PGD_SIZE-1)) == 0);
1845 for (int i = 0; i < RADIX_PGD_SIZE/PAGE_SIZE; i++)
1846 pagezero(PHYS_TO_DMAP(l1phys + i * PAGE_SIZE));
1847 kernel_pmap->pm_pml1 = (pml1_entry_t *)PHYS_TO_DMAP(l1phys);
1848
1849 mmu_radix_dmap_populate(hwphyssz);
1850
1851 /*
1852 * Create page tables for first 128MB of KVA
1853 */
1854 pages = ptpages;
1855 pte = pmap_pml1e(kernel_pmap, VM_MIN_KERNEL_ADDRESS);
1856 *pte = htobe64(pages | RPTE_VALID | RPTE_SHIFT);
1857 pages += PAGE_SIZE;
1858 pte = pmap_l1e_to_l2e(pte, VM_MIN_KERNEL_ADDRESS);
1859 *pte = htobe64(pages | RPTE_VALID | RPTE_SHIFT);
1860 pages += PAGE_SIZE;
1861 pte = pmap_l2e_to_l3e(pte, VM_MIN_KERNEL_ADDRESS);
1862 /*
1863 * the kernel page table pages need to be preserved in
1864 * phys_avail and not overlap with previous allocations
1865 */
1866 pages = allocpages(nkpt);
1867 if (bootverbose) {
1868 printf("phys_avail after dmap populate and nkpt allocation\n");
1869 for (int j = 0; j < 2 * phys_avail_count; j+=2)
1870 printf("phys_avail[%d]=%08lx - phys_avail[%d]=%08lx\n",
1871 j, phys_avail[j], j + 1, phys_avail[j + 1]);
1872 }
1873 KPTphys = pages;
1874 for (int i = 0; i < nkpt; i++, pte++, pages += PAGE_SIZE)
1875 *pte = htobe64(pages | RPTE_VALID | RPTE_SHIFT);
1876 kernel_vm_end = VM_MIN_KERNEL_ADDRESS + nkpt * L3_PAGE_SIZE;
1877 if (bootverbose)
1878 printf("kernel_pmap pml1 %p\n", kernel_pmap->pm_pml1);
1879 /*
1880 * Add a physical memory segment (vm_phys_seg) corresponding to the
1881 * preallocated kernel page table pages so that vm_page structures
1882 * representing these pages will be created. The vm_page structures
1883 * are required for promotion of the corresponding kernel virtual
1884 * addresses to superpage mappings.
1885 */
1886 vm_phys_add_seg(KPTphys, KPTphys + ptoa(nkpt));
1887 }
1888
1889 static void
mmu_radix_early_bootstrap(vm_offset_t start,vm_offset_t end)1890 mmu_radix_early_bootstrap(vm_offset_t start, vm_offset_t end)
1891 {
1892 vm_paddr_t kpstart, kpend;
1893 vm_size_t physsz, hwphyssz;
1894 //uint64_t l2virt;
1895 int rm_pavail, proctab_size;
1896 int i, j;
1897
1898 kpstart = start & ~DMAP_BASE_ADDRESS;
1899 kpend = end & ~DMAP_BASE_ADDRESS;
1900
1901 /* Get physical memory regions from firmware */
1902 mem_regions(&pregions, &pregions_sz, ®ions, ®ions_sz);
1903 CTR0(KTR_PMAP, "mmu_radix_early_bootstrap: physical memory");
1904
1905 if (2 * VM_PHYSSEG_MAX < regions_sz)
1906 panic("mmu_radix_early_bootstrap: phys_avail too small");
1907
1908 if (bootverbose)
1909 for (int i = 0; i < regions_sz; i++)
1910 printf("regions[%d].mr_start=%lx regions[%d].mr_size=%lx\n",
1911 i, regions[i].mr_start, i, regions[i].mr_size);
1912 /*
1913 * XXX workaround a simulator bug
1914 */
1915 for (int i = 0; i < regions_sz; i++)
1916 if (regions[i].mr_start & PAGE_MASK) {
1917 regions[i].mr_start += PAGE_MASK;
1918 regions[i].mr_start &= ~PAGE_MASK;
1919 regions[i].mr_size &= ~PAGE_MASK;
1920 }
1921 if (bootverbose)
1922 for (int i = 0; i < pregions_sz; i++)
1923 printf("pregions[%d].mr_start=%lx pregions[%d].mr_size=%lx\n",
1924 i, pregions[i].mr_start, i, pregions[i].mr_size);
1925
1926 phys_avail_count = 0;
1927 physsz = 0;
1928 hwphyssz = 0;
1929 TUNABLE_ULONG_FETCH("hw.physmem", (u_long *) &hwphyssz);
1930 for (i = 0, j = 0; i < regions_sz; i++) {
1931 if (bootverbose)
1932 printf("regions[%d].mr_start=%016lx regions[%d].mr_size=%016lx\n",
1933 i, regions[i].mr_start, i, regions[i].mr_size);
1934
1935 if (regions[i].mr_size < PAGE_SIZE)
1936 continue;
1937
1938 if (hwphyssz != 0 &&
1939 (physsz + regions[i].mr_size) >= hwphyssz) {
1940 if (physsz < hwphyssz) {
1941 phys_avail[j] = regions[i].mr_start;
1942 phys_avail[j + 1] = regions[i].mr_start +
1943 (hwphyssz - physsz);
1944 physsz = hwphyssz;
1945 phys_avail_count++;
1946 dump_avail[j] = phys_avail[j];
1947 dump_avail[j + 1] = phys_avail[j + 1];
1948 }
1949 break;
1950 }
1951 phys_avail[j] = regions[i].mr_start;
1952 phys_avail[j + 1] = regions[i].mr_start + regions[i].mr_size;
1953 dump_avail[j] = phys_avail[j];
1954 dump_avail[j + 1] = phys_avail[j + 1];
1955
1956 phys_avail_count++;
1957 physsz += regions[i].mr_size;
1958 j += 2;
1959 }
1960
1961 /* Check for overlap with the kernel and exception vectors */
1962 rm_pavail = 0;
1963 for (j = 0; j < 2 * phys_avail_count; j+=2) {
1964 if (phys_avail[j] < EXC_LAST)
1965 phys_avail[j] += EXC_LAST;
1966
1967 if (phys_avail[j] >= kpstart &&
1968 phys_avail[j + 1] <= kpend) {
1969 phys_avail[j] = phys_avail[j + 1] = ~0;
1970 rm_pavail++;
1971 continue;
1972 }
1973
1974 if (kpstart >= phys_avail[j] &&
1975 kpstart < phys_avail[j + 1]) {
1976 if (kpend < phys_avail[j + 1]) {
1977 phys_avail[2 * phys_avail_count] =
1978 (kpend & ~PAGE_MASK) + PAGE_SIZE;
1979 phys_avail[2 * phys_avail_count + 1] =
1980 phys_avail[j + 1];
1981 phys_avail_count++;
1982 }
1983
1984 phys_avail[j + 1] = kpstart & ~PAGE_MASK;
1985 }
1986
1987 if (kpend >= phys_avail[j] &&
1988 kpend < phys_avail[j + 1]) {
1989 if (kpstart > phys_avail[j]) {
1990 phys_avail[2 * phys_avail_count] = phys_avail[j];
1991 phys_avail[2 * phys_avail_count + 1] =
1992 kpstart & ~PAGE_MASK;
1993 phys_avail_count++;
1994 }
1995
1996 phys_avail[j] = (kpend & ~PAGE_MASK) +
1997 PAGE_SIZE;
1998 }
1999 }
2000 qsort(phys_avail, 2 * phys_avail_count, sizeof(phys_avail[0]), pa_cmp);
2001 for (i = 0; i < 2 * phys_avail_count; i++)
2002 phys_avail_debug[i] = phys_avail[i];
2003
2004 /* Remove physical available regions marked for removal (~0) */
2005 if (rm_pavail) {
2006 phys_avail_count -= rm_pavail;
2007 for (i = 2 * phys_avail_count;
2008 i < 2*(phys_avail_count + rm_pavail); i+=2)
2009 phys_avail[i] = phys_avail[i + 1] = 0;
2010 }
2011 if (bootverbose) {
2012 printf("phys_avail ranges after filtering:\n");
2013 for (j = 0; j < 2 * phys_avail_count; j+=2)
2014 printf("phys_avail[%d]=%08lx - phys_avail[%d]=%08lx\n",
2015 j, phys_avail[j], j + 1, phys_avail[j + 1]);
2016 }
2017 physmem = btoc(physsz);
2018
2019 /* XXX assume we're running non-virtualized and
2020 * we don't support BHYVE
2021 */
2022 if (isa3_pid_bits == 0)
2023 isa3_pid_bits = 20;
2024 parttab_phys = moea64_bootstrap_alloc(PARTTAB_SIZE, PARTTAB_SIZE);
2025 validate_addr(parttab_phys, PARTTAB_SIZE);
2026 for (int i = 0; i < PARTTAB_SIZE/PAGE_SIZE; i++)
2027 pagezero(PHYS_TO_DMAP(parttab_phys + i * PAGE_SIZE));
2028
2029 proctab_size = 1UL << PROCTAB_SIZE_SHIFT;
2030 proctab0pa = moea64_bootstrap_alloc(proctab_size, proctab_size);
2031 validate_addr(proctab0pa, proctab_size);
2032 for (int i = 0; i < proctab_size/PAGE_SIZE; i++)
2033 pagezero(PHYS_TO_DMAP(proctab0pa + i * PAGE_SIZE));
2034
2035 mmu_radix_setup_pagetables(hwphyssz);
2036 }
2037
2038 static void
mmu_radix_late_bootstrap(vm_offset_t start,vm_offset_t end)2039 mmu_radix_late_bootstrap(vm_offset_t start, vm_offset_t end)
2040 {
2041 int i;
2042 vm_paddr_t pa;
2043 void *dpcpu;
2044 vm_offset_t va;
2045
2046 /*
2047 * Set up the Open Firmware pmap and add its mappings if not in real
2048 * mode.
2049 */
2050 if (bootverbose)
2051 printf("%s enter\n", __func__);
2052
2053 /*
2054 * Calculate the last available physical address, and reserve the
2055 * vm_page_array (upper bound).
2056 */
2057 Maxmem = 0;
2058 for (i = 0; phys_avail[i + 1] != 0; i += 2)
2059 Maxmem = MAX(Maxmem, powerpc_btop(phys_avail[i + 1]));
2060
2061 /*
2062 * Remap any early IO mappings (console framebuffer, etc.)
2063 */
2064 bs_remap_earlyboot();
2065
2066 /*
2067 * Allocate a kernel stack with a guard page for thread0 and map it
2068 * into the kernel page map.
2069 */
2070 pa = allocpages(kstack_pages);
2071 va = virtual_avail + KSTACK_GUARD_PAGES * PAGE_SIZE;
2072 virtual_avail = va + kstack_pages * PAGE_SIZE;
2073 CTR2(KTR_PMAP, "moea64_bootstrap: kstack0 at %#x (%#x)", pa, va);
2074 thread0.td_kstack = va;
2075 for (i = 0; i < kstack_pages; i++) {
2076 mmu_radix_kenter(va, pa);
2077 pa += PAGE_SIZE;
2078 va += PAGE_SIZE;
2079 }
2080 thread0.td_kstack_pages = kstack_pages;
2081
2082 /*
2083 * Allocate virtual address space for the message buffer.
2084 */
2085 pa = msgbuf_phys = allocpages((msgbufsize + PAGE_MASK) >> PAGE_SHIFT);
2086 msgbufp = (struct msgbuf *)PHYS_TO_DMAP(pa);
2087
2088 /*
2089 * Allocate virtual address space for the dynamic percpu area.
2090 */
2091 pa = allocpages(DPCPU_SIZE >> PAGE_SHIFT);
2092 dpcpu = (void *)PHYS_TO_DMAP(pa);
2093 dpcpu_init(dpcpu, curcpu);
2094
2095 crashdumpmap = (caddr_t)virtual_avail;
2096 virtual_avail += MAXDUMPPGS * PAGE_SIZE;
2097
2098 /*
2099 * Reserve some special page table entries/VA space for temporary
2100 * mapping of pages.
2101 */
2102 }
2103
2104 static void
mmu_parttab_init(void)2105 mmu_parttab_init(void)
2106 {
2107 uint64_t ptcr;
2108
2109 isa3_parttab = (struct pate *)PHYS_TO_DMAP(parttab_phys);
2110
2111 if (bootverbose)
2112 printf("%s parttab: %p\n", __func__, isa3_parttab);
2113 ptcr = parttab_phys | (PARTTAB_SIZE_SHIFT-12);
2114 if (bootverbose)
2115 printf("setting ptcr %lx\n", ptcr);
2116 mtspr(SPR_PTCR, ptcr);
2117 }
2118
2119 static void
mmu_parttab_update(uint64_t lpid,uint64_t pagetab,uint64_t proctab)2120 mmu_parttab_update(uint64_t lpid, uint64_t pagetab, uint64_t proctab)
2121 {
2122 uint64_t prev;
2123
2124 if (bootverbose)
2125 printf("%s isa3_parttab %p lpid %lx pagetab %lx proctab %lx\n", __func__, isa3_parttab,
2126 lpid, pagetab, proctab);
2127 prev = be64toh(isa3_parttab[lpid].pagetab);
2128 isa3_parttab[lpid].pagetab = htobe64(pagetab);
2129 isa3_parttab[lpid].proctab = htobe64(proctab);
2130
2131 if (prev & PARTTAB_HR) {
2132 __asm __volatile(PPC_TLBIE_5(%0,%1,2,0,1) : :
2133 "r" (TLBIEL_INVAL_SET_LPID), "r" (lpid));
2134 __asm __volatile(PPC_TLBIE_5(%0,%1,2,1,1) : :
2135 "r" (TLBIEL_INVAL_SET_LPID), "r" (lpid));
2136 } else {
2137 __asm __volatile(PPC_TLBIE_5(%0,%1,2,0,0) : :
2138 "r" (TLBIEL_INVAL_SET_LPID), "r" (lpid));
2139 }
2140 ttusync();
2141 }
2142
2143 static void
mmu_radix_parttab_init(void)2144 mmu_radix_parttab_init(void)
2145 {
2146 uint64_t pagetab;
2147
2148 mmu_parttab_init();
2149 pagetab = RTS_SIZE | DMAP_TO_PHYS((vm_offset_t)kernel_pmap->pm_pml1) | \
2150 RADIX_PGD_INDEX_SHIFT | PARTTAB_HR;
2151 mmu_parttab_update(0, pagetab, 0);
2152 }
2153
2154 static void
mmu_radix_proctab_register(vm_paddr_t proctabpa,uint64_t table_size)2155 mmu_radix_proctab_register(vm_paddr_t proctabpa, uint64_t table_size)
2156 {
2157 uint64_t pagetab, proctab;
2158
2159 pagetab = be64toh(isa3_parttab[0].pagetab);
2160 proctab = proctabpa | table_size | PARTTAB_GR;
2161 mmu_parttab_update(0, pagetab, proctab);
2162 }
2163
2164 static void
mmu_radix_proctab_init(void)2165 mmu_radix_proctab_init(void)
2166 {
2167
2168 isa3_base_pid = 1;
2169
2170 isa3_proctab = (void*)PHYS_TO_DMAP(proctab0pa);
2171 isa3_proctab->proctab0 =
2172 htobe64(RTS_SIZE | DMAP_TO_PHYS((vm_offset_t)kernel_pmap->pm_pml1) |
2173 RADIX_PGD_INDEX_SHIFT);
2174
2175 mmu_radix_proctab_register(proctab0pa, PROCTAB_SIZE_SHIFT - 12);
2176
2177 __asm __volatile("ptesync" : : : "memory");
2178 __asm __volatile(PPC_TLBIE_5(%0,%1,2,1,1) : :
2179 "r" (TLBIEL_INVAL_SET_LPID), "r" (0));
2180 __asm __volatile("eieio; tlbsync; ptesync" : : : "memory");
2181 if (bootverbose)
2182 printf("process table %p and kernel radix PDE: %p\n",
2183 isa3_proctab, kernel_pmap->pm_pml1);
2184 mtmsr(mfmsr() | PSL_DR );
2185 mtmsr(mfmsr() & ~PSL_DR);
2186 kernel_pmap->pm_pid = isa3_base_pid;
2187 isa3_base_pid++;
2188 }
2189
2190 void
mmu_radix_advise(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,int advice)2191 mmu_radix_advise(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
2192 int advice)
2193 {
2194 struct rwlock *lock;
2195 pml1_entry_t *l1e;
2196 pml2_entry_t *l2e;
2197 pml3_entry_t oldl3e, *l3e;
2198 pt_entry_t *pte;
2199 vm_offset_t va, va_next;
2200 vm_page_t m;
2201 boolean_t anychanged;
2202
2203 if (advice != MADV_DONTNEED && advice != MADV_FREE)
2204 return;
2205 anychanged = FALSE;
2206 PMAP_LOCK(pmap);
2207 for (; sva < eva; sva = va_next) {
2208 l1e = pmap_pml1e(pmap, sva);
2209 if ((be64toh(*l1e) & PG_V) == 0) {
2210 va_next = (sva + L1_PAGE_SIZE) & ~L1_PAGE_MASK;
2211 if (va_next < sva)
2212 va_next = eva;
2213 continue;
2214 }
2215 l2e = pmap_l1e_to_l2e(l1e, sva);
2216 if ((be64toh(*l2e) & PG_V) == 0) {
2217 va_next = (sva + L2_PAGE_SIZE) & ~L2_PAGE_MASK;
2218 if (va_next < sva)
2219 va_next = eva;
2220 continue;
2221 }
2222 va_next = (sva + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
2223 if (va_next < sva)
2224 va_next = eva;
2225 l3e = pmap_l2e_to_l3e(l2e, sva);
2226 oldl3e = be64toh(*l3e);
2227 if ((oldl3e & PG_V) == 0)
2228 continue;
2229 else if ((oldl3e & RPTE_LEAF) != 0) {
2230 if ((oldl3e & PG_MANAGED) == 0)
2231 continue;
2232 lock = NULL;
2233 if (!pmap_demote_l3e_locked(pmap, l3e, sva, &lock)) {
2234 if (lock != NULL)
2235 rw_wunlock(lock);
2236
2237 /*
2238 * The large page mapping was destroyed.
2239 */
2240 continue;
2241 }
2242
2243 /*
2244 * Unless the page mappings are wired, remove the
2245 * mapping to a single page so that a subsequent
2246 * access may repromote. Since the underlying page
2247 * table page is fully populated, this removal never
2248 * frees a page table page.
2249 */
2250 if ((oldl3e & PG_W) == 0) {
2251 pte = pmap_l3e_to_pte(l3e, sva);
2252 KASSERT((be64toh(*pte) & PG_V) != 0,
2253 ("pmap_advise: invalid PTE"));
2254 pmap_remove_pte(pmap, pte, sva, be64toh(*l3e), NULL,
2255 &lock);
2256 anychanged = TRUE;
2257 }
2258 if (lock != NULL)
2259 rw_wunlock(lock);
2260 }
2261 if (va_next > eva)
2262 va_next = eva;
2263 va = va_next;
2264 for (pte = pmap_l3e_to_pte(l3e, sva); sva != va_next;
2265 pte++, sva += PAGE_SIZE) {
2266 MPASS(pte == pmap_pte(pmap, sva));
2267
2268 if ((be64toh(*pte) & (PG_MANAGED | PG_V)) != (PG_MANAGED | PG_V))
2269 goto maybe_invlrng;
2270 else if ((be64toh(*pte) & (PG_M | PG_RW)) == (PG_M | PG_RW)) {
2271 if (advice == MADV_DONTNEED) {
2272 /*
2273 * Future calls to pmap_is_modified()
2274 * can be avoided by making the page
2275 * dirty now.
2276 */
2277 m = PHYS_TO_VM_PAGE(be64toh(*pte) & PG_FRAME);
2278 vm_page_dirty(m);
2279 }
2280 atomic_clear_long(pte, htobe64(PG_M | PG_A));
2281 } else if ((be64toh(*pte) & PG_A) != 0)
2282 atomic_clear_long(pte, htobe64(PG_A));
2283 else
2284 goto maybe_invlrng;
2285 anychanged = TRUE;
2286 continue;
2287 maybe_invlrng:
2288 if (va != va_next) {
2289 anychanged = true;
2290 va = va_next;
2291 }
2292 }
2293 if (va != va_next)
2294 anychanged = true;
2295 }
2296 if (anychanged)
2297 pmap_invalidate_all(pmap);
2298 PMAP_UNLOCK(pmap);
2299 }
2300
2301 /*
2302 * Routines used in machine-dependent code
2303 */
2304 static void
mmu_radix_bootstrap(vm_offset_t start,vm_offset_t end)2305 mmu_radix_bootstrap(vm_offset_t start, vm_offset_t end)
2306 {
2307 uint64_t lpcr;
2308
2309 if (bootverbose)
2310 printf("%s\n", __func__);
2311 hw_direct_map = 1;
2312 mmu_radix_early_bootstrap(start, end);
2313 if (bootverbose)
2314 printf("early bootstrap complete\n");
2315 if (powernv_enabled) {
2316 lpcr = mfspr(SPR_LPCR);
2317 mtspr(SPR_LPCR, lpcr | LPCR_UPRT | LPCR_HR);
2318 mmu_radix_parttab_init();
2319 mmu_radix_init_amor();
2320 if (bootverbose)
2321 printf("powernv init complete\n");
2322 }
2323 mmu_radix_init_iamr();
2324 mmu_radix_proctab_init();
2325 mmu_radix_pid_set(kernel_pmap);
2326 /* XXX assume CPU_FTR_HVMODE */
2327 mmu_radix_tlbiel_flush(TLB_INVAL_SCOPE_GLOBAL);
2328
2329 mmu_radix_late_bootstrap(start, end);
2330 numa_mem_regions(&numa_pregions, &numa_pregions_sz);
2331 if (bootverbose)
2332 printf("%s done\n", __func__);
2333 pmap_bootstrapped = 1;
2334 dmaplimit = roundup2(powerpc_ptob(Maxmem), L2_PAGE_SIZE);
2335 PCPU_SET(flags, PCPU_GET(flags) | PC_FLAG_NOSRS);
2336 }
2337
2338 static void
mmu_radix_cpu_bootstrap(int ap)2339 mmu_radix_cpu_bootstrap(int ap)
2340 {
2341 uint64_t lpcr;
2342 uint64_t ptcr;
2343
2344 if (powernv_enabled) {
2345 lpcr = mfspr(SPR_LPCR);
2346 mtspr(SPR_LPCR, lpcr | LPCR_UPRT | LPCR_HR);
2347
2348 ptcr = parttab_phys | (PARTTAB_SIZE_SHIFT-12);
2349 mtspr(SPR_PTCR, ptcr);
2350 mmu_radix_init_amor();
2351 }
2352 mmu_radix_init_iamr();
2353 mmu_radix_pid_set(kernel_pmap);
2354 mmu_radix_tlbiel_flush(TLB_INVAL_SCOPE_GLOBAL);
2355 }
2356
2357 static SYSCTL_NODE(_vm_pmap, OID_AUTO, l3e, CTLFLAG_RD, 0,
2358 "2MB page mapping counters");
2359
2360 static u_long pmap_l3e_demotions;
2361 SYSCTL_ULONG(_vm_pmap_l3e, OID_AUTO, demotions, CTLFLAG_RD,
2362 &pmap_l3e_demotions, 0, "2MB page demotions");
2363
2364 static u_long pmap_l3e_mappings;
2365 SYSCTL_ULONG(_vm_pmap_l3e, OID_AUTO, mappings, CTLFLAG_RD,
2366 &pmap_l3e_mappings, 0, "2MB page mappings");
2367
2368 static u_long pmap_l3e_p_failures;
2369 SYSCTL_ULONG(_vm_pmap_l3e, OID_AUTO, p_failures, CTLFLAG_RD,
2370 &pmap_l3e_p_failures, 0, "2MB page promotion failures");
2371
2372 static u_long pmap_l3e_promotions;
2373 SYSCTL_ULONG(_vm_pmap_l3e, OID_AUTO, promotions, CTLFLAG_RD,
2374 &pmap_l3e_promotions, 0, "2MB page promotions");
2375
2376 static SYSCTL_NODE(_vm_pmap, OID_AUTO, l2e, CTLFLAG_RD, 0,
2377 "1GB page mapping counters");
2378
2379 static u_long pmap_l2e_demotions;
2380 SYSCTL_ULONG(_vm_pmap_l2e, OID_AUTO, demotions, CTLFLAG_RD,
2381 &pmap_l2e_demotions, 0, "1GB page demotions");
2382
2383 void
mmu_radix_clear_modify(vm_page_t m)2384 mmu_radix_clear_modify(vm_page_t m)
2385 {
2386 struct md_page *pvh;
2387 pmap_t pmap;
2388 pv_entry_t next_pv, pv;
2389 pml3_entry_t oldl3e, *l3e;
2390 pt_entry_t oldpte, *pte;
2391 struct rwlock *lock;
2392 vm_offset_t va;
2393 int md_gen, pvh_gen;
2394
2395 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
2396 ("pmap_clear_modify: page %p is not managed", m));
2397 vm_page_assert_busied(m);
2398 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
2399
2400 /*
2401 * If the page is not PGA_WRITEABLE, then no PTEs can have PG_M set.
2402 * If the object containing the page is locked and the page is not
2403 * exclusive busied, then PGA_WRITEABLE cannot be concurrently set.
2404 */
2405 if ((m->a.flags & PGA_WRITEABLE) == 0)
2406 return;
2407 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy :
2408 pa_to_pvh(VM_PAGE_TO_PHYS(m));
2409 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
2410 rw_wlock(lock);
2411 restart:
2412 TAILQ_FOREACH_SAFE(pv, &pvh->pv_list, pv_link, next_pv) {
2413 pmap = PV_PMAP(pv);
2414 if (!PMAP_TRYLOCK(pmap)) {
2415 pvh_gen = pvh->pv_gen;
2416 rw_wunlock(lock);
2417 PMAP_LOCK(pmap);
2418 rw_wlock(lock);
2419 if (pvh_gen != pvh->pv_gen) {
2420 PMAP_UNLOCK(pmap);
2421 goto restart;
2422 }
2423 }
2424 va = pv->pv_va;
2425 l3e = pmap_pml3e(pmap, va);
2426 oldl3e = be64toh(*l3e);
2427 if ((oldl3e & PG_RW) != 0) {
2428 if (pmap_demote_l3e_locked(pmap, l3e, va, &lock)) {
2429 if ((oldl3e & PG_W) == 0) {
2430 /*
2431 * Write protect the mapping to a
2432 * single page so that a subsequent
2433 * write access may repromote.
2434 */
2435 va += VM_PAGE_TO_PHYS(m) - (oldl3e &
2436 PG_PS_FRAME);
2437 pte = pmap_l3e_to_pte(l3e, va);
2438 oldpte = be64toh(*pte);
2439 if ((oldpte & PG_V) != 0) {
2440 while (!atomic_cmpset_long(pte,
2441 htobe64(oldpte),
2442 htobe64((oldpte | RPTE_EAA_R) & ~(PG_M | PG_RW))))
2443 oldpte = be64toh(*pte);
2444 vm_page_dirty(m);
2445 pmap_invalidate_page(pmap, va);
2446 }
2447 }
2448 }
2449 }
2450 PMAP_UNLOCK(pmap);
2451 }
2452 TAILQ_FOREACH(pv, &m->md.pv_list, pv_link) {
2453 pmap = PV_PMAP(pv);
2454 if (!PMAP_TRYLOCK(pmap)) {
2455 md_gen = m->md.pv_gen;
2456 pvh_gen = pvh->pv_gen;
2457 rw_wunlock(lock);
2458 PMAP_LOCK(pmap);
2459 rw_wlock(lock);
2460 if (pvh_gen != pvh->pv_gen || md_gen != m->md.pv_gen) {
2461 PMAP_UNLOCK(pmap);
2462 goto restart;
2463 }
2464 }
2465 l3e = pmap_pml3e(pmap, pv->pv_va);
2466 KASSERT((be64toh(*l3e) & RPTE_LEAF) == 0, ("pmap_clear_modify: found"
2467 " a 2mpage in page %p's pv list", m));
2468 pte = pmap_l3e_to_pte(l3e, pv->pv_va);
2469 if ((be64toh(*pte) & (PG_M | PG_RW)) == (PG_M | PG_RW)) {
2470 atomic_clear_long(pte, htobe64(PG_M));
2471 pmap_invalidate_page(pmap, pv->pv_va);
2472 }
2473 PMAP_UNLOCK(pmap);
2474 }
2475 rw_wunlock(lock);
2476 }
2477
2478 void
mmu_radix_copy(pmap_t dst_pmap,pmap_t src_pmap,vm_offset_t dst_addr,vm_size_t len,vm_offset_t src_addr)2479 mmu_radix_copy(pmap_t dst_pmap, pmap_t src_pmap, vm_offset_t dst_addr,
2480 vm_size_t len, vm_offset_t src_addr)
2481 {
2482 struct rwlock *lock;
2483 struct spglist free;
2484 vm_offset_t addr;
2485 vm_offset_t end_addr = src_addr + len;
2486 vm_offset_t va_next;
2487 vm_page_t dst_pdpg, dstmpte, srcmpte;
2488 bool invalidate_all;
2489
2490 CTR6(KTR_PMAP,
2491 "%s(dst_pmap=%p, src_pmap=%p, dst_addr=%lx, len=%lu, src_addr=%lx)\n",
2492 __func__, dst_pmap, src_pmap, dst_addr, len, src_addr);
2493
2494 if (dst_addr != src_addr)
2495 return;
2496 lock = NULL;
2497 invalidate_all = false;
2498 if (dst_pmap < src_pmap) {
2499 PMAP_LOCK(dst_pmap);
2500 PMAP_LOCK(src_pmap);
2501 } else {
2502 PMAP_LOCK(src_pmap);
2503 PMAP_LOCK(dst_pmap);
2504 }
2505
2506 for (addr = src_addr; addr < end_addr; addr = va_next) {
2507 pml1_entry_t *l1e;
2508 pml2_entry_t *l2e;
2509 pml3_entry_t srcptepaddr, *l3e;
2510 pt_entry_t *src_pte, *dst_pte;
2511
2512 l1e = pmap_pml1e(src_pmap, addr);
2513 if ((be64toh(*l1e) & PG_V) == 0) {
2514 va_next = (addr + L1_PAGE_SIZE) & ~L1_PAGE_MASK;
2515 if (va_next < addr)
2516 va_next = end_addr;
2517 continue;
2518 }
2519
2520 l2e = pmap_l1e_to_l2e(l1e, addr);
2521 if ((be64toh(*l2e) & PG_V) == 0) {
2522 va_next = (addr + L2_PAGE_SIZE) & ~L2_PAGE_MASK;
2523 if (va_next < addr)
2524 va_next = end_addr;
2525 continue;
2526 }
2527
2528 va_next = (addr + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
2529 if (va_next < addr)
2530 va_next = end_addr;
2531
2532 l3e = pmap_l2e_to_l3e(l2e, addr);
2533 srcptepaddr = be64toh(*l3e);
2534 if (srcptepaddr == 0)
2535 continue;
2536
2537 if (srcptepaddr & RPTE_LEAF) {
2538 if ((addr & L3_PAGE_MASK) != 0 ||
2539 addr + L3_PAGE_SIZE > end_addr)
2540 continue;
2541 dst_pdpg = pmap_allocl3e(dst_pmap, addr, NULL);
2542 if (dst_pdpg == NULL)
2543 break;
2544 l3e = (pml3_entry_t *)
2545 PHYS_TO_DMAP(VM_PAGE_TO_PHYS(dst_pdpg));
2546 l3e = &l3e[pmap_pml3e_index(addr)];
2547 if (be64toh(*l3e) == 0 && ((srcptepaddr & PG_MANAGED) == 0 ||
2548 pmap_pv_insert_l3e(dst_pmap, addr, srcptepaddr,
2549 PMAP_ENTER_NORECLAIM, &lock))) {
2550 *l3e = htobe64(srcptepaddr & ~PG_W);
2551 pmap_resident_count_inc(dst_pmap,
2552 L3_PAGE_SIZE / PAGE_SIZE);
2553 atomic_add_long(&pmap_l3e_mappings, 1);
2554 } else
2555 dst_pdpg->ref_count--;
2556 continue;
2557 }
2558
2559 srcptepaddr &= PG_FRAME;
2560 srcmpte = PHYS_TO_VM_PAGE(srcptepaddr);
2561 KASSERT(srcmpte->ref_count > 0,
2562 ("pmap_copy: source page table page is unused"));
2563
2564 if (va_next > end_addr)
2565 va_next = end_addr;
2566
2567 src_pte = (pt_entry_t *)PHYS_TO_DMAP(srcptepaddr);
2568 src_pte = &src_pte[pmap_pte_index(addr)];
2569 dstmpte = NULL;
2570 while (addr < va_next) {
2571 pt_entry_t ptetemp;
2572 ptetemp = be64toh(*src_pte);
2573 /*
2574 * we only virtual copy managed pages
2575 */
2576 if ((ptetemp & PG_MANAGED) != 0) {
2577 if (dstmpte != NULL &&
2578 dstmpte->pindex == pmap_l3e_pindex(addr))
2579 dstmpte->ref_count++;
2580 else if ((dstmpte = pmap_allocpte(dst_pmap,
2581 addr, NULL)) == NULL)
2582 goto out;
2583 dst_pte = (pt_entry_t *)
2584 PHYS_TO_DMAP(VM_PAGE_TO_PHYS(dstmpte));
2585 dst_pte = &dst_pte[pmap_pte_index(addr)];
2586 if (be64toh(*dst_pte) == 0 &&
2587 pmap_try_insert_pv_entry(dst_pmap, addr,
2588 PHYS_TO_VM_PAGE(ptetemp & PG_FRAME),
2589 &lock)) {
2590 /*
2591 * Clear the wired, modified, and
2592 * accessed (referenced) bits
2593 * during the copy.
2594 */
2595 *dst_pte = htobe64(ptetemp & ~(PG_W | PG_M |
2596 PG_A));
2597 pmap_resident_count_inc(dst_pmap, 1);
2598 } else {
2599 SLIST_INIT(&free);
2600 if (pmap_unwire_ptp(dst_pmap, addr,
2601 dstmpte, &free)) {
2602 /*
2603 * Although "addr" is not
2604 * mapped, paging-structure
2605 * caches could nonetheless
2606 * have entries that refer to
2607 * the freed page table pages.
2608 * Invalidate those entries.
2609 */
2610 invalidate_all = true;
2611 vm_page_free_pages_toq(&free,
2612 true);
2613 }
2614 goto out;
2615 }
2616 if (dstmpte->ref_count >= srcmpte->ref_count)
2617 break;
2618 }
2619 addr += PAGE_SIZE;
2620 if (__predict_false((addr & L3_PAGE_MASK) == 0))
2621 src_pte = pmap_pte(src_pmap, addr);
2622 else
2623 src_pte++;
2624 }
2625 }
2626 out:
2627 if (invalidate_all)
2628 pmap_invalidate_all(dst_pmap);
2629 if (lock != NULL)
2630 rw_wunlock(lock);
2631 PMAP_UNLOCK(src_pmap);
2632 PMAP_UNLOCK(dst_pmap);
2633 }
2634
2635 static void
mmu_radix_copy_page(vm_page_t msrc,vm_page_t mdst)2636 mmu_radix_copy_page(vm_page_t msrc, vm_page_t mdst)
2637 {
2638 vm_offset_t src = PHYS_TO_DMAP(VM_PAGE_TO_PHYS(msrc));
2639 vm_offset_t dst = PHYS_TO_DMAP(VM_PAGE_TO_PHYS(mdst));
2640
2641 CTR3(KTR_PMAP, "%s(%p, %p)", __func__, src, dst);
2642 /*
2643 * XXX slow
2644 */
2645 bcopy((void *)src, (void *)dst, PAGE_SIZE);
2646 }
2647
2648 static void
mmu_radix_copy_pages(vm_page_t ma[],vm_offset_t a_offset,vm_page_t mb[],vm_offset_t b_offset,int xfersize)2649 mmu_radix_copy_pages(vm_page_t ma[], vm_offset_t a_offset, vm_page_t mb[],
2650 vm_offset_t b_offset, int xfersize)
2651 {
2652 void *a_cp, *b_cp;
2653 vm_offset_t a_pg_offset, b_pg_offset;
2654 int cnt;
2655
2656 CTR6(KTR_PMAP, "%s(%p, %#x, %p, %#x, %#x)", __func__, ma,
2657 a_offset, mb, b_offset, xfersize);
2658
2659 while (xfersize > 0) {
2660 a_pg_offset = a_offset & PAGE_MASK;
2661 cnt = min(xfersize, PAGE_SIZE - a_pg_offset);
2662 a_cp = (char *)(uintptr_t)PHYS_TO_DMAP(
2663 VM_PAGE_TO_PHYS(ma[a_offset >> PAGE_SHIFT])) +
2664 a_pg_offset;
2665 b_pg_offset = b_offset & PAGE_MASK;
2666 cnt = min(cnt, PAGE_SIZE - b_pg_offset);
2667 b_cp = (char *)(uintptr_t)PHYS_TO_DMAP(
2668 VM_PAGE_TO_PHYS(mb[b_offset >> PAGE_SHIFT])) +
2669 b_pg_offset;
2670 bcopy(a_cp, b_cp, cnt);
2671 a_offset += cnt;
2672 b_offset += cnt;
2673 xfersize -= cnt;
2674 }
2675 }
2676
2677 #if VM_NRESERVLEVEL > 0
2678 /*
2679 * Tries to promote the 512, contiguous 4KB page mappings that are within a
2680 * single page table page (PTP) to a single 2MB page mapping. For promotion
2681 * to occur, two conditions must be met: (1) the 4KB page mappings must map
2682 * aligned, contiguous physical memory and (2) the 4KB page mappings must have
2683 * identical characteristics.
2684 */
2685 static int
pmap_promote_l3e(pmap_t pmap,pml3_entry_t * pde,vm_offset_t va,struct rwlock ** lockp)2686 pmap_promote_l3e(pmap_t pmap, pml3_entry_t *pde, vm_offset_t va,
2687 struct rwlock **lockp)
2688 {
2689 pml3_entry_t newpde;
2690 pt_entry_t *firstpte, oldpte, pa, *pte;
2691 vm_page_t mpte;
2692
2693 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
2694
2695 /*
2696 * Examine the first PTE in the specified PTP. Abort if this PTE is
2697 * either invalid, unused, or does not map the first 4KB physical page
2698 * within a 2MB page.
2699 */
2700 firstpte = (pt_entry_t *)PHYS_TO_DMAP(be64toh(*pde) & PG_FRAME);
2701 setpde:
2702 newpde = *firstpte;
2703 if ((newpde & ((PG_FRAME & L3_PAGE_MASK) | PG_A | PG_V)) != (PG_A | PG_V)) {
2704 CTR2(KTR_PMAP, "pmap_promote_l3e: failure for va %#lx"
2705 " in pmap %p", va, pmap);
2706 goto fail;
2707 }
2708 if ((newpde & (PG_M | PG_RW)) == PG_RW) {
2709 /*
2710 * When PG_M is already clear, PG_RW can be cleared without
2711 * a TLB invalidation.
2712 */
2713 if (!atomic_cmpset_long(firstpte, htobe64(newpde), htobe64((newpde | RPTE_EAA_R) & ~RPTE_EAA_W)))
2714 goto setpde;
2715 newpde &= ~RPTE_EAA_W;
2716 }
2717
2718 /*
2719 * Examine each of the other PTEs in the specified PTP. Abort if this
2720 * PTE maps an unexpected 4KB physical page or does not have identical
2721 * characteristics to the first PTE.
2722 */
2723 pa = (newpde & (PG_PS_FRAME | PG_A | PG_V)) + L3_PAGE_SIZE - PAGE_SIZE;
2724 for (pte = firstpte + NPTEPG - 1; pte > firstpte; pte--) {
2725 setpte:
2726 oldpte = be64toh(*pte);
2727 if ((oldpte & (PG_FRAME | PG_A | PG_V)) != pa) {
2728 CTR2(KTR_PMAP, "pmap_promote_l3e: failure for va %#lx"
2729 " in pmap %p", va, pmap);
2730 goto fail;
2731 }
2732 if ((oldpte & (PG_M | PG_RW)) == PG_RW) {
2733 /*
2734 * When PG_M is already clear, PG_RW can be cleared
2735 * without a TLB invalidation.
2736 */
2737 if (!atomic_cmpset_long(pte, htobe64(oldpte), htobe64((oldpte | RPTE_EAA_R) & ~RPTE_EAA_W)))
2738 goto setpte;
2739 oldpte &= ~RPTE_EAA_W;
2740 CTR2(KTR_PMAP, "pmap_promote_l3e: protect for va %#lx"
2741 " in pmap %p", (oldpte & PG_FRAME & L3_PAGE_MASK) |
2742 (va & ~L3_PAGE_MASK), pmap);
2743 }
2744 if ((oldpte & PG_PTE_PROMOTE) != (newpde & PG_PTE_PROMOTE)) {
2745 CTR2(KTR_PMAP, "pmap_promote_l3e: failure for va %#lx"
2746 " in pmap %p", va, pmap);
2747 goto fail;
2748 }
2749 pa -= PAGE_SIZE;
2750 }
2751
2752 /*
2753 * Save the page table page in its current state until the PDE
2754 * mapping the superpage is demoted by pmap_demote_pde() or
2755 * destroyed by pmap_remove_pde().
2756 */
2757 mpte = PHYS_TO_VM_PAGE(be64toh(*pde) & PG_FRAME);
2758 KASSERT(mpte >= vm_page_array &&
2759 mpte < &vm_page_array[vm_page_array_size],
2760 ("pmap_promote_l3e: page table page is out of range"));
2761 KASSERT(mpte->pindex == pmap_l3e_pindex(va),
2762 ("pmap_promote_l3e: page table page's pindex is wrong"));
2763 if (pmap_insert_pt_page(pmap, mpte)) {
2764 CTR2(KTR_PMAP,
2765 "pmap_promote_l3e: failure for va %#lx in pmap %p", va,
2766 pmap);
2767 goto fail;
2768 }
2769
2770 /*
2771 * Promote the pv entries.
2772 */
2773 if ((newpde & PG_MANAGED) != 0)
2774 pmap_pv_promote_l3e(pmap, va, newpde & PG_PS_FRAME, lockp);
2775
2776 pte_store(pde, PG_PROMOTED | newpde);
2777 ptesync();
2778 atomic_add_long(&pmap_l3e_promotions, 1);
2779 CTR2(KTR_PMAP, "pmap_promote_l3e: success for va %#lx"
2780 " in pmap %p", va, pmap);
2781 return (0);
2782 fail:
2783 atomic_add_long(&pmap_l3e_p_failures, 1);
2784 return (KERN_FAILURE);
2785 }
2786 #endif /* VM_NRESERVLEVEL > 0 */
2787
2788 int
mmu_radix_enter(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot,u_int flags,int8_t psind)2789 mmu_radix_enter(pmap_t pmap, vm_offset_t va, vm_page_t m,
2790 vm_prot_t prot, u_int flags, int8_t psind)
2791 {
2792 struct rwlock *lock;
2793 pml3_entry_t *l3e;
2794 pt_entry_t *pte;
2795 pt_entry_t newpte, origpte;
2796 pv_entry_t pv;
2797 vm_paddr_t opa, pa;
2798 vm_page_t mpte, om;
2799 int rv, retrycount;
2800 boolean_t nosleep, invalidate_all, invalidate_page;
2801
2802 va = trunc_page(va);
2803 retrycount = 0;
2804 invalidate_page = invalidate_all = false;
2805 CTR6(KTR_PMAP, "pmap_enter(%p, %#lx, %p, %#x, %#x, %d)", pmap, va,
2806 m, prot, flags, psind);
2807 KASSERT(va <= VM_MAX_KERNEL_ADDRESS, ("pmap_enter: toobig"));
2808 KASSERT((m->oflags & VPO_UNMANAGED) != 0 || va < kmi.clean_sva ||
2809 va >= kmi.clean_eva,
2810 ("pmap_enter: managed mapping within the clean submap"));
2811 if ((m->oflags & VPO_UNMANAGED) == 0)
2812 VM_PAGE_OBJECT_BUSY_ASSERT(m);
2813
2814 KASSERT((flags & PMAP_ENTER_RESERVED) == 0,
2815 ("pmap_enter: flags %u has reserved bits set", flags));
2816 pa = VM_PAGE_TO_PHYS(m);
2817 newpte = (pt_entry_t)(pa | PG_A | PG_V | RPTE_LEAF);
2818 if ((flags & VM_PROT_WRITE) != 0)
2819 newpte |= PG_M;
2820 if ((flags & VM_PROT_READ) != 0)
2821 newpte |= PG_A;
2822 if (prot & VM_PROT_READ)
2823 newpte |= RPTE_EAA_R;
2824 if ((prot & VM_PROT_WRITE) != 0)
2825 newpte |= RPTE_EAA_W;
2826 KASSERT((newpte & (PG_M | PG_RW)) != PG_M,
2827 ("pmap_enter: flags includes VM_PROT_WRITE but prot doesn't"));
2828
2829 if (prot & VM_PROT_EXECUTE)
2830 newpte |= PG_X;
2831 if ((flags & PMAP_ENTER_WIRED) != 0)
2832 newpte |= PG_W;
2833 if (va >= DMAP_MIN_ADDRESS)
2834 newpte |= RPTE_EAA_P;
2835 newpte |= pmap_cache_bits(m->md.mdpg_cache_attrs);
2836 /*
2837 * Set modified bit gratuitously for writeable mappings if
2838 * the page is unmanaged. We do not want to take a fault
2839 * to do the dirty bit accounting for these mappings.
2840 */
2841 if ((m->oflags & VPO_UNMANAGED) != 0) {
2842 if ((newpte & PG_RW) != 0)
2843 newpte |= PG_M;
2844 } else
2845 newpte |= PG_MANAGED;
2846
2847 lock = NULL;
2848 PMAP_LOCK(pmap);
2849 if (psind == 1) {
2850 /* Assert the required virtual and physical alignment. */
2851 KASSERT((va & L3_PAGE_MASK) == 0, ("pmap_enter: va unaligned"));
2852 KASSERT(m->psind > 0, ("pmap_enter: m->psind < psind"));
2853 rv = pmap_enter_l3e(pmap, va, newpte | RPTE_LEAF, flags, m, &lock);
2854 goto out;
2855 }
2856 mpte = NULL;
2857
2858 /*
2859 * In the case that a page table page is not
2860 * resident, we are creating it here.
2861 */
2862 retry:
2863 l3e = pmap_pml3e(pmap, va);
2864 if (l3e != NULL && (be64toh(*l3e) & PG_V) != 0 && ((be64toh(*l3e) & RPTE_LEAF) == 0 ||
2865 pmap_demote_l3e_locked(pmap, l3e, va, &lock))) {
2866 pte = pmap_l3e_to_pte(l3e, va);
2867 if (va < VM_MAXUSER_ADDRESS && mpte == NULL) {
2868 mpte = PHYS_TO_VM_PAGE(be64toh(*l3e) & PG_FRAME);
2869 mpte->ref_count++;
2870 }
2871 } else if (va < VM_MAXUSER_ADDRESS) {
2872 /*
2873 * Here if the pte page isn't mapped, or if it has been
2874 * deallocated.
2875 */
2876 nosleep = (flags & PMAP_ENTER_NOSLEEP) != 0;
2877 mpte = _pmap_allocpte(pmap, pmap_l3e_pindex(va),
2878 nosleep ? NULL : &lock);
2879 if (mpte == NULL && nosleep) {
2880 rv = KERN_RESOURCE_SHORTAGE;
2881 goto out;
2882 }
2883 if (__predict_false(retrycount++ == 6))
2884 panic("too many retries");
2885 invalidate_all = true;
2886 goto retry;
2887 } else
2888 panic("pmap_enter: invalid page directory va=%#lx", va);
2889
2890 origpte = be64toh(*pte);
2891 pv = NULL;
2892
2893 /*
2894 * Is the specified virtual address already mapped?
2895 */
2896 if ((origpte & PG_V) != 0) {
2897 #ifdef INVARIANTS
2898 if (VERBOSE_PMAP || pmap_logging) {
2899 printf("cow fault pmap_enter(%p, %#lx, %p, %#x, %x, %d) --"
2900 " asid=%lu curpid=%d name=%s origpte0x%lx\n",
2901 pmap, va, m, prot, flags, psind, pmap->pm_pid,
2902 curproc->p_pid, curproc->p_comm, origpte);
2903 pmap_pte_walk(pmap->pm_pml1, va);
2904 }
2905 #endif
2906 /*
2907 * Wiring change, just update stats. We don't worry about
2908 * wiring PT pages as they remain resident as long as there
2909 * are valid mappings in them. Hence, if a user page is wired,
2910 * the PT page will be also.
2911 */
2912 if ((newpte & PG_W) != 0 && (origpte & PG_W) == 0)
2913 pmap->pm_stats.wired_count++;
2914 else if ((newpte & PG_W) == 0 && (origpte & PG_W) != 0)
2915 pmap->pm_stats.wired_count--;
2916
2917 /*
2918 * Remove the extra PT page reference.
2919 */
2920 if (mpte != NULL) {
2921 mpte->ref_count--;
2922 KASSERT(mpte->ref_count > 0,
2923 ("pmap_enter: missing reference to page table page,"
2924 " va: 0x%lx", va));
2925 }
2926
2927 /*
2928 * Has the physical page changed?
2929 */
2930 opa = origpte & PG_FRAME;
2931 if (opa == pa) {
2932 /*
2933 * No, might be a protection or wiring change.
2934 */
2935 if ((origpte & PG_MANAGED) != 0 &&
2936 (newpte & PG_RW) != 0)
2937 vm_page_aflag_set(m, PGA_WRITEABLE);
2938 if (((origpte ^ newpte) & ~(PG_M | PG_A)) == 0) {
2939 if ((newpte & (PG_A|PG_M)) != (origpte & (PG_A|PG_M))) {
2940 if (!atomic_cmpset_long(pte, htobe64(origpte), htobe64(newpte)))
2941 goto retry;
2942 if ((newpte & PG_M) != (origpte & PG_M))
2943 vm_page_dirty(m);
2944 if ((newpte & PG_A) != (origpte & PG_A))
2945 vm_page_aflag_set(m, PGA_REFERENCED);
2946 ptesync();
2947 } else
2948 invalidate_all = true;
2949 if (((origpte ^ newpte) & ~(PG_M | PG_A)) == 0)
2950 goto unchanged;
2951 }
2952 goto validate;
2953 }
2954
2955 /*
2956 * The physical page has changed. Temporarily invalidate
2957 * the mapping. This ensures that all threads sharing the
2958 * pmap keep a consistent view of the mapping, which is
2959 * necessary for the correct handling of COW faults. It
2960 * also permits reuse of the old mapping's PV entry,
2961 * avoiding an allocation.
2962 *
2963 * For consistency, handle unmanaged mappings the same way.
2964 */
2965 origpte = be64toh(pte_load_clear(pte));
2966 KASSERT((origpte & PG_FRAME) == opa,
2967 ("pmap_enter: unexpected pa update for %#lx", va));
2968 if ((origpte & PG_MANAGED) != 0) {
2969 om = PHYS_TO_VM_PAGE(opa);
2970
2971 /*
2972 * The pmap lock is sufficient to synchronize with
2973 * concurrent calls to pmap_page_test_mappings() and
2974 * pmap_ts_referenced().
2975 */
2976 if ((origpte & (PG_M | PG_RW)) == (PG_M | PG_RW))
2977 vm_page_dirty(om);
2978 if ((origpte & PG_A) != 0)
2979 vm_page_aflag_set(om, PGA_REFERENCED);
2980 CHANGE_PV_LIST_LOCK_TO_PHYS(&lock, opa);
2981 pv = pmap_pvh_remove(&om->md, pmap, va);
2982 if ((newpte & PG_MANAGED) == 0)
2983 free_pv_entry(pmap, pv);
2984 #ifdef INVARIANTS
2985 else if (origpte & PG_MANAGED) {
2986 if (pv == NULL) {
2987 pmap_page_print_mappings(om);
2988 MPASS(pv != NULL);
2989 }
2990 }
2991 #endif
2992 if ((om->a.flags & PGA_WRITEABLE) != 0 &&
2993 TAILQ_EMPTY(&om->md.pv_list) &&
2994 ((om->flags & PG_FICTITIOUS) != 0 ||
2995 TAILQ_EMPTY(&pa_to_pvh(opa)->pv_list)))
2996 vm_page_aflag_clear(om, PGA_WRITEABLE);
2997 }
2998 if ((origpte & PG_A) != 0)
2999 invalidate_page = true;
3000 origpte = 0;
3001 } else {
3002 if (pmap != kernel_pmap) {
3003 #ifdef INVARIANTS
3004 if (VERBOSE_PMAP || pmap_logging)
3005 printf("pmap_enter(%p, %#lx, %p, %#x, %x, %d) -- asid=%lu curpid=%d name=%s\n",
3006 pmap, va, m, prot, flags, psind,
3007 pmap->pm_pid, curproc->p_pid,
3008 curproc->p_comm);
3009 #endif
3010 }
3011
3012 /*
3013 * Increment the counters.
3014 */
3015 if ((newpte & PG_W) != 0)
3016 pmap->pm_stats.wired_count++;
3017 pmap_resident_count_inc(pmap, 1);
3018 }
3019
3020 /*
3021 * Enter on the PV list if part of our managed memory.
3022 */
3023 if ((newpte & PG_MANAGED) != 0) {
3024 if (pv == NULL) {
3025 pv = get_pv_entry(pmap, &lock);
3026 pv->pv_va = va;
3027 }
3028 #ifdef VERBOSE_PV
3029 else
3030 printf("reassigning pv: %p to pmap: %p\n",
3031 pv, pmap);
3032 #endif
3033 CHANGE_PV_LIST_LOCK_TO_PHYS(&lock, pa);
3034 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_link);
3035 m->md.pv_gen++;
3036 if ((newpte & PG_RW) != 0)
3037 vm_page_aflag_set(m, PGA_WRITEABLE);
3038 }
3039
3040 /*
3041 * Update the PTE.
3042 */
3043 if ((origpte & PG_V) != 0) {
3044 validate:
3045 origpte = be64toh(pte_load_store(pte, htobe64(newpte)));
3046 KASSERT((origpte & PG_FRAME) == pa,
3047 ("pmap_enter: unexpected pa update for %#lx", va));
3048 if ((newpte & PG_M) == 0 && (origpte & (PG_M | PG_RW)) ==
3049 (PG_M | PG_RW)) {
3050 if ((origpte & PG_MANAGED) != 0)
3051 vm_page_dirty(m);
3052 invalidate_page = true;
3053
3054 /*
3055 * Although the PTE may still have PG_RW set, TLB
3056 * invalidation may nonetheless be required because
3057 * the PTE no longer has PG_M set.
3058 */
3059 } else if ((origpte & PG_X) != 0 || (newpte & PG_X) == 0) {
3060 /*
3061 * Removing capabilities requires invalidation on POWER
3062 */
3063 invalidate_page = true;
3064 goto unchanged;
3065 }
3066 if ((origpte & PG_A) != 0)
3067 invalidate_page = true;
3068 } else {
3069 pte_store(pte, newpte);
3070 ptesync();
3071 }
3072 unchanged:
3073
3074 #if VM_NRESERVLEVEL > 0
3075 /*
3076 * If both the page table page and the reservation are fully
3077 * populated, then attempt promotion.
3078 */
3079 if ((mpte == NULL || mpte->ref_count == NPTEPG) &&
3080 mmu_radix_ps_enabled(pmap) &&
3081 (m->flags & PG_FICTITIOUS) == 0 &&
3082 vm_reserv_level_iffullpop(m) == 0 &&
3083 pmap_promote_l3e(pmap, l3e, va, &lock) == 0)
3084 invalidate_all = true;
3085 #endif
3086 if (invalidate_all)
3087 pmap_invalidate_all(pmap);
3088 else if (invalidate_page)
3089 pmap_invalidate_page(pmap, va);
3090
3091 rv = KERN_SUCCESS;
3092 out:
3093 if (lock != NULL)
3094 rw_wunlock(lock);
3095 PMAP_UNLOCK(pmap);
3096
3097 return (rv);
3098 }
3099
3100 /*
3101 * Tries to create a read- and/or execute-only 2MB page mapping. Returns true
3102 * if successful. Returns false if (1) a page table page cannot be allocated
3103 * without sleeping, (2) a mapping already exists at the specified virtual
3104 * address, or (3) a PV entry cannot be allocated without reclaiming another
3105 * PV entry.
3106 */
3107 static bool
pmap_enter_2mpage(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot,struct rwlock ** lockp)3108 pmap_enter_2mpage(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_prot_t prot,
3109 struct rwlock **lockp)
3110 {
3111 pml3_entry_t newpde;
3112
3113 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3114 newpde = VM_PAGE_TO_PHYS(m) | pmap_cache_bits(m->md.mdpg_cache_attrs) |
3115 RPTE_LEAF | PG_V;
3116 if ((m->oflags & VPO_UNMANAGED) == 0)
3117 newpde |= PG_MANAGED;
3118 if (prot & VM_PROT_EXECUTE)
3119 newpde |= PG_X;
3120 if (prot & VM_PROT_READ)
3121 newpde |= RPTE_EAA_R;
3122 if (va >= DMAP_MIN_ADDRESS)
3123 newpde |= RPTE_EAA_P;
3124 return (pmap_enter_l3e(pmap, va, newpde, PMAP_ENTER_NOSLEEP |
3125 PMAP_ENTER_NOREPLACE | PMAP_ENTER_NORECLAIM, NULL, lockp) ==
3126 KERN_SUCCESS);
3127 }
3128
3129 /*
3130 * Tries to create the specified 2MB page mapping. Returns KERN_SUCCESS if
3131 * the mapping was created, and either KERN_FAILURE or KERN_RESOURCE_SHORTAGE
3132 * otherwise. Returns KERN_FAILURE if PMAP_ENTER_NOREPLACE was specified and
3133 * a mapping already exists at the specified virtual address. Returns
3134 * KERN_RESOURCE_SHORTAGE if PMAP_ENTER_NOSLEEP was specified and a page table
3135 * page allocation failed. Returns KERN_RESOURCE_SHORTAGE if
3136 * PMAP_ENTER_NORECLAIM was specified and a PV entry allocation failed.
3137 *
3138 * The parameter "m" is only used when creating a managed, writeable mapping.
3139 */
3140 static int
pmap_enter_l3e(pmap_t pmap,vm_offset_t va,pml3_entry_t newpde,u_int flags,vm_page_t m,struct rwlock ** lockp)3141 pmap_enter_l3e(pmap_t pmap, vm_offset_t va, pml3_entry_t newpde, u_int flags,
3142 vm_page_t m, struct rwlock **lockp)
3143 {
3144 struct spglist free;
3145 pml3_entry_t oldl3e, *l3e;
3146 vm_page_t mt, pdpg;
3147
3148 KASSERT((newpde & (PG_M | PG_RW)) != PG_RW,
3149 ("pmap_enter_pde: newpde is missing PG_M"));
3150 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3151
3152 if ((pdpg = pmap_allocl3e(pmap, va, (flags & PMAP_ENTER_NOSLEEP) != 0 ?
3153 NULL : lockp)) == NULL) {
3154 CTR2(KTR_PMAP, "pmap_enter_pde: failure for va %#lx"
3155 " in pmap %p", va, pmap);
3156 return (KERN_RESOURCE_SHORTAGE);
3157 }
3158 l3e = (pml3_entry_t *)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(pdpg));
3159 l3e = &l3e[pmap_pml3e_index(va)];
3160 oldl3e = be64toh(*l3e);
3161 if ((oldl3e & PG_V) != 0) {
3162 KASSERT(pdpg->ref_count > 1,
3163 ("pmap_enter_pde: pdpg's wire count is too low"));
3164 if ((flags & PMAP_ENTER_NOREPLACE) != 0) {
3165 pdpg->ref_count--;
3166 CTR2(KTR_PMAP, "pmap_enter_pde: failure for va %#lx"
3167 " in pmap %p", va, pmap);
3168 return (KERN_FAILURE);
3169 }
3170 /* Break the existing mapping(s). */
3171 SLIST_INIT(&free);
3172 if ((oldl3e & RPTE_LEAF) != 0) {
3173 /*
3174 * The reference to the PD page that was acquired by
3175 * pmap_allocl3e() ensures that it won't be freed.
3176 * However, if the PDE resulted from a promotion, then
3177 * a reserved PT page could be freed.
3178 */
3179 (void)pmap_remove_l3e(pmap, l3e, va, &free, lockp);
3180 pmap_invalidate_l3e_page(pmap, va, oldl3e);
3181 } else {
3182 if (pmap_remove_ptes(pmap, va, va + L3_PAGE_SIZE, l3e,
3183 &free, lockp))
3184 pmap_invalidate_all(pmap);
3185 }
3186 vm_page_free_pages_toq(&free, true);
3187 if (va >= VM_MAXUSER_ADDRESS) {
3188 mt = PHYS_TO_VM_PAGE(be64toh(*l3e) & PG_FRAME);
3189 if (pmap_insert_pt_page(pmap, mt)) {
3190 /*
3191 * XXX Currently, this can't happen because
3192 * we do not perform pmap_enter(psind == 1)
3193 * on the kernel pmap.
3194 */
3195 panic("pmap_enter_pde: trie insert failed");
3196 }
3197 } else
3198 KASSERT(be64toh(*l3e) == 0, ("pmap_enter_pde: non-zero pde %p",
3199 l3e));
3200 }
3201 if ((newpde & PG_MANAGED) != 0) {
3202 /*
3203 * Abort this mapping if its PV entry could not be created.
3204 */
3205 if (!pmap_pv_insert_l3e(pmap, va, newpde, flags, lockp)) {
3206 SLIST_INIT(&free);
3207 if (pmap_unwire_ptp(pmap, va, pdpg, &free)) {
3208 /*
3209 * Although "va" is not mapped, paging-
3210 * structure caches could nonetheless have
3211 * entries that refer to the freed page table
3212 * pages. Invalidate those entries.
3213 */
3214 pmap_invalidate_page(pmap, va);
3215 vm_page_free_pages_toq(&free, true);
3216 }
3217 CTR2(KTR_PMAP, "pmap_enter_pde: failure for va %#lx"
3218 " in pmap %p", va, pmap);
3219 return (KERN_RESOURCE_SHORTAGE);
3220 }
3221 if ((newpde & PG_RW) != 0) {
3222 for (mt = m; mt < &m[L3_PAGE_SIZE / PAGE_SIZE]; mt++)
3223 vm_page_aflag_set(mt, PGA_WRITEABLE);
3224 }
3225 }
3226
3227 /*
3228 * Increment counters.
3229 */
3230 if ((newpde & PG_W) != 0)
3231 pmap->pm_stats.wired_count += L3_PAGE_SIZE / PAGE_SIZE;
3232 pmap_resident_count_inc(pmap, L3_PAGE_SIZE / PAGE_SIZE);
3233
3234 /*
3235 * Map the superpage. (This is not a promoted mapping; there will not
3236 * be any lingering 4KB page mappings in the TLB.)
3237 */
3238 pte_store(l3e, newpde);
3239 ptesync();
3240
3241 atomic_add_long(&pmap_l3e_mappings, 1);
3242 CTR2(KTR_PMAP, "pmap_enter_pde: success for va %#lx"
3243 " in pmap %p", va, pmap);
3244 return (KERN_SUCCESS);
3245 }
3246
3247 void
mmu_radix_enter_object(pmap_t pmap,vm_offset_t start,vm_offset_t end,vm_page_t m_start,vm_prot_t prot)3248 mmu_radix_enter_object(pmap_t pmap, vm_offset_t start,
3249 vm_offset_t end, vm_page_t m_start, vm_prot_t prot)
3250 {
3251
3252 struct rwlock *lock;
3253 vm_offset_t va;
3254 vm_page_t m, mpte;
3255 vm_pindex_t diff, psize;
3256 bool invalidate;
3257 VM_OBJECT_ASSERT_LOCKED(m_start->object);
3258
3259 CTR6(KTR_PMAP, "%s(%p, %#x, %#x, %p, %#x)", __func__, pmap, start,
3260 end, m_start, prot);
3261
3262 invalidate = false;
3263 psize = atop(end - start);
3264 mpte = NULL;
3265 m = m_start;
3266 lock = NULL;
3267 PMAP_LOCK(pmap);
3268 while (m != NULL && (diff = m->pindex - m_start->pindex) < psize) {
3269 va = start + ptoa(diff);
3270 if ((va & L3_PAGE_MASK) == 0 && va + L3_PAGE_SIZE <= end &&
3271 m->psind == 1 && mmu_radix_ps_enabled(pmap) &&
3272 pmap_enter_2mpage(pmap, va, m, prot, &lock))
3273 m = &m[L3_PAGE_SIZE / PAGE_SIZE - 1];
3274 else
3275 mpte = mmu_radix_enter_quick_locked(pmap, va, m, prot,
3276 mpte, &lock, &invalidate);
3277 m = TAILQ_NEXT(m, listq);
3278 }
3279 ptesync();
3280 if (lock != NULL)
3281 rw_wunlock(lock);
3282 if (invalidate)
3283 pmap_invalidate_all(pmap);
3284 PMAP_UNLOCK(pmap);
3285 }
3286
3287 static vm_page_t
mmu_radix_enter_quick_locked(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot,vm_page_t mpte,struct rwlock ** lockp,bool * invalidate)3288 mmu_radix_enter_quick_locked(pmap_t pmap, vm_offset_t va, vm_page_t m,
3289 vm_prot_t prot, vm_page_t mpte, struct rwlock **lockp, bool *invalidate)
3290 {
3291 struct spglist free;
3292 pt_entry_t *pte;
3293 vm_paddr_t pa;
3294
3295 KASSERT(va < kmi.clean_sva || va >= kmi.clean_eva ||
3296 (m->oflags & VPO_UNMANAGED) != 0,
3297 ("mmu_radix_enter_quick_locked: managed mapping within the clean submap"));
3298 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3299
3300 /*
3301 * In the case that a page table page is not
3302 * resident, we are creating it here.
3303 */
3304 if (va < VM_MAXUSER_ADDRESS) {
3305 vm_pindex_t ptepindex;
3306 pml3_entry_t *ptepa;
3307
3308 /*
3309 * Calculate pagetable page index
3310 */
3311 ptepindex = pmap_l3e_pindex(va);
3312 if (mpte && (mpte->pindex == ptepindex)) {
3313 mpte->ref_count++;
3314 } else {
3315 /*
3316 * Get the page directory entry
3317 */
3318 ptepa = pmap_pml3e(pmap, va);
3319
3320 /*
3321 * If the page table page is mapped, we just increment
3322 * the hold count, and activate it. Otherwise, we
3323 * attempt to allocate a page table page. If this
3324 * attempt fails, we don't retry. Instead, we give up.
3325 */
3326 if (ptepa && (be64toh(*ptepa) & PG_V) != 0) {
3327 if (be64toh(*ptepa) & RPTE_LEAF)
3328 return (NULL);
3329 mpte = PHYS_TO_VM_PAGE(be64toh(*ptepa) & PG_FRAME);
3330 mpte->ref_count++;
3331 } else {
3332 /*
3333 * Pass NULL instead of the PV list lock
3334 * pointer, because we don't intend to sleep.
3335 */
3336 mpte = _pmap_allocpte(pmap, ptepindex, NULL);
3337 if (mpte == NULL)
3338 return (mpte);
3339 }
3340 }
3341 pte = (pt_entry_t *)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(mpte));
3342 pte = &pte[pmap_pte_index(va)];
3343 } else {
3344 mpte = NULL;
3345 pte = pmap_pte(pmap, va);
3346 }
3347 if (be64toh(*pte)) {
3348 if (mpte != NULL) {
3349 mpte->ref_count--;
3350 mpte = NULL;
3351 }
3352 return (mpte);
3353 }
3354
3355 /*
3356 * Enter on the PV list if part of our managed memory.
3357 */
3358 if ((m->oflags & VPO_UNMANAGED) == 0 &&
3359 !pmap_try_insert_pv_entry(pmap, va, m, lockp)) {
3360 if (mpte != NULL) {
3361 SLIST_INIT(&free);
3362 if (pmap_unwire_ptp(pmap, va, mpte, &free)) {
3363 /*
3364 * Although "va" is not mapped, paging-
3365 * structure caches could nonetheless have
3366 * entries that refer to the freed page table
3367 * pages. Invalidate those entries.
3368 */
3369 *invalidate = true;
3370 vm_page_free_pages_toq(&free, true);
3371 }
3372 mpte = NULL;
3373 }
3374 return (mpte);
3375 }
3376
3377 /*
3378 * Increment counters
3379 */
3380 pmap_resident_count_inc(pmap, 1);
3381
3382 pa = VM_PAGE_TO_PHYS(m) | pmap_cache_bits(m->md.mdpg_cache_attrs);
3383 if (prot & VM_PROT_EXECUTE)
3384 pa |= PG_X;
3385 else
3386 pa |= RPTE_EAA_R;
3387 if ((m->oflags & VPO_UNMANAGED) == 0)
3388 pa |= PG_MANAGED;
3389
3390 pte_store(pte, pa);
3391 return (mpte);
3392 }
3393
3394 void
mmu_radix_enter_quick(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot)3395 mmu_radix_enter_quick(pmap_t pmap, vm_offset_t va, vm_page_t m,
3396 vm_prot_t prot)
3397 {
3398 struct rwlock *lock;
3399 bool invalidate;
3400
3401 lock = NULL;
3402 invalidate = false;
3403 PMAP_LOCK(pmap);
3404 mmu_radix_enter_quick_locked(pmap, va, m, prot, NULL, &lock,
3405 &invalidate);
3406 ptesync();
3407 if (lock != NULL)
3408 rw_wunlock(lock);
3409 if (invalidate)
3410 pmap_invalidate_all(pmap);
3411 PMAP_UNLOCK(pmap);
3412 }
3413
3414 vm_paddr_t
mmu_radix_extract(pmap_t pmap,vm_offset_t va)3415 mmu_radix_extract(pmap_t pmap, vm_offset_t va)
3416 {
3417 pml3_entry_t *l3e;
3418 pt_entry_t *pte;
3419 vm_paddr_t pa;
3420
3421 l3e = pmap_pml3e(pmap, va);
3422 if (__predict_false(l3e == NULL))
3423 return (0);
3424 if (be64toh(*l3e) & RPTE_LEAF) {
3425 pa = (be64toh(*l3e) & PG_PS_FRAME) | (va & L3_PAGE_MASK);
3426 pa |= (va & L3_PAGE_MASK);
3427 } else {
3428 /*
3429 * Beware of a concurrent promotion that changes the
3430 * PDE at this point! For example, vtopte() must not
3431 * be used to access the PTE because it would use the
3432 * new PDE. It is, however, safe to use the old PDE
3433 * because the page table page is preserved by the
3434 * promotion.
3435 */
3436 pte = pmap_l3e_to_pte(l3e, va);
3437 if (__predict_false(pte == NULL))
3438 return (0);
3439 pa = be64toh(*pte);
3440 pa = (pa & PG_FRAME) | (va & PAGE_MASK);
3441 pa |= (va & PAGE_MASK);
3442 }
3443 return (pa);
3444 }
3445
3446 vm_page_t
mmu_radix_extract_and_hold(pmap_t pmap,vm_offset_t va,vm_prot_t prot)3447 mmu_radix_extract_and_hold(pmap_t pmap, vm_offset_t va, vm_prot_t prot)
3448 {
3449 pml3_entry_t l3e, *l3ep;
3450 pt_entry_t pte;
3451 vm_paddr_t pa;
3452 vm_page_t m;
3453
3454 pa = 0;
3455 m = NULL;
3456 CTR4(KTR_PMAP, "%s(%p, %#x, %#x)", __func__, pmap, va, prot);
3457 PMAP_LOCK(pmap);
3458 l3ep = pmap_pml3e(pmap, va);
3459 if (l3ep != NULL && (l3e = be64toh(*l3ep))) {
3460 if (l3e & RPTE_LEAF) {
3461 if ((l3e & PG_RW) || (prot & VM_PROT_WRITE) == 0)
3462 m = PHYS_TO_VM_PAGE((l3e & PG_PS_FRAME) |
3463 (va & L3_PAGE_MASK));
3464 } else {
3465 /* Native endian PTE, do not pass to pmap functions */
3466 pte = be64toh(*pmap_l3e_to_pte(l3ep, va));
3467 if ((pte & PG_V) &&
3468 ((pte & PG_RW) || (prot & VM_PROT_WRITE) == 0))
3469 m = PHYS_TO_VM_PAGE(pte & PG_FRAME);
3470 }
3471 if (m != NULL && !vm_page_wire_mapped(m))
3472 m = NULL;
3473 }
3474 PMAP_UNLOCK(pmap);
3475 return (m);
3476 }
3477
3478 static void
mmu_radix_growkernel(vm_offset_t addr)3479 mmu_radix_growkernel(vm_offset_t addr)
3480 {
3481 vm_paddr_t paddr;
3482 vm_page_t nkpg;
3483 pml3_entry_t *l3e;
3484 pml2_entry_t *l2e;
3485
3486 CTR2(KTR_PMAP, "%s(%#x)", __func__, addr);
3487 if (VM_MIN_KERNEL_ADDRESS < addr &&
3488 addr < (VM_MIN_KERNEL_ADDRESS + nkpt * L3_PAGE_SIZE))
3489 return;
3490
3491 addr = roundup2(addr, L3_PAGE_SIZE);
3492 if (addr - 1 >= vm_map_max(kernel_map))
3493 addr = vm_map_max(kernel_map);
3494 while (kernel_vm_end < addr) {
3495 l2e = pmap_pml2e(kernel_pmap, kernel_vm_end);
3496 if ((be64toh(*l2e) & PG_V) == 0) {
3497 /* We need a new PDP entry */
3498 nkpg = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT |
3499 VM_ALLOC_WIRED | VM_ALLOC_ZERO);
3500 if (nkpg == NULL)
3501 panic("pmap_growkernel: no memory to grow kernel");
3502 nkpg->pindex = kernel_vm_end >> L2_PAGE_SIZE_SHIFT;
3503 paddr = VM_PAGE_TO_PHYS(nkpg);
3504 pde_store(l2e, paddr);
3505 continue; /* try again */
3506 }
3507 l3e = pmap_l2e_to_l3e(l2e, kernel_vm_end);
3508 if ((be64toh(*l3e) & PG_V) != 0) {
3509 kernel_vm_end = (kernel_vm_end + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
3510 if (kernel_vm_end - 1 >= vm_map_max(kernel_map)) {
3511 kernel_vm_end = vm_map_max(kernel_map);
3512 break;
3513 }
3514 continue;
3515 }
3516
3517 nkpg = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT | VM_ALLOC_WIRED |
3518 VM_ALLOC_ZERO);
3519 if (nkpg == NULL)
3520 panic("pmap_growkernel: no memory to grow kernel");
3521 nkpg->pindex = pmap_l3e_pindex(kernel_vm_end);
3522 paddr = VM_PAGE_TO_PHYS(nkpg);
3523 pde_store(l3e, paddr);
3524
3525 kernel_vm_end = (kernel_vm_end + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
3526 if (kernel_vm_end - 1 >= vm_map_max(kernel_map)) {
3527 kernel_vm_end = vm_map_max(kernel_map);
3528 break;
3529 }
3530 }
3531 ptesync();
3532 }
3533
3534 static MALLOC_DEFINE(M_RADIX_PGD, "radix_pgd", "radix page table root directory");
3535 static uma_zone_t zone_radix_pgd;
3536
3537 static int
radix_pgd_import(void * arg __unused,void ** store,int count,int domain __unused,int flags)3538 radix_pgd_import(void *arg __unused, void **store, int count, int domain __unused,
3539 int flags)
3540 {
3541 int req;
3542
3543 req = VM_ALLOC_WIRED | malloc2vm_flags(flags);
3544 for (int i = 0; i < count; i++) {
3545 vm_page_t m = vm_page_alloc_noobj_contig(req,
3546 RADIX_PGD_SIZE / PAGE_SIZE,
3547 0, (vm_paddr_t)-1, RADIX_PGD_SIZE, L1_PAGE_SIZE,
3548 VM_MEMATTR_DEFAULT);
3549 store[i] = (void *)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m));
3550 }
3551 return (count);
3552 }
3553
3554 static void
radix_pgd_release(void * arg __unused,void ** store,int count)3555 radix_pgd_release(void *arg __unused, void **store, int count)
3556 {
3557 vm_page_t m;
3558 struct spglist free;
3559 int page_count;
3560
3561 SLIST_INIT(&free);
3562 page_count = RADIX_PGD_SIZE/PAGE_SIZE;
3563
3564 for (int i = 0; i < count; i++) {
3565 /*
3566 * XXX selectively remove dmap and KVA entries so we don't
3567 * need to bzero
3568 */
3569 m = PHYS_TO_VM_PAGE(DMAP_TO_PHYS((vm_offset_t)store[i]));
3570 for (int j = page_count-1; j >= 0; j--) {
3571 vm_page_unwire_noq(&m[j]);
3572 SLIST_INSERT_HEAD(&free, &m[j], plinks.s.ss);
3573 }
3574 vm_page_free_pages_toq(&free, false);
3575 }
3576 }
3577
3578 static void
mmu_radix_init()3579 mmu_radix_init()
3580 {
3581 vm_page_t mpte;
3582 vm_size_t s;
3583 int error, i, pv_npg;
3584
3585 /* XXX is this really needed for POWER? */
3586 /* L1TF, reserve page @0 unconditionally */
3587 vm_page_blacklist_add(0, bootverbose);
3588
3589 zone_radix_pgd = uma_zcache_create("radix_pgd_cache",
3590 RADIX_PGD_SIZE, NULL, NULL,
3591 #ifdef INVARIANTS
3592 trash_init, trash_fini,
3593 #else
3594 NULL, NULL,
3595 #endif
3596 radix_pgd_import, radix_pgd_release,
3597 NULL, UMA_ZONE_NOBUCKET);
3598
3599 /*
3600 * Initialize the vm page array entries for the kernel pmap's
3601 * page table pages.
3602 */
3603 PMAP_LOCK(kernel_pmap);
3604 for (i = 0; i < nkpt; i++) {
3605 mpte = PHYS_TO_VM_PAGE(KPTphys + (i << PAGE_SHIFT));
3606 KASSERT(mpte >= vm_page_array &&
3607 mpte < &vm_page_array[vm_page_array_size],
3608 ("pmap_init: page table page is out of range size: %lu",
3609 vm_page_array_size));
3610 mpte->pindex = pmap_l3e_pindex(VM_MIN_KERNEL_ADDRESS) + i;
3611 mpte->phys_addr = KPTphys + (i << PAGE_SHIFT);
3612 MPASS(PHYS_TO_VM_PAGE(mpte->phys_addr) == mpte);
3613 //pmap_insert_pt_page(kernel_pmap, mpte);
3614 mpte->ref_count = 1;
3615 }
3616 PMAP_UNLOCK(kernel_pmap);
3617 vm_wire_add(nkpt);
3618
3619 CTR1(KTR_PMAP, "%s()", __func__);
3620 TAILQ_INIT(&pv_dummy.pv_list);
3621
3622 /*
3623 * Are large page mappings enabled?
3624 */
3625 TUNABLE_INT_FETCH("vm.pmap.superpages_enabled", &superpages_enabled);
3626 if (superpages_enabled) {
3627 KASSERT(MAXPAGESIZES > 1 && pagesizes[1] == 0,
3628 ("pmap_init: can't assign to pagesizes[1]"));
3629 pagesizes[1] = L3_PAGE_SIZE;
3630 }
3631
3632 /*
3633 * Initialize the pv chunk list mutex.
3634 */
3635 mtx_init(&pv_chunks_mutex, "pmap pv chunk list", NULL, MTX_DEF);
3636
3637 /*
3638 * Initialize the pool of pv list locks.
3639 */
3640 for (i = 0; i < NPV_LIST_LOCKS; i++)
3641 rw_init(&pv_list_locks[i], "pmap pv list");
3642
3643 /*
3644 * Calculate the size of the pv head table for superpages.
3645 */
3646 pv_npg = howmany(vm_phys_segs[vm_phys_nsegs - 1].end, L3_PAGE_SIZE);
3647
3648 /*
3649 * Allocate memory for the pv head table for superpages.
3650 */
3651 s = (vm_size_t)(pv_npg * sizeof(struct md_page));
3652 s = round_page(s);
3653 pv_table = (struct md_page *)kmem_malloc(s, M_WAITOK | M_ZERO);
3654 for (i = 0; i < pv_npg; i++)
3655 TAILQ_INIT(&pv_table[i].pv_list);
3656 TAILQ_INIT(&pv_dummy.pv_list);
3657
3658 pmap_initialized = 1;
3659 mtx_init(&qframe_mtx, "qfrmlk", NULL, MTX_SPIN);
3660 error = vmem_alloc(kernel_arena, PAGE_SIZE, M_BESTFIT | M_WAITOK,
3661 (vmem_addr_t *)&qframe);
3662
3663 if (error != 0)
3664 panic("qframe allocation failed");
3665 asid_arena = vmem_create("ASID", isa3_base_pid + 1, (1<<isa3_pid_bits),
3666 1, 1, M_WAITOK);
3667 }
3668
3669 static boolean_t
pmap_page_test_mappings(vm_page_t m,boolean_t accessed,boolean_t modified)3670 pmap_page_test_mappings(vm_page_t m, boolean_t accessed, boolean_t modified)
3671 {
3672 struct rwlock *lock;
3673 pv_entry_t pv;
3674 struct md_page *pvh;
3675 pt_entry_t *pte, mask;
3676 pmap_t pmap;
3677 int md_gen, pvh_gen;
3678 boolean_t rv;
3679
3680 rv = FALSE;
3681 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
3682 rw_rlock(lock);
3683 restart:
3684 TAILQ_FOREACH(pv, &m->md.pv_list, pv_link) {
3685 pmap = PV_PMAP(pv);
3686 if (!PMAP_TRYLOCK(pmap)) {
3687 md_gen = m->md.pv_gen;
3688 rw_runlock(lock);
3689 PMAP_LOCK(pmap);
3690 rw_rlock(lock);
3691 if (md_gen != m->md.pv_gen) {
3692 PMAP_UNLOCK(pmap);
3693 goto restart;
3694 }
3695 }
3696 pte = pmap_pte(pmap, pv->pv_va);
3697 mask = 0;
3698 if (modified)
3699 mask |= PG_RW | PG_M;
3700 if (accessed)
3701 mask |= PG_V | PG_A;
3702 rv = (be64toh(*pte) & mask) == mask;
3703 PMAP_UNLOCK(pmap);
3704 if (rv)
3705 goto out;
3706 }
3707 if ((m->flags & PG_FICTITIOUS) == 0) {
3708 pvh = pa_to_pvh(VM_PAGE_TO_PHYS(m));
3709 TAILQ_FOREACH(pv, &pvh->pv_list, pv_link) {
3710 pmap = PV_PMAP(pv);
3711 if (!PMAP_TRYLOCK(pmap)) {
3712 md_gen = m->md.pv_gen;
3713 pvh_gen = pvh->pv_gen;
3714 rw_runlock(lock);
3715 PMAP_LOCK(pmap);
3716 rw_rlock(lock);
3717 if (md_gen != m->md.pv_gen ||
3718 pvh_gen != pvh->pv_gen) {
3719 PMAP_UNLOCK(pmap);
3720 goto restart;
3721 }
3722 }
3723 pte = pmap_pml3e(pmap, pv->pv_va);
3724 mask = 0;
3725 if (modified)
3726 mask |= PG_RW | PG_M;
3727 if (accessed)
3728 mask |= PG_V | PG_A;
3729 rv = (be64toh(*pte) & mask) == mask;
3730 PMAP_UNLOCK(pmap);
3731 if (rv)
3732 goto out;
3733 }
3734 }
3735 out:
3736 rw_runlock(lock);
3737 return (rv);
3738 }
3739
3740 /*
3741 * pmap_is_modified:
3742 *
3743 * Return whether or not the specified physical page was modified
3744 * in any physical maps.
3745 */
3746 boolean_t
mmu_radix_is_modified(vm_page_t m)3747 mmu_radix_is_modified(vm_page_t m)
3748 {
3749
3750 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
3751 ("pmap_is_modified: page %p is not managed", m));
3752
3753 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
3754 /*
3755 * If the page is not busied then this check is racy.
3756 */
3757 if (!pmap_page_is_write_mapped(m))
3758 return (FALSE);
3759 return (pmap_page_test_mappings(m, FALSE, TRUE));
3760 }
3761
3762 boolean_t
mmu_radix_is_prefaultable(pmap_t pmap,vm_offset_t addr)3763 mmu_radix_is_prefaultable(pmap_t pmap, vm_offset_t addr)
3764 {
3765 pml3_entry_t *l3e;
3766 pt_entry_t *pte;
3767 boolean_t rv;
3768
3769 CTR3(KTR_PMAP, "%s(%p, %#x)", __func__, pmap, addr);
3770 rv = FALSE;
3771 PMAP_LOCK(pmap);
3772 l3e = pmap_pml3e(pmap, addr);
3773 if (l3e != NULL && (be64toh(*l3e) & (RPTE_LEAF | PG_V)) == PG_V) {
3774 pte = pmap_l3e_to_pte(l3e, addr);
3775 rv = (be64toh(*pte) & PG_V) == 0;
3776 }
3777 PMAP_UNLOCK(pmap);
3778 return (rv);
3779 }
3780
3781 boolean_t
mmu_radix_is_referenced(vm_page_t m)3782 mmu_radix_is_referenced(vm_page_t m)
3783 {
3784 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
3785 ("pmap_is_referenced: page %p is not managed", m));
3786 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
3787 return (pmap_page_test_mappings(m, TRUE, FALSE));
3788 }
3789
3790 /*
3791 * pmap_ts_referenced:
3792 *
3793 * Return a count of reference bits for a page, clearing those bits.
3794 * It is not necessary for every reference bit to be cleared, but it
3795 * is necessary that 0 only be returned when there are truly no
3796 * reference bits set.
3797 *
3798 * As an optimization, update the page's dirty field if a modified bit is
3799 * found while counting reference bits. This opportunistic update can be
3800 * performed at low cost and can eliminate the need for some future calls
3801 * to pmap_is_modified(). However, since this function stops after
3802 * finding PMAP_TS_REFERENCED_MAX reference bits, it may not detect some
3803 * dirty pages. Those dirty pages will only be detected by a future call
3804 * to pmap_is_modified().
3805 *
3806 * A DI block is not needed within this function, because
3807 * invalidations are performed before the PV list lock is
3808 * released.
3809 */
3810 boolean_t
mmu_radix_ts_referenced(vm_page_t m)3811 mmu_radix_ts_referenced(vm_page_t m)
3812 {
3813 struct md_page *pvh;
3814 pv_entry_t pv, pvf;
3815 pmap_t pmap;
3816 struct rwlock *lock;
3817 pml3_entry_t oldl3e, *l3e;
3818 pt_entry_t *pte;
3819 vm_paddr_t pa;
3820 int cleared, md_gen, not_cleared, pvh_gen;
3821 struct spglist free;
3822
3823 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
3824 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
3825 ("pmap_ts_referenced: page %p is not managed", m));
3826 SLIST_INIT(&free);
3827 cleared = 0;
3828 pa = VM_PAGE_TO_PHYS(m);
3829 lock = PHYS_TO_PV_LIST_LOCK(pa);
3830 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy : pa_to_pvh(pa);
3831 rw_wlock(lock);
3832 retry:
3833 not_cleared = 0;
3834 if ((pvf = TAILQ_FIRST(&pvh->pv_list)) == NULL)
3835 goto small_mappings;
3836 pv = pvf;
3837 do {
3838 if (pvf == NULL)
3839 pvf = pv;
3840 pmap = PV_PMAP(pv);
3841 if (!PMAP_TRYLOCK(pmap)) {
3842 pvh_gen = pvh->pv_gen;
3843 rw_wunlock(lock);
3844 PMAP_LOCK(pmap);
3845 rw_wlock(lock);
3846 if (pvh_gen != pvh->pv_gen) {
3847 PMAP_UNLOCK(pmap);
3848 goto retry;
3849 }
3850 }
3851 l3e = pmap_pml3e(pmap, pv->pv_va);
3852 oldl3e = be64toh(*l3e);
3853 if ((oldl3e & (PG_M | PG_RW)) == (PG_M | PG_RW)) {
3854 /*
3855 * Although "oldpde" is mapping a 2MB page, because
3856 * this function is called at a 4KB page granularity,
3857 * we only update the 4KB page under test.
3858 */
3859 vm_page_dirty(m);
3860 }
3861 if ((oldl3e & PG_A) != 0) {
3862 /*
3863 * Since this reference bit is shared by 512 4KB
3864 * pages, it should not be cleared every time it is
3865 * tested. Apply a simple "hash" function on the
3866 * physical page number, the virtual superpage number,
3867 * and the pmap address to select one 4KB page out of
3868 * the 512 on which testing the reference bit will
3869 * result in clearing that reference bit. This
3870 * function is designed to avoid the selection of the
3871 * same 4KB page for every 2MB page mapping.
3872 *
3873 * On demotion, a mapping that hasn't been referenced
3874 * is simply destroyed. To avoid the possibility of a
3875 * subsequent page fault on a demoted wired mapping,
3876 * always leave its reference bit set. Moreover,
3877 * since the superpage is wired, the current state of
3878 * its reference bit won't affect page replacement.
3879 */
3880 if ((((pa >> PAGE_SHIFT) ^ (pv->pv_va >> L3_PAGE_SIZE_SHIFT) ^
3881 (uintptr_t)pmap) & (NPTEPG - 1)) == 0 &&
3882 (oldl3e & PG_W) == 0) {
3883 atomic_clear_long(l3e, htobe64(PG_A));
3884 pmap_invalidate_page(pmap, pv->pv_va);
3885 cleared++;
3886 KASSERT(lock == VM_PAGE_TO_PV_LIST_LOCK(m),
3887 ("inconsistent pv lock %p %p for page %p",
3888 lock, VM_PAGE_TO_PV_LIST_LOCK(m), m));
3889 } else
3890 not_cleared++;
3891 }
3892 PMAP_UNLOCK(pmap);
3893 /* Rotate the PV list if it has more than one entry. */
3894 if (pv != NULL && TAILQ_NEXT(pv, pv_link) != NULL) {
3895 TAILQ_REMOVE(&pvh->pv_list, pv, pv_link);
3896 TAILQ_INSERT_TAIL(&pvh->pv_list, pv, pv_link);
3897 pvh->pv_gen++;
3898 }
3899 if (cleared + not_cleared >= PMAP_TS_REFERENCED_MAX)
3900 goto out;
3901 } while ((pv = TAILQ_FIRST(&pvh->pv_list)) != pvf);
3902 small_mappings:
3903 if ((pvf = TAILQ_FIRST(&m->md.pv_list)) == NULL)
3904 goto out;
3905 pv = pvf;
3906 do {
3907 if (pvf == NULL)
3908 pvf = pv;
3909 pmap = PV_PMAP(pv);
3910 if (!PMAP_TRYLOCK(pmap)) {
3911 pvh_gen = pvh->pv_gen;
3912 md_gen = m->md.pv_gen;
3913 rw_wunlock(lock);
3914 PMAP_LOCK(pmap);
3915 rw_wlock(lock);
3916 if (pvh_gen != pvh->pv_gen || md_gen != m->md.pv_gen) {
3917 PMAP_UNLOCK(pmap);
3918 goto retry;
3919 }
3920 }
3921 l3e = pmap_pml3e(pmap, pv->pv_va);
3922 KASSERT((be64toh(*l3e) & RPTE_LEAF) == 0,
3923 ("pmap_ts_referenced: found a 2mpage in page %p's pv list",
3924 m));
3925 pte = pmap_l3e_to_pte(l3e, pv->pv_va);
3926 if ((be64toh(*pte) & (PG_M | PG_RW)) == (PG_M | PG_RW))
3927 vm_page_dirty(m);
3928 if ((be64toh(*pte) & PG_A) != 0) {
3929 atomic_clear_long(pte, htobe64(PG_A));
3930 pmap_invalidate_page(pmap, pv->pv_va);
3931 cleared++;
3932 }
3933 PMAP_UNLOCK(pmap);
3934 /* Rotate the PV list if it has more than one entry. */
3935 if (pv != NULL && TAILQ_NEXT(pv, pv_link) != NULL) {
3936 TAILQ_REMOVE(&m->md.pv_list, pv, pv_link);
3937 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_link);
3938 m->md.pv_gen++;
3939 }
3940 } while ((pv = TAILQ_FIRST(&m->md.pv_list)) != pvf && cleared +
3941 not_cleared < PMAP_TS_REFERENCED_MAX);
3942 out:
3943 rw_wunlock(lock);
3944 vm_page_free_pages_toq(&free, true);
3945 return (cleared + not_cleared);
3946 }
3947
3948 static vm_offset_t
mmu_radix_map(vm_offset_t * virt __unused,vm_paddr_t start,vm_paddr_t end,int prot __unused)3949 mmu_radix_map(vm_offset_t *virt __unused, vm_paddr_t start,
3950 vm_paddr_t end, int prot __unused)
3951 {
3952
3953 CTR5(KTR_PMAP, "%s(%p, %#x, %#x, %#x)", __func__, virt, start, end,
3954 prot);
3955 return (PHYS_TO_DMAP(start));
3956 }
3957
3958 void
mmu_radix_object_init_pt(pmap_t pmap,vm_offset_t addr,vm_object_t object,vm_pindex_t pindex,vm_size_t size)3959 mmu_radix_object_init_pt(pmap_t pmap, vm_offset_t addr,
3960 vm_object_t object, vm_pindex_t pindex, vm_size_t size)
3961 {
3962 pml3_entry_t *l3e;
3963 vm_paddr_t pa, ptepa;
3964 vm_page_t p, pdpg;
3965 vm_memattr_t ma;
3966
3967 CTR6(KTR_PMAP, "%s(%p, %#x, %p, %u, %#x)", __func__, pmap, addr,
3968 object, pindex, size);
3969 VM_OBJECT_ASSERT_WLOCKED(object);
3970 KASSERT(object->type == OBJT_DEVICE || object->type == OBJT_SG,
3971 ("pmap_object_init_pt: non-device object"));
3972 /* NB: size can be logically ored with addr here */
3973 if ((addr & L3_PAGE_MASK) == 0 && (size & L3_PAGE_MASK) == 0) {
3974 if (!mmu_radix_ps_enabled(pmap))
3975 return;
3976 if (!vm_object_populate(object, pindex, pindex + atop(size)))
3977 return;
3978 p = vm_page_lookup(object, pindex);
3979 KASSERT(p->valid == VM_PAGE_BITS_ALL,
3980 ("pmap_object_init_pt: invalid page %p", p));
3981 ma = p->md.mdpg_cache_attrs;
3982
3983 /*
3984 * Abort the mapping if the first page is not physically
3985 * aligned to a 2MB page boundary.
3986 */
3987 ptepa = VM_PAGE_TO_PHYS(p);
3988 if (ptepa & L3_PAGE_MASK)
3989 return;
3990
3991 /*
3992 * Skip the first page. Abort the mapping if the rest of
3993 * the pages are not physically contiguous or have differing
3994 * memory attributes.
3995 */
3996 p = TAILQ_NEXT(p, listq);
3997 for (pa = ptepa + PAGE_SIZE; pa < ptepa + size;
3998 pa += PAGE_SIZE) {
3999 KASSERT(p->valid == VM_PAGE_BITS_ALL,
4000 ("pmap_object_init_pt: invalid page %p", p));
4001 if (pa != VM_PAGE_TO_PHYS(p) ||
4002 ma != p->md.mdpg_cache_attrs)
4003 return;
4004 p = TAILQ_NEXT(p, listq);
4005 }
4006
4007 PMAP_LOCK(pmap);
4008 for (pa = ptepa | pmap_cache_bits(ma);
4009 pa < ptepa + size; pa += L3_PAGE_SIZE) {
4010 pdpg = pmap_allocl3e(pmap, addr, NULL);
4011 if (pdpg == NULL) {
4012 /*
4013 * The creation of mappings below is only an
4014 * optimization. If a page directory page
4015 * cannot be allocated without blocking,
4016 * continue on to the next mapping rather than
4017 * blocking.
4018 */
4019 addr += L3_PAGE_SIZE;
4020 continue;
4021 }
4022 l3e = (pml3_entry_t *)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(pdpg));
4023 l3e = &l3e[pmap_pml3e_index(addr)];
4024 if ((be64toh(*l3e) & PG_V) == 0) {
4025 pa |= PG_M | PG_A | PG_RW;
4026 pte_store(l3e, pa);
4027 pmap_resident_count_inc(pmap, L3_PAGE_SIZE / PAGE_SIZE);
4028 atomic_add_long(&pmap_l3e_mappings, 1);
4029 } else {
4030 /* Continue on if the PDE is already valid. */
4031 pdpg->ref_count--;
4032 KASSERT(pdpg->ref_count > 0,
4033 ("pmap_object_init_pt: missing reference "
4034 "to page directory page, va: 0x%lx", addr));
4035 }
4036 addr += L3_PAGE_SIZE;
4037 }
4038 ptesync();
4039 PMAP_UNLOCK(pmap);
4040 }
4041 }
4042
4043 boolean_t
mmu_radix_page_exists_quick(pmap_t pmap,vm_page_t m)4044 mmu_radix_page_exists_quick(pmap_t pmap, vm_page_t m)
4045 {
4046 struct md_page *pvh;
4047 struct rwlock *lock;
4048 pv_entry_t pv;
4049 int loops = 0;
4050 boolean_t rv;
4051
4052 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4053 ("pmap_page_exists_quick: page %p is not managed", m));
4054 CTR3(KTR_PMAP, "%s(%p, %p)", __func__, pmap, m);
4055 rv = FALSE;
4056 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
4057 rw_rlock(lock);
4058 TAILQ_FOREACH(pv, &m->md.pv_list, pv_link) {
4059 if (PV_PMAP(pv) == pmap) {
4060 rv = TRUE;
4061 break;
4062 }
4063 loops++;
4064 if (loops >= 16)
4065 break;
4066 }
4067 if (!rv && loops < 16 && (m->flags & PG_FICTITIOUS) == 0) {
4068 pvh = pa_to_pvh(VM_PAGE_TO_PHYS(m));
4069 TAILQ_FOREACH(pv, &pvh->pv_list, pv_link) {
4070 if (PV_PMAP(pv) == pmap) {
4071 rv = TRUE;
4072 break;
4073 }
4074 loops++;
4075 if (loops >= 16)
4076 break;
4077 }
4078 }
4079 rw_runlock(lock);
4080 return (rv);
4081 }
4082
4083 void
mmu_radix_page_init(vm_page_t m)4084 mmu_radix_page_init(vm_page_t m)
4085 {
4086
4087 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
4088 TAILQ_INIT(&m->md.pv_list);
4089 m->md.mdpg_cache_attrs = VM_MEMATTR_DEFAULT;
4090 }
4091
4092 int
mmu_radix_page_wired_mappings(vm_page_t m)4093 mmu_radix_page_wired_mappings(vm_page_t m)
4094 {
4095 struct rwlock *lock;
4096 struct md_page *pvh;
4097 pmap_t pmap;
4098 pt_entry_t *pte;
4099 pv_entry_t pv;
4100 int count, md_gen, pvh_gen;
4101
4102 if ((m->oflags & VPO_UNMANAGED) != 0)
4103 return (0);
4104 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
4105 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
4106 rw_rlock(lock);
4107 restart:
4108 count = 0;
4109 TAILQ_FOREACH(pv, &m->md.pv_list, pv_link) {
4110 pmap = PV_PMAP(pv);
4111 if (!PMAP_TRYLOCK(pmap)) {
4112 md_gen = m->md.pv_gen;
4113 rw_runlock(lock);
4114 PMAP_LOCK(pmap);
4115 rw_rlock(lock);
4116 if (md_gen != m->md.pv_gen) {
4117 PMAP_UNLOCK(pmap);
4118 goto restart;
4119 }
4120 }
4121 pte = pmap_pte(pmap, pv->pv_va);
4122 if ((be64toh(*pte) & PG_W) != 0)
4123 count++;
4124 PMAP_UNLOCK(pmap);
4125 }
4126 if ((m->flags & PG_FICTITIOUS) == 0) {
4127 pvh = pa_to_pvh(VM_PAGE_TO_PHYS(m));
4128 TAILQ_FOREACH(pv, &pvh->pv_list, pv_link) {
4129 pmap = PV_PMAP(pv);
4130 if (!PMAP_TRYLOCK(pmap)) {
4131 md_gen = m->md.pv_gen;
4132 pvh_gen = pvh->pv_gen;
4133 rw_runlock(lock);
4134 PMAP_LOCK(pmap);
4135 rw_rlock(lock);
4136 if (md_gen != m->md.pv_gen ||
4137 pvh_gen != pvh->pv_gen) {
4138 PMAP_UNLOCK(pmap);
4139 goto restart;
4140 }
4141 }
4142 pte = pmap_pml3e(pmap, pv->pv_va);
4143 if ((be64toh(*pte) & PG_W) != 0)
4144 count++;
4145 PMAP_UNLOCK(pmap);
4146 }
4147 }
4148 rw_runlock(lock);
4149 return (count);
4150 }
4151
4152 static void
mmu_radix_update_proctab(int pid,pml1_entry_t l1pa)4153 mmu_radix_update_proctab(int pid, pml1_entry_t l1pa)
4154 {
4155 isa3_proctab[pid].proctab0 = htobe64(RTS_SIZE | l1pa | RADIX_PGD_INDEX_SHIFT);
4156 }
4157
4158 int
mmu_radix_pinit(pmap_t pmap)4159 mmu_radix_pinit(pmap_t pmap)
4160 {
4161 vmem_addr_t pid;
4162 vm_paddr_t l1pa;
4163
4164 CTR2(KTR_PMAP, "%s(%p)", __func__, pmap);
4165
4166 /*
4167 * allocate the page directory page
4168 */
4169 pmap->pm_pml1 = uma_zalloc(zone_radix_pgd, M_WAITOK);
4170
4171 for (int j = 0; j < RADIX_PGD_SIZE_SHIFT; j++)
4172 pagezero((vm_offset_t)pmap->pm_pml1 + j * PAGE_SIZE);
4173 vm_radix_init(&pmap->pm_radix);
4174 TAILQ_INIT(&pmap->pm_pvchunk);
4175 bzero(&pmap->pm_stats, sizeof pmap->pm_stats);
4176 pmap->pm_flags = PMAP_PDE_SUPERPAGE;
4177 vmem_alloc(asid_arena, 1, M_FIRSTFIT|M_WAITOK, &pid);
4178
4179 pmap->pm_pid = pid;
4180 l1pa = DMAP_TO_PHYS((vm_offset_t)pmap->pm_pml1);
4181 mmu_radix_update_proctab(pid, l1pa);
4182 __asm __volatile("ptesync;isync" : : : "memory");
4183
4184 return (1);
4185 }
4186
4187 /*
4188 * This routine is called if the desired page table page does not exist.
4189 *
4190 * If page table page allocation fails, this routine may sleep before
4191 * returning NULL. It sleeps only if a lock pointer was given.
4192 *
4193 * Note: If a page allocation fails at page table level two or three,
4194 * one or two pages may be held during the wait, only to be released
4195 * afterwards. This conservative approach is easily argued to avoid
4196 * race conditions.
4197 */
4198 static vm_page_t
_pmap_allocpte(pmap_t pmap,vm_pindex_t ptepindex,struct rwlock ** lockp)4199 _pmap_allocpte(pmap_t pmap, vm_pindex_t ptepindex, struct rwlock **lockp)
4200 {
4201 vm_page_t m, pdppg, pdpg;
4202
4203 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4204
4205 /*
4206 * Allocate a page table page.
4207 */
4208 if ((m = vm_page_alloc_noobj(VM_ALLOC_WIRED | VM_ALLOC_ZERO)) == NULL) {
4209 if (lockp != NULL) {
4210 RELEASE_PV_LIST_LOCK(lockp);
4211 PMAP_UNLOCK(pmap);
4212 vm_wait(NULL);
4213 PMAP_LOCK(pmap);
4214 }
4215 /*
4216 * Indicate the need to retry. While waiting, the page table
4217 * page may have been allocated.
4218 */
4219 return (NULL);
4220 }
4221 m->pindex = ptepindex;
4222
4223 /*
4224 * Map the pagetable page into the process address space, if
4225 * it isn't already there.
4226 */
4227
4228 if (ptepindex >= (NUPDE + NUPDPE)) {
4229 pml1_entry_t *l1e;
4230 vm_pindex_t pml1index;
4231
4232 /* Wire up a new PDPE page */
4233 pml1index = ptepindex - (NUPDE + NUPDPE);
4234 l1e = &pmap->pm_pml1[pml1index];
4235 KASSERT((be64toh(*l1e) & PG_V) == 0,
4236 ("%s: L1 entry %#lx is valid", __func__, *l1e));
4237 pde_store(l1e, VM_PAGE_TO_PHYS(m));
4238 } else if (ptepindex >= NUPDE) {
4239 vm_pindex_t pml1index;
4240 vm_pindex_t pdpindex;
4241 pml1_entry_t *l1e;
4242 pml2_entry_t *l2e;
4243
4244 /* Wire up a new l2e page */
4245 pdpindex = ptepindex - NUPDE;
4246 pml1index = pdpindex >> RPTE_SHIFT;
4247
4248 l1e = &pmap->pm_pml1[pml1index];
4249 if ((be64toh(*l1e) & PG_V) == 0) {
4250 /* Have to allocate a new pdp, recurse */
4251 if (_pmap_allocpte(pmap, NUPDE + NUPDPE + pml1index,
4252 lockp) == NULL) {
4253 vm_page_unwire_noq(m);
4254 vm_page_free_zero(m);
4255 return (NULL);
4256 }
4257 } else {
4258 /* Add reference to l2e page */
4259 pdppg = PHYS_TO_VM_PAGE(be64toh(*l1e) & PG_FRAME);
4260 pdppg->ref_count++;
4261 }
4262 l2e = (pml2_entry_t *)PHYS_TO_DMAP(be64toh(*l1e) & PG_FRAME);
4263
4264 /* Now find the pdp page */
4265 l2e = &l2e[pdpindex & RPTE_MASK];
4266 KASSERT((be64toh(*l2e) & PG_V) == 0,
4267 ("%s: L2 entry %#lx is valid", __func__, *l2e));
4268 pde_store(l2e, VM_PAGE_TO_PHYS(m));
4269 } else {
4270 vm_pindex_t pml1index;
4271 vm_pindex_t pdpindex;
4272 pml1_entry_t *l1e;
4273 pml2_entry_t *l2e;
4274 pml3_entry_t *l3e;
4275
4276 /* Wire up a new PTE page */
4277 pdpindex = ptepindex >> RPTE_SHIFT;
4278 pml1index = pdpindex >> RPTE_SHIFT;
4279
4280 /* First, find the pdp and check that its valid. */
4281 l1e = &pmap->pm_pml1[pml1index];
4282 if ((be64toh(*l1e) & PG_V) == 0) {
4283 /* Have to allocate a new pd, recurse */
4284 if (_pmap_allocpte(pmap, NUPDE + pdpindex,
4285 lockp) == NULL) {
4286 vm_page_unwire_noq(m);
4287 vm_page_free_zero(m);
4288 return (NULL);
4289 }
4290 l2e = (pml2_entry_t *)PHYS_TO_DMAP(be64toh(*l1e) & PG_FRAME);
4291 l2e = &l2e[pdpindex & RPTE_MASK];
4292 } else {
4293 l2e = (pml2_entry_t *)PHYS_TO_DMAP(be64toh(*l1e) & PG_FRAME);
4294 l2e = &l2e[pdpindex & RPTE_MASK];
4295 if ((be64toh(*l2e) & PG_V) == 0) {
4296 /* Have to allocate a new pd, recurse */
4297 if (_pmap_allocpte(pmap, NUPDE + pdpindex,
4298 lockp) == NULL) {
4299 vm_page_unwire_noq(m);
4300 vm_page_free_zero(m);
4301 return (NULL);
4302 }
4303 } else {
4304 /* Add reference to the pd page */
4305 pdpg = PHYS_TO_VM_PAGE(be64toh(*l2e) & PG_FRAME);
4306 pdpg->ref_count++;
4307 }
4308 }
4309 l3e = (pml3_entry_t *)PHYS_TO_DMAP(be64toh(*l2e) & PG_FRAME);
4310
4311 /* Now we know where the page directory page is */
4312 l3e = &l3e[ptepindex & RPTE_MASK];
4313 KASSERT((be64toh(*l3e) & PG_V) == 0,
4314 ("%s: L3 entry %#lx is valid", __func__, *l3e));
4315 pde_store(l3e, VM_PAGE_TO_PHYS(m));
4316 }
4317
4318 pmap_resident_count_inc(pmap, 1);
4319 return (m);
4320 }
4321 static vm_page_t
pmap_allocl3e(pmap_t pmap,vm_offset_t va,struct rwlock ** lockp)4322 pmap_allocl3e(pmap_t pmap, vm_offset_t va, struct rwlock **lockp)
4323 {
4324 vm_pindex_t pdpindex, ptepindex;
4325 pml2_entry_t *pdpe;
4326 vm_page_t pdpg;
4327
4328 retry:
4329 pdpe = pmap_pml2e(pmap, va);
4330 if (pdpe != NULL && (be64toh(*pdpe) & PG_V) != 0) {
4331 /* Add a reference to the pd page. */
4332 pdpg = PHYS_TO_VM_PAGE(be64toh(*pdpe) & PG_FRAME);
4333 pdpg->ref_count++;
4334 } else {
4335 /* Allocate a pd page. */
4336 ptepindex = pmap_l3e_pindex(va);
4337 pdpindex = ptepindex >> RPTE_SHIFT;
4338 pdpg = _pmap_allocpte(pmap, NUPDE + pdpindex, lockp);
4339 if (pdpg == NULL && lockp != NULL)
4340 goto retry;
4341 }
4342 return (pdpg);
4343 }
4344
4345 static vm_page_t
pmap_allocpte(pmap_t pmap,vm_offset_t va,struct rwlock ** lockp)4346 pmap_allocpte(pmap_t pmap, vm_offset_t va, struct rwlock **lockp)
4347 {
4348 vm_pindex_t ptepindex;
4349 pml3_entry_t *pd;
4350 vm_page_t m;
4351
4352 /*
4353 * Calculate pagetable page index
4354 */
4355 ptepindex = pmap_l3e_pindex(va);
4356 retry:
4357 /*
4358 * Get the page directory entry
4359 */
4360 pd = pmap_pml3e(pmap, va);
4361
4362 /*
4363 * This supports switching from a 2MB page to a
4364 * normal 4K page.
4365 */
4366 if (pd != NULL && (be64toh(*pd) & (RPTE_LEAF | PG_V)) == (RPTE_LEAF | PG_V)) {
4367 if (!pmap_demote_l3e_locked(pmap, pd, va, lockp)) {
4368 /*
4369 * Invalidation of the 2MB page mapping may have caused
4370 * the deallocation of the underlying PD page.
4371 */
4372 pd = NULL;
4373 }
4374 }
4375
4376 /*
4377 * If the page table page is mapped, we just increment the
4378 * hold count, and activate it.
4379 */
4380 if (pd != NULL && (be64toh(*pd) & PG_V) != 0) {
4381 m = PHYS_TO_VM_PAGE(be64toh(*pd) & PG_FRAME);
4382 m->ref_count++;
4383 } else {
4384 /*
4385 * Here if the pte page isn't mapped, or if it has been
4386 * deallocated.
4387 */
4388 m = _pmap_allocpte(pmap, ptepindex, lockp);
4389 if (m == NULL && lockp != NULL)
4390 goto retry;
4391 }
4392 return (m);
4393 }
4394
4395 static void
mmu_radix_pinit0(pmap_t pmap)4396 mmu_radix_pinit0(pmap_t pmap)
4397 {
4398
4399 CTR2(KTR_PMAP, "%s(%p)", __func__, pmap);
4400 PMAP_LOCK_INIT(pmap);
4401 pmap->pm_pml1 = kernel_pmap->pm_pml1;
4402 pmap->pm_pid = kernel_pmap->pm_pid;
4403
4404 vm_radix_init(&pmap->pm_radix);
4405 TAILQ_INIT(&pmap->pm_pvchunk);
4406 bzero(&pmap->pm_stats, sizeof pmap->pm_stats);
4407 kernel_pmap->pm_flags =
4408 pmap->pm_flags = PMAP_PDE_SUPERPAGE;
4409 }
4410 /*
4411 * pmap_protect_l3e: do the things to protect a 2mpage in a process
4412 */
4413 static boolean_t
pmap_protect_l3e(pmap_t pmap,pt_entry_t * l3e,vm_offset_t sva,vm_prot_t prot)4414 pmap_protect_l3e(pmap_t pmap, pt_entry_t *l3e, vm_offset_t sva, vm_prot_t prot)
4415 {
4416 pt_entry_t newpde, oldpde;
4417 vm_offset_t eva, va;
4418 vm_page_t m;
4419 boolean_t anychanged;
4420
4421 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4422 KASSERT((sva & L3_PAGE_MASK) == 0,
4423 ("pmap_protect_l3e: sva is not 2mpage aligned"));
4424 anychanged = FALSE;
4425 retry:
4426 oldpde = newpde = be64toh(*l3e);
4427 if ((oldpde & (PG_MANAGED | PG_M | PG_RW)) ==
4428 (PG_MANAGED | PG_M | PG_RW)) {
4429 eva = sva + L3_PAGE_SIZE;
4430 for (va = sva, m = PHYS_TO_VM_PAGE(oldpde & PG_PS_FRAME);
4431 va < eva; va += PAGE_SIZE, m++)
4432 vm_page_dirty(m);
4433 }
4434 if ((prot & VM_PROT_WRITE) == 0) {
4435 newpde &= ~(PG_RW | PG_M);
4436 newpde |= RPTE_EAA_R;
4437 }
4438 if (prot & VM_PROT_EXECUTE)
4439 newpde |= PG_X;
4440 if (newpde != oldpde) {
4441 /*
4442 * As an optimization to future operations on this PDE, clear
4443 * PG_PROMOTED. The impending invalidation will remove any
4444 * lingering 4KB page mappings from the TLB.
4445 */
4446 if (!atomic_cmpset_long(l3e, htobe64(oldpde), htobe64(newpde & ~PG_PROMOTED)))
4447 goto retry;
4448 anychanged = TRUE;
4449 }
4450 return (anychanged);
4451 }
4452
4453 void
mmu_radix_protect(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,vm_prot_t prot)4454 mmu_radix_protect(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
4455 vm_prot_t prot)
4456 {
4457 vm_offset_t va_next;
4458 pml1_entry_t *l1e;
4459 pml2_entry_t *l2e;
4460 pml3_entry_t ptpaddr, *l3e;
4461 pt_entry_t *pte;
4462 boolean_t anychanged;
4463
4464 CTR5(KTR_PMAP, "%s(%p, %#x, %#x, %#x)", __func__, pmap, sva, eva,
4465 prot);
4466
4467 KASSERT((prot & ~VM_PROT_ALL) == 0, ("invalid prot %x", prot));
4468 if (prot == VM_PROT_NONE) {
4469 mmu_radix_remove(pmap, sva, eva);
4470 return;
4471 }
4472
4473 if ((prot & (VM_PROT_WRITE|VM_PROT_EXECUTE)) ==
4474 (VM_PROT_WRITE|VM_PROT_EXECUTE))
4475 return;
4476
4477 #ifdef INVARIANTS
4478 if (VERBOSE_PROTECT || pmap_logging)
4479 printf("pmap_protect(%p, %#lx, %#lx, %x) - asid: %lu\n",
4480 pmap, sva, eva, prot, pmap->pm_pid);
4481 #endif
4482 anychanged = FALSE;
4483
4484 PMAP_LOCK(pmap);
4485 for (; sva < eva; sva = va_next) {
4486 l1e = pmap_pml1e(pmap, sva);
4487 if ((be64toh(*l1e) & PG_V) == 0) {
4488 va_next = (sva + L1_PAGE_SIZE) & ~L1_PAGE_MASK;
4489 if (va_next < sva)
4490 va_next = eva;
4491 continue;
4492 }
4493
4494 l2e = pmap_l1e_to_l2e(l1e, sva);
4495 if ((be64toh(*l2e) & PG_V) == 0) {
4496 va_next = (sva + L2_PAGE_SIZE) & ~L2_PAGE_MASK;
4497 if (va_next < sva)
4498 va_next = eva;
4499 continue;
4500 }
4501
4502 va_next = (sva + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
4503 if (va_next < sva)
4504 va_next = eva;
4505
4506 l3e = pmap_l2e_to_l3e(l2e, sva);
4507 ptpaddr = be64toh(*l3e);
4508
4509 /*
4510 * Weed out invalid mappings.
4511 */
4512 if (ptpaddr == 0)
4513 continue;
4514
4515 /*
4516 * Check for large page.
4517 */
4518 if ((ptpaddr & RPTE_LEAF) != 0) {
4519 /*
4520 * Are we protecting the entire large page? If not,
4521 * demote the mapping and fall through.
4522 */
4523 if (sva + L3_PAGE_SIZE == va_next && eva >= va_next) {
4524 if (pmap_protect_l3e(pmap, l3e, sva, prot))
4525 anychanged = TRUE;
4526 continue;
4527 } else if (!pmap_demote_l3e(pmap, l3e, sva)) {
4528 /*
4529 * The large page mapping was destroyed.
4530 */
4531 continue;
4532 }
4533 }
4534
4535 if (va_next > eva)
4536 va_next = eva;
4537
4538 for (pte = pmap_l3e_to_pte(l3e, sva); sva != va_next; pte++,
4539 sva += PAGE_SIZE) {
4540 pt_entry_t obits, pbits;
4541 vm_page_t m;
4542
4543 retry:
4544 MPASS(pte == pmap_pte(pmap, sva));
4545 obits = pbits = be64toh(*pte);
4546 if ((pbits & PG_V) == 0)
4547 continue;
4548
4549 if ((prot & VM_PROT_WRITE) == 0) {
4550 if ((pbits & (PG_MANAGED | PG_M | PG_RW)) ==
4551 (PG_MANAGED | PG_M | PG_RW)) {
4552 m = PHYS_TO_VM_PAGE(pbits & PG_FRAME);
4553 vm_page_dirty(m);
4554 }
4555 pbits &= ~(PG_RW | PG_M);
4556 pbits |= RPTE_EAA_R;
4557 }
4558 if (prot & VM_PROT_EXECUTE)
4559 pbits |= PG_X;
4560
4561 if (pbits != obits) {
4562 if (!atomic_cmpset_long(pte, htobe64(obits), htobe64(pbits)))
4563 goto retry;
4564 if (obits & (PG_A|PG_M)) {
4565 anychanged = TRUE;
4566 #ifdef INVARIANTS
4567 if (VERBOSE_PROTECT || pmap_logging)
4568 printf("%#lx %#lx -> %#lx\n",
4569 sva, obits, pbits);
4570 #endif
4571 }
4572 }
4573 }
4574 }
4575 if (anychanged)
4576 pmap_invalidate_all(pmap);
4577 PMAP_UNLOCK(pmap);
4578 }
4579
4580 void
mmu_radix_qenter(vm_offset_t sva,vm_page_t * ma,int count)4581 mmu_radix_qenter(vm_offset_t sva, vm_page_t *ma, int count)
4582 {
4583
4584 CTR4(KTR_PMAP, "%s(%#x, %p, %d)", __func__, sva, ma, count);
4585 pt_entry_t oldpte, pa, *pte;
4586 vm_page_t m;
4587 uint64_t cache_bits, attr_bits;
4588 vm_offset_t va;
4589
4590 oldpte = 0;
4591 attr_bits = RPTE_EAA_R | RPTE_EAA_W | RPTE_EAA_P | PG_M | PG_A;
4592 va = sva;
4593 pte = kvtopte(va);
4594 while (va < sva + PAGE_SIZE * count) {
4595 if (__predict_false((va & L3_PAGE_MASK) == 0))
4596 pte = kvtopte(va);
4597 MPASS(pte == pmap_pte(kernel_pmap, va));
4598
4599 /*
4600 * XXX there has to be a more efficient way than traversing
4601 * the page table every time - but go for correctness for
4602 * today
4603 */
4604
4605 m = *ma++;
4606 cache_bits = pmap_cache_bits(m->md.mdpg_cache_attrs);
4607 pa = VM_PAGE_TO_PHYS(m) | cache_bits | attr_bits;
4608 if (be64toh(*pte) != pa) {
4609 oldpte |= be64toh(*pte);
4610 pte_store(pte, pa);
4611 }
4612 va += PAGE_SIZE;
4613 pte++;
4614 }
4615 if (__predict_false((oldpte & RPTE_VALID) != 0))
4616 pmap_invalidate_range(kernel_pmap, sva, sva + count *
4617 PAGE_SIZE);
4618 else
4619 ptesync();
4620 }
4621
4622 void
mmu_radix_qremove(vm_offset_t sva,int count)4623 mmu_radix_qremove(vm_offset_t sva, int count)
4624 {
4625 vm_offset_t va;
4626 pt_entry_t *pte;
4627
4628 CTR3(KTR_PMAP, "%s(%#x, %d)", __func__, sva, count);
4629 KASSERT(sva >= VM_MIN_KERNEL_ADDRESS, ("usermode or dmap va %lx", sva));
4630
4631 va = sva;
4632 pte = kvtopte(va);
4633 while (va < sva + PAGE_SIZE * count) {
4634 if (__predict_false((va & L3_PAGE_MASK) == 0))
4635 pte = kvtopte(va);
4636 pte_clear(pte);
4637 pte++;
4638 va += PAGE_SIZE;
4639 }
4640 pmap_invalidate_range(kernel_pmap, sva, va);
4641 }
4642
4643 /***************************************************
4644 * Page table page management routines.....
4645 ***************************************************/
4646 /*
4647 * Schedule the specified unused page table page to be freed. Specifically,
4648 * add the page to the specified list of pages that will be released to the
4649 * physical memory manager after the TLB has been updated.
4650 */
4651 static __inline void
pmap_add_delayed_free_list(vm_page_t m,struct spglist * free,boolean_t set_PG_ZERO)4652 pmap_add_delayed_free_list(vm_page_t m, struct spglist *free,
4653 boolean_t set_PG_ZERO)
4654 {
4655
4656 if (set_PG_ZERO)
4657 m->flags |= PG_ZERO;
4658 else
4659 m->flags &= ~PG_ZERO;
4660 SLIST_INSERT_HEAD(free, m, plinks.s.ss);
4661 }
4662
4663 /*
4664 * Inserts the specified page table page into the specified pmap's collection
4665 * of idle page table pages. Each of a pmap's page table pages is responsible
4666 * for mapping a distinct range of virtual addresses. The pmap's collection is
4667 * ordered by this virtual address range.
4668 */
4669 static __inline int
pmap_insert_pt_page(pmap_t pmap,vm_page_t mpte)4670 pmap_insert_pt_page(pmap_t pmap, vm_page_t mpte)
4671 {
4672
4673 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4674 return (vm_radix_insert(&pmap->pm_radix, mpte));
4675 }
4676
4677 /*
4678 * Removes the page table page mapping the specified virtual address from the
4679 * specified pmap's collection of idle page table pages, and returns it.
4680 * Otherwise, returns NULL if there is no page table page corresponding to the
4681 * specified virtual address.
4682 */
4683 static __inline vm_page_t
pmap_remove_pt_page(pmap_t pmap,vm_offset_t va)4684 pmap_remove_pt_page(pmap_t pmap, vm_offset_t va)
4685 {
4686
4687 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4688 return (vm_radix_remove(&pmap->pm_radix, pmap_l3e_pindex(va)));
4689 }
4690
4691 /*
4692 * Decrements a page table page's wire count, which is used to record the
4693 * number of valid page table entries within the page. If the wire count
4694 * drops to zero, then the page table page is unmapped. Returns TRUE if the
4695 * page table page was unmapped and FALSE otherwise.
4696 */
4697 static inline boolean_t
pmap_unwire_ptp(pmap_t pmap,vm_offset_t va,vm_page_t m,struct spglist * free)4698 pmap_unwire_ptp(pmap_t pmap, vm_offset_t va, vm_page_t m, struct spglist *free)
4699 {
4700
4701 --m->ref_count;
4702 if (m->ref_count == 0) {
4703 _pmap_unwire_ptp(pmap, va, m, free);
4704 return (TRUE);
4705 } else
4706 return (FALSE);
4707 }
4708
4709 static void
_pmap_unwire_ptp(pmap_t pmap,vm_offset_t va,vm_page_t m,struct spglist * free)4710 _pmap_unwire_ptp(pmap_t pmap, vm_offset_t va, vm_page_t m, struct spglist *free)
4711 {
4712
4713 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4714 /*
4715 * unmap the page table page
4716 */
4717 if (m->pindex >= (NUPDE + NUPDPE)) {
4718 /* PDP page */
4719 pml1_entry_t *pml1;
4720 pml1 = pmap_pml1e(pmap, va);
4721 *pml1 = 0;
4722 } else if (m->pindex >= NUPDE) {
4723 /* PD page */
4724 pml2_entry_t *l2e;
4725 l2e = pmap_pml2e(pmap, va);
4726 *l2e = 0;
4727 } else {
4728 /* PTE page */
4729 pml3_entry_t *l3e;
4730 l3e = pmap_pml3e(pmap, va);
4731 *l3e = 0;
4732 }
4733 pmap_resident_count_dec(pmap, 1);
4734 if (m->pindex < NUPDE) {
4735 /* We just released a PT, unhold the matching PD */
4736 vm_page_t pdpg;
4737
4738 pdpg = PHYS_TO_VM_PAGE(be64toh(*pmap_pml2e(pmap, va)) & PG_FRAME);
4739 pmap_unwire_ptp(pmap, va, pdpg, free);
4740 }
4741 if (m->pindex >= NUPDE && m->pindex < (NUPDE + NUPDPE)) {
4742 /* We just released a PD, unhold the matching PDP */
4743 vm_page_t pdppg;
4744
4745 pdppg = PHYS_TO_VM_PAGE(be64toh(*pmap_pml1e(pmap, va)) & PG_FRAME);
4746 pmap_unwire_ptp(pmap, va, pdppg, free);
4747 }
4748
4749 /*
4750 * Put page on a list so that it is released after
4751 * *ALL* TLB shootdown is done
4752 */
4753 pmap_add_delayed_free_list(m, free, TRUE);
4754 }
4755
4756 /*
4757 * After removing a page table entry, this routine is used to
4758 * conditionally free the page, and manage the hold/wire counts.
4759 */
4760 static int
pmap_unuse_pt(pmap_t pmap,vm_offset_t va,pml3_entry_t ptepde,struct spglist * free)4761 pmap_unuse_pt(pmap_t pmap, vm_offset_t va, pml3_entry_t ptepde,
4762 struct spglist *free)
4763 {
4764 vm_page_t mpte;
4765
4766 if (va >= VM_MAXUSER_ADDRESS)
4767 return (0);
4768 KASSERT(ptepde != 0, ("pmap_unuse_pt: ptepde != 0"));
4769 mpte = PHYS_TO_VM_PAGE(ptepde & PG_FRAME);
4770 return (pmap_unwire_ptp(pmap, va, mpte, free));
4771 }
4772
4773 void
mmu_radix_release(pmap_t pmap)4774 mmu_radix_release(pmap_t pmap)
4775 {
4776
4777 CTR2(KTR_PMAP, "%s(%p)", __func__, pmap);
4778 KASSERT(pmap->pm_stats.resident_count == 0,
4779 ("pmap_release: pmap resident count %ld != 0",
4780 pmap->pm_stats.resident_count));
4781 KASSERT(vm_radix_is_empty(&pmap->pm_radix),
4782 ("pmap_release: pmap has reserved page table page(s)"));
4783
4784 pmap_invalidate_all(pmap);
4785 isa3_proctab[pmap->pm_pid].proctab0 = 0;
4786 uma_zfree(zone_radix_pgd, pmap->pm_pml1);
4787 vmem_free(asid_arena, pmap->pm_pid, 1);
4788 }
4789
4790 /*
4791 * Create the PV entry for a 2MB page mapping. Always returns true unless the
4792 * flag PMAP_ENTER_NORECLAIM is specified. If that flag is specified, returns
4793 * false if the PV entry cannot be allocated without resorting to reclamation.
4794 */
4795 static bool
pmap_pv_insert_l3e(pmap_t pmap,vm_offset_t va,pml3_entry_t pde,u_int flags,struct rwlock ** lockp)4796 pmap_pv_insert_l3e(pmap_t pmap, vm_offset_t va, pml3_entry_t pde, u_int flags,
4797 struct rwlock **lockp)
4798 {
4799 struct md_page *pvh;
4800 pv_entry_t pv;
4801 vm_paddr_t pa;
4802
4803 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4804 /* Pass NULL instead of the lock pointer to disable reclamation. */
4805 if ((pv = get_pv_entry(pmap, (flags & PMAP_ENTER_NORECLAIM) != 0 ?
4806 NULL : lockp)) == NULL)
4807 return (false);
4808 pv->pv_va = va;
4809 pa = pde & PG_PS_FRAME;
4810 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa);
4811 pvh = pa_to_pvh(pa);
4812 TAILQ_INSERT_TAIL(&pvh->pv_list, pv, pv_link);
4813 pvh->pv_gen++;
4814 return (true);
4815 }
4816
4817 /*
4818 * Fills a page table page with mappings to consecutive physical pages.
4819 */
4820 static void
pmap_fill_ptp(pt_entry_t * firstpte,pt_entry_t newpte)4821 pmap_fill_ptp(pt_entry_t *firstpte, pt_entry_t newpte)
4822 {
4823 pt_entry_t *pte;
4824
4825 for (pte = firstpte; pte < firstpte + NPTEPG; pte++) {
4826 *pte = htobe64(newpte);
4827 newpte += PAGE_SIZE;
4828 }
4829 }
4830
4831 static boolean_t
pmap_demote_l3e(pmap_t pmap,pml3_entry_t * pde,vm_offset_t va)4832 pmap_demote_l3e(pmap_t pmap, pml3_entry_t *pde, vm_offset_t va)
4833 {
4834 struct rwlock *lock;
4835 boolean_t rv;
4836
4837 lock = NULL;
4838 rv = pmap_demote_l3e_locked(pmap, pde, va, &lock);
4839 if (lock != NULL)
4840 rw_wunlock(lock);
4841 return (rv);
4842 }
4843
4844 static boolean_t
pmap_demote_l3e_locked(pmap_t pmap,pml3_entry_t * l3e,vm_offset_t va,struct rwlock ** lockp)4845 pmap_demote_l3e_locked(pmap_t pmap, pml3_entry_t *l3e, vm_offset_t va,
4846 struct rwlock **lockp)
4847 {
4848 pml3_entry_t oldpde;
4849 pt_entry_t *firstpte;
4850 vm_paddr_t mptepa;
4851 vm_page_t mpte;
4852 struct spglist free;
4853 vm_offset_t sva;
4854
4855 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4856 oldpde = be64toh(*l3e);
4857 KASSERT((oldpde & (RPTE_LEAF | PG_V)) == (RPTE_LEAF | PG_V),
4858 ("pmap_demote_l3e: oldpde is missing RPTE_LEAF and/or PG_V %lx",
4859 oldpde));
4860 if ((oldpde & PG_A) == 0 || (mpte = pmap_remove_pt_page(pmap, va)) ==
4861 NULL) {
4862 KASSERT((oldpde & PG_W) == 0,
4863 ("pmap_demote_l3e: page table page for a wired mapping"
4864 " is missing"));
4865
4866 /*
4867 * Invalidate the 2MB page mapping and return "failure" if the
4868 * mapping was never accessed or the allocation of the new
4869 * page table page fails. If the 2MB page mapping belongs to
4870 * the direct map region of the kernel's address space, then
4871 * the page allocation request specifies the highest possible
4872 * priority (VM_ALLOC_INTERRUPT). Otherwise, the priority is
4873 * normal. Page table pages are preallocated for every other
4874 * part of the kernel address space, so the direct map region
4875 * is the only part of the kernel address space that must be
4876 * handled here.
4877 */
4878 if ((oldpde & PG_A) == 0 || (mpte = vm_page_alloc_noobj(
4879 (va >= DMAP_MIN_ADDRESS && va < DMAP_MAX_ADDRESS ?
4880 VM_ALLOC_INTERRUPT : 0) | VM_ALLOC_WIRED)) == NULL) {
4881 SLIST_INIT(&free);
4882 sva = trunc_2mpage(va);
4883 pmap_remove_l3e(pmap, l3e, sva, &free, lockp);
4884 pmap_invalidate_l3e_page(pmap, sva, oldpde);
4885 vm_page_free_pages_toq(&free, true);
4886 CTR2(KTR_PMAP, "pmap_demote_l3e: failure for va %#lx"
4887 " in pmap %p", va, pmap);
4888 return (FALSE);
4889 }
4890 mpte->pindex = pmap_l3e_pindex(va);
4891 if (va < VM_MAXUSER_ADDRESS)
4892 pmap_resident_count_inc(pmap, 1);
4893 }
4894 mptepa = VM_PAGE_TO_PHYS(mpte);
4895 firstpte = (pt_entry_t *)PHYS_TO_DMAP(mptepa);
4896 KASSERT((oldpde & PG_A) != 0,
4897 ("pmap_demote_l3e: oldpde is missing PG_A"));
4898 KASSERT((oldpde & (PG_M | PG_RW)) != PG_RW,
4899 ("pmap_demote_l3e: oldpde is missing PG_M"));
4900
4901 /*
4902 * If the page table page is new, initialize it.
4903 */
4904 if (mpte->ref_count == 1) {
4905 mpte->ref_count = NPTEPG;
4906 pmap_fill_ptp(firstpte, oldpde);
4907 }
4908
4909 KASSERT((be64toh(*firstpte) & PG_FRAME) == (oldpde & PG_FRAME),
4910 ("pmap_demote_l3e: firstpte and newpte map different physical"
4911 " addresses"));
4912
4913 /*
4914 * If the mapping has changed attributes, update the page table
4915 * entries.
4916 */
4917 if ((be64toh(*firstpte) & PG_PTE_PROMOTE) != (oldpde & PG_PTE_PROMOTE))
4918 pmap_fill_ptp(firstpte, oldpde);
4919
4920 /*
4921 * The spare PV entries must be reserved prior to demoting the
4922 * mapping, that is, prior to changing the PDE. Otherwise, the state
4923 * of the PDE and the PV lists will be inconsistent, which can result
4924 * in reclaim_pv_chunk() attempting to remove a PV entry from the
4925 * wrong PV list and pmap_pv_demote_l3e() failing to find the expected
4926 * PV entry for the 2MB page mapping that is being demoted.
4927 */
4928 if ((oldpde & PG_MANAGED) != 0)
4929 reserve_pv_entries(pmap, NPTEPG - 1, lockp);
4930
4931 /*
4932 * Demote the mapping. This pmap is locked. The old PDE has
4933 * PG_A set. If the old PDE has PG_RW set, it also has PG_M
4934 * set. Thus, there is no danger of a race with another
4935 * processor changing the setting of PG_A and/or PG_M between
4936 * the read above and the store below.
4937 */
4938 pde_store(l3e, mptepa);
4939 pmap_invalidate_l3e_page(pmap, trunc_2mpage(va), oldpde);
4940 /*
4941 * Demote the PV entry.
4942 */
4943 if ((oldpde & PG_MANAGED) != 0)
4944 pmap_pv_demote_l3e(pmap, va, oldpde & PG_PS_FRAME, lockp);
4945
4946 atomic_add_long(&pmap_l3e_demotions, 1);
4947 CTR2(KTR_PMAP, "pmap_demote_l3e: success for va %#lx"
4948 " in pmap %p", va, pmap);
4949 return (TRUE);
4950 }
4951
4952 /*
4953 * pmap_remove_kernel_pde: Remove a kernel superpage mapping.
4954 */
4955 static void
pmap_remove_kernel_l3e(pmap_t pmap,pml3_entry_t * l3e,vm_offset_t va)4956 pmap_remove_kernel_l3e(pmap_t pmap, pml3_entry_t *l3e, vm_offset_t va)
4957 {
4958 vm_paddr_t mptepa;
4959 vm_page_t mpte;
4960
4961 KASSERT(pmap == kernel_pmap, ("pmap %p is not kernel_pmap", pmap));
4962 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4963 mpte = pmap_remove_pt_page(pmap, va);
4964 if (mpte == NULL)
4965 panic("pmap_remove_kernel_pde: Missing pt page.");
4966
4967 mptepa = VM_PAGE_TO_PHYS(mpte);
4968
4969 /*
4970 * Initialize the page table page.
4971 */
4972 pagezero(PHYS_TO_DMAP(mptepa));
4973
4974 /*
4975 * Demote the mapping.
4976 */
4977 pde_store(l3e, mptepa);
4978 ptesync();
4979 }
4980
4981 /*
4982 * pmap_remove_l3e: do the things to unmap a superpage in a process
4983 */
4984 static int
pmap_remove_l3e(pmap_t pmap,pml3_entry_t * pdq,vm_offset_t sva,struct spglist * free,struct rwlock ** lockp)4985 pmap_remove_l3e(pmap_t pmap, pml3_entry_t *pdq, vm_offset_t sva,
4986 struct spglist *free, struct rwlock **lockp)
4987 {
4988 struct md_page *pvh;
4989 pml3_entry_t oldpde;
4990 vm_offset_t eva, va;
4991 vm_page_t m, mpte;
4992
4993 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4994 KASSERT((sva & L3_PAGE_MASK) == 0,
4995 ("pmap_remove_l3e: sva is not 2mpage aligned"));
4996 oldpde = be64toh(pte_load_clear(pdq));
4997 if (oldpde & PG_W)
4998 pmap->pm_stats.wired_count -= (L3_PAGE_SIZE / PAGE_SIZE);
4999 pmap_resident_count_dec(pmap, L3_PAGE_SIZE / PAGE_SIZE);
5000 if (oldpde & PG_MANAGED) {
5001 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, oldpde & PG_PS_FRAME);
5002 pvh = pa_to_pvh(oldpde & PG_PS_FRAME);
5003 pmap_pvh_free(pvh, pmap, sva);
5004 eva = sva + L3_PAGE_SIZE;
5005 for (va = sva, m = PHYS_TO_VM_PAGE(oldpde & PG_PS_FRAME);
5006 va < eva; va += PAGE_SIZE, m++) {
5007 if ((oldpde & (PG_M | PG_RW)) == (PG_M | PG_RW))
5008 vm_page_dirty(m);
5009 if (oldpde & PG_A)
5010 vm_page_aflag_set(m, PGA_REFERENCED);
5011 if (TAILQ_EMPTY(&m->md.pv_list) &&
5012 TAILQ_EMPTY(&pvh->pv_list))
5013 vm_page_aflag_clear(m, PGA_WRITEABLE);
5014 }
5015 }
5016 if (pmap == kernel_pmap) {
5017 pmap_remove_kernel_l3e(pmap, pdq, sva);
5018 } else {
5019 mpte = pmap_remove_pt_page(pmap, sva);
5020 if (mpte != NULL) {
5021 pmap_resident_count_dec(pmap, 1);
5022 KASSERT(mpte->ref_count == NPTEPG,
5023 ("pmap_remove_l3e: pte page wire count error"));
5024 mpte->ref_count = 0;
5025 pmap_add_delayed_free_list(mpte, free, FALSE);
5026 }
5027 }
5028 return (pmap_unuse_pt(pmap, sva, be64toh(*pmap_pml2e(pmap, sva)), free));
5029 }
5030
5031 /*
5032 * pmap_remove_pte: do the things to unmap a page in a process
5033 */
5034 static int
pmap_remove_pte(pmap_t pmap,pt_entry_t * ptq,vm_offset_t va,pml3_entry_t ptepde,struct spglist * free,struct rwlock ** lockp)5035 pmap_remove_pte(pmap_t pmap, pt_entry_t *ptq, vm_offset_t va,
5036 pml3_entry_t ptepde, struct spglist *free, struct rwlock **lockp)
5037 {
5038 struct md_page *pvh;
5039 pt_entry_t oldpte;
5040 vm_page_t m;
5041
5042 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5043 oldpte = be64toh(pte_load_clear(ptq));
5044 if (oldpte & RPTE_WIRED)
5045 pmap->pm_stats.wired_count -= 1;
5046 pmap_resident_count_dec(pmap, 1);
5047 if (oldpte & RPTE_MANAGED) {
5048 m = PHYS_TO_VM_PAGE(oldpte & PG_FRAME);
5049 if ((oldpte & (PG_M | PG_RW)) == (PG_M | PG_RW))
5050 vm_page_dirty(m);
5051 if (oldpte & PG_A)
5052 vm_page_aflag_set(m, PGA_REFERENCED);
5053 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
5054 pmap_pvh_free(&m->md, pmap, va);
5055 if (TAILQ_EMPTY(&m->md.pv_list) &&
5056 (m->flags & PG_FICTITIOUS) == 0) {
5057 pvh = pa_to_pvh(VM_PAGE_TO_PHYS(m));
5058 if (TAILQ_EMPTY(&pvh->pv_list))
5059 vm_page_aflag_clear(m, PGA_WRITEABLE);
5060 }
5061 }
5062 return (pmap_unuse_pt(pmap, va, ptepde, free));
5063 }
5064
5065 /*
5066 * Remove a single page from a process address space
5067 */
5068 static bool
pmap_remove_page(pmap_t pmap,vm_offset_t va,pml3_entry_t * l3e,struct spglist * free)5069 pmap_remove_page(pmap_t pmap, vm_offset_t va, pml3_entry_t *l3e,
5070 struct spglist *free)
5071 {
5072 struct rwlock *lock;
5073 pt_entry_t *pte;
5074 bool invalidate_all;
5075
5076 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5077 if ((be64toh(*l3e) & RPTE_VALID) == 0) {
5078 return (false);
5079 }
5080 pte = pmap_l3e_to_pte(l3e, va);
5081 if ((be64toh(*pte) & RPTE_VALID) == 0) {
5082 return (false);
5083 }
5084 lock = NULL;
5085
5086 invalidate_all = pmap_remove_pte(pmap, pte, va, be64toh(*l3e), free, &lock);
5087 if (lock != NULL)
5088 rw_wunlock(lock);
5089 if (!invalidate_all)
5090 pmap_invalidate_page(pmap, va);
5091 return (invalidate_all);
5092 }
5093
5094 /*
5095 * Removes the specified range of addresses from the page table page.
5096 */
5097 static bool
pmap_remove_ptes(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,pml3_entry_t * l3e,struct spglist * free,struct rwlock ** lockp)5098 pmap_remove_ptes(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
5099 pml3_entry_t *l3e, struct spglist *free, struct rwlock **lockp)
5100 {
5101 pt_entry_t *pte;
5102 vm_offset_t va;
5103 bool anyvalid;
5104
5105 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5106 anyvalid = false;
5107 va = eva;
5108 for (pte = pmap_l3e_to_pte(l3e, sva); sva != eva; pte++,
5109 sva += PAGE_SIZE) {
5110 MPASS(pte == pmap_pte(pmap, sva));
5111 if (*pte == 0) {
5112 if (va != eva) {
5113 anyvalid = true;
5114 va = eva;
5115 }
5116 continue;
5117 }
5118 if (va == eva)
5119 va = sva;
5120 if (pmap_remove_pte(pmap, pte, sva, be64toh(*l3e), free, lockp)) {
5121 anyvalid = true;
5122 sva += PAGE_SIZE;
5123 break;
5124 }
5125 }
5126 if (anyvalid)
5127 pmap_invalidate_all(pmap);
5128 else if (va != eva)
5129 pmap_invalidate_range(pmap, va, sva);
5130 return (anyvalid);
5131 }
5132
5133 void
mmu_radix_remove(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)5134 mmu_radix_remove(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
5135 {
5136 struct rwlock *lock;
5137 vm_offset_t va_next;
5138 pml1_entry_t *l1e;
5139 pml2_entry_t *l2e;
5140 pml3_entry_t ptpaddr, *l3e;
5141 struct spglist free;
5142 bool anyvalid;
5143
5144 CTR4(KTR_PMAP, "%s(%p, %#x, %#x)", __func__, pmap, sva, eva);
5145
5146 /*
5147 * Perform an unsynchronized read. This is, however, safe.
5148 */
5149 if (pmap->pm_stats.resident_count == 0)
5150 return;
5151
5152 anyvalid = false;
5153 SLIST_INIT(&free);
5154
5155 /* XXX something fishy here */
5156 sva = (sva + PAGE_MASK) & ~PAGE_MASK;
5157 eva = (eva + PAGE_MASK) & ~PAGE_MASK;
5158
5159 PMAP_LOCK(pmap);
5160
5161 /*
5162 * special handling of removing one page. a very
5163 * common operation and easy to short circuit some
5164 * code.
5165 */
5166 if (sva + PAGE_SIZE == eva) {
5167 l3e = pmap_pml3e(pmap, sva);
5168 if (l3e && (be64toh(*l3e) & RPTE_LEAF) == 0) {
5169 anyvalid = pmap_remove_page(pmap, sva, l3e, &free);
5170 goto out;
5171 }
5172 }
5173
5174 lock = NULL;
5175 for (; sva < eva; sva = va_next) {
5176 if (pmap->pm_stats.resident_count == 0)
5177 break;
5178 l1e = pmap_pml1e(pmap, sva);
5179 if (l1e == NULL || (be64toh(*l1e) & PG_V) == 0) {
5180 va_next = (sva + L1_PAGE_SIZE) & ~L1_PAGE_MASK;
5181 if (va_next < sva)
5182 va_next = eva;
5183 continue;
5184 }
5185
5186 l2e = pmap_l1e_to_l2e(l1e, sva);
5187 if (l2e == NULL || (be64toh(*l2e) & PG_V) == 0) {
5188 va_next = (sva + L2_PAGE_SIZE) & ~L2_PAGE_MASK;
5189 if (va_next < sva)
5190 va_next = eva;
5191 continue;
5192 }
5193
5194 /*
5195 * Calculate index for next page table.
5196 */
5197 va_next = (sva + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
5198 if (va_next < sva)
5199 va_next = eva;
5200
5201 l3e = pmap_l2e_to_l3e(l2e, sva);
5202 ptpaddr = be64toh(*l3e);
5203
5204 /*
5205 * Weed out invalid mappings.
5206 */
5207 if (ptpaddr == 0)
5208 continue;
5209
5210 /*
5211 * Check for large page.
5212 */
5213 if ((ptpaddr & RPTE_LEAF) != 0) {
5214 /*
5215 * Are we removing the entire large page? If not,
5216 * demote the mapping and fall through.
5217 */
5218 if (sva + L3_PAGE_SIZE == va_next && eva >= va_next) {
5219 pmap_remove_l3e(pmap, l3e, sva, &free, &lock);
5220 anyvalid = true;
5221 continue;
5222 } else if (!pmap_demote_l3e_locked(pmap, l3e, sva,
5223 &lock)) {
5224 /* The large page mapping was destroyed. */
5225 continue;
5226 } else
5227 ptpaddr = be64toh(*l3e);
5228 }
5229
5230 /*
5231 * Limit our scan to either the end of the va represented
5232 * by the current page table page, or to the end of the
5233 * range being removed.
5234 */
5235 if (va_next > eva)
5236 va_next = eva;
5237
5238 if (pmap_remove_ptes(pmap, sva, va_next, l3e, &free, &lock))
5239 anyvalid = true;
5240 }
5241 if (lock != NULL)
5242 rw_wunlock(lock);
5243 out:
5244 if (anyvalid)
5245 pmap_invalidate_all(pmap);
5246 PMAP_UNLOCK(pmap);
5247 vm_page_free_pages_toq(&free, true);
5248 }
5249
5250 void
mmu_radix_remove_all(vm_page_t m)5251 mmu_radix_remove_all(vm_page_t m)
5252 {
5253 struct md_page *pvh;
5254 pv_entry_t pv;
5255 pmap_t pmap;
5256 struct rwlock *lock;
5257 pt_entry_t *pte, tpte;
5258 pml3_entry_t *l3e;
5259 vm_offset_t va;
5260 struct spglist free;
5261 int pvh_gen, md_gen;
5262
5263 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
5264 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
5265 ("pmap_remove_all: page %p is not managed", m));
5266 SLIST_INIT(&free);
5267 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
5268 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy :
5269 pa_to_pvh(VM_PAGE_TO_PHYS(m));
5270 retry:
5271 rw_wlock(lock);
5272 while ((pv = TAILQ_FIRST(&pvh->pv_list)) != NULL) {
5273 pmap = PV_PMAP(pv);
5274 if (!PMAP_TRYLOCK(pmap)) {
5275 pvh_gen = pvh->pv_gen;
5276 rw_wunlock(lock);
5277 PMAP_LOCK(pmap);
5278 rw_wlock(lock);
5279 if (pvh_gen != pvh->pv_gen) {
5280 rw_wunlock(lock);
5281 PMAP_UNLOCK(pmap);
5282 goto retry;
5283 }
5284 }
5285 va = pv->pv_va;
5286 l3e = pmap_pml3e(pmap, va);
5287 (void)pmap_demote_l3e_locked(pmap, l3e, va, &lock);
5288 PMAP_UNLOCK(pmap);
5289 }
5290 while ((pv = TAILQ_FIRST(&m->md.pv_list)) != NULL) {
5291 pmap = PV_PMAP(pv);
5292 if (!PMAP_TRYLOCK(pmap)) {
5293 pvh_gen = pvh->pv_gen;
5294 md_gen = m->md.pv_gen;
5295 rw_wunlock(lock);
5296 PMAP_LOCK(pmap);
5297 rw_wlock(lock);
5298 if (pvh_gen != pvh->pv_gen || md_gen != m->md.pv_gen) {
5299 rw_wunlock(lock);
5300 PMAP_UNLOCK(pmap);
5301 goto retry;
5302 }
5303 }
5304 pmap_resident_count_dec(pmap, 1);
5305 l3e = pmap_pml3e(pmap, pv->pv_va);
5306 KASSERT((be64toh(*l3e) & RPTE_LEAF) == 0, ("pmap_remove_all: found"
5307 " a 2mpage in page %p's pv list", m));
5308 pte = pmap_l3e_to_pte(l3e, pv->pv_va);
5309 tpte = be64toh(pte_load_clear(pte));
5310 if (tpte & PG_W)
5311 pmap->pm_stats.wired_count--;
5312 if (tpte & PG_A)
5313 vm_page_aflag_set(m, PGA_REFERENCED);
5314
5315 /*
5316 * Update the vm_page_t clean and reference bits.
5317 */
5318 if ((tpte & (PG_M | PG_RW)) == (PG_M | PG_RW))
5319 vm_page_dirty(m);
5320 pmap_unuse_pt(pmap, pv->pv_va, be64toh(*l3e), &free);
5321 pmap_invalidate_page(pmap, pv->pv_va);
5322 TAILQ_REMOVE(&m->md.pv_list, pv, pv_link);
5323 m->md.pv_gen++;
5324 free_pv_entry(pmap, pv);
5325 PMAP_UNLOCK(pmap);
5326 }
5327 vm_page_aflag_clear(m, PGA_WRITEABLE);
5328 rw_wunlock(lock);
5329 vm_page_free_pages_toq(&free, true);
5330 }
5331
5332 /*
5333 * Destroy all managed, non-wired mappings in the given user-space
5334 * pmap. This pmap cannot be active on any processor besides the
5335 * caller.
5336 *
5337 * This function cannot be applied to the kernel pmap. Moreover, it
5338 * is not intended for general use. It is only to be used during
5339 * process termination. Consequently, it can be implemented in ways
5340 * that make it faster than pmap_remove(). First, it can more quickly
5341 * destroy mappings by iterating over the pmap's collection of PV
5342 * entries, rather than searching the page table. Second, it doesn't
5343 * have to test and clear the page table entries atomically, because
5344 * no processor is currently accessing the user address space. In
5345 * particular, a page table entry's dirty bit won't change state once
5346 * this function starts.
5347 *
5348 * Although this function destroys all of the pmap's managed,
5349 * non-wired mappings, it can delay and batch the invalidation of TLB
5350 * entries without calling pmap_delayed_invl_started() and
5351 * pmap_delayed_invl_finished(). Because the pmap is not active on
5352 * any other processor, none of these TLB entries will ever be used
5353 * before their eventual invalidation. Consequently, there is no need
5354 * for either pmap_remove_all() or pmap_remove_write() to wait for
5355 * that eventual TLB invalidation.
5356 */
5357
5358 void
mmu_radix_remove_pages(pmap_t pmap)5359 mmu_radix_remove_pages(pmap_t pmap)
5360 {
5361
5362 CTR2(KTR_PMAP, "%s(%p)", __func__, pmap);
5363 pml3_entry_t ptel3e;
5364 pt_entry_t *pte, tpte;
5365 struct spglist free;
5366 vm_page_t m, mpte, mt;
5367 pv_entry_t pv;
5368 struct md_page *pvh;
5369 struct pv_chunk *pc, *npc;
5370 struct rwlock *lock;
5371 int64_t bit;
5372 uint64_t inuse, bitmask;
5373 int allfree, field, freed, idx;
5374 boolean_t superpage;
5375 vm_paddr_t pa;
5376
5377 /*
5378 * Assert that the given pmap is only active on the current
5379 * CPU. Unfortunately, we cannot block another CPU from
5380 * activating the pmap while this function is executing.
5381 */
5382 KASSERT(pmap->pm_pid == mfspr(SPR_PID),
5383 ("non-current asid %lu - expected %lu", pmap->pm_pid,
5384 mfspr(SPR_PID)));
5385
5386 lock = NULL;
5387
5388 SLIST_INIT(&free);
5389 PMAP_LOCK(pmap);
5390 TAILQ_FOREACH_SAFE(pc, &pmap->pm_pvchunk, pc_list, npc) {
5391 allfree = 1;
5392 freed = 0;
5393 for (field = 0; field < _NPCM; field++) {
5394 inuse = ~pc->pc_map[field] & pc_freemask[field];
5395 while (inuse != 0) {
5396 bit = cnttzd(inuse);
5397 bitmask = 1UL << bit;
5398 idx = field * 64 + bit;
5399 pv = &pc->pc_pventry[idx];
5400 inuse &= ~bitmask;
5401
5402 pte = pmap_pml2e(pmap, pv->pv_va);
5403 ptel3e = be64toh(*pte);
5404 pte = pmap_l2e_to_l3e(pte, pv->pv_va);
5405 tpte = be64toh(*pte);
5406 if ((tpte & (RPTE_LEAF | PG_V)) == PG_V) {
5407 superpage = FALSE;
5408 ptel3e = tpte;
5409 pte = (pt_entry_t *)PHYS_TO_DMAP(tpte &
5410 PG_FRAME);
5411 pte = &pte[pmap_pte_index(pv->pv_va)];
5412 tpte = be64toh(*pte);
5413 } else {
5414 /*
5415 * Keep track whether 'tpte' is a
5416 * superpage explicitly instead of
5417 * relying on RPTE_LEAF being set.
5418 *
5419 * This is because RPTE_LEAF is numerically
5420 * identical to PG_PTE_PAT and thus a
5421 * regular page could be mistaken for
5422 * a superpage.
5423 */
5424 superpage = TRUE;
5425 }
5426
5427 if ((tpte & PG_V) == 0) {
5428 panic("bad pte va %lx pte %lx",
5429 pv->pv_va, tpte);
5430 }
5431
5432 /*
5433 * We cannot remove wired pages from a process' mapping at this time
5434 */
5435 if (tpte & PG_W) {
5436 allfree = 0;
5437 continue;
5438 }
5439
5440 if (superpage)
5441 pa = tpte & PG_PS_FRAME;
5442 else
5443 pa = tpte & PG_FRAME;
5444
5445 m = PHYS_TO_VM_PAGE(pa);
5446 KASSERT(m->phys_addr == pa,
5447 ("vm_page_t %p phys_addr mismatch %016jx %016jx",
5448 m, (uintmax_t)m->phys_addr,
5449 (uintmax_t)tpte));
5450
5451 KASSERT((m->flags & PG_FICTITIOUS) != 0 ||
5452 m < &vm_page_array[vm_page_array_size],
5453 ("pmap_remove_pages: bad tpte %#jx",
5454 (uintmax_t)tpte));
5455
5456 pte_clear(pte);
5457
5458 /*
5459 * Update the vm_page_t clean/reference bits.
5460 */
5461 if ((tpte & (PG_M | PG_RW)) == (PG_M | PG_RW)) {
5462 if (superpage) {
5463 for (mt = m; mt < &m[L3_PAGE_SIZE / PAGE_SIZE]; mt++)
5464 vm_page_dirty(mt);
5465 } else
5466 vm_page_dirty(m);
5467 }
5468
5469 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(&lock, m);
5470
5471 /* Mark free */
5472 pc->pc_map[field] |= bitmask;
5473 if (superpage) {
5474 pmap_resident_count_dec(pmap, L3_PAGE_SIZE / PAGE_SIZE);
5475 pvh = pa_to_pvh(tpte & PG_PS_FRAME);
5476 TAILQ_REMOVE(&pvh->pv_list, pv, pv_link);
5477 pvh->pv_gen++;
5478 if (TAILQ_EMPTY(&pvh->pv_list)) {
5479 for (mt = m; mt < &m[L3_PAGE_SIZE / PAGE_SIZE]; mt++)
5480 if ((mt->a.flags & PGA_WRITEABLE) != 0 &&
5481 TAILQ_EMPTY(&mt->md.pv_list))
5482 vm_page_aflag_clear(mt, PGA_WRITEABLE);
5483 }
5484 mpte = pmap_remove_pt_page(pmap, pv->pv_va);
5485 if (mpte != NULL) {
5486 pmap_resident_count_dec(pmap, 1);
5487 KASSERT(mpte->ref_count == NPTEPG,
5488 ("pmap_remove_pages: pte page wire count error"));
5489 mpte->ref_count = 0;
5490 pmap_add_delayed_free_list(mpte, &free, FALSE);
5491 }
5492 } else {
5493 pmap_resident_count_dec(pmap, 1);
5494 #ifdef VERBOSE_PV
5495 printf("freeing pv (%p, %p)\n",
5496 pmap, pv);
5497 #endif
5498 TAILQ_REMOVE(&m->md.pv_list, pv, pv_link);
5499 m->md.pv_gen++;
5500 if ((m->a.flags & PGA_WRITEABLE) != 0 &&
5501 TAILQ_EMPTY(&m->md.pv_list) &&
5502 (m->flags & PG_FICTITIOUS) == 0) {
5503 pvh = pa_to_pvh(VM_PAGE_TO_PHYS(m));
5504 if (TAILQ_EMPTY(&pvh->pv_list))
5505 vm_page_aflag_clear(m, PGA_WRITEABLE);
5506 }
5507 }
5508 pmap_unuse_pt(pmap, pv->pv_va, ptel3e, &free);
5509 freed++;
5510 }
5511 }
5512 PV_STAT(atomic_add_long(&pv_entry_frees, freed));
5513 PV_STAT(atomic_add_int(&pv_entry_spare, freed));
5514 PV_STAT(atomic_subtract_long(&pv_entry_count, freed));
5515 if (allfree) {
5516 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
5517 free_pv_chunk(pc);
5518 }
5519 }
5520 if (lock != NULL)
5521 rw_wunlock(lock);
5522 pmap_invalidate_all(pmap);
5523 PMAP_UNLOCK(pmap);
5524 vm_page_free_pages_toq(&free, true);
5525 }
5526
5527 void
mmu_radix_remove_write(vm_page_t m)5528 mmu_radix_remove_write(vm_page_t m)
5529 {
5530 struct md_page *pvh;
5531 pmap_t pmap;
5532 struct rwlock *lock;
5533 pv_entry_t next_pv, pv;
5534 pml3_entry_t *l3e;
5535 pt_entry_t oldpte, *pte;
5536 int pvh_gen, md_gen;
5537
5538 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
5539 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
5540 ("pmap_remove_write: page %p is not managed", m));
5541 vm_page_assert_busied(m);
5542
5543 if (!pmap_page_is_write_mapped(m))
5544 return;
5545 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
5546 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy :
5547 pa_to_pvh(VM_PAGE_TO_PHYS(m));
5548 retry_pv_loop:
5549 rw_wlock(lock);
5550 TAILQ_FOREACH_SAFE(pv, &pvh->pv_list, pv_link, next_pv) {
5551 pmap = PV_PMAP(pv);
5552 if (!PMAP_TRYLOCK(pmap)) {
5553 pvh_gen = pvh->pv_gen;
5554 rw_wunlock(lock);
5555 PMAP_LOCK(pmap);
5556 rw_wlock(lock);
5557 if (pvh_gen != pvh->pv_gen) {
5558 PMAP_UNLOCK(pmap);
5559 rw_wunlock(lock);
5560 goto retry_pv_loop;
5561 }
5562 }
5563 l3e = pmap_pml3e(pmap, pv->pv_va);
5564 if ((be64toh(*l3e) & PG_RW) != 0)
5565 (void)pmap_demote_l3e_locked(pmap, l3e, pv->pv_va, &lock);
5566 KASSERT(lock == VM_PAGE_TO_PV_LIST_LOCK(m),
5567 ("inconsistent pv lock %p %p for page %p",
5568 lock, VM_PAGE_TO_PV_LIST_LOCK(m), m));
5569 PMAP_UNLOCK(pmap);
5570 }
5571 TAILQ_FOREACH(pv, &m->md.pv_list, pv_link) {
5572 pmap = PV_PMAP(pv);
5573 if (!PMAP_TRYLOCK(pmap)) {
5574 pvh_gen = pvh->pv_gen;
5575 md_gen = m->md.pv_gen;
5576 rw_wunlock(lock);
5577 PMAP_LOCK(pmap);
5578 rw_wlock(lock);
5579 if (pvh_gen != pvh->pv_gen ||
5580 md_gen != m->md.pv_gen) {
5581 PMAP_UNLOCK(pmap);
5582 rw_wunlock(lock);
5583 goto retry_pv_loop;
5584 }
5585 }
5586 l3e = pmap_pml3e(pmap, pv->pv_va);
5587 KASSERT((be64toh(*l3e) & RPTE_LEAF) == 0,
5588 ("pmap_remove_write: found a 2mpage in page %p's pv list",
5589 m));
5590 pte = pmap_l3e_to_pte(l3e, pv->pv_va);
5591 retry:
5592 oldpte = be64toh(*pte);
5593 if (oldpte & PG_RW) {
5594 if (!atomic_cmpset_long(pte, htobe64(oldpte),
5595 htobe64((oldpte | RPTE_EAA_R) & ~(PG_RW | PG_M))))
5596 goto retry;
5597 if ((oldpte & PG_M) != 0)
5598 vm_page_dirty(m);
5599 pmap_invalidate_page(pmap, pv->pv_va);
5600 }
5601 PMAP_UNLOCK(pmap);
5602 }
5603 rw_wunlock(lock);
5604 vm_page_aflag_clear(m, PGA_WRITEABLE);
5605 }
5606
5607 /*
5608 * Clear the wired attribute from the mappings for the specified range of
5609 * addresses in the given pmap. Every valid mapping within that range
5610 * must have the wired attribute set. In contrast, invalid mappings
5611 * cannot have the wired attribute set, so they are ignored.
5612 *
5613 * The wired attribute of the page table entry is not a hardware
5614 * feature, so there is no need to invalidate any TLB entries.
5615 * Since pmap_demote_l3e() for the wired entry must never fail,
5616 * pmap_delayed_invl_started()/finished() calls around the
5617 * function are not needed.
5618 */
5619 void
mmu_radix_unwire(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)5620 mmu_radix_unwire(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
5621 {
5622 vm_offset_t va_next;
5623 pml1_entry_t *l1e;
5624 pml2_entry_t *l2e;
5625 pml3_entry_t *l3e;
5626 pt_entry_t *pte;
5627
5628 CTR4(KTR_PMAP, "%s(%p, %#x, %#x)", __func__, pmap, sva, eva);
5629 PMAP_LOCK(pmap);
5630 for (; sva < eva; sva = va_next) {
5631 l1e = pmap_pml1e(pmap, sva);
5632 if ((be64toh(*l1e) & PG_V) == 0) {
5633 va_next = (sva + L1_PAGE_SIZE) & ~L1_PAGE_MASK;
5634 if (va_next < sva)
5635 va_next = eva;
5636 continue;
5637 }
5638 l2e = pmap_l1e_to_l2e(l1e, sva);
5639 if ((be64toh(*l2e) & PG_V) == 0) {
5640 va_next = (sva + L2_PAGE_SIZE) & ~L2_PAGE_MASK;
5641 if (va_next < sva)
5642 va_next = eva;
5643 continue;
5644 }
5645 va_next = (sva + L3_PAGE_SIZE) & ~L3_PAGE_MASK;
5646 if (va_next < sva)
5647 va_next = eva;
5648 l3e = pmap_l2e_to_l3e(l2e, sva);
5649 if ((be64toh(*l3e) & PG_V) == 0)
5650 continue;
5651 if ((be64toh(*l3e) & RPTE_LEAF) != 0) {
5652 if ((be64toh(*l3e) & PG_W) == 0)
5653 panic("pmap_unwire: pde %#jx is missing PG_W",
5654 (uintmax_t)(be64toh(*l3e)));
5655
5656 /*
5657 * Are we unwiring the entire large page? If not,
5658 * demote the mapping and fall through.
5659 */
5660 if (sva + L3_PAGE_SIZE == va_next && eva >= va_next) {
5661 atomic_clear_long(l3e, htobe64(PG_W));
5662 pmap->pm_stats.wired_count -= L3_PAGE_SIZE /
5663 PAGE_SIZE;
5664 continue;
5665 } else if (!pmap_demote_l3e(pmap, l3e, sva))
5666 panic("pmap_unwire: demotion failed");
5667 }
5668 if (va_next > eva)
5669 va_next = eva;
5670 for (pte = pmap_l3e_to_pte(l3e, sva); sva != va_next; pte++,
5671 sva += PAGE_SIZE) {
5672 MPASS(pte == pmap_pte(pmap, sva));
5673 if ((be64toh(*pte) & PG_V) == 0)
5674 continue;
5675 if ((be64toh(*pte) & PG_W) == 0)
5676 panic("pmap_unwire: pte %#jx is missing PG_W",
5677 (uintmax_t)(be64toh(*pte)));
5678
5679 /*
5680 * PG_W must be cleared atomically. Although the pmap
5681 * lock synchronizes access to PG_W, another processor
5682 * could be setting PG_M and/or PG_A concurrently.
5683 */
5684 atomic_clear_long(pte, htobe64(PG_W));
5685 pmap->pm_stats.wired_count--;
5686 }
5687 }
5688 PMAP_UNLOCK(pmap);
5689 }
5690
5691 void
mmu_radix_zero_page(vm_page_t m)5692 mmu_radix_zero_page(vm_page_t m)
5693 {
5694 vm_offset_t addr;
5695
5696 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
5697 addr = PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m));
5698 pagezero(addr);
5699 }
5700
5701 void
mmu_radix_zero_page_area(vm_page_t m,int off,int size)5702 mmu_radix_zero_page_area(vm_page_t m, int off, int size)
5703 {
5704 caddr_t addr;
5705
5706 CTR4(KTR_PMAP, "%s(%p, %d, %d)", __func__, m, off, size);
5707 MPASS(off + size <= PAGE_SIZE);
5708 addr = (caddr_t)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m));
5709 memset(addr + off, 0, size);
5710 }
5711
5712 static int
mmu_radix_mincore(pmap_t pmap,vm_offset_t addr,vm_paddr_t * locked_pa)5713 mmu_radix_mincore(pmap_t pmap, vm_offset_t addr, vm_paddr_t *locked_pa)
5714 {
5715 pml3_entry_t *l3ep;
5716 pt_entry_t pte;
5717 vm_paddr_t pa;
5718 int val;
5719
5720 CTR3(KTR_PMAP, "%s(%p, %#x)", __func__, pmap, addr);
5721 PMAP_LOCK(pmap);
5722
5723 l3ep = pmap_pml3e(pmap, addr);
5724 if (l3ep != NULL && (be64toh(*l3ep) & PG_V)) {
5725 if (be64toh(*l3ep) & RPTE_LEAF) {
5726 pte = be64toh(*l3ep);
5727 /* Compute the physical address of the 4KB page. */
5728 pa = ((be64toh(*l3ep) & PG_PS_FRAME) | (addr & L3_PAGE_MASK)) &
5729 PG_FRAME;
5730 val = MINCORE_PSIND(1);
5731 } else {
5732 /* Native endian PTE, do not pass to functions */
5733 pte = be64toh(*pmap_l3e_to_pte(l3ep, addr));
5734 pa = pte & PG_FRAME;
5735 val = 0;
5736 }
5737 } else {
5738 pte = 0;
5739 pa = 0;
5740 val = 0;
5741 }
5742 if ((pte & PG_V) != 0) {
5743 val |= MINCORE_INCORE;
5744 if ((pte & (PG_M | PG_RW)) == (PG_M | PG_RW))
5745 val |= MINCORE_MODIFIED | MINCORE_MODIFIED_OTHER;
5746 if ((pte & PG_A) != 0)
5747 val |= MINCORE_REFERENCED | MINCORE_REFERENCED_OTHER;
5748 }
5749 if ((val & (MINCORE_MODIFIED_OTHER | MINCORE_REFERENCED_OTHER)) !=
5750 (MINCORE_MODIFIED_OTHER | MINCORE_REFERENCED_OTHER) &&
5751 (pte & (PG_MANAGED | PG_V)) == (PG_MANAGED | PG_V)) {
5752 *locked_pa = pa;
5753 }
5754 PMAP_UNLOCK(pmap);
5755 return (val);
5756 }
5757
5758 void
mmu_radix_activate(struct thread * td)5759 mmu_radix_activate(struct thread *td)
5760 {
5761 pmap_t pmap;
5762 uint32_t curpid;
5763
5764 CTR2(KTR_PMAP, "%s(%p)", __func__, td);
5765 critical_enter();
5766 pmap = vmspace_pmap(td->td_proc->p_vmspace);
5767 curpid = mfspr(SPR_PID);
5768 if (pmap->pm_pid > isa3_base_pid &&
5769 curpid != pmap->pm_pid) {
5770 mmu_radix_pid_set(pmap);
5771 }
5772 critical_exit();
5773 }
5774
5775 /*
5776 * Increase the starting virtual address of the given mapping if a
5777 * different alignment might result in more superpage mappings.
5778 */
5779 void
mmu_radix_align_superpage(vm_object_t object,vm_ooffset_t offset,vm_offset_t * addr,vm_size_t size)5780 mmu_radix_align_superpage(vm_object_t object, vm_ooffset_t offset,
5781 vm_offset_t *addr, vm_size_t size)
5782 {
5783
5784 CTR5(KTR_PMAP, "%s(%p, %#x, %p, %#x)", __func__, object, offset, addr,
5785 size);
5786 vm_offset_t superpage_offset;
5787
5788 if (size < L3_PAGE_SIZE)
5789 return;
5790 if (object != NULL && (object->flags & OBJ_COLORED) != 0)
5791 offset += ptoa(object->pg_color);
5792 superpage_offset = offset & L3_PAGE_MASK;
5793 if (size - ((L3_PAGE_SIZE - superpage_offset) & L3_PAGE_MASK) < L3_PAGE_SIZE ||
5794 (*addr & L3_PAGE_MASK) == superpage_offset)
5795 return;
5796 if ((*addr & L3_PAGE_MASK) < superpage_offset)
5797 *addr = (*addr & ~L3_PAGE_MASK) + superpage_offset;
5798 else
5799 *addr = ((*addr + L3_PAGE_MASK) & ~L3_PAGE_MASK) + superpage_offset;
5800 }
5801
5802 static void *
mmu_radix_mapdev_attr(vm_paddr_t pa,vm_size_t size,vm_memattr_t attr)5803 mmu_radix_mapdev_attr(vm_paddr_t pa, vm_size_t size, vm_memattr_t attr)
5804 {
5805 vm_offset_t va, tmpva, ppa, offset;
5806
5807 ppa = trunc_page(pa);
5808 offset = pa & PAGE_MASK;
5809 size = roundup2(offset + size, PAGE_SIZE);
5810 if (pa < powerpc_ptob(Maxmem))
5811 panic("bad pa: %#lx less than Maxmem %#lx\n",
5812 pa, powerpc_ptob(Maxmem));
5813 va = kva_alloc(size);
5814 if (bootverbose)
5815 printf("%s(%#lx, %lu, %d)\n", __func__, pa, size, attr);
5816 KASSERT(size > 0, ("%s(%#lx, %lu, %d)", __func__, pa, size, attr));
5817
5818 if (!va)
5819 panic("%s: Couldn't alloc kernel virtual memory", __func__);
5820
5821 for (tmpva = va; size > 0;) {
5822 mmu_radix_kenter_attr(tmpva, ppa, attr);
5823 size -= PAGE_SIZE;
5824 tmpva += PAGE_SIZE;
5825 ppa += PAGE_SIZE;
5826 }
5827 ptesync();
5828
5829 return ((void *)(va + offset));
5830 }
5831
5832 static void *
mmu_radix_mapdev(vm_paddr_t pa,vm_size_t size)5833 mmu_radix_mapdev(vm_paddr_t pa, vm_size_t size)
5834 {
5835
5836 CTR3(KTR_PMAP, "%s(%#x, %#x)", __func__, pa, size);
5837
5838 return (mmu_radix_mapdev_attr(pa, size, VM_MEMATTR_DEFAULT));
5839 }
5840
5841 void
mmu_radix_page_set_memattr(vm_page_t m,vm_memattr_t ma)5842 mmu_radix_page_set_memattr(vm_page_t m, vm_memattr_t ma)
5843 {
5844
5845 CTR3(KTR_PMAP, "%s(%p, %#x)", __func__, m, ma);
5846 m->md.mdpg_cache_attrs = ma;
5847
5848 /*
5849 * If "m" is a normal page, update its direct mapping. This update
5850 * can be relied upon to perform any cache operations that are
5851 * required for data coherence.
5852 */
5853 if ((m->flags & PG_FICTITIOUS) == 0 &&
5854 mmu_radix_change_attr(PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m)),
5855 PAGE_SIZE, m->md.mdpg_cache_attrs))
5856 panic("memory attribute change on the direct map failed");
5857 }
5858
5859 static void
mmu_radix_unmapdev(vm_offset_t va,vm_size_t size)5860 mmu_radix_unmapdev(vm_offset_t va, vm_size_t size)
5861 {
5862 vm_offset_t offset;
5863
5864 CTR3(KTR_PMAP, "%s(%#x, %#x)", __func__, va, size);
5865 /* If we gave a direct map region in pmap_mapdev, do nothing */
5866 if (va >= DMAP_MIN_ADDRESS && va < DMAP_MAX_ADDRESS)
5867 return;
5868
5869 offset = va & PAGE_MASK;
5870 size = round_page(offset + size);
5871 va = trunc_page(va);
5872
5873 if (pmap_initialized) {
5874 mmu_radix_qremove(va, atop(size));
5875 kva_free(va, size);
5876 }
5877 }
5878
5879 static __inline void
pmap_pte_attr(pt_entry_t * pte,uint64_t cache_bits,uint64_t mask)5880 pmap_pte_attr(pt_entry_t *pte, uint64_t cache_bits, uint64_t mask)
5881 {
5882 uint64_t opte, npte;
5883
5884 /*
5885 * The cache mode bits are all in the low 32-bits of the
5886 * PTE, so we can just spin on updating the low 32-bits.
5887 */
5888 do {
5889 opte = be64toh(*pte);
5890 npte = opte & ~mask;
5891 npte |= cache_bits;
5892 } while (npte != opte && !atomic_cmpset_long(pte, htobe64(opte), htobe64(npte)));
5893 }
5894
5895 /*
5896 * Tries to demote a 1GB page mapping.
5897 */
5898 static boolean_t
pmap_demote_l2e(pmap_t pmap,pml2_entry_t * l2e,vm_offset_t va)5899 pmap_demote_l2e(pmap_t pmap, pml2_entry_t *l2e, vm_offset_t va)
5900 {
5901 pml2_entry_t oldpdpe;
5902 pml3_entry_t *firstpde, newpde, *pde;
5903 vm_paddr_t pdpgpa;
5904 vm_page_t pdpg;
5905
5906 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5907 oldpdpe = be64toh(*l2e);
5908 KASSERT((oldpdpe & (RPTE_LEAF | PG_V)) == (RPTE_LEAF | PG_V),
5909 ("pmap_demote_pdpe: oldpdpe is missing PG_PS and/or PG_V"));
5910 pdpg = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT | VM_ALLOC_WIRED);
5911 if (pdpg == NULL) {
5912 CTR2(KTR_PMAP, "pmap_demote_pdpe: failure for va %#lx"
5913 " in pmap %p", va, pmap);
5914 return (FALSE);
5915 }
5916 pdpg->pindex = va >> L2_PAGE_SIZE_SHIFT;
5917 pdpgpa = VM_PAGE_TO_PHYS(pdpg);
5918 firstpde = (pml3_entry_t *)PHYS_TO_DMAP(pdpgpa);
5919 KASSERT((oldpdpe & PG_A) != 0,
5920 ("pmap_demote_pdpe: oldpdpe is missing PG_A"));
5921 KASSERT((oldpdpe & (PG_M | PG_RW)) != PG_RW,
5922 ("pmap_demote_pdpe: oldpdpe is missing PG_M"));
5923 newpde = oldpdpe;
5924
5925 /*
5926 * Initialize the page directory page.
5927 */
5928 for (pde = firstpde; pde < firstpde + NPDEPG; pde++) {
5929 *pde = htobe64(newpde);
5930 newpde += L3_PAGE_SIZE;
5931 }
5932
5933 /*
5934 * Demote the mapping.
5935 */
5936 pde_store(l2e, pdpgpa);
5937
5938 /*
5939 * Flush PWC --- XXX revisit
5940 */
5941 pmap_invalidate_all(pmap);
5942
5943 pmap_l2e_demotions++;
5944 CTR2(KTR_PMAP, "pmap_demote_pdpe: success for va %#lx"
5945 " in pmap %p", va, pmap);
5946 return (TRUE);
5947 }
5948
5949 vm_paddr_t
mmu_radix_kextract(vm_offset_t va)5950 mmu_radix_kextract(vm_offset_t va)
5951 {
5952 pml3_entry_t l3e;
5953 vm_paddr_t pa;
5954
5955 CTR2(KTR_PMAP, "%s(%#x)", __func__, va);
5956 if (va >= DMAP_MIN_ADDRESS && va < DMAP_MAX_ADDRESS) {
5957 pa = DMAP_TO_PHYS(va);
5958 } else {
5959 /* Big-endian PTE on stack */
5960 l3e = *pmap_pml3e(kernel_pmap, va);
5961 if (be64toh(l3e) & RPTE_LEAF) {
5962 pa = (be64toh(l3e) & PG_PS_FRAME) | (va & L3_PAGE_MASK);
5963 pa |= (va & L3_PAGE_MASK);
5964 } else {
5965 /*
5966 * Beware of a concurrent promotion that changes the
5967 * PDE at this point! For example, vtopte() must not
5968 * be used to access the PTE because it would use the
5969 * new PDE. It is, however, safe to use the old PDE
5970 * because the page table page is preserved by the
5971 * promotion.
5972 */
5973 pa = be64toh(*pmap_l3e_to_pte(&l3e, va));
5974 pa = (pa & PG_FRAME) | (va & PAGE_MASK);
5975 pa |= (va & PAGE_MASK);
5976 }
5977 }
5978 return (pa);
5979 }
5980
5981 static pt_entry_t
mmu_radix_calc_wimg(vm_paddr_t pa,vm_memattr_t ma)5982 mmu_radix_calc_wimg(vm_paddr_t pa, vm_memattr_t ma)
5983 {
5984
5985 if (ma != VM_MEMATTR_DEFAULT) {
5986 return pmap_cache_bits(ma);
5987 }
5988
5989 /*
5990 * Assume the page is cache inhibited and access is guarded unless
5991 * it's in our available memory array.
5992 */
5993 for (int i = 0; i < pregions_sz; i++) {
5994 if ((pa >= pregions[i].mr_start) &&
5995 (pa < (pregions[i].mr_start + pregions[i].mr_size)))
5996 return (RPTE_ATTR_MEM);
5997 }
5998 return (RPTE_ATTR_GUARDEDIO);
5999 }
6000
6001 static void
mmu_radix_kenter_attr(vm_offset_t va,vm_paddr_t pa,vm_memattr_t ma)6002 mmu_radix_kenter_attr(vm_offset_t va, vm_paddr_t pa, vm_memattr_t ma)
6003 {
6004 pt_entry_t *pte, pteval;
6005 uint64_t cache_bits;
6006
6007 pte = kvtopte(va);
6008 MPASS(pte != NULL);
6009 pteval = pa | RPTE_EAA_R | RPTE_EAA_W | RPTE_EAA_P | PG_M | PG_A;
6010 cache_bits = mmu_radix_calc_wimg(pa, ma);
6011 pte_store(pte, pteval | cache_bits);
6012 }
6013
6014 void
mmu_radix_kremove(vm_offset_t va)6015 mmu_radix_kremove(vm_offset_t va)
6016 {
6017 pt_entry_t *pte;
6018
6019 CTR2(KTR_PMAP, "%s(%#x)", __func__, va);
6020
6021 pte = kvtopte(va);
6022 pte_clear(pte);
6023 }
6024
6025 int
mmu_radix_decode_kernel_ptr(vm_offset_t addr,int * is_user,vm_offset_t * decoded)6026 mmu_radix_decode_kernel_ptr(vm_offset_t addr,
6027 int *is_user, vm_offset_t *decoded)
6028 {
6029
6030 CTR2(KTR_PMAP, "%s(%#jx)", __func__, (uintmax_t)addr);
6031 *decoded = addr;
6032 *is_user = (addr < VM_MAXUSER_ADDRESS);
6033 return (0);
6034 }
6035
6036 static boolean_t
mmu_radix_dev_direct_mapped(vm_paddr_t pa,vm_size_t size)6037 mmu_radix_dev_direct_mapped(vm_paddr_t pa, vm_size_t size)
6038 {
6039
6040 CTR3(KTR_PMAP, "%s(%#x, %#x)", __func__, pa, size);
6041 return (mem_valid(pa, size));
6042 }
6043
6044 static void
mmu_radix_scan_init()6045 mmu_radix_scan_init()
6046 {
6047
6048 CTR1(KTR_PMAP, "%s()", __func__);
6049 UNIMPLEMENTED();
6050 }
6051
6052 static void
mmu_radix_dumpsys_map(vm_paddr_t pa,size_t sz,void ** va)6053 mmu_radix_dumpsys_map(vm_paddr_t pa, size_t sz,
6054 void **va)
6055 {
6056 CTR4(KTR_PMAP, "%s(%#jx, %#zx, %p)", __func__, (uintmax_t)pa, sz, va);
6057 UNIMPLEMENTED();
6058 }
6059
6060 vm_offset_t
mmu_radix_quick_enter_page(vm_page_t m)6061 mmu_radix_quick_enter_page(vm_page_t m)
6062 {
6063 vm_paddr_t paddr;
6064
6065 CTR2(KTR_PMAP, "%s(%p)", __func__, m);
6066 paddr = VM_PAGE_TO_PHYS(m);
6067 return (PHYS_TO_DMAP(paddr));
6068 }
6069
6070 void
mmu_radix_quick_remove_page(vm_offset_t addr __unused)6071 mmu_radix_quick_remove_page(vm_offset_t addr __unused)
6072 {
6073 /* no work to do here */
6074 CTR2(KTR_PMAP, "%s(%#x)", __func__, addr);
6075 }
6076
6077 static void
pmap_invalidate_cache_range(vm_offset_t sva,vm_offset_t eva)6078 pmap_invalidate_cache_range(vm_offset_t sva, vm_offset_t eva)
6079 {
6080 cpu_flush_dcache((void *)sva, eva - sva);
6081 }
6082
6083 int
mmu_radix_change_attr(vm_offset_t va,vm_size_t size,vm_memattr_t mode)6084 mmu_radix_change_attr(vm_offset_t va, vm_size_t size,
6085 vm_memattr_t mode)
6086 {
6087 int error;
6088
6089 CTR4(KTR_PMAP, "%s(%#x, %#zx, %d)", __func__, va, size, mode);
6090 PMAP_LOCK(kernel_pmap);
6091 error = pmap_change_attr_locked(va, size, mode, true);
6092 PMAP_UNLOCK(kernel_pmap);
6093 return (error);
6094 }
6095
6096 static int
pmap_change_attr_locked(vm_offset_t va,vm_size_t size,int mode,bool flush)6097 pmap_change_attr_locked(vm_offset_t va, vm_size_t size, int mode, bool flush)
6098 {
6099 vm_offset_t base, offset, tmpva;
6100 vm_paddr_t pa_start, pa_end, pa_end1;
6101 pml2_entry_t *l2e;
6102 pml3_entry_t *l3e;
6103 pt_entry_t *pte;
6104 int cache_bits, error;
6105 boolean_t changed;
6106
6107 PMAP_LOCK_ASSERT(kernel_pmap, MA_OWNED);
6108 base = trunc_page(va);
6109 offset = va & PAGE_MASK;
6110 size = round_page(offset + size);
6111
6112 /*
6113 * Only supported on kernel virtual addresses, including the direct
6114 * map but excluding the recursive map.
6115 */
6116 if (base < DMAP_MIN_ADDRESS)
6117 return (EINVAL);
6118
6119 cache_bits = pmap_cache_bits(mode);
6120 changed = FALSE;
6121
6122 /*
6123 * Pages that aren't mapped aren't supported. Also break down 2MB pages
6124 * into 4KB pages if required.
6125 */
6126 for (tmpva = base; tmpva < base + size; ) {
6127 l2e = pmap_pml2e(kernel_pmap, tmpva);
6128 if (l2e == NULL || *l2e == 0)
6129 return (EINVAL);
6130 if (be64toh(*l2e) & RPTE_LEAF) {
6131 /*
6132 * If the current 1GB page already has the required
6133 * memory type, then we need not demote this page. Just
6134 * increment tmpva to the next 1GB page frame.
6135 */
6136 if ((be64toh(*l2e) & RPTE_ATTR_MASK) == cache_bits) {
6137 tmpva = trunc_1gpage(tmpva) + L2_PAGE_SIZE;
6138 continue;
6139 }
6140
6141 /*
6142 * If the current offset aligns with a 1GB page frame
6143 * and there is at least 1GB left within the range, then
6144 * we need not break down this page into 2MB pages.
6145 */
6146 if ((tmpva & L2_PAGE_MASK) == 0 &&
6147 tmpva + L2_PAGE_MASK < base + size) {
6148 tmpva += L2_PAGE_MASK;
6149 continue;
6150 }
6151 if (!pmap_demote_l2e(kernel_pmap, l2e, tmpva))
6152 return (ENOMEM);
6153 }
6154 l3e = pmap_l2e_to_l3e(l2e, tmpva);
6155 KASSERT(l3e != NULL, ("no l3e entry for %#lx in %p\n",
6156 tmpva, l2e));
6157 if (*l3e == 0)
6158 return (EINVAL);
6159 if (be64toh(*l3e) & RPTE_LEAF) {
6160 /*
6161 * If the current 2MB page already has the required
6162 * memory type, then we need not demote this page. Just
6163 * increment tmpva to the next 2MB page frame.
6164 */
6165 if ((be64toh(*l3e) & RPTE_ATTR_MASK) == cache_bits) {
6166 tmpva = trunc_2mpage(tmpva) + L3_PAGE_SIZE;
6167 continue;
6168 }
6169
6170 /*
6171 * If the current offset aligns with a 2MB page frame
6172 * and there is at least 2MB left within the range, then
6173 * we need not break down this page into 4KB pages.
6174 */
6175 if ((tmpva & L3_PAGE_MASK) == 0 &&
6176 tmpva + L3_PAGE_MASK < base + size) {
6177 tmpva += L3_PAGE_SIZE;
6178 continue;
6179 }
6180 if (!pmap_demote_l3e(kernel_pmap, l3e, tmpva))
6181 return (ENOMEM);
6182 }
6183 pte = pmap_l3e_to_pte(l3e, tmpva);
6184 if (*pte == 0)
6185 return (EINVAL);
6186 tmpva += PAGE_SIZE;
6187 }
6188 error = 0;
6189
6190 /*
6191 * Ok, all the pages exist, so run through them updating their
6192 * cache mode if required.
6193 */
6194 pa_start = pa_end = 0;
6195 for (tmpva = base; tmpva < base + size; ) {
6196 l2e = pmap_pml2e(kernel_pmap, tmpva);
6197 if (be64toh(*l2e) & RPTE_LEAF) {
6198 if ((be64toh(*l2e) & RPTE_ATTR_MASK) != cache_bits) {
6199 pmap_pte_attr(l2e, cache_bits,
6200 RPTE_ATTR_MASK);
6201 changed = TRUE;
6202 }
6203 if (tmpva >= VM_MIN_KERNEL_ADDRESS &&
6204 (*l2e & PG_PS_FRAME) < dmaplimit) {
6205 if (pa_start == pa_end) {
6206 /* Start physical address run. */
6207 pa_start = be64toh(*l2e) & PG_PS_FRAME;
6208 pa_end = pa_start + L2_PAGE_SIZE;
6209 } else if (pa_end == (be64toh(*l2e) & PG_PS_FRAME))
6210 pa_end += L2_PAGE_SIZE;
6211 else {
6212 /* Run ended, update direct map. */
6213 error = pmap_change_attr_locked(
6214 PHYS_TO_DMAP(pa_start),
6215 pa_end - pa_start, mode, flush);
6216 if (error != 0)
6217 break;
6218 /* Start physical address run. */
6219 pa_start = be64toh(*l2e) & PG_PS_FRAME;
6220 pa_end = pa_start + L2_PAGE_SIZE;
6221 }
6222 }
6223 tmpva = trunc_1gpage(tmpva) + L2_PAGE_SIZE;
6224 continue;
6225 }
6226 l3e = pmap_l2e_to_l3e(l2e, tmpva);
6227 if (be64toh(*l3e) & RPTE_LEAF) {
6228 if ((be64toh(*l3e) & RPTE_ATTR_MASK) != cache_bits) {
6229 pmap_pte_attr(l3e, cache_bits,
6230 RPTE_ATTR_MASK);
6231 changed = TRUE;
6232 }
6233 if (tmpva >= VM_MIN_KERNEL_ADDRESS &&
6234 (be64toh(*l3e) & PG_PS_FRAME) < dmaplimit) {
6235 if (pa_start == pa_end) {
6236 /* Start physical address run. */
6237 pa_start = be64toh(*l3e) & PG_PS_FRAME;
6238 pa_end = pa_start + L3_PAGE_SIZE;
6239 } else if (pa_end == (be64toh(*l3e) & PG_PS_FRAME))
6240 pa_end += L3_PAGE_SIZE;
6241 else {
6242 /* Run ended, update direct map. */
6243 error = pmap_change_attr_locked(
6244 PHYS_TO_DMAP(pa_start),
6245 pa_end - pa_start, mode, flush);
6246 if (error != 0)
6247 break;
6248 /* Start physical address run. */
6249 pa_start = be64toh(*l3e) & PG_PS_FRAME;
6250 pa_end = pa_start + L3_PAGE_SIZE;
6251 }
6252 }
6253 tmpva = trunc_2mpage(tmpva) + L3_PAGE_SIZE;
6254 } else {
6255 pte = pmap_l3e_to_pte(l3e, tmpva);
6256 if ((be64toh(*pte) & RPTE_ATTR_MASK) != cache_bits) {
6257 pmap_pte_attr(pte, cache_bits,
6258 RPTE_ATTR_MASK);
6259 changed = TRUE;
6260 }
6261 if (tmpva >= VM_MIN_KERNEL_ADDRESS &&
6262 (be64toh(*pte) & PG_FRAME) < dmaplimit) {
6263 if (pa_start == pa_end) {
6264 /* Start physical address run. */
6265 pa_start = be64toh(*pte) & PG_FRAME;
6266 pa_end = pa_start + PAGE_SIZE;
6267 } else if (pa_end == (be64toh(*pte) & PG_FRAME))
6268 pa_end += PAGE_SIZE;
6269 else {
6270 /* Run ended, update direct map. */
6271 error = pmap_change_attr_locked(
6272 PHYS_TO_DMAP(pa_start),
6273 pa_end - pa_start, mode, flush);
6274 if (error != 0)
6275 break;
6276 /* Start physical address run. */
6277 pa_start = be64toh(*pte) & PG_FRAME;
6278 pa_end = pa_start + PAGE_SIZE;
6279 }
6280 }
6281 tmpva += PAGE_SIZE;
6282 }
6283 }
6284 if (error == 0 && pa_start != pa_end && pa_start < dmaplimit) {
6285 pa_end1 = MIN(pa_end, dmaplimit);
6286 if (pa_start != pa_end1)
6287 error = pmap_change_attr_locked(PHYS_TO_DMAP(pa_start),
6288 pa_end1 - pa_start, mode, flush);
6289 }
6290
6291 /*
6292 * Flush CPU caches if required to make sure any data isn't cached that
6293 * shouldn't be, etc.
6294 */
6295 if (changed) {
6296 pmap_invalidate_all(kernel_pmap);
6297
6298 if (flush)
6299 pmap_invalidate_cache_range(base, tmpva);
6300 }
6301 return (error);
6302 }
6303
6304 /*
6305 * Allocate physical memory for the vm_page array and map it into KVA,
6306 * attempting to back the vm_pages with domain-local memory.
6307 */
6308 void
mmu_radix_page_array_startup(long pages)6309 mmu_radix_page_array_startup(long pages)
6310 {
6311 #ifdef notyet
6312 pml2_entry_t *l2e;
6313 pml3_entry_t *pde;
6314 pml3_entry_t newl3;
6315 vm_offset_t va;
6316 long pfn;
6317 int domain, i;
6318 #endif
6319 vm_paddr_t pa;
6320 vm_offset_t start, end;
6321
6322 vm_page_array_size = pages;
6323
6324 start = VM_MIN_KERNEL_ADDRESS;
6325 end = start + pages * sizeof(struct vm_page);
6326
6327 pa = vm_phys_early_alloc(0, end - start);
6328
6329 start = mmu_radix_map(&start, pa, end - start, VM_MEMATTR_DEFAULT);
6330 #ifdef notyet
6331 /* TODO: NUMA vm_page_array. Blocked out until then (copied from amd64). */
6332 for (va = start; va < end; va += L3_PAGE_SIZE) {
6333 pfn = first_page + (va - start) / sizeof(struct vm_page);
6334 domain = vm_phys_domain(ptoa(pfn));
6335 l2e = pmap_pml2e(kernel_pmap, va);
6336 if ((be64toh(*l2e) & PG_V) == 0) {
6337 pa = vm_phys_early_alloc(domain, PAGE_SIZE);
6338 dump_add_page(pa);
6339 pagezero(PHYS_TO_DMAP(pa));
6340 pde_store(l2e, (pml2_entry_t)pa);
6341 }
6342 pde = pmap_l2e_to_l3e(l2e, va);
6343 if ((be64toh(*pde) & PG_V) != 0)
6344 panic("Unexpected pde %p", pde);
6345 pa = vm_phys_early_alloc(domain, L3_PAGE_SIZE);
6346 for (i = 0; i < NPDEPG; i++)
6347 dump_add_page(pa + i * PAGE_SIZE);
6348 newl3 = (pml3_entry_t)(pa | RPTE_EAA_P | RPTE_EAA_R | RPTE_EAA_W);
6349 pte_store(pde, newl3);
6350 }
6351 #endif
6352 vm_page_array = (vm_page_t)start;
6353 }
6354
6355 #ifdef DDB
6356 #include <sys/kdb.h>
6357 #include <ddb/ddb.h>
6358
6359 static void
pmap_pte_walk(pml1_entry_t * l1,vm_offset_t va)6360 pmap_pte_walk(pml1_entry_t *l1, vm_offset_t va)
6361 {
6362 pml1_entry_t *l1e;
6363 pml2_entry_t *l2e;
6364 pml3_entry_t *l3e;
6365 pt_entry_t *pte;
6366
6367 l1e = &l1[pmap_pml1e_index(va)];
6368 db_printf("VA %#016lx l1e %#016lx", va, be64toh(*l1e));
6369 if ((be64toh(*l1e) & PG_V) == 0) {
6370 db_printf("\n");
6371 return;
6372 }
6373 l2e = pmap_l1e_to_l2e(l1e, va);
6374 db_printf(" l2e %#016lx", be64toh(*l2e));
6375 if ((be64toh(*l2e) & PG_V) == 0 || (be64toh(*l2e) & RPTE_LEAF) != 0) {
6376 db_printf("\n");
6377 return;
6378 }
6379 l3e = pmap_l2e_to_l3e(l2e, va);
6380 db_printf(" l3e %#016lx", be64toh(*l3e));
6381 if ((be64toh(*l3e) & PG_V) == 0 || (be64toh(*l3e) & RPTE_LEAF) != 0) {
6382 db_printf("\n");
6383 return;
6384 }
6385 pte = pmap_l3e_to_pte(l3e, va);
6386 db_printf(" pte %#016lx\n", be64toh(*pte));
6387 }
6388
6389 void
pmap_page_print_mappings(vm_page_t m)6390 pmap_page_print_mappings(vm_page_t m)
6391 {
6392 pmap_t pmap;
6393 pv_entry_t pv;
6394
6395 db_printf("page %p(%lx)\n", m, m->phys_addr);
6396 /* need to elide locks if running in ddb */
6397 TAILQ_FOREACH(pv, &m->md.pv_list, pv_link) {
6398 db_printf("pv: %p ", pv);
6399 db_printf("va: %#016lx ", pv->pv_va);
6400 pmap = PV_PMAP(pv);
6401 db_printf("pmap %p ", pmap);
6402 if (pmap != NULL) {
6403 db_printf("asid: %lu\n", pmap->pm_pid);
6404 pmap_pte_walk(pmap->pm_pml1, pv->pv_va);
6405 }
6406 }
6407 }
6408
DB_SHOW_COMMAND(pte,pmap_print_pte)6409 DB_SHOW_COMMAND(pte, pmap_print_pte)
6410 {
6411 vm_offset_t va;
6412 pmap_t pmap;
6413
6414 if (!have_addr) {
6415 db_printf("show pte addr\n");
6416 return;
6417 }
6418 va = (vm_offset_t)addr;
6419
6420 if (va >= DMAP_MIN_ADDRESS)
6421 pmap = kernel_pmap;
6422 else if (kdb_thread != NULL)
6423 pmap = vmspace_pmap(kdb_thread->td_proc->p_vmspace);
6424 else
6425 pmap = vmspace_pmap(curthread->td_proc->p_vmspace);
6426
6427 pmap_pte_walk(pmap->pm_pml1, va);
6428 }
6429
6430 #endif
6431