1 /*-
2 * Copyright (c) 1991 Regents of the University of California.
3 * All rights reserved.
4 * Copyright (c) 1994 John S. Dyson
5 * All rights reserved.
6 * Copyright (c) 1994 David Greenman
7 * All rights reserved.
8 * Copyright (c) 2003 Peter Wemm
9 * All rights reserved.
10 * Copyright (c) 2005-2010 Alan L. Cox <alc@cs.rice.edu>
11 * All rights reserved.
12 * Copyright (c) 2014 Andrew Turner
13 * All rights reserved.
14 * Copyright (c) 2014-2016 The FreeBSD Foundation
15 * All rights reserved.
16 *
17 * This code is derived from software contributed to Berkeley by
18 * the Systems Programming Group of the University of Utah Computer
19 * Science Department and William Jolitz of UUNET Technologies Inc.
20 *
21 * This software was developed by Andrew Turner under sponsorship from
22 * the FreeBSD Foundation.
23 *
24 * Redistribution and use in source and binary forms, with or without
25 * modification, are permitted provided that the following conditions
26 * are met:
27 * 1. Redistributions of source code must retain the above copyright
28 * notice, this list of conditions and the following disclaimer.
29 * 2. Redistributions in binary form must reproduce the above copyright
30 * notice, this list of conditions and the following disclaimer in the
31 * documentation and/or other materials provided with the distribution.
32 * 3. All advertising materials mentioning features or use of this software
33 * must display the following acknowledgement:
34 * This product includes software developed by the University of
35 * California, Berkeley and its contributors.
36 * 4. Neither the name of the University nor the names of its contributors
37 * may be used to endorse or promote products derived from this software
38 * without specific prior written permission.
39 *
40 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
41 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
42 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
43 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
44 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
45 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
46 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
47 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
48 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
49 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
50 * SUCH DAMAGE.
51 */
52 /*-
53 * Copyright (c) 2003 Networks Associates Technology, Inc.
54 * All rights reserved.
55 *
56 * This software was developed for the FreeBSD Project by Jake Burkholder,
57 * Safeport Network Services, and Network Associates Laboratories, the
58 * Security Research Division of Network Associates, Inc. under
59 * DARPA/SPAWAR contract N66001-01-C-8035 ("CBOSS"), as part of the DARPA
60 * CHATS research program.
61 *
62 * Redistribution and use in source and binary forms, with or without
63 * modification, are permitted provided that the following conditions
64 * are met:
65 * 1. Redistributions of source code must retain the above copyright
66 * notice, this list of conditions and the following disclaimer.
67 * 2. Redistributions in binary form must reproduce the above copyright
68 * notice, this list of conditions and the following disclaimer in the
69 * documentation and/or other materials provided with the distribution.
70 *
71 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
72 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
73 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
74 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
75 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
76 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
77 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
78 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
79 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
80 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
81 * SUCH DAMAGE.
82 */
83
84 #include <sys/cdefs.h>
85 /*
86 * Manages physical address maps.
87 *
88 * Since the information managed by this module is
89 * also stored by the logical address mapping module,
90 * this module may throw away valid virtual-to-physical
91 * mappings at almost any time. However, invalidations
92 * of virtual-to-physical mappings must be done as
93 * requested.
94 *
95 * In order to cope with hardware architectures which
96 * make virtual-to-physical map invalidates expensive,
97 * this module may delay invalidate or reduced protection
98 * operations until such time as they are actually
99 * necessary. This module is given full information as
100 * to which processors are currently using which maps,
101 * and to when physical maps must be made correct.
102 */
103
104 #include "opt_vm.h"
105
106 #include <sys/param.h>
107 #include <sys/asan.h>
108 #include <sys/bitstring.h>
109 #include <sys/bus.h>
110 #include <sys/systm.h>
111 #include <sys/kernel.h>
112 #include <sys/ktr.h>
113 #include <sys/limits.h>
114 #include <sys/lock.h>
115 #include <sys/malloc.h>
116 #include <sys/mman.h>
117 #include <sys/msan.h>
118 #include <sys/msgbuf.h>
119 #include <sys/mutex.h>
120 #include <sys/physmem.h>
121 #include <sys/proc.h>
122 #include <sys/rangeset.h>
123 #include <sys/rwlock.h>
124 #include <sys/sbuf.h>
125 #include <sys/sx.h>
126 #include <sys/vmem.h>
127 #include <sys/vmmeter.h>
128 #include <sys/sched.h>
129 #include <sys/sysctl.h>
130 #include <sys/_unrhdr.h>
131 #include <sys/smp.h>
132
133 #include <vm/vm.h>
134 #include <vm/vm_param.h>
135 #include <vm/vm_kern.h>
136 #include <vm/vm_page.h>
137 #include <vm/vm_map.h>
138 #include <vm/vm_object.h>
139 #include <vm/vm_extern.h>
140 #include <vm/vm_pageout.h>
141 #include <vm/vm_pager.h>
142 #include <vm/vm_phys.h>
143 #include <vm/vm_radix.h>
144 #include <vm/vm_reserv.h>
145 #include <vm/vm_dumpset.h>
146 #include <vm/uma.h>
147
148 #include <machine/asan.h>
149 #include <machine/cpu.h>
150 #include <machine/cpu_feat.h>
151 #include <machine/elf.h>
152 #include <machine/ifunc.h>
153 #include <machine/machdep.h>
154 #include <machine/md_var.h>
155 #include <machine/pcb.h>
156 #include <machine/rsi.h>
157
158 #ifdef NUMA
159 #define PMAP_MEMDOM MAXMEMDOM
160 #else
161 #define PMAP_MEMDOM 1
162 #endif
163
164 #define PMAP_ASSERT_STAGE1(pmap) MPASS((pmap)->pm_stage == PM_STAGE1)
165 #define PMAP_ASSERT_STAGE2(pmap) MPASS((pmap)->pm_stage == PM_STAGE2)
166
167 #define NL0PG (PAGE_SIZE/(sizeof (pd_entry_t)))
168 #define NL1PG (PAGE_SIZE/(sizeof (pd_entry_t)))
169 #define NL2PG (PAGE_SIZE/(sizeof (pd_entry_t)))
170 #define NL3PG (PAGE_SIZE/(sizeof (pt_entry_t)))
171
172 #define NUL0E L0_ENTRIES
173 #define NUL1E (NUL0E * NL1PG)
174 #define NUL2E (NUL1E * NL2PG)
175
176 #ifdef PV_STATS
177 #define PV_STAT(x) do { x ; } while (0)
178 #define __pvused
179 #else
180 #define PV_STAT(x) do { } while (0)
181 #define __pvused __unused
182 #endif
183
184 #define pmap_l0_pindex(v) (NUL2E + NUL1E + ((v) >> L0_SHIFT))
185 #define pmap_l1_pindex(v) (NUL2E + ((v) >> L1_SHIFT))
186 #define pmap_l2_pindex(v) ((v) >> L2_SHIFT)
187
188 #ifdef __ARM_FEATURE_BTI_DEFAULT
189 pt_entry_t __read_mostly pmap_gp_attr;
190 #define ATTR_KERN_GP pmap_gp_attr
191 #else
192 #define ATTR_KERN_GP 0
193 #endif
194 #define PMAP_SAN_PTE_BITS (ATTR_AF | ATTR_S1_XN | pmap_sh_attr | \
195 ATTR_KERN_GP | ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) | ATTR_S1_AP(ATTR_S1_AP_RW))
196
197 static bool __read_mostly pmap_multiple_tlbi = false;
198
199 struct pmap_large_md_page {
200 struct rwlock pv_lock;
201 struct md_page pv_page;
202 /* Pad to a power of 2, see pmap_init_pv_table(). */
203 int pv_pad[2];
204 };
205
206 __exclusive_cache_line static struct pmap_large_md_page pv_dummy_large;
207 #define pv_dummy pv_dummy_large.pv_page
208 __read_mostly static struct pmap_large_md_page *pv_table;
209
210 __read_mostly uint64_t prot_ns_shared_pa;
211
212 static struct pmap_large_md_page *
_pa_to_pmdp(vm_paddr_t pa)213 _pa_to_pmdp(vm_paddr_t pa)
214 {
215 struct vm_phys_seg *seg;
216
217 if ((seg = vm_phys_paddr_to_seg(pa)) != NULL)
218 return ((struct pmap_large_md_page *)seg->md_first +
219 pmap_l2_pindex(pa) - pmap_l2_pindex(seg->start));
220 return (NULL);
221 }
222
223 static struct pmap_large_md_page *
pa_to_pmdp(vm_paddr_t pa)224 pa_to_pmdp(vm_paddr_t pa)
225 {
226 struct pmap_large_md_page *pvd;
227
228 pvd = _pa_to_pmdp(pa);
229 if (pvd == NULL)
230 panic("pa 0x%jx not within vm_phys_segs", (uintmax_t)pa);
231 return (pvd);
232 }
233
234 static struct pmap_large_md_page *
page_to_pmdp(vm_page_t m)235 page_to_pmdp(vm_page_t m)
236 {
237 struct vm_phys_seg *seg;
238
239 seg = &vm_phys_segs[m->segind];
240 return ((struct pmap_large_md_page *)seg->md_first +
241 pmap_l2_pindex(VM_PAGE_TO_PHYS(m)) - pmap_l2_pindex(seg->start));
242 }
243
244 #define pa_to_pvh(pa) (&(pa_to_pmdp(pa)->pv_page))
245 #define page_to_pvh(m) (&(page_to_pmdp(m)->pv_page))
246
247 #define PHYS_TO_PV_LIST_LOCK(pa) ({ \
248 struct pmap_large_md_page *_pvd; \
249 struct rwlock *_lock; \
250 _pvd = _pa_to_pmdp(pa); \
251 if (__predict_false(_pvd == NULL)) \
252 _lock = &pv_dummy_large.pv_lock; \
253 else \
254 _lock = &(_pvd->pv_lock); \
255 _lock; \
256 })
257
258 static struct rwlock *
VM_PAGE_TO_PV_LIST_LOCK(vm_page_t m)259 VM_PAGE_TO_PV_LIST_LOCK(vm_page_t m)
260 {
261 if ((m->flags & PG_FICTITIOUS) == 0)
262 return (&page_to_pmdp(m)->pv_lock);
263 else
264 return (&pv_dummy_large.pv_lock);
265 }
266
267 #define CHANGE_PV_LIST_LOCK(lockp, new_lock) do { \
268 struct rwlock **_lockp = (lockp); \
269 struct rwlock *_new_lock = (new_lock); \
270 \
271 if (_new_lock != *_lockp) { \
272 if (*_lockp != NULL) \
273 rw_wunlock(*_lockp); \
274 *_lockp = _new_lock; \
275 rw_wlock(*_lockp); \
276 } \
277 } while (0)
278
279 #define CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa) \
280 CHANGE_PV_LIST_LOCK(lockp, PHYS_TO_PV_LIST_LOCK(pa))
281
282 #define CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m) \
283 CHANGE_PV_LIST_LOCK(lockp, VM_PAGE_TO_PV_LIST_LOCK(m))
284
285 #define RELEASE_PV_LIST_LOCK(lockp) do { \
286 struct rwlock **_lockp = (lockp); \
287 \
288 if (*_lockp != NULL) { \
289 rw_wunlock(*_lockp); \
290 *_lockp = NULL; \
291 } \
292 } while (0)
293
294 #define PTE_TO_VM_PAGE(pte) PHYS_TO_VM_PAGE(PTE_TO_PHYS(pte))
295 #define VM_PAGE_TO_PTE(m) PHYS_TO_PTE(VM_PAGE_TO_PHYS(m))
296
297 static struct mtx cmap_lock;
298 static void *cmap1_addr;
299 static pt_entry_t *cmap1_pte;
300
301 /*
302 * The presence of this flag indicates that the mapping is writeable.
303 * If the ATTR_S1_AP_RO bit is also set, then the mapping is clean, otherwise
304 * it is dirty. This flag may only be set on managed mappings.
305 *
306 * The DBM bit is reserved on ARMv8.0 but it seems we can safely treat it
307 * as a software managed bit.
308 */
309 #define ATTR_SW_DBM ATTR_DBM
310
311 struct pmap kernel_pmap_store;
312
313 /* Used for mapping ACPI memory before VM is initialized */
314 #define PMAP_PREINIT_MAPPING_COUNT 32
315 #define PMAP_PREINIT_MAPPING_SIZE (PMAP_PREINIT_MAPPING_COUNT * L2_SIZE)
316 static vm_offset_t preinit_map_va; /* Start VA of pre-init mapping space */
317 static int vm_initialized = 0; /* No need to use pre-init maps when set */
318
319 /*
320 * Reserve a few L2 blocks starting from 'preinit_map_va' pointer.
321 * Always map entire L2 block for simplicity.
322 * VA of L2 block = preinit_map_va + i * L2_SIZE
323 */
324 static struct pmap_preinit_mapping {
325 vm_paddr_t pa;
326 void *va;
327 vm_size_t size;
328 } pmap_preinit_mapping[PMAP_PREINIT_MAPPING_COUNT];
329
330 vm_offset_t virtual_avail; /* VA of first avail page (after kernel bss) */
331 vm_offset_t virtual_end; /* VA of last avail page (end of kernel AS) */
332 vm_offset_t kernel_vm_end = 0;
333
334 /*
335 * Data for the pv entry allocation mechanism.
336 */
337 #ifdef NUMA
338 static __inline int
pc_to_domain(struct pv_chunk * pc)339 pc_to_domain(struct pv_chunk *pc)
340 {
341 return (vm_phys_domain(DMAP_TO_PHYS(pc)));
342 }
343 #else
344 static __inline int
pc_to_domain(struct pv_chunk * pc __unused)345 pc_to_domain(struct pv_chunk *pc __unused)
346 {
347 return (0);
348 }
349 #endif
350
351 struct pv_chunks_list {
352 struct mtx pvc_lock;
353 TAILQ_HEAD(pch, pv_chunk) pvc_list;
354 int active_reclaims;
355 } __aligned(CACHE_LINE_SIZE);
356
357 struct pv_chunks_list __exclusive_cache_line pv_chunks[PMAP_MEMDOM];
358
359 vm_paddr_t dmap_phys_base; /* The start of the dmap region */
360 vm_paddr_t dmap_phys_max; /* The limit of the dmap region */
361 vm_offset_t dmap_max_addr; /* The virtual address limit of the dmap */
362 static int dmap_attr = VM_MEMATTR_WRITE_BACK;
363
364 extern pt_entry_t pagetable_l0_ttbr1[];
365
366 #define PHYSMAP_SIZE (2 * (VM_PHYSSEG_MAX - 1))
367 static vm_paddr_t physmap[PHYSMAP_SIZE];
368 static u_int physmap_idx;
369
370 static SYSCTL_NODE(_vm, OID_AUTO, pmap, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
371 "VM/pmap parameters");
372
373 static int pmap_growkernel_panic = 0;
374 SYSCTL_INT(_vm_pmap, OID_AUTO, growkernel_panic, CTLFLAG_RDTUN,
375 &pmap_growkernel_panic, 0,
376 "panic on failure to allocate kernel page table page");
377
378 bool pmap_lpa_enabled __read_mostly = false;
379 pt_entry_t pmap_sh_attr __read_mostly = ATTR_SH(ATTR_SH_IS);
380
381 #if PAGE_SIZE == PAGE_SIZE_4K
382 #define L1_BLOCKS_SUPPORTED 1
383 #else
384 #define L1_BLOCKS_SUPPORTED (pmap_lpa_enabled)
385 #endif
386
387 #define PMAP_ASSERT_L1_BLOCKS_SUPPORTED MPASS(L1_BLOCKS_SUPPORTED)
388
389 static bool pmap_l1_supported __read_mostly = false;
390
391 /*
392 * This ASID allocator uses a bit vector ("asid_set") to remember which ASIDs
393 * that it has currently allocated to a pmap, a cursor ("asid_next") to
394 * optimize its search for a free ASID in the bit vector, and an epoch number
395 * ("asid_epoch") to indicate when it has reclaimed all previously allocated
396 * ASIDs that are not currently active on a processor.
397 *
398 * The current epoch number is always in the range [0, INT_MAX). Negative
399 * numbers and INT_MAX are reserved for special cases that are described
400 * below.
401 */
402 struct asid_set {
403 int asid_bits;
404 bitstr_t *asid_set;
405 int asid_set_size;
406 int asid_next;
407 int asid_epoch;
408 struct mtx asid_set_mutex;
409 };
410
411 static struct asid_set asids;
412 static struct asid_set vmids;
413
414 static SYSCTL_NODE(_vm_pmap, OID_AUTO, asid, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
415 "ASID allocator");
416 SYSCTL_INT(_vm_pmap_asid, OID_AUTO, bits, CTLFLAG_RD, &asids.asid_bits, 0,
417 "The number of bits in an ASID");
418 SYSCTL_INT(_vm_pmap_asid, OID_AUTO, next, CTLFLAG_RD, &asids.asid_next, 0,
419 "The last allocated ASID plus one");
420 SYSCTL_INT(_vm_pmap_asid, OID_AUTO, epoch, CTLFLAG_RD, &asids.asid_epoch, 0,
421 "The current epoch number");
422
423 static SYSCTL_NODE(_vm_pmap, OID_AUTO, vmid, CTLFLAG_RD, 0, "VMID allocator");
424 SYSCTL_INT(_vm_pmap_vmid, OID_AUTO, bits, CTLFLAG_RD, &vmids.asid_bits, 0,
425 "The number of bits in an VMID");
426 SYSCTL_INT(_vm_pmap_vmid, OID_AUTO, next, CTLFLAG_RD, &vmids.asid_next, 0,
427 "The last allocated VMID plus one");
428 SYSCTL_INT(_vm_pmap_vmid, OID_AUTO, epoch, CTLFLAG_RD, &vmids.asid_epoch, 0,
429 "The current epoch number");
430
431 void (*pmap_clean_stage2_tlbi)(void);
432 void (*pmap_stage2_invalidate_range)(uint64_t, vm_offset_t, vm_offset_t, bool);
433 void (*pmap_stage2_invalidate_all)(uint64_t);
434
435 /*
436 * A pmap's cookie encodes an ASID and epoch number. Cookies for reserved
437 * ASIDs have a negative epoch number, specifically, INT_MIN. Cookies for
438 * dynamically allocated ASIDs have a non-negative epoch number.
439 *
440 * An invalid ASID is represented by -1.
441 *
442 * There are two special-case cookie values: (1) COOKIE_FROM(-1, INT_MIN),
443 * which indicates that an ASID should never be allocated to the pmap, and
444 * (2) COOKIE_FROM(-1, INT_MAX), which indicates that an ASID should be
445 * allocated when the pmap is next activated.
446 */
447 #define COOKIE_FROM(asid, epoch) ((long)((u_int)(asid) | \
448 ((u_long)(epoch) << 32)))
449 #define COOKIE_TO_ASID(cookie) ((int)(cookie))
450 #define COOKIE_TO_EPOCH(cookie) ((int)((u_long)(cookie) >> 32))
451
452 #define TLBI_VA_SHIFT 12
453 #define TLBI_VA_MASK ((1ul << 44) - 1)
454 #define TLBI_VA(addr) (((addr) >> TLBI_VA_SHIFT) & TLBI_VA_MASK)
455
456 /*
457 * The operand to a range-based TLBI instruction has the following fields:
458 *
459 * 63 48 47 46 45 44 43 39 38 37 36 0
460 * +----------+-------+--------+--------+--------+-----------------+
461 * | ASID | TG | SCALE | NUM | TTL | BaseADDR |
462 * +----------+-------+--------+--------+--------+-----------------+
463 *
464 * A single range-based TLBI instruction invalidates the TLB entries for the
465 * mappings within the address range
466 *
467 * [BaseADDR, BaseADDR + (NUM + 1) * 2^(5 * SCALE + 1) * PAGE_SIZE)
468 *
469 * BaseADDR is VA[48:PAGE_SHIFT], unless 52-bit addressing is enabled, i.e.,
470 * pmap_lpa_enabled is true, in which case BaseADDR is VA[52:16] regardless
471 * of the page size. Consequently, when pmap_lpa_enabled is true, the start
472 * of the address range must be 64KB aligned, and any leading pages must be
473 * invalidated individually.
474 *
475 * TTL optionally specifies the translation table level at which every
476 * mapping within the address range can be found; we currently set TTL to 0,
477 * meaning that we are not providing a hint.
478 *
479 * A single instruction invalidates some number of units, where a unit is
480 * 2^(5 * SCALE + 1) pages. NUM is that number minus 1.
481 *
482 * TG specifies the translation granule size, i.e., PAGE_SIZE.
483 */
484 #define TLBI_RANGE_VA_SHIFT() (pmap_lpa_enabled ? 16 : PAGE_SHIFT)
485
486 #define TLBI_RANGE_BADDR_MASK ((1ul << 37) - 1)
487 #define TLBI_RANGE_NUM_SHIFT 39
488 #define TLBI_RANGE_SCALE_SHIFT 44
489 #define TLBI_RANGE_TG_SHIFT 46
490
491 #define TLBI_RANGE_MAX_UNITS 32
492 #define TLBI_RANGE_MAX_SCALE 3
493
494 #define TLBI_RANGE_UNIT_SHIFT(scale) (5 * (scale) + 1)
495 #define TLBI_RANGE_UNIT(scale) (1ul << TLBI_RANGE_UNIT_SHIFT(scale))
496
497 /*
498 * The largest scale such that a unit fits within the given number of pages,
499 * i.e., the largest scale such that TLBI_RANGE_UNIT(scale) <= pages. The
500 * given number of pages must be at least TLBI_RANGE_UNIT(0).
501 */
502 #define TLBI_RANGE_SCALE(pages) \
503 imin((flsl(pages) - 2) / 5, TLBI_RANGE_MAX_SCALE)
504
505 #if PAGE_SIZE == PAGE_SIZE_4K
506 #define TLBI_RANGE_TG (1ul << TLBI_RANGE_TG_SHIFT)
507 #elif PAGE_SIZE == PAGE_SIZE_16K
508 #define TLBI_RANGE_TG (2ul << TLBI_RANGE_TG_SHIFT)
509 #else
510 #error Unsupported page size
511 #endif
512
513 #define TLBI_RANGE_FIELDS(va, va_shift, num, scale) \
514 (TLBI_RANGE_TG | ((u_long)(scale) << TLBI_RANGE_SCALE_SHIFT) | \
515 ((u_long)(num) << TLBI_RANGE_NUM_SHIFT) | \
516 (((va) >> (va_shift)) & TLBI_RANGE_BADDR_MASK))
517
518 static bool __read_frequently pmap_tlbi_range_support = false;
519
520 static int __read_frequently superpages_enabled = 1;
521 SYSCTL_INT(_vm_pmap, OID_AUTO, superpages_enabled,
522 CTLFLAG_RDTUN | CTLFLAG_NOFETCH, &superpages_enabled, 0,
523 "Are large page mappings enabled?");
524
525 /*
526 * True when Branch Target Identification should be used by userspace. This
527 * allows pmap to mark pages as guarded with ATTR_S1_GP.
528 */
529 __read_mostly static bool pmap_bti_support = false;
530
531 /*
532 * Internal flags for pmap_enter()'s helper functions.
533 */
534 #define PMAP_ENTER_NORECLAIM 0x1000000 /* Don't reclaim PV entries. */
535 #define PMAP_ENTER_NOREPLACE 0x2000000 /* Don't replace mappings. */
536
537 TAILQ_HEAD(pv_chunklist, pv_chunk);
538
539 static void free_pv_chunk(struct pv_chunk *pc);
540 static void free_pv_chunk_batch(struct pv_chunklist *batch);
541 static void free_pv_entry(pmap_t pmap, pv_entry_t pv);
542 static pv_entry_t get_pv_entry(pmap_t pmap, struct rwlock **lockp);
543 static vm_page_t reclaim_pv_chunk(pmap_t locked_pmap, struct rwlock **lockp);
544 static void pmap_pvh_free(struct md_page *pvh, pmap_t pmap, vm_offset_t va);
545 static pv_entry_t pmap_pvh_remove(struct md_page *pvh, pmap_t pmap,
546 vm_offset_t va);
547
548 static void pmap_abort_ptp(pmap_t pmap, vm_offset_t va, vm_page_t mpte);
549 static bool pmap_activate_int(struct thread *td, pmap_t pmap);
550 static void pmap_alloc_asid(pmap_t pmap);
551 static int pmap_change_props_locked(void *addr, vm_size_t size,
552 vm_prot_t prot, int mode, int old_mode, bool skip_unmapped);
553 static bool pmap_copy_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va,
554 pt_entry_t l3e, vm_page_t ml3, struct rwlock **lockp);
555 static pt_entry_t *pmap_demote_l1(pmap_t pmap, pt_entry_t *l1, vm_offset_t va);
556 static pt_entry_t *pmap_demote_l2_locked(pmap_t pmap, pt_entry_t *l2,
557 vm_offset_t va, struct rwlock **lockp);
558 static pt_entry_t *pmap_demote_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t va);
559 static bool pmap_demote_l2c(pmap_t pmap, pt_entry_t *l2p, vm_offset_t va);
560 static bool pmap_demote_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va);
561 static vm_page_t pmap_enter_quick_locked(pmap_t pmap, vm_offset_t va,
562 vm_page_t m, vm_prot_t prot, vm_page_t mpte, struct rwlock **lockp);
563 static int pmap_enter_l2(pmap_t pmap, vm_offset_t va, pd_entry_t new_l2,
564 u_int flags, vm_page_t m, struct rwlock **lockp);
565 static int pmap_enter_l3c(pmap_t pmap, vm_offset_t va, pt_entry_t l3e, u_int flags,
566 vm_page_t m, vm_page_t *ml3p, struct rwlock **lockp);
567 static bool pmap_every_pte_zero(vm_paddr_t pa);
568 static int pmap_insert_pt_page(pmap_t pmap, vm_page_t mpte, bool promoted,
569 bool all_l3e_AF_set);
570 static pt_entry_t pmap_load_l3c(pt_entry_t *l3p);
571 static void pmap_mask_set_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va,
572 vm_offset_t *vap, vm_offset_t va_next, pt_entry_t mask, pt_entry_t nbits);
573 static bool pmap_pv_insert_l3c(pmap_t pmap, vm_offset_t va, vm_page_t m,
574 struct rwlock **lockp);
575 static void pmap_remove_kernel_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t va);
576 static int pmap_remove_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t sva,
577 pd_entry_t l1e, bool demote_kl2e, struct spglist *free,
578 struct rwlock **lockp);
579 static int pmap_remove_l3(pmap_t pmap, pt_entry_t *l3, vm_offset_t sva,
580 pd_entry_t l2e, struct spglist *free, struct rwlock **lockp);
581 static bool pmap_remove_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va,
582 vm_offset_t *vap, vm_offset_t va_next, vm_page_t ml3, struct spglist *free,
583 struct rwlock **lockp);
584 static void pmap_reset_asid_set(pmap_t pmap);
585 static bool pmap_try_insert_pv_entry(pmap_t pmap, vm_offset_t va,
586 vm_page_t m, struct rwlock **lockp);
587
588 static vm_page_t _pmap_alloc_l3(pmap_t pmap, vm_pindex_t ptepindex,
589 struct rwlock **lockp);
590
591 static void _pmap_unwire_l3(pmap_t pmap, vm_offset_t va, vm_page_t m,
592 struct spglist *free);
593 static int pmap_unuse_pt(pmap_t, vm_offset_t, pd_entry_t, struct spglist *);
594 static void pmap_update_entry(pmap_t pmap, pd_entry_t *pte, pd_entry_t newpte,
595 vm_offset_t va, vm_size_t size, bool final_only);
596 static __inline vm_page_t pmap_remove_pt_page(pmap_t pmap, vm_offset_t va);
597
598 static uma_zone_t pmap_bti_ranges_zone;
599 static bool pmap_bti_same(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
600 pt_entry_t *pte);
601 static pt_entry_t pmap_pte_bti(pmap_t pmap, vm_offset_t va);
602 static void pmap_bti_on_remove(pmap_t pmap, vm_offset_t sva, vm_offset_t eva);
603 static void *bti_dup_range(void *ctx, void *data);
604 static void bti_free_range(void *ctx, void *node);
605 static int pmap_bti_copy(pmap_t dst_pmap, pmap_t src_pmap);
606 static void pmap_bti_deassign_all(pmap_t pmap);
607 static void pagezero(void *);
608
609 static void pmap_set_protected(pt_entry_t old_l3);
610 static void pmap_set_unprotected(pt_entry_t new_l3);
611
612 /*
613 * These load the old table data and store the new value.
614 * They need to be atomic as the System MMU may write to the table at
615 * the same time as the CPU.
616 */
617 #define pmap_clear(table) atomic_store_64(table, 0)
618 #define pmap_clear_bits(table, bits) atomic_clear_64(table, bits)
619 #define pmap_load(table) (*table)
620 #define pmap_load_clear(table) atomic_swap_64(table, 0)
621 #define pmap_load_store(table, entry) atomic_swap_64(table, entry)
622 #define pmap_set_bits(table, bits) atomic_set_64(table, bits)
623 #define pmap_store(table, entry) atomic_store_64(table, entry)
624
625 /********************/
626 /* Inline functions */
627 /********************/
628
629 static __inline void
pagecopy(void * s,void * d)630 pagecopy(void *s, void *d)
631 {
632
633 memcpy(d, s, PAGE_SIZE);
634 }
635
636 static __inline pd_entry_t *
pmap_l0(pmap_t pmap,vm_offset_t va)637 pmap_l0(pmap_t pmap, vm_offset_t va)
638 {
639
640 return (&pmap->pm_l0[pmap_l0_index(va)]);
641 }
642
643 static __inline pd_entry_t *
pmap_l0_to_l1(pd_entry_t * l0,vm_offset_t va)644 pmap_l0_to_l1(pd_entry_t *l0, vm_offset_t va)
645 {
646 pd_entry_t *l1;
647
648 l1 = PHYS_TO_DMAP(PTE_TO_PHYS(pmap_load(l0)));
649 return (&l1[pmap_l1_index(va)]);
650 }
651
652 static __inline pd_entry_t *
pmap_l1(pmap_t pmap,vm_offset_t va)653 pmap_l1(pmap_t pmap, vm_offset_t va)
654 {
655 pd_entry_t *l0;
656
657 l0 = pmap_l0(pmap, va);
658 if ((pmap_load(l0) & ATTR_DESCR_MASK) != L0_TABLE)
659 return (NULL);
660
661 return (pmap_l0_to_l1(l0, va));
662 }
663
664 static __inline pd_entry_t *
pmap_l1_to_l2(pd_entry_t * l1p,vm_offset_t va)665 pmap_l1_to_l2(pd_entry_t *l1p, vm_offset_t va)
666 {
667 pd_entry_t l1, *l2p;
668
669 l1 = pmap_load(l1p);
670
671 KASSERT(ADDR_IS_CANONICAL(va),
672 ("%s: Address not in canonical form: %lx", __func__, va));
673 /*
674 * The valid bit may be clear if pmap_update_entry() is concurrently
675 * modifying the entry, so for KVA only the entry type may be checked.
676 */
677 KASSERT(ADDR_IS_KERNEL(va) || (l1 & ATTR_DESCR_VALID) != 0,
678 ("%s: L1 entry %#lx for %#lx is invalid", __func__, l1, va));
679 KASSERT((l1 & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_TABLE,
680 ("%s: L1 entry %#lx for %#lx is a leaf", __func__, l1, va));
681 l2p = PHYS_TO_DMAP(PTE_TO_PHYS(l1));
682 return (&l2p[pmap_l2_index(va)]);
683 }
684
685 static __inline pd_entry_t *
pmap_l2(pmap_t pmap,vm_offset_t va)686 pmap_l2(pmap_t pmap, vm_offset_t va)
687 {
688 pd_entry_t *l1;
689
690 l1 = pmap_l1(pmap, va);
691 if ((pmap_load(l1) & ATTR_DESCR_MASK) != L1_TABLE)
692 return (NULL);
693
694 return (pmap_l1_to_l2(l1, va));
695 }
696
697 static __inline pt_entry_t *
pmap_l2_to_l3(pd_entry_t * l2p,vm_offset_t va)698 pmap_l2_to_l3(pd_entry_t *l2p, vm_offset_t va)
699 {
700 pd_entry_t l2;
701 pt_entry_t *l3p;
702
703 l2 = pmap_load(l2p);
704
705 KASSERT(ADDR_IS_CANONICAL(va),
706 ("%s: Address not in canonical form: %lx", __func__, va));
707 /*
708 * The valid bit may be clear if pmap_update_entry() is concurrently
709 * modifying the entry, so for KVA only the entry type may be checked.
710 */
711 KASSERT(ADDR_IS_KERNEL(va) || (l2 & ATTR_DESCR_VALID) != 0,
712 ("%s: L2 entry %#lx for %#lx is invalid", __func__, l2, va));
713 KASSERT((l2 & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_TABLE,
714 ("%s: L2 entry %#lx for %#lx is a leaf", __func__, l2, va));
715 l3p = PHYS_TO_DMAP(PTE_TO_PHYS(l2));
716 return (&l3p[pmap_l3_index(va)]);
717 }
718
719 /*
720 * Returns the lowest valid pde for a given virtual address.
721 * The next level may or may not point to a valid page or block.
722 */
723 static __inline pd_entry_t *
pmap_pde(pmap_t pmap,vm_offset_t va,int * level)724 pmap_pde(pmap_t pmap, vm_offset_t va, int *level)
725 {
726 pd_entry_t *l0, *l1, *l2, desc;
727
728 l0 = pmap_l0(pmap, va);
729 desc = pmap_load(l0) & ATTR_DESCR_MASK;
730 if (desc != L0_TABLE) {
731 *level = -1;
732 return (NULL);
733 }
734
735 l1 = pmap_l0_to_l1(l0, va);
736 desc = pmap_load(l1) & ATTR_DESCR_MASK;
737 if (desc != L1_TABLE) {
738 *level = 0;
739 return (l0);
740 }
741
742 l2 = pmap_l1_to_l2(l1, va);
743 desc = pmap_load(l2) & ATTR_DESCR_MASK;
744 if (desc != L2_TABLE) {
745 *level = 1;
746 return (l1);
747 }
748
749 *level = 2;
750 return (l2);
751 }
752
753 /*
754 * Returns the lowest valid pte block or table entry for a given virtual
755 * address. If there are no valid entries return NULL and set the level to
756 * the first invalid level.
757 */
758 static __inline pt_entry_t *
pmap_pte(pmap_t pmap,vm_offset_t va,int * level)759 pmap_pte(pmap_t pmap, vm_offset_t va, int *level)
760 {
761 pd_entry_t *l1, *l2, desc;
762 pt_entry_t *l3;
763
764 l1 = pmap_l1(pmap, va);
765 if (l1 == NULL) {
766 *level = 0;
767 return (NULL);
768 }
769 desc = pmap_load(l1) & ATTR_DESCR_MASK;
770 if (desc == L1_BLOCK) {
771 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
772 *level = 1;
773 return (l1);
774 }
775
776 if (desc != L1_TABLE) {
777 *level = 1;
778 return (NULL);
779 }
780
781 l2 = pmap_l1_to_l2(l1, va);
782 desc = pmap_load(l2) & ATTR_DESCR_MASK;
783 if (desc == L2_BLOCK) {
784 *level = 2;
785 return (l2);
786 }
787
788 if (desc != L2_TABLE) {
789 *level = 2;
790 return (NULL);
791 }
792
793 *level = 3;
794 l3 = pmap_l2_to_l3(l2, va);
795 if ((pmap_load(l3) & ATTR_DESCR_MASK) != L3_PAGE)
796 return (NULL);
797
798 return (l3);
799 }
800
801 /*
802 * If the given pmap has an L{1,2}_BLOCK or L3_PAGE entry at the specified
803 * level that maps the specified virtual address, then a pointer to that entry
804 * is returned. Otherwise, NULL is returned, unless INVARIANTS are enabled
805 * and a diagnostic message is provided, in which case this function panics.
806 */
807 static __always_inline pt_entry_t *
pmap_pte_exists(pmap_t pmap,vm_offset_t va,int level,const char * diag)808 pmap_pte_exists(pmap_t pmap, vm_offset_t va, int level, const char *diag)
809 {
810 pd_entry_t *l0p, *l1p, *l2p;
811 pt_entry_t desc, *l3p;
812 int walk_level __diagused;
813
814 KASSERT(level >= 0 && level < 4,
815 ("%s: %s passed an out-of-range level (%d)", __func__, diag,
816 level));
817 l0p = pmap_l0(pmap, va);
818 desc = pmap_load(l0p) & ATTR_DESCR_MASK;
819 if (desc == L0_TABLE && level > 0) {
820 l1p = pmap_l0_to_l1(l0p, va);
821 desc = pmap_load(l1p) & ATTR_DESCR_MASK;
822 if (desc == L1_BLOCK && level == 1) {
823 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
824 return (l1p);
825 }
826 if (desc == L1_TABLE && level > 1) {
827 l2p = pmap_l1_to_l2(l1p, va);
828 desc = pmap_load(l2p) & ATTR_DESCR_MASK;
829 if (desc == L2_BLOCK && level == 2)
830 return (l2p);
831 else if (desc == L2_TABLE && level > 2) {
832 l3p = pmap_l2_to_l3(l2p, va);
833 desc = pmap_load(l3p) & ATTR_DESCR_MASK;
834 if (desc == L3_PAGE && level == 3)
835 return (l3p);
836 else
837 walk_level = 3;
838 } else
839 walk_level = 2;
840 } else
841 walk_level = 1;
842 } else
843 walk_level = 0;
844 KASSERT(diag == NULL,
845 ("%s: va %#lx not mapped at level %d, desc %ld at level %d",
846 diag, va, level, desc, walk_level));
847 return (NULL);
848 }
849
850 bool
pmap_ps_enabled(pmap_t pmap)851 pmap_ps_enabled(pmap_t pmap)
852 {
853 /*
854 * Promotion requires a hypervisor call when the kernel is running
855 * in EL1. To stop this disable superpage support on non-stage 1
856 * pmaps for now.
857 */
858 if (pmap->pm_stage != PM_STAGE1)
859 return (false);
860
861 #ifdef KMSAN
862 /*
863 * The break-before-make in pmap_update_entry() results in a situation
864 * where a CPU may call into the KMSAN runtime while the entry is
865 * invalid. If the entry is used to map the current thread structure,
866 * then the runtime will attempt to access unmapped memory. Avoid this
867 * by simply disabling superpage promotion for the kernel map.
868 */
869 if (pmap == kernel_pmap)
870 return (false);
871 #endif
872
873 return (superpages_enabled != 0);
874 }
875
876 bool
pmap_vs_enabled(void)877 pmap_vs_enabled(void)
878 {
879 /*
880 * 8 and 16 are the only values hardware can support, but allow for the
881 * possibility of artificially restricting the bits, e.g. for testing.
882 */
883 KASSERT(vmids.asid_bits <= 16, ("VMID bits %d > 16", vmids.asid_bits));
884 return (vmids.asid_bits > 8);
885 }
886
887 bool
pmap_get_tables(pmap_t pmap,vm_offset_t va,pd_entry_t ** l0,pd_entry_t ** l1,pd_entry_t ** l2,pt_entry_t ** l3)888 pmap_get_tables(pmap_t pmap, vm_offset_t va, pd_entry_t **l0, pd_entry_t **l1,
889 pd_entry_t **l2, pt_entry_t **l3)
890 {
891 pd_entry_t *l0p, *l1p, *l2p;
892
893 if (pmap->pm_l0 == NULL)
894 return (false);
895
896 l0p = pmap_l0(pmap, va);
897 *l0 = l0p;
898
899 if ((pmap_load(l0p) & ATTR_DESCR_MASK) != L0_TABLE)
900 return (false);
901
902 l1p = pmap_l0_to_l1(l0p, va);
903 *l1 = l1p;
904
905 if ((pmap_load(l1p) & ATTR_DESCR_MASK) == L1_BLOCK) {
906 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
907 *l2 = NULL;
908 *l3 = NULL;
909 return (true);
910 }
911
912 if ((pmap_load(l1p) & ATTR_DESCR_MASK) != L1_TABLE)
913 return (false);
914
915 l2p = pmap_l1_to_l2(l1p, va);
916 *l2 = l2p;
917
918 if ((pmap_load(l2p) & ATTR_DESCR_MASK) == L2_BLOCK) {
919 *l3 = NULL;
920 return (true);
921 }
922
923 if ((pmap_load(l2p) & ATTR_DESCR_MASK) != L2_TABLE)
924 return (false);
925
926 *l3 = pmap_l2_to_l3(l2p, va);
927
928 return (true);
929 }
930
931 static __inline int
pmap_l3_valid(pt_entry_t l3)932 pmap_l3_valid(pt_entry_t l3)
933 {
934
935 return ((l3 & ATTR_DESCR_MASK) == L3_PAGE);
936 }
937
938 CTASSERT(L1_BLOCK == L2_BLOCK);
939
940 static pt_entry_t
pmap_pte_memattr(pmap_t pmap,vm_memattr_t memattr)941 pmap_pte_memattr(pmap_t pmap, vm_memattr_t memattr)
942 {
943 pt_entry_t val;
944
945 if (pmap->pm_stage == PM_STAGE1) {
946 val = ATTR_S1_IDX(memattr);
947 if (memattr == VM_MEMATTR_DEVICE)
948 val |= ATTR_S1_XN;
949 return (val);
950 }
951
952 val = 0;
953
954 switch (memattr) {
955 case VM_MEMATTR_DEVICE:
956 return (ATTR_S2_MEMATTR(ATTR_S2_MEMATTR_DEVICE_nGnRnE) |
957 ATTR_S2_XN(ATTR_S2_XN_ALL));
958 case VM_MEMATTR_UNCACHEABLE:
959 return (ATTR_S2_MEMATTR(ATTR_S2_MEMATTR_NC));
960 case VM_MEMATTR_WRITE_BACK:
961 return (ATTR_S2_MEMATTR(ATTR_S2_MEMATTR_WB));
962 case VM_MEMATTR_WRITE_THROUGH:
963 return (ATTR_S2_MEMATTR(ATTR_S2_MEMATTR_WT));
964 default:
965 panic("%s: invalid memory attribute %x", __func__, memattr);
966 }
967 }
968
969 static pt_entry_t
pmap_pte_prot(pmap_t pmap,vm_prot_t prot)970 pmap_pte_prot(pmap_t pmap, vm_prot_t prot)
971 {
972 pt_entry_t val;
973
974 val = 0;
975 if (pmap->pm_stage == PM_STAGE1) {
976 if ((prot & VM_PROT_EXECUTE) == 0)
977 val |= ATTR_S1_XN;
978 if ((prot & VM_PROT_WRITE) == 0)
979 val |= ATTR_S1_AP(ATTR_S1_AP_RO);
980 } else {
981 if ((prot & VM_PROT_WRITE) != 0)
982 val |= ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE);
983 if ((prot & VM_PROT_READ) != 0)
984 val |= ATTR_S2_S2AP(ATTR_S2_S2AP_READ);
985 if ((prot & VM_PROT_EXECUTE) == 0)
986 val |= ATTR_S2_XN(ATTR_S2_XN_ALL);
987 }
988
989 return (val);
990 }
991
992 /*
993 * Checks if the PTE is dirty.
994 */
995 static inline int
pmap_pte_dirty(pmap_t pmap,pt_entry_t pte)996 pmap_pte_dirty(pmap_t pmap, pt_entry_t pte)
997 {
998
999 KASSERT((pte & ATTR_SW_MANAGED) != 0, ("pte %#lx is unmanaged", pte));
1000
1001 if (pmap->pm_stage == PM_STAGE1) {
1002 KASSERT((pte & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) != 0,
1003 ("pte %#lx is writeable and missing ATTR_SW_DBM", pte));
1004
1005 return ((pte & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
1006 (ATTR_S1_AP(ATTR_S1_AP_RW) | ATTR_SW_DBM));
1007 }
1008
1009 return ((pte & ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE)) ==
1010 ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE));
1011 }
1012
1013 static __inline void
pmap_resident_count_inc(pmap_t pmap,int count)1014 pmap_resident_count_inc(pmap_t pmap, int count)
1015 {
1016
1017 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1018 pmap->pm_stats.resident_count += count;
1019 }
1020
1021 static __inline void
pmap_resident_count_dec(pmap_t pmap,int count)1022 pmap_resident_count_dec(pmap_t pmap, int count)
1023 {
1024
1025 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
1026 KASSERT(pmap->pm_stats.resident_count >= count,
1027 ("pmap %p resident count underflow %ld %d", pmap,
1028 pmap->pm_stats.resident_count, count));
1029 pmap->pm_stats.resident_count -= count;
1030 }
1031
1032 static vm_paddr_t
pmap_early_vtophys(vm_offset_t va)1033 pmap_early_vtophys(vm_offset_t va)
1034 {
1035 vm_paddr_t pa_page;
1036
1037 pa_page = arm64_address_translate_s1e1r(va) & PAR_PA_MASK;
1038 return (pa_page | (va & PAR_LOW_MASK));
1039 }
1040
1041 /* State of the bootstrapped DMAP page tables */
1042 struct pmap_bootstrap_state {
1043 pt_entry_t *l1;
1044 pt_entry_t *l2;
1045 pt_entry_t *l3;
1046 vm_offset_t freemempos;
1047 vm_offset_t va;
1048 vm_paddr_t pa;
1049 pt_entry_t table_attrs;
1050 u_int l0_slot;
1051 u_int l1_slot;
1052 u_int l2_slot;
1053 bool dmap_valid;
1054 };
1055
1056 /* The bootstrap state */
1057 static struct pmap_bootstrap_state bs_state = {
1058 .l1 = NULL,
1059 .l2 = NULL,
1060 .l3 = NULL,
1061 .table_attrs = TATTR_PXN_TABLE,
1062 .l0_slot = L0_ENTRIES,
1063 .l1_slot = Ln_ENTRIES,
1064 .l2_slot = Ln_ENTRIES,
1065 .dmap_valid = false,
1066 };
1067
1068 static void
pmap_bootstrap_l0_table(struct pmap_bootstrap_state * state)1069 pmap_bootstrap_l0_table(struct pmap_bootstrap_state *state)
1070 {
1071 vm_paddr_t l1_pa;
1072 pd_entry_t l0e;
1073 u_int l0_slot;
1074
1075 /* Link the level 0 table to a level 1 table */
1076 l0_slot = pmap_l0_index(state->va);
1077 if (l0_slot != state->l0_slot) {
1078 /*
1079 * Make sure we move from a low address to high address
1080 * before the DMAP region is ready. This ensures we never
1081 * modify an existing mapping until we can map from a
1082 * physical address to a virtual address.
1083 */
1084 MPASS(state->l0_slot < l0_slot ||
1085 state->l0_slot == L0_ENTRIES ||
1086 state->dmap_valid);
1087
1088 /* Reset lower levels */
1089 state->l2 = NULL;
1090 state->l3 = NULL;
1091 state->l1_slot = Ln_ENTRIES;
1092 state->l2_slot = Ln_ENTRIES;
1093
1094 /* Check the existing L0 entry */
1095 state->l0_slot = l0_slot;
1096 if (state->dmap_valid) {
1097 l0e = pagetable_l0_ttbr1[l0_slot];
1098 if ((l0e & ATTR_DESCR_VALID) != 0) {
1099 MPASS((l0e & ATTR_DESCR_MASK) == L0_TABLE);
1100 l1_pa = PTE_TO_PHYS(l0e);
1101 state->l1 = PHYS_TO_DMAP(l1_pa);
1102 return;
1103 }
1104 }
1105
1106 /* Create a new L0 table entry */
1107 state->l1 = (pt_entry_t *)state->freemempos;
1108 memset_early(state->l1, 0, PAGE_SIZE);
1109 state->freemempos += PAGE_SIZE;
1110
1111 l1_pa = pmap_early_vtophys((vm_offset_t)state->l1);
1112 MPASS((l1_pa & Ln_TABLE_MASK) == 0);
1113 MPASS(pagetable_l0_ttbr1[l0_slot] == 0);
1114 pmap_store(&pagetable_l0_ttbr1[l0_slot], PHYS_TO_PTE(l1_pa) |
1115 TATTR_UXN_TABLE | TATTR_AP_TABLE_NO_EL0 | L0_TABLE);
1116 }
1117 KASSERT(state->l1 != NULL, ("%s: NULL l1", __func__));
1118 }
1119
1120 static void
pmap_bootstrap_l1_table(struct pmap_bootstrap_state * state)1121 pmap_bootstrap_l1_table(struct pmap_bootstrap_state *state)
1122 {
1123 vm_paddr_t l2_pa;
1124 pd_entry_t l1e;
1125 u_int l1_slot;
1126
1127 /* Make sure there is a valid L0 -> L1 table */
1128 pmap_bootstrap_l0_table(state);
1129
1130 /* Link the level 1 table to a level 2 table */
1131 l1_slot = pmap_l1_index(state->va);
1132 if (l1_slot != state->l1_slot) {
1133 /* See pmap_bootstrap_l0_table for a description */
1134 MPASS(state->l1_slot < l1_slot ||
1135 state->l1_slot == Ln_ENTRIES ||
1136 state->dmap_valid);
1137
1138 /* Reset lower levels */
1139 state->l3 = NULL;
1140 state->l2_slot = Ln_ENTRIES;
1141
1142 /* Check the existing L1 entry */
1143 state->l1_slot = l1_slot;
1144 if (state->dmap_valid) {
1145 l1e = state->l1[l1_slot];
1146 if ((l1e & ATTR_DESCR_VALID) != 0) {
1147 MPASS((l1e & ATTR_DESCR_MASK) == L1_TABLE);
1148 l2_pa = PTE_TO_PHYS(l1e);
1149 state->l2 = PHYS_TO_DMAP(l2_pa);
1150 return;
1151 }
1152 }
1153
1154 /* Create a new L1 table entry */
1155 state->l2 = (pt_entry_t *)state->freemempos;
1156 memset_early(state->l2, 0, PAGE_SIZE);
1157 state->freemempos += PAGE_SIZE;
1158
1159 l2_pa = pmap_early_vtophys((vm_offset_t)state->l2);
1160 MPASS((l2_pa & Ln_TABLE_MASK) == 0);
1161 MPASS(state->l1[l1_slot] == 0);
1162 pmap_store(&state->l1[l1_slot], PHYS_TO_PTE(l2_pa) |
1163 state->table_attrs | L1_TABLE);
1164 }
1165 KASSERT(state->l2 != NULL, ("%s: NULL l2", __func__));
1166 }
1167
1168 static void
pmap_bootstrap_l2_table(struct pmap_bootstrap_state * state)1169 pmap_bootstrap_l2_table(struct pmap_bootstrap_state *state)
1170 {
1171 vm_paddr_t l3_pa;
1172 pd_entry_t l2e;
1173 u_int l2_slot;
1174
1175 /* Make sure there is a valid L1 -> L2 table */
1176 pmap_bootstrap_l1_table(state);
1177
1178 /* Link the level 2 table to a level 3 table */
1179 l2_slot = pmap_l2_index(state->va);
1180 if (l2_slot != state->l2_slot) {
1181 /* See pmap_bootstrap_l0_table for a description */
1182 MPASS(state->l2_slot < l2_slot ||
1183 state->l2_slot == Ln_ENTRIES ||
1184 state->dmap_valid);
1185
1186 /* Check the existing L2 entry */
1187 state->l2_slot = l2_slot;
1188 if (state->dmap_valid) {
1189 l2e = state->l2[l2_slot];
1190 if ((l2e & ATTR_DESCR_VALID) != 0) {
1191 MPASS((l2e & ATTR_DESCR_MASK) == L2_TABLE);
1192 l3_pa = PTE_TO_PHYS(l2e);
1193 state->l3 = PHYS_TO_DMAP(l3_pa);
1194 return;
1195 }
1196 }
1197
1198 /* Create a new L2 table entry */
1199 state->l3 = (pt_entry_t *)state->freemempos;
1200 memset_early(state->l3, 0, PAGE_SIZE);
1201 state->freemempos += PAGE_SIZE;
1202
1203 l3_pa = pmap_early_vtophys((vm_offset_t)state->l3);
1204 MPASS((l3_pa & Ln_TABLE_MASK) == 0);
1205 MPASS(state->l2[l2_slot] == 0);
1206 pmap_store(&state->l2[l2_slot], PHYS_TO_PTE(l3_pa) |
1207 state->table_attrs | L2_TABLE);
1208 }
1209 KASSERT(state->l3 != NULL, ("%s: NULL l3", __func__));
1210 }
1211
1212 static void
pmap_bootstrap_l2_block(struct pmap_bootstrap_state * state,int i)1213 pmap_bootstrap_l2_block(struct pmap_bootstrap_state *state, int i)
1214 {
1215 pt_entry_t contig;
1216 u_int l2_slot;
1217 bool first;
1218
1219 if ((physmap[i + 1] - state->pa) < L2_SIZE)
1220 return;
1221
1222 /* Make sure there is a valid L1 table */
1223 pmap_bootstrap_l1_table(state);
1224
1225 MPASS((state->va & L2_OFFSET) == 0);
1226 for (first = true, contig = 0;
1227 state->va < DMAP_MAX_ADDRESS &&
1228 (physmap[i + 1] - state->pa) >= L2_SIZE;
1229 state->va += L2_SIZE, state->pa += L2_SIZE) {
1230 /*
1231 * Stop if we are about to walk off the end of what the
1232 * current L1 slot can address.
1233 */
1234 if (!first && (state->pa & L1_OFFSET) == 0)
1235 break;
1236
1237 /*
1238 * If we have an aligned, contiguous chunk of L2C_ENTRIES
1239 * L2 blocks, set the contiguous bit within each PTE so that
1240 * the chunk can be cached using only one TLB entry.
1241 */
1242 if ((state->pa & L2C_OFFSET) == 0) {
1243 if (state->va + L2C_SIZE < DMAP_MAX_ADDRESS &&
1244 physmap[i + 1] - state->pa >= L2C_SIZE) {
1245 contig = ATTR_CONTIGUOUS;
1246 } else {
1247 contig = 0;
1248 }
1249 }
1250
1251 first = false;
1252 l2_slot = pmap_l2_index(state->va);
1253 MPASS((state->pa & L2_OFFSET) == 0);
1254 MPASS(state->l2[l2_slot] == 0);
1255 pmap_store(&state->l2[l2_slot], PHYS_TO_PTE(state->pa) |
1256 ATTR_AF | pmap_sh_attr | ATTR_S1_XN | ATTR_KERN_GP |
1257 ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) | contig | L2_BLOCK);
1258 }
1259 MPASS(state->va == (state->pa - dmap_phys_base + DMAP_MIN_ADDRESS));
1260 }
1261
1262 static void
pmap_bootstrap_l3_page(struct pmap_bootstrap_state * state,int i)1263 pmap_bootstrap_l3_page(struct pmap_bootstrap_state *state, int i)
1264 {
1265 pt_entry_t contig;
1266 u_int l3_slot;
1267 bool first;
1268
1269 if (physmap[i + 1] - state->pa < L3_SIZE)
1270 return;
1271
1272 /* Make sure there is a valid L2 table */
1273 pmap_bootstrap_l2_table(state);
1274
1275 MPASS((state->va & L3_OFFSET) == 0);
1276 for (first = true, contig = 0;
1277 state->va < DMAP_MAX_ADDRESS &&
1278 physmap[i + 1] - state->pa >= L3_SIZE;
1279 state->va += L3_SIZE, state->pa += L3_SIZE) {
1280 /*
1281 * Stop if we are about to walk off the end of what the
1282 * current L2 slot can address.
1283 */
1284 if (!first && (state->pa & L2_OFFSET) == 0)
1285 break;
1286
1287 /*
1288 * If we have an aligned, contiguous chunk of L3C_ENTRIES
1289 * L3 pages, set the contiguous bit within each PTE so that
1290 * the chunk can be cached using only one TLB entry.
1291 */
1292 if ((state->pa & L3C_OFFSET) == 0) {
1293 if (state->va + L3C_SIZE < DMAP_MAX_ADDRESS &&
1294 physmap[i + 1] - state->pa >= L3C_SIZE) {
1295 contig = ATTR_CONTIGUOUS;
1296 } else {
1297 contig = 0;
1298 }
1299 }
1300
1301 first = false;
1302 l3_slot = pmap_l3_index(state->va);
1303 MPASS((state->pa & L3_OFFSET) == 0);
1304 MPASS(state->l3[l3_slot] == 0);
1305 pmap_store(&state->l3[l3_slot], PHYS_TO_PTE(state->pa) |
1306 ATTR_AF | pmap_sh_attr | ATTR_S1_XN | ATTR_KERN_GP |
1307 ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) | contig | L3_PAGE);
1308 }
1309 MPASS(state->va == (state->pa - dmap_phys_base + DMAP_MIN_ADDRESS));
1310 }
1311
1312 void
pmap_bootstrap_dmap(vm_size_t kernlen)1313 pmap_bootstrap_dmap(vm_size_t kernlen)
1314 {
1315 vm_paddr_t start_pa, pa;
1316 uint64_t tcr;
1317 int i;
1318
1319 tcr = READ_SPECIALREG(tcr_el1);
1320
1321 /* Verify that the ASID is set through TTBR0. */
1322 KASSERT((tcr & TCR_A1) == 0, ("pmap_bootstrap: TCR_EL1.A1 != 0"));
1323
1324 if ((tcr & TCR_DS) != 0)
1325 pmap_lpa_enabled = true;
1326
1327 pmap_l1_supported = L1_BLOCKS_SUPPORTED;
1328
1329 start_pa = pmap_early_vtophys(KERNBASE);
1330
1331 bs_state.freemempos = KERNBASE + kernlen;
1332 bs_state.freemempos = roundup2(bs_state.freemempos, PAGE_SIZE);
1333
1334 /* Fill in physmap array. */
1335 physmap_idx = physmem_avail(physmap, nitems(physmap));
1336
1337 dmap_phys_base = physmap[0] & ~L1_OFFSET;
1338 dmap_phys_max = 0;
1339 dmap_max_addr = 0;
1340
1341 for (i = 0; i < physmap_idx; i += 2) {
1342 bs_state.pa = physmap[i] & ~L3_OFFSET;
1343 bs_state.va = bs_state.pa - dmap_phys_base + DMAP_MIN_ADDRESS;
1344
1345 /* Create L3 mappings at the start of the region */
1346 if ((bs_state.pa & L2_OFFSET) != 0)
1347 pmap_bootstrap_l3_page(&bs_state, i);
1348 MPASS(bs_state.pa <= physmap[i + 1]);
1349
1350 if (L1_BLOCKS_SUPPORTED) {
1351 /* Create L2 mappings at the start of the region */
1352 if ((bs_state.pa & L1_OFFSET) != 0)
1353 pmap_bootstrap_l2_block(&bs_state, i);
1354 MPASS(bs_state.pa <= physmap[i + 1]);
1355
1356 /* Create the main L1 block mappings */
1357 for (; bs_state.va < DMAP_MAX_ADDRESS &&
1358 (physmap[i + 1] - bs_state.pa) >= L1_SIZE;
1359 bs_state.va += L1_SIZE, bs_state.pa += L1_SIZE) {
1360 /* Make sure there is a valid L1 table */
1361 pmap_bootstrap_l0_table(&bs_state);
1362 MPASS((bs_state.pa & L1_OFFSET) == 0);
1363 pmap_store(
1364 &bs_state.l1[pmap_l1_index(bs_state.va)],
1365 PHYS_TO_PTE(bs_state.pa) | ATTR_AF |
1366 pmap_sh_attr |
1367 ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) |
1368 ATTR_S1_XN | ATTR_KERN_GP | L1_BLOCK);
1369 }
1370 MPASS(bs_state.pa <= physmap[i + 1]);
1371
1372 /* Create L2 mappings at the end of the region */
1373 pmap_bootstrap_l2_block(&bs_state, i);
1374 } else {
1375 while (bs_state.va < DMAP_MAX_ADDRESS &&
1376 (physmap[i + 1] - bs_state.pa) >= L2_SIZE) {
1377 pmap_bootstrap_l2_block(&bs_state, i);
1378 }
1379 }
1380 MPASS(bs_state.pa <= physmap[i + 1]);
1381
1382 /* Create L3 mappings at the end of the region */
1383 pmap_bootstrap_l3_page(&bs_state, i);
1384 MPASS(bs_state.pa == physmap[i + 1]);
1385
1386 if (bs_state.pa > dmap_phys_max) {
1387 dmap_phys_max = bs_state.pa;
1388 dmap_max_addr = bs_state.va;
1389 }
1390 }
1391
1392 pmap_s1_invalidate_all_kernel();
1393
1394 bs_state.dmap_valid = true;
1395
1396 /* Exclude the kernel and DMAP region */
1397 pa = pmap_early_vtophys(bs_state.freemempos);
1398 physmem_exclude_region(start_pa, pa - start_pa, EXFLAG_NOALLOC);
1399 }
1400
1401 static void
pmap_bootstrap_l2(vm_offset_t va)1402 pmap_bootstrap_l2(vm_offset_t va)
1403 {
1404 KASSERT((va & L1_OFFSET) == 0, ("Invalid virtual address"));
1405
1406 /* Leave bs_state.pa as it's only needed to bootstrap blocks and pages*/
1407 bs_state.va = va;
1408
1409 for (; bs_state.va < VM_MAX_KERNEL_ADDRESS; bs_state.va += L1_SIZE)
1410 pmap_bootstrap_l1_table(&bs_state);
1411 }
1412
1413 static void
pmap_bootstrap_l3(vm_offset_t va)1414 pmap_bootstrap_l3(vm_offset_t va)
1415 {
1416 KASSERT((va & L2_OFFSET) == 0, ("Invalid virtual address"));
1417
1418 /* Leave bs_state.pa as it's only needed to bootstrap blocks and pages*/
1419 bs_state.va = va;
1420
1421 for (; bs_state.va < VM_MAX_KERNEL_ADDRESS; bs_state.va += L2_SIZE)
1422 pmap_bootstrap_l2_table(&bs_state);
1423 }
1424
1425 /*
1426 * Bootstrap the system enough to run with virtual memory.
1427 */
1428 void
pmap_bootstrap(void)1429 pmap_bootstrap(void)
1430 {
1431 vm_offset_t dpcpu, msgbufpv;
1432 vm_paddr_t start_pa, pa;
1433 size_t largest_phys_size;
1434
1435 /* Set this early so we can use the pagetable walking functions */
1436 kernel_pmap_store.pm_l0 = pagetable_l0_ttbr1;
1437 mtx_init(&kernel_pmap->pm_mtx, "kernel pmap", NULL, MTX_DEF);
1438 kernel_pmap->pm_l0_paddr =
1439 pmap_early_vtophys((vm_offset_t)kernel_pmap_store.pm_l0);
1440 TAILQ_INIT(&kernel_pmap->pm_pvchunk);
1441 vm_radix_init(&kernel_pmap->pm_root);
1442 kernel_pmap->pm_cookie = COOKIE_FROM(-1, INT_MIN);
1443 kernel_pmap->pm_stage = PM_STAGE1;
1444 kernel_pmap->pm_levels = 4;
1445 kernel_pmap->pm_ttbr = kernel_pmap->pm_l0_paddr;
1446 kernel_pmap->pm_asid_set = &asids;
1447
1448 /* Reserve some VA space for early BIOS/ACPI mapping */
1449 preinit_map_va = roundup2(bs_state.freemempos, L2_SIZE);
1450
1451 virtual_avail = preinit_map_va + PMAP_PREINIT_MAPPING_SIZE;
1452 virtual_avail = roundup2(virtual_avail, L1_SIZE);
1453 virtual_end = VM_MAX_KERNEL_ADDRESS - PMAP_MAPDEV_EARLY_SIZE - L2_SIZE;
1454 kernel_vm_end = virtual_avail;
1455
1456 /*
1457 * We only use PXN when we know nothing will be executed from it, e.g.
1458 * the DMAP region.
1459 */
1460 bs_state.table_attrs &= ~TATTR_PXN_TABLE;
1461
1462 /*
1463 * Find the physical memory we could use. This needs to be after we
1464 * exclude any memory that is mapped into the DMAP region but should
1465 * not be used by the kernel, e.g. some UEFI memory types.
1466 */
1467 physmap_idx = physmem_avail(physmap, nitems(physmap));
1468
1469 /*
1470 * Find space for early allocations. We search for the largest
1471 * region. This is because the user may choose a large msgbuf.
1472 * This could be smarter, e.g. to allow multiple regions to be
1473 * used & switch to the next when one is full.
1474 */
1475 largest_phys_size = 0;
1476 for (int i = 0; i < physmap_idx; i += 2) {
1477 if ((physmap[i + 1] - physmap[i]) > largest_phys_size) {
1478 largest_phys_size = physmap[i + 1] - physmap[i];
1479 bs_state.freemempos = PHYS_TO_DMAP_ADDR(physmap[i]);
1480 }
1481 }
1482
1483 start_pa = pmap_early_vtophys(bs_state.freemempos);
1484
1485 /*
1486 * Create the l2 tables up to VM_MAX_KERNEL_ADDRESS. We assume that the
1487 * loader allocated the first and only l2 page table page used to map
1488 * the kernel, preloaded files and module metadata.
1489 */
1490 pmap_bootstrap_l2(KERNBASE + L1_SIZE);
1491 /* And the l3 tables for the early devmap */
1492 pmap_bootstrap_l3(VM_MAX_KERNEL_ADDRESS - (PMAP_MAPDEV_EARLY_SIZE));
1493
1494 pmap_s1_invalidate_all_kernel();
1495
1496 #define alloc_pages(var, np) \
1497 (var) = bs_state.freemempos; \
1498 bs_state.freemempos += (np * PAGE_SIZE); \
1499 memset_early((char *)(var), 0, ((np) * PAGE_SIZE));
1500
1501 /* Allocate dynamic per-cpu area. */
1502 alloc_pages(dpcpu, DPCPU_SIZE / PAGE_SIZE);
1503 dpcpu_init((void *)dpcpu, 0);
1504
1505 /* Allocate memory for the msgbuf, e.g. for /sbin/dmesg */
1506 alloc_pages(msgbufpv, round_page(msgbufsize) / PAGE_SIZE);
1507 msgbufp = (void *)msgbufpv;
1508
1509 /* Allocate space for the CPU0 CMAP */
1510 bs_state.va = virtual_end;
1511 pmap_bootstrap_l2_table(&bs_state);
1512 pmap_store(&bs_state.l3[pmap_l3_index(bs_state.va)],
1513 PHYS_TO_PTE(pmap_early_vtophys((vm_offset_t)bs_state.l3)) |
1514 ATTR_AF | pmap_sh_attr | ATTR_S1_XN | ATTR_KERN_GP |
1515 ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) | L3_PAGE);
1516 dsb(ishst);
1517
1518 mtx_init(&cmap_lock, "SYSMAPS", NULL, MTX_DEF);
1519 cmap1_addr = (void *)(virtual_end + L3_SIZE);
1520 cmap1_pte = &bs_state.l3[pmap_l3_index((vm_offset_t)cmap1_addr)];
1521
1522 pa = pmap_early_vtophys(bs_state.freemempos);
1523
1524 physmem_exclude_region(start_pa, pa - start_pa, EXFLAG_NOALLOC);
1525 }
1526
1527 #if defined(KASAN) || defined(KMSAN)
1528 static void
pmap_bootstrap_allocate_san_l2(vm_paddr_t start_pa,vm_paddr_t end_pa,vm_offset_t * vap,vm_offset_t eva)1529 pmap_bootstrap_allocate_san_l2(vm_paddr_t start_pa, vm_paddr_t end_pa,
1530 vm_offset_t *vap, vm_offset_t eva)
1531 {
1532 vm_paddr_t pa;
1533 vm_offset_t va;
1534 pd_entry_t *l2;
1535
1536 va = *vap;
1537 pa = rounddown2(end_pa - L2_SIZE, L2_SIZE);
1538 for (; pa >= start_pa && va < eva; va += L2_SIZE, pa -= L2_SIZE) {
1539 l2 = pmap_l2(kernel_pmap, va);
1540
1541 /*
1542 * KASAN stack checking results in us having already allocated
1543 * part of our shadow map, so we can just skip those segments.
1544 */
1545 if ((pmap_load(l2) & ATTR_DESCR_VALID) != 0) {
1546 pa += L2_SIZE;
1547 continue;
1548 }
1549
1550 bzero_early(PHYS_TO_DMAP(pa), L2_SIZE);
1551 physmem_exclude_region(pa, L2_SIZE, EXFLAG_NOALLOC);
1552 pmap_store(l2, PHYS_TO_PTE(pa) | PMAP_SAN_PTE_BITS | L2_BLOCK);
1553 }
1554 *vap = va;
1555 }
1556
1557 /*
1558 * Finish constructing the initial shadow map:
1559 * - Count how many pages from KERNBASE to virtual_avail (scaled for
1560 * shadow map)
1561 * - Map that entire range using L2 superpages.
1562 */
1563 static void
pmap_bootstrap_san1(vm_offset_t va,int scale)1564 pmap_bootstrap_san1(vm_offset_t va, int scale)
1565 {
1566 vm_offset_t eva;
1567 vm_paddr_t kernstart;
1568 int i;
1569
1570 kernstart = pmap_early_vtophys(KERNBASE);
1571
1572 /*
1573 * Rebuild physmap one more time, we may have excluded more regions from
1574 * allocation since pmap_bootstrap().
1575 */
1576 physmap_idx = physmem_avail(physmap, nitems(physmap));
1577
1578 eva = va + (virtual_avail - VM_MIN_KERNEL_ADDRESS) / scale;
1579
1580 /*
1581 * Find a slot in the physmap large enough for what we needed. We try to put
1582 * the shadow map as high up as we can to avoid depleting the lower 4GB in case
1583 * it's needed for, e.g., an xhci controller that can only do 32-bit DMA.
1584 */
1585 for (i = physmap_idx - 2; i >= 0; i -= 2) {
1586 vm_paddr_t plow, phigh;
1587
1588 /* L2 mappings must be backed by memory that is L2-aligned */
1589 plow = roundup2(physmap[i], L2_SIZE);
1590 phigh = physmap[i + 1];
1591 if (plow >= phigh)
1592 continue;
1593 if (kernstart >= plow && kernstart < phigh)
1594 phigh = kernstart;
1595 if (phigh - plow >= L2_SIZE) {
1596 pmap_bootstrap_allocate_san_l2(plow, phigh, &va, eva);
1597 if (va >= eva)
1598 break;
1599 }
1600 }
1601 if (i < 0)
1602 panic("Could not find phys region for shadow map");
1603
1604 /*
1605 * Done. We should now have a valid shadow address mapped for all KVA
1606 * that has been mapped so far, i.e., KERNBASE to virtual_avail. Thus,
1607 * shadow accesses by the sanitizer runtime will succeed for this range.
1608 * When the kernel virtual address range is later expanded, as will
1609 * happen in vm_mem_init(), the shadow map will be grown as well. This
1610 * is handled by pmap_san_enter().
1611 */
1612 }
1613
1614 void
pmap_bootstrap_san(void)1615 pmap_bootstrap_san(void)
1616 {
1617 #ifdef KASAN
1618 pmap_bootstrap_san1(KASAN_MIN_ADDRESS, KASAN_SHADOW_SCALE);
1619 #else
1620 static uint8_t kmsan_shad_ptp[PAGE_SIZE * 2] __aligned(PAGE_SIZE);
1621 static uint8_t kmsan_orig_ptp[PAGE_SIZE * 2] __aligned(PAGE_SIZE);
1622 pd_entry_t *l0, *l1;
1623
1624 if (virtual_avail - VM_MIN_KERNEL_ADDRESS > L1_SIZE)
1625 panic("initial kernel map is too large");
1626
1627 l0 = pmap_l0(kernel_pmap, KMSAN_SHAD_MIN_ADDRESS);
1628 pmap_store(l0, L0_TABLE | PHYS_TO_PTE(
1629 pmap_early_vtophys((vm_offset_t)kmsan_shad_ptp)));
1630 l1 = pmap_l0_to_l1(l0, KMSAN_SHAD_MIN_ADDRESS);
1631 pmap_store(l1, L1_TABLE | PHYS_TO_PTE(
1632 pmap_early_vtophys((vm_offset_t)kmsan_shad_ptp + PAGE_SIZE)));
1633 pmap_bootstrap_san1(KMSAN_SHAD_MIN_ADDRESS, 1);
1634
1635 l0 = pmap_l0(kernel_pmap, KMSAN_ORIG_MIN_ADDRESS);
1636 pmap_store(l0, L0_TABLE | PHYS_TO_PTE(
1637 pmap_early_vtophys((vm_offset_t)kmsan_orig_ptp)));
1638 l1 = pmap_l0_to_l1(l0, KMSAN_ORIG_MIN_ADDRESS);
1639 pmap_store(l1, L1_TABLE | PHYS_TO_PTE(
1640 pmap_early_vtophys((vm_offset_t)kmsan_orig_ptp + PAGE_SIZE)));
1641 pmap_bootstrap_san1(KMSAN_ORIG_MIN_ADDRESS, 1);
1642 #endif
1643 }
1644 #endif
1645
1646 /*
1647 * Initialize a vm_page's machine-dependent fields.
1648 */
1649 void
pmap_page_init(vm_page_t m)1650 pmap_page_init(vm_page_t m)
1651 {
1652
1653 TAILQ_INIT(&m->md.pv_list);
1654 m->md.pv_memattr = VM_MEMATTR_WRITE_BACK;
1655 m->md.pv_flags = 0;
1656 }
1657
1658 static void
pmap_init_asids(struct asid_set * set,int bits)1659 pmap_init_asids(struct asid_set *set, int bits)
1660 {
1661 int i;
1662
1663 set->asid_bits = bits;
1664
1665 /*
1666 * We may be too early in the overall initialization process to use
1667 * bit_alloc().
1668 */
1669 set->asid_set_size = 1 << set->asid_bits;
1670 set->asid_set = kmem_malloc(bitstr_size(set->asid_set_size),
1671 M_WAITOK | M_ZERO);
1672 for (i = 0; i < ASID_FIRST_AVAILABLE; i++)
1673 bit_set(set->asid_set, i);
1674 set->asid_next = ASID_FIRST_AVAILABLE;
1675 mtx_init(&set->asid_set_mutex, "asid set", NULL, MTX_SPIN);
1676 }
1677
1678 static void
pmap_init_pv_table(void)1679 pmap_init_pv_table(void)
1680 {
1681 struct vm_phys_seg *seg, *next_seg;
1682 struct pmap_large_md_page *pvd;
1683 vm_size_t s;
1684 int domain, i, j, pages;
1685
1686 /*
1687 * We depend on the size being evenly divisible into a page so
1688 * that the pv_table array can be indexed directly while
1689 * safely spanning multiple pages from different domains.
1690 */
1691 CTASSERT(PAGE_SIZE % sizeof(*pvd) == 0);
1692
1693 /*
1694 * Calculate the size of the array.
1695 */
1696 s = 0;
1697 for (i = 0; i < vm_phys_nsegs; i++) {
1698 seg = &vm_phys_segs[i];
1699 pages = pmap_l2_pindex(roundup2(seg->end, L2_SIZE)) -
1700 pmap_l2_pindex(seg->start);
1701 s += round_page(pages * sizeof(*pvd));
1702 }
1703 pv_table = kva_alloc(s);
1704 if (pv_table == NULL)
1705 panic("%s: kva_alloc failed\n", __func__);
1706
1707 /*
1708 * Iterate physical segments to allocate domain-local memory for PV
1709 * list headers.
1710 */
1711 pvd = pv_table;
1712 for (i = 0; i < vm_phys_nsegs; i++) {
1713 seg = &vm_phys_segs[i];
1714 pages = pmap_l2_pindex(roundup2(seg->end, L2_SIZE)) -
1715 pmap_l2_pindex(seg->start);
1716 domain = seg->domain;
1717
1718 s = round_page(pages * sizeof(*pvd));
1719
1720 for (j = 0; j < s; j += PAGE_SIZE) {
1721 vm_page_t m = vm_page_alloc_noobj_domain(domain,
1722 VM_ALLOC_ZERO);
1723 if (m == NULL)
1724 panic("failed to allocate PV table page");
1725 pmap_qenter((char *)pvd + j, &m, 1);
1726 }
1727
1728 for (j = 0; j < s / sizeof(*pvd); j++) {
1729 rw_init_flags(&pvd->pv_lock, "pmap pv list", RW_NEW);
1730 TAILQ_INIT(&pvd->pv_page.pv_list);
1731 pvd++;
1732 }
1733 }
1734 pvd = &pv_dummy_large;
1735 memset(pvd, 0, sizeof(*pvd));
1736 rw_init_flags(&pvd->pv_lock, "pmap pv list dummy", RW_NEW);
1737 TAILQ_INIT(&pvd->pv_page.pv_list);
1738
1739 /*
1740 * Set pointers from vm_phys_segs to pv_table.
1741 */
1742 for (i = 0, pvd = pv_table; i < vm_phys_nsegs; i++) {
1743 seg = &vm_phys_segs[i];
1744 seg->md_first = pvd;
1745 pvd += pmap_l2_pindex(roundup2(seg->end, L2_SIZE)) -
1746 pmap_l2_pindex(seg->start);
1747
1748 /*
1749 * If there is a following segment, and the final
1750 * superpage of this segment and the initial superpage
1751 * of the next segment are the same then adjust the
1752 * pv_table entry for that next segment down by one so
1753 * that the pv_table entries will be shared.
1754 */
1755 if (i + 1 < vm_phys_nsegs) {
1756 next_seg = &vm_phys_segs[i + 1];
1757 if (pmap_l2_pindex(roundup2(seg->end, L2_SIZE)) - 1 ==
1758 pmap_l2_pindex(next_seg->start)) {
1759 pvd--;
1760 }
1761 }
1762 }
1763 }
1764
1765 static cpu_feat_en
pmap_dbm_check(const struct cpu_feat * feat __unused,u_int midr __unused)1766 pmap_dbm_check(const struct cpu_feat *feat __unused, u_int midr __unused)
1767 {
1768 uint64_t id_aa64mmfr1;
1769
1770 id_aa64mmfr1 = READ_SPECIALREG(id_aa64mmfr1_el1);
1771 if (ID_AA64MMFR1_HAFDBS_VAL(id_aa64mmfr1) >=
1772 ID_AA64MMFR1_HAFDBS_AF_DBS)
1773 return (FEAT_DEFAULT_ENABLE);
1774
1775 return (FEAT_ALWAYS_DISABLE);
1776 }
1777
1778 static bool
pmap_dbm_has_errata(const struct cpu_feat * feat __unused,u_int midr,u_int ** errata_list,u_int * errata_count)1779 pmap_dbm_has_errata(const struct cpu_feat *feat __unused, u_int midr,
1780 u_int **errata_list, u_int *errata_count)
1781 {
1782 /* Disable on Cortex-A55 for erratum 1024718 - all revisions */
1783 if (CPU_IMPL(midr) == CPU_IMPL_ARM &&
1784 CPU_PART(midr) == CPU_PART_CORTEX_A55) {
1785 static u_int errata_id = 1024718;
1786
1787 *errata_list = &errata_id;
1788 *errata_count = 1;
1789 return (true);
1790 }
1791
1792 /* Disable on Cortex-A510 for erratum 2051678 - r0p0 to r0p2 */
1793 if (midr_check_var_part_range(midr, CPU_IMPL_ARM, CPU_PART_CORTEX_A510,
1794 0, 0, 0, 2)) {
1795 static u_int errata_id = 2051678;
1796
1797 *errata_list = &errata_id;
1798 *errata_count = 1;
1799 return (true);
1800 }
1801
1802 return (false);
1803 }
1804
1805 static bool
pmap_dbm_enable(const struct cpu_feat * feat __unused,cpu_feat_errata errata_status,u_int * errata_list __unused,u_int errata_count)1806 pmap_dbm_enable(const struct cpu_feat *feat __unused,
1807 cpu_feat_errata errata_status, u_int *errata_list __unused,
1808 u_int errata_count)
1809 {
1810 uint64_t tcr;
1811
1812 /* Skip if there is an erratum affecting DBM */
1813 if (errata_status != ERRATA_NONE)
1814 return (false);
1815
1816 tcr = READ_SPECIALREG(tcr_el1) | TCR_HD;
1817 WRITE_SPECIALREG(tcr_el1, tcr);
1818 isb();
1819 /* Flush the local TLB for the TCR_HD flag change */
1820 dsb(nshst);
1821 __asm __volatile("tlbi vmalle1");
1822 dsb(nsh);
1823 isb();
1824
1825 return (true);
1826 }
1827
1828 CPU_FEAT(feat_hafdbs, "Hardware management of the Access flag and dirty state",
1829 pmap_dbm_check, pmap_dbm_has_errata, pmap_dbm_enable, NULL,
1830 CPU_FEAT_AFTER_DEV | CPU_FEAT_PER_CPU);
1831
1832 static cpu_feat_en
pmap_multiple_tlbi_check(const struct cpu_feat * feat __unused,u_int midr)1833 pmap_multiple_tlbi_check(const struct cpu_feat *feat __unused, u_int midr)
1834 {
1835 /*
1836 * ARM C1-Premium erratum 4193780
1837 * ARM C1-Ultra erratum 4193780
1838 * ARM Cortex-A76 erratum 4193800
1839 * ARM Cortex-A76AE erratum 4193801
1840 * ARM Cortex-A77 erratum 4193798
1841 * ARM Cortex-A78 erratum 4193791
1842 * ARM Cortex-A78AE erratum 4193793
1843 * ARM Cortex-A78C erratum 4193794
1844 * ARM Cortex-A710 erratum 4193788
1845 * ARM Cortex-X1 erratum 4193791
1846 * ARM Cortex-X1C erratum 4193792
1847 * ARM Cortex-X2 erratum 4193788
1848 * ARM Cortex-X3 erratum 4193786
1849 * ARM Cortex-X4 erratum 4118414
1850 * ARM Cortex-X925 erratum 4193781
1851 * ARM Neoverse-N1 erratum 4193800
1852 * ARM Neoverse-N2 erratum 4193789
1853 * ARM Neoverse-V1 erratum 4193790
1854 * ARM Neoverse-V2 erratum 4193787
1855 * ARM Neoverse-V3 erratum 4193784
1856 * ARM Neoverse-V3AE erratum 4193784
1857 * Present in all revisions
1858 */
1859 if (CPU_IMPL(midr) == CPU_IMPL_ARM) {
1860 switch(CPU_PART(midr)) {
1861 case CPU_PART_C1_PREMIUM:
1862 case CPU_PART_C1_ULTRA:
1863 case CPU_PART_CORTEX_A76:
1864 case CPU_PART_CORTEX_A76AE:
1865 case CPU_PART_CORTEX_A77:
1866 case CPU_PART_CORTEX_A78:
1867 case CPU_PART_CORTEX_A78AE:
1868 case CPU_PART_CORTEX_A78C:
1869 case CPU_PART_CORTEX_A710:
1870 case CPU_PART_CORTEX_X1:
1871 case CPU_PART_CORTEX_X1C:
1872 case CPU_PART_CORTEX_X2:
1873 case CPU_PART_CORTEX_X3:
1874 case CPU_PART_CORTEX_X4:
1875 case CPU_PART_CORTEX_X925:
1876 case CPU_PART_NEOVERSE_N1:
1877 case CPU_PART_NEOVERSE_N2:
1878 case CPU_PART_NEOVERSE_V1:
1879 case CPU_PART_NEOVERSE_V2:
1880 case CPU_PART_NEOVERSE_V3:
1881 case CPU_PART_NEOVERSE_V3AE:
1882 return (FEAT_DEFAULT_ENABLE);
1883 }
1884 }
1885
1886 /*
1887 * Cortex-A55 erratum 2441007 (Cat B rare)
1888 * Present in all revisions
1889 */
1890 if (CPU_IMPL(midr) == CPU_IMPL_ARM &&
1891 CPU_PART(midr) == CPU_PART_CORTEX_A55)
1892 return (FEAT_DEFAULT_DISABLE);
1893
1894 /*
1895 * Cortex-A510 erratum 2441009 (Cat B rare)
1896 * Present in r0p0 - r1p1
1897 * Fixed in r1p2
1898 */
1899 if (midr_check_var_part_range(midr, CPU_IMPL_ARM, CPU_PART_CORTEX_A510,
1900 0, 0, 1, 1))
1901 return (FEAT_DEFAULT_DISABLE);
1902
1903 return (FEAT_ALWAYS_DISABLE);
1904 }
1905
1906 static bool
pmap_multiple_tlbi_enable(const struct cpu_feat * feat __unused,cpu_feat_errata errata_status,u_int * errata_list __unused,u_int errata_count __unused)1907 pmap_multiple_tlbi_enable(const struct cpu_feat *feat __unused,
1908 cpu_feat_errata errata_status, u_int *errata_list __unused,
1909 u_int errata_count __unused)
1910 {
1911 pmap_multiple_tlbi = true;
1912 return (true);
1913 }
1914
1915 CPU_FEAT(errata_multi_tlbi, "Multiple TLBI errata",
1916 pmap_multiple_tlbi_check, NULL, pmap_multiple_tlbi_enable, NULL,
1917 CPU_FEAT_EARLY_BOOT | CPU_FEAT_PER_CPU);
1918
1919 static cpu_feat_en
pmap_tlbi_range_check(const struct cpu_feat * feat __unused,u_int midr __unused)1920 pmap_tlbi_range_check(const struct cpu_feat *feat __unused, u_int midr __unused)
1921 {
1922 uint64_t reg;
1923
1924 /*
1925 * Range-based TLBI must be supported by every processor, so this
1926 * check is performed CPU_FEAT_AFTER_DEV.
1927 */
1928 get_kernel_reg(ID_AA64ISAR0_EL1, ®);
1929 if (ID_AA64ISAR0_TLB_VAL(reg) >= ID_AA64ISAR0_TLB_TLBIOSR)
1930 return (FEAT_DEFAULT_ENABLE);
1931
1932 return (FEAT_ALWAYS_DISABLE);
1933 }
1934
1935 static bool
pmap_tlbi_range_enable(const struct cpu_feat * feat __unused,cpu_feat_errata errata_status __unused,u_int * errata_list __unused,u_int errata_count __unused)1936 pmap_tlbi_range_enable(const struct cpu_feat *feat __unused,
1937 cpu_feat_errata errata_status __unused, u_int *errata_list __unused,
1938 u_int errata_count __unused)
1939 {
1940 /*
1941 * pmap_lpa_enabled must be initialized before range-based TLBI can
1942 * be performed.
1943 */
1944 MPASS((READ_SPECIALREG(tcr_el1) & TCR_DS) == 0 || pmap_lpa_enabled);
1945 pmap_tlbi_range_support = true;
1946 return (true);
1947 }
1948
1949 CPU_FEAT(feat_tlbi_range, "Range-based TLBI invalidation",
1950 pmap_tlbi_range_check, NULL, pmap_tlbi_range_enable, NULL,
1951 CPU_FEAT_AFTER_DEV | CPU_FEAT_SYSTEM);
1952
1953 /*
1954 * Initialize the pmap module.
1955 *
1956 * Called by vm_mem_init(), to initialize any structures that the pmap
1957 * system needs to map virtual memory.
1958 */
1959 void
pmap_init(void)1960 pmap_init(void)
1961 {
1962 uint64_t mmfr1;
1963 int i, vmid_bits;
1964
1965 /*
1966 * Are large page mappings enabled?
1967 */
1968 TUNABLE_INT_FETCH("vm.pmap.superpages_enabled", &superpages_enabled);
1969 if (superpages_enabled) {
1970 KASSERT(MAXPAGESIZES > 1 && pagesizes[1] == 0,
1971 ("pmap_init: can't assign to pagesizes[1]"));
1972 pagesizes[1] = L3C_SIZE;
1973 KASSERT(MAXPAGESIZES > 2 && pagesizes[2] == 0,
1974 ("pmap_init: can't assign to pagesizes[2]"));
1975 pagesizes[2] = L2_SIZE;
1976 if (L1_BLOCKS_SUPPORTED) {
1977 KASSERT(MAXPAGESIZES > 3 && pagesizes[3] == 0,
1978 ("pmap_init: can't assign to pagesizes[3]"));
1979 pagesizes[3] = L1_SIZE;
1980 }
1981 }
1982
1983 /*
1984 * Initialize the ASID allocator.
1985 */
1986 pmap_init_asids(&asids,
1987 (READ_SPECIALREG(tcr_el1) & TCR_ASID_16) != 0 ? 16 : 8);
1988
1989 if (has_hyp()) {
1990 mmfr1 = READ_SPECIALREG(id_aa64mmfr1_el1);
1991 vmid_bits = 8;
1992
1993 if (ID_AA64MMFR1_VMIDBits_VAL(mmfr1) ==
1994 ID_AA64MMFR1_VMIDBits_16)
1995 vmid_bits = 16;
1996 pmap_init_asids(&vmids, vmid_bits);
1997 }
1998
1999 /*
2000 * Initialize pv chunk lists.
2001 */
2002 for (i = 0; i < PMAP_MEMDOM; i++) {
2003 mtx_init(&pv_chunks[i].pvc_lock, "pmap pv chunk list", NULL,
2004 MTX_DEF);
2005 TAILQ_INIT(&pv_chunks[i].pvc_list);
2006 }
2007 pmap_init_pv_table();
2008
2009 vm_initialized = 1;
2010 }
2011
2012 static SYSCTL_NODE(_vm_pmap, OID_AUTO, l1, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
2013 "L1 (1GB/64GB) page mapping counters");
2014
2015 static COUNTER_U64_DEFINE_EARLY(pmap_l1_demotions);
2016 SYSCTL_COUNTER_U64(_vm_pmap_l1, OID_AUTO, demotions, CTLFLAG_RD,
2017 &pmap_l1_demotions, "L1 (1GB/64GB) page demotions");
2018
2019 SYSCTL_BOOL(_vm_pmap_l1, OID_AUTO, supported, CTLFLAG_RD, &pmap_l1_supported,
2020 0, "L1 blocks are supported");
2021
2022 static SYSCTL_NODE(_vm_pmap, OID_AUTO, l2c, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
2023 "L2C (32MB/1GB) page mapping counters");
2024
2025 static COUNTER_U64_DEFINE_EARLY(pmap_l2c_demotions);
2026 SYSCTL_COUNTER_U64(_vm_pmap_l2c, OID_AUTO, demotions, CTLFLAG_RD,
2027 &pmap_l2c_demotions, "L2C (32MB/1GB) page demotions");
2028
2029 static SYSCTL_NODE(_vm_pmap, OID_AUTO, l2, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
2030 "2MB page mapping counters");
2031
2032 static COUNTER_U64_DEFINE_EARLY(pmap_l2_demotions);
2033 SYSCTL_COUNTER_U64(_vm_pmap_l2, OID_AUTO, demotions, CTLFLAG_RD,
2034 &pmap_l2_demotions, "L2 (2MB/32MB) page demotions");
2035
2036 static COUNTER_U64_DEFINE_EARLY(pmap_l2_mappings);
2037 SYSCTL_COUNTER_U64(_vm_pmap_l2, OID_AUTO, mappings, CTLFLAG_RD,
2038 &pmap_l2_mappings, "L2 (2MB/32MB) page mappings");
2039
2040 static COUNTER_U64_DEFINE_EARLY(pmap_l2_p_failures);
2041 SYSCTL_COUNTER_U64(_vm_pmap_l2, OID_AUTO, p_failures, CTLFLAG_RD,
2042 &pmap_l2_p_failures, "L2 (2MB/32MB) page promotion failures");
2043
2044 static COUNTER_U64_DEFINE_EARLY(pmap_l2_promotions);
2045 SYSCTL_COUNTER_U64(_vm_pmap_l2, OID_AUTO, promotions, CTLFLAG_RD,
2046 &pmap_l2_promotions, "L2 (2MB/32MB) page promotions");
2047
2048 static SYSCTL_NODE(_vm_pmap, OID_AUTO, l3c, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
2049 "L3C (64KB/2MB) page mapping counters");
2050
2051 static COUNTER_U64_DEFINE_EARLY(pmap_l3c_demotions);
2052 SYSCTL_COUNTER_U64(_vm_pmap_l3c, OID_AUTO, demotions, CTLFLAG_RD,
2053 &pmap_l3c_demotions, "L3C (64KB/2MB) page demotions");
2054
2055 static COUNTER_U64_DEFINE_EARLY(pmap_l3c_mappings);
2056 SYSCTL_COUNTER_U64(_vm_pmap_l3c, OID_AUTO, mappings, CTLFLAG_RD,
2057 &pmap_l3c_mappings, "L3C (64KB/2MB) page mappings");
2058
2059 static COUNTER_U64_DEFINE_EARLY(pmap_l3c_p_failures);
2060 SYSCTL_COUNTER_U64(_vm_pmap_l3c, OID_AUTO, p_failures, CTLFLAG_RD,
2061 &pmap_l3c_p_failures, "L3C (64KB/2MB) page promotion failures");
2062
2063 static COUNTER_U64_DEFINE_EARLY(pmap_l3c_promotions);
2064 SYSCTL_COUNTER_U64(_vm_pmap_l3c, OID_AUTO, promotions, CTLFLAG_RD,
2065 &pmap_l3c_promotions, "L3C (64KB/2MB) page promotions");
2066
2067 /*
2068 * If the given value for "final_only" is false, then any cached intermediate-
2069 * level entries, i.e., L{0,1,2}_TABLE entries, are invalidated in addition to
2070 * any cached final-level entry, i.e., either an L{1,2}_BLOCK or L3_PAGE entry.
2071 * Otherwise, just the cached final-level entry is invalidated.
2072 */
2073 static __inline void
pmap_s1_invalidate_kernel(uint64_t r,bool final_only)2074 pmap_s1_invalidate_kernel(uint64_t r, bool final_only)
2075 {
2076 if (final_only)
2077 __asm __volatile("tlbi vaale1is, %0" : : "r" (r));
2078 else
2079 __asm __volatile("tlbi vaae1is, %0" : : "r" (r));
2080 }
2081
2082 static __inline void
pmap_s1_invalidate_user(uint64_t r,bool final_only)2083 pmap_s1_invalidate_user(uint64_t r, bool final_only)
2084 {
2085 if (final_only)
2086 __asm __volatile("tlbi vale1is, %0" : : "r" (r));
2087 else
2088 __asm __volatile("tlbi vae1is, %0" : : "r" (r));
2089 }
2090
2091 /*
2092 * The range-based counterparts to the above. These may only be performed when
2093 * pmap_tlbi_range_support is true.
2094 */
2095 static __inline void
pmap_s1_invalidate_range_kernel(uint64_t r,bool final_only)2096 pmap_s1_invalidate_range_kernel(uint64_t r, bool final_only)
2097 {
2098 if (final_only)
2099 __asm __volatile(".arch_extension tlb-rmi \n"
2100 "tlbi rvaale1is, %0 \n"
2101 ".arch_extension notlb-rmi" : : "r" (r));
2102 else
2103 __asm __volatile(".arch_extension tlb-rmi \n"
2104 "tlbi rvaae1is, %0 \n"
2105 ".arch_extension notlb-rmi" : : "r" (r));
2106 }
2107
2108 static __inline void
pmap_s1_invalidate_range_user(uint64_t r,bool final_only)2109 pmap_s1_invalidate_range_user(uint64_t r, bool final_only)
2110 {
2111 if (final_only)
2112 __asm __volatile(".arch_extension tlb-rmi \n"
2113 "tlbi rvale1is, %0 \n"
2114 ".arch_extension notlb-rmi" : : "r" (r));
2115 else
2116 __asm __volatile(".arch_extension tlb-rmi \n"
2117 "tlbi rvae1is, %0 \n"
2118 ".arch_extension notlb-rmi" : : "r" (r));
2119 }
2120
2121 /*
2122 * Invalidates any cached final- and optionally intermediate-level TLB entries
2123 * for the specified virtual address in the given virtual address space.
2124 */
2125 static __inline void
pmap_s1_invalidate_page(pmap_t pmap,vm_offset_t va,bool final_only)2126 pmap_s1_invalidate_page(pmap_t pmap, vm_offset_t va, bool final_only)
2127 {
2128 uint64_t r;
2129
2130 PMAP_ASSERT_STAGE1(pmap);
2131
2132 dsb(ishst);
2133 r = TLBI_VA(va);
2134 if (pmap == kernel_pmap) {
2135 pmap_s1_invalidate_kernel(r, final_only);
2136 } else {
2137 r |= ASID_TO_OPERAND(COOKIE_TO_ASID(pmap->pm_cookie));
2138 pmap_s1_invalidate_user(r, final_only);
2139 }
2140 if (pmap_multiple_tlbi) {
2141 dsb(ish);
2142 __asm __volatile("tlbi vale1is, xzr" ::: "memory");
2143 }
2144 dsb(ish);
2145 isb();
2146 }
2147
2148 static __inline void
pmap_s2_invalidate_page(pmap_t pmap,vm_offset_t va,bool final_only)2149 pmap_s2_invalidate_page(pmap_t pmap, vm_offset_t va, bool final_only)
2150 {
2151 PMAP_ASSERT_STAGE2(pmap);
2152 MPASS(pmap_stage2_invalidate_range != NULL);
2153 pmap_stage2_invalidate_range(pmap_to_ttbr0(pmap), va, va + PAGE_SIZE,
2154 final_only);
2155 }
2156
2157 static __inline void
pmap_invalidate_page(pmap_t pmap,vm_offset_t va,bool final_only)2158 pmap_invalidate_page(pmap_t pmap, vm_offset_t va, bool final_only)
2159 {
2160 if (pmap->pm_stage == PM_STAGE1)
2161 pmap_s1_invalidate_page(pmap, va, final_only);
2162 else
2163 pmap_s2_invalidate_page(pmap, va, final_only);
2164 }
2165
2166 /*
2167 * Invalidates the TLB entries for the mappings in the address range [sva,
2168 * eva), using range-based instructions where possible and single-page
2169 * instructions otherwise. When range-based invalidation is supported, the
2170 * address range is covered by as few TLBI instructions as possible: the
2171 * largest scale whose unit fits within the remaining address range is
2172 * selected, and up to TLBI_RANGE_MAX_UNITS units are invalidated per
2173 * instruction. An address that cannot be encoded as a BaseADDR, because
2174 * pmap_lpa_enabled is true and the address is not 64KB aligned, is detected
2175 * using va_mask and invalidated one stride at a time.
2176 */
2177 static __always_inline void
pmap_s1_invalidate_loop(vm_offset_t sva,vm_offset_t eva,vm_offset_t stride,int va_shift,vm_offset_t va_mask,uint64_t asid,bool kernel,bool final_only)2178 pmap_s1_invalidate_loop(vm_offset_t sva, vm_offset_t eva, vm_offset_t stride,
2179 int va_shift, vm_offset_t va_mask, uint64_t asid, bool kernel,
2180 bool final_only)
2181 {
2182 uint64_t units;
2183 vm_size_t pages;
2184 int scale, unit_shift;
2185
2186 for (vm_offset_t va = sva; va < eva;) {
2187 if (pmap_tlbi_range_support && (va & va_mask) == 0) {
2188 pages = atop(eva - va);
2189 if (pages >= TLBI_RANGE_UNIT(0)) {
2190 scale = TLBI_RANGE_SCALE(pages);
2191 unit_shift = TLBI_RANGE_UNIT_SHIFT(scale);
2192 units = ulmin(pages >> unit_shift,
2193 TLBI_RANGE_MAX_UNITS);
2194 if (kernel)
2195 pmap_s1_invalidate_range_kernel(asid |
2196 TLBI_RANGE_FIELDS(va, va_shift,
2197 units - 1, scale), final_only);
2198 else
2199 pmap_s1_invalidate_range_user(asid |
2200 TLBI_RANGE_FIELDS(va, va_shift,
2201 units - 1, scale), final_only);
2202 va += ptoa(units << unit_shift);
2203 continue;
2204 }
2205 }
2206 if (kernel)
2207 pmap_s1_invalidate_kernel(asid | TLBI_VA(va),
2208 final_only);
2209 else
2210 pmap_s1_invalidate_user(asid | TLBI_VA(va),
2211 final_only);
2212 va += stride;
2213 }
2214 }
2215
2216 /*
2217 * Use stride L{1,2}_SIZE when invalidating the TLB entries for L{1,2}_BLOCK
2218 * mappings. Otherwise, use stride L3_SIZE.
2219 */
2220 static __inline void
pmap_s1_invalidate_strided(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,vm_offset_t stride,bool final_only)2221 pmap_s1_invalidate_strided(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
2222 vm_offset_t stride, bool final_only)
2223 {
2224 uint64_t asid;
2225 vm_offset_t va_mask;
2226 int va_shift;
2227
2228 PMAP_ASSERT_STAGE1(pmap);
2229 va_shift = TLBI_RANGE_VA_SHIFT();
2230 /* va_mask will be 0 unless pmap_lpa_enabled is true. */
2231 va_mask = (1ul << va_shift) - PAGE_SIZE;
2232 dsb(ishst);
2233 if (pmap == kernel_pmap) {
2234 pmap_s1_invalidate_loop(sva, eva, stride, va_shift, va_mask,
2235 0, true, final_only);
2236 } else {
2237 asid = ASID_TO_OPERAND(COOKIE_TO_ASID(pmap->pm_cookie));
2238 pmap_s1_invalidate_loop(sva, eva, stride, va_shift, va_mask,
2239 asid, false, final_only);
2240 }
2241 if (pmap_multiple_tlbi) {
2242 dsb(ish);
2243 __asm __volatile("tlbi vale1is, xzr" ::: "memory");
2244 }
2245 dsb(ish);
2246 isb();
2247 }
2248
2249 /*
2250 * Invalidates any cached final- and optionally intermediate-level TLB entries
2251 * for the specified virtual address range in the given virtual address space.
2252 */
2253 static __inline void
pmap_s1_invalidate_range(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,bool final_only)2254 pmap_s1_invalidate_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
2255 bool final_only)
2256 {
2257 pmap_s1_invalidate_strided(pmap, sva, eva, L3_SIZE, final_only);
2258 }
2259
2260 static __inline void
pmap_s2_invalidate_range(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,bool final_only)2261 pmap_s2_invalidate_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
2262 bool final_only)
2263 {
2264 PMAP_ASSERT_STAGE2(pmap);
2265 MPASS(pmap_stage2_invalidate_range != NULL);
2266 pmap_stage2_invalidate_range(pmap_to_ttbr0(pmap), sva, eva, final_only);
2267 }
2268
2269 static __inline void
pmap_invalidate_range(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,bool final_only)2270 pmap_invalidate_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva,
2271 bool final_only)
2272 {
2273 if (pmap->pm_stage == PM_STAGE1)
2274 pmap_s1_invalidate_range(pmap, sva, eva, final_only);
2275 else
2276 pmap_s2_invalidate_range(pmap, sva, eva, final_only);
2277 }
2278
2279 void
pmap_s1_invalidate_all_kernel(void)2280 pmap_s1_invalidate_all_kernel(void)
2281 {
2282 dsb(ishst);
2283 __asm __volatile("tlbi vmalle1is");
2284 if (pmap_multiple_tlbi) {
2285 dsb(ish);
2286 __asm __volatile("tlbi vale1is, xzr" ::: "memory");
2287 }
2288 dsb(ish);
2289 isb();
2290 }
2291
2292 /*
2293 * Invalidates all cached intermediate- and final-level TLB entries for the
2294 * given virtual address space.
2295 */
2296 static __inline void
pmap_s1_invalidate_all(pmap_t pmap)2297 pmap_s1_invalidate_all(pmap_t pmap)
2298 {
2299 uint64_t r;
2300
2301 PMAP_ASSERT_STAGE1(pmap);
2302
2303 dsb(ishst);
2304 if (pmap == kernel_pmap) {
2305 __asm __volatile("tlbi vmalle1is");
2306 } else {
2307 r = ASID_TO_OPERAND(COOKIE_TO_ASID(pmap->pm_cookie));
2308 __asm __volatile("tlbi aside1is, %0" : : "r" (r));
2309 }
2310 if (pmap_multiple_tlbi) {
2311 dsb(ish);
2312 __asm __volatile("tlbi vale1is, xzr" ::: "memory");
2313 }
2314 dsb(ish);
2315 isb();
2316 }
2317
2318 static __inline void
pmap_s2_invalidate_all(pmap_t pmap)2319 pmap_s2_invalidate_all(pmap_t pmap)
2320 {
2321 PMAP_ASSERT_STAGE2(pmap);
2322 MPASS(pmap_stage2_invalidate_all != NULL);
2323 pmap_stage2_invalidate_all(pmap_to_ttbr0(pmap));
2324 }
2325
2326 static __inline void
pmap_invalidate_all(pmap_t pmap)2327 pmap_invalidate_all(pmap_t pmap)
2328 {
2329 if (pmap->pm_stage == PM_STAGE1)
2330 pmap_s1_invalidate_all(pmap);
2331 else
2332 pmap_s2_invalidate_all(pmap);
2333 }
2334
2335 /*
2336 * Routine: pmap_extract
2337 * Function:
2338 * Extract the physical page address associated
2339 * with the given map/virtual_address pair.
2340 */
2341 vm_paddr_t
pmap_extract(pmap_t pmap,vm_offset_t va)2342 pmap_extract(pmap_t pmap, vm_offset_t va)
2343 {
2344 pt_entry_t *pte, tpte;
2345 vm_paddr_t pa;
2346 int lvl;
2347
2348 pa = 0;
2349 PMAP_LOCK(pmap);
2350 /*
2351 * Find the block or page map for this virtual address. pmap_pte
2352 * will return either a valid block/page entry, or NULL.
2353 */
2354 pte = pmap_pte(pmap, va, &lvl);
2355 if (pte != NULL) {
2356 tpte = pmap_load(pte);
2357 pa = PTE_TO_PHYS(tpte);
2358 switch(lvl) {
2359 case 1:
2360 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
2361 KASSERT((tpte & ATTR_DESCR_MASK) == L1_BLOCK,
2362 ("pmap_extract: Invalid L1 pte found: %lx",
2363 tpte & ATTR_DESCR_MASK));
2364 pa |= (va & L1_OFFSET);
2365 break;
2366 case 2:
2367 KASSERT((tpte & ATTR_DESCR_MASK) == L2_BLOCK,
2368 ("pmap_extract: Invalid L2 pte found: %lx",
2369 tpte & ATTR_DESCR_MASK));
2370 pa |= (va & L2_OFFSET);
2371 break;
2372 case 3:
2373 KASSERT((tpte & ATTR_DESCR_MASK) == L3_PAGE,
2374 ("pmap_extract: Invalid L3 pte found: %lx",
2375 tpte & ATTR_DESCR_MASK));
2376 pa |= (va & L3_OFFSET);
2377 break;
2378 }
2379 }
2380 PMAP_UNLOCK(pmap);
2381 return (pa);
2382 }
2383
2384 /*
2385 * Routine: pmap_extract_and_hold
2386 * Function:
2387 * Atomically extract and hold the physical page
2388 * with the given pmap and virtual address pair
2389 * if that mapping permits the given protection.
2390 */
2391 vm_page_t
pmap_extract_and_hold(pmap_t pmap,vm_offset_t va,vm_prot_t prot)2392 pmap_extract_and_hold(pmap_t pmap, vm_offset_t va, vm_prot_t prot)
2393 {
2394 pt_entry_t *pte, tpte;
2395 vm_offset_t off;
2396 vm_page_t m;
2397 int lvl;
2398 bool use;
2399
2400 m = NULL;
2401 PMAP_LOCK(pmap);
2402 pte = pmap_pte(pmap, va, &lvl);
2403 if (pte != NULL) {
2404 tpte = pmap_load(pte);
2405
2406 KASSERT(lvl > 0 && lvl <= 3,
2407 ("pmap_extract_and_hold: Invalid level %d", lvl));
2408 /*
2409 * Check that the pte is either a L3 page, or a L1 or L2 block
2410 * entry. We can assume L1_BLOCK == L2_BLOCK.
2411 */
2412 KASSERT((lvl == 3 && (tpte & ATTR_DESCR_MASK) == L3_PAGE) ||
2413 (lvl < 3 && (tpte & ATTR_DESCR_MASK) == L1_BLOCK),
2414 ("pmap_extract_and_hold: Invalid pte at L%d: %lx", lvl,
2415 tpte & ATTR_DESCR_MASK));
2416
2417 use = false;
2418 if ((prot & VM_PROT_WRITE) == 0)
2419 use = true;
2420 else if (pmap->pm_stage == PM_STAGE1 &&
2421 (tpte & ATTR_S1_AP_RW_BIT) == ATTR_S1_AP(ATTR_S1_AP_RW))
2422 use = true;
2423 else if (pmap->pm_stage == PM_STAGE2 &&
2424 ((tpte & ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE)) ==
2425 ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE)))
2426 use = true;
2427
2428 if (use) {
2429 switch (lvl) {
2430 case 1:
2431 off = va & L1_OFFSET;
2432 break;
2433 case 2:
2434 off = va & L2_OFFSET;
2435 break;
2436 case 3:
2437 default:
2438 off = 0;
2439 }
2440 m = PHYS_TO_VM_PAGE(PTE_TO_PHYS(tpte) | off);
2441 if (m != NULL && !vm_page_wire_mapped(m))
2442 m = NULL;
2443 }
2444 }
2445 PMAP_UNLOCK(pmap);
2446 return (m);
2447 }
2448
2449 /*
2450 * Returns true if the entire kernel virtual address range is mapped
2451 */
2452 static bool
pmap_kmapped_range(void * va,vm_size_t size)2453 pmap_kmapped_range(void *va, vm_size_t size)
2454 {
2455 pt_entry_t *pte, tpte;
2456 vm_offset_t eva, sva;
2457
2458 sva = (vm_offset_t)va;
2459 KASSERT(sva >= VM_MIN_KERNEL_ADDRESS,
2460 ("%s: Invalid virtual address: %lx", __func__, sva));
2461 MPASS(size != 0);
2462 eva = sva + size - 1;
2463 KASSERT(eva > sva, ("%s: Size too large: sva %lx, size %lx", __func__,
2464 sva, size));
2465
2466 while (sva <= eva) {
2467 pte = pmap_l1(kernel_pmap, sva);
2468 if (pte == NULL)
2469 return (false);
2470 tpte = pmap_load(pte);
2471 if (tpte == 0)
2472 return (false);
2473 if ((tpte & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_BLOCK) {
2474 sva = (sva & ~L1_OFFSET) + L1_SIZE;
2475 continue;
2476 }
2477
2478 pte = pmap_l1_to_l2(&tpte, sva);
2479 tpte = pmap_load(pte);
2480 if (tpte == 0)
2481 return (false);
2482 if ((tpte & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_BLOCK) {
2483 sva = (sva & ~L2_OFFSET) + L2_SIZE;
2484 continue;
2485 }
2486 pte = pmap_l2_to_l3(&tpte, sva);
2487 tpte = pmap_load(pte);
2488 if (tpte == 0)
2489 return (false);
2490 MPASS((tpte & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_PAGE);
2491 if ((tpte & ATTR_CONTIGUOUS) == ATTR_CONTIGUOUS)
2492 sva = (sva & ~L3C_OFFSET) + L3C_SIZE;
2493 else
2494 sva = (sva & ~L3_OFFSET) + L3_SIZE;
2495 }
2496
2497 return (true);
2498 }
2499
2500 /*
2501 * Walks the page tables to translate a kernel virtual address to a
2502 * physical address. Returns true if the kva is valid and stores the
2503 * physical address in pa if it is not NULL.
2504 *
2505 * See the comment above data_abort() for the rationale for specifying
2506 * NO_PERTHREAD_SSP here.
2507 */
2508 bool NO_PERTHREAD_SSP
pmap_klookup(vm_offset_t va,vm_paddr_t * pa)2509 pmap_klookup(vm_offset_t va, vm_paddr_t *pa)
2510 {
2511 pt_entry_t *pte, tpte;
2512 register_t intr;
2513 uint64_t par;
2514
2515 /*
2516 * Disable interrupts so we don't get interrupted between asking
2517 * for address translation, and getting the result back.
2518 */
2519 intr = intr_disable();
2520 par = arm64_address_translate_s1e1r(va);
2521 intr_restore(intr);
2522
2523 if (PAR_SUCCESS(par)) {
2524 if (pa != NULL)
2525 *pa = (par & PAR_PA_MASK) | (va & PAR_LOW_MASK);
2526 return (true);
2527 }
2528
2529 /*
2530 * Fall back to walking the page table. The address translation
2531 * instruction may fail when the page is in a break-before-make
2532 * sequence. As we only clear the valid bit in said sequence we
2533 * can walk the page table to find the physical address.
2534 */
2535
2536 pte = pmap_l1(kernel_pmap, va);
2537 if (pte == NULL)
2538 return (false);
2539
2540 /*
2541 * A concurrent pmap_update_entry() will clear the entry's valid bit
2542 * but leave the rest of the entry unchanged. Therefore, we treat a
2543 * non-zero entry as being valid, and we ignore the valid bit when
2544 * determining whether the entry maps a block, page, or table.
2545 */
2546 tpte = pmap_load(pte);
2547 if (tpte == 0)
2548 return (false);
2549 if ((tpte & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_BLOCK) {
2550 if (pa != NULL)
2551 *pa = PTE_TO_PHYS(tpte) | (va & L1_OFFSET);
2552 return (true);
2553 }
2554 pte = pmap_l1_to_l2(&tpte, va);
2555 tpte = pmap_load(pte);
2556 if (tpte == 0)
2557 return (false);
2558 if ((tpte & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_BLOCK) {
2559 if (pa != NULL)
2560 *pa = PTE_TO_PHYS(tpte) | (va & L2_OFFSET);
2561 return (true);
2562 }
2563 pte = pmap_l2_to_l3(&tpte, va);
2564 tpte = pmap_load(pte);
2565 if (tpte == 0)
2566 return (false);
2567 if (pa != NULL)
2568 *pa = PTE_TO_PHYS(tpte) | (va & L3_OFFSET);
2569 return (true);
2570 }
2571
2572 /*
2573 * Routine: pmap_kextract
2574 * Function:
2575 * Extract the physical page address associated with the given kernel
2576 * virtual address.
2577 */
2578 vm_paddr_t
pmap_kextract(vm_offset_t va)2579 pmap_kextract(vm_offset_t va)
2580 {
2581 vm_paddr_t pa;
2582
2583 if (va >= DMAP_MIN_ADDRESS && va < DMAP_MAX_ADDRESS)
2584 return (DMAP_TO_PHYS(va));
2585
2586 if (pmap_klookup(va, &pa) == false)
2587 return (0);
2588 return (pa);
2589 }
2590
2591 /***************************************************
2592 * Low level mapping routines.....
2593 ***************************************************/
2594
2595 void
pmap_kenter(vm_offset_t sva,vm_size_t size,vm_paddr_t pa,int mode)2596 pmap_kenter(vm_offset_t sva, vm_size_t size, vm_paddr_t pa, int mode)
2597 {
2598 pd_entry_t *pde;
2599 pt_entry_t attr, old_l3e, *pte;
2600 vm_offset_t va;
2601 vm_page_t mpte;
2602 int error, lvl;
2603
2604 KASSERT((pa & L3_OFFSET) == 0,
2605 ("pmap_kenter: Invalid physical address"));
2606 KASSERT((sva & L3_OFFSET) == 0,
2607 ("pmap_kenter: Invalid virtual address"));
2608 KASSERT((size & PAGE_MASK) == 0,
2609 ("pmap_kenter: Mapping is not page-sized"));
2610
2611 /* CCA - Map devices as nonsecure */
2612 if (in_realm() && (mode == VM_MEMATTR_DEVICE ||
2613 mode == VM_MEMATTR_DEVICE_NP))
2614 pa |= prot_ns_shared_pa;
2615
2616 attr = ATTR_AF | pmap_sh_attr | ATTR_S1_AP(ATTR_S1_AP_RW) |
2617 ATTR_S1_XN | ATTR_KERN_GP | ATTR_S1_IDX(mode);
2618 old_l3e = 0;
2619 va = sva;
2620 while (size != 0) {
2621 pde = pmap_pde(kernel_pmap, va, &lvl);
2622 KASSERT(pde != NULL,
2623 ("pmap_kenter: Invalid page entry, va: 0x%lx", va));
2624 KASSERT(lvl == 2, ("pmap_kenter: Invalid level %d", lvl));
2625
2626 /*
2627 * If we have an aligned, contiguous chunk of L2_SIZE, try
2628 * to create an L2_BLOCK mapping.
2629 */
2630 if ((va & L2_OFFSET) == 0 && size >= L2_SIZE &&
2631 (pa & L2_OFFSET) == 0 && vm_initialized) {
2632 mpte = PTE_TO_VM_PAGE(pmap_load(pde));
2633 KASSERT(pmap_every_pte_zero(VM_PAGE_TO_PHYS(mpte)),
2634 ("pmap_kenter: Unexpected mapping"));
2635 PMAP_LOCK(kernel_pmap);
2636 error = pmap_insert_pt_page(kernel_pmap, mpte, false,
2637 false);
2638 if (error == 0) {
2639 attr &= ~ATTR_CONTIGUOUS;
2640
2641 /*
2642 * Although the page table page "mpte" should
2643 * be devoid of mappings, the TLB might hold
2644 * intermediate entries that reference it, so
2645 * we perform a single-page invalidation.
2646 */
2647 pmap_update_entry(kernel_pmap, pde,
2648 PHYS_TO_PTE(pa) | attr | L2_BLOCK, va,
2649 PAGE_SIZE, false);
2650 }
2651 PMAP_UNLOCK(kernel_pmap);
2652 if (error == 0) {
2653 va += L2_SIZE;
2654 pa += L2_SIZE;
2655 size -= L2_SIZE;
2656 continue;
2657 }
2658 }
2659
2660 /*
2661 * If we have an aligned, contiguous chunk of L3C_ENTRIES
2662 * L3 pages, set the contiguous bit within each PTE so that
2663 * the chunk can be cached using only one TLB entry.
2664 */
2665 if ((va & L3C_OFFSET) == 0 && (pa & L3C_OFFSET) == 0) {
2666 if (size >= L3C_SIZE)
2667 attr |= ATTR_CONTIGUOUS;
2668 else
2669 attr &= ~ATTR_CONTIGUOUS;
2670 }
2671
2672 pte = pmap_l2_to_l3(pde, va);
2673 old_l3e |= pmap_load_store(pte, PHYS_TO_PTE(pa) | attr |
2674 L3_PAGE);
2675
2676 va += PAGE_SIZE;
2677 pa += PAGE_SIZE;
2678 size -= PAGE_SIZE;
2679 }
2680 if ((old_l3e & ATTR_DESCR_VALID) != 0)
2681 pmap_s1_invalidate_range(kernel_pmap, sva, va, true);
2682 else {
2683 /*
2684 * Because the old entries were invalid and the new mappings
2685 * are not executable, an isb is not required.
2686 */
2687 dsb(ishst);
2688 }
2689 }
2690
2691 void
pmap_kenter_device(vm_offset_t sva,vm_size_t size,vm_paddr_t pa)2692 pmap_kenter_device(vm_offset_t sva, vm_size_t size, vm_paddr_t pa)
2693 {
2694
2695 pmap_kenter(sva, size, pa, VM_MEMATTR_DEVICE);
2696 }
2697
2698 /*
2699 * Remove a page from the kernel pagetables.
2700 */
2701 void
pmap_kremove(vm_offset_t va)2702 pmap_kremove(vm_offset_t va)
2703 {
2704 pt_entry_t *pte;
2705
2706 pte = pmap_pte_exists(kernel_pmap, va, 3, __func__);
2707 KASSERT((pmap_load(pte) & ATTR_CONTIGUOUS) == 0,
2708 ("pmap_kremove: unexpected ATTR_CONTIGUOUS"));
2709 pmap_clear(pte);
2710 pmap_s1_invalidate_page(kernel_pmap, va, true);
2711 }
2712
2713 /*
2714 * Remove the specified range of mappings from the kernel address space.
2715 *
2716 * Should only be applied to mappings that were created by pmap_kenter() or
2717 * pmap_kenter_device(). Nothing about this function is actually specific
2718 * to device mappings.
2719 */
2720 void
pmap_kremove_device(vm_offset_t sva,vm_size_t size)2721 pmap_kremove_device(vm_offset_t sva, vm_size_t size)
2722 {
2723 pt_entry_t *ptep, *ptep_end;
2724 vm_offset_t va;
2725 int lvl;
2726
2727 KASSERT((sva & L3_OFFSET) == 0,
2728 ("pmap_kremove_device: Invalid virtual address"));
2729 KASSERT((size & PAGE_MASK) == 0,
2730 ("pmap_kremove_device: Mapping is not page-sized"));
2731
2732 va = sva;
2733 while (size != 0) {
2734 ptep = pmap_pte(kernel_pmap, va, &lvl);
2735 KASSERT(ptep != NULL, ("Invalid page table, va: 0x%lx", va));
2736 switch (lvl) {
2737 case 2:
2738 KASSERT((va & L2_OFFSET) == 0,
2739 ("Unaligned virtual address"));
2740 KASSERT(size >= L2_SIZE, ("Insufficient size"));
2741
2742 if (va != sva) {
2743 pmap_s1_invalidate_range(kernel_pmap, sva, va,
2744 true);
2745 }
2746 pmap_clear(ptep);
2747 pmap_s1_invalidate_page(kernel_pmap, va, true);
2748 PMAP_LOCK(kernel_pmap);
2749 pmap_remove_kernel_l2(kernel_pmap, ptep, va);
2750 PMAP_UNLOCK(kernel_pmap);
2751
2752 va += L2_SIZE;
2753 sva = va;
2754 size -= L2_SIZE;
2755 break;
2756 case 3:
2757 if ((pmap_load(ptep) & ATTR_CONTIGUOUS) != 0) {
2758 KASSERT((va & L3C_OFFSET) == 0,
2759 ("Unaligned L3C virtual address"));
2760 KASSERT(size >= L3C_SIZE,
2761 ("Insufficient L3C size"));
2762
2763 ptep_end = ptep + L3C_ENTRIES;
2764 for (; ptep < ptep_end; ptep++)
2765 pmap_clear(ptep);
2766
2767 va += L3C_SIZE;
2768 size -= L3C_SIZE;
2769 break;
2770 }
2771 pmap_clear(ptep);
2772
2773 va += PAGE_SIZE;
2774 size -= PAGE_SIZE;
2775 break;
2776 default:
2777 __assert_unreachable();
2778 break;
2779 }
2780 }
2781 if (va != sva)
2782 pmap_s1_invalidate_range(kernel_pmap, sva, va, true);
2783 }
2784
2785 /*
2786 * Used to map a range of physical addresses into kernel
2787 * virtual address space.
2788 *
2789 * The value passed in '*virt' is a suggested virtual address for
2790 * the mapping. Architectures which can support a direct-mapped
2791 * physical to virtual region can return the appropriate address
2792 * within that region, leaving '*virt' unchanged. Other
2793 * architectures should map the pages starting at '*virt' and
2794 * update '*virt' with the first usable address after the mapped
2795 * region.
2796 */
2797 void *
pmap_map(vm_offset_t * virt,vm_paddr_t start,vm_paddr_t end,int prot)2798 pmap_map(vm_offset_t *virt, vm_paddr_t start, vm_paddr_t end, int prot)
2799 {
2800 return (PHYS_TO_DMAP(start));
2801 }
2802
2803 /*
2804 * Add a list of wired pages to the kva
2805 * this routine is only used for temporary
2806 * kernel mappings that do not need to have
2807 * page modification or references recorded.
2808 * Note that old mappings are simply written
2809 * over. The page *must* be wired.
2810 * Note: SMP coherent. Uses a ranged shootdown IPI.
2811 */
2812 void
pmap_qenter(void * sva,vm_page_t * ma,int count)2813 pmap_qenter(void *sva, vm_page_t *ma, int count)
2814 {
2815 pd_entry_t *pde;
2816 pt_entry_t attr, old_l3e, *pte;
2817 vm_offset_t va;
2818 vm_page_t m;
2819 int i, lvl;
2820
2821 old_l3e = 0;
2822 va = (vm_offset_t)sva;
2823 for (i = 0; i < count; i++) {
2824 pde = pmap_pde(kernel_pmap, va, &lvl);
2825 KASSERT(pde != NULL,
2826 ("pmap_qenter: Invalid page entry, va: 0x%lx", va));
2827 KASSERT(lvl == 2,
2828 ("pmap_qenter: Invalid level %d", lvl));
2829
2830 m = ma[i];
2831 attr = ATTR_AF | pmap_sh_attr |
2832 ATTR_S1_AP(ATTR_S1_AP_RW) | ATTR_S1_XN |
2833 ATTR_KERN_GP | ATTR_S1_IDX(m->md.pv_memattr) | L3_PAGE;
2834 pte = pmap_l2_to_l3(pde, va);
2835 old_l3e |= pmap_load_store(pte, VM_PAGE_TO_PTE(m) | attr);
2836
2837 va += L3_SIZE;
2838 }
2839 if ((old_l3e & ATTR_DESCR_VALID) != 0)
2840 pmap_s1_invalidate_range(kernel_pmap, (vm_offset_t)sva, va,
2841 true);
2842 else {
2843 /*
2844 * Because the old entries were invalid and the new mappings
2845 * are not executable, an isb is not required.
2846 */
2847 dsb(ishst);
2848 }
2849 }
2850
2851 /*
2852 * This routine tears out page mappings from the
2853 * kernel -- it is meant only for temporary mappings.
2854 */
2855 void
pmap_qremove(void * sva,int count)2856 pmap_qremove(void *sva, int count)
2857 {
2858 pt_entry_t *pte;
2859 vm_offset_t va;
2860
2861 va = (vm_offset_t)sva;
2862
2863 KASSERT(ADDR_IS_CANONICAL(va),
2864 ("%s: Address not in canonical form: %p", __func__, sva));
2865 KASSERT(ADDR_IS_KERNEL(va), ("usermode va %p", sva));
2866
2867 while (count-- > 0) {
2868 pte = pmap_pte_exists(kernel_pmap, va, 3, NULL);
2869 if (pte != NULL) {
2870 pmap_clear(pte);
2871 }
2872
2873 va += PAGE_SIZE;
2874 }
2875 pmap_s1_invalidate_range(kernel_pmap, (vm_offset_t)sva, va, true);
2876 }
2877
2878 /***************************************************
2879 * Page table page management routines.....
2880 ***************************************************/
2881 /*
2882 * Schedule the specified unused page table page to be freed. Specifically,
2883 * add the page to the specified list of pages that will be released to the
2884 * physical memory manager after the TLB has been updated.
2885 */
2886 static __inline void
pmap_add_delayed_free_list(vm_page_t m,struct spglist * free,bool set_PG_ZERO)2887 pmap_add_delayed_free_list(vm_page_t m, struct spglist *free, bool set_PG_ZERO)
2888 {
2889
2890 if (set_PG_ZERO)
2891 m->flags |= PG_ZERO;
2892 else
2893 m->flags &= ~PG_ZERO;
2894 SLIST_INSERT_HEAD(free, m, plinks.s.ss);
2895 }
2896
2897 /*
2898 * Decrements a page table page's reference count, which is used to record the
2899 * number of valid page table entries within the page. If the reference count
2900 * drops to zero, then the page table page is unmapped. Returns true if the
2901 * page table page was unmapped and false otherwise.
2902 */
2903 static inline bool
pmap_unwire_l3(pmap_t pmap,vm_offset_t va,vm_page_t m,struct spglist * free)2904 pmap_unwire_l3(pmap_t pmap, vm_offset_t va, vm_page_t m, struct spglist *free)
2905 {
2906
2907 --m->ref_count;
2908 if (m->ref_count == 0) {
2909 _pmap_unwire_l3(pmap, va, m, free);
2910 return (true);
2911 } else
2912 return (false);
2913 }
2914
2915 static void
_pmap_unwire_l3(pmap_t pmap,vm_offset_t va,vm_page_t m,struct spglist * free)2916 _pmap_unwire_l3(pmap_t pmap, vm_offset_t va, vm_page_t m, struct spglist *free)
2917 {
2918
2919 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
2920 /*
2921 * unmap the page table page
2922 */
2923 if (m->pindex >= (NUL2E + NUL1E)) {
2924 /* l1 page */
2925 pd_entry_t *l0;
2926
2927 l0 = pmap_l0(pmap, va);
2928 pmap_clear(l0);
2929 } else if (m->pindex >= NUL2E) {
2930 /* l2 page */
2931 pd_entry_t *l1;
2932
2933 l1 = pmap_l1(pmap, va);
2934 pmap_clear(l1);
2935 } else {
2936 /* l3 page */
2937 pd_entry_t *l2;
2938
2939 l2 = pmap_l2(pmap, va);
2940 pmap_clear(l2);
2941 }
2942 pmap_resident_count_dec(pmap, 1);
2943 if (m->pindex < NUL2E) {
2944 /* We just released an l3, unhold the matching l2 */
2945 pd_entry_t *l1, tl1;
2946 vm_page_t l2pg;
2947
2948 l1 = pmap_l1(pmap, va);
2949 tl1 = pmap_load(l1);
2950 l2pg = PTE_TO_VM_PAGE(tl1);
2951 pmap_unwire_l3(pmap, va, l2pg, free);
2952 } else if (m->pindex < (NUL2E + NUL1E)) {
2953 /* We just released an l2, unhold the matching l1 */
2954 pd_entry_t *l0, tl0;
2955 vm_page_t l1pg;
2956
2957 l0 = pmap_l0(pmap, va);
2958 tl0 = pmap_load(l0);
2959 l1pg = PTE_TO_VM_PAGE(tl0);
2960 pmap_unwire_l3(pmap, va, l1pg, free);
2961 }
2962 pmap_invalidate_page(pmap, va, false);
2963
2964 /*
2965 * Put page on a list so that it is released after
2966 * *ALL* TLB shootdown is done
2967 */
2968 pmap_add_delayed_free_list(m, free, true);
2969 }
2970
2971 /*
2972 * After removing a page table entry, this routine is used to
2973 * conditionally free the page, and manage the reference count.
2974 */
2975 static int
pmap_unuse_pt(pmap_t pmap,vm_offset_t va,pd_entry_t ptepde,struct spglist * free)2976 pmap_unuse_pt(pmap_t pmap, vm_offset_t va, pd_entry_t ptepde,
2977 struct spglist *free)
2978 {
2979 vm_page_t mpte;
2980
2981 KASSERT(ADDR_IS_CANONICAL(va),
2982 ("%s: Address not in canonical form: %lx", __func__, va));
2983 if (ADDR_IS_KERNEL(va))
2984 return (0);
2985 KASSERT(ptepde != 0, ("pmap_unuse_pt: ptepde != 0"));
2986 mpte = PTE_TO_VM_PAGE(ptepde);
2987 return (pmap_unwire_l3(pmap, va, mpte, free));
2988 }
2989
2990 /*
2991 * Release a page table page reference after a failed attempt to create a
2992 * mapping.
2993 */
2994 static void
pmap_abort_ptp(pmap_t pmap,vm_offset_t va,vm_page_t mpte)2995 pmap_abort_ptp(pmap_t pmap, vm_offset_t va, vm_page_t mpte)
2996 {
2997 struct spglist free;
2998
2999 SLIST_INIT(&free);
3000 if (pmap_unwire_l3(pmap, va, mpte, &free))
3001 vm_page_free_pages_toq(&free, true);
3002 }
3003
3004 void
pmap_pinit0(pmap_t pmap)3005 pmap_pinit0(pmap_t pmap)
3006 {
3007
3008 PMAP_LOCK_INIT(pmap);
3009 bzero(&pmap->pm_stats, sizeof(pmap->pm_stats));
3010 pmap->pm_l0_paddr = READ_SPECIALREG(ttbr0_el1);
3011 pmap->pm_l0 = PHYS_TO_DMAP(pmap->pm_l0_paddr);
3012 TAILQ_INIT(&pmap->pm_pvchunk);
3013 vm_radix_init(&pmap->pm_root);
3014 pmap->pm_cookie = COOKIE_FROM(ASID_RESERVED_FOR_PID_0, INT_MIN);
3015 pmap->pm_stage = PM_STAGE1;
3016 pmap->pm_levels = 4;
3017 pmap->pm_ttbr = pmap->pm_l0_paddr;
3018 pmap->pm_asid_set = &asids;
3019 pmap->pm_bti = NULL;
3020
3021 PCPU_SET(curpmap, pmap);
3022 }
3023
3024 int
pmap_pinit_stage(pmap_t pmap,enum pmap_stage stage,int levels)3025 pmap_pinit_stage(pmap_t pmap, enum pmap_stage stage, int levels)
3026 {
3027 vm_page_t m;
3028
3029 /*
3030 * allocate the l0 page
3031 */
3032 m = vm_page_alloc_noobj(VM_ALLOC_WAITOK | VM_ALLOC_WIRED |
3033 VM_ALLOC_ZERO);
3034 pmap->pm_l0_paddr = VM_PAGE_TO_PHYS(m);
3035 pmap->pm_l0 = PHYS_TO_DMAP(pmap->pm_l0_paddr);
3036
3037 TAILQ_INIT(&pmap->pm_pvchunk);
3038 vm_radix_init(&pmap->pm_root);
3039 bzero(&pmap->pm_stats, sizeof(pmap->pm_stats));
3040 pmap->pm_cookie = COOKIE_FROM(-1, INT_MAX);
3041
3042 MPASS(levels == 3 || levels == 4);
3043 pmap->pm_levels = levels;
3044 pmap->pm_stage = stage;
3045 pmap->pm_bti = NULL;
3046 switch (stage) {
3047 case PM_STAGE1:
3048 pmap->pm_asid_set = &asids;
3049 if (pmap_bti_support) {
3050 pmap->pm_bti = malloc(sizeof(struct rangeset), M_DEVBUF,
3051 M_ZERO | M_WAITOK);
3052 rangeset_init(pmap->pm_bti, bti_dup_range,
3053 bti_free_range, pmap, M_NOWAIT);
3054 }
3055 break;
3056 case PM_STAGE2:
3057 pmap->pm_asid_set = &vmids;
3058 break;
3059 default:
3060 panic("%s: Invalid pmap type %d", __func__, stage);
3061 break;
3062 }
3063
3064 /* XXX Temporarily disable deferred ASID allocation. */
3065 pmap_alloc_asid(pmap);
3066
3067 /*
3068 * Allocate the level 1 entry to use as the root. This will increase
3069 * the refcount on the level 1 page so it won't be removed until
3070 * pmap_release() is called.
3071 */
3072 if (pmap->pm_levels == 3) {
3073 PMAP_LOCK(pmap);
3074 m = _pmap_alloc_l3(pmap, NUL2E + NUL1E, NULL);
3075 PMAP_UNLOCK(pmap);
3076 }
3077 pmap->pm_ttbr = VM_PAGE_TO_PHYS(m);
3078
3079 return (1);
3080 }
3081
3082 int
pmap_pinit(pmap_t pmap)3083 pmap_pinit(pmap_t pmap)
3084 {
3085
3086 return (pmap_pinit_stage(pmap, PM_STAGE1, 4));
3087 }
3088
3089 /*
3090 * This routine is called if the desired page table page does not exist.
3091 *
3092 * If page table page allocation fails, this routine may sleep before
3093 * returning NULL. It sleeps only if a lock pointer was given.
3094 *
3095 * Note: If a page allocation fails at page table level two or three,
3096 * one or two pages may be held during the wait, only to be released
3097 * afterwards. This conservative approach is easily argued to avoid
3098 * race conditions.
3099 */
3100 static vm_page_t
_pmap_alloc_l3(pmap_t pmap,vm_pindex_t ptepindex,struct rwlock ** lockp)3101 _pmap_alloc_l3(pmap_t pmap, vm_pindex_t ptepindex, struct rwlock **lockp)
3102 {
3103 vm_page_t m, l1pg, l2pg;
3104
3105 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3106
3107 /*
3108 * Allocate a page table page.
3109 */
3110 if ((m = vm_page_alloc_noobj(VM_ALLOC_WIRED | VM_ALLOC_ZERO)) == NULL) {
3111 if (lockp != NULL) {
3112 RELEASE_PV_LIST_LOCK(lockp);
3113 PMAP_UNLOCK(pmap);
3114 vm_wait(NULL);
3115 PMAP_LOCK(pmap);
3116 }
3117
3118 /*
3119 * Indicate the need to retry. While waiting, the page table
3120 * page may have been allocated.
3121 */
3122 return (NULL);
3123 }
3124 m->pindex = ptepindex;
3125
3126 /*
3127 * Because of AArch64's weak memory consistency model, we must have a
3128 * barrier here to ensure that the stores for zeroing "m", whether by
3129 * pmap_zero_page() or an earlier function, are visible before adding
3130 * "m" to the page table. Otherwise, a page table walk by another
3131 * processor's MMU could see the mapping to "m" and a stale, non-zero
3132 * PTE within "m".
3133 */
3134 dmb(ishst);
3135
3136 /*
3137 * Map the pagetable page into the process address space, if
3138 * it isn't already there.
3139 */
3140
3141 if (ptepindex >= (NUL2E + NUL1E)) {
3142 pd_entry_t *l0p, l0e;
3143 vm_pindex_t l0index;
3144
3145 l0index = ptepindex - (NUL2E + NUL1E);
3146 l0p = &pmap->pm_l0[l0index];
3147 KASSERT((pmap_load(l0p) & ATTR_DESCR_VALID) == 0,
3148 ("%s: L0 entry %#lx is valid", __func__, pmap_load(l0p)));
3149 l0e = VM_PAGE_TO_PTE(m) | L0_TABLE;
3150
3151 /*
3152 * Mark all kernel memory as not accessible from userspace
3153 * and userspace memory as not executable from the kernel.
3154 * This has been done for the bootstrap L0 entries in
3155 * locore.S.
3156 */
3157 if (pmap == kernel_pmap)
3158 l0e |= TATTR_UXN_TABLE | TATTR_AP_TABLE_NO_EL0;
3159 else
3160 l0e |= TATTR_PXN_TABLE;
3161 pmap_store(l0p, l0e);
3162 } else if (ptepindex >= NUL2E) {
3163 vm_pindex_t l0index, l1index;
3164 pd_entry_t *l0, *l1;
3165 pd_entry_t tl0;
3166
3167 l1index = ptepindex - NUL2E;
3168 l0index = l1index >> Ln_ENTRIES_SHIFT;
3169
3170 l0 = &pmap->pm_l0[l0index];
3171 tl0 = pmap_load(l0);
3172 if (tl0 == 0) {
3173 /* recurse for allocating page dir */
3174 if (_pmap_alloc_l3(pmap, NUL2E + NUL1E + l0index,
3175 lockp) == NULL) {
3176 vm_page_unwire_noq(m);
3177 vm_page_free_zero(m);
3178 return (NULL);
3179 }
3180 } else {
3181 l1pg = PTE_TO_VM_PAGE(tl0);
3182 l1pg->ref_count++;
3183 }
3184
3185 l1 = PHYS_TO_DMAP(PTE_TO_PHYS(pmap_load(l0)));
3186 l1 = &l1[ptepindex & Ln_ADDR_MASK];
3187 KASSERT((pmap_load(l1) & ATTR_DESCR_VALID) == 0,
3188 ("%s: L1 entry %#lx is valid", __func__, pmap_load(l1)));
3189 pmap_store(l1, VM_PAGE_TO_PTE(m) | L1_TABLE);
3190 } else {
3191 vm_pindex_t l0index, l1index;
3192 pd_entry_t *l0, *l1, *l2;
3193 pd_entry_t tl0, tl1;
3194
3195 l1index = ptepindex >> Ln_ENTRIES_SHIFT;
3196 l0index = l1index >> Ln_ENTRIES_SHIFT;
3197
3198 l0 = &pmap->pm_l0[l0index];
3199 tl0 = pmap_load(l0);
3200 if (tl0 == 0) {
3201 /* recurse for allocating page dir */
3202 if (_pmap_alloc_l3(pmap, NUL2E + l1index,
3203 lockp) == NULL) {
3204 vm_page_unwire_noq(m);
3205 vm_page_free_zero(m);
3206 return (NULL);
3207 }
3208 tl0 = pmap_load(l0);
3209 l1 = PHYS_TO_DMAP(PTE_TO_PHYS(tl0));
3210 l1 = &l1[l1index & Ln_ADDR_MASK];
3211 } else {
3212 l1 = PHYS_TO_DMAP(PTE_TO_PHYS(tl0));
3213 l1 = &l1[l1index & Ln_ADDR_MASK];
3214 tl1 = pmap_load(l1);
3215 if (tl1 == 0) {
3216 /* recurse for allocating page dir */
3217 if (_pmap_alloc_l3(pmap, NUL2E + l1index,
3218 lockp) == NULL) {
3219 vm_page_unwire_noq(m);
3220 vm_page_free_zero(m);
3221 return (NULL);
3222 }
3223 } else {
3224 l2pg = PTE_TO_VM_PAGE(tl1);
3225 l2pg->ref_count++;
3226 }
3227 }
3228
3229 l2 = PHYS_TO_DMAP(PTE_TO_PHYS(pmap_load(l1)));
3230 l2 = &l2[ptepindex & Ln_ADDR_MASK];
3231 KASSERT((pmap_load(l2) & ATTR_DESCR_VALID) == 0,
3232 ("%s: L2 entry %#lx is valid", __func__, pmap_load(l2)));
3233 pmap_store(l2, VM_PAGE_TO_PTE(m) | L2_TABLE);
3234 }
3235
3236 pmap_resident_count_inc(pmap, 1);
3237
3238 return (m);
3239 }
3240
3241 static pd_entry_t *
pmap_alloc_l2(pmap_t pmap,vm_offset_t va,vm_page_t * l2pgp,struct rwlock ** lockp)3242 pmap_alloc_l2(pmap_t pmap, vm_offset_t va, vm_page_t *l2pgp,
3243 struct rwlock **lockp)
3244 {
3245 pd_entry_t *l1, *l2;
3246 vm_page_t l2pg;
3247 vm_pindex_t l2pindex;
3248
3249 KASSERT(ADDR_IS_CANONICAL(va),
3250 ("%s: Address not in canonical form: %lx", __func__, va));
3251
3252 retry:
3253 l1 = pmap_l1(pmap, va);
3254 if (l1 != NULL && (pmap_load(l1) & ATTR_DESCR_MASK) == L1_TABLE) {
3255 l2 = pmap_l1_to_l2(l1, va);
3256 if (ADDR_IS_USER(va)) {
3257 /* Add a reference to the L2 page. */
3258 l2pg = PTE_TO_VM_PAGE(pmap_load(l1));
3259 l2pg->ref_count++;
3260 } else
3261 l2pg = NULL;
3262 } else if (ADDR_IS_USER(va)) {
3263 /* Allocate a L2 page. */
3264 l2pindex = pmap_l2_pindex(va) >> Ln_ENTRIES_SHIFT;
3265 l2pg = _pmap_alloc_l3(pmap, NUL2E + l2pindex, lockp);
3266 if (l2pg == NULL) {
3267 if (lockp != NULL)
3268 goto retry;
3269 else
3270 return (NULL);
3271 }
3272 l2 = VM_PAGE_TO_DMAP(l2pg);
3273 l2 = &l2[pmap_l2_index(va)];
3274 } else
3275 panic("pmap_alloc_l2: missing page table page for va %#lx",
3276 va);
3277 *l2pgp = l2pg;
3278 return (l2);
3279 }
3280
3281 static vm_page_t
pmap_alloc_l3(pmap_t pmap,vm_offset_t va,struct rwlock ** lockp)3282 pmap_alloc_l3(pmap_t pmap, vm_offset_t va, struct rwlock **lockp)
3283 {
3284 vm_pindex_t ptepindex;
3285 pd_entry_t *pde, tpde;
3286 #ifdef INVARIANTS
3287 pt_entry_t *pte;
3288 #endif
3289 vm_page_t m;
3290 int lvl;
3291
3292 /*
3293 * Calculate pagetable page index
3294 */
3295 ptepindex = pmap_l2_pindex(va);
3296 retry:
3297 /*
3298 * Get the page directory entry
3299 */
3300 pde = pmap_pde(pmap, va, &lvl);
3301
3302 /*
3303 * If the page table page is mapped, we just increment the hold count,
3304 * and activate it. If we get a level 2 pde it will point to a level 3
3305 * table.
3306 */
3307 switch (lvl) {
3308 case -1:
3309 break;
3310 case 0:
3311 #ifdef INVARIANTS
3312 pte = pmap_l0_to_l1(pde, va);
3313 KASSERT(pmap_load(pte) == 0,
3314 ("pmap_alloc_l3: TODO: l0 superpages"));
3315 #endif
3316 break;
3317 case 1:
3318 #ifdef INVARIANTS
3319 pte = pmap_l1_to_l2(pde, va);
3320 KASSERT(pmap_load(pte) == 0,
3321 ("pmap_alloc_l3: TODO: l1 superpages"));
3322 #endif
3323 break;
3324 case 2:
3325 tpde = pmap_load(pde);
3326 if (tpde != 0) {
3327 m = PTE_TO_VM_PAGE(tpde);
3328 m->ref_count++;
3329 return (m);
3330 }
3331 break;
3332 default:
3333 panic("pmap_alloc_l3: Invalid level %d", lvl);
3334 }
3335
3336 /*
3337 * Here if the pte page isn't mapped, or if it has been deallocated.
3338 */
3339 m = _pmap_alloc_l3(pmap, ptepindex, lockp);
3340 if (m == NULL && lockp != NULL)
3341 goto retry;
3342
3343 return (m);
3344 }
3345
3346 /***************************************************
3347 * Pmap allocation/deallocation routines.
3348 ***************************************************/
3349
3350 /*
3351 * Release any resources held by the given physical map.
3352 * Called when a pmap initialized by pmap_pinit is being released.
3353 * Should only be called if the map contains no valid mappings.
3354 */
3355 void
pmap_release(pmap_t pmap)3356 pmap_release(pmap_t pmap)
3357 {
3358 bool rv __diagused;
3359 struct spglist freelist;
3360 struct asid_set *set;
3361 vm_page_t m;
3362 int asid;
3363
3364 if (pmap->pm_levels != 4) {
3365 PMAP_ASSERT_STAGE2(pmap);
3366 KASSERT(pmap->pm_stats.resident_count == 1,
3367 ("pmap_release: pmap resident count %ld != 0",
3368 pmap->pm_stats.resident_count));
3369 KASSERT((pmap->pm_l0[0] & ATTR_DESCR_VALID) == ATTR_DESCR_VALID,
3370 ("pmap_release: Invalid l0 entry: %lx", pmap->pm_l0[0]));
3371
3372 SLIST_INIT(&freelist);
3373 m = PHYS_TO_VM_PAGE(pmap->pm_ttbr);
3374 PMAP_LOCK(pmap);
3375 rv = pmap_unwire_l3(pmap, 0, m, &freelist);
3376 PMAP_UNLOCK(pmap);
3377 MPASS(rv == true);
3378 vm_page_free_pages_toq(&freelist, true);
3379 }
3380
3381 KASSERT(pmap->pm_stats.resident_count == 0,
3382 ("pmap_release: pmap resident count %ld != 0",
3383 pmap->pm_stats.resident_count));
3384 KASSERT(vm_radix_is_empty(&pmap->pm_root),
3385 ("pmap_release: pmap has reserved page table page(s)"));
3386
3387 set = pmap->pm_asid_set;
3388 KASSERT(set != NULL, ("%s: NULL asid set", __func__));
3389
3390 /*
3391 * Allow the ASID to be reused. In stage 2 VMIDs we don't invalidate
3392 * the entries when removing them so rely on a later tlb invalidation.
3393 * this will happen when updating the VMID generation. Because of this
3394 * we don't reuse VMIDs within a generation.
3395 */
3396 if (pmap->pm_stage == PM_STAGE1) {
3397 mtx_lock_spin(&set->asid_set_mutex);
3398 if (COOKIE_TO_EPOCH(pmap->pm_cookie) == set->asid_epoch) {
3399 asid = COOKIE_TO_ASID(pmap->pm_cookie);
3400 KASSERT(asid >= ASID_FIRST_AVAILABLE &&
3401 asid < set->asid_set_size,
3402 ("pmap_release: pmap cookie has out-of-range asid"));
3403 bit_clear(set->asid_set, asid);
3404 }
3405 mtx_unlock_spin(&set->asid_set_mutex);
3406
3407 if (pmap->pm_bti != NULL) {
3408 rangeset_fini(pmap->pm_bti);
3409 free(pmap->pm_bti, M_DEVBUF);
3410 }
3411 }
3412
3413 m = PHYS_TO_VM_PAGE(pmap->pm_l0_paddr);
3414 vm_page_unwire_noq(m);
3415 vm_page_free_zero(m);
3416 }
3417
3418 static int
kvm_size(SYSCTL_HANDLER_ARGS)3419 kvm_size(SYSCTL_HANDLER_ARGS)
3420 {
3421 unsigned long ksize = VM_MAX_KERNEL_ADDRESS - VM_MIN_KERNEL_ADDRESS;
3422
3423 return sysctl_handle_long(oidp, &ksize, 0, req);
3424 }
3425 SYSCTL_PROC(_vm, OID_AUTO, kvm_size, CTLTYPE_LONG | CTLFLAG_RD | CTLFLAG_MPSAFE,
3426 0, 0, kvm_size, "LU",
3427 "Size of KVM");
3428
3429 static int
kvm_free(SYSCTL_HANDLER_ARGS)3430 kvm_free(SYSCTL_HANDLER_ARGS)
3431 {
3432 unsigned long kfree = VM_MAX_KERNEL_ADDRESS - kernel_vm_end;
3433
3434 return sysctl_handle_long(oidp, &kfree, 0, req);
3435 }
3436 SYSCTL_PROC(_vm, OID_AUTO, kvm_free, CTLTYPE_LONG | CTLFLAG_RD | CTLFLAG_MPSAFE,
3437 0, 0, kvm_free, "LU",
3438 "Amount of KVM free");
3439
3440 /*
3441 * grow the number of kernel page table entries, if needed
3442 */
3443 static int
pmap_growkernel_nopanic(vm_offset_t addr)3444 pmap_growkernel_nopanic(vm_offset_t addr)
3445 {
3446 vm_page_t nkpg;
3447 pd_entry_t *l0, *l1, *l2;
3448
3449 mtx_assert(&kernel_map->system_mtx, MA_OWNED);
3450
3451 addr = roundup2(addr, L2_SIZE);
3452 if (addr - 1 >= vm_map_max(kernel_map))
3453 addr = vm_map_max(kernel_map);
3454 if (kernel_vm_end < addr) {
3455 kasan_shadow_map(kernel_vm_end, addr - kernel_vm_end);
3456 kmsan_shadow_map(kernel_vm_end, addr - kernel_vm_end);
3457 }
3458 while (kernel_vm_end < addr) {
3459 l0 = pmap_l0(kernel_pmap, kernel_vm_end);
3460 KASSERT(pmap_load(l0) != 0,
3461 ("pmap_growkernel: No level 0 kernel entry"));
3462
3463 l1 = pmap_l0_to_l1(l0, kernel_vm_end);
3464 if (pmap_load(l1) == 0) {
3465 /* We need a new PDP entry */
3466 nkpg = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT |
3467 VM_ALLOC_NOFREE | VM_ALLOC_WIRED | VM_ALLOC_ZERO);
3468 if (nkpg == NULL)
3469 return (KERN_RESOURCE_SHORTAGE);
3470 nkpg->pindex = pmap_l1_pindex(kernel_vm_end);
3471 /* See the dmb() in _pmap_alloc_l3(). */
3472 dmb(ishst);
3473 pmap_store(l1, VM_PAGE_TO_PTE(nkpg) | L1_TABLE);
3474 continue; /* try again */
3475 }
3476 l2 = pmap_l1_to_l2(l1, kernel_vm_end);
3477 if (pmap_load(l2) != 0) {
3478 kernel_vm_end = (kernel_vm_end + L2_SIZE) & ~L2_OFFSET;
3479 if (kernel_vm_end - 1 >= vm_map_max(kernel_map)) {
3480 kernel_vm_end = vm_map_max(kernel_map);
3481 break;
3482 }
3483 continue;
3484 }
3485
3486 nkpg = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT |
3487 VM_ALLOC_NOFREE | VM_ALLOC_WIRED | VM_ALLOC_ZERO);
3488 if (nkpg == NULL)
3489 return (KERN_RESOURCE_SHORTAGE);
3490 nkpg->pindex = pmap_l2_pindex(kernel_vm_end);
3491 /* See the dmb() in _pmap_alloc_l3(). */
3492 dmb(ishst);
3493 pmap_store(l2, VM_PAGE_TO_PTE(nkpg) | L2_TABLE);
3494
3495 kernel_vm_end = (kernel_vm_end + L2_SIZE) & ~L2_OFFSET;
3496 if (kernel_vm_end - 1 >= vm_map_max(kernel_map)) {
3497 kernel_vm_end = vm_map_max(kernel_map);
3498 break;
3499 }
3500 }
3501 return (KERN_SUCCESS);
3502 }
3503
3504 int
pmap_growkernel(vm_offset_t addr)3505 pmap_growkernel(vm_offset_t addr)
3506 {
3507 int rv;
3508
3509 rv = pmap_growkernel_nopanic(addr);
3510 if (rv != KERN_SUCCESS && pmap_growkernel_panic)
3511 panic("pmap_growkernel: no memory to grow kernel");
3512 return (rv);
3513 }
3514
3515 /***************************************************
3516 * page management routines.
3517 ***************************************************/
3518
3519 static const uint64_t pc_freemask[_NPCM] = {
3520 [0 ... _NPCM - 2] = PC_FREEN,
3521 [_NPCM - 1] = PC_FREEL
3522 };
3523
3524 #ifdef PV_STATS
3525 static int pc_chunk_count, pc_chunk_allocs, pc_chunk_frees, pc_chunk_tryfail;
3526
3527 SYSCTL_INT(_vm_pmap, OID_AUTO, pc_chunk_count, CTLFLAG_RD, &pc_chunk_count, 0,
3528 "Current number of pv entry chunks");
3529 SYSCTL_INT(_vm_pmap, OID_AUTO, pc_chunk_allocs, CTLFLAG_RD, &pc_chunk_allocs, 0,
3530 "Current number of pv entry chunks allocated");
3531 SYSCTL_INT(_vm_pmap, OID_AUTO, pc_chunk_frees, CTLFLAG_RD, &pc_chunk_frees, 0,
3532 "Current number of pv entry chunks frees");
3533 SYSCTL_INT(_vm_pmap, OID_AUTO, pc_chunk_tryfail, CTLFLAG_RD, &pc_chunk_tryfail, 0,
3534 "Number of times tried to get a chunk page but failed.");
3535
3536 static long pv_entry_frees, pv_entry_allocs, pv_entry_count;
3537 static int pv_entry_spare;
3538
3539 SYSCTL_LONG(_vm_pmap, OID_AUTO, pv_entry_frees, CTLFLAG_RD, &pv_entry_frees, 0,
3540 "Current number of pv entry frees");
3541 SYSCTL_LONG(_vm_pmap, OID_AUTO, pv_entry_allocs, CTLFLAG_RD, &pv_entry_allocs, 0,
3542 "Current number of pv entry allocs");
3543 SYSCTL_LONG(_vm_pmap, OID_AUTO, pv_entry_count, CTLFLAG_RD, &pv_entry_count, 0,
3544 "Current number of pv entries");
3545 SYSCTL_INT(_vm_pmap, OID_AUTO, pv_entry_spare, CTLFLAG_RD, &pv_entry_spare, 0,
3546 "Current number of spare pv entries");
3547 #endif
3548
3549 /*
3550 * We are in a serious low memory condition. Resort to
3551 * drastic measures to free some pages so we can allocate
3552 * another pv entry chunk.
3553 *
3554 * Returns NULL if PV entries were reclaimed from the specified pmap.
3555 *
3556 * We do not, however, unmap 2mpages because subsequent accesses will
3557 * allocate per-page pv entries until repromotion occurs, thereby
3558 * exacerbating the shortage of free pv entries.
3559 */
3560 static vm_page_t
reclaim_pv_chunk_domain(pmap_t locked_pmap,struct rwlock ** lockp,int domain)3561 reclaim_pv_chunk_domain(pmap_t locked_pmap, struct rwlock **lockp, int domain)
3562 {
3563 struct pv_chunks_list *pvc;
3564 struct pv_chunk *pc, *pc_marker, *pc_marker_end;
3565 struct pv_chunk_header pc_marker_b, pc_marker_end_b;
3566 struct md_page *pvh;
3567 pd_entry_t *pde;
3568 pmap_t next_pmap, pmap;
3569 pt_entry_t *pte, tpte;
3570 pv_entry_t pv;
3571 vm_offset_t va;
3572 vm_page_t m, m_pc;
3573 struct spglist free;
3574 uint64_t inuse;
3575 int bit, field, freed, lvl;
3576
3577 PMAP_LOCK_ASSERT(locked_pmap, MA_OWNED);
3578 KASSERT(lockp != NULL, ("reclaim_pv_chunk: lockp is NULL"));
3579
3580 pmap = NULL;
3581 m_pc = NULL;
3582 SLIST_INIT(&free);
3583 bzero(&pc_marker_b, sizeof(pc_marker_b));
3584 bzero(&pc_marker_end_b, sizeof(pc_marker_end_b));
3585 pc_marker = (struct pv_chunk *)&pc_marker_b;
3586 pc_marker_end = (struct pv_chunk *)&pc_marker_end_b;
3587
3588 pvc = &pv_chunks[domain];
3589 mtx_lock(&pvc->pvc_lock);
3590 pvc->active_reclaims++;
3591 TAILQ_INSERT_HEAD(&pvc->pvc_list, pc_marker, pc_lru);
3592 TAILQ_INSERT_TAIL(&pvc->pvc_list, pc_marker_end, pc_lru);
3593 while ((pc = TAILQ_NEXT(pc_marker, pc_lru)) != pc_marker_end &&
3594 SLIST_EMPTY(&free)) {
3595 next_pmap = pc->pc_pmap;
3596 if (next_pmap == NULL) {
3597 /*
3598 * The next chunk is a marker. However, it is
3599 * not our marker, so active_reclaims must be
3600 * > 1. Consequently, the next_chunk code
3601 * will not rotate the pv_chunks list.
3602 */
3603 goto next_chunk;
3604 }
3605 mtx_unlock(&pvc->pvc_lock);
3606
3607 /*
3608 * A pv_chunk can only be removed from the pc_lru list
3609 * when both pvc->pvc_lock is owned and the
3610 * corresponding pmap is locked.
3611 */
3612 if (pmap != next_pmap) {
3613 if (pmap != NULL && pmap != locked_pmap)
3614 PMAP_UNLOCK(pmap);
3615 pmap = next_pmap;
3616 /* Avoid deadlock and lock recursion. */
3617 if (pmap > locked_pmap) {
3618 RELEASE_PV_LIST_LOCK(lockp);
3619 PMAP_LOCK(pmap);
3620 mtx_lock(&pvc->pvc_lock);
3621 continue;
3622 } else if (pmap != locked_pmap) {
3623 if (PMAP_TRYLOCK(pmap)) {
3624 mtx_lock(&pvc->pvc_lock);
3625 continue;
3626 } else {
3627 pmap = NULL; /* pmap is not locked */
3628 mtx_lock(&pvc->pvc_lock);
3629 pc = TAILQ_NEXT(pc_marker, pc_lru);
3630 if (pc == NULL ||
3631 pc->pc_pmap != next_pmap)
3632 continue;
3633 goto next_chunk;
3634 }
3635 }
3636 }
3637
3638 /*
3639 * Destroy every non-wired, 4 KB page mapping in the chunk.
3640 */
3641 freed = 0;
3642 for (field = 0; field < _NPCM; field++) {
3643 for (inuse = ~pc->pc_map[field] & pc_freemask[field];
3644 inuse != 0; inuse &= ~(1UL << bit)) {
3645 bit = ffsl(inuse) - 1;
3646 pv = &pc->pc_pventry[field * 64 + bit];
3647 va = pv->pv_va;
3648 pde = pmap_pde(pmap, va, &lvl);
3649 if (lvl != 2)
3650 continue;
3651 pte = pmap_l2_to_l3(pde, va);
3652 tpte = pmap_load(pte);
3653 if ((tpte & ATTR_SW_WIRED) != 0)
3654 continue;
3655 if ((tpte & ATTR_CONTIGUOUS) != 0)
3656 (void)pmap_demote_l3c(pmap, pte, va);
3657 tpte = pmap_load_clear(pte);
3658 m = PTE_TO_VM_PAGE(tpte);
3659 if (pmap_pte_dirty(pmap, tpte))
3660 vm_page_dirty(m);
3661 if ((tpte & ATTR_AF) != 0) {
3662 pmap_s1_invalidate_page(pmap, va, true);
3663 vm_page_aflag_set(m, PGA_REFERENCED);
3664 }
3665 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
3666 TAILQ_REMOVE(&m->md.pv_list, pv, pv_next);
3667 m->md.pv_gen++;
3668 if (TAILQ_EMPTY(&m->md.pv_list) &&
3669 (m->flags & PG_FICTITIOUS) == 0) {
3670 pvh = page_to_pvh(m);
3671 if (TAILQ_EMPTY(&pvh->pv_list)) {
3672 vm_page_aflag_clear(m,
3673 PGA_WRITEABLE);
3674 }
3675 }
3676 pc->pc_map[field] |= 1UL << bit;
3677 pmap_unuse_pt(pmap, va, pmap_load(pde), &free);
3678 freed++;
3679 }
3680 }
3681 if (freed == 0) {
3682 mtx_lock(&pvc->pvc_lock);
3683 goto next_chunk;
3684 }
3685 /* Every freed mapping is for a 4 KB page. */
3686 pmap_resident_count_dec(pmap, freed);
3687 PV_STAT(atomic_add_long(&pv_entry_frees, freed));
3688 PV_STAT(atomic_add_int(&pv_entry_spare, freed));
3689 PV_STAT(atomic_subtract_long(&pv_entry_count, freed));
3690 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
3691 if (pc_is_free(pc)) {
3692 PV_STAT(atomic_subtract_int(&pv_entry_spare, _NPCPV));
3693 PV_STAT(atomic_subtract_int(&pc_chunk_count, 1));
3694 PV_STAT(atomic_add_int(&pc_chunk_frees, 1));
3695 /* Entire chunk is free; return it. */
3696 m_pc = DMAP_TO_VM_PAGE(pc);
3697 dump_drop_page(m_pc->phys_addr);
3698 mtx_lock(&pvc->pvc_lock);
3699 TAILQ_REMOVE(&pvc->pvc_list, pc, pc_lru);
3700 break;
3701 }
3702 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
3703 mtx_lock(&pvc->pvc_lock);
3704 /* One freed pv entry in locked_pmap is sufficient. */
3705 if (pmap == locked_pmap)
3706 break;
3707
3708 next_chunk:
3709 TAILQ_REMOVE(&pvc->pvc_list, pc_marker, pc_lru);
3710 TAILQ_INSERT_AFTER(&pvc->pvc_list, pc, pc_marker, pc_lru);
3711 if (pvc->active_reclaims == 1 && pmap != NULL) {
3712 /*
3713 * Rotate the pv chunks list so that we do not
3714 * scan the same pv chunks that could not be
3715 * freed (because they contained a wired
3716 * and/or superpage mapping) on every
3717 * invocation of reclaim_pv_chunk().
3718 */
3719 while ((pc = TAILQ_FIRST(&pvc->pvc_list)) != pc_marker){
3720 MPASS(pc->pc_pmap != NULL);
3721 TAILQ_REMOVE(&pvc->pvc_list, pc, pc_lru);
3722 TAILQ_INSERT_TAIL(&pvc->pvc_list, pc, pc_lru);
3723 }
3724 }
3725 }
3726 TAILQ_REMOVE(&pvc->pvc_list, pc_marker, pc_lru);
3727 TAILQ_REMOVE(&pvc->pvc_list, pc_marker_end, pc_lru);
3728 pvc->active_reclaims--;
3729 mtx_unlock(&pvc->pvc_lock);
3730 if (pmap != NULL && pmap != locked_pmap)
3731 PMAP_UNLOCK(pmap);
3732 if (m_pc == NULL && !SLIST_EMPTY(&free)) {
3733 m_pc = SLIST_FIRST(&free);
3734 SLIST_REMOVE_HEAD(&free, plinks.s.ss);
3735 /* Recycle a freed page table page. */
3736 m_pc->ref_count = 1;
3737 }
3738 vm_page_free_pages_toq(&free, true);
3739 return (m_pc);
3740 }
3741
3742 static vm_page_t
reclaim_pv_chunk(pmap_t locked_pmap,struct rwlock ** lockp)3743 reclaim_pv_chunk(pmap_t locked_pmap, struct rwlock **lockp)
3744 {
3745 vm_page_t m;
3746 int i, domain;
3747
3748 domain = PCPU_GET(domain);
3749 for (i = 0; i < vm_ndomains; i++) {
3750 m = reclaim_pv_chunk_domain(locked_pmap, lockp, domain);
3751 if (m != NULL)
3752 break;
3753 domain = (domain + 1) % vm_ndomains;
3754 }
3755
3756 return (m);
3757 }
3758
3759 /*
3760 * free the pv_entry back to the free list
3761 */
3762 static void
free_pv_entry(pmap_t pmap,pv_entry_t pv)3763 free_pv_entry(pmap_t pmap, pv_entry_t pv)
3764 {
3765 struct pv_chunk *pc;
3766 int idx, field, bit;
3767
3768 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3769 PV_STAT(atomic_add_long(&pv_entry_frees, 1));
3770 PV_STAT(atomic_add_int(&pv_entry_spare, 1));
3771 PV_STAT(atomic_subtract_long(&pv_entry_count, 1));
3772 pc = pv_to_chunk(pv);
3773 idx = pv - &pc->pc_pventry[0];
3774 field = idx / 64;
3775 bit = idx % 64;
3776 pc->pc_map[field] |= 1ul << bit;
3777 if (!pc_is_free(pc)) {
3778 /* 98% of the time, pc is already at the head of the list. */
3779 if (__predict_false(pc != TAILQ_FIRST(&pmap->pm_pvchunk))) {
3780 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
3781 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
3782 }
3783 return;
3784 }
3785 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
3786 free_pv_chunk(pc);
3787 }
3788
3789 static void
free_pv_chunk_dequeued(struct pv_chunk * pc)3790 free_pv_chunk_dequeued(struct pv_chunk *pc)
3791 {
3792 vm_page_t m;
3793
3794 PV_STAT(atomic_subtract_int(&pv_entry_spare, _NPCPV));
3795 PV_STAT(atomic_subtract_int(&pc_chunk_count, 1));
3796 PV_STAT(atomic_add_int(&pc_chunk_frees, 1));
3797 /* entire chunk is free, return it */
3798 m = DMAP_TO_VM_PAGE(pc);
3799 dump_drop_page(m->phys_addr);
3800 vm_page_unwire_noq(m);
3801 vm_page_free(m);
3802 }
3803
3804 static void
free_pv_chunk(struct pv_chunk * pc)3805 free_pv_chunk(struct pv_chunk *pc)
3806 {
3807 struct pv_chunks_list *pvc;
3808
3809 pvc = &pv_chunks[pc_to_domain(pc)];
3810 mtx_lock(&pvc->pvc_lock);
3811 TAILQ_REMOVE(&pvc->pvc_list, pc, pc_lru);
3812 mtx_unlock(&pvc->pvc_lock);
3813 free_pv_chunk_dequeued(pc);
3814 }
3815
3816 static void
free_pv_chunk_batch(struct pv_chunklist * batch)3817 free_pv_chunk_batch(struct pv_chunklist *batch)
3818 {
3819 struct pv_chunks_list *pvc;
3820 struct pv_chunk *pc, *npc;
3821 int i;
3822
3823 for (i = 0; i < vm_ndomains; i++) {
3824 if (TAILQ_EMPTY(&batch[i]))
3825 continue;
3826 pvc = &pv_chunks[i];
3827 mtx_lock(&pvc->pvc_lock);
3828 TAILQ_FOREACH(pc, &batch[i], pc_list) {
3829 TAILQ_REMOVE(&pvc->pvc_list, pc, pc_lru);
3830 }
3831 mtx_unlock(&pvc->pvc_lock);
3832 }
3833
3834 for (i = 0; i < vm_ndomains; i++) {
3835 TAILQ_FOREACH_SAFE(pc, &batch[i], pc_list, npc) {
3836 free_pv_chunk_dequeued(pc);
3837 }
3838 }
3839 }
3840
3841 /*
3842 * Returns a new PV entry, allocating a new PV chunk from the system when
3843 * needed. If this PV chunk allocation fails and a PV list lock pointer was
3844 * given, a PV chunk is reclaimed from an arbitrary pmap. Otherwise, NULL is
3845 * returned.
3846 *
3847 * The given PV list lock may be released.
3848 */
3849 static pv_entry_t
get_pv_entry(pmap_t pmap,struct rwlock ** lockp)3850 get_pv_entry(pmap_t pmap, struct rwlock **lockp)
3851 {
3852 struct pv_chunks_list *pvc;
3853 int bit, field;
3854 pv_entry_t pv;
3855 struct pv_chunk *pc;
3856 vm_page_t m;
3857
3858 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3859 PV_STAT(atomic_add_long(&pv_entry_allocs, 1));
3860 retry:
3861 pc = TAILQ_FIRST(&pmap->pm_pvchunk);
3862 if (pc != NULL) {
3863 for (field = 0; field < _NPCM; field++) {
3864 if (pc->pc_map[field]) {
3865 bit = ffsl(pc->pc_map[field]) - 1;
3866 break;
3867 }
3868 }
3869 if (field < _NPCM) {
3870 pv = &pc->pc_pventry[field * 64 + bit];
3871 pc->pc_map[field] &= ~(1ul << bit);
3872 /* If this was the last item, move it to tail */
3873 if (pc_is_full(pc)) {
3874 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
3875 TAILQ_INSERT_TAIL(&pmap->pm_pvchunk, pc,
3876 pc_list);
3877 }
3878 PV_STAT(atomic_add_long(&pv_entry_count, 1));
3879 PV_STAT(atomic_subtract_int(&pv_entry_spare, 1));
3880 return (pv);
3881 }
3882 }
3883 /* No free items, allocate another chunk */
3884 m = vm_page_alloc_noobj(VM_ALLOC_WIRED);
3885 if (m == NULL) {
3886 if (lockp == NULL) {
3887 PV_STAT(pc_chunk_tryfail++);
3888 return (NULL);
3889 }
3890 m = reclaim_pv_chunk(pmap, lockp);
3891 if (m == NULL)
3892 goto retry;
3893 }
3894 PV_STAT(atomic_add_int(&pc_chunk_count, 1));
3895 PV_STAT(atomic_add_int(&pc_chunk_allocs, 1));
3896 dump_add_page(m->phys_addr);
3897 pc = PHYS_TO_DMAP(m->phys_addr);
3898 pc->pc_pmap = pmap;
3899 memcpy(pc->pc_map, pc_freemask, sizeof(pc_freemask));
3900 pc->pc_map[0] &= ~1ul; /* preallocated bit 0 */
3901 pvc = &pv_chunks[vm_page_domain(m)];
3902 mtx_lock(&pvc->pvc_lock);
3903 TAILQ_INSERT_TAIL(&pvc->pvc_list, pc, pc_lru);
3904 mtx_unlock(&pvc->pvc_lock);
3905 pv = &pc->pc_pventry[0];
3906 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
3907 PV_STAT(atomic_add_long(&pv_entry_count, 1));
3908 PV_STAT(atomic_add_int(&pv_entry_spare, _NPCPV - 1));
3909 return (pv);
3910 }
3911
3912 /*
3913 * Ensure that the number of spare PV entries in the specified pmap meets or
3914 * exceeds the given count, "needed".
3915 *
3916 * The given PV list lock may be released.
3917 */
3918 static void
reserve_pv_entries(pmap_t pmap,int needed,struct rwlock ** lockp)3919 reserve_pv_entries(pmap_t pmap, int needed, struct rwlock **lockp)
3920 {
3921 struct pv_chunks_list *pvc;
3922 struct pch new_tail[PMAP_MEMDOM];
3923 struct pv_chunk *pc;
3924 vm_page_t m;
3925 int avail, free, i;
3926 bool reclaimed;
3927
3928 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
3929 KASSERT(lockp != NULL, ("reserve_pv_entries: lockp is NULL"));
3930
3931 /*
3932 * Newly allocated PV chunks must be stored in a private list until
3933 * the required number of PV chunks have been allocated. Otherwise,
3934 * reclaim_pv_chunk() could recycle one of these chunks. In
3935 * contrast, these chunks must be added to the pmap upon allocation.
3936 */
3937 for (i = 0; i < PMAP_MEMDOM; i++)
3938 TAILQ_INIT(&new_tail[i]);
3939 retry:
3940 avail = 0;
3941 TAILQ_FOREACH(pc, &pmap->pm_pvchunk, pc_list) {
3942 bit_count((bitstr_t *)pc->pc_map, 0,
3943 sizeof(pc->pc_map) * NBBY, &free);
3944 if (free == 0)
3945 break;
3946 avail += free;
3947 if (avail >= needed)
3948 break;
3949 }
3950 for (reclaimed = false; avail < needed; avail += _NPCPV) {
3951 m = vm_page_alloc_noobj(VM_ALLOC_WIRED);
3952 if (m == NULL) {
3953 m = reclaim_pv_chunk(pmap, lockp);
3954 if (m == NULL)
3955 goto retry;
3956 reclaimed = true;
3957 }
3958 PV_STAT(atomic_add_int(&pc_chunk_count, 1));
3959 PV_STAT(atomic_add_int(&pc_chunk_allocs, 1));
3960 dump_add_page(m->phys_addr);
3961 pc = PHYS_TO_DMAP(m->phys_addr);
3962 pc->pc_pmap = pmap;
3963 memcpy(pc->pc_map, pc_freemask, sizeof(pc_freemask));
3964 TAILQ_INSERT_HEAD(&pmap->pm_pvchunk, pc, pc_list);
3965 TAILQ_INSERT_TAIL(&new_tail[vm_page_domain(m)], pc, pc_lru);
3966 PV_STAT(atomic_add_int(&pv_entry_spare, _NPCPV));
3967
3968 /*
3969 * The reclaim might have freed a chunk from the current pmap.
3970 * If that chunk contained available entries, we need to
3971 * re-count the number of available entries.
3972 */
3973 if (reclaimed)
3974 goto retry;
3975 }
3976 for (i = 0; i < vm_ndomains; i++) {
3977 if (TAILQ_EMPTY(&new_tail[i]))
3978 continue;
3979 pvc = &pv_chunks[i];
3980 mtx_lock(&pvc->pvc_lock);
3981 TAILQ_CONCAT(&pvc->pvc_list, &new_tail[i], pc_lru);
3982 mtx_unlock(&pvc->pvc_lock);
3983 }
3984 }
3985
3986 /*
3987 * First find and then remove the pv entry for the specified pmap and virtual
3988 * address from the specified pv list. Returns the pv entry if found and NULL
3989 * otherwise. This operation can be performed on pv lists for either 4KB or
3990 * 2MB page mappings.
3991 */
3992 static __inline pv_entry_t
pmap_pvh_remove(struct md_page * pvh,pmap_t pmap,vm_offset_t va)3993 pmap_pvh_remove(struct md_page *pvh, pmap_t pmap, vm_offset_t va)
3994 {
3995 pv_entry_t pv;
3996
3997 TAILQ_FOREACH(pv, &pvh->pv_list, pv_next) {
3998 if (pmap == PV_PMAP(pv) && va == pv->pv_va) {
3999 TAILQ_REMOVE(&pvh->pv_list, pv, pv_next);
4000 pvh->pv_gen++;
4001 break;
4002 }
4003 }
4004 return (pv);
4005 }
4006
4007 /*
4008 * After demotion from a 2MB page mapping to 512 4KB page mappings,
4009 * destroy the pv entry for the 2MB page mapping and reinstantiate the pv
4010 * entries for each of the 4KB page mappings.
4011 */
4012 static void
pmap_pv_demote_l2(pmap_t pmap,vm_offset_t va,vm_paddr_t pa,struct rwlock ** lockp)4013 pmap_pv_demote_l2(pmap_t pmap, vm_offset_t va, vm_paddr_t pa,
4014 struct rwlock **lockp)
4015 {
4016 struct md_page *pvh;
4017 struct pv_chunk *pc;
4018 pv_entry_t pv;
4019 vm_offset_t va_last;
4020 vm_page_t m;
4021 int bit, field;
4022
4023 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4024 KASSERT((va & L2_OFFSET) == 0,
4025 ("pmap_pv_demote_l2: va is not 2mpage aligned"));
4026 KASSERT((pa & L2_OFFSET) == 0,
4027 ("pmap_pv_demote_l2: pa is not 2mpage aligned"));
4028 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa);
4029
4030 /*
4031 * Transfer the 2mpage's pv entry for this mapping to the first
4032 * page's pv list. Once this transfer begins, the pv list lock
4033 * must not be released until the last pv entry is reinstantiated.
4034 */
4035 pvh = pa_to_pvh(pa);
4036 pv = pmap_pvh_remove(pvh, pmap, va);
4037 KASSERT(pv != NULL, ("pmap_pv_demote_l2: pv not found"));
4038 m = PHYS_TO_VM_PAGE(pa);
4039 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_next);
4040 m->md.pv_gen++;
4041 /* Instantiate the remaining Ln_ENTRIES - 1 pv entries. */
4042 PV_STAT(atomic_add_long(&pv_entry_allocs, Ln_ENTRIES - 1));
4043 va_last = va + L2_SIZE - PAGE_SIZE;
4044 for (;;) {
4045 pc = TAILQ_FIRST(&pmap->pm_pvchunk);
4046 KASSERT(!pc_is_full(pc), ("pmap_pv_demote_l2: missing spare"));
4047 for (field = 0; field < _NPCM; field++) {
4048 while (pc->pc_map[field]) {
4049 bit = ffsl(pc->pc_map[field]) - 1;
4050 pc->pc_map[field] &= ~(1ul << bit);
4051 pv = &pc->pc_pventry[field * 64 + bit];
4052 va += PAGE_SIZE;
4053 pv->pv_va = va;
4054 m++;
4055 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4056 ("pmap_pv_demote_l2: page %p is not managed", m));
4057 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_next);
4058 m->md.pv_gen++;
4059 if (va == va_last)
4060 goto out;
4061 }
4062 }
4063 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
4064 TAILQ_INSERT_TAIL(&pmap->pm_pvchunk, pc, pc_list);
4065 }
4066 out:
4067 if (pc_is_full(pc)) {
4068 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
4069 TAILQ_INSERT_TAIL(&pmap->pm_pvchunk, pc, pc_list);
4070 }
4071 PV_STAT(atomic_add_long(&pv_entry_count, Ln_ENTRIES - 1));
4072 PV_STAT(atomic_subtract_int(&pv_entry_spare, Ln_ENTRIES - 1));
4073 }
4074
4075 /*
4076 * First find and then destroy the pv entry for the specified pmap and virtual
4077 * address. This operation can be performed on pv lists for either 4KB or 2MB
4078 * page mappings.
4079 */
4080 static void
pmap_pvh_free(struct md_page * pvh,pmap_t pmap,vm_offset_t va)4081 pmap_pvh_free(struct md_page *pvh, pmap_t pmap, vm_offset_t va)
4082 {
4083 pv_entry_t pv;
4084
4085 pv = pmap_pvh_remove(pvh, pmap, va);
4086 KASSERT(pv != NULL, ("pmap_pvh_free: pv not found"));
4087 free_pv_entry(pmap, pv);
4088 }
4089
4090 /*
4091 * Conditionally create the PV entry for a 4KB page mapping if the required
4092 * memory can be allocated without resorting to reclamation.
4093 */
4094 static bool
pmap_try_insert_pv_entry(pmap_t pmap,vm_offset_t va,vm_page_t m,struct rwlock ** lockp)4095 pmap_try_insert_pv_entry(pmap_t pmap, vm_offset_t va, vm_page_t m,
4096 struct rwlock **lockp)
4097 {
4098 pv_entry_t pv;
4099
4100 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4101 /* Pass NULL instead of the lock pointer to disable reclamation. */
4102 if ((pv = get_pv_entry(pmap, NULL)) != NULL) {
4103 pv->pv_va = va;
4104 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
4105 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_next);
4106 m->md.pv_gen++;
4107 return (true);
4108 } else
4109 return (false);
4110 }
4111
4112 /*
4113 * Create the PV entry for a 2MB page mapping. Always returns true unless the
4114 * flag PMAP_ENTER_NORECLAIM is specified. If that flag is specified, returns
4115 * false if the PV entry cannot be allocated without resorting to reclamation.
4116 */
4117 static bool
pmap_pv_insert_l2(pmap_t pmap,vm_offset_t va,pd_entry_t l2e,u_int flags,struct rwlock ** lockp)4118 pmap_pv_insert_l2(pmap_t pmap, vm_offset_t va, pd_entry_t l2e, u_int flags,
4119 struct rwlock **lockp)
4120 {
4121 struct md_page *pvh;
4122 pv_entry_t pv;
4123 vm_paddr_t pa;
4124
4125 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4126 /* Pass NULL instead of the lock pointer to disable reclamation. */
4127 if ((pv = get_pv_entry(pmap, (flags & PMAP_ENTER_NORECLAIM) != 0 ?
4128 NULL : lockp)) == NULL)
4129 return (false);
4130 pv->pv_va = va;
4131 pa = PTE_TO_PHYS(l2e);
4132 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa);
4133 pvh = pa_to_pvh(pa);
4134 TAILQ_INSERT_TAIL(&pvh->pv_list, pv, pv_next);
4135 pvh->pv_gen++;
4136 return (true);
4137 }
4138
4139 /*
4140 * Conditionally creates the PV entries for a L3C superpage mapping if
4141 * the required memory can be allocated without resorting to reclamation.
4142 */
4143 static bool
pmap_pv_insert_l3c(pmap_t pmap,vm_offset_t va,vm_page_t m,struct rwlock ** lockp)4144 pmap_pv_insert_l3c(pmap_t pmap, vm_offset_t va, vm_page_t m,
4145 struct rwlock **lockp)
4146 {
4147 pv_entry_t pv;
4148 vm_offset_t tva;
4149 vm_paddr_t pa __diagused;
4150 vm_page_t mt;
4151
4152 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4153 KASSERT((va & L3C_OFFSET) == 0,
4154 ("pmap_pv_insert_l3c: va is not aligned"));
4155 pa = VM_PAGE_TO_PHYS(m);
4156 KASSERT((pa & L3C_OFFSET) == 0,
4157 ("pmap_pv_insert_l3c: pa is not aligned"));
4158 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
4159 for (mt = m, tva = va; mt < &m[L3C_ENTRIES]; mt++, tva += L3_SIZE) {
4160 /* Pass NULL instead of lockp to disable reclamation. */
4161 pv = get_pv_entry(pmap, NULL);
4162 if (__predict_false(pv == NULL)) {
4163 while (tva > va) {
4164 mt--;
4165 tva -= L3_SIZE;
4166 pmap_pvh_free(&mt->md, pmap, tva);
4167 }
4168 return (false);
4169 }
4170 pv->pv_va = tva;
4171 TAILQ_INSERT_TAIL(&mt->md.pv_list, pv, pv_next);
4172 mt->md.pv_gen++;
4173 }
4174 return (true);
4175 }
4176
4177 static void
pmap_remove_kernel_l2(pmap_t pmap,pt_entry_t * l2,vm_offset_t va)4178 pmap_remove_kernel_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t va)
4179 {
4180 pt_entry_t newl2, oldl2 __diagused;
4181 vm_page_t ml3;
4182 vm_paddr_t ml3pa;
4183
4184 KASSERT(!VIRT_IN_DMAP(va), ("removing direct mapping of %#lx", va));
4185 KASSERT(pmap == kernel_pmap, ("pmap %p is not kernel_pmap", pmap));
4186 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4187
4188 ml3 = pmap_remove_pt_page(pmap, va);
4189 KASSERT(ml3 != NULL, ("pmap_remove_kernel_l2: missing pt page"));
4190
4191 ml3pa = VM_PAGE_TO_PHYS(ml3);
4192 newl2 = PHYS_TO_PTE(ml3pa) | L2_TABLE;
4193
4194 /*
4195 * If this page table page was unmapped by a promotion, then it
4196 * contains valid mappings. Zero it to invalidate those mappings.
4197 */
4198 if (vm_page_any_valid(ml3))
4199 pagezero(PHYS_TO_DMAP(ml3pa));
4200
4201 /*
4202 * Demote the mapping. The caller must have already invalidated the
4203 * mapping (i.e., the "break" in break-before-make).
4204 */
4205 oldl2 = pmap_load_store(l2, newl2);
4206 KASSERT(oldl2 == 0, ("%s: found existing mapping at %p: %#lx",
4207 __func__, l2, oldl2));
4208 }
4209
4210 /*
4211 * pmap_remove_l2: Do the things to unmap a level 2 superpage.
4212 */
4213 static int
pmap_remove_l2(pmap_t pmap,pt_entry_t * l2,vm_offset_t sva,pd_entry_t l1e,bool demote_kl2e,struct spglist * free,struct rwlock ** lockp)4214 pmap_remove_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t sva, pd_entry_t l1e,
4215 bool demote_kl2e, struct spglist *free, struct rwlock **lockp)
4216 {
4217 struct md_page *pvh;
4218 pt_entry_t old_l2;
4219 vm_page_t m, ml3, mt;
4220
4221 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4222 KASSERT((sva & L2_OFFSET) == 0, ("pmap_remove_l2: sva is not aligned"));
4223 old_l2 = pmap_load_clear(l2);
4224 KASSERT((old_l2 & ATTR_DESCR_MASK) == L2_BLOCK,
4225 ("pmap_remove_l2: L2e %lx is not a block mapping", old_l2));
4226
4227 /*
4228 * Since a promotion must break the 4KB page mappings before making
4229 * the 2MB page mapping, a pmap_s1_invalidate_page() suffices.
4230 */
4231 pmap_s1_invalidate_page(pmap, sva, true);
4232
4233 if (old_l2 & ATTR_SW_WIRED)
4234 pmap->pm_stats.wired_count -= L2_SIZE / PAGE_SIZE;
4235 pmap_resident_count_dec(pmap, L2_SIZE / PAGE_SIZE);
4236 if (old_l2 & ATTR_SW_MANAGED) {
4237 m = PTE_TO_VM_PAGE(old_l2);
4238 pvh = page_to_pvh(m);
4239 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
4240 pmap_pvh_free(pvh, pmap, sva);
4241 for (mt = m; mt < &m[L2_SIZE / PAGE_SIZE]; mt++) {
4242 if (pmap_pte_dirty(pmap, old_l2))
4243 vm_page_dirty(mt);
4244 if (old_l2 & ATTR_AF)
4245 vm_page_aflag_set(mt, PGA_REFERENCED);
4246 if (TAILQ_EMPTY(&mt->md.pv_list) &&
4247 TAILQ_EMPTY(&pvh->pv_list))
4248 vm_page_aflag_clear(mt, PGA_WRITEABLE);
4249 }
4250 }
4251 if (pmap != kernel_pmap) {
4252 ml3 = pmap_remove_pt_page(pmap, sva);
4253 if (ml3 != NULL) {
4254 KASSERT(vm_page_any_valid(ml3),
4255 ("pmap_remove_l2: l3 page not promoted"));
4256 pmap_resident_count_dec(pmap, 1);
4257 KASSERT(ml3->ref_count == NL3PG,
4258 ("pmap_remove_l2: l3 page ref count error"));
4259 ml3->ref_count = 0;
4260 pmap_add_delayed_free_list(ml3, free, false);
4261 }
4262 } else if (demote_kl2e) {
4263 pmap_remove_kernel_l2(pmap, l2, sva);
4264 } else {
4265 ml3 = vm_radix_lookup(&pmap->pm_root, pmap_l2_pindex(sva));
4266 if (vm_page_any_valid(ml3)) {
4267 ml3->valid = 0;
4268 pmap_zero_page(ml3);
4269 }
4270 }
4271 return (pmap_unuse_pt(pmap, sva, l1e, free));
4272 }
4273
4274 /*
4275 * pmap_remove_l3: do the things to unmap a page in a process
4276 */
4277 static int
pmap_remove_l3(pmap_t pmap,pt_entry_t * l3,vm_offset_t va,pd_entry_t l2e,struct spglist * free,struct rwlock ** lockp)4278 pmap_remove_l3(pmap_t pmap, pt_entry_t *l3, vm_offset_t va,
4279 pd_entry_t l2e, struct spglist *free, struct rwlock **lockp)
4280 {
4281 struct md_page *pvh;
4282 pt_entry_t old_l3;
4283 vm_page_t m;
4284
4285 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4286 old_l3 = pmap_load(l3);
4287 if ((old_l3 & ATTR_CONTIGUOUS) != 0)
4288 (void)pmap_demote_l3c(pmap, l3, va);
4289 old_l3 = pmap_load_clear(l3);
4290 pmap_s1_invalidate_page(pmap, va, true);
4291 if (old_l3 & ATTR_SW_WIRED)
4292 pmap->pm_stats.wired_count -= 1;
4293 pmap_resident_count_dec(pmap, 1);
4294 if (old_l3 & ATTR_SW_MANAGED) {
4295 m = PTE_TO_VM_PAGE(old_l3);
4296 if (pmap_pte_dirty(pmap, old_l3))
4297 vm_page_dirty(m);
4298 if (old_l3 & ATTR_AF)
4299 vm_page_aflag_set(m, PGA_REFERENCED);
4300 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(lockp, m);
4301 pmap_pvh_free(&m->md, pmap, va);
4302 if (TAILQ_EMPTY(&m->md.pv_list) &&
4303 (m->flags & PG_FICTITIOUS) == 0) {
4304 pvh = page_to_pvh(m);
4305 if (TAILQ_EMPTY(&pvh->pv_list))
4306 vm_page_aflag_clear(m, PGA_WRITEABLE);
4307 }
4308 }
4309 return (pmap_unuse_pt(pmap, va, l2e, free));
4310 }
4311
4312 /*
4313 * Removes the specified L3C superpage mapping. Requests TLB invalidations
4314 * to be performed by the caller through the returned "*vap". Returns true
4315 * if the level 3 table "ml3" was unmapped and added to the spglist "free".
4316 * Otherwise, returns false.
4317 */
4318 static bool
pmap_remove_l3c(pmap_t pmap,pt_entry_t * l3p,vm_offset_t va,vm_offset_t * vap,vm_offset_t va_next,vm_page_t ml3,struct spglist * free,struct rwlock ** lockp)4319 pmap_remove_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va, vm_offset_t *vap,
4320 vm_offset_t va_next, vm_page_t ml3, struct spglist *free,
4321 struct rwlock **lockp)
4322 {
4323 struct md_page *pvh;
4324 struct rwlock *new_lock;
4325 pt_entry_t first_l3e, l3e, *tl3p;
4326 vm_offset_t tva;
4327 vm_page_t m, mt;
4328
4329 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4330 KASSERT(((uintptr_t)l3p & ((L3C_ENTRIES * sizeof(pt_entry_t)) - 1)) ==
4331 0, ("pmap_remove_l3c: l3p is not aligned"));
4332 KASSERT((va & L3C_OFFSET) == 0,
4333 ("pmap_remove_l3c: va is not aligned"));
4334
4335 /*
4336 * Hardware accessed and dirty bit maintenance might only update a
4337 * single L3 entry, so we must combine the accessed and dirty bits
4338 * from this entire set of contiguous L3 entries.
4339 */
4340 first_l3e = pmap_load_clear(l3p);
4341 for (tl3p = l3p + 1; tl3p < &l3p[L3C_ENTRIES]; tl3p++) {
4342 l3e = pmap_load_clear(tl3p);
4343 KASSERT((l3e & ATTR_CONTIGUOUS) != 0,
4344 ("pmap_remove_l3c: l3e is missing ATTR_CONTIGUOUS"));
4345 if ((l3e & (ATTR_SW_DBM | ATTR_S1_AP_RW_BIT)) ==
4346 (ATTR_SW_DBM | ATTR_S1_AP(ATTR_S1_AP_RW)))
4347 first_l3e &= ~ATTR_S1_AP_RW_BIT;
4348 first_l3e |= l3e & ATTR_AF;
4349 }
4350 if ((first_l3e & ATTR_SW_WIRED) != 0)
4351 pmap->pm_stats.wired_count -= L3C_ENTRIES;
4352 pmap_resident_count_dec(pmap, L3C_ENTRIES);
4353 if ((first_l3e & ATTR_SW_MANAGED) != 0) {
4354 m = PTE_TO_VM_PAGE(first_l3e);
4355 new_lock = VM_PAGE_TO_PV_LIST_LOCK(m);
4356 if (new_lock != *lockp) {
4357 if (*lockp != NULL) {
4358 /*
4359 * Pending TLB invalidations must be
4360 * performed before the PV list lock is
4361 * released. Otherwise, a concurrent
4362 * pmap_remove_all() on a physical page
4363 * could return while a stale TLB entry
4364 * still provides access to that page.
4365 */
4366 if (*vap != va_next) {
4367 pmap_invalidate_range(pmap, *vap, va,
4368 true);
4369 *vap = va_next;
4370 }
4371 rw_wunlock(*lockp);
4372 }
4373 *lockp = new_lock;
4374 rw_wlock(*lockp);
4375 }
4376 pvh = page_to_pvh(m);
4377 for (mt = m, tva = va; mt < &m[L3C_ENTRIES]; mt++, tva +=
4378 L3_SIZE) {
4379 if (pmap_pte_dirty(pmap, first_l3e))
4380 vm_page_dirty(mt);
4381 if ((first_l3e & ATTR_AF) != 0)
4382 vm_page_aflag_set(mt, PGA_REFERENCED);
4383 pmap_pvh_free(&mt->md, pmap, tva);
4384 if (TAILQ_EMPTY(&mt->md.pv_list) &&
4385 TAILQ_EMPTY(&pvh->pv_list))
4386 vm_page_aflag_clear(mt, PGA_WRITEABLE);
4387 }
4388 }
4389 if (*vap == va_next)
4390 *vap = va;
4391 if (ml3 != NULL) {
4392 ml3->ref_count -= L3C_ENTRIES;
4393 if (ml3->ref_count == 0) {
4394 _pmap_unwire_l3(pmap, va, ml3, free);
4395 return (true);
4396 }
4397 }
4398 return (false);
4399 }
4400
4401 /*
4402 * Remove the specified range of addresses from the L3 page table that is
4403 * identified by the given L2 entry.
4404 */
4405 static void
pmap_remove_l3_range(pmap_t pmap,pd_entry_t l2e,vm_offset_t sva,vm_offset_t eva,struct spglist * free,struct rwlock ** lockp)4406 pmap_remove_l3_range(pmap_t pmap, pd_entry_t l2e, vm_offset_t sva,
4407 vm_offset_t eva, struct spglist *free, struct rwlock **lockp)
4408 {
4409 struct md_page *pvh;
4410 struct rwlock *new_lock;
4411 pt_entry_t *l3, old_l3;
4412 vm_offset_t va;
4413 vm_page_t l3pg, m;
4414
4415 KASSERT(ADDR_IS_CANONICAL(sva),
4416 ("%s: Start address not in canonical form: %lx", __func__, sva));
4417 KASSERT(ADDR_IS_CANONICAL(eva) || eva == VM_MAX_USER_ADDRESS,
4418 ("%s: End address not in canonical form: %lx", __func__, eva));
4419
4420 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4421 KASSERT(rounddown2(sva, L2_SIZE) + L2_SIZE == roundup2(eva, L2_SIZE),
4422 ("pmap_remove_l3_range: range crosses an L3 page table boundary"));
4423 l3pg = ADDR_IS_USER(sva) ? PTE_TO_VM_PAGE(l2e) : NULL;
4424 va = eva;
4425 for (l3 = pmap_l2_to_l3(&l2e, sva); sva != eva; l3++, sva += L3_SIZE) {
4426 old_l3 = pmap_load(l3);
4427 if (!pmap_l3_valid(old_l3)) {
4428 if (va != eva) {
4429 pmap_invalidate_range(pmap, va, sva, true);
4430 va = eva;
4431 }
4432 continue;
4433 }
4434 if ((old_l3 & ATTR_CONTIGUOUS) != 0) {
4435 /*
4436 * Is this entire set of contiguous L3 entries being
4437 * removed? Handle the possibility that "eva" is zero
4438 * because of address wraparound.
4439 */
4440 if ((sva & L3C_OFFSET) == 0 &&
4441 sva + L3C_OFFSET <= eva - 1) {
4442 if (pmap_remove_l3c(pmap, l3, sva, &va, eva,
4443 l3pg, free, lockp)) {
4444 /* The L3 table was unmapped. */
4445 sva += L3C_SIZE;
4446 break;
4447 }
4448 l3 += L3C_ENTRIES - 1;
4449 sva += L3C_SIZE - L3_SIZE;
4450 continue;
4451 }
4452
4453 (void)pmap_demote_l3c(pmap, l3, sva);
4454 }
4455 old_l3 = pmap_load_clear(l3);
4456 if ((old_l3 & ATTR_SW_WIRED) != 0)
4457 pmap->pm_stats.wired_count--;
4458 pmap_resident_count_dec(pmap, 1);
4459 /* Below will only be true in a realm environment. */
4460 if (PTE_TO_PHYS(old_l3) & prot_ns_shared_pa)
4461 pmap_set_protected(old_l3);
4462 if ((old_l3 & ATTR_SW_MANAGED) != 0) {
4463 m = PTE_TO_VM_PAGE(old_l3);
4464 if (pmap_pte_dirty(pmap, old_l3))
4465 vm_page_dirty(m);
4466 if ((old_l3 & ATTR_AF) != 0)
4467 vm_page_aflag_set(m, PGA_REFERENCED);
4468 new_lock = VM_PAGE_TO_PV_LIST_LOCK(m);
4469 if (new_lock != *lockp) {
4470 if (*lockp != NULL) {
4471 /*
4472 * Pending TLB invalidations must be
4473 * performed before the PV list lock is
4474 * released. Otherwise, a concurrent
4475 * pmap_remove_all() on a physical page
4476 * could return while a stale TLB entry
4477 * still provides access to that page.
4478 */
4479 if (va != eva) {
4480 pmap_invalidate_range(pmap, va,
4481 sva, true);
4482 va = eva;
4483 }
4484 rw_wunlock(*lockp);
4485 }
4486 *lockp = new_lock;
4487 rw_wlock(*lockp);
4488 }
4489 pmap_pvh_free(&m->md, pmap, sva);
4490 if (TAILQ_EMPTY(&m->md.pv_list) &&
4491 (m->flags & PG_FICTITIOUS) == 0) {
4492 pvh = page_to_pvh(m);
4493 if (TAILQ_EMPTY(&pvh->pv_list))
4494 vm_page_aflag_clear(m, PGA_WRITEABLE);
4495 }
4496 }
4497 if (l3pg != NULL && pmap_unwire_l3(pmap, sva, l3pg, free)) {
4498 /*
4499 * _pmap_unwire_l3() has already invalidated the TLB
4500 * entries at all levels for "sva". So, we need not
4501 * perform "sva += L3_SIZE;" here. Moreover, we need
4502 * not perform "va = sva;" if "sva" is at the start
4503 * of a new valid range consisting of a single page.
4504 */
4505 break;
4506 }
4507 if (va == eva)
4508 va = sva;
4509 }
4510 if (va != eva)
4511 pmap_invalidate_range(pmap, va, sva, true);
4512 }
4513
4514 static void
pmap_remove1(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,bool map_delete)4515 pmap_remove1(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, bool map_delete)
4516 {
4517 struct rwlock *lock;
4518 vm_offset_t va_next;
4519 pd_entry_t *l0, *l1, *l2;
4520 pt_entry_t l3_paddr;
4521 struct spglist free;
4522
4523 /*
4524 * Perform an unsynchronized read. This is, however, safe.
4525 */
4526 if (pmap->pm_stats.resident_count == 0)
4527 return;
4528
4529 SLIST_INIT(&free);
4530
4531 PMAP_LOCK(pmap);
4532 if (map_delete)
4533 pmap_bti_on_remove(pmap, sva, eva);
4534
4535 lock = NULL;
4536 for (; sva < eva; sva = va_next) {
4537 if (pmap->pm_stats.resident_count == 0)
4538 break;
4539
4540 l0 = pmap_l0(pmap, sva);
4541 if (pmap_load(l0) == 0) {
4542 va_next = (sva + L0_SIZE) & ~L0_OFFSET;
4543 if (va_next < sva)
4544 va_next = eva;
4545 continue;
4546 }
4547
4548 va_next = (sva + L1_SIZE) & ~L1_OFFSET;
4549 if (va_next < sva)
4550 va_next = eva;
4551 l1 = pmap_l0_to_l1(l0, sva);
4552 if (pmap_load(l1) == 0)
4553 continue;
4554 if ((pmap_load(l1) & ATTR_DESCR_MASK) == L1_BLOCK) {
4555 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
4556 KASSERT(va_next <= eva,
4557 ("partial update of non-transparent 1G page "
4558 "l1 %#lx sva %#lx eva %#lx va_next %#lx",
4559 pmap_load(l1), sva, eva, va_next));
4560 MPASS(pmap != kernel_pmap);
4561 MPASS((pmap_load(l1) & ATTR_SW_MANAGED) == 0);
4562 pmap_clear(l1);
4563 pmap_s1_invalidate_page(pmap, sva, true);
4564 pmap_resident_count_dec(pmap, L1_SIZE / PAGE_SIZE);
4565 pmap_unuse_pt(pmap, sva, pmap_load(l0), &free);
4566 continue;
4567 }
4568
4569 /*
4570 * Calculate index for next page table.
4571 */
4572 va_next = (sva + L2_SIZE) & ~L2_OFFSET;
4573 if (va_next < sva)
4574 va_next = eva;
4575
4576 l2 = pmap_l1_to_l2(l1, sva);
4577 l3_paddr = pmap_load(l2);
4578
4579 if ((l3_paddr & ATTR_DESCR_MASK) == L2_BLOCK) {
4580 if (sva + L2_SIZE == va_next && eva >= va_next) {
4581 pmap_remove_l2(pmap, l2, sva, pmap_load(l1),
4582 true, &free, &lock);
4583 continue;
4584 } else if (pmap_demote_l2_locked(pmap, l2, sva,
4585 &lock) == NULL)
4586 continue;
4587 l3_paddr = pmap_load(l2);
4588 }
4589
4590 /*
4591 * Weed out invalid mappings.
4592 */
4593 if ((l3_paddr & ATTR_DESCR_MASK) != L2_TABLE)
4594 continue;
4595
4596 /*
4597 * Limit our scan to either the end of the va represented
4598 * by the current page table page, or to the end of the
4599 * range being removed.
4600 */
4601 if (va_next > eva)
4602 va_next = eva;
4603
4604 pmap_remove_l3_range(pmap, l3_paddr, sva, va_next, &free,
4605 &lock);
4606 }
4607 if (lock != NULL)
4608 rw_wunlock(lock);
4609 PMAP_UNLOCK(pmap);
4610 vm_page_free_pages_toq(&free, true);
4611 }
4612
4613 /*
4614 * Remove the given range of addresses from the specified map.
4615 *
4616 * It is assumed that the start and end are properly
4617 * rounded to the page size.
4618 */
4619 void
pmap_remove(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)4620 pmap_remove(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
4621 {
4622 pmap_remove1(pmap, sva, eva, false);
4623 }
4624
4625 /*
4626 * Remove the given range of addresses as part of a logical unmap
4627 * operation. This has the effect of calling pmap_remove(), but
4628 * also clears any metadata that should persist for the lifetime
4629 * of a logical mapping.
4630 */
4631 void
pmap_map_delete(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)4632 pmap_map_delete(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
4633 {
4634 pmap_remove1(pmap, sva, eva, true);
4635 }
4636
4637 /*
4638 * Routine: pmap_remove_all
4639 * Function:
4640 * Removes this physical page from
4641 * all physical maps in which it resides.
4642 * Reflects back modify bits to the pager.
4643 *
4644 * Notes:
4645 * Original versions of this routine were very
4646 * inefficient because they iteratively called
4647 * pmap_remove (slow...)
4648 */
4649
4650 void
pmap_remove_all(vm_page_t m)4651 pmap_remove_all(vm_page_t m)
4652 {
4653 struct md_page *pvh;
4654 pv_entry_t pv;
4655 pmap_t pmap;
4656 struct rwlock *lock;
4657 pd_entry_t *pde, tpde;
4658 pt_entry_t *pte, tpte;
4659 vm_offset_t va;
4660 struct spglist free;
4661 int lvl, pvh_gen, md_gen;
4662
4663 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4664 ("pmap_remove_all: page %p is not managed", m));
4665 SLIST_INIT(&free);
4666 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
4667 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy : page_to_pvh(m);
4668 rw_wlock(lock);
4669 retry:
4670 while ((pv = TAILQ_FIRST(&pvh->pv_list)) != NULL) {
4671 pmap = PV_PMAP(pv);
4672 if (!PMAP_TRYLOCK(pmap)) {
4673 pvh_gen = pvh->pv_gen;
4674 rw_wunlock(lock);
4675 PMAP_LOCK(pmap);
4676 rw_wlock(lock);
4677 if (pvh_gen != pvh->pv_gen) {
4678 PMAP_UNLOCK(pmap);
4679 goto retry;
4680 }
4681 }
4682 va = pv->pv_va;
4683 pte = pmap_pte_exists(pmap, va, 2, __func__);
4684 pmap_demote_l2_locked(pmap, pte, va, &lock);
4685 PMAP_UNLOCK(pmap);
4686 }
4687 while ((pv = TAILQ_FIRST(&m->md.pv_list)) != NULL) {
4688 pmap = PV_PMAP(pv);
4689 if (!PMAP_TRYLOCK(pmap)) {
4690 pvh_gen = pvh->pv_gen;
4691 md_gen = m->md.pv_gen;
4692 rw_wunlock(lock);
4693 PMAP_LOCK(pmap);
4694 rw_wlock(lock);
4695 if (pvh_gen != pvh->pv_gen || md_gen != m->md.pv_gen) {
4696 PMAP_UNLOCK(pmap);
4697 goto retry;
4698 }
4699 }
4700 pmap_resident_count_dec(pmap, 1);
4701
4702 pde = pmap_pde(pmap, pv->pv_va, &lvl);
4703 KASSERT(pde != NULL,
4704 ("pmap_remove_all: no page directory entry found"));
4705 KASSERT(lvl == 2,
4706 ("pmap_remove_all: invalid pde level %d", lvl));
4707 tpde = pmap_load(pde);
4708
4709 pte = pmap_l2_to_l3(pde, pv->pv_va);
4710 tpte = pmap_load(pte);
4711 if ((tpte & ATTR_CONTIGUOUS) != 0)
4712 (void)pmap_demote_l3c(pmap, pte, pv->pv_va);
4713 tpte = pmap_load_clear(pte);
4714 if (tpte & ATTR_SW_WIRED)
4715 pmap->pm_stats.wired_count--;
4716 if ((tpte & ATTR_AF) != 0) {
4717 pmap_invalidate_page(pmap, pv->pv_va, true);
4718 vm_page_aflag_set(m, PGA_REFERENCED);
4719 }
4720
4721 /*
4722 * Update the vm_page_t clean and reference bits.
4723 */
4724 if (pmap_pte_dirty(pmap, tpte))
4725 vm_page_dirty(m);
4726 pmap_unuse_pt(pmap, pv->pv_va, tpde, &free);
4727 TAILQ_REMOVE(&m->md.pv_list, pv, pv_next);
4728 m->md.pv_gen++;
4729 free_pv_entry(pmap, pv);
4730 PMAP_UNLOCK(pmap);
4731 }
4732 vm_page_aflag_clear(m, PGA_WRITEABLE);
4733 rw_wunlock(lock);
4734 vm_page_free_pages_toq(&free, true);
4735 }
4736
4737 /*
4738 * Masks and sets bits in a level 2 page table entries in the specified pmap
4739 */
4740 static void
pmap_protect_l2(pmap_t pmap,pt_entry_t * l2,vm_offset_t sva,pt_entry_t mask,pt_entry_t nbits)4741 pmap_protect_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t sva, pt_entry_t mask,
4742 pt_entry_t nbits)
4743 {
4744 pd_entry_t old_l2;
4745 vm_page_t m, mt;
4746
4747 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4748 PMAP_ASSERT_STAGE1(pmap);
4749 KASSERT((sva & L2_OFFSET) == 0,
4750 ("pmap_protect_l2: sva is not 2mpage aligned"));
4751 old_l2 = pmap_load(l2);
4752 KASSERT((old_l2 & ATTR_DESCR_MASK) == L2_BLOCK,
4753 ("pmap_protect_l2: L2e %lx is not a block mapping", old_l2));
4754
4755 /*
4756 * Return if the L2 entry already has the desired access restrictions
4757 * in place.
4758 */
4759 if ((old_l2 & mask) == nbits)
4760 return;
4761
4762 while (!atomic_fcmpset_64(l2, &old_l2, (old_l2 & ~mask) | nbits))
4763 cpu_spinwait();
4764
4765 /*
4766 * When a dirty read/write superpage mapping is write protected,
4767 * update the dirty field of each of the superpage's constituent 4KB
4768 * pages.
4769 */
4770 if ((old_l2 & ATTR_SW_MANAGED) != 0 &&
4771 (nbits & ATTR_S1_AP(ATTR_S1_AP_RO)) != 0 &&
4772 pmap_pte_dirty(pmap, old_l2)) {
4773 m = PTE_TO_VM_PAGE(old_l2);
4774 for (mt = m; mt < &m[L2_SIZE / PAGE_SIZE]; mt++)
4775 vm_page_dirty(mt);
4776 }
4777
4778 /*
4779 * Since a promotion must break the 4KB page mappings before making
4780 * the 2MB page mapping, a pmap_s1_invalidate_page() suffices.
4781 */
4782 pmap_s1_invalidate_page(pmap, sva, true);
4783 }
4784
4785 /*
4786 * Masks and sets bits in the specified L3C superpage mapping.
4787 *
4788 * Requests TLB invalidations to be performed by the caller through the
4789 * returned "*vap".
4790 */
4791 static void
pmap_mask_set_l3c(pmap_t pmap,pt_entry_t * l3p,vm_offset_t va,vm_offset_t * vap,vm_offset_t va_next,pt_entry_t mask,pt_entry_t nbits)4792 pmap_mask_set_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va,
4793 vm_offset_t *vap, vm_offset_t va_next, pt_entry_t mask, pt_entry_t nbits)
4794 {
4795 pt_entry_t l3e, *tl3p;
4796 vm_page_t m, mt;
4797 bool dirty;
4798
4799 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4800 KASSERT(((uintptr_t)l3p & ((L3C_ENTRIES * sizeof(pt_entry_t)) - 1)) ==
4801 0, ("pmap_mask_set_l3c: l3p is not aligned"));
4802 KASSERT((va & L3C_OFFSET) == 0,
4803 ("pmap_mask_set_l3c: va is not aligned"));
4804 dirty = false;
4805 for (tl3p = l3p; tl3p < &l3p[L3C_ENTRIES]; tl3p++) {
4806 l3e = pmap_load(tl3p);
4807 KASSERT((l3e & ATTR_CONTIGUOUS) != 0,
4808 ("pmap_mask_set_l3c: l3e is missing ATTR_CONTIGUOUS"));
4809 while (!atomic_fcmpset_64(tl3p, &l3e, (l3e & ~mask) | nbits))
4810 cpu_spinwait();
4811 if ((l3e & (ATTR_SW_DBM | ATTR_S1_AP_RW_BIT)) ==
4812 (ATTR_SW_DBM | ATTR_S1_AP(ATTR_S1_AP_RW)))
4813 dirty = true;
4814 }
4815
4816 /*
4817 * When a dirty read/write superpage mapping is write protected,
4818 * update the dirty field of each of the superpage's constituent 4KB
4819 * pages.
4820 */
4821 if ((l3e & ATTR_SW_MANAGED) != 0 &&
4822 (nbits & ATTR_S1_AP(ATTR_S1_AP_RO)) != 0 &&
4823 dirty) {
4824 m = PTE_TO_VM_PAGE(pmap_load(l3p));
4825 for (mt = m; mt < &m[L3C_ENTRIES]; mt++)
4826 vm_page_dirty(mt);
4827 }
4828
4829 if (*vap == va_next)
4830 *vap = va;
4831 }
4832
4833 /*
4834 * Masks and sets bits in last level page table entries in the specified
4835 * pmap and range
4836 */
4837 static void
pmap_mask_set_locked(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,pt_entry_t mask,pt_entry_t nbits,bool invalidate)4838 pmap_mask_set_locked(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, pt_entry_t mask,
4839 pt_entry_t nbits, bool invalidate)
4840 {
4841 vm_offset_t va, va_next;
4842 pd_entry_t *l0, *l1, *l2;
4843 pt_entry_t *l3p, l3;
4844
4845 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
4846 for (; sva < eva; sva = va_next) {
4847 l0 = pmap_l0(pmap, sva);
4848 if (pmap_load(l0) == 0) {
4849 va_next = (sva + L0_SIZE) & ~L0_OFFSET;
4850 if (va_next < sva)
4851 va_next = eva;
4852 continue;
4853 }
4854
4855 va_next = (sva + L1_SIZE) & ~L1_OFFSET;
4856 if (va_next < sva)
4857 va_next = eva;
4858 l1 = pmap_l0_to_l1(l0, sva);
4859 if (pmap_load(l1) == 0)
4860 continue;
4861 if ((pmap_load(l1) & ATTR_DESCR_MASK) == L1_BLOCK) {
4862 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
4863 KASSERT(va_next <= eva,
4864 ("partial update of non-transparent 1G page "
4865 "l1 %#lx sva %#lx eva %#lx va_next %#lx",
4866 pmap_load(l1), sva, eva, va_next));
4867 MPASS((pmap_load(l1) & ATTR_SW_MANAGED) == 0);
4868 if ((pmap_load(l1) & mask) != nbits) {
4869 pmap_store(l1, (pmap_load(l1) & ~mask) | nbits);
4870 if (invalidate)
4871 pmap_s1_invalidate_page(pmap, sva, true);
4872 }
4873 continue;
4874 }
4875
4876 va_next = (sva + L2_SIZE) & ~L2_OFFSET;
4877 if (va_next < sva)
4878 va_next = eva;
4879
4880 l2 = pmap_l1_to_l2(l1, sva);
4881 if (pmap_load(l2) == 0)
4882 continue;
4883
4884 if ((pmap_load(l2) & ATTR_DESCR_MASK) == L2_BLOCK) {
4885 if (sva + L2_SIZE == va_next && eva >= va_next) {
4886 pmap_protect_l2(pmap, l2, sva, mask, nbits);
4887 continue;
4888 } else if ((pmap_load(l2) & mask) == nbits ||
4889 pmap_demote_l2(pmap, l2, sva) == NULL)
4890 continue;
4891 }
4892 KASSERT((pmap_load(l2) & ATTR_DESCR_MASK) == L2_TABLE,
4893 ("pmap_protect: Invalid L2 entry after demotion"));
4894
4895 if (va_next > eva)
4896 va_next = eva;
4897
4898 va = va_next;
4899 for (l3p = pmap_l2_to_l3(l2, sva); sva != va_next; l3p++,
4900 sva += L3_SIZE) {
4901 l3 = pmap_load(l3p);
4902
4903 /*
4904 * Go to the next L3 entry if the current one is
4905 * invalid or already has the desired access
4906 * restrictions in place. (The latter case occurs
4907 * frequently. For example, in a "buildworld"
4908 * workload, almost 1 out of 4 L3 entries already
4909 * have the desired restrictions.)
4910 */
4911 if (!pmap_l3_valid(l3) || (l3 & mask) == nbits) {
4912 if (va != va_next) {
4913 if (invalidate)
4914 pmap_s1_invalidate_range(pmap,
4915 va, sva, true);
4916 va = va_next;
4917 }
4918 if ((l3 & ATTR_CONTIGUOUS) != 0) {
4919 /*
4920 * Does this L3C page extend beyond
4921 * the requested range? Handle the
4922 * possibility that "va_next" is zero.
4923 */
4924 if ((sva | L3C_OFFSET) > va_next - 1)
4925 break;
4926
4927 /*
4928 * Skip ahead to the last L3_PAGE
4929 * within this L3C page.
4930 */
4931 l3p = (pt_entry_t *)((uintptr_t)l3p |
4932 ((L3C_ENTRIES - 1) *
4933 sizeof(pt_entry_t)));
4934 sva |= L3C_SIZE - L3_SIZE;
4935 }
4936 continue;
4937 }
4938
4939 if ((l3 & ATTR_CONTIGUOUS) != 0) {
4940 /*
4941 * Is this entire set of contiguous L3 entries
4942 * being protected? Handle the possibility
4943 * that "va_next" is zero because of address
4944 * wraparound.
4945 */
4946 if ((sva & L3C_OFFSET) == 0 &&
4947 sva + L3C_OFFSET <= va_next - 1) {
4948 pmap_mask_set_l3c(pmap, l3p, sva, &va,
4949 va_next, mask, nbits);
4950 l3p += L3C_ENTRIES - 1;
4951 sva += L3C_SIZE - L3_SIZE;
4952 continue;
4953 }
4954
4955 (void)pmap_demote_l3c(pmap, l3p, sva);
4956
4957 /*
4958 * The L3 entry's accessed bit may have changed.
4959 */
4960 l3 = pmap_load(l3p);
4961 }
4962 while (!atomic_fcmpset_64(l3p, &l3, (l3 & ~mask) |
4963 nbits))
4964 cpu_spinwait();
4965
4966 /*
4967 * When a dirty read/write mapping is write protected,
4968 * update the page's dirty field.
4969 */
4970 if ((l3 & ATTR_SW_MANAGED) != 0 &&
4971 (nbits & ATTR_S1_AP(ATTR_S1_AP_RO)) != 0 &&
4972 pmap_pte_dirty(pmap, l3))
4973 vm_page_dirty(PTE_TO_VM_PAGE(l3));
4974
4975 if (va == va_next)
4976 va = sva;
4977 }
4978 if (va != va_next && invalidate)
4979 pmap_s1_invalidate_range(pmap, va, sva, true);
4980 }
4981 }
4982
4983 static void
pmap_mask_set(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,pt_entry_t mask,pt_entry_t nbits,bool invalidate)4984 pmap_mask_set(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, pt_entry_t mask,
4985 pt_entry_t nbits, bool invalidate)
4986 {
4987 PMAP_LOCK(pmap);
4988 pmap_mask_set_locked(pmap, sva, eva, mask, nbits, invalidate);
4989 PMAP_UNLOCK(pmap);
4990 }
4991
4992 /*
4993 * Set the physical protection on the
4994 * specified range of this map as requested.
4995 */
4996 void
pmap_protect(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,vm_prot_t prot)4997 pmap_protect(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, vm_prot_t prot)
4998 {
4999 pt_entry_t mask, nbits;
5000
5001 PMAP_ASSERT_STAGE1(pmap);
5002 KASSERT((prot & ~VM_PROT_ALL) == 0, ("invalid prot %x", prot));
5003 if (prot == VM_PROT_NONE) {
5004 pmap_remove(pmap, sva, eva);
5005 return;
5006 }
5007
5008 mask = nbits = 0;
5009 if ((prot & VM_PROT_WRITE) == 0) {
5010 mask |= ATTR_S1_AP_RW_BIT | ATTR_SW_DBM;
5011 nbits |= ATTR_S1_AP(ATTR_S1_AP_RO);
5012 }
5013 if ((prot & VM_PROT_EXECUTE) == 0) {
5014 mask |= ATTR_S1_XN;
5015 nbits |= ATTR_S1_XN;
5016 }
5017 if (pmap == kernel_pmap) {
5018 mask |= ATTR_KERN_GP;
5019 nbits |= ATTR_KERN_GP;
5020 }
5021 if (mask == 0)
5022 return;
5023
5024 pmap_mask_set(pmap, sva, eva, mask, nbits, true);
5025 }
5026
5027 void
pmap_disable_promotion(vm_offset_t sva,vm_size_t size)5028 pmap_disable_promotion(vm_offset_t sva, vm_size_t size)
5029 {
5030
5031 MPASS((sva & L3_OFFSET) == 0);
5032 MPASS(((sva + size) & L3_OFFSET) == 0);
5033
5034 pmap_mask_set(kernel_pmap, sva, sva + size, ATTR_SW_NO_PROMOTE,
5035 ATTR_SW_NO_PROMOTE, false);
5036 }
5037
5038 /*
5039 * Inserts the specified page table page into the specified pmap's collection
5040 * of idle page table pages. Each of a pmap's page table pages is responsible
5041 * for mapping a distinct range of virtual addresses. The pmap's collection is
5042 * ordered by this virtual address range.
5043 *
5044 * If "promoted" is false, then the page table page "mpte" must be zero filled;
5045 * "mpte"'s valid field will be set to 0.
5046 *
5047 * If "promoted" is true and "all_l3e_AF_set" is false, then "mpte" must
5048 * contain valid mappings with identical attributes except for ATTR_AF;
5049 * "mpte"'s valid field will be set to 1.
5050 *
5051 * If "promoted" and "all_l3e_AF_set" are both true, then "mpte" must contain
5052 * valid mappings with identical attributes including ATTR_AF; "mpte"'s valid
5053 * field will be set to VM_PAGE_BITS_ALL.
5054 */
5055 static __inline int
pmap_insert_pt_page(pmap_t pmap,vm_page_t mpte,bool promoted,bool all_l3e_AF_set)5056 pmap_insert_pt_page(pmap_t pmap, vm_page_t mpte, bool promoted,
5057 bool all_l3e_AF_set)
5058 {
5059
5060 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5061 KASSERT(promoted || !all_l3e_AF_set,
5062 ("a zero-filled PTP can't have ATTR_AF set in every PTE"));
5063 mpte->valid = promoted ? (all_l3e_AF_set ? VM_PAGE_BITS_ALL : 1) : 0;
5064 return (vm_radix_insert(&pmap->pm_root, mpte));
5065 }
5066
5067 /*
5068 * Removes the page table page mapping the specified virtual address from the
5069 * specified pmap's collection of idle page table pages, and returns it.
5070 * Otherwise, returns NULL if there is no page table page corresponding to the
5071 * specified virtual address.
5072 */
5073 static __inline vm_page_t
pmap_remove_pt_page(pmap_t pmap,vm_offset_t va)5074 pmap_remove_pt_page(pmap_t pmap, vm_offset_t va)
5075 {
5076
5077 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5078 return (vm_radix_remove(&pmap->pm_root, pmap_l2_pindex(va)));
5079 }
5080
5081 /*
5082 * Performs a break-before-make update of a pmap entry. This is needed when
5083 * either promoting or demoting pages to ensure the TLB doesn't get into an
5084 * inconsistent state. The caller must pass false for "final_only" when
5085 * promoting, because the TLB might be caching an intermediate entry that
5086 * references the L{1,2}_TABLE that is being replaced. In contrast, when
5087 * demoting or the PTE's type isn't changing, no cached intermediate entry
5088 * needs to change, so the caller should pass true as an optimization.
5089 */
5090 static __always_inline void
pmap_update_entry(pmap_t pmap,pd_entry_t * ptep,pd_entry_t newpte,vm_offset_t va,vm_size_t size,bool final_only)5091 pmap_update_entry(pmap_t pmap, pd_entry_t *ptep, pd_entry_t newpte,
5092 vm_offset_t va, vm_size_t size, bool final_only)
5093 {
5094 register_t intr;
5095
5096 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5097 KASSERT((newpte & ATTR_SW_NO_PROMOTE) == 0,
5098 ("%s: Updating non-promote pte", __func__));
5099
5100 /*
5101 * Ensure we don't get switched out with the page table in an
5102 * inconsistent state. We also need to ensure no interrupts fire
5103 * as they may make use of an address we are about to invalidate.
5104 */
5105 intr = intr_disable();
5106
5107 /*
5108 * Clear the old mapping's valid bit, but leave the rest of the entry
5109 * unchanged, so that a lockless, concurrent pmap_kextract() can still
5110 * lookup the physical address.
5111 */
5112 pmap_clear_bits(ptep, ATTR_DESCR_VALID);
5113
5114 /*
5115 * We always inline pmap_update_entry() so that constant propagation
5116 * and dead code elimination will specialize the following code.
5117 */
5118 pmap_s1_invalidate_range(pmap, va, va + size, final_only);
5119
5120 /* Create the new mapping */
5121 pmap_store(ptep, newpte);
5122 dsb(ishst);
5123
5124 intr_restore(intr);
5125 }
5126
5127 /*
5128 * Performs a break-before-make update of an ATTR_CONTIGUOUS mapping.
5129 */
5130 static void __nosanitizecoverage
pmap_update_strided(pmap_t pmap,pd_entry_t * ptep,pd_entry_t * ptep_end,pd_entry_t newpte,vm_offset_t va,vm_offset_t stride,vm_size_t size)5131 pmap_update_strided(pmap_t pmap, pd_entry_t *ptep, pd_entry_t *ptep_end,
5132 pd_entry_t newpte, vm_offset_t va, vm_offset_t stride, vm_size_t size)
5133 {
5134 pd_entry_t *lip;
5135 register_t intr;
5136
5137 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5138 KASSERT((newpte & ATTR_SW_NO_PROMOTE) == 0,
5139 ("%s: Updating non-promote pte", __func__));
5140
5141 /*
5142 * Ensure we don't get switched out with the page table in an
5143 * inconsistent state. We also need to ensure no interrupts fire
5144 * as they may make use of an address we are about to invalidate.
5145 */
5146 intr = intr_disable();
5147
5148 /*
5149 * Clear the old mapping's valid bits, but leave the rest of each
5150 * entry unchanged, so that a lockless, concurrent pmap_kextract() can
5151 * still lookup the physical address.
5152 */
5153 for (lip = ptep; lip < ptep_end; lip++)
5154 pmap_clear_bits(lip, ATTR_DESCR_VALID);
5155
5156 /* Only final entries are changing. */
5157 pmap_s1_invalidate_strided(pmap, va, va + size, stride, true);
5158
5159 /* Create the new mapping. */
5160 for (lip = ptep; lip < ptep_end; lip++) {
5161 pmap_store(lip, newpte);
5162 newpte += stride;
5163 }
5164 dsb(ishst);
5165
5166 intr_restore(intr);
5167 }
5168
5169 #if VM_NRESERVLEVEL > 0
5170 /*
5171 * After promotion from 512 4KB page mappings to a single 2MB page mapping,
5172 * replace the many pv entries for the 4KB page mappings by a single pv entry
5173 * for the 2MB page mapping.
5174 */
5175 static void
pmap_pv_promote_l2(pmap_t pmap,vm_offset_t va,vm_paddr_t pa,struct rwlock ** lockp)5176 pmap_pv_promote_l2(pmap_t pmap, vm_offset_t va, vm_paddr_t pa,
5177 struct rwlock **lockp)
5178 {
5179 struct md_page *pvh;
5180 pv_entry_t pv;
5181 vm_offset_t va_last;
5182 vm_page_t m;
5183
5184 KASSERT((pa & L2_OFFSET) == 0,
5185 ("pmap_pv_promote_l2: pa is not 2mpage aligned"));
5186 CHANGE_PV_LIST_LOCK_TO_PHYS(lockp, pa);
5187
5188 /*
5189 * Transfer the first page's pv entry for this mapping to the 2mpage's
5190 * pv list. Aside from avoiding the cost of a call to get_pv_entry(),
5191 * a transfer avoids the possibility that get_pv_entry() calls
5192 * reclaim_pv_chunk() and that reclaim_pv_chunk() removes one of the
5193 * mappings that is being promoted.
5194 */
5195 m = PHYS_TO_VM_PAGE(pa);
5196 va = va & ~L2_OFFSET;
5197 pv = pmap_pvh_remove(&m->md, pmap, va);
5198 KASSERT(pv != NULL, ("pmap_pv_promote_l2: pv not found"));
5199 pvh = page_to_pvh(m);
5200 TAILQ_INSERT_TAIL(&pvh->pv_list, pv, pv_next);
5201 pvh->pv_gen++;
5202 /* Free the remaining NPTEPG - 1 pv entries. */
5203 va_last = va + L2_SIZE - PAGE_SIZE;
5204 do {
5205 m++;
5206 va += PAGE_SIZE;
5207 pmap_pvh_free(&m->md, pmap, va);
5208 } while (va < va_last);
5209 }
5210
5211 /*
5212 * Tries to promote the 512, contiguous 4KB page mappings that are within a
5213 * single level 2 table entry to a single 2MB page mapping. For promotion
5214 * to occur, two conditions must be met: (1) the 4KB page mappings must map
5215 * aligned, contiguous physical memory and (2) the 4KB page mappings must have
5216 * identical characteristics.
5217 */
5218 static bool
pmap_promote_l2(pmap_t pmap,pd_entry_t * l2,vm_offset_t va,vm_page_t mpte,struct rwlock ** lockp)5219 pmap_promote_l2(pmap_t pmap, pd_entry_t *l2, vm_offset_t va, vm_page_t mpte,
5220 struct rwlock **lockp)
5221 {
5222 pt_entry_t all_l3e_AF, *firstl3, *l3, newl2, oldl3, pa;
5223
5224 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5225
5226 /*
5227 * Currently, this function only supports promotion on stage 1 pmaps
5228 * because it tests stage 1 specific fields and performs a break-
5229 * before-make sequence that is incorrect for stage 2 pmaps.
5230 */
5231 if (pmap->pm_stage != PM_STAGE1 || !pmap_ps_enabled(pmap))
5232 return (false);
5233
5234 /*
5235 * Examine the first L3E in the specified PTP. Abort if this L3E is
5236 * ineligible for promotion...
5237 */
5238 firstl3 = PHYS_TO_DMAP(PTE_TO_PHYS(pmap_load(l2)));
5239 newl2 = pmap_load(firstl3);
5240 if ((newl2 & ATTR_SW_NO_PROMOTE) != 0)
5241 return (false);
5242 /* ... is not the first physical page within an L2 block */
5243 if ((PTE_TO_PHYS(newl2) & L2_OFFSET) != 0 ||
5244 ((newl2 & ATTR_DESCR_MASK) != L3_PAGE)) { /* ... or is invalid */
5245 counter_u64_add(pmap_l2_p_failures, 1);
5246 CTR2(KTR_PMAP, "pmap_promote_l2: failure for va %#lx"
5247 " in pmap %p", va, pmap);
5248 return (false);
5249 }
5250
5251 /*
5252 * Both here and in the below "for" loop, to allow for repromotion
5253 * after MADV_FREE, conditionally write protect a clean L3E before
5254 * possibly aborting the promotion due to other L3E attributes. Why?
5255 * Suppose that MADV_FREE is applied to a part of a superpage, the
5256 * address range [S, E). pmap_advise() will demote the superpage
5257 * mapping, destroy the 4KB page mapping at the end of [S, E), and
5258 * set AP_RO and clear AF in the L3Es for the rest of [S, E). Later,
5259 * imagine that the memory in [S, E) is recycled, but the last 4KB
5260 * page in [S, E) is not the last to be rewritten, or simply accessed.
5261 * In other words, there is still a 4KB page in [S, E), call it P,
5262 * that is writeable but AP_RO is set and AF is clear in P's L3E.
5263 * Unless we write protect P before aborting the promotion, if and
5264 * when P is finally rewritten, there won't be a page fault to trigger
5265 * repromotion.
5266 */
5267 setl2:
5268 if ((newl2 & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
5269 (ATTR_S1_AP(ATTR_S1_AP_RO) | ATTR_SW_DBM)) {
5270 /*
5271 * When the mapping is clean, i.e., ATTR_S1_AP_RO is set,
5272 * ATTR_SW_DBM can be cleared without a TLB invalidation.
5273 */
5274 if (!atomic_fcmpset_64(firstl3, &newl2, newl2 & ~ATTR_SW_DBM))
5275 goto setl2;
5276 newl2 &= ~ATTR_SW_DBM;
5277 CTR2(KTR_PMAP, "pmap_promote_l2: protect for va %#lx"
5278 " in pmap %p", va & ~L2_OFFSET, pmap);
5279 }
5280
5281 /*
5282 * Examine each of the other L3Es in the specified PTP. Abort if this
5283 * L3E maps an unexpected 4KB physical page or does not have identical
5284 * characteristics to the first L3E. If ATTR_AF is not set in every
5285 * PTE, then request that the PTP be refilled on demotion.
5286 */
5287 all_l3e_AF = newl2 & ATTR_AF;
5288 pa = (PTE_TO_PHYS(newl2) | (newl2 & ATTR_DESCR_MASK))
5289 + L2_SIZE - PAGE_SIZE;
5290 for (l3 = firstl3 + NL3PG - 1; l3 > firstl3; l3--) {
5291 oldl3 = pmap_load(l3);
5292 if ((PTE_TO_PHYS(oldl3) | (oldl3 & ATTR_DESCR_MASK)) != pa) {
5293 counter_u64_add(pmap_l2_p_failures, 1);
5294 CTR2(KTR_PMAP, "pmap_promote_l2: failure for va %#lx"
5295 " in pmap %p", va, pmap);
5296 return (false);
5297 }
5298 setl3:
5299 if ((oldl3 & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
5300 (ATTR_S1_AP(ATTR_S1_AP_RO) | ATTR_SW_DBM)) {
5301 /*
5302 * When the mapping is clean, i.e., ATTR_S1_AP_RO is
5303 * set, ATTR_SW_DBM can be cleared without a TLB
5304 * invalidation.
5305 */
5306 if (!atomic_fcmpset_64(l3, &oldl3, oldl3 &
5307 ~ATTR_SW_DBM))
5308 goto setl3;
5309 oldl3 &= ~ATTR_SW_DBM;
5310 }
5311 if ((oldl3 & ATTR_PROMOTE) != (newl2 & ATTR_PROMOTE)) {
5312 counter_u64_add(pmap_l2_p_failures, 1);
5313 CTR2(KTR_PMAP, "pmap_promote_l2: failure for va %#lx"
5314 " in pmap %p", va, pmap);
5315 return (false);
5316 }
5317 all_l3e_AF &= oldl3;
5318 pa -= PAGE_SIZE;
5319 }
5320
5321 /*
5322 * Unless all PTEs have ATTR_AF set, clear it from the superpage
5323 * mapping, so that promotions triggered by speculative mappings,
5324 * such as pmap_enter_quick(), don't automatically mark the
5325 * underlying pages as referenced.
5326 */
5327 newl2 &= ~(ATTR_CONTIGUOUS | ATTR_AF | ATTR_DESCR_MASK) | all_l3e_AF;
5328
5329 /*
5330 * Save the page table page in its current state until the L2
5331 * mapping the superpage is demoted by pmap_demote_l2() or
5332 * destroyed by pmap_remove_l3().
5333 */
5334 if (mpte == NULL)
5335 mpte = PTE_TO_VM_PAGE(pmap_load(l2));
5336 KASSERT(mpte >= vm_page_array &&
5337 mpte < &vm_page_array[vm_page_array_size],
5338 ("pmap_promote_l2: page table page is out of range"));
5339 KASSERT(mpte->pindex == pmap_l2_pindex(va),
5340 ("pmap_promote_l2: page table page's pindex is wrong"));
5341 if (pmap_insert_pt_page(pmap, mpte, true, all_l3e_AF != 0)) {
5342 counter_u64_add(pmap_l2_p_failures, 1);
5343 CTR2(KTR_PMAP,
5344 "pmap_promote_l2: failure for va %#lx in pmap %p", va,
5345 pmap);
5346 return (false);
5347 }
5348
5349 if ((newl2 & ATTR_SW_MANAGED) != 0)
5350 pmap_pv_promote_l2(pmap, va, PTE_TO_PHYS(newl2), lockp);
5351
5352 pmap_update_entry(pmap, l2, newl2 | L2_BLOCK, va & ~L2_OFFSET, L2_SIZE,
5353 false);
5354
5355 counter_u64_add(pmap_l2_promotions, 1);
5356 CTR2(KTR_PMAP, "pmap_promote_l2: success for va %#lx in pmap %p", va,
5357 pmap);
5358 return (true);
5359 }
5360
5361 /*
5362 * Tries to promote an aligned, contiguous set of base page mappings to a
5363 * single L3C page mapping. For promotion to occur, two conditions must be
5364 * met: (1) the base page mappings must map aligned, contiguous physical
5365 * memory and (2) the base page mappings must have identical characteristics
5366 * except for the accessed flag.
5367 */
5368 static bool
pmap_promote_l3c(pmap_t pmap,pd_entry_t * l3p,vm_offset_t va)5369 pmap_promote_l3c(pmap_t pmap, pd_entry_t *l3p, vm_offset_t va)
5370 {
5371 pd_entry_t all_l3e_AF, firstl3c, *l3, oldl3, pa;
5372
5373 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5374
5375 /*
5376 * Currently, this function only supports promotion on stage 1 pmaps
5377 * because it tests stage 1 specific fields and performs a break-
5378 * before-make sequence that is incorrect for stage 2 pmaps.
5379 */
5380 if (pmap->pm_stage != PM_STAGE1 || !pmap_ps_enabled(pmap))
5381 return (false);
5382
5383 /*
5384 * Compute the address of the first L3 entry in the superpage
5385 * candidate.
5386 */
5387 l3p = (pt_entry_t *)((uintptr_t)l3p & ~((L3C_ENTRIES *
5388 sizeof(pt_entry_t)) - 1));
5389
5390 firstl3c = pmap_load(l3p);
5391
5392 /*
5393 * Examine the first L3 entry. Abort if this L3E is ineligible for
5394 * promotion...
5395 */
5396 if ((firstl3c & ATTR_SW_NO_PROMOTE) != 0)
5397 return (false);
5398 /* ...is not properly aligned... */
5399 if ((PTE_TO_PHYS(firstl3c) & L3C_OFFSET) != 0 ||
5400 (firstl3c & ATTR_DESCR_MASK) != L3_PAGE) { /* ...or is invalid. */
5401 counter_u64_add(pmap_l3c_p_failures, 1);
5402 CTR2(KTR_PMAP, "pmap_promote_l3c: failure for va %#lx"
5403 " in pmap %p", va, pmap);
5404 return (false);
5405 }
5406
5407 /*
5408 * If the first L3 entry is a clean read-write mapping, convert it
5409 * to a read-only mapping. See pmap_promote_l2() for the rationale.
5410 */
5411 set_first:
5412 if ((firstl3c & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
5413 (ATTR_S1_AP(ATTR_S1_AP_RO) | ATTR_SW_DBM)) {
5414 /*
5415 * When the mapping is clean, i.e., ATTR_S1_AP_RO is set,
5416 * ATTR_SW_DBM can be cleared without a TLB invalidation.
5417 */
5418 if (!atomic_fcmpset_64(l3p, &firstl3c, firstl3c & ~ATTR_SW_DBM))
5419 goto set_first;
5420 firstl3c &= ~ATTR_SW_DBM;
5421 CTR2(KTR_PMAP, "pmap_promote_l3c: protect for va %#lx"
5422 " in pmap %p", va & ~L3C_OFFSET, pmap);
5423 }
5424
5425 /*
5426 * Check that the rest of the L3 entries are compatible with the first,
5427 * and convert clean read-write mappings to read-only mappings.
5428 */
5429 all_l3e_AF = firstl3c & ATTR_AF;
5430 pa = (PTE_TO_PHYS(firstl3c) | (firstl3c & ATTR_DESCR_MASK)) +
5431 L3C_SIZE - PAGE_SIZE;
5432 for (l3 = l3p + L3C_ENTRIES - 1; l3 > l3p; l3--) {
5433 oldl3 = pmap_load(l3);
5434 if ((PTE_TO_PHYS(oldl3) | (oldl3 & ATTR_DESCR_MASK)) != pa) {
5435 counter_u64_add(pmap_l3c_p_failures, 1);
5436 CTR2(KTR_PMAP, "pmap_promote_l3c: failure for va %#lx"
5437 " in pmap %p", va, pmap);
5438 return (false);
5439 }
5440 set_l3:
5441 if ((oldl3 & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
5442 (ATTR_S1_AP(ATTR_S1_AP_RO) | ATTR_SW_DBM)) {
5443 /*
5444 * When the mapping is clean, i.e., ATTR_S1_AP_RO is
5445 * set, ATTR_SW_DBM can be cleared without a TLB
5446 * invalidation.
5447 */
5448 if (!atomic_fcmpset_64(l3, &oldl3, oldl3 &
5449 ~ATTR_SW_DBM))
5450 goto set_l3;
5451 oldl3 &= ~ATTR_SW_DBM;
5452 CTR2(KTR_PMAP, "pmap_promote_l3c: protect for va %#lx"
5453 " in pmap %p", (oldl3 & ~ATTR_MASK & L3C_OFFSET) |
5454 (va & ~L3C_OFFSET), pmap);
5455 }
5456 if ((oldl3 & ATTR_PROMOTE) != (firstl3c & ATTR_PROMOTE)) {
5457 counter_u64_add(pmap_l3c_p_failures, 1);
5458 CTR2(KTR_PMAP, "pmap_promote_l3c: failure for va %#lx"
5459 " in pmap %p", va, pmap);
5460 return (false);
5461 }
5462 all_l3e_AF &= oldl3;
5463 pa -= PAGE_SIZE;
5464 }
5465
5466 /*
5467 * Unless all PTEs have ATTR_AF set, clear it from the superpage
5468 * mapping, so that promotions triggered by speculative mappings,
5469 * such as pmap_enter_quick(), don't automatically mark the
5470 * underlying pages as referenced.
5471 */
5472 firstl3c &= ~ATTR_AF | all_l3e_AF;
5473
5474 /*
5475 * Remake the mappings with the contiguous bit set.
5476 */
5477 pmap_update_strided(pmap, l3p, l3p + L3C_ENTRIES, firstl3c |
5478 ATTR_CONTIGUOUS, va & ~L3C_OFFSET, L3_SIZE, L3C_SIZE);
5479
5480 counter_u64_add(pmap_l3c_promotions, 1);
5481 CTR2(KTR_PMAP, "pmap_promote_l3c: success for va %#lx in pmap %p", va,
5482 pmap);
5483 return (true);
5484 }
5485 #endif /* VM_NRESERVLEVEL > 0 */
5486
5487 static int
pmap_enter_largepage(pmap_t pmap,vm_offset_t va,pt_entry_t pte,int flags,int psind)5488 pmap_enter_largepage(pmap_t pmap, vm_offset_t va, pt_entry_t pte, int flags,
5489 int psind)
5490 {
5491 pd_entry_t *l0p, *l1p, *l2p, *l3p, newpte, origpte, *tl3p;
5492 vm_page_t mp;
5493
5494 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
5495 KASSERT(psind > 0 && psind < MAXPAGESIZES,
5496 ("psind %d unexpected", psind));
5497 KASSERT((PTE_TO_PHYS(pte) & (pagesizes[psind] - 1)) == 0,
5498 ("unaligned phys address %#lx pte %#lx psind %d",
5499 PTE_TO_PHYS(pte), pte, psind));
5500
5501 restart:
5502 newpte = pte;
5503 if (!pmap_bti_same(pmap, va, va + pagesizes[psind], &newpte))
5504 return (KERN_PROTECTION_FAILURE);
5505 if (psind == 3) {
5506 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
5507
5508 KASSERT(pagesizes[psind] == L1_SIZE,
5509 ("pagesizes[%d] != L1_SIZE", psind));
5510 l0p = pmap_l0(pmap, va);
5511 if ((pmap_load(l0p) & ATTR_DESCR_VALID) == 0) {
5512 mp = _pmap_alloc_l3(pmap, pmap_l0_pindex(va), NULL);
5513 if (mp == NULL) {
5514 if ((flags & PMAP_ENTER_NOSLEEP) != 0)
5515 return (KERN_RESOURCE_SHORTAGE);
5516 PMAP_UNLOCK(pmap);
5517 vm_wait(NULL);
5518 PMAP_LOCK(pmap);
5519 goto restart;
5520 }
5521 l1p = pmap_l0_to_l1(l0p, va);
5522 KASSERT(l1p != NULL, ("va %#lx lost l1 entry", va));
5523 origpte = pmap_load(l1p);
5524 } else {
5525 l1p = pmap_l0_to_l1(l0p, va);
5526 KASSERT(l1p != NULL, ("va %#lx lost l1 entry", va));
5527 origpte = pmap_load(l1p);
5528 if ((origpte & ATTR_DESCR_VALID) == 0) {
5529 mp = PTE_TO_VM_PAGE(pmap_load(l0p));
5530 mp->ref_count++;
5531 }
5532 }
5533 KASSERT((PTE_TO_PHYS(origpte) == PTE_TO_PHYS(newpte) &&
5534 (origpte & ATTR_DESCR_MASK) == L1_BLOCK) ||
5535 (origpte & ATTR_DESCR_VALID) == 0,
5536 ("va %#lx changing 1G phys page l1 %#lx newpte %#lx",
5537 va, origpte, newpte));
5538 pmap_store(l1p, newpte);
5539 } else if (psind == 2) {
5540 KASSERT(pagesizes[psind] == L2_SIZE,
5541 ("pagesizes[%d] != L2_SIZE", psind));
5542 l2p = pmap_l2(pmap, va);
5543 if (l2p == NULL) {
5544 mp = _pmap_alloc_l3(pmap, pmap_l1_pindex(va), NULL);
5545 if (mp == NULL) {
5546 if ((flags & PMAP_ENTER_NOSLEEP) != 0)
5547 return (KERN_RESOURCE_SHORTAGE);
5548 PMAP_UNLOCK(pmap);
5549 vm_wait(NULL);
5550 PMAP_LOCK(pmap);
5551 goto restart;
5552 }
5553 l2p = VM_PAGE_TO_DMAP(mp);
5554 l2p = &l2p[pmap_l2_index(va)];
5555 origpte = pmap_load(l2p);
5556 } else {
5557 l1p = pmap_l1(pmap, va);
5558 origpte = pmap_load(l2p);
5559 if ((origpte & ATTR_DESCR_VALID) == 0) {
5560 mp = PTE_TO_VM_PAGE(pmap_load(l1p));
5561 mp->ref_count++;
5562 }
5563 }
5564 KASSERT((origpte & ATTR_DESCR_VALID) == 0 ||
5565 ((origpte & ATTR_DESCR_MASK) == L2_BLOCK &&
5566 PTE_TO_PHYS(origpte) == PTE_TO_PHYS(newpte)),
5567 ("va %#lx changing 2M phys page l2 %#lx newpte %#lx",
5568 va, origpte, newpte));
5569 pmap_store(l2p, newpte);
5570 } else /* (psind == 1) */ {
5571 KASSERT(pagesizes[psind] == L3C_SIZE,
5572 ("pagesizes[%d] != L3C_SIZE", psind));
5573 l2p = pmap_l2(pmap, va);
5574 if (l2p == NULL || (pmap_load(l2p) & ATTR_DESCR_VALID) == 0) {
5575 mp = _pmap_alloc_l3(pmap, pmap_l2_pindex(va), NULL);
5576 if (mp == NULL) {
5577 if ((flags & PMAP_ENTER_NOSLEEP) != 0)
5578 return (KERN_RESOURCE_SHORTAGE);
5579 PMAP_UNLOCK(pmap);
5580 vm_wait(NULL);
5581 PMAP_LOCK(pmap);
5582 goto restart;
5583 }
5584 mp->ref_count += L3C_ENTRIES - 1;
5585 l3p = VM_PAGE_TO_DMAP(mp);
5586 l3p = &l3p[pmap_l3_index(va)];
5587 } else {
5588 l3p = pmap_l2_to_l3(l2p, va);
5589 if ((pmap_load(l3p) & ATTR_DESCR_VALID) == 0) {
5590 mp = PTE_TO_VM_PAGE(pmap_load(l2p));
5591 mp->ref_count += L3C_ENTRIES;
5592 }
5593 }
5594 for (tl3p = l3p; tl3p < &l3p[L3C_ENTRIES]; tl3p++) {
5595 origpte = pmap_load(tl3p);
5596 KASSERT((origpte & ATTR_DESCR_VALID) == 0 ||
5597 ((origpte & ATTR_CONTIGUOUS) != 0 &&
5598 PTE_TO_PHYS(origpte) == PTE_TO_PHYS(newpte)),
5599 ("va %#lx changing 64K phys page l3 %#lx newpte %#lx",
5600 va, origpte, newpte));
5601 pmap_store(tl3p, newpte);
5602 newpte += L3_SIZE;
5603 }
5604 }
5605 dsb(ishst);
5606
5607 if ((origpte & ATTR_DESCR_VALID) == 0)
5608 pmap_resident_count_inc(pmap, pagesizes[psind] / PAGE_SIZE);
5609 if ((newpte & ATTR_SW_WIRED) != 0 && (origpte & ATTR_SW_WIRED) == 0)
5610 pmap->pm_stats.wired_count += pagesizes[psind] / PAGE_SIZE;
5611 else if ((newpte & ATTR_SW_WIRED) == 0 &&
5612 (origpte & ATTR_SW_WIRED) != 0)
5613 pmap->pm_stats.wired_count -= pagesizes[psind] / PAGE_SIZE;
5614
5615 return (KERN_SUCCESS);
5616 }
5617
5618 static void
pmap_set_unprotected(pt_entry_t new_l3)5619 pmap_set_unprotected(pt_entry_t new_l3)
5620 {
5621 vm_paddr_t pa;
5622
5623 pa = PTE_TO_PHYS(new_l3) & ~prot_ns_shared_pa;
5624
5625 rsi_set_addr_range_state(pa, pa + L3_SIZE, RSI_RIPAS_EMPTY,
5626 RSI_CHANGE_DESTROYED, NULL);
5627 }
5628
5629 static void
pmap_set_protected(pt_entry_t old_l3)5630 pmap_set_protected(pt_entry_t old_l3)
5631 {
5632 vm_paddr_t pa;
5633
5634 pa = PTE_TO_PHYS(old_l3) & ~prot_ns_shared_pa;
5635
5636 rsi_set_addr_range_state(pa, pa + L3_SIZE, RSI_RIPAS_RAM,
5637 RSI_CHANGE_DESTROYED, NULL);
5638 }
5639
5640 /*
5641 * Insert the given physical page (p) at
5642 * the specified virtual address (v) in the
5643 * target physical map with the protection requested.
5644 *
5645 * If specified, the page will be wired down, meaning
5646 * that the related pte can not be reclaimed.
5647 *
5648 * NB: This is the only routine which MAY NOT lazy-evaluate
5649 * or lose information. That is, this routine must actually
5650 * insert this page into the given map NOW.
5651 */
5652 int
pmap_enter(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot,u_int flags,int8_t psind)5653 pmap_enter(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_prot_t prot,
5654 u_int flags, int8_t psind)
5655 {
5656 struct rwlock *lock;
5657 pd_entry_t *pde;
5658 pt_entry_t new_l3, orig_l3;
5659 pt_entry_t *l2, *l3;
5660 pv_entry_t pv;
5661 vm_paddr_t opa, pa;
5662 vm_page_t mpte, om;
5663 bool nosleep;
5664 int full_lvl, lvl, rv;
5665
5666 KASSERT(ADDR_IS_CANONICAL(va),
5667 ("%s: Address not in canonical form: %lx", __func__, va));
5668
5669 va = trunc_page(va);
5670 if ((m->oflags & VPO_UNMANAGED) == 0)
5671 VM_PAGE_OBJECT_BUSY_ASSERT(m);
5672 pa = VM_PAGE_TO_PHYS(m);
5673 if (in_realm() && (flags & PMAP_ENTER_UNPROTECTED) != 0)
5674 pa |= prot_ns_shared_pa;
5675 new_l3 = (pt_entry_t)(PHYS_TO_PTE(pa) | ATTR_AF | pmap_sh_attr |
5676 L3_PAGE);
5677 new_l3 |= pmap_pte_memattr(pmap, m->md.pv_memattr);
5678 new_l3 |= pmap_pte_prot(pmap, prot);
5679 if ((flags & PMAP_ENTER_WIRED) != 0)
5680 new_l3 |= ATTR_SW_WIRED;
5681 if (pmap->pm_stage == PM_STAGE1) {
5682 if (ADDR_IS_USER(va))
5683 new_l3 |= ATTR_S1_AP(ATTR_S1_AP_USER) | ATTR_S1_PXN;
5684 else
5685 new_l3 |= ATTR_S1_UXN;
5686 if (pmap != kernel_pmap)
5687 new_l3 |= ATTR_S1_nG;
5688 } else {
5689 /*
5690 * Clear the access flag on executable mappings, this will be
5691 * set later when the page is accessed. The fault handler is
5692 * required to invalidate the I-cache.
5693 *
5694 * TODO: Switch to the valid flag to allow hardware management
5695 * of the access flag. Much of the pmap code assumes the
5696 * valid flag is set and fails to destroy the old page tables
5697 * correctly if it is clear.
5698 */
5699 if (prot & VM_PROT_EXECUTE)
5700 new_l3 &= ~ATTR_AF;
5701 }
5702 if ((m->oflags & VPO_UNMANAGED) == 0) {
5703 new_l3 |= ATTR_SW_MANAGED;
5704 if ((prot & VM_PROT_WRITE) != 0) {
5705 new_l3 |= ATTR_SW_DBM;
5706 if ((flags & VM_PROT_WRITE) == 0) {
5707 if (pmap->pm_stage == PM_STAGE1)
5708 new_l3 |= ATTR_S1_AP(ATTR_S1_AP_RO);
5709 else
5710 new_l3 &=
5711 ~ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE);
5712 }
5713 }
5714 }
5715
5716 CTR2(KTR_PMAP, "pmap_enter: %.16lx -> %.16lx", va, pa);
5717
5718 lock = NULL;
5719 PMAP_LOCK(pmap);
5720 if ((flags & PMAP_ENTER_LARGEPAGE) != 0) {
5721 KASSERT((m->oflags & VPO_UNMANAGED) != 0,
5722 ("managed largepage va %#lx flags %#x", va, flags));
5723 if (psind == 3) {
5724 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
5725 new_l3 &= ~L3_PAGE;
5726 new_l3 |= L1_BLOCK;
5727 } else if (psind == 2) {
5728 new_l3 &= ~L3_PAGE;
5729 new_l3 |= L2_BLOCK;
5730 } else /* (psind == 1) */
5731 new_l3 |= ATTR_CONTIGUOUS;
5732 rv = pmap_enter_largepage(pmap, va, new_l3, flags, psind);
5733 goto out;
5734 }
5735 if (psind == 2) {
5736 /* Assert the required virtual and physical alignment. */
5737 KASSERT((va & L2_OFFSET) == 0, ("pmap_enter: va unaligned"));
5738 KASSERT(m->psind > 1, ("pmap_enter: m->psind < psind"));
5739 rv = pmap_enter_l2(pmap, va, (new_l3 & ~L3_PAGE) | L2_BLOCK,
5740 flags, m, &lock);
5741 goto out;
5742 }
5743 mpte = NULL;
5744 if (psind == 1) {
5745 KASSERT((va & L3C_OFFSET) == 0, ("pmap_enter: va unaligned"));
5746 KASSERT(m->psind > 0, ("pmap_enter: m->psind < psind"));
5747 rv = pmap_enter_l3c(pmap, va, new_l3 | ATTR_CONTIGUOUS, flags,
5748 m, &mpte, &lock);
5749 #if VM_NRESERVLEVEL > 0
5750 /*
5751 * Attempt L2 promotion, if both the PTP and a level 1
5752 * reservation are fully populated.
5753 */
5754 if (rv == KERN_SUCCESS &&
5755 (mpte == NULL || mpte->ref_count == NL3PG) &&
5756 (m->flags & PG_FICTITIOUS) == 0 &&
5757 vm_reserv_level_iffullpop(m) == 1) {
5758 pde = pmap_l2(pmap, va);
5759 (void)pmap_promote_l2(pmap, pde, va, mpte, &lock);
5760 }
5761 #endif
5762 goto out;
5763 }
5764
5765 /*
5766 * In the case that a page table page is not
5767 * resident, we are creating it here.
5768 */
5769 retry:
5770 pde = pmap_pde(pmap, va, &lvl);
5771 if (pde != NULL && lvl == 2) {
5772 l3 = pmap_l2_to_l3(pde, va);
5773 if (ADDR_IS_USER(va) && mpte == NULL) {
5774 mpte = PTE_TO_VM_PAGE(pmap_load(pde));
5775 mpte->ref_count++;
5776 }
5777 goto havel3;
5778 } else if (pde != NULL && lvl == 1) {
5779 l2 = pmap_l1_to_l2(pde, va);
5780 if ((pmap_load(l2) & ATTR_DESCR_MASK) == L2_BLOCK &&
5781 (l3 = pmap_demote_l2_locked(pmap, l2, va, &lock)) != NULL) {
5782 l3 = &l3[pmap_l3_index(va)];
5783 if (ADDR_IS_USER(va)) {
5784 mpte = PTE_TO_VM_PAGE(pmap_load(l2));
5785 mpte->ref_count++;
5786 }
5787 goto havel3;
5788 }
5789 /* We need to allocate an L3 table. */
5790 }
5791 if (ADDR_IS_USER(va)) {
5792 nosleep = (flags & PMAP_ENTER_NOSLEEP) != 0;
5793
5794 /*
5795 * We use _pmap_alloc_l3() instead of pmap_alloc_l3() in order
5796 * to handle the possibility that a superpage mapping for "va"
5797 * was created while we slept.
5798 */
5799 mpte = _pmap_alloc_l3(pmap, pmap_l2_pindex(va),
5800 nosleep ? NULL : &lock);
5801 if (mpte == NULL && nosleep) {
5802 CTR0(KTR_PMAP, "pmap_enter: mpte == NULL");
5803 rv = KERN_RESOURCE_SHORTAGE;
5804 goto out;
5805 }
5806 goto retry;
5807 } else
5808 panic("pmap_enter: missing L3 table for kernel va %#lx", va);
5809
5810 havel3:
5811 orig_l3 = pmap_load(l3);
5812 opa = PTE_TO_PHYS(orig_l3);
5813 pv = NULL;
5814 new_l3 |= pmap_pte_bti(pmap, va);
5815
5816 /*
5817 * Is the specified virtual address already mapped?
5818 */
5819 if (pmap_l3_valid(orig_l3)) {
5820 /*
5821 * Wiring change, just update stats. We don't worry about
5822 * wiring PT pages as they remain resident as long as there
5823 * are valid mappings in them. Hence, if a user page is wired,
5824 * the PT page will be also.
5825 */
5826 if ((flags & PMAP_ENTER_WIRED) != 0 &&
5827 (orig_l3 & ATTR_SW_WIRED) == 0)
5828 pmap->pm_stats.wired_count++;
5829 else if ((flags & PMAP_ENTER_WIRED) == 0 &&
5830 (orig_l3 & ATTR_SW_WIRED) != 0)
5831 pmap->pm_stats.wired_count--;
5832
5833 /*
5834 * Remove the extra PT page reference.
5835 */
5836 if (mpte != NULL) {
5837 mpte->ref_count--;
5838 KASSERT(mpte->ref_count > 0,
5839 ("pmap_enter: missing reference to page table page,"
5840 " va: 0x%lx", va));
5841 }
5842
5843 /*
5844 * Has the physical page changed?
5845 */
5846 if (opa == pa) {
5847 /*
5848 * No, might be a protection or wiring change.
5849 */
5850 if ((orig_l3 & ATTR_SW_MANAGED) != 0 &&
5851 (new_l3 & ATTR_SW_DBM) != 0)
5852 vm_page_aflag_set(m, PGA_WRITEABLE);
5853 goto validate;
5854 }
5855
5856 /*
5857 * The physical page has changed. Temporarily invalidate
5858 * the mapping.
5859 */
5860 if ((orig_l3 & ATTR_CONTIGUOUS) != 0)
5861 (void)pmap_demote_l3c(pmap, l3, va);
5862 orig_l3 = pmap_load_clear(l3);
5863 KASSERT(PTE_TO_PHYS(orig_l3) == opa,
5864 ("pmap_enter: unexpected pa update for %#lx", va));
5865 if ((orig_l3 & ATTR_SW_MANAGED) != 0) {
5866 om = PHYS_TO_VM_PAGE(opa);
5867
5868 /*
5869 * The pmap lock is sufficient to synchronize with
5870 * concurrent calls to pmap_page_test_mappings() and
5871 * pmap_ts_referenced().
5872 */
5873 if (pmap_pte_dirty(pmap, orig_l3))
5874 vm_page_dirty(om);
5875 if ((orig_l3 & ATTR_AF) != 0) {
5876 pmap_invalidate_page(pmap, va, true);
5877 vm_page_aflag_set(om, PGA_REFERENCED);
5878 }
5879 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(&lock, om);
5880 pv = pmap_pvh_remove(&om->md, pmap, va);
5881 if ((m->oflags & VPO_UNMANAGED) != 0)
5882 free_pv_entry(pmap, pv);
5883 if ((om->a.flags & PGA_WRITEABLE) != 0 &&
5884 TAILQ_EMPTY(&om->md.pv_list) &&
5885 ((om->flags & PG_FICTITIOUS) != 0 ||
5886 TAILQ_EMPTY(&page_to_pvh(om)->pv_list)))
5887 vm_page_aflag_clear(om, PGA_WRITEABLE);
5888 } else {
5889 KASSERT((orig_l3 & ATTR_AF) != 0,
5890 ("pmap_enter: unmanaged mapping lacks ATTR_AF"));
5891 pmap_invalidate_page(pmap, va, true);
5892 }
5893 orig_l3 = 0;
5894 } else {
5895 /*
5896 * Increment the counters.
5897 */
5898 if ((new_l3 & ATTR_SW_WIRED) != 0)
5899 pmap->pm_stats.wired_count++;
5900 pmap_resident_count_inc(pmap, 1);
5901 }
5902 /*
5903 * Enter on the PV list if part of our managed memory.
5904 */
5905 if ((m->oflags & VPO_UNMANAGED) == 0) {
5906 if (pv == NULL) {
5907 pv = get_pv_entry(pmap, &lock);
5908 pv->pv_va = va;
5909 }
5910 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(&lock, m);
5911 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_next);
5912 m->md.pv_gen++;
5913 if ((new_l3 & ATTR_SW_DBM) != 0)
5914 vm_page_aflag_set(m, PGA_WRITEABLE);
5915 }
5916
5917 validate:
5918 if (pmap->pm_stage == PM_STAGE1) {
5919 /*
5920 * Sync icache if exec permission and attribute
5921 * VM_MEMATTR_WRITE_BACK is set. Do it now, before the mapping
5922 * is stored and made valid for hardware table walk. If done
5923 * later, then other can access this page before caches are
5924 * properly synced. Don't do it for kernel memory which is
5925 * mapped with exec permission even if the memory isn't going
5926 * to hold executable code. The only time when icache sync is
5927 * needed is after kernel module is loaded and the relocation
5928 * info is processed. And it's done in elf_cpu_load_file().
5929 */
5930 if ((prot & VM_PROT_EXECUTE) && pmap != kernel_pmap &&
5931 m->md.pv_memattr == VM_MEMATTR_WRITE_BACK &&
5932 (opa != pa || (orig_l3 & ATTR_S1_XN))) {
5933 PMAP_ASSERT_STAGE1(pmap);
5934 cpu_icache_sync_range(PHYS_TO_DMAP(pa), PAGE_SIZE);
5935 }
5936 } else {
5937 cpu_dcache_wb_range(PHYS_TO_DMAP(pa), PAGE_SIZE);
5938 }
5939
5940 /*
5941 * Update the L3 entry
5942 */
5943 if (pmap_l3_valid(orig_l3)) {
5944 KASSERT(opa == pa, ("pmap_enter: invalid update"));
5945 if ((orig_l3 & ~ATTR_AF) != (new_l3 & ~ATTR_AF)) {
5946 /* same PA, different attributes */
5947 if ((orig_l3 & ATTR_CONTIGUOUS) != 0)
5948 (void)pmap_demote_l3c(pmap, l3, va);
5949 orig_l3 = pmap_load_store(l3, new_l3);
5950 pmap_invalidate_page(pmap, va, true);
5951 if ((orig_l3 & ATTR_SW_MANAGED) != 0 &&
5952 pmap_pte_dirty(pmap, orig_l3))
5953 vm_page_dirty(m);
5954 } else {
5955 /*
5956 * orig_l3 == new_l3
5957 * This can happens if multiple threads simultaneously
5958 * access not yet mapped page. This bad for performance
5959 * since this can cause full demotion-NOP-promotion
5960 * cycle.
5961 * Another possible reasons are:
5962 * - VM and pmap memory layout are diverged
5963 * - tlb flush is missing somewhere and CPU doesn't see
5964 * actual mapping.
5965 */
5966 CTR4(KTR_PMAP, "%s: already mapped page - "
5967 "pmap %p va 0x%#lx pte 0x%lx",
5968 __func__, pmap, va, new_l3);
5969 }
5970 } else {
5971 /* New mapping */
5972 pmap_store(l3, new_l3);
5973 dsb(ishst);
5974 }
5975
5976 #if VM_NRESERVLEVEL > 0
5977 /*
5978 * First, attempt L3C promotion, if the virtual and physical addresses
5979 * are aligned with each other and an underlying reservation has the
5980 * neighboring L3 pages allocated. The first condition is simply an
5981 * optimization that recognizes some eventual promotion failures early
5982 * at a lower run-time cost. Then, if both a level 1 reservation and
5983 * the PTP are fully populated, attempt L2 promotion.
5984 */
5985 if ((va & L3C_OFFSET) == (pa & L3C_OFFSET) &&
5986 (m->flags & PG_FICTITIOUS) == 0 &&
5987 (full_lvl = vm_reserv_level_iffullpop(m)) >= 0 &&
5988 pmap_promote_l3c(pmap, l3, va) &&
5989 full_lvl == 1 && (mpte == NULL || mpte->ref_count == NL3PG))
5990 (void)pmap_promote_l2(pmap, pde, va, mpte, &lock);
5991 #endif
5992
5993 rv = KERN_SUCCESS;
5994
5995 if (in_realm() && (flags & PMAP_ENTER_UNPROTECTED) != 0)
5996 pmap_set_unprotected(new_l3);
5997
5998 out:
5999 if (lock != NULL)
6000 rw_wunlock(lock);
6001 PMAP_UNLOCK(pmap);
6002 return (rv);
6003 }
6004
6005 /*
6006 * Tries to create a read- and/or execute-only L2 page mapping. Returns
6007 * KERN_SUCCESS if the mapping was created. Otherwise, returns an error
6008 * value. See pmap_enter_l2() for the possible error values when "no sleep",
6009 * "no replace", and "no reclaim" are specified.
6010 */
6011 static int
pmap_enter_l2_rx(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot,struct rwlock ** lockp)6012 pmap_enter_l2_rx(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_prot_t prot,
6013 struct rwlock **lockp)
6014 {
6015 pd_entry_t new_l2;
6016
6017 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
6018 PMAP_ASSERT_STAGE1(pmap);
6019 KASSERT(ADDR_IS_CANONICAL(va),
6020 ("%s: Address not in canonical form: %lx", __func__, va));
6021
6022 new_l2 = (pd_entry_t)(VM_PAGE_TO_PTE(m) | pmap_sh_attr |
6023 ATTR_S1_IDX(m->md.pv_memattr) | ATTR_S1_AP(ATTR_S1_AP_RO) |
6024 L2_BLOCK);
6025 if ((m->oflags & VPO_UNMANAGED) == 0)
6026 new_l2 |= ATTR_SW_MANAGED;
6027 else
6028 new_l2 |= ATTR_AF;
6029 if ((prot & VM_PROT_EXECUTE) == 0 ||
6030 m->md.pv_memattr == VM_MEMATTR_DEVICE)
6031 new_l2 |= ATTR_S1_XN;
6032 if (ADDR_IS_USER(va))
6033 new_l2 |= ATTR_S1_AP(ATTR_S1_AP_USER) | ATTR_S1_PXN;
6034 else
6035 new_l2 |= ATTR_S1_UXN;
6036 if (pmap != kernel_pmap)
6037 new_l2 |= ATTR_S1_nG;
6038 return (pmap_enter_l2(pmap, va, new_l2, PMAP_ENTER_NOSLEEP |
6039 PMAP_ENTER_NOREPLACE | PMAP_ENTER_NORECLAIM, m, lockp));
6040 }
6041
6042 /*
6043 * Returns true if every page table entry in the specified page table is
6044 * zero.
6045 */
6046 static bool
pmap_every_pte_zero(vm_paddr_t pa)6047 pmap_every_pte_zero(vm_paddr_t pa)
6048 {
6049 pt_entry_t *pt_end, *pte;
6050
6051 KASSERT((pa & PAGE_MASK) == 0, ("pa is misaligned"));
6052 pte = PHYS_TO_DMAP(pa);
6053 for (pt_end = pte + Ln_ENTRIES; pte < pt_end; pte++) {
6054 if (*pte != 0)
6055 return (false);
6056 }
6057 return (true);
6058 }
6059
6060 /*
6061 * Tries to create the specified L2 page mapping. Returns KERN_SUCCESS if
6062 * the mapping was created, and one of KERN_FAILURE, KERN_NO_SPACE, or
6063 * KERN_RESOURCE_SHORTAGE otherwise. Returns KERN_FAILURE if
6064 * PMAP_ENTER_NOREPLACE was specified and a base page mapping already exists
6065 * within the L2 virtual address range starting at the specified virtual
6066 * address. Returns KERN_NO_SPACE if PMAP_ENTER_NOREPLACE was specified and a
6067 * L2 page mapping already exists at the specified virtual address. Returns
6068 * KERN_RESOURCE_SHORTAGE if either (1) PMAP_ENTER_NOSLEEP was specified and a
6069 * page table page allocation failed or (2) PMAP_ENTER_NORECLAIM was specified
6070 * and a PV entry allocation failed.
6071 */
6072 static int
pmap_enter_l2(pmap_t pmap,vm_offset_t va,pd_entry_t new_l2,u_int flags,vm_page_t m,struct rwlock ** lockp)6073 pmap_enter_l2(pmap_t pmap, vm_offset_t va, pd_entry_t new_l2, u_int flags,
6074 vm_page_t m, struct rwlock **lockp)
6075 {
6076 struct spglist free;
6077 pd_entry_t *l2, old_l2;
6078 vm_page_t l2pg, mt;
6079 vm_page_t uwptpg;
6080
6081 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
6082 KASSERT(ADDR_IS_CANONICAL(va),
6083 ("%s: Address not in canonical form: %lx", __func__, va));
6084 KASSERT((flags & (PMAP_ENTER_NOREPLACE | PMAP_ENTER_NORECLAIM)) !=
6085 PMAP_ENTER_NORECLAIM,
6086 ("pmap_enter_l2: flags is missing PMAP_ENTER_NOREPLACE"));
6087
6088 if ((l2 = pmap_alloc_l2(pmap, va, &l2pg, (flags &
6089 PMAP_ENTER_NOSLEEP) != 0 ? NULL : lockp)) == NULL) {
6090 CTR2(KTR_PMAP, "pmap_enter_l2: failure for va %#lx in pmap %p",
6091 va, pmap);
6092 return (KERN_RESOURCE_SHORTAGE);
6093 }
6094
6095 /*
6096 * If bti is not the same for the whole l2 range, return failure
6097 * and let vm_fault() cope. Check after l2 allocation, since
6098 * it could sleep.
6099 */
6100 if (!pmap_bti_same(pmap, va, va + L2_SIZE, &new_l2)) {
6101 KASSERT(l2pg != NULL, ("pmap_enter_l2: missing L2 PTP"));
6102 pmap_abort_ptp(pmap, va, l2pg);
6103 return (KERN_PROTECTION_FAILURE);
6104 }
6105
6106 /*
6107 * If there are existing mappings, either abort or remove them.
6108 */
6109 if ((old_l2 = pmap_load(l2)) != 0) {
6110 KASSERT(l2pg == NULL || l2pg->ref_count > 1,
6111 ("pmap_enter_l2: l2pg's ref count is too low"));
6112 if ((flags & PMAP_ENTER_NOREPLACE) != 0) {
6113 if ((old_l2 & ATTR_DESCR_MASK) == L2_BLOCK) {
6114 if (l2pg != NULL)
6115 l2pg->ref_count--;
6116 CTR2(KTR_PMAP,
6117 "pmap_enter_l2: no space for va %#lx"
6118 " in pmap %p", va, pmap);
6119 return (KERN_NO_SPACE);
6120 } else if (ADDR_IS_USER(va) ||
6121 !pmap_every_pte_zero(PTE_TO_PHYS(old_l2))) {
6122 if (l2pg != NULL)
6123 l2pg->ref_count--;
6124 CTR2(KTR_PMAP,
6125 "pmap_enter_l2: failure for va %#lx"
6126 " in pmap %p", va, pmap);
6127 return (KERN_FAILURE);
6128 }
6129 }
6130 SLIST_INIT(&free);
6131 if ((old_l2 & ATTR_DESCR_MASK) == L2_BLOCK) {
6132 (void)pmap_remove_l2(pmap, l2, va,
6133 pmap_load(pmap_l1(pmap, va)), false, &free, lockp);
6134 } else {
6135 if (ADDR_IS_KERNEL(va)) {
6136 /*
6137 * Try to save the ptp in the trie
6138 * before any changes to mappings are
6139 * made. Abort on failure.
6140 */
6141 mt = PTE_TO_VM_PAGE(old_l2);
6142 if (pmap_insert_pt_page(pmap, mt, false,
6143 false)) {
6144 CTR1(KTR_PMAP,
6145 "pmap_enter_l2: cannot ins kern ptp va %#lx",
6146 va);
6147 return (KERN_RESOURCE_SHORTAGE);
6148 }
6149 /*
6150 * Both pmap_remove_l2() and
6151 * pmap_remove_l3_range() will zero fill
6152 * the L3 kernel page table page.
6153 */
6154 }
6155 pmap_remove_l3_range(pmap, old_l2, va, va + L2_SIZE,
6156 &free, lockp);
6157 if (ADDR_IS_KERNEL(va)) {
6158 /*
6159 * The TLB could have an intermediate
6160 * entry for the L3 kernel page table
6161 * page, so request an invalidation at
6162 * all levels after clearing the
6163 * L2_TABLE entry.
6164 */
6165 pmap_clear(l2);
6166 pmap_s1_invalidate_page(pmap, va, false);
6167 }
6168 }
6169 KASSERT(pmap_load(l2) == 0,
6170 ("pmap_enter_l2: non-zero L2 entry %p", l2));
6171 if (ADDR_IS_USER(va)) {
6172 vm_page_free_pages_toq(&free, true);
6173 } else {
6174 KASSERT(SLIST_EMPTY(&free),
6175 ("pmap_enter_l2: freed kernel page table page"));
6176 }
6177 }
6178
6179 /*
6180 * Allocate leaf ptpage for wired userspace pages.
6181 */
6182 uwptpg = NULL;
6183 if ((new_l2 & ATTR_SW_WIRED) != 0 && pmap != kernel_pmap) {
6184 uwptpg = vm_page_alloc_noobj(VM_ALLOC_WIRED);
6185 if (uwptpg == NULL) {
6186 pmap_abort_ptp(pmap, va, l2pg);
6187 return (KERN_RESOURCE_SHORTAGE);
6188 }
6189 uwptpg->pindex = pmap_l2_pindex(va);
6190 if (pmap_insert_pt_page(pmap, uwptpg, true, false)) {
6191 vm_page_unwire_noq(uwptpg);
6192 vm_page_free(uwptpg);
6193 pmap_abort_ptp(pmap, va, l2pg);
6194 return (KERN_RESOURCE_SHORTAGE);
6195 }
6196 pmap_resident_count_inc(pmap, 1);
6197 uwptpg->ref_count = NL3PG;
6198 }
6199 if ((new_l2 & ATTR_SW_MANAGED) != 0) {
6200 /*
6201 * Abort this mapping if its PV entry could not be created.
6202 */
6203 if (!pmap_pv_insert_l2(pmap, va, new_l2, flags, lockp)) {
6204 if (l2pg != NULL)
6205 pmap_abort_ptp(pmap, va, l2pg);
6206 else {
6207 KASSERT(ADDR_IS_KERNEL(va) &&
6208 (pmap_load(l2) & ATTR_DESCR_MASK) ==
6209 L2_TABLE,
6210 ("pmap_enter_l2: invalid kernel L2E"));
6211 mt = pmap_remove_pt_page(pmap, va);
6212 KASSERT(mt != NULL,
6213 ("pmap_enter_l2: missing kernel PTP"));
6214 }
6215 if (uwptpg != NULL) {
6216 mt = pmap_remove_pt_page(pmap, va);
6217 KASSERT(mt == uwptpg,
6218 ("removed pt page %p, expected %p", mt,
6219 uwptpg));
6220 pmap_resident_count_dec(pmap, 1);
6221 uwptpg->ref_count = 1;
6222 vm_page_unwire_noq(uwptpg);
6223 vm_page_free(uwptpg);
6224 }
6225 CTR2(KTR_PMAP,
6226 "pmap_enter_l2: failure for va %#lx in pmap %p",
6227 va, pmap);
6228 return (KERN_RESOURCE_SHORTAGE);
6229 }
6230 if ((new_l2 & ATTR_SW_DBM) != 0)
6231 for (mt = m; mt < &m[L2_SIZE / PAGE_SIZE]; mt++)
6232 vm_page_aflag_set(mt, PGA_WRITEABLE);
6233 }
6234
6235 /*
6236 * Increment counters.
6237 */
6238 if ((new_l2 & ATTR_SW_WIRED) != 0)
6239 pmap->pm_stats.wired_count += L2_SIZE / PAGE_SIZE;
6240 pmap->pm_stats.resident_count += L2_SIZE / PAGE_SIZE;
6241
6242 /*
6243 * Conditionally sync the icache. See pmap_enter() for details.
6244 */
6245 if ((new_l2 & ATTR_S1_XN) == 0 && (PTE_TO_PHYS(new_l2) !=
6246 PTE_TO_PHYS(old_l2) || (old_l2 & ATTR_S1_XN) != 0) &&
6247 pmap != kernel_pmap && m->md.pv_memattr == VM_MEMATTR_WRITE_BACK) {
6248 cpu_icache_sync_range(PHYS_TO_DMAP(PTE_TO_PHYS(new_l2)),
6249 L2_SIZE);
6250 }
6251
6252 /*
6253 * Map the superpage.
6254 */
6255 pmap_store(l2, new_l2);
6256 dsb(ishst);
6257
6258 counter_u64_add(pmap_l2_mappings, 1);
6259 CTR2(KTR_PMAP, "pmap_enter_l2: success for va %#lx in pmap %p",
6260 va, pmap);
6261
6262 return (KERN_SUCCESS);
6263 }
6264
6265 /*
6266 * Tries to create a read- and/or execute-only L3C page mapping. Returns
6267 * KERN_SUCCESS if the mapping was created. Otherwise, returns an error
6268 * value.
6269 */
6270 static int
pmap_enter_l3c_rx(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_page_t * ml3p,vm_prot_t prot,struct rwlock ** lockp)6271 pmap_enter_l3c_rx(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_page_t *ml3p,
6272 vm_prot_t prot, struct rwlock **lockp)
6273 {
6274 pt_entry_t l3e;
6275
6276 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
6277 PMAP_ASSERT_STAGE1(pmap);
6278 KASSERT(ADDR_IS_CANONICAL(va),
6279 ("%s: Address not in canonical form: %lx", __func__, va));
6280
6281 l3e = VM_PAGE_TO_PTE(m) | pmap_sh_attr |
6282 ATTR_S1_IDX(m->md.pv_memattr) | ATTR_S1_AP(ATTR_S1_AP_RO) |
6283 ATTR_CONTIGUOUS | L3_PAGE;
6284 if ((m->oflags & VPO_UNMANAGED) == 0)
6285 l3e |= ATTR_SW_MANAGED;
6286 else
6287 l3e |= ATTR_AF;
6288 if ((prot & VM_PROT_EXECUTE) == 0 ||
6289 m->md.pv_memattr == VM_MEMATTR_DEVICE)
6290 l3e |= ATTR_S1_XN;
6291 if (ADDR_IS_USER(va))
6292 l3e |= ATTR_S1_AP(ATTR_S1_AP_USER) | ATTR_S1_PXN;
6293 else
6294 l3e |= ATTR_S1_UXN;
6295 if (pmap != kernel_pmap)
6296 l3e |= ATTR_S1_nG;
6297 return (pmap_enter_l3c(pmap, va, l3e, PMAP_ENTER_NOSLEEP |
6298 PMAP_ENTER_NOREPLACE | PMAP_ENTER_NORECLAIM, m, ml3p, lockp));
6299 }
6300
6301 static int
pmap_enter_l3c(pmap_t pmap,vm_offset_t va,pt_entry_t l3e,u_int flags,vm_page_t m,vm_page_t * ml3p,struct rwlock ** lockp)6302 pmap_enter_l3c(pmap_t pmap, vm_offset_t va, pt_entry_t l3e, u_int flags,
6303 vm_page_t m, vm_page_t *ml3p, struct rwlock **lockp)
6304 {
6305 pd_entry_t *l2p, *pde;
6306 pt_entry_t *l3p, *tl3p;
6307 vm_page_t mt;
6308 vm_paddr_t pa;
6309 vm_pindex_t l2pindex;
6310 int lvl;
6311
6312 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
6313 KASSERT((va & L3C_OFFSET) == 0,
6314 ("pmap_enter_l3c: va is not aligned"));
6315 KASSERT(!VA_IS_CLEANMAP(va) || (l3e & ATTR_SW_MANAGED) == 0,
6316 ("pmap_enter_l3c: managed mapping within the clean submap"));
6317 KASSERT((l3e & ATTR_CONTIGUOUS) != 0,
6318 ("pmap_enter_l3c: l3e is missing ATTR_CONTIGUOUS"));
6319
6320 /*
6321 * If the L3 PTP is not resident, we attempt to create it here.
6322 */
6323 if (ADDR_IS_USER(va)) {
6324 /*
6325 * Were we given the correct L3 PTP? If so, we can simply
6326 * increment its ref count.
6327 */
6328 l2pindex = pmap_l2_pindex(va);
6329 if (*ml3p != NULL && (*ml3p)->pindex == l2pindex) {
6330 (*ml3p)->ref_count += L3C_ENTRIES;
6331 } else {
6332 retry:
6333 /*
6334 * Get the L2 entry.
6335 */
6336 pde = pmap_pde(pmap, va, &lvl);
6337
6338 /*
6339 * If the L2 entry is a superpage, we either abort or
6340 * demote depending on the given flags.
6341 */
6342 if (lvl == 1) {
6343 l2p = pmap_l1_to_l2(pde, va);
6344 if ((pmap_load(l2p) & ATTR_DESCR_MASK) ==
6345 L2_BLOCK) {
6346 if ((flags & PMAP_ENTER_NOREPLACE) != 0)
6347 return (KERN_FAILURE);
6348 l3p = pmap_demote_l2_locked(pmap, l2p,
6349 va, lockp);
6350 if (l3p != NULL) {
6351 *ml3p = PTE_TO_VM_PAGE(
6352 pmap_load(l2p));
6353 (*ml3p)->ref_count +=
6354 L3C_ENTRIES;
6355 goto have_l3p;
6356 }
6357 }
6358 /* We need to allocate an L3 PTP. */
6359 }
6360
6361 /*
6362 * If the L3 PTP is mapped, we just increment its ref
6363 * count. Otherwise, we attempt to allocate it.
6364 */
6365 if (lvl == 2 && pmap_load(pde) != 0) {
6366 *ml3p = PTE_TO_VM_PAGE(pmap_load(pde));
6367 (*ml3p)->ref_count += L3C_ENTRIES;
6368 } else {
6369 *ml3p = _pmap_alloc_l3(pmap, l2pindex, (flags &
6370 PMAP_ENTER_NOSLEEP) != 0 ? NULL : lockp);
6371 if (*ml3p == NULL) {
6372 if ((flags & PMAP_ENTER_NOSLEEP) != 0)
6373 return (KERN_FAILURE);
6374
6375 /*
6376 * The page table may have changed
6377 * while we slept.
6378 */
6379 goto retry;
6380 }
6381 (*ml3p)->ref_count += L3C_ENTRIES - 1;
6382 }
6383 }
6384 l3p = VM_PAGE_TO_DMAP(*ml3p);
6385 } else {
6386 *ml3p = NULL;
6387
6388 /*
6389 * If the L2 entry is a superpage, we either abort or demote
6390 * depending on the given flags.
6391 */
6392 pde = pmap_pde(kernel_pmap, va, &lvl);
6393 if (lvl == 1) {
6394 l2p = pmap_l1_to_l2(pde, va);
6395 KASSERT((pmap_load(l2p) & ATTR_DESCR_MASK) == L2_BLOCK,
6396 ("pmap_enter_l3c: missing L2 block"));
6397 if ((flags & PMAP_ENTER_NOREPLACE) != 0)
6398 return (KERN_FAILURE);
6399 l3p = pmap_demote_l2_locked(pmap, l2p, va, lockp);
6400 } else {
6401 KASSERT(lvl == 2,
6402 ("pmap_enter_l3c: Invalid level %d", lvl));
6403 l3p = PHYS_TO_DMAP(PTE_TO_PHYS(pmap_load(pde)));
6404 }
6405 }
6406 have_l3p:
6407 l3p = &l3p[pmap_l3_index(va)];
6408
6409 /*
6410 * If bti is not the same for the whole L3C range, return failure
6411 * and let vm_fault() cope. Check after L3 allocation, since
6412 * it could sleep.
6413 */
6414 if (!pmap_bti_same(pmap, va, va + L3C_SIZE, &l3e)) {
6415 KASSERT(*ml3p != NULL, ("pmap_enter_l3c: missing L3 PTP"));
6416 (*ml3p)->ref_count -= L3C_ENTRIES - 1;
6417 pmap_abort_ptp(pmap, va, *ml3p);
6418 *ml3p = NULL;
6419 return (KERN_PROTECTION_FAILURE);
6420 }
6421
6422 /*
6423 * If there are existing mappings, either abort or remove them.
6424 */
6425 if ((flags & PMAP_ENTER_NOREPLACE) != 0) {
6426 for (tl3p = l3p; tl3p < &l3p[L3C_ENTRIES]; tl3p++) {
6427 if (pmap_load(tl3p) != 0) {
6428 if (*ml3p != NULL)
6429 (*ml3p)->ref_count -= L3C_ENTRIES;
6430 return (KERN_FAILURE);
6431 }
6432 }
6433 } else {
6434 /*
6435 * Because we increment the L3 page's reference count above,
6436 * it is guaranteed not to be freed here and we can pass NULL
6437 * instead of a valid free list.
6438 */
6439 pmap_remove_l3_range(pmap, pmap_load(pmap_l2(pmap, va)), va,
6440 va + L3C_SIZE, NULL, lockp);
6441 }
6442
6443 /*
6444 * Enter on the PV list if part of our managed memory.
6445 */
6446 if ((l3e & ATTR_SW_MANAGED) != 0) {
6447 if (!pmap_pv_insert_l3c(pmap, va, m, lockp)) {
6448 if (*ml3p != NULL) {
6449 (*ml3p)->ref_count -= L3C_ENTRIES - 1;
6450 pmap_abort_ptp(pmap, va, *ml3p);
6451 *ml3p = NULL;
6452 }
6453 return (KERN_RESOURCE_SHORTAGE);
6454 }
6455 if ((l3e & ATTR_SW_DBM) != 0)
6456 for (mt = m; mt < &m[L3C_ENTRIES]; mt++)
6457 vm_page_aflag_set(mt, PGA_WRITEABLE);
6458 }
6459
6460 /*
6461 * Increment counters.
6462 */
6463 if ((l3e & ATTR_SW_WIRED) != 0)
6464 pmap->pm_stats.wired_count += L3C_ENTRIES;
6465 pmap_resident_count_inc(pmap, L3C_ENTRIES);
6466
6467 pa = VM_PAGE_TO_PHYS(m);
6468 KASSERT((pa & L3C_OFFSET) == 0, ("pmap_enter_l3c: pa is not aligned"));
6469
6470 /*
6471 * Sync the icache before the mapping is stored.
6472 */
6473 if ((l3e & ATTR_S1_XN) == 0 && pmap != kernel_pmap &&
6474 m->md.pv_memattr == VM_MEMATTR_WRITE_BACK)
6475 cpu_icache_sync_range(PHYS_TO_DMAP(pa), L3C_SIZE);
6476
6477 /*
6478 * Map the superpage.
6479 */
6480 for (tl3p = l3p; tl3p < &l3p[L3C_ENTRIES]; tl3p++) {
6481 pmap_store(tl3p, l3e);
6482 l3e += L3_SIZE;
6483 }
6484 dsb(ishst);
6485
6486 counter_u64_add(pmap_l3c_mappings, 1);
6487 CTR2(KTR_PMAP, "pmap_enter_l3c: success for va %#lx in pmap %p",
6488 va, pmap);
6489 return (KERN_SUCCESS);
6490 }
6491
6492 /*
6493 * Maps a sequence of resident pages belonging to the same object.
6494 * The sequence begins with the given page m_start. This page is
6495 * mapped at the given virtual address start. Each subsequent page is
6496 * mapped at a virtual address that is offset from start by the same
6497 * amount as the page is offset from m_start within the object. The
6498 * last page in the sequence is the page with the largest offset from
6499 * m_start that can be mapped at a virtual address less than the given
6500 * virtual address end. Not every virtual page between start and end
6501 * is mapped; only those for which a resident page exists with the
6502 * corresponding offset from m_start are mapped.
6503 */
6504 void
pmap_enter_object(pmap_t pmap,vm_offset_t start,vm_offset_t end,vm_page_t m_start,vm_prot_t prot)6505 pmap_enter_object(pmap_t pmap, vm_offset_t start, vm_offset_t end,
6506 vm_page_t m_start, vm_prot_t prot)
6507 {
6508 struct pctrie_iter pages;
6509 struct rwlock *lock;
6510 vm_offset_t va;
6511 vm_page_t m, mpte;
6512 int rv;
6513
6514 VM_OBJECT_ASSERT_LOCKED(m_start->object);
6515
6516 mpte = NULL;
6517 vm_page_iter_limit_init(&pages, m_start->object,
6518 m_start->pindex + atop(end - start));
6519 m = vm_radix_iter_lookup(&pages, m_start->pindex);
6520 lock = NULL;
6521 PMAP_LOCK(pmap);
6522 while (m != NULL) {
6523 va = start + ptoa(m->pindex - m_start->pindex);
6524 if ((va & L2_OFFSET) == 0 && va + L2_SIZE <= end &&
6525 m->psind == 2 && pmap_ps_enabled(pmap) &&
6526 ((rv = pmap_enter_l2_rx(pmap, va, m, prot, &lock)) ==
6527 KERN_SUCCESS || rv == KERN_NO_SPACE)) {
6528 m = vm_radix_iter_jump(&pages, L2_SIZE / PAGE_SIZE);
6529 } else if ((va & L3C_OFFSET) == 0 && va + L3C_SIZE <= end &&
6530 m->psind >= 1 && pmap_ps_enabled(pmap) &&
6531 ((rv = pmap_enter_l3c_rx(pmap, va, m, &mpte, prot,
6532 &lock)) == KERN_SUCCESS || rv == KERN_NO_SPACE)) {
6533 m = vm_radix_iter_jump(&pages, L3C_ENTRIES);
6534 } else {
6535 /*
6536 * In general, if a superpage mapping were possible,
6537 * it would have been created above. That said, if
6538 * start and end are not superpage aligned, then
6539 * promotion might be possible at the ends of [start,
6540 * end). However, in practice, those promotion
6541 * attempts are so unlikely to succeed that they are
6542 * not worth trying.
6543 */
6544 mpte = pmap_enter_quick_locked(pmap, va, m, prot |
6545 VM_PROT_NO_PROMOTE, mpte, &lock);
6546 m = vm_radix_iter_step(&pages);
6547 }
6548 }
6549 if (lock != NULL)
6550 rw_wunlock(lock);
6551 PMAP_UNLOCK(pmap);
6552 }
6553
6554 /*
6555 * this code makes some *MAJOR* assumptions:
6556 * 1. Current pmap & pmap exists.
6557 * 2. Not wired.
6558 * 3. Read access.
6559 * 4. No page table pages.
6560 * but is *MUCH* faster than pmap_enter...
6561 */
6562
6563 void
pmap_enter_quick(pmap_t pmap,vm_offset_t va,vm_page_t m,vm_prot_t prot)6564 pmap_enter_quick(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_prot_t prot)
6565 {
6566 struct rwlock *lock;
6567
6568 lock = NULL;
6569 PMAP_LOCK(pmap);
6570 (void)pmap_enter_quick_locked(pmap, va, m, prot, NULL, &lock);
6571 if (lock != NULL)
6572 rw_wunlock(lock);
6573 PMAP_UNLOCK(pmap);
6574 }
6575
6576 static vm_page_t
pmap_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)6577 pmap_enter_quick_locked(pmap_t pmap, vm_offset_t va, vm_page_t m,
6578 vm_prot_t prot, vm_page_t mpte, struct rwlock **lockp)
6579 {
6580 pt_entry_t *l1, *l2, *l3, l3_val;
6581 vm_paddr_t pa;
6582 int full_lvl, lvl;
6583
6584 KASSERT(!VA_IS_CLEANMAP(va) ||
6585 (m->oflags & VPO_UNMANAGED) != 0,
6586 ("pmap_enter_quick_locked: managed mapping within the clean submap"));
6587 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
6588 PMAP_ASSERT_STAGE1(pmap);
6589 KASSERT(ADDR_IS_CANONICAL(va),
6590 ("%s: Address not in canonical form: %lx", __func__, va));
6591 l2 = NULL;
6592
6593 CTR2(KTR_PMAP, "pmap_enter_quick_locked: %p %lx", pmap, va);
6594 /*
6595 * In the case that a page table page is not
6596 * resident, we are creating it here.
6597 */
6598 if (ADDR_IS_USER(va)) {
6599 vm_pindex_t l2pindex;
6600
6601 /*
6602 * Calculate pagetable page index
6603 */
6604 l2pindex = pmap_l2_pindex(va);
6605 if (mpte && (mpte->pindex == l2pindex)) {
6606 mpte->ref_count++;
6607 } else {
6608 /*
6609 * If the page table page is mapped, we just increment
6610 * the hold count, and activate it. Otherwise, we
6611 * attempt to allocate a page table page, passing NULL
6612 * instead of the PV list lock pointer because we don't
6613 * intend to sleep. If this attempt fails, we don't
6614 * retry. Instead, we give up.
6615 */
6616 l1 = pmap_l1(pmap, va);
6617 if (l1 != NULL && pmap_load(l1) != 0) {
6618 if ((pmap_load(l1) & ATTR_DESCR_MASK) ==
6619 L1_BLOCK)
6620 return (NULL);
6621 l2 = pmap_l1_to_l2(l1, va);
6622 if (pmap_load(l2) != 0) {
6623 if ((pmap_load(l2) & ATTR_DESCR_MASK) ==
6624 L2_BLOCK)
6625 return (NULL);
6626 mpte = PTE_TO_VM_PAGE(pmap_load(l2));
6627 mpte->ref_count++;
6628 } else {
6629 mpte = _pmap_alloc_l3(pmap, l2pindex,
6630 NULL);
6631 if (mpte == NULL)
6632 return (mpte);
6633 }
6634 } else {
6635 mpte = _pmap_alloc_l3(pmap, l2pindex, NULL);
6636 if (mpte == NULL)
6637 return (mpte);
6638 }
6639 }
6640 l3 = VM_PAGE_TO_DMAP(mpte);
6641 l3 = &l3[pmap_l3_index(va)];
6642 } else {
6643 mpte = NULL;
6644 l2 = pmap_pde(kernel_pmap, va, &lvl);
6645 KASSERT(l2 != NULL,
6646 ("pmap_enter_quick_locked: Invalid page entry, va: 0x%lx",
6647 va));
6648 KASSERT(lvl == 2,
6649 ("pmap_enter_quick_locked: Invalid level %d", lvl));
6650 l3 = pmap_l2_to_l3(l2, va);
6651 }
6652
6653 /*
6654 * Abort if a mapping already exists.
6655 */
6656 if (pmap_load(l3) != 0) {
6657 if (mpte != NULL)
6658 mpte->ref_count--;
6659 return (NULL);
6660 }
6661
6662 /*
6663 * Enter on the PV list if part of our managed memory.
6664 */
6665 if ((m->oflags & VPO_UNMANAGED) == 0 &&
6666 !pmap_try_insert_pv_entry(pmap, va, m, lockp)) {
6667 if (mpte != NULL)
6668 pmap_abort_ptp(pmap, va, mpte);
6669 return (NULL);
6670 }
6671
6672 /*
6673 * Increment counters
6674 */
6675 pmap_resident_count_inc(pmap, 1);
6676
6677 pa = VM_PAGE_TO_PHYS(m);
6678 l3_val = PHYS_TO_PTE(pa) | pmap_sh_attr |
6679 ATTR_S1_IDX(m->md.pv_memattr) | ATTR_S1_AP(ATTR_S1_AP_RO) | L3_PAGE;
6680 l3_val |= pmap_pte_bti(pmap, va);
6681 if ((prot & VM_PROT_EXECUTE) == 0 ||
6682 m->md.pv_memattr == VM_MEMATTR_DEVICE)
6683 l3_val |= ATTR_S1_XN;
6684 if (ADDR_IS_USER(va))
6685 l3_val |= ATTR_S1_AP(ATTR_S1_AP_USER) | ATTR_S1_PXN;
6686 else
6687 l3_val |= ATTR_S1_UXN;
6688 if (pmap != kernel_pmap)
6689 l3_val |= ATTR_S1_nG;
6690
6691 /*
6692 * Now validate mapping with RO protection
6693 */
6694 if ((m->oflags & VPO_UNMANAGED) == 0)
6695 l3_val |= ATTR_SW_MANAGED;
6696 else
6697 l3_val |= ATTR_AF;
6698
6699 /* Sync icache before the mapping is stored to PTE */
6700 if ((prot & VM_PROT_EXECUTE) && pmap != kernel_pmap &&
6701 m->md.pv_memattr == VM_MEMATTR_WRITE_BACK)
6702 cpu_icache_sync_range(PHYS_TO_DMAP(pa), PAGE_SIZE);
6703
6704 pmap_store(l3, l3_val);
6705 dsb(ishst);
6706
6707 #if VM_NRESERVLEVEL > 0
6708 /*
6709 * First, attempt L3C promotion, if the virtual and physical addresses
6710 * are aligned with each other and an underlying reservation has the
6711 * neighboring L3 pages allocated. The first condition is simply an
6712 * optimization that recognizes some eventual promotion failures early
6713 * at a lower run-time cost. Then, attempt L2 promotion, if both a
6714 * level 1 reservation and the PTP are fully populated.
6715 */
6716 if ((prot & VM_PROT_NO_PROMOTE) == 0 &&
6717 (va & L3C_OFFSET) == (pa & L3C_OFFSET) &&
6718 (m->flags & PG_FICTITIOUS) == 0 &&
6719 (full_lvl = vm_reserv_level_iffullpop(m)) >= 0 &&
6720 pmap_promote_l3c(pmap, l3, va) &&
6721 full_lvl == 1 && (mpte == NULL || mpte->ref_count == NL3PG)) {
6722 if (l2 == NULL)
6723 l2 = pmap_l2(pmap, va);
6724
6725 /*
6726 * If promotion succeeds, then the next call to this function
6727 * should not be given the unmapped PTP as a hint.
6728 */
6729 if (pmap_promote_l2(pmap, l2, va, mpte, lockp))
6730 mpte = NULL;
6731 }
6732 #endif
6733
6734 return (mpte);
6735 }
6736
6737 /*
6738 * This code maps large physical mmap regions into the
6739 * processor address space. Note that some shortcuts
6740 * are taken, but the code works.
6741 */
6742 void
pmap_object_init_pt(pmap_t pmap,vm_offset_t addr,vm_object_t object,vm_pindex_t pindex,vm_size_t size)6743 pmap_object_init_pt(pmap_t pmap, vm_offset_t addr, vm_object_t object,
6744 vm_pindex_t pindex, vm_size_t size)
6745 {
6746
6747 VM_OBJECT_ASSERT_WLOCKED(object);
6748 KASSERT(object->type == OBJT_DEVICE || object->type == OBJT_SG,
6749 ("pmap_object_init_pt: non-device object"));
6750 }
6751
6752 /*
6753 * Clear the wired attribute from the mappings for the specified range of
6754 * addresses in the given pmap. Every valid mapping within that range
6755 * must have the wired attribute set. In contrast, invalid mappings
6756 * cannot have the wired attribute set, so they are ignored.
6757 *
6758 * The wired attribute of the page table entry is not a hardware feature,
6759 * so there is no need to invalidate any TLB entries.
6760 */
6761 void
pmap_unwire(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)6762 pmap_unwire(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
6763 {
6764 vm_offset_t va_next;
6765 pd_entry_t *l0, *l1, *l2;
6766 pt_entry_t *l3;
6767 bool partial_l3c;
6768
6769 PMAP_LOCK(pmap);
6770 for (; sva < eva; sva = va_next) {
6771 l0 = pmap_l0(pmap, sva);
6772 if (pmap_load(l0) == 0) {
6773 va_next = (sva + L0_SIZE) & ~L0_OFFSET;
6774 if (va_next < sva)
6775 va_next = eva;
6776 continue;
6777 }
6778
6779 l1 = pmap_l0_to_l1(l0, sva);
6780 va_next = (sva + L1_SIZE) & ~L1_OFFSET;
6781 if (va_next < sva)
6782 va_next = eva;
6783 if (pmap_load(l1) == 0)
6784 continue;
6785
6786 if ((pmap_load(l1) & ATTR_DESCR_MASK) == L1_BLOCK) {
6787 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
6788 KASSERT(va_next <= eva,
6789 ("partial update of non-transparent 1G page "
6790 "l1 %#lx sva %#lx eva %#lx va_next %#lx",
6791 pmap_load(l1), sva, eva, va_next));
6792 MPASS(pmap != kernel_pmap);
6793 MPASS((pmap_load(l1) & (ATTR_SW_MANAGED |
6794 ATTR_SW_WIRED)) == ATTR_SW_WIRED);
6795 pmap_clear_bits(l1, ATTR_SW_WIRED);
6796 pmap->pm_stats.wired_count -= L1_SIZE / PAGE_SIZE;
6797 continue;
6798 }
6799
6800 va_next = (sva + L2_SIZE) & ~L2_OFFSET;
6801 if (va_next < sva)
6802 va_next = eva;
6803
6804 l2 = pmap_l1_to_l2(l1, sva);
6805 if (pmap_load(l2) == 0)
6806 continue;
6807
6808 if ((pmap_load(l2) & ATTR_DESCR_MASK) == L2_BLOCK) {
6809 if ((pmap_load(l2) & ATTR_SW_WIRED) == 0)
6810 panic("pmap_unwire: l2 %#jx is missing "
6811 "ATTR_SW_WIRED", (uintmax_t)pmap_load(l2));
6812
6813 /*
6814 * Are we unwiring the entire large page? If not,
6815 * demote the mapping and fall through.
6816 */
6817 if (sva + L2_SIZE == va_next && eva >= va_next) {
6818 pmap_clear_bits(l2, ATTR_SW_WIRED);
6819 pmap->pm_stats.wired_count -= L2_SIZE /
6820 PAGE_SIZE;
6821 continue;
6822 } else if (pmap_demote_l2(pmap, l2, sva) == NULL)
6823 panic("pmap_unwire: demotion failed");
6824 }
6825 KASSERT((pmap_load(l2) & ATTR_DESCR_MASK) == L2_TABLE,
6826 ("pmap_unwire: Invalid l2 entry after demotion"));
6827
6828 if (va_next > eva)
6829 va_next = eva;
6830 for (partial_l3c = true, l3 = pmap_l2_to_l3(l2, sva);
6831 sva != va_next; l3++, sva += L3_SIZE) {
6832 if (pmap_load(l3) == 0)
6833 continue;
6834 if ((pmap_load(l3) & ATTR_CONTIGUOUS) != 0) {
6835 /*
6836 * Avoid demotion for whole-page unwiring.
6837 */
6838 if ((sva & L3C_OFFSET) == 0) {
6839 /*
6840 * Handle the possibility that
6841 * "va_next" is zero because of
6842 * address wraparound.
6843 */
6844 partial_l3c = sva + L3C_OFFSET >
6845 va_next - 1;
6846 }
6847 if (partial_l3c)
6848 (void)pmap_demote_l3c(pmap, l3, sva);
6849 }
6850 if ((pmap_load(l3) & ATTR_SW_WIRED) == 0)
6851 panic("pmap_unwire: l3 %#jx is missing "
6852 "ATTR_SW_WIRED", (uintmax_t)pmap_load(l3));
6853
6854 /*
6855 * ATTR_SW_WIRED must be cleared atomically. Although
6856 * the pmap lock synchronizes access to ATTR_SW_WIRED,
6857 * the System MMU may write to the entry concurrently.
6858 */
6859 pmap_clear_bits(l3, ATTR_SW_WIRED);
6860 pmap->pm_stats.wired_count--;
6861 }
6862 }
6863 PMAP_UNLOCK(pmap);
6864 }
6865
6866 /*
6867 * This function requires that the caller has already added one to ml3's
6868 * ref_count in anticipation of creating a 4KB page mapping.
6869 */
6870 static bool
pmap_copy_l3c(pmap_t pmap,pt_entry_t * l3p,vm_offset_t va,pt_entry_t l3e,vm_page_t ml3,struct rwlock ** lockp)6871 pmap_copy_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va, pt_entry_t l3e,
6872 vm_page_t ml3, struct rwlock **lockp)
6873 {
6874 pt_entry_t *tl3p;
6875
6876 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
6877 KASSERT((va & L3C_OFFSET) == 0,
6878 ("pmap_copy_l3c: va is not aligned"));
6879 KASSERT((l3e & ATTR_SW_MANAGED) != 0,
6880 ("pmap_copy_l3c: l3e is not managed"));
6881
6882 /*
6883 * Abort if a mapping already exists.
6884 */
6885 for (tl3p = l3p; tl3p < &l3p[L3C_ENTRIES]; tl3p++)
6886 if (pmap_load(tl3p) != 0) {
6887 if (ml3 != NULL)
6888 ml3->ref_count--;
6889 return (false);
6890 }
6891
6892 if (!pmap_pv_insert_l3c(pmap, va, PTE_TO_VM_PAGE(l3e), lockp)) {
6893 if (ml3 != NULL)
6894 pmap_abort_ptp(pmap, va, ml3);
6895 return (false);
6896 }
6897 ml3->ref_count += L3C_ENTRIES - 1;
6898
6899 /*
6900 * Clear the wired and accessed bits. However, leave the dirty bit
6901 * unchanged because read/write superpage mappings are required to be
6902 * dirty.
6903 */
6904 l3e &= ~(ATTR_SW_WIRED | ATTR_AF);
6905
6906 for (tl3p = l3p; tl3p < &l3p[L3C_ENTRIES]; tl3p++) {
6907 pmap_store(tl3p, l3e);
6908 l3e += L3_SIZE;
6909 }
6910 pmap_resident_count_inc(pmap, L3C_ENTRIES);
6911 counter_u64_add(pmap_l3c_mappings, 1);
6912 CTR2(KTR_PMAP, "pmap_copy_l3c: success for va %#lx in pmap %p",
6913 va, pmap);
6914 return (true);
6915 }
6916
6917 /*
6918 * Copy the range specified by src_addr/len
6919 * from the source map to the range dst_addr/len
6920 * in the destination map.
6921 *
6922 * This routine is only advisory and need not do anything.
6923 *
6924 * Because the executable mappings created by this routine are copied,
6925 * it should not have to flush the instruction cache.
6926 */
6927 void
pmap_copy(pmap_t dst_pmap,pmap_t src_pmap,vm_offset_t dst_addr,vm_size_t len,vm_offset_t src_addr)6928 pmap_copy(pmap_t dst_pmap, pmap_t src_pmap, vm_offset_t dst_addr, vm_size_t len,
6929 vm_offset_t src_addr)
6930 {
6931 struct rwlock *lock;
6932 pd_entry_t *l0, *l1, *l2, srcptepaddr;
6933 pt_entry_t *dst_pte, mask, nbits, ptetemp, *src_pte;
6934 vm_offset_t addr, end_addr, va_next;
6935 vm_page_t dst_m, dstmpte, srcmpte;
6936
6937 PMAP_ASSERT_STAGE1(dst_pmap);
6938 PMAP_ASSERT_STAGE1(src_pmap);
6939
6940 if (dst_addr != src_addr)
6941 return;
6942 end_addr = src_addr + len;
6943 lock = NULL;
6944 if (dst_pmap < src_pmap) {
6945 PMAP_LOCK(dst_pmap);
6946 PMAP_LOCK(src_pmap);
6947 } else {
6948 PMAP_LOCK(src_pmap);
6949 PMAP_LOCK(dst_pmap);
6950 }
6951 for (addr = src_addr; addr < end_addr; addr = va_next) {
6952 l0 = pmap_l0(src_pmap, addr);
6953 if (pmap_load(l0) == 0) {
6954 va_next = (addr + L0_SIZE) & ~L0_OFFSET;
6955 if (va_next < addr)
6956 va_next = end_addr;
6957 continue;
6958 }
6959
6960 va_next = (addr + L1_SIZE) & ~L1_OFFSET;
6961 if (va_next < addr)
6962 va_next = end_addr;
6963 l1 = pmap_l0_to_l1(l0, addr);
6964 if (pmap_load(l1) == 0)
6965 continue;
6966 if ((pmap_load(l1) & ATTR_DESCR_MASK) == L1_BLOCK) {
6967 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
6968 KASSERT(va_next <= end_addr,
6969 ("partial update of non-transparent 1G page "
6970 "l1 %#lx addr %#lx end_addr %#lx va_next %#lx",
6971 pmap_load(l1), addr, end_addr, va_next));
6972 srcptepaddr = pmap_load(l1);
6973 l1 = pmap_l1(dst_pmap, addr);
6974 if (l1 == NULL) {
6975 if (_pmap_alloc_l3(dst_pmap,
6976 pmap_l0_pindex(addr), NULL) == NULL)
6977 break;
6978 l1 = pmap_l1(dst_pmap, addr);
6979 } else {
6980 l0 = pmap_l0(dst_pmap, addr);
6981 dst_m = PTE_TO_VM_PAGE(pmap_load(l0));
6982 dst_m->ref_count++;
6983 }
6984 KASSERT(pmap_load(l1) == 0,
6985 ("1G mapping present in dst pmap "
6986 "l1 %#lx addr %#lx end_addr %#lx va_next %#lx",
6987 pmap_load(l1), addr, end_addr, va_next));
6988 pmap_store(l1, srcptepaddr & ~ATTR_SW_WIRED);
6989 pmap_resident_count_inc(dst_pmap, L1_SIZE / PAGE_SIZE);
6990 continue;
6991 }
6992
6993 va_next = (addr + L2_SIZE) & ~L2_OFFSET;
6994 if (va_next < addr)
6995 va_next = end_addr;
6996 l2 = pmap_l1_to_l2(l1, addr);
6997 srcptepaddr = pmap_load(l2);
6998 if (srcptepaddr == 0)
6999 continue;
7000 if ((srcptepaddr & ATTR_DESCR_MASK) == L2_BLOCK) {
7001 /*
7002 * We can only virtual copy whole superpages.
7003 */
7004 if ((addr & L2_OFFSET) != 0 ||
7005 addr + L2_SIZE > end_addr)
7006 continue;
7007 l2 = pmap_alloc_l2(dst_pmap, addr, &dst_m, NULL);
7008 if (l2 == NULL)
7009 break;
7010 if (pmap_load(l2) == 0 &&
7011 ((srcptepaddr & ATTR_SW_MANAGED) == 0 ||
7012 pmap_pv_insert_l2(dst_pmap, addr, srcptepaddr,
7013 PMAP_ENTER_NORECLAIM, &lock))) {
7014 /*
7015 * We leave the dirty bit unchanged because
7016 * managed read/write superpage mappings are
7017 * required to be dirty. However, managed
7018 * superpage mappings are not required to
7019 * have their accessed bit set, so we clear
7020 * it because we don't know if this mapping
7021 * will be used.
7022 */
7023 srcptepaddr &= ~ATTR_SW_WIRED;
7024 if ((srcptepaddr & ATTR_SW_MANAGED) != 0)
7025 srcptepaddr &= ~ATTR_AF;
7026 pmap_store(l2, srcptepaddr);
7027 pmap_resident_count_inc(dst_pmap, L2_SIZE /
7028 PAGE_SIZE);
7029 counter_u64_add(pmap_l2_mappings, 1);
7030 } else
7031 pmap_abort_ptp(dst_pmap, addr, dst_m);
7032 continue;
7033 }
7034 KASSERT((srcptepaddr & ATTR_DESCR_MASK) == L2_TABLE,
7035 ("pmap_copy: invalid L2 entry"));
7036 srcmpte = PTE_TO_VM_PAGE(srcptepaddr);
7037 KASSERT(srcmpte->ref_count > 0,
7038 ("pmap_copy: source page table page is unused"));
7039 if (va_next > end_addr)
7040 va_next = end_addr;
7041 src_pte = PHYS_TO_DMAP(PTE_TO_PHYS(srcptepaddr));
7042 src_pte = &src_pte[pmap_l3_index(addr)];
7043 dstmpte = NULL;
7044 for (; addr < va_next; addr += PAGE_SIZE, src_pte++) {
7045 ptetemp = pmap_load(src_pte);
7046
7047 /*
7048 * We only virtual copy managed pages.
7049 */
7050 if ((ptetemp & ATTR_SW_MANAGED) == 0)
7051 continue;
7052
7053 if (dstmpte != NULL) {
7054 KASSERT(dstmpte->pindex == pmap_l2_pindex(addr),
7055 ("dstmpte pindex/addr mismatch"));
7056 dstmpte->ref_count++;
7057 } else if ((dstmpte = pmap_alloc_l3(dst_pmap, addr,
7058 NULL)) == NULL)
7059 goto out;
7060 dst_pte = VM_PAGE_TO_DMAP(dstmpte);
7061 dst_pte = &dst_pte[pmap_l3_index(addr)];
7062 if ((ptetemp & ATTR_CONTIGUOUS) != 0 && (addr &
7063 L3C_OFFSET) == 0 && addr + L3C_OFFSET <=
7064 va_next - 1) {
7065 if (!pmap_copy_l3c(dst_pmap, dst_pte, addr,
7066 ptetemp, dstmpte, &lock))
7067 goto out;
7068 addr += L3C_SIZE - PAGE_SIZE;
7069 src_pte += L3C_ENTRIES - 1;
7070 } else if (pmap_load(dst_pte) == 0 &&
7071 pmap_try_insert_pv_entry(dst_pmap, addr,
7072 PTE_TO_VM_PAGE(ptetemp), &lock)) {
7073 /*
7074 * Clear the wired, contiguous, modified, and
7075 * accessed bits from the destination PTE.
7076 * The contiguous bit is cleared because we
7077 * are not copying the entire L3C superpage.
7078 */
7079 mask = ATTR_SW_WIRED | ATTR_CONTIGUOUS |
7080 ATTR_AF;
7081 nbits = 0;
7082 if ((ptetemp & ATTR_SW_DBM) != 0)
7083 nbits |= ATTR_S1_AP_RW_BIT;
7084 pmap_store(dst_pte, (ptetemp & ~mask) | nbits);
7085 pmap_resident_count_inc(dst_pmap, 1);
7086 } else {
7087 pmap_abort_ptp(dst_pmap, addr, dstmpte);
7088 goto out;
7089 }
7090 /* Have we copied all of the valid mappings? */
7091 if (dstmpte->ref_count >= srcmpte->ref_count)
7092 break;
7093 }
7094 }
7095 out:
7096 /*
7097 * XXX This barrier may not be needed because the destination pmap is
7098 * not active.
7099 */
7100 dsb(ishst);
7101
7102 if (lock != NULL)
7103 rw_wunlock(lock);
7104 PMAP_UNLOCK(src_pmap);
7105 PMAP_UNLOCK(dst_pmap);
7106 }
7107
7108 int
pmap_vmspace_copy(pmap_t dst_pmap,pmap_t src_pmap)7109 pmap_vmspace_copy(pmap_t dst_pmap, pmap_t src_pmap)
7110 {
7111 int error;
7112
7113 if (dst_pmap->pm_stage != src_pmap->pm_stage)
7114 return (EINVAL);
7115
7116 if (dst_pmap->pm_stage != PM_STAGE1 || src_pmap->pm_bti == NULL)
7117 return (0);
7118
7119 for (;;) {
7120 if (dst_pmap < src_pmap) {
7121 PMAP_LOCK(dst_pmap);
7122 PMAP_LOCK(src_pmap);
7123 } else {
7124 PMAP_LOCK(src_pmap);
7125 PMAP_LOCK(dst_pmap);
7126 }
7127 error = pmap_bti_copy(dst_pmap, src_pmap);
7128 /* Clean up partial copy on failure due to no memory. */
7129 if (error == ENOMEM)
7130 pmap_bti_deassign_all(dst_pmap);
7131 PMAP_UNLOCK(src_pmap);
7132 PMAP_UNLOCK(dst_pmap);
7133 if (error != ENOMEM)
7134 break;
7135 vm_wait(NULL);
7136 }
7137 return (error);
7138 }
7139
7140 /*
7141 * pmap_zero_page zeros the specified hardware page by mapping
7142 * the page into KVM and using bzero to clear its contents.
7143 */
7144 void
pmap_zero_page(vm_page_t m)7145 pmap_zero_page(vm_page_t m)
7146 {
7147 void *va = VM_PAGE_TO_DMAP(m);
7148
7149 pagezero(va);
7150 m->md.pv_flags &= ~PV_MTE_TAGGED;
7151 }
7152
7153 /*
7154 * pmap_zero_page_area zeros the specified hardware page by mapping
7155 * the page into KVM and using bzero to clear its contents.
7156 *
7157 * off and size may not cover an area beyond a single hardware page.
7158 */
7159 void
pmap_zero_page_area(vm_page_t m,int off,int size)7160 pmap_zero_page_area(vm_page_t m, int off, int size)
7161 {
7162 void *va = VM_PAGE_TO_DMAP(m);
7163
7164 if (off == 0 && size == PAGE_SIZE)
7165 pagezero(va);
7166 else
7167 bzero((char *)va + off, size);
7168 }
7169
7170 /*
7171 * pmap_copy_page copies the specified (machine independent)
7172 * page by mapping the page into virtual memory and using
7173 * memcpy to copy the page, one machine dependent page at a
7174 * time.
7175 */
7176 void
pmap_copy_page(vm_page_t msrc,vm_page_t mdst)7177 pmap_copy_page(vm_page_t msrc, vm_page_t mdst)
7178 {
7179 void *src = VM_PAGE_TO_DMAP(msrc);
7180 void *dst = VM_PAGE_TO_DMAP(mdst);
7181
7182 /*
7183 * On a page copy, check whether the src page is tagged. If it is,
7184 * we must copy the tags before copying the contents of the page.
7185 */
7186 if ((msrc->md.pv_flags & PV_MTE_TAGGED) != 0)
7187 mte_copy_tags(msrc, mdst, src, dst);
7188 else
7189 mdst->md.pv_flags &= ~PV_MTE_TAGGED;
7190
7191 pagecopy(src, dst);
7192 }
7193
7194 int unmapped_buf_allowed = 1;
7195
7196 void
pmap_copy_pages(vm_page_t ma[],vm_offset_t a_offset,vm_page_t mb[],vm_offset_t b_offset,int xfersize)7197 pmap_copy_pages(vm_page_t ma[], vm_offset_t a_offset, vm_page_t mb[],
7198 vm_offset_t b_offset, int xfersize)
7199 {
7200 void *a_cp, *b_cp;
7201 vm_page_t m_a, m_b;
7202 vm_paddr_t p_a, p_b;
7203 vm_offset_t a_pg_offset, b_pg_offset;
7204 int cnt;
7205
7206 while (xfersize > 0) {
7207 KASSERT(ADDR_IS_CANONICAL(a_offset),
7208 ("%s: Address not in canonical form: %lx", __func__, a_offset));
7209
7210 a_pg_offset = a_offset & PAGE_MASK;
7211 m_a = ma[a_offset >> PAGE_SHIFT];
7212 p_a = m_a->phys_addr;
7213 b_pg_offset = b_offset & PAGE_MASK;
7214 m_b = mb[b_offset >> PAGE_SHIFT];
7215 p_b = m_b->phys_addr;
7216 cnt = min(xfersize, PAGE_SIZE - a_pg_offset);
7217 cnt = min(cnt, PAGE_SIZE - b_pg_offset);
7218 if (__predict_false(!PHYS_IN_DMAP(p_a))) {
7219 panic("!DMAP a %lx", p_a);
7220 } else {
7221 a_cp = (char *)PHYS_TO_DMAP(p_a) + a_pg_offset;
7222 }
7223 if (__predict_false(!PHYS_IN_DMAP(p_b))) {
7224 panic("!DMAP b %lx", p_b);
7225 } else {
7226 b_cp = (char *)PHYS_TO_DMAP(p_b) + b_pg_offset;
7227 }
7228 memcpy(b_cp, a_cp, cnt);
7229 a_offset += cnt;
7230 b_offset += cnt;
7231 xfersize -= cnt;
7232 }
7233 }
7234
7235 void *
pmap_quick_enter_page(vm_page_t m)7236 pmap_quick_enter_page(vm_page_t m)
7237 {
7238
7239 return (VM_PAGE_TO_DMAP(m));
7240 }
7241
7242 void
pmap_quick_remove_page(void * addr)7243 pmap_quick_remove_page(void *addr)
7244 {
7245 }
7246
7247 /*
7248 * Returns true if the pmap's pv is one of the first
7249 * 16 pvs linked to from this page. This count may
7250 * be changed upwards or downwards in the future; it
7251 * is only necessary that true be returned for a small
7252 * subset of pmaps for proper page aging.
7253 */
7254 bool
pmap_page_exists_quick(pmap_t pmap,vm_page_t m)7255 pmap_page_exists_quick(pmap_t pmap, vm_page_t m)
7256 {
7257 struct md_page *pvh;
7258 struct rwlock *lock;
7259 pv_entry_t pv;
7260 int loops = 0;
7261 bool rv;
7262
7263 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
7264 ("pmap_page_exists_quick: page %p is not managed", m));
7265 rv = false;
7266 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
7267 rw_rlock(lock);
7268 TAILQ_FOREACH(pv, &m->md.pv_list, pv_next) {
7269 if (PV_PMAP(pv) == pmap) {
7270 rv = true;
7271 break;
7272 }
7273 loops++;
7274 if (loops >= 16)
7275 break;
7276 }
7277 if (!rv && loops < 16 && (m->flags & PG_FICTITIOUS) == 0) {
7278 pvh = page_to_pvh(m);
7279 TAILQ_FOREACH(pv, &pvh->pv_list, pv_next) {
7280 if (PV_PMAP(pv) == pmap) {
7281 rv = true;
7282 break;
7283 }
7284 loops++;
7285 if (loops >= 16)
7286 break;
7287 }
7288 }
7289 rw_runlock(lock);
7290 return (rv);
7291 }
7292
7293 /*
7294 * pmap_page_wired_mappings:
7295 *
7296 * Return the number of managed mappings to the given physical page
7297 * that are wired.
7298 */
7299 int
pmap_page_wired_mappings(vm_page_t m)7300 pmap_page_wired_mappings(vm_page_t m)
7301 {
7302 struct rwlock *lock;
7303 struct md_page *pvh;
7304 pmap_t pmap;
7305 pt_entry_t *pte;
7306 pv_entry_t pv;
7307 int count, md_gen, pvh_gen;
7308
7309 if ((m->oflags & VPO_UNMANAGED) != 0)
7310 return (0);
7311 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
7312 rw_rlock(lock);
7313 restart:
7314 count = 0;
7315 TAILQ_FOREACH(pv, &m->md.pv_list, pv_next) {
7316 pmap = PV_PMAP(pv);
7317 if (!PMAP_TRYLOCK(pmap)) {
7318 md_gen = m->md.pv_gen;
7319 rw_runlock(lock);
7320 PMAP_LOCK(pmap);
7321 rw_rlock(lock);
7322 if (md_gen != m->md.pv_gen) {
7323 PMAP_UNLOCK(pmap);
7324 goto restart;
7325 }
7326 }
7327 pte = pmap_pte_exists(pmap, pv->pv_va, 3, __func__);
7328 if ((pmap_load(pte) & ATTR_SW_WIRED) != 0)
7329 count++;
7330 PMAP_UNLOCK(pmap);
7331 }
7332 if ((m->flags & PG_FICTITIOUS) == 0) {
7333 pvh = page_to_pvh(m);
7334 TAILQ_FOREACH(pv, &pvh->pv_list, pv_next) {
7335 pmap = PV_PMAP(pv);
7336 if (!PMAP_TRYLOCK(pmap)) {
7337 md_gen = m->md.pv_gen;
7338 pvh_gen = pvh->pv_gen;
7339 rw_runlock(lock);
7340 PMAP_LOCK(pmap);
7341 rw_rlock(lock);
7342 if (md_gen != m->md.pv_gen ||
7343 pvh_gen != pvh->pv_gen) {
7344 PMAP_UNLOCK(pmap);
7345 goto restart;
7346 }
7347 }
7348 pte = pmap_pte_exists(pmap, pv->pv_va, 2, __func__);
7349 if ((pmap_load(pte) & ATTR_SW_WIRED) != 0)
7350 count++;
7351 PMAP_UNLOCK(pmap);
7352 }
7353 }
7354 rw_runlock(lock);
7355 return (count);
7356 }
7357
7358 /*
7359 * Returns true if the given page is mapped individually or as part of
7360 * a 2mpage. Otherwise, returns false.
7361 */
7362 bool
pmap_page_is_mapped(vm_page_t m)7363 pmap_page_is_mapped(vm_page_t m)
7364 {
7365 struct rwlock *lock;
7366 bool rv;
7367
7368 if ((m->oflags & VPO_UNMANAGED) != 0)
7369 return (false);
7370 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
7371 rw_rlock(lock);
7372 rv = !TAILQ_EMPTY(&m->md.pv_list) ||
7373 ((m->flags & PG_FICTITIOUS) == 0 &&
7374 !TAILQ_EMPTY(&page_to_pvh(m)->pv_list));
7375 rw_runlock(lock);
7376 return (rv);
7377 }
7378
7379 /*
7380 * Destroy all managed, non-wired mappings in the given user-space
7381 * pmap. This pmap cannot be active on any processor besides the
7382 * caller.
7383 *
7384 * This function cannot be applied to the kernel pmap. Moreover, it
7385 * is not intended for general use. It is only to be used during
7386 * process termination. Consequently, it can be implemented in ways
7387 * that make it faster than pmap_remove(). First, it can more quickly
7388 * destroy mappings by iterating over the pmap's collection of PV
7389 * entries, rather than searching the page table. Second, it doesn't
7390 * have to test and clear the page table entries atomically, because
7391 * no processor is currently accessing the user address space. In
7392 * particular, a page table entry's dirty bit won't change state once
7393 * this function starts.
7394 */
7395 void
pmap_remove_pages(pmap_t pmap)7396 pmap_remove_pages(pmap_t pmap)
7397 {
7398 pd_entry_t *pde;
7399 pt_entry_t *pte, tpte;
7400 struct spglist free;
7401 struct pv_chunklist free_chunks[PMAP_MEMDOM];
7402 vm_page_t m, ml3, mt;
7403 pv_entry_t pv;
7404 struct md_page *pvh;
7405 struct pv_chunk *pc, *npc;
7406 struct rwlock *lock;
7407 int64_t bit;
7408 uint64_t inuse, bitmask;
7409 int allfree, field, i, idx, lvl;
7410 int freed __pvused;
7411 vm_paddr_t pa;
7412
7413 lock = NULL;
7414
7415 for (i = 0; i < PMAP_MEMDOM; i++)
7416 TAILQ_INIT(&free_chunks[i]);
7417 SLIST_INIT(&free);
7418 PMAP_LOCK(pmap);
7419 TAILQ_FOREACH_SAFE(pc, &pmap->pm_pvchunk, pc_list, npc) {
7420 allfree = 1;
7421 freed = 0;
7422 for (field = 0; field < _NPCM; field++) {
7423 inuse = ~pc->pc_map[field] & pc_freemask[field];
7424 while (inuse != 0) {
7425 bit = ffsl(inuse) - 1;
7426 bitmask = 1UL << bit;
7427 idx = field * 64 + bit;
7428 pv = &pc->pc_pventry[idx];
7429 inuse &= ~bitmask;
7430
7431 pde = pmap_pde(pmap, pv->pv_va, &lvl);
7432 KASSERT(pde != NULL,
7433 ("Attempting to remove an unmapped page"));
7434
7435 switch(lvl) {
7436 case 1:
7437 pte = pmap_l1_to_l2(pde, pv->pv_va);
7438 tpte = pmap_load(pte);
7439 KASSERT((tpte & ATTR_DESCR_MASK) ==
7440 L2_BLOCK,
7441 ("Attempting to remove an invalid "
7442 "block: %lx", tpte));
7443 break;
7444 case 2:
7445 pte = pmap_l2_to_l3(pde, pv->pv_va);
7446 tpte = pmap_load(pte);
7447 KASSERT((tpte & ATTR_DESCR_MASK) ==
7448 L3_PAGE,
7449 ("Attempting to remove an invalid "
7450 "page: %lx", tpte));
7451 break;
7452 default:
7453 panic(
7454 "Invalid page directory level: %d",
7455 lvl);
7456 }
7457
7458 /*
7459 * We cannot remove wired mappings at this time.
7460 *
7461 * For L3C superpages, all of the constituent PTEs
7462 * should have the wired bit set, so we don't
7463 * check for ATTR_CONTIGUOUS here.
7464 */
7465 if (tpte & ATTR_SW_WIRED) {
7466 allfree = 0;
7467 continue;
7468 }
7469
7470 /* Mark free */
7471 pc->pc_map[field] |= bitmask;
7472
7473 /*
7474 * Because this pmap is not active on other
7475 * processors, the dirty bit cannot have
7476 * changed state since we last loaded pte.
7477 */
7478 pmap_clear(pte);
7479
7480 pa = PTE_TO_PHYS(tpte);
7481
7482 m = PHYS_TO_VM_PAGE(pa);
7483 KASSERT(m->phys_addr == pa,
7484 ("vm_page_t %p phys_addr mismatch %016jx %016jx",
7485 m, (uintmax_t)m->phys_addr,
7486 (uintmax_t)tpte));
7487
7488 KASSERT((m->flags & PG_FICTITIOUS) != 0 ||
7489 m < &vm_page_array[vm_page_array_size],
7490 ("pmap_remove_pages: bad pte %#jx",
7491 (uintmax_t)tpte));
7492
7493 /*
7494 * Update the vm_page_t clean/reference bits.
7495 *
7496 * We don't check for ATTR_CONTIGUOUS here
7497 * because writeable L3C superpages are expected
7498 * to be dirty, i.e., every constituent PTE
7499 * should be dirty.
7500 */
7501 if (pmap_pte_dirty(pmap, tpte)) {
7502 switch (lvl) {
7503 case 1:
7504 for (mt = m; mt < &m[L2_SIZE / PAGE_SIZE]; mt++)
7505 vm_page_dirty(mt);
7506 break;
7507 case 2:
7508 vm_page_dirty(m);
7509 break;
7510 }
7511 }
7512
7513 CHANGE_PV_LIST_LOCK_TO_VM_PAGE(&lock, m);
7514
7515 switch (lvl) {
7516 case 1:
7517 pmap_resident_count_dec(pmap,
7518 L2_SIZE / PAGE_SIZE);
7519 pvh = page_to_pvh(m);
7520 TAILQ_REMOVE(&pvh->pv_list, pv,pv_next);
7521 pvh->pv_gen++;
7522 if (TAILQ_EMPTY(&pvh->pv_list)) {
7523 for (mt = m; mt < &m[L2_SIZE / PAGE_SIZE]; mt++)
7524 if ((mt->a.flags & PGA_WRITEABLE) != 0 &&
7525 TAILQ_EMPTY(&mt->md.pv_list))
7526 vm_page_aflag_clear(mt, PGA_WRITEABLE);
7527 }
7528 ml3 = pmap_remove_pt_page(pmap,
7529 pv->pv_va);
7530 if (ml3 != NULL) {
7531 KASSERT(vm_page_any_valid(ml3),
7532 ("pmap_remove_pages: l3 page not promoted"));
7533 pmap_resident_count_dec(pmap,1);
7534 KASSERT(ml3->ref_count == NL3PG,
7535 ("pmap_remove_pages: l3 page ref count error"));
7536 ml3->ref_count = 0;
7537 pmap_add_delayed_free_list(ml3,
7538 &free, false);
7539 }
7540 break;
7541 case 2:
7542 pmap_resident_count_dec(pmap, 1);
7543 TAILQ_REMOVE(&m->md.pv_list, pv,
7544 pv_next);
7545 m->md.pv_gen++;
7546 if ((m->a.flags & PGA_WRITEABLE) != 0 &&
7547 TAILQ_EMPTY(&m->md.pv_list) &&
7548 (m->flags & PG_FICTITIOUS) == 0) {
7549 pvh = page_to_pvh(m);
7550 if (TAILQ_EMPTY(&pvh->pv_list))
7551 vm_page_aflag_clear(m,
7552 PGA_WRITEABLE);
7553 }
7554 break;
7555 }
7556 pmap_unuse_pt(pmap, pv->pv_va, pmap_load(pde),
7557 &free);
7558 freed++;
7559 }
7560 }
7561 PV_STAT(atomic_add_long(&pv_entry_frees, freed));
7562 PV_STAT(atomic_add_int(&pv_entry_spare, freed));
7563 PV_STAT(atomic_subtract_long(&pv_entry_count, freed));
7564 if (allfree) {
7565 TAILQ_REMOVE(&pmap->pm_pvchunk, pc, pc_list);
7566 TAILQ_INSERT_TAIL(&free_chunks[pc_to_domain(pc)], pc,
7567 pc_list);
7568 }
7569 }
7570 if (lock != NULL)
7571 rw_wunlock(lock);
7572 pmap_invalidate_all(pmap);
7573 pmap_bti_deassign_all(pmap);
7574 free_pv_chunk_batch(free_chunks);
7575 PMAP_UNLOCK(pmap);
7576 vm_page_free_pages_toq(&free, true);
7577 }
7578
7579 /*
7580 * This is used to check if a page has been accessed or modified.
7581 */
7582 static bool
pmap_page_test_mappings(vm_page_t m,bool accessed,bool modified)7583 pmap_page_test_mappings(vm_page_t m, bool accessed, bool modified)
7584 {
7585 struct rwlock *lock;
7586 pv_entry_t pv;
7587 struct md_page *pvh;
7588 pt_entry_t l3e, mask, *pte, value;
7589 pmap_t pmap;
7590 int md_gen, pvh_gen;
7591 bool rv;
7592
7593 rv = false;
7594 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
7595 rw_rlock(lock);
7596 restart:
7597 TAILQ_FOREACH(pv, &m->md.pv_list, pv_next) {
7598 pmap = PV_PMAP(pv);
7599 PMAP_ASSERT_STAGE1(pmap);
7600 if (!PMAP_TRYLOCK(pmap)) {
7601 md_gen = m->md.pv_gen;
7602 rw_runlock(lock);
7603 PMAP_LOCK(pmap);
7604 rw_rlock(lock);
7605 if (md_gen != m->md.pv_gen) {
7606 PMAP_UNLOCK(pmap);
7607 goto restart;
7608 }
7609 }
7610 pte = pmap_pte_exists(pmap, pv->pv_va, 3, __func__);
7611 mask = 0;
7612 value = 0;
7613 if (modified) {
7614 mask |= ATTR_S1_AP_RW_BIT;
7615 value |= ATTR_S1_AP(ATTR_S1_AP_RW);
7616 }
7617 if (accessed) {
7618 mask |= ATTR_AF | ATTR_DESCR_MASK;
7619 value |= ATTR_AF | L3_PAGE;
7620 }
7621 l3e = pmap_load(pte);
7622 if ((l3e & ATTR_CONTIGUOUS) != 0)
7623 l3e = pmap_load_l3c(pte);
7624 PMAP_UNLOCK(pmap);
7625 rv = (l3e & mask) == value;
7626 if (rv)
7627 goto out;
7628 }
7629 if ((m->flags & PG_FICTITIOUS) == 0) {
7630 pvh = page_to_pvh(m);
7631 TAILQ_FOREACH(pv, &pvh->pv_list, pv_next) {
7632 pmap = PV_PMAP(pv);
7633 PMAP_ASSERT_STAGE1(pmap);
7634 if (!PMAP_TRYLOCK(pmap)) {
7635 md_gen = m->md.pv_gen;
7636 pvh_gen = pvh->pv_gen;
7637 rw_runlock(lock);
7638 PMAP_LOCK(pmap);
7639 rw_rlock(lock);
7640 if (md_gen != m->md.pv_gen ||
7641 pvh_gen != pvh->pv_gen) {
7642 PMAP_UNLOCK(pmap);
7643 goto restart;
7644 }
7645 }
7646 pte = pmap_pte_exists(pmap, pv->pv_va, 2, __func__);
7647 mask = 0;
7648 value = 0;
7649 if (modified) {
7650 mask |= ATTR_S1_AP_RW_BIT;
7651 value |= ATTR_S1_AP(ATTR_S1_AP_RW);
7652 }
7653 if (accessed) {
7654 mask |= ATTR_AF | ATTR_DESCR_MASK;
7655 value |= ATTR_AF | L2_BLOCK;
7656 }
7657 rv = (pmap_load(pte) & mask) == value;
7658 PMAP_UNLOCK(pmap);
7659 if (rv)
7660 goto out;
7661 }
7662 }
7663 out:
7664 rw_runlock(lock);
7665 return (rv);
7666 }
7667
7668 /*
7669 * pmap_is_modified:
7670 *
7671 * Return whether or not the specified physical page was modified
7672 * in any physical maps.
7673 */
7674 bool
pmap_is_modified(vm_page_t m)7675 pmap_is_modified(vm_page_t m)
7676 {
7677
7678 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
7679 ("pmap_is_modified: page %p is not managed", m));
7680
7681 /*
7682 * If the page is not busied then this check is racy.
7683 */
7684 if (!pmap_page_is_write_mapped(m))
7685 return (false);
7686 return (pmap_page_test_mappings(m, false, true));
7687 }
7688
7689 /*
7690 * pmap_is_prefaultable:
7691 *
7692 * Return whether or not the specified virtual address is eligible
7693 * for prefault.
7694 */
7695 bool
pmap_is_prefaultable(pmap_t pmap,vm_offset_t addr)7696 pmap_is_prefaultable(pmap_t pmap, vm_offset_t addr)
7697 {
7698 pd_entry_t *pde;
7699 pt_entry_t *pte;
7700 bool rv;
7701 int lvl;
7702
7703 /*
7704 * Return true if and only if the L3 entry for the specified virtual
7705 * address is allocated but invalid.
7706 */
7707 rv = false;
7708 PMAP_LOCK(pmap);
7709 pde = pmap_pde(pmap, addr, &lvl);
7710 if (pde != NULL && lvl == 2) {
7711 pte = pmap_l2_to_l3(pde, addr);
7712 rv = pmap_load(pte) == 0;
7713 }
7714 PMAP_UNLOCK(pmap);
7715 return (rv);
7716 }
7717
7718 /*
7719 * pmap_is_referenced:
7720 *
7721 * Return whether or not the specified physical page was referenced
7722 * in any physical maps.
7723 */
7724 bool
pmap_is_referenced(vm_page_t m)7725 pmap_is_referenced(vm_page_t m)
7726 {
7727
7728 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
7729 ("pmap_is_referenced: page %p is not managed", m));
7730 return (pmap_page_test_mappings(m, true, false));
7731 }
7732
7733 /*
7734 * Clear the write and modified bits in each of the given page's mappings.
7735 */
7736 void
pmap_remove_write(vm_page_t m)7737 pmap_remove_write(vm_page_t m)
7738 {
7739 struct md_page *pvh;
7740 pmap_t pmap;
7741 struct rwlock *lock;
7742 pv_entry_t next_pv, pv;
7743 pt_entry_t oldpte, *pte, set, clear, mask, val;
7744 vm_offset_t va;
7745 int md_gen, pvh_gen;
7746
7747 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
7748 ("pmap_remove_write: page %p is not managed", m));
7749 vm_page_assert_busied(m);
7750
7751 if (!pmap_page_is_write_mapped(m))
7752 return;
7753 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
7754 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy : page_to_pvh(m);
7755 rw_wlock(lock);
7756 retry:
7757 TAILQ_FOREACH_SAFE(pv, &pvh->pv_list, pv_next, next_pv) {
7758 pmap = PV_PMAP(pv);
7759 PMAP_ASSERT_STAGE1(pmap);
7760 if (!PMAP_TRYLOCK(pmap)) {
7761 pvh_gen = pvh->pv_gen;
7762 rw_wunlock(lock);
7763 PMAP_LOCK(pmap);
7764 rw_wlock(lock);
7765 if (pvh_gen != pvh->pv_gen) {
7766 PMAP_UNLOCK(pmap);
7767 goto retry;
7768 }
7769 }
7770 va = pv->pv_va;
7771 pte = pmap_pte_exists(pmap, va, 2, __func__);
7772 if ((pmap_load(pte) & ATTR_SW_DBM) != 0)
7773 (void)pmap_demote_l2_locked(pmap, pte, va, &lock);
7774 KASSERT(lock == VM_PAGE_TO_PV_LIST_LOCK(m),
7775 ("inconsistent pv lock %p %p for page %p",
7776 lock, VM_PAGE_TO_PV_LIST_LOCK(m), m));
7777 PMAP_UNLOCK(pmap);
7778 }
7779 TAILQ_FOREACH(pv, &m->md.pv_list, pv_next) {
7780 pmap = PV_PMAP(pv);
7781 if (!PMAP_TRYLOCK(pmap)) {
7782 pvh_gen = pvh->pv_gen;
7783 md_gen = m->md.pv_gen;
7784 rw_wunlock(lock);
7785 PMAP_LOCK(pmap);
7786 rw_wlock(lock);
7787 if (pvh_gen != pvh->pv_gen ||
7788 md_gen != m->md.pv_gen) {
7789 PMAP_UNLOCK(pmap);
7790 goto retry;
7791 }
7792 }
7793 pte = pmap_pte_exists(pmap, pv->pv_va, 3, __func__);
7794 oldpte = pmap_load(pte);
7795 if ((oldpte & ATTR_SW_DBM) != 0) {
7796 if ((oldpte & ATTR_CONTIGUOUS) != 0) {
7797 (void)pmap_demote_l3c(pmap, pte, pv->pv_va);
7798
7799 /*
7800 * The L3 entry's accessed bit may have
7801 * changed.
7802 */
7803 oldpte = pmap_load(pte);
7804 }
7805 if (pmap->pm_stage == PM_STAGE1) {
7806 set = ATTR_S1_AP_RW_BIT;
7807 clear = 0;
7808 mask = ATTR_S1_AP_RW_BIT;
7809 val = ATTR_S1_AP(ATTR_S1_AP_RW);
7810 } else {
7811 set = 0;
7812 clear = ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE);
7813 mask = ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE);
7814 val = ATTR_S2_S2AP(ATTR_S2_S2AP_WRITE);
7815 }
7816 clear |= ATTR_SW_DBM;
7817 while (!atomic_fcmpset_64(pte, &oldpte,
7818 (oldpte | set) & ~clear))
7819 cpu_spinwait();
7820
7821 if ((oldpte & mask) == val)
7822 vm_page_dirty(m);
7823 pmap_invalidate_page(pmap, pv->pv_va, true);
7824 }
7825 PMAP_UNLOCK(pmap);
7826 }
7827 rw_wunlock(lock);
7828 vm_page_aflag_clear(m, PGA_WRITEABLE);
7829 }
7830
7831 /*
7832 * pmap_ts_referenced:
7833 *
7834 * Return a count of reference bits for a page, clearing those bits.
7835 * It is not necessary for every reference bit to be cleared, but it
7836 * is necessary that 0 only be returned when there are truly no
7837 * reference bits set.
7838 *
7839 * As an optimization, update the page's dirty field if a modified bit is
7840 * found while counting reference bits. This opportunistic update can be
7841 * performed at low cost and can eliminate the need for some future calls
7842 * to pmap_is_modified(). However, since this function stops after
7843 * finding PMAP_TS_REFERENCED_MAX reference bits, it may not detect some
7844 * dirty pages. Those dirty pages will only be detected by a future call
7845 * to pmap_is_modified().
7846 */
7847 int
pmap_ts_referenced(vm_page_t m)7848 pmap_ts_referenced(vm_page_t m)
7849 {
7850 struct md_page *pvh;
7851 pv_entry_t pv, pvf;
7852 pmap_t pmap;
7853 struct rwlock *lock;
7854 pt_entry_t *pte, tpte;
7855 vm_offset_t va;
7856 vm_paddr_t pa;
7857 int cleared, md_gen, not_cleared, pvh_gen;
7858 struct spglist free;
7859
7860 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
7861 ("pmap_ts_referenced: page %p is not managed", m));
7862 SLIST_INIT(&free);
7863 cleared = 0;
7864 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy : page_to_pvh(m);
7865 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
7866 rw_wlock(lock);
7867 retry:
7868 not_cleared = 0;
7869 if ((pvf = TAILQ_FIRST(&pvh->pv_list)) == NULL)
7870 goto small_mappings;
7871 pv = pvf;
7872 do {
7873 if (pvf == NULL)
7874 pvf = pv;
7875 pmap = PV_PMAP(pv);
7876 if (!PMAP_TRYLOCK(pmap)) {
7877 pvh_gen = pvh->pv_gen;
7878 rw_wunlock(lock);
7879 PMAP_LOCK(pmap);
7880 rw_wlock(lock);
7881 if (pvh_gen != pvh->pv_gen) {
7882 PMAP_UNLOCK(pmap);
7883 goto retry;
7884 }
7885 }
7886 va = pv->pv_va;
7887 pte = pmap_pte_exists(pmap, va, 2, __func__);
7888 tpte = pmap_load(pte);
7889 if (pmap_pte_dirty(pmap, tpte)) {
7890 /*
7891 * Although "tpte" is mapping a 2MB page, because
7892 * this function is called at a 4KB page granularity,
7893 * we only update the 4KB page under test.
7894 */
7895 vm_page_dirty(m);
7896 }
7897 if ((tpte & ATTR_AF) != 0) {
7898 pa = VM_PAGE_TO_PHYS(m);
7899
7900 /*
7901 * Since this reference bit is shared by 512 4KB pages,
7902 * it should not be cleared every time it is tested.
7903 * Apply a simple "hash" function on the physical page
7904 * number, the virtual superpage number, and the pmap
7905 * address to select one 4KB page out of the 512 on
7906 * which testing the reference bit will result in
7907 * clearing that reference bit. This function is
7908 * designed to avoid the selection of the same 4KB page
7909 * for every 2MB page mapping.
7910 *
7911 * On demotion, a mapping that hasn't been referenced
7912 * is simply destroyed. To avoid the possibility of a
7913 * subsequent page fault on a demoted wired mapping,
7914 * always leave its reference bit set. Moreover,
7915 * since the superpage is wired, the current state of
7916 * its reference bit won't affect page replacement.
7917 */
7918 if ((((pa >> PAGE_SHIFT) ^ (va >> L2_SHIFT) ^
7919 (uintptr_t)pmap) & (Ln_ENTRIES - 1)) == 0 &&
7920 (tpte & ATTR_SW_WIRED) == 0) {
7921 pmap_clear_bits(pte, ATTR_AF);
7922 pmap_invalidate_page(pmap, va, true);
7923 cleared++;
7924 } else
7925 not_cleared++;
7926 }
7927 PMAP_UNLOCK(pmap);
7928 /* Rotate the PV list if it has more than one entry. */
7929 if (TAILQ_NEXT(pv, pv_next) != NULL) {
7930 TAILQ_REMOVE(&pvh->pv_list, pv, pv_next);
7931 TAILQ_INSERT_TAIL(&pvh->pv_list, pv, pv_next);
7932 pvh->pv_gen++;
7933 }
7934 if (cleared + not_cleared >= PMAP_TS_REFERENCED_MAX)
7935 goto out;
7936 } while ((pv = TAILQ_FIRST(&pvh->pv_list)) != pvf);
7937 small_mappings:
7938 if ((pvf = TAILQ_FIRST(&m->md.pv_list)) == NULL)
7939 goto out;
7940 pv = pvf;
7941 do {
7942 if (pvf == NULL)
7943 pvf = pv;
7944 pmap = PV_PMAP(pv);
7945 if (!PMAP_TRYLOCK(pmap)) {
7946 pvh_gen = pvh->pv_gen;
7947 md_gen = m->md.pv_gen;
7948 rw_wunlock(lock);
7949 PMAP_LOCK(pmap);
7950 rw_wlock(lock);
7951 if (pvh_gen != pvh->pv_gen || md_gen != m->md.pv_gen) {
7952 PMAP_UNLOCK(pmap);
7953 goto retry;
7954 }
7955 }
7956 pte = pmap_pte_exists(pmap, pv->pv_va, 3, __func__);
7957 tpte = pmap_load(pte);
7958 if (pmap_pte_dirty(pmap, tpte))
7959 vm_page_dirty(m);
7960 if ((tpte & ATTR_AF) != 0) {
7961 if ((tpte & ATTR_SW_WIRED) == 0) {
7962 /*
7963 * Clear the accessed bit in this L3 entry
7964 * regardless of the contiguous bit.
7965 */
7966 pmap_clear_bits(pte, ATTR_AF);
7967 pmap_invalidate_page(pmap, pv->pv_va, true);
7968 cleared++;
7969 } else
7970 not_cleared++;
7971 } else if ((tpte & ATTR_CONTIGUOUS) != 0 &&
7972 (pmap_load_l3c(pte) & ATTR_AF) != 0) {
7973 /*
7974 * An L3C superpage mapping is regarded as accessed
7975 * until the accessed bit has been cleared in all
7976 * of its constituent entries.
7977 */
7978 not_cleared++;
7979 }
7980 PMAP_UNLOCK(pmap);
7981 /* Rotate the PV list if it has more than one entry. */
7982 if (TAILQ_NEXT(pv, pv_next) != NULL) {
7983 TAILQ_REMOVE(&m->md.pv_list, pv, pv_next);
7984 TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_next);
7985 m->md.pv_gen++;
7986 }
7987 } while ((pv = TAILQ_FIRST(&m->md.pv_list)) != pvf && cleared +
7988 not_cleared < PMAP_TS_REFERENCED_MAX);
7989 out:
7990 rw_wunlock(lock);
7991 vm_page_free_pages_toq(&free, true);
7992 return (cleared + not_cleared);
7993 }
7994
7995 /*
7996 * Apply the given advice to the specified range of addresses within the
7997 * given pmap. Depending on the advice, clear the referenced and/or
7998 * modified flags in each mapping and set the mapped page's dirty field.
7999 */
8000 void
pmap_advise(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,int advice)8001 pmap_advise(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, int advice)
8002 {
8003 struct rwlock *lock;
8004 vm_offset_t va, va_next, dva;
8005 vm_page_t m;
8006 pd_entry_t *l0, *l1, *l2, oldl2;
8007 pt_entry_t *l3, *dl3, oldl3;
8008
8009 PMAP_ASSERT_STAGE1(pmap);
8010
8011 if (advice != MADV_DONTNEED && advice != MADV_FREE)
8012 return;
8013
8014 PMAP_LOCK(pmap);
8015 for (; sva < eva; sva = va_next) {
8016 l0 = pmap_l0(pmap, sva);
8017 if (pmap_load(l0) == 0) {
8018 va_next = (sva + L0_SIZE) & ~L0_OFFSET;
8019 if (va_next < sva)
8020 va_next = eva;
8021 continue;
8022 }
8023
8024 va_next = (sva + L1_SIZE) & ~L1_OFFSET;
8025 if (va_next < sva)
8026 va_next = eva;
8027 l1 = pmap_l0_to_l1(l0, sva);
8028 if (pmap_load(l1) == 0)
8029 continue;
8030 if ((pmap_load(l1) & ATTR_DESCR_MASK) == L1_BLOCK) {
8031 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
8032 continue;
8033 }
8034
8035 va_next = (sva + L2_SIZE) & ~L2_OFFSET;
8036 if (va_next < sva)
8037 va_next = eva;
8038 l2 = pmap_l1_to_l2(l1, sva);
8039 oldl2 = pmap_load(l2);
8040 if (oldl2 == 0)
8041 continue;
8042 if ((oldl2 & ATTR_DESCR_MASK) == L2_BLOCK) {
8043 if ((oldl2 & ATTR_SW_MANAGED) == 0)
8044 continue;
8045 lock = NULL;
8046 if (!pmap_demote_l2_locked(pmap, l2, sva, &lock)) {
8047 if (lock != NULL)
8048 rw_wunlock(lock);
8049
8050 /*
8051 * The 2MB page mapping was destroyed.
8052 */
8053 continue;
8054 }
8055
8056 /*
8057 * Unless the page mappings are wired, remove the
8058 * mapping to a single page so that a subsequent
8059 * access may repromote. Choosing the last page
8060 * within the address range [sva, min(va_next, eva))
8061 * generally results in more repromotions. Since the
8062 * underlying page table page is fully populated, this
8063 * removal never frees a page table page.
8064 */
8065 if ((oldl2 & ATTR_SW_WIRED) == 0) {
8066 va = eva;
8067 if (va > va_next)
8068 va = va_next;
8069 va -= PAGE_SIZE;
8070 KASSERT(va >= sva,
8071 ("pmap_advise: no address gap"));
8072 l3 = pmap_l2_to_l3(l2, va);
8073 KASSERT(pmap_load(l3) != 0,
8074 ("pmap_advise: invalid PTE"));
8075 pmap_remove_l3(pmap, l3, va, pmap_load(l2),
8076 NULL, &lock);
8077 }
8078 if (lock != NULL)
8079 rw_wunlock(lock);
8080 }
8081 KASSERT((pmap_load(l2) & ATTR_DESCR_MASK) == L2_TABLE,
8082 ("pmap_advise: invalid L2 entry after demotion"));
8083 if (va_next > eva)
8084 va_next = eva;
8085 va = va_next;
8086 for (l3 = pmap_l2_to_l3(l2, sva); sva != va_next; l3++,
8087 sva += L3_SIZE) {
8088 oldl3 = pmap_load(l3);
8089 if ((oldl3 & (ATTR_SW_MANAGED | ATTR_DESCR_MASK)) !=
8090 (ATTR_SW_MANAGED | L3_PAGE))
8091 goto maybe_invlrng;
8092 else if (pmap_pte_dirty(pmap, oldl3)) {
8093 if (advice == MADV_DONTNEED) {
8094 /*
8095 * Future calls to pmap_is_modified()
8096 * can be avoided by making the page
8097 * dirty now.
8098 */
8099 m = PTE_TO_VM_PAGE(oldl3);
8100 vm_page_dirty(m);
8101 }
8102 if ((oldl3 & ATTR_CONTIGUOUS) != 0) {
8103 /*
8104 * Unconditionally demote the L3C
8105 * superpage because we do not allow
8106 * writeable, clean superpages.
8107 */
8108 (void)pmap_demote_l3c(pmap, l3, sva);
8109
8110 /*
8111 * Destroy the final mapping before the
8112 * next L3C boundary or va_next,
8113 * whichever comes first, so that a
8114 * subsequent access may act as a
8115 * repromotion trigger.
8116 */
8117 if ((oldl3 & ATTR_SW_WIRED) == 0) {
8118 dva = MIN((sva & ~L3C_OFFSET) +
8119 L3C_SIZE - PAGE_SIZE,
8120 va_next - PAGE_SIZE);
8121 dl3 = pmap_l2_to_l3(l2, dva);
8122 KASSERT(pmap_load(dl3) != 0,
8123 ("pmap_advise: invalid PTE"));
8124 lock = NULL;
8125 pmap_remove_l3(pmap, dl3, dva,
8126 pmap_load(l2), NULL, &lock);
8127 if (lock != NULL)
8128 rw_wunlock(lock);
8129 }
8130
8131 /*
8132 * The L3 entry's accessed bit may have
8133 * changed.
8134 */
8135 oldl3 = pmap_load(l3);
8136 }
8137
8138 /*
8139 * Check that we did not just destroy this entry so
8140 * we avoid corrupting the page able.
8141 */
8142 if (oldl3 != 0) {
8143 while (!atomic_fcmpset_long(l3, &oldl3,
8144 (oldl3 & ~ATTR_AF) |
8145 ATTR_S1_AP(ATTR_S1_AP_RO)))
8146 cpu_spinwait();
8147 }
8148 } else if ((oldl3 & ATTR_AF) != 0) {
8149 /*
8150 * Clear the accessed bit in this L3 entry
8151 * regardless of the contiguous bit.
8152 */
8153 pmap_clear_bits(l3, ATTR_AF);
8154 } else
8155 goto maybe_invlrng;
8156 if (va == va_next)
8157 va = sva;
8158 continue;
8159 maybe_invlrng:
8160 if (va != va_next) {
8161 pmap_s1_invalidate_range(pmap, va, sva, true);
8162 va = va_next;
8163 }
8164 }
8165 if (va != va_next)
8166 pmap_s1_invalidate_range(pmap, va, sva, true);
8167 }
8168 PMAP_UNLOCK(pmap);
8169 }
8170
8171 /*
8172 * Clear the modify bits on the specified physical page.
8173 */
8174 void
pmap_clear_modify(vm_page_t m)8175 pmap_clear_modify(vm_page_t m)
8176 {
8177 struct md_page *pvh;
8178 struct rwlock *lock;
8179 pmap_t pmap;
8180 pv_entry_t next_pv, pv;
8181 pd_entry_t *l2, oldl2;
8182 pt_entry_t *l3, oldl3;
8183 vm_offset_t va;
8184 int md_gen, pvh_gen;
8185
8186 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
8187 ("pmap_clear_modify: page %p is not managed", m));
8188 vm_page_assert_busied(m);
8189
8190 if (!pmap_page_is_write_mapped(m))
8191 return;
8192 pvh = (m->flags & PG_FICTITIOUS) != 0 ? &pv_dummy : page_to_pvh(m);
8193 lock = VM_PAGE_TO_PV_LIST_LOCK(m);
8194 rw_wlock(lock);
8195 restart:
8196 TAILQ_FOREACH_SAFE(pv, &pvh->pv_list, pv_next, next_pv) {
8197 pmap = PV_PMAP(pv);
8198 PMAP_ASSERT_STAGE1(pmap);
8199 if (!PMAP_TRYLOCK(pmap)) {
8200 pvh_gen = pvh->pv_gen;
8201 rw_wunlock(lock);
8202 PMAP_LOCK(pmap);
8203 rw_wlock(lock);
8204 if (pvh_gen != pvh->pv_gen) {
8205 PMAP_UNLOCK(pmap);
8206 goto restart;
8207 }
8208 }
8209 va = pv->pv_va;
8210 l2 = pmap_l2(pmap, va);
8211 oldl2 = pmap_load(l2);
8212 /* If oldl2 has ATTR_SW_DBM set, then it is also dirty. */
8213 if ((oldl2 & ATTR_SW_DBM) != 0 &&
8214 pmap_demote_l2_locked(pmap, l2, va, &lock) &&
8215 (oldl2 & ATTR_SW_WIRED) == 0) {
8216 /*
8217 * Write protect the mapping to a single page so that
8218 * a subsequent write access may repromote.
8219 */
8220 va += VM_PAGE_TO_PHYS(m) - PTE_TO_PHYS(oldl2);
8221 l3 = pmap_l2_to_l3(l2, va);
8222 oldl3 = pmap_load(l3);
8223 while (!atomic_fcmpset_long(l3, &oldl3,
8224 (oldl3 & ~ATTR_SW_DBM) | ATTR_S1_AP(ATTR_S1_AP_RO)))
8225 cpu_spinwait();
8226 vm_page_dirty(m);
8227 pmap_s1_invalidate_page(pmap, va, true);
8228 }
8229 PMAP_UNLOCK(pmap);
8230 }
8231 TAILQ_FOREACH(pv, &m->md.pv_list, pv_next) {
8232 pmap = PV_PMAP(pv);
8233 PMAP_ASSERT_STAGE1(pmap);
8234 if (!PMAP_TRYLOCK(pmap)) {
8235 md_gen = m->md.pv_gen;
8236 pvh_gen = pvh->pv_gen;
8237 rw_wunlock(lock);
8238 PMAP_LOCK(pmap);
8239 rw_wlock(lock);
8240 if (pvh_gen != pvh->pv_gen || md_gen != m->md.pv_gen) {
8241 PMAP_UNLOCK(pmap);
8242 goto restart;
8243 }
8244 }
8245 l2 = pmap_l2(pmap, pv->pv_va);
8246 l3 = pmap_l2_to_l3(l2, pv->pv_va);
8247 oldl3 = pmap_load(l3);
8248 KASSERT((oldl3 & ATTR_CONTIGUOUS) == 0 ||
8249 (oldl3 & (ATTR_SW_DBM | ATTR_S1_AP_RW_BIT)) !=
8250 (ATTR_SW_DBM | ATTR_S1_AP(ATTR_S1_AP_RO)),
8251 ("writeable L3C superpage not dirty"));
8252 if ((oldl3 & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) == ATTR_SW_DBM) {
8253 if ((oldl3 & ATTR_CONTIGUOUS) != 0)
8254 (void)pmap_demote_l3c(pmap, l3, pv->pv_va);
8255 pmap_set_bits(l3, ATTR_S1_AP(ATTR_S1_AP_RO));
8256 pmap_s1_invalidate_page(pmap, pv->pv_va, true);
8257 }
8258 PMAP_UNLOCK(pmap);
8259 }
8260 rw_wunlock(lock);
8261 }
8262
8263 void *
pmap_mapbios(vm_paddr_t pa,vm_size_t size)8264 pmap_mapbios(vm_paddr_t pa, vm_size_t size)
8265 {
8266 struct pmap_preinit_mapping *ppim;
8267 vm_offset_t va, offset;
8268 pd_entry_t old_l2e, *pde;
8269 pt_entry_t *l2;
8270 int i, lvl, l2_blocks, free_l2_count, start_idx;
8271
8272 /* Use the DMAP region if we can */
8273 if (PHYS_IN_DMAP(pa) && PHYS_IN_DMAP(pa + size - 1) &&
8274 pmap_kmapped_range(PHYS_TO_DMAP(pa), size))
8275 return (PHYS_TO_DMAP(pa));
8276
8277 if (!vm_initialized) {
8278 /*
8279 * No L3 ptables so map entire L2 blocks where start VA is:
8280 * preinit_map_va + start_idx * L2_SIZE
8281 * There may be duplicate mappings (multiple VA -> same PA) but
8282 * ARM64 dcache is always PIPT so that's acceptable.
8283 */
8284 if (size == 0)
8285 return (NULL);
8286
8287 /* Calculate how many L2 blocks are needed for the mapping */
8288 l2_blocks = (roundup2(pa + size, L2_SIZE) -
8289 rounddown2(pa, L2_SIZE)) >> L2_SHIFT;
8290
8291 offset = pa & L2_OFFSET;
8292
8293 if (preinit_map_va == 0)
8294 return (NULL);
8295
8296 /* Map 2MiB L2 blocks from reserved VA space */
8297
8298 free_l2_count = 0;
8299 start_idx = -1;
8300 /* Find enough free contiguous VA space */
8301 for (i = 0; i < PMAP_PREINIT_MAPPING_COUNT; i++) {
8302 ppim = pmap_preinit_mapping + i;
8303 if (free_l2_count > 0 && ppim->pa != 0) {
8304 /* Not enough space here */
8305 free_l2_count = 0;
8306 start_idx = -1;
8307 continue;
8308 }
8309
8310 if (ppim->pa == 0) {
8311 /* Free L2 block */
8312 if (start_idx == -1)
8313 start_idx = i;
8314 free_l2_count++;
8315 if (free_l2_count == l2_blocks)
8316 break;
8317 }
8318 }
8319 if (free_l2_count != l2_blocks)
8320 panic("%s: too many preinit mappings", __func__);
8321
8322 va = preinit_map_va + (start_idx * L2_SIZE);
8323 for (i = start_idx; i < start_idx + l2_blocks; i++) {
8324 /* Mark entries as allocated */
8325 ppim = pmap_preinit_mapping + i;
8326 ppim->pa = pa;
8327 ppim->va = (char *)va + offset;
8328 ppim->size = size;
8329 }
8330
8331 /* Map L2 blocks */
8332 pa = rounddown2(pa, L2_SIZE);
8333 old_l2e = 0;
8334 for (i = 0; i < l2_blocks; i++) {
8335 pde = pmap_pde(kernel_pmap, va, &lvl);
8336 KASSERT(pde != NULL,
8337 ("pmap_mapbios: Invalid page entry, va: 0x%lx",
8338 va));
8339 KASSERT(lvl == 1,
8340 ("pmap_mapbios: Invalid level %d", lvl));
8341
8342 /* Insert L2_BLOCK */
8343 l2 = pmap_l1_to_l2(pde, va);
8344 old_l2e |= pmap_load_store(l2,
8345 PHYS_TO_PTE(pa) | ATTR_AF | pmap_sh_attr |
8346 ATTR_S1_XN | ATTR_KERN_GP |
8347 ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) | L2_BLOCK);
8348
8349 va += L2_SIZE;
8350 pa += L2_SIZE;
8351 }
8352 if ((old_l2e & ATTR_DESCR_VALID) != 0)
8353 pmap_s1_invalidate_all_kernel();
8354 else {
8355 /*
8356 * Because the old entries were invalid and the new
8357 * mappings are not executable, an isb is not required.
8358 */
8359 dsb(ishst);
8360 }
8361
8362 va = preinit_map_va + (start_idx * L2_SIZE);
8363
8364 } else {
8365 /* kva_alloc may be used to map the pages */
8366 offset = pa & PAGE_MASK;
8367 size = round_page(offset + size);
8368
8369 va = (vm_offset_t)kva_alloc(size);
8370 if (va == 0)
8371 panic("%s: Couldn't allocate KVA", __func__);
8372
8373 pde = pmap_pde(kernel_pmap, va, &lvl);
8374 KASSERT(lvl == 2, ("pmap_mapbios: Invalid level %d", lvl));
8375
8376 /* L3 table is linked */
8377 va = trunc_page(va);
8378 pa = trunc_page(pa);
8379 pmap_kenter(va, size, pa, memory_mapping_mode(pa));
8380 }
8381
8382 return ((void *)(va + offset));
8383 }
8384
8385 void
pmap_unmapbios(void * p,vm_size_t size)8386 pmap_unmapbios(void *p, vm_size_t size)
8387 {
8388 struct pmap_preinit_mapping *ppim;
8389 char *va;
8390 vm_offset_t offset, va_trunc;
8391 pd_entry_t *pde;
8392 pt_entry_t *l2;
8393 int error __diagused, i, lvl, l2_blocks, block;
8394 bool preinit_map;
8395
8396 va = p;
8397 if (VIRT_IN_DMAP(va)) {
8398 KASSERT(VIRT_IN_DMAP(va + size - 1),
8399 ("%s: End address not in DMAP region: %p", __func__,
8400 va + size - 1));
8401 /* Ensure the attributes are as expected for the DMAP region */
8402 PMAP_LOCK(kernel_pmap);
8403 error = pmap_change_props_locked(va, size,
8404 PROT_READ | PROT_WRITE, VM_MEMATTR_DEFAULT, -1, false);
8405 PMAP_UNLOCK(kernel_pmap);
8406 KASSERT(error == 0, ("%s: Failed to reset DMAP attributes: %d",
8407 __func__, error));
8408
8409 return;
8410 }
8411
8412 l2_blocks =
8413 (roundup2(va + size, L2_SIZE) - rounddown2(va, L2_SIZE)) >> L2_SHIFT;
8414 KASSERT(l2_blocks > 0, ("pmap_unmapbios: invalid size %lx", size));
8415
8416 /* Remove preinit mapping */
8417 preinit_map = false;
8418 block = 0;
8419 for (i = 0; i < PMAP_PREINIT_MAPPING_COUNT; i++) {
8420 ppim = pmap_preinit_mapping + i;
8421 if (ppim->va == va) {
8422 KASSERT(ppim->size == size,
8423 ("pmap_unmapbios: size mismatch"));
8424 ppim->va = NULL;
8425 ppim->pa = 0;
8426 ppim->size = 0;
8427 preinit_map = true;
8428 offset = block * L2_SIZE;
8429 va_trunc = rounddown2((vm_offset_t)va, L2_SIZE) +
8430 offset;
8431
8432 /* Remove L2_BLOCK */
8433 pde = pmap_pde(kernel_pmap, va_trunc, &lvl);
8434 KASSERT(pde != NULL,
8435 ("pmap_unmapbios: Invalid page entry, va: 0x%lx",
8436 va_trunc));
8437 l2 = pmap_l1_to_l2(pde, va_trunc);
8438 pmap_clear(l2);
8439
8440 if (block == (l2_blocks - 1))
8441 break;
8442 block++;
8443 }
8444 }
8445 if (preinit_map) {
8446 pmap_s1_invalidate_all_kernel();
8447 return;
8448 }
8449
8450 /* Unmap the pages reserved with kva_alloc. */
8451 if (vm_initialized) {
8452 offset = (vm_offset_t)va & PAGE_MASK;
8453 size = round_page(offset + size);
8454 va = trunc_page(va);
8455
8456 /* Unmap and invalidate the pages */
8457 pmap_kremove_device((vm_offset_t)va, size);
8458
8459 kva_free(va, size);
8460 }
8461 }
8462
8463 /*
8464 * Sets the memory attribute for the specified page.
8465 */
8466 void
pmap_page_set_memattr(vm_page_t m,vm_memattr_t ma)8467 pmap_page_set_memattr(vm_page_t m, vm_memattr_t ma)
8468 {
8469 if (m->md.pv_memattr == ma)
8470 return;
8471
8472 m->md.pv_memattr = ma;
8473
8474 /*
8475 * If "m" is a normal page, update its direct mapping. This update
8476 * can be relied upon to perform any cache operations that are
8477 * required for data coherence.
8478 */
8479 if ((m->flags & PG_FICTITIOUS) == 0 &&
8480 pmap_change_attr(VM_PAGE_TO_DMAP(m), PAGE_SIZE,
8481 m->md.pv_memattr) != 0)
8482 panic("memory attribute change on the direct map failed");
8483 }
8484
8485 /*
8486 * Changes the specified virtual address range's memory type to that given by
8487 * the parameter "mode". The specified virtual address range must be
8488 * completely contained within either the direct map or the kernel map. If
8489 * the virtual address range is contained within the kernel map, then the
8490 * memory type for each of the corresponding ranges of the direct map is also
8491 * changed. (The corresponding ranges of the direct map are those ranges that
8492 * map the same physical pages as the specified virtual address range.) These
8493 * changes to the direct map are necessary because Intel describes the
8494 * behavior of their processors as "undefined" if two or more mappings to the
8495 * same physical page have different memory types.
8496 *
8497 * Returns zero if the change completed successfully, and either EINVAL or
8498 * ENOMEM if the change failed. Specifically, EINVAL is returned if some part
8499 * of the virtual address range was not mapped, and ENOMEM is returned if
8500 * there was insufficient memory available to complete the change. In the
8501 * latter case, the memory type may have been changed on some part of the
8502 * virtual address range or the direct map.
8503 */
8504 int
pmap_change_attr(void * va,vm_size_t size,int mode)8505 pmap_change_attr(void *va, vm_size_t size, int mode)
8506 {
8507 int error;
8508
8509 PMAP_LOCK(kernel_pmap);
8510 error = pmap_change_props_locked(va, size, PROT_NONE, mode, -1, false);
8511 PMAP_UNLOCK(kernel_pmap);
8512 return (error);
8513 }
8514
8515 int
pmap_change_dmap_attr(int mode)8516 pmap_change_dmap_attr(int mode)
8517 {
8518 int error;
8519
8520 KASSERT(mode == VM_MEMATTR_WRITE_BACK ||
8521 mode == VM_MEMATTR_TAGGED,
8522 ("%s: mode %d must be compatible with write-back", __func__, mode));
8523
8524 PMAP_LOCK(kernel_pmap);
8525 error = pmap_change_props_locked((void *)DMAP_MIN_ADDRESS,
8526 dmap_max_addr - DMAP_MIN_ADDRESS, PROT_NONE, mode, dmap_attr, true);
8527 if (error == 0)
8528 dmap_attr = mode;
8529 PMAP_UNLOCK(kernel_pmap);
8530 return (error);
8531 }
8532
8533 /*
8534 * Changes the specified virtual address range's protections to those
8535 * specified by "prot". Like pmap_change_attr(), protections for aliases
8536 * in the direct map are updated as well. Protections on aliasing mappings may
8537 * be a subset of the requested protections; for example, mappings in the direct
8538 * map are never executable.
8539 */
8540 int
pmap_change_prot(void * va,vm_size_t size,vm_prot_t prot)8541 pmap_change_prot(void *va, vm_size_t size, vm_prot_t prot)
8542 {
8543 int error;
8544
8545 /* Only supported within the kernel map. */
8546 if ((vm_offset_t)va < VM_MIN_KERNEL_ADDRESS)
8547 return (EINVAL);
8548
8549 PMAP_LOCK(kernel_pmap);
8550 error = pmap_change_props_locked(va, size, prot, -1, -1, false);
8551 PMAP_UNLOCK(kernel_pmap);
8552 return (error);
8553 }
8554
8555 static int
pmap_change_props_locked(void * addr,vm_size_t size,vm_prot_t prot,int mode,int old_mode,bool skip_unmapped)8556 pmap_change_props_locked(void *addr, vm_size_t size, vm_prot_t prot,
8557 int mode, int old_mode, bool skip_unmapped)
8558 {
8559 vm_offset_t base, offset, tmpva, va;
8560 vm_size_t pte_size;
8561 vm_paddr_t pa;
8562 pt_entry_t pte, *ptep, *newpte;
8563 pt_entry_t bits, mask, old_mode_bits, old_mode_mask;
8564 char *tmpptep;
8565 int lvl, rv;
8566
8567 PMAP_LOCK_ASSERT(kernel_pmap, MA_OWNED);
8568 va = (vm_offset_t)addr;
8569 base = trunc_page(va);
8570 offset = va & PAGE_MASK;
8571 size = round_page(offset + size);
8572
8573 if (!VIRT_IN_DMAP(base) &&
8574 !(base >= VM_MIN_KERNEL_ADDRESS && base < VM_MAX_KERNEL_ADDRESS))
8575 return (EINVAL);
8576
8577 bits = old_mode_bits = 0;
8578 mask = old_mode_mask = 0;
8579 if (mode != -1) {
8580 bits = ATTR_S1_IDX(mode);
8581 mask = ATTR_S1_IDX_MASK;
8582 if (mode == VM_MEMATTR_DEVICE) {
8583 mask |= ATTR_S1_XN;
8584 bits |= ATTR_S1_XN;
8585 }
8586 }
8587 if (old_mode != -1) {
8588 old_mode_bits = ATTR_S1_IDX(old_mode);
8589 old_mode_mask = ATTR_S1_IDX_MASK;
8590 }
8591 if (prot != VM_PROT_NONE) {
8592 /* Don't mark the DMAP as executable. It never is on arm64. */
8593 if (VIRT_IN_DMAP(base)) {
8594 prot &= ~VM_PROT_EXECUTE;
8595 /*
8596 * XXX Mark the DMAP as writable for now. We rely
8597 * on this in ddb & dtrace to insert breakpoint
8598 * instructions.
8599 */
8600 prot |= VM_PROT_WRITE;
8601 }
8602
8603 if ((prot & VM_PROT_WRITE) == 0) {
8604 bits |= ATTR_S1_AP(ATTR_S1_AP_RO);
8605 }
8606 if ((prot & VM_PROT_EXECUTE) == 0) {
8607 bits |= ATTR_S1_PXN;
8608 }
8609 bits |= ATTR_S1_UXN;
8610 mask |= ATTR_S1_AP_MASK | ATTR_S1_XN;
8611 }
8612
8613 for (tmpva = base; tmpva < base + size; ) {
8614 ptep = pmap_pte(kernel_pmap, tmpva, &lvl);
8615 if (ptep == NULL && !skip_unmapped) {
8616 return (EINVAL);
8617 } else if ((ptep == NULL && skip_unmapped) ||
8618 (pmap_load(ptep) & mask) == bits ||
8619 (pmap_load(ptep) & old_mode_mask) != old_mode_bits) {
8620 /*
8621 * We already have one of the following meaning
8622 * we can skip this memory region::
8623 * - No memory mapped at this address
8624 * - The new attributes are already set
8625 * - The expected attributes are incorrect
8626 */
8627 switch (lvl) {
8628 default:
8629 panic("Invalid DMAP table level: %d\n", lvl);
8630 case 1:
8631 tmpva = (tmpva & ~L1_OFFSET) + L1_SIZE;
8632 break;
8633 case 2:
8634 tmpva = (tmpva & ~L2_OFFSET) + L2_SIZE;
8635 break;
8636 case 3:
8637 tmpva += PAGE_SIZE;
8638 break;
8639 }
8640 } else {
8641 /* We can't demote/promote this entry */
8642 MPASS((pmap_load(ptep) & ATTR_SW_NO_PROMOTE) == 0);
8643
8644 /*
8645 * Find the entry and demote it if the requested change
8646 * only applies to part of the address range mapped by
8647 * the entry.
8648 */
8649 switch (lvl) {
8650 default:
8651 panic("Invalid DMAP table level: %d\n", lvl);
8652 case 1:
8653 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
8654 if ((tmpva & L1_OFFSET) == 0 &&
8655 (base + size - tmpva) >= L1_SIZE) {
8656 pte_size = L1_SIZE;
8657 break;
8658 }
8659 newpte = pmap_demote_l1(kernel_pmap, ptep,
8660 tmpva & ~L1_OFFSET);
8661 if (newpte == NULL)
8662 return (EINVAL);
8663 ptep = pmap_l1_to_l2(ptep, tmpva);
8664 /* FALLTHROUGH */
8665 case 2:
8666 if ((pmap_load(ptep) & ATTR_CONTIGUOUS) != 0) {
8667 if ((tmpva & L2C_OFFSET) == 0 &&
8668 (base + size - tmpva) >= L2C_SIZE) {
8669 pte_size = L2C_SIZE;
8670 break;
8671 }
8672 if (!pmap_demote_l2c(kernel_pmap, ptep,
8673 tmpva))
8674 return (EINVAL);
8675 }
8676 if ((tmpva & L2_OFFSET) == 0 &&
8677 (base + size - tmpva) >= L2_SIZE) {
8678 pte_size = L2_SIZE;
8679 break;
8680 }
8681 newpte = pmap_demote_l2(kernel_pmap, ptep,
8682 tmpva);
8683 if (newpte == NULL)
8684 return (EINVAL);
8685 ptep = pmap_l2_to_l3(ptep, tmpva);
8686 /* FALLTHROUGH */
8687 case 3:
8688 if ((pmap_load(ptep) & ATTR_CONTIGUOUS) != 0) {
8689 if ((tmpva & L3C_OFFSET) == 0 &&
8690 (base + size - tmpva) >= L3C_SIZE) {
8691 pte_size = L3C_SIZE;
8692 break;
8693 }
8694 if (!pmap_demote_l3c(kernel_pmap, ptep,
8695 tmpva))
8696 return (EINVAL);
8697 }
8698 pte_size = PAGE_SIZE;
8699 break;
8700 }
8701
8702 tmpptep = 0;
8703 if (tmpva <= (vm_offset_t)ptep &&
8704 tmpva + pte_size > (vm_offset_t)ptep) {
8705 vm_paddr_t pte_pa;
8706
8707 mtx_lock(&cmap_lock);
8708 tmpptep = cmap1_addr;
8709 pte_pa = DMAP_TO_PHYS((vm_offset_t)ptep);
8710 pmap_store(cmap1_pte, ATTR_AF |
8711 pmap_sh_attr | ATTR_S1_AP(ATTR_S1_AP_RW) |
8712 ATTR_S1_XN | ATTR_KERN_GP |
8713 ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK) |
8714 PHYS_TO_PTE(pte_pa &~L3_OFFSET) | L3_PAGE);
8715 dsb(ishst);
8716 ptep = (pt_entry_t *)(tmpptep +
8717 ((vm_offset_t)ptep & PAGE_MASK));
8718 }
8719
8720 /* Update the entry */
8721 pte = pmap_load(ptep);
8722 pte &= ~mask;
8723 pte |= bits;
8724
8725 switch (pte_size) {
8726 case L2C_SIZE:
8727 pmap_update_strided(kernel_pmap, ptep, ptep +
8728 L2C_ENTRIES, pte, tmpva, L2_SIZE, L2C_SIZE);
8729 break;
8730 case L3C_SIZE:
8731 pmap_update_strided(kernel_pmap, ptep, ptep +
8732 L3C_ENTRIES, pte, tmpva, L3_SIZE, L3C_SIZE);
8733 break;
8734 default:
8735 /*
8736 * We are updating a single block or page entry,
8737 * so regardless of pte_size pass PAGE_SIZE in
8738 * order that a single TLB invalidation is
8739 * performed.
8740 */
8741 pmap_update_entry(kernel_pmap, ptep, pte, tmpva,
8742 PAGE_SIZE, true);
8743 break;
8744 }
8745
8746 if (tmpptep != 0) {
8747 pmap_clear(cmap1_pte);
8748 pmap_s1_invalidate_page(kernel_pmap,
8749 (vm_offset_t)tmpptep, true);
8750 mtx_unlock(&cmap_lock);
8751 }
8752
8753 pa = PTE_TO_PHYS(pte);
8754 if (!VIRT_IN_DMAP(tmpva) && PHYS_IN_DMAP(pa)) {
8755 int dmap_mode;
8756
8757 /*
8758 * When booting on HW with MTE enabled we may
8759 * need to swap to a tagged type for the DMAP
8760 * to allow tags to be set through it.
8761 */
8762 if (mode == VM_MEMATTR_WRITE_BACK)
8763 dmap_mode = dmap_attr;
8764 else
8765 dmap_mode = mode;
8766
8767 /*
8768 * Keep the DMAP memory in sync.
8769 */
8770 rv = pmap_change_props_locked(
8771 PHYS_TO_DMAP(pa), pte_size,
8772 prot, dmap_mode, old_mode, true);
8773 if (rv != 0)
8774 return (rv);
8775 }
8776
8777 /*
8778 * If moving to a non-cacheable entry flush
8779 * the cache.
8780 */
8781 if (mode == VM_MEMATTR_UNCACHEABLE)
8782 cpu_dcache_wbinv_range((void *)tmpva, pte_size);
8783 tmpva += pte_size;
8784 }
8785 }
8786
8787 return (0);
8788 }
8789
8790 /*
8791 * Create an L2 table to map all addresses within an L1 mapping.
8792 */
8793 static pt_entry_t *
pmap_demote_l1(pmap_t pmap,pt_entry_t * l1,vm_offset_t va)8794 pmap_demote_l1(pmap_t pmap, pt_entry_t *l1, vm_offset_t va)
8795 {
8796 pt_entry_t *l2, newl2, oldl1;
8797 char *tmpl1;
8798 vm_paddr_t l2phys, phys;
8799 vm_page_t ml2;
8800 int i;
8801
8802 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
8803 oldl1 = pmap_load(l1);
8804 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
8805 KASSERT((oldl1 & ATTR_DESCR_MASK) == L1_BLOCK,
8806 ("pmap_demote_l1: Demoting a non-block entry"));
8807 KASSERT((va & L1_OFFSET) == 0,
8808 ("pmap_demote_l1: Invalid virtual address %#lx", va));
8809 KASSERT((oldl1 & ATTR_SW_MANAGED) == 0,
8810 ("pmap_demote_l1: Level 1 table shouldn't be managed"));
8811 KASSERT((oldl1 & ATTR_SW_NO_PROMOTE) == 0,
8812 ("pmap_demote_l1: Demoting entry with no-demote flag set"));
8813
8814 tmpl1 = NULL;
8815 if (va <= (vm_offset_t)l1 && va + L1_SIZE > (vm_offset_t)l1) {
8816 tmpl1 = kva_alloc(PAGE_SIZE);
8817 if (tmpl1 == NULL)
8818 return (NULL);
8819 }
8820
8821 if ((ml2 = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT | VM_ALLOC_WIRED)) ==
8822 NULL) {
8823 CTR2(KTR_PMAP, "pmap_demote_l1: failure for va %#lx"
8824 " in pmap %p", va, pmap);
8825 l2 = NULL;
8826 goto fail;
8827 }
8828
8829 l2phys = VM_PAGE_TO_PHYS(ml2);
8830 l2 = PHYS_TO_DMAP(l2phys);
8831
8832 /* Address the range points at */
8833 phys = PTE_TO_PHYS(oldl1);
8834 /* The attributed from the old l1 table to be copied */
8835 newl2 = oldl1 & ATTR_MASK;
8836
8837 /* Create the new entries */
8838 newl2 |= ATTR_CONTIGUOUS;
8839 for (i = 0; i < Ln_ENTRIES; i++) {
8840 l2[i] = newl2 | phys;
8841 phys += L2_SIZE;
8842 }
8843 KASSERT(l2[0] == (ATTR_CONTIGUOUS | (oldl1 & ~ATTR_DESCR_MASK) |
8844 L2_BLOCK), ("Invalid l2 page (%lx != %lx)", l2[0],
8845 ATTR_CONTIGUOUS | (oldl1 & ~ATTR_DESCR_MASK) | L2_BLOCK));
8846
8847 if (tmpl1 != NULL) {
8848 pmap_kenter((vm_offset_t)tmpl1, PAGE_SIZE,
8849 DMAP_TO_PHYS(l1) & ~L3_OFFSET,
8850 VM_MEMATTR_WRITE_BACK);
8851 l1 = (pt_entry_t *)(tmpl1 + ((vm_offset_t)l1 & PAGE_MASK));
8852 }
8853
8854 pmap_update_entry(pmap, l1, l2phys | L1_TABLE, va, PAGE_SIZE, true);
8855
8856 counter_u64_add(pmap_l1_demotions, 1);
8857 fail:
8858 if (tmpl1 != NULL) {
8859 pmap_kremove((vm_offset_t)tmpl1);
8860 kva_free(tmpl1, PAGE_SIZE);
8861 }
8862
8863 return (l2);
8864 }
8865
8866 static void
pmap_fill_l3(pt_entry_t * firstl3,pt_entry_t newl3)8867 pmap_fill_l3(pt_entry_t *firstl3, pt_entry_t newl3)
8868 {
8869 pt_entry_t *l3;
8870
8871 for (l3 = firstl3; l3 - firstl3 < Ln_ENTRIES; l3++) {
8872 *l3 = newl3;
8873 newl3 += L3_SIZE;
8874 }
8875 }
8876
8877 static void
pmap_demote_l2_check(pt_entry_t * firstl3p __unused,pt_entry_t newl3e __unused)8878 pmap_demote_l2_check(pt_entry_t *firstl3p __unused, pt_entry_t newl3e __unused)
8879 {
8880 #ifdef INVARIANTS
8881 #ifdef DIAGNOSTIC
8882 pt_entry_t *xl3p, *yl3p;
8883
8884 for (xl3p = firstl3p; xl3p < firstl3p + Ln_ENTRIES;
8885 xl3p++, newl3e += PAGE_SIZE) {
8886 if (PTE_TO_PHYS(pmap_load(xl3p)) != PTE_TO_PHYS(newl3e)) {
8887 printf("pmap_demote_l2: xl3e %zd and newl3e map "
8888 "different pages: found %#lx, expected %#lx\n",
8889 xl3p - firstl3p, pmap_load(xl3p), newl3e);
8890 printf("page table dump\n");
8891 for (yl3p = firstl3p; yl3p < firstl3p + Ln_ENTRIES;
8892 yl3p++) {
8893 printf("%zd %#lx\n", yl3p - firstl3p,
8894 pmap_load(yl3p));
8895 }
8896 panic("firstpte");
8897 }
8898 }
8899 #else
8900 KASSERT(PTE_TO_PHYS(pmap_load(firstl3p)) == PTE_TO_PHYS(newl3e),
8901 ("pmap_demote_l2: firstl3 and newl3e map different physical"
8902 " addresses"));
8903 #endif
8904 #endif
8905 }
8906
8907 static void
pmap_demote_l2_abort(pmap_t pmap,vm_offset_t va,pt_entry_t * l2,struct rwlock ** lockp)8908 pmap_demote_l2_abort(pmap_t pmap, vm_offset_t va, pt_entry_t *l2,
8909 struct rwlock **lockp)
8910 {
8911 struct spglist free;
8912
8913 SLIST_INIT(&free);
8914 (void)pmap_remove_l2(pmap, l2, va, pmap_load(pmap_l1(pmap, va)), true,
8915 &free, lockp);
8916 vm_page_free_pages_toq(&free, true);
8917 }
8918
8919 /*
8920 * Create an L3 table to map all addresses within an L2 mapping.
8921 */
8922 static pt_entry_t *
pmap_demote_l2_locked(pmap_t pmap,pt_entry_t * l2,vm_offset_t va,struct rwlock ** lockp)8923 pmap_demote_l2_locked(pmap_t pmap, pt_entry_t *l2, vm_offset_t va,
8924 struct rwlock **lockp)
8925 {
8926 pt_entry_t *l3, newl3, oldl2;
8927 char *tmpl2;
8928 vm_paddr_t l3phys;
8929 vm_page_t ml3;
8930
8931 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
8932 PMAP_ASSERT_STAGE1(pmap);
8933 KASSERT(ADDR_IS_CANONICAL(va),
8934 ("%s: Address not in canonical form: %lx", __func__, va));
8935
8936 l3 = NULL;
8937 oldl2 = pmap_load(l2);
8938 KASSERT((oldl2 & ATTR_DESCR_MASK) == L2_BLOCK,
8939 ("pmap_demote_l2: Demoting a non-block entry"));
8940 KASSERT((oldl2 & ATTR_SW_NO_PROMOTE) == 0,
8941 ("pmap_demote_l2: Demoting entry with no-demote flag set"));
8942 va &= ~L2_OFFSET;
8943
8944 tmpl2 = NULL;
8945 if (va <= (vm_offset_t)l2 && va + L2_SIZE > (vm_offset_t)l2) {
8946 tmpl2 = kva_alloc(PAGE_SIZE);
8947 if (tmpl2 == NULL)
8948 return (NULL);
8949 }
8950
8951 /*
8952 * Invalidate the 2MB page mapping and return "failure" if the
8953 * mapping was never accessed and not wired.
8954 */
8955 if ((oldl2 & ATTR_AF) == 0) {
8956 if ((oldl2 & ATTR_SW_WIRED) == 0) {
8957 pmap_demote_l2_abort(pmap, va, l2, lockp);
8958 CTR2(KTR_PMAP,
8959 "pmap_demote_l2: failure for va %#lx in pmap %p",
8960 va, pmap);
8961 goto fail;
8962 }
8963 ml3 = pmap_remove_pt_page(pmap, va);
8964 /* Fill the PTP with L3Es that have ATTR_AF cleared. */
8965 ml3->valid = 0;
8966 } else if ((ml3 = pmap_remove_pt_page(pmap, va)) == NULL) {
8967 KASSERT((oldl2 & ATTR_SW_WIRED) == 0,
8968 ("pmap_demote_l2: page table page for a wired mapping"
8969 " is missing"));
8970
8971 /*
8972 * If the page table page is missing and the mapping
8973 * is for a kernel address, the mapping must belong to
8974 * either the direct map or the early kernel memory.
8975 * Page table pages are preallocated for every other
8976 * part of the kernel address space, so the direct map
8977 * region and early kernel memory are the only parts of the
8978 * kernel address space that must be handled here.
8979 */
8980 KASSERT(ADDR_IS_USER(va) || VIRT_IN_DMAP(va) ||
8981 (va >= VM_MIN_KERNEL_ADDRESS && va < kernel_vm_end),
8982 ("pmap_demote_l2: No saved mpte for va %#lx", va));
8983
8984 /*
8985 * If the 2MB page mapping belongs to the direct map
8986 * region of the kernel's address space, then the page
8987 * allocation request specifies the highest possible
8988 * priority (VM_ALLOC_INTERRUPT). Otherwise, the
8989 * priority is normal.
8990 */
8991 ml3 = vm_page_alloc_noobj(
8992 (VIRT_IN_DMAP(va) ? VM_ALLOC_INTERRUPT : 0) |
8993 VM_ALLOC_WIRED);
8994
8995 /*
8996 * If the allocation of the new page table page fails,
8997 * invalidate the 2MB page mapping and return "failure".
8998 */
8999 if (ml3 == NULL) {
9000 pmap_demote_l2_abort(pmap, va, l2, lockp);
9001 CTR2(KTR_PMAP, "pmap_demote_l2: failure for va %#lx"
9002 " in pmap %p", va, pmap);
9003 goto fail;
9004 }
9005 ml3->pindex = pmap_l2_pindex(va);
9006
9007 if (ADDR_IS_USER(va)) {
9008 ml3->ref_count = NL3PG;
9009 pmap_resident_count_inc(pmap, 1);
9010 }
9011 }
9012 l3phys = VM_PAGE_TO_PHYS(ml3);
9013 l3 = PHYS_TO_DMAP(l3phys);
9014 newl3 = ATTR_CONTIGUOUS | (oldl2 & ~ATTR_DESCR_MASK) | L3_PAGE;
9015 KASSERT((oldl2 & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) !=
9016 (ATTR_S1_AP(ATTR_S1_AP_RO) | ATTR_SW_DBM),
9017 ("pmap_demote_l2: L2 entry is writeable but not dirty"));
9018
9019 /*
9020 * If the PTP is not leftover from an earlier promotion or it does not
9021 * have ATTR_AF set in every L3E, then fill it. The new L3Es will all
9022 * have ATTR_AF set, unless this is a wired mapping with ATTR_AF clear.
9023 *
9024 * When pmap_update_entry() clears the old L2 mapping, it (indirectly)
9025 * performs a dsb(). That dsb() ensures that the stores for filling
9026 * "l3" are visible before "l3" is added to the page table.
9027 */
9028 if (!vm_page_all_valid(ml3))
9029 pmap_fill_l3(l3, newl3);
9030
9031 pmap_demote_l2_check(l3, newl3);
9032
9033 /*
9034 * If the mapping has changed attributes, update the L3Es.
9035 */
9036 if ((pmap_load(l3) & ATTR_PROMOTE) != (newl3 & ATTR_PROMOTE))
9037 pmap_fill_l3(l3, newl3);
9038
9039 /*
9040 * Map the temporary page so we don't lose access to the l2 table.
9041 */
9042 if (tmpl2 != NULL) {
9043 pmap_kenter((vm_offset_t)tmpl2, PAGE_SIZE,
9044 DMAP_TO_PHYS(l2) & ~L3_OFFSET,
9045 VM_MEMATTR_WRITE_BACK);
9046 l2 = (pt_entry_t *)(tmpl2 + ((vm_offset_t)l2 & PAGE_MASK));
9047 }
9048
9049 /*
9050 * The spare PV entries must be reserved prior to demoting the
9051 * mapping, that is, prior to changing the PDE. Otherwise, the state
9052 * of the L2 and the PV lists will be inconsistent, which can result
9053 * in reclaim_pv_chunk() attempting to remove a PV entry from the
9054 * wrong PV list and pmap_pv_demote_l2() failing to find the expected
9055 * PV entry for the 2MB page mapping that is being demoted.
9056 */
9057 if ((oldl2 & ATTR_SW_MANAGED) != 0)
9058 reserve_pv_entries(pmap, Ln_ENTRIES - 1, lockp);
9059
9060 /*
9061 * Pass PAGE_SIZE so that a single TLB invalidation is performed on
9062 * the 2MB page mapping.
9063 */
9064 pmap_update_entry(pmap, l2, l3phys | L2_TABLE, va, PAGE_SIZE, true);
9065
9066 /*
9067 * Demote the PV entry.
9068 */
9069 if ((oldl2 & ATTR_SW_MANAGED) != 0)
9070 pmap_pv_demote_l2(pmap, va, PTE_TO_PHYS(oldl2), lockp);
9071
9072 counter_u64_add(pmap_l2_demotions, 1);
9073 CTR3(KTR_PMAP, "pmap_demote_l2: success for va %#lx"
9074 " in pmap %p %lx", va, pmap, l3[0]);
9075
9076 fail:
9077 if (tmpl2 != NULL) {
9078 pmap_kremove((vm_offset_t)tmpl2);
9079 kva_free(tmpl2, PAGE_SIZE);
9080 }
9081
9082 return (l3);
9083
9084 }
9085
9086 static pt_entry_t *
pmap_demote_l2(pmap_t pmap,pt_entry_t * l2,vm_offset_t va)9087 pmap_demote_l2(pmap_t pmap, pt_entry_t *l2, vm_offset_t va)
9088 {
9089 struct rwlock *lock;
9090 pt_entry_t *l3;
9091
9092 lock = NULL;
9093 l3 = pmap_demote_l2_locked(pmap, l2, va, &lock);
9094 if (lock != NULL)
9095 rw_wunlock(lock);
9096 return (l3);
9097 }
9098
9099 /*
9100 * Demote an L2C superpage mapping to L2C_ENTRIES L2 block mappings.
9101 */
9102 static bool
pmap_demote_l2c(pmap_t pmap,pt_entry_t * l2p,vm_offset_t va)9103 pmap_demote_l2c(pmap_t pmap, pt_entry_t *l2p, vm_offset_t va)
9104 {
9105 pd_entry_t *l2c_end, *l2c_start, l2e, mask, nbits, *tl2p;
9106 char *tmpl3;
9107 register_t intr;
9108
9109 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
9110 PMAP_ASSERT_STAGE1(pmap);
9111 l2c_start = (pd_entry_t *)((uintptr_t)l2p & ~((L2C_ENTRIES *
9112 sizeof(pd_entry_t)) - 1));
9113 l2c_end = l2c_start + L2C_ENTRIES;
9114 tmpl3 = NULL;
9115 if ((va & ~L2C_OFFSET) < (vm_offset_t)l2c_end &&
9116 (vm_offset_t)l2c_start < (va & ~L2C_OFFSET) + L2C_SIZE) {
9117 tmpl3 = kva_alloc(PAGE_SIZE);
9118 if (tmpl3 == NULL)
9119 return (false);
9120 pmap_kenter((vm_offset_t)tmpl3, PAGE_SIZE,
9121 DMAP_TO_PHYS(l2c_start) & ~L3_OFFSET,
9122 VM_MEMATTR_WRITE_BACK);
9123 l2c_start = (pd_entry_t *)(tmpl3 +
9124 ((vm_offset_t)l2c_start & PAGE_MASK));
9125 l2c_end = (pd_entry_t *)(tmpl3 +
9126 ((vm_offset_t)l2c_end & PAGE_MASK));
9127 }
9128 mask = 0;
9129 nbits = ATTR_DESCR_VALID;
9130 intr = intr_disable();
9131
9132 /*
9133 * Break the mappings.
9134 */
9135 for (tl2p = l2c_start; tl2p < l2c_end; tl2p++) {
9136 /*
9137 * Clear the mapping's contiguous and valid bits, but leave
9138 * the rest of the entry unchanged, so that a lockless,
9139 * concurrent pmap_kextract() can still lookup the physical
9140 * address.
9141 */
9142 l2e = pmap_load(tl2p);
9143 KASSERT((l2e & ATTR_CONTIGUOUS) != 0,
9144 ("pmap_demote_l2c: missing ATTR_CONTIGUOUS"));
9145 KASSERT((l2e & (ATTR_SW_DBM | ATTR_S1_AP_RW_BIT)) !=
9146 (ATTR_SW_DBM | ATTR_S1_AP(ATTR_S1_AP_RO)),
9147 ("pmap_demote_l2c: missing ATTR_S1_AP_RW"));
9148 while (!atomic_fcmpset_64(tl2p, &l2e, l2e & ~(ATTR_CONTIGUOUS |
9149 ATTR_DESCR_VALID)))
9150 cpu_spinwait();
9151
9152 /*
9153 * Hardware accessed and dirty bit maintenance might only
9154 * update a single L2 entry, so we must combine the accessed
9155 * and dirty bits from this entire set of contiguous L2
9156 * entries.
9157 */
9158 if ((l2e & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
9159 (ATTR_S1_AP(ATTR_S1_AP_RW) | ATTR_SW_DBM))
9160 mask = ATTR_S1_AP_RW_BIT;
9161 nbits |= l2e & ATTR_AF;
9162 }
9163 if ((nbits & ATTR_AF) != 0) {
9164 pmap_s1_invalidate_strided(pmap, va & ~L2C_OFFSET, (va +
9165 L2C_SIZE) & ~L2C_OFFSET, L2_SIZE, true);
9166 }
9167
9168 /*
9169 * Remake the mappings, updating the accessed and dirty bits.
9170 */
9171 l2e = (pmap_load(l2c_start) & ~mask) | nbits;
9172 for (tl2p = l2c_start; tl2p < l2c_end; tl2p++) {
9173 pmap_store(tl2p, l2e);
9174 l2e += L2_SIZE;
9175 }
9176 dsb(ishst);
9177
9178 intr_restore(intr);
9179 if (tmpl3 != NULL) {
9180 pmap_kremove((vm_offset_t)tmpl3);
9181 kva_free(tmpl3, PAGE_SIZE);
9182 }
9183 counter_u64_add(pmap_l2c_demotions, 1);
9184 CTR2(KTR_PMAP, "pmap_demote_l2c: success for va %#lx in pmap %p",
9185 va, pmap);
9186 return (true);
9187 }
9188
9189 /*
9190 * Demote a L3C superpage mapping to L3C_ENTRIES 4KB page mappings.
9191 */
9192 static bool
pmap_demote_l3c(pmap_t pmap,pt_entry_t * l3p,vm_offset_t va)9193 pmap_demote_l3c(pmap_t pmap, pt_entry_t *l3p, vm_offset_t va)
9194 {
9195 pt_entry_t *l3c_end, *l3c_start, l3e, mask, nbits, *tl3p;
9196 char *tmpl3;
9197 register_t intr;
9198
9199 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
9200 l3c_start = (pt_entry_t *)((uintptr_t)l3p & ~((L3C_ENTRIES *
9201 sizeof(pt_entry_t)) - 1));
9202 l3c_end = l3c_start + L3C_ENTRIES;
9203 tmpl3 = NULL;
9204 if ((va & ~L3C_OFFSET) < (vm_offset_t)l3c_end &&
9205 (vm_offset_t)l3c_start < (va & ~L3C_OFFSET) + L3C_SIZE) {
9206 tmpl3 = kva_alloc(PAGE_SIZE);
9207 if (tmpl3 == NULL)
9208 return (false);
9209 pmap_kenter((vm_offset_t)tmpl3, PAGE_SIZE,
9210 DMAP_TO_PHYS(l3c_start) & ~L3_OFFSET,
9211 VM_MEMATTR_WRITE_BACK);
9212 l3c_start = (pt_entry_t *)(tmpl3 +
9213 ((vm_offset_t)l3c_start & PAGE_MASK));
9214 l3c_end = (pt_entry_t *)(tmpl3 +
9215 ((vm_offset_t)l3c_end & PAGE_MASK));
9216 }
9217 mask = 0;
9218 nbits = ATTR_DESCR_VALID;
9219 intr = intr_disable();
9220
9221 /*
9222 * Break the mappings.
9223 */
9224 for (tl3p = l3c_start; tl3p < l3c_end; tl3p++) {
9225 /*
9226 * Clear the mapping's contiguous and valid bits, but leave
9227 * the rest of the entry unchanged, so that a lockless,
9228 * concurrent pmap_kextract() can still lookup the physical
9229 * address.
9230 */
9231 l3e = pmap_load(tl3p);
9232 KASSERT((l3e & ATTR_CONTIGUOUS) != 0,
9233 ("pmap_demote_l3c: missing ATTR_CONTIGUOUS"));
9234 KASSERT((l3e & (ATTR_SW_DBM | ATTR_S1_AP_RW_BIT)) !=
9235 (ATTR_SW_DBM | ATTR_S1_AP(ATTR_S1_AP_RO)),
9236 ("pmap_demote_l3c: missing ATTR_S1_AP_RW"));
9237 while (!atomic_fcmpset_64(tl3p, &l3e, l3e & ~(ATTR_CONTIGUOUS |
9238 ATTR_DESCR_VALID)))
9239 cpu_spinwait();
9240
9241 /*
9242 * Hardware accessed and dirty bit maintenance might only
9243 * update a single L3 entry, so we must combine the accessed
9244 * and dirty bits from this entire set of contiguous L3
9245 * entries.
9246 */
9247 if ((l3e & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
9248 (ATTR_S1_AP(ATTR_S1_AP_RW) | ATTR_SW_DBM))
9249 mask = ATTR_S1_AP_RW_BIT;
9250 nbits |= l3e & ATTR_AF;
9251 }
9252 if ((nbits & ATTR_AF) != 0) {
9253 pmap_invalidate_range(pmap, va & ~L3C_OFFSET, (va + L3C_SIZE) &
9254 ~L3C_OFFSET, true);
9255 }
9256
9257 /*
9258 * Remake the mappings, updating the accessed and dirty bits.
9259 */
9260 l3e = (pmap_load(l3c_start) & ~mask) | nbits;
9261 for (tl3p = l3c_start; tl3p < l3c_end; tl3p++) {
9262 pmap_store(tl3p, l3e);
9263 l3e += L3_SIZE;
9264 }
9265 dsb(ishst);
9266
9267 intr_restore(intr);
9268 if (tmpl3 != NULL) {
9269 pmap_kremove((vm_offset_t)tmpl3);
9270 kva_free(tmpl3, PAGE_SIZE);
9271 }
9272 counter_u64_add(pmap_l3c_demotions, 1);
9273 CTR2(KTR_PMAP, "pmap_demote_l3c: success for va %#lx in pmap %p",
9274 va, pmap);
9275 return (true);
9276 }
9277
9278 /*
9279 * Accumulate the accessed and dirty bits within a L3C superpage and
9280 * return the specified PTE with them applied correctly.
9281 */
9282 static pt_entry_t
pmap_load_l3c(pt_entry_t * l3p)9283 pmap_load_l3c(pt_entry_t *l3p)
9284 {
9285 pt_entry_t *l3c_end, *l3c_start, l3e, mask, nbits, *tl3p;
9286
9287 l3c_start = (pt_entry_t *)((uintptr_t)l3p & ~((L3C_ENTRIES *
9288 sizeof(pt_entry_t)) - 1));
9289 l3c_end = l3c_start + L3C_ENTRIES;
9290 mask = 0;
9291 nbits = 0;
9292 /* Iterate over each mapping in the superpage. */
9293 for (tl3p = l3c_start; tl3p < l3c_end; tl3p++) {
9294 l3e = pmap_load(tl3p);
9295 KASSERT((l3e & ATTR_CONTIGUOUS) != 0,
9296 ("pmap_load_l3c: missing ATTR_CONTIGUOUS"));
9297 /* Update mask if the current page has its dirty bit set. */
9298 if ((l3e & (ATTR_S1_AP_RW_BIT | ATTR_SW_DBM)) ==
9299 (ATTR_S1_AP(ATTR_S1_AP_RW) | ATTR_SW_DBM))
9300 mask = ATTR_S1_AP_RW_BIT;
9301 /* Update nbits if the accessed bit is set. */
9302 nbits |= l3e & ATTR_AF;
9303 }
9304 return ((pmap_load(l3p) & ~mask) | nbits);
9305 }
9306
9307 /*
9308 * Perform the pmap work for mincore(2). If the page is not both referenced and
9309 * modified by this pmap, returns its physical address so that the caller can
9310 * find other mappings.
9311 */
9312 int
pmap_mincore(pmap_t pmap,vm_offset_t addr,vm_paddr_t * pap)9313 pmap_mincore(pmap_t pmap, vm_offset_t addr, vm_paddr_t *pap)
9314 {
9315 pt_entry_t *pte, tpte;
9316 vm_paddr_t mask, pa;
9317 int lvl, psind, val;
9318 bool managed;
9319
9320 PMAP_ASSERT_STAGE1(pmap);
9321 PMAP_LOCK(pmap);
9322 pte = pmap_pte(pmap, addr, &lvl);
9323 if (pte != NULL) {
9324 tpte = pmap_load(pte);
9325
9326 switch (lvl) {
9327 case 3:
9328 mask = L3_OFFSET;
9329 psind = (tpte & ATTR_CONTIGUOUS) != 0 ? 1 : 0;
9330 break;
9331 case 2:
9332 mask = L2_OFFSET;
9333 psind = 2;
9334 break;
9335 case 1:
9336 mask = L1_OFFSET;
9337 psind = 3;
9338 break;
9339 default:
9340 panic("pmap_mincore: invalid level %d", lvl);
9341 }
9342
9343 managed = (tpte & ATTR_SW_MANAGED) != 0;
9344 val = MINCORE_INCORE | MINCORE_PSIND(psind);
9345 if ((managed && pmap_pte_dirty(pmap, tpte)) || (!managed &&
9346 (tpte & ATTR_S1_AP_RW_BIT) == ATTR_S1_AP(ATTR_S1_AP_RW)))
9347 val |= MINCORE_MODIFIED | MINCORE_MODIFIED_OTHER;
9348 if ((tpte & ATTR_AF) == ATTR_AF)
9349 val |= MINCORE_REFERENCED | MINCORE_REFERENCED_OTHER;
9350
9351 pa = PTE_TO_PHYS(tpte) | (addr & mask);
9352 } else {
9353 managed = false;
9354 val = 0;
9355 }
9356
9357 if ((val & (MINCORE_MODIFIED_OTHER | MINCORE_REFERENCED_OTHER)) !=
9358 (MINCORE_MODIFIED_OTHER | MINCORE_REFERENCED_OTHER) && managed) {
9359 *pap = pa;
9360 }
9361 PMAP_UNLOCK(pmap);
9362 return (val);
9363 }
9364
9365 /*
9366 * Garbage collect every ASID that is neither active on a processor nor
9367 * reserved.
9368 */
9369 static void
pmap_reset_asid_set(pmap_t pmap)9370 pmap_reset_asid_set(pmap_t pmap)
9371 {
9372 pmap_t curpmap;
9373 int asid, cpuid, epoch;
9374 struct asid_set *set;
9375 enum pmap_stage stage;
9376
9377 set = pmap->pm_asid_set;
9378 stage = pmap->pm_stage;
9379
9380 set = pmap->pm_asid_set;
9381 KASSERT(set != NULL, ("%s: NULL asid set", __func__));
9382 mtx_assert(&set->asid_set_mutex, MA_OWNED);
9383
9384 /*
9385 * Ensure that the store to asid_epoch is globally visible before the
9386 * loads from pc_curpmap are performed.
9387 */
9388 epoch = set->asid_epoch + 1;
9389 if (epoch == INT_MAX)
9390 epoch = 0;
9391 set->asid_epoch = epoch;
9392 dsb(ishst);
9393 if (stage == PM_STAGE1) {
9394 __asm __volatile("tlbi vmalle1is");
9395 } else {
9396 KASSERT(pmap_clean_stage2_tlbi != NULL,
9397 ("%s: Unset stage 2 tlb invalidation callback\n",
9398 __func__));
9399 pmap_clean_stage2_tlbi();
9400 }
9401 dsb(ish);
9402 bit_nclear(set->asid_set, ASID_FIRST_AVAILABLE,
9403 set->asid_set_size - 1);
9404 CPU_FOREACH(cpuid) {
9405 if (cpuid == curcpu)
9406 continue;
9407 if (stage == PM_STAGE1) {
9408 curpmap = pcpu_find(cpuid)->pc_curpmap;
9409 PMAP_ASSERT_STAGE1(pmap);
9410 } else {
9411 curpmap = pcpu_find(cpuid)->pc_curvmpmap;
9412 if (curpmap == NULL)
9413 continue;
9414 PMAP_ASSERT_STAGE2(pmap);
9415 }
9416 KASSERT(curpmap->pm_asid_set == set, ("Incorrect set"));
9417 asid = COOKIE_TO_ASID(curpmap->pm_cookie);
9418 if (asid == -1)
9419 continue;
9420 bit_set(set->asid_set, asid);
9421 curpmap->pm_cookie = COOKIE_FROM(asid, epoch);
9422 }
9423 }
9424
9425 /*
9426 * Allocate a new ASID for the specified pmap.
9427 */
9428 static void
pmap_alloc_asid(pmap_t pmap)9429 pmap_alloc_asid(pmap_t pmap)
9430 {
9431 struct asid_set *set;
9432 int new_asid;
9433
9434 set = pmap->pm_asid_set;
9435 KASSERT(set != NULL, ("%s: NULL asid set", __func__));
9436
9437 mtx_lock_spin(&set->asid_set_mutex);
9438
9439 /*
9440 * While this processor was waiting to acquire the asid set mutex,
9441 * pmap_reset_asid_set() running on another processor might have
9442 * updated this pmap's cookie to the current epoch. In which case, we
9443 * don't need to allocate a new ASID.
9444 */
9445 if (COOKIE_TO_EPOCH(pmap->pm_cookie) == set->asid_epoch)
9446 goto out;
9447
9448 bit_ffc_at(set->asid_set, set->asid_next, set->asid_set_size,
9449 &new_asid);
9450 if (new_asid == -1) {
9451 bit_ffc_at(set->asid_set, ASID_FIRST_AVAILABLE,
9452 set->asid_next, &new_asid);
9453 if (new_asid == -1) {
9454 pmap_reset_asid_set(pmap);
9455 bit_ffc_at(set->asid_set, ASID_FIRST_AVAILABLE,
9456 set->asid_set_size, &new_asid);
9457 KASSERT(new_asid != -1, ("ASID allocation failure"));
9458 }
9459 }
9460 bit_set(set->asid_set, new_asid);
9461 set->asid_next = new_asid + 1;
9462 pmap->pm_cookie = COOKIE_FROM(new_asid, set->asid_epoch);
9463 out:
9464 mtx_unlock_spin(&set->asid_set_mutex);
9465 }
9466
9467 static uint64_t __read_mostly ttbr_flags;
9468
9469 /*
9470 * Compute the value that should be stored in ttbr0 to activate the specified
9471 * pmap. This value may change from time to time.
9472 */
9473 uint64_t
pmap_to_ttbr0(pmap_t pmap)9474 pmap_to_ttbr0(pmap_t pmap)
9475 {
9476 uint64_t ttbr;
9477
9478 ttbr = pmap->pm_ttbr;
9479 ttbr |= ASID_TO_OPERAND(COOKIE_TO_ASID(pmap->pm_cookie));
9480 ttbr |= ttbr_flags;
9481
9482 return (ttbr);
9483 }
9484
9485 static void
pmap_set_cnp(void * arg)9486 pmap_set_cnp(void *arg)
9487 {
9488 uint64_t ttbr0, ttbr1;
9489 u_int cpuid;
9490
9491 cpuid = *(u_int *)arg;
9492 if (cpuid == curcpu) {
9493 /*
9494 * Set the flags while all CPUs are handling the
9495 * smp_rendezvous so will not call pmap_to_ttbr0. Any calls
9496 * to pmap_to_ttbr0 after this will have the CnP flag set.
9497 * The dsb after invalidating the TLB will act as a barrier
9498 * to ensure all CPUs can observe this change.
9499 */
9500 ttbr_flags |= TTBR_CnP;
9501 }
9502
9503 ttbr0 = READ_SPECIALREG(ttbr0_el1);
9504 ttbr0 |= TTBR_CnP;
9505
9506 ttbr1 = READ_SPECIALREG(ttbr1_el1);
9507 ttbr1 |= TTBR_CnP;
9508
9509 /* Update ttbr{0,1}_el1 with the CnP flag */
9510 WRITE_SPECIALREG(ttbr0_el1, ttbr0);
9511 WRITE_SPECIALREG(ttbr1_el1, ttbr1);
9512 isb();
9513 __asm __volatile("tlbi vmalle1is");
9514 dsb(ish);
9515 isb();
9516 }
9517
9518 /*
9519 * Defer enabling some features until we have read the ID registers to know
9520 * if they are supported on all CPUs.
9521 */
9522 static void
pmap_init_mp(void * dummy __unused)9523 pmap_init_mp(void *dummy __unused)
9524 {
9525 uint64_t reg;
9526
9527 get_kernel_reg(ID_AA64PFR1_EL1, ®);
9528 if (ID_AA64PFR1_BT_VAL(reg) != ID_AA64PFR1_BT_NONE) {
9529 if (bootverbose)
9530 printf("Enabling BTI\n");
9531 pmap_bti_support = true;
9532
9533 pmap_bti_ranges_zone = uma_zcreate("BTI ranges",
9534 sizeof(struct rs_el), NULL, NULL, NULL, NULL,
9535 UMA_ALIGN_PTR, 0);
9536 }
9537 }
9538 SYSINIT(pmap_init_mp, SI_SUB_CPU, SI_ORDER_ANY, pmap_init_mp, NULL);
9539
9540 /*
9541 * Defer enabling CnP until we have read the ID registers to know if it's
9542 * supported on all CPUs.
9543 */
9544 static void
pmap_init_cnp(void * dummy __unused)9545 pmap_init_cnp(void *dummy __unused)
9546 {
9547 uint64_t reg;
9548 u_int cpuid;
9549
9550 get_kernel_reg(ID_AA64MMFR2_EL1, ®);
9551 if (ID_AA64MMFR2_CnP_VAL(reg) != ID_AA64MMFR2_CnP_NONE) {
9552 if (bootverbose)
9553 printf("Enabling CnP\n");
9554 cpuid = curcpu;
9555 smp_rendezvous(NULL, pmap_set_cnp, NULL, &cpuid);
9556 }
9557
9558 }
9559 SYSINIT(pmap_init_cnp, SI_SUB_SMP, SI_ORDER_ANY, pmap_init_cnp, NULL);
9560
9561 static bool
pmap_activate_int(struct thread * td,pmap_t pmap)9562 pmap_activate_int(struct thread *td, pmap_t pmap)
9563 {
9564 struct asid_set *set;
9565 int epoch;
9566
9567 KASSERT(PCPU_GET(curpmap) != NULL, ("no active pmap"));
9568 KASSERT(pmap != kernel_pmap, ("kernel pmap activation"));
9569
9570 if ((pmap->pm_stage == PM_STAGE1 && pmap == PCPU_GET(curpmap)) ||
9571 (pmap->pm_stage == PM_STAGE2 && pmap == PCPU_GET(curvmpmap))) {
9572 /*
9573 * Handle the possibility that the old thread was preempted
9574 * after an "ic" or "tlbi" instruction but before it performed
9575 * a "dsb" instruction. If the old thread migrates to a new
9576 * processor, its completion of a "dsb" instruction on that
9577 * new processor does not guarantee that the "ic" or "tlbi"
9578 * instructions performed on the old processor have completed.
9579 */
9580 dsb(ish);
9581 return (false);
9582 }
9583
9584 set = pmap->pm_asid_set;
9585 KASSERT(set != NULL, ("%s: NULL asid set", __func__));
9586
9587 /*
9588 * Ensure that the store to curpmap is globally visible before the
9589 * load from asid_epoch is performed.
9590 */
9591 if (pmap->pm_stage == PM_STAGE1)
9592 PCPU_SET(curpmap, pmap);
9593 else
9594 PCPU_SET(curvmpmap, pmap);
9595 dsb(ish);
9596 epoch = COOKIE_TO_EPOCH(pmap->pm_cookie);
9597 if (epoch >= 0 && epoch != set->asid_epoch)
9598 pmap_alloc_asid(pmap);
9599
9600 if (pmap->pm_stage == PM_STAGE1) {
9601 uint64_t new_tcr, tcr;
9602
9603 new_tcr = td->td_proc->p_md.md_tcr;
9604 tcr = READ_SPECIALREG(tcr_el1);
9605 if ((tcr & MD_TCR_FIELDS) != new_tcr) {
9606 tcr &= ~MD_TCR_FIELDS;
9607 tcr |= new_tcr;
9608 WRITE_SPECIALREG(tcr_el1, tcr);
9609 }
9610 set_ttbr0(pmap_to_ttbr0(pmap));
9611 if (PCPU_GET(bcast_tlbi_workaround) != 0)
9612 invalidate_local_icache();
9613 }
9614 return (true);
9615 }
9616
9617 void
pmap_activate_vm(pmap_t pmap)9618 pmap_activate_vm(pmap_t pmap)
9619 {
9620
9621 PMAP_ASSERT_STAGE2(pmap);
9622
9623 (void)pmap_activate_int(NULL, pmap);
9624 }
9625
9626 void
pmap_activate(struct thread * td)9627 pmap_activate(struct thread *td)
9628 {
9629 pmap_t pmap;
9630
9631 pmap = vmspace_pmap(td->td_proc->p_vmspace);
9632 PMAP_ASSERT_STAGE1(pmap);
9633 critical_enter();
9634 (void)pmap_activate_int(td, pmap);
9635 critical_exit();
9636 }
9637
9638 /*
9639 * Activate the thread we are switching to.
9640 * To simplify the assembly in cpu_throw return the new threads pcb.
9641 */
9642 struct pcb *
pmap_switch(struct thread * new)9643 pmap_switch(struct thread *new)
9644 {
9645 pcpu_bp_harden bp_harden;
9646 struct pcb *pcb;
9647 uint64_t sctlr;
9648
9649 /* Store the new curthread */
9650 PCPU_SET(curthread, new);
9651
9652 /* And the new pcb */
9653 pcb = new->td_pcb;
9654 PCPU_SET(curpcb, pcb);
9655
9656 if ((new->td_proc->p_flag & P_KPROC) == 0) {
9657 sctlr = READ_SPECIALREG(sctlr_el1);
9658 if ((sctlr & SCTLR_USER_MASK) != new->td_md.md_sctlr) {
9659 sctlr &= ~SCTLR_USER_MASK;
9660 sctlr |= new->td_md.md_sctlr;
9661 WRITE_SPECIALREG(sctlr_el1, sctlr);
9662 isb();
9663 }
9664 }
9665
9666 /*
9667 * TODO: We may need to flush the cache here if switching
9668 * to a user process.
9669 */
9670
9671 if (pmap_activate_int(new, vmspace_pmap(new->td_proc->p_vmspace))) {
9672 /*
9673 * Stop userspace from training the branch predictor against
9674 * other processes. This will call into a CPU specific
9675 * function that clears the branch predictor state.
9676 */
9677 bp_harden = PCPU_GET(bp_harden);
9678 if (bp_harden != NULL)
9679 bp_harden();
9680 }
9681
9682 return (pcb);
9683 }
9684
9685 void
pmap_sync_icache(pmap_t pmap,vm_offset_t va,vm_size_t sz)9686 pmap_sync_icache(pmap_t pmap, vm_offset_t va, vm_size_t sz)
9687 {
9688
9689 PMAP_ASSERT_STAGE1(pmap);
9690 KASSERT(ADDR_IS_CANONICAL(va),
9691 ("%s: Address not in canonical form: %lx", __func__, va));
9692
9693 if (ADDR_IS_KERNEL(va)) {
9694 cpu_icache_sync_range((void *)va, sz);
9695 } else {
9696 u_int len, offset;
9697 vm_paddr_t pa;
9698
9699 /* Find the length of data in this page to flush */
9700 offset = va & PAGE_MASK;
9701 len = imin(PAGE_SIZE - offset, sz);
9702
9703 while (sz != 0) {
9704 /* Extract the physical address & find it in the DMAP */
9705 pa = pmap_extract(pmap, va);
9706 if (pa != 0)
9707 cpu_icache_sync_range(PHYS_TO_DMAP(pa), len);
9708
9709 /* Move to the next page */
9710 sz -= len;
9711 va += len;
9712 /* Set the length for the next iteration */
9713 len = imin(PAGE_SIZE, sz);
9714 }
9715 }
9716 }
9717
9718 static int
pmap_stage2_fault(pmap_t pmap,uint64_t esr,uint64_t far)9719 pmap_stage2_fault(pmap_t pmap, uint64_t esr, uint64_t far)
9720 {
9721 pd_entry_t *pdep;
9722 pt_entry_t *ptep, pte;
9723 int rv, lvl, dfsc;
9724
9725 PMAP_ASSERT_STAGE2(pmap);
9726 rv = KERN_FAILURE;
9727
9728 /* Data and insn aborts use same encoding for FSC field. */
9729 dfsc = esr & ISS_DATA_DFSC_MASK;
9730 switch (dfsc) {
9731 case ISS_DATA_DFSC_TF_L0:
9732 case ISS_DATA_DFSC_TF_L1:
9733 case ISS_DATA_DFSC_TF_L2:
9734 case ISS_DATA_DFSC_TF_L3:
9735 PMAP_LOCK(pmap);
9736 pdep = pmap_pde(pmap, far, &lvl);
9737 if (pdep == NULL || lvl != (dfsc - ISS_DATA_DFSC_TF_L1)) {
9738 PMAP_UNLOCK(pmap);
9739 break;
9740 }
9741
9742 switch (lvl) {
9743 case 0:
9744 ptep = pmap_l0_to_l1(pdep, far);
9745 break;
9746 case 1:
9747 ptep = pmap_l1_to_l2(pdep, far);
9748 break;
9749 case 2:
9750 ptep = pmap_l2_to_l3(pdep, far);
9751 break;
9752 default:
9753 panic("%s: Invalid pde level %d", __func__,lvl);
9754 }
9755 goto fault_exec;
9756
9757 case ISS_DATA_DFSC_AFF_L1:
9758 case ISS_DATA_DFSC_AFF_L2:
9759 case ISS_DATA_DFSC_AFF_L3:
9760 PMAP_LOCK(pmap);
9761 ptep = pmap_pte(pmap, far, &lvl);
9762 fault_exec:
9763 if (ptep != NULL && (pte = pmap_load(ptep)) != 0) {
9764 /*
9765 * If accessing an executable page invalidate
9766 * the I-cache so it will be valid when we
9767 * continue execution in the guest. The D-cache
9768 * is assumed to already be clean to the Point
9769 * of Coherency.
9770 */
9771 if ((pte & ATTR_S2_XN_MASK) !=
9772 ATTR_S2_XN(ATTR_S2_XN_NONE)) {
9773 invalidate_icache();
9774 }
9775 pmap_set_bits(ptep, ATTR_AF | ATTR_DESCR_VALID);
9776 rv = KERN_SUCCESS;
9777 }
9778 PMAP_UNLOCK(pmap);
9779 break;
9780 }
9781
9782 return (rv);
9783 }
9784
9785 int
pmap_fault(pmap_t pmap,uint64_t esr,uint64_t far)9786 pmap_fault(pmap_t pmap, uint64_t esr, uint64_t far)
9787 {
9788 pt_entry_t pte, *ptep;
9789 register_t intr;
9790 uint64_t ec, par;
9791 int lvl, rv;
9792
9793 rv = KERN_FAILURE;
9794
9795 ec = ESR_ELx_EXCEPTION(esr);
9796 switch (ec) {
9797 case EXCP_INSN_ABORT_L:
9798 case EXCP_INSN_ABORT:
9799 case EXCP_DATA_ABORT_L:
9800 case EXCP_DATA_ABORT:
9801 break;
9802 default:
9803 return (rv);
9804 }
9805
9806 if (pmap->pm_stage == PM_STAGE2)
9807 return (pmap_stage2_fault(pmap, esr, far));
9808
9809 /* Data and insn aborts use same encoding for FSC field. */
9810 switch (esr & ISS_DATA_DFSC_MASK) {
9811 case ISS_DATA_DFSC_AFF_L1:
9812 case ISS_DATA_DFSC_AFF_L2:
9813 case ISS_DATA_DFSC_AFF_L3:
9814 PMAP_LOCK(pmap);
9815 ptep = pmap_pte(pmap, far, &lvl);
9816 if (ptep != NULL) {
9817 pmap_set_bits(ptep, ATTR_AF);
9818 rv = KERN_SUCCESS;
9819 /*
9820 * XXXMJ as an optimization we could mark the entry
9821 * dirty if this is a write fault.
9822 */
9823 }
9824 PMAP_UNLOCK(pmap);
9825 break;
9826 case ISS_DATA_DFSC_PF_L1:
9827 case ISS_DATA_DFSC_PF_L2:
9828 case ISS_DATA_DFSC_PF_L3:
9829 if ((ec != EXCP_DATA_ABORT_L && ec != EXCP_DATA_ABORT) ||
9830 (esr & ISS_DATA_WnR) == 0)
9831 return (rv);
9832 PMAP_LOCK(pmap);
9833 ptep = pmap_pte(pmap, far, &lvl);
9834 if (ptep != NULL &&
9835 ((pte = pmap_load(ptep)) & ATTR_SW_DBM) != 0) {
9836 if ((pte & ATTR_S1_AP_RW_BIT) ==
9837 ATTR_S1_AP(ATTR_S1_AP_RO)) {
9838 pmap_clear_bits(ptep, ATTR_S1_AP_RW_BIT);
9839 pmap_s1_invalidate_page(pmap, far, true);
9840 }
9841 rv = KERN_SUCCESS;
9842 }
9843 PMAP_UNLOCK(pmap);
9844 break;
9845 case ISS_DATA_DFSC_TF_L0:
9846 case ISS_DATA_DFSC_TF_L1:
9847 case ISS_DATA_DFSC_TF_L2:
9848 case ISS_DATA_DFSC_TF_L3:
9849 /*
9850 * Retry the translation. A break-before-make sequence can
9851 * produce a transient fault.
9852 */
9853 if (pmap == kernel_pmap) {
9854 /*
9855 * The translation fault may have occurred within a
9856 * critical section. Therefore, we must check the
9857 * address without acquiring the kernel pmap's lock.
9858 */
9859 if (pmap_klookup(far, NULL))
9860 rv = KERN_SUCCESS;
9861 } else {
9862 bool owned;
9863
9864 /*
9865 * In the EFIRT driver we lock the pmap before
9866 * calling into the runtime service. As the lock
9867 * is already owned by the current thread skip
9868 * locking it again.
9869 */
9870 owned = PMAP_OWNED(pmap);
9871 if (!owned)
9872 PMAP_LOCK(pmap);
9873 /* Ask the MMU to check the address. */
9874 intr = intr_disable();
9875 par = arm64_address_translate_s1e0r(far);
9876 intr_restore(intr);
9877 if (!owned)
9878 PMAP_UNLOCK(pmap);
9879
9880 /*
9881 * If the translation was successful, then we can
9882 * return success to the trap handler.
9883 */
9884 if (PAR_SUCCESS(par))
9885 rv = KERN_SUCCESS;
9886 }
9887 break;
9888 }
9889
9890 return (rv);
9891 }
9892
9893 /*
9894 * Increase the starting virtual address of the given mapping if a
9895 * different alignment might result in more superpage mappings.
9896 */
9897 void
pmap_align_superpage(vm_object_t object,vm_ooffset_t offset,vm_offset_t * addr,vm_size_t size)9898 pmap_align_superpage(vm_object_t object, vm_ooffset_t offset,
9899 vm_offset_t *addr, vm_size_t size)
9900 {
9901 vm_offset_t superpage_offset;
9902
9903 if (size < L3C_SIZE)
9904 return;
9905 if (object != NULL && (object->flags & OBJ_COLORED) != 0)
9906 offset += ptoa(object->pg_color);
9907
9908 /*
9909 * Considering the object's physical alignment, is the mapping large
9910 * enough to encompass an L2 (2MB/32MB) superpage ...
9911 */
9912 superpage_offset = offset & L2_OFFSET;
9913 if (size - ((L2_SIZE - superpage_offset) & L2_OFFSET) >= L2_SIZE) {
9914 /*
9915 * If the virtual and physical alignments differ, then
9916 * increase the virtual address so that the alignments match.
9917 */
9918 if ((*addr & L2_OFFSET) < superpage_offset)
9919 *addr = (*addr & ~L2_OFFSET) + superpage_offset;
9920 else if ((*addr & L2_OFFSET) > superpage_offset)
9921 *addr = ((*addr + L2_OFFSET) & ~L2_OFFSET) +
9922 superpage_offset;
9923 return;
9924 }
9925 /* ... or an L3C (64KB/2MB) superpage? */
9926 superpage_offset = offset & L3C_OFFSET;
9927 if (size - ((L3C_SIZE - superpage_offset) & L3C_OFFSET) >= L3C_SIZE) {
9928 if ((*addr & L3C_OFFSET) < superpage_offset)
9929 *addr = (*addr & ~L3C_OFFSET) + superpage_offset;
9930 else if ((*addr & L3C_OFFSET) > superpage_offset)
9931 *addr = ((*addr + L3C_OFFSET) & ~L3C_OFFSET) +
9932 superpage_offset;
9933 }
9934 }
9935
9936 /**
9937 * Get the kernel virtual address of a set of physical pages. If there are
9938 * physical addresses not covered by the DMAP perform a transient mapping
9939 * that will be removed when calling pmap_unmap_io_transient.
9940 *
9941 * \param page The pages the caller wishes to obtain the virtual
9942 * address on the kernel memory map.
9943 * \param vaddr On return contains the kernel virtual memory address
9944 * of the pages passed in the page parameter.
9945 * \param count Number of pages passed in.
9946 * \param can_fault true if the thread using the mapped pages can take
9947 * page faults, false otherwise.
9948 *
9949 * \returns true if the caller must call pmap_unmap_io_transient when
9950 * finished or false otherwise.
9951 *
9952 */
9953 bool
pmap_map_io_transient(vm_page_t page[],void * vaddr[],int count,bool can_fault)9954 pmap_map_io_transient(vm_page_t page[], void *vaddr[], int count,
9955 bool can_fault)
9956 {
9957 vm_paddr_t paddr;
9958 vmem_addr_t addr;
9959 bool needs_mapping;
9960 int error __diagused, i;
9961
9962 /*
9963 * Allocate any KVA space that we need, this is done in a separate
9964 * loop to prevent calling vmem_alloc while pinned.
9965 */
9966 needs_mapping = false;
9967 for (i = 0; i < count; i++) {
9968 paddr = VM_PAGE_TO_PHYS(page[i]);
9969 if (__predict_false(!PHYS_IN_DMAP(paddr))) {
9970 error = vmem_alloc(kernel_arena, PAGE_SIZE,
9971 M_BESTFIT | M_WAITOK, &addr);
9972 KASSERT(error == 0, ("vmem_alloc failed: %d", error));
9973 vaddr[i] = (void *)addr;
9974 needs_mapping = true;
9975 } else {
9976 vaddr[i] = PHYS_TO_DMAP(paddr);
9977 }
9978 }
9979
9980 /* Exit early if everything is covered by the DMAP */
9981 if (!needs_mapping)
9982 return (false);
9983
9984 if (!can_fault)
9985 sched_pin();
9986 for (i = 0; i < count; i++) {
9987 paddr = VM_PAGE_TO_PHYS(page[i]);
9988 if (!PHYS_IN_DMAP(paddr)) {
9989 panic(
9990 "pmap_map_io_transient: TODO: Map out of DMAP data");
9991 }
9992 }
9993
9994 return (needs_mapping);
9995 }
9996
9997 void
pmap_unmap_io_transient(vm_page_t page[],void * vaddr[],int count,bool can_fault)9998 pmap_unmap_io_transient(vm_page_t page[], void *vaddr[], int count,
9999 bool can_fault)
10000 {
10001 vm_paddr_t paddr;
10002 int i;
10003
10004 if (!can_fault)
10005 sched_unpin();
10006 for (i = 0; i < count; i++) {
10007 paddr = VM_PAGE_TO_PHYS(page[i]);
10008 if (!PHYS_IN_DMAP(paddr)) {
10009 panic("ARM64TODO: pmap_unmap_io_transient: Unmap data");
10010 }
10011 }
10012 }
10013
10014 bool
pmap_is_valid_memattr(pmap_t pmap __unused,vm_memattr_t mode)10015 pmap_is_valid_memattr(pmap_t pmap __unused, vm_memattr_t mode)
10016 {
10017
10018 return (mode >= 0 && mode < VM_MEMATTR_END);
10019 }
10020
10021 static void *
bti_dup_range(void * ctx __unused,void * data)10022 bti_dup_range(void *ctx __unused, void *data)
10023 {
10024 struct rs_el *node, *new_node;
10025
10026 new_node = uma_zalloc(pmap_bti_ranges_zone, M_NOWAIT);
10027 if (new_node == NULL)
10028 return (NULL);
10029 node = data;
10030 memcpy(new_node, node, sizeof(*node));
10031 return (new_node);
10032 }
10033
10034 static void
bti_free_range(void * ctx __unused,void * node)10035 bti_free_range(void *ctx __unused, void *node)
10036 {
10037
10038 uma_zfree(pmap_bti_ranges_zone, node);
10039 }
10040
10041 static int
pmap_bti_assign(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)10042 pmap_bti_assign(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
10043 {
10044 struct rs_el *rs;
10045 int error;
10046
10047 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
10048 PMAP_ASSERT_STAGE1(pmap);
10049 MPASS(pmap->pm_bti != NULL);
10050 rs = uma_zalloc(pmap_bti_ranges_zone, M_NOWAIT);
10051 if (rs == NULL)
10052 return (ENOMEM);
10053 error = rangeset_insert(pmap->pm_bti, sva, eva, rs);
10054 if (error != 0)
10055 uma_zfree(pmap_bti_ranges_zone, rs);
10056 return (error);
10057 }
10058
10059 static void
pmap_bti_deassign_all(pmap_t pmap)10060 pmap_bti_deassign_all(pmap_t pmap)
10061 {
10062
10063 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
10064 if (pmap->pm_bti != NULL)
10065 rangeset_remove_all(pmap->pm_bti);
10066 }
10067
10068 /*
10069 * Returns true if the BTI setting is the same across the specified address
10070 * range, and false otherwise. When returning true, updates the referenced PTE
10071 * to reflect the BTI setting.
10072 *
10073 * Only stage 1 pmaps support BTI. The kernel pmap is always a stage 1 pmap
10074 * that has the same BTI setting implicitly across its entire address range.
10075 */
10076 static bool
pmap_bti_same(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,pt_entry_t * pte)10077 pmap_bti_same(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, pt_entry_t *pte)
10078 {
10079 struct rs_el *rs;
10080 vm_offset_t va;
10081
10082 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
10083 KASSERT(ADDR_IS_CANONICAL(sva),
10084 ("%s: Start address not in canonical form: %lx", __func__, sva));
10085 KASSERT(ADDR_IS_CANONICAL(eva),
10086 ("%s: End address not in canonical form: %lx", __func__, eva));
10087 KASSERT((*pte & ATTR_S1_GP) == 0,
10088 ("%s: pte %lx has ATTR_S1_GP preset", __func__, *pte));
10089
10090 if (pmap == kernel_pmap) {
10091 *pte |= ATTR_KERN_GP;
10092 return (true);
10093 }
10094 if (pmap->pm_bti == NULL)
10095 return (true);
10096 PMAP_ASSERT_STAGE1(pmap);
10097 rs = rangeset_containing(pmap->pm_bti, sva);
10098 if (rs == NULL)
10099 return (rangeset_empty(pmap->pm_bti, sva, eva));
10100 while ((va = rs->re_end) < eva) {
10101 if ((rs = rangeset_beginning(pmap->pm_bti, va)) == NULL)
10102 return (false);
10103 }
10104 *pte |= ATTR_S1_GP;
10105 return (true);
10106 }
10107
10108 static pt_entry_t
pmap_pte_bti(pmap_t pmap,vm_offset_t va)10109 pmap_pte_bti(pmap_t pmap, vm_offset_t va)
10110 {
10111 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
10112 MPASS(ADDR_IS_CANONICAL(va));
10113
10114 if (pmap->pm_stage != PM_STAGE1)
10115 return (0);
10116 if (pmap == kernel_pmap)
10117 return (ATTR_KERN_GP);
10118 if (pmap->pm_bti != NULL &&
10119 rangeset_containing(pmap->pm_bti, va) != NULL)
10120 return (ATTR_S1_GP);
10121 return (0);
10122 }
10123
10124 static void
pmap_bti_on_remove(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)10125 pmap_bti_on_remove(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
10126 {
10127
10128 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
10129 if (pmap->pm_bti != NULL)
10130 rangeset_remove(pmap->pm_bti, sva, eva);
10131 }
10132
10133 static int
pmap_bti_copy(pmap_t dst_pmap,pmap_t src_pmap)10134 pmap_bti_copy(pmap_t dst_pmap, pmap_t src_pmap)
10135 {
10136
10137 PMAP_LOCK_ASSERT(dst_pmap, MA_OWNED);
10138 PMAP_LOCK_ASSERT(src_pmap, MA_OWNED);
10139 MPASS(src_pmap->pm_stage == dst_pmap->pm_stage);
10140 MPASS(src_pmap->pm_bti != NULL);
10141 MPASS(dst_pmap->pm_bti != NULL);
10142 if (src_pmap->pm_bti->rs_data_ctx == NULL)
10143 return (0);
10144 return (rangeset_copy(dst_pmap->pm_bti, src_pmap->pm_bti));
10145 }
10146
10147 static void
pmap_bti_update_range(pmap_t pmap,vm_offset_t sva,vm_offset_t eva,bool set)10148 pmap_bti_update_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, bool set)
10149 {
10150 PMAP_LOCK_ASSERT(pmap, MA_OWNED);
10151 PMAP_ASSERT_STAGE1(pmap);
10152
10153 pmap_mask_set_locked(pmap, sva, eva, ATTR_S1_GP, set ? ATTR_S1_GP : 0,
10154 true);
10155 }
10156
10157 int
pmap_bti_set(pmap_t pmap,vm_offset_t sva,vm_offset_t eva)10158 pmap_bti_set(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
10159 {
10160 int error;
10161
10162 if (pmap->pm_bti == NULL)
10163 return (0);
10164 if (!ADDR_IS_CANONICAL(sva) || !ADDR_IS_CANONICAL(eva))
10165 return (EINVAL);
10166 if (pmap->pm_stage != PM_STAGE1)
10167 return (EINVAL);
10168 if (eva <= sva || ADDR_IS_KERNEL(eva))
10169 return (EFAULT);
10170
10171 sva = trunc_page(sva);
10172 eva = round_page(eva);
10173 for (;;) {
10174 PMAP_LOCK(pmap);
10175 error = pmap_bti_assign(pmap, sva, eva);
10176 if (error == 0)
10177 pmap_bti_update_range(pmap, sva, eva, true);
10178 PMAP_UNLOCK(pmap);
10179 if (error != ENOMEM)
10180 break;
10181 vm_wait(NULL);
10182 }
10183 return (error);
10184 }
10185
10186 #if defined(KASAN) || defined(KMSAN)
10187 static pd_entry_t *pmap_san_early_l2;
10188
10189 #define SAN_BOOTSTRAP_L2_SIZE (1 * L2_SIZE)
10190 #define SAN_BOOTSTRAP_SIZE (2 * PAGE_SIZE)
10191 static vm_offset_t __nosanitizeaddress
pmap_san_enter_bootstrap_alloc_l2(void)10192 pmap_san_enter_bootstrap_alloc_l2(void)
10193 {
10194 static uint8_t bootstrap_data[SAN_BOOTSTRAP_L2_SIZE] __aligned(L2_SIZE);
10195 static size_t offset = 0;
10196 vm_offset_t addr;
10197
10198 if (offset + L2_SIZE > sizeof(bootstrap_data)) {
10199 panic("%s: out of memory for the bootstrap shadow map L2 entries",
10200 __func__);
10201 }
10202
10203 addr = (uintptr_t)&bootstrap_data[offset];
10204 offset += L2_SIZE;
10205 return (addr);
10206 }
10207
10208 /*
10209 * SAN L1 + L2 pages, maybe L3 entries later?
10210 */
10211 static vm_offset_t __nosanitizeaddress
pmap_san_enter_bootstrap_alloc_pages(int npages)10212 pmap_san_enter_bootstrap_alloc_pages(int npages)
10213 {
10214 static uint8_t bootstrap_data[SAN_BOOTSTRAP_SIZE] __aligned(PAGE_SIZE);
10215 static size_t offset = 0;
10216 vm_offset_t addr;
10217
10218 if (offset + (npages * PAGE_SIZE) > sizeof(bootstrap_data)) {
10219 panic("%s: out of memory for the bootstrap shadow map",
10220 __func__);
10221 }
10222
10223 addr = (uintptr_t)&bootstrap_data[offset];
10224 offset += (npages * PAGE_SIZE);
10225 return (addr);
10226 }
10227
10228 static void __nosanitizeaddress
pmap_san_enter_bootstrap(void)10229 pmap_san_enter_bootstrap(void)
10230 {
10231 vm_offset_t freemempos;
10232
10233 /* L1, L2 */
10234 freemempos = pmap_san_enter_bootstrap_alloc_pages(2);
10235 bs_state.freemempos = freemempos;
10236 bs_state.va = KASAN_MIN_ADDRESS;
10237 pmap_bootstrap_l1_table(&bs_state);
10238 pmap_san_early_l2 = bs_state.l2;
10239 }
10240
10241 static vm_page_t
pmap_san_enter_alloc_l3(void)10242 pmap_san_enter_alloc_l3(void)
10243 {
10244 vm_page_t m;
10245
10246 m = vm_page_alloc_noobj(VM_ALLOC_INTERRUPT | VM_ALLOC_WIRED |
10247 VM_ALLOC_ZERO);
10248 if (m == NULL)
10249 panic("%s: no memory to grow shadow map", __func__);
10250 return (m);
10251 }
10252
10253 static vm_page_t
pmap_san_enter_alloc_l2(void)10254 pmap_san_enter_alloc_l2(void)
10255 {
10256 return (vm_page_alloc_noobj_contig(VM_ALLOC_WIRED | VM_ALLOC_ZERO,
10257 Ln_ENTRIES, 0, ~0ul, L2_SIZE, 0, VM_MEMATTR_DEFAULT));
10258 }
10259
10260 void __nosanitizeaddress __nosanitizememory
pmap_san_enter(vm_offset_t va)10261 pmap_san_enter(vm_offset_t va)
10262 {
10263 pd_entry_t *l1, *l2;
10264 pt_entry_t *l3;
10265 vm_page_t m;
10266
10267 if (virtual_avail == 0) {
10268 vm_offset_t block;
10269 int slot;
10270 bool first;
10271
10272 /* Temporary shadow map prior to pmap_bootstrap(). */
10273 first = pmap_san_early_l2 == NULL;
10274 if (first)
10275 pmap_san_enter_bootstrap();
10276
10277 l2 = pmap_san_early_l2;
10278 slot = pmap_l2_index(va);
10279
10280 if ((pmap_load(&l2[slot]) & ATTR_DESCR_VALID) == 0) {
10281 MPASS(first);
10282 block = pmap_san_enter_bootstrap_alloc_l2();
10283 pmap_store(&l2[slot],
10284 PHYS_TO_PTE(pmap_early_vtophys(block)) |
10285 PMAP_SAN_PTE_BITS | L2_BLOCK);
10286 dmb(ishst);
10287 }
10288
10289 return;
10290 }
10291
10292 mtx_assert(&kernel_map->system_mtx, MA_OWNED);
10293 l1 = pmap_l1(kernel_pmap, va);
10294 MPASS(l1 != NULL);
10295 if ((pmap_load(l1) & ATTR_DESCR_VALID) == 0) {
10296 m = pmap_san_enter_alloc_l3();
10297 pmap_store(l1, VM_PAGE_TO_PTE(m) | L1_TABLE);
10298 }
10299 l2 = pmap_l1_to_l2(l1, va);
10300 if ((pmap_load(l2) & ATTR_DESCR_VALID) == 0) {
10301 m = pmap_san_enter_alloc_l2();
10302 if (m != NULL) {
10303 pmap_store(l2, VM_PAGE_TO_PTE(m) |
10304 PMAP_SAN_PTE_BITS | L2_BLOCK);
10305 } else {
10306 m = pmap_san_enter_alloc_l3();
10307 pmap_store(l2, VM_PAGE_TO_PTE(m) | L2_TABLE);
10308 }
10309 dmb(ishst);
10310 }
10311 if ((pmap_load(l2) & ATTR_DESCR_MASK) == L2_BLOCK)
10312 return;
10313 l3 = pmap_l2_to_l3(l2, va);
10314 if ((pmap_load(l3) & ATTR_DESCR_VALID) != 0)
10315 return;
10316 m = pmap_san_enter_alloc_l3();
10317 pmap_store(l3, VM_PAGE_TO_PTE(m) | PMAP_SAN_PTE_BITS | L3_PAGE);
10318 dmb(ishst);
10319 }
10320 #endif /* KASAN || KMSAN */
10321
10322 /*
10323 * Track a range of the kernel's virtual address space that is contiguous
10324 * in various mapping attributes.
10325 */
10326 struct pmap_kernel_map_range {
10327 vm_offset_t sva;
10328 pt_entry_t attrs;
10329 int l3pages;
10330 int l3contig;
10331 int l2blocks;
10332 int l2contig;
10333 int l1blocks;
10334 };
10335
10336 static void
sysctl_kmaps_dump(struct sbuf * sb,struct pmap_kernel_map_range * range,vm_offset_t eva)10337 sysctl_kmaps_dump(struct sbuf *sb, struct pmap_kernel_map_range *range,
10338 vm_offset_t eva)
10339 {
10340 const char *mode;
10341 int index;
10342
10343 if (eva <= range->sva)
10344 return;
10345
10346 index = range->attrs & ATTR_S1_IDX_MASK;
10347 switch (index) {
10348 case ATTR_S1_IDX(VM_MEMATTR_DEVICE_NP):
10349 mode = "DEV-NP";
10350 break;
10351 case ATTR_S1_IDX(VM_MEMATTR_DEVICE):
10352 mode = "DEV";
10353 break;
10354 case ATTR_S1_IDX(VM_MEMATTR_UNCACHEABLE):
10355 mode = "UC";
10356 break;
10357 case ATTR_S1_IDX(VM_MEMATTR_WRITE_BACK):
10358 mode = "WB";
10359 break;
10360 case ATTR_S1_IDX(VM_MEMATTR_WRITE_THROUGH):
10361 mode = "WT";
10362 break;
10363 case ATTR_S1_IDX(VM_MEMATTR_TAGGED):
10364 mode = "TAGGED";
10365 break;
10366 default:
10367 printf(
10368 "%s: unknown memory type %x for range 0x%016lx-0x%016lx\n",
10369 __func__, index, range->sva, eva);
10370 mode = "??";
10371 break;
10372 }
10373
10374 sbuf_printf(sb, "0x%016lx-0x%016lx r%c%c%c%c%c %6s %d %d %d %d %d\n",
10375 range->sva, eva,
10376 (range->attrs & ATTR_S1_AP_RW_BIT) == ATTR_S1_AP_RW ? 'w' : '-',
10377 (range->attrs & ATTR_S1_PXN) != 0 ? '-' : 'x',
10378 (range->attrs & ATTR_S1_UXN) != 0 ? '-' : 'X',
10379 (range->attrs & ATTR_S1_AP(ATTR_S1_AP_USER)) != 0 ? 'u' : 's',
10380 (range->attrs & ATTR_S1_GP) != 0 ? 'g' : '-',
10381 mode, range->l1blocks, range->l2contig, range->l2blocks,
10382 range->l3contig, range->l3pages);
10383
10384 /* Reset to sentinel value. */
10385 range->sva = 0xfffffffffffffffful;
10386 }
10387
10388 /*
10389 * Determine whether the attributes specified by a page table entry match those
10390 * being tracked by the current range.
10391 */
10392 static bool
sysctl_kmaps_match(struct pmap_kernel_map_range * range,pt_entry_t attrs)10393 sysctl_kmaps_match(struct pmap_kernel_map_range *range, pt_entry_t attrs)
10394 {
10395
10396 return (range->attrs == attrs);
10397 }
10398
10399 static void
sysctl_kmaps_reinit(struct pmap_kernel_map_range * range,vm_offset_t va,pt_entry_t attrs)10400 sysctl_kmaps_reinit(struct pmap_kernel_map_range *range, vm_offset_t va,
10401 pt_entry_t attrs)
10402 {
10403
10404 memset(range, 0, sizeof(*range));
10405 range->sva = va;
10406 range->attrs = attrs;
10407 }
10408
10409 /* Get the block/page attributes that correspond to the table attributes */
10410 static pt_entry_t
sysctl_kmaps_table_attrs(pd_entry_t table)10411 sysctl_kmaps_table_attrs(pd_entry_t table)
10412 {
10413 pt_entry_t attrs;
10414
10415 attrs = 0;
10416 if ((table & TATTR_UXN_TABLE) != 0)
10417 attrs |= ATTR_S1_UXN;
10418 if ((table & TATTR_PXN_TABLE) != 0)
10419 attrs |= ATTR_S1_PXN;
10420 if ((table & TATTR_AP_TABLE_RO) != 0)
10421 attrs |= ATTR_S1_AP(ATTR_S1_AP_RO);
10422
10423 return (attrs);
10424 }
10425
10426 /* Read the block/page attributes we care about */
10427 static pt_entry_t
sysctl_kmaps_block_attrs(pt_entry_t block)10428 sysctl_kmaps_block_attrs(pt_entry_t block)
10429 {
10430 return (block & (ATTR_S1_AP_MASK | ATTR_S1_XN | ATTR_S1_IDX_MASK |
10431 ATTR_S1_GP));
10432 }
10433
10434 /*
10435 * Given a leaf PTE, derive the mapping's attributes. If they do not match
10436 * those of the current run, dump the address range and its attributes, and
10437 * begin a new run.
10438 */
10439 static void
sysctl_kmaps_check(struct sbuf * sb,struct pmap_kernel_map_range * range,vm_offset_t va,pd_entry_t l0e,pd_entry_t l1e,pd_entry_t l2e,pt_entry_t l3e)10440 sysctl_kmaps_check(struct sbuf *sb, struct pmap_kernel_map_range *range,
10441 vm_offset_t va, pd_entry_t l0e, pd_entry_t l1e, pd_entry_t l2e,
10442 pt_entry_t l3e)
10443 {
10444 pt_entry_t attrs;
10445
10446 attrs = sysctl_kmaps_table_attrs(l0e);
10447
10448 if ((l1e & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_BLOCK) {
10449 attrs |= sysctl_kmaps_block_attrs(l1e);
10450 goto done;
10451 }
10452 attrs |= sysctl_kmaps_table_attrs(l1e);
10453
10454 if ((l2e & ATTR_DESCR_TYPE_MASK) == ATTR_DESCR_TYPE_BLOCK) {
10455 attrs |= sysctl_kmaps_block_attrs(l2e);
10456 goto done;
10457 }
10458 attrs |= sysctl_kmaps_table_attrs(l2e);
10459 attrs |= sysctl_kmaps_block_attrs(l3e);
10460
10461 done:
10462 if (range->sva > va || !sysctl_kmaps_match(range, attrs)) {
10463 sysctl_kmaps_dump(sb, range, va);
10464 sysctl_kmaps_reinit(range, va, attrs);
10465 }
10466 }
10467
10468 static int
sysctl_kmaps(SYSCTL_HANDLER_ARGS)10469 sysctl_kmaps(SYSCTL_HANDLER_ARGS)
10470 {
10471 struct pmap_kernel_map_range range;
10472 struct sbuf sbuf, *sb;
10473 pd_entry_t l0e, *l1, l1e, *l2, l2e;
10474 pt_entry_t *l3, l3e;
10475 vm_offset_t sva;
10476 vm_paddr_t pa;
10477 int error, i, j, k, l;
10478
10479 error = sysctl_wire_old_buffer(req, 0);
10480 if (error != 0)
10481 return (error);
10482 sb = &sbuf;
10483 sbuf_new_for_sysctl(sb, NULL, PAGE_SIZE, req);
10484
10485 /* Sentinel value. */
10486 range.sva = 0xfffffffffffffffful;
10487
10488 /*
10489 * Iterate over the kernel page tables without holding the kernel pmap
10490 * lock. Kernel page table pages are never freed, so at worst we will
10491 * observe inconsistencies in the output.
10492 */
10493 for (sva = 0xffff000000000000ul, i = pmap_l0_index(sva); i < Ln_ENTRIES;
10494 i++) {
10495 if (i == pmap_l0_index(DMAP_MIN_ADDRESS))
10496 sbuf_printf(sb, "\nDirect map:\n");
10497 else if (i == pmap_l0_index(VM_MIN_KERNEL_ADDRESS))
10498 sbuf_printf(sb, "\nKernel map:\n");
10499 #ifdef KASAN
10500 else if (i == pmap_l0_index(KASAN_MIN_ADDRESS))
10501 sbuf_printf(sb, "\nKASAN shadow map:\n");
10502 #endif
10503 #ifdef KMSAN
10504 else if (i == pmap_l0_index(KMSAN_SHAD_MIN_ADDRESS))
10505 sbuf_printf(sb, "\nKMSAN shadow map:\n");
10506 else if (i == pmap_l0_index(KMSAN_ORIG_MIN_ADDRESS))
10507 sbuf_printf(sb, "\nKMSAN origin map:\n");
10508 #endif
10509
10510 l0e = kernel_pmap->pm_l0[i];
10511 if ((l0e & ATTR_DESCR_VALID) == 0) {
10512 sysctl_kmaps_dump(sb, &range, sva);
10513 sva += L0_SIZE;
10514 continue;
10515 }
10516 pa = PTE_TO_PHYS(l0e);
10517 l1 = PHYS_TO_DMAP(pa);
10518
10519 for (j = pmap_l1_index(sva); j < Ln_ENTRIES; j++) {
10520 l1e = l1[j];
10521 if ((l1e & ATTR_DESCR_VALID) == 0) {
10522 sysctl_kmaps_dump(sb, &range, sva);
10523 sva += L1_SIZE;
10524 continue;
10525 }
10526 if ((l1e & ATTR_DESCR_MASK) == L1_BLOCK) {
10527 PMAP_ASSERT_L1_BLOCKS_SUPPORTED;
10528 sysctl_kmaps_check(sb, &range, sva, l0e, l1e,
10529 0, 0);
10530 range.l1blocks++;
10531 sva += L1_SIZE;
10532 continue;
10533 }
10534 pa = PTE_TO_PHYS(l1e);
10535 l2 = PHYS_TO_DMAP(pa);
10536
10537 for (k = pmap_l2_index(sva); k < Ln_ENTRIES; k++) {
10538 l2e = l2[k];
10539 if ((l2e & ATTR_DESCR_VALID) == 0) {
10540 sysctl_kmaps_dump(sb, &range, sva);
10541 sva += L2_SIZE;
10542 continue;
10543 }
10544 if ((l2e & ATTR_DESCR_MASK) == L2_BLOCK) {
10545 sysctl_kmaps_check(sb, &range, sva,
10546 l0e, l1e, l2e, 0);
10547 if ((l2e & ATTR_CONTIGUOUS) != 0)
10548 range.l2contig +=
10549 k % L2C_ENTRIES == 0 ?
10550 1 : 0;
10551 else
10552 range.l2blocks++;
10553 sva += L2_SIZE;
10554 continue;
10555 }
10556 pa = PTE_TO_PHYS(l2e);
10557 l3 = PHYS_TO_DMAP(pa);
10558
10559 for (l = pmap_l3_index(sva); l < Ln_ENTRIES;
10560 l++, sva += L3_SIZE) {
10561 l3e = l3[l];
10562 if ((l3e & ATTR_DESCR_VALID) == 0) {
10563 sysctl_kmaps_dump(sb, &range,
10564 sva);
10565 continue;
10566 }
10567 sysctl_kmaps_check(sb, &range, sva,
10568 l0e, l1e, l2e, l3e);
10569 if ((l3e & ATTR_CONTIGUOUS) != 0)
10570 range.l3contig +=
10571 l % L3C_ENTRIES == 0 ?
10572 1 : 0;
10573 else
10574 range.l3pages++;
10575 }
10576 }
10577 }
10578 }
10579
10580 error = sbuf_finish(sb);
10581 sbuf_delete(sb);
10582 return (error);
10583 }
10584 SYSCTL_OID(_vm_pmap, OID_AUTO, kernel_maps,
10585 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE | CTLFLAG_SKIP,
10586 NULL, 0, sysctl_kmaps, "A",
10587 "Dump kernel address layout");
10588
10589
10590 void pagezero_simple(void *);
10591 void pagezero_cache(void *);
10592 void pagezero_mops(void *);
10593
10594 DEFINE_IFUNC(static, void, pagezero, (void *))
10595 {
10596 uint32_t dczid_el0;
10597
10598 dczid_el0 = READ_SPECIALREG(dczid_el0);
10599
10600 if (elf_hwcap2 & HWCAP2_MOPS)
10601 return (pagezero_mops);
10602 else if ((dczid_el0 & DCZID_DZP) == 0)
10603 return (pagezero_cache);
10604 else
10605 return (pagezero_simple);
10606 }
10607