uvm_map.c revision 1.161 1 /* $NetBSD: uvm_map.c,v 1.161 2004/02/10 01:30:49 matt Exp $ */
2
3 /*
4 * Copyright (c) 1997 Charles D. Cranor and Washington University.
5 * Copyright (c) 1991, 1993, The Regents of the University of California.
6 *
7 * All rights reserved.
8 *
9 * This code is derived from software contributed to Berkeley by
10 * The Mach Operating System project at Carnegie-Mellon University.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 * 3. All advertising materials mentioning features or use of this software
21 * must display the following acknowledgement:
22 * This product includes software developed by Charles D. Cranor,
23 * Washington University, the University of California, Berkeley and
24 * its contributors.
25 * 4. Neither the name of the University nor the names of its contributors
26 * may be used to endorse or promote products derived from this software
27 * without specific prior written permission.
28 *
29 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
30 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
31 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
32 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
33 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
34 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
35 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
36 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
37 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
38 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
39 * SUCH DAMAGE.
40 *
41 * @(#)vm_map.c 8.3 (Berkeley) 1/12/94
42 * from: Id: uvm_map.c,v 1.1.2.27 1998/02/07 01:16:54 chs Exp
43 *
44 *
45 * Copyright (c) 1987, 1990 Carnegie-Mellon University.
46 * All rights reserved.
47 *
48 * Permission to use, copy, modify and distribute this software and
49 * its documentation is hereby granted, provided that both the copyright
50 * notice and this permission notice appear in all copies of the
51 * software, derivative works or modified versions, and any portions
52 * thereof, and that both notices appear in supporting documentation.
53 *
54 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
55 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
56 * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
57 *
58 * Carnegie Mellon requests users of this software to return to
59 *
60 * Software Distribution Coordinator or Software.Distribution (at) CS.CMU.EDU
61 * School of Computer Science
62 * Carnegie Mellon University
63 * Pittsburgh PA 15213-3890
64 *
65 * any improvements or extensions that they make and grant Carnegie the
66 * rights to redistribute these changes.
67 */
68
69 /*
70 * uvm_map.c: uvm map operations
71 */
72
73 #include <sys/cdefs.h>
74 __KERNEL_RCSID(0, "$NetBSD: uvm_map.c,v 1.161 2004/02/10 01:30:49 matt Exp $");
75
76 #include "opt_ddb.h"
77 #include "opt_uvmhist.h"
78 #include "opt_sysv.h"
79
80 #include <sys/param.h>
81 #include <sys/systm.h>
82 #include <sys/mman.h>
83 #include <sys/proc.h>
84 #include <sys/malloc.h>
85 #include <sys/pool.h>
86 #include <sys/kernel.h>
87 #include <sys/mount.h>
88 #include <sys/vnode.h>
89
90 #ifdef SYSVSHM
91 #include <sys/shm.h>
92 #endif
93
94 #define UVM_MAP
95 #include <uvm/uvm.h>
96 #undef RB_AUGMENT
97 #define RB_AUGMENT(x) uvm_rb_augment(x)
98
99 #ifdef DDB
100 #include <uvm/uvm_ddb.h>
101 #endif
102
103 extern struct vm_map *pager_map;
104
105 struct uvm_cnt map_ubackmerge, map_uforwmerge;
106 struct uvm_cnt map_ubimerge, map_unomerge;
107 struct uvm_cnt map_kbackmerge, map_kforwmerge;
108 struct uvm_cnt map_kbimerge, map_knomerge;
109 struct uvm_cnt uvm_map_call, uvm_mlk_call, uvm_mlk_hint;
110 const char vmmapbsy[] = "vmmapbsy";
111
112 /*
113 * pool for vmspace structures.
114 */
115
116 struct pool uvm_vmspace_pool;
117
118 /*
119 * pool for dynamically-allocated map entries.
120 */
121
122 struct pool uvm_map_entry_pool;
123 struct pool uvm_map_entry_kmem_pool;
124
125 MALLOC_DEFINE(M_VMMAP, "VM map", "VM map structures");
126 MALLOC_DEFINE(M_VMPMAP, "VM pmap", "VM pmap");
127
128 #ifdef PMAP_GROWKERNEL
129 /*
130 * This global represents the end of the kernel virtual address
131 * space. If we want to exceed this, we must grow the kernel
132 * virtual address space dynamically.
133 *
134 * Note, this variable is locked by kernel_map's lock.
135 */
136 vaddr_t uvm_maxkaddr;
137 #endif
138
139 /*
140 * macros
141 */
142
143 /*
144 * uvm_map_entry_link: insert entry into a map
145 *
146 * => map must be locked
147 */
148 #define uvm_map_entry_link(map, after_where, entry) do { \
149 KASSERT(entry->start < entry->end); \
150 (map)->nentries++; \
151 (entry)->prev = (after_where); \
152 (entry)->next = (after_where)->next; \
153 (entry)->prev->next = (entry); \
154 (entry)->next->prev = (entry); \
155 uvm_rb_insert((map), (entry)); \
156 } while (/*CONSTCOND*/ 0)
157
158 /*
159 * uvm_map_entry_unlink: remove entry from a map
160 *
161 * => map must be locked
162 */
163 #define uvm_map_entry_unlink(map, entry) do { \
164 (map)->nentries--; \
165 (entry)->next->prev = (entry)->prev; \
166 (entry)->prev->next = (entry)->next; \
167 uvm_rb_remove((map), (entry)); \
168 } while (/*CONSTCOND*/ 0)
169
170 /*
171 * SAVE_HINT: saves the specified entry as the hint for future lookups.
172 *
173 * => map need not be locked (protected by hint_lock).
174 */
175 #define SAVE_HINT(map,check,value) do { \
176 simple_lock(&(map)->hint_lock); \
177 if ((map)->hint == (check)) \
178 (map)->hint = (value); \
179 simple_unlock(&(map)->hint_lock); \
180 } while (/*CONSTCOND*/ 0)
181
182 /*
183 * VM_MAP_RANGE_CHECK: check and correct range
184 *
185 * => map must at least be read locked
186 */
187
188 #define VM_MAP_RANGE_CHECK(map, start, end) do { \
189 if (start < vm_map_min(map)) \
190 start = vm_map_min(map); \
191 if (end > vm_map_max(map)) \
192 end = vm_map_max(map); \
193 if (start > end) \
194 start = end; \
195 } while (/*CONSTCOND*/ 0)
196
197 /*
198 * local prototypes
199 */
200
201 static struct vm_map_entry *
202 uvm_mapent_alloc(struct vm_map *, int);
203 static void uvm_mapent_copy(struct vm_map_entry *, struct vm_map_entry *);
204 static void uvm_mapent_free(struct vm_map_entry *);
205 static void uvm_map_entry_unwire(struct vm_map *, struct vm_map_entry *);
206 static void uvm_map_reference_amap(struct vm_map_entry *, int);
207 static int uvm_map_space_avail(vaddr_t *, vsize_t, voff_t, vsize_t, int,
208 struct vm_map_entry *);
209 static void uvm_map_unreference_amap(struct vm_map_entry *, int);
210
211 int _uvm_tree_sanity(struct vm_map *, const char *);
212 static vsize_t uvm_rb_subtree_space(const struct vm_map_entry *);
213
214 static __inline int
215 uvm_compare(const struct vm_map_entry *a, const struct vm_map_entry *b)
216 {
217
218 if (a->start < b->start)
219 return (-1);
220 else if (a->start > b->start)
221 return (1);
222
223 return (0);
224 }
225
226 static __inline void
227 uvm_rb_augment(struct vm_map_entry *entry)
228 {
229
230 entry->space = uvm_rb_subtree_space(entry);
231 }
232
233 RB_PROTOTYPE(uvm_tree, vm_map_entry, rb_entry, uvm_compare);
234
235 RB_GENERATE(uvm_tree, vm_map_entry, rb_entry, uvm_compare);
236
237 static __inline vsize_t
238 uvm_rb_space(const struct vm_map *map, const struct vm_map_entry *entry)
239 {
240 /* XXX map is not used */
241
242 KASSERT(entry->next != NULL);
243 return entry->next->start - entry->end;
244 }
245
246 static vsize_t
247 uvm_rb_subtree_space(const struct vm_map_entry *entry)
248 {
249 vaddr_t space, tmp;
250
251 space = entry->ownspace;
252 if (RB_LEFT(entry, rb_entry)) {
253 tmp = RB_LEFT(entry, rb_entry)->space;
254 if (tmp > space)
255 space = tmp;
256 }
257
258 if (RB_RIGHT(entry, rb_entry)) {
259 tmp = RB_RIGHT(entry, rb_entry)->space;
260 if (tmp > space)
261 space = tmp;
262 }
263
264 return (space);
265 }
266
267 static __inline void
268 uvm_rb_fixup(struct vm_map *map, struct vm_map_entry *entry)
269 {
270 /* We need to traverse to the very top */
271 do {
272 entry->ownspace = uvm_rb_space(map, entry);
273 entry->space = uvm_rb_subtree_space(entry);
274 } while ((entry = RB_PARENT(entry, rb_entry)) != NULL);
275 }
276
277 static __inline void
278 uvm_rb_insert(struct vm_map *map, struct vm_map_entry *entry)
279 {
280 vaddr_t space = uvm_rb_space(map, entry);
281 struct vm_map_entry *tmp;
282
283 entry->ownspace = entry->space = space;
284 tmp = RB_INSERT(uvm_tree, &(map)->rbhead, entry);
285 #ifdef DIAGNOSTIC
286 if (tmp != NULL)
287 panic("uvm_rb_insert: duplicate entry?");
288 #endif
289 uvm_rb_fixup(map, entry);
290 if (entry->prev != &map->header)
291 uvm_rb_fixup(map, entry->prev);
292 }
293
294 static __inline void
295 uvm_rb_remove(struct vm_map *map, struct vm_map_entry *entry)
296 {
297 struct vm_map_entry *parent;
298
299 parent = RB_PARENT(entry, rb_entry);
300 RB_REMOVE(uvm_tree, &(map)->rbhead, entry);
301 if (entry->prev != &map->header)
302 uvm_rb_fixup(map, entry->prev);
303 if (parent)
304 uvm_rb_fixup(map, parent);
305 }
306
307 #ifdef DEBUG
308 int uvm_debug_check_rbtree = 0;
309 #define uvm_tree_sanity(x,y) \
310 if (uvm_debug_check_rbtree) \
311 _uvm_tree_sanity(x,y)
312 #else
313 #define uvm_tree_sanity(x,y)
314 #endif
315
316 int
317 _uvm_tree_sanity(struct vm_map *map, const char *name)
318 {
319 struct vm_map_entry *tmp, *trtmp;
320 int n = 0, i = 1;
321
322 RB_FOREACH(tmp, uvm_tree, &map->rbhead) {
323 if (tmp->ownspace != uvm_rb_space(map, tmp)) {
324 printf("%s: %d/%d ownspace %lx != %lx %s\n",
325 name, n + 1, map->nentries,
326 (ulong)tmp->ownspace, (ulong)uvm_rb_space(map, tmp),
327 tmp->next == &map->header ? "(last)" : "");
328 goto error;
329 }
330 }
331 trtmp = NULL;
332 RB_FOREACH(tmp, uvm_tree, &map->rbhead) {
333 if (tmp->space != uvm_rb_subtree_space(tmp)) {
334 printf("%s: space %lx != %lx\n",
335 name, (ulong)tmp->space,
336 (ulong)uvm_rb_subtree_space(tmp));
337 goto error;
338 }
339 if (trtmp != NULL && trtmp->start >= tmp->start) {
340 printf("%s: corrupt: 0x%lx >= 0x%lx\n",
341 name, trtmp->start, tmp->start);
342 goto error;
343 }
344 n++;
345
346 trtmp = tmp;
347 }
348
349 if (n != map->nentries) {
350 printf("%s: nentries: %d vs %d\n",
351 name, n, map->nentries);
352 goto error;
353 }
354
355 for (tmp = map->header.next; tmp && tmp != &map->header;
356 tmp = tmp->next, i++) {
357 trtmp = RB_FIND(uvm_tree, &map->rbhead, tmp);
358 if (trtmp != tmp) {
359 printf("%s: lookup: %d: %p - %p: %p\n",
360 name, i, tmp, trtmp,
361 RB_PARENT(tmp, rb_entry));
362 goto error;
363 }
364 }
365
366 return (0);
367 error:
368 #ifdef DDB
369 /* handy breakpoint location for error case */
370 __asm(".globl treesanity_label\ntreesanity_label:");
371 #endif
372 return (-1);
373 }
374
375 /*
376 * local inlines
377 */
378
379 /*
380 * uvm_mapent_alloc: allocate a map entry
381 */
382
383 static __inline struct vm_map_entry *
384 uvm_mapent_alloc(struct vm_map *map, int flags)
385 {
386 struct vm_map_entry *me;
387 int s;
388 int pflags = (flags & UVM_FLAG_NOWAIT) ? PR_NOWAIT : PR_WAITOK;
389 UVMHIST_FUNC("uvm_mapent_alloc"); UVMHIST_CALLED(maphist);
390
391 if (map->flags & VM_MAP_INTRSAFE || cold) {
392 s = splvm();
393 simple_lock(&uvm.kentry_lock);
394 me = uvm.kentry_free;
395 if (me)
396 uvm.kentry_free = me->next;
397 simple_unlock(&uvm.kentry_lock);
398 splx(s);
399 if (__predict_false(me == NULL)) {
400 panic("uvm_mapent_alloc: out of static map entries, "
401 "check MAX_KMAPENT (currently %d)",
402 MAX_KMAPENT);
403 }
404 me->flags = UVM_MAP_STATIC;
405 } else if (map == kernel_map) {
406 me = pool_get(&uvm_map_entry_kmem_pool, pflags);
407 if (__predict_false(me == NULL))
408 return NULL;
409 me->flags = UVM_MAP_KMEM;
410 } else {
411 me = pool_get(&uvm_map_entry_pool, pflags);
412 if (__predict_false(me == NULL))
413 return NULL;
414 me->flags = 0;
415 }
416
417 UVMHIST_LOG(maphist, "<- new entry=0x%x [kentry=%d]", me,
418 ((map->flags & VM_MAP_INTRSAFE) != 0 || map == kernel_map), 0, 0);
419 return (me);
420 }
421
422 /*
423 * uvm_mapent_free: free map entry
424 */
425
426 static __inline void
427 uvm_mapent_free(struct vm_map_entry *me)
428 {
429 int s;
430 UVMHIST_FUNC("uvm_mapent_free"); UVMHIST_CALLED(maphist);
431
432 UVMHIST_LOG(maphist,"<- freeing map entry=0x%x [flags=%d]",
433 me, me->flags, 0, 0);
434 if (me->flags & UVM_MAP_STATIC) {
435 s = splvm();
436 simple_lock(&uvm.kentry_lock);
437 me->next = uvm.kentry_free;
438 uvm.kentry_free = me;
439 simple_unlock(&uvm.kentry_lock);
440 splx(s);
441 } else if (me->flags & UVM_MAP_KMEM) {
442 pool_put(&uvm_map_entry_kmem_pool, me);
443 } else {
444 pool_put(&uvm_map_entry_pool, me);
445 }
446 }
447
448 /*
449 * uvm_mapent_copy: copy a map entry, preserving flags
450 */
451
452 static __inline void
453 uvm_mapent_copy(struct vm_map_entry *src, struct vm_map_entry *dst)
454 {
455
456 memcpy(dst, src, ((char *)&src->uvm_map_entry_stop_copy) -
457 ((char *)src));
458 }
459
460 /*
461 * uvm_map_entry_unwire: unwire a map entry
462 *
463 * => map should be locked by caller
464 */
465
466 static __inline void
467 uvm_map_entry_unwire(struct vm_map *map, struct vm_map_entry *entry)
468 {
469
470 entry->wired_count = 0;
471 uvm_fault_unwire_locked(map, entry->start, entry->end);
472 }
473
474
475 /*
476 * wrapper for calling amap_ref()
477 */
478 static __inline void
479 uvm_map_reference_amap(struct vm_map_entry *entry, int flags)
480 {
481
482 amap_ref(entry->aref.ar_amap, entry->aref.ar_pageoff,
483 (entry->end - entry->start) >> PAGE_SHIFT, flags);
484 }
485
486
487 /*
488 * wrapper for calling amap_unref()
489 */
490 static __inline void
491 uvm_map_unreference_amap(struct vm_map_entry *entry, int flags)
492 {
493
494 amap_unref(entry->aref.ar_amap, entry->aref.ar_pageoff,
495 (entry->end - entry->start) >> PAGE_SHIFT, flags);
496 }
497
498
499 /*
500 * uvm_map_init: init mapping system at boot time. note that we allocate
501 * and init the static pool of struct vm_map_entry *'s for the kernel here.
502 */
503
504 void
505 uvm_map_init(void)
506 {
507 static struct vm_map_entry kernel_map_entry[MAX_KMAPENT];
508 #if defined(UVMHIST)
509 static struct uvm_history_ent maphistbuf[100];
510 static struct uvm_history_ent pdhistbuf[100];
511 #endif
512 int lcv;
513
514 /*
515 * first, init logging system.
516 */
517
518 UVMHIST_FUNC("uvm_map_init");
519 UVMHIST_INIT_STATIC(maphist, maphistbuf);
520 UVMHIST_INIT_STATIC(pdhist, pdhistbuf);
521 UVMHIST_CALLED(maphist);
522 UVMHIST_LOG(maphist,"<starting uvm map system>", 0, 0, 0, 0);
523 UVMCNT_INIT(uvm_map_call, UVMCNT_CNT, 0,
524 "# uvm_map() successful calls", 0);
525
526 UVMCNT_INIT(map_ubackmerge, UVMCNT_CNT, 0,
527 "# uvm_map() back umerges", 0);
528 UVMCNT_INIT(map_uforwmerge, UVMCNT_CNT, 0,
529 "# uvm_map() forward umerges", 0);
530 UVMCNT_INIT(map_ubimerge, UVMCNT_CNT, 0,
531 "# uvm_map() dual umerge", 0);
532 UVMCNT_INIT(map_unomerge, UVMCNT_CNT, 0,
533 "# uvm_map() no umerge", 0);
534
535 UVMCNT_INIT(map_kbackmerge, UVMCNT_CNT, 0,
536 "# uvm_map() back kmerges", 0);
537 UVMCNT_INIT(map_kforwmerge, UVMCNT_CNT, 0,
538 "# uvm_map() forward kmerges", 0);
539 UVMCNT_INIT(map_kbimerge, UVMCNT_CNT, 0,
540 "# uvm_map() dual kmerge", 0);
541 UVMCNT_INIT(map_knomerge, UVMCNT_CNT, 0,
542 "# uvm_map() no kmerge", 0);
543
544 UVMCNT_INIT(uvm_mlk_call, UVMCNT_CNT, 0, "# map lookup calls", 0);
545 UVMCNT_INIT(uvm_mlk_hint, UVMCNT_CNT, 0, "# map lookup hint hits", 0);
546
547 /*
548 * now set up static pool of kernel map entrys ...
549 */
550
551 simple_lock_init(&uvm.kentry_lock);
552 uvm.kentry_free = NULL;
553 for (lcv = 0 ; lcv < MAX_KMAPENT ; lcv++) {
554 kernel_map_entry[lcv].next = uvm.kentry_free;
555 uvm.kentry_free = &kernel_map_entry[lcv];
556 }
557
558 /*
559 * initialize the map-related pools.
560 */
561 pool_init(&uvm_vmspace_pool, sizeof(struct vmspace),
562 0, 0, 0, "vmsppl", &pool_allocator_nointr);
563 pool_init(&uvm_map_entry_pool, sizeof(struct vm_map_entry),
564 0, 0, 0, "vmmpepl", &pool_allocator_nointr);
565 pool_init(&uvm_map_entry_kmem_pool, sizeof(struct vm_map_entry),
566 0, 0, 0, "vmmpekpl", NULL);
567 }
568
569 /*
570 * clippers
571 */
572
573 /*
574 * uvm_map_clip_start: ensure that the entry begins at or after
575 * the starting address, if it doesn't we split the entry.
576 *
577 * => caller should use UVM_MAP_CLIP_START macro rather than calling
578 * this directly
579 * => map must be locked by caller
580 */
581
582 void
583 uvm_map_clip_start(struct vm_map *map, struct vm_map_entry *entry,
584 vaddr_t start)
585 {
586 struct vm_map_entry *new_entry;
587 vaddr_t new_adj;
588
589 /* uvm_map_simplify_entry(map, entry); */ /* XXX */
590
591 uvm_tree_sanity(map, "clip_start entry");
592
593 /*
594 * Split off the front portion. note that we must insert the new
595 * entry BEFORE this one, so that this entry has the specified
596 * starting address.
597 */
598
599 new_entry = uvm_mapent_alloc(map, 0);
600 uvm_mapent_copy(entry, new_entry); /* entry -> new_entry */
601
602 new_entry->end = start;
603 new_adj = start - new_entry->start;
604 if (entry->object.uvm_obj)
605 entry->offset += new_adj; /* shift start over */
606
607 /* Does not change order for the RB tree */
608 entry->start = start;
609
610 if (new_entry->aref.ar_amap) {
611 amap_splitref(&new_entry->aref, &entry->aref, new_adj);
612 }
613
614 uvm_map_entry_link(map, entry->prev, new_entry);
615
616 if (UVM_ET_ISSUBMAP(entry)) {
617 /* ... unlikely to happen, but play it safe */
618 uvm_map_reference(new_entry->object.sub_map);
619 } else {
620 if (UVM_ET_ISOBJ(entry) &&
621 entry->object.uvm_obj->pgops &&
622 entry->object.uvm_obj->pgops->pgo_reference)
623 entry->object.uvm_obj->pgops->pgo_reference(
624 entry->object.uvm_obj);
625 }
626
627 uvm_tree_sanity(map, "clip_start leave");
628 }
629
630 /*
631 * uvm_map_clip_end: ensure that the entry ends at or before
632 * the ending address, if it does't we split the reference
633 *
634 * => caller should use UVM_MAP_CLIP_END macro rather than calling
635 * this directly
636 * => map must be locked by caller
637 */
638
639 void
640 uvm_map_clip_end(struct vm_map *map, struct vm_map_entry *entry, vaddr_t end)
641 {
642 struct vm_map_entry * new_entry;
643 vaddr_t new_adj; /* #bytes we move start forward */
644
645 uvm_tree_sanity(map, "clip_end entry");
646 /*
647 * Create a new entry and insert it
648 * AFTER the specified entry
649 */
650
651 new_entry = uvm_mapent_alloc(map, 0);
652 uvm_mapent_copy(entry, new_entry); /* entry -> new_entry */
653
654 new_entry->start = entry->end = end;
655 new_adj = end - entry->start;
656 if (new_entry->object.uvm_obj)
657 new_entry->offset += new_adj;
658
659 if (entry->aref.ar_amap)
660 amap_splitref(&entry->aref, &new_entry->aref, new_adj);
661
662 uvm_rb_fixup(map, entry);
663
664 uvm_map_entry_link(map, entry, new_entry);
665
666 if (UVM_ET_ISSUBMAP(entry)) {
667 /* ... unlikely to happen, but play it safe */
668 uvm_map_reference(new_entry->object.sub_map);
669 } else {
670 if (UVM_ET_ISOBJ(entry) &&
671 entry->object.uvm_obj->pgops &&
672 entry->object.uvm_obj->pgops->pgo_reference)
673 entry->object.uvm_obj->pgops->pgo_reference(
674 entry->object.uvm_obj);
675 }
676
677 uvm_tree_sanity(map, "clip_end leave");
678 }
679
680
681 /*
682 * M A P - m a i n e n t r y p o i n t
683 */
684 /*
685 * uvm_map: establish a valid mapping in a map
686 *
687 * => assume startp is page aligned.
688 * => assume size is a multiple of PAGE_SIZE.
689 * => assume sys_mmap provides enough of a "hint" to have us skip
690 * over text/data/bss area.
691 * => map must be unlocked (we will lock it)
692 * => <uobj,uoffset> value meanings (4 cases):
693 * [1] <NULL,uoffset> == uoffset is a hint for PMAP_PREFER
694 * [2] <NULL,UVM_UNKNOWN_OFFSET> == don't PMAP_PREFER
695 * [3] <uobj,uoffset> == normal mapping
696 * [4] <uobj,UVM_UNKNOWN_OFFSET> == uvm_map finds offset based on VA
697 *
698 * case [4] is for kernel mappings where we don't know the offset until
699 * we've found a virtual address. note that kernel object offsets are
700 * always relative to vm_map_min(kernel_map).
701 *
702 * => if `align' is non-zero, we try to align the virtual address to
703 * the specified alignment. this is only a hint; if we can't
704 * do it, the address will be unaligned. this is provided as
705 * a mechanism for large pages.
706 *
707 * => XXXCDC: need way to map in external amap?
708 */
709
710 int
711 uvm_map(struct vm_map *map, vaddr_t *startp /* IN/OUT */, vsize_t size,
712 struct uvm_object *uobj, voff_t uoffset, vsize_t align, uvm_flag_t flags)
713 {
714 struct vm_map_entry *prev_entry, *new_entry;
715 const int amapwaitflag = (flags & UVM_FLAG_NOWAIT) ?
716 AMAP_EXTEND_NOWAIT : 0;
717 vm_prot_t prot = UVM_PROTECTION(flags), maxprot =
718 UVM_MAXPROTECTION(flags);
719 vm_inherit_t inherit = UVM_INHERIT(flags);
720 int advice = UVM_ADVICE(flags);
721 int error, merged = 0, kmap = (vm_map_pmap(map) == pmap_kernel());
722 UVMHIST_FUNC("uvm_map");
723 UVMHIST_CALLED(maphist);
724
725 UVMHIST_LOG(maphist, "(map=0x%x, *startp=0x%x, size=%d, flags=0x%x)",
726 map, *startp, size, flags);
727 UVMHIST_LOG(maphist, " uobj/offset 0x%x/%d", uobj, uoffset,0,0);
728
729 /*
730 * detect a popular device driver bug.
731 */
732
733 KASSERT(doing_shutdown || curlwp != NULL ||
734 (map->flags & VM_MAP_INTRSAFE));
735
736 /*
737 * zero-sized mapping doesn't make any sense.
738 */
739 KASSERT(size > 0);
740
741 uvm_tree_sanity(map, "map entry");
742
743 /*
744 * check sanity of protection code
745 */
746
747 if ((prot & maxprot) != prot) {
748 UVMHIST_LOG(maphist, "<- prot. failure: prot=0x%x, max=0x%x",
749 prot, maxprot,0,0);
750 return EACCES;
751 }
752
753 /*
754 * for pager_map, allocate the new entry first to avoid sleeping
755 * for memory while we have the map locked.
756 */
757
758 new_entry = NULL;
759 if (map == pager_map) {
760 new_entry = uvm_mapent_alloc(map, (flags & UVM_FLAG_NOWAIT));
761 if (__predict_false(new_entry == NULL))
762 return ENOMEM;
763 }
764
765 /*
766 * figure out where to put new VM range
767 */
768
769 if (vm_map_lock_try(map) == FALSE) {
770 if (flags & UVM_FLAG_TRYLOCK) {
771 if (new_entry) {
772 uvm_mapent_free(new_entry);
773 }
774 return EAGAIN;
775 }
776 vm_map_lock(map); /* could sleep here */
777 }
778 if ((prev_entry = uvm_map_findspace(map, *startp, size, startp,
779 uobj, uoffset, align, flags)) == NULL) {
780 UVMHIST_LOG(maphist,"<- uvm_map_findspace failed!",0,0,0,0);
781 vm_map_unlock(map);
782 if (new_entry) {
783 uvm_mapent_free(new_entry);
784 }
785 return ENOMEM;
786 }
787
788 #ifdef PMAP_GROWKERNEL
789 /*
790 * If the kernel pmap can't map the requested space,
791 * then allocate more resources for it.
792 */
793 if (map == kernel_map && uvm_maxkaddr < (*startp + size))
794 uvm_maxkaddr = pmap_growkernel(*startp + size);
795 #endif
796
797 UVMCNT_INCR(uvm_map_call);
798
799 /*
800 * if uobj is null, then uoffset is either a VAC hint for PMAP_PREFER
801 * [typically from uvm_map_reserve] or it is UVM_UNKNOWN_OFFSET. in
802 * either case we want to zero it before storing it in the map entry
803 * (because it looks strange and confusing when debugging...)
804 *
805 * if uobj is not null
806 * if uoffset is not UVM_UNKNOWN_OFFSET then we have a normal mapping
807 * and we do not need to change uoffset.
808 * if uoffset is UVM_UNKNOWN_OFFSET then we need to find the offset
809 * now (based on the starting address of the map). this case is
810 * for kernel object mappings where we don't know the offset until
811 * the virtual address is found (with uvm_map_findspace). the
812 * offset is the distance we are from the start of the map.
813 */
814
815 if (uobj == NULL) {
816 uoffset = 0;
817 } else {
818 if (uoffset == UVM_UNKNOWN_OFFSET) {
819 KASSERT(UVM_OBJ_IS_KERN_OBJECT(uobj));
820 uoffset = *startp - vm_map_min(kernel_map);
821 }
822 }
823
824 /*
825 * try and insert in map by extending previous entry, if possible.
826 * XXX: we don't try and pull back the next entry. might be useful
827 * for a stack, but we are currently allocating our stack in advance.
828 */
829
830 if (flags & UVM_FLAG_NOMERGE)
831 goto nomerge;
832
833 if (prev_entry->end == *startp &&
834 prev_entry != &map->header &&
835 prev_entry->object.uvm_obj == uobj) {
836
837 if (prev_entry->flags & UVM_MAP_NOMERGE)
838 goto forwardmerge;
839
840 if (uobj && prev_entry->offset +
841 (prev_entry->end - prev_entry->start) != uoffset)
842 goto forwardmerge;
843
844 if (UVM_ET_ISSUBMAP(prev_entry))
845 goto forwardmerge;
846
847 if (prev_entry->protection != prot ||
848 prev_entry->max_protection != maxprot)
849 goto forwardmerge;
850
851 if (prev_entry->inheritance != inherit ||
852 prev_entry->advice != advice)
853 goto forwardmerge;
854
855 /* wiring status must match (new area is unwired) */
856 if (VM_MAPENT_ISWIRED(prev_entry))
857 goto forwardmerge;
858
859 /*
860 * can't extend a shared amap. note: no need to lock amap to
861 * look at refs since we don't care about its exact value.
862 * if it is one (i.e. we have only reference) it will stay there
863 */
864
865 if (prev_entry->aref.ar_amap &&
866 amap_refs(prev_entry->aref.ar_amap) != 1) {
867 goto forwardmerge;
868 }
869
870 if (prev_entry->aref.ar_amap) {
871 error = amap_extend(prev_entry, size,
872 amapwaitflag | AMAP_EXTEND_FORWARDS);
873 if (error) {
874 vm_map_unlock(map);
875 if (new_entry) {
876 uvm_mapent_free(new_entry);
877 }
878 return error;
879 }
880 }
881
882 if (kmap)
883 UVMCNT_INCR(map_kbackmerge);
884 else
885 UVMCNT_INCR(map_ubackmerge);
886 UVMHIST_LOG(maphist," starting back merge", 0, 0, 0, 0);
887
888 /*
889 * drop our reference to uobj since we are extending a reference
890 * that we already have (the ref count can not drop to zero).
891 */
892
893 if (uobj && uobj->pgops->pgo_detach)
894 uobj->pgops->pgo_detach(uobj);
895
896 prev_entry->end += size;
897 uvm_rb_fixup(map, prev_entry);
898
899 uvm_tree_sanity(map, "map backmerged");
900
901 UVMHIST_LOG(maphist,"<- done (via backmerge)!", 0, 0, 0, 0);
902 if (new_entry) {
903 uvm_mapent_free(new_entry);
904 new_entry = NULL;
905 }
906 merged++;
907 }
908
909 forwardmerge:
910 if (prev_entry->next->start == (*startp + size) &&
911 prev_entry->next != &map->header &&
912 prev_entry->next->object.uvm_obj == uobj) {
913
914 if (prev_entry->next->flags & UVM_MAP_NOMERGE)
915 goto nomerge;
916
917 if (uobj && prev_entry->next->offset != uoffset + size)
918 goto nomerge;
919
920 if (UVM_ET_ISSUBMAP(prev_entry->next))
921 goto nomerge;
922
923 if (prev_entry->next->protection != prot ||
924 prev_entry->next->max_protection != maxprot)
925 goto nomerge;
926
927 if (prev_entry->next->inheritance != inherit ||
928 prev_entry->next->advice != advice)
929 goto nomerge;
930
931 /* wiring status must match (new area is unwired) */
932 if (VM_MAPENT_ISWIRED(prev_entry->next))
933 goto nomerge;
934
935 /*
936 * can't extend a shared amap. note: no need to lock amap to
937 * look at refs since we don't care about its exact value.
938 * if it is one (i.e. we have only reference) it will stay there.
939 *
940 * note that we also can't merge two amaps, so if we
941 * merged with the previous entry which has an amap,
942 * and the next entry also has an amap, we give up.
943 *
944 * Interesting cases:
945 * amap, new, amap -> give up second merge (single fwd extend)
946 * amap, new, none -> double forward extend (extend again here)
947 * none, new, amap -> double backward extend (done here)
948 * uobj, new, amap -> single backward extend (done here)
949 *
950 * XXX should we attempt to deal with someone refilling
951 * the deallocated region between two entries that are
952 * backed by the same amap (ie, arefs is 2, "prev" and
953 * "next" refer to it, and adding this allocation will
954 * close the hole, thus restoring arefs to 1 and
955 * deallocating the "next" vm_map_entry)? -- @@@
956 */
957
958 if (prev_entry->next->aref.ar_amap &&
959 (amap_refs(prev_entry->next->aref.ar_amap) != 1 ||
960 (merged && prev_entry->aref.ar_amap))) {
961 goto nomerge;
962 }
963
964 if (merged) {
965 /*
966 * Try to extend the amap of the previous entry to
967 * cover the next entry as well. If it doesn't work
968 * just skip on, don't actually give up, since we've
969 * already completed the back merge.
970 */
971 if (prev_entry->aref.ar_amap) {
972 if (amap_extend(prev_entry,
973 prev_entry->next->end -
974 prev_entry->next->start,
975 amapwaitflag | AMAP_EXTEND_FORWARDS))
976 goto nomerge;
977 }
978
979 /*
980 * Try to extend the amap of the *next* entry
981 * back to cover the new allocation *and* the
982 * previous entry as well (the previous merge
983 * didn't have an amap already otherwise we
984 * wouldn't be checking here for an amap). If
985 * it doesn't work just skip on, again, don't
986 * actually give up, since we've already
987 * completed the back merge.
988 */
989 else if (prev_entry->next->aref.ar_amap) {
990 if (amap_extend(prev_entry->next,
991 prev_entry->end -
992 prev_entry->start,
993 amapwaitflag | AMAP_EXTEND_BACKWARDS))
994 goto nomerge;
995 }
996 } else {
997 /*
998 * Pull the next entry's amap backwards to cover this
999 * new allocation.
1000 */
1001 if (prev_entry->next->aref.ar_amap) {
1002 error = amap_extend(prev_entry->next, size,
1003 amapwaitflag | AMAP_EXTEND_BACKWARDS);
1004 if (error) {
1005 vm_map_unlock(map);
1006 if (new_entry) {
1007 uvm_mapent_free(new_entry);
1008 }
1009 return error;
1010 }
1011 }
1012 }
1013
1014 if (merged) {
1015 if (kmap) {
1016 UVMCNT_DECR(map_kbackmerge);
1017 UVMCNT_INCR(map_kbimerge);
1018 } else {
1019 UVMCNT_DECR(map_ubackmerge);
1020 UVMCNT_INCR(map_ubimerge);
1021 }
1022 } else {
1023 if (kmap)
1024 UVMCNT_INCR(map_kforwmerge);
1025 else
1026 UVMCNT_INCR(map_uforwmerge);
1027 }
1028 UVMHIST_LOG(maphist," starting forward merge", 0, 0, 0, 0);
1029
1030 /*
1031 * drop our reference to uobj since we are extending a reference
1032 * that we already have (the ref count can not drop to zero).
1033 * (if merged, we've already detached)
1034 */
1035 if (uobj && uobj->pgops->pgo_detach && !merged)
1036 uobj->pgops->pgo_detach(uobj);
1037
1038 if (merged) {
1039 struct vm_map_entry *dead = prev_entry->next;
1040 prev_entry->end = dead->end;
1041 uvm_map_entry_unlink(map, dead);
1042 if (dead->aref.ar_amap != NULL) {
1043 prev_entry->aref = dead->aref;
1044 dead->aref.ar_amap = NULL;
1045 }
1046 uvm_mapent_free(dead);
1047 } else {
1048 prev_entry->next->start -= size;
1049 if (prev_entry != &map->header)
1050 uvm_rb_fixup(map, prev_entry);
1051 if (uobj)
1052 prev_entry->next->offset = uoffset;
1053 }
1054
1055 uvm_tree_sanity(map, "map forwardmerged");
1056
1057 UVMHIST_LOG(maphist,"<- done forwardmerge", 0, 0, 0, 0);
1058 if (new_entry) {
1059 uvm_mapent_free(new_entry);
1060 new_entry = NULL;
1061 }
1062 merged++;
1063 }
1064
1065 nomerge:
1066 if (!merged) {
1067 UVMHIST_LOG(maphist," allocating new map entry", 0, 0, 0, 0);
1068 if (kmap)
1069 UVMCNT_INCR(map_knomerge);
1070 else
1071 UVMCNT_INCR(map_unomerge);
1072
1073 /*
1074 * allocate new entry and link it in.
1075 */
1076
1077 if (new_entry == NULL) {
1078 new_entry = uvm_mapent_alloc(map,
1079 (flags & UVM_FLAG_NOWAIT));
1080 if (__predict_false(new_entry == NULL)) {
1081 vm_map_unlock(map);
1082 return ENOMEM;
1083 }
1084 }
1085 new_entry->start = *startp;
1086 new_entry->end = new_entry->start + size;
1087 new_entry->object.uvm_obj = uobj;
1088 new_entry->offset = uoffset;
1089
1090 if (uobj)
1091 new_entry->etype = UVM_ET_OBJ;
1092 else
1093 new_entry->etype = 0;
1094
1095 if (flags & UVM_FLAG_COPYONW) {
1096 new_entry->etype |= UVM_ET_COPYONWRITE;
1097 if ((flags & UVM_FLAG_OVERLAY) == 0)
1098 new_entry->etype |= UVM_ET_NEEDSCOPY;
1099 }
1100 if (flags & UVM_FLAG_NOMERGE) {
1101 new_entry->flags |= UVM_MAP_NOMERGE;
1102 }
1103
1104 new_entry->protection = prot;
1105 new_entry->max_protection = maxprot;
1106 new_entry->inheritance = inherit;
1107 new_entry->wired_count = 0;
1108 new_entry->advice = advice;
1109 if (flags & UVM_FLAG_OVERLAY) {
1110
1111 /*
1112 * to_add: for BSS we overallocate a little since we
1113 * are likely to extend
1114 */
1115
1116 vaddr_t to_add = (flags & UVM_FLAG_AMAPPAD) ?
1117 UVM_AMAP_CHUNK << PAGE_SHIFT : 0;
1118 struct vm_amap *amap = amap_alloc(size, to_add,
1119 (flags & UVM_FLAG_NOWAIT) ? M_NOWAIT : M_WAITOK);
1120 if (__predict_false(amap == NULL)) {
1121 vm_map_unlock(map);
1122 uvm_mapent_free(new_entry);
1123 return ENOMEM;
1124 }
1125 new_entry->aref.ar_pageoff = 0;
1126 new_entry->aref.ar_amap = amap;
1127 } else {
1128 new_entry->aref.ar_pageoff = 0;
1129 new_entry->aref.ar_amap = NULL;
1130 }
1131 uvm_map_entry_link(map, prev_entry, new_entry);
1132
1133 /*
1134 * Update the free space hint
1135 */
1136
1137 if ((map->first_free == prev_entry) &&
1138 (prev_entry->end >= new_entry->start))
1139 map->first_free = new_entry;
1140 }
1141
1142 map->size += size;
1143
1144 UVMHIST_LOG(maphist,"<- done!", 0, 0, 0, 0);
1145 vm_map_unlock(map);
1146 return 0;
1147 }
1148
1149 /*
1150 * uvm_map_lookup_entry: find map entry at or before an address
1151 *
1152 * => map must at least be read-locked by caller
1153 * => entry is returned in "entry"
1154 * => return value is true if address is in the returned entry
1155 */
1156
1157 boolean_t
1158 uvm_map_lookup_entry(struct vm_map *map, vaddr_t address,
1159 struct vm_map_entry **entry /* OUT */)
1160 {
1161 struct vm_map_entry *cur;
1162 boolean_t use_tree = FALSE;
1163 UVMHIST_FUNC("uvm_map_lookup_entry");
1164 UVMHIST_CALLED(maphist);
1165
1166 UVMHIST_LOG(maphist,"(map=0x%x,addr=0x%x,ent=0x%x)",
1167 map, address, entry, 0);
1168
1169 /*
1170 * start looking either from the head of the
1171 * list, or from the hint.
1172 */
1173
1174 simple_lock(&map->hint_lock);
1175 cur = map->hint;
1176 simple_unlock(&map->hint_lock);
1177
1178 if (cur == &map->header)
1179 cur = cur->next;
1180
1181 UVMCNT_INCR(uvm_mlk_call);
1182 if (address >= cur->start) {
1183
1184 /*
1185 * go from hint to end of list.
1186 *
1187 * but first, make a quick check to see if
1188 * we are already looking at the entry we
1189 * want (which is usually the case).
1190 * note also that we don't need to save the hint
1191 * here... it is the same hint (unless we are
1192 * at the header, in which case the hint didn't
1193 * buy us anything anyway).
1194 */
1195
1196 if (cur != &map->header && cur->end > address) {
1197 UVMCNT_INCR(uvm_mlk_hint);
1198 *entry = cur;
1199 UVMHIST_LOG(maphist,"<- got it via hint (0x%x)",
1200 cur, 0, 0, 0);
1201 return (TRUE);
1202 }
1203
1204 if (map->nentries > 30)
1205 use_tree = TRUE;
1206 } else {
1207
1208 /*
1209 * invalid hint. use tree.
1210 */
1211 use_tree = TRUE;
1212 }
1213
1214 uvm_tree_sanity(map, __func__);
1215
1216 if (use_tree) {
1217 struct vm_map_entry *prev = &map->header;
1218 cur = RB_ROOT(&map->rbhead);
1219
1220 /*
1221 * Simple lookup in the tree. Happens when the hint is
1222 * invalid, or nentries reach a threshold.
1223 */
1224 while (cur) {
1225 if (address >= cur->start) {
1226 if (address < cur->end) {
1227 *entry = cur;
1228 goto got;
1229 }
1230 prev = cur;
1231 cur = RB_RIGHT(cur, rb_entry);
1232 } else
1233 cur = RB_LEFT(cur, rb_entry);
1234 }
1235 *entry = prev;
1236 goto failed;
1237 }
1238
1239 /*
1240 * search linearly
1241 */
1242
1243 while (cur != &map->header) {
1244 if (cur->end > address) {
1245 if (address >= cur->start) {
1246 /*
1247 * save this lookup for future
1248 * hints, and return
1249 */
1250
1251 *entry = cur;
1252 got:
1253 SAVE_HINT(map, map->hint, *entry);
1254 UVMHIST_LOG(maphist,"<- search got it (0x%x)",
1255 cur, 0, 0, 0);
1256 KDASSERT((*entry)->start <= address);
1257 KDASSERT(address < (*entry)->end);
1258 return (TRUE);
1259 }
1260 break;
1261 }
1262 cur = cur->next;
1263 }
1264 *entry = cur->prev;
1265 failed:
1266 SAVE_HINT(map, map->hint, *entry);
1267 UVMHIST_LOG(maphist,"<- failed!",0,0,0,0);
1268 KDASSERT((*entry) == &map->header || (*entry)->end <= address);
1269 KDASSERT((*entry)->next == &map->header ||
1270 address < (*entry)->next->start);
1271 return (FALSE);
1272 }
1273
1274 /*
1275 * See if the range between start and start + length fits in the gap
1276 * entry->next->start and entry->end. Returns 1 if fits, 0 if doesn't
1277 * fit, and -1 address wraps around.
1278 */
1279 static __inline int
1280 uvm_map_space_avail(vaddr_t *start, vsize_t length, voff_t uoffset,
1281 vsize_t align, int topdown, struct vm_map_entry *entry)
1282 {
1283 vaddr_t end;
1284
1285 #ifdef PMAP_PREFER
1286 /*
1287 * push start address forward as needed to avoid VAC alias problems.
1288 * we only do this if a valid offset is specified.
1289 */
1290
1291 if (uoffset != UVM_UNKNOWN_OFFSET)
1292 PMAP_PREFER(uoffset, start);
1293 #endif
1294 if (align != 0) {
1295 if ((*start & (align - 1)) != 0) {
1296 if (topdown)
1297 *start &= ~(align - 1);
1298 else
1299 *start = roundup(*start, align);
1300 }
1301 /*
1302 * XXX Should we PMAP_PREFER() here again?
1303 */
1304 }
1305
1306 /*
1307 * Find the end of the proposed new region. Be sure we didn't
1308 * wrap around the address; if so, we lose. Otherwise, if the
1309 * proposed new region fits before the next entry, we win.
1310 */
1311
1312 end = *start + length;
1313 if (end < *start)
1314 return (-1);
1315
1316 if (entry->next->start >= end && *start >= entry->end)
1317 return (1);
1318
1319 return (0);
1320 }
1321
1322 /*
1323 * uvm_map_findspace: find "length" sized space in "map".
1324 *
1325 * => "hint" is a hint about where we want it, unless FINDSPACE_FIXED is
1326 * set (in which case we insist on using "hint").
1327 * => "result" is VA returned
1328 * => uobj/uoffset are to be used to handle VAC alignment, if required
1329 * => if `align' is non-zero, we attempt to align to that value.
1330 * => caller must at least have read-locked map
1331 * => returns NULL on failure, or pointer to prev. map entry if success
1332 * => note this is a cross between the old vm_map_findspace and vm_map_find
1333 */
1334
1335 struct vm_map_entry *
1336 uvm_map_findspace(struct vm_map *map, vaddr_t hint, vsize_t length,
1337 vaddr_t *result /* OUT */, struct uvm_object *uobj, voff_t uoffset,
1338 vsize_t align, int flags)
1339 {
1340 struct vm_map_entry *entry;
1341 struct vm_map_entry *child, *prev, *tmp;
1342 vaddr_t orig_hint;
1343 const int topdown = map->flags & VM_MAP_TOPDOWN;
1344 UVMHIST_FUNC("uvm_map_findspace");
1345 UVMHIST_CALLED(maphist);
1346
1347 UVMHIST_LOG(maphist, "(map=0x%x, hint=0x%x, len=%d, flags=0x%x)",
1348 map, hint, length, flags);
1349 KASSERT((align & (align - 1)) == 0);
1350 KASSERT((flags & UVM_FLAG_FIXED) == 0 || align == 0);
1351
1352 uvm_tree_sanity(map, "map_findspace entry");
1353
1354 /*
1355 * remember the original hint. if we are aligning, then we
1356 * may have to try again with no alignment constraint if
1357 * we fail the first time.
1358 */
1359
1360 orig_hint = hint;
1361 if (hint < map->min_offset) { /* check ranges ... */
1362 if (flags & UVM_FLAG_FIXED) {
1363 UVMHIST_LOG(maphist,"<- VA below map range",0,0,0,0);
1364 return (NULL);
1365 }
1366 hint = map->min_offset;
1367 }
1368 if (hint > map->max_offset) {
1369 UVMHIST_LOG(maphist,"<- VA 0x%x > range [0x%x->0x%x]",
1370 hint, map->min_offset, map->max_offset, 0);
1371 return (NULL);
1372 }
1373
1374 /*
1375 * Look for the first possible address; if there's already
1376 * something at this address, we have to start after it.
1377 */
1378
1379 /*
1380 * @@@: there are four, no, eight cases to consider.
1381 *
1382 * 0: found, fixed, bottom up -> fail
1383 * 1: found, fixed, top down -> fail
1384 * 2: found, not fixed, bottom up -> start after entry->end,
1385 * loop up
1386 * 3: found, not fixed, top down -> start before entry->start,
1387 * loop down
1388 * 4: not found, fixed, bottom up -> check entry->next->start, fail
1389 * 5: not found, fixed, top down -> check entry->next->start, fail
1390 * 6: not found, not fixed, bottom up -> check entry->next->start,
1391 * loop up
1392 * 7: not found, not fixed, top down -> check entry->next->start,
1393 * loop down
1394 *
1395 * as you can see, it reduces to roughly five cases, and that
1396 * adding top down mapping only adds one unique case (without
1397 * it, there would be four cases).
1398 */
1399
1400 if ((flags & UVM_FLAG_FIXED) == 0 && hint == map->min_offset) {
1401 entry = map->first_free;
1402 } else {
1403 if (uvm_map_lookup_entry(map, hint, &entry)) {
1404 /* "hint" address already in use ... */
1405 if (flags & UVM_FLAG_FIXED) {
1406 UVMHIST_LOG(maphist, "<- fixed & VA in use",
1407 0, 0, 0, 0);
1408 return (NULL);
1409 }
1410 if (topdown)
1411 /* Start from lower gap. */
1412 entry = entry->prev;
1413 } else if (flags & UVM_FLAG_FIXED) {
1414 if (entry->next->start >= hint + length &&
1415 hint + length > hint)
1416 goto found;
1417
1418 /* "hint" address is gap but too small */
1419 UVMHIST_LOG(maphist, "<- fixed mapping failed",
1420 0, 0, 0, 0);
1421 return (NULL); /* only one shot at it ... */
1422 } else {
1423 /*
1424 * See if given hint fits in this gap.
1425 */
1426 switch (uvm_map_space_avail(&hint, length,
1427 uoffset, align, topdown, entry)) {
1428 case 1:
1429 goto found;
1430 case -1:
1431 goto wraparound;
1432 }
1433
1434 if (topdown) {
1435 /*
1436 * Still there is a chance to fit
1437 * if hint > entry->end.
1438 */
1439 } else {
1440 /* Start from higer gap. */
1441 entry = entry->next;
1442 if (entry == &map->header)
1443 goto notfound;
1444 goto nextgap;
1445 }
1446 }
1447 }
1448
1449 /*
1450 * Note that all UVM_FLAGS_FIXED case is already handled.
1451 */
1452 KDASSERT((flags & UVM_FLAG_FIXED) == 0);
1453
1454 /* Try to find the space in the red-black tree */
1455
1456 /* Check slot before any entry */
1457 hint = topdown ? entry->next->start - length : entry->end;
1458 switch (uvm_map_space_avail(&hint, length, uoffset, align,
1459 topdown, entry)) {
1460 case 1:
1461 goto found;
1462 case -1:
1463 goto wraparound;
1464 }
1465
1466 nextgap:
1467 KDASSERT((flags & UVM_FLAG_FIXED) == 0);
1468 /* If there is not enough space in the whole tree, we fail */
1469 tmp = RB_ROOT(&map->rbhead);
1470 if (tmp == NULL || tmp->space < length)
1471 goto notfound;
1472
1473 prev = NULL; /* previous candidate */
1474
1475 /* Find an entry close to hint that has enough space */
1476 for (; tmp;) {
1477 KASSERT(tmp->next->start == tmp->end + tmp->ownspace);
1478 if (topdown) {
1479 if (tmp->next->start < hint + length &&
1480 (prev == NULL || tmp->end > prev->end)) {
1481 if (tmp->ownspace >= length)
1482 prev = tmp;
1483 else if ((child = RB_LEFT(tmp, rb_entry))
1484 != NULL && child->space >= length)
1485 prev = tmp;
1486 }
1487 } else {
1488 if (tmp->end >= hint &&
1489 (prev == NULL || tmp->end < prev->end)) {
1490 if (tmp->ownspace >= length)
1491 prev = tmp;
1492 else if ((child = RB_RIGHT(tmp, rb_entry))
1493 != NULL && child->space >= length)
1494 prev = tmp;
1495 }
1496 }
1497 if (tmp->next->start < hint + length)
1498 child = RB_RIGHT(tmp, rb_entry);
1499 else if (tmp->end > hint)
1500 child = RB_LEFT(tmp, rb_entry);
1501 else {
1502 if (tmp->ownspace >= length)
1503 break;
1504 if (topdown)
1505 child = RB_LEFT(tmp, rb_entry);
1506 else
1507 child = RB_RIGHT(tmp, rb_entry);
1508 }
1509 if (child == NULL || child->space < length)
1510 break;
1511 tmp = child;
1512 }
1513
1514 if (tmp != NULL && tmp->start < hint && hint < tmp->next->start) {
1515 /*
1516 * Check if the entry that we found satifies the
1517 * space requirement
1518 */
1519 if (topdown) {
1520 if (hint > tmp->next->start - length)
1521 hint = tmp->next->start - length;
1522 } else {
1523 if (hint < tmp->end)
1524 hint = tmp->end;
1525 }
1526 switch (uvm_map_space_avail(&hint, length, uoffset, align,
1527 topdown, tmp)) {
1528 case 1:
1529 entry = tmp;
1530 goto found;
1531 case -1:
1532 goto wraparound;
1533 }
1534 if (tmp->ownspace >= length)
1535 goto listsearch;
1536 }
1537 if (prev == NULL)
1538 goto notfound;
1539
1540 if (topdown) {
1541 KASSERT(orig_hint >= prev->next->start - length ||
1542 prev->next->start - length > prev->next->start);
1543 hint = prev->next->start - length;
1544 } else {
1545 KASSERT(orig_hint <= prev->end);
1546 hint = prev->end;
1547 }
1548 switch (uvm_map_space_avail(&hint, length, uoffset, align,
1549 topdown, prev)) {
1550 case 1:
1551 entry = prev;
1552 goto found;
1553 case -1:
1554 goto wraparound;
1555 }
1556 if (prev->ownspace >= length)
1557 goto listsearch;
1558
1559 if (topdown)
1560 tmp = RB_LEFT(prev, rb_entry);
1561 else
1562 tmp = RB_RIGHT(prev, rb_entry);
1563 for (;;) {
1564 KASSERT(tmp && tmp->space >= length);
1565 if (topdown)
1566 child = RB_RIGHT(tmp, rb_entry);
1567 else
1568 child = RB_LEFT(tmp, rb_entry);
1569 if (child && child->space >= length) {
1570 tmp = child;
1571 continue;
1572 }
1573 if (tmp->ownspace >= length)
1574 break;
1575 if (topdown)
1576 tmp = RB_LEFT(tmp, rb_entry);
1577 else
1578 tmp = RB_RIGHT(tmp, rb_entry);
1579 }
1580
1581 if (topdown) {
1582 KASSERT(orig_hint >= tmp->next->start - length ||
1583 tmp->next->start - length > tmp->next->start);
1584 hint = tmp->next->start - length;
1585 } else {
1586 KASSERT(orig_hint <= tmp->end);
1587 hint = tmp->end;
1588 }
1589 switch (uvm_map_space_avail(&hint, length, uoffset, align,
1590 topdown, tmp)) {
1591 case 1:
1592 entry = tmp;
1593 goto found;
1594 case -1:
1595 goto wraparound;
1596 }
1597
1598 /*
1599 * The tree fails to find an entry because of offset or alignment
1600 * restrictions. Search the list instead.
1601 */
1602 listsearch:
1603 /*
1604 * Look through the rest of the map, trying to fit a new region in
1605 * the gap between existing regions, or after the very last region.
1606 * note: entry->end = base VA of current gap,
1607 * entry->next->start = VA of end of current gap
1608 */
1609
1610 for (;;) {
1611 /* Update hint for current gap. */
1612 hint = topdown ? entry->next->start - length : entry->end;
1613
1614 /* See if it fits. */
1615 switch (uvm_map_space_avail(&hint, length, uoffset, align,
1616 topdown, entry)) {
1617 case 1:
1618 goto found;
1619 case -1:
1620 goto wraparound;
1621 }
1622
1623 /* Advance to next/previous gap */
1624 if (topdown) {
1625 if (entry == &map->header) {
1626 UVMHIST_LOG(maphist, "<- failed (off start)",
1627 0,0,0,0);
1628 goto notfound;
1629 }
1630 entry = entry->prev;
1631 } else {
1632 entry = entry->next;
1633 if (entry == &map->header) {
1634 UVMHIST_LOG(maphist, "<- failed (off end)",
1635 0,0,0,0);
1636 goto notfound;
1637 }
1638 }
1639 }
1640
1641 found:
1642 SAVE_HINT(map, map->hint, entry);
1643 *result = hint;
1644 UVMHIST_LOG(maphist,"<- got it! (result=0x%x)", hint, 0,0,0);
1645 KASSERT( topdown || hint >= orig_hint);
1646 KASSERT(!topdown || hint <= orig_hint);
1647 KASSERT(entry->end <= hint);
1648 KASSERT(hint + length <= entry->next->start);
1649 return (entry);
1650
1651 wraparound:
1652 UVMHIST_LOG(maphist, "<- failed (wrap around)", 0,0,0,0);
1653
1654 notfound:
1655 if (align != 0) {
1656 UVMHIST_LOG(maphist, "calling recursively, no align",
1657 0,0,0,0);
1658 return (uvm_map_findspace(map, orig_hint,
1659 length, result, uobj, uoffset, 0, flags));
1660 }
1661 return (NULL);
1662 }
1663
1664 /*
1665 * U N M A P - m a i n h e l p e r f u n c t i o n s
1666 */
1667
1668 /*
1669 * uvm_unmap_remove: remove mappings from a vm_map (from "start" up to "stop")
1670 *
1671 * => caller must check alignment and size
1672 * => map must be locked by caller
1673 * => we return a list of map entries that we've remove from the map
1674 * in "entry_list"
1675 */
1676
1677 void
1678 uvm_unmap_remove(struct vm_map *map, vaddr_t start, vaddr_t end,
1679 struct vm_map_entry **entry_list /* OUT */)
1680 {
1681 struct vm_map_entry *entry, *first_entry, *next;
1682 vaddr_t len;
1683 UVMHIST_FUNC("uvm_unmap_remove"); UVMHIST_CALLED(maphist);
1684
1685 UVMHIST_LOG(maphist,"(map=0x%x, start=0x%x, end=0x%x)",
1686 map, start, end, 0);
1687 VM_MAP_RANGE_CHECK(map, start, end);
1688
1689 uvm_tree_sanity(map, "unmap_remove entry");
1690
1691 /*
1692 * find first entry
1693 */
1694
1695 if (uvm_map_lookup_entry(map, start, &first_entry) == TRUE) {
1696 /* clip and go... */
1697 entry = first_entry;
1698 UVM_MAP_CLIP_START(map, entry, start);
1699 /* critical! prevents stale hint */
1700 SAVE_HINT(map, entry, entry->prev);
1701 } else {
1702 entry = first_entry->next;
1703 }
1704
1705 /*
1706 * Save the free space hint
1707 */
1708
1709 if (map->first_free->start >= start)
1710 map->first_free = entry->prev;
1711
1712 /*
1713 * note: we now re-use first_entry for a different task. we remove
1714 * a number of map entries from the map and save them in a linked
1715 * list headed by "first_entry". once we remove them from the map
1716 * the caller should unlock the map and drop the references to the
1717 * backing objects [c.f. uvm_unmap_detach]. the object is to
1718 * separate unmapping from reference dropping. why?
1719 * [1] the map has to be locked for unmapping
1720 * [2] the map need not be locked for reference dropping
1721 * [3] dropping references may trigger pager I/O, and if we hit
1722 * a pager that does synchronous I/O we may have to wait for it.
1723 * [4] we would like all waiting for I/O to occur with maps unlocked
1724 * so that we don't block other threads.
1725 */
1726
1727 first_entry = NULL;
1728 *entry_list = NULL;
1729
1730 /*
1731 * break up the area into map entry sized regions and unmap. note
1732 * that all mappings have to be removed before we can even consider
1733 * dropping references to amaps or VM objects (otherwise we could end
1734 * up with a mapping to a page on the free list which would be very bad)
1735 */
1736
1737 while ((entry != &map->header) && (entry->start < end)) {
1738 UVM_MAP_CLIP_END(map, entry, end);
1739 next = entry->next;
1740 len = entry->end - entry->start;
1741
1742 /*
1743 * unwire before removing addresses from the pmap; otherwise
1744 * unwiring will put the entries back into the pmap (XXX).
1745 */
1746
1747 if (VM_MAPENT_ISWIRED(entry)) {
1748 uvm_map_entry_unwire(map, entry);
1749 }
1750 if ((map->flags & VM_MAP_PAGEABLE) == 0) {
1751
1752 /*
1753 * if the map is non-pageable, any pages mapped there
1754 * must be wired and entered with pmap_kenter_pa(),
1755 * and we should free any such pages immediately.
1756 * this is mostly used for kmem_map and mb_map.
1757 */
1758
1759 uvm_km_pgremove_intrsafe(entry->start, entry->end);
1760 pmap_kremove(entry->start, len);
1761 } else if (UVM_ET_ISOBJ(entry) &&
1762 UVM_OBJ_IS_KERN_OBJECT(entry->object.uvm_obj)) {
1763 KASSERT(vm_map_pmap(map) == pmap_kernel());
1764
1765 /*
1766 * note: kernel object mappings are currently used in
1767 * two ways:
1768 * [1] "normal" mappings of pages in the kernel object
1769 * [2] uvm_km_valloc'd allocations in which we
1770 * pmap_enter in some non-kernel-object page
1771 * (e.g. vmapbuf).
1772 *
1773 * for case [1], we need to remove the mapping from
1774 * the pmap and then remove the page from the kernel
1775 * object (because, once pages in a kernel object are
1776 * unmapped they are no longer needed, unlike, say,
1777 * a vnode where you might want the data to persist
1778 * until flushed out of a queue).
1779 *
1780 * for case [2], we need to remove the mapping from
1781 * the pmap. there shouldn't be any pages at the
1782 * specified offset in the kernel object [but it
1783 * doesn't hurt to call uvm_km_pgremove just to be
1784 * safe?]
1785 *
1786 * uvm_km_pgremove currently does the following:
1787 * for pages in the kernel object in range:
1788 * - drops the swap slot
1789 * - uvm_pagefree the page
1790 */
1791
1792 /*
1793 * remove mappings from pmap and drop the pages
1794 * from the object. offsets are always relative
1795 * to vm_map_min(kernel_map).
1796 */
1797
1798 pmap_remove(pmap_kernel(), entry->start,
1799 entry->start + len);
1800 uvm_km_pgremove(entry->object.uvm_obj,
1801 entry->start - vm_map_min(kernel_map),
1802 entry->end - vm_map_min(kernel_map));
1803
1804 /*
1805 * null out kernel_object reference, we've just
1806 * dropped it
1807 */
1808
1809 entry->etype &= ~UVM_ET_OBJ;
1810 entry->object.uvm_obj = NULL;
1811 } else if (UVM_ET_ISOBJ(entry) || entry->aref.ar_amap) {
1812
1813 /*
1814 * remove mappings the standard way.
1815 */
1816
1817 pmap_remove(map->pmap, entry->start, entry->end);
1818 }
1819
1820 /*
1821 * remove entry from map and put it on our list of entries
1822 * that we've nuked. then go to next entry.
1823 */
1824
1825 UVMHIST_LOG(maphist, " removed map entry 0x%x", entry, 0, 0,0);
1826
1827 /* critical! prevents stale hint */
1828 SAVE_HINT(map, entry, entry->prev);
1829
1830 uvm_map_entry_unlink(map, entry);
1831 KASSERT(map->size >= len);
1832 map->size -= len;
1833 entry->prev = NULL;
1834 entry->next = first_entry;
1835 first_entry = entry;
1836 entry = next;
1837 }
1838 if ((map->flags & VM_MAP_DYING) == 0) {
1839 pmap_update(vm_map_pmap(map));
1840 }
1841
1842 uvm_tree_sanity(map, "unmap_remove leave");
1843
1844 /*
1845 * now we've cleaned up the map and are ready for the caller to drop
1846 * references to the mapped objects.
1847 */
1848
1849 *entry_list = first_entry;
1850 UVMHIST_LOG(maphist,"<- done!", 0, 0, 0, 0);
1851 }
1852
1853 /*
1854 * uvm_unmap_detach: drop references in a chain of map entries
1855 *
1856 * => we will free the map entries as we traverse the list.
1857 */
1858
1859 void
1860 uvm_unmap_detach(struct vm_map_entry *first_entry, int flags)
1861 {
1862 struct vm_map_entry *next_entry;
1863 UVMHIST_FUNC("uvm_unmap_detach"); UVMHIST_CALLED(maphist);
1864
1865 while (first_entry) {
1866 KASSERT(!VM_MAPENT_ISWIRED(first_entry));
1867 UVMHIST_LOG(maphist,
1868 " detach 0x%x: amap=0x%x, obj=0x%x, submap?=%d",
1869 first_entry, first_entry->aref.ar_amap,
1870 first_entry->object.uvm_obj,
1871 UVM_ET_ISSUBMAP(first_entry));
1872
1873 /*
1874 * drop reference to amap, if we've got one
1875 */
1876
1877 if (first_entry->aref.ar_amap)
1878 uvm_map_unreference_amap(first_entry, flags);
1879
1880 /*
1881 * drop reference to our backing object, if we've got one
1882 */
1883
1884 KASSERT(!UVM_ET_ISSUBMAP(first_entry));
1885 if (UVM_ET_ISOBJ(first_entry) &&
1886 first_entry->object.uvm_obj->pgops->pgo_detach) {
1887 (*first_entry->object.uvm_obj->pgops->pgo_detach)
1888 (first_entry->object.uvm_obj);
1889 }
1890 next_entry = first_entry->next;
1891 uvm_mapent_free(first_entry);
1892 first_entry = next_entry;
1893 }
1894 UVMHIST_LOG(maphist, "<- done", 0,0,0,0);
1895 }
1896
1897 /*
1898 * E X T R A C T I O N F U N C T I O N S
1899 */
1900
1901 /*
1902 * uvm_map_reserve: reserve space in a vm_map for future use.
1903 *
1904 * => we reserve space in a map by putting a dummy map entry in the
1905 * map (dummy means obj=NULL, amap=NULL, prot=VM_PROT_NONE)
1906 * => map should be unlocked (we will write lock it)
1907 * => we return true if we were able to reserve space
1908 * => XXXCDC: should be inline?
1909 */
1910
1911 int
1912 uvm_map_reserve(struct vm_map *map, vsize_t size,
1913 vaddr_t offset /* hint for pmap_prefer */,
1914 vsize_t align /* alignment hint */,
1915 vaddr_t *raddr /* IN:hint, OUT: reserved VA */)
1916 {
1917 UVMHIST_FUNC("uvm_map_reserve"); UVMHIST_CALLED(maphist);
1918
1919 UVMHIST_LOG(maphist, "(map=0x%x, size=0x%x, offset=0x%x,addr=0x%x)",
1920 map,size,offset,raddr);
1921
1922 size = round_page(size);
1923 if (*raddr < vm_map_min(map))
1924 *raddr = vm_map_min(map); /* hint */
1925
1926 /*
1927 * reserve some virtual space.
1928 */
1929
1930 if (uvm_map(map, raddr, size, NULL, offset, 0,
1931 UVM_MAPFLAG(UVM_PROT_NONE, UVM_PROT_NONE, UVM_INH_NONE,
1932 UVM_ADV_RANDOM, UVM_FLAG_NOMERGE)) != 0) {
1933 UVMHIST_LOG(maphist, "<- done (no VM)", 0,0,0,0);
1934 return (FALSE);
1935 }
1936
1937 UVMHIST_LOG(maphist, "<- done (*raddr=0x%x)", *raddr,0,0,0);
1938 return (TRUE);
1939 }
1940
1941 /*
1942 * uvm_map_replace: replace a reserved (blank) area of memory with
1943 * real mappings.
1944 *
1945 * => caller must WRITE-LOCK the map
1946 * => we return TRUE if replacement was a success
1947 * => we expect the newents chain to have nnewents entrys on it and
1948 * we expect newents->prev to point to the last entry on the list
1949 * => note newents is allowed to be NULL
1950 */
1951
1952 int
1953 uvm_map_replace(struct vm_map *map, vaddr_t start, vaddr_t end,
1954 struct vm_map_entry *newents, int nnewents)
1955 {
1956 struct vm_map_entry *oldent, *last;
1957
1958 uvm_tree_sanity(map, "map_replace entry");
1959
1960 /*
1961 * first find the blank map entry at the specified address
1962 */
1963
1964 if (!uvm_map_lookup_entry(map, start, &oldent)) {
1965 return (FALSE);
1966 }
1967
1968 /*
1969 * check to make sure we have a proper blank entry
1970 */
1971
1972 if (oldent->start != start || oldent->end != end ||
1973 oldent->object.uvm_obj != NULL || oldent->aref.ar_amap != NULL) {
1974 return (FALSE);
1975 }
1976
1977 #ifdef DIAGNOSTIC
1978
1979 /*
1980 * sanity check the newents chain
1981 */
1982
1983 {
1984 struct vm_map_entry *tmpent = newents;
1985 int nent = 0;
1986 vaddr_t cur = start;
1987
1988 while (tmpent) {
1989 nent++;
1990 if (tmpent->start < cur)
1991 panic("uvm_map_replace1");
1992 if (tmpent->start > tmpent->end || tmpent->end > end) {
1993 printf("tmpent->start=0x%lx, tmpent->end=0x%lx, end=0x%lx\n",
1994 tmpent->start, tmpent->end, end);
1995 panic("uvm_map_replace2");
1996 }
1997 cur = tmpent->end;
1998 if (tmpent->next) {
1999 if (tmpent->next->prev != tmpent)
2000 panic("uvm_map_replace3");
2001 } else {
2002 if (newents->prev != tmpent)
2003 panic("uvm_map_replace4");
2004 }
2005 tmpent = tmpent->next;
2006 }
2007 if (nent != nnewents)
2008 panic("uvm_map_replace5");
2009 }
2010 #endif
2011
2012 /*
2013 * map entry is a valid blank! replace it. (this does all the
2014 * work of map entry link/unlink...).
2015 */
2016
2017 if (newents) {
2018 last = newents->prev;
2019
2020 /* critical: flush stale hints out of map */
2021 SAVE_HINT(map, map->hint, newents);
2022 if (map->first_free == oldent)
2023 map->first_free = last;
2024
2025 last->next = oldent->next;
2026 last->next->prev = last;
2027
2028 /* Fix RB tree */
2029 uvm_rb_remove(map, oldent);
2030
2031 newents->prev = oldent->prev;
2032 newents->prev->next = newents;
2033 map->nentries = map->nentries + (nnewents - 1);
2034
2035 /* Fixup the RB tree */
2036 {
2037 int i;
2038 struct vm_map_entry *tmp;
2039
2040 tmp = newents;
2041 for (i = 0; i < nnewents && tmp; i++) {
2042 uvm_rb_insert(map, tmp);
2043 tmp = tmp->next;
2044 }
2045 }
2046 } else {
2047
2048 /* critical: flush stale hints out of map */
2049 SAVE_HINT(map, map->hint, oldent->prev);
2050 if (map->first_free == oldent)
2051 map->first_free = oldent->prev;
2052
2053 /* NULL list of new entries: just remove the old one */
2054 uvm_map_entry_unlink(map, oldent);
2055 }
2056
2057 uvm_tree_sanity(map, "map_replace leave");
2058
2059 /*
2060 * now we can free the old blank entry, unlock the map and return.
2061 */
2062
2063 uvm_mapent_free(oldent);
2064 return (TRUE);
2065 }
2066
2067 /*
2068 * uvm_map_extract: extract a mapping from a map and put it somewhere
2069 * (maybe removing the old mapping)
2070 *
2071 * => maps should be unlocked (we will write lock them)
2072 * => returns 0 on success, error code otherwise
2073 * => start must be page aligned
2074 * => len must be page sized
2075 * => flags:
2076 * UVM_EXTRACT_REMOVE: remove mappings from srcmap
2077 * UVM_EXTRACT_CONTIG: abort if unmapped area (advisory only)
2078 * UVM_EXTRACT_QREF: for a temporary extraction do quick obj refs
2079 * UVM_EXTRACT_FIXPROT: set prot to maxprot as we go
2080 * >>>NOTE: if you set REMOVE, you are not allowed to use CONTIG or QREF!<<<
2081 * >>>NOTE: QREF's must be unmapped via the QREF path, thus should only
2082 * be used from within the kernel in a kernel level map <<<
2083 */
2084
2085 int
2086 uvm_map_extract(struct vm_map *srcmap, vaddr_t start, vsize_t len,
2087 struct vm_map *dstmap, vaddr_t *dstaddrp, int flags)
2088 {
2089 vaddr_t dstaddr, end, newend, oldoffset, fudge, orig_fudge,
2090 oldstart;
2091 struct vm_map_entry *chain, *endchain, *entry, *orig_entry, *newentry,
2092 *deadentry, *oldentry;
2093 vsize_t elen;
2094 int nchain, error, copy_ok;
2095 UVMHIST_FUNC("uvm_map_extract"); UVMHIST_CALLED(maphist);
2096
2097 UVMHIST_LOG(maphist,"(srcmap=0x%x,start=0x%x, len=0x%x", srcmap, start,
2098 len,0);
2099 UVMHIST_LOG(maphist," ...,dstmap=0x%x, flags=0x%x)", dstmap,flags,0,0);
2100
2101 uvm_tree_sanity(srcmap, "map_extract src enter");
2102 uvm_tree_sanity(dstmap, "map_extract dst enter");
2103
2104 /*
2105 * step 0: sanity check: start must be on a page boundary, length
2106 * must be page sized. can't ask for CONTIG/QREF if you asked for
2107 * REMOVE.
2108 */
2109
2110 KASSERT((start & PAGE_MASK) == 0 && (len & PAGE_MASK) == 0);
2111 KASSERT((flags & UVM_EXTRACT_REMOVE) == 0 ||
2112 (flags & (UVM_EXTRACT_CONTIG|UVM_EXTRACT_QREF)) == 0);
2113
2114 /*
2115 * step 1: reserve space in the target map for the extracted area
2116 */
2117
2118 dstaddr = vm_map_min(dstmap);
2119 if (uvm_map_reserve(dstmap, len, start, 0, &dstaddr) == FALSE)
2120 return (ENOMEM);
2121 *dstaddrp = dstaddr; /* pass address back to caller */
2122 UVMHIST_LOG(maphist, " dstaddr=0x%x", dstaddr,0,0,0);
2123
2124 /*
2125 * step 2: setup for the extraction process loop by init'ing the
2126 * map entry chain, locking src map, and looking up the first useful
2127 * entry in the map.
2128 */
2129
2130 end = start + len;
2131 newend = dstaddr + len;
2132 chain = endchain = NULL;
2133 nchain = 0;
2134 vm_map_lock(srcmap);
2135
2136 if (uvm_map_lookup_entry(srcmap, start, &entry)) {
2137
2138 /* "start" is within an entry */
2139 if (flags & UVM_EXTRACT_QREF) {
2140
2141 /*
2142 * for quick references we don't clip the entry, so
2143 * the entry may map space "before" the starting
2144 * virtual address... this is the "fudge" factor
2145 * (which can be non-zero only the first time
2146 * through the "while" loop in step 3).
2147 */
2148
2149 fudge = start - entry->start;
2150 } else {
2151
2152 /*
2153 * normal reference: we clip the map to fit (thus
2154 * fudge is zero)
2155 */
2156
2157 UVM_MAP_CLIP_START(srcmap, entry, start);
2158 SAVE_HINT(srcmap, srcmap->hint, entry->prev);
2159 fudge = 0;
2160 }
2161 } else {
2162
2163 /* "start" is not within an entry ... skip to next entry */
2164 if (flags & UVM_EXTRACT_CONTIG) {
2165 error = EINVAL;
2166 goto bad; /* definite hole here ... */
2167 }
2168
2169 entry = entry->next;
2170 fudge = 0;
2171 }
2172
2173 /* save values from srcmap for step 6 */
2174 orig_entry = entry;
2175 orig_fudge = fudge;
2176
2177 /*
2178 * step 3: now start looping through the map entries, extracting
2179 * as we go.
2180 */
2181
2182 while (entry->start < end && entry != &srcmap->header) {
2183
2184 /* if we are not doing a quick reference, clip it */
2185 if ((flags & UVM_EXTRACT_QREF) == 0)
2186 UVM_MAP_CLIP_END(srcmap, entry, end);
2187
2188 /* clear needs_copy (allow chunking) */
2189 if (UVM_ET_ISNEEDSCOPY(entry)) {
2190 if (fudge)
2191 oldstart = entry->start;
2192 else
2193 oldstart = 0; /* XXX: gcc */
2194 amap_copy(srcmap, entry, M_NOWAIT, TRUE, start, end);
2195 if (UVM_ET_ISNEEDSCOPY(entry)) { /* failed? */
2196 error = ENOMEM;
2197 goto bad;
2198 }
2199
2200 /* amap_copy could clip (during chunk)! update fudge */
2201 if (fudge) {
2202 fudge = fudge - (entry->start - oldstart);
2203 orig_fudge = fudge;
2204 }
2205 }
2206
2207 /* calculate the offset of this from "start" */
2208 oldoffset = (entry->start + fudge) - start;
2209
2210 /* allocate a new map entry */
2211 newentry = uvm_mapent_alloc(dstmap, 0);
2212 if (newentry == NULL) {
2213 error = ENOMEM;
2214 goto bad;
2215 }
2216
2217 /* set up new map entry */
2218 newentry->next = NULL;
2219 newentry->prev = endchain;
2220 newentry->start = dstaddr + oldoffset;
2221 newentry->end =
2222 newentry->start + (entry->end - (entry->start + fudge));
2223 if (newentry->end > newend || newentry->end < newentry->start)
2224 newentry->end = newend;
2225 newentry->object.uvm_obj = entry->object.uvm_obj;
2226 if (newentry->object.uvm_obj) {
2227 if (newentry->object.uvm_obj->pgops->pgo_reference)
2228 newentry->object.uvm_obj->pgops->
2229 pgo_reference(newentry->object.uvm_obj);
2230 newentry->offset = entry->offset + fudge;
2231 } else {
2232 newentry->offset = 0;
2233 }
2234 newentry->etype = entry->etype;
2235 newentry->protection = (flags & UVM_EXTRACT_FIXPROT) ?
2236 entry->max_protection : entry->protection;
2237 newentry->max_protection = entry->max_protection;
2238 newentry->inheritance = entry->inheritance;
2239 newentry->wired_count = 0;
2240 newentry->aref.ar_amap = entry->aref.ar_amap;
2241 if (newentry->aref.ar_amap) {
2242 newentry->aref.ar_pageoff =
2243 entry->aref.ar_pageoff + (fudge >> PAGE_SHIFT);
2244 uvm_map_reference_amap(newentry, AMAP_SHARED |
2245 ((flags & UVM_EXTRACT_QREF) ? AMAP_REFALL : 0));
2246 } else {
2247 newentry->aref.ar_pageoff = 0;
2248 }
2249 newentry->advice = entry->advice;
2250
2251 /* now link it on the chain */
2252 nchain++;
2253 if (endchain == NULL) {
2254 chain = endchain = newentry;
2255 } else {
2256 endchain->next = newentry;
2257 endchain = newentry;
2258 }
2259
2260 /* end of 'while' loop! */
2261 if ((flags & UVM_EXTRACT_CONTIG) && entry->end < end &&
2262 (entry->next == &srcmap->header ||
2263 entry->next->start != entry->end)) {
2264 error = EINVAL;
2265 goto bad;
2266 }
2267 entry = entry->next;
2268 fudge = 0;
2269 }
2270
2271 /*
2272 * step 4: close off chain (in format expected by uvm_map_replace)
2273 */
2274
2275 if (chain)
2276 chain->prev = endchain;
2277
2278 /*
2279 * step 5: attempt to lock the dest map so we can pmap_copy.
2280 * note usage of copy_ok:
2281 * 1 => dstmap locked, pmap_copy ok, and we "replace" here (step 5)
2282 * 0 => dstmap unlocked, NO pmap_copy, and we will "replace" in step 7
2283 */
2284
2285 if (srcmap == dstmap || vm_map_lock_try(dstmap) == TRUE) {
2286 copy_ok = 1;
2287 if (!uvm_map_replace(dstmap, dstaddr, dstaddr+len, chain,
2288 nchain)) {
2289 if (srcmap != dstmap)
2290 vm_map_unlock(dstmap);
2291 error = EIO;
2292 goto bad;
2293 }
2294 } else {
2295 copy_ok = 0;
2296 /* replace defered until step 7 */
2297 }
2298
2299 /*
2300 * step 6: traverse the srcmap a second time to do the following:
2301 * - if we got a lock on the dstmap do pmap_copy
2302 * - if UVM_EXTRACT_REMOVE remove the entries
2303 * we make use of orig_entry and orig_fudge (saved in step 2)
2304 */
2305
2306 if (copy_ok || (flags & UVM_EXTRACT_REMOVE)) {
2307
2308 /* purge possible stale hints from srcmap */
2309 if (flags & UVM_EXTRACT_REMOVE) {
2310 SAVE_HINT(srcmap, srcmap->hint, orig_entry->prev);
2311 if (srcmap->first_free->start >= start)
2312 srcmap->first_free = orig_entry->prev;
2313 }
2314
2315 entry = orig_entry;
2316 fudge = orig_fudge;
2317 deadentry = NULL; /* for UVM_EXTRACT_REMOVE */
2318
2319 while (entry->start < end && entry != &srcmap->header) {
2320 if (copy_ok) {
2321 oldoffset = (entry->start + fudge) - start;
2322 elen = MIN(end, entry->end) -
2323 (entry->start + fudge);
2324 pmap_copy(dstmap->pmap, srcmap->pmap,
2325 dstaddr + oldoffset, elen,
2326 entry->start + fudge);
2327 }
2328
2329 /* we advance "entry" in the following if statement */
2330 if (flags & UVM_EXTRACT_REMOVE) {
2331 pmap_remove(srcmap->pmap, entry->start,
2332 entry->end);
2333 oldentry = entry; /* save entry */
2334 entry = entry->next; /* advance */
2335 uvm_map_entry_unlink(srcmap, oldentry);
2336 /* add to dead list */
2337 oldentry->next = deadentry;
2338 deadentry = oldentry;
2339 } else {
2340 entry = entry->next; /* advance */
2341 }
2342
2343 /* end of 'while' loop */
2344 fudge = 0;
2345 }
2346 pmap_update(srcmap->pmap);
2347
2348 /*
2349 * unlock dstmap. we will dispose of deadentry in
2350 * step 7 if needed
2351 */
2352
2353 if (copy_ok && srcmap != dstmap)
2354 vm_map_unlock(dstmap);
2355
2356 } else {
2357 deadentry = NULL;
2358 }
2359
2360 /*
2361 * step 7: we are done with the source map, unlock. if copy_ok
2362 * is 0 then we have not replaced the dummy mapping in dstmap yet
2363 * and we need to do so now.
2364 */
2365
2366 vm_map_unlock(srcmap);
2367 if ((flags & UVM_EXTRACT_REMOVE) && deadentry)
2368 uvm_unmap_detach(deadentry, 0); /* dispose of old entries */
2369
2370 /* now do the replacement if we didn't do it in step 5 */
2371 if (copy_ok == 0) {
2372 vm_map_lock(dstmap);
2373 error = uvm_map_replace(dstmap, dstaddr, dstaddr+len, chain,
2374 nchain);
2375 vm_map_unlock(dstmap);
2376
2377 if (error == FALSE) {
2378 error = EIO;
2379 goto bad2;
2380 }
2381 }
2382
2383 uvm_tree_sanity(srcmap, "map_extract src leave");
2384 uvm_tree_sanity(dstmap, "map_extract dst leave");
2385
2386 return (0);
2387
2388 /*
2389 * bad: failure recovery
2390 */
2391 bad:
2392 vm_map_unlock(srcmap);
2393 bad2: /* src already unlocked */
2394 if (chain)
2395 uvm_unmap_detach(chain,
2396 (flags & UVM_EXTRACT_QREF) ? AMAP_REFALL : 0);
2397
2398 uvm_tree_sanity(srcmap, "map_extract src err leave");
2399 uvm_tree_sanity(dstmap, "map_extract dst err leave");
2400
2401 uvm_unmap(dstmap, dstaddr, dstaddr+len); /* ??? */
2402 return (error);
2403 }
2404
2405 /* end of extraction functions */
2406
2407 /*
2408 * uvm_map_submap: punch down part of a map into a submap
2409 *
2410 * => only the kernel_map is allowed to be submapped
2411 * => the purpose of submapping is to break up the locking granularity
2412 * of a larger map
2413 * => the range specified must have been mapped previously with a uvm_map()
2414 * call [with uobj==NULL] to create a blank map entry in the main map.
2415 * [And it had better still be blank!]
2416 * => maps which contain submaps should never be copied or forked.
2417 * => to remove a submap, use uvm_unmap() on the main map
2418 * and then uvm_map_deallocate() the submap.
2419 * => main map must be unlocked.
2420 * => submap must have been init'd and have a zero reference count.
2421 * [need not be locked as we don't actually reference it]
2422 */
2423
2424 int
2425 uvm_map_submap(struct vm_map *map, vaddr_t start, vaddr_t end,
2426 struct vm_map *submap)
2427 {
2428 struct vm_map_entry *entry;
2429 int error;
2430
2431 vm_map_lock(map);
2432 VM_MAP_RANGE_CHECK(map, start, end);
2433
2434 if (uvm_map_lookup_entry(map, start, &entry)) {
2435 UVM_MAP_CLIP_START(map, entry, start);
2436 UVM_MAP_CLIP_END(map, entry, end); /* to be safe */
2437 } else {
2438 entry = NULL;
2439 }
2440
2441 if (entry != NULL &&
2442 entry->start == start && entry->end == end &&
2443 entry->object.uvm_obj == NULL && entry->aref.ar_amap == NULL &&
2444 !UVM_ET_ISCOPYONWRITE(entry) && !UVM_ET_ISNEEDSCOPY(entry)) {
2445 entry->etype |= UVM_ET_SUBMAP;
2446 entry->object.sub_map = submap;
2447 entry->offset = 0;
2448 uvm_map_reference(submap);
2449 error = 0;
2450 } else {
2451 error = EINVAL;
2452 }
2453 vm_map_unlock(map);
2454 return error;
2455 }
2456
2457
2458 /*
2459 * uvm_map_protect: change map protection
2460 *
2461 * => set_max means set max_protection.
2462 * => map must be unlocked.
2463 */
2464
2465 #define MASK(entry) (UVM_ET_ISCOPYONWRITE(entry) ? \
2466 ~VM_PROT_WRITE : VM_PROT_ALL)
2467
2468 int
2469 uvm_map_protect(struct vm_map *map, vaddr_t start, vaddr_t end,
2470 vm_prot_t new_prot, boolean_t set_max)
2471 {
2472 struct vm_map_entry *current, *entry;
2473 int error = 0;
2474 UVMHIST_FUNC("uvm_map_protect"); UVMHIST_CALLED(maphist);
2475 UVMHIST_LOG(maphist,"(map=0x%x,start=0x%x,end=0x%x,new_prot=0x%x)",
2476 map, start, end, new_prot);
2477
2478 vm_map_lock(map);
2479 VM_MAP_RANGE_CHECK(map, start, end);
2480 if (uvm_map_lookup_entry(map, start, &entry)) {
2481 UVM_MAP_CLIP_START(map, entry, start);
2482 } else {
2483 entry = entry->next;
2484 }
2485
2486 /*
2487 * make a first pass to check for protection violations.
2488 */
2489
2490 current = entry;
2491 while ((current != &map->header) && (current->start < end)) {
2492 if (UVM_ET_ISSUBMAP(current)) {
2493 error = EINVAL;
2494 goto out;
2495 }
2496 if ((new_prot & current->max_protection) != new_prot) {
2497 error = EACCES;
2498 goto out;
2499 }
2500 /*
2501 * Don't allow VM_PROT_EXECUTE to be set on entries that
2502 * point to vnodes that are associated with a NOEXEC file
2503 * system.
2504 */
2505 if (UVM_ET_ISOBJ(current) &&
2506 UVM_OBJ_IS_VNODE(current->object.uvm_obj)) {
2507 struct vnode *vp =
2508 (struct vnode *) current->object.uvm_obj;
2509
2510 if ((new_prot & VM_PROT_EXECUTE) != 0 &&
2511 (vp->v_mount->mnt_flag & MNT_NOEXEC) != 0) {
2512 error = EACCES;
2513 goto out;
2514 }
2515 }
2516 current = current->next;
2517 }
2518
2519 /* go back and fix up protections (no need to clip this time). */
2520
2521 current = entry;
2522 while ((current != &map->header) && (current->start < end)) {
2523 vm_prot_t old_prot;
2524
2525 UVM_MAP_CLIP_END(map, current, end);
2526 old_prot = current->protection;
2527 if (set_max)
2528 current->protection =
2529 (current->max_protection = new_prot) & old_prot;
2530 else
2531 current->protection = new_prot;
2532
2533 /*
2534 * update physical map if necessary. worry about copy-on-write
2535 * here -- CHECK THIS XXX
2536 */
2537
2538 if (current->protection != old_prot) {
2539 /* update pmap! */
2540 pmap_protect(map->pmap, current->start, current->end,
2541 current->protection & MASK(entry));
2542
2543 /*
2544 * If this entry points at a vnode, and the
2545 * protection includes VM_PROT_EXECUTE, mark
2546 * the vnode as VEXECMAP.
2547 */
2548 if (UVM_ET_ISOBJ(current)) {
2549 struct uvm_object *uobj =
2550 current->object.uvm_obj;
2551
2552 if (UVM_OBJ_IS_VNODE(uobj) &&
2553 (current->protection & VM_PROT_EXECUTE))
2554 vn_markexec((struct vnode *) uobj);
2555 }
2556 }
2557
2558 /*
2559 * If the map is configured to lock any future mappings,
2560 * wire this entry now if the old protection was VM_PROT_NONE
2561 * and the new protection is not VM_PROT_NONE.
2562 */
2563
2564 if ((map->flags & VM_MAP_WIREFUTURE) != 0 &&
2565 VM_MAPENT_ISWIRED(entry) == 0 &&
2566 old_prot == VM_PROT_NONE &&
2567 new_prot != VM_PROT_NONE) {
2568 if (uvm_map_pageable(map, entry->start,
2569 entry->end, FALSE,
2570 UVM_LK_ENTER|UVM_LK_EXIT) != 0) {
2571
2572 /*
2573 * If locking the entry fails, remember the
2574 * error if it's the first one. Note we
2575 * still continue setting the protection in
2576 * the map, but will return the error
2577 * condition regardless.
2578 *
2579 * XXX Ignore what the actual error is,
2580 * XXX just call it a resource shortage
2581 * XXX so that it doesn't get confused
2582 * XXX what uvm_map_protect() itself would
2583 * XXX normally return.
2584 */
2585
2586 error = ENOMEM;
2587 }
2588 }
2589 current = current->next;
2590 }
2591 pmap_update(map->pmap);
2592
2593 out:
2594 vm_map_unlock(map);
2595 UVMHIST_LOG(maphist, "<- done, error=%d",error,0,0,0);
2596 return error;
2597 }
2598
2599 #undef MASK
2600
2601 /*
2602 * uvm_map_inherit: set inheritance code for range of addrs in map.
2603 *
2604 * => map must be unlocked
2605 * => note that the inherit code is used during a "fork". see fork
2606 * code for details.
2607 */
2608
2609 int
2610 uvm_map_inherit(struct vm_map *map, vaddr_t start, vaddr_t end,
2611 vm_inherit_t new_inheritance)
2612 {
2613 struct vm_map_entry *entry, *temp_entry;
2614 UVMHIST_FUNC("uvm_map_inherit"); UVMHIST_CALLED(maphist);
2615 UVMHIST_LOG(maphist,"(map=0x%x,start=0x%x,end=0x%x,new_inh=0x%x)",
2616 map, start, end, new_inheritance);
2617
2618 switch (new_inheritance) {
2619 case MAP_INHERIT_NONE:
2620 case MAP_INHERIT_COPY:
2621 case MAP_INHERIT_SHARE:
2622 break;
2623 default:
2624 UVMHIST_LOG(maphist,"<- done (INVALID ARG)",0,0,0,0);
2625 return EINVAL;
2626 }
2627
2628 vm_map_lock(map);
2629 VM_MAP_RANGE_CHECK(map, start, end);
2630 if (uvm_map_lookup_entry(map, start, &temp_entry)) {
2631 entry = temp_entry;
2632 UVM_MAP_CLIP_START(map, entry, start);
2633 } else {
2634 entry = temp_entry->next;
2635 }
2636 while ((entry != &map->header) && (entry->start < end)) {
2637 UVM_MAP_CLIP_END(map, entry, end);
2638 entry->inheritance = new_inheritance;
2639 entry = entry->next;
2640 }
2641 vm_map_unlock(map);
2642 UVMHIST_LOG(maphist,"<- done (OK)",0,0,0,0);
2643 return 0;
2644 }
2645
2646 /*
2647 * uvm_map_advice: set advice code for range of addrs in map.
2648 *
2649 * => map must be unlocked
2650 */
2651
2652 int
2653 uvm_map_advice(struct vm_map *map, vaddr_t start, vaddr_t end, int new_advice)
2654 {
2655 struct vm_map_entry *entry, *temp_entry;
2656 UVMHIST_FUNC("uvm_map_advice"); UVMHIST_CALLED(maphist);
2657 UVMHIST_LOG(maphist,"(map=0x%x,start=0x%x,end=0x%x,new_adv=0x%x)",
2658 map, start, end, new_advice);
2659
2660 vm_map_lock(map);
2661 VM_MAP_RANGE_CHECK(map, start, end);
2662 if (uvm_map_lookup_entry(map, start, &temp_entry)) {
2663 entry = temp_entry;
2664 UVM_MAP_CLIP_START(map, entry, start);
2665 } else {
2666 entry = temp_entry->next;
2667 }
2668
2669 /*
2670 * XXXJRT: disallow holes?
2671 */
2672
2673 while ((entry != &map->header) && (entry->start < end)) {
2674 UVM_MAP_CLIP_END(map, entry, end);
2675
2676 switch (new_advice) {
2677 case MADV_NORMAL:
2678 case MADV_RANDOM:
2679 case MADV_SEQUENTIAL:
2680 /* nothing special here */
2681 break;
2682
2683 default:
2684 vm_map_unlock(map);
2685 UVMHIST_LOG(maphist,"<- done (INVALID ARG)",0,0,0,0);
2686 return EINVAL;
2687 }
2688 entry->advice = new_advice;
2689 entry = entry->next;
2690 }
2691
2692 vm_map_unlock(map);
2693 UVMHIST_LOG(maphist,"<- done (OK)",0,0,0,0);
2694 return 0;
2695 }
2696
2697 /*
2698 * uvm_map_pageable: sets the pageability of a range in a map.
2699 *
2700 * => wires map entries. should not be used for transient page locking.
2701 * for that, use uvm_fault_wire()/uvm_fault_unwire() (see uvm_vslock()).
2702 * => regions sepcified as not pageable require lock-down (wired) memory
2703 * and page tables.
2704 * => map must never be read-locked
2705 * => if islocked is TRUE, map is already write-locked
2706 * => we always unlock the map, since we must downgrade to a read-lock
2707 * to call uvm_fault_wire()
2708 * => XXXCDC: check this and try and clean it up.
2709 */
2710
2711 int
2712 uvm_map_pageable(struct vm_map *map, vaddr_t start, vaddr_t end,
2713 boolean_t new_pageable, int lockflags)
2714 {
2715 struct vm_map_entry *entry, *start_entry, *failed_entry;
2716 int rv;
2717 #ifdef DIAGNOSTIC
2718 u_int timestamp_save;
2719 #endif
2720 UVMHIST_FUNC("uvm_map_pageable"); UVMHIST_CALLED(maphist);
2721 UVMHIST_LOG(maphist,"(map=0x%x,start=0x%x,end=0x%x,new_pageable=0x%x)",
2722 map, start, end, new_pageable);
2723 KASSERT(map->flags & VM_MAP_PAGEABLE);
2724
2725 if ((lockflags & UVM_LK_ENTER) == 0)
2726 vm_map_lock(map);
2727 VM_MAP_RANGE_CHECK(map, start, end);
2728
2729 /*
2730 * only one pageability change may take place at one time, since
2731 * uvm_fault_wire assumes it will be called only once for each
2732 * wiring/unwiring. therefore, we have to make sure we're actually
2733 * changing the pageability for the entire region. we do so before
2734 * making any changes.
2735 */
2736
2737 if (uvm_map_lookup_entry(map, start, &start_entry) == FALSE) {
2738 if ((lockflags & UVM_LK_EXIT) == 0)
2739 vm_map_unlock(map);
2740
2741 UVMHIST_LOG(maphist,"<- done (fault)",0,0,0,0);
2742 return EFAULT;
2743 }
2744 entry = start_entry;
2745
2746 /*
2747 * handle wiring and unwiring separately.
2748 */
2749
2750 if (new_pageable) { /* unwire */
2751 UVM_MAP_CLIP_START(map, entry, start);
2752
2753 /*
2754 * unwiring. first ensure that the range to be unwired is
2755 * really wired down and that there are no holes.
2756 */
2757
2758 while ((entry != &map->header) && (entry->start < end)) {
2759 if (entry->wired_count == 0 ||
2760 (entry->end < end &&
2761 (entry->next == &map->header ||
2762 entry->next->start > entry->end))) {
2763 if ((lockflags & UVM_LK_EXIT) == 0)
2764 vm_map_unlock(map);
2765 UVMHIST_LOG(maphist, "<- done (INVAL)",0,0,0,0);
2766 return EINVAL;
2767 }
2768 entry = entry->next;
2769 }
2770
2771 /*
2772 * POSIX 1003.1b - a single munlock call unlocks a region,
2773 * regardless of the number of mlock calls made on that
2774 * region.
2775 */
2776
2777 entry = start_entry;
2778 while ((entry != &map->header) && (entry->start < end)) {
2779 UVM_MAP_CLIP_END(map, entry, end);
2780 if (VM_MAPENT_ISWIRED(entry))
2781 uvm_map_entry_unwire(map, entry);
2782 entry = entry->next;
2783 }
2784 if ((lockflags & UVM_LK_EXIT) == 0)
2785 vm_map_unlock(map);
2786 UVMHIST_LOG(maphist,"<- done (OK UNWIRE)",0,0,0,0);
2787 return 0;
2788 }
2789
2790 /*
2791 * wire case: in two passes [XXXCDC: ugly block of code here]
2792 *
2793 * 1: holding the write lock, we create any anonymous maps that need
2794 * to be created. then we clip each map entry to the region to
2795 * be wired and increment its wiring count.
2796 *
2797 * 2: we downgrade to a read lock, and call uvm_fault_wire to fault
2798 * in the pages for any newly wired area (wired_count == 1).
2799 *
2800 * downgrading to a read lock for uvm_fault_wire avoids a possible
2801 * deadlock with another thread that may have faulted on one of
2802 * the pages to be wired (it would mark the page busy, blocking
2803 * us, then in turn block on the map lock that we hold). because
2804 * of problems in the recursive lock package, we cannot upgrade
2805 * to a write lock in vm_map_lookup. thus, any actions that
2806 * require the write lock must be done beforehand. because we
2807 * keep the read lock on the map, the copy-on-write status of the
2808 * entries we modify here cannot change.
2809 */
2810
2811 while ((entry != &map->header) && (entry->start < end)) {
2812 if (VM_MAPENT_ISWIRED(entry) == 0) { /* not already wired? */
2813
2814 /*
2815 * perform actions of vm_map_lookup that need the
2816 * write lock on the map: create an anonymous map
2817 * for a copy-on-write region, or an anonymous map
2818 * for a zero-fill region. (XXXCDC: submap case
2819 * ok?)
2820 */
2821
2822 if (!UVM_ET_ISSUBMAP(entry)) { /* not submap */
2823 if (UVM_ET_ISNEEDSCOPY(entry) &&
2824 ((entry->max_protection & VM_PROT_WRITE) ||
2825 (entry->object.uvm_obj == NULL))) {
2826 amap_copy(map, entry, M_WAITOK, TRUE,
2827 start, end);
2828 /* XXXCDC: wait OK? */
2829 }
2830 }
2831 }
2832 UVM_MAP_CLIP_START(map, entry, start);
2833 UVM_MAP_CLIP_END(map, entry, end);
2834 entry->wired_count++;
2835
2836 /*
2837 * Check for holes
2838 */
2839
2840 if (entry->protection == VM_PROT_NONE ||
2841 (entry->end < end &&
2842 (entry->next == &map->header ||
2843 entry->next->start > entry->end))) {
2844
2845 /*
2846 * found one. amap creation actions do not need to
2847 * be undone, but the wired counts need to be restored.
2848 */
2849
2850 while (entry != &map->header && entry->end > start) {
2851 entry->wired_count--;
2852 entry = entry->prev;
2853 }
2854 if ((lockflags & UVM_LK_EXIT) == 0)
2855 vm_map_unlock(map);
2856 UVMHIST_LOG(maphist,"<- done (INVALID WIRE)",0,0,0,0);
2857 return EINVAL;
2858 }
2859 entry = entry->next;
2860 }
2861
2862 /*
2863 * Pass 2.
2864 */
2865
2866 #ifdef DIAGNOSTIC
2867 timestamp_save = map->timestamp;
2868 #endif
2869 vm_map_busy(map);
2870 vm_map_downgrade(map);
2871
2872 rv = 0;
2873 entry = start_entry;
2874 while (entry != &map->header && entry->start < end) {
2875 if (entry->wired_count == 1) {
2876 rv = uvm_fault_wire(map, entry->start, entry->end,
2877 VM_FAULT_WIREMAX, entry->max_protection);
2878 if (rv) {
2879
2880 /*
2881 * wiring failed. break out of the loop.
2882 * we'll clean up the map below, once we
2883 * have a write lock again.
2884 */
2885
2886 break;
2887 }
2888 }
2889 entry = entry->next;
2890 }
2891
2892 if (rv) { /* failed? */
2893
2894 /*
2895 * Get back to an exclusive (write) lock.
2896 */
2897
2898 vm_map_upgrade(map);
2899 vm_map_unbusy(map);
2900
2901 #ifdef DIAGNOSTIC
2902 if (timestamp_save != map->timestamp)
2903 panic("uvm_map_pageable: stale map");
2904 #endif
2905
2906 /*
2907 * first drop the wiring count on all the entries
2908 * which haven't actually been wired yet.
2909 */
2910
2911 failed_entry = entry;
2912 while (entry != &map->header && entry->start < end) {
2913 entry->wired_count--;
2914 entry = entry->next;
2915 }
2916
2917 /*
2918 * now, unwire all the entries that were successfully
2919 * wired above.
2920 */
2921
2922 entry = start_entry;
2923 while (entry != failed_entry) {
2924 entry->wired_count--;
2925 if (VM_MAPENT_ISWIRED(entry) == 0)
2926 uvm_map_entry_unwire(map, entry);
2927 entry = entry->next;
2928 }
2929 if ((lockflags & UVM_LK_EXIT) == 0)
2930 vm_map_unlock(map);
2931 UVMHIST_LOG(maphist, "<- done (RV=%d)", rv,0,0,0);
2932 return (rv);
2933 }
2934
2935 /* We are holding a read lock here. */
2936 if ((lockflags & UVM_LK_EXIT) == 0) {
2937 vm_map_unbusy(map);
2938 vm_map_unlock_read(map);
2939 } else {
2940
2941 /*
2942 * Get back to an exclusive (write) lock.
2943 */
2944
2945 vm_map_upgrade(map);
2946 vm_map_unbusy(map);
2947 }
2948
2949 UVMHIST_LOG(maphist,"<- done (OK WIRE)",0,0,0,0);
2950 return 0;
2951 }
2952
2953 /*
2954 * uvm_map_pageable_all: special case of uvm_map_pageable - affects
2955 * all mapped regions.
2956 *
2957 * => map must not be locked.
2958 * => if no flags are specified, all regions are unwired.
2959 * => XXXJRT: has some of the same problems as uvm_map_pageable() above.
2960 */
2961
2962 int
2963 uvm_map_pageable_all(struct vm_map *map, int flags, vsize_t limit)
2964 {
2965 struct vm_map_entry *entry, *failed_entry;
2966 vsize_t size;
2967 int rv;
2968 #ifdef DIAGNOSTIC
2969 u_int timestamp_save;
2970 #endif
2971 UVMHIST_FUNC("uvm_map_pageable_all"); UVMHIST_CALLED(maphist);
2972 UVMHIST_LOG(maphist,"(map=0x%x,flags=0x%x)", map, flags, 0, 0);
2973
2974 KASSERT(map->flags & VM_MAP_PAGEABLE);
2975
2976 vm_map_lock(map);
2977
2978 /*
2979 * handle wiring and unwiring separately.
2980 */
2981
2982 if (flags == 0) { /* unwire */
2983
2984 /*
2985 * POSIX 1003.1b -- munlockall unlocks all regions,
2986 * regardless of how many times mlockall has been called.
2987 */
2988
2989 for (entry = map->header.next; entry != &map->header;
2990 entry = entry->next) {
2991 if (VM_MAPENT_ISWIRED(entry))
2992 uvm_map_entry_unwire(map, entry);
2993 }
2994 vm_map_modflags(map, 0, VM_MAP_WIREFUTURE);
2995 vm_map_unlock(map);
2996 UVMHIST_LOG(maphist,"<- done (OK UNWIRE)",0,0,0,0);
2997 return 0;
2998 }
2999
3000 if (flags & MCL_FUTURE) {
3001
3002 /*
3003 * must wire all future mappings; remember this.
3004 */
3005
3006 vm_map_modflags(map, VM_MAP_WIREFUTURE, 0);
3007 }
3008
3009 if ((flags & MCL_CURRENT) == 0) {
3010
3011 /*
3012 * no more work to do!
3013 */
3014
3015 UVMHIST_LOG(maphist,"<- done (OK no wire)",0,0,0,0);
3016 vm_map_unlock(map);
3017 return 0;
3018 }
3019
3020 /*
3021 * wire case: in three passes [XXXCDC: ugly block of code here]
3022 *
3023 * 1: holding the write lock, count all pages mapped by non-wired
3024 * entries. if this would cause us to go over our limit, we fail.
3025 *
3026 * 2: still holding the write lock, we create any anonymous maps that
3027 * need to be created. then we increment its wiring count.
3028 *
3029 * 3: we downgrade to a read lock, and call uvm_fault_wire to fault
3030 * in the pages for any newly wired area (wired_count == 1).
3031 *
3032 * downgrading to a read lock for uvm_fault_wire avoids a possible
3033 * deadlock with another thread that may have faulted on one of
3034 * the pages to be wired (it would mark the page busy, blocking
3035 * us, then in turn block on the map lock that we hold). because
3036 * of problems in the recursive lock package, we cannot upgrade
3037 * to a write lock in vm_map_lookup. thus, any actions that
3038 * require the write lock must be done beforehand. because we
3039 * keep the read lock on the map, the copy-on-write status of the
3040 * entries we modify here cannot change.
3041 */
3042
3043 for (size = 0, entry = map->header.next; entry != &map->header;
3044 entry = entry->next) {
3045 if (entry->protection != VM_PROT_NONE &&
3046 VM_MAPENT_ISWIRED(entry) == 0) { /* not already wired? */
3047 size += entry->end - entry->start;
3048 }
3049 }
3050
3051 if (atop(size) + uvmexp.wired > uvmexp.wiredmax) {
3052 vm_map_unlock(map);
3053 return ENOMEM;
3054 }
3055
3056 /* XXX non-pmap_wired_count case must be handled by caller */
3057 #ifdef pmap_wired_count
3058 if (limit != 0 &&
3059 (size + ptoa(pmap_wired_count(vm_map_pmap(map))) > limit)) {
3060 vm_map_unlock(map);
3061 return ENOMEM;
3062 }
3063 #endif
3064
3065 /*
3066 * Pass 2.
3067 */
3068
3069 for (entry = map->header.next; entry != &map->header;
3070 entry = entry->next) {
3071 if (entry->protection == VM_PROT_NONE)
3072 continue;
3073 if (VM_MAPENT_ISWIRED(entry) == 0) { /* not already wired? */
3074
3075 /*
3076 * perform actions of vm_map_lookup that need the
3077 * write lock on the map: create an anonymous map
3078 * for a copy-on-write region, or an anonymous map
3079 * for a zero-fill region. (XXXCDC: submap case
3080 * ok?)
3081 */
3082
3083 if (!UVM_ET_ISSUBMAP(entry)) { /* not submap */
3084 if (UVM_ET_ISNEEDSCOPY(entry) &&
3085 ((entry->max_protection & VM_PROT_WRITE) ||
3086 (entry->object.uvm_obj == NULL))) {
3087 amap_copy(map, entry, M_WAITOK, TRUE,
3088 entry->start, entry->end);
3089 /* XXXCDC: wait OK? */
3090 }
3091 }
3092 }
3093 entry->wired_count++;
3094 }
3095
3096 /*
3097 * Pass 3.
3098 */
3099
3100 #ifdef DIAGNOSTIC
3101 timestamp_save = map->timestamp;
3102 #endif
3103 vm_map_busy(map);
3104 vm_map_downgrade(map);
3105
3106 rv = 0;
3107 for (entry = map->header.next; entry != &map->header;
3108 entry = entry->next) {
3109 if (entry->wired_count == 1) {
3110 rv = uvm_fault_wire(map, entry->start, entry->end,
3111 VM_FAULT_WIREMAX, entry->max_protection);
3112 if (rv) {
3113
3114 /*
3115 * wiring failed. break out of the loop.
3116 * we'll clean up the map below, once we
3117 * have a write lock again.
3118 */
3119
3120 break;
3121 }
3122 }
3123 }
3124
3125 if (rv) {
3126
3127 /*
3128 * Get back an exclusive (write) lock.
3129 */
3130
3131 vm_map_upgrade(map);
3132 vm_map_unbusy(map);
3133
3134 #ifdef DIAGNOSTIC
3135 if (timestamp_save != map->timestamp)
3136 panic("uvm_map_pageable_all: stale map");
3137 #endif
3138
3139 /*
3140 * first drop the wiring count on all the entries
3141 * which haven't actually been wired yet.
3142 *
3143 * Skip VM_PROT_NONE entries like we did above.
3144 */
3145
3146 failed_entry = entry;
3147 for (/* nothing */; entry != &map->header;
3148 entry = entry->next) {
3149 if (entry->protection == VM_PROT_NONE)
3150 continue;
3151 entry->wired_count--;
3152 }
3153
3154 /*
3155 * now, unwire all the entries that were successfully
3156 * wired above.
3157 *
3158 * Skip VM_PROT_NONE entries like we did above.
3159 */
3160
3161 for (entry = map->header.next; entry != failed_entry;
3162 entry = entry->next) {
3163 if (entry->protection == VM_PROT_NONE)
3164 continue;
3165 entry->wired_count--;
3166 if (VM_MAPENT_ISWIRED(entry))
3167 uvm_map_entry_unwire(map, entry);
3168 }
3169 vm_map_unlock(map);
3170 UVMHIST_LOG(maphist,"<- done (RV=%d)", rv,0,0,0);
3171 return (rv);
3172 }
3173
3174 /* We are holding a read lock here. */
3175 vm_map_unbusy(map);
3176 vm_map_unlock_read(map);
3177
3178 UVMHIST_LOG(maphist,"<- done (OK WIRE)",0,0,0,0);
3179 return 0;
3180 }
3181
3182 /*
3183 * uvm_map_clean: clean out a map range
3184 *
3185 * => valid flags:
3186 * if (flags & PGO_CLEANIT): dirty pages are cleaned first
3187 * if (flags & PGO_SYNCIO): dirty pages are written synchronously
3188 * if (flags & PGO_DEACTIVATE): any cached pages are deactivated after clean
3189 * if (flags & PGO_FREE): any cached pages are freed after clean
3190 * => returns an error if any part of the specified range isn't mapped
3191 * => never a need to flush amap layer since the anonymous memory has
3192 * no permanent home, but may deactivate pages there
3193 * => called from sys_msync() and sys_madvise()
3194 * => caller must not write-lock map (read OK).
3195 * => we may sleep while cleaning if SYNCIO [with map read-locked]
3196 */
3197
3198 int
3199 uvm_map_clean(struct vm_map *map, vaddr_t start, vaddr_t end, int flags)
3200 {
3201 struct vm_map_entry *current, *entry;
3202 struct uvm_object *uobj;
3203 struct vm_amap *amap;
3204 struct vm_anon *anon;
3205 struct vm_page *pg;
3206 vaddr_t offset;
3207 vsize_t size;
3208 int error, refs;
3209 UVMHIST_FUNC("uvm_map_clean"); UVMHIST_CALLED(maphist);
3210
3211 UVMHIST_LOG(maphist,"(map=0x%x,start=0x%x,end=0x%x,flags=0x%x)",
3212 map, start, end, flags);
3213 KASSERT((flags & (PGO_FREE|PGO_DEACTIVATE)) !=
3214 (PGO_FREE|PGO_DEACTIVATE));
3215
3216 vm_map_lock_read(map);
3217 VM_MAP_RANGE_CHECK(map, start, end);
3218 if (uvm_map_lookup_entry(map, start, &entry) == FALSE) {
3219 vm_map_unlock_read(map);
3220 return EFAULT;
3221 }
3222
3223 /*
3224 * Make a first pass to check for holes.
3225 */
3226
3227 for (current = entry; current->start < end; current = current->next) {
3228 if (UVM_ET_ISSUBMAP(current)) {
3229 vm_map_unlock_read(map);
3230 return EINVAL;
3231 }
3232 if (end <= current->end) {
3233 break;
3234 }
3235 if (current->end != current->next->start) {
3236 vm_map_unlock_read(map);
3237 return EFAULT;
3238 }
3239 }
3240
3241 error = 0;
3242 for (current = entry; start < end; current = current->next) {
3243 amap = current->aref.ar_amap; /* top layer */
3244 uobj = current->object.uvm_obj; /* bottom layer */
3245 KASSERT(start >= current->start);
3246
3247 /*
3248 * No amap cleaning necessary if:
3249 *
3250 * (1) There's no amap.
3251 *
3252 * (2) We're not deactivating or freeing pages.
3253 */
3254
3255 if (amap == NULL || (flags & (PGO_DEACTIVATE|PGO_FREE)) == 0)
3256 goto flush_object;
3257
3258 amap_lock(amap);
3259 offset = start - current->start;
3260 size = MIN(end, current->end) - start;
3261 for ( ; size != 0; size -= PAGE_SIZE, offset += PAGE_SIZE) {
3262 anon = amap_lookup(¤t->aref, offset);
3263 if (anon == NULL)
3264 continue;
3265
3266 simple_lock(&anon->an_lock);
3267 pg = anon->u.an_page;
3268 if (pg == NULL) {
3269 simple_unlock(&anon->an_lock);
3270 continue;
3271 }
3272
3273 switch (flags & (PGO_CLEANIT|PGO_FREE|PGO_DEACTIVATE)) {
3274
3275 /*
3276 * In these first 3 cases, we just deactivate the page.
3277 */
3278
3279 case PGO_CLEANIT|PGO_FREE:
3280 case PGO_CLEANIT|PGO_DEACTIVATE:
3281 case PGO_DEACTIVATE:
3282 deactivate_it:
3283 /*
3284 * skip the page if it's loaned or wired,
3285 * since it shouldn't be on a paging queue
3286 * at all in these cases.
3287 */
3288
3289 uvm_lock_pageq();
3290 if (pg->loan_count != 0 ||
3291 pg->wire_count != 0) {
3292 uvm_unlock_pageq();
3293 simple_unlock(&anon->an_lock);
3294 continue;
3295 }
3296 KASSERT(pg->uanon == anon);
3297 pmap_clear_reference(pg);
3298 uvm_pagedeactivate(pg);
3299 uvm_unlock_pageq();
3300 simple_unlock(&anon->an_lock);
3301 continue;
3302
3303 case PGO_FREE:
3304
3305 /*
3306 * If there are multiple references to
3307 * the amap, just deactivate the page.
3308 */
3309
3310 if (amap_refs(amap) > 1)
3311 goto deactivate_it;
3312
3313 /* skip the page if it's wired */
3314 if (pg->wire_count != 0) {
3315 simple_unlock(&anon->an_lock);
3316 continue;
3317 }
3318 amap_unadd(¤t->aref, offset);
3319 refs = --anon->an_ref;
3320 simple_unlock(&anon->an_lock);
3321 if (refs == 0)
3322 uvm_anfree(anon);
3323 continue;
3324 }
3325 }
3326 amap_unlock(amap);
3327
3328 flush_object:
3329 /*
3330 * flush pages if we've got a valid backing object.
3331 * note that we must always clean object pages before
3332 * freeing them since otherwise we could reveal stale
3333 * data from files.
3334 */
3335
3336 offset = current->offset + (start - current->start);
3337 size = MIN(end, current->end) - start;
3338 if (uobj != NULL) {
3339 simple_lock(&uobj->vmobjlock);
3340 if (uobj->pgops->pgo_put != NULL)
3341 error = (uobj->pgops->pgo_put)(uobj, offset,
3342 offset + size, flags | PGO_CLEANIT);
3343 else
3344 error = 0;
3345 }
3346 start += size;
3347 }
3348 vm_map_unlock_read(map);
3349 return (error);
3350 }
3351
3352
3353 /*
3354 * uvm_map_checkprot: check protection in map
3355 *
3356 * => must allow specified protection in a fully allocated region.
3357 * => map must be read or write locked by caller.
3358 */
3359
3360 boolean_t
3361 uvm_map_checkprot(struct vm_map *map, vaddr_t start, vaddr_t end,
3362 vm_prot_t protection)
3363 {
3364 struct vm_map_entry *entry;
3365 struct vm_map_entry *tmp_entry;
3366
3367 if (!uvm_map_lookup_entry(map, start, &tmp_entry)) {
3368 return (FALSE);
3369 }
3370 entry = tmp_entry;
3371 while (start < end) {
3372 if (entry == &map->header) {
3373 return (FALSE);
3374 }
3375
3376 /*
3377 * no holes allowed
3378 */
3379
3380 if (start < entry->start) {
3381 return (FALSE);
3382 }
3383
3384 /*
3385 * check protection associated with entry
3386 */
3387
3388 if ((entry->protection & protection) != protection) {
3389 return (FALSE);
3390 }
3391 start = entry->end;
3392 entry = entry->next;
3393 }
3394 return (TRUE);
3395 }
3396
3397 /*
3398 * uvmspace_alloc: allocate a vmspace structure.
3399 *
3400 * - structure includes vm_map and pmap
3401 * - XXX: no locking on this structure
3402 * - refcnt set to 1, rest must be init'd by caller
3403 */
3404 struct vmspace *
3405 uvmspace_alloc(vaddr_t min, vaddr_t max)
3406 {
3407 struct vmspace *vm;
3408 UVMHIST_FUNC("uvmspace_alloc"); UVMHIST_CALLED(maphist);
3409
3410 vm = pool_get(&uvm_vmspace_pool, PR_WAITOK);
3411 uvmspace_init(vm, NULL, min, max);
3412 UVMHIST_LOG(maphist,"<- done (vm=0x%x)", vm,0,0,0);
3413 return (vm);
3414 }
3415
3416 /*
3417 * uvmspace_init: initialize a vmspace structure.
3418 *
3419 * - XXX: no locking on this structure
3420 * - refcnt set to 1, rest must be init'd by caller
3421 */
3422 void
3423 uvmspace_init(struct vmspace *vm, struct pmap *pmap, vaddr_t min, vaddr_t max)
3424 {
3425 UVMHIST_FUNC("uvmspace_init"); UVMHIST_CALLED(maphist);
3426
3427 memset(vm, 0, sizeof(*vm));
3428 uvm_map_setup(&vm->vm_map, min, max, VM_MAP_PAGEABLE
3429 #ifdef __USING_TOPDOWN_VM
3430 | VM_MAP_TOPDOWN
3431 #endif
3432 );
3433 if (pmap)
3434 pmap_reference(pmap);
3435 else
3436 pmap = pmap_create();
3437 vm->vm_map.pmap = pmap;
3438 vm->vm_refcnt = 1;
3439 UVMHIST_LOG(maphist,"<- done",0,0,0,0);
3440 }
3441
3442 /*
3443 * uvmspace_share: share a vmspace between two proceses
3444 *
3445 * - XXX: no locking on vmspace
3446 * - used for vfork, threads(?)
3447 */
3448
3449 void
3450 uvmspace_share(struct proc *p1, struct proc *p2)
3451 {
3452
3453 p2->p_vmspace = p1->p_vmspace;
3454 p1->p_vmspace->vm_refcnt++;
3455 }
3456
3457 /*
3458 * uvmspace_unshare: ensure that process "p" has its own, unshared, vmspace
3459 *
3460 * - XXX: no locking on vmspace
3461 */
3462
3463 void
3464 uvmspace_unshare(struct lwp *l)
3465 {
3466 struct proc *p = l->l_proc;
3467 struct vmspace *nvm, *ovm = p->p_vmspace;
3468
3469 if (ovm->vm_refcnt == 1)
3470 /* nothing to do: vmspace isn't shared in the first place */
3471 return;
3472
3473 /* make a new vmspace, still holding old one */
3474 nvm = uvmspace_fork(ovm);
3475
3476 pmap_deactivate(l); /* unbind old vmspace */
3477 p->p_vmspace = nvm;
3478 pmap_activate(l); /* switch to new vmspace */
3479
3480 uvmspace_free(ovm); /* drop reference to old vmspace */
3481 }
3482
3483 /*
3484 * uvmspace_exec: the process wants to exec a new program
3485 *
3486 * - XXX: no locking on vmspace
3487 */
3488
3489 void
3490 uvmspace_exec(struct lwp *l, vaddr_t start, vaddr_t end)
3491 {
3492 struct proc *p = l->l_proc;
3493 struct vmspace *nvm, *ovm = p->p_vmspace;
3494 struct vm_map *map = &ovm->vm_map;
3495
3496 #ifdef __sparc__
3497 /* XXX cgd 960926: the sparc #ifdef should be a MD hook */
3498 kill_user_windows(l); /* before stack addresses go away */
3499 #endif
3500
3501 /*
3502 * see if more than one process is using this vmspace...
3503 */
3504
3505 if (ovm->vm_refcnt == 1) {
3506
3507 /*
3508 * if p is the only process using its vmspace then we can safely
3509 * recycle that vmspace for the program that is being exec'd.
3510 */
3511
3512 #ifdef SYSVSHM
3513 /*
3514 * SYSV SHM semantics require us to kill all segments on an exec
3515 */
3516
3517 if (ovm->vm_shm)
3518 shmexit(ovm);
3519 #endif
3520
3521 /*
3522 * POSIX 1003.1b -- "lock future mappings" is revoked
3523 * when a process execs another program image.
3524 */
3525
3526 vm_map_modflags(map, 0, VM_MAP_WIREFUTURE);
3527
3528 /*
3529 * now unmap the old program
3530 */
3531
3532 pmap_remove_all(map->pmap);
3533 uvm_unmap(map, map->min_offset, map->max_offset);
3534 KASSERT(map->header.prev == &map->header);
3535 KASSERT(map->nentries == 0);
3536
3537 /*
3538 * resize the map
3539 */
3540
3541 map->min_offset = start;
3542 map->max_offset = end;
3543 } else {
3544
3545 /*
3546 * p's vmspace is being shared, so we can't reuse it for p since
3547 * it is still being used for others. allocate a new vmspace
3548 * for p
3549 */
3550
3551 nvm = uvmspace_alloc(start, end);
3552
3553 /*
3554 * install new vmspace and drop our ref to the old one.
3555 */
3556
3557 pmap_deactivate(l);
3558 p->p_vmspace = nvm;
3559 pmap_activate(l);
3560
3561 uvmspace_free(ovm);
3562 }
3563 }
3564
3565 /*
3566 * uvmspace_free: free a vmspace data structure
3567 *
3568 * - XXX: no locking on vmspace
3569 */
3570
3571 void
3572 uvmspace_free(struct vmspace *vm)
3573 {
3574 struct vm_map_entry *dead_entries;
3575 struct vm_map *map;
3576 UVMHIST_FUNC("uvmspace_free"); UVMHIST_CALLED(maphist);
3577
3578 UVMHIST_LOG(maphist,"(vm=0x%x) ref=%d", vm, vm->vm_refcnt,0,0);
3579 if (--vm->vm_refcnt > 0) {
3580 return;
3581 }
3582
3583 /*
3584 * at this point, there should be no other references to the map.
3585 * delete all of the mappings, then destroy the pmap.
3586 */
3587
3588 map = &vm->vm_map;
3589 map->flags |= VM_MAP_DYING;
3590 pmap_remove_all(map->pmap);
3591 #ifdef SYSVSHM
3592 /* Get rid of any SYSV shared memory segments. */
3593 if (vm->vm_shm != NULL)
3594 shmexit(vm);
3595 #endif
3596 if (map->nentries) {
3597 uvm_unmap_remove(map, map->min_offset, map->max_offset,
3598 &dead_entries);
3599 if (dead_entries != NULL)
3600 uvm_unmap_detach(dead_entries, 0);
3601 }
3602 KASSERT(map->nentries == 0);
3603 KASSERT(map->size == 0);
3604 pmap_destroy(map->pmap);
3605 pool_put(&uvm_vmspace_pool, vm);
3606 }
3607
3608 /*
3609 * F O R K - m a i n e n t r y p o i n t
3610 */
3611 /*
3612 * uvmspace_fork: fork a process' main map
3613 *
3614 * => create a new vmspace for child process from parent.
3615 * => parent's map must not be locked.
3616 */
3617
3618 struct vmspace *
3619 uvmspace_fork(struct vmspace *vm1)
3620 {
3621 struct vmspace *vm2;
3622 struct vm_map *old_map = &vm1->vm_map;
3623 struct vm_map *new_map;
3624 struct vm_map_entry *old_entry;
3625 struct vm_map_entry *new_entry;
3626 UVMHIST_FUNC("uvmspace_fork"); UVMHIST_CALLED(maphist);
3627
3628 vm_map_lock(old_map);
3629
3630 vm2 = uvmspace_alloc(old_map->min_offset, old_map->max_offset);
3631 memcpy(&vm2->vm_startcopy, &vm1->vm_startcopy,
3632 (caddr_t) (vm1 + 1) - (caddr_t) &vm1->vm_startcopy);
3633 new_map = &vm2->vm_map; /* XXX */
3634
3635 old_entry = old_map->header.next;
3636
3637 /*
3638 * go entry-by-entry
3639 */
3640
3641 while (old_entry != &old_map->header) {
3642
3643 /*
3644 * first, some sanity checks on the old entry
3645 */
3646
3647 KASSERT(!UVM_ET_ISSUBMAP(old_entry));
3648 KASSERT(UVM_ET_ISCOPYONWRITE(old_entry) ||
3649 !UVM_ET_ISNEEDSCOPY(old_entry));
3650
3651 switch (old_entry->inheritance) {
3652 case MAP_INHERIT_NONE:
3653
3654 /*
3655 * drop the mapping
3656 */
3657
3658 break;
3659
3660 case MAP_INHERIT_SHARE:
3661
3662 /*
3663 * share the mapping: this means we want the old and
3664 * new entries to share amaps and backing objects.
3665 */
3666 /*
3667 * if the old_entry needs a new amap (due to prev fork)
3668 * then we need to allocate it now so that we have
3669 * something we own to share with the new_entry. [in
3670 * other words, we need to clear needs_copy]
3671 */
3672
3673 if (UVM_ET_ISNEEDSCOPY(old_entry)) {
3674 /* get our own amap, clears needs_copy */
3675 amap_copy(old_map, old_entry, M_WAITOK, FALSE,
3676 0, 0);
3677 /* XXXCDC: WAITOK??? */
3678 }
3679
3680 new_entry = uvm_mapent_alloc(new_map, 0);
3681 /* old_entry -> new_entry */
3682 uvm_mapent_copy(old_entry, new_entry);
3683
3684 /* new pmap has nothing wired in it */
3685 new_entry->wired_count = 0;
3686
3687 /*
3688 * gain reference to object backing the map (can't
3689 * be a submap, already checked this case).
3690 */
3691
3692 if (new_entry->aref.ar_amap)
3693 uvm_map_reference_amap(new_entry, AMAP_SHARED);
3694
3695 if (new_entry->object.uvm_obj &&
3696 new_entry->object.uvm_obj->pgops->pgo_reference)
3697 new_entry->object.uvm_obj->
3698 pgops->pgo_reference(
3699 new_entry->object.uvm_obj);
3700
3701 /* insert entry at end of new_map's entry list */
3702 uvm_map_entry_link(new_map, new_map->header.prev,
3703 new_entry);
3704
3705 break;
3706
3707 case MAP_INHERIT_COPY:
3708
3709 /*
3710 * copy-on-write the mapping (using mmap's
3711 * MAP_PRIVATE semantics)
3712 *
3713 * allocate new_entry, adjust reference counts.
3714 * (note that new references are read-only).
3715 */
3716
3717 new_entry = uvm_mapent_alloc(new_map, 0);
3718 /* old_entry -> new_entry */
3719 uvm_mapent_copy(old_entry, new_entry);
3720
3721 if (new_entry->aref.ar_amap)
3722 uvm_map_reference_amap(new_entry, 0);
3723
3724 if (new_entry->object.uvm_obj &&
3725 new_entry->object.uvm_obj->pgops->pgo_reference)
3726 new_entry->object.uvm_obj->pgops->pgo_reference
3727 (new_entry->object.uvm_obj);
3728
3729 /* new pmap has nothing wired in it */
3730 new_entry->wired_count = 0;
3731
3732 new_entry->etype |=
3733 (UVM_ET_COPYONWRITE|UVM_ET_NEEDSCOPY);
3734 uvm_map_entry_link(new_map, new_map->header.prev,
3735 new_entry);
3736
3737 /*
3738 * the new entry will need an amap. it will either
3739 * need to be copied from the old entry or created
3740 * from scratch (if the old entry does not have an
3741 * amap). can we defer this process until later
3742 * (by setting "needs_copy") or do we need to copy
3743 * the amap now?
3744 *
3745 * we must copy the amap now if any of the following
3746 * conditions hold:
3747 * 1. the old entry has an amap and that amap is
3748 * being shared. this means that the old (parent)
3749 * process is sharing the amap with another
3750 * process. if we do not clear needs_copy here
3751 * we will end up in a situation where both the
3752 * parent and child process are refering to the
3753 * same amap with "needs_copy" set. if the
3754 * parent write-faults, the fault routine will
3755 * clear "needs_copy" in the parent by allocating
3756 * a new amap. this is wrong because the
3757 * parent is supposed to be sharing the old amap
3758 * and the new amap will break that.
3759 *
3760 * 2. if the old entry has an amap and a non-zero
3761 * wire count then we are going to have to call
3762 * amap_cow_now to avoid page faults in the
3763 * parent process. since amap_cow_now requires
3764 * "needs_copy" to be clear we might as well
3765 * clear it here as well.
3766 *
3767 */
3768
3769 if (old_entry->aref.ar_amap != NULL) {
3770 if ((amap_flags(old_entry->aref.ar_amap) &
3771 AMAP_SHARED) != 0 ||
3772 VM_MAPENT_ISWIRED(old_entry)) {
3773
3774 amap_copy(new_map, new_entry, M_WAITOK,
3775 FALSE, 0, 0);
3776 /* XXXCDC: M_WAITOK ... ok? */
3777 }
3778 }
3779
3780 /*
3781 * if the parent's entry is wired down, then the
3782 * parent process does not want page faults on
3783 * access to that memory. this means that we
3784 * cannot do copy-on-write because we can't write
3785 * protect the old entry. in this case we
3786 * resolve all copy-on-write faults now, using
3787 * amap_cow_now. note that we have already
3788 * allocated any needed amap (above).
3789 */
3790
3791 if (VM_MAPENT_ISWIRED(old_entry)) {
3792
3793 /*
3794 * resolve all copy-on-write faults now
3795 * (note that there is nothing to do if
3796 * the old mapping does not have an amap).
3797 */
3798 if (old_entry->aref.ar_amap)
3799 amap_cow_now(new_map, new_entry);
3800
3801 } else {
3802
3803 /*
3804 * setup mappings to trigger copy-on-write faults
3805 * we must write-protect the parent if it has
3806 * an amap and it is not already "needs_copy"...
3807 * if it is already "needs_copy" then the parent
3808 * has already been write-protected by a previous
3809 * fork operation.
3810 */
3811
3812 if (old_entry->aref.ar_amap &&
3813 !UVM_ET_ISNEEDSCOPY(old_entry)) {
3814 if (old_entry->max_protection & VM_PROT_WRITE) {
3815 pmap_protect(old_map->pmap,
3816 old_entry->start,
3817 old_entry->end,
3818 old_entry->protection &
3819 ~VM_PROT_WRITE);
3820 pmap_update(old_map->pmap);
3821 }
3822 old_entry->etype |= UVM_ET_NEEDSCOPY;
3823 }
3824 }
3825 break;
3826 } /* end of switch statement */
3827 old_entry = old_entry->next;
3828 }
3829
3830 new_map->size = old_map->size;
3831 vm_map_unlock(old_map);
3832
3833 #ifdef SYSVSHM
3834 if (vm1->vm_shm)
3835 shmfork(vm1, vm2);
3836 #endif
3837
3838 #ifdef PMAP_FORK
3839 pmap_fork(vm1->vm_map.pmap, vm2->vm_map.pmap);
3840 #endif
3841
3842 UVMHIST_LOG(maphist,"<- done",0,0,0,0);
3843 return (vm2);
3844 }
3845
3846
3847 #if defined(DDB)
3848
3849 /*
3850 * DDB hooks
3851 */
3852
3853 /*
3854 * uvm_map_printit: actually prints the map
3855 */
3856
3857 void
3858 uvm_map_printit(struct vm_map *map, boolean_t full,
3859 void (*pr)(const char *, ...))
3860 {
3861 struct vm_map_entry *entry;
3862
3863 (*pr)("MAP %p: [0x%lx->0x%lx]\n", map, map->min_offset,map->max_offset);
3864 (*pr)("\t#ent=%d, sz=%d, ref=%d, version=%d, flags=0x%x\n",
3865 map->nentries, map->size, map->ref_count, map->timestamp,
3866 map->flags);
3867 (*pr)("\tpmap=%p(resident=%d)\n", map->pmap,
3868 pmap_resident_count(map->pmap));
3869 if (!full)
3870 return;
3871 for (entry = map->header.next; entry != &map->header;
3872 entry = entry->next) {
3873 (*pr)(" - %p: 0x%lx->0x%lx: obj=%p/0x%llx, amap=%p/%d\n",
3874 entry, entry->start, entry->end, entry->object.uvm_obj,
3875 (long long)entry->offset, entry->aref.ar_amap,
3876 entry->aref.ar_pageoff);
3877 (*pr)(
3878 "\tsubmap=%c, cow=%c, nc=%c, prot(max)=%d/%d, inh=%d, "
3879 "wc=%d, adv=%d\n",
3880 (entry->etype & UVM_ET_SUBMAP) ? 'T' : 'F',
3881 (entry->etype & UVM_ET_COPYONWRITE) ? 'T' : 'F',
3882 (entry->etype & UVM_ET_NEEDSCOPY) ? 'T' : 'F',
3883 entry->protection, entry->max_protection,
3884 entry->inheritance, entry->wired_count, entry->advice);
3885 }
3886 }
3887
3888 /*
3889 * uvm_object_printit: actually prints the object
3890 */
3891
3892 void
3893 uvm_object_printit(struct uvm_object *uobj, boolean_t full,
3894 void (*pr)(const char *, ...))
3895 {
3896 struct vm_page *pg;
3897 int cnt = 0;
3898
3899 (*pr)("OBJECT %p: locked=%d, pgops=%p, npages=%d, ",
3900 uobj, uobj->vmobjlock.lock_data, uobj->pgops, uobj->uo_npages);
3901 if (UVM_OBJ_IS_KERN_OBJECT(uobj))
3902 (*pr)("refs=<SYSTEM>\n");
3903 else
3904 (*pr)("refs=%d\n", uobj->uo_refs);
3905
3906 if (!full) {
3907 return;
3908 }
3909 (*pr)(" PAGES <pg,offset>:\n ");
3910 TAILQ_FOREACH(pg, &uobj->memq, listq) {
3911 cnt++;
3912 (*pr)("<%p,0x%llx> ", pg, (long long)pg->offset);
3913 if ((cnt % 3) == 0) {
3914 (*pr)("\n ");
3915 }
3916 }
3917 if ((cnt % 3) != 0) {
3918 (*pr)("\n");
3919 }
3920 }
3921
3922 /*
3923 * uvm_page_printit: actually print the page
3924 */
3925
3926 static const char page_flagbits[] =
3927 "\20\1BUSY\2WANTED\3TABLED\4CLEAN\5PAGEOUT\6RELEASED\7FAKE\10RDONLY"
3928 "\11ZERO\15PAGER1";
3929 static const char page_pqflagbits[] =
3930 "\20\1FREE\2INACTIVE\3ACTIVE\5ANON\6AOBJ";
3931
3932 void
3933 uvm_page_printit(struct vm_page *pg, boolean_t full,
3934 void (*pr)(const char *, ...))
3935 {
3936 struct vm_page *tpg;
3937 struct uvm_object *uobj;
3938 struct pglist *pgl;
3939 char pgbuf[128];
3940 char pqbuf[128];
3941
3942 (*pr)("PAGE %p:\n", pg);
3943 bitmask_snprintf(pg->flags, page_flagbits, pgbuf, sizeof(pgbuf));
3944 bitmask_snprintf(pg->pqflags, page_pqflagbits, pqbuf, sizeof(pqbuf));
3945 (*pr)(" flags=%s, pqflags=%s, wire_count=%d, pa=0x%lx\n",
3946 pgbuf, pqbuf, pg->wire_count, (long)VM_PAGE_TO_PHYS(pg));
3947 (*pr)(" uobject=%p, uanon=%p, offset=0x%llx loan_count=%d\n",
3948 pg->uobject, pg->uanon, (long long)pg->offset, pg->loan_count);
3949 #if defined(UVM_PAGE_TRKOWN)
3950 if (pg->flags & PG_BUSY)
3951 (*pr)(" owning process = %d, tag=%s\n",
3952 pg->owner, pg->owner_tag);
3953 else
3954 (*pr)(" page not busy, no owner\n");
3955 #else
3956 (*pr)(" [page ownership tracking disabled]\n");
3957 #endif
3958
3959 if (!full)
3960 return;
3961
3962 /* cross-verify object/anon */
3963 if ((pg->pqflags & PQ_FREE) == 0) {
3964 if (pg->pqflags & PQ_ANON) {
3965 if (pg->uanon == NULL || pg->uanon->u.an_page != pg)
3966 (*pr)(" >>> ANON DOES NOT POINT HERE <<< (%p)\n",
3967 (pg->uanon) ? pg->uanon->u.an_page : NULL);
3968 else
3969 (*pr)(" anon backpointer is OK\n");
3970 } else {
3971 uobj = pg->uobject;
3972 if (uobj) {
3973 (*pr)(" checking object list\n");
3974 TAILQ_FOREACH(tpg, &uobj->memq, listq) {
3975 if (tpg == pg) {
3976 break;
3977 }
3978 }
3979 if (tpg)
3980 (*pr)(" page found on object list\n");
3981 else
3982 (*pr)(" >>> PAGE NOT FOUND ON OBJECT LIST! <<<\n");
3983 }
3984 }
3985 }
3986
3987 /* cross-verify page queue */
3988 if (pg->pqflags & PQ_FREE) {
3989 int fl = uvm_page_lookup_freelist(pg);
3990 int color = VM_PGCOLOR_BUCKET(pg);
3991 pgl = &uvm.page_free[fl].pgfl_buckets[color].pgfl_queues[
3992 ((pg)->flags & PG_ZERO) ? PGFL_ZEROS : PGFL_UNKNOWN];
3993 } else if (pg->pqflags & PQ_INACTIVE) {
3994 pgl = &uvm.page_inactive;
3995 } else if (pg->pqflags & PQ_ACTIVE) {
3996 pgl = &uvm.page_active;
3997 } else {
3998 pgl = NULL;
3999 }
4000
4001 if (pgl) {
4002 (*pr)(" checking pageq list\n");
4003 TAILQ_FOREACH(tpg, pgl, pageq) {
4004 if (tpg == pg) {
4005 break;
4006 }
4007 }
4008 if (tpg)
4009 (*pr)(" page found on pageq list\n");
4010 else
4011 (*pr)(" >>> PAGE NOT FOUND ON PAGEQ LIST! <<<\n");
4012 }
4013 }
4014 #endif
4015