uvm_fault.c revision 1.26 1 /* $NetBSD: uvm_fault.c,v 1.26 1999/03/28 21:48:50 mycroft Exp $ */
2
3 /*
4 *
5 * Copyright (c) 1997 Charles D. Cranor and Washington University.
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. All advertising materials mentioning features or use of this software
17 * must display the following acknowledgement:
18 * This product includes software developed by Charles D. Cranor and
19 * Washington University.
20 * 4. The name of the author may not be used to endorse or promote products
21 * derived from this software without specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 *
34 * from: Id: uvm_fault.c,v 1.1.2.23 1998/02/06 05:29:05 chs Exp
35 */
36
37 #include "opt_uvmhist.h"
38
39 /*
40 * uvm_fault.c: fault handler
41 */
42
43 #include <sys/param.h>
44 #include <sys/systm.h>
45 #include <sys/kernel.h>
46 #include <sys/proc.h>
47 #include <sys/malloc.h>
48 #include <sys/mman.h>
49 #include <sys/user.h>
50
51 #include <vm/vm.h>
52 #include <vm/vm_page.h>
53 #include <vm/vm_kern.h>
54
55 #include <uvm/uvm.h>
56
57 /*
58 *
59 * a word on page faults:
60 *
61 * types of page faults we handle:
62 *
63 * CASE 1: upper layer faults CASE 2: lower layer faults
64 *
65 * CASE 1A CASE 1B CASE 2A CASE 2B
66 * read/write1 write>1 read/write +-cow_write/zero
67 * | | | |
68 * +--|--+ +--|--+ +-----+ + | + | +-----+
69 * amap | V | | ----------->new| | | | ^ |
70 * +-----+ +-----+ +-----+ + | + | +--|--+
71 * | | |
72 * +-----+ +-----+ +--|--+ | +--|--+
73 * uobj | d/c | | d/c | | V | +----| |
74 * +-----+ +-----+ +-----+ +-----+
75 *
76 * d/c = don't care
77 *
78 * case [0]: layerless fault
79 * no amap or uobj is present. this is an error.
80 *
81 * case [1]: upper layer fault [anon active]
82 * 1A: [read] or [write with anon->an_ref == 1]
83 * I/O takes place in top level anon and uobj is not touched.
84 * 1B: [write with anon->an_ref > 1]
85 * new anon is alloc'd and data is copied off ["COW"]
86 *
87 * case [2]: lower layer fault [uobj]
88 * 2A: [read on non-NULL uobj] or [write to non-copy_on_write area]
89 * I/O takes place directly in object.
90 * 2B: [write to copy_on_write] or [read on NULL uobj]
91 * data is "promoted" from uobj to a new anon.
92 * if uobj is null, then we zero fill.
93 *
94 * we follow the standard UVM locking protocol ordering:
95 *
96 * MAPS => AMAP => UOBJ => ANON => PAGE QUEUES (PQ)
97 * we hold a PG_BUSY page if we unlock for I/O
98 *
99 *
100 * the code is structured as follows:
101 *
102 * - init the "IN" params in the ufi structure
103 * ReFault:
104 * - do lookups [locks maps], check protection, handle needs_copy
105 * - check for case 0 fault (error)
106 * - establish "range" of fault
107 * - if we have an amap lock it and extract the anons
108 * - if sequential advice deactivate pages behind us
109 * - at the same time check pmap for unmapped areas and anon for pages
110 * that we could map in (and do map it if found)
111 * - check object for resident pages that we could map in
112 * - if (case 2) goto Case2
113 * - >>> handle case 1
114 * - ensure source anon is resident in RAM
115 * - if case 1B alloc new anon and copy from source
116 * - map the correct page in
117 * Case2:
118 * - >>> handle case 2
119 * - ensure source page is resident (if uobj)
120 * - if case 2B alloc new anon and copy from source (could be zero
121 * fill if uobj == NULL)
122 * - map the correct page in
123 * - done!
124 *
125 * note on paging:
126 * if we have to do I/O we place a PG_BUSY page in the correct object,
127 * unlock everything, and do the I/O. when I/O is done we must reverify
128 * the state of the world before assuming that our data structures are
129 * valid. [because mappings could change while the map is unlocked]
130 *
131 * alternative 1: unbusy the page in question and restart the page fault
132 * from the top (ReFault). this is easy but does not take advantage
133 * of the information that we already have from our previous lookup,
134 * although it is possible that the "hints" in the vm_map will help here.
135 *
136 * alternative 2: the system already keeps track of a "version" number of
137 * a map. [i.e. every time you write-lock a map (e.g. to change a
138 * mapping) you bump the version number up by one...] so, we can save
139 * the version number of the map before we release the lock and start I/O.
140 * then when I/O is done we can relock and check the version numbers
141 * to see if anything changed. this might save us some over 1 because
142 * we don't have to unbusy the page and may be less compares(?).
143 *
144 * alternative 3: put in backpointers or a way to "hold" part of a map
145 * in place while I/O is in progress. this could be complex to
146 * implement (especially with structures like amap that can be referenced
147 * by multiple map entries, and figuring out what should wait could be
148 * complex as well...).
149 *
150 * given that we are not currently multiprocessor or multithreaded we might
151 * as well choose alternative 2 now. maybe alternative 3 would be useful
152 * in the future. XXX keep in mind for future consideration//rechecking.
153 */
154
155 /*
156 * local data structures
157 */
158
159 struct uvm_advice {
160 int advice;
161 int nback;
162 int nforw;
163 };
164
165 /*
166 * page range array:
167 * note: index in array must match "advice" value
168 * XXX: borrowed numbers from freebsd. do they work well for us?
169 */
170
171 static struct uvm_advice uvmadvice[] = {
172 { MADV_NORMAL, 3, 4 },
173 { MADV_RANDOM, 0, 0 },
174 { MADV_SEQUENTIAL, 8, 7},
175 };
176
177 #define UVM_MAXRANGE 16 /* must be max() of nback+nforw+1 */
178
179 /*
180 * private prototypes
181 */
182
183 static void uvmfault_amapcopy __P((struct uvm_faultinfo *));
184 static __inline void uvmfault_anonflush __P((struct vm_anon **, int));
185
186 /*
187 * inline functions
188 */
189
190 /*
191 * uvmfault_anonflush: try and deactivate pages in specified anons
192 *
193 * => does not have to deactivate page if it is busy
194 */
195
196 static __inline void
197 uvmfault_anonflush(anons, n)
198 struct vm_anon **anons;
199 int n;
200 {
201 int lcv;
202 struct vm_page *pg;
203
204 for (lcv = 0 ; lcv < n ; lcv++) {
205 if (anons[lcv] == NULL)
206 continue;
207 simple_lock(&anons[lcv]->an_lock);
208 pg = anons[lcv]->u.an_page;
209 if (pg && (pg->flags & PG_BUSY) == 0 && pg->loan_count == 0) {
210 uvm_lock_pageq();
211 if (pg->wire_count == 0) {
212 pmap_page_protect(PMAP_PGARG(pg), VM_PROT_NONE);
213 uvm_pagedeactivate(pg);
214 }
215 uvm_unlock_pageq();
216 }
217 simple_unlock(&anons[lcv]->an_lock);
218 }
219 }
220
221 /*
222 * normal functions
223 */
224
225 /*
226 * uvmfault_amapcopy: clear "needs_copy" in a map.
227 *
228 * => called with VM data structures unlocked (usually, see below)
229 * => we get a write lock on the maps and clear needs_copy for a VA
230 * => if we are out of RAM we sleep (waiting for more)
231 */
232
233 static void
234 uvmfault_amapcopy(ufi)
235 struct uvm_faultinfo *ufi;
236 {
237
238 /*
239 * while we haven't done the job
240 */
241
242 while (1) {
243
244 /*
245 * no mapping? give up.
246 */
247
248 if (uvmfault_lookup(ufi, TRUE) == FALSE)
249 return;
250
251 /*
252 * copy if needed.
253 */
254
255 if (UVM_ET_ISNEEDSCOPY(ufi->entry))
256 amap_copy(ufi->map, ufi->entry, M_NOWAIT, TRUE,
257 ufi->orig_rvaddr, ufi->orig_rvaddr + 1);
258
259 /*
260 * didn't work? must be out of RAM. unlock and sleep.
261 */
262
263 if (UVM_ET_ISNEEDSCOPY(ufi->entry)) {
264 uvmfault_unlockmaps(ufi, TRUE);
265 uvm_wait("fltamapcopy");
266 continue;
267 }
268
269 /*
270 * got it! unlock and return.
271 */
272
273 uvmfault_unlockmaps(ufi, TRUE);
274 return;
275 }
276 /*NOTREACHED*/
277 }
278
279 /*
280 * uvmfault_anonget: get data in an anon into a non-busy, non-released
281 * page in that anon.
282 *
283 * => maps, amap, and anon locked by caller.
284 * => if we fail (result != VM_PAGER_OK) we unlock everything.
285 * => if we are successful, we return with everything still locked.
286 * => we don't move the page on the queues [gets moved later]
287 * => if we allocate a new page [we_own], it gets put on the queues.
288 * either way, the result is that the page is on the queues at return time
289 * => for pages which are on loan from a uvm_object (and thus are not
290 * owned by the anon): if successful, we return with the owning object
291 * locked. the caller must unlock this object when it unlocks everything
292 * else.
293 */
294
295 int uvmfault_anonget(ufi, amap, anon)
296 struct uvm_faultinfo *ufi;
297 struct vm_amap *amap;
298 struct vm_anon *anon;
299 {
300 boolean_t we_own; /* we own anon's page? */
301 boolean_t locked; /* did we relock? */
302 struct vm_page *pg;
303 int result;
304 UVMHIST_FUNC("uvmfault_anonget"); UVMHIST_CALLED(maphist);
305
306 result = 0; /* XXX shut up gcc */
307 uvmexp.fltanget++;
308 /* bump rusage counters */
309 if (anon->u.an_page)
310 curproc->p_addr->u_stats.p_ru.ru_minflt++;
311 else
312 curproc->p_addr->u_stats.p_ru.ru_majflt++;
313
314 /*
315 * loop until we get it, or fail.
316 */
317
318 while (1) {
319
320 we_own = FALSE; /* TRUE if we set PG_BUSY on a page */
321 pg = anon->u.an_page;
322
323 /*
324 * if there is a resident page and it is loaned, then anon
325 * may not own it. call out to uvm_anon_lockpage() to ensure
326 * the real owner of the page has been identified and locked.
327 */
328
329 if (pg && pg->loan_count)
330 pg = uvm_anon_lockloanpg(anon);
331
332 /*
333 * page there? make sure it is not busy/released.
334 */
335
336 if (pg) {
337
338 /*
339 * at this point, if the page has a uobject [meaning
340 * we have it on loan], then that uobject is locked
341 * by us! if the page is busy, we drop all the
342 * locks (including uobject) and try again.
343 */
344
345 if ((pg->flags & (PG_BUSY|PG_RELEASED)) == 0) {
346 UVMHIST_LOG(maphist, "<- OK",0,0,0,0);
347 return (VM_PAGER_OK);
348 }
349 pg->flags |= PG_WANTED;
350 uvmexp.fltpgwait++;
351
352 /*
353 * the last unlock must be an atomic unlock+wait on
354 * the owner of page
355 */
356 if (pg->uobject) { /* owner is uobject ? */
357 uvmfault_unlockall(ufi, amap, NULL, anon);
358 UVMHIST_LOG(maphist, " unlock+wait on uobj",0,
359 0,0,0);
360 UVM_UNLOCK_AND_WAIT(pg,
361 &pg->uobject->vmobjlock,
362 FALSE, "anonget1",0);
363 } else {
364 /* anon owns page */
365 uvmfault_unlockall(ufi, amap, NULL, NULL);
366 UVMHIST_LOG(maphist, " unlock+wait on anon",0,
367 0,0,0);
368 UVM_UNLOCK_AND_WAIT(pg,&anon->an_lock,0,
369 "anonget2",0);
370 }
371 /* ready to relock and try again */
372
373 } else {
374
375 /*
376 * no page, we must try and bring it in.
377 */
378 pg = uvm_pagealloc(NULL, 0, anon);
379
380 if (pg == NULL) { /* out of RAM. */
381
382 uvmfault_unlockall(ufi, amap, NULL, anon);
383 uvmexp.fltnoram++;
384 UVMHIST_LOG(maphist, " noram -- UVM_WAIT",0,
385 0,0,0);
386 uvm_wait("flt_noram1");
387 /* ready to relock and try again */
388
389 } else {
390
391 /* we set the PG_BUSY bit */
392 we_own = TRUE;
393 uvmfault_unlockall(ufi, amap, NULL, anon);
394
395 /*
396 * we are passing a PG_BUSY+PG_FAKE+PG_CLEAN
397 * page into the uvm_swap_get function with
398 * all data structures unlocked. note that
399 * it is ok to read an_swslot here because
400 * we hold PG_BUSY on the page.
401 */
402 uvmexp.pageins++;
403 result = uvm_swap_get(pg, anon->an_swslot,
404 PGO_SYNCIO);
405
406 /*
407 * we clean up after the i/o below in the
408 * "we_own" case
409 */
410 /* ready to relock and try again */
411 }
412 }
413
414 /*
415 * now relock and try again
416 */
417
418 locked = uvmfault_relock(ufi);
419 if (locked) {
420 amap_lock(amap);
421 }
422 if (locked || we_own)
423 simple_lock(&anon->an_lock);
424
425 /*
426 * if we own the page (i.e. we set PG_BUSY), then we need
427 * to clean up after the I/O. there are three cases to
428 * consider:
429 * [1] page released during I/O: free anon and ReFault.
430 * [2] I/O not OK. free the page and cause the fault
431 * to fail.
432 * [3] I/O OK! activate the page and sync with the
433 * non-we_own case (i.e. drop anon lock if not locked).
434 */
435
436 if (we_own) {
437
438 if (pg->flags & PG_WANTED) {
439 /* still holding object lock */
440 thread_wakeup(pg);
441 }
442 /* un-busy! */
443 pg->flags &= ~(PG_WANTED|PG_BUSY|PG_FAKE);
444 UVM_PAGE_OWN(pg, NULL);
445
446 /*
447 * if we were RELEASED during I/O, then our anon is
448 * no longer part of an amap. we need to free the
449 * anon and try again.
450 */
451 if (pg->flags & PG_RELEASED) {
452 pmap_page_protect(PMAP_PGARG(pg),
453 VM_PROT_NONE); /* to be safe */
454 simple_unlock(&anon->an_lock);
455 uvm_anfree(anon); /* frees page for us */
456 if (locked)
457 uvmfault_unlockall(ufi, amap, NULL, NULL);
458 uvmexp.fltpgrele++;
459 UVMHIST_LOG(maphist, "<- REFAULT", 0,0,0,0);
460 return (VM_PAGER_REFAULT); /* refault! */
461 }
462
463 if (result != VM_PAGER_OK) {
464 #ifdef DIAGNOSTIC
465 if (result == VM_PAGER_PEND)
466 panic("uvmfault_anonget: got PENDING for non-async I/O");
467 #endif
468 /* remove page from anon */
469 anon->u.an_page = NULL;
470
471 /*
472 * note: page was never !PG_BUSY, so it
473 * can't be mapped and thus no need to
474 * pmap_page_protect it...
475 */
476 uvm_lock_pageq();
477 uvm_pagefree(pg);
478 uvm_unlock_pageq();
479
480 if (locked)
481 uvmfault_unlockall(ufi, amap, NULL,
482 anon);
483 else
484 simple_unlock(&anon->an_lock);
485 UVMHIST_LOG(maphist, "<- ERROR", 0,0,0,0);
486 return (VM_PAGER_ERROR);
487 }
488
489 /*
490 * must be OK, clear modify (already PG_CLEAN)
491 * and activate
492 */
493 pmap_clear_modify(PMAP_PGARG(pg));
494 uvm_lock_pageq();
495 uvm_pageactivate(pg);
496 uvm_unlock_pageq();
497 if (!locked)
498 simple_unlock(&anon->an_lock);
499 }
500
501 /*
502 * we were not able to relock. restart fault.
503 */
504
505 if (!locked) {
506 UVMHIST_LOG(maphist, "<- REFAULT", 0,0,0,0);
507 return (VM_PAGER_REFAULT);
508 }
509
510 /*
511 * verify no one has touched the amap and moved the anon on us.
512 */
513
514 if (amap_lookup(&ufi->entry->aref,
515 ufi->orig_rvaddr - ufi->entry->start) != anon) {
516
517 uvmfault_unlockall(ufi, amap, NULL, anon);
518 UVMHIST_LOG(maphist, "<- REFAULT", 0,0,0,0);
519 return (VM_PAGER_REFAULT);
520 }
521
522 /*
523 * try it again!
524 */
525
526 uvmexp.fltanretry++;
527 continue;
528
529 } /* while (1) */
530
531 /*NOTREACHED*/
532 }
533
534 /*
535 * F A U L T - m a i n e n t r y p o i n t
536 */
537
538 /*
539 * uvm_fault: page fault handler
540 *
541 * => called from MD code to resolve a page fault
542 * => VM data structures usually should be unlocked. however, it is
543 * possible to call here with the main map locked if the caller
544 * gets a write lock, sets it recusive, and then calls us (c.f.
545 * uvm_map_pageable). this should be avoided because it keeps
546 * the map locked off during I/O.
547 */
548
549 #define MASK(entry) (UVM_ET_ISCOPYONWRITE(entry) ? \
550 ~VM_PROT_WRITE : VM_PROT_ALL)
551
552 int
553 uvm_fault(orig_map, vaddr, fault_type, access_type)
554 vm_map_t orig_map;
555 vaddr_t vaddr;
556 vm_fault_t fault_type;
557 vm_prot_t access_type;
558 {
559 struct uvm_faultinfo ufi;
560 vm_prot_t enter_prot;
561 boolean_t wired, narrow, promote, locked, shadowed;
562 int npages, nback, nforw, centeridx, result, lcv, gotpages;
563 vaddr_t startva, objaddr, currva, offset;
564 paddr_t pa;
565 struct vm_amap *amap;
566 struct uvm_object *uobj;
567 struct vm_anon *anons_store[UVM_MAXRANGE], **anons, *anon, *oanon;
568 struct vm_page *pages[UVM_MAXRANGE], *pg, *uobjpage;
569 UVMHIST_FUNC("uvm_fault"); UVMHIST_CALLED(maphist);
570
571 UVMHIST_LOG(maphist, "(map=0x%x, vaddr=0x%x, ft=%d, at=%d)",
572 orig_map, vaddr, fault_type, access_type);
573
574 anon = NULL; /* XXX: shut up gcc */
575
576 uvmexp.faults++; /* XXX: locking? */
577
578 /*
579 * init the IN parameters in the ufi
580 */
581
582 ufi.orig_map = orig_map;
583 ufi.orig_rvaddr = trunc_page(vaddr);
584 ufi.orig_size = PAGE_SIZE; /* can't get any smaller than this */
585 if (fault_type == VM_FAULT_WIRE)
586 narrow = TRUE; /* don't look for neighborhood
587 * pages on wire */
588 else
589 narrow = FALSE; /* normal fault */
590
591 /*
592 * "goto ReFault" means restart the page fault from ground zero.
593 */
594 ReFault:
595
596 /*
597 * lookup and lock the maps
598 */
599
600 if (uvmfault_lookup(&ufi, FALSE) == FALSE) {
601 UVMHIST_LOG(maphist, "<- no mapping @ 0x%x", vaddr, 0,0,0);
602 return (KERN_INVALID_ADDRESS);
603 }
604 /* locked: maps(read) */
605
606 /*
607 * check protection
608 */
609
610 if ((ufi.entry->protection & access_type) != access_type) {
611 UVMHIST_LOG(maphist,
612 "<- protection failure (prot=0x%x, access=0x%x)",
613 ufi.entry->protection, access_type, 0, 0);
614 uvmfault_unlockmaps(&ufi, FALSE);
615 return (KERN_PROTECTION_FAILURE);
616 }
617
618 /*
619 * "enter_prot" is the protection we want to enter the page in at.
620 * for certain pages (e.g. copy-on-write pages) this protection can
621 * be more strict than ufi.entry->protection. "wired" means either
622 * the entry is wired or we are fault-wiring the pg.
623 */
624
625 enter_prot = ufi.entry->protection;
626 wired = (ufi.entry->wired_count != 0) || (fault_type == VM_FAULT_WIRE);
627 if (wired)
628 access_type = enter_prot; /* full access for wired */
629
630 /*
631 * handle "needs_copy" case. if we need to copy the amap we will
632 * have to drop our readlock and relock it with a write lock. (we
633 * need a write lock to change anything in a map entry [e.g.
634 * needs_copy]).
635 */
636
637 if (UVM_ET_ISNEEDSCOPY(ufi.entry)) {
638 if ((access_type & VM_PROT_WRITE) ||
639 (ufi.entry->object.uvm_obj == NULL)) {
640 /* need to clear */
641 UVMHIST_LOG(maphist,
642 " need to clear needs_copy and refault",0,0,0,0);
643 uvmfault_unlockmaps(&ufi, FALSE);
644 uvmfault_amapcopy(&ufi);
645 uvmexp.fltamcopy++;
646 goto ReFault;
647
648 } else {
649
650 /*
651 * ensure that we pmap_enter page R/O since
652 * needs_copy is still true
653 */
654 enter_prot &= ~VM_PROT_WRITE;
655
656 }
657 }
658
659 /*
660 * identify the players
661 */
662
663 amap = ufi.entry->aref.ar_amap; /* top layer */
664 uobj = ufi.entry->object.uvm_obj; /* bottom layer */
665
666 /*
667 * check for a case 0 fault. if nothing backing the entry then
668 * error now.
669 */
670
671 if (amap == NULL && uobj == NULL) {
672 uvmfault_unlockmaps(&ufi, FALSE);
673 UVMHIST_LOG(maphist,"<- no backing store, no overlay",0,0,0,0);
674 return (KERN_INVALID_ADDRESS);
675 }
676
677 /*
678 * establish range of interest based on advice from mapper
679 * and then clip to fit map entry. note that we only want
680 * to do this the first time through the fault. if we
681 * ReFault we will disable this by setting "narrow" to true.
682 */
683
684 if (narrow == FALSE) {
685
686 /* wide fault (!narrow) */
687 #ifdef DIAGNOSTIC
688 if (uvmadvice[ufi.entry->advice].advice != ufi.entry->advice)
689 panic("fault: advice mismatch!");
690 #endif
691 nback = min(uvmadvice[ufi.entry->advice].nback,
692 (ufi.orig_rvaddr - ufi.entry->start) >> PAGE_SHIFT);
693 startva = ufi.orig_rvaddr - (nback << PAGE_SHIFT);
694 nforw = min(uvmadvice[ufi.entry->advice].nforw,
695 ((ufi.entry->end - ufi.orig_rvaddr) >>
696 PAGE_SHIFT) - 1);
697 /*
698 * note: "-1" because we don't want to count the
699 * faulting page as forw
700 */
701 npages = nback + nforw + 1;
702 centeridx = nback;
703
704 narrow = FALSE; /* ensure only once per-fault */
705
706 } else {
707
708 /* narrow fault! */
709 nback = nforw = 0;
710 startva = ufi.orig_rvaddr;
711 npages = 1;
712 centeridx = 0;
713
714 }
715
716 /* locked: maps(read) */
717 UVMHIST_LOG(maphist, " narrow=%d, back=%d, forw=%d, startva=0x%x",
718 narrow, nback, nforw, startva);
719 UVMHIST_LOG(maphist, " entry=0x%x, amap=0x%x, obj=0x%x", ufi.entry,
720 amap, uobj, 0);
721
722 /*
723 * if we've got an amap, lock it and extract current anons.
724 */
725
726 if (amap) {
727 amap_lock(amap);
728 anons = anons_store;
729 amap_lookups(&ufi.entry->aref, startva - ufi.entry->start,
730 anons, npages);
731 } else {
732 anons = NULL; /* to be safe */
733 }
734
735 /* locked: maps(read), amap(if there) */
736
737 /*
738 * for MADV_SEQUENTIAL mappings we want to deactivate the back pages
739 * now and then forget about them (for the rest of the fault).
740 */
741
742 if (ufi.entry->advice == MADV_SEQUENTIAL) {
743
744 UVMHIST_LOG(maphist, " MADV_SEQUENTIAL: flushing backpages",
745 0,0,0,0);
746 /* flush back-page anons? */
747 if (amap)
748 uvmfault_anonflush(anons, nback);
749
750 /* flush object? */
751 if (uobj) {
752 objaddr =
753 (startva - ufi.entry->start) + ufi.entry->offset;
754 simple_lock(&uobj->vmobjlock);
755 (void) uobj->pgops->pgo_flush(uobj, objaddr, objaddr +
756 (nback << PAGE_SHIFT), PGO_DEACTIVATE);
757 simple_unlock(&uobj->vmobjlock);
758 }
759
760 /* now forget about the backpages */
761 if (amap)
762 anons += nback;
763 startva = startva + (nback << PAGE_SHIFT);
764 npages -= nback;
765 nback = centeridx = 0;
766 }
767
768 /* locked: maps(read), amap(if there) */
769
770 /*
771 * map in the backpages and frontpages we found in the amap in hopes
772 * of preventing future faults. we also init the pages[] array as
773 * we go.
774 */
775
776 currva = startva;
777 shadowed = FALSE;
778 for (lcv = 0 ; lcv < npages ; lcv++, currva += PAGE_SIZE) {
779
780 /*
781 * dont play with VAs that are already mapped
782 * except for center)
783 * XXX: return value of pmap_extract disallows PA 0
784 */
785 if (lcv != centeridx) {
786 pa = pmap_extract(ufi.orig_map->pmap, currva);
787 if (pa != NULL) {
788 pages[lcv] = PGO_DONTCARE;
789 continue;
790 }
791 }
792
793 /*
794 * unmapped or center page. check if any anon at this level.
795 */
796 if (amap == NULL || anons[lcv] == NULL) {
797 pages[lcv] = NULL;
798 continue;
799 }
800
801 /*
802 * check for present page and map if possible. re-activate it.
803 */
804
805 pages[lcv] = PGO_DONTCARE;
806 if (lcv == centeridx) { /* save center for later! */
807 shadowed = TRUE;
808 continue;
809 }
810 anon = anons[lcv];
811 simple_lock(&anon->an_lock);
812 /* ignore loaned pages */
813 if (anon->u.an_page && anon->u.an_page->loan_count == 0 &&
814 (anon->u.an_page->flags & (PG_RELEASED|PG_BUSY)) == 0) {
815 uvm_lock_pageq();
816 uvm_pageactivate(anon->u.an_page); /* reactivate */
817 uvm_unlock_pageq();
818 UVMHIST_LOG(maphist,
819 " MAPPING: n anon: pm=0x%x, va=0x%x, pg=0x%x",
820 ufi.orig_map->pmap, currva, anon->u.an_page, 0);
821 uvmexp.fltnamap++;
822 pmap_enter(ufi.orig_map->pmap, currva,
823 VM_PAGE_TO_PHYS(anon->u.an_page),
824 (anon->an_ref > 1) ? (enter_prot & ~VM_PROT_WRITE) :
825 enter_prot,
826 (ufi.entry->wired_count != 0), 0);
827 }
828 simple_unlock(&anon->an_lock);
829 }
830
831 /* locked: maps(read), amap(if there) */
832 /* (shadowed == TRUE) if there is an anon at the faulting address */
833 UVMHIST_LOG(maphist, " shadowed=%d, will_get=%d", shadowed,
834 (uobj && shadowed == FALSE),0,0);
835
836 /*
837 * note that if we are really short of RAM we could sleep in the above
838 * call to pmap_enter with everything locked. bad?
839 * XXXCDC: this is fixed in PMAP_NEW (no sleep alloc's in pmap)
840 */
841
842 /*
843 * if the desired page is not shadowed by the amap and we have a
844 * backing object, then we check to see if the backing object would
845 * prefer to handle the fault itself (rather than letting us do it
846 * with the usual pgo_get hook). the backing object signals this by
847 * providing a pgo_fault routine.
848 */
849
850 if (uobj && shadowed == FALSE && uobj->pgops->pgo_fault != NULL) {
851
852 simple_lock(&uobj->vmobjlock);
853
854 /* locked: maps(read), amap (if there), uobj */
855 result = uobj->pgops->pgo_fault(&ufi, startva, pages, npages,
856 centeridx, fault_type, access_type,
857 PGO_LOCKED);
858 /* locked: nothing, pgo_fault has unlocked everything */
859
860 if (result == VM_PAGER_OK)
861 return (KERN_SUCCESS); /* pgo_fault did pmap enter */
862 else if (result == VM_PAGER_REFAULT)
863 goto ReFault; /* try again! */
864 else
865 return (KERN_PROTECTION_FAILURE);
866 }
867
868 /*
869 * now, if the desired page is not shadowed by the amap and we have
870 * a backing object that does not have a special fault routine, then
871 * we ask (with pgo_get) the object for resident pages that we care
872 * about and attempt to map them in. we do not let pgo_get block
873 * (PGO_LOCKED).
874 *
875 * ("get" has the option of doing a pmap_enter for us)
876 */
877
878 if (uobj && shadowed == FALSE) {
879 simple_lock(&uobj->vmobjlock);
880
881 /* locked (!shadowed): maps(read), amap (if there), uobj */
882 /*
883 * the following call to pgo_get does _not_ change locking state
884 */
885
886 uvmexp.fltlget++;
887 gotpages = npages;
888 result = uobj->pgops->pgo_get(uobj, ufi.entry->offset +
889 (startva - ufi.entry->start),
890 pages, &gotpages, centeridx,
891 access_type & MASK(ufi.entry),
892 ufi.entry->advice, PGO_LOCKED);
893
894 /*
895 * check for pages to map, if we got any
896 */
897
898 uobjpage = NULL;
899
900 if (gotpages) {
901 currva = startva;
902 for (lcv = 0 ; lcv < npages ;
903 lcv++, currva += PAGE_SIZE) {
904
905 if (pages[lcv] == NULL ||
906 pages[lcv] == PGO_DONTCARE)
907 continue;
908
909 #ifdef DIAGNOSTIC
910 /*
911 * pager sanity check: pgo_get with
912 * PGO_LOCKED should never return a
913 * released page to us.
914 */
915 if (pages[lcv]->flags & PG_RELEASED)
916 panic("uvm_fault: pgo_get PGO_LOCKED gave us a RELEASED page");
917 #endif
918
919 /*
920 * if center page is resident and not
921 * PG_BUSY|PG_RELEASED then pgo_get
922 * made it PG_BUSY for us and gave
923 * us a handle to it. remember this
924 * page as "uobjpage." (for later use).
925 */
926
927 if (lcv == centeridx) {
928 uobjpage = pages[lcv];
929 UVMHIST_LOG(maphist, " got uobjpage (0x%x) with locked get",
930 uobjpage, 0,0,0);
931 continue;
932 }
933
934 /*
935 * note: calling pgo_get with locked data
936 * structures returns us pages which are
937 * neither busy nor released, so we don't
938 * need to check for this. we can just
939 * directly enter the page (after moving it
940 * to the head of the active queue [useful?]).
941 */
942
943 uvm_lock_pageq();
944 uvm_pageactivate(pages[lcv]); /* reactivate */
945 uvm_unlock_pageq();
946 UVMHIST_LOG(maphist,
947 " MAPPING: n obj: pm=0x%x, va=0x%x, pg=0x%x",
948 ufi.orig_map->pmap, currva, pages[lcv], 0);
949 uvmexp.fltnomap++;
950 pmap_enter(ufi.orig_map->pmap, currva,
951 VM_PAGE_TO_PHYS(pages[lcv]),
952 enter_prot & MASK(ufi.entry),
953 wired, access_type & MASK(ufi.entry));
954
955 /*
956 * NOTE: page can't be PG_WANTED or PG_RELEASED
957 * because we've held the lock the whole time
958 * we've had the handle.
959 */
960 pages[lcv]->flags &= ~(PG_BUSY); /* un-busy! */
961 UVM_PAGE_OWN(pages[lcv], NULL);
962
963 /* done! */
964 } /* for "lcv" loop */
965 } /* "gotpages" != 0 */
966
967 /* note: object still _locked_ */
968 } else {
969
970 uobjpage = NULL;
971
972 }
973
974 /* locked (shadowed): maps(read), amap */
975 /* locked (!shadowed): maps(read), amap(if there),
976 uobj(if !null), uobjpage(if !null) */
977
978 /*
979 * note that at this point we are done with any front or back pages.
980 * we are now going to focus on the center page (i.e. the one we've
981 * faulted on). if we have faulted on the top (anon) layer
982 * [i.e. case 1], then the anon we want is anons[centeridx] (we have
983 * not touched it yet). if we have faulted on the bottom (uobj)
984 * layer [i.e. case 2] and the page was both present and available,
985 * then we've got a pointer to it as "uobjpage" and we've already
986 * made it BUSY.
987 */
988
989 /*
990 * there are four possible cases we must address: 1A, 1B, 2A, and 2B
991 */
992
993 /*
994 * redirect case 2: if we are not shadowed, go to case 2.
995 */
996
997 if (shadowed == FALSE)
998 goto Case2;
999
1000 /* locked: maps(read), amap */
1001
1002 /*
1003 * handle case 1: fault on an anon in our amap
1004 */
1005
1006 anon = anons[centeridx];
1007 UVMHIST_LOG(maphist, " case 1 fault: anon=0x%x", anon, 0,0,0);
1008 simple_lock(&anon->an_lock);
1009
1010 /* locked: maps(read), amap, anon */
1011
1012 /*
1013 * no matter if we have case 1A or case 1B we are going to need to
1014 * have the anon's memory resident. ensure that now.
1015 */
1016
1017 /*
1018 * let uvmfault_anonget do the dirty work. if it fails (!OK) it will
1019 * unlock for us. if it is OK, locks are still valid and locked.
1020 * also, if it is OK, then the anon's page is on the queues.
1021 * if the page is on loan from a uvm_object, then anonget will
1022 * lock that object for us if it does not fail.
1023 */
1024
1025 result = uvmfault_anonget(&ufi, amap, anon);
1026
1027 if (result == VM_PAGER_REFAULT)
1028 goto ReFault;
1029
1030 if (result == VM_PAGER_AGAIN) {
1031 tsleep((caddr_t)&lbolt, PVM, "fltagain1", 0);
1032 goto ReFault;
1033 }
1034
1035 if (result != VM_PAGER_OK)
1036 return (KERN_PROTECTION_FAILURE); /* XXX??? */
1037
1038 /*
1039 * uobj is non null if the page is on loan from an object (i.e. uobj)
1040 */
1041
1042 uobj = anon->u.an_page->uobject; /* locked by anonget if !NULL */
1043
1044 /* locked: maps(read), amap, anon, uobj(if one) */
1045
1046 /*
1047 * special handling for loaned pages
1048 */
1049 if (anon->u.an_page->loan_count) {
1050
1051 if ((access_type & VM_PROT_WRITE) == 0) {
1052
1053 /*
1054 * for read faults on loaned pages we just cap the
1055 * protection at read-only.
1056 */
1057
1058 enter_prot = enter_prot & ~VM_PROT_WRITE;
1059
1060 } else {
1061 /*
1062 * note that we can't allow writes into a loaned page!
1063 *
1064 * if we have a write fault on a loaned page in an
1065 * anon then we need to look at the anon's ref count.
1066 * if it is greater than one then we are going to do
1067 * a normal copy-on-write fault into a new anon (this
1068 * is not a problem). however, if the reference count
1069 * is one (a case where we would normally allow a
1070 * write directly to the page) then we need to kill
1071 * the loan before we continue.
1072 */
1073
1074 /* >1 case is already ok */
1075 if (anon->an_ref == 1) {
1076
1077 /* get new un-owned replacement page */
1078 pg = uvm_pagealloc(NULL, 0, NULL);
1079 if (pg == NULL) {
1080 uvmfault_unlockall(&ufi, amap, uobj,
1081 anon);
1082 uvm_wait("flt_noram2");
1083 goto ReFault;
1084 }
1085
1086 /*
1087 * copy data, kill loan, and drop uobj lock
1088 * (if any)
1089 */
1090 /* copy old -> new */
1091 uvm_pagecopy(anon->u.an_page, pg);
1092
1093 /* force reload */
1094 pmap_page_protect(PMAP_PGARG(anon->u.an_page),
1095 VM_PROT_NONE);
1096 uvm_lock_pageq(); /* KILL loan */
1097 if (uobj)
1098 /* if we were loaning */
1099 anon->u.an_page->loan_count--;
1100 anon->u.an_page->uanon = NULL;
1101 /* in case we owned */
1102 anon->u.an_page->pqflags &= ~PQ_ANON;
1103 uvm_unlock_pageq();
1104 if (uobj) {
1105 simple_unlock(&uobj->vmobjlock);
1106 uobj = NULL;
1107 }
1108
1109 /* install new page in anon */
1110 anon->u.an_page = pg;
1111 pg->uanon = anon;
1112 pg->pqflags |= PQ_ANON;
1113 pg->flags &= ~(PG_BUSY|PG_FAKE);
1114 UVM_PAGE_OWN(pg, NULL);
1115
1116 /* done! */
1117 } /* ref == 1 */
1118 } /* write fault */
1119 } /* loan count */
1120
1121 /*
1122 * if we are case 1B then we will need to allocate a new blank
1123 * anon to transfer the data into. note that we have a lock
1124 * on anon, so no one can busy or release the page until we are done.
1125 * also note that the ref count can't drop to zero here because
1126 * it is > 1 and we are only dropping one ref.
1127 *
1128 * in the (hopefully very rare) case that we are out of RAM we
1129 * will unlock, wait for more RAM, and refault.
1130 *
1131 * if we are out of anon VM we kill the process (XXX: could wait?).
1132 */
1133
1134 if ((access_type & VM_PROT_WRITE) != 0 && anon->an_ref > 1) {
1135
1136 UVMHIST_LOG(maphist, " case 1B: COW fault",0,0,0,0);
1137 uvmexp.flt_acow++;
1138 oanon = anon; /* oanon = old, locked anon */
1139 anon = uvm_analloc();
1140 if (anon)
1141 pg = uvm_pagealloc(NULL, 0, anon);
1142 #ifdef __GNUC__
1143 else
1144 pg = NULL; /* XXX: gcc */
1145 #endif
1146
1147 /* check for out of RAM */
1148 if (anon == NULL || pg == NULL) {
1149 if (anon)
1150 uvm_anfree(anon);
1151 uvmfault_unlockall(&ufi, amap, uobj, oanon);
1152 #ifdef DIAGNOSTIC
1153 if (uvmexp.swpgonly > uvmexp.swpages) {
1154 panic("uvmexp.swpgonly botch");
1155 }
1156 #endif
1157 if (anon == NULL || uvmexp.swpgonly == uvmexp.swpages) {
1158 UVMHIST_LOG(maphist,
1159 "<- failed. out of VM",0,0,0,0);
1160 uvmexp.fltnoanon++;
1161 return (KERN_RESOURCE_SHORTAGE);
1162 }
1163
1164 uvmexp.fltnoram++;
1165 uvm_wait("flt_noram3"); /* out of RAM, wait for more */
1166 goto ReFault;
1167 }
1168
1169 /* got all resources, replace anon with nanon */
1170
1171 uvm_pagecopy(oanon->u.an_page, pg); /* pg now !PG_CLEAN */
1172 pg->flags &= ~(PG_BUSY|PG_FAKE); /* un-busy! new page */
1173 UVM_PAGE_OWN(pg, NULL);
1174 amap_add(&ufi.entry->aref, ufi.orig_rvaddr - ufi.entry->start,
1175 anon, 1);
1176
1177 /* deref: can not drop to zero here by defn! */
1178 oanon->an_ref--;
1179
1180 /*
1181 * note: oanon still locked. anon is _not_ locked, but we
1182 * have the sole references to in from amap which _is_ locked.
1183 * thus, no one can get at it until we are done with it.
1184 */
1185
1186 } else {
1187
1188 uvmexp.flt_anon++;
1189 oanon = anon; /* old, locked anon is same as anon */
1190 pg = anon->u.an_page;
1191 if (anon->an_ref > 1) /* disallow writes to ref > 1 anons */
1192 enter_prot = enter_prot & ~VM_PROT_WRITE;
1193
1194 }
1195
1196 /* locked: maps(read), amap, anon */
1197
1198 /*
1199 * now map the page in ...
1200 * XXX: old fault unlocks object before pmap_enter. this seems
1201 * suspect since some other thread could blast the page out from
1202 * under us between the unlock and the pmap_enter.
1203 */
1204
1205 UVMHIST_LOG(maphist, " MAPPING: anon: pm=0x%x, va=0x%x, pg=0x%x",
1206 ufi.orig_map->pmap, ufi.orig_rvaddr, pg, 0);
1207 pmap_enter(ufi.orig_map->pmap, ufi.orig_rvaddr, VM_PAGE_TO_PHYS(pg),
1208 enter_prot, wired, access_type);
1209
1210 /*
1211 * ... and update the page queues.
1212 */
1213
1214 uvm_lock_pageq();
1215
1216 if (fault_type == VM_FAULT_WIRE) {
1217 uvm_pagewire(pg);
1218 uvm_anon_dropswap(anon);
1219 } else {
1220 /* activate it */
1221 uvm_pageactivate(pg);
1222
1223 }
1224
1225 uvm_unlock_pageq();
1226
1227 /*
1228 * done case 1! finish up by unlocking everything and returning success
1229 */
1230
1231 uvmfault_unlockall(&ufi, amap, uobj, oanon);
1232 return (KERN_SUCCESS);
1233
1234
1235 Case2:
1236 /*
1237 * handle case 2: faulting on backing object or zero fill
1238 */
1239
1240 /*
1241 * locked:
1242 * maps(read), amap(if there), uobj(if !null), uobjpage(if !null)
1243 */
1244
1245 /*
1246 * note that uobjpage can not be PGO_DONTCARE at this point. we now
1247 * set uobjpage to PGO_DONTCARE if we are doing a zero fill. if we
1248 * have a backing object, check and see if we are going to promote
1249 * the data up to an anon during the fault.
1250 */
1251
1252 if (uobj == NULL) {
1253 uobjpage = PGO_DONTCARE;
1254 promote = TRUE; /* always need anon here */
1255 } else {
1256 /* assert(uobjpage != PGO_DONTCARE) */
1257 promote = (access_type & VM_PROT_WRITE) &&
1258 UVM_ET_ISCOPYONWRITE(ufi.entry);
1259 }
1260 UVMHIST_LOG(maphist, " case 2 fault: promote=%d, zfill=%d",
1261 promote, (uobj == NULL), 0,0);
1262
1263 /*
1264 * if uobjpage is not null then we do not need to do I/O to get the
1265 * uobjpage.
1266 *
1267 * if uobjpage is null, then we need to unlock and ask the pager to
1268 * get the data for us. once we have the data, we need to reverify
1269 * the state the world. we are currently not holding any resources.
1270 */
1271
1272 if (uobjpage) {
1273 /* update rusage counters */
1274 curproc->p_addr->u_stats.p_ru.ru_minflt++;
1275 } else {
1276 /* update rusage counters */
1277 curproc->p_addr->u_stats.p_ru.ru_majflt++;
1278
1279 /* locked: maps(read), amap(if there), uobj */
1280 uvmfault_unlockall(&ufi, amap, NULL, NULL);
1281 /* locked: uobj */
1282
1283 uvmexp.fltget++;
1284 gotpages = 1;
1285 result = uobj->pgops->pgo_get(uobj,
1286 (ufi.orig_rvaddr - ufi.entry->start) + ufi.entry->offset,
1287 &uobjpage, &gotpages, 0,
1288 access_type & MASK(ufi.entry),
1289 ufi.entry->advice, 0);
1290
1291 /* locked: uobjpage(if result OK) */
1292
1293 /*
1294 * recover from I/O
1295 */
1296
1297 if (result != VM_PAGER_OK) {
1298
1299 #ifdef DIAGNOSTIC
1300 if (result == VM_PAGER_PEND)
1301 panic("uvm_fault: pgo_get got PENDing on non-async I/O");
1302 #endif
1303
1304 if (result == VM_PAGER_AGAIN) {
1305 UVMHIST_LOG(maphist, " pgo_get says TRY AGAIN!",0,0,0,0);
1306 tsleep((caddr_t)&lbolt, PVM, "fltagain2", 0);
1307 goto ReFault;
1308 }
1309
1310 UVMHIST_LOG(maphist, "<- pgo_get failed (code %d)",
1311 result, 0,0,0);
1312 return (KERN_PROTECTION_FAILURE); /* XXX i/o error */
1313 }
1314
1315 /* locked: uobjpage */
1316
1317 /*
1318 * re-verify the state of the world by first trying to relock
1319 * the maps. always relock the object.
1320 */
1321
1322 locked = uvmfault_relock(&ufi);
1323 if (locked && amap)
1324 amap_lock(amap);
1325 simple_lock(&uobj->vmobjlock);
1326
1327 /* locked(locked): maps(read), amap(if !null), uobj, uobjpage */
1328 /* locked(!locked): uobj, uobjpage */
1329
1330 /*
1331 * verify that the page has not be released and re-verify
1332 * that amap slot is still free. if there is a problem,
1333 * we unlock and clean up.
1334 */
1335
1336 if ((uobjpage->flags & PG_RELEASED) != 0 ||
1337 (locked && amap &&
1338 amap_lookup(&ufi.entry->aref,
1339 ufi.orig_rvaddr - ufi.entry->start))) {
1340 if (locked)
1341 uvmfault_unlockall(&ufi, amap, NULL, NULL);
1342 locked = FALSE;
1343 }
1344
1345 /*
1346 * didn't get the lock? release the page and retry.
1347 */
1348
1349 if (locked == FALSE) {
1350
1351 UVMHIST_LOG(maphist,
1352 " wasn't able to relock after fault: retry",
1353 0,0,0,0);
1354 if (uobjpage->flags & PG_WANTED)
1355 /* still holding object lock */
1356 thread_wakeup(uobjpage);
1357
1358 if (uobjpage->flags & PG_RELEASED) {
1359 uvmexp.fltpgrele++;
1360 #ifdef DIAGNOSTIC
1361 if (uobj->pgops->pgo_releasepg == NULL)
1362 panic("uvm_fault: object has no releasepg function");
1363 #endif
1364 /* frees page */
1365 if (uobj->pgops->pgo_releasepg(uobjpage,NULL))
1366 /* unlock if still alive */
1367 simple_unlock(&uobj->vmobjlock);
1368 goto ReFault;
1369 }
1370
1371 uvm_lock_pageq();
1372 /* make sure it is in queues */
1373 uvm_pageactivate(uobjpage);
1374
1375 uvm_unlock_pageq();
1376 uobjpage->flags &= ~(PG_BUSY|PG_WANTED);
1377 UVM_PAGE_OWN(uobjpage, NULL);
1378 simple_unlock(&uobj->vmobjlock);
1379 goto ReFault;
1380
1381 }
1382
1383 /*
1384 * we have the data in uobjpage which is PG_BUSY and
1385 * !PG_RELEASED. we are holding object lock (so the page
1386 * can't be released on us).
1387 */
1388
1389 /* locked: maps(read), amap(if !null), uobj, uobjpage */
1390
1391 }
1392
1393 /*
1394 * locked:
1395 * maps(read), amap(if !null), uobj(if !null), uobjpage(if uobj)
1396 */
1397
1398 /*
1399 * notes:
1400 * - at this point uobjpage can not be NULL
1401 * - at this point uobjpage can not be PG_RELEASED (since we checked
1402 * for it above)
1403 * - at this point uobjpage could be PG_WANTED (handle later)
1404 */
1405
1406 if (promote == FALSE) {
1407
1408 /*
1409 * we are not promoting. if the mapping is COW ensure that we
1410 * don't give more access than we should (e.g. when doing a read
1411 * fault on a COPYONWRITE mapping we want to map the COW page in
1412 * R/O even though the entry protection could be R/W).
1413 *
1414 * set "pg" to the page we want to map in (uobjpage, usually)
1415 */
1416
1417 uvmexp.flt_obj++;
1418 if (UVM_ET_ISCOPYONWRITE(ufi.entry))
1419 enter_prot &= ~VM_PROT_WRITE;
1420 pg = uobjpage; /* map in the actual object */
1421
1422 /* assert(uobjpage != PGO_DONTCARE) */
1423
1424 /*
1425 * we are faulting directly on the page. be careful
1426 * about writing to loaned pages...
1427 */
1428 if (uobjpage->loan_count) {
1429
1430 if ((access_type & VM_PROT_WRITE) == 0) {
1431 /* read fault: cap the protection at readonly */
1432 /* cap! */
1433 enter_prot = enter_prot & ~VM_PROT_WRITE;
1434 } else {
1435 /* write fault: must break the loan here */
1436
1437 /* alloc new un-owned page */
1438 pg = uvm_pagealloc(NULL, 0, NULL);
1439
1440 if (pg == NULL) {
1441 /*
1442 * drop ownership of page, it can't
1443 * be released
1444 * */
1445 if (uobjpage->flags & PG_WANTED)
1446 thread_wakeup(uobjpage);
1447 uobjpage->flags &= ~(PG_BUSY|PG_WANTED);
1448 UVM_PAGE_OWN(uobjpage, NULL);
1449
1450 uvm_lock_pageq();
1451 /* activate: we will need it later */
1452 uvm_pageactivate(uobjpage);
1453
1454 uvm_unlock_pageq();
1455 uvmfault_unlockall(&ufi, amap, uobj,
1456 NULL);
1457 UVMHIST_LOG(maphist,
1458 " out of RAM breaking loan, waiting",
1459 0,0,0,0);
1460 uvmexp.fltnoram++;
1461 uvm_wait("flt_noram4");
1462 goto ReFault;
1463 }
1464
1465 /*
1466 * copy the data from the old page to the new
1467 * one and clear the fake/clean flags on the
1468 * new page (keep it busy). force a reload
1469 * of the old page by clearing it from all
1470 * pmaps. then lock the page queues to
1471 * rename the pages.
1472 */
1473 uvm_pagecopy(uobjpage, pg); /* old -> new */
1474 pg->flags &= ~(PG_FAKE|PG_CLEAN);
1475 pmap_page_protect(PMAP_PGARG(uobjpage),
1476 VM_PROT_NONE);
1477 if (uobjpage->flags & PG_WANTED)
1478 thread_wakeup(uobjpage);
1479 /* uobj still locked */
1480 uobjpage->flags &= ~(PG_WANTED|PG_BUSY);
1481 UVM_PAGE_OWN(uobjpage, NULL);
1482
1483 uvm_lock_pageq();
1484 offset = uobjpage->offset;
1485 /* remove old page */
1486 uvm_pagerealloc(uobjpage, NULL, 0);
1487
1488 /*
1489 * at this point we have absolutely no
1490 * control over uobjpage
1491 */
1492 /* install new page */
1493 uvm_pagerealloc(pg, uobj, offset);
1494 uvm_unlock_pageq();
1495
1496 /*
1497 * done! loan is broken and "pg" is
1498 * PG_BUSY. it can now replace uobjpage.
1499 */
1500
1501 uobjpage = pg;
1502
1503 } /* write fault case */
1504 } /* if loan_count */
1505
1506 } else {
1507
1508 /*
1509 * if we are going to promote the data to an anon we
1510 * allocate a blank anon here and plug it into our amap.
1511 */
1512 #if DIAGNOSTIC
1513 if (amap == NULL)
1514 panic("uvm_fault: want to promote data, but no anon");
1515 #endif
1516
1517 anon = uvm_analloc();
1518 if (anon)
1519 pg = uvm_pagealloc(NULL, 0, anon); /* BUSY+CLEAN+FAKE */
1520 #ifdef __GNUC__
1521 else
1522 pg = NULL; /* XXX: gcc */
1523 #endif
1524
1525 /*
1526 * out of memory resources?
1527 */
1528 if (anon == NULL || pg == NULL) {
1529
1530 /*
1531 * arg! must unbusy our page and fail or sleep.
1532 */
1533 if (uobjpage != PGO_DONTCARE) {
1534 if (uobjpage->flags & PG_WANTED)
1535 /* still holding object lock */
1536 thread_wakeup(uobjpage);
1537
1538 uvm_lock_pageq();
1539 /* make sure it is in queues */
1540 uvm_pageactivate(uobjpage);
1541 uvm_unlock_pageq();
1542 /* un-busy! (still locked) */
1543 uobjpage->flags &= ~(PG_BUSY|PG_WANTED);
1544 UVM_PAGE_OWN(uobjpage, NULL);
1545 }
1546
1547 /* unlock and fail ... */
1548 uvmfault_unlockall(&ufi, amap, uobj, NULL);
1549 #ifdef DIAGNOSTIC
1550 if (uvmexp.swpgonly > uvmexp.swpages) {
1551 panic("uvmexp.swpgonly botch");
1552 }
1553 #endif
1554 if (anon == NULL || uvmexp.swpgonly == uvmexp.swpages) {
1555 UVMHIST_LOG(maphist, " promote: out of VM",
1556 0,0,0,0);
1557 uvmexp.fltnoanon++;
1558 return (KERN_RESOURCE_SHORTAGE);
1559 }
1560
1561 UVMHIST_LOG(maphist, " out of RAM, waiting for more",
1562 0,0,0,0);
1563 uvm_anfree(anon);
1564 uvmexp.fltnoram++;
1565 uvm_wait("flt_noram5");
1566 goto ReFault;
1567 }
1568
1569 /*
1570 * fill in the data
1571 */
1572
1573 if (uobjpage != PGO_DONTCARE) {
1574 uvmexp.flt_prcopy++;
1575 /* copy page [pg now dirty] */
1576 uvm_pagecopy(uobjpage, pg);
1577
1578 /*
1579 * promote to shared amap? make sure all sharing
1580 * procs see it
1581 */
1582 if ((amap_flags(amap) & AMAP_SHARED) != 0) {
1583 pmap_page_protect(PMAP_PGARG(uobjpage),
1584 VM_PROT_NONE);
1585 }
1586
1587 /*
1588 * dispose of uobjpage. it can't be PG_RELEASED
1589 * since we still hold the object lock. drop
1590 * handle to uobj as well.
1591 */
1592
1593 if (uobjpage->flags & PG_WANTED)
1594 /* still have the obj lock */
1595 thread_wakeup(uobjpage);
1596 uobjpage->flags &= ~(PG_BUSY|PG_WANTED);
1597 UVM_PAGE_OWN(uobjpage, NULL);
1598 uvm_lock_pageq();
1599 uvm_pageactivate(uobjpage); /* put it back */
1600 uvm_unlock_pageq();
1601 simple_unlock(&uobj->vmobjlock);
1602 uobj = NULL;
1603 UVMHIST_LOG(maphist,
1604 " promote uobjpage 0x%x to anon/page 0x%x/0x%x",
1605 uobjpage, anon, pg, 0);
1606
1607 } else {
1608 uvmexp.flt_przero++;
1609 uvm_pagezero(pg); /* zero page [pg now dirty] */
1610 UVMHIST_LOG(maphist," zero fill anon/page 0x%x/0%x",
1611 anon, pg, 0, 0);
1612 }
1613
1614 amap_add(&ufi.entry->aref, ufi.orig_rvaddr - ufi.entry->start,
1615 anon, 0);
1616
1617 }
1618
1619 /*
1620 * locked:
1621 * maps(read), amap(if !null), uobj(if !null), uobjpage(if uobj)
1622 *
1623 * note: pg is either the uobjpage or the new page in the new anon
1624 */
1625
1626 /*
1627 * all resources are present. we can now map it in and free our
1628 * resources.
1629 */
1630
1631 UVMHIST_LOG(maphist,
1632 " MAPPING: case2: pm=0x%x, va=0x%x, pg=0x%x, promote=%d",
1633 ufi.orig_map->pmap, ufi.orig_rvaddr, pg, promote);
1634 pmap_enter(ufi.orig_map->pmap, ufi.orig_rvaddr, VM_PAGE_TO_PHYS(pg),
1635 enter_prot, wired, access_type);
1636
1637 uvm_lock_pageq();
1638
1639 if (fault_type == VM_FAULT_WIRE) {
1640 uvm_pagewire(pg);
1641 if (pg->pqflags & PQ_AOBJ) {
1642 uao_dropswap(uobj, pg->offset >> PAGE_SHIFT);
1643 }
1644 } else {
1645
1646 /* activate it */
1647 uvm_pageactivate(pg);
1648
1649 }
1650
1651 uvm_unlock_pageq();
1652
1653 if (pg->flags & PG_WANTED)
1654 thread_wakeup(pg); /* lock still held */
1655
1656 /*
1657 * note that pg can't be PG_RELEASED since we did not drop the object
1658 * lock since the last time we checked.
1659 */
1660
1661 pg->flags &= ~(PG_BUSY|PG_FAKE|PG_WANTED);
1662 UVM_PAGE_OWN(pg, NULL);
1663 uvmfault_unlockall(&ufi, amap, uobj, NULL);
1664
1665 UVMHIST_LOG(maphist, "<- done (SUCCESS!)",0,0,0,0);
1666 return (KERN_SUCCESS);
1667 }
1668
1669
1670 /*
1671 * uvm_fault_wire: wire down a range of virtual addresses in a map.
1672 *
1673 * => map should be locked by caller? If so how can we call
1674 * uvm_fault? WRONG.
1675 * => XXXCDC: locking here is all screwed up!!! start with
1676 * uvm_map_pageable and fix it.
1677 */
1678
1679 int
1680 uvm_fault_wire(map, start, end)
1681 vm_map_t map;
1682 vaddr_t start, end;
1683 {
1684 vaddr_t va;
1685 pmap_t pmap;
1686 int rv;
1687
1688 pmap = vm_map_pmap(map);
1689
1690 /*
1691 * call pmap pageable: this tells the pmap layer to lock down these
1692 * page tables.
1693 */
1694
1695 pmap_pageable(pmap, start, end, FALSE);
1696
1697 /*
1698 * now fault it in page at a time. if the fault fails then we have
1699 * to undo what we have done. note that in uvm_fault VM_PROT_NONE
1700 * is replaced with the max protection if fault_type is VM_FAULT_WIRE.
1701 */
1702
1703 for (va = start ; va < end ; va += PAGE_SIZE) {
1704 rv = uvm_fault(map, va, VM_FAULT_WIRE, VM_PROT_NONE);
1705 if (rv) {
1706 if (va != start) {
1707 uvm_fault_unwire(map->pmap, start, va);
1708 }
1709 return (rv);
1710 }
1711 }
1712
1713 return (KERN_SUCCESS);
1714 }
1715
1716 /*
1717 * uvm_fault_unwire(): unwire range of virtual space.
1718 *
1719 * => caller holds reference to pmap (via its map)
1720 */
1721
1722 void
1723 uvm_fault_unwire(pmap, start, end)
1724 struct pmap *pmap;
1725 vaddr_t start, end;
1726 {
1727 vaddr_t va;
1728 paddr_t pa;
1729 struct vm_page *pg;
1730
1731 /*
1732 * we assume that the area we are unwiring has actually been wired
1733 * in the first place. this means that we should be able to extract
1734 * the PAs from the pmap. we also lock out the page daemon so that
1735 * we can call uvm_pageunwire.
1736 */
1737
1738 uvm_lock_pageq();
1739
1740 for (va = start; va < end ; va += PAGE_SIZE) {
1741 pa = pmap_extract(pmap, va);
1742
1743 /* XXX: assumes PA 0 cannot be in map */
1744 if (pa == (paddr_t) 0) {
1745 panic("uvm_fault_unwire: unwiring non-wired memory");
1746 }
1747 pmap_change_wiring(pmap, va, FALSE); /* tell the pmap */
1748 pg = PHYS_TO_VM_PAGE(pa);
1749 if (pg)
1750 uvm_pageunwire(pg);
1751 }
1752
1753 uvm_unlock_pageq();
1754
1755 /*
1756 * now we call pmap_pageable to let the pmap know that the page tables
1757 * in this space no longer need to be wired.
1758 */
1759
1760 pmap_pageable(pmap, start, end, TRUE);
1761
1762 }
1763