uvm_fault.c revision 1.230 1 1.230 dholland /* $NetBSD: uvm_fault.c,v 1.230 2022/06/03 00:21:44 dholland Exp $ */
2 1.1 mrg
3 1.1 mrg /*
4 1.1 mrg * Copyright (c) 1997 Charles D. Cranor and Washington University.
5 1.1 mrg * All rights reserved.
6 1.1 mrg *
7 1.1 mrg * Redistribution and use in source and binary forms, with or without
8 1.1 mrg * modification, are permitted provided that the following conditions
9 1.1 mrg * are met:
10 1.1 mrg * 1. Redistributions of source code must retain the above copyright
11 1.1 mrg * notice, this list of conditions and the following disclaimer.
12 1.1 mrg * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 mrg * notice, this list of conditions and the following disclaimer in the
14 1.1 mrg * documentation and/or other materials provided with the distribution.
15 1.1 mrg *
16 1.1 mrg * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 1.1 mrg * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 1.1 mrg * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 1.1 mrg * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 1.1 mrg * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 1.1 mrg * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 1.1 mrg * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 1.1 mrg * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 1.1 mrg * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 1.1 mrg * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 1.4 mrg *
27 1.4 mrg * from: Id: uvm_fault.c,v 1.1.2.23 1998/02/06 05:29:05 chs Exp
28 1.1 mrg */
29 1.1 mrg
30 1.1 mrg /*
31 1.1 mrg * uvm_fault.c: fault handler
32 1.1 mrg */
33 1.71 lukem
34 1.71 lukem #include <sys/cdefs.h>
35 1.230 dholland __KERNEL_RCSID(0, "$NetBSD: uvm_fault.c,v 1.230 2022/06/03 00:21:44 dholland Exp $");
36 1.71 lukem
37 1.71 lukem #include "opt_uvmhist.h"
38 1.1 mrg
39 1.1 mrg #include <sys/param.h>
40 1.1 mrg #include <sys/systm.h>
41 1.210 martin #include <sys/atomic.h>
42 1.1 mrg #include <sys/kernel.h>
43 1.1 mrg #include <sys/mman.h>
44 1.1 mrg
45 1.1 mrg #include <uvm/uvm.h>
46 1.227 ad #include <uvm/uvm_pdpolicy.h>
47 1.1 mrg
48 1.1 mrg /*
49 1.1 mrg *
50 1.1 mrg * a word on page faults:
51 1.1 mrg *
52 1.1 mrg * types of page faults we handle:
53 1.1 mrg *
54 1.1 mrg * CASE 1: upper layer faults CASE 2: lower layer faults
55 1.1 mrg *
56 1.1 mrg * CASE 1A CASE 1B CASE 2A CASE 2B
57 1.1 mrg * read/write1 write>1 read/write +-cow_write/zero
58 1.63 chs * | | | |
59 1.1 mrg * +--|--+ +--|--+ +-----+ + | + | +-----+
60 1.127 uebayasi * amap | V | | ---------> new | | | | ^ |
61 1.1 mrg * +-----+ +-----+ +-----+ + | + | +--|--+
62 1.1 mrg * | | |
63 1.1 mrg * +-----+ +-----+ +--|--+ | +--|--+
64 1.127 uebayasi * uobj | d/c | | d/c | | V | +----+ |
65 1.1 mrg * +-----+ +-----+ +-----+ +-----+
66 1.1 mrg *
67 1.1 mrg * d/c = don't care
68 1.63 chs *
69 1.1 mrg * case [0]: layerless fault
70 1.1 mrg * no amap or uobj is present. this is an error.
71 1.1 mrg *
72 1.1 mrg * case [1]: upper layer fault [anon active]
73 1.1 mrg * 1A: [read] or [write with anon->an_ref == 1]
74 1.127 uebayasi * I/O takes place in upper level anon and uobj is not touched.
75 1.1 mrg * 1B: [write with anon->an_ref > 1]
76 1.1 mrg * new anon is alloc'd and data is copied off ["COW"]
77 1.1 mrg *
78 1.1 mrg * case [2]: lower layer fault [uobj]
79 1.1 mrg * 2A: [read on non-NULL uobj] or [write to non-copy_on_write area]
80 1.1 mrg * I/O takes place directly in object.
81 1.1 mrg * 2B: [write to copy_on_write] or [read on NULL uobj]
82 1.63 chs * data is "promoted" from uobj to a new anon.
83 1.1 mrg * if uobj is null, then we zero fill.
84 1.1 mrg *
85 1.1 mrg * we follow the standard UVM locking protocol ordering:
86 1.1 mrg *
87 1.63 chs * MAPS => AMAP => UOBJ => ANON => PAGE QUEUES (PQ)
88 1.1 mrg * we hold a PG_BUSY page if we unlock for I/O
89 1.1 mrg *
90 1.1 mrg *
91 1.1 mrg * the code is structured as follows:
92 1.63 chs *
93 1.1 mrg * - init the "IN" params in the ufi structure
94 1.177 yamt * ReFault: (ERESTART returned to the loop in uvm_fault_internal)
95 1.1 mrg * - do lookups [locks maps], check protection, handle needs_copy
96 1.1 mrg * - check for case 0 fault (error)
97 1.1 mrg * - establish "range" of fault
98 1.1 mrg * - if we have an amap lock it and extract the anons
99 1.1 mrg * - if sequential advice deactivate pages behind us
100 1.1 mrg * - at the same time check pmap for unmapped areas and anon for pages
101 1.1 mrg * that we could map in (and do map it if found)
102 1.1 mrg * - check object for resident pages that we could map in
103 1.1 mrg * - if (case 2) goto Case2
104 1.1 mrg * - >>> handle case 1
105 1.1 mrg * - ensure source anon is resident in RAM
106 1.1 mrg * - if case 1B alloc new anon and copy from source
107 1.1 mrg * - map the correct page in
108 1.1 mrg * Case2:
109 1.1 mrg * - >>> handle case 2
110 1.1 mrg * - ensure source page is resident (if uobj)
111 1.1 mrg * - if case 2B alloc new anon and copy from source (could be zero
112 1.1 mrg * fill if uobj == NULL)
113 1.1 mrg * - map the correct page in
114 1.1 mrg * - done!
115 1.1 mrg *
116 1.1 mrg * note on paging:
117 1.1 mrg * if we have to do I/O we place a PG_BUSY page in the correct object,
118 1.1 mrg * unlock everything, and do the I/O. when I/O is done we must reverify
119 1.1 mrg * the state of the world before assuming that our data structures are
120 1.1 mrg * valid. [because mappings could change while the map is unlocked]
121 1.1 mrg *
122 1.1 mrg * alternative 1: unbusy the page in question and restart the page fault
123 1.1 mrg * from the top (ReFault). this is easy but does not take advantage
124 1.63 chs * of the information that we already have from our previous lookup,
125 1.1 mrg * although it is possible that the "hints" in the vm_map will help here.
126 1.1 mrg *
127 1.1 mrg * alternative 2: the system already keeps track of a "version" number of
128 1.1 mrg * a map. [i.e. every time you write-lock a map (e.g. to change a
129 1.1 mrg * mapping) you bump the version number up by one...] so, we can save
130 1.1 mrg * the version number of the map before we release the lock and start I/O.
131 1.1 mrg * then when I/O is done we can relock and check the version numbers
132 1.1 mrg * to see if anything changed. this might save us some over 1 because
133 1.1 mrg * we don't have to unbusy the page and may be less compares(?).
134 1.1 mrg *
135 1.1 mrg * alternative 3: put in backpointers or a way to "hold" part of a map
136 1.1 mrg * in place while I/O is in progress. this could be complex to
137 1.1 mrg * implement (especially with structures like amap that can be referenced
138 1.1 mrg * by multiple map entries, and figuring out what should wait could be
139 1.1 mrg * complex as well...).
140 1.1 mrg *
141 1.125 ad * we use alternative 2. given that we are multi-threaded now we may want
142 1.125 ad * to reconsider the choice.
143 1.1 mrg */
144 1.1 mrg
145 1.1 mrg /*
146 1.1 mrg * local data structures
147 1.1 mrg */
148 1.1 mrg
149 1.1 mrg struct uvm_advice {
150 1.7 mrg int advice;
151 1.7 mrg int nback;
152 1.7 mrg int nforw;
153 1.1 mrg };
154 1.1 mrg
155 1.1 mrg /*
156 1.1 mrg * page range array:
157 1.63 chs * note: index in array must match "advice" value
158 1.1 mrg * XXX: borrowed numbers from freebsd. do they work well for us?
159 1.1 mrg */
160 1.1 mrg
161 1.95 thorpej static const struct uvm_advice uvmadvice[] = {
162 1.186 rmind { UVM_ADV_NORMAL, 3, 4 },
163 1.186 rmind { UVM_ADV_RANDOM, 0, 0 },
164 1.186 rmind { UVM_ADV_SEQUENTIAL, 8, 7},
165 1.1 mrg };
166 1.1 mrg
167 1.69 chs #define UVM_MAXRANGE 16 /* must be MAX() of nback+nforw+1 */
168 1.1 mrg
169 1.1 mrg /*
170 1.1 mrg * private prototypes
171 1.1 mrg */
172 1.1 mrg
173 1.1 mrg /*
174 1.193 tls * externs from other modules
175 1.193 tls */
176 1.193 tls
177 1.193 tls extern int start_init_exec; /* Is init_main() done / init running? */
178 1.193 tls
179 1.193 tls /*
180 1.1 mrg * inline functions
181 1.1 mrg */
182 1.1 mrg
183 1.1 mrg /*
184 1.1 mrg * uvmfault_anonflush: try and deactivate pages in specified anons
185 1.1 mrg *
186 1.1 mrg * => does not have to deactivate page if it is busy
187 1.1 mrg */
188 1.1 mrg
189 1.103 perry static inline void
190 1.95 thorpej uvmfault_anonflush(struct vm_anon **anons, int n)
191 1.1 mrg {
192 1.7 mrg int lcv;
193 1.7 mrg struct vm_page *pg;
194 1.63 chs
195 1.163 uebayasi for (lcv = 0; lcv < n; lcv++) {
196 1.7 mrg if (anons[lcv] == NULL)
197 1.7 mrg continue;
198 1.222 ad KASSERT(rw_lock_held(anons[lcv]->an_lock));
199 1.94 yamt pg = anons[lcv]->an_page;
200 1.117 yamt if (pg && (pg->flags & PG_BUSY) == 0) {
201 1.214 ad uvm_pagelock(pg);
202 1.212 ad uvm_pagedeactivate(pg);
203 1.214 ad uvm_pageunlock(pg);
204 1.7 mrg }
205 1.7 mrg }
206 1.1 mrg }
207 1.1 mrg
208 1.1 mrg /*
209 1.1 mrg * normal functions
210 1.1 mrg */
211 1.1 mrg
212 1.1 mrg /*
213 1.1 mrg * uvmfault_amapcopy: clear "needs_copy" in a map.
214 1.1 mrg *
215 1.1 mrg * => called with VM data structures unlocked (usually, see below)
216 1.1 mrg * => we get a write lock on the maps and clear needs_copy for a VA
217 1.1 mrg * => if we are out of RAM we sleep (waiting for more)
218 1.1 mrg */
219 1.1 mrg
220 1.7 mrg static void
221 1.95 thorpej uvmfault_amapcopy(struct uvm_faultinfo *ufi)
222 1.1 mrg {
223 1.69 chs for (;;) {
224 1.1 mrg
225 1.7 mrg /*
226 1.7 mrg * no mapping? give up.
227 1.7 mrg */
228 1.1 mrg
229 1.119 thorpej if (uvmfault_lookup(ufi, true) == false)
230 1.7 mrg return;
231 1.1 mrg
232 1.7 mrg /*
233 1.7 mrg * copy if needed.
234 1.7 mrg */
235 1.1 mrg
236 1.7 mrg if (UVM_ET_ISNEEDSCOPY(ufi->entry))
237 1.108 yamt amap_copy(ufi->map, ufi->entry, AMAP_COPY_NOWAIT,
238 1.13 chuck ufi->orig_rvaddr, ufi->orig_rvaddr + 1);
239 1.1 mrg
240 1.7 mrg /*
241 1.7 mrg * didn't work? must be out of RAM. unlock and sleep.
242 1.7 mrg */
243 1.7 mrg
244 1.7 mrg if (UVM_ET_ISNEEDSCOPY(ufi->entry)) {
245 1.119 thorpej uvmfault_unlockmaps(ufi, true);
246 1.7 mrg uvm_wait("fltamapcopy");
247 1.7 mrg continue;
248 1.7 mrg }
249 1.7 mrg
250 1.7 mrg /*
251 1.7 mrg * got it! unlock and return.
252 1.7 mrg */
253 1.63 chs
254 1.119 thorpej uvmfault_unlockmaps(ufi, true);
255 1.7 mrg return;
256 1.7 mrg }
257 1.7 mrg /*NOTREACHED*/
258 1.1 mrg }
259 1.1 mrg
260 1.1 mrg /*
261 1.1 mrg * uvmfault_anonget: get data in an anon into a non-busy, non-released
262 1.1 mrg * page in that anon.
263 1.1 mrg *
264 1.187 rmind * => Map, amap and thus anon should be locked by caller.
265 1.187 rmind * => If we fail, we unlock everything and error is returned.
266 1.187 rmind * => If we are successful, return with everything still locked.
267 1.187 rmind * => We do not move the page on the queues [gets moved later]. If we
268 1.187 rmind * allocate a new page [we_own], it gets put on the queues. Either way,
269 1.187 rmind * the result is that the page is on the queues at return time
270 1.187 rmind * => For pages which are on loan from a uvm_object (and thus are not owned
271 1.187 rmind * by the anon): if successful, return with the owning object locked.
272 1.187 rmind * The caller must unlock this object when it unlocks everything else.
273 1.1 mrg */
274 1.1 mrg
275 1.47 chs int
276 1.95 thorpej uvmfault_anonget(struct uvm_faultinfo *ufi, struct vm_amap *amap,
277 1.95 thorpej struct vm_anon *anon)
278 1.7 mrg {
279 1.7 mrg struct vm_page *pg;
280 1.222 ad krw_t lock_type;
281 1.58 chs int error;
282 1.187 rmind
283 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
284 1.222 ad KASSERT(rw_lock_held(anon->an_lock));
285 1.188 rmind KASSERT(anon->an_lock == amap->am_lock);
286 1.53 thorpej
287 1.187 rmind /* Increment the counters.*/
288 1.213 ad cpu_count(CPU_COUNT_FLTANGET, 1);
289 1.187 rmind if (anon->an_page) {
290 1.124 ad curlwp->l_ru.ru_minflt++;
291 1.187 rmind } else {
292 1.124 ad curlwp->l_ru.ru_majflt++;
293 1.187 rmind }
294 1.187 rmind error = 0;
295 1.7 mrg
296 1.63 chs /*
297 1.187 rmind * Loop until we get the anon data, or fail.
298 1.7 mrg */
299 1.7 mrg
300 1.69 chs for (;;) {
301 1.187 rmind bool we_own, locked;
302 1.187 rmind /*
303 1.187 rmind * Note: 'we_own' will become true if we set PG_BUSY on a page.
304 1.187 rmind */
305 1.187 rmind we_own = false;
306 1.94 yamt pg = anon->an_page;
307 1.1 mrg
308 1.7 mrg /*
309 1.187 rmind * If there is a resident page and it is loaned, then anon
310 1.187 rmind * may not own it. Call out to uvm_anon_lockloanpg() to
311 1.187 rmind * identify and lock the real owner of the page.
312 1.7 mrg */
313 1.7 mrg
314 1.7 mrg if (pg && pg->loan_count)
315 1.13 chuck pg = uvm_anon_lockloanpg(anon);
316 1.7 mrg
317 1.7 mrg /*
318 1.187 rmind * Is page resident? Make sure it is not busy/released.
319 1.7 mrg */
320 1.7 mrg
321 1.222 ad lock_type = rw_lock_op(anon->an_lock);
322 1.7 mrg if (pg) {
323 1.7 mrg
324 1.7 mrg /*
325 1.7 mrg * at this point, if the page has a uobject [meaning
326 1.7 mrg * we have it on loan], then that uobject is locked
327 1.7 mrg * by us! if the page is busy, we drop all the
328 1.7 mrg * locks (including uobject) and try again.
329 1.7 mrg */
330 1.7 mrg
331 1.69 chs if ((pg->flags & PG_BUSY) == 0) {
332 1.7 mrg UVMHIST_LOG(maphist, "<- OK",0,0,0,0);
333 1.187 rmind return 0;
334 1.7 mrg }
335 1.213 ad cpu_count(CPU_COUNT_FLTPGWAIT, 1);
336 1.7 mrg
337 1.7 mrg /*
338 1.187 rmind * The last unlock must be an atomic unlock and wait
339 1.187 rmind * on the owner of page.
340 1.7 mrg */
341 1.69 chs
342 1.187 rmind if (pg->uobject) {
343 1.187 rmind /* Owner of page is UVM object. */
344 1.186 rmind uvmfault_unlockall(ufi, amap, NULL);
345 1.7 mrg UVMHIST_LOG(maphist, " unlock+wait on uobj",0,
346 1.7 mrg 0,0,0);
347 1.218 ad uvm_pagewait(pg, pg->uobject->vmobjlock, "anonget1");
348 1.7 mrg } else {
349 1.187 rmind /* Owner of page is anon. */
350 1.186 rmind uvmfault_unlockall(ufi, NULL, NULL);
351 1.7 mrg UVMHIST_LOG(maphist, " unlock+wait on anon",0,
352 1.7 mrg 0,0,0);
353 1.218 ad uvm_pagewait(pg, anon->an_lock, "anonget2");
354 1.7 mrg }
355 1.7 mrg } else {
356 1.101 yamt #if defined(VMSWAP)
357 1.7 mrg /*
358 1.222 ad * No page, therefore allocate one. A write lock is
359 1.222 ad * required for this. If the caller didn't supply
360 1.222 ad * one, fail now and have them retry.
361 1.7 mrg */
362 1.69 chs
363 1.222 ad if (lock_type == RW_READER) {
364 1.222 ad return ENOLCK;
365 1.222 ad }
366 1.180 enami pg = uvm_pagealloc(NULL,
367 1.180 enami ufi != NULL ? ufi->orig_rvaddr : 0,
368 1.185 tsutsui anon, ufi != NULL ? UVM_FLAG_COLORMATCH : 0);
369 1.187 rmind if (pg == NULL) {
370 1.187 rmind /* Out of memory. Wait a little. */
371 1.186 rmind uvmfault_unlockall(ufi, amap, NULL);
372 1.213 ad cpu_count(CPU_COUNT_FLTNORAM, 1);
373 1.7 mrg UVMHIST_LOG(maphist, " noram -- UVM_WAIT",0,
374 1.7 mrg 0,0,0);
375 1.93 yamt if (!uvm_reclaimable()) {
376 1.93 yamt return ENOMEM;
377 1.93 yamt }
378 1.7 mrg uvm_wait("flt_noram1");
379 1.7 mrg } else {
380 1.187 rmind /* PG_BUSY bit is set. */
381 1.119 thorpej we_own = true;
382 1.186 rmind uvmfault_unlockall(ufi, amap, NULL);
383 1.7 mrg
384 1.7 mrg /*
385 1.215 ad * Pass a PG_BUSY+PG_FAKE clean page into
386 1.187 rmind * the uvm_swap_get() function with all data
387 1.187 rmind * structures unlocked. Note that it is OK
388 1.187 rmind * to read an_swslot here, because we hold
389 1.187 rmind * PG_BUSY on the page.
390 1.7 mrg */
391 1.213 ad cpu_count(CPU_COUNT_PAGEINS, 1);
392 1.58 chs error = uvm_swap_get(pg, anon->an_swslot,
393 1.7 mrg PGO_SYNCIO);
394 1.7 mrg
395 1.7 mrg /*
396 1.187 rmind * We clean up after the I/O below in the
397 1.187 rmind * 'we_own' case.
398 1.7 mrg */
399 1.7 mrg }
400 1.187 rmind #else
401 1.101 yamt panic("%s: no page", __func__);
402 1.101 yamt #endif /* defined(VMSWAP) */
403 1.7 mrg }
404 1.7 mrg
405 1.7 mrg /*
406 1.187 rmind * Re-lock the map and anon.
407 1.7 mrg */
408 1.7 mrg
409 1.7 mrg locked = uvmfault_relock(ufi);
410 1.186 rmind if (locked || we_own) {
411 1.222 ad rw_enter(anon->an_lock, lock_type);
412 1.7 mrg }
413 1.7 mrg
414 1.7 mrg /*
415 1.187 rmind * If we own the page (i.e. we set PG_BUSY), then we need
416 1.187 rmind * to clean up after the I/O. There are three cases to
417 1.7 mrg * consider:
418 1.187 rmind *
419 1.187 rmind * 1) Page was released during I/O: free anon and ReFault.
420 1.187 rmind * 2) I/O not OK. Free the page and cause the fault to fail.
421 1.187 rmind * 3) I/O OK! Activate the page and sync with the non-we_own
422 1.187 rmind * case (i.e. drop anon lock if not locked).
423 1.7 mrg */
424 1.63 chs
425 1.7 mrg if (we_own) {
426 1.222 ad KASSERT(lock_type == RW_WRITER);
427 1.101 yamt #if defined(VMSWAP)
428 1.58 chs if (error) {
429 1.1 mrg
430 1.47 chs /*
431 1.187 rmind * Remove the swap slot from the anon and
432 1.187 rmind * mark the anon as having no real slot.
433 1.187 rmind * Do not free the swap slot, thus preventing
434 1.47 chs * it from being used again.
435 1.47 chs */
436 1.69 chs
437 1.187 rmind if (anon->an_swslot > 0) {
438 1.84 pk uvm_swap_markbad(anon->an_swslot, 1);
439 1.187 rmind }
440 1.47 chs anon->an_swslot = SWSLOT_BAD;
441 1.47 chs
442 1.187 rmind if ((pg->flags & PG_RELEASED) != 0) {
443 1.88 yamt goto released;
444 1.187 rmind }
445 1.88 yamt
446 1.47 chs /*
447 1.187 rmind * Note: page was never !PG_BUSY, so it
448 1.187 rmind * cannot be mapped and thus no need to
449 1.187 rmind * pmap_page_protect() it.
450 1.7 mrg */
451 1.69 chs
452 1.7 mrg uvm_pagefree(pg);
453 1.7 mrg
454 1.187 rmind if (locked) {
455 1.186 rmind uvmfault_unlockall(ufi, NULL, NULL);
456 1.187 rmind }
457 1.216 ad rw_exit(anon->an_lock);
458 1.7 mrg UVMHIST_LOG(maphist, "<- ERROR", 0,0,0,0);
459 1.58 chs return error;
460 1.7 mrg }
461 1.63 chs
462 1.88 yamt if ((pg->flags & PG_RELEASED) != 0) {
463 1.88 yamt released:
464 1.88 yamt KASSERT(anon->an_ref == 0);
465 1.88 yamt
466 1.88 yamt /*
467 1.187 rmind * Released while we had unlocked amap.
468 1.88 yamt */
469 1.88 yamt
470 1.187 rmind if (locked) {
471 1.186 rmind uvmfault_unlockall(ufi, NULL, NULL);
472 1.187 rmind }
473 1.88 yamt uvm_anon_release(anon);
474 1.88 yamt
475 1.88 yamt if (error) {
476 1.88 yamt UVMHIST_LOG(maphist,
477 1.88 yamt "<- ERROR/RELEASED", 0,0,0,0);
478 1.88 yamt return error;
479 1.88 yamt }
480 1.88 yamt
481 1.88 yamt UVMHIST_LOG(maphist, "<- RELEASED", 0,0,0,0);
482 1.88 yamt return ERESTART;
483 1.88 yamt }
484 1.88 yamt
485 1.7 mrg /*
486 1.187 rmind * We have successfully read the page, activate it.
487 1.7 mrg */
488 1.69 chs
489 1.214 ad uvm_pagelock(pg);
490 1.7 mrg uvm_pageactivate(pg);
491 1.219 ad uvm_pagewakeup(pg);
492 1.214 ad uvm_pageunlock(pg);
493 1.219 ad pg->flags &= ~(PG_BUSY|PG_FAKE);
494 1.215 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_UNKNOWN);
495 1.219 ad UVM_PAGE_OWN(pg, NULL);
496 1.187 rmind #else
497 1.101 yamt panic("%s: we_own", __func__);
498 1.101 yamt #endif /* defined(VMSWAP) */
499 1.7 mrg }
500 1.7 mrg
501 1.7 mrg /*
502 1.187 rmind * We were not able to re-lock the map - restart the fault.
503 1.7 mrg */
504 1.7 mrg
505 1.7 mrg if (!locked) {
506 1.186 rmind if (we_own) {
507 1.216 ad rw_exit(anon->an_lock);
508 1.186 rmind }
509 1.7 mrg UVMHIST_LOG(maphist, "<- REFAULT", 0,0,0,0);
510 1.187 rmind return ERESTART;
511 1.7 mrg }
512 1.7 mrg
513 1.7 mrg /*
514 1.187 rmind * Verify that no one has touched the amap and moved
515 1.187 rmind * the anon on us.
516 1.7 mrg */
517 1.1 mrg
518 1.186 rmind if (ufi != NULL && amap_lookup(&ufi->entry->aref,
519 1.186 rmind ufi->orig_rvaddr - ufi->entry->start) != anon) {
520 1.63 chs
521 1.186 rmind uvmfault_unlockall(ufi, amap, NULL);
522 1.7 mrg UVMHIST_LOG(maphist, "<- REFAULT", 0,0,0,0);
523 1.187 rmind return ERESTART;
524 1.7 mrg }
525 1.63 chs
526 1.7 mrg /*
527 1.187 rmind * Retry..
528 1.7 mrg */
529 1.1 mrg
530 1.213 ad cpu_count(CPU_COUNT_FLTANRETRY, 1);
531 1.7 mrg continue;
532 1.69 chs }
533 1.7 mrg /*NOTREACHED*/
534 1.1 mrg }
535 1.1 mrg
536 1.1 mrg /*
537 1.106 yamt * uvmfault_promote: promote data to a new anon. used for 1B and 2B.
538 1.106 yamt *
539 1.106 yamt * 1. allocate an anon and a page.
540 1.106 yamt * 2. fill its contents.
541 1.106 yamt * 3. put it into amap.
542 1.106 yamt *
543 1.106 yamt * => if we fail (result != 0) we unlock everything.
544 1.106 yamt * => on success, return a new locked anon via 'nanon'.
545 1.106 yamt * (*nanon)->an_page will be a resident, locked, dirty page.
546 1.183 yamt * => it's caller's responsibility to put the promoted nanon->an_page to the
547 1.183 yamt * page queue.
548 1.106 yamt */
549 1.106 yamt
550 1.106 yamt static int
551 1.106 yamt uvmfault_promote(struct uvm_faultinfo *ufi,
552 1.106 yamt struct vm_anon *oanon,
553 1.106 yamt struct vm_page *uobjpage,
554 1.106 yamt struct vm_anon **nanon, /* OUT: allocated anon */
555 1.106 yamt struct vm_anon **spare)
556 1.106 yamt {
557 1.106 yamt struct vm_amap *amap = ufi->entry->aref.ar_amap;
558 1.106 yamt struct uvm_object *uobj;
559 1.106 yamt struct vm_anon *anon;
560 1.106 yamt struct vm_page *pg;
561 1.106 yamt struct vm_page *opg;
562 1.106 yamt int error;
563 1.106 yamt UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
564 1.106 yamt
565 1.106 yamt if (oanon) {
566 1.106 yamt /* anon COW */
567 1.106 yamt opg = oanon->an_page;
568 1.106 yamt KASSERT(opg != NULL);
569 1.106 yamt KASSERT(opg->uobject == NULL || opg->loan_count > 0);
570 1.106 yamt } else if (uobjpage != PGO_DONTCARE) {
571 1.106 yamt /* object-backed COW */
572 1.106 yamt opg = uobjpage;
573 1.227 ad KASSERT(rw_lock_held(opg->uobject->vmobjlock));
574 1.106 yamt } else {
575 1.106 yamt /* ZFOD */
576 1.106 yamt opg = NULL;
577 1.106 yamt }
578 1.106 yamt if (opg != NULL) {
579 1.106 yamt uobj = opg->uobject;
580 1.106 yamt } else {
581 1.106 yamt uobj = NULL;
582 1.106 yamt }
583 1.106 yamt
584 1.106 yamt KASSERT(amap != NULL);
585 1.106 yamt KASSERT(uobjpage != NULL);
586 1.216 ad KASSERT(rw_write_held(amap->am_lock));
587 1.186 rmind KASSERT(oanon == NULL || amap->am_lock == oanon->an_lock);
588 1.222 ad KASSERT(uobj == NULL || rw_lock_held(uobj->vmobjlock));
589 1.106 yamt
590 1.106 yamt if (*spare != NULL) {
591 1.106 yamt anon = *spare;
592 1.106 yamt *spare = NULL;
593 1.192 para } else {
594 1.106 yamt anon = uvm_analloc();
595 1.106 yamt }
596 1.106 yamt if (anon) {
597 1.106 yamt
598 1.106 yamt /*
599 1.106 yamt * The new anon is locked.
600 1.106 yamt *
601 1.106 yamt * if opg == NULL, we want a zero'd, dirty page,
602 1.106 yamt * so have uvm_pagealloc() do that for us.
603 1.106 yamt */
604 1.106 yamt
605 1.186 rmind KASSERT(anon->an_lock == NULL);
606 1.186 rmind anon->an_lock = amap->am_lock;
607 1.179 matt pg = uvm_pagealloc(NULL, ufi->orig_rvaddr, anon,
608 1.179 matt UVM_FLAG_COLORMATCH | (opg == NULL ? UVM_PGA_ZERO : 0));
609 1.186 rmind if (pg == NULL) {
610 1.186 rmind anon->an_lock = NULL;
611 1.186 rmind }
612 1.106 yamt } else {
613 1.106 yamt pg = NULL;
614 1.106 yamt }
615 1.106 yamt
616 1.106 yamt /*
617 1.106 yamt * out of memory resources?
618 1.106 yamt */
619 1.106 yamt
620 1.106 yamt if (pg == NULL) {
621 1.106 yamt /* save anon for the next try. */
622 1.106 yamt if (anon != NULL) {
623 1.106 yamt *spare = anon;
624 1.106 yamt }
625 1.106 yamt
626 1.106 yamt /* unlock and fail ... */
627 1.186 rmind uvmfault_unlockall(ufi, amap, uobj);
628 1.106 yamt if (!uvm_reclaimable()) {
629 1.106 yamt UVMHIST_LOG(maphist, "out of VM", 0,0,0,0);
630 1.213 ad cpu_count(CPU_COUNT_FLTNOANON, 1);
631 1.106 yamt error = ENOMEM;
632 1.106 yamt goto done;
633 1.106 yamt }
634 1.106 yamt
635 1.106 yamt UVMHIST_LOG(maphist, "out of RAM, waiting for more", 0,0,0,0);
636 1.213 ad cpu_count(CPU_COUNT_FLTNORAM, 1);
637 1.106 yamt uvm_wait("flt_noram5");
638 1.106 yamt error = ERESTART;
639 1.106 yamt goto done;
640 1.106 yamt }
641 1.106 yamt
642 1.106 yamt /* copy page [pg now dirty] */
643 1.106 yamt if (opg) {
644 1.106 yamt uvm_pagecopy(opg, pg);
645 1.106 yamt }
646 1.215 ad KASSERT(uvm_pagegetdirty(pg) == UVM_PAGE_STATUS_DIRTY);
647 1.106 yamt
648 1.106 yamt amap_add(&ufi->entry->aref, ufi->orig_rvaddr - ufi->entry->start, anon,
649 1.106 yamt oanon != NULL);
650 1.106 yamt
651 1.227 ad /*
652 1.227 ad * from this point on am_lock won't be dropped until the page is
653 1.227 ad * entered, so it's safe to unbusy the page up front.
654 1.227 ad *
655 1.227 ad * uvm_fault_{upper,lower}_done will activate or enqueue the page.
656 1.227 ad */
657 1.227 ad
658 1.227 ad pg = anon->an_page;
659 1.227 ad pg->flags &= ~(PG_BUSY|PG_FAKE);
660 1.227 ad UVM_PAGE_OWN(pg, NULL);
661 1.227 ad
662 1.106 yamt *nanon = anon;
663 1.106 yamt error = 0;
664 1.106 yamt done:
665 1.106 yamt return error;
666 1.106 yamt }
667 1.106 yamt
668 1.203 christos /*
669 1.203 christos * Update statistics after fault resolution.
670 1.203 christos * - maxrss
671 1.203 christos */
672 1.203 christos void
673 1.203 christos uvmfault_update_stats(struct uvm_faultinfo *ufi)
674 1.203 christos {
675 1.203 christos struct vm_map *map;
676 1.204 christos struct vmspace *vm;
677 1.203 christos struct proc *p;
678 1.203 christos vsize_t res;
679 1.203 christos
680 1.203 christos map = ufi->orig_map;
681 1.203 christos
682 1.203 christos p = curproc;
683 1.203 christos KASSERT(p != NULL);
684 1.204 christos vm = p->p_vmspace;
685 1.204 christos
686 1.204 christos if (&vm->vm_map != map)
687 1.203 christos return;
688 1.203 christos
689 1.203 christos res = pmap_resident_count(map->pmap);
690 1.204 christos if (vm->vm_rssmax < res)
691 1.204 christos vm->vm_rssmax = res;
692 1.203 christos }
693 1.106 yamt
694 1.106 yamt /*
695 1.1 mrg * F A U L T - m a i n e n t r y p o i n t
696 1.1 mrg */
697 1.1 mrg
698 1.1 mrg /*
699 1.1 mrg * uvm_fault: page fault handler
700 1.1 mrg *
701 1.1 mrg * => called from MD code to resolve a page fault
702 1.63 chs * => VM data structures usually should be unlocked. however, it is
703 1.1 mrg * possible to call here with the main map locked if the caller
704 1.229 msaitoh * gets a write lock, sets it recursive, and then calls us (c.f.
705 1.1 mrg * uvm_map_pageable). this should be avoided because it keeps
706 1.1 mrg * the map locked off during I/O.
707 1.66 thorpej * => MUST NEVER BE CALLED IN INTERRUPT CONTEXT
708 1.1 mrg */
709 1.1 mrg
710 1.24 mycroft #define MASK(entry) (UVM_ET_ISCOPYONWRITE(entry) ? \
711 1.24 mycroft ~VM_PROT_WRITE : VM_PROT_ALL)
712 1.24 mycroft
713 1.110 drochner /* fault_flag values passed from uvm_fault_wire to uvm_fault_internal */
714 1.130 uebayasi #define UVM_FAULT_WIRE (1 << 0)
715 1.130 uebayasi #define UVM_FAULT_MAXPROT (1 << 1)
716 1.110 drochner
717 1.140 uebayasi struct uvm_faultctx {
718 1.191 yamt
719 1.191 yamt /*
720 1.191 yamt * the following members are set up by uvm_fault_check() and
721 1.191 yamt * read-only after that.
722 1.191 yamt *
723 1.191 yamt * note that narrow is used by uvm_fault_check() to change
724 1.191 yamt * the behaviour after ERESTART.
725 1.191 yamt *
726 1.191 yamt * most of them might change after RESTART if the underlying
727 1.191 yamt * map entry has been changed behind us. an exception is
728 1.191 yamt * wire_paging, which does never change.
729 1.191 yamt */
730 1.140 uebayasi vm_prot_t access_type;
731 1.150 uebayasi vaddr_t startva;
732 1.150 uebayasi int npages;
733 1.150 uebayasi int centeridx;
734 1.191 yamt bool narrow; /* work on a single requested page only */
735 1.191 yamt bool wire_mapping; /* request a PMAP_WIRED mapping
736 1.191 yamt (UVM_FAULT_WIRE or VM_MAPENT_ISWIRED) */
737 1.191 yamt bool wire_paging; /* request uvm_pagewire
738 1.191 yamt (true for UVM_FAULT_WIRE) */
739 1.191 yamt bool cow_now; /* VM_PROT_WRITE is actually requested
740 1.191 yamt (ie. should break COW and page loaning) */
741 1.191 yamt
742 1.191 yamt /*
743 1.191 yamt * enter_prot is set up by uvm_fault_check() and clamped
744 1.191 yamt * (ie. drop the VM_PROT_WRITE bit) in various places in case
745 1.191 yamt * of !cow_now.
746 1.191 yamt */
747 1.191 yamt vm_prot_t enter_prot; /* prot at which we want to enter pages in */
748 1.191 yamt
749 1.191 yamt /*
750 1.191 yamt * the following member is for uvmfault_promote() and ERESTART.
751 1.191 yamt */
752 1.150 uebayasi struct vm_anon *anon_spare;
753 1.191 yamt
754 1.191 yamt /*
755 1.230 dholland * the following is actually a uvm_fault_lower() internal.
756 1.191 yamt * it's here merely for debugging.
757 1.191 yamt * (or due to the mechanical separation of the function?)
758 1.191 yamt */
759 1.168 uebayasi bool promote;
760 1.222 ad
761 1.222 ad /*
762 1.222 ad * type of lock to acquire on objects in both layers.
763 1.222 ad */
764 1.222 ad krw_t lower_lock_type;
765 1.222 ad krw_t upper_lock_type;
766 1.140 uebayasi };
767 1.140 uebayasi
768 1.163 uebayasi static inline int uvm_fault_check(
769 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
770 1.177 yamt struct vm_anon ***, bool);
771 1.163 uebayasi
772 1.163 uebayasi static int uvm_fault_upper(
773 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
774 1.163 uebayasi struct vm_anon **);
775 1.163 uebayasi static inline int uvm_fault_upper_lookup(
776 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
777 1.163 uebayasi struct vm_anon **, struct vm_page **);
778 1.163 uebayasi static inline void uvm_fault_upper_neighbor(
779 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
780 1.163 uebayasi vaddr_t, struct vm_page *, bool);
781 1.163 uebayasi static inline int uvm_fault_upper_loan(
782 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
783 1.163 uebayasi struct vm_anon *, struct uvm_object **);
784 1.163 uebayasi static inline int uvm_fault_upper_promote(
785 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
786 1.163 uebayasi struct uvm_object *, struct vm_anon *);
787 1.163 uebayasi static inline int uvm_fault_upper_direct(
788 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
789 1.163 uebayasi struct uvm_object *, struct vm_anon *);
790 1.163 uebayasi static int uvm_fault_upper_enter(
791 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
792 1.163 uebayasi struct uvm_object *, struct vm_anon *,
793 1.163 uebayasi struct vm_page *, struct vm_anon *);
794 1.169 uebayasi static inline void uvm_fault_upper_done(
795 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
796 1.177 yamt struct vm_anon *, struct vm_page *);
797 1.163 uebayasi
798 1.163 uebayasi static int uvm_fault_lower(
799 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
800 1.163 uebayasi struct vm_page **);
801 1.173 uebayasi static inline void uvm_fault_lower_lookup(
802 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
803 1.163 uebayasi struct vm_page **);
804 1.163 uebayasi static inline void uvm_fault_lower_neighbor(
805 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
806 1.215 ad vaddr_t, struct vm_page *);
807 1.163 uebayasi static inline int uvm_fault_lower_io(
808 1.222 ad struct uvm_faultinfo *, struct uvm_faultctx *,
809 1.163 uebayasi struct uvm_object **, struct vm_page **);
810 1.163 uebayasi static inline int uvm_fault_lower_direct(
811 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
812 1.163 uebayasi struct uvm_object *, struct vm_page *);
813 1.163 uebayasi static inline int uvm_fault_lower_direct_loan(
814 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
815 1.163 uebayasi struct uvm_object *, struct vm_page **,
816 1.163 uebayasi struct vm_page **);
817 1.163 uebayasi static inline int uvm_fault_lower_promote(
818 1.163 uebayasi struct uvm_faultinfo *, struct uvm_faultctx *,
819 1.163 uebayasi struct uvm_object *, struct vm_page *);
820 1.163 uebayasi static int uvm_fault_lower_enter(
821 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
822 1.163 uebayasi struct uvm_object *,
823 1.183 yamt struct vm_anon *, struct vm_page *);
824 1.169 uebayasi static inline void uvm_fault_lower_done(
825 1.177 yamt struct uvm_faultinfo *, const struct uvm_faultctx *,
826 1.177 yamt struct uvm_object *, struct vm_page *);
827 1.138 uebayasi
828 1.7 mrg int
829 1.110 drochner uvm_fault_internal(struct vm_map *orig_map, vaddr_t vaddr,
830 1.110 drochner vm_prot_t access_type, int fault_flag)
831 1.1 mrg {
832 1.7 mrg struct uvm_faultinfo ufi;
833 1.140 uebayasi struct uvm_faultctx flt = {
834 1.140 uebayasi .access_type = access_type,
835 1.146 uebayasi
836 1.146 uebayasi /* don't look for neighborhood * pages on "wire" fault */
837 1.146 uebayasi .narrow = (fault_flag & UVM_FAULT_WIRE) != 0,
838 1.146 uebayasi
839 1.146 uebayasi /* "wire" fault causes wiring of both mapping and paging */
840 1.146 uebayasi .wire_mapping = (fault_flag & UVM_FAULT_WIRE) != 0,
841 1.146 uebayasi .wire_paging = (fault_flag & UVM_FAULT_WIRE) != 0,
842 1.222 ad
843 1.222 ad /*
844 1.222 ad * default lock type to acquire on upper & lower layer
845 1.222 ad * objects: reader. this can be upgraded at any point
846 1.222 ad * during the fault from read -> write and uvm_faultctx
847 1.222 ad * changed to match, but is never downgraded write -> read.
848 1.222 ad */
849 1.222 ad #ifdef __HAVE_UNLOCKED_PMAP /* XXX temporary */
850 1.222 ad .upper_lock_type = RW_WRITER,
851 1.222 ad .lower_lock_type = RW_WRITER,
852 1.222 ad #else
853 1.222 ad .upper_lock_type = RW_READER,
854 1.222 ad .lower_lock_type = RW_READER,
855 1.222 ad #endif
856 1.140 uebayasi };
857 1.177 yamt const bool maxprot = (fault_flag & UVM_FAULT_MAXPROT) != 0;
858 1.137 uebayasi struct vm_anon *anons_store[UVM_MAXRANGE], **anons;
859 1.141 uebayasi struct vm_page *pages_store[UVM_MAXRANGE], **pages;
860 1.140 uebayasi int error;
861 1.196 tls
862 1.228 skrll UVMHIST_FUNC(__func__);
863 1.228 skrll UVMHIST_CALLARGS(maphist, "(map=%#jx, vaddr=%#jx, at=%jd, ff=%jd)",
864 1.201 pgoyette (uintptr_t)orig_map, vaddr, access_type, fault_flag);
865 1.1 mrg
866 1.193 tls /* Don't count anything until user interaction is possible */
867 1.213 ad kpreempt_disable();
868 1.193 tls if (__predict_true(start_init_exec)) {
869 1.213 ad struct cpu_info *ci = curcpu();
870 1.213 ad CPU_COUNT(CPU_COUNT_NFAULT, 1);
871 1.213 ad /* Don't flood RNG subsystem with samples. */
872 1.213 ad if (++(ci->ci_faultrng) == 503) {
873 1.213 ad ci->ci_faultrng = 0;
874 1.213 ad rnd_add_uint32(&curcpu()->ci_data.cpu_uvm->rs,
875 1.213 ad sizeof(vaddr_t) == sizeof(uint32_t) ?
876 1.213 ad (uint32_t)vaddr : sizeof(vaddr_t) ==
877 1.213 ad sizeof(uint64_t) ?
878 1.213 ad (uint32_t)vaddr :
879 1.213 ad (uint32_t)ci->ci_counts[CPU_COUNT_NFAULT]);
880 1.213 ad }
881 1.193 tls }
882 1.213 ad kpreempt_enable();
883 1.213 ad
884 1.7 mrg /*
885 1.7 mrg * init the IN parameters in the ufi
886 1.7 mrg */
887 1.1 mrg
888 1.7 mrg ufi.orig_map = orig_map;
889 1.7 mrg ufi.orig_rvaddr = trunc_page(vaddr);
890 1.7 mrg ufi.orig_size = PAGE_SIZE; /* can't get any smaller than this */
891 1.7 mrg
892 1.142 uebayasi error = ERESTART;
893 1.183 yamt while (error == ERESTART) { /* ReFault: */
894 1.143 uebayasi anons = anons_store;
895 1.143 uebayasi pages = pages_store;
896 1.1 mrg
897 1.177 yamt error = uvm_fault_check(&ufi, &flt, &anons, maxprot);
898 1.143 uebayasi if (error != 0)
899 1.143 uebayasi continue;
900 1.141 uebayasi
901 1.143 uebayasi error = uvm_fault_upper_lookup(&ufi, &flt, anons, pages);
902 1.143 uebayasi if (error != 0)
903 1.143 uebayasi continue;
904 1.138 uebayasi
905 1.144 uebayasi if (pages[flt.centeridx] == PGO_DONTCARE)
906 1.148 uebayasi error = uvm_fault_upper(&ufi, &flt, anons);
907 1.167 uebayasi else {
908 1.177 yamt struct uvm_object * const uobj =
909 1.177 yamt ufi.entry->object.uvm_obj;
910 1.167 uebayasi
911 1.167 uebayasi if (uobj && uobj->pgops->pgo_fault != NULL) {
912 1.173 uebayasi /*
913 1.173 uebayasi * invoke "special" fault routine.
914 1.173 uebayasi */
915 1.216 ad rw_enter(uobj->vmobjlock, RW_WRITER);
916 1.173 uebayasi /* locked: maps(read), amap(if there), uobj */
917 1.173 uebayasi error = uobj->pgops->pgo_fault(&ufi,
918 1.173 uebayasi flt.startva, pages, flt.npages,
919 1.173 uebayasi flt.centeridx, flt.access_type,
920 1.173 uebayasi PGO_LOCKED|PGO_SYNCIO);
921 1.167 uebayasi
922 1.177 yamt /*
923 1.177 yamt * locked: nothing, pgo_fault has unlocked
924 1.177 yamt * everything
925 1.177 yamt */
926 1.167 uebayasi
927 1.167 uebayasi /*
928 1.177 yamt * object fault routine responsible for
929 1.177 yamt * pmap_update().
930 1.167 uebayasi */
931 1.205 chs
932 1.205 chs /*
933 1.205 chs * Wake up the pagedaemon if the fault method
934 1.205 chs * failed for lack of memory but some can be
935 1.205 chs * reclaimed.
936 1.205 chs */
937 1.205 chs if (error == ENOMEM && uvm_reclaimable()) {
938 1.205 chs uvm_wait("pgo_fault");
939 1.205 chs error = ERESTART;
940 1.205 chs }
941 1.167 uebayasi } else {
942 1.167 uebayasi error = uvm_fault_lower(&ufi, &flt, pages);
943 1.167 uebayasi }
944 1.167 uebayasi }
945 1.142 uebayasi }
946 1.138 uebayasi
947 1.140 uebayasi if (flt.anon_spare != NULL) {
948 1.140 uebayasi flt.anon_spare->an_ref--;
949 1.186 rmind KASSERT(flt.anon_spare->an_ref == 0);
950 1.186 rmind KASSERT(flt.anon_spare->an_lock == NULL);
951 1.221 ad uvm_anfree(flt.anon_spare);
952 1.138 uebayasi }
953 1.138 uebayasi return error;
954 1.141 uebayasi }
955 1.138 uebayasi
956 1.173 uebayasi /*
957 1.173 uebayasi * uvm_fault_check: check prot, handle needs-copy, etc.
958 1.173 uebayasi *
959 1.173 uebayasi * 1. lookup entry.
960 1.173 uebayasi * 2. check protection.
961 1.173 uebayasi * 3. adjust fault condition (mainly for simulated fault).
962 1.173 uebayasi * 4. handle needs-copy (lazy amap copy).
963 1.173 uebayasi * 5. establish range of interest for neighbor fault (aka pre-fault).
964 1.173 uebayasi * 6. look up anons (if amap exists).
965 1.173 uebayasi * 7. flush pages (if MADV_SEQUENTIAL)
966 1.173 uebayasi *
967 1.173 uebayasi * => called with nothing locked.
968 1.173 uebayasi * => if we fail (result != 0) we unlock everything.
969 1.177 yamt * => initialize/adjust many members of flt.
970 1.173 uebayasi */
971 1.173 uebayasi
972 1.144 uebayasi static int
973 1.141 uebayasi uvm_fault_check(
974 1.141 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
975 1.177 yamt struct vm_anon ***ranons, bool maxprot)
976 1.141 uebayasi {
977 1.141 uebayasi struct vm_amap *amap;
978 1.141 uebayasi struct uvm_object *uobj;
979 1.137 uebayasi vm_prot_t check_prot;
980 1.137 uebayasi int nback, nforw;
981 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
982 1.137 uebayasi
983 1.7 mrg /*
984 1.7 mrg * lookup and lock the maps
985 1.7 mrg */
986 1.7 mrg
987 1.141 uebayasi if (uvmfault_lookup(ufi, false) == false) {
988 1.217 rin UVMHIST_LOG(maphist, "<- no mapping @ %#jx", ufi->orig_rvaddr,
989 1.177 yamt 0,0,0);
990 1.141 uebayasi return EFAULT;
991 1.7 mrg }
992 1.7 mrg /* locked: maps(read) */
993 1.7 mrg
994 1.61 thorpej #ifdef DIAGNOSTIC
995 1.141 uebayasi if ((ufi->map->flags & VM_MAP_PAGEABLE) == 0) {
996 1.61 thorpej printf("Page fault on non-pageable map:\n");
997 1.141 uebayasi printf("ufi->map = %p\n", ufi->map);
998 1.141 uebayasi printf("ufi->orig_map = %p\n", ufi->orig_map);
999 1.217 rin printf("ufi->orig_rvaddr = %#lx\n", (u_long) ufi->orig_rvaddr);
1000 1.141 uebayasi panic("uvm_fault: (ufi->map->flags & VM_MAP_PAGEABLE) == 0");
1001 1.61 thorpej }
1002 1.61 thorpej #endif
1003 1.58 chs
1004 1.7 mrg /*
1005 1.7 mrg * check protection
1006 1.7 mrg */
1007 1.7 mrg
1008 1.177 yamt check_prot = maxprot ?
1009 1.141 uebayasi ufi->entry->max_protection : ufi->entry->protection;
1010 1.141 uebayasi if ((check_prot & flt->access_type) != flt->access_type) {
1011 1.7 mrg UVMHIST_LOG(maphist,
1012 1.201 pgoyette "<- protection failure (prot=%#jx, access=%#jx)",
1013 1.141 uebayasi ufi->entry->protection, flt->access_type, 0, 0);
1014 1.141 uebayasi uvmfault_unlockmaps(ufi, false);
1015 1.200 christos return EFAULT;
1016 1.7 mrg }
1017 1.7 mrg
1018 1.7 mrg /*
1019 1.7 mrg * "enter_prot" is the protection we want to enter the page in at.
1020 1.7 mrg * for certain pages (e.g. copy-on-write pages) this protection can
1021 1.141 uebayasi * be more strict than ufi->entry->protection. "wired" means either
1022 1.7 mrg * the entry is wired or we are fault-wiring the pg.
1023 1.7 mrg */
1024 1.7 mrg
1025 1.141 uebayasi flt->enter_prot = ufi->entry->protection;
1026 1.207 chs if (VM_MAPENT_ISWIRED(ufi->entry)) {
1027 1.146 uebayasi flt->wire_mapping = true;
1028 1.207 chs flt->wire_paging = true;
1029 1.207 chs flt->narrow = true;
1030 1.207 chs }
1031 1.146 uebayasi
1032 1.146 uebayasi if (flt->wire_mapping) {
1033 1.141 uebayasi flt->access_type = flt->enter_prot; /* full access for wired */
1034 1.141 uebayasi flt->cow_now = (check_prot & VM_PROT_WRITE) != 0;
1035 1.73 chs } else {
1036 1.141 uebayasi flt->cow_now = (flt->access_type & VM_PROT_WRITE) != 0;
1037 1.73 chs }
1038 1.7 mrg
1039 1.222 ad if (flt->wire_paging) {
1040 1.222 ad /* wiring pages requires a write lock. */
1041 1.222 ad flt->upper_lock_type = RW_WRITER;
1042 1.222 ad flt->lower_lock_type = RW_WRITER;
1043 1.222 ad }
1044 1.222 ad
1045 1.168 uebayasi flt->promote = false;
1046 1.168 uebayasi
1047 1.7 mrg /*
1048 1.7 mrg * handle "needs_copy" case. if we need to copy the amap we will
1049 1.7 mrg * have to drop our readlock and relock it with a write lock. (we
1050 1.7 mrg * need a write lock to change anything in a map entry [e.g.
1051 1.7 mrg * needs_copy]).
1052 1.7 mrg */
1053 1.7 mrg
1054 1.141 uebayasi if (UVM_ET_ISNEEDSCOPY(ufi->entry)) {
1055 1.141 uebayasi if (flt->cow_now || (ufi->entry->object.uvm_obj == NULL)) {
1056 1.177 yamt KASSERT(!maxprot);
1057 1.7 mrg /* need to clear */
1058 1.7 mrg UVMHIST_LOG(maphist,
1059 1.7 mrg " need to clear needs_copy and refault",0,0,0,0);
1060 1.141 uebayasi uvmfault_unlockmaps(ufi, false);
1061 1.141 uebayasi uvmfault_amapcopy(ufi);
1062 1.213 ad cpu_count(CPU_COUNT_FLTAMCOPY, 1);
1063 1.141 uebayasi return ERESTART;
1064 1.7 mrg
1065 1.7 mrg } else {
1066 1.7 mrg
1067 1.7 mrg /*
1068 1.7 mrg * ensure that we pmap_enter page R/O since
1069 1.7 mrg * needs_copy is still true
1070 1.7 mrg */
1071 1.72 chs
1072 1.141 uebayasi flt->enter_prot &= ~VM_PROT_WRITE;
1073 1.7 mrg }
1074 1.7 mrg }
1075 1.7 mrg
1076 1.7 mrg /*
1077 1.7 mrg * identify the players
1078 1.7 mrg */
1079 1.7 mrg
1080 1.141 uebayasi amap = ufi->entry->aref.ar_amap; /* upper layer */
1081 1.141 uebayasi uobj = ufi->entry->object.uvm_obj; /* lower layer */
1082 1.7 mrg
1083 1.7 mrg /*
1084 1.7 mrg * check for a case 0 fault. if nothing backing the entry then
1085 1.7 mrg * error now.
1086 1.7 mrg */
1087 1.7 mrg
1088 1.7 mrg if (amap == NULL && uobj == NULL) {
1089 1.141 uebayasi uvmfault_unlockmaps(ufi, false);
1090 1.7 mrg UVMHIST_LOG(maphist,"<- no backing store, no overlay",0,0,0,0);
1091 1.141 uebayasi return EFAULT;
1092 1.7 mrg }
1093 1.1 mrg
1094 1.7 mrg /*
1095 1.227 ad * for a case 2B fault waste no time on adjacent pages because
1096 1.227 ad * they are likely already entered.
1097 1.227 ad */
1098 1.227 ad
1099 1.227 ad if (uobj != NULL && amap != NULL &&
1100 1.227 ad (flt->access_type & VM_PROT_WRITE) != 0) {
1101 1.227 ad /* wide fault (!narrow) */
1102 1.227 ad flt->narrow = true;
1103 1.227 ad }
1104 1.227 ad
1105 1.227 ad /*
1106 1.7 mrg * establish range of interest based on advice from mapper
1107 1.7 mrg * and then clip to fit map entry. note that we only want
1108 1.63 chs * to do this the first time through the fault. if we
1109 1.7 mrg * ReFault we will disable this by setting "narrow" to true.
1110 1.7 mrg */
1111 1.1 mrg
1112 1.141 uebayasi if (flt->narrow == false) {
1113 1.7 mrg
1114 1.7 mrg /* wide fault (!narrow) */
1115 1.141 uebayasi KASSERT(uvmadvice[ufi->entry->advice].advice ==
1116 1.141 uebayasi ufi->entry->advice);
1117 1.141 uebayasi nback = MIN(uvmadvice[ufi->entry->advice].nback,
1118 1.177 yamt (ufi->orig_rvaddr - ufi->entry->start) >> PAGE_SHIFT);
1119 1.141 uebayasi flt->startva = ufi->orig_rvaddr - (nback << PAGE_SHIFT);
1120 1.7 mrg /*
1121 1.7 mrg * note: "-1" because we don't want to count the
1122 1.7 mrg * faulting page as forw
1123 1.7 mrg */
1124 1.177 yamt nforw = MIN(uvmadvice[ufi->entry->advice].nforw,
1125 1.177 yamt ((ufi->entry->end - ufi->orig_rvaddr) >>
1126 1.177 yamt PAGE_SHIFT) - 1);
1127 1.141 uebayasi flt->npages = nback + nforw + 1;
1128 1.141 uebayasi flt->centeridx = nback;
1129 1.7 mrg
1130 1.141 uebayasi flt->narrow = true; /* ensure only once per-fault */
1131 1.7 mrg
1132 1.7 mrg } else {
1133 1.63 chs
1134 1.7 mrg /* narrow fault! */
1135 1.7 mrg nback = nforw = 0;
1136 1.141 uebayasi flt->startva = ufi->orig_rvaddr;
1137 1.141 uebayasi flt->npages = 1;
1138 1.141 uebayasi flt->centeridx = 0;
1139 1.1 mrg
1140 1.7 mrg }
1141 1.131 uebayasi /* offset from entry's start to pgs' start */
1142 1.141 uebayasi const voff_t eoff = flt->startva - ufi->entry->start;
1143 1.1 mrg
1144 1.7 mrg /* locked: maps(read) */
1145 1.201 pgoyette UVMHIST_LOG(maphist, " narrow=%jd, back=%jd, forw=%jd, startva=%#jx",
1146 1.141 uebayasi flt->narrow, nback, nforw, flt->startva);
1147 1.201 pgoyette UVMHIST_LOG(maphist, " entry=%#jx, amap=%#jx, obj=%#jx",
1148 1.201 pgoyette (uintptr_t)ufi->entry, (uintptr_t)amap, (uintptr_t)uobj, 0);
1149 1.1 mrg
1150 1.7 mrg /*
1151 1.222 ad * guess at the most suitable lock types to acquire.
1152 1.222 ad * if we've got an amap then lock it and extract current anons.
1153 1.7 mrg */
1154 1.7 mrg
1155 1.7 mrg if (amap) {
1156 1.222 ad if ((amap_flags(amap) & AMAP_SHARED) == 0) {
1157 1.222 ad /*
1158 1.222 ad * the amap isn't shared. get a writer lock to
1159 1.222 ad * avoid the cost of upgrading the lock later if
1160 1.222 ad * needed.
1161 1.222 ad *
1162 1.222 ad * XXX nice for PostgreSQL, but consider threads.
1163 1.222 ad */
1164 1.222 ad flt->upper_lock_type = RW_WRITER;
1165 1.222 ad } else if ((flt->access_type & VM_PROT_WRITE) != 0) {
1166 1.222 ad /*
1167 1.222 ad * assume we're about to COW.
1168 1.222 ad */
1169 1.222 ad flt->upper_lock_type = RW_WRITER;
1170 1.222 ad }
1171 1.222 ad amap_lock(amap, flt->upper_lock_type);
1172 1.141 uebayasi amap_lookups(&ufi->entry->aref, eoff, *ranons, flt->npages);
1173 1.7 mrg } else {
1174 1.222 ad if ((flt->access_type & VM_PROT_WRITE) != 0) {
1175 1.222 ad /*
1176 1.222 ad * we are about to dirty the object and that
1177 1.222 ad * requires a write lock.
1178 1.222 ad */
1179 1.222 ad flt->lower_lock_type = RW_WRITER;
1180 1.222 ad }
1181 1.141 uebayasi *ranons = NULL; /* to be safe */
1182 1.7 mrg }
1183 1.7 mrg
1184 1.7 mrg /* locked: maps(read), amap(if there) */
1185 1.222 ad KASSERT(amap == NULL ||
1186 1.222 ad rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1187 1.7 mrg
1188 1.7 mrg /*
1189 1.7 mrg * for MADV_SEQUENTIAL mappings we want to deactivate the back pages
1190 1.7 mrg * now and then forget about them (for the rest of the fault).
1191 1.7 mrg */
1192 1.7 mrg
1193 1.141 uebayasi if (ufi->entry->advice == MADV_SEQUENTIAL && nback != 0) {
1194 1.7 mrg
1195 1.7 mrg UVMHIST_LOG(maphist, " MADV_SEQUENTIAL: flushing backpages",
1196 1.7 mrg 0,0,0,0);
1197 1.7 mrg /* flush back-page anons? */
1198 1.63 chs if (amap)
1199 1.141 uebayasi uvmfault_anonflush(*ranons, nback);
1200 1.7 mrg
1201 1.225 ad /*
1202 1.225 ad * flush object? change lock type to RW_WRITER, to avoid
1203 1.225 ad * excessive competition between read/write locks if many
1204 1.225 ad * threads doing "sequential access".
1205 1.225 ad */
1206 1.7 mrg if (uobj) {
1207 1.137 uebayasi voff_t uoff;
1208 1.137 uebayasi
1209 1.225 ad flt->lower_lock_type = RW_WRITER;
1210 1.141 uebayasi uoff = ufi->entry->offset + eoff;
1211 1.216 ad rw_enter(uobj->vmobjlock, RW_WRITER);
1212 1.90 yamt (void) (uobj->pgops->pgo_put)(uobj, uoff, uoff +
1213 1.15 chs (nback << PAGE_SHIFT), PGO_DEACTIVATE);
1214 1.7 mrg }
1215 1.7 mrg
1216 1.7 mrg /* now forget about the backpages */
1217 1.7 mrg if (amap)
1218 1.141 uebayasi *ranons += nback;
1219 1.141 uebayasi flt->startva += (nback << PAGE_SHIFT);
1220 1.141 uebayasi flt->npages -= nback;
1221 1.141 uebayasi flt->centeridx = 0;
1222 1.7 mrg }
1223 1.137 uebayasi /*
1224 1.137 uebayasi * => startva is fixed
1225 1.137 uebayasi * => npages is fixed
1226 1.137 uebayasi */
1227 1.177 yamt KASSERT(flt->startva <= ufi->orig_rvaddr);
1228 1.177 yamt KASSERT(ufi->orig_rvaddr + ufi->orig_size <=
1229 1.177 yamt flt->startva + (flt->npages << PAGE_SHIFT));
1230 1.141 uebayasi return 0;
1231 1.141 uebayasi }
1232 1.141 uebayasi
1233 1.173 uebayasi /*
1234 1.222 ad * uvm_fault_upper_upgrade: upgrade upper lock, reader -> writer
1235 1.222 ad */
1236 1.222 ad
1237 1.222 ad static inline int
1238 1.222 ad uvm_fault_upper_upgrade(struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1239 1.222 ad struct vm_amap *amap, struct uvm_object *uobj)
1240 1.222 ad {
1241 1.224 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1242 1.222 ad
1243 1.222 ad KASSERT(amap != NULL);
1244 1.222 ad KASSERT(flt->upper_lock_type == rw_lock_op(amap->am_lock));
1245 1.222 ad
1246 1.222 ad /*
1247 1.222 ad * fast path.
1248 1.222 ad */
1249 1.223 skrll
1250 1.222 ad if (__predict_true(flt->upper_lock_type == RW_WRITER)) {
1251 1.222 ad return 0;
1252 1.222 ad }
1253 1.222 ad
1254 1.222 ad /*
1255 1.222 ad * otherwise try for the upgrade. if we don't get it, unlock
1256 1.222 ad * everything, restart the fault and next time around get a writer
1257 1.222 ad * lock.
1258 1.222 ad */
1259 1.222 ad
1260 1.222 ad flt->upper_lock_type = RW_WRITER;
1261 1.222 ad if (__predict_false(!rw_tryupgrade(amap->am_lock))) {
1262 1.222 ad uvmfault_unlockall(ufi, amap, uobj);
1263 1.222 ad cpu_count(CPU_COUNT_FLTNOUP, 1);
1264 1.222 ad UVMHIST_LOG(maphist, " !upgrade upper", 0, 0,0,0);
1265 1.222 ad return ERESTART;
1266 1.222 ad }
1267 1.222 ad cpu_count(CPU_COUNT_FLTUP, 1);
1268 1.222 ad KASSERT(flt->upper_lock_type == rw_lock_op(amap->am_lock));
1269 1.222 ad return 0;
1270 1.222 ad }
1271 1.222 ad
1272 1.222 ad /*
1273 1.173 uebayasi * uvm_fault_upper_lookup: look up existing h/w mapping and amap.
1274 1.173 uebayasi *
1275 1.173 uebayasi * iterate range of interest:
1276 1.173 uebayasi * 1. check if h/w mapping exists. if yes, we don't care
1277 1.173 uebayasi * 2. check if anon exists. if not, page is lower.
1278 1.173 uebayasi * 3. if anon exists, enter h/w mapping for neighbors.
1279 1.173 uebayasi *
1280 1.173 uebayasi * => called with amap locked (if exists).
1281 1.173 uebayasi */
1282 1.173 uebayasi
1283 1.144 uebayasi static int
1284 1.141 uebayasi uvm_fault_upper_lookup(
1285 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
1286 1.141 uebayasi struct vm_anon **anons, struct vm_page **pages)
1287 1.141 uebayasi {
1288 1.141 uebayasi struct vm_amap *amap = ufi->entry->aref.ar_amap;
1289 1.137 uebayasi int lcv;
1290 1.137 uebayasi vaddr_t currva;
1291 1.195 martin bool shadowed __unused;
1292 1.220 ad bool entered;
1293 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1294 1.7 mrg
1295 1.7 mrg /* locked: maps(read), amap(if there) */
1296 1.222 ad KASSERT(amap == NULL ||
1297 1.222 ad rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1298 1.1 mrg
1299 1.7 mrg /*
1300 1.7 mrg * map in the backpages and frontpages we found in the amap in hopes
1301 1.7 mrg * of preventing future faults. we also init the pages[] array as
1302 1.7 mrg * we go.
1303 1.7 mrg */
1304 1.7 mrg
1305 1.141 uebayasi currva = flt->startva;
1306 1.144 uebayasi shadowed = false;
1307 1.220 ad entered = false;
1308 1.163 uebayasi for (lcv = 0; lcv < flt->npages; lcv++, currva += PAGE_SIZE) {
1309 1.7 mrg /*
1310 1.7 mrg * unmapped or center page. check if any anon at this level.
1311 1.7 mrg */
1312 1.7 mrg if (amap == NULL || anons[lcv] == NULL) {
1313 1.7 mrg pages[lcv] = NULL;
1314 1.7 mrg continue;
1315 1.7 mrg }
1316 1.7 mrg
1317 1.7 mrg /*
1318 1.222 ad * check for present page and map if possible.
1319 1.7 mrg */
1320 1.7 mrg
1321 1.7 mrg pages[lcv] = PGO_DONTCARE;
1322 1.177 yamt if (lcv == flt->centeridx) { /* save center for later! */
1323 1.144 uebayasi shadowed = true;
1324 1.186 rmind continue;
1325 1.186 rmind }
1326 1.186 rmind
1327 1.186 rmind struct vm_anon *anon = anons[lcv];
1328 1.186 rmind struct vm_page *pg = anon->an_page;
1329 1.161 uebayasi
1330 1.186 rmind KASSERT(anon->an_lock == amap->am_lock);
1331 1.172 uebayasi
1332 1.220 ad /*
1333 1.220 ad * ignore loaned and busy pages.
1334 1.220 ad * don't play with VAs that are already mapped.
1335 1.220 ad */
1336 1.220 ad
1337 1.220 ad if (pg && pg->loan_count == 0 && (pg->flags & PG_BUSY) == 0 &&
1338 1.220 ad !pmap_extract(ufi->orig_map->pmap, currva, NULL)) {
1339 1.186 rmind uvm_fault_upper_neighbor(ufi, flt, currva,
1340 1.186 rmind pg, anon->an_ref > 1);
1341 1.220 ad entered = true;
1342 1.7 mrg }
1343 1.151 uebayasi }
1344 1.220 ad if (entered) {
1345 1.220 ad pmap_update(ufi->orig_map->pmap);
1346 1.220 ad }
1347 1.151 uebayasi
1348 1.160 uebayasi /* locked: maps(read), amap(if there) */
1349 1.222 ad KASSERT(amap == NULL ||
1350 1.222 ad rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1351 1.160 uebayasi /* (shadowed == true) if there is an anon at the faulting address */
1352 1.201 pgoyette UVMHIST_LOG(maphist, " shadowed=%jd, will_get=%jd", shadowed,
1353 1.164 mlelstv (ufi->entry->object.uvm_obj && shadowed != false),0,0);
1354 1.160 uebayasi
1355 1.151 uebayasi return 0;
1356 1.151 uebayasi }
1357 1.151 uebayasi
1358 1.173 uebayasi /*
1359 1.202 chs * uvm_fault_upper_neighbor: enter single upper neighbor page.
1360 1.173 uebayasi *
1361 1.173 uebayasi * => called with amap and anon locked.
1362 1.173 uebayasi */
1363 1.173 uebayasi
1364 1.151 uebayasi static void
1365 1.163 uebayasi uvm_fault_upper_neighbor(
1366 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
1367 1.161 uebayasi vaddr_t currva, struct vm_page *pg, bool readonly)
1368 1.151 uebayasi {
1369 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1370 1.151 uebayasi
1371 1.173 uebayasi /* locked: amap, anon */
1372 1.173 uebayasi
1373 1.215 ad KASSERT(pg->uobject == NULL);
1374 1.215 ad KASSERT(pg->uanon != NULL);
1375 1.222 ad KASSERT(rw_lock_op(pg->uanon->an_lock) == flt->upper_lock_type);
1376 1.215 ad KASSERT(uvm_pagegetdirty(pg) != UVM_PAGE_STATUS_CLEAN);
1377 1.215 ad
1378 1.222 ad /*
1379 1.227 ad * there wasn't a direct fault on the page, so avoid the cost of
1380 1.227 ad * activating it.
1381 1.222 ad */
1382 1.222 ad
1383 1.227 ad if (!uvmpdpol_pageisqueued_p(pg) && pg->wire_count == 0) {
1384 1.222 ad uvm_pagelock(pg);
1385 1.222 ad uvm_pageenqueue(pg);
1386 1.222 ad uvm_pageunlock(pg);
1387 1.222 ad }
1388 1.227 ad
1389 1.152 uebayasi UVMHIST_LOG(maphist,
1390 1.201 pgoyette " MAPPING: n anon: pm=%#jx, va=%#jx, pg=%#jx",
1391 1.201 pgoyette (uintptr_t)ufi->orig_map->pmap, currva, (uintptr_t)pg, 0);
1392 1.213 ad cpu_count(CPU_COUNT_FLTNAMAP, 1);
1393 1.152 uebayasi
1394 1.152 uebayasi /*
1395 1.161 uebayasi * Since this page isn't the page that's actually faulting,
1396 1.161 uebayasi * ignore pmap_enter() failures; it's not critical that we
1397 1.161 uebayasi * enter these right now.
1398 1.152 uebayasi */
1399 1.152 uebayasi
1400 1.152 uebayasi (void) pmap_enter(ufi->orig_map->pmap, currva,
1401 1.161 uebayasi VM_PAGE_TO_PHYS(pg),
1402 1.161 uebayasi readonly ? (flt->enter_prot & ~VM_PROT_WRITE) :
1403 1.152 uebayasi flt->enter_prot,
1404 1.154 uebayasi PMAP_CANFAIL | (flt->wire_mapping ? PMAP_WIRED : 0));
1405 1.151 uebayasi }
1406 1.151 uebayasi
1407 1.173 uebayasi /*
1408 1.173 uebayasi * uvm_fault_upper: handle upper fault.
1409 1.173 uebayasi *
1410 1.173 uebayasi * 1. acquire anon lock.
1411 1.173 uebayasi * 2. get anon. let uvmfault_anonget do the dirty work.
1412 1.173 uebayasi * 3. handle loan.
1413 1.173 uebayasi * 4. dispatch direct or promote handlers.
1414 1.173 uebayasi */
1415 1.134 uebayasi
1416 1.138 uebayasi static int
1417 1.138 uebayasi uvm_fault_upper(
1418 1.140 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1419 1.148 uebayasi struct vm_anon **anons)
1420 1.138 uebayasi {
1421 1.148 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
1422 1.148 uebayasi struct vm_anon * const anon = anons[flt->centeridx];
1423 1.148 uebayasi struct uvm_object *uobj;
1424 1.138 uebayasi int error;
1425 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1426 1.137 uebayasi
1427 1.186 rmind /* locked: maps(read), amap, anon */
1428 1.222 ad KASSERT(rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1429 1.186 rmind KASSERT(anon->an_lock == amap->am_lock);
1430 1.7 mrg
1431 1.7 mrg /*
1432 1.7 mrg * handle case 1: fault on an anon in our amap
1433 1.7 mrg */
1434 1.7 mrg
1435 1.201 pgoyette UVMHIST_LOG(maphist, " case 1 fault: anon=%#jx",
1436 1.201 pgoyette (uintptr_t)anon, 0, 0, 0);
1437 1.7 mrg
1438 1.7 mrg /*
1439 1.7 mrg * no matter if we have case 1A or case 1B we are going to need to
1440 1.7 mrg * have the anon's memory resident. ensure that now.
1441 1.7 mrg */
1442 1.7 mrg
1443 1.7 mrg /*
1444 1.47 chs * let uvmfault_anonget do the dirty work.
1445 1.51 thorpej * if it fails (!OK) it will unlock everything for us.
1446 1.47 chs * if it succeeds, locks are still valid and locked.
1447 1.7 mrg * also, if it is OK, then the anon's page is on the queues.
1448 1.7 mrg * if the page is on loan from a uvm_object, then anonget will
1449 1.7 mrg * lock that object for us if it does not fail.
1450 1.7 mrg */
1451 1.222 ad retry:
1452 1.138 uebayasi error = uvmfault_anonget(ufi, amap, anon);
1453 1.58 chs switch (error) {
1454 1.57 chs case 0:
1455 1.63 chs break;
1456 1.7 mrg
1457 1.57 chs case ERESTART:
1458 1.139 uebayasi return ERESTART;
1459 1.7 mrg
1460 1.57 chs case EAGAIN:
1461 1.128 pooka kpause("fltagain1", false, hz/2, NULL);
1462 1.139 uebayasi return ERESTART;
1463 1.51 thorpej
1464 1.222 ad case ENOLCK:
1465 1.222 ad /* it needs a write lock: retry */
1466 1.222 ad error = uvm_fault_upper_upgrade(ufi, flt, amap, NULL);
1467 1.222 ad if (error != 0) {
1468 1.222 ad return error;
1469 1.222 ad }
1470 1.222 ad KASSERT(rw_write_held(amap->am_lock));
1471 1.222 ad goto retry;
1472 1.222 ad
1473 1.51 thorpej default:
1474 1.138 uebayasi return error;
1475 1.1 mrg }
1476 1.7 mrg
1477 1.7 mrg /*
1478 1.7 mrg * uobj is non null if the page is on loan from an object (i.e. uobj)
1479 1.7 mrg */
1480 1.7 mrg
1481 1.94 yamt uobj = anon->an_page->uobject; /* locked by anonget if !NULL */
1482 1.7 mrg
1483 1.7 mrg /* locked: maps(read), amap, anon, uobj(if one) */
1484 1.222 ad KASSERT(rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1485 1.186 rmind KASSERT(anon->an_lock == amap->am_lock);
1486 1.222 ad KASSERT(uobj == NULL ||
1487 1.222 ad rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
1488 1.7 mrg
1489 1.7 mrg /*
1490 1.63 chs * special handling for loaned pages
1491 1.7 mrg */
1492 1.52 chs
1493 1.94 yamt if (anon->an_page->loan_count) {
1494 1.148 uebayasi error = uvm_fault_upper_loan(ufi, flt, anon, &uobj);
1495 1.148 uebayasi if (error != 0)
1496 1.148 uebayasi return error;
1497 1.148 uebayasi }
1498 1.160 uebayasi
1499 1.160 uebayasi /*
1500 1.160 uebayasi * if we are case 1B then we will need to allocate a new blank
1501 1.160 uebayasi * anon to transfer the data into. note that we have a lock
1502 1.160 uebayasi * on anon, so no one can busy or release the page until we are done.
1503 1.160 uebayasi * also note that the ref count can't drop to zero here because
1504 1.160 uebayasi * it is > 1 and we are only dropping one ref.
1505 1.160 uebayasi *
1506 1.160 uebayasi * in the (hopefully very rare) case that we are out of RAM we
1507 1.160 uebayasi * will unlock, wait for more RAM, and refault.
1508 1.160 uebayasi *
1509 1.160 uebayasi * if we are out of anon VM we kill the process (XXX: could wait?).
1510 1.160 uebayasi */
1511 1.160 uebayasi
1512 1.160 uebayasi if (flt->cow_now && anon->an_ref > 1) {
1513 1.168 uebayasi flt->promote = true;
1514 1.160 uebayasi error = uvm_fault_upper_promote(ufi, flt, uobj, anon);
1515 1.160 uebayasi } else {
1516 1.160 uebayasi error = uvm_fault_upper_direct(ufi, flt, uobj, anon);
1517 1.160 uebayasi }
1518 1.160 uebayasi return error;
1519 1.148 uebayasi }
1520 1.148 uebayasi
1521 1.173 uebayasi /*
1522 1.173 uebayasi * uvm_fault_upper_loan: handle loaned upper page.
1523 1.173 uebayasi *
1524 1.177 yamt * 1. if not cow'ing now, simply adjust flt->enter_prot.
1525 1.173 uebayasi * 2. if cow'ing now, and if ref count is 1, break loan.
1526 1.173 uebayasi */
1527 1.173 uebayasi
1528 1.148 uebayasi static int
1529 1.148 uebayasi uvm_fault_upper_loan(
1530 1.148 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1531 1.148 uebayasi struct vm_anon *anon, struct uvm_object **ruobj)
1532 1.148 uebayasi {
1533 1.149 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
1534 1.151 uebayasi int error = 0;
1535 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1536 1.149 uebayasi
1537 1.149 uebayasi if (!flt->cow_now) {
1538 1.7 mrg
1539 1.149 uebayasi /*
1540 1.149 uebayasi * for read faults on loaned pages we just cap the
1541 1.149 uebayasi * protection at read-only.
1542 1.149 uebayasi */
1543 1.63 chs
1544 1.149 uebayasi flt->enter_prot = flt->enter_prot & ~VM_PROT_WRITE;
1545 1.7 mrg
1546 1.149 uebayasi } else {
1547 1.149 uebayasi /*
1548 1.149 uebayasi * note that we can't allow writes into a loaned page!
1549 1.149 uebayasi *
1550 1.149 uebayasi * if we have a write fault on a loaned page in an
1551 1.149 uebayasi * anon then we need to look at the anon's ref count.
1552 1.149 uebayasi * if it is greater than one then we are going to do
1553 1.149 uebayasi * a normal copy-on-write fault into a new anon (this
1554 1.149 uebayasi * is not a problem). however, if the reference count
1555 1.149 uebayasi * is one (a case where we would normally allow a
1556 1.149 uebayasi * write directly to the page) then we need to kill
1557 1.149 uebayasi * the loan before we continue.
1558 1.149 uebayasi */
1559 1.149 uebayasi
1560 1.149 uebayasi /* >1 case is already ok */
1561 1.149 uebayasi if (anon->an_ref == 1) {
1562 1.222 ad /* breaking loan requires a write lock. */
1563 1.222 ad error = uvm_fault_upper_upgrade(ufi, flt, amap, NULL);
1564 1.222 ad if (error != 0) {
1565 1.222 ad return error;
1566 1.222 ad }
1567 1.222 ad KASSERT(rw_write_held(amap->am_lock));
1568 1.222 ad
1569 1.155 uebayasi error = uvm_loanbreak_anon(anon, *ruobj);
1570 1.151 uebayasi if (error != 0) {
1571 1.186 rmind uvmfault_unlockall(ufi, amap, *ruobj);
1572 1.151 uebayasi uvm_wait("flt_noram2");
1573 1.151 uebayasi return ERESTART;
1574 1.151 uebayasi }
1575 1.206 msaitoh /* if we were a loan receiver uobj is gone */
1576 1.155 uebayasi if (*ruobj)
1577 1.155 uebayasi *ruobj = NULL;
1578 1.151 uebayasi }
1579 1.151 uebayasi }
1580 1.151 uebayasi return error;
1581 1.151 uebayasi }
1582 1.151 uebayasi
1583 1.173 uebayasi /*
1584 1.173 uebayasi * uvm_fault_upper_promote: promote upper page.
1585 1.173 uebayasi *
1586 1.173 uebayasi * 1. call uvmfault_promote.
1587 1.173 uebayasi * 2. enqueue page.
1588 1.173 uebayasi * 3. deref.
1589 1.173 uebayasi * 4. pass page to uvm_fault_upper_enter.
1590 1.173 uebayasi */
1591 1.173 uebayasi
1592 1.148 uebayasi static int
1593 1.148 uebayasi uvm_fault_upper_promote(
1594 1.148 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1595 1.148 uebayasi struct uvm_object *uobj, struct vm_anon *anon)
1596 1.148 uebayasi {
1597 1.222 ad struct vm_amap * const amap = ufi->entry->aref.ar_amap;
1598 1.149 uebayasi struct vm_anon * const oanon = anon;
1599 1.149 uebayasi struct vm_page *pg;
1600 1.149 uebayasi int error;
1601 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1602 1.149 uebayasi
1603 1.149 uebayasi UVMHIST_LOG(maphist, " case 1B: COW fault",0,0,0,0);
1604 1.213 ad cpu_count(CPU_COUNT_FLT_ACOW, 1);
1605 1.149 uebayasi
1606 1.222 ad /* promoting requires a write lock. */
1607 1.222 ad error = uvm_fault_upper_upgrade(ufi, flt, amap, NULL);
1608 1.222 ad if (error != 0) {
1609 1.222 ad return error;
1610 1.222 ad }
1611 1.222 ad KASSERT(rw_write_held(amap->am_lock));
1612 1.222 ad
1613 1.177 yamt error = uvmfault_promote(ufi, oanon, PGO_DONTCARE, &anon,
1614 1.177 yamt &flt->anon_spare);
1615 1.149 uebayasi switch (error) {
1616 1.149 uebayasi case 0:
1617 1.149 uebayasi break;
1618 1.149 uebayasi case ERESTART:
1619 1.149 uebayasi return ERESTART;
1620 1.149 uebayasi default:
1621 1.149 uebayasi return error;
1622 1.149 uebayasi }
1623 1.227 ad pg = anon->an_page;
1624 1.7 mrg
1625 1.222 ad KASSERT(anon->an_lock == oanon->an_lock);
1626 1.227 ad KASSERT((pg->flags & (PG_BUSY | PG_FAKE)) == 0);
1627 1.7 mrg
1628 1.149 uebayasi /* deref: can not drop to zero here by defn! */
1629 1.183 yamt KASSERT(oanon->an_ref > 1);
1630 1.149 uebayasi oanon->an_ref--;
1631 1.53 thorpej
1632 1.149 uebayasi /*
1633 1.149 uebayasi * note: oanon is still locked, as is the new anon. we
1634 1.149 uebayasi * need to check for this later when we unlock oanon; if
1635 1.149 uebayasi * oanon != anon, we'll have to unlock anon, too.
1636 1.149 uebayasi */
1637 1.7 mrg
1638 1.149 uebayasi return uvm_fault_upper_enter(ufi, flt, uobj, anon, pg, oanon);
1639 1.148 uebayasi }
1640 1.148 uebayasi
1641 1.173 uebayasi /*
1642 1.173 uebayasi * uvm_fault_upper_direct: handle direct fault.
1643 1.173 uebayasi */
1644 1.173 uebayasi
1645 1.148 uebayasi static int
1646 1.148 uebayasi uvm_fault_upper_direct(
1647 1.148 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1648 1.148 uebayasi struct uvm_object *uobj, struct vm_anon *anon)
1649 1.148 uebayasi {
1650 1.149 uebayasi struct vm_anon * const oanon = anon;
1651 1.149 uebayasi struct vm_page *pg;
1652 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1653 1.52 chs
1654 1.213 ad cpu_count(CPU_COUNT_FLT_ANON, 1);
1655 1.149 uebayasi pg = anon->an_page;
1656 1.149 uebayasi if (anon->an_ref > 1) /* disallow writes to ref > 1 anons */
1657 1.149 uebayasi flt->enter_prot = flt->enter_prot & ~VM_PROT_WRITE;
1658 1.7 mrg
1659 1.149 uebayasi return uvm_fault_upper_enter(ufi, flt, uobj, anon, pg, oanon);
1660 1.148 uebayasi }
1661 1.148 uebayasi
1662 1.173 uebayasi /*
1663 1.173 uebayasi * uvm_fault_upper_enter: enter h/w mapping of upper page.
1664 1.173 uebayasi */
1665 1.173 uebayasi
1666 1.148 uebayasi static int
1667 1.148 uebayasi uvm_fault_upper_enter(
1668 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
1669 1.148 uebayasi struct uvm_object *uobj, struct vm_anon *anon, struct vm_page *pg,
1670 1.148 uebayasi struct vm_anon *oanon)
1671 1.148 uebayasi {
1672 1.202 chs struct pmap *pmap = ufi->orig_map->pmap;
1673 1.202 chs vaddr_t va = ufi->orig_rvaddr;
1674 1.148 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
1675 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1676 1.7 mrg
1677 1.173 uebayasi /* locked: maps(read), amap, oanon, anon(if different from oanon) */
1678 1.222 ad KASSERT(rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1679 1.186 rmind KASSERT(anon->an_lock == amap->am_lock);
1680 1.186 rmind KASSERT(oanon->an_lock == amap->am_lock);
1681 1.222 ad KASSERT(uobj == NULL ||
1682 1.222 ad rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
1683 1.215 ad KASSERT(uvm_pagegetdirty(pg) != UVM_PAGE_STATUS_CLEAN);
1684 1.7 mrg
1685 1.7 mrg /*
1686 1.69 chs * now map the page in.
1687 1.7 mrg */
1688 1.7 mrg
1689 1.177 yamt UVMHIST_LOG(maphist,
1690 1.201 pgoyette " MAPPING: anon: pm=%#jx, va=%#jx, pg=%#jx, promote=%jd",
1691 1.202 chs (uintptr_t)pmap, va, (uintptr_t)pg, flt->promote);
1692 1.202 chs if (pmap_enter(pmap, va, VM_PAGE_TO_PHYS(pg),
1693 1.177 yamt flt->enter_prot, flt->access_type | PMAP_CANFAIL |
1694 1.177 yamt (flt->wire_mapping ? PMAP_WIRED : 0)) != 0) {
1695 1.69 chs
1696 1.46 thorpej /*
1697 1.202 chs * If pmap_enter() fails, it must not leave behind an existing
1698 1.202 chs * pmap entry. In particular, a now-stale entry for a different
1699 1.202 chs * page would leave the pmap inconsistent with the vm_map.
1700 1.202 chs * This is not to imply that pmap_enter() should remove an
1701 1.202 chs * existing mapping in such a situation (since that could create
1702 1.202 chs * different problems, eg. if the existing mapping is wired),
1703 1.202 chs * but rather that the pmap should be designed such that it
1704 1.202 chs * never needs to fail when the new mapping is replacing an
1705 1.202 chs * existing mapping and the new page has no existing mappings.
1706 1.226 ad *
1707 1.226 ad * XXX This can't be asserted safely any more because many
1708 1.226 ad * LWPs and/or many processes could simultaneously fault on
1709 1.226 ad * the same VA and some might succeed.
1710 1.202 chs */
1711 1.202 chs
1712 1.226 ad /* KASSERT(!pmap_extract(pmap, va, NULL)); */
1713 1.202 chs
1714 1.202 chs /*
1715 1.222 ad * ensure that the page is queued in the case that
1716 1.222 ad * we just promoted.
1717 1.222 ad */
1718 1.222 ad
1719 1.227 ad uvm_pagelock(pg);
1720 1.227 ad uvm_pageenqueue(pg);
1721 1.227 ad uvm_pageunlock(pg);
1722 1.222 ad
1723 1.222 ad /*
1724 1.46 thorpej * No need to undo what we did; we can simply think of
1725 1.46 thorpej * this as the pmap throwing away the mapping information.
1726 1.46 thorpej *
1727 1.46 thorpej * We do, however, have to go through the ReFault path,
1728 1.46 thorpej * as the map may change while we're asleep.
1729 1.46 thorpej */
1730 1.69 chs
1731 1.186 rmind uvmfault_unlockall(ufi, amap, uobj);
1732 1.92 yamt if (!uvm_reclaimable()) {
1733 1.46 thorpej UVMHIST_LOG(maphist,
1734 1.46 thorpej "<- failed. out of VM",0,0,0,0);
1735 1.46 thorpej /* XXX instrumentation */
1736 1.148 uebayasi return ENOMEM;
1737 1.46 thorpej }
1738 1.46 thorpej /* XXX instrumentation */
1739 1.46 thorpej uvm_wait("flt_pmfail1");
1740 1.139 uebayasi return ERESTART;
1741 1.46 thorpej }
1742 1.7 mrg
1743 1.177 yamt uvm_fault_upper_done(ufi, flt, anon, pg);
1744 1.169 uebayasi
1745 1.169 uebayasi /*
1746 1.169 uebayasi * done case 1! finish up by unlocking everything and returning success
1747 1.169 uebayasi */
1748 1.169 uebayasi
1749 1.202 chs pmap_update(pmap);
1750 1.186 rmind uvmfault_unlockall(ufi, amap, uobj);
1751 1.169 uebayasi return 0;
1752 1.148 uebayasi }
1753 1.148 uebayasi
1754 1.173 uebayasi /*
1755 1.173 uebayasi * uvm_fault_upper_done: queue upper center page.
1756 1.173 uebayasi */
1757 1.173 uebayasi
1758 1.169 uebayasi static void
1759 1.148 uebayasi uvm_fault_upper_done(
1760 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
1761 1.177 yamt struct vm_anon *anon, struct vm_page *pg)
1762 1.148 uebayasi {
1763 1.174 rmind const bool wire_paging = flt->wire_paging;
1764 1.174 rmind
1765 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1766 1.148 uebayasi
1767 1.7 mrg /*
1768 1.46 thorpej * ... update the page queues.
1769 1.7 mrg */
1770 1.7 mrg
1771 1.174 rmind if (wire_paging) {
1772 1.227 ad uvm_pagelock(pg);
1773 1.8 chuck uvm_pagewire(pg);
1774 1.227 ad uvm_pageunlock(pg);
1775 1.29 chs
1776 1.29 chs /*
1777 1.29 chs * since the now-wired page cannot be paged out,
1778 1.29 chs * release its swap resources for others to use.
1779 1.215 ad * and since an anon with no swap cannot be clean,
1780 1.215 ad * mark it dirty now.
1781 1.29 chs */
1782 1.29 chs
1783 1.215 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_DIRTY);
1784 1.174 rmind uvm_anon_dropswap(anon);
1785 1.227 ad } else if (uvmpdpol_pageactivate_p(pg)) {
1786 1.227 ad /*
1787 1.227 ad * avoid re-activating the page unless needed,
1788 1.227 ad * to avoid false sharing on multiprocessor.
1789 1.227 ad */
1790 1.227 ad
1791 1.227 ad uvm_pagelock(pg);
1792 1.227 ad uvm_pageactivate(pg);
1793 1.227 ad uvm_pageunlock(pg);
1794 1.174 rmind }
1795 1.138 uebayasi }
1796 1.1 mrg
1797 1.173 uebayasi /*
1798 1.222 ad * uvm_fault_lower_upgrade: upgrade lower lock, reader -> writer
1799 1.222 ad */
1800 1.222 ad
1801 1.222 ad static inline int
1802 1.222 ad uvm_fault_lower_upgrade(struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1803 1.222 ad struct vm_amap *amap, struct uvm_object *uobj, struct vm_page *uobjpage)
1804 1.222 ad {
1805 1.222 ad
1806 1.224 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1807 1.224 skrll
1808 1.222 ad KASSERT(uobj != NULL);
1809 1.222 ad KASSERT(flt->lower_lock_type == rw_lock_op(uobj->vmobjlock));
1810 1.222 ad
1811 1.222 ad /*
1812 1.222 ad * fast path.
1813 1.222 ad */
1814 1.223 skrll
1815 1.222 ad if (__predict_true(flt->lower_lock_type == RW_WRITER)) {
1816 1.222 ad return 0;
1817 1.222 ad }
1818 1.222 ad
1819 1.222 ad /*
1820 1.222 ad * otherwise try for the upgrade. if we don't get it, unlock
1821 1.222 ad * everything, restart the fault and next time around get a writer
1822 1.222 ad * lock.
1823 1.222 ad */
1824 1.222 ad
1825 1.222 ad flt->lower_lock_type = RW_WRITER;
1826 1.222 ad if (__predict_false(!rw_tryupgrade(uobj->vmobjlock))) {
1827 1.222 ad uvmfault_unlockall(ufi, amap, uobj);
1828 1.222 ad cpu_count(CPU_COUNT_FLTNOUP, 1);
1829 1.222 ad UVMHIST_LOG(maphist, " !upgrade lower", 0, 0,0,0);
1830 1.222 ad return ERESTART;
1831 1.222 ad }
1832 1.222 ad cpu_count(CPU_COUNT_FLTUP, 1);
1833 1.222 ad KASSERT(flt->lower_lock_type == rw_lock_op(uobj->vmobjlock));
1834 1.222 ad return 0;
1835 1.222 ad }
1836 1.222 ad
1837 1.222 ad /*
1838 1.173 uebayasi * uvm_fault_lower: handle lower fault.
1839 1.173 uebayasi *
1840 1.173 uebayasi * 1. check uobj
1841 1.173 uebayasi * 1.1. if null, ZFOD.
1842 1.173 uebayasi * 1.2. if not null, look up unnmapped neighbor pages.
1843 1.173 uebayasi * 2. for center page, check if promote.
1844 1.173 uebayasi * 2.1. ZFOD always needs promotion.
1845 1.173 uebayasi * 2.2. other uobjs, when entry is marked COW (usually MAP_PRIVATE vnode).
1846 1.173 uebayasi * 3. if uobj is not ZFOD and page is not found, do i/o.
1847 1.173 uebayasi * 4. dispatch either direct / promote fault.
1848 1.173 uebayasi */
1849 1.173 uebayasi
1850 1.138 uebayasi static int
1851 1.173 uebayasi uvm_fault_lower(
1852 1.140 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
1853 1.173 uebayasi struct vm_page **pages)
1854 1.138 uebayasi {
1855 1.198 riastrad struct vm_amap *amap __diagused = ufi->entry->aref.ar_amap;
1856 1.173 uebayasi struct uvm_object *uobj = ufi->entry->object.uvm_obj;
1857 1.173 uebayasi struct vm_page *uobjpage;
1858 1.138 uebayasi int error;
1859 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1860 1.173 uebayasi
1861 1.7 mrg /*
1862 1.173 uebayasi * now, if the desired page is not shadowed by the amap and we have
1863 1.173 uebayasi * a backing object that does not have a special fault routine, then
1864 1.173 uebayasi * we ask (with pgo_get) the object for resident pages that we care
1865 1.173 uebayasi * about and attempt to map them in. we do not let pgo_get block
1866 1.173 uebayasi * (PGO_LOCKED).
1867 1.173 uebayasi */
1868 1.173 uebayasi
1869 1.173 uebayasi if (uobj == NULL) {
1870 1.173 uebayasi /* zero fill; don't care neighbor pages */
1871 1.173 uebayasi uobjpage = NULL;
1872 1.173 uebayasi } else {
1873 1.173 uebayasi uvm_fault_lower_lookup(ufi, flt, pages);
1874 1.173 uebayasi uobjpage = pages[flt->centeridx];
1875 1.173 uebayasi }
1876 1.173 uebayasi
1877 1.173 uebayasi /*
1878 1.173 uebayasi * note that at this point we are done with any front or back pages.
1879 1.173 uebayasi * we are now going to focus on the center page (i.e. the one we've
1880 1.173 uebayasi * faulted on). if we have faulted on the upper (anon) layer
1881 1.173 uebayasi * [i.e. case 1], then the anon we want is anons[centeridx] (we have
1882 1.173 uebayasi * not touched it yet). if we have faulted on the bottom (uobj)
1883 1.173 uebayasi * layer [i.e. case 2] and the page was both present and available,
1884 1.173 uebayasi * then we've got a pointer to it as "uobjpage" and we've already
1885 1.173 uebayasi * made it BUSY.
1886 1.7 mrg */
1887 1.7 mrg
1888 1.7 mrg /*
1889 1.7 mrg * locked:
1890 1.7 mrg * maps(read), amap(if there), uobj(if !null), uobjpage(if !null)
1891 1.7 mrg */
1892 1.222 ad KASSERT(amap == NULL ||
1893 1.222 ad rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1894 1.227 ad KASSERT(uobj == NULL ||
1895 1.227 ad rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
1896 1.7 mrg
1897 1.7 mrg /*
1898 1.7 mrg * note that uobjpage can not be PGO_DONTCARE at this point. we now
1899 1.7 mrg * set uobjpage to PGO_DONTCARE if we are doing a zero fill. if we
1900 1.7 mrg * have a backing object, check and see if we are going to promote
1901 1.7 mrg * the data up to an anon during the fault.
1902 1.7 mrg */
1903 1.7 mrg
1904 1.7 mrg if (uobj == NULL) {
1905 1.63 chs uobjpage = PGO_DONTCARE;
1906 1.168 uebayasi flt->promote = true; /* always need anon here */
1907 1.7 mrg } else {
1908 1.52 chs KASSERT(uobjpage != PGO_DONTCARE);
1909 1.168 uebayasi flt->promote = flt->cow_now && UVM_ET_ISCOPYONWRITE(ufi->entry);
1910 1.7 mrg }
1911 1.201 pgoyette UVMHIST_LOG(maphist, " case 2 fault: promote=%jd, zfill=%jd",
1912 1.168 uebayasi flt->promote, (uobj == NULL), 0,0);
1913 1.1 mrg
1914 1.7 mrg /*
1915 1.9 chuck * if uobjpage is not null then we do not need to do I/O to get the
1916 1.9 chuck * uobjpage.
1917 1.9 chuck *
1918 1.63 chs * if uobjpage is null, then we need to unlock and ask the pager to
1919 1.7 mrg * get the data for us. once we have the data, we need to reverify
1920 1.7 mrg * the state the world. we are currently not holding any resources.
1921 1.7 mrg */
1922 1.1 mrg
1923 1.9 chuck if (uobjpage) {
1924 1.9 chuck /* update rusage counters */
1925 1.124 ad curlwp->l_ru.ru_minflt++;
1926 1.9 chuck } else {
1927 1.163 uebayasi error = uvm_fault_lower_io(ufi, flt, &uobj, &uobjpage);
1928 1.148 uebayasi if (error != 0)
1929 1.148 uebayasi return error;
1930 1.148 uebayasi }
1931 1.160 uebayasi
1932 1.160 uebayasi /*
1933 1.160 uebayasi * locked:
1934 1.160 uebayasi * maps(read), amap(if !null), uobj(if !null), uobjpage(if uobj)
1935 1.160 uebayasi */
1936 1.222 ad KASSERT(amap == NULL ||
1937 1.222 ad rw_lock_op(amap->am_lock) == flt->upper_lock_type);
1938 1.227 ad KASSERT(uobj == NULL ||
1939 1.227 ad rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
1940 1.160 uebayasi
1941 1.160 uebayasi /*
1942 1.160 uebayasi * notes:
1943 1.160 uebayasi * - at this point uobjpage can not be NULL
1944 1.160 uebayasi * - at this point uobjpage can not be PG_RELEASED (since we checked
1945 1.160 uebayasi * for it above)
1946 1.218 ad * - at this point uobjpage could be waited on (handle later)
1947 1.227 ad * - uobjpage can be from a different object if tmpfs (vnode vs UAO)
1948 1.160 uebayasi */
1949 1.160 uebayasi
1950 1.177 yamt KASSERT(uobjpage != NULL);
1951 1.227 ad KASSERT(uobj == NULL ||
1952 1.227 ad uobjpage->uobject->vmobjlock == uobj->vmobjlock);
1953 1.160 uebayasi KASSERT(uobj == NULL || !UVM_OBJ_IS_CLEAN(uobjpage->uobject) ||
1954 1.215 ad uvm_pagegetdirty(uobjpage) == UVM_PAGE_STATUS_CLEAN);
1955 1.160 uebayasi
1956 1.177 yamt if (!flt->promote) {
1957 1.163 uebayasi error = uvm_fault_lower_direct(ufi, flt, uobj, uobjpage);
1958 1.160 uebayasi } else {
1959 1.163 uebayasi error = uvm_fault_lower_promote(ufi, flt, uobj, uobjpage);
1960 1.160 uebayasi }
1961 1.160 uebayasi return error;
1962 1.148 uebayasi }
1963 1.148 uebayasi
1964 1.173 uebayasi /*
1965 1.173 uebayasi * uvm_fault_lower_lookup: look up on-memory uobj pages.
1966 1.173 uebayasi *
1967 1.173 uebayasi * 1. get on-memory pages.
1968 1.173 uebayasi * 2. if failed, give up (get only center page later).
1969 1.173 uebayasi * 3. if succeeded, enter h/w mapping of neighbor pages.
1970 1.173 uebayasi */
1971 1.173 uebayasi
1972 1.173 uebayasi static void
1973 1.173 uebayasi uvm_fault_lower_lookup(
1974 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
1975 1.173 uebayasi struct vm_page **pages)
1976 1.173 uebayasi {
1977 1.173 uebayasi struct uvm_object *uobj = ufi->entry->object.uvm_obj;
1978 1.173 uebayasi int lcv, gotpages;
1979 1.173 uebayasi vaddr_t currva;
1980 1.227 ad bool entered;
1981 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
1982 1.173 uebayasi
1983 1.222 ad rw_enter(uobj->vmobjlock, flt->lower_lock_type);
1984 1.222 ad
1985 1.222 ad /*
1986 1.222 ad * Locked: maps(read), amap(if there), uobj
1987 1.222 ad */
1988 1.173 uebayasi
1989 1.213 ad cpu_count(CPU_COUNT_FLTLGET, 1);
1990 1.173 uebayasi gotpages = flt->npages;
1991 1.173 uebayasi (void) uobj->pgops->pgo_get(uobj,
1992 1.173 uebayasi ufi->entry->offset + flt->startva - ufi->entry->start,
1993 1.173 uebayasi pages, &gotpages, flt->centeridx,
1994 1.222 ad flt->access_type & MASK(ufi->entry), ufi->entry->advice,
1995 1.227 ad PGO_LOCKED);
1996 1.173 uebayasi
1997 1.222 ad KASSERT(rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
1998 1.186 rmind
1999 1.173 uebayasi /*
2000 1.173 uebayasi * check for pages to map, if we got any
2001 1.173 uebayasi */
2002 1.173 uebayasi
2003 1.173 uebayasi if (gotpages == 0) {
2004 1.173 uebayasi pages[flt->centeridx] = NULL;
2005 1.173 uebayasi return;
2006 1.173 uebayasi }
2007 1.173 uebayasi
2008 1.227 ad entered = false;
2009 1.173 uebayasi currva = flt->startva;
2010 1.173 uebayasi for (lcv = 0; lcv < flt->npages; lcv++, currva += PAGE_SIZE) {
2011 1.173 uebayasi struct vm_page *curpg;
2012 1.173 uebayasi
2013 1.173 uebayasi curpg = pages[lcv];
2014 1.173 uebayasi if (curpg == NULL || curpg == PGO_DONTCARE) {
2015 1.173 uebayasi continue;
2016 1.173 uebayasi }
2017 1.173 uebayasi
2018 1.227 ad /*
2019 1.227 ad * in the case of tmpfs, the pages might be from a different
2020 1.227 ad * uvm_object. just make sure that they have the same lock.
2021 1.227 ad */
2022 1.227 ad
2023 1.227 ad KASSERT(curpg->uobject->vmobjlock == uobj->vmobjlock);
2024 1.227 ad KASSERT((curpg->flags & PG_BUSY) == 0);
2025 1.222 ad
2026 1.173 uebayasi /*
2027 1.227 ad * leave the centre page for later. don't screw with
2028 1.227 ad * existing mappings (needless & expensive).
2029 1.173 uebayasi */
2030 1.173 uebayasi
2031 1.173 uebayasi if (lcv == flt->centeridx) {
2032 1.217 rin UVMHIST_LOG(maphist, " got uobjpage (%#jx) "
2033 1.201 pgoyette "with locked get", (uintptr_t)curpg, 0, 0, 0);
2034 1.227 ad } else if (!pmap_extract(ufi->orig_map->pmap, currva, NULL)) {
2035 1.215 ad uvm_fault_lower_neighbor(ufi, flt, currva, curpg);
2036 1.227 ad entered = true;
2037 1.173 uebayasi }
2038 1.173 uebayasi }
2039 1.227 ad if (entered) {
2040 1.227 ad pmap_update(ufi->orig_map->pmap);
2041 1.227 ad }
2042 1.173 uebayasi }
2043 1.173 uebayasi
2044 1.173 uebayasi /*
2045 1.173 uebayasi * uvm_fault_lower_neighbor: enter h/w mapping of lower neighbor page.
2046 1.173 uebayasi */
2047 1.173 uebayasi
2048 1.173 uebayasi static void
2049 1.173 uebayasi uvm_fault_lower_neighbor(
2050 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
2051 1.215 ad vaddr_t currva, struct vm_page *pg)
2052 1.173 uebayasi {
2053 1.215 ad const bool readonly = uvm_pagereadonly_p(pg) || pg->loan_count > 0;
2054 1.182 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2055 1.173 uebayasi
2056 1.173 uebayasi /* locked: maps(read), amap(if there), uobj */
2057 1.173 uebayasi
2058 1.173 uebayasi /*
2059 1.173 uebayasi * calling pgo_get with PGO_LOCKED returns us pages which
2060 1.173 uebayasi * are neither busy nor released, so we don't need to check
2061 1.173 uebayasi * for this. we can just directly enter the pages.
2062 1.227 ad *
2063 1.222 ad * there wasn't a direct fault on the page, so avoid the cost of
2064 1.227 ad * activating it.
2065 1.222 ad */
2066 1.222 ad
2067 1.227 ad if (!uvmpdpol_pageisqueued_p(pg) && pg->wire_count == 0) {
2068 1.222 ad uvm_pagelock(pg);
2069 1.222 ad uvm_pageenqueue(pg);
2070 1.222 ad uvm_pageunlock(pg);
2071 1.222 ad }
2072 1.227 ad
2073 1.173 uebayasi UVMHIST_LOG(maphist,
2074 1.201 pgoyette " MAPPING: n obj: pm=%#jx, va=%#jx, pg=%#jx",
2075 1.201 pgoyette (uintptr_t)ufi->orig_map->pmap, currva, (uintptr_t)pg, 0);
2076 1.213 ad cpu_count(CPU_COUNT_FLTNOMAP, 1);
2077 1.173 uebayasi
2078 1.173 uebayasi /*
2079 1.173 uebayasi * Since this page isn't the page that's actually faulting,
2080 1.173 uebayasi * ignore pmap_enter() failures; it's not critical that we
2081 1.173 uebayasi * enter these right now.
2082 1.219 ad * NOTE: page can't be waited on or PG_RELEASED because we've
2083 1.173 uebayasi * held the lock the whole time we've had the handle.
2084 1.173 uebayasi */
2085 1.173 uebayasi KASSERT((pg->flags & PG_PAGEOUT) == 0);
2086 1.173 uebayasi KASSERT((pg->flags & PG_RELEASED) == 0);
2087 1.215 ad KASSERT(!UVM_OBJ_IS_CLEAN(pg->uobject) ||
2088 1.215 ad uvm_pagegetdirty(pg) == UVM_PAGE_STATUS_CLEAN);
2089 1.227 ad KASSERT((pg->flags & PG_BUSY) == 0);
2090 1.222 ad KASSERT(rw_lock_op(pg->uobject->vmobjlock) == flt->lower_lock_type);
2091 1.199 skrll
2092 1.223 skrll const vm_prot_t mapprot =
2093 1.199 skrll readonly ? (flt->enter_prot & ~VM_PROT_WRITE) :
2094 1.199 skrll flt->enter_prot & MASK(ufi->entry);
2095 1.223 skrll const u_int mapflags =
2096 1.199 skrll PMAP_CANFAIL | (flt->wire_mapping ? (mapprot | PMAP_WIRED) : 0);
2097 1.173 uebayasi (void) pmap_enter(ufi->orig_map->pmap, currva,
2098 1.199 skrll VM_PAGE_TO_PHYS(pg), mapprot, mapflags);
2099 1.173 uebayasi }
2100 1.173 uebayasi
2101 1.173 uebayasi /*
2102 1.173 uebayasi * uvm_fault_lower_io: get lower page from backing store.
2103 1.173 uebayasi *
2104 1.173 uebayasi * 1. unlock everything, because i/o will block.
2105 1.173 uebayasi * 2. call pgo_get.
2106 1.173 uebayasi * 3. if failed, recover.
2107 1.173 uebayasi * 4. if succeeded, relock everything and verify things.
2108 1.173 uebayasi */
2109 1.173 uebayasi
2110 1.148 uebayasi static int
2111 1.163 uebayasi uvm_fault_lower_io(
2112 1.222 ad struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
2113 1.156 uebayasi struct uvm_object **ruobj, struct vm_page **ruobjpage)
2114 1.148 uebayasi {
2115 1.149 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
2116 1.156 uebayasi struct uvm_object *uobj = *ruobj;
2117 1.158 uebayasi struct vm_page *pg;
2118 1.149 uebayasi bool locked;
2119 1.149 uebayasi int gotpages;
2120 1.149 uebayasi int error;
2121 1.149 uebayasi voff_t uoff;
2122 1.208 chs vm_prot_t access_type;
2123 1.208 chs int advice;
2124 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2125 1.149 uebayasi
2126 1.149 uebayasi /* update rusage counters */
2127 1.149 uebayasi curlwp->l_ru.ru_majflt++;
2128 1.137 uebayasi
2129 1.208 chs /* grab everything we need from the entry before we unlock */
2130 1.208 chs uoff = (ufi->orig_rvaddr - ufi->entry->start) + ufi->entry->offset;
2131 1.208 chs access_type = flt->access_type & MASK(ufi->entry);
2132 1.208 chs advice = ufi->entry->advice;
2133 1.208 chs
2134 1.186 rmind /* Locked: maps(read), amap(if there), uobj */
2135 1.222 ad KASSERT(rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
2136 1.222 ad
2137 1.222 ad /* Upgrade to a write lock if needed. */
2138 1.222 ad error = uvm_fault_lower_upgrade(ufi, flt, amap, uobj, NULL);
2139 1.222 ad if (error != 0) {
2140 1.222 ad return error;
2141 1.222 ad }
2142 1.186 rmind uvmfault_unlockall(ufi, amap, NULL);
2143 1.186 rmind
2144 1.222 ad /* Locked: uobj(write) */
2145 1.222 ad KASSERT(rw_write_held(uobj->vmobjlock));
2146 1.63 chs
2147 1.213 ad cpu_count(CPU_COUNT_FLTGET, 1);
2148 1.149 uebayasi gotpages = 1;
2149 1.166 mlelstv pg = NULL;
2150 1.158 uebayasi error = uobj->pgops->pgo_get(uobj, uoff, &pg, &gotpages,
2151 1.208 chs 0, access_type, advice, PGO_SYNCIO);
2152 1.158 uebayasi /* locked: pg(if no error) */
2153 1.52 chs
2154 1.149 uebayasi /*
2155 1.149 uebayasi * recover from I/O
2156 1.149 uebayasi */
2157 1.1 mrg
2158 1.149 uebayasi if (error) {
2159 1.149 uebayasi if (error == EAGAIN) {
2160 1.149 uebayasi UVMHIST_LOG(maphist,
2161 1.149 uebayasi " pgo_get says TRY AGAIN!",0,0,0,0);
2162 1.149 uebayasi kpause("fltagain2", false, hz/2, NULL);
2163 1.149 uebayasi return ERESTART;
2164 1.149 uebayasi }
2165 1.1 mrg
2166 1.139 uebayasi #if 0
2167 1.149 uebayasi KASSERT(error != ERESTART);
2168 1.139 uebayasi #else
2169 1.149 uebayasi /* XXXUEBS don't re-fault? */
2170 1.149 uebayasi if (error == ERESTART)
2171 1.149 uebayasi error = EIO;
2172 1.139 uebayasi #endif
2173 1.139 uebayasi
2174 1.201 pgoyette UVMHIST_LOG(maphist, "<- pgo_get failed (code %jd)",
2175 1.149 uebayasi error, 0,0,0);
2176 1.149 uebayasi return error;
2177 1.149 uebayasi }
2178 1.7 mrg
2179 1.149 uebayasi /*
2180 1.149 uebayasi * re-verify the state of the world by first trying to relock
2181 1.149 uebayasi * the maps. always relock the object.
2182 1.149 uebayasi */
2183 1.7 mrg
2184 1.149 uebayasi locked = uvmfault_relock(ufi);
2185 1.149 uebayasi if (locked && amap)
2186 1.222 ad amap_lock(amap, flt->upper_lock_type);
2187 1.156 uebayasi
2188 1.156 uebayasi /* might be changed */
2189 1.158 uebayasi uobj = pg->uobject;
2190 1.156 uebayasi
2191 1.222 ad rw_enter(uobj->vmobjlock, flt->lower_lock_type);
2192 1.186 rmind KASSERT((pg->flags & PG_BUSY) != 0);
2193 1.222 ad KASSERT(flt->lower_lock_type == RW_WRITER);
2194 1.186 rmind
2195 1.214 ad uvm_pagelock(pg);
2196 1.186 rmind uvm_pageactivate(pg);
2197 1.214 ad uvm_pageunlock(pg);
2198 1.63 chs
2199 1.158 uebayasi /* locked(locked): maps(read), amap(if !null), uobj, pg */
2200 1.158 uebayasi /* locked(!locked): uobj, pg */
2201 1.7 mrg
2202 1.149 uebayasi /*
2203 1.149 uebayasi * verify that the page has not be released and re-verify
2204 1.149 uebayasi * that amap slot is still free. if there is a problem,
2205 1.149 uebayasi * we unlock and clean up.
2206 1.149 uebayasi */
2207 1.7 mrg
2208 1.158 uebayasi if ((pg->flags & PG_RELEASED) != 0 ||
2209 1.158 uebayasi (locked && amap && amap_lookup(&ufi->entry->aref,
2210 1.149 uebayasi ufi->orig_rvaddr - ufi->entry->start))) {
2211 1.149 uebayasi if (locked)
2212 1.186 rmind uvmfault_unlockall(ufi, amap, NULL);
2213 1.149 uebayasi locked = false;
2214 1.149 uebayasi }
2215 1.7 mrg
2216 1.149 uebayasi /*
2217 1.227 ad * unbusy/release the page.
2218 1.227 ad */
2219 1.227 ad
2220 1.227 ad if ((pg->flags & PG_RELEASED) == 0) {
2221 1.227 ad pg->flags &= ~PG_BUSY;
2222 1.227 ad uvm_pagelock(pg);
2223 1.227 ad uvm_pagewakeup(pg);
2224 1.227 ad uvm_pageunlock(pg);
2225 1.227 ad UVM_PAGE_OWN(pg, NULL);
2226 1.227 ad } else {
2227 1.227 ad cpu_count(CPU_COUNT_FLTPGRELE, 1);
2228 1.227 ad uvm_pagefree(pg);
2229 1.227 ad }
2230 1.227 ad
2231 1.227 ad /*
2232 1.227 ad * didn't get the lock? retry.
2233 1.149 uebayasi */
2234 1.7 mrg
2235 1.149 uebayasi if (locked == false) {
2236 1.149 uebayasi UVMHIST_LOG(maphist,
2237 1.149 uebayasi " wasn't able to relock after fault: retry",
2238 1.149 uebayasi 0,0,0,0);
2239 1.216 ad rw_exit(uobj->vmobjlock);
2240 1.149 uebayasi return ERESTART;
2241 1.149 uebayasi }
2242 1.7 mrg
2243 1.149 uebayasi /*
2244 1.227 ad * we have the data in pg. we are holding object lock (so the page
2245 1.149 uebayasi * can't be released on us).
2246 1.149 uebayasi */
2247 1.7 mrg
2248 1.227 ad /* locked: maps(read), amap(if !null), uobj */
2249 1.148 uebayasi
2250 1.156 uebayasi *ruobj = uobj;
2251 1.158 uebayasi *ruobjpage = pg;
2252 1.148 uebayasi return 0;
2253 1.148 uebayasi }
2254 1.148 uebayasi
2255 1.173 uebayasi /*
2256 1.173 uebayasi * uvm_fault_lower_direct: fault lower center page
2257 1.173 uebayasi *
2258 1.177 yamt * 1. adjust flt->enter_prot.
2259 1.173 uebayasi * 2. if page is loaned, resolve.
2260 1.173 uebayasi */
2261 1.173 uebayasi
2262 1.148 uebayasi int
2263 1.163 uebayasi uvm_fault_lower_direct(
2264 1.148 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
2265 1.156 uebayasi struct uvm_object *uobj, struct vm_page *uobjpage)
2266 1.148 uebayasi {
2267 1.149 uebayasi struct vm_page *pg;
2268 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2269 1.149 uebayasi
2270 1.149 uebayasi /*
2271 1.149 uebayasi * we are not promoting. if the mapping is COW ensure that we
2272 1.149 uebayasi * don't give more access than we should (e.g. when doing a read
2273 1.149 uebayasi * fault on a COPYONWRITE mapping we want to map the COW page in
2274 1.149 uebayasi * R/O even though the entry protection could be R/W).
2275 1.149 uebayasi *
2276 1.149 uebayasi * set "pg" to the page we want to map in (uobjpage, usually)
2277 1.149 uebayasi */
2278 1.1 mrg
2279 1.213 ad cpu_count(CPU_COUNT_FLT_OBJ, 1);
2280 1.149 uebayasi if (UVM_ET_ISCOPYONWRITE(ufi->entry) ||
2281 1.149 uebayasi UVM_OBJ_NEEDS_WRITEFAULT(uobjpage->uobject))
2282 1.149 uebayasi flt->enter_prot &= ~VM_PROT_WRITE;
2283 1.149 uebayasi pg = uobjpage; /* map in the actual object */
2284 1.7 mrg
2285 1.149 uebayasi KASSERT(uobjpage != PGO_DONTCARE);
2286 1.7 mrg
2287 1.149 uebayasi /*
2288 1.149 uebayasi * we are faulting directly on the page. be careful
2289 1.149 uebayasi * about writing to loaned pages...
2290 1.149 uebayasi */
2291 1.149 uebayasi
2292 1.149 uebayasi if (uobjpage->loan_count) {
2293 1.163 uebayasi uvm_fault_lower_direct_loan(ufi, flt, uobj, &pg, &uobjpage);
2294 1.151 uebayasi }
2295 1.151 uebayasi KASSERT(pg == uobjpage);
2296 1.227 ad KASSERT((pg->flags & PG_BUSY) == 0);
2297 1.183 yamt return uvm_fault_lower_enter(ufi, flt, uobj, NULL, pg);
2298 1.151 uebayasi }
2299 1.151 uebayasi
2300 1.173 uebayasi /*
2301 1.173 uebayasi * uvm_fault_lower_direct_loan: resolve loaned page.
2302 1.173 uebayasi *
2303 1.177 yamt * 1. if not cow'ing, adjust flt->enter_prot.
2304 1.173 uebayasi * 2. if cow'ing, break loan.
2305 1.173 uebayasi */
2306 1.173 uebayasi
2307 1.151 uebayasi static int
2308 1.163 uebayasi uvm_fault_lower_direct_loan(
2309 1.151 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
2310 1.177 yamt struct uvm_object *uobj, struct vm_page **rpg,
2311 1.177 yamt struct vm_page **ruobjpage)
2312 1.151 uebayasi {
2313 1.152 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
2314 1.152 uebayasi struct vm_page *pg;
2315 1.152 uebayasi struct vm_page *uobjpage = *ruobjpage;
2316 1.222 ad int error;
2317 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2318 1.152 uebayasi
2319 1.152 uebayasi if (!flt->cow_now) {
2320 1.152 uebayasi /* read fault: cap the protection at readonly */
2321 1.152 uebayasi /* cap! */
2322 1.152 uebayasi flt->enter_prot = flt->enter_prot & ~VM_PROT_WRITE;
2323 1.152 uebayasi } else {
2324 1.222 ad /*
2325 1.222 ad * write fault: must break the loan here. to do this
2326 1.222 ad * we need a write lock on the object.
2327 1.222 ad */
2328 1.222 ad
2329 1.222 ad error = uvm_fault_lower_upgrade(ufi, flt, amap, uobj, uobjpage);
2330 1.222 ad if (error != 0) {
2331 1.222 ad return error;
2332 1.222 ad }
2333 1.222 ad KASSERT(rw_write_held(uobj->vmobjlock));
2334 1.152 uebayasi
2335 1.152 uebayasi pg = uvm_loanbreak(uobjpage);
2336 1.152 uebayasi if (pg == NULL) {
2337 1.152 uebayasi
2338 1.186 rmind uvmfault_unlockall(ufi, amap, uobj);
2339 1.152 uebayasi UVMHIST_LOG(maphist,
2340 1.152 uebayasi " out of RAM breaking loan, waiting",
2341 1.152 uebayasi 0,0,0,0);
2342 1.213 ad cpu_count(CPU_COUNT_FLTNORAM, 1);
2343 1.152 uebayasi uvm_wait("flt_noram4");
2344 1.152 uebayasi return ERESTART;
2345 1.69 chs }
2346 1.152 uebayasi *rpg = pg;
2347 1.152 uebayasi *ruobjpage = pg;
2348 1.227 ad
2349 1.227 ad /*
2350 1.227 ad * drop ownership of page while still holding object lock,
2351 1.227 ad * which won't be dropped until the page is entered.
2352 1.227 ad */
2353 1.227 ad
2354 1.227 ad uvm_pagelock(pg);
2355 1.227 ad uvm_pagewakeup(pg);
2356 1.227 ad uvm_pageunlock(pg);
2357 1.227 ad pg->flags &= ~PG_BUSY;
2358 1.227 ad UVM_PAGE_OWN(pg, NULL);
2359 1.152 uebayasi }
2360 1.152 uebayasi return 0;
2361 1.148 uebayasi }
2362 1.148 uebayasi
2363 1.173 uebayasi /*
2364 1.173 uebayasi * uvm_fault_lower_promote: promote lower page.
2365 1.173 uebayasi *
2366 1.173 uebayasi * 1. call uvmfault_promote.
2367 1.173 uebayasi * 2. fill in data.
2368 1.173 uebayasi * 3. if not ZFOD, dispose old page.
2369 1.173 uebayasi */
2370 1.173 uebayasi
2371 1.148 uebayasi int
2372 1.163 uebayasi uvm_fault_lower_promote(
2373 1.148 uebayasi struct uvm_faultinfo *ufi, struct uvm_faultctx *flt,
2374 1.156 uebayasi struct uvm_object *uobj, struct vm_page *uobjpage)
2375 1.148 uebayasi {
2376 1.149 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
2377 1.149 uebayasi struct vm_anon *anon;
2378 1.149 uebayasi struct vm_page *pg;
2379 1.149 uebayasi int error;
2380 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2381 1.63 chs
2382 1.186 rmind KASSERT(amap != NULL);
2383 1.186 rmind
2384 1.222 ad /* promoting requires a write lock. */
2385 1.222 ad error = uvm_fault_upper_upgrade(ufi, flt, amap, uobj);
2386 1.222 ad if (error != 0) {
2387 1.222 ad return error;
2388 1.222 ad }
2389 1.222 ad KASSERT(rw_write_held(amap->am_lock));
2390 1.227 ad KASSERT(uobj == NULL ||
2391 1.227 ad rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
2392 1.222 ad
2393 1.149 uebayasi /*
2394 1.186 rmind * If we are going to promote the data to an anon we
2395 1.149 uebayasi * allocate a blank anon here and plug it into our amap.
2396 1.149 uebayasi */
2397 1.222 ad error = uvmfault_promote(ufi, NULL, uobjpage, &anon, &flt->anon_spare);
2398 1.149 uebayasi switch (error) {
2399 1.149 uebayasi case 0:
2400 1.149 uebayasi break;
2401 1.149 uebayasi case ERESTART:
2402 1.149 uebayasi return ERESTART;
2403 1.149 uebayasi default:
2404 1.149 uebayasi return error;
2405 1.149 uebayasi }
2406 1.149 uebayasi
2407 1.149 uebayasi pg = anon->an_page;
2408 1.149 uebayasi
2409 1.149 uebayasi /*
2410 1.186 rmind * Fill in the data.
2411 1.149 uebayasi */
2412 1.105 yamt
2413 1.149 uebayasi if (uobjpage != PGO_DONTCARE) {
2414 1.213 ad cpu_count(CPU_COUNT_FLT_PRCOPY, 1);
2415 1.1 mrg
2416 1.7 mrg /*
2417 1.149 uebayasi * promote to shared amap? make sure all sharing
2418 1.149 uebayasi * procs see it
2419 1.7 mrg */
2420 1.7 mrg
2421 1.149 uebayasi if ((amap_flags(amap) & AMAP_SHARED) != 0) {
2422 1.149 uebayasi pmap_page_protect(uobjpage, VM_PROT_NONE);
2423 1.7 mrg /*
2424 1.149 uebayasi * XXX: PAGE MIGHT BE WIRED!
2425 1.7 mrg */
2426 1.149 uebayasi }
2427 1.69 chs
2428 1.149 uebayasi UVMHIST_LOG(maphist,
2429 1.217 rin " promote uobjpage %#jx to anon/page %#jx/%#jx",
2430 1.201 pgoyette (uintptr_t)uobjpage, (uintptr_t)anon, (uintptr_t)pg, 0);
2431 1.63 chs
2432 1.149 uebayasi } else {
2433 1.213 ad cpu_count(CPU_COUNT_FLT_PRZERO, 1);
2434 1.7 mrg
2435 1.149 uebayasi /*
2436 1.149 uebayasi * Page is zero'd and marked dirty by
2437 1.149 uebayasi * uvmfault_promote().
2438 1.149 uebayasi */
2439 1.52 chs
2440 1.217 rin UVMHIST_LOG(maphist," zero fill anon/page %#jx/%#jx",
2441 1.201 pgoyette (uintptr_t)anon, (uintptr_t)pg, 0, 0);
2442 1.149 uebayasi }
2443 1.148 uebayasi
2444 1.183 yamt return uvm_fault_lower_enter(ufi, flt, uobj, anon, pg);
2445 1.148 uebayasi }
2446 1.148 uebayasi
2447 1.173 uebayasi /*
2448 1.183 yamt * uvm_fault_lower_enter: enter h/w mapping of lower page or anon page promoted
2449 1.183 yamt * from the lower page.
2450 1.173 uebayasi */
2451 1.173 uebayasi
2452 1.148 uebayasi int
2453 1.163 uebayasi uvm_fault_lower_enter(
2454 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
2455 1.148 uebayasi struct uvm_object *uobj,
2456 1.183 yamt struct vm_anon *anon, struct vm_page *pg)
2457 1.148 uebayasi {
2458 1.148 uebayasi struct vm_amap * const amap = ufi->entry->aref.ar_amap;
2459 1.215 ad const bool readonly = uvm_pagereadonly_p(pg);
2460 1.148 uebayasi int error;
2461 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2462 1.7 mrg
2463 1.7 mrg /*
2464 1.186 rmind * Locked:
2465 1.186 rmind *
2466 1.186 rmind * maps(read), amap(if !null), uobj(if !null),
2467 1.186 rmind * anon(if !null), pg(if anon), unlock_uobj(if !null)
2468 1.7 mrg *
2469 1.222 ad * anon must be write locked (promotion). uobj can be either.
2470 1.222 ad *
2471 1.186 rmind * Note: pg is either the uobjpage or the new page in the new anon.
2472 1.7 mrg */
2473 1.227 ad
2474 1.222 ad KASSERT(amap == NULL ||
2475 1.222 ad rw_lock_op(amap->am_lock) == flt->upper_lock_type);
2476 1.227 ad KASSERT(uobj == NULL ||
2477 1.227 ad rw_lock_op(uobj->vmobjlock) == flt->lower_lock_type);
2478 1.186 rmind KASSERT(anon == NULL || anon->an_lock == amap->am_lock);
2479 1.227 ad
2480 1.227 ad /*
2481 1.227 ad * note that pg can't be PG_RELEASED or PG_BUSY since we did
2482 1.227 ad * not drop the object lock since the last time we checked.
2483 1.227 ad */
2484 1.227 ad
2485 1.227 ad KASSERT((pg->flags & PG_RELEASED) == 0);
2486 1.227 ad KASSERT((pg->flags & PG_BUSY) == 0);
2487 1.7 mrg
2488 1.7 mrg /*
2489 1.7 mrg * all resources are present. we can now map it in and free our
2490 1.7 mrg * resources.
2491 1.7 mrg */
2492 1.7 mrg
2493 1.7 mrg UVMHIST_LOG(maphist,
2494 1.201 pgoyette " MAPPING: case2: pm=%#jx, va=%#jx, pg=%#jx, promote=%jd",
2495 1.201 pgoyette (uintptr_t)ufi->orig_map->pmap, ufi->orig_rvaddr,
2496 1.201 pgoyette (uintptr_t)pg, flt->promote);
2497 1.215 ad KASSERTMSG((flt->access_type & VM_PROT_WRITE) == 0 || !readonly,
2498 1.215 ad "promote=%u cow_now=%u access_type=%x enter_prot=%x cow=%u "
2499 1.215 ad "entry=%p map=%p orig_rvaddr=%p pg=%p",
2500 1.215 ad flt->promote, flt->cow_now, flt->access_type, flt->enter_prot,
2501 1.215 ad UVM_ET_ISCOPYONWRITE(ufi->entry), ufi->entry, ufi->orig_map,
2502 1.215 ad (void *)ufi->orig_rvaddr, pg);
2503 1.215 ad KASSERT((flt->access_type & VM_PROT_WRITE) == 0 || !readonly);
2504 1.177 yamt if (pmap_enter(ufi->orig_map->pmap, ufi->orig_rvaddr,
2505 1.177 yamt VM_PAGE_TO_PHYS(pg),
2506 1.215 ad readonly ? flt->enter_prot & ~VM_PROT_WRITE : flt->enter_prot,
2507 1.177 yamt flt->access_type | PMAP_CANFAIL |
2508 1.177 yamt (flt->wire_mapping ? PMAP_WIRED : 0)) != 0) {
2509 1.52 chs
2510 1.46 thorpej /*
2511 1.46 thorpej * No need to undo what we did; we can simply think of
2512 1.46 thorpej * this as the pmap throwing away the mapping information.
2513 1.46 thorpej *
2514 1.46 thorpej * We do, however, have to go through the ReFault path,
2515 1.46 thorpej * as the map may change while we're asleep.
2516 1.46 thorpej */
2517 1.52 chs
2518 1.183 yamt /*
2519 1.183 yamt * ensure that the page is queued in the case that
2520 1.183 yamt * we just promoted the page.
2521 1.183 yamt */
2522 1.183 yamt
2523 1.227 ad if (anon != NULL) {
2524 1.222 ad uvm_pagelock(pg);
2525 1.222 ad uvm_pageenqueue(pg);
2526 1.222 ad uvm_pagewakeup(pg);
2527 1.222 ad uvm_pageunlock(pg);
2528 1.222 ad }
2529 1.171 uebayasi
2530 1.186 rmind uvmfault_unlockall(ufi, amap, uobj);
2531 1.92 yamt if (!uvm_reclaimable()) {
2532 1.46 thorpej UVMHIST_LOG(maphist,
2533 1.46 thorpej "<- failed. out of VM",0,0,0,0);
2534 1.46 thorpej /* XXX instrumentation */
2535 1.106 yamt error = ENOMEM;
2536 1.138 uebayasi return error;
2537 1.46 thorpej }
2538 1.46 thorpej /* XXX instrumentation */
2539 1.46 thorpej uvm_wait("flt_pmfail2");
2540 1.139 uebayasi return ERESTART;
2541 1.46 thorpej }
2542 1.1 mrg
2543 1.177 yamt uvm_fault_lower_done(ufi, flt, uobj, pg);
2544 1.175 rmind pmap_update(ufi->orig_map->pmap);
2545 1.186 rmind uvmfault_unlockall(ufi, amap, uobj);
2546 1.175 rmind
2547 1.169 uebayasi UVMHIST_LOG(maphist, "<- done (SUCCESS!)",0,0,0,0);
2548 1.169 uebayasi return 0;
2549 1.148 uebayasi }
2550 1.148 uebayasi
2551 1.173 uebayasi /*
2552 1.173 uebayasi * uvm_fault_lower_done: queue lower center page.
2553 1.173 uebayasi */
2554 1.173 uebayasi
2555 1.169 uebayasi void
2556 1.163 uebayasi uvm_fault_lower_done(
2557 1.177 yamt struct uvm_faultinfo *ufi, const struct uvm_faultctx *flt,
2558 1.177 yamt struct uvm_object *uobj, struct vm_page *pg)
2559 1.148 uebayasi {
2560 1.174 rmind
2561 1.228 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(maphist);
2562 1.148 uebayasi
2563 1.146 uebayasi if (flt->wire_paging) {
2564 1.227 ad uvm_pagelock(pg);
2565 1.8 chuck uvm_pagewire(pg);
2566 1.227 ad uvm_pageunlock(pg);
2567 1.212 ad if (pg->flags & PG_AOBJ) {
2568 1.29 chs
2569 1.29 chs /*
2570 1.29 chs * since the now-wired page cannot be paged out,
2571 1.29 chs * release its swap resources for others to use.
2572 1.215 ad * since an aobj page with no swap cannot be clean,
2573 1.215 ad * mark it dirty now.
2574 1.227 ad *
2575 1.227 ad * use pg->uobject here. if the page is from a
2576 1.227 ad * tmpfs vnode, the pages are backed by its UAO and
2577 1.227 ad * not the vnode.
2578 1.29 chs */
2579 1.29 chs
2580 1.113 christos KASSERT(uobj != NULL);
2581 1.227 ad KASSERT(uobj->vmobjlock == pg->uobject->vmobjlock);
2582 1.215 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_DIRTY);
2583 1.227 ad uao_dropswap(pg->uobject, pg->offset >> PAGE_SHIFT);
2584 1.22 chs }
2585 1.227 ad } else if (uvmpdpol_pageactivate_p(pg)) {
2586 1.227 ad /*
2587 1.227 ad * avoid re-activating the page unless needed,
2588 1.227 ad * to avoid false sharing on multiprocessor.
2589 1.227 ad */
2590 1.227 ad
2591 1.227 ad uvm_pagelock(pg);
2592 1.7 mrg uvm_pageactivate(pg);
2593 1.227 ad uvm_pageunlock(pg);
2594 1.174 rmind }
2595 1.1 mrg }
2596 1.1 mrg
2597 1.110 drochner
2598 1.1 mrg /*
2599 1.1 mrg * uvm_fault_wire: wire down a range of virtual addresses in a map.
2600 1.1 mrg *
2601 1.36 thorpej * => map may be read-locked by caller, but MUST NOT be write-locked.
2602 1.36 thorpej * => if map is read-locked, any operations which may cause map to
2603 1.36 thorpej * be write-locked in uvm_fault() must be taken care of by
2604 1.36 thorpej * the caller. See uvm_map_pageable().
2605 1.1 mrg */
2606 1.1 mrg
2607 1.7 mrg int
2608 1.95 thorpej uvm_fault_wire(struct vm_map *map, vaddr_t start, vaddr_t end,
2609 1.130 uebayasi vm_prot_t access_type, int maxprot)
2610 1.7 mrg {
2611 1.12 eeh vaddr_t va;
2612 1.58 chs int error;
2613 1.7 mrg
2614 1.7 mrg /*
2615 1.47 chs * now fault it in a page at a time. if the fault fails then we have
2616 1.63 chs * to undo what we have done. note that in uvm_fault VM_PROT_NONE
2617 1.47 chs * is replaced with the max protection if fault_type is VM_FAULT_WIRE.
2618 1.7 mrg */
2619 1.1 mrg
2620 1.65 chs /*
2621 1.65 chs * XXX work around overflowing a vaddr_t. this prevents us from
2622 1.65 chs * wiring the last page in the address space, though.
2623 1.65 chs */
2624 1.65 chs if (start > end) {
2625 1.65 chs return EFAULT;
2626 1.65 chs }
2627 1.65 chs
2628 1.163 uebayasi for (va = start; va < end; va += PAGE_SIZE) {
2629 1.110 drochner error = uvm_fault_internal(map, va, access_type,
2630 1.177 yamt (maxprot ? UVM_FAULT_MAXPROT : 0) | UVM_FAULT_WIRE);
2631 1.58 chs if (error) {
2632 1.7 mrg if (va != start) {
2633 1.31 thorpej uvm_fault_unwire(map, start, va);
2634 1.7 mrg }
2635 1.58 chs return error;
2636 1.7 mrg }
2637 1.7 mrg }
2638 1.58 chs return 0;
2639 1.1 mrg }
2640 1.1 mrg
2641 1.1 mrg /*
2642 1.1 mrg * uvm_fault_unwire(): unwire range of virtual space.
2643 1.1 mrg */
2644 1.1 mrg
2645 1.7 mrg void
2646 1.95 thorpej uvm_fault_unwire(struct vm_map *map, vaddr_t start, vaddr_t end)
2647 1.36 thorpej {
2648 1.36 thorpej vm_map_lock_read(map);
2649 1.36 thorpej uvm_fault_unwire_locked(map, start, end);
2650 1.36 thorpej vm_map_unlock_read(map);
2651 1.36 thorpej }
2652 1.36 thorpej
2653 1.36 thorpej /*
2654 1.36 thorpej * uvm_fault_unwire_locked(): the guts of uvm_fault_unwire().
2655 1.36 thorpej *
2656 1.36 thorpej * => map must be at least read-locked.
2657 1.36 thorpej */
2658 1.36 thorpej
2659 1.36 thorpej void
2660 1.95 thorpej uvm_fault_unwire_locked(struct vm_map *map, vaddr_t start, vaddr_t end)
2661 1.7 mrg {
2662 1.186 rmind struct vm_map_entry *entry, *oentry;
2663 1.31 thorpej pmap_t pmap = vm_map_pmap(map);
2664 1.42 thorpej vaddr_t va;
2665 1.12 eeh paddr_t pa;
2666 1.42 thorpej struct vm_page *pg;
2667 1.31 thorpej
2668 1.7 mrg /*
2669 1.7 mrg * we assume that the area we are unwiring has actually been wired
2670 1.7 mrg * in the first place. this means that we should be able to extract
2671 1.7 mrg * the PAs from the pmap. we also lock out the page daemon so that
2672 1.7 mrg * we can call uvm_pageunwire.
2673 1.7 mrg */
2674 1.37 thorpej
2675 1.37 thorpej /*
2676 1.37 thorpej * find the beginning map entry for the region.
2677 1.37 thorpej */
2678 1.74 chs
2679 1.56 chs KASSERT(start >= vm_map_min(map) && end <= vm_map_max(map));
2680 1.119 thorpej if (uvm_map_lookup_entry(map, start, &entry) == false)
2681 1.37 thorpej panic("uvm_fault_unwire_locked: address not in map");
2682 1.37 thorpej
2683 1.186 rmind oentry = NULL;
2684 1.69 chs for (va = start; va < end; va += PAGE_SIZE) {
2685 1.42 thorpej
2686 1.42 thorpej /*
2687 1.74 chs * find the map entry for the current address.
2688 1.42 thorpej */
2689 1.56 chs
2690 1.56 chs KASSERT(va >= entry->start);
2691 1.74 chs while (va >= entry->end) {
2692 1.56 chs KASSERT(entry->next != &map->header &&
2693 1.56 chs entry->next->start <= entry->end);
2694 1.42 thorpej entry = entry->next;
2695 1.42 thorpej }
2696 1.37 thorpej
2697 1.42 thorpej /*
2698 1.186 rmind * lock it.
2699 1.186 rmind */
2700 1.186 rmind
2701 1.186 rmind if (entry != oentry) {
2702 1.186 rmind if (oentry != NULL) {
2703 1.186 rmind uvm_map_unlock_entry(oentry);
2704 1.186 rmind }
2705 1.216 ad uvm_map_lock_entry(entry, RW_WRITER);
2706 1.186 rmind oentry = entry;
2707 1.186 rmind }
2708 1.186 rmind
2709 1.186 rmind /*
2710 1.42 thorpej * if the entry is no longer wired, tell the pmap.
2711 1.42 thorpej */
2712 1.74 chs
2713 1.207 chs if (!pmap_extract(pmap, va, &pa))
2714 1.207 chs continue;
2715 1.207 chs
2716 1.42 thorpej if (VM_MAPENT_ISWIRED(entry) == 0)
2717 1.42 thorpej pmap_unwire(pmap, va);
2718 1.42 thorpej
2719 1.42 thorpej pg = PHYS_TO_VM_PAGE(pa);
2720 1.214 ad if (pg) {
2721 1.214 ad uvm_pagelock(pg);
2722 1.42 thorpej uvm_pageunwire(pg);
2723 1.214 ad uvm_pageunlock(pg);
2724 1.214 ad }
2725 1.7 mrg }
2726 1.1 mrg
2727 1.186 rmind if (oentry != NULL) {
2728 1.186 rmind uvm_map_unlock_entry(entry);
2729 1.186 rmind }
2730 1.1 mrg }
2731