uvm_aobj.c revision 1.41 1 1.41 chs /* $NetBSD: uvm_aobj.c,v 1.41 2001/05/25 04:06:12 chs Exp $ */
2 1.6 mrg
3 1.7 chs /*
4 1.7 chs * Copyright (c) 1998 Chuck Silvers, Charles D. Cranor and
5 1.7 chs * Washington University.
6 1.7 chs * All rights reserved.
7 1.7 chs *
8 1.7 chs * Redistribution and use in source and binary forms, with or without
9 1.7 chs * modification, are permitted provided that the following conditions
10 1.7 chs * are met:
11 1.7 chs * 1. Redistributions of source code must retain the above copyright
12 1.7 chs * notice, this list of conditions and the following disclaimer.
13 1.7 chs * 2. Redistributions in binary form must reproduce the above copyright
14 1.7 chs * notice, this list of conditions and the following disclaimer in the
15 1.7 chs * documentation and/or other materials provided with the distribution.
16 1.7 chs * 3. All advertising materials mentioning features or use of this software
17 1.7 chs * must display the following acknowledgement:
18 1.7 chs * This product includes software developed by Charles D. Cranor and
19 1.7 chs * Washington University.
20 1.7 chs * 4. The name of the author may not be used to endorse or promote products
21 1.7 chs * derived from this software without specific prior written permission.
22 1.7 chs *
23 1.7 chs * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 1.7 chs * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 1.7 chs * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.7 chs * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 1.7 chs * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 1.7 chs * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 1.7 chs * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 1.7 chs * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 1.7 chs * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 1.7 chs * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 1.7 chs *
34 1.4 mrg * from: Id: uvm_aobj.c,v 1.1.2.5 1998/02/06 05:14:38 chs Exp
35 1.4 mrg */
36 1.7 chs /*
37 1.7 chs * uvm_aobj.c: anonymous memory uvm_object pager
38 1.7 chs *
39 1.7 chs * author: Chuck Silvers <chuq (at) chuq.com>
40 1.7 chs * started: Jan-1998
41 1.7 chs *
42 1.7 chs * - design mostly from Chuck Cranor
43 1.7 chs */
44 1.7 chs
45 1.7 chs
46 1.7 chs
47 1.7 chs #include "opt_uvmhist.h"
48 1.1 mrg
49 1.1 mrg #include <sys/param.h>
50 1.1 mrg #include <sys/systm.h>
51 1.1 mrg #include <sys/proc.h>
52 1.1 mrg #include <sys/malloc.h>
53 1.37 chs #include <sys/kernel.h>
54 1.12 thorpej #include <sys/pool.h>
55 1.27 chs #include <sys/kernel.h>
56 1.1 mrg
57 1.1 mrg #include <uvm/uvm.h>
58 1.1 mrg
59 1.1 mrg /*
60 1.1 mrg * an aobj manages anonymous-memory backed uvm_objects. in addition
61 1.1 mrg * to keeping the list of resident pages, it also keeps a list of
62 1.1 mrg * allocated swap blocks. depending on the size of the aobj this list
63 1.1 mrg * of allocated swap blocks is either stored in an array (small objects)
64 1.1 mrg * or in a hash table (large objects).
65 1.1 mrg */
66 1.1 mrg
67 1.1 mrg /*
68 1.1 mrg * local structures
69 1.1 mrg */
70 1.1 mrg
71 1.1 mrg /*
72 1.1 mrg * for hash tables, we break the address space of the aobj into blocks
73 1.1 mrg * of UAO_SWHASH_CLUSTER_SIZE pages. we require the cluster size to
74 1.1 mrg * be a power of two.
75 1.1 mrg */
76 1.1 mrg
77 1.1 mrg #define UAO_SWHASH_CLUSTER_SHIFT 4
78 1.1 mrg #define UAO_SWHASH_CLUSTER_SIZE (1 << UAO_SWHASH_CLUSTER_SHIFT)
79 1.1 mrg
80 1.1 mrg /* get the "tag" for this page index */
81 1.1 mrg #define UAO_SWHASH_ELT_TAG(PAGEIDX) \
82 1.1 mrg ((PAGEIDX) >> UAO_SWHASH_CLUSTER_SHIFT)
83 1.1 mrg
84 1.1 mrg /* given an ELT and a page index, find the swap slot */
85 1.1 mrg #define UAO_SWHASH_ELT_PAGESLOT(ELT, PAGEIDX) \
86 1.1 mrg ((ELT)->slots[(PAGEIDX) & (UAO_SWHASH_CLUSTER_SIZE - 1)])
87 1.1 mrg
88 1.1 mrg /* given an ELT, return its pageidx base */
89 1.1 mrg #define UAO_SWHASH_ELT_PAGEIDX_BASE(ELT) \
90 1.1 mrg ((ELT)->tag << UAO_SWHASH_CLUSTER_SHIFT)
91 1.1 mrg
92 1.1 mrg /*
93 1.1 mrg * the swhash hash function
94 1.1 mrg */
95 1.1 mrg #define UAO_SWHASH_HASH(AOBJ, PAGEIDX) \
96 1.1 mrg (&(AOBJ)->u_swhash[(((PAGEIDX) >> UAO_SWHASH_CLUSTER_SHIFT) \
97 1.1 mrg & (AOBJ)->u_swhashmask)])
98 1.1 mrg
99 1.1 mrg /*
100 1.1 mrg * the swhash threshhold determines if we will use an array or a
101 1.1 mrg * hash table to store the list of allocated swap blocks.
102 1.1 mrg */
103 1.1 mrg
104 1.1 mrg #define UAO_SWHASH_THRESHOLD (UAO_SWHASH_CLUSTER_SIZE * 4)
105 1.1 mrg #define UAO_USES_SWHASH(AOBJ) \
106 1.1 mrg ((AOBJ)->u_pages > UAO_SWHASH_THRESHOLD) /* use hash? */
107 1.1 mrg
108 1.1 mrg /*
109 1.3 chs * the number of buckets in a swhash, with an upper bound
110 1.1 mrg */
111 1.1 mrg #define UAO_SWHASH_MAXBUCKETS 256
112 1.1 mrg #define UAO_SWHASH_BUCKETS(AOBJ) \
113 1.1 mrg (min((AOBJ)->u_pages >> UAO_SWHASH_CLUSTER_SHIFT, \
114 1.1 mrg UAO_SWHASH_MAXBUCKETS))
115 1.1 mrg
116 1.1 mrg
117 1.1 mrg /*
118 1.1 mrg * uao_swhash_elt: when a hash table is being used, this structure defines
119 1.1 mrg * the format of an entry in the bucket list.
120 1.1 mrg */
121 1.1 mrg
122 1.1 mrg struct uao_swhash_elt {
123 1.5 mrg LIST_ENTRY(uao_swhash_elt) list; /* the hash list */
124 1.28 kleink voff_t tag; /* our 'tag' */
125 1.5 mrg int count; /* our number of active slots */
126 1.5 mrg int slots[UAO_SWHASH_CLUSTER_SIZE]; /* the slots */
127 1.1 mrg };
128 1.1 mrg
129 1.1 mrg /*
130 1.1 mrg * uao_swhash: the swap hash table structure
131 1.1 mrg */
132 1.1 mrg
133 1.1 mrg LIST_HEAD(uao_swhash, uao_swhash_elt);
134 1.1 mrg
135 1.12 thorpej /*
136 1.12 thorpej * uao_swhash_elt_pool: pool of uao_swhash_elt structures
137 1.12 thorpej */
138 1.12 thorpej
139 1.12 thorpej struct pool uao_swhash_elt_pool;
140 1.1 mrg
141 1.1 mrg /*
142 1.1 mrg * uvm_aobj: the actual anon-backed uvm_object
143 1.1 mrg *
144 1.1 mrg * => the uvm_object is at the top of the structure, this allows
145 1.1 mrg * (struct uvm_device *) == (struct uvm_object *)
146 1.1 mrg * => only one of u_swslots and u_swhash is used in any given aobj
147 1.1 mrg */
148 1.1 mrg
149 1.1 mrg struct uvm_aobj {
150 1.5 mrg struct uvm_object u_obj; /* has: lock, pgops, memq, #pages, #refs */
151 1.11 drochner int u_pages; /* number of pages in entire object */
152 1.5 mrg int u_flags; /* the flags (see uvm_aobj.h) */
153 1.5 mrg int *u_swslots; /* array of offset->swapslot mappings */
154 1.5 mrg /*
155 1.5 mrg * hashtable of offset->swapslot mappings
156 1.5 mrg * (u_swhash is an array of bucket heads)
157 1.5 mrg */
158 1.5 mrg struct uao_swhash *u_swhash;
159 1.5 mrg u_long u_swhashmask; /* mask for hashtable */
160 1.5 mrg LIST_ENTRY(uvm_aobj) u_list; /* global list of aobjs */
161 1.1 mrg };
162 1.1 mrg
163 1.1 mrg /*
164 1.12 thorpej * uvm_aobj_pool: pool of uvm_aobj structures
165 1.12 thorpej */
166 1.12 thorpej
167 1.12 thorpej struct pool uvm_aobj_pool;
168 1.12 thorpej
169 1.12 thorpej /*
170 1.1 mrg * local functions
171 1.1 mrg */
172 1.1 mrg
173 1.1 mrg static struct uao_swhash_elt *uao_find_swhash_elt __P((struct uvm_aobj *,
174 1.1 mrg int, boolean_t));
175 1.28 kleink static int uao_find_swslot __P((struct uvm_aobj *, int));
176 1.28 kleink static boolean_t uao_flush __P((struct uvm_object *,
177 1.28 kleink voff_t, voff_t, int));
178 1.1 mrg static void uao_free __P((struct uvm_aobj *));
179 1.28 kleink static int uao_get __P((struct uvm_object *, voff_t,
180 1.28 kleink vm_page_t *, int *, int,
181 1.1 mrg vm_prot_t, int, int));
182 1.28 kleink static boolean_t uao_releasepg __P((struct vm_page *,
183 1.1 mrg struct vm_page **));
184 1.27 chs static boolean_t uao_pagein __P((struct uvm_aobj *, int, int));
185 1.27 chs static boolean_t uao_pagein_page __P((struct uvm_aobj *, int));
186 1.1 mrg
187 1.1 mrg /*
188 1.1 mrg * aobj_pager
189 1.41 chs *
190 1.1 mrg * note that some functions (e.g. put) are handled elsewhere
191 1.1 mrg */
192 1.1 mrg
193 1.1 mrg struct uvm_pagerops aobj_pager = {
194 1.27 chs NULL, /* init */
195 1.5 mrg uao_reference, /* reference */
196 1.5 mrg uao_detach, /* detach */
197 1.5 mrg NULL, /* fault */
198 1.5 mrg uao_flush, /* flush */
199 1.5 mrg uao_get, /* get */
200 1.5 mrg NULL, /* put (done by pagedaemon) */
201 1.5 mrg NULL, /* cluster */
202 1.5 mrg NULL, /* mk_pcluster */
203 1.5 mrg uao_releasepg /* releasepg */
204 1.1 mrg };
205 1.1 mrg
206 1.1 mrg /*
207 1.1 mrg * uao_list: global list of active aobjs, locked by uao_list_lock
208 1.1 mrg */
209 1.1 mrg
210 1.1 mrg static LIST_HEAD(aobjlist, uvm_aobj) uao_list;
211 1.1 mrg static simple_lock_data_t uao_list_lock;
212 1.1 mrg
213 1.1 mrg
214 1.1 mrg /*
215 1.1 mrg * functions
216 1.1 mrg */
217 1.1 mrg
218 1.1 mrg /*
219 1.1 mrg * hash table/array related functions
220 1.1 mrg */
221 1.1 mrg
222 1.1 mrg /*
223 1.1 mrg * uao_find_swhash_elt: find (or create) a hash table entry for a page
224 1.1 mrg * offset.
225 1.1 mrg *
226 1.1 mrg * => the object should be locked by the caller
227 1.1 mrg */
228 1.1 mrg
229 1.5 mrg static struct uao_swhash_elt *
230 1.5 mrg uao_find_swhash_elt(aobj, pageidx, create)
231 1.5 mrg struct uvm_aobj *aobj;
232 1.5 mrg int pageidx;
233 1.5 mrg boolean_t create;
234 1.5 mrg {
235 1.5 mrg struct uao_swhash *swhash;
236 1.5 mrg struct uao_swhash_elt *elt;
237 1.28 kleink voff_t page_tag;
238 1.1 mrg
239 1.5 mrg swhash = UAO_SWHASH_HASH(aobj, pageidx); /* first hash to get bucket */
240 1.5 mrg page_tag = UAO_SWHASH_ELT_TAG(pageidx); /* tag to search for */
241 1.1 mrg
242 1.5 mrg /*
243 1.5 mrg * now search the bucket for the requested tag
244 1.5 mrg */
245 1.37 chs LIST_FOREACH(elt, swhash, list) {
246 1.5 mrg if (elt->tag == page_tag)
247 1.5 mrg return(elt);
248 1.5 mrg }
249 1.5 mrg
250 1.5 mrg /* fail now if we are not allowed to create a new entry in the bucket */
251 1.5 mrg if (!create)
252 1.5 mrg return NULL;
253 1.5 mrg
254 1.5 mrg
255 1.5 mrg /*
256 1.12 thorpej * allocate a new entry for the bucket and init/insert it in
257 1.5 mrg */
258 1.12 thorpej elt = pool_get(&uao_swhash_elt_pool, PR_WAITOK);
259 1.5 mrg LIST_INSERT_HEAD(swhash, elt, list);
260 1.5 mrg elt->tag = page_tag;
261 1.5 mrg elt->count = 0;
262 1.9 perry memset(elt->slots, 0, sizeof(elt->slots));
263 1.5 mrg
264 1.5 mrg return(elt);
265 1.1 mrg }
266 1.1 mrg
267 1.1 mrg /*
268 1.1 mrg * uao_find_swslot: find the swap slot number for an aobj/pageidx
269 1.1 mrg *
270 1.41 chs * => object must be locked by caller
271 1.1 mrg */
272 1.5 mrg __inline static int
273 1.5 mrg uao_find_swslot(aobj, pageidx)
274 1.5 mrg struct uvm_aobj *aobj;
275 1.11 drochner int pageidx;
276 1.1 mrg {
277 1.1 mrg
278 1.5 mrg /*
279 1.5 mrg * if noswap flag is set, then we never return a slot
280 1.5 mrg */
281 1.1 mrg
282 1.5 mrg if (aobj->u_flags & UAO_FLAG_NOSWAP)
283 1.5 mrg return(0);
284 1.1 mrg
285 1.5 mrg /*
286 1.5 mrg * if hashing, look in hash table.
287 1.5 mrg */
288 1.1 mrg
289 1.5 mrg if (UAO_USES_SWHASH(aobj)) {
290 1.5 mrg struct uao_swhash_elt *elt =
291 1.5 mrg uao_find_swhash_elt(aobj, pageidx, FALSE);
292 1.5 mrg
293 1.5 mrg if (elt)
294 1.5 mrg return(UAO_SWHASH_ELT_PAGESLOT(elt, pageidx));
295 1.5 mrg else
296 1.31 thorpej return(0);
297 1.5 mrg }
298 1.1 mrg
299 1.41 chs /*
300 1.5 mrg * otherwise, look in the array
301 1.5 mrg */
302 1.5 mrg return(aobj->u_swslots[pageidx]);
303 1.1 mrg }
304 1.1 mrg
305 1.1 mrg /*
306 1.1 mrg * uao_set_swslot: set the swap slot for a page in an aobj.
307 1.1 mrg *
308 1.1 mrg * => setting a slot to zero frees the slot
309 1.1 mrg * => object must be locked by caller
310 1.1 mrg */
311 1.5 mrg int
312 1.5 mrg uao_set_swslot(uobj, pageidx, slot)
313 1.5 mrg struct uvm_object *uobj;
314 1.5 mrg int pageidx, slot;
315 1.5 mrg {
316 1.5 mrg struct uvm_aobj *aobj = (struct uvm_aobj *)uobj;
317 1.5 mrg int oldslot;
318 1.5 mrg UVMHIST_FUNC("uao_set_swslot"); UVMHIST_CALLED(pdhist);
319 1.5 mrg UVMHIST_LOG(pdhist, "aobj %p pageidx %d slot %d",
320 1.5 mrg aobj, pageidx, slot, 0);
321 1.1 mrg
322 1.5 mrg /*
323 1.5 mrg * if noswap flag is set, then we can't set a slot
324 1.5 mrg */
325 1.1 mrg
326 1.5 mrg if (aobj->u_flags & UAO_FLAG_NOSWAP) {
327 1.1 mrg
328 1.5 mrg if (slot == 0)
329 1.5 mrg return(0); /* a clear is ok */
330 1.1 mrg
331 1.5 mrg /* but a set is not */
332 1.5 mrg printf("uao_set_swslot: uobj = %p\n", uobj);
333 1.5 mrg panic("uao_set_swslot: attempt to set a slot on a NOSWAP object");
334 1.5 mrg }
335 1.1 mrg
336 1.5 mrg /*
337 1.5 mrg * are we using a hash table? if so, add it in the hash.
338 1.5 mrg */
339 1.1 mrg
340 1.5 mrg if (UAO_USES_SWHASH(aobj)) {
341 1.39 chs
342 1.12 thorpej /*
343 1.12 thorpej * Avoid allocating an entry just to free it again if
344 1.12 thorpej * the page had not swap slot in the first place, and
345 1.12 thorpej * we are freeing.
346 1.12 thorpej */
347 1.39 chs
348 1.5 mrg struct uao_swhash_elt *elt =
349 1.12 thorpej uao_find_swhash_elt(aobj, pageidx, slot ? TRUE : FALSE);
350 1.12 thorpej if (elt == NULL) {
351 1.39 chs KASSERT(slot == 0);
352 1.12 thorpej return (0);
353 1.12 thorpej }
354 1.5 mrg
355 1.5 mrg oldslot = UAO_SWHASH_ELT_PAGESLOT(elt, pageidx);
356 1.5 mrg UAO_SWHASH_ELT_PAGESLOT(elt, pageidx) = slot;
357 1.5 mrg
358 1.5 mrg /*
359 1.5 mrg * now adjust the elt's reference counter and free it if we've
360 1.5 mrg * dropped it to zero.
361 1.5 mrg */
362 1.5 mrg
363 1.5 mrg /* an allocation? */
364 1.5 mrg if (slot) {
365 1.5 mrg if (oldslot == 0)
366 1.5 mrg elt->count++;
367 1.5 mrg } else { /* freeing slot ... */
368 1.5 mrg if (oldslot) /* to be safe */
369 1.5 mrg elt->count--;
370 1.5 mrg
371 1.5 mrg if (elt->count == 0) {
372 1.5 mrg LIST_REMOVE(elt, list);
373 1.12 thorpej pool_put(&uao_swhash_elt_pool, elt);
374 1.5 mrg }
375 1.5 mrg }
376 1.41 chs } else {
377 1.5 mrg /* we are using an array */
378 1.5 mrg oldslot = aobj->u_swslots[pageidx];
379 1.5 mrg aobj->u_swslots[pageidx] = slot;
380 1.5 mrg }
381 1.5 mrg return (oldslot);
382 1.1 mrg }
383 1.1 mrg
384 1.1 mrg /*
385 1.1 mrg * end of hash/array functions
386 1.1 mrg */
387 1.1 mrg
388 1.1 mrg /*
389 1.1 mrg * uao_free: free all resources held by an aobj, and then free the aobj
390 1.1 mrg *
391 1.1 mrg * => the aobj should be dead
392 1.1 mrg */
393 1.1 mrg static void
394 1.1 mrg uao_free(aobj)
395 1.5 mrg struct uvm_aobj *aobj;
396 1.1 mrg {
397 1.1 mrg
398 1.27 chs simple_unlock(&aobj->u_obj.vmobjlock);
399 1.27 chs
400 1.5 mrg if (UAO_USES_SWHASH(aobj)) {
401 1.5 mrg int i, hashbuckets = aobj->u_swhashmask + 1;
402 1.1 mrg
403 1.5 mrg /*
404 1.5 mrg * free the swslots from each hash bucket,
405 1.5 mrg * then the hash bucket, and finally the hash table itself.
406 1.5 mrg */
407 1.5 mrg for (i = 0; i < hashbuckets; i++) {
408 1.5 mrg struct uao_swhash_elt *elt, *next;
409 1.5 mrg
410 1.27 chs for (elt = LIST_FIRST(&aobj->u_swhash[i]);
411 1.27 chs elt != NULL;
412 1.27 chs elt = next) {
413 1.5 mrg int j;
414 1.5 mrg
415 1.27 chs for (j = 0; j < UAO_SWHASH_CLUSTER_SIZE; j++) {
416 1.5 mrg int slot = elt->slots[j];
417 1.5 mrg
418 1.37 chs if (slot == 0) {
419 1.37 chs continue;
420 1.37 chs }
421 1.37 chs uvm_swap_free(slot, 1);
422 1.18 chs
423 1.37 chs /*
424 1.37 chs * this page is no longer
425 1.37 chs * only in swap.
426 1.37 chs */
427 1.37 chs simple_lock(&uvm.swap_data_lock);
428 1.37 chs uvmexp.swpgonly--;
429 1.37 chs simple_unlock(&uvm.swap_data_lock);
430 1.5 mrg }
431 1.5 mrg
432 1.27 chs next = LIST_NEXT(elt, list);
433 1.12 thorpej pool_put(&uao_swhash_elt_pool, elt);
434 1.5 mrg }
435 1.5 mrg }
436 1.34 thorpej free(aobj->u_swhash, M_UVMAOBJ);
437 1.5 mrg } else {
438 1.5 mrg int i;
439 1.5 mrg
440 1.5 mrg /*
441 1.5 mrg * free the array
442 1.5 mrg */
443 1.5 mrg
444 1.27 chs for (i = 0; i < aobj->u_pages; i++) {
445 1.5 mrg int slot = aobj->u_swslots[i];
446 1.5 mrg
447 1.18 chs if (slot) {
448 1.5 mrg uvm_swap_free(slot, 1);
449 1.18 chs
450 1.18 chs /* this page is no longer only in swap. */
451 1.18 chs simple_lock(&uvm.swap_data_lock);
452 1.18 chs uvmexp.swpgonly--;
453 1.18 chs simple_unlock(&uvm.swap_data_lock);
454 1.18 chs }
455 1.5 mrg }
456 1.34 thorpej free(aobj->u_swslots, M_UVMAOBJ);
457 1.1 mrg }
458 1.1 mrg
459 1.5 mrg /*
460 1.5 mrg * finally free the aobj itself
461 1.5 mrg */
462 1.12 thorpej pool_put(&uvm_aobj_pool, aobj);
463 1.1 mrg }
464 1.1 mrg
465 1.1 mrg /*
466 1.1 mrg * pager functions
467 1.1 mrg */
468 1.1 mrg
469 1.1 mrg /*
470 1.1 mrg * uao_create: create an aobj of the given size and return its uvm_object.
471 1.1 mrg *
472 1.1 mrg * => for normal use, flags are always zero
473 1.1 mrg * => for the kernel object, the flags are:
474 1.1 mrg * UAO_FLAG_KERNOBJ - allocate the kernel object (can only happen once)
475 1.1 mrg * UAO_FLAG_KERNSWAP - enable swapping of kernel object (" ")
476 1.1 mrg */
477 1.5 mrg struct uvm_object *
478 1.5 mrg uao_create(size, flags)
479 1.10 eeh vsize_t size;
480 1.5 mrg int flags;
481 1.5 mrg {
482 1.27 chs static struct uvm_aobj kernel_object_store; /* home of kernel_object */
483 1.5 mrg static int kobj_alloced = 0; /* not allocated yet */
484 1.15 chs int pages = round_page(size) >> PAGE_SHIFT;
485 1.5 mrg struct uvm_aobj *aobj;
486 1.1 mrg
487 1.5 mrg /*
488 1.27 chs * malloc a new aobj unless we are asked for the kernel object
489 1.27 chs */
490 1.5 mrg if (flags & UAO_FLAG_KERNOBJ) { /* want kernel object? */
491 1.5 mrg if (kobj_alloced)
492 1.5 mrg panic("uao_create: kernel object already allocated");
493 1.5 mrg
494 1.5 mrg aobj = &kernel_object_store;
495 1.5 mrg aobj->u_pages = pages;
496 1.5 mrg aobj->u_flags = UAO_FLAG_NOSWAP; /* no swap to start */
497 1.5 mrg /* we are special, we never die */
498 1.5 mrg aobj->u_obj.uo_refs = UVM_OBJ_KERN;
499 1.5 mrg kobj_alloced = UAO_FLAG_KERNOBJ;
500 1.5 mrg } else if (flags & UAO_FLAG_KERNSWAP) {
501 1.5 mrg aobj = &kernel_object_store;
502 1.5 mrg if (kobj_alloced != UAO_FLAG_KERNOBJ)
503 1.5 mrg panic("uao_create: asked to enable swap on kernel object");
504 1.5 mrg kobj_alloced = UAO_FLAG_KERNSWAP;
505 1.5 mrg } else { /* normal object */
506 1.12 thorpej aobj = pool_get(&uvm_aobj_pool, PR_WAITOK);
507 1.5 mrg aobj->u_pages = pages;
508 1.5 mrg aobj->u_flags = 0; /* normal object */
509 1.5 mrg aobj->u_obj.uo_refs = 1; /* start with 1 reference */
510 1.5 mrg }
511 1.1 mrg
512 1.5 mrg /*
513 1.5 mrg * allocate hash/array if necessary
514 1.5 mrg *
515 1.5 mrg * note: in the KERNSWAP case no need to worry about locking since
516 1.5 mrg * we are still booting we should be the only thread around.
517 1.5 mrg */
518 1.5 mrg if (flags == 0 || (flags & UAO_FLAG_KERNSWAP) != 0) {
519 1.5 mrg int mflags = (flags & UAO_FLAG_KERNSWAP) != 0 ?
520 1.5 mrg M_NOWAIT : M_WAITOK;
521 1.5 mrg
522 1.5 mrg /* allocate hash table or array depending on object size */
523 1.27 chs if (UAO_USES_SWHASH(aobj)) {
524 1.5 mrg aobj->u_swhash = hashinit(UAO_SWHASH_BUCKETS(aobj),
525 1.35 ad HASH_LIST, M_UVMAOBJ, mflags, &aobj->u_swhashmask);
526 1.5 mrg if (aobj->u_swhash == NULL)
527 1.5 mrg panic("uao_create: hashinit swhash failed");
528 1.5 mrg } else {
529 1.34 thorpej aobj->u_swslots = malloc(pages * sizeof(int),
530 1.5 mrg M_UVMAOBJ, mflags);
531 1.5 mrg if (aobj->u_swslots == NULL)
532 1.5 mrg panic("uao_create: malloc swslots failed");
533 1.9 perry memset(aobj->u_swslots, 0, pages * sizeof(int));
534 1.5 mrg }
535 1.5 mrg
536 1.5 mrg if (flags) {
537 1.5 mrg aobj->u_flags &= ~UAO_FLAG_NOSWAP; /* clear noswap */
538 1.5 mrg return(&aobj->u_obj);
539 1.5 mrg /* done! */
540 1.5 mrg }
541 1.5 mrg }
542 1.5 mrg
543 1.5 mrg /*
544 1.5 mrg * init aobj fields
545 1.5 mrg */
546 1.5 mrg simple_lock_init(&aobj->u_obj.vmobjlock);
547 1.5 mrg aobj->u_obj.pgops = &aobj_pager;
548 1.5 mrg TAILQ_INIT(&aobj->u_obj.memq);
549 1.5 mrg aobj->u_obj.uo_npages = 0;
550 1.1 mrg
551 1.5 mrg /*
552 1.5 mrg * now that aobj is ready, add it to the global list
553 1.5 mrg */
554 1.5 mrg simple_lock(&uao_list_lock);
555 1.5 mrg LIST_INSERT_HEAD(&uao_list, aobj, u_list);
556 1.5 mrg simple_unlock(&uao_list_lock);
557 1.5 mrg
558 1.5 mrg /*
559 1.5 mrg * done!
560 1.5 mrg */
561 1.5 mrg return(&aobj->u_obj);
562 1.1 mrg }
563 1.1 mrg
564 1.1 mrg
565 1.1 mrg
566 1.1 mrg /*
567 1.1 mrg * uao_init: set up aobj pager subsystem
568 1.1 mrg *
569 1.1 mrg * => called at boot time from uvm_pager_init()
570 1.1 mrg */
571 1.27 chs void
572 1.5 mrg uao_init()
573 1.5 mrg {
574 1.12 thorpej static int uao_initialized;
575 1.12 thorpej
576 1.12 thorpej if (uao_initialized)
577 1.12 thorpej return;
578 1.12 thorpej uao_initialized = TRUE;
579 1.1 mrg
580 1.5 mrg LIST_INIT(&uao_list);
581 1.5 mrg simple_lock_init(&uao_list_lock);
582 1.12 thorpej
583 1.14 thorpej /*
584 1.14 thorpej * NOTE: Pages fror this pool must not come from a pageable
585 1.14 thorpej * kernel map!
586 1.14 thorpej */
587 1.12 thorpej pool_init(&uao_swhash_elt_pool, sizeof(struct uao_swhash_elt),
588 1.13 thorpej 0, 0, 0, "uaoeltpl", 0, NULL, NULL, M_UVMAOBJ);
589 1.12 thorpej
590 1.12 thorpej pool_init(&uvm_aobj_pool, sizeof(struct uvm_aobj), 0, 0, 0,
591 1.12 thorpej "aobjpl", 0,
592 1.12 thorpej pool_page_alloc_nointr, pool_page_free_nointr, M_UVMAOBJ);
593 1.1 mrg }
594 1.1 mrg
595 1.1 mrg /*
596 1.1 mrg * uao_reference: add a ref to an aobj
597 1.1 mrg *
598 1.27 chs * => aobj must be unlocked
599 1.27 chs * => just lock it and call the locked version
600 1.1 mrg */
601 1.5 mrg void
602 1.5 mrg uao_reference(uobj)
603 1.5 mrg struct uvm_object *uobj;
604 1.1 mrg {
605 1.27 chs simple_lock(&uobj->vmobjlock);
606 1.27 chs uao_reference_locked(uobj);
607 1.27 chs simple_unlock(&uobj->vmobjlock);
608 1.27 chs }
609 1.27 chs
610 1.27 chs /*
611 1.27 chs * uao_reference_locked: add a ref to an aobj that is already locked
612 1.27 chs *
613 1.27 chs * => aobj must be locked
614 1.27 chs * this needs to be separate from the normal routine
615 1.27 chs * since sometimes we need to add a reference to an aobj when
616 1.27 chs * it's already locked.
617 1.27 chs */
618 1.27 chs void
619 1.27 chs uao_reference_locked(uobj)
620 1.27 chs struct uvm_object *uobj;
621 1.27 chs {
622 1.5 mrg UVMHIST_FUNC("uao_reference"); UVMHIST_CALLED(maphist);
623 1.1 mrg
624 1.5 mrg /*
625 1.5 mrg * kernel_object already has plenty of references, leave it alone.
626 1.5 mrg */
627 1.1 mrg
628 1.20 thorpej if (UVM_OBJ_IS_KERN_OBJECT(uobj))
629 1.5 mrg return;
630 1.1 mrg
631 1.5 mrg uobj->uo_refs++; /* bump! */
632 1.41 chs UVMHIST_LOG(maphist, "<- done (uobj=0x%x, ref = %d)",
633 1.27 chs uobj, uobj->uo_refs,0,0);
634 1.1 mrg }
635 1.1 mrg
636 1.27 chs
637 1.1 mrg /*
638 1.1 mrg * uao_detach: drop a reference to an aobj
639 1.1 mrg *
640 1.27 chs * => aobj must be unlocked
641 1.27 chs * => just lock it and call the locked version
642 1.1 mrg */
643 1.5 mrg void
644 1.5 mrg uao_detach(uobj)
645 1.5 mrg struct uvm_object *uobj;
646 1.5 mrg {
647 1.27 chs simple_lock(&uobj->vmobjlock);
648 1.27 chs uao_detach_locked(uobj);
649 1.27 chs }
650 1.27 chs
651 1.27 chs
652 1.27 chs /*
653 1.27 chs * uao_detach_locked: drop a reference to an aobj
654 1.27 chs *
655 1.27 chs * => aobj must be locked, and is unlocked (or freed) upon return.
656 1.27 chs * this needs to be separate from the normal routine
657 1.27 chs * since sometimes we need to detach from an aobj when
658 1.27 chs * it's already locked.
659 1.27 chs */
660 1.27 chs void
661 1.27 chs uao_detach_locked(uobj)
662 1.27 chs struct uvm_object *uobj;
663 1.27 chs {
664 1.5 mrg struct uvm_aobj *aobj = (struct uvm_aobj *)uobj;
665 1.5 mrg struct vm_page *pg;
666 1.5 mrg boolean_t busybody;
667 1.5 mrg UVMHIST_FUNC("uao_detach"); UVMHIST_CALLED(maphist);
668 1.1 mrg
669 1.5 mrg /*
670 1.5 mrg * detaching from kernel_object is a noop.
671 1.5 mrg */
672 1.27 chs if (UVM_OBJ_IS_KERN_OBJECT(uobj)) {
673 1.27 chs simple_unlock(&uobj->vmobjlock);
674 1.5 mrg return;
675 1.27 chs }
676 1.5 mrg
677 1.5 mrg UVMHIST_LOG(maphist," (uobj=0x%x) ref=%d", uobj,uobj->uo_refs,0,0);
678 1.5 mrg uobj->uo_refs--; /* drop ref! */
679 1.5 mrg if (uobj->uo_refs) { /* still more refs? */
680 1.5 mrg simple_unlock(&uobj->vmobjlock);
681 1.5 mrg UVMHIST_LOG(maphist, "<- done (rc>0)", 0,0,0,0);
682 1.5 mrg return;
683 1.5 mrg }
684 1.5 mrg
685 1.5 mrg /*
686 1.5 mrg * remove the aobj from the global list.
687 1.5 mrg */
688 1.5 mrg simple_lock(&uao_list_lock);
689 1.5 mrg LIST_REMOVE(aobj, u_list);
690 1.5 mrg simple_unlock(&uao_list_lock);
691 1.5 mrg
692 1.5 mrg /*
693 1.27 chs * free all the pages that aren't PG_BUSY,
694 1.27 chs * mark for release any that are.
695 1.5 mrg */
696 1.5 mrg busybody = FALSE;
697 1.27 chs for (pg = TAILQ_FIRST(&uobj->memq);
698 1.27 chs pg != NULL;
699 1.27 chs pg = TAILQ_NEXT(pg, listq)) {
700 1.5 mrg if (pg->flags & PG_BUSY) {
701 1.5 mrg pg->flags |= PG_RELEASED;
702 1.5 mrg busybody = TRUE;
703 1.5 mrg continue;
704 1.5 mrg }
705 1.5 mrg
706 1.5 mrg /* zap the mappings, free the swap slot, free the page */
707 1.26 chs pmap_page_protect(pg, VM_PROT_NONE);
708 1.18 chs uao_dropswap(&aobj->u_obj, pg->offset >> PAGE_SHIFT);
709 1.5 mrg uvm_lock_pageq();
710 1.5 mrg uvm_pagefree(pg);
711 1.5 mrg uvm_unlock_pageq();
712 1.5 mrg }
713 1.1 mrg
714 1.5 mrg /*
715 1.5 mrg * if we found any busy pages, we're done for now.
716 1.5 mrg * mark the aobj for death, releasepg will finish up for us.
717 1.5 mrg */
718 1.5 mrg if (busybody) {
719 1.5 mrg aobj->u_flags |= UAO_FLAG_KILLME;
720 1.5 mrg simple_unlock(&aobj->u_obj.vmobjlock);
721 1.5 mrg return;
722 1.5 mrg }
723 1.1 mrg
724 1.5 mrg /*
725 1.5 mrg * finally, free the rest.
726 1.5 mrg */
727 1.5 mrg uao_free(aobj);
728 1.5 mrg }
729 1.1 mrg
730 1.1 mrg /*
731 1.22 thorpej * uao_flush: "flush" pages out of a uvm object
732 1.22 thorpej *
733 1.22 thorpej * => object should be locked by caller. we may _unlock_ the object
734 1.22 thorpej * if (and only if) we need to clean a page (PGO_CLEANIT).
735 1.22 thorpej * XXXJRT Currently, however, we don't. In the case of cleaning
736 1.22 thorpej * XXXJRT a page, we simply just deactivate it. Should probably
737 1.22 thorpej * XXXJRT handle this better, in the future (although "flushing"
738 1.22 thorpej * XXXJRT anonymous memory isn't terribly important).
739 1.22 thorpej * => if PGO_CLEANIT is not set, then we will neither unlock the object
740 1.22 thorpej * or block.
741 1.22 thorpej * => if PGO_ALLPAGE is set, then all pages in the object are valid targets
742 1.22 thorpej * for flushing.
743 1.22 thorpej * => NOTE: we rely on the fact that the object's memq is a TAILQ and
744 1.22 thorpej * that new pages are inserted on the tail end of the list. thus,
745 1.22 thorpej * we can make a complete pass through the object in one go by starting
746 1.22 thorpej * at the head and working towards the tail (new pages are put in
747 1.22 thorpej * front of us).
748 1.22 thorpej * => NOTE: we are allowed to lock the page queues, so the caller
749 1.22 thorpej * must not be holding the lock on them [e.g. pagedaemon had
750 1.22 thorpej * better not call us with the queues locked]
751 1.22 thorpej * => we return TRUE unless we encountered some sort of I/O error
752 1.22 thorpej * XXXJRT currently never happens, as we never directly initiate
753 1.22 thorpej * XXXJRT I/O
754 1.22 thorpej *
755 1.22 thorpej * comment on "cleaning" object and PG_BUSY pages:
756 1.22 thorpej * this routine is holding the lock on the object. the only time
757 1.22 thorpej * that is can run into a PG_BUSY page that it does not own is if
758 1.22 thorpej * some other process has started I/O on the page (e.g. either
759 1.22 thorpej * a pagein or a pageout). if the PG_BUSY page is being paged
760 1.22 thorpej * in, then it can not be dirty (!PG_CLEAN) because no one has
761 1.22 thorpej * had a change to modify it yet. if the PG_BUSY page is being
762 1.22 thorpej * paged out then it means that someone else has already started
763 1.22 thorpej * cleaning the page for us (how nice!). in this case, if we
764 1.22 thorpej * have syncio specified, then after we make our pass through the
765 1.22 thorpej * object we need to wait for the other PG_BUSY pages to clear
766 1.22 thorpej * off (i.e. we need to do an iosync). also note that once a
767 1.22 thorpej * page is PG_BUSY is must stary in its object until it is un-busyed.
768 1.22 thorpej * XXXJRT We never actually do this, as we are "flushing" anonymous
769 1.22 thorpej * XXXJRT memory, which doesn't have persistent backing store.
770 1.22 thorpej *
771 1.22 thorpej * note on page traversal:
772 1.22 thorpej * we can traverse the pages in an object either by going down the
773 1.22 thorpej * linked list in "uobj->memq", or we can go over the address range
774 1.22 thorpej * by page doing hash table lookups for each address. depending
775 1.22 thorpej * on how many pages are in the object it may be cheaper to do one
776 1.22 thorpej * or the other. we set "by_list" to true if we are using memq.
777 1.22 thorpej * if the cost of a hash lookup was equal to the cost of the list
778 1.22 thorpej * traversal we could compare the number of pages in the start->stop
779 1.22 thorpej * range to the total number of pages in the object. however, it
780 1.22 thorpej * seems that a hash table lookup is more expensive than the linked
781 1.22 thorpej * list traversal, so we multiply the number of pages in the
782 1.22 thorpej * start->stop range by a penalty which we define below.
783 1.1 mrg */
784 1.22 thorpej
785 1.22 thorpej #define UAO_HASH_PENALTY 4 /* XXX: a guess */
786 1.22 thorpej
787 1.5 mrg boolean_t
788 1.22 thorpej uao_flush(uobj, start, stop, flags)
789 1.5 mrg struct uvm_object *uobj;
790 1.28 kleink voff_t start, stop;
791 1.5 mrg int flags;
792 1.5 mrg {
793 1.22 thorpej struct uvm_aobj *aobj = (struct uvm_aobj *) uobj;
794 1.22 thorpej struct vm_page *pp, *ppnext;
795 1.22 thorpej boolean_t retval, by_list;
796 1.28 kleink voff_t curoff;
797 1.22 thorpej UVMHIST_FUNC("uao_flush"); UVMHIST_CALLED(maphist);
798 1.22 thorpej
799 1.22 thorpej curoff = 0; /* XXX: shut up gcc */
800 1.22 thorpej
801 1.22 thorpej retval = TRUE; /* default to success */
802 1.22 thorpej
803 1.22 thorpej if (flags & PGO_ALLPAGES) {
804 1.22 thorpej start = 0;
805 1.22 thorpej stop = aobj->u_pages << PAGE_SHIFT;
806 1.22 thorpej by_list = TRUE; /* always go by the list */
807 1.22 thorpej } else {
808 1.22 thorpej start = trunc_page(start);
809 1.22 thorpej stop = round_page(stop);
810 1.22 thorpej if (stop > (aobj->u_pages << PAGE_SHIFT)) {
811 1.22 thorpej printf("uao_flush: strange, got an out of range "
812 1.22 thorpej "flush (fixed)\n");
813 1.22 thorpej stop = aobj->u_pages << PAGE_SHIFT;
814 1.22 thorpej }
815 1.22 thorpej by_list = (uobj->uo_npages <=
816 1.22 thorpej ((stop - start) >> PAGE_SHIFT) * UAO_HASH_PENALTY);
817 1.22 thorpej }
818 1.22 thorpej
819 1.22 thorpej UVMHIST_LOG(maphist,
820 1.22 thorpej " flush start=0x%lx, stop=0x%x, by_list=%d, flags=0x%x",
821 1.22 thorpej start, stop, by_list, flags);
822 1.1 mrg
823 1.5 mrg /*
824 1.22 thorpej * Don't need to do any work here if we're not freeing
825 1.22 thorpej * or deactivating pages.
826 1.22 thorpej */
827 1.22 thorpej if ((flags & (PGO_DEACTIVATE|PGO_FREE)) == 0) {
828 1.22 thorpej UVMHIST_LOG(maphist,
829 1.22 thorpej "<- done (no work to do)",0,0,0,0);
830 1.22 thorpej return (retval);
831 1.22 thorpej }
832 1.22 thorpej
833 1.5 mrg /*
834 1.22 thorpej * now do it. note: we must update ppnext in the body of loop or we
835 1.22 thorpej * will get stuck. we need to use ppnext because we may free "pp"
836 1.22 thorpej * before doing the next loop.
837 1.21 thorpej */
838 1.22 thorpej
839 1.22 thorpej if (by_list) {
840 1.22 thorpej pp = uobj->memq.tqh_first;
841 1.22 thorpej } else {
842 1.22 thorpej curoff = start;
843 1.22 thorpej pp = uvm_pagelookup(uobj, curoff);
844 1.22 thorpej }
845 1.22 thorpej
846 1.22 thorpej ppnext = NULL; /* XXX: shut up gcc */
847 1.22 thorpej uvm_lock_pageq(); /* page queues locked */
848 1.22 thorpej
849 1.22 thorpej /* locked: both page queues and uobj */
850 1.22 thorpej for ( ; (by_list && pp != NULL) ||
851 1.22 thorpej (!by_list && curoff < stop) ; pp = ppnext) {
852 1.22 thorpej if (by_list) {
853 1.37 chs ppnext = TAILQ_NEXT(pp, listq);
854 1.22 thorpej
855 1.22 thorpej /* range check */
856 1.22 thorpej if (pp->offset < start || pp->offset >= stop)
857 1.22 thorpej continue;
858 1.22 thorpej } else {
859 1.22 thorpej curoff += PAGE_SIZE;
860 1.22 thorpej if (curoff < stop)
861 1.22 thorpej ppnext = uvm_pagelookup(uobj, curoff);
862 1.22 thorpej
863 1.22 thorpej /* null check */
864 1.22 thorpej if (pp == NULL)
865 1.22 thorpej continue;
866 1.22 thorpej }
867 1.41 chs
868 1.22 thorpej switch (flags & (PGO_CLEANIT|PGO_FREE|PGO_DEACTIVATE)) {
869 1.22 thorpej /*
870 1.22 thorpej * XXX In these first 3 cases, we always just
871 1.22 thorpej * XXX deactivate the page. We may want to
872 1.22 thorpej * XXX handle the different cases more specifically
873 1.22 thorpej * XXX in the future.
874 1.22 thorpej */
875 1.22 thorpej case PGO_CLEANIT|PGO_FREE:
876 1.22 thorpej case PGO_CLEANIT|PGO_DEACTIVATE:
877 1.22 thorpej case PGO_DEACTIVATE:
878 1.25 thorpej deactivate_it:
879 1.22 thorpej /* skip the page if it's loaned or wired */
880 1.22 thorpej if (pp->loan_count != 0 ||
881 1.22 thorpej pp->wire_count != 0)
882 1.22 thorpej continue;
883 1.22 thorpej
884 1.22 thorpej /* ...and deactivate the page. */
885 1.38 thorpej pmap_clear_reference(pp);
886 1.22 thorpej uvm_pagedeactivate(pp);
887 1.22 thorpej
888 1.22 thorpej continue;
889 1.22 thorpej
890 1.22 thorpej case PGO_FREE:
891 1.25 thorpej /*
892 1.25 thorpej * If there are multiple references to
893 1.25 thorpej * the object, just deactivate the page.
894 1.25 thorpej */
895 1.25 thorpej if (uobj->uo_refs > 1)
896 1.25 thorpej goto deactivate_it;
897 1.25 thorpej
898 1.22 thorpej /* XXX skip the page if it's loaned or wired */
899 1.22 thorpej if (pp->loan_count != 0 ||
900 1.22 thorpej pp->wire_count != 0)
901 1.22 thorpej continue;
902 1.22 thorpej
903 1.22 thorpej /*
904 1.22 thorpej * mark the page as released if its busy.
905 1.22 thorpej */
906 1.22 thorpej if (pp->flags & PG_BUSY) {
907 1.22 thorpej pp->flags |= PG_RELEASED;
908 1.22 thorpej continue;
909 1.22 thorpej }
910 1.22 thorpej
911 1.22 thorpej /* zap all mappings for the page. */
912 1.26 chs pmap_page_protect(pp, VM_PROT_NONE);
913 1.22 thorpej
914 1.22 thorpej uao_dropswap(uobj, pp->offset >> PAGE_SHIFT);
915 1.22 thorpej uvm_pagefree(pp);
916 1.22 thorpej
917 1.22 thorpej continue;
918 1.22 thorpej
919 1.22 thorpej default:
920 1.22 thorpej panic("uao_flush: weird flags");
921 1.22 thorpej }
922 1.22 thorpej }
923 1.22 thorpej
924 1.22 thorpej uvm_unlock_pageq();
925 1.22 thorpej
926 1.22 thorpej UVMHIST_LOG(maphist,
927 1.22 thorpej "<- done, rv=%d",retval,0,0,0);
928 1.22 thorpej return (retval);
929 1.1 mrg }
930 1.1 mrg
931 1.1 mrg /*
932 1.1 mrg * uao_get: fetch me a page
933 1.1 mrg *
934 1.1 mrg * we have three cases:
935 1.1 mrg * 1: page is resident -> just return the page.
936 1.1 mrg * 2: page is zero-fill -> allocate a new page and zero it.
937 1.1 mrg * 3: page is swapped out -> fetch the page from swap.
938 1.1 mrg *
939 1.1 mrg * cases 1 and 2 can be handled with PGO_LOCKED, case 3 cannot.
940 1.1 mrg * so, if the "center" page hits case 3 (or any page, with PGO_ALLPAGES),
941 1.40 chs * then we will need to return EBUSY.
942 1.1 mrg *
943 1.1 mrg * => prefer map unlocked (not required)
944 1.1 mrg * => object must be locked! we will _unlock_ it before starting any I/O.
945 1.1 mrg * => flags: PGO_ALLPAGES: get all of the pages
946 1.1 mrg * PGO_LOCKED: fault data structures are locked
947 1.1 mrg * => NOTE: offset is the offset of pps[0], _NOT_ pps[centeridx]
948 1.1 mrg * => NOTE: caller must check for released pages!!
949 1.1 mrg */
950 1.5 mrg static int
951 1.5 mrg uao_get(uobj, offset, pps, npagesp, centeridx, access_type, advice, flags)
952 1.5 mrg struct uvm_object *uobj;
953 1.28 kleink voff_t offset;
954 1.5 mrg struct vm_page **pps;
955 1.5 mrg int *npagesp;
956 1.5 mrg int centeridx, advice, flags;
957 1.5 mrg vm_prot_t access_type;
958 1.5 mrg {
959 1.5 mrg struct uvm_aobj *aobj = (struct uvm_aobj *)uobj;
960 1.28 kleink voff_t current_offset;
961 1.5 mrg vm_page_t ptmp;
962 1.27 chs int lcv, gotpages, maxpages, swslot, rv, pageidx;
963 1.5 mrg boolean_t done;
964 1.5 mrg UVMHIST_FUNC("uao_get"); UVMHIST_CALLED(pdhist);
965 1.5 mrg
966 1.27 chs UVMHIST_LOG(pdhist, "aobj=%p offset=%d, flags=%d",
967 1.27 chs aobj, offset, flags,0);
968 1.37 chs
969 1.5 mrg /*
970 1.5 mrg * get number of pages
971 1.5 mrg */
972 1.5 mrg maxpages = *npagesp;
973 1.5 mrg
974 1.5 mrg /*
975 1.5 mrg * step 1: handled the case where fault data structures are locked.
976 1.5 mrg */
977 1.1 mrg
978 1.5 mrg if (flags & PGO_LOCKED) {
979 1.5 mrg /*
980 1.5 mrg * step 1a: get pages that are already resident. only do
981 1.5 mrg * this if the data structures are locked (i.e. the first
982 1.5 mrg * time through).
983 1.5 mrg */
984 1.5 mrg
985 1.5 mrg done = TRUE; /* be optimistic */
986 1.5 mrg gotpages = 0; /* # of pages we got so far */
987 1.5 mrg
988 1.5 mrg for (lcv = 0, current_offset = offset ; lcv < maxpages ;
989 1.5 mrg lcv++, current_offset += PAGE_SIZE) {
990 1.5 mrg /* do we care about this page? if not, skip it */
991 1.5 mrg if (pps[lcv] == PGO_DONTCARE)
992 1.5 mrg continue;
993 1.5 mrg
994 1.5 mrg ptmp = uvm_pagelookup(uobj, current_offset);
995 1.5 mrg
996 1.5 mrg /*
997 1.30 thorpej * if page is new, attempt to allocate the page,
998 1.30 thorpej * zero-fill'd.
999 1.5 mrg */
1000 1.5 mrg if (ptmp == NULL && uao_find_swslot(aobj,
1001 1.15 chs current_offset >> PAGE_SHIFT) == 0) {
1002 1.5 mrg ptmp = uvm_pagealloc(uobj, current_offset,
1003 1.30 thorpej NULL, UVM_PGA_ZERO);
1004 1.5 mrg if (ptmp) {
1005 1.5 mrg /* new page */
1006 1.5 mrg ptmp->flags &= ~(PG_BUSY|PG_FAKE);
1007 1.5 mrg ptmp->pqflags |= PQ_AOBJ;
1008 1.5 mrg UVM_PAGE_OWN(ptmp, NULL);
1009 1.5 mrg }
1010 1.5 mrg }
1011 1.5 mrg
1012 1.5 mrg /*
1013 1.5 mrg * to be useful must get a non-busy, non-released page
1014 1.5 mrg */
1015 1.5 mrg if (ptmp == NULL ||
1016 1.5 mrg (ptmp->flags & (PG_BUSY|PG_RELEASED)) != 0) {
1017 1.5 mrg if (lcv == centeridx ||
1018 1.5 mrg (flags & PGO_ALLPAGES) != 0)
1019 1.5 mrg /* need to do a wait or I/O! */
1020 1.41 chs done = FALSE;
1021 1.5 mrg continue;
1022 1.5 mrg }
1023 1.5 mrg
1024 1.5 mrg /*
1025 1.5 mrg * useful page: busy/lock it and plug it in our
1026 1.5 mrg * result array
1027 1.5 mrg */
1028 1.5 mrg /* caller must un-busy this page */
1029 1.41 chs ptmp->flags |= PG_BUSY;
1030 1.5 mrg UVM_PAGE_OWN(ptmp, "uao_get1");
1031 1.5 mrg pps[lcv] = ptmp;
1032 1.5 mrg gotpages++;
1033 1.5 mrg
1034 1.5 mrg } /* "for" lcv loop */
1035 1.5 mrg
1036 1.5 mrg /*
1037 1.5 mrg * step 1b: now we've either done everything needed or we
1038 1.5 mrg * to unlock and do some waiting or I/O.
1039 1.5 mrg */
1040 1.5 mrg
1041 1.5 mrg UVMHIST_LOG(pdhist, "<- done (done=%d)", done, 0,0,0);
1042 1.5 mrg
1043 1.5 mrg *npagesp = gotpages;
1044 1.5 mrg if (done)
1045 1.5 mrg /* bingo! */
1046 1.41 chs return(0);
1047 1.5 mrg else
1048 1.5 mrg /* EEK! Need to unlock and I/O */
1049 1.40 chs return(EBUSY);
1050 1.1 mrg }
1051 1.1 mrg
1052 1.5 mrg /*
1053 1.5 mrg * step 2: get non-resident or busy pages.
1054 1.5 mrg * object is locked. data structures are unlocked.
1055 1.5 mrg */
1056 1.5 mrg
1057 1.5 mrg for (lcv = 0, current_offset = offset ; lcv < maxpages ;
1058 1.5 mrg lcv++, current_offset += PAGE_SIZE) {
1059 1.27 chs
1060 1.5 mrg /*
1061 1.5 mrg * - skip over pages we've already gotten or don't want
1062 1.5 mrg * - skip over pages we don't _have_ to get
1063 1.5 mrg */
1064 1.27 chs
1065 1.5 mrg if (pps[lcv] != NULL ||
1066 1.5 mrg (lcv != centeridx && (flags & PGO_ALLPAGES) == 0))
1067 1.5 mrg continue;
1068 1.5 mrg
1069 1.27 chs pageidx = current_offset >> PAGE_SHIFT;
1070 1.27 chs
1071 1.5 mrg /*
1072 1.5 mrg * we have yet to locate the current page (pps[lcv]). we
1073 1.5 mrg * first look for a page that is already at the current offset.
1074 1.5 mrg * if we find a page, we check to see if it is busy or
1075 1.5 mrg * released. if that is the case, then we sleep on the page
1076 1.5 mrg * until it is no longer busy or released and repeat the lookup.
1077 1.5 mrg * if the page we found is neither busy nor released, then we
1078 1.5 mrg * busy it (so we own it) and plug it into pps[lcv]. this
1079 1.5 mrg * 'break's the following while loop and indicates we are
1080 1.5 mrg * ready to move on to the next page in the "lcv" loop above.
1081 1.5 mrg *
1082 1.5 mrg * if we exit the while loop with pps[lcv] still set to NULL,
1083 1.5 mrg * then it means that we allocated a new busy/fake/clean page
1084 1.5 mrg * ptmp in the object and we need to do I/O to fill in the data.
1085 1.5 mrg */
1086 1.5 mrg
1087 1.5 mrg /* top of "pps" while loop */
1088 1.5 mrg while (pps[lcv] == NULL) {
1089 1.5 mrg /* look for a resident page */
1090 1.5 mrg ptmp = uvm_pagelookup(uobj, current_offset);
1091 1.5 mrg
1092 1.5 mrg /* not resident? allocate one now (if we can) */
1093 1.5 mrg if (ptmp == NULL) {
1094 1.5 mrg
1095 1.5 mrg ptmp = uvm_pagealloc(uobj, current_offset,
1096 1.19 chs NULL, 0);
1097 1.5 mrg
1098 1.5 mrg /* out of RAM? */
1099 1.5 mrg if (ptmp == NULL) {
1100 1.5 mrg simple_unlock(&uobj->vmobjlock);
1101 1.5 mrg UVMHIST_LOG(pdhist,
1102 1.5 mrg "sleeping, ptmp == NULL\n",0,0,0,0);
1103 1.5 mrg uvm_wait("uao_getpage");
1104 1.5 mrg simple_lock(&uobj->vmobjlock);
1105 1.5 mrg /* goto top of pps while loop */
1106 1.41 chs continue;
1107 1.5 mrg }
1108 1.5 mrg
1109 1.5 mrg /*
1110 1.5 mrg * safe with PQ's unlocked: because we just
1111 1.5 mrg * alloc'd the page
1112 1.5 mrg */
1113 1.5 mrg ptmp->pqflags |= PQ_AOBJ;
1114 1.5 mrg
1115 1.41 chs /*
1116 1.5 mrg * got new page ready for I/O. break pps while
1117 1.5 mrg * loop. pps[lcv] is still NULL.
1118 1.5 mrg */
1119 1.5 mrg break;
1120 1.5 mrg }
1121 1.5 mrg
1122 1.5 mrg /* page is there, see if we need to wait on it */
1123 1.5 mrg if ((ptmp->flags & (PG_BUSY|PG_RELEASED)) != 0) {
1124 1.5 mrg ptmp->flags |= PG_WANTED;
1125 1.5 mrg UVMHIST_LOG(pdhist,
1126 1.5 mrg "sleeping, ptmp->flags 0x%x\n",
1127 1.5 mrg ptmp->flags,0,0,0);
1128 1.23 thorpej UVM_UNLOCK_AND_WAIT(ptmp, &uobj->vmobjlock,
1129 1.23 thorpej FALSE, "uao_get", 0);
1130 1.5 mrg simple_lock(&uobj->vmobjlock);
1131 1.5 mrg continue; /* goto top of pps while loop */
1132 1.5 mrg }
1133 1.41 chs
1134 1.41 chs /*
1135 1.5 mrg * if we get here then the page has become resident and
1136 1.5 mrg * unbusy between steps 1 and 2. we busy it now (so we
1137 1.5 mrg * own it) and set pps[lcv] (so that we exit the while
1138 1.5 mrg * loop).
1139 1.5 mrg */
1140 1.5 mrg /* we own it, caller must un-busy */
1141 1.5 mrg ptmp->flags |= PG_BUSY;
1142 1.5 mrg UVM_PAGE_OWN(ptmp, "uao_get2");
1143 1.5 mrg pps[lcv] = ptmp;
1144 1.5 mrg }
1145 1.5 mrg
1146 1.5 mrg /*
1147 1.5 mrg * if we own the valid page at the correct offset, pps[lcv] will
1148 1.5 mrg * point to it. nothing more to do except go to the next page.
1149 1.5 mrg */
1150 1.5 mrg if (pps[lcv])
1151 1.5 mrg continue; /* next lcv */
1152 1.5 mrg
1153 1.5 mrg /*
1154 1.41 chs * we have a "fake/busy/clean" page that we just allocated.
1155 1.5 mrg * do the needed "i/o", either reading from swap or zeroing.
1156 1.5 mrg */
1157 1.27 chs swslot = uao_find_swslot(aobj, pageidx);
1158 1.5 mrg
1159 1.5 mrg /*
1160 1.5 mrg * just zero the page if there's nothing in swap.
1161 1.5 mrg */
1162 1.5 mrg if (swslot == 0)
1163 1.5 mrg {
1164 1.5 mrg /*
1165 1.5 mrg * page hasn't existed before, just zero it.
1166 1.5 mrg */
1167 1.5 mrg uvm_pagezero(ptmp);
1168 1.27 chs } else {
1169 1.5 mrg UVMHIST_LOG(pdhist, "pagein from swslot %d",
1170 1.5 mrg swslot, 0,0,0);
1171 1.5 mrg
1172 1.5 mrg /*
1173 1.5 mrg * page in the swapped-out page.
1174 1.5 mrg * unlock object for i/o, relock when done.
1175 1.5 mrg */
1176 1.5 mrg simple_unlock(&uobj->vmobjlock);
1177 1.5 mrg rv = uvm_swap_get(ptmp, swslot, PGO_SYNCIO);
1178 1.5 mrg simple_lock(&uobj->vmobjlock);
1179 1.5 mrg
1180 1.5 mrg /*
1181 1.5 mrg * I/O done. check for errors.
1182 1.5 mrg */
1183 1.40 chs if (rv != 0)
1184 1.5 mrg {
1185 1.5 mrg UVMHIST_LOG(pdhist, "<- done (error=%d)",
1186 1.5 mrg rv,0,0,0);
1187 1.5 mrg if (ptmp->flags & PG_WANTED)
1188 1.24 thorpej wakeup(ptmp);
1189 1.27 chs
1190 1.27 chs /*
1191 1.27 chs * remove the swap slot from the aobj
1192 1.27 chs * and mark the aobj as having no real slot.
1193 1.27 chs * don't free the swap slot, thus preventing
1194 1.27 chs * it from being used again.
1195 1.27 chs */
1196 1.27 chs swslot = uao_set_swslot(&aobj->u_obj, pageidx,
1197 1.27 chs SWSLOT_BAD);
1198 1.27 chs uvm_swap_markbad(swslot, 1);
1199 1.27 chs
1200 1.5 mrg ptmp->flags &= ~(PG_WANTED|PG_BUSY);
1201 1.5 mrg UVM_PAGE_OWN(ptmp, NULL);
1202 1.5 mrg uvm_lock_pageq();
1203 1.5 mrg uvm_pagefree(ptmp);
1204 1.5 mrg uvm_unlock_pageq();
1205 1.27 chs
1206 1.5 mrg simple_unlock(&uobj->vmobjlock);
1207 1.5 mrg return (rv);
1208 1.5 mrg }
1209 1.5 mrg }
1210 1.5 mrg
1211 1.41 chs /*
1212 1.5 mrg * we got the page! clear the fake flag (indicates valid
1213 1.5 mrg * data now in page) and plug into our result array. note
1214 1.41 chs * that page is still busy.
1215 1.5 mrg *
1216 1.5 mrg * it is the callers job to:
1217 1.5 mrg * => check if the page is released
1218 1.5 mrg * => unbusy the page
1219 1.5 mrg * => activate the page
1220 1.5 mrg */
1221 1.5 mrg
1222 1.5 mrg ptmp->flags &= ~PG_FAKE; /* data is valid ... */
1223 1.26 chs pmap_clear_modify(ptmp); /* ... and clean */
1224 1.5 mrg pps[lcv] = ptmp;
1225 1.1 mrg
1226 1.5 mrg } /* lcv loop */
1227 1.1 mrg
1228 1.1 mrg /*
1229 1.5 mrg * finally, unlock object and return.
1230 1.5 mrg */
1231 1.1 mrg
1232 1.1 mrg simple_unlock(&uobj->vmobjlock);
1233 1.5 mrg UVMHIST_LOG(pdhist, "<- done (OK)",0,0,0,0);
1234 1.40 chs return(0);
1235 1.1 mrg }
1236 1.1 mrg
1237 1.1 mrg /*
1238 1.1 mrg * uao_releasepg: handle released page in an aobj
1239 1.41 chs *
1240 1.1 mrg * => "pg" is a PG_BUSY [caller owns it], PG_RELEASED page that we need
1241 1.1 mrg * to dispose of.
1242 1.1 mrg * => caller must handle PG_WANTED case
1243 1.1 mrg * => called with page's object locked, pageq's unlocked
1244 1.1 mrg * => returns TRUE if page's object is still alive, FALSE if we
1245 1.1 mrg * killed the page's object. if we return TRUE, then we
1246 1.1 mrg * return with the object locked.
1247 1.37 chs * => if (nextpgp != NULL) => we return the next page on the queue, and return
1248 1.1 mrg * with the page queues locked [for pagedaemon]
1249 1.1 mrg * => if (nextpgp == NULL) => we return with page queues unlocked [normal case]
1250 1.1 mrg * => we kill the aobj if it is not referenced and we are suppose to
1251 1.1 mrg * kill it ("KILLME").
1252 1.1 mrg */
1253 1.27 chs static boolean_t
1254 1.27 chs uao_releasepg(pg, nextpgp)
1255 1.5 mrg struct vm_page *pg;
1256 1.5 mrg struct vm_page **nextpgp; /* OUT */
1257 1.1 mrg {
1258 1.5 mrg struct uvm_aobj *aobj = (struct uvm_aobj *) pg->uobject;
1259 1.1 mrg
1260 1.39 chs KASSERT(pg->flags & PG_RELEASED);
1261 1.27 chs
1262 1.5 mrg /*
1263 1.5 mrg * dispose of the page [caller handles PG_WANTED] and swap slot.
1264 1.5 mrg */
1265 1.26 chs pmap_page_protect(pg, VM_PROT_NONE);
1266 1.18 chs uao_dropswap(&aobj->u_obj, pg->offset >> PAGE_SHIFT);
1267 1.5 mrg uvm_lock_pageq();
1268 1.5 mrg if (nextpgp)
1269 1.37 chs *nextpgp = TAILQ_NEXT(pg, pageq); /* next page for daemon */
1270 1.5 mrg uvm_pagefree(pg);
1271 1.5 mrg if (!nextpgp)
1272 1.27 chs uvm_unlock_pageq(); /* keep locked for daemon */
1273 1.5 mrg
1274 1.5 mrg /*
1275 1.5 mrg * if we're not killing the object, we're done.
1276 1.5 mrg */
1277 1.5 mrg if ((aobj->u_flags & UAO_FLAG_KILLME) == 0)
1278 1.5 mrg return TRUE;
1279 1.37 chs KASSERT(aobj->u_obj.uo_refs == 0);
1280 1.1 mrg
1281 1.5 mrg /*
1282 1.5 mrg * if there are still pages in the object, we're done for now.
1283 1.5 mrg */
1284 1.5 mrg if (aobj->u_obj.uo_npages != 0)
1285 1.5 mrg return TRUE;
1286 1.1 mrg
1287 1.39 chs KASSERT(TAILQ_EMPTY(&aobj->u_obj.memq));
1288 1.1 mrg
1289 1.5 mrg /*
1290 1.5 mrg * finally, free the rest.
1291 1.5 mrg */
1292 1.5 mrg uao_free(aobj);
1293 1.1 mrg
1294 1.5 mrg return FALSE;
1295 1.18 chs }
1296 1.18 chs
1297 1.27 chs
1298 1.18 chs /*
1299 1.18 chs * uao_dropswap: release any swap resources from this aobj page.
1300 1.41 chs *
1301 1.18 chs * => aobj must be locked or have a reference count of 0.
1302 1.18 chs */
1303 1.18 chs
1304 1.18 chs void
1305 1.18 chs uao_dropswap(uobj, pageidx)
1306 1.18 chs struct uvm_object *uobj;
1307 1.18 chs int pageidx;
1308 1.18 chs {
1309 1.18 chs int slot;
1310 1.18 chs
1311 1.18 chs slot = uao_set_swslot(uobj, pageidx, 0);
1312 1.18 chs if (slot) {
1313 1.18 chs uvm_swap_free(slot, 1);
1314 1.18 chs }
1315 1.27 chs }
1316 1.27 chs
1317 1.27 chs
1318 1.27 chs /*
1319 1.27 chs * page in every page in every aobj that is paged-out to a range of swslots.
1320 1.41 chs *
1321 1.27 chs * => nothing should be locked.
1322 1.27 chs * => returns TRUE if pagein was aborted due to lack of memory.
1323 1.27 chs */
1324 1.27 chs boolean_t
1325 1.27 chs uao_swap_off(startslot, endslot)
1326 1.27 chs int startslot, endslot;
1327 1.27 chs {
1328 1.27 chs struct uvm_aobj *aobj, *nextaobj;
1329 1.27 chs
1330 1.27 chs /*
1331 1.27 chs * walk the list of all aobjs.
1332 1.27 chs */
1333 1.27 chs
1334 1.27 chs restart:
1335 1.27 chs simple_lock(&uao_list_lock);
1336 1.27 chs
1337 1.27 chs for (aobj = LIST_FIRST(&uao_list);
1338 1.27 chs aobj != NULL;
1339 1.27 chs aobj = nextaobj) {
1340 1.27 chs boolean_t rv;
1341 1.27 chs
1342 1.27 chs /*
1343 1.27 chs * try to get the object lock,
1344 1.27 chs * start all over if we fail.
1345 1.27 chs * most of the time we'll get the aobj lock,
1346 1.27 chs * so this should be a rare case.
1347 1.27 chs */
1348 1.27 chs if (!simple_lock_try(&aobj->u_obj.vmobjlock)) {
1349 1.27 chs simple_unlock(&uao_list_lock);
1350 1.27 chs goto restart;
1351 1.27 chs }
1352 1.27 chs
1353 1.27 chs /*
1354 1.27 chs * add a ref to the aobj so it doesn't disappear
1355 1.27 chs * while we're working.
1356 1.27 chs */
1357 1.27 chs uao_reference_locked(&aobj->u_obj);
1358 1.27 chs
1359 1.27 chs /*
1360 1.27 chs * now it's safe to unlock the uao list.
1361 1.27 chs */
1362 1.27 chs simple_unlock(&uao_list_lock);
1363 1.27 chs
1364 1.27 chs /*
1365 1.27 chs * page in any pages in the swslot range.
1366 1.27 chs * if there's an error, abort and return the error.
1367 1.27 chs */
1368 1.27 chs rv = uao_pagein(aobj, startslot, endslot);
1369 1.27 chs if (rv) {
1370 1.27 chs uao_detach_locked(&aobj->u_obj);
1371 1.27 chs return rv;
1372 1.27 chs }
1373 1.27 chs
1374 1.27 chs /*
1375 1.27 chs * we're done with this aobj.
1376 1.27 chs * relock the list and drop our ref on the aobj.
1377 1.27 chs */
1378 1.27 chs simple_lock(&uao_list_lock);
1379 1.27 chs nextaobj = LIST_NEXT(aobj, u_list);
1380 1.27 chs uao_detach_locked(&aobj->u_obj);
1381 1.27 chs }
1382 1.27 chs
1383 1.27 chs /*
1384 1.27 chs * done with traversal, unlock the list
1385 1.27 chs */
1386 1.27 chs simple_unlock(&uao_list_lock);
1387 1.27 chs return FALSE;
1388 1.27 chs }
1389 1.27 chs
1390 1.27 chs
1391 1.27 chs /*
1392 1.27 chs * page in any pages from aobj in the given range.
1393 1.27 chs *
1394 1.27 chs * => aobj must be locked and is returned locked.
1395 1.27 chs * => returns TRUE if pagein was aborted due to lack of memory.
1396 1.27 chs */
1397 1.27 chs static boolean_t
1398 1.27 chs uao_pagein(aobj, startslot, endslot)
1399 1.27 chs struct uvm_aobj *aobj;
1400 1.27 chs int startslot, endslot;
1401 1.27 chs {
1402 1.27 chs boolean_t rv;
1403 1.27 chs
1404 1.27 chs if (UAO_USES_SWHASH(aobj)) {
1405 1.27 chs struct uao_swhash_elt *elt;
1406 1.27 chs int bucket;
1407 1.27 chs
1408 1.27 chs restart:
1409 1.27 chs for (bucket = aobj->u_swhashmask; bucket >= 0; bucket--) {
1410 1.27 chs for (elt = LIST_FIRST(&aobj->u_swhash[bucket]);
1411 1.27 chs elt != NULL;
1412 1.27 chs elt = LIST_NEXT(elt, list)) {
1413 1.27 chs int i;
1414 1.27 chs
1415 1.27 chs for (i = 0; i < UAO_SWHASH_CLUSTER_SIZE; i++) {
1416 1.27 chs int slot = elt->slots[i];
1417 1.27 chs
1418 1.27 chs /*
1419 1.27 chs * if the slot isn't in range, skip it.
1420 1.27 chs */
1421 1.41 chs if (slot < startslot ||
1422 1.27 chs slot >= endslot) {
1423 1.27 chs continue;
1424 1.27 chs }
1425 1.27 chs
1426 1.27 chs /*
1427 1.27 chs * process the page,
1428 1.27 chs * the start over on this object
1429 1.27 chs * since the swhash elt
1430 1.27 chs * may have been freed.
1431 1.27 chs */
1432 1.27 chs rv = uao_pagein_page(aobj,
1433 1.27 chs UAO_SWHASH_ELT_PAGEIDX_BASE(elt) + i);
1434 1.27 chs if (rv) {
1435 1.27 chs return rv;
1436 1.27 chs }
1437 1.27 chs goto restart;
1438 1.27 chs }
1439 1.27 chs }
1440 1.27 chs }
1441 1.27 chs } else {
1442 1.27 chs int i;
1443 1.27 chs
1444 1.27 chs for (i = 0; i < aobj->u_pages; i++) {
1445 1.27 chs int slot = aobj->u_swslots[i];
1446 1.27 chs
1447 1.27 chs /*
1448 1.27 chs * if the slot isn't in range, skip it
1449 1.27 chs */
1450 1.27 chs if (slot < startslot || slot >= endslot) {
1451 1.27 chs continue;
1452 1.27 chs }
1453 1.27 chs
1454 1.27 chs /*
1455 1.27 chs * process the page.
1456 1.27 chs */
1457 1.27 chs rv = uao_pagein_page(aobj, i);
1458 1.27 chs if (rv) {
1459 1.27 chs return rv;
1460 1.27 chs }
1461 1.27 chs }
1462 1.27 chs }
1463 1.27 chs
1464 1.27 chs return FALSE;
1465 1.27 chs }
1466 1.27 chs
1467 1.27 chs /*
1468 1.27 chs * page in a page from an aobj. used for swap_off.
1469 1.27 chs * returns TRUE if pagein was aborted due to lack of memory.
1470 1.27 chs *
1471 1.27 chs * => aobj must be locked and is returned locked.
1472 1.27 chs */
1473 1.27 chs static boolean_t
1474 1.27 chs uao_pagein_page(aobj, pageidx)
1475 1.27 chs struct uvm_aobj *aobj;
1476 1.27 chs int pageidx;
1477 1.27 chs {
1478 1.27 chs struct vm_page *pg;
1479 1.27 chs int rv, slot, npages;
1480 1.27 chs
1481 1.27 chs pg = NULL;
1482 1.27 chs npages = 1;
1483 1.27 chs /* locked: aobj */
1484 1.27 chs rv = uao_get(&aobj->u_obj, pageidx << PAGE_SHIFT,
1485 1.27 chs &pg, &npages, 0, VM_PROT_READ|VM_PROT_WRITE, 0, 0);
1486 1.27 chs /* unlocked: aobj */
1487 1.27 chs
1488 1.27 chs /*
1489 1.27 chs * relock and finish up.
1490 1.27 chs */
1491 1.27 chs simple_lock(&aobj->u_obj.vmobjlock);
1492 1.27 chs
1493 1.27 chs switch (rv) {
1494 1.40 chs case 0:
1495 1.27 chs break;
1496 1.27 chs
1497 1.40 chs case EIO:
1498 1.40 chs case ERESTART:
1499 1.27 chs /*
1500 1.27 chs * nothing more to do on errors.
1501 1.40 chs * ERESTART can only mean that the anon was freed,
1502 1.27 chs * so again there's nothing to do.
1503 1.27 chs */
1504 1.27 chs return FALSE;
1505 1.27 chs
1506 1.27 chs }
1507 1.39 chs KASSERT((pg->flags & PG_RELEASED) == 0);
1508 1.27 chs
1509 1.27 chs /*
1510 1.27 chs * ok, we've got the page now.
1511 1.27 chs * mark it as dirty, clear its swslot and un-busy it.
1512 1.27 chs */
1513 1.27 chs slot = uao_set_swslot(&aobj->u_obj, pageidx, 0);
1514 1.27 chs uvm_swap_free(slot, 1);
1515 1.27 chs pg->flags &= ~(PG_BUSY|PG_CLEAN|PG_FAKE);
1516 1.27 chs UVM_PAGE_OWN(pg, NULL);
1517 1.27 chs
1518 1.27 chs /*
1519 1.27 chs * deactivate the page (to put it on a page queue).
1520 1.27 chs */
1521 1.27 chs pmap_clear_reference(pg);
1522 1.27 chs uvm_lock_pageq();
1523 1.27 chs uvm_pagedeactivate(pg);
1524 1.27 chs uvm_unlock_pageq();
1525 1.27 chs
1526 1.27 chs return FALSE;
1527 1.1 mrg }
1528