uvm_pdaemon.c revision 1.93.4.2.4.5 1 1.93.4.2.4.5 matt /* $NetBSD: uvm_pdaemon.c,v 1.93.4.2.4.5 2012/02/14 01:12:42 matt Exp $ */
2 1.1 mrg
3 1.34 chs /*
4 1.1 mrg * Copyright (c) 1997 Charles D. Cranor and Washington University.
5 1.34 chs * Copyright (c) 1991, 1993, The Regents of the University of California.
6 1.1 mrg *
7 1.1 mrg * All rights reserved.
8 1.1 mrg *
9 1.1 mrg * This code is derived from software contributed to Berkeley by
10 1.1 mrg * The Mach Operating System project at Carnegie-Mellon University.
11 1.1 mrg *
12 1.1 mrg * Redistribution and use in source and binary forms, with or without
13 1.1 mrg * modification, are permitted provided that the following conditions
14 1.1 mrg * are met:
15 1.1 mrg * 1. Redistributions of source code must retain the above copyright
16 1.1 mrg * notice, this list of conditions and the following disclaimer.
17 1.1 mrg * 2. Redistributions in binary form must reproduce the above copyright
18 1.1 mrg * notice, this list of conditions and the following disclaimer in the
19 1.1 mrg * documentation and/or other materials provided with the distribution.
20 1.1 mrg * 3. All advertising materials mentioning features or use of this software
21 1.1 mrg * must display the following acknowledgement:
22 1.1 mrg * This product includes software developed by Charles D. Cranor,
23 1.34 chs * Washington University, the University of California, Berkeley and
24 1.1 mrg * its contributors.
25 1.1 mrg * 4. Neither the name of the University nor the names of its contributors
26 1.1 mrg * may be used to endorse or promote products derived from this software
27 1.1 mrg * without specific prior written permission.
28 1.1 mrg *
29 1.1 mrg * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
30 1.1 mrg * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
31 1.1 mrg * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
32 1.1 mrg * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
33 1.1 mrg * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
34 1.1 mrg * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
35 1.1 mrg * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
36 1.1 mrg * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
37 1.1 mrg * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
38 1.1 mrg * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
39 1.1 mrg * SUCH DAMAGE.
40 1.1 mrg *
41 1.1 mrg * @(#)vm_pageout.c 8.5 (Berkeley) 2/14/94
42 1.4 mrg * from: Id: uvm_pdaemon.c,v 1.1.2.32 1998/02/06 05:26:30 chs Exp
43 1.1 mrg *
44 1.1 mrg *
45 1.1 mrg * Copyright (c) 1987, 1990 Carnegie-Mellon University.
46 1.1 mrg * All rights reserved.
47 1.34 chs *
48 1.1 mrg * Permission to use, copy, modify and distribute this software and
49 1.1 mrg * its documentation is hereby granted, provided that both the copyright
50 1.1 mrg * notice and this permission notice appear in all copies of the
51 1.1 mrg * software, derivative works or modified versions, and any portions
52 1.1 mrg * thereof, and that both notices appear in supporting documentation.
53 1.34 chs *
54 1.34 chs * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
55 1.34 chs * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
56 1.1 mrg * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
57 1.34 chs *
58 1.1 mrg * Carnegie Mellon requests users of this software to return to
59 1.1 mrg *
60 1.1 mrg * Software Distribution Coordinator or Software.Distribution (at) CS.CMU.EDU
61 1.1 mrg * School of Computer Science
62 1.1 mrg * Carnegie Mellon University
63 1.1 mrg * Pittsburgh PA 15213-3890
64 1.1 mrg *
65 1.1 mrg * any improvements or extensions that they make and grant Carnegie the
66 1.1 mrg * rights to redistribute these changes.
67 1.1 mrg */
68 1.1 mrg
69 1.1 mrg /*
70 1.1 mrg * uvm_pdaemon.c: the page daemon
71 1.1 mrg */
72 1.42 lukem
73 1.42 lukem #include <sys/cdefs.h>
74 1.93.4.2.4.5 matt __KERNEL_RCSID(0, "$NetBSD: uvm_pdaemon.c,v 1.93.4.2.4.5 2012/02/14 01:12:42 matt Exp $");
75 1.42 lukem
76 1.42 lukem #include "opt_uvmhist.h"
77 1.69 yamt #include "opt_readahead.h"
78 1.1 mrg
79 1.1 mrg #include <sys/param.h>
80 1.1 mrg #include <sys/proc.h>
81 1.1 mrg #include <sys/systm.h>
82 1.1 mrg #include <sys/kernel.h>
83 1.9 pk #include <sys/pool.h>
84 1.24 chs #include <sys/buf.h>
85 1.93.4.2 snj #include <sys/atomic.h>
86 1.1 mrg
87 1.1 mrg #include <uvm/uvm.h>
88 1.77 yamt #include <uvm/uvm_pdpolicy.h>
89 1.1 mrg
90 1.1 mrg /*
91 1.45 wiz * UVMPD_NUMDIRTYREACTS is how many dirty pages the pagedaemon will reactivate
92 1.14 chs * in a pass thru the inactive list when swap is full. the value should be
93 1.14 chs * "small"... if it's too large we'll cycle the active pages thru the inactive
94 1.14 chs * queue too quickly to for them to be referenced and avoid being freed.
95 1.14 chs */
96 1.14 chs
97 1.89 ad #define UVMPD_NUMDIRTYREACTS 16
98 1.14 chs
99 1.89 ad #define UVMPD_NUMTRYLOCKOWNER 16
100 1.14 chs
101 1.14 chs /*
102 1.1 mrg * local prototypes
103 1.1 mrg */
104 1.1 mrg
105 1.93.4.2.4.3 matt static void uvmpd_scan(struct uvm_pggroup *);
106 1.93.4.2.4.3 matt static void uvmpd_scan_queue(struct uvm_pggroup *);
107 1.65 thorpej static void uvmpd_tune(void);
108 1.1 mrg
109 1.93.4.2.4.4 matt static void uvmpd_checkgroup(const struct uvm_pggroup *);
110 1.93.4.2.4.4 matt
111 1.93.4.2.4.3 matt static struct uvm_pdinfo {
112 1.93.4.2.4.3 matt unsigned int pd_waiters;
113 1.93.4.2.4.3 matt unsigned int pd_scans_neededs;
114 1.93.4.2.4.3 matt struct uvm_pggrouplist pd_pagingq;
115 1.93.4.2.4.3 matt struct uvm_pggrouplist pd_pendingq;
116 1.93.4.2.4.3 matt } uvm_pdinfo = {
117 1.93.4.2.4.3 matt .pd_pagingq = TAILQ_HEAD_INITIALIZER(uvm_pdinfo.pd_pagingq),
118 1.93.4.2.4.3 matt .pd_pendingq = TAILQ_HEAD_INITIALIZER(uvm_pdinfo.pd_pendingq),
119 1.93.4.2.4.3 matt };
120 1.89 ad
121 1.1 mrg /*
122 1.61 chs * XXX hack to avoid hangs when large processes fork.
123 1.61 chs */
124 1.93.4.2 snj u_int uvm_extrapages;
125 1.61 chs
126 1.61 chs /*
127 1.1 mrg * uvm_wait: wait (sleep) for the page daemon to free some pages
128 1.1 mrg *
129 1.1 mrg * => should be called with all locks released
130 1.1 mrg * => should _not_ be called by the page daemon (to avoid deadlock)
131 1.1 mrg */
132 1.1 mrg
133 1.19 thorpej void
134 1.65 thorpej uvm_wait(const char *wmsg)
135 1.8 mrg {
136 1.8 mrg int timo = 0;
137 1.89 ad
138 1.89 ad mutex_spin_enter(&uvm_fpageqlock);
139 1.1 mrg
140 1.8 mrg /*
141 1.8 mrg * check for page daemon going to sleep (waiting for itself)
142 1.8 mrg */
143 1.1 mrg
144 1.86 ad if (curlwp == uvm.pagedaemon_lwp && uvmexp.paging == 0) {
145 1.8 mrg /*
146 1.8 mrg * now we have a problem: the pagedaemon wants to go to
147 1.8 mrg * sleep until it frees more memory. but how can it
148 1.8 mrg * free more memory if it is asleep? that is a deadlock.
149 1.8 mrg * we have two options:
150 1.8 mrg * [1] panic now
151 1.8 mrg * [2] put a timeout on the sleep, thus causing the
152 1.8 mrg * pagedaemon to only pause (rather than sleep forever)
153 1.8 mrg *
154 1.8 mrg * note that option [2] will only help us if we get lucky
155 1.8 mrg * and some other process on the system breaks the deadlock
156 1.8 mrg * by exiting or freeing memory (thus allowing the pagedaemon
157 1.8 mrg * to continue). for now we panic if DEBUG is defined,
158 1.8 mrg * otherwise we hope for the best with option [2] (better
159 1.8 mrg * yet, this should never happen in the first place!).
160 1.8 mrg */
161 1.1 mrg
162 1.8 mrg printf("pagedaemon: deadlock detected!\n");
163 1.8 mrg timo = hz >> 3; /* set timeout */
164 1.1 mrg #if defined(DEBUG)
165 1.8 mrg /* DEBUG: panic so we can debug it */
166 1.8 mrg panic("pagedaemon deadlock");
167 1.1 mrg #endif
168 1.8 mrg }
169 1.1 mrg
170 1.93.4.2.4.3 matt uvm_pdinfo.pd_waiters++;
171 1.17 thorpej wakeup(&uvm.pagedaemon); /* wake the daemon! */
172 1.89 ad UVM_UNLOCK_AND_WAIT(&uvmexp.free, &uvm_fpageqlock, false, wmsg, timo);
173 1.1 mrg }
174 1.1 mrg
175 1.93.4.2.4.4 matt
176 1.93.4.2.4.4 matt static void
177 1.93.4.2.4.4 matt uvmpd_checkgroup(const struct uvm_pggroup *grp)
178 1.93.4.2.4.4 matt {
179 1.93.4.2.4.4 matt #ifdef DEBUG
180 1.93.4.2.4.4 matt struct uvm_pdinfo * const pdinfo = &uvm_pdinfo;
181 1.93.4.2.4.4 matt bool in_pendingq = false;
182 1.93.4.2.4.4 matt bool in_pagingq = false;
183 1.93.4.2.4.4 matt const struct uvm_pggroup *tstgrp;
184 1.93.4.2.4.4 matt
185 1.93.4.2.4.4 matt TAILQ_FOREACH(tstgrp, &pdinfo->pd_pendingq, pgrp_pending_link) {
186 1.93.4.2.4.4 matt if (tstgrp == grp) {
187 1.93.4.2.4.4 matt in_pendingq = true;
188 1.93.4.2.4.4 matt break;
189 1.93.4.2.4.4 matt }
190 1.93.4.2.4.4 matt }
191 1.93.4.2.4.4 matt
192 1.93.4.2.4.4 matt TAILQ_FOREACH(tstgrp, &pdinfo->pd_pagingq, pgrp_paging_link) {
193 1.93.4.2.4.4 matt if (tstgrp == grp) {
194 1.93.4.2.4.4 matt in_pagingq = true;
195 1.93.4.2.4.4 matt break;
196 1.93.4.2.4.4 matt }
197 1.93.4.2.4.4 matt }
198 1.93.4.2.4.4 matt
199 1.93.4.2.4.4 matt if (grp->pgrp_paging > 0) {
200 1.93.4.2.4.4 matt KASSERT(in_pagingq);
201 1.93.4.2.4.4 matt KASSERT(!in_pendingq);
202 1.93.4.2.4.4 matt } else {
203 1.93.4.2.4.4 matt KASSERT(!in_pagingq);
204 1.93.4.2.4.4 matt KASSERT(in_pendingq == grp->pgrp_scan_needed);
205 1.93.4.2.4.4 matt }
206 1.93.4.2.4.4 matt #endif
207 1.93.4.2.4.4 matt }
208 1.93.4.2.4.4 matt
209 1.77 yamt /*
210 1.77 yamt * uvm_kick_pdaemon: perform checks to determine if we need to
211 1.77 yamt * give the pagedaemon a nudge, and do so if necessary.
212 1.89 ad *
213 1.89 ad * => called with uvm_fpageqlock held.
214 1.77 yamt */
215 1.77 yamt
216 1.77 yamt void
217 1.77 yamt uvm_kick_pdaemon(void)
218 1.77 yamt {
219 1.93.4.2.4.3 matt struct uvm_pdinfo * const pdinfo = &uvm_pdinfo;
220 1.93.4.2.4.3 matt bool need_wakeup = false;
221 1.93.4.2.4.3 matt UVMHIST_FUNC(__func__); UVMHIST_CALLED(pdhist);
222 1.77 yamt
223 1.89 ad KASSERT(mutex_owned(&uvm_fpageqlock));
224 1.89 ad
225 1.93.4.2.4.3 matt struct uvm_pggroup *grp;
226 1.93.4.2.4.3 matt STAILQ_FOREACH(grp, &uvm.page_groups, pgrp_uvm_link) {
227 1.93.4.2.4.3 matt const bool prev_scan_needed = grp->pgrp_scan_needed;
228 1.93.4.2.4.3 matt
229 1.93.4.2.4.3 matt KASSERT(grp->pgrp_npages > 0);
230 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
231 1.93.4.2.4.3 matt
232 1.93.4.2.4.3 matt grp->pgrp_scan_needed =
233 1.93.4.2.4.3 matt grp->pgrp_free + grp->pgrp_paging < grp->pgrp_freemin
234 1.93.4.2.4.3 matt || (grp->pgrp_free + grp->pgrp_paging < grp->pgrp_freetarg
235 1.93.4.2.4.3 matt && uvmpdpol_needsscan_p(grp));
236 1.93.4.2.4.3 matt
237 1.93.4.2.4.3 matt if (prev_scan_needed != grp->pgrp_scan_needed) {
238 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist, " [%zd] %d->%d (scan=%d)",
239 1.93.4.2.4.3 matt grp - uvm.pggroups, prev_scan_needed,
240 1.93.4.2.4.3 matt grp->pgrp_scan_needed, uvmpdpol_needsscan_p(grp));
241 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist, " [%zd] %d < min(%d,%d)",
242 1.93.4.2.4.3 matt grp - uvm.pggroups,
243 1.93.4.2.4.3 matt grp->pgrp_free + grp->pgrp_paging,
244 1.93.4.2.4.3 matt grp->pgrp_freemin, grp->pgrp_freetarg);
245 1.93.4.2.4.3 matt }
246 1.93.4.2.4.3 matt
247 1.93.4.2.4.4 matt if (prev_scan_needed != grp->pgrp_scan_needed) {
248 1.93.4.2.4.3 matt if (grp->pgrp_scan_needed) {
249 1.93.4.2.4.3 matt TAILQ_INSERT_TAIL(&pdinfo->pd_pendingq,
250 1.93.4.2.4.4 matt grp, pgrp_pending_link);
251 1.93.4.2.4.3 matt need_wakeup = true;
252 1.93.4.2.4.3 matt } else {
253 1.93.4.2.4.3 matt TAILQ_REMOVE(&pdinfo->pd_pendingq,
254 1.93.4.2.4.4 matt grp, pgrp_pending_link);
255 1.93.4.2.4.3 matt }
256 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
257 1.93.4.2.4.3 matt }
258 1.77 yamt }
259 1.93.4.2.4.3 matt
260 1.93.4.2.4.3 matt if (need_wakeup)
261 1.93.4.2.4.3 matt wakeup(&uvm.pagedaemon);
262 1.93.4.2.4.3 matt
263 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist, " <- done: wakeup=%d!",
264 1.93.4.2.4.4 matt need_wakeup, 0, 0, 0);
265 1.77 yamt }
266 1.1 mrg
267 1.1 mrg /*
268 1.1 mrg * uvmpd_tune: tune paging parameters
269 1.1 mrg *
270 1.1 mrg * => called when ever memory is added (or removed?) to the system
271 1.1 mrg * => caller must call with page queues locked
272 1.1 mrg */
273 1.1 mrg
274 1.65 thorpej static void
275 1.37 chs uvmpd_tune(void)
276 1.8 mrg {
277 1.93.4.2.4.3 matt u_int extrapages = atomic_swap_uint(&uvm_extrapages, 0) / uvmexp.ncolors;
278 1.93.4.2.4.3 matt u_int freemin = 0;
279 1.93.4.2.4.3 matt u_int freetarg = 0;
280 1.93.4.2.4.3 matt u_int wiredmax = 0;
281 1.93.4.2 snj
282 1.8 mrg UVMHIST_FUNC("uvmpd_tune"); UVMHIST_CALLED(pdhist);
283 1.1 mrg
284 1.93.4.2.4.3 matt extrapages = roundup(extrapages, uvmexp.npggroups);
285 1.93.4.2.4.3 matt
286 1.93.4.2.4.3 matt struct uvm_pggroup *grp;
287 1.93.4.2.4.3 matt STAILQ_FOREACH(grp, &uvm.page_groups, pgrp_uvm_link) {
288 1.93.4.2.4.3 matt KASSERT(grp->pgrp_npages > 0);
289 1.93.4.2.4.3 matt
290 1.93.4.2.4.3 matt /*
291 1.93.4.2.4.3 matt * try to keep 0.5% of available RAM free, but limit
292 1.93.4.2.4.3 matt * to between 128k and 1024k per-CPU.
293 1.93.4.2.4.3 matt * XXX: what are these values good for?
294 1.93.4.2.4.3 matt */
295 1.93.4.2.4.3 matt u_int val = grp->pgrp_npages / 200;
296 1.93.4.2.4.3 matt val = MAX(val, (128*1024) >> PAGE_SHIFT);
297 1.93.4.2.4.3 matt val = MIN(val, (1024*1024) >> PAGE_SHIFT);
298 1.93.4.2.4.3 matt val *= ncpu;
299 1.93.4.2.4.3 matt
300 1.93.4.2.4.3 matt /* Make sure there's always a user page free. */
301 1.93.4.2.4.3 matt if (val * uvmexp.npggroups <= uvmexp.reserve_kernel)
302 1.93.4.2.4.3 matt val = uvmexp.reserve_kernel / uvmexp.npggroups + 1;
303 1.93.4.2.4.3 matt
304 1.93.4.2.4.3 matt grp->pgrp_freemin = val;
305 1.93.4.2.4.3 matt
306 1.93.4.2.4.3 matt /* Calculate freetarg. */
307 1.93.4.2.4.3 matt val = (grp->pgrp_freemin * 4) / 3;
308 1.93.4.2.4.3 matt if (val <= grp->pgrp_freemin)
309 1.93.4.2.4.3 matt val = grp->pgrp_freemin + 1;
310 1.93.4.2.4.3 matt grp->pgrp_freetarg = val + extrapages / uvmexp.npggroups;
311 1.93.4.2.4.3 matt if (grp->pgrp_freetarg > grp->pgrp_npages / 2)
312 1.93.4.2.4.3 matt grp->pgrp_freetarg = grp->pgrp_npages / 2;
313 1.93.4.2.4.3 matt
314 1.93.4.2.4.3 matt grp->pgrp_wiredmax = grp->pgrp_npages / 3;
315 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist,
316 1.93.4.2.4.3 matt "[%zd]: freemin=%d, freetarg=%d, wiredmax=%d",
317 1.93.4.2.4.3 matt grp - uvm.pggroups, grp->pgrp_freemin, grp->pgrp_freetarg,
318 1.93.4.2.4.3 matt grp->pgrp_wiredmax);
319 1.93.4.2.4.3 matt
320 1.93.4.2.4.3 matt freemin += grp->pgrp_freemin;
321 1.93.4.2.4.3 matt freetarg += grp->pgrp_freetarg;
322 1.93.4.2.4.3 matt wiredmax += grp->pgrp_wiredmax;
323 1.93.4.2.4.3 matt }
324 1.93.4.2.4.3 matt
325 1.93.4.2.4.3 matt uvmexp.freemin = freemin;
326 1.93.4.2.4.3 matt uvmexp.freetarg = freetarg;
327 1.93.4.2.4.3 matt uvmexp.wiredmax = wiredmax;
328 1.61 chs
329 1.8 mrg UVMHIST_LOG(pdhist, "<- done, freemin=%d, freetarg=%d, wiredmax=%d",
330 1.93.4.2.4.3 matt uvmexp.freemin, uvmexp.freetarg, uvmexp.wiredmax, 0);
331 1.1 mrg }
332 1.1 mrg
333 1.1 mrg /*
334 1.1 mrg * uvm_pageout: the main loop for the pagedaemon
335 1.1 mrg */
336 1.1 mrg
337 1.8 mrg void
338 1.80 yamt uvm_pageout(void *arg)
339 1.8 mrg {
340 1.93.4.2.4.3 matt u_int npages = 0;
341 1.93.4.2.4.3 matt u_int extrapages = 0;
342 1.93.4.2.4.3 matt u_int npggroups = 0;
343 1.88 ad struct pool *pp;
344 1.88 ad uint64_t where;
345 1.93.4.2.4.3 matt struct uvm_pdinfo * const pdinfo = &uvm_pdinfo;
346 1.8 mrg UVMHIST_FUNC("uvm_pageout"); UVMHIST_CALLED(pdhist);
347 1.24 chs
348 1.8 mrg UVMHIST_LOG(pdhist,"<starting uvm pagedaemon>", 0, 0, 0, 0);
349 1.8 mrg
350 1.8 mrg /*
351 1.8 mrg * ensure correct priority and set paging parameters...
352 1.8 mrg */
353 1.8 mrg
354 1.86 ad uvm.pagedaemon_lwp = curlwp;
355 1.89 ad mutex_enter(&uvm_pageqlock);
356 1.8 mrg npages = uvmexp.npages;
357 1.8 mrg uvmpd_tune();
358 1.89 ad mutex_exit(&uvm_pageqlock);
359 1.8 mrg
360 1.8 mrg /*
361 1.8 mrg * main loop
362 1.8 mrg */
363 1.24 chs
364 1.24 chs for (;;) {
365 1.93.4.2.4.3 matt struct uvm_pggroup *grp;
366 1.93.4.2.4.3 matt bool need_free = false;
367 1.93.4.2.4.3 matt u_int bufcnt = 0;
368 1.24 chs
369 1.89 ad mutex_spin_enter(&uvm_fpageqlock);
370 1.93.4.2.4.3 matt /*
371 1.93.4.2.4.3 matt * If we have no one waiting or all color requests have
372 1.93.4.2.4.3 matt * active paging, then wait.
373 1.93.4.2.4.3 matt */
374 1.93.4.2.4.3 matt if (pdinfo->pd_waiters == 0
375 1.93.4.2.4.3 matt || TAILQ_FIRST(&pdinfo->pd_pendingq) == NULL) {
376 1.89 ad UVMHIST_LOG(pdhist," <<SLEEPING>>",0,0,0,0);
377 1.89 ad UVM_UNLOCK_AND_WAIT(&uvm.pagedaemon,
378 1.89 ad &uvm_fpageqlock, false, "pgdaemon", 0);
379 1.89 ad uvmexp.pdwoke++;
380 1.89 ad UVMHIST_LOG(pdhist," <<WOKE UP>>",0,0,0,0);
381 1.89 ad } else {
382 1.89 ad mutex_spin_exit(&uvm_fpageqlock);
383 1.89 ad }
384 1.24 chs
385 1.8 mrg /*
386 1.24 chs * now lock page queues and recompute inactive count
387 1.8 mrg */
388 1.8 mrg
389 1.89 ad mutex_enter(&uvm_pageqlock);
390 1.93.4.2.4.3 matt mutex_spin_enter(&uvm_fpageqlock);
391 1.93.4.2.4.3 matt
392 1.93.4.2.4.3 matt if (npages != uvmexp.npages
393 1.93.4.2.4.3 matt || extrapages != uvm_extrapages
394 1.93.4.2.4.3 matt || npggroups != uvmexp.npggroups) {
395 1.24 chs npages = uvmexp.npages;
396 1.61 chs extrapages = uvm_extrapages;
397 1.93.4.2.4.3 matt npggroups = uvmexp.npggroups;
398 1.24 chs uvmpd_tune();
399 1.24 chs }
400 1.24 chs
401 1.60 enami /*
402 1.60 enami * Estimate a hint. Note that bufmem are returned to
403 1.60 enami * system only when entire pool page is empty.
404 1.60 enami */
405 1.93.4.2.4.3 matt bool need_wakeup = false;
406 1.93.4.2.4.3 matt while ((grp = TAILQ_FIRST(&pdinfo->pd_pendingq)) != NULL) {
407 1.93.4.2.4.3 matt KASSERT(grp->pgrp_npages > 0);
408 1.60 enami
409 1.93.4.2.4.3 matt uvmpdpol_tune(grp);
410 1.8 mrg
411 1.93.4.2.4.4 matt /*
412 1.93.4.2.4.4 matt * While we are locked, remove this from the pendingq.
413 1.93.4.2.4.4 matt */
414 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
415 1.93.4.2.4.4 matt KASSERT(grp->pgrp_scan_needed);
416 1.93.4.2.4.4 matt TAILQ_REMOVE(&pdinfo->pd_pendingq, grp,
417 1.93.4.2.4.4 matt pgrp_pending_link);
418 1.93.4.2.4.4 matt grp->pgrp_scan_needed = false;
419 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
420 1.93.4.2.4.4 matt
421 1.93.4.2.4.3 matt int diff = grp->pgrp_freetarg - grp->pgrp_free;
422 1.93.4.2.4.3 matt if (diff < 0)
423 1.93.4.2.4.3 matt diff = 0;
424 1.89 ad
425 1.93.4.2.4.3 matt bufcnt += diff;
426 1.8 mrg
427 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist," [%zu]: "
428 1.93.4.2.4.3 matt "free/ftarg/fmin=%u/%u/%u",
429 1.93.4.2.4.3 matt grp - uvm.pggroups, grp->pgrp_free,
430 1.93.4.2.4.3 matt grp->pgrp_freetarg, grp->pgrp_freemin);
431 1.93.4.2.4.3 matt
432 1.93.4.2.4.3 matt
433 1.93.4.2.4.3 matt if (grp->pgrp_paging < diff)
434 1.93.4.2.4.3 matt need_free = true;
435 1.93.4.2.4.3 matt
436 1.93.4.2.4.3 matt /*
437 1.93.4.2.4.3 matt * scan if needed
438 1.93.4.2.4.3 matt */
439 1.93.4.2.4.3 matt if (grp->pgrp_paging < diff
440 1.93.4.2.4.3 matt || uvmpdpol_needsscan_p(grp)) {
441 1.93.4.2.4.3 matt mutex_spin_exit(&uvm_fpageqlock);
442 1.93.4.2.4.3 matt uvmpd_scan(grp);
443 1.93.4.2.4.3 matt mutex_spin_enter(&uvm_fpageqlock);
444 1.93.4.2.4.3 matt } else {
445 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist,
446 1.93.4.2.4.3 matt " [%zu]: diff/paging=%u/%u: "
447 1.93.4.2.4.3 matt "scan skipped",
448 1.93.4.2.4.3 matt grp - uvm.pggroups, diff,
449 1.93.4.2.4.3 matt grp->pgrp_paging, 0);
450 1.93.4.2.4.3 matt }
451 1.93.4.2.4.3 matt
452 1.93.4.2.4.3 matt /*
453 1.93.4.2.4.3 matt * if there's any free memory to be had,
454 1.93.4.2.4.3 matt * wake up any waiters.
455 1.93.4.2.4.3 matt */
456 1.93.4.2.4.3 matt if (grp->pgrp_free * uvmexp.npggroups > uvmexp.reserve_kernel
457 1.93.4.2.4.3 matt || grp->pgrp_paging == 0) {
458 1.93.4.2.4.3 matt need_wakeup = true;
459 1.93.4.2.4.3 matt }
460 1.93.4.2.4.3 matt
461 1.93.4.2.4.3 matt }
462 1.93.4.2.4.3 matt if (need_wakeup) {
463 1.93.4.2.4.3 matt pdinfo->pd_waiters = 0;
464 1.24 chs wakeup(&uvmexp.free);
465 1.8 mrg }
466 1.93.4.2.4.3 matt KASSERT (!need_free || need_wakeup);
467 1.89 ad mutex_spin_exit(&uvm_fpageqlock);
468 1.1 mrg
469 1.8 mrg /*
470 1.93.4.2.4.3 matt * scan done. unlock page queues (the only lock
471 1.93.4.2.4.3 matt * we are holding)
472 1.8 mrg */
473 1.89 ad mutex_exit(&uvm_pageqlock);
474 1.38 chs
475 1.88 ad /*
476 1.93 ad * if we don't need free memory, we're done.
477 1.93 ad */
478 1.93 ad
479 1.93.4.2.4.3 matt if (!need_free)
480 1.93 ad continue;
481 1.93 ad
482 1.93 ad /*
483 1.88 ad * start draining pool resources now that we're not
484 1.88 ad * holding any locks.
485 1.88 ad */
486 1.88 ad pool_drain_start(&pp, &where);
487 1.60 enami
488 1.38 chs /*
489 1.88 ad * kill unused metadata buffers.
490 1.38 chs */
491 1.93.4.2.4.3 matt if (bufcnt > 0) {
492 1.93.4.2.4.3 matt mutex_enter(&bufcache_lock);
493 1.93.4.2.4.3 matt buf_drain(bufcnt << PAGE_SHIFT);
494 1.93.4.2.4.3 matt mutex_exit(&bufcache_lock);
495 1.93.4.2.4.3 matt }
496 1.57 jdolecek
497 1.57 jdolecek /*
498 1.88 ad * complete draining the pools.
499 1.88 ad */
500 1.88 ad pool_drain_end(pp, where);
501 1.24 chs }
502 1.24 chs /*NOTREACHED*/
503 1.24 chs }
504 1.24 chs
505 1.8 mrg
506 1.24 chs /*
507 1.81 yamt * uvm_aiodone_worker: a workqueue callback for the aiodone daemon.
508 1.24 chs */
509 1.8 mrg
510 1.24 chs void
511 1.81 yamt uvm_aiodone_worker(struct work *wk, void *dummy)
512 1.24 chs {
513 1.81 yamt struct buf *bp = (void *)wk;
514 1.9 pk
515 1.81 yamt KASSERT(&bp->b_work == wk);
516 1.8 mrg
517 1.81 yamt /*
518 1.81 yamt * process an i/o that's done.
519 1.81 yamt */
520 1.8 mrg
521 1.81 yamt (*bp->b_iodone)(bp);
522 1.89 ad }
523 1.89 ad
524 1.89 ad void
525 1.93.4.2.4.3 matt uvm_pageout_start(struct uvm_pggroup *grp, u_int npages)
526 1.89 ad {
527 1.93.4.2.4.3 matt struct uvm_pdinfo * const pdinfo = &uvm_pdinfo;
528 1.89 ad
529 1.89 ad mutex_spin_enter(&uvm_fpageqlock);
530 1.93.4.2.4.3 matt
531 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
532 1.93.4.2.4.5 matt uvmexp.paging += npages;
533 1.93.4.2.4.3 matt if (grp->pgrp_paging == 0) {
534 1.93.4.2.4.4 matt TAILQ_INSERT_TAIL(&pdinfo->pd_pagingq, grp, pgrp_paging_link);
535 1.93.4.2.4.3 matt }
536 1.93.4.2.4.3 matt grp->pgrp_paging += npages;
537 1.93.4.2.4.5 matt uvmpd_checkgroup(grp);
538 1.89 ad mutex_spin_exit(&uvm_fpageqlock);
539 1.89 ad }
540 1.89 ad
541 1.89 ad void
542 1.93.4.2.4.3 matt uvm_pageout_done(struct vm_page *pg, bool freed)
543 1.89 ad {
544 1.93.4.2.4.3 matt struct uvm_pdinfo * const pdinfo = &uvm_pdinfo;
545 1.93.4.2.4.3 matt
546 1.93.4.2.4.3 matt KASSERT(pg->flags & PG_PAGEOUT);
547 1.89 ad
548 1.89 ad mutex_spin_enter(&uvm_fpageqlock);
549 1.93.4.2.4.3 matt struct uvm_pggroup * const grp = uvm_page_to_pggroup(pg);
550 1.93.4.2.4.3 matt
551 1.93.4.2.4.3 matt KASSERT(grp->pgrp_paging > 0);
552 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
553 1.93.4.2.4.3 matt if (--grp->pgrp_paging == 0) {
554 1.93.4.2.4.4 matt TAILQ_REMOVE(&pdinfo->pd_pagingq, grp, pgrp_paging_link);
555 1.93.4.2.4.4 matt uvmpd_checkgroup(grp);
556 1.93.4.2.4.3 matt }
557 1.93.4.2.4.3 matt KASSERT(uvmexp.paging > 0);
558 1.93.4.2.4.3 matt uvmexp.paging--;
559 1.93.4.2.4.3 matt grp->pgrp_pdfreed += freed;
560 1.89 ad
561 1.89 ad /*
562 1.93.4.2.4.5 matt * Page is no longer being paged out.
563 1.93.4.2.4.5 matt */
564 1.93.4.2.4.5 matt pg->flags &= ~PG_PAGEOUT;
565 1.93.4.2.4.5 matt
566 1.93.4.2.4.5 matt /*
567 1.89 ad * wake up either of pagedaemon or LWPs waiting for it.
568 1.89 ad */
569 1.93.4.2.4.3 matt if (grp->pgrp_free * uvmexp.npggroups <= uvmexp.reserve_kernel) {
570 1.81 yamt wakeup(&uvm.pagedaemon);
571 1.81 yamt } else {
572 1.93.4.2.4.3 matt pdinfo->pd_waiters = 0;
573 1.81 yamt wakeup(&uvmexp.free);
574 1.8 mrg }
575 1.93.4.2.4.3 matt
576 1.89 ad mutex_spin_exit(&uvm_fpageqlock);
577 1.1 mrg }
578 1.1 mrg
579 1.76 yamt /*
580 1.76 yamt * uvmpd_trylockowner: trylock the page's owner.
581 1.76 yamt *
582 1.76 yamt * => called with pageq locked.
583 1.76 yamt * => resolve orphaned O->A loaned page.
584 1.89 ad * => return the locked mutex on success. otherwise, return NULL.
585 1.76 yamt */
586 1.76 yamt
587 1.89 ad kmutex_t *
588 1.76 yamt uvmpd_trylockowner(struct vm_page *pg)
589 1.76 yamt {
590 1.76 yamt struct uvm_object *uobj = pg->uobject;
591 1.89 ad kmutex_t *slock;
592 1.89 ad
593 1.89 ad KASSERT(mutex_owned(&uvm_pageqlock));
594 1.76 yamt
595 1.76 yamt if (uobj != NULL) {
596 1.76 yamt slock = &uobj->vmobjlock;
597 1.76 yamt } else {
598 1.76 yamt struct vm_anon *anon = pg->uanon;
599 1.76 yamt
600 1.76 yamt KASSERT(anon != NULL);
601 1.76 yamt slock = &anon->an_lock;
602 1.76 yamt }
603 1.76 yamt
604 1.89 ad if (!mutex_tryenter(slock)) {
605 1.76 yamt return NULL;
606 1.76 yamt }
607 1.76 yamt
608 1.76 yamt if (uobj == NULL) {
609 1.76 yamt
610 1.76 yamt /*
611 1.76 yamt * set PQ_ANON if it isn't set already.
612 1.76 yamt */
613 1.76 yamt
614 1.76 yamt if ((pg->pqflags & PQ_ANON) == 0) {
615 1.76 yamt KASSERT(pg->loan_count > 0);
616 1.76 yamt pg->loan_count--;
617 1.76 yamt pg->pqflags |= PQ_ANON;
618 1.76 yamt /* anon now owns it */
619 1.76 yamt }
620 1.76 yamt }
621 1.76 yamt
622 1.76 yamt return slock;
623 1.76 yamt }
624 1.76 yamt
625 1.73 yamt #if defined(VMSWAP)
626 1.73 yamt struct swapcluster {
627 1.73 yamt int swc_slot;
628 1.73 yamt int swc_nallocated;
629 1.73 yamt int swc_nused;
630 1.75 yamt struct vm_page *swc_pages[howmany(MAXPHYS, MIN_PAGE_SIZE)];
631 1.73 yamt };
632 1.73 yamt
633 1.73 yamt static void
634 1.73 yamt swapcluster_init(struct swapcluster *swc)
635 1.73 yamt {
636 1.73 yamt
637 1.73 yamt swc->swc_slot = 0;
638 1.89 ad swc->swc_nused = 0;
639 1.73 yamt }
640 1.73 yamt
641 1.73 yamt static int
642 1.73 yamt swapcluster_allocslots(struct swapcluster *swc)
643 1.73 yamt {
644 1.73 yamt int slot;
645 1.73 yamt int npages;
646 1.73 yamt
647 1.73 yamt if (swc->swc_slot != 0) {
648 1.73 yamt return 0;
649 1.73 yamt }
650 1.73 yamt
651 1.73 yamt /* Even with strange MAXPHYS, the shift
652 1.73 yamt implicitly rounds down to a page. */
653 1.73 yamt npages = MAXPHYS >> PAGE_SHIFT;
654 1.84 thorpej slot = uvm_swap_alloc(&npages, true);
655 1.73 yamt if (slot == 0) {
656 1.73 yamt return ENOMEM;
657 1.73 yamt }
658 1.73 yamt swc->swc_slot = slot;
659 1.73 yamt swc->swc_nallocated = npages;
660 1.73 yamt swc->swc_nused = 0;
661 1.73 yamt
662 1.73 yamt return 0;
663 1.73 yamt }
664 1.73 yamt
665 1.73 yamt static int
666 1.73 yamt swapcluster_add(struct swapcluster *swc, struct vm_page *pg)
667 1.73 yamt {
668 1.73 yamt int slot;
669 1.73 yamt struct uvm_object *uobj;
670 1.73 yamt
671 1.73 yamt KASSERT(swc->swc_slot != 0);
672 1.73 yamt KASSERT(swc->swc_nused < swc->swc_nallocated);
673 1.73 yamt KASSERT((pg->pqflags & PQ_SWAPBACKED) != 0);
674 1.73 yamt
675 1.73 yamt slot = swc->swc_slot + swc->swc_nused;
676 1.73 yamt uobj = pg->uobject;
677 1.73 yamt if (uobj == NULL) {
678 1.89 ad KASSERT(mutex_owned(&pg->uanon->an_lock));
679 1.73 yamt pg->uanon->an_swslot = slot;
680 1.73 yamt } else {
681 1.73 yamt int result;
682 1.73 yamt
683 1.89 ad KASSERT(mutex_owned(&uobj->vmobjlock));
684 1.73 yamt result = uao_set_swslot(uobj, pg->offset >> PAGE_SHIFT, slot);
685 1.73 yamt if (result == -1) {
686 1.73 yamt return ENOMEM;
687 1.73 yamt }
688 1.73 yamt }
689 1.73 yamt swc->swc_pages[swc->swc_nused] = pg;
690 1.73 yamt swc->swc_nused++;
691 1.73 yamt
692 1.73 yamt return 0;
693 1.73 yamt }
694 1.73 yamt
695 1.73 yamt static void
696 1.93.4.2.4.3 matt swapcluster_flush(struct uvm_pggroup *grp, struct swapcluster *swc, bool now)
697 1.73 yamt {
698 1.73 yamt int slot;
699 1.93.4.2.4.3 matt u_int nused;
700 1.73 yamt int nallocated;
701 1.73 yamt int error;
702 1.73 yamt
703 1.73 yamt if (swc->swc_slot == 0) {
704 1.73 yamt return;
705 1.73 yamt }
706 1.73 yamt KASSERT(swc->swc_nused <= swc->swc_nallocated);
707 1.73 yamt
708 1.73 yamt slot = swc->swc_slot;
709 1.73 yamt nused = swc->swc_nused;
710 1.73 yamt nallocated = swc->swc_nallocated;
711 1.73 yamt
712 1.73 yamt /*
713 1.73 yamt * if this is the final pageout we could have a few
714 1.73 yamt * unused swap blocks. if so, free them now.
715 1.73 yamt */
716 1.73 yamt
717 1.73 yamt if (nused < nallocated) {
718 1.73 yamt if (!now) {
719 1.73 yamt return;
720 1.73 yamt }
721 1.73 yamt uvm_swap_free(slot + nused, nallocated - nused);
722 1.73 yamt }
723 1.73 yamt
724 1.73 yamt /*
725 1.73 yamt * now start the pageout.
726 1.73 yamt */
727 1.73 yamt
728 1.91 yamt if (nused > 0) {
729 1.93.4.2.4.3 matt grp->pgrp_pdpageouts++;
730 1.93.4.2.4.3 matt uvmexp.pdpageouts++; /* procfs */
731 1.93.4.2.4.3 matt uvm_pageout_start(grp, nused);
732 1.91 yamt error = uvm_swap_put(slot, swc->swc_pages, nused, 0);
733 1.92 yamt KASSERT(error == 0 || error == ENOMEM);
734 1.91 yamt }
735 1.73 yamt
736 1.73 yamt /*
737 1.73 yamt * zero swslot to indicate that we are
738 1.73 yamt * no longer building a swap-backed cluster.
739 1.73 yamt */
740 1.73 yamt
741 1.73 yamt swc->swc_slot = 0;
742 1.89 ad swc->swc_nused = 0;
743 1.89 ad }
744 1.89 ad
745 1.89 ad static int
746 1.89 ad swapcluster_nused(struct swapcluster *swc)
747 1.89 ad {
748 1.89 ad
749 1.89 ad return swc->swc_nused;
750 1.73 yamt }
751 1.77 yamt
752 1.77 yamt /*
753 1.77 yamt * uvmpd_dropswap: free any swap allocated to this page.
754 1.77 yamt *
755 1.77 yamt * => called with owner locked.
756 1.84 thorpej * => return true if a page had an associated slot.
757 1.77 yamt */
758 1.77 yamt
759 1.83 thorpej static bool
760 1.77 yamt uvmpd_dropswap(struct vm_page *pg)
761 1.77 yamt {
762 1.84 thorpej bool result = false;
763 1.77 yamt struct vm_anon *anon = pg->uanon;
764 1.77 yamt
765 1.77 yamt if ((pg->pqflags & PQ_ANON) && anon->an_swslot) {
766 1.77 yamt uvm_swap_free(anon->an_swslot, 1);
767 1.77 yamt anon->an_swslot = 0;
768 1.77 yamt pg->flags &= ~PG_CLEAN;
769 1.84 thorpej result = true;
770 1.77 yamt } else if (pg->pqflags & PQ_AOBJ) {
771 1.77 yamt int slot = uao_set_swslot(pg->uobject,
772 1.77 yamt pg->offset >> PAGE_SHIFT, 0);
773 1.77 yamt if (slot) {
774 1.77 yamt uvm_swap_free(slot, 1);
775 1.77 yamt pg->flags &= ~PG_CLEAN;
776 1.84 thorpej result = true;
777 1.77 yamt }
778 1.77 yamt }
779 1.77 yamt
780 1.77 yamt return result;
781 1.77 yamt }
782 1.77 yamt
783 1.77 yamt /*
784 1.77 yamt * uvmpd_trydropswap: try to free any swap allocated to this page.
785 1.77 yamt *
786 1.84 thorpej * => return true if a slot is successfully freed.
787 1.77 yamt */
788 1.77 yamt
789 1.83 thorpej bool
790 1.77 yamt uvmpd_trydropswap(struct vm_page *pg)
791 1.77 yamt {
792 1.89 ad kmutex_t *slock;
793 1.83 thorpej bool result;
794 1.77 yamt
795 1.77 yamt if ((pg->flags & PG_BUSY) != 0) {
796 1.84 thorpej return false;
797 1.77 yamt }
798 1.77 yamt
799 1.77 yamt /*
800 1.77 yamt * lock the page's owner.
801 1.77 yamt */
802 1.77 yamt
803 1.77 yamt slock = uvmpd_trylockowner(pg);
804 1.77 yamt if (slock == NULL) {
805 1.84 thorpej return false;
806 1.77 yamt }
807 1.77 yamt
808 1.77 yamt /*
809 1.77 yamt * skip this page if it's busy.
810 1.77 yamt */
811 1.77 yamt
812 1.77 yamt if ((pg->flags & PG_BUSY) != 0) {
813 1.89 ad mutex_exit(slock);
814 1.84 thorpej return false;
815 1.77 yamt }
816 1.77 yamt
817 1.77 yamt result = uvmpd_dropswap(pg);
818 1.77 yamt
819 1.89 ad mutex_exit(slock);
820 1.77 yamt
821 1.77 yamt return result;
822 1.77 yamt }
823 1.77 yamt
824 1.73 yamt #endif /* defined(VMSWAP) */
825 1.73 yamt
826 1.1 mrg /*
827 1.77 yamt * uvmpd_scan_queue: scan an replace candidate list for pages
828 1.77 yamt * to clean or free.
829 1.1 mrg *
830 1.1 mrg * => called with page queues locked
831 1.1 mrg * => we work on meeting our free target by converting inactive pages
832 1.1 mrg * into free pages.
833 1.1 mrg * => we handle the building of swap-backed clusters
834 1.1 mrg */
835 1.1 mrg
836 1.65 thorpej static void
837 1.93.4.2.4.3 matt uvmpd_scan_queue(struct uvm_pggroup *grp)
838 1.8 mrg {
839 1.93.4.2.4.3 matt struct vm_page *pg;
840 1.8 mrg struct uvm_object *uobj;
841 1.37 chs struct vm_anon *anon;
842 1.68 yamt #if defined(VMSWAP)
843 1.73 yamt struct swapcluster swc;
844 1.68 yamt #endif /* defined(VMSWAP) */
845 1.77 yamt int dirtyreacts;
846 1.89 ad int lockownerfail;
847 1.89 ad kmutex_t *slock;
848 1.77 yamt UVMHIST_FUNC("uvmpd_scan_queue"); UVMHIST_CALLED(pdhist);
849 1.1 mrg
850 1.8 mrg /*
851 1.8 mrg * swslot is non-zero if we are building a swap cluster. we want
852 1.24 chs * to stay in the loop while we have a page to scan or we have
853 1.8 mrg * a swap-cluster to build.
854 1.8 mrg */
855 1.24 chs
856 1.73 yamt #if defined(VMSWAP)
857 1.73 yamt swapcluster_init(&swc);
858 1.73 yamt #endif /* defined(VMSWAP) */
859 1.77 yamt
860 1.14 chs dirtyreacts = 0;
861 1.89 ad lockownerfail = 0;
862 1.93.4.2.4.3 matt uvmpdpol_scaninit(grp);
863 1.43 chs
864 1.77 yamt while (/* CONSTCOND */ 1) {
865 1.24 chs
866 1.73 yamt /*
867 1.73 yamt * see if we've met the free target.
868 1.73 yamt */
869 1.73 yamt
870 1.93.4.2.4.3 matt if (grp->pgrp_free + grp->pgrp_paging
871 1.89 ad #if defined(VMSWAP)
872 1.89 ad + swapcluster_nused(&swc)
873 1.89 ad #endif /* defined(VMSWAP) */
874 1.93.4.2.4.3 matt >= grp->pgrp_freetarg << 2 ||
875 1.73 yamt dirtyreacts == UVMPD_NUMDIRTYREACTS) {
876 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist," [%zd]: met free target (%u + %u >= %u): "
877 1.93.4.2.4.3 matt "exit loop", grp - uvm.pggroups,
878 1.93.4.2.4.3 matt grp->pgrp_free, grp->pgrp_paging,
879 1.93.4.2.4.3 matt grp->pgrp_freetarg << 2);
880 1.73 yamt break;
881 1.73 yamt }
882 1.24 chs
883 1.93.4.2.4.3 matt pg = uvmpdpol_selectvictim(grp);
884 1.93.4.2.4.3 matt if (pg == NULL) {
885 1.93.4.2.4.3 matt UVMHIST_LOG(pdhist," [%zd]: selectvictim didn't: "
886 1.93.4.2.4.3 matt "exit loop", grp - uvm.pggroups, 0, 0, 0);
887 1.77 yamt break;
888 1.77 yamt }
889 1.93.4.2.4.3 matt KASSERT(uvmpdpol_pageisqueued_p(pg));
890 1.93.4.2.4.3 matt KASSERT(pg->wire_count == 0);
891 1.77 yamt
892 1.73 yamt /*
893 1.73 yamt * we are below target and have a new page to consider.
894 1.73 yamt */
895 1.30 chs
896 1.93.4.2.4.3 matt anon = pg->uanon;
897 1.93.4.2.4.3 matt uobj = pg->uobject;
898 1.8 mrg
899 1.73 yamt /*
900 1.73 yamt * first we attempt to lock the object that this page
901 1.73 yamt * belongs to. if our attempt fails we skip on to
902 1.73 yamt * the next page (no harm done). it is important to
903 1.73 yamt * "try" locking the object as we are locking in the
904 1.73 yamt * wrong order (pageq -> object) and we don't want to
905 1.73 yamt * deadlock.
906 1.73 yamt *
907 1.73 yamt * the only time we expect to see an ownerless page
908 1.73 yamt * (i.e. a page with no uobject and !PQ_ANON) is if an
909 1.73 yamt * anon has loaned a page from a uvm_object and the
910 1.73 yamt * uvm_object has dropped the ownership. in that
911 1.73 yamt * case, the anon can "take over" the loaned page
912 1.73 yamt * and make it its own.
913 1.73 yamt */
914 1.30 chs
915 1.93.4.2.4.3 matt slock = uvmpd_trylockowner(pg);
916 1.76 yamt if (slock == NULL) {
917 1.89 ad /*
918 1.89 ad * yield cpu to make a chance for an LWP holding
919 1.89 ad * the lock run. otherwise we can busy-loop too long
920 1.89 ad * if the page queue is filled with a lot of pages
921 1.89 ad * from few objects.
922 1.89 ad */
923 1.89 ad lockownerfail++;
924 1.89 ad if (lockownerfail > UVMPD_NUMTRYLOCKOWNER) {
925 1.89 ad mutex_exit(&uvm_pageqlock);
926 1.89 ad /* XXX Better than yielding but inadequate. */
927 1.89 ad kpause("livelock", false, 1, NULL);
928 1.89 ad mutex_enter(&uvm_pageqlock);
929 1.89 ad lockownerfail = 0;
930 1.89 ad }
931 1.76 yamt continue;
932 1.76 yamt }
933 1.93.4.2.4.3 matt if (pg->flags & PG_BUSY) {
934 1.89 ad mutex_exit(slock);
935 1.93.4.2.4.3 matt grp->pgrp_pdbusy++;
936 1.76 yamt continue;
937 1.76 yamt }
938 1.76 yamt
939 1.73 yamt /* does the page belong to an object? */
940 1.73 yamt if (uobj != NULL) {
941 1.93.4.2.4.3 matt grp->pgrp_pdobscan++;
942 1.73 yamt } else {
943 1.73 yamt #if defined(VMSWAP)
944 1.73 yamt KASSERT(anon != NULL);
945 1.93.4.2.4.3 matt grp->pgrp_pdanscan++;
946 1.68 yamt #else /* defined(VMSWAP) */
947 1.73 yamt panic("%s: anon", __func__);
948 1.68 yamt #endif /* defined(VMSWAP) */
949 1.73 yamt }
950 1.8 mrg
951 1.37 chs
952 1.73 yamt /*
953 1.73 yamt * we now have the object and the page queues locked.
954 1.73 yamt * if the page is not swap-backed, call the object's
955 1.73 yamt * pager to flush and free the page.
956 1.73 yamt */
957 1.37 chs
958 1.69 yamt #if defined(READAHEAD_STATS)
959 1.93.4.2.4.3 matt if ((pg->pqflags & PQ_READAHEAD) != 0) {
960 1.93.4.2.4.3 matt pg->pqflags &= ~PQ_READAHEAD;
961 1.73 yamt uvm_ra_miss.ev_count++;
962 1.73 yamt }
963 1.69 yamt #endif /* defined(READAHEAD_STATS) */
964 1.69 yamt
965 1.93.4.2.4.3 matt if ((pg->pqflags & PQ_SWAPBACKED) == 0) {
966 1.82 alc KASSERT(uobj != NULL);
967 1.89 ad mutex_exit(&uvm_pageqlock);
968 1.93.4.2.4.3 matt (void) (uobj->pgops->pgo_put)(uobj, pg->offset,
969 1.93.4.2.4.3 matt pg->offset + PAGE_SIZE, PGO_CLEANIT|PGO_FREE);
970 1.89 ad mutex_enter(&uvm_pageqlock);
971 1.73 yamt continue;
972 1.73 yamt }
973 1.37 chs
974 1.73 yamt /*
975 1.73 yamt * the page is swap-backed. remove all the permissions
976 1.73 yamt * from the page so we can sync the modified info
977 1.73 yamt * without any race conditions. if the page is clean
978 1.73 yamt * we can free it now and continue.
979 1.73 yamt */
980 1.8 mrg
981 1.93.4.2.4.3 matt pmap_page_protect(pg, VM_PROT_NONE);
982 1.93.4.2.4.3 matt if ((pg->flags & PG_CLEAN) && pmap_clear_modify(pg)) {
983 1.93.4.2.4.3 matt pg->flags &= ~(PG_CLEAN);
984 1.73 yamt }
985 1.93.4.2.4.3 matt if (pg->flags & PG_CLEAN) {
986 1.73 yamt int slot;
987 1.73 yamt int pageidx;
988 1.73 yamt
989 1.93.4.2.4.3 matt pageidx = pg->offset >> PAGE_SHIFT;
990 1.93.4.2.4.3 matt KASSERT(!uvmpdpol_pageisqueued_p(pg));
991 1.93.4.2.4.3 matt uvm_pagefree(pg);
992 1.93.4.2.4.3 matt grp->pgrp_pdfreed++;
993 1.8 mrg
994 1.8 mrg /*
995 1.73 yamt * for anons, we need to remove the page
996 1.73 yamt * from the anon ourselves. for aobjs,
997 1.73 yamt * pagefree did that for us.
998 1.8 mrg */
999 1.24 chs
1000 1.73 yamt if (anon) {
1001 1.73 yamt KASSERT(anon->an_swslot != 0);
1002 1.73 yamt anon->an_page = NULL;
1003 1.73 yamt slot = anon->an_swslot;
1004 1.73 yamt } else {
1005 1.73 yamt slot = uao_find_swslot(uobj, pageidx);
1006 1.8 mrg }
1007 1.89 ad mutex_exit(slock);
1008 1.8 mrg
1009 1.73 yamt if (slot > 0) {
1010 1.73 yamt /* this page is now only in swap. */
1011 1.87 ad mutex_enter(&uvm_swap_data_lock);
1012 1.73 yamt KASSERT(uvmexp.swpgonly < uvmexp.swpginuse);
1013 1.73 yamt uvmexp.swpgonly++;
1014 1.87 ad mutex_exit(&uvm_swap_data_lock);
1015 1.37 chs }
1016 1.73 yamt continue;
1017 1.73 yamt }
1018 1.37 chs
1019 1.77 yamt #if defined(VMSWAP)
1020 1.73 yamt /*
1021 1.73 yamt * this page is dirty, skip it if we'll have met our
1022 1.73 yamt * free target when all the current pageouts complete.
1023 1.73 yamt */
1024 1.24 chs
1025 1.93.4.2.4.3 matt if (grp->pgrp_free + grp->pgrp_paging > grp->pgrp_freetarg << 2) {
1026 1.89 ad mutex_exit(slock);
1027 1.73 yamt continue;
1028 1.73 yamt }
1029 1.14 chs
1030 1.73 yamt /*
1031 1.73 yamt * free any swap space allocated to the page since
1032 1.73 yamt * we'll have to write it again with its new data.
1033 1.73 yamt */
1034 1.24 chs
1035 1.93.4.2.4.3 matt uvmpd_dropswap(pg);
1036 1.14 chs
1037 1.73 yamt /*
1038 1.73 yamt * start new swap pageout cluster (if necessary).
1039 1.93.4.1 snj *
1040 1.93.4.1 snj * if swap is full reactivate this page so that
1041 1.93.4.1 snj * we eventually cycle all pages through the
1042 1.93.4.1 snj * inactive queue.
1043 1.8 mrg */
1044 1.24 chs
1045 1.73 yamt if (swapcluster_allocslots(&swc)) {
1046 1.93.4.1 snj dirtyreacts++;
1047 1.93.4.2.4.3 matt uvm_pageactivate(pg);
1048 1.89 ad mutex_exit(slock);
1049 1.73 yamt continue;
1050 1.8 mrg }
1051 1.8 mrg
1052 1.8 mrg /*
1053 1.73 yamt * at this point, we're definitely going reuse this
1054 1.73 yamt * page. mark the page busy and delayed-free.
1055 1.73 yamt * we should remove the page from the page queues
1056 1.73 yamt * so we don't ever look at it again.
1057 1.73 yamt * adjust counters and such.
1058 1.8 mrg */
1059 1.8 mrg
1060 1.93.4.2.4.3 matt pg->flags |= PG_BUSY;
1061 1.93.4.2.4.3 matt UVM_PAGE_OWN(pg, "scan_queue");
1062 1.73 yamt
1063 1.93.4.2.4.3 matt pg->flags |= PG_PAGEOUT;
1064 1.93.4.2.4.3 matt uvm_pagedequeue(pg);
1065 1.73 yamt
1066 1.93.4.2.4.3 matt grp->pgrp_pgswapout++;
1067 1.89 ad mutex_exit(&uvm_pageqlock);
1068 1.8 mrg
1069 1.8 mrg /*
1070 1.73 yamt * add the new page to the cluster.
1071 1.8 mrg */
1072 1.8 mrg
1073 1.93.4.2.4.3 matt if (swapcluster_add(&swc, pg)) {
1074 1.93.4.2.4.3 matt pg->flags &= ~(PG_BUSY|PG_PAGEOUT);
1075 1.93.4.2.4.3 matt UVM_PAGE_OWN(pg, NULL);
1076 1.89 ad mutex_enter(&uvm_pageqlock);
1077 1.77 yamt dirtyreacts++;
1078 1.93.4.2.4.3 matt uvm_pageactivate(pg);
1079 1.89 ad mutex_exit(slock);
1080 1.73 yamt continue;
1081 1.73 yamt }
1082 1.89 ad mutex_exit(slock);
1083 1.73 yamt
1084 1.93.4.2.4.3 matt swapcluster_flush(grp, &swc, false);
1085 1.89 ad mutex_enter(&uvm_pageqlock);
1086 1.73 yamt
1087 1.8 mrg /*
1088 1.31 chs * the pageout is in progress. bump counters and set up
1089 1.31 chs * for the next loop.
1090 1.8 mrg */
1091 1.8 mrg
1092 1.31 chs uvmexp.pdpending++;
1093 1.77 yamt #else /* defined(VMSWAP) */
1094 1.93.4.2.4.3 matt uvm_pageactivate(pg);
1095 1.89 ad mutex_exit(slock);
1096 1.77 yamt #endif /* defined(VMSWAP) */
1097 1.73 yamt }
1098 1.73 yamt
1099 1.73 yamt #if defined(VMSWAP)
1100 1.89 ad mutex_exit(&uvm_pageqlock);
1101 1.93.4.2.4.3 matt swapcluster_flush(grp, &swc, true);
1102 1.89 ad mutex_enter(&uvm_pageqlock);
1103 1.68 yamt #endif /* defined(VMSWAP) */
1104 1.1 mrg }
1105 1.1 mrg
1106 1.1 mrg /*
1107 1.1 mrg * uvmpd_scan: scan the page queues and attempt to meet our targets.
1108 1.1 mrg *
1109 1.1 mrg * => called with pageq's locked
1110 1.1 mrg */
1111 1.1 mrg
1112 1.65 thorpej static void
1113 1.93.4.2.4.3 matt uvmpd_scan(struct uvm_pggroup *grp)
1114 1.1 mrg {
1115 1.93.4.2.4.3 matt u_int swap_shortage, pages_freed;
1116 1.8 mrg UVMHIST_FUNC("uvmpd_scan"); UVMHIST_CALLED(pdhist);
1117 1.1 mrg
1118 1.93.4.2.4.3 matt grp->pgrp_pdrevs++;
1119 1.1 mrg
1120 1.8 mrg /*
1121 1.93 ad * work on meeting our targets. first we work on our free target
1122 1.93 ad * by converting inactive pages into free pages. then we work on
1123 1.93 ad * meeting our inactive target by converting active pages to
1124 1.93 ad * inactive ones.
1125 1.8 mrg */
1126 1.8 mrg
1127 1.8 mrg UVMHIST_LOG(pdhist, " starting 'free' loop",0,0,0,0);
1128 1.8 mrg
1129 1.93.4.2.4.3 matt pages_freed = grp->pgrp_pdfreed;
1130 1.93.4.2.4.3 matt uvmpd_scan_queue(grp);
1131 1.93.4.2.4.3 matt pages_freed = grp->pgrp_pdfreed - pages_freed;
1132 1.8 mrg
1133 1.8 mrg /*
1134 1.14 chs * detect if we're not going to be able to page anything out
1135 1.14 chs * until we free some swap resources from active pages.
1136 1.14 chs */
1137 1.24 chs
1138 1.14 chs swap_shortage = 0;
1139 1.93.4.2.4.3 matt if (grp->pgrp_free < grp->pgrp_freetarg &&
1140 1.52 pk uvmexp.swpginuse >= uvmexp.swpgavail &&
1141 1.52 pk !uvm_swapisfull() &&
1142 1.14 chs pages_freed == 0) {
1143 1.93.4.2.4.3 matt swap_shortage = grp->pgrp_freetarg - grp->pgrp_free;
1144 1.14 chs }
1145 1.24 chs
1146 1.93.4.2.4.3 matt uvmpdpol_balancequeue(grp, swap_shortage);
1147 1.93 ad
1148 1.93 ad /*
1149 1.93 ad * swap out some processes if we are still below the minimum
1150 1.93 ad * free target. we need to unlock the page queues for this.
1151 1.93 ad */
1152 1.93 ad
1153 1.93.4.2.4.3 matt if (grp->pgrp_free < grp->pgrp_freemin
1154 1.93.4.2.4.3 matt && uvmexp.nswapdev != 0 && uvm.swapout_enabled) {
1155 1.93.4.2.4.3 matt grp->pgrp_pdswout++;
1156 1.93 ad UVMHIST_LOG(pdhist," free %d < min %d: swapout",
1157 1.93 ad uvmexp.free, uvmexp.freemin, 0, 0);
1158 1.93 ad mutex_exit(&uvm_pageqlock);
1159 1.93 ad uvm_swapout_threads();
1160 1.93 ad mutex_enter(&uvm_pageqlock);
1161 1.93 ad
1162 1.93 ad }
1163 1.1 mrg }
1164 1.62 yamt
1165 1.62 yamt /*
1166 1.62 yamt * uvm_reclaimable: decide whether to wait for pagedaemon.
1167 1.62 yamt *
1168 1.84 thorpej * => return true if it seems to be worth to do uvm_wait.
1169 1.62 yamt *
1170 1.62 yamt * XXX should be tunable.
1171 1.62 yamt * XXX should consider pools, etc?
1172 1.62 yamt */
1173 1.62 yamt
1174 1.83 thorpej bool
1175 1.62 yamt uvm_reclaimable(void)
1176 1.62 yamt {
1177 1.62 yamt int filepages;
1178 1.77 yamt int active, inactive;
1179 1.62 yamt
1180 1.62 yamt /*
1181 1.62 yamt * if swap is not full, no problem.
1182 1.62 yamt */
1183 1.62 yamt
1184 1.62 yamt if (!uvm_swapisfull()) {
1185 1.84 thorpej return true;
1186 1.62 yamt }
1187 1.62 yamt
1188 1.62 yamt /*
1189 1.62 yamt * file-backed pages can be reclaimed even when swap is full.
1190 1.62 yamt * if we have more than 1/16 of pageable memory or 5MB, try to reclaim.
1191 1.62 yamt *
1192 1.62 yamt * XXX assume the worst case, ie. all wired pages are file-backed.
1193 1.63 yamt *
1194 1.63 yamt * XXX should consider about other reclaimable memory.
1195 1.63 yamt * XXX ie. pools, traditional buffer cache.
1196 1.62 yamt */
1197 1.62 yamt
1198 1.62 yamt filepages = uvmexp.filepages + uvmexp.execpages - uvmexp.wired;
1199 1.77 yamt uvm_estimatepageable(&active, &inactive);
1200 1.77 yamt if (filepages >= MIN((active + inactive) >> 4,
1201 1.62 yamt 5 * 1024 * 1024 >> PAGE_SHIFT)) {
1202 1.84 thorpej return true;
1203 1.62 yamt }
1204 1.62 yamt
1205 1.62 yamt /*
1206 1.62 yamt * kill the process, fail allocation, etc..
1207 1.62 yamt */
1208 1.62 yamt
1209 1.84 thorpej return false;
1210 1.62 yamt }
1211 1.77 yamt
1212 1.77 yamt void
1213 1.93.4.2.4.3 matt uvm_estimatepageable(u_int *active, u_int *inactive)
1214 1.77 yamt {
1215 1.77 yamt
1216 1.77 yamt uvmpdpol_estimatepageable(active, inactive);
1217 1.77 yamt }
1218