kern_resource.c revision 1.60.2.1 1 1.60.2.1 nathanw /* $NetBSD: kern_resource.c,v 1.60.2.1 2001/03/05 22:49:41 nathanw Exp $ */
2 1.20 cgd
3 1.17 cgd /*-
4 1.19 cgd * Copyright (c) 1982, 1986, 1991, 1993
5 1.19 cgd * The Regents of the University of California. All rights reserved.
6 1.17 cgd * (c) UNIX System Laboratories, Inc.
7 1.17 cgd * All or some portions of this file are derived from material licensed
8 1.17 cgd * to the University of California by American Telephone and Telegraph
9 1.17 cgd * Co. or Unix System Laboratories, Inc. and are reproduced herein with
10 1.17 cgd * the permission of UNIX System Laboratories, Inc.
11 1.17 cgd *
12 1.17 cgd * Redistribution and use in source and binary forms, with or without
13 1.17 cgd * modification, are permitted provided that the following conditions
14 1.17 cgd * are met:
15 1.17 cgd * 1. Redistributions of source code must retain the above copyright
16 1.17 cgd * notice, this list of conditions and the following disclaimer.
17 1.17 cgd * 2. Redistributions in binary form must reproduce the above copyright
18 1.17 cgd * notice, this list of conditions and the following disclaimer in the
19 1.17 cgd * documentation and/or other materials provided with the distribution.
20 1.17 cgd * 3. All advertising materials mentioning features or use of this software
21 1.17 cgd * must display the following acknowledgement:
22 1.17 cgd * This product includes software developed by the University of
23 1.17 cgd * California, Berkeley and its contributors.
24 1.17 cgd * 4. Neither the name of the University nor the names of its contributors
25 1.17 cgd * may be used to endorse or promote products derived from this software
26 1.17 cgd * without specific prior written permission.
27 1.17 cgd *
28 1.17 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
29 1.17 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
30 1.17 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
31 1.17 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
32 1.17 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
33 1.17 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
34 1.17 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
35 1.17 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
36 1.17 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
37 1.17 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
38 1.17 cgd * SUCH DAMAGE.
39 1.17 cgd *
40 1.45 fvdl * @(#)kern_resource.c 8.8 (Berkeley) 2/14/95
41 1.17 cgd */
42 1.44 mrg
43 1.17 cgd #include <sys/param.h>
44 1.22 cgd #include <sys/systm.h>
45 1.17 cgd #include <sys/kernel.h>
46 1.19 cgd #include <sys/file.h>
47 1.17 cgd #include <sys/resourcevar.h>
48 1.17 cgd #include <sys/malloc.h>
49 1.49 thorpej #include <sys/pool.h>
50 1.60.2.1 nathanw #include <sys/lwp.h>
51 1.17 cgd #include <sys/proc.h>
52 1.17 cgd
53 1.22 cgd #include <sys/mount.h>
54 1.22 cgd #include <sys/syscallargs.h>
55 1.17 cgd
56 1.43 mrg #include <uvm/uvm_extern.h>
57 1.43 mrg
58 1.17 cgd /*
59 1.60 eeh * Maximum process data and stack limits.
60 1.60 eeh * They are variables so they are patchable.
61 1.60 eeh *
62 1.60 eeh * XXXX Do we really need them to be patchable?
63 1.60 eeh */
64 1.60 eeh rlim_t maxdmap = MAXDSIZ;
65 1.60 eeh rlim_t maxsmap = MAXSSIZ;
66 1.60 eeh
67 1.60 eeh /*
68 1.17 cgd * Resource controls and accounting.
69 1.17 cgd */
70 1.17 cgd
71 1.25 cgd int
72 1.60.2.1 nathanw sys_getpriority(l, v, retval)
73 1.60.2.1 nathanw struct lwp *l;
74 1.30 thorpej void *v;
75 1.30 thorpej register_t *retval;
76 1.30 thorpej {
77 1.54 augustss struct sys_getpriority_args /* {
78 1.22 cgd syscallarg(int) which;
79 1.22 cgd syscallarg(int) who;
80 1.30 thorpej } */ *uap = v;
81 1.60.2.1 nathanw struct proc *curp = l->l_proc, *p;
82 1.54 augustss int low = NZERO + PRIO_MAX + 1;
83 1.17 cgd
84 1.22 cgd switch (SCARG(uap, which)) {
85 1.17 cgd
86 1.17 cgd case PRIO_PROCESS:
87 1.22 cgd if (SCARG(uap, who) == 0)
88 1.17 cgd p = curp;
89 1.17 cgd else
90 1.22 cgd p = pfind(SCARG(uap, who));
91 1.17 cgd if (p == 0)
92 1.17 cgd break;
93 1.17 cgd low = p->p_nice;
94 1.17 cgd break;
95 1.17 cgd
96 1.17 cgd case PRIO_PGRP: {
97 1.54 augustss struct pgrp *pg;
98 1.17 cgd
99 1.22 cgd if (SCARG(uap, who) == 0)
100 1.17 cgd pg = curp->p_pgrp;
101 1.22 cgd else if ((pg = pgfind(SCARG(uap, who))) == NULL)
102 1.17 cgd break;
103 1.45 fvdl for (p = pg->pg_members.lh_first; p != 0;
104 1.45 fvdl p = p->p_pglist.le_next) {
105 1.17 cgd if (p->p_nice < low)
106 1.17 cgd low = p->p_nice;
107 1.17 cgd }
108 1.17 cgd break;
109 1.17 cgd }
110 1.17 cgd
111 1.17 cgd case PRIO_USER:
112 1.22 cgd if (SCARG(uap, who) == 0)
113 1.22 cgd SCARG(uap, who) = curp->p_ucred->cr_uid;
114 1.52 thorpej proclist_lock_read();
115 1.21 mycroft for (p = allproc.lh_first; p != 0; p = p->p_list.le_next)
116 1.22 cgd if (p->p_ucred->cr_uid == SCARG(uap, who) &&
117 1.22 cgd p->p_nice < low)
118 1.17 cgd low = p->p_nice;
119 1.51 thorpej proclist_unlock_read();
120 1.17 cgd break;
121 1.17 cgd
122 1.17 cgd default:
123 1.17 cgd return (EINVAL);
124 1.17 cgd }
125 1.37 ws if (low == NZERO + PRIO_MAX + 1)
126 1.17 cgd return (ESRCH);
127 1.37 ws *retval = low - NZERO;
128 1.17 cgd return (0);
129 1.17 cgd }
130 1.17 cgd
131 1.17 cgd /* ARGSUSED */
132 1.25 cgd int
133 1.60.2.1 nathanw sys_setpriority(l, v, retval)
134 1.60.2.1 nathanw struct lwp *l;
135 1.30 thorpej void *v;
136 1.30 thorpej register_t *retval;
137 1.30 thorpej {
138 1.54 augustss struct sys_setpriority_args /* {
139 1.22 cgd syscallarg(int) which;
140 1.22 cgd syscallarg(int) who;
141 1.22 cgd syscallarg(int) prio;
142 1.30 thorpej } */ *uap = v;
143 1.60.2.1 nathanw struct proc *curp = l->l_proc, *p;
144 1.17 cgd int found = 0, error = 0;
145 1.17 cgd
146 1.22 cgd switch (SCARG(uap, which)) {
147 1.17 cgd
148 1.17 cgd case PRIO_PROCESS:
149 1.22 cgd if (SCARG(uap, who) == 0)
150 1.17 cgd p = curp;
151 1.17 cgd else
152 1.22 cgd p = pfind(SCARG(uap, who));
153 1.17 cgd if (p == 0)
154 1.17 cgd break;
155 1.22 cgd error = donice(curp, p, SCARG(uap, prio));
156 1.17 cgd found++;
157 1.17 cgd break;
158 1.17 cgd
159 1.17 cgd case PRIO_PGRP: {
160 1.54 augustss struct pgrp *pg;
161 1.17 cgd
162 1.22 cgd if (SCARG(uap, who) == 0)
163 1.17 cgd pg = curp->p_pgrp;
164 1.22 cgd else if ((pg = pgfind(SCARG(uap, who))) == NULL)
165 1.17 cgd break;
166 1.22 cgd for (p = pg->pg_members.lh_first; p != 0;
167 1.22 cgd p = p->p_pglist.le_next) {
168 1.22 cgd error = donice(curp, p, SCARG(uap, prio));
169 1.17 cgd found++;
170 1.17 cgd }
171 1.17 cgd break;
172 1.17 cgd }
173 1.17 cgd
174 1.17 cgd case PRIO_USER:
175 1.22 cgd if (SCARG(uap, who) == 0)
176 1.22 cgd SCARG(uap, who) = curp->p_ucred->cr_uid;
177 1.52 thorpej proclist_lock_read();
178 1.21 mycroft for (p = allproc.lh_first; p != 0; p = p->p_list.le_next)
179 1.22 cgd if (p->p_ucred->cr_uid == SCARG(uap, who)) {
180 1.22 cgd error = donice(curp, p, SCARG(uap, prio));
181 1.17 cgd found++;
182 1.17 cgd }
183 1.51 thorpej proclist_unlock_read();
184 1.17 cgd break;
185 1.17 cgd
186 1.17 cgd default:
187 1.17 cgd return (EINVAL);
188 1.17 cgd }
189 1.17 cgd if (found == 0)
190 1.17 cgd return (ESRCH);
191 1.17 cgd return (error);
192 1.17 cgd }
193 1.17 cgd
194 1.25 cgd int
195 1.17 cgd donice(curp, chgp, n)
196 1.54 augustss struct proc *curp, *chgp;
197 1.54 augustss int n;
198 1.17 cgd {
199 1.54 augustss struct pcred *pcred = curp->p_cred;
200 1.59 thorpej int s;
201 1.17 cgd
202 1.17 cgd if (pcred->pc_ucred->cr_uid && pcred->p_ruid &&
203 1.17 cgd pcred->pc_ucred->cr_uid != chgp->p_ucred->cr_uid &&
204 1.17 cgd pcred->p_ruid != chgp->p_ucred->cr_uid)
205 1.17 cgd return (EPERM);
206 1.17 cgd if (n > PRIO_MAX)
207 1.17 cgd n = PRIO_MAX;
208 1.17 cgd if (n < PRIO_MIN)
209 1.17 cgd n = PRIO_MIN;
210 1.37 ws n += NZERO;
211 1.17 cgd if (n < chgp->p_nice && suser(pcred->pc_ucred, &curp->p_acflag))
212 1.17 cgd return (EACCES);
213 1.17 cgd chgp->p_nice = n;
214 1.59 thorpej SCHED_LOCK(s);
215 1.60.2.1 nathanw (void)resetprocpriority(chgp);
216 1.59 thorpej SCHED_UNLOCK(s);
217 1.17 cgd return (0);
218 1.17 cgd }
219 1.17 cgd
220 1.17 cgd /* ARGSUSED */
221 1.25 cgd int
222 1.60.2.1 nathanw sys_setrlimit(l, v, retval)
223 1.60.2.1 nathanw struct lwp *l;
224 1.30 thorpej void *v;
225 1.30 thorpej register_t *retval;
226 1.30 thorpej {
227 1.54 augustss struct sys_setrlimit_args /* {
228 1.42 mycroft syscallarg(int) which;
229 1.39 cgd syscallarg(const struct rlimit *) rlp;
230 1.30 thorpej } */ *uap = v;
231 1.60.2.1 nathanw struct proc *p = l->l_proc;
232 1.42 mycroft int which = SCARG(uap, which);
233 1.19 cgd struct rlimit alim;
234 1.17 cgd int error;
235 1.17 cgd
236 1.46 perry error = copyin(SCARG(uap, rlp), &alim, sizeof(struct rlimit));
237 1.33 christos if (error)
238 1.17 cgd return (error);
239 1.53 bouyer return (dosetrlimit(p, p->p_cred, which, &alim));
240 1.17 cgd }
241 1.17 cgd
242 1.17 cgd int
243 1.53 bouyer dosetrlimit(p, cred, which, limp)
244 1.17 cgd struct proc *p;
245 1.53 bouyer struct pcred *cred;
246 1.42 mycroft int which;
247 1.17 cgd struct rlimit *limp;
248 1.17 cgd {
249 1.54 augustss struct rlimit *alimp;
250 1.53 bouyer struct plimit *newplim;
251 1.17 cgd int error;
252 1.17 cgd
253 1.42 mycroft if ((u_int)which >= RLIM_NLIMITS)
254 1.17 cgd return (EINVAL);
255 1.38 matthias
256 1.38 matthias if (limp->rlim_cur < 0 || limp->rlim_max < 0)
257 1.38 matthias return (EINVAL);
258 1.38 matthias
259 1.17 cgd alimp = &p->p_rlimit[which];
260 1.53 bouyer /* if we don't change the value, no need to limcopy() */
261 1.53 bouyer if (limp->rlim_cur == alimp->rlim_cur &&
262 1.53 bouyer limp->rlim_max == alimp->rlim_max)
263 1.53 bouyer return 0;
264 1.53 bouyer
265 1.19 cgd if (limp->rlim_cur > alimp->rlim_max ||
266 1.17 cgd limp->rlim_max > alimp->rlim_max)
267 1.53 bouyer if ((error = suser(cred->pc_ucred, &p->p_acflag)) != 0)
268 1.17 cgd return (error);
269 1.17 cgd if (limp->rlim_cur > limp->rlim_max)
270 1.17 cgd limp->rlim_cur = limp->rlim_max;
271 1.17 cgd if (p->p_limit->p_refcnt > 1 &&
272 1.17 cgd (p->p_limit->p_lflags & PL_SHAREMOD) == 0) {
273 1.53 bouyer newplim = limcopy(p->p_limit);
274 1.53 bouyer limfree(p->p_limit);
275 1.53 bouyer p->p_limit = newplim;
276 1.17 cgd alimp = &p->p_rlimit[which];
277 1.17 cgd }
278 1.17 cgd
279 1.17 cgd switch (which) {
280 1.17 cgd
281 1.17 cgd case RLIMIT_DATA:
282 1.19 cgd if (limp->rlim_cur > maxdmap)
283 1.19 cgd limp->rlim_cur = maxdmap;
284 1.19 cgd if (limp->rlim_max > maxdmap)
285 1.19 cgd limp->rlim_max = maxdmap;
286 1.17 cgd break;
287 1.17 cgd
288 1.17 cgd case RLIMIT_STACK:
289 1.19 cgd if (limp->rlim_cur > maxsmap)
290 1.19 cgd limp->rlim_cur = maxsmap;
291 1.19 cgd if (limp->rlim_max > maxsmap)
292 1.19 cgd limp->rlim_max = maxsmap;
293 1.40 enami
294 1.17 cgd /*
295 1.40 enami * Stack is allocated to the max at exec time with
296 1.40 enami * only "rlim_cur" bytes accessible (In other words,
297 1.40 enami * allocates stack dividing two contiguous regions at
298 1.40 enami * "rlim_cur" bytes boundary).
299 1.40 enami *
300 1.40 enami * Since allocation is done in terms of page, roundup
301 1.40 enami * "rlim_cur" (otherwise, contiguous regions
302 1.40 enami * overlap). If stack limit is going up make more
303 1.40 enami * accessible, if going down make inaccessible.
304 1.17 cgd */
305 1.40 enami limp->rlim_cur = round_page(limp->rlim_cur);
306 1.17 cgd if (limp->rlim_cur != alimp->rlim_cur) {
307 1.48 eeh vaddr_t addr;
308 1.48 eeh vsize_t size;
309 1.17 cgd vm_prot_t prot;
310 1.17 cgd
311 1.17 cgd if (limp->rlim_cur > alimp->rlim_cur) {
312 1.17 cgd prot = VM_PROT_ALL;
313 1.17 cgd size = limp->rlim_cur - alimp->rlim_cur;
314 1.17 cgd addr = USRSTACK - limp->rlim_cur;
315 1.17 cgd } else {
316 1.17 cgd prot = VM_PROT_NONE;
317 1.17 cgd size = alimp->rlim_cur - limp->rlim_cur;
318 1.17 cgd addr = USRSTACK - alimp->rlim_cur;
319 1.17 cgd }
320 1.43 mrg (void) uvm_map_protect(&p->p_vmspace->vm_map,
321 1.43 mrg addr, addr+size, prot, FALSE);
322 1.17 cgd }
323 1.17 cgd break;
324 1.19 cgd
325 1.19 cgd case RLIMIT_NOFILE:
326 1.19 cgd if (limp->rlim_cur > maxfiles)
327 1.19 cgd limp->rlim_cur = maxfiles;
328 1.19 cgd if (limp->rlim_max > maxfiles)
329 1.19 cgd limp->rlim_max = maxfiles;
330 1.19 cgd break;
331 1.19 cgd
332 1.19 cgd case RLIMIT_NPROC:
333 1.19 cgd if (limp->rlim_cur > maxproc)
334 1.19 cgd limp->rlim_cur = maxproc;
335 1.19 cgd if (limp->rlim_max > maxproc)
336 1.19 cgd limp->rlim_max = maxproc;
337 1.19 cgd break;
338 1.17 cgd }
339 1.17 cgd *alimp = *limp;
340 1.17 cgd return (0);
341 1.17 cgd }
342 1.17 cgd
343 1.17 cgd /* ARGSUSED */
344 1.25 cgd int
345 1.60.2.1 nathanw sys_getrlimit(l, v, retval)
346 1.60.2.1 nathanw struct lwp *l;
347 1.30 thorpej void *v;
348 1.30 thorpej register_t *retval;
349 1.30 thorpej {
350 1.54 augustss struct sys_getrlimit_args /* {
351 1.42 mycroft syscallarg(int) which;
352 1.22 cgd syscallarg(struct rlimit *) rlp;
353 1.30 thorpej } */ *uap = v;
354 1.60.2.1 nathanw struct proc *p = l->l_proc;
355 1.42 mycroft int which = SCARG(uap, which);
356 1.17 cgd
357 1.42 mycroft if ((u_int)which >= RLIM_NLIMITS)
358 1.17 cgd return (EINVAL);
359 1.42 mycroft return (copyout(&p->p_rlimit[which], SCARG(uap, rlp),
360 1.46 perry sizeof(struct rlimit)));
361 1.17 cgd }
362 1.17 cgd
363 1.17 cgd /*
364 1.17 cgd * Transform the running time and tick information in proc p into user,
365 1.17 cgd * system, and interrupt time usage.
366 1.17 cgd */
367 1.25 cgd void
368 1.17 cgd calcru(p, up, sp, ip)
369 1.54 augustss struct proc *p;
370 1.54 augustss struct timeval *up;
371 1.54 augustss struct timeval *sp;
372 1.54 augustss struct timeval *ip;
373 1.17 cgd {
374 1.54 augustss u_quad_t u, st, ut, it, tot;
375 1.54 augustss long sec, usec;
376 1.54 augustss int s;
377 1.17 cgd struct timeval tv;
378 1.60.2.1 nathanw struct lwp *l;
379 1.17 cgd
380 1.17 cgd s = splstatclock();
381 1.17 cgd st = p->p_sticks;
382 1.17 cgd ut = p->p_uticks;
383 1.17 cgd it = p->p_iticks;
384 1.17 cgd splx(s);
385 1.17 cgd
386 1.17 cgd tot = st + ut + it;
387 1.17 cgd if (tot == 0) {
388 1.17 cgd up->tv_sec = up->tv_usec = 0;
389 1.17 cgd sp->tv_sec = sp->tv_usec = 0;
390 1.17 cgd if (ip != NULL)
391 1.17 cgd ip->tv_sec = ip->tv_usec = 0;
392 1.17 cgd return;
393 1.17 cgd }
394 1.17 cgd
395 1.17 cgd sec = p->p_rtime.tv_sec;
396 1.17 cgd usec = p->p_rtime.tv_usec;
397 1.60.2.1 nathanw for (l = LIST_FIRST(&p->p_lwps); l != NULL;
398 1.60.2.1 nathanw l = LIST_NEXT(l, l_sibling)) {
399 1.60.2.1 nathanw if (l->l_stat == LSONPROC) {
400 1.60.2.1 nathanw struct schedstate_percpu *spc;
401 1.60.2.1 nathanw
402 1.60.2.1 nathanw KDASSERT(l->l_cpu != NULL);
403 1.60.2.1 nathanw spc = &l->l_cpu->ci_schedstate;
404 1.60.2.1 nathanw
405 1.60.2.1 nathanw /*
406 1.60.2.1 nathanw * Adjust for the current time slice. This is
407 1.60.2.1 nathanw * actually fairly important since the error
408 1.60.2.1 nathanw * here is on the order of a time quantum,
409 1.60.2.1 nathanw * which is much greater than the sampling
410 1.60.2.1 nathanw * error.
411 1.60.2.1 nathanw */
412 1.60.2.1 nathanw microtime(&tv);
413 1.60.2.1 nathanw sec += tv.tv_sec - spc->spc_runtime.tv_sec;
414 1.60.2.1 nathanw usec += tv.tv_usec - spc->spc_runtime.tv_usec;
415 1.60.2.1 nathanw
416 1.60.2.1 nathanw break;
417 1.60.2.1 nathanw }
418 1.17 cgd }
419 1.35 jtc u = (u_quad_t) sec * 1000000 + usec;
420 1.17 cgd st = (u * st) / tot;
421 1.17 cgd sp->tv_sec = st / 1000000;
422 1.17 cgd sp->tv_usec = st % 1000000;
423 1.17 cgd ut = (u * ut) / tot;
424 1.17 cgd up->tv_sec = ut / 1000000;
425 1.17 cgd up->tv_usec = ut % 1000000;
426 1.17 cgd if (ip != NULL) {
427 1.17 cgd it = (u * it) / tot;
428 1.17 cgd ip->tv_sec = it / 1000000;
429 1.17 cgd ip->tv_usec = it % 1000000;
430 1.17 cgd }
431 1.17 cgd }
432 1.17 cgd
433 1.17 cgd /* ARGSUSED */
434 1.25 cgd int
435 1.60.2.1 nathanw sys_getrusage(l, v, retval)
436 1.60.2.1 nathanw struct lwp *l;
437 1.30 thorpej void *v;
438 1.30 thorpej register_t *retval;
439 1.30 thorpej {
440 1.54 augustss struct sys_getrusage_args /* {
441 1.22 cgd syscallarg(int) who;
442 1.22 cgd syscallarg(struct rusage *) rusage;
443 1.30 thorpej } */ *uap = v;
444 1.54 augustss struct rusage *rup;
445 1.60.2.1 nathanw struct proc *p = l->l_proc;
446 1.17 cgd
447 1.22 cgd switch (SCARG(uap, who)) {
448 1.17 cgd
449 1.19 cgd case RUSAGE_SELF:
450 1.17 cgd rup = &p->p_stats->p_ru;
451 1.17 cgd calcru(p, &rup->ru_utime, &rup->ru_stime, NULL);
452 1.17 cgd break;
453 1.17 cgd
454 1.17 cgd case RUSAGE_CHILDREN:
455 1.17 cgd rup = &p->p_stats->p_cru;
456 1.17 cgd break;
457 1.17 cgd
458 1.17 cgd default:
459 1.17 cgd return (EINVAL);
460 1.17 cgd }
461 1.46 perry return (copyout(rup, SCARG(uap, rusage), sizeof(struct rusage)));
462 1.17 cgd }
463 1.17 cgd
464 1.25 cgd void
465 1.17 cgd ruadd(ru, ru2)
466 1.54 augustss struct rusage *ru, *ru2;
467 1.17 cgd {
468 1.54 augustss long *ip, *ip2;
469 1.54 augustss int i;
470 1.17 cgd
471 1.27 mycroft timeradd(&ru->ru_utime, &ru2->ru_utime, &ru->ru_utime);
472 1.27 mycroft timeradd(&ru->ru_stime, &ru2->ru_stime, &ru->ru_stime);
473 1.17 cgd if (ru->ru_maxrss < ru2->ru_maxrss)
474 1.17 cgd ru->ru_maxrss = ru2->ru_maxrss;
475 1.17 cgd ip = &ru->ru_first; ip2 = &ru2->ru_first;
476 1.17 cgd for (i = &ru->ru_last - &ru->ru_first; i >= 0; i--)
477 1.17 cgd *ip++ += *ip2++;
478 1.17 cgd }
479 1.17 cgd
480 1.17 cgd /*
481 1.17 cgd * Make a copy of the plimit structure.
482 1.17 cgd * We share these structures copy-on-write after fork,
483 1.17 cgd * and copy when a limit is changed.
484 1.17 cgd */
485 1.17 cgd struct plimit *
486 1.17 cgd limcopy(lim)
487 1.17 cgd struct plimit *lim;
488 1.17 cgd {
489 1.54 augustss struct plimit *newlim;
490 1.17 cgd
491 1.49 thorpej newlim = pool_get(&plimit_pool, PR_WAITOK);
492 1.47 perry memcpy(newlim->pl_rlimit, lim->pl_rlimit,
493 1.17 cgd sizeof(struct rlimit) * RLIM_NLIMITS);
494 1.53 bouyer if (lim->pl_corename == defcorename) {
495 1.53 bouyer newlim->pl_corename = defcorename;
496 1.53 bouyer } else {
497 1.53 bouyer newlim->pl_corename = malloc(strlen(lim->pl_corename)+1,
498 1.53 bouyer M_TEMP, M_WAITOK);
499 1.53 bouyer strcpy(newlim->pl_corename, lim->pl_corename);
500 1.53 bouyer }
501 1.32 mycroft newlim->p_lflags = 0;
502 1.32 mycroft newlim->p_refcnt = 1;
503 1.32 mycroft return (newlim);
504 1.32 mycroft }
505 1.32 mycroft
506 1.32 mycroft void
507 1.32 mycroft limfree(lim)
508 1.32 mycroft struct plimit *lim;
509 1.32 mycroft {
510 1.32 mycroft
511 1.32 mycroft if (--lim->p_refcnt > 0)
512 1.32 mycroft return;
513 1.53 bouyer #ifdef DIAGNOSTIC
514 1.53 bouyer if (lim->p_refcnt < 0)
515 1.53 bouyer panic("limfree");
516 1.53 bouyer #endif
517 1.53 bouyer if (lim->pl_corename != defcorename)
518 1.53 bouyer free(lim->pl_corename, M_TEMP);
519 1.49 thorpej pool_put(&plimit_pool, lim);
520 1.60.2.1 nathanw }
521 1.60.2.1 nathanw
522 1.60.2.1 nathanw struct pstats *
523 1.60.2.1 nathanw pstatscopy(ps)
524 1.60.2.1 nathanw struct pstats *ps;
525 1.60.2.1 nathanw {
526 1.60.2.1 nathanw
527 1.60.2.1 nathanw struct pstats *newps;
528 1.60.2.1 nathanw
529 1.60.2.1 nathanw newps = pool_get(&pstats_pool, PR_WAITOK);
530 1.60.2.1 nathanw
531 1.60.2.1 nathanw memset(&newps->pstat_startzero, 0,
532 1.60.2.1 nathanw (unsigned) ((caddr_t)&newps->pstat_endzero -
533 1.60.2.1 nathanw (caddr_t)&newps->pstat_startzero));
534 1.60.2.1 nathanw memcpy(&newps->pstat_startcopy, &ps->pstat_startcopy,
535 1.60.2.1 nathanw ((caddr_t)&newps->pstat_endcopy -
536 1.60.2.1 nathanw (caddr_t)&newps->pstat_startcopy));
537 1.60.2.1 nathanw
538 1.60.2.1 nathanw return (newps);
539 1.60.2.1 nathanw
540 1.60.2.1 nathanw }
541 1.60.2.1 nathanw
542 1.60.2.1 nathanw void
543 1.60.2.1 nathanw pstatsfree(ps)
544 1.60.2.1 nathanw struct pstats *ps;
545 1.60.2.1 nathanw {
546 1.60.2.1 nathanw
547 1.60.2.1 nathanw pool_put(&pstats_pool, ps);
548 1.17 cgd }
549