uvm_glue.c revision 1.67 1 1.67 scw /* $NetBSD: uvm_glue.c,v 1.67 2003/10/13 20:43:03 scw Exp $ */
2 1.1 mrg
3 1.48 chs /*
4 1.1 mrg * Copyright (c) 1997 Charles D. Cranor and Washington University.
5 1.48 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 1.48 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_glue.c 8.6 (Berkeley) 1/5/94
42 1.4 mrg * from: Id: uvm_glue.c,v 1.1.2.8 1998/02/07 01:16:54 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 1.48 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 1.48 chs *
54 1.48 chs * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
55 1.48 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 1.48 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 1.55 lukem
69 1.55 lukem #include <sys/cdefs.h>
70 1.67 scw __KERNEL_RCSID(0, "$NetBSD: uvm_glue.c,v 1.67 2003/10/13 20:43:03 scw Exp $");
71 1.1 mrg
72 1.49 lukem #include "opt_kgdb.h"
73 1.59 yamt #include "opt_kstack.h"
74 1.49 lukem #include "opt_sysv.h"
75 1.5 mrg #include "opt_uvmhist.h"
76 1.5 mrg
77 1.1 mrg /*
78 1.1 mrg * uvm_glue.c: glue functions
79 1.1 mrg */
80 1.1 mrg
81 1.1 mrg #include <sys/param.h>
82 1.1 mrg #include <sys/systm.h>
83 1.1 mrg #include <sys/proc.h>
84 1.1 mrg #include <sys/resourcevar.h>
85 1.1 mrg #include <sys/buf.h>
86 1.1 mrg #include <sys/user.h>
87 1.1 mrg #ifdef SYSVSHM
88 1.1 mrg #include <sys/shm.h>
89 1.1 mrg #endif
90 1.1 mrg
91 1.1 mrg #include <uvm/uvm.h>
92 1.1 mrg
93 1.1 mrg #include <machine/cpu.h>
94 1.1 mrg
95 1.1 mrg /*
96 1.1 mrg * local prototypes
97 1.1 mrg */
98 1.1 mrg
99 1.62 thorpej static void uvm_swapout __P((struct lwp *));
100 1.1 mrg
101 1.60 chs #define UVM_NUAREA_MAX 16
102 1.60 chs void *uvm_uareas;
103 1.60 chs int uvm_nuarea;
104 1.62 thorpej struct simplelock uvm_uareas_slock = SIMPLELOCK_INITIALIZER;
105 1.60 chs
106 1.1 mrg /*
107 1.1 mrg * XXXCDC: do these really belong here?
108 1.1 mrg */
109 1.1 mrg
110 1.1 mrg int readbuffers = 0; /* allow KGDB to read kern buffer pool */
111 1.1 mrg /* XXX: see uvm_kernacc */
112 1.1 mrg
113 1.28 thorpej
114 1.28 thorpej /*
115 1.1 mrg * uvm_kernacc: can the kernel access a region of memory
116 1.1 mrg *
117 1.1 mrg * - called from malloc [DIAGNOSTIC], and /dev/kmem driver (mem.c)
118 1.1 mrg */
119 1.1 mrg
120 1.6 mrg boolean_t
121 1.6 mrg uvm_kernacc(addr, len, rw)
122 1.6 mrg caddr_t addr;
123 1.11 kleink size_t len;
124 1.11 kleink int rw;
125 1.6 mrg {
126 1.6 mrg boolean_t rv;
127 1.13 eeh vaddr_t saddr, eaddr;
128 1.6 mrg vm_prot_t prot = rw == B_READ ? VM_PROT_READ : VM_PROT_WRITE;
129 1.6 mrg
130 1.31 kleink saddr = trunc_page((vaddr_t)addr);
131 1.43 chs eaddr = round_page((vaddr_t)addr + len);
132 1.6 mrg vm_map_lock_read(kernel_map);
133 1.6 mrg rv = uvm_map_checkprot(kernel_map, saddr, eaddr, prot);
134 1.6 mrg vm_map_unlock_read(kernel_map);
135 1.6 mrg
136 1.6 mrg /*
137 1.6 mrg * XXX there are still some things (e.g. the buffer cache) that
138 1.6 mrg * are managed behind the VM system's back so even though an
139 1.6 mrg * address is accessible in the mind of the VM system, there may
140 1.6 mrg * not be physical pages where the VM thinks there is. This can
141 1.6 mrg * lead to bogus allocation of pages in the kernel address space
142 1.6 mrg * or worse, inconsistencies at the pmap level. We only worry
143 1.6 mrg * about the buffer cache for now.
144 1.6 mrg */
145 1.13 eeh if (!readbuffers && rv && (eaddr > (vaddr_t)buffers &&
146 1.13 eeh saddr < (vaddr_t)buffers + MAXBSIZE * nbuf))
147 1.6 mrg rv = FALSE;
148 1.6 mrg return(rv);
149 1.1 mrg }
150 1.1 mrg
151 1.1 mrg /*
152 1.1 mrg * uvm_useracc: can the user access it?
153 1.1 mrg *
154 1.1 mrg * - called from physio() and sys___sysctl().
155 1.1 mrg */
156 1.1 mrg
157 1.6 mrg boolean_t
158 1.6 mrg uvm_useracc(addr, len, rw)
159 1.6 mrg caddr_t addr;
160 1.11 kleink size_t len;
161 1.11 kleink int rw;
162 1.1 mrg {
163 1.50 chs struct vm_map *map;
164 1.6 mrg boolean_t rv;
165 1.6 mrg vm_prot_t prot = rw == B_READ ? VM_PROT_READ : VM_PROT_WRITE;
166 1.1 mrg
167 1.25 thorpej /* XXX curproc */
168 1.25 thorpej map = &curproc->p_vmspace->vm_map;
169 1.25 thorpej
170 1.25 thorpej vm_map_lock_read(map);
171 1.31 kleink rv = uvm_map_checkprot(map, trunc_page((vaddr_t)addr),
172 1.43 chs round_page((vaddr_t)addr + len), prot);
173 1.25 thorpej vm_map_unlock_read(map);
174 1.25 thorpej
175 1.6 mrg return(rv);
176 1.1 mrg }
177 1.1 mrg
178 1.1 mrg #ifdef KGDB
179 1.1 mrg /*
180 1.1 mrg * Change protections on kernel pages from addr to addr+len
181 1.1 mrg * (presumably so debugger can plant a breakpoint).
182 1.1 mrg *
183 1.1 mrg * We force the protection change at the pmap level. If we were
184 1.1 mrg * to use vm_map_protect a change to allow writing would be lazily-
185 1.1 mrg * applied meaning we would still take a protection fault, something
186 1.1 mrg * we really don't want to do. It would also fragment the kernel
187 1.1 mrg * map unnecessarily. We cannot use pmap_protect since it also won't
188 1.1 mrg * enforce a write-enable request. Using pmap_enter is the only way
189 1.1 mrg * we can ensure the change takes place properly.
190 1.1 mrg */
191 1.6 mrg void
192 1.6 mrg uvm_chgkprot(addr, len, rw)
193 1.32 augustss caddr_t addr;
194 1.11 kleink size_t len;
195 1.11 kleink int rw;
196 1.6 mrg {
197 1.6 mrg vm_prot_t prot;
198 1.13 eeh paddr_t pa;
199 1.13 eeh vaddr_t sva, eva;
200 1.6 mrg
201 1.6 mrg prot = rw == B_READ ? VM_PROT_READ : VM_PROT_READ|VM_PROT_WRITE;
202 1.31 kleink eva = round_page((vaddr_t)addr + len);
203 1.31 kleink for (sva = trunc_page((vaddr_t)addr); sva < eva; sva += PAGE_SIZE) {
204 1.6 mrg /*
205 1.6 mrg * Extract physical address for the page.
206 1.6 mrg */
207 1.27 thorpej if (pmap_extract(pmap_kernel(), sva, &pa) == FALSE)
208 1.6 mrg panic("chgkprot: invalid page");
209 1.30 thorpej pmap_enter(pmap_kernel(), sva, pa, prot, PMAP_WIRED);
210 1.6 mrg }
211 1.51 chris pmap_update(pmap_kernel());
212 1.1 mrg }
213 1.1 mrg #endif
214 1.1 mrg
215 1.1 mrg /*
216 1.52 chs * uvm_vslock: wire user memory for I/O
217 1.1 mrg *
218 1.1 mrg * - called from physio and sys___sysctl
219 1.1 mrg * - XXXCDC: consider nuking this (or making it a macro?)
220 1.1 mrg */
221 1.1 mrg
222 1.26 thorpej int
223 1.22 thorpej uvm_vslock(p, addr, len, access_type)
224 1.9 thorpej struct proc *p;
225 1.6 mrg caddr_t addr;
226 1.11 kleink size_t len;
227 1.22 thorpej vm_prot_t access_type;
228 1.1 mrg {
229 1.50 chs struct vm_map *map;
230 1.26 thorpej vaddr_t start, end;
231 1.45 chs int error;
232 1.26 thorpej
233 1.26 thorpej map = &p->p_vmspace->vm_map;
234 1.31 kleink start = trunc_page((vaddr_t)addr);
235 1.31 kleink end = round_page((vaddr_t)addr + len);
236 1.57 chs error = uvm_fault_wire(map, start, end, VM_FAULT_WIRE, access_type);
237 1.45 chs return error;
238 1.1 mrg }
239 1.1 mrg
240 1.1 mrg /*
241 1.52 chs * uvm_vsunlock: unwire user memory wired by uvm_vslock()
242 1.1 mrg *
243 1.1 mrg * - called from physio and sys___sysctl
244 1.1 mrg * - XXXCDC: consider nuking this (or making it a macro?)
245 1.1 mrg */
246 1.1 mrg
247 1.6 mrg void
248 1.9 thorpej uvm_vsunlock(p, addr, len)
249 1.9 thorpej struct proc *p;
250 1.6 mrg caddr_t addr;
251 1.11 kleink size_t len;
252 1.1 mrg {
253 1.43 chs uvm_fault_unwire(&p->p_vmspace->vm_map, trunc_page((vaddr_t)addr),
254 1.43 chs round_page((vaddr_t)addr + len));
255 1.1 mrg }
256 1.1 mrg
257 1.1 mrg /*
258 1.62 thorpej * uvm_proc_fork: fork a virtual address space
259 1.1 mrg *
260 1.1 mrg * - the address space is copied as per parent map's inherit values
261 1.62 thorpej */
262 1.62 thorpej void
263 1.62 thorpej uvm_proc_fork(p1, p2, shared)
264 1.62 thorpej struct proc *p1, *p2;
265 1.62 thorpej boolean_t shared;
266 1.62 thorpej {
267 1.62 thorpej
268 1.62 thorpej if (shared == TRUE) {
269 1.62 thorpej p2->p_vmspace = NULL;
270 1.62 thorpej uvmspace_share(p1, p2);
271 1.62 thorpej } else {
272 1.62 thorpej p2->p_vmspace = uvmspace_fork(p1->p_vmspace);
273 1.62 thorpej }
274 1.62 thorpej
275 1.62 thorpej cpu_proc_fork(p1, p2);
276 1.62 thorpej }
277 1.62 thorpej
278 1.62 thorpej
279 1.62 thorpej /*
280 1.62 thorpej * uvm_lwp_fork: fork a thread
281 1.62 thorpej *
282 1.1 mrg * - a new "user" structure is allocated for the child process
283 1.1 mrg * [filled in by MD layer...]
284 1.20 thorpej * - if specified, the child gets a new user stack described by
285 1.20 thorpej * stack and stacksize
286 1.1 mrg * - NOTE: the kernel stack may be at a different location in the child
287 1.1 mrg * process, and thus addresses of automatic variables may be invalid
288 1.62 thorpej * after cpu_lwp_fork returns in the child process. We do nothing here
289 1.62 thorpej * after cpu_lwp_fork returns.
290 1.1 mrg * - XXXCDC: we need a way for this to return a failure value rather
291 1.1 mrg * than just hang
292 1.1 mrg */
293 1.6 mrg void
294 1.62 thorpej uvm_lwp_fork(l1, l2, stack, stacksize, func, arg)
295 1.62 thorpej struct lwp *l1, *l2;
296 1.20 thorpej void *stack;
297 1.20 thorpej size_t stacksize;
298 1.34 thorpej void (*func) __P((void *));
299 1.34 thorpej void *arg;
300 1.6 mrg {
301 1.62 thorpej struct user *up = l2->l_addr;
302 1.45 chs int error;
303 1.6 mrg
304 1.6 mrg /*
305 1.7 thorpej * Wire down the U-area for the process, which contains the PCB
306 1.62 thorpej * and the kernel stack. Wired state is stored in l->l_flag's
307 1.62 thorpej * L_INMEM bit rather than in the vm_map_entry's wired count
308 1.61 chs * to prevent kernel_map fragmentation. If we reused a cached U-area,
309 1.62 thorpej * L_INMEM will already be set and we don't need to do anything.
310 1.21 thorpej *
311 1.61 chs * Note the kernel stack gets read/write accesses right off the bat.
312 1.6 mrg */
313 1.61 chs
314 1.62 thorpej if ((l2->l_flag & L_INMEM) == 0) {
315 1.61 chs error = uvm_fault_wire(kernel_map, (vaddr_t)up,
316 1.61 chs (vaddr_t)up + USPACE, VM_FAULT_WIRE,
317 1.61 chs VM_PROT_READ | VM_PROT_WRITE);
318 1.61 chs if (error)
319 1.62 thorpej panic("uvm_lwp_fork: uvm_fault_wire failed: %d", error);
320 1.67 scw #ifdef PMAP_UAREA
321 1.67 scw /* Tell the pmap this is a u-area mapping */
322 1.67 scw PMAP_UAREA((vaddr_t)up);
323 1.67 scw #endif
324 1.62 thorpej l2->l_flag |= L_INMEM;
325 1.61 chs }
326 1.59 yamt
327 1.59 yamt #ifdef KSTACK_CHECK_MAGIC
328 1.59 yamt /*
329 1.59 yamt * fill stack with magic number
330 1.59 yamt */
331 1.63 yamt kstack_setup_magic(l2);
332 1.59 yamt #endif
333 1.6 mrg
334 1.6 mrg /*
335 1.62 thorpej * cpu_lwp_fork() copy and update the pcb, and make the child ready
336 1.62 thorpej * to run. If this is a normal user fork, the child will exit
337 1.34 thorpej * directly to user mode via child_return() on its first time
338 1.34 thorpej * slice and will not return here. If this is a kernel thread,
339 1.34 thorpej * the specified entry point will be executed.
340 1.6 mrg */
341 1.62 thorpej cpu_lwp_fork(l1, l2, stack, stacksize, func, arg);
342 1.14 thorpej }
343 1.14 thorpej
344 1.14 thorpej /*
345 1.14 thorpej * uvm_exit: exit a virtual address space
346 1.14 thorpej *
347 1.14 thorpej * - the process passed to us is a dead (pre-zombie) process; we
348 1.14 thorpej * are running on a different context now (the reaper).
349 1.14 thorpej * - we must run in a separate thread because freeing the vmspace
350 1.14 thorpej * of the dead process may block.
351 1.14 thorpej */
352 1.60 chs
353 1.14 thorpej void
354 1.62 thorpej uvm_proc_exit(p)
355 1.14 thorpej struct proc *p;
356 1.14 thorpej {
357 1.62 thorpej uvmspace_free(p->p_vmspace);
358 1.62 thorpej }
359 1.14 thorpej
360 1.62 thorpej void
361 1.62 thorpej uvm_lwp_exit(l)
362 1.62 thorpej struct lwp *l;
363 1.62 thorpej {
364 1.62 thorpej vaddr_t va = (vaddr_t)l->l_addr;
365 1.62 thorpej
366 1.62 thorpej l->l_flag &= ~L_INMEM;
367 1.60 chs uvm_uarea_free(va);
368 1.62 thorpej l->l_addr = NULL;
369 1.1 mrg }
370 1.1 mrg
371 1.1 mrg /*
372 1.60 chs * uvm_uarea_alloc: allocate a u-area
373 1.60 chs */
374 1.60 chs
375 1.61 chs boolean_t
376 1.61 chs uvm_uarea_alloc(vaddr_t *uaddrp)
377 1.60 chs {
378 1.60 chs vaddr_t uaddr;
379 1.60 chs
380 1.60 chs #ifndef USPACE_ALIGN
381 1.60 chs #define USPACE_ALIGN 0
382 1.60 chs #endif
383 1.60 chs
384 1.62 thorpej simple_lock(&uvm_uareas_slock);
385 1.60 chs uaddr = (vaddr_t)uvm_uareas;
386 1.60 chs if (uaddr) {
387 1.60 chs uvm_uareas = *(void **)uvm_uareas;
388 1.60 chs uvm_nuarea--;
389 1.62 thorpej simple_unlock(&uvm_uareas_slock);
390 1.61 chs *uaddrp = uaddr;
391 1.61 chs return TRUE;
392 1.60 chs } else {
393 1.62 thorpej simple_unlock(&uvm_uareas_slock);
394 1.61 chs *uaddrp = uvm_km_valloc_align(kernel_map, USPACE, USPACE_ALIGN);
395 1.61 chs return FALSE;
396 1.60 chs }
397 1.60 chs }
398 1.60 chs
399 1.60 chs /*
400 1.60 chs * uvm_uarea_free: free a u-area
401 1.60 chs */
402 1.60 chs
403 1.60 chs void
404 1.60 chs uvm_uarea_free(vaddr_t uaddr)
405 1.60 chs {
406 1.60 chs
407 1.62 thorpej simple_lock(&uvm_uareas_slock);
408 1.60 chs if (uvm_nuarea < UVM_NUAREA_MAX) {
409 1.60 chs *(void **)uaddr = uvm_uareas;
410 1.60 chs uvm_uareas = (void *)uaddr;
411 1.60 chs uvm_nuarea++;
412 1.62 thorpej simple_unlock(&uvm_uareas_slock);
413 1.60 chs } else {
414 1.62 thorpej simple_unlock(&uvm_uareas_slock);
415 1.60 chs uvm_km_free(kernel_map, uaddr, USPACE);
416 1.60 chs }
417 1.60 chs }
418 1.60 chs
419 1.60 chs /*
420 1.1 mrg * uvm_init_limit: init per-process VM limits
421 1.1 mrg *
422 1.1 mrg * - called for process 0 and then inherited by all others.
423 1.1 mrg */
424 1.60 chs
425 1.6 mrg void
426 1.6 mrg uvm_init_limits(p)
427 1.6 mrg struct proc *p;
428 1.6 mrg {
429 1.6 mrg
430 1.6 mrg /*
431 1.6 mrg * Set up the initial limits on process VM. Set the maximum
432 1.6 mrg * resident set size to be all of (reasonably) available memory.
433 1.6 mrg * This causes any single, large process to start random page
434 1.6 mrg * replacement once it fills memory.
435 1.6 mrg */
436 1.6 mrg
437 1.6 mrg p->p_rlimit[RLIMIT_STACK].rlim_cur = DFLSSIZ;
438 1.6 mrg p->p_rlimit[RLIMIT_STACK].rlim_max = MAXSSIZ;
439 1.6 mrg p->p_rlimit[RLIMIT_DATA].rlim_cur = DFLDSIZ;
440 1.6 mrg p->p_rlimit[RLIMIT_DATA].rlim_max = MAXDSIZ;
441 1.6 mrg p->p_rlimit[RLIMIT_RSS].rlim_cur = ptoa(uvmexp.free);
442 1.1 mrg }
443 1.1 mrg
444 1.1 mrg #ifdef DEBUG
445 1.1 mrg int enableswap = 1;
446 1.1 mrg int swapdebug = 0;
447 1.1 mrg #define SDB_FOLLOW 1
448 1.1 mrg #define SDB_SWAPIN 2
449 1.1 mrg #define SDB_SWAPOUT 4
450 1.1 mrg #endif
451 1.1 mrg
452 1.1 mrg /*
453 1.1 mrg * uvm_swapin: swap in a process's u-area.
454 1.1 mrg */
455 1.1 mrg
456 1.6 mrg void
457 1.62 thorpej uvm_swapin(l)
458 1.62 thorpej struct lwp *l;
459 1.6 mrg {
460 1.13 eeh vaddr_t addr;
461 1.52 chs int s, error;
462 1.6 mrg
463 1.62 thorpej addr = (vaddr_t)l->l_addr;
464 1.62 thorpej /* make L_INMEM true */
465 1.57 chs error = uvm_fault_wire(kernel_map, addr, addr + USPACE, VM_FAULT_WIRE,
466 1.21 thorpej VM_PROT_READ | VM_PROT_WRITE);
467 1.52 chs if (error) {
468 1.52 chs panic("uvm_swapin: rewiring stack failed: %d", error);
469 1.52 chs }
470 1.6 mrg
471 1.6 mrg /*
472 1.6 mrg * Some architectures need to be notified when the user area has
473 1.6 mrg * moved to new physical page(s) (e.g. see mips/mips/vm_machdep.c).
474 1.6 mrg */
475 1.62 thorpej cpu_swapin(l);
476 1.41 enami SCHED_LOCK(s);
477 1.62 thorpej if (l->l_stat == LSRUN)
478 1.62 thorpej setrunqueue(l);
479 1.62 thorpej l->l_flag |= L_INMEM;
480 1.41 enami SCHED_UNLOCK(s);
481 1.62 thorpej l->l_swtime = 0;
482 1.6 mrg ++uvmexp.swapins;
483 1.1 mrg }
484 1.1 mrg
485 1.1 mrg /*
486 1.1 mrg * uvm_scheduler: process zero main loop
487 1.1 mrg *
488 1.1 mrg * - attempt to swapin every swaped-out, runnable process in order of
489 1.1 mrg * priority.
490 1.1 mrg * - if not enough memory, wake the pagedaemon and let it clear space.
491 1.1 mrg */
492 1.1 mrg
493 1.6 mrg void
494 1.6 mrg uvm_scheduler()
495 1.1 mrg {
496 1.62 thorpej struct lwp *l, *ll;
497 1.32 augustss int pri;
498 1.6 mrg int ppri;
499 1.1 mrg
500 1.1 mrg loop:
501 1.1 mrg #ifdef DEBUG
502 1.6 mrg while (!enableswap)
503 1.43 chs tsleep(&proc0, PVM, "noswap", 0);
504 1.1 mrg #endif
505 1.62 thorpej ll = NULL; /* process to choose */
506 1.6 mrg ppri = INT_MIN; /* its priority */
507 1.29 thorpej proclist_lock_read();
508 1.6 mrg
509 1.62 thorpej LIST_FOREACH(l, &alllwp, l_list) {
510 1.6 mrg /* is it a runnable swapped out process? */
511 1.62 thorpej if (l->l_stat == LSRUN && (l->l_flag & L_INMEM) == 0) {
512 1.62 thorpej pri = l->l_swtime + l->l_slptime -
513 1.62 thorpej (l->l_proc->p_nice - NZERO) * 8;
514 1.6 mrg if (pri > ppri) { /* higher priority? remember it. */
515 1.62 thorpej ll = l;
516 1.6 mrg ppri = pri;
517 1.6 mrg }
518 1.6 mrg }
519 1.6 mrg }
520 1.39 sommerfe /*
521 1.39 sommerfe * XXXSMP: possible unlock/sleep race between here and the
522 1.39 sommerfe * "scheduler" tsleep below..
523 1.39 sommerfe */
524 1.28 thorpej proclist_unlock_read();
525 1.1 mrg
526 1.1 mrg #ifdef DEBUG
527 1.6 mrg if (swapdebug & SDB_FOLLOW)
528 1.62 thorpej printf("scheduler: running, procp %p pri %d\n", ll, ppri);
529 1.1 mrg #endif
530 1.6 mrg /*
531 1.6 mrg * Nothing to do, back to sleep
532 1.6 mrg */
533 1.62 thorpej if ((l = ll) == NULL) {
534 1.43 chs tsleep(&proc0, PVM, "scheduler", 0);
535 1.6 mrg goto loop;
536 1.6 mrg }
537 1.6 mrg
538 1.6 mrg /*
539 1.6 mrg * we have found swapped out process which we would like to bring
540 1.6 mrg * back in.
541 1.6 mrg *
542 1.6 mrg * XXX: this part is really bogus cuz we could deadlock on memory
543 1.6 mrg * despite our feeble check
544 1.6 mrg */
545 1.6 mrg if (uvmexp.free > atop(USPACE)) {
546 1.1 mrg #ifdef DEBUG
547 1.6 mrg if (swapdebug & SDB_SWAPIN)
548 1.6 mrg printf("swapin: pid %d(%s)@%p, pri %d free %d\n",
549 1.62 thorpej l->l_proc->p_pid, l->l_proc->p_comm, l->l_addr, ppri, uvmexp.free);
550 1.1 mrg #endif
551 1.62 thorpej uvm_swapin(l);
552 1.6 mrg goto loop;
553 1.6 mrg }
554 1.6 mrg /*
555 1.6 mrg * not enough memory, jab the pageout daemon and wait til the coast
556 1.6 mrg * is clear
557 1.6 mrg */
558 1.1 mrg #ifdef DEBUG
559 1.6 mrg if (swapdebug & SDB_FOLLOW)
560 1.6 mrg printf("scheduler: no room for pid %d(%s), free %d\n",
561 1.62 thorpej l->l_proc->p_pid, l->l_proc->p_comm, uvmexp.free);
562 1.1 mrg #endif
563 1.6 mrg uvm_wait("schedpwait");
564 1.1 mrg #ifdef DEBUG
565 1.6 mrg if (swapdebug & SDB_FOLLOW)
566 1.6 mrg printf("scheduler: room again, free %d\n", uvmexp.free);
567 1.1 mrg #endif
568 1.6 mrg goto loop;
569 1.1 mrg }
570 1.1 mrg
571 1.1 mrg /*
572 1.62 thorpej * swappable: is LWP "l" swappable?
573 1.1 mrg */
574 1.1 mrg
575 1.62 thorpej #define swappable(l) \
576 1.62 thorpej (((l)->l_flag & (L_INMEM)) && \
577 1.62 thorpej ((((l)->l_proc->p_flag) & (P_SYSTEM | P_WEXIT)) == 0) && \
578 1.62 thorpej (l)->l_holdcnt == 0)
579 1.1 mrg
580 1.1 mrg /*
581 1.1 mrg * swapout_threads: find threads that can be swapped and unwire their
582 1.1 mrg * u-areas.
583 1.1 mrg *
584 1.1 mrg * - called by the pagedaemon
585 1.1 mrg * - try and swap at least one processs
586 1.1 mrg * - processes that are sleeping or stopped for maxslp or more seconds
587 1.1 mrg * are swapped... otherwise the longest-sleeping or stopped process
588 1.1 mrg * is swapped, otherwise the longest resident process...
589 1.1 mrg */
590 1.60 chs
591 1.6 mrg void
592 1.6 mrg uvm_swapout_threads()
593 1.1 mrg {
594 1.62 thorpej struct lwp *l;
595 1.62 thorpej struct lwp *outl, *outl2;
596 1.6 mrg int outpri, outpri2;
597 1.6 mrg int didswap = 0;
598 1.48 chs extern int maxslp;
599 1.6 mrg /* XXXCDC: should move off to uvmexp. or uvm., also in uvm_meter */
600 1.1 mrg
601 1.1 mrg #ifdef DEBUG
602 1.6 mrg if (!enableswap)
603 1.6 mrg return;
604 1.1 mrg #endif
605 1.1 mrg
606 1.6 mrg /*
607 1.62 thorpej * outl/outpri : stop/sleep thread with largest sleeptime < maxslp
608 1.62 thorpej * outl2/outpri2: the longest resident thread (its swap time)
609 1.6 mrg */
610 1.62 thorpej outl = outl2 = NULL;
611 1.6 mrg outpri = outpri2 = 0;
612 1.29 thorpej proclist_lock_read();
613 1.62 thorpej LIST_FOREACH(l, &alllwp, l_list) {
614 1.62 thorpej if (!swappable(l))
615 1.6 mrg continue;
616 1.62 thorpej switch (l->l_stat) {
617 1.62 thorpej case LSRUN:
618 1.62 thorpej case LSONPROC:
619 1.62 thorpej if (l->l_swtime > outpri2) {
620 1.62 thorpej outl2 = l;
621 1.62 thorpej outpri2 = l->l_swtime;
622 1.6 mrg }
623 1.6 mrg continue;
624 1.48 chs
625 1.62 thorpej case LSSLEEP:
626 1.62 thorpej case LSSTOP:
627 1.62 thorpej if (l->l_slptime >= maxslp) {
628 1.62 thorpej uvm_swapout(l);
629 1.6 mrg didswap++;
630 1.62 thorpej } else if (l->l_slptime > outpri) {
631 1.62 thorpej outl = l;
632 1.62 thorpej outpri = l->l_slptime;
633 1.6 mrg }
634 1.6 mrg continue;
635 1.6 mrg }
636 1.6 mrg }
637 1.28 thorpej proclist_unlock_read();
638 1.6 mrg
639 1.6 mrg /*
640 1.6 mrg * If we didn't get rid of any real duds, toss out the next most
641 1.6 mrg * likely sleeping/stopped or running candidate. We only do this
642 1.6 mrg * if we are real low on memory since we don't gain much by doing
643 1.6 mrg * it (USPACE bytes).
644 1.6 mrg */
645 1.6 mrg if (didswap == 0 && uvmexp.free <= atop(round_page(USPACE))) {
646 1.62 thorpej if ((l = outl) == NULL)
647 1.62 thorpej l = outl2;
648 1.1 mrg #ifdef DEBUG
649 1.6 mrg if (swapdebug & SDB_SWAPOUT)
650 1.62 thorpej printf("swapout_threads: no duds, try procp %p\n", l);
651 1.1 mrg #endif
652 1.62 thorpej if (l)
653 1.62 thorpej uvm_swapout(l);
654 1.6 mrg }
655 1.1 mrg }
656 1.1 mrg
657 1.1 mrg /*
658 1.62 thorpej * uvm_swapout: swap out lwp "l"
659 1.1 mrg *
660 1.48 chs * - currently "swapout" means "unwire U-area" and "pmap_collect()"
661 1.1 mrg * the pmap.
662 1.1 mrg * - XXXCDC: should deactivate all process' private anonymous memory
663 1.1 mrg */
664 1.1 mrg
665 1.6 mrg static void
666 1.62 thorpej uvm_swapout(l)
667 1.62 thorpej struct lwp *l;
668 1.1 mrg {
669 1.13 eeh vaddr_t addr;
670 1.6 mrg int s;
671 1.62 thorpej struct proc *p = l->l_proc;
672 1.1 mrg
673 1.1 mrg #ifdef DEBUG
674 1.6 mrg if (swapdebug & SDB_SWAPOUT)
675 1.62 thorpej printf("swapout: lid %d.%d(%s)@%p, stat %x pri %d free %d\n",
676 1.62 thorpej p->p_pid, l->l_lid, p->p_comm, l->l_addr, l->l_stat,
677 1.62 thorpej l->l_slptime, uvmexp.free);
678 1.1 mrg #endif
679 1.1 mrg
680 1.6 mrg /*
681 1.6 mrg * Do any machine-specific actions necessary before swapout.
682 1.6 mrg * This can include saving floating point state, etc.
683 1.6 mrg */
684 1.62 thorpej cpu_swapout(l);
685 1.6 mrg
686 1.6 mrg /*
687 1.6 mrg * Mark it as (potentially) swapped out.
688 1.6 mrg */
689 1.41 enami SCHED_LOCK(s);
690 1.62 thorpej l->l_flag &= ~L_INMEM;
691 1.62 thorpej if (l->l_stat == LSRUN)
692 1.62 thorpej remrunqueue(l);
693 1.41 enami SCHED_UNLOCK(s);
694 1.62 thorpej l->l_swtime = 0;
695 1.53 chs p->p_stats->p_ru.ru_nswap++;
696 1.6 mrg ++uvmexp.swapouts;
697 1.43 chs
698 1.43 chs /*
699 1.43 chs * Unwire the to-be-swapped process's user struct and kernel stack.
700 1.43 chs */
701 1.62 thorpej addr = (vaddr_t)l->l_addr;
702 1.62 thorpej uvm_fault_unwire(kernel_map, addr, addr + USPACE); /* !L_INMEM */
703 1.43 chs pmap_collect(vm_map_pmap(&p->p_vmspace->vm_map));
704 1.1 mrg }
705 1.1 mrg
706 1.56 thorpej /*
707 1.56 thorpej * uvm_coredump_walkmap: walk a process's map for the purpose of dumping
708 1.56 thorpej * a core file.
709 1.56 thorpej */
710 1.56 thorpej
711 1.56 thorpej int
712 1.66 fvdl uvm_coredump_walkmap(p, vp, cred, func, cookie)
713 1.66 fvdl struct proc *p;
714 1.56 thorpej struct vnode *vp;
715 1.56 thorpej struct ucred *cred;
716 1.66 fvdl int (*func)(struct proc *, struct vnode *, struct ucred *,
717 1.56 thorpej struct uvm_coredump_state *);
718 1.56 thorpej void *cookie;
719 1.56 thorpej {
720 1.56 thorpej struct uvm_coredump_state state;
721 1.56 thorpej struct vmspace *vm = p->p_vmspace;
722 1.56 thorpej struct vm_map *map = &vm->vm_map;
723 1.56 thorpej struct vm_map_entry *entry;
724 1.56 thorpej vaddr_t maxstack;
725 1.56 thorpej int error;
726 1.56 thorpej
727 1.56 thorpej maxstack = trunc_page(USRSTACK - ctob(vm->vm_ssize));
728 1.56 thorpej
729 1.64 atatat entry = NULL;
730 1.64 atatat vm_map_lock_read(map);
731 1.64 atatat for (;;) {
732 1.64 atatat if (entry == NULL)
733 1.64 atatat entry = map->header.next;
734 1.64 atatat else if (!uvm_map_lookup_entry(map, state.end, &entry))
735 1.64 atatat entry = entry->next;
736 1.64 atatat if (entry == &map->header)
737 1.64 atatat break;
738 1.64 atatat
739 1.56 thorpej /* Should never happen for a user process. */
740 1.56 thorpej if (UVM_ET_ISSUBMAP(entry))
741 1.56 thorpej panic("uvm_coredump_walkmap: user process with "
742 1.56 thorpej "submap?");
743 1.56 thorpej
744 1.56 thorpej state.cookie = cookie;
745 1.56 thorpej state.start = entry->start;
746 1.56 thorpej state.end = entry->end;
747 1.56 thorpej state.prot = entry->protection;
748 1.56 thorpej state.flags = 0;
749 1.56 thorpej
750 1.56 thorpej if (state.start >= VM_MAXUSER_ADDRESS)
751 1.56 thorpej continue;
752 1.56 thorpej
753 1.56 thorpej if (state.end > VM_MAXUSER_ADDRESS)
754 1.56 thorpej state.end = VM_MAXUSER_ADDRESS;
755 1.56 thorpej
756 1.56 thorpej if (state.start >= (vaddr_t)vm->vm_maxsaddr) {
757 1.56 thorpej if (state.end <= maxstack)
758 1.56 thorpej continue;
759 1.56 thorpej if (state.start < maxstack)
760 1.56 thorpej state.start = maxstack;
761 1.56 thorpej state.flags |= UVM_COREDUMP_STACK;
762 1.56 thorpej }
763 1.56 thorpej
764 1.56 thorpej if ((entry->protection & VM_PROT_WRITE) == 0)
765 1.58 matt state.flags |= UVM_COREDUMP_NODUMP;
766 1.58 matt
767 1.58 matt if (entry->object.uvm_obj != NULL &&
768 1.58 matt entry->object.uvm_obj->pgops == &uvm_deviceops)
769 1.56 thorpej state.flags |= UVM_COREDUMP_NODUMP;
770 1.56 thorpej
771 1.64 atatat vm_map_unlock_read(map);
772 1.66 fvdl error = (*func)(p, vp, cred, &state);
773 1.56 thorpej if (error)
774 1.56 thorpej return (error);
775 1.64 atatat vm_map_lock_read(map);
776 1.56 thorpej }
777 1.64 atatat vm_map_unlock_read(map);
778 1.56 thorpej
779 1.56 thorpej return (0);
780 1.56 thorpej }
781