pmap.c revision 1.24 1 /* $NetBSD: pmap.c,v 1.24 2005/01/01 21:17:47 yamt Exp $ */
2
3 /*
4 * Copyright (c) 2002, 2003 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Andrew Brown.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <sys/cdefs.h>
40 #ifndef lint
41 __RCSID("$NetBSD: pmap.c,v 1.24 2005/01/01 21:17:47 yamt Exp $");
42 #endif
43
44 #include <string.h>
45
46 #ifndef LOCKDEBUG
47 #define VERSION regular
48 #else /* LOCKDEBUG */
49 #define VERSION lockdebug
50 #endif /* LOCKDEBUG */
51
52 #include "pmap.h"
53 #include "main.h"
54
55 static void dump_vm_anon(kvm_t *, struct vm_anon **, int);
56 static char *findname(kvm_t *, struct kbit *, struct kbit *, struct kbit *,
57 struct kbit *, struct kbit *);
58 static int search_cache(kvm_t *, struct kbit *, char **, char *, size_t);
59
60 /* when recursing, output is indented */
61 #define indent(n) ((n) * (recurse > 1 ? recurse - 1 : 0))
62 #define rwx (VM_PROT_READ | VM_PROT_WRITE | VM_PROT_EXECUTE)
63
64 int heapfound;
65
66 void
67 PMAPFUNC(process_map,VERSION)(kvm_t *kd, struct kinfo_proc2 *proc,
68 struct kbit *vmspace, const char *thing)
69 {
70 struct kbit kbit, *vm_map = &kbit;
71
72 if (proc) {
73 heapfound = 0;
74 A(vmspace) = (u_long)proc->p_vmspace;
75 S(vmspace) = sizeof(struct vmspace);
76 thing = "proc->p_vmspace.vm_map";
77 } else if (S(vmspace) == (size_t)-1) {
78 heapfound = 0;
79 /* A(vmspace) set by caller */
80 S(vmspace) = sizeof(struct vmspace);
81 /* object identified by caller */
82 } else {
83 heapfound = 1; /* but really, do kernels have a heap? */
84 A(vmspace) = 0;
85 S(vmspace) = 0;
86 thing = "kernel_map";
87 }
88
89 S(vm_map) = sizeof(struct vm_map);
90
91 if (S(vmspace) != 0) {
92 KDEREF(kd, vmspace);
93 A(vm_map) = A(vmspace) + offsetof(struct vmspace, vm_map);
94 memcpy(D(vm_map, vm_map), &D(vmspace, vmspace)->vm_map,
95 S(vm_map));
96 } else {
97 memset(vmspace, 0, sizeof(*vmspace));
98 A(vm_map) = kernel_map_addr;
99 KDEREF(kd, vm_map);
100 }
101
102 PMAPFUNC(dump_vm_map,VERSION)(kd, proc, vmspace, vm_map, thing);
103 }
104
105 void
106 PMAPFUNC(dump_vm_map,VERSION)(kvm_t *kd, struct kinfo_proc2 *proc,
107 struct kbit *vmspace, struct kbit *vm_map, const char *mname)
108 {
109 struct kbit kbit[2], *header, *vm_map_entry;
110 struct vm_map_entry *last, *next;
111 size_t total;
112 u_long addr, end;
113
114 if (S(vm_map) == (size_t)-1) {
115 heapfound = 1;
116 S(vm_map) = sizeof(struct vm_map);
117 KDEREF(kd, vm_map);
118 }
119
120 header = &kbit[0];
121 vm_map_entry = &kbit[1];
122 A(header) = 0;
123 A(vm_map_entry) = 0;
124
125 A(header) = A(vm_map) + offsetof(struct vm_map, header);
126 S(header) = sizeof(struct vm_map_entry);
127 memcpy(D(header, vm_map_entry), &D(vm_map, vm_map)->header, S(header));
128
129 if (S(vmspace) != 0 && (debug & PRINT_VMSPACE)) {
130 printf("proc->p_vmspace %p = {", P(vmspace));
131 printf(" vm_refcnt = %d,", D(vmspace, vmspace)->vm_refcnt);
132 printf(" vm_shm = %p,\n", D(vmspace, vmspace)->vm_shm);
133 printf(" vm_rssize = %d,", D(vmspace, vmspace)->vm_rssize);
134 printf(" vm_swrss = %d,", D(vmspace, vmspace)->vm_swrss);
135 printf(" vm_tsize = %d,", D(vmspace, vmspace)->vm_tsize);
136 printf(" vm_dsize = %d,\n", D(vmspace, vmspace)->vm_dsize);
137 printf(" vm_ssize = %d,", D(vmspace, vmspace)->vm_ssize);
138 printf(" vm_taddr = %p,", D(vmspace, vmspace)->vm_taddr);
139 printf(" vm_daddr = %p,\n", D(vmspace, vmspace)->vm_daddr);
140 printf(" vm_maxsaddr = %p,",
141 D(vmspace, vmspace)->vm_maxsaddr);
142 printf(" vm_minsaddr = %p }\n",
143 D(vmspace, vmspace)->vm_minsaddr);
144 }
145
146 if (debug & PRINT_VM_MAP) {
147 printf("%*s%s %p = {", indent(2), "", mname, P(vm_map));
148 printf(" pmap = %p,\n", D(vm_map, vm_map)->pmap);
149 printf("%*s lock = <struct lock>,", indent(2), "");
150 printf(" header = <struct vm_map_entry>,");
151 printf(" nentries = %d,\n", D(vm_map, vm_map)->nentries);
152 printf("%*s size = %lx,", indent(2), "",
153 D(vm_map, vm_map)->size);
154 printf(" ref_count = %d,", D(vm_map, vm_map)->ref_count);
155 printf(" ref_lock = <struct simplelock>,\n");
156 printf("%*s hint = %p,", indent(2), "",
157 D(vm_map, vm_map)->hint);
158 printf(" hint_lock = <struct simplelock>,\n");
159 printf("%*s first_free = %p,", indent(2), "",
160 D(vm_map, vm_map)->first_free);
161 printf(" flags = %x <%s%s%s%s%s%s%s >,\n", D(vm_map, vm_map)->flags,
162 D(vm_map, vm_map)->flags & VM_MAP_PAGEABLE ? " PAGEABLE" : "",
163 D(vm_map, vm_map)->flags & VM_MAP_INTRSAFE ? " INTRSAFE" : "",
164 D(vm_map, vm_map)->flags & VM_MAP_WIREFUTURE ? " WIREFUTURE" : "",
165 D(vm_map, vm_map)->flags & VM_MAP_BUSY ? " BUSY" : "",
166 D(vm_map, vm_map)->flags & VM_MAP_WANTLOCK ? " WANTLOCK" : "",
167 #ifdef VM_MAP_DYING
168 D(vm_map, vm_map)->flags & VM_MAP_DYING ? " DYING" :
169 #endif
170 "",
171 #ifdef VM_MAP_TOPDOWN
172 D(vm_map, vm_map)->flags & VM_MAP_TOPDOWN ? " TOPDOWN" :
173 #endif
174 "");
175 printf("%*s flags_lock = <struct simplelock>,", indent(2), "");
176 printf(" timestamp = %u }\n", D(vm_map, vm_map)->timestamp);
177 }
178 if (print_ddb) {
179 const char *name = mapname(P(vm_map));
180
181 printf("%*s%s %p: [0x%lx->0x%lx]\n", indent(2), "",
182 recurse < 2 ? "MAP" : "SUBMAP", P(vm_map),
183 D(vm_map, vm_map)->min_offset,
184 D(vm_map, vm_map)->max_offset);
185 printf("\t%*s#ent=%d, sz=%ld, ref=%d, version=%d, flags=0x%x\n",
186 indent(2), "", D(vm_map, vm_map)->nentries,
187 D(vm_map, vm_map)->size, D(vm_map, vm_map)->ref_count,
188 D(vm_map, vm_map)->timestamp, D(vm_map, vm_map)->flags);
189 printf("\t%*spmap=%p(resident=<unknown>)\n", indent(2), "",
190 D(vm_map, vm_map)->pmap);
191 if (verbose && name != NULL)
192 printf("\t%*s([ %s ])\n", indent(2), "", name);
193 }
194
195 PMAPFUNC(dump_vm_map_entry,VERSION)(kd, proc, vmspace, header, 1);
196
197 /*
198 * we're not recursing into a submap, so print headers
199 */
200 if (recurse < 2) {
201 /* headers */
202 #ifdef DISABLED_HEADERS
203 if (print_map)
204 printf("%-*s %-*s rwx RWX CPY NCP I W A\n",
205 (int)sizeof(long) * 2 + 2, "Start",
206 (int)sizeof(long) * 2 + 2, "End");
207 if (print_maps)
208 printf("%-*s %-*s rwxp %-*s Dev Inode File\n",
209 (int)sizeof(long) * 2 + 0, "Start",
210 (int)sizeof(long) * 2 + 0, "End",
211 (int)sizeof(long) * 2 + 0, "Offset");
212 if (print_solaris)
213 printf("%-*s %*s Protection File\n",
214 (int)sizeof(long) * 2 + 0, "Start",
215 (int)sizeof(int) * 2 - 1, "Size ");
216 #endif
217 if (print_all)
218 printf("%-*s %-*s %*s %-*s rwxpc RWX I/W/A Dev %*s"
219 " - File\n",
220 (int)sizeof(long) * 2, "Start",
221 (int)sizeof(long) * 2, "End",
222 (int)sizeof(int) * 2, "Size ",
223 (int)sizeof(long) * 2, "Offset",
224 (int)sizeof(int) * 2, "Inode");
225 }
226
227 /* these are the "sub entries" */
228 total = 0;
229 next = D(header, vm_map_entry)->next;
230 last = P(header);
231 end = 0;
232
233 while (next != 0 && next != last) {
234 addr = (u_long)next;
235 A(vm_map_entry) = addr;
236 S(vm_map_entry) = sizeof(struct vm_map_entry);
237 KDEREF(kd, vm_map_entry);
238 next = D(vm_map_entry, vm_map_entry)->next;
239
240 if (end == 0)
241 end = D(vm_map_entry, vm_map_entry)->start;
242 else if (verbose > 1 &&
243 end != D(vm_map_entry, vm_map_entry)->start)
244 printf("%*s[%lu pages / %luK]\n", indent(2), "",
245 (D(vm_map_entry, vm_map_entry)->start - end) /
246 page_size,
247 (D(vm_map_entry, vm_map_entry)->start - end) /
248 1024);
249 total += PMAPFUNC(dump_vm_map_entry,VERSION)(kd, proc,
250 vmspace, vm_map_entry, 0);
251
252 end = D(vm_map_entry, vm_map_entry)->end;
253 }
254
255 /*
256 * we're not recursing into a submap, so print totals
257 */
258 if (recurse < 2) {
259 if (print_solaris)
260 printf("%-*s %8luK\n",
261 (int)sizeof(void *) * 2 - 2, " total",
262 (unsigned long)total);
263 if (print_all)
264 printf("%-*s %9luk\n",
265 (int)sizeof(void *) * 4 - 1, " total",
266 (unsigned long)total);
267 }
268 }
269
270 size_t
271 PMAPFUNC(dump_vm_map_entry,VERSION)(kvm_t *kd,
272 struct kinfo_proc2 *proc, struct kbit *vmspace,
273 struct kbit *vm_map_entry, int ishead)
274 {
275 struct kbit kbit[3];
276 struct kbit *uvm_obj, *vp, *vfs;
277 struct vm_map_entry *vme;
278 size_t sz;
279 char *name;
280 dev_t dev;
281 ino_t inode;
282
283 if (S(vm_map_entry) == (size_t)-1) {
284 heapfound = 1;
285 S(vm_map_entry) = sizeof(struct vm_map_entry);
286 KDEREF(kd, vm_map_entry);
287 }
288
289 uvm_obj = &kbit[0];
290 vp = &kbit[1];
291 vfs = &kbit[2];
292
293 A(uvm_obj) = 0;
294 A(vp) = 0;
295 A(vfs) = 0;
296
297 vme = D(vm_map_entry, vm_map_entry);
298
299 if ((ishead && (debug & PRINT_VM_MAP_HEADER)) ||
300 (!ishead && (debug & PRINT_VM_MAP_ENTRY))) {
301 printf("%*s%s %p = {", indent(2), "",
302 ishead ? "vm_map.header" : "vm_map_entry",
303 P(vm_map_entry));
304 printf(" prev = %p,", vme->prev);
305 printf(" next = %p,\n", vme->next);
306 printf("%*s start = %lx,", indent(2), "", vme->start);
307 printf(" end = %lx,", vme->end);
308 printf(" object.uvm_obj/sub_map = %p,\n", vme->object.uvm_obj);
309 printf("%*s offset = %" PRIx64 ",", indent(2), "",
310 vme->offset);
311 printf(" etype = %x <%s%s%s%s >,", vme->etype,
312 UVM_ET_ISOBJ(vme) ? " OBJ" : "",
313 UVM_ET_ISSUBMAP(vme) ? " SUBMAP" : "",
314 UVM_ET_ISCOPYONWRITE(vme) ? " COW" : "",
315 UVM_ET_ISNEEDSCOPY(vme) ? " NEEDSCOPY" : "");
316 printf(" protection = %x,\n", vme->protection);
317 printf("%*s max_protection = %x,", indent(2), "",
318 vme->max_protection);
319 printf(" inheritance = %d,", vme->inheritance);
320 printf(" wired_count = %d,\n", vme->wired_count);
321 printf("%*s aref = { ar_pageoff = %x, ar_amap = %p },",
322 indent(2), "", vme->aref.ar_pageoff, vme->aref.ar_amap);
323 printf(" advice = %d,\n", vme->advice);
324 printf("%*s flags = %x <%s%s%s%s%s > }\n", indent(2), "",
325 vme->flags,
326 vme->flags & UVM_MAP_KERNEL ? " KERNEL" : "",
327 vme->flags & UVM_MAP_KMAPENT ? " KMAPENT" : "",
328 vme->flags & UVM_MAP_FIRST ? " FIRST" : "",
329 vme->flags & UVM_MAP_QUANTUM ? " QUANTUM" : "",
330 vme->flags & UVM_MAP_NOMERGE ? " NOMERGE" : "");
331 }
332
333 if ((debug & PRINT_VM_AMAP) && (vme->aref.ar_amap != NULL)) {
334 struct kbit akbit, *amap;
335
336 amap = &akbit;
337 P(amap) = vme->aref.ar_amap;
338 S(amap) = sizeof(struct vm_amap);
339 KDEREF(kd, amap);
340 PMAPFUNC(dump_amap,VERSION)(kd, amap);
341 }
342
343 if (ishead)
344 return (0);
345
346 A(vp) = 0;
347 A(uvm_obj) = 0;
348
349 if (vme->object.uvm_obj != NULL) {
350 P(uvm_obj) = vme->object.uvm_obj;
351 S(uvm_obj) = sizeof(struct uvm_object);
352 KDEREF(kd, uvm_obj);
353 if (UVM_ET_ISOBJ(vme) &&
354 UVM_OBJ_IS_VNODE(D(uvm_obj, uvm_object))) {
355 P(vp) = P(uvm_obj);
356 S(vp) = sizeof(struct vnode);
357 KDEREF(kd, vp);
358 }
359 }
360
361 A(vfs) = 0;
362
363 if (P(vp) != NULL && D(vp, vnode)->v_mount != NULL) {
364 P(vfs) = D(vp, vnode)->v_mount;
365 S(vfs) = sizeof(struct mount);
366 KDEREF(kd, vfs);
367 D(vp, vnode)->v_mount = D(vfs, mount);
368 }
369
370 /*
371 * dig out the device number and inode number from certain
372 * file system types.
373 */
374 #define V_DATA_IS(vp, type, d, i) do { \
375 struct kbit data; \
376 P(&data) = D(vp, vnode)->v_data; \
377 S(&data) = sizeof(*D(&data, type)); \
378 KDEREF(kd, &data); \
379 dev = D(&data, type)->d; \
380 inode = D(&data, type)->i; \
381 } while (0/*CONSTCOND*/)
382
383 dev = 0;
384 inode = 0;
385
386 if (A(vp) &&
387 D(vp, vnode)->v_type == VREG &&
388 D(vp, vnode)->v_data != NULL) {
389 switch (D(vp, vnode)->v_tag) {
390 case VT_UFS:
391 case VT_LFS:
392 case VT_EXT2FS:
393 V_DATA_IS(vp, inode, i_dev, i_number);
394 break;
395 case VT_ISOFS:
396 V_DATA_IS(vp, iso_node, i_dev, i_number);
397 break;
398 case VT_NON:
399 case VT_NFS:
400 case VT_MFS:
401 case VT_MSDOSFS:
402 case VT_LOFS:
403 case VT_FDESC:
404 case VT_PORTAL:
405 case VT_NULL:
406 case VT_UMAP:
407 case VT_KERNFS:
408 case VT_PROCFS:
409 case VT_AFS:
410 case VT_UNION:
411 case VT_ADOSFS:
412 case VT_CODA:
413 case VT_FILECORE:
414 case VT_NTFS:
415 case VT_VFS:
416 case VT_OVERLAY:
417 case VT_SMBFS:
418 case VT_PTYFS:
419 break;
420 }
421 }
422
423 name = findname(kd, vmspace, vm_map_entry, vp, vfs, uvm_obj);
424
425 if (print_map) {
426 printf("%*s0x%lx 0x%lx %c%c%c %c%c%c %s %s %d %d %d",
427 indent(2), "",
428 vme->start, vme->end,
429 (vme->protection & VM_PROT_READ) ? 'r' : '-',
430 (vme->protection & VM_PROT_WRITE) ? 'w' : '-',
431 (vme->protection & VM_PROT_EXECUTE) ? 'x' : '-',
432 (vme->max_protection & VM_PROT_READ) ? 'r' : '-',
433 (vme->max_protection & VM_PROT_WRITE) ? 'w' : '-',
434 (vme->max_protection & VM_PROT_EXECUTE) ? 'x' : '-',
435 UVM_ET_ISCOPYONWRITE(vme) ? "COW" : "NCOW",
436 UVM_ET_ISNEEDSCOPY(vme) ? "NC" : "NNC",
437 vme->inheritance, vme->wired_count,
438 vme->advice);
439 if (verbose) {
440 if (inode)
441 printf(" %d,%d %d",
442 major(dev), minor(dev), inode);
443 if (name[0])
444 printf(" %s", name);
445 }
446 printf("\n");
447 }
448
449 if (print_maps) {
450 printf("%*s%0*lx-%0*lx %c%c%c%c %0*" PRIx64 " %02x:%02x %d %s\n",
451 indent(2), "",
452 (int)sizeof(void *) * 2, vme->start,
453 (int)sizeof(void *) * 2, vme->end,
454 (vme->protection & VM_PROT_READ) ? 'r' : '-',
455 (vme->protection & VM_PROT_WRITE) ? 'w' : '-',
456 (vme->protection & VM_PROT_EXECUTE) ? 'x' : '-',
457 UVM_ET_ISCOPYONWRITE(vme) ? 'p' : 's',
458 (int)sizeof(void *) * 2,
459 vme->offset,
460 major(dev), minor(dev), inode,
461 (name[0] != ' ') || verbose ? name : "");
462 }
463
464 if (print_ddb) {
465 printf("%*s - %p: 0x%lx->0x%lx: obj=%p/0x%" PRIx64 ", amap=%p/%d\n",
466 indent(2), "",
467 P(vm_map_entry), vme->start, vme->end,
468 vme->object.uvm_obj, vme->offset,
469 vme->aref.ar_amap, vme->aref.ar_pageoff);
470 printf("\t%*ssubmap=%c, cow=%c, nc=%c, prot(max)=%d/%d, inh=%d, "
471 "wc=%d, adv=%d\n",
472 indent(2), "",
473 UVM_ET_ISSUBMAP(vme) ? 'T' : 'F',
474 UVM_ET_ISCOPYONWRITE(vme) ? 'T' : 'F',
475 UVM_ET_ISNEEDSCOPY(vme) ? 'T' : 'F',
476 vme->protection, vme->max_protection,
477 vme->inheritance, vme->wired_count, vme->advice);
478 if (verbose) {
479 printf("\t%*s", indent(2), "");
480 if (inode)
481 printf("(dev=%d,%d ino=%d [%s] [%p])\n",
482 major(dev), minor(dev), inode,
483 name, P(vp));
484 else if (name[0] == ' ')
485 printf("(%s)\n", &name[2]);
486 else
487 printf("(%s)\n", name);
488 }
489 }
490
491 sz = 0;
492 if (print_solaris) {
493 char prot[30];
494
495 prot[0] = '\0';
496 prot[1] = '\0';
497 if (vme->protection & VM_PROT_READ)
498 strlcat(prot, "/read", sizeof(prot));
499 if (vme->protection & VM_PROT_WRITE)
500 strlcat(prot, "/write", sizeof(prot));
501 if (vme->protection & VM_PROT_EXECUTE)
502 strlcat(prot, "/exec", sizeof(prot));
503
504 sz = (size_t)((vme->end - vme->start) / 1024);
505 printf("%*s%0*lX %6luK %-15s %s\n",
506 indent(2), "",
507 (int)sizeof(void *) * 2,
508 (unsigned long)vme->start,
509 (unsigned long)sz,
510 &prot[1],
511 name);
512 }
513
514 if (print_all) {
515 sz = (size_t)((vme->end - vme->start) / 1024);
516 printf(A(vp) ?
517 "%*s%0*lx-%0*lx %7luk %0*" PRIx64 " %c%c%c%c%c (%c%c%c) %d/%d/%d %02d:%02d %7d - %s [%p]\n" :
518 "%*s%0*lx-%0*lx %7luk %0*" PRIx64 " %c%c%c%c%c (%c%c%c) %d/%d/%d %02d:%02d %7d - %s\n",
519 indent(2), "",
520 (int)sizeof(void *) * 2,
521 vme->start,
522 (int)sizeof(void *) * 2,
523 vme->end - (vme->start != vme->end ? 1 : 0),
524 (unsigned long)sz,
525 (int)sizeof(void *) * 2,
526 vme->offset,
527 (vme->protection & VM_PROT_READ) ? 'r' : '-',
528 (vme->protection & VM_PROT_WRITE) ? 'w' : '-',
529 (vme->protection & VM_PROT_EXECUTE) ? 'x' : '-',
530 UVM_ET_ISCOPYONWRITE(vme) ? 'p' : 's',
531 UVM_ET_ISNEEDSCOPY(vme) ? '+' : '-',
532 (vme->max_protection & VM_PROT_READ) ? 'r' : '-',
533 (vme->max_protection & VM_PROT_WRITE) ? 'w' : '-',
534 (vme->max_protection & VM_PROT_EXECUTE) ? 'x' : '-',
535 vme->inheritance,
536 vme->wired_count,
537 vme->advice,
538 major(dev), minor(dev), inode,
539 name, P(vp));
540 }
541
542 /* no access allowed, don't count space */
543 if ((vme->protection & rwx) == 0)
544 sz = 0;
545
546 if (recurse && UVM_ET_ISSUBMAP(vme)) {
547 struct kbit mkbit, *submap;
548
549 recurse++;
550 submap = &mkbit;
551 P(submap) = vme->object.sub_map;
552 S(submap) = sizeof(*vme->object.sub_map);
553 KDEREF(kd, submap);
554 PMAPFUNC(dump_vm_map,VERSION)(kd, proc, vmspace, submap, "submap");
555 recurse--;
556 }
557
558 return (sz);
559 }
560
561 void
562 PMAPFUNC(dump_amap,VERSION)(kvm_t *kd, struct kbit *amap)
563 {
564 struct vm_anon **am_anon;
565 int *am_slots;
566 int *am_bckptr;
567 int *am_ppref;
568 size_t i, r, l, e;
569
570 if (S(amap) == (size_t)-1) {
571 heapfound = 1;
572 S(amap) = sizeof(struct vm_amap);
573 KDEREF(kd, amap);
574 }
575
576 printf("%*s amap %p = { am_l = <struct simplelock>, am_ref = %d, "
577 "am_flags = %x,\n"
578 "%*s am_maxslot = %d, am_nslot = %d, am_nused = %d, "
579 "am_slots = %p,\n"
580 "%*s am_bckptr = %p, am_anon = %p, am_ppref = %p }\n",
581 indent(2), "",
582 P(amap),
583 D(amap, amap)->am_ref,
584 D(amap, amap)->am_flags,
585 indent(2), "",
586 D(amap, amap)->am_maxslot,
587 D(amap, amap)->am_nslot,
588 D(amap, amap)->am_nused,
589 D(amap, amap)->am_slots,
590 indent(2), "",
591 D(amap, amap)->am_bckptr,
592 D(amap, amap)->am_anon,
593 D(amap, amap)->am_ppref);
594
595 if (!(debug & DUMP_VM_AMAP_DATA))
596 return;
597
598 /*
599 * Assume that sizeof(struct vm_anon *) >= sizeof(size_t) and
600 * allocate that amount of space.
601 */
602 l = sizeof(struct vm_anon *) * D(amap, amap)->am_maxslot;
603 am_anon = malloc(l);
604 _KDEREF(kd, (u_long)D(amap, amap)->am_anon, am_anon, l);
605
606 l = sizeof(int) * D(amap, amap)->am_maxslot;
607 am_bckptr = malloc(l);
608 _KDEREF(kd, (u_long)D(amap, amap)->am_bckptr, am_bckptr, l);
609
610 l = sizeof(int) * D(amap, amap)->am_maxslot;
611 am_slots = malloc(l);
612 _KDEREF(kd, (u_long)D(amap, amap)->am_slots, am_slots, l);
613
614 if (D(amap, amap)->am_ppref != NULL &&
615 D(amap, amap)->am_ppref != PPREF_NONE) {
616 l = sizeof(int) * D(amap, amap)->am_maxslot;
617 am_ppref = malloc(l);
618 _KDEREF(kd, (u_long)D(amap, amap)->am_ppref, am_ppref, l);
619 } else {
620 am_ppref = NULL;
621 }
622
623 printf(" page# %9s %8s", "am_bckptr", "am_slots");
624 if (am_ppref)
625 printf(" %8s ", "am_ppref");
626 printf(" %10s\n", "am_anon");
627
628 l = r = 0;
629 e = verbose > 1 ? D(amap, amap)->am_maxslot : D(amap, amap)->am_nslot;
630 for (i = 0; i < e; i++) {
631 printf(" %4lx", (unsigned long)i);
632
633 if (am_anon[i] || verbose > 1)
634 printf(" %8x", am_bckptr[i]);
635 else
636 printf(" %8s", "-");
637
638 if (i < D(amap, amap)->am_nused || verbose > 1)
639 printf(" %8x", am_slots[i]);
640 else
641 printf(" %8s", "-");
642
643 if (am_ppref) {
644 if (l == 0 || r || verbose > 1)
645 printf(" %8d", am_ppref[i]);
646 else
647 printf(" %8s", "-");
648 r = 0;
649 if (l == 0) {
650 if (am_ppref[i] > 0) {
651 r = am_ppref[i] - 1;
652 l = 1;
653 } else {
654 r = -am_ppref[i] - 1;
655 l = am_ppref[i + 1];
656 }
657 printf(" (%4ld @ %4ld)", (long)l, (long)r);
658 r = (l > 1) ? 1 : 0;
659 }
660 else
661 printf(" ");
662 l--;
663 }
664
665 dump_vm_anon(kd, am_anon, (int)i);
666 }
667
668 free(am_anon);
669 free(am_bckptr);
670 free(am_slots);
671 if (am_ppref)
672 free(am_ppref);
673 }
674
675 static void
676 dump_vm_anon(kvm_t *kd, struct vm_anon **alist, int i)
677 {
678
679 printf(" %10p", alist[i]);
680
681 if (debug & PRINT_VM_ANON) {
682 struct kbit kbit, *anon = &kbit;
683
684 A(anon) = (u_long)alist[i];
685 S(anon) = sizeof(struct vm_anon);
686 if (A(anon) == 0) {
687 printf(" = { }\n");
688 return;
689 }
690 else
691 KDEREF(kd, anon);
692
693 printf(" = { an_ref = %d, an_lock = <struct simplelock>, an_nxt/an_page = %p, an_swslot = %d }",
694 D(anon, anon)->an_ref, D(anon, anon)->u.an_nxt, D(anon, anon)->an_swslot);
695 }
696
697 printf("\n");
698 }
699
700 static char*
701 findname(kvm_t *kd, struct kbit *vmspace,
702 struct kbit *vm_map_entry, struct kbit *vp,
703 struct kbit *vfs, struct kbit *uvm_obj)
704 {
705 static char buf[1024], *name;
706 struct vm_map_entry *vme;
707 size_t l;
708
709 vme = D(vm_map_entry, vm_map_entry);
710
711 if (UVM_ET_ISOBJ(vme)) {
712 if (A(vfs)) {
713 l = (unsigned)strlen(D(vfs, mount)->mnt_stat.f_mntonname);
714 switch (search_cache(kd, vp, &name, buf, sizeof(buf))) {
715 case 0: /* found something */
716 name--;
717 *name = '/';
718 /*FALLTHROUGH*/
719 case 2: /* found nothing */
720 name -= 5;
721 memcpy(name, " -?- ", (size_t)5);
722 name -= l;
723 memcpy(name,
724 D(vfs, mount)->mnt_stat.f_mntonname, l);
725 break;
726 case 1: /* all is well */
727 name--;
728 *name = '/';
729 if (l != 1) {
730 name -= l;
731 memcpy(name,
732 D(vfs, mount)->mnt_stat.f_mntonname, l);
733 }
734 break;
735 }
736 }
737 else if (UVM_OBJ_IS_DEVICE(D(uvm_obj, uvm_object))) {
738 struct kbit kdev;
739 dev_t dev;
740
741 P(&kdev) = P(uvm_obj);
742 S(&kdev) = sizeof(struct uvm_device);
743 KDEREF(kd, &kdev);
744 dev = D(&kdev, uvm_device)->u_device;
745 name = devname(dev, S_IFCHR);
746 if (name != NULL)
747 snprintf(buf, sizeof(buf), "/dev/%s", name);
748 else
749 snprintf(buf, sizeof(buf), " [ device %d,%d ]",
750 major(dev), minor(dev));
751 name = buf;
752 }
753 else if (UVM_OBJ_IS_AOBJ(D(uvm_obj, uvm_object)))
754 name = " [ uvm_aobj ]";
755 else if (UVM_OBJ_IS_UBCPAGER(D(uvm_obj, uvm_object)))
756 name = " [ ubc_pager ]";
757 else if (UVM_OBJ_IS_VNODE(D(uvm_obj, uvm_object)))
758 name = " [ ?VNODE? ]";
759 else {
760 snprintf(buf, sizeof(buf), " [ ?? %p ?? ]",
761 D(uvm_obj, uvm_object)->pgops);
762 name = buf;
763 }
764 }
765
766 else if (D(vmspace, vmspace)->vm_maxsaddr <=
767 (caddr_t)vme->start &&
768 (D(vmspace, vmspace)->vm_maxsaddr + (size_t)maxssiz) >=
769 (caddr_t)vme->end)
770 name = " [ stack ]";
771
772 else if (!heapfound &&
773 (vme->protection & rwx) == rwx &&
774 vme->start >= (u_long)D(vmspace, vmspace)->vm_daddr) {
775 heapfound = 1;
776 name = " [ heap ]";
777 }
778
779 else if (UVM_ET_ISSUBMAP(vme)) {
780 const char *sub = mapname(vme->object.sub_map);
781 snprintf(buf, sizeof(buf), " [ %s ]", sub ? sub : "(submap)");
782 name = buf;
783 }
784
785 else
786 name = " [ anon ]";
787
788 return (name);
789 }
790
791 static int
792 search_cache(kvm_t *kd, struct kbit *vp, char **name, char *buf, size_t blen)
793 {
794 char *o, *e;
795 struct cache_entry *ce;
796 struct kbit svp;
797
798 if (nchashtbl == NULL)
799 load_name_cache(kd);
800
801 P(&svp) = P(vp);
802 S(&svp) = sizeof(struct vnode);
803
804 e = &buf[blen - 1];
805 o = e;
806 do {
807 LIST_FOREACH(ce, &lcache, ce_next)
808 if (ce->ce_vp == P(&svp))
809 break;
810 if (ce && ce->ce_vp == P(&svp)) {
811 if (o != e)
812 *(--o) = '/';
813 o -= ce->ce_nlen;
814 memcpy(o, ce->ce_name, (unsigned)ce->ce_nlen);
815 P(&svp) = ce->ce_pvp;
816 }
817 else
818 break;
819 } while (1/*CONSTCOND*/);
820 *e = '\0';
821 *name = o;
822
823 if (e == o)
824 return (2);
825
826 KDEREF(kd, &svp);
827 return (D(&svp, vnode)->v_flag & VROOT);
828 }
829