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1.1 root 1: /*
2: * Mach Operating System
3: * Copyright (c) 1991,1990 Carnegie Mellon University
4: * All Rights Reserved.
5: *
6: * Permission to use, copy, modify and distribute this software and its
7: * documentation is hereby granted, provided that both the copyright
8: * notice and this permission notice appear in all copies of the
9: * software, derivative works or modified versions, and any portions
10: * thereof, and that both notices appear in supporting documentation.
11: *
12: * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
13: * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND FOR
14: * ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
15: *
16: * Carnegie Mellon requests users of this software to return to
17: *
18: * Software Distribution Coordinator or [email protected]
19: * School of Computer Science
20: * Carnegie Mellon University
21: * Pittsburgh PA 15213-3890
22: *
23: * any improvements or extensions that they make and grant Carnegie Mellon
24: * the rights to redistribute these changes.
25: */
26: /*
27: * File: vm/vm_debug.c.
28: * Author: Rich Draves
29: * Date: March, 1990
30: *
31: * Exported kernel calls. See mach_debug/mach_debug.defs.
32: */
33:
34: #include <mach_vm_debug.h>
35: #if MACH_VM_DEBUG
36:
37: #include <kern/thread.h>
38: #include <mach/kern_return.h>
39: #include <mach/machine/vm_types.h>
40: #include <mach/memory_object.h>
41: #include <mach/vm_prot.h>
42: #include <mach/vm_inherit.h>
43: #include <mach/vm_param.h>
44: #include <mach_debug/vm_info.h>
45: #include <mach_debug/hash_info.h>
46: #include <vm/vm_map.h>
47: #include <vm/vm_kern.h>
48: #include <vm/vm_object.h>
49: #include <kern/task.h>
50: #include <kern/host.h>
51: #include <ipc/ipc_port.h>
52:
53:
54:
55: /*
56: * Routine: vm_object_real_name
57: * Purpose:
58: * Convert a VM object to a name port.
59: * Conditions:
60: * Takes object and port locks.
61: * Returns:
62: * A naked send right for the object's name port,
63: * or IP_NULL if the object or its name port is null.
64: */
65:
66: ipc_port_t
67: vm_object_real_name(object)
68: vm_object_t object;
69: {
70: ipc_port_t port = IP_NULL;
71:
72: if (object != VM_OBJECT_NULL) {
73: vm_object_lock(object);
74: if (object->pager_name != IP_NULL)
75: port = ipc_port_make_send(object->pager_name);
76: vm_object_unlock(object);
77: }
78:
79: return port;
80: }
81:
82: /*
83: * Routine: mach_vm_region_info [kernel call]
84: * Purpose:
85: * Retrieve information about a VM region,
86: * including info about the object chain.
87: * Conditions:
88: * Nothing locked.
89: * Returns:
90: * KERN_SUCCESS Retrieve region/object info.
91: * KERN_INVALID_TASK The map is null.
92: * KERN_NO_SPACE There is no entry at/after the address.
93: */
94:
95: kern_return_t
96: mach_vm_region_info(map, address, regionp, portp)
97: vm_map_t map;
98: vm_offset_t address;
99: vm_region_info_t *regionp;
100: ipc_port_t *portp;
101: {
102: vm_map_t cmap; /* current map in traversal */
103: vm_map_t nmap; /* next map to look at */
104: vm_map_entry_t entry; /* entry in current map */
105: vm_object_t object;
106:
107: if (map == VM_MAP_NULL)
108: return KERN_INVALID_TASK;
109:
110: /* find the entry containing (or following) the address */
111:
112: vm_map_lock_read(map);
113: for (cmap = map;;) {
114: /* cmap is read-locked */
115:
116: if (!vm_map_lookup_entry(cmap, address, &entry)) {
117: entry = entry->vme_next;
118: if (entry == vm_map_to_entry(cmap)) {
119: if (map == cmap) {
120: vm_map_unlock_read(cmap);
121: return KERN_NO_SPACE;
122: }
123:
124: /* back out to top-level & skip this submap */
125:
126: address = vm_map_max(cmap);
127: vm_map_unlock_read(cmap);
128: vm_map_lock_read(map);
129: cmap = map;
130: continue;
131: }
132: }
133:
134: if (entry->is_sub_map) {
135: /* move down to the sub map */
136:
137: nmap = entry->object.sub_map;
138: vm_map_lock_read(nmap);
139: vm_map_unlock_read(cmap);
140: cmap = nmap;
141: continue;
142: } else {
143: break;
144: }
145: /*NOTREACHED*/
146: }
147:
148:
149: assert(entry->vme_start < entry->vme_end);
150:
151: regionp->vri_start = entry->vme_start;
152: regionp->vri_end = entry->vme_end;
153:
154: /* attributes from the real entry */
155:
156: regionp->vri_protection = entry->protection;
157: regionp->vri_max_protection = entry->max_protection;
158: regionp->vri_inheritance = entry->inheritance;
159: regionp->vri_wired_count = entry->wired_count;
160: regionp->vri_user_wired_count = entry->user_wired_count;
161:
162: object = entry->object.vm_object;
163: *portp = vm_object_real_name(object);
164: regionp->vri_object = (vm_offset_t) object;
165: regionp->vri_offset = entry->offset;
166: regionp->vri_needs_copy = entry->needs_copy;
167:
168: regionp->vri_sharing = entry->is_shared;
169:
170: vm_map_unlock_read(cmap);
171: return KERN_SUCCESS;
172: }
173:
174: /*
175: * Routine: mach_vm_object_info [kernel call]
176: * Purpose:
177: * Retrieve information about a VM object.
178: * Conditions:
179: * Nothing locked.
180: * Returns:
181: * KERN_SUCCESS Retrieved object info.
182: * KERN_INVALID_ARGUMENT The object is null.
183: */
184:
185: kern_return_t
186: mach_vm_object_info(object, infop, shadowp, copyp)
187: vm_object_t object;
188: vm_object_info_t *infop;
189: ipc_port_t *shadowp;
190: ipc_port_t *copyp;
191: {
192: vm_object_info_t info;
193: vm_object_info_state_t state;
194: ipc_port_t shadow, copy;
195:
196: if (object == VM_OBJECT_NULL)
197: return KERN_INVALID_ARGUMENT;
198:
199: /*
200: * Because of lock-ordering/deadlock considerations,
201: * we can't use vm_object_real_name for the copy object.
202: */
203:
204: retry:
205: vm_object_lock(object);
206: copy = IP_NULL;
207: if (object->copy != VM_OBJECT_NULL) {
208: if (!vm_object_lock_try(object->copy)) {
209: vm_object_unlock(object);
210: simple_lock_pause(); /* wait a bit */
211: goto retry;
212: }
213:
214: if (object->copy->pager_name != IP_NULL)
215: copy = ipc_port_make_send(object->copy->pager_name);
216: vm_object_unlock(object->copy);
217: }
218: shadow = vm_object_real_name(object->shadow);
219:
220: info.voi_object = (vm_offset_t) object;
221: info.voi_pagesize = PAGE_SIZE;
222: info.voi_size = object->size;
223: info.voi_ref_count = object->ref_count;
224: info.voi_resident_page_count = object->resident_page_count;
225: info.voi_absent_count = object->absent_count;
226: info.voi_copy = (vm_offset_t) object->copy;
227: info.voi_shadow = (vm_offset_t) object->shadow;
228: info.voi_shadow_offset = object->shadow_offset;
229: info.voi_paging_offset = object->paging_offset;
230: info.voi_copy_strategy = object->copy_strategy;
231: info.voi_last_alloc = object->last_alloc;
232: info.voi_paging_in_progress = object->paging_in_progress;
233:
234: state = 0;
235: if (object->pager_created)
236: state |= VOI_STATE_PAGER_CREATED;
237: if (object->pager_initialized)
238: state |= VOI_STATE_PAGER_INITIALIZED;
239: if (object->pager_ready)
240: state |= VOI_STATE_PAGER_READY;
241: if (object->can_persist)
242: state |= VOI_STATE_CAN_PERSIST;
243: if (object->internal)
244: state |= VOI_STATE_INTERNAL;
245: if (object->temporary)
246: state |= VOI_STATE_TEMPORARY;
247: if (object->alive)
248: state |= VOI_STATE_ALIVE;
249: if (object->lock_in_progress)
250: state |= VOI_STATE_LOCK_IN_PROGRESS;
251: if (object->lock_restart)
252: state |= VOI_STATE_LOCK_RESTART;
253: if (object->use_old_pageout)
254: state |= VOI_STATE_USE_OLD_PAGEOUT;
255: info.voi_state = state;
256: vm_object_unlock(object);
257:
258: *infop = info;
259: *shadowp = shadow;
260: *copyp = copy;
261: return KERN_SUCCESS;
262: }
263:
264: #define VPI_STATE_NODATA (VPI_STATE_BUSY|VPI_STATE_FICTITIOUS| \
265: VPI_STATE_PRIVATE|VPI_STATE_ABSENT)
266:
267: /*
268: * Routine: mach_vm_object_pages [kernel call]
269: * Purpose:
270: * Retrieve information about the pages in a VM object.
271: * Conditions:
272: * Nothing locked. Obeys CountInOut protocol.
273: * Returns:
274: * KERN_SUCCESS Retrieved object info.
275: * KERN_INVALID_ARGUMENT The object is null.
276: * KERN_RESOURCE_SHORTAGE Couldn't allocate memory.
277: */
278:
279: kern_return_t
280: mach_vm_object_pages(object, pagesp, countp)
281: vm_object_t object;
282: vm_page_info_array_t *pagesp;
283: natural_t *countp;
284: {
285: vm_size_t size;
286: vm_offset_t addr;
287: vm_page_info_t *pages;
288: unsigned int potential, actual, count;
289: vm_page_t p;
290: kern_return_t kr;
291:
292: if (object == VM_OBJECT_NULL)
293: return KERN_INVALID_ARGUMENT;
294:
295: /* start with in-line memory */
296:
297: pages = *pagesp;
298: potential = *countp;
299:
300: for (size = 0;;) {
301: vm_object_lock(object);
302: actual = object->resident_page_count;
303: if (actual <= potential)
304: break;
305: vm_object_unlock(object);
306:
307: if (pages != *pagesp)
308: kmem_free(ipc_kernel_map, addr, size);
309:
310: size = round_page(actual * sizeof *pages);
311: kr = kmem_alloc(ipc_kernel_map, &addr, size);
312: if (kr != KERN_SUCCESS)
313: return kr;
314:
315: pages = (vm_page_info_t *) addr;
316: potential = size/sizeof *pages;
317: }
318: /* object is locked, we have enough wired memory */
319:
320: count = 0;
321: queue_iterate(&object->memq, p, vm_page_t, listq) {
322: vm_page_info_t *info = &pages[count++];
323: vm_page_info_state_t state = 0;
324:
325: info->vpi_offset = p->offset;
326: info->vpi_phys_addr = p->phys_addr;
327: info->vpi_wire_count = p->wire_count;
328: info->vpi_page_lock = p->page_lock;
329: info->vpi_unlock_request = p->unlock_request;
330:
331: if (p->busy)
332: state |= VPI_STATE_BUSY;
333: if (p->wanted)
334: state |= VPI_STATE_WANTED;
335: if (p->tabled)
336: state |= VPI_STATE_TABLED;
337: if (p->fictitious)
338: state |= VPI_STATE_FICTITIOUS;
339: if (p->private)
340: state |= VPI_STATE_PRIVATE;
341: if (p->absent)
342: state |= VPI_STATE_ABSENT;
343: if (p->error)
344: state |= VPI_STATE_ERROR;
345: if (p->dirty)
346: state |= VPI_STATE_DIRTY;
347: if (p->precious)
348: state |= VPI_STATE_PRECIOUS;
349: if (p->overwriting)
350: state |= VPI_STATE_OVERWRITING;
351:
352: if (((state & (VPI_STATE_NODATA|VPI_STATE_DIRTY)) == 0) &&
353: pmap_is_modified(p->phys_addr)) {
354: state |= VPI_STATE_DIRTY;
355: p->dirty = TRUE;
356: }
357:
358: vm_page_lock_queues();
359: if (p->inactive)
360: state |= VPI_STATE_INACTIVE;
361: if (p->active)
362: state |= VPI_STATE_ACTIVE;
363: if (p->laundry)
364: state |= VPI_STATE_LAUNDRY;
365: if (p->free)
366: state |= VPI_STATE_FREE;
367: if (p->reference)
368: state |= VPI_STATE_REFERENCE;
369:
370: if (((state & (VPI_STATE_NODATA|VPI_STATE_REFERENCE)) == 0) &&
371: pmap_is_referenced(p->phys_addr)) {
372: state |= VPI_STATE_REFERENCE;
373: p->reference = TRUE;
374: }
375: vm_page_unlock_queues();
376:
377: info->vpi_state = state;
378: }
379:
380: if (object->resident_page_count != count)
381: panic("mach_vm_object_pages");
382: vm_object_unlock(object);
383:
384: if (pages == *pagesp) {
385: /* data fit in-line; nothing to deallocate */
386:
387: *countp = actual;
388: } else if (actual == 0) {
389: kmem_free(ipc_kernel_map, addr, size);
390:
391: *countp = 0;
392: } else {
393: vm_size_t size_used, rsize_used;
394: vm_map_copy_t copy;
395:
396: /* kmem_alloc doesn't zero memory */
397:
398: size_used = actual * sizeof *pages;
399: rsize_used = round_page(size_used);
400:
401: if (rsize_used != size)
402: kmem_free(ipc_kernel_map,
403: addr + rsize_used, size - rsize_used);
404:
405: if (size_used != rsize_used)
406: bzero((char *) (addr + size_used),
407: rsize_used - size_used);
408:
409: kr = vm_map_copyin(ipc_kernel_map, addr, rsize_used,
410: TRUE, ©);
411: assert(kr == KERN_SUCCESS);
412:
413: *pagesp = (vm_page_info_t *) copy;
414: *countp = actual;
415: }
416:
417: return KERN_SUCCESS;
418: }
419:
420: #endif /* MACH_VM_DEBUG */
421:
422: /*
423: * Routine: host_virtual_physical_table_info
424: * Purpose:
425: * Return information about the VP table.
426: * Conditions:
427: * Nothing locked. Obeys CountInOut protocol.
428: * Returns:
429: * KERN_SUCCESS Returned information.
430: * KERN_INVALID_HOST The host is null.
431: * KERN_RESOURCE_SHORTAGE Couldn't allocate memory.
432: */
433:
434: kern_return_t
435: host_virtual_physical_table_info(host, infop, countp)
436: host_t host;
437: hash_info_bucket_array_t *infop;
438: natural_t *countp;
439: {
440: vm_offset_t addr;
441: vm_size_t size = 0;/* '=0' to quiet gcc warnings */
442: hash_info_bucket_t *info;
443: unsigned int potential, actual;
444: kern_return_t kr;
445:
446: if (host == HOST_NULL)
447: return KERN_INVALID_HOST;
448:
449: /* start with in-line data */
450:
451: info = *infop;
452: potential = *countp;
453:
454: for (;;) {
455: actual = vm_page_info(info, potential);
456: if (actual <= potential)
457: break;
458:
459: /* allocate more memory */
460:
461: if (info != *infop)
462: kmem_free(ipc_kernel_map, addr, size);
463:
464: size = round_page(actual * sizeof *info);
465: kr = kmem_alloc_pageable(ipc_kernel_map, &addr, size);
466: if (kr != KERN_SUCCESS)
467: return KERN_RESOURCE_SHORTAGE;
468:
469: info = (hash_info_bucket_t *) addr;
470: potential = size/sizeof *info;
471: }
472:
473: if (info == *infop) {
474: /* data fit in-line; nothing to deallocate */
475:
476: *countp = actual;
477: } else if (actual == 0) {
478: kmem_free(ipc_kernel_map, addr, size);
479:
480: *countp = 0;
481: } else {
482: vm_map_copy_t copy;
483: vm_size_t used;
484:
485: used = round_page(actual * sizeof *info);
486:
487: if (used != size)
488: kmem_free(ipc_kernel_map, addr + used, size - used);
489:
490: kr = vm_map_copyin(ipc_kernel_map, addr, used,
491: TRUE, ©);
492: assert(kr == KERN_SUCCESS);
493:
494: *infop = (hash_info_bucket_t *) copy;
495: *countp = actual;
496: }
497:
498: return KERN_SUCCESS;
499: }
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