kern_malloc.c revision 1.127 1 1.127 pooka /* $NetBSD: kern_malloc.c,v 1.127 2009/09/13 18:45:11 pooka Exp $ */
2 1.9 cgd
3 1.1 cgd /*
4 1.8 cgd * Copyright (c) 1987, 1991, 1993
5 1.8 cgd * The Regents of the University of California. All rights reserved.
6 1.1 cgd *
7 1.1 cgd * Redistribution and use in source and binary forms, with or without
8 1.1 cgd * modification, are permitted provided that the following conditions
9 1.1 cgd * are met:
10 1.1 cgd * 1. Redistributions of source code must retain the above copyright
11 1.1 cgd * notice, this list of conditions and the following disclaimer.
12 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 cgd * notice, this list of conditions and the following disclaimer in the
14 1.1 cgd * documentation and/or other materials provided with the distribution.
15 1.81 agc * 3. Neither the name of the University nor the names of its contributors
16 1.81 agc * may be used to endorse or promote products derived from this software
17 1.81 agc * without specific prior written permission.
18 1.81 agc *
19 1.81 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 1.81 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.81 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.81 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 1.81 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.81 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.81 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.81 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.81 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.81 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.81 agc * SUCH DAMAGE.
30 1.81 agc *
31 1.81 agc * @(#)kern_malloc.c 8.4 (Berkeley) 5/20/95
32 1.81 agc */
33 1.81 agc
34 1.81 agc /*
35 1.81 agc * Copyright (c) 1996 Christopher G. Demetriou. All rights reserved.
36 1.81 agc *
37 1.81 agc * Redistribution and use in source and binary forms, with or without
38 1.81 agc * modification, are permitted provided that the following conditions
39 1.81 agc * are met:
40 1.81 agc * 1. Redistributions of source code must retain the above copyright
41 1.81 agc * notice, this list of conditions and the following disclaimer.
42 1.81 agc * 2. Redistributions in binary form must reproduce the above copyright
43 1.81 agc * notice, this list of conditions and the following disclaimer in the
44 1.81 agc * documentation and/or other materials provided with the distribution.
45 1.1 cgd * 3. All advertising materials mentioning features or use of this software
46 1.1 cgd * must display the following acknowledgement:
47 1.1 cgd * This product includes software developed by the University of
48 1.1 cgd * California, Berkeley and its contributors.
49 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
50 1.1 cgd * may be used to endorse or promote products derived from this software
51 1.1 cgd * without specific prior written permission.
52 1.1 cgd *
53 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
54 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
55 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
56 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
57 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
58 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
59 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
60 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
61 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
62 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
63 1.1 cgd * SUCH DAMAGE.
64 1.1 cgd *
65 1.32 fvdl * @(#)kern_malloc.c 8.4 (Berkeley) 5/20/95
66 1.1 cgd */
67 1.64 lukem
68 1.64 lukem #include <sys/cdefs.h>
69 1.127 pooka __KERNEL_RCSID(0, "$NetBSD: kern_malloc.c,v 1.127 2009/09/13 18:45:11 pooka Exp $");
70 1.1 cgd
71 1.7 mycroft #include <sys/param.h>
72 1.7 mycroft #include <sys/proc.h>
73 1.7 mycroft #include <sys/kernel.h>
74 1.7 mycroft #include <sys/malloc.h>
75 1.12 christos #include <sys/systm.h>
76 1.106 ad #include <sys/debug.h>
77 1.109 ad #include <sys/mutex.h>
78 1.113 ad #include <sys/lockdebug.h>
79 1.24 thorpej
80 1.28 mrg #include <uvm/uvm_extern.h>
81 1.28 mrg
82 1.92 yamt static struct vm_map_kernel kmem_map_store;
83 1.58 chs struct vm_map *kmem_map = NULL;
84 1.28 mrg
85 1.49 thorpej #include "opt_kmempages.h"
86 1.49 thorpej
87 1.49 thorpej #ifdef NKMEMCLUSTERS
88 1.52 sommerfe #error NKMEMCLUSTERS is obsolete; remove it from your kernel config file and use NKMEMPAGES instead or let the kernel auto-size
89 1.49 thorpej #endif
90 1.49 thorpej
91 1.49 thorpej /*
92 1.49 thorpej * Default number of pages in kmem_map. We attempt to calculate this
93 1.49 thorpej * at run-time, but allow it to be either patched or set in the kernel
94 1.49 thorpej * config file.
95 1.49 thorpej */
96 1.49 thorpej #ifndef NKMEMPAGES
97 1.49 thorpej #define NKMEMPAGES 0
98 1.49 thorpej #endif
99 1.49 thorpej int nkmempages = NKMEMPAGES;
100 1.49 thorpej
101 1.49 thorpej /*
102 1.49 thorpej * Defaults for lower- and upper-bounds for the kmem_map page count.
103 1.49 thorpej * Can be overridden by kernel config options.
104 1.49 thorpej */
105 1.49 thorpej #ifndef NKMEMPAGES_MIN
106 1.49 thorpej #define NKMEMPAGES_MIN NKMEMPAGES_MIN_DEFAULT
107 1.49 thorpej #endif
108 1.49 thorpej
109 1.49 thorpej #ifndef NKMEMPAGES_MAX
110 1.49 thorpej #define NKMEMPAGES_MAX NKMEMPAGES_MAX_DEFAULT
111 1.49 thorpej #endif
112 1.49 thorpej
113 1.24 thorpej #include "opt_kmemstats.h"
114 1.27 thorpej #include "opt_malloclog.h"
115 1.71 fvdl #include "opt_malloc_debug.h"
116 1.12 christos
117 1.103 chs #define MINALLOCSIZE (1 << MINBUCKET)
118 1.103 chs #define BUCKETINDX(size) \
119 1.103 chs ((size) <= (MINALLOCSIZE * 128) \
120 1.103 chs ? (size) <= (MINALLOCSIZE * 8) \
121 1.103 chs ? (size) <= (MINALLOCSIZE * 2) \
122 1.103 chs ? (size) <= (MINALLOCSIZE * 1) \
123 1.103 chs ? (MINBUCKET + 0) \
124 1.103 chs : (MINBUCKET + 1) \
125 1.103 chs : (size) <= (MINALLOCSIZE * 4) \
126 1.103 chs ? (MINBUCKET + 2) \
127 1.103 chs : (MINBUCKET + 3) \
128 1.103 chs : (size) <= (MINALLOCSIZE* 32) \
129 1.103 chs ? (size) <= (MINALLOCSIZE * 16) \
130 1.103 chs ? (MINBUCKET + 4) \
131 1.103 chs : (MINBUCKET + 5) \
132 1.103 chs : (size) <= (MINALLOCSIZE * 64) \
133 1.103 chs ? (MINBUCKET + 6) \
134 1.103 chs : (MINBUCKET + 7) \
135 1.103 chs : (size) <= (MINALLOCSIZE * 2048) \
136 1.103 chs ? (size) <= (MINALLOCSIZE * 512) \
137 1.103 chs ? (size) <= (MINALLOCSIZE * 256) \
138 1.103 chs ? (MINBUCKET + 8) \
139 1.103 chs : (MINBUCKET + 9) \
140 1.103 chs : (size) <= (MINALLOCSIZE * 1024) \
141 1.103 chs ? (MINBUCKET + 10) \
142 1.103 chs : (MINBUCKET + 11) \
143 1.103 chs : (size) <= (MINALLOCSIZE * 8192) \
144 1.103 chs ? (size) <= (MINALLOCSIZE * 4096) \
145 1.103 chs ? (MINBUCKET + 12) \
146 1.103 chs : (MINBUCKET + 13) \
147 1.103 chs : (size) <= (MINALLOCSIZE * 16384) \
148 1.103 chs ? (MINBUCKET + 14) \
149 1.103 chs : (MINBUCKET + 15))
150 1.103 chs
151 1.103 chs /*
152 1.103 chs * Array of descriptors that describe the contents of each page
153 1.103 chs */
154 1.103 chs struct kmemusage {
155 1.103 chs short ku_indx; /* bucket index */
156 1.103 chs union {
157 1.103 chs u_short freecnt;/* for small allocations, free pieces in page */
158 1.103 chs u_short pagecnt;/* for large allocations, pages alloced */
159 1.103 chs } ku_un;
160 1.103 chs };
161 1.103 chs #define ku_freecnt ku_un.freecnt
162 1.103 chs #define ku_pagecnt ku_un.pagecnt
163 1.103 chs
164 1.99 chs struct kmembuckets kmembuckets[MINBUCKET + 16];
165 1.1 cgd struct kmemusage *kmemusage;
166 1.1 cgd char *kmembase, *kmemlimit;
167 1.77 thorpej
168 1.106 ad #ifdef DEBUG
169 1.106 ad static void *malloc_freecheck;
170 1.106 ad #endif
171 1.106 ad
172 1.103 chs /*
173 1.103 chs * Turn virtual addresses into kmem map indicies
174 1.103 chs */
175 1.108 christos #define btokup(addr) (&kmemusage[((char *)(addr) - kmembase) >> PGSHIFT])
176 1.103 chs
177 1.77 thorpej struct malloc_type *kmemstatistics;
178 1.1 cgd
179 1.27 thorpej #ifdef MALLOCLOG
180 1.27 thorpej #ifndef MALLOCLOGSIZE
181 1.27 thorpej #define MALLOCLOGSIZE 100000
182 1.27 thorpej #endif
183 1.27 thorpej
184 1.27 thorpej struct malloclog {
185 1.27 thorpej void *addr;
186 1.27 thorpej long size;
187 1.77 thorpej struct malloc_type *type;
188 1.27 thorpej int action;
189 1.27 thorpej const char *file;
190 1.27 thorpej long line;
191 1.27 thorpej } malloclog[MALLOCLOGSIZE];
192 1.27 thorpej
193 1.27 thorpej long malloclogptr;
194 1.27 thorpej
195 1.121 blymn /*
196 1.121 blymn * Fuzz factor for neighbour address match this must be a mask of the lower
197 1.121 blymn * bits we wish to ignore when comparing addresses
198 1.121 blymn */
199 1.121 blymn __uintptr_t malloclog_fuzz = 0x7FL;
200 1.121 blymn
201 1.121 blymn
202 1.27 thorpej static void
203 1.77 thorpej domlog(void *a, long size, struct malloc_type *type, int action,
204 1.77 thorpej const char *file, long line)
205 1.27 thorpej {
206 1.27 thorpej
207 1.27 thorpej malloclog[malloclogptr].addr = a;
208 1.27 thorpej malloclog[malloclogptr].size = size;
209 1.27 thorpej malloclog[malloclogptr].type = type;
210 1.27 thorpej malloclog[malloclogptr].action = action;
211 1.27 thorpej malloclog[malloclogptr].file = file;
212 1.27 thorpej malloclog[malloclogptr].line = line;
213 1.27 thorpej malloclogptr++;
214 1.27 thorpej if (malloclogptr >= MALLOCLOGSIZE)
215 1.27 thorpej malloclogptr = 0;
216 1.27 thorpej }
217 1.27 thorpej
218 1.27 thorpej static void
219 1.69 enami hitmlog(void *a)
220 1.27 thorpej {
221 1.27 thorpej struct malloclog *lp;
222 1.27 thorpej long l;
223 1.27 thorpej
224 1.69 enami #define PRT do { \
225 1.88 mycroft lp = &malloclog[l]; \
226 1.88 mycroft if (lp->addr == a && lp->action) { \
227 1.27 thorpej printf("malloc log entry %ld:\n", l); \
228 1.27 thorpej printf("\taddr = %p\n", lp->addr); \
229 1.27 thorpej printf("\tsize = %ld\n", lp->size); \
230 1.77 thorpej printf("\ttype = %s\n", lp->type->ks_shortdesc); \
231 1.27 thorpej printf("\taction = %s\n", lp->action == 1 ? "alloc" : "free"); \
232 1.27 thorpej printf("\tfile = %s\n", lp->file); \
233 1.27 thorpej printf("\tline = %ld\n", lp->line); \
234 1.69 enami } \
235 1.69 enami } while (/* CONSTCOND */0)
236 1.27 thorpej
237 1.121 blymn /*
238 1.121 blymn * Print fuzzy matched "neighbour" - look for the memory block that has
239 1.121 blymn * been allocated below the address we are interested in. We look for a
240 1.121 blymn * base address + size that is within malloclog_fuzz of our target
241 1.121 blymn * address. If the base address and target address are the same then it is
242 1.121 blymn * likely we have found a free (size is 0 in this case) so we won't report
243 1.121 blymn * those, they will get reported by PRT anyway.
244 1.121 blymn */
245 1.121 blymn #define NPRT do { \
246 1.121 blymn __uintptr_t fuzz_mask = ~(malloclog_fuzz); \
247 1.121 blymn lp = &malloclog[l]; \
248 1.121 blymn if ((__uintptr_t)lp->addr != (__uintptr_t)a && \
249 1.121 blymn (((__uintptr_t)lp->addr + lp->size + malloclog_fuzz) & fuzz_mask) \
250 1.121 blymn == ((__uintptr_t)a & fuzz_mask) && lp->action) { \
251 1.121 blymn printf("neighbour malloc log entry %ld:\n", l); \
252 1.121 blymn printf("\taddr = %p\n", lp->addr); \
253 1.121 blymn printf("\tsize = %ld\n", lp->size); \
254 1.121 blymn printf("\ttype = %s\n", lp->type->ks_shortdesc); \
255 1.121 blymn printf("\taction = %s\n", lp->action == 1 ? "alloc" : "free"); \
256 1.121 blymn printf("\tfile = %s\n", lp->file); \
257 1.121 blymn printf("\tline = %ld\n", lp->line); \
258 1.121 blymn } \
259 1.121 blymn } while (/* CONSTCOND */0)
260 1.121 blymn
261 1.121 blymn for (l = malloclogptr; l < MALLOCLOGSIZE; l++) {
262 1.69 enami PRT;
263 1.121 blymn NPRT;
264 1.121 blymn }
265 1.121 blymn
266 1.27 thorpej
267 1.121 blymn for (l = 0; l < malloclogptr; l++) {
268 1.69 enami PRT;
269 1.121 blymn NPRT;
270 1.121 blymn }
271 1.121 blymn
272 1.88 mycroft #undef PRT
273 1.27 thorpej }
274 1.27 thorpej #endif /* MALLOCLOG */
275 1.27 thorpej
276 1.8 cgd #ifdef DIAGNOSTIC
277 1.8 cgd /*
278 1.8 cgd * This structure provides a set of masks to catch unaligned frees.
279 1.8 cgd */
280 1.57 jdolecek const long addrmask[] = { 0,
281 1.8 cgd 0x00000001, 0x00000003, 0x00000007, 0x0000000f,
282 1.8 cgd 0x0000001f, 0x0000003f, 0x0000007f, 0x000000ff,
283 1.8 cgd 0x000001ff, 0x000003ff, 0x000007ff, 0x00000fff,
284 1.8 cgd 0x00001fff, 0x00003fff, 0x00007fff, 0x0000ffff,
285 1.8 cgd };
286 1.8 cgd
287 1.8 cgd /*
288 1.8 cgd * The WEIRD_ADDR is used as known text to copy into free objects so
289 1.8 cgd * that modifications after frees can be detected.
290 1.8 cgd */
291 1.76 thorpej #define WEIRD_ADDR ((uint32_t) 0xdeadbeef)
292 1.55 chs #ifdef DEBUG
293 1.69 enami #define MAX_COPY PAGE_SIZE
294 1.55 chs #else
295 1.69 enami #define MAX_COPY 32
296 1.55 chs #endif
297 1.8 cgd
298 1.8 cgd /*
299 1.11 cgd * Normally the freelist structure is used only to hold the list pointer
300 1.11 cgd * for free objects. However, when running with diagnostics, the first
301 1.77 thorpej * 8/16 bytes of the structure is unused except for diagnostic information,
302 1.77 thorpej * and the free list pointer is at offset 8/16 in the structure. Since the
303 1.11 cgd * first 8 bytes is the portion of the structure most often modified, this
304 1.11 cgd * helps to detect memory reuse problems and avoid free list corruption.
305 1.8 cgd */
306 1.8 cgd struct freelist {
307 1.76 thorpej uint32_t spare0;
308 1.77 thorpej #ifdef _LP64
309 1.77 thorpej uint32_t spare1; /* explicit padding */
310 1.77 thorpej #endif
311 1.77 thorpej struct malloc_type *type;
312 1.108 christos void * next;
313 1.8 cgd };
314 1.8 cgd #else /* !DIAGNOSTIC */
315 1.8 cgd struct freelist {
316 1.108 christos void * next;
317 1.8 cgd };
318 1.8 cgd #endif /* DIAGNOSTIC */
319 1.8 cgd
320 1.109 ad kmutex_t malloc_lock;
321 1.78 pk
322 1.77 thorpej /*
323 1.1 cgd * Allocate a block of memory
324 1.1 cgd */
325 1.27 thorpej #ifdef MALLOCLOG
326 1.27 thorpej void *
327 1.125 pooka _kern_malloc(unsigned long size, struct malloc_type *ksp, int flags,
328 1.77 thorpej const char *file, long line)
329 1.27 thorpej #else
330 1.1 cgd void *
331 1.125 pooka kern_malloc(unsigned long size, struct malloc_type *ksp, int flags)
332 1.27 thorpej #endif /* MALLOCLOG */
333 1.1 cgd {
334 1.50 augustss struct kmembuckets *kbp;
335 1.50 augustss struct kmemusage *kup;
336 1.50 augustss struct freelist *freep;
337 1.5 andrew long indx, npg, allocsize;
338 1.108 christos char *va, *cp, *savedlist;
339 1.8 cgd #ifdef DIAGNOSTIC
340 1.76 thorpej uint32_t *end, *lp;
341 1.8 cgd int copysize;
342 1.8 cgd #endif
343 1.1 cgd
344 1.59 thorpej #ifdef LOCKDEBUG
345 1.119 ad if ((flags & M_NOWAIT) == 0) {
346 1.118 yamt ASSERT_SLEEPABLE();
347 1.119 ad }
348 1.59 thorpej #endif
349 1.62 thorpej #ifdef MALLOC_DEBUG
350 1.106 ad if (debug_malloc(size, ksp, flags, (void *) &va)) {
351 1.122 cegger if (va != 0) {
352 1.106 ad FREECHECK_OUT(&malloc_freecheck, (void *)va);
353 1.122 cegger }
354 1.62 thorpej return ((void *) va);
355 1.106 ad }
356 1.62 thorpej #endif
357 1.1 cgd indx = BUCKETINDX(size);
358 1.99 chs kbp = &kmembuckets[indx];
359 1.113 ad mutex_spin_enter(&malloc_lock);
360 1.1 cgd #ifdef KMEMSTATS
361 1.1 cgd while (ksp->ks_memuse >= ksp->ks_limit) {
362 1.1 cgd if (flags & M_NOWAIT) {
363 1.113 ad mutex_spin_exit(&malloc_lock);
364 1.1 cgd return ((void *) NULL);
365 1.1 cgd }
366 1.1 cgd if (ksp->ks_limblocks < 65535)
367 1.1 cgd ksp->ks_limblocks++;
368 1.109 ad mtsleep((void *)ksp, PSWP+2, ksp->ks_shortdesc, 0,
369 1.109 ad &malloc_lock);
370 1.1 cgd }
371 1.8 cgd ksp->ks_size |= 1 << indx;
372 1.8 cgd #endif
373 1.8 cgd #ifdef DIAGNOSTIC
374 1.8 cgd copysize = 1 << indx < MAX_COPY ? 1 << indx : MAX_COPY;
375 1.1 cgd #endif
376 1.1 cgd if (kbp->kb_next == NULL) {
377 1.111 yamt int s;
378 1.8 cgd kbp->kb_last = NULL;
379 1.1 cgd if (size > MAXALLOCSAVE)
380 1.66 enami allocsize = round_page(size);
381 1.1 cgd else
382 1.1 cgd allocsize = 1 << indx;
383 1.47 ragge npg = btoc(allocsize);
384 1.113 ad mutex_spin_exit(&malloc_lock);
385 1.111 yamt s = splvm();
386 1.108 christos va = (void *) uvm_km_alloc(kmem_map,
387 1.97 yamt (vsize_t)ctob(npg), 0,
388 1.73 chs ((flags & M_NOWAIT) ? UVM_KMF_NOWAIT : 0) |
389 1.97 yamt ((flags & M_CANFAIL) ? UVM_KMF_CANFAIL : 0) |
390 1.97 yamt UVM_KMF_WIRED);
391 1.111 yamt splx(s);
392 1.51 thorpej if (__predict_false(va == NULL)) {
393 1.17 cgd /*
394 1.17 cgd * Kmem_malloc() can return NULL, even if it can
395 1.91 simonb * wait, if there is no map space available, because
396 1.17 cgd * it can't fix that problem. Neither can we,
397 1.17 cgd * right now. (We should release pages which
398 1.99 chs * are completely free and which are in kmembuckets
399 1.17 cgd * with too many free elements.)
400 1.17 cgd */
401 1.68 jdolecek if ((flags & (M_NOWAIT|M_CANFAIL)) == 0)
402 1.17 cgd panic("malloc: out of space in kmem_map");
403 1.73 chs return (NULL);
404 1.1 cgd }
405 1.113 ad mutex_spin_enter(&malloc_lock);
406 1.1 cgd #ifdef KMEMSTATS
407 1.1 cgd kbp->kb_total += kbp->kb_elmpercl;
408 1.1 cgd #endif
409 1.1 cgd kup = btokup(va);
410 1.1 cgd kup->ku_indx = indx;
411 1.1 cgd if (allocsize > MAXALLOCSAVE) {
412 1.1 cgd if (npg > 65535)
413 1.1 cgd panic("malloc: allocation too large");
414 1.1 cgd kup->ku_pagecnt = npg;
415 1.1 cgd #ifdef KMEMSTATS
416 1.1 cgd ksp->ks_memuse += allocsize;
417 1.1 cgd #endif
418 1.1 cgd goto out;
419 1.1 cgd }
420 1.1 cgd #ifdef KMEMSTATS
421 1.1 cgd kup->ku_freecnt = kbp->kb_elmpercl;
422 1.1 cgd kbp->kb_totalfree += kbp->kb_elmpercl;
423 1.1 cgd #endif
424 1.1 cgd /*
425 1.1 cgd * Just in case we blocked while allocating memory,
426 1.1 cgd * and someone else also allocated memory for this
427 1.99 chs * kmembucket, don't assume the list is still empty.
428 1.1 cgd */
429 1.1 cgd savedlist = kbp->kb_next;
430 1.49 thorpej kbp->kb_next = cp = va + (npg << PAGE_SHIFT) - allocsize;
431 1.8 cgd for (;;) {
432 1.8 cgd freep = (struct freelist *)cp;
433 1.8 cgd #ifdef DIAGNOSTIC
434 1.8 cgd /*
435 1.8 cgd * Copy in known text to detect modification
436 1.8 cgd * after freeing.
437 1.8 cgd */
438 1.86 ragge end = (uint32_t *)&cp[copysize];
439 1.86 ragge for (lp = (uint32_t *)cp; lp < end; lp++)
440 1.8 cgd *lp = WEIRD_ADDR;
441 1.8 cgd freep->type = M_FREE;
442 1.8 cgd #endif /* DIAGNOSTIC */
443 1.8 cgd if (cp <= va)
444 1.8 cgd break;
445 1.8 cgd cp -= allocsize;
446 1.8 cgd freep->next = cp;
447 1.8 cgd }
448 1.8 cgd freep->next = savedlist;
449 1.117 yamt if (savedlist == NULL)
450 1.108 christos kbp->kb_last = (void *)freep;
451 1.1 cgd }
452 1.1 cgd va = kbp->kb_next;
453 1.8 cgd kbp->kb_next = ((struct freelist *)va)->next;
454 1.8 cgd #ifdef DIAGNOSTIC
455 1.8 cgd freep = (struct freelist *)va;
456 1.77 thorpej /* XXX potential to get garbage pointer here. */
457 1.29 chs if (kbp->kb_next) {
458 1.29 chs int rv;
459 1.35 eeh vaddr_t addr = (vaddr_t)kbp->kb_next;
460 1.29 chs
461 1.43 thorpej vm_map_lock(kmem_map);
462 1.29 chs rv = uvm_map_checkprot(kmem_map, addr,
463 1.69 enami addr + sizeof(struct freelist), VM_PROT_WRITE);
464 1.43 thorpej vm_map_unlock(kmem_map);
465 1.29 chs
466 1.51 thorpej if (__predict_false(rv == 0)) {
467 1.69 enami printf("Data modified on freelist: "
468 1.69 enami "word %ld of object %p size %ld previous type %s "
469 1.69 enami "(invalid addr %p)\n",
470 1.41 mrg (long)((int32_t *)&kbp->kb_next - (int32_t *)kbp),
471 1.80 manu va, size, "foo", kbp->kb_next);
472 1.27 thorpej #ifdef MALLOCLOG
473 1.41 mrg hitmlog(va);
474 1.27 thorpej #endif
475 1.41 mrg kbp->kb_next = NULL;
476 1.29 chs }
477 1.8 cgd }
478 1.11 cgd
479 1.11 cgd /* Fill the fields that we've used with WEIRD_ADDR */
480 1.77 thorpej #ifdef _LP64
481 1.77 thorpej freep->type = (struct malloc_type *)
482 1.77 thorpej (WEIRD_ADDR | (((u_long) WEIRD_ADDR) << 32));
483 1.77 thorpej #else
484 1.77 thorpej freep->type = (struct malloc_type *) WEIRD_ADDR;
485 1.8 cgd #endif
486 1.86 ragge end = (uint32_t *)&freep->next +
487 1.11 cgd (sizeof(freep->next) / sizeof(int32_t));
488 1.86 ragge for (lp = (uint32_t *)&freep->next; lp < end; lp++)
489 1.11 cgd *lp = WEIRD_ADDR;
490 1.11 cgd
491 1.11 cgd /* and check that the data hasn't been modified. */
492 1.76 thorpej end = (uint32_t *)&va[copysize];
493 1.86 ragge for (lp = (uint32_t *)va; lp < end; lp++) {
494 1.51 thorpej if (__predict_true(*lp == WEIRD_ADDR))
495 1.8 cgd continue;
496 1.69 enami printf("Data modified on freelist: "
497 1.69 enami "word %ld of object %p size %ld previous type %s "
498 1.69 enami "(0x%x != 0x%x)\n",
499 1.76 thorpej (long)(lp - (uint32_t *)va), va, size,
500 1.80 manu "bar", *lp, WEIRD_ADDR);
501 1.27 thorpej #ifdef MALLOCLOG
502 1.27 thorpej hitmlog(va);
503 1.27 thorpej #endif
504 1.8 cgd break;
505 1.8 cgd }
506 1.11 cgd
507 1.8 cgd freep->spare0 = 0;
508 1.8 cgd #endif /* DIAGNOSTIC */
509 1.1 cgd #ifdef KMEMSTATS
510 1.1 cgd kup = btokup(va);
511 1.1 cgd if (kup->ku_indx != indx)
512 1.1 cgd panic("malloc: wrong bucket");
513 1.1 cgd if (kup->ku_freecnt == 0)
514 1.1 cgd panic("malloc: lost data");
515 1.1 cgd kup->ku_freecnt--;
516 1.1 cgd kbp->kb_totalfree--;
517 1.1 cgd ksp->ks_memuse += 1 << indx;
518 1.1 cgd out:
519 1.1 cgd kbp->kb_calls++;
520 1.1 cgd ksp->ks_inuse++;
521 1.1 cgd ksp->ks_calls++;
522 1.1 cgd if (ksp->ks_memuse > ksp->ks_maxused)
523 1.1 cgd ksp->ks_maxused = ksp->ks_memuse;
524 1.1 cgd #else
525 1.1 cgd out:
526 1.1 cgd #endif
527 1.27 thorpej #ifdef MALLOCLOG
528 1.80 manu domlog(va, size, ksp, 1, file, line);
529 1.27 thorpej #endif
530 1.113 ad mutex_spin_exit(&malloc_lock);
531 1.67 enami if ((flags & M_ZERO) != 0)
532 1.65 lukem memset(va, 0, size);
533 1.106 ad FREECHECK_OUT(&malloc_freecheck, (void *)va);
534 1.1 cgd return ((void *) va);
535 1.1 cgd }
536 1.1 cgd
537 1.1 cgd /*
538 1.1 cgd * Free a block of memory allocated by malloc.
539 1.1 cgd */
540 1.27 thorpej #ifdef MALLOCLOG
541 1.27 thorpej void
542 1.125 pooka _kern_free(void *addr, struct malloc_type *ksp, const char *file, long line)
543 1.27 thorpej #else
544 1.1 cgd void
545 1.125 pooka kern_free(void *addr, struct malloc_type *ksp)
546 1.27 thorpej #endif /* MALLOCLOG */
547 1.1 cgd {
548 1.50 augustss struct kmembuckets *kbp;
549 1.50 augustss struct kmemusage *kup;
550 1.50 augustss struct freelist *freep;
551 1.8 cgd long size;
552 1.5 andrew #ifdef DIAGNOSTIC
553 1.108 christos void *cp;
554 1.11 cgd int32_t *end, *lp;
555 1.11 cgd long alloc, copysize;
556 1.5 andrew #endif
557 1.48 thorpej
558 1.106 ad FREECHECK_IN(&malloc_freecheck, addr);
559 1.62 thorpej #ifdef MALLOC_DEBUG
560 1.77 thorpej if (debug_free(addr, ksp))
561 1.62 thorpej return;
562 1.62 thorpej #endif
563 1.62 thorpej
564 1.48 thorpej #ifdef DIAGNOSTIC
565 1.48 thorpej /*
566 1.48 thorpej * Ensure that we're free'ing something that we could
567 1.48 thorpej * have allocated in the first place. That is, check
568 1.48 thorpej * to see that the address is within kmem_map.
569 1.48 thorpej */
570 1.83 enami if (__predict_false((vaddr_t)addr < vm_map_min(kmem_map) ||
571 1.83 enami (vaddr_t)addr >= vm_map_max(kmem_map)))
572 1.48 thorpej panic("free: addr %p not within kmem_map", addr);
573 1.1 cgd #endif
574 1.1 cgd
575 1.1 cgd kup = btokup(addr);
576 1.1 cgd size = 1 << kup->ku_indx;
577 1.99 chs kbp = &kmembuckets[kup->ku_indx];
578 1.113 ad
579 1.115 yamt LOCKDEBUG_MEM_CHECK(addr,
580 1.115 yamt size <= MAXALLOCSAVE ? size : ctob(kup->ku_pagecnt));
581 1.113 ad
582 1.113 ad mutex_spin_enter(&malloc_lock);
583 1.27 thorpej #ifdef MALLOCLOG
584 1.80 manu domlog(addr, 0, ksp, 2, file, line);
585 1.27 thorpej #endif
586 1.1 cgd #ifdef DIAGNOSTIC
587 1.8 cgd /*
588 1.8 cgd * Check for returns of data that do not point to the
589 1.8 cgd * beginning of the allocation.
590 1.8 cgd */
591 1.49 thorpej if (size > PAGE_SIZE)
592 1.49 thorpej alloc = addrmask[BUCKETINDX(PAGE_SIZE)];
593 1.1 cgd else
594 1.1 cgd alloc = addrmask[kup->ku_indx];
595 1.8 cgd if (((u_long)addr & alloc) != 0)
596 1.75 provos panic("free: unaligned addr %p, size %ld, type %s, mask %ld",
597 1.77 thorpej addr, size, ksp->ks_shortdesc, alloc);
598 1.1 cgd #endif /* DIAGNOSTIC */
599 1.1 cgd if (size > MAXALLOCSAVE) {
600 1.97 yamt uvm_km_free(kmem_map, (vaddr_t)addr, ctob(kup->ku_pagecnt),
601 1.97 yamt UVM_KMF_WIRED);
602 1.1 cgd #ifdef KMEMSTATS
603 1.1 cgd size = kup->ku_pagecnt << PGSHIFT;
604 1.1 cgd ksp->ks_memuse -= size;
605 1.1 cgd kup->ku_indx = 0;
606 1.1 cgd kup->ku_pagecnt = 0;
607 1.1 cgd if (ksp->ks_memuse + size >= ksp->ks_limit &&
608 1.1 cgd ksp->ks_memuse < ksp->ks_limit)
609 1.108 christos wakeup((void *)ksp);
610 1.79 fvdl #ifdef DIAGNOSTIC
611 1.79 fvdl if (ksp->ks_inuse == 0)
612 1.79 fvdl panic("free 1: inuse 0, probable double free");
613 1.79 fvdl #endif
614 1.1 cgd ksp->ks_inuse--;
615 1.1 cgd kbp->kb_total -= 1;
616 1.1 cgd #endif
617 1.113 ad mutex_spin_exit(&malloc_lock);
618 1.1 cgd return;
619 1.1 cgd }
620 1.8 cgd freep = (struct freelist *)addr;
621 1.8 cgd #ifdef DIAGNOSTIC
622 1.8 cgd /*
623 1.8 cgd * Check for multiple frees. Use a quick check to see if
624 1.8 cgd * it looks free before laboriously searching the freelist.
625 1.8 cgd */
626 1.51 thorpej if (__predict_false(freep->spare0 == WEIRD_ADDR)) {
627 1.16 cgd for (cp = kbp->kb_next; cp;
628 1.16 cgd cp = ((struct freelist *)cp)->next) {
629 1.8 cgd if (addr != cp)
630 1.8 cgd continue;
631 1.22 christos printf("multiply freed item %p\n", addr);
632 1.27 thorpej #ifdef MALLOCLOG
633 1.27 thorpej hitmlog(addr);
634 1.27 thorpej #endif
635 1.8 cgd panic("free: duplicated free");
636 1.8 cgd }
637 1.8 cgd }
638 1.112 ad
639 1.8 cgd /*
640 1.8 cgd * Copy in known text to detect modification after freeing
641 1.8 cgd * and to make it look free. Also, save the type being freed
642 1.8 cgd * so we can list likely culprit if modification is detected
643 1.8 cgd * when the object is reallocated.
644 1.8 cgd */
645 1.8 cgd copysize = size < MAX_COPY ? size : MAX_COPY;
646 1.108 christos end = (int32_t *)&((char *)addr)[copysize];
647 1.11 cgd for (lp = (int32_t *)addr; lp < end; lp++)
648 1.8 cgd *lp = WEIRD_ADDR;
649 1.77 thorpej freep->type = ksp;
650 1.8 cgd #endif /* DIAGNOSTIC */
651 1.1 cgd #ifdef KMEMSTATS
652 1.1 cgd kup->ku_freecnt++;
653 1.36 thorpej if (kup->ku_freecnt >= kbp->kb_elmpercl) {
654 1.1 cgd if (kup->ku_freecnt > kbp->kb_elmpercl)
655 1.1 cgd panic("free: multiple frees");
656 1.1 cgd else if (kbp->kb_totalfree > kbp->kb_highwat)
657 1.1 cgd kbp->kb_couldfree++;
658 1.36 thorpej }
659 1.1 cgd kbp->kb_totalfree++;
660 1.1 cgd ksp->ks_memuse -= size;
661 1.1 cgd if (ksp->ks_memuse + size >= ksp->ks_limit &&
662 1.1 cgd ksp->ks_memuse < ksp->ks_limit)
663 1.108 christos wakeup((void *)ksp);
664 1.79 fvdl #ifdef DIAGNOSTIC
665 1.79 fvdl if (ksp->ks_inuse == 0)
666 1.79 fvdl panic("free 2: inuse 0, probable double free");
667 1.79 fvdl #endif
668 1.1 cgd ksp->ks_inuse--;
669 1.1 cgd #endif
670 1.8 cgd if (kbp->kb_next == NULL)
671 1.8 cgd kbp->kb_next = addr;
672 1.8 cgd else
673 1.8 cgd ((struct freelist *)kbp->kb_last)->next = addr;
674 1.8 cgd freep->next = NULL;
675 1.8 cgd kbp->kb_last = addr;
676 1.113 ad mutex_spin_exit(&malloc_lock);
677 1.20 cgd }
678 1.20 cgd
679 1.20 cgd /*
680 1.20 cgd * Change the size of a block of memory.
681 1.20 cgd */
682 1.20 cgd void *
683 1.126 pooka kern_realloc(void *curaddr, unsigned long newsize, struct malloc_type *ksp,
684 1.77 thorpej int flags)
685 1.20 cgd {
686 1.50 augustss struct kmemusage *kup;
687 1.72 thorpej unsigned long cursize;
688 1.20 cgd void *newaddr;
689 1.20 cgd #ifdef DIAGNOSTIC
690 1.20 cgd long alloc;
691 1.20 cgd #endif
692 1.20 cgd
693 1.20 cgd /*
694 1.69 enami * realloc() with a NULL pointer is the same as malloc().
695 1.20 cgd */
696 1.20 cgd if (curaddr == NULL)
697 1.77 thorpej return (malloc(newsize, ksp, flags));
698 1.20 cgd
699 1.20 cgd /*
700 1.69 enami * realloc() with zero size is the same as free().
701 1.20 cgd */
702 1.20 cgd if (newsize == 0) {
703 1.77 thorpej free(curaddr, ksp);
704 1.20 cgd return (NULL);
705 1.20 cgd }
706 1.59 thorpej
707 1.59 thorpej #ifdef LOCKDEBUG
708 1.119 ad if ((flags & M_NOWAIT) == 0) {
709 1.118 yamt ASSERT_SLEEPABLE();
710 1.119 ad }
711 1.59 thorpej #endif
712 1.20 cgd
713 1.20 cgd /*
714 1.20 cgd * Find out how large the old allocation was (and do some
715 1.20 cgd * sanity checking).
716 1.20 cgd */
717 1.20 cgd kup = btokup(curaddr);
718 1.20 cgd cursize = 1 << kup->ku_indx;
719 1.20 cgd
720 1.20 cgd #ifdef DIAGNOSTIC
721 1.20 cgd /*
722 1.20 cgd * Check for returns of data that do not point to the
723 1.20 cgd * beginning of the allocation.
724 1.20 cgd */
725 1.49 thorpej if (cursize > PAGE_SIZE)
726 1.49 thorpej alloc = addrmask[BUCKETINDX(PAGE_SIZE)];
727 1.20 cgd else
728 1.20 cgd alloc = addrmask[kup->ku_indx];
729 1.20 cgd if (((u_long)curaddr & alloc) != 0)
730 1.69 enami panic("realloc: "
731 1.69 enami "unaligned addr %p, size %ld, type %s, mask %ld\n",
732 1.77 thorpej curaddr, cursize, ksp->ks_shortdesc, alloc);
733 1.20 cgd #endif /* DIAGNOSTIC */
734 1.20 cgd
735 1.20 cgd if (cursize > MAXALLOCSAVE)
736 1.20 cgd cursize = ctob(kup->ku_pagecnt);
737 1.20 cgd
738 1.20 cgd /*
739 1.20 cgd * If we already actually have as much as they want, we're done.
740 1.20 cgd */
741 1.20 cgd if (newsize <= cursize)
742 1.20 cgd return (curaddr);
743 1.20 cgd
744 1.20 cgd /*
745 1.20 cgd * Can't satisfy the allocation with the existing block.
746 1.20 cgd * Allocate a new one and copy the data.
747 1.20 cgd */
748 1.77 thorpej newaddr = malloc(newsize, ksp, flags);
749 1.51 thorpej if (__predict_false(newaddr == NULL)) {
750 1.20 cgd /*
751 1.69 enami * malloc() failed, because flags included M_NOWAIT.
752 1.20 cgd * Return NULL to indicate that failure. The old
753 1.20 cgd * pointer is still valid.
754 1.20 cgd */
755 1.69 enami return (NULL);
756 1.20 cgd }
757 1.34 perry memcpy(newaddr, curaddr, cursize);
758 1.20 cgd
759 1.20 cgd /*
760 1.20 cgd * We were successful: free the old allocation and return
761 1.20 cgd * the new one.
762 1.20 cgd */
763 1.77 thorpej free(curaddr, ksp);
764 1.20 cgd return (newaddr);
765 1.70 enami }
766 1.70 enami
767 1.70 enami /*
768 1.70 enami * Roundup size to the actual allocation size.
769 1.70 enami */
770 1.70 enami unsigned long
771 1.70 enami malloc_roundup(unsigned long size)
772 1.70 enami {
773 1.70 enami
774 1.70 enami if (size > MAXALLOCSAVE)
775 1.70 enami return (roundup(size, PAGE_SIZE));
776 1.70 enami else
777 1.70 enami return (1 << BUCKETINDX(size));
778 1.1 cgd }
779 1.1 cgd
780 1.1 cgd /*
781 1.77 thorpej * Add a malloc type to the system.
782 1.77 thorpej */
783 1.77 thorpej void
784 1.77 thorpej malloc_type_attach(struct malloc_type *type)
785 1.77 thorpej {
786 1.77 thorpej
787 1.77 thorpej if (nkmempages == 0)
788 1.77 thorpej panic("malloc_type_attach: nkmempages == 0");
789 1.77 thorpej
790 1.77 thorpej if (type->ks_magic != M_MAGIC)
791 1.77 thorpej panic("malloc_type_attach: bad magic");
792 1.77 thorpej
793 1.77 thorpej #ifdef DIAGNOSTIC
794 1.77 thorpej {
795 1.77 thorpej struct malloc_type *ksp;
796 1.77 thorpej for (ksp = kmemstatistics; ksp != NULL; ksp = ksp->ks_next) {
797 1.77 thorpej if (ksp == type)
798 1.77 thorpej panic("malloc_type_attach: already on list");
799 1.77 thorpej }
800 1.77 thorpej }
801 1.77 thorpej #endif
802 1.77 thorpej
803 1.77 thorpej #ifdef KMEMSTATS
804 1.77 thorpej if (type->ks_limit == 0)
805 1.77 thorpej type->ks_limit = ((u_long)nkmempages << PAGE_SHIFT) * 6U / 10U;
806 1.77 thorpej #else
807 1.77 thorpej type->ks_limit = 0;
808 1.77 thorpej #endif
809 1.77 thorpej
810 1.77 thorpej type->ks_next = kmemstatistics;
811 1.77 thorpej kmemstatistics = type;
812 1.77 thorpej }
813 1.77 thorpej
814 1.77 thorpej /*
815 1.77 thorpej * Remove a malloc type from the system..
816 1.77 thorpej */
817 1.77 thorpej void
818 1.77 thorpej malloc_type_detach(struct malloc_type *type)
819 1.77 thorpej {
820 1.77 thorpej struct malloc_type *ksp;
821 1.77 thorpej
822 1.77 thorpej #ifdef DIAGNOSTIC
823 1.77 thorpej if (type->ks_magic != M_MAGIC)
824 1.77 thorpej panic("malloc_type_detach: bad magic");
825 1.77 thorpej #endif
826 1.77 thorpej
827 1.77 thorpej if (type == kmemstatistics)
828 1.77 thorpej kmemstatistics = type->ks_next;
829 1.77 thorpej else {
830 1.77 thorpej for (ksp = kmemstatistics; ksp->ks_next != NULL;
831 1.77 thorpej ksp = ksp->ks_next) {
832 1.77 thorpej if (ksp->ks_next == type) {
833 1.77 thorpej ksp->ks_next = type->ks_next;
834 1.77 thorpej break;
835 1.77 thorpej }
836 1.77 thorpej }
837 1.77 thorpej #ifdef DIAGNOSTIC
838 1.77 thorpej if (ksp->ks_next == NULL)
839 1.77 thorpej panic("malloc_type_detach: not on list");
840 1.77 thorpej #endif
841 1.77 thorpej }
842 1.77 thorpej type->ks_next = NULL;
843 1.77 thorpej }
844 1.77 thorpej
845 1.77 thorpej /*
846 1.77 thorpej * Set the limit on a malloc type.
847 1.77 thorpej */
848 1.77 thorpej void
849 1.105 yamt malloc_type_setlimit(struct malloc_type *type, u_long limit)
850 1.77 thorpej {
851 1.77 thorpej #ifdef KMEMSTATS
852 1.113 ad mutex_spin_enter(&malloc_lock);
853 1.77 thorpej type->ks_limit = limit;
854 1.113 ad mutex_spin_exit(&malloc_lock);
855 1.77 thorpej #endif
856 1.77 thorpej }
857 1.77 thorpej
858 1.77 thorpej /*
859 1.49 thorpej * Compute the number of pages that kmem_map will map, that is,
860 1.49 thorpej * the size of the kernel malloc arena.
861 1.49 thorpej */
862 1.49 thorpej void
863 1.69 enami kmeminit_nkmempages(void)
864 1.49 thorpej {
865 1.49 thorpej int npages;
866 1.49 thorpej
867 1.49 thorpej if (nkmempages != 0) {
868 1.49 thorpej /*
869 1.49 thorpej * It's already been set (by us being here before, or
870 1.49 thorpej * by patching or kernel config options), bail out now.
871 1.49 thorpej */
872 1.49 thorpej return;
873 1.49 thorpej }
874 1.49 thorpej
875 1.94 yamt npages = physmem;
876 1.49 thorpej
877 1.49 thorpej if (npages > NKMEMPAGES_MAX)
878 1.49 thorpej npages = NKMEMPAGES_MAX;
879 1.49 thorpej
880 1.49 thorpej if (npages < NKMEMPAGES_MIN)
881 1.49 thorpej npages = NKMEMPAGES_MIN;
882 1.49 thorpej
883 1.49 thorpej nkmempages = npages;
884 1.49 thorpej }
885 1.49 thorpej
886 1.49 thorpej /*
887 1.1 cgd * Initialize the kernel memory allocator
888 1.1 cgd */
889 1.12 christos void
890 1.69 enami kmeminit(void)
891 1.1 cgd {
892 1.77 thorpej __link_set_decl(malloc_types, struct malloc_type);
893 1.77 thorpej struct malloc_type * const *ksp;
894 1.84 ragge vaddr_t kmb, kml;
895 1.23 tls #ifdef KMEMSTATS
896 1.50 augustss long indx;
897 1.23 tls #endif
898 1.1 cgd
899 1.1 cgd #if ((MAXALLOCSAVE & (MAXALLOCSAVE - 1)) != 0)
900 1.1 cgd ERROR!_kmeminit:_MAXALLOCSAVE_not_power_of_2
901 1.1 cgd #endif
902 1.1 cgd #if (MAXALLOCSAVE > MINALLOCSIZE * 32768)
903 1.1 cgd ERROR!_kmeminit:_MAXALLOCSAVE_too_big
904 1.1 cgd #endif
905 1.47 ragge #if (MAXALLOCSAVE < NBPG)
906 1.1 cgd ERROR!_kmeminit:_MAXALLOCSAVE_too_small
907 1.1 cgd #endif
908 1.11 cgd
909 1.11 cgd if (sizeof(struct freelist) > (1 << MINBUCKET))
910 1.11 cgd panic("minbucket too small/struct freelist too big");
911 1.11 cgd
912 1.116 ad mutex_init(&malloc_lock, MUTEX_DEFAULT, IPL_VM);
913 1.109 ad
914 1.49 thorpej /*
915 1.49 thorpej * Compute the number of kmem_map pages, if we have not
916 1.49 thorpej * done so already.
917 1.49 thorpej */
918 1.49 thorpej kmeminit_nkmempages();
919 1.49 thorpej
920 1.97 yamt kmemusage = (struct kmemusage *) uvm_km_alloc(kernel_map,
921 1.97 yamt (vsize_t)(nkmempages * sizeof(struct kmemusage)), 0,
922 1.97 yamt UVM_KMF_WIRED|UVM_KMF_ZERO);
923 1.85 fvdl kmb = 0;
924 1.84 ragge kmem_map = uvm_km_suballoc(kernel_map, &kmb,
925 1.96 perry &kml, ((vsize_t)nkmempages << PAGE_SHIFT),
926 1.107 thorpej VM_MAP_INTRSAFE, false, &kmem_map_store);
927 1.93 yamt uvm_km_vacache_init(kmem_map, "kvakmem", 0);
928 1.84 ragge kmembase = (char *)kmb;
929 1.84 ragge kmemlimit = (char *)kml;
930 1.1 cgd #ifdef KMEMSTATS
931 1.1 cgd for (indx = 0; indx < MINBUCKET + 16; indx++) {
932 1.49 thorpej if (1 << indx >= PAGE_SIZE)
933 1.99 chs kmembuckets[indx].kb_elmpercl = 1;
934 1.1 cgd else
935 1.99 chs kmembuckets[indx].kb_elmpercl = PAGE_SIZE / (1 << indx);
936 1.99 chs kmembuckets[indx].kb_highwat =
937 1.99 chs 5 * kmembuckets[indx].kb_elmpercl;
938 1.1 cgd }
939 1.62 thorpej #endif
940 1.77 thorpej
941 1.77 thorpej /* Attach all of the statically-linked malloc types. */
942 1.77 thorpej __link_set_foreach(ksp, malloc_types)
943 1.77 thorpej malloc_type_attach(*ksp);
944 1.127 pooka
945 1.127 pooka #ifdef MALLOC_DEBUG
946 1.127 pooka debug_malloc_init();
947 1.127 pooka #endif
948 1.1 cgd }
949 1.39 thorpej
950 1.39 thorpej #ifdef DDB
951 1.39 thorpej #include <ddb/db_output.h>
952 1.39 thorpej
953 1.39 thorpej /*
954 1.39 thorpej * Dump kmem statistics from ddb.
955 1.39 thorpej *
956 1.39 thorpej * usage: call dump_kmemstats
957 1.39 thorpej */
958 1.69 enami void dump_kmemstats(void);
959 1.39 thorpej
960 1.39 thorpej void
961 1.69 enami dump_kmemstats(void)
962 1.39 thorpej {
963 1.39 thorpej #ifdef KMEMSTATS
964 1.77 thorpej struct malloc_type *ksp;
965 1.39 thorpej
966 1.77 thorpej for (ksp = kmemstatistics; ksp != NULL; ksp = ksp->ks_next) {
967 1.77 thorpej if (ksp->ks_memuse == 0)
968 1.77 thorpej continue;
969 1.77 thorpej db_printf("%s%.*s %ld\n", ksp->ks_shortdesc,
970 1.77 thorpej (int)(20 - strlen(ksp->ks_shortdesc)),
971 1.77 thorpej " ",
972 1.77 thorpej ksp->ks_memuse);
973 1.39 thorpej }
974 1.39 thorpej #else
975 1.39 thorpej db_printf("Kmem stats are not being collected.\n");
976 1.39 thorpej #endif /* KMEMSTATS */
977 1.39 thorpej }
978 1.39 thorpej #endif /* DDB */
979 1.82 manu
980 1.82 manu
981 1.82 manu #if 0
982 1.96 perry /*
983 1.82 manu * Diagnostic messages about "Data modified on
984 1.82 manu * freelist" indicate a memory corruption, but
985 1.82 manu * they do not help tracking it down.
986 1.96 perry * This function can be called at various places
987 1.82 manu * to sanity check malloc's freelist and discover
988 1.82 manu * where does the corruption take place.
989 1.82 manu */
990 1.82 manu int
991 1.82 manu freelist_sanitycheck(void) {
992 1.82 manu int i,j;
993 1.82 manu struct kmembuckets *kbp;
994 1.82 manu struct freelist *freep;
995 1.82 manu int rv = 0;
996 1.96 perry
997 1.82 manu for (i = MINBUCKET; i <= MINBUCKET + 15; i++) {
998 1.99 chs kbp = &kmembuckets[i];
999 1.82 manu freep = (struct freelist *)kbp->kb_next;
1000 1.82 manu j = 0;
1001 1.82 manu while(freep) {
1002 1.82 manu vm_map_lock(kmem_map);
1003 1.82 manu rv = uvm_map_checkprot(kmem_map, (vaddr_t)freep,
1004 1.96 perry (vaddr_t)freep + sizeof(struct freelist),
1005 1.82 manu VM_PROT_WRITE);
1006 1.82 manu vm_map_unlock(kmem_map);
1007 1.82 manu
1008 1.82 manu if ((rv == 0) || (*(int *)freep != WEIRD_ADDR)) {
1009 1.82 manu printf("bucket %i, chunck %d at %p modified\n",
1010 1.82 manu i, j, freep);
1011 1.82 manu return 1;
1012 1.82 manu }
1013 1.82 manu freep = (struct freelist *)freep->next;
1014 1.82 manu j++;
1015 1.82 manu }
1016 1.82 manu }
1017 1.82 manu
1018 1.82 manu return 0;
1019 1.82 manu }
1020 1.82 manu #endif
1021