mem1.c revision 1.13 1 1.13 wiz /* $NetBSD: mem1.c,v 1.13 2009/08/05 19:08:28 wiz Exp $ */
2 1.2 cgd
3 1.1 cgd /*
4 1.1 cgd * Copyright (c) 1994, 1995 Jochen Pohl
5 1.1 cgd * 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 1.1 cgd * 3. All advertising materials mentioning features or use of this software
16 1.1 cgd * must display the following acknowledgement:
17 1.1 cgd * This product includes software developed by Jochen Pohl for
18 1.1 cgd * The NetBSD Project.
19 1.1 cgd * 4. The name of the author may not be used to endorse or promote products
20 1.1 cgd * derived from this software without specific prior written permission.
21 1.1 cgd *
22 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
23 1.1 cgd * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
24 1.1 cgd * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
25 1.1 cgd * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
26 1.1 cgd * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
27 1.1 cgd * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
28 1.1 cgd * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
29 1.1 cgd * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
30 1.1 cgd * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
31 1.1 cgd * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
32 1.1 cgd */
33 1.1 cgd
34 1.11 jmc #if HAVE_NBTOOL_CONFIG_H
35 1.11 jmc #include "nbtool_config.h"
36 1.11 jmc #endif
37 1.11 jmc
38 1.3 christos #include <sys/cdefs.h>
39 1.7 tv #if defined(__RCSID) && !defined(lint)
40 1.13 wiz __RCSID("$NetBSD: mem1.c,v 1.13 2009/08/05 19:08:28 wiz Exp $");
41 1.1 cgd #endif
42 1.1 cgd
43 1.1 cgd #include <sys/types.h>
44 1.1 cgd #include <sys/param.h>
45 1.1 cgd #include <stdlib.h>
46 1.1 cgd #include <string.h>
47 1.1 cgd #include <unistd.h>
48 1.1 cgd
49 1.1 cgd #include "lint1.h"
50 1.1 cgd
51 1.1 cgd /*
52 1.1 cgd * Filenames allocated by fnalloc() and fnnalloc() are shared.
53 1.1 cgd */
54 1.1 cgd typedef struct fn {
55 1.1 cgd char *fn_name;
56 1.1 cgd size_t fn_len;
57 1.1 cgd int fn_id;
58 1.1 cgd struct fn *fn_nxt;
59 1.1 cgd } fn_t;
60 1.1 cgd
61 1.1 cgd static fn_t *fnames;
62 1.1 cgd
63 1.5 lukem static fn_t *srchfn(const char *, size_t);
64 1.1 cgd
65 1.1 cgd /*
66 1.1 cgd * Look for a Filename of length l.
67 1.1 cgd */
68 1.1 cgd static fn_t *
69 1.5 lukem srchfn(const char *s, size_t len)
70 1.1 cgd {
71 1.1 cgd fn_t *fn;
72 1.1 cgd
73 1.1 cgd for (fn = fnames; fn != NULL; fn = fn->fn_nxt) {
74 1.1 cgd if (fn->fn_len == len && memcmp(fn->fn_name, s, len) == 0)
75 1.1 cgd break;
76 1.1 cgd }
77 1.1 cgd return (fn);
78 1.1 cgd }
79 1.1 cgd
80 1.1 cgd /*
81 1.1 cgd * Return a shared string for filename s.
82 1.1 cgd */
83 1.1 cgd const char *
84 1.5 lukem fnalloc(const char *s)
85 1.1 cgd {
86 1.5 lukem
87 1.1 cgd return (s != NULL ? fnnalloc(s, strlen(s)) : NULL);
88 1.1 cgd }
89 1.1 cgd
90 1.1 cgd const char *
91 1.5 lukem fnnalloc(const char *s, size_t len)
92 1.1 cgd {
93 1.1 cgd fn_t *fn;
94 1.1 cgd
95 1.1 cgd static int nxt_id = 0;
96 1.1 cgd
97 1.1 cgd if (s == NULL)
98 1.1 cgd return (NULL);
99 1.1 cgd
100 1.1 cgd if ((fn = srchfn(s, len)) == NULL) {
101 1.1 cgd fn = xmalloc(sizeof (fn_t));
102 1.1 cgd /* Do not used strdup() because string is not NUL-terminated.*/
103 1.1 cgd fn->fn_name = xmalloc(len + 1);
104 1.1 cgd (void)memcpy(fn->fn_name, s, len);
105 1.1 cgd fn->fn_name[len] = '\0';
106 1.1 cgd fn->fn_len = len;
107 1.1 cgd fn->fn_id = nxt_id++;
108 1.1 cgd fn->fn_nxt = fnames;
109 1.1 cgd fnames = fn;
110 1.1 cgd /* Write id of this filename to the output file. */
111 1.1 cgd outclr();
112 1.1 cgd outint(fn->fn_id);
113 1.1 cgd outchar('s');
114 1.1 cgd outstrg(fn->fn_name);
115 1.1 cgd }
116 1.1 cgd return (fn->fn_name);
117 1.1 cgd }
118 1.1 cgd
119 1.1 cgd /*
120 1.1 cgd * Get id of a filename.
121 1.1 cgd */
122 1.1 cgd int
123 1.5 lukem getfnid(const char *s)
124 1.1 cgd {
125 1.1 cgd fn_t *fn;
126 1.1 cgd
127 1.1 cgd if (s == NULL || (fn = srchfn(s, strlen(s))) == NULL)
128 1.1 cgd return (-1);
129 1.1 cgd return (fn->fn_id);
130 1.1 cgd }
131 1.1 cgd
132 1.1 cgd /*
133 1.1 cgd * Memory for declarations and other things which must be available
134 1.1 cgd * until the end of a block (or the end of the translation unit)
135 1.13 wiz * are associated with the level (mblklev) of the block (or with 0).
136 1.13 wiz * Because this memory is allocated in large blocks associated with
137 1.1 cgd * a given level it can be freed easily at the end of a block.
138 1.1 cgd */
139 1.1 cgd #define ML_INC ((size_t)32) /* Increment for length of *mblks */
140 1.1 cgd
141 1.1 cgd typedef struct mbl {
142 1.1 cgd void *blk; /* beginning of memory block */
143 1.1 cgd void *ffree; /* first free byte */
144 1.1 cgd size_t nfree; /* # of free bytes */
145 1.1 cgd size_t size; /* total size of memory block */
146 1.1 cgd struct mbl *nxt; /* next block */
147 1.1 cgd } mbl_t;
148 1.1 cgd
149 1.1 cgd /*
150 1.1 cgd * Array of pointers to lists of memory blocks. mblklev is used as
151 1.1 cgd * index into this array.
152 1.1 cgd */
153 1.1 cgd static mbl_t **mblks;
154 1.1 cgd
155 1.1 cgd /* number of elements in *mblks */
156 1.1 cgd static size_t nmblks;
157 1.1 cgd
158 1.1 cgd /* free list for memory blocks */
159 1.1 cgd static mbl_t *frmblks;
160 1.1 cgd
161 1.1 cgd /* length of new allocated memory blocks */
162 1.1 cgd static size_t mblklen;
163 1.1 cgd
164 1.5 lukem static void *xgetblk(mbl_t **, size_t);
165 1.5 lukem static void xfreeblk(mbl_t **);
166 1.5 lukem static mbl_t *xnewblk(void);
167 1.1 cgd
168 1.1 cgd static mbl_t *
169 1.5 lukem xnewblk(void)
170 1.1 cgd {
171 1.10 christos mbl_t *mb = xmalloc(sizeof (mbl_t));
172 1.1 cgd
173 1.1 cgd /* use mmap instead of malloc to avoid malloc's size overhead */
174 1.10 christos mb->blk = xmapalloc(mblklen);
175 1.1 cgd mb->size = mblklen;
176 1.1 cgd
177 1.1 cgd return (mb);
178 1.1 cgd }
179 1.1 cgd
180 1.1 cgd /*
181 1.1 cgd * Allocate new memory. If the first block of the list has not enough
182 1.1 cgd * free space, or there is no first block, get a new block. The new
183 1.1 cgd * block is taken from the free list or, if there is no block on the
184 1.1 cgd * free list, is allocated using xnewblk(). If a new block is allocated
185 1.1 cgd * it is initialized with zero. Blocks taken from the free list are
186 1.1 cgd * zero'd in xfreeblk().
187 1.1 cgd */
188 1.1 cgd static void *
189 1.5 lukem xgetblk(mbl_t **mbp, size_t s)
190 1.1 cgd {
191 1.1 cgd mbl_t *mb;
192 1.1 cgd void *p;
193 1.8 jmc size_t t = 0;
194 1.1 cgd
195 1.1 cgd s = ALIGN(s);
196 1.1 cgd if ((mb = *mbp) == NULL || mb->nfree < s) {
197 1.1 cgd if ((mb = frmblks) == NULL) {
198 1.8 jmc if (s > mblklen) {
199 1.8 jmc t = mblklen;
200 1.8 jmc mblklen = s;
201 1.8 jmc }
202 1.1 cgd mb = xnewblk();
203 1.8 jmc if (t)
204 1.8 jmc mblklen = t;
205 1.1 cgd (void)memset(mb->blk, 0, mb->size);
206 1.1 cgd } else {
207 1.1 cgd frmblks = mb->nxt;
208 1.1 cgd }
209 1.1 cgd mb->ffree = mb->blk;
210 1.9 simonb mb->nfree = mb->size;
211 1.1 cgd mb->nxt = *mbp;
212 1.1 cgd *mbp = mb;
213 1.1 cgd }
214 1.1 cgd p = mb->ffree;
215 1.1 cgd mb->ffree = (char *)mb->ffree + s;
216 1.1 cgd mb->nfree -= s;
217 1.1 cgd return (p);
218 1.1 cgd }
219 1.1 cgd
220 1.1 cgd /*
221 1.1 cgd * Move all blocks from list *fmbp to free list. For each block, set all
222 1.1 cgd * used memory to zero.
223 1.1 cgd */
224 1.1 cgd static void
225 1.5 lukem xfreeblk(mbl_t **fmbp)
226 1.1 cgd {
227 1.1 cgd mbl_t *mb;
228 1.1 cgd
229 1.1 cgd while ((mb = *fmbp) != NULL) {
230 1.1 cgd *fmbp = mb->nxt;
231 1.1 cgd mb->nxt = frmblks;
232 1.1 cgd frmblks = mb;
233 1.1 cgd (void)memset(mb->blk, 0, mb->size - mb->nfree);
234 1.1 cgd }
235 1.1 cgd }
236 1.1 cgd
237 1.1 cgd void
238 1.5 lukem initmem(void)
239 1.1 cgd {
240 1.1 cgd int pgsz;
241 1.1 cgd
242 1.1 cgd pgsz = getpagesize();
243 1.1 cgd mblklen = ((MBLKSIZ + pgsz - 1) / pgsz) * pgsz;
244 1.1 cgd
245 1.1 cgd mblks = xcalloc(nmblks = ML_INC, sizeof (mbl_t *));
246 1.1 cgd }
247 1.1 cgd
248 1.5 lukem
249 1.1 cgd /*
250 1.1 cgd * Allocate memory associated with level l.
251 1.1 cgd */
252 1.1 cgd void *
253 1.12 christos getlblk(size_t l, size_t s)
254 1.1 cgd {
255 1.5 lukem
256 1.1 cgd while (l >= nmblks) {
257 1.1 cgd mblks = xrealloc(mblks, (nmblks + ML_INC) * sizeof (mbl_t *));
258 1.1 cgd (void)memset(&mblks[nmblks], 0, ML_INC * sizeof (mbl_t *));
259 1.1 cgd nmblks += ML_INC;
260 1.1 cgd }
261 1.1 cgd return (xgetblk(&mblks[l], s));
262 1.1 cgd }
263 1.1 cgd
264 1.1 cgd void *
265 1.5 lukem getblk(size_t s)
266 1.1 cgd {
267 1.5 lukem
268 1.1 cgd return (getlblk(mblklev, s));
269 1.1 cgd }
270 1.1 cgd
271 1.1 cgd /*
272 1.1 cgd * Free all memory associated with level l.
273 1.1 cgd */
274 1.1 cgd void
275 1.5 lukem freelblk(int l)
276 1.1 cgd {
277 1.5 lukem
278 1.1 cgd xfreeblk(&mblks[l]);
279 1.1 cgd }
280 1.1 cgd
281 1.1 cgd void
282 1.5 lukem freeblk(void)
283 1.1 cgd {
284 1.5 lukem
285 1.1 cgd freelblk(mblklev);
286 1.1 cgd }
287 1.1 cgd
288 1.1 cgd /*
289 1.1 cgd * tgetblk() returns memory which is associated with the current
290 1.1 cgd * expression.
291 1.1 cgd */
292 1.1 cgd static mbl_t *tmblk;
293 1.1 cgd
294 1.1 cgd void *
295 1.5 lukem tgetblk(size_t s)
296 1.1 cgd {
297 1.5 lukem
298 1.1 cgd return (xgetblk(&tmblk, s));
299 1.1 cgd }
300 1.1 cgd
301 1.1 cgd /*
302 1.1 cgd * Get memory for a new tree node.
303 1.1 cgd */
304 1.1 cgd tnode_t *
305 1.5 lukem getnode(void)
306 1.1 cgd {
307 1.5 lukem
308 1.1 cgd return (tgetblk(sizeof (tnode_t)));
309 1.1 cgd }
310 1.1 cgd
311 1.1 cgd /*
312 1.4 soren * Free all memory which is allocated by the current expression.
313 1.1 cgd */
314 1.1 cgd void
315 1.5 lukem tfreeblk(void)
316 1.1 cgd {
317 1.5 lukem
318 1.1 cgd xfreeblk(&tmblk);
319 1.1 cgd }
320 1.1 cgd
321 1.1 cgd /*
322 1.1 cgd * Save the memory which is used by the current expression. This memory
323 1.1 cgd * is not freed by the next tfreeblk() call. The pointer returned can be
324 1.1 cgd * used to restore the memory.
325 1.1 cgd */
326 1.1 cgd mbl_t *
327 1.5 lukem tsave(void)
328 1.1 cgd {
329 1.1 cgd mbl_t *tmem;
330 1.1 cgd
331 1.1 cgd tmem = tmblk;
332 1.1 cgd tmblk = NULL;
333 1.1 cgd return (tmem);
334 1.1 cgd }
335 1.1 cgd
336 1.1 cgd /*
337 1.1 cgd * Free all memory used for the current expression and the memory used
338 1.1 cgd * be a previous expression and saved by tsave(). The next call to
339 1.1 cgd * tfreeblk() frees the restored memory.
340 1.1 cgd */
341 1.1 cgd void
342 1.5 lukem trestor(mbl_t *tmem)
343 1.1 cgd {
344 1.5 lukem
345 1.1 cgd tfreeblk();
346 1.1 cgd if (tmblk != NULL) {
347 1.1 cgd free(tmblk->blk);
348 1.1 cgd free(tmblk);
349 1.1 cgd }
350 1.1 cgd tmblk = tmem;
351 1.1 cgd }
352