symtab.c revision 1.3 1 1.1 cgd /*
2 1.1 cgd * Copyright (c) 1983 The Regents of the University of California.
3 1.1 cgd * All rights reserved.
4 1.1 cgd *
5 1.1 cgd * Redistribution and use in source and binary forms, with or without
6 1.1 cgd * modification, are permitted provided that the following conditions
7 1.1 cgd * are met:
8 1.1 cgd * 1. Redistributions of source code must retain the above copyright
9 1.1 cgd * notice, this list of conditions and the following disclaimer.
10 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
11 1.1 cgd * notice, this list of conditions and the following disclaimer in the
12 1.1 cgd * documentation and/or other materials provided with the distribution.
13 1.1 cgd * 3. All advertising materials mentioning features or use of this software
14 1.1 cgd * must display the following acknowledgement:
15 1.1 cgd * This product includes software developed by the University of
16 1.1 cgd * California, Berkeley and its contributors.
17 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
18 1.1 cgd * may be used to endorse or promote products derived from this software
19 1.1 cgd * without specific prior written permission.
20 1.1 cgd *
21 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
22 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
25 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 1.1 cgd * SUCH DAMAGE.
32 1.1 cgd */
33 1.1 cgd
34 1.1 cgd #ifndef lint
35 1.3 cgd /* from: static char sccsid[] = "@(#)symtab.c 5.7 (Berkeley) 10/16/92"; */
36 1.3 cgd static char *rcsid = "$Id: symtab.c,v 1.3 1993/12/22 10:32:10 cgd Exp $";
37 1.1 cgd #endif /* not lint */
38 1.1 cgd
39 1.1 cgd /*
40 1.1 cgd * These routines maintain the symbol table which tracks the state
41 1.1 cgd * of the file system being restored. They provide lookup by either
42 1.1 cgd * name or inode number. They also provide for creation, deletion,
43 1.1 cgd * and renaming of entries. Because of the dynamic nature of pathnames,
44 1.1 cgd * names should not be saved, but always constructed just before they
45 1.1 cgd * are needed, by calling "myname".
46 1.1 cgd */
47 1.1 cgd
48 1.3 cgd #include <sys/param.h>
49 1.3 cgd #include <sys/stat.h>
50 1.3 cgd
51 1.3 cgd #include <ufs/dinode.h>
52 1.3 cgd #include <ufs/fs.h>
53 1.3 cgd
54 1.3 cgd #include <errno.h>
55 1.3 cgd #include <fcntl.h>
56 1.3 cgd #include <stdio.h>
57 1.3 cgd #include <stdlib.h>
58 1.3 cgd #include <string.h>
59 1.3 cgd #include <unistd.h>
60 1.3 cgd
61 1.1 cgd #include "restore.h"
62 1.3 cgd #include "extern.h"
63 1.1 cgd
64 1.1 cgd /*
65 1.1 cgd * The following variables define the inode symbol table.
66 1.1 cgd * The primary hash table is dynamically allocated based on
67 1.1 cgd * the number of inodes in the file system (maxino), scaled by
68 1.1 cgd * HASHFACTOR. The variable "entry" points to the hash table;
69 1.1 cgd * the variable "entrytblsize" indicates its size (in entries).
70 1.1 cgd */
71 1.1 cgd #define HASHFACTOR 5
72 1.1 cgd static struct entry **entry;
73 1.1 cgd static long entrytblsize;
74 1.1 cgd
75 1.3 cgd static void addino __P((ino_t, struct entry *));
76 1.3 cgd static struct entry *lookupparent __P((char *));
77 1.3 cgd static void removeentry __P((struct entry *));
78 1.3 cgd
79 1.1 cgd /*
80 1.1 cgd * Look up an entry by inode number
81 1.1 cgd */
82 1.1 cgd struct entry *
83 1.1 cgd lookupino(inum)
84 1.1 cgd ino_t inum;
85 1.1 cgd {
86 1.1 cgd register struct entry *ep;
87 1.1 cgd
88 1.1 cgd if (inum < ROOTINO || inum >= maxino)
89 1.3 cgd return (NULL);
90 1.3 cgd for (ep = entry[inum % entrytblsize]; ep != NULL; ep = ep->e_next)
91 1.1 cgd if (ep->e_ino == inum)
92 1.1 cgd return (ep);
93 1.3 cgd return (NULL);
94 1.1 cgd }
95 1.1 cgd
96 1.1 cgd /*
97 1.1 cgd * Add an entry into the entry table
98 1.1 cgd */
99 1.3 cgd static void
100 1.1 cgd addino(inum, np)
101 1.1 cgd ino_t inum;
102 1.1 cgd struct entry *np;
103 1.1 cgd {
104 1.1 cgd struct entry **epp;
105 1.1 cgd
106 1.1 cgd if (inum < ROOTINO || inum >= maxino)
107 1.1 cgd panic("addino: out of range %d\n", inum);
108 1.1 cgd epp = &entry[inum % entrytblsize];
109 1.1 cgd np->e_ino = inum;
110 1.1 cgd np->e_next = *epp;
111 1.1 cgd *epp = np;
112 1.1 cgd if (dflag)
113 1.3 cgd for (np = np->e_next; np != NULL; np = np->e_next)
114 1.1 cgd if (np->e_ino == inum)
115 1.1 cgd badentry(np, "duplicate inum");
116 1.1 cgd }
117 1.1 cgd
118 1.1 cgd /*
119 1.1 cgd * Delete an entry from the entry table
120 1.1 cgd */
121 1.3 cgd void
122 1.1 cgd deleteino(inum)
123 1.1 cgd ino_t inum;
124 1.1 cgd {
125 1.1 cgd register struct entry *next;
126 1.1 cgd struct entry **prev;
127 1.1 cgd
128 1.1 cgd if (inum < ROOTINO || inum >= maxino)
129 1.1 cgd panic("deleteino: out of range %d\n", inum);
130 1.1 cgd prev = &entry[inum % entrytblsize];
131 1.3 cgd for (next = *prev; next != NULL; next = next->e_next) {
132 1.1 cgd if (next->e_ino == inum) {
133 1.1 cgd next->e_ino = 0;
134 1.1 cgd *prev = next->e_next;
135 1.1 cgd return;
136 1.1 cgd }
137 1.1 cgd prev = &next->e_next;
138 1.1 cgd }
139 1.1 cgd panic("deleteino: %d not found\n", inum);
140 1.1 cgd }
141 1.1 cgd
142 1.1 cgd /*
143 1.1 cgd * Look up an entry by name
144 1.1 cgd */
145 1.1 cgd struct entry *
146 1.1 cgd lookupname(name)
147 1.1 cgd char *name;
148 1.1 cgd {
149 1.1 cgd register struct entry *ep;
150 1.1 cgd register char *np, *cp;
151 1.1 cgd char buf[MAXPATHLEN];
152 1.1 cgd
153 1.1 cgd cp = name;
154 1.3 cgd for (ep = lookupino(ROOTINO); ep != NULL; ep = ep->e_entries) {
155 1.1 cgd for (np = buf; *cp != '/' && *cp != '\0'; )
156 1.1 cgd *np++ = *cp++;
157 1.1 cgd *np = '\0';
158 1.3 cgd for ( ; ep != NULL; ep = ep->e_sibling)
159 1.1 cgd if (strcmp(ep->e_name, buf) == 0)
160 1.1 cgd break;
161 1.3 cgd if (ep == NULL)
162 1.1 cgd break;
163 1.1 cgd if (*cp++ == '\0')
164 1.1 cgd return (ep);
165 1.1 cgd }
166 1.3 cgd return (NULL);
167 1.1 cgd }
168 1.1 cgd
169 1.1 cgd /*
170 1.1 cgd * Look up the parent of a pathname
171 1.1 cgd */
172 1.3 cgd static struct entry *
173 1.1 cgd lookupparent(name)
174 1.1 cgd char *name;
175 1.1 cgd {
176 1.1 cgd struct entry *ep;
177 1.1 cgd char *tailindex;
178 1.1 cgd
179 1.1 cgd tailindex = rindex(name, '/');
180 1.1 cgd if (tailindex == 0)
181 1.3 cgd return (NULL);
182 1.1 cgd *tailindex = '\0';
183 1.1 cgd ep = lookupname(name);
184 1.1 cgd *tailindex = '/';
185 1.3 cgd if (ep == NULL)
186 1.3 cgd return (NULL);
187 1.1 cgd if (ep->e_type != NODE)
188 1.1 cgd panic("%s is not a directory\n", name);
189 1.1 cgd return (ep);
190 1.1 cgd }
191 1.1 cgd
192 1.1 cgd /*
193 1.1 cgd * Determine the current pathname of a node or leaf
194 1.1 cgd */
195 1.1 cgd char *
196 1.1 cgd myname(ep)
197 1.1 cgd register struct entry *ep;
198 1.1 cgd {
199 1.1 cgd register char *cp;
200 1.1 cgd static char namebuf[MAXPATHLEN];
201 1.1 cgd
202 1.1 cgd for (cp = &namebuf[MAXPATHLEN - 2]; cp > &namebuf[ep->e_namlen]; ) {
203 1.1 cgd cp -= ep->e_namlen;
204 1.1 cgd bcopy(ep->e_name, cp, (long)ep->e_namlen);
205 1.1 cgd if (ep == lookupino(ROOTINO))
206 1.1 cgd return (cp);
207 1.1 cgd *(--cp) = '/';
208 1.1 cgd ep = ep->e_parent;
209 1.1 cgd }
210 1.1 cgd panic("%s: pathname too long\n", cp);
211 1.1 cgd return(cp);
212 1.1 cgd }
213 1.1 cgd
214 1.1 cgd /*
215 1.1 cgd * Unused symbol table entries are linked together on a freelist
216 1.1 cgd * headed by the following pointer.
217 1.1 cgd */
218 1.3 cgd static struct entry *freelist = NULL;
219 1.1 cgd
220 1.1 cgd /*
221 1.1 cgd * add an entry to the symbol table
222 1.1 cgd */
223 1.1 cgd struct entry *
224 1.1 cgd addentry(name, inum, type)
225 1.1 cgd char *name;
226 1.1 cgd ino_t inum;
227 1.1 cgd int type;
228 1.1 cgd {
229 1.1 cgd register struct entry *np, *ep;
230 1.1 cgd
231 1.3 cgd if (freelist != NULL) {
232 1.1 cgd np = freelist;
233 1.1 cgd freelist = np->e_next;
234 1.1 cgd bzero((char *)np, (long)sizeof(struct entry));
235 1.1 cgd } else {
236 1.1 cgd np = (struct entry *)calloc(1, sizeof(struct entry));
237 1.3 cgd if (np == NULL)
238 1.1 cgd panic("no memory to extend symbol table\n");
239 1.1 cgd }
240 1.1 cgd np->e_type = type & ~LINK;
241 1.1 cgd ep = lookupparent(name);
242 1.3 cgd if (ep == NULL) {
243 1.3 cgd if (inum != ROOTINO || lookupino(ROOTINO) != NULL)
244 1.1 cgd panic("bad name to addentry %s\n", name);
245 1.1 cgd np->e_name = savename(name);
246 1.1 cgd np->e_namlen = strlen(name);
247 1.1 cgd np->e_parent = np;
248 1.1 cgd addino(ROOTINO, np);
249 1.1 cgd return (np);
250 1.1 cgd }
251 1.1 cgd np->e_name = savename(rindex(name, '/') + 1);
252 1.1 cgd np->e_namlen = strlen(np->e_name);
253 1.1 cgd np->e_parent = ep;
254 1.1 cgd np->e_sibling = ep->e_entries;
255 1.1 cgd ep->e_entries = np;
256 1.1 cgd if (type & LINK) {
257 1.1 cgd ep = lookupino(inum);
258 1.3 cgd if (ep == NULL)
259 1.1 cgd panic("link to non-existant name\n");
260 1.1 cgd np->e_ino = inum;
261 1.1 cgd np->e_links = ep->e_links;
262 1.1 cgd ep->e_links = np;
263 1.1 cgd } else if (inum != 0) {
264 1.3 cgd if (lookupino(inum) != NULL)
265 1.1 cgd panic("duplicate entry\n");
266 1.1 cgd addino(inum, np);
267 1.1 cgd }
268 1.1 cgd return (np);
269 1.1 cgd }
270 1.1 cgd
271 1.1 cgd /*
272 1.1 cgd * delete an entry from the symbol table
273 1.1 cgd */
274 1.3 cgd void
275 1.1 cgd freeentry(ep)
276 1.1 cgd register struct entry *ep;
277 1.1 cgd {
278 1.1 cgd register struct entry *np;
279 1.1 cgd ino_t inum;
280 1.1 cgd
281 1.1 cgd if (ep->e_flags != REMOVED)
282 1.1 cgd badentry(ep, "not marked REMOVED");
283 1.1 cgd if (ep->e_type == NODE) {
284 1.3 cgd if (ep->e_links != NULL)
285 1.1 cgd badentry(ep, "freeing referenced directory");
286 1.3 cgd if (ep->e_entries != NULL)
287 1.1 cgd badentry(ep, "freeing non-empty directory");
288 1.1 cgd }
289 1.1 cgd if (ep->e_ino != 0) {
290 1.1 cgd np = lookupino(ep->e_ino);
291 1.3 cgd if (np == NULL)
292 1.1 cgd badentry(ep, "lookupino failed");
293 1.1 cgd if (np == ep) {
294 1.1 cgd inum = ep->e_ino;
295 1.1 cgd deleteino(inum);
296 1.3 cgd if (ep->e_links != NULL)
297 1.1 cgd addino(inum, ep->e_links);
298 1.1 cgd } else {
299 1.3 cgd for (; np != NULL; np = np->e_links) {
300 1.1 cgd if (np->e_links == ep) {
301 1.1 cgd np->e_links = ep->e_links;
302 1.1 cgd break;
303 1.1 cgd }
304 1.1 cgd }
305 1.3 cgd if (np == NULL)
306 1.1 cgd badentry(ep, "link not found");
307 1.1 cgd }
308 1.1 cgd }
309 1.1 cgd removeentry(ep);
310 1.1 cgd freename(ep->e_name);
311 1.1 cgd ep->e_next = freelist;
312 1.1 cgd freelist = ep;
313 1.1 cgd }
314 1.1 cgd
315 1.1 cgd /*
316 1.1 cgd * Relocate an entry in the tree structure
317 1.1 cgd */
318 1.3 cgd void
319 1.1 cgd moveentry(ep, newname)
320 1.1 cgd register struct entry *ep;
321 1.1 cgd char *newname;
322 1.1 cgd {
323 1.1 cgd struct entry *np;
324 1.1 cgd char *cp;
325 1.1 cgd
326 1.1 cgd np = lookupparent(newname);
327 1.3 cgd if (np == NULL)
328 1.1 cgd badentry(ep, "cannot move ROOT");
329 1.1 cgd if (np != ep->e_parent) {
330 1.1 cgd removeentry(ep);
331 1.1 cgd ep->e_parent = np;
332 1.1 cgd ep->e_sibling = np->e_entries;
333 1.1 cgd np->e_entries = ep;
334 1.1 cgd }
335 1.1 cgd cp = rindex(newname, '/') + 1;
336 1.1 cgd freename(ep->e_name);
337 1.1 cgd ep->e_name = savename(cp);
338 1.1 cgd ep->e_namlen = strlen(cp);
339 1.1 cgd if (strcmp(gentempname(ep), ep->e_name) == 0)
340 1.1 cgd ep->e_flags |= TMPNAME;
341 1.1 cgd else
342 1.1 cgd ep->e_flags &= ~TMPNAME;
343 1.1 cgd }
344 1.1 cgd
345 1.1 cgd /*
346 1.1 cgd * Remove an entry in the tree structure
347 1.1 cgd */
348 1.3 cgd static void
349 1.1 cgd removeentry(ep)
350 1.1 cgd register struct entry *ep;
351 1.1 cgd {
352 1.1 cgd register struct entry *np;
353 1.1 cgd
354 1.1 cgd np = ep->e_parent;
355 1.1 cgd if (np->e_entries == ep) {
356 1.1 cgd np->e_entries = ep->e_sibling;
357 1.1 cgd } else {
358 1.3 cgd for (np = np->e_entries; np != NULL; np = np->e_sibling) {
359 1.1 cgd if (np->e_sibling == ep) {
360 1.1 cgd np->e_sibling = ep->e_sibling;
361 1.1 cgd break;
362 1.1 cgd }
363 1.1 cgd }
364 1.3 cgd if (np == NULL)
365 1.1 cgd badentry(ep, "cannot find entry in parent list");
366 1.1 cgd }
367 1.1 cgd }
368 1.1 cgd
369 1.1 cgd /*
370 1.1 cgd * Table of unused string entries, sorted by length.
371 1.1 cgd *
372 1.1 cgd * Entries are allocated in STRTBLINCR sized pieces so that names
373 1.1 cgd * of similar lengths can use the same entry. The value of STRTBLINCR
374 1.1 cgd * is chosen so that every entry has at least enough space to hold
375 1.1 cgd * a "struct strtbl" header. Thus every entry can be linked onto an
376 1.1 cgd * apprpriate free list.
377 1.1 cgd *
378 1.1 cgd * NB. The macro "allocsize" below assumes that "struct strhdr"
379 1.1 cgd * has a size that is a power of two.
380 1.1 cgd */
381 1.1 cgd struct strhdr {
382 1.1 cgd struct strhdr *next;
383 1.1 cgd };
384 1.1 cgd
385 1.1 cgd #define STRTBLINCR (sizeof(struct strhdr))
386 1.1 cgd #define allocsize(size) (((size) + 1 + STRTBLINCR - 1) & ~(STRTBLINCR - 1))
387 1.1 cgd
388 1.3 cgd static struct strhdr strtblhdr[allocsize(NAME_MAX) / STRTBLINCR];
389 1.1 cgd
390 1.1 cgd /*
391 1.1 cgd * Allocate space for a name. It first looks to see if it already
392 1.1 cgd * has an appropriate sized entry, and if not allocates a new one.
393 1.1 cgd */
394 1.1 cgd char *
395 1.1 cgd savename(name)
396 1.1 cgd char *name;
397 1.1 cgd {
398 1.1 cgd struct strhdr *np;
399 1.1 cgd long len;
400 1.1 cgd char *cp;
401 1.1 cgd
402 1.1 cgd if (name == NULL)
403 1.1 cgd panic("bad name\n");
404 1.1 cgd len = strlen(name);
405 1.1 cgd np = strtblhdr[len / STRTBLINCR].next;
406 1.1 cgd if (np != NULL) {
407 1.1 cgd strtblhdr[len / STRTBLINCR].next = np->next;
408 1.1 cgd cp = (char *)np;
409 1.1 cgd } else {
410 1.1 cgd cp = malloc((unsigned)allocsize(len));
411 1.1 cgd if (cp == NULL)
412 1.1 cgd panic("no space for string table\n");
413 1.1 cgd }
414 1.1 cgd (void) strcpy(cp, name);
415 1.1 cgd return (cp);
416 1.1 cgd }
417 1.1 cgd
418 1.1 cgd /*
419 1.1 cgd * Free space for a name. The resulting entry is linked onto the
420 1.1 cgd * appropriate free list.
421 1.1 cgd */
422 1.3 cgd void
423 1.1 cgd freename(name)
424 1.1 cgd char *name;
425 1.1 cgd {
426 1.1 cgd struct strhdr *tp, *np;
427 1.1 cgd
428 1.1 cgd tp = &strtblhdr[strlen(name) / STRTBLINCR];
429 1.1 cgd np = (struct strhdr *)name;
430 1.1 cgd np->next = tp->next;
431 1.1 cgd tp->next = np;
432 1.1 cgd }
433 1.1 cgd
434 1.1 cgd /*
435 1.1 cgd * Useful quantities placed at the end of a dumped symbol table.
436 1.1 cgd */
437 1.1 cgd struct symtableheader {
438 1.1 cgd long volno;
439 1.1 cgd long stringsize;
440 1.1 cgd long entrytblsize;
441 1.1 cgd time_t dumptime;
442 1.1 cgd time_t dumpdate;
443 1.1 cgd ino_t maxino;
444 1.1 cgd long ntrec;
445 1.1 cgd };
446 1.1 cgd
447 1.1 cgd /*
448 1.1 cgd * dump a snapshot of the symbol table
449 1.1 cgd */
450 1.3 cgd void
451 1.1 cgd dumpsymtable(filename, checkpt)
452 1.1 cgd char *filename;
453 1.1 cgd long checkpt;
454 1.1 cgd {
455 1.1 cgd register struct entry *ep, *tep;
456 1.1 cgd register ino_t i;
457 1.1 cgd struct entry temp, *tentry;
458 1.1 cgd long mynum = 1, stroff = 0;
459 1.1 cgd FILE *fd;
460 1.1 cgd struct symtableheader hdr;
461 1.1 cgd
462 1.1 cgd vprintf(stdout, "Check pointing the restore\n");
463 1.1 cgd if (Nflag)
464 1.1 cgd return;
465 1.1 cgd if ((fd = fopen(filename, "w")) == NULL) {
466 1.3 cgd fprintf(stderr, "fopen: %s\n", strerror(errno));
467 1.1 cgd panic("cannot create save file %s for symbol table\n",
468 1.1 cgd filename);
469 1.1 cgd }
470 1.1 cgd clearerr(fd);
471 1.1 cgd /*
472 1.1 cgd * Assign indicies to each entry
473 1.1 cgd * Write out the string entries
474 1.1 cgd */
475 1.1 cgd for (i = ROOTINO; i < maxino; i++) {
476 1.3 cgd for (ep = lookupino(i); ep != NULL; ep = ep->e_links) {
477 1.1 cgd ep->e_index = mynum++;
478 1.1 cgd (void) fwrite(ep->e_name, sizeof(char),
479 1.1 cgd (int)allocsize(ep->e_namlen), fd);
480 1.1 cgd }
481 1.1 cgd }
482 1.1 cgd /*
483 1.1 cgd * Convert pointers to indexes, and output
484 1.1 cgd */
485 1.1 cgd tep = &temp;
486 1.1 cgd stroff = 0;
487 1.1 cgd for (i = ROOTINO; i < maxino; i++) {
488 1.3 cgd for (ep = lookupino(i); ep != NULL; ep = ep->e_links) {
489 1.1 cgd bcopy((char *)ep, (char *)tep,
490 1.1 cgd (long)sizeof(struct entry));
491 1.1 cgd tep->e_name = (char *)stroff;
492 1.1 cgd stroff += allocsize(ep->e_namlen);
493 1.1 cgd tep->e_parent = (struct entry *)ep->e_parent->e_index;
494 1.3 cgd if (ep->e_links != NULL)
495 1.1 cgd tep->e_links =
496 1.1 cgd (struct entry *)ep->e_links->e_index;
497 1.3 cgd if (ep->e_sibling != NULL)
498 1.1 cgd tep->e_sibling =
499 1.1 cgd (struct entry *)ep->e_sibling->e_index;
500 1.3 cgd if (ep->e_entries != NULL)
501 1.1 cgd tep->e_entries =
502 1.1 cgd (struct entry *)ep->e_entries->e_index;
503 1.3 cgd if (ep->e_next != NULL)
504 1.1 cgd tep->e_next =
505 1.1 cgd (struct entry *)ep->e_next->e_index;
506 1.1 cgd (void) fwrite((char *)tep, sizeof(struct entry), 1, fd);
507 1.1 cgd }
508 1.1 cgd }
509 1.1 cgd /*
510 1.1 cgd * Convert entry pointers to indexes, and output
511 1.1 cgd */
512 1.1 cgd for (i = 0; i < entrytblsize; i++) {
513 1.3 cgd if (entry[i] == NULL)
514 1.3 cgd tentry = NULL;
515 1.1 cgd else
516 1.1 cgd tentry = (struct entry *)entry[i]->e_index;
517 1.1 cgd (void) fwrite((char *)&tentry, sizeof(struct entry *), 1, fd);
518 1.1 cgd }
519 1.1 cgd hdr.volno = checkpt;
520 1.1 cgd hdr.maxino = maxino;
521 1.1 cgd hdr.entrytblsize = entrytblsize;
522 1.1 cgd hdr.stringsize = stroff;
523 1.1 cgd hdr.dumptime = dumptime;
524 1.1 cgd hdr.dumpdate = dumpdate;
525 1.1 cgd hdr.ntrec = ntrec;
526 1.1 cgd (void) fwrite((char *)&hdr, sizeof(struct symtableheader), 1, fd);
527 1.1 cgd if (ferror(fd)) {
528 1.3 cgd fprintf(stderr, "fwrite: %s\n", strerror(errno));
529 1.1 cgd panic("output error to file %s writing symbol table\n",
530 1.1 cgd filename);
531 1.1 cgd }
532 1.1 cgd (void) fclose(fd);
533 1.1 cgd }
534 1.1 cgd
535 1.1 cgd /*
536 1.1 cgd * Initialize a symbol table from a file
537 1.1 cgd */
538 1.3 cgd void
539 1.1 cgd initsymtable(filename)
540 1.1 cgd char *filename;
541 1.1 cgd {
542 1.1 cgd char *base;
543 1.1 cgd long tblsize;
544 1.1 cgd register struct entry *ep;
545 1.1 cgd struct entry *baseep, *lep;
546 1.1 cgd struct symtableheader hdr;
547 1.1 cgd struct stat stbuf;
548 1.1 cgd register long i;
549 1.1 cgd int fd;
550 1.1 cgd
551 1.1 cgd vprintf(stdout, "Initialize symbol table.\n");
552 1.1 cgd if (filename == NULL) {
553 1.1 cgd entrytblsize = maxino / HASHFACTOR;
554 1.1 cgd entry = (struct entry **)
555 1.1 cgd calloc((unsigned)entrytblsize, sizeof(struct entry *));
556 1.3 cgd if (entry == (struct entry **)NULL)
557 1.1 cgd panic("no memory for entry table\n");
558 1.1 cgd ep = addentry(".", ROOTINO, NODE);
559 1.1 cgd ep->e_flags |= NEW;
560 1.1 cgd return;
561 1.1 cgd }
562 1.3 cgd if ((fd = open(filename, O_RDONLY, 0)) < 0) {
563 1.3 cgd fprintf(stderr, "open: %s\n", strerror(errno));
564 1.1 cgd panic("cannot open symbol table file %s\n", filename);
565 1.1 cgd }
566 1.1 cgd if (fstat(fd, &stbuf) < 0) {
567 1.3 cgd fprintf(stderr, "stat: %s\n", strerror(errno));
568 1.1 cgd panic("cannot stat symbol table file %s\n", filename);
569 1.1 cgd }
570 1.1 cgd tblsize = stbuf.st_size - sizeof(struct symtableheader);
571 1.1 cgd base = calloc(sizeof(char), (unsigned)tblsize);
572 1.1 cgd if (base == NULL)
573 1.1 cgd panic("cannot allocate space for symbol table\n");
574 1.1 cgd if (read(fd, base, (int)tblsize) < 0 ||
575 1.1 cgd read(fd, (char *)&hdr, sizeof(struct symtableheader)) < 0) {
576 1.3 cgd fprintf(stderr, "read: %s\n", strerror(errno));
577 1.1 cgd panic("cannot read symbol table file %s\n", filename);
578 1.1 cgd }
579 1.1 cgd switch (command) {
580 1.1 cgd case 'r':
581 1.1 cgd /*
582 1.1 cgd * For normal continuation, insure that we are using
583 1.1 cgd * the next incremental tape
584 1.1 cgd */
585 1.1 cgd if (hdr.dumpdate != dumptime) {
586 1.1 cgd if (hdr.dumpdate < dumptime)
587 1.1 cgd fprintf(stderr, "Incremental tape too low\n");
588 1.1 cgd else
589 1.1 cgd fprintf(stderr, "Incremental tape too high\n");
590 1.1 cgd done(1);
591 1.1 cgd }
592 1.1 cgd break;
593 1.1 cgd case 'R':
594 1.1 cgd /*
595 1.1 cgd * For restart, insure that we are using the same tape
596 1.1 cgd */
597 1.1 cgd curfile.action = SKIP;
598 1.1 cgd dumptime = hdr.dumptime;
599 1.1 cgd dumpdate = hdr.dumpdate;
600 1.1 cgd if (!bflag)
601 1.1 cgd newtapebuf(hdr.ntrec);
602 1.1 cgd getvol(hdr.volno);
603 1.1 cgd break;
604 1.1 cgd default:
605 1.1 cgd panic("initsymtable called from command %c\n", command);
606 1.1 cgd break;
607 1.1 cgd }
608 1.1 cgd maxino = hdr.maxino;
609 1.1 cgd entrytblsize = hdr.entrytblsize;
610 1.1 cgd entry = (struct entry **)
611 1.1 cgd (base + tblsize - (entrytblsize * sizeof(struct entry *)));
612 1.1 cgd baseep = (struct entry *)(base + hdr.stringsize - sizeof(struct entry));
613 1.1 cgd lep = (struct entry *)entry;
614 1.1 cgd for (i = 0; i < entrytblsize; i++) {
615 1.3 cgd if (entry[i] == NULL)
616 1.1 cgd continue;
617 1.1 cgd entry[i] = &baseep[(long)entry[i]];
618 1.1 cgd }
619 1.1 cgd for (ep = &baseep[1]; ep < lep; ep++) {
620 1.1 cgd ep->e_name = base + (long)ep->e_name;
621 1.1 cgd ep->e_parent = &baseep[(long)ep->e_parent];
622 1.3 cgd if (ep->e_sibling != NULL)
623 1.1 cgd ep->e_sibling = &baseep[(long)ep->e_sibling];
624 1.3 cgd if (ep->e_links != NULL)
625 1.1 cgd ep->e_links = &baseep[(long)ep->e_links];
626 1.3 cgd if (ep->e_entries != NULL)
627 1.1 cgd ep->e_entries = &baseep[(long)ep->e_entries];
628 1.3 cgd if (ep->e_next != NULL)
629 1.1 cgd ep->e_next = &baseep[(long)ep->e_next];
630 1.1 cgd }
631 1.1 cgd }
632