Schedule nscd cache pruning more accurately fromr re-added values.
[glibc.git] / nscd / connections.c
blobd9878fa5907f07da9650754cc49684d4dd89d5f1
1 /* Inner loops of cache daemon.
2 Copyright (C) 1998-2007, 2008, 2009, 2011 Free Software Foundation, Inc.
3 This file is part of the GNU C Library.
4 Contributed by Ulrich Drepper <drepper@cygnus.com>, 1998.
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published
8 by the Free Software Foundation; version 2 of the License, or
9 (at your option) any later version.
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software Foundation,
18 Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
20 #include <alloca.h>
21 #include <assert.h>
22 #include <atomic.h>
23 #include <error.h>
24 #include <errno.h>
25 #include <fcntl.h>
26 #include <grp.h>
27 #include <libintl.h>
28 #include <pthread.h>
29 #include <pwd.h>
30 #include <resolv.h>
31 #include <stdio.h>
32 #include <stdlib.h>
33 #include <unistd.h>
34 #include <arpa/inet.h>
35 #ifdef HAVE_EPOLL
36 # include <sys/epoll.h>
37 #endif
38 #ifdef HAVE_INOTIFY
39 # include <sys/inotify.h>
40 #endif
41 #include <sys/mman.h>
42 #include <sys/param.h>
43 #include <sys/poll.h>
44 #ifdef HAVE_SENDFILE
45 # include <sys/sendfile.h>
46 #endif
47 #include <sys/socket.h>
48 #include <sys/stat.h>
49 #include <sys/un.h>
51 #include "nscd.h"
52 #include "dbg_log.h"
53 #include "selinux.h"
54 #include <resolv/resolv.h>
55 #ifdef HAVE_SENDFILE
56 # include <kernel-features.h>
57 #endif
60 /* Wrapper functions with error checking for standard functions. */
61 extern void *xmalloc (size_t n);
62 extern void *xcalloc (size_t n, size_t s);
63 extern void *xrealloc (void *o, size_t n);
65 /* Support to run nscd as an unprivileged user */
66 const char *server_user;
67 static uid_t server_uid;
68 static gid_t server_gid;
69 const char *stat_user;
70 uid_t stat_uid;
71 static gid_t *server_groups;
72 #ifndef NGROUPS
73 # define NGROUPS 32
74 #endif
75 static int server_ngroups;
77 static pthread_attr_t attr;
79 static void begin_drop_privileges (void);
80 static void finish_drop_privileges (void);
82 /* Map request type to a string. */
83 const char *const serv2str[LASTREQ] =
85 [GETPWBYNAME] = "GETPWBYNAME",
86 [GETPWBYUID] = "GETPWBYUID",
87 [GETGRBYNAME] = "GETGRBYNAME",
88 [GETGRBYGID] = "GETGRBYGID",
89 [GETHOSTBYNAME] = "GETHOSTBYNAME",
90 [GETHOSTBYNAMEv6] = "GETHOSTBYNAMEv6",
91 [GETHOSTBYADDR] = "GETHOSTBYADDR",
92 [GETHOSTBYADDRv6] = "GETHOSTBYADDRv6",
93 [SHUTDOWN] = "SHUTDOWN",
94 [GETSTAT] = "GETSTAT",
95 [INVALIDATE] = "INVALIDATE",
96 [GETFDPW] = "GETFDPW",
97 [GETFDGR] = "GETFDGR",
98 [GETFDHST] = "GETFDHST",
99 [GETAI] = "GETAI",
100 [INITGROUPS] = "INITGROUPS",
101 [GETSERVBYNAME] = "GETSERVBYNAME",
102 [GETSERVBYPORT] = "GETSERVBYPORT",
103 [GETFDSERV] = "GETFDSERV"
106 /* The control data structures for the services. */
107 struct database_dyn dbs[lastdb] =
109 [pwddb] = {
110 .lock = PTHREAD_RWLOCK_WRITER_NONRECURSIVE_INITIALIZER_NP,
111 .prune_lock = PTHREAD_MUTEX_INITIALIZER,
112 .prune_run_lock = PTHREAD_MUTEX_INITIALIZER,
113 .enabled = 0,
114 .check_file = 1,
115 .persistent = 0,
116 .propagate = 1,
117 .shared = 0,
118 .max_db_size = DEFAULT_MAX_DB_SIZE,
119 .suggested_module = DEFAULT_SUGGESTED_MODULE,
120 .reset_res = 0,
121 .filename = "/etc/passwd",
122 .db_filename = _PATH_NSCD_PASSWD_DB,
123 .disabled_iov = &pwd_iov_disabled,
124 .postimeout = 3600,
125 .negtimeout = 20,
126 .wr_fd = -1,
127 .ro_fd = -1,
128 .mmap_used = false
130 [grpdb] = {
131 .lock = PTHREAD_RWLOCK_WRITER_NONRECURSIVE_INITIALIZER_NP,
132 .prune_lock = PTHREAD_MUTEX_INITIALIZER,
133 .prune_run_lock = PTHREAD_MUTEX_INITIALIZER,
134 .enabled = 0,
135 .check_file = 1,
136 .persistent = 0,
137 .propagate = 1,
138 .shared = 0,
139 .max_db_size = DEFAULT_MAX_DB_SIZE,
140 .suggested_module = DEFAULT_SUGGESTED_MODULE,
141 .reset_res = 0,
142 .filename = "/etc/group",
143 .db_filename = _PATH_NSCD_GROUP_DB,
144 .disabled_iov = &grp_iov_disabled,
145 .postimeout = 3600,
146 .negtimeout = 60,
147 .wr_fd = -1,
148 .ro_fd = -1,
149 .mmap_used = false
151 [hstdb] = {
152 .lock = PTHREAD_RWLOCK_WRITER_NONRECURSIVE_INITIALIZER_NP,
153 .prune_lock = PTHREAD_MUTEX_INITIALIZER,
154 .prune_run_lock = PTHREAD_MUTEX_INITIALIZER,
155 .enabled = 0,
156 .check_file = 1,
157 .persistent = 0,
158 .propagate = 0, /* Not used. */
159 .shared = 0,
160 .max_db_size = DEFAULT_MAX_DB_SIZE,
161 .suggested_module = DEFAULT_SUGGESTED_MODULE,
162 .reset_res = 1,
163 .filename = "/etc/hosts",
164 .db_filename = _PATH_NSCD_HOSTS_DB,
165 .disabled_iov = &hst_iov_disabled,
166 .postimeout = 3600,
167 .negtimeout = 20,
168 .wr_fd = -1,
169 .ro_fd = -1,
170 .mmap_used = false
172 [servdb] = {
173 .lock = PTHREAD_RWLOCK_WRITER_NONRECURSIVE_INITIALIZER_NP,
174 .prune_lock = PTHREAD_MUTEX_INITIALIZER,
175 .prune_run_lock = PTHREAD_MUTEX_INITIALIZER,
176 .enabled = 0,
177 .check_file = 1,
178 .persistent = 0,
179 .propagate = 0, /* Not used. */
180 .shared = 0,
181 .max_db_size = DEFAULT_MAX_DB_SIZE,
182 .suggested_module = DEFAULT_SUGGESTED_MODULE,
183 .reset_res = 0,
184 .filename = "/etc/services",
185 .db_filename = _PATH_NSCD_SERVICES_DB,
186 .disabled_iov = &serv_iov_disabled,
187 .postimeout = 28800,
188 .negtimeout = 20,
189 .wr_fd = -1,
190 .ro_fd = -1,
191 .mmap_used = false
196 /* Mapping of request type to database. */
197 static struct
199 bool data_request;
200 struct database_dyn *db;
201 } const reqinfo[LASTREQ] =
203 [GETPWBYNAME] = { true, &dbs[pwddb] },
204 [GETPWBYUID] = { true, &dbs[pwddb] },
205 [GETGRBYNAME] = { true, &dbs[grpdb] },
206 [GETGRBYGID] = { true, &dbs[grpdb] },
207 [GETHOSTBYNAME] = { true, &dbs[hstdb] },
208 [GETHOSTBYNAMEv6] = { true, &dbs[hstdb] },
209 [GETHOSTBYADDR] = { true, &dbs[hstdb] },
210 [GETHOSTBYADDRv6] = { true, &dbs[hstdb] },
211 [SHUTDOWN] = { false, NULL },
212 [GETSTAT] = { false, NULL },
213 [SHUTDOWN] = { false, NULL },
214 [GETFDPW] = { false, &dbs[pwddb] },
215 [GETFDGR] = { false, &dbs[grpdb] },
216 [GETFDHST] = { false, &dbs[hstdb] },
217 [GETAI] = { true, &dbs[hstdb] },
218 [INITGROUPS] = { true, &dbs[grpdb] },
219 [GETSERVBYNAME] = { true, &dbs[servdb] },
220 [GETSERVBYPORT] = { true, &dbs[servdb] },
221 [GETFDSERV] = { false, &dbs[servdb] }
225 /* Initial number of threads to use. */
226 int nthreads = -1;
227 /* Maximum number of threads to use. */
228 int max_nthreads = 32;
230 /* Socket for incoming connections. */
231 static int sock;
233 #ifdef HAVE_INOTIFY
234 /* Inotify descriptor. */
235 static int inotify_fd = -1;
237 /* Watch descriptor for resolver configuration file. */
238 static int resolv_conf_descr = -1;
239 #endif
241 #ifndef __ASSUME_SOCK_CLOEXEC
242 /* Negative if SOCK_CLOEXEC is not supported, positive if it is, zero
243 before be know the result. */
244 static int have_sock_cloexec;
245 #endif
246 #ifndef __ASSUME_ACCEPT4
247 static int have_accept4;
248 #endif
250 /* Number of times clients had to wait. */
251 unsigned long int client_queued;
254 ssize_t
255 writeall (int fd, const void *buf, size_t len)
257 size_t n = len;
258 ssize_t ret;
261 ret = TEMP_FAILURE_RETRY (send (fd, buf, n, MSG_NOSIGNAL));
262 if (ret <= 0)
263 break;
264 buf = (const char *) buf + ret;
265 n -= ret;
267 while (n > 0);
268 return ret < 0 ? ret : len - n;
272 #ifdef HAVE_SENDFILE
273 ssize_t
274 sendfileall (int tofd, int fromfd, off_t off, size_t len)
276 ssize_t n = len;
277 ssize_t ret;
281 ret = TEMP_FAILURE_RETRY (sendfile (tofd, fromfd, &off, n));
282 if (ret <= 0)
283 break;
284 n -= ret;
286 while (n > 0);
287 return ret < 0 ? ret : len - n;
289 #endif
292 enum usekey
294 use_not = 0,
295 /* The following three are not really used, they are symbolic constants. */
296 use_first = 16,
297 use_begin = 32,
298 use_end = 64,
300 use_he = 1,
301 use_he_begin = use_he | use_begin,
302 use_he_end = use_he | use_end,
303 #if SEPARATE_KEY
304 use_key = 2,
305 use_key_begin = use_key | use_begin,
306 use_key_end = use_key | use_end,
307 use_key_first = use_key_begin | use_first,
308 #endif
309 use_data = 3,
310 use_data_begin = use_data | use_begin,
311 use_data_end = use_data | use_end,
312 use_data_first = use_data_begin | use_first
316 static int
317 check_use (const char *data, nscd_ssize_t first_free, uint8_t *usemap,
318 enum usekey use, ref_t start, size_t len)
320 assert (len >= 2);
322 if (start > first_free || start + len > first_free
323 || (start & BLOCK_ALIGN_M1))
324 return 0;
326 if (usemap[start] == use_not)
328 /* Add the start marker. */
329 usemap[start] = use | use_begin;
330 use &= ~use_first;
332 while (--len > 0)
333 if (usemap[++start] != use_not)
334 return 0;
335 else
336 usemap[start] = use;
338 /* Add the end marker. */
339 usemap[start] = use | use_end;
341 else if ((usemap[start] & ~use_first) == ((use | use_begin) & ~use_first))
343 /* Hash entries can't be shared. */
344 if (use == use_he)
345 return 0;
347 usemap[start] |= (use & use_first);
348 use &= ~use_first;
350 while (--len > 1)
351 if (usemap[++start] != use)
352 return 0;
354 if (usemap[++start] != (use | use_end))
355 return 0;
357 else
358 /* Points to a wrong object or somewhere in the middle. */
359 return 0;
361 return 1;
365 /* Verify data in persistent database. */
366 static int
367 verify_persistent_db (void *mem, struct database_pers_head *readhead, int dbnr)
369 assert (dbnr == pwddb || dbnr == grpdb || dbnr == hstdb || dbnr == servdb);
371 time_t now = time (NULL);
373 struct database_pers_head *head = mem;
374 struct database_pers_head head_copy = *head;
376 /* Check that the header that was read matches the head in the database. */
377 if (memcmp (head, readhead, sizeof (*head)) != 0)
378 return 0;
380 /* First some easy tests: make sure the database header is sane. */
381 if (head->version != DB_VERSION
382 || head->header_size != sizeof (*head)
383 /* We allow a timestamp to be one hour ahead of the current time.
384 This should cover daylight saving time changes. */
385 || head->timestamp > now + 60 * 60 + 60
386 || (head->gc_cycle & 1)
387 || head->module == 0
388 || (size_t) head->module > INT32_MAX / sizeof (ref_t)
389 || (size_t) head->data_size > INT32_MAX - head->module * sizeof (ref_t)
390 || head->first_free < 0
391 || head->first_free > head->data_size
392 || (head->first_free & BLOCK_ALIGN_M1) != 0
393 || head->maxnentries < 0
394 || head->maxnsearched < 0)
395 return 0;
397 uint8_t *usemap = calloc (head->first_free, 1);
398 if (usemap == NULL)
399 return 0;
401 const char *data = (char *) &head->array[roundup (head->module,
402 ALIGN / sizeof (ref_t))];
404 nscd_ssize_t he_cnt = 0;
405 for (nscd_ssize_t cnt = 0; cnt < head->module; ++cnt)
407 ref_t trail = head->array[cnt];
408 ref_t work = trail;
409 int tick = 0;
411 while (work != ENDREF)
413 if (! check_use (data, head->first_free, usemap, use_he, work,
414 sizeof (struct hashentry)))
415 goto fail;
417 /* Now we know we can dereference the record. */
418 struct hashentry *here = (struct hashentry *) (data + work);
420 ++he_cnt;
422 /* Make sure the record is for this type of service. */
423 if (here->type >= LASTREQ
424 || reqinfo[here->type].db != &dbs[dbnr])
425 goto fail;
427 /* Validate boolean field value. */
428 if (here->first != false && here->first != true)
429 goto fail;
431 if (here->len < 0)
432 goto fail;
434 /* Now the data. */
435 if (here->packet < 0
436 || here->packet > head->first_free
437 || here->packet + sizeof (struct datahead) > head->first_free)
438 goto fail;
440 struct datahead *dh = (struct datahead *) (data + here->packet);
442 if (! check_use (data, head->first_free, usemap,
443 use_data | (here->first ? use_first : 0),
444 here->packet, dh->allocsize))
445 goto fail;
447 if (dh->allocsize < sizeof (struct datahead)
448 || dh->recsize > dh->allocsize
449 || (dh->notfound != false && dh->notfound != true)
450 || (dh->usable != false && dh->usable != true))
451 goto fail;
453 if (here->key < here->packet + sizeof (struct datahead)
454 || here->key > here->packet + dh->allocsize
455 || here->key + here->len > here->packet + dh->allocsize)
457 #if SEPARATE_KEY
458 /* If keys can appear outside of data, this should be done
459 instead. But gc doesn't mark the data in that case. */
460 if (! check_use (data, head->first_free, usemap,
461 use_key | (here->first ? use_first : 0),
462 here->key, here->len))
463 #endif
464 goto fail;
467 work = here->next;
469 if (work == trail)
470 /* A circular list, this must not happen. */
471 goto fail;
472 if (tick)
473 trail = ((struct hashentry *) (data + trail))->next;
474 tick = 1 - tick;
478 if (he_cnt != head->nentries)
479 goto fail;
481 /* See if all data and keys had at least one reference from
482 he->first == true hashentry. */
483 for (ref_t idx = 0; idx < head->first_free; ++idx)
485 #if SEPARATE_KEY
486 if (usemap[idx] == use_key_begin)
487 goto fail;
488 #endif
489 if (usemap[idx] == use_data_begin)
490 goto fail;
493 /* Finally, make sure the database hasn't changed since the first test. */
494 if (memcmp (mem, &head_copy, sizeof (*head)) != 0)
495 goto fail;
497 free (usemap);
498 return 1;
500 fail:
501 free (usemap);
502 return 0;
506 #ifdef O_CLOEXEC
507 # define EXTRA_O_FLAGS O_CLOEXEC
508 #else
509 # define EXTRA_O_FLAGS 0
510 #endif
513 /* Initialize database information structures. */
514 void
515 nscd_init (void)
517 /* Look up unprivileged uid/gid/groups before we start listening on the
518 socket */
519 if (server_user != NULL)
520 begin_drop_privileges ();
522 if (nthreads == -1)
523 /* No configuration for this value, assume a default. */
524 nthreads = 4;
526 #ifdef HAVE_INOTIFY
527 /* Use inotify to recognize changed files. */
528 inotify_fd = inotify_init1 (IN_NONBLOCK);
529 # ifndef __ASSUME_IN_NONBLOCK
530 if (inotify_fd == -1 && errno == ENOSYS)
532 inotify_fd = inotify_init ();
533 if (inotify_fd != -1)
534 fcntl (inotify_fd, F_SETFL, O_RDONLY | O_NONBLOCK);
536 # endif
537 #endif
539 for (size_t cnt = 0; cnt < lastdb; ++cnt)
540 if (dbs[cnt].enabled)
542 pthread_rwlock_init (&dbs[cnt].lock, NULL);
543 pthread_mutex_init (&dbs[cnt].memlock, NULL);
545 if (dbs[cnt].persistent)
547 /* Try to open the appropriate file on disk. */
548 int fd = open (dbs[cnt].db_filename, O_RDWR | EXTRA_O_FLAGS);
549 if (fd != -1)
551 char *msg = NULL;
552 struct stat64 st;
553 void *mem;
554 size_t total;
555 struct database_pers_head head;
556 ssize_t n = TEMP_FAILURE_RETRY (read (fd, &head,
557 sizeof (head)));
558 if (n != sizeof (head) || fstat64 (fd, &st) != 0)
560 fail_db_errno:
561 /* The code is single-threaded at this point so
562 using strerror is just fine. */
563 msg = strerror (errno);
564 fail_db:
565 dbg_log (_("invalid persistent database file \"%s\": %s"),
566 dbs[cnt].db_filename, msg);
567 unlink (dbs[cnt].db_filename);
569 else if (head.module == 0 && head.data_size == 0)
571 /* The file has been created, but the head has not
572 been initialized yet. */
573 msg = _("uninitialized header");
574 goto fail_db;
576 else if (head.header_size != (int) sizeof (head))
578 msg = _("header size does not match");
579 goto fail_db;
581 else if ((total = (sizeof (head)
582 + roundup (head.module * sizeof (ref_t),
583 ALIGN)
584 + head.data_size))
585 > st.st_size
586 || total < sizeof (head))
588 msg = _("file size does not match");
589 goto fail_db;
591 /* Note we map with the maximum size allowed for the
592 database. This is likely much larger than the
593 actual file size. This is OK on most OSes since
594 extensions of the underlying file will
595 automatically translate more pages available for
596 memory access. */
597 else if ((mem = mmap (NULL, dbs[cnt].max_db_size,
598 PROT_READ | PROT_WRITE,
599 MAP_SHARED, fd, 0))
600 == MAP_FAILED)
601 goto fail_db_errno;
602 else if (!verify_persistent_db (mem, &head, cnt))
604 munmap (mem, total);
605 msg = _("verification failed");
606 goto fail_db;
608 else
610 /* Success. We have the database. */
611 dbs[cnt].head = mem;
612 dbs[cnt].memsize = total;
613 dbs[cnt].data = (char *)
614 &dbs[cnt].head->array[roundup (dbs[cnt].head->module,
615 ALIGN / sizeof (ref_t))];
616 dbs[cnt].mmap_used = true;
618 if (dbs[cnt].suggested_module > head.module)
619 dbg_log (_("suggested size of table for database %s larger than the persistent database's table"),
620 dbnames[cnt]);
622 dbs[cnt].wr_fd = fd;
623 fd = -1;
624 /* We also need a read-only descriptor. */
625 if (dbs[cnt].shared)
627 dbs[cnt].ro_fd = open (dbs[cnt].db_filename,
628 O_RDONLY | EXTRA_O_FLAGS);
629 if (dbs[cnt].ro_fd == -1)
630 dbg_log (_("\
631 cannot create read-only descriptor for \"%s\"; no mmap"),
632 dbs[cnt].db_filename);
635 // XXX Shall we test whether the descriptors actually
636 // XXX point to the same file?
639 /* Close the file descriptors in case something went
640 wrong in which case the variable have not been
641 assigned -1. */
642 if (fd != -1)
643 close (fd);
645 else if (errno == EACCES)
646 error (EXIT_FAILURE, 0, _("cannot access '%s'"),
647 dbs[cnt].db_filename);
650 if (dbs[cnt].head == NULL)
652 /* No database loaded. Allocate the data structure,
653 possibly on disk. */
654 struct database_pers_head head;
655 size_t total = (sizeof (head)
656 + roundup (dbs[cnt].suggested_module
657 * sizeof (ref_t), ALIGN)
658 + (dbs[cnt].suggested_module
659 * DEFAULT_DATASIZE_PER_BUCKET));
661 /* Try to create the database. If we do not need a
662 persistent database create a temporary file. */
663 int fd;
664 int ro_fd = -1;
665 if (dbs[cnt].persistent)
667 fd = open (dbs[cnt].db_filename,
668 O_RDWR | O_CREAT | O_EXCL | O_TRUNC | EXTRA_O_FLAGS,
669 S_IRUSR | S_IWUSR);
670 if (fd != -1 && dbs[cnt].shared)
671 ro_fd = open (dbs[cnt].db_filename,
672 O_RDONLY | EXTRA_O_FLAGS);
674 else
676 char fname[] = _PATH_NSCD_XYZ_DB_TMP;
677 fd = mkostemp (fname, EXTRA_O_FLAGS);
679 /* We do not need the file name anymore after we
680 opened another file descriptor in read-only mode. */
681 if (fd != -1)
683 if (dbs[cnt].shared)
684 ro_fd = open (fname, O_RDONLY | EXTRA_O_FLAGS);
686 unlink (fname);
690 if (fd == -1)
692 if (errno == EEXIST)
694 dbg_log (_("database for %s corrupted or simultaneously used; remove %s manually if necessary and restart"),
695 dbnames[cnt], dbs[cnt].db_filename);
696 // XXX Correct way to terminate?
697 exit (1);
700 if (dbs[cnt].persistent)
701 dbg_log (_("cannot create %s; no persistent database used"),
702 dbs[cnt].db_filename);
703 else
704 dbg_log (_("cannot create %s; no sharing possible"),
705 dbs[cnt].db_filename);
707 dbs[cnt].persistent = 0;
708 // XXX remember: no mmap
710 else
712 /* Tell the user if we could not create the read-only
713 descriptor. */
714 if (ro_fd == -1 && dbs[cnt].shared)
715 dbg_log (_("\
716 cannot create read-only descriptor for \"%s\"; no mmap"),
717 dbs[cnt].db_filename);
719 /* Before we create the header, initialiye the hash
720 table. So that if we get interrupted if writing
721 the header we can recognize a partially initialized
722 database. */
723 size_t ps = sysconf (_SC_PAGESIZE);
724 char tmpbuf[ps];
725 assert (~ENDREF == 0);
726 memset (tmpbuf, '\xff', ps);
728 size_t remaining = dbs[cnt].suggested_module * sizeof (ref_t);
729 off_t offset = sizeof (head);
731 size_t towrite;
732 if (offset % ps != 0)
734 towrite = MIN (remaining, ps - (offset % ps));
735 if (pwrite (fd, tmpbuf, towrite, offset) != towrite)
736 goto write_fail;
737 offset += towrite;
738 remaining -= towrite;
741 while (remaining > ps)
743 if (pwrite (fd, tmpbuf, ps, offset) == -1)
744 goto write_fail;
745 offset += ps;
746 remaining -= ps;
749 if (remaining > 0
750 && pwrite (fd, tmpbuf, remaining, offset) != remaining)
751 goto write_fail;
753 /* Create the header of the file. */
754 struct database_pers_head head =
756 .version = DB_VERSION,
757 .header_size = sizeof (head),
758 .module = dbs[cnt].suggested_module,
759 .data_size = (dbs[cnt].suggested_module
760 * DEFAULT_DATASIZE_PER_BUCKET),
761 .first_free = 0
763 void *mem;
765 if ((TEMP_FAILURE_RETRY (write (fd, &head, sizeof (head)))
766 != sizeof (head))
767 || (TEMP_FAILURE_RETRY_VAL (posix_fallocate (fd, 0, total))
768 != 0)
769 || (mem = mmap (NULL, dbs[cnt].max_db_size,
770 PROT_READ | PROT_WRITE,
771 MAP_SHARED, fd, 0)) == MAP_FAILED)
773 write_fail:
774 unlink (dbs[cnt].db_filename);
775 dbg_log (_("cannot write to database file %s: %s"),
776 dbs[cnt].db_filename, strerror (errno));
777 dbs[cnt].persistent = 0;
779 else
781 /* Success. */
782 dbs[cnt].head = mem;
783 dbs[cnt].data = (char *)
784 &dbs[cnt].head->array[roundup (dbs[cnt].head->module,
785 ALIGN / sizeof (ref_t))];
786 dbs[cnt].memsize = total;
787 dbs[cnt].mmap_used = true;
789 /* Remember the descriptors. */
790 dbs[cnt].wr_fd = fd;
791 dbs[cnt].ro_fd = ro_fd;
792 fd = -1;
793 ro_fd = -1;
796 if (fd != -1)
797 close (fd);
798 if (ro_fd != -1)
799 close (ro_fd);
803 #if !defined O_CLOEXEC || !defined __ASSUME_O_CLOEXEC
804 /* We do not check here whether the O_CLOEXEC provided to the
805 open call was successful or not. The two fcntl calls are
806 only performed once each per process start-up and therefore
807 is not noticeable at all. */
808 if (paranoia
809 && ((dbs[cnt].wr_fd != -1
810 && fcntl (dbs[cnt].wr_fd, F_SETFD, FD_CLOEXEC) == -1)
811 || (dbs[cnt].ro_fd != -1
812 && fcntl (dbs[cnt].ro_fd, F_SETFD, FD_CLOEXEC) == -1)))
814 dbg_log (_("\
815 cannot set socket to close on exec: %s; disabling paranoia mode"),
816 strerror (errno));
817 paranoia = 0;
819 #endif
821 if (dbs[cnt].head == NULL)
823 /* We do not use the persistent database. Just
824 create an in-memory data structure. */
825 assert (! dbs[cnt].persistent);
827 dbs[cnt].head = xmalloc (sizeof (struct database_pers_head)
828 + (dbs[cnt].suggested_module
829 * sizeof (ref_t)));
830 memset (dbs[cnt].head, '\0', sizeof (struct database_pers_head));
831 assert (~ENDREF == 0);
832 memset (dbs[cnt].head->array, '\xff',
833 dbs[cnt].suggested_module * sizeof (ref_t));
834 dbs[cnt].head->module = dbs[cnt].suggested_module;
835 dbs[cnt].head->data_size = (DEFAULT_DATASIZE_PER_BUCKET
836 * dbs[cnt].head->module);
837 dbs[cnt].data = xmalloc (dbs[cnt].head->data_size);
838 dbs[cnt].head->first_free = 0;
840 dbs[cnt].shared = 0;
841 assert (dbs[cnt].ro_fd == -1);
844 dbs[cnt].inotify_descr = -1;
845 if (dbs[cnt].check_file)
847 #ifdef HAVE_INOTIFY
848 if (inotify_fd < 0
849 || (dbs[cnt].inotify_descr
850 = inotify_add_watch (inotify_fd, dbs[cnt].filename,
851 IN_DELETE_SELF | IN_MODIFY)) < 0)
852 /* We cannot notice changes in the main thread. */
853 #endif
855 /* We need the modification date of the file. */
856 struct stat64 st;
858 if (stat64 (dbs[cnt].filename, &st) < 0)
860 /* We cannot stat() the file, disable file checking. */
861 dbg_log (_("cannot stat() file `%s': %s"),
862 dbs[cnt].filename, strerror (errno));
863 dbs[cnt].check_file = 0;
865 else
866 dbs[cnt].file_mtime = st.st_mtime;
870 #ifdef HAVE_INOTIFY
871 if (cnt == hstdb && inotify_fd >= -1)
872 /* We also monitor the resolver configuration file. */
873 resolv_conf_descr = inotify_add_watch (inotify_fd,
874 _PATH_RESCONF,
875 IN_DELETE_SELF | IN_MODIFY);
876 #endif
879 /* Create the socket. */
880 #ifndef __ASSUME_SOCK_CLOEXEC
881 sock = -1;
882 if (have_sock_cloexec >= 0)
883 #endif
885 sock = socket (AF_UNIX, SOCK_STREAM | SOCK_CLOEXEC | SOCK_NONBLOCK, 0);
886 #ifndef __ASSUME_SOCK_CLOEXEC
887 if (have_sock_cloexec == 0)
888 have_sock_cloexec = sock != -1 || errno != EINVAL ? 1 : -1;
889 #endif
891 #ifndef __ASSUME_SOCK_CLOEXEC
892 if (have_sock_cloexec < 0)
893 sock = socket (AF_UNIX, SOCK_STREAM, 0);
894 #endif
895 if (sock < 0)
897 dbg_log (_("cannot open socket: %s"), strerror (errno));
898 exit (errno == EACCES ? 4 : 1);
900 /* Bind a name to the socket. */
901 struct sockaddr_un sock_addr;
902 sock_addr.sun_family = AF_UNIX;
903 strcpy (sock_addr.sun_path, _PATH_NSCDSOCKET);
904 if (bind (sock, (struct sockaddr *) &sock_addr, sizeof (sock_addr)) < 0)
906 dbg_log ("%s: %s", _PATH_NSCDSOCKET, strerror (errno));
907 exit (errno == EACCES ? 4 : 1);
910 #ifndef __ASSUME_SOCK_CLOEXEC
911 if (have_sock_cloexec < 0)
913 /* We don't want to get stuck on accept. */
914 int fl = fcntl (sock, F_GETFL);
915 if (fl == -1 || fcntl (sock, F_SETFL, fl | O_NONBLOCK) == -1)
917 dbg_log (_("cannot change socket to nonblocking mode: %s"),
918 strerror (errno));
919 exit (1);
922 /* The descriptor needs to be closed on exec. */
923 if (paranoia && fcntl (sock, F_SETFD, FD_CLOEXEC) == -1)
925 dbg_log (_("cannot set socket to close on exec: %s"),
926 strerror (errno));
927 exit (1);
930 #endif
932 /* Set permissions for the socket. */
933 chmod (_PATH_NSCDSOCKET, DEFFILEMODE);
935 /* Set the socket up to accept connections. */
936 if (listen (sock, SOMAXCONN) < 0)
938 dbg_log (_("cannot enable socket to accept connections: %s"),
939 strerror (errno));
940 exit (1);
943 /* Change to unprivileged uid/gid/groups if specifed in config file */
944 if (server_user != NULL)
945 finish_drop_privileges ();
949 /* Close the connections. */
950 void
951 close_sockets (void)
953 close (sock);
957 static void
958 invalidate_cache (char *key, int fd)
960 dbtype number;
961 int32_t resp;
963 for (number = pwddb; number < lastdb; ++number)
964 if (strcmp (key, dbnames[number]) == 0)
966 if (dbs[number].reset_res)
967 res_init ();
969 break;
972 if (number == lastdb)
974 resp = EINVAL;
975 writeall (fd, &resp, sizeof (resp));
976 return;
979 if (dbs[number].enabled)
981 pthread_mutex_lock (&dbs[number].prune_run_lock);
982 prune_cache (&dbs[number], LONG_MAX, fd);
983 pthread_mutex_unlock (&dbs[number].prune_run_lock);
985 else
987 resp = 0;
988 writeall (fd, &resp, sizeof (resp));
993 #ifdef SCM_RIGHTS
994 static void
995 send_ro_fd (struct database_dyn *db, char *key, int fd)
997 /* If we do not have an read-only file descriptor do nothing. */
998 if (db->ro_fd == -1)
999 return;
1001 /* We need to send some data along with the descriptor. */
1002 uint64_t mapsize = (db->head->data_size
1003 + roundup (db->head->module * sizeof (ref_t), ALIGN)
1004 + sizeof (struct database_pers_head));
1005 struct iovec iov[2];
1006 iov[0].iov_base = key;
1007 iov[0].iov_len = strlen (key) + 1;
1008 iov[1].iov_base = &mapsize;
1009 iov[1].iov_len = sizeof (mapsize);
1011 /* Prepare the control message to transfer the descriptor. */
1012 union
1014 struct cmsghdr hdr;
1015 char bytes[CMSG_SPACE (sizeof (int))];
1016 } buf;
1017 struct msghdr msg = { .msg_iov = iov, .msg_iovlen = 2,
1018 .msg_control = buf.bytes,
1019 .msg_controllen = sizeof (buf) };
1020 struct cmsghdr *cmsg = CMSG_FIRSTHDR (&msg);
1022 cmsg->cmsg_level = SOL_SOCKET;
1023 cmsg->cmsg_type = SCM_RIGHTS;
1024 cmsg->cmsg_len = CMSG_LEN (sizeof (int));
1026 int *ip = (int *) CMSG_DATA (cmsg);
1027 *ip = db->ro_fd;
1029 msg.msg_controllen = cmsg->cmsg_len;
1031 /* Send the control message. We repeat when we are interrupted but
1032 everything else is ignored. */
1033 #ifndef MSG_NOSIGNAL
1034 # define MSG_NOSIGNAL 0
1035 #endif
1036 (void) TEMP_FAILURE_RETRY (sendmsg (fd, &msg, MSG_NOSIGNAL));
1038 if (__builtin_expect (debug_level > 0, 0))
1039 dbg_log (_("provide access to FD %d, for %s"), db->ro_fd, key);
1041 #endif /* SCM_RIGHTS */
1044 /* Handle new request. */
1045 static void
1046 handle_request (int fd, request_header *req, void *key, uid_t uid, pid_t pid)
1048 if (__builtin_expect (req->version, NSCD_VERSION) != NSCD_VERSION)
1050 if (debug_level > 0)
1051 dbg_log (_("\
1052 cannot handle old request version %d; current version is %d"),
1053 req->version, NSCD_VERSION);
1054 return;
1057 /* Perform the SELinux check before we go on to the standard checks. */
1058 if (selinux_enabled && nscd_request_avc_has_perm (fd, req->type) != 0)
1060 if (debug_level > 0)
1062 #ifdef SO_PEERCRED
1063 # ifdef PATH_MAX
1064 char buf[PATH_MAX];
1065 # else
1066 char buf[4096];
1067 # endif
1069 snprintf (buf, sizeof (buf), "/proc/%ld/exe", (long int) pid);
1070 ssize_t n = readlink (buf, buf, sizeof (buf) - 1);
1072 if (n <= 0)
1073 dbg_log (_("\
1074 request from %ld not handled due to missing permission"), (long int) pid);
1075 else
1077 buf[n] = '\0';
1078 dbg_log (_("\
1079 request from '%s' [%ld] not handled due to missing permission"),
1080 buf, (long int) pid);
1082 #else
1083 dbg_log (_("request not handled due to missing permission"));
1084 #endif
1086 return;
1089 struct database_dyn *db = reqinfo[req->type].db;
1091 /* See whether we can service the request from the cache. */
1092 if (__builtin_expect (reqinfo[req->type].data_request, true))
1094 if (__builtin_expect (debug_level, 0) > 0)
1096 if (req->type == GETHOSTBYADDR || req->type == GETHOSTBYADDRv6)
1098 char buf[INET6_ADDRSTRLEN];
1100 dbg_log ("\t%s (%s)", serv2str[req->type],
1101 inet_ntop (req->type == GETHOSTBYADDR
1102 ? AF_INET : AF_INET6,
1103 key, buf, sizeof (buf)));
1105 else
1106 dbg_log ("\t%s (%s)", serv2str[req->type], (char *) key);
1109 /* Is this service enabled? */
1110 if (__builtin_expect (!db->enabled, 0))
1112 /* No, sent the prepared record. */
1113 if (TEMP_FAILURE_RETRY (send (fd, db->disabled_iov->iov_base,
1114 db->disabled_iov->iov_len,
1115 MSG_NOSIGNAL))
1116 != (ssize_t) db->disabled_iov->iov_len
1117 && __builtin_expect (debug_level, 0) > 0)
1119 /* We have problems sending the result. */
1120 char buf[256];
1121 dbg_log (_("cannot write result: %s"),
1122 strerror_r (errno, buf, sizeof (buf)));
1125 return;
1128 /* Be sure we can read the data. */
1129 if (__builtin_expect (pthread_rwlock_tryrdlock (&db->lock) != 0, 0))
1131 ++db->head->rdlockdelayed;
1132 pthread_rwlock_rdlock (&db->lock);
1135 /* See whether we can handle it from the cache. */
1136 struct datahead *cached;
1137 cached = (struct datahead *) cache_search (req->type, key, req->key_len,
1138 db, uid);
1139 if (cached != NULL)
1141 /* Hurray it's in the cache. */
1142 ssize_t nwritten;
1144 #ifdef HAVE_SENDFILE
1145 if (__builtin_expect (db->mmap_used, 1))
1147 assert (db->wr_fd != -1);
1148 assert ((char *) cached->data > (char *) db->data);
1149 assert ((char *) cached->data - (char *) db->head
1150 + cached->recsize
1151 <= (sizeof (struct database_pers_head)
1152 + db->head->module * sizeof (ref_t)
1153 + db->head->data_size));
1154 nwritten = sendfileall (fd, db->wr_fd,
1155 (char *) cached->data
1156 - (char *) db->head, cached->recsize);
1157 # ifndef __ASSUME_SENDFILE
1158 if (nwritten == -1 && errno == ENOSYS)
1159 goto use_write;
1160 # endif
1162 else
1163 # ifndef __ASSUME_SENDFILE
1164 use_write:
1165 # endif
1166 #endif
1167 nwritten = writeall (fd, cached->data, cached->recsize);
1169 if (nwritten != cached->recsize
1170 && __builtin_expect (debug_level, 0) > 0)
1172 /* We have problems sending the result. */
1173 char buf[256];
1174 dbg_log (_("cannot write result: %s"),
1175 strerror_r (errno, buf, sizeof (buf)));
1178 pthread_rwlock_unlock (&db->lock);
1180 return;
1183 pthread_rwlock_unlock (&db->lock);
1185 else if (__builtin_expect (debug_level, 0) > 0)
1187 if (req->type == INVALIDATE)
1188 dbg_log ("\t%s (%s)", serv2str[req->type], (char *) key);
1189 else
1190 dbg_log ("\t%s", serv2str[req->type]);
1193 /* Handle the request. */
1194 switch (req->type)
1196 case GETPWBYNAME:
1197 addpwbyname (db, fd, req, key, uid);
1198 break;
1200 case GETPWBYUID:
1201 addpwbyuid (db, fd, req, key, uid);
1202 break;
1204 case GETGRBYNAME:
1205 addgrbyname (db, fd, req, key, uid);
1206 break;
1208 case GETGRBYGID:
1209 addgrbygid (db, fd, req, key, uid);
1210 break;
1212 case GETHOSTBYNAME:
1213 addhstbyname (db, fd, req, key, uid);
1214 break;
1216 case GETHOSTBYNAMEv6:
1217 addhstbynamev6 (db, fd, req, key, uid);
1218 break;
1220 case GETHOSTBYADDR:
1221 addhstbyaddr (db, fd, req, key, uid);
1222 break;
1224 case GETHOSTBYADDRv6:
1225 addhstbyaddrv6 (db, fd, req, key, uid);
1226 break;
1228 case GETAI:
1229 addhstai (db, fd, req, key, uid);
1230 break;
1232 case INITGROUPS:
1233 addinitgroups (db, fd, req, key, uid);
1234 break;
1236 case GETSERVBYNAME:
1237 addservbyname (db, fd, req, key, uid);
1238 break;
1240 case GETSERVBYPORT:
1241 addservbyport (db, fd, req, key, uid);
1242 break;
1244 case GETSTAT:
1245 case SHUTDOWN:
1246 case INVALIDATE:
1248 /* Get the callers credentials. */
1249 #ifdef SO_PEERCRED
1250 struct ucred caller;
1251 socklen_t optlen = sizeof (caller);
1253 if (getsockopt (fd, SOL_SOCKET, SO_PEERCRED, &caller, &optlen) < 0)
1255 char buf[256];
1257 dbg_log (_("error getting caller's id: %s"),
1258 strerror_r (errno, buf, sizeof (buf)));
1259 break;
1262 uid = caller.uid;
1263 #else
1264 /* Some systems have no SO_PEERCRED implementation. They don't
1265 care about security so we don't as well. */
1266 uid = 0;
1267 #endif
1270 /* Accept shutdown, getstat and invalidate only from root. For
1271 the stat call also allow the user specified in the config file. */
1272 if (req->type == GETSTAT)
1274 if (uid == 0 || uid == stat_uid)
1275 send_stats (fd, dbs);
1277 else if (uid == 0)
1279 if (req->type == INVALIDATE)
1280 invalidate_cache (key, fd);
1281 else
1282 termination_handler (0);
1284 break;
1286 case GETFDPW:
1287 case GETFDGR:
1288 case GETFDHST:
1289 case GETFDSERV:
1290 #ifdef SCM_RIGHTS
1291 send_ro_fd (reqinfo[req->type].db, key, fd);
1292 #endif
1293 break;
1295 default:
1296 /* Ignore the command, it's nothing we know. */
1297 break;
1302 /* Restart the process. */
1303 static void
1304 restart (void)
1306 /* First determine the parameters. We do not use the parameters
1307 passed to main() since in case nscd is started by running the
1308 dynamic linker this will not work. Yes, this is not the usual
1309 case but nscd is part of glibc and we occasionally do this. */
1310 size_t buflen = 1024;
1311 char *buf = alloca (buflen);
1312 size_t readlen = 0;
1313 int fd = open ("/proc/self/cmdline", O_RDONLY);
1314 if (fd == -1)
1316 dbg_log (_("\
1317 cannot open /proc/self/cmdline: %s; disabling paranoia mode"),
1318 strerror (errno));
1320 paranoia = 0;
1321 return;
1324 while (1)
1326 ssize_t n = TEMP_FAILURE_RETRY (read (fd, buf + readlen,
1327 buflen - readlen));
1328 if (n == -1)
1330 dbg_log (_("\
1331 cannot read /proc/self/cmdline: %s; disabling paranoia mode"),
1332 strerror (errno));
1334 close (fd);
1335 paranoia = 0;
1336 return;
1339 readlen += n;
1341 if (readlen < buflen)
1342 break;
1344 /* We might have to extend the buffer. */
1345 size_t old_buflen = buflen;
1346 char *newp = extend_alloca (buf, buflen, 2 * buflen);
1347 buf = memmove (newp, buf, old_buflen);
1350 close (fd);
1352 /* Parse the command line. Worst case scenario: every two
1353 characters form one parameter (one character plus NUL). */
1354 char **argv = alloca ((readlen / 2 + 1) * sizeof (argv[0]));
1355 int argc = 0;
1357 char *cp = buf;
1358 while (cp < buf + readlen)
1360 argv[argc++] = cp;
1361 cp = (char *) rawmemchr (cp, '\0') + 1;
1363 argv[argc] = NULL;
1365 /* Second, change back to the old user if we changed it. */
1366 if (server_user != NULL)
1368 if (setresuid (old_uid, old_uid, old_uid) != 0)
1370 dbg_log (_("\
1371 cannot change to old UID: %s; disabling paranoia mode"),
1372 strerror (errno));
1374 paranoia = 0;
1375 return;
1378 if (setresgid (old_gid, old_gid, old_gid) != 0)
1380 dbg_log (_("\
1381 cannot change to old GID: %s; disabling paranoia mode"),
1382 strerror (errno));
1384 setuid (server_uid);
1385 paranoia = 0;
1386 return;
1390 /* Next change back to the old working directory. */
1391 if (chdir (oldcwd) == -1)
1393 dbg_log (_("\
1394 cannot change to old working directory: %s; disabling paranoia mode"),
1395 strerror (errno));
1397 if (server_user != NULL)
1399 setuid (server_uid);
1400 setgid (server_gid);
1402 paranoia = 0;
1403 return;
1406 /* Synchronize memory. */
1407 int32_t certainly[lastdb];
1408 for (int cnt = 0; cnt < lastdb; ++cnt)
1409 if (dbs[cnt].enabled)
1411 /* Make sure nobody keeps using the database. */
1412 dbs[cnt].head->timestamp = 0;
1413 certainly[cnt] = dbs[cnt].head->nscd_certainly_running;
1414 dbs[cnt].head->nscd_certainly_running = 0;
1416 if (dbs[cnt].persistent)
1417 // XXX async OK?
1418 msync (dbs[cnt].head, dbs[cnt].memsize, MS_ASYNC);
1421 /* The preparations are done. */
1422 #ifdef PATH_MAX
1423 char pathbuf[PATH_MAX];
1424 #else
1425 char pathbuf[256];
1426 #endif
1427 /* Try to exec the real nscd program so the process name (as reported
1428 in /proc/PID/status) will be 'nscd', but fall back to /proc/self/exe
1429 if readlink or the exec with the result of the readlink call fails. */
1430 ssize_t n = readlink ("/proc/self/exe", pathbuf, sizeof (pathbuf) - 1);
1431 if (n != -1)
1433 pathbuf[n] = '\0';
1434 execv (pathbuf, argv);
1436 execv ("/proc/self/exe", argv);
1438 /* If we come here, we will never be able to re-exec. */
1439 dbg_log (_("re-exec failed: %s; disabling paranoia mode"),
1440 strerror (errno));
1442 if (server_user != NULL)
1444 setuid (server_uid);
1445 setgid (server_gid);
1447 if (chdir ("/") != 0)
1448 dbg_log (_("cannot change current working directory to \"/\": %s"),
1449 strerror (errno));
1450 paranoia = 0;
1452 /* Reenable the databases. */
1453 time_t now = time (NULL);
1454 for (int cnt = 0; cnt < lastdb; ++cnt)
1455 if (dbs[cnt].enabled)
1457 dbs[cnt].head->timestamp = now;
1458 dbs[cnt].head->nscd_certainly_running = certainly[cnt];
1463 /* List of file descriptors. */
1464 struct fdlist
1466 int fd;
1467 struct fdlist *next;
1469 /* Memory allocated for the list. */
1470 static struct fdlist *fdlist;
1471 /* List of currently ready-to-read file descriptors. */
1472 static struct fdlist *readylist;
1474 /* Conditional variable and mutex to signal availability of entries in
1475 READYLIST. The condvar is initialized dynamically since we might
1476 use a different clock depending on availability. */
1477 static pthread_cond_t readylist_cond = PTHREAD_COND_INITIALIZER;
1478 static pthread_mutex_t readylist_lock = PTHREAD_MUTEX_INITIALIZER;
1480 /* The clock to use with the condvar. */
1481 static clockid_t timeout_clock = CLOCK_REALTIME;
1483 /* Number of threads ready to handle the READYLIST. */
1484 static unsigned long int nready;
1487 /* Function for the clean-up threads. */
1488 static void *
1489 __attribute__ ((__noreturn__))
1490 nscd_run_prune (void *p)
1492 const long int my_number = (long int) p;
1493 assert (dbs[my_number].enabled);
1495 int dont_need_update = setup_thread (&dbs[my_number]);
1497 time_t now = time (NULL);
1499 /* We are running. */
1500 dbs[my_number].head->timestamp = now;
1502 struct timespec prune_ts;
1503 if (__builtin_expect (clock_gettime (timeout_clock, &prune_ts) == -1, 0))
1504 /* Should never happen. */
1505 abort ();
1507 /* Compute the initial timeout time. Prevent all the timers to go
1508 off at the same time by adding a db-based value. */
1509 prune_ts.tv_sec += CACHE_PRUNE_INTERVAL + my_number;
1510 dbs[my_number].wakeup_time = now + CACHE_PRUNE_INTERVAL + my_number;
1512 pthread_mutex_t *prune_lock = &dbs[my_number].prune_lock;
1513 pthread_mutex_t *prune_run_lock = &dbs[my_number].prune_run_lock;
1514 pthread_cond_t *prune_cond = &dbs[my_number].prune_cond;
1516 pthread_mutex_lock (prune_lock);
1517 while (1)
1519 /* Wait, but not forever. */
1520 int e = 0;
1521 if (! dbs[my_number].clear_cache)
1522 e = pthread_cond_timedwait (prune_cond, prune_lock, &prune_ts);
1523 assert (__builtin_expect (e == 0 || e == ETIMEDOUT, 1));
1525 time_t next_wait;
1526 now = time (NULL);
1527 if (e == ETIMEDOUT || now >= dbs[my_number].wakeup_time
1528 || dbs[my_number].clear_cache)
1530 /* We will determine the new timout values based on the
1531 cache content. Should there be concurrent additions to
1532 the cache which are not accounted for in the cache
1533 pruning we want to know about it. Therefore set the
1534 timeout to the maximum. It will be descreased when adding
1535 new entries to the cache, if necessary. */
1536 dbs[my_number].wakeup_time = MAX_TIMEOUT_VALUE;
1538 /* Unconditionally reset the flag. */
1539 time_t prune_now = dbs[my_number].clear_cache ? LONG_MAX : now;
1540 dbs[my_number].clear_cache = 0;
1542 pthread_mutex_unlock (prune_lock);
1544 /* We use a separate lock for running the prune function (instead
1545 of keeping prune_lock locked) because this enables concurrent
1546 invocations of cache_add which might modify the timeout value. */
1547 pthread_mutex_lock (prune_run_lock);
1548 next_wait = prune_cache (&dbs[my_number], prune_now, -1);
1549 pthread_mutex_unlock (prune_run_lock);
1551 next_wait = MAX (next_wait, CACHE_PRUNE_INTERVAL);
1552 /* If clients cannot determine for sure whether nscd is running
1553 we need to wake up occasionally to update the timestamp.
1554 Wait 90% of the update period. */
1555 #define UPDATE_MAPPING_TIMEOUT (MAPPING_TIMEOUT * 9 / 10)
1556 if (__builtin_expect (! dont_need_update, 0))
1558 next_wait = MIN (UPDATE_MAPPING_TIMEOUT, next_wait);
1559 dbs[my_number].head->timestamp = now;
1562 pthread_mutex_lock (prune_lock);
1564 /* Make it known when we will wake up again. */
1565 if (now + next_wait < dbs[my_number].wakeup_time)
1566 dbs[my_number].wakeup_time = now + next_wait;
1567 else
1568 next_wait = dbs[my_number].wakeup_time - now;
1570 else
1571 /* The cache was just pruned. Do not do it again now. Just
1572 use the new timeout value. */
1573 next_wait = dbs[my_number].wakeup_time - now;
1575 if (clock_gettime (timeout_clock, &prune_ts) == -1)
1576 /* Should never happen. */
1577 abort ();
1579 /* Compute next timeout time. */
1580 prune_ts.tv_sec += next_wait;
1585 /* This is the main loop. It is replicated in different threads but
1586 the the use of the ready list makes sure only one thread handles an
1587 incoming connection. */
1588 static void *
1589 __attribute__ ((__noreturn__))
1590 nscd_run_worker (void *p)
1592 char buf[256];
1594 /* Initial locking. */
1595 pthread_mutex_lock (&readylist_lock);
1597 /* One more thread available. */
1598 ++nready;
1600 while (1)
1602 while (readylist == NULL)
1603 pthread_cond_wait (&readylist_cond, &readylist_lock);
1605 struct fdlist *it = readylist->next;
1606 if (readylist->next == readylist)
1607 /* Just one entry on the list. */
1608 readylist = NULL;
1609 else
1610 readylist->next = it->next;
1612 /* Extract the information and mark the record ready to be used
1613 again. */
1614 int fd = it->fd;
1615 it->next = NULL;
1617 /* One more thread available. */
1618 --nready;
1620 /* We are done with the list. */
1621 pthread_mutex_unlock (&readylist_lock);
1623 #ifndef __ASSUME_ACCEPT4
1624 if (have_accept4 < 0)
1626 /* We do not want to block on a short read or so. */
1627 int fl = fcntl (fd, F_GETFL);
1628 if (fl == -1 || fcntl (fd, F_SETFL, fl | O_NONBLOCK) == -1)
1629 goto close_and_out;
1631 #endif
1633 /* Now read the request. */
1634 request_header req;
1635 if (__builtin_expect (TEMP_FAILURE_RETRY (read (fd, &req, sizeof (req)))
1636 != sizeof (req), 0))
1638 /* We failed to read data. Note that this also might mean we
1639 failed because we would have blocked. */
1640 if (debug_level > 0)
1641 dbg_log (_("short read while reading request: %s"),
1642 strerror_r (errno, buf, sizeof (buf)));
1643 goto close_and_out;
1646 /* Check whether this is a valid request type. */
1647 if (req.type < GETPWBYNAME || req.type >= LASTREQ)
1648 goto close_and_out;
1650 /* Some systems have no SO_PEERCRED implementation. They don't
1651 care about security so we don't as well. */
1652 uid_t uid = -1;
1653 #ifdef SO_PEERCRED
1654 pid_t pid = 0;
1656 if (__builtin_expect (debug_level > 0, 0))
1658 struct ucred caller;
1659 socklen_t optlen = sizeof (caller);
1661 if (getsockopt (fd, SOL_SOCKET, SO_PEERCRED, &caller, &optlen) == 0)
1662 pid = caller.pid;
1664 #else
1665 const pid_t pid = 0;
1666 #endif
1668 /* It should not be possible to crash the nscd with a silly
1669 request (i.e., a terribly large key). We limit the size to 1kb. */
1670 if (__builtin_expect (req.key_len, 1) < 0
1671 || __builtin_expect (req.key_len, 1) > MAXKEYLEN)
1673 if (debug_level > 0)
1674 dbg_log (_("key length in request too long: %d"), req.key_len);
1676 else
1678 /* Get the key. */
1679 char keybuf[MAXKEYLEN];
1681 if (__builtin_expect (TEMP_FAILURE_RETRY (read (fd, keybuf,
1682 req.key_len))
1683 != req.key_len, 0))
1685 /* Again, this can also mean we would have blocked. */
1686 if (debug_level > 0)
1687 dbg_log (_("short read while reading request key: %s"),
1688 strerror_r (errno, buf, sizeof (buf)));
1689 goto close_and_out;
1692 if (__builtin_expect (debug_level, 0) > 0)
1694 #ifdef SO_PEERCRED
1695 if (pid != 0)
1696 dbg_log (_("\
1697 handle_request: request received (Version = %d) from PID %ld"),
1698 req.version, (long int) pid);
1699 else
1700 #endif
1701 dbg_log (_("\
1702 handle_request: request received (Version = %d)"), req.version);
1705 /* Phew, we got all the data, now process it. */
1706 handle_request (fd, &req, keybuf, uid, pid);
1709 close_and_out:
1710 /* We are done. */
1711 close (fd);
1713 /* Re-locking. */
1714 pthread_mutex_lock (&readylist_lock);
1716 /* One more thread available. */
1717 ++nready;
1719 /* NOTREACHED */
1723 static unsigned int nconns;
1725 static void
1726 fd_ready (int fd)
1728 pthread_mutex_lock (&readylist_lock);
1730 /* Find an empty entry in FDLIST. */
1731 size_t inner;
1732 for (inner = 0; inner < nconns; ++inner)
1733 if (fdlist[inner].next == NULL)
1734 break;
1735 assert (inner < nconns);
1737 fdlist[inner].fd = fd;
1739 if (readylist == NULL)
1740 readylist = fdlist[inner].next = &fdlist[inner];
1741 else
1743 fdlist[inner].next = readylist->next;
1744 readylist = readylist->next = &fdlist[inner];
1747 bool do_signal = true;
1748 if (__builtin_expect (nready == 0, 0))
1750 ++client_queued;
1751 do_signal = false;
1753 /* Try to start another thread to help out. */
1754 pthread_t th;
1755 if (nthreads < max_nthreads
1756 && pthread_create (&th, &attr, nscd_run_worker,
1757 (void *) (long int) nthreads) == 0)
1759 /* We got another thread. */
1760 ++nthreads;
1761 /* The new thread might need a kick. */
1762 do_signal = true;
1767 pthread_mutex_unlock (&readylist_lock);
1769 /* Tell one of the worker threads there is work to do. */
1770 if (do_signal)
1771 pthread_cond_signal (&readylist_cond);
1775 /* Check whether restarting should happen. */
1776 static inline int
1777 restart_p (time_t now)
1779 return (paranoia && readylist == NULL && nready == nthreads
1780 && now >= restart_time);
1784 /* Array for times a connection was accepted. */
1785 static time_t *starttime;
1788 static void
1789 __attribute__ ((__noreturn__))
1790 main_loop_poll (void)
1792 struct pollfd *conns = (struct pollfd *) xmalloc (nconns
1793 * sizeof (conns[0]));
1795 conns[0].fd = sock;
1796 conns[0].events = POLLRDNORM;
1797 size_t nused = 1;
1798 size_t firstfree = 1;
1800 #ifdef HAVE_INOTIFY
1801 if (inotify_fd != -1)
1803 conns[1].fd = inotify_fd;
1804 conns[1].events = POLLRDNORM;
1805 nused = 2;
1806 firstfree = 2;
1808 #endif
1810 while (1)
1812 /* Wait for any event. We wait at most a couple of seconds so
1813 that we can check whether we should close any of the accepted
1814 connections since we have not received a request. */
1815 #define MAX_ACCEPT_TIMEOUT 30
1816 #define MIN_ACCEPT_TIMEOUT 5
1817 #define MAIN_THREAD_TIMEOUT \
1818 (MAX_ACCEPT_TIMEOUT * 1000 \
1819 - ((MAX_ACCEPT_TIMEOUT - MIN_ACCEPT_TIMEOUT) * 1000 * nused) / (2 * nconns))
1821 int n = poll (conns, nused, MAIN_THREAD_TIMEOUT);
1823 time_t now = time (NULL);
1825 /* If there is a descriptor ready for reading or there is a new
1826 connection, process this now. */
1827 if (n > 0)
1829 if (conns[0].revents != 0)
1831 /* We have a new incoming connection. Accept the connection. */
1832 int fd;
1834 #ifndef __ASSUME_ACCEPT4
1835 fd = -1;
1836 if (have_accept4 >= 0)
1837 #endif
1839 fd = TEMP_FAILURE_RETRY (accept4 (sock, NULL, NULL,
1840 SOCK_NONBLOCK));
1841 #ifndef __ASSUME_ACCEPT4
1842 if (have_accept4 == 0)
1843 have_accept4 = fd != -1 || errno != ENOSYS ? 1 : -1;
1844 #endif
1846 #ifndef __ASSUME_ACCEPT4
1847 if (have_accept4 < 0)
1848 fd = TEMP_FAILURE_RETRY (accept (sock, NULL, NULL));
1849 #endif
1851 /* Use the descriptor if we have not reached the limit. */
1852 if (fd >= 0)
1854 if (firstfree < nconns)
1856 conns[firstfree].fd = fd;
1857 conns[firstfree].events = POLLRDNORM;
1858 starttime[firstfree] = now;
1859 if (firstfree >= nused)
1860 nused = firstfree + 1;
1863 ++firstfree;
1864 while (firstfree < nused && conns[firstfree].fd != -1);
1866 else
1867 /* We cannot use the connection so close it. */
1868 close (fd);
1871 --n;
1874 size_t first = 1;
1875 #ifdef HAVE_INOTIFY
1876 if (inotify_fd != -1 && conns[1].fd == inotify_fd)
1878 if (conns[1].revents != 0)
1880 bool to_clear[lastdb] = { false, };
1881 union
1883 # ifndef PATH_MAX
1884 # define PATH_MAX 1024
1885 # endif
1886 struct inotify_event i;
1887 char buf[sizeof (struct inotify_event) + PATH_MAX];
1888 } inev;
1890 while (1)
1892 ssize_t nb = TEMP_FAILURE_RETRY (read (inotify_fd, &inev,
1893 sizeof (inev)));
1894 if (nb < (ssize_t) sizeof (struct inotify_event))
1896 if (__builtin_expect (nb == -1 && errno != EAGAIN,
1899 /* Something went wrong when reading the inotify
1900 data. Better disable inotify. */
1901 dbg_log (_("\
1902 disabled inotify after read error %d"),
1903 errno);
1904 conns[1].fd = -1;
1905 firstfree = 1;
1906 if (nused == 2)
1907 nused = 1;
1908 close (inotify_fd);
1909 inotify_fd = -1;
1911 break;
1914 /* Check which of the files changed. */
1915 for (size_t dbcnt = 0; dbcnt < lastdb; ++dbcnt)
1916 if (inev.i.wd == dbs[dbcnt].inotify_descr)
1918 to_clear[dbcnt] = true;
1919 goto next;
1922 if (inev.i.wd == resolv_conf_descr)
1924 res_init ();
1925 to_clear[hstdb] = true;
1927 next:;
1930 /* Actually perform the cache clearing. */
1931 for (size_t dbcnt = 0; dbcnt < lastdb; ++dbcnt)
1932 if (to_clear[dbcnt])
1934 pthread_mutex_lock (&dbs[dbcnt].prune_lock);
1935 dbs[dbcnt].clear_cache = 1;
1936 pthread_mutex_unlock (&dbs[dbcnt].prune_lock);
1937 pthread_cond_signal (&dbs[dbcnt].prune_cond);
1940 --n;
1943 first = 2;
1945 #endif
1947 for (size_t cnt = first; cnt < nused && n > 0; ++cnt)
1948 if (conns[cnt].revents != 0)
1950 fd_ready (conns[cnt].fd);
1952 /* Clean up the CONNS array. */
1953 conns[cnt].fd = -1;
1954 if (cnt < firstfree)
1955 firstfree = cnt;
1956 if (cnt == nused - 1)
1958 --nused;
1959 while (conns[nused - 1].fd == -1);
1961 --n;
1965 /* Now find entries which have timed out. */
1966 assert (nused > 0);
1968 /* We make the timeout length depend on the number of file
1969 descriptors currently used. */
1970 #define ACCEPT_TIMEOUT \
1971 (MAX_ACCEPT_TIMEOUT \
1972 - ((MAX_ACCEPT_TIMEOUT - MIN_ACCEPT_TIMEOUT) * nused) / nconns)
1973 time_t laststart = now - ACCEPT_TIMEOUT;
1975 for (size_t cnt = nused - 1; cnt > 0; --cnt)
1977 if (conns[cnt].fd != -1 && starttime[cnt] < laststart)
1979 /* Remove the entry, it timed out. */
1980 (void) close (conns[cnt].fd);
1981 conns[cnt].fd = -1;
1983 if (cnt < firstfree)
1984 firstfree = cnt;
1985 if (cnt == nused - 1)
1987 --nused;
1988 while (conns[nused - 1].fd == -1);
1992 if (restart_p (now))
1993 restart ();
1998 #ifdef HAVE_EPOLL
1999 static void
2000 main_loop_epoll (int efd)
2002 struct epoll_event ev = { 0, };
2003 int nused = 1;
2004 size_t highest = 0;
2006 /* Add the socket. */
2007 ev.events = EPOLLRDNORM;
2008 ev.data.fd = sock;
2009 if (epoll_ctl (efd, EPOLL_CTL_ADD, sock, &ev) == -1)
2010 /* We cannot use epoll. */
2011 return;
2013 # ifdef HAVE_INOTIFY
2014 if (inotify_fd != -1)
2016 ev.events = EPOLLRDNORM;
2017 ev.data.fd = inotify_fd;
2018 if (epoll_ctl (efd, EPOLL_CTL_ADD, inotify_fd, &ev) == -1)
2019 /* We cannot use epoll. */
2020 return;
2021 nused = 2;
2023 # endif
2025 while (1)
2027 struct epoll_event revs[100];
2028 # define nrevs (sizeof (revs) / sizeof (revs[0]))
2030 int n = epoll_wait (efd, revs, nrevs, MAIN_THREAD_TIMEOUT);
2032 time_t now = time (NULL);
2034 for (int cnt = 0; cnt < n; ++cnt)
2035 if (revs[cnt].data.fd == sock)
2037 /* A new connection. */
2038 int fd;
2040 # ifndef __ASSUME_ACCEPT4
2041 fd = -1;
2042 if (have_accept4 >= 0)
2043 # endif
2045 fd = TEMP_FAILURE_RETRY (accept4 (sock, NULL, NULL,
2046 SOCK_NONBLOCK));
2047 # ifndef __ASSUME_ACCEPT4
2048 if (have_accept4 == 0)
2049 have_accept4 = fd != -1 || errno != ENOSYS ? 1 : -1;
2050 # endif
2052 # ifndef __ASSUME_ACCEPT4
2053 if (have_accept4 < 0)
2054 fd = TEMP_FAILURE_RETRY (accept (sock, NULL, NULL));
2055 # endif
2057 /* Use the descriptor if we have not reached the limit. */
2058 if (fd >= 0)
2060 /* Try to add the new descriptor. */
2061 ev.data.fd = fd;
2062 if (fd >= nconns
2063 || epoll_ctl (efd, EPOLL_CTL_ADD, fd, &ev) == -1)
2064 /* The descriptor is too large or something went
2065 wrong. Close the descriptor. */
2066 close (fd);
2067 else
2069 /* Remember when we accepted the connection. */
2070 starttime[fd] = now;
2072 if (fd > highest)
2073 highest = fd;
2075 ++nused;
2079 # ifdef HAVE_INOTIFY
2080 else if (revs[cnt].data.fd == inotify_fd)
2082 bool to_clear[lastdb] = { false, };
2083 union
2085 struct inotify_event i;
2086 char buf[sizeof (struct inotify_event) + PATH_MAX];
2087 } inev;
2089 while (1)
2091 ssize_t nb = TEMP_FAILURE_RETRY (read (inotify_fd, &inev,
2092 sizeof (inev)));
2093 if (nb < (ssize_t) sizeof (struct inotify_event))
2095 if (__builtin_expect (nb == -1 && errno != EAGAIN, 0))
2097 /* Something went wrong when reading the inotify
2098 data. Better disable inotify. */
2099 dbg_log (_("disabled inotify after read error %d"),
2100 errno);
2101 (void) epoll_ctl (efd, EPOLL_CTL_DEL, inotify_fd,
2102 NULL);
2103 close (inotify_fd);
2104 inotify_fd = -1;
2106 break;
2109 /* Check which of the files changed. */
2110 for (size_t dbcnt = 0; dbcnt < lastdb; ++dbcnt)
2111 if (inev.i.wd == dbs[dbcnt].inotify_descr)
2113 to_clear[dbcnt] = true;
2114 goto next;
2117 if (inev.i.wd == resolv_conf_descr)
2119 res_init ();
2120 to_clear[hstdb] = true;
2122 next:;
2125 /* Actually perform the cache clearing. */
2126 for (size_t dbcnt = 0; dbcnt < lastdb; ++dbcnt)
2127 if (to_clear[dbcnt])
2129 pthread_mutex_lock (&dbs[dbcnt].prune_lock);
2130 dbs[dbcnt].clear_cache = 1;
2131 pthread_mutex_unlock (&dbs[dbcnt].prune_lock);
2132 pthread_cond_signal (&dbs[dbcnt].prune_cond);
2135 # endif
2136 else
2138 /* Remove the descriptor from the epoll descriptor. */
2139 (void) epoll_ctl (efd, EPOLL_CTL_DEL, revs[cnt].data.fd, NULL);
2141 /* Get a worker to handle the request. */
2142 fd_ready (revs[cnt].data.fd);
2144 /* Reset the time. */
2145 starttime[revs[cnt].data.fd] = 0;
2146 if (revs[cnt].data.fd == highest)
2148 --highest;
2149 while (highest > 0 && starttime[highest] == 0);
2151 --nused;
2154 /* Now look for descriptors for accepted connections which have
2155 no reply in too long of a time. */
2156 time_t laststart = now - ACCEPT_TIMEOUT;
2157 assert (starttime[sock] == 0);
2158 assert (inotify_fd == -1 || starttime[inotify_fd] == 0);
2159 for (int cnt = highest; cnt > STDERR_FILENO; --cnt)
2160 if (starttime[cnt] != 0 && starttime[cnt] < laststart)
2162 /* We are waiting for this one for too long. Close it. */
2163 (void) epoll_ctl (efd, EPOLL_CTL_DEL, cnt, NULL);
2165 (void) close (cnt);
2167 starttime[cnt] = 0;
2168 if (cnt == highest)
2169 --highest;
2171 else if (cnt != sock && starttime[cnt] == 0 && cnt == highest)
2172 --highest;
2174 if (restart_p (now))
2175 restart ();
2178 #endif
2181 /* Start all the threads we want. The initial process is thread no. 1. */
2182 void
2183 start_threads (void)
2185 /* Initialize the conditional variable we will use. The only
2186 non-standard attribute we might use is the clock selection. */
2187 pthread_condattr_t condattr;
2188 pthread_condattr_init (&condattr);
2190 #if defined _POSIX_CLOCK_SELECTION && _POSIX_CLOCK_SELECTION >= 0 \
2191 && defined _POSIX_MONOTONIC_CLOCK && _POSIX_MONOTONIC_CLOCK >= 0
2192 /* Determine whether the monotonous clock is available. */
2193 struct timespec dummy;
2194 # if _POSIX_MONOTONIC_CLOCK == 0
2195 if (sysconf (_SC_MONOTONIC_CLOCK) > 0)
2196 # endif
2197 # if _POSIX_CLOCK_SELECTION == 0
2198 if (sysconf (_SC_CLOCK_SELECTION) > 0)
2199 # endif
2200 if (clock_getres (CLOCK_MONOTONIC, &dummy) == 0
2201 && pthread_condattr_setclock (&condattr, CLOCK_MONOTONIC) == 0)
2202 timeout_clock = CLOCK_MONOTONIC;
2203 #endif
2205 /* Create the attribute for the threads. They are all created
2206 detached. */
2207 pthread_attr_init (&attr);
2208 pthread_attr_setdetachstate (&attr, PTHREAD_CREATE_DETACHED);
2209 /* Use 1MB stacks, twice as much for 64-bit architectures. */
2210 pthread_attr_setstacksize (&attr, NSCD_THREAD_STACKSIZE);
2212 /* We allow less than LASTDB threads only for debugging. */
2213 if (debug_level == 0)
2214 nthreads = MAX (nthreads, lastdb);
2216 /* Create the threads which prune the databases. */
2217 // XXX Ideally this work would be done by some of the worker threads.
2218 // XXX But this is problematic since we would need to be able to wake
2219 // XXX them up explicitly as well as part of the group handling the
2220 // XXX ready-list. This requires an operation where we can wait on
2221 // XXX two conditional variables at the same time. This operation
2222 // XXX does not exist (yet).
2223 for (long int i = 0; i < lastdb; ++i)
2225 /* Initialize the conditional variable. */
2226 if (pthread_cond_init (&dbs[i].prune_cond, &condattr) != 0)
2228 dbg_log (_("could not initialize conditional variable"));
2229 exit (1);
2232 pthread_t th;
2233 if (dbs[i].enabled
2234 && pthread_create (&th, &attr, nscd_run_prune, (void *) i) != 0)
2236 dbg_log (_("could not start clean-up thread; terminating"));
2237 exit (1);
2241 pthread_condattr_destroy (&condattr);
2243 for (long int i = 0; i < nthreads; ++i)
2245 pthread_t th;
2246 if (pthread_create (&th, &attr, nscd_run_worker, NULL) != 0)
2248 if (i == 0)
2250 dbg_log (_("could not start any worker thread; terminating"));
2251 exit (1);
2254 break;
2258 /* Determine how much room for descriptors we should initially
2259 allocate. This might need to change later if we cap the number
2260 with MAXCONN. */
2261 const long int nfds = sysconf (_SC_OPEN_MAX);
2262 #define MINCONN 32
2263 #define MAXCONN 16384
2264 if (nfds == -1 || nfds > MAXCONN)
2265 nconns = MAXCONN;
2266 else if (nfds < MINCONN)
2267 nconns = MINCONN;
2268 else
2269 nconns = nfds;
2271 /* We need memory to pass descriptors on to the worker threads. */
2272 fdlist = (struct fdlist *) xcalloc (nconns, sizeof (fdlist[0]));
2273 /* Array to keep track when connection was accepted. */
2274 starttime = (time_t *) xcalloc (nconns, sizeof (starttime[0]));
2276 /* In the main thread we execute the loop which handles incoming
2277 connections. */
2278 #ifdef HAVE_EPOLL
2279 int efd = epoll_create (100);
2280 if (efd != -1)
2282 main_loop_epoll (efd);
2283 close (efd);
2285 #endif
2287 main_loop_poll ();
2291 /* Look up the uid, gid, and supplementary groups to run nscd as. When
2292 this function is called, we are not listening on the nscd socket yet so
2293 we can just use the ordinary lookup functions without causing a lockup */
2294 static void
2295 begin_drop_privileges (void)
2297 struct passwd *pwd = getpwnam (server_user);
2299 if (pwd == NULL)
2301 dbg_log (_("Failed to run nscd as user '%s'"), server_user);
2302 error (EXIT_FAILURE, 0, _("Failed to run nscd as user '%s'"),
2303 server_user);
2306 server_uid = pwd->pw_uid;
2307 server_gid = pwd->pw_gid;
2309 /* Save the old UID/GID if we have to change back. */
2310 if (paranoia)
2312 old_uid = getuid ();
2313 old_gid = getgid ();
2316 if (getgrouplist (server_user, server_gid, NULL, &server_ngroups) == 0)
2318 /* This really must never happen. */
2319 dbg_log (_("Failed to run nscd as user '%s'"), server_user);
2320 error (EXIT_FAILURE, errno, _("initial getgrouplist failed"));
2323 server_groups = (gid_t *) xmalloc (server_ngroups * sizeof (gid_t));
2325 if (getgrouplist (server_user, server_gid, server_groups, &server_ngroups)
2326 == -1)
2328 dbg_log (_("Failed to run nscd as user '%s'"), server_user);
2329 error (EXIT_FAILURE, errno, _("getgrouplist failed"));
2334 /* Call setgroups(), setgid(), and setuid() to drop root privileges and
2335 run nscd as the user specified in the configuration file. */
2336 static void
2337 finish_drop_privileges (void)
2339 #if defined HAVE_LIBAUDIT && defined HAVE_LIBCAP
2340 /* We need to preserve the capabilities to connect to the audit daemon. */
2341 cap_t new_caps = preserve_capabilities ();
2342 #endif
2344 if (setgroups (server_ngroups, server_groups) == -1)
2346 dbg_log (_("Failed to run nscd as user '%s'"), server_user);
2347 error (EXIT_FAILURE, errno, _("setgroups failed"));
2350 int res;
2351 if (paranoia)
2352 res = setresgid (server_gid, server_gid, old_gid);
2353 else
2354 res = setgid (server_gid);
2355 if (res == -1)
2357 dbg_log (_("Failed to run nscd as user '%s'"), server_user);
2358 perror ("setgid");
2359 exit (4);
2362 if (paranoia)
2363 res = setresuid (server_uid, server_uid, old_uid);
2364 else
2365 res = setuid (server_uid);
2366 if (res == -1)
2368 dbg_log (_("Failed to run nscd as user '%s'"), server_user);
2369 perror ("setuid");
2370 exit (4);
2373 #if defined HAVE_LIBAUDIT && defined HAVE_LIBCAP
2374 /* Remove the temporary capabilities. */
2375 install_real_capabilities (new_caps);
2376 #endif