Only kill the whole process group if we have detached
[mpls-ppp.git] / pppd / main.c
blob4e1952b1da6227b83ff3453c4412a5652c095346
1 /*
2 * main.c - Point-to-Point Protocol main module
4 * Copyright (c) 1984-2000 Carnegie Mellon University. All rights reserved.
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in
15 * the documentation and/or other materials provided with the
16 * distribution.
18 * 3. The name "Carnegie Mellon University" must not be used to
19 * endorse or promote products derived from this software without
20 * prior written permission. For permission or any legal
21 * details, please contact
22 * Office of Technology Transfer
23 * Carnegie Mellon University
24 * 5000 Forbes Avenue
25 * Pittsburgh, PA 15213-3890
26 * (412) 268-4387, fax: (412) 268-7395
27 * tech-transfer@andrew.cmu.edu
29 * 4. Redistributions of any form whatsoever must retain the following
30 * acknowledgment:
31 * "This product includes software developed by Computing Services
32 * at Carnegie Mellon University (http://www.cmu.edu/computing/)."
34 * CARNEGIE MELLON UNIVERSITY DISCLAIMS ALL WARRANTIES WITH REGARD TO
35 * THIS SOFTWARE, INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY
36 * AND FITNESS, IN NO EVENT SHALL CARNEGIE MELLON UNIVERSITY BE LIABLE
37 * FOR ANY SPECIAL, INDIRECT OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
38 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN
39 * AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING
40 * OUT OF OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
42 * Copyright (c) 1999-2004 Paul Mackerras. All rights reserved.
44 * Redistribution and use in source and binary forms, with or without
45 * modification, are permitted provided that the following conditions
46 * are met:
48 * 1. Redistributions of source code must retain the above copyright
49 * notice, this list of conditions and the following disclaimer.
51 * 2. The name(s) of the authors of this software must not be used to
52 * endorse or promote products derived from this software without
53 * prior written permission.
55 * 3. Redistributions of any form whatsoever must retain the following
56 * acknowledgment:
57 * "This product includes software developed by Paul Mackerras
58 * <paulus@samba.org>".
60 * THE AUTHORS OF THIS SOFTWARE DISCLAIM ALL WARRANTIES WITH REGARD TO
61 * THIS SOFTWARE, INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY
62 * AND FITNESS, IN NO EVENT SHALL THE AUTHORS BE LIABLE FOR ANY
63 * SPECIAL, INDIRECT OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
64 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN
65 * AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING
66 * OUT OF OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
69 #define RCSID "$Id: main.c,v 1.156 2008/06/23 11:47:18 paulus Exp $"
71 #include <stdio.h>
72 #include <ctype.h>
73 #include <stdlib.h>
74 #include <string.h>
75 #include <unistd.h>
76 #include <signal.h>
77 #include <errno.h>
78 #include <fcntl.h>
79 #include <syslog.h>
80 #include <netdb.h>
81 #include <utmp.h>
82 #include <pwd.h>
83 #include <setjmp.h>
84 #include <sys/param.h>
85 #include <sys/types.h>
86 #include <sys/wait.h>
87 #include <sys/time.h>
88 #include <sys/resource.h>
89 #include <sys/stat.h>
90 #include <sys/socket.h>
91 #include <netinet/in.h>
92 #include <arpa/inet.h>
94 #include "pppd.h"
95 #include "magic.h"
96 #include "fsm.h"
97 #include "lcp.h"
98 #include "ipcp.h"
99 #ifdef INET6
100 #include "ipv6cp.h"
101 #endif
102 #include "upap.h"
103 #include "chap-new.h"
104 #include "eap.h"
105 #include "ccp.h"
106 #include "ecp.h"
107 #include "pathnames.h"
109 #ifdef USE_TDB
110 #include "tdb.h"
111 #endif
113 #ifdef CBCP_SUPPORT
114 #include "cbcp.h"
115 #endif
117 #ifdef IPX_CHANGE
118 #include "ipxcp.h"
119 #endif /* IPX_CHANGE */
120 #ifdef AT_CHANGE
121 #include "atcp.h"
122 #endif
124 static const char rcsid[] = RCSID;
126 /* interface vars */
127 char ifname[32]; /* Interface name */
128 int ifunit; /* Interface unit number */
130 struct channel *the_channel;
132 char *progname; /* Name of this program */
133 char hostname[MAXNAMELEN]; /* Our hostname */
134 static char pidfilename[MAXPATHLEN]; /* name of pid file */
135 static char linkpidfile[MAXPATHLEN]; /* name of linkname pid file */
136 char ppp_devnam[MAXPATHLEN]; /* name of PPP tty (maybe ttypx) */
137 uid_t uid; /* Our real user-id */
138 struct notifier *pidchange = NULL;
139 struct notifier *phasechange = NULL;
140 struct notifier *exitnotify = NULL;
141 struct notifier *sigreceived = NULL;
142 struct notifier *fork_notifier = NULL;
144 int hungup; /* terminal has been hung up */
145 int privileged; /* we're running as real uid root */
146 int need_holdoff; /* need holdoff period before restarting */
147 int detached; /* have detached from terminal */
148 volatile int status; /* exit status for pppd */
149 int unsuccess; /* # unsuccessful connection attempts */
150 int do_callback; /* != 0 if we should do callback next */
151 int doing_callback; /* != 0 if we are doing callback */
152 int ppp_session_number; /* Session number, for channels with such a
153 concept (eg PPPoE) */
154 int childwait_done; /* have timed out waiting for children */
156 #ifdef USE_TDB
157 TDB_CONTEXT *pppdb; /* database for storing status etc. */
158 #endif
160 char db_key[32];
162 int (*holdoff_hook) __P((void)) = NULL;
163 int (*new_phase_hook) __P((int)) = NULL;
164 void (*snoop_recv_hook) __P((unsigned char *p, int len)) = NULL;
165 void (*snoop_send_hook) __P((unsigned char *p, int len)) = NULL;
167 static int conn_running; /* we have a [dis]connector running */
168 static int fd_loop; /* fd for getting demand-dial packets */
170 int fd_devnull; /* fd for /dev/null */
171 int devfd = -1; /* fd of underlying device */
172 int fd_ppp = -1; /* fd for talking PPP */
173 int phase; /* where the link is at */
174 int kill_link;
175 int asked_to_quit;
176 int open_ccp_flag;
177 int listen_time;
178 int got_sigusr2;
179 int got_sigterm;
180 int got_sighup;
182 static sigset_t signals_handled;
183 static int waiting;
184 static sigjmp_buf sigjmp;
186 char **script_env; /* Env. variable values for scripts */
187 int s_env_nalloc; /* # words avail at script_env */
189 u_char outpacket_buf[PPP_MRU+PPP_HDRLEN]; /* buffer for outgoing packet */
190 u_char inpacket_buf[PPP_MRU+PPP_HDRLEN]; /* buffer for incoming packet */
192 static int n_children; /* # child processes still running */
193 static int got_sigchld; /* set if we have received a SIGCHLD */
195 int privopen; /* don't lock, open device as root */
197 char *no_ppp_msg = "Sorry - this system lacks PPP kernel support\n";
199 GIDSET_TYPE groups[NGROUPS_MAX];/* groups the user is in */
200 int ngroups; /* How many groups valid in groups */
202 static struct timeval start_time; /* Time when link was started. */
204 static struct pppd_stats old_link_stats;
205 struct pppd_stats link_stats;
206 unsigned link_connect_time;
207 int link_stats_valid;
209 int error_count;
211 bool bundle_eof;
212 bool bundle_terminating;
215 * We maintain a list of child process pids and
216 * functions to call when they exit.
218 struct subprocess {
219 pid_t pid;
220 char *prog;
221 void (*done) __P((void *));
222 void *arg;
223 int killable;
224 struct subprocess *next;
227 static struct subprocess *children;
229 /* Prototypes for procedures local to this file. */
231 static void setup_signals __P((void));
232 static void create_pidfile __P((int pid));
233 static void create_linkpidfile __P((int pid));
234 static void cleanup __P((void));
235 static void get_input __P((void));
236 static void calltimeout __P((void));
237 static struct timeval *timeleft __P((struct timeval *));
238 static void kill_my_pg __P((int));
239 static void hup __P((int));
240 static void term __P((int));
241 static void chld __P((int));
242 static void toggle_debug __P((int));
243 static void open_ccp __P((int));
244 static void bad_signal __P((int));
245 static void holdoff_end __P((void *));
246 static void forget_child __P((int pid, int status));
247 static int reap_kids __P((void));
248 static void childwait_end __P((void *));
250 #ifdef USE_TDB
251 static void update_db_entry __P((void));
252 static void add_db_key __P((const char *));
253 static void delete_db_key __P((const char *));
254 static void cleanup_db __P((void));
255 #endif
257 static void handle_events __P((void));
258 void print_link_stats __P((void));
260 extern char *ttyname __P((int));
261 extern char *getlogin __P((void));
262 int main __P((int, char *[]));
264 #ifdef ultrix
265 #undef O_NONBLOCK
266 #define O_NONBLOCK O_NDELAY
267 #endif
269 #ifdef ULTRIX
270 #define setlogmask(x)
271 #endif
274 * PPP Data Link Layer "protocol" table.
275 * One entry per supported protocol.
276 * The last entry must be NULL.
278 struct protent *protocols[] = {
279 &lcp_protent,
280 &pap_protent,
281 &chap_protent,
282 #ifdef CBCP_SUPPORT
283 &cbcp_protent,
284 #endif
285 &ipcp_protent,
286 #ifdef INET6
287 &ipv6cp_protent,
288 #endif
289 &ccp_protent,
290 &ecp_protent,
291 #ifdef IPX_CHANGE
292 &ipxcp_protent,
293 #endif
294 #ifdef AT_CHANGE
295 &atcp_protent,
296 #endif
297 &eap_protent,
298 NULL
302 * If PPP_DRV_NAME is not defined, use the default "ppp" as the device name.
304 #if !defined(PPP_DRV_NAME)
305 #define PPP_DRV_NAME "ppp"
306 #endif /* !defined(PPP_DRV_NAME) */
309 main(argc, argv)
310 int argc;
311 char *argv[];
313 int i, t;
314 char *p;
315 struct passwd *pw;
316 struct protent *protp;
317 char numbuf[16];
319 link_stats_valid = 0;
320 new_phase(PHASE_INITIALIZE);
322 script_env = NULL;
324 /* Initialize syslog facilities */
325 reopen_log();
327 if (gethostname(hostname, MAXNAMELEN) < 0 ) {
328 option_error("Couldn't get hostname: %m");
329 exit(1);
331 hostname[MAXNAMELEN-1] = 0;
333 /* make sure we don't create world or group writable files. */
334 umask(umask(0777) | 022);
336 uid = getuid();
337 privileged = uid == 0;
338 slprintf(numbuf, sizeof(numbuf), "%d", uid);
339 script_setenv("ORIG_UID", numbuf, 0);
341 ngroups = getgroups(NGROUPS_MAX, groups);
344 * Initialize magic number generator now so that protocols may
345 * use magic numbers in initialization.
347 magic_init();
350 * Initialize each protocol.
352 for (i = 0; (protp = protocols[i]) != NULL; ++i)
353 (*protp->init)(0);
356 * Initialize the default channel.
358 tty_init();
360 progname = *argv;
363 * Parse, in order, the system options file, the user's options file,
364 * and the command line arguments.
366 if (!options_from_file(_PATH_SYSOPTIONS, !privileged, 0, 1)
367 || !options_from_user()
368 || !parse_args(argc-1, argv+1))
369 exit(EXIT_OPTION_ERROR);
370 devnam_fixed = 1; /* can no longer change device name */
373 * Work out the device name, if it hasn't already been specified,
374 * and parse the tty's options file.
376 if (the_channel->process_extra_options)
377 (*the_channel->process_extra_options)();
379 if (debug)
380 setlogmask(LOG_UPTO(LOG_DEBUG));
383 * Check that we are running as root.
385 if (geteuid() != 0) {
386 option_error("must be root to run %s, since it is not setuid-root",
387 argv[0]);
388 exit(EXIT_NOT_ROOT);
391 if (!ppp_available()) {
392 option_error("%s", no_ppp_msg);
393 exit(EXIT_NO_KERNEL_SUPPORT);
397 * Check that the options given are valid and consistent.
399 check_options();
400 if (!sys_check_options())
401 exit(EXIT_OPTION_ERROR);
402 auth_check_options();
403 #ifdef HAVE_MULTILINK
404 mp_check_options();
405 #endif
406 for (i = 0; (protp = protocols[i]) != NULL; ++i)
407 if (protp->check_options != NULL)
408 (*protp->check_options)();
409 if (the_channel->check_options)
410 (*the_channel->check_options)();
413 if (dump_options || dryrun) {
414 init_pr_log(NULL, LOG_INFO);
415 print_options(pr_log, NULL);
416 end_pr_log();
419 if (dryrun)
420 die(0);
422 /* Make sure fds 0, 1, 2 are open to somewhere. */
423 fd_devnull = open(_PATH_DEVNULL, O_RDWR);
424 if (fd_devnull < 0)
425 fatal("Couldn't open %s: %m", _PATH_DEVNULL);
426 while (fd_devnull <= 2) {
427 i = dup(fd_devnull);
428 if (i < 0)
429 fatal("Critical shortage of file descriptors: dup failed: %m");
430 fd_devnull = i;
434 * Initialize system-dependent stuff.
436 sys_init();
438 #ifdef USE_TDB
439 pppdb = tdb_open(_PATH_PPPDB, 0, 0, O_RDWR|O_CREAT, 0644);
440 if (pppdb != NULL) {
441 slprintf(db_key, sizeof(db_key), "pppd%d", getpid());
442 update_db_entry();
443 } else {
444 warn("Warning: couldn't open ppp database %s", _PATH_PPPDB);
445 if (multilink) {
446 warn("Warning: disabling multilink");
447 multilink = 0;
450 #endif
453 * Detach ourselves from the terminal, if required,
454 * and identify who is running us.
456 if (!nodetach && !updetach)
457 detach();
458 p = getlogin();
459 if (p == NULL) {
460 pw = getpwuid(uid);
461 if (pw != NULL && pw->pw_name != NULL)
462 p = pw->pw_name;
463 else
464 p = "(unknown)";
466 syslog(LOG_NOTICE, "pppd %s started by %s, uid %d", VERSION, p, uid);
467 script_setenv("PPPLOGNAME", p, 0);
469 if (devnam[0])
470 script_setenv("DEVICE", devnam, 1);
471 slprintf(numbuf, sizeof(numbuf), "%d", getpid());
472 script_setenv("PPPD_PID", numbuf, 1);
474 setup_signals();
476 create_linkpidfile(getpid());
478 waiting = 0;
481 * If we're doing dial-on-demand, set up the interface now.
483 if (demand) {
485 * Open the loopback channel and set it up to be the ppp interface.
487 fd_loop = open_ppp_loopback();
488 set_ifunit(1);
490 * Configure the interface and mark it up, etc.
492 demand_conf();
495 do_callback = 0;
496 for (;;) {
498 bundle_eof = 0;
499 bundle_terminating = 0;
500 listen_time = 0;
501 need_holdoff = 1;
502 devfd = -1;
503 status = EXIT_OK;
504 ++unsuccess;
505 doing_callback = do_callback;
506 do_callback = 0;
508 if (demand && !doing_callback) {
510 * Don't do anything until we see some activity.
512 new_phase(PHASE_DORMANT);
513 demand_unblock();
514 add_fd(fd_loop);
515 for (;;) {
516 handle_events();
517 if (asked_to_quit)
518 break;
519 if (get_loop_output())
520 break;
522 remove_fd(fd_loop);
523 if (asked_to_quit)
524 break;
527 * Now we want to bring up the link.
529 demand_block();
530 info("Starting link");
533 gettimeofday(&start_time, NULL);
534 script_unsetenv("CONNECT_TIME");
535 script_unsetenv("BYTES_SENT");
536 script_unsetenv("BYTES_RCVD");
538 lcp_open(0); /* Start protocol */
539 start_link(0);
540 while (phase != PHASE_DEAD) {
541 handle_events();
542 get_input();
543 if (kill_link)
544 lcp_close(0, "User request");
545 if (asked_to_quit) {
546 bundle_terminating = 1;
547 if (phase == PHASE_MASTER)
548 mp_bundle_terminated();
550 if (open_ccp_flag) {
551 if (phase == PHASE_NETWORK || phase == PHASE_RUNNING) {
552 ccp_fsm[0].flags = OPT_RESTART; /* clears OPT_SILENT */
553 (*ccp_protent.open)(0);
557 /* restore FSMs to original state */
558 lcp_close(0, "");
560 if (!persist || asked_to_quit || (maxfail > 0 && unsuccess >= maxfail))
561 break;
563 if (demand)
564 demand_discard();
565 t = need_holdoff? holdoff: 0;
566 if (holdoff_hook)
567 t = (*holdoff_hook)();
568 if (t > 0) {
569 new_phase(PHASE_HOLDOFF);
570 TIMEOUT(holdoff_end, NULL, t);
571 do {
572 handle_events();
573 if (kill_link)
574 new_phase(PHASE_DORMANT); /* allow signal to end holdoff */
575 } while (phase == PHASE_HOLDOFF);
576 if (!persist)
577 break;
581 /* Wait for scripts to finish */
582 reap_kids();
583 if (n_children > 0) {
584 if (child_wait > 0)
585 TIMEOUT(childwait_end, NULL, child_wait);
586 if (debug) {
587 struct subprocess *chp;
588 dbglog("Waiting for %d child processes...", n_children);
589 for (chp = children; chp != NULL; chp = chp->next)
590 dbglog(" script %s, pid %d", chp->prog, chp->pid);
592 while (n_children > 0 && !childwait_done) {
593 handle_events();
594 if (kill_link && !childwait_done)
595 childwait_end(NULL);
599 die(status);
600 return 0;
604 * handle_events - wait for something to happen and respond to it.
606 static void
607 handle_events()
609 struct timeval timo;
611 kill_link = open_ccp_flag = 0;
612 if (sigsetjmp(sigjmp, 1) == 0) {
613 sigprocmask(SIG_BLOCK, &signals_handled, NULL);
614 if (got_sighup || got_sigterm || got_sigusr2 || got_sigchld) {
615 sigprocmask(SIG_UNBLOCK, &signals_handled, NULL);
616 } else {
617 waiting = 1;
618 sigprocmask(SIG_UNBLOCK, &signals_handled, NULL);
619 wait_input(timeleft(&timo));
622 waiting = 0;
623 calltimeout();
624 if (got_sighup) {
625 info("Hangup (SIGHUP)");
626 kill_link = 1;
627 got_sighup = 0;
628 if (status != EXIT_HANGUP)
629 status = EXIT_USER_REQUEST;
631 if (got_sigterm) {
632 info("Terminating on signal %d", got_sigterm);
633 kill_link = 1;
634 asked_to_quit = 1;
635 persist = 0;
636 status = EXIT_USER_REQUEST;
637 got_sigterm = 0;
639 if (got_sigchld) {
640 got_sigchld = 0;
641 reap_kids(); /* Don't leave dead kids lying around */
643 if (got_sigusr2) {
644 open_ccp_flag = 1;
645 got_sigusr2 = 0;
650 * setup_signals - initialize signal handling.
652 static void
653 setup_signals()
655 struct sigaction sa;
658 * Compute mask of all interesting signals and install signal handlers
659 * for each. Only one signal handler may be active at a time. Therefore,
660 * all other signals should be masked when any handler is executing.
662 sigemptyset(&signals_handled);
663 sigaddset(&signals_handled, SIGHUP);
664 sigaddset(&signals_handled, SIGINT);
665 sigaddset(&signals_handled, SIGTERM);
666 sigaddset(&signals_handled, SIGCHLD);
667 sigaddset(&signals_handled, SIGUSR2);
669 #define SIGNAL(s, handler) do { \
670 sa.sa_handler = handler; \
671 if (sigaction(s, &sa, NULL) < 0) \
672 fatal("Couldn't establish signal handler (%d): %m", s); \
673 } while (0)
675 sa.sa_mask = signals_handled;
676 sa.sa_flags = 0;
677 SIGNAL(SIGHUP, hup); /* Hangup */
678 SIGNAL(SIGINT, term); /* Interrupt */
679 SIGNAL(SIGTERM, term); /* Terminate */
680 SIGNAL(SIGCHLD, chld);
682 SIGNAL(SIGUSR1, toggle_debug); /* Toggle debug flag */
683 SIGNAL(SIGUSR2, open_ccp); /* Reopen CCP */
686 * Install a handler for other signals which would otherwise
687 * cause pppd to exit without cleaning up.
689 SIGNAL(SIGABRT, bad_signal);
690 SIGNAL(SIGALRM, bad_signal);
691 SIGNAL(SIGFPE, bad_signal);
692 SIGNAL(SIGILL, bad_signal);
693 SIGNAL(SIGPIPE, bad_signal);
694 SIGNAL(SIGQUIT, bad_signal);
695 SIGNAL(SIGSEGV, bad_signal);
696 #ifdef SIGBUS
697 SIGNAL(SIGBUS, bad_signal);
698 #endif
699 #ifdef SIGEMT
700 SIGNAL(SIGEMT, bad_signal);
701 #endif
702 #ifdef SIGPOLL
703 SIGNAL(SIGPOLL, bad_signal);
704 #endif
705 #ifdef SIGPROF
706 SIGNAL(SIGPROF, bad_signal);
707 #endif
708 #ifdef SIGSYS
709 SIGNAL(SIGSYS, bad_signal);
710 #endif
711 #ifdef SIGTRAP
712 SIGNAL(SIGTRAP, bad_signal);
713 #endif
714 #ifdef SIGVTALRM
715 SIGNAL(SIGVTALRM, bad_signal);
716 #endif
717 #ifdef SIGXCPU
718 SIGNAL(SIGXCPU, bad_signal);
719 #endif
720 #ifdef SIGXFSZ
721 SIGNAL(SIGXFSZ, bad_signal);
722 #endif
725 * Apparently we can get a SIGPIPE when we call syslog, if
726 * syslogd has died and been restarted. Ignoring it seems
727 * be sufficient.
729 signal(SIGPIPE, SIG_IGN);
733 * set_ifunit - do things we need to do once we know which ppp
734 * unit we are using.
736 void
737 set_ifunit(iskey)
738 int iskey;
740 info("Using interface %s%d", PPP_DRV_NAME, ifunit);
741 slprintf(ifname, sizeof(ifname), "%s%d", PPP_DRV_NAME, ifunit);
742 script_setenv("IFNAME", ifname, iskey);
743 if (iskey) {
744 create_pidfile(getpid()); /* write pid to file */
745 create_linkpidfile(getpid());
750 * detach - detach us from the controlling terminal.
752 void
753 detach()
755 int pid;
756 char numbuf[16];
757 int pipefd[2];
759 if (detached)
760 return;
761 if (pipe(pipefd) == -1)
762 pipefd[0] = pipefd[1] = -1;
763 if ((pid = fork()) < 0) {
764 error("Couldn't detach (fork failed: %m)");
765 die(1); /* or just return? */
767 if (pid != 0) {
768 /* parent */
769 notify(pidchange, pid);
770 /* update pid files if they have been written already */
771 if (pidfilename[0])
772 create_pidfile(pid);
773 if (linkpidfile[0])
774 create_linkpidfile(pid);
775 exit(0); /* parent dies */
777 setsid();
778 chdir("/");
779 dup2(fd_devnull, 0);
780 dup2(fd_devnull, 1);
781 dup2(fd_devnull, 2);
782 detached = 1;
783 if (log_default)
784 log_to_fd = -1;
785 slprintf(numbuf, sizeof(numbuf), "%d", getpid());
786 script_setenv("PPPD_PID", numbuf, 1);
788 /* wait for parent to finish updating pid & lock files and die */
789 close(pipefd[1]);
790 complete_read(pipefd[0], numbuf, 1);
791 close(pipefd[0]);
795 * reopen_log - (re)open our connection to syslog.
797 void
798 reopen_log()
800 openlog("pppd", LOG_PID | LOG_NDELAY, LOG_PPP);
801 setlogmask(LOG_UPTO(LOG_INFO));
805 * Create a file containing our process ID.
807 static void
808 create_pidfile(pid)
809 int pid;
811 FILE *pidfile;
813 slprintf(pidfilename, sizeof(pidfilename), "%s%s.pid",
814 _PATH_VARRUN, ifname);
815 if ((pidfile = fopen(pidfilename, "w")) != NULL) {
816 fprintf(pidfile, "%d\n", pid);
817 (void) fclose(pidfile);
818 } else {
819 error("Failed to create pid file %s: %m", pidfilename);
820 pidfilename[0] = 0;
824 void
825 create_linkpidfile(pid)
826 int pid;
828 FILE *pidfile;
830 if (linkname[0] == 0)
831 return;
832 script_setenv("LINKNAME", linkname, 1);
833 slprintf(linkpidfile, sizeof(linkpidfile), "%sppp-%s.pid",
834 _PATH_VARRUN, linkname);
835 if ((pidfile = fopen(linkpidfile, "w")) != NULL) {
836 fprintf(pidfile, "%d\n", pid);
837 if (ifname[0])
838 fprintf(pidfile, "%s\n", ifname);
839 (void) fclose(pidfile);
840 } else {
841 error("Failed to create pid file %s: %m", linkpidfile);
842 linkpidfile[0] = 0;
847 * remove_pidfile - remove our pid files
849 void remove_pidfiles()
851 if (pidfilename[0] != 0 && unlink(pidfilename) < 0 && errno != ENOENT)
852 warn("unable to delete pid file %s: %m", pidfilename);
853 pidfilename[0] = 0;
854 if (linkpidfile[0] != 0 && unlink(linkpidfile) < 0 && errno != ENOENT)
855 warn("unable to delete pid file %s: %m", linkpidfile);
856 linkpidfile[0] = 0;
860 * holdoff_end - called via a timeout when the holdoff period ends.
862 static void
863 holdoff_end(arg)
864 void *arg;
866 new_phase(PHASE_DORMANT);
869 /* List of protocol names, to make our messages a little more informative. */
870 struct protocol_list {
871 u_short proto;
872 const char *name;
873 } protocol_list[] = {
874 { 0x21, "IP" },
875 { 0x23, "OSI Network Layer" },
876 { 0x25, "Xerox NS IDP" },
877 { 0x27, "DECnet Phase IV" },
878 { 0x29, "Appletalk" },
879 { 0x2b, "Novell IPX" },
880 { 0x2d, "VJ compressed TCP/IP" },
881 { 0x2f, "VJ uncompressed TCP/IP" },
882 { 0x31, "Bridging PDU" },
883 { 0x33, "Stream Protocol ST-II" },
884 { 0x35, "Banyan Vines" },
885 { 0x39, "AppleTalk EDDP" },
886 { 0x3b, "AppleTalk SmartBuffered" },
887 { 0x3d, "Multi-Link" },
888 { 0x3f, "NETBIOS Framing" },
889 { 0x41, "Cisco Systems" },
890 { 0x43, "Ascom Timeplex" },
891 { 0x45, "Fujitsu Link Backup and Load Balancing (LBLB)" },
892 { 0x47, "DCA Remote Lan" },
893 { 0x49, "Serial Data Transport Protocol (PPP-SDTP)" },
894 { 0x4b, "SNA over 802.2" },
895 { 0x4d, "SNA" },
896 { 0x4f, "IP6 Header Compression" },
897 { 0x51, "KNX Bridging Data" },
898 { 0x53, "Encryption" },
899 { 0x55, "Individual Link Encryption" },
900 { 0x57, "IPv6" },
901 { 0x59, "PPP Muxing" },
902 { 0x5b, "Vendor-Specific Network Protocol" },
903 { 0x61, "RTP IPHC Full Header" },
904 { 0x63, "RTP IPHC Compressed TCP" },
905 { 0x65, "RTP IPHC Compressed non-TCP" },
906 { 0x67, "RTP IPHC Compressed UDP 8" },
907 { 0x69, "RTP IPHC Compressed RTP 8" },
908 { 0x6f, "Stampede Bridging" },
909 { 0x73, "MP+" },
910 { 0xc1, "NTCITS IPI" },
911 { 0xfb, "single-link compression" },
912 { 0xfd, "Compressed Datagram" },
913 { 0x0201, "802.1d Hello Packets" },
914 { 0x0203, "IBM Source Routing BPDU" },
915 { 0x0205, "DEC LANBridge100 Spanning Tree" },
916 { 0x0207, "Cisco Discovery Protocol" },
917 { 0x0209, "Netcs Twin Routing" },
918 { 0x020b, "STP - Scheduled Transfer Protocol" },
919 { 0x020d, "EDP - Extreme Discovery Protocol" },
920 { 0x0211, "Optical Supervisory Channel Protocol" },
921 { 0x0213, "Optical Supervisory Channel Protocol" },
922 { 0x0231, "Luxcom" },
923 { 0x0233, "Sigma Network Systems" },
924 { 0x0235, "Apple Client Server Protocol" },
925 { 0x0281, "MPLS Unicast" },
926 { 0x0283, "MPLS Multicast" },
927 { 0x0285, "IEEE p1284.4 standard - data packets" },
928 { 0x0287, "ETSI TETRA Network Protocol Type 1" },
929 { 0x0289, "Multichannel Flow Treatment Protocol" },
930 { 0x2063, "RTP IPHC Compressed TCP No Delta" },
931 { 0x2065, "RTP IPHC Context State" },
932 { 0x2067, "RTP IPHC Compressed UDP 16" },
933 { 0x2069, "RTP IPHC Compressed RTP 16" },
934 { 0x4001, "Cray Communications Control Protocol" },
935 { 0x4003, "CDPD Mobile Network Registration Protocol" },
936 { 0x4005, "Expand accelerator protocol" },
937 { 0x4007, "ODSICP NCP" },
938 { 0x4009, "DOCSIS DLL" },
939 { 0x400B, "Cetacean Network Detection Protocol" },
940 { 0x4021, "Stacker LZS" },
941 { 0x4023, "RefTek Protocol" },
942 { 0x4025, "Fibre Channel" },
943 { 0x4027, "EMIT Protocols" },
944 { 0x405b, "Vendor-Specific Protocol (VSP)" },
945 { 0x8021, "Internet Protocol Control Protocol" },
946 { 0x8023, "OSI Network Layer Control Protocol" },
947 { 0x8025, "Xerox NS IDP Control Protocol" },
948 { 0x8027, "DECnet Phase IV Control Protocol" },
949 { 0x8029, "Appletalk Control Protocol" },
950 { 0x802b, "Novell IPX Control Protocol" },
951 { 0x8031, "Bridging NCP" },
952 { 0x8033, "Stream Protocol Control Protocol" },
953 { 0x8035, "Banyan Vines Control Protocol" },
954 { 0x803d, "Multi-Link Control Protocol" },
955 { 0x803f, "NETBIOS Framing Control Protocol" },
956 { 0x8041, "Cisco Systems Control Protocol" },
957 { 0x8043, "Ascom Timeplex" },
958 { 0x8045, "Fujitsu LBLB Control Protocol" },
959 { 0x8047, "DCA Remote Lan Network Control Protocol (RLNCP)" },
960 { 0x8049, "Serial Data Control Protocol (PPP-SDCP)" },
961 { 0x804b, "SNA over 802.2 Control Protocol" },
962 { 0x804d, "SNA Control Protocol" },
963 { 0x804f, "IP6 Header Compression Control Protocol" },
964 { 0x8051, "KNX Bridging Control Protocol" },
965 { 0x8053, "Encryption Control Protocol" },
966 { 0x8055, "Individual Link Encryption Control Protocol" },
967 { 0x8057, "IPv6 Control Protovol" },
968 { 0x8059, "PPP Muxing Control Protocol" },
969 { 0x805b, "Vendor-Specific Network Control Protocol (VSNCP)" },
970 { 0x806f, "Stampede Bridging Control Protocol" },
971 { 0x8073, "MP+ Control Protocol" },
972 { 0x80c1, "NTCITS IPI Control Protocol" },
973 { 0x80fb, "Single Link Compression Control Protocol" },
974 { 0x80fd, "Compression Control Protocol" },
975 { 0x8207, "Cisco Discovery Protocol Control" },
976 { 0x8209, "Netcs Twin Routing" },
977 { 0x820b, "STP - Control Protocol" },
978 { 0x820d, "EDPCP - Extreme Discovery Protocol Ctrl Prtcl" },
979 { 0x8235, "Apple Client Server Protocol Control" },
980 { 0x8281, "MPLSCP" },
981 { 0x8285, "IEEE p1284.4 standard - Protocol Control" },
982 { 0x8287, "ETSI TETRA TNP1 Control Protocol" },
983 { 0x8289, "Multichannel Flow Treatment Protocol" },
984 { 0xc021, "Link Control Protocol" },
985 { 0xc023, "Password Authentication Protocol" },
986 { 0xc025, "Link Quality Report" },
987 { 0xc027, "Shiva Password Authentication Protocol" },
988 { 0xc029, "CallBack Control Protocol (CBCP)" },
989 { 0xc02b, "BACP Bandwidth Allocation Control Protocol" },
990 { 0xc02d, "BAP" },
991 { 0xc05b, "Vendor-Specific Authentication Protocol (VSAP)" },
992 { 0xc081, "Container Control Protocol" },
993 { 0xc223, "Challenge Handshake Authentication Protocol" },
994 { 0xc225, "RSA Authentication Protocol" },
995 { 0xc227, "Extensible Authentication Protocol" },
996 { 0xc229, "Mitsubishi Security Info Exch Ptcl (SIEP)" },
997 { 0xc26f, "Stampede Bridging Authorization Protocol" },
998 { 0xc281, "Proprietary Authentication Protocol" },
999 { 0xc283, "Proprietary Authentication Protocol" },
1000 { 0xc481, "Proprietary Node ID Authentication Protocol" },
1001 { 0, NULL },
1005 * protocol_name - find a name for a PPP protocol.
1007 const char *
1008 protocol_name(proto)
1009 int proto;
1011 struct protocol_list *lp;
1013 for (lp = protocol_list; lp->proto != 0; ++lp)
1014 if (proto == lp->proto)
1015 return lp->name;
1016 return NULL;
1020 * get_input - called when incoming data is available.
1022 static void
1023 get_input()
1025 int len, i;
1026 u_char *p;
1027 u_short protocol;
1028 struct protent *protp;
1030 p = inpacket_buf; /* point to beginning of packet buffer */
1032 len = read_packet(inpacket_buf);
1033 if (len < 0)
1034 return;
1036 if (len == 0) {
1037 if (bundle_eof && multilink_master) {
1038 notice("Last channel has disconnected");
1039 mp_bundle_terminated();
1040 return;
1042 notice("Modem hangup");
1043 hungup = 1;
1044 status = EXIT_HANGUP;
1045 lcp_lowerdown(0); /* serial link is no longer available */
1046 link_terminated(0);
1047 return;
1050 if (len < PPP_HDRLEN) {
1051 dbglog("received short packet:%.*B", len, p);
1052 return;
1055 dump_packet("rcvd", p, len);
1056 if (snoop_recv_hook) snoop_recv_hook(p, len);
1058 p += 2; /* Skip address and control */
1059 GETSHORT(protocol, p);
1060 len -= PPP_HDRLEN;
1063 * Toss all non-LCP packets unless LCP is OPEN.
1065 if (protocol != PPP_LCP && lcp_fsm[0].state != OPENED) {
1066 dbglog("Discarded non-LCP packet when LCP not open");
1067 return;
1071 * Until we get past the authentication phase, toss all packets
1072 * except LCP, LQR and authentication packets.
1074 if (phase <= PHASE_AUTHENTICATE
1075 && !(protocol == PPP_LCP || protocol == PPP_LQR
1076 || protocol == PPP_PAP || protocol == PPP_CHAP ||
1077 protocol == PPP_EAP)) {
1078 dbglog("discarding proto 0x%x in phase %d",
1079 protocol, phase);
1080 return;
1084 * Upcall the proper protocol input routine.
1086 for (i = 0; (protp = protocols[i]) != NULL; ++i) {
1087 if (protp->protocol == protocol && protp->enabled_flag) {
1088 (*protp->input)(0, p, len);
1089 return;
1091 if (protocol == (protp->protocol & ~0x8000) && protp->enabled_flag
1092 && protp->datainput != NULL) {
1093 (*protp->datainput)(0, p, len);
1094 return;
1098 if (debug) {
1099 const char *pname = protocol_name(protocol);
1100 if (pname != NULL)
1101 warn("Unsupported protocol '%s' (0x%x) received", pname, protocol);
1102 else
1103 warn("Unsupported protocol 0x%x received", protocol);
1105 lcp_sprotrej(0, p - PPP_HDRLEN, len + PPP_HDRLEN);
1109 * ppp_send_config - configure the transmit-side characteristics of
1110 * the ppp interface. Returns -1, indicating an error, if the channel
1111 * send_config procedure called error() (or incremented error_count
1112 * itself), otherwise 0.
1115 ppp_send_config(unit, mtu, accm, pcomp, accomp)
1116 int unit, mtu;
1117 u_int32_t accm;
1118 int pcomp, accomp;
1120 int errs;
1122 if (the_channel->send_config == NULL)
1123 return 0;
1124 errs = error_count;
1125 (*the_channel->send_config)(mtu, accm, pcomp, accomp);
1126 return (error_count != errs)? -1: 0;
1130 * ppp_recv_config - configure the receive-side characteristics of
1131 * the ppp interface. Returns -1, indicating an error, if the channel
1132 * recv_config procedure called error() (or incremented error_count
1133 * itself), otherwise 0.
1136 ppp_recv_config(unit, mru, accm, pcomp, accomp)
1137 int unit, mru;
1138 u_int32_t accm;
1139 int pcomp, accomp;
1141 int errs;
1143 if (the_channel->recv_config == NULL)
1144 return 0;
1145 errs = error_count;
1146 (*the_channel->recv_config)(mru, accm, pcomp, accomp);
1147 return (error_count != errs)? -1: 0;
1151 * new_phase - signal the start of a new phase of pppd's operation.
1153 void
1154 new_phase(p)
1155 int p;
1157 phase = p;
1158 if (new_phase_hook)
1159 (*new_phase_hook)(p);
1160 notify(phasechange, p);
1164 * die - clean up state and exit with the specified status.
1166 void
1167 die(status)
1168 int status;
1170 if (!doing_multilink || multilink_master)
1171 print_link_stats();
1172 cleanup();
1173 notify(exitnotify, status);
1174 syslog(LOG_INFO, "Exit.");
1175 exit(status);
1179 * cleanup - restore anything which needs to be restored before we exit
1181 /* ARGSUSED */
1182 static void
1183 cleanup()
1185 sys_cleanup();
1187 if (fd_ppp >= 0)
1188 the_channel->disestablish_ppp(devfd);
1189 if (the_channel->cleanup)
1190 (*the_channel->cleanup)();
1191 remove_pidfiles();
1193 #ifdef USE_TDB
1194 if (pppdb != NULL)
1195 cleanup_db();
1196 #endif
1200 void
1201 print_link_stats()
1204 * Print connect time and statistics.
1206 if (link_stats_valid) {
1207 int t = (link_connect_time + 5) / 6; /* 1/10ths of minutes */
1208 info("Connect time %d.%d minutes.", t/10, t%10);
1209 info("Sent %u bytes, received %u bytes.",
1210 link_stats.bytes_out, link_stats.bytes_in);
1211 link_stats_valid = 0;
1216 * reset_link_stats - "reset" stats when link goes up.
1218 void
1219 reset_link_stats(u)
1220 int u;
1222 if (!get_ppp_stats(u, &old_link_stats))
1223 return;
1224 gettimeofday(&start_time, NULL);
1228 * update_link_stats - get stats at link termination.
1230 void
1231 update_link_stats(u)
1232 int u;
1234 struct timeval now;
1235 char numbuf[32];
1237 if (!get_ppp_stats(u, &link_stats)
1238 || gettimeofday(&now, NULL) < 0)
1239 return;
1240 link_connect_time = now.tv_sec - start_time.tv_sec;
1241 link_stats_valid = 1;
1243 link_stats.bytes_in -= old_link_stats.bytes_in;
1244 link_stats.bytes_out -= old_link_stats.bytes_out;
1245 link_stats.pkts_in -= old_link_stats.pkts_in;
1246 link_stats.pkts_out -= old_link_stats.pkts_out;
1248 slprintf(numbuf, sizeof(numbuf), "%u", link_connect_time);
1249 script_setenv("CONNECT_TIME", numbuf, 0);
1250 slprintf(numbuf, sizeof(numbuf), "%u", link_stats.bytes_out);
1251 script_setenv("BYTES_SENT", numbuf, 0);
1252 slprintf(numbuf, sizeof(numbuf), "%u", link_stats.bytes_in);
1253 script_setenv("BYTES_RCVD", numbuf, 0);
1257 struct callout {
1258 struct timeval c_time; /* time at which to call routine */
1259 void *c_arg; /* argument to routine */
1260 void (*c_func) __P((void *)); /* routine */
1261 struct callout *c_next;
1264 static struct callout *callout = NULL; /* Callout list */
1265 static struct timeval timenow; /* Current time */
1268 * timeout - Schedule a timeout.
1270 void
1271 timeout(func, arg, secs, usecs)
1272 void (*func) __P((void *));
1273 void *arg;
1274 int secs, usecs;
1276 struct callout *newp, *p, **pp;
1279 * Allocate timeout.
1281 if ((newp = (struct callout *) malloc(sizeof(struct callout))) == NULL)
1282 fatal("Out of memory in timeout()!");
1283 newp->c_arg = arg;
1284 newp->c_func = func;
1285 gettimeofday(&timenow, NULL);
1286 newp->c_time.tv_sec = timenow.tv_sec + secs;
1287 newp->c_time.tv_usec = timenow.tv_usec + usecs;
1288 if (newp->c_time.tv_usec >= 1000000) {
1289 newp->c_time.tv_sec += newp->c_time.tv_usec / 1000000;
1290 newp->c_time.tv_usec %= 1000000;
1294 * Find correct place and link it in.
1296 for (pp = &callout; (p = *pp); pp = &p->c_next)
1297 if (newp->c_time.tv_sec < p->c_time.tv_sec
1298 || (newp->c_time.tv_sec == p->c_time.tv_sec
1299 && newp->c_time.tv_usec < p->c_time.tv_usec))
1300 break;
1301 newp->c_next = p;
1302 *pp = newp;
1307 * untimeout - Unschedule a timeout.
1309 void
1310 untimeout(func, arg)
1311 void (*func) __P((void *));
1312 void *arg;
1314 struct callout **copp, *freep;
1317 * Find first matching timeout and remove it from the list.
1319 for (copp = &callout; (freep = *copp); copp = &freep->c_next)
1320 if (freep->c_func == func && freep->c_arg == arg) {
1321 *copp = freep->c_next;
1322 free((char *) freep);
1323 break;
1329 * calltimeout - Call any timeout routines which are now due.
1331 static void
1332 calltimeout()
1334 struct callout *p;
1336 while (callout != NULL) {
1337 p = callout;
1339 if (gettimeofday(&timenow, NULL) < 0)
1340 fatal("Failed to get time of day: %m");
1341 if (!(p->c_time.tv_sec < timenow.tv_sec
1342 || (p->c_time.tv_sec == timenow.tv_sec
1343 && p->c_time.tv_usec <= timenow.tv_usec)))
1344 break; /* no, it's not time yet */
1346 callout = p->c_next;
1347 (*p->c_func)(p->c_arg);
1349 free((char *) p);
1355 * timeleft - return the length of time until the next timeout is due.
1357 static struct timeval *
1358 timeleft(tvp)
1359 struct timeval *tvp;
1361 if (callout == NULL)
1362 return NULL;
1364 gettimeofday(&timenow, NULL);
1365 tvp->tv_sec = callout->c_time.tv_sec - timenow.tv_sec;
1366 tvp->tv_usec = callout->c_time.tv_usec - timenow.tv_usec;
1367 if (tvp->tv_usec < 0) {
1368 tvp->tv_usec += 1000000;
1369 tvp->tv_sec -= 1;
1371 if (tvp->tv_sec < 0)
1372 tvp->tv_sec = tvp->tv_usec = 0;
1374 return tvp;
1379 * kill_my_pg - send a signal to our process group, and ignore it ourselves.
1380 * We assume that sig is currently blocked.
1382 static void
1383 kill_my_pg(sig)
1384 int sig;
1386 struct sigaction act, oldact;
1387 struct subprocess *chp;
1389 if (!detached) {
1391 * There might be other things in our process group that we
1392 * didn't start that would get hit if we did a kill(0), so
1393 * just send the signal individually to our children.
1395 for (chp = children; chp != NULL; chp = chp->next)
1396 if (chp->killable)
1397 kill(chp->pid, sig);
1398 return;
1401 /* We've done a setsid(), so we can just use a kill(0) */
1402 sigemptyset(&act.sa_mask); /* unnecessary in fact */
1403 act.sa_handler = SIG_IGN;
1404 act.sa_flags = 0;
1405 kill(0, sig);
1407 * The kill() above made the signal pending for us, as well as
1408 * the rest of our process group, but we don't want it delivered
1409 * to us. It is blocked at the moment. Setting it to be ignored
1410 * will cause the pending signal to be discarded. If we did the
1411 * kill() after setting the signal to be ignored, it is unspecified
1412 * (by POSIX) whether the signal is immediately discarded or left
1413 * pending, and in fact Linux would leave it pending, and so it
1414 * would be delivered after the current signal handler exits,
1415 * leading to an infinite loop.
1417 sigaction(sig, &act, &oldact);
1418 sigaction(sig, &oldact, NULL);
1423 * hup - Catch SIGHUP signal.
1425 * Indicates that the physical layer has been disconnected.
1426 * We don't rely on this indication; if the user has sent this
1427 * signal, we just take the link down.
1429 static void
1430 hup(sig)
1431 int sig;
1433 /* can't log a message here, it can deadlock */
1434 got_sighup = 1;
1435 if (conn_running)
1436 /* Send the signal to the [dis]connector process(es) also */
1437 kill_my_pg(sig);
1438 notify(sigreceived, sig);
1439 if (waiting)
1440 siglongjmp(sigjmp, 1);
1445 * term - Catch SIGTERM signal and SIGINT signal (^C/del).
1447 * Indicates that we should initiate a graceful disconnect and exit.
1449 /*ARGSUSED*/
1450 static void
1451 term(sig)
1452 int sig;
1454 /* can't log a message here, it can deadlock */
1455 got_sigterm = sig;
1456 if (conn_running)
1457 /* Send the signal to the [dis]connector process(es) also */
1458 kill_my_pg(sig);
1459 notify(sigreceived, sig);
1460 if (waiting)
1461 siglongjmp(sigjmp, 1);
1466 * chld - Catch SIGCHLD signal.
1467 * Sets a flag so we will call reap_kids in the mainline.
1469 static void
1470 chld(sig)
1471 int sig;
1473 got_sigchld = 1;
1474 if (waiting)
1475 siglongjmp(sigjmp, 1);
1480 * toggle_debug - Catch SIGUSR1 signal.
1482 * Toggle debug flag.
1484 /*ARGSUSED*/
1485 static void
1486 toggle_debug(sig)
1487 int sig;
1489 debug = !debug;
1490 if (debug) {
1491 setlogmask(LOG_UPTO(LOG_DEBUG));
1492 } else {
1493 setlogmask(LOG_UPTO(LOG_WARNING));
1499 * open_ccp - Catch SIGUSR2 signal.
1501 * Try to (re)negotiate compression.
1503 /*ARGSUSED*/
1504 static void
1505 open_ccp(sig)
1506 int sig;
1508 got_sigusr2 = 1;
1509 if (waiting)
1510 siglongjmp(sigjmp, 1);
1515 * bad_signal - We've caught a fatal signal. Clean up state and exit.
1517 static void
1518 bad_signal(sig)
1519 int sig;
1521 static int crashed = 0;
1523 if (crashed)
1524 _exit(127);
1525 crashed = 1;
1526 error("Fatal signal %d", sig);
1527 if (conn_running)
1528 kill_my_pg(SIGTERM);
1529 notify(sigreceived, sig);
1530 die(127);
1534 * safe_fork - Create a child process. The child closes all the
1535 * file descriptors that we don't want to leak to a script.
1536 * The parent waits for the child to do this before returning.
1537 * This also arranges for the specified fds to be dup'd to
1538 * fds 0, 1, 2 in the child.
1540 pid_t
1541 safe_fork(int infd, int outfd, int errfd)
1543 pid_t pid;
1544 int fd, pipefd[2];
1545 char buf[1];
1547 /* make sure fds 0, 1, 2 are occupied (probably not necessary) */
1548 while ((fd = dup(fd_devnull)) >= 0) {
1549 if (fd > 2) {
1550 close(fd);
1551 break;
1555 if (pipe(pipefd) == -1)
1556 pipefd[0] = pipefd[1] = -1;
1557 pid = fork();
1558 if (pid < 0) {
1559 error("fork failed: %m");
1560 return -1;
1562 if (pid > 0) {
1563 /* parent */
1564 close(pipefd[1]);
1565 /* this read() blocks until the close(pipefd[1]) below */
1566 complete_read(pipefd[0], buf, 1);
1567 close(pipefd[0]);
1568 return pid;
1571 /* Executing in the child */
1572 sys_close();
1573 #ifdef USE_TDB
1574 tdb_close(pppdb);
1575 #endif
1577 /* make sure infd, outfd and errfd won't get tromped on below */
1578 if (infd == 1 || infd == 2)
1579 infd = dup(infd);
1580 if (outfd == 0 || outfd == 2)
1581 outfd = dup(outfd);
1582 if (errfd == 0 || errfd == 1)
1583 errfd = dup(errfd);
1585 closelog();
1587 /* dup the in, out, err fds to 0, 1, 2 */
1588 if (infd != 0)
1589 dup2(infd, 0);
1590 if (outfd != 1)
1591 dup2(outfd, 1);
1592 if (errfd != 2)
1593 dup2(errfd, 2);
1595 if (log_to_fd > 2)
1596 close(log_to_fd);
1597 if (the_channel->close)
1598 (*the_channel->close)();
1599 else
1600 close(devfd); /* some plugins don't have a close function */
1601 close(fd_ppp);
1602 close(fd_devnull);
1603 if (infd != 0)
1604 close(infd);
1605 if (outfd != 1)
1606 close(outfd);
1607 if (errfd != 2)
1608 close(errfd);
1610 notify(fork_notifier, 0);
1611 close(pipefd[0]);
1612 /* this close unblocks the read() call above in the parent */
1613 close(pipefd[1]);
1615 return 0;
1619 * device_script - run a program to talk to the specified fds
1620 * (e.g. to run the connector or disconnector script).
1621 * stderr gets connected to the log fd or to the _PATH_CONNERRS file.
1624 device_script(program, in, out, dont_wait)
1625 char *program;
1626 int in, out;
1627 int dont_wait;
1629 int pid;
1630 int status = -1;
1631 int errfd;
1633 if (log_to_fd >= 0)
1634 errfd = log_to_fd;
1635 else
1636 errfd = open(_PATH_CONNERRS, O_WRONLY | O_APPEND | O_CREAT, 0600);
1638 ++conn_running;
1639 pid = safe_fork(in, out, errfd);
1641 if (pid != 0 && log_to_fd < 0)
1642 close(errfd);
1644 if (pid < 0) {
1645 --conn_running;
1646 error("Failed to create child process: %m");
1647 return -1;
1650 if (pid != 0) {
1651 record_child(pid, program, NULL, NULL, 1);
1652 status = 0;
1653 if (!dont_wait) {
1654 while (waitpid(pid, &status, 0) < 0) {
1655 if (errno == EINTR)
1656 continue;
1657 fatal("error waiting for (dis)connection process: %m");
1659 forget_child(pid, status);
1660 --conn_running;
1662 return (status == 0 ? 0 : -1);
1665 /* here we are executing in the child */
1667 setgid(getgid());
1668 setuid(uid);
1669 if (getuid() != uid) {
1670 fprintf(stderr, "pppd: setuid failed\n");
1671 exit(1);
1673 execl("/bin/sh", "sh", "-c", program, (char *)0);
1674 perror("pppd: could not exec /bin/sh");
1675 exit(99);
1676 /* NOTREACHED */
1681 * run_program - execute a program with given arguments,
1682 * but don't wait for it unless wait is non-zero.
1683 * If the program can't be executed, logs an error unless
1684 * must_exist is 0 and the program file doesn't exist.
1685 * Returns -1 if it couldn't fork, 0 if the file doesn't exist
1686 * or isn't an executable plain file, or the process ID of the child.
1687 * If done != NULL, (*done)(arg) will be called later (within
1688 * reap_kids) iff the return value is > 0.
1690 pid_t
1691 run_program(prog, args, must_exist, done, arg, wait)
1692 char *prog;
1693 char **args;
1694 int must_exist;
1695 void (*done) __P((void *));
1696 void *arg;
1697 int wait;
1699 int pid, status;
1700 struct stat sbuf;
1703 * First check if the file exists and is executable.
1704 * We don't use access() because that would use the
1705 * real user-id, which might not be root, and the script
1706 * might be accessible only to root.
1708 errno = EINVAL;
1709 if (stat(prog, &sbuf) < 0 || !S_ISREG(sbuf.st_mode)
1710 || (sbuf.st_mode & (S_IXUSR|S_IXGRP|S_IXOTH)) == 0) {
1711 if (must_exist || errno != ENOENT)
1712 warn("Can't execute %s: %m", prog);
1713 return 0;
1716 pid = safe_fork(fd_devnull, fd_devnull, fd_devnull);
1717 if (pid == -1) {
1718 error("Failed to create child process for %s: %m", prog);
1719 return -1;
1721 if (pid != 0) {
1722 if (debug)
1723 dbglog("Script %s started (pid %d)", prog, pid);
1724 record_child(pid, prog, done, arg, 0);
1725 if (wait) {
1726 while (waitpid(pid, &status, 0) < 0) {
1727 if (errno == EINTR)
1728 continue;
1729 fatal("error waiting for script %s: %m", prog);
1731 forget_child(pid, status);
1733 return pid;
1736 /* Leave the current location */
1737 (void) setsid(); /* No controlling tty. */
1738 (void) umask (S_IRWXG|S_IRWXO);
1739 (void) chdir ("/"); /* no current directory. */
1740 setuid(0); /* set real UID = root */
1741 setgid(getegid());
1743 #ifdef BSD
1744 /* Force the priority back to zero if pppd is running higher. */
1745 if (setpriority (PRIO_PROCESS, 0, 0) < 0)
1746 warn("can't reset priority to 0: %m");
1747 #endif
1749 /* run the program */
1750 execve(prog, args, script_env);
1751 if (must_exist || errno != ENOENT) {
1752 /* have to reopen the log, there's nowhere else
1753 for the message to go. */
1754 reopen_log();
1755 syslog(LOG_ERR, "Can't execute %s: %m", prog);
1756 closelog();
1758 _exit(-1);
1763 * record_child - add a child process to the list for reap_kids
1764 * to use.
1766 void
1767 record_child(pid, prog, done, arg, killable)
1768 int pid;
1769 char *prog;
1770 void (*done) __P((void *));
1771 void *arg;
1772 int killable;
1774 struct subprocess *chp;
1776 ++n_children;
1778 chp = (struct subprocess *) malloc(sizeof(struct subprocess));
1779 if (chp == NULL) {
1780 warn("losing track of %s process", prog);
1781 } else {
1782 chp->pid = pid;
1783 chp->prog = prog;
1784 chp->done = done;
1785 chp->arg = arg;
1786 chp->next = children;
1787 chp->killable = killable;
1788 children = chp;
1793 * childwait_end - we got fed up waiting for the child processes to
1794 * exit, send them all a SIGTERM.
1796 static void
1797 childwait_end(arg)
1798 void *arg;
1800 struct subprocess *chp;
1802 for (chp = children; chp != NULL; chp = chp->next) {
1803 if (debug)
1804 dbglog("sending SIGTERM to process %d", chp->pid);
1805 kill(chp->pid, SIGTERM);
1807 childwait_done = 1;
1811 * forget_child - clean up after a dead child
1813 static void
1814 forget_child(pid, status)
1815 int pid, status;
1817 struct subprocess *chp, **prevp;
1819 for (prevp = &children; (chp = *prevp) != NULL; prevp = &chp->next) {
1820 if (chp->pid == pid) {
1821 --n_children;
1822 *prevp = chp->next;
1823 break;
1826 if (WIFSIGNALED(status)) {
1827 warn("Child process %s (pid %d) terminated with signal %d",
1828 (chp? chp->prog: "??"), pid, WTERMSIG(status));
1829 } else if (debug)
1830 dbglog("Script %s finished (pid %d), status = 0x%x",
1831 (chp? chp->prog: "??"), pid,
1832 WIFEXITED(status) ? WEXITSTATUS(status) : status);
1833 if (chp && chp->done)
1834 (*chp->done)(chp->arg);
1835 if (chp)
1836 free(chp);
1840 * reap_kids - get status from any dead child processes,
1841 * and log a message for abnormal terminations.
1843 static int
1844 reap_kids()
1846 int pid, status;
1848 if (n_children == 0)
1849 return 0;
1850 while ((pid = waitpid(-1, &status, WNOHANG)) != -1 && pid != 0) {
1851 forget_child(pid, status);
1853 if (pid == -1) {
1854 if (errno == ECHILD)
1855 return -1;
1856 if (errno != EINTR)
1857 error("Error waiting for child process: %m");
1859 return 0;
1863 * add_notifier - add a new function to be called when something happens.
1865 void
1866 add_notifier(notif, func, arg)
1867 struct notifier **notif;
1868 notify_func func;
1869 void *arg;
1871 struct notifier *np;
1873 np = malloc(sizeof(struct notifier));
1874 if (np == 0)
1875 novm("notifier struct");
1876 np->next = *notif;
1877 np->func = func;
1878 np->arg = arg;
1879 *notif = np;
1883 * remove_notifier - remove a function from the list of things to
1884 * be called when something happens.
1886 void
1887 remove_notifier(notif, func, arg)
1888 struct notifier **notif;
1889 notify_func func;
1890 void *arg;
1892 struct notifier *np;
1894 for (; (np = *notif) != 0; notif = &np->next) {
1895 if (np->func == func && np->arg == arg) {
1896 *notif = np->next;
1897 free(np);
1898 break;
1904 * notify - call a set of functions registered with add_notifier.
1906 void
1907 notify(notif, val)
1908 struct notifier *notif;
1909 int val;
1911 struct notifier *np;
1913 while ((np = notif) != 0) {
1914 notif = np->next;
1915 (*np->func)(np->arg, val);
1920 * novm - log an error message saying we ran out of memory, and die.
1922 void
1923 novm(msg)
1924 char *msg;
1926 fatal("Virtual memory exhausted allocating %s\n", msg);
1930 * script_setenv - set an environment variable value to be used
1931 * for scripts that we run (e.g. ip-up, auth-up, etc.)
1933 void
1934 script_setenv(var, value, iskey)
1935 char *var, *value;
1936 int iskey;
1938 size_t varl = strlen(var);
1939 size_t vl = varl + strlen(value) + 2;
1940 int i;
1941 char *p, *newstring;
1943 newstring = (char *) malloc(vl+1);
1944 if (newstring == 0)
1945 return;
1946 *newstring++ = iskey;
1947 slprintf(newstring, vl, "%s=%s", var, value);
1949 /* check if this variable is already set */
1950 if (script_env != 0) {
1951 for (i = 0; (p = script_env[i]) != 0; ++i) {
1952 if (strncmp(p, var, varl) == 0 && p[varl] == '=') {
1953 #ifdef USE_TDB
1954 if (p[-1] && pppdb != NULL)
1955 delete_db_key(p);
1956 #endif
1957 free(p-1);
1958 script_env[i] = newstring;
1959 #ifdef USE_TDB
1960 if (iskey && pppdb != NULL)
1961 add_db_key(newstring);
1962 update_db_entry();
1963 #endif
1964 return;
1967 } else {
1968 /* no space allocated for script env. ptrs. yet */
1969 i = 0;
1970 script_env = (char **) malloc(16 * sizeof(char *));
1971 if (script_env == 0)
1972 return;
1973 s_env_nalloc = 16;
1976 /* reallocate script_env with more space if needed */
1977 if (i + 1 >= s_env_nalloc) {
1978 int new_n = i + 17;
1979 char **newenv = (char **) realloc((void *)script_env,
1980 new_n * sizeof(char *));
1981 if (newenv == 0)
1982 return;
1983 script_env = newenv;
1984 s_env_nalloc = new_n;
1987 script_env[i] = newstring;
1988 script_env[i+1] = 0;
1990 #ifdef USE_TDB
1991 if (pppdb != NULL) {
1992 if (iskey)
1993 add_db_key(newstring);
1994 update_db_entry();
1996 #endif
2000 * script_unsetenv - remove a variable from the environment
2001 * for scripts.
2003 void
2004 script_unsetenv(var)
2005 char *var;
2007 int vl = strlen(var);
2008 int i;
2009 char *p;
2011 if (script_env == 0)
2012 return;
2013 for (i = 0; (p = script_env[i]) != 0; ++i) {
2014 if (strncmp(p, var, vl) == 0 && p[vl] == '=') {
2015 #ifdef USE_TDB
2016 if (p[-1] && pppdb != NULL)
2017 delete_db_key(p);
2018 #endif
2019 free(p-1);
2020 while ((script_env[i] = script_env[i+1]) != 0)
2021 ++i;
2022 break;
2025 #ifdef USE_TDB
2026 if (pppdb != NULL)
2027 update_db_entry();
2028 #endif
2032 * Any arbitrary string used as a key for locking the database.
2033 * It doesn't matter what it is as long as all pppds use the same string.
2035 #define PPPD_LOCK_KEY "pppd lock"
2038 * lock_db - get an exclusive lock on the TDB database.
2039 * Used to ensure atomicity of various lookup/modify operations.
2041 void lock_db()
2043 #ifdef USE_TDB
2044 TDB_DATA key;
2046 key.dptr = PPPD_LOCK_KEY;
2047 key.dsize = strlen(key.dptr);
2048 tdb_chainlock(pppdb, key);
2049 #endif
2053 * unlock_db - remove the exclusive lock obtained by lock_db.
2055 void unlock_db()
2057 #ifdef USE_TDB
2058 TDB_DATA key;
2060 key.dptr = PPPD_LOCK_KEY;
2061 key.dsize = strlen(key.dptr);
2062 tdb_chainunlock(pppdb, key);
2063 #endif
2066 #ifdef USE_TDB
2068 * update_db_entry - update our entry in the database.
2070 static void
2071 update_db_entry()
2073 TDB_DATA key, dbuf;
2074 int vlen, i;
2075 char *p, *q, *vbuf;
2077 if (script_env == NULL)
2078 return;
2079 vlen = 0;
2080 for (i = 0; (p = script_env[i]) != 0; ++i)
2081 vlen += strlen(p) + 1;
2082 vbuf = malloc(vlen + 1);
2083 if (vbuf == 0)
2084 novm("database entry");
2085 q = vbuf;
2086 for (i = 0; (p = script_env[i]) != 0; ++i)
2087 q += slprintf(q, vbuf + vlen - q, "%s;", p);
2089 key.dptr = db_key;
2090 key.dsize = strlen(db_key);
2091 dbuf.dptr = vbuf;
2092 dbuf.dsize = vlen;
2093 if (tdb_store(pppdb, key, dbuf, TDB_REPLACE))
2094 error("tdb_store failed: %s", tdb_errorstr(pppdb));
2096 if (vbuf)
2097 free(vbuf);
2102 * add_db_key - add a key that we can use to look up our database entry.
2104 static void
2105 add_db_key(str)
2106 const char *str;
2108 TDB_DATA key, dbuf;
2110 key.dptr = (char *) str;
2111 key.dsize = strlen(str);
2112 dbuf.dptr = db_key;
2113 dbuf.dsize = strlen(db_key);
2114 if (tdb_store(pppdb, key, dbuf, TDB_REPLACE))
2115 error("tdb_store key failed: %s", tdb_errorstr(pppdb));
2119 * delete_db_key - delete a key for looking up our database entry.
2121 static void
2122 delete_db_key(str)
2123 const char *str;
2125 TDB_DATA key;
2127 key.dptr = (char *) str;
2128 key.dsize = strlen(str);
2129 tdb_delete(pppdb, key);
2133 * cleanup_db - delete all the entries we put in the database.
2135 static void
2136 cleanup_db()
2138 TDB_DATA key;
2139 int i;
2140 char *p;
2142 key.dptr = db_key;
2143 key.dsize = strlen(db_key);
2144 tdb_delete(pppdb, key);
2145 for (i = 0; (p = script_env[i]) != 0; ++i)
2146 if (p[-1])
2147 delete_db_key(p);
2149 #endif /* USE_TDB */