Unix socket creds definitions for BSD-ish platforms
[exim.git] / src / src / daemon.c
1 /*************************************************
2 * Exim - an Internet mail transport agent *
3 *************************************************/
4
5 /* Copyright (c) University of Cambridge 1995 - 2018 */
6 /* See the file NOTICE for conditions of use and distribution. */
7
8 /* Functions concerned with running Exim as a daemon */
9
10
11 #include "exim.h"
12
13
14 /* Structure for holding data for each SMTP connection */
15
16 typedef struct smtp_slot {
17 pid_t pid; /* pid of the spawned reception process */
18 uschar *host_address; /* address of the client host */
19 } smtp_slot;
20
21 /* An empty slot for initializing (Standard C does not allow constructor
22 expressions in assignments except as initializers in declarations). */
23
24 static smtp_slot empty_smtp_slot = { .pid = 0, .host_address = NULL };
25
26
27
28 /*************************************************
29 * Local static variables *
30 *************************************************/
31
32 static SIGNAL_BOOL sigchld_seen;
33 static SIGNAL_BOOL sighup_seen;
34 static SIGNAL_BOOL sigterm_seen;
35
36 static int accept_retry_count = 0;
37 static int accept_retry_errno;
38 static BOOL accept_retry_select_failed;
39
40 static int queue_run_count = 0;
41 static pid_t *queue_pid_slots = NULL;
42 static smtp_slot *smtp_slots = NULL;
43
44 static BOOL write_pid = TRUE;
45
46
47
48 /*************************************************
49 * SIGHUP Handler *
50 *************************************************/
51
52 /* All this handler does is to set a flag and re-enable the signal.
53
54 Argument: the signal number
55 Returns: nothing
56 */
57
58 static void
59 sighup_handler(int sig)
60 {
61 sig = sig; /* Keep picky compilers happy */
62 sighup_seen = TRUE;
63 signal(SIGHUP, sighup_handler);
64 }
65
66
67
68 /*************************************************
69 * SIGCHLD handler for main daemon process *
70 *************************************************/
71
72 /* Don't re-enable the handler here, since we aren't doing the
73 waiting here. If the signal is re-enabled, there will just be an
74 infinite sequence of calls to this handler. The SIGCHLD signal is
75 used just as a means of waking up the daemon so that it notices
76 terminated subprocesses as soon as possible.
77
78 Argument: the signal number
79 Returns: nothing
80 */
81
82 static void
83 main_sigchld_handler(int sig)
84 {
85 sig = sig; /* Keep picky compilers happy */
86 os_non_restarting_signal(SIGCHLD, SIG_DFL);
87 sigchld_seen = TRUE;
88 }
89
90
91 /* SIGTERM handler. Try to get the damon pif file removed
92 before exiting. */
93
94 static void
95 main_sigterm_handler(int sig)
96 {
97 sigterm_seen = TRUE;
98 }
99
100
101
102
103 /*************************************************
104 * Unexpected errors in SMTP calls *
105 *************************************************/
106
107 /* This function just saves a bit of repetitious coding.
108
109 Arguments:
110 log_msg Text of message to be logged
111 smtp_msg Text of SMTP error message
112 was_errno The failing errno
113
114 Returns: nothing
115 */
116
117 static void
118 never_error(uschar *log_msg, uschar *smtp_msg, int was_errno)
119 {
120 uschar *emsg = was_errno <= 0
121 ? US"" : string_sprintf(": %s", strerror(was_errno));
122 log_write(0, LOG_MAIN|LOG_PANIC, "%s%s", log_msg, emsg);
123 if (smtp_out) smtp_printf("421 %s\r\n", FALSE, smtp_msg);
124 }
125
126
127
128
129 /*************************************************
130 * Handle a connected SMTP call *
131 *************************************************/
132
133 /* This function is called when an SMTP connection has been accepted.
134 If there are too many, give an error message and close down. Otherwise
135 spin off a sub-process to handle the call. The list of listening sockets
136 is required so that they can be closed in the sub-process. Take care not to
137 leak store in this process - reset the stacking pool at the end.
138
139 Arguments:
140 listen_sockets sockets which are listening for incoming calls
141 listen_socket_count count of listening sockets
142 accept_socket socket of the current accepted call
143 accepted socket information about the current call
144
145 Returns: nothing
146 */
147
148 static void
149 handle_smtp_call(int *listen_sockets, int listen_socket_count,
150 int accept_socket, struct sockaddr *accepted)
151 {
152 pid_t pid;
153 union sockaddr_46 interface_sockaddr;
154 EXIM_SOCKLEN_T ifsize = sizeof(interface_sockaddr);
155 int dup_accept_socket = -1;
156 int max_for_this_host = 0;
157 int save_log_selector = *log_selector;
158 gstring * whofrom;
159
160 rmark reset_point = store_mark();
161
162 /* Make the address available in ASCII representation, and also fish out
163 the remote port. */
164
165 sender_host_address = host_ntoa(-1, accepted, NULL, &sender_host_port);
166 DEBUG(D_any) debug_printf("Connection request from %s port %d\n",
167 sender_host_address, sender_host_port);
168
169 /* Set up the output stream, check the socket has duplicated, and set up the
170 input stream. These operations fail only the exceptional circumstances. Note
171 that never_error() won't use smtp_out if it is NULL. */
172
173 if (!(smtp_out = fdopen(accept_socket, "wb")))
174 {
175 never_error(US"daemon: fdopen() for smtp_out failed", US"", errno);
176 goto ERROR_RETURN;
177 }
178
179 if ((dup_accept_socket = dup(accept_socket)) < 0)
180 {
181 never_error(US"daemon: couldn't dup socket descriptor",
182 US"Connection setup failed", errno);
183 goto ERROR_RETURN;
184 }
185
186 if (!(smtp_in = fdopen(dup_accept_socket, "rb")))
187 {
188 never_error(US"daemon: fdopen() for smtp_in failed",
189 US"Connection setup failed", errno);
190 goto ERROR_RETURN;
191 }
192
193 /* Get the data for the local interface address. Panic for most errors, but
194 "connection reset by peer" just means the connection went away. */
195
196 if (getsockname(accept_socket, (struct sockaddr *)(&interface_sockaddr),
197 &ifsize) < 0)
198 {
199 log_write(0, LOG_MAIN | ((errno == ECONNRESET)? 0 : LOG_PANIC),
200 "getsockname() failed: %s", strerror(errno));
201 smtp_printf("421 Local problem: getsockname() failed; please try again later\r\n", FALSE);
202 goto ERROR_RETURN;
203 }
204
205 interface_address = host_ntoa(-1, &interface_sockaddr, NULL, &interface_port);
206 DEBUG(D_interface) debug_printf("interface address=%s port=%d\n",
207 interface_address, interface_port);
208
209 /* Build a string identifying the remote host and, if requested, the port and
210 the local interface data. This is for logging; at the end of this function the
211 memory is reclaimed. */
212
213 whofrom = string_append(NULL, 3, "[", sender_host_address, "]");
214
215 if (LOGGING(incoming_port))
216 whofrom = string_fmt_append(whofrom, ":%d", sender_host_port);
217
218 if (LOGGING(incoming_interface))
219 whofrom = string_fmt_append(whofrom, " I=[%s]:%d",
220 interface_address, interface_port);
221
222 (void) string_from_gstring(whofrom); /* Terminate the newly-built string */
223
224 /* Check maximum number of connections. We do not check for reserved
225 connections or unacceptable hosts here. That is done in the subprocess because
226 it might take some time. */
227
228 if (smtp_accept_max > 0 && smtp_accept_count >= smtp_accept_max)
229 {
230 DEBUG(D_any) debug_printf("rejecting SMTP connection: count=%d max=%d\n",
231 smtp_accept_count, smtp_accept_max);
232 smtp_printf("421 Too many concurrent SMTP connections; "
233 "please try again later.\r\n", FALSE);
234 log_write(L_connection_reject,
235 LOG_MAIN, "Connection from %s refused: too many connections",
236 whofrom->s);
237 goto ERROR_RETURN;
238 }
239
240 /* If a load limit above which only reserved hosts are acceptable is defined,
241 get the load average here, and if there are in fact no reserved hosts, do
242 the test right away (saves a fork). If there are hosts, do the check in the
243 subprocess because it might take time. */
244
245 if (smtp_load_reserve >= 0)
246 {
247 load_average = OS_GETLOADAVG();
248 if (smtp_reserve_hosts == NULL && load_average > smtp_load_reserve)
249 {
250 DEBUG(D_any) debug_printf("rejecting SMTP connection: load average = %.2f\n",
251 (double)load_average/1000.0);
252 smtp_printf("421 Too much load; please try again later.\r\n", FALSE);
253 log_write(L_connection_reject,
254 LOG_MAIN, "Connection from %s refused: load average = %.2f",
255 whofrom->s, (double)load_average/1000.0);
256 goto ERROR_RETURN;
257 }
258 }
259
260 /* Check that one specific host (strictly, IP address) is not hogging
261 resources. This is done here to prevent a denial of service attack by someone
262 forcing you to fork lots of times before denying service. The value of
263 smtp_accept_max_per_host is a string which is expanded. This makes it possible
264 to provide host-specific limits according to $sender_host address, but because
265 this is in the daemon mainline, only fast expansions (such as inline address
266 checks) should be used. The documentation is full of warnings. */
267
268 if (smtp_accept_max_per_host != NULL)
269 {
270 uschar *expanded = expand_string(smtp_accept_max_per_host);
271 if (expanded == NULL)
272 {
273 if (!f.expand_string_forcedfail)
274 log_write(0, LOG_MAIN|LOG_PANIC, "expansion of smtp_accept_max_per_host "
275 "failed for %s: %s", whofrom->s, expand_string_message);
276 }
277 /* For speed, interpret a decimal number inline here */
278 else
279 {
280 uschar *s = expanded;
281 while (isdigit(*s))
282 max_for_this_host = max_for_this_host * 10 + *s++ - '0';
283 if (*s != 0)
284 log_write(0, LOG_MAIN|LOG_PANIC, "expansion of smtp_accept_max_per_host "
285 "for %s contains non-digit: %s", whofrom->s, expanded);
286 }
287 }
288
289 /* If we have fewer connections than max_for_this_host, we can skip the tedious
290 per host_address checks. Note that at this stage smtp_accept_count contains the
291 count of *other* connections, not including this one. */
292
293 if ((max_for_this_host > 0) &&
294 (smtp_accept_count >= max_for_this_host))
295 {
296 int host_accept_count = 0;
297 int other_host_count = 0; /* keep a count of non matches to optimise */
298
299 for (int i = 0; i < smtp_accept_max; ++i)
300 if (smtp_slots[i].host_address)
301 {
302 if (Ustrcmp(sender_host_address, smtp_slots[i].host_address) == 0)
303 host_accept_count++;
304 else
305 other_host_count++;
306
307 /* Testing all these strings is expensive - see if we can drop out
308 early, either by hitting the target, or finding there are not enough
309 connections left to make the target. */
310
311 if ((host_accept_count >= max_for_this_host) ||
312 ((smtp_accept_count - other_host_count) < max_for_this_host))
313 break;
314 }
315
316 if (host_accept_count >= max_for_this_host)
317 {
318 DEBUG(D_any) debug_printf("rejecting SMTP connection: too many from this "
319 "IP address: count=%d max=%d\n",
320 host_accept_count, max_for_this_host);
321 smtp_printf("421 Too many concurrent SMTP connections "
322 "from this IP address; please try again later.\r\n", FALSE);
323 log_write(L_connection_reject,
324 LOG_MAIN, "Connection from %s refused: too many connections "
325 "from that IP address", whofrom->s);
326 goto ERROR_RETURN;
327 }
328 }
329
330 /* OK, the connection count checks have been passed. Before we can fork the
331 accepting process, we must first log the connection if requested. This logging
332 used to happen in the subprocess, but doing that means that the value of
333 smtp_accept_count can be out of step by the time it is logged. So we have to do
334 the logging here and accept the performance cost. Note that smtp_accept_count
335 hasn't yet been incremented to take account of this connection.
336
337 In order to minimize the cost (because this is going to happen for every
338 connection), do a preliminary selector test here. This saves ploughing through
339 the generalized logging code each time when the selector is false. If the
340 selector is set, check whether the host is on the list for logging. If not,
341 arrange to unset the selector in the subprocess. */
342
343 if (LOGGING(smtp_connection))
344 {
345 uschar *list = hosts_connection_nolog;
346 memset(sender_host_cache, 0, sizeof(sender_host_cache));
347 if (list != NULL && verify_check_host(&list) == OK)
348 save_log_selector &= ~L_smtp_connection;
349 else
350 log_write(L_smtp_connection, LOG_MAIN, "SMTP connection from %s "
351 "(TCP/IP connection count = %d)", whofrom->s, smtp_accept_count + 1);
352 }
353
354 /* Now we can fork the accepting process; do a lookup tidy, just in case any
355 expansion above did a lookup. */
356
357 search_tidyup();
358 pid = fork();
359
360 /* Handle the child process */
361
362 if (pid == 0)
363 {
364 int i;
365 int queue_only_reason = 0;
366 int old_pool = store_pool;
367 int save_debug_selector = debug_selector;
368 BOOL local_queue_only;
369 BOOL session_local_queue_only;
370 #ifdef SA_NOCLDWAIT
371 struct sigaction act;
372 #endif
373
374 smtp_accept_count++; /* So that it includes this process */
375
376 /* May have been modified for the subprocess */
377
378 *log_selector = save_log_selector;
379
380 /* Get the local interface address into permanent store */
381
382 store_pool = POOL_PERM;
383 interface_address = string_copy(interface_address);
384 store_pool = old_pool;
385
386 /* Check for a tls-on-connect port */
387
388 if (host_is_tls_on_connect_port(interface_port)) tls_in.on_connect = TRUE;
389
390 /* Expand smtp_active_hostname if required. We do not do this any earlier,
391 because it may depend on the local interface address (indeed, that is most
392 likely what it depends on.) */
393
394 smtp_active_hostname = primary_hostname;
395 if (raw_active_hostname)
396 {
397 uschar * nah = expand_string(raw_active_hostname);
398 if (!nah)
399 {
400 if (!f.expand_string_forcedfail)
401 {
402 log_write(0, LOG_MAIN|LOG_PANIC, "failed to expand \"%s\" "
403 "(smtp_active_hostname): %s", raw_active_hostname,
404 expand_string_message);
405 smtp_printf("421 Local configuration error; "
406 "please try again later.\r\n", FALSE);
407 mac_smtp_fflush();
408 search_tidyup();
409 exim_underbar_exit(EXIT_FAILURE);
410 }
411 }
412 else if (*nah) smtp_active_hostname = nah;
413 }
414
415 /* Initialize the queueing flags */
416
417 queue_check_only();
418 session_local_queue_only = queue_only;
419
420 /* Close the listening sockets, and set the SIGCHLD handler to SIG_IGN.
421 We also attempt to set things up so that children are automatically reaped,
422 but just in case this isn't available, there's a paranoid waitpid() in the
423 loop too (except for systems where we are sure it isn't needed). See the more
424 extensive comment before the reception loop in exim.c for a fuller
425 explanation of this logic. */
426
427 for (i = 0; i < listen_socket_count; i++) (void)close(listen_sockets[i]);
428
429 /* Set FD_CLOEXEC on the SMTP socket. We don't want any rogue child processes
430 to be able to communicate with them, under any circumstances. */
431 (void)fcntl(accept_socket, F_SETFD,
432 fcntl(accept_socket, F_GETFD) | FD_CLOEXEC);
433 (void)fcntl(dup_accept_socket, F_SETFD,
434 fcntl(dup_accept_socket, F_GETFD) | FD_CLOEXEC);
435
436 #ifdef SA_NOCLDWAIT
437 act.sa_handler = SIG_IGN;
438 sigemptyset(&(act.sa_mask));
439 act.sa_flags = SA_NOCLDWAIT;
440 sigaction(SIGCHLD, &act, NULL);
441 #else
442 signal(SIGCHLD, SIG_IGN);
443 #endif
444 signal(SIGTERM, SIG_DFL);
445
446 /* Attempt to get an id from the sending machine via the RFC 1413
447 protocol. We do this in the sub-process in order not to hold up the
448 main process if there is any delay. Then set up the fullhost information
449 in case there is no HELO/EHLO.
450
451 If debugging is enabled only for the daemon, we must turn if off while
452 finding the id, but turn it on again afterwards so that information about the
453 incoming connection is output. */
454
455 if (f.debug_daemon) debug_selector = 0;
456 verify_get_ident(IDENT_PORT);
457 host_build_sender_fullhost();
458 debug_selector = save_debug_selector;
459
460 DEBUG(D_any)
461 debug_printf("Process %d is handling incoming connection from %s\n",
462 (int)getpid(), sender_fullhost);
463
464 /* Now disable debugging permanently if it's required only for the daemon
465 process. */
466
467 if (f.debug_daemon) debug_selector = 0;
468
469 /* If there are too many child processes for immediate delivery,
470 set the session_local_queue_only flag, which is initialized from the
471 configured value and may therefore already be TRUE. Leave logging
472 till later so it will have a message id attached. Note that there is no
473 possibility of re-calculating this per-message, because the value of
474 smtp_accept_count does not change in this subprocess. */
475
476 if (smtp_accept_queue > 0 && smtp_accept_count > smtp_accept_queue)
477 {
478 session_local_queue_only = TRUE;
479 queue_only_reason = 1;
480 }
481
482 /* Handle the start of the SMTP session, then loop, accepting incoming
483 messages from the SMTP connection. The end will come at the QUIT command,
484 when smtp_setup_msg() returns 0. A break in the connection causes the
485 process to die (see accept.c).
486
487 NOTE: We do *not* call smtp_log_no_mail() if smtp_start_session() fails,
488 because a log line has already been written for all its failure exists
489 (usually "connection refused: <reason>") and writing another one is
490 unnecessary clutter. */
491
492 if (!smtp_start_session())
493 {
494 mac_smtp_fflush();
495 search_tidyup();
496 exim_underbar_exit(EXIT_SUCCESS);
497 }
498
499 for (;;)
500 {
501 int rc;
502 message_id[0] = 0; /* Clear out any previous message_id */
503 reset_point = store_mark(); /* Save current store high water point */
504
505 DEBUG(D_any)
506 debug_printf("Process %d is ready for new message\n", (int)getpid());
507
508 /* Smtp_setup_msg() returns 0 on QUIT or if the call is from an
509 unacceptable host or if an ACL "drop" command was triggered, -1 on
510 connection lost, and +1 on validly reaching DATA. Receive_msg() almost
511 always returns TRUE when smtp_input is true; just retry if no message was
512 accepted (can happen for invalid message parameters). However, it can yield
513 FALSE if the connection was forcibly dropped by the DATA ACL. */
514
515 if ((rc = smtp_setup_msg()) > 0)
516 {
517 BOOL ok = receive_msg(FALSE);
518 search_tidyup(); /* Close cached databases */
519 if (!ok) /* Connection was dropped */
520 {
521 cancel_cutthrough_connection(TRUE, US"receive dropped");
522 mac_smtp_fflush();
523 smtp_log_no_mail(); /* Log no mail if configured */
524 exim_underbar_exit(EXIT_SUCCESS);
525 }
526 if (message_id[0] == 0) continue; /* No message was accepted */
527 }
528 else
529 {
530 if (smtp_out)
531 {
532 int fd = fileno(smtp_in);
533 uschar buf[128];
534
535 mac_smtp_fflush();
536 /* drain socket, for clean TCP FINs */
537 if (fcntl(fd, F_SETFL, O_NONBLOCK) == 0)
538 for(int i = 16; read(fd, buf, sizeof(buf)) > 0 && i > 0; ) i--;
539 }
540 cancel_cutthrough_connection(TRUE, US"message setup dropped");
541 search_tidyup();
542 smtp_log_no_mail(); /* Log no mail if configured */
543
544 /*XXX should we pause briefly, hoping that the client will be the
545 active TCP closer hence get the TCP_WAIT endpoint? */
546 DEBUG(D_receive) debug_printf("SMTP>>(close on process exit)\n");
547 exim_underbar_exit(rc ? EXIT_FAILURE : EXIT_SUCCESS);
548 }
549
550 /* Show the recipients when debugging */
551
552 DEBUG(D_receive)
553 {
554 if (sender_address)
555 debug_printf("Sender: %s\n", sender_address);
556 if (recipients_list)
557 {
558 debug_printf("Recipients:\n");
559 for (int i = 0; i < recipients_count; i++)
560 debug_printf(" %s\n", recipients_list[i].address);
561 }
562 }
563
564 /* A message has been accepted. Clean up any previous delivery processes
565 that have completed and are defunct, on systems where they don't go away
566 by themselves (see comments when setting SIG_IGN above). On such systems
567 (if any) these delivery processes hang around after termination until
568 the next message is received. */
569
570 #ifndef SIG_IGN_WORKS
571 while (waitpid(-1, NULL, WNOHANG) > 0);
572 #endif
573
574 /* Reclaim up the store used in accepting this message */
575
576 {
577 int r = receive_messagecount;
578 BOOL q = f.queue_only_policy;
579 smtp_reset(reset_point);
580 reset_point = NULL;
581 f.queue_only_policy = q;
582 receive_messagecount = r;
583 }
584
585 /* If queue_only is set or if there are too many incoming connections in
586 existence, session_local_queue_only will be TRUE. If it is not, check
587 whether we have received too many messages in this session for immediate
588 delivery. */
589
590 if (!session_local_queue_only &&
591 smtp_accept_queue_per_connection > 0 &&
592 receive_messagecount > smtp_accept_queue_per_connection)
593 {
594 session_local_queue_only = TRUE;
595 queue_only_reason = 2;
596 }
597
598 /* Initialize local_queue_only from session_local_queue_only. If it is not
599 true, and queue_only_load is set, check that the load average is below it.
600 If local_queue_only is set by this means, we also set if for the session if
601 queue_only_load_latch is true (the default). This means that, once set,
602 local_queue_only remains set for any subsequent messages on the same SMTP
603 connection. This is a deliberate choice; even though the load average may
604 fall, it doesn't seem right to deliver later messages on the same call when
605 not delivering earlier ones. However, the are special circumstances such as
606 very long-lived connections from scanning appliances where this is not the
607 best strategy. In such cases, queue_only_load_latch should be set false. */
608
609 if ( !(local_queue_only = session_local_queue_only)
610 && queue_only_load >= 0
611 && (local_queue_only = (load_average = OS_GETLOADAVG()) > queue_only_load)
612 )
613 {
614 queue_only_reason = 3;
615 if (queue_only_load_latch) session_local_queue_only = TRUE;
616 }
617
618 /* Log the queueing here, when it will get a message id attached, but
619 not if queue_only is set (case 0). */
620
621 if (local_queue_only) switch(queue_only_reason)
622 {
623 case 1: log_write(L_delay_delivery,
624 LOG_MAIN, "no immediate delivery: too many connections "
625 "(%d, max %d)", smtp_accept_count, smtp_accept_queue);
626 break;
627
628 case 2: log_write(L_delay_delivery,
629 LOG_MAIN, "no immediate delivery: more than %d messages "
630 "received in one connection", smtp_accept_queue_per_connection);
631 break;
632
633 case 3: log_write(L_delay_delivery,
634 LOG_MAIN, "no immediate delivery: load average %.2f",
635 (double)load_average/1000.0);
636 break;
637 }
638
639 /* If a delivery attempt is required, spin off a new process to handle it.
640 If we are not root, we have to re-exec exim unless deliveries are being
641 done unprivileged. */
642
643 else if ( (!f.queue_only_policy || f.queue_smtp)
644 && !f.deliver_freeze)
645 {
646 pid_t dpid;
647
648 /* Before forking, ensure that the C output buffer is flushed. Otherwise
649 anything that it in it will get duplicated, leading to duplicate copies
650 of the pending output. */
651
652 mac_smtp_fflush();
653
654 if ((dpid = fork()) == 0)
655 {
656 (void)fclose(smtp_in);
657 (void)fclose(smtp_out);
658
659 /* Don't ever molest the parent's SSL connection, but do clean up
660 the data structures if necessary. */
661
662 #ifndef DISABLE_TLS
663 tls_close(NULL, TLS_NO_SHUTDOWN);
664 #endif
665
666 /* Reset SIGHUP and SIGCHLD in the child in both cases. */
667
668 signal(SIGHUP, SIG_DFL);
669 signal(SIGCHLD, SIG_DFL);
670 signal(SIGTERM, SIG_DFL);
671
672 if (geteuid() != root_uid && !deliver_drop_privilege)
673 {
674 signal(SIGALRM, SIG_DFL);
675 delivery_re_exec(CEE_EXEC_PANIC);
676 /* Control does not return here. */
677 }
678
679 /* No need to re-exec; SIGALRM remains set to the default handler */
680
681 (void) deliver_message(message_id, FALSE, FALSE);
682 search_tidyup();
683 exim_underbar_exit(EXIT_SUCCESS);
684 }
685
686 if (dpid > 0)
687 {
688 release_cutthrough_connection(US"passed for delivery");
689 DEBUG(D_any) debug_printf("forked delivery process %d\n", (int)dpid);
690 }
691 else
692 {
693 cancel_cutthrough_connection(TRUE, US"delivery fork failed");
694 log_write(0, LOG_MAIN|LOG_PANIC, "daemon: delivery process fork "
695 "failed: %s", strerror(errno));
696 }
697 }
698 }
699 }
700
701
702 /* Carrying on in the parent daemon process... Can't do much if the fork
703 failed. Otherwise, keep count of the number of accepting processes and
704 remember the pid for ticking off when the child completes. */
705
706 if (pid < 0)
707 never_error(US"daemon: accept process fork failed", US"Fork failed", errno);
708 else
709 {
710 for (int i = 0; i < smtp_accept_max; ++i)
711 if (smtp_slots[i].pid <= 0)
712 {
713 smtp_slots[i].pid = pid;
714 /* Connection closes come asyncronously, so we cannot stack this store */
715 if (smtp_accept_max_per_host)
716 smtp_slots[i].host_address = string_copy_malloc(sender_host_address);
717 smtp_accept_count++;
718 break;
719 }
720 DEBUG(D_any) debug_printf("%d SMTP accept process%s running\n",
721 smtp_accept_count, smtp_accept_count == 1 ? "" : "es");
722 }
723
724 /* Get here via goto in error cases */
725
726 ERROR_RETURN:
727
728 /* Close the streams associated with the socket which will also close the
729 socket fds in this process. We can't do anything if fclose() fails, but
730 logging brings it to someone's attention. However, "connection reset by peer"
731 isn't really a problem, so skip that one. On Solaris, a dropped connection can
732 manifest itself as a broken pipe, so drop that one too. If the streams don't
733 exist, something went wrong while setting things up. Make sure the socket
734 descriptors are closed, in order to drop the connection. */
735
736 if (smtp_out)
737 {
738 if (fclose(smtp_out) != 0 && errno != ECONNRESET && errno != EPIPE)
739 log_write(0, LOG_MAIN|LOG_PANIC, "daemon: fclose(smtp_out) failed: %s",
740 strerror(errno));
741 smtp_out = NULL;
742 }
743 else (void)close(accept_socket);
744
745 if (smtp_in)
746 {
747 if (fclose(smtp_in) != 0 && errno != ECONNRESET && errno != EPIPE)
748 log_write(0, LOG_MAIN|LOG_PANIC, "daemon: fclose(smtp_in) failed: %s",
749 strerror(errno));
750 smtp_in = NULL;
751 }
752 else (void)close(dup_accept_socket);
753
754 /* Release any store used in this process, including the store used for holding
755 the incoming host address and an expanded active_hostname. */
756
757 log_close_all();
758 interface_address =
759 sender_host_address = NULL;
760 store_reset(reset_point);
761 sender_host_address = NULL;
762 }
763
764
765
766
767 /*************************************************
768 * Check wildcard listen special cases *
769 *************************************************/
770
771 /* This function is used when binding and listening on lists of addresses and
772 ports. It tests for special cases of wildcard listening, when IPv4 and IPv6
773 sockets may interact in different ways in different operating systems. It is
774 passed an error number, the list of listening addresses, and the current
775 address. Two checks are available: for a previous wildcard IPv6 address, or for
776 a following wildcard IPv4 address, in both cases on the same port.
777
778 In practice, pairs of wildcard addresses should be adjacent in the address list
779 because they are sorted that way below.
780
781 Arguments:
782 eno the error number
783 addresses the list of addresses
784 ipa the current IP address
785 back if TRUE, check for previous wildcard IPv6 address
786 if FALSE, check for a following wildcard IPv4 address
787
788 Returns: TRUE or FALSE
789 */
790
791 static BOOL
792 check_special_case(int eno, ip_address_item *addresses, ip_address_item *ipa,
793 BOOL back)
794 {
795 ip_address_item *ipa2;
796
797 /* For the "back" case, if the failure was "address in use" for a wildcard IPv4
798 address, seek a previous IPv6 wildcard address on the same port. As it is
799 previous, it must have been successfully bound and be listening. Flag it as a
800 "6 including 4" listener. */
801
802 if (back)
803 {
804 if (eno != EADDRINUSE || ipa->address[0] != 0) return FALSE;
805 for (ipa2 = addresses; ipa2 != ipa; ipa2 = ipa2->next)
806 {
807 if (ipa2->address[1] == 0 && ipa2->port == ipa->port)
808 {
809 ipa2->v6_include_v4 = TRUE;
810 return TRUE;
811 }
812 }
813 }
814
815 /* For the "forward" case, if the current address is a wildcard IPv6 address,
816 we seek a following wildcard IPv4 address on the same port. */
817
818 else
819 {
820 if (ipa->address[0] != ':' || ipa->address[1] != 0) return FALSE;
821 for (ipa2 = ipa->next; ipa2 != NULL; ipa2 = ipa2->next)
822 if (ipa2->address[0] == 0 && ipa->port == ipa2->port) return TRUE;
823 }
824
825 return FALSE;
826 }
827
828
829
830
831 /*************************************************
832 * Handle terminating subprocesses *
833 *************************************************/
834
835 /* Handle the termination of child processes. Theoretically, this need be done
836 only when sigchld_seen is TRUE, but rumour has it that some systems lose
837 SIGCHLD signals at busy times, so to be on the safe side, this function is
838 called each time round. It shouldn't be too expensive.
839
840 Arguments: none
841 Returns: nothing
842 */
843
844 static void
845 handle_ending_processes(void)
846 {
847 int status;
848 pid_t pid;
849
850 while ((pid = waitpid(-1, &status, WNOHANG)) > 0)
851 {
852 DEBUG(D_any)
853 {
854 debug_printf("child %d ended: status=0x%x\n", (int)pid, status);
855 #ifdef WCOREDUMP
856 if (WIFEXITED(status))
857 debug_printf(" normal exit, %d\n", WEXITSTATUS(status));
858 else if (WIFSIGNALED(status))
859 debug_printf(" signal exit, signal %d%s\n", WTERMSIG(status),
860 WCOREDUMP(status) ? " (core dumped)" : "");
861 #endif
862 }
863
864 /* If it's a listening daemon for which we are keeping track of individual
865 subprocesses, deal with an accepting process that has terminated. */
866
867 if (smtp_slots)
868 {
869 int i;
870 for (i = 0; i < smtp_accept_max; i++)
871 if (smtp_slots[i].pid == pid)
872 {
873 if (smtp_slots[i].host_address)
874 store_free(smtp_slots[i].host_address);
875 smtp_slots[i] = empty_smtp_slot;
876 if (--smtp_accept_count < 0) smtp_accept_count = 0;
877 DEBUG(D_any) debug_printf("%d SMTP accept process%s now running\n",
878 smtp_accept_count, (smtp_accept_count == 1)? "" : "es");
879 break;
880 }
881 if (i < smtp_accept_max) continue; /* Found an accepting process */
882 }
883
884 /* If it wasn't an accepting process, see if it was a queue-runner
885 process that we are tracking. */
886
887 if (queue_pid_slots)
888 {
889 int max = atoi(CS expand_string(queue_run_max));
890 for (int i = 0; i < max; i++)
891 if (queue_pid_slots[i] == pid)
892 {
893 queue_pid_slots[i] = 0;
894 if (--queue_run_count < 0) queue_run_count = 0;
895 DEBUG(D_any) debug_printf("%d queue-runner process%s now running\n",
896 queue_run_count, (queue_run_count == 1)? "" : "es");
897 break;
898 }
899 }
900 }
901 }
902
903
904
905 static void
906 set_pid_file_path(void)
907 {
908 if (override_pid_file_path)
909 pid_file_path = override_pid_file_path;
910
911 if (!*pid_file_path)
912 pid_file_path = string_sprintf("%s/exim-daemon.pid", spool_directory);
913 }
914
915
916 /* Remove the daemon's pidfile. Note: runs with root privilege,
917 as a direct child of the daemon. Does not return. */
918
919 void
920 delete_pid_file(void)
921 {
922 uschar * daemon_pid = string_sprintf("%d\n", (int)getppid());
923 FILE * f;
924
925 set_pid_file_path();
926 if ((f = Ufopen(pid_file_path, "rb")))
927 {
928 if ( fgets(CS big_buffer, big_buffer_size, f)
929 && Ustrcmp(daemon_pid, big_buffer) == 0
930 )
931 if (Uunlink(pid_file_path) == 0)
932 {
933 DEBUG(D_any)
934 debug_printf("%s unlink: %s\n", pid_file_path, strerror(errno));
935 }
936 else
937 DEBUG(D_any)
938 debug_printf("unlinked %s\n", pid_file_path);
939 fclose(f);
940 }
941 else
942 DEBUG(D_any)
943 debug_printf("%s\n", string_open_failed(errno, "pid file %s",
944 pid_file_path));
945 exim_exit(EXIT_SUCCESS, US"pid file remover");
946 }
947
948
949 /* Called by the daemon; exec a child to get the pid file deleted
950 since we may require privs for the containing directory */
951
952 static void
953 daemon_die(void)
954 {
955 int pid;
956
957 if (f.running_in_test_harness || write_pid)
958 {
959 if ((pid = fork()) == 0)
960 {
961 if (override_pid_file_path)
962 (void)child_exec_exim(CEE_EXEC_PANIC, FALSE, NULL, FALSE, 3,
963 "-oP", override_pid_file_path, "-oPX");
964 else
965 (void)child_exec_exim(CEE_EXEC_PANIC, FALSE, NULL, FALSE, 1, "-oPX");
966
967 /* Control never returns here. */
968 }
969 if (pid > 0)
970 child_close(pid, 1);
971 }
972 exim_exit(EXIT_SUCCESS, US"daemon");
973 }
974
975
976 /*************************************************
977 * Listener socket for local work prompts *
978 *************************************************/
979
980 static void
981 daemon_notifier_socket(void)
982 {
983 int fd;
984 const uschar * where;
985 struct sockaddr_un sun = {.sun_family = AF_UNIX};
986 int len;
987
988 DEBUG(D_any) debug_printf("creating notifier socket\n");
989
990 where = US"socket";
991 #ifdef SOCK_CLOEXEC
992 if ((fd = socket(AF_UNIX, SOCK_DGRAM|SOCK_CLOEXEC, 0)) < 0)
993 goto bad;
994 #else
995 if ((fd = socket(AF_UNIX, SOCK_DGRAM, 0)) < 0)
996 goto bad;
997 (void)fcntl(fd, F_SETFD, fcntl(fd, F_GETFD) | FD_CLOEXEC);
998 #endif
999
1000 sun.sun_path[0] = 0; /* Abstract local socket addr - Linux-specific? */
1001 len = offsetof(struct sockaddr_un, sun_path) + 1
1002 + snprintf(sun.sun_path+1, sizeof(sun.sun_path)-1, "%s", NOTIFIER_SOCKET_NAME);
1003
1004 where = US"bind";
1005 if (bind(fd, (const struct sockaddr *)&sun, len) < 0)
1006 goto bad;
1007
1008 where = US"SO_PASSCRED";
1009 if (setsockopt(fd, SOL_SOCKET, SO_PASSCRED, &on, sizeof(on)) < 0)
1010 goto bad;
1011
1012 /* debug_printf("%s: fd %d\n", __FUNCTION__, fd); */
1013 daemon_notifier_fd = fd;
1014 return;
1015
1016 bad:
1017 log_write(0, LOG_MAIN|LOG_PANIC, "%s: %s: %s",
1018 __FUNCTION__, where, strerror(errno));
1019 }
1020
1021
1022 static uschar queuerun_msgid[MESSAGE_ID_LENGTH+1];
1023
1024 /* Return TRUE if a sigalrm should be emulated */
1025 static BOOL
1026 daemon_notification(void)
1027 {
1028 uschar buf[256], cbuf[256];
1029 struct sockaddr_un sun;
1030 struct iovec iov = {.iov_base = buf, .iov_len = sizeof(buf)-1};
1031 struct msghdr msg = { .msg_name = &sun,
1032 .msg_namelen = sizeof(sun),
1033 .msg_iov = &iov,
1034 .msg_iovlen = 1,
1035 .msg_control = cbuf,
1036 .msg_controllen = sizeof(cbuf)
1037 };
1038 ssize_t sz;
1039 struct cmsghdr * cp;
1040
1041 buf[sizeof(buf)-1] = 0;
1042 if ((sz = recvmsg(daemon_notifier_fd, &msg, 0)) <= 0) return FALSE;
1043 if (sz >= sizeof(buf)) return FALSE;
1044
1045 #ifdef notdef
1046 debug_printf("addrlen %d\n", msg.msg_namelen);
1047 #endif
1048 DEBUG(D_queue_run) debug_printf("%s from addr%s '%s'\n", __FUNCTION__,
1049 *sun.sun_path ? "" : " abstract", sun.sun_path+ (*sun.sun_path ? 0 : 1));
1050
1051 /* Refuse to handle the item unless the peer has good credentials */
1052 #ifdef SCM_CREDENTIALS
1053 # define EXIM_SCM_CR_TYPE SCM_CREDENTIALS
1054 #elif defined(SCM_CREDS)
1055 # define EXIM_SCM_CR_TYPE SCM_CREDS
1056 #else
1057 # error no SCM creds knowlege
1058 #endif
1059
1060 for (struct cmsghdr * cp = CMSG_FIRSTHDR(&msg);
1061 cp;
1062 cp = CMSG_NXTHDR(&msg, cp))
1063 if (cp->cmsg_level == SOL_SOCKET && cp->cmsg_type == EXIM_SCM_CR_TYPE)
1064 {
1065 #ifdef SCM_CREDENTIALS
1066 struct ucred * cr = (struct ucred *) CMSG_DATA(cp);
1067 if (cr->uid && cr->uid != exim_uid)
1068 {
1069 DEBUG(D_queue_run) debug_printf("%s: sender creds pid %d uid %d gid %d\n",
1070 __FUNCTION__, (int)cr->pid, (int)cr->uid, (int)cr->gid);
1071 return FALSE;
1072 #elif defined(SCM_CREDS)
1073 struct cmsgcred * cr = (struct cmsgcred *) CMSG_DATA(cp);
1074 if (cr->cmcred_uid && cr->cmcred_uid != exim_uid)
1075 {
1076 DEBUG(D_queue_run) debug_printf("%s: sender creds pid %d uid %d gid %d\n",
1077 __FUNCTION__, (int)cr->cmcred_pid, (int)cr->cmcred_uid, (int)cr->cmcred_gid);
1078 return FALSE;
1079 #endif
1080 }
1081 break;
1082 }
1083
1084 buf[sz] = 0;
1085 switch (buf[0])
1086 {
1087 #ifdef EXPERIMENTAL_QUEUE_RAMP
1088 case NOTIFY_MSG_QRUN:
1089 /* this should be a message_id */
1090 DEBUG(D_queue_run)
1091 debug_printf("%s: qrunner trigger: %s\n", __FUNCTION__, buf+1);
1092 memcpy(queuerun_msgid, buf+1, MESSAGE_ID_LENGTH+1);
1093 return TRUE;
1094 #endif /*EXPERIMENTAL_QUEUE_RAMP*/
1095
1096 case NOTIFY_QUEUE_SIZE_REQ:
1097 {
1098 uschar buf[16];
1099 int len = snprintf(CS buf, sizeof(buf), "%u", queue_count_cached());
1100
1101 DEBUG(D_queue_run)
1102 debug_printf("%s: queue size request: %s\n", __FUNCTION__, buf);
1103
1104 if (sendto(daemon_notifier_fd, buf, len, 0,
1105 (const struct sockaddr *)&sun, msg.msg_namelen) < 0)
1106 log_write(0, LOG_MAIN|LOG_PANIC,
1107 "%s: sendto: %s\n", __FUNCTION__, strerror(errno));
1108 return FALSE;
1109 }
1110 }
1111 return FALSE;
1112 }
1113
1114
1115 /*************************************************
1116 * Exim Daemon Mainline *
1117 *************************************************/
1118
1119 /* The daemon can do two jobs, either of which is optional:
1120
1121 (1) Listens for incoming SMTP calls and spawns off a sub-process to handle
1122 each one. This is requested by the -bd option, with -oX specifying the SMTP
1123 port on which to listen (for testing).
1124
1125 (2) Spawns a queue-running process every so often. This is controlled by the
1126 -q option with a an interval time. (If no time is given, a single queue run
1127 is done from the main function, and control doesn't get here.)
1128
1129 Root privilege is required in order to attach to port 25. Some systems require
1130 it when calling socket() rather than bind(). To cope with all cases, we run as
1131 root for both socket() and bind(). Some systems also require root in order to
1132 write to the pid file directory. This function must therefore be called as root
1133 if it is to work properly in all circumstances. Once the socket is bound and
1134 the pid file written, root privilege is given up if there is an exim uid.
1135
1136 There are no arguments to this function, and it never returns. */
1137
1138 void
1139 daemon_go(void)
1140 {
1141 struct passwd *pw;
1142 int *listen_sockets = NULL;
1143 int listen_socket_count = 0;
1144 ip_address_item *addresses = NULL;
1145 time_t last_connection_time = (time_t)0;
1146 int local_queue_run_max = atoi(CS expand_string(queue_run_max));
1147
1148 /* If any debugging options are set, turn on the D_pid bit so that all
1149 debugging lines get the pid added. */
1150
1151 DEBUG(D_any|D_v) debug_selector |= D_pid;
1152
1153 if (f.inetd_wait_mode)
1154 {
1155 listen_socket_count = 1;
1156 listen_sockets = store_get(sizeof(int), FALSE);
1157 (void) close(3);
1158 if (dup2(0, 3) == -1)
1159 log_write(0, LOG_MAIN|LOG_PANIC_DIE,
1160 "failed to dup inetd socket safely away: %s", strerror(errno));
1161
1162 listen_sockets[0] = 3;
1163 (void) close(0);
1164 (void) close(1);
1165 (void) close(2);
1166 exim_nullstd();
1167
1168 if (debug_file == stderr)
1169 {
1170 /* need a call to log_write before call to open debug_file, so that
1171 log.c:file_path has been initialised. This is unfortunate. */
1172 log_write(0, LOG_MAIN, "debugging Exim in inetd wait mode starting");
1173
1174 fclose(debug_file);
1175 debug_file = NULL;
1176 exim_nullstd(); /* re-open fd2 after we just closed it again */
1177 debug_logging_activate(US"-wait", NULL);
1178 }
1179
1180 DEBUG(D_any) debug_printf("running in inetd wait mode\n");
1181
1182 /* As per below, when creating sockets ourselves, we handle tcp_nodelay for
1183 our own buffering; we assume though that inetd set the socket REUSEADDR. */
1184
1185 if (tcp_nodelay)
1186 if (setsockopt(3, IPPROTO_TCP, TCP_NODELAY, US &on, sizeof(on)))
1187 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "failed to set socket NODELAY: %s",
1188 strerror(errno));
1189 }
1190
1191
1192 if (f.inetd_wait_mode || f.daemon_listen)
1193 {
1194 /* If any option requiring a load average to be available during the
1195 reception of a message is set, call os_getloadavg() while we are root
1196 for those OS for which this is necessary the first time it is called (in
1197 order to perform an "open" on the kernel memory file). */
1198
1199 #ifdef LOAD_AVG_NEEDS_ROOT
1200 if (queue_only_load >= 0 || smtp_load_reserve >= 0 ||
1201 (deliver_queue_load_max >= 0 && deliver_drop_privilege))
1202 (void)os_getloadavg();
1203 #endif
1204 }
1205
1206
1207 /* Do the preparation for setting up a listener on one or more interfaces, and
1208 possible on various ports. This is controlled by the combination of
1209 local_interfaces (which can set IP addresses and ports) and daemon_smtp_port
1210 (which is a list of default ports to use for those items in local_interfaces
1211 that do not specify a port). The -oX command line option can be used to
1212 override one or both of these options.
1213
1214 If local_interfaces is not set, the default is to listen on all interfaces.
1215 When it is set, it can include "all IPvx interfaces" as an item. This is useful
1216 when different ports are in use.
1217
1218 It turns out that listening on all interfaces is messy in an IPv6 world,
1219 because several different implementation approaches have been taken. This code
1220 is now supposed to work with all of them. The point of difference is whether an
1221 IPv6 socket that is listening on all interfaces will receive incoming IPv4
1222 calls or not. We also have to cope with the case when IPv6 libraries exist, but
1223 there is no IPv6 support in the kernel.
1224
1225 . On Solaris, an IPv6 socket will accept IPv4 calls, and give them as mapped
1226 addresses. However, if an IPv4 socket is also listening on all interfaces,
1227 calls are directed to the appropriate socket.
1228
1229 . On (some versions of) Linux, an IPv6 socket will accept IPv4 calls, and
1230 give them as mapped addresses, but an attempt also to listen on an IPv4
1231 socket on all interfaces causes an error.
1232
1233 . On OpenBSD, an IPv6 socket will not accept IPv4 calls. You have to set up
1234 two sockets if you want to accept both kinds of call.
1235
1236 . FreeBSD is like OpenBSD, but it has the IPV6_V6ONLY socket option, which
1237 can be turned off, to make it behave like the versions of Linux described
1238 above.
1239
1240 . I heard a report that the USAGI IPv6 stack for Linux has implemented
1241 IPV6_V6ONLY.
1242
1243 So, what we do when IPv6 is supported is as follows:
1244
1245 (1) After it is set up, the list of interfaces is scanned for wildcard
1246 addresses. If an IPv6 and an IPv4 wildcard are both found for the same
1247 port, the list is re-arranged so that they are together, with the IPv6
1248 wildcard first.
1249
1250 (2) If the creation of a wildcard IPv6 socket fails, we just log the error and
1251 carry on if an IPv4 wildcard socket for the same port follows later in the
1252 list. This allows Exim to carry on in the case when the kernel has no IPv6
1253 support.
1254
1255 (3) Having created an IPv6 wildcard socket, we try to set IPV6_V6ONLY if that
1256 option is defined. However, if setting fails, carry on regardless (but log
1257 the incident).
1258
1259 (4) If binding or listening on an IPv6 wildcard socket fails, it is a serious
1260 error.
1261
1262 (5) If binding or listening on an IPv4 wildcard socket fails with the error
1263 EADDRINUSE, and a previous interface was an IPv6 wildcard for the same
1264 port (which must have succeeded or we wouldn't have got this far), we
1265 assume we are in the situation where just a single socket is permitted,
1266 and ignore the error.
1267
1268 Phew!
1269
1270 The preparation code decodes options and sets up the relevant data. We do this
1271 first, so that we can return non-zero if there are any syntax errors, and also
1272 write to stderr. */
1273
1274 if (f.daemon_listen && !f.inetd_wait_mode)
1275 {
1276 int *default_smtp_port;
1277 int sep;
1278 int pct = 0;
1279 uschar *s;
1280 const uschar * list;
1281 uschar *local_iface_source = US"local_interfaces";
1282 ip_address_item *ipa;
1283 ip_address_item **pipa;
1284
1285 /* If -oX was used, disable the writing of a pid file unless -oP was
1286 explicitly used to force it. Then scan the string given to -oX. Any items
1287 that contain neither a dot nor a colon are used to override daemon_smtp_port.
1288 Any other items are used to override local_interfaces. */
1289
1290 if (override_local_interfaces)
1291 {
1292 gstring * new_smtp_port = NULL;
1293 gstring * new_local_interfaces = NULL;
1294
1295 if (!override_pid_file_path) write_pid = FALSE;
1296
1297 list = override_local_interfaces;
1298 sep = 0;
1299 while ((s = string_nextinlist(&list, &sep, big_buffer, big_buffer_size)))
1300 {
1301 uschar joinstr[4];
1302 gstring ** gp = Ustrpbrk(s, ".:") ? &new_local_interfaces : &new_smtp_port;
1303
1304 if (!*gp)
1305 {
1306 joinstr[0] = sep;
1307 joinstr[1] = ' ';
1308 *gp = string_catn(*gp, US"<", 1);
1309 }
1310
1311 *gp = string_catn(*gp, joinstr, 2);
1312 *gp = string_cat (*gp, s);
1313 }
1314
1315 if (new_smtp_port)
1316 {
1317 daemon_smtp_port = string_from_gstring(new_smtp_port);
1318 DEBUG(D_any) debug_printf("daemon_smtp_port overridden by -oX:\n %s\n",
1319 daemon_smtp_port);
1320 }
1321
1322 if (new_local_interfaces)
1323 {
1324 local_interfaces = string_from_gstring(new_local_interfaces);
1325 local_iface_source = US"-oX data";
1326 DEBUG(D_any) debug_printf("local_interfaces overridden by -oX:\n %s\n",
1327 local_interfaces);
1328 }
1329 }
1330
1331 /* Create a list of default SMTP ports, to be used if local_interfaces
1332 contains entries without explicit ports. First count the number of ports, then
1333 build a translated list in a vector. */
1334
1335 list = daemon_smtp_port;
1336 sep = 0;
1337 while ((s = string_nextinlist(&list, &sep, big_buffer, big_buffer_size)))
1338 pct++;
1339 default_smtp_port = store_get((pct+1) * sizeof(int), FALSE);
1340 list = daemon_smtp_port;
1341 sep = 0;
1342 for (pct = 0;
1343 (s = string_nextinlist(&list, &sep, big_buffer, big_buffer_size));
1344 pct++)
1345 {
1346 if (isdigit(*s))
1347 {
1348 uschar *end;
1349 default_smtp_port[pct] = Ustrtol(s, &end, 0);
1350 if (end != s + Ustrlen(s))
1351 log_write(0, LOG_PANIC_DIE|LOG_CONFIG, "invalid SMTP port: %s", s);
1352 }
1353 else
1354 {
1355 struct servent *smtp_service = getservbyname(CS s, "tcp");
1356 if (!smtp_service)
1357 log_write(0, LOG_PANIC_DIE|LOG_CONFIG, "TCP port \"%s\" not found", s);
1358 default_smtp_port[pct] = ntohs(smtp_service->s_port);
1359 }
1360 }
1361 default_smtp_port[pct] = 0;
1362
1363 /* Check the list of TLS-on-connect ports and do name lookups if needed */
1364
1365 list = tls_in.on_connect_ports;
1366 sep = 0;
1367 while ((s = string_nextinlist(&list, &sep, big_buffer, big_buffer_size)))
1368 if (!isdigit(*s))
1369 {
1370 gstring * g = NULL;
1371
1372 list = tls_in.on_connect_ports;
1373 tls_in.on_connect_ports = NULL;
1374 sep = 0;
1375 while ((s = string_nextinlist(&list, &sep, big_buffer, big_buffer_size)))
1376 {
1377 if (!isdigit(*s))
1378 {
1379 struct servent * smtp_service = getservbyname(CS s, "tcp");
1380 if (!smtp_service)
1381 log_write(0, LOG_PANIC_DIE|LOG_CONFIG, "TCP port \"%s\" not found", s);
1382 s = string_sprintf("%d", (int)ntohs(smtp_service->s_port));
1383 }
1384 g = string_append_listele(g, ':', s);
1385 }
1386 if (g)
1387 tls_in.on_connect_ports = g->s;
1388 break;
1389 }
1390
1391 /* Create the list of local interfaces, possibly with ports included. This
1392 list may contain references to 0.0.0.0 and ::0 as wildcards. These special
1393 values are converted below. */
1394
1395 addresses = host_build_ifacelist(local_interfaces, local_iface_source);
1396
1397 /* In the list of IP addresses, convert 0.0.0.0 into an empty string, and ::0
1398 into the string ":". We use these to recognize wildcards in IPv4 and IPv6. In
1399 fact, many IP stacks recognize 0.0.0.0 and ::0 and handle them as wildcards
1400 anyway, but we need to know which are the wildcard addresses, and the shorter
1401 strings are neater.
1402
1403 In the same scan, fill in missing port numbers from the default list. When
1404 there is more than one item in the list, extra items are created. */
1405
1406 for (ipa = addresses; ipa; ipa = ipa->next)
1407 {
1408 if (Ustrcmp(ipa->address, "0.0.0.0") == 0)
1409 ipa->address[0] = 0;
1410 else if (Ustrcmp(ipa->address, "::0") == 0)
1411 {
1412 ipa->address[0] = ':';
1413 ipa->address[1] = 0;
1414 }
1415
1416 if (ipa->port > 0) continue;
1417
1418 if (daemon_smtp_port[0] <= 0)
1419 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "no port specified for interface "
1420 "%s and daemon_smtp_port is unset; cannot start daemon",
1421 ipa->address[0] == 0 ? US"\"all IPv4\"" :
1422 ipa->address[1] == 0 ? US"\"all IPv6\"" : ipa->address);
1423
1424 ipa->port = default_smtp_port[0];
1425 for (int i = 1; default_smtp_port[i] > 0; i++)
1426 {
1427 ip_address_item *new = store_get(sizeof(ip_address_item), FALSE);
1428
1429 memcpy(new->address, ipa->address, Ustrlen(ipa->address) + 1);
1430 new->port = default_smtp_port[i];
1431 new->next = ipa->next;
1432 ipa->next = new;
1433 ipa = new;
1434 }
1435 }
1436
1437 /* Scan the list of addresses for wildcards. If we find an IPv4 and an IPv6
1438 wildcard for the same port, ensure that (a) they are together and (b) the
1439 IPv6 address comes first. This makes handling the messy features easier, and
1440 also simplifies the construction of the "daemon started" log line. */
1441
1442 pipa = &addresses;
1443 for (ipa = addresses; ipa; pipa = &ipa->next, ipa = ipa->next)
1444 {
1445 ip_address_item *ipa2;
1446
1447 /* Handle an IPv4 wildcard */
1448
1449 if (ipa->address[0] == 0)
1450 for (ipa2 = ipa; ipa2->next; ipa2 = ipa2->next)
1451 {
1452 ip_address_item *ipa3 = ipa2->next;
1453 if (ipa3->address[0] == ':' &&
1454 ipa3->address[1] == 0 &&
1455 ipa3->port == ipa->port)
1456 {
1457 ipa2->next = ipa3->next;
1458 ipa3->next = ipa;
1459 *pipa = ipa3;
1460 break;
1461 }
1462 }
1463
1464 /* Handle an IPv6 wildcard. */
1465
1466 else if (ipa->address[0] == ':' && ipa->address[1] == 0)
1467 for (ipa2 = ipa; ipa2->next; ipa2 = ipa2->next)
1468 {
1469 ip_address_item *ipa3 = ipa2->next;
1470 if (ipa3->address[0] == 0 && ipa3->port == ipa->port)
1471 {
1472 ipa2->next = ipa3->next;
1473 ipa3->next = ipa->next;
1474 ipa->next = ipa3;
1475 ipa = ipa3;
1476 break;
1477 }
1478 }
1479 }
1480
1481 /* Get a vector to remember all the sockets in */
1482
1483 for (ipa = addresses; ipa; ipa = ipa->next)
1484 listen_socket_count++;
1485 listen_sockets = store_get(sizeof(int) * listen_socket_count, FALSE);
1486
1487 } /* daemon_listen but not inetd_wait_mode */
1488
1489 if (f.daemon_listen)
1490 {
1491
1492 /* Do a sanity check on the max connects value just to save us from getting
1493 a huge amount of store. */
1494
1495 if (smtp_accept_max > 4095) smtp_accept_max = 4096;
1496
1497 /* There's no point setting smtp_accept_queue unless it is less than the max
1498 connects limit. The configuration reader ensures that the max is set if the
1499 queue-only option is set. */
1500
1501 if (smtp_accept_queue > smtp_accept_max) smtp_accept_queue = 0;
1502
1503 /* Get somewhere to keep the list of SMTP accepting pids if we are keeping
1504 track of them for total number and queue/host limits. */
1505
1506 if (smtp_accept_max > 0)
1507 {
1508 smtp_slots = store_get(smtp_accept_max * sizeof(smtp_slot), FALSE);
1509 for (int i = 0; i < smtp_accept_max; i++) smtp_slots[i] = empty_smtp_slot;
1510 }
1511 }
1512
1513 /* The variable background_daemon is always false when debugging, but
1514 can also be forced false in order to keep a non-debugging daemon in the
1515 foreground. If background_daemon is true, close all open file descriptors that
1516 we know about, but then re-open stdin, stdout, and stderr to /dev/null. Also
1517 do this for inetd_wait mode.
1518
1519 This is protection against any called functions (in libraries, or in
1520 Perl, or whatever) that think they can write to stderr (or stdout). Before this
1521 was added, it was quite likely that an SMTP connection would use one of these
1522 file descriptors, in which case writing random stuff to it caused chaos.
1523
1524 Then disconnect from the controlling terminal, Most modern Unixes seem to have
1525 setsid() for getting rid of the controlling terminal. For any OS that doesn't,
1526 setsid() can be #defined as a no-op, or as something else. */
1527
1528 if (f.background_daemon || f.inetd_wait_mode)
1529 {
1530 log_close_all(); /* Just in case anything was logged earlier */
1531 search_tidyup(); /* Just in case any were used in reading the config. */
1532 (void)close(0); /* Get rid of stdin/stdout/stderr */
1533 (void)close(1);
1534 (void)close(2);
1535 exim_nullstd(); /* Connect stdin/stdout/stderr to /dev/null */
1536 log_stderr = NULL; /* So no attempt to copy paniclog output */
1537 }
1538
1539 if (f.background_daemon)
1540 {
1541 /* If the parent process of this one has pid == 1, we are re-initializing the
1542 daemon as the result of a SIGHUP. In this case, there is no need to do
1543 anything, because the controlling terminal has long gone. Otherwise, fork, in
1544 case current process is a process group leader (see 'man setsid' for an
1545 explanation) before calling setsid(). */
1546
1547 if (getppid() != 1)
1548 {
1549 pid_t pid = fork();
1550 if (pid < 0) log_write(0, LOG_MAIN|LOG_PANIC_DIE,
1551 "fork() failed when starting daemon: %s", strerror(errno));
1552 if (pid > 0) exit(EXIT_SUCCESS); /* in parent process, just exit */
1553 (void)setsid(); /* release controlling terminal */
1554 }
1555 }
1556
1557 /* We are now in the disconnected, daemon process (unless debugging). Set up
1558 the listening sockets if required. */
1559
1560 daemon_notifier_socket();
1561
1562 if (f.daemon_listen && !f.inetd_wait_mode)
1563 {
1564 int sk;
1565 ip_address_item *ipa;
1566
1567 /* For each IP address, create a socket, bind it to the appropriate port, and
1568 start listening. See comments above about IPv6 sockets that may or may not
1569 accept IPv4 calls when listening on all interfaces. We also have to cope with
1570 the case of a system with IPv6 libraries, but no IPv6 support in the kernel.
1571 listening, provided a wildcard IPv4 socket for the same port follows. */
1572
1573 for (ipa = addresses, sk = 0; sk < listen_socket_count; ipa = ipa->next, sk++)
1574 {
1575 BOOL wildcard;
1576 ip_address_item *ipa2;
1577 int af;
1578
1579 if (Ustrchr(ipa->address, ':') != NULL)
1580 {
1581 af = AF_INET6;
1582 wildcard = ipa->address[1] == 0;
1583 }
1584 else
1585 {
1586 af = AF_INET;
1587 wildcard = ipa->address[0] == 0;
1588 }
1589
1590 if ((listen_sockets[sk] = ip_socket(SOCK_STREAM, af)) < 0)
1591 {
1592 if (check_special_case(0, addresses, ipa, FALSE))
1593 {
1594 log_write(0, LOG_MAIN, "Failed to create IPv6 socket for wildcard "
1595 "listening (%s): will use IPv4", strerror(errno));
1596 goto SKIP_SOCKET;
1597 }
1598 log_write(0, LOG_PANIC_DIE, "IPv%c socket creation failed: %s",
1599 (af == AF_INET6)? '6' : '4', strerror(errno));
1600 }
1601
1602 /* If this is an IPv6 wildcard socket, set IPV6_V6ONLY if that option is
1603 available. Just log failure (can get protocol not available, just like
1604 socket creation can). */
1605
1606 #ifdef IPV6_V6ONLY
1607 if (af == AF_INET6 && wildcard &&
1608 setsockopt(listen_sockets[sk], IPPROTO_IPV6, IPV6_V6ONLY, CS (&on),
1609 sizeof(on)) < 0)
1610 log_write(0, LOG_MAIN, "Setting IPV6_V6ONLY on daemon's IPv6 wildcard "
1611 "socket failed (%s): carrying on without it", strerror(errno));
1612 #endif /* IPV6_V6ONLY */
1613
1614 /* Set SO_REUSEADDR so that the daemon can be restarted while a connection
1615 is being handled. Without this, a connection will prevent reuse of the
1616 smtp port for listening. */
1617
1618 if (setsockopt(listen_sockets[sk], SOL_SOCKET, SO_REUSEADDR,
1619 US (&on), sizeof(on)) < 0)
1620 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "setting SO_REUSEADDR on socket "
1621 "failed when starting daemon: %s", strerror(errno));
1622
1623 /* Set TCP_NODELAY; Exim does its own buffering. There is a switch to
1624 disable this because it breaks some broken clients. */
1625
1626 if (tcp_nodelay) setsockopt(listen_sockets[sk], IPPROTO_TCP, TCP_NODELAY,
1627 US (&on), sizeof(on));
1628
1629 /* Now bind the socket to the required port; if Exim is being restarted
1630 it may not always be possible to bind immediately, even with SO_REUSEADDR
1631 set, so try 10 times, waiting between each try. After 10 failures, we give
1632 up. In an IPv6 environment, if bind () fails with the error EADDRINUSE and
1633 we are doing wildcard IPv4 listening and there was a previous IPv6 wildcard
1634 address for the same port, ignore the error on the grounds that we must be
1635 in a system where the IPv6 socket accepts both kinds of call. This is
1636 necessary for (some release of) USAGI Linux; other IP stacks fail at the
1637 listen() stage instead. */
1638
1639 #ifdef TCP_FASTOPEN
1640 f.tcp_fastopen_ok = TRUE;
1641 #endif
1642 for(;;)
1643 {
1644 uschar *msg, *addr;
1645 if (ip_bind(listen_sockets[sk], af, ipa->address, ipa->port) >= 0) break;
1646 if (check_special_case(errno, addresses, ipa, TRUE))
1647 {
1648 DEBUG(D_any) debug_printf("wildcard IPv4 bind() failed after IPv6 "
1649 "listen() success; EADDRINUSE ignored\n");
1650 (void)close(listen_sockets[sk]);
1651 goto SKIP_SOCKET;
1652 }
1653 msg = US strerror(errno);
1654 addr = wildcard
1655 ? af == AF_INET6
1656 ? US"(any IPv6)"
1657 : US"(any IPv4)"
1658 : ipa->address;
1659 if (daemon_startup_retries <= 0)
1660 log_write(0, LOG_MAIN|LOG_PANIC_DIE,
1661 "socket bind() to port %d for address %s failed: %s: "
1662 "daemon abandoned", ipa->port, addr, msg);
1663 log_write(0, LOG_MAIN, "socket bind() to port %d for address %s "
1664 "failed: %s: waiting %s before trying again (%d more %s)",
1665 ipa->port, addr, msg, readconf_printtime(daemon_startup_sleep),
1666 daemon_startup_retries, (daemon_startup_retries > 1)? "tries" : "try");
1667 daemon_startup_retries--;
1668 sleep(daemon_startup_sleep);
1669 }
1670
1671 DEBUG(D_any)
1672 if (wildcard)
1673 debug_printf("listening on all interfaces (IPv%c) port %d\n",
1674 af == AF_INET6 ? '6' : '4', ipa->port);
1675 else
1676 debug_printf("listening on %s port %d\n", ipa->address, ipa->port);
1677
1678 #if defined(TCP_FASTOPEN) && !defined(__APPLE__)
1679 if ( f.tcp_fastopen_ok
1680 && setsockopt(listen_sockets[sk], IPPROTO_TCP, TCP_FASTOPEN,
1681 &smtp_connect_backlog, sizeof(smtp_connect_backlog)))
1682 {
1683 DEBUG(D_any) debug_printf("setsockopt FASTOPEN: %s\n", strerror(errno));
1684 f.tcp_fastopen_ok = FALSE;
1685 }
1686 #endif
1687
1688 /* Start listening on the bound socket, establishing the maximum backlog of
1689 connections that is allowed. On success, continue to the next address. */
1690
1691 if (listen(listen_sockets[sk], smtp_connect_backlog) >= 0)
1692 {
1693 #if defined(TCP_FASTOPEN) && defined(__APPLE__)
1694 if ( f.tcp_fastopen_ok
1695 && setsockopt(listen_sockets[sk], IPPROTO_TCP, TCP_FASTOPEN,
1696 &on, sizeof(on)))
1697 {
1698 DEBUG(D_any) debug_printf("setsockopt FASTOPEN: %s\n", strerror(errno));
1699 f.tcp_fastopen_ok = FALSE;
1700 }
1701 #endif
1702 continue;
1703 }
1704
1705 /* Listening has failed. In an IPv6 environment, as for bind(), if listen()
1706 fails with the error EADDRINUSE and we are doing IPv4 wildcard listening
1707 and there was a previous successful IPv6 wildcard listen on the same port,
1708 we want to ignore the error on the grounds that we must be in a system
1709 where the IPv6 socket accepts both kinds of call. */
1710
1711 if (!check_special_case(errno, addresses, ipa, TRUE))
1712 log_write(0, LOG_PANIC_DIE, "listen() failed on interface %s: %s",
1713 wildcard
1714 ? af == AF_INET6 ? US"(any IPv6)" : US"(any IPv4)" : ipa->address,
1715 strerror(errno));
1716
1717 DEBUG(D_any) debug_printf("wildcard IPv4 listen() failed after IPv6 "
1718 "listen() success; EADDRINUSE ignored\n");
1719 (void)close(listen_sockets[sk]);
1720
1721 /* Come here if there has been a problem with the socket which we
1722 are going to ignore. We remove the address from the chain, and back up the
1723 counts. */
1724
1725 SKIP_SOCKET:
1726 sk--; /* Back up the count */
1727 listen_socket_count--; /* Reduce the total */
1728 if (ipa == addresses) addresses = ipa->next; else
1729 {
1730 for (ipa2 = addresses; ipa2->next != ipa; ipa2 = ipa2->next);
1731 ipa2->next = ipa->next;
1732 ipa = ipa2;
1733 }
1734 } /* End of bind/listen loop for each address */
1735 } /* End of setup for listening */
1736
1737
1738 /* If we are not listening, we want to write a pid file only if -oP was
1739 explicitly given. */
1740
1741 else if (!override_pid_file_path)
1742 write_pid = FALSE;
1743
1744 /* Write the pid to a known file for assistance in identification, if required.
1745 We do this before giving up root privilege, because on some systems it is
1746 necessary to be root in order to write into the pid file directory. There's
1747 nothing to stop multiple daemons running, as long as no more than one listens
1748 on a given TCP/IP port on the same interface(s). However, in these
1749 circumstances it gets far too complicated to mess with pid file names
1750 automatically. Consequently, Exim 4 writes a pid file only
1751
1752 (a) When running in the test harness, or
1753 (b) When -bd is used and -oX is not used, or
1754 (c) When -oP is used to supply a path.
1755
1756 The variable daemon_write_pid is used to control this. */
1757
1758 if (f.running_in_test_harness || write_pid)
1759 {
1760 FILE *f;
1761
1762 set_pid_file_path();
1763 if ((f = modefopen(pid_file_path, "wb", 0644)))
1764 {
1765 (void)fprintf(f, "%d\n", (int)getpid());
1766 (void)fclose(f);
1767 DEBUG(D_any) debug_printf("pid written to %s\n", pid_file_path);
1768 }
1769 else
1770 DEBUG(D_any)
1771 debug_printf("%s\n", string_open_failed(errno, "pid file %s",
1772 pid_file_path));
1773 }
1774
1775 /* Set up the handler for SIGHUP, which causes a restart of the daemon. */
1776
1777 sighup_seen = FALSE;
1778 signal(SIGHUP, sighup_handler);
1779
1780 /* Give up root privilege at this point (assuming that exim_uid and exim_gid
1781 are not root). The third argument controls the running of initgroups().
1782 Normally we do this, in order to set up the groups for the Exim user. However,
1783 if we are not root at this time - some odd installations run that way - we
1784 cannot do this. */
1785
1786 exim_setugid(exim_uid, exim_gid, geteuid()==root_uid, US"running as a daemon");
1787
1788 /* Update the originator_xxx fields so that received messages as listed as
1789 coming from Exim, not whoever started the daemon. */
1790
1791 originator_uid = exim_uid;
1792 originator_gid = exim_gid;
1793 originator_login = (pw = getpwuid(exim_uid))
1794 ? string_copy_perm(US pw->pw_name, FALSE) : US"exim";
1795
1796 /* Get somewhere to keep the list of queue-runner pids if we are keeping track
1797 of them (and also if we are doing queue runs). */
1798
1799 if (queue_interval > 0 && local_queue_run_max > 0)
1800 {
1801 queue_pid_slots = store_get(local_queue_run_max * sizeof(pid_t), FALSE);
1802 for (int i = 0; i < local_queue_run_max; i++) queue_pid_slots[i] = 0;
1803 }
1804
1805 /* Set up the handler for termination of child processes, and the one
1806 telling us to die. */
1807
1808 sigchld_seen = FALSE;
1809 os_non_restarting_signal(SIGCHLD, main_sigchld_handler);
1810
1811 sigterm_seen = FALSE;
1812 os_non_restarting_signal(SIGTERM, main_sigterm_handler);
1813
1814 /* If we are to run the queue periodically, pretend the alarm has just gone
1815 off. This will cause the first queue-runner to get kicked off straight away. */
1816
1817 sigalrm_seen = (queue_interval > 0);
1818
1819 /* Log the start up of a daemon - at least one of listening or queue running
1820 must be set up. */
1821
1822 if (f.inetd_wait_mode)
1823 {
1824 uschar *p = big_buffer;
1825
1826 if (inetd_wait_timeout >= 0)
1827 sprintf(CS p, "terminating after %d seconds", inetd_wait_timeout);
1828 else
1829 sprintf(CS p, "with no wait timeout");
1830
1831 log_write(0, LOG_MAIN,
1832 "exim %s daemon started: pid=%d, launched with listening socket, %s",
1833 version_string, getpid(), big_buffer);
1834 set_process_info("daemon(%s): pre-listening socket", version_string);
1835
1836 /* set up the timeout logic */
1837 sigalrm_seen = TRUE;
1838 }
1839
1840 else if (f.daemon_listen)
1841 {
1842 int smtp_ports = 0;
1843 int smtps_ports = 0;
1844 ip_address_item * ipa;
1845 uschar * p;
1846 uschar * qinfo = queue_interval > 0
1847 ? string_sprintf("-q%s", readconf_printtime(queue_interval))
1848 : US"no queue runs";
1849
1850 /* Build a list of listening addresses in big_buffer, but limit it to 10
1851 items. The style is for backwards compatibility.
1852
1853 It is now possible to have some ports listening for SMTPS (the old,
1854 deprecated protocol that starts TLS without using STARTTLS), and others
1855 listening for standard SMTP. Keep their listings separate. */
1856
1857 for (int j = 0, i; j < 2; j++)
1858 {
1859 for (i = 0, ipa = addresses; i < 10 && ipa; i++, ipa = ipa->next)
1860 {
1861 /* First time round, look for SMTP ports; second time round, look for
1862 SMTPS ports. Build IP+port strings. */
1863
1864 if (host_is_tls_on_connect_port(ipa->port) == (j > 0))
1865 {
1866 if (j == 0)
1867 smtp_ports++;
1868 else
1869 smtps_ports++;
1870
1871 /* Now the information about the port (and sometimes interface) */
1872
1873 if (ipa->address[0] == ':' && ipa->address[1] == 0)
1874 { /* v6 wildcard */
1875 if (ipa->next && ipa->next->address[0] == 0 &&
1876 ipa->next->port == ipa->port)
1877 {
1878 ipa->log = string_sprintf(" port %d (IPv6 and IPv4)", ipa->port);
1879 (ipa = ipa->next)->log = NULL;
1880 }
1881 else if (ipa->v6_include_v4)
1882 ipa->log = string_sprintf(" port %d (IPv6 with IPv4)", ipa->port);
1883 else
1884 ipa->log = string_sprintf(" port %d (IPv6)", ipa->port);
1885 }
1886 else if (ipa->address[0] == 0) /* v4 wildcard */
1887 ipa->log = string_sprintf(" port %d (IPv4)", ipa->port);
1888 else /* check for previously-seen IP */
1889 {
1890 ip_address_item * i2;
1891 for (i2 = addresses; i2 != ipa; i2 = i2->next)
1892 if ( host_is_tls_on_connect_port(i2->port) == (j > 0)
1893 && Ustrcmp(ipa->address, i2->address) == 0
1894 )
1895 { /* found; append port to list */
1896 for (p = i2->log; *p; ) p++; /* end of existing string */
1897 if (*--p == '}') *p = '\0'; /* drop EOL */
1898 while (isdigit(*--p)) ; /* char before port */
1899
1900 i2->log = *p == ':' /* no list yet? */
1901 ? string_sprintf("%.*s{%s,%d}",
1902 (int)(p - i2->log + 1), i2->log, p+1, ipa->port)
1903 : string_sprintf("%s,%d}", i2->log, ipa->port);
1904 ipa->log = NULL;
1905 break;
1906 }
1907 if (i2 == ipa) /* first-time IP */
1908 ipa->log = string_sprintf(" [%s]:%d", ipa->address, ipa->port);
1909 }
1910 }
1911 }
1912 }
1913
1914 p = big_buffer;
1915 for (int j = 0, i; j < 2; j++)
1916 {
1917 /* First time round, look for SMTP ports; second time round, look for
1918 SMTPS ports. For the first one of each, insert leading text. */
1919
1920 if (j == 0)
1921 {
1922 if (smtp_ports > 0)
1923 p += sprintf(CS p, "SMTP on");
1924 }
1925 else
1926 if (smtps_ports > 0)
1927 p += sprintf(CS p, "%sSMTPS on",
1928 smtp_ports == 0 ? "" : " and for ");
1929
1930 /* Now the information about the port (and sometimes interface) */
1931
1932 for (i = 0, ipa = addresses; i < 10 && ipa; i++, ipa = ipa->next)
1933 if (host_is_tls_on_connect_port(ipa->port) == (j > 0))
1934 if (ipa->log)
1935 p += sprintf(CS p, "%s", ipa->log);
1936
1937 if (ipa)
1938 p += sprintf(CS p, " ...");
1939 }
1940
1941 log_write(0, LOG_MAIN,
1942 "exim %s daemon started: pid=%d, %s, listening for %s",
1943 version_string, getpid(), qinfo, big_buffer);
1944 set_process_info("daemon(%s): %s, listening for %s",
1945 version_string, qinfo, big_buffer);
1946 }
1947
1948 else
1949 {
1950 uschar * s = *queue_name
1951 ? string_sprintf("-qG%s/%s", queue_name, readconf_printtime(queue_interval))
1952 : string_sprintf("-q%s", readconf_printtime(queue_interval));
1953 log_write(0, LOG_MAIN,
1954 "exim %s daemon started: pid=%d, %s, not listening for SMTP",
1955 version_string, getpid(), s);
1956 set_process_info("daemon(%s): %s, not listening", version_string, s);
1957 }
1958
1959 /* Do any work it might be useful to amortize over our children
1960 (eg: compile regex) */
1961
1962 dns_pattern_init();
1963 smtp_deliver_init(); /* Used for callouts */
1964
1965 #ifndef DISABLE_DKIM
1966 {
1967 # ifdef MEASURE_TIMING
1968 struct timeval t0;
1969 gettimeofday(&t0, NULL);
1970 # endif
1971 dkim_exim_init();
1972 # ifdef MEASURE_TIMING
1973 report_time_since(&t0, US"dkim_exim_init (delta)");
1974 # endif
1975 }
1976 #endif
1977
1978 #ifdef WITH_CONTENT_SCAN
1979 malware_init();
1980 #endif
1981 #ifdef SUPPORT_SPF
1982 spf_init();
1983 #endif
1984
1985 /* Close the log so it can be renamed and moved. In the few cases below where
1986 this long-running process writes to the log (always exceptional conditions), it
1987 closes the log afterwards, for the same reason. */
1988
1989 log_close_all();
1990
1991 DEBUG(D_any) debug_print_ids(US"daemon running with");
1992
1993 /* Any messages accepted via this route are going to be SMTP. */
1994
1995 smtp_input = TRUE;
1996
1997 #ifdef MEASURE_TIMING
1998 report_time_since(&timestamp_startup, US"daemon loop start"); /* testcase 0022 */
1999 #endif
2000
2001 /* Enter the never-ending loop... */
2002
2003 for (;;)
2004 {
2005 #if HAVE_IPV6
2006 struct sockaddr_in6 accepted;
2007 #else
2008 struct sockaddr_in accepted;
2009 #endif
2010
2011 EXIM_SOCKLEN_T len;
2012 pid_t pid;
2013
2014 if (sigterm_seen)
2015 daemon_die(); /* Does not return */
2016
2017 /* This code is placed first in the loop, so that it gets obeyed at the
2018 start, before the first wait, for the queue-runner case, so that the first
2019 one can be started immediately.
2020
2021 The other option is that we have an inetd wait timeout specified to -bw. */
2022
2023 if (sigalrm_seen)
2024 {
2025 if (inetd_wait_timeout > 0)
2026 {
2027 time_t resignal_interval = inetd_wait_timeout;
2028
2029 if (last_connection_time == (time_t)0)
2030 {
2031 DEBUG(D_any)
2032 debug_printf("inetd wait timeout expired, but still not seen first message, ignoring\n");
2033 }
2034 else
2035 {
2036 time_t now = time(NULL);
2037 if (now == (time_t)-1)
2038 {
2039 DEBUG(D_any) debug_printf("failed to get time: %s\n", strerror(errno));
2040 }
2041 else
2042 {
2043 if ((now - last_connection_time) >= inetd_wait_timeout)
2044 {
2045 DEBUG(D_any)
2046 debug_printf("inetd wait timeout %d expired, ending daemon\n",
2047 inetd_wait_timeout);
2048 log_write(0, LOG_MAIN, "exim %s daemon terminating, inetd wait timeout reached.\n",
2049 version_string);
2050 exit(EXIT_SUCCESS);
2051 }
2052 else
2053 {
2054 resignal_interval -= (now - last_connection_time);
2055 }
2056 }
2057 }
2058
2059 sigalrm_seen = FALSE;
2060 ALARM(resignal_interval);
2061 }
2062
2063 else
2064 {
2065 DEBUG(D_any) debug_printf("%s received\n",
2066 #ifdef EXPERIMENTAL_QUEUE_RAMP
2067 *queuerun_msgid ? "qrun notification" :
2068 #endif
2069 "SIGALRM");
2070
2071 /* Do a full queue run in a child process, if required, unless we already
2072 have enough queue runners on the go. If we are not running as root, a
2073 re-exec is required. */
2074
2075 if (queue_interval > 0 &&
2076 (local_queue_run_max <= 0 || queue_run_count < local_queue_run_max))
2077 {
2078 if ((pid = fork()) == 0)
2079 {
2080 DEBUG(D_any) debug_printf("Starting queue-runner: pid %d\n",
2081 (int)getpid());
2082
2083 /* Disable debugging if it's required only for the daemon process. We
2084 leave the above message, because it ties up with the "child ended"
2085 debugging messages. */
2086
2087 if (f.debug_daemon) debug_selector = 0;
2088
2089 /* Close any open listening sockets in the child */
2090
2091 if (daemon_notifier_fd >= 0)
2092 (void) close(daemon_notifier_fd);
2093 for (int sk = 0; sk < listen_socket_count; sk++)
2094 (void) close(listen_sockets[sk]);
2095
2096 /* Reset SIGHUP and SIGCHLD in the child in both cases. */
2097
2098 signal(SIGHUP, SIG_DFL);
2099 signal(SIGCHLD, SIG_DFL);
2100 signal(SIGTERM, SIG_DFL);
2101
2102 /* Re-exec if privilege has been given up, unless deliver_drop_
2103 privilege is set. Reset SIGALRM before exec(). */
2104
2105 if (geteuid() != root_uid && !deliver_drop_privilege)
2106 {
2107 uschar opt[8];
2108 uschar *p = opt;
2109 uschar *extra[7];
2110 int extracount = 1;
2111
2112 signal(SIGALRM, SIG_DFL);
2113 *p++ = '-';
2114 *p++ = 'q';
2115 if ( f.queue_2stage
2116 #ifdef EXPERIMENTAL_QUEUE_RAMP
2117 && !*queuerun_msgid
2118 #endif
2119 ) *p++ = 'q';
2120 if (f.queue_run_first_delivery) *p++ = 'i';
2121 if (f.queue_run_force) *p++ = 'f';
2122 if (f.deliver_force_thaw) *p++ = 'f';
2123 if (f.queue_run_local) *p++ = 'l';
2124 *p = 0;
2125 extra[0] = *queue_name
2126 ? string_sprintf("%sG%s", opt, queue_name) : opt;
2127
2128 #ifdef EXPERIMENTAL_QUEUE_RAMP
2129 if (*queuerun_msgid)
2130 {
2131 extra[extracount++] = queuerun_msgid; /* Trigger only the */
2132 extra[extracount++] = queuerun_msgid; /* one message */
2133 }
2134 #endif
2135
2136 /* If -R or -S were on the original command line, ensure they get
2137 passed on. */
2138
2139 if (deliver_selectstring)
2140 {
2141 extra[extracount++] = f.deliver_selectstring_regex ? US"-Rr" : US"-R";
2142 extra[extracount++] = deliver_selectstring;
2143 }
2144
2145 if (deliver_selectstring_sender)
2146 {
2147 extra[extracount++] = f.deliver_selectstring_sender_regex
2148 ? US"-Sr" : US"-S";
2149 extra[extracount++] = deliver_selectstring_sender;
2150 }
2151
2152 /* Overlay this process with a new execution. */
2153
2154 (void)child_exec_exim(CEE_EXEC_PANIC, FALSE, NULL, FALSE, extracount,
2155 extra[0], extra[1], extra[2], extra[3], extra[4], extra[5], extra[6]);
2156
2157 /* Control never returns here. */
2158 }
2159
2160 /* No need to re-exec; SIGALRM remains set to the default handler */
2161
2162 #ifdef EXPERIMENTAL_QUEUE_RAMP
2163 if (*queuerun_msgid)
2164 {
2165 f.queue_2stage = FALSE;
2166 queue_run(queuerun_msgid, queuerun_msgid, FALSE);
2167 }
2168 else
2169 #endif
2170 queue_run(NULL, NULL, FALSE);
2171 exim_underbar_exit(EXIT_SUCCESS);
2172 }
2173
2174 if (pid < 0)
2175 {
2176 log_write(0, LOG_MAIN|LOG_PANIC, "daemon: fork of queue-runner "
2177 "process failed: %s", strerror(errno));
2178 log_close_all();
2179 }
2180 else
2181 {
2182 for (int i = 0; i < local_queue_run_max; ++i)
2183 if (queue_pid_slots[i] <= 0)
2184 {
2185 queue_pid_slots[i] = pid;
2186 queue_run_count++;
2187 break;
2188 }
2189 DEBUG(D_any) debug_printf("%d queue-runner process%s running\n",
2190 queue_run_count, queue_run_count == 1 ? "" : "es");
2191 }
2192 }
2193
2194 /* Reset the alarm clock */
2195
2196 sigalrm_seen = FALSE;
2197 #ifdef EXPERIMENTAL_QUEUE_RAMP
2198 if (*queuerun_msgid)
2199 *queuerun_msgid = 0;
2200 else
2201 #endif
2202 ALARM(queue_interval);
2203 }
2204
2205 } /* sigalrm_seen */
2206
2207
2208 /* Sleep till a connection happens if listening, and handle the connection if
2209 that is why we woke up. The FreeBSD operating system requires the use of
2210 select() before accept() because the latter function is not interrupted by
2211 a signal, and we want to wake up for SIGCHLD and SIGALRM signals. Some other
2212 OS do notice signals in accept() but it does no harm to have the select()
2213 in for all of them - and it won't then be a lurking problem for ports to
2214 new OS. In fact, the later addition of listening on specific interfaces only
2215 requires this way of working anyway. */
2216
2217 if (f.daemon_listen)
2218 {
2219 int lcount, select_errno;
2220 int max_socket = 0;
2221 BOOL select_failed = FALSE;
2222 fd_set select_listen;
2223
2224 FD_ZERO(&select_listen);
2225 if (daemon_notifier_fd >= 0)
2226 FD_SET(daemon_notifier_fd, &select_listen);
2227 for (int sk = 0; sk < listen_socket_count; sk++)
2228 {
2229 FD_SET(listen_sockets[sk], &select_listen);
2230 if (listen_sockets[sk] > max_socket) max_socket = listen_sockets[sk];
2231 }
2232
2233 DEBUG(D_any) debug_printf("Listening...\n");
2234
2235 /* In rare cases we may have had a SIGCHLD signal in the time between
2236 setting the handler (below) and getting back here. If so, pretend that the
2237 select() was interrupted so that we reap the child. This might still leave
2238 a small window when a SIGCHLD could get lost. However, since we use SIGCHLD
2239 only to do the reaping more quickly, it shouldn't result in anything other
2240 than a delay until something else causes a wake-up. */
2241
2242 if (sigchld_seen)
2243 {
2244 lcount = -1;
2245 errno = EINTR;
2246 }
2247 else
2248 lcount = select(max_socket + 1, (SELECT_ARG2_TYPE *)&select_listen,
2249 NULL, NULL, NULL);
2250
2251 if (lcount < 0)
2252 {
2253 select_failed = TRUE;
2254 lcount = 1;
2255 }
2256
2257 /* Clean up any subprocesses that may have terminated. We need to do this
2258 here so that smtp_accept_max_per_host works when a connection to that host
2259 has completed, and we are about to accept a new one. When this code was
2260 later in the sequence, a new connection could be rejected, even though an
2261 old one had just finished. Preserve the errno from any select() failure for
2262 the use of the common select/accept error processing below. */
2263
2264 select_errno = errno;
2265 handle_ending_processes();
2266 errno = select_errno;
2267
2268 #ifndef DISABLE_TLS
2269 /* Create or rotate any required keys */
2270 tls_daemon_init();
2271 #endif
2272
2273 /* Loop for all the sockets that are currently ready to go. If select
2274 actually failed, we have set the count to 1 and select_failed=TRUE, so as
2275 to use the common error code for select/accept below. */
2276
2277 while (lcount-- > 0)
2278 {
2279 int accept_socket = -1;
2280
2281 if (!select_failed)
2282 {
2283 if ( daemon_notifier_fd >= 0
2284 && FD_ISSET(daemon_notifier_fd, &select_listen))
2285 {
2286 FD_CLR(daemon_notifier_fd, &select_listen);
2287 sigalrm_seen = daemon_notification();
2288 break; /* to top of daemon loop */
2289 }
2290 for (int sk = 0; sk < listen_socket_count; sk++)
2291 if (FD_ISSET(listen_sockets[sk], &select_listen))
2292 {
2293 len = sizeof(accepted);
2294 accept_socket = accept(listen_sockets[sk],
2295 (struct sockaddr *)&accepted, &len);
2296 FD_CLR(listen_sockets[sk], &select_listen);
2297 break;
2298 }
2299 }
2300
2301 /* If select or accept has failed and this was not caused by an
2302 interruption, log the incident and try again. With asymmetric TCP/IP
2303 routing errors such as "No route to network" have been seen here. Also
2304 "connection reset by peer" has been seen. These cannot be classed as
2305 disastrous errors, but they could fill up a lot of log. The code in smail
2306 crashes the daemon after 10 successive failures of accept, on the grounds
2307 that some OS fail continuously. Exim originally followed suit, but this
2308 appears to have caused problems. Now it just keeps going, but instead of
2309 logging each error, it batches them up when they are continuous. */
2310
2311 if (accept_socket < 0 && errno != EINTR)
2312 {
2313 if (accept_retry_count == 0)
2314 {
2315 accept_retry_errno = errno;
2316 accept_retry_select_failed = select_failed;
2317 }
2318 else
2319 {
2320 if (errno != accept_retry_errno ||
2321 select_failed != accept_retry_select_failed ||
2322 accept_retry_count >= 50)
2323 {
2324 log_write(0, LOG_MAIN | ((accept_retry_count >= 50)? LOG_PANIC : 0),
2325 "%d %s() failure%s: %s",
2326 accept_retry_count,
2327 accept_retry_select_failed? "select" : "accept",
2328 (accept_retry_count == 1)? "" : "s",
2329 strerror(accept_retry_errno));
2330 log_close_all();
2331 accept_retry_count = 0;
2332 accept_retry_errno = errno;
2333 accept_retry_select_failed = select_failed;
2334 }
2335 }
2336 accept_retry_count++;
2337 }
2338
2339 else
2340 {
2341 if (accept_retry_count > 0)
2342 {
2343 log_write(0, LOG_MAIN, "%d %s() failure%s: %s",
2344 accept_retry_count,
2345 accept_retry_select_failed? "select" : "accept",
2346 (accept_retry_count == 1)? "" : "s",
2347 strerror(accept_retry_errno));
2348 log_close_all();
2349 accept_retry_count = 0;
2350 }
2351 }
2352
2353 /* If select/accept succeeded, deal with the connection. */
2354
2355 if (accept_socket >= 0)
2356 {
2357 if (inetd_wait_timeout)
2358 last_connection_time = time(NULL);
2359 handle_smtp_call(listen_sockets, listen_socket_count, accept_socket,
2360 (struct sockaddr *)&accepted);
2361 }
2362 }
2363 }
2364
2365 /* If not listening, then just sleep for the queue interval. If we woke
2366 up early the last time for some other signal, it won't matter because
2367 the alarm signal will wake at the right time. This code originally used
2368 sleep() but it turns out that on the FreeBSD system, sleep() is not inter-
2369 rupted by signals, so it wasn't waking up for SIGALRM or SIGCHLD. Luckily
2370 select() can be used as an interruptible sleep() on all versions of Unix. */
2371
2372 else
2373 {
2374 struct timeval tv;
2375 tv.tv_sec = queue_interval;
2376 tv.tv_usec = 0;
2377 select(0, NULL, NULL, NULL, &tv);
2378 handle_ending_processes();
2379 }
2380
2381 /* Re-enable the SIGCHLD handler if it has been run. It can't do it
2382 for itself, because it isn't doing the waiting itself. */
2383
2384 if (sigchld_seen)
2385 {
2386 sigchld_seen = FALSE;
2387 os_non_restarting_signal(SIGCHLD, main_sigchld_handler);
2388 }
2389
2390 /* Handle being woken by SIGHUP. We know at this point that the result
2391 of accept() has been dealt with, so we can re-exec exim safely, first
2392 closing the listening sockets so that they can be reused. Cancel any pending
2393 alarm in case it is just about to go off, and set SIGHUP to be ignored so
2394 that another HUP in quick succession doesn't clobber the new daemon before it
2395 gets going. All log files get closed by the close-on-exec flag; however, if
2396 the exec fails, we need to close the logs. */
2397
2398 if (sighup_seen)
2399 {
2400 log_write(0, LOG_MAIN, "pid %d: SIGHUP received: re-exec daemon",
2401 getpid());
2402 for (int sk = 0; sk < listen_socket_count; sk++)
2403 (void)close(listen_sockets[sk]);
2404 ALARM_CLR(0);
2405 signal(SIGHUP, SIG_IGN);
2406 sighup_argv[0] = exim_path;
2407 exim_nullstd();
2408 execv(CS exim_path, (char *const *)sighup_argv);
2409 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "pid %d: exec of %s failed: %s",
2410 getpid(), exim_path, strerror(errno));
2411 log_close_all();
2412 }
2413
2414 } /* End of main loop */
2415
2416 /* Control never reaches here */
2417 }
2418
2419 /* vi: aw ai sw=2
2420 */
2421 /* End of exim_daemon.c */