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Minor optimisation to calculation of load averages.
[citadel.git] / citadel / sysdep.c
1 /*
2  * $Id$
3  *
4  * Citadel "system dependent" stuff.
5  * See copyright.txt for copyright information.
6  *
7  * Here's where we (hopefully) have most parts of the Citadel server that
8  * would need to be altered to run the server in a non-POSIX environment.
9  * 
10  * If we ever port to a different platform and either have multiple
11  * variants of this file or simply load it up with #ifdefs.
12  *
13  */
14
15 #include "sysdep.h"
16 #include <stdlib.h>
17 #include <unistd.h>
18 #include <stdio.h>
19 #include <fcntl.h>
20 #include <ctype.h>
21 #include <signal.h>
22 #include <sys/types.h>
23 #include <sys/stat.h>
24 #include <sys/wait.h>
25 #include <sys/socket.h>
26 #include <syslog.h>
27 #include <sys/syslog.h>
28
29 #if TIME_WITH_SYS_TIME
30 # include <sys/time.h>
31 # include <time.h>
32 #else
33 # if HAVE_SYS_TIME_H
34 #  include <sys/time.h>
35 # else
36 #  include <time.h>
37 # endif
38 #endif
39
40 #include <limits.h>
41 #include <sys/resource.h>
42 #include <netinet/in.h>
43 #include <netinet/tcp.h>
44 #include <arpa/inet.h>
45 #include <netdb.h>
46 #include <sys/un.h>
47 #include <string.h>
48 #include <pwd.h>
49 #include <errno.h>
50 #include <stdarg.h>
51 #include <grp.h>
52 #ifdef HAVE_PTHREAD_H
53 #include <pthread.h>
54 #endif
55 #include <libcitadel.h>
56 #include "citadel.h"
57 #include "server.h"
58 #include "sysdep_decls.h"
59 #include "citserver.h"
60 #include "support.h"
61 #include "config.h"
62 #include "database.h"
63 #include "housekeeping.h"
64 #include "modules/crypto/serv_crypto.h" /* Needed for init_ssl, client_write_ssl, client_read_ssl, destruct_ssl */
65 #include "ecrash.h"
66
67 #ifdef HAVE_SYS_SELECT_H
68 #include <sys/select.h>
69 #endif
70
71 #ifndef HAVE_SNPRINTF
72 #include "snprintf.h"
73 #endif
74
75 #include "ctdl_module.h"
76
77 #ifdef DEBUG_MEMORY_LEAKS
78 struct igheap {
79         struct igheap *next;
80         char file[32];
81         int line;
82         void *block;
83 };
84
85 struct igheap *igheap = NULL;
86 #endif
87
88
89 pthread_mutex_t Critters[MAX_SEMAPHORES];       /* Things needing locking */
90 pthread_key_t MyConKey;                         /* TSD key for MyContext() */
91
92 int verbosity = DEFAULT_VERBOSITY;              /* Logging level */
93
94 struct CitContext masterCC;
95 time_t last_purge = 0;                          /* Last dead session purge */
96 static int num_threads = 0;                     /* Current number of threads */
97 static int num_workers = 0;                     /* Current number of worker threads */
98 int num_sessions = 0;                           /* Current number of sessions */
99
100 int syslog_facility = LOG_DAEMON;
101 int enable_syslog = 0;
102
103
104 /*
105  * Create an interface to lprintf that follows the coding convention.
106  * This is here until such time as we have replaced all calls to lprintf with CtdlLogPrintf
107  */
108  
109 void CtdlLogPrintf(enum LogLevel loglevel, const char *format, ...)
110 {
111         va_list arg_ptr;
112         va_start(arg_ptr, format);
113         vlprintf(loglevel, format, arg_ptr);
114         va_end(arg_ptr);
115 }
116
117
118 /*
119  * lprintf()  ...   Write logging information
120  */
121 void lprintf(enum LogLevel loglevel, const char *format, ...) {   
122         va_list arg_ptr;
123         va_start(arg_ptr, format);
124         vlprintf(loglevel, format, arg_ptr);
125         va_end(arg_ptr);
126 }
127
128 void vlprintf(enum LogLevel loglevel, const char *format, va_list arg_ptr)
129 {
130         char buf[SIZ], buf2[SIZ];
131
132         if (enable_syslog) {
133                 vsyslog((syslog_facility | loglevel), format, arg_ptr);
134         }
135
136         /* stderr output code */
137         if (enable_syslog || running_as_daemon) return;
138
139         /* if we run in forground and syslog is disabled, log to terminal */
140         if (loglevel <= verbosity) { 
141                 struct timeval tv;
142                 struct tm tim;
143                 time_t unixtime;
144
145                 gettimeofday(&tv, NULL);
146                 /* Promote to time_t; types differ on some OSes (like darwin) */
147                 unixtime = tv.tv_sec;
148                 localtime_r(&unixtime, &tim);
149                 if (CC->cs_pid != 0) {
150                         sprintf(buf,
151                                 "%04d/%02d/%02d %2d:%02d:%02d.%06ld [%3d] ",
152                                 tim.tm_year + 1900, tim.tm_mon + 1,
153                                 tim.tm_mday, tim.tm_hour, tim.tm_min,
154                                 tim.tm_sec, (long)tv.tv_usec,
155                                 CC->cs_pid);
156                 } else {
157                         sprintf(buf,
158                                 "%04d/%02d/%02d %2d:%02d:%02d.%06ld ",
159                                 tim.tm_year + 1900, tim.tm_mon + 1,
160                                 tim.tm_mday, tim.tm_hour, tim.tm_min,
161                                 tim.tm_sec, (long)tv.tv_usec);
162                 }
163                 vsprintf(buf2, format, arg_ptr);   
164
165                 fprintf(stderr, "%s%s", buf, buf2);
166                 fflush(stderr);
167         }
168 }   
169
170
171
172 /*
173  * Signal handler to shut down the server.
174  */
175
176 volatile int exit_signal = 0;
177 volatile int shutdown_and_halt = 0;
178 volatile int restart_server = 0;
179 volatile int running_as_daemon = 0;
180
181 static RETSIGTYPE signal_cleanup(int signum) {
182         CtdlLogPrintf(CTDL_DEBUG, "Caught signal %d; shutting down.\n", signum);
183         exit_signal = signum;
184 }
185
186
187
188
189 void InitialiseSemaphores(void)
190 {
191         int i;
192
193         /* Set up a bunch of semaphores to be used for critical sections */
194         for (i=0; i<MAX_SEMAPHORES; ++i) {
195                 pthread_mutex_init(&Critters[i], NULL);
196         }
197 }
198
199
200
201 /*
202  * Some initialization stuff...
203  */
204 void init_sysdep(void) {
205         sigset_t set;
206
207         /* Avoid vulnerabilities related to FD_SETSIZE if we can. */
208 #ifdef FD_SETSIZE
209 #ifdef RLIMIT_NOFILE
210         struct rlimit rl;
211         getrlimit(RLIMIT_NOFILE, &rl);
212         rl.rlim_cur = FD_SETSIZE;
213         rl.rlim_max = FD_SETSIZE;
214         setrlimit(RLIMIT_NOFILE, &rl);
215 #endif
216 #endif
217
218         /* If we've got OpenSSL, we're going to use it. */
219 #ifdef HAVE_OPENSSL
220         init_ssl();
221 #endif
222
223         /*
224          * Set up a place to put thread-specific data.
225          * We only need a single pointer per thread - it points to the
226          * CitContext structure (in the ContextList linked list) of the
227          * session to which the calling thread is currently bound.
228          */
229         if (pthread_key_create(&MyConKey, NULL) != 0) {
230                 CtdlLogPrintf(CTDL_CRIT, "Can't create TSD key: %s\n",
231                         strerror(errno));
232         }
233
234         /*
235          * The action for unexpected signals and exceptions should be to
236          * call signal_cleanup() to gracefully shut down the server.
237          */
238         sigemptyset(&set);
239         sigaddset(&set, SIGINT);
240         sigaddset(&set, SIGQUIT);
241         sigaddset(&set, SIGHUP);
242         sigaddset(&set, SIGTERM);
243         // sigaddset(&set, SIGSEGV);    commented out because
244         // sigaddset(&set, SIGILL);     we want core dumps
245         // sigaddset(&set, SIGBUS);
246         sigprocmask(SIG_UNBLOCK, &set, NULL);
247
248         signal(SIGINT, signal_cleanup);
249         signal(SIGQUIT, signal_cleanup);
250         signal(SIGHUP, signal_cleanup);
251         signal(SIGTERM, signal_cleanup);
252         // signal(SIGSEGV, signal_cleanup);     commented out because
253         // signal(SIGILL, signal_cleanup);      we want core dumps
254         // signal(SIGBUS, signal_cleanup);
255
256         /*
257          * Do not shut down the server on broken pipe signals, otherwise the
258          * whole Citadel service would come down whenever a single client
259          * socket breaks.
260          */
261         signal(SIGPIPE, SIG_IGN);
262 }
263
264
265
266 /*
267  * Obtain a semaphore lock to begin a critical section.
268  * but only if no one else has one
269  */
270 int try_critical_section(int which_one)
271 {
272         /* For all types of critical sections except those listed here,
273          * ensure nobody ever tries to do a critical section within a
274          * transaction; this could lead to deadlock.
275          */
276         if (    (which_one != S_FLOORCACHE)
277 #ifdef DEBUG_MEMORY_LEAKS
278                 && (which_one != S_DEBUGMEMLEAKS)
279 #endif
280                 && (which_one != S_RPLIST)
281         ) {
282                 cdb_check_handles();
283         }
284         return (pthread_mutex_trylock(&Critters[which_one]));
285 }
286
287
288 /*
289  * Obtain a semaphore lock to begin a critical section.
290  */
291 void begin_critical_section(int which_one)
292 {
293         /* CtdlLogPrintf(CTDL_DEBUG, "begin_critical_section(%d)\n", which_one); */
294
295         /* For all types of critical sections except those listed here,
296          * ensure nobody ever tries to do a critical section within a
297          * transaction; this could lead to deadlock.
298          */
299         if (    (which_one != S_FLOORCACHE)
300 #ifdef DEBUG_MEMORY_LEAKS
301                 && (which_one != S_DEBUGMEMLEAKS)
302 #endif
303                 && (which_one != S_RPLIST)
304         ) {
305                 cdb_check_handles();
306         }
307         pthread_mutex_lock(&Critters[which_one]);
308 }
309
310 /*
311  * Release a semaphore lock to end a critical section.
312  */
313 void end_critical_section(int which_one)
314 {
315         pthread_mutex_unlock(&Critters[which_one]);
316 }
317
318
319
320 /*
321  * This is a generic function to set up a master socket for listening on
322  * a TCP port.  The server shuts down if the bind fails.
323  *
324  */
325 int ig_tcp_server(char *ip_addr, int port_number, int queue_len, char **errormessage)
326 {
327         struct sockaddr_in sin;
328         int s, i;
329         int actual_queue_len;
330
331         actual_queue_len = queue_len;
332         if (actual_queue_len < 5) actual_queue_len = 5;
333
334         memset(&sin, 0, sizeof(sin));
335         sin.sin_family = AF_INET;
336         sin.sin_port = htons((u_short)port_number);
337         if (ip_addr == NULL) {
338                 sin.sin_addr.s_addr = INADDR_ANY;
339         }
340         else {
341                 sin.sin_addr.s_addr = inet_addr(ip_addr);
342         }
343                                                                                 
344         if (sin.sin_addr.s_addr == !INADDR_ANY) {
345                 sin.sin_addr.s_addr = INADDR_ANY;
346         }
347
348         s = socket(PF_INET, SOCK_STREAM, IPPROTO_TCP);
349
350         if (s < 0) {
351                 *errormessage = (char*) malloc(SIZ + 1);
352                 snprintf(*errormessage, SIZ, 
353                                  "citserver: Can't create a socket: %s",
354                                  strerror(errno));
355                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
356                 return(-1);
357         }
358
359         i = 1;
360         setsockopt(s, SOL_SOCKET, SO_REUSEADDR, &i, sizeof(i));
361
362         if (bind(s, (struct sockaddr *)&sin, sizeof(sin)) < 0) {
363                 *errormessage = (char*) malloc(SIZ + 1);
364                 snprintf(*errormessage, SIZ, 
365                                  "citserver: Can't bind: %s",
366                                  strerror(errno));
367                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
368                 close(s);
369                 return(-1);
370         }
371
372         /* set to nonblock - we need this for some obscure situations */
373         if (fcntl(s, F_SETFL, O_NONBLOCK) < 0) {
374                 *errormessage = (char*) malloc(SIZ + 1);
375                 snprintf(*errormessage, SIZ, 
376                                  "citserver: Can't set socket to non-blocking: %s",
377                                  strerror(errno));
378                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
379                 close(s);
380                 return(-1);
381         }
382
383         if (listen(s, actual_queue_len) < 0) {
384                 *errormessage = (char*) malloc(SIZ + 1);
385                 snprintf(*errormessage, SIZ, 
386                                  "citserver: Can't listen: %s",
387                                  strerror(errno));
388                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
389                 close(s);
390                 return(-1);
391         }
392
393         return(s);
394 }
395
396
397
398 /*
399  * Create a Unix domain socket and listen on it
400  */
401 int ig_uds_server(char *sockpath, int queue_len, char **errormessage)
402 {
403         struct sockaddr_un addr;
404         int s;
405         int i;
406         int actual_queue_len;
407
408         actual_queue_len = queue_len;
409         if (actual_queue_len < 5) actual_queue_len = 5;
410
411         i = unlink(sockpath);
412         if (i != 0) if (errno != ENOENT) {
413                 *errormessage = (char*) malloc(SIZ + 1);
414                 snprintf(*errormessage, SIZ, "citserver: can't unlink %s: %s",
415                         sockpath, strerror(errno));
416                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
417                 return(-1);
418         }
419
420         memset(&addr, 0, sizeof(addr));
421         addr.sun_family = AF_UNIX;
422         safestrncpy(addr.sun_path, sockpath, sizeof addr.sun_path);
423
424         s = socket(AF_UNIX, SOCK_STREAM, 0);
425         if (s < 0) {
426                 *errormessage = (char*) malloc(SIZ + 1);
427                 snprintf(*errormessage, SIZ, 
428                          "citserver: Can't create a socket: %s",
429                          strerror(errno));
430                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
431                 return(-1);
432         }
433
434         if (bind(s, (struct sockaddr *)&addr, sizeof(addr)) < 0) {
435                 *errormessage = (char*) malloc(SIZ + 1);
436                 snprintf(*errormessage, SIZ, 
437                          "citserver: Can't bind: %s",
438                          strerror(errno));
439                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
440                 return(-1);
441         }
442
443         /* set to nonblock - we need this for some obscure situations */
444         if (fcntl(s, F_SETFL, O_NONBLOCK) < 0) {
445                 *errormessage = (char*) malloc(SIZ + 1);
446                 snprintf(*errormessage, SIZ, 
447                          "citserver: Can't set socket to non-blocking: %s",
448                          strerror(errno));
449                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
450                 close(s);
451                 return(-1);
452         }
453
454         if (listen(s, actual_queue_len) < 0) {
455                 *errormessage = (char*) malloc(SIZ + 1);
456                 snprintf(*errormessage, SIZ, 
457                          "citserver: Can't listen: %s",
458                          strerror(errno));
459                 CtdlLogPrintf(CTDL_EMERG, "%s\n", *errormessage);
460                 return(-1);
461         }
462
463         chmod(sockpath, S_ISGID|S_IRUSR|S_IWUSR|S_IXUSR|S_IRGRP|S_IWGRP|S_IXGRP|S_IROTH|S_IWOTH|S_IXOTH);
464         return(s);
465 }
466
467
468
469 /*
470  * Return a pointer to the CitContext structure bound to the thread which
471  * called this function.  If there's no such binding (for example, if it's
472  * called by the housekeeper thread) then a generic 'master' CC is returned.
473  *
474  * This function is used *VERY* frequently and must be kept small.
475  */
476 struct CitContext *MyContext(void) {
477
478         register struct CitContext *c;
479
480         return ((c = (struct CitContext *) pthread_getspecific(MyConKey),
481                 c == NULL) ? &masterCC : c
482         );
483 }
484
485
486 /*
487  * Initialize a new context and place it in the list.  The session number
488  * used to be the PID (which is why it's called cs_pid), but that was when we
489  * had one process per session.  Now we just assign them sequentially, starting
490  * at 1 (don't change it to 0 because masterCC uses 0).
491  */
492 struct CitContext *CreateNewContext(void) {
493         struct CitContext *me;
494         static int next_pid = 0;
495
496         me = (struct CitContext *) malloc(sizeof(struct CitContext));
497         if (me == NULL) {
498                 CtdlLogPrintf(CTDL_ALERT, "citserver: can't allocate memory!!\n");
499                 return NULL;
500         }
501         memset(me, 0, sizeof(struct CitContext));
502
503         /* The new context will be created already in the CON_EXECUTING state
504          * in order to prevent another thread from grabbing it while it's
505          * being set up.
506          */
507         me->state = CON_EXECUTING;
508
509         /*
510          * Generate a unique session number and insert this context into
511          * the list.
512          */
513         begin_critical_section(S_SESSION_TABLE);
514         me->cs_pid = ++next_pid;
515         me->prev = NULL;
516         me->next = ContextList;
517         ContextList = me;
518         if (me->next != NULL) {
519                 me->next->prev = me;
520         }
521         ++num_sessions;
522         end_critical_section(S_SESSION_TABLE);
523         return(me);
524 }
525
526
527 /*
528  * The following functions implement output buffering. If the kernel supplies
529  * native TCP buffering (Linux & *BSD), use that; otherwise, emulate it with
530  * user-space buffering.
531  */
532 #ifndef HAVE_DARWIN
533 #ifdef TCP_CORK
534 #       define HAVE_TCP_BUFFERING
535 #else
536 #       ifdef TCP_NOPUSH
537 #               define HAVE_TCP_BUFFERING
538 #               define TCP_CORK TCP_NOPUSH
539 #       endif
540 #endif /* TCP_CORK */
541 #endif /* HAVE_DARWIN */
542
543 #ifdef HAVE_TCP_BUFFERING
544 static unsigned on = 1, off = 0;
545 void buffer_output(void) {
546         struct CitContext *ctx = MyContext();
547         setsockopt(ctx->client_socket, IPPROTO_TCP, TCP_CORK, &on, 4);
548         ctx->buffering = 1;
549 }
550
551 void unbuffer_output(void) {
552         struct CitContext *ctx = MyContext();
553         setsockopt(ctx->client_socket, IPPROTO_TCP, TCP_CORK, &off, 4);
554         ctx->buffering = 0;
555 }
556
557 void flush_output(void) {
558         struct CitContext *ctx = MyContext();
559         setsockopt(ctx->client_socket, IPPROTO_TCP, TCP_CORK, &off, 4);
560         setsockopt(ctx->client_socket, IPPROTO_TCP, TCP_CORK, &on, 4);
561 }
562 #else 
563 #ifdef HAVE_DARWIN
564 /* Stub functions for Darwin/OS X where TCP buffering isn't liked at all */
565 void buffer_output(void) {
566         CC->buffering = 0;
567 }
568 void unbuffer_output(void) {
569         CC->buffering = 0;
570 }
571 void flush_output(void) {
572 }
573 #else
574 void buffer_output(void) {
575         if (CC->buffering == 0) {
576                 CC->buffering = 1;
577                 CC->buffer_len = 0;
578                 CC->output_buffer = malloc(SIZ);
579         }
580 }
581
582 void flush_output(void) {
583         if (CC->buffering == 1) {
584                 client_write(CC->output_buffer, CC->buffer_len);
585                 CC->buffer_len = 0;
586         }
587 }
588
589 void unbuffer_output(void) {
590         if (CC->buffering == 1) {
591                 CC->buffering = 0;
592                 /* We don't call flush_output because we can't. */
593                 client_write(CC->output_buffer, CC->buffer_len);
594                 CC->buffer_len = 0;
595                 free(CC->output_buffer);
596                 CC->output_buffer = NULL;
597         }
598 }
599 #endif /* HAVE_DARWIN */
600 #endif /* HAVE_TCP_BUFFERING */
601
602
603
604 /*
605  * client_write()   ...    Send binary data to the client.
606  */
607 void client_write(char *buf, int nbytes)
608 {
609         int bytes_written = 0;
610         int retval;
611 #ifndef HAVE_TCP_BUFFERING
612         int old_buffer_len = 0;
613 #endif
614         t_context *Ctx;
615
616         Ctx = CC;
617         if (Ctx->redirect_buffer != NULL) {
618                 if ((Ctx->redirect_len + nbytes + 2) >= Ctx->redirect_alloc) {
619                         Ctx->redirect_alloc = (Ctx->redirect_alloc * 2) + nbytes;
620                         Ctx->redirect_buffer = realloc(Ctx->redirect_buffer,
621                                                 Ctx->redirect_alloc);
622                 }
623                 memcpy(&Ctx->redirect_buffer[Ctx->redirect_len], buf, nbytes);
624                 Ctx->redirect_len += nbytes;
625                 Ctx->redirect_buffer[Ctx->redirect_len] = 0;
626                 return;
627         }
628
629 #ifndef HAVE_TCP_BUFFERING
630         /* If we're buffering for later, do that now. */
631         if (Ctx->buffering) {
632                 old_buffer_len = Ctx->buffer_len;
633                 Ctx->buffer_len += nbytes;
634                 Ctx->output_buffer = realloc(Ctx->output_buffer, Ctx->buffer_len);
635                 memcpy(&Ctx->output_buffer[old_buffer_len], buf, nbytes);
636                 return;
637         }
638 #endif
639
640         /* Ok, at this point we're not buffering.  Go ahead and write. */
641
642 #ifdef HAVE_OPENSSL
643         if (Ctx->redirect_ssl) {
644                 client_write_ssl(buf, nbytes);
645                 return;
646         }
647 #endif
648
649         while (bytes_written < nbytes) {
650                 retval = write(Ctx->client_socket, &buf[bytes_written],
651                         nbytes - bytes_written);
652                 if (retval < 1) {
653                         CtdlLogPrintf(CTDL_ERR,
654                                 "client_write(%d bytes) failed: %s (%d)\n",
655                                 nbytes - bytes_written,
656                                 strerror(errno), errno);
657                         cit_backtrace();
658                         // CtdlLogPrintf(CTDL_DEBUG, "Tried to send: %s",  &buf[bytes_written]);
659                         Ctx->kill_me = 1;
660                         return;
661                 }
662                 bytes_written = bytes_written + retval;
663         }
664 }
665
666
667 /*
668  * cprintf()  ...   Send formatted printable data to the client.   It is
669  *                implemented in terms of client_write() but remains in
670  *                sysdep.c in case we port to somewhere without va_args...
671  */
672 void cprintf(const char *format, ...) {   
673         va_list arg_ptr;   
674         char buf[1024];   
675    
676         va_start(arg_ptr, format);   
677         if (vsnprintf(buf, sizeof buf, format, arg_ptr) == -1)
678                 buf[sizeof buf - 2] = '\n';
679         client_write(buf, strlen(buf)); 
680         va_end(arg_ptr);
681 }   
682
683
684 /*
685  * Read data from the client socket.
686  * Return values are:
687  *      1       Requested number of bytes has been read.
688  *      0       Request timed out.
689  *      -1      The socket is broken.
690  * If the socket breaks, the session will be terminated.
691  */
692 int client_read_to(char *buf, int bytes, int timeout)
693 {
694         int len,rlen;
695         fd_set rfds;
696         int fd;
697         struct timeval tv;
698         int retval;
699
700 #ifdef HAVE_OPENSSL
701         if (CC->redirect_ssl) {
702                 return (client_read_ssl(buf, bytes, timeout));
703         }
704 #endif
705         len = 0;
706         fd = CC->client_socket;
707         while(len<bytes) {
708                 FD_ZERO(&rfds);
709                 FD_SET(fd, &rfds);
710                 tv.tv_sec = timeout;
711                 tv.tv_usec = 0;
712
713                 retval = select( (fd)+1, 
714                                  &rfds, NULL, NULL, &tv);
715
716                 if (FD_ISSET(fd, &rfds) == 0) {
717                         return(0);
718                 }
719
720                 rlen = read(fd, &buf[len], bytes-len);
721                 if (rlen<1) {
722                         /* The socket has been disconnected! */
723                         CC->kill_me = 1;
724                         return(-1);
725                 }
726                 len = len + rlen;
727         }
728         return(1);
729 }
730
731 /*
732  * Read data from the client socket with default timeout.
733  * (This is implemented in terms of client_read_to() and could be
734  * justifiably moved out of sysdep.c)
735  */
736 INLINE int client_read(char *buf, int bytes)
737 {
738         return(client_read_to(buf, bytes, config.c_sleeping));
739 }
740
741
742 /*
743  * client_getln()   ...   Get a LF-terminated line of text from the client.
744  * (This is implemented in terms of client_read() and could be
745  * justifiably moved out of sysdep.c)
746  */
747 int client_getln(char *buf, int bufsize)
748 {
749         int i, retval;
750
751         /* Read one character at a time.
752          */
753         for (i = 0;;i++) {
754                 retval = client_read(&buf[i], 1);
755                 if (retval != 1 || buf[i] == '\n' || i == (bufsize-1))
756                         break;
757         }
758
759         /* If we got a long line, discard characters until the newline.
760          */
761         if (i == (bufsize-1))
762                 while (buf[i] != '\n' && retval == 1)
763                         retval = client_read(&buf[i], 1);
764
765         /* Strip the trailing LF, and the trailing CR if present.
766          */
767         buf[i] = 0;
768         while ( (i > 0)
769                 && ( (buf[i - 1]==13)
770                      || ( buf[i - 1]==10)) ) {
771                 i--;
772                 buf[i] = 0;
773         }
774         if (retval < 0) safestrncpy(&buf[i], "000", bufsize - i);
775         return(retval);
776 }
777
778
779 /*
780  * Cleanup any contexts that are left lying around
781  */
782 void context_cleanup(void)
783 {
784         struct CitContext *ptr = NULL;
785         struct CitContext *rem = NULL;
786
787         /*
788          * Clean up the contexts.
789          * There are no threads so no critical_section stuff is needed.
790          */
791         ptr = ContextList;
792         while (ptr != NULL){
793                 /* Remove the session from the active list */
794                 rem = ptr->next;
795                 --num_sessions;
796                 
797                 lprintf(CTDL_DEBUG, "Purging session %d\n", ptr->cs_pid);
798                 RemoveContext(ptr);
799                 free (ptr);
800                 ptr = rem;
801         }
802         
803 }
804
805
806 /*
807  * The system-dependent part of master_cleanup() - close the master socket.
808  */
809 void sysdep_master_cleanup(void) {
810         struct ServiceFunctionHook *serviceptr;
811         
812         /*
813          * close all protocol master sockets
814          */
815         for (serviceptr = ServiceHookTable; serviceptr != NULL;
816             serviceptr = serviceptr->next ) {
817
818                 if (serviceptr->tcp_port > 0)
819                         CtdlLogPrintf(CTDL_INFO, "Closing listener on port %d\n",
820                                 serviceptr->tcp_port);
821
822                 if (serviceptr->sockpath != NULL)
823                         CtdlLogPrintf(CTDL_INFO, "Closing listener on '%s'\n",
824                                 serviceptr->sockpath);
825
826                 close(serviceptr->msock);
827
828                 /* If it's a Unix domain socket, remove the file. */
829                 if (serviceptr->sockpath != NULL) {
830                         unlink(serviceptr->sockpath);
831                 }
832         }
833         
834         context_cleanup();
835         
836 #ifdef HAVE_OPENSSL
837         destruct_ssl();
838 #endif
839         CtdlDestroyProtoHooks();
840         CtdlDestroyDeleteHooks();
841         CtdlDestroyXmsgHooks();
842         CtdlDestroyNetprocHooks();
843         CtdlDestroyUserHooks();
844         CtdlDestroyMessageHook();
845         CtdlDestroyCleanupHooks();
846         CtdlDestroyFixedOutputHooks();  
847         CtdlDestroySessionHooks();
848         CtdlDestroyServiceHook();
849         #ifdef HAVE_BACKTRACE
850         eCrash_Uninit();
851         #endif
852 }
853
854
855
856 /*
857  * Terminate another session.
858  * (This could justifiably be moved out of sysdep.c because it
859  * no longer does anything that is system-dependent.)
860  */
861 void kill_session(int session_to_kill) {
862         struct CitContext *ptr;
863
864         begin_critical_section(S_SESSION_TABLE);
865         for (ptr = ContextList; ptr != NULL; ptr = ptr->next) {
866                 if (ptr->cs_pid == session_to_kill) {
867                         ptr->kill_me = 1;
868                 }
869         }
870         end_critical_section(S_SESSION_TABLE);
871 }
872
873 pid_t current_child;
874 void graceful_shutdown(int signum) {
875         kill(current_child, signum);
876         unlink(file_pid_file);
877         exit(0);
878 }
879
880
881 /*
882  * Start running as a daemon.
883  */
884 void start_daemon(int unused) {
885         int status = 0;
886         pid_t child = 0;
887         FILE *fp;
888         int do_restart = 0;
889
890         current_child = 0;
891
892         /* Close stdin/stdout/stderr and replace them with /dev/null.
893          * We don't just call close() because we don't want these fd's
894          * to be reused for other files.
895          */
896         chdir(ctdl_run_dir);
897
898         child = fork();
899         if (child != 0) {
900                 exit(0);
901         }
902         
903         signal(SIGHUP, SIG_IGN);
904         signal(SIGINT, SIG_IGN);
905         signal(SIGQUIT, SIG_IGN);
906
907         setsid();
908         umask(0);
909         freopen("/dev/null", "r", stdin);
910         freopen("/dev/null", "w", stdout);
911         freopen("/dev/null", "w", stderr);
912
913         do {
914                 current_child = fork();
915
916                 signal(SIGTERM, graceful_shutdown);
917         
918                 if (current_child < 0) {
919                         perror("fork");
920                         exit(errno);
921                 }
922         
923                 else if (current_child == 0) {
924                         return; /* continue starting citadel. */
925                 }
926         
927                 else {
928                         fp = fopen(file_pid_file, "w");
929                         if (fp != NULL) {
930                 /*
931                  * NB.. The pid file contains the pid of the actual server.
932                  * This is not the pid of the watcher process
933                  */
934                                 fprintf(fp, ""F_PID_T"\n", current_child);
935                                 fclose(fp);
936                         }
937                         waitpid(current_child, &status, 0);
938                 }
939
940                 do_restart = 0;
941
942                 /* Did the main process exit with an actual exit code? */
943                 if (WIFEXITED(status)) {
944
945                         /* Exit code 0 means the watcher should exit */
946                         if (WEXITSTATUS(status) == 0) {
947                                 do_restart = 0;
948                         }
949
950                         /* Exit code 101-109 means the watcher should exit */
951                         else if ( (WEXITSTATUS(status) >= 101) && (WEXITSTATUS(status) <= 109) ) {
952                                 do_restart = 0;
953                         }
954
955                         /* Any other exit code means we should restart. */
956                         else {
957                                 do_restart = 1;
958                         }
959                 }
960
961                 /* Any other type of termination (signals, etc.) should also restart. */
962                 else {
963                         do_restart = 1;
964                 }
965
966         } while (do_restart);
967
968         unlink(file_pid_file);
969         exit(WEXITSTATUS(status));
970 }
971
972
973
974 /*
975  * Generic routine to convert a login name to a full name (gecos)
976  * Returns nonzero if a conversion took place
977  */
978 int convert_login(char NameToConvert[]) {
979         struct passwd *pw;
980         int a;
981
982         pw = getpwnam(NameToConvert);
983         if (pw == NULL) {
984                 return(0);
985         }
986         else {
987                 strcpy(NameToConvert, pw->pw_gecos);
988                 for (a=0; a<strlen(NameToConvert); ++a) {
989                         if (NameToConvert[a] == ',') NameToConvert[a] = 0;
990                 }
991                 return(1);
992         }
993 }
994
995
996
997 /*
998  * New thread interface.
999  * To create a thread you must call one of the create thread functions.
1000  * You must pass it the address of (a pointer to a CtdlThreadNode initialised to NULL) like this
1001  * struct CtdlThreadNode *node = NULL;
1002  * pass in &node
1003  * If the thread is created *node will point to the thread control structure for the created thread.
1004  * If the thread creation fails *node remains NULL
1005  * Do not free the memory pointed to by *node, it doesn't belong to you.
1006  * If your thread function returns it will be started again without creating a new thread.
1007  * If your thread function wants to exit it should call CtdlThreadExit(ret_code);
1008  * This new interface duplicates much of the eCrash stuff. We should go for closer integration since that would
1009  * remove the need for the calls to eCrashRegisterThread and friends
1010  */
1011
1012
1013 struct CtdlThreadNode *CtdlThreadList = NULL;
1014
1015 /*
1016  * Condition variable and Mutex for thread garbage collection
1017  */
1018 /*static pthread_mutex_t thread_gc_mutex = PTHREAD_MUTEX_INITIALIZER;
1019 static pthread_cond_t thread_gc_cond = PTHREAD_COND_INITIALIZER;
1020 */
1021 static pthread_t GC_thread;
1022 static char *CtdlThreadStates[CTDL_THREAD_LAST_STATE];
1023 double CtdlThreadLoadAvg = 0;
1024 double CtdlThreadWorkerAvg = 0;
1025 /*
1026  * Pinched the following bits regarding signals from Kannel.org
1027  */
1028  
1029 /*
1030  * Change this thread's signal mask to block user-visible signals
1031  * (HUP, TERM, QUIT, INT), and store the old signal mask in
1032  * *old_set_storage.
1033  * Return 0 for success, or -1 if an error occurred.
1034  */
1035  
1036  /* 
1037   * This does not work in Darwin alias MacOS X alias Mach kernel,
1038   * however. So we define a dummy function doing nothing.
1039   */
1040 #if defined(DARWIN_OLD)
1041     static int pthread_sigmask();
1042 #endif
1043   
1044 static int ctdl_thread_internal_block_signals(sigset_t *old_set_storage)
1045 {
1046     int ret;
1047     sigset_t block_signals;
1048
1049     ret = sigemptyset(&block_signals);
1050     if (ret != 0) {
1051         CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC. Couldn't initialize signal set\n");
1052             return -1;
1053     }
1054     ret = sigaddset(&block_signals, SIGHUP);
1055     ret |= sigaddset(&block_signals, SIGTERM);
1056     ret |= sigaddset(&block_signals, SIGQUIT);
1057     ret |= sigaddset(&block_signals, SIGINT);
1058     if (ret != 0) {
1059         CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC. Couldn't add signal to signal set.\n");
1060             return -1;
1061     }
1062     ret = pthread_sigmask(SIG_BLOCK, &block_signals, old_set_storage);
1063     if (ret != 0) {
1064         CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC. Couldn't disable signals for thread creation\n");
1065         return -1;
1066     }
1067     return 0;
1068 }
1069
1070 static void ctdl_thread_internal_restore_signals(sigset_t *old_set)
1071 {
1072     int ret;
1073
1074     ret = pthread_sigmask(SIG_SETMASK, old_set, NULL);
1075     if (ret != 0) {
1076         CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC. Couldn't restore signal set.\n");
1077     }
1078 }
1079
1080
1081 void ctdl_thread_internal_cleanup(void)
1082 {
1083         int i;
1084         
1085         for (i=0; i<CTDL_THREAD_LAST_STATE; i++)
1086         {
1087                 free (CtdlThreadStates[i]);
1088         }
1089 }
1090
1091 void ctdl_thread_internal_init(void)
1092 {
1093         struct CtdlThreadNode *this_thread;
1094         int ret = 0;
1095         
1096         GC_thread = pthread_self();
1097         CtdlThreadStates[CTDL_THREAD_INVALID] = strdup ("Invalid Thread");
1098         CtdlThreadStates[CTDL_THREAD_VALID] = strdup("Valid Thread");
1099         CtdlThreadStates[CTDL_THREAD_CREATE] = strdup("Thread being Created");
1100         CtdlThreadStates[CTDL_THREAD_CANCELLED] = strdup("Thread Cancelled");
1101         CtdlThreadStates[CTDL_THREAD_EXITED] = strdup("Thread Exited");
1102         CtdlThreadStates[CTDL_THREAD_STOPPING] = strdup("Thread Stopping");
1103         CtdlThreadStates[CTDL_THREAD_STOP_REQ] = strdup("Thread Stop Requested");
1104         CtdlThreadStates[CTDL_THREAD_SLEEPING] = strdup("Thread Sleeping");
1105         CtdlThreadStates[CTDL_THREAD_RUNNING] = strdup("Thread Running");
1106         CtdlThreadStates[CTDL_THREAD_BLOCKED] = strdup("Thread Blocked");
1107         
1108         /* Get ourself a thread entry */
1109         this_thread = malloc(sizeof(struct CtdlThreadNode));
1110         if (this_thread == NULL) {
1111                 CtdlLogPrintf(CTDL_EMERG, "Thread system, can't allocate CtdlThreadNode, exiting\n");
1112                 return;
1113         }
1114         // Ensuring this is zero'd means we make sure the thread doesn't start doing its thing until we are ready.
1115         memset (this_thread, 0, sizeof(struct CtdlThreadNode));
1116         
1117         /* We are garbage collector so create us as running */
1118         this_thread->state = CTDL_THREAD_RUNNING;
1119         
1120         if ((ret = pthread_attr_init(&this_thread->attr))) {
1121                 CtdlLogPrintf(CTDL_EMERG, "Thread system, pthread_attr_init: %s\n", strerror(ret));
1122                 free(this_thread);
1123                 return;
1124         }
1125
1126         this_thread->name = strdup("Garbage Collection Thread");
1127         
1128         pthread_mutex_init (&(this_thread->ThreadMutex), NULL);
1129         pthread_cond_init (&(this_thread->ThreadCond), NULL);
1130         
1131         this_thread->tid = GC_thread;
1132         
1133         num_threads++;  // Increase the count of threads in the system.
1134
1135         this_thread->next = CtdlThreadList;
1136         CtdlThreadList = this_thread;
1137         if (this_thread->next)
1138                 this_thread->next->prev = this_thread;
1139         /* Set up start times */
1140         gettimeofday(&this_thread->start_time, NULL);           /* Time this thread started */
1141         memcpy(&this_thread->last_state_change, &this_thread->start_time, sizeof (struct timeval));     /* Changed state so mark it. */
1142 }
1143
1144
1145 /*
1146  * A function to update a threads load averages
1147  */
1148  void ctdl_thread_internal_update_avgs(struct CtdlThreadNode *this_thread)
1149  {
1150         struct timeval now, result;
1151         double last_duration;
1152
1153         gettimeofday(&now, NULL);
1154         timersub(&now, &(this_thread->last_state_change), &result);
1155         // result now has a timeval for the time we spent in the last state since we last updated
1156         last_duration = (double)result.tv_sec + ((double)result.tv_usec / (double) 1000000);
1157         if (this_thread->state == CTDL_THREAD_SLEEPING)
1158                 this_thread->avg_sleeping += last_duration;
1159         if (this_thread->state == CTDL_THREAD_RUNNING)
1160                 this_thread->avg_running += last_duration;
1161         if (this_thread->state == CTDL_THREAD_BLOCKED)
1162                 this_thread->avg_blocked += last_duration;
1163         memcpy (&this_thread->last_state_change, &now, sizeof (struct timeval));
1164 }
1165
1166 /*
1167  * A function to chenge the state of a thread
1168  */
1169 void ctdl_thread_internal_change_state (struct CtdlThreadNode *this_thread, enum CtdlThreadState new_state)
1170 {
1171         /*
1172          * Wether we change state or not we need update the load values
1173          */
1174         pthread_mutex_lock(&this_thread->ThreadMutex); /* To prevent race condition of a sleeping thread */
1175         ctdl_thread_internal_update_avgs(this_thread);
1176         if ((new_state == CTDL_THREAD_STOP_REQ) && (this_thread->state > CTDL_THREAD_STOP_REQ))
1177                 this_thread->state = new_state;
1178         if (((new_state == CTDL_THREAD_SLEEPING) || (new_state == CTDL_THREAD_BLOCKED)) && (this_thread->state == CTDL_THREAD_RUNNING))
1179                 this_thread->state = new_state;
1180         if ((new_state == CTDL_THREAD_RUNNING) && ((this_thread->state == CTDL_THREAD_SLEEPING) || (this_thread->state == CTDL_THREAD_BLOCKED)))
1181                 this_thread->state = new_state;
1182         pthread_mutex_unlock(&this_thread->ThreadMutex);
1183 }
1184
1185
1186 /*
1187  * A function to tell all threads to exit
1188  */
1189 void CtdlThreadStopAll(void)
1190 {
1191         struct CtdlThreadNode *this_thread;
1192         
1193         begin_critical_section(S_THREAD_LIST);
1194         this_thread = CtdlThreadList;
1195         while(this_thread)
1196         {
1197                 if (this_thread->thread_func) // Don't tell garbage collector to stop
1198                 {
1199                         ctdl_thread_internal_change_state (this_thread, CTDL_THREAD_STOP_REQ);
1200                         pthread_cond_signal(&this_thread->ThreadCond);
1201                         CtdlLogPrintf(CTDL_DEBUG, "Thread system stopping thread \"%s\" (%ld).\n", this_thread->name, this_thread->tid);
1202                 }
1203                 this_thread = this_thread->next;
1204         }
1205         end_critical_section(S_THREAD_LIST);
1206 }
1207
1208
1209 /*
1210  * A function to signal that we need to do garbage collection on the thread list
1211  */
1212 void CtdlThreadGC(void)
1213 {
1214         struct CtdlThreadNode *this_thread;
1215         
1216         CtdlLogPrintf(CTDL_DEBUG, "Thread system signalling garbage collection.\n");
1217         
1218         begin_critical_section(S_THREAD_LIST);
1219         this_thread = CtdlThreadList;
1220         while(this_thread)
1221         {
1222                 if (!this_thread->thread_func)
1223                         pthread_cond_signal(&this_thread->ThreadCond);
1224                         
1225                 this_thread = this_thread->next;
1226         }
1227         end_critical_section(S_THREAD_LIST);
1228 }
1229
1230
1231 /*
1232  * A function to return the number of threads running in the system
1233  */
1234 int CtdlThreadGetCount(void)
1235 {
1236         return num_threads;
1237 }
1238
1239 /*
1240  * A function to find the thread structure for this thread
1241  */
1242 struct CtdlThreadNode *CtdlThreadSelf(void)
1243 {
1244         pthread_t self_tid;
1245         struct CtdlThreadNode *this_thread;
1246         
1247         self_tid = pthread_self();
1248         
1249         begin_critical_section(S_THREAD_LIST);
1250         this_thread = CtdlThreadList;
1251         while(this_thread)
1252         {
1253                 if (pthread_equal(self_tid, this_thread->tid))
1254                 {
1255                         end_critical_section(S_THREAD_LIST);
1256                         return this_thread;
1257                 }
1258                 this_thread = this_thread->next;
1259         }
1260         end_critical_section(S_THREAD_LIST);
1261         return NULL;
1262 }
1263
1264
1265
1266
1267 /*
1268  * A function to rename a thread
1269  * Returns a char * and the caller owns the memory and should free it
1270  */
1271 char *CtdlThreadName(struct CtdlThreadNode *thread, char *name)
1272 {
1273         struct CtdlThreadNode *this_thread;
1274         char *old_name;
1275         
1276         if (!thread)
1277                 this_thread = CtdlThreadSelf();
1278         else
1279                 this_thread = thread;
1280         if (!this_thread)
1281         {
1282                 CtdlLogPrintf(CTDL_WARNING, "Thread system WARNING. Attempt to CtdlThreadRename() a non thread.\n");
1283                 return NULL;
1284         }
1285         begin_critical_section(S_THREAD_LIST);
1286         old_name = this_thread->name;
1287         if (name)
1288                 this_thread->name = strdup (name);
1289         else
1290                 old_name = strdup(old_name);
1291         end_critical_section (S_THREAD_LIST);
1292         return (old_name);
1293 }       
1294
1295
1296 /*
1297  * A function to force a thread to exit
1298  */
1299 void CtdlThreadCancel(struct CtdlThreadNode *thread)
1300 {
1301         struct CtdlThreadNode *this_thread;
1302         
1303         if (!thread)
1304                 this_thread = CtdlThreadSelf();
1305         else
1306                 this_thread = thread;
1307         if (!this_thread)
1308         {
1309                 CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC. Attempt to CtdlThreadCancel() a non thread.\n");
1310                 CtdlThreadStopAll();
1311                 return;
1312         }
1313         
1314         if (!this_thread->thread_func)
1315         {
1316                 CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC. Attempt to CtdlThreadCancel() the garbage collector.\n");
1317                 CtdlThreadStopAll();
1318                 return;
1319         }
1320         
1321         begin_critical_section(S_THREAD_LIST);
1322         ctdl_thread_internal_change_state (this_thread, CTDL_THREAD_CANCELLED);
1323         pthread_cancel(this_thread->tid);
1324         end_critical_section (S_THREAD_LIST);
1325 }
1326
1327
1328
1329 /*
1330  * A function for a thread to check if it has been asked to stop
1331  */
1332 int CtdlThreadCheckStop(void)
1333 {
1334         struct CtdlThreadNode *this_thread;
1335         
1336         this_thread = CtdlThreadSelf();
1337         if (!this_thread)
1338         {
1339                 CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC, CtdlThreadCheckStop() called by a non thread.\n");
1340                 CtdlThreadStopAll();
1341                 return -1;
1342         }
1343         if(this_thread->state == CTDL_THREAD_STOP_REQ)
1344         {
1345                 this_thread->state = CTDL_THREAD_STOPPING;
1346                 return -1;
1347         }
1348         else if(this_thread->state < CTDL_THREAD_STOP_REQ)
1349                 return -1;
1350                 
1351         return 0;
1352 }
1353
1354
1355 /*
1356  * A function to ask a thread to exit
1357  * The thread must call CtdlThreadCheckStop() periodically to determine if it should exit
1358  */
1359 void CtdlThreadStop(struct CtdlThreadNode *thread)
1360 {
1361         struct CtdlThreadNode *this_thread;
1362         
1363         if (!thread)
1364                 this_thread = CtdlThreadSelf();
1365         else
1366                 this_thread = thread;
1367         if (!this_thread)
1368                 return;
1369         if (!(this_thread->thread_func))
1370                 return;         // Don't stop garbage collector
1371                 
1372         begin_critical_section (S_THREAD_LIST);
1373         ctdl_thread_internal_change_state (this_thread, CTDL_THREAD_STOP_REQ);
1374         pthread_cond_signal(&this_thread->ThreadCond);
1375         end_critical_section(S_THREAD_LIST);
1376 }
1377
1378 /*
1379  * So we now have a sleep command that works with threads but it is in seconds
1380  */
1381 void CtdlThreadSleep(int secs)
1382 {
1383         struct timespec wake_time;
1384         struct timeval time_now;
1385         struct CtdlThreadNode *self;
1386         
1387         
1388         self = CtdlThreadSelf();
1389         if (!self)
1390         {
1391                 CtdlLogPrintf(CTDL_WARNING, "CtdlThreadSleep() called by something that is not a thread. Should we die?\n");
1392                 return;
1393         }
1394         
1395         begin_critical_section(S_THREAD_LIST);
1396         ctdl_thread_internal_change_state (self, CTDL_THREAD_SLEEPING);
1397         pthread_mutex_lock(&self->ThreadMutex); /* Prevent something asking us to awaken before we've gone to sleep */
1398         end_critical_section(S_THREAD_LIST);
1399         
1400         memset (&wake_time, 0, sizeof(struct timespec));
1401         gettimeofday(&time_now, NULL);
1402         wake_time.tv_sec = time_now.tv_sec + secs;
1403         wake_time.tv_nsec = time_now.tv_usec * 10;
1404         pthread_cond_timedwait(&self->ThreadCond, &self->ThreadMutex, &wake_time);
1405         begin_critical_section(S_THREAD_LIST);
1406         pthread_mutex_unlock(&self->ThreadMutex);
1407         ctdl_thread_internal_change_state (self, CTDL_THREAD_RUNNING);
1408         end_critical_section(S_THREAD_LIST);
1409 }
1410
1411
1412 /*
1413  * Routine to clean up our thread function on exit
1414  */
1415 static void ctdl_internal_thread_cleanup(void *arg)
1416 {
1417         struct CtdlThreadNode *this_thread;
1418         this_thread = CtdlThreadSelf();
1419         /*
1420          * In here we were called by the current thread because it is exiting
1421          * NB. WE ARE THE CURRENT THREAD
1422          */
1423         CtdlLogPrintf(CTDL_NOTICE, "Thread \"%s\" (%ld) exited.\n", this_thread->name, this_thread->tid);
1424         begin_critical_section(S_THREAD_LIST);
1425         #ifdef HAVE_BACKTRACE
1426         eCrash_UnregisterThread();
1427         #endif
1428         this_thread->state = CTDL_THREAD_EXITED;        // needs to be last thing else house keeping will unlink us too early
1429         end_critical_section(S_THREAD_LIST);
1430 //      CtdlThreadGC();
1431 }
1432
1433 /*
1434  * A quick function to show the load averages
1435  */
1436 void ctdl_thread_internal_calc_loadavg(void)
1437 {
1438         struct CtdlThreadNode *that_thread;
1439         double load_avg, worker_avg;
1440         int workers = 0;
1441
1442         begin_critical_section(S_THREAD_LIST);
1443         that_thread = CtdlThreadList;
1444         load_avg = 0;
1445         worker_avg = 0;
1446         while(that_thread)
1447         {
1448                 /* Update load averages */
1449                 pthread_mutex_lock(&that_thread->ThreadMutex);
1450                 ctdl_thread_internal_update_avgs(that_thread);
1451                 that_thread->load_avg = that_thread->avg_sleeping + that_thread->avg_running + that_thread->avg_blocked;
1452                 that_thread->load_avg = that_thread->avg_running / that_thread->load_avg * 100;
1453                 that_thread->avg_sleeping /= 2;
1454                 that_thread->avg_running /= 2;
1455                 that_thread->avg_blocked /= 2;
1456                 load_avg += that_thread->load_avg;
1457                 if (that_thread->flags & CTDLTHREAD_WORKER)
1458                 {
1459                         worker_avg += that_thread->load_avg;
1460                         workers++;
1461                 }
1462 #ifdef WITH_THREADLOG
1463                 CtdlLogPrintf(CTDL_DEBUG, "CtdlThread, \"%s\" (%ld) \"%s\" %f %f %f %f.\n",
1464                         that_thread->name,
1465                         that_thread->tid,
1466                         CtdlThreadStates[that_thread->state],
1467                         that_thread->avg_sleeping,
1468                         that_thread->avg_running,
1469                         that_thread->avg_blocked,
1470                         that_thread->load_avg);
1471 #endif
1472                 pthread_mutex_unlock(&that_thread->ThreadMutex);
1473                 that_thread = that_thread->next;
1474         }
1475         CtdlThreadLoadAvg = load_avg/num_threads;
1476         CtdlThreadWorkerAvg = worker_avg/workers;
1477 #ifdef WITH_THREADLOG
1478         CtdlLogPrintf(CTDL_INFO, "System load average %f, workers averag %f\n", CtdlThreadLoadAvg, CtdlThreadWorkerAvg);
1479 #endif
1480         end_critical_section(S_THREAD_LIST);
1481 }
1482
1483
1484 /*
1485  * Garbage collection routine.
1486  * Gets called by main() in a loop to clean up the thread list periodically.
1487  */
1488 void ctdl_internal_thread_gc (void)
1489 {
1490         struct CtdlThreadNode *this_thread, *that_thread;
1491         int workers = 0;
1492         
1493         /* Handle exiting of garbage collector thread */
1494         if(num_threads == 1)
1495                 CtdlThreadList->state = CTDL_THREAD_EXITED;
1496         
1497 #ifdef WITH_THREADLOG
1498         CtdlLogPrintf(CTDL_DEBUG, "Thread system running garbage collection.\n");
1499 #endif
1500         /*
1501          * Woke up to do garbage collection
1502          */
1503         begin_critical_section(S_THREAD_LIST);
1504         this_thread = CtdlThreadList;
1505         while(this_thread)
1506         {
1507                 that_thread = this_thread;
1508                 this_thread = this_thread->next;
1509                 
1510                 /* Do we need to clean up this thread? */
1511                 if (that_thread->state != CTDL_THREAD_EXITED)
1512                 {
1513                         if(that_thread->flags & CTDLTHREAD_WORKER)
1514                                 workers++;      /* Sanity check on number of worker threads */
1515                         continue;
1516                 }
1517                 
1518                 if (pthread_equal(that_thread->tid, pthread_self()) && that_thread->thread_func)
1519                 {       /* Sanity check */
1520                         end_critical_section(S_THREAD_LIST);
1521                         CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC, a thread is trying to clean up after itself.\n");
1522                         CtdlThreadStopAll();
1523                         return;
1524                 }
1525                 
1526                 if (num_threads <= 0)
1527                 {       /* Sanity check */
1528                         end_critical_section (S_THREAD_LIST);
1529                         CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC, num_threads <= 0 and trying to do Garbage Collection.\n");
1530                         CtdlThreadStopAll();
1531                         return;
1532                 }
1533
1534                 /* If we are unlinking the list head then the next becomes the list head */
1535                 if (that_thread == CtdlThreadList)
1536                         CtdlThreadList = that_thread->next;
1537                 if(that_thread->prev)
1538                         that_thread->prev->next = that_thread->next;
1539                 if(that_thread->next)
1540                         that_thread->next->prev = that_thread->next;
1541                 num_threads--;
1542                 if(that_thread->flags & CTDLTHREAD_WORKER)
1543                         num_workers--;  /* This is a wroker thread so reduce the count. */
1544                 
1545                 /*
1546                  * Join on the thread to do clean up and prevent memory leaks
1547                  * Also makes sure the thread has cleaned up after itself before we remove it from the list
1548                  * If that thread has no function it must be the garbage collector
1549                  */
1550                 if (that_thread->thread_func)
1551                         pthread_join (that_thread->tid, NULL);
1552                 
1553                 /*
1554                  * Now we own that thread entry
1555                  */
1556                 CtdlLogPrintf(CTDL_INFO, "Garbage Collection for thread \"%s\" (%ld).\n", that_thread->name, that_thread->tid);
1557                 if(that_thread->name)
1558                         free(that_thread->name);
1559                 pthread_mutex_destroy(&that_thread->ThreadMutex);
1560                 pthread_cond_destroy(&that_thread->ThreadCond);
1561                 pthread_attr_destroy(&that_thread->attr);
1562                 free(that_thread);
1563         }
1564         
1565         /* Sanity check number of worker threads */
1566         if (workers != num_workers)
1567         {
1568                 end_critical_section(S_THREAD_LIST);
1569                 CtdlLogPrintf(CTDL_EMERG, "Thread system PANIC, discrepancy in number of worker threads. Counted %d, should be %d.\n", workers, num_workers);
1570                 return;
1571         }
1572         end_critical_section(S_THREAD_LIST);
1573 }
1574
1575
1576
1577  
1578 /*
1579  * Runtime function for a Citadel Thread.
1580  * This initialises the threads environment and then calls the user supplied thread function
1581  * Note that this is the REAL thread function and wraps the users thread function.
1582  */ 
1583 static void *ctdl_internal_thread_func (void *arg)
1584 {
1585         struct CtdlThreadNode *this_thread;
1586         void *ret = NULL;
1587
1588         /* lock and unlock the thread list.
1589          * This causes this thread to wait until all its creation stuff has finished before it
1590          * can continue its execution.
1591          */
1592         begin_critical_section(S_THREAD_LIST);
1593         // Get our thread data structure
1594         this_thread = (struct CtdlThreadNode *) arg;
1595         this_thread->state = CTDL_THREAD_RUNNING;
1596         this_thread->pid = getpid();
1597         gettimeofday(&this_thread->start_time, NULL);           /* Time this thread started */
1598         memcpy(&this_thread->last_state_change, &this_thread->start_time, sizeof (struct timeval));     /* Changed state so mark it. */
1599         end_critical_section(S_THREAD_LIST);
1600                 
1601         // Tell the world we are here
1602         CtdlLogPrintf(CTDL_NOTICE, "Created a new thread \"%s\" (%ld). \n", this_thread->name, this_thread->tid);
1603
1604         // Register the cleanup function to take care of when we exit.
1605         pthread_cleanup_push(ctdl_internal_thread_cleanup, NULL);
1606         
1607         
1608         /*
1609          * run the thread to do the work
1610          */
1611         ret = (this_thread->thread_func)(this_thread->user_args);
1612         
1613         /*
1614          * Our thread is exiting either because it wanted to end or because the server is stopping
1615          * We need to clean up
1616          */
1617         pthread_cleanup_pop(1); // Execute our cleanup routine and remove it
1618         
1619         return(ret);
1620 }
1621
1622
1623  
1624 /*
1625  * Internal function to create a thread.
1626  * Must be called from within a S_THREAD_LIST critical section
1627  */ 
1628 struct CtdlThreadNode *ctdl_internal_create_thread(char *name, long flags, void *(*thread_func) (void *arg), void *args)
1629 {
1630         int ret = 0;
1631         struct CtdlThreadNode *this_thread;
1632         int sigtrick = 0;
1633         sigset_t old_signal_set;
1634
1635         if (num_threads >= 32767)
1636         {
1637                 CtdlLogPrintf(CTDL_EMERG, "Thread system. Thread list full.\n");
1638                 return NULL;
1639         }
1640                 
1641         this_thread = malloc(sizeof(struct CtdlThreadNode));
1642         if (this_thread == NULL) {
1643                 CtdlLogPrintf(CTDL_EMERG, "Thread system, can't allocate CtdlThreadNode, exiting\n");
1644                 return NULL;
1645         }
1646         // Ensuring this is zero'd means we make sure the thread doesn't start doing its thing until we are ready.
1647         memset (this_thread, 0, sizeof(struct CtdlThreadNode));
1648         
1649         this_thread->state = CTDL_THREAD_CREATE;
1650         
1651         if ((ret = pthread_attr_init(&this_thread->attr))) {
1652                 CtdlLogPrintf(CTDL_EMERG, "Thread system, pthread_attr_init: %s\n", strerror(ret));
1653                 free(this_thread);
1654                 return NULL;
1655         }
1656
1657         /* Our per-thread stacks need to be bigger than the default size,
1658          * otherwise the MIME parser crashes on FreeBSD, and the IMAP service
1659          * crashes on 64-bit Linux.
1660          */
1661         if (flags & CTDLTHREAD_BIGSTACK)
1662         {
1663                 CtdlLogPrintf(CTDL_INFO, "Thread system. Creating BIG STACK thread.\n");
1664                 if ((ret = pthread_attr_setstacksize(&this_thread->attr, THREADSTACKSIZE))) {
1665                         CtdlLogPrintf(CTDL_EMERG, "Thread system, pthread_attr_setstacksize: %s\n",
1666                                 strerror(ret));
1667                         pthread_attr_destroy(&this_thread->attr);
1668                         free(this_thread);
1669                         return NULL;
1670                 }
1671         }
1672
1673         /*
1674          * If we got here we are going to create the thread so we must initilise the structure
1675          * first because most implimentations of threading can't create it in a stopped state
1676          * and it might want to do things with its structure that aren't initialised otherwise.
1677          */
1678         if(name)
1679         {
1680                 this_thread->name = strdup(name);
1681         }
1682         else
1683         {
1684                 this_thread->name = strdup("Un-named Thread");
1685         }
1686         
1687         this_thread->flags = flags;
1688         this_thread->thread_func = thread_func;
1689         this_thread->user_args = args;
1690         pthread_mutex_init (&(this_thread->ThreadMutex), NULL);
1691         pthread_cond_init (&(this_thread->ThreadCond), NULL);
1692         
1693         /*
1694          * We want to make sure that only the main thread handles signals,
1695          * so that each signal is handled exactly once.  To do this, we
1696          * make sure that each new thread has all the signals that we
1697          * handle blocked.  To avoid race conditions, we block them in 
1698          * the spawning thread first, then create the new thread (which
1699          * inherits the settings), and then restore the old settings in
1700          * the spawning thread.  This means that there is a brief period
1701          * when no signals will be processed, but during that time they
1702          * should be queued by the operating system.
1703          */
1704         if (pthread_equal(GC_thread, pthread_self())) 
1705             sigtrick = ctdl_thread_internal_block_signals(&old_signal_set) == 0;
1706
1707         /*
1708          * We pass this_thread into the thread as its args so that it can find out information
1709          * about itself and it has a bit of storage space for itself, not to mention that the REAL
1710          * thread function needs to finish off the setup of the structure
1711          */
1712         if ((ret = pthread_create(&this_thread->tid, &this_thread->attr, ctdl_internal_thread_func, this_thread) != 0))
1713         {
1714
1715                 CtdlLogPrintf(CTDL_ALERT, "Thread system, Can't create thread: %s\n",
1716                         strerror(ret));
1717                 if (this_thread->name)
1718                         free (this_thread->name);
1719                 pthread_mutex_destroy(&(this_thread->ThreadMutex));
1720                 pthread_cond_destroy(&(this_thread->ThreadCond));
1721                 pthread_attr_destroy(&this_thread->attr);
1722                 free(this_thread);
1723                 if (sigtrick)
1724                         ctdl_thread_internal_restore_signals(&old_signal_set);
1725                 return NULL;
1726         }
1727         
1728         if (sigtrick)
1729                 ctdl_thread_internal_restore_signals(&old_signal_set);
1730         
1731         num_threads++;  // Increase the count of threads in the system.
1732         if(this_thread->flags & CTDLTHREAD_WORKER)
1733                 num_workers++;
1734
1735         this_thread->next = CtdlThreadList;
1736         CtdlThreadList = this_thread;
1737         if (this_thread->next)
1738                 this_thread->next->prev = this_thread;
1739         // Register for tracing
1740         #ifdef HAVE_BACKTRACE
1741         eCrash_RegisterThread(this_thread->name, 0);
1742         #endif
1743         return this_thread;
1744 }
1745
1746 /*
1747  * Wrapper function to create a thread
1748  * ensures the critical section and other protections are in place.
1749  * char *name = name to give to thread, if NULL, use generic name
1750  * int flags = flags to determine type of thread and standard facilities
1751  */
1752 struct CtdlThreadNode *CtdlThreadCreate(char *name, long flags, void *(*thread_func) (void *arg), void *args)
1753 {
1754         struct CtdlThreadNode *ret = NULL;
1755         
1756         begin_critical_section(S_THREAD_LIST);
1757         ret = ctdl_internal_create_thread(name, flags, thread_func, args);
1758         end_critical_section(S_THREAD_LIST);
1759         return ret;
1760 }
1761
1762
1763
1764 /*
1765  * A warapper function for select so we can show a thread as blocked
1766  */
1767 int CtdlThreadSelect(int n, fd_set *readfds, fd_set *writefds, fd_set *exceptfds, const struct timeval *timeout)
1768 {
1769         struct CtdlThreadNode *self;
1770         int ret;
1771         
1772         self = CtdlThreadSelf();
1773         ctdl_thread_internal_change_state(self, CTDL_THREAD_BLOCKED);
1774         ret = select(n, readfds, writefds, exceptfds, timeout);
1775         ctdl_thread_internal_change_state(self, CTDL_THREAD_RUNNING);
1776         return ret;
1777 }
1778
1779 /*
1780  * Purge all sessions which have the 'kill_me' flag set.
1781  * This function has code to prevent it from running more than once every
1782  * few seconds, because running it after every single unbind would waste a lot
1783  * of CPU time and keep the context list locked too much.  To force it to run
1784  * anyway, set "force" to nonzero.
1785  *
1786  *
1787  * After that's done, we raise the size of the worker thread pool
1788  * if such an action is appropriate.
1789  */
1790 void dead_session_purge(int force) {
1791         struct CitContext *ptr, *ptr2;          /* general-purpose utility pointer */
1792         struct CitContext *rem = NULL;  /* list of sessions to be destroyed */
1793         
1794         CtdlThreadPushName("dead_session_purge");
1795         
1796         if (force == 0) {
1797                 if ( (time(NULL) - last_purge) < 5 ) {
1798                         CtdlThreadPopName();
1799                         return; /* Too soon, go away */
1800                 }
1801         }
1802         time(&last_purge);
1803
1804         begin_critical_section(S_SESSION_TABLE);
1805         ptr = ContextList;
1806         while (ptr) {
1807                 ptr2 = ptr;
1808                 ptr = ptr->next;
1809                 
1810                 if ( (ptr2->state == CON_IDLE) && (ptr2->kill_me) ) {
1811                         /* Remove the session from the active list */
1812                         if (ptr2->prev) {
1813                                 ptr2->prev->next = ptr2->next;
1814                         }
1815                         else {
1816                                 ContextList = ptr2->next;
1817                         }
1818                         if (ptr2->next) {
1819                                 ptr2->next->prev = ptr2->prev;
1820                         }
1821
1822                         --num_sessions;
1823
1824                         /* And put it on our to-be-destroyed list */
1825                         ptr2->next = rem;
1826                         rem = ptr2;
1827
1828                 }
1829         }
1830         end_critical_section(S_SESSION_TABLE);
1831
1832         /* Now that we no longer have the session list locked, we can take
1833          * our time and destroy any sessions on the to-be-killed list, which
1834          * is allocated privately on this thread's stack.
1835          */
1836         while (rem != NULL) {
1837                 CtdlLogPrintf(CTDL_DEBUG, "Purging session %d\n", rem->cs_pid);
1838                 RemoveContext(rem);
1839                 ptr = rem;
1840                 rem = rem->next;
1841                 free(ptr);
1842         }
1843
1844         /* Raise the size of the worker thread pool if necessary. */
1845         begin_critical_section(S_THREAD_LIST);
1846         if ( (num_sessions > num_workers)
1847            && (num_workers < config.c_max_workers) ) {
1848                 ctdl_internal_create_thread("Worker Thread", CTDLTHREAD_BIGSTACK + CTDLTHREAD_WORKER, worker_thread, NULL);
1849         }
1850         end_critical_section(S_THREAD_LIST);
1851         // FIXME: reduce the number of worker threads too
1852         
1853         CtdlThreadPopName();
1854         
1855 }
1856
1857
1858
1859
1860
1861 /*
1862  * masterCC is the context we use when not attached to a session.  This
1863  * function initializes it.
1864  */
1865 void InitializeMasterCC(void) {
1866         memset(&masterCC, 0, sizeof(struct CitContext));
1867         masterCC.internal_pgm = 1;
1868         masterCC.cs_pid = 0;
1869 }
1870
1871
1872
1873
1874
1875
1876 /*
1877  * Bind a thread to a context.  (It's inline merely to speed things up.)
1878  */
1879 INLINE void become_session(struct CitContext *which_con) {
1880         pthread_setspecific(MyConKey, (void *)which_con );
1881 }
1882
1883
1884
1885 /* 
1886  * This loop just keeps going and going and going...
1887  */     
1888 void *worker_thread(void *arg) {
1889         int i;
1890         int highest;
1891         struct CitContext *ptr;
1892         struct CitContext *bind_me = NULL;
1893         fd_set readfds;
1894         int retval = 0;
1895         struct CitContext *con= NULL;   /* Temporary context pointer */
1896         struct ServiceFunctionHook *serviceptr;
1897         int ssock;                      /* Descriptor for client socket */
1898         struct timeval tv;
1899         int force_purge = 0;
1900         int m;
1901
1902         cdb_allocate_tsd();
1903
1904         while (!CtdlThreadCheckStop()) {
1905
1906                 /* make doubly sure we're not holding any stale db handles
1907                  * which might cause a deadlock.
1908                  */
1909                 cdb_check_handles();
1910 do_select:      force_purge = 0;
1911                 bind_me = NULL;         /* Which session shall we handle? */
1912
1913                 /* Initialize the fdset. */
1914                 FD_ZERO(&readfds);
1915                 highest = 0;
1916
1917                 begin_critical_section(S_SESSION_TABLE);
1918                 for (ptr = ContextList; ptr != NULL; ptr = ptr->next) {
1919                         if (ptr->state == CON_IDLE) {
1920                                 FD_SET(ptr->client_socket, &readfds);
1921                                 if (ptr->client_socket > highest)
1922                                         highest = ptr->client_socket;
1923                         }
1924                         if ((bind_me == NULL) && (ptr->state == CON_READY)) {
1925                                 bind_me = ptr;
1926                                 ptr->state = CON_EXECUTING;
1927                         }
1928                 }
1929                 end_critical_section(S_SESSION_TABLE);
1930
1931                 if (bind_me) {
1932                         goto SKIP_SELECT;
1933                 }
1934
1935                 /* If we got this far, it means that there are no sessions
1936                  * which a previous thread marked for attention, so we go
1937                  * ahead and get ready to select().
1938                  */
1939
1940                 /* First, add the various master sockets to the fdset. */
1941                 for (serviceptr = ServiceHookTable; serviceptr != NULL;
1942                 serviceptr = serviceptr->next ) {
1943                         m = serviceptr->msock;
1944                         FD_SET(m, &readfds);
1945                         if (m > highest) {
1946                                 highest = m;
1947                         }
1948                 }
1949
1950                 if (!CtdlThreadCheckStop()) {
1951                         tv.tv_sec = 1;          /* wake up every second if no input */
1952                         tv.tv_usec = 0;
1953                         retval = CtdlThreadSelect(highest + 1, &readfds, NULL, NULL, &tv);
1954 //                      retval = select(highest + 1, &readfds, NULL, NULL, &tv);
1955                 }
1956
1957                 if (CtdlThreadCheckStop()) return(NULL);
1958
1959                 /* Now figure out who made this select() unblock.
1960                  * First, check for an error or exit condition.
1961                  */
1962                 if (retval < 0) {
1963                         if (errno == EBADF) {
1964                                 CtdlLogPrintf(CTDL_NOTICE, "select() failed: (%s)\n",
1965                                         strerror(errno));
1966                                 goto do_select;
1967                         }
1968                         if (errno != EINTR) {
1969                                 CtdlLogPrintf(CTDL_EMERG, "Exiting (%s)\n", strerror(errno));
1970                                 CtdlThreadStopAll();
1971                         } else if (!CtdlThreadCheckStop()) {
1972                                 CtdlLogPrintf(CTDL_DEBUG, "Un handled select failure.\n");
1973                                 goto do_select;
1974                         }
1975                 }
1976                 else if(retval == 0) {
1977                         goto SKIP_SELECT;
1978                 }
1979                 /* Next, check to see if it's a new client connecting
1980                  * on a master socket.
1981                  */
1982                 else for (serviceptr = ServiceHookTable; serviceptr != NULL;
1983                      serviceptr = serviceptr->next ) {
1984
1985                         if (FD_ISSET(serviceptr->msock, &readfds)) {
1986                                 ssock = accept(serviceptr->msock, NULL, 0);
1987                                 if (ssock >= 0) {
1988                                         CtdlLogPrintf(CTDL_DEBUG,
1989                                                 "New client socket %d\n",
1990                                                 ssock);
1991
1992                                         /* The master socket is non-blocking but the client
1993                                          * sockets need to be blocking, otherwise certain
1994                                          * operations barf on FreeBSD.  Not a fatal error.
1995                                          */
1996                                         if (fcntl(ssock, F_SETFL, 0) < 0) {
1997                                                 CtdlLogPrintf(CTDL_EMERG,
1998                                                         "citserver: Can't set socket to blocking: %s\n",
1999                                                         strerror(errno));
2000                                         }
2001
2002                                         /* New context will be created already
2003                                          * set up in the CON_EXECUTING state.
2004                                          */
2005                                         con = CreateNewContext();
2006
2007                                         /* Assign our new socket number to it. */
2008                                         con->client_socket = ssock;
2009                                         con->h_command_function =
2010                                                 serviceptr->h_command_function;
2011                                         con->h_async_function =
2012                                                 serviceptr->h_async_function;
2013                                         con->ServiceName =
2014                                                 serviceptr->ServiceName;
2015                                         
2016                                         /* Determine whether it's a local socket */
2017                                         if (serviceptr->sockpath != NULL)
2018                                                 con->is_local_socket = 1;
2019         
2020                                         /* Set the SO_REUSEADDR socket option */
2021                                         i = 1;
2022                                         setsockopt(ssock, SOL_SOCKET,
2023                                                 SO_REUSEADDR,
2024                                                 &i, sizeof(i));
2025
2026                                         become_session(con);
2027                                         begin_session(con);
2028                                         serviceptr->h_greeting_function();
2029                                         become_session(NULL);
2030                                         con->state = CON_IDLE;
2031                                         goto do_select;
2032                                 }
2033                         }
2034                 }
2035
2036                 /* It must be a client socket.  Find a context that has data
2037                  * waiting on its socket *and* is in the CON_IDLE state.  Any
2038                  * active sockets other than our chosen one are marked as
2039                  * CON_READY so the next thread that comes around can just bind
2040                  * to one without having to select() again.
2041                  */
2042                 begin_critical_section(S_SESSION_TABLE);
2043                 for (ptr = ContextList; ptr != NULL; ptr = ptr->next) {
2044                         if ( (FD_ISSET(ptr->client_socket, &readfds))
2045                            && (ptr->state != CON_EXECUTING) ) {
2046                                 ptr->input_waiting = 1;
2047                                 if (!bind_me) {
2048                                         bind_me = ptr;  /* I choose you! */
2049                                         bind_me->state = CON_EXECUTING;
2050                                 }
2051                                 else {
2052                                         ptr->state = CON_READY;
2053                                 }
2054                         }
2055                 }
2056                 end_critical_section(S_SESSION_TABLE);
2057
2058 SKIP_SELECT:
2059                 /* We're bound to a session */
2060                 if (bind_me != NULL) {
2061                         become_session(bind_me);
2062
2063                         /* If the client has sent a command, execute it. */
2064                         if (CC->input_waiting) {
2065                                 CC->h_command_function();
2066                                 CC->input_waiting = 0;
2067                         }
2068
2069                         /* If there are asynchronous messages waiting and the
2070                          * client supports it, do those now */
2071                         if ((CC->is_async) && (CC->async_waiting)
2072                            && (CC->h_async_function != NULL)) {
2073                                 CC->h_async_function();
2074                                 CC->async_waiting = 0;
2075                         }
2076                         
2077                         force_purge = CC->kill_me;
2078                         become_session(NULL);
2079                         bind_me->state = CON_IDLE;
2080                 }
2081
2082                 dead_session_purge(force_purge);
2083                 do_housekeeping();
2084                 check_sched_shutdown();
2085         }
2086         /* If control reaches this point, the server is shutting down */        
2087         return(NULL);
2088 }
2089
2090
2091
2092
2093 /*
2094  * SyslogFacility()
2095  * Translate text facility name to syslog.h defined value.
2096  */
2097 int SyslogFacility(char *name)
2098 {
2099         int i;
2100         struct
2101         {
2102                 int facility;
2103                 char *name;
2104         }   facTbl[] =
2105         {
2106                 {   LOG_KERN,   "kern"          },
2107                 {   LOG_USER,   "user"          },
2108                 {   LOG_MAIL,   "mail"          },
2109                 {   LOG_DAEMON, "daemon"        },
2110                 {   LOG_AUTH,   "auth"          },
2111                 {   LOG_SYSLOG, "syslog"        },
2112                 {   LOG_LPR,    "lpr"           },
2113                 {   LOG_NEWS,   "news"          },
2114                 {   LOG_UUCP,   "uucp"          },
2115                 {   LOG_LOCAL0, "local0"        },
2116                 {   LOG_LOCAL1, "local1"        },
2117                 {   LOG_LOCAL2, "local2"        },
2118                 {   LOG_LOCAL3, "local3"        },
2119                 {   LOG_LOCAL4, "local4"        },
2120                 {   LOG_LOCAL5, "local5"        },
2121                 {   LOG_LOCAL6, "local6"        },
2122                 {   LOG_LOCAL7, "local7"        },
2123                 {   0,            NULL          }
2124         };
2125         for(i = 0; facTbl[i].name != NULL; i++) {
2126                 if(!strcasecmp(name, facTbl[i].name))
2127                         return facTbl[i].facility;
2128         }
2129         enable_syslog = 0;
2130         return LOG_DAEMON;
2131 }
2132
2133
2134 /********** MEM CHEQQER ***********/
2135
2136 #ifdef DEBUG_MEMORY_LEAKS
2137
2138 #undef malloc
2139 #undef realloc
2140 #undef strdup
2141 #undef free
2142
2143 void *tracked_malloc(size_t size, char *file, int line) {
2144         struct igheap *thisheap;
2145         void *block;
2146
2147         block = malloc(size);
2148         if (block == NULL) return(block);
2149
2150         thisheap = malloc(sizeof(struct igheap));
2151         if (thisheap == NULL) {
2152                 free(block);
2153                 return(NULL);
2154         }
2155
2156         thisheap->block = block;
2157         strcpy(thisheap->file, file);
2158         thisheap->line = line;
2159         
2160         begin_critical_section(S_DEBUGMEMLEAKS);
2161         thisheap->next = igheap;
2162         igheap = thisheap;
2163         end_critical_section(S_DEBUGMEMLEAKS);
2164
2165         return(block);
2166 }
2167
2168
2169 void *tracked_realloc(void *ptr, size_t size, char *file, int line) {
2170         struct igheap *thisheap;
2171         void *block;
2172
2173         block = realloc(ptr, size);
2174         if (block == NULL) return(block);
2175
2176         thisheap = malloc(sizeof(struct igheap));
2177         if (thisheap == NULL) {
2178                 free(block);
2179                 return(NULL);
2180         }
2181
2182         thisheap->block = block;
2183         strcpy(thisheap->file, file);
2184         thisheap->line = line;
2185         
2186         begin_critical_section(S_DEBUGMEMLEAKS);
2187         thisheap->next = igheap;
2188         igheap = thisheap;
2189         end_critical_section(S_DEBUGMEMLEAKS);
2190
2191         return(block);
2192 }
2193
2194
2195
2196 void tracked_free(void *ptr) {
2197         struct igheap *thisheap;
2198         struct igheap *trash;
2199
2200         free(ptr);
2201
2202         if (igheap == NULL) return;
2203         begin_critical_section(S_DEBUGMEMLEAKS);
2204         for (thisheap = igheap; thisheap != NULL; thisheap = thisheap->next) {
2205                 if (thisheap->next != NULL) {
2206                         if (thisheap->next->block == ptr) {
2207                                 trash = thisheap->next;
2208                                 thisheap->next = thisheap->next->next;
2209                                 free(trash);
2210                         }
2211                 }
2212         }
2213         if (igheap->block == ptr) {
2214                 trash = igheap;
2215                 igheap = igheap->next;
2216                 free(trash);
2217         }
2218         end_critical_section(S_DEBUGMEMLEAKS);
2219 }
2220
2221 char *tracked_strdup(const char *s, char *file, int line) {
2222         char *ptr;
2223
2224         if (s == NULL) return(NULL);
2225         ptr = tracked_malloc(strlen(s) + 1, file, line);
2226         if (ptr == NULL) return(NULL);
2227         strncpy(ptr, s, strlen(s));
2228         return(ptr);
2229 }
2230
2231 void dump_heap(void) {
2232         struct igheap *thisheap;
2233
2234         for (thisheap = igheap; thisheap != NULL; thisheap = thisheap->next) {
2235                 CtdlLogPrintf(CTDL_CRIT, "UNFREED: %30s : %d\n",
2236                         thisheap->file, thisheap->line);
2237         }
2238 }
2239
2240 #endif /*  DEBUG_MEMORY_LEAKS */