Increase compartmentalization of Nextstep builds rules,
[bpt/emacs.git] / src / process.c
1 /* Asynchronous subprocess control for GNU Emacs.
2
3 Copyright (C) 1985-1988, 1993-1996, 1998-1999, 2001-2012
4 Free Software Foundation, Inc.
5
6 This file is part of GNU Emacs.
7
8 GNU Emacs is free software: you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation, either version 3 of the License, or
11 (at your option) any later version.
12
13 GNU Emacs is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
20
21
22 #include <config.h>
23
24 #define PROCESS_INLINE EXTERN_INLINE
25
26 #include <stdio.h>
27 #include <errno.h>
28 #include <sys/types.h> /* Some typedefs are used in sys/file.h. */
29 #include <sys/file.h>
30 #include <sys/stat.h>
31 #include <unistd.h>
32 #include <fcntl.h>
33
34 #include "lisp.h"
35
36 /* Only MS-DOS does not define `subprocesses'. */
37 #ifdef subprocesses
38
39 #include <sys/socket.h>
40 #include <netdb.h>
41 #include <netinet/in.h>
42 #include <arpa/inet.h>
43
44 /* Are local (unix) sockets supported? */
45 #if defined (HAVE_SYS_UN_H)
46 #if !defined (AF_LOCAL) && defined (AF_UNIX)
47 #define AF_LOCAL AF_UNIX
48 #endif
49 #ifdef AF_LOCAL
50 #define HAVE_LOCAL_SOCKETS
51 #include <sys/un.h>
52 #endif
53 #endif
54
55 #include <sys/ioctl.h>
56 #if defined (HAVE_NET_IF_H)
57 #include <net/if.h>
58 #endif /* HAVE_NET_IF_H */
59
60 #if defined (HAVE_IFADDRS_H)
61 /* Must be after net/if.h */
62 #include <ifaddrs.h>
63
64 /* We only use structs from this header when we use getifaddrs. */
65 #if defined (HAVE_NET_IF_DL_H)
66 #include <net/if_dl.h>
67 #endif
68
69 #endif
70
71 #ifdef NEED_BSDTTY
72 #include <bsdtty.h>
73 #endif
74
75 #ifdef USG5_4
76 # include <sys/stream.h>
77 # include <sys/stropts.h>
78 #endif
79
80 #ifdef HAVE_RES_INIT
81 #include <netinet/in.h>
82 #include <arpa/nameser.h>
83 #include <resolv.h>
84 #endif
85
86 #ifdef HAVE_UTIL_H
87 #include <util.h>
88 #endif
89
90 #ifdef HAVE_PTY_H
91 #include <pty.h>
92 #endif
93
94 #endif /* subprocesses */
95
96 #include "systime.h"
97 #include "systty.h"
98
99 #include "window.h"
100 #include "character.h"
101 #include "buffer.h"
102 #include "coding.h"
103 #include "process.h"
104 #include "frame.h"
105 #include "termhooks.h"
106 #include "termopts.h"
107 #include "commands.h"
108 #include "keyboard.h"
109 #include "blockinput.h"
110 #include "dispextern.h"
111 #include "composite.h"
112 #include "atimer.h"
113 #include "sysselect.h"
114 #include "syssignal.h"
115 #include "syswait.h"
116 #ifdef HAVE_GNUTLS
117 #include "gnutls.h"
118 #endif
119
120 #ifdef HAVE_WINDOW_SYSTEM
121 #include TERM_HEADER
122 #endif /* HAVE_WINDOW_SYSTEM */
123
124 #if defined (USE_GTK) || defined (HAVE_GCONF) || defined (HAVE_GSETTINGS)
125 #include "xgselect.h"
126 #endif
127
128 #ifndef WNOHANG
129 # undef waitpid
130 # define waitpid(pid, status, options) wait (status)
131 #endif
132 #ifndef WUNTRACED
133 # define WUNTRACED 0
134 #endif
135
136 /* Work around GCC 4.7.0 bug with strict overflow checking; see
137 <http://gcc.gnu.org/bugzilla/show_bug.cgi?id=52904>.
138 These lines can be removed once the GCC bug is fixed. */
139 #if (__GNUC__ == 4 && 3 <= __GNUC_MINOR__) || 4 < __GNUC__
140 # pragma GCC diagnostic ignored "-Wstrict-overflow"
141 #endif
142
143 Lisp_Object Qeuid, Qegid, Qcomm, Qstate, Qppid, Qpgrp, Qsess, Qttname, Qtpgid;
144 Lisp_Object Qminflt, Qmajflt, Qcminflt, Qcmajflt, Qutime, Qstime, Qcstime;
145 Lisp_Object Qcutime, Qpri, Qnice, Qthcount, Qstart, Qvsize, Qrss, Qargs;
146 Lisp_Object Quser, Qgroup, Qetime, Qpcpu, Qpmem, Qtime, Qctime;
147 Lisp_Object QCname, QCtype;
148 \f
149 /* Non-zero if keyboard input is on hold, zero otherwise. */
150
151 static int kbd_is_on_hold;
152
153 /* Nonzero means don't run process sentinels. This is used
154 when exiting. */
155 int inhibit_sentinels;
156
157 #ifdef subprocesses
158
159 Lisp_Object Qprocessp;
160 static Lisp_Object Qrun, Qstop, Qsignal;
161 static Lisp_Object Qopen, Qclosed, Qconnect, Qfailed, Qlisten;
162 Lisp_Object Qlocal;
163 static Lisp_Object Qipv4, Qdatagram, Qseqpacket;
164 static Lisp_Object Qreal, Qnetwork, Qserial;
165 #ifdef AF_INET6
166 static Lisp_Object Qipv6;
167 #endif
168 static Lisp_Object QCport, QCprocess;
169 Lisp_Object QCspeed;
170 Lisp_Object QCbytesize, QCstopbits, QCparity, Qodd, Qeven;
171 Lisp_Object QCflowcontrol, Qhw, Qsw, QCsummary;
172 static Lisp_Object QCbuffer, QChost, QCservice;
173 static Lisp_Object QClocal, QCremote, QCcoding;
174 static Lisp_Object QCserver, QCnowait, QCnoquery, QCstop;
175 static Lisp_Object QCsentinel, QClog, QCoptions, QCplist;
176 static Lisp_Object Qlast_nonmenu_event;
177
178 #define NETCONN_P(p) (EQ (XPROCESS (p)->type, Qnetwork))
179 #define NETCONN1_P(p) (EQ (p->type, Qnetwork))
180 #define SERIALCONN_P(p) (EQ (XPROCESS (p)->type, Qserial))
181 #define SERIALCONN1_P(p) (EQ (p->type, Qserial))
182
183 #ifndef HAVE_H_ERRNO
184 extern int h_errno;
185 #endif
186
187 /* Number of events of change of status of a process. */
188 static EMACS_INT process_tick;
189 /* Number of events for which the user or sentinel has been notified. */
190 static EMACS_INT update_tick;
191
192 /* Define NON_BLOCKING_CONNECT if we can support non-blocking connects. */
193
194 /* Only W32 has this, it really means that select can't take write mask. */
195 #ifdef BROKEN_NON_BLOCKING_CONNECT
196 #undef NON_BLOCKING_CONNECT
197 #define SELECT_CANT_DO_WRITE_MASK
198 #else
199 #ifndef NON_BLOCKING_CONNECT
200 #ifdef HAVE_SELECT
201 #if defined (HAVE_GETPEERNAME) || defined (GNU_LINUX)
202 #if defined (O_NONBLOCK) || defined (O_NDELAY)
203 #if defined (EWOULDBLOCK) || defined (EINPROGRESS)
204 #define NON_BLOCKING_CONNECT
205 #endif /* EWOULDBLOCK || EINPROGRESS */
206 #endif /* O_NONBLOCK || O_NDELAY */
207 #endif /* HAVE_GETPEERNAME || GNU_LINUX */
208 #endif /* HAVE_SELECT */
209 #endif /* NON_BLOCKING_CONNECT */
210 #endif /* BROKEN_NON_BLOCKING_CONNECT */
211
212 /* Define DATAGRAM_SOCKETS if datagrams can be used safely on
213 this system. We need to read full packets, so we need a
214 "non-destructive" select. So we require either native select,
215 or emulation of select using FIONREAD. */
216
217 #ifndef BROKEN_DATAGRAM_SOCKETS
218 # if defined HAVE_SELECT || defined USABLE_FIONREAD
219 # if defined HAVE_SENDTO && defined HAVE_RECVFROM && defined EMSGSIZE
220 # define DATAGRAM_SOCKETS
221 # endif
222 # endif
223 #endif
224
225 #if defined HAVE_LOCAL_SOCKETS && defined DATAGRAM_SOCKETS
226 # define HAVE_SEQPACKET
227 #endif
228
229 #if !defined (ADAPTIVE_READ_BUFFERING) && !defined (NO_ADAPTIVE_READ_BUFFERING)
230 #define ADAPTIVE_READ_BUFFERING
231 #endif
232
233 #ifdef ADAPTIVE_READ_BUFFERING
234 #define READ_OUTPUT_DELAY_INCREMENT (EMACS_TIME_RESOLUTION / 100)
235 #define READ_OUTPUT_DELAY_MAX (READ_OUTPUT_DELAY_INCREMENT * 5)
236 #define READ_OUTPUT_DELAY_MAX_MAX (READ_OUTPUT_DELAY_INCREMENT * 7)
237
238 /* Number of processes which have a non-zero read_output_delay,
239 and therefore might be delayed for adaptive read buffering. */
240
241 static int process_output_delay_count;
242
243 /* Non-zero if any process has non-nil read_output_skip. */
244
245 static int process_output_skip;
246
247 #else
248 #define process_output_delay_count 0
249 #endif
250
251 static void create_process (Lisp_Object, char **, Lisp_Object);
252 #ifdef USABLE_SIGIO
253 static int keyboard_bit_set (SELECT_TYPE *);
254 #endif
255 static void deactivate_process (Lisp_Object);
256 static void status_notify (struct Lisp_Process *);
257 static int read_process_output (Lisp_Object, int);
258 static void create_pty (Lisp_Object);
259
260 /* If we support a window system, turn on the code to poll periodically
261 to detect C-g. It isn't actually used when doing interrupt input. */
262 #if defined (HAVE_WINDOW_SYSTEM) && !defined (USE_ASYNC_EVENTS)
263 #define POLL_FOR_INPUT
264 #endif
265
266 static Lisp_Object get_process (register Lisp_Object name);
267 static void exec_sentinel (Lisp_Object proc, Lisp_Object reason);
268
269 /* Mask of bits indicating the descriptors that we wait for input on. */
270
271 static SELECT_TYPE input_wait_mask;
272
273 /* Mask that excludes keyboard input descriptor(s). */
274
275 static SELECT_TYPE non_keyboard_wait_mask;
276
277 /* Mask that excludes process input descriptor(s). */
278
279 static SELECT_TYPE non_process_wait_mask;
280
281 /* Mask for selecting for write. */
282
283 static SELECT_TYPE write_mask;
284
285 #ifdef NON_BLOCKING_CONNECT
286 /* Mask of bits indicating the descriptors that we wait for connect to
287 complete on. Once they complete, they are removed from this mask
288 and added to the input_wait_mask and non_keyboard_wait_mask. */
289
290 static SELECT_TYPE connect_wait_mask;
291
292 /* Number of bits set in connect_wait_mask. */
293 static int num_pending_connects;
294 #endif /* NON_BLOCKING_CONNECT */
295
296 /* The largest descriptor currently in use for a process object. */
297 static int max_process_desc;
298
299 /* The largest descriptor currently in use for input. */
300 static int max_input_desc;
301
302 /* Indexed by descriptor, gives the process (if any) for that descriptor */
303 static Lisp_Object chan_process[MAXDESC];
304
305 /* Alist of elements (NAME . PROCESS) */
306 static Lisp_Object Vprocess_alist;
307
308 /* Buffered-ahead input char from process, indexed by channel.
309 -1 means empty (no char is buffered).
310 Used on sys V where the only way to tell if there is any
311 output from the process is to read at least one char.
312 Always -1 on systems that support FIONREAD. */
313
314 static int proc_buffered_char[MAXDESC];
315
316 /* Table of `struct coding-system' for each process. */
317 static struct coding_system *proc_decode_coding_system[MAXDESC];
318 static struct coding_system *proc_encode_coding_system[MAXDESC];
319
320 #ifdef DATAGRAM_SOCKETS
321 /* Table of `partner address' for datagram sockets. */
322 static struct sockaddr_and_len {
323 struct sockaddr *sa;
324 int len;
325 } datagram_address[MAXDESC];
326 #define DATAGRAM_CHAN_P(chan) (datagram_address[chan].sa != 0)
327 #define DATAGRAM_CONN_P(proc) (PROCESSP (proc) && datagram_address[XPROCESS (proc)->infd].sa != 0)
328 #else
329 #define DATAGRAM_CHAN_P(chan) (0)
330 #define DATAGRAM_CONN_P(proc) (0)
331 #endif
332
333 /* Maximum number of bytes to send to a pty without an eof. */
334 static int pty_max_bytes;
335
336 /* These setters are used only in this file, so they can be private. */
337 static inline void
338 pset_buffer (struct Lisp_Process *p, Lisp_Object val)
339 {
340 p->buffer = val;
341 }
342 static inline void
343 pset_command (struct Lisp_Process *p, Lisp_Object val)
344 {
345 p->command = val;
346 }
347 static inline void
348 pset_decode_coding_system (struct Lisp_Process *p, Lisp_Object val)
349 {
350 p->decode_coding_system = val;
351 }
352 static inline void
353 pset_decoding_buf (struct Lisp_Process *p, Lisp_Object val)
354 {
355 p->decoding_buf = val;
356 }
357 static inline void
358 pset_encode_coding_system (struct Lisp_Process *p, Lisp_Object val)
359 {
360 p->encode_coding_system = val;
361 }
362 static inline void
363 pset_encoding_buf (struct Lisp_Process *p, Lisp_Object val)
364 {
365 p->encoding_buf = val;
366 }
367 static inline void
368 pset_filter (struct Lisp_Process *p, Lisp_Object val)
369 {
370 p->filter = val;
371 }
372 static inline void
373 pset_log (struct Lisp_Process *p, Lisp_Object val)
374 {
375 p->log = val;
376 }
377 static inline void
378 pset_mark (struct Lisp_Process *p, Lisp_Object val)
379 {
380 p->mark = val;
381 }
382 static inline void
383 pset_name (struct Lisp_Process *p, Lisp_Object val)
384 {
385 p->name = val;
386 }
387 static inline void
388 pset_plist (struct Lisp_Process *p, Lisp_Object val)
389 {
390 p->plist = val;
391 }
392 static inline void
393 pset_sentinel (struct Lisp_Process *p, Lisp_Object val)
394 {
395 p->sentinel = val;
396 }
397 static inline void
398 pset_status (struct Lisp_Process *p, Lisp_Object val)
399 {
400 p->status = val;
401 }
402 static inline void
403 pset_tty_name (struct Lisp_Process *p, Lisp_Object val)
404 {
405 p->tty_name = val;
406 }
407 static inline void
408 pset_type (struct Lisp_Process *p, Lisp_Object val)
409 {
410 p->type = val;
411 }
412 static inline void
413 pset_write_queue (struct Lisp_Process *p, Lisp_Object val)
414 {
415 p->write_queue = val;
416 }
417
418 \f
419
420 static struct fd_callback_data
421 {
422 fd_callback func;
423 void *data;
424 #define FOR_READ 1
425 #define FOR_WRITE 2
426 int condition; /* mask of the defines above. */
427 } fd_callback_info[MAXDESC];
428
429
430 /* Add a file descriptor FD to be monitored for when read is possible.
431 When read is possible, call FUNC with argument DATA. */
432
433 void
434 add_read_fd (int fd, fd_callback func, void *data)
435 {
436 eassert (fd < MAXDESC);
437 add_keyboard_wait_descriptor (fd);
438
439 fd_callback_info[fd].func = func;
440 fd_callback_info[fd].data = data;
441 fd_callback_info[fd].condition |= FOR_READ;
442 }
443
444 /* Stop monitoring file descriptor FD for when read is possible. */
445
446 void
447 delete_read_fd (int fd)
448 {
449 eassert (fd < MAXDESC);
450 delete_keyboard_wait_descriptor (fd);
451
452 fd_callback_info[fd].condition &= ~FOR_READ;
453 if (fd_callback_info[fd].condition == 0)
454 {
455 fd_callback_info[fd].func = 0;
456 fd_callback_info[fd].data = 0;
457 }
458 }
459
460 /* Add a file descriptor FD to be monitored for when write is possible.
461 When write is possible, call FUNC with argument DATA. */
462
463 void
464 add_write_fd (int fd, fd_callback func, void *data)
465 {
466 eassert (fd < MAXDESC);
467 FD_SET (fd, &write_mask);
468 if (fd > max_input_desc)
469 max_input_desc = fd;
470
471 fd_callback_info[fd].func = func;
472 fd_callback_info[fd].data = data;
473 fd_callback_info[fd].condition |= FOR_WRITE;
474 }
475
476 /* Stop monitoring file descriptor FD for when write is possible. */
477
478 void
479 delete_write_fd (int fd)
480 {
481 int lim = max_input_desc;
482
483 eassert (fd < MAXDESC);
484 FD_CLR (fd, &write_mask);
485 fd_callback_info[fd].condition &= ~FOR_WRITE;
486 if (fd_callback_info[fd].condition == 0)
487 {
488 fd_callback_info[fd].func = 0;
489 fd_callback_info[fd].data = 0;
490
491 if (fd == max_input_desc)
492 for (fd = lim; fd >= 0; fd--)
493 if (FD_ISSET (fd, &input_wait_mask) || FD_ISSET (fd, &write_mask))
494 {
495 max_input_desc = fd;
496 break;
497 }
498
499 }
500 }
501
502 \f
503 /* Compute the Lisp form of the process status, p->status, from
504 the numeric status that was returned by `wait'. */
505
506 static Lisp_Object status_convert (int);
507
508 static void
509 update_status (struct Lisp_Process *p)
510 {
511 eassert (p->raw_status_new);
512 pset_status (p, status_convert (p->raw_status));
513 p->raw_status_new = 0;
514 }
515
516 /* Convert a process status word in Unix format to
517 the list that we use internally. */
518
519 static Lisp_Object
520 status_convert (int w)
521 {
522 if (WIFSTOPPED (w))
523 return Fcons (Qstop, Fcons (make_number (WSTOPSIG (w)), Qnil));
524 else if (WIFEXITED (w))
525 return Fcons (Qexit, Fcons (make_number (WEXITSTATUS (w)),
526 WCOREDUMP (w) ? Qt : Qnil));
527 else if (WIFSIGNALED (w))
528 return Fcons (Qsignal, Fcons (make_number (WTERMSIG (w)),
529 WCOREDUMP (w) ? Qt : Qnil));
530 else
531 return Qrun;
532 }
533
534 /* Given a status-list, extract the three pieces of information
535 and store them individually through the three pointers. */
536
537 static void
538 decode_status (Lisp_Object l, Lisp_Object *symbol, int *code, int *coredump)
539 {
540 Lisp_Object tem;
541
542 if (SYMBOLP (l))
543 {
544 *symbol = l;
545 *code = 0;
546 *coredump = 0;
547 }
548 else
549 {
550 *symbol = XCAR (l);
551 tem = XCDR (l);
552 *code = XFASTINT (XCAR (tem));
553 tem = XCDR (tem);
554 *coredump = !NILP (tem);
555 }
556 }
557
558 /* Return a string describing a process status list. */
559
560 static Lisp_Object
561 status_message (struct Lisp_Process *p)
562 {
563 Lisp_Object status = p->status;
564 Lisp_Object symbol;
565 int code, coredump;
566 Lisp_Object string, string2;
567
568 decode_status (status, &symbol, &code, &coredump);
569
570 if (EQ (symbol, Qsignal) || EQ (symbol, Qstop))
571 {
572 char *signame;
573 synchronize_system_messages_locale ();
574 signame = strsignal (code);
575 if (signame == 0)
576 string = build_string ("unknown");
577 else
578 {
579 int c1, c2;
580
581 string = build_unibyte_string (signame);
582 if (! NILP (Vlocale_coding_system))
583 string = (code_convert_string_norecord
584 (string, Vlocale_coding_system, 0));
585 c1 = STRING_CHAR (SDATA (string));
586 c2 = downcase (c1);
587 if (c1 != c2)
588 Faset (string, make_number (0), make_number (c2));
589 }
590 string2 = build_string (coredump ? " (core dumped)\n" : "\n");
591 return concat2 (string, string2);
592 }
593 else if (EQ (symbol, Qexit))
594 {
595 if (NETCONN1_P (p))
596 return build_string (code == 0 ? "deleted\n" : "connection broken by remote peer\n");
597 if (code == 0)
598 return build_string ("finished\n");
599 string = Fnumber_to_string (make_number (code));
600 string2 = build_string (coredump ? " (core dumped)\n" : "\n");
601 return concat3 (build_string ("exited abnormally with code "),
602 string, string2);
603 }
604 else if (EQ (symbol, Qfailed))
605 {
606 string = Fnumber_to_string (make_number (code));
607 string2 = build_string ("\n");
608 return concat3 (build_string ("failed with code "),
609 string, string2);
610 }
611 else
612 return Fcopy_sequence (Fsymbol_name (symbol));
613 }
614 \f
615 #ifdef HAVE_PTYS
616
617 /* The file name of the pty opened by allocate_pty. */
618 static char pty_name[24];
619
620 /* Open an available pty, returning a file descriptor.
621 Return -1 on failure.
622 The file name of the terminal corresponding to the pty
623 is left in the variable pty_name. */
624
625 static int
626 allocate_pty (void)
627 {
628 int fd;
629
630 #ifdef PTY_ITERATION
631 PTY_ITERATION
632 #else
633 register int c, i;
634 for (c = FIRST_PTY_LETTER; c <= 'z'; c++)
635 for (i = 0; i < 16; i++)
636 #endif
637 {
638 #ifdef PTY_NAME_SPRINTF
639 PTY_NAME_SPRINTF
640 #else
641 sprintf (pty_name, "/dev/pty%c%x", c, i);
642 #endif /* no PTY_NAME_SPRINTF */
643
644 #ifdef PTY_OPEN
645 PTY_OPEN;
646 #else /* no PTY_OPEN */
647 {
648 { /* Some systems name their pseudoterminals so that there are gaps in
649 the usual sequence - for example, on HP9000/S700 systems, there
650 are no pseudoterminals with names ending in 'f'. So we wait for
651 three failures in a row before deciding that we've reached the
652 end of the ptys. */
653 int failed_count = 0;
654 struct stat stb;
655
656 if (stat (pty_name, &stb) < 0)
657 {
658 failed_count++;
659 if (failed_count >= 3)
660 return -1;
661 }
662 else
663 failed_count = 0;
664 }
665 # ifdef O_NONBLOCK
666 fd = emacs_open (pty_name, O_RDWR | O_NONBLOCK, 0);
667 # else
668 fd = emacs_open (pty_name, O_RDWR | O_NDELAY, 0);
669 # endif
670 }
671 #endif /* no PTY_OPEN */
672
673 if (fd >= 0)
674 {
675 /* check to make certain that both sides are available
676 this avoids a nasty yet stupid bug in rlogins */
677 #ifdef PTY_TTY_NAME_SPRINTF
678 PTY_TTY_NAME_SPRINTF
679 #else
680 sprintf (pty_name, "/dev/tty%c%x", c, i);
681 #endif /* no PTY_TTY_NAME_SPRINTF */
682 if (access (pty_name, 6) != 0)
683 {
684 emacs_close (fd);
685 # ifndef __sgi
686 continue;
687 # else
688 return -1;
689 # endif /* __sgi */
690 }
691 setup_pty (fd);
692 return fd;
693 }
694 }
695 return -1;
696 }
697 #endif /* HAVE_PTYS */
698 \f
699 static Lisp_Object
700 make_process (Lisp_Object name)
701 {
702 register Lisp_Object val, tem, name1;
703 register struct Lisp_Process *p;
704 char suffix[sizeof "<>" + INT_STRLEN_BOUND (printmax_t)];
705 printmax_t i;
706
707 p = allocate_process ();
708 /* Initialize Lisp data. Note that allocate_process initializes all
709 Lisp data to nil, so do it only for slots which should not be nil. */
710 pset_status (p, Qrun);
711 pset_mark (p, Fmake_marker ());
712
713 /* Initialize non-Lisp data. Note that allocate_process zeroes out all
714 non-Lisp data, so do it only for slots which should not be zero. */
715 p->infd = -1;
716 p->outfd = -1;
717
718 #ifdef HAVE_GNUTLS
719 p->gnutls_initstage = GNUTLS_STAGE_EMPTY;
720 #endif
721
722 /* If name is already in use, modify it until it is unused. */
723
724 name1 = name;
725 for (i = 1; ; i++)
726 {
727 tem = Fget_process (name1);
728 if (NILP (tem)) break;
729 name1 = concat2 (name, make_formatted_string (suffix, "<%"pMd">", i));
730 }
731 name = name1;
732 pset_name (p, name);
733 XSETPROCESS (val, p);
734 Vprocess_alist = Fcons (Fcons (name, val), Vprocess_alist);
735 return val;
736 }
737
738 static void
739 remove_process (register Lisp_Object proc)
740 {
741 register Lisp_Object pair;
742
743 pair = Frassq (proc, Vprocess_alist);
744 Vprocess_alist = Fdelq (pair, Vprocess_alist);
745
746 deactivate_process (proc);
747 }
748
749 \f
750 DEFUN ("processp", Fprocessp, Sprocessp, 1, 1, 0,
751 doc: /* Return t if OBJECT is a process. */)
752 (Lisp_Object object)
753 {
754 return PROCESSP (object) ? Qt : Qnil;
755 }
756
757 DEFUN ("get-process", Fget_process, Sget_process, 1, 1, 0,
758 doc: /* Return the process named NAME, or nil if there is none. */)
759 (register Lisp_Object name)
760 {
761 if (PROCESSP (name))
762 return name;
763 CHECK_STRING (name);
764 return Fcdr (Fassoc (name, Vprocess_alist));
765 }
766
767 /* This is how commands for the user decode process arguments. It
768 accepts a process, a process name, a buffer, a buffer name, or nil.
769 Buffers denote the first process in the buffer, and nil denotes the
770 current buffer. */
771
772 static Lisp_Object
773 get_process (register Lisp_Object name)
774 {
775 register Lisp_Object proc, obj;
776 if (STRINGP (name))
777 {
778 obj = Fget_process (name);
779 if (NILP (obj))
780 obj = Fget_buffer (name);
781 if (NILP (obj))
782 error ("Process %s does not exist", SDATA (name));
783 }
784 else if (NILP (name))
785 obj = Fcurrent_buffer ();
786 else
787 obj = name;
788
789 /* Now obj should be either a buffer object or a process object.
790 */
791 if (BUFFERP (obj))
792 {
793 proc = Fget_buffer_process (obj);
794 if (NILP (proc))
795 error ("Buffer %s has no process", SDATA (BVAR (XBUFFER (obj), name)));
796 }
797 else
798 {
799 CHECK_PROCESS (obj);
800 proc = obj;
801 }
802 return proc;
803 }
804
805
806 #ifdef SIGCHLD
807 /* Fdelete_process promises to immediately forget about the process, but in
808 reality, Emacs needs to remember those processes until they have been
809 treated by the SIGCHLD handler; otherwise this handler would consider the
810 process as being synchronous and say that the synchronous process is
811 dead. */
812 static Lisp_Object deleted_pid_list;
813 #endif
814
815 DEFUN ("delete-process", Fdelete_process, Sdelete_process, 1, 1, 0,
816 doc: /* Delete PROCESS: kill it and forget about it immediately.
817 PROCESS may be a process, a buffer, the name of a process or buffer, or
818 nil, indicating the current buffer's process. */)
819 (register Lisp_Object process)
820 {
821 register struct Lisp_Process *p;
822
823 process = get_process (process);
824 p = XPROCESS (process);
825
826 p->raw_status_new = 0;
827 if (NETCONN1_P (p) || SERIALCONN1_P (p))
828 {
829 pset_status (p, Fcons (Qexit, Fcons (make_number (0), Qnil)));
830 p->tick = ++process_tick;
831 status_notify (p);
832 redisplay_preserve_echo_area (13);
833 }
834 else if (p->infd >= 0)
835 {
836 #ifdef SIGCHLD
837 Lisp_Object symbol;
838 pid_t pid = p->pid;
839
840 /* No problem storing the pid here, as it is still in Vprocess_alist. */
841 deleted_pid_list = Fcons (make_fixnum_or_float (pid),
842 /* GC treated elements set to nil. */
843 Fdelq (Qnil, deleted_pid_list));
844 /* If the process has already signaled, remove it from the list. */
845 if (p->raw_status_new)
846 update_status (p);
847 symbol = p->status;
848 if (CONSP (p->status))
849 symbol = XCAR (p->status);
850 if (EQ (symbol, Qsignal) || EQ (symbol, Qexit))
851 deleted_pid_list
852 = Fdelete (make_fixnum_or_float (pid), deleted_pid_list);
853 else
854 #endif
855 {
856 Fkill_process (process, Qnil);
857 /* Do this now, since remove_process will make the
858 SIGCHLD handler do nothing. */
859 pset_status (p, Fcons (Qsignal, Fcons (make_number (SIGKILL), Qnil)));
860 p->tick = ++process_tick;
861 status_notify (p);
862 redisplay_preserve_echo_area (13);
863 }
864 }
865 remove_process (process);
866 return Qnil;
867 }
868 \f
869 DEFUN ("process-status", Fprocess_status, Sprocess_status, 1, 1, 0,
870 doc: /* Return the status of PROCESS.
871 The returned value is one of the following symbols:
872 run -- for a process that is running.
873 stop -- for a process stopped but continuable.
874 exit -- for a process that has exited.
875 signal -- for a process that has got a fatal signal.
876 open -- for a network stream connection that is open.
877 listen -- for a network stream server that is listening.
878 closed -- for a network stream connection that is closed.
879 connect -- when waiting for a non-blocking connection to complete.
880 failed -- when a non-blocking connection has failed.
881 nil -- if arg is a process name and no such process exists.
882 PROCESS may be a process, a buffer, the name of a process, or
883 nil, indicating the current buffer's process. */)
884 (register Lisp_Object process)
885 {
886 register struct Lisp_Process *p;
887 register Lisp_Object status;
888
889 if (STRINGP (process))
890 process = Fget_process (process);
891 else
892 process = get_process (process);
893
894 if (NILP (process))
895 return process;
896
897 p = XPROCESS (process);
898 if (p->raw_status_new)
899 update_status (p);
900 status = p->status;
901 if (CONSP (status))
902 status = XCAR (status);
903 if (NETCONN1_P (p) || SERIALCONN1_P (p))
904 {
905 if (EQ (status, Qexit))
906 status = Qclosed;
907 else if (EQ (p->command, Qt))
908 status = Qstop;
909 else if (EQ (status, Qrun))
910 status = Qopen;
911 }
912 return status;
913 }
914
915 DEFUN ("process-exit-status", Fprocess_exit_status, Sprocess_exit_status,
916 1, 1, 0,
917 doc: /* Return the exit status of PROCESS or the signal number that killed it.
918 If PROCESS has not yet exited or died, return 0. */)
919 (register Lisp_Object process)
920 {
921 CHECK_PROCESS (process);
922 if (XPROCESS (process)->raw_status_new)
923 update_status (XPROCESS (process));
924 if (CONSP (XPROCESS (process)->status))
925 return XCAR (XCDR (XPROCESS (process)->status));
926 return make_number (0);
927 }
928
929 DEFUN ("process-id", Fprocess_id, Sprocess_id, 1, 1, 0,
930 doc: /* Return the process id of PROCESS.
931 This is the pid of the external process which PROCESS uses or talks to.
932 For a network connection, this value is nil. */)
933 (register Lisp_Object process)
934 {
935 pid_t pid;
936
937 CHECK_PROCESS (process);
938 pid = XPROCESS (process)->pid;
939 return (pid ? make_fixnum_or_float (pid) : Qnil);
940 }
941
942 DEFUN ("process-name", Fprocess_name, Sprocess_name, 1, 1, 0,
943 doc: /* Return the name of PROCESS, as a string.
944 This is the name of the program invoked in PROCESS,
945 possibly modified to make it unique among process names. */)
946 (register Lisp_Object process)
947 {
948 CHECK_PROCESS (process);
949 return XPROCESS (process)->name;
950 }
951
952 DEFUN ("process-command", Fprocess_command, Sprocess_command, 1, 1, 0,
953 doc: /* Return the command that was executed to start PROCESS.
954 This is a list of strings, the first string being the program executed
955 and the rest of the strings being the arguments given to it.
956 For a network or serial process, this is nil (process is running) or t
957 \(process is stopped). */)
958 (register Lisp_Object process)
959 {
960 CHECK_PROCESS (process);
961 return XPROCESS (process)->command;
962 }
963
964 DEFUN ("process-tty-name", Fprocess_tty_name, Sprocess_tty_name, 1, 1, 0,
965 doc: /* Return the name of the terminal PROCESS uses, or nil if none.
966 This is the terminal that the process itself reads and writes on,
967 not the name of the pty that Emacs uses to talk with that terminal. */)
968 (register Lisp_Object process)
969 {
970 CHECK_PROCESS (process);
971 return XPROCESS (process)->tty_name;
972 }
973
974 DEFUN ("set-process-buffer", Fset_process_buffer, Sset_process_buffer,
975 2, 2, 0,
976 doc: /* Set buffer associated with PROCESS to BUFFER (a buffer, or nil).
977 Return BUFFER. */)
978 (register Lisp_Object process, Lisp_Object buffer)
979 {
980 struct Lisp_Process *p;
981
982 CHECK_PROCESS (process);
983 if (!NILP (buffer))
984 CHECK_BUFFER (buffer);
985 p = XPROCESS (process);
986 pset_buffer (p, buffer);
987 if (NETCONN1_P (p) || SERIALCONN1_P (p))
988 pset_childp (p, Fplist_put (p->childp, QCbuffer, buffer));
989 setup_process_coding_systems (process);
990 return buffer;
991 }
992
993 DEFUN ("process-buffer", Fprocess_buffer, Sprocess_buffer,
994 1, 1, 0,
995 doc: /* Return the buffer PROCESS is associated with.
996 Output from PROCESS is inserted in this buffer unless PROCESS has a filter. */)
997 (register Lisp_Object process)
998 {
999 CHECK_PROCESS (process);
1000 return XPROCESS (process)->buffer;
1001 }
1002
1003 DEFUN ("process-mark", Fprocess_mark, Sprocess_mark,
1004 1, 1, 0,
1005 doc: /* Return the marker for the end of the last output from PROCESS. */)
1006 (register Lisp_Object process)
1007 {
1008 CHECK_PROCESS (process);
1009 return XPROCESS (process)->mark;
1010 }
1011
1012 DEFUN ("set-process-filter", Fset_process_filter, Sset_process_filter,
1013 2, 2, 0,
1014 doc: /* Give PROCESS the filter function FILTER; nil means no filter.
1015 A value of t means stop accepting output from the process.
1016
1017 When a process has a filter, its buffer is not used for output.
1018 Instead, each time it does output, the entire string of output is
1019 passed to the filter.
1020
1021 The filter gets two arguments: the process and the string of output.
1022 The string argument is normally a multibyte string, except:
1023 - if the process' input coding system is no-conversion or raw-text,
1024 it is a unibyte string (the non-converted input), or else
1025 - if `default-enable-multibyte-characters' is nil, it is a unibyte
1026 string (the result of converting the decoded input multibyte
1027 string to unibyte with `string-make-unibyte'). */)
1028 (register Lisp_Object process, Lisp_Object filter)
1029 {
1030 struct Lisp_Process *p;
1031
1032 CHECK_PROCESS (process);
1033 p = XPROCESS (process);
1034
1035 /* Don't signal an error if the process' input file descriptor
1036 is closed. This could make debugging Lisp more difficult,
1037 for example when doing something like
1038
1039 (setq process (start-process ...))
1040 (debug)
1041 (set-process-filter process ...) */
1042
1043 if (p->infd >= 0)
1044 {
1045 if (EQ (filter, Qt) && !EQ (p->status, Qlisten))
1046 {
1047 FD_CLR (p->infd, &input_wait_mask);
1048 FD_CLR (p->infd, &non_keyboard_wait_mask);
1049 }
1050 else if (EQ (p->filter, Qt)
1051 /* Network or serial process not stopped: */
1052 && !EQ (p->command, Qt))
1053 {
1054 FD_SET (p->infd, &input_wait_mask);
1055 FD_SET (p->infd, &non_keyboard_wait_mask);
1056 }
1057 }
1058
1059 pset_filter (p, filter);
1060 if (NETCONN1_P (p) || SERIALCONN1_P (p))
1061 pset_childp (p, Fplist_put (p->childp, QCfilter, filter));
1062 setup_process_coding_systems (process);
1063 return filter;
1064 }
1065
1066 DEFUN ("process-filter", Fprocess_filter, Sprocess_filter,
1067 1, 1, 0,
1068 doc: /* Returns the filter function of PROCESS; nil if none.
1069 See `set-process-filter' for more info on filter functions. */)
1070 (register Lisp_Object process)
1071 {
1072 CHECK_PROCESS (process);
1073 return XPROCESS (process)->filter;
1074 }
1075
1076 DEFUN ("set-process-sentinel", Fset_process_sentinel, Sset_process_sentinel,
1077 2, 2, 0,
1078 doc: /* Give PROCESS the sentinel SENTINEL; nil for none.
1079 The sentinel is called as a function when the process changes state.
1080 It gets two arguments: the process, and a string describing the change. */)
1081 (register Lisp_Object process, Lisp_Object sentinel)
1082 {
1083 struct Lisp_Process *p;
1084
1085 CHECK_PROCESS (process);
1086 p = XPROCESS (process);
1087
1088 pset_sentinel (p, sentinel);
1089 if (NETCONN1_P (p) || SERIALCONN1_P (p))
1090 pset_childp (p, Fplist_put (p->childp, QCsentinel, sentinel));
1091 return sentinel;
1092 }
1093
1094 DEFUN ("process-sentinel", Fprocess_sentinel, Sprocess_sentinel,
1095 1, 1, 0,
1096 doc: /* Return the sentinel of PROCESS; nil if none.
1097 See `set-process-sentinel' for more info on sentinels. */)
1098 (register Lisp_Object process)
1099 {
1100 CHECK_PROCESS (process);
1101 return XPROCESS (process)->sentinel;
1102 }
1103
1104 DEFUN ("set-process-window-size", Fset_process_window_size,
1105 Sset_process_window_size, 3, 3, 0,
1106 doc: /* Tell PROCESS that it has logical window size HEIGHT and WIDTH. */)
1107 (register Lisp_Object process, Lisp_Object height, Lisp_Object width)
1108 {
1109 CHECK_PROCESS (process);
1110 CHECK_RANGED_INTEGER (height, 0, INT_MAX);
1111 CHECK_RANGED_INTEGER (width, 0, INT_MAX);
1112
1113 if (XPROCESS (process)->infd < 0
1114 || set_window_size (XPROCESS (process)->infd,
1115 XINT (height), XINT (width)) <= 0)
1116 return Qnil;
1117 else
1118 return Qt;
1119 }
1120
1121 DEFUN ("set-process-inherit-coding-system-flag",
1122 Fset_process_inherit_coding_system_flag,
1123 Sset_process_inherit_coding_system_flag, 2, 2, 0,
1124 doc: /* Determine whether buffer of PROCESS will inherit coding-system.
1125 If the second argument FLAG is non-nil, then the variable
1126 `buffer-file-coding-system' of the buffer associated with PROCESS
1127 will be bound to the value of the coding system used to decode
1128 the process output.
1129
1130 This is useful when the coding system specified for the process buffer
1131 leaves either the character code conversion or the end-of-line conversion
1132 unspecified, or if the coding system used to decode the process output
1133 is more appropriate for saving the process buffer.
1134
1135 Binding the variable `inherit-process-coding-system' to non-nil before
1136 starting the process is an alternative way of setting the inherit flag
1137 for the process which will run.
1138
1139 This function returns FLAG. */)
1140 (register Lisp_Object process, Lisp_Object flag)
1141 {
1142 CHECK_PROCESS (process);
1143 XPROCESS (process)->inherit_coding_system_flag = !NILP (flag);
1144 return flag;
1145 }
1146
1147 DEFUN ("set-process-query-on-exit-flag",
1148 Fset_process_query_on_exit_flag, Sset_process_query_on_exit_flag,
1149 2, 2, 0,
1150 doc: /* Specify if query is needed for PROCESS when Emacs is exited.
1151 If the second argument FLAG is non-nil, Emacs will query the user before
1152 exiting or killing a buffer if PROCESS is running. This function
1153 returns FLAG. */)
1154 (register Lisp_Object process, Lisp_Object flag)
1155 {
1156 CHECK_PROCESS (process);
1157 XPROCESS (process)->kill_without_query = NILP (flag);
1158 return flag;
1159 }
1160
1161 DEFUN ("process-query-on-exit-flag",
1162 Fprocess_query_on_exit_flag, Sprocess_query_on_exit_flag,
1163 1, 1, 0,
1164 doc: /* Return the current value of query-on-exit flag for PROCESS. */)
1165 (register Lisp_Object process)
1166 {
1167 CHECK_PROCESS (process);
1168 return (XPROCESS (process)->kill_without_query ? Qnil : Qt);
1169 }
1170
1171 DEFUN ("process-contact", Fprocess_contact, Sprocess_contact,
1172 1, 2, 0,
1173 doc: /* Return the contact info of PROCESS; t for a real child.
1174 For a network or serial connection, the value depends on the optional
1175 KEY arg. If KEY is nil, value is a cons cell of the form (HOST
1176 SERVICE) for a network connection or (PORT SPEED) for a serial
1177 connection. If KEY is t, the complete contact information for the
1178 connection is returned, else the specific value for the keyword KEY is
1179 returned. See `make-network-process' or `make-serial-process' for a
1180 list of keywords. */)
1181 (register Lisp_Object process, Lisp_Object key)
1182 {
1183 Lisp_Object contact;
1184
1185 CHECK_PROCESS (process);
1186 contact = XPROCESS (process)->childp;
1187
1188 #ifdef DATAGRAM_SOCKETS
1189 if (DATAGRAM_CONN_P (process)
1190 && (EQ (key, Qt) || EQ (key, QCremote)))
1191 contact = Fplist_put (contact, QCremote,
1192 Fprocess_datagram_address (process));
1193 #endif
1194
1195 if ((!NETCONN_P (process) && !SERIALCONN_P (process)) || EQ (key, Qt))
1196 return contact;
1197 if (NILP (key) && NETCONN_P (process))
1198 return Fcons (Fplist_get (contact, QChost),
1199 Fcons (Fplist_get (contact, QCservice), Qnil));
1200 if (NILP (key) && SERIALCONN_P (process))
1201 return Fcons (Fplist_get (contact, QCport),
1202 Fcons (Fplist_get (contact, QCspeed), Qnil));
1203 return Fplist_get (contact, key);
1204 }
1205
1206 DEFUN ("process-plist", Fprocess_plist, Sprocess_plist,
1207 1, 1, 0,
1208 doc: /* Return the plist of PROCESS. */)
1209 (register Lisp_Object process)
1210 {
1211 CHECK_PROCESS (process);
1212 return XPROCESS (process)->plist;
1213 }
1214
1215 DEFUN ("set-process-plist", Fset_process_plist, Sset_process_plist,
1216 2, 2, 0,
1217 doc: /* Replace the plist of PROCESS with PLIST. Returns PLIST. */)
1218 (register Lisp_Object process, Lisp_Object plist)
1219 {
1220 CHECK_PROCESS (process);
1221 CHECK_LIST (plist);
1222
1223 pset_plist (XPROCESS (process), plist);
1224 return plist;
1225 }
1226
1227 #if 0 /* Turned off because we don't currently record this info
1228 in the process. Perhaps add it. */
1229 DEFUN ("process-connection", Fprocess_connection, Sprocess_connection, 1, 1, 0,
1230 doc: /* Return the connection type of PROCESS.
1231 The value is nil for a pipe, t or `pty' for a pty, or `stream' for
1232 a socket connection. */)
1233 (Lisp_Object process)
1234 {
1235 return XPROCESS (process)->type;
1236 }
1237 #endif
1238
1239 DEFUN ("process-type", Fprocess_type, Sprocess_type, 1, 1, 0,
1240 doc: /* Return the connection type of PROCESS.
1241 The value is either the symbol `real', `network', or `serial'.
1242 PROCESS may be a process, a buffer, the name of a process or buffer, or
1243 nil, indicating the current buffer's process. */)
1244 (Lisp_Object process)
1245 {
1246 Lisp_Object proc;
1247 proc = get_process (process);
1248 return XPROCESS (proc)->type;
1249 }
1250
1251 DEFUN ("format-network-address", Fformat_network_address, Sformat_network_address,
1252 1, 2, 0,
1253 doc: /* Convert network ADDRESS from internal format to a string.
1254 A 4 or 5 element vector represents an IPv4 address (with port number).
1255 An 8 or 9 element vector represents an IPv6 address (with port number).
1256 If optional second argument OMIT-PORT is non-nil, don't include a port
1257 number in the string, even when present in ADDRESS.
1258 Returns nil if format of ADDRESS is invalid. */)
1259 (Lisp_Object address, Lisp_Object omit_port)
1260 {
1261 if (NILP (address))
1262 return Qnil;
1263
1264 if (STRINGP (address)) /* AF_LOCAL */
1265 return address;
1266
1267 if (VECTORP (address)) /* AF_INET or AF_INET6 */
1268 {
1269 register struct Lisp_Vector *p = XVECTOR (address);
1270 ptrdiff_t size = p->header.size;
1271 Lisp_Object args[10];
1272 int nargs, i;
1273
1274 if (size == 4 || (size == 5 && !NILP (omit_port)))
1275 {
1276 args[0] = build_string ("%d.%d.%d.%d");
1277 nargs = 4;
1278 }
1279 else if (size == 5)
1280 {
1281 args[0] = build_string ("%d.%d.%d.%d:%d");
1282 nargs = 5;
1283 }
1284 else if (size == 8 || (size == 9 && !NILP (omit_port)))
1285 {
1286 args[0] = build_string ("%x:%x:%x:%x:%x:%x:%x:%x");
1287 nargs = 8;
1288 }
1289 else if (size == 9)
1290 {
1291 args[0] = build_string ("[%x:%x:%x:%x:%x:%x:%x:%x]:%d");
1292 nargs = 9;
1293 }
1294 else
1295 return Qnil;
1296
1297 for (i = 0; i < nargs; i++)
1298 {
1299 if (! RANGED_INTEGERP (0, p->contents[i], 65535))
1300 return Qnil;
1301
1302 if (nargs <= 5 /* IPv4 */
1303 && i < 4 /* host, not port */
1304 && XINT (p->contents[i]) > 255)
1305 return Qnil;
1306
1307 args[i+1] = p->contents[i];
1308 }
1309
1310 return Fformat (nargs+1, args);
1311 }
1312
1313 if (CONSP (address))
1314 {
1315 Lisp_Object args[2];
1316 args[0] = build_string ("<Family %d>");
1317 args[1] = Fcar (address);
1318 return Fformat (2, args);
1319 }
1320
1321 return Qnil;
1322 }
1323
1324 DEFUN ("process-list", Fprocess_list, Sprocess_list, 0, 0, 0,
1325 doc: /* Return a list of all processes. */)
1326 (void)
1327 {
1328 return Fmapcar (Qcdr, Vprocess_alist);
1329 }
1330 \f
1331 /* Starting asynchronous inferior processes. */
1332
1333 static Lisp_Object start_process_unwind (Lisp_Object proc);
1334
1335 DEFUN ("start-process", Fstart_process, Sstart_process, 3, MANY, 0,
1336 doc: /* Start a program in a subprocess. Return the process object for it.
1337 NAME is name for process. It is modified if necessary to make it unique.
1338 BUFFER is the buffer (or buffer name) to associate with the process.
1339
1340 Process output (both standard output and standard error streams) goes
1341 at end of BUFFER, unless you specify an output stream or filter
1342 function to handle the output. BUFFER may also be nil, meaning that
1343 this process is not associated with any buffer.
1344
1345 PROGRAM is the program file name. It is searched for in `exec-path'
1346 (which see). If nil, just associate a pty with the buffer. Remaining
1347 arguments are strings to give program as arguments.
1348
1349 If you want to separate standard output from standard error, invoke
1350 the command through a shell and redirect one of them using the shell
1351 syntax.
1352
1353 usage: (start-process NAME BUFFER PROGRAM &rest PROGRAM-ARGS) */)
1354 (ptrdiff_t nargs, Lisp_Object *args)
1355 {
1356 Lisp_Object buffer, name, program, proc, current_dir, tem;
1357 register unsigned char **new_argv;
1358 ptrdiff_t i;
1359 ptrdiff_t count = SPECPDL_INDEX ();
1360
1361 buffer = args[1];
1362 if (!NILP (buffer))
1363 buffer = Fget_buffer_create (buffer);
1364
1365 /* Make sure that the child will be able to chdir to the current
1366 buffer's current directory, or its unhandled equivalent. We
1367 can't just have the child check for an error when it does the
1368 chdir, since it's in a vfork.
1369
1370 We have to GCPRO around this because Fexpand_file_name and
1371 Funhandled_file_name_directory might call a file name handling
1372 function. The argument list is protected by the caller, so all
1373 we really have to worry about is buffer. */
1374 {
1375 struct gcpro gcpro1, gcpro2;
1376
1377 current_dir = BVAR (current_buffer, directory);
1378
1379 GCPRO2 (buffer, current_dir);
1380
1381 current_dir = Funhandled_file_name_directory (current_dir);
1382 if (NILP (current_dir))
1383 /* If the file name handler says that current_dir is unreachable, use
1384 a sensible default. */
1385 current_dir = build_string ("~/");
1386 current_dir = expand_and_dir_to_file (current_dir, Qnil);
1387 if (NILP (Ffile_accessible_directory_p (current_dir)))
1388 report_file_error ("Setting current directory",
1389 Fcons (BVAR (current_buffer, directory), Qnil));
1390
1391 UNGCPRO;
1392 }
1393
1394 name = args[0];
1395 CHECK_STRING (name);
1396
1397 program = args[2];
1398
1399 if (!NILP (program))
1400 CHECK_STRING (program);
1401
1402 proc = make_process (name);
1403 /* If an error occurs and we can't start the process, we want to
1404 remove it from the process list. This means that each error
1405 check in create_process doesn't need to call remove_process
1406 itself; it's all taken care of here. */
1407 record_unwind_protect (start_process_unwind, proc);
1408
1409 pset_childp (XPROCESS (proc), Qt);
1410 pset_plist (XPROCESS (proc), Qnil);
1411 pset_type (XPROCESS (proc), Qreal);
1412 pset_buffer (XPROCESS (proc), buffer);
1413 pset_sentinel (XPROCESS (proc), Qnil);
1414 pset_filter (XPROCESS (proc), Qnil);
1415 pset_command (XPROCESS (proc), Flist (nargs - 2, args + 2));
1416
1417 #ifdef HAVE_GNUTLS
1418 /* AKA GNUTLS_INITSTAGE(proc). */
1419 XPROCESS (proc)->gnutls_initstage = GNUTLS_STAGE_EMPTY;
1420 pset_gnutls_cred_type (XPROCESS (proc), Qnil);
1421 #endif
1422
1423 #ifdef ADAPTIVE_READ_BUFFERING
1424 XPROCESS (proc)->adaptive_read_buffering
1425 = (NILP (Vprocess_adaptive_read_buffering) ? 0
1426 : EQ (Vprocess_adaptive_read_buffering, Qt) ? 1 : 2);
1427 #endif
1428
1429 /* Make the process marker point into the process buffer (if any). */
1430 if (BUFFERP (buffer))
1431 set_marker_both (XPROCESS (proc)->mark, buffer,
1432 BUF_ZV (XBUFFER (buffer)),
1433 BUF_ZV_BYTE (XBUFFER (buffer)));
1434
1435 {
1436 /* Decide coding systems for communicating with the process. Here
1437 we don't setup the structure coding_system nor pay attention to
1438 unibyte mode. They are done in create_process. */
1439
1440 /* Qt denotes we have not yet called Ffind_operation_coding_system. */
1441 Lisp_Object coding_systems = Qt;
1442 Lisp_Object val, *args2;
1443 struct gcpro gcpro1, gcpro2;
1444
1445 val = Vcoding_system_for_read;
1446 if (NILP (val))
1447 {
1448 args2 = alloca ((nargs + 1) * sizeof *args2);
1449 args2[0] = Qstart_process;
1450 for (i = 0; i < nargs; i++) args2[i + 1] = args[i];
1451 GCPRO2 (proc, current_dir);
1452 if (!NILP (program))
1453 coding_systems = Ffind_operation_coding_system (nargs + 1, args2);
1454 UNGCPRO;
1455 if (CONSP (coding_systems))
1456 val = XCAR (coding_systems);
1457 else if (CONSP (Vdefault_process_coding_system))
1458 val = XCAR (Vdefault_process_coding_system);
1459 }
1460 pset_decode_coding_system (XPROCESS (proc), val);
1461
1462 val = Vcoding_system_for_write;
1463 if (NILP (val))
1464 {
1465 if (EQ (coding_systems, Qt))
1466 {
1467 args2 = alloca ((nargs + 1) * sizeof *args2);
1468 args2[0] = Qstart_process;
1469 for (i = 0; i < nargs; i++) args2[i + 1] = args[i];
1470 GCPRO2 (proc, current_dir);
1471 if (!NILP (program))
1472 coding_systems = Ffind_operation_coding_system (nargs + 1, args2);
1473 UNGCPRO;
1474 }
1475 if (CONSP (coding_systems))
1476 val = XCDR (coding_systems);
1477 else if (CONSP (Vdefault_process_coding_system))
1478 val = XCDR (Vdefault_process_coding_system);
1479 }
1480 pset_encode_coding_system (XPROCESS (proc), val);
1481 /* Note: At this moment, the above coding system may leave
1482 text-conversion or eol-conversion unspecified. They will be
1483 decided after we read output from the process and decode it by
1484 some coding system, or just before we actually send a text to
1485 the process. */
1486 }
1487
1488
1489 pset_decoding_buf (XPROCESS (proc), empty_unibyte_string);
1490 XPROCESS (proc)->decoding_carryover = 0;
1491 pset_encoding_buf (XPROCESS (proc), empty_unibyte_string);
1492
1493 XPROCESS (proc)->inherit_coding_system_flag
1494 = !(NILP (buffer) || !inherit_process_coding_system);
1495
1496 if (!NILP (program))
1497 {
1498 /* If program file name is not absolute, search our path for it.
1499 Put the name we will really use in TEM. */
1500 if (!IS_DIRECTORY_SEP (SREF (program, 0))
1501 && !(SCHARS (program) > 1
1502 && IS_DEVICE_SEP (SREF (program, 1))))
1503 {
1504 struct gcpro gcpro1, gcpro2, gcpro3, gcpro4;
1505
1506 tem = Qnil;
1507 GCPRO4 (name, program, buffer, current_dir);
1508 openp (Vexec_path, program, Vexec_suffixes, &tem, make_number (X_OK));
1509 UNGCPRO;
1510 if (NILP (tem))
1511 report_file_error ("Searching for program", Fcons (program, Qnil));
1512 tem = Fexpand_file_name (tem, Qnil);
1513 }
1514 else
1515 {
1516 if (!NILP (Ffile_directory_p (program)))
1517 error ("Specified program for new process is a directory");
1518 tem = program;
1519 }
1520
1521 /* If program file name starts with /: for quoting a magic name,
1522 discard that. */
1523 if (SBYTES (tem) > 2 && SREF (tem, 0) == '/'
1524 && SREF (tem, 1) == ':')
1525 tem = Fsubstring (tem, make_number (2), Qnil);
1526
1527 {
1528 Lisp_Object arg_encoding = Qnil;
1529 struct gcpro gcpro1;
1530 GCPRO1 (tem);
1531
1532 /* Encode the file name and put it in NEW_ARGV.
1533 That's where the child will use it to execute the program. */
1534 tem = Fcons (ENCODE_FILE (tem), Qnil);
1535
1536 /* Here we encode arguments by the coding system used for sending
1537 data to the process. We don't support using different coding
1538 systems for encoding arguments and for encoding data sent to the
1539 process. */
1540
1541 for (i = 3; i < nargs; i++)
1542 {
1543 tem = Fcons (args[i], tem);
1544 CHECK_STRING (XCAR (tem));
1545 if (STRING_MULTIBYTE (XCAR (tem)))
1546 {
1547 if (NILP (arg_encoding))
1548 arg_encoding = (complement_process_encoding_system
1549 (XPROCESS (proc)->encode_coding_system));
1550 XSETCAR (tem,
1551 code_convert_string_norecord
1552 (XCAR (tem), arg_encoding, 1));
1553 }
1554 }
1555
1556 UNGCPRO;
1557 }
1558
1559 /* Now that everything is encoded we can collect the strings into
1560 NEW_ARGV. */
1561 new_argv = alloca ((nargs - 1) * sizeof *new_argv);
1562 new_argv[nargs - 2] = 0;
1563
1564 for (i = nargs - 2; i-- != 0; )
1565 {
1566 new_argv[i] = SDATA (XCAR (tem));
1567 tem = XCDR (tem);
1568 }
1569
1570 create_process (proc, (char **) new_argv, current_dir);
1571 }
1572 else
1573 create_pty (proc);
1574
1575 return unbind_to (count, proc);
1576 }
1577
1578 /* This function is the unwind_protect form for Fstart_process. If
1579 PROC doesn't have its pid set, then we know someone has signaled
1580 an error and the process wasn't started successfully, so we should
1581 remove it from the process list. */
1582 static Lisp_Object
1583 start_process_unwind (Lisp_Object proc)
1584 {
1585 if (!PROCESSP (proc))
1586 emacs_abort ();
1587
1588 /* Was PROC started successfully?
1589 -2 is used for a pty with no process, eg for gdb. */
1590 if (XPROCESS (proc)->pid <= 0 && XPROCESS (proc)->pid != -2)
1591 remove_process (proc);
1592
1593 return Qnil;
1594 }
1595
1596 static void
1597 create_process_1 (struct atimer *timer)
1598 {
1599 /* Nothing to do. */
1600 }
1601
1602
1603 static void
1604 create_process (Lisp_Object process, char **new_argv, Lisp_Object current_dir)
1605 {
1606 int inchannel, outchannel;
1607 pid_t pid;
1608 int sv[2];
1609 #if !defined (WINDOWSNT) && defined (FD_CLOEXEC)
1610 int wait_child_setup[2];
1611 #endif
1612 sigset_t blocked, procmask;
1613 struct sigaction sigint_action;
1614 struct sigaction sigquit_action;
1615 struct sigaction sigpipe_action;
1616 #ifdef AIX
1617 struct sigaction sighup_action;
1618 #endif
1619 /* Use volatile to protect variables from being clobbered by longjmp. */
1620 volatile int forkin, forkout;
1621 volatile int pty_flag = 0;
1622
1623 inchannel = outchannel = -1;
1624
1625 #ifdef HAVE_PTYS
1626 if (!NILP (Vprocess_connection_type))
1627 outchannel = inchannel = allocate_pty ();
1628
1629 if (inchannel >= 0)
1630 {
1631 #if ! defined (USG) || defined (USG_SUBTTY_WORKS)
1632 /* On most USG systems it does not work to open the pty's tty here,
1633 then close it and reopen it in the child. */
1634 #ifdef O_NOCTTY
1635 /* Don't let this terminal become our controlling terminal
1636 (in case we don't have one). */
1637 forkout = forkin = emacs_open (pty_name, O_RDWR | O_NOCTTY, 0);
1638 #else
1639 forkout = forkin = emacs_open (pty_name, O_RDWR, 0);
1640 #endif
1641 if (forkin < 0)
1642 report_file_error ("Opening pty", Qnil);
1643 #else
1644 forkin = forkout = -1;
1645 #endif /* not USG, or USG_SUBTTY_WORKS */
1646 pty_flag = 1;
1647 }
1648 else
1649 #endif /* HAVE_PTYS */
1650 {
1651 int tem;
1652 tem = pipe (sv);
1653 if (tem < 0)
1654 report_file_error ("Creating pipe", Qnil);
1655 inchannel = sv[0];
1656 forkout = sv[1];
1657 tem = pipe (sv);
1658 if (tem < 0)
1659 {
1660 emacs_close (inchannel);
1661 emacs_close (forkout);
1662 report_file_error ("Creating pipe", Qnil);
1663 }
1664 outchannel = sv[1];
1665 forkin = sv[0];
1666 }
1667
1668 #if !defined (WINDOWSNT) && defined (FD_CLOEXEC)
1669 {
1670 int tem;
1671
1672 tem = pipe (wait_child_setup);
1673 if (tem < 0)
1674 report_file_error ("Creating pipe", Qnil);
1675 tem = fcntl (wait_child_setup[1], F_GETFD, 0);
1676 if (tem >= 0)
1677 tem = fcntl (wait_child_setup[1], F_SETFD, tem | FD_CLOEXEC);
1678 if (tem < 0)
1679 {
1680 emacs_close (wait_child_setup[0]);
1681 emacs_close (wait_child_setup[1]);
1682 report_file_error ("Setting file descriptor flags", Qnil);
1683 }
1684 }
1685 #endif
1686
1687 #ifdef O_NONBLOCK
1688 fcntl (inchannel, F_SETFL, O_NONBLOCK);
1689 fcntl (outchannel, F_SETFL, O_NONBLOCK);
1690 #else
1691 #ifdef O_NDELAY
1692 fcntl (inchannel, F_SETFL, O_NDELAY);
1693 fcntl (outchannel, F_SETFL, O_NDELAY);
1694 #endif
1695 #endif
1696
1697 /* Record this as an active process, with its channels.
1698 As a result, child_setup will close Emacs's side of the pipes. */
1699 chan_process[inchannel] = process;
1700 XPROCESS (process)->infd = inchannel;
1701 XPROCESS (process)->outfd = outchannel;
1702
1703 /* Previously we recorded the tty descriptor used in the subprocess.
1704 It was only used for getting the foreground tty process, so now
1705 we just reopen the device (see emacs_get_tty_pgrp) as this is
1706 more portable (see USG_SUBTTY_WORKS above). */
1707
1708 XPROCESS (process)->pty_flag = pty_flag;
1709 pset_status (XPROCESS (process), Qrun);
1710
1711 /* Delay interrupts until we have a chance to store
1712 the new fork's pid in its process structure */
1713 sigemptyset (&blocked);
1714 #ifdef SIGCHLD
1715 sigaddset (&blocked, SIGCHLD);
1716 #endif
1717 #ifdef HAVE_WORKING_VFORK
1718 /* On many hosts (e.g. Solaris 2.4), if a vforked child calls `signal',
1719 this sets the parent's signal handlers as well as the child's.
1720 So delay all interrupts whose handlers the child might munge,
1721 and record the current handlers so they can be restored later. */
1722 sigaddset (&blocked, SIGINT ); sigaction (SIGINT , 0, &sigint_action );
1723 sigaddset (&blocked, SIGQUIT); sigaction (SIGQUIT, 0, &sigquit_action);
1724 sigaddset (&blocked, SIGPIPE); sigaction (SIGPIPE, 0, &sigpipe_action);
1725 #ifdef AIX
1726 sigaddset (&blocked, SIGHUP ); sigaction (SIGHUP , 0, &sighup_action );
1727 #endif
1728 #endif /* HAVE_WORKING_VFORK */
1729 pthread_sigmask (SIG_BLOCK, &blocked, &procmask);
1730
1731 FD_SET (inchannel, &input_wait_mask);
1732 FD_SET (inchannel, &non_keyboard_wait_mask);
1733 if (inchannel > max_process_desc)
1734 max_process_desc = inchannel;
1735
1736 /* Until we store the proper pid, enable the SIGCHLD handler
1737 to recognize an unknown pid as standing for this process.
1738 It is very important not to let this `marker' value stay
1739 in the table after this function has returned; if it does
1740 it might cause call-process to hang and subsequent asynchronous
1741 processes to get their return values scrambled. */
1742 XPROCESS (process)->pid = -1;
1743
1744 /* This must be called after the above line because it may signal an
1745 error. */
1746 setup_process_coding_systems (process);
1747
1748 BLOCK_INPUT;
1749
1750 {
1751 /* child_setup must clobber environ on systems with true vfork.
1752 Protect it from permanent change. */
1753 char **save_environ = environ;
1754 volatile Lisp_Object encoded_current_dir = ENCODE_FILE (current_dir);
1755
1756 #ifndef WINDOWSNT
1757 pid = vfork ();
1758 if (pid == 0)
1759 #endif /* not WINDOWSNT */
1760 {
1761 int xforkin = forkin;
1762 int xforkout = forkout;
1763
1764 /* Make the pty be the controlling terminal of the process. */
1765 #ifdef HAVE_PTYS
1766 /* First, disconnect its current controlling terminal. */
1767 #ifdef HAVE_SETSID
1768 /* We tried doing setsid only if pty_flag, but it caused
1769 process_set_signal to fail on SGI when using a pipe. */
1770 setsid ();
1771 /* Make the pty's terminal the controlling terminal. */
1772 if (pty_flag && xforkin >= 0)
1773 {
1774 #ifdef TIOCSCTTY
1775 /* We ignore the return value
1776 because faith@cs.unc.edu says that is necessary on Linux. */
1777 ioctl (xforkin, TIOCSCTTY, 0);
1778 #endif
1779 }
1780 #else /* not HAVE_SETSID */
1781 #ifdef USG
1782 /* It's very important to call setpgrp here and no time
1783 afterwards. Otherwise, we lose our controlling tty which
1784 is set when we open the pty. */
1785 setpgrp ();
1786 #endif /* USG */
1787 #endif /* not HAVE_SETSID */
1788 #if defined (LDISC1)
1789 if (pty_flag && xforkin >= 0)
1790 {
1791 struct termios t;
1792 tcgetattr (xforkin, &t);
1793 t.c_lflag = LDISC1;
1794 if (tcsetattr (xforkin, TCSANOW, &t) < 0)
1795 emacs_write (1, "create_process/tcsetattr LDISC1 failed\n", 39);
1796 }
1797 #else
1798 #if defined (NTTYDISC) && defined (TIOCSETD)
1799 if (pty_flag && xforkin >= 0)
1800 {
1801 /* Use new line discipline. */
1802 int ldisc = NTTYDISC;
1803 ioctl (xforkin, TIOCSETD, &ldisc);
1804 }
1805 #endif
1806 #endif
1807 #ifdef TIOCNOTTY
1808 /* In 4.3BSD, the TIOCSPGRP bug has been fixed, and now you
1809 can do TIOCSPGRP only to the process's controlling tty. */
1810 if (pty_flag)
1811 {
1812 /* I wonder: would just ioctl (0, TIOCNOTTY, 0) work here?
1813 I can't test it since I don't have 4.3. */
1814 int j = emacs_open ("/dev/tty", O_RDWR, 0);
1815 if (j >= 0)
1816 {
1817 ioctl (j, TIOCNOTTY, 0);
1818 emacs_close (j);
1819 }
1820 #ifndef USG
1821 /* In order to get a controlling terminal on some versions
1822 of BSD, it is necessary to put the process in pgrp 0
1823 before it opens the terminal. */
1824 #ifdef HAVE_SETPGID
1825 setpgid (0, 0);
1826 #else
1827 setpgrp (0, 0);
1828 #endif
1829 #endif
1830 }
1831 #endif /* TIOCNOTTY */
1832
1833 #if !defined (DONT_REOPEN_PTY)
1834 /*** There is a suggestion that this ought to be a
1835 conditional on TIOCSPGRP,
1836 or !(defined (HAVE_SETSID) && defined (TIOCSCTTY)).
1837 Trying the latter gave the wrong results on Debian GNU/Linux 1.1;
1838 that system does seem to need this code, even though
1839 both HAVE_SETSID and TIOCSCTTY are defined. */
1840 /* Now close the pty (if we had it open) and reopen it.
1841 This makes the pty the controlling terminal of the subprocess. */
1842 if (pty_flag)
1843 {
1844
1845 /* I wonder if emacs_close (emacs_open (pty_name, ...))
1846 would work? */
1847 if (xforkin >= 0)
1848 emacs_close (xforkin);
1849 xforkout = xforkin = emacs_open (pty_name, O_RDWR, 0);
1850
1851 if (xforkin < 0)
1852 {
1853 emacs_write (1, "Couldn't open the pty terminal ", 31);
1854 emacs_write (1, pty_name, strlen (pty_name));
1855 emacs_write (1, "\n", 1);
1856 _exit (1);
1857 }
1858
1859 }
1860 #endif /* not DONT_REOPEN_PTY */
1861
1862 #ifdef SETUP_SLAVE_PTY
1863 if (pty_flag)
1864 {
1865 SETUP_SLAVE_PTY;
1866 }
1867 #endif /* SETUP_SLAVE_PTY */
1868 #ifdef AIX
1869 /* On AIX, we've disabled SIGHUP above once we start a child on a pty.
1870 Now reenable it in the child, so it will die when we want it to. */
1871 if (pty_flag)
1872 signal (SIGHUP, SIG_DFL);
1873 #endif
1874 #endif /* HAVE_PTYS */
1875
1876 signal (SIGINT, SIG_DFL);
1877 signal (SIGQUIT, SIG_DFL);
1878 /* GConf causes us to ignore SIGPIPE, make sure it is restored
1879 in the child. */
1880 signal (SIGPIPE, SIG_DFL);
1881
1882 /* Stop blocking signals in the child. */
1883 pthread_sigmask (SIG_SETMASK, &procmask, 0);
1884
1885 if (pty_flag)
1886 child_setup_tty (xforkout);
1887 #ifdef WINDOWSNT
1888 pid = child_setup (xforkin, xforkout, xforkout,
1889 new_argv, 1, encoded_current_dir);
1890 #else /* not WINDOWSNT */
1891 #ifdef FD_CLOEXEC
1892 emacs_close (wait_child_setup[0]);
1893 #endif
1894 child_setup (xforkin, xforkout, xforkout,
1895 new_argv, 1, encoded_current_dir);
1896 #endif /* not WINDOWSNT */
1897 }
1898 environ = save_environ;
1899 }
1900
1901 UNBLOCK_INPUT;
1902
1903 /* This runs in the Emacs process. */
1904 if (pid < 0)
1905 {
1906 if (forkin >= 0)
1907 emacs_close (forkin);
1908 if (forkin != forkout && forkout >= 0)
1909 emacs_close (forkout);
1910 }
1911 else
1912 {
1913 /* vfork succeeded. */
1914 XPROCESS (process)->pid = pid;
1915
1916 #ifdef WINDOWSNT
1917 register_child (pid, inchannel);
1918 #endif /* WINDOWSNT */
1919
1920 /* If the subfork execv fails, and it exits,
1921 this close hangs. I don't know why.
1922 So have an interrupt jar it loose. */
1923 {
1924 struct atimer *timer;
1925 EMACS_TIME offset = make_emacs_time (1, 0);
1926
1927 stop_polling ();
1928 timer = start_atimer (ATIMER_RELATIVE, offset, create_process_1, 0);
1929
1930 if (forkin >= 0)
1931 emacs_close (forkin);
1932
1933 cancel_atimer (timer);
1934 start_polling ();
1935 }
1936
1937 if (forkin != forkout && forkout >= 0)
1938 emacs_close (forkout);
1939
1940 #ifdef HAVE_PTYS
1941 if (pty_flag)
1942 pset_tty_name (XPROCESS (process), build_string (pty_name));
1943 else
1944 #endif
1945 pset_tty_name (XPROCESS (process), Qnil);
1946
1947 #if !defined (WINDOWSNT) && defined (FD_CLOEXEC)
1948 /* Wait for child_setup to complete in case that vfork is
1949 actually defined as fork. The descriptor wait_child_setup[1]
1950 of a pipe is closed at the child side either by close-on-exec
1951 on successful execvp or the _exit call in child_setup. */
1952 {
1953 char dummy;
1954
1955 emacs_close (wait_child_setup[1]);
1956 emacs_read (wait_child_setup[0], &dummy, 1);
1957 emacs_close (wait_child_setup[0]);
1958 }
1959 #endif
1960 }
1961
1962 /* Restore the signal state whether vfork succeeded or not.
1963 (We will signal an error, below, if it failed.) */
1964 #ifdef HAVE_WORKING_VFORK
1965 /* Restore the parent's signal handlers. */
1966 sigaction (SIGINT, &sigint_action, 0);
1967 sigaction (SIGQUIT, &sigquit_action, 0);
1968 sigaction (SIGPIPE, &sigpipe_action, 0);
1969 #ifdef AIX
1970 sigaction (SIGHUP, &sighup_action, 0);
1971 #endif
1972 #endif /* HAVE_WORKING_VFORK */
1973 /* Stop blocking signals in the parent. */
1974 pthread_sigmask (SIG_SETMASK, &procmask, 0);
1975
1976 /* Now generate the error if vfork failed. */
1977 if (pid < 0)
1978 report_file_error ("Doing vfork", Qnil);
1979 }
1980
1981 void
1982 create_pty (Lisp_Object process)
1983 {
1984 int inchannel, outchannel;
1985 int pty_flag = 0;
1986
1987 inchannel = outchannel = -1;
1988
1989 #ifdef HAVE_PTYS
1990 if (!NILP (Vprocess_connection_type))
1991 outchannel = inchannel = allocate_pty ();
1992
1993 if (inchannel >= 0)
1994 {
1995 #if ! defined (USG) || defined (USG_SUBTTY_WORKS)
1996 /* On most USG systems it does not work to open the pty's tty here,
1997 then close it and reopen it in the child. */
1998 #ifdef O_NOCTTY
1999 /* Don't let this terminal become our controlling terminal
2000 (in case we don't have one). */
2001 int forkout = emacs_open (pty_name, O_RDWR | O_NOCTTY, 0);
2002 #else
2003 int forkout = emacs_open (pty_name, O_RDWR, 0);
2004 #endif
2005 if (forkout < 0)
2006 report_file_error ("Opening pty", Qnil);
2007 #if defined (DONT_REOPEN_PTY)
2008 /* In the case that vfork is defined as fork, the parent process
2009 (Emacs) may send some data before the child process completes
2010 tty options setup. So we setup tty before forking. */
2011 child_setup_tty (forkout);
2012 #endif /* DONT_REOPEN_PTY */
2013 #endif /* not USG, or USG_SUBTTY_WORKS */
2014 pty_flag = 1;
2015 }
2016 #endif /* HAVE_PTYS */
2017
2018 #ifdef O_NONBLOCK
2019 fcntl (inchannel, F_SETFL, O_NONBLOCK);
2020 fcntl (outchannel, F_SETFL, O_NONBLOCK);
2021 #else
2022 #ifdef O_NDELAY
2023 fcntl (inchannel, F_SETFL, O_NDELAY);
2024 fcntl (outchannel, F_SETFL, O_NDELAY);
2025 #endif
2026 #endif
2027
2028 /* Record this as an active process, with its channels.
2029 As a result, child_setup will close Emacs's side of the pipes. */
2030 chan_process[inchannel] = process;
2031 XPROCESS (process)->infd = inchannel;
2032 XPROCESS (process)->outfd = outchannel;
2033
2034 /* Previously we recorded the tty descriptor used in the subprocess.
2035 It was only used for getting the foreground tty process, so now
2036 we just reopen the device (see emacs_get_tty_pgrp) as this is
2037 more portable (see USG_SUBTTY_WORKS above). */
2038
2039 XPROCESS (process)->pty_flag = pty_flag;
2040 pset_status (XPROCESS (process), Qrun);
2041 setup_process_coding_systems (process);
2042
2043 FD_SET (inchannel, &input_wait_mask);
2044 FD_SET (inchannel, &non_keyboard_wait_mask);
2045 if (inchannel > max_process_desc)
2046 max_process_desc = inchannel;
2047
2048 XPROCESS (process)->pid = -2;
2049 #ifdef HAVE_PTYS
2050 if (pty_flag)
2051 pset_tty_name (XPROCESS (process), build_string (pty_name));
2052 else
2053 #endif
2054 pset_tty_name (XPROCESS (process), Qnil);
2055 }
2056
2057 \f
2058 /* Convert an internal struct sockaddr to a lisp object (vector or string).
2059 The address family of sa is not included in the result. */
2060
2061 static Lisp_Object
2062 conv_sockaddr_to_lisp (struct sockaddr *sa, int len)
2063 {
2064 Lisp_Object address;
2065 int i;
2066 unsigned char *cp;
2067 register struct Lisp_Vector *p;
2068
2069 /* Workaround for a bug in getsockname on BSD: Names bound to
2070 sockets in the UNIX domain are inaccessible; getsockname returns
2071 a zero length name. */
2072 if (len < offsetof (struct sockaddr, sa_family) + sizeof (sa->sa_family))
2073 return empty_unibyte_string;
2074
2075 switch (sa->sa_family)
2076 {
2077 case AF_INET:
2078 {
2079 struct sockaddr_in *sin = (struct sockaddr_in *) sa;
2080 len = sizeof (sin->sin_addr) + 1;
2081 address = Fmake_vector (make_number (len), Qnil);
2082 p = XVECTOR (address);
2083 p->contents[--len] = make_number (ntohs (sin->sin_port));
2084 cp = (unsigned char *) &sin->sin_addr;
2085 break;
2086 }
2087 #ifdef AF_INET6
2088 case AF_INET6:
2089 {
2090 struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *) sa;
2091 uint16_t *ip6 = (uint16_t *) &sin6->sin6_addr;
2092 len = sizeof (sin6->sin6_addr)/2 + 1;
2093 address = Fmake_vector (make_number (len), Qnil);
2094 p = XVECTOR (address);
2095 p->contents[--len] = make_number (ntohs (sin6->sin6_port));
2096 for (i = 0; i < len; i++)
2097 p->contents[i] = make_number (ntohs (ip6[i]));
2098 return address;
2099 }
2100 #endif
2101 #ifdef HAVE_LOCAL_SOCKETS
2102 case AF_LOCAL:
2103 {
2104 struct sockaddr_un *sockun = (struct sockaddr_un *) sa;
2105 for (i = 0; i < sizeof (sockun->sun_path); i++)
2106 if (sockun->sun_path[i] == 0)
2107 break;
2108 return make_unibyte_string (sockun->sun_path, i);
2109 }
2110 #endif
2111 default:
2112 len -= offsetof (struct sockaddr, sa_family) + sizeof (sa->sa_family);
2113 address = Fcons (make_number (sa->sa_family),
2114 Fmake_vector (make_number (len), Qnil));
2115 p = XVECTOR (XCDR (address));
2116 cp = (unsigned char *) &sa->sa_family + sizeof (sa->sa_family);
2117 break;
2118 }
2119
2120 i = 0;
2121 while (i < len)
2122 p->contents[i++] = make_number (*cp++);
2123
2124 return address;
2125 }
2126
2127
2128 /* Get family and required size for sockaddr structure to hold ADDRESS. */
2129
2130 static int
2131 get_lisp_to_sockaddr_size (Lisp_Object address, int *familyp)
2132 {
2133 register struct Lisp_Vector *p;
2134
2135 if (VECTORP (address))
2136 {
2137 p = XVECTOR (address);
2138 if (p->header.size == 5)
2139 {
2140 *familyp = AF_INET;
2141 return sizeof (struct sockaddr_in);
2142 }
2143 #ifdef AF_INET6
2144 else if (p->header.size == 9)
2145 {
2146 *familyp = AF_INET6;
2147 return sizeof (struct sockaddr_in6);
2148 }
2149 #endif
2150 }
2151 #ifdef HAVE_LOCAL_SOCKETS
2152 else if (STRINGP (address))
2153 {
2154 *familyp = AF_LOCAL;
2155 return sizeof (struct sockaddr_un);
2156 }
2157 #endif
2158 else if (CONSP (address) && TYPE_RANGED_INTEGERP (int, XCAR (address))
2159 && VECTORP (XCDR (address)))
2160 {
2161 struct sockaddr *sa;
2162 *familyp = XINT (XCAR (address));
2163 p = XVECTOR (XCDR (address));
2164 return p->header.size + sizeof (sa->sa_family);
2165 }
2166 return 0;
2167 }
2168
2169 /* Convert an address object (vector or string) to an internal sockaddr.
2170
2171 The address format has been basically validated by
2172 get_lisp_to_sockaddr_size, but this does not mean FAMILY is valid;
2173 it could have come from user data. So if FAMILY is not valid,
2174 we return after zeroing *SA. */
2175
2176 static void
2177 conv_lisp_to_sockaddr (int family, Lisp_Object address, struct sockaddr *sa, int len)
2178 {
2179 register struct Lisp_Vector *p;
2180 register unsigned char *cp = NULL;
2181 register int i;
2182 EMACS_INT hostport;
2183
2184 memset (sa, 0, len);
2185
2186 if (VECTORP (address))
2187 {
2188 p = XVECTOR (address);
2189 if (family == AF_INET)
2190 {
2191 struct sockaddr_in *sin = (struct sockaddr_in *) sa;
2192 len = sizeof (sin->sin_addr) + 1;
2193 hostport = XINT (p->contents[--len]);
2194 sin->sin_port = htons (hostport);
2195 cp = (unsigned char *)&sin->sin_addr;
2196 sa->sa_family = family;
2197 }
2198 #ifdef AF_INET6
2199 else if (family == AF_INET6)
2200 {
2201 struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *) sa;
2202 uint16_t *ip6 = (uint16_t *)&sin6->sin6_addr;
2203 len = sizeof (sin6->sin6_addr) + 1;
2204 hostport = XINT (p->contents[--len]);
2205 sin6->sin6_port = htons (hostport);
2206 for (i = 0; i < len; i++)
2207 if (INTEGERP (p->contents[i]))
2208 {
2209 int j = XFASTINT (p->contents[i]) & 0xffff;
2210 ip6[i] = ntohs (j);
2211 }
2212 sa->sa_family = family;
2213 return;
2214 }
2215 #endif
2216 else
2217 return;
2218 }
2219 else if (STRINGP (address))
2220 {
2221 #ifdef HAVE_LOCAL_SOCKETS
2222 if (family == AF_LOCAL)
2223 {
2224 struct sockaddr_un *sockun = (struct sockaddr_un *) sa;
2225 cp = SDATA (address);
2226 for (i = 0; i < sizeof (sockun->sun_path) && *cp; i++)
2227 sockun->sun_path[i] = *cp++;
2228 sa->sa_family = family;
2229 }
2230 #endif
2231 return;
2232 }
2233 else
2234 {
2235 p = XVECTOR (XCDR (address));
2236 cp = (unsigned char *)sa + sizeof (sa->sa_family);
2237 }
2238
2239 for (i = 0; i < len; i++)
2240 if (INTEGERP (p->contents[i]))
2241 *cp++ = XFASTINT (p->contents[i]) & 0xff;
2242 }
2243
2244 #ifdef DATAGRAM_SOCKETS
2245 DEFUN ("process-datagram-address", Fprocess_datagram_address, Sprocess_datagram_address,
2246 1, 1, 0,
2247 doc: /* Get the current datagram address associated with PROCESS. */)
2248 (Lisp_Object process)
2249 {
2250 int channel;
2251
2252 CHECK_PROCESS (process);
2253
2254 if (!DATAGRAM_CONN_P (process))
2255 return Qnil;
2256
2257 channel = XPROCESS (process)->infd;
2258 return conv_sockaddr_to_lisp (datagram_address[channel].sa,
2259 datagram_address[channel].len);
2260 }
2261
2262 DEFUN ("set-process-datagram-address", Fset_process_datagram_address, Sset_process_datagram_address,
2263 2, 2, 0,
2264 doc: /* Set the datagram address for PROCESS to ADDRESS.
2265 Returns nil upon error setting address, ADDRESS otherwise. */)
2266 (Lisp_Object process, Lisp_Object address)
2267 {
2268 int channel;
2269 int family, len;
2270
2271 CHECK_PROCESS (process);
2272
2273 if (!DATAGRAM_CONN_P (process))
2274 return Qnil;
2275
2276 channel = XPROCESS (process)->infd;
2277
2278 len = get_lisp_to_sockaddr_size (address, &family);
2279 if (datagram_address[channel].len != len)
2280 return Qnil;
2281 conv_lisp_to_sockaddr (family, address, datagram_address[channel].sa, len);
2282 return address;
2283 }
2284 #endif
2285 \f
2286
2287 static const struct socket_options {
2288 /* The name of this option. Should be lowercase version of option
2289 name without SO_ prefix. */
2290 const char *name;
2291 /* Option level SOL_... */
2292 int optlevel;
2293 /* Option number SO_... */
2294 int optnum;
2295 enum { SOPT_UNKNOWN, SOPT_BOOL, SOPT_INT, SOPT_IFNAME, SOPT_LINGER } opttype;
2296 enum { OPIX_NONE=0, OPIX_MISC=1, OPIX_REUSEADDR=2 } optbit;
2297 } socket_options[] =
2298 {
2299 #ifdef SO_BINDTODEVICE
2300 { ":bindtodevice", SOL_SOCKET, SO_BINDTODEVICE, SOPT_IFNAME, OPIX_MISC },
2301 #endif
2302 #ifdef SO_BROADCAST
2303 { ":broadcast", SOL_SOCKET, SO_BROADCAST, SOPT_BOOL, OPIX_MISC },
2304 #endif
2305 #ifdef SO_DONTROUTE
2306 { ":dontroute", SOL_SOCKET, SO_DONTROUTE, SOPT_BOOL, OPIX_MISC },
2307 #endif
2308 #ifdef SO_KEEPALIVE
2309 { ":keepalive", SOL_SOCKET, SO_KEEPALIVE, SOPT_BOOL, OPIX_MISC },
2310 #endif
2311 #ifdef SO_LINGER
2312 { ":linger", SOL_SOCKET, SO_LINGER, SOPT_LINGER, OPIX_MISC },
2313 #endif
2314 #ifdef SO_OOBINLINE
2315 { ":oobinline", SOL_SOCKET, SO_OOBINLINE, SOPT_BOOL, OPIX_MISC },
2316 #endif
2317 #ifdef SO_PRIORITY
2318 { ":priority", SOL_SOCKET, SO_PRIORITY, SOPT_INT, OPIX_MISC },
2319 #endif
2320 #ifdef SO_REUSEADDR
2321 { ":reuseaddr", SOL_SOCKET, SO_REUSEADDR, SOPT_BOOL, OPIX_REUSEADDR },
2322 #endif
2323 { 0, 0, 0, SOPT_UNKNOWN, OPIX_NONE }
2324 };
2325
2326 /* Set option OPT to value VAL on socket S.
2327
2328 Returns (1<<socket_options[OPT].optbit) if option is known, 0 otherwise.
2329 Signals an error if setting a known option fails.
2330 */
2331
2332 static int
2333 set_socket_option (int s, Lisp_Object opt, Lisp_Object val)
2334 {
2335 char *name;
2336 const struct socket_options *sopt;
2337 int ret = 0;
2338
2339 CHECK_SYMBOL (opt);
2340
2341 name = SSDATA (SYMBOL_NAME (opt));
2342 for (sopt = socket_options; sopt->name; sopt++)
2343 if (strcmp (name, sopt->name) == 0)
2344 break;
2345
2346 switch (sopt->opttype)
2347 {
2348 case SOPT_BOOL:
2349 {
2350 int optval;
2351 optval = NILP (val) ? 0 : 1;
2352 ret = setsockopt (s, sopt->optlevel, sopt->optnum,
2353 &optval, sizeof (optval));
2354 break;
2355 }
2356
2357 case SOPT_INT:
2358 {
2359 int optval;
2360 if (TYPE_RANGED_INTEGERP (int, val))
2361 optval = XINT (val);
2362 else
2363 error ("Bad option value for %s", name);
2364 ret = setsockopt (s, sopt->optlevel, sopt->optnum,
2365 &optval, sizeof (optval));
2366 break;
2367 }
2368
2369 #ifdef SO_BINDTODEVICE
2370 case SOPT_IFNAME:
2371 {
2372 char devname[IFNAMSIZ+1];
2373
2374 /* This is broken, at least in the Linux 2.4 kernel.
2375 To unbind, the arg must be a zero integer, not the empty string.
2376 This should work on all systems. KFS. 2003-09-23. */
2377 memset (devname, 0, sizeof devname);
2378 if (STRINGP (val))
2379 {
2380 char *arg = SSDATA (val);
2381 int len = min (strlen (arg), IFNAMSIZ);
2382 memcpy (devname, arg, len);
2383 }
2384 else if (!NILP (val))
2385 error ("Bad option value for %s", name);
2386 ret = setsockopt (s, sopt->optlevel, sopt->optnum,
2387 devname, IFNAMSIZ);
2388 break;
2389 }
2390 #endif
2391
2392 #ifdef SO_LINGER
2393 case SOPT_LINGER:
2394 {
2395 struct linger linger;
2396
2397 linger.l_onoff = 1;
2398 linger.l_linger = 0;
2399 if (TYPE_RANGED_INTEGERP (int, val))
2400 linger.l_linger = XINT (val);
2401 else
2402 linger.l_onoff = NILP (val) ? 0 : 1;
2403 ret = setsockopt (s, sopt->optlevel, sopt->optnum,
2404 &linger, sizeof (linger));
2405 break;
2406 }
2407 #endif
2408
2409 default:
2410 return 0;
2411 }
2412
2413 if (ret < 0)
2414 report_file_error ("Cannot set network option",
2415 Fcons (opt, Fcons (val, Qnil)));
2416 return (1 << sopt->optbit);
2417 }
2418
2419
2420 DEFUN ("set-network-process-option",
2421 Fset_network_process_option, Sset_network_process_option,
2422 3, 4, 0,
2423 doc: /* For network process PROCESS set option OPTION to value VALUE.
2424 See `make-network-process' for a list of options and values.
2425 If optional fourth arg NO-ERROR is non-nil, don't signal an error if
2426 OPTION is not a supported option, return nil instead; otherwise return t. */)
2427 (Lisp_Object process, Lisp_Object option, Lisp_Object value, Lisp_Object no_error)
2428 {
2429 int s;
2430 struct Lisp_Process *p;
2431
2432 CHECK_PROCESS (process);
2433 p = XPROCESS (process);
2434 if (!NETCONN1_P (p))
2435 error ("Process is not a network process");
2436
2437 s = p->infd;
2438 if (s < 0)
2439 error ("Process is not running");
2440
2441 if (set_socket_option (s, option, value))
2442 {
2443 pset_childp (p, Fplist_put (p->childp, option, value));
2444 return Qt;
2445 }
2446
2447 if (NILP (no_error))
2448 error ("Unknown or unsupported option");
2449
2450 return Qnil;
2451 }
2452
2453 \f
2454 DEFUN ("serial-process-configure",
2455 Fserial_process_configure,
2456 Sserial_process_configure,
2457 0, MANY, 0,
2458 doc: /* Configure speed, bytesize, etc. of a serial process.
2459
2460 Arguments are specified as keyword/argument pairs. Attributes that
2461 are not given are re-initialized from the process's current
2462 configuration (available via the function `process-contact') or set to
2463 reasonable default values. The following arguments are defined:
2464
2465 :process PROCESS
2466 :name NAME
2467 :buffer BUFFER
2468 :port PORT
2469 -- Any of these arguments can be given to identify the process that is
2470 to be configured. If none of these arguments is given, the current
2471 buffer's process is used.
2472
2473 :speed SPEED -- SPEED is the speed of the serial port in bits per
2474 second, also called baud rate. Any value can be given for SPEED, but
2475 most serial ports work only at a few defined values between 1200 and
2476 115200, with 9600 being the most common value. If SPEED is nil, the
2477 serial port is not configured any further, i.e., all other arguments
2478 are ignored. This may be useful for special serial ports such as
2479 Bluetooth-to-serial converters which can only be configured through AT
2480 commands. A value of nil for SPEED can be used only when passed
2481 through `make-serial-process' or `serial-term'.
2482
2483 :bytesize BYTESIZE -- BYTESIZE is the number of bits per byte, which
2484 can be 7 or 8. If BYTESIZE is not given or nil, a value of 8 is used.
2485
2486 :parity PARITY -- PARITY can be nil (don't use parity), the symbol
2487 `odd' (use odd parity), or the symbol `even' (use even parity). If
2488 PARITY is not given, no parity is used.
2489
2490 :stopbits STOPBITS -- STOPBITS is the number of stopbits used to
2491 terminate a byte transmission. STOPBITS can be 1 or 2. If STOPBITS
2492 is not given or nil, 1 stopbit is used.
2493
2494 :flowcontrol FLOWCONTROL -- FLOWCONTROL determines the type of
2495 flowcontrol to be used, which is either nil (don't use flowcontrol),
2496 the symbol `hw' (use RTS/CTS hardware flowcontrol), or the symbol `sw'
2497 \(use XON/XOFF software flowcontrol). If FLOWCONTROL is not given, no
2498 flowcontrol is used.
2499
2500 `serial-process-configure' is called by `make-serial-process' for the
2501 initial configuration of the serial port.
2502
2503 Examples:
2504
2505 \(serial-process-configure :process "/dev/ttyS0" :speed 1200)
2506
2507 \(serial-process-configure
2508 :buffer "COM1" :stopbits 1 :parity 'odd :flowcontrol 'hw)
2509
2510 \(serial-process-configure :port "\\\\.\\COM13" :bytesize 7)
2511
2512 usage: (serial-process-configure &rest ARGS) */)
2513 (ptrdiff_t nargs, Lisp_Object *args)
2514 {
2515 struct Lisp_Process *p;
2516 Lisp_Object contact = Qnil;
2517 Lisp_Object proc = Qnil;
2518 struct gcpro gcpro1;
2519
2520 contact = Flist (nargs, args);
2521 GCPRO1 (contact);
2522
2523 proc = Fplist_get (contact, QCprocess);
2524 if (NILP (proc))
2525 proc = Fplist_get (contact, QCname);
2526 if (NILP (proc))
2527 proc = Fplist_get (contact, QCbuffer);
2528 if (NILP (proc))
2529 proc = Fplist_get (contact, QCport);
2530 proc = get_process (proc);
2531 p = XPROCESS (proc);
2532 if (!EQ (p->type, Qserial))
2533 error ("Not a serial process");
2534
2535 if (NILP (Fplist_get (p->childp, QCspeed)))
2536 {
2537 UNGCPRO;
2538 return Qnil;
2539 }
2540
2541 serial_configure (p, contact);
2542
2543 UNGCPRO;
2544 return Qnil;
2545 }
2546
2547 /* Used by make-serial-process to recover from errors. */
2548 static Lisp_Object
2549 make_serial_process_unwind (Lisp_Object proc)
2550 {
2551 if (!PROCESSP (proc))
2552 emacs_abort ();
2553 remove_process (proc);
2554 return Qnil;
2555 }
2556
2557 DEFUN ("make-serial-process", Fmake_serial_process, Smake_serial_process,
2558 0, MANY, 0,
2559 doc: /* Create and return a serial port process.
2560
2561 In Emacs, serial port connections are represented by process objects,
2562 so input and output work as for subprocesses, and `delete-process'
2563 closes a serial port connection. However, a serial process has no
2564 process id, it cannot be signaled, and the status codes are different
2565 from normal processes.
2566
2567 `make-serial-process' creates a process and a buffer, on which you
2568 probably want to use `process-send-string'. Try \\[serial-term] for
2569 an interactive terminal. See below for examples.
2570
2571 Arguments are specified as keyword/argument pairs. The following
2572 arguments are defined:
2573
2574 :port PORT -- (mandatory) PORT is the path or name of the serial port.
2575 For example, this could be "/dev/ttyS0" on Unix. On Windows, this
2576 could be "COM1", or "\\\\.\\COM10" for ports higher than COM9 (double
2577 the backslashes in strings).
2578
2579 :speed SPEED -- (mandatory) is handled by `serial-process-configure',
2580 which this function calls.
2581
2582 :name NAME -- NAME is the name of the process. If NAME is not given,
2583 the value of PORT is used.
2584
2585 :buffer BUFFER -- BUFFER is the buffer (or buffer-name) to associate
2586 with the process. Process output goes at the end of that buffer,
2587 unless you specify an output stream or filter function to handle the
2588 output. If BUFFER is not given, the value of NAME is used.
2589
2590 :coding CODING -- If CODING is a symbol, it specifies the coding
2591 system used for both reading and writing for this process. If CODING
2592 is a cons (DECODING . ENCODING), DECODING is used for reading, and
2593 ENCODING is used for writing.
2594
2595 :noquery BOOL -- When exiting Emacs, query the user if BOOL is nil and
2596 the process is running. If BOOL is not given, query before exiting.
2597
2598 :stop BOOL -- Start process in the `stopped' state if BOOL is non-nil.
2599 In the stopped state, a serial process does not accept incoming data,
2600 but you can send outgoing data. The stopped state is cleared by
2601 `continue-process' and set by `stop-process'.
2602
2603 :filter FILTER -- Install FILTER as the process filter.
2604
2605 :sentinel SENTINEL -- Install SENTINEL as the process sentinel.
2606
2607 :plist PLIST -- Install PLIST as the initial plist of the process.
2608
2609 :bytesize
2610 :parity
2611 :stopbits
2612 :flowcontrol
2613 -- This function calls `serial-process-configure' to handle these
2614 arguments.
2615
2616 The original argument list, possibly modified by later configuration,
2617 is available via the function `process-contact'.
2618
2619 Examples:
2620
2621 \(make-serial-process :port "/dev/ttyS0" :speed 9600)
2622
2623 \(make-serial-process :port "COM1" :speed 115200 :stopbits 2)
2624
2625 \(make-serial-process :port "\\\\.\\COM13" :speed 1200 :bytesize 7 :parity 'odd)
2626
2627 \(make-serial-process :port "/dev/tty.BlueConsole-SPP-1" :speed nil)
2628
2629 usage: (make-serial-process &rest ARGS) */)
2630 (ptrdiff_t nargs, Lisp_Object *args)
2631 {
2632 int fd = -1;
2633 Lisp_Object proc, contact, port;
2634 struct Lisp_Process *p;
2635 struct gcpro gcpro1;
2636 Lisp_Object name, buffer;
2637 Lisp_Object tem, val;
2638 ptrdiff_t specpdl_count = -1;
2639
2640 if (nargs == 0)
2641 return Qnil;
2642
2643 contact = Flist (nargs, args);
2644 GCPRO1 (contact);
2645
2646 port = Fplist_get (contact, QCport);
2647 if (NILP (port))
2648 error ("No port specified");
2649 CHECK_STRING (port);
2650
2651 if (NILP (Fplist_member (contact, QCspeed)))
2652 error (":speed not specified");
2653 if (!NILP (Fplist_get (contact, QCspeed)))
2654 CHECK_NUMBER (Fplist_get (contact, QCspeed));
2655
2656 name = Fplist_get (contact, QCname);
2657 if (NILP (name))
2658 name = port;
2659 CHECK_STRING (name);
2660 proc = make_process (name);
2661 specpdl_count = SPECPDL_INDEX ();
2662 record_unwind_protect (make_serial_process_unwind, proc);
2663 p = XPROCESS (proc);
2664
2665 fd = serial_open (SSDATA (port));
2666 p->infd = fd;
2667 p->outfd = fd;
2668 if (fd > max_process_desc)
2669 max_process_desc = fd;
2670 chan_process[fd] = proc;
2671
2672 buffer = Fplist_get (contact, QCbuffer);
2673 if (NILP (buffer))
2674 buffer = name;
2675 buffer = Fget_buffer_create (buffer);
2676 pset_buffer (p, buffer);
2677
2678 pset_childp (p, contact);
2679 pset_plist (p, Fcopy_sequence (Fplist_get (contact, QCplist)));
2680 pset_type (p, Qserial);
2681 pset_sentinel (p, Fplist_get (contact, QCsentinel));
2682 pset_filter (p, Fplist_get (contact, QCfilter));
2683 pset_log (p, Qnil);
2684 if (tem = Fplist_get (contact, QCnoquery), !NILP (tem))
2685 p->kill_without_query = 1;
2686 if (tem = Fplist_get (contact, QCstop), !NILP (tem))
2687 pset_command (p, Qt);
2688 p->pty_flag = 0;
2689
2690 if (!EQ (p->command, Qt))
2691 {
2692 FD_SET (fd, &input_wait_mask);
2693 FD_SET (fd, &non_keyboard_wait_mask);
2694 }
2695
2696 if (BUFFERP (buffer))
2697 {
2698 set_marker_both (p->mark, buffer,
2699 BUF_ZV (XBUFFER (buffer)),
2700 BUF_ZV_BYTE (XBUFFER (buffer)));
2701 }
2702
2703 tem = Fplist_member (contact, QCcoding);
2704 if (!NILP (tem) && (!CONSP (tem) || !CONSP (XCDR (tem))))
2705 tem = Qnil;
2706
2707 val = Qnil;
2708 if (!NILP (tem))
2709 {
2710 val = XCAR (XCDR (tem));
2711 if (CONSP (val))
2712 val = XCAR (val);
2713 }
2714 else if (!NILP (Vcoding_system_for_read))
2715 val = Vcoding_system_for_read;
2716 else if ((!NILP (buffer) && NILP (BVAR (XBUFFER (buffer), enable_multibyte_characters)))
2717 || (NILP (buffer) && NILP (BVAR (&buffer_defaults, enable_multibyte_characters))))
2718 val = Qnil;
2719 pset_decode_coding_system (p, val);
2720
2721 val = Qnil;
2722 if (!NILP (tem))
2723 {
2724 val = XCAR (XCDR (tem));
2725 if (CONSP (val))
2726 val = XCDR (val);
2727 }
2728 else if (!NILP (Vcoding_system_for_write))
2729 val = Vcoding_system_for_write;
2730 else if ((!NILP (buffer) && NILP (BVAR (XBUFFER (buffer), enable_multibyte_characters)))
2731 || (NILP (buffer) && NILP (BVAR (&buffer_defaults, enable_multibyte_characters))))
2732 val = Qnil;
2733 pset_encode_coding_system (p, val);
2734
2735 setup_process_coding_systems (proc);
2736 pset_decoding_buf (p, empty_unibyte_string);
2737 p->decoding_carryover = 0;
2738 pset_encoding_buf (p, empty_unibyte_string);
2739 p->inherit_coding_system_flag
2740 = !(!NILP (tem) || NILP (buffer) || !inherit_process_coding_system);
2741
2742 Fserial_process_configure (nargs, args);
2743
2744 specpdl_ptr = specpdl + specpdl_count;
2745
2746 UNGCPRO;
2747 return proc;
2748 }
2749
2750 /* Create a network stream/datagram client/server process. Treated
2751 exactly like a normal process when reading and writing. Primary
2752 differences are in status display and process deletion. A network
2753 connection has no PID; you cannot signal it. All you can do is
2754 stop/continue it and deactivate/close it via delete-process */
2755
2756 DEFUN ("make-network-process", Fmake_network_process, Smake_network_process,
2757 0, MANY, 0,
2758 doc: /* Create and return a network server or client process.
2759
2760 In Emacs, network connections are represented by process objects, so
2761 input and output work as for subprocesses and `delete-process' closes
2762 a network connection. However, a network process has no process id,
2763 it cannot be signaled, and the status codes are different from normal
2764 processes.
2765
2766 Arguments are specified as keyword/argument pairs. The following
2767 arguments are defined:
2768
2769 :name NAME -- NAME is name for process. It is modified if necessary
2770 to make it unique.
2771
2772 :buffer BUFFER -- BUFFER is the buffer (or buffer-name) to associate
2773 with the process. Process output goes at end of that buffer, unless
2774 you specify an output stream or filter function to handle the output.
2775 BUFFER may be also nil, meaning that this process is not associated
2776 with any buffer.
2777
2778 :host HOST -- HOST is name of the host to connect to, or its IP
2779 address. The symbol `local' specifies the local host. If specified
2780 for a server process, it must be a valid name or address for the local
2781 host, and only clients connecting to that address will be accepted.
2782
2783 :service SERVICE -- SERVICE is name of the service desired, or an
2784 integer specifying a port number to connect to. If SERVICE is t,
2785 a random port number is selected for the server. (If Emacs was
2786 compiled with getaddrinfo, a port number can also be specified as a
2787 string, e.g. "80", as well as an integer. This is not portable.)
2788
2789 :type TYPE -- TYPE is the type of connection. The default (nil) is a
2790 stream type connection, `datagram' creates a datagram type connection,
2791 `seqpacket' creates a reliable datagram connection.
2792
2793 :family FAMILY -- FAMILY is the address (and protocol) family for the
2794 service specified by HOST and SERVICE. The default (nil) is to use
2795 whatever address family (IPv4 or IPv6) that is defined for the host
2796 and port number specified by HOST and SERVICE. Other address families
2797 supported are:
2798 local -- for a local (i.e. UNIX) address specified by SERVICE.
2799 ipv4 -- use IPv4 address family only.
2800 ipv6 -- use IPv6 address family only.
2801
2802 :local ADDRESS -- ADDRESS is the local address used for the connection.
2803 This parameter is ignored when opening a client process. When specified
2804 for a server process, the FAMILY, HOST and SERVICE args are ignored.
2805
2806 :remote ADDRESS -- ADDRESS is the remote partner's address for the
2807 connection. This parameter is ignored when opening a stream server
2808 process. For a datagram server process, it specifies the initial
2809 setting of the remote datagram address. When specified for a client
2810 process, the FAMILY, HOST, and SERVICE args are ignored.
2811
2812 The format of ADDRESS depends on the address family:
2813 - An IPv4 address is represented as an vector of integers [A B C D P]
2814 corresponding to numeric IP address A.B.C.D and port number P.
2815 - A local address is represented as a string with the address in the
2816 local address space.
2817 - An "unsupported family" address is represented by a cons (F . AV)
2818 where F is the family number and AV is a vector containing the socket
2819 address data with one element per address data byte. Do not rely on
2820 this format in portable code, as it may depend on implementation
2821 defined constants, data sizes, and data structure alignment.
2822
2823 :coding CODING -- If CODING is a symbol, it specifies the coding
2824 system used for both reading and writing for this process. If CODING
2825 is a cons (DECODING . ENCODING), DECODING is used for reading, and
2826 ENCODING is used for writing.
2827
2828 :nowait BOOL -- If BOOL is non-nil for a stream type client process,
2829 return without waiting for the connection to complete; instead, the
2830 sentinel function will be called with second arg matching "open" (if
2831 successful) or "failed" when the connect completes. Default is to use
2832 a blocking connect (i.e. wait) for stream type connections.
2833
2834 :noquery BOOL -- Query the user unless BOOL is non-nil, and process is
2835 running when Emacs is exited.
2836
2837 :stop BOOL -- Start process in the `stopped' state if BOOL non-nil.
2838 In the stopped state, a server process does not accept new
2839 connections, and a client process does not handle incoming traffic.
2840 The stopped state is cleared by `continue-process' and set by
2841 `stop-process'.
2842
2843 :filter FILTER -- Install FILTER as the process filter.
2844
2845 :filter-multibyte BOOL -- If BOOL is non-nil, strings given to the
2846 process filter are multibyte, otherwise they are unibyte.
2847 If this keyword is not specified, the strings are multibyte if
2848 the default value of `enable-multibyte-characters' is non-nil.
2849
2850 :sentinel SENTINEL -- Install SENTINEL as the process sentinel.
2851
2852 :log LOG -- Install LOG as the server process log function. This
2853 function is called when the server accepts a network connection from a
2854 client. The arguments are SERVER, CLIENT, and MESSAGE, where SERVER
2855 is the server process, CLIENT is the new process for the connection,
2856 and MESSAGE is a string.
2857
2858 :plist PLIST -- Install PLIST as the new process' initial plist.
2859
2860 :server QLEN -- if QLEN is non-nil, create a server process for the
2861 specified FAMILY, SERVICE, and connection type (stream or datagram).
2862 If QLEN is an integer, it is used as the max. length of the server's
2863 pending connection queue (also known as the backlog); the default
2864 queue length is 5. Default is to create a client process.
2865
2866 The following network options can be specified for this connection:
2867
2868 :broadcast BOOL -- Allow send and receive of datagram broadcasts.
2869 :dontroute BOOL -- Only send to directly connected hosts.
2870 :keepalive BOOL -- Send keep-alive messages on network stream.
2871 :linger BOOL or TIMEOUT -- Send queued messages before closing.
2872 :oobinline BOOL -- Place out-of-band data in receive data stream.
2873 :priority INT -- Set protocol defined priority for sent packets.
2874 :reuseaddr BOOL -- Allow reusing a recently used local address
2875 (this is allowed by default for a server process).
2876 :bindtodevice NAME -- bind to interface NAME. Using this may require
2877 special privileges on some systems.
2878
2879 Consult the relevant system programmer's manual pages for more
2880 information on using these options.
2881
2882
2883 A server process will listen for and accept connections from clients.
2884 When a client connection is accepted, a new network process is created
2885 for the connection with the following parameters:
2886
2887 - The client's process name is constructed by concatenating the server
2888 process' NAME and a client identification string.
2889 - If the FILTER argument is non-nil, the client process will not get a
2890 separate process buffer; otherwise, the client's process buffer is a newly
2891 created buffer named after the server process' BUFFER name or process
2892 NAME concatenated with the client identification string.
2893 - The connection type and the process filter and sentinel parameters are
2894 inherited from the server process' TYPE, FILTER and SENTINEL.
2895 - The client process' contact info is set according to the client's
2896 addressing information (typically an IP address and a port number).
2897 - The client process' plist is initialized from the server's plist.
2898
2899 Notice that the FILTER and SENTINEL args are never used directly by
2900 the server process. Also, the BUFFER argument is not used directly by
2901 the server process, but via the optional :log function, accepted (and
2902 failed) connections may be logged in the server process' buffer.
2903
2904 The original argument list, modified with the actual connection
2905 information, is available via the `process-contact' function.
2906
2907 usage: (make-network-process &rest ARGS) */)
2908 (ptrdiff_t nargs, Lisp_Object *args)
2909 {
2910 Lisp_Object proc;
2911 Lisp_Object contact;
2912 struct Lisp_Process *p;
2913 #ifdef HAVE_GETADDRINFO
2914 struct addrinfo ai, *res, *lres;
2915 struct addrinfo hints;
2916 const char *portstring;
2917 char portbuf[128];
2918 #else /* HAVE_GETADDRINFO */
2919 struct _emacs_addrinfo
2920 {
2921 int ai_family;
2922 int ai_socktype;
2923 int ai_protocol;
2924 int ai_addrlen;
2925 struct sockaddr *ai_addr;
2926 struct _emacs_addrinfo *ai_next;
2927 } ai, *res, *lres;
2928 #endif /* HAVE_GETADDRINFO */
2929 struct sockaddr_in address_in;
2930 #ifdef HAVE_LOCAL_SOCKETS
2931 struct sockaddr_un address_un;
2932 #endif
2933 int port;
2934 int ret = 0;
2935 int xerrno = 0;
2936 int s = -1, outch, inch;
2937 struct gcpro gcpro1;
2938 ptrdiff_t count = SPECPDL_INDEX ();
2939 ptrdiff_t count1;
2940 Lisp_Object QCaddress; /* one of QClocal or QCremote */
2941 Lisp_Object tem;
2942 Lisp_Object name, buffer, host, service, address;
2943 Lisp_Object filter, sentinel;
2944 int is_non_blocking_client = 0;
2945 int is_server = 0, backlog = 5;
2946 int socktype;
2947 int family = -1;
2948
2949 if (nargs == 0)
2950 return Qnil;
2951
2952 /* Save arguments for process-contact and clone-process. */
2953 contact = Flist (nargs, args);
2954 GCPRO1 (contact);
2955
2956 #ifdef WINDOWSNT
2957 /* Ensure socket support is loaded if available. */
2958 init_winsock (TRUE);
2959 #endif
2960
2961 /* :type TYPE (nil: stream, datagram */
2962 tem = Fplist_get (contact, QCtype);
2963 if (NILP (tem))
2964 socktype = SOCK_STREAM;
2965 #ifdef DATAGRAM_SOCKETS
2966 else if (EQ (tem, Qdatagram))
2967 socktype = SOCK_DGRAM;
2968 #endif
2969 #ifdef HAVE_SEQPACKET
2970 else if (EQ (tem, Qseqpacket))
2971 socktype = SOCK_SEQPACKET;
2972 #endif
2973 else
2974 error ("Unsupported connection type");
2975
2976 /* :server BOOL */
2977 tem = Fplist_get (contact, QCserver);
2978 if (!NILP (tem))
2979 {
2980 /* Don't support network sockets when non-blocking mode is
2981 not available, since a blocked Emacs is not useful. */
2982 #if !defined (O_NONBLOCK) && !defined (O_NDELAY)
2983 error ("Network servers not supported");
2984 #else
2985 is_server = 1;
2986 if (TYPE_RANGED_INTEGERP (int, tem))
2987 backlog = XINT (tem);
2988 #endif
2989 }
2990
2991 /* Make QCaddress an alias for :local (server) or :remote (client). */
2992 QCaddress = is_server ? QClocal : QCremote;
2993
2994 /* :nowait BOOL */
2995 if (!is_server && socktype != SOCK_DGRAM
2996 && (tem = Fplist_get (contact, QCnowait), !NILP (tem)))
2997 {
2998 #ifndef NON_BLOCKING_CONNECT
2999 error ("Non-blocking connect not supported");
3000 #else
3001 is_non_blocking_client = 1;
3002 #endif
3003 }
3004
3005 name = Fplist_get (contact, QCname);
3006 buffer = Fplist_get (contact, QCbuffer);
3007 filter = Fplist_get (contact, QCfilter);
3008 sentinel = Fplist_get (contact, QCsentinel);
3009
3010 CHECK_STRING (name);
3011
3012 /* Initialize addrinfo structure in case we don't use getaddrinfo. */
3013 ai.ai_socktype = socktype;
3014 ai.ai_protocol = 0;
3015 ai.ai_next = NULL;
3016 res = &ai;
3017
3018 /* :local ADDRESS or :remote ADDRESS */
3019 address = Fplist_get (contact, QCaddress);
3020 if (!NILP (address))
3021 {
3022 host = service = Qnil;
3023
3024 if (!(ai.ai_addrlen = get_lisp_to_sockaddr_size (address, &family)))
3025 error ("Malformed :address");
3026 ai.ai_family = family;
3027 ai.ai_addr = alloca (ai.ai_addrlen);
3028 conv_lisp_to_sockaddr (family, address, ai.ai_addr, ai.ai_addrlen);
3029 goto open_socket;
3030 }
3031
3032 /* :family FAMILY -- nil (for Inet), local, or integer. */
3033 tem = Fplist_get (contact, QCfamily);
3034 if (NILP (tem))
3035 {
3036 #if defined (HAVE_GETADDRINFO) && defined (AF_INET6)
3037 family = AF_UNSPEC;
3038 #else
3039 family = AF_INET;
3040 #endif
3041 }
3042 #ifdef HAVE_LOCAL_SOCKETS
3043 else if (EQ (tem, Qlocal))
3044 family = AF_LOCAL;
3045 #endif
3046 #ifdef AF_INET6
3047 else if (EQ (tem, Qipv6))
3048 family = AF_INET6;
3049 #endif
3050 else if (EQ (tem, Qipv4))
3051 family = AF_INET;
3052 else if (TYPE_RANGED_INTEGERP (int, tem))
3053 family = XINT (tem);
3054 else
3055 error ("Unknown address family");
3056
3057 ai.ai_family = family;
3058
3059 /* :service SERVICE -- string, integer (port number), or t (random port). */
3060 service = Fplist_get (contact, QCservice);
3061
3062 /* :host HOST -- hostname, ip address, or 'local for localhost. */
3063 host = Fplist_get (contact, QChost);
3064 if (!NILP (host))
3065 {
3066 if (EQ (host, Qlocal))
3067 /* Depending on setup, "localhost" may map to different IPv4 and/or
3068 IPv6 addresses, so it's better to be explicit. (Bug#6781) */
3069 host = build_string ("127.0.0.1");
3070 CHECK_STRING (host);
3071 }
3072
3073 #ifdef HAVE_LOCAL_SOCKETS
3074 if (family == AF_LOCAL)
3075 {
3076 if (!NILP (host))
3077 {
3078 message (":family local ignores the :host \"%s\" property",
3079 SDATA (host));
3080 contact = Fplist_put (contact, QChost, Qnil);
3081 host = Qnil;
3082 }
3083 CHECK_STRING (service);
3084 memset (&address_un, 0, sizeof address_un);
3085 address_un.sun_family = AF_LOCAL;
3086 if (sizeof address_un.sun_path <= SBYTES (service))
3087 error ("Service name too long");
3088 strcpy (address_un.sun_path, SSDATA (service));
3089 ai.ai_addr = (struct sockaddr *) &address_un;
3090 ai.ai_addrlen = sizeof address_un;
3091 goto open_socket;
3092 }
3093 #endif
3094
3095 /* Slow down polling to every ten seconds.
3096 Some kernels have a bug which causes retrying connect to fail
3097 after a connect. Polling can interfere with gethostbyname too. */
3098 #ifdef POLL_FOR_INPUT
3099 if (socktype != SOCK_DGRAM)
3100 {
3101 record_unwind_protect (unwind_stop_other_atimers, Qnil);
3102 bind_polling_period (10);
3103 }
3104 #endif
3105
3106 #ifdef HAVE_GETADDRINFO
3107 /* If we have a host, use getaddrinfo to resolve both host and service.
3108 Otherwise, use getservbyname to lookup the service. */
3109 if (!NILP (host))
3110 {
3111
3112 /* SERVICE can either be a string or int.
3113 Convert to a C string for later use by getaddrinfo. */
3114 if (EQ (service, Qt))
3115 portstring = "0";
3116 else if (INTEGERP (service))
3117 {
3118 sprintf (portbuf, "%"pI"d", XINT (service));
3119 portstring = portbuf;
3120 }
3121 else
3122 {
3123 CHECK_STRING (service);
3124 portstring = SSDATA (service);
3125 }
3126
3127 immediate_quit = 1;
3128 QUIT;
3129 memset (&hints, 0, sizeof (hints));
3130 hints.ai_flags = 0;
3131 hints.ai_family = family;
3132 hints.ai_socktype = socktype;
3133 hints.ai_protocol = 0;
3134
3135 #ifdef HAVE_RES_INIT
3136 res_init ();
3137 #endif
3138
3139 ret = getaddrinfo (SSDATA (host), portstring, &hints, &res);
3140 if (ret)
3141 #ifdef HAVE_GAI_STRERROR
3142 error ("%s/%s %s", SSDATA (host), portstring, gai_strerror (ret));
3143 #else
3144 error ("%s/%s getaddrinfo error %d", SSDATA (host), portstring, ret);
3145 #endif
3146 immediate_quit = 0;
3147
3148 goto open_socket;
3149 }
3150 #endif /* HAVE_GETADDRINFO */
3151
3152 /* We end up here if getaddrinfo is not defined, or in case no hostname
3153 has been specified (e.g. for a local server process). */
3154
3155 if (EQ (service, Qt))
3156 port = 0;
3157 else if (INTEGERP (service))
3158 port = htons ((unsigned short) XINT (service));
3159 else
3160 {
3161 struct servent *svc_info;
3162 CHECK_STRING (service);
3163 svc_info = getservbyname (SSDATA (service),
3164 (socktype == SOCK_DGRAM ? "udp" : "tcp"));
3165 if (svc_info == 0)
3166 error ("Unknown service: %s", SDATA (service));
3167 port = svc_info->s_port;
3168 }
3169
3170 memset (&address_in, 0, sizeof address_in);
3171 address_in.sin_family = family;
3172 address_in.sin_addr.s_addr = INADDR_ANY;
3173 address_in.sin_port = port;
3174
3175 #ifndef HAVE_GETADDRINFO
3176 if (!NILP (host))
3177 {
3178 struct hostent *host_info_ptr;
3179
3180 /* gethostbyname may fail with TRY_AGAIN, but we don't honor that,
3181 as it may `hang' Emacs for a very long time. */
3182 immediate_quit = 1;
3183 QUIT;
3184
3185 #ifdef HAVE_RES_INIT
3186 res_init ();
3187 #endif
3188
3189 host_info_ptr = gethostbyname (SDATA (host));
3190 immediate_quit = 0;
3191
3192 if (host_info_ptr)
3193 {
3194 memcpy (&address_in.sin_addr, host_info_ptr->h_addr,
3195 host_info_ptr->h_length);
3196 family = host_info_ptr->h_addrtype;
3197 address_in.sin_family = family;
3198 }
3199 else
3200 /* Attempt to interpret host as numeric inet address */
3201 {
3202 unsigned long numeric_addr;
3203 numeric_addr = inet_addr (SSDATA (host));
3204 if (numeric_addr == -1)
3205 error ("Unknown host \"%s\"", SDATA (host));
3206
3207 memcpy (&address_in.sin_addr, &numeric_addr,
3208 sizeof (address_in.sin_addr));
3209 }
3210
3211 }
3212 #endif /* not HAVE_GETADDRINFO */
3213
3214 ai.ai_family = family;
3215 ai.ai_addr = (struct sockaddr *) &address_in;
3216 ai.ai_addrlen = sizeof address_in;
3217
3218 open_socket:
3219
3220 /* Do this in case we never enter the for-loop below. */
3221 count1 = SPECPDL_INDEX ();
3222 s = -1;
3223
3224 for (lres = res; lres; lres = lres->ai_next)
3225 {
3226 ptrdiff_t optn;
3227 int optbits;
3228
3229 #ifdef WINDOWSNT
3230 retry_connect:
3231 #endif
3232
3233 s = socket (lres->ai_family, lres->ai_socktype, lres->ai_protocol);
3234 if (s < 0)
3235 {
3236 xerrno = errno;
3237 continue;
3238 }
3239
3240 #ifdef DATAGRAM_SOCKETS
3241 if (!is_server && socktype == SOCK_DGRAM)
3242 break;
3243 #endif /* DATAGRAM_SOCKETS */
3244
3245 #ifdef NON_BLOCKING_CONNECT
3246 if (is_non_blocking_client)
3247 {
3248 #ifdef O_NONBLOCK
3249 ret = fcntl (s, F_SETFL, O_NONBLOCK);
3250 #else
3251 ret = fcntl (s, F_SETFL, O_NDELAY);
3252 #endif
3253 if (ret < 0)
3254 {
3255 xerrno = errno;
3256 emacs_close (s);
3257 s = -1;
3258 continue;
3259 }
3260 }
3261 #endif
3262
3263 /* Make us close S if quit. */
3264 record_unwind_protect (close_file_unwind, make_number (s));
3265
3266 /* Parse network options in the arg list.
3267 We simply ignore anything which isn't a known option (including other keywords).
3268 An error is signaled if setting a known option fails. */
3269 for (optn = optbits = 0; optn < nargs-1; optn += 2)
3270 optbits |= set_socket_option (s, args[optn], args[optn+1]);
3271
3272 if (is_server)
3273 {
3274 /* Configure as a server socket. */
3275
3276 /* SO_REUSEADDR = 1 is default for server sockets; must specify
3277 explicit :reuseaddr key to override this. */
3278 #ifdef HAVE_LOCAL_SOCKETS
3279 if (family != AF_LOCAL)
3280 #endif
3281 if (!(optbits & (1 << OPIX_REUSEADDR)))
3282 {
3283 int optval = 1;
3284 if (setsockopt (s, SOL_SOCKET, SO_REUSEADDR, &optval, sizeof optval))
3285 report_file_error ("Cannot set reuse option on server socket", Qnil);
3286 }
3287
3288 if (bind (s, lres->ai_addr, lres->ai_addrlen))
3289 report_file_error ("Cannot bind server socket", Qnil);
3290
3291 #ifdef HAVE_GETSOCKNAME
3292 if (EQ (service, Qt))
3293 {
3294 struct sockaddr_in sa1;
3295 socklen_t len1 = sizeof (sa1);
3296 if (getsockname (s, (struct sockaddr *)&sa1, &len1) == 0)
3297 {
3298 ((struct sockaddr_in *)(lres->ai_addr))->sin_port = sa1.sin_port;
3299 service = make_number (ntohs (sa1.sin_port));
3300 contact = Fplist_put (contact, QCservice, service);
3301 }
3302 }
3303 #endif
3304
3305 if (socktype != SOCK_DGRAM && listen (s, backlog))
3306 report_file_error ("Cannot listen on server socket", Qnil);
3307
3308 break;
3309 }
3310
3311 immediate_quit = 1;
3312 QUIT;
3313
3314 ret = connect (s, lres->ai_addr, lres->ai_addrlen);
3315 xerrno = errno;
3316
3317 if (ret == 0 || xerrno == EISCONN)
3318 {
3319 /* The unwind-protect will be discarded afterwards.
3320 Likewise for immediate_quit. */
3321 break;
3322 }
3323
3324 #ifdef NON_BLOCKING_CONNECT
3325 #ifdef EINPROGRESS
3326 if (is_non_blocking_client && xerrno == EINPROGRESS)
3327 break;
3328 #else
3329 #ifdef EWOULDBLOCK
3330 if (is_non_blocking_client && xerrno == EWOULDBLOCK)
3331 break;
3332 #endif
3333 #endif
3334 #endif
3335
3336 #ifndef WINDOWSNT
3337 if (xerrno == EINTR)
3338 {
3339 /* Unlike most other syscalls connect() cannot be called
3340 again. (That would return EALREADY.) The proper way to
3341 wait for completion is pselect(). */
3342 int sc;
3343 socklen_t len;
3344 SELECT_TYPE fdset;
3345 retry_select:
3346 FD_ZERO (&fdset);
3347 FD_SET (s, &fdset);
3348 QUIT;
3349 sc = pselect (s + 1, NULL, &fdset, NULL, NULL, NULL);
3350 if (sc == -1)
3351 {
3352 if (errno == EINTR)
3353 goto retry_select;
3354 else
3355 report_file_error ("select failed", Qnil);
3356 }
3357 eassert (sc > 0);
3358
3359 len = sizeof xerrno;
3360 eassert (FD_ISSET (s, &fdset));
3361 if (getsockopt (s, SOL_SOCKET, SO_ERROR, &xerrno, &len) == -1)
3362 report_file_error ("getsockopt failed", Qnil);
3363 if (xerrno)
3364 errno = xerrno, report_file_error ("error during connect", Qnil);
3365 else
3366 break;
3367 }
3368 #endif /* !WINDOWSNT */
3369
3370 immediate_quit = 0;
3371
3372 /* Discard the unwind protect closing S. */
3373 specpdl_ptr = specpdl + count1;
3374 emacs_close (s);
3375 s = -1;
3376
3377 #ifdef WINDOWSNT
3378 if (xerrno == EINTR)
3379 goto retry_connect;
3380 #endif
3381 }
3382
3383 if (s >= 0)
3384 {
3385 #ifdef DATAGRAM_SOCKETS
3386 if (socktype == SOCK_DGRAM)
3387 {
3388 if (datagram_address[s].sa)
3389 emacs_abort ();
3390 datagram_address[s].sa = xmalloc (lres->ai_addrlen);
3391 datagram_address[s].len = lres->ai_addrlen;
3392 if (is_server)
3393 {
3394 Lisp_Object remote;
3395 memset (datagram_address[s].sa, 0, lres->ai_addrlen);
3396 if (remote = Fplist_get (contact, QCremote), !NILP (remote))
3397 {
3398 int rfamily, rlen;
3399 rlen = get_lisp_to_sockaddr_size (remote, &rfamily);
3400 if (rfamily == lres->ai_family && rlen == lres->ai_addrlen)
3401 conv_lisp_to_sockaddr (rfamily, remote,
3402 datagram_address[s].sa, rlen);
3403 }
3404 }
3405 else
3406 memcpy (datagram_address[s].sa, lres->ai_addr, lres->ai_addrlen);
3407 }
3408 #endif
3409 contact = Fplist_put (contact, QCaddress,
3410 conv_sockaddr_to_lisp (lres->ai_addr, lres->ai_addrlen));
3411 #ifdef HAVE_GETSOCKNAME
3412 if (!is_server)
3413 {
3414 struct sockaddr_in sa1;
3415 socklen_t len1 = sizeof (sa1);
3416 if (getsockname (s, (struct sockaddr *)&sa1, &len1) == 0)
3417 contact = Fplist_put (contact, QClocal,
3418 conv_sockaddr_to_lisp ((struct sockaddr *)&sa1, len1));
3419 }
3420 #endif
3421 }
3422
3423 immediate_quit = 0;
3424
3425 #ifdef HAVE_GETADDRINFO
3426 if (res != &ai)
3427 {
3428 BLOCK_INPUT;
3429 freeaddrinfo (res);
3430 UNBLOCK_INPUT;
3431 }
3432 #endif
3433
3434 /* Discard the unwind protect for closing S, if any. */
3435 specpdl_ptr = specpdl + count1;
3436
3437 /* Unwind bind_polling_period and request_sigio. */
3438 unbind_to (count, Qnil);
3439
3440 if (s < 0)
3441 {
3442 /* If non-blocking got this far - and failed - assume non-blocking is
3443 not supported after all. This is probably a wrong assumption, but
3444 the normal blocking calls to open-network-stream handles this error
3445 better. */
3446 if (is_non_blocking_client)
3447 return Qnil;
3448
3449 errno = xerrno;
3450 if (is_server)
3451 report_file_error ("make server process failed", contact);
3452 else
3453 report_file_error ("make client process failed", contact);
3454 }
3455
3456 inch = s;
3457 outch = s;
3458
3459 if (!NILP (buffer))
3460 buffer = Fget_buffer_create (buffer);
3461 proc = make_process (name);
3462
3463 chan_process[inch] = proc;
3464
3465 #ifdef O_NONBLOCK
3466 fcntl (inch, F_SETFL, O_NONBLOCK);
3467 #else
3468 #ifdef O_NDELAY
3469 fcntl (inch, F_SETFL, O_NDELAY);
3470 #endif
3471 #endif
3472
3473 p = XPROCESS (proc);
3474
3475 pset_childp (p, contact);
3476 pset_plist (p, Fcopy_sequence (Fplist_get (contact, QCplist)));
3477 pset_type (p, Qnetwork);
3478
3479 pset_buffer (p, buffer);
3480 pset_sentinel (p, sentinel);
3481 pset_filter (p, filter);
3482 pset_log (p, Fplist_get (contact, QClog));
3483 if (tem = Fplist_get (contact, QCnoquery), !NILP (tem))
3484 p->kill_without_query = 1;
3485 if ((tem = Fplist_get (contact, QCstop), !NILP (tem)))
3486 pset_command (p, Qt);
3487 p->pid = 0;
3488 p->infd = inch;
3489 p->outfd = outch;
3490 if (is_server && socktype != SOCK_DGRAM)
3491 pset_status (p, Qlisten);
3492
3493 /* Make the process marker point into the process buffer (if any). */
3494 if (BUFFERP (buffer))
3495 set_marker_both (p->mark, buffer,
3496 BUF_ZV (XBUFFER (buffer)),
3497 BUF_ZV_BYTE (XBUFFER (buffer)));
3498
3499 #ifdef NON_BLOCKING_CONNECT
3500 if (is_non_blocking_client)
3501 {
3502 /* We may get here if connect did succeed immediately. However,
3503 in that case, we still need to signal this like a non-blocking
3504 connection. */
3505 pset_status (p, Qconnect);
3506 if (!FD_ISSET (inch, &connect_wait_mask))
3507 {
3508 FD_SET (inch, &connect_wait_mask);
3509 FD_SET (inch, &write_mask);
3510 num_pending_connects++;
3511 }
3512 }
3513 else
3514 #endif
3515 /* A server may have a client filter setting of Qt, but it must
3516 still listen for incoming connects unless it is stopped. */
3517 if ((!EQ (p->filter, Qt) && !EQ (p->command, Qt))
3518 || (EQ (p->status, Qlisten) && NILP (p->command)))
3519 {
3520 FD_SET (inch, &input_wait_mask);
3521 FD_SET (inch, &non_keyboard_wait_mask);
3522 }
3523
3524 if (inch > max_process_desc)
3525 max_process_desc = inch;
3526
3527 tem = Fplist_member (contact, QCcoding);
3528 if (!NILP (tem) && (!CONSP (tem) || !CONSP (XCDR (tem))))
3529 tem = Qnil; /* No error message (too late!). */
3530
3531 {
3532 /* Setup coding systems for communicating with the network stream. */
3533 struct gcpro gcpro1;
3534 /* Qt denotes we have not yet called Ffind_operation_coding_system. */
3535 Lisp_Object coding_systems = Qt;
3536 Lisp_Object fargs[5], val;
3537
3538 if (!NILP (tem))
3539 {
3540 val = XCAR (XCDR (tem));
3541 if (CONSP (val))
3542 val = XCAR (val);
3543 }
3544 else if (!NILP (Vcoding_system_for_read))
3545 val = Vcoding_system_for_read;
3546 else if ((!NILP (buffer) && NILP (BVAR (XBUFFER (buffer), enable_multibyte_characters)))
3547 || (NILP (buffer) && NILP (BVAR (&buffer_defaults, enable_multibyte_characters))))
3548 /* We dare not decode end-of-line format by setting VAL to
3549 Qraw_text, because the existing Emacs Lisp libraries
3550 assume that they receive bare code including a sequence of
3551 CR LF. */
3552 val = Qnil;
3553 else
3554 {
3555 if (NILP (host) || NILP (service))
3556 coding_systems = Qnil;
3557 else
3558 {
3559 fargs[0] = Qopen_network_stream, fargs[1] = name,
3560 fargs[2] = buffer, fargs[3] = host, fargs[4] = service;
3561 GCPRO1 (proc);
3562 coding_systems = Ffind_operation_coding_system (5, fargs);
3563 UNGCPRO;
3564 }
3565 if (CONSP (coding_systems))
3566 val = XCAR (coding_systems);
3567 else if (CONSP (Vdefault_process_coding_system))
3568 val = XCAR (Vdefault_process_coding_system);
3569 else
3570 val = Qnil;
3571 }
3572 pset_decode_coding_system (p, val);
3573
3574 if (!NILP (tem))
3575 {
3576 val = XCAR (XCDR (tem));
3577 if (CONSP (val))
3578 val = XCDR (val);
3579 }
3580 else if (!NILP (Vcoding_system_for_write))
3581 val = Vcoding_system_for_write;
3582 else if (NILP (BVAR (current_buffer, enable_multibyte_characters)))
3583 val = Qnil;
3584 else
3585 {
3586 if (EQ (coding_systems, Qt))
3587 {
3588 if (NILP (host) || NILP (service))
3589 coding_systems = Qnil;
3590 else
3591 {
3592 fargs[0] = Qopen_network_stream, fargs[1] = name,
3593 fargs[2] = buffer, fargs[3] = host, fargs[4] = service;
3594 GCPRO1 (proc);
3595 coding_systems = Ffind_operation_coding_system (5, fargs);
3596 UNGCPRO;
3597 }
3598 }
3599 if (CONSP (coding_systems))
3600 val = XCDR (coding_systems);
3601 else if (CONSP (Vdefault_process_coding_system))
3602 val = XCDR (Vdefault_process_coding_system);
3603 else
3604 val = Qnil;
3605 }
3606 pset_encode_coding_system (p, val);
3607 }
3608 setup_process_coding_systems (proc);
3609
3610 pset_decoding_buf (p, empty_unibyte_string);
3611 p->decoding_carryover = 0;
3612 pset_encoding_buf (p, empty_unibyte_string);
3613
3614 p->inherit_coding_system_flag
3615 = !(!NILP (tem) || NILP (buffer) || !inherit_process_coding_system);
3616
3617 UNGCPRO;
3618 return proc;
3619 }
3620
3621 \f
3622 #if defined (HAVE_NET_IF_H)
3623
3624 #ifdef SIOCGIFCONF
3625 DEFUN ("network-interface-list", Fnetwork_interface_list, Snetwork_interface_list, 0, 0, 0,
3626 doc: /* Return an alist of all network interfaces and their network address.
3627 Each element is a cons, the car of which is a string containing the
3628 interface name, and the cdr is the network address in internal
3629 format; see the description of ADDRESS in `make-network-process'. */)
3630 (void)
3631 {
3632 struct ifconf ifconf;
3633 struct ifreq *ifreq;
3634 void *buf = NULL;
3635 ptrdiff_t buf_size = 512;
3636 int s, i;
3637 Lisp_Object res;
3638
3639 s = socket (AF_INET, SOCK_STREAM, 0);
3640 if (s < 0)
3641 return Qnil;
3642
3643 do
3644 {
3645 buf = xpalloc (buf, &buf_size, 1, INT_MAX, 1);
3646 ifconf.ifc_buf = buf;
3647 ifconf.ifc_len = buf_size;
3648 if (ioctl (s, SIOCGIFCONF, &ifconf))
3649 {
3650 close (s);
3651 xfree (buf);
3652 return Qnil;
3653 }
3654 }
3655 while (ifconf.ifc_len == buf_size);
3656
3657 close (s);
3658
3659 res = Qnil;
3660 ifreq = ifconf.ifc_req;
3661 while ((char *) ifreq < (char *) ifconf.ifc_req + ifconf.ifc_len)
3662 {
3663 struct ifreq *ifq = ifreq;
3664 #ifdef HAVE_STRUCT_IFREQ_IFR_ADDR_SA_LEN
3665 #define SIZEOF_IFREQ(sif) \
3666 ((sif)->ifr_addr.sa_len < sizeof (struct sockaddr) \
3667 ? sizeof (*(sif)) : sizeof ((sif)->ifr_name) + (sif)->ifr_addr.sa_len)
3668
3669 int len = SIZEOF_IFREQ (ifq);
3670 #else
3671 int len = sizeof (*ifreq);
3672 #endif
3673 char namebuf[sizeof (ifq->ifr_name) + 1];
3674 i += len;
3675 ifreq = (struct ifreq *) ((char *) ifreq + len);
3676
3677 if (ifq->ifr_addr.sa_family != AF_INET)
3678 continue;
3679
3680 memcpy (namebuf, ifq->ifr_name, sizeof (ifq->ifr_name));
3681 namebuf[sizeof (ifq->ifr_name)] = 0;
3682 res = Fcons (Fcons (build_string (namebuf),
3683 conv_sockaddr_to_lisp (&ifq->ifr_addr,
3684 sizeof (struct sockaddr))),
3685 res);
3686 }
3687
3688 xfree (buf);
3689 return res;
3690 }
3691 #endif /* SIOCGIFCONF */
3692
3693 #if defined (SIOCGIFADDR) || defined (SIOCGIFHWADDR) || defined (SIOCGIFFLAGS)
3694
3695 struct ifflag_def {
3696 int flag_bit;
3697 const char *flag_sym;
3698 };
3699
3700 static const struct ifflag_def ifflag_table[] = {
3701 #ifdef IFF_UP
3702 { IFF_UP, "up" },
3703 #endif
3704 #ifdef IFF_BROADCAST
3705 { IFF_BROADCAST, "broadcast" },
3706 #endif
3707 #ifdef IFF_DEBUG
3708 { IFF_DEBUG, "debug" },
3709 #endif
3710 #ifdef IFF_LOOPBACK
3711 { IFF_LOOPBACK, "loopback" },
3712 #endif
3713 #ifdef IFF_POINTOPOINT
3714 { IFF_POINTOPOINT, "pointopoint" },
3715 #endif
3716 #ifdef IFF_RUNNING
3717 { IFF_RUNNING, "running" },
3718 #endif
3719 #ifdef IFF_NOARP
3720 { IFF_NOARP, "noarp" },
3721 #endif
3722 #ifdef IFF_PROMISC
3723 { IFF_PROMISC, "promisc" },
3724 #endif
3725 #ifdef IFF_NOTRAILERS
3726 #ifdef NS_IMPL_COCOA
3727 /* Really means smart, notrailers is obsolete */
3728 { IFF_NOTRAILERS, "smart" },
3729 #else
3730 { IFF_NOTRAILERS, "notrailers" },
3731 #endif
3732 #endif
3733 #ifdef IFF_ALLMULTI
3734 { IFF_ALLMULTI, "allmulti" },
3735 #endif
3736 #ifdef IFF_MASTER
3737 { IFF_MASTER, "master" },
3738 #endif
3739 #ifdef IFF_SLAVE
3740 { IFF_SLAVE, "slave" },
3741 #endif
3742 #ifdef IFF_MULTICAST
3743 { IFF_MULTICAST, "multicast" },
3744 #endif
3745 #ifdef IFF_PORTSEL
3746 { IFF_PORTSEL, "portsel" },
3747 #endif
3748 #ifdef IFF_AUTOMEDIA
3749 { IFF_AUTOMEDIA, "automedia" },
3750 #endif
3751 #ifdef IFF_DYNAMIC
3752 { IFF_DYNAMIC, "dynamic" },
3753 #endif
3754 #ifdef IFF_OACTIVE
3755 { IFF_OACTIVE, "oactive" }, /* OpenBSD: transmission in progress */
3756 #endif
3757 #ifdef IFF_SIMPLEX
3758 { IFF_SIMPLEX, "simplex" }, /* OpenBSD: can't hear own transmissions */
3759 #endif
3760 #ifdef IFF_LINK0
3761 { IFF_LINK0, "link0" }, /* OpenBSD: per link layer defined bit */
3762 #endif
3763 #ifdef IFF_LINK1
3764 { IFF_LINK1, "link1" }, /* OpenBSD: per link layer defined bit */
3765 #endif
3766 #ifdef IFF_LINK2
3767 { IFF_LINK2, "link2" }, /* OpenBSD: per link layer defined bit */
3768 #endif
3769 { 0, 0 }
3770 };
3771
3772 DEFUN ("network-interface-info", Fnetwork_interface_info, Snetwork_interface_info, 1, 1, 0,
3773 doc: /* Return information about network interface named IFNAME.
3774 The return value is a list (ADDR BCAST NETMASK HWADDR FLAGS),
3775 where ADDR is the layer 3 address, BCAST is the layer 3 broadcast address,
3776 NETMASK is the layer 3 network mask, HWADDR is the layer 2 address, and
3777 FLAGS is the current flags of the interface. */)
3778 (Lisp_Object ifname)
3779 {
3780 struct ifreq rq;
3781 Lisp_Object res = Qnil;
3782 Lisp_Object elt;
3783 int s;
3784 int any = 0;
3785 #if (! (defined SIOCGIFHWADDR && defined HAVE_STRUCT_IFREQ_IFR_HWADDR) \
3786 && defined HAVE_GETIFADDRS && defined LLADDR)
3787 struct ifaddrs *ifap;
3788 #endif
3789
3790 CHECK_STRING (ifname);
3791
3792 if (sizeof rq.ifr_name <= SBYTES (ifname))
3793 error ("interface name too long");
3794 strcpy (rq.ifr_name, SSDATA (ifname));
3795
3796 s = socket (AF_INET, SOCK_STREAM, 0);
3797 if (s < 0)
3798 return Qnil;
3799
3800 elt = Qnil;
3801 #if defined (SIOCGIFFLAGS) && defined (HAVE_STRUCT_IFREQ_IFR_FLAGS)
3802 if (ioctl (s, SIOCGIFFLAGS, &rq) == 0)
3803 {
3804 int flags = rq.ifr_flags;
3805 const struct ifflag_def *fp;
3806 int fnum;
3807
3808 /* If flags is smaller than int (i.e. short) it may have the high bit set
3809 due to IFF_MULTICAST. In that case, sign extending it into
3810 an int is wrong. */
3811 if (flags < 0 && sizeof (rq.ifr_flags) < sizeof (flags))
3812 flags = (unsigned short) rq.ifr_flags;
3813
3814 any = 1;
3815 for (fp = ifflag_table; flags != 0 && fp->flag_sym; fp++)
3816 {
3817 if (flags & fp->flag_bit)
3818 {
3819 elt = Fcons (intern (fp->flag_sym), elt);
3820 flags -= fp->flag_bit;
3821 }
3822 }
3823 for (fnum = 0; flags && fnum < 32; flags >>= 1, fnum++)
3824 {
3825 if (flags & 1)
3826 {
3827 elt = Fcons (make_number (fnum), elt);
3828 }
3829 }
3830 }
3831 #endif
3832 res = Fcons (elt, res);
3833
3834 elt = Qnil;
3835 #if defined (SIOCGIFHWADDR) && defined (HAVE_STRUCT_IFREQ_IFR_HWADDR)
3836 if (ioctl (s, SIOCGIFHWADDR, &rq) == 0)
3837 {
3838 Lisp_Object hwaddr = Fmake_vector (make_number (6), Qnil);
3839 register struct Lisp_Vector *p = XVECTOR (hwaddr);
3840 int n;
3841
3842 any = 1;
3843 for (n = 0; n < 6; n++)
3844 p->contents[n] = make_number (((unsigned char *)&rq.ifr_hwaddr.sa_data[0])[n]);
3845 elt = Fcons (make_number (rq.ifr_hwaddr.sa_family), hwaddr);
3846 }
3847 #elif defined (HAVE_GETIFADDRS) && defined (LLADDR)
3848 if (getifaddrs (&ifap) != -1)
3849 {
3850 Lisp_Object hwaddr = Fmake_vector (make_number (6), Qnil);
3851 register struct Lisp_Vector *p = XVECTOR (hwaddr);
3852 struct ifaddrs *it;
3853
3854 for (it = ifap; it != NULL; it = it->ifa_next)
3855 {
3856 struct sockaddr_dl *sdl = (struct sockaddr_dl*) it->ifa_addr;
3857 unsigned char linkaddr[6];
3858 int n;
3859
3860 if (it->ifa_addr->sa_family != AF_LINK
3861 || strcmp (it->ifa_name, SSDATA (ifname)) != 0
3862 || sdl->sdl_alen != 6)
3863 continue;
3864
3865 memcpy (linkaddr, LLADDR (sdl), sdl->sdl_alen);
3866 for (n = 0; n < 6; n++)
3867 p->contents[n] = make_number (linkaddr[n]);
3868
3869 elt = Fcons (make_number (it->ifa_addr->sa_family), hwaddr);
3870 break;
3871 }
3872 }
3873 #ifdef HAVE_FREEIFADDRS
3874 freeifaddrs (ifap);
3875 #endif
3876
3877 #endif /* HAVE_GETIFADDRS && LLADDR */
3878
3879 res = Fcons (elt, res);
3880
3881 elt = Qnil;
3882 #if defined (SIOCGIFNETMASK) && (defined (HAVE_STRUCT_IFREQ_IFR_NETMASK) || defined (HAVE_STRUCT_IFREQ_IFR_ADDR))
3883 if (ioctl (s, SIOCGIFNETMASK, &rq) == 0)
3884 {
3885 any = 1;
3886 #ifdef HAVE_STRUCT_IFREQ_IFR_NETMASK
3887 elt = conv_sockaddr_to_lisp (&rq.ifr_netmask, sizeof (rq.ifr_netmask));
3888 #else
3889 elt = conv_sockaddr_to_lisp (&rq.ifr_addr, sizeof (rq.ifr_addr));
3890 #endif
3891 }
3892 #endif
3893 res = Fcons (elt, res);
3894
3895 elt = Qnil;
3896 #if defined (SIOCGIFBRDADDR) && defined (HAVE_STRUCT_IFREQ_IFR_BROADADDR)
3897 if (ioctl (s, SIOCGIFBRDADDR, &rq) == 0)
3898 {
3899 any = 1;
3900 elt = conv_sockaddr_to_lisp (&rq.ifr_broadaddr, sizeof (rq.ifr_broadaddr));
3901 }
3902 #endif
3903 res = Fcons (elt, res);
3904
3905 elt = Qnil;
3906 #if defined (SIOCGIFADDR) && defined (HAVE_STRUCT_IFREQ_IFR_ADDR)
3907 if (ioctl (s, SIOCGIFADDR, &rq) == 0)
3908 {
3909 any = 1;
3910 elt = conv_sockaddr_to_lisp (&rq.ifr_addr, sizeof (rq.ifr_addr));
3911 }
3912 #endif
3913 res = Fcons (elt, res);
3914
3915 close (s);
3916
3917 return any ? res : Qnil;
3918 }
3919 #endif
3920 #endif /* defined (HAVE_NET_IF_H) */
3921
3922 /* Turn off input and output for process PROC. */
3923
3924 static void
3925 deactivate_process (Lisp_Object proc)
3926 {
3927 register int inchannel, outchannel;
3928 register struct Lisp_Process *p = XPROCESS (proc);
3929
3930 #ifdef HAVE_GNUTLS
3931 /* Delete GnuTLS structures in PROC, if any. */
3932 emacs_gnutls_deinit (proc);
3933 #endif /* HAVE_GNUTLS */
3934
3935 inchannel = p->infd;
3936 outchannel = p->outfd;
3937
3938 #ifdef ADAPTIVE_READ_BUFFERING
3939 if (p->read_output_delay > 0)
3940 {
3941 if (--process_output_delay_count < 0)
3942 process_output_delay_count = 0;
3943 p->read_output_delay = 0;
3944 p->read_output_skip = 0;
3945 }
3946 #endif
3947
3948 if (inchannel >= 0)
3949 {
3950 /* Beware SIGCHLD hereabouts. */
3951 flush_pending_output (inchannel);
3952 emacs_close (inchannel);
3953 if (outchannel >= 0 && outchannel != inchannel)
3954 emacs_close (outchannel);
3955
3956 p->infd = -1;
3957 p->outfd = -1;
3958 #ifdef DATAGRAM_SOCKETS
3959 if (DATAGRAM_CHAN_P (inchannel))
3960 {
3961 xfree (datagram_address[inchannel].sa);
3962 datagram_address[inchannel].sa = 0;
3963 datagram_address[inchannel].len = 0;
3964 }
3965 #endif
3966 chan_process[inchannel] = Qnil;
3967 FD_CLR (inchannel, &input_wait_mask);
3968 FD_CLR (inchannel, &non_keyboard_wait_mask);
3969 #ifdef NON_BLOCKING_CONNECT
3970 if (FD_ISSET (inchannel, &connect_wait_mask))
3971 {
3972 FD_CLR (inchannel, &connect_wait_mask);
3973 FD_CLR (inchannel, &write_mask);
3974 if (--num_pending_connects < 0)
3975 emacs_abort ();
3976 }
3977 #endif
3978 if (inchannel == max_process_desc)
3979 {
3980 int i;
3981 /* We just closed the highest-numbered process input descriptor,
3982 so recompute the highest-numbered one now. */
3983 max_process_desc = 0;
3984 for (i = 0; i < MAXDESC; i++)
3985 if (!NILP (chan_process[i]))
3986 max_process_desc = i;
3987 }
3988 }
3989 }
3990
3991 \f
3992 DEFUN ("accept-process-output", Faccept_process_output, Saccept_process_output,
3993 0, 4, 0,
3994 doc: /* Allow any pending output from subprocesses to be read by Emacs.
3995 It is read into the process' buffers or given to their filter functions.
3996 Non-nil arg PROCESS means do not return until some output has been received
3997 from PROCESS.
3998
3999 Non-nil second arg SECONDS and third arg MILLISEC are number of seconds
4000 and milliseconds to wait; return after that much time whether or not
4001 there is any subprocess output. If SECONDS is a floating point number,
4002 it specifies a fractional number of seconds to wait.
4003 The MILLISEC argument is obsolete and should be avoided.
4004
4005 If optional fourth arg JUST-THIS-ONE is non-nil, only accept output
4006 from PROCESS, suspending reading output from other processes.
4007 If JUST-THIS-ONE is an integer, don't run any timers either.
4008 Return non-nil if we received any output before the timeout expired. */)
4009 (register Lisp_Object process, Lisp_Object seconds, Lisp_Object millisec, Lisp_Object just_this_one)
4010 {
4011 intmax_t secs;
4012 int nsecs;
4013
4014 if (! NILP (process))
4015 CHECK_PROCESS (process);
4016 else
4017 just_this_one = Qnil;
4018
4019 if (!NILP (millisec))
4020 { /* Obsolete calling convention using integers rather than floats. */
4021 CHECK_NUMBER (millisec);
4022 if (NILP (seconds))
4023 seconds = make_float (XINT (millisec) / 1000.0);
4024 else
4025 {
4026 CHECK_NUMBER (seconds);
4027 seconds = make_float (XINT (millisec) / 1000.0 + XINT (seconds));
4028 }
4029 }
4030
4031 secs = 0;
4032 nsecs = -1;
4033
4034 if (!NILP (seconds))
4035 {
4036 if (INTEGERP (seconds))
4037 {
4038 if (0 < XINT (seconds))
4039 {
4040 secs = XINT (seconds);
4041 nsecs = 0;
4042 }
4043 }
4044 else if (FLOATP (seconds))
4045 {
4046 if (0 < XFLOAT_DATA (seconds))
4047 {
4048 EMACS_TIME t = EMACS_TIME_FROM_DOUBLE (XFLOAT_DATA (seconds));
4049 secs = min (EMACS_SECS (t), WAIT_READING_MAX);
4050 nsecs = EMACS_NSECS (t);
4051 }
4052 }
4053 else
4054 wrong_type_argument (Qnumberp, seconds);
4055 }
4056 else if (! NILP (process))
4057 nsecs = 0;
4058
4059 return
4060 (wait_reading_process_output (secs, nsecs, 0, 0,
4061 Qnil,
4062 !NILP (process) ? XPROCESS (process) : NULL,
4063 NILP (just_this_one) ? 0 :
4064 !INTEGERP (just_this_one) ? 1 : -1)
4065 ? Qt : Qnil);
4066 }
4067
4068 /* Accept a connection for server process SERVER on CHANNEL. */
4069
4070 static int connect_counter = 0;
4071
4072 static void
4073 server_accept_connection (Lisp_Object server, int channel)
4074 {
4075 Lisp_Object proc, caller, name, buffer;
4076 Lisp_Object contact, host, service;
4077 struct Lisp_Process *ps= XPROCESS (server);
4078 struct Lisp_Process *p;
4079 int s;
4080 union u_sockaddr {
4081 struct sockaddr sa;
4082 struct sockaddr_in in;
4083 #ifdef AF_INET6
4084 struct sockaddr_in6 in6;
4085 #endif
4086 #ifdef HAVE_LOCAL_SOCKETS
4087 struct sockaddr_un un;
4088 #endif
4089 } saddr;
4090 socklen_t len = sizeof saddr;
4091
4092 s = accept (channel, &saddr.sa, &len);
4093
4094 if (s < 0)
4095 {
4096 int code = errno;
4097
4098 if (code == EAGAIN)
4099 return;
4100 #ifdef EWOULDBLOCK
4101 if (code == EWOULDBLOCK)
4102 return;
4103 #endif
4104
4105 if (!NILP (ps->log))
4106 call3 (ps->log, server, Qnil,
4107 concat3 (build_string ("accept failed with code"),
4108 Fnumber_to_string (make_number (code)),
4109 build_string ("\n")));
4110 return;
4111 }
4112
4113 connect_counter++;
4114
4115 /* Setup a new process to handle the connection. */
4116
4117 /* Generate a unique identification of the caller, and build contact
4118 information for this process. */
4119 host = Qt;
4120 service = Qnil;
4121 switch (saddr.sa.sa_family)
4122 {
4123 case AF_INET:
4124 {
4125 Lisp_Object args[5];
4126 unsigned char *ip = (unsigned char *)&saddr.in.sin_addr.s_addr;
4127 args[0] = build_string ("%d.%d.%d.%d");
4128 args[1] = make_number (*ip++);
4129 args[2] = make_number (*ip++);
4130 args[3] = make_number (*ip++);
4131 args[4] = make_number (*ip++);
4132 host = Fformat (5, args);
4133 service = make_number (ntohs (saddr.in.sin_port));
4134
4135 args[0] = build_string (" <%s:%d>");
4136 args[1] = host;
4137 args[2] = service;
4138 caller = Fformat (3, args);
4139 }
4140 break;
4141
4142 #ifdef AF_INET6
4143 case AF_INET6:
4144 {
4145 Lisp_Object args[9];
4146 uint16_t *ip6 = (uint16_t *)&saddr.in6.sin6_addr;
4147 int i;
4148 args[0] = build_string ("%x:%x:%x:%x:%x:%x:%x:%x");
4149 for (i = 0; i < 8; i++)
4150 args[i+1] = make_number (ntohs (ip6[i]));
4151 host = Fformat (9, args);
4152 service = make_number (ntohs (saddr.in.sin_port));
4153
4154 args[0] = build_string (" <[%s]:%d>");
4155 args[1] = host;
4156 args[2] = service;
4157 caller = Fformat (3, args);
4158 }
4159 break;
4160 #endif
4161
4162 #ifdef HAVE_LOCAL_SOCKETS
4163 case AF_LOCAL:
4164 #endif
4165 default:
4166 caller = Fnumber_to_string (make_number (connect_counter));
4167 caller = concat3 (build_string (" <"), caller, build_string (">"));
4168 break;
4169 }
4170
4171 /* Create a new buffer name for this process if it doesn't have a
4172 filter. The new buffer name is based on the buffer name or
4173 process name of the server process concatenated with the caller
4174 identification. */
4175
4176 if (!NILP (ps->filter) && !EQ (ps->filter, Qt))
4177 buffer = Qnil;
4178 else
4179 {
4180 buffer = ps->buffer;
4181 if (!NILP (buffer))
4182 buffer = Fbuffer_name (buffer);
4183 else
4184 buffer = ps->name;
4185 if (!NILP (buffer))
4186 {
4187 buffer = concat2 (buffer, caller);
4188 buffer = Fget_buffer_create (buffer);
4189 }
4190 }
4191
4192 /* Generate a unique name for the new server process. Combine the
4193 server process name with the caller identification. */
4194
4195 name = concat2 (ps->name, caller);
4196 proc = make_process (name);
4197
4198 chan_process[s] = proc;
4199
4200 #ifdef O_NONBLOCK
4201 fcntl (s, F_SETFL, O_NONBLOCK);
4202 #else
4203 #ifdef O_NDELAY
4204 fcntl (s, F_SETFL, O_NDELAY);
4205 #endif
4206 #endif
4207
4208 p = XPROCESS (proc);
4209
4210 /* Build new contact information for this setup. */
4211 contact = Fcopy_sequence (ps->childp);
4212 contact = Fplist_put (contact, QCserver, Qnil);
4213 contact = Fplist_put (contact, QChost, host);
4214 if (!NILP (service))
4215 contact = Fplist_put (contact, QCservice, service);
4216 contact = Fplist_put (contact, QCremote,
4217 conv_sockaddr_to_lisp (&saddr.sa, len));
4218 #ifdef HAVE_GETSOCKNAME
4219 len = sizeof saddr;
4220 if (getsockname (s, &saddr.sa, &len) == 0)
4221 contact = Fplist_put (contact, QClocal,
4222 conv_sockaddr_to_lisp (&saddr.sa, len));
4223 #endif
4224
4225 pset_childp (p, contact);
4226 pset_plist (p, Fcopy_sequence (ps->plist));
4227 pset_type (p, Qnetwork);
4228
4229 pset_buffer (p, buffer);
4230 pset_sentinel (p, ps->sentinel);
4231 pset_filter (p, ps->filter);
4232 pset_command (p, Qnil);
4233 p->pid = 0;
4234 p->infd = s;
4235 p->outfd = s;
4236 pset_status (p, Qrun);
4237
4238 /* Client processes for accepted connections are not stopped initially. */
4239 if (!EQ (p->filter, Qt))
4240 {
4241 FD_SET (s, &input_wait_mask);
4242 FD_SET (s, &non_keyboard_wait_mask);
4243 }
4244
4245 if (s > max_process_desc)
4246 max_process_desc = s;
4247
4248 /* Setup coding system for new process based on server process.
4249 This seems to be the proper thing to do, as the coding system
4250 of the new process should reflect the settings at the time the
4251 server socket was opened; not the current settings. */
4252
4253 pset_decode_coding_system (p, ps->decode_coding_system);
4254 pset_encode_coding_system (p, ps->encode_coding_system);
4255 setup_process_coding_systems (proc);
4256
4257 pset_decoding_buf (p, empty_unibyte_string);
4258 p->decoding_carryover = 0;
4259 pset_encoding_buf (p, empty_unibyte_string);
4260
4261 p->inherit_coding_system_flag
4262 = (NILP (buffer) ? 0 : ps->inherit_coding_system_flag);
4263
4264 if (!NILP (ps->log))
4265 call3 (ps->log, server, proc,
4266 concat3 (build_string ("accept from "),
4267 (STRINGP (host) ? host : build_string ("-")),
4268 build_string ("\n")));
4269
4270 if (!NILP (p->sentinel))
4271 exec_sentinel (proc,
4272 concat3 (build_string ("open from "),
4273 (STRINGP (host) ? host : build_string ("-")),
4274 build_string ("\n")));
4275 }
4276
4277 /* This variable is different from waiting_for_input in keyboard.c.
4278 It is used to communicate to a lisp process-filter/sentinel (via the
4279 function Fwaiting_for_user_input_p below) whether Emacs was waiting
4280 for user-input when that process-filter was called.
4281 waiting_for_input cannot be used as that is by definition 0 when
4282 lisp code is being evalled.
4283 This is also used in record_asynch_buffer_change.
4284 For that purpose, this must be 0
4285 when not inside wait_reading_process_output. */
4286 static int waiting_for_user_input_p;
4287
4288 static Lisp_Object
4289 wait_reading_process_output_unwind (Lisp_Object data)
4290 {
4291 waiting_for_user_input_p = XINT (data);
4292 return Qnil;
4293 }
4294
4295 /* This is here so breakpoints can be put on it. */
4296 static void
4297 wait_reading_process_output_1 (void)
4298 {
4299 }
4300
4301 /* Read and dispose of subprocess output while waiting for timeout to
4302 elapse and/or keyboard input to be available.
4303
4304 TIME_LIMIT is:
4305 timeout in seconds
4306 If negative, gobble data immediately available but don't wait for any.
4307
4308 NSECS is:
4309 an additional duration to wait, measured in nanoseconds
4310 If TIME_LIMIT is zero, then:
4311 If NSECS == 0, there is no limit.
4312 If NSECS > 0, the timeout consists of NSECS only.
4313 If NSECS < 0, gobble data immediately, as if TIME_LIMIT were negative.
4314
4315 READ_KBD is:
4316 0 to ignore keyboard input, or
4317 1 to return when input is available, or
4318 -1 meaning caller will actually read the input, so don't throw to
4319 the quit handler, or
4320
4321 DO_DISPLAY != 0 means redisplay should be done to show subprocess
4322 output that arrives.
4323
4324 If WAIT_FOR_CELL is a cons cell, wait until its car is non-nil
4325 (and gobble terminal input into the buffer if any arrives).
4326
4327 If WAIT_PROC is specified, wait until something arrives from that
4328 process. The return value is true if we read some input from
4329 that process.
4330
4331 If JUST_WAIT_PROC is non-nil, handle only output from WAIT_PROC
4332 (suspending output from other processes). A negative value
4333 means don't run any timers either.
4334
4335 If WAIT_PROC is specified, then the function returns true if we
4336 received input from that process before the timeout elapsed.
4337 Otherwise, return true if we received input from any process. */
4338
4339 int
4340 wait_reading_process_output (intmax_t time_limit, int nsecs, int read_kbd,
4341 int do_display,
4342 Lisp_Object wait_for_cell,
4343 struct Lisp_Process *wait_proc, int just_wait_proc)
4344 {
4345 register int channel, nfds;
4346 SELECT_TYPE Available;
4347 SELECT_TYPE Writeok;
4348 int check_write;
4349 int check_delay, no_avail;
4350 int xerrno;
4351 Lisp_Object proc;
4352 EMACS_TIME timeout, end_time;
4353 int wait_channel = -1;
4354 int got_some_input = 0;
4355 ptrdiff_t count = SPECPDL_INDEX ();
4356
4357 FD_ZERO (&Available);
4358 FD_ZERO (&Writeok);
4359
4360 if (time_limit == 0 && nsecs == 0 && wait_proc && !NILP (Vinhibit_quit)
4361 && !(CONSP (wait_proc->status)
4362 && EQ (XCAR (wait_proc->status), Qexit)))
4363 message ("Blocking call to accept-process-output with quit inhibited!!");
4364
4365 /* If wait_proc is a process to watch, set wait_channel accordingly. */
4366 if (wait_proc != NULL)
4367 wait_channel = wait_proc->infd;
4368
4369 record_unwind_protect (wait_reading_process_output_unwind,
4370 make_number (waiting_for_user_input_p));
4371 waiting_for_user_input_p = read_kbd;
4372
4373 if (time_limit < 0)
4374 {
4375 time_limit = 0;
4376 nsecs = -1;
4377 }
4378 else if (TYPE_MAXIMUM (time_t) < time_limit)
4379 time_limit = TYPE_MAXIMUM (time_t);
4380
4381 /* Since we may need to wait several times,
4382 compute the absolute time to return at. */
4383 if (time_limit || 0 < nsecs)
4384 {
4385 timeout = make_emacs_time (time_limit, nsecs);
4386 end_time = add_emacs_time (current_emacs_time (), timeout);
4387 }
4388
4389 while (1)
4390 {
4391 int timeout_reduced_for_timers = 0;
4392
4393 /* If calling from keyboard input, do not quit
4394 since we want to return C-g as an input character.
4395 Otherwise, do pending quit if requested. */
4396 if (read_kbd >= 0)
4397 QUIT;
4398 #ifdef SYNC_INPUT
4399 else
4400 process_pending_signals ();
4401 #endif
4402
4403 /* Exit now if the cell we're waiting for became non-nil. */
4404 if (! NILP (wait_for_cell) && ! NILP (XCAR (wait_for_cell)))
4405 break;
4406
4407 /* Compute time from now till when time limit is up */
4408 /* Exit if already run out */
4409 if (nsecs < 0)
4410 {
4411 /* A negative timeout means
4412 gobble output available now
4413 but don't wait at all. */
4414
4415 timeout = make_emacs_time (0, 0);
4416 }
4417 else if (time_limit || 0 < nsecs)
4418 {
4419 EMACS_TIME now = current_emacs_time ();
4420 if (EMACS_TIME_LE (end_time, now))
4421 break;
4422 timeout = sub_emacs_time (end_time, now);
4423 }
4424 else
4425 {
4426 timeout = make_emacs_time (100000, 0);
4427 }
4428
4429 /* Normally we run timers here.
4430 But not if wait_for_cell; in those cases,
4431 the wait is supposed to be short,
4432 and those callers cannot handle running arbitrary Lisp code here. */
4433 if (NILP (wait_for_cell)
4434 && just_wait_proc >= 0)
4435 {
4436 EMACS_TIME timer_delay;
4437
4438 do
4439 {
4440 int old_timers_run = timers_run;
4441 struct buffer *old_buffer = current_buffer;
4442 Lisp_Object old_window = selected_window;
4443
4444 timer_delay = timer_check ();
4445
4446 /* If a timer has run, this might have changed buffers
4447 an alike. Make read_key_sequence aware of that. */
4448 if (timers_run != old_timers_run
4449 && (old_buffer != current_buffer
4450 || !EQ (old_window, selected_window))
4451 && waiting_for_user_input_p == -1)
4452 record_asynch_buffer_change ();
4453
4454 if (timers_run != old_timers_run && do_display)
4455 /* We must retry, since a timer may have requeued itself
4456 and that could alter the time_delay. */
4457 redisplay_preserve_echo_area (9);
4458 else
4459 break;
4460 }
4461 while (!detect_input_pending ());
4462
4463 /* If there is unread keyboard input, also return. */
4464 if (read_kbd != 0
4465 && requeued_events_pending_p ())
4466 break;
4467
4468 /* A negative timeout means do not wait at all. */
4469 if (0 <= nsecs)
4470 {
4471 if (EMACS_TIME_VALID_P (timer_delay))
4472 {
4473 if (EMACS_TIME_LT (timer_delay, timeout))
4474 {
4475 timeout = timer_delay;
4476 timeout_reduced_for_timers = 1;
4477 }
4478 }
4479 else
4480 {
4481 /* This is so a breakpoint can be put here. */
4482 wait_reading_process_output_1 ();
4483 }
4484 }
4485 }
4486
4487 /* Cause C-g and alarm signals to take immediate action,
4488 and cause input available signals to zero out timeout.
4489
4490 It is important that we do this before checking for process
4491 activity. If we get a SIGCHLD after the explicit checks for
4492 process activity, timeout is the only way we will know. */
4493 if (read_kbd < 0)
4494 set_waiting_for_input (&timeout);
4495
4496 /* If status of something has changed, and no input is
4497 available, notify the user of the change right away. After
4498 this explicit check, we'll let the SIGCHLD handler zap
4499 timeout to get our attention. */
4500 if (update_tick != process_tick)
4501 {
4502 SELECT_TYPE Atemp;
4503 SELECT_TYPE Ctemp;
4504
4505 if (kbd_on_hold_p ())
4506 FD_ZERO (&Atemp);
4507 else
4508 Atemp = input_wait_mask;
4509 Ctemp = write_mask;
4510
4511 timeout = make_emacs_time (0, 0);
4512 if ((pselect (max (max_process_desc, max_input_desc) + 1,
4513 &Atemp,
4514 #ifdef NON_BLOCKING_CONNECT
4515 (num_pending_connects > 0 ? &Ctemp : NULL),
4516 #else
4517 NULL,
4518 #endif
4519 NULL, &timeout, NULL)
4520 <= 0))
4521 {
4522 /* It's okay for us to do this and then continue with
4523 the loop, since timeout has already been zeroed out. */
4524 clear_waiting_for_input ();
4525 status_notify (NULL);
4526 if (do_display) redisplay_preserve_echo_area (13);
4527 }
4528 }
4529
4530 /* Don't wait for output from a non-running process. Just
4531 read whatever data has already been received. */
4532 if (wait_proc && wait_proc->raw_status_new)
4533 update_status (wait_proc);
4534 if (wait_proc
4535 && ! EQ (wait_proc->status, Qrun)
4536 && ! EQ (wait_proc->status, Qconnect))
4537 {
4538 int nread, total_nread = 0;
4539
4540 clear_waiting_for_input ();
4541 XSETPROCESS (proc, wait_proc);
4542
4543 /* Read data from the process, until we exhaust it. */
4544 while (wait_proc->infd >= 0)
4545 {
4546 nread = read_process_output (proc, wait_proc->infd);
4547
4548 if (nread == 0)
4549 break;
4550
4551 if (0 < nread)
4552 {
4553 total_nread += nread;
4554 got_some_input = 1;
4555 }
4556 #ifdef EIO
4557 else if (nread == -1 && EIO == errno)
4558 break;
4559 #endif
4560 #ifdef EAGAIN
4561 else if (nread == -1 && EAGAIN == errno)
4562 break;
4563 #endif
4564 #ifdef EWOULDBLOCK
4565 else if (nread == -1 && EWOULDBLOCK == errno)
4566 break;
4567 #endif
4568 }
4569 if (total_nread > 0 && do_display)
4570 redisplay_preserve_echo_area (10);
4571
4572 break;
4573 }
4574
4575 /* Wait till there is something to do */
4576
4577 if (wait_proc && just_wait_proc)
4578 {
4579 if (wait_proc->infd < 0) /* Terminated */
4580 break;
4581 FD_SET (wait_proc->infd, &Available);
4582 check_delay = 0;
4583 check_write = 0;
4584 }
4585 else if (!NILP (wait_for_cell))
4586 {
4587 Available = non_process_wait_mask;
4588 check_delay = 0;
4589 check_write = 0;
4590 }
4591 else
4592 {
4593 if (! read_kbd)
4594 Available = non_keyboard_wait_mask;
4595 else
4596 Available = input_wait_mask;
4597 Writeok = write_mask;
4598 #ifdef SELECT_CANT_DO_WRITE_MASK
4599 check_write = 0;
4600 #else
4601 check_write = 1;
4602 #endif
4603 check_delay = wait_channel >= 0 ? 0 : process_output_delay_count;
4604 }
4605
4606 /* If frame size has changed or the window is newly mapped,
4607 redisplay now, before we start to wait. There is a race
4608 condition here; if a SIGIO arrives between now and the select
4609 and indicates that a frame is trashed, the select may block
4610 displaying a trashed screen. */
4611 if (frame_garbaged && do_display)
4612 {
4613 clear_waiting_for_input ();
4614 redisplay_preserve_echo_area (11);
4615 if (read_kbd < 0)
4616 set_waiting_for_input (&timeout);
4617 }
4618
4619 /* Skip the `select' call if input is available and we're
4620 waiting for keyboard input or a cell change (which can be
4621 triggered by processing X events). In the latter case, set
4622 nfds to 1 to avoid breaking the loop. */
4623 no_avail = 0;
4624 if ((read_kbd || !NILP (wait_for_cell))
4625 && detect_input_pending ())
4626 {
4627 nfds = read_kbd ? 0 : 1;
4628 no_avail = 1;
4629 }
4630
4631 if (!no_avail)
4632 {
4633
4634 #ifdef ADAPTIVE_READ_BUFFERING
4635 /* Set the timeout for adaptive read buffering if any
4636 process has non-zero read_output_skip and non-zero
4637 read_output_delay, and we are not reading output for a
4638 specific wait_channel. It is not executed if
4639 Vprocess_adaptive_read_buffering is nil. */
4640 if (process_output_skip && check_delay > 0)
4641 {
4642 int nsecs = EMACS_NSECS (timeout);
4643 if (EMACS_SECS (timeout) > 0 || nsecs > READ_OUTPUT_DELAY_MAX)
4644 nsecs = READ_OUTPUT_DELAY_MAX;
4645 for (channel = 0; check_delay > 0 && channel <= max_process_desc; channel++)
4646 {
4647 proc = chan_process[channel];
4648 if (NILP (proc))
4649 continue;
4650 /* Find minimum non-zero read_output_delay among the
4651 processes with non-zero read_output_skip. */
4652 if (XPROCESS (proc)->read_output_delay > 0)
4653 {
4654 check_delay--;
4655 if (!XPROCESS (proc)->read_output_skip)
4656 continue;
4657 FD_CLR (channel, &Available);
4658 XPROCESS (proc)->read_output_skip = 0;
4659 if (XPROCESS (proc)->read_output_delay < nsecs)
4660 nsecs = XPROCESS (proc)->read_output_delay;
4661 }
4662 }
4663 timeout = make_emacs_time (0, nsecs);
4664 process_output_skip = 0;
4665 }
4666 #endif
4667 #if defined (USE_GTK) || defined (HAVE_GCONF) || defined (HAVE_GSETTINGS)
4668 nfds = xg_select
4669 #elif defined (HAVE_NS)
4670 nfds = ns_select
4671 #else
4672 nfds = pselect
4673 #endif
4674 (max (max_process_desc, max_input_desc) + 1,
4675 &Available,
4676 (check_write ? &Writeok : (SELECT_TYPE *)0),
4677 NULL, &timeout, NULL);
4678
4679 #ifdef HAVE_GNUTLS
4680 /* GnuTLS buffers data internally. In lowat mode it leaves
4681 some data in the TCP buffers so that select works, but
4682 with custom pull/push functions we need to check if some
4683 data is available in the buffers manually. */
4684 if (nfds == 0)
4685 {
4686 if (! wait_proc)
4687 {
4688 /* We're not waiting on a specific process, so loop
4689 through all the channels and check for data.
4690 This is a workaround needed for some versions of
4691 the gnutls library -- 2.12.14 has been confirmed
4692 to need it. See
4693 http://comments.gmane.org/gmane.emacs.devel/145074 */
4694 for (channel = 0; channel < MAXDESC; ++channel)
4695 if (! NILP (chan_process[channel]))
4696 {
4697 struct Lisp_Process *p =
4698 XPROCESS (chan_process[channel]);
4699 if (p && p->gnutls_p && p->infd
4700 && ((emacs_gnutls_record_check_pending
4701 (p->gnutls_state))
4702 > 0))
4703 {
4704 nfds++;
4705 FD_SET (p->infd, &Available);
4706 }
4707 }
4708 }
4709 else
4710 {
4711 /* Check this specific channel. */
4712 if (wait_proc->gnutls_p /* Check for valid process. */
4713 /* Do we have pending data? */
4714 && ((emacs_gnutls_record_check_pending
4715 (wait_proc->gnutls_state))
4716 > 0))
4717 {
4718 nfds = 1;
4719 /* Set to Available. */
4720 FD_SET (wait_proc->infd, &Available);
4721 }
4722 }
4723 }
4724 #endif
4725 }
4726
4727 xerrno = errno;
4728
4729 /* Make C-g and alarm signals set flags again */
4730 clear_waiting_for_input ();
4731
4732 /* If we woke up due to SIGWINCH, actually change size now. */
4733 do_pending_window_change (0);
4734
4735 if ((time_limit || nsecs) && nfds == 0 && ! timeout_reduced_for_timers)
4736 /* We waited the full specified time, so return now. */
4737 break;
4738 if (nfds < 0)
4739 {
4740 if (xerrno == EINTR)
4741 no_avail = 1;
4742 else if (xerrno == EBADF)
4743 {
4744 #ifdef AIX
4745 /* AIX doesn't handle PTY closure the same way BSD does. On AIX,
4746 the child's closure of the pts gives the parent a SIGHUP, and
4747 the ptc file descriptor is automatically closed,
4748 yielding EBADF here or at select() call above.
4749 So, SIGHUP is ignored (see def of PTY_TTY_NAME_SPRINTF
4750 in m/ibmrt-aix.h), and here we just ignore the select error.
4751 Cleanup occurs c/o status_notify after SIGCLD. */
4752 no_avail = 1; /* Cannot depend on values returned */
4753 #else
4754 emacs_abort ();
4755 #endif
4756 }
4757 else
4758 error ("select error: %s", emacs_strerror (xerrno));
4759 }
4760
4761 if (no_avail)
4762 {
4763 FD_ZERO (&Available);
4764 check_write = 0;
4765 }
4766
4767 #if 0 /* When polling is used, interrupt_input is 0,
4768 so get_input_pending should read the input.
4769 So this should not be needed. */
4770 /* If we are using polling for input,
4771 and we see input available, make it get read now.
4772 Otherwise it might not actually get read for a second.
4773 And on hpux, since we turn off polling in wait_reading_process_output,
4774 it might never get read at all if we don't spend much time
4775 outside of wait_reading_process_output. */
4776 if (read_kbd && interrupt_input
4777 && keyboard_bit_set (&Available)
4778 && input_polling_used ())
4779 kill (getpid (), SIGALRM);
4780 #endif
4781
4782 /* Check for keyboard input */
4783 /* If there is any, return immediately
4784 to give it higher priority than subprocesses */
4785
4786 if (read_kbd != 0)
4787 {
4788 int old_timers_run = timers_run;
4789 struct buffer *old_buffer = current_buffer;
4790 Lisp_Object old_window = selected_window;
4791 int leave = 0;
4792
4793 if (detect_input_pending_run_timers (do_display))
4794 {
4795 swallow_events (do_display);
4796 if (detect_input_pending_run_timers (do_display))
4797 leave = 1;
4798 }
4799
4800 /* If a timer has run, this might have changed buffers
4801 an alike. Make read_key_sequence aware of that. */
4802 if (timers_run != old_timers_run
4803 && waiting_for_user_input_p == -1
4804 && (old_buffer != current_buffer
4805 || !EQ (old_window, selected_window)))
4806 record_asynch_buffer_change ();
4807
4808 if (leave)
4809 break;
4810 }
4811
4812 /* If there is unread keyboard input, also return. */
4813 if (read_kbd != 0
4814 && requeued_events_pending_p ())
4815 break;
4816
4817 /* If we are not checking for keyboard input now,
4818 do process events (but don't run any timers).
4819 This is so that X events will be processed.
4820 Otherwise they may have to wait until polling takes place.
4821 That would causes delays in pasting selections, for example.
4822
4823 (We used to do this only if wait_for_cell.) */
4824 if (read_kbd == 0 && detect_input_pending ())
4825 {
4826 swallow_events (do_display);
4827 #if 0 /* Exiting when read_kbd doesn't request that seems wrong, though. */
4828 if (detect_input_pending ())
4829 break;
4830 #endif
4831 }
4832
4833 /* Exit now if the cell we're waiting for became non-nil. */
4834 if (! NILP (wait_for_cell) && ! NILP (XCAR (wait_for_cell)))
4835 break;
4836
4837 #ifdef USABLE_SIGIO
4838 /* If we think we have keyboard input waiting, but didn't get SIGIO,
4839 go read it. This can happen with X on BSD after logging out.
4840 In that case, there really is no input and no SIGIO,
4841 but select says there is input. */
4842
4843 if (read_kbd && interrupt_input
4844 && keyboard_bit_set (&Available) && ! noninteractive)
4845 kill (getpid (), SIGIO);
4846 #endif
4847
4848 if (! wait_proc)
4849 got_some_input |= nfds > 0;
4850
4851 /* If checking input just got us a size-change event from X,
4852 obey it now if we should. */
4853 if (read_kbd || ! NILP (wait_for_cell))
4854 do_pending_window_change (0);
4855
4856 /* Check for data from a process. */
4857 if (no_avail || nfds == 0)
4858 continue;
4859
4860 for (channel = 0; channel <= max_input_desc; ++channel)
4861 {
4862 struct fd_callback_data *d = &fd_callback_info[channel];
4863 if (d->func
4864 && ((d->condition & FOR_READ
4865 && FD_ISSET (channel, &Available))
4866 || (d->condition & FOR_WRITE
4867 && FD_ISSET (channel, &write_mask))))
4868 d->func (channel, d->data);
4869 }
4870
4871 for (channel = 0; channel <= max_process_desc; channel++)
4872 {
4873 if (FD_ISSET (channel, &Available)
4874 && FD_ISSET (channel, &non_keyboard_wait_mask)
4875 && !FD_ISSET (channel, &non_process_wait_mask))
4876 {
4877 int nread;
4878
4879 /* If waiting for this channel, arrange to return as
4880 soon as no more input to be processed. No more
4881 waiting. */
4882 if (wait_channel == channel)
4883 {
4884 wait_channel = -1;
4885 nsecs = -1;
4886 got_some_input = 1;
4887 }
4888 proc = chan_process[channel];
4889 if (NILP (proc))
4890 continue;
4891
4892 /* If this is a server stream socket, accept connection. */
4893 if (EQ (XPROCESS (proc)->status, Qlisten))
4894 {
4895 server_accept_connection (proc, channel);
4896 continue;
4897 }
4898
4899 /* Read data from the process, starting with our
4900 buffered-ahead character if we have one. */
4901
4902 nread = read_process_output (proc, channel);
4903 if (nread > 0)
4904 {
4905 /* Since read_process_output can run a filter,
4906 which can call accept-process-output,
4907 don't try to read from any other processes
4908 before doing the select again. */
4909 FD_ZERO (&Available);
4910
4911 if (do_display)
4912 redisplay_preserve_echo_area (12);
4913 }
4914 #ifdef EWOULDBLOCK
4915 else if (nread == -1 && errno == EWOULDBLOCK)
4916 ;
4917 #endif
4918 /* ISC 4.1 defines both EWOULDBLOCK and O_NONBLOCK,
4919 and Emacs uses O_NONBLOCK, so what we get is EAGAIN. */
4920 #ifdef O_NONBLOCK
4921 else if (nread == -1 && errno == EAGAIN)
4922 ;
4923 #else
4924 #ifdef O_NDELAY
4925 else if (nread == -1 && errno == EAGAIN)
4926 ;
4927 /* Note that we cannot distinguish between no input
4928 available now and a closed pipe.
4929 With luck, a closed pipe will be accompanied by
4930 subprocess termination and SIGCHLD. */
4931 else if (nread == 0 && !NETCONN_P (proc) && !SERIALCONN_P (proc))
4932 ;
4933 #endif /* O_NDELAY */
4934 #endif /* O_NONBLOCK */
4935 #ifdef HAVE_PTYS
4936 /* On some OSs with ptys, when the process on one end of
4937 a pty exits, the other end gets an error reading with
4938 errno = EIO instead of getting an EOF (0 bytes read).
4939 Therefore, if we get an error reading and errno =
4940 EIO, just continue, because the child process has
4941 exited and should clean itself up soon (e.g. when we
4942 get a SIGCHLD).
4943
4944 However, it has been known to happen that the SIGCHLD
4945 got lost. So raise the signal again just in case.
4946 It can't hurt. */
4947 else if (nread == -1 && errno == EIO)
4948 {
4949 struct Lisp_Process *p = XPROCESS (proc);
4950
4951 /* Clear the descriptor now, so we only raise the
4952 signal once. */
4953 FD_CLR (channel, &input_wait_mask);
4954 FD_CLR (channel, &non_keyboard_wait_mask);
4955
4956 if (p->pid == -2)
4957 {
4958 /* If the EIO occurs on a pty, the SIGCHLD handler's
4959 waitpid call will not find the process object to
4960 delete. Do it here. */
4961 p->tick = ++process_tick;
4962 pset_status (p, Qfailed);
4963 }
4964 else
4965 kill (getpid (), SIGCHLD);
4966 }
4967 #endif /* HAVE_PTYS */
4968 /* If we can detect process termination, don't consider the
4969 process gone just because its pipe is closed. */
4970 #ifdef SIGCHLD
4971 else if (nread == 0 && !NETCONN_P (proc) && !SERIALCONN_P (proc))
4972 ;
4973 #endif
4974 else
4975 {
4976 /* Preserve status of processes already terminated. */
4977 XPROCESS (proc)->tick = ++process_tick;
4978 deactivate_process (proc);
4979 if (XPROCESS (proc)->raw_status_new)
4980 update_status (XPROCESS (proc));
4981 if (EQ (XPROCESS (proc)->status, Qrun))
4982 pset_status (XPROCESS (proc),
4983 list2 (Qexit, make_number (256)));
4984 }
4985 }
4986 #ifdef NON_BLOCKING_CONNECT
4987 if (FD_ISSET (channel, &Writeok)
4988 && FD_ISSET (channel, &connect_wait_mask))
4989 {
4990 struct Lisp_Process *p;
4991
4992 FD_CLR (channel, &connect_wait_mask);
4993 FD_CLR (channel, &write_mask);
4994 if (--num_pending_connects < 0)
4995 emacs_abort ();
4996
4997 proc = chan_process[channel];
4998 if (NILP (proc))
4999 continue;
5000
5001 p = XPROCESS (proc);
5002
5003 #ifdef GNU_LINUX
5004 /* getsockopt(,,SO_ERROR,,) is said to hang on some systems.
5005 So only use it on systems where it is known to work. */
5006 {
5007 socklen_t xlen = sizeof (xerrno);
5008 if (getsockopt (channel, SOL_SOCKET, SO_ERROR, &xerrno, &xlen))
5009 xerrno = errno;
5010 }
5011 #else
5012 {
5013 struct sockaddr pname;
5014 int pnamelen = sizeof (pname);
5015
5016 /* If connection failed, getpeername will fail. */
5017 xerrno = 0;
5018 if (getpeername (channel, &pname, &pnamelen) < 0)
5019 {
5020 /* Obtain connect failure code through error slippage. */
5021 char dummy;
5022 xerrno = errno;
5023 if (errno == ENOTCONN && read (channel, &dummy, 1) < 0)
5024 xerrno = errno;
5025 }
5026 }
5027 #endif
5028 if (xerrno)
5029 {
5030 p->tick = ++process_tick;
5031 pset_status (p, list2 (Qfailed, make_number (xerrno)));
5032 deactivate_process (proc);
5033 }
5034 else
5035 {
5036 pset_status (p, Qrun);
5037 /* Execute the sentinel here. If we had relied on
5038 status_notify to do it later, it will read input
5039 from the process before calling the sentinel. */
5040 exec_sentinel (proc, build_string ("open\n"));
5041 if (!EQ (p->filter, Qt) && !EQ (p->command, Qt))
5042 {
5043 FD_SET (p->infd, &input_wait_mask);
5044 FD_SET (p->infd, &non_keyboard_wait_mask);
5045 }
5046 }
5047 }
5048 #endif /* NON_BLOCKING_CONNECT */
5049 } /* end for each file descriptor */
5050 } /* end while exit conditions not met */
5051
5052 unbind_to (count, Qnil);
5053
5054 /* If calling from keyboard input, do not quit
5055 since we want to return C-g as an input character.
5056 Otherwise, do pending quit if requested. */
5057 if (read_kbd >= 0)
5058 {
5059 /* Prevent input_pending from remaining set if we quit. */
5060 clear_input_pending ();
5061 QUIT;
5062 }
5063
5064 return got_some_input;
5065 }
5066 \f
5067 /* Given a list (FUNCTION ARGS...), apply FUNCTION to the ARGS. */
5068
5069 static Lisp_Object
5070 read_process_output_call (Lisp_Object fun_and_args)
5071 {
5072 return apply1 (XCAR (fun_and_args), XCDR (fun_and_args));
5073 }
5074
5075 static Lisp_Object
5076 read_process_output_error_handler (Lisp_Object error_val)
5077 {
5078 cmd_error_internal (error_val, "error in process filter: ");
5079 Vinhibit_quit = Qt;
5080 update_echo_area ();
5081 Fsleep_for (make_number (2), Qnil);
5082 return Qt;
5083 }
5084
5085 /* Read pending output from the process channel,
5086 starting with our buffered-ahead character if we have one.
5087 Yield number of decoded characters read.
5088
5089 This function reads at most 4096 characters.
5090 If you want to read all available subprocess output,
5091 you must call it repeatedly until it returns zero.
5092
5093 The characters read are decoded according to PROC's coding-system
5094 for decoding. */
5095
5096 static int
5097 read_process_output (Lisp_Object proc, register int channel)
5098 {
5099 register ssize_t nbytes;
5100 char *chars;
5101 register Lisp_Object outstream;
5102 register struct Lisp_Process *p = XPROCESS (proc);
5103 register ptrdiff_t opoint;
5104 struct coding_system *coding = proc_decode_coding_system[channel];
5105 int carryover = p->decoding_carryover;
5106 int readmax = 4096;
5107 ptrdiff_t count = SPECPDL_INDEX ();
5108 Lisp_Object odeactivate;
5109
5110 chars = alloca (carryover + readmax);
5111 if (carryover)
5112 /* See the comment above. */
5113 memcpy (chars, SDATA (p->decoding_buf), carryover);
5114
5115 #ifdef DATAGRAM_SOCKETS
5116 /* We have a working select, so proc_buffered_char is always -1. */
5117 if (DATAGRAM_CHAN_P (channel))
5118 {
5119 socklen_t len = datagram_address[channel].len;
5120 nbytes = recvfrom (channel, chars + carryover, readmax,
5121 0, datagram_address[channel].sa, &len);
5122 }
5123 else
5124 #endif
5125 {
5126 int buffered = 0 <= proc_buffered_char[channel];
5127 if (buffered)
5128 {
5129 chars[carryover] = proc_buffered_char[channel];
5130 proc_buffered_char[channel] = -1;
5131 }
5132 #ifdef HAVE_GNUTLS
5133 if (p->gnutls_p)
5134 nbytes = emacs_gnutls_read (p, chars + carryover + buffered,
5135 readmax - buffered);
5136 else
5137 #endif
5138 nbytes = emacs_read (channel, chars + carryover + buffered,
5139 readmax - buffered);
5140 #ifdef ADAPTIVE_READ_BUFFERING
5141 if (nbytes > 0 && p->adaptive_read_buffering)
5142 {
5143 int delay = p->read_output_delay;
5144 if (nbytes < 256)
5145 {
5146 if (delay < READ_OUTPUT_DELAY_MAX_MAX)
5147 {
5148 if (delay == 0)
5149 process_output_delay_count++;
5150 delay += READ_OUTPUT_DELAY_INCREMENT * 2;
5151 }
5152 }
5153 else if (delay > 0 && nbytes == readmax - buffered)
5154 {
5155 delay -= READ_OUTPUT_DELAY_INCREMENT;
5156 if (delay == 0)
5157 process_output_delay_count--;
5158 }
5159 p->read_output_delay = delay;
5160 if (delay)
5161 {
5162 p->read_output_skip = 1;
5163 process_output_skip = 1;
5164 }
5165 }
5166 #endif
5167 nbytes += buffered;
5168 nbytes += buffered && nbytes <= 0;
5169 }
5170
5171 p->decoding_carryover = 0;
5172
5173 /* At this point, NBYTES holds number of bytes just received
5174 (including the one in proc_buffered_char[channel]). */
5175 if (nbytes <= 0)
5176 {
5177 if (nbytes < 0 || coding->mode & CODING_MODE_LAST_BLOCK)
5178 return nbytes;
5179 coding->mode |= CODING_MODE_LAST_BLOCK;
5180 }
5181
5182 /* Now set NBYTES how many bytes we must decode. */
5183 nbytes += carryover;
5184
5185 odeactivate = Vdeactivate_mark;
5186 /* There's no good reason to let process filters change the current
5187 buffer, and many callers of accept-process-output, sit-for, and
5188 friends don't expect current-buffer to be changed from under them. */
5189 record_unwind_current_buffer ();
5190
5191 /* Read and dispose of the process output. */
5192 outstream = p->filter;
5193 if (!NILP (outstream))
5194 {
5195 Lisp_Object text;
5196 bool outer_running_asynch_code = running_asynch_code;
5197 int waiting = waiting_for_user_input_p;
5198
5199 /* No need to gcpro these, because all we do with them later
5200 is test them for EQness, and none of them should be a string. */
5201 #if 0
5202 Lisp_Object obuffer, okeymap;
5203 XSETBUFFER (obuffer, current_buffer);
5204 okeymap = BVAR (current_buffer, keymap);
5205 #endif
5206
5207 /* We inhibit quit here instead of just catching it so that
5208 hitting ^G when a filter happens to be running won't screw
5209 it up. */
5210 specbind (Qinhibit_quit, Qt);
5211 specbind (Qlast_nonmenu_event, Qt);
5212
5213 /* In case we get recursively called,
5214 and we already saved the match data nonrecursively,
5215 save the same match data in safely recursive fashion. */
5216 if (outer_running_asynch_code)
5217 {
5218 Lisp_Object tem;
5219 /* Don't clobber the CURRENT match data, either! */
5220 tem = Fmatch_data (Qnil, Qnil, Qnil);
5221 restore_search_regs ();
5222 record_unwind_save_match_data ();
5223 Fset_match_data (tem, Qt);
5224 }
5225
5226 /* For speed, if a search happens within this code,
5227 save the match data in a special nonrecursive fashion. */
5228 running_asynch_code = 1;
5229
5230 decode_coding_c_string (coding, (unsigned char *) chars, nbytes, Qt);
5231 text = coding->dst_object;
5232 Vlast_coding_system_used = CODING_ID_NAME (coding->id);
5233 /* A new coding system might be found. */
5234 if (!EQ (p->decode_coding_system, Vlast_coding_system_used))
5235 {
5236 pset_decode_coding_system (p, Vlast_coding_system_used);
5237
5238 /* Don't call setup_coding_system for
5239 proc_decode_coding_system[channel] here. It is done in
5240 detect_coding called via decode_coding above. */
5241
5242 /* If a coding system for encoding is not yet decided, we set
5243 it as the same as coding-system for decoding.
5244
5245 But, before doing that we must check if
5246 proc_encode_coding_system[p->outfd] surely points to a
5247 valid memory because p->outfd will be changed once EOF is
5248 sent to the process. */
5249 if (NILP (p->encode_coding_system)
5250 && proc_encode_coding_system[p->outfd])
5251 {
5252 pset_encode_coding_system
5253 (p, coding_inherit_eol_type (Vlast_coding_system_used, Qnil));
5254 setup_coding_system (p->encode_coding_system,
5255 proc_encode_coding_system[p->outfd]);
5256 }
5257 }
5258
5259 if (coding->carryover_bytes > 0)
5260 {
5261 if (SCHARS (p->decoding_buf) < coding->carryover_bytes)
5262 pset_decoding_buf (p, make_uninit_string (coding->carryover_bytes));
5263 memcpy (SDATA (p->decoding_buf), coding->carryover,
5264 coding->carryover_bytes);
5265 p->decoding_carryover = coding->carryover_bytes;
5266 }
5267 if (SBYTES (text) > 0)
5268 /* FIXME: It's wrong to wrap or not based on debug-on-error, and
5269 sometimes it's simply wrong to wrap (e.g. when called from
5270 accept-process-output). */
5271 internal_condition_case_1 (read_process_output_call,
5272 Fcons (outstream,
5273 Fcons (proc, Fcons (text, Qnil))),
5274 !NILP (Vdebug_on_error) ? Qnil : Qerror,
5275 read_process_output_error_handler);
5276
5277 /* If we saved the match data nonrecursively, restore it now. */
5278 restore_search_regs ();
5279 running_asynch_code = outer_running_asynch_code;
5280
5281 /* Restore waiting_for_user_input_p as it was
5282 when we were called, in case the filter clobbered it. */
5283 waiting_for_user_input_p = waiting;
5284
5285 #if 0 /* Call record_asynch_buffer_change unconditionally,
5286 because we might have changed minor modes or other things
5287 that affect key bindings. */
5288 if (! EQ (Fcurrent_buffer (), obuffer)
5289 || ! EQ (current_buffer->keymap, okeymap))
5290 #endif
5291 /* But do it only if the caller is actually going to read events.
5292 Otherwise there's no need to make him wake up, and it could
5293 cause trouble (for example it would make sit_for return). */
5294 if (waiting_for_user_input_p == -1)
5295 record_asynch_buffer_change ();
5296 }
5297
5298 /* If no filter, write into buffer if it isn't dead. */
5299 else if (!NILP (p->buffer) && BUFFER_LIVE_P (XBUFFER (p->buffer)))
5300 {
5301 Lisp_Object old_read_only;
5302 ptrdiff_t old_begv, old_zv;
5303 ptrdiff_t old_begv_byte, old_zv_byte;
5304 ptrdiff_t before, before_byte;
5305 ptrdiff_t opoint_byte;
5306 Lisp_Object text;
5307 struct buffer *b;
5308
5309 Fset_buffer (p->buffer);
5310 opoint = PT;
5311 opoint_byte = PT_BYTE;
5312 old_read_only = BVAR (current_buffer, read_only);
5313 old_begv = BEGV;
5314 old_zv = ZV;
5315 old_begv_byte = BEGV_BYTE;
5316 old_zv_byte = ZV_BYTE;
5317
5318 bset_read_only (current_buffer, Qnil);
5319
5320 /* Insert new output into buffer
5321 at the current end-of-output marker,
5322 thus preserving logical ordering of input and output. */
5323 if (XMARKER (p->mark)->buffer)
5324 SET_PT_BOTH (clip_to_bounds (BEGV,
5325 marker_position (p->mark), ZV),
5326 clip_to_bounds (BEGV_BYTE,
5327 marker_byte_position (p->mark),
5328 ZV_BYTE));
5329 else
5330 SET_PT_BOTH (ZV, ZV_BYTE);
5331 before = PT;
5332 before_byte = PT_BYTE;
5333
5334 /* If the output marker is outside of the visible region, save
5335 the restriction and widen. */
5336 if (! (BEGV <= PT && PT <= ZV))
5337 Fwiden ();
5338
5339 decode_coding_c_string (coding, (unsigned char *) chars, nbytes, Qt);
5340 text = coding->dst_object;
5341 Vlast_coding_system_used = CODING_ID_NAME (coding->id);
5342 /* A new coding system might be found. See the comment in the
5343 similar code in the previous `if' block. */
5344 if (!EQ (p->decode_coding_system, Vlast_coding_system_used))
5345 {
5346 pset_decode_coding_system (p, Vlast_coding_system_used);
5347 if (NILP (p->encode_coding_system)
5348 && proc_encode_coding_system[p->outfd])
5349 {
5350 pset_encode_coding_system
5351 (p, coding_inherit_eol_type (Vlast_coding_system_used, Qnil));
5352 setup_coding_system (p->encode_coding_system,
5353 proc_encode_coding_system[p->outfd]);
5354 }
5355 }
5356 if (coding->carryover_bytes > 0)
5357 {
5358 if (SCHARS (p->decoding_buf) < coding->carryover_bytes)
5359 pset_decoding_buf (p, make_uninit_string (coding->carryover_bytes));
5360 memcpy (SDATA (p->decoding_buf), coding->carryover,
5361 coding->carryover_bytes);
5362 p->decoding_carryover = coding->carryover_bytes;
5363 }
5364 /* Adjust the multibyteness of TEXT to that of the buffer. */
5365 if (NILP (BVAR (current_buffer, enable_multibyte_characters))
5366 != ! STRING_MULTIBYTE (text))
5367 text = (STRING_MULTIBYTE (text)
5368 ? Fstring_as_unibyte (text)
5369 : Fstring_to_multibyte (text));
5370 /* Insert before markers in case we are inserting where
5371 the buffer's mark is, and the user's next command is Meta-y. */
5372 insert_from_string_before_markers (text, 0, 0,
5373 SCHARS (text), SBYTES (text), 0);
5374
5375 /* Make sure the process marker's position is valid when the
5376 process buffer is changed in the signal_after_change above.
5377 W3 is known to do that. */
5378 if (BUFFERP (p->buffer)
5379 && (b = XBUFFER (p->buffer), b != current_buffer))
5380 set_marker_both (p->mark, p->buffer, BUF_PT (b), BUF_PT_BYTE (b));
5381 else
5382 set_marker_both (p->mark, p->buffer, PT, PT_BYTE);
5383
5384 update_mode_lines++;
5385
5386 /* Make sure opoint and the old restrictions
5387 float ahead of any new text just as point would. */
5388 if (opoint >= before)
5389 {
5390 opoint += PT - before;
5391 opoint_byte += PT_BYTE - before_byte;
5392 }
5393 if (old_begv > before)
5394 {
5395 old_begv += PT - before;
5396 old_begv_byte += PT_BYTE - before_byte;
5397 }
5398 if (old_zv >= before)
5399 {
5400 old_zv += PT - before;
5401 old_zv_byte += PT_BYTE - before_byte;
5402 }
5403
5404 /* If the restriction isn't what it should be, set it. */
5405 if (old_begv != BEGV || old_zv != ZV)
5406 Fnarrow_to_region (make_number (old_begv), make_number (old_zv));
5407
5408
5409 bset_read_only (current_buffer, old_read_only);
5410 SET_PT_BOTH (opoint, opoint_byte);
5411 }
5412 /* Handling the process output should not deactivate the mark. */
5413 Vdeactivate_mark = odeactivate;
5414
5415 unbind_to (count, Qnil);
5416 return nbytes;
5417 }
5418 \f
5419 /* Sending data to subprocess */
5420
5421 static sys_jmp_buf send_process_frame;
5422 static Lisp_Object process_sent_to;
5423
5424 static _Noreturn void
5425 handle_pipe_signal (int sig)
5426 {
5427 sigset_t unblocked;
5428 sigemptyset (&unblocked);
5429 sigaddset (&unblocked, SIGPIPE);
5430 pthread_sigmask (SIG_UNBLOCK, &unblocked, 0);
5431 sys_longjmp (send_process_frame, 1);
5432 }
5433
5434 static void
5435 deliver_pipe_signal (int sig)
5436 {
5437 handle_on_main_thread (sig, handle_pipe_signal);
5438 }
5439
5440 /* In send_process, when a write fails temporarily,
5441 wait_reading_process_output is called. It may execute user code,
5442 e.g. timers, that attempts to write new data to the same process.
5443 We must ensure that data is sent in the right order, and not
5444 interspersed half-completed with other writes (Bug#10815). This is
5445 handled by the write_queue element of struct process. It is a list
5446 with each entry having the form
5447
5448 (string . (offset . length))
5449
5450 where STRING is a lisp string, OFFSET is the offset into the
5451 string's byte sequence from which we should begin to send, and
5452 LENGTH is the number of bytes left to send. */
5453
5454 /* Create a new entry in write_queue.
5455 INPUT_OBJ should be a buffer, string Qt, or Qnil.
5456 BUF is a pointer to the string sequence of the input_obj or a C
5457 string in case of Qt or Qnil. */
5458
5459 static void
5460 write_queue_push (struct Lisp_Process *p, Lisp_Object input_obj,
5461 const char *buf, ptrdiff_t len, int front)
5462 {
5463 ptrdiff_t offset;
5464 Lisp_Object entry, obj;
5465
5466 if (STRINGP (input_obj))
5467 {
5468 offset = buf - SSDATA (input_obj);
5469 obj = input_obj;
5470 }
5471 else
5472 {
5473 offset = 0;
5474 obj = make_unibyte_string (buf, len);
5475 }
5476
5477 entry = Fcons (obj, Fcons (make_number (offset), make_number (len)));
5478
5479 if (front)
5480 pset_write_queue (p, Fcons (entry, p->write_queue));
5481 else
5482 pset_write_queue (p, nconc2 (p->write_queue, Fcons (entry, Qnil)));
5483 }
5484
5485 /* Remove the first element in the write_queue of process P, put its
5486 contents in OBJ, BUF and LEN, and return non-zero. If the
5487 write_queue is empty, return zero. */
5488
5489 static int
5490 write_queue_pop (struct Lisp_Process *p, Lisp_Object *obj,
5491 const char **buf, ptrdiff_t *len)
5492 {
5493 Lisp_Object entry, offset_length;
5494 ptrdiff_t offset;
5495
5496 if (NILP (p->write_queue))
5497 return 0;
5498
5499 entry = XCAR (p->write_queue);
5500 pset_write_queue (p, XCDR (p->write_queue));
5501
5502 *obj = XCAR (entry);
5503 offset_length = XCDR (entry);
5504
5505 *len = XINT (XCDR (offset_length));
5506 offset = XINT (XCAR (offset_length));
5507 *buf = SSDATA (*obj) + offset;
5508
5509 return 1;
5510 }
5511
5512 /* Send some data to process PROC.
5513 BUF is the beginning of the data; LEN is the number of characters.
5514 OBJECT is the Lisp object that the data comes from. If OBJECT is
5515 nil or t, it means that the data comes from C string.
5516
5517 If OBJECT is not nil, the data is encoded by PROC's coding-system
5518 for encoding before it is sent.
5519
5520 This function can evaluate Lisp code and can garbage collect. */
5521
5522 static void
5523 send_process (volatile Lisp_Object proc, const char *volatile buf,
5524 volatile ptrdiff_t len, volatile Lisp_Object object)
5525 {
5526 /* Use volatile to protect variables from being clobbered by longjmp. */
5527 struct Lisp_Process *p = XPROCESS (proc);
5528 ssize_t rv;
5529 struct coding_system *coding;
5530 struct sigaction old_sigpipe_action;
5531
5532 if (p->raw_status_new)
5533 update_status (p);
5534 if (! EQ (p->status, Qrun))
5535 error ("Process %s not running", SDATA (p->name));
5536 if (p->outfd < 0)
5537 error ("Output file descriptor of %s is closed", SDATA (p->name));
5538
5539 coding = proc_encode_coding_system[p->outfd];
5540 Vlast_coding_system_used = CODING_ID_NAME (coding->id);
5541
5542 if ((STRINGP (object) && STRING_MULTIBYTE (object))
5543 || (BUFFERP (object)
5544 && !NILP (BVAR (XBUFFER (object), enable_multibyte_characters)))
5545 || EQ (object, Qt))
5546 {
5547 pset_encode_coding_system
5548 (p, complement_process_encoding_system (p->encode_coding_system));
5549 if (!EQ (Vlast_coding_system_used, p->encode_coding_system))
5550 {
5551 /* The coding system for encoding was changed to raw-text
5552 because we sent a unibyte text previously. Now we are
5553 sending a multibyte text, thus we must encode it by the
5554 original coding system specified for the current process.
5555
5556 Another reason we come here is that the coding system
5557 was just complemented and a new one was returned by
5558 complement_process_encoding_system. */
5559 setup_coding_system (p->encode_coding_system, coding);
5560 Vlast_coding_system_used = p->encode_coding_system;
5561 }
5562 coding->src_multibyte = 1;
5563 }
5564 else
5565 {
5566 coding->src_multibyte = 0;
5567 /* For sending a unibyte text, character code conversion should
5568 not take place but EOL conversion should. So, setup raw-text
5569 or one of the subsidiary if we have not yet done it. */
5570 if (CODING_REQUIRE_ENCODING (coding))
5571 {
5572 if (CODING_REQUIRE_FLUSHING (coding))
5573 {
5574 /* But, before changing the coding, we must flush out data. */
5575 coding->mode |= CODING_MODE_LAST_BLOCK;
5576 send_process (proc, "", 0, Qt);
5577 coding->mode &= CODING_MODE_LAST_BLOCK;
5578 }
5579 setup_coding_system (raw_text_coding_system
5580 (Vlast_coding_system_used),
5581 coding);
5582 coding->src_multibyte = 0;
5583 }
5584 }
5585 coding->dst_multibyte = 0;
5586
5587 if (CODING_REQUIRE_ENCODING (coding))
5588 {
5589 coding->dst_object = Qt;
5590 if (BUFFERP (object))
5591 {
5592 ptrdiff_t from_byte, from, to;
5593 ptrdiff_t save_pt, save_pt_byte;
5594 struct buffer *cur = current_buffer;
5595
5596 set_buffer_internal (XBUFFER (object));
5597 save_pt = PT, save_pt_byte = PT_BYTE;
5598
5599 from_byte = PTR_BYTE_POS ((unsigned char *) buf);
5600 from = BYTE_TO_CHAR (from_byte);
5601 to = BYTE_TO_CHAR (from_byte + len);
5602 TEMP_SET_PT_BOTH (from, from_byte);
5603 encode_coding_object (coding, object, from, from_byte,
5604 to, from_byte + len, Qt);
5605 TEMP_SET_PT_BOTH (save_pt, save_pt_byte);
5606 set_buffer_internal (cur);
5607 }
5608 else if (STRINGP (object))
5609 {
5610 encode_coding_object (coding, object, 0, 0, SCHARS (object),
5611 SBYTES (object), Qt);
5612 }
5613 else
5614 {
5615 coding->dst_object = make_unibyte_string (buf, len);
5616 coding->produced = len;
5617 }
5618
5619 len = coding->produced;
5620 object = coding->dst_object;
5621 buf = SSDATA (object);
5622 }
5623
5624 if (pty_max_bytes == 0)
5625 {
5626 #if defined (HAVE_FPATHCONF) && defined (_PC_MAX_CANON)
5627 pty_max_bytes = fpathconf (p->outfd, _PC_MAX_CANON);
5628 if (pty_max_bytes < 0)
5629 pty_max_bytes = 250;
5630 #else
5631 pty_max_bytes = 250;
5632 #endif
5633 /* Deduct one, to leave space for the eof. */
5634 pty_max_bytes--;
5635 }
5636
5637 /* 2000-09-21: Emacs 20.7, sparc-sun-solaris-2.6, GCC 2.95.2,
5638 CFLAGS="-g -O": The value of the parameter `proc' is clobbered
5639 when returning with longjmp despite being declared volatile. */
5640 if (!sys_setjmp (send_process_frame))
5641 {
5642 p = XPROCESS (proc); /* Repair any setjmp clobbering. */
5643 process_sent_to = proc;
5644
5645 /* If there is already data in the write_queue, put the new data
5646 in the back of queue. Otherwise, ignore it. */
5647 if (!NILP (p->write_queue))
5648 write_queue_push (p, object, buf, len, 0);
5649
5650 do /* while !NILP (p->write_queue) */
5651 {
5652 ptrdiff_t cur_len = -1;
5653 const char *cur_buf;
5654 Lisp_Object cur_object;
5655
5656 /* If write_queue is empty, ignore it. */
5657 if (!write_queue_pop (p, &cur_object, &cur_buf, &cur_len))
5658 {
5659 cur_len = len;
5660 cur_buf = buf;
5661 cur_object = object;
5662 }
5663
5664 while (cur_len > 0)
5665 {
5666 /* Send this batch, using one or more write calls. */
5667 ptrdiff_t written = 0;
5668 int outfd = p->outfd;
5669 struct sigaction action;
5670 emacs_sigaction_init (&action, deliver_pipe_signal);
5671 sigaction (SIGPIPE, &action, &old_sigpipe_action);
5672 #ifdef DATAGRAM_SOCKETS
5673 if (DATAGRAM_CHAN_P (outfd))
5674 {
5675 rv = sendto (outfd, cur_buf, cur_len,
5676 0, datagram_address[outfd].sa,
5677 datagram_address[outfd].len);
5678 if (0 <= rv)
5679 written = rv;
5680 else if (errno == EMSGSIZE)
5681 {
5682 sigaction (SIGPIPE, &old_sigpipe_action, 0);
5683 report_file_error ("sending datagram",
5684 Fcons (proc, Qnil));
5685 }
5686 }
5687 else
5688 #endif
5689 {
5690 #ifdef HAVE_GNUTLS
5691 if (p->gnutls_p)
5692 written = emacs_gnutls_write (p, cur_buf, cur_len);
5693 else
5694 #endif
5695 written = emacs_write (outfd, cur_buf, cur_len);
5696 rv = (written ? 0 : -1);
5697 #ifdef ADAPTIVE_READ_BUFFERING
5698 if (p->read_output_delay > 0
5699 && p->adaptive_read_buffering == 1)
5700 {
5701 p->read_output_delay = 0;
5702 process_output_delay_count--;
5703 p->read_output_skip = 0;
5704 }
5705 #endif
5706 }
5707 sigaction (SIGPIPE, &old_sigpipe_action, 0);
5708
5709 if (rv < 0)
5710 {
5711 if (0
5712 #ifdef EWOULDBLOCK
5713 || errno == EWOULDBLOCK
5714 #endif
5715 #ifdef EAGAIN
5716 || errno == EAGAIN
5717 #endif
5718 )
5719 /* Buffer is full. Wait, accepting input;
5720 that may allow the program
5721 to finish doing output and read more. */
5722 {
5723 #ifdef BROKEN_PTY_READ_AFTER_EAGAIN
5724 /* A gross hack to work around a bug in FreeBSD.
5725 In the following sequence, read(2) returns
5726 bogus data:
5727
5728 write(2) 1022 bytes
5729 write(2) 954 bytes, get EAGAIN
5730 read(2) 1024 bytes in process_read_output
5731 read(2) 11 bytes in process_read_output
5732
5733 That is, read(2) returns more bytes than have
5734 ever been written successfully. The 1033 bytes
5735 read are the 1022 bytes written successfully
5736 after processing (for example with CRs added if
5737 the terminal is set up that way which it is
5738 here). The same bytes will be seen again in a
5739 later read(2), without the CRs. */
5740
5741 if (errno == EAGAIN)
5742 {
5743 int flags = FWRITE;
5744 ioctl (p->outfd, TIOCFLUSH, &flags);
5745 }
5746 #endif /* BROKEN_PTY_READ_AFTER_EAGAIN */
5747
5748 /* Put what we should have written in wait_queue. */
5749 write_queue_push (p, cur_object, cur_buf, cur_len, 1);
5750 wait_reading_process_output (0, 20 * 1000 * 1000,
5751 0, 0, Qnil, NULL, 0);
5752 /* Reread queue, to see what is left. */
5753 break;
5754 }
5755 else
5756 /* This is a real error. */
5757 report_file_error ("writing to process", Fcons (proc, Qnil));
5758 }
5759 cur_buf += written;
5760 cur_len -= written;
5761 }
5762 }
5763 while (!NILP (p->write_queue));
5764 }
5765 else
5766 {
5767 sigaction (SIGPIPE, &old_sigpipe_action, 0);
5768 proc = process_sent_to;
5769 p = XPROCESS (proc);
5770 p->raw_status_new = 0;
5771 pset_status (p, Fcons (Qexit, Fcons (make_number (256), Qnil)));
5772 p->tick = ++process_tick;
5773 deactivate_process (proc);
5774 error ("SIGPIPE raised on process %s; closed it", SDATA (p->name));
5775 }
5776 }
5777
5778 DEFUN ("process-send-region", Fprocess_send_region, Sprocess_send_region,
5779 3, 3, 0,
5780 doc: /* Send current contents of region as input to PROCESS.
5781 PROCESS may be a process, a buffer, the name of a process or buffer, or
5782 nil, indicating the current buffer's process.
5783 Called from program, takes three arguments, PROCESS, START and END.
5784 If the region is more than 500 characters long,
5785 it is sent in several bunches. This may happen even for shorter regions.
5786 Output from processes can arrive in between bunches. */)
5787 (Lisp_Object process, Lisp_Object start, Lisp_Object end)
5788 {
5789 Lisp_Object proc;
5790 ptrdiff_t start1, end1;
5791
5792 proc = get_process (process);
5793 validate_region (&start, &end);
5794
5795 if (XINT (start) < GPT && XINT (end) > GPT)
5796 move_gap (XINT (start));
5797
5798 start1 = CHAR_TO_BYTE (XINT (start));
5799 end1 = CHAR_TO_BYTE (XINT (end));
5800 send_process (proc, (char *) BYTE_POS_ADDR (start1), end1 - start1,
5801 Fcurrent_buffer ());
5802
5803 return Qnil;
5804 }
5805
5806 DEFUN ("process-send-string", Fprocess_send_string, Sprocess_send_string,
5807 2, 2, 0,
5808 doc: /* Send PROCESS the contents of STRING as input.
5809 PROCESS may be a process, a buffer, the name of a process or buffer, or
5810 nil, indicating the current buffer's process.
5811 If STRING is more than 500 characters long,
5812 it is sent in several bunches. This may happen even for shorter strings.
5813 Output from processes can arrive in between bunches. */)
5814 (Lisp_Object process, Lisp_Object string)
5815 {
5816 Lisp_Object proc;
5817 CHECK_STRING (string);
5818 proc = get_process (process);
5819 send_process (proc, SSDATA (string),
5820 SBYTES (string), string);
5821 return Qnil;
5822 }
5823 \f
5824 /* Return the foreground process group for the tty/pty that
5825 the process P uses. */
5826 static pid_t
5827 emacs_get_tty_pgrp (struct Lisp_Process *p)
5828 {
5829 pid_t gid = -1;
5830
5831 #ifdef TIOCGPGRP
5832 if (ioctl (p->infd, TIOCGPGRP, &gid) == -1 && ! NILP (p->tty_name))
5833 {
5834 int fd;
5835 /* Some OS:es (Solaris 8/9) does not allow TIOCGPGRP from the
5836 master side. Try the slave side. */
5837 fd = emacs_open (SSDATA (p->tty_name), O_RDONLY, 0);
5838
5839 if (fd != -1)
5840 {
5841 ioctl (fd, TIOCGPGRP, &gid);
5842 emacs_close (fd);
5843 }
5844 }
5845 #endif /* defined (TIOCGPGRP ) */
5846
5847 return gid;
5848 }
5849
5850 DEFUN ("process-running-child-p", Fprocess_running_child_p,
5851 Sprocess_running_child_p, 0, 1, 0,
5852 doc: /* Return t if PROCESS has given the terminal to a child.
5853 If the operating system does not make it possible to find out,
5854 return t unconditionally. */)
5855 (Lisp_Object process)
5856 {
5857 /* Initialize in case ioctl doesn't exist or gives an error,
5858 in a way that will cause returning t. */
5859 pid_t gid;
5860 Lisp_Object proc;
5861 struct Lisp_Process *p;
5862
5863 proc = get_process (process);
5864 p = XPROCESS (proc);
5865
5866 if (!EQ (p->type, Qreal))
5867 error ("Process %s is not a subprocess",
5868 SDATA (p->name));
5869 if (p->infd < 0)
5870 error ("Process %s is not active",
5871 SDATA (p->name));
5872
5873 gid = emacs_get_tty_pgrp (p);
5874
5875 if (gid == p->pid)
5876 return Qnil;
5877 return Qt;
5878 }
5879 \f
5880 /* send a signal number SIGNO to PROCESS.
5881 If CURRENT_GROUP is t, that means send to the process group
5882 that currently owns the terminal being used to communicate with PROCESS.
5883 This is used for various commands in shell mode.
5884 If CURRENT_GROUP is lambda, that means send to the process group
5885 that currently owns the terminal, but only if it is NOT the shell itself.
5886
5887 If NOMSG is zero, insert signal-announcements into process's buffers
5888 right away.
5889
5890 If we can, we try to signal PROCESS by sending control characters
5891 down the pty. This allows us to signal inferiors who have changed
5892 their uid, for which killpg would return an EPERM error. */
5893
5894 static void
5895 process_send_signal (Lisp_Object process, int signo, Lisp_Object current_group,
5896 int nomsg)
5897 {
5898 Lisp_Object proc;
5899 register struct Lisp_Process *p;
5900 pid_t gid;
5901 int no_pgrp = 0;
5902
5903 proc = get_process (process);
5904 p = XPROCESS (proc);
5905
5906 if (!EQ (p->type, Qreal))
5907 error ("Process %s is not a subprocess",
5908 SDATA (p->name));
5909 if (p->infd < 0)
5910 error ("Process %s is not active",
5911 SDATA (p->name));
5912
5913 if (!p->pty_flag)
5914 current_group = Qnil;
5915
5916 /* If we are using pgrps, get a pgrp number and make it negative. */
5917 if (NILP (current_group))
5918 /* Send the signal to the shell's process group. */
5919 gid = p->pid;
5920 else
5921 {
5922 #ifdef SIGNALS_VIA_CHARACTERS
5923 /* If possible, send signals to the entire pgrp
5924 by sending an input character to it. */
5925
5926 struct termios t;
5927 cc_t *sig_char = NULL;
5928
5929 tcgetattr (p->infd, &t);
5930
5931 switch (signo)
5932 {
5933 case SIGINT:
5934 sig_char = &t.c_cc[VINTR];
5935 break;
5936
5937 case SIGQUIT:
5938 sig_char = &t.c_cc[VQUIT];
5939 break;
5940
5941 case SIGTSTP:
5942 #if defined (VSWTCH) && !defined (PREFER_VSUSP)
5943 sig_char = &t.c_cc[VSWTCH];
5944 #else
5945 sig_char = &t.c_cc[VSUSP];
5946 #endif
5947 break;
5948 }
5949
5950 if (sig_char && *sig_char != CDISABLE)
5951 {
5952 send_process (proc, (char *) sig_char, 1, Qnil);
5953 return;
5954 }
5955 /* If we can't send the signal with a character,
5956 fall through and send it another way. */
5957
5958 /* The code above may fall through if it can't
5959 handle the signal. */
5960 #endif /* defined (SIGNALS_VIA_CHARACTERS) */
5961
5962 #ifdef TIOCGPGRP
5963 /* Get the current pgrp using the tty itself, if we have that.
5964 Otherwise, use the pty to get the pgrp.
5965 On pfa systems, saka@pfu.fujitsu.co.JP writes:
5966 "TIOCGPGRP symbol defined in sys/ioctl.h at E50.
5967 But, TIOCGPGRP does not work on E50 ;-P works fine on E60"
5968 His patch indicates that if TIOCGPGRP returns an error, then
5969 we should just assume that p->pid is also the process group id. */
5970
5971 gid = emacs_get_tty_pgrp (p);
5972
5973 if (gid == -1)
5974 /* If we can't get the information, assume
5975 the shell owns the tty. */
5976 gid = p->pid;
5977
5978 /* It is not clear whether anything really can set GID to -1.
5979 Perhaps on some system one of those ioctls can or could do so.
5980 Or perhaps this is vestigial. */
5981 if (gid == -1)
5982 no_pgrp = 1;
5983 #else /* ! defined (TIOCGPGRP ) */
5984 /* Can't select pgrps on this system, so we know that
5985 the child itself heads the pgrp. */
5986 gid = p->pid;
5987 #endif /* ! defined (TIOCGPGRP ) */
5988
5989 /* If current_group is lambda, and the shell owns the terminal,
5990 don't send any signal. */
5991 if (EQ (current_group, Qlambda) && gid == p->pid)
5992 return;
5993 }
5994
5995 switch (signo)
5996 {
5997 #ifdef SIGCONT
5998 case SIGCONT:
5999 p->raw_status_new = 0;
6000 pset_status (p, Qrun);
6001 p->tick = ++process_tick;
6002 if (!nomsg)
6003 {
6004 status_notify (NULL);
6005 redisplay_preserve_echo_area (13);
6006 }
6007 break;
6008 #endif /* ! defined (SIGCONT) */
6009 case SIGINT:
6010 case SIGQUIT:
6011 case SIGKILL:
6012 flush_pending_output (p->infd);
6013 break;
6014 }
6015
6016 /* If we don't have process groups, send the signal to the immediate
6017 subprocess. That isn't really right, but it's better than any
6018 obvious alternative. */
6019 if (no_pgrp)
6020 {
6021 kill (p->pid, signo);
6022 return;
6023 }
6024
6025 /* gid may be a pid, or minus a pgrp's number */
6026 #ifdef TIOCSIGSEND
6027 if (!NILP (current_group))
6028 {
6029 if (ioctl (p->infd, TIOCSIGSEND, signo) == -1)
6030 EMACS_KILLPG (gid, signo);
6031 }
6032 else
6033 {
6034 gid = - p->pid;
6035 kill (gid, signo);
6036 }
6037 #else /* ! defined (TIOCSIGSEND) */
6038 EMACS_KILLPG (gid, signo);
6039 #endif /* ! defined (TIOCSIGSEND) */
6040 }
6041
6042 DEFUN ("interrupt-process", Finterrupt_process, Sinterrupt_process, 0, 2, 0,
6043 doc: /* Interrupt process PROCESS.
6044 PROCESS may be a process, a buffer, or the name of a process or buffer.
6045 No arg or nil means current buffer's process.
6046 Second arg CURRENT-GROUP non-nil means send signal to
6047 the current process-group of the process's controlling terminal
6048 rather than to the process's own process group.
6049 If the process is a shell, this means interrupt current subjob
6050 rather than the shell.
6051
6052 If CURRENT-GROUP is `lambda', and if the shell owns the terminal,
6053 don't send the signal. */)
6054 (Lisp_Object process, Lisp_Object current_group)
6055 {
6056 process_send_signal (process, SIGINT, current_group, 0);
6057 return process;
6058 }
6059
6060 DEFUN ("kill-process", Fkill_process, Skill_process, 0, 2, 0,
6061 doc: /* Kill process PROCESS. May be process or name of one.
6062 See function `interrupt-process' for more details on usage. */)
6063 (Lisp_Object process, Lisp_Object current_group)
6064 {
6065 process_send_signal (process, SIGKILL, current_group, 0);
6066 return process;
6067 }
6068
6069 DEFUN ("quit-process", Fquit_process, Squit_process, 0, 2, 0,
6070 doc: /* Send QUIT signal to process PROCESS. May be process or name of one.
6071 See function `interrupt-process' for more details on usage. */)
6072 (Lisp_Object process, Lisp_Object current_group)
6073 {
6074 process_send_signal (process, SIGQUIT, current_group, 0);
6075 return process;
6076 }
6077
6078 DEFUN ("stop-process", Fstop_process, Sstop_process, 0, 2, 0,
6079 doc: /* Stop process PROCESS. May be process or name of one.
6080 See function `interrupt-process' for more details on usage.
6081 If PROCESS is a network or serial process, inhibit handling of incoming
6082 traffic. */)
6083 (Lisp_Object process, Lisp_Object current_group)
6084 {
6085 if (PROCESSP (process) && (NETCONN_P (process) || SERIALCONN_P (process)))
6086 {
6087 struct Lisp_Process *p;
6088
6089 p = XPROCESS (process);
6090 if (NILP (p->command)
6091 && p->infd >= 0)
6092 {
6093 FD_CLR (p->infd, &input_wait_mask);
6094 FD_CLR (p->infd, &non_keyboard_wait_mask);
6095 }
6096 pset_command (p, Qt);
6097 return process;
6098 }
6099 #ifndef SIGTSTP
6100 error ("No SIGTSTP support");
6101 #else
6102 process_send_signal (process, SIGTSTP, current_group, 0);
6103 #endif
6104 return process;
6105 }
6106
6107 DEFUN ("continue-process", Fcontinue_process, Scontinue_process, 0, 2, 0,
6108 doc: /* Continue process PROCESS. May be process or name of one.
6109 See function `interrupt-process' for more details on usage.
6110 If PROCESS is a network or serial process, resume handling of incoming
6111 traffic. */)
6112 (Lisp_Object process, Lisp_Object current_group)
6113 {
6114 if (PROCESSP (process) && (NETCONN_P (process) || SERIALCONN_P (process)))
6115 {
6116 struct Lisp_Process *p;
6117
6118 p = XPROCESS (process);
6119 if (EQ (p->command, Qt)
6120 && p->infd >= 0
6121 && (!EQ (p->filter, Qt) || EQ (p->status, Qlisten)))
6122 {
6123 FD_SET (p->infd, &input_wait_mask);
6124 FD_SET (p->infd, &non_keyboard_wait_mask);
6125 #ifdef WINDOWSNT
6126 if (fd_info[ p->infd ].flags & FILE_SERIAL)
6127 PurgeComm (fd_info[ p->infd ].hnd, PURGE_RXABORT | PURGE_RXCLEAR);
6128 #else /* not WINDOWSNT */
6129 tcflush (p->infd, TCIFLUSH);
6130 #endif /* not WINDOWSNT */
6131 }
6132 pset_command (p, Qnil);
6133 return process;
6134 }
6135 #ifdef SIGCONT
6136 process_send_signal (process, SIGCONT, current_group, 0);
6137 #else
6138 error ("No SIGCONT support");
6139 #endif
6140 return process;
6141 }
6142
6143 DEFUN ("signal-process", Fsignal_process, Ssignal_process,
6144 2, 2, "sProcess (name or number): \nnSignal code: ",
6145 doc: /* Send PROCESS the signal with code SIGCODE.
6146 PROCESS may also be a number specifying the process id of the
6147 process to signal; in this case, the process need not be a child of
6148 this Emacs.
6149 SIGCODE may be an integer, or a symbol whose name is a signal name. */)
6150 (Lisp_Object process, Lisp_Object sigcode)
6151 {
6152 pid_t pid;
6153
6154 if (STRINGP (process))
6155 {
6156 Lisp_Object tem = Fget_process (process);
6157 if (NILP (tem))
6158 {
6159 Lisp_Object process_number =
6160 string_to_number (SSDATA (process), 10, 1);
6161 if (INTEGERP (process_number) || FLOATP (process_number))
6162 tem = process_number;
6163 }
6164 process = tem;
6165 }
6166 else if (!NUMBERP (process))
6167 process = get_process (process);
6168
6169 if (NILP (process))
6170 return process;
6171
6172 if (NUMBERP (process))
6173 CONS_TO_INTEGER (process, pid_t, pid);
6174 else
6175 {
6176 CHECK_PROCESS (process);
6177 pid = XPROCESS (process)->pid;
6178 if (pid <= 0)
6179 error ("Cannot signal process %s", SDATA (XPROCESS (process)->name));
6180 }
6181
6182 #define parse_signal(NAME, VALUE) \
6183 else if (!xstrcasecmp (name, NAME)) \
6184 XSETINT (sigcode, VALUE)
6185
6186 if (INTEGERP (sigcode))
6187 CHECK_TYPE_RANGED_INTEGER (int, sigcode);
6188 else
6189 {
6190 char *name;
6191
6192 CHECK_SYMBOL (sigcode);
6193 name = SSDATA (SYMBOL_NAME (sigcode));
6194
6195 if (!strncmp (name, "SIG", 3) || !strncmp (name, "sig", 3))
6196 name += 3;
6197
6198 if (0)
6199 ;
6200 #ifdef SIGUSR1
6201 parse_signal ("usr1", SIGUSR1);
6202 #endif
6203 #ifdef SIGUSR2
6204 parse_signal ("usr2", SIGUSR2);
6205 #endif
6206 #ifdef SIGTERM
6207 parse_signal ("term", SIGTERM);
6208 #endif
6209 #ifdef SIGHUP
6210 parse_signal ("hup", SIGHUP);
6211 #endif
6212 #ifdef SIGINT
6213 parse_signal ("int", SIGINT);
6214 #endif
6215 #ifdef SIGQUIT
6216 parse_signal ("quit", SIGQUIT);
6217 #endif
6218 #ifdef SIGILL
6219 parse_signal ("ill", SIGILL);
6220 #endif
6221 #ifdef SIGABRT
6222 parse_signal ("abrt", SIGABRT);
6223 #endif
6224 #ifdef SIGEMT
6225 parse_signal ("emt", SIGEMT);
6226 #endif
6227 #ifdef SIGKILL
6228 parse_signal ("kill", SIGKILL);
6229 #endif
6230 #ifdef SIGFPE
6231 parse_signal ("fpe", SIGFPE);
6232 #endif
6233 #ifdef SIGBUS
6234 parse_signal ("bus", SIGBUS);
6235 #endif
6236 #ifdef SIGSEGV
6237 parse_signal ("segv", SIGSEGV);
6238 #endif
6239 #ifdef SIGSYS
6240 parse_signal ("sys", SIGSYS);
6241 #endif
6242 #ifdef SIGPIPE
6243 parse_signal ("pipe", SIGPIPE);
6244 #endif
6245 #ifdef SIGALRM
6246 parse_signal ("alrm", SIGALRM);
6247 #endif
6248 #ifdef SIGURG
6249 parse_signal ("urg", SIGURG);
6250 #endif
6251 #ifdef SIGSTOP
6252 parse_signal ("stop", SIGSTOP);
6253 #endif
6254 #ifdef SIGTSTP
6255 parse_signal ("tstp", SIGTSTP);
6256 #endif
6257 #ifdef SIGCONT
6258 parse_signal ("cont", SIGCONT);
6259 #endif
6260 #ifdef SIGCHLD
6261 parse_signal ("chld", SIGCHLD);
6262 #endif
6263 #ifdef SIGTTIN
6264 parse_signal ("ttin", SIGTTIN);
6265 #endif
6266 #ifdef SIGTTOU
6267 parse_signal ("ttou", SIGTTOU);
6268 #endif
6269 #ifdef SIGIO
6270 parse_signal ("io", SIGIO);
6271 #endif
6272 #ifdef SIGXCPU
6273 parse_signal ("xcpu", SIGXCPU);
6274 #endif
6275 #ifdef SIGXFSZ
6276 parse_signal ("xfsz", SIGXFSZ);
6277 #endif
6278 #ifdef SIGVTALRM
6279 parse_signal ("vtalrm", SIGVTALRM);
6280 #endif
6281 #ifdef SIGPROF
6282 parse_signal ("prof", SIGPROF);
6283 #endif
6284 #ifdef SIGWINCH
6285 parse_signal ("winch", SIGWINCH);
6286 #endif
6287 #ifdef SIGINFO
6288 parse_signal ("info", SIGINFO);
6289 #endif
6290 else
6291 error ("Undefined signal name %s", name);
6292 }
6293
6294 #undef parse_signal
6295
6296 return make_number (kill (pid, XINT (sigcode)));
6297 }
6298
6299 DEFUN ("process-send-eof", Fprocess_send_eof, Sprocess_send_eof, 0, 1, 0,
6300 doc: /* Make PROCESS see end-of-file in its input.
6301 EOF comes after any text already sent to it.
6302 PROCESS may be a process, a buffer, the name of a process or buffer, or
6303 nil, indicating the current buffer's process.
6304 If PROCESS is a network connection, or is a process communicating
6305 through a pipe (as opposed to a pty), then you cannot send any more
6306 text to PROCESS after you call this function.
6307 If PROCESS is a serial process, wait until all output written to the
6308 process has been transmitted to the serial port. */)
6309 (Lisp_Object process)
6310 {
6311 Lisp_Object proc;
6312 struct coding_system *coding;
6313
6314 if (DATAGRAM_CONN_P (process))
6315 return process;
6316
6317 proc = get_process (process);
6318 coding = proc_encode_coding_system[XPROCESS (proc)->outfd];
6319
6320 /* Make sure the process is really alive. */
6321 if (XPROCESS (proc)->raw_status_new)
6322 update_status (XPROCESS (proc));
6323 if (! EQ (XPROCESS (proc)->status, Qrun))
6324 error ("Process %s not running", SDATA (XPROCESS (proc)->name));
6325
6326 if (CODING_REQUIRE_FLUSHING (coding))
6327 {
6328 coding->mode |= CODING_MODE_LAST_BLOCK;
6329 send_process (proc, "", 0, Qnil);
6330 }
6331
6332 if (XPROCESS (proc)->pty_flag)
6333 send_process (proc, "\004", 1, Qnil);
6334 else if (EQ (XPROCESS (proc)->type, Qserial))
6335 {
6336 #ifndef WINDOWSNT
6337 if (tcdrain (XPROCESS (proc)->outfd) != 0)
6338 error ("tcdrain() failed: %s", emacs_strerror (errno));
6339 #endif /* not WINDOWSNT */
6340 /* Do nothing on Windows because writes are blocking. */
6341 }
6342 else
6343 {
6344 int old_outfd, new_outfd;
6345
6346 #ifdef HAVE_SHUTDOWN
6347 /* If this is a network connection, or socketpair is used
6348 for communication with the subprocess, call shutdown to cause EOF.
6349 (In some old system, shutdown to socketpair doesn't work.
6350 Then we just can't win.) */
6351 if (EQ (XPROCESS (proc)->type, Qnetwork)
6352 || XPROCESS (proc)->outfd == XPROCESS (proc)->infd)
6353 shutdown (XPROCESS (proc)->outfd, 1);
6354 /* In case of socketpair, outfd == infd, so don't close it. */
6355 if (XPROCESS (proc)->outfd != XPROCESS (proc)->infd)
6356 emacs_close (XPROCESS (proc)->outfd);
6357 #else /* not HAVE_SHUTDOWN */
6358 emacs_close (XPROCESS (proc)->outfd);
6359 #endif /* not HAVE_SHUTDOWN */
6360 new_outfd = emacs_open (NULL_DEVICE, O_WRONLY, 0);
6361 if (new_outfd < 0)
6362 emacs_abort ();
6363 old_outfd = XPROCESS (proc)->outfd;
6364
6365 if (!proc_encode_coding_system[new_outfd])
6366 proc_encode_coding_system[new_outfd]
6367 = xmalloc (sizeof (struct coding_system));
6368 *proc_encode_coding_system[new_outfd]
6369 = *proc_encode_coding_system[old_outfd];
6370 memset (proc_encode_coding_system[old_outfd], 0,
6371 sizeof (struct coding_system));
6372
6373 XPROCESS (proc)->outfd = new_outfd;
6374 }
6375 return process;
6376 }
6377 \f
6378 /* On receipt of a signal that a child status has changed, loop asking
6379 about children with changed statuses until the system says there
6380 are no more.
6381
6382 All we do is change the status; we do not run sentinels or print
6383 notifications. That is saved for the next time keyboard input is
6384 done, in order to avoid timing errors.
6385
6386 ** WARNING: this can be called during garbage collection.
6387 Therefore, it must not be fooled by the presence of mark bits in
6388 Lisp objects.
6389
6390 ** USG WARNING: Although it is not obvious from the documentation
6391 in signal(2), on a USG system the SIGCLD handler MUST NOT call
6392 signal() before executing at least one wait(), otherwise the
6393 handler will be called again, resulting in an infinite loop. The
6394 relevant portion of the documentation reads "SIGCLD signals will be
6395 queued and the signal-catching function will be continually
6396 reentered until the queue is empty". Invoking signal() causes the
6397 kernel to reexamine the SIGCLD queue. Fred Fish, UniSoft Systems
6398 Inc.
6399
6400 ** Malloc WARNING: This should never call malloc either directly or
6401 indirectly; if it does, that is a bug */
6402
6403 #ifdef SIGCHLD
6404
6405 /* Record one child's changed status. Return true if a child was found. */
6406 static bool
6407 record_child_status_change (void)
6408 {
6409 Lisp_Object proc;
6410 struct Lisp_Process *p;
6411 pid_t pid;
6412 int w;
6413 Lisp_Object tail;
6414
6415 do
6416 pid = waitpid (-1, &w, WNOHANG | WUNTRACED);
6417 while (pid < 0 && errno == EINTR);
6418
6419 /* PID == 0 means no processes found, PID == -1 means a real failure.
6420 Either way, we have done all our job. */
6421 if (pid <= 0)
6422 return false;
6423
6424 /* Find the process that signaled us, and record its status. */
6425
6426 /* The process can have been deleted by Fdelete_process. */
6427 for (tail = deleted_pid_list; CONSP (tail); tail = XCDR (tail))
6428 {
6429 Lisp_Object xpid = XCAR (tail);
6430 if ((INTEGERP (xpid) && pid == XINT (xpid))
6431 || (FLOATP (xpid) && pid == XFLOAT_DATA (xpid)))
6432 {
6433 XSETCAR (tail, Qnil);
6434 return true;
6435 }
6436 }
6437
6438 /* Otherwise, if it is asynchronous, it is in Vprocess_alist. */
6439 p = 0;
6440 for (tail = Vprocess_alist; CONSP (tail); tail = XCDR (tail))
6441 {
6442 proc = XCDR (XCAR (tail));
6443 p = XPROCESS (proc);
6444 if (EQ (p->type, Qreal) && p->pid == pid)
6445 break;
6446 p = 0;
6447 }
6448
6449 /* Look for an asynchronous process whose pid hasn't been filled
6450 in yet. */
6451 if (! p)
6452 for (tail = Vprocess_alist; CONSP (tail); tail = XCDR (tail))
6453 {
6454 proc = XCDR (XCAR (tail));
6455 p = XPROCESS (proc);
6456 if (p->pid == -1)
6457 break;
6458 p = 0;
6459 }
6460
6461 /* Change the status of the process that was found. */
6462 if (p)
6463 {
6464 int clear_desc_flag = 0;
6465
6466 p->tick = ++process_tick;
6467 p->raw_status = w;
6468 p->raw_status_new = 1;
6469
6470 /* If process has terminated, stop waiting for its output. */
6471 if ((WIFSIGNALED (w) || WIFEXITED (w))
6472 && p->infd >= 0)
6473 clear_desc_flag = 1;
6474
6475 /* We use clear_desc_flag to avoid a compiler bug in Microsoft C. */
6476 if (clear_desc_flag)
6477 {
6478 FD_CLR (p->infd, &input_wait_mask);
6479 FD_CLR (p->infd, &non_keyboard_wait_mask);
6480 }
6481
6482 /* Tell wait_reading_process_output that it needs to wake up and
6483 look around. */
6484 if (input_available_clear_time)
6485 *input_available_clear_time = make_emacs_time (0, 0);
6486 }
6487 /* There was no asynchronous process found for that pid: we have
6488 a synchronous process. */
6489 else
6490 {
6491 synch_process_alive = 0;
6492
6493 /* Report the status of the synchronous process. */
6494 if (WIFEXITED (w))
6495 synch_process_retcode = WEXITSTATUS (w);
6496 else if (WIFSIGNALED (w))
6497 synch_process_termsig = WTERMSIG (w);
6498
6499 /* Tell wait_reading_process_output that it needs to wake up and
6500 look around. */
6501 if (input_available_clear_time)
6502 *input_available_clear_time = make_emacs_time (0, 0);
6503 }
6504
6505 return true;
6506 }
6507
6508 /* On some systems, the SIGCHLD handler must return right away. If
6509 any more processes want to signal us, we will get another signal.
6510 Otherwise, loop around to use up all the processes that have
6511 something to tell us. */
6512 #if (defined WINDOWSNT \
6513 || (defined USG && !defined GNU_LINUX \
6514 && !(defined HPUX && defined WNOHANG)))
6515 enum { CAN_HANDLE_MULTIPLE_CHILDREN = 0 };
6516 #else
6517 enum { CAN_HANDLE_MULTIPLE_CHILDREN = 1 };
6518 #endif
6519
6520 static void
6521 handle_child_signal (int sig)
6522 {
6523 while (record_child_status_change () && CAN_HANDLE_MULTIPLE_CHILDREN)
6524 continue;
6525 }
6526
6527 static void
6528 deliver_child_signal (int sig)
6529 {
6530 handle_on_main_thread (sig, handle_child_signal);
6531 }
6532
6533 #endif /* SIGCHLD */
6534 \f
6535
6536 static Lisp_Object
6537 exec_sentinel_unwind (Lisp_Object data)
6538 {
6539 pset_sentinel (XPROCESS (XCAR (data)), XCDR (data));
6540 return Qnil;
6541 }
6542
6543 static Lisp_Object
6544 exec_sentinel_error_handler (Lisp_Object error_val)
6545 {
6546 cmd_error_internal (error_val, "error in process sentinel: ");
6547 Vinhibit_quit = Qt;
6548 update_echo_area ();
6549 Fsleep_for (make_number (2), Qnil);
6550 return Qt;
6551 }
6552
6553 static void
6554 exec_sentinel (Lisp_Object proc, Lisp_Object reason)
6555 {
6556 Lisp_Object sentinel, odeactivate;
6557 struct Lisp_Process *p = XPROCESS (proc);
6558 ptrdiff_t count = SPECPDL_INDEX ();
6559 bool outer_running_asynch_code = running_asynch_code;
6560 int waiting = waiting_for_user_input_p;
6561
6562 if (inhibit_sentinels)
6563 return;
6564
6565 /* No need to gcpro these, because all we do with them later
6566 is test them for EQness, and none of them should be a string. */
6567 odeactivate = Vdeactivate_mark;
6568 #if 0
6569 Lisp_Object obuffer, okeymap;
6570 XSETBUFFER (obuffer, current_buffer);
6571 okeymap = BVAR (current_buffer, keymap);
6572 #endif
6573
6574 /* There's no good reason to let sentinels change the current
6575 buffer, and many callers of accept-process-output, sit-for, and
6576 friends don't expect current-buffer to be changed from under them. */
6577 record_unwind_current_buffer ();
6578
6579 sentinel = p->sentinel;
6580 if (NILP (sentinel))
6581 return;
6582
6583 /* Zilch the sentinel while it's running, to avoid recursive invocations;
6584 assure that it gets restored no matter how the sentinel exits. */
6585 pset_sentinel (p, Qnil);
6586 record_unwind_protect (exec_sentinel_unwind, Fcons (proc, sentinel));
6587 /* Inhibit quit so that random quits don't screw up a running filter. */
6588 specbind (Qinhibit_quit, Qt);
6589 specbind (Qlast_nonmenu_event, Qt); /* Why? --Stef */
6590
6591 /* In case we get recursively called,
6592 and we already saved the match data nonrecursively,
6593 save the same match data in safely recursive fashion. */
6594 if (outer_running_asynch_code)
6595 {
6596 Lisp_Object tem;
6597 tem = Fmatch_data (Qnil, Qnil, Qnil);
6598 restore_search_regs ();
6599 record_unwind_save_match_data ();
6600 Fset_match_data (tem, Qt);
6601 }
6602
6603 /* For speed, if a search happens within this code,
6604 save the match data in a special nonrecursive fashion. */
6605 running_asynch_code = 1;
6606
6607 internal_condition_case_1 (read_process_output_call,
6608 Fcons (sentinel,
6609 Fcons (proc, Fcons (reason, Qnil))),
6610 !NILP (Vdebug_on_error) ? Qnil : Qerror,
6611 exec_sentinel_error_handler);
6612
6613 /* If we saved the match data nonrecursively, restore it now. */
6614 restore_search_regs ();
6615 running_asynch_code = outer_running_asynch_code;
6616
6617 Vdeactivate_mark = odeactivate;
6618
6619 /* Restore waiting_for_user_input_p as it was
6620 when we were called, in case the filter clobbered it. */
6621 waiting_for_user_input_p = waiting;
6622
6623 #if 0
6624 if (! EQ (Fcurrent_buffer (), obuffer)
6625 || ! EQ (current_buffer->keymap, okeymap))
6626 #endif
6627 /* But do it only if the caller is actually going to read events.
6628 Otherwise there's no need to make him wake up, and it could
6629 cause trouble (for example it would make sit_for return). */
6630 if (waiting_for_user_input_p == -1)
6631 record_asynch_buffer_change ();
6632
6633 unbind_to (count, Qnil);
6634 }
6635
6636 /* Report all recent events of a change in process status
6637 (either run the sentinel or output a message).
6638 This is usually done while Emacs is waiting for keyboard input
6639 but can be done at other times. */
6640
6641 static void
6642 status_notify (struct Lisp_Process *deleting_process)
6643 {
6644 register Lisp_Object proc, buffer;
6645 Lisp_Object tail, msg;
6646 struct gcpro gcpro1, gcpro2;
6647
6648 tail = Qnil;
6649 msg = Qnil;
6650 /* We need to gcpro tail; if read_process_output calls a filter
6651 which deletes a process and removes the cons to which tail points
6652 from Vprocess_alist, and then causes a GC, tail is an unprotected
6653 reference. */
6654 GCPRO2 (tail, msg);
6655
6656 /* Set this now, so that if new processes are created by sentinels
6657 that we run, we get called again to handle their status changes. */
6658 update_tick = process_tick;
6659
6660 for (tail = Vprocess_alist; CONSP (tail); tail = XCDR (tail))
6661 {
6662 Lisp_Object symbol;
6663 register struct Lisp_Process *p;
6664
6665 proc = Fcdr (XCAR (tail));
6666 p = XPROCESS (proc);
6667
6668 if (p->tick != p->update_tick)
6669 {
6670 p->update_tick = p->tick;
6671
6672 /* If process is still active, read any output that remains. */
6673 while (! EQ (p->filter, Qt)
6674 && ! EQ (p->status, Qconnect)
6675 && ! EQ (p->status, Qlisten)
6676 /* Network or serial process not stopped: */
6677 && ! EQ (p->command, Qt)
6678 && p->infd >= 0
6679 && p != deleting_process
6680 && read_process_output (proc, p->infd) > 0);
6681
6682 buffer = p->buffer;
6683
6684 /* Get the text to use for the message. */
6685 if (p->raw_status_new)
6686 update_status (p);
6687 msg = status_message (p);
6688
6689 /* If process is terminated, deactivate it or delete it. */
6690 symbol = p->status;
6691 if (CONSP (p->status))
6692 symbol = XCAR (p->status);
6693
6694 if (EQ (symbol, Qsignal) || EQ (symbol, Qexit)
6695 || EQ (symbol, Qclosed))
6696 {
6697 if (delete_exited_processes)
6698 remove_process (proc);
6699 else
6700 deactivate_process (proc);
6701 }
6702
6703 /* The actions above may have further incremented p->tick.
6704 So set p->update_tick again
6705 so that an error in the sentinel will not cause
6706 this code to be run again. */
6707 p->update_tick = p->tick;
6708 /* Now output the message suitably. */
6709 if (!NILP (p->sentinel))
6710 exec_sentinel (proc, msg);
6711 /* Don't bother with a message in the buffer
6712 when a process becomes runnable. */
6713 else if (!EQ (symbol, Qrun) && !NILP (buffer))
6714 {
6715 Lisp_Object tem;
6716 struct buffer *old = current_buffer;
6717 ptrdiff_t opoint, opoint_byte;
6718 ptrdiff_t before, before_byte;
6719
6720 /* Avoid error if buffer is deleted
6721 (probably that's why the process is dead, too) */
6722 if (!BUFFER_LIVE_P (XBUFFER (buffer)))
6723 continue;
6724 Fset_buffer (buffer);
6725
6726 opoint = PT;
6727 opoint_byte = PT_BYTE;
6728 /* Insert new output into buffer
6729 at the current end-of-output marker,
6730 thus preserving logical ordering of input and output. */
6731 if (XMARKER (p->mark)->buffer)
6732 Fgoto_char (p->mark);
6733 else
6734 SET_PT_BOTH (ZV, ZV_BYTE);
6735
6736 before = PT;
6737 before_byte = PT_BYTE;
6738
6739 tem = BVAR (current_buffer, read_only);
6740 bset_read_only (current_buffer, Qnil);
6741 insert_string ("\nProcess ");
6742 { /* FIXME: temporary kludge */
6743 Lisp_Object tem2 = p->name; Finsert (1, &tem2); }
6744 insert_string (" ");
6745 Finsert (1, &msg);
6746 bset_read_only (current_buffer, tem);
6747 set_marker_both (p->mark, p->buffer, PT, PT_BYTE);
6748
6749 if (opoint >= before)
6750 SET_PT_BOTH (opoint + (PT - before),
6751 opoint_byte + (PT_BYTE - before_byte));
6752 else
6753 SET_PT_BOTH (opoint, opoint_byte);
6754
6755 set_buffer_internal (old);
6756 }
6757 }
6758 } /* end for */
6759
6760 update_mode_lines++; /* in case buffers use %s in mode-line-format */
6761 UNGCPRO;
6762 }
6763
6764 \f
6765 DEFUN ("set-process-coding-system", Fset_process_coding_system,
6766 Sset_process_coding_system, 1, 3, 0,
6767 doc: /* Set coding systems of PROCESS to DECODING and ENCODING.
6768 DECODING will be used to decode subprocess output and ENCODING to
6769 encode subprocess input. */)
6770 (register Lisp_Object process, Lisp_Object decoding, Lisp_Object encoding)
6771 {
6772 register struct Lisp_Process *p;
6773
6774 CHECK_PROCESS (process);
6775 p = XPROCESS (process);
6776 if (p->infd < 0)
6777 error ("Input file descriptor of %s closed", SDATA (p->name));
6778 if (p->outfd < 0)
6779 error ("Output file descriptor of %s closed", SDATA (p->name));
6780 Fcheck_coding_system (decoding);
6781 Fcheck_coding_system (encoding);
6782 encoding = coding_inherit_eol_type (encoding, Qnil);
6783 pset_decode_coding_system (p, decoding);
6784 pset_encode_coding_system (p, encoding);
6785 setup_process_coding_systems (process);
6786
6787 return Qnil;
6788 }
6789
6790 DEFUN ("process-coding-system",
6791 Fprocess_coding_system, Sprocess_coding_system, 1, 1, 0,
6792 doc: /* Return a cons of coding systems for decoding and encoding of PROCESS. */)
6793 (register Lisp_Object process)
6794 {
6795 CHECK_PROCESS (process);
6796 return Fcons (XPROCESS (process)->decode_coding_system,
6797 XPROCESS (process)->encode_coding_system);
6798 }
6799
6800 DEFUN ("set-process-filter-multibyte", Fset_process_filter_multibyte,
6801 Sset_process_filter_multibyte, 2, 2, 0,
6802 doc: /* Set multibyteness of the strings given to PROCESS's filter.
6803 If FLAG is non-nil, the filter is given multibyte strings.
6804 If FLAG is nil, the filter is given unibyte strings. In this case,
6805 all character code conversion except for end-of-line conversion is
6806 suppressed. */)
6807 (Lisp_Object process, Lisp_Object flag)
6808 {
6809 register struct Lisp_Process *p;
6810
6811 CHECK_PROCESS (process);
6812 p = XPROCESS (process);
6813 if (NILP (flag))
6814 pset_decode_coding_system
6815 (p, raw_text_coding_system (p->decode_coding_system));
6816 setup_process_coding_systems (process);
6817
6818 return Qnil;
6819 }
6820
6821 DEFUN ("process-filter-multibyte-p", Fprocess_filter_multibyte_p,
6822 Sprocess_filter_multibyte_p, 1, 1, 0,
6823 doc: /* Return t if a multibyte string is given to PROCESS's filter.*/)
6824 (Lisp_Object process)
6825 {
6826 register struct Lisp_Process *p;
6827 struct coding_system *coding;
6828
6829 CHECK_PROCESS (process);
6830 p = XPROCESS (process);
6831 coding = proc_decode_coding_system[p->infd];
6832 return (CODING_FOR_UNIBYTE (coding) ? Qnil : Qt);
6833 }
6834
6835
6836 \f
6837
6838 # ifdef HAVE_GPM
6839
6840 void
6841 add_gpm_wait_descriptor (int desc)
6842 {
6843 add_keyboard_wait_descriptor (desc);
6844 }
6845
6846 void
6847 delete_gpm_wait_descriptor (int desc)
6848 {
6849 delete_keyboard_wait_descriptor (desc);
6850 }
6851
6852 # endif
6853
6854 # ifdef USABLE_SIGIO
6855
6856 /* Return nonzero if *MASK has a bit set
6857 that corresponds to one of the keyboard input descriptors. */
6858
6859 static int
6860 keyboard_bit_set (fd_set *mask)
6861 {
6862 int fd;
6863
6864 for (fd = 0; fd <= max_input_desc; fd++)
6865 if (FD_ISSET (fd, mask) && FD_ISSET (fd, &input_wait_mask)
6866 && !FD_ISSET (fd, &non_keyboard_wait_mask))
6867 return 1;
6868
6869 return 0;
6870 }
6871 # endif
6872
6873 #else /* not subprocesses */
6874
6875 /* Defined on msdos.c. */
6876 extern int sys_select (int, SELECT_TYPE *, SELECT_TYPE *, SELECT_TYPE *,
6877 EMACS_TIME *, void *);
6878
6879 /* Implementation of wait_reading_process_output, assuming that there
6880 are no subprocesses. Used only by the MS-DOS build.
6881
6882 Wait for timeout to elapse and/or keyboard input to be available.
6883
6884 TIME_LIMIT is:
6885 timeout in seconds
6886 If negative, gobble data immediately available but don't wait for any.
6887
6888 NSECS is:
6889 an additional duration to wait, measured in nanoseconds
6890 If TIME_LIMIT is zero, then:
6891 If NSECS == 0, there is no limit.
6892 If NSECS > 0, the timeout consists of NSECS only.
6893 If NSECS < 0, gobble data immediately, as if TIME_LIMIT were negative.
6894
6895 READ_KBD is:
6896 0 to ignore keyboard input, or
6897 1 to return when input is available, or
6898 -1 means caller will actually read the input, so don't throw to
6899 the quit handler.
6900
6901 see full version for other parameters. We know that wait_proc will
6902 always be NULL, since `subprocesses' isn't defined.
6903
6904 DO_DISPLAY != 0 means redisplay should be done to show subprocess
6905 output that arrives.
6906
6907 Return true if we received input from any process. */
6908
6909 int
6910 wait_reading_process_output (intmax_t time_limit, int nsecs, int read_kbd,
6911 int do_display,
6912 Lisp_Object wait_for_cell,
6913 struct Lisp_Process *wait_proc, int just_wait_proc)
6914 {
6915 register int nfds;
6916 EMACS_TIME end_time, timeout;
6917
6918 if (time_limit < 0)
6919 {
6920 time_limit = 0;
6921 nsecs = -1;
6922 }
6923 else if (TYPE_MAXIMUM (time_t) < time_limit)
6924 time_limit = TYPE_MAXIMUM (time_t);
6925
6926 /* What does time_limit really mean? */
6927 if (time_limit || 0 < nsecs)
6928 {
6929 timeout = make_emacs_time (time_limit, nsecs);
6930 end_time = add_emacs_time (current_emacs_time (), timeout);
6931 }
6932
6933 /* Turn off periodic alarms (in case they are in use)
6934 and then turn off any other atimers,
6935 because the select emulator uses alarms. */
6936 stop_polling ();
6937 turn_on_atimers (0);
6938
6939 while (1)
6940 {
6941 int timeout_reduced_for_timers = 0;
6942 SELECT_TYPE waitchannels;
6943 int xerrno;
6944
6945 /* If calling from keyboard input, do not quit
6946 since we want to return C-g as an input character.
6947 Otherwise, do pending quit if requested. */
6948 if (read_kbd >= 0)
6949 QUIT;
6950
6951 /* Exit now if the cell we're waiting for became non-nil. */
6952 if (! NILP (wait_for_cell) && ! NILP (XCAR (wait_for_cell)))
6953 break;
6954
6955 /* Compute time from now till when time limit is up */
6956 /* Exit if already run out */
6957 if (nsecs < 0)
6958 {
6959 /* A negative timeout means
6960 gobble output available now
6961 but don't wait at all. */
6962
6963 timeout = make_emacs_time (0, 0);
6964 }
6965 else if (time_limit || 0 < nsecs)
6966 {
6967 EMACS_TIME now = current_emacs_time ();
6968 if (EMACS_TIME_LE (end_time, now))
6969 break;
6970 timeout = sub_emacs_time (end_time, now);
6971 }
6972 else
6973 {
6974 timeout = make_emacs_time (100000, 0);
6975 }
6976
6977 /* If our caller will not immediately handle keyboard events,
6978 run timer events directly.
6979 (Callers that will immediately read keyboard events
6980 call timer_delay on their own.) */
6981 if (NILP (wait_for_cell))
6982 {
6983 EMACS_TIME timer_delay;
6984
6985 do
6986 {
6987 int old_timers_run = timers_run;
6988 timer_delay = timer_check ();
6989 if (timers_run != old_timers_run && do_display)
6990 /* We must retry, since a timer may have requeued itself
6991 and that could alter the time delay. */
6992 redisplay_preserve_echo_area (14);
6993 else
6994 break;
6995 }
6996 while (!detect_input_pending ());
6997
6998 /* If there is unread keyboard input, also return. */
6999 if (read_kbd != 0
7000 && requeued_events_pending_p ())
7001 break;
7002
7003 if (EMACS_TIME_VALID_P (timer_delay) && 0 <= nsecs)
7004 {
7005 if (EMACS_TIME_LT (timer_delay, timeout))
7006 {
7007 timeout = timer_delay;
7008 timeout_reduced_for_timers = 1;
7009 }
7010 }
7011 }
7012
7013 /* Cause C-g and alarm signals to take immediate action,
7014 and cause input available signals to zero out timeout. */
7015 if (read_kbd < 0)
7016 set_waiting_for_input (&timeout);
7017
7018 /* If a frame has been newly mapped and needs updating,
7019 reprocess its display stuff. */
7020 if (frame_garbaged && do_display)
7021 {
7022 clear_waiting_for_input ();
7023 redisplay_preserve_echo_area (15);
7024 if (read_kbd < 0)
7025 set_waiting_for_input (&timeout);
7026 }
7027
7028 /* Wait till there is something to do. */
7029 FD_ZERO (&waitchannels);
7030 if (read_kbd && detect_input_pending ())
7031 nfds = 0;
7032 else
7033 {
7034 if (read_kbd || !NILP (wait_for_cell))
7035 FD_SET (0, &waitchannels);
7036 nfds = pselect (1, &waitchannels, NULL, NULL, &timeout, NULL);
7037 }
7038
7039 xerrno = errno;
7040
7041 /* Make C-g and alarm signals set flags again */
7042 clear_waiting_for_input ();
7043
7044 /* If we woke up due to SIGWINCH, actually change size now. */
7045 do_pending_window_change (0);
7046
7047 if ((time_limit || nsecs) && nfds == 0 && ! timeout_reduced_for_timers)
7048 /* We waited the full specified time, so return now. */
7049 break;
7050
7051 if (nfds == -1)
7052 {
7053 /* If the system call was interrupted, then go around the
7054 loop again. */
7055 if (xerrno == EINTR)
7056 FD_ZERO (&waitchannels);
7057 else
7058 error ("select error: %s", emacs_strerror (xerrno));
7059 }
7060
7061 /* Check for keyboard input */
7062
7063 if (read_kbd
7064 && detect_input_pending_run_timers (do_display))
7065 {
7066 swallow_events (do_display);
7067 if (detect_input_pending_run_timers (do_display))
7068 break;
7069 }
7070
7071 /* If there is unread keyboard input, also return. */
7072 if (read_kbd
7073 && requeued_events_pending_p ())
7074 break;
7075
7076 /* If wait_for_cell. check for keyboard input
7077 but don't run any timers.
7078 ??? (It seems wrong to me to check for keyboard
7079 input at all when wait_for_cell, but the code
7080 has been this way since July 1994.
7081 Try changing this after version 19.31.) */
7082 if (! NILP (wait_for_cell)
7083 && detect_input_pending ())
7084 {
7085 swallow_events (do_display);
7086 if (detect_input_pending ())
7087 break;
7088 }
7089
7090 /* Exit now if the cell we're waiting for became non-nil. */
7091 if (! NILP (wait_for_cell) && ! NILP (XCAR (wait_for_cell)))
7092 break;
7093 }
7094
7095 start_polling ();
7096
7097 return 0;
7098 }
7099
7100 #endif /* not subprocesses */
7101
7102 /* The following functions are needed even if async subprocesses are
7103 not supported. Some of them are no-op stubs in that case. */
7104
7105 /* Add DESC to the set of keyboard input descriptors. */
7106
7107 void
7108 add_keyboard_wait_descriptor (int desc)
7109 {
7110 #ifdef subprocesses /* actually means "not MSDOS" */
7111 FD_SET (desc, &input_wait_mask);
7112 FD_SET (desc, &non_process_wait_mask);
7113 if (desc > max_input_desc)
7114 max_input_desc = desc;
7115 #endif
7116 }
7117
7118 /* From now on, do not expect DESC to give keyboard input. */
7119
7120 void
7121 delete_keyboard_wait_descriptor (int desc)
7122 {
7123 #ifdef subprocesses
7124 int fd;
7125 int lim = max_input_desc;
7126
7127 FD_CLR (desc, &input_wait_mask);
7128 FD_CLR (desc, &non_process_wait_mask);
7129
7130 if (desc == max_input_desc)
7131 for (fd = 0; fd < lim; fd++)
7132 if (FD_ISSET (fd, &input_wait_mask) || FD_ISSET (fd, &write_mask))
7133 max_input_desc = fd;
7134 #endif
7135 }
7136
7137 /* Setup coding systems of PROCESS. */
7138
7139 void
7140 setup_process_coding_systems (Lisp_Object process)
7141 {
7142 #ifdef subprocesses
7143 struct Lisp_Process *p = XPROCESS (process);
7144 int inch = p->infd;
7145 int outch = p->outfd;
7146 Lisp_Object coding_system;
7147
7148 if (inch < 0 || outch < 0)
7149 return;
7150
7151 if (!proc_decode_coding_system[inch])
7152 proc_decode_coding_system[inch] = xmalloc (sizeof (struct coding_system));
7153 coding_system = p->decode_coding_system;
7154 if (! NILP (p->filter))
7155 ;
7156 else if (BUFFERP (p->buffer))
7157 {
7158 if (NILP (BVAR (XBUFFER (p->buffer), enable_multibyte_characters)))
7159 coding_system = raw_text_coding_system (coding_system);
7160 }
7161 setup_coding_system (coding_system, proc_decode_coding_system[inch]);
7162
7163 if (!proc_encode_coding_system[outch])
7164 proc_encode_coding_system[outch] = xmalloc (sizeof (struct coding_system));
7165 setup_coding_system (p->encode_coding_system,
7166 proc_encode_coding_system[outch]);
7167 #endif
7168 }
7169
7170 /* Close all descriptors currently in use for communication
7171 with subprocess. This is used in a newly-forked subprocess
7172 to get rid of irrelevant descriptors. */
7173
7174 void
7175 close_process_descs (void)
7176 {
7177 #ifndef DOS_NT
7178 int i;
7179 for (i = 0; i < MAXDESC; i++)
7180 {
7181 Lisp_Object process;
7182 process = chan_process[i];
7183 if (!NILP (process))
7184 {
7185 int in = XPROCESS (process)->infd;
7186 int out = XPROCESS (process)->outfd;
7187 if (in >= 0)
7188 emacs_close (in);
7189 if (out >= 0 && in != out)
7190 emacs_close (out);
7191 }
7192 }
7193 #endif
7194 }
7195
7196 DEFUN ("get-buffer-process", Fget_buffer_process, Sget_buffer_process, 1, 1, 0,
7197 doc: /* Return the (or a) process associated with BUFFER.
7198 BUFFER may be a buffer or the name of one. */)
7199 (register Lisp_Object buffer)
7200 {
7201 #ifdef subprocesses
7202 register Lisp_Object buf, tail, proc;
7203
7204 if (NILP (buffer)) return Qnil;
7205 buf = Fget_buffer (buffer);
7206 if (NILP (buf)) return Qnil;
7207
7208 for (tail = Vprocess_alist; CONSP (tail); tail = XCDR (tail))
7209 {
7210 proc = Fcdr (XCAR (tail));
7211 if (PROCESSP (proc) && EQ (XPROCESS (proc)->buffer, buf))
7212 return proc;
7213 }
7214 #endif /* subprocesses */
7215 return Qnil;
7216 }
7217
7218 DEFUN ("process-inherit-coding-system-flag",
7219 Fprocess_inherit_coding_system_flag, Sprocess_inherit_coding_system_flag,
7220 1, 1, 0,
7221 doc: /* Return the value of inherit-coding-system flag for PROCESS.
7222 If this flag is t, `buffer-file-coding-system' of the buffer
7223 associated with PROCESS will inherit the coding system used to decode
7224 the process output. */)
7225 (register Lisp_Object process)
7226 {
7227 #ifdef subprocesses
7228 CHECK_PROCESS (process);
7229 return XPROCESS (process)->inherit_coding_system_flag ? Qt : Qnil;
7230 #else
7231 /* Ignore the argument and return the value of
7232 inherit-process-coding-system. */
7233 return inherit_process_coding_system ? Qt : Qnil;
7234 #endif
7235 }
7236
7237 /* Kill all processes associated with `buffer'.
7238 If `buffer' is nil, kill all processes */
7239
7240 void
7241 kill_buffer_processes (Lisp_Object buffer)
7242 {
7243 #ifdef subprocesses
7244 Lisp_Object tail, proc;
7245
7246 for (tail = Vprocess_alist; CONSP (tail); tail = XCDR (tail))
7247 {
7248 proc = XCDR (XCAR (tail));
7249 if (PROCESSP (proc)
7250 && (NILP (buffer) || EQ (XPROCESS (proc)->buffer, buffer)))
7251 {
7252 if (NETCONN_P (proc) || SERIALCONN_P (proc))
7253 Fdelete_process (proc);
7254 else if (XPROCESS (proc)->infd >= 0)
7255 process_send_signal (proc, SIGHUP, Qnil, 1);
7256 }
7257 }
7258 #else /* subprocesses */
7259 /* Since we have no subprocesses, this does nothing. */
7260 #endif /* subprocesses */
7261 }
7262
7263 DEFUN ("waiting-for-user-input-p", Fwaiting_for_user_input_p,
7264 Swaiting_for_user_input_p, 0, 0, 0,
7265 doc: /* Returns non-nil if Emacs is waiting for input from the user.
7266 This is intended for use by asynchronous process output filters and sentinels. */)
7267 (void)
7268 {
7269 #ifdef subprocesses
7270 return (waiting_for_user_input_p ? Qt : Qnil);
7271 #else
7272 return Qnil;
7273 #endif
7274 }
7275
7276 /* Stop reading input from keyboard sources. */
7277
7278 void
7279 hold_keyboard_input (void)
7280 {
7281 kbd_is_on_hold = 1;
7282 }
7283
7284 /* Resume reading input from keyboard sources. */
7285
7286 void
7287 unhold_keyboard_input (void)
7288 {
7289 kbd_is_on_hold = 0;
7290 }
7291
7292 /* Return non-zero if keyboard input is on hold, zero otherwise. */
7293
7294 int
7295 kbd_on_hold_p (void)
7296 {
7297 return kbd_is_on_hold;
7298 }
7299
7300 \f
7301 /* Enumeration of and access to system processes a-la ps(1). */
7302
7303 DEFUN ("list-system-processes", Flist_system_processes, Slist_system_processes,
7304 0, 0, 0,
7305 doc: /* Return a list of numerical process IDs of all running processes.
7306 If this functionality is unsupported, return nil.
7307
7308 See `process-attributes' for getting attributes of a process given its ID. */)
7309 (void)
7310 {
7311 return list_system_processes ();
7312 }
7313
7314 DEFUN ("process-attributes", Fprocess_attributes,
7315 Sprocess_attributes, 1, 1, 0,
7316 doc: /* Return attributes of the process given by its PID, a number.
7317
7318 Value is an alist where each element is a cons cell of the form
7319
7320 \(KEY . VALUE)
7321
7322 If this functionality is unsupported, the value is nil.
7323
7324 See `list-system-processes' for getting a list of all process IDs.
7325
7326 The KEYs of the attributes that this function may return are listed
7327 below, together with the type of the associated VALUE (in parentheses).
7328 Not all platforms support all of these attributes; unsupported
7329 attributes will not appear in the returned alist.
7330 Unless explicitly indicated otherwise, numbers can have either
7331 integer or floating point values.
7332
7333 euid -- Effective user User ID of the process (number)
7334 user -- User name corresponding to euid (string)
7335 egid -- Effective user Group ID of the process (number)
7336 group -- Group name corresponding to egid (string)
7337 comm -- Command name (executable name only) (string)
7338 state -- Process state code, such as "S", "R", or "T" (string)
7339 ppid -- Parent process ID (number)
7340 pgrp -- Process group ID (number)
7341 sess -- Session ID, i.e. process ID of session leader (number)
7342 ttname -- Controlling tty name (string)
7343 tpgid -- ID of foreground process group on the process's tty (number)
7344 minflt -- number of minor page faults (number)
7345 majflt -- number of major page faults (number)
7346 cminflt -- cumulative number of minor page faults (number)
7347 cmajflt -- cumulative number of major page faults (number)
7348 utime -- user time used by the process, in (current-time) format,
7349 which is a list of integers (HIGH LOW USEC PSEC)
7350 stime -- system time used by the process (current-time)
7351 time -- sum of utime and stime (current-time)
7352 cutime -- user time used by the process and its children (current-time)
7353 cstime -- system time used by the process and its children (current-time)
7354 ctime -- sum of cutime and cstime (current-time)
7355 pri -- priority of the process (number)
7356 nice -- nice value of the process (number)
7357 thcount -- process thread count (number)
7358 start -- time the process started (current-time)
7359 vsize -- virtual memory size of the process in KB's (number)
7360 rss -- resident set size of the process in KB's (number)
7361 etime -- elapsed time the process is running, in (HIGH LOW USEC PSEC) format
7362 pcpu -- percents of CPU time used by the process (floating-point number)
7363 pmem -- percents of total physical memory used by process's resident set
7364 (floating-point number)
7365 args -- command line which invoked the process (string). */)
7366 ( Lisp_Object pid)
7367 {
7368 return system_process_attributes (pid);
7369 }
7370
7371 \f
7372 /* This is not called "init_process" because that is the name of a
7373 Mach system call, so it would cause problems on Darwin systems. */
7374 void
7375 init_process_emacs (void)
7376 {
7377 #ifdef subprocesses
7378 register int i;
7379
7380 inhibit_sentinels = 0;
7381
7382 #ifdef SIGCHLD
7383 #ifndef CANNOT_DUMP
7384 if (! noninteractive || initialized)
7385 #endif
7386 {
7387 struct sigaction action;
7388 emacs_sigaction_init (&action, deliver_child_signal);
7389 sigaction (SIGCHLD, &action, 0);
7390 }
7391 #endif
7392
7393 FD_ZERO (&input_wait_mask);
7394 FD_ZERO (&non_keyboard_wait_mask);
7395 FD_ZERO (&non_process_wait_mask);
7396 FD_ZERO (&write_mask);
7397 max_process_desc = 0;
7398 memset (fd_callback_info, 0, sizeof (fd_callback_info));
7399
7400 #ifdef NON_BLOCKING_CONNECT
7401 FD_ZERO (&connect_wait_mask);
7402 num_pending_connects = 0;
7403 #endif
7404
7405 #ifdef ADAPTIVE_READ_BUFFERING
7406 process_output_delay_count = 0;
7407 process_output_skip = 0;
7408 #endif
7409
7410 /* Don't do this, it caused infinite select loops. The display
7411 method should call add_keyboard_wait_descriptor on stdin if it
7412 needs that. */
7413 #if 0
7414 FD_SET (0, &input_wait_mask);
7415 #endif
7416
7417 Vprocess_alist = Qnil;
7418 #ifdef SIGCHLD
7419 deleted_pid_list = Qnil;
7420 #endif
7421 for (i = 0; i < MAXDESC; i++)
7422 {
7423 chan_process[i] = Qnil;
7424 proc_buffered_char[i] = -1;
7425 }
7426 memset (proc_decode_coding_system, 0, sizeof proc_decode_coding_system);
7427 memset (proc_encode_coding_system, 0, sizeof proc_encode_coding_system);
7428 #ifdef DATAGRAM_SOCKETS
7429 memset (datagram_address, 0, sizeof datagram_address);
7430 #endif
7431
7432 {
7433 Lisp_Object subfeatures = Qnil;
7434 const struct socket_options *sopt;
7435
7436 #define ADD_SUBFEATURE(key, val) \
7437 subfeatures = pure_cons (pure_cons (key, pure_cons (val, Qnil)), subfeatures)
7438
7439 #ifdef NON_BLOCKING_CONNECT
7440 ADD_SUBFEATURE (QCnowait, Qt);
7441 #endif
7442 #ifdef DATAGRAM_SOCKETS
7443 ADD_SUBFEATURE (QCtype, Qdatagram);
7444 #endif
7445 #ifdef HAVE_SEQPACKET
7446 ADD_SUBFEATURE (QCtype, Qseqpacket);
7447 #endif
7448 #ifdef HAVE_LOCAL_SOCKETS
7449 ADD_SUBFEATURE (QCfamily, Qlocal);
7450 #endif
7451 ADD_SUBFEATURE (QCfamily, Qipv4);
7452 #ifdef AF_INET6
7453 ADD_SUBFEATURE (QCfamily, Qipv6);
7454 #endif
7455 #ifdef HAVE_GETSOCKNAME
7456 ADD_SUBFEATURE (QCservice, Qt);
7457 #endif
7458 #if defined (O_NONBLOCK) || defined (O_NDELAY)
7459 ADD_SUBFEATURE (QCserver, Qt);
7460 #endif
7461
7462 for (sopt = socket_options; sopt->name; sopt++)
7463 subfeatures = pure_cons (intern_c_string (sopt->name), subfeatures);
7464
7465 Fprovide (intern_c_string ("make-network-process"), subfeatures);
7466 }
7467
7468 #if defined (DARWIN_OS)
7469 /* PTYs are broken on Darwin < 6, but are sometimes useful for interactive
7470 processes. As such, we only change the default value. */
7471 if (initialized)
7472 {
7473 char const *release = (STRINGP (Voperating_system_release)
7474 ? SSDATA (Voperating_system_release)
7475 : 0);
7476 if (!release || !release[0] || (release[0] < '7' && release[1] == '.')) {
7477 Vprocess_connection_type = Qnil;
7478 }
7479 }
7480 #endif
7481 #endif /* subprocesses */
7482 kbd_is_on_hold = 0;
7483 }
7484
7485 void
7486 syms_of_process (void)
7487 {
7488 #ifdef subprocesses
7489
7490 DEFSYM (Qprocessp, "processp");
7491 DEFSYM (Qrun, "run");
7492 DEFSYM (Qstop, "stop");
7493 DEFSYM (Qsignal, "signal");
7494
7495 /* Qexit is already staticpro'd by syms_of_eval; don't staticpro it
7496 here again.
7497
7498 Qexit = intern_c_string ("exit");
7499 staticpro (&Qexit); */
7500
7501 DEFSYM (Qopen, "open");
7502 DEFSYM (Qclosed, "closed");
7503 DEFSYM (Qconnect, "connect");
7504 DEFSYM (Qfailed, "failed");
7505 DEFSYM (Qlisten, "listen");
7506 DEFSYM (Qlocal, "local");
7507 DEFSYM (Qipv4, "ipv4");
7508 #ifdef AF_INET6
7509 DEFSYM (Qipv6, "ipv6");
7510 #endif
7511 DEFSYM (Qdatagram, "datagram");
7512 DEFSYM (Qseqpacket, "seqpacket");
7513
7514 DEFSYM (QCport, ":port");
7515 DEFSYM (QCspeed, ":speed");
7516 DEFSYM (QCprocess, ":process");
7517
7518 DEFSYM (QCbytesize, ":bytesize");
7519 DEFSYM (QCstopbits, ":stopbits");
7520 DEFSYM (QCparity, ":parity");
7521 DEFSYM (Qodd, "odd");
7522 DEFSYM (Qeven, "even");
7523 DEFSYM (QCflowcontrol, ":flowcontrol");
7524 DEFSYM (Qhw, "hw");
7525 DEFSYM (Qsw, "sw");
7526 DEFSYM (QCsummary, ":summary");
7527
7528 DEFSYM (Qreal, "real");
7529 DEFSYM (Qnetwork, "network");
7530 DEFSYM (Qserial, "serial");
7531 DEFSYM (QCbuffer, ":buffer");
7532 DEFSYM (QChost, ":host");
7533 DEFSYM (QCservice, ":service");
7534 DEFSYM (QClocal, ":local");
7535 DEFSYM (QCremote, ":remote");
7536 DEFSYM (QCcoding, ":coding");
7537 DEFSYM (QCserver, ":server");
7538 DEFSYM (QCnowait, ":nowait");
7539 DEFSYM (QCsentinel, ":sentinel");
7540 DEFSYM (QClog, ":log");
7541 DEFSYM (QCnoquery, ":noquery");
7542 DEFSYM (QCstop, ":stop");
7543 DEFSYM (QCoptions, ":options");
7544 DEFSYM (QCplist, ":plist");
7545
7546 DEFSYM (Qlast_nonmenu_event, "last-nonmenu-event");
7547
7548 staticpro (&Vprocess_alist);
7549 #ifdef SIGCHLD
7550 staticpro (&deleted_pid_list);
7551 #endif
7552
7553 #endif /* subprocesses */
7554
7555 DEFSYM (QCname, ":name");
7556 DEFSYM (QCtype, ":type");
7557
7558 DEFSYM (Qeuid, "euid");
7559 DEFSYM (Qegid, "egid");
7560 DEFSYM (Quser, "user");
7561 DEFSYM (Qgroup, "group");
7562 DEFSYM (Qcomm, "comm");
7563 DEFSYM (Qstate, "state");
7564 DEFSYM (Qppid, "ppid");
7565 DEFSYM (Qpgrp, "pgrp");
7566 DEFSYM (Qsess, "sess");
7567 DEFSYM (Qttname, "ttname");
7568 DEFSYM (Qtpgid, "tpgid");
7569 DEFSYM (Qminflt, "minflt");
7570 DEFSYM (Qmajflt, "majflt");
7571 DEFSYM (Qcminflt, "cminflt");
7572 DEFSYM (Qcmajflt, "cmajflt");
7573 DEFSYM (Qutime, "utime");
7574 DEFSYM (Qstime, "stime");
7575 DEFSYM (Qtime, "time");
7576 DEFSYM (Qcutime, "cutime");
7577 DEFSYM (Qcstime, "cstime");
7578 DEFSYM (Qctime, "ctime");
7579 DEFSYM (Qpri, "pri");
7580 DEFSYM (Qnice, "nice");
7581 DEFSYM (Qthcount, "thcount");
7582 DEFSYM (Qstart, "start");
7583 DEFSYM (Qvsize, "vsize");
7584 DEFSYM (Qrss, "rss");
7585 DEFSYM (Qetime, "etime");
7586 DEFSYM (Qpcpu, "pcpu");
7587 DEFSYM (Qpmem, "pmem");
7588 DEFSYM (Qargs, "args");
7589
7590 DEFVAR_BOOL ("delete-exited-processes", delete_exited_processes,
7591 doc: /* Non-nil means delete processes immediately when they exit.
7592 A value of nil means don't delete them until `list-processes' is run. */);
7593
7594 delete_exited_processes = 1;
7595
7596 #ifdef subprocesses
7597 DEFVAR_LISP ("process-connection-type", Vprocess_connection_type,
7598 doc: /* Control type of device used to communicate with subprocesses.
7599 Values are nil to use a pipe, or t or `pty' to use a pty.
7600 The value has no effect if the system has no ptys or if all ptys are busy:
7601 then a pipe is used in any case.
7602 The value takes effect when `start-process' is called. */);
7603 Vprocess_connection_type = Qt;
7604
7605 #ifdef ADAPTIVE_READ_BUFFERING
7606 DEFVAR_LISP ("process-adaptive-read-buffering", Vprocess_adaptive_read_buffering,
7607 doc: /* If non-nil, improve receive buffering by delaying after short reads.
7608 On some systems, when Emacs reads the output from a subprocess, the output data
7609 is read in very small blocks, potentially resulting in very poor performance.
7610 This behavior can be remedied to some extent by setting this variable to a
7611 non-nil value, as it will automatically delay reading from such processes, to
7612 allow them to produce more output before Emacs tries to read it.
7613 If the value is t, the delay is reset after each write to the process; any other
7614 non-nil value means that the delay is not reset on write.
7615 The variable takes effect when `start-process' is called. */);
7616 Vprocess_adaptive_read_buffering = Qt;
7617 #endif
7618
7619 defsubr (&Sprocessp);
7620 defsubr (&Sget_process);
7621 defsubr (&Sdelete_process);
7622 defsubr (&Sprocess_status);
7623 defsubr (&Sprocess_exit_status);
7624 defsubr (&Sprocess_id);
7625 defsubr (&Sprocess_name);
7626 defsubr (&Sprocess_tty_name);
7627 defsubr (&Sprocess_command);
7628 defsubr (&Sset_process_buffer);
7629 defsubr (&Sprocess_buffer);
7630 defsubr (&Sprocess_mark);
7631 defsubr (&Sset_process_filter);
7632 defsubr (&Sprocess_filter);
7633 defsubr (&Sset_process_sentinel);
7634 defsubr (&Sprocess_sentinel);
7635 defsubr (&Sset_process_window_size);
7636 defsubr (&Sset_process_inherit_coding_system_flag);
7637 defsubr (&Sset_process_query_on_exit_flag);
7638 defsubr (&Sprocess_query_on_exit_flag);
7639 defsubr (&Sprocess_contact);
7640 defsubr (&Sprocess_plist);
7641 defsubr (&Sset_process_plist);
7642 defsubr (&Sprocess_list);
7643 defsubr (&Sstart_process);
7644 defsubr (&Sserial_process_configure);
7645 defsubr (&Smake_serial_process);
7646 defsubr (&Sset_network_process_option);
7647 defsubr (&Smake_network_process);
7648 defsubr (&Sformat_network_address);
7649 #if defined (HAVE_NET_IF_H)
7650 #ifdef SIOCGIFCONF
7651 defsubr (&Snetwork_interface_list);
7652 #endif
7653 #if defined (SIOCGIFADDR) || defined (SIOCGIFHWADDR) || defined (SIOCGIFFLAGS)
7654 defsubr (&Snetwork_interface_info);
7655 #endif
7656 #endif /* defined (HAVE_NET_IF_H) */
7657 #ifdef DATAGRAM_SOCKETS
7658 defsubr (&Sprocess_datagram_address);
7659 defsubr (&Sset_process_datagram_address);
7660 #endif
7661 defsubr (&Saccept_process_output);
7662 defsubr (&Sprocess_send_region);
7663 defsubr (&Sprocess_send_string);
7664 defsubr (&Sinterrupt_process);
7665 defsubr (&Skill_process);
7666 defsubr (&Squit_process);
7667 defsubr (&Sstop_process);
7668 defsubr (&Scontinue_process);
7669 defsubr (&Sprocess_running_child_p);
7670 defsubr (&Sprocess_send_eof);
7671 defsubr (&Ssignal_process);
7672 defsubr (&Swaiting_for_user_input_p);
7673 defsubr (&Sprocess_type);
7674 defsubr (&Sset_process_coding_system);
7675 defsubr (&Sprocess_coding_system);
7676 defsubr (&Sset_process_filter_multibyte);
7677 defsubr (&Sprocess_filter_multibyte_p);
7678
7679 #endif /* subprocesses */
7680
7681 defsubr (&Sget_buffer_process);
7682 defsubr (&Sprocess_inherit_coding_system_flag);
7683 defsubr (&Slist_system_processes);
7684 defsubr (&Sprocess_attributes);
7685 }