Merge from emacs-24; up to 2012-11-15T23:31:37Z!dancol@dancol.org
[bpt/emacs.git] / src / w32proc.c
1 /* Process support for GNU Emacs on the Microsoft Windows API.
2 Copyright (C) 1992, 1995, 1999-2012 Free Software Foundation, Inc.
3
4 This file is part of GNU Emacs.
5
6 GNU Emacs is free software: you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation, either version 3 of the License, or
9 (at your option) any later version.
10
11 GNU Emacs is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
18
19 /*
20 Drew Bliss Oct 14, 1993
21 Adapted from alarm.c by Tim Fleehart
22 */
23
24 #include <stdio.h>
25 #include <stdlib.h>
26 #include <errno.h>
27 #include <ctype.h>
28 #include <io.h>
29 #include <fcntl.h>
30 #include <signal.h>
31 #include <sys/file.h>
32
33 /* must include CRT headers *before* config.h */
34 #include <config.h>
35
36 #undef signal
37 #undef wait
38 #undef spawnve
39 #undef select
40 #undef kill
41
42 #include <windows.h>
43 #ifdef __GNUC__
44 /* This definition is missing from mingw32 headers. */
45 extern BOOL WINAPI IsValidLocale (LCID, DWORD);
46 #endif
47
48 #ifdef HAVE_LANGINFO_CODESET
49 #include <nl_types.h>
50 #include <langinfo.h>
51 #endif
52
53 #include "lisp.h"
54 #include "w32.h"
55 #include "w32common.h"
56 #include "w32heap.h"
57 #include "systime.h"
58 #include "syswait.h"
59 #include "process.h"
60 #include "syssignal.h"
61 #include "w32term.h"
62 #include "dispextern.h" /* for xstrcasecmp */
63 #include "coding.h"
64
65 #define RVA_TO_PTR(var,section,filedata) \
66 ((void *)((section)->PointerToRawData \
67 + ((DWORD_PTR)(var) - (section)->VirtualAddress) \
68 + (filedata).file_base))
69
70 Lisp_Object Qhigh, Qlow;
71
72 /* Signal handlers...SIG_DFL == 0 so this is initialized correctly. */
73 static signal_handler sig_handlers[NSIG];
74
75 static sigset_t sig_mask;
76
77 static CRITICAL_SECTION crit_sig;
78
79 /* Improve on the CRT 'signal' implementation so that we could record
80 the SIGCHLD handler and fake interval timers. */
81 signal_handler
82 sys_signal (int sig, signal_handler handler)
83 {
84 signal_handler old;
85
86 /* SIGCHLD is needed for supporting subprocesses, see sys_kill
87 below. SIGALRM and SIGPROF are used by setitimer. All the
88 others are the only ones supported by the MS runtime. */
89 if (!(sig == SIGCHLD || sig == SIGSEGV || sig == SIGILL
90 || sig == SIGFPE || sig == SIGABRT || sig == SIGTERM
91 || sig == SIGALRM || sig == SIGPROF))
92 {
93 errno = EINVAL;
94 return SIG_ERR;
95 }
96 old = sig_handlers[sig];
97 /* SIGABRT is treated specially because w32.c installs term_ntproc
98 as its handler, so we don't want to override that afterwards.
99 Aborting Emacs works specially anyway: either by calling
100 emacs_abort directly or through terminate_due_to_signal, which
101 calls emacs_abort through emacs_raise. */
102 if (!(sig == SIGABRT && old == term_ntproc))
103 {
104 sig_handlers[sig] = handler;
105 if (!(sig == SIGCHLD || sig == SIGALRM || sig == SIGPROF))
106 signal (sig, handler);
107 }
108 return old;
109 }
110
111 /* Emulate sigaction. */
112 int
113 sigaction (int sig, const struct sigaction *act, struct sigaction *oact)
114 {
115 signal_handler old = SIG_DFL;
116 int retval = 0;
117
118 if (act)
119 old = sys_signal (sig, act->sa_handler);
120 else if (oact)
121 old = sig_handlers[sig];
122
123 if (old == SIG_ERR)
124 {
125 errno = EINVAL;
126 retval = -1;
127 }
128 if (oact)
129 {
130 oact->sa_handler = old;
131 oact->sa_flags = 0;
132 oact->sa_mask = empty_mask;
133 }
134 return retval;
135 }
136
137 /* Emulate signal sets and blocking of signals used by timers. */
138
139 int
140 sigemptyset (sigset_t *set)
141 {
142 *set = 0;
143 return 0;
144 }
145
146 int
147 sigaddset (sigset_t *set, int signo)
148 {
149 if (!set)
150 {
151 errno = EINVAL;
152 return -1;
153 }
154 if (signo < 0 || signo >= NSIG)
155 {
156 errno = EINVAL;
157 return -1;
158 }
159
160 *set |= (1U << signo);
161
162 return 0;
163 }
164
165 int
166 sigfillset (sigset_t *set)
167 {
168 if (!set)
169 {
170 errno = EINVAL;
171 return -1;
172 }
173
174 *set = 0xFFFFFFFF;
175 return 0;
176 }
177
178 int
179 sigprocmask (int how, const sigset_t *set, sigset_t *oset)
180 {
181 if (!(how == SIG_BLOCK || how == SIG_UNBLOCK || how == SIG_SETMASK))
182 {
183 errno = EINVAL;
184 return -1;
185 }
186
187 if (oset)
188 *oset = sig_mask;
189
190 if (!set)
191 return 0;
192
193 switch (how)
194 {
195 case SIG_BLOCK:
196 sig_mask |= *set;
197 break;
198 case SIG_SETMASK:
199 sig_mask = *set;
200 break;
201 case SIG_UNBLOCK:
202 /* FIXME: Catch signals that are blocked and reissue them when
203 they are unblocked. Important for SIGALRM and SIGPROF only. */
204 sig_mask &= ~(*set);
205 break;
206 }
207
208 return 0;
209 }
210
211 int
212 pthread_sigmask (int how, const sigset_t *set, sigset_t *oset)
213 {
214 if (sigprocmask (how, set, oset) == -1)
215 return EINVAL;
216 return 0;
217 }
218
219 int
220 sigismember (const sigset_t *set, int signo)
221 {
222 if (signo < 0 || signo >= NSIG)
223 {
224 errno = EINVAL;
225 return -1;
226 }
227 if (signo > sizeof (*set) * BITS_PER_CHAR)
228 emacs_abort ();
229
230 return (*set & (1U << signo)) != 0;
231 }
232
233 pid_t
234 getpgrp (void)
235 {
236 return getpid ();
237 }
238
239 pid_t
240 tcgetpgrp (int fd)
241 {
242 return getpid ();
243 }
244
245 int
246 setpgid (pid_t pid, pid_t pgid)
247 {
248 return 0;
249 }
250
251 pid_t
252 setsid (void)
253 {
254 return getpid ();
255 }
256
257 /* Emulations of interval timers.
258
259 Limitations: only ITIMER_REAL and ITIMER_PROF are supported.
260
261 Implementation: a separate thread is started for each timer type,
262 the thread calls the appropriate signal handler when the timer
263 expires, after stopping the thread which installed the timer. */
264
265 struct itimer_data {
266 volatile ULONGLONG expire;
267 volatile ULONGLONG reload;
268 volatile int terminate;
269 int type;
270 HANDLE caller_thread;
271 HANDLE timer_thread;
272 };
273
274 static ULONGLONG ticks_now;
275 static struct itimer_data real_itimer, prof_itimer;
276 static ULONGLONG clocks_min;
277 /* If non-zero, itimers are disabled. Used during shutdown, when we
278 delete the critical sections used by the timer threads. */
279 static int disable_itimers;
280
281 static CRITICAL_SECTION crit_real, crit_prof;
282
283 /* GetThreadTimes is not available on Windows 9X and possibly also on 2K. */
284 typedef BOOL (WINAPI *GetThreadTimes_Proc) (
285 HANDLE hThread,
286 LPFILETIME lpCreationTime,
287 LPFILETIME lpExitTime,
288 LPFILETIME lpKernelTime,
289 LPFILETIME lpUserTime);
290
291 static GetThreadTimes_Proc s_pfn_Get_Thread_Times;
292
293 #define MAX_SINGLE_SLEEP 30
294 #define TIMER_TICKS_PER_SEC 1000
295
296 /* Return a suitable time value, in 1-ms units, for THREAD, a handle
297 to a thread. If THREAD is NULL or an invalid handle, return the
298 current wall-clock time since January 1, 1601 (UTC). Otherwise,
299 return the sum of kernel and user times used by THREAD since it was
300 created, plus its creation time. */
301 static ULONGLONG
302 w32_get_timer_time (HANDLE thread)
303 {
304 ULONGLONG retval;
305 int use_system_time = 1;
306 /* The functions below return times in 100-ns units. */
307 const int tscale = 10 * TIMER_TICKS_PER_SEC;
308
309 if (thread && thread != INVALID_HANDLE_VALUE
310 && s_pfn_Get_Thread_Times != NULL)
311 {
312 FILETIME creation_ftime, exit_ftime, kernel_ftime, user_ftime;
313 ULARGE_INTEGER temp_creation, temp_kernel, temp_user;
314
315 if (s_pfn_Get_Thread_Times (thread, &creation_ftime, &exit_ftime,
316 &kernel_ftime, &user_ftime))
317 {
318 use_system_time = 0;
319 temp_creation.LowPart = creation_ftime.dwLowDateTime;
320 temp_creation.HighPart = creation_ftime.dwHighDateTime;
321 temp_kernel.LowPart = kernel_ftime.dwLowDateTime;
322 temp_kernel.HighPart = kernel_ftime.dwHighDateTime;
323 temp_user.LowPart = user_ftime.dwLowDateTime;
324 temp_user.HighPart = user_ftime.dwHighDateTime;
325 retval =
326 temp_creation.QuadPart / tscale + temp_kernel.QuadPart / tscale
327 + temp_user.QuadPart / tscale;
328 }
329 else
330 DebPrint (("GetThreadTimes failed with error code %lu\n",
331 GetLastError ()));
332 }
333
334 if (use_system_time)
335 {
336 FILETIME current_ftime;
337 ULARGE_INTEGER temp;
338
339 GetSystemTimeAsFileTime (&current_ftime);
340
341 temp.LowPart = current_ftime.dwLowDateTime;
342 temp.HighPart = current_ftime.dwHighDateTime;
343
344 retval = temp.QuadPart / tscale;
345 }
346
347 return retval;
348 }
349
350 /* Thread function for a timer thread. */
351 static DWORD WINAPI
352 timer_loop (LPVOID arg)
353 {
354 struct itimer_data *itimer = (struct itimer_data *)arg;
355 int which = itimer->type;
356 int sig = (which == ITIMER_REAL) ? SIGALRM : SIGPROF;
357 CRITICAL_SECTION *crit = (which == ITIMER_REAL) ? &crit_real : &crit_prof;
358 const DWORD max_sleep = MAX_SINGLE_SLEEP * 1000 / TIMER_TICKS_PER_SEC;
359 HANDLE hth = (which == ITIMER_REAL) ? NULL : itimer->caller_thread;
360
361 while (1)
362 {
363 DWORD sleep_time;
364 signal_handler handler;
365 ULONGLONG now, expire, reload;
366
367 /* Load new values if requested by setitimer. */
368 EnterCriticalSection (crit);
369 expire = itimer->expire;
370 reload = itimer->reload;
371 LeaveCriticalSection (crit);
372 if (itimer->terminate)
373 return 0;
374
375 if (expire == 0)
376 {
377 /* We are idle. */
378 Sleep (max_sleep);
379 continue;
380 }
381
382 if (expire > (now = w32_get_timer_time (hth)))
383 sleep_time = expire - now;
384 else
385 sleep_time = 0;
386 /* Don't sleep too long at a time, to be able to see the
387 termination flag without too long a delay. */
388 while (sleep_time > max_sleep)
389 {
390 if (itimer->terminate)
391 return 0;
392 Sleep (max_sleep);
393 EnterCriticalSection (crit);
394 expire = itimer->expire;
395 LeaveCriticalSection (crit);
396 sleep_time =
397 (expire > (now = w32_get_timer_time (hth))) ? expire - now : 0;
398 }
399 if (itimer->terminate)
400 return 0;
401 if (sleep_time > 0)
402 {
403 Sleep (sleep_time * 1000 / TIMER_TICKS_PER_SEC);
404 /* Always sleep past the expiration time, to make sure we
405 never call the handler _before_ the expiration time,
406 always slightly after it. Sleep(5) makes sure we don't
407 hog the CPU by calling 'w32_get_timer_time' with high
408 frequency, and also let other threads work. */
409 while (w32_get_timer_time (hth) < expire)
410 Sleep (5);
411 }
412
413 EnterCriticalSection (crit);
414 expire = itimer->expire;
415 LeaveCriticalSection (crit);
416 if (expire == 0)
417 continue;
418
419 /* Time's up. */
420 handler = sig_handlers[sig];
421 if (!(handler == SIG_DFL || handler == SIG_IGN || handler == SIG_ERR)
422 /* FIXME: Don't ignore masked signals. Instead, record that
423 they happened and reissue them when the signal is
424 unblocked. */
425 && !sigismember (&sig_mask, sig)
426 /* Simulate masking of SIGALRM and SIGPROF when processing
427 fatal signals. */
428 && !fatal_error_in_progress
429 && itimer->caller_thread)
430 {
431 /* Simulate a signal delivered to the thread which installed
432 the timer, by suspending that thread while the handler
433 runs. */
434 HANDLE th = itimer->caller_thread;
435 DWORD result = SuspendThread (th);
436
437 if (result == (DWORD)-1)
438 return 2;
439
440 handler (sig);
441 ResumeThread (th);
442 }
443
444 /* Update expiration time and loop. */
445 EnterCriticalSection (crit);
446 expire = itimer->expire;
447 if (expire == 0)
448 {
449 LeaveCriticalSection (crit);
450 continue;
451 }
452 reload = itimer->reload;
453 if (reload > 0)
454 {
455 now = w32_get_timer_time (hth);
456 if (expire <= now)
457 {
458 ULONGLONG lag = now - expire;
459
460 /* If we missed some opportunities (presumably while
461 sleeping or while the signal handler ran), skip
462 them. */
463 if (lag > reload)
464 expire = now - (lag % reload);
465
466 expire += reload;
467 }
468 }
469 else
470 expire = 0; /* become idle */
471 itimer->expire = expire;
472 LeaveCriticalSection (crit);
473 }
474 return 0;
475 }
476
477 static void
478 stop_timer_thread (int which)
479 {
480 struct itimer_data *itimer =
481 (which == ITIMER_REAL) ? &real_itimer : &prof_itimer;
482 int i;
483 DWORD err, exit_code = 255;
484 BOOL status;
485
486 /* Signal the thread that it should terminate. */
487 itimer->terminate = 1;
488
489 if (itimer->timer_thread == NULL)
490 return;
491
492 /* Wait for the timer thread to terminate voluntarily, then kill it
493 if it doesn't. This loop waits twice more than the maximum
494 amount of time a timer thread sleeps, see above. */
495 for (i = 0; i < MAX_SINGLE_SLEEP / 5; i++)
496 {
497 if (!((status = GetExitCodeThread (itimer->timer_thread, &exit_code))
498 && exit_code == STILL_ACTIVE))
499 break;
500 Sleep (10);
501 }
502 if ((status == FALSE && (err = GetLastError ()) == ERROR_INVALID_HANDLE)
503 || exit_code == STILL_ACTIVE)
504 {
505 if (!(status == FALSE && err == ERROR_INVALID_HANDLE))
506 TerminateThread (itimer->timer_thread, 0);
507 }
508
509 /* Clean up. */
510 CloseHandle (itimer->timer_thread);
511 itimer->timer_thread = NULL;
512 if (itimer->caller_thread)
513 {
514 CloseHandle (itimer->caller_thread);
515 itimer->caller_thread = NULL;
516 }
517 }
518
519 /* This is called at shutdown time from term_ntproc. */
520 void
521 term_timers (void)
522 {
523 if (real_itimer.timer_thread)
524 stop_timer_thread (ITIMER_REAL);
525 if (prof_itimer.timer_thread)
526 stop_timer_thread (ITIMER_PROF);
527
528 /* We are going to delete the critical sections, so timers cannot
529 work after this. */
530 disable_itimers = 1;
531
532 DeleteCriticalSection (&crit_real);
533 DeleteCriticalSection (&crit_prof);
534 DeleteCriticalSection (&crit_sig);
535 }
536
537 /* This is called at initialization time from init_ntproc. */
538 void
539 init_timers (void)
540 {
541 /* GetThreadTimes is not available on all versions of Windows, so
542 need to probe for its availability dynamically, and call it
543 through a pointer. */
544 s_pfn_Get_Thread_Times = NULL; /* in case dumped Emacs comes with a value */
545 if (os_subtype != OS_9X)
546 s_pfn_Get_Thread_Times =
547 (GetThreadTimes_Proc)GetProcAddress (GetModuleHandle ("kernel32.dll"),
548 "GetThreadTimes");
549
550 /* Make sure we start with zeroed out itimer structures, since
551 dumping may have left there traces of threads long dead. */
552 memset (&real_itimer, 0, sizeof real_itimer);
553 memset (&prof_itimer, 0, sizeof prof_itimer);
554
555 InitializeCriticalSection (&crit_real);
556 InitializeCriticalSection (&crit_prof);
557 InitializeCriticalSection (&crit_sig);
558
559 disable_itimers = 0;
560 }
561
562 static int
563 start_timer_thread (int which)
564 {
565 DWORD exit_code;
566 HANDLE th;
567 struct itimer_data *itimer =
568 (which == ITIMER_REAL) ? &real_itimer : &prof_itimer;
569
570 if (itimer->timer_thread
571 && GetExitCodeThread (itimer->timer_thread, &exit_code)
572 && exit_code == STILL_ACTIVE)
573 return 0;
574
575 /* Clean up after possibly exited thread. */
576 if (itimer->timer_thread)
577 {
578 CloseHandle (itimer->timer_thread);
579 itimer->timer_thread = NULL;
580 }
581 if (itimer->caller_thread)
582 {
583 CloseHandle (itimer->caller_thread);
584 itimer->caller_thread = NULL;
585 }
586
587 /* Start a new thread. */
588 if (!DuplicateHandle (GetCurrentProcess (), GetCurrentThread (),
589 GetCurrentProcess (), &th, 0, FALSE,
590 DUPLICATE_SAME_ACCESS))
591 {
592 errno = ESRCH;
593 return -1;
594 }
595 itimer->terminate = 0;
596 itimer->type = which;
597 itimer->caller_thread = th;
598 /* Request that no more than 64KB of stack be reserved for this
599 thread, to avoid reserving too much memory, which would get in
600 the way of threads we start to wait for subprocesses. See also
601 new_child below. */
602 itimer->timer_thread = CreateThread (NULL, 64 * 1024, timer_loop,
603 (void *)itimer, 0x00010000, NULL);
604
605 if (!itimer->timer_thread)
606 {
607 CloseHandle (itimer->caller_thread);
608 itimer->caller_thread = NULL;
609 errno = EAGAIN;
610 return -1;
611 }
612
613 /* This is needed to make sure that the timer thread running for
614 profiling gets CPU as soon as the Sleep call terminates. */
615 if (which == ITIMER_PROF)
616 SetThreadPriority (itimer->timer_thread, THREAD_PRIORITY_TIME_CRITICAL);
617
618 return 0;
619 }
620
621 /* Most of the code of getitimer and setitimer (but not of their
622 subroutines) was shamelessly stolen from itimer.c in the DJGPP
623 library, see www.delorie.com/djgpp. */
624 int
625 getitimer (int which, struct itimerval *value)
626 {
627 volatile ULONGLONG *t_expire;
628 volatile ULONGLONG *t_reload;
629 ULONGLONG expire, reload;
630 __int64 usecs;
631 CRITICAL_SECTION *crit;
632 struct itimer_data *itimer;
633
634 if (disable_itimers)
635 return -1;
636
637 if (!value)
638 {
639 errno = EFAULT;
640 return -1;
641 }
642
643 if (which != ITIMER_REAL && which != ITIMER_PROF)
644 {
645 errno = EINVAL;
646 return -1;
647 }
648
649 itimer = (which == ITIMER_REAL) ? &real_itimer : &prof_itimer;
650
651 ticks_now = w32_get_timer_time ((which == ITIMER_REAL)
652 ? NULL
653 : GetCurrentThread ());
654
655 t_expire = &itimer->expire;
656 t_reload = &itimer->reload;
657 crit = (which == ITIMER_REAL) ? &crit_real : &crit_prof;
658
659 EnterCriticalSection (crit);
660 reload = *t_reload;
661 expire = *t_expire;
662 LeaveCriticalSection (crit);
663
664 if (expire)
665 expire -= ticks_now;
666
667 value->it_value.tv_sec = expire / TIMER_TICKS_PER_SEC;
668 usecs =
669 (expire % TIMER_TICKS_PER_SEC) * (__int64)1000000 / TIMER_TICKS_PER_SEC;
670 value->it_value.tv_usec = usecs;
671 value->it_interval.tv_sec = reload / TIMER_TICKS_PER_SEC;
672 usecs =
673 (reload % TIMER_TICKS_PER_SEC) * (__int64)1000000 / TIMER_TICKS_PER_SEC;
674 value->it_interval.tv_usec= usecs;
675
676 return 0;
677 }
678
679 int
680 setitimer(int which, struct itimerval *value, struct itimerval *ovalue)
681 {
682 volatile ULONGLONG *t_expire, *t_reload;
683 ULONGLONG expire, reload, expire_old, reload_old;
684 __int64 usecs;
685 CRITICAL_SECTION *crit;
686 struct itimerval tem, *ptem;
687
688 if (disable_itimers)
689 return -1;
690
691 /* Posix systems expect timer values smaller than the resolution of
692 the system clock be rounded up to the clock resolution. First
693 time we are called, measure the clock tick resolution. */
694 if (!clocks_min)
695 {
696 ULONGLONG t1, t2;
697
698 for (t1 = w32_get_timer_time (NULL);
699 (t2 = w32_get_timer_time (NULL)) == t1; )
700 ;
701 clocks_min = t2 - t1;
702 }
703
704 if (ovalue)
705 ptem = ovalue;
706 else
707 ptem = &tem;
708
709 if (getitimer (which, ptem)) /* also sets ticks_now */
710 return -1; /* errno already set */
711
712 t_expire =
713 (which == ITIMER_REAL) ? &real_itimer.expire : &prof_itimer.expire;
714 t_reload =
715 (which == ITIMER_REAL) ? &real_itimer.reload : &prof_itimer.reload;
716
717 crit = (which == ITIMER_REAL) ? &crit_real : &crit_prof;
718
719 if (!value
720 || (value->it_value.tv_sec == 0 && value->it_value.tv_usec == 0))
721 {
722 EnterCriticalSection (crit);
723 /* Disable the timer. */
724 *t_expire = 0;
725 *t_reload = 0;
726 LeaveCriticalSection (crit);
727 return 0;
728 }
729
730 reload = value->it_interval.tv_sec * TIMER_TICKS_PER_SEC;
731
732 usecs = value->it_interval.tv_usec;
733 if (value->it_interval.tv_sec == 0
734 && usecs && usecs * TIMER_TICKS_PER_SEC < clocks_min * 1000000)
735 reload = clocks_min;
736 else
737 {
738 usecs *= TIMER_TICKS_PER_SEC;
739 reload += usecs / 1000000;
740 }
741
742 expire = value->it_value.tv_sec * TIMER_TICKS_PER_SEC;
743 usecs = value->it_value.tv_usec;
744 if (value->it_value.tv_sec == 0
745 && usecs * TIMER_TICKS_PER_SEC < clocks_min * 1000000)
746 expire = clocks_min;
747 else
748 {
749 usecs *= TIMER_TICKS_PER_SEC;
750 expire += usecs / 1000000;
751 }
752
753 expire += ticks_now;
754
755 EnterCriticalSection (crit);
756 expire_old = *t_expire;
757 reload_old = *t_reload;
758 if (!(expire == expire_old && reload == reload_old))
759 {
760 *t_reload = reload;
761 *t_expire = expire;
762 }
763 LeaveCriticalSection (crit);
764
765 return start_timer_thread (which);
766 }
767
768 int
769 alarm (int seconds)
770 {
771 #ifdef HAVE_SETITIMER
772 struct itimerval new_values, old_values;
773
774 new_values.it_value.tv_sec = seconds;
775 new_values.it_value.tv_usec = 0;
776 new_values.it_interval.tv_sec = new_values.it_interval.tv_usec = 0;
777
778 if (setitimer (ITIMER_REAL, &new_values, &old_values) < 0)
779 return 0;
780 return old_values.it_value.tv_sec;
781 #else
782 return seconds;
783 #endif
784 }
785
786 /* Defined in <process.h> which conflicts with the local copy */
787 #define _P_NOWAIT 1
788
789 /* Child process management list. */
790 int child_proc_count = 0;
791 child_process child_procs[ MAX_CHILDREN ];
792
793 static DWORD WINAPI reader_thread (void *arg);
794
795 /* Find an unused process slot. */
796 child_process *
797 new_child (void)
798 {
799 child_process *cp;
800 DWORD id;
801
802 for (cp = child_procs + (child_proc_count-1); cp >= child_procs; cp--)
803 if (!CHILD_ACTIVE (cp))
804 goto Initialize;
805 if (child_proc_count == MAX_CHILDREN)
806 return NULL;
807 cp = &child_procs[child_proc_count++];
808
809 Initialize:
810 memset (cp, 0, sizeof (*cp));
811 cp->fd = -1;
812 cp->pid = -1;
813 cp->procinfo.hProcess = NULL;
814 cp->status = STATUS_READ_ERROR;
815
816 /* use manual reset event so that select() will function properly */
817 cp->char_avail = CreateEvent (NULL, TRUE, FALSE, NULL);
818 if (cp->char_avail)
819 {
820 cp->char_consumed = CreateEvent (NULL, FALSE, FALSE, NULL);
821 if (cp->char_consumed)
822 {
823 /* The 0x00010000 flag is STACK_SIZE_PARAM_IS_A_RESERVATION.
824 It means that the 64K stack we are requesting in the 2nd
825 argument is how much memory should be reserved for the
826 stack. If we don't use this flag, the memory requested
827 by the 2nd argument is the amount actually _committed_,
828 but Windows reserves 8MB of memory for each thread's
829 stack. (The 8MB figure comes from the -stack
830 command-line argument we pass to the linker when building
831 Emacs, but that's because we need a large stack for
832 Emacs's main thread.) Since we request 2GB of reserved
833 memory at startup (see w32heap.c), which is close to the
834 maximum memory available for a 32-bit process on Windows,
835 the 8MB reservation for each thread causes failures in
836 starting subprocesses, because we create a thread running
837 reader_thread for each subprocess. As 8MB of stack is
838 way too much for reader_thread, forcing Windows to
839 reserve less wins the day. */
840 cp->thrd = CreateThread (NULL, 64 * 1024, reader_thread, cp,
841 0x00010000, &id);
842 if (cp->thrd)
843 return cp;
844 }
845 }
846 delete_child (cp);
847 return NULL;
848 }
849
850 void
851 delete_child (child_process *cp)
852 {
853 int i;
854
855 /* Should not be deleting a child that is still needed. */
856 for (i = 0; i < MAXDESC; i++)
857 if (fd_info[i].cp == cp)
858 emacs_abort ();
859
860 if (!CHILD_ACTIVE (cp))
861 return;
862
863 /* reap thread if necessary */
864 if (cp->thrd)
865 {
866 DWORD rc;
867
868 if (GetExitCodeThread (cp->thrd, &rc) && rc == STILL_ACTIVE)
869 {
870 /* let the thread exit cleanly if possible */
871 cp->status = STATUS_READ_ERROR;
872 SetEvent (cp->char_consumed);
873 #if 0
874 /* We used to forcibly terminate the thread here, but it
875 is normally unnecessary, and in abnormal cases, the worst that
876 will happen is we have an extra idle thread hanging around
877 waiting for the zombie process. */
878 if (WaitForSingleObject (cp->thrd, 1000) != WAIT_OBJECT_0)
879 {
880 DebPrint (("delete_child.WaitForSingleObject (thread) failed "
881 "with %lu for fd %ld\n", GetLastError (), cp->fd));
882 TerminateThread (cp->thrd, 0);
883 }
884 #endif
885 }
886 CloseHandle (cp->thrd);
887 cp->thrd = NULL;
888 }
889 if (cp->char_avail)
890 {
891 CloseHandle (cp->char_avail);
892 cp->char_avail = NULL;
893 }
894 if (cp->char_consumed)
895 {
896 CloseHandle (cp->char_consumed);
897 cp->char_consumed = NULL;
898 }
899
900 /* update child_proc_count (highest numbered slot in use plus one) */
901 if (cp == child_procs + child_proc_count - 1)
902 {
903 for (i = child_proc_count-1; i >= 0; i--)
904 if (CHILD_ACTIVE (&child_procs[i]))
905 {
906 child_proc_count = i + 1;
907 break;
908 }
909 }
910 if (i < 0)
911 child_proc_count = 0;
912 }
913
914 /* Find a child by pid. */
915 static child_process *
916 find_child_pid (DWORD pid)
917 {
918 child_process *cp;
919
920 for (cp = child_procs + (child_proc_count-1); cp >= child_procs; cp--)
921 if (CHILD_ACTIVE (cp) && pid == cp->pid)
922 return cp;
923 return NULL;
924 }
925
926
927 /* Thread proc for child process and socket reader threads. Each thread
928 is normally blocked until woken by select() to check for input by
929 reading one char. When the read completes, char_avail is signaled
930 to wake up the select emulator and the thread blocks itself again. */
931 static DWORD WINAPI
932 reader_thread (void *arg)
933 {
934 child_process *cp;
935
936 /* Our identity */
937 cp = (child_process *)arg;
938
939 /* We have to wait for the go-ahead before we can start */
940 if (cp == NULL
941 || WaitForSingleObject (cp->char_consumed, INFINITE) != WAIT_OBJECT_0
942 || cp->fd < 0)
943 return 1;
944
945 for (;;)
946 {
947 int rc;
948
949 if (fd_info[cp->fd].flags & FILE_LISTEN)
950 rc = _sys_wait_accept (cp->fd);
951 else
952 rc = _sys_read_ahead (cp->fd);
953
954 /* The name char_avail is a misnomer - it really just means the
955 read-ahead has completed, whether successfully or not. */
956 if (!SetEvent (cp->char_avail))
957 {
958 DebPrint (("reader_thread.SetEvent failed with %lu for fd %ld\n",
959 GetLastError (), cp->fd));
960 return 1;
961 }
962
963 if (rc == STATUS_READ_ERROR)
964 return 1;
965
966 /* If the read died, the child has died so let the thread die */
967 if (rc == STATUS_READ_FAILED)
968 break;
969
970 /* Wait until our input is acknowledged before reading again */
971 if (WaitForSingleObject (cp->char_consumed, INFINITE) != WAIT_OBJECT_0)
972 {
973 DebPrint (("reader_thread.WaitForSingleObject failed with "
974 "%lu for fd %ld\n", GetLastError (), cp->fd));
975 break;
976 }
977 }
978 return 0;
979 }
980
981 /* To avoid Emacs changing directory, we just record here the directory
982 the new process should start in. This is set just before calling
983 sys_spawnve, and is not generally valid at any other time. */
984 static char * process_dir;
985
986 static BOOL
987 create_child (char *exe, char *cmdline, char *env, int is_gui_app,
988 int * pPid, child_process *cp)
989 {
990 STARTUPINFO start;
991 SECURITY_ATTRIBUTES sec_attrs;
992 #if 0
993 SECURITY_DESCRIPTOR sec_desc;
994 #endif
995 DWORD flags;
996 char dir[ MAXPATHLEN ];
997
998 if (cp == NULL) emacs_abort ();
999
1000 memset (&start, 0, sizeof (start));
1001 start.cb = sizeof (start);
1002
1003 #ifdef HAVE_NTGUI
1004 if (NILP (Vw32_start_process_show_window) && !is_gui_app)
1005 start.dwFlags = STARTF_USESTDHANDLES | STARTF_USESHOWWINDOW;
1006 else
1007 start.dwFlags = STARTF_USESTDHANDLES;
1008 start.wShowWindow = SW_HIDE;
1009
1010 start.hStdInput = GetStdHandle (STD_INPUT_HANDLE);
1011 start.hStdOutput = GetStdHandle (STD_OUTPUT_HANDLE);
1012 start.hStdError = GetStdHandle (STD_ERROR_HANDLE);
1013 #endif /* HAVE_NTGUI */
1014
1015 #if 0
1016 /* Explicitly specify no security */
1017 if (!InitializeSecurityDescriptor (&sec_desc, SECURITY_DESCRIPTOR_REVISION))
1018 goto EH_Fail;
1019 if (!SetSecurityDescriptorDacl (&sec_desc, TRUE, NULL, FALSE))
1020 goto EH_Fail;
1021 #endif
1022 sec_attrs.nLength = sizeof (sec_attrs);
1023 sec_attrs.lpSecurityDescriptor = NULL /* &sec_desc */;
1024 sec_attrs.bInheritHandle = FALSE;
1025
1026 strcpy (dir, process_dir);
1027 unixtodos_filename (dir);
1028
1029 flags = (!NILP (Vw32_start_process_share_console)
1030 ? CREATE_NEW_PROCESS_GROUP
1031 : CREATE_NEW_CONSOLE);
1032 if (NILP (Vw32_start_process_inherit_error_mode))
1033 flags |= CREATE_DEFAULT_ERROR_MODE;
1034 if (!CreateProcess (exe, cmdline, &sec_attrs, NULL, TRUE,
1035 flags, env, dir, &start, &cp->procinfo))
1036 goto EH_Fail;
1037
1038 cp->pid = (int) cp->procinfo.dwProcessId;
1039
1040 /* Hack for Windows 95, which assigns large (ie negative) pids */
1041 if (cp->pid < 0)
1042 cp->pid = -cp->pid;
1043
1044 *pPid = cp->pid;
1045
1046 return TRUE;
1047
1048 EH_Fail:
1049 DebPrint (("create_child.CreateProcess failed: %ld\n", GetLastError ()););
1050 return FALSE;
1051 }
1052
1053 /* create_child doesn't know what emacs' file handle will be for waiting
1054 on output from the child, so we need to make this additional call
1055 to register the handle with the process
1056 This way the select emulator knows how to match file handles with
1057 entries in child_procs. */
1058 void
1059 register_child (int pid, int fd)
1060 {
1061 child_process *cp;
1062
1063 cp = find_child_pid (pid);
1064 if (cp == NULL)
1065 {
1066 DebPrint (("register_child unable to find pid %lu\n", pid));
1067 return;
1068 }
1069
1070 #ifdef FULL_DEBUG
1071 DebPrint (("register_child registered fd %d with pid %lu\n", fd, pid));
1072 #endif
1073
1074 cp->fd = fd;
1075
1076 /* thread is initially blocked until select is called; set status so
1077 that select will release thread */
1078 cp->status = STATUS_READ_ACKNOWLEDGED;
1079
1080 /* attach child_process to fd_info */
1081 if (fd_info[fd].cp != NULL)
1082 {
1083 DebPrint (("register_child: fd_info[%d] apparently in use!\n", fd));
1084 emacs_abort ();
1085 }
1086
1087 fd_info[fd].cp = cp;
1088 }
1089
1090 /* When a process dies its pipe will break so the reader thread will
1091 signal failure to the select emulator.
1092 The select emulator then calls this routine to clean up.
1093 Since the thread signaled failure we can assume it is exiting. */
1094 static void
1095 reap_subprocess (child_process *cp)
1096 {
1097 if (cp->procinfo.hProcess)
1098 {
1099 /* Reap the process */
1100 #ifdef FULL_DEBUG
1101 /* Process should have already died before we are called. */
1102 if (WaitForSingleObject (cp->procinfo.hProcess, 0) != WAIT_OBJECT_0)
1103 DebPrint (("reap_subprocess: child fpr fd %d has not died yet!", cp->fd));
1104 #endif
1105 CloseHandle (cp->procinfo.hProcess);
1106 cp->procinfo.hProcess = NULL;
1107 CloseHandle (cp->procinfo.hThread);
1108 cp->procinfo.hThread = NULL;
1109 }
1110
1111 /* For asynchronous children, the child_proc resources will be freed
1112 when the last pipe read descriptor is closed; for synchronous
1113 children, we must explicitly free the resources now because
1114 register_child has not been called. */
1115 if (cp->fd == -1)
1116 delete_child (cp);
1117 }
1118
1119 /* Wait for a child process specified by PID, or for any of our
1120 existing child processes (if PID is nonpositive) to die. When it
1121 does, close its handle. Return the pid of the process that died
1122 and fill in STATUS if non-NULL. */
1123
1124 pid_t
1125 waitpid (pid_t pid, int *status, int options)
1126 {
1127 DWORD active, retval;
1128 int nh;
1129 child_process *cp, *cps[MAX_CHILDREN];
1130 HANDLE wait_hnd[MAX_CHILDREN];
1131 DWORD timeout_ms;
1132 int dont_wait = (options & WNOHANG) != 0;
1133
1134 nh = 0;
1135 /* According to Posix:
1136
1137 PID = -1 means status is requested for any child process.
1138
1139 PID > 0 means status is requested for a single child process
1140 whose pid is PID.
1141
1142 PID = 0 means status is requested for any child process whose
1143 process group ID is equal to that of the calling process. But
1144 since Windows has only a limited support for process groups (only
1145 for console processes and only for the purposes of passing
1146 Ctrl-BREAK signal to them), and since we have no documented way
1147 of determining whether a given process belongs to our group, we
1148 treat 0 as -1.
1149
1150 PID < -1 means status is requested for any child process whose
1151 process group ID is equal to the absolute value of PID. Again,
1152 since we don't support process groups, we treat that as -1. */
1153 if (pid > 0)
1154 {
1155 int our_child = 0;
1156
1157 /* We are requested to wait for a specific child. */
1158 for (cp = child_procs + (child_proc_count-1); cp >= child_procs; cp--)
1159 {
1160 /* Some child_procs might be sockets; ignore them. Also
1161 ignore subprocesses whose output is not yet completely
1162 read. */
1163 if (CHILD_ACTIVE (cp)
1164 && cp->procinfo.hProcess
1165 && cp->pid == pid)
1166 {
1167 our_child = 1;
1168 break;
1169 }
1170 }
1171 if (our_child)
1172 {
1173 if (cp->fd < 0 || (fd_info[cp->fd].flags & FILE_AT_EOF) != 0)
1174 {
1175 wait_hnd[nh] = cp->procinfo.hProcess;
1176 cps[nh] = cp;
1177 nh++;
1178 }
1179 else if (dont_wait)
1180 {
1181 /* PID specifies our subprocess, but its status is not
1182 yet available. */
1183 return 0;
1184 }
1185 }
1186 if (nh == 0)
1187 {
1188 /* No such child process, or nothing to wait for, so fail. */
1189 errno = ECHILD;
1190 return -1;
1191 }
1192 }
1193 else
1194 {
1195 for (cp = child_procs + (child_proc_count-1); cp >= child_procs; cp--)
1196 {
1197 if (CHILD_ACTIVE (cp)
1198 && cp->procinfo.hProcess
1199 && (cp->fd < 0 || (fd_info[cp->fd].flags & FILE_AT_EOF) != 0))
1200 {
1201 wait_hnd[nh] = cp->procinfo.hProcess;
1202 cps[nh] = cp;
1203 nh++;
1204 }
1205 }
1206 if (nh == 0)
1207 {
1208 /* Nothing to wait on, so fail. */
1209 errno = ECHILD;
1210 return -1;
1211 }
1212 }
1213
1214 if (dont_wait)
1215 timeout_ms = 0;
1216 else
1217 timeout_ms = 1000; /* check for quit about once a second. */
1218
1219 do
1220 {
1221 QUIT;
1222 active = WaitForMultipleObjects (nh, wait_hnd, FALSE, timeout_ms);
1223 } while (active == WAIT_TIMEOUT);
1224
1225 if (active == WAIT_FAILED)
1226 {
1227 errno = EBADF;
1228 return -1;
1229 }
1230 else if (active >= WAIT_OBJECT_0
1231 && active < WAIT_OBJECT_0+MAXIMUM_WAIT_OBJECTS)
1232 {
1233 active -= WAIT_OBJECT_0;
1234 }
1235 else if (active >= WAIT_ABANDONED_0
1236 && active < WAIT_ABANDONED_0+MAXIMUM_WAIT_OBJECTS)
1237 {
1238 active -= WAIT_ABANDONED_0;
1239 }
1240 else
1241 emacs_abort ();
1242
1243 if (!GetExitCodeProcess (wait_hnd[active], &retval))
1244 {
1245 DebPrint (("Wait.GetExitCodeProcess failed with %lu\n",
1246 GetLastError ()));
1247 retval = 1;
1248 }
1249 if (retval == STILL_ACTIVE)
1250 {
1251 /* Should never happen. */
1252 DebPrint (("Wait.WaitForMultipleObjects returned an active process\n"));
1253 if (pid > 0 && dont_wait)
1254 return 0;
1255 errno = EINVAL;
1256 return -1;
1257 }
1258
1259 /* Massage the exit code from the process to match the format expected
1260 by the WIFSTOPPED et al macros in syswait.h. Only WIFSIGNALED and
1261 WIFEXITED are supported; WIFSTOPPED doesn't make sense under NT. */
1262
1263 if (retval == STATUS_CONTROL_C_EXIT)
1264 retval = SIGINT;
1265 else
1266 retval <<= 8;
1267
1268 if (pid > 0 && active != 0)
1269 emacs_abort ();
1270 cp = cps[active];
1271 pid = cp->pid;
1272 #ifdef FULL_DEBUG
1273 DebPrint (("Wait signaled with process pid %d\n", cp->pid));
1274 #endif
1275
1276 if (status)
1277 {
1278 *status = retval;
1279 }
1280 else if (synch_process_alive)
1281 {
1282 synch_process_alive = 0;
1283
1284 /* Report the status of the synchronous process. */
1285 if (WIFEXITED (retval))
1286 synch_process_retcode = WEXITSTATUS (retval);
1287 else if (WIFSIGNALED (retval))
1288 {
1289 int code = WTERMSIG (retval);
1290 const char *signame;
1291
1292 synchronize_system_messages_locale ();
1293 signame = strsignal (code);
1294
1295 if (signame == 0)
1296 signame = "unknown";
1297
1298 synch_process_death = signame;
1299 }
1300
1301 reap_subprocess (cp);
1302 }
1303
1304 reap_subprocess (cp);
1305
1306 return pid;
1307 }
1308
1309 /* Old versions of w32api headers don't have separate 32-bit and
1310 64-bit defines, but the one they have matches the 32-bit variety. */
1311 #ifndef IMAGE_NT_OPTIONAL_HDR32_MAGIC
1312 # define IMAGE_NT_OPTIONAL_HDR32_MAGIC IMAGE_NT_OPTIONAL_HDR_MAGIC
1313 # define IMAGE_OPTIONAL_HEADER32 IMAGE_OPTIONAL_HEADER
1314 #endif
1315
1316 static void
1317 w32_executable_type (char * filename,
1318 int * is_dos_app,
1319 int * is_cygnus_app,
1320 int * is_gui_app)
1321 {
1322 file_data executable;
1323 char * p;
1324
1325 /* Default values in case we can't tell for sure. */
1326 *is_dos_app = FALSE;
1327 *is_cygnus_app = FALSE;
1328 *is_gui_app = FALSE;
1329
1330 if (!open_input_file (&executable, filename))
1331 return;
1332
1333 p = strrchr (filename, '.');
1334
1335 /* We can only identify DOS .com programs from the extension. */
1336 if (p && xstrcasecmp (p, ".com") == 0)
1337 *is_dos_app = TRUE;
1338 else if (p && (xstrcasecmp (p, ".bat") == 0
1339 || xstrcasecmp (p, ".cmd") == 0))
1340 {
1341 /* A DOS shell script - it appears that CreateProcess is happy to
1342 accept this (somewhat surprisingly); presumably it looks at
1343 COMSPEC to determine what executable to actually invoke.
1344 Therefore, we have to do the same here as well. */
1345 /* Actually, I think it uses the program association for that
1346 extension, which is defined in the registry. */
1347 p = egetenv ("COMSPEC");
1348 if (p)
1349 w32_executable_type (p, is_dos_app, is_cygnus_app, is_gui_app);
1350 }
1351 else
1352 {
1353 /* Look for DOS .exe signature - if found, we must also check that
1354 it isn't really a 16- or 32-bit Windows exe, since both formats
1355 start with a DOS program stub. Note that 16-bit Windows
1356 executables use the OS/2 1.x format. */
1357
1358 IMAGE_DOS_HEADER * dos_header;
1359 IMAGE_NT_HEADERS * nt_header;
1360
1361 dos_header = (PIMAGE_DOS_HEADER) executable.file_base;
1362 if (dos_header->e_magic != IMAGE_DOS_SIGNATURE)
1363 goto unwind;
1364
1365 nt_header = (PIMAGE_NT_HEADERS) ((unsigned char *) dos_header + dos_header->e_lfanew);
1366
1367 if ((char *) nt_header > (char *) dos_header + executable.size)
1368 {
1369 /* Some dos headers (pkunzip) have bogus e_lfanew fields. */
1370 *is_dos_app = TRUE;
1371 }
1372 else if (nt_header->Signature != IMAGE_NT_SIGNATURE
1373 && LOWORD (nt_header->Signature) != IMAGE_OS2_SIGNATURE)
1374 {
1375 *is_dos_app = TRUE;
1376 }
1377 else if (nt_header->Signature == IMAGE_NT_SIGNATURE)
1378 {
1379 IMAGE_DATA_DIRECTORY *data_dir = NULL;
1380 if (nt_header->OptionalHeader.Magic == IMAGE_NT_OPTIONAL_HDR32_MAGIC)
1381 {
1382 /* Ensure we are using the 32 bit structure. */
1383 IMAGE_OPTIONAL_HEADER32 *opt
1384 = (IMAGE_OPTIONAL_HEADER32*) &(nt_header->OptionalHeader);
1385 data_dir = opt->DataDirectory;
1386 *is_gui_app = (opt->Subsystem == IMAGE_SUBSYSTEM_WINDOWS_GUI);
1387 }
1388 /* MingW 3.12 has the required 64 bit structs, but in case older
1389 versions don't, only check 64 bit exes if we know how. */
1390 #ifdef IMAGE_NT_OPTIONAL_HDR64_MAGIC
1391 else if (nt_header->OptionalHeader.Magic
1392 == IMAGE_NT_OPTIONAL_HDR64_MAGIC)
1393 {
1394 IMAGE_OPTIONAL_HEADER64 *opt
1395 = (IMAGE_OPTIONAL_HEADER64*) &(nt_header->OptionalHeader);
1396 data_dir = opt->DataDirectory;
1397 *is_gui_app = (opt->Subsystem == IMAGE_SUBSYSTEM_WINDOWS_GUI);
1398 }
1399 #endif
1400 if (data_dir)
1401 {
1402 /* Look for cygwin.dll in DLL import list. */
1403 IMAGE_DATA_DIRECTORY import_dir =
1404 data_dir[IMAGE_DIRECTORY_ENTRY_IMPORT];
1405 IMAGE_IMPORT_DESCRIPTOR * imports;
1406 IMAGE_SECTION_HEADER * section;
1407
1408 section = rva_to_section (import_dir.VirtualAddress, nt_header);
1409 imports = RVA_TO_PTR (import_dir.VirtualAddress, section,
1410 executable);
1411
1412 for ( ; imports->Name; imports++)
1413 {
1414 char * dllname = RVA_TO_PTR (imports->Name, section,
1415 executable);
1416
1417 /* The exact name of the cygwin dll has changed with
1418 various releases, but hopefully this will be reasonably
1419 future proof. */
1420 if (strncmp (dllname, "cygwin", 6) == 0)
1421 {
1422 *is_cygnus_app = TRUE;
1423 break;
1424 }
1425 }
1426 }
1427 }
1428 }
1429
1430 unwind:
1431 close_file_data (&executable);
1432 }
1433
1434 static int
1435 compare_env (const void *strp1, const void *strp2)
1436 {
1437 const char *str1 = *(const char **)strp1, *str2 = *(const char **)strp2;
1438
1439 while (*str1 && *str2 && *str1 != '=' && *str2 != '=')
1440 {
1441 /* Sort order in command.com/cmd.exe is based on uppercasing
1442 names, so do the same here. */
1443 if (toupper (*str1) > toupper (*str2))
1444 return 1;
1445 else if (toupper (*str1) < toupper (*str2))
1446 return -1;
1447 str1++, str2++;
1448 }
1449
1450 if (*str1 == '=' && *str2 == '=')
1451 return 0;
1452 else if (*str1 == '=')
1453 return -1;
1454 else
1455 return 1;
1456 }
1457
1458 static void
1459 merge_and_sort_env (char **envp1, char **envp2, char **new_envp)
1460 {
1461 char **optr, **nptr;
1462 int num;
1463
1464 nptr = new_envp;
1465 optr = envp1;
1466 while (*optr)
1467 *nptr++ = *optr++;
1468 num = optr - envp1;
1469
1470 optr = envp2;
1471 while (*optr)
1472 *nptr++ = *optr++;
1473 num += optr - envp2;
1474
1475 qsort (new_envp, num, sizeof (char *), compare_env);
1476
1477 *nptr = NULL;
1478 }
1479
1480 /* When a new child process is created we need to register it in our list,
1481 so intercept spawn requests. */
1482 int
1483 sys_spawnve (int mode, char *cmdname, char **argv, char **envp)
1484 {
1485 Lisp_Object program, full;
1486 char *cmdline, *env, *parg, **targ;
1487 int arglen, numenv;
1488 int pid;
1489 child_process *cp;
1490 int is_dos_app, is_cygnus_app, is_gui_app;
1491 int do_quoting = 0;
1492 char escape_char;
1493 /* We pass our process ID to our children by setting up an environment
1494 variable in their environment. */
1495 char ppid_env_var_buffer[64];
1496 char *extra_env[] = {ppid_env_var_buffer, NULL};
1497 /* These are the characters that cause an argument to need quoting.
1498 Arguments with whitespace characters need quoting to prevent the
1499 argument being split into two or more. Arguments with wildcards
1500 are also quoted, for consistency with posix platforms, where wildcards
1501 are not expanded if we run the program directly without a shell.
1502 Some extra whitespace characters need quoting in Cygwin programs,
1503 so this list is conditionally modified below. */
1504 char *sepchars = " \t*?";
1505
1506 /* We don't care about the other modes */
1507 if (mode != _P_NOWAIT)
1508 {
1509 errno = EINVAL;
1510 return -1;
1511 }
1512
1513 /* Handle executable names without an executable suffix. */
1514 program = build_string (cmdname);
1515 if (NILP (Ffile_executable_p (program)))
1516 {
1517 struct gcpro gcpro1;
1518
1519 full = Qnil;
1520 GCPRO1 (program);
1521 openp (Vexec_path, program, Vexec_suffixes, &full, make_number (X_OK));
1522 UNGCPRO;
1523 if (NILP (full))
1524 {
1525 errno = EINVAL;
1526 return -1;
1527 }
1528 program = full;
1529 }
1530
1531 /* make sure argv[0] and cmdname are both in DOS format */
1532 cmdname = SDATA (program);
1533 unixtodos_filename (cmdname);
1534 argv[0] = cmdname;
1535
1536 /* Determine whether program is a 16-bit DOS executable, or a 32-bit Windows
1537 executable that is implicitly linked to the Cygnus dll (implying it
1538 was compiled with the Cygnus GNU toolchain and hence relies on
1539 cygwin.dll to parse the command line - we use this to decide how to
1540 escape quote chars in command line args that must be quoted).
1541
1542 Also determine whether it is a GUI app, so that we don't hide its
1543 initial window unless specifically requested. */
1544 w32_executable_type (cmdname, &is_dos_app, &is_cygnus_app, &is_gui_app);
1545
1546 /* On Windows 95, if cmdname is a DOS app, we invoke a helper
1547 application to start it by specifying the helper app as cmdname,
1548 while leaving the real app name as argv[0]. */
1549 if (is_dos_app)
1550 {
1551 cmdname = alloca (MAXPATHLEN);
1552 if (egetenv ("CMDPROXY"))
1553 strcpy (cmdname, egetenv ("CMDPROXY"));
1554 else
1555 {
1556 strcpy (cmdname, SDATA (Vinvocation_directory));
1557 strcat (cmdname, "cmdproxy.exe");
1558 }
1559 unixtodos_filename (cmdname);
1560 }
1561
1562 /* we have to do some conjuring here to put argv and envp into the
1563 form CreateProcess wants... argv needs to be a space separated/null
1564 terminated list of parameters, and envp is a null
1565 separated/double-null terminated list of parameters.
1566
1567 Additionally, zero-length args and args containing whitespace or
1568 quote chars need to be wrapped in double quotes - for this to work,
1569 embedded quotes need to be escaped as well. The aim is to ensure
1570 the child process reconstructs the argv array we start with
1571 exactly, so we treat quotes at the beginning and end of arguments
1572 as embedded quotes.
1573
1574 The w32 GNU-based library from Cygnus doubles quotes to escape
1575 them, while MSVC uses backslash for escaping. (Actually the MSVC
1576 startup code does attempt to recognize doubled quotes and accept
1577 them, but gets it wrong and ends up requiring three quotes to get a
1578 single embedded quote!) So by default we decide whether to use
1579 quote or backslash as the escape character based on whether the
1580 binary is apparently a Cygnus compiled app.
1581
1582 Note that using backslash to escape embedded quotes requires
1583 additional special handling if an embedded quote is already
1584 preceded by backslash, or if an arg requiring quoting ends with
1585 backslash. In such cases, the run of escape characters needs to be
1586 doubled. For consistency, we apply this special handling as long
1587 as the escape character is not quote.
1588
1589 Since we have no idea how large argv and envp are likely to be we
1590 figure out list lengths on the fly and allocate them. */
1591
1592 if (!NILP (Vw32_quote_process_args))
1593 {
1594 do_quoting = 1;
1595 /* Override escape char by binding w32-quote-process-args to
1596 desired character, or use t for auto-selection. */
1597 if (INTEGERP (Vw32_quote_process_args))
1598 escape_char = XINT (Vw32_quote_process_args);
1599 else
1600 escape_char = is_cygnus_app ? '"' : '\\';
1601 }
1602
1603 /* Cygwin apps needs quoting a bit more often. */
1604 if (escape_char == '"')
1605 sepchars = "\r\n\t\f '";
1606
1607 /* do argv... */
1608 arglen = 0;
1609 targ = argv;
1610 while (*targ)
1611 {
1612 char * p = *targ;
1613 int need_quotes = 0;
1614 int escape_char_run = 0;
1615
1616 if (*p == 0)
1617 need_quotes = 1;
1618 for ( ; *p; p++)
1619 {
1620 if (escape_char == '"' && *p == '\\')
1621 /* If it's a Cygwin app, \ needs to be escaped. */
1622 arglen++;
1623 else if (*p == '"')
1624 {
1625 /* allow for embedded quotes to be escaped */
1626 arglen++;
1627 need_quotes = 1;
1628 /* handle the case where the embedded quote is already escaped */
1629 if (escape_char_run > 0)
1630 {
1631 /* To preserve the arg exactly, we need to double the
1632 preceding escape characters (plus adding one to
1633 escape the quote character itself). */
1634 arglen += escape_char_run;
1635 }
1636 }
1637 else if (strchr (sepchars, *p) != NULL)
1638 {
1639 need_quotes = 1;
1640 }
1641
1642 if (*p == escape_char && escape_char != '"')
1643 escape_char_run++;
1644 else
1645 escape_char_run = 0;
1646 }
1647 if (need_quotes)
1648 {
1649 arglen += 2;
1650 /* handle the case where the arg ends with an escape char - we
1651 must not let the enclosing quote be escaped. */
1652 if (escape_char_run > 0)
1653 arglen += escape_char_run;
1654 }
1655 arglen += strlen (*targ++) + 1;
1656 }
1657 cmdline = alloca (arglen);
1658 targ = argv;
1659 parg = cmdline;
1660 while (*targ)
1661 {
1662 char * p = *targ;
1663 int need_quotes = 0;
1664
1665 if (*p == 0)
1666 need_quotes = 1;
1667
1668 if (do_quoting)
1669 {
1670 for ( ; *p; p++)
1671 if ((strchr (sepchars, *p) != NULL) || *p == '"')
1672 need_quotes = 1;
1673 }
1674 if (need_quotes)
1675 {
1676 int escape_char_run = 0;
1677 char * first;
1678 char * last;
1679
1680 p = *targ;
1681 first = p;
1682 last = p + strlen (p) - 1;
1683 *parg++ = '"';
1684 #if 0
1685 /* This version does not escape quotes if they occur at the
1686 beginning or end of the arg - this could lead to incorrect
1687 behavior when the arg itself represents a command line
1688 containing quoted args. I believe this was originally done
1689 as a hack to make some things work, before
1690 `w32-quote-process-args' was added. */
1691 while (*p)
1692 {
1693 if (*p == '"' && p > first && p < last)
1694 *parg++ = escape_char; /* escape embedded quotes */
1695 *parg++ = *p++;
1696 }
1697 #else
1698 for ( ; *p; p++)
1699 {
1700 if (*p == '"')
1701 {
1702 /* double preceding escape chars if any */
1703 while (escape_char_run > 0)
1704 {
1705 *parg++ = escape_char;
1706 escape_char_run--;
1707 }
1708 /* escape all quote chars, even at beginning or end */
1709 *parg++ = escape_char;
1710 }
1711 else if (escape_char == '"' && *p == '\\')
1712 *parg++ = '\\';
1713 *parg++ = *p;
1714
1715 if (*p == escape_char && escape_char != '"')
1716 escape_char_run++;
1717 else
1718 escape_char_run = 0;
1719 }
1720 /* double escape chars before enclosing quote */
1721 while (escape_char_run > 0)
1722 {
1723 *parg++ = escape_char;
1724 escape_char_run--;
1725 }
1726 #endif
1727 *parg++ = '"';
1728 }
1729 else
1730 {
1731 strcpy (parg, *targ);
1732 parg += strlen (*targ);
1733 }
1734 *parg++ = ' ';
1735 targ++;
1736 }
1737 *--parg = '\0';
1738
1739 /* and envp... */
1740 arglen = 1;
1741 targ = envp;
1742 numenv = 1; /* for end null */
1743 while (*targ)
1744 {
1745 arglen += strlen (*targ++) + 1;
1746 numenv++;
1747 }
1748 /* extra env vars... */
1749 sprintf (ppid_env_var_buffer, "EM_PARENT_PROCESS_ID=%lu",
1750 GetCurrentProcessId ());
1751 arglen += strlen (ppid_env_var_buffer) + 1;
1752 numenv++;
1753
1754 /* merge env passed in and extra env into one, and sort it. */
1755 targ = (char **) alloca (numenv * sizeof (char *));
1756 merge_and_sort_env (envp, extra_env, targ);
1757
1758 /* concatenate env entries. */
1759 env = alloca (arglen);
1760 parg = env;
1761 while (*targ)
1762 {
1763 strcpy (parg, *targ);
1764 parg += strlen (*targ++);
1765 *parg++ = '\0';
1766 }
1767 *parg++ = '\0';
1768 *parg = '\0';
1769
1770 cp = new_child ();
1771 if (cp == NULL)
1772 {
1773 errno = EAGAIN;
1774 return -1;
1775 }
1776
1777 /* Now create the process. */
1778 if (!create_child (cmdname, cmdline, env, is_gui_app, &pid, cp))
1779 {
1780 delete_child (cp);
1781 errno = ENOEXEC;
1782 return -1;
1783 }
1784
1785 return pid;
1786 }
1787
1788 /* Emulate the select call
1789 Wait for available input on any of the given rfds, or timeout if
1790 a timeout is given and no input is detected
1791 wfds and efds are not supported and must be NULL.
1792
1793 For simplicity, we detect the death of child processes here and
1794 synchronously call the SIGCHLD handler. Since it is possible for
1795 children to be created without a corresponding pipe handle from which
1796 to read output, we wait separately on the process handles as well as
1797 the char_avail events for each process pipe. We only call
1798 wait/reap_process when the process actually terminates.
1799
1800 To reduce the number of places in which Emacs can be hung such that
1801 C-g is not able to interrupt it, we always wait on interrupt_handle
1802 (which is signaled by the input thread when C-g is detected). If we
1803 detect that we were woken up by C-g, we return -1 with errno set to
1804 EINTR as on Unix. */
1805
1806 /* From w32console.c */
1807 extern HANDLE keyboard_handle;
1808
1809 /* From w32xfns.c */
1810 extern HANDLE interrupt_handle;
1811
1812 /* From process.c */
1813 extern int proc_buffered_char[];
1814
1815 int
1816 sys_select (int nfds, SELECT_TYPE *rfds, SELECT_TYPE *wfds, SELECT_TYPE *efds,
1817 EMACS_TIME *timeout, void *ignored)
1818 {
1819 SELECT_TYPE orfds;
1820 DWORD timeout_ms, start_time;
1821 int i, nh, nc, nr;
1822 DWORD active;
1823 child_process *cp, *cps[MAX_CHILDREN];
1824 HANDLE wait_hnd[MAXDESC + MAX_CHILDREN];
1825 int fdindex[MAXDESC]; /* mapping from wait handles back to descriptors */
1826
1827 timeout_ms =
1828 timeout ? (timeout->tv_sec * 1000 + timeout->tv_nsec / 1000000) : INFINITE;
1829
1830 /* If the descriptor sets are NULL but timeout isn't, then just Sleep. */
1831 if (rfds == NULL && wfds == NULL && efds == NULL && timeout != NULL)
1832 {
1833 Sleep (timeout_ms);
1834 return 0;
1835 }
1836
1837 /* Otherwise, we only handle rfds, so fail otherwise. */
1838 if (rfds == NULL || wfds != NULL || efds != NULL)
1839 {
1840 errno = EINVAL;
1841 return -1;
1842 }
1843
1844 orfds = *rfds;
1845 FD_ZERO (rfds);
1846 nr = 0;
1847
1848 /* Always wait on interrupt_handle, to detect C-g (quit). */
1849 wait_hnd[0] = interrupt_handle;
1850 fdindex[0] = -1;
1851
1852 /* Build a list of pipe handles to wait on. */
1853 nh = 1;
1854 for (i = 0; i < nfds; i++)
1855 if (FD_ISSET (i, &orfds))
1856 {
1857 if (i == 0)
1858 {
1859 if (keyboard_handle)
1860 {
1861 /* Handle stdin specially */
1862 wait_hnd[nh] = keyboard_handle;
1863 fdindex[nh] = i;
1864 nh++;
1865 }
1866
1867 /* Check for any emacs-generated input in the queue since
1868 it won't be detected in the wait */
1869 if (detect_input_pending ())
1870 {
1871 FD_SET (i, rfds);
1872 return 1;
1873 }
1874 }
1875 else
1876 {
1877 /* Child process and socket input */
1878 cp = fd_info[i].cp;
1879 if (cp)
1880 {
1881 int current_status = cp->status;
1882
1883 if (current_status == STATUS_READ_ACKNOWLEDGED)
1884 {
1885 /* Tell reader thread which file handle to use. */
1886 cp->fd = i;
1887 /* Wake up the reader thread for this process */
1888 cp->status = STATUS_READ_READY;
1889 if (!SetEvent (cp->char_consumed))
1890 DebPrint (("nt_select.SetEvent failed with "
1891 "%lu for fd %ld\n", GetLastError (), i));
1892 }
1893
1894 #ifdef CHECK_INTERLOCK
1895 /* slightly crude cross-checking of interlock between threads */
1896
1897 current_status = cp->status;
1898 if (WaitForSingleObject (cp->char_avail, 0) == WAIT_OBJECT_0)
1899 {
1900 /* char_avail has been signaled, so status (which may
1901 have changed) should indicate read has completed
1902 but has not been acknowledged. */
1903 current_status = cp->status;
1904 if (current_status != STATUS_READ_SUCCEEDED
1905 && current_status != STATUS_READ_FAILED)
1906 DebPrint (("char_avail set, but read not completed: status %d\n",
1907 current_status));
1908 }
1909 else
1910 {
1911 /* char_avail has not been signaled, so status should
1912 indicate that read is in progress; small possibility
1913 that read has completed but event wasn't yet signaled
1914 when we tested it (because a context switch occurred
1915 or if running on separate CPUs). */
1916 if (current_status != STATUS_READ_READY
1917 && current_status != STATUS_READ_IN_PROGRESS
1918 && current_status != STATUS_READ_SUCCEEDED
1919 && current_status != STATUS_READ_FAILED)
1920 DebPrint (("char_avail reset, but read status is bad: %d\n",
1921 current_status));
1922 }
1923 #endif
1924 wait_hnd[nh] = cp->char_avail;
1925 fdindex[nh] = i;
1926 if (!wait_hnd[nh]) emacs_abort ();
1927 nh++;
1928 #ifdef FULL_DEBUG
1929 DebPrint (("select waiting on child %d fd %d\n",
1930 cp-child_procs, i));
1931 #endif
1932 }
1933 else
1934 {
1935 /* Unable to find something to wait on for this fd, skip */
1936
1937 /* Note that this is not a fatal error, and can in fact
1938 happen in unusual circumstances. Specifically, if
1939 sys_spawnve fails, eg. because the program doesn't
1940 exist, and debug-on-error is t so Fsignal invokes a
1941 nested input loop, then the process output pipe is
1942 still included in input_wait_mask with no child_proc
1943 associated with it. (It is removed when the debugger
1944 exits the nested input loop and the error is thrown.) */
1945
1946 DebPrint (("sys_select: fd %ld is invalid! ignoring\n", i));
1947 }
1948 }
1949 }
1950
1951 count_children:
1952 /* Add handles of child processes. */
1953 nc = 0;
1954 for (cp = child_procs + (child_proc_count-1); cp >= child_procs; cp--)
1955 /* Some child_procs might be sockets; ignore them. Also some
1956 children may have died already, but we haven't finished reading
1957 the process output; ignore them too. */
1958 if (CHILD_ACTIVE (cp) && cp->procinfo.hProcess
1959 && (cp->fd < 0
1960 || (fd_info[cp->fd].flags & FILE_SEND_SIGCHLD) == 0
1961 || (fd_info[cp->fd].flags & FILE_AT_EOF) != 0)
1962 )
1963 {
1964 wait_hnd[nh + nc] = cp->procinfo.hProcess;
1965 cps[nc] = cp;
1966 nc++;
1967 }
1968
1969 /* Nothing to look for, so we didn't find anything */
1970 if (nh + nc == 0)
1971 {
1972 if (timeout)
1973 Sleep (timeout_ms);
1974 return 0;
1975 }
1976
1977 start_time = GetTickCount ();
1978
1979 /* Wait for input or child death to be signaled. If user input is
1980 allowed, then also accept window messages. */
1981 if (FD_ISSET (0, &orfds))
1982 active = MsgWaitForMultipleObjects (nh + nc, wait_hnd, FALSE, timeout_ms,
1983 QS_ALLINPUT);
1984 else
1985 active = WaitForMultipleObjects (nh + nc, wait_hnd, FALSE, timeout_ms);
1986
1987 if (active == WAIT_FAILED)
1988 {
1989 DebPrint (("select.WaitForMultipleObjects (%d, %lu) failed with %lu\n",
1990 nh + nc, timeout_ms, GetLastError ()));
1991 /* don't return EBADF - this causes wait_reading_process_output to
1992 abort; WAIT_FAILED is returned when single-stepping under
1993 Windows 95 after switching thread focus in debugger, and
1994 possibly at other times. */
1995 errno = EINTR;
1996 return -1;
1997 }
1998 else if (active == WAIT_TIMEOUT)
1999 {
2000 return 0;
2001 }
2002 else if (active >= WAIT_OBJECT_0
2003 && active < WAIT_OBJECT_0+MAXIMUM_WAIT_OBJECTS)
2004 {
2005 active -= WAIT_OBJECT_0;
2006 }
2007 else if (active >= WAIT_ABANDONED_0
2008 && active < WAIT_ABANDONED_0+MAXIMUM_WAIT_OBJECTS)
2009 {
2010 active -= WAIT_ABANDONED_0;
2011 }
2012 else
2013 emacs_abort ();
2014
2015 /* Loop over all handles after active (now officially documented as
2016 being the first signaled handle in the array). We do this to
2017 ensure fairness, so that all channels with data available will be
2018 processed - otherwise higher numbered channels could be starved. */
2019 do
2020 {
2021 if (active == nh + nc)
2022 {
2023 /* There are messages in the lisp thread's queue; we must
2024 drain the queue now to ensure they are processed promptly,
2025 because if we don't do so, we will not be woken again until
2026 further messages arrive.
2027
2028 NB. If ever we allow window message procedures to callback
2029 into lisp, we will need to ensure messages are dispatched
2030 at a safe time for lisp code to be run (*), and we may also
2031 want to provide some hooks in the dispatch loop to cater
2032 for modeless dialogs created by lisp (ie. to register
2033 window handles to pass to IsDialogMessage).
2034
2035 (*) Note that MsgWaitForMultipleObjects above is an
2036 internal dispatch point for messages that are sent to
2037 windows created by this thread. */
2038 drain_message_queue ();
2039 }
2040 else if (active >= nh)
2041 {
2042 cp = cps[active - nh];
2043
2044 /* We cannot always signal SIGCHLD immediately; if we have not
2045 finished reading the process output, we must delay sending
2046 SIGCHLD until we do. */
2047
2048 if (cp->fd >= 0 && (fd_info[cp->fd].flags & FILE_AT_EOF) == 0)
2049 fd_info[cp->fd].flags |= FILE_SEND_SIGCHLD;
2050 /* SIG_DFL for SIGCHLD is ignore */
2051 else if (sig_handlers[SIGCHLD] != SIG_DFL &&
2052 sig_handlers[SIGCHLD] != SIG_IGN)
2053 {
2054 #ifdef FULL_DEBUG
2055 DebPrint (("select calling SIGCHLD handler for pid %d\n",
2056 cp->pid));
2057 #endif
2058 sig_handlers[SIGCHLD] (SIGCHLD);
2059 }
2060 }
2061 else if (fdindex[active] == -1)
2062 {
2063 /* Quit (C-g) was detected. */
2064 errno = EINTR;
2065 return -1;
2066 }
2067 else if (fdindex[active] == 0)
2068 {
2069 /* Keyboard input available */
2070 FD_SET (0, rfds);
2071 nr++;
2072 }
2073 else
2074 {
2075 /* must be a socket or pipe - read ahead should have
2076 completed, either succeeding or failing. */
2077 FD_SET (fdindex[active], rfds);
2078 nr++;
2079 }
2080
2081 /* Even though wait_reading_process_output only reads from at most
2082 one channel, we must process all channels here so that we reap
2083 all children that have died. */
2084 while (++active < nh + nc)
2085 if (WaitForSingleObject (wait_hnd[active], 0) == WAIT_OBJECT_0)
2086 break;
2087 } while (active < nh + nc);
2088
2089 /* If no input has arrived and timeout hasn't expired, wait again. */
2090 if (nr == 0)
2091 {
2092 DWORD elapsed = GetTickCount () - start_time;
2093
2094 if (timeout_ms > elapsed) /* INFINITE is MAX_UINT */
2095 {
2096 if (timeout_ms != INFINITE)
2097 timeout_ms -= elapsed;
2098 goto count_children;
2099 }
2100 }
2101
2102 return nr;
2103 }
2104
2105 /* Substitute for certain kill () operations */
2106
2107 static BOOL CALLBACK
2108 find_child_console (HWND hwnd, LPARAM arg)
2109 {
2110 child_process * cp = (child_process *) arg;
2111 DWORD thread_id;
2112 DWORD process_id;
2113
2114 thread_id = GetWindowThreadProcessId (hwnd, &process_id);
2115 if (process_id == cp->procinfo.dwProcessId)
2116 {
2117 char window_class[32];
2118
2119 GetClassName (hwnd, window_class, sizeof (window_class));
2120 if (strcmp (window_class,
2121 (os_subtype == OS_9X)
2122 ? "tty"
2123 : "ConsoleWindowClass") == 0)
2124 {
2125 cp->hwnd = hwnd;
2126 return FALSE;
2127 }
2128 }
2129 /* keep looking */
2130 return TRUE;
2131 }
2132
2133 /* Emulate 'kill', but only for other processes. */
2134 int
2135 sys_kill (int pid, int sig)
2136 {
2137 child_process *cp;
2138 HANDLE proc_hand;
2139 int need_to_free = 0;
2140 int rc = 0;
2141
2142 /* Only handle signals that will result in the process dying */
2143 if (sig != SIGINT && sig != SIGKILL && sig != SIGQUIT && sig != SIGHUP)
2144 {
2145 errno = EINVAL;
2146 return -1;
2147 }
2148
2149 cp = find_child_pid (pid);
2150 if (cp == NULL)
2151 {
2152 /* We were passed a PID of something other than our subprocess.
2153 If that is our own PID, we will send to ourself a message to
2154 close the selected frame, which does not necessarily
2155 terminates Emacs. But then we are not supposed to call
2156 sys_kill with our own PID. */
2157 proc_hand = OpenProcess (PROCESS_TERMINATE, 0, pid);
2158 if (proc_hand == NULL)
2159 {
2160 errno = EPERM;
2161 return -1;
2162 }
2163 need_to_free = 1;
2164 }
2165 else
2166 {
2167 proc_hand = cp->procinfo.hProcess;
2168 pid = cp->procinfo.dwProcessId;
2169
2170 /* Try to locate console window for process. */
2171 EnumWindows (find_child_console, (LPARAM) cp);
2172 }
2173
2174 if (sig == SIGINT || sig == SIGQUIT)
2175 {
2176 if (NILP (Vw32_start_process_share_console) && cp && cp->hwnd)
2177 {
2178 BYTE control_scan_code = (BYTE) MapVirtualKey (VK_CONTROL, 0);
2179 /* Fake Ctrl-C for SIGINT, and Ctrl-Break for SIGQUIT. */
2180 BYTE vk_break_code = (sig == SIGINT) ? 'C' : VK_CANCEL;
2181 BYTE break_scan_code = (BYTE) MapVirtualKey (vk_break_code, 0);
2182 HWND foreground_window;
2183
2184 if (break_scan_code == 0)
2185 {
2186 /* Fake Ctrl-C for SIGQUIT if we can't manage Ctrl-Break. */
2187 vk_break_code = 'C';
2188 break_scan_code = (BYTE) MapVirtualKey (vk_break_code, 0);
2189 }
2190
2191 foreground_window = GetForegroundWindow ();
2192 if (foreground_window)
2193 {
2194 /* NT 5.0, and apparently also Windows 98, will not allow
2195 a Window to be set to foreground directly without the
2196 user's involvement. The workaround is to attach
2197 ourselves to the thread that owns the foreground
2198 window, since that is the only thread that can set the
2199 foreground window. */
2200 DWORD foreground_thread, child_thread;
2201 foreground_thread =
2202 GetWindowThreadProcessId (foreground_window, NULL);
2203 if (foreground_thread == GetCurrentThreadId ()
2204 || !AttachThreadInput (GetCurrentThreadId (),
2205 foreground_thread, TRUE))
2206 foreground_thread = 0;
2207
2208 child_thread = GetWindowThreadProcessId (cp->hwnd, NULL);
2209 if (child_thread == GetCurrentThreadId ()
2210 || !AttachThreadInput (GetCurrentThreadId (),
2211 child_thread, TRUE))
2212 child_thread = 0;
2213
2214 /* Set the foreground window to the child. */
2215 if (SetForegroundWindow (cp->hwnd))
2216 {
2217 /* Generate keystrokes as if user had typed Ctrl-Break or
2218 Ctrl-C. */
2219 keybd_event (VK_CONTROL, control_scan_code, 0, 0);
2220 keybd_event (vk_break_code, break_scan_code,
2221 (vk_break_code == 'C' ? 0 : KEYEVENTF_EXTENDEDKEY), 0);
2222 keybd_event (vk_break_code, break_scan_code,
2223 (vk_break_code == 'C' ? 0 : KEYEVENTF_EXTENDEDKEY)
2224 | KEYEVENTF_KEYUP, 0);
2225 keybd_event (VK_CONTROL, control_scan_code,
2226 KEYEVENTF_KEYUP, 0);
2227
2228 /* Sleep for a bit to give time for Emacs frame to respond
2229 to focus change events (if Emacs was active app). */
2230 Sleep (100);
2231
2232 SetForegroundWindow (foreground_window);
2233 }
2234 /* Detach from the foreground and child threads now that
2235 the foreground switching is over. */
2236 if (foreground_thread)
2237 AttachThreadInput (GetCurrentThreadId (),
2238 foreground_thread, FALSE);
2239 if (child_thread)
2240 AttachThreadInput (GetCurrentThreadId (),
2241 child_thread, FALSE);
2242 }
2243 }
2244 /* Ctrl-Break is NT equivalent of SIGINT. */
2245 else if (!GenerateConsoleCtrlEvent (CTRL_BREAK_EVENT, pid))
2246 {
2247 DebPrint (("sys_kill.GenerateConsoleCtrlEvent return %d "
2248 "for pid %lu\n", GetLastError (), pid));
2249 errno = EINVAL;
2250 rc = -1;
2251 }
2252 }
2253 else
2254 {
2255 if (NILP (Vw32_start_process_share_console) && cp && cp->hwnd)
2256 {
2257 #if 1
2258 if (os_subtype == OS_9X)
2259 {
2260 /*
2261 Another possibility is to try terminating the VDM out-right by
2262 calling the Shell VxD (id 0x17) V86 interface, function #4
2263 "SHELL_Destroy_VM", ie.
2264
2265 mov edx,4
2266 mov ebx,vm_handle
2267 call shellapi
2268
2269 First need to determine the current VM handle, and then arrange for
2270 the shellapi call to be made from the system vm (by using
2271 Switch_VM_and_callback).
2272
2273 Could try to invoke DestroyVM through CallVxD.
2274
2275 */
2276 #if 0
2277 /* On Windows 95, posting WM_QUIT causes the 16-bit subsystem
2278 to hang when cmdproxy is used in conjunction with
2279 command.com for an interactive shell. Posting
2280 WM_CLOSE pops up a dialog that, when Yes is selected,
2281 does the same thing. TerminateProcess is also less
2282 than ideal in that subprocesses tend to stick around
2283 until the machine is shutdown, but at least it
2284 doesn't freeze the 16-bit subsystem. */
2285 PostMessage (cp->hwnd, WM_QUIT, 0xff, 0);
2286 #endif
2287 if (!TerminateProcess (proc_hand, 0xff))
2288 {
2289 DebPrint (("sys_kill.TerminateProcess returned %d "
2290 "for pid %lu\n", GetLastError (), pid));
2291 errno = EINVAL;
2292 rc = -1;
2293 }
2294 }
2295 else
2296 #endif
2297 PostMessage (cp->hwnd, WM_CLOSE, 0, 0);
2298 }
2299 /* Kill the process. On W32 this doesn't kill child processes
2300 so it doesn't work very well for shells which is why it's not
2301 used in every case. */
2302 else if (!TerminateProcess (proc_hand, 0xff))
2303 {
2304 DebPrint (("sys_kill.TerminateProcess returned %d "
2305 "for pid %lu\n", GetLastError (), pid));
2306 errno = EINVAL;
2307 rc = -1;
2308 }
2309 }
2310
2311 if (need_to_free)
2312 CloseHandle (proc_hand);
2313
2314 return rc;
2315 }
2316
2317 /* The following two routines are used to manipulate stdin, stdout, and
2318 stderr of our child processes.
2319
2320 Assuming that in, out, and err are *not* inheritable, we make them
2321 stdin, stdout, and stderr of the child as follows:
2322
2323 - Save the parent's current standard handles.
2324 - Set the std handles to inheritable duplicates of the ones being passed in.
2325 (Note that _get_osfhandle() is an io.h procedure that retrieves the
2326 NT file handle for a crt file descriptor.)
2327 - Spawn the child, which inherits in, out, and err as stdin,
2328 stdout, and stderr. (see Spawnve)
2329 - Close the std handles passed to the child.
2330 - Reset the parent's standard handles to the saved handles.
2331 (see reset_standard_handles)
2332 We assume that the caller closes in, out, and err after calling us. */
2333
2334 void
2335 prepare_standard_handles (int in, int out, int err, HANDLE handles[3])
2336 {
2337 HANDLE parent;
2338 HANDLE newstdin, newstdout, newstderr;
2339
2340 parent = GetCurrentProcess ();
2341
2342 handles[0] = GetStdHandle (STD_INPUT_HANDLE);
2343 handles[1] = GetStdHandle (STD_OUTPUT_HANDLE);
2344 handles[2] = GetStdHandle (STD_ERROR_HANDLE);
2345
2346 /* make inheritable copies of the new handles */
2347 if (!DuplicateHandle (parent,
2348 (HANDLE) _get_osfhandle (in),
2349 parent,
2350 &newstdin,
2351 0,
2352 TRUE,
2353 DUPLICATE_SAME_ACCESS))
2354 report_file_error ("Duplicating input handle for child", Qnil);
2355
2356 if (!DuplicateHandle (parent,
2357 (HANDLE) _get_osfhandle (out),
2358 parent,
2359 &newstdout,
2360 0,
2361 TRUE,
2362 DUPLICATE_SAME_ACCESS))
2363 report_file_error ("Duplicating output handle for child", Qnil);
2364
2365 if (!DuplicateHandle (parent,
2366 (HANDLE) _get_osfhandle (err),
2367 parent,
2368 &newstderr,
2369 0,
2370 TRUE,
2371 DUPLICATE_SAME_ACCESS))
2372 report_file_error ("Duplicating error handle for child", Qnil);
2373
2374 /* and store them as our std handles */
2375 if (!SetStdHandle (STD_INPUT_HANDLE, newstdin))
2376 report_file_error ("Changing stdin handle", Qnil);
2377
2378 if (!SetStdHandle (STD_OUTPUT_HANDLE, newstdout))
2379 report_file_error ("Changing stdout handle", Qnil);
2380
2381 if (!SetStdHandle (STD_ERROR_HANDLE, newstderr))
2382 report_file_error ("Changing stderr handle", Qnil);
2383 }
2384
2385 void
2386 reset_standard_handles (int in, int out, int err, HANDLE handles[3])
2387 {
2388 /* close the duplicated handles passed to the child */
2389 CloseHandle (GetStdHandle (STD_INPUT_HANDLE));
2390 CloseHandle (GetStdHandle (STD_OUTPUT_HANDLE));
2391 CloseHandle (GetStdHandle (STD_ERROR_HANDLE));
2392
2393 /* now restore parent's saved std handles */
2394 SetStdHandle (STD_INPUT_HANDLE, handles[0]);
2395 SetStdHandle (STD_OUTPUT_HANDLE, handles[1]);
2396 SetStdHandle (STD_ERROR_HANDLE, handles[2]);
2397 }
2398
2399 void
2400 set_process_dir (char * dir)
2401 {
2402 process_dir = dir;
2403 }
2404
2405 /* To avoid problems with winsock implementations that work over dial-up
2406 connections causing or requiring a connection to exist while Emacs is
2407 running, Emacs no longer automatically loads winsock on startup if it
2408 is present. Instead, it will be loaded when open-network-stream is
2409 first called.
2410
2411 To allow full control over when winsock is loaded, we provide these
2412 two functions to dynamically load and unload winsock. This allows
2413 dial-up users to only be connected when they actually need to use
2414 socket services. */
2415
2416 /* From w32.c */
2417 extern HANDLE winsock_lib;
2418 extern BOOL term_winsock (void);
2419 extern BOOL init_winsock (int load_now);
2420
2421 DEFUN ("w32-has-winsock", Fw32_has_winsock, Sw32_has_winsock, 0, 1, 0,
2422 doc: /* Test for presence of the Windows socket library `winsock'.
2423 Returns non-nil if winsock support is present, nil otherwise.
2424
2425 If the optional argument LOAD-NOW is non-nil, the winsock library is
2426 also loaded immediately if not already loaded. If winsock is loaded,
2427 the winsock local hostname is returned (since this may be different from
2428 the value of `system-name' and should supplant it), otherwise t is
2429 returned to indicate winsock support is present. */)
2430 (Lisp_Object load_now)
2431 {
2432 int have_winsock;
2433
2434 have_winsock = init_winsock (!NILP (load_now));
2435 if (have_winsock)
2436 {
2437 if (winsock_lib != NULL)
2438 {
2439 /* Return new value for system-name. The best way to do this
2440 is to call init_system_name, saving and restoring the
2441 original value to avoid side-effects. */
2442 Lisp_Object orig_hostname = Vsystem_name;
2443 Lisp_Object hostname;
2444
2445 init_system_name ();
2446 hostname = Vsystem_name;
2447 Vsystem_name = orig_hostname;
2448 return hostname;
2449 }
2450 return Qt;
2451 }
2452 return Qnil;
2453 }
2454
2455 DEFUN ("w32-unload-winsock", Fw32_unload_winsock, Sw32_unload_winsock,
2456 0, 0, 0,
2457 doc: /* Unload the Windows socket library `winsock' if loaded.
2458 This is provided to allow dial-up socket connections to be disconnected
2459 when no longer needed. Returns nil without unloading winsock if any
2460 socket connections still exist. */)
2461 (void)
2462 {
2463 return term_winsock () ? Qt : Qnil;
2464 }
2465
2466 \f
2467 /* Some miscellaneous functions that are Windows specific, but not GUI
2468 specific (ie. are applicable in terminal or batch mode as well). */
2469
2470 DEFUN ("w32-short-file-name", Fw32_short_file_name, Sw32_short_file_name, 1, 1, 0,
2471 doc: /* Return the short file name version (8.3) of the full path of FILENAME.
2472 If FILENAME does not exist, return nil.
2473 All path elements in FILENAME are converted to their short names. */)
2474 (Lisp_Object filename)
2475 {
2476 char shortname[MAX_PATH];
2477
2478 CHECK_STRING (filename);
2479
2480 /* first expand it. */
2481 filename = Fexpand_file_name (filename, Qnil);
2482
2483 /* luckily, this returns the short version of each element in the path. */
2484 if (GetShortPathName (SDATA (ENCODE_FILE (filename)), shortname, MAX_PATH) == 0)
2485 return Qnil;
2486
2487 dostounix_filename (shortname);
2488
2489 return build_string (shortname);
2490 }
2491
2492
2493 DEFUN ("w32-long-file-name", Fw32_long_file_name, Sw32_long_file_name,
2494 1, 1, 0,
2495 doc: /* Return the long file name version of the full path of FILENAME.
2496 If FILENAME does not exist, return nil.
2497 All path elements in FILENAME are converted to their long names. */)
2498 (Lisp_Object filename)
2499 {
2500 char longname[ MAX_PATH ];
2501 int drive_only = 0;
2502
2503 CHECK_STRING (filename);
2504
2505 if (SBYTES (filename) == 2
2506 && *(SDATA (filename) + 1) == ':')
2507 drive_only = 1;
2508
2509 /* first expand it. */
2510 filename = Fexpand_file_name (filename, Qnil);
2511
2512 if (!w32_get_long_filename (SDATA (ENCODE_FILE (filename)), longname, MAX_PATH))
2513 return Qnil;
2514
2515 dostounix_filename (longname);
2516
2517 /* If we were passed only a drive, make sure that a slash is not appended
2518 for consistency with directories. Allow for drive mapping via SUBST
2519 in case expand-file-name is ever changed to expand those. */
2520 if (drive_only && longname[1] == ':' && longname[2] == '/' && !longname[3])
2521 longname[2] = '\0';
2522
2523 return DECODE_FILE (build_string (longname));
2524 }
2525
2526 DEFUN ("w32-set-process-priority", Fw32_set_process_priority,
2527 Sw32_set_process_priority, 2, 2, 0,
2528 doc: /* Set the priority of PROCESS to PRIORITY.
2529 If PROCESS is nil, the priority of Emacs is changed, otherwise the
2530 priority of the process whose pid is PROCESS is changed.
2531 PRIORITY should be one of the symbols high, normal, or low;
2532 any other symbol will be interpreted as normal.
2533
2534 If successful, the return value is t, otherwise nil. */)
2535 (Lisp_Object process, Lisp_Object priority)
2536 {
2537 HANDLE proc_handle = GetCurrentProcess ();
2538 DWORD priority_class = NORMAL_PRIORITY_CLASS;
2539 Lisp_Object result = Qnil;
2540
2541 CHECK_SYMBOL (priority);
2542
2543 if (!NILP (process))
2544 {
2545 DWORD pid;
2546 child_process *cp;
2547
2548 CHECK_NUMBER (process);
2549
2550 /* Allow pid to be an internally generated one, or one obtained
2551 externally. This is necessary because real pids on Windows 95 are
2552 negative. */
2553
2554 pid = XINT (process);
2555 cp = find_child_pid (pid);
2556 if (cp != NULL)
2557 pid = cp->procinfo.dwProcessId;
2558
2559 proc_handle = OpenProcess (PROCESS_SET_INFORMATION, FALSE, pid);
2560 }
2561
2562 if (EQ (priority, Qhigh))
2563 priority_class = HIGH_PRIORITY_CLASS;
2564 else if (EQ (priority, Qlow))
2565 priority_class = IDLE_PRIORITY_CLASS;
2566
2567 if (proc_handle != NULL)
2568 {
2569 if (SetPriorityClass (proc_handle, priority_class))
2570 result = Qt;
2571 if (!NILP (process))
2572 CloseHandle (proc_handle);
2573 }
2574
2575 return result;
2576 }
2577
2578 #ifdef HAVE_LANGINFO_CODESET
2579 /* Emulation of nl_langinfo. Used in fns.c:Flocale_info. */
2580 char *
2581 nl_langinfo (nl_item item)
2582 {
2583 /* Conversion of Posix item numbers to their Windows equivalents. */
2584 static const LCTYPE w32item[] = {
2585 LOCALE_IDEFAULTANSICODEPAGE,
2586 LOCALE_SDAYNAME1, LOCALE_SDAYNAME2, LOCALE_SDAYNAME3,
2587 LOCALE_SDAYNAME4, LOCALE_SDAYNAME5, LOCALE_SDAYNAME6, LOCALE_SDAYNAME7,
2588 LOCALE_SMONTHNAME1, LOCALE_SMONTHNAME2, LOCALE_SMONTHNAME3,
2589 LOCALE_SMONTHNAME4, LOCALE_SMONTHNAME5, LOCALE_SMONTHNAME6,
2590 LOCALE_SMONTHNAME7, LOCALE_SMONTHNAME8, LOCALE_SMONTHNAME9,
2591 LOCALE_SMONTHNAME10, LOCALE_SMONTHNAME11, LOCALE_SMONTHNAME12
2592 };
2593
2594 static char *nl_langinfo_buf = NULL;
2595 static int nl_langinfo_len = 0;
2596
2597 if (nl_langinfo_len <= 0)
2598 nl_langinfo_buf = xmalloc (nl_langinfo_len = 1);
2599
2600 if (item < 0 || item >= _NL_NUM)
2601 nl_langinfo_buf[0] = 0;
2602 else
2603 {
2604 LCID cloc = GetThreadLocale ();
2605 int need_len = GetLocaleInfo (cloc, w32item[item] | LOCALE_USE_CP_ACP,
2606 NULL, 0);
2607
2608 if (need_len <= 0)
2609 nl_langinfo_buf[0] = 0;
2610 else
2611 {
2612 if (item == CODESET)
2613 {
2614 need_len += 2; /* for the "cp" prefix */
2615 if (need_len < 8) /* for the case we call GetACP */
2616 need_len = 8;
2617 }
2618 if (nl_langinfo_len <= need_len)
2619 nl_langinfo_buf = xrealloc (nl_langinfo_buf,
2620 nl_langinfo_len = need_len);
2621 if (!GetLocaleInfo (cloc, w32item[item] | LOCALE_USE_CP_ACP,
2622 nl_langinfo_buf, nl_langinfo_len))
2623 nl_langinfo_buf[0] = 0;
2624 else if (item == CODESET)
2625 {
2626 if (strcmp (nl_langinfo_buf, "0") == 0 /* CP_ACP */
2627 || strcmp (nl_langinfo_buf, "1") == 0) /* CP_OEMCP */
2628 sprintf (nl_langinfo_buf, "cp%u", GetACP ());
2629 else
2630 {
2631 memmove (nl_langinfo_buf + 2, nl_langinfo_buf,
2632 strlen (nl_langinfo_buf) + 1);
2633 nl_langinfo_buf[0] = 'c';
2634 nl_langinfo_buf[1] = 'p';
2635 }
2636 }
2637 }
2638 }
2639 return nl_langinfo_buf;
2640 }
2641 #endif /* HAVE_LANGINFO_CODESET */
2642
2643 DEFUN ("w32-get-locale-info", Fw32_get_locale_info,
2644 Sw32_get_locale_info, 1, 2, 0,
2645 doc: /* Return information about the Windows locale LCID.
2646 By default, return a three letter locale code which encodes the default
2647 language as the first two characters, and the country or regional variant
2648 as the third letter. For example, ENU refers to `English (United States)',
2649 while ENC means `English (Canadian)'.
2650
2651 If the optional argument LONGFORM is t, the long form of the locale
2652 name is returned, e.g. `English (United States)' instead; if LONGFORM
2653 is a number, it is interpreted as an LCTYPE constant and the corresponding
2654 locale information is returned.
2655
2656 If LCID (a 16-bit number) is not a valid locale, the result is nil. */)
2657 (Lisp_Object lcid, Lisp_Object longform)
2658 {
2659 int got_abbrev;
2660 int got_full;
2661 char abbrev_name[32] = { 0 };
2662 char full_name[256] = { 0 };
2663
2664 CHECK_NUMBER (lcid);
2665
2666 if (!IsValidLocale (XINT (lcid), LCID_SUPPORTED))
2667 return Qnil;
2668
2669 if (NILP (longform))
2670 {
2671 got_abbrev = GetLocaleInfo (XINT (lcid),
2672 LOCALE_SABBREVLANGNAME | LOCALE_USE_CP_ACP,
2673 abbrev_name, sizeof (abbrev_name));
2674 if (got_abbrev)
2675 return build_string (abbrev_name);
2676 }
2677 else if (EQ (longform, Qt))
2678 {
2679 got_full = GetLocaleInfo (XINT (lcid),
2680 LOCALE_SLANGUAGE | LOCALE_USE_CP_ACP,
2681 full_name, sizeof (full_name));
2682 if (got_full)
2683 return DECODE_SYSTEM (build_string (full_name));
2684 }
2685 else if (NUMBERP (longform))
2686 {
2687 got_full = GetLocaleInfo (XINT (lcid),
2688 XINT (longform),
2689 full_name, sizeof (full_name));
2690 /* GetLocaleInfo's return value includes the terminating null
2691 character, when the returned information is a string, whereas
2692 make_unibyte_string needs the string length without the
2693 terminating null. */
2694 if (got_full)
2695 return make_unibyte_string (full_name, got_full - 1);
2696 }
2697
2698 return Qnil;
2699 }
2700
2701
2702 DEFUN ("w32-get-current-locale-id", Fw32_get_current_locale_id,
2703 Sw32_get_current_locale_id, 0, 0, 0,
2704 doc: /* Return Windows locale id for current locale setting.
2705 This is a numerical value; use `w32-get-locale-info' to convert to a
2706 human-readable form. */)
2707 (void)
2708 {
2709 return make_number (GetThreadLocale ());
2710 }
2711
2712 static DWORD
2713 int_from_hex (char * s)
2714 {
2715 DWORD val = 0;
2716 static char hex[] = "0123456789abcdefABCDEF";
2717 char * p;
2718
2719 while (*s && (p = strchr (hex, *s)) != NULL)
2720 {
2721 unsigned digit = p - hex;
2722 if (digit > 15)
2723 digit -= 6;
2724 val = val * 16 + digit;
2725 s++;
2726 }
2727 return val;
2728 }
2729
2730 /* We need to build a global list, since the EnumSystemLocale callback
2731 function isn't given a context pointer. */
2732 Lisp_Object Vw32_valid_locale_ids;
2733
2734 static BOOL CALLBACK
2735 enum_locale_fn (LPTSTR localeNum)
2736 {
2737 DWORD id = int_from_hex (localeNum);
2738 Vw32_valid_locale_ids = Fcons (make_number (id), Vw32_valid_locale_ids);
2739 return TRUE;
2740 }
2741
2742 DEFUN ("w32-get-valid-locale-ids", Fw32_get_valid_locale_ids,
2743 Sw32_get_valid_locale_ids, 0, 0, 0,
2744 doc: /* Return list of all valid Windows locale ids.
2745 Each id is a numerical value; use `w32-get-locale-info' to convert to a
2746 human-readable form. */)
2747 (void)
2748 {
2749 Vw32_valid_locale_ids = Qnil;
2750
2751 EnumSystemLocales (enum_locale_fn, LCID_SUPPORTED);
2752
2753 Vw32_valid_locale_ids = Fnreverse (Vw32_valid_locale_ids);
2754 return Vw32_valid_locale_ids;
2755 }
2756
2757
2758 DEFUN ("w32-get-default-locale-id", Fw32_get_default_locale_id, Sw32_get_default_locale_id, 0, 1, 0,
2759 doc: /* Return Windows locale id for default locale setting.
2760 By default, the system default locale setting is returned; if the optional
2761 parameter USERP is non-nil, the user default locale setting is returned.
2762 This is a numerical value; use `w32-get-locale-info' to convert to a
2763 human-readable form. */)
2764 (Lisp_Object userp)
2765 {
2766 if (NILP (userp))
2767 return make_number (GetSystemDefaultLCID ());
2768 return make_number (GetUserDefaultLCID ());
2769 }
2770
2771
2772 DEFUN ("w32-set-current-locale", Fw32_set_current_locale, Sw32_set_current_locale, 1, 1, 0,
2773 doc: /* Make Windows locale LCID be the current locale setting for Emacs.
2774 If successful, the new locale id is returned, otherwise nil. */)
2775 (Lisp_Object lcid)
2776 {
2777 CHECK_NUMBER (lcid);
2778
2779 if (!IsValidLocale (XINT (lcid), LCID_SUPPORTED))
2780 return Qnil;
2781
2782 if (!SetThreadLocale (XINT (lcid)))
2783 return Qnil;
2784
2785 /* Need to set input thread locale if present. */
2786 if (dwWindowsThreadId)
2787 /* Reply is not needed. */
2788 PostThreadMessage (dwWindowsThreadId, WM_EMACS_SETLOCALE, XINT (lcid), 0);
2789
2790 return make_number (GetThreadLocale ());
2791 }
2792
2793
2794 /* We need to build a global list, since the EnumCodePages callback
2795 function isn't given a context pointer. */
2796 Lisp_Object Vw32_valid_codepages;
2797
2798 static BOOL CALLBACK
2799 enum_codepage_fn (LPTSTR codepageNum)
2800 {
2801 DWORD id = atoi (codepageNum);
2802 Vw32_valid_codepages = Fcons (make_number (id), Vw32_valid_codepages);
2803 return TRUE;
2804 }
2805
2806 DEFUN ("w32-get-valid-codepages", Fw32_get_valid_codepages,
2807 Sw32_get_valid_codepages, 0, 0, 0,
2808 doc: /* Return list of all valid Windows codepages. */)
2809 (void)
2810 {
2811 Vw32_valid_codepages = Qnil;
2812
2813 EnumSystemCodePages (enum_codepage_fn, CP_SUPPORTED);
2814
2815 Vw32_valid_codepages = Fnreverse (Vw32_valid_codepages);
2816 return Vw32_valid_codepages;
2817 }
2818
2819
2820 DEFUN ("w32-get-console-codepage", Fw32_get_console_codepage,
2821 Sw32_get_console_codepage, 0, 0, 0,
2822 doc: /* Return current Windows codepage for console input. */)
2823 (void)
2824 {
2825 return make_number (GetConsoleCP ());
2826 }
2827
2828
2829 DEFUN ("w32-set-console-codepage", Fw32_set_console_codepage,
2830 Sw32_set_console_codepage, 1, 1, 0,
2831 doc: /* Make Windows codepage CP be the codepage for Emacs tty keyboard input.
2832 This codepage setting affects keyboard input in tty mode.
2833 If successful, the new CP is returned, otherwise nil. */)
2834 (Lisp_Object cp)
2835 {
2836 CHECK_NUMBER (cp);
2837
2838 if (!IsValidCodePage (XINT (cp)))
2839 return Qnil;
2840
2841 if (!SetConsoleCP (XINT (cp)))
2842 return Qnil;
2843
2844 return make_number (GetConsoleCP ());
2845 }
2846
2847
2848 DEFUN ("w32-get-console-output-codepage", Fw32_get_console_output_codepage,
2849 Sw32_get_console_output_codepage, 0, 0, 0,
2850 doc: /* Return current Windows codepage for console output. */)
2851 (void)
2852 {
2853 return make_number (GetConsoleOutputCP ());
2854 }
2855
2856
2857 DEFUN ("w32-set-console-output-codepage", Fw32_set_console_output_codepage,
2858 Sw32_set_console_output_codepage, 1, 1, 0,
2859 doc: /* Make Windows codepage CP be the codepage for Emacs console output.
2860 This codepage setting affects display in tty mode.
2861 If successful, the new CP is returned, otherwise nil. */)
2862 (Lisp_Object cp)
2863 {
2864 CHECK_NUMBER (cp);
2865
2866 if (!IsValidCodePage (XINT (cp)))
2867 return Qnil;
2868
2869 if (!SetConsoleOutputCP (XINT (cp)))
2870 return Qnil;
2871
2872 return make_number (GetConsoleOutputCP ());
2873 }
2874
2875
2876 DEFUN ("w32-get-codepage-charset", Fw32_get_codepage_charset,
2877 Sw32_get_codepage_charset, 1, 1, 0,
2878 doc: /* Return charset ID corresponding to codepage CP.
2879 Returns nil if the codepage is not valid. */)
2880 (Lisp_Object cp)
2881 {
2882 CHARSETINFO info;
2883
2884 CHECK_NUMBER (cp);
2885
2886 if (!IsValidCodePage (XINT (cp)))
2887 return Qnil;
2888
2889 if (TranslateCharsetInfo ((DWORD *) XINT (cp), &info, TCI_SRCCODEPAGE))
2890 return make_number (info.ciCharset);
2891
2892 return Qnil;
2893 }
2894
2895
2896 DEFUN ("w32-get-valid-keyboard-layouts", Fw32_get_valid_keyboard_layouts,
2897 Sw32_get_valid_keyboard_layouts, 0, 0, 0,
2898 doc: /* Return list of Windows keyboard languages and layouts.
2899 The return value is a list of pairs of language id and layout id. */)
2900 (void)
2901 {
2902 int num_layouts = GetKeyboardLayoutList (0, NULL);
2903 HKL * layouts = (HKL *) alloca (num_layouts * sizeof (HKL));
2904 Lisp_Object obj = Qnil;
2905
2906 if (GetKeyboardLayoutList (num_layouts, layouts) == num_layouts)
2907 {
2908 while (--num_layouts >= 0)
2909 {
2910 DWORD kl = (DWORD) layouts[num_layouts];
2911
2912 obj = Fcons (Fcons (make_number (kl & 0xffff),
2913 make_number ((kl >> 16) & 0xffff)),
2914 obj);
2915 }
2916 }
2917
2918 return obj;
2919 }
2920
2921
2922 DEFUN ("w32-get-keyboard-layout", Fw32_get_keyboard_layout,
2923 Sw32_get_keyboard_layout, 0, 0, 0,
2924 doc: /* Return current Windows keyboard language and layout.
2925 The return value is the cons of the language id and the layout id. */)
2926 (void)
2927 {
2928 DWORD kl = (DWORD) GetKeyboardLayout (dwWindowsThreadId);
2929
2930 return Fcons (make_number (kl & 0xffff),
2931 make_number ((kl >> 16) & 0xffff));
2932 }
2933
2934
2935 DEFUN ("w32-set-keyboard-layout", Fw32_set_keyboard_layout,
2936 Sw32_set_keyboard_layout, 1, 1, 0,
2937 doc: /* Make LAYOUT be the current keyboard layout for Emacs.
2938 The keyboard layout setting affects interpretation of keyboard input.
2939 If successful, the new layout id is returned, otherwise nil. */)
2940 (Lisp_Object layout)
2941 {
2942 DWORD kl;
2943
2944 CHECK_CONS (layout);
2945 CHECK_NUMBER_CAR (layout);
2946 CHECK_NUMBER_CDR (layout);
2947
2948 kl = (XINT (XCAR (layout)) & 0xffff)
2949 | (XINT (XCDR (layout)) << 16);
2950
2951 /* Synchronize layout with input thread. */
2952 if (dwWindowsThreadId)
2953 {
2954 if (PostThreadMessage (dwWindowsThreadId, WM_EMACS_SETKEYBOARDLAYOUT,
2955 (WPARAM) kl, 0))
2956 {
2957 MSG msg;
2958 GetMessage (&msg, NULL, WM_EMACS_DONE, WM_EMACS_DONE);
2959
2960 if (msg.wParam == 0)
2961 return Qnil;
2962 }
2963 }
2964 else if (!ActivateKeyboardLayout ((HKL) kl, 0))
2965 return Qnil;
2966
2967 return Fw32_get_keyboard_layout ();
2968 }
2969
2970 \f
2971 void
2972 syms_of_ntproc (void)
2973 {
2974 DEFSYM (Qhigh, "high");
2975 DEFSYM (Qlow, "low");
2976
2977 defsubr (&Sw32_has_winsock);
2978 defsubr (&Sw32_unload_winsock);
2979
2980 defsubr (&Sw32_short_file_name);
2981 defsubr (&Sw32_long_file_name);
2982 defsubr (&Sw32_set_process_priority);
2983 defsubr (&Sw32_get_locale_info);
2984 defsubr (&Sw32_get_current_locale_id);
2985 defsubr (&Sw32_get_default_locale_id);
2986 defsubr (&Sw32_get_valid_locale_ids);
2987 defsubr (&Sw32_set_current_locale);
2988
2989 defsubr (&Sw32_get_console_codepage);
2990 defsubr (&Sw32_set_console_codepage);
2991 defsubr (&Sw32_get_console_output_codepage);
2992 defsubr (&Sw32_set_console_output_codepage);
2993 defsubr (&Sw32_get_valid_codepages);
2994 defsubr (&Sw32_get_codepage_charset);
2995
2996 defsubr (&Sw32_get_valid_keyboard_layouts);
2997 defsubr (&Sw32_get_keyboard_layout);
2998 defsubr (&Sw32_set_keyboard_layout);
2999
3000 DEFVAR_LISP ("w32-quote-process-args", Vw32_quote_process_args,
3001 doc: /* Non-nil enables quoting of process arguments to ensure correct parsing.
3002 Because Windows does not directly pass argv arrays to child processes,
3003 programs have to reconstruct the argv array by parsing the command
3004 line string. For an argument to contain a space, it must be enclosed
3005 in double quotes or it will be parsed as multiple arguments.
3006
3007 If the value is a character, that character will be used to escape any
3008 quote characters that appear, otherwise a suitable escape character
3009 will be chosen based on the type of the program. */);
3010 Vw32_quote_process_args = Qt;
3011
3012 DEFVAR_LISP ("w32-start-process-show-window",
3013 Vw32_start_process_show_window,
3014 doc: /* When nil, new child processes hide their windows.
3015 When non-nil, they show their window in the method of their choice.
3016 This variable doesn't affect GUI applications, which will never be hidden. */);
3017 Vw32_start_process_show_window = Qnil;
3018
3019 DEFVAR_LISP ("w32-start-process-share-console",
3020 Vw32_start_process_share_console,
3021 doc: /* When nil, new child processes are given a new console.
3022 When non-nil, they share the Emacs console; this has the limitation of
3023 allowing only one DOS subprocess to run at a time (whether started directly
3024 or indirectly by Emacs), and preventing Emacs from cleanly terminating the
3025 subprocess group, but may allow Emacs to interrupt a subprocess that doesn't
3026 otherwise respond to interrupts from Emacs. */);
3027 Vw32_start_process_share_console = Qnil;
3028
3029 DEFVAR_LISP ("w32-start-process-inherit-error-mode",
3030 Vw32_start_process_inherit_error_mode,
3031 doc: /* When nil, new child processes revert to the default error mode.
3032 When non-nil, they inherit their error mode setting from Emacs, which stops
3033 them blocking when trying to access unmounted drives etc. */);
3034 Vw32_start_process_inherit_error_mode = Qt;
3035
3036 DEFVAR_INT ("w32-pipe-read-delay", w32_pipe_read_delay,
3037 doc: /* Forced delay before reading subprocess output.
3038 This is done to improve the buffering of subprocess output, by
3039 avoiding the inefficiency of frequently reading small amounts of data.
3040
3041 If positive, the value is the number of milliseconds to sleep before
3042 reading the subprocess output. If negative, the magnitude is the number
3043 of time slices to wait (effectively boosting the priority of the child
3044 process temporarily). A value of zero disables waiting entirely. */);
3045 w32_pipe_read_delay = 50;
3046
3047 DEFVAR_LISP ("w32-downcase-file-names", Vw32_downcase_file_names,
3048 doc: /* Non-nil means convert all-upper case file names to lower case.
3049 This applies when performing completions and file name expansion.
3050 Note that the value of this setting also affects remote file names,
3051 so you probably don't want to set to non-nil if you use case-sensitive
3052 filesystems via ange-ftp. */);
3053 Vw32_downcase_file_names = Qnil;
3054
3055 #if 0
3056 DEFVAR_LISP ("w32-generate-fake-inodes", Vw32_generate_fake_inodes,
3057 doc: /* Non-nil means attempt to fake realistic inode values.
3058 This works by hashing the truename of files, and should detect
3059 aliasing between long and short (8.3 DOS) names, but can have
3060 false positives because of hash collisions. Note that determining
3061 the truename of a file can be slow. */);
3062 Vw32_generate_fake_inodes = Qnil;
3063 #endif
3064
3065 DEFVAR_LISP ("w32-get-true-file-attributes", Vw32_get_true_file_attributes,
3066 doc: /* Non-nil means determine accurate file attributes in `file-attributes'.
3067 This option controls whether to issue additional system calls to determine
3068 accurate link counts, file type, and ownership information. It is more
3069 useful for files on NTFS volumes, where hard links and file security are
3070 supported, than on volumes of the FAT family.
3071
3072 Without these system calls, link count will always be reported as 1 and file
3073 ownership will be attributed to the current user.
3074 The default value `local' means only issue these system calls for files
3075 on local fixed drives. A value of nil means never issue them.
3076 Any other non-nil value means do this even on remote and removable drives
3077 where the performance impact may be noticeable even on modern hardware. */);
3078 Vw32_get_true_file_attributes = Qlocal;
3079
3080 staticpro (&Vw32_valid_locale_ids);
3081 staticpro (&Vw32_valid_codepages);
3082 }
3083 /* end of w32proc.c */