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run-command.c: introduce trace_run_command()
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1#include "cache.h"
2#include "run-command.h"
3#include "exec_cmd.h"
4#include "sigchain.h"
5#include "argv-array.h"
6#include "thread-utils.h"
7#include "strbuf.h"
8#include "string-list.h"
9#include "quote.h"
10
11void child_process_init(struct child_process *child)
12{
13 memset(child, 0, sizeof(*child));
14 argv_array_init(&child->args);
15 argv_array_init(&child->env_array);
16}
17
18void child_process_clear(struct child_process *child)
19{
20 argv_array_clear(&child->args);
21 argv_array_clear(&child->env_array);
22}
23
24struct child_to_clean {
25 pid_t pid;
26 struct child_process *process;
27 struct child_to_clean *next;
28};
29static struct child_to_clean *children_to_clean;
30static int installed_child_cleanup_handler;
31
32static void cleanup_children(int sig, int in_signal)
33{
34 struct child_to_clean *children_to_wait_for = NULL;
35
36 while (children_to_clean) {
37 struct child_to_clean *p = children_to_clean;
38 children_to_clean = p->next;
39
40 if (p->process && !in_signal) {
41 struct child_process *process = p->process;
42 if (process->clean_on_exit_handler) {
43 trace_printf(
44 "trace: run_command: running exit handler for pid %"
45 PRIuMAX, (uintmax_t)p->pid
46 );
47 process->clean_on_exit_handler(process);
48 }
49 }
50
51 kill(p->pid, sig);
52
53 if (p->process && p->process->wait_after_clean) {
54 p->next = children_to_wait_for;
55 children_to_wait_for = p;
56 } else {
57 if (!in_signal)
58 free(p);
59 }
60 }
61
62 while (children_to_wait_for) {
63 struct child_to_clean *p = children_to_wait_for;
64 children_to_wait_for = p->next;
65
66 while (waitpid(p->pid, NULL, 0) < 0 && errno == EINTR)
67 ; /* spin waiting for process exit or error */
68
69 if (!in_signal)
70 free(p);
71 }
72}
73
74static void cleanup_children_on_signal(int sig)
75{
76 cleanup_children(sig, 1);
77 sigchain_pop(sig);
78 raise(sig);
79}
80
81static void cleanup_children_on_exit(void)
82{
83 cleanup_children(SIGTERM, 0);
84}
85
86static void mark_child_for_cleanup(pid_t pid, struct child_process *process)
87{
88 struct child_to_clean *p = xmalloc(sizeof(*p));
89 p->pid = pid;
90 p->process = process;
91 p->next = children_to_clean;
92 children_to_clean = p;
93
94 if (!installed_child_cleanup_handler) {
95 atexit(cleanup_children_on_exit);
96 sigchain_push_common(cleanup_children_on_signal);
97 installed_child_cleanup_handler = 1;
98 }
99}
100
101static void clear_child_for_cleanup(pid_t pid)
102{
103 struct child_to_clean **pp;
104
105 for (pp = &children_to_clean; *pp; pp = &(*pp)->next) {
106 struct child_to_clean *clean_me = *pp;
107
108 if (clean_me->pid == pid) {
109 *pp = clean_me->next;
110 free(clean_me);
111 return;
112 }
113 }
114}
115
116static inline void close_pair(int fd[2])
117{
118 close(fd[0]);
119 close(fd[1]);
120}
121
122int is_executable(const char *name)
123{
124 struct stat st;
125
126 if (stat(name, &st) || /* stat, not lstat */
127 !S_ISREG(st.st_mode))
128 return 0;
129
130#if defined(GIT_WINDOWS_NATIVE)
131 /*
132 * On Windows there is no executable bit. The file extension
133 * indicates whether it can be run as an executable, and Git
134 * has special-handling to detect scripts and launch them
135 * through the indicated script interpreter. We test for the
136 * file extension first because virus scanners may make
137 * it quite expensive to open many files.
138 */
139 if (ends_with(name, ".exe"))
140 return S_IXUSR;
141
142{
143 /*
144 * Now that we know it does not have an executable extension,
145 * peek into the file instead.
146 */
147 char buf[3] = { 0 };
148 int n;
149 int fd = open(name, O_RDONLY);
150 st.st_mode &= ~S_IXUSR;
151 if (fd >= 0) {
152 n = read(fd, buf, 2);
153 if (n == 2)
154 /* look for a she-bang */
155 if (!strcmp(buf, "#!"))
156 st.st_mode |= S_IXUSR;
157 close(fd);
158 }
159}
160#endif
161 return st.st_mode & S_IXUSR;
162}
163
164/*
165 * Search $PATH for a command. This emulates the path search that
166 * execvp would perform, without actually executing the command so it
167 * can be used before fork() to prepare to run a command using
168 * execve() or after execvp() to diagnose why it failed.
169 *
170 * The caller should ensure that file contains no directory
171 * separators.
172 *
173 * Returns the path to the command, as found in $PATH or NULL if the
174 * command could not be found. The caller inherits ownership of the memory
175 * used to store the resultant path.
176 *
177 * This should not be used on Windows, where the $PATH search rules
178 * are more complicated (e.g., a search for "foo" should find
179 * "foo.exe").
180 */
181static char *locate_in_PATH(const char *file)
182{
183 const char *p = getenv("PATH");
184 struct strbuf buf = STRBUF_INIT;
185
186 if (!p || !*p)
187 return NULL;
188
189 while (1) {
190 const char *end = strchrnul(p, ':');
191
192 strbuf_reset(&buf);
193
194 /* POSIX specifies an empty entry as the current directory. */
195 if (end != p) {
196 strbuf_add(&buf, p, end - p);
197 strbuf_addch(&buf, '/');
198 }
199 strbuf_addstr(&buf, file);
200
201 if (is_executable(buf.buf))
202 return strbuf_detach(&buf, NULL);
203
204 if (!*end)
205 break;
206 p = end + 1;
207 }
208
209 strbuf_release(&buf);
210 return NULL;
211}
212
213static int exists_in_PATH(const char *file)
214{
215 char *r = locate_in_PATH(file);
216 free(r);
217 return r != NULL;
218}
219
220int sane_execvp(const char *file, char * const argv[])
221{
222 if (!execvp(file, argv))
223 return 0; /* cannot happen ;-) */
224
225 /*
226 * When a command can't be found because one of the directories
227 * listed in $PATH is unsearchable, execvp reports EACCES, but
228 * careful usability testing (read: analysis of occasional bug
229 * reports) reveals that "No such file or directory" is more
230 * intuitive.
231 *
232 * We avoid commands with "/", because execvp will not do $PATH
233 * lookups in that case.
234 *
235 * The reassignment of EACCES to errno looks like a no-op below,
236 * but we need to protect against exists_in_PATH overwriting errno.
237 */
238 if (errno == EACCES && !strchr(file, '/'))
239 errno = exists_in_PATH(file) ? EACCES : ENOENT;
240 else if (errno == ENOTDIR && !strchr(file, '/'))
241 errno = ENOENT;
242 return -1;
243}
244
245static const char **prepare_shell_cmd(struct argv_array *out, const char **argv)
246{
247 if (!argv[0])
248 die("BUG: shell command is empty");
249
250 if (strcspn(argv[0], "|&;<>()$`\\\"' \t\n*?[#~=%") != strlen(argv[0])) {
251#ifndef GIT_WINDOWS_NATIVE
252 argv_array_push(out, SHELL_PATH);
253#else
254 argv_array_push(out, "sh");
255#endif
256 argv_array_push(out, "-c");
257
258 /*
259 * If we have no extra arguments, we do not even need to
260 * bother with the "$@" magic.
261 */
262 if (!argv[1])
263 argv_array_push(out, argv[0]);
264 else
265 argv_array_pushf(out, "%s \"$@\"", argv[0]);
266 }
267
268 argv_array_pushv(out, argv);
269 return out->argv;
270}
271
272#ifndef GIT_WINDOWS_NATIVE
273static int child_notifier = -1;
274
275enum child_errcode {
276 CHILD_ERR_CHDIR,
277 CHILD_ERR_DUP2,
278 CHILD_ERR_CLOSE,
279 CHILD_ERR_SIGPROCMASK,
280 CHILD_ERR_ENOENT,
281 CHILD_ERR_SILENT,
282 CHILD_ERR_ERRNO
283};
284
285struct child_err {
286 enum child_errcode err;
287 int syserr; /* errno */
288};
289
290static void child_die(enum child_errcode err)
291{
292 struct child_err buf;
293
294 buf.err = err;
295 buf.syserr = errno;
296
297 /* write(2) on buf smaller than PIPE_BUF (min 512) is atomic: */
298 xwrite(child_notifier, &buf, sizeof(buf));
299 _exit(1);
300}
301
302static void child_dup2(int fd, int to)
303{
304 if (dup2(fd, to) < 0)
305 child_die(CHILD_ERR_DUP2);
306}
307
308static void child_close(int fd)
309{
310 if (close(fd))
311 child_die(CHILD_ERR_CLOSE);
312}
313
314static void child_close_pair(int fd[2])
315{
316 child_close(fd[0]);
317 child_close(fd[1]);
318}
319
320/*
321 * parent will make it look like the child spewed a fatal error and died
322 * this is needed to prevent changes to t0061.
323 */
324static void fake_fatal(const char *err, va_list params)
325{
326 vreportf("fatal: ", err, params);
327}
328
329static void child_error_fn(const char *err, va_list params)
330{
331 const char msg[] = "error() should not be called in child\n";
332 xwrite(2, msg, sizeof(msg) - 1);
333}
334
335static void child_warn_fn(const char *err, va_list params)
336{
337 const char msg[] = "warn() should not be called in child\n";
338 xwrite(2, msg, sizeof(msg) - 1);
339}
340
341static void NORETURN child_die_fn(const char *err, va_list params)
342{
343 const char msg[] = "die() should not be called in child\n";
344 xwrite(2, msg, sizeof(msg) - 1);
345 _exit(2);
346}
347
348/* this runs in the parent process */
349static void child_err_spew(struct child_process *cmd, struct child_err *cerr)
350{
351 static void (*old_errfn)(const char *err, va_list params);
352
353 old_errfn = get_error_routine();
354 set_error_routine(fake_fatal);
355 errno = cerr->syserr;
356
357 switch (cerr->err) {
358 case CHILD_ERR_CHDIR:
359 error_errno("exec '%s': cd to '%s' failed",
360 cmd->argv[0], cmd->dir);
361 break;
362 case CHILD_ERR_DUP2:
363 error_errno("dup2() in child failed");
364 break;
365 case CHILD_ERR_CLOSE:
366 error_errno("close() in child failed");
367 break;
368 case CHILD_ERR_SIGPROCMASK:
369 error_errno("sigprocmask failed restoring signals");
370 break;
371 case CHILD_ERR_ENOENT:
372 error_errno("cannot run %s", cmd->argv[0]);
373 break;
374 case CHILD_ERR_SILENT:
375 break;
376 case CHILD_ERR_ERRNO:
377 error_errno("cannot exec '%s'", cmd->argv[0]);
378 break;
379 }
380 set_error_routine(old_errfn);
381}
382
383static void prepare_cmd(struct argv_array *out, const struct child_process *cmd)
384{
385 if (!cmd->argv[0])
386 die("BUG: command is empty");
387
388 /*
389 * Add SHELL_PATH so in the event exec fails with ENOEXEC we can
390 * attempt to interpret the command with 'sh'.
391 */
392 argv_array_push(out, SHELL_PATH);
393
394 if (cmd->git_cmd) {
395 argv_array_push(out, "git");
396 argv_array_pushv(out, cmd->argv);
397 } else if (cmd->use_shell) {
398 prepare_shell_cmd(out, cmd->argv);
399 } else {
400 argv_array_pushv(out, cmd->argv);
401 }
402
403 /*
404 * If there are no '/' characters in the command then perform a path
405 * lookup and use the resolved path as the command to exec. If there
406 * are no '/' characters or if the command wasn't found in the path,
407 * have exec attempt to invoke the command directly.
408 */
409 if (!strchr(out->argv[1], '/')) {
410 char *program = locate_in_PATH(out->argv[1]);
411 if (program) {
412 free((char *)out->argv[1]);
413 out->argv[1] = program;
414 }
415 }
416}
417
418static char **prep_childenv(const char *const *deltaenv)
419{
420 extern char **environ;
421 char **childenv;
422 struct string_list env = STRING_LIST_INIT_DUP;
423 struct strbuf key = STRBUF_INIT;
424 const char *const *p;
425 int i;
426
427 /* Construct a sorted string list consisting of the current environ */
428 for (p = (const char *const *) environ; p && *p; p++) {
429 const char *equals = strchr(*p, '=');
430
431 if (equals) {
432 strbuf_reset(&key);
433 strbuf_add(&key, *p, equals - *p);
434 string_list_append(&env, key.buf)->util = (void *) *p;
435 } else {
436 string_list_append(&env, *p)->util = (void *) *p;
437 }
438 }
439 string_list_sort(&env);
440
441 /* Merge in 'deltaenv' with the current environ */
442 for (p = deltaenv; p && *p; p++) {
443 const char *equals = strchr(*p, '=');
444
445 if (equals) {
446 /* ('key=value'), insert or replace entry */
447 strbuf_reset(&key);
448 strbuf_add(&key, *p, equals - *p);
449 string_list_insert(&env, key.buf)->util = (void *) *p;
450 } else {
451 /* otherwise ('key') remove existing entry */
452 string_list_remove(&env, *p, 0);
453 }
454 }
455
456 /* Create an array of 'char *' to be used as the childenv */
457 ALLOC_ARRAY(childenv, env.nr + 1);
458 for (i = 0; i < env.nr; i++)
459 childenv[i] = env.items[i].util;
460 childenv[env.nr] = NULL;
461
462 string_list_clear(&env, 0);
463 strbuf_release(&key);
464 return childenv;
465}
466
467struct atfork_state {
468#ifndef NO_PTHREADS
469 int cs;
470#endif
471 sigset_t old;
472};
473
474#ifndef NO_PTHREADS
475static void bug_die(int err, const char *msg)
476{
477 if (err) {
478 errno = err;
479 die_errno("BUG: %s", msg);
480 }
481}
482#endif
483
484static void atfork_prepare(struct atfork_state *as)
485{
486 sigset_t all;
487
488 if (sigfillset(&all))
489 die_errno("sigfillset");
490#ifdef NO_PTHREADS
491 if (sigprocmask(SIG_SETMASK, &all, &as->old))
492 die_errno("sigprocmask");
493#else
494 bug_die(pthread_sigmask(SIG_SETMASK, &all, &as->old),
495 "blocking all signals");
496 bug_die(pthread_setcancelstate(PTHREAD_CANCEL_DISABLE, &as->cs),
497 "disabling cancellation");
498#endif
499}
500
501static void atfork_parent(struct atfork_state *as)
502{
503#ifdef NO_PTHREADS
504 if (sigprocmask(SIG_SETMASK, &as->old, NULL))
505 die_errno("sigprocmask");
506#else
507 bug_die(pthread_setcancelstate(as->cs, NULL),
508 "re-enabling cancellation");
509 bug_die(pthread_sigmask(SIG_SETMASK, &as->old, NULL),
510 "restoring signal mask");
511#endif
512}
513#endif /* GIT_WINDOWS_NATIVE */
514
515static inline void set_cloexec(int fd)
516{
517 int flags = fcntl(fd, F_GETFD);
518 if (flags >= 0)
519 fcntl(fd, F_SETFD, flags | FD_CLOEXEC);
520}
521
522static int wait_or_whine(pid_t pid, const char *argv0, int in_signal)
523{
524 int status, code = -1;
525 pid_t waiting;
526 int failed_errno = 0;
527
528 while ((waiting = waitpid(pid, &status, 0)) < 0 && errno == EINTR)
529 ; /* nothing */
530 if (in_signal)
531 return 0;
532
533 if (waiting < 0) {
534 failed_errno = errno;
535 error_errno("waitpid for %s failed", argv0);
536 } else if (waiting != pid) {
537 error("waitpid is confused (%s)", argv0);
538 } else if (WIFSIGNALED(status)) {
539 code = WTERMSIG(status);
540 if (code != SIGINT && code != SIGQUIT && code != SIGPIPE)
541 error("%s died of signal %d", argv0, code);
542 /*
543 * This return value is chosen so that code & 0xff
544 * mimics the exit code that a POSIX shell would report for
545 * a program that died from this signal.
546 */
547 code += 128;
548 } else if (WIFEXITED(status)) {
549 code = WEXITSTATUS(status);
550 } else {
551 error("waitpid is confused (%s)", argv0);
552 }
553
554 clear_child_for_cleanup(pid);
555
556 errno = failed_errno;
557 return code;
558}
559
560static void trace_run_command(const struct child_process *cp)
561{
562 struct strbuf buf = STRBUF_INIT;
563
564 if (!trace_want(&trace_default_key))
565 return;
566
567 strbuf_addf(&buf, "trace: run_command:");
568 sq_quote_argv_pretty(&buf, cp->argv);
569
570 trace_printf("%s", buf.buf);
571 strbuf_release(&buf);
572}
573
574int start_command(struct child_process *cmd)
575{
576 int need_in, need_out, need_err;
577 int fdin[2], fdout[2], fderr[2];
578 int failed_errno;
579 char *str;
580
581 if (!cmd->argv)
582 cmd->argv = cmd->args.argv;
583 if (!cmd->env)
584 cmd->env = cmd->env_array.argv;
585
586 /*
587 * In case of errors we must keep the promise to close FDs
588 * that have been passed in via ->in and ->out.
589 */
590
591 need_in = !cmd->no_stdin && cmd->in < 0;
592 if (need_in) {
593 if (pipe(fdin) < 0) {
594 failed_errno = errno;
595 if (cmd->out > 0)
596 close(cmd->out);
597 str = "standard input";
598 goto fail_pipe;
599 }
600 cmd->in = fdin[1];
601 }
602
603 need_out = !cmd->no_stdout
604 && !cmd->stdout_to_stderr
605 && cmd->out < 0;
606 if (need_out) {
607 if (pipe(fdout) < 0) {
608 failed_errno = errno;
609 if (need_in)
610 close_pair(fdin);
611 else if (cmd->in)
612 close(cmd->in);
613 str = "standard output";
614 goto fail_pipe;
615 }
616 cmd->out = fdout[0];
617 }
618
619 need_err = !cmd->no_stderr && cmd->err < 0;
620 if (need_err) {
621 if (pipe(fderr) < 0) {
622 failed_errno = errno;
623 if (need_in)
624 close_pair(fdin);
625 else if (cmd->in)
626 close(cmd->in);
627 if (need_out)
628 close_pair(fdout);
629 else if (cmd->out)
630 close(cmd->out);
631 str = "standard error";
632fail_pipe:
633 error("cannot create %s pipe for %s: %s",
634 str, cmd->argv[0], strerror(failed_errno));
635 child_process_clear(cmd);
636 errno = failed_errno;
637 return -1;
638 }
639 cmd->err = fderr[0];
640 }
641
642 trace_run_command(cmd);
643
644 fflush(NULL);
645
646#ifndef GIT_WINDOWS_NATIVE
647{
648 int notify_pipe[2];
649 int null_fd = -1;
650 char **childenv;
651 struct argv_array argv = ARGV_ARRAY_INIT;
652 struct child_err cerr;
653 struct atfork_state as;
654
655 if (pipe(notify_pipe))
656 notify_pipe[0] = notify_pipe[1] = -1;
657
658 if (cmd->no_stdin || cmd->no_stdout || cmd->no_stderr) {
659 null_fd = open("/dev/null", O_RDWR | O_CLOEXEC);
660 if (null_fd < 0)
661 die_errno(_("open /dev/null failed"));
662 set_cloexec(null_fd);
663 }
664
665 prepare_cmd(&argv, cmd);
666 childenv = prep_childenv(cmd->env);
667 atfork_prepare(&as);
668
669 /*
670 * NOTE: In order to prevent deadlocking when using threads special
671 * care should be taken with the function calls made in between the
672 * fork() and exec() calls. No calls should be made to functions which
673 * require acquiring a lock (e.g. malloc) as the lock could have been
674 * held by another thread at the time of forking, causing the lock to
675 * never be released in the child process. This means only
676 * Async-Signal-Safe functions are permitted in the child.
677 */
678 cmd->pid = fork();
679 failed_errno = errno;
680 if (!cmd->pid) {
681 int sig;
682 /*
683 * Ensure the default die/error/warn routines do not get
684 * called, they can take stdio locks and malloc.
685 */
686 set_die_routine(child_die_fn);
687 set_error_routine(child_error_fn);
688 set_warn_routine(child_warn_fn);
689
690 close(notify_pipe[0]);
691 set_cloexec(notify_pipe[1]);
692 child_notifier = notify_pipe[1];
693
694 if (cmd->no_stdin)
695 child_dup2(null_fd, 0);
696 else if (need_in) {
697 child_dup2(fdin[0], 0);
698 child_close_pair(fdin);
699 } else if (cmd->in) {
700 child_dup2(cmd->in, 0);
701 child_close(cmd->in);
702 }
703
704 if (cmd->no_stderr)
705 child_dup2(null_fd, 2);
706 else if (need_err) {
707 child_dup2(fderr[1], 2);
708 child_close_pair(fderr);
709 } else if (cmd->err > 1) {
710 child_dup2(cmd->err, 2);
711 child_close(cmd->err);
712 }
713
714 if (cmd->no_stdout)
715 child_dup2(null_fd, 1);
716 else if (cmd->stdout_to_stderr)
717 child_dup2(2, 1);
718 else if (need_out) {
719 child_dup2(fdout[1], 1);
720 child_close_pair(fdout);
721 } else if (cmd->out > 1) {
722 child_dup2(cmd->out, 1);
723 child_close(cmd->out);
724 }
725
726 if (cmd->dir && chdir(cmd->dir))
727 child_die(CHILD_ERR_CHDIR);
728
729 /*
730 * restore default signal handlers here, in case
731 * we catch a signal right before execve below
732 */
733 for (sig = 1; sig < NSIG; sig++) {
734 /* ignored signals get reset to SIG_DFL on execve */
735 if (signal(sig, SIG_DFL) == SIG_IGN)
736 signal(sig, SIG_IGN);
737 }
738
739 if (sigprocmask(SIG_SETMASK, &as.old, NULL) != 0)
740 child_die(CHILD_ERR_SIGPROCMASK);
741
742 /*
743 * Attempt to exec using the command and arguments starting at
744 * argv.argv[1]. argv.argv[0] contains SHELL_PATH which will
745 * be used in the event exec failed with ENOEXEC at which point
746 * we will try to interpret the command using 'sh'.
747 */
748 execve(argv.argv[1], (char *const *) argv.argv + 1,
749 (char *const *) childenv);
750 if (errno == ENOEXEC)
751 execve(argv.argv[0], (char *const *) argv.argv,
752 (char *const *) childenv);
753
754 if (errno == ENOENT) {
755 if (cmd->silent_exec_failure)
756 child_die(CHILD_ERR_SILENT);
757 child_die(CHILD_ERR_ENOENT);
758 } else {
759 child_die(CHILD_ERR_ERRNO);
760 }
761 }
762 atfork_parent(&as);
763 if (cmd->pid < 0)
764 error_errno("cannot fork() for %s", cmd->argv[0]);
765 else if (cmd->clean_on_exit)
766 mark_child_for_cleanup(cmd->pid, cmd);
767
768 /*
769 * Wait for child's exec. If the exec succeeds (or if fork()
770 * failed), EOF is seen immediately by the parent. Otherwise, the
771 * child process sends a child_err struct.
772 * Note that use of this infrastructure is completely advisory,
773 * therefore, we keep error checks minimal.
774 */
775 close(notify_pipe[1]);
776 if (xread(notify_pipe[0], &cerr, sizeof(cerr)) == sizeof(cerr)) {
777 /*
778 * At this point we know that fork() succeeded, but exec()
779 * failed. Errors have been reported to our stderr.
780 */
781 wait_or_whine(cmd->pid, cmd->argv[0], 0);
782 child_err_spew(cmd, &cerr);
783 failed_errno = errno;
784 cmd->pid = -1;
785 }
786 close(notify_pipe[0]);
787
788 if (null_fd >= 0)
789 close(null_fd);
790 argv_array_clear(&argv);
791 free(childenv);
792}
793#else
794{
795 int fhin = 0, fhout = 1, fherr = 2;
796 const char **sargv = cmd->argv;
797 struct argv_array nargv = ARGV_ARRAY_INIT;
798
799 if (cmd->no_stdin)
800 fhin = open("/dev/null", O_RDWR);
801 else if (need_in)
802 fhin = dup(fdin[0]);
803 else if (cmd->in)
804 fhin = dup(cmd->in);
805
806 if (cmd->no_stderr)
807 fherr = open("/dev/null", O_RDWR);
808 else if (need_err)
809 fherr = dup(fderr[1]);
810 else if (cmd->err > 2)
811 fherr = dup(cmd->err);
812
813 if (cmd->no_stdout)
814 fhout = open("/dev/null", O_RDWR);
815 else if (cmd->stdout_to_stderr)
816 fhout = dup(fherr);
817 else if (need_out)
818 fhout = dup(fdout[1]);
819 else if (cmd->out > 1)
820 fhout = dup(cmd->out);
821
822 if (cmd->git_cmd)
823 cmd->argv = prepare_git_cmd(&nargv, cmd->argv);
824 else if (cmd->use_shell)
825 cmd->argv = prepare_shell_cmd(&nargv, cmd->argv);
826
827 cmd->pid = mingw_spawnvpe(cmd->argv[0], cmd->argv, (char**) cmd->env,
828 cmd->dir, fhin, fhout, fherr);
829 failed_errno = errno;
830 if (cmd->pid < 0 && (!cmd->silent_exec_failure || errno != ENOENT))
831 error_errno("cannot spawn %s", cmd->argv[0]);
832 if (cmd->clean_on_exit && cmd->pid >= 0)
833 mark_child_for_cleanup(cmd->pid, cmd);
834
835 argv_array_clear(&nargv);
836 cmd->argv = sargv;
837 if (fhin != 0)
838 close(fhin);
839 if (fhout != 1)
840 close(fhout);
841 if (fherr != 2)
842 close(fherr);
843}
844#endif
845
846 if (cmd->pid < 0) {
847 if (need_in)
848 close_pair(fdin);
849 else if (cmd->in)
850 close(cmd->in);
851 if (need_out)
852 close_pair(fdout);
853 else if (cmd->out)
854 close(cmd->out);
855 if (need_err)
856 close_pair(fderr);
857 else if (cmd->err)
858 close(cmd->err);
859 child_process_clear(cmd);
860 errno = failed_errno;
861 return -1;
862 }
863
864 if (need_in)
865 close(fdin[0]);
866 else if (cmd->in)
867 close(cmd->in);
868
869 if (need_out)
870 close(fdout[1]);
871 else if (cmd->out)
872 close(cmd->out);
873
874 if (need_err)
875 close(fderr[1]);
876 else if (cmd->err)
877 close(cmd->err);
878
879 return 0;
880}
881
882int finish_command(struct child_process *cmd)
883{
884 int ret = wait_or_whine(cmd->pid, cmd->argv[0], 0);
885 child_process_clear(cmd);
886 return ret;
887}
888
889int finish_command_in_signal(struct child_process *cmd)
890{
891 return wait_or_whine(cmd->pid, cmd->argv[0], 1);
892}
893
894
895int run_command(struct child_process *cmd)
896{
897 int code;
898
899 if (cmd->out < 0 || cmd->err < 0)
900 die("BUG: run_command with a pipe can cause deadlock");
901
902 code = start_command(cmd);
903 if (code)
904 return code;
905 return finish_command(cmd);
906}
907
908int run_command_v_opt(const char **argv, int opt)
909{
910 return run_command_v_opt_cd_env(argv, opt, NULL, NULL);
911}
912
913int run_command_v_opt_cd_env(const char **argv, int opt, const char *dir, const char *const *env)
914{
915 struct child_process cmd = CHILD_PROCESS_INIT;
916 cmd.argv = argv;
917 cmd.no_stdin = opt & RUN_COMMAND_NO_STDIN ? 1 : 0;
918 cmd.git_cmd = opt & RUN_GIT_CMD ? 1 : 0;
919 cmd.stdout_to_stderr = opt & RUN_COMMAND_STDOUT_TO_STDERR ? 1 : 0;
920 cmd.silent_exec_failure = opt & RUN_SILENT_EXEC_FAILURE ? 1 : 0;
921 cmd.use_shell = opt & RUN_USING_SHELL ? 1 : 0;
922 cmd.clean_on_exit = opt & RUN_CLEAN_ON_EXIT ? 1 : 0;
923 cmd.dir = dir;
924 cmd.env = env;
925 return run_command(&cmd);
926}
927
928#ifndef NO_PTHREADS
929static pthread_t main_thread;
930static int main_thread_set;
931static pthread_key_t async_key;
932static pthread_key_t async_die_counter;
933
934static void *run_thread(void *data)
935{
936 struct async *async = data;
937 intptr_t ret;
938
939 if (async->isolate_sigpipe) {
940 sigset_t mask;
941 sigemptyset(&mask);
942 sigaddset(&mask, SIGPIPE);
943 if (pthread_sigmask(SIG_BLOCK, &mask, NULL) < 0) {
944 ret = error("unable to block SIGPIPE in async thread");
945 return (void *)ret;
946 }
947 }
948
949 pthread_setspecific(async_key, async);
950 ret = async->proc(async->proc_in, async->proc_out, async->data);
951 return (void *)ret;
952}
953
954static NORETURN void die_async(const char *err, va_list params)
955{
956 vreportf("fatal: ", err, params);
957
958 if (in_async()) {
959 struct async *async = pthread_getspecific(async_key);
960 if (async->proc_in >= 0)
961 close(async->proc_in);
962 if (async->proc_out >= 0)
963 close(async->proc_out);
964 pthread_exit((void *)128);
965 }
966
967 exit(128);
968}
969
970static int async_die_is_recursing(void)
971{
972 void *ret = pthread_getspecific(async_die_counter);
973 pthread_setspecific(async_die_counter, (void *)1);
974 return ret != NULL;
975}
976
977int in_async(void)
978{
979 if (!main_thread_set)
980 return 0; /* no asyncs started yet */
981 return !pthread_equal(main_thread, pthread_self());
982}
983
984static void NORETURN async_exit(int code)
985{
986 pthread_exit((void *)(intptr_t)code);
987}
988
989#else
990
991static struct {
992 void (**handlers)(void);
993 size_t nr;
994 size_t alloc;
995} git_atexit_hdlrs;
996
997static int git_atexit_installed;
998
999static void git_atexit_dispatch(void)
1000{
1001 size_t i;
1002
1003 for (i=git_atexit_hdlrs.nr ; i ; i--)
1004 git_atexit_hdlrs.handlers[i-1]();
1005}
1006
1007static void git_atexit_clear(void)
1008{
1009 free(git_atexit_hdlrs.handlers);
1010 memset(&git_atexit_hdlrs, 0, sizeof(git_atexit_hdlrs));
1011 git_atexit_installed = 0;
1012}
1013
1014#undef atexit
1015int git_atexit(void (*handler)(void))
1016{
1017 ALLOC_GROW(git_atexit_hdlrs.handlers, git_atexit_hdlrs.nr + 1, git_atexit_hdlrs.alloc);
1018 git_atexit_hdlrs.handlers[git_atexit_hdlrs.nr++] = handler;
1019 if (!git_atexit_installed) {
1020 if (atexit(&git_atexit_dispatch))
1021 return -1;
1022 git_atexit_installed = 1;
1023 }
1024 return 0;
1025}
1026#define atexit git_atexit
1027
1028static int process_is_async;
1029int in_async(void)
1030{
1031 return process_is_async;
1032}
1033
1034static void NORETURN async_exit(int code)
1035{
1036 exit(code);
1037}
1038
1039#endif
1040
1041void check_pipe(int err)
1042{
1043 if (err == EPIPE) {
1044 if (in_async())
1045 async_exit(141);
1046
1047 signal(SIGPIPE, SIG_DFL);
1048 raise(SIGPIPE);
1049 /* Should never happen, but just in case... */
1050 exit(141);
1051 }
1052}
1053
1054int start_async(struct async *async)
1055{
1056 int need_in, need_out;
1057 int fdin[2], fdout[2];
1058 int proc_in, proc_out;
1059
1060 need_in = async->in < 0;
1061 if (need_in) {
1062 if (pipe(fdin) < 0) {
1063 if (async->out > 0)
1064 close(async->out);
1065 return error_errno("cannot create pipe");
1066 }
1067 async->in = fdin[1];
1068 }
1069
1070 need_out = async->out < 0;
1071 if (need_out) {
1072 if (pipe(fdout) < 0) {
1073 if (need_in)
1074 close_pair(fdin);
1075 else if (async->in)
1076 close(async->in);
1077 return error_errno("cannot create pipe");
1078 }
1079 async->out = fdout[0];
1080 }
1081
1082 if (need_in)
1083 proc_in = fdin[0];
1084 else if (async->in)
1085 proc_in = async->in;
1086 else
1087 proc_in = -1;
1088
1089 if (need_out)
1090 proc_out = fdout[1];
1091 else if (async->out)
1092 proc_out = async->out;
1093 else
1094 proc_out = -1;
1095
1096#ifdef NO_PTHREADS
1097 /* Flush stdio before fork() to avoid cloning buffers */
1098 fflush(NULL);
1099
1100 async->pid = fork();
1101 if (async->pid < 0) {
1102 error_errno("fork (async) failed");
1103 goto error;
1104 }
1105 if (!async->pid) {
1106 if (need_in)
1107 close(fdin[1]);
1108 if (need_out)
1109 close(fdout[0]);
1110 git_atexit_clear();
1111 process_is_async = 1;
1112 exit(!!async->proc(proc_in, proc_out, async->data));
1113 }
1114
1115 mark_child_for_cleanup(async->pid, NULL);
1116
1117 if (need_in)
1118 close(fdin[0]);
1119 else if (async->in)
1120 close(async->in);
1121
1122 if (need_out)
1123 close(fdout[1]);
1124 else if (async->out)
1125 close(async->out);
1126#else
1127 if (!main_thread_set) {
1128 /*
1129 * We assume that the first time that start_async is called
1130 * it is from the main thread.
1131 */
1132 main_thread_set = 1;
1133 main_thread = pthread_self();
1134 pthread_key_create(&async_key, NULL);
1135 pthread_key_create(&async_die_counter, NULL);
1136 set_die_routine(die_async);
1137 set_die_is_recursing_routine(async_die_is_recursing);
1138 }
1139
1140 if (proc_in >= 0)
1141 set_cloexec(proc_in);
1142 if (proc_out >= 0)
1143 set_cloexec(proc_out);
1144 async->proc_in = proc_in;
1145 async->proc_out = proc_out;
1146 {
1147 int err = pthread_create(&async->tid, NULL, run_thread, async);
1148 if (err) {
1149 error_errno("cannot create thread");
1150 goto error;
1151 }
1152 }
1153#endif
1154 return 0;
1155
1156error:
1157 if (need_in)
1158 close_pair(fdin);
1159 else if (async->in)
1160 close(async->in);
1161
1162 if (need_out)
1163 close_pair(fdout);
1164 else if (async->out)
1165 close(async->out);
1166 return -1;
1167}
1168
1169int finish_async(struct async *async)
1170{
1171#ifdef NO_PTHREADS
1172 return wait_or_whine(async->pid, "child process", 0);
1173#else
1174 void *ret = (void *)(intptr_t)(-1);
1175
1176 if (pthread_join(async->tid, &ret))
1177 error("pthread_join failed");
1178 return (int)(intptr_t)ret;
1179#endif
1180}
1181
1182const char *find_hook(const char *name)
1183{
1184 static struct strbuf path = STRBUF_INIT;
1185
1186 strbuf_reset(&path);
1187 strbuf_git_path(&path, "hooks/%s", name);
1188 if (access(path.buf, X_OK) < 0) {
1189 int err = errno;
1190
1191#ifdef STRIP_EXTENSION
1192 strbuf_addstr(&path, STRIP_EXTENSION);
1193 if (access(path.buf, X_OK) >= 0)
1194 return path.buf;
1195 if (errno == EACCES)
1196 err = errno;
1197#endif
1198
1199 if (err == EACCES && advice_ignored_hook) {
1200 static struct string_list advise_given = STRING_LIST_INIT_DUP;
1201
1202 if (!string_list_lookup(&advise_given, name)) {
1203 string_list_insert(&advise_given, name);
1204 advise(_("The '%s' hook was ignored because "
1205 "it's not set as executable.\n"
1206 "You can disable this warning with "
1207 "`git config advice.ignoredHook false`."),
1208 path.buf);
1209 }
1210 }
1211 return NULL;
1212 }
1213 return path.buf;
1214}
1215
1216int run_hook_ve(const char *const *env, const char *name, va_list args)
1217{
1218 struct child_process hook = CHILD_PROCESS_INIT;
1219 const char *p;
1220
1221 p = find_hook(name);
1222 if (!p)
1223 return 0;
1224
1225 argv_array_push(&hook.args, p);
1226 while ((p = va_arg(args, const char *)))
1227 argv_array_push(&hook.args, p);
1228 hook.env = env;
1229 hook.no_stdin = 1;
1230 hook.stdout_to_stderr = 1;
1231
1232 return run_command(&hook);
1233}
1234
1235int run_hook_le(const char *const *env, const char *name, ...)
1236{
1237 va_list args;
1238 int ret;
1239
1240 va_start(args, name);
1241 ret = run_hook_ve(env, name, args);
1242 va_end(args);
1243
1244 return ret;
1245}
1246
1247struct io_pump {
1248 /* initialized by caller */
1249 int fd;
1250 int type; /* POLLOUT or POLLIN */
1251 union {
1252 struct {
1253 const char *buf;
1254 size_t len;
1255 } out;
1256 struct {
1257 struct strbuf *buf;
1258 size_t hint;
1259 } in;
1260 } u;
1261
1262 /* returned by pump_io */
1263 int error; /* 0 for success, otherwise errno */
1264
1265 /* internal use */
1266 struct pollfd *pfd;
1267};
1268
1269static int pump_io_round(struct io_pump *slots, int nr, struct pollfd *pfd)
1270{
1271 int pollsize = 0;
1272 int i;
1273
1274 for (i = 0; i < nr; i++) {
1275 struct io_pump *io = &slots[i];
1276 if (io->fd < 0)
1277 continue;
1278 pfd[pollsize].fd = io->fd;
1279 pfd[pollsize].events = io->type;
1280 io->pfd = &pfd[pollsize++];
1281 }
1282
1283 if (!pollsize)
1284 return 0;
1285
1286 if (poll(pfd, pollsize, -1) < 0) {
1287 if (errno == EINTR)
1288 return 1;
1289 die_errno("poll failed");
1290 }
1291
1292 for (i = 0; i < nr; i++) {
1293 struct io_pump *io = &slots[i];
1294
1295 if (io->fd < 0)
1296 continue;
1297
1298 if (!(io->pfd->revents & (POLLOUT|POLLIN|POLLHUP|POLLERR|POLLNVAL)))
1299 continue;
1300
1301 if (io->type == POLLOUT) {
1302 ssize_t len = xwrite(io->fd,
1303 io->u.out.buf, io->u.out.len);
1304 if (len < 0) {
1305 io->error = errno;
1306 close(io->fd);
1307 io->fd = -1;
1308 } else {
1309 io->u.out.buf += len;
1310 io->u.out.len -= len;
1311 if (!io->u.out.len) {
1312 close(io->fd);
1313 io->fd = -1;
1314 }
1315 }
1316 }
1317
1318 if (io->type == POLLIN) {
1319 ssize_t len = strbuf_read_once(io->u.in.buf,
1320 io->fd, io->u.in.hint);
1321 if (len < 0)
1322 io->error = errno;
1323 if (len <= 0) {
1324 close(io->fd);
1325 io->fd = -1;
1326 }
1327 }
1328 }
1329
1330 return 1;
1331}
1332
1333static int pump_io(struct io_pump *slots, int nr)
1334{
1335 struct pollfd *pfd;
1336 int i;
1337
1338 for (i = 0; i < nr; i++)
1339 slots[i].error = 0;
1340
1341 ALLOC_ARRAY(pfd, nr);
1342 while (pump_io_round(slots, nr, pfd))
1343 ; /* nothing */
1344 free(pfd);
1345
1346 /* There may be multiple errno values, so just pick the first. */
1347 for (i = 0; i < nr; i++) {
1348 if (slots[i].error) {
1349 errno = slots[i].error;
1350 return -1;
1351 }
1352 }
1353 return 0;
1354}
1355
1356
1357int pipe_command(struct child_process *cmd,
1358 const char *in, size_t in_len,
1359 struct strbuf *out, size_t out_hint,
1360 struct strbuf *err, size_t err_hint)
1361{
1362 struct io_pump io[3];
1363 int nr = 0;
1364
1365 if (in)
1366 cmd->in = -1;
1367 if (out)
1368 cmd->out = -1;
1369 if (err)
1370 cmd->err = -1;
1371
1372 if (start_command(cmd) < 0)
1373 return -1;
1374
1375 if (in) {
1376 io[nr].fd = cmd->in;
1377 io[nr].type = POLLOUT;
1378 io[nr].u.out.buf = in;
1379 io[nr].u.out.len = in_len;
1380 nr++;
1381 }
1382 if (out) {
1383 io[nr].fd = cmd->out;
1384 io[nr].type = POLLIN;
1385 io[nr].u.in.buf = out;
1386 io[nr].u.in.hint = out_hint;
1387 nr++;
1388 }
1389 if (err) {
1390 io[nr].fd = cmd->err;
1391 io[nr].type = POLLIN;
1392 io[nr].u.in.buf = err;
1393 io[nr].u.in.hint = err_hint;
1394 nr++;
1395 }
1396
1397 if (pump_io(io, nr) < 0) {
1398 finish_command(cmd); /* throw away exit code */
1399 return -1;
1400 }
1401
1402 return finish_command(cmd);
1403}
1404
1405enum child_state {
1406 GIT_CP_FREE,
1407 GIT_CP_WORKING,
1408 GIT_CP_WAIT_CLEANUP,
1409};
1410
1411struct parallel_processes {
1412 void *data;
1413
1414 int max_processes;
1415 int nr_processes;
1416
1417 get_next_task_fn get_next_task;
1418 start_failure_fn start_failure;
1419 task_finished_fn task_finished;
1420
1421 struct {
1422 enum child_state state;
1423 struct child_process process;
1424 struct strbuf err;
1425 void *data;
1426 } *children;
1427 /*
1428 * The struct pollfd is logically part of *children,
1429 * but the system call expects it as its own array.
1430 */
1431 struct pollfd *pfd;
1432
1433 unsigned shutdown : 1;
1434
1435 int output_owner;
1436 struct strbuf buffered_output; /* of finished children */
1437};
1438
1439static int default_start_failure(struct strbuf *out,
1440 void *pp_cb,
1441 void *pp_task_cb)
1442{
1443 return 0;
1444}
1445
1446static int default_task_finished(int result,
1447 struct strbuf *out,
1448 void *pp_cb,
1449 void *pp_task_cb)
1450{
1451 return 0;
1452}
1453
1454static void kill_children(struct parallel_processes *pp, int signo)
1455{
1456 int i, n = pp->max_processes;
1457
1458 for (i = 0; i < n; i++)
1459 if (pp->children[i].state == GIT_CP_WORKING)
1460 kill(pp->children[i].process.pid, signo);
1461}
1462
1463static struct parallel_processes *pp_for_signal;
1464
1465static void handle_children_on_signal(int signo)
1466{
1467 kill_children(pp_for_signal, signo);
1468 sigchain_pop(signo);
1469 raise(signo);
1470}
1471
1472static void pp_init(struct parallel_processes *pp,
1473 int n,
1474 get_next_task_fn get_next_task,
1475 start_failure_fn start_failure,
1476 task_finished_fn task_finished,
1477 void *data)
1478{
1479 int i;
1480
1481 if (n < 1)
1482 n = online_cpus();
1483
1484 pp->max_processes = n;
1485
1486 trace_printf("run_processes_parallel: preparing to run up to %d tasks", n);
1487
1488 pp->data = data;
1489 if (!get_next_task)
1490 die("BUG: you need to specify a get_next_task function");
1491 pp->get_next_task = get_next_task;
1492
1493 pp->start_failure = start_failure ? start_failure : default_start_failure;
1494 pp->task_finished = task_finished ? task_finished : default_task_finished;
1495
1496 pp->nr_processes = 0;
1497 pp->output_owner = 0;
1498 pp->shutdown = 0;
1499 pp->children = xcalloc(n, sizeof(*pp->children));
1500 pp->pfd = xcalloc(n, sizeof(*pp->pfd));
1501 strbuf_init(&pp->buffered_output, 0);
1502
1503 for (i = 0; i < n; i++) {
1504 strbuf_init(&pp->children[i].err, 0);
1505 child_process_init(&pp->children[i].process);
1506 pp->pfd[i].events = POLLIN | POLLHUP;
1507 pp->pfd[i].fd = -1;
1508 }
1509
1510 pp_for_signal = pp;
1511 sigchain_push_common(handle_children_on_signal);
1512}
1513
1514static void pp_cleanup(struct parallel_processes *pp)
1515{
1516 int i;
1517
1518 trace_printf("run_processes_parallel: done");
1519 for (i = 0; i < pp->max_processes; i++) {
1520 strbuf_release(&pp->children[i].err);
1521 child_process_clear(&pp->children[i].process);
1522 }
1523
1524 free(pp->children);
1525 free(pp->pfd);
1526
1527 /*
1528 * When get_next_task added messages to the buffer in its last
1529 * iteration, the buffered output is non empty.
1530 */
1531 strbuf_write(&pp->buffered_output, stderr);
1532 strbuf_release(&pp->buffered_output);
1533
1534 sigchain_pop_common();
1535}
1536
1537/* returns
1538 * 0 if a new task was started.
1539 * 1 if no new jobs was started (get_next_task ran out of work, non critical
1540 * problem with starting a new command)
1541 * <0 no new job was started, user wishes to shutdown early. Use negative code
1542 * to signal the children.
1543 */
1544static int pp_start_one(struct parallel_processes *pp)
1545{
1546 int i, code;
1547
1548 for (i = 0; i < pp->max_processes; i++)
1549 if (pp->children[i].state == GIT_CP_FREE)
1550 break;
1551 if (i == pp->max_processes)
1552 die("BUG: bookkeeping is hard");
1553
1554 code = pp->get_next_task(&pp->children[i].process,
1555 &pp->children[i].err,
1556 pp->data,
1557 &pp->children[i].data);
1558 if (!code) {
1559 strbuf_addbuf(&pp->buffered_output, &pp->children[i].err);
1560 strbuf_reset(&pp->children[i].err);
1561 return 1;
1562 }
1563 pp->children[i].process.err = -1;
1564 pp->children[i].process.stdout_to_stderr = 1;
1565 pp->children[i].process.no_stdin = 1;
1566
1567 if (start_command(&pp->children[i].process)) {
1568 code = pp->start_failure(&pp->children[i].err,
1569 pp->data,
1570 pp->children[i].data);
1571 strbuf_addbuf(&pp->buffered_output, &pp->children[i].err);
1572 strbuf_reset(&pp->children[i].err);
1573 if (code)
1574 pp->shutdown = 1;
1575 return code;
1576 }
1577
1578 pp->nr_processes++;
1579 pp->children[i].state = GIT_CP_WORKING;
1580 pp->pfd[i].fd = pp->children[i].process.err;
1581 return 0;
1582}
1583
1584static void pp_buffer_stderr(struct parallel_processes *pp, int output_timeout)
1585{
1586 int i;
1587
1588 while ((i = poll(pp->pfd, pp->max_processes, output_timeout)) < 0) {
1589 if (errno == EINTR)
1590 continue;
1591 pp_cleanup(pp);
1592 die_errno("poll");
1593 }
1594
1595 /* Buffer output from all pipes. */
1596 for (i = 0; i < pp->max_processes; i++) {
1597 if (pp->children[i].state == GIT_CP_WORKING &&
1598 pp->pfd[i].revents & (POLLIN | POLLHUP)) {
1599 int n = strbuf_read_once(&pp->children[i].err,
1600 pp->children[i].process.err, 0);
1601 if (n == 0) {
1602 close(pp->children[i].process.err);
1603 pp->children[i].state = GIT_CP_WAIT_CLEANUP;
1604 } else if (n < 0)
1605 if (errno != EAGAIN)
1606 die_errno("read");
1607 }
1608 }
1609}
1610
1611static void pp_output(struct parallel_processes *pp)
1612{
1613 int i = pp->output_owner;
1614 if (pp->children[i].state == GIT_CP_WORKING &&
1615 pp->children[i].err.len) {
1616 strbuf_write(&pp->children[i].err, stderr);
1617 strbuf_reset(&pp->children[i].err);
1618 }
1619}
1620
1621static int pp_collect_finished(struct parallel_processes *pp)
1622{
1623 int i, code;
1624 int n = pp->max_processes;
1625 int result = 0;
1626
1627 while (pp->nr_processes > 0) {
1628 for (i = 0; i < pp->max_processes; i++)
1629 if (pp->children[i].state == GIT_CP_WAIT_CLEANUP)
1630 break;
1631 if (i == pp->max_processes)
1632 break;
1633
1634 code = finish_command(&pp->children[i].process);
1635
1636 code = pp->task_finished(code,
1637 &pp->children[i].err, pp->data,
1638 pp->children[i].data);
1639
1640 if (code)
1641 result = code;
1642 if (code < 0)
1643 break;
1644
1645 pp->nr_processes--;
1646 pp->children[i].state = GIT_CP_FREE;
1647 pp->pfd[i].fd = -1;
1648 child_process_init(&pp->children[i].process);
1649
1650 if (i != pp->output_owner) {
1651 strbuf_addbuf(&pp->buffered_output, &pp->children[i].err);
1652 strbuf_reset(&pp->children[i].err);
1653 } else {
1654 strbuf_write(&pp->children[i].err, stderr);
1655 strbuf_reset(&pp->children[i].err);
1656
1657 /* Output all other finished child processes */
1658 strbuf_write(&pp->buffered_output, stderr);
1659 strbuf_reset(&pp->buffered_output);
1660
1661 /*
1662 * Pick next process to output live.
1663 * NEEDSWORK:
1664 * For now we pick it randomly by doing a round
1665 * robin. Later we may want to pick the one with
1666 * the most output or the longest or shortest
1667 * running process time.
1668 */
1669 for (i = 0; i < n; i++)
1670 if (pp->children[(pp->output_owner + i) % n].state == GIT_CP_WORKING)
1671 break;
1672 pp->output_owner = (pp->output_owner + i) % n;
1673 }
1674 }
1675 return result;
1676}
1677
1678int run_processes_parallel(int n,
1679 get_next_task_fn get_next_task,
1680 start_failure_fn start_failure,
1681 task_finished_fn task_finished,
1682 void *pp_cb)
1683{
1684 int i, code;
1685 int output_timeout = 100;
1686 int spawn_cap = 4;
1687 struct parallel_processes pp;
1688
1689 pp_init(&pp, n, get_next_task, start_failure, task_finished, pp_cb);
1690 while (1) {
1691 for (i = 0;
1692 i < spawn_cap && !pp.shutdown &&
1693 pp.nr_processes < pp.max_processes;
1694 i++) {
1695 code = pp_start_one(&pp);
1696 if (!code)
1697 continue;
1698 if (code < 0) {
1699 pp.shutdown = 1;
1700 kill_children(&pp, -code);
1701 }
1702 break;
1703 }
1704 if (!pp.nr_processes)
1705 break;
1706 pp_buffer_stderr(&pp, output_timeout);
1707 pp_output(&pp);
1708 code = pp_collect_finished(&pp);
1709 if (code) {
1710 pp.shutdown = 1;
1711 if (code < 0)
1712 kill_children(&pp, -code);
1713 }
1714 }
1715
1716 pp_cleanup(&pp);
1717 return 0;
1718}