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1 /* GIO - GLib Input, Output and Streaming Library
2  *
3  * Copyright © 2012, 2013 Red Hat, Inc.
4  * Copyright © 2012, 2013 Canonical Limited
5  *
6  * This library is free software; you can redistribute it and/or
7  * modify it under the terms of the GNU Lesser General Public
8  * License as published by the Free Software Foundation; either
9  * version 2.1 of the License, or (at your option) any later version.
10  *
11  * See the included COPYING file for more information.
12  *
13  * Authors: Colin Walters <walters@verbum.org>
14  *          Ryan Lortie <desrt@desrt.ca>
15  */
16 
17 /**
18  * SECTION:gsubprocess
19  * @title: GSubprocess
20  * @short_description: Child processes
21  * @include: gio/gio.h
22  * @see_also: #GSubprocessLauncher
23  *
24  * #GSubprocess allows the creation of and interaction with child
25  * processes.
26  *
27  * Processes can be communicated with using standard GIO-style APIs (ie:
28  * #GInputStream, #GOutputStream).  There are GIO-style APIs to wait for
29  * process termination (ie: cancellable and with an asynchronous
30  * variant).
31  *
32  * There is an API to force a process to terminate, as well as a
33  * race-free API for sending UNIX signals to a subprocess.
34  *
35  * One major advantage that GIO brings over the core GLib library is
36  * comprehensive API for asynchronous I/O, such
37  * g_output_stream_splice_async().  This makes GSubprocess
38  * significantly more powerful and flexible than equivalent APIs in
39  * some other languages such as the `subprocess.py`
40  * included with Python.  For example, using #GSubprocess one could
41  * create two child processes, reading standard output from the first,
42  * processing it, and writing to the input stream of the second, all
43  * without blocking the main loop.
44  *
45  * A powerful g_subprocess_communicate() API is provided similar to the
46  * `communicate()` method of `subprocess.py`. This enables very easy
47  * interaction with a subprocess that has been opened with pipes.
48  *
49  * #GSubprocess defaults to tight control over the file descriptors open
50  * in the child process, avoiding dangling-fd issues that are caused by
51  * a simple fork()/exec().  The only open file descriptors in the
52  * spawned process are ones that were explicitly specified by the
53  * #GSubprocess API (unless %G_SUBPROCESS_FLAGS_INHERIT_FDS was
54  * specified).
55  *
56  * #GSubprocess will quickly reap all child processes as they exit,
57  * avoiding "zombie processes" remaining around for long periods of
58  * time.  g_subprocess_wait() can be used to wait for this to happen,
59  * but it will happen even without the call being explicitly made.
60  *
61  * As a matter of principle, #GSubprocess has no API that accepts
62  * shell-style space-separated strings.  It will, however, match the
63  * typical shell behaviour of searching the PATH for executables that do
64  * not contain a directory separator in their name.
65  *
66  * #GSubprocess attempts to have a very simple API for most uses (ie:
67  * spawning a subprocess with arguments and support for most typical
68  * kinds of input and output redirection).  See g_subprocess_new(). The
69  * #GSubprocessLauncher API is provided for more complicated cases
70  * (advanced types of redirection, environment variable manipulation,
71  * change of working directory, child setup functions, etc).
72  *
73  * A typical use of #GSubprocess will involve calling
74  * g_subprocess_new(), followed by g_subprocess_wait_async() or
75  * g_subprocess_wait().  After the process exits, the status can be
76  * checked using functions such as g_subprocess_get_if_exited() (which
77  * are similar to the familiar WIFEXITED-style POSIX macros).
78  *
79  * Since: 2.40
80  **/
81 
82 #include "config.h"
83 
84 #include "gsubprocess.h"
85 #include "gsubprocesslauncher-private.h"
86 #include "gasyncresult.h"
87 #include "giostream.h"
88 #include "gmemoryinputstream.h"
89 #include "glibintl.h"
90 #include "glib-private.h"
91 
92 #include <string.h>
93 #ifdef G_OS_UNIX
94 #include <gio/gunixoutputstream.h>
95 #include <gio/gfiledescriptorbased.h>
96 #include <gio/gunixinputstream.h>
97 #include <gstdio.h>
98 #include <glib-unix.h>
99 #include <fcntl.h>
100 #endif
101 #ifdef G_OS_WIN32
102 #include <windows.h>
103 #include <io.h>
104 #include "giowin32-priv.h"
105 #endif
106 
107 #ifndef O_BINARY
108 #define O_BINARY 0
109 #endif
110 
111 #ifndef O_CLOEXEC
112 #define O_CLOEXEC 0
113 #else
114 #define HAVE_O_CLOEXEC 1
115 #endif
116 
117 #define COMMUNICATE_READ_SIZE 4096
118 
119 /* A GSubprocess can have two possible states: running and not.
120  *
121  * These two states are reflected by the value of 'pid'.  If it is
122  * non-zero then the process is running, with that pid.
123  *
124  * When a GSubprocess is first created with g_object_new() it is not
125  * running.  When it is finalized, it is also not running.
126  *
127  * During initable_init(), if the g_spawn() is successful then we
128  * immediately register a child watch and take an extra ref on the
129  * subprocess.  That reference doesn't drop until the child has quit,
130  * which is why finalize can only happen in the non-running state.  In
131  * the event that the g_spawn() failed we will still be finalizing a
132  * non-running GSubprocess (before returning from g_subprocess_new())
133  * with NULL.
134  *
135  * We make extensive use of the glib worker thread to guarantee
136  * race-free operation.  As with all child watches, glib calls waitpid()
137  * in the worker thread.  It reports the child exiting to us via the
138  * worker thread (which means that we can do synchronous waits without
139  * running a separate loop).  We also send signals to the child process
140  * via the worker thread so that we don't race with waitpid() and
141  * accidentally send a signal to an already-reaped child.
142  */
143 static void initable_iface_init (GInitableIface         *initable_iface);
144 
145 typedef GObjectClass GSubprocessClass;
146 
147 struct _GSubprocess
148 {
149   GObject parent;
150 
151   /* only used during construction */
152   GSubprocessLauncher *launcher;
153   GSubprocessFlags flags;
154   gchar **argv;
155 
156   /* state tracking variables */
157   gchar identifier[24];
158   int status;
159   GPid pid;
160 
161   /* list of GTask */
162   GMutex pending_waits_lock;
163   GSList *pending_waits;
164 
165   /* These are the streams created if a pipe is requested via flags. */
166   GOutputStream *stdin_pipe;
167   GInputStream  *stdout_pipe;
168   GInputStream  *stderr_pipe;
169 };
170 
171 G_DEFINE_TYPE_WITH_CODE (GSubprocess, g_subprocess, G_TYPE_OBJECT,
172                          G_IMPLEMENT_INTERFACE (G_TYPE_INITABLE, initable_iface_init))
173 
174 enum
175 {
176   PROP_0,
177   PROP_FLAGS,
178   PROP_ARGV,
179   N_PROPS
180 };
181 
182 #ifdef G_OS_UNIX
183 typedef struct
184 {
185   gint                 fds[3];
186   GSpawnChildSetupFunc child_setup_func;
187   gpointer             child_setup_data;
188   GArray              *basic_fd_assignments;
189   GArray              *needdup_fd_assignments;
190 } ChildData;
191 
192 static void
unset_cloexec(int fd)193 unset_cloexec (int fd)
194 {
195   int flags;
196   int result;
197 
198   flags = fcntl (fd, F_GETFD, 0);
199 
200   if (flags != -1)
201     {
202       int errsv;
203       flags &= (~FD_CLOEXEC);
204       do
205         {
206           result = fcntl (fd, F_SETFD, flags);
207           errsv = errno;
208         }
209       while (result == -1 && errsv == EINTR);
210     }
211 }
212 
213 static int
dupfd_cloexec(int parent_fd)214 dupfd_cloexec (int parent_fd)
215 {
216   int fd, errsv;
217 #ifdef F_DUPFD_CLOEXEC
218   do
219     {
220       fd = fcntl (parent_fd, F_DUPFD_CLOEXEC, 3);
221       errsv = errno;
222     }
223   while (fd == -1 && errsv == EINTR);
224 #else
225   /* OS X Snow Lion and earlier don't have F_DUPFD_CLOEXEC:
226    * https://bugzilla.gnome.org/show_bug.cgi?id=710962
227    */
228   int result, flags;
229   do
230     {
231       fd = fcntl (parent_fd, F_DUPFD, 3);
232       errsv = errno;
233     }
234   while (fd == -1 && errsv == EINTR);
235   flags = fcntl (fd, F_GETFD, 0);
236   if (flags != -1)
237     {
238       flags |= FD_CLOEXEC;
239       do
240         {
241           result = fcntl (fd, F_SETFD, flags);
242           errsv = errno;
243         }
244       while (result == -1 && errsv == EINTR);
245     }
246 #endif
247   return fd;
248 }
249 
250 /*
251  * Based on code derived from
252  * gnome-terminal:src/terminal-screen.c:terminal_screen_child_setup(),
253  * used under the LGPLv2+ with permission from author.
254  */
255 static void
child_setup(gpointer user_data)256 child_setup (gpointer user_data)
257 {
258   ChildData *child_data = user_data;
259   gint i;
260   gint result;
261   int errsv;
262 
263   /* We're on the child side now.  "Rename" the file descriptors in
264    * child_data.fds[] to stdin/stdout/stderr.
265    *
266    * We don't close the originals.  It's possible that the originals
267    * should not be closed and if they should be closed then they should
268    * have been created O_CLOEXEC.
269    */
270   for (i = 0; i < 3; i++)
271     if (child_data->fds[i] != -1 && child_data->fds[i] != i)
272       {
273         do
274           {
275             result = dup2 (child_data->fds[i], i);
276             errsv = errno;
277           }
278         while (result == -1 && errsv == EINTR);
279       }
280 
281   /* Basic fd assignments we can just unset FD_CLOEXEC */
282   if (child_data->basic_fd_assignments)
283     {
284       for (i = 0; i < child_data->basic_fd_assignments->len; i++)
285         {
286           gint fd = g_array_index (child_data->basic_fd_assignments, int, i);
287 
288           unset_cloexec (fd);
289         }
290     }
291 
292   /* If we're doing remapping fd assignments, we need to handle
293    * the case where the user has specified e.g.:
294    * 5 -> 4, 4 -> 6
295    *
296    * We do this by duping the source fds temporarily.
297    */
298   if (child_data->needdup_fd_assignments)
299     {
300       for (i = 0; i < child_data->needdup_fd_assignments->len; i += 2)
301         {
302           gint parent_fd = g_array_index (child_data->needdup_fd_assignments, int, i);
303           gint new_parent_fd;
304 
305           new_parent_fd = dupfd_cloexec (parent_fd);
306 
307           g_array_index (child_data->needdup_fd_assignments, int, i) = new_parent_fd;
308         }
309       for (i = 0; i < child_data->needdup_fd_assignments->len; i += 2)
310         {
311           gint parent_fd = g_array_index (child_data->needdup_fd_assignments, int, i);
312           gint child_fd = g_array_index (child_data->needdup_fd_assignments, int, i+1);
313 
314           if (parent_fd == child_fd)
315             {
316               unset_cloexec (parent_fd);
317             }
318           else
319             {
320               do
321                 {
322                   result = dup2 (parent_fd, child_fd);
323                   errsv = errno;
324                 }
325               while (result == -1 && errsv == EINTR);
326               (void) close (parent_fd);
327             }
328         }
329     }
330 
331   if (child_data->child_setup_func)
332     child_data->child_setup_func (child_data->child_setup_data);
333 }
334 #endif
335 
336 static GInputStream *
platform_input_stream_from_spawn_fd(gint fd)337 platform_input_stream_from_spawn_fd (gint fd)
338 {
339   if (fd < 0)
340     return NULL;
341 
342 #ifdef G_OS_UNIX
343   return g_unix_input_stream_new (fd, TRUE);
344 #else
345   return g_win32_input_stream_new_from_fd (fd, TRUE);
346 #endif
347 }
348 
349 static GOutputStream *
platform_output_stream_from_spawn_fd(gint fd)350 platform_output_stream_from_spawn_fd (gint fd)
351 {
352   if (fd < 0)
353     return NULL;
354 
355 #ifdef G_OS_UNIX
356   return g_unix_output_stream_new (fd, TRUE);
357 #else
358   return g_win32_output_stream_new_from_fd (fd, TRUE);
359 #endif
360 }
361 
362 #ifdef G_OS_UNIX
363 static gint
unix_open_file(const char * filename,gint mode,GError ** error)364 unix_open_file (const char  *filename,
365                 gint         mode,
366                 GError     **error)
367 {
368   gint my_fd;
369 
370   my_fd = g_open (filename, mode | O_BINARY | O_CLOEXEC, 0666);
371 
372   /* If we return -1 we should also set the error */
373   if (my_fd < 0)
374     {
375       gint saved_errno = errno;
376       char *display_name;
377 
378       display_name = g_filename_display_name (filename);
379       g_set_error (error, G_IO_ERROR, g_io_error_from_errno (saved_errno),
380                    _("Error opening file “%s”: %s"), display_name,
381                    g_strerror (saved_errno));
382       g_free (display_name);
383       /* fall through... */
384     }
385 #ifndef HAVE_O_CLOEXEC
386   else
387     fcntl (my_fd, F_SETFD, FD_CLOEXEC);
388 #endif
389 
390   return my_fd;
391 }
392 #endif
393 
394 static void
g_subprocess_set_property(GObject * object,guint prop_id,const GValue * value,GParamSpec * pspec)395 g_subprocess_set_property (GObject      *object,
396                            guint         prop_id,
397                            const GValue *value,
398                            GParamSpec   *pspec)
399 {
400   GSubprocess *self = G_SUBPROCESS (object);
401 
402   switch (prop_id)
403     {
404     case PROP_FLAGS:
405       self->flags = g_value_get_flags (value);
406       break;
407 
408     case PROP_ARGV:
409       self->argv = g_value_dup_boxed (value);
410       break;
411 
412     default:
413       g_assert_not_reached ();
414     }
415 }
416 
417 static gboolean
g_subprocess_exited(GPid pid,gint status,gpointer user_data)418 g_subprocess_exited (GPid     pid,
419                      gint     status,
420                      gpointer user_data)
421 {
422   GSubprocess *self = user_data;
423   GSList *tasks;
424 
425   g_assert (self->pid == pid);
426 
427   g_mutex_lock (&self->pending_waits_lock);
428   self->status = status;
429   tasks = self->pending_waits;
430   self->pending_waits = NULL;
431   self->pid = 0;
432   g_mutex_unlock (&self->pending_waits_lock);
433 
434   /* Signal anyone in g_subprocess_wait_async() to wake up now */
435   while (tasks)
436     {
437       g_task_return_boolean (tasks->data, TRUE);
438       g_object_unref (tasks->data);
439       tasks = g_slist_delete_link (tasks, tasks);
440     }
441 
442   g_spawn_close_pid (pid);
443 
444   return FALSE;
445 }
446 
447 static gboolean
initable_init(GInitable * initable,GCancellable * cancellable,GError ** error)448 initable_init (GInitable     *initable,
449                GCancellable  *cancellable,
450                GError       **error)
451 {
452   GSubprocess *self = G_SUBPROCESS (initable);
453 #ifdef G_OS_UNIX
454   ChildData child_data = { { -1, -1, -1 }, 0 };
455 #endif
456   gint *pipe_ptrs[3] = { NULL, NULL, NULL };
457   gint pipe_fds[3] = { -1, -1, -1 };
458   gint close_fds[3] = { -1, -1, -1 };
459   GSpawnFlags spawn_flags = 0;
460   gboolean success = FALSE;
461   gint i;
462 
463   /* this is a programmer error */
464   if (!self->argv || !self->argv[0] || !self->argv[0][0])
465     return FALSE;
466 
467   if (g_cancellable_set_error_if_cancelled (cancellable, error))
468     return FALSE;
469 
470   /* We must setup the three fds that will end up in the child as stdin,
471    * stdout and stderr.
472    *
473    * First, stdin.
474    */
475   if (self->flags & G_SUBPROCESS_FLAGS_STDIN_INHERIT)
476     spawn_flags |= G_SPAWN_CHILD_INHERITS_STDIN;
477   else if (self->flags & G_SUBPROCESS_FLAGS_STDIN_PIPE)
478     pipe_ptrs[0] = &pipe_fds[0];
479 #ifdef G_OS_UNIX
480   else if (self->launcher)
481     {
482       if (self->launcher->stdin_fd != -1)
483         child_data.fds[0] = self->launcher->stdin_fd;
484       else if (self->launcher->stdin_path != NULL)
485         {
486           child_data.fds[0] = close_fds[0] = unix_open_file (self->launcher->stdin_path, O_RDONLY, error);
487           if (child_data.fds[0] == -1)
488             goto out;
489         }
490     }
491 #endif
492 
493   /* Next, stdout. */
494   if (self->flags & G_SUBPROCESS_FLAGS_STDOUT_SILENCE)
495     spawn_flags |= G_SPAWN_STDOUT_TO_DEV_NULL;
496   else if (self->flags & G_SUBPROCESS_FLAGS_STDOUT_PIPE)
497     pipe_ptrs[1] = &pipe_fds[1];
498 #ifdef G_OS_UNIX
499   else if (self->launcher)
500     {
501       if (self->launcher->stdout_fd != -1)
502         child_data.fds[1] = self->launcher->stdout_fd;
503       else if (self->launcher->stdout_path != NULL)
504         {
505           child_data.fds[1] = close_fds[1] = unix_open_file (self->launcher->stdout_path, O_CREAT | O_WRONLY, error);
506           if (child_data.fds[1] == -1)
507             goto out;
508         }
509     }
510 #endif
511 
512   /* Finally, stderr. */
513   if (self->flags & G_SUBPROCESS_FLAGS_STDERR_SILENCE)
514     spawn_flags |= G_SPAWN_STDERR_TO_DEV_NULL;
515   else if (self->flags & G_SUBPROCESS_FLAGS_STDERR_PIPE)
516     pipe_ptrs[2] = &pipe_fds[2];
517 #ifdef G_OS_UNIX
518   else if (self->flags & G_SUBPROCESS_FLAGS_STDERR_MERGE)
519     /* This will work because stderr gets setup after stdout. */
520     child_data.fds[2] = 1;
521   else if (self->launcher)
522     {
523       if (self->launcher->stderr_fd != -1)
524         child_data.fds[2] = self->launcher->stderr_fd;
525       else if (self->launcher->stderr_path != NULL)
526         {
527           child_data.fds[2] = close_fds[2] = unix_open_file (self->launcher->stderr_path, O_CREAT | O_WRONLY, error);
528           if (child_data.fds[2] == -1)
529             goto out;
530         }
531     }
532 #endif
533 
534 #ifdef G_OS_UNIX
535   if (self->launcher)
536     {
537       child_data.basic_fd_assignments = self->launcher->basic_fd_assignments;
538       child_data.needdup_fd_assignments = self->launcher->needdup_fd_assignments;
539     }
540 #endif
541 
542   /* argv0 has no '/' in it?  We better do a PATH lookup. */
543   if (strchr (self->argv[0], G_DIR_SEPARATOR) == NULL)
544     {
545       if (self->launcher && self->launcher->path_from_envp)
546         spawn_flags |= G_SPAWN_SEARCH_PATH_FROM_ENVP;
547       else
548         spawn_flags |= G_SPAWN_SEARCH_PATH;
549     }
550 
551   if (self->flags & G_SUBPROCESS_FLAGS_INHERIT_FDS)
552     spawn_flags |= G_SPAWN_LEAVE_DESCRIPTORS_OPEN;
553 
554   spawn_flags |= G_SPAWN_DO_NOT_REAP_CHILD;
555   spawn_flags |= G_SPAWN_CLOEXEC_PIPES;
556 
557 #ifdef G_OS_UNIX
558   child_data.child_setup_func = self->launcher ? self->launcher->child_setup_func : NULL;
559   child_data.child_setup_data = self->launcher ? self->launcher->child_setup_user_data : NULL;
560 #endif
561 
562   success = g_spawn_async_with_pipes (self->launcher ? self->launcher->cwd : NULL,
563                                       self->argv,
564                                       self->launcher ? self->launcher->envp : NULL,
565                                       spawn_flags,
566 #ifdef G_OS_UNIX
567                                       child_setup, &child_data,
568 #else
569                                       NULL, NULL,
570 #endif
571                                       &self->pid,
572                                       pipe_ptrs[0], pipe_ptrs[1], pipe_ptrs[2],
573                                       error);
574   g_assert (success == (self->pid != 0));
575 
576   {
577     guint64 identifier;
578     gint s G_GNUC_UNUSED  /* when compiling with G_DISABLE_ASSERT */;
579 
580 #ifdef G_OS_WIN32
581     identifier = (guint64) GetProcessId (self->pid);
582 #else
583     identifier = (guint64) self->pid;
584 #endif
585 
586     s = g_snprintf (self->identifier, sizeof self->identifier, "%"G_GUINT64_FORMAT, identifier);
587     g_assert (0 < s && s < sizeof self->identifier);
588   }
589 
590   /* Start attempting to reap the child immediately */
591   if (success)
592     {
593       GMainContext *worker_context;
594       GSource *source;
595 
596       worker_context = GLIB_PRIVATE_CALL (g_get_worker_context) ();
597       source = g_child_watch_source_new (self->pid);
598       g_source_set_callback (source, (GSourceFunc) g_subprocess_exited, g_object_ref (self), g_object_unref);
599       g_source_attach (source, worker_context);
600       g_source_unref (source);
601     }
602 
603 #ifdef G_OS_UNIX
604 out:
605 #endif
606   /* we don't need this past init... */
607   self->launcher = NULL;
608 
609   for (i = 0; i < 3; i++)
610     if (close_fds[i] != -1)
611       close (close_fds[i]);
612 
613   self->stdin_pipe = platform_output_stream_from_spawn_fd (pipe_fds[0]);
614   self->stdout_pipe = platform_input_stream_from_spawn_fd (pipe_fds[1]);
615   self->stderr_pipe = platform_input_stream_from_spawn_fd (pipe_fds[2]);
616 
617   return success;
618 }
619 
620 static void
g_subprocess_finalize(GObject * object)621 g_subprocess_finalize (GObject *object)
622 {
623   GSubprocess *self = G_SUBPROCESS (object);
624 
625   g_assert (self->pending_waits == NULL);
626   g_assert (self->pid == 0);
627 
628   g_clear_object (&self->stdin_pipe);
629   g_clear_object (&self->stdout_pipe);
630   g_clear_object (&self->stderr_pipe);
631   g_strfreev (self->argv);
632 
633   g_mutex_clear (&self->pending_waits_lock);
634 
635   G_OBJECT_CLASS (g_subprocess_parent_class)->finalize (object);
636 }
637 
638 static void
g_subprocess_init(GSubprocess * self)639 g_subprocess_init (GSubprocess  *self)
640 {
641   g_mutex_init (&self->pending_waits_lock);
642 }
643 
644 static void
initable_iface_init(GInitableIface * initable_iface)645 initable_iface_init (GInitableIface *initable_iface)
646 {
647   initable_iface->init = initable_init;
648 }
649 
650 static void
g_subprocess_class_init(GSubprocessClass * class)651 g_subprocess_class_init (GSubprocessClass *class)
652 {
653   GObjectClass *gobject_class = G_OBJECT_CLASS (class);
654 
655   gobject_class->finalize = g_subprocess_finalize;
656   gobject_class->set_property = g_subprocess_set_property;
657 
658   g_object_class_install_property (gobject_class, PROP_FLAGS,
659                                    g_param_spec_flags ("flags", P_("Flags"), P_("Subprocess flags"),
660                                                        G_TYPE_SUBPROCESS_FLAGS, 0, G_PARAM_WRITABLE |
661                                                        G_PARAM_CONSTRUCT_ONLY | G_PARAM_STATIC_STRINGS));
662   g_object_class_install_property (gobject_class, PROP_ARGV,
663                                    g_param_spec_boxed ("argv", P_("Arguments"), P_("Argument vector"),
664                                                        G_TYPE_STRV, G_PARAM_WRITABLE |
665                                                        G_PARAM_CONSTRUCT_ONLY | G_PARAM_STATIC_STRINGS));
666 }
667 
668 /**
669  * g_subprocess_new: (skip)
670  * @flags: flags that define the behaviour of the subprocess
671  * @error: (nullable): return location for an error, or %NULL
672  * @argv0: first commandline argument to pass to the subprocess
673  * @...:   more commandline arguments, followed by %NULL
674  *
675  * Create a new process with the given flags and varargs argument
676  * list.  By default, matching the g_spawn_async() defaults, the
677  * child's stdin will be set to the system null device, and
678  * stdout/stderr will be inherited from the parent.  You can use
679  * @flags to control this behavior.
680  *
681  * The argument list must be terminated with %NULL.
682  *
683  * Returns: A newly created #GSubprocess, or %NULL on error (and @error
684  *   will be set)
685  *
686  * Since: 2.40
687  */
688 GSubprocess *
g_subprocess_new(GSubprocessFlags flags,GError ** error,const gchar * argv0,...)689 g_subprocess_new (GSubprocessFlags   flags,
690                   GError           **error,
691                   const gchar       *argv0,
692                   ...)
693 {
694   GSubprocess *result;
695   GPtrArray *args;
696   const gchar *arg;
697   va_list ap;
698 
699   g_return_val_if_fail (argv0 != NULL && argv0[0] != '\0', NULL);
700   g_return_val_if_fail (error == NULL || *error == NULL, NULL);
701 
702   args = g_ptr_array_new ();
703 
704   va_start (ap, argv0);
705   g_ptr_array_add (args, (gchar *) argv0);
706   while ((arg = va_arg (ap, const gchar *)))
707     g_ptr_array_add (args, (gchar *) arg);
708   g_ptr_array_add (args, NULL);
709   va_end (ap);
710 
711   result = g_subprocess_newv ((const gchar * const *) args->pdata, flags, error);
712 
713   g_ptr_array_free (args, TRUE);
714 
715   return result;
716 }
717 
718 /**
719  * g_subprocess_newv: (rename-to g_subprocess_new)
720  * @argv: (array zero-terminated=1) (element-type filename): commandline arguments for the subprocess
721  * @flags: flags that define the behaviour of the subprocess
722  * @error: (nullable): return location for an error, or %NULL
723  *
724  * Create a new process with the given flags and argument list.
725  *
726  * The argument list is expected to be %NULL-terminated.
727  *
728  * Returns: A newly created #GSubprocess, or %NULL on error (and @error
729  *   will be set)
730  *
731  * Since: 2.40
732  */
733 GSubprocess *
g_subprocess_newv(const gchar * const * argv,GSubprocessFlags flags,GError ** error)734 g_subprocess_newv (const gchar * const  *argv,
735                    GSubprocessFlags      flags,
736                    GError              **error)
737 {
738   g_return_val_if_fail (argv != NULL && argv[0] != NULL && argv[0][0] != '\0', NULL);
739 
740   return g_initable_new (G_TYPE_SUBPROCESS, NULL, error,
741                          "argv", argv,
742                          "flags", flags,
743                          NULL);
744 }
745 
746 /**
747  * g_subprocess_get_identifier:
748  * @subprocess: a #GSubprocess
749  *
750  * On UNIX, returns the process ID as a decimal string.
751  * On Windows, returns the result of GetProcessId() also as a string.
752  * If the subprocess has terminated, this will return %NULL.
753  *
754  * Returns: (nullable): the subprocess identifier, or %NULL if the subprocess
755  *    has terminated
756  * Since: 2.40
757  */
758 const gchar *
g_subprocess_get_identifier(GSubprocess * subprocess)759 g_subprocess_get_identifier (GSubprocess *subprocess)
760 {
761   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), NULL);
762 
763   if (subprocess->pid)
764     return subprocess->identifier;
765   else
766     return NULL;
767 }
768 
769 /**
770  * g_subprocess_get_stdin_pipe:
771  * @subprocess: a #GSubprocess
772  *
773  * Gets the #GOutputStream that you can write to in order to give data
774  * to the stdin of @subprocess.
775  *
776  * The process must have been created with
777  * %G_SUBPROCESS_FLAGS_STDIN_PIPE.
778  *
779  * Returns: (transfer none): the stdout pipe
780  *
781  * Since: 2.40
782  **/
783 GOutputStream *
g_subprocess_get_stdin_pipe(GSubprocess * subprocess)784 g_subprocess_get_stdin_pipe (GSubprocess *subprocess)
785 {
786   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), NULL);
787   g_return_val_if_fail (subprocess->stdin_pipe, NULL);
788 
789   return subprocess->stdin_pipe;
790 }
791 
792 /**
793  * g_subprocess_get_stdout_pipe:
794  * @subprocess: a #GSubprocess
795  *
796  * Gets the #GInputStream from which to read the stdout output of
797  * @subprocess.
798  *
799  * The process must have been created with
800  * %G_SUBPROCESS_FLAGS_STDOUT_PIPE.
801  *
802  * Returns: (transfer none): the stdout pipe
803  *
804  * Since: 2.40
805  **/
806 GInputStream *
g_subprocess_get_stdout_pipe(GSubprocess * subprocess)807 g_subprocess_get_stdout_pipe (GSubprocess *subprocess)
808 {
809   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), NULL);
810   g_return_val_if_fail (subprocess->stdout_pipe, NULL);
811 
812   return subprocess->stdout_pipe;
813 }
814 
815 /**
816  * g_subprocess_get_stderr_pipe:
817  * @subprocess: a #GSubprocess
818  *
819  * Gets the #GInputStream from which to read the stderr output of
820  * @subprocess.
821  *
822  * The process must have been created with
823  * %G_SUBPROCESS_FLAGS_STDERR_PIPE.
824  *
825  * Returns: (transfer none): the stderr pipe
826  *
827  * Since: 2.40
828  **/
829 GInputStream *
g_subprocess_get_stderr_pipe(GSubprocess * subprocess)830 g_subprocess_get_stderr_pipe (GSubprocess *subprocess)
831 {
832   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), NULL);
833   g_return_val_if_fail (subprocess->stderr_pipe, NULL);
834 
835   return subprocess->stderr_pipe;
836 }
837 
838 /* Remove the first list element containing @data, and return %TRUE. If no
839  * such element is found, return %FALSE. */
840 static gboolean
slist_remove_if_present(GSList ** list,gconstpointer data)841 slist_remove_if_present (GSList        **list,
842                          gconstpointer   data)
843 {
844   GSList *l, *prev;
845 
846   for (l = *list, prev = NULL; l != NULL; prev = l, l = prev->next)
847     {
848       if (l->data == data)
849         {
850           if (prev != NULL)
851             prev->next = l->next;
852           else
853             *list = l->next;
854 
855           g_slist_free_1 (l);
856 
857           return TRUE;
858         }
859     }
860 
861   return FALSE;
862 }
863 
864 static void
g_subprocess_wait_cancelled(GCancellable * cancellable,gpointer user_data)865 g_subprocess_wait_cancelled (GCancellable *cancellable,
866                              gpointer      user_data)
867 {
868   GTask *task = user_data;
869   GSubprocess *self;
870   gboolean task_was_pending;
871 
872   self = g_task_get_source_object (task);
873 
874   g_mutex_lock (&self->pending_waits_lock);
875   task_was_pending = slist_remove_if_present (&self->pending_waits, task);
876   g_mutex_unlock (&self->pending_waits_lock);
877 
878   if (task_was_pending)
879     {
880       g_task_return_boolean (task, FALSE);
881       g_object_unref (task);  /* ref from pending_waits */
882     }
883 }
884 
885 /**
886  * g_subprocess_wait_async:
887  * @subprocess: a #GSubprocess
888  * @cancellable: a #GCancellable, or %NULL
889  * @callback: a #GAsyncReadyCallback to call when the operation is complete
890  * @user_data: user_data for @callback
891  *
892  * Wait for the subprocess to terminate.
893  *
894  * This is the asynchronous version of g_subprocess_wait().
895  *
896  * Since: 2.40
897  */
898 void
g_subprocess_wait_async(GSubprocess * subprocess,GCancellable * cancellable,GAsyncReadyCallback callback,gpointer user_data)899 g_subprocess_wait_async (GSubprocess         *subprocess,
900                          GCancellable        *cancellable,
901                          GAsyncReadyCallback  callback,
902                          gpointer             user_data)
903 {
904   GTask *task;
905 
906   task = g_task_new (subprocess, cancellable, callback, user_data);
907   g_task_set_source_tag (task, g_subprocess_wait_async);
908 
909   g_mutex_lock (&subprocess->pending_waits_lock);
910   if (subprocess->pid)
911     {
912       /* Only bother with cancellable if we're putting it in the list.
913        * If not, it's going to dispatch immediately anyway and we will
914        * see the cancellation in the _finish().
915        */
916       if (cancellable)
917         g_signal_connect_object (cancellable, "cancelled", G_CALLBACK (g_subprocess_wait_cancelled), task, 0);
918 
919       subprocess->pending_waits = g_slist_prepend (subprocess->pending_waits, task);
920       task = NULL;
921     }
922   g_mutex_unlock (&subprocess->pending_waits_lock);
923 
924   /* If we still have task then it's because did_exit is already TRUE */
925   if (task != NULL)
926     {
927       g_task_return_boolean (task, TRUE);
928       g_object_unref (task);
929     }
930 }
931 
932 /**
933  * g_subprocess_wait_finish:
934  * @subprocess: a #GSubprocess
935  * @result: the #GAsyncResult passed to your #GAsyncReadyCallback
936  * @error: a pointer to a %NULL #GError, or %NULL
937  *
938  * Collects the result of a previous call to
939  * g_subprocess_wait_async().
940  *
941  * Returns: %TRUE if successful, or %FALSE with @error set
942  *
943  * Since: 2.40
944  */
945 gboolean
g_subprocess_wait_finish(GSubprocess * subprocess,GAsyncResult * result,GError ** error)946 g_subprocess_wait_finish (GSubprocess   *subprocess,
947                           GAsyncResult  *result,
948                           GError       **error)
949 {
950   return g_task_propagate_boolean (G_TASK (result), error);
951 }
952 
953 /* Some generic helpers for emulating synchronous operations using async
954  * operations.
955  */
956 static void
g_subprocess_sync_setup(void)957 g_subprocess_sync_setup (void)
958 {
959   g_main_context_push_thread_default (g_main_context_new ());
960 }
961 
962 static void
g_subprocess_sync_done(GObject * source_object,GAsyncResult * result,gpointer user_data)963 g_subprocess_sync_done (GObject      *source_object,
964                         GAsyncResult *result,
965                         gpointer      user_data)
966 {
967   GAsyncResult **result_ptr = user_data;
968 
969   *result_ptr = g_object_ref (result);
970 }
971 
972 static void
g_subprocess_sync_complete(GAsyncResult ** result)973 g_subprocess_sync_complete (GAsyncResult **result)
974 {
975   GMainContext *context = g_main_context_get_thread_default ();
976 
977   while (!*result)
978     g_main_context_iteration (context, TRUE);
979 
980   g_main_context_pop_thread_default (context);
981   g_main_context_unref (context);
982 }
983 
984 /**
985  * g_subprocess_wait:
986  * @subprocess: a #GSubprocess
987  * @cancellable: a #GCancellable
988  * @error: a #GError
989  *
990  * Synchronously wait for the subprocess to terminate.
991  *
992  * After the process terminates you can query its exit status with
993  * functions such as g_subprocess_get_if_exited() and
994  * g_subprocess_get_exit_status().
995  *
996  * This function does not fail in the case of the subprocess having
997  * abnormal termination.  See g_subprocess_wait_check() for that.
998  *
999  * Cancelling @cancellable doesn't kill the subprocess.  Call
1000  * g_subprocess_force_exit() if it is desirable.
1001  *
1002  * Returns: %TRUE on success, %FALSE if @cancellable was cancelled
1003  *
1004  * Since: 2.40
1005  */
1006 gboolean
g_subprocess_wait(GSubprocess * subprocess,GCancellable * cancellable,GError ** error)1007 g_subprocess_wait (GSubprocess   *subprocess,
1008                    GCancellable  *cancellable,
1009                    GError       **error)
1010 {
1011   GAsyncResult *result = NULL;
1012   gboolean success;
1013 
1014   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1015 
1016   /* Synchronous waits are actually the 'more difficult' case because we
1017    * need to deal with the possibility of cancellation.  That more or
1018    * less implies that we need a main context (to dispatch either of the
1019    * possible reasons for the operation ending).
1020    *
1021    * So we make one and then do this async...
1022    */
1023 
1024   if (g_cancellable_set_error_if_cancelled (cancellable, error))
1025     return FALSE;
1026 
1027   /* We can shortcut in the case that the process already quit (but only
1028    * after we checked the cancellable).
1029    */
1030   if (subprocess->pid == 0)
1031     return TRUE;
1032 
1033   /* Otherwise, we need to do this the long way... */
1034   g_subprocess_sync_setup ();
1035   g_subprocess_wait_async (subprocess, cancellable, g_subprocess_sync_done, &result);
1036   g_subprocess_sync_complete (&result);
1037   success = g_subprocess_wait_finish (subprocess, result, error);
1038   g_object_unref (result);
1039 
1040   return success;
1041 }
1042 
1043 /**
1044  * g_subprocess_wait_check:
1045  * @subprocess: a #GSubprocess
1046  * @cancellable: a #GCancellable
1047  * @error: a #GError
1048  *
1049  * Combines g_subprocess_wait() with g_spawn_check_exit_status().
1050  *
1051  * Returns: %TRUE on success, %FALSE if process exited abnormally, or
1052  * @cancellable was cancelled
1053  *
1054  * Since: 2.40
1055  */
1056 gboolean
g_subprocess_wait_check(GSubprocess * subprocess,GCancellable * cancellable,GError ** error)1057 g_subprocess_wait_check (GSubprocess   *subprocess,
1058                          GCancellable  *cancellable,
1059                          GError       **error)
1060 {
1061   return g_subprocess_wait (subprocess, cancellable, error) &&
1062          g_spawn_check_exit_status (subprocess->status, error);
1063 }
1064 
1065 /**
1066  * g_subprocess_wait_check_async:
1067  * @subprocess: a #GSubprocess
1068  * @cancellable: a #GCancellable, or %NULL
1069  * @callback: a #GAsyncReadyCallback to call when the operation is complete
1070  * @user_data: user_data for @callback
1071  *
1072  * Combines g_subprocess_wait_async() with g_spawn_check_exit_status().
1073  *
1074  * This is the asynchronous version of g_subprocess_wait_check().
1075  *
1076  * Since: 2.40
1077  */
1078 void
g_subprocess_wait_check_async(GSubprocess * subprocess,GCancellable * cancellable,GAsyncReadyCallback callback,gpointer user_data)1079 g_subprocess_wait_check_async (GSubprocess         *subprocess,
1080                                GCancellable        *cancellable,
1081                                GAsyncReadyCallback  callback,
1082                                gpointer             user_data)
1083 {
1084   g_subprocess_wait_async (subprocess, cancellable, callback, user_data);
1085 }
1086 
1087 /**
1088  * g_subprocess_wait_check_finish:
1089  * @subprocess: a #GSubprocess
1090  * @result: the #GAsyncResult passed to your #GAsyncReadyCallback
1091  * @error: a pointer to a %NULL #GError, or %NULL
1092  *
1093  * Collects the result of a previous call to
1094  * g_subprocess_wait_check_async().
1095  *
1096  * Returns: %TRUE if successful, or %FALSE with @error set
1097  *
1098  * Since: 2.40
1099  */
1100 gboolean
g_subprocess_wait_check_finish(GSubprocess * subprocess,GAsyncResult * result,GError ** error)1101 g_subprocess_wait_check_finish (GSubprocess   *subprocess,
1102                                 GAsyncResult  *result,
1103                                 GError       **error)
1104 {
1105   return g_subprocess_wait_finish (subprocess, result, error) &&
1106          g_spawn_check_exit_status (subprocess->status, error);
1107 }
1108 
1109 #ifdef G_OS_UNIX
1110 typedef struct
1111 {
1112   GSubprocess *subprocess;
1113   gint signalnum;
1114 } SignalRecord;
1115 
1116 static gboolean
g_subprocess_actually_send_signal(gpointer user_data)1117 g_subprocess_actually_send_signal (gpointer user_data)
1118 {
1119   SignalRecord *signal_record = user_data;
1120 
1121   /* The pid is set to zero from the worker thread as well, so we don't
1122    * need to take a lock in order to prevent it from changing under us.
1123    */
1124   if (signal_record->subprocess->pid)
1125     kill (signal_record->subprocess->pid, signal_record->signalnum);
1126 
1127   g_object_unref (signal_record->subprocess);
1128 
1129   g_slice_free (SignalRecord, signal_record);
1130 
1131   return FALSE;
1132 }
1133 
1134 static void
g_subprocess_dispatch_signal(GSubprocess * subprocess,gint signalnum)1135 g_subprocess_dispatch_signal (GSubprocess *subprocess,
1136                               gint         signalnum)
1137 {
1138   SignalRecord signal_record = { g_object_ref (subprocess), signalnum };
1139 
1140   g_return_if_fail (G_IS_SUBPROCESS (subprocess));
1141 
1142   /* This MUST be a lower priority than the priority that the child
1143    * watch source uses in initable_init().
1144    *
1145    * Reaping processes, reporting the results back to GSubprocess and
1146    * sending signals is all done in the glib worker thread.  We cannot
1147    * have a kill() done after the reap and before the report without
1148    * risking killing a process that's no longer there so the kill()
1149    * needs to have the lower priority.
1150    *
1151    * G_PRIORITY_HIGH_IDLE is lower priority than G_PRIORITY_DEFAULT.
1152    */
1153   g_main_context_invoke_full (GLIB_PRIVATE_CALL (g_get_worker_context) (),
1154                               G_PRIORITY_HIGH_IDLE,
1155                               g_subprocess_actually_send_signal,
1156                               g_slice_dup (SignalRecord, &signal_record),
1157                               NULL);
1158 }
1159 
1160 /**
1161  * g_subprocess_send_signal:
1162  * @subprocess: a #GSubprocess
1163  * @signal_num: the signal number to send
1164  *
1165  * Sends the UNIX signal @signal_num to the subprocess, if it is still
1166  * running.
1167  *
1168  * This API is race-free.  If the subprocess has terminated, it will not
1169  * be signalled.
1170  *
1171  * This API is not available on Windows.
1172  *
1173  * Since: 2.40
1174  **/
1175 void
g_subprocess_send_signal(GSubprocess * subprocess,gint signal_num)1176 g_subprocess_send_signal (GSubprocess *subprocess,
1177                           gint         signal_num)
1178 {
1179   g_return_if_fail (G_IS_SUBPROCESS (subprocess));
1180 
1181   g_subprocess_dispatch_signal (subprocess, signal_num);
1182 }
1183 #endif
1184 
1185 /**
1186  * g_subprocess_force_exit:
1187  * @subprocess: a #GSubprocess
1188  *
1189  * Use an operating-system specific method to attempt an immediate,
1190  * forceful termination of the process.  There is no mechanism to
1191  * determine whether or not the request itself was successful;
1192  * however, you can use g_subprocess_wait() to monitor the status of
1193  * the process after calling this function.
1194  *
1195  * On Unix, this function sends %SIGKILL.
1196  *
1197  * Since: 2.40
1198  **/
1199 void
g_subprocess_force_exit(GSubprocess * subprocess)1200 g_subprocess_force_exit (GSubprocess *subprocess)
1201 {
1202   g_return_if_fail (G_IS_SUBPROCESS (subprocess));
1203 
1204 #ifdef G_OS_UNIX
1205   g_subprocess_dispatch_signal (subprocess, SIGKILL);
1206 #else
1207   TerminateProcess (subprocess->pid, 1);
1208 #endif
1209 }
1210 
1211 /**
1212  * g_subprocess_get_status:
1213  * @subprocess: a #GSubprocess
1214  *
1215  * Gets the raw status code of the process, as from waitpid().
1216  *
1217  * This value has no particular meaning, but it can be used with the
1218  * macros defined by the system headers such as WIFEXITED.  It can also
1219  * be used with g_spawn_check_exit_status().
1220  *
1221  * It is more likely that you want to use g_subprocess_get_if_exited()
1222  * followed by g_subprocess_get_exit_status().
1223  *
1224  * It is an error to call this function before g_subprocess_wait() has
1225  * returned.
1226  *
1227  * Returns: the (meaningless) waitpid() exit status from the kernel
1228  *
1229  * Since: 2.40
1230  **/
1231 gint
g_subprocess_get_status(GSubprocess * subprocess)1232 g_subprocess_get_status (GSubprocess *subprocess)
1233 {
1234   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1235   g_return_val_if_fail (subprocess->pid == 0, FALSE);
1236 
1237   return subprocess->status;
1238 }
1239 
1240 /**
1241  * g_subprocess_get_successful:
1242  * @subprocess: a #GSubprocess
1243  *
1244  * Checks if the process was "successful".  A process is considered
1245  * successful if it exited cleanly with an exit status of 0, either by
1246  * way of the exit() system call or return from main().
1247  *
1248  * It is an error to call this function before g_subprocess_wait() has
1249  * returned.
1250  *
1251  * Returns: %TRUE if the process exited cleanly with a exit status of 0
1252  *
1253  * Since: 2.40
1254  **/
1255 gboolean
g_subprocess_get_successful(GSubprocess * subprocess)1256 g_subprocess_get_successful (GSubprocess *subprocess)
1257 {
1258   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1259   g_return_val_if_fail (subprocess->pid == 0, FALSE);
1260 
1261 #ifdef G_OS_UNIX
1262   return WIFEXITED (subprocess->status) && WEXITSTATUS (subprocess->status) == 0;
1263 #else
1264   return subprocess->status == 0;
1265 #endif
1266 }
1267 
1268 /**
1269  * g_subprocess_get_if_exited:
1270  * @subprocess: a #GSubprocess
1271  *
1272  * Check if the given subprocess exited normally (ie: by way of exit()
1273  * or return from main()).
1274  *
1275  * This is equivalent to the system WIFEXITED macro.
1276  *
1277  * It is an error to call this function before g_subprocess_wait() has
1278  * returned.
1279  *
1280  * Returns: %TRUE if the case of a normal exit
1281  *
1282  * Since: 2.40
1283  **/
1284 gboolean
g_subprocess_get_if_exited(GSubprocess * subprocess)1285 g_subprocess_get_if_exited (GSubprocess *subprocess)
1286 {
1287   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1288   g_return_val_if_fail (subprocess->pid == 0, FALSE);
1289 
1290 #ifdef G_OS_UNIX
1291   return WIFEXITED (subprocess->status);
1292 #else
1293   return TRUE;
1294 #endif
1295 }
1296 
1297 /**
1298  * g_subprocess_get_exit_status:
1299  * @subprocess: a #GSubprocess
1300  *
1301  * Check the exit status of the subprocess, given that it exited
1302  * normally.  This is the value passed to the exit() system call or the
1303  * return value from main.
1304  *
1305  * This is equivalent to the system WEXITSTATUS macro.
1306  *
1307  * It is an error to call this function before g_subprocess_wait() and
1308  * unless g_subprocess_get_if_exited() returned %TRUE.
1309  *
1310  * Returns: the exit status
1311  *
1312  * Since: 2.40
1313  **/
1314 gint
g_subprocess_get_exit_status(GSubprocess * subprocess)1315 g_subprocess_get_exit_status (GSubprocess *subprocess)
1316 {
1317   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), 1);
1318   g_return_val_if_fail (subprocess->pid == 0, 1);
1319 
1320 #ifdef G_OS_UNIX
1321   g_return_val_if_fail (WIFEXITED (subprocess->status), 1);
1322 
1323   return WEXITSTATUS (subprocess->status);
1324 #else
1325   return subprocess->status;
1326 #endif
1327 }
1328 
1329 /**
1330  * g_subprocess_get_if_signaled:
1331  * @subprocess: a #GSubprocess
1332  *
1333  * Check if the given subprocess terminated in response to a signal.
1334  *
1335  * This is equivalent to the system WIFSIGNALED macro.
1336  *
1337  * It is an error to call this function before g_subprocess_wait() has
1338  * returned.
1339  *
1340  * Returns: %TRUE if the case of termination due to a signal
1341  *
1342  * Since: 2.40
1343  **/
1344 gboolean
g_subprocess_get_if_signaled(GSubprocess * subprocess)1345 g_subprocess_get_if_signaled (GSubprocess *subprocess)
1346 {
1347   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1348   g_return_val_if_fail (subprocess->pid == 0, FALSE);
1349 
1350 #ifdef G_OS_UNIX
1351   return WIFSIGNALED (subprocess->status);
1352 #else
1353   return FALSE;
1354 #endif
1355 }
1356 
1357 /**
1358  * g_subprocess_get_term_sig:
1359  * @subprocess: a #GSubprocess
1360  *
1361  * Get the signal number that caused the subprocess to terminate, given
1362  * that it terminated due to a signal.
1363  *
1364  * This is equivalent to the system WTERMSIG macro.
1365  *
1366  * It is an error to call this function before g_subprocess_wait() and
1367  * unless g_subprocess_get_if_signaled() returned %TRUE.
1368  *
1369  * Returns: the signal causing termination
1370  *
1371  * Since: 2.40
1372  **/
1373 gint
g_subprocess_get_term_sig(GSubprocess * subprocess)1374 g_subprocess_get_term_sig (GSubprocess *subprocess)
1375 {
1376   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), 0);
1377   g_return_val_if_fail (subprocess->pid == 0, 0);
1378 
1379 #ifdef G_OS_UNIX
1380   g_return_val_if_fail (WIFSIGNALED (subprocess->status), 0);
1381 
1382   return WTERMSIG (subprocess->status);
1383 #else
1384   g_critical ("g_subprocess_get_term_sig() called on Windows, where "
1385               "g_subprocess_get_if_signaled() always returns FALSE...");
1386   return 0;
1387 #endif
1388 }
1389 
1390 /*< private >*/
1391 void
g_subprocess_set_launcher(GSubprocess * subprocess,GSubprocessLauncher * launcher)1392 g_subprocess_set_launcher (GSubprocess         *subprocess,
1393                            GSubprocessLauncher *launcher)
1394 {
1395   subprocess->launcher = launcher;
1396 }
1397 
1398 
1399 /* g_subprocess_communicate implementation below:
1400  *
1401  * This is a tough problem.  We have to watch 5 things at the same time:
1402  *
1403  *  - writing to stdin made progress
1404  *  - reading from stdout made progress
1405  *  - reading from stderr made progress
1406  *  - process terminated
1407  *  - cancellable being cancelled by caller
1408  *
1409  * We use a GMainContext for all of these (either as async function
1410  * calls or as a GSource (in the case of the cancellable).  That way at
1411  * least we don't have to worry about threading.
1412  *
1413  * For the sync case we use the usual trick of creating a private main
1414  * context and iterating it until completion.
1415  *
1416  * It's very possible that the process will dump a lot of data to stdout
1417  * just before it quits, so we can easily have data to read from stdout
1418  * and see the process has terminated at the same time.  We want to make
1419  * sure that we read all of the data from the pipes first, though, so we
1420  * do IO operations at a higher priority than the wait operation (which
1421  * is at G_IO_PRIORITY_DEFAULT).  Even in the case that we have to do
1422  * multiple reads to get this data, the pipe() will always be polling
1423  * as ready and with the async result for the read at a higher priority,
1424  * the main context will not dispatch the completion for the wait().
1425  *
1426  * We keep our own private GCancellable.  In the event that any of the
1427  * above suffers from an error condition (including the user cancelling
1428  * their cancellable) we immediately dispatch the GTask with the error
1429  * result and fire our cancellable to cleanup any pending operations.
1430  * In the case that the error is that the user's cancellable was fired,
1431  * it's vaguely wasteful to report an error because GTask will handle
1432  * this automatically, so we just return FALSE.
1433  *
1434  * We let each pending sub-operation take a ref on the GTask of the
1435  * communicate operation.  We have to be careful that we don't report
1436  * the task completion more than once, though, so we keep a flag for
1437  * that.
1438  */
1439 typedef struct
1440 {
1441   const gchar *stdin_data;
1442   gsize stdin_length;
1443   gsize stdin_offset;
1444 
1445   gboolean add_nul;
1446 
1447   GInputStream *stdin_buf;
1448   GMemoryOutputStream *stdout_buf;
1449   GMemoryOutputStream *stderr_buf;
1450 
1451   GCancellable *cancellable;
1452   GSource      *cancellable_source;
1453 
1454   guint         outstanding_ops;
1455   gboolean      reported_error;
1456 } CommunicateState;
1457 
1458 static void
g_subprocess_communicate_made_progress(GObject * source_object,GAsyncResult * result,gpointer user_data)1459 g_subprocess_communicate_made_progress (GObject      *source_object,
1460                                         GAsyncResult *result,
1461                                         gpointer      user_data)
1462 {
1463   CommunicateState *state;
1464   GSubprocess *subprocess;
1465   GError *error = NULL;
1466   gpointer source;
1467   GTask *task;
1468 
1469   g_assert (source_object != NULL);
1470 
1471   task = user_data;
1472   subprocess = g_task_get_source_object (task);
1473   state = g_task_get_task_data (task);
1474   source = source_object;
1475 
1476   state->outstanding_ops--;
1477 
1478   if (source == subprocess->stdin_pipe ||
1479       source == state->stdout_buf ||
1480       source == state->stderr_buf)
1481     {
1482       if (g_output_stream_splice_finish ((GOutputStream*) source, result, &error) == -1)
1483         goto out;
1484 
1485       if (source == state->stdout_buf ||
1486           source == state->stderr_buf)
1487         {
1488           /* This is a memory stream, so it can't be cancelled or return
1489            * an error really.
1490            */
1491           if (state->add_nul)
1492             {
1493               gsize bytes_written;
1494               if (!g_output_stream_write_all (source, "\0", 1, &bytes_written,
1495                                               NULL, &error))
1496                 goto out;
1497             }
1498           if (!g_output_stream_close (source, NULL, &error))
1499             goto out;
1500         }
1501     }
1502   else if (source == subprocess)
1503     {
1504       (void) g_subprocess_wait_finish (subprocess, result, &error);
1505     }
1506   else
1507     g_assert_not_reached ();
1508 
1509  out:
1510   if (error)
1511     {
1512       /* Only report the first error we see.
1513        *
1514        * We might be seeing an error as a result of the cancellation
1515        * done when the process quits.
1516        */
1517       if (!state->reported_error)
1518         {
1519           state->reported_error = TRUE;
1520           g_cancellable_cancel (state->cancellable);
1521           g_task_return_error (task, error);
1522         }
1523       else
1524         g_error_free (error);
1525     }
1526   else if (state->outstanding_ops == 0)
1527     {
1528       g_task_return_boolean (task, TRUE);
1529     }
1530 
1531   /* And drop the original ref */
1532   g_object_unref (task);
1533 }
1534 
1535 static gboolean
g_subprocess_communicate_cancelled(GCancellable * cancellable,gpointer user_data)1536 g_subprocess_communicate_cancelled (GCancellable *cancellable,
1537                                     gpointer      user_data)
1538 {
1539   CommunicateState *state = user_data;
1540 
1541   g_cancellable_cancel (state->cancellable);
1542 
1543   return FALSE;
1544 }
1545 
1546 static void
g_subprocess_communicate_state_free(gpointer data)1547 g_subprocess_communicate_state_free (gpointer data)
1548 {
1549   CommunicateState *state = data;
1550 
1551   g_clear_object (&state->cancellable);
1552   g_clear_object (&state->stdin_buf);
1553   g_clear_object (&state->stdout_buf);
1554   g_clear_object (&state->stderr_buf);
1555 
1556   if (state->cancellable_source)
1557     {
1558       g_source_destroy (state->cancellable_source);
1559       g_source_unref (state->cancellable_source);
1560     }
1561 
1562   g_slice_free (CommunicateState, state);
1563 }
1564 
1565 static CommunicateState *
g_subprocess_communicate_internal(GSubprocess * subprocess,gboolean add_nul,GBytes * stdin_buf,GCancellable * cancellable,GAsyncReadyCallback callback,gpointer user_data)1566 g_subprocess_communicate_internal (GSubprocess         *subprocess,
1567                                    gboolean             add_nul,
1568                                    GBytes              *stdin_buf,
1569                                    GCancellable        *cancellable,
1570                                    GAsyncReadyCallback  callback,
1571                                    gpointer             user_data)
1572 {
1573   CommunicateState *state;
1574   GTask *task;
1575 
1576   task = g_task_new (subprocess, cancellable, callback, user_data);
1577   g_task_set_source_tag (task, g_subprocess_communicate_internal);
1578 
1579   state = g_slice_new0 (CommunicateState);
1580   g_task_set_task_data (task, state, g_subprocess_communicate_state_free);
1581 
1582   state->cancellable = g_cancellable_new ();
1583   state->add_nul = add_nul;
1584 
1585   if (cancellable)
1586     {
1587       state->cancellable_source = g_cancellable_source_new (cancellable);
1588       /* No ref held here, but we unref the source from state's free function */
1589       g_source_set_callback (state->cancellable_source,
1590                              G_SOURCE_FUNC (g_subprocess_communicate_cancelled),
1591                              state, NULL);
1592       g_source_attach (state->cancellable_source, g_main_context_get_thread_default ());
1593     }
1594 
1595   if (subprocess->stdin_pipe)
1596     {
1597       g_assert (stdin_buf != NULL);
1598       state->stdin_buf = g_memory_input_stream_new_from_bytes (stdin_buf);
1599       g_output_stream_splice_async (subprocess->stdin_pipe, (GInputStream*)state->stdin_buf,
1600                                     G_OUTPUT_STREAM_SPLICE_CLOSE_SOURCE | G_OUTPUT_STREAM_SPLICE_CLOSE_TARGET,
1601                                     G_PRIORITY_DEFAULT, state->cancellable,
1602                                     g_subprocess_communicate_made_progress, g_object_ref (task));
1603       state->outstanding_ops++;
1604     }
1605 
1606   if (subprocess->stdout_pipe)
1607     {
1608       state->stdout_buf = (GMemoryOutputStream*)g_memory_output_stream_new_resizable ();
1609       g_output_stream_splice_async ((GOutputStream*)state->stdout_buf, subprocess->stdout_pipe,
1610                                     G_OUTPUT_STREAM_SPLICE_CLOSE_SOURCE,
1611                                     G_PRIORITY_DEFAULT, state->cancellable,
1612                                     g_subprocess_communicate_made_progress, g_object_ref (task));
1613       state->outstanding_ops++;
1614     }
1615 
1616   if (subprocess->stderr_pipe)
1617     {
1618       state->stderr_buf = (GMemoryOutputStream*)g_memory_output_stream_new_resizable ();
1619       g_output_stream_splice_async ((GOutputStream*)state->stderr_buf, subprocess->stderr_pipe,
1620                                     G_OUTPUT_STREAM_SPLICE_CLOSE_SOURCE,
1621                                     G_PRIORITY_DEFAULT, state->cancellable,
1622                                     g_subprocess_communicate_made_progress, g_object_ref (task));
1623       state->outstanding_ops++;
1624     }
1625 
1626   g_subprocess_wait_async (subprocess, state->cancellable,
1627                            g_subprocess_communicate_made_progress, g_object_ref (task));
1628   state->outstanding_ops++;
1629 
1630   g_object_unref (task);
1631   return state;
1632 }
1633 
1634 /**
1635  * g_subprocess_communicate:
1636  * @subprocess: a #GSubprocess
1637  * @stdin_buf: (nullable): data to send to the stdin of the subprocess, or %NULL
1638  * @cancellable: a #GCancellable
1639  * @stdout_buf: (out) (nullable) (optional) (transfer full): data read from the subprocess stdout
1640  * @stderr_buf: (out) (nullable) (optional) (transfer full): data read from the subprocess stderr
1641  * @error: a pointer to a %NULL #GError pointer, or %NULL
1642  *
1643  * Communicate with the subprocess until it terminates, and all input
1644  * and output has been completed.
1645  *
1646  * If @stdin_buf is given, the subprocess must have been created with
1647  * %G_SUBPROCESS_FLAGS_STDIN_PIPE.  The given data is fed to the
1648  * stdin of the subprocess and the pipe is closed (ie: EOF).
1649  *
1650  * At the same time (as not to cause blocking when dealing with large
1651  * amounts of data), if %G_SUBPROCESS_FLAGS_STDOUT_PIPE or
1652  * %G_SUBPROCESS_FLAGS_STDERR_PIPE were used, reads from those
1653  * streams.  The data that was read is returned in @stdout and/or
1654  * the @stderr.
1655  *
1656  * If the subprocess was created with %G_SUBPROCESS_FLAGS_STDOUT_PIPE,
1657  * @stdout_buf will contain the data read from stdout.  Otherwise, for
1658  * subprocesses not created with %G_SUBPROCESS_FLAGS_STDOUT_PIPE,
1659  * @stdout_buf will be set to %NULL.  Similar provisions apply to
1660  * @stderr_buf and %G_SUBPROCESS_FLAGS_STDERR_PIPE.
1661  *
1662  * As usual, any output variable may be given as %NULL to ignore it.
1663  *
1664  * If you desire the stdout and stderr data to be interleaved, create
1665  * the subprocess with %G_SUBPROCESS_FLAGS_STDOUT_PIPE and
1666  * %G_SUBPROCESS_FLAGS_STDERR_MERGE.  The merged result will be returned
1667  * in @stdout_buf and @stderr_buf will be set to %NULL.
1668  *
1669  * In case of any error (including cancellation), %FALSE will be
1670  * returned with @error set.  Some or all of the stdin data may have
1671  * been written.  Any stdout or stderr data that has been read will be
1672  * discarded. None of the out variables (aside from @error) will have
1673  * been set to anything in particular and should not be inspected.
1674  *
1675  * In the case that %TRUE is returned, the subprocess has exited and the
1676  * exit status inspection APIs (eg: g_subprocess_get_if_exited(),
1677  * g_subprocess_get_exit_status()) may be used.
1678  *
1679  * You should not attempt to use any of the subprocess pipes after
1680  * starting this function, since they may be left in strange states,
1681  * even if the operation was cancelled.  You should especially not
1682  * attempt to interact with the pipes while the operation is in progress
1683  * (either from another thread or if using the asynchronous version).
1684  *
1685  * Returns: %TRUE if successful
1686  *
1687  * Since: 2.40
1688  **/
1689 gboolean
g_subprocess_communicate(GSubprocess * subprocess,GBytes * stdin_buf,GCancellable * cancellable,GBytes ** stdout_buf,GBytes ** stderr_buf,GError ** error)1690 g_subprocess_communicate (GSubprocess   *subprocess,
1691                           GBytes        *stdin_buf,
1692                           GCancellable  *cancellable,
1693                           GBytes       **stdout_buf,
1694                           GBytes       **stderr_buf,
1695                           GError       **error)
1696 {
1697   GAsyncResult *result = NULL;
1698   gboolean success;
1699 
1700   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1701   g_return_val_if_fail (stdin_buf == NULL || (subprocess->flags & G_SUBPROCESS_FLAGS_STDIN_PIPE), FALSE);
1702   g_return_val_if_fail (cancellable == NULL || G_IS_CANCELLABLE (cancellable), FALSE);
1703   g_return_val_if_fail (error == NULL || *error == NULL, FALSE);
1704 
1705   g_subprocess_sync_setup ();
1706   g_subprocess_communicate_internal (subprocess, FALSE, stdin_buf, cancellable,
1707                                      g_subprocess_sync_done, &result);
1708   g_subprocess_sync_complete (&result);
1709   success = g_subprocess_communicate_finish (subprocess, result, stdout_buf, stderr_buf, error);
1710   g_object_unref (result);
1711 
1712   return success;
1713 }
1714 
1715 /**
1716  * g_subprocess_communicate_async:
1717  * @subprocess: Self
1718  * @stdin_buf: (nullable): Input data, or %NULL
1719  * @cancellable: (nullable): Cancellable
1720  * @callback: Callback
1721  * @user_data: User data
1722  *
1723  * Asynchronous version of g_subprocess_communicate().  Complete
1724  * invocation with g_subprocess_communicate_finish().
1725  */
1726 void
g_subprocess_communicate_async(GSubprocess * subprocess,GBytes * stdin_buf,GCancellable * cancellable,GAsyncReadyCallback callback,gpointer user_data)1727 g_subprocess_communicate_async (GSubprocess         *subprocess,
1728                                 GBytes              *stdin_buf,
1729                                 GCancellable        *cancellable,
1730                                 GAsyncReadyCallback  callback,
1731                                 gpointer             user_data)
1732 {
1733   g_return_if_fail (G_IS_SUBPROCESS (subprocess));
1734   g_return_if_fail (stdin_buf == NULL || (subprocess->flags & G_SUBPROCESS_FLAGS_STDIN_PIPE));
1735   g_return_if_fail (cancellable == NULL || G_IS_CANCELLABLE (cancellable));
1736 
1737   g_subprocess_communicate_internal (subprocess, FALSE, stdin_buf, cancellable, callback, user_data);
1738 }
1739 
1740 /**
1741  * g_subprocess_communicate_finish:
1742  * @subprocess: Self
1743  * @result: Result
1744  * @stdout_buf: (out) (nullable) (optional) (transfer full): Return location for stdout data
1745  * @stderr_buf: (out) (nullable) (optional) (transfer full): Return location for stderr data
1746  * @error: Error
1747  *
1748  * Complete an invocation of g_subprocess_communicate_async().
1749  */
1750 gboolean
g_subprocess_communicate_finish(GSubprocess * subprocess,GAsyncResult * result,GBytes ** stdout_buf,GBytes ** stderr_buf,GError ** error)1751 g_subprocess_communicate_finish (GSubprocess   *subprocess,
1752                                  GAsyncResult  *result,
1753                                  GBytes       **stdout_buf,
1754                                  GBytes       **stderr_buf,
1755                                  GError       **error)
1756 {
1757   gboolean success;
1758   CommunicateState *state;
1759 
1760   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1761   g_return_val_if_fail (g_task_is_valid (result, subprocess), FALSE);
1762   g_return_val_if_fail (error == NULL || *error == NULL, FALSE);
1763 
1764   g_object_ref (result);
1765 
1766   state = g_task_get_task_data ((GTask*)result);
1767   success = g_task_propagate_boolean ((GTask*)result, error);
1768 
1769   if (success)
1770     {
1771       if (stdout_buf)
1772         *stdout_buf = (state->stdout_buf != NULL) ? g_memory_output_stream_steal_as_bytes (state->stdout_buf) : NULL;
1773       if (stderr_buf)
1774         *stderr_buf = (state->stderr_buf != NULL) ? g_memory_output_stream_steal_as_bytes (state->stderr_buf) : NULL;
1775     }
1776 
1777   g_object_unref (result);
1778   return success;
1779 }
1780 
1781 /**
1782  * g_subprocess_communicate_utf8:
1783  * @subprocess: a #GSubprocess
1784  * @stdin_buf: (nullable): data to send to the stdin of the subprocess, or %NULL
1785  * @cancellable: a #GCancellable
1786  * @stdout_buf: (out) (nullable) (optional) (transfer full): data read from the subprocess stdout
1787  * @stderr_buf: (out) (nullable) (optional) (transfer full): data read from the subprocess stderr
1788  * @error: a pointer to a %NULL #GError pointer, or %NULL
1789  *
1790  * Like g_subprocess_communicate(), but validates the output of the
1791  * process as UTF-8, and returns it as a regular NUL terminated string.
1792  *
1793  * On error, @stdout_buf and @stderr_buf will be set to undefined values and
1794  * should not be used.
1795  */
1796 gboolean
g_subprocess_communicate_utf8(GSubprocess * subprocess,const char * stdin_buf,GCancellable * cancellable,char ** stdout_buf,char ** stderr_buf,GError ** error)1797 g_subprocess_communicate_utf8 (GSubprocess   *subprocess,
1798                                const char    *stdin_buf,
1799                                GCancellable  *cancellable,
1800                                char         **stdout_buf,
1801                                char         **stderr_buf,
1802                                GError       **error)
1803 {
1804   GAsyncResult *result = NULL;
1805   gboolean success;
1806   GBytes *stdin_bytes;
1807   size_t stdin_buf_len = 0;
1808 
1809   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1810   g_return_val_if_fail (stdin_buf == NULL || (subprocess->flags & G_SUBPROCESS_FLAGS_STDIN_PIPE), FALSE);
1811   g_return_val_if_fail (cancellable == NULL || G_IS_CANCELLABLE (cancellable), FALSE);
1812   g_return_val_if_fail (error == NULL || *error == NULL, FALSE);
1813 
1814   if (stdin_buf != NULL)
1815     stdin_buf_len = strlen (stdin_buf);
1816   stdin_bytes = g_bytes_new (stdin_buf, stdin_buf_len);
1817 
1818   g_subprocess_sync_setup ();
1819   g_subprocess_communicate_internal (subprocess, TRUE, stdin_bytes, cancellable,
1820                                      g_subprocess_sync_done, &result);
1821   g_subprocess_sync_complete (&result);
1822   success = g_subprocess_communicate_utf8_finish (subprocess, result, stdout_buf, stderr_buf, error);
1823   g_object_unref (result);
1824 
1825   g_bytes_unref (stdin_bytes);
1826   return success;
1827 }
1828 
1829 /**
1830  * g_subprocess_communicate_utf8_async:
1831  * @subprocess: Self
1832  * @stdin_buf: (nullable): Input data, or %NULL
1833  * @cancellable: Cancellable
1834  * @callback: Callback
1835  * @user_data: User data
1836  *
1837  * Asynchronous version of g_subprocess_communicate_utf8().  Complete
1838  * invocation with g_subprocess_communicate_utf8_finish().
1839  */
1840 void
g_subprocess_communicate_utf8_async(GSubprocess * subprocess,const char * stdin_buf,GCancellable * cancellable,GAsyncReadyCallback callback,gpointer user_data)1841 g_subprocess_communicate_utf8_async (GSubprocess         *subprocess,
1842                                      const char          *stdin_buf,
1843                                      GCancellable        *cancellable,
1844                                      GAsyncReadyCallback  callback,
1845                                      gpointer             user_data)
1846 {
1847   GBytes *stdin_bytes;
1848   size_t stdin_buf_len = 0;
1849 
1850   g_return_if_fail (G_IS_SUBPROCESS (subprocess));
1851   g_return_if_fail (stdin_buf == NULL || (subprocess->flags & G_SUBPROCESS_FLAGS_STDIN_PIPE));
1852   g_return_if_fail (cancellable == NULL || G_IS_CANCELLABLE (cancellable));
1853 
1854   if (stdin_buf != NULL)
1855     stdin_buf_len = strlen (stdin_buf);
1856   stdin_bytes = g_bytes_new (stdin_buf, stdin_buf_len);
1857 
1858   g_subprocess_communicate_internal (subprocess, TRUE, stdin_bytes, cancellable, callback, user_data);
1859 
1860   g_bytes_unref (stdin_bytes);
1861 }
1862 
1863 static gboolean
communicate_result_validate_utf8(const char * stream_name,char ** return_location,GMemoryOutputStream * buffer,GError ** error)1864 communicate_result_validate_utf8 (const char            *stream_name,
1865                                   char                 **return_location,
1866                                   GMemoryOutputStream   *buffer,
1867                                   GError               **error)
1868 {
1869   if (return_location == NULL)
1870     return TRUE;
1871 
1872   if (buffer)
1873     {
1874       const char *end;
1875       *return_location = g_memory_output_stream_steal_data (buffer);
1876       if (!g_utf8_validate (*return_location, -1, &end))
1877         {
1878           g_free (*return_location);
1879           *return_location = NULL;
1880           g_set_error (error, G_IO_ERROR, G_IO_ERROR_FAILED,
1881                        "Invalid UTF-8 in child %s at offset %lu",
1882                        stream_name,
1883                        (unsigned long) (end - *return_location));
1884           return FALSE;
1885         }
1886     }
1887   else
1888     *return_location = NULL;
1889 
1890   return TRUE;
1891 }
1892 
1893 /**
1894  * g_subprocess_communicate_utf8_finish:
1895  * @subprocess: Self
1896  * @result: Result
1897  * @stdout_buf: (out) (nullable) (optional) (transfer full): Return location for stdout data
1898  * @stderr_buf: (out) (nullable) (optional) (transfer full): Return location for stderr data
1899  * @error: Error
1900  *
1901  * Complete an invocation of g_subprocess_communicate_utf8_async().
1902  */
1903 gboolean
g_subprocess_communicate_utf8_finish(GSubprocess * subprocess,GAsyncResult * result,char ** stdout_buf,char ** stderr_buf,GError ** error)1904 g_subprocess_communicate_utf8_finish (GSubprocess   *subprocess,
1905                                       GAsyncResult  *result,
1906                                       char         **stdout_buf,
1907                                       char         **stderr_buf,
1908                                       GError       **error)
1909 {
1910   gboolean ret = FALSE;
1911   CommunicateState *state;
1912   gchar *local_stdout_buf = NULL, *local_stderr_buf = NULL;
1913 
1914   g_return_val_if_fail (G_IS_SUBPROCESS (subprocess), FALSE);
1915   g_return_val_if_fail (g_task_is_valid (result, subprocess), FALSE);
1916   g_return_val_if_fail (error == NULL || *error == NULL, FALSE);
1917 
1918   g_object_ref (result);
1919 
1920   state = g_task_get_task_data ((GTask*)result);
1921   if (!g_task_propagate_boolean ((GTask*)result, error))
1922     goto out;
1923 
1924   /* TODO - validate UTF-8 while streaming, rather than all at once.
1925    */
1926   if (!communicate_result_validate_utf8 ("stdout", &local_stdout_buf,
1927                                          state->stdout_buf,
1928                                          error))
1929     goto out;
1930   if (!communicate_result_validate_utf8 ("stderr", &local_stderr_buf,
1931                                          state->stderr_buf,
1932                                          error))
1933     goto out;
1934 
1935   ret = TRUE;
1936  out:
1937   g_object_unref (result);
1938 
1939   if (ret && stdout_buf != NULL)
1940     *stdout_buf = g_steal_pointer (&local_stdout_buf);
1941   if (ret && stderr_buf != NULL)
1942     *stderr_buf = g_steal_pointer (&local_stderr_buf);
1943 
1944   g_free (local_stderr_buf);
1945   g_free (local_stdout_buf);
1946 
1947   return ret;
1948 }
1949