chiark / gitweb /
sd-daemon: rework documentation a little
[elogind.git] / src / execute.c
1 /*-*- Mode: C; c-basic-offset: 8 -*-*/
2
3 /***
4   This file is part of systemd.
5
6   Copyright 2010 Lennart Poettering
7
8   systemd is free software; you can redistribute it and/or modify it
9   under the terms of the GNU General Public License as published by
10   the Free Software Foundation; either version 2 of the License, or
11   (at your option) any later version.
12
13   systemd is distributed in the hope that it will be useful, but
14   WITHOUT ANY WARRANTY; without even the implied warranty of
15   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
16   General Public License for more details.
17
18   You should have received a copy of the GNU General Public License
19   along with systemd; If not, see <http://www.gnu.org/licenses/>.
20 ***/
21
22 #include <assert.h>
23 #include <dirent.h>
24 #include <errno.h>
25 #include <fcntl.h>
26 #include <unistd.h>
27 #include <string.h>
28 #include <signal.h>
29 #include <sys/socket.h>
30 #include <sys/un.h>
31 #include <sys/prctl.h>
32 #include <linux/sched.h>
33 #include <sys/types.h>
34 #include <sys/stat.h>
35 #include <grp.h>
36 #include <pwd.h>
37 #include <sys/mount.h>
38 #include <linux/fs.h>
39
40 #include "execute.h"
41 #include "strv.h"
42 #include "macro.h"
43 #include "util.h"
44 #include "log.h"
45 #include "ioprio.h"
46 #include "securebits.h"
47 #include "cgroup.h"
48 #include "namespace.h"
49
50 /* This assumes there is a 'tty' group */
51 #define TTY_MODE 0620
52
53 static int shift_fds(int fds[], unsigned n_fds) {
54         int start, restart_from;
55
56         if (n_fds <= 0)
57                 return 0;
58
59         /* Modifies the fds array! (sorts it) */
60
61         assert(fds);
62
63         start = 0;
64         for (;;) {
65                 int i;
66
67                 restart_from = -1;
68
69                 for (i = start; i < (int) n_fds; i++) {
70                         int nfd;
71
72                         /* Already at right index? */
73                         if (fds[i] == i+3)
74                                 continue;
75
76                         if ((nfd = fcntl(fds[i], F_DUPFD, i+3)) < 0)
77                                 return -errno;
78
79                         close_nointr_nofail(fds[i]);
80                         fds[i] = nfd;
81
82                         /* Hmm, the fd we wanted isn't free? Then
83                          * let's remember that and try again from here*/
84                         if (nfd != i+3 && restart_from < 0)
85                                 restart_from = i;
86                 }
87
88                 if (restart_from < 0)
89                         break;
90
91                 start = restart_from;
92         }
93
94         return 0;
95 }
96
97 static int flags_fds(const int fds[], unsigned n_fds, bool nonblock) {
98         unsigned i;
99         int r;
100
101         if (n_fds <= 0)
102                 return 0;
103
104         assert(fds);
105
106         /* Drops/Sets O_NONBLOCK and FD_CLOEXEC from the file flags */
107
108         for (i = 0; i < n_fds; i++) {
109
110                 if ((r = fd_nonblock(fds[i], nonblock)) < 0)
111                         return r;
112
113                 /* We unconditionally drop FD_CLOEXEC from the fds,
114                  * since after all we want to pass these fds to our
115                  * children */
116
117                 if ((r = fd_cloexec(fds[i], false)) < 0)
118                         return r;
119         }
120
121         return 0;
122 }
123
124 static const char *tty_path(const ExecContext *context) {
125         assert(context);
126
127         if (context->tty_path)
128                 return context->tty_path;
129
130         return "/dev/console";
131 }
132
133 static int open_null_as(int flags, int nfd) {
134         int fd, r;
135
136         assert(nfd >= 0);
137
138         if ((fd = open("/dev/null", flags|O_NOCTTY)) < 0)
139                 return -errno;
140
141         if (fd != nfd) {
142                 r = dup2(fd, nfd) < 0 ? -errno : nfd;
143                 close_nointr_nofail(fd);
144         } else
145                 r = nfd;
146
147         return r;
148 }
149
150 static int connect_logger_as(const ExecContext *context, ExecOutput output, const char *ident, int nfd) {
151         int fd, r;
152         union {
153                 struct sockaddr sa;
154                 struct sockaddr_un un;
155         } sa;
156
157         assert(context);
158         assert(output < _EXEC_OUTPUT_MAX);
159         assert(ident);
160         assert(nfd >= 0);
161
162         if ((fd = socket(AF_UNIX, SOCK_STREAM, 0)) < 0)
163                 return -errno;
164
165         zero(sa);
166         sa.sa.sa_family = AF_UNIX;
167         strncpy(sa.un.sun_path+1, LOGGER_SOCKET, sizeof(sa.un.sun_path)-1);
168
169         if (connect(fd, &sa.sa, sizeof(sa)) < 0) {
170                 close_nointr_nofail(fd);
171                 return -errno;
172         }
173
174         if (shutdown(fd, SHUT_RD) < 0) {
175                 close_nointr_nofail(fd);
176                 return -errno;
177         }
178
179         /* We speak a very simple protocol between log server
180          * and client: one line for the log destination (kmsg
181          * or syslog), followed by the priority field,
182          * followed by the process name. Since we replaced
183          * stdin/stderr we simple use stdio to write to
184          * it. Note that we use stderr, to minimize buffer
185          * flushing issues. */
186
187         dprintf(fd,
188                 "%s\n"
189                 "%i\n"
190                 "%s\n"
191                 "%i\n",
192                 output == EXEC_OUTPUT_KMSG ? "kmsg" : "syslog",
193                 context->syslog_priority,
194                 context->syslog_identifier ? context->syslog_identifier : ident,
195                 !context->syslog_no_prefix);
196
197         if (fd != nfd) {
198                 r = dup2(fd, nfd) < 0 ? -errno : nfd;
199                 close_nointr_nofail(fd);
200         } else
201                 r = nfd;
202
203         return r;
204 }
205 static int open_terminal_as(const char *path, mode_t mode, int nfd) {
206         int fd, r;
207
208         assert(path);
209         assert(nfd >= 0);
210
211         if ((fd = open_terminal(path, mode | O_NOCTTY)) < 0)
212                 return fd;
213
214         if (fd != nfd) {
215                 r = dup2(fd, nfd) < 0 ? -errno : nfd;
216                 close_nointr_nofail(fd);
217         } else
218                 r = nfd;
219
220         return r;
221 }
222
223 static bool is_terminal_input(ExecInput i) {
224         return
225                 i == EXEC_INPUT_TTY ||
226                 i == EXEC_INPUT_TTY_FORCE ||
227                 i == EXEC_INPUT_TTY_FAIL;
228 }
229
230 static int fixup_input(ExecInput std_input, int socket_fd) {
231
232         if (std_input == EXEC_INPUT_SOCKET && socket_fd < 0)
233                 return EXEC_INPUT_NULL;
234
235         return std_input;
236 }
237
238 static int fixup_output(ExecOutput std_output, int socket_fd) {
239
240         if (std_output == EXEC_OUTPUT_SOCKET && socket_fd < 0)
241                 return EXEC_OUTPUT_INHERIT;
242
243         return std_output;
244 }
245
246 static int setup_input(const ExecContext *context, int socket_fd) {
247         ExecInput i;
248
249         assert(context);
250
251         i = fixup_input(context->std_input, socket_fd);
252
253         switch (i) {
254
255         case EXEC_INPUT_NULL:
256                 return open_null_as(O_RDONLY, STDIN_FILENO);
257
258         case EXEC_INPUT_TTY:
259         case EXEC_INPUT_TTY_FORCE:
260         case EXEC_INPUT_TTY_FAIL: {
261                 int fd, r;
262
263                 if ((fd = acquire_terminal(
264                                      tty_path(context),
265                                      i == EXEC_INPUT_TTY_FAIL,
266                                      i == EXEC_INPUT_TTY_FORCE,
267                                      false)) < 0)
268                         return fd;
269
270                 if (fd != STDIN_FILENO) {
271                         r = dup2(fd, STDIN_FILENO) < 0 ? -errno : STDIN_FILENO;
272                         close_nointr_nofail(fd);
273                 } else
274                         r = STDIN_FILENO;
275
276                 return r;
277         }
278
279         case EXEC_INPUT_SOCKET:
280                 return dup2(socket_fd, STDIN_FILENO) < 0 ? -errno : STDIN_FILENO;
281
282         default:
283                 assert_not_reached("Unknown input type");
284         }
285 }
286
287 static int setup_output(const ExecContext *context, int socket_fd, const char *ident) {
288         ExecOutput o;
289         ExecInput i;
290
291         assert(context);
292         assert(ident);
293
294         i = fixup_input(context->std_input, socket_fd);
295         o = fixup_output(context->std_output, socket_fd);
296
297         /* This expects the input is already set up */
298
299         switch (o) {
300
301         case EXEC_OUTPUT_INHERIT:
302
303                 /* If the input is connected to a terminal, inherit that... */
304                 if (i != EXEC_INPUT_NULL)
305                         return dup2(STDIN_FILENO, STDOUT_FILENO) < 0 ? -errno : STDOUT_FILENO;
306
307                 /* For PID 1 stdout is always connected to /dev/null,
308                  * hence reopen the console if out parent is PID1. */
309                 if (getppid() == 1)
310                         return open_terminal_as(tty_path(context), O_WRONLY, STDOUT_FILENO);
311
312                 return STDOUT_FILENO;
313
314         case EXEC_OUTPUT_NULL:
315                 return open_null_as(O_WRONLY, STDOUT_FILENO);
316
317         case EXEC_OUTPUT_TTY:
318                 if (is_terminal_input(i))
319                         return dup2(STDIN_FILENO, STDOUT_FILENO) < 0 ? -errno : STDOUT_FILENO;
320
321                 /* We don't reset the terminal if this is just about output */
322                 return open_terminal_as(tty_path(context), O_WRONLY, STDOUT_FILENO);
323
324         case EXEC_OUTPUT_SYSLOG:
325         case EXEC_OUTPUT_KMSG:
326                 return connect_logger_as(context, o, ident, STDOUT_FILENO);
327
328         case EXEC_OUTPUT_SOCKET:
329                 assert(socket_fd >= 0);
330                 return dup2(socket_fd, STDOUT_FILENO) < 0 ? -errno : STDOUT_FILENO;
331
332         default:
333                 assert_not_reached("Unknown output type");
334         }
335 }
336
337 static int setup_error(const ExecContext *context, int socket_fd, const char *ident) {
338         ExecOutput o, e;
339         ExecInput i;
340
341         assert(context);
342         assert(ident);
343
344         i = fixup_input(context->std_input, socket_fd);
345         o = fixup_output(context->std_output, socket_fd);
346         e = fixup_output(context->std_error, socket_fd);
347
348         /* This expects the input and output are already set up */
349
350         /* Don't change the stderr file descriptor if we inherit all
351          * the way and are not on a tty */
352         if (e == EXEC_OUTPUT_INHERIT &&
353             o == EXEC_OUTPUT_INHERIT &&
354             i != EXEC_INPUT_NULL &&
355             getppid () != 1)
356                 return STDERR_FILENO;
357
358         /* Duplicate form stdout if possible */
359         if (e == o || e == EXEC_OUTPUT_INHERIT)
360                 return dup2(STDOUT_FILENO, STDERR_FILENO) < 0 ? -errno : STDERR_FILENO;
361
362         switch (e) {
363
364         case EXEC_OUTPUT_NULL:
365                 return open_null_as(O_WRONLY, STDERR_FILENO);
366
367         case EXEC_OUTPUT_TTY:
368                 if (is_terminal_input(i))
369                         return dup2(STDIN_FILENO, STDERR_FILENO) < 0 ? -errno : STDERR_FILENO;
370
371                 /* We don't reset the terminal if this is just about output */
372                 return open_terminal_as(tty_path(context), O_WRONLY, STDERR_FILENO);
373
374         case EXEC_OUTPUT_SYSLOG:
375         case EXEC_OUTPUT_KMSG:
376                 return connect_logger_as(context, e, ident, STDERR_FILENO);
377
378         case EXEC_OUTPUT_SOCKET:
379                 assert(socket_fd >= 0);
380                 return dup2(socket_fd, STDERR_FILENO) < 0 ? -errno : STDERR_FILENO;
381
382         default:
383                 assert_not_reached("Unknown error type");
384         }
385 }
386
387 static int chown_terminal(int fd, uid_t uid) {
388         struct stat st;
389
390         assert(fd >= 0);
391
392         /* This might fail. What matters are the results. */
393         (void) fchown(fd, uid, -1);
394         (void) fchmod(fd, TTY_MODE);
395
396         if (fstat(fd, &st) < 0)
397                 return -errno;
398
399         if (st.st_uid != uid || (st.st_mode & 0777) != TTY_MODE)
400                 return -EPERM;
401
402         return 0;
403 }
404
405 static int setup_confirm_stdio(const ExecContext *context,
406                                int *_saved_stdin,
407                                int *_saved_stdout) {
408         int fd = -1, saved_stdin, saved_stdout = -1, r;
409
410         assert(context);
411         assert(_saved_stdin);
412         assert(_saved_stdout);
413
414         /* This returns positive EXIT_xxx return values instead of
415          * negative errno style values! */
416
417         if ((saved_stdin = fcntl(STDIN_FILENO, F_DUPFD, 3)) < 0)
418                 return EXIT_STDIN;
419
420         if ((saved_stdout = fcntl(STDOUT_FILENO, F_DUPFD, 3)) < 0) {
421                 r = EXIT_STDOUT;
422                 goto fail;
423         }
424
425         if ((fd = acquire_terminal(
426                              tty_path(context),
427                              context->std_input == EXEC_INPUT_TTY_FAIL,
428                              context->std_input == EXEC_INPUT_TTY_FORCE,
429                              false)) < 0) {
430                 r = EXIT_STDIN;
431                 goto fail;
432         }
433
434         if (chown_terminal(fd, getuid()) < 0) {
435                 r = EXIT_STDIN;
436                 goto fail;
437         }
438
439         if (dup2(fd, STDIN_FILENO) < 0) {
440                 r = EXIT_STDIN;
441                 goto fail;
442         }
443
444         if (dup2(fd, STDOUT_FILENO) < 0) {
445                 r = EXIT_STDOUT;
446                 goto fail;
447         }
448
449         if (fd >= 2)
450                 close_nointr_nofail(fd);
451
452         *_saved_stdin = saved_stdin;
453         *_saved_stdout = saved_stdout;
454
455         return 0;
456
457 fail:
458         if (saved_stdout >= 0)
459                 close_nointr_nofail(saved_stdout);
460
461         if (saved_stdin >= 0)
462                 close_nointr_nofail(saved_stdin);
463
464         if (fd >= 0)
465                 close_nointr_nofail(fd);
466
467         return r;
468 }
469
470 static int restore_confirm_stdio(const ExecContext *context,
471                                  int *saved_stdin,
472                                  int *saved_stdout,
473                                  bool *keep_stdin,
474                                  bool *keep_stdout) {
475
476         assert(context);
477         assert(saved_stdin);
478         assert(*saved_stdin >= 0);
479         assert(saved_stdout);
480         assert(*saved_stdout >= 0);
481
482         /* This returns positive EXIT_xxx return values instead of
483          * negative errno style values! */
484
485         if (is_terminal_input(context->std_input)) {
486
487                 /* The service wants terminal input. */
488
489                 *keep_stdin = true;
490                 *keep_stdout =
491                         context->std_output == EXEC_OUTPUT_INHERIT ||
492                         context->std_output == EXEC_OUTPUT_TTY;
493
494         } else {
495                 /* If the service doesn't want a controlling terminal,
496                  * then we need to get rid entirely of what we have
497                  * already. */
498
499                 if (release_terminal() < 0)
500                         return EXIT_STDIN;
501
502                 if (dup2(*saved_stdin, STDIN_FILENO) < 0)
503                         return EXIT_STDIN;
504
505                 if (dup2(*saved_stdout, STDOUT_FILENO) < 0)
506                         return EXIT_STDOUT;
507
508                 *keep_stdout = *keep_stdin = false;
509         }
510
511         return 0;
512 }
513
514 static int get_group_creds(const char *groupname, gid_t *gid) {
515         struct group *g;
516         unsigned long lu;
517
518         assert(groupname);
519         assert(gid);
520
521         /* We enforce some special rules for gid=0: in order to avoid
522          * NSS lookups for root we hardcode its data. */
523
524         if (streq(groupname, "root") || streq(groupname, "0")) {
525                 *gid = 0;
526                 return 0;
527         }
528
529         if (safe_atolu(groupname, &lu) >= 0) {
530                 errno = 0;
531                 g = getgrgid((gid_t) lu);
532         } else {
533                 errno = 0;
534                 g = getgrnam(groupname);
535         }
536
537         if (!g)
538                 return errno != 0 ? -errno : -ESRCH;
539
540         *gid = g->gr_gid;
541         return 0;
542 }
543
544 static int get_user_creds(const char **username, uid_t *uid, gid_t *gid, const char **home) {
545         struct passwd *p;
546         unsigned long lu;
547
548         assert(username);
549         assert(*username);
550         assert(uid);
551         assert(gid);
552         assert(home);
553
554         /* We enforce some special rules for uid=0: in order to avoid
555          * NSS lookups for root we hardcode its data. */
556
557         if (streq(*username, "root") || streq(*username, "0")) {
558                 *username = "root";
559                 *uid = 0;
560                 *gid = 0;
561                 *home = "/root";
562                 return 0;
563         }
564
565         if (safe_atolu(*username, &lu) >= 0) {
566                 errno = 0;
567                 p = getpwuid((uid_t) lu);
568
569                 /* If there are multiple users with the same id, make
570                  * sure to leave $USER to the configured value instead
571                  * of the first occurence in the database. However if
572                  * the uid was configured by a numeric uid, then let's
573                  * pick the real username from /etc/passwd. */
574                 if (*username && p)
575                         *username = p->pw_name;
576         } else {
577                 errno = 0;
578                 p = getpwnam(*username);
579         }
580
581         if (!p)
582                 return errno != 0 ? -errno : -ESRCH;
583
584         *uid = p->pw_uid;
585         *gid = p->pw_gid;
586         *home = p->pw_dir;
587         return 0;
588 }
589
590 static int enforce_groups(const ExecContext *context, const char *username, gid_t gid) {
591         bool keep_groups = false;
592         int r;
593
594         assert(context);
595
596         /* Lookup and ser GID and supplementary group list. Here too
597          * we avoid NSS lookups for gid=0. */
598
599         if (context->group || username) {
600
601                 if (context->group)
602                         if ((r = get_group_creds(context->group, &gid)) < 0)
603                                 return r;
604
605                 /* First step, initialize groups from /etc/groups */
606                 if (username && gid != 0) {
607                         if (initgroups(username, gid) < 0)
608                                 return -errno;
609
610                         keep_groups = true;
611                 }
612
613                 /* Second step, set our gids */
614                 if (setresgid(gid, gid, gid) < 0)
615                         return -errno;
616         }
617
618         if (context->supplementary_groups) {
619                 int ngroups_max, k;
620                 gid_t *gids;
621                 char **i;
622
623                 /* Final step, initialize any manually set supplementary groups */
624                 ngroups_max = (int) sysconf(_SC_NGROUPS_MAX);
625
626                 if (!(gids = new(gid_t, ngroups_max)))
627                         return -ENOMEM;
628
629                 if (keep_groups) {
630                         if ((k = getgroups(ngroups_max, gids)) < 0) {
631                                 free(gids);
632                                 return -errno;
633                         }
634                 } else
635                         k = 0;
636
637                 STRV_FOREACH(i, context->supplementary_groups) {
638
639                         if (k >= ngroups_max) {
640                                 free(gids);
641                                 return -E2BIG;
642                         }
643
644                         if ((r = get_group_creds(*i, gids+k)) < 0) {
645                                 free(gids);
646                                 return r;
647                         }
648
649                         k++;
650                 }
651
652                 if (setgroups(k, gids) < 0) {
653                         free(gids);
654                         return -errno;
655                 }
656
657                 free(gids);
658         }
659
660         return 0;
661 }
662
663 static int enforce_user(const ExecContext *context, uid_t uid) {
664         int r;
665         assert(context);
666
667         /* Sets (but doesn't lookup) the uid and make sure we keep the
668          * capabilities while doing so. */
669
670         if (context->capabilities) {
671                 cap_t d;
672                 static const cap_value_t bits[] = {
673                         CAP_SETUID,   /* Necessary so that we can run setresuid() below */
674                         CAP_SETPCAP   /* Necessary so that we can set PR_SET_SECUREBITS later on */
675                 };
676
677                 /* First step: If we need to keep capabilities but
678                  * drop privileges we need to make sure we keep our
679                  * caps, whiel we drop priviliges. */
680                 if (uid != 0) {
681                         int sb = context->secure_bits|SECURE_KEEP_CAPS;
682
683                         if (prctl(PR_GET_SECUREBITS) != sb)
684                                 if (prctl(PR_SET_SECUREBITS, sb) < 0)
685                                         return -errno;
686                 }
687
688                 /* Second step: set the capabilites. This will reduce
689                  * the capabilities to the minimum we need. */
690
691                 if (!(d = cap_dup(context->capabilities)))
692                         return -errno;
693
694                 if (cap_set_flag(d, CAP_EFFECTIVE, ELEMENTSOF(bits), bits, CAP_SET) < 0 ||
695                     cap_set_flag(d, CAP_PERMITTED, ELEMENTSOF(bits), bits, CAP_SET) < 0) {
696                         r = -errno;
697                         cap_free(d);
698                         return r;
699                 }
700
701                 if (cap_set_proc(d) < 0) {
702                         r = -errno;
703                         cap_free(d);
704                         return r;
705                 }
706
707                 cap_free(d);
708         }
709
710         /* Third step: actually set the uids */
711         if (setresuid(uid, uid, uid) < 0)
712                 return -errno;
713
714         /* At this point we should have all necessary capabilities but
715            are otherwise a normal user. However, the caps might got
716            corrupted due to the setresuid() so we need clean them up
717            later. This is done outside of this call. */
718
719         return 0;
720 }
721
722 int exec_spawn(ExecCommand *command,
723                char **argv,
724                const ExecContext *context,
725                int fds[], unsigned n_fds,
726                char **environment,
727                bool apply_permissions,
728                bool apply_chroot,
729                bool confirm_spawn,
730                CGroupBonding *cgroup_bondings,
731                pid_t *ret) {
732
733         pid_t pid;
734         int r;
735         char *line;
736         int socket_fd;
737
738         assert(command);
739         assert(context);
740         assert(ret);
741         assert(fds || n_fds <= 0);
742
743         if (context->std_input == EXEC_INPUT_SOCKET ||
744             context->std_output == EXEC_OUTPUT_SOCKET ||
745             context->std_error == EXEC_OUTPUT_SOCKET) {
746
747                 if (n_fds != 1)
748                         return -EINVAL;
749
750                 socket_fd = fds[0];
751
752                 fds = NULL;
753                 n_fds = 0;
754         } else
755                 socket_fd = -1;
756
757         if (!argv)
758                 argv = command->argv;
759
760         if (!(line = exec_command_line(argv)))
761                 return -ENOMEM;
762
763         log_debug("About to execute: %s", line);
764         free(line);
765
766         if (cgroup_bondings)
767                 if ((r = cgroup_bonding_realize_list(cgroup_bondings)))
768                         return r;
769
770         if ((pid = fork()) < 0)
771                 return -errno;
772
773         if (pid == 0) {
774                 int i;
775                 sigset_t ss;
776                 const char *username = NULL, *home = NULL;
777                 uid_t uid = (uid_t) -1;
778                 gid_t gid = (gid_t) -1;
779                 char **our_env = NULL, **final_env = NULL;
780                 unsigned n_env = 0;
781                 int saved_stdout = -1, saved_stdin = -1;
782                 bool keep_stdout = false, keep_stdin = false;
783
784                 /* child */
785
786                 /* We reset exactly these signals, since they are the
787                  * only ones we set to SIG_IGN in the main daemon. All
788                  * others we leave untouched because we set them to
789                  * SIG_DFL or a valid handler initially, both of which
790                  * will be demoted to SIG_DFL. */
791                 default_signals(SIGNALS_CRASH_HANDLER,
792                                 SIGNALS_IGNORE, -1);
793
794                 if (sigemptyset(&ss) < 0 ||
795                     sigprocmask(SIG_SETMASK, &ss, NULL) < 0) {
796                         r = EXIT_SIGNAL_MASK;
797                         goto fail;
798                 }
799
800                 if (!context->no_setsid)
801                         if (setsid() < 0) {
802                                 r = EXIT_SETSID;
803                                 goto fail;
804                         }
805
806                 if (confirm_spawn) {
807                         char response;
808
809                         /* Set up terminal for the question */
810                         if ((r = setup_confirm_stdio(context,
811                                                      &saved_stdin, &saved_stdout)))
812                                 goto fail;
813
814                         /* Now ask the question. */
815                         if (!(line = exec_command_line(argv))) {
816                                 r = EXIT_MEMORY;
817                                 goto fail;
818                         }
819
820                         r = ask(&response, "yns", "Execute %s? [Yes, No, Skip] ", line);
821                         free(line);
822
823                         if (r < 0 || response == 'n') {
824                                 r = EXIT_CONFIRM;
825                                 goto fail;
826                         } else if (response == 's') {
827                                 r = 0;
828                                 goto fail;
829                         }
830
831                         /* Release terminal for the question */
832                         if ((r = restore_confirm_stdio(context,
833                                                        &saved_stdin, &saved_stdout,
834                                                        &keep_stdin, &keep_stdout)))
835                                 goto fail;
836                 }
837
838                 if (!keep_stdin)
839                         if (setup_input(context, socket_fd) < 0) {
840                                 r = EXIT_STDIN;
841                                 goto fail;
842                         }
843
844                 if (!keep_stdout)
845                         if (setup_output(context, socket_fd, file_name_from_path(command->path)) < 0) {
846                                 r = EXIT_STDOUT;
847                                 goto fail;
848                         }
849
850                 if (setup_error(context, socket_fd, file_name_from_path(command->path)) < 0) {
851                         r = EXIT_STDERR;
852                         goto fail;
853                 }
854
855                 if (cgroup_bondings)
856                         if ((r = cgroup_bonding_install_list(cgroup_bondings, 0)) < 0) {
857                                 r = EXIT_CGROUP;
858                                 goto fail;
859                         }
860
861                 if (context->oom_adjust_set) {
862                         char t[16];
863
864                         snprintf(t, sizeof(t), "%i", context->oom_adjust);
865                         char_array_0(t);
866
867                         if (write_one_line_file("/proc/self/oom_adj", t) < 0) {
868                                 r = EXIT_OOM_ADJUST;
869                                 goto fail;
870                         }
871                 }
872
873                 if (context->nice_set)
874                         if (setpriority(PRIO_PROCESS, 0, context->nice) < 0) {
875                                 r = EXIT_NICE;
876                                 goto fail;
877                         }
878
879                 if (context->cpu_sched_set) {
880                         struct sched_param param;
881
882                         zero(param);
883                         param.sched_priority = context->cpu_sched_priority;
884
885                         if (sched_setscheduler(0, context->cpu_sched_policy |
886                                                (context->cpu_sched_reset_on_fork ? SCHED_RESET_ON_FORK : 0), &param) < 0) {
887                                 r = EXIT_SETSCHEDULER;
888                                 goto fail;
889                         }
890                 }
891
892                 if (context->cpu_affinity_set)
893                         if (sched_setaffinity(0, sizeof(context->cpu_affinity), &context->cpu_affinity) < 0) {
894                                 r = EXIT_CPUAFFINITY;
895                                 goto fail;
896                         }
897
898                 if (context->ioprio_set)
899                         if (ioprio_set(IOPRIO_WHO_PROCESS, 0, context->ioprio) < 0) {
900                                 r = EXIT_IOPRIO;
901                                 goto fail;
902                         }
903
904                 if (context->timer_slack_ns_set)
905                         if (prctl(PR_SET_TIMERSLACK, context->timer_slack_ns_set) < 0) {
906                                 r = EXIT_TIMERSLACK;
907                                 goto fail;
908                         }
909
910                 if (strv_length(context->read_write_dirs) > 0 ||
911                     strv_length(context->read_only_dirs) > 0 ||
912                     strv_length(context->inaccessible_dirs) > 0 ||
913                     context->mount_flags != MS_SHARED ||
914                     context->private_tmp)
915                         if ((r = setup_namespace(
916                                              context->read_write_dirs,
917                                              context->read_only_dirs,
918                                              context->inaccessible_dirs,
919                                              context->private_tmp,
920                                              context->mount_flags)) < 0)
921                                 goto fail;
922
923                 if (context->user) {
924                         username = context->user;
925                         if (get_user_creds(&username, &uid, &gid, &home) < 0) {
926                                 r = EXIT_USER;
927                                 goto fail;
928                         }
929
930                         if (is_terminal_input(context->std_input))
931                                 if (chown_terminal(STDIN_FILENO, uid) < 0) {
932                                         r = EXIT_STDIN;
933                                         goto fail;
934                                 }
935                 }
936
937                 if (apply_permissions)
938                         if (enforce_groups(context, username, uid) < 0) {
939                                 r = EXIT_GROUP;
940                                 goto fail;
941                         }
942
943                 umask(context->umask);
944
945                 if (apply_chroot) {
946                         if (context->root_directory)
947                                 if (chroot(context->root_directory) < 0) {
948                                         r = EXIT_CHROOT;
949                                         goto fail;
950                                 }
951
952                         if (chdir(context->working_directory ? context->working_directory : "/") < 0) {
953                                 r = EXIT_CHDIR;
954                                 goto fail;
955                         }
956                 } else {
957
958                         char *d;
959
960                         if (asprintf(&d, "%s/%s",
961                                      context->root_directory ? context->root_directory : "",
962                                      context->working_directory ? context->working_directory : "") < 0) {
963                                 r = EXIT_MEMORY;
964                                 goto fail;
965                         }
966
967                         if (chdir(d) < 0) {
968                                 free(d);
969                                 r = EXIT_CHDIR;
970                                 goto fail;
971                         }
972
973                         free(d);
974                 }
975
976                 if (close_all_fds(fds, n_fds) < 0 ||
977                     shift_fds(fds, n_fds) < 0 ||
978                     flags_fds(fds, n_fds, context->non_blocking) < 0) {
979                         r = EXIT_FDS;
980                         goto fail;
981                 }
982
983                 if (apply_permissions) {
984
985                         for (i = 0; i < RLIMIT_NLIMITS; i++) {
986                                 if (!context->rlimit[i])
987                                         continue;
988
989                                 if (setrlimit(i, context->rlimit[i]) < 0) {
990                                         r = EXIT_LIMITS;
991                                         goto fail;
992                                 }
993                         }
994
995                         if (context->user)
996                                 if (enforce_user(context, uid) < 0) {
997                                         r = EXIT_USER;
998                                         goto fail;
999                                 }
1000
1001                         /* PR_GET_SECUREBITS is not priviliged, while
1002                          * PR_SET_SECUREBITS is. So to suppress
1003                          * potential EPERMs we'll try not to call
1004                          * PR_SET_SECUREBITS unless necessary. */
1005                         if (prctl(PR_GET_SECUREBITS) != context->secure_bits)
1006                                 if (prctl(PR_SET_SECUREBITS, context->secure_bits) < 0) {
1007                                         r = EXIT_SECUREBITS;
1008                                         goto fail;
1009                                 }
1010
1011                         if (context->capabilities)
1012                                 if (cap_set_proc(context->capabilities) < 0) {
1013                                         r = EXIT_CAPABILITIES;
1014                                         goto fail;
1015                                 }
1016                 }
1017
1018                 if (!(our_env = new0(char*, 6))) {
1019                         r = EXIT_MEMORY;
1020                         goto fail;
1021                 }
1022
1023                 if (n_fds > 0)
1024                         if (asprintf(our_env + n_env++, "LISTEN_PID=%llu", (unsigned long long) getpid()) < 0 ||
1025                             asprintf(our_env + n_env++, "LISTEN_FDS=%u", n_fds) < 0) {
1026                                 r = EXIT_MEMORY;
1027                                 goto fail;
1028                         }
1029
1030                 if (home)
1031                         if (asprintf(our_env + n_env++, "HOME=%s", home) < 0) {
1032                                 r = EXIT_MEMORY;
1033                                 goto fail;
1034                         }
1035
1036                 if (username)
1037                         if (asprintf(our_env + n_env++, "LOGNAME=%s", username) < 0 ||
1038                             asprintf(our_env + n_env++, "USER=%s", username) < 0) {
1039                                 r = EXIT_MEMORY;
1040                                 goto fail;
1041                         }
1042
1043                 assert(n_env <= 6);
1044
1045                 if (!(final_env = strv_env_merge(environment, our_env, context->environment, NULL))) {
1046                         r = EXIT_MEMORY;
1047                         goto fail;
1048                 }
1049
1050                 execve(command->path, argv, final_env);
1051                 r = EXIT_EXEC;
1052
1053         fail:
1054                 strv_free(our_env);
1055                 strv_free(final_env);
1056
1057                 if (saved_stdin >= 0)
1058                         close_nointr_nofail(saved_stdin);
1059
1060                 if (saved_stdout >= 0)
1061                         close_nointr_nofail(saved_stdout);
1062
1063                 _exit(r);
1064         }
1065
1066         /* We add the new process to the cgroup both in the child (so
1067          * that we can be sure that no user code is ever executed
1068          * outside of the cgroup) and in the parent (so that we can be
1069          * sure that when we kill the cgroup the process will be
1070          * killed too). */
1071         if (cgroup_bondings)
1072                 cgroup_bonding_install_list(cgroup_bondings, pid);
1073
1074         log_debug("Forked %s as %llu", command->path, (unsigned long long) pid);
1075
1076         command->exec_status.pid = pid;
1077         command->exec_status.start_timestamp = now(CLOCK_REALTIME);
1078
1079         *ret = pid;
1080         return 0;
1081 }
1082
1083 void exec_context_init(ExecContext *c) {
1084         assert(c);
1085
1086         c->umask = 0002;
1087         c->ioprio = IOPRIO_PRIO_VALUE(IOPRIO_CLASS_BE, 0);
1088         c->cpu_sched_policy = SCHED_OTHER;
1089         c->syslog_priority = LOG_DAEMON|LOG_INFO;
1090         c->mount_flags = MS_SHARED;
1091 }
1092
1093 void exec_context_done(ExecContext *c) {
1094         unsigned l;
1095
1096         assert(c);
1097
1098         strv_free(c->environment);
1099         c->environment = NULL;
1100
1101         for (l = 0; l < ELEMENTSOF(c->rlimit); l++) {
1102                 free(c->rlimit[l]);
1103                 c->rlimit[l] = NULL;
1104         }
1105
1106         free(c->working_directory);
1107         c->working_directory = NULL;
1108         free(c->root_directory);
1109         c->root_directory = NULL;
1110
1111         free(c->tty_path);
1112         c->tty_path = NULL;
1113
1114         free(c->syslog_identifier);
1115         c->syslog_identifier = NULL;
1116
1117         free(c->user);
1118         c->user = NULL;
1119
1120         free(c->group);
1121         c->group = NULL;
1122
1123         strv_free(c->supplementary_groups);
1124         c->supplementary_groups = NULL;
1125
1126         if (c->capabilities) {
1127                 cap_free(c->capabilities);
1128                 c->capabilities = NULL;
1129         }
1130
1131         strv_free(c->read_only_dirs);
1132         c->read_only_dirs = NULL;
1133
1134         strv_free(c->read_write_dirs);
1135         c->read_write_dirs = NULL;
1136
1137         strv_free(c->inaccessible_dirs);
1138         c->inaccessible_dirs = NULL;
1139 }
1140
1141 void exec_command_done(ExecCommand *c) {
1142         assert(c);
1143
1144         free(c->path);
1145         c->path = NULL;
1146
1147         strv_free(c->argv);
1148         c->argv = NULL;
1149 }
1150
1151 void exec_command_done_array(ExecCommand *c, unsigned n) {
1152         unsigned i;
1153
1154         for (i = 0; i < n; i++)
1155                 exec_command_done(c+i);
1156 }
1157
1158 void exec_command_free_list(ExecCommand *c) {
1159         ExecCommand *i;
1160
1161         while ((i = c)) {
1162                 LIST_REMOVE(ExecCommand, command, c, i);
1163                 exec_command_done(i);
1164                 free(i);
1165         }
1166 }
1167
1168 void exec_command_free_array(ExecCommand **c, unsigned n) {
1169         unsigned i;
1170
1171         for (i = 0; i < n; i++) {
1172                 exec_command_free_list(c[i]);
1173                 c[i] = NULL;
1174         }
1175 }
1176
1177 static void strv_fprintf(FILE *f, char **l) {
1178         char **g;
1179
1180         assert(f);
1181
1182         STRV_FOREACH(g, l)
1183                 fprintf(f, " %s", *g);
1184 }
1185
1186 void exec_context_dump(ExecContext *c, FILE* f, const char *prefix) {
1187         char ** e;
1188         unsigned i;
1189
1190         assert(c);
1191         assert(f);
1192
1193         if (!prefix)
1194                 prefix = "";
1195
1196         fprintf(f,
1197                 "%sUMask: %04o\n"
1198                 "%sWorkingDirectory: %s\n"
1199                 "%sRootDirectory: %s\n"
1200                 "%sNonBlocking: %s\n"
1201                 "%sPrivateTmp: %s\n",
1202                 prefix, c->umask,
1203                 prefix, c->working_directory ? c->working_directory : "/",
1204                 prefix, c->root_directory ? c->root_directory : "/",
1205                 prefix, yes_no(c->non_blocking),
1206                 prefix, yes_no(c->private_tmp));
1207
1208         if (c->environment)
1209                 for (e = c->environment; *e; e++)
1210                         fprintf(f, "%sEnvironment: %s\n", prefix, *e);
1211
1212         if (c->nice_set)
1213                 fprintf(f,
1214                         "%sNice: %i\n",
1215                         prefix, c->nice);
1216
1217         if (c->oom_adjust_set)
1218                 fprintf(f,
1219                         "%sOOMAdjust: %i\n",
1220                         prefix, c->oom_adjust);
1221
1222         for (i = 0; i < RLIM_NLIMITS; i++)
1223                 if (c->rlimit[i])
1224                         fprintf(f, "%s%s: %llu\n", prefix, rlimit_to_string(i), (unsigned long long) c->rlimit[i]->rlim_max);
1225
1226         if (c->ioprio_set)
1227                 fprintf(f,
1228                         "%sIOSchedulingClass: %s\n"
1229                         "%sIOPriority: %i\n",
1230                         prefix, ioprio_class_to_string(IOPRIO_PRIO_CLASS(c->ioprio)),
1231                         prefix, (int) IOPRIO_PRIO_DATA(c->ioprio));
1232
1233         if (c->cpu_sched_set)
1234                 fprintf(f,
1235                         "%sCPUSchedulingPolicy: %s\n"
1236                         "%sCPUSchedulingPriority: %i\n"
1237                         "%sCPUSchedulingResetOnFork: %s\n",
1238                         prefix, sched_policy_to_string(c->cpu_sched_policy),
1239                         prefix, c->cpu_sched_priority,
1240                         prefix, yes_no(c->cpu_sched_reset_on_fork));
1241
1242         if (c->cpu_affinity_set) {
1243                 fprintf(f, "%sCPUAffinity:", prefix);
1244                 for (i = 0; i < CPU_SETSIZE; i++)
1245                         if (CPU_ISSET(i, &c->cpu_affinity))
1246                                 fprintf(f, " %i", i);
1247                 fputs("\n", f);
1248         }
1249
1250         if (c->timer_slack_ns_set)
1251                 fprintf(f, "%sTimerSlackNS: %lu\n", prefix, c->timer_slack_ns);
1252
1253         fprintf(f,
1254                 "%sStandardInput: %s\n"
1255                 "%sStandardOutput: %s\n"
1256                 "%sStandardError: %s\n",
1257                 prefix, exec_input_to_string(c->std_input),
1258                 prefix, exec_output_to_string(c->std_output),
1259                 prefix, exec_output_to_string(c->std_error));
1260
1261         if (c->tty_path)
1262                 fprintf(f,
1263                         "%sTTYPath: %s\n",
1264                         prefix, c->tty_path);
1265
1266         if (c->std_output == EXEC_OUTPUT_SYSLOG || c->std_output == EXEC_OUTPUT_KMSG ||
1267             c->std_error == EXEC_OUTPUT_SYSLOG || c->std_error == EXEC_OUTPUT_KMSG)
1268                 fprintf(f,
1269                         "%sSyslogFacility: %s\n"
1270                         "%sSyslogLevel: %s\n",
1271                         prefix, log_facility_to_string(LOG_FAC(c->syslog_priority)),
1272                         prefix, log_level_to_string(LOG_PRI(c->syslog_priority)));
1273
1274         if (c->capabilities) {
1275                 char *t;
1276                 if ((t = cap_to_text(c->capabilities, NULL))) {
1277                         fprintf(f, "%sCapabilities: %s\n",
1278                                 prefix, t);
1279                         cap_free(t);
1280                 }
1281         }
1282
1283         if (c->secure_bits)
1284                 fprintf(f, "%sSecure Bits:%s%s%s%s%s%s\n",
1285                         prefix,
1286                         (c->secure_bits & SECURE_KEEP_CAPS) ? " keep-caps" : "",
1287                         (c->secure_bits & SECURE_KEEP_CAPS_LOCKED) ? " keep-caps-locked" : "",
1288                         (c->secure_bits & SECURE_NO_SETUID_FIXUP) ? " no-setuid-fixup" : "",
1289                         (c->secure_bits & SECURE_NO_SETUID_FIXUP_LOCKED) ? " no-setuid-fixup-locked" : "",
1290                         (c->secure_bits & SECURE_NOROOT) ? " noroot" : "",
1291                         (c->secure_bits & SECURE_NOROOT_LOCKED) ? "noroot-locked" : "");
1292
1293         if (c->capability_bounding_set_drop) {
1294                 fprintf(f, "%sCapabilityBoundingSetDrop:", prefix);
1295
1296                 for (i = 0; i <= CAP_LAST_CAP; i++)
1297                         if (c->capability_bounding_set_drop & (1 << i)) {
1298                                 char *t;
1299
1300                                 if ((t = cap_to_name(i))) {
1301                                         fprintf(f, " %s", t);
1302                                         free(t);
1303                                 }
1304                         }
1305
1306                 fputs("\n", f);
1307         }
1308
1309         if (c->user)
1310                 fprintf(f, "%sUser: %s", prefix, c->user);
1311         if (c->group)
1312                 fprintf(f, "%sGroup: %s", prefix, c->group);
1313
1314         if (strv_length(c->supplementary_groups) > 0) {
1315                 fprintf(f, "%sSupplementaryGroups:", prefix);
1316                 strv_fprintf(f, c->supplementary_groups);
1317                 fputs("\n", f);
1318         }
1319
1320         if (strv_length(c->read_write_dirs) > 0) {
1321                 fprintf(f, "%sReadWriteDirs:", prefix);
1322                 strv_fprintf(f, c->read_write_dirs);
1323                 fputs("\n", f);
1324         }
1325
1326         if (strv_length(c->read_only_dirs) > 0) {
1327                 fprintf(f, "%sReadOnlyDirs:", prefix);
1328                 strv_fprintf(f, c->read_only_dirs);
1329                 fputs("\n", f);
1330         }
1331
1332         if (strv_length(c->inaccessible_dirs) > 0) {
1333                 fprintf(f, "%sInaccessibleDirs:", prefix);
1334                 strv_fprintf(f, c->inaccessible_dirs);
1335                 fputs("\n", f);
1336         }
1337 }
1338
1339 void exec_status_fill(ExecStatus *s, pid_t pid, int code, int status) {
1340         assert(s);
1341
1342         s->pid = pid;
1343         s->exit_timestamp = now(CLOCK_REALTIME);
1344
1345         s->code = code;
1346         s->status = status;
1347 }
1348
1349 void exec_status_dump(ExecStatus *s, FILE *f, const char *prefix) {
1350         char buf[FORMAT_TIMESTAMP_MAX];
1351
1352         assert(s);
1353         assert(f);
1354
1355         if (!prefix)
1356                 prefix = "";
1357
1358         if (s->pid <= 0)
1359                 return;
1360
1361         fprintf(f,
1362                 "%sPID: %llu\n",
1363                 prefix, (unsigned long long) s->pid);
1364
1365         if (s->start_timestamp > 0)
1366                 fprintf(f,
1367                         "%sStart Timestamp: %s\n",
1368                         prefix, format_timestamp(buf, sizeof(buf), s->start_timestamp));
1369
1370         if (s->exit_timestamp > 0)
1371                 fprintf(f,
1372                         "%sExit Timestamp: %s\n"
1373                         "%sExit Code: %s\n"
1374                         "%sExit Status: %i\n",
1375                         prefix, format_timestamp(buf, sizeof(buf), s->exit_timestamp),
1376                         prefix, sigchld_code_to_string(s->code),
1377                         prefix, s->status);
1378 }
1379
1380 char *exec_command_line(char **argv) {
1381         size_t k;
1382         char *n, *p, **a;
1383         bool first = true;
1384
1385         assert(argv);
1386
1387         k = 1;
1388         STRV_FOREACH(a, argv)
1389                 k += strlen(*a)+3;
1390
1391         if (!(n = new(char, k)))
1392                 return NULL;
1393
1394         p = n;
1395         STRV_FOREACH(a, argv) {
1396
1397                 if (!first)
1398                         *(p++) = ' ';
1399                 else
1400                         first = false;
1401
1402                 if (strpbrk(*a, WHITESPACE)) {
1403                         *(p++) = '\'';
1404                         p = stpcpy(p, *a);
1405                         *(p++) = '\'';
1406                 } else
1407                         p = stpcpy(p, *a);
1408
1409         }
1410
1411         *p = 0;
1412
1413         /* FIXME: this doesn't really handle arguments that have
1414          * spaces and ticks in them */
1415
1416         return n;
1417 }
1418
1419 void exec_command_dump(ExecCommand *c, FILE *f, const char *prefix) {
1420         char *p2;
1421         const char *prefix2;
1422
1423         char *cmd;
1424
1425         assert(c);
1426         assert(f);
1427
1428         if (!prefix)
1429                 prefix = "";
1430         p2 = strappend(prefix, "\t");
1431         prefix2 = p2 ? p2 : prefix;
1432
1433         cmd = exec_command_line(c->argv);
1434
1435         fprintf(f,
1436                 "%sCommand Line: %s\n",
1437                 prefix, cmd ? cmd : strerror(ENOMEM));
1438
1439         free(cmd);
1440
1441         exec_status_dump(&c->exec_status, f, prefix2);
1442
1443         free(p2);
1444 }
1445
1446 void exec_command_dump_list(ExecCommand *c, FILE *f, const char *prefix) {
1447         assert(f);
1448
1449         if (!prefix)
1450                 prefix = "";
1451
1452         LIST_FOREACH(command, c, c)
1453                 exec_command_dump(c, f, prefix);
1454 }
1455
1456 void exec_command_append_list(ExecCommand **l, ExecCommand *e) {
1457         ExecCommand *end;
1458
1459         assert(l);
1460         assert(e);
1461
1462         if (*l) {
1463                 /* It's kinda important that we keep the order here */
1464                 LIST_FIND_TAIL(ExecCommand, command, *l, end);
1465                 LIST_INSERT_AFTER(ExecCommand, command, *l, end, e);
1466         } else
1467               *l = e;
1468 }
1469
1470 int exec_command_set(ExecCommand *c, const char *path, ...) {
1471         va_list ap;
1472         char **l, *p;
1473
1474         assert(c);
1475         assert(path);
1476
1477         va_start(ap, path);
1478         l = strv_new_ap(path, ap);
1479         va_end(ap);
1480
1481         if (!l)
1482                 return -ENOMEM;
1483
1484         if (!(p = strdup(path))) {
1485                 strv_free(l);
1486                 return -ENOMEM;
1487         }
1488
1489         free(c->path);
1490         c->path = p;
1491
1492         strv_free(c->argv);
1493         c->argv = l;
1494
1495         return 0;
1496 }
1497
1498 const char* exit_status_to_string(ExitStatus status) {
1499
1500         /* We cast to int here, so that -Wenum doesn't complain that
1501          * EXIT_SUCCESS/EXIT_FAILURE aren't in the enum */
1502
1503         switch ((int) status) {
1504
1505         case EXIT_SUCCESS:
1506                 return "SUCCESS";
1507
1508         case EXIT_FAILURE:
1509                 return "FAILURE";
1510
1511         case EXIT_INVALIDARGUMENT:
1512                 return "INVALIDARGUMENT";
1513
1514         case EXIT_NOTIMPLEMENTED:
1515                 return "NOTIMPLEMENTED";
1516
1517         case EXIT_NOPERMISSION:
1518                 return "NOPERMISSION";
1519
1520         case EXIT_NOTINSTALLED:
1521                 return "NOTINSSTALLED";
1522
1523         case EXIT_NOTCONFIGURED:
1524                 return "NOTCONFIGURED";
1525
1526         case EXIT_NOTRUNNING:
1527                 return "NOTRUNNING";
1528
1529         case EXIT_CHDIR:
1530                 return "CHDIR";
1531
1532         case EXIT_NICE:
1533                 return "NICE";
1534
1535         case EXIT_FDS:
1536                 return "FDS";
1537
1538         case EXIT_EXEC:
1539                 return "EXEC";
1540
1541         case EXIT_MEMORY:
1542                 return "MEMORY";
1543
1544         case EXIT_LIMITS:
1545                 return "LIMITS";
1546
1547         case EXIT_OOM_ADJUST:
1548                 return "OOM_ADJUST";
1549
1550         case EXIT_SIGNAL_MASK:
1551                 return "SIGNAL_MASK";
1552
1553         case EXIT_STDIN:
1554                 return "STDIN";
1555
1556         case EXIT_STDOUT:
1557                 return "STDOUT";
1558
1559         case EXIT_CHROOT:
1560                 return "CHROOT";
1561
1562         case EXIT_IOPRIO:
1563                 return "IOPRIO";
1564
1565         case EXIT_TIMERSLACK:
1566                 return "TIMERSLACK";
1567
1568         case EXIT_SECUREBITS:
1569                 return "SECUREBITS";
1570
1571         case EXIT_SETSCHEDULER:
1572                 return "SETSCHEDULER";
1573
1574         case EXIT_CPUAFFINITY:
1575                 return "CPUAFFINITY";
1576
1577         case EXIT_GROUP:
1578                 return "GROUP";
1579
1580         case EXIT_USER:
1581                 return "USER";
1582
1583         case EXIT_CAPABILITIES:
1584                 return "CAPABILITIES";
1585
1586         case EXIT_CGROUP:
1587                 return "CGROUP";
1588
1589         case EXIT_SETSID:
1590                 return "SETSID";
1591
1592         case EXIT_CONFIRM:
1593                 return "CONFIRM";
1594
1595         case EXIT_STDERR:
1596                 return "STDERR";
1597
1598         default:
1599                 return NULL;
1600         }
1601 }
1602
1603 static const char* const exec_input_table[_EXEC_INPUT_MAX] = {
1604         [EXEC_INPUT_NULL] = "null",
1605         [EXEC_INPUT_TTY] = "tty",
1606         [EXEC_INPUT_TTY_FORCE] = "tty-force",
1607         [EXEC_INPUT_TTY_FAIL] = "tty-fail",
1608         [EXEC_INPUT_SOCKET] = "socket"
1609 };
1610
1611 static const char* const exec_output_table[_EXEC_OUTPUT_MAX] = {
1612         [EXEC_OUTPUT_INHERIT] = "inherit",
1613         [EXEC_OUTPUT_NULL] = "null",
1614         [EXEC_OUTPUT_TTY] = "tty",
1615         [EXEC_OUTPUT_SYSLOG] = "syslog",
1616         [EXEC_OUTPUT_KMSG] = "kmsg",
1617         [EXEC_OUTPUT_SOCKET] = "socket"
1618 };
1619
1620 DEFINE_STRING_TABLE_LOOKUP(exec_output, ExecOutput);
1621
1622 DEFINE_STRING_TABLE_LOOKUP(exec_input, ExecInput);