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1 /* SPDX-License-Identifier: LGPL-2.1+ */
2
3 #include <errno.h>
4 #include <fcntl.h>
5 #include <linux/kd.h>
6 #include <sys/epoll.h>
7 #include <sys/inotify.h>
8 #include <sys/ioctl.h>
9 #include <sys/reboot.h>
10 #include <sys/timerfd.h>
11 #include <sys/wait.h>
12 #include <unistd.h>
13
14 #if HAVE_AUDIT
15 #include <libaudit.h>
16 #endif
17
18 #include "sd-daemon.h"
19 #include "sd-messages.h"
20 #include "sd-path.h"
21
22 #include "all-units.h"
23 #include "alloc-util.h"
24 #include "audit-fd.h"
25 #include "boot-timestamps.h"
26 #include "bus-common-errors.h"
27 #include "bus-error.h"
28 #include "bus-kernel.h"
29 #include "bus-util.h"
30 #include "clean-ipc.h"
31 #include "clock-util.h"
32 #include "core-varlink.h"
33 #include "dbus-job.h"
34 #include "dbus-manager.h"
35 #include "dbus-unit.h"
36 #include "dbus.h"
37 #include "def.h"
38 #include "dirent-util.h"
39 #include "env-util.h"
40 #include "escape.h"
41 #include "exec-util.h"
42 #include "execute.h"
43 #include "exit-status.h"
44 #include "fd-util.h"
45 #include "fileio.h"
46 #include "fs-util.h"
47 #include "hashmap.h"
48 #include "install.h"
49 #include "io-util.h"
50 #include "label.h"
51 #include "locale-setup.h"
52 #include "log.h"
53 #include "macro.h"
54 #include "manager.h"
55 #include "memory-util.h"
56 #include "mkdir.h"
57 #include "parse-util.h"
58 #include "path-lookup.h"
59 #include "path-util.h"
60 #include "process-util.h"
61 #include "ratelimit.h"
62 #include "rlimit-util.h"
63 #include "rm-rf.h"
64 #include "serialize.h"
65 #include "signal-util.h"
66 #include "socket-util.h"
67 #include "special.h"
68 #include "stat-util.h"
69 #include "string-table.h"
70 #include "string-util.h"
71 #include "strv.h"
72 #include "strxcpyx.h"
73 #include "sysctl-util.h"
74 #include "syslog-util.h"
75 #include "terminal-util.h"
76 #include "time-util.h"
77 #include "transaction.h"
78 #include "umask-util.h"
79 #include "unit-name.h"
80 #include "user-util.h"
81 #include "virt.h"
82 #include "watchdog.h"
83
84 #define NOTIFY_RCVBUF_SIZE (8*1024*1024)
85 #define CGROUPS_AGENT_RCVBUF_SIZE (8*1024*1024)
86
87 /* Initial delay and the interval for printing status messages about running jobs */
88 #define JOBS_IN_PROGRESS_WAIT_USEC (5*USEC_PER_SEC)
89 #define JOBS_IN_PROGRESS_PERIOD_USEC (USEC_PER_SEC / 3)
90 #define JOBS_IN_PROGRESS_PERIOD_DIVISOR 3
91
92 /* If there are more than 1K bus messages queue across our API and direct buses, then let's not add more on top until
93 * the queue gets more empty. */
94 #define MANAGER_BUS_BUSY_THRESHOLD 1024LU
95
96 /* How many units and jobs to process of the bus queue before returning to the event loop. */
97 #define MANAGER_BUS_MESSAGE_BUDGET 100U
98
99 static int manager_dispatch_notify_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata);
100 static int manager_dispatch_cgroups_agent_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata);
101 static int manager_dispatch_signal_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata);
102 static int manager_dispatch_time_change_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata);
103 static int manager_dispatch_idle_pipe_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata);
104 static int manager_dispatch_user_lookup_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata);
105 static int manager_dispatch_jobs_in_progress(sd_event_source *source, usec_t usec, void *userdata);
106 static int manager_dispatch_run_queue(sd_event_source *source, void *userdata);
107 static int manager_dispatch_sigchld(sd_event_source *source, void *userdata);
108 static int manager_dispatch_timezone_change(sd_event_source *source, const struct inotify_event *event, void *userdata);
109 static int manager_run_environment_generators(Manager *m);
110 static int manager_run_generators(Manager *m);
111
112 static void manager_watch_jobs_in_progress(Manager *m) {
113 usec_t next;
114 int r;
115
116 assert(m);
117
118 /* We do not want to show the cylon animation if the user
119 * needs to confirm service executions otherwise confirmation
120 * messages will be screwed by the cylon animation. */
121 if (!manager_is_confirm_spawn_disabled(m))
122 return;
123
124 if (m->jobs_in_progress_event_source)
125 return;
126
127 next = now(CLOCK_MONOTONIC) + JOBS_IN_PROGRESS_WAIT_USEC;
128 r = sd_event_add_time(
129 m->event,
130 &m->jobs_in_progress_event_source,
131 CLOCK_MONOTONIC,
132 next, 0,
133 manager_dispatch_jobs_in_progress, m);
134 if (r < 0)
135 return;
136
137 (void) sd_event_source_set_description(m->jobs_in_progress_event_source, "manager-jobs-in-progress");
138 }
139
140 #define CYLON_BUFFER_EXTRA (2*STRLEN(ANSI_RED) + STRLEN(ANSI_HIGHLIGHT_RED) + 2*STRLEN(ANSI_NORMAL))
141
142 static void draw_cylon(char buffer[], size_t buflen, unsigned width, unsigned pos) {
143 char *p = buffer;
144
145 assert(buflen >= CYLON_BUFFER_EXTRA + width + 1);
146 assert(pos <= width+1); /* 0 or width+1 mean that the center light is behind the corner */
147
148 if (pos > 1) {
149 if (pos > 2)
150 p = mempset(p, ' ', pos-2);
151 if (log_get_show_color())
152 p = stpcpy(p, ANSI_RED);
153 *p++ = '*';
154 }
155
156 if (pos > 0 && pos <= width) {
157 if (log_get_show_color())
158 p = stpcpy(p, ANSI_HIGHLIGHT_RED);
159 *p++ = '*';
160 }
161
162 if (log_get_show_color())
163 p = stpcpy(p, ANSI_NORMAL);
164
165 if (pos < width) {
166 if (log_get_show_color())
167 p = stpcpy(p, ANSI_RED);
168 *p++ = '*';
169 if (pos < width-1)
170 p = mempset(p, ' ', width-1-pos);
171 if (log_get_show_color())
172 strcpy(p, ANSI_NORMAL);
173 }
174 }
175
176 void manager_flip_auto_status(Manager *m, bool enable) {
177 assert(m);
178
179 if (enable) {
180 if (m->show_status == SHOW_STATUS_AUTO)
181 manager_set_show_status(m, SHOW_STATUS_TEMPORARY);
182 } else {
183 if (m->show_status == SHOW_STATUS_TEMPORARY)
184 manager_set_show_status(m, SHOW_STATUS_AUTO);
185 }
186 }
187
188 static void manager_print_jobs_in_progress(Manager *m) {
189 _cleanup_free_ char *job_of_n = NULL;
190 Iterator i;
191 Job *j;
192 unsigned counter = 0, print_nr;
193 char cylon[6 + CYLON_BUFFER_EXTRA + 1];
194 unsigned cylon_pos;
195 char time[FORMAT_TIMESPAN_MAX], limit[FORMAT_TIMESPAN_MAX] = "no limit";
196 uint64_t x;
197
198 assert(m);
199 assert(m->n_running_jobs > 0);
200
201 manager_flip_auto_status(m, true);
202
203 print_nr = (m->jobs_in_progress_iteration / JOBS_IN_PROGRESS_PERIOD_DIVISOR) % m->n_running_jobs;
204
205 HASHMAP_FOREACH(j, m->jobs, i)
206 if (j->state == JOB_RUNNING && counter++ == print_nr)
207 break;
208
209 /* m->n_running_jobs must be consistent with the contents of m->jobs,
210 * so the above loop must have succeeded in finding j. */
211 assert(counter == print_nr + 1);
212 assert(j);
213
214 cylon_pos = m->jobs_in_progress_iteration % 14;
215 if (cylon_pos >= 8)
216 cylon_pos = 14 - cylon_pos;
217 draw_cylon(cylon, sizeof(cylon), 6, cylon_pos);
218
219 m->jobs_in_progress_iteration++;
220
221 if (m->n_running_jobs > 1) {
222 if (asprintf(&job_of_n, "(%u of %u) ", counter, m->n_running_jobs) < 0)
223 job_of_n = NULL;
224 }
225
226 format_timespan(time, sizeof(time), now(CLOCK_MONOTONIC) - j->begin_usec, 1*USEC_PER_SEC);
227 if (job_get_timeout(j, &x) > 0)
228 format_timespan(limit, sizeof(limit), x - j->begin_usec, 1*USEC_PER_SEC);
229
230 manager_status_printf(m, STATUS_TYPE_EPHEMERAL, cylon,
231 "%sA %s job is running for %s (%s / %s)",
232 strempty(job_of_n),
233 job_type_to_string(j->type),
234 unit_status_string(j->unit),
235 time, limit);
236 }
237
238 static int have_ask_password(void) {
239 _cleanup_closedir_ DIR *dir;
240 struct dirent *de;
241
242 dir = opendir("/run/systemd/ask-password");
243 if (!dir) {
244 if (errno == ENOENT)
245 return false;
246 else
247 return -errno;
248 }
249
250 FOREACH_DIRENT_ALL(de, dir, return -errno) {
251 if (startswith(de->d_name, "ask."))
252 return true;
253 }
254 return false;
255 }
256
257 static int manager_dispatch_ask_password_fd(sd_event_source *source,
258 int fd, uint32_t revents, void *userdata) {
259 Manager *m = userdata;
260
261 assert(m);
262
263 (void) flush_fd(fd);
264
265 m->have_ask_password = have_ask_password();
266 if (m->have_ask_password < 0)
267 /* Log error but continue. Negative have_ask_password
268 * is treated as unknown status. */
269 log_error_errno(m->have_ask_password, "Failed to list /run/systemd/ask-password: %m");
270
271 return 0;
272 }
273
274 static void manager_close_ask_password(Manager *m) {
275 assert(m);
276
277 m->ask_password_event_source = sd_event_source_unref(m->ask_password_event_source);
278 m->ask_password_inotify_fd = safe_close(m->ask_password_inotify_fd);
279 m->have_ask_password = -EINVAL;
280 }
281
282 static int manager_check_ask_password(Manager *m) {
283 int r;
284
285 assert(m);
286
287 if (!m->ask_password_event_source) {
288 assert(m->ask_password_inotify_fd < 0);
289
290 (void) mkdir_p_label("/run/systemd/ask-password", 0755);
291
292 m->ask_password_inotify_fd = inotify_init1(IN_NONBLOCK|IN_CLOEXEC);
293 if (m->ask_password_inotify_fd < 0)
294 return log_error_errno(errno, "Failed to create inotify object: %m");
295
296 r = inotify_add_watch_and_warn(m->ask_password_inotify_fd,
297 "/run/systemd/ask-password",
298 IN_CREATE|IN_DELETE|IN_MOVE);
299 if (r < 0) {
300 manager_close_ask_password(m);
301 return r;
302 }
303
304 r = sd_event_add_io(m->event, &m->ask_password_event_source,
305 m->ask_password_inotify_fd, EPOLLIN,
306 manager_dispatch_ask_password_fd, m);
307 if (r < 0) {
308 log_error_errno(errno, "Failed to add event source for /run/systemd/ask-password: %m");
309 manager_close_ask_password(m);
310 return -errno;
311 }
312
313 (void) sd_event_source_set_description(m->ask_password_event_source, "manager-ask-password");
314
315 /* Queries might have been added meanwhile... */
316 manager_dispatch_ask_password_fd(m->ask_password_event_source,
317 m->ask_password_inotify_fd, EPOLLIN, m);
318 }
319
320 return m->have_ask_password;
321 }
322
323 static int manager_watch_idle_pipe(Manager *m) {
324 int r;
325
326 assert(m);
327
328 if (m->idle_pipe_event_source)
329 return 0;
330
331 if (m->idle_pipe[2] < 0)
332 return 0;
333
334 r = sd_event_add_io(m->event, &m->idle_pipe_event_source, m->idle_pipe[2], EPOLLIN, manager_dispatch_idle_pipe_fd, m);
335 if (r < 0)
336 return log_error_errno(r, "Failed to watch idle pipe: %m");
337
338 (void) sd_event_source_set_description(m->idle_pipe_event_source, "manager-idle-pipe");
339
340 return 0;
341 }
342
343 static void manager_close_idle_pipe(Manager *m) {
344 assert(m);
345
346 m->idle_pipe_event_source = sd_event_source_unref(m->idle_pipe_event_source);
347
348 safe_close_pair(m->idle_pipe);
349 safe_close_pair(m->idle_pipe + 2);
350 }
351
352 static int manager_setup_time_change(Manager *m) {
353 int r;
354
355 assert(m);
356
357 if (MANAGER_IS_TEST_RUN(m))
358 return 0;
359
360 m->time_change_event_source = sd_event_source_unref(m->time_change_event_source);
361 m->time_change_fd = safe_close(m->time_change_fd);
362
363 m->time_change_fd = time_change_fd();
364 if (m->time_change_fd < 0)
365 return log_error_errno(m->time_change_fd, "Failed to create timer change timer fd: %m");
366
367 r = sd_event_add_io(m->event, &m->time_change_event_source, m->time_change_fd, EPOLLIN, manager_dispatch_time_change_fd, m);
368 if (r < 0)
369 return log_error_errno(r, "Failed to create time change event source: %m");
370
371 /* Schedule this slightly earlier than the .timer event sources */
372 r = sd_event_source_set_priority(m->time_change_event_source, SD_EVENT_PRIORITY_NORMAL-1);
373 if (r < 0)
374 return log_error_errno(r, "Failed to set priority of time change event sources: %m");
375
376 (void) sd_event_source_set_description(m->time_change_event_source, "manager-time-change");
377
378 log_debug("Set up TFD_TIMER_CANCEL_ON_SET timerfd.");
379
380 return 0;
381 }
382
383 static int manager_read_timezone_stat(Manager *m) {
384 struct stat st;
385 bool changed;
386
387 assert(m);
388
389 /* Read the current stat() data of /etc/localtime so that we detect changes */
390 if (lstat("/etc/localtime", &st) < 0) {
391 log_debug_errno(errno, "Failed to stat /etc/localtime, ignoring: %m");
392 changed = m->etc_localtime_accessible;
393 m->etc_localtime_accessible = false;
394 } else {
395 usec_t k;
396
397 k = timespec_load(&st.st_mtim);
398 changed = !m->etc_localtime_accessible || k != m->etc_localtime_mtime;
399
400 m->etc_localtime_mtime = k;
401 m->etc_localtime_accessible = true;
402 }
403
404 return changed;
405 }
406
407 static int manager_setup_timezone_change(Manager *m) {
408 _cleanup_(sd_event_source_unrefp) sd_event_source *new_event = NULL;
409 int r;
410
411 assert(m);
412
413 if (MANAGER_IS_TEST_RUN(m))
414 return 0;
415
416 /* We watch /etc/localtime for three events: change of the link count (which might mean removal from /etc even
417 * though another link might be kept), renames, and file close operations after writing. Note we don't bother
418 * with IN_DELETE_SELF, as that would just report when the inode is removed entirely, i.e. after the link count
419 * went to zero and all fds to it are closed.
420 *
421 * Note that we never follow symlinks here. This is a simplification, but should cover almost all cases
422 * correctly.
423 *
424 * Note that we create the new event source first here, before releasing the old one. This should optimize
425 * behaviour as this way sd-event can reuse the old watch in case the inode didn't change. */
426
427 r = sd_event_add_inotify(m->event, &new_event, "/etc/localtime",
428 IN_ATTRIB|IN_MOVE_SELF|IN_CLOSE_WRITE|IN_DONT_FOLLOW, manager_dispatch_timezone_change, m);
429 if (r == -ENOENT) {
430 /* If the file doesn't exist yet, subscribe to /etc instead, and wait until it is created either by
431 * O_CREATE or by rename() */
432
433 log_debug_errno(r, "/etc/localtime doesn't exist yet, watching /etc instead.");
434 r = sd_event_add_inotify(m->event, &new_event, "/etc",
435 IN_CREATE|IN_MOVED_TO|IN_ONLYDIR, manager_dispatch_timezone_change, m);
436 }
437 if (r < 0)
438 return log_error_errno(r, "Failed to create timezone change event source: %m");
439
440 /* Schedule this slightly earlier than the .timer event sources */
441 r = sd_event_source_set_priority(new_event, SD_EVENT_PRIORITY_NORMAL-1);
442 if (r < 0)
443 return log_error_errno(r, "Failed to set priority of timezone change event sources: %m");
444
445 sd_event_source_unref(m->timezone_change_event_source);
446 m->timezone_change_event_source = TAKE_PTR(new_event);
447
448 return 0;
449 }
450
451 static int enable_special_signals(Manager *m) {
452 _cleanup_close_ int fd = -1;
453
454 assert(m);
455
456 if (MANAGER_IS_TEST_RUN(m))
457 return 0;
458
459 /* Enable that we get SIGINT on control-alt-del. In containers
460 * this will fail with EPERM (older) or EINVAL (newer), so
461 * ignore that. */
462 if (reboot(RB_DISABLE_CAD) < 0 && !IN_SET(errno, EPERM, EINVAL))
463 log_warning_errno(errno, "Failed to enable ctrl-alt-del handling: %m");
464
465 fd = open_terminal("/dev/tty0", O_RDWR|O_NOCTTY|O_CLOEXEC);
466 if (fd < 0) {
467 /* Support systems without virtual console */
468 if (fd != -ENOENT)
469 log_warning_errno(errno, "Failed to open /dev/tty0: %m");
470 } else {
471 /* Enable that we get SIGWINCH on kbrequest */
472 if (ioctl(fd, KDSIGACCEPT, SIGWINCH) < 0)
473 log_warning_errno(errno, "Failed to enable kbrequest handling: %m");
474 }
475
476 return 0;
477 }
478
479 #define RTSIG_IF_AVAILABLE(signum) (signum <= SIGRTMAX ? signum : -1)
480
481 static int manager_setup_signals(Manager *m) {
482 struct sigaction sa = {
483 .sa_handler = SIG_DFL,
484 .sa_flags = SA_NOCLDSTOP|SA_RESTART,
485 };
486 sigset_t mask;
487 int r;
488
489 assert(m);
490
491 assert_se(sigaction(SIGCHLD, &sa, NULL) == 0);
492
493 /* We make liberal use of realtime signals here. On
494 * Linux/glibc we have 30 of them (with the exception of Linux
495 * on hppa, see below), between SIGRTMIN+0 ... SIGRTMIN+30
496 * (aka SIGRTMAX). */
497
498 assert_se(sigemptyset(&mask) == 0);
499 sigset_add_many(&mask,
500 SIGCHLD, /* Child died */
501 SIGTERM, /* Reexecute daemon */
502 SIGHUP, /* Reload configuration */
503 SIGUSR1, /* systemd/upstart: reconnect to D-Bus */
504 SIGUSR2, /* systemd: dump status */
505 SIGINT, /* Kernel sends us this on control-alt-del */
506 SIGWINCH, /* Kernel sends us this on kbrequest (alt-arrowup) */
507 SIGPWR, /* Some kernel drivers and upsd send us this on power failure */
508
509 SIGRTMIN+0, /* systemd: start default.target */
510 SIGRTMIN+1, /* systemd: isolate rescue.target */
511 SIGRTMIN+2, /* systemd: isolate emergency.target */
512 SIGRTMIN+3, /* systemd: start halt.target */
513 SIGRTMIN+4, /* systemd: start poweroff.target */
514 SIGRTMIN+5, /* systemd: start reboot.target */
515 SIGRTMIN+6, /* systemd: start kexec.target */
516
517 /* ... space for more special targets ... */
518
519 SIGRTMIN+13, /* systemd: Immediate halt */
520 SIGRTMIN+14, /* systemd: Immediate poweroff */
521 SIGRTMIN+15, /* systemd: Immediate reboot */
522 SIGRTMIN+16, /* systemd: Immediate kexec */
523
524 /* ... space for more immediate system state changes ... */
525
526 SIGRTMIN+20, /* systemd: enable status messages */
527 SIGRTMIN+21, /* systemd: disable status messages */
528 SIGRTMIN+22, /* systemd: set log level to LOG_DEBUG */
529 SIGRTMIN+23, /* systemd: set log level to LOG_INFO */
530 SIGRTMIN+24, /* systemd: Immediate exit (--user only) */
531
532 /* .. one free signal here ... */
533
534 /* Apparently Linux on hppa had fewer RT signals until v3.18,
535 * SIGRTMAX was SIGRTMIN+25, and then SIGRTMIN was lowered,
536 * see commit v3.17-7614-g1f25df2eff.
537 *
538 * We cannot unconditionally make use of those signals here,
539 * so let's use a runtime check. Since these commands are
540 * accessible by different means and only really a safety
541 * net, the missing functionality on hppa shouldn't matter.
542 */
543
544 RTSIG_IF_AVAILABLE(SIGRTMIN+26), /* systemd: set log target to journal-or-kmsg */
545 RTSIG_IF_AVAILABLE(SIGRTMIN+27), /* systemd: set log target to console */
546 RTSIG_IF_AVAILABLE(SIGRTMIN+28), /* systemd: set log target to kmsg */
547 RTSIG_IF_AVAILABLE(SIGRTMIN+29), /* systemd: set log target to syslog-or-kmsg (obsolete) */
548
549 /* ... one free signal here SIGRTMIN+30 ... */
550 -1);
551 assert_se(sigprocmask(SIG_SETMASK, &mask, NULL) == 0);
552
553 m->signal_fd = signalfd(-1, &mask, SFD_NONBLOCK|SFD_CLOEXEC);
554 if (m->signal_fd < 0)
555 return -errno;
556
557 r = sd_event_add_io(m->event, &m->signal_event_source, m->signal_fd, EPOLLIN, manager_dispatch_signal_fd, m);
558 if (r < 0)
559 return r;
560
561 (void) sd_event_source_set_description(m->signal_event_source, "manager-signal");
562
563 /* Process signals a bit earlier than the rest of things, but later than notify_fd processing, so that the
564 * notify processing can still figure out to which process/service a message belongs, before we reap the
565 * process. Also, process this before handling cgroup notifications, so that we always collect child exit
566 * status information before detecting that there's no process in a cgroup. */
567 r = sd_event_source_set_priority(m->signal_event_source, SD_EVENT_PRIORITY_NORMAL-6);
568 if (r < 0)
569 return r;
570
571 if (MANAGER_IS_SYSTEM(m))
572 return enable_special_signals(m);
573
574 return 0;
575 }
576
577 static char** sanitize_environment(char **l) {
578
579 /* Let's remove some environment variables that we need ourselves to communicate with our clients */
580 strv_env_unset_many(
581 l,
582 "EXIT_CODE",
583 "EXIT_STATUS",
584 "INVOCATION_ID",
585 "JOURNAL_STREAM",
586 "LISTEN_FDNAMES",
587 "LISTEN_FDS",
588 "LISTEN_PID",
589 "MAINPID",
590 "MANAGERPID",
591 "NOTIFY_SOCKET",
592 "PIDFILE",
593 "REMOTE_ADDR",
594 "REMOTE_PORT",
595 "SERVICE_RESULT",
596 "WATCHDOG_PID",
597 "WATCHDOG_USEC",
598 NULL);
599
600 /* Let's order the environment alphabetically, just to make it pretty */
601 strv_sort(l);
602
603 return l;
604 }
605
606 int manager_default_environment(Manager *m) {
607 int r;
608
609 assert(m);
610
611 m->transient_environment = strv_free(m->transient_environment);
612
613 if (MANAGER_IS_SYSTEM(m)) {
614 /* The system manager always starts with a clean
615 * environment for its children. It does not import
616 * the kernel's or the parents' exported variables.
617 *
618 * The initial passed environment is untouched to keep
619 * /proc/self/environ valid; it is used for tagging
620 * the init process inside containers. */
621 m->transient_environment = strv_new("PATH=" DEFAULT_PATH);
622 if (!m->transient_environment)
623 return log_oom();
624
625 /* Import locale variables LC_*= from configuration */
626 (void) locale_setup(&m->transient_environment);
627 } else {
628 _cleanup_free_ char *k = NULL;
629
630 /* The user manager passes its own environment
631 * along to its children, except for $PATH. */
632 m->transient_environment = strv_copy(environ);
633 if (!m->transient_environment)
634 return log_oom();
635
636 k = strdup("PATH=" DEFAULT_USER_PATH);
637 if (!k)
638 return log_oom();
639
640 r = strv_env_replace(&m->transient_environment, k);
641 if (r < 0)
642 return log_oom();
643 TAKE_PTR(k);
644 }
645
646 sanitize_environment(m->transient_environment);
647
648 return 0;
649 }
650
651 static int manager_setup_prefix(Manager *m) {
652 struct table_entry {
653 uint64_t type;
654 const char *suffix;
655 };
656
657 static const struct table_entry paths_system[_EXEC_DIRECTORY_TYPE_MAX] = {
658 [EXEC_DIRECTORY_RUNTIME] = { SD_PATH_SYSTEM_RUNTIME, NULL },
659 [EXEC_DIRECTORY_STATE] = { SD_PATH_SYSTEM_STATE_PRIVATE, NULL },
660 [EXEC_DIRECTORY_CACHE] = { SD_PATH_SYSTEM_STATE_CACHE, NULL },
661 [EXEC_DIRECTORY_LOGS] = { SD_PATH_SYSTEM_STATE_LOGS, NULL },
662 [EXEC_DIRECTORY_CONFIGURATION] = { SD_PATH_SYSTEM_CONFIGURATION, NULL },
663 };
664
665 static const struct table_entry paths_user[_EXEC_DIRECTORY_TYPE_MAX] = {
666 [EXEC_DIRECTORY_RUNTIME] = { SD_PATH_USER_RUNTIME, NULL },
667 [EXEC_DIRECTORY_STATE] = { SD_PATH_USER_CONFIGURATION, NULL },
668 [EXEC_DIRECTORY_CACHE] = { SD_PATH_USER_STATE_CACHE, NULL },
669 [EXEC_DIRECTORY_LOGS] = { SD_PATH_USER_CONFIGURATION, "log" },
670 [EXEC_DIRECTORY_CONFIGURATION] = { SD_PATH_USER_CONFIGURATION, NULL },
671 };
672
673 const struct table_entry *p;
674 ExecDirectoryType i;
675 int r;
676
677 assert(m);
678
679 if (MANAGER_IS_SYSTEM(m))
680 p = paths_system;
681 else
682 p = paths_user;
683
684 for (i = 0; i < _EXEC_DIRECTORY_TYPE_MAX; i++) {
685 r = sd_path_home(p[i].type, p[i].suffix, &m->prefix[i]);
686 if (r < 0)
687 return r;
688 }
689
690 return 0;
691 }
692
693 static void manager_free_unit_name_maps(Manager *m) {
694 m->unit_id_map = hashmap_free(m->unit_id_map);
695 m->unit_name_map = hashmap_free(m->unit_name_map);
696 m->unit_path_cache = set_free_free(m->unit_path_cache);
697 m->unit_cache_mtime = 0;
698 }
699
700 static int manager_setup_run_queue(Manager *m) {
701 int r;
702
703 assert(m);
704 assert(!m->run_queue_event_source);
705
706 r = sd_event_add_defer(m->event, &m->run_queue_event_source, manager_dispatch_run_queue, m);
707 if (r < 0)
708 return r;
709
710 r = sd_event_source_set_priority(m->run_queue_event_source, SD_EVENT_PRIORITY_IDLE);
711 if (r < 0)
712 return r;
713
714 r = sd_event_source_set_enabled(m->run_queue_event_source, SD_EVENT_OFF);
715 if (r < 0)
716 return r;
717
718 (void) sd_event_source_set_description(m->run_queue_event_source, "manager-run-queue");
719
720 return 0;
721 }
722
723 static int manager_setup_sigchld_event_source(Manager *m) {
724 int r;
725
726 assert(m);
727 assert(!m->sigchld_event_source);
728
729 r = sd_event_add_defer(m->event, &m->sigchld_event_source, manager_dispatch_sigchld, m);
730 if (r < 0)
731 return r;
732
733 r = sd_event_source_set_priority(m->sigchld_event_source, SD_EVENT_PRIORITY_NORMAL-7);
734 if (r < 0)
735 return r;
736
737 r = sd_event_source_set_enabled(m->sigchld_event_source, SD_EVENT_OFF);
738 if (r < 0)
739 return r;
740
741 (void) sd_event_source_set_description(m->sigchld_event_source, "manager-sigchld");
742
743 return 0;
744 }
745
746 int manager_new(UnitFileScope scope, ManagerTestRunFlags test_run_flags, Manager **_m) {
747 _cleanup_(manager_freep) Manager *m = NULL;
748 int r;
749
750 assert(_m);
751 assert(IN_SET(scope, UNIT_FILE_SYSTEM, UNIT_FILE_USER));
752
753 m = new(Manager, 1);
754 if (!m)
755 return -ENOMEM;
756
757 *m = (Manager) {
758 .unit_file_scope = scope,
759 .objective = _MANAGER_OBJECTIVE_INVALID,
760
761 .status_unit_format = STATUS_UNIT_FORMAT_DEFAULT,
762
763 .default_timer_accuracy_usec = USEC_PER_MINUTE,
764 .default_memory_accounting = MEMORY_ACCOUNTING_DEFAULT,
765 .default_tasks_accounting = true,
766 .default_tasks_max = TASKS_MAX_UNSET,
767 .default_timeout_start_usec = DEFAULT_TIMEOUT_USEC,
768 .default_timeout_stop_usec = DEFAULT_TIMEOUT_USEC,
769 .default_restart_usec = DEFAULT_RESTART_USEC,
770
771 .original_log_level = -1,
772 .original_log_target = _LOG_TARGET_INVALID,
773
774 .notify_fd = -1,
775 .cgroups_agent_fd = -1,
776 .signal_fd = -1,
777 .time_change_fd = -1,
778 .user_lookup_fds = { -1, -1 },
779 .private_listen_fd = -1,
780 .dev_autofs_fd = -1,
781 .cgroup_inotify_fd = -1,
782 .pin_cgroupfs_fd = -1,
783 .ask_password_inotify_fd = -1,
784 .idle_pipe = { -1, -1, -1, -1},
785
786 /* start as id #1, so that we can leave #0 around as "null-like" value */
787 .current_job_id = 1,
788
789 .have_ask_password = -EINVAL, /* we don't know */
790 .first_boot = -1,
791 .test_run_flags = test_run_flags,
792
793 .default_oom_policy = OOM_STOP,
794 };
795
796 #if ENABLE_EFI
797 if (MANAGER_IS_SYSTEM(m) && detect_container() <= 0)
798 boot_timestamps(m->timestamps + MANAGER_TIMESTAMP_USERSPACE,
799 m->timestamps + MANAGER_TIMESTAMP_FIRMWARE,
800 m->timestamps + MANAGER_TIMESTAMP_LOADER);
801 #endif
802
803 /* Prepare log fields we can use for structured logging */
804 if (MANAGER_IS_SYSTEM(m)) {
805 m->unit_log_field = "UNIT=";
806 m->unit_log_format_string = "UNIT=%s";
807
808 m->invocation_log_field = "INVOCATION_ID=";
809 m->invocation_log_format_string = "INVOCATION_ID=%s";
810 } else {
811 m->unit_log_field = "USER_UNIT=";
812 m->unit_log_format_string = "USER_UNIT=%s";
813
814 m->invocation_log_field = "USER_INVOCATION_ID=";
815 m->invocation_log_format_string = "USER_INVOCATION_ID=%s";
816 }
817
818 /* Reboot immediately if the user hits C-A-D more often than 7x per 2s */
819 m->ctrl_alt_del_ratelimit = (RateLimit) { .interval = 2 * USEC_PER_SEC, .burst = 7 };
820
821 r = manager_default_environment(m);
822 if (r < 0)
823 return r;
824
825 r = hashmap_ensure_allocated(&m->units, &string_hash_ops);
826 if (r < 0)
827 return r;
828
829 r = hashmap_ensure_allocated(&m->jobs, NULL);
830 if (r < 0)
831 return r;
832
833 r = hashmap_ensure_allocated(&m->cgroup_unit, &path_hash_ops);
834 if (r < 0)
835 return r;
836
837 r = hashmap_ensure_allocated(&m->watch_bus, &string_hash_ops);
838 if (r < 0)
839 return r;
840
841 r = prioq_ensure_allocated(&m->run_queue, compare_job_priority);
842 if (r < 0)
843 return r;
844
845 r = manager_setup_prefix(m);
846 if (r < 0)
847 return r;
848
849 r = sd_event_default(&m->event);
850 if (r < 0)
851 return r;
852
853 r = manager_setup_run_queue(m);
854 if (r < 0)
855 return r;
856
857 if (test_run_flags == MANAGER_TEST_RUN_MINIMAL) {
858 m->cgroup_root = strdup("");
859 if (!m->cgroup_root)
860 return -ENOMEM;
861 } else {
862 r = manager_setup_signals(m);
863 if (r < 0)
864 return r;
865
866 r = manager_setup_cgroup(m);
867 if (r < 0)
868 return r;
869
870 r = manager_setup_time_change(m);
871 if (r < 0)
872 return r;
873
874 r = manager_read_timezone_stat(m);
875 if (r < 0)
876 return r;
877
878 (void) manager_setup_timezone_change(m);
879
880 r = manager_setup_sigchld_event_source(m);
881 if (r < 0)
882 return r;
883 }
884
885 if (test_run_flags == 0) {
886 if (MANAGER_IS_SYSTEM(m))
887 r = mkdir_label("/run/systemd/units", 0755);
888 else {
889 _cleanup_free_ char *units_path = NULL;
890 r = xdg_user_runtime_dir(&units_path, "/systemd/units");
891 if (r < 0)
892 return r;
893 r = mkdir_p_label(units_path, 0755);
894 }
895
896 if (r < 0 && r != -EEXIST)
897 return r;
898 }
899
900 m->taint_usr =
901 !in_initrd() &&
902 dir_is_empty("/usr") > 0;
903
904 /* Note that we do not set up the notify fd here. We do that after deserialization,
905 * since they might have gotten serialized across the reexec. */
906
907 *_m = TAKE_PTR(m);
908
909 return 0;
910 }
911
912 static int manager_setup_notify(Manager *m) {
913 int r;
914
915 if (MANAGER_IS_TEST_RUN(m))
916 return 0;
917
918 if (m->notify_fd < 0) {
919 _cleanup_close_ int fd = -1;
920 union sockaddr_union sa;
921 socklen_t sa_len;
922
923 /* First free all secondary fields */
924 m->notify_socket = mfree(m->notify_socket);
925 m->notify_event_source = sd_event_source_unref(m->notify_event_source);
926
927 fd = socket(AF_UNIX, SOCK_DGRAM|SOCK_CLOEXEC|SOCK_NONBLOCK, 0);
928 if (fd < 0)
929 return log_error_errno(errno, "Failed to allocate notification socket: %m");
930
931 fd_inc_rcvbuf(fd, NOTIFY_RCVBUF_SIZE);
932
933 m->notify_socket = path_join(m->prefix[EXEC_DIRECTORY_RUNTIME], "systemd/notify");
934 if (!m->notify_socket)
935 return log_oom();
936
937 r = sockaddr_un_set_path(&sa.un, m->notify_socket);
938 if (r < 0)
939 return log_error_errno(r, "Notify socket '%s' not valid for AF_UNIX socket address, refusing.",
940 m->notify_socket);
941 sa_len = r;
942
943 (void) mkdir_parents_label(m->notify_socket, 0755);
944 (void) sockaddr_un_unlink(&sa.un);
945
946 r = bind(fd, &sa.sa, sa_len);
947 if (r < 0)
948 return log_error_errno(errno, "bind(%s) failed: %m", m->notify_socket);
949
950 r = setsockopt_int(fd, SOL_SOCKET, SO_PASSCRED, true);
951 if (r < 0)
952 return log_error_errno(r, "SO_PASSCRED failed: %m");
953
954 m->notify_fd = TAKE_FD(fd);
955
956 log_debug("Using notification socket %s", m->notify_socket);
957 }
958
959 if (!m->notify_event_source) {
960 r = sd_event_add_io(m->event, &m->notify_event_source, m->notify_fd, EPOLLIN, manager_dispatch_notify_fd, m);
961 if (r < 0)
962 return log_error_errno(r, "Failed to allocate notify event source: %m");
963
964 /* Process notification messages a bit earlier than SIGCHLD, so that we can still identify to which
965 * service an exit message belongs. */
966 r = sd_event_source_set_priority(m->notify_event_source, SD_EVENT_PRIORITY_NORMAL-8);
967 if (r < 0)
968 return log_error_errno(r, "Failed to set priority of notify event source: %m");
969
970 (void) sd_event_source_set_description(m->notify_event_source, "manager-notify");
971 }
972
973 return 0;
974 }
975
976 static int manager_setup_cgroups_agent(Manager *m) {
977
978 static const union sockaddr_union sa = {
979 .un.sun_family = AF_UNIX,
980 .un.sun_path = "/run/systemd/cgroups-agent",
981 };
982 int r;
983
984 /* This creates a listening socket we receive cgroups agent messages on. We do not use D-Bus for delivering
985 * these messages from the cgroups agent binary to PID 1, as the cgroups agent binary is very short-living, and
986 * each instance of it needs a new D-Bus connection. Since D-Bus connections are SOCK_STREAM/AF_UNIX, on
987 * overloaded systems the backlog of the D-Bus socket becomes relevant, as not more than the configured number
988 * of D-Bus connections may be queued until the kernel will start dropping further incoming connections,
989 * possibly resulting in lost cgroups agent messages. To avoid this, we'll use a private SOCK_DGRAM/AF_UNIX
990 * socket, where no backlog is relevant as communication may take place without an actual connect() cycle, and
991 * we thus won't lose messages.
992 *
993 * Note that PID 1 will forward the agent message to system bus, so that the user systemd instance may listen
994 * to it. The system instance hence listens on this special socket, but the user instances listen on the system
995 * bus for these messages. */
996
997 if (MANAGER_IS_TEST_RUN(m))
998 return 0;
999
1000 if (!MANAGER_IS_SYSTEM(m))
1001 return 0;
1002
1003 r = cg_unified_controller(SYSTEMD_CGROUP_CONTROLLER);
1004 if (r < 0)
1005 return log_error_errno(r, "Failed to determine whether unified cgroups hierarchy is used: %m");
1006 if (r > 0) /* We don't need this anymore on the unified hierarchy */
1007 return 0;
1008
1009 if (m->cgroups_agent_fd < 0) {
1010 _cleanup_close_ int fd = -1;
1011
1012 /* First free all secondary fields */
1013 m->cgroups_agent_event_source = sd_event_source_unref(m->cgroups_agent_event_source);
1014
1015 fd = socket(AF_UNIX, SOCK_DGRAM|SOCK_CLOEXEC|SOCK_NONBLOCK, 0);
1016 if (fd < 0)
1017 return log_error_errno(errno, "Failed to allocate cgroups agent socket: %m");
1018
1019 fd_inc_rcvbuf(fd, CGROUPS_AGENT_RCVBUF_SIZE);
1020
1021 (void) sockaddr_un_unlink(&sa.un);
1022
1023 /* Only allow root to connect to this socket */
1024 RUN_WITH_UMASK(0077)
1025 r = bind(fd, &sa.sa, SOCKADDR_UN_LEN(sa.un));
1026 if (r < 0)
1027 return log_error_errno(errno, "bind(%s) failed: %m", sa.un.sun_path);
1028
1029 m->cgroups_agent_fd = TAKE_FD(fd);
1030 }
1031
1032 if (!m->cgroups_agent_event_source) {
1033 r = sd_event_add_io(m->event, &m->cgroups_agent_event_source, m->cgroups_agent_fd, EPOLLIN, manager_dispatch_cgroups_agent_fd, m);
1034 if (r < 0)
1035 return log_error_errno(r, "Failed to allocate cgroups agent event source: %m");
1036
1037 /* Process cgroups notifications early. Note that when the agent notification is received
1038 * we'll just enqueue the unit in the cgroup empty queue, hence pick a high priority than
1039 * that. Also see handling of cgroup inotify for the unified cgroup stuff. */
1040 r = sd_event_source_set_priority(m->cgroups_agent_event_source, SD_EVENT_PRIORITY_NORMAL-9);
1041 if (r < 0)
1042 return log_error_errno(r, "Failed to set priority of cgroups agent event source: %m");
1043
1044 (void) sd_event_source_set_description(m->cgroups_agent_event_source, "manager-cgroups-agent");
1045 }
1046
1047 return 0;
1048 }
1049
1050 static int manager_setup_user_lookup_fd(Manager *m) {
1051 int r;
1052
1053 assert(m);
1054
1055 /* Set up the socket pair used for passing UID/GID resolution results from forked off processes to PID
1056 * 1. Background: we can't do name lookups (NSS) from PID 1, since it might involve IPC and thus activation,
1057 * and we might hence deadlock on ourselves. Hence we do all user/group lookups asynchronously from the forked
1058 * off processes right before executing the binaries to start. In order to be able to clean up any IPC objects
1059 * created by a unit (see RemoveIPC=) we need to know in PID 1 the used UID/GID of the executed processes,
1060 * hence we establish this communication channel so that forked off processes can pass their UID/GID
1061 * information back to PID 1. The forked off processes send their resolved UID/GID to PID 1 in a simple
1062 * datagram, along with their unit name, so that we can share one communication socket pair among all units for
1063 * this purpose.
1064 *
1065 * You might wonder why we need a communication channel for this that is independent of the usual notification
1066 * socket scheme (i.e. $NOTIFY_SOCKET). The primary difference is about trust: data sent via the $NOTIFY_SOCKET
1067 * channel is only accepted if it originates from the right unit and if reception was enabled for it. The user
1068 * lookup socket OTOH is only accessible by PID 1 and its children until they exec(), and always available.
1069 *
1070 * Note that this function is called under two circumstances: when we first initialize (in which case we
1071 * allocate both the socket pair and the event source to listen on it), and when we deserialize after a reload
1072 * (in which case the socket pair already exists but we still need to allocate the event source for it). */
1073
1074 if (m->user_lookup_fds[0] < 0) {
1075
1076 /* Free all secondary fields */
1077 safe_close_pair(m->user_lookup_fds);
1078 m->user_lookup_event_source = sd_event_source_unref(m->user_lookup_event_source);
1079
1080 if (socketpair(AF_UNIX, SOCK_DGRAM|SOCK_CLOEXEC, 0, m->user_lookup_fds) < 0)
1081 return log_error_errno(errno, "Failed to allocate user lookup socket: %m");
1082
1083 (void) fd_inc_rcvbuf(m->user_lookup_fds[0], NOTIFY_RCVBUF_SIZE);
1084 }
1085
1086 if (!m->user_lookup_event_source) {
1087 r = sd_event_add_io(m->event, &m->user_lookup_event_source, m->user_lookup_fds[0], EPOLLIN, manager_dispatch_user_lookup_fd, m);
1088 if (r < 0)
1089 return log_error_errno(errno, "Failed to allocate user lookup event source: %m");
1090
1091 /* Process even earlier than the notify event source, so that we always know first about valid UID/GID
1092 * resolutions */
1093 r = sd_event_source_set_priority(m->user_lookup_event_source, SD_EVENT_PRIORITY_NORMAL-11);
1094 if (r < 0)
1095 return log_error_errno(errno, "Failed to set priority of user lookup event source: %m");
1096
1097 (void) sd_event_source_set_description(m->user_lookup_event_source, "user-lookup");
1098 }
1099
1100 return 0;
1101 }
1102
1103 static unsigned manager_dispatch_cleanup_queue(Manager *m) {
1104 Unit *u;
1105 unsigned n = 0;
1106
1107 assert(m);
1108
1109 while ((u = m->cleanup_queue)) {
1110 assert(u->in_cleanup_queue);
1111
1112 unit_free(u);
1113 n++;
1114 }
1115
1116 return n;
1117 }
1118
1119 enum {
1120 GC_OFFSET_IN_PATH, /* This one is on the path we were traveling */
1121 GC_OFFSET_UNSURE, /* No clue */
1122 GC_OFFSET_GOOD, /* We still need this unit */
1123 GC_OFFSET_BAD, /* We don't need this unit anymore */
1124 _GC_OFFSET_MAX
1125 };
1126
1127 static void unit_gc_mark_good(Unit *u, unsigned gc_marker) {
1128 Unit *other;
1129 Iterator i;
1130 void *v;
1131
1132 u->gc_marker = gc_marker + GC_OFFSET_GOOD;
1133
1134 /* Recursively mark referenced units as GOOD as well */
1135 HASHMAP_FOREACH_KEY(v, other, u->dependencies[UNIT_REFERENCES], i)
1136 if (other->gc_marker == gc_marker + GC_OFFSET_UNSURE)
1137 unit_gc_mark_good(other, gc_marker);
1138 }
1139
1140 static void unit_gc_sweep(Unit *u, unsigned gc_marker) {
1141 Unit *other;
1142 bool is_bad;
1143 Iterator i;
1144 void *v;
1145
1146 assert(u);
1147
1148 if (IN_SET(u->gc_marker - gc_marker,
1149 GC_OFFSET_GOOD, GC_OFFSET_BAD, GC_OFFSET_UNSURE, GC_OFFSET_IN_PATH))
1150 return;
1151
1152 if (u->in_cleanup_queue)
1153 goto bad;
1154
1155 if (!unit_may_gc(u))
1156 goto good;
1157
1158 u->gc_marker = gc_marker + GC_OFFSET_IN_PATH;
1159
1160 is_bad = true;
1161
1162 HASHMAP_FOREACH_KEY(v, other, u->dependencies[UNIT_REFERENCED_BY], i) {
1163 unit_gc_sweep(other, gc_marker);
1164
1165 if (other->gc_marker == gc_marker + GC_OFFSET_GOOD)
1166 goto good;
1167
1168 if (other->gc_marker != gc_marker + GC_OFFSET_BAD)
1169 is_bad = false;
1170 }
1171
1172 if (u->refs_by_target) {
1173 const UnitRef *ref;
1174
1175 LIST_FOREACH(refs_by_target, ref, u->refs_by_target) {
1176 unit_gc_sweep(ref->source, gc_marker);
1177
1178 if (ref->source->gc_marker == gc_marker + GC_OFFSET_GOOD)
1179 goto good;
1180
1181 if (ref->source->gc_marker != gc_marker + GC_OFFSET_BAD)
1182 is_bad = false;
1183 }
1184 }
1185
1186 if (is_bad)
1187 goto bad;
1188
1189 /* We were unable to find anything out about this entry, so
1190 * let's investigate it later */
1191 u->gc_marker = gc_marker + GC_OFFSET_UNSURE;
1192 unit_add_to_gc_queue(u);
1193 return;
1194
1195 bad:
1196 /* We definitely know that this one is not useful anymore, so
1197 * let's mark it for deletion */
1198 u->gc_marker = gc_marker + GC_OFFSET_BAD;
1199 unit_add_to_cleanup_queue(u);
1200 return;
1201
1202 good:
1203 unit_gc_mark_good(u, gc_marker);
1204 }
1205
1206 static unsigned manager_dispatch_gc_unit_queue(Manager *m) {
1207 unsigned n = 0, gc_marker;
1208 Unit *u;
1209
1210 assert(m);
1211
1212 /* log_debug("Running GC..."); */
1213
1214 m->gc_marker += _GC_OFFSET_MAX;
1215 if (m->gc_marker + _GC_OFFSET_MAX <= _GC_OFFSET_MAX)
1216 m->gc_marker = 1;
1217
1218 gc_marker = m->gc_marker;
1219
1220 while ((u = m->gc_unit_queue)) {
1221 assert(u->in_gc_queue);
1222
1223 unit_gc_sweep(u, gc_marker);
1224
1225 LIST_REMOVE(gc_queue, m->gc_unit_queue, u);
1226 u->in_gc_queue = false;
1227
1228 n++;
1229
1230 if (IN_SET(u->gc_marker - gc_marker,
1231 GC_OFFSET_BAD, GC_OFFSET_UNSURE)) {
1232 if (u->id)
1233 log_unit_debug(u, "Collecting.");
1234 u->gc_marker = gc_marker + GC_OFFSET_BAD;
1235 unit_add_to_cleanup_queue(u);
1236 }
1237 }
1238
1239 return n;
1240 }
1241
1242 static unsigned manager_dispatch_gc_job_queue(Manager *m) {
1243 unsigned n = 0;
1244 Job *j;
1245
1246 assert(m);
1247
1248 while ((j = m->gc_job_queue)) {
1249 assert(j->in_gc_queue);
1250
1251 LIST_REMOVE(gc_queue, m->gc_job_queue, j);
1252 j->in_gc_queue = false;
1253
1254 n++;
1255
1256 if (!job_may_gc(j))
1257 continue;
1258
1259 log_unit_debug(j->unit, "Collecting job.");
1260 (void) job_finish_and_invalidate(j, JOB_COLLECTED, false, false);
1261 }
1262
1263 return n;
1264 }
1265
1266 static unsigned manager_dispatch_stop_when_unneeded_queue(Manager *m) {
1267 unsigned n = 0;
1268 Unit *u;
1269 int r;
1270
1271 assert(m);
1272
1273 while ((u = m->stop_when_unneeded_queue)) {
1274 _cleanup_(sd_bus_error_free) sd_bus_error error = SD_BUS_ERROR_NULL;
1275 assert(m->stop_when_unneeded_queue);
1276
1277 assert(u->in_stop_when_unneeded_queue);
1278 LIST_REMOVE(stop_when_unneeded_queue, m->stop_when_unneeded_queue, u);
1279 u->in_stop_when_unneeded_queue = false;
1280
1281 n++;
1282
1283 if (!unit_is_unneeded(u))
1284 continue;
1285
1286 log_unit_debug(u, "Unit is not needed anymore.");
1287
1288 /* If stopping a unit fails continuously we might enter a stop loop here, hence stop acting on the
1289 * service being unnecessary after a while. */
1290
1291 if (!ratelimit_below(&u->auto_stop_ratelimit)) {
1292 log_unit_warning(u, "Unit not needed anymore, but not stopping since we tried this too often recently.");
1293 continue;
1294 }
1295
1296 /* Ok, nobody needs us anymore. Sniff. Then let's commit suicide */
1297 r = manager_add_job(u->manager, JOB_STOP, u, JOB_FAIL, NULL, &error, NULL);
1298 if (r < 0)
1299 log_unit_warning_errno(u, r, "Failed to enqueue stop job, ignoring: %s", bus_error_message(&error, r));
1300 }
1301
1302 return n;
1303 }
1304
1305 static void manager_clear_jobs_and_units(Manager *m) {
1306 Unit *u;
1307
1308 assert(m);
1309
1310 while ((u = hashmap_first(m->units)))
1311 unit_free(u);
1312
1313 manager_dispatch_cleanup_queue(m);
1314
1315 assert(!m->load_queue);
1316 assert(prioq_isempty(m->run_queue));
1317 assert(!m->dbus_unit_queue);
1318 assert(!m->dbus_job_queue);
1319 assert(!m->cleanup_queue);
1320 assert(!m->gc_unit_queue);
1321 assert(!m->gc_job_queue);
1322 assert(!m->stop_when_unneeded_queue);
1323
1324 assert(hashmap_isempty(m->jobs));
1325 assert(hashmap_isempty(m->units));
1326
1327 m->n_on_console = 0;
1328 m->n_running_jobs = 0;
1329 m->n_installed_jobs = 0;
1330 m->n_failed_jobs = 0;
1331 }
1332
1333 Manager* manager_free(Manager *m) {
1334 ExecDirectoryType dt;
1335 UnitType c;
1336
1337 if (!m)
1338 return NULL;
1339
1340 manager_clear_jobs_and_units(m);
1341
1342 for (c = 0; c < _UNIT_TYPE_MAX; c++)
1343 if (unit_vtable[c]->shutdown)
1344 unit_vtable[c]->shutdown(m);
1345
1346 /* Keep the cgroup hierarchy in place except when we know we are going down for good */
1347 manager_shutdown_cgroup(m, IN_SET(m->objective, MANAGER_EXIT, MANAGER_REBOOT, MANAGER_POWEROFF, MANAGER_HALT, MANAGER_KEXEC));
1348
1349 lookup_paths_flush_generator(&m->lookup_paths);
1350
1351 bus_done(m);
1352 manager_varlink_done(m);
1353
1354 exec_runtime_vacuum(m);
1355 hashmap_free(m->exec_runtime_by_id);
1356
1357 dynamic_user_vacuum(m, false);
1358 hashmap_free(m->dynamic_users);
1359
1360 hashmap_free(m->units);
1361 hashmap_free(m->units_by_invocation_id);
1362 hashmap_free(m->jobs);
1363 hashmap_free(m->watch_pids);
1364 hashmap_free(m->watch_bus);
1365
1366 prioq_free(m->run_queue);
1367
1368 set_free(m->startup_units);
1369 set_free(m->failed_units);
1370
1371 sd_event_source_unref(m->signal_event_source);
1372 sd_event_source_unref(m->sigchld_event_source);
1373 sd_event_source_unref(m->notify_event_source);
1374 sd_event_source_unref(m->cgroups_agent_event_source);
1375 sd_event_source_unref(m->time_change_event_source);
1376 sd_event_source_unref(m->timezone_change_event_source);
1377 sd_event_source_unref(m->jobs_in_progress_event_source);
1378 sd_event_source_unref(m->run_queue_event_source);
1379 sd_event_source_unref(m->user_lookup_event_source);
1380
1381 safe_close(m->signal_fd);
1382 safe_close(m->notify_fd);
1383 safe_close(m->cgroups_agent_fd);
1384 safe_close(m->time_change_fd);
1385 safe_close_pair(m->user_lookup_fds);
1386
1387 manager_close_ask_password(m);
1388
1389 manager_close_idle_pipe(m);
1390
1391 sd_event_unref(m->event);
1392
1393 free(m->notify_socket);
1394
1395 lookup_paths_free(&m->lookup_paths);
1396 strv_free(m->transient_environment);
1397 strv_free(m->client_environment);
1398
1399 hashmap_free(m->cgroup_unit);
1400 manager_free_unit_name_maps(m);
1401
1402 free(m->switch_root);
1403 free(m->switch_root_init);
1404
1405 rlimit_free_all(m->rlimit);
1406
1407 assert(hashmap_isempty(m->units_requiring_mounts_for));
1408 hashmap_free(m->units_requiring_mounts_for);
1409
1410 hashmap_free(m->uid_refs);
1411 hashmap_free(m->gid_refs);
1412
1413 for (dt = 0; dt < _EXEC_DIRECTORY_TYPE_MAX; dt++)
1414 m->prefix[dt] = mfree(m->prefix[dt]);
1415
1416 return mfree(m);
1417 }
1418
1419 static void manager_enumerate_perpetual(Manager *m) {
1420 UnitType c;
1421
1422 assert(m);
1423
1424 if (m->test_run_flags == MANAGER_TEST_RUN_MINIMAL)
1425 return;
1426
1427 /* Let's ask every type to load all units from disk/kernel that it might know */
1428 for (c = 0; c < _UNIT_TYPE_MAX; c++) {
1429 if (!unit_type_supported(c)) {
1430 log_debug("Unit type .%s is not supported on this system.", unit_type_to_string(c));
1431 continue;
1432 }
1433
1434 if (unit_vtable[c]->enumerate_perpetual)
1435 unit_vtable[c]->enumerate_perpetual(m);
1436 }
1437 }
1438
1439 static void manager_enumerate(Manager *m) {
1440 UnitType c;
1441
1442 assert(m);
1443
1444 if (m->test_run_flags == MANAGER_TEST_RUN_MINIMAL)
1445 return;
1446
1447 /* Let's ask every type to load all units from disk/kernel that it might know */
1448 for (c = 0; c < _UNIT_TYPE_MAX; c++) {
1449 if (!unit_type_supported(c)) {
1450 log_debug("Unit type .%s is not supported on this system.", unit_type_to_string(c));
1451 continue;
1452 }
1453
1454 if (unit_vtable[c]->enumerate)
1455 unit_vtable[c]->enumerate(m);
1456 }
1457
1458 manager_dispatch_load_queue(m);
1459 }
1460
1461 static void manager_coldplug(Manager *m) {
1462 Iterator i;
1463 Unit *u;
1464 char *k;
1465 int r;
1466
1467 assert(m);
1468
1469 log_debug("Invoking unit coldplug() handlers…");
1470
1471 /* Let's place the units back into their deserialized state */
1472 HASHMAP_FOREACH_KEY(u, k, m->units, i) {
1473
1474 /* ignore aliases */
1475 if (u->id != k)
1476 continue;
1477
1478 r = unit_coldplug(u);
1479 if (r < 0)
1480 log_warning_errno(r, "We couldn't coldplug %s, proceeding anyway: %m", u->id);
1481 }
1482 }
1483
1484 static void manager_catchup(Manager *m) {
1485 Iterator i;
1486 Unit *u;
1487 char *k;
1488
1489 assert(m);
1490
1491 log_debug("Invoking unit catchup() handlers…");
1492
1493 /* Let's catch up on any state changes that happened while we were reloading/reexecing */
1494 HASHMAP_FOREACH_KEY(u, k, m->units, i) {
1495
1496 /* ignore aliases */
1497 if (u->id != k)
1498 continue;
1499
1500 unit_catchup(u);
1501 }
1502 }
1503
1504 static void manager_distribute_fds(Manager *m, FDSet *fds) {
1505 Iterator i;
1506 Unit *u;
1507
1508 assert(m);
1509
1510 HASHMAP_FOREACH(u, m->units, i) {
1511
1512 if (fdset_size(fds) <= 0)
1513 break;
1514
1515 if (!UNIT_VTABLE(u)->distribute_fds)
1516 continue;
1517
1518 UNIT_VTABLE(u)->distribute_fds(u, fds);
1519 }
1520 }
1521
1522 static bool manager_dbus_is_running(Manager *m, bool deserialized) {
1523 Unit *u;
1524
1525 assert(m);
1526
1527 /* This checks whether the dbus instance we are supposed to expose our APIs on is up. We check both the socket
1528 * and the service unit. If the 'deserialized' parameter is true we'll check the deserialized state of the unit
1529 * rather than the current one. */
1530
1531 if (MANAGER_IS_TEST_RUN(m))
1532 return false;
1533
1534 u = manager_get_unit(m, SPECIAL_DBUS_SOCKET);
1535 if (!u)
1536 return false;
1537 if ((deserialized ? SOCKET(u)->deserialized_state : SOCKET(u)->state) != SOCKET_RUNNING)
1538 return false;
1539
1540 u = manager_get_unit(m, SPECIAL_DBUS_SERVICE);
1541 if (!u)
1542 return false;
1543 if (!IN_SET((deserialized ? SERVICE(u)->deserialized_state : SERVICE(u)->state), SERVICE_RUNNING, SERVICE_RELOAD))
1544 return false;
1545
1546 return true;
1547 }
1548
1549 static void manager_setup_bus(Manager *m) {
1550 assert(m);
1551
1552 /* Let's set up our private bus connection now, unconditionally */
1553 (void) bus_init_private(m);
1554
1555 /* If we are in --user mode also connect to the system bus now */
1556 if (MANAGER_IS_USER(m))
1557 (void) bus_init_system(m);
1558
1559 /* Let's connect to the bus now, but only if the unit is supposed to be up */
1560 if (manager_dbus_is_running(m, MANAGER_IS_RELOADING(m))) {
1561 (void) bus_init_api(m);
1562
1563 if (MANAGER_IS_SYSTEM(m))
1564 (void) bus_init_system(m);
1565 }
1566 }
1567
1568 static void manager_preset_all(Manager *m) {
1569 int r;
1570
1571 assert(m);
1572
1573 if (m->first_boot <= 0)
1574 return;
1575
1576 if (!MANAGER_IS_SYSTEM(m))
1577 return;
1578
1579 if (MANAGER_IS_TEST_RUN(m))
1580 return;
1581
1582 /* If this is the first boot, and we are in the host system, then preset everything */
1583 r = unit_file_preset_all(UNIT_FILE_SYSTEM, 0, NULL, UNIT_FILE_PRESET_ENABLE_ONLY, NULL, 0);
1584 if (r < 0)
1585 log_full_errno(r == -EEXIST ? LOG_NOTICE : LOG_WARNING, r,
1586 "Failed to populate /etc with preset unit settings, ignoring: %m");
1587 else
1588 log_info("Populated /etc with preset unit settings.");
1589 }
1590
1591 static void manager_vacuum(Manager *m) {
1592 assert(m);
1593
1594 /* Release any dynamic users no longer referenced */
1595 dynamic_user_vacuum(m, true);
1596
1597 /* Release any references to UIDs/GIDs no longer referenced, and destroy any IPC owned by them */
1598 manager_vacuum_uid_refs(m);
1599 manager_vacuum_gid_refs(m);
1600
1601 /* Release any runtimes no longer referenced */
1602 exec_runtime_vacuum(m);
1603 }
1604
1605 static void manager_ready(Manager *m) {
1606 assert(m);
1607
1608 /* After having loaded everything, do the final round of catching up with what might have changed */
1609
1610 m->objective = MANAGER_OK; /* Tell everyone we are up now */
1611
1612 /* It might be safe to log to the journal now and connect to dbus */
1613 manager_recheck_journal(m);
1614 manager_recheck_dbus(m);
1615
1616 /* Let's finally catch up with any changes that took place while we were reloading/reexecing */
1617 manager_catchup(m);
1618
1619 m->honor_device_enumeration = true;
1620 }
1621
1622 static Manager* manager_reloading_start(Manager *m) {
1623 m->n_reloading++;
1624 return m;
1625 }
1626 static void manager_reloading_stopp(Manager **m) {
1627 if (*m) {
1628 assert((*m)->n_reloading > 0);
1629 (*m)->n_reloading--;
1630 }
1631 }
1632
1633 int manager_startup(Manager *m, FILE *serialization, FDSet *fds) {
1634 int r;
1635
1636 assert(m);
1637
1638 /* If we are running in test mode, we still want to run the generators,
1639 * but we should not touch the real generator directories. */
1640 r = lookup_paths_init(&m->lookup_paths, m->unit_file_scope,
1641 MANAGER_IS_TEST_RUN(m) ? LOOKUP_PATHS_TEMPORARY_GENERATED : 0,
1642 NULL);
1643 if (r < 0)
1644 return log_error_errno(r, "Failed to initialize path lookup table: %m");
1645
1646 dual_timestamp_get(m->timestamps + manager_timestamp_initrd_mangle(MANAGER_TIMESTAMP_GENERATORS_START));
1647 r = manager_run_environment_generators(m);
1648 if (r >= 0)
1649 r = manager_run_generators(m);
1650 dual_timestamp_get(m->timestamps + manager_timestamp_initrd_mangle(MANAGER_TIMESTAMP_GENERATORS_FINISH));
1651 if (r < 0)
1652 return r;
1653
1654 manager_preset_all(m);
1655
1656 lookup_paths_log(&m->lookup_paths);
1657
1658 {
1659 /* This block is (optionally) done with the reloading counter bumped */
1660 _cleanup_(manager_reloading_stopp) Manager *reloading = NULL;
1661
1662 /* If we will deserialize make sure that during enumeration this is already known, so we increase the
1663 * counter here already */
1664 if (serialization)
1665 reloading = manager_reloading_start(m);
1666
1667 /* First, enumerate what we can from all config files */
1668 dual_timestamp_get(m->timestamps + manager_timestamp_initrd_mangle(MANAGER_TIMESTAMP_UNITS_LOAD_START));
1669 manager_enumerate_perpetual(m);
1670 manager_enumerate(m);
1671 dual_timestamp_get(m->timestamps + manager_timestamp_initrd_mangle(MANAGER_TIMESTAMP_UNITS_LOAD_FINISH));
1672
1673 /* Second, deserialize if there is something to deserialize */
1674 if (serialization) {
1675 r = manager_deserialize(m, serialization, fds);
1676 if (r < 0)
1677 return log_error_errno(r, "Deserialization failed: %m");
1678 }
1679
1680 /* Any fds left? Find some unit which wants them. This is useful to allow container managers to pass
1681 * some file descriptors to us pre-initialized. This enables socket-based activation of entire
1682 * containers. */
1683 manager_distribute_fds(m, fds);
1684
1685 /* We might have deserialized the notify fd, but if we didn't then let's create the bus now */
1686 r = manager_setup_notify(m);
1687 if (r < 0)
1688 /* No sense to continue without notifications, our children would fail anyway. */
1689 return r;
1690
1691 r = manager_setup_cgroups_agent(m);
1692 if (r < 0)
1693 /* Likewise, no sense to continue without empty cgroup notifications. */
1694 return r;
1695
1696 r = manager_setup_user_lookup_fd(m);
1697 if (r < 0)
1698 /* This shouldn't fail, except if things are really broken. */
1699 return r;
1700
1701 /* Connect to the bus if we are good for it */
1702 manager_setup_bus(m);
1703
1704 /* Now that we are connected to all possible buses, let's deserialize who is tracking us. */
1705 r = bus_track_coldplug(m, &m->subscribed, false, m->deserialized_subscribed);
1706 if (r < 0)
1707 log_warning_errno(r, "Failed to deserialized tracked clients, ignoring: %m");
1708 m->deserialized_subscribed = strv_free(m->deserialized_subscribed);
1709
1710 r = manager_varlink_init(m);
1711 if (r < 0)
1712 log_warning_errno(r, "Failed to set up Varlink server, ignoring: %m");
1713
1714 /* Third, fire things up! */
1715 manager_coldplug(m);
1716
1717 /* Clean up runtime objects */
1718 manager_vacuum(m);
1719
1720 if (serialization)
1721 /* Let's wait for the UnitNew/JobNew messages being sent, before we notify that the
1722 * reload is finished */
1723 m->send_reloading_done = true;
1724 }
1725
1726 manager_ready(m);
1727
1728 return 0;
1729 }
1730
1731 int manager_add_job(
1732 Manager *m,
1733 JobType type,
1734 Unit *unit,
1735 JobMode mode,
1736 Set *affected_jobs,
1737 sd_bus_error *error,
1738 Job **ret) {
1739
1740 Transaction *tr;
1741 int r;
1742
1743 assert(m);
1744 assert(type < _JOB_TYPE_MAX);
1745 assert(unit);
1746 assert(mode < _JOB_MODE_MAX);
1747
1748 if (mode == JOB_ISOLATE && type != JOB_START)
1749 return sd_bus_error_setf(error, SD_BUS_ERROR_INVALID_ARGS, "Isolate is only valid for start.");
1750
1751 if (mode == JOB_ISOLATE && !unit->allow_isolate)
1752 return sd_bus_error_setf(error, BUS_ERROR_NO_ISOLATION, "Operation refused, unit may not be isolated.");
1753
1754 if (mode == JOB_TRIGGERING && type != JOB_STOP)
1755 return sd_bus_error_setf(error, SD_BUS_ERROR_INVALID_ARGS, "--job-mode=triggering is only valid for stop.");
1756
1757 log_unit_debug(unit, "Trying to enqueue job %s/%s/%s", unit->id, job_type_to_string(type), job_mode_to_string(mode));
1758
1759 type = job_type_collapse(type, unit);
1760
1761 tr = transaction_new(mode == JOB_REPLACE_IRREVERSIBLY);
1762 if (!tr)
1763 return -ENOMEM;
1764
1765 r = transaction_add_job_and_dependencies(tr, type, unit, NULL, true, false,
1766 IN_SET(mode, JOB_IGNORE_DEPENDENCIES, JOB_IGNORE_REQUIREMENTS),
1767 mode == JOB_IGNORE_DEPENDENCIES, error);
1768 if (r < 0)
1769 goto tr_abort;
1770
1771 if (mode == JOB_ISOLATE) {
1772 r = transaction_add_isolate_jobs(tr, m);
1773 if (r < 0)
1774 goto tr_abort;
1775 }
1776
1777 if (mode == JOB_TRIGGERING) {
1778 r = transaction_add_triggering_jobs(tr, unit);
1779 if (r < 0)
1780 goto tr_abort;
1781 }
1782
1783 r = transaction_activate(tr, m, mode, affected_jobs, error);
1784 if (r < 0)
1785 goto tr_abort;
1786
1787 log_unit_debug(unit,
1788 "Enqueued job %s/%s as %u", unit->id,
1789 job_type_to_string(type), (unsigned) tr->anchor_job->id);
1790
1791 if (ret)
1792 *ret = tr->anchor_job;
1793
1794 transaction_free(tr);
1795 return 0;
1796
1797 tr_abort:
1798 transaction_abort(tr);
1799 transaction_free(tr);
1800 return r;
1801 }
1802
1803 int manager_add_job_by_name(Manager *m, JobType type, const char *name, JobMode mode, Set *affected_jobs, sd_bus_error *e, Job **ret) {
1804 Unit *unit = NULL; /* just to appease gcc, initialization is not really necessary */
1805 int r;
1806
1807 assert(m);
1808 assert(type < _JOB_TYPE_MAX);
1809 assert(name);
1810 assert(mode < _JOB_MODE_MAX);
1811
1812 r = manager_load_unit(m, name, NULL, NULL, &unit);
1813 if (r < 0)
1814 return r;
1815 assert(unit);
1816
1817 return manager_add_job(m, type, unit, mode, affected_jobs, e, ret);
1818 }
1819
1820 int manager_add_job_by_name_and_warn(Manager *m, JobType type, const char *name, JobMode mode, Set *affected_jobs, Job **ret) {
1821 _cleanup_(sd_bus_error_free) sd_bus_error error = SD_BUS_ERROR_NULL;
1822 int r;
1823
1824 assert(m);
1825 assert(type < _JOB_TYPE_MAX);
1826 assert(name);
1827 assert(mode < _JOB_MODE_MAX);
1828
1829 r = manager_add_job_by_name(m, type, name, mode, affected_jobs, &error, ret);
1830 if (r < 0)
1831 return log_warning_errno(r, "Failed to enqueue %s job for %s: %s", job_mode_to_string(mode), name, bus_error_message(&error, r));
1832
1833 return r;
1834 }
1835
1836 int manager_propagate_reload(Manager *m, Unit *unit, JobMode mode, sd_bus_error *e) {
1837 int r;
1838 Transaction *tr;
1839
1840 assert(m);
1841 assert(unit);
1842 assert(mode < _JOB_MODE_MAX);
1843 assert(mode != JOB_ISOLATE); /* Isolate is only valid for start */
1844
1845 tr = transaction_new(mode == JOB_REPLACE_IRREVERSIBLY);
1846 if (!tr)
1847 return -ENOMEM;
1848
1849 /* We need an anchor job */
1850 r = transaction_add_job_and_dependencies(tr, JOB_NOP, unit, NULL, false, false, true, true, e);
1851 if (r < 0)
1852 goto tr_abort;
1853
1854 /* Failure in adding individual dependencies is ignored, so this always succeeds. */
1855 transaction_add_propagate_reload_jobs(tr, unit, tr->anchor_job, mode == JOB_IGNORE_DEPENDENCIES, e);
1856
1857 r = transaction_activate(tr, m, mode, NULL, e);
1858 if (r < 0)
1859 goto tr_abort;
1860
1861 transaction_free(tr);
1862 return 0;
1863
1864 tr_abort:
1865 transaction_abort(tr);
1866 transaction_free(tr);
1867 return r;
1868 }
1869
1870 Job *manager_get_job(Manager *m, uint32_t id) {
1871 assert(m);
1872
1873 return hashmap_get(m->jobs, UINT32_TO_PTR(id));
1874 }
1875
1876 Unit *manager_get_unit(Manager *m, const char *name) {
1877 assert(m);
1878 assert(name);
1879
1880 return hashmap_get(m->units, name);
1881 }
1882
1883 static int manager_dispatch_target_deps_queue(Manager *m) {
1884 Unit *u;
1885 unsigned k;
1886 int r = 0;
1887
1888 static const UnitDependency deps[] = {
1889 UNIT_REQUIRED_BY,
1890 UNIT_REQUISITE_OF,
1891 UNIT_WANTED_BY,
1892 UNIT_BOUND_BY
1893 };
1894
1895 assert(m);
1896
1897 while ((u = m->target_deps_queue)) {
1898 assert(u->in_target_deps_queue);
1899
1900 LIST_REMOVE(target_deps_queue, u->manager->target_deps_queue, u);
1901 u->in_target_deps_queue = false;
1902
1903 for (k = 0; k < ELEMENTSOF(deps); k++) {
1904 Unit *target;
1905 Iterator i;
1906 void *v;
1907
1908 HASHMAP_FOREACH_KEY(v, target, u->dependencies[deps[k]], i) {
1909 r = unit_add_default_target_dependency(u, target);
1910 if (r < 0)
1911 return r;
1912 }
1913 }
1914 }
1915
1916 return r;
1917 }
1918
1919 unsigned manager_dispatch_load_queue(Manager *m) {
1920 Unit *u;
1921 unsigned n = 0;
1922
1923 assert(m);
1924
1925 /* Make sure we are not run recursively */
1926 if (m->dispatching_load_queue)
1927 return 0;
1928
1929 m->dispatching_load_queue = true;
1930
1931 /* Dispatches the load queue. Takes a unit from the queue and
1932 * tries to load its data until the queue is empty */
1933
1934 while ((u = m->load_queue)) {
1935 assert(u->in_load_queue);
1936
1937 unit_load(u);
1938 n++;
1939 }
1940
1941 m->dispatching_load_queue = false;
1942
1943 /* Dispatch the units waiting for their target dependencies to be added now, as all targets that we know about
1944 * should be loaded and have aliases resolved */
1945 (void) manager_dispatch_target_deps_queue(m);
1946
1947 return n;
1948 }
1949
1950 int manager_load_unit_prepare(
1951 Manager *m,
1952 const char *name,
1953 const char *path,
1954 sd_bus_error *e,
1955 Unit **_ret) {
1956
1957 _cleanup_(unit_freep) Unit *cleanup_ret = NULL;
1958 Unit *ret;
1959 UnitType t;
1960 int r;
1961
1962 assert(m);
1963 assert(name || path);
1964 assert(_ret);
1965
1966 /* This will prepare the unit for loading, but not actually
1967 * load anything from disk. */
1968
1969 if (path && !is_path(path))
1970 return sd_bus_error_setf(e, SD_BUS_ERROR_INVALID_ARGS, "Path %s is not absolute.", path);
1971
1972 if (!name)
1973 name = basename(path);
1974
1975 t = unit_name_to_type(name);
1976
1977 if (t == _UNIT_TYPE_INVALID || !unit_name_is_valid(name, UNIT_NAME_PLAIN|UNIT_NAME_INSTANCE)) {
1978 if (unit_name_is_valid(name, UNIT_NAME_TEMPLATE))
1979 return sd_bus_error_setf(e, SD_BUS_ERROR_INVALID_ARGS, "Unit name %s is missing the instance name.", name);
1980
1981 return sd_bus_error_setf(e, SD_BUS_ERROR_INVALID_ARGS, "Unit name %s is not valid.", name);
1982 }
1983
1984 ret = manager_get_unit(m, name);
1985 if (ret) {
1986 *_ret = ret;
1987 return 1;
1988 }
1989
1990 ret = cleanup_ret = unit_new(m, unit_vtable[t]->object_size);
1991 if (!ret)
1992 return -ENOMEM;
1993
1994 if (path) {
1995 ret->fragment_path = strdup(path);
1996 if (!ret->fragment_path)
1997 return -ENOMEM;
1998 }
1999
2000 r = unit_add_name(ret, name);
2001 if (r < 0)
2002 return r;
2003
2004 unit_add_to_load_queue(ret);
2005 unit_add_to_dbus_queue(ret);
2006 unit_add_to_gc_queue(ret);
2007
2008 *_ret = ret;
2009 cleanup_ret = NULL;
2010
2011 return 0;
2012 }
2013
2014 int manager_load_unit(
2015 Manager *m,
2016 const char *name,
2017 const char *path,
2018 sd_bus_error *e,
2019 Unit **_ret) {
2020
2021 int r;
2022
2023 assert(m);
2024 assert(_ret);
2025
2026 /* This will load the service information files, but not actually
2027 * start any services or anything. */
2028
2029 r = manager_load_unit_prepare(m, name, path, e, _ret);
2030 if (r != 0)
2031 return r;
2032
2033 manager_dispatch_load_queue(m);
2034
2035 *_ret = unit_follow_merge(*_ret);
2036 return 0;
2037 }
2038
2039 int manager_load_startable_unit_or_warn(
2040 Manager *m,
2041 const char *name,
2042 const char *path,
2043 Unit **ret) {
2044
2045 /* Load a unit, make sure it loaded fully and is not masked. */
2046
2047 _cleanup_(sd_bus_error_free) sd_bus_error error = SD_BUS_ERROR_NULL;
2048 Unit *unit;
2049 int r;
2050
2051 r = manager_load_unit(m, name, path, &error, &unit);
2052 if (r < 0)
2053 return log_error_errno(r, "Failed to load %s %s: %s",
2054 name ? "unit" : "unit file", name ?: path,
2055 bus_error_message(&error, r));
2056
2057 r = bus_unit_validate_load_state(unit, &error);
2058 if (r < 0)
2059 return log_error_errno(r, "%s", bus_error_message(&error, r));
2060
2061 *ret = unit;
2062 return 0;
2063 }
2064
2065 void manager_dump_jobs(Manager *s, FILE *f, const char *prefix) {
2066 Iterator i;
2067 Job *j;
2068
2069 assert(s);
2070 assert(f);
2071
2072 HASHMAP_FOREACH(j, s->jobs, i)
2073 job_dump(j, f, prefix);
2074 }
2075
2076 void manager_dump_units(Manager *s, FILE *f, const char *prefix) {
2077 Iterator i;
2078 Unit *u;
2079 const char *t;
2080
2081 assert(s);
2082 assert(f);
2083
2084 HASHMAP_FOREACH_KEY(u, t, s->units, i)
2085 if (u->id == t)
2086 unit_dump(u, f, prefix);
2087 }
2088
2089 void manager_dump(Manager *m, FILE *f, const char *prefix) {
2090 ManagerTimestamp q;
2091
2092 assert(m);
2093 assert(f);
2094
2095 for (q = 0; q < _MANAGER_TIMESTAMP_MAX; q++) {
2096 const dual_timestamp *t = m->timestamps + q;
2097 char buf[CONST_MAX(FORMAT_TIMESPAN_MAX, FORMAT_TIMESTAMP_MAX)];
2098
2099 if (dual_timestamp_is_set(t))
2100 fprintf(f, "%sTimestamp %s: %s\n",
2101 strempty(prefix),
2102 manager_timestamp_to_string(q),
2103 timestamp_is_set(t->realtime) ? format_timestamp(buf, sizeof buf, t->realtime) :
2104 format_timespan(buf, sizeof buf, t->monotonic, 1));
2105 }
2106
2107 manager_dump_units(m, f, prefix);
2108 manager_dump_jobs(m, f, prefix);
2109 }
2110
2111 int manager_get_dump_string(Manager *m, char **ret) {
2112 _cleanup_free_ char *dump = NULL;
2113 _cleanup_fclose_ FILE *f = NULL;
2114 size_t size;
2115 int r;
2116
2117 assert(m);
2118 assert(ret);
2119
2120 f = open_memstream_unlocked(&dump, &size);
2121 if (!f)
2122 return -errno;
2123
2124 manager_dump(m, f, NULL);
2125
2126 r = fflush_and_check(f);
2127 if (r < 0)
2128 return r;
2129
2130 f = safe_fclose(f);
2131
2132 *ret = TAKE_PTR(dump);
2133
2134 return 0;
2135 }
2136
2137 void manager_clear_jobs(Manager *m) {
2138 Job *j;
2139
2140 assert(m);
2141
2142 while ((j = hashmap_first(m->jobs)))
2143 /* No need to recurse. We're cancelling all jobs. */
2144 job_finish_and_invalidate(j, JOB_CANCELED, false, false);
2145 }
2146
2147 void manager_unwatch_pid(Manager *m, pid_t pid) {
2148 assert(m);
2149
2150 /* First let's drop the unit keyed as "pid". */
2151 (void) hashmap_remove(m->watch_pids, PID_TO_PTR(pid));
2152
2153 /* Then, let's also drop the array keyed by -pid. */
2154 free(hashmap_remove(m->watch_pids, PID_TO_PTR(-pid)));
2155 }
2156
2157 static int manager_dispatch_run_queue(sd_event_source *source, void *userdata) {
2158 Manager *m = userdata;
2159 Job *j;
2160
2161 assert(source);
2162 assert(m);
2163
2164 while ((j = prioq_peek(m->run_queue))) {
2165 assert(j->installed);
2166 assert(j->in_run_queue);
2167
2168 (void) job_run_and_invalidate(j);
2169 }
2170
2171 if (m->n_running_jobs > 0)
2172 manager_watch_jobs_in_progress(m);
2173
2174 if (m->n_on_console > 0)
2175 manager_watch_idle_pipe(m);
2176
2177 return 1;
2178 }
2179
2180 static unsigned manager_dispatch_dbus_queue(Manager *m) {
2181 unsigned n = 0, budget;
2182 Unit *u;
2183 Job *j;
2184
2185 assert(m);
2186
2187 /* When we are reloading, let's not wait with generating signals, since we need to exit the manager as quickly
2188 * as we can. There's no point in throttling generation of signals in that case. */
2189 if (MANAGER_IS_RELOADING(m) || m->send_reloading_done || m->pending_reload_message)
2190 budget = (unsigned) -1; /* infinite budget in this case */
2191 else {
2192 /* Anything to do at all? */
2193 if (!m->dbus_unit_queue && !m->dbus_job_queue)
2194 return 0;
2195
2196 /* Do we have overly many messages queued at the moment? If so, let's not enqueue more on top, let's
2197 * sit this cycle out, and process things in a later cycle when the queues got a bit emptier. */
2198 if (manager_bus_n_queued_write(m) > MANAGER_BUS_BUSY_THRESHOLD)
2199 return 0;
2200
2201 /* Only process a certain number of units/jobs per event loop iteration. Even if the bus queue wasn't
2202 * overly full before this call we shouldn't increase it in size too wildly in one step, and we
2203 * shouldn't monopolize CPU time with generating these messages. Note the difference in counting of
2204 * this "budget" and the "threshold" above: the "budget" is decreased only once per generated message,
2205 * regardless how many buses/direct connections it is enqueued on, while the "threshold" is applied to
2206 * each queued instance of bus message, i.e. if the same message is enqueued to five buses/direct
2207 * connections it will be counted five times. This difference in counting ("references"
2208 * vs. "instances") is primarily a result of the fact that it's easier to implement it this way,
2209 * however it also reflects the thinking that the "threshold" should put a limit on used queue memory,
2210 * i.e. space, while the "budget" should put a limit on time. Also note that the "threshold" is
2211 * currently chosen much higher than the "budget". */
2212 budget = MANAGER_BUS_MESSAGE_BUDGET;
2213 }
2214
2215 while (budget != 0 && (u = m->dbus_unit_queue)) {
2216
2217 assert(u->in_dbus_queue);
2218
2219 bus_unit_send_change_signal(u);
2220 n++;
2221
2222 if (budget != (unsigned) -1)
2223 budget--;
2224 }
2225
2226 while (budget != 0 && (j = m->dbus_job_queue)) {
2227 assert(j->in_dbus_queue);
2228
2229 bus_job_send_change_signal(j);
2230 n++;
2231
2232 if (budget != (unsigned) -1)
2233 budget--;
2234 }
2235
2236 if (m->send_reloading_done) {
2237 m->send_reloading_done = false;
2238 bus_manager_send_reloading(m, false);
2239 n++;
2240 }
2241
2242 if (m->pending_reload_message) {
2243 bus_send_pending_reload_message(m);
2244 n++;
2245 }
2246
2247 return n;
2248 }
2249
2250 static int manager_dispatch_cgroups_agent_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata) {
2251 Manager *m = userdata;
2252 char buf[PATH_MAX];
2253 ssize_t n;
2254
2255 n = recv(fd, buf, sizeof(buf), 0);
2256 if (n < 0)
2257 return log_error_errno(errno, "Failed to read cgroups agent message: %m");
2258 if (n == 0) {
2259 log_error("Got zero-length cgroups agent message, ignoring.");
2260 return 0;
2261 }
2262 if ((size_t) n >= sizeof(buf)) {
2263 log_error("Got overly long cgroups agent message, ignoring.");
2264 return 0;
2265 }
2266
2267 if (memchr(buf, 0, n)) {
2268 log_error("Got cgroups agent message with embedded NUL byte, ignoring.");
2269 return 0;
2270 }
2271 buf[n] = 0;
2272
2273 manager_notify_cgroup_empty(m, buf);
2274 (void) bus_forward_agent_released(m, buf);
2275
2276 return 0;
2277 }
2278
2279 static void manager_invoke_notify_message(
2280 Manager *m,
2281 Unit *u,
2282 const struct ucred *ucred,
2283 const char *buf,
2284 FDSet *fds) {
2285
2286 assert(m);
2287 assert(u);
2288 assert(ucred);
2289 assert(buf);
2290
2291 if (u->notifygen == m->notifygen) /* Already invoked on this same unit in this same iteration? */
2292 return;
2293 u->notifygen = m->notifygen;
2294
2295 if (UNIT_VTABLE(u)->notify_message) {
2296 _cleanup_strv_free_ char **tags = NULL;
2297
2298 tags = strv_split(buf, NEWLINE);
2299 if (!tags) {
2300 log_oom();
2301 return;
2302 }
2303
2304 UNIT_VTABLE(u)->notify_message(u, ucred, tags, fds);
2305
2306 } else if (DEBUG_LOGGING) {
2307 _cleanup_free_ char *x = NULL, *y = NULL;
2308
2309 x = ellipsize(buf, 20, 90);
2310 if (x)
2311 y = cescape(x);
2312
2313 log_unit_debug(u, "Got notification message \"%s\", ignoring.", strnull(y));
2314 }
2315 }
2316
2317 static int manager_dispatch_notify_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata) {
2318
2319 _cleanup_fdset_free_ FDSet *fds = NULL;
2320 Manager *m = userdata;
2321 char buf[NOTIFY_BUFFER_MAX+1];
2322 struct iovec iovec = {
2323 .iov_base = buf,
2324 .iov_len = sizeof(buf)-1,
2325 };
2326 union {
2327 struct cmsghdr cmsghdr;
2328 uint8_t buf[CMSG_SPACE(sizeof(struct ucred)) +
2329 CMSG_SPACE(sizeof(int) * NOTIFY_FD_MAX)];
2330 } control = {};
2331 struct msghdr msghdr = {
2332 .msg_iov = &iovec,
2333 .msg_iovlen = 1,
2334 .msg_control = &control,
2335 .msg_controllen = sizeof(control),
2336 };
2337
2338 struct cmsghdr *cmsg;
2339 struct ucred *ucred = NULL;
2340 _cleanup_free_ Unit **array_copy = NULL;
2341 Unit *u1, *u2, **array;
2342 int r, *fd_array = NULL;
2343 size_t n_fds = 0;
2344 bool found = false;
2345 ssize_t n;
2346
2347 assert(m);
2348 assert(m->notify_fd == fd);
2349
2350 if (revents != EPOLLIN) {
2351 log_warning("Got unexpected poll event for notify fd.");
2352 return 0;
2353 }
2354
2355 n = recvmsg(m->notify_fd, &msghdr, MSG_DONTWAIT|MSG_CMSG_CLOEXEC|MSG_TRUNC);
2356 if (n < 0) {
2357 if (IN_SET(errno, EAGAIN, EINTR))
2358 return 0; /* Spurious wakeup, try again */
2359
2360 /* If this is any other, real error, then let's stop processing this socket. This of course means we
2361 * won't take notification messages anymore, but that's still better than busy looping around this:
2362 * being woken up over and over again but being unable to actually read the message off the socket. */
2363 return log_error_errno(errno, "Failed to receive notification message: %m");
2364 }
2365
2366 CMSG_FOREACH(cmsg, &msghdr) {
2367 if (cmsg->cmsg_level == SOL_SOCKET && cmsg->cmsg_type == SCM_RIGHTS) {
2368
2369 fd_array = (int*) CMSG_DATA(cmsg);
2370 n_fds = (cmsg->cmsg_len - CMSG_LEN(0)) / sizeof(int);
2371
2372 } else if (cmsg->cmsg_level == SOL_SOCKET &&
2373 cmsg->cmsg_type == SCM_CREDENTIALS &&
2374 cmsg->cmsg_len == CMSG_LEN(sizeof(struct ucred))) {
2375
2376 ucred = (struct ucred*) CMSG_DATA(cmsg);
2377 }
2378 }
2379
2380 if (n_fds > 0) {
2381 assert(fd_array);
2382
2383 r = fdset_new_array(&fds, fd_array, n_fds);
2384 if (r < 0) {
2385 close_many(fd_array, n_fds);
2386 log_oom();
2387 return 0;
2388 }
2389 }
2390
2391 if (!ucred || !pid_is_valid(ucred->pid)) {
2392 log_warning("Received notify message without valid credentials. Ignoring.");
2393 return 0;
2394 }
2395
2396 if ((size_t) n >= sizeof(buf) || (msghdr.msg_flags & MSG_TRUNC)) {
2397 log_warning("Received notify message exceeded maximum size. Ignoring.");
2398 return 0;
2399 }
2400
2401 /* As extra safety check, let's make sure the string we get doesn't contain embedded NUL bytes. We permit one
2402 * trailing NUL byte in the message, but don't expect it. */
2403 if (n > 1 && memchr(buf, 0, n-1)) {
2404 log_warning("Received notify message with embedded NUL bytes. Ignoring.");
2405 return 0;
2406 }
2407
2408 /* Make sure it's NUL-terminated. */
2409 buf[n] = 0;
2410
2411 /* Increase the generation counter used for filtering out duplicate unit invocations. */
2412 m->notifygen++;
2413
2414 /* Notify every unit that might be interested, which might be multiple. */
2415 u1 = manager_get_unit_by_pid_cgroup(m, ucred->pid);
2416 u2 = hashmap_get(m->watch_pids, PID_TO_PTR(ucred->pid));
2417 array = hashmap_get(m->watch_pids, PID_TO_PTR(-ucred->pid));
2418 if (array) {
2419 size_t k = 0;
2420
2421 while (array[k])
2422 k++;
2423
2424 array_copy = newdup(Unit*, array, k+1);
2425 if (!array_copy)
2426 log_oom();
2427 }
2428 /* And now invoke the per-unit callbacks. Note that manager_invoke_notify_message() will handle duplicate units
2429 * make sure we only invoke each unit's handler once. */
2430 if (u1) {
2431 manager_invoke_notify_message(m, u1, ucred, buf, fds);
2432 found = true;
2433 }
2434 if (u2) {
2435 manager_invoke_notify_message(m, u2, ucred, buf, fds);
2436 found = true;
2437 }
2438 if (array_copy)
2439 for (size_t i = 0; array_copy[i]; i++) {
2440 manager_invoke_notify_message(m, array_copy[i], ucred, buf, fds);
2441 found = true;
2442 }
2443
2444 if (!found)
2445 log_warning("Cannot find unit for notify message of PID "PID_FMT", ignoring.", ucred->pid);
2446
2447 if (fdset_size(fds) > 0)
2448 log_warning("Got extra auxiliary fds with notification message, closing them.");
2449
2450 return 0;
2451 }
2452
2453 static void manager_invoke_sigchld_event(
2454 Manager *m,
2455 Unit *u,
2456 const siginfo_t *si) {
2457
2458 assert(m);
2459 assert(u);
2460 assert(si);
2461
2462 /* Already invoked the handler of this unit in this iteration? Then don't process this again */
2463 if (u->sigchldgen == m->sigchldgen)
2464 return;
2465 u->sigchldgen = m->sigchldgen;
2466
2467 log_unit_debug(u, "Child "PID_FMT" belongs to %s.", si->si_pid, u->id);
2468 unit_unwatch_pid(u, si->si_pid);
2469
2470 if (UNIT_VTABLE(u)->sigchld_event)
2471 UNIT_VTABLE(u)->sigchld_event(u, si->si_pid, si->si_code, si->si_status);
2472 }
2473
2474 static int manager_dispatch_sigchld(sd_event_source *source, void *userdata) {
2475 Manager *m = userdata;
2476 siginfo_t si = {};
2477 int r;
2478
2479 assert(source);
2480 assert(m);
2481
2482 /* First we call waitid() for a PID and do not reap the zombie. That way we can still access /proc/$PID for it
2483 * while it is a zombie. */
2484
2485 if (waitid(P_ALL, 0, &si, WEXITED|WNOHANG|WNOWAIT) < 0) {
2486
2487 if (errno != ECHILD)
2488 log_error_errno(errno, "Failed to peek for child with waitid(), ignoring: %m");
2489
2490 goto turn_off;
2491 }
2492
2493 if (si.si_pid <= 0)
2494 goto turn_off;
2495
2496 if (IN_SET(si.si_code, CLD_EXITED, CLD_KILLED, CLD_DUMPED)) {
2497 _cleanup_free_ Unit **array_copy = NULL;
2498 _cleanup_free_ char *name = NULL;
2499 Unit *u1, *u2, **array;
2500
2501 (void) get_process_comm(si.si_pid, &name);
2502
2503 log_debug("Child "PID_FMT" (%s) died (code=%s, status=%i/%s)",
2504 si.si_pid, strna(name),
2505 sigchld_code_to_string(si.si_code),
2506 si.si_status,
2507 strna(si.si_code == CLD_EXITED
2508 ? exit_status_to_string(si.si_status, EXIT_STATUS_FULL)
2509 : signal_to_string(si.si_status)));
2510
2511 /* Increase the generation counter used for filtering out duplicate unit invocations */
2512 m->sigchldgen++;
2513
2514 /* And now figure out the unit this belongs to, it might be multiple... */
2515 u1 = manager_get_unit_by_pid_cgroup(m, si.si_pid);
2516 u2 = hashmap_get(m->watch_pids, PID_TO_PTR(si.si_pid));
2517 array = hashmap_get(m->watch_pids, PID_TO_PTR(-si.si_pid));
2518 if (array) {
2519 size_t n = 0;
2520
2521 /* Count how many entries the array has */
2522 while (array[n])
2523 n++;
2524
2525 /* Make a copy of the array so that we don't trip up on the array changing beneath us */
2526 array_copy = newdup(Unit*, array, n+1);
2527 if (!array_copy)
2528 log_oom();
2529 }
2530
2531 /* Finally, execute them all. Note that u1, u2 and the array might contain duplicates, but
2532 * that's fine, manager_invoke_sigchld_event() will ensure we only invoke the handlers once for
2533 * each iteration. */
2534 if (u1) {
2535 /* We check for oom condition, in case we got SIGCHLD before the oom notification.
2536 * We only do this for the cgroup the PID belonged to. */
2537 (void) unit_check_oom(u1);
2538
2539 manager_invoke_sigchld_event(m, u1, &si);
2540 }
2541 if (u2)
2542 manager_invoke_sigchld_event(m, u2, &si);
2543 if (array_copy)
2544 for (size_t i = 0; array_copy[i]; i++)
2545 manager_invoke_sigchld_event(m, array_copy[i], &si);
2546 }
2547
2548 /* And now, we actually reap the zombie. */
2549 if (waitid(P_PID, si.si_pid, &si, WEXITED) < 0) {
2550 log_error_errno(errno, "Failed to dequeue child, ignoring: %m");
2551 return 0;
2552 }
2553
2554 return 0;
2555
2556 turn_off:
2557 /* All children processed for now, turn off event source */
2558
2559 r = sd_event_source_set_enabled(m->sigchld_event_source, SD_EVENT_OFF);
2560 if (r < 0)
2561 return log_error_errno(r, "Failed to disable SIGCHLD event source: %m");
2562
2563 return 0;
2564 }
2565
2566 static void manager_start_target(Manager *m, const char *name, JobMode mode) {
2567 _cleanup_(sd_bus_error_free) sd_bus_error error = SD_BUS_ERROR_NULL;
2568 int r;
2569
2570 log_debug("Activating special unit %s", name);
2571
2572 r = manager_add_job_by_name(m, JOB_START, name, mode, NULL, &error, NULL);
2573 if (r < 0)
2574 log_error("Failed to enqueue %s job: %s", name, bus_error_message(&error, r));
2575 }
2576
2577 static void manager_handle_ctrl_alt_del(Manager *m) {
2578 /* If the user presses C-A-D more than
2579 * 7 times within 2s, we reboot/shutdown immediately,
2580 * unless it was disabled in system.conf */
2581
2582 if (ratelimit_below(&m->ctrl_alt_del_ratelimit) || m->cad_burst_action == EMERGENCY_ACTION_NONE)
2583 manager_start_target(m, SPECIAL_CTRL_ALT_DEL_TARGET, JOB_REPLACE_IRREVERSIBLY);
2584 else
2585 emergency_action(m, m->cad_burst_action, EMERGENCY_ACTION_WARN, NULL, -1,
2586 "Ctrl-Alt-Del was pressed more than 7 times within 2s");
2587 }
2588
2589 static int manager_dispatch_signal_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata) {
2590 Manager *m = userdata;
2591 ssize_t n;
2592 struct signalfd_siginfo sfsi;
2593 int r;
2594
2595 assert(m);
2596 assert(m->signal_fd == fd);
2597
2598 if (revents != EPOLLIN) {
2599 log_warning("Got unexpected events from signal file descriptor.");
2600 return 0;
2601 }
2602
2603 n = read(m->signal_fd, &sfsi, sizeof(sfsi));
2604 if (n != sizeof(sfsi)) {
2605 if (n >= 0) {
2606 log_warning("Truncated read from signal fd (%zu bytes), ignoring!", n);
2607 return 0;
2608 }
2609
2610 if (IN_SET(errno, EINTR, EAGAIN))
2611 return 0;
2612
2613 /* We return an error here, which will kill this handler,
2614 * to avoid a busy loop on read error. */
2615 return log_error_errno(errno, "Reading from signal fd failed: %m");
2616 }
2617
2618 log_received_signal(sfsi.ssi_signo == SIGCHLD ||
2619 (sfsi.ssi_signo == SIGTERM && MANAGER_IS_USER(m))
2620 ? LOG_DEBUG : LOG_INFO,
2621 &sfsi);
2622
2623 switch (sfsi.ssi_signo) {
2624
2625 case SIGCHLD:
2626 r = sd_event_source_set_enabled(m->sigchld_event_source, SD_EVENT_ON);
2627 if (r < 0)
2628 log_warning_errno(r, "Failed to enable SIGCHLD event source, ignoring: %m");
2629
2630 break;
2631
2632 case SIGTERM:
2633 if (MANAGER_IS_SYSTEM(m)) {
2634 /* This is for compatibility with the original sysvinit */
2635 if (verify_run_space_and_log("Refusing to reexecute") < 0)
2636 break;
2637
2638 m->objective = MANAGER_REEXECUTE;
2639 break;
2640 }
2641
2642 _fallthrough_;
2643 case SIGINT:
2644 if (MANAGER_IS_SYSTEM(m))
2645 manager_handle_ctrl_alt_del(m);
2646 else
2647 manager_start_target(m, SPECIAL_EXIT_TARGET,
2648 JOB_REPLACE_IRREVERSIBLY);
2649 break;
2650
2651 case SIGWINCH:
2652 /* This is a nop on non-init */
2653 if (MANAGER_IS_SYSTEM(m))
2654 manager_start_target(m, SPECIAL_KBREQUEST_TARGET, JOB_REPLACE);
2655
2656 break;
2657
2658 case SIGPWR:
2659 /* This is a nop on non-init */
2660 if (MANAGER_IS_SYSTEM(m))
2661 manager_start_target(m, SPECIAL_SIGPWR_TARGET, JOB_REPLACE);
2662
2663 break;
2664
2665 case SIGUSR1:
2666 if (manager_dbus_is_running(m, false)) {
2667 log_info("Trying to reconnect to bus...");
2668
2669 (void) bus_init_api(m);
2670
2671 if (MANAGER_IS_SYSTEM(m))
2672 (void) bus_init_system(m);
2673 } else {
2674 log_info("Starting D-Bus service...");
2675 manager_start_target(m, SPECIAL_DBUS_SERVICE, JOB_REPLACE);
2676 }
2677
2678 break;
2679
2680 case SIGUSR2: {
2681 _cleanup_free_ char *dump = NULL;
2682
2683 r = manager_get_dump_string(m, &dump);
2684 if (r < 0) {
2685 log_warning_errno(errno, "Failed to acquire manager dump: %m");
2686 break;
2687 }
2688
2689 log_dump(LOG_INFO, dump);
2690 break;
2691 }
2692
2693 case SIGHUP:
2694 if (verify_run_space_and_log("Refusing to reload") < 0)
2695 break;
2696
2697 m->objective = MANAGER_RELOAD;
2698 break;
2699
2700 default: {
2701
2702 /* Starting SIGRTMIN+0 */
2703 static const struct {
2704 const char *target;
2705 JobMode mode;
2706 } target_table[] = {
2707 [0] = { SPECIAL_DEFAULT_TARGET, JOB_ISOLATE },
2708 [1] = { SPECIAL_RESCUE_TARGET, JOB_ISOLATE },
2709 [2] = { SPECIAL_EMERGENCY_TARGET, JOB_ISOLATE },
2710 [3] = { SPECIAL_HALT_TARGET, JOB_REPLACE_IRREVERSIBLY },
2711 [4] = { SPECIAL_POWEROFF_TARGET, JOB_REPLACE_IRREVERSIBLY },
2712 [5] = { SPECIAL_REBOOT_TARGET, JOB_REPLACE_IRREVERSIBLY },
2713 [6] = { SPECIAL_KEXEC_TARGET, JOB_REPLACE_IRREVERSIBLY },
2714 };
2715
2716 /* Starting SIGRTMIN+13, so that target halt and system halt are 10 apart */
2717 static const ManagerObjective objective_table[] = {
2718 [0] = MANAGER_HALT,
2719 [1] = MANAGER_POWEROFF,
2720 [2] = MANAGER_REBOOT,
2721 [3] = MANAGER_KEXEC,
2722 };
2723
2724 if ((int) sfsi.ssi_signo >= SIGRTMIN+0 &&
2725 (int) sfsi.ssi_signo < SIGRTMIN+(int) ELEMENTSOF(target_table)) {
2726 int idx = (int) sfsi.ssi_signo - SIGRTMIN;
2727 manager_start_target(m, target_table[idx].target,
2728 target_table[idx].mode);
2729 break;
2730 }
2731
2732 if ((int) sfsi.ssi_signo >= SIGRTMIN+13 &&
2733 (int) sfsi.ssi_signo < SIGRTMIN+13+(int) ELEMENTSOF(objective_table)) {
2734 m->objective = objective_table[sfsi.ssi_signo - SIGRTMIN - 13];
2735 break;
2736 }
2737
2738 switch (sfsi.ssi_signo - SIGRTMIN) {
2739
2740 case 20:
2741 manager_set_show_status(m, SHOW_STATUS_YES);
2742 break;
2743
2744 case 21:
2745 manager_set_show_status(m, SHOW_STATUS_NO);
2746 break;
2747
2748 case 22:
2749 manager_override_log_level(m, LOG_DEBUG);
2750 break;
2751
2752 case 23:
2753 manager_restore_original_log_level(m);
2754 break;
2755
2756 case 24:
2757 if (MANAGER_IS_USER(m)) {
2758 m->objective = MANAGER_EXIT;
2759 return 0;
2760 }
2761
2762 /* This is a nop on init */
2763 break;
2764
2765 case 26:
2766 case 29: /* compatibility: used to be mapped to LOG_TARGET_SYSLOG_OR_KMSG */
2767 manager_restore_original_log_target(m);
2768 break;
2769
2770 case 27:
2771 manager_override_log_target(m, LOG_TARGET_CONSOLE);
2772 break;
2773
2774 case 28:
2775 manager_override_log_target(m, LOG_TARGET_KMSG);
2776 break;
2777
2778 default:
2779 log_warning("Got unhandled signal <%s>.", signal_to_string(sfsi.ssi_signo));
2780 }
2781 }}
2782
2783 return 0;
2784 }
2785
2786 static int manager_dispatch_time_change_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata) {
2787 Manager *m = userdata;
2788 Iterator i;
2789 Unit *u;
2790
2791 assert(m);
2792 assert(m->time_change_fd == fd);
2793
2794 log_struct(LOG_DEBUG,
2795 "MESSAGE_ID=" SD_MESSAGE_TIME_CHANGE_STR,
2796 LOG_MESSAGE("Time has been changed"));
2797
2798 /* Restart the watch */
2799 (void) manager_setup_time_change(m);
2800
2801 HASHMAP_FOREACH(u, m->units, i)
2802 if (UNIT_VTABLE(u)->time_change)
2803 UNIT_VTABLE(u)->time_change(u);
2804
2805 return 0;
2806 }
2807
2808 static int manager_dispatch_timezone_change(
2809 sd_event_source *source,
2810 const struct inotify_event *e,
2811 void *userdata) {
2812
2813 Manager *m = userdata;
2814 int changed;
2815 Iterator i;
2816 Unit *u;
2817
2818 assert(m);
2819
2820 log_debug("inotify event for /etc/localtime");
2821
2822 changed = manager_read_timezone_stat(m);
2823 if (changed <= 0)
2824 return changed;
2825
2826 /* Something changed, restart the watch, to ensure we watch the new /etc/localtime if it changed */
2827 (void) manager_setup_timezone_change(m);
2828
2829 /* Read the new timezone */
2830 tzset();
2831
2832 log_debug("Timezone has been changed (now: %s).", tzname[daylight]);
2833
2834 HASHMAP_FOREACH(u, m->units, i)
2835 if (UNIT_VTABLE(u)->timezone_change)
2836 UNIT_VTABLE(u)->timezone_change(u);
2837
2838 return 0;
2839 }
2840
2841 static int manager_dispatch_idle_pipe_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata) {
2842 Manager *m = userdata;
2843
2844 assert(m);
2845 assert(m->idle_pipe[2] == fd);
2846
2847 /* There's at least one Type=idle child that just gave up on us waiting for the boot process to complete. Let's
2848 * now turn off any further console output if there's at least one service that needs console access, so that
2849 * from now on our own output should not spill into that service's output anymore. After all, we support
2850 * Type=idle only to beautify console output and it generally is set on services that want to own the console
2851 * exclusively without our interference. */
2852 m->no_console_output = m->n_on_console > 0;
2853
2854 /* Acknowledge the child's request, and let all all other children know too that they shouldn't wait any longer
2855 * by closing the pipes towards them, which is what they are waiting for. */
2856 manager_close_idle_pipe(m);
2857
2858 return 0;
2859 }
2860
2861 static int manager_dispatch_jobs_in_progress(sd_event_source *source, usec_t usec, void *userdata) {
2862 Manager *m = userdata;
2863 int r;
2864 uint64_t next;
2865
2866 assert(m);
2867 assert(source);
2868
2869 manager_print_jobs_in_progress(m);
2870
2871 next = now(CLOCK_MONOTONIC) + JOBS_IN_PROGRESS_PERIOD_USEC;
2872 r = sd_event_source_set_time(source, next);
2873 if (r < 0)
2874 return r;
2875
2876 return sd_event_source_set_enabled(source, SD_EVENT_ONESHOT);
2877 }
2878
2879 int manager_loop(Manager *m) {
2880 RateLimit rl = { .interval = 1*USEC_PER_SEC, .burst = 50000 };
2881 int r;
2882
2883 assert(m);
2884 assert(m->objective == MANAGER_OK); /* Ensure manager_startup() has been called */
2885
2886 manager_check_finished(m);
2887
2888 /* There might still be some zombies hanging around from before we were exec()'ed. Let's reap them. */
2889 r = sd_event_source_set_enabled(m->sigchld_event_source, SD_EVENT_ON);
2890 if (r < 0)
2891 return log_error_errno(r, "Failed to enable SIGCHLD event source: %m");
2892
2893 while (m->objective == MANAGER_OK) {
2894 usec_t wait_usec;
2895
2896 if (timestamp_is_set(m->runtime_watchdog) && MANAGER_IS_SYSTEM(m))
2897 watchdog_ping();
2898
2899 if (!ratelimit_below(&rl)) {
2900 /* Yay, something is going seriously wrong, pause a little */
2901 log_warning("Looping too fast. Throttling execution a little.");
2902 sleep(1);
2903 }
2904
2905 if (manager_dispatch_load_queue(m) > 0)
2906 continue;
2907
2908 if (manager_dispatch_gc_job_queue(m) > 0)
2909 continue;
2910
2911 if (manager_dispatch_gc_unit_queue(m) > 0)
2912 continue;
2913
2914 if (manager_dispatch_cleanup_queue(m) > 0)
2915 continue;
2916
2917 if (manager_dispatch_cgroup_realize_queue(m) > 0)
2918 continue;
2919
2920 if (manager_dispatch_stop_when_unneeded_queue(m) > 0)
2921 continue;
2922
2923 if (manager_dispatch_dbus_queue(m) > 0)
2924 continue;
2925
2926 /* Sleep for half the watchdog time */
2927 if (timestamp_is_set(m->runtime_watchdog) && MANAGER_IS_SYSTEM(m)) {
2928 wait_usec = m->runtime_watchdog / 2;
2929 if (wait_usec <= 0)
2930 wait_usec = 1;
2931 } else
2932 wait_usec = USEC_INFINITY;
2933
2934 r = sd_event_run(m->event, wait_usec);
2935 if (r < 0)
2936 return log_error_errno(r, "Failed to run event loop: %m");
2937 }
2938
2939 return m->objective;
2940 }
2941
2942 int manager_load_unit_from_dbus_path(Manager *m, const char *s, sd_bus_error *e, Unit **_u) {
2943 _cleanup_free_ char *n = NULL;
2944 sd_id128_t invocation_id;
2945 Unit *u;
2946 int r;
2947
2948 assert(m);
2949 assert(s);
2950 assert(_u);
2951
2952 r = unit_name_from_dbus_path(s, &n);
2953 if (r < 0)
2954 return r;
2955
2956 /* Permit addressing units by invocation ID: if the passed bus path is suffixed by a 128bit ID then we use it
2957 * as invocation ID. */
2958 r = sd_id128_from_string(n, &invocation_id);
2959 if (r >= 0) {
2960 u = hashmap_get(m->units_by_invocation_id, &invocation_id);
2961 if (u) {
2962 *_u = u;
2963 return 0;
2964 }
2965
2966 return sd_bus_error_setf(e, BUS_ERROR_NO_UNIT_FOR_INVOCATION_ID,
2967 "No unit with the specified invocation ID " SD_ID128_FORMAT_STR " known.",
2968 SD_ID128_FORMAT_VAL(invocation_id));
2969 }
2970
2971 /* If this didn't work, we check if this is a unit name */
2972 if (!unit_name_is_valid(n, UNIT_NAME_PLAIN|UNIT_NAME_INSTANCE)) {
2973 _cleanup_free_ char *nn = NULL;
2974
2975 nn = cescape(n);
2976 return sd_bus_error_setf(e, SD_BUS_ERROR_INVALID_ARGS,
2977 "Unit name %s is neither a valid invocation ID nor unit name.", strnull(nn));
2978 }
2979
2980 r = manager_load_unit(m, n, NULL, e, &u);
2981 if (r < 0)
2982 return r;
2983
2984 *_u = u;
2985 return 0;
2986 }
2987
2988 int manager_get_job_from_dbus_path(Manager *m, const char *s, Job **_j) {
2989 const char *p;
2990 unsigned id;
2991 Job *j;
2992 int r;
2993
2994 assert(m);
2995 assert(s);
2996 assert(_j);
2997
2998 p = startswith(s, "/org/freedesktop/systemd1/job/");
2999 if (!p)
3000 return -EINVAL;
3001
3002 r = safe_atou(p, &id);
3003 if (r < 0)
3004 return r;
3005
3006 j = manager_get_job(m, id);
3007 if (!j)
3008 return -ENOENT;
3009
3010 *_j = j;
3011
3012 return 0;
3013 }
3014
3015 void manager_send_unit_audit(Manager *m, Unit *u, int type, bool success) {
3016
3017 #if HAVE_AUDIT
3018 _cleanup_free_ char *p = NULL;
3019 const char *msg;
3020 int audit_fd, r;
3021
3022 if (!MANAGER_IS_SYSTEM(m))
3023 return;
3024
3025 audit_fd = get_audit_fd();
3026 if (audit_fd < 0)
3027 return;
3028
3029 /* Don't generate audit events if the service was already
3030 * started and we're just deserializing */
3031 if (MANAGER_IS_RELOADING(m))
3032 return;
3033
3034 if (u->type != UNIT_SERVICE)
3035 return;
3036
3037 r = unit_name_to_prefix_and_instance(u->id, &p);
3038 if (r < 0) {
3039 log_error_errno(r, "Failed to extract prefix and instance of unit name: %m");
3040 return;
3041 }
3042
3043 msg = strjoina("unit=", p);
3044 if (audit_log_user_comm_message(audit_fd, type, msg, "systemd", NULL, NULL, NULL, success) < 0) {
3045 if (errno == EPERM)
3046 /* We aren't allowed to send audit messages?
3047 * Then let's not retry again. */
3048 close_audit_fd();
3049 else
3050 log_warning_errno(errno, "Failed to send audit message: %m");
3051 }
3052 #endif
3053
3054 }
3055
3056 void manager_send_unit_plymouth(Manager *m, Unit *u) {
3057 static const union sockaddr_union sa = PLYMOUTH_SOCKET;
3058 _cleanup_free_ char *message = NULL;
3059 _cleanup_close_ int fd = -1;
3060 int n = 0;
3061
3062 /* Don't generate plymouth events if the service was already
3063 * started and we're just deserializing */
3064 if (MANAGER_IS_RELOADING(m))
3065 return;
3066
3067 if (!MANAGER_IS_SYSTEM(m))
3068 return;
3069
3070 if (detect_container() > 0)
3071 return;
3072
3073 if (!IN_SET(u->type, UNIT_SERVICE, UNIT_MOUNT, UNIT_SWAP))
3074 return;
3075
3076 /* We set SOCK_NONBLOCK here so that we rather drop the
3077 * message then wait for plymouth */
3078 fd = socket(AF_UNIX, SOCK_STREAM|SOCK_CLOEXEC|SOCK_NONBLOCK, 0);
3079 if (fd < 0) {
3080 log_error_errno(errno, "socket() failed: %m");
3081 return;
3082 }
3083
3084 if (connect(fd, &sa.sa, SOCKADDR_UN_LEN(sa.un)) < 0) {
3085 if (!IN_SET(errno, EAGAIN, ENOENT) && !ERRNO_IS_DISCONNECT(errno))
3086 log_error_errno(errno, "connect() failed: %m");
3087 return;
3088 }
3089
3090 if (asprintf(&message, "U\002%c%s%n", (int) (strlen(u->id) + 1), u->id, &n) < 0) {
3091 log_oom();
3092 return;
3093 }
3094
3095 errno = 0;
3096 if (write(fd, message, n + 1) != n + 1)
3097 if (!IN_SET(errno, EAGAIN, ENOENT) && !ERRNO_IS_DISCONNECT(errno))
3098 log_error_errno(errno, "Failed to write Plymouth message: %m");
3099 }
3100
3101 int manager_open_serialization(Manager *m, FILE **_f) {
3102 int fd;
3103 FILE *f;
3104
3105 assert(_f);
3106
3107 fd = open_serialization_fd("systemd-state");
3108 if (fd < 0)
3109 return fd;
3110
3111 f = fdopen(fd, "w+");
3112 if (!f) {
3113 safe_close(fd);
3114 return -errno;
3115 }
3116
3117 *_f = f;
3118 return 0;
3119 }
3120
3121 static bool manager_timestamp_shall_serialize(ManagerTimestamp t) {
3122
3123 if (!in_initrd())
3124 return true;
3125
3126 /* The following timestamps only apply to the host system, hence only serialize them there */
3127 return !IN_SET(t,
3128 MANAGER_TIMESTAMP_USERSPACE, MANAGER_TIMESTAMP_FINISH,
3129 MANAGER_TIMESTAMP_SECURITY_START, MANAGER_TIMESTAMP_SECURITY_FINISH,
3130 MANAGER_TIMESTAMP_GENERATORS_START, MANAGER_TIMESTAMP_GENERATORS_FINISH,
3131 MANAGER_TIMESTAMP_UNITS_LOAD_START, MANAGER_TIMESTAMP_UNITS_LOAD_FINISH);
3132 }
3133
3134 int manager_serialize(
3135 Manager *m,
3136 FILE *f,
3137 FDSet *fds,
3138 bool switching_root) {
3139
3140 ManagerTimestamp q;
3141 const char *t;
3142 Iterator i;
3143 Unit *u;
3144 int r;
3145
3146 assert(m);
3147 assert(f);
3148 assert(fds);
3149
3150 _cleanup_(manager_reloading_stopp) _unused_ Manager *reloading = manager_reloading_start(m);
3151
3152 (void) serialize_item_format(f, "current-job-id", "%" PRIu32, m->current_job_id);
3153 (void) serialize_item_format(f, "n-installed-jobs", "%u", m->n_installed_jobs);
3154 (void) serialize_item_format(f, "n-failed-jobs", "%u", m->n_failed_jobs);
3155 (void) serialize_bool(f, "taint-usr", m->taint_usr);
3156 (void) serialize_bool(f, "ready-sent", m->ready_sent);
3157 (void) serialize_bool(f, "taint-logged", m->taint_logged);
3158 (void) serialize_bool(f, "service-watchdogs", m->service_watchdogs);
3159
3160 /* After switching root, udevd has not been started yet. So, enumeration results should not be emitted. */
3161 (void) serialize_bool(f, "honor-device-enumeration", !switching_root);
3162
3163 t = show_status_to_string(m->show_status);
3164 if (t)
3165 (void) serialize_item(f, "show-status", t);
3166
3167 if (m->log_level_overridden)
3168 (void) serialize_item_format(f, "log-level-override", "%i", log_get_max_level());
3169 if (m->log_target_overridden)
3170 (void) serialize_item(f, "log-target-override", log_target_to_string(log_get_target()));
3171
3172 for (q = 0; q < _MANAGER_TIMESTAMP_MAX; q++) {
3173 _cleanup_free_ char *joined = NULL;
3174
3175 if (!manager_timestamp_shall_serialize(q))
3176 continue;
3177
3178 joined = strjoin(manager_timestamp_to_string(q), "-timestamp");
3179 if (!joined)
3180 return log_oom();
3181
3182 (void) serialize_dual_timestamp(f, joined, m->timestamps + q);
3183 }
3184
3185 if (!switching_root)
3186 (void) serialize_strv(f, "env", m->client_environment);
3187
3188 if (m->notify_fd >= 0) {
3189 r = serialize_fd(f, fds, "notify-fd", m->notify_fd);
3190 if (r < 0)
3191 return r;
3192
3193 (void) serialize_item(f, "notify-socket", m->notify_socket);
3194 }
3195
3196 if (m->cgroups_agent_fd >= 0) {
3197 r = serialize_fd(f, fds, "cgroups-agent-fd", m->cgroups_agent_fd);
3198 if (r < 0)
3199 return r;
3200 }
3201
3202 if (m->user_lookup_fds[0] >= 0) {
3203 int copy0, copy1;
3204
3205 copy0 = fdset_put_dup(fds, m->user_lookup_fds[0]);
3206 if (copy0 < 0)
3207 return log_error_errno(copy0, "Failed to add user lookup fd to serialization: %m");
3208
3209 copy1 = fdset_put_dup(fds, m->user_lookup_fds[1]);
3210 if (copy1 < 0)
3211 return log_error_errno(copy1, "Failed to add user lookup fd to serialization: %m");
3212
3213 (void) serialize_item_format(f, "user-lookup", "%i %i", copy0, copy1);
3214 }
3215
3216 bus_track_serialize(m->subscribed, f, "subscribed");
3217
3218 r = dynamic_user_serialize(m, f, fds);
3219 if (r < 0)
3220 return r;
3221
3222 manager_serialize_uid_refs(m, f);
3223 manager_serialize_gid_refs(m, f);
3224
3225 r = exec_runtime_serialize(m, f, fds);
3226 if (r < 0)
3227 return r;
3228
3229 (void) fputc('\n', f);
3230
3231 HASHMAP_FOREACH_KEY(u, t, m->units, i) {
3232 if (u->id != t)
3233 continue;
3234
3235 /* Start marker */
3236 fputs(u->id, f);
3237 fputc('\n', f);
3238
3239 r = unit_serialize(u, f, fds, !switching_root);
3240 if (r < 0)
3241 return r;
3242 }
3243
3244 r = fflush_and_check(f);
3245 if (r < 0)
3246 return log_error_errno(r, "Failed to flush serialization: %m");
3247
3248 r = bus_fdset_add_all(m, fds);
3249 if (r < 0)
3250 return log_error_errno(r, "Failed to add bus sockets to serialization: %m");
3251
3252 return 0;
3253 }
3254
3255 static int manager_deserialize_one_unit(Manager *m, const char *name, FILE *f, FDSet *fds) {
3256 Unit *u;
3257 int r;
3258
3259 r = manager_load_unit(m, name, NULL, NULL, &u);
3260 if (r < 0) {
3261 if (r == -ENOMEM)
3262 return r;
3263 return log_notice_errno(r, "Failed to load unit \"%s\", skipping deserialization: %m", name);
3264 }
3265
3266 r = unit_deserialize(u, f, fds);
3267 if (r < 0) {
3268 if (r == -ENOMEM)
3269 return r;
3270 return log_notice_errno(r, "Failed to deserialize unit \"%s\", skipping: %m", name);
3271 }
3272
3273 return 0;
3274 }
3275
3276 static int manager_deserialize_units(Manager *m, FILE *f, FDSet *fds) {
3277 const char *unit_name;
3278 int r;
3279
3280 for (;;) {
3281 _cleanup_free_ char *line = NULL;
3282 /* Start marker */
3283 r = read_line(f, LONG_LINE_MAX, &line);
3284 if (r < 0)
3285 return log_error_errno(r, "Failed to read serialization line: %m");
3286 if (r == 0)
3287 break;
3288
3289 unit_name = strstrip(line);
3290
3291 r = manager_deserialize_one_unit(m, unit_name, f, fds);
3292 if (r == -ENOMEM)
3293 return r;
3294 if (r < 0) {
3295 r = unit_deserialize_skip(f);
3296 if (r < 0)
3297 return r;
3298 }
3299 }
3300
3301 return 0;
3302 }
3303
3304 int manager_deserialize(Manager *m, FILE *f, FDSet *fds) {
3305 int r = 0;
3306
3307 assert(m);
3308 assert(f);
3309
3310 log_debug("Deserializing state...");
3311
3312 /* If we are not in reload mode yet, enter it now. Not that this is recursive, a caller might already have
3313 * increased it to non-zero, which is why we just increase it by one here and down again at the end of this
3314 * call. */
3315 _cleanup_(manager_reloading_stopp) _unused_ Manager *reloading = manager_reloading_start(m);
3316
3317 for (;;) {
3318 _cleanup_free_ char *line = NULL;
3319 const char *val, *l;
3320
3321 r = read_line(f, LONG_LINE_MAX, &line);
3322 if (r < 0)
3323 return log_error_errno(r, "Failed to read serialization line: %m");
3324 if (r == 0)
3325 break;
3326
3327 l = strstrip(line);
3328 if (isempty(l)) /* end marker */
3329 break;
3330
3331 if ((val = startswith(l, "current-job-id="))) {
3332 uint32_t id;
3333
3334 if (safe_atou32(val, &id) < 0)
3335 log_notice("Failed to parse current job id value '%s', ignoring.", val);
3336 else
3337 m->current_job_id = MAX(m->current_job_id, id);
3338
3339 } else if ((val = startswith(l, "n-installed-jobs="))) {
3340 uint32_t n;
3341
3342 if (safe_atou32(val, &n) < 0)
3343 log_notice("Failed to parse installed jobs counter '%s', ignoring.", val);
3344 else
3345 m->n_installed_jobs += n;
3346
3347 } else if ((val = startswith(l, "n-failed-jobs="))) {
3348 uint32_t n;
3349
3350 if (safe_atou32(val, &n) < 0)
3351 log_notice("Failed to parse failed jobs counter '%s', ignoring.", val);
3352 else
3353 m->n_failed_jobs += n;
3354
3355 } else if ((val = startswith(l, "taint-usr="))) {
3356 int b;
3357
3358 b = parse_boolean(val);
3359 if (b < 0)
3360 log_notice("Failed to parse taint /usr flag '%s', ignoring.", val);
3361 else
3362 m->taint_usr = m->taint_usr || b;
3363
3364 } else if ((val = startswith(l, "ready-sent="))) {
3365 int b;
3366
3367 b = parse_boolean(val);
3368 if (b < 0)
3369 log_notice("Failed to parse ready-sent flag '%s', ignoring.", val);
3370 else
3371 m->ready_sent = m->ready_sent || b;
3372
3373 } else if ((val = startswith(l, "taint-logged="))) {
3374 int b;
3375
3376 b = parse_boolean(val);
3377 if (b < 0)
3378 log_notice("Failed to parse taint-logged flag '%s', ignoring.", val);
3379 else
3380 m->taint_logged = m->taint_logged || b;
3381
3382 } else if ((val = startswith(l, "service-watchdogs="))) {
3383 int b;
3384
3385 b = parse_boolean(val);
3386 if (b < 0)
3387 log_notice("Failed to parse service-watchdogs flag '%s', ignoring.", val);
3388 else
3389 m->service_watchdogs = b;
3390
3391 } else if ((val = startswith(l, "honor-device-enumeration="))) {
3392 int b;
3393
3394 b = parse_boolean(val);
3395 if (b < 0)
3396 log_notice("Failed to parse honor-device-enumeration flag '%s', ignoring.", val);
3397 else
3398 m->honor_device_enumeration = b;
3399
3400 } else if ((val = startswith(l, "show-status="))) {
3401 ShowStatus s;
3402
3403 s = show_status_from_string(val);
3404 if (s < 0)
3405 log_notice("Failed to parse show-status flag '%s', ignoring.", val);
3406 else
3407 manager_set_show_status(m, s);
3408
3409 } else if ((val = startswith(l, "log-level-override="))) {
3410 int level;
3411
3412 level = log_level_from_string(val);
3413 if (level < 0)
3414 log_notice("Failed to parse log-level-override value '%s', ignoring.", val);
3415 else
3416 manager_override_log_level(m, level);
3417
3418 } else if ((val = startswith(l, "log-target-override="))) {
3419 LogTarget target;
3420
3421 target = log_target_from_string(val);
3422 if (target < 0)
3423 log_notice("Failed to parse log-target-override value '%s', ignoring.", val);
3424 else
3425 manager_override_log_target(m, target);
3426
3427 } else if (startswith(l, "env=")) {
3428 r = deserialize_environment(l + 4, &m->client_environment);
3429 if (r < 0)
3430 log_notice_errno(r, "Failed to parse environment entry: \"%s\", ignoring: %m", l);
3431
3432 } else if ((val = startswith(l, "notify-fd="))) {
3433 int fd;
3434
3435 if (safe_atoi(val, &fd) < 0 || fd < 0 || !fdset_contains(fds, fd))
3436 log_notice("Failed to parse notify fd, ignoring: \"%s\"", val);
3437 else {
3438 m->notify_event_source = sd_event_source_unref(m->notify_event_source);
3439 safe_close(m->notify_fd);
3440 m->notify_fd = fdset_remove(fds, fd);
3441 }
3442
3443 } else if ((val = startswith(l, "notify-socket="))) {
3444 r = free_and_strdup(&m->notify_socket, val);
3445 if (r < 0)
3446 return r;
3447
3448 } else if ((val = startswith(l, "cgroups-agent-fd="))) {
3449 int fd;
3450
3451 if (safe_atoi(val, &fd) < 0 || fd < 0 || !fdset_contains(fds, fd))
3452 log_notice("Failed to parse cgroups agent fd, ignoring.: %s", val);
3453 else {
3454 m->cgroups_agent_event_source = sd_event_source_unref(m->cgroups_agent_event_source);
3455 safe_close(m->cgroups_agent_fd);
3456 m->cgroups_agent_fd = fdset_remove(fds, fd);
3457 }
3458
3459 } else if ((val = startswith(l, "user-lookup="))) {
3460 int fd0, fd1;
3461
3462 if (sscanf(val, "%i %i", &fd0, &fd1) != 2 || fd0 < 0 || fd1 < 0 || fd0 == fd1 || !fdset_contains(fds, fd0) || !fdset_contains(fds, fd1))
3463 log_notice("Failed to parse user lookup fd, ignoring: %s", val);
3464 else {
3465 m->user_lookup_event_source = sd_event_source_unref(m->user_lookup_event_source);
3466 safe_close_pair(m->user_lookup_fds);
3467 m->user_lookup_fds[0] = fdset_remove(fds, fd0);
3468 m->user_lookup_fds[1] = fdset_remove(fds, fd1);
3469 }
3470
3471 } else if ((val = startswith(l, "dynamic-user=")))
3472 dynamic_user_deserialize_one(m, val, fds);
3473 else if ((val = startswith(l, "destroy-ipc-uid=")))
3474 manager_deserialize_uid_refs_one(m, val);
3475 else if ((val = startswith(l, "destroy-ipc-gid=")))
3476 manager_deserialize_gid_refs_one(m, val);
3477 else if ((val = startswith(l, "exec-runtime=")))
3478 exec_runtime_deserialize_one(m, val, fds);
3479 else if ((val = startswith(l, "subscribed="))) {
3480
3481 if (strv_extend(&m->deserialized_subscribed, val) < 0)
3482 return -ENOMEM;
3483
3484 } else {
3485 ManagerTimestamp q;
3486
3487 for (q = 0; q < _MANAGER_TIMESTAMP_MAX; q++) {
3488 val = startswith(l, manager_timestamp_to_string(q));
3489 if (!val)
3490 continue;
3491
3492 val = startswith(val, "-timestamp=");
3493 if (val)
3494 break;
3495 }
3496
3497 if (q < _MANAGER_TIMESTAMP_MAX) /* found it */
3498 (void) deserialize_dual_timestamp(val, m->timestamps + q);
3499 else if (!startswith(l, "kdbus-fd=")) /* ignore kdbus */
3500 log_notice("Unknown serialization item '%s', ignoring.", l);
3501 }
3502 }
3503
3504 return manager_deserialize_units(m, f, fds);
3505 }
3506
3507 int manager_reload(Manager *m) {
3508 _cleanup_(manager_reloading_stopp) Manager *reloading = NULL;
3509 _cleanup_fdset_free_ FDSet *fds = NULL;
3510 _cleanup_fclose_ FILE *f = NULL;
3511 int r;
3512
3513 assert(m);
3514
3515 r = manager_open_serialization(m, &f);
3516 if (r < 0)
3517 return log_error_errno(r, "Failed to create serialization file: %m");
3518
3519 fds = fdset_new();
3520 if (!fds)
3521 return log_oom();
3522
3523 /* We are officially in reload mode from here on. */
3524 reloading = manager_reloading_start(m);
3525
3526 r = manager_serialize(m, f, fds, false);
3527 if (r < 0)
3528 return r;
3529
3530 if (fseeko(f, 0, SEEK_SET) < 0)
3531 return log_error_errno(errno, "Failed to seek to beginning of serialization: %m");
3532
3533 /* 💀 This is the point of no return, from here on there is no way back. 💀 */
3534 reloading = NULL;
3535
3536 bus_manager_send_reloading(m, true);
3537
3538 /* Start by flushing out all jobs and units, all generated units, all runtime environments, all dynamic users
3539 * and everything else that is worth flushing out. We'll get it all back from the serialization — if we need
3540 * it.*/
3541
3542 manager_clear_jobs_and_units(m);
3543 lookup_paths_flush_generator(&m->lookup_paths);
3544 lookup_paths_free(&m->lookup_paths);
3545 exec_runtime_vacuum(m);
3546 dynamic_user_vacuum(m, false);
3547 m->uid_refs = hashmap_free(m->uid_refs);
3548 m->gid_refs = hashmap_free(m->gid_refs);
3549
3550 r = lookup_paths_init(&m->lookup_paths, m->unit_file_scope, 0, NULL);
3551 if (r < 0)
3552 log_warning_errno(r, "Failed to initialize path lookup table, ignoring: %m");
3553
3554 (void) manager_run_environment_generators(m);
3555 (void) manager_run_generators(m);
3556
3557 lookup_paths_log(&m->lookup_paths);
3558
3559 /* We flushed out generated files, for which we don't watch mtime, so we should flush the old map. */
3560 manager_free_unit_name_maps(m);
3561
3562 /* First, enumerate what we can from kernel and suchlike */
3563 manager_enumerate_perpetual(m);
3564 manager_enumerate(m);
3565
3566 /* Second, deserialize our stored data */
3567 r = manager_deserialize(m, f, fds);
3568 if (r < 0)
3569 log_warning_errno(r, "Deserialization failed, proceeding anyway: %m");
3570
3571 /* We don't need the serialization anymore */
3572 f = safe_fclose(f);
3573
3574 /* Re-register notify_fd as event source, and set up other sockets/communication channels we might need */
3575 (void) manager_setup_notify(m);
3576 (void) manager_setup_cgroups_agent(m);
3577 (void) manager_setup_user_lookup_fd(m);
3578
3579 /* Third, fire things up! */
3580 manager_coldplug(m);
3581
3582 /* Clean up runtime objects no longer referenced */
3583 manager_vacuum(m);
3584
3585 /* Consider the reload process complete now. */
3586 assert(m->n_reloading > 0);
3587 m->n_reloading--;
3588
3589 /* On manager reloading, device tag data should exists, thus, we should honor the results of device
3590 * enumeration. The flag should be always set correctly by the serialized data, but it may fail. So,
3591 * let's always set the flag here for safety. */
3592 m->honor_device_enumeration = true;
3593
3594 manager_ready(m);
3595
3596 m->send_reloading_done = true;
3597 return 0;
3598 }
3599
3600 void manager_reset_failed(Manager *m) {
3601 Unit *u;
3602 Iterator i;
3603
3604 assert(m);
3605
3606 HASHMAP_FOREACH(u, m->units, i)
3607 unit_reset_failed(u);
3608 }
3609
3610 bool manager_unit_inactive_or_pending(Manager *m, const char *name) {
3611 Unit *u;
3612
3613 assert(m);
3614 assert(name);
3615
3616 /* Returns true if the unit is inactive or going down */
3617 u = manager_get_unit(m, name);
3618 if (!u)
3619 return true;
3620
3621 return unit_inactive_or_pending(u);
3622 }
3623
3624 static void log_taint_string(Manager *m) {
3625 _cleanup_free_ char *taint = NULL;
3626
3627 assert(m);
3628
3629 if (MANAGER_IS_USER(m) || m->taint_logged)
3630 return;
3631
3632 m->taint_logged = true; /* only check for taint once */
3633
3634 taint = manager_taint_string(m);
3635 if (isempty(taint))
3636 return;
3637
3638 log_struct(LOG_NOTICE,
3639 LOG_MESSAGE("System is tainted: %s", taint),
3640 "TAINT=%s", taint,
3641 "MESSAGE_ID=" SD_MESSAGE_TAINTED_STR);
3642 }
3643
3644 static void manager_notify_finished(Manager *m) {
3645 char userspace[FORMAT_TIMESPAN_MAX], initrd[FORMAT_TIMESPAN_MAX], kernel[FORMAT_TIMESPAN_MAX], sum[FORMAT_TIMESPAN_MAX];
3646 usec_t firmware_usec, loader_usec, kernel_usec, initrd_usec, userspace_usec, total_usec;
3647
3648 if (MANAGER_IS_TEST_RUN(m))
3649 return;
3650
3651 if (MANAGER_IS_SYSTEM(m) && detect_container() <= 0) {
3652 char ts[FORMAT_TIMESPAN_MAX];
3653 char buf[FORMAT_TIMESPAN_MAX + STRLEN(" (firmware) + ") + FORMAT_TIMESPAN_MAX + STRLEN(" (loader) + ")]
3654 = {};
3655 char *p = buf;
3656 size_t size = sizeof buf;
3657
3658 /* Note that MANAGER_TIMESTAMP_KERNEL's monotonic value is always at 0, and
3659 * MANAGER_TIMESTAMP_FIRMWARE's and MANAGER_TIMESTAMP_LOADER's monotonic value should be considered
3660 * negative values. */
3661
3662 firmware_usec = m->timestamps[MANAGER_TIMESTAMP_FIRMWARE].monotonic - m->timestamps[MANAGER_TIMESTAMP_LOADER].monotonic;
3663 loader_usec = m->timestamps[MANAGER_TIMESTAMP_LOADER].monotonic - m->timestamps[MANAGER_TIMESTAMP_KERNEL].monotonic;
3664 userspace_usec = m->timestamps[MANAGER_TIMESTAMP_FINISH].monotonic - m->timestamps[MANAGER_TIMESTAMP_USERSPACE].monotonic;
3665 total_usec = m->timestamps[MANAGER_TIMESTAMP_FIRMWARE].monotonic + m->timestamps[MANAGER_TIMESTAMP_FINISH].monotonic;
3666
3667 if (firmware_usec > 0)
3668 size = strpcpyf(&p, size, "%s (firmware) + ", format_timespan(ts, sizeof(ts), firmware_usec, USEC_PER_MSEC));
3669 if (loader_usec > 0)
3670 size = strpcpyf(&p, size, "%s (loader) + ", format_timespan(ts, sizeof(ts), loader_usec, USEC_PER_MSEC));
3671
3672 if (dual_timestamp_is_set(&m->timestamps[MANAGER_TIMESTAMP_INITRD])) {
3673
3674 /* The initrd case on bare-metal*/
3675 kernel_usec = m->timestamps[MANAGER_TIMESTAMP_INITRD].monotonic - m->timestamps[MANAGER_TIMESTAMP_KERNEL].monotonic;
3676 initrd_usec = m->timestamps[MANAGER_TIMESTAMP_USERSPACE].monotonic - m->timestamps[MANAGER_TIMESTAMP_INITRD].monotonic;
3677
3678 log_struct(LOG_INFO,
3679 "MESSAGE_ID=" SD_MESSAGE_STARTUP_FINISHED_STR,
3680 "KERNEL_USEC="USEC_FMT, kernel_usec,
3681 "INITRD_USEC="USEC_FMT, initrd_usec,
3682 "USERSPACE_USEC="USEC_FMT, userspace_usec,
3683 LOG_MESSAGE("Startup finished in %s%s (kernel) + %s (initrd) + %s (userspace) = %s.",
3684 buf,
3685 format_timespan(kernel, sizeof(kernel), kernel_usec, USEC_PER_MSEC),
3686 format_timespan(initrd, sizeof(initrd), initrd_usec, USEC_PER_MSEC),
3687 format_timespan(userspace, sizeof(userspace), userspace_usec, USEC_PER_MSEC),
3688 format_timespan(sum, sizeof(sum), total_usec, USEC_PER_MSEC)));
3689 } else {
3690 /* The initrd-less case on bare-metal*/
3691
3692 kernel_usec = m->timestamps[MANAGER_TIMESTAMP_USERSPACE].monotonic - m->timestamps[MANAGER_TIMESTAMP_KERNEL].monotonic;
3693 initrd_usec = 0;
3694
3695 log_struct(LOG_INFO,
3696 "MESSAGE_ID=" SD_MESSAGE_STARTUP_FINISHED_STR,
3697 "KERNEL_USEC="USEC_FMT, kernel_usec,
3698 "USERSPACE_USEC="USEC_FMT, userspace_usec,
3699 LOG_MESSAGE("Startup finished in %s%s (kernel) + %s (userspace) = %s.",
3700 buf,
3701 format_timespan(kernel, sizeof(kernel), kernel_usec, USEC_PER_MSEC),
3702 format_timespan(userspace, sizeof(userspace), userspace_usec, USEC_PER_MSEC),
3703 format_timespan(sum, sizeof(sum), total_usec, USEC_PER_MSEC)));
3704 }
3705 } else {
3706 /* The container and --user case */
3707 firmware_usec = loader_usec = initrd_usec = kernel_usec = 0;
3708 total_usec = userspace_usec = m->timestamps[MANAGER_TIMESTAMP_FINISH].monotonic - m->timestamps[MANAGER_TIMESTAMP_USERSPACE].monotonic;
3709
3710 log_struct(LOG_INFO,
3711 "MESSAGE_ID=" SD_MESSAGE_USER_STARTUP_FINISHED_STR,
3712 "USERSPACE_USEC="USEC_FMT, userspace_usec,
3713 LOG_MESSAGE("Startup finished in %s.",
3714 format_timespan(sum, sizeof(sum), total_usec, USEC_PER_MSEC)));
3715 }
3716
3717 bus_manager_send_finished(m, firmware_usec, loader_usec, kernel_usec, initrd_usec, userspace_usec, total_usec);
3718
3719 sd_notifyf(false,
3720 m->ready_sent ? "STATUS=Startup finished in %s."
3721 : "READY=1\n"
3722 "STATUS=Startup finished in %s.",
3723 format_timespan(sum, sizeof(sum), total_usec, USEC_PER_MSEC));
3724 m->ready_sent = true;
3725
3726 log_taint_string(m);
3727 }
3728
3729 static void manager_send_ready(Manager *m) {
3730 assert(m);
3731
3732 /* We send READY=1 on reaching basic.target only when running in --user mode. */
3733 if (!MANAGER_IS_USER(m) || m->ready_sent)
3734 return;
3735
3736 m->ready_sent = true;
3737
3738 sd_notifyf(false,
3739 "READY=1\n"
3740 "STATUS=Reached " SPECIAL_BASIC_TARGET ".");
3741 }
3742
3743 static void manager_check_basic_target(Manager *m) {
3744 Unit *u;
3745
3746 assert(m);
3747
3748 /* Small shortcut */
3749 if (m->ready_sent && m->taint_logged)
3750 return;
3751
3752 u = manager_get_unit(m, SPECIAL_BASIC_TARGET);
3753 if (!u || !UNIT_IS_ACTIVE_OR_RELOADING(unit_active_state(u)))
3754 return;
3755
3756 /* For user managers, send out READY=1 as soon as we reach basic.target */
3757 manager_send_ready(m);
3758
3759 /* Log the taint string as soon as we reach basic.target */
3760 log_taint_string(m);
3761 }
3762
3763 void manager_check_finished(Manager *m) {
3764 assert(m);
3765
3766 if (MANAGER_IS_RELOADING(m))
3767 return;
3768
3769 /* Verify that we have entered the event loop already, and not left it again. */
3770 if (!MANAGER_IS_RUNNING(m))
3771 return;
3772
3773 manager_check_basic_target(m);
3774
3775 if (hashmap_size(m->jobs) > 0) {
3776 if (m->jobs_in_progress_event_source)
3777 /* Ignore any failure, this is only for feedback */
3778 (void) sd_event_source_set_time(m->jobs_in_progress_event_source, now(CLOCK_MONOTONIC) + JOBS_IN_PROGRESS_WAIT_USEC);
3779
3780 return;
3781 }
3782
3783 manager_flip_auto_status(m, false);
3784
3785 /* Notify Type=idle units that we are done now */
3786 manager_close_idle_pipe(m);
3787
3788 /* Turn off confirm spawn now */
3789 m->confirm_spawn = NULL;
3790
3791 /* No need to update ask password status when we're going non-interactive */
3792 manager_close_ask_password(m);
3793
3794 /* This is no longer the first boot */
3795 manager_set_first_boot(m, false);
3796
3797 if (MANAGER_IS_FINISHED(m))
3798 return;
3799
3800 dual_timestamp_get(m->timestamps + MANAGER_TIMESTAMP_FINISH);
3801
3802 manager_notify_finished(m);
3803
3804 manager_invalidate_startup_units(m);
3805 }
3806
3807 static bool generator_path_any(const char* const* paths) {
3808 char **path;
3809 bool found = false;
3810
3811 /* Optimize by skipping the whole process by not creating output directories
3812 * if no generators are found. */
3813 STRV_FOREACH(path, (char**) paths)
3814 if (access(*path, F_OK) == 0)
3815 found = true;
3816 else if (errno != ENOENT)
3817 log_warning_errno(errno, "Failed to open generator directory %s: %m", *path);
3818
3819 return found;
3820 }
3821
3822 static const char *const system_env_generator_binary_paths[] = {
3823 "/run/systemd/system-environment-generators",
3824 "/etc/systemd/system-environment-generators",
3825 "/usr/local/lib/systemd/system-environment-generators",
3826 SYSTEM_ENV_GENERATOR_PATH,
3827 NULL
3828 };
3829
3830 static const char *const user_env_generator_binary_paths[] = {
3831 "/run/systemd/user-environment-generators",
3832 "/etc/systemd/user-environment-generators",
3833 "/usr/local/lib/systemd/user-environment-generators",
3834 USER_ENV_GENERATOR_PATH,
3835 NULL
3836 };
3837
3838 static int manager_run_environment_generators(Manager *m) {
3839 char **tmp = NULL; /* this is only used in the forked process, no cleanup here */
3840 const char *const *paths;
3841 void* args[] = {
3842 [STDOUT_GENERATE] = &tmp,
3843 [STDOUT_COLLECT] = &tmp,
3844 [STDOUT_CONSUME] = &m->transient_environment,
3845 };
3846 int r;
3847
3848 if (MANAGER_IS_TEST_RUN(m) && !(m->test_run_flags & MANAGER_TEST_RUN_ENV_GENERATORS))
3849 return 0;
3850
3851 paths = MANAGER_IS_SYSTEM(m) ? system_env_generator_binary_paths : user_env_generator_binary_paths;
3852
3853 if (!generator_path_any(paths))
3854 return 0;
3855
3856 RUN_WITH_UMASK(0022)
3857 r = execute_directories(paths, DEFAULT_TIMEOUT_USEC, gather_environment,
3858 args, NULL, m->transient_environment, EXEC_DIR_PARALLEL | EXEC_DIR_IGNORE_ERRORS);
3859 return r;
3860 }
3861
3862 static int manager_run_generators(Manager *m) {
3863 _cleanup_strv_free_ char **paths = NULL;
3864 const char *argv[5];
3865 int r;
3866
3867 assert(m);
3868
3869 if (MANAGER_IS_TEST_RUN(m) && !(m->test_run_flags & MANAGER_TEST_RUN_GENERATORS))
3870 return 0;
3871
3872 paths = generator_binary_paths(m->unit_file_scope);
3873 if (!paths)
3874 return log_oom();
3875
3876 if (!generator_path_any((const char* const*) paths))
3877 return 0;
3878
3879 r = lookup_paths_mkdir_generator(&m->lookup_paths);
3880 if (r < 0) {
3881 log_error_errno(r, "Failed to create generator directories: %m");
3882 goto finish;
3883 }
3884
3885 argv[0] = NULL; /* Leave this empty, execute_directory() will fill something in */
3886 argv[1] = m->lookup_paths.generator;
3887 argv[2] = m->lookup_paths.generator_early;
3888 argv[3] = m->lookup_paths.generator_late;
3889 argv[4] = NULL;
3890
3891 RUN_WITH_UMASK(0022)
3892 (void) execute_directories((const char* const*) paths, DEFAULT_TIMEOUT_USEC, NULL, NULL,
3893 (char**) argv, m->transient_environment, EXEC_DIR_PARALLEL | EXEC_DIR_IGNORE_ERRORS);
3894
3895 r = 0;
3896
3897 finish:
3898 lookup_paths_trim_generator(&m->lookup_paths);
3899 return r;
3900 }
3901
3902 int manager_transient_environment_add(Manager *m, char **plus) {
3903 char **a;
3904
3905 assert(m);
3906
3907 if (strv_isempty(plus))
3908 return 0;
3909
3910 a = strv_env_merge(2, m->transient_environment, plus);
3911 if (!a)
3912 return log_oom();
3913
3914 sanitize_environment(a);
3915
3916 return strv_free_and_replace(m->transient_environment, a);
3917 }
3918
3919 int manager_client_environment_modify(
3920 Manager *m,
3921 char **minus,
3922 char **plus) {
3923
3924 char **a = NULL, **b = NULL, **l;
3925
3926 assert(m);
3927
3928 if (strv_isempty(minus) && strv_isempty(plus))
3929 return 0;
3930
3931 l = m->client_environment;
3932
3933 if (!strv_isempty(minus)) {
3934 a = strv_env_delete(l, 1, minus);
3935 if (!a)
3936 return -ENOMEM;
3937
3938 l = a;
3939 }
3940
3941 if (!strv_isempty(plus)) {
3942 b = strv_env_merge(2, l, plus);
3943 if (!b) {
3944 strv_free(a);
3945 return -ENOMEM;
3946 }
3947
3948 l = b;
3949 }
3950
3951 if (m->client_environment != l)
3952 strv_free(m->client_environment);
3953
3954 if (a != l)
3955 strv_free(a);
3956 if (b != l)
3957 strv_free(b);
3958
3959 m->client_environment = sanitize_environment(l);
3960 return 0;
3961 }
3962
3963 int manager_get_effective_environment(Manager *m, char ***ret) {
3964 char **l;
3965
3966 assert(m);
3967 assert(ret);
3968
3969 l = strv_env_merge(2, m->transient_environment, m->client_environment);
3970 if (!l)
3971 return -ENOMEM;
3972
3973 *ret = l;
3974 return 0;
3975 }
3976
3977 int manager_set_default_rlimits(Manager *m, struct rlimit **default_rlimit) {
3978 int i;
3979
3980 assert(m);
3981
3982 for (i = 0; i < _RLIMIT_MAX; i++) {
3983 m->rlimit[i] = mfree(m->rlimit[i]);
3984
3985 if (!default_rlimit[i])
3986 continue;
3987
3988 m->rlimit[i] = newdup(struct rlimit, default_rlimit[i], 1);
3989 if (!m->rlimit[i])
3990 return log_oom();
3991 }
3992
3993 return 0;
3994 }
3995
3996 void manager_recheck_dbus(Manager *m) {
3997 assert(m);
3998
3999 /* Connects to the bus if the dbus service and socket are running. If we are running in user mode this is all
4000 * it does. In system mode we'll also connect to the system bus (which will most likely just reuse the
4001 * connection of the API bus). That's because the system bus after all runs as service of the system instance,
4002 * while in the user instance we can assume it's already there. */
4003
4004 if (MANAGER_IS_RELOADING(m))
4005 return; /* don't check while we are reloading… */
4006
4007 if (manager_dbus_is_running(m, false)) {
4008 (void) bus_init_api(m);
4009
4010 if (MANAGER_IS_SYSTEM(m))
4011 (void) bus_init_system(m);
4012 } else {
4013 (void) bus_done_api(m);
4014
4015 if (MANAGER_IS_SYSTEM(m))
4016 (void) bus_done_system(m);
4017 }
4018 }
4019
4020 static bool manager_journal_is_running(Manager *m) {
4021 Unit *u;
4022
4023 assert(m);
4024
4025 if (MANAGER_IS_TEST_RUN(m))
4026 return false;
4027
4028 /* If we are the user manager we can safely assume that the journal is up */
4029 if (!MANAGER_IS_SYSTEM(m))
4030 return true;
4031
4032 /* Check that the socket is not only up, but in RUNNING state */
4033 u = manager_get_unit(m, SPECIAL_JOURNALD_SOCKET);
4034 if (!u)
4035 return false;
4036 if (SOCKET(u)->state != SOCKET_RUNNING)
4037 return false;
4038
4039 /* Similar, check if the daemon itself is fully up, too */
4040 u = manager_get_unit(m, SPECIAL_JOURNALD_SERVICE);
4041 if (!u)
4042 return false;
4043 if (!IN_SET(SERVICE(u)->state, SERVICE_RELOAD, SERVICE_RUNNING))
4044 return false;
4045
4046 return true;
4047 }
4048
4049 void disable_printk_ratelimit(void) {
4050 /* Disable kernel's printk ratelimit.
4051 *
4052 * Logging to /dev/kmsg is most useful during early boot and shutdown, where normal logging
4053 * mechanisms are not available. The semantics of this sysctl are such that any kernel command-line
4054 * setting takes precedence. */
4055 int r;
4056
4057 r = sysctl_write("kernel/printk_devkmsg", "on");
4058 if (r < 0)
4059 log_debug_errno(r, "Failed to set sysctl kernel.printk_devkmsg=on: %m");
4060 }
4061
4062 void manager_recheck_journal(Manager *m) {
4063
4064 assert(m);
4065
4066 /* Don't bother with this unless we are in the special situation of being PID 1 */
4067 if (getpid_cached() != 1)
4068 return;
4069
4070 /* Don't check this while we are reloading, things might still change */
4071 if (MANAGER_IS_RELOADING(m))
4072 return;
4073
4074 /* The journal is fully and entirely up? If so, let's permit logging to it, if that's configured. If the
4075 * journal is down, don't ever log to it, otherwise we might end up deadlocking ourselves as we might trigger
4076 * an activation ourselves we can't fulfill. */
4077 log_set_prohibit_ipc(!manager_journal_is_running(m));
4078 log_open();
4079 }
4080
4081 void manager_set_show_status(Manager *m, ShowStatus mode) {
4082 assert(m);
4083 assert(IN_SET(mode, SHOW_STATUS_AUTO, SHOW_STATUS_NO, SHOW_STATUS_YES, SHOW_STATUS_TEMPORARY));
4084
4085 if (!MANAGER_IS_SYSTEM(m))
4086 return;
4087
4088 if (m->show_status != mode)
4089 log_debug("%s showing of status.",
4090 mode == SHOW_STATUS_NO ? "Disabling" : "Enabling");
4091 m->show_status = mode;
4092
4093 if (IN_SET(mode, SHOW_STATUS_TEMPORARY, SHOW_STATUS_YES))
4094 (void) touch("/run/systemd/show-status");
4095 else
4096 (void) unlink("/run/systemd/show-status");
4097 }
4098
4099 static bool manager_get_show_status(Manager *m, StatusType type) {
4100 assert(m);
4101
4102 if (!MANAGER_IS_SYSTEM(m))
4103 return false;
4104
4105 if (m->no_console_output)
4106 return false;
4107
4108 if (!IN_SET(manager_state(m), MANAGER_INITIALIZING, MANAGER_STARTING, MANAGER_STOPPING))
4109 return false;
4110
4111 /* If we cannot find out the status properly, just proceed. */
4112 if (type != STATUS_TYPE_EMERGENCY && manager_check_ask_password(m) > 0)
4113 return false;
4114
4115 return IN_SET(m->show_status, SHOW_STATUS_TEMPORARY, SHOW_STATUS_YES);
4116 }
4117
4118 const char *manager_get_confirm_spawn(Manager *m) {
4119 static int last_errno = 0;
4120 struct stat st;
4121 int r;
4122
4123 assert(m);
4124
4125 /* Here's the deal: we want to test the validity of the console but don't want
4126 * PID1 to go through the whole console process which might block. But we also
4127 * want to warn the user only once if something is wrong with the console so we
4128 * cannot do the sanity checks after spawning our children. So here we simply do
4129 * really basic tests to hopefully trap common errors.
4130 *
4131 * If the console suddenly disappear at the time our children will really it
4132 * then they will simply fail to acquire it and a positive answer will be
4133 * assumed. New children will fallback to /dev/console though.
4134 *
4135 * Note: TTYs are devices that can come and go any time, and frequently aren't
4136 * available yet during early boot (consider a USB rs232 dongle...). If for any
4137 * reason the configured console is not ready, we fallback to the default
4138 * console. */
4139
4140 if (!m->confirm_spawn || path_equal(m->confirm_spawn, "/dev/console"))
4141 return m->confirm_spawn;
4142
4143 if (stat(m->confirm_spawn, &st) < 0) {
4144 r = -errno;
4145 goto fail;
4146 }
4147
4148 if (!S_ISCHR(st.st_mode)) {
4149 r = -ENOTTY;
4150 goto fail;
4151 }
4152
4153 last_errno = 0;
4154 return m->confirm_spawn;
4155
4156 fail:
4157 if (last_errno != r)
4158 last_errno = log_warning_errno(r, "Failed to open %s, using default console: %m", m->confirm_spawn);
4159
4160 return "/dev/console";
4161 }
4162
4163 void manager_set_first_boot(Manager *m, bool b) {
4164 assert(m);
4165
4166 if (!MANAGER_IS_SYSTEM(m))
4167 return;
4168
4169 if (m->first_boot != (int) b) {
4170 if (b)
4171 (void) touch("/run/systemd/first-boot");
4172 else
4173 (void) unlink("/run/systemd/first-boot");
4174 }
4175
4176 m->first_boot = b;
4177 }
4178
4179 void manager_disable_confirm_spawn(void) {
4180 (void) touch("/run/systemd/confirm_spawn_disabled");
4181 }
4182
4183 bool manager_is_confirm_spawn_disabled(Manager *m) {
4184 if (!m->confirm_spawn)
4185 return true;
4186
4187 return access("/run/systemd/confirm_spawn_disabled", F_OK) >= 0;
4188 }
4189
4190 void manager_status_printf(Manager *m, StatusType type, const char *status, const char *format, ...) {
4191 va_list ap;
4192
4193 /* If m is NULL, assume we're after shutdown and let the messages through. */
4194
4195 if (m && !manager_get_show_status(m, type))
4196 return;
4197
4198 /* XXX We should totally drop the check for ephemeral here
4199 * and thus effectively make 'Type=idle' pointless. */
4200 if (type == STATUS_TYPE_EPHEMERAL && m && m->n_on_console > 0)
4201 return;
4202
4203 va_start(ap, format);
4204 status_vprintf(status, SHOW_STATUS_ELLIPSIZE|(type == STATUS_TYPE_EPHEMERAL ? SHOW_STATUS_EPHEMERAL : 0), format, ap);
4205 va_end(ap);
4206 }
4207
4208 Set *manager_get_units_requiring_mounts_for(Manager *m, const char *path) {
4209 char p[strlen(path)+1];
4210
4211 assert(m);
4212 assert(path);
4213
4214 strcpy(p, path);
4215 path_simplify(p, false);
4216
4217 return hashmap_get(m->units_requiring_mounts_for, streq(p, "/") ? "" : p);
4218 }
4219
4220 int manager_update_failed_units(Manager *m, Unit *u, bool failed) {
4221 unsigned size;
4222 int r;
4223
4224 assert(m);
4225 assert(u->manager == m);
4226
4227 size = set_size(m->failed_units);
4228
4229 if (failed) {
4230 r = set_ensure_allocated(&m->failed_units, NULL);
4231 if (r < 0)
4232 return log_oom();
4233
4234 if (set_put(m->failed_units, u) < 0)
4235 return log_oom();
4236 } else
4237 (void) set_remove(m->failed_units, u);
4238
4239 if (set_size(m->failed_units) != size)
4240 bus_manager_send_change_signal(m);
4241
4242 return 0;
4243 }
4244
4245 ManagerState manager_state(Manager *m) {
4246 Unit *u;
4247
4248 assert(m);
4249
4250 /* Did we ever finish booting? If not then we are still starting up */
4251 if (!MANAGER_IS_FINISHED(m)) {
4252
4253 u = manager_get_unit(m, SPECIAL_BASIC_TARGET);
4254 if (!u || !UNIT_IS_ACTIVE_OR_RELOADING(unit_active_state(u)))
4255 return MANAGER_INITIALIZING;
4256
4257 return MANAGER_STARTING;
4258 }
4259
4260 /* Is the special shutdown target active or queued? If so, we are in shutdown state */
4261 u = manager_get_unit(m, SPECIAL_SHUTDOWN_TARGET);
4262 if (u && unit_active_or_pending(u))
4263 return MANAGER_STOPPING;
4264
4265 if (MANAGER_IS_SYSTEM(m)) {
4266 /* Are the rescue or emergency targets active or queued? If so we are in maintenance state */
4267 u = manager_get_unit(m, SPECIAL_RESCUE_TARGET);
4268 if (u && unit_active_or_pending(u))
4269 return MANAGER_MAINTENANCE;
4270
4271 u = manager_get_unit(m, SPECIAL_EMERGENCY_TARGET);
4272 if (u && unit_active_or_pending(u))
4273 return MANAGER_MAINTENANCE;
4274 }
4275
4276 /* Are there any failed units? If so, we are in degraded mode */
4277 if (set_size(m->failed_units) > 0)
4278 return MANAGER_DEGRADED;
4279
4280 return MANAGER_RUNNING;
4281 }
4282
4283 #define DESTROY_IPC_FLAG (UINT32_C(1) << 31)
4284
4285 static void manager_unref_uid_internal(
4286 Manager *m,
4287 Hashmap **uid_refs,
4288 uid_t uid,
4289 bool destroy_now,
4290 int (*_clean_ipc)(uid_t uid)) {
4291
4292 uint32_t c, n;
4293
4294 assert(m);
4295 assert(uid_refs);
4296 assert(uid_is_valid(uid));
4297 assert(_clean_ipc);
4298
4299 /* A generic implementation, covering both manager_unref_uid() and manager_unref_gid(), under the assumption
4300 * that uid_t and gid_t are actually defined the same way, with the same validity rules.
4301 *
4302 * We store a hashmap where the UID/GID is they key and the value is a 32bit reference counter, whose highest
4303 * bit is used as flag for marking UIDs/GIDs whose IPC objects to remove when the last reference to the UID/GID
4304 * is dropped. The flag is set to on, once at least one reference from a unit where RemoveIPC= is set is added
4305 * on a UID/GID. It is reset when the UID's/GID's reference counter drops to 0 again. */
4306
4307 assert_cc(sizeof(uid_t) == sizeof(gid_t));
4308 assert_cc(UID_INVALID == (uid_t) GID_INVALID);
4309
4310 if (uid == 0) /* We don't keep track of root, and will never destroy it */
4311 return;
4312
4313 c = PTR_TO_UINT32(hashmap_get(*uid_refs, UID_TO_PTR(uid)));
4314
4315 n = c & ~DESTROY_IPC_FLAG;
4316 assert(n > 0);
4317 n--;
4318
4319 if (destroy_now && n == 0) {
4320 hashmap_remove(*uid_refs, UID_TO_PTR(uid));
4321
4322 if (c & DESTROY_IPC_FLAG) {
4323 log_debug("%s " UID_FMT " is no longer referenced, cleaning up its IPC.",
4324 _clean_ipc == clean_ipc_by_uid ? "UID" : "GID",
4325 uid);
4326 (void) _clean_ipc(uid);
4327 }
4328 } else {
4329 c = n | (c & DESTROY_IPC_FLAG);
4330 assert_se(hashmap_update(*uid_refs, UID_TO_PTR(uid), UINT32_TO_PTR(c)) >= 0);
4331 }
4332 }
4333
4334 void manager_unref_uid(Manager *m, uid_t uid, bool destroy_now) {
4335 manager_unref_uid_internal(m, &m->uid_refs, uid, destroy_now, clean_ipc_by_uid);
4336 }
4337
4338 void manager_unref_gid(Manager *m, gid_t gid, bool destroy_now) {
4339 manager_unref_uid_internal(m, &m->gid_refs, (uid_t) gid, destroy_now, clean_ipc_by_gid);
4340 }
4341
4342 static int manager_ref_uid_internal(
4343 Manager *m,
4344 Hashmap **uid_refs,
4345 uid_t uid,
4346 bool clean_ipc) {
4347
4348 uint32_t c, n;
4349 int r;
4350
4351 assert(m);
4352 assert(uid_refs);
4353 assert(uid_is_valid(uid));
4354
4355 /* A generic implementation, covering both manager_ref_uid() and manager_ref_gid(), under the assumption
4356 * that uid_t and gid_t are actually defined the same way, with the same validity rules. */
4357
4358 assert_cc(sizeof(uid_t) == sizeof(gid_t));
4359 assert_cc(UID_INVALID == (uid_t) GID_INVALID);
4360
4361 if (uid == 0) /* We don't keep track of root, and will never destroy it */
4362 return 0;
4363
4364 r = hashmap_ensure_allocated(uid_refs, &trivial_hash_ops);
4365 if (r < 0)
4366 return r;
4367
4368 c = PTR_TO_UINT32(hashmap_get(*uid_refs, UID_TO_PTR(uid)));
4369
4370 n = c & ~DESTROY_IPC_FLAG;
4371 n++;
4372
4373 if (n & DESTROY_IPC_FLAG) /* check for overflow */
4374 return -EOVERFLOW;
4375
4376 c = n | (c & DESTROY_IPC_FLAG) | (clean_ipc ? DESTROY_IPC_FLAG : 0);
4377
4378 return hashmap_replace(*uid_refs, UID_TO_PTR(uid), UINT32_TO_PTR(c));
4379 }
4380
4381 int manager_ref_uid(Manager *m, uid_t uid, bool clean_ipc) {
4382 return manager_ref_uid_internal(m, &m->uid_refs, uid, clean_ipc);
4383 }
4384
4385 int manager_ref_gid(Manager *m, gid_t gid, bool clean_ipc) {
4386 return manager_ref_uid_internal(m, &m->gid_refs, (uid_t) gid, clean_ipc);
4387 }
4388
4389 static void manager_vacuum_uid_refs_internal(
4390 Manager *m,
4391 Hashmap **uid_refs,
4392 int (*_clean_ipc)(uid_t uid)) {
4393
4394 Iterator i;
4395 void *p, *k;
4396
4397 assert(m);
4398 assert(uid_refs);
4399 assert(_clean_ipc);
4400
4401 HASHMAP_FOREACH_KEY(p, k, *uid_refs, i) {
4402 uint32_t c, n;
4403 uid_t uid;
4404
4405 uid = PTR_TO_UID(k);
4406 c = PTR_TO_UINT32(p);
4407
4408 n = c & ~DESTROY_IPC_FLAG;
4409 if (n > 0)
4410 continue;
4411
4412 if (c & DESTROY_IPC_FLAG) {
4413 log_debug("Found unreferenced %s " UID_FMT " after reload/reexec. Cleaning up.",
4414 _clean_ipc == clean_ipc_by_uid ? "UID" : "GID",
4415 uid);
4416 (void) _clean_ipc(uid);
4417 }
4418
4419 assert_se(hashmap_remove(*uid_refs, k) == p);
4420 }
4421 }
4422
4423 void manager_vacuum_uid_refs(Manager *m) {
4424 manager_vacuum_uid_refs_internal(m, &m->uid_refs, clean_ipc_by_uid);
4425 }
4426
4427 void manager_vacuum_gid_refs(Manager *m) {
4428 manager_vacuum_uid_refs_internal(m, &m->gid_refs, clean_ipc_by_gid);
4429 }
4430
4431 static void manager_serialize_uid_refs_internal(
4432 Manager *m,
4433 FILE *f,
4434 Hashmap **uid_refs,
4435 const char *field_name) {
4436
4437 Iterator i;
4438 void *p, *k;
4439
4440 assert(m);
4441 assert(f);
4442 assert(uid_refs);
4443 assert(field_name);
4444
4445 /* Serialize the UID reference table. Or actually, just the IPC destruction flag of it, as the actual counter
4446 * of it is better rebuild after a reload/reexec. */
4447
4448 HASHMAP_FOREACH_KEY(p, k, *uid_refs, i) {
4449 uint32_t c;
4450 uid_t uid;
4451
4452 uid = PTR_TO_UID(k);
4453 c = PTR_TO_UINT32(p);
4454
4455 if (!(c & DESTROY_IPC_FLAG))
4456 continue;
4457
4458 (void) serialize_item_format(f, field_name, UID_FMT, uid);
4459 }
4460 }
4461
4462 void manager_serialize_uid_refs(Manager *m, FILE *f) {
4463 manager_serialize_uid_refs_internal(m, f, &m->uid_refs, "destroy-ipc-uid");
4464 }
4465
4466 void manager_serialize_gid_refs(Manager *m, FILE *f) {
4467 manager_serialize_uid_refs_internal(m, f, &m->gid_refs, "destroy-ipc-gid");
4468 }
4469
4470 static void manager_deserialize_uid_refs_one_internal(
4471 Manager *m,
4472 Hashmap** uid_refs,
4473 const char *value) {
4474
4475 uid_t uid;
4476 uint32_t c;
4477 int r;
4478
4479 assert(m);
4480 assert(uid_refs);
4481 assert(value);
4482
4483 r = parse_uid(value, &uid);
4484 if (r < 0 || uid == 0) {
4485 log_debug("Unable to parse UID reference serialization: " UID_FMT, uid);
4486 return;
4487 }
4488
4489 r = hashmap_ensure_allocated(uid_refs, &trivial_hash_ops);
4490 if (r < 0) {
4491 log_oom();
4492 return;
4493 }
4494
4495 c = PTR_TO_UINT32(hashmap_get(*uid_refs, UID_TO_PTR(uid)));
4496 if (c & DESTROY_IPC_FLAG)
4497 return;
4498
4499 c |= DESTROY_IPC_FLAG;
4500
4501 r = hashmap_replace(*uid_refs, UID_TO_PTR(uid), UINT32_TO_PTR(c));
4502 if (r < 0) {
4503 log_debug_errno(r, "Failed to add UID reference entry: %m");
4504 return;
4505 }
4506 }
4507
4508 void manager_deserialize_uid_refs_one(Manager *m, const char *value) {
4509 manager_deserialize_uid_refs_one_internal(m, &m->uid_refs, value);
4510 }
4511
4512 void manager_deserialize_gid_refs_one(Manager *m, const char *value) {
4513 manager_deserialize_uid_refs_one_internal(m, &m->gid_refs, value);
4514 }
4515
4516 int manager_dispatch_user_lookup_fd(sd_event_source *source, int fd, uint32_t revents, void *userdata) {
4517 struct buffer {
4518 uid_t uid;
4519 gid_t gid;
4520 char unit_name[UNIT_NAME_MAX+1];
4521 } _packed_ buffer;
4522
4523 Manager *m = userdata;
4524 ssize_t l;
4525 size_t n;
4526 Unit *u;
4527
4528 assert_se(source);
4529 assert_se(m);
4530
4531 /* Invoked whenever a child process succeeded resolving its user/group to use and sent us the resulting UID/GID
4532 * in a datagram. We parse the datagram here and pass it off to the unit, so that it can add a reference to the
4533 * UID/GID so that it can destroy the UID/GID's IPC objects when the reference counter drops to 0. */
4534
4535 l = recv(fd, &buffer, sizeof(buffer), MSG_DONTWAIT);
4536 if (l < 0) {
4537 if (IN_SET(errno, EINTR, EAGAIN))
4538 return 0;
4539
4540 return log_error_errno(errno, "Failed to read from user lookup fd: %m");
4541 }
4542
4543 if ((size_t) l <= offsetof(struct buffer, unit_name)) {
4544 log_warning("Received too short user lookup message, ignoring.");
4545 return 0;
4546 }
4547
4548 if ((size_t) l > offsetof(struct buffer, unit_name) + UNIT_NAME_MAX) {
4549 log_warning("Received too long user lookup message, ignoring.");
4550 return 0;
4551 }
4552
4553 if (!uid_is_valid(buffer.uid) && !gid_is_valid(buffer.gid)) {
4554 log_warning("Got user lookup message with invalid UID/GID pair, ignoring.");
4555 return 0;
4556 }
4557
4558 n = (size_t) l - offsetof(struct buffer, unit_name);
4559 if (memchr(buffer.unit_name, 0, n)) {
4560 log_warning("Received lookup message with embedded NUL character, ignoring.");
4561 return 0;
4562 }
4563
4564 buffer.unit_name[n] = 0;
4565 u = manager_get_unit(m, buffer.unit_name);
4566 if (!u) {
4567 log_debug("Got user lookup message but unit doesn't exist, ignoring.");
4568 return 0;
4569 }
4570
4571 log_unit_debug(u, "User lookup succeeded: uid=" UID_FMT " gid=" GID_FMT, buffer.uid, buffer.gid);
4572
4573 unit_notify_user_lookup(u, buffer.uid, buffer.gid);
4574 return 0;
4575 }
4576
4577 char *manager_taint_string(Manager *m) {
4578 _cleanup_free_ char *destination = NULL, *overflowuid = NULL, *overflowgid = NULL;
4579 char *buf, *e;
4580 int r;
4581
4582 /* Returns a "taint string", e.g. "local-hwclock:var-run-bad".
4583 * Only things that are detected at runtime should be tagged
4584 * here. For stuff that is set during compilation, emit a warning
4585 * in the configuration phase. */
4586
4587 assert(m);
4588
4589 buf = new(char, sizeof("split-usr:"
4590 "cgroups-missing:"
4591 "local-hwclock:"
4592 "var-run-bad:"
4593 "overflowuid-not-65534:"
4594 "overflowgid-not-65534:"));
4595 if (!buf)
4596 return NULL;
4597
4598 e = buf;
4599 buf[0] = 0;
4600
4601 if (m->taint_usr)
4602 e = stpcpy(e, "split-usr:");
4603
4604 if (access("/proc/cgroups", F_OK) < 0)
4605 e = stpcpy(e, "cgroups-missing:");
4606
4607 if (clock_is_localtime(NULL) > 0)
4608 e = stpcpy(e, "local-hwclock:");
4609
4610 r = readlink_malloc("/var/run", &destination);
4611 if (r < 0 || !PATH_IN_SET(destination, "../run", "/run"))
4612 e = stpcpy(e, "var-run-bad:");
4613
4614 r = read_one_line_file("/proc/sys/kernel/overflowuid", &overflowuid);
4615 if (r >= 0 && !streq(overflowuid, "65534"))
4616 e = stpcpy(e, "overflowuid-not-65534:");
4617
4618 r = read_one_line_file("/proc/sys/kernel/overflowgid", &overflowgid);
4619 if (r >= 0 && !streq(overflowgid, "65534"))
4620 e = stpcpy(e, "overflowgid-not-65534:");
4621
4622 /* remove the last ':' */
4623 if (e != buf)
4624 e[-1] = 0;
4625
4626 return buf;
4627 }
4628
4629 void manager_ref_console(Manager *m) {
4630 assert(m);
4631
4632 m->n_on_console++;
4633 }
4634
4635 void manager_unref_console(Manager *m) {
4636
4637 assert(m->n_on_console > 0);
4638 m->n_on_console--;
4639
4640 if (m->n_on_console == 0)
4641 m->no_console_output = false; /* unset no_console_output flag, since the console is definitely free now */
4642 }
4643
4644 void manager_override_log_level(Manager *m, int level) {
4645 _cleanup_free_ char *s = NULL;
4646 assert(m);
4647
4648 if (!m->log_level_overridden) {
4649 m->original_log_level = log_get_max_level();
4650 m->log_level_overridden = true;
4651 }
4652
4653 (void) log_level_to_string_alloc(level, &s);
4654 log_info("Setting log level to %s.", strna(s));
4655
4656 log_set_max_level(level);
4657 }
4658
4659 void manager_restore_original_log_level(Manager *m) {
4660 _cleanup_free_ char *s = NULL;
4661 assert(m);
4662
4663 if (!m->log_level_overridden)
4664 return;
4665
4666 (void) log_level_to_string_alloc(m->original_log_level, &s);
4667 log_info("Restoring log level to original (%s).", strna(s));
4668
4669 log_set_max_level(m->original_log_level);
4670 m->log_level_overridden = false;
4671 }
4672
4673 void manager_override_log_target(Manager *m, LogTarget target) {
4674 assert(m);
4675
4676 if (!m->log_target_overridden) {
4677 m->original_log_target = log_get_target();
4678 m->log_target_overridden = true;
4679 }
4680
4681 log_info("Setting log target to %s.", log_target_to_string(target));
4682 log_set_target(target);
4683 }
4684
4685 void manager_restore_original_log_target(Manager *m) {
4686 assert(m);
4687
4688 if (!m->log_target_overridden)
4689 return;
4690
4691 log_info("Restoring log target to original %s.", log_target_to_string(m->original_log_target));
4692
4693 log_set_target(m->original_log_target);
4694 m->log_target_overridden = false;
4695 }
4696
4697 ManagerTimestamp manager_timestamp_initrd_mangle(ManagerTimestamp s) {
4698 if (in_initrd() &&
4699 s >= MANAGER_TIMESTAMP_SECURITY_START &&
4700 s <= MANAGER_TIMESTAMP_UNITS_LOAD_FINISH)
4701 return s - MANAGER_TIMESTAMP_SECURITY_START + MANAGER_TIMESTAMP_INITRD_SECURITY_START;
4702 return s;
4703 }
4704
4705 static const char *const manager_state_table[_MANAGER_STATE_MAX] = {
4706 [MANAGER_INITIALIZING] = "initializing",
4707 [MANAGER_STARTING] = "starting",
4708 [MANAGER_RUNNING] = "running",
4709 [MANAGER_DEGRADED] = "degraded",
4710 [MANAGER_MAINTENANCE] = "maintenance",
4711 [MANAGER_STOPPING] = "stopping",
4712 };
4713
4714 DEFINE_STRING_TABLE_LOOKUP(manager_state, ManagerState);
4715
4716 static const char *const manager_timestamp_table[_MANAGER_TIMESTAMP_MAX] = {
4717 [MANAGER_TIMESTAMP_FIRMWARE] = "firmware",
4718 [MANAGER_TIMESTAMP_LOADER] = "loader",
4719 [MANAGER_TIMESTAMP_KERNEL] = "kernel",
4720 [MANAGER_TIMESTAMP_INITRD] = "initrd",
4721 [MANAGER_TIMESTAMP_USERSPACE] = "userspace",
4722 [MANAGER_TIMESTAMP_FINISH] = "finish",
4723 [MANAGER_TIMESTAMP_SECURITY_START] = "security-start",
4724 [MANAGER_TIMESTAMP_SECURITY_FINISH] = "security-finish",
4725 [MANAGER_TIMESTAMP_GENERATORS_START] = "generators-start",
4726 [MANAGER_TIMESTAMP_GENERATORS_FINISH] = "generators-finish",
4727 [MANAGER_TIMESTAMP_UNITS_LOAD_START] = "units-load-start",
4728 [MANAGER_TIMESTAMP_UNITS_LOAD_FINISH] = "units-load-finish",
4729 [MANAGER_TIMESTAMP_INITRD_SECURITY_START] = "initrd-security-start",
4730 [MANAGER_TIMESTAMP_INITRD_SECURITY_FINISH] = "initrd-security-finish",
4731 [MANAGER_TIMESTAMP_INITRD_GENERATORS_START] = "initrd-generators-start",
4732 [MANAGER_TIMESTAMP_INITRD_GENERATORS_FINISH] = "initrd-generators-finish",
4733 [MANAGER_TIMESTAMP_INITRD_UNITS_LOAD_START] = "initrd-units-load-start",
4734 [MANAGER_TIMESTAMP_INITRD_UNITS_LOAD_FINISH] = "initrd-units-load-finish",
4735 };
4736
4737 DEFINE_STRING_TABLE_LOOKUP(manager_timestamp, ManagerTimestamp);
4738
4739 static const char* const oom_policy_table[_OOM_POLICY_MAX] = {
4740 [OOM_CONTINUE] = "continue",
4741 [OOM_STOP] = "stop",
4742 [OOM_KILL] = "kill",
4743 };
4744
4745 DEFINE_STRING_TABLE_LOOKUP(oom_policy, OOMPolicy);