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systemd / systemd / 15232239991

24 May 2025 08:01PM UTC coverage: 72.053% (-0.02%) from 72.07%
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docs: add man pages for sd_device_enumerator_[new,ref,unref,unrefp] (#37586)

For #20929.

299160 of 415197 relevant lines covered (72.05%)

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83.12
/src/basic/process-util.c
1
/* SPDX-License-Identifier: LGPL-2.1-or-later */
2

3
#include <ctype.h>
4
#include <errno.h>
5
#include <limits.h>
6
#include <linux/oom.h>
7
#include <pthread.h>
8
#include <spawn.h>
9
#include <stdbool.h>
10
#include <stdio.h>
11
#include <stdlib.h>
12
#include <sys/mount.h>
13
#include <sys/personality.h>
14
#include <sys/prctl.h>
15
#include <sys/types.h>
16
#include <sys/wait.h>
17
#include <syslog.h>
18
#include <threads.h>
19
#include <unistd.h>
20
#if HAVE_VALGRIND_VALGRIND_H
21
#include <valgrind/valgrind.h>
22
#endif
23

24
#include "sd-messages.h"
25

26
#include "alloc-util.h"
27
#include "architecture.h"
28
#include "argv-util.h"
29
#include "cgroup-util.h"
30
#include "dirent-util.h"
31
#include "env-file.h"
32
#include "env-util.h"
33
#include "errno-util.h"
34
#include "escape.h"
35
#include "fd-util.h"
36
#include "fileio.h"
37
#include "fs-util.h"
38
#include "hostname-util.h"
39
#include "io-util.h"
40
#include "iovec-util.h"
41
#include "locale-util.h"
42
#include "log.h"
43
#include "macro.h"
44
#include "memory-util.h"
45
#include "missing_sched.h"
46
#include "missing_syscall.h"
47
#include "mountpoint-util.h"
48
#include "namespace-util.h"
49
#include "nulstr-util.h"
50
#include "parse-util.h"
51
#include "path-util.h"
52
#include "pidfd-util.h"
53
#include "process-util.h"
54
#include "raw-clone.h"
55
#include "rlimit-util.h"
56
#include "signal-util.h"
57
#include "socket-util.h"
58
#include "stat-util.h"
59
#include "stdio-util.h"
60
#include "string-table.h"
61
#include "string-util.h"
62
#include "terminal-util.h"
63
#include "time-util.h"
64
#include "user-util.h"
65
#include "utf8.h"
66

67
/* The kernel limits userspace processes to TASK_COMM_LEN (16 bytes), but allows higher values for its own
68
 * workers, e.g. "kworker/u9:3-kcryptd/253:0". Let's pick a fixed smallish limit that will work for the kernel.
69
 */
70
#define COMM_MAX_LEN 128
71

72
static int get_process_state(pid_t pid) {
10,363✔
73
        _cleanup_free_ char *line = NULL;
10,363✔
74
        const char *p;
10,363✔
75
        char state;
10,363✔
76
        int r;
10,363✔
77

78
        assert(pid >= 0);
10,363✔
79

80
        /* Shortcut: if we are enquired about our own state, we are obviously running */
81
        if (pid == 0 || pid == getpid_cached())
10,363✔
82
                return (unsigned char) 'R';
×
83

84
        p = procfs_file_alloca(pid, "stat");
10,363✔
85

86
        r = read_one_line_file(p, &line);
10,363✔
87
        if (r == -ENOENT)
10,363✔
88
                return -ESRCH;
89
        if (r < 0)
8,297✔
90
                return r;
91

92
        p = strrchr(line, ')');
8,297✔
93
        if (!p)
8,297✔
94
                return -EIO;
95

96
        p++;
8,297✔
97

98
        if (sscanf(p, " %c", &state) != 1)
8,297✔
99
                return -EIO;
100

101
        return (unsigned char) state;
8,297✔
102
}
103

104
int pid_get_comm(pid_t pid, char **ret) {
105
        _cleanup_free_ char *escaped = NULL, *comm = NULL;
47,475✔
106
        int r;
47,475✔
107

108
        assert(pid >= 0);
47,475✔
109
        assert(ret);
47,475✔
110

111
        if (pid == 0 || pid == getpid_cached()) {
47,475✔
112
                comm = new0(char, TASK_COMM_LEN + 1); /* Must fit in 16 byte according to prctl(2) */
25,089✔
113
                if (!comm)
25,089✔
114
                        return -ENOMEM;
115

116
                if (prctl(PR_GET_NAME, comm) < 0)
25,089✔
117
                        return -errno;
×
118
        } else {
119
                const char *p;
22,386✔
120

121
                p = procfs_file_alloca(pid, "comm");
22,386✔
122

123
                /* Note that process names of kernel threads can be much longer than TASK_COMM_LEN */
124
                r = read_one_line_file(p, &comm);
22,386✔
125
                if (r == -ENOENT)
22,386✔
126
                        return -ESRCH;
127
                if (r < 0)
17,511✔
128
                        return r;
129
        }
130

131
        escaped = new(char, COMM_MAX_LEN);
42,597✔
132
        if (!escaped)
42,597✔
133
                return -ENOMEM;
134

135
        /* Escape unprintable characters, just in case, but don't grow the string beyond the underlying size */
136
        cellescape(escaped, COMM_MAX_LEN, comm);
42,597✔
137

138
        *ret = TAKE_PTR(escaped);
42,597✔
139
        return 0;
42,597✔
140
}
141

142
int pidref_get_comm(const PidRef *pid, char **ret) {
143
        _cleanup_free_ char *comm = NULL;
32✔
144
        int r;
32✔
145

146
        if (!pidref_is_set(pid))
32✔
147
                return -ESRCH;
148

149
        if (pidref_is_remote(pid))
64✔
150
                return -EREMOTE;
151

152
        r = pid_get_comm(pid->pid, &comm);
32✔
153
        if (r < 0)
32✔
154
                return r;
155

156
        r = pidref_verify(pid);
32✔
157
        if (r < 0)
32✔
158
                return r;
159

160
        if (ret)
32✔
161
                *ret = TAKE_PTR(comm);
32✔
162
        return 0;
163
}
164

165
static int pid_get_cmdline_nulstr(
18,921✔
166
                pid_t pid,
167
                size_t max_size,
168
                ProcessCmdlineFlags flags,
169
                char **ret,
170
                size_t *ret_size) {
171

172
        _cleanup_free_ char *t = NULL;
18,921✔
173
        const char *p;
18,921✔
174
        size_t k;
18,921✔
175
        int r;
18,921✔
176

177
        /* Retrieves a process' command line as a "sized nulstr", i.e. possibly without the last NUL, but
178
         * with a specified size.
179
         *
180
         * If PROCESS_CMDLINE_COMM_FALLBACK is specified in flags and the process has no command line set
181
         * (the case for kernel threads), or has a command line that resolves to the empty string, will
182
         * return the "comm" name of the process instead. This will use at most _SC_ARG_MAX bytes of input
183
         * data.
184
         *
185
         * Returns an error, 0 if output was read but is truncated, 1 otherwise.
186
         */
187

188
        p = procfs_file_alloca(pid, "cmdline");
19,137✔
189
        r = read_virtual_file(p, max_size, &t, &k); /* Let's assume that each input byte results in >= 1
18,921✔
190
                                                     * columns of output. We ignore zero-width codepoints. */
191
        if (r == -ENOENT)
18,921✔
192
                return -ESRCH;
193
        if (r < 0)
14,715✔
194
                return r;
195

196
        if (k == 0) {
14,715✔
197
                if (!(flags & PROCESS_CMDLINE_COMM_FALLBACK))
497✔
198
                        return -ENOENT;
478✔
199

200
                /* Kernel threads have no argv[] */
201
                _cleanup_free_ char *comm = NULL;
19✔
202

203
                r = pid_get_comm(pid, &comm);
19✔
204
                if (r < 0)
19✔
205
                        return r;
206

207
                free(t);
19✔
208
                t = strjoin("[", comm, "]");
19✔
209
                if (!t)
19✔
210
                        return -ENOMEM;
211

212
                k = strlen(t);
19✔
213
                r = k <= max_size;
19✔
214
                if (r == 0) /* truncation */
19✔
215
                        t[max_size] = '\0';
12✔
216
        }
217

218
        if (ret)
14,237✔
219
                *ret = TAKE_PTR(t);
14,237✔
220
        if (ret_size)
14,237✔
221
                *ret_size = k;
14,237✔
222

223
        return r;
224
}
225

226
int pid_get_cmdline(pid_t pid, size_t max_columns, ProcessCmdlineFlags flags, char **ret) {
227
        _cleanup_free_ char *t = NULL;
14,051✔
228
        size_t k;
14,051✔
229
        char *ans;
14,051✔
230

231
        assert(pid >= 0);
14,051✔
232
        assert(ret);
14,051✔
233

234
        /* Retrieve and format a command line. See above for discussion of retrieval options.
235
         *
236
         * There are two main formatting modes:
237
         *
238
         * - when PROCESS_CMDLINE_QUOTE is specified, output is quoted in C/Python style. If no shell special
239
         *   characters are present, this output can be copy-pasted into the terminal to execute. UTF-8
240
         *   output is assumed.
241
         *
242
         * - otherwise, a compact non-roundtrippable form is returned. Non-UTF8 bytes are replaced by �. The
243
         *   returned string is of the specified console width at most, abbreviated with an ellipsis.
244
         *
245
         * Returns -ESRCH if the process doesn't exist, and -ENOENT if the process has no command line (and
246
         * PROCESS_CMDLINE_COMM_FALLBACK is not specified). Returns 0 and sets *line otherwise. */
247

248
        int full = pid_get_cmdline_nulstr(pid, max_columns, flags, &t, &k);
14,051✔
249
        if (full < 0)
14,051✔
250
                return full;
251

252
        if (flags & (PROCESS_CMDLINE_QUOTE | PROCESS_CMDLINE_QUOTE_POSIX)) {
9,439✔
253
                ShellEscapeFlags shflags = SHELL_ESCAPE_EMPTY |
9,035✔
254
                        FLAGS_SET(flags, PROCESS_CMDLINE_QUOTE_POSIX) * SHELL_ESCAPE_POSIX;
9,035✔
255

256
                assert(!(flags & PROCESS_CMDLINE_USE_LOCALE));
9,035✔
257

258
                _cleanup_strv_free_ char **args = NULL;
9,035✔
259

260
                /* Drop trailing NULs, otherwise strv_parse_nulstr() adds additional empty strings at the end.
261
                 * See also issue #21186. */
262
                args = strv_parse_nulstr_full(t, k, /* drop_trailing_nuls = */ true);
9,035✔
263
                if (!args)
9,035✔
264
                        return -ENOMEM;
265

266
                ans = quote_command_line(args, shflags);
9,035✔
267
                if (!ans)
9,035✔
268
                        return -ENOMEM;
269
        } else {
270
                /* Arguments are separated by NULs. Let's replace those with spaces. */
271
                for (size_t i = 0; i < k - 1; i++)
19,521✔
272
                        if (t[i] == '\0')
19,117✔
273
                                t[i] = ' ';
705✔
274

275
                delete_trailing_chars(t, WHITESPACE);
404✔
276

277
                bool eight_bit = (flags & PROCESS_CMDLINE_USE_LOCALE) && !is_locale_utf8();
404✔
278

279
                ans = escape_non_printable_full(t, max_columns,
1,212✔
280
                                                eight_bit * XESCAPE_8_BIT | !full * XESCAPE_FORCE_ELLIPSIS);
754✔
281
                if (!ans)
404✔
282
                        return -ENOMEM;
283

284
                ans = str_realloc(ans);
404✔
285
        }
286

287
        *ret = ans;
9,439✔
288
        return 0;
9,439✔
289
}
290

291
int pidref_get_cmdline(const PidRef *pid, size_t max_columns, ProcessCmdlineFlags flags, char **ret) {
292
        _cleanup_free_ char *s = NULL;
123✔
293
        int r;
123✔
294

295
        if (!pidref_is_set(pid))
123✔
296
                return -ESRCH;
297

298
        if (pidref_is_remote(pid))
246✔
299
                return -EREMOTE;
300

301
        r = pid_get_cmdline(pid->pid, max_columns, flags, &s);
123✔
302
        if (r < 0)
123✔
303
                return r;
304

305
        r = pidref_verify(pid);
123✔
306
        if (r < 0)
123✔
307
                return r;
308

309
        if (ret)
123✔
310
                *ret = TAKE_PTR(s);
123✔
311
        return 0;
312
}
313

314
int pid_get_cmdline_strv(pid_t pid, ProcessCmdlineFlags flags, char ***ret) {
315
        _cleanup_free_ char *t = NULL;
4,870✔
316
        char **args;
4,870✔
317
        size_t k;
4,870✔
318
        int r;
4,870✔
319

320
        assert(pid >= 0);
4,870✔
321
        assert((flags & ~PROCESS_CMDLINE_COMM_FALLBACK) == 0);
4,870✔
322
        assert(ret);
4,870✔
323

324
        r = pid_get_cmdline_nulstr(pid, SIZE_MAX, flags, &t, &k);
4,870✔
325
        if (r < 0)
4,870✔
326
                return r;
327

328
        args = strv_parse_nulstr_full(t, k, /* drop_trailing_nuls = */ true);
4,798✔
329
        if (!args)
4,798✔
330
                return -ENOMEM;
331

332
        *ret = args;
4,798✔
333
        return 0;
4,798✔
334
}
335

336
int pidref_get_cmdline_strv(const PidRef *pid, ProcessCmdlineFlags flags, char ***ret) {
337
        _cleanup_strv_free_ char **args = NULL;
×
338
        int r;
×
339

340
        if (!pidref_is_set(pid))
×
341
                return -ESRCH;
342

343
        if (pidref_is_remote(pid))
×
344
                return -EREMOTE;
345

346
        r = pid_get_cmdline_strv(pid->pid, flags, &args);
×
347
        if (r < 0)
×
348
                return r;
349

350
        r = pidref_verify(pid);
×
351
        if (r < 0)
×
352
                return r;
353

354
        if (ret)
×
355
                *ret = TAKE_PTR(args);
×
356

357
        return 0;
358
}
359

360
int container_get_leader(const char *machine, pid_t *pid) {
361
        _cleanup_free_ char *s = NULL, *class = NULL;
11✔
362
        const char *p;
11✔
363
        pid_t leader;
11✔
364
        int r;
11✔
365

366
        assert(machine);
11✔
367
        assert(pid);
11✔
368

369
        if (streq(machine, ".host")) {
11✔
370
                *pid = 1;
1✔
371
                return 0;
1✔
372
        }
373

374
        if (!hostname_is_valid(machine, 0))
10✔
375
                return -EINVAL;
376

377
        p = strjoina("/run/systemd/machines/", machine);
50✔
378
        r = parse_env_file(NULL, p,
10✔
379
                           "LEADER", &s,
380
                           "CLASS", &class);
381
        if (r == -ENOENT)
10✔
382
                return -EHOSTDOWN;
383
        if (r < 0)
10✔
384
                return r;
385
        if (!s)
10✔
386
                return -EIO;
387

388
        if (!streq_ptr(class, "container"))
10✔
389
                return -EIO;
390

391
        r = parse_pid(s, &leader);
10✔
392
        if (r < 0)
10✔
393
                return r;
394
        if (leader <= 1)
10✔
395
                return -EIO;
396

397
        *pid = leader;
10✔
398
        return 0;
10✔
399
}
400

401
int pid_is_kernel_thread(pid_t pid) {
402
        _cleanup_free_ char *line = NULL;
3,466✔
403
        unsigned long long flags;
3,466✔
404
        size_t l, i;
3,466✔
405
        const char *p;
3,466✔
406
        char *q;
3,466✔
407
        int r;
3,466✔
408

409
        if (IN_SET(pid, 0, 1) || pid == getpid_cached()) /* pid 1, and we ourselves certainly aren't a kernel thread */
3,466✔
410
                return 0;
25✔
411
        if (!pid_is_valid(pid))
3,441✔
412
                return -EINVAL;
413

414
        p = procfs_file_alloca(pid, "stat");
3,441✔
415
        r = read_one_line_file(p, &line);
3,441✔
416
        if (r == -ENOENT)
3,441✔
417
                return -ESRCH;
418
        if (r < 0)
3,441✔
419
                return r;
420

421
        /* Skip past the comm field */
422
        q = strrchr(line, ')');
3,441✔
423
        if (!q)
3,441✔
424
                return -EINVAL;
425
        q++;
3,441✔
426

427
        /* Skip 6 fields to reach the flags field */
428
        for (i = 0; i < 6; i++) {
24,087✔
429
                l = strspn(q, WHITESPACE);
20,646✔
430
                if (l < 1)
20,646✔
431
                        return -EINVAL;
432
                q += l;
20,646✔
433

434
                l = strcspn(q, WHITESPACE);
20,646✔
435
                if (l < 1)
20,646✔
436
                        return -EINVAL;
437
                q += l;
20,646✔
438
        }
439

440
        /* Skip preceding whitespace */
441
        l = strspn(q, WHITESPACE);
3,441✔
442
        if (l < 1)
3,441✔
443
                return -EINVAL;
444
        q += l;
3,441✔
445

446
        /* Truncate the rest */
447
        l = strcspn(q, WHITESPACE);
3,441✔
448
        if (l < 1)
3,441✔
449
                return -EINVAL;
450
        q[l] = 0;
3,441✔
451

452
        r = safe_atollu(q, &flags);
3,441✔
453
        if (r < 0)
3,441✔
454
                return r;
455

456
        return !!(flags & PF_KTHREAD);
3,441✔
457
}
458

459
int pidref_is_kernel_thread(const PidRef *pid) {
460
        int result, r;
1,420✔
461

462
        if (!pidref_is_set(pid))
1,420✔
463
                return -ESRCH;
464

465
        if (pidref_is_remote(pid))
1,420✔
466
                return -EREMOTE;
467

468
        result = pid_is_kernel_thread(pid->pid);
1,420✔
469
        if (result < 0)
1,420✔
470
                return result;
471

472
        r = pidref_verify(pid); /* Verify that the PID wasn't reused since */
1,420✔
473
        if (r < 0)
1,420✔
474
                return r;
9✔
475

476
        return result;
477
}
478

479
static int get_process_link_contents(pid_t pid, const char *proc_file, char **ret) {
13,400✔
480
        const char *p;
13,400✔
481
        int r;
13,400✔
482

483
        assert(proc_file);
13,400✔
484

485
        p = procfs_file_alloca(pid, proc_file);
13,404✔
486

487
        r = readlink_malloc(p, ret);
13,400✔
488
        return (r == -ENOENT && proc_mounted() > 0) ? -ESRCH : r;
13,400✔
489
}
490

491
int get_process_exe(pid_t pid, char **ret) {
492
        char *d;
13,372✔
493
        int r;
13,372✔
494

495
        assert(pid >= 0);
13,372✔
496

497
        r = get_process_link_contents(pid, "exe", ret);
13,372✔
498
        if (r < 0)
13,372✔
499
                return r;
500

501
        if (ret) {
9,037✔
502
                d = endswith(*ret, " (deleted)");
9,037✔
503
                if (d)
9,037✔
504
                        *d = '\0';
×
505
        }
506

507
        return 0;
508
}
509

510
int pid_get_uid(pid_t pid, uid_t *ret) {
511
        int r;
3,884✔
512

513
        assert(pid >= 0);
3,884✔
514
        assert(ret);
3,884✔
515

516
        if (pid == 0 || pid == getpid_cached()) {
3,884✔
517
                *ret = getuid();
4✔
518
                return 0;
3,884✔
519
        }
520

521
        _cleanup_free_ char *v = NULL;
3,880✔
522
        r = procfs_file_get_field(pid, "status", "Uid", &v);
3,880✔
523
        if (r == -ENOENT)
3,880✔
524
                return -ESRCH;
525
        if (r < 0)
165✔
526
                return r;
527

528
        return parse_uid(v, ret);
165✔
529
}
530

531
int pidref_get_uid(const PidRef *pid, uid_t *ret) {
532
        int r;
55✔
533

534
        if (!pidref_is_set(pid))
55✔
535
                return -ESRCH;
55✔
536

537
        if (pidref_is_remote(pid))
55✔
538
                return -EREMOTE;
539

540
        if (pid->fd >= 0) {
55✔
541
                r = pidfd_get_uid(pid->fd, ret);
55✔
542
                if (!ERRNO_IS_NEG_NOT_SUPPORTED(r))
55✔
543
                        return r;
544
        }
545

546
        uid_t uid;
9✔
547
        r = pid_get_uid(pid->pid, &uid);
9✔
548
        if (r < 0)
9✔
549
                return r;
550

551
        r = pidref_verify(pid);
9✔
552
        if (r < 0)
9✔
553
                return r;
554

555
        if (ret)
9✔
556
                *ret = uid;
9✔
557
        return 0;
558
}
559

560
int get_process_gid(pid_t pid, gid_t *ret) {
561
        int r;
3,875✔
562

563
        assert(pid >= 0);
3,875✔
564
        assert(ret);
3,875✔
565

566
        if (pid == 0 || pid == getpid_cached()) {
3,875✔
567
                *ret = getgid();
1✔
568
                return 0;
3,875✔
569
        }
570

571
        _cleanup_free_ char *v = NULL;
3,874✔
572
        r = procfs_file_get_field(pid, "status", "Gid", &v);
3,874✔
573
        if (r == -ENOENT)
3,874✔
574
                return -ESRCH;
575
        if (r < 0)
159✔
576
                return r;
577

578
        return parse_gid(v, ret);
3,874✔
579
}
580

581
int get_process_cwd(pid_t pid, char **ret) {
582
        assert(pid >= 0);
14✔
583

584
        if (pid == 0 || pid == getpid_cached())
14✔
585
                return safe_getcwd(ret);
×
586

587
        return get_process_link_contents(pid, "cwd", ret);
14✔
588
}
589

590
int get_process_root(pid_t pid, char **ret) {
591
        assert(pid >= 0);
14✔
592
        return get_process_link_contents(pid, "root", ret);
14✔
593
}
594

595
#define ENVIRONMENT_BLOCK_MAX (5U*1024U*1024U)
596

597
int get_process_environ(pid_t pid, char **ret) {
598
        _cleanup_fclose_ FILE *f = NULL;
16✔
599
        _cleanup_free_ char *outcome = NULL;
16✔
600
        size_t sz = 0;
16✔
601
        const char *p;
16✔
602
        int r;
16✔
603

604
        assert(pid >= 0);
16✔
605
        assert(ret);
16✔
606

607
        p = procfs_file_alloca(pid, "environ");
16✔
608

609
        r = fopen_unlocked(p, "re", &f);
16✔
610
        if (r == -ENOENT)
16✔
611
                return -ESRCH;
612
        if (r < 0)
16✔
613
                return r;
614

615
        for (;;) {
6,726✔
616
                char c;
6,742✔
617

618
                if (sz >= ENVIRONMENT_BLOCK_MAX)
6,742✔
619
                        return -ENOBUFS;
×
620

621
                if (!GREEDY_REALLOC(outcome, sz + 5))
6,742✔
622
                        return -ENOMEM;
623

624
                r = safe_fgetc(f, &c);
6,742✔
625
                if (r < 0)
6,742✔
626
                        return r;
627
                if (r == 0)
6,742✔
628
                        break;
629

630
                if (c == '\0')
6,726✔
631
                        outcome[sz++] = '\n';
238✔
632
                else
633
                        sz += cescape_char(c, outcome + sz);
6,488✔
634
        }
635

636
        outcome[sz] = '\0';
16✔
637
        *ret = TAKE_PTR(outcome);
16✔
638

639
        return 0;
16✔
640
}
641

642
int pid_get_ppid(pid_t pid, pid_t *ret) {
643
        _cleanup_free_ char *line = NULL;
1,399✔
644
        unsigned long ppid;
1,399✔
645
        const char *p;
1,399✔
646
        int r;
1,399✔
647

648
        assert(pid >= 0);
1,399✔
649

650
        if (pid == 0)
1,399✔
651
                pid = getpid_cached();
1✔
652
        if (pid == 1) /* PID 1 has no parent, shortcut this case */
1,399✔
653
                return -EADDRNOTAVAIL;
654

655
        if (pid == getpid_cached()) {
1,395✔
656
                if (ret)
6✔
657
                        *ret = getppid();
6✔
658
                return 0;
6✔
659
        }
660

661
        p = procfs_file_alloca(pid, "stat");
1,389✔
662
        r = read_one_line_file(p, &line);
1,389✔
663
        if (r == -ENOENT)
1,389✔
664
                return -ESRCH;
665
        if (r < 0)
1,388✔
666
                return r;
667

668
        /* Let's skip the pid and comm fields. The latter is enclosed in () but does not escape any () in its
669
         * value, so let's skip over it manually */
670

671
        p = strrchr(line, ')');
1,388✔
672
        if (!p)
1,388✔
673
                return -EIO;
674
        p++;
1,388✔
675

676
        if (sscanf(p, " "
1,388✔
677
                   "%*c "  /* state */
678
                   "%lu ", /* ppid */
679
                   &ppid) != 1)
680
                return -EIO;
681

682
        /* If ppid is zero the process has no parent. Which might be the case for PID 1 (caught above)
683
         * but also for processes originating in other namespaces that are inserted into a pidns.
684
         * Return a recognizable error in this case. */
685
        if (ppid == 0)
1,388✔
686
                return -EADDRNOTAVAIL;
687

688
        if ((pid_t) ppid < 0 || (unsigned long) (pid_t) ppid != ppid)
1,388✔
689
                return -ERANGE;
690

691
        if (ret)
1,388✔
692
                *ret = (pid_t) ppid;
1,388✔
693

694
        return 0;
695
}
696

697
int pidref_get_ppid(const PidRef *pidref, pid_t *ret) {
698
        int r;
2,427✔
699

700
        if (!pidref_is_set(pidref))
2,427✔
701
                return -ESRCH;
2,427✔
702

703
        if (pidref_is_remote(pidref))
2,427✔
704
                return -EREMOTE;
705

706
        if (pidref->fd >= 0) {
2,427✔
707
                r = pidfd_get_ppid(pidref->fd, ret);
2,427✔
708
                if (!ERRNO_IS_NEG_NOT_SUPPORTED(r))
2,427✔
709
                        return r;
710
        }
711

712
        pid_t ppid;
1,393✔
713
        r = pid_get_ppid(pidref->pid, ret ? &ppid : NULL);
1,393✔
714
        if (r < 0)
1,393✔
715
                return r;
716

717
        r = pidref_verify(pidref);
1,392✔
718
        if (r < 0)
1,392✔
719
                return r;
720

721
        if (ret)
1,392✔
722
                *ret = ppid;
1,392✔
723
        return 0;
724
}
725

726
int pidref_get_ppid_as_pidref(const PidRef *pidref, PidRef *ret) {
727
        pid_t ppid;
17✔
728
        int r;
17✔
729

730
        assert(ret);
17✔
731

732
        r = pidref_get_ppid(pidref, &ppid);
17✔
733
        if (r < 0)
17✔
734
                return r;
17✔
735

736
        for (unsigned attempt = 0; attempt < 16; attempt++) {
16✔
737
                _cleanup_(pidref_done) PidRef parent = PIDREF_NULL;
16✔
738

739
                r = pidref_set_pid(&parent, ppid);
16✔
740
                if (r < 0)
16✔
741
                        return r;
742

743
                /* If we have a pidfd of the original PID, let's verify that the process we acquired really
744
                 * is the parent still */
745
                if (pidref->fd >= 0) {
16✔
746
                        r = pidref_get_ppid(pidref, &ppid);
16✔
747
                        if (r < 0)
16✔
748
                                return r;
749

750
                        /* Did the PPID change since we queried it? if so we might have pinned the wrong
751
                         * process, if its PID got reused by now. Let's try again */
752
                        if (parent.pid != ppid)
16✔
753
                                continue;
×
754
                }
755

756
                *ret = TAKE_PIDREF(parent);
16✔
757
                return 0;
16✔
758
        }
759

760
        /* Give up after 16 tries */
761
        return -ENOTRECOVERABLE;
762
}
763

764
int pid_get_start_time(pid_t pid, usec_t *ret) {
765
        _cleanup_free_ char *line = NULL;
659✔
766
        const char *p;
659✔
767
        int r;
659✔
768

769
        assert(pid >= 0);
659✔
770

771
        p = procfs_file_alloca(pid, "stat");
659✔
772
        r = read_one_line_file(p, &line);
659✔
773
        if (r == -ENOENT)
659✔
774
                return -ESRCH;
775
        if (r < 0)
659✔
776
                return r;
777

778
        /* Let's skip the pid and comm fields. The latter is enclosed in () but does not escape any () in its
779
         * value, so let's skip over it manually */
780

781
        p = strrchr(line, ')');
659✔
782
        if (!p)
659✔
783
                return -EIO;
784
        p++;
659✔
785

786
        unsigned long llu;
659✔
787

788
        if (sscanf(p, " "
659✔
789
                   "%*c " /* state */
790
                   "%*u " /* ppid */
791
                   "%*u " /* pgrp */
792
                   "%*u " /* session */
793
                   "%*u " /* tty_nr */
794
                   "%*u " /* tpgid */
795
                   "%*u " /* flags */
796
                   "%*u " /* minflt */
797
                   "%*u " /* cminflt */
798
                   "%*u " /* majflt */
799
                   "%*u " /* cmajflt */
800
                   "%*u " /* utime */
801
                   "%*u " /* stime */
802
                   "%*u " /* cutime */
803
                   "%*u " /* cstime */
804
                   "%*i " /* priority */
805
                   "%*i " /* nice */
806
                   "%*u " /* num_threads */
807
                   "%*u " /* itrealvalue */
808
                   "%lu ", /* starttime */
809
                   &llu) != 1)
810
                return -EIO;
811

812
        if (ret)
659✔
813
                *ret = jiffies_to_usec(llu); /* CLOCK_BOOTTIME */
659✔
814

815
        return 0;
816
}
817

818
int pidref_get_start_time(const PidRef *pid, usec_t *ret) {
819
        usec_t t;
659✔
820
        int r;
659✔
821

822
        if (!pidref_is_set(pid))
659✔
823
                return -ESRCH;
659✔
824

825
        if (pidref_is_remote(pid))
659✔
826
                return -EREMOTE;
827

828
        r = pid_get_start_time(pid->pid, ret ? &t : NULL);
659✔
829
        if (r < 0)
659✔
830
                return r;
831

832
        r = pidref_verify(pid);
659✔
833
        if (r < 0)
659✔
834
                return r;
835

836
        if (ret)
659✔
837
                *ret = t;
659✔
838

839
        return 0;
840
}
841

842
int get_process_umask(pid_t pid, mode_t *ret) {
843
        _cleanup_free_ char *m = NULL;
18,916✔
844
        int r;
18,916✔
845

846
        assert(pid >= 0);
18,916✔
847
        assert(ret);
18,916✔
848

849
        r = procfs_file_get_field(pid, "status", "Umask", &m);
18,916✔
850
        if (r == -ENOENT)
18,916✔
851
                return -ESRCH;
852
        if (r < 0)
18,916✔
853
                return r;
854

855
        return parse_mode(m, ret);
18,916✔
856
}
857

858
int wait_for_terminate(pid_t pid, siginfo_t *ret) {
859
        return pidref_wait_for_terminate(&PIDREF_MAKE_FROM_PID(pid), ret);
817✔
860
}
861

862
/*
863
 * Return values:
864
 * < 0 : wait_for_terminate() failed to get the state of the
865
 *       process, the process was terminated by a signal, or
866
 *       failed for an unknown reason.
867
 * >=0 : The process terminated normally, and its exit code is
868
 *       returned.
869
 *
870
 * That is, success is indicated by a return value of zero, and an
871
 * error is indicated by a non-zero value.
872
 *
873
 * A warning is emitted if the process terminates abnormally,
874
 * and also if it returns non-zero unless check_exit_code is true.
875
 */
876
int pidref_wait_for_terminate_and_check(const char *name, PidRef *pidref, WaitFlags flags) {
877
        int r;
9,154✔
878

879
        if (!pidref_is_set(pidref))
9,154✔
880
                return -ESRCH;
9,154✔
881
        if (pidref_is_remote(pidref))
18,308✔
882
                return -EREMOTE;
883
        if (pidref->pid == 1 || pidref_is_self(pidref))
9,154✔
884
                return -ECHILD;
×
885

886
        _cleanup_free_ char *buffer = NULL;
9,154✔
887
        if (!name) {
9,154✔
888
                r = pidref_get_comm(pidref, &buffer);
×
889
                if (r < 0)
×
890
                        log_debug_errno(r, "Failed to acquire process name of " PID_FMT ", ignoring: %m", pidref->pid);
×
891
                else
892
                        name = buffer;
×
893
        }
894

895
        int prio = flags & WAIT_LOG_ABNORMAL ? LOG_ERR : LOG_DEBUG;
9,154✔
896

897
        siginfo_t status;
9,154✔
898
        r = pidref_wait_for_terminate(pidref, &status);
9,154✔
899
        if (r < 0)
9,154✔
900
                return log_full_errno(prio, r, "Failed to wait for %s: %m", strna(name));
×
901

902
        if (status.si_code == CLD_EXITED) {
9,154✔
903
                if (status.si_status != EXIT_SUCCESS)
9,154✔
904
                        log_full(flags & WAIT_LOG_NON_ZERO_EXIT_STATUS ? LOG_ERR : LOG_DEBUG,
49✔
905
                                 "%s failed with exit status %i.", strna(name), status.si_status);
906
                else
907
                        log_debug("%s succeeded.", name);
9,105✔
908

909
                return status.si_status;
9,154✔
910

911
        } else if (IN_SET(status.si_code, CLD_KILLED, CLD_DUMPED)) {
×
912

913
                log_full(prio, "%s terminated by signal %s.", strna(name), signal_to_string(status.si_status));
×
914
                return -EPROTO;
×
915
        }
916

917
        log_full(prio, "%s failed due to unknown reason.", strna(name));
×
918
        return -EPROTO;
919
}
920

921
int wait_for_terminate_and_check(const char *name, pid_t pid, WaitFlags flags) {
922
        return pidref_wait_for_terminate_and_check(name, &PIDREF_MAKE_FROM_PID(pid), flags);
8,033✔
923
}
924

925
/*
926
 * Return values:
927
 *
928
 * < 0 : wait_for_terminate_with_timeout() failed to get the state of the process, the process timed out, the process
929
 *       was terminated by a signal, or failed for an unknown reason.
930
 *
931
 * >=0 : The process terminated normally with no failures.
932
 *
933
 * Success is indicated by a return value of zero, a timeout is indicated by ETIMEDOUT, and all other child failure
934
 * states are indicated by error is indicated by a non-zero value.
935
 *
936
 * This call assumes SIGCHLD has been blocked already, in particular before the child to wait for has been forked off
937
 * to remain entirely race-free.
938
 */
939
int wait_for_terminate_with_timeout(pid_t pid, usec_t timeout) {
940
        sigset_t mask;
×
941
        int r;
×
942
        usec_t until;
×
943

944
        assert_se(sigemptyset(&mask) == 0);
×
945
        assert_se(sigaddset(&mask, SIGCHLD) == 0);
×
946

947
        /* Drop into a sigtimewait-based timeout. Waiting for the
948
         * pid to exit. */
949
        until = usec_add(now(CLOCK_MONOTONIC), timeout);
×
950
        for (;;) {
×
951
                usec_t n;
×
952
                siginfo_t status = {};
×
953

954
                n = now(CLOCK_MONOTONIC);
×
955
                if (n >= until)
×
956
                        break;
957

958
                r = RET_NERRNO(sigtimedwait(&mask, NULL, TIMESPEC_STORE(until - n)));
×
959
                /* Assuming we woke due to the child exiting. */
960
                if (waitid(P_PID, pid, &status, WEXITED|WNOHANG) == 0) {
×
961
                        if (status.si_pid == pid) {
×
962
                                /* This is the correct child. */
963
                                if (status.si_code == CLD_EXITED)
×
964
                                        return status.si_status == 0 ? 0 : -EPROTO;
×
965
                                else
966
                                        return -EPROTO;
967
                        }
968
                }
969
                /* Not the child, check for errors and proceed appropriately */
970
                if (r < 0) {
×
971
                        switch (r) {
×
972
                        case -EAGAIN:
973
                                /* Timed out, child is likely hung. */
974
                                return -ETIMEDOUT;
975
                        case -EINTR:
×
976
                                /* Received a different signal and should retry */
977
                                continue;
×
978
                        default:
×
979
                                /* Return any unexpected errors */
980
                                return r;
×
981
                        }
982
                }
983
        }
984

985
        return -EPROTO;
×
986
}
987

988
void sigkill_wait(pid_t pid) {
989
        assert(pid > 1);
45✔
990

991
        (void) kill(pid, SIGKILL);
45✔
992
        (void) wait_for_terminate(pid, NULL);
45✔
993
}
45✔
994

995
void sigkill_waitp(pid_t *pid) {
996
        PROTECT_ERRNO;
11,798✔
997

998
        if (!pid)
11,798✔
999
                return;
1000
        if (*pid <= 1)
11,798✔
1001
                return;
1002

1003
        sigkill_wait(*pid);
44✔
1004
}
1005

1006
void sigterm_wait(pid_t pid) {
1007
        assert(pid > 1);
69✔
1008

1009
        (void) kill_and_sigcont(pid, SIGTERM);
69✔
1010
        (void) wait_for_terminate(pid, NULL);
69✔
1011
}
69✔
1012

1013
void sigkill_nowait(pid_t pid) {
1014
        assert(pid > 1);
×
1015

1016
        (void) kill(pid, SIGKILL);
×
1017
}
×
1018

1019
void sigkill_nowaitp(pid_t *pid) {
1020
        PROTECT_ERRNO;
×
1021

1022
        if (!pid)
×
1023
                return;
1024
        if (*pid <= 1)
×
1025
                return;
1026

1027
        sigkill_nowait(*pid);
×
1028
}
1029

1030
int kill_and_sigcont(pid_t pid, int sig) {
1031
        int r;
69✔
1032

1033
        r = RET_NERRNO(kill(pid, sig));
69✔
1034

1035
        /* If this worked, also send SIGCONT, unless we already just sent a SIGCONT, or SIGKILL was sent which isn't
1036
         * affected by a process being suspended anyway. */
1037
        if (r >= 0 && !IN_SET(sig, SIGCONT, SIGKILL))
69✔
1038
                (void) kill(pid, SIGCONT);
69✔
1039

1040
        return r;
69✔
1041
}
1042

1043
int getenv_for_pid(pid_t pid, const char *field, char **ret) {
1044
        _cleanup_fclose_ FILE *f = NULL;
4,728✔
1045
        const char *path;
4,728✔
1046
        size_t sum = 0;
4,728✔
1047
        int r;
4,728✔
1048

1049
        assert(pid >= 0);
4,728✔
1050
        assert(field);
4,728✔
1051
        assert(ret);
4,728✔
1052

1053
        if (pid == 0 || pid == getpid_cached())
4,728✔
1054
                return strdup_to_full(ret, getenv(field));
13✔
1055

1056
        if (!pid_is_valid(pid))
4,715✔
1057
                return -EINVAL;
1058

1059
        path = procfs_file_alloca(pid, "environ");
4,715✔
1060

1061
        r = fopen_unlocked(path, "re", &f);
4,715✔
1062
        if (r == -ENOENT)
4,715✔
1063
                return -ESRCH;
1064
        if (r < 0)
4,248✔
1065
                return r;
1066

1067
        for (;;) {
46,750✔
1068
                _cleanup_free_ char *line = NULL;
21,946✔
1069
                const char *match;
24,806✔
1070

1071
                if (sum > ENVIRONMENT_BLOCK_MAX) /* Give up searching eventually */
24,806✔
1072
                        return -ENOBUFS;
1073

1074
                r = read_nul_string(f, LONG_LINE_MAX, &line);
24,806✔
1075
                if (r < 0)
24,806✔
1076
                        return r;
1077
                if (r == 0)  /* EOF */
24,806✔
1078
                        break;
1079

1080
                sum += r;
21,946✔
1081

1082
                match = startswith(line, field);
21,946✔
1083
                if (match && *match == '=')
21,946✔
1084
                        return strdup_to_full(ret, match + 1);
2✔
1085
        }
1086

1087
        *ret = NULL;
2,860✔
1088
        return 0;
2,860✔
1089
}
1090

1091
int pidref_is_my_child(PidRef *pid) {
1092
        int r;
2,393✔
1093

1094
        if (!pidref_is_set(pid))
2,393✔
1095
                return -ESRCH;
2,393✔
1096

1097
        if (pidref_is_remote(pid))
2,393✔
1098
                return -EREMOTE;
1099

1100
        if (pid->pid == 1 || pidref_is_self(pid))
2,393✔
1101
                return false;
×
1102

1103
        pid_t ppid;
2,393✔
1104
        r = pidref_get_ppid(pid, &ppid);
2,393✔
1105
        if (r == -EADDRNOTAVAIL) /* if this process is outside of our pidns, it is definitely not our child */
2,393✔
1106
                return false;
1107
        if (r < 0)
2,393✔
1108
                return r;
1109

1110
        return ppid == getpid_cached();
2,393✔
1111
}
1112

1113
int pid_is_my_child(pid_t pid) {
1114

1115
        if (pid == 0)
×
1116
                return false;
×
1117

1118
        return pidref_is_my_child(&PIDREF_MAKE_FROM_PID(pid));
×
1119
}
1120

1121
int pidref_is_unwaited(PidRef *pid) {
1122
        int r;
8,266✔
1123

1124
        /* Checks whether a PID is still valid at all, including a zombie */
1125

1126
        if (!pidref_is_set(pid))
8,266✔
1127
                return -ESRCH;
1128

1129
        if (pidref_is_remote(pid))
8,265✔
1130
                return -EREMOTE;
1131

1132
        if (pid->pid == 1 || pidref_is_self(pid))
8,265✔
1133
                return true;
5✔
1134

1135
        r = pidref_kill(pid, 0);
8,260✔
1136
        if (r == -ESRCH)
8,260✔
1137
                return false;
1138
        if (r < 0)
1,878✔
1139
                return r;
122✔
1140

1141
        return true;
1142
}
1143

1144
int pid_is_unwaited(pid_t pid) {
1145

1146
        if (pid == 0)
7,610✔
1147
                return true;
7,610✔
1148

1149
        return pidref_is_unwaited(&PIDREF_MAKE_FROM_PID(pid));
7,610✔
1150
}
1151

1152
int pid_is_alive(pid_t pid) {
1153
        int r;
10,365✔
1154

1155
        /* Checks whether a PID is still valid and not a zombie */
1156

1157
        if (pid < 0)
10,365✔
1158
                return -ESRCH;
1159

1160
        if (pid <= 1) /* If we or PID 1 would be a zombie, this code would not be running */
10,364✔
1161
                return true;
1162

1163
        if (pid == getpid_cached())
10,364✔
1164
                return true;
1165

1166
        r = get_process_state(pid);
10,363✔
1167
        if (r == -ESRCH)
10,363✔
1168
                return false;
1169
        if (r < 0)
8,297✔
1170
                return r;
1171

1172
        return r != 'Z';
8,297✔
1173
}
1174

1175
int pidref_is_alive(const PidRef *pidref) {
1176
        int r, result;
10,360✔
1177

1178
        if (!pidref_is_set(pidref))
10,360✔
1179
                return -ESRCH;
1180

1181
        if (pidref_is_remote(pidref))
10,360✔
1182
                return -EREMOTE;
1183

1184
        result = pid_is_alive(pidref->pid);
10,360✔
1185
        if (result < 0) {
10,360✔
1186
                assert(result != -ESRCH);
×
1187
                return result;
1188
        }
1189

1190
        r = pidref_verify(pidref);
10,360✔
1191
        if (r == -ESRCH)
10,360✔
1192
                return false;
1193
        if (r < 0)
8,293✔
1194
                return r;
×
1195

1196
        return result;
1197
}
1198

1199
int pidref_from_same_root_fs(PidRef *a, PidRef *b) {
1200
        _cleanup_(pidref_done) PidRef self = PIDREF_NULL;
×
1201
        int r;
13,624✔
1202

1203
        /* Checks if the two specified processes have the same root fs. Either can be specified as NULL in
1204
         * which case we'll check against ourselves. */
1205

1206
        if (!a || !b) {
13,624✔
1207
                r = pidref_set_self(&self);
13,603✔
1208
                if (r < 0)
13,603✔
1209
                        return r;
1210
                if (!a)
13,603✔
1211
                        a = &self;
×
1212
                if (!b)
13,603✔
1213
                        b = &self;
13,603✔
1214
        }
1215

1216
        if (!pidref_is_set(a) || !pidref_is_set(b))
13,624✔
1217
                return -ESRCH;
×
1218

1219
        /* If one of the two processes have the same root they cannot have the same root fs, but if both of
1220
         * them do we don't know */
1221
        if (pidref_is_remote(a) && pidref_is_remote(b))
13,624✔
1222
                return -EREMOTE;
1223
        if (pidref_is_remote(a) || pidref_is_remote(b))
40,872✔
1224
                return false;
1225

1226
        if (pidref_equal(a, b))
13,624✔
1227
                return true;
1228

1229
        const char *roota = procfs_file_alloca(a->pid, "root");
13,510✔
1230
        const char *rootb = procfs_file_alloca(b->pid, "root");
13,510✔
1231

1232
        int result = inode_same(roota, rootb, 0);
13,510✔
1233
        if (result == -ENOENT)
13,510✔
1234
                return proc_mounted() == 0 ? -ENOSYS : -ESRCH;
×
1235
        if (result < 0)
13,510✔
1236
                return result;
1237

1238
        r = pidref_verify(a);
13,392✔
1239
        if (r < 0)
13,392✔
1240
                return r;
1241
        r = pidref_verify(b);
13,392✔
1242
        if (r < 0)
13,392✔
1243
                return r;
×
1244

1245
        return result;
1246
}
1247

1248
bool is_main_thread(void) {
1249
        static thread_local int cached = -1;
6,948,675✔
1250

1251
        if (cached < 0)
6,948,675✔
1252
                cached = getpid_cached() == gettid();
70,453✔
1253

1254
        return cached;
6,948,675✔
1255
}
1256

1257
bool oom_score_adjust_is_valid(int oa) {
1258
        return oa >= OOM_SCORE_ADJ_MIN && oa <= OOM_SCORE_ADJ_MAX;
5,797✔
1259
}
1260

1261
unsigned long personality_from_string(const char *p) {
1262
        Architecture architecture;
9✔
1263

1264
        if (!p)
9✔
1265
                return PERSONALITY_INVALID;
1266

1267
        /* Parse a personality specifier. We use our own identifiers that indicate specific ABIs, rather than just
1268
         * hints regarding the register size, since we want to keep things open for multiple locally supported ABIs for
1269
         * the same register size. */
1270

1271
        architecture = architecture_from_string(p);
8✔
1272
        if (architecture < 0)
8✔
1273
                return PERSONALITY_INVALID;
1274

1275
        if (architecture == native_architecture())
6✔
1276
                return PER_LINUX;
1277
#ifdef ARCHITECTURE_SECONDARY
1278
        if (architecture == ARCHITECTURE_SECONDARY)
3✔
1279
                return PER_LINUX32;
2✔
1280
#endif
1281

1282
        return PERSONALITY_INVALID;
1283
}
1284

1285
const char* personality_to_string(unsigned long p) {
1286
        Architecture architecture = _ARCHITECTURE_INVALID;
1,293✔
1287

1288
        if (p == PER_LINUX)
1,293✔
1289
                architecture = native_architecture();
1290
#ifdef ARCHITECTURE_SECONDARY
1291
        else if (p == PER_LINUX32)
1,288✔
1292
                architecture = ARCHITECTURE_SECONDARY;
1293
#endif
1294

1295
        if (architecture < 0)
1296
                return NULL;
1297

1298
        return architecture_to_string(architecture);
7✔
1299
}
1300

1301
int safe_personality(unsigned long p) {
1302
        int ret;
1,508✔
1303

1304
        /* So here's the deal, personality() is weirdly defined by glibc. In some cases it returns a failure via errno,
1305
         * and in others as negative return value containing an errno-like value. Let's work around this: this is a
1306
         * wrapper that uses errno if it is set, and uses the return value otherwise. And then it sets both errno and
1307
         * the return value indicating the same issue, so that we are definitely on the safe side.
1308
         *
1309
         * See https://github.com/systemd/systemd/issues/6737 */
1310

1311
        errno = 0;
1,508✔
1312
        ret = personality(p);
1,508✔
1313
        if (ret < 0) {
1,508✔
1314
                if (errno != 0)
12✔
1315
                        return -errno;
12✔
1316

1317
                errno = -ret;
×
1318
        }
1319

1320
        return ret;
1321
}
1322

1323
int opinionated_personality(unsigned long *ret) {
1324
        int current;
1,493✔
1325

1326
        /* Returns the current personality, or PERSONALITY_INVALID if we can't determine it. This function is a bit
1327
         * opinionated though, and ignores all the finer-grained bits and exotic personalities, only distinguishing the
1328
         * two most relevant personalities: PER_LINUX and PER_LINUX32. */
1329

1330
        current = safe_personality(PERSONALITY_INVALID);
1,493✔
1331
        if (current < 0)
1,493✔
1332
                return current;
1333

1334
        if (((unsigned long) current & OPINIONATED_PERSONALITY_MASK) == PER_LINUX32)
1,493✔
1335
                *ret = PER_LINUX32;
×
1336
        else
1337
                *ret = PER_LINUX;
1,493✔
1338

1339
        return 0;
1340
}
1341

1342
void valgrind_summary_hack(void) {
1343
#if HAVE_VALGRIND_VALGRIND_H
1344
        if (getpid_cached() == 1 && RUNNING_ON_VALGRIND) {
1345
                pid_t pid;
1346
                pid = raw_clone(SIGCHLD);
1347
                if (pid < 0)
1348
                        log_struct_errno(
1349
                                LOG_EMERG, errno,
1350
                                LOG_MESSAGE_ID(SD_MESSAGE_VALGRIND_HELPER_FORK_STR),
1351
                                LOG_MESSAGE("Failed to fork off valgrind helper: %m"));
1352
                else if (pid == 0)
1353
                        exit(EXIT_SUCCESS);
1354
                else {
1355
                        log_info("Spawned valgrind helper as PID "PID_FMT".", pid);
1356
                        (void) wait_for_terminate(pid, NULL);
1357
                }
1358
        }
1359
#endif
1360
}
47✔
1361

1362
int pid_compare_func(const pid_t *a, const pid_t *b) {
1363
        /* Suitable for usage in qsort() */
1364
        return CMP(*a, *b);
1,811✔
1365
}
1366

1367
/* The cached PID, possible values:
1368
 *
1369
 *     == UNSET [0]  → cache not initialized yet
1370
 *     == BUSY [-1]  → some thread is initializing it at the moment
1371
 *     any other     → the cached PID
1372
 */
1373

1374
#define CACHED_PID_UNSET ((pid_t) 0)
1375
#define CACHED_PID_BUSY ((pid_t) -1)
1376

1377
static pid_t cached_pid = CACHED_PID_UNSET;
1378

1379
void reset_cached_pid(void) {
1380
        /* Invoked in the child after a fork(), i.e. at the first moment the PID changed */
1381
        cached_pid = CACHED_PID_UNSET;
3,241✔
1382
}
3,241✔
1383

1384
pid_t getpid_cached(void) {
1385
        static bool installed = false;
88,654,984✔
1386
        pid_t current_value = CACHED_PID_UNSET;
88,654,984✔
1387

1388
        /* getpid_cached() is much like getpid(), but caches the value in local memory, to avoid having to invoke a
1389
         * system call each time. This restores glibc behaviour from before 2.24, when getpid() was unconditionally
1390
         * cached. Starting with 2.24 getpid() started to become prohibitively expensive when used for detecting when
1391
         * objects were used across fork()s. With this caching the old behaviour is somewhat restored.
1392
         *
1393
         * https://bugzilla.redhat.com/show_bug.cgi?id=1443976
1394
         * https://sourceware.org/git/gitweb.cgi?p=glibc.git;h=c579f48edba88380635ab98cb612030e3ed8691e
1395
         */
1396

1397
        (void) __atomic_compare_exchange_n(
88,654,984✔
1398
                        &cached_pid,
1399
                        &current_value,
1400
                        CACHED_PID_BUSY,
1401
                        false,
1402
                        __ATOMIC_SEQ_CST,
1403
                        __ATOMIC_SEQ_CST);
1404

1405
        switch (current_value) {
88,654,984✔
1406

1407
        case CACHED_PID_UNSET: { /* Not initialized yet, then do so now */
122,289✔
1408
                pid_t new_pid;
122,289✔
1409

1410
                new_pid = getpid();
122,289✔
1411

1412
                if (!installed) {
122,289✔
1413
                        /* __register_atfork() either returns 0 or -ENOMEM, in its glibc implementation. Since it's
1414
                         * only half-documented (glibc doesn't document it but LSB does — though only superficially)
1415
                         * we'll check for errors only in the most generic fashion possible. */
1416

1417
                        if (pthread_atfork(NULL, NULL, reset_cached_pid) != 0) {
92,336✔
1418
                                /* OOM? Let's try again later */
1419
                                cached_pid = CACHED_PID_UNSET;
×
1420
                                return new_pid;
×
1421
                        }
1422

1423
                        installed = true;
92,336✔
1424
                }
1425

1426
                cached_pid = new_pid;
122,289✔
1427
                return new_pid;
122,289✔
1428
        }
1429

1430
        case CACHED_PID_BUSY: /* Somebody else is currently initializing */
×
1431
                return getpid();
×
1432

1433
        default: /* Properly initialized */
1434
                return current_value;
1435
        }
1436
}
1437

1438
int must_be_root(void) {
1439

1440
        if (geteuid() == 0)
59✔
1441
                return 0;
1442

1443
        return log_error_errno(SYNTHETIC_ERRNO(EPERM), "Need to be root.");
×
1444
}
1445

1446
pid_t clone_with_nested_stack(int (*fn)(void *), int flags, void *userdata) {
1447
        size_t ps;
2,972✔
1448
        pid_t pid;
2,972✔
1449
        void *mystack;
2,972✔
1450

1451
        /* A wrapper around glibc's clone() call that automatically sets up a "nested" stack. Only supports
1452
         * invocations without CLONE_VM, so that we can continue to use the parent's stack mapping.
1453
         *
1454
         * Note: glibc's clone() wrapper does not synchronize malloc() locks. This means that if the parent
1455
         * is threaded these locks will be in an undefined state in the child, and hence memory allocations
1456
         * are likely going to run into deadlocks. Hence: if you use this function make sure your parent is
1457
         * strictly single-threaded or your child never calls malloc(). */
1458

1459
        assert((flags & (CLONE_VM|CLONE_PARENT_SETTID|CLONE_CHILD_SETTID|
2,972✔
1460
                         CLONE_CHILD_CLEARTID|CLONE_SETTLS)) == 0);
1461

1462
        /* We allocate some space on the stack to use as the stack for the child (hence "nested"). Note that
1463
         * the net effect is that the child will have the start of its stack inside the stack of the parent,
1464
         * but since they are a CoW copy of each other that's fine. We allocate one page-aligned page. But
1465
         * since we don't want to deal with differences between systems where the stack grows backwards or
1466
         * forwards we'll allocate one more and place the stack address in the middle. Except that we also
1467
         * want it page aligned, hence we'll allocate one page more. Makes 3. */
1468

1469
        ps = page_size();
2,972✔
1470
        mystack = alloca(ps*3);
2,972✔
1471
        mystack = (uint8_t*) mystack + ps; /* move pointer one page ahead since stacks usually grow backwards */
2,972✔
1472
        mystack = (void*) ALIGN_TO((uintptr_t) mystack, ps); /* align to page size (moving things further ahead) */
2,972✔
1473

1474
#if HAVE_CLONE
1475
        pid = clone(fn, mystack, flags, userdata);
2,972✔
1476
#else
1477
        pid = __clone2(fn, mystack, ps, flags, userdata);
1478
#endif
1479
        if (pid < 0)
2,972✔
1480
                return -errno;
×
1481

1482
        return pid;
1483
}
1484

1485
static void restore_sigsetp(sigset_t **ssp) {
60,008✔
1486
        if (*ssp)
60,008✔
1487
                (void) sigprocmask(SIG_SETMASK, *ssp, NULL);
25,104✔
1488
}
60,008✔
1489

1490
static int fork_flags_to_signal(ForkFlags flags) {
29,200✔
1491
        return (flags & FORK_DEATHSIG_SIGTERM) ? SIGTERM :
29,200✔
1492
                (flags & FORK_DEATHSIG_SIGINT) ? SIGINT :
1,442✔
1493
                                                 SIGKILL;
1494
}
1495

1496
int pidref_safe_fork_full(
1497
                const char *name,
1498
                const int stdio_fds[3],
1499
                int except_fds[],
1500
                size_t n_except_fds,
1501
                ForkFlags flags,
1502
                PidRef *ret_pid) {
1503

1504
        pid_t original_pid, pid;
31,806✔
1505
        sigset_t saved_ss, ss;
31,806✔
1506
        _unused_ _cleanup_(restore_sigsetp) sigset_t *saved_ssp = NULL;
×
1507
        bool block_signals = false, block_all = false, intermediary = false;
31,806✔
1508
        _cleanup_close_pair_ int pidref_transport_fds[2] = EBADF_PAIR;
60,008✔
1509
        int prio, r;
31,806✔
1510

1511
        assert(!FLAGS_SET(flags, FORK_WAIT|FORK_FREEZE));
31,806✔
1512
        assert(!FLAGS_SET(flags, FORK_DETACH) ||
31,806✔
1513
               (flags & (FORK_WAIT|FORK_DEATHSIG_SIGTERM|FORK_DEATHSIG_SIGINT|FORK_DEATHSIG_SIGKILL)) == 0);
1514

1515
        /* A wrapper around fork(), that does a couple of important initializations in addition to mere
1516
         * forking. If provided, ret_pid is initialized in both the parent and the child process, both times
1517
         * referencing the child process. Returns == 0 in the child and > 0 in the parent. */
1518

1519
        prio = flags & FORK_LOG ? LOG_ERR : LOG_DEBUG;
31,806✔
1520

1521
        original_pid = getpid_cached();
31,806✔
1522

1523
        if (flags & FORK_FLUSH_STDIO) {
31,806✔
1524
                fflush(stdout);
5✔
1525
                fflush(stderr); /* This one shouldn't be necessary, stderr should be unbuffered anyway, but let's better be safe than sorry */
5✔
1526
        }
1527

1528
        if (flags & (FORK_RESET_SIGNALS|FORK_DEATHSIG_SIGTERM|FORK_DEATHSIG_SIGINT)) {
31,806✔
1529
                /* We temporarily block all signals, so that the new child has them blocked initially. This
1530
                 * way, we can be sure that SIGTERMs are not lost we might send to the child. (Note that for
1531
                 * FORK_DEATHSIG_SIGKILL we don't bother, since it cannot be blocked anyway.) */
1532

1533
                assert_se(sigfillset(&ss) >= 0);
27,233✔
1534
                block_signals = block_all = true;
1535

1536
        } else if (flags & FORK_WAIT) {
4,573✔
1537
                /* Let's block SIGCHLD at least, so that we can safely watch for the child process */
1538

1539
                assert_se(sigemptyset(&ss) >= 0);
106✔
1540
                assert_se(sigaddset(&ss, SIGCHLD) >= 0);
106✔
1541
                block_signals = true;
1542
        }
1543

1544
        if (block_signals) {
1545
                if (sigprocmask(SIG_BLOCK, &ss, &saved_ss) < 0)
27,339✔
1546
                        return log_full_errno(prio, errno, "Failed to block signal mask: %m");
×
1547
                saved_ssp = &saved_ss;
27,339✔
1548
        }
1549

1550
        if (FLAGS_SET(flags, FORK_DETACH)) {
31,806✔
1551
                /* Fork off intermediary child if needed */
1552

1553
                r = is_reaper_process();
99✔
1554
                if (r < 0)
99✔
1555
                        return log_full_errno(prio, r, "Failed to determine if we are a reaper process: %m");
×
1556

1557
                if (!r) {
99✔
1558
                        /* Not a reaper process, hence do a double fork() so we are reparented to one */
1559

1560
                        if (ret_pid && socketpair(AF_UNIX, SOCK_DGRAM|SOCK_CLOEXEC, 0, pidref_transport_fds) < 0)
11✔
1561
                                return log_full_errno(prio, errno, "Failed to allocate pidref socket: %m");
×
1562

1563
                        pid = fork();
11✔
1564
                        if (pid < 0)
28✔
1565
                                return log_full_errno(prio, errno, "Failed to fork off '%s': %m", strna(name));
×
1566
                        if (pid > 0) {
28✔
1567
                                log_debug("Successfully forked off intermediary '%s' as PID " PID_FMT ".", strna(name), pid);
11✔
1568

1569
                                pidref_transport_fds[1] = safe_close(pidref_transport_fds[1]);
11✔
1570

1571
                                if (pidref_transport_fds[0] >= 0) {
11✔
1572
                                        /* Wait for the intermediary child to exit so the caller can be certain the actual child
1573
                                         * process has been reparented by the time this function returns. */
1574
                                        r = wait_for_terminate_and_check(name, pid, FLAGS_SET(flags, FORK_LOG) ? WAIT_LOG : 0);
20✔
1575
                                        if (r < 0)
10✔
1576
                                                return log_full_errno(prio, r, "Failed to wait for intermediary process: %m");
×
1577
                                        if (r != EXIT_SUCCESS) /* exit status > 0 should be treated as failure, too */
10✔
1578
                                                return -EPROTO;
1579

1580
                                        int pidfd;
10✔
1581
                                        ssize_t n = receive_one_fd_iov(
20✔
1582
                                                        pidref_transport_fds[0],
1583
                                                        &IOVEC_MAKE(&pid, sizeof(pid)),
10✔
1584
                                                        /* iovlen= */ 1,
1585
                                                        /* flags= */ 0,
1586
                                                        &pidfd);
1587
                                        if (n < 0)
10✔
1588
                                                return log_full_errno(prio, n, "Failed to receive child pidref: %m");
×
1589

1590
                                        *ret_pid = (PidRef) { .pid = pid, .fd = pidfd };
10✔
1591
                                }
1592

1593
                                return 1; /* return in the parent */
11✔
1594
                        }
1595

1596
                        pidref_transport_fds[0] = safe_close(pidref_transport_fds[0]);
17✔
1597
                        intermediary = true;
17✔
1598
                }
1599
        }
1600

1601
        if ((flags & (FORK_NEW_MOUNTNS|FORK_NEW_USERNS|FORK_NEW_NETNS|FORK_NEW_PIDNS)) != 0)
31,812✔
1602
                pid = raw_clone(SIGCHLD|
9,952✔
1603
                                (FLAGS_SET(flags, FORK_NEW_MOUNTNS) ? CLONE_NEWNS : 0) |
9,952✔
1604
                                (FLAGS_SET(flags, FORK_NEW_USERNS) ? CLONE_NEWUSER : 0) |
9,952✔
1605
                                (FLAGS_SET(flags, FORK_NEW_NETNS) ? CLONE_NEWNET : 0) |
9,952✔
1606
                                (FLAGS_SET(flags, FORK_NEW_PIDNS) ? CLONE_NEWPID : 0));
9,952✔
1607
        else
1608
                pid = fork();
21,860✔
1609
        if (pid < 0)
60,008✔
1610
                return log_full_errno(prio, errno, "Failed to fork off '%s': %m", strna(name));
2✔
1611
        if (pid > 0) {
60,007✔
1612

1613
                /* If we are in the intermediary process, exit now */
1614
                if (intermediary) {
29,570✔
1615
                        if (pidref_transport_fds[1] >= 0) {
11✔
1616
                                _cleanup_(pidref_done) PidRef pidref = PIDREF_NULL;
10✔
1617

1618
                                r = pidref_set_pid(&pidref, pid);
10✔
1619
                                if (r < 0) {
10✔
1620
                                        log_full_errno(prio, r, "Failed to open reference to PID "PID_FMT": %m", pid);
×
1621
                                        _exit(EXIT_FAILURE);
×
1622
                                }
1623

1624
                                r = send_one_fd_iov(
10✔
1625
                                                pidref_transport_fds[1],
1626
                                                pidref.fd,
1627
                                                &IOVEC_MAKE(&pidref.pid, sizeof(pidref.pid)),
1628
                                                /* iovlen= */ 1,
1629
                                                /* flags= */ 0);
1630
                                if (r < 0) {
10✔
1631
                                        log_full_errno(prio, r, "Failed to send child pidref: %m");
×
1632
                                        _exit(EXIT_FAILURE);
×
1633
                                }
1634
                        }
1635

1636
                        _exit(EXIT_SUCCESS);
11✔
1637
                }
1638

1639
                /* We are in the parent process */
1640
                log_debug("Successfully forked off '%s' as PID " PID_FMT ".", strna(name), pid);
29,559✔
1641

1642
                if (flags & FORK_WAIT) {
29,559✔
1643
                        if (block_all) {
3,233✔
1644
                                /* undo everything except SIGCHLD */
1645
                                ss = saved_ss;
3,127✔
1646
                                assert_se(sigaddset(&ss, SIGCHLD) >= 0);
3,127✔
1647
                                (void) sigprocmask(SIG_SETMASK, &ss, NULL);
3,127✔
1648
                        }
1649

1650
                        r = wait_for_terminate_and_check(name, pid, (flags & FORK_LOG ? WAIT_LOG : 0));
6,003✔
1651
                        if (r < 0)
3,233✔
1652
                                return r;
1653
                        if (r != EXIT_SUCCESS) /* exit status > 0 should be treated as failure, too */
3,233✔
1654
                                return -EPROTO;
1655

1656
                        /* If we are in the parent and successfully waited, then the process doesn't exist anymore. */
1657
                        if (ret_pid)
3,233✔
1658
                                *ret_pid = PIDREF_NULL;
14✔
1659

1660
                        return 1;
3,233✔
1661
                }
1662

1663
                if (ret_pid) {
26,326✔
1664
                        if (FLAGS_SET(flags, FORK_PID_ONLY))
25,833✔
1665
                                *ret_pid = PIDREF_MAKE_FROM_PID(pid);
7,320✔
1666
                        else {
1667
                                r = pidref_set_pid(ret_pid, pid);
18,513✔
1668
                                if (r < 0) /* Let's not fail for this, no matter what, the process exists after all, and that's key */
18,513✔
1669
                                        *ret_pid = PIDREF_MAKE_FROM_PID(pid);
×
1670
                        }
1671
                }
1672

1673
                return 1;
26,326✔
1674
        }
1675

1676
        /* We are in the child process */
1677

1678
        pidref_transport_fds[1] = safe_close(pidref_transport_fds[1]);
30,437✔
1679

1680
        /* Restore signal mask manually */
1681
        saved_ssp = NULL;
30,437✔
1682

1683
        if (flags & FORK_REOPEN_LOG) {
30,437✔
1684
                /* Close the logs if requested, before we log anything. And make sure we reopen it if needed. */
1685
                log_close();
2,703✔
1686
                log_set_open_when_needed(true);
2,703✔
1687
                log_settle_target();
2,703✔
1688
        }
1689

1690
        if (name) {
30,437✔
1691
                r = rename_process(name);
30,437✔
1692
                if (r < 0)
30,437✔
1693
                        log_full_errno(flags & FORK_LOG ? LOG_WARNING : LOG_DEBUG,
×
1694
                                       r, "Failed to rename process, ignoring: %m");
1695
        }
1696

1697
        if (flags & (FORK_DEATHSIG_SIGTERM|FORK_DEATHSIG_SIGINT|FORK_DEATHSIG_SIGKILL))
30,437✔
1698
                if (prctl(PR_SET_PDEATHSIG, fork_flags_to_signal(flags)) < 0) {
29,200✔
1699
                        log_full_errno(prio, errno, "Failed to set death signal: %m");
×
1700
                        _exit(EXIT_FAILURE);
×
1701
                }
1702

1703
        if (flags & FORK_RESET_SIGNALS) {
30,437✔
1704
                r = reset_all_signal_handlers();
23,522✔
1705
                if (r < 0) {
23,522✔
1706
                        log_full_errno(prio, r, "Failed to reset signal handlers: %m");
×
1707
                        _exit(EXIT_FAILURE);
×
1708
                }
1709

1710
                /* This implicitly undoes the signal mask stuff we did before the fork()ing above */
1711
                r = reset_signal_mask();
23,522✔
1712
                if (r < 0) {
23,522✔
1713
                        log_full_errno(prio, r, "Failed to reset signal mask: %m");
×
1714
                        _exit(EXIT_FAILURE);
×
1715
                }
1716
        } else if (block_signals) { /* undo what we did above */
6,915✔
1717
                if (sigprocmask(SIG_SETMASK, &saved_ss, NULL) < 0) {
6,520✔
1718
                        log_full_errno(prio, errno, "Failed to restore signal mask: %m");
×
1719
                        _exit(EXIT_FAILURE);
×
1720
                }
1721
        }
1722

1723
        if (flags & (FORK_DEATHSIG_SIGTERM|FORK_DEATHSIG_SIGKILL|FORK_DEATHSIG_SIGINT)) {
30,437✔
1724
                pid_t ppid;
29,200✔
1725
                /* Let's see if the parent PID is still the one we started from? If not, then the parent
1726
                 * already died by the time we set PR_SET_PDEATHSIG, hence let's emulate the effect */
1727

1728
                ppid = getppid();
29,200✔
1729
                if (ppid == 0)
29,200✔
1730
                        /* Parent is in a different PID namespace. */;
1731
                else if (ppid != original_pid) {
29,161✔
1732
                        int sig = fork_flags_to_signal(flags);
×
1733
                        log_debug("Parent died early, raising %s.", signal_to_string(sig));
×
1734
                        (void) raise(sig);
×
1735
                        _exit(EXIT_FAILURE);
×
1736
                }
1737
        }
1738

1739
        if (FLAGS_SET(flags, FORK_NEW_MOUNTNS | FORK_MOUNTNS_SLAVE)) {
30,437✔
1740
                /* Optionally, make sure we never propagate mounts to the host. */
1741
                if (mount(NULL, "/", NULL, MS_SLAVE | MS_REC, NULL) < 0) {
135✔
1742
                        log_full_errno(prio, errno, "Failed to remount root directory as MS_SLAVE: %m");
×
1743
                        _exit(EXIT_FAILURE);
×
1744
                }
1745
        }
1746

1747
        if (FLAGS_SET(flags, FORK_PRIVATE_TMP)) {
30,437✔
1748
                assert(FLAGS_SET(flags, FORK_NEW_MOUNTNS));
×
1749

1750
                /* Optionally, overmount new tmpfs instance on /tmp/. */
1751
                r = mount_nofollow("tmpfs", "/tmp", "tmpfs",
×
1752
                                   MS_NOSUID|MS_NODEV,
1753
                                   "mode=01777" TMPFS_LIMITS_RUN);
1754
                if (r < 0) {
×
1755
                        log_full_errno(prio, r, "Failed to overmount /tmp/: %m");
×
1756
                        _exit(EXIT_FAILURE);
×
1757
                }
1758
        }
1759

1760
        if (flags & FORK_REARRANGE_STDIO) {
30,437✔
1761
                if (stdio_fds) {
14,489✔
1762
                        r = rearrange_stdio(stdio_fds[0], stdio_fds[1], stdio_fds[2]);
14,479✔
1763
                        if (r < 0) {
14,479✔
1764
                                log_full_errno(prio, r, "Failed to rearrange stdio fds: %m");
×
1765
                                _exit(EXIT_FAILURE);
×
1766
                        }
1767

1768
                        /* Turn off O_NONBLOCK on the fdio fds, in case it was left on */
1769
                        stdio_disable_nonblock();
14,479✔
1770
                } else {
1771
                        r = make_null_stdio();
10✔
1772
                        if (r < 0) {
10✔
1773
                                log_full_errno(prio, r, "Failed to connect stdin/stdout to /dev/null: %m");
×
1774
                                _exit(EXIT_FAILURE);
×
1775
                        }
1776
                }
1777
        } else if (flags & FORK_STDOUT_TO_STDERR) {
15,948✔
1778
                if (dup2(STDERR_FILENO, STDOUT_FILENO) < 0) {
2✔
1779
                        log_full_errno(prio, errno, "Failed to connect stdout to stderr: %m");
×
1780
                        _exit(EXIT_FAILURE);
×
1781
                }
1782
        }
1783

1784
        if (flags & FORK_CLOSE_ALL_FDS) {
30,437✔
1785
                /* Close the logs here in case it got reopened above, as close_all_fds() would close them for us */
1786
                log_close();
22,543✔
1787

1788
                r = close_all_fds(except_fds, n_except_fds);
22,543✔
1789
                if (r < 0) {
22,543✔
1790
                        log_full_errno(prio, r, "Failed to close all file descriptors: %m");
×
1791
                        _exit(EXIT_FAILURE);
×
1792
                }
1793
        }
1794

1795
        if (flags & FORK_PACK_FDS) {
30,437✔
1796
                /* FORK_CLOSE_ALL_FDS ensures that except_fds are the only FDs >= 3 that are
1797
                 * open, this is including the log. This is required by pack_fds, which will
1798
                 * get stuck in an infinite loop of any FDs other than except_fds are open. */
1799
                assert(FLAGS_SET(flags, FORK_CLOSE_ALL_FDS));
87✔
1800

1801
                r = pack_fds(except_fds, n_except_fds);
87✔
1802
                if (r < 0) {
87✔
1803
                        log_full_errno(prio, r, "Failed to pack file descriptors: %m");
×
1804
                        _exit(EXIT_FAILURE);
×
1805
                }
1806
        }
1807

1808
        if (flags & FORK_CLOEXEC_OFF) {
30,437✔
1809
                r = fd_cloexec_many(except_fds, n_except_fds, false);
96✔
1810
                if (r < 0) {
96✔
1811
                        log_full_errno(prio, r, "Failed to turn off O_CLOEXEC on file descriptors: %m");
×
1812
                        _exit(EXIT_FAILURE);
×
1813
                }
1814
        }
1815

1816
        /* When we were asked to reopen the logs, do so again now */
1817
        if (flags & FORK_REOPEN_LOG) {
30,437✔
1818
                log_open();
2,703✔
1819
                log_set_open_when_needed(false);
2,703✔
1820
        }
1821

1822
        if (flags & FORK_RLIMIT_NOFILE_SAFE) {
30,437✔
1823
                r = rlimit_nofile_safe();
18,652✔
1824
                if (r < 0) {
18,652✔
1825
                        log_full_errno(prio, r, "Failed to lower RLIMIT_NOFILE's soft limit to 1K: %m");
×
1826
                        _exit(EXIT_FAILURE);
×
1827
                }
1828
        }
1829

1830
        if (!FLAGS_SET(flags, FORK_KEEP_NOTIFY_SOCKET)) {
30,437✔
1831
                r = RET_NERRNO(unsetenv("NOTIFY_SOCKET"));
30,437✔
1832
                if (r < 0) {
×
1833
                        log_full_errno(prio, r, "Failed to unset $NOTIFY_SOCKET: %m");
×
1834
                        _exit(EXIT_FAILURE);
×
1835
                }
1836
        }
1837

1838
        if (FLAGS_SET(flags, FORK_FREEZE))
30,437✔
1839
                freeze();
×
1840

1841
        if (ret_pid) {
30,437✔
1842
                if (FLAGS_SET(flags, FORK_PID_ONLY))
26,463✔
1843
                        *ret_pid = PIDREF_MAKE_FROM_PID(getpid_cached());
7,259✔
1844
                else {
1845
                        r = pidref_set_self(ret_pid);
19,204✔
1846
                        if (r < 0) {
19,204✔
1847
                                log_full_errno(prio, r, "Failed to acquire PID reference on ourselves: %m");
×
1848
                                _exit(EXIT_FAILURE);
×
1849
                        }
1850
                }
1851
        }
1852

1853
        return 0;
1854
}
1855

1856
int safe_fork_full(
1857
                const char *name,
1858
                const int stdio_fds[3],
1859
                int except_fds[],
1860
                size_t n_except_fds,
1861
                ForkFlags flags,
1862
                pid_t *ret_pid) {
1863

1864
        _cleanup_(pidref_done) PidRef pidref = PIDREF_NULL;
22,216✔
1865
        int r;
13,277✔
1866

1867
        /* Getting the detached child process pid without pidfd is racy, so don't allow it if not returning
1868
         * a pidref to the caller. */
1869
        assert(!FLAGS_SET(flags, FORK_DETACH) || !ret_pid);
13,277✔
1870

1871
        r = pidref_safe_fork_full(name, stdio_fds, except_fds, n_except_fds, flags|FORK_PID_ONLY, ret_pid ? &pidref : NULL);
18,989✔
1872
        if (r < 0 || !ret_pid)
22,216✔
1873
                return r;
1874

1875
        *ret_pid = pidref.pid;
14,591✔
1876

1877
        return r;
14,591✔
1878
}
1879

1880
int namespace_fork(
1881
                const char *outer_name,
1882
                const char *inner_name,
1883
                int except_fds[],
1884
                size_t n_except_fds,
1885
                ForkFlags flags,
1886
                int pidns_fd,
1887
                int mntns_fd,
1888
                int netns_fd,
1889
                int userns_fd,
1890
                int root_fd,
1891
                pid_t *ret_pid) {
1892

1893
        int r;
166✔
1894

1895
        /* This is much like safe_fork(), but forks twice, and joins the specified namespaces in the middle
1896
         * process. This ensures that we are fully a member of the destination namespace, with pidns an all, so that
1897
         * /proc/self/fd works correctly. */
1898

1899
        r = safe_fork_full(outer_name,
485✔
1900
                           NULL,
1901
                           except_fds, n_except_fds,
1902
                           (flags|FORK_DEATHSIG_SIGINT|FORK_DEATHSIG_SIGTERM|FORK_DEATHSIG_SIGKILL) & ~(FORK_REOPEN_LOG|FORK_NEW_MOUNTNS|FORK_MOUNTNS_SLAVE), ret_pid);
166✔
1903
        if (r < 0)
319✔
1904
                return r;
1905
        if (r == 0) {
319✔
1906
                pid_t pid;
153✔
1907

1908
                /* Child */
1909

1910
                r = namespace_enter(pidns_fd, mntns_fd, netns_fd, userns_fd, root_fd);
153✔
1911
                if (r < 0) {
153✔
1912
                        log_full_errno(FLAGS_SET(flags, FORK_LOG) ? LOG_ERR : LOG_DEBUG, r, "Failed to join namespace: %m");
×
1913
                        _exit(EXIT_FAILURE);
×
1914
                }
1915

1916
                /* We mask a few flags here that either make no sense for the grandchild, or that we don't have to do again */
1917
                r = safe_fork_full(inner_name,
460✔
1918
                                   NULL,
1919
                                   except_fds, n_except_fds,
1920
                                   flags & ~(FORK_WAIT|FORK_RESET_SIGNALS|FORK_CLOSE_ALL_FDS|FORK_REARRANGE_STDIO), &pid);
153✔
1921
                if (r < 0)
307✔
1922
                        _exit(EXIT_FAILURE);
×
1923
                if (r == 0) {
307✔
1924
                        /* Child */
1925
                        if (ret_pid)
154✔
1926
                                *ret_pid = pid;
154✔
1927
                        return 0;
154✔
1928
                }
1929

1930
                r = wait_for_terminate_and_check(inner_name, pid, FLAGS_SET(flags, FORK_LOG) ? WAIT_LOG : 0);
306✔
1931
                if (r < 0)
153✔
1932
                        _exit(EXIT_FAILURE);
×
1933

1934
                _exit(r);
153✔
1935
        }
1936

1937
        return 1;
1938
}
1939

1940
int set_oom_score_adjust(int value) {
1941
        char t[DECIMAL_STR_MAX(int)];
4,047✔
1942

1943
        if (!oom_score_adjust_is_valid(value))
4,047✔
1944
                return -EINVAL;
4,047✔
1945

1946
        xsprintf(t, "%i", value);
4,047✔
1947

1948
        return write_string_file("/proc/self/oom_score_adj", t,
4,047✔
1949
                                 WRITE_STRING_FILE_VERIFY_ON_FAILURE|WRITE_STRING_FILE_DISABLE_BUFFER);
1950
}
1951

1952
int get_oom_score_adjust(int *ret) {
1953
        _cleanup_free_ char *t = NULL;
1,056✔
1954
        int r, a;
1,056✔
1955

1956
        r = read_virtual_file("/proc/self/oom_score_adj", SIZE_MAX, &t, NULL);
1,056✔
1957
        if (r < 0)
1,056✔
1958
                return r;
1959

1960
        delete_trailing_chars(t, WHITESPACE);
1,056✔
1961

1962
        r = safe_atoi(t, &a);
1,056✔
1963
        if (r < 0)
1,056✔
1964
                return r;
1965

1966
        if (!oom_score_adjust_is_valid(a))
1,056✔
1967
                return -ENODATA;
1968

1969
        if (ret)
1,056✔
1970
                *ret = a;
1,056✔
1971

1972
        return 0;
1973
}
1974

1975
static int rlimit_to_nice(rlim_t limit) {
2✔
1976
        if (limit <= 1)
2✔
1977
                return PRIO_MAX-1; /* i.e. 19 */
1978

1979
        if (limit >= -PRIO_MIN + PRIO_MAX)
2✔
1980
                return PRIO_MIN; /* i.e. -20 */
1981

1982
        return PRIO_MAX - (int) limit;
2✔
1983
}
1984

1985
int setpriority_closest(int priority) {
1986
        struct rlimit highest;
23✔
1987
        int r, current, limit;
23✔
1988

1989
        /* Try to set requested nice level */
1990
        r = RET_NERRNO(setpriority(PRIO_PROCESS, 0, priority));
23✔
1991
        if (r >= 0)
2✔
1992
                return 1;
21✔
1993
        if (!ERRNO_IS_NEG_PRIVILEGE(r))
2✔
1994
                return r;
1995

1996
        errno = 0;
2✔
1997
        current = getpriority(PRIO_PROCESS, 0);
2✔
1998
        if (errno != 0)
2✔
1999
                return -errno;
×
2000

2001
        if (priority == current)
2✔
2002
                return 1;
2003

2004
       /* Hmm, we'd expect that raising the nice level from our status quo would always work. If it doesn't,
2005
        * then the whole setpriority() system call is blocked to us, hence let's propagate the error
2006
        * right-away */
2007
        if (priority > current)
2✔
2008
                return r;
2009

2010
        if (getrlimit(RLIMIT_NICE, &highest) < 0)
2✔
2011
                return -errno;
×
2012

2013
        limit = rlimit_to_nice(highest.rlim_cur);
2✔
2014

2015
        /* Push to the allowed limit if we're higher than that. Note that we could also be less nice than
2016
         * limit allows us, but still higher than what's requested. In that case our current value is
2017
         * the best choice. */
2018
        if (current > limit)
2✔
2019
                if (setpriority(PRIO_PROCESS, 0, limit) < 0)
2✔
2020
                        return -errno;
×
2021

2022
        log_debug("Cannot set requested nice level (%i), using next best (%i).", priority, MIN(current, limit));
2✔
2023
        return 0;
2024
}
2025

2026
_noreturn_ void freeze(void) {
2027
        log_close();
×
2028

2029
        /* Make sure nobody waits for us (i.e. on one of our sockets) anymore. Note that we use
2030
         * close_all_fds_without_malloc() instead of plain close_all_fds() here, since we want this function
2031
         * to be compatible with being called from signal handlers. */
2032
        (void) close_all_fds_without_malloc(NULL, 0);
×
2033

2034
        /* Let's not freeze right away, but keep reaping zombies. */
2035
        for (;;) {
×
2036
                siginfo_t si = {};
×
2037

2038
                if (waitid(P_ALL, 0, &si, WEXITED) < 0 && errno != EINTR)
×
2039
                        break;
2040
        }
2041

2042
        /* waitid() failed with an ECHLD error (because there are no left-over child processes) or any other
2043
         * (unexpected) error. Freeze for good now! */
2044
        for (;;)
×
2045
                pause();
×
2046
}
2047

2048
int get_process_threads(pid_t pid) {
2049
        _cleanup_free_ char *t = NULL;
7✔
2050
        int n, r;
7✔
2051

2052
        if (pid < 0)
7✔
2053
                return -EINVAL;
2054

2055
        r = procfs_file_get_field(pid, "status", "Threads", &t);
7✔
2056
        if (r == -ENOENT)
7✔
2057
                return -ESRCH;
2058
        if (r < 0)
7✔
2059
                return r;
2060

2061
        r = safe_atoi(t, &n);
7✔
2062
        if (r < 0)
7✔
2063
                return r;
2064
        if (n < 0)
7✔
2065
                return -EINVAL;
×
2066

2067
        return n;
2068
}
2069

2070
int is_reaper_process(void) {
2071
        int b = 0;
3,075✔
2072

2073
        /* Checks if we are running in a reaper process, i.e. if we are expected to deal with processes
2074
         * reparented to us. This simply checks if we are PID 1 or if PR_SET_CHILD_SUBREAPER was called. */
2075

2076
        if (getpid_cached() == 1)
3,075✔
2077
                return true;
3,075✔
2078

2079
        if (prctl(PR_GET_CHILD_SUBREAPER, (unsigned long) &b, 0UL, 0UL, 0UL) < 0)
315✔
2080
                return -errno;
×
2081

2082
        return b != 0;
315✔
2083
}
2084

2085
int make_reaper_process(bool b) {
2086

2087
        if (getpid_cached() == 1) {
604✔
2088

2089
                if (!b)
60✔
2090
                        return -EINVAL;
2091

2092
                return 0;
60✔
2093
        }
2094

2095
        /* Some prctl()s insist that all 5 arguments are specified, others do not. Let's always specify all,
2096
         * to avoid any ambiguities */
2097
        if (prctl(PR_SET_CHILD_SUBREAPER, (unsigned long) b, 0UL, 0UL, 0UL) < 0)
544✔
2098
                return -errno;
×
2099

2100
        return 0;
2101
}
2102

2103
DEFINE_TRIVIAL_CLEANUP_FUNC_FULL(posix_spawnattr_t*, posix_spawnattr_destroy, NULL);
×
2104

2105
int posix_spawn_wrapper(
2106
                const char *path,
2107
                char * const *argv,
2108
                char * const *envp,
2109
                const char *cgroup,
2110
                PidRef *ret_pidref) {
2111

2112
        short flags = POSIX_SPAWN_SETSIGMASK;
2,231✔
2113
        posix_spawnattr_t attr;
2,231✔
2114
        sigset_t mask;
2,231✔
2115
        int r;
2,231✔
2116

2117
        /* Forks and invokes 'path' with 'argv' and 'envp' using CLONE_VM and CLONE_VFORK, which means the
2118
         * caller will be blocked until the child either exits or exec's. The memory of the child will be
2119
         * fully shared with the memory of the parent, so that there are no copy-on-write or memory.max
2120
         * issues.
2121
         *
2122
         * Also, move the newly-created process into 'cgroup' through POSIX_SPAWN_SETCGROUP (clone3())
2123
         * if available.
2124
         * returns 1: We're already in the right cgroup
2125
         *         0: 'cgroup' not specified or POSIX_SPAWN_SETCGROUP is not supported. The caller
2126
         *            needs to call 'cg_attach' on their own */
2127

2128
        assert(path);
2,231✔
2129
        assert(argv);
2,231✔
2130
        assert(ret_pidref);
2,231✔
2131

2132
        assert_se(sigfillset(&mask) >= 0);
2,231✔
2133

2134
        r = posix_spawnattr_init(&attr);
2,231✔
2135
        if (r != 0)
2,231✔
2136
                return -r; /* These functions return a positive errno on failure */
2,231✔
2137

2138
        /* Initialization needs to succeed before we can set up a destructor. */
2139
        _unused_ _cleanup_(posix_spawnattr_destroyp) posix_spawnattr_t *attr_destructor = &attr;
4,462✔
2140

2141
#if HAVE_PIDFD_SPAWN
2142
        static bool have_clone_into_cgroup = true; /* kernel 5.7+ */
2,231✔
2143
        _cleanup_close_ int cgroup_fd = -EBADF;
2,231✔
2144

2145
        if (cgroup && have_clone_into_cgroup) {
2,231✔
2146
                _cleanup_free_ char *resolved_cgroup = NULL;
2,231✔
2147

2148
                r = cg_get_path_and_check(
2,231✔
2149
                                SYSTEMD_CGROUP_CONTROLLER,
2150
                                cgroup,
2151
                                /* suffix= */ NULL,
2152
                                &resolved_cgroup);
2153
                if (r < 0)
2,231✔
2154
                        return r;
2155

2156
                cgroup_fd = open(resolved_cgroup, O_PATH|O_DIRECTORY|O_CLOEXEC);
2,231✔
2157
                if (cgroup_fd < 0)
2,231✔
2158
                        return -errno;
×
2159

2160
                r = posix_spawnattr_setcgroup_np(&attr, cgroup_fd);
2,231✔
2161
                if (r != 0)
2,231✔
2162
                        return -r;
×
2163

2164
                flags |= POSIX_SPAWN_SETCGROUP;
2,231✔
2165
        }
2166
#endif
2167

2168
        r = posix_spawnattr_setflags(&attr, flags);
2,231✔
2169
        if (r != 0)
2,231✔
2170
                return -r;
×
2171
        r = posix_spawnattr_setsigmask(&attr, &mask);
2,231✔
2172
        if (r != 0)
2,231✔
2173
                return -r;
×
2174

2175
#if HAVE_PIDFD_SPAWN
2176
        _cleanup_close_ int pidfd = -EBADF;
2,231✔
2177

2178
        r = pidfd_spawn(&pidfd, path, NULL, &attr, argv, envp);
2,231✔
2179
        if (ERRNO_IS_NOT_SUPPORTED(r) && FLAGS_SET(flags, POSIX_SPAWN_SETCGROUP) && cg_is_threaded(cgroup) > 0)
2,231✔
2180
                return -EUCLEAN; /* clone3() could also return EOPNOTSUPP if the target cgroup is in threaded mode,
2181
                                    turn that into something recognizable */
2182
        if ((ERRNO_IS_NOT_SUPPORTED(r) || ERRNO_IS_PRIVILEGE(r) || r == E2BIG) &&
2,231✔
2183
            FLAGS_SET(flags, POSIX_SPAWN_SETCGROUP)) {
2184
                /* Compiled on a newer host, or seccomp&friends blocking clone3()? Fallback, but
2185
                 * need to disable POSIX_SPAWN_SETCGROUP, which is what redirects to clone3().
2186
                 * Note that we might get E2BIG here since some kernels (e.g. 5.4) support clone3()
2187
                 * but not CLONE_INTO_CGROUP. */
2188

2189
                /* CLONE_INTO_CGROUP definitely won't work, hence remember the fact so that we don't
2190
                 * retry every time. */
2191
                have_clone_into_cgroup = false;
×
2192

2193
                flags &= ~POSIX_SPAWN_SETCGROUP;
×
2194
                r = posix_spawnattr_setflags(&attr, flags);
×
2195
                if (r != 0)
×
2196
                        return -r;
×
2197

2198
                r = pidfd_spawn(&pidfd, path, NULL, &attr, argv, envp);
×
2199
        }
2200
        if (r != 0)
2,231✔
2201
                return -r;
×
2202

2203
        r = pidref_set_pidfd_consume(ret_pidref, TAKE_FD(pidfd));
2,231✔
2204
        if (r < 0)
2,231✔
2205
                return r;
2206

2207
        return FLAGS_SET(flags, POSIX_SPAWN_SETCGROUP);
2,231✔
2208
#else
2209
        pid_t pid;
2210

2211
        r = posix_spawn(&pid, path, NULL, &attr, argv, envp);
2212
        if (r != 0)
2213
                return -r;
2214

2215
        r = pidref_set_pid(ret_pidref, pid);
2216
        if (r < 0)
2217
                return r;
2218

2219
        return 0; /* We did not use CLONE_INTO_CGROUP so return 0, the caller will have to move the child */
2220
#endif
2221
}
2222

2223
int proc_dir_open(DIR **ret) {
2224
        DIR *d;
11✔
2225

2226
        assert(ret);
11✔
2227

2228
        d = opendir("/proc");
11✔
2229
        if (!d)
11✔
2230
                return -errno;
×
2231

2232
        *ret = d;
11✔
2233
        return 0;
11✔
2234
}
2235

2236
int proc_dir_read(DIR *d, pid_t *ret) {
2237
        assert(d);
980✔
2238

2239
        for (;;) {
1,644✔
2240
                struct dirent *de;
1,644✔
2241

2242
                errno = 0;
1,644✔
2243
                de = readdir_no_dot(d);
1,644✔
2244
                if (!de) {
1,644✔
2245
                        if (errno != 0)
11✔
2246
                                return -errno;
×
2247

2248
                        break;
11✔
2249
                }
2250

2251
                if (!IN_SET(de->d_type, DT_DIR, DT_UNKNOWN))
1,633✔
2252
                        continue;
543✔
2253

2254
                if (parse_pid(de->d_name, ret) >= 0)
1,090✔
2255
                        return 1;
2256
        }
2257

2258
        if (ret)
11✔
2259
                *ret = 0;
11✔
2260
        return 0;
2261
}
2262

2263
int proc_dir_read_pidref(DIR *d, PidRef *ret) {
2264
        int r;
937✔
2265

2266
        assert(d);
937✔
2267

2268
        for (;;) {
937✔
2269
                pid_t pid;
937✔
2270

2271
                r = proc_dir_read(d, &pid);
937✔
2272
                if (r < 0)
937✔
2273
                        return r;
927✔
2274
                if (r == 0)
937✔
2275
                        break;
2276

2277
                r = pidref_set_pid(ret, pid);
927✔
2278
                if (r == -ESRCH) /* gone by now? skip it */
927✔
2279
                        continue;
×
2280
                if (r < 0)
927✔
2281
                        return r;
×
2282

2283
                return 1;
2284
        }
2285

2286
        if (ret)
10✔
2287
                *ret = PIDREF_NULL;
10✔
2288
        return 0;
2289
}
2290

2291
static const char *const sigchld_code_table[] = {
2292
        [CLD_EXITED] = "exited",
2293
        [CLD_KILLED] = "killed",
2294
        [CLD_DUMPED] = "dumped",
2295
        [CLD_TRAPPED] = "trapped",
2296
        [CLD_STOPPED] = "stopped",
2297
        [CLD_CONTINUED] = "continued",
2298
};
2299

2300
DEFINE_STRING_TABLE_LOOKUP(sigchld_code, int);
7,688✔
2301

2302
static const char* const sched_policy_table[] = {
2303
        [SCHED_OTHER] = "other",
2304
        [SCHED_BATCH] = "batch",
2305
        [SCHED_IDLE] = "idle",
2306
        [SCHED_FIFO] = "fifo",
2307
        [SCHED_RR] = "rr",
2308
};
2309

2310
DEFINE_STRING_TABLE_LOOKUP_WITH_FALLBACK(sched_policy, int, INT_MAX);
3✔
2311

2312
_noreturn_ void report_errno_and_exit(int errno_fd, int error) {
2313
        int r;
48✔
2314

2315
        if (error >= 0)
48✔
2316
                _exit(EXIT_SUCCESS);
47✔
2317

2318
        assert(errno_fd >= 0);
1✔
2319

2320
        r = loop_write(errno_fd, &error, sizeof(error));
1✔
2321
        if (r < 0)
1✔
2322
                log_debug_errno(r, "Failed to write errno to errno_fd=%d: %m", errno_fd);
×
2323

2324
        _exit(EXIT_FAILURE);
1✔
2325
}
2326

2327
int read_errno(int errno_fd) {
2328
        int r;
1✔
2329

2330
        assert(errno_fd >= 0);
1✔
2331

2332
        /* The issue here is that it's impossible to distinguish between an error code returned by child and
2333
         * IO error arose when reading it. So, the function logs errors and return EIO for the later case. */
2334

2335
        ssize_t n = loop_read(errno_fd, &r, sizeof(r), /* do_poll = */ false);
1✔
2336
        if (n < 0) {
1✔
2337
                log_debug_errno(n, "Failed to read errno: %m");
×
2338
                return -EIO;
×
2339
        }
2340
        if (n == sizeof(r)) {
1✔
2341
                if (r == 0)
×
2342
                        return 0;
2343
                if (r < 0) /* child process reported an error, return it */
×
2344
                        return log_debug_errno(r, "Child process failed with errno: %m");
×
2345
                return log_debug_errno(SYNTHETIC_ERRNO(EIO), "Received an errno, but it's a positive value.");
×
2346
        }
2347
        if (n != 0)
1✔
2348
                return log_debug_errno(SYNTHETIC_ERRNO(EIO), "Received unexpected amount of bytes while reading errno.");
×
2349

2350
        /* the process exited without reporting an error, assuming success */
2351
        return 0;
2352
}
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