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Merge pull request #11046 from keszybz/generator-mains
[thirdparty/systemd.git] / src / coredump / coredump.c
1 /* SPDX-License-Identifier: LGPL-2.1+ */
2
3 #include <errno.h>
4 #include <stdio.h>
5 #include <stdio_ext.h>
6 #include <sys/prctl.h>
7 #include <sys/xattr.h>
8 #include <unistd.h>
9
10 #if HAVE_ELFUTILS
11 #include <dwarf.h>
12 #include <elfutils/libdwfl.h>
13 #endif
14
15 #include "sd-daemon.h"
16 #include "sd-journal.h"
17 #include "sd-login.h"
18 #include "sd-messages.h"
19
20 #include "acl-util.h"
21 #include "alloc-util.h"
22 #include "capability-util.h"
23 #include "cgroup-util.h"
24 #include "compress.h"
25 #include "conf-parser.h"
26 #include "copy.h"
27 #include "coredump-vacuum.h"
28 #include "dirent-util.h"
29 #include "escape.h"
30 #include "fd-util.h"
31 #include "fileio.h"
32 #include "fs-util.h"
33 #include "io-util.h"
34 #include "journal-importer.h"
35 #include "log.h"
36 #include "macro.h"
37 #include "main-func.h"
38 #include "missing.h"
39 #include "mkdir.h"
40 #include "parse-util.h"
41 #include "process-util.h"
42 #include "signal-util.h"
43 #include "socket-util.h"
44 #include "special.h"
45 #include "stacktrace.h"
46 #include "string-table.h"
47 #include "string-util.h"
48 #include "strv.h"
49 #include "tmpfile-util.h"
50 #include "user-util.h"
51 #include "util.h"
52
53 /* The maximum size up to which we process coredumps */
54 #define PROCESS_SIZE_MAX ((uint64_t) (2LLU*1024LLU*1024LLU*1024LLU))
55
56 /* The maximum size up to which we leave the coredump around on disk */
57 #define EXTERNAL_SIZE_MAX PROCESS_SIZE_MAX
58
59 /* The maximum size up to which we store the coredump in the journal */
60 #ifndef FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION
61 #define JOURNAL_SIZE_MAX ((size_t) (767LU*1024LU*1024LU))
62 #else
63 /* oss-fuzz limits memory usage. */
64 #define JOURNAL_SIZE_MAX ((size_t) (10LU*1024LU*1024LU))
65 #endif
66
67 /* Make sure to not make this larger than the maximum journal entry
68 * size. See DATA_SIZE_MAX in journal-importer.h. */
69 assert_cc(JOURNAL_SIZE_MAX <= DATA_SIZE_MAX);
70
71 enum {
72 /* We use this as array indexes for a couple of special fields we use for
73 * naming coredump files, and attaching xattrs, and for indexing argv[].
74
75 * Our pattern for man:systectl(1) kernel.core_pattern is such that the
76 * kernel passes fields until CONTEXT_RLIMIT as arguments in argv[]. After
77 * that it gets complicated: the kernel passes "comm" as one or more fields
78 * starting at index CONTEXT_COMM (in other words, full "comm" is under index
79 * CONTEXT_COMM when it does not contain spaces, which is the common
80 * case). This mapping is not reversible, so we prefer to retrieve "comm"
81 * from /proc. We only fall back to argv[CONTEXT_COMM...] when that fails.
82 *
83 * In the internal context[] array, fields before CONTEXT_COMM are the
84 * strings from argv[], so they should not be freed. The strings at indices
85 * CONTEXT_COMM and higher are allocated by us and should be freed at the
86 * end.
87 */
88 CONTEXT_PID,
89 CONTEXT_UID,
90 CONTEXT_GID,
91 CONTEXT_SIGNAL,
92 CONTEXT_TIMESTAMP,
93 CONTEXT_RLIMIT,
94 CONTEXT_HOSTNAME,
95 CONTEXT_COMM,
96 CONTEXT_EXE,
97 CONTEXT_UNIT,
98 _CONTEXT_MAX
99 };
100
101 typedef enum CoredumpStorage {
102 COREDUMP_STORAGE_NONE,
103 COREDUMP_STORAGE_EXTERNAL,
104 COREDUMP_STORAGE_JOURNAL,
105 _COREDUMP_STORAGE_MAX,
106 _COREDUMP_STORAGE_INVALID = -1
107 } CoredumpStorage;
108
109 static const char* const coredump_storage_table[_COREDUMP_STORAGE_MAX] = {
110 [COREDUMP_STORAGE_NONE] = "none",
111 [COREDUMP_STORAGE_EXTERNAL] = "external",
112 [COREDUMP_STORAGE_JOURNAL] = "journal",
113 };
114
115 DEFINE_PRIVATE_STRING_TABLE_LOOKUP(coredump_storage, CoredumpStorage);
116 static DEFINE_CONFIG_PARSE_ENUM(config_parse_coredump_storage, coredump_storage, CoredumpStorage, "Failed to parse storage setting");
117
118 static CoredumpStorage arg_storage = COREDUMP_STORAGE_EXTERNAL;
119 static bool arg_compress = true;
120 static uint64_t arg_process_size_max = PROCESS_SIZE_MAX;
121 static uint64_t arg_external_size_max = EXTERNAL_SIZE_MAX;
122 static uint64_t arg_journal_size_max = JOURNAL_SIZE_MAX;
123 static uint64_t arg_keep_free = (uint64_t) -1;
124 static uint64_t arg_max_use = (uint64_t) -1;
125
126 static int parse_config(void) {
127 static const ConfigTableItem items[] = {
128 { "Coredump", "Storage", config_parse_coredump_storage, 0, &arg_storage },
129 { "Coredump", "Compress", config_parse_bool, 0, &arg_compress },
130 { "Coredump", "ProcessSizeMax", config_parse_iec_uint64, 0, &arg_process_size_max },
131 { "Coredump", "ExternalSizeMax", config_parse_iec_uint64, 0, &arg_external_size_max },
132 { "Coredump", "JournalSizeMax", config_parse_iec_size, 0, &arg_journal_size_max },
133 { "Coredump", "KeepFree", config_parse_iec_uint64, 0, &arg_keep_free },
134 { "Coredump", "MaxUse", config_parse_iec_uint64, 0, &arg_max_use },
135 {}
136 };
137
138 return config_parse_many_nulstr(PKGSYSCONFDIR "/coredump.conf",
139 CONF_PATHS_NULSTR("systemd/coredump.conf.d"),
140 "Coredump\0",
141 config_item_table_lookup, items,
142 CONFIG_PARSE_WARN, NULL);
143 }
144
145 static inline uint64_t storage_size_max(void) {
146 if (arg_storage == COREDUMP_STORAGE_EXTERNAL)
147 return arg_external_size_max;
148 if (arg_storage == COREDUMP_STORAGE_JOURNAL)
149 return arg_journal_size_max;
150 assert(arg_storage == COREDUMP_STORAGE_NONE);
151 return 0;
152 }
153
154 static int fix_acl(int fd, uid_t uid) {
155
156 #if HAVE_ACL
157 _cleanup_(acl_freep) acl_t acl = NULL;
158 acl_entry_t entry;
159 acl_permset_t permset;
160 int r;
161
162 assert(fd >= 0);
163
164 if (uid_is_system(uid) || uid_is_dynamic(uid) || uid == UID_NOBODY)
165 return 0;
166
167 /* Make sure normal users can read (but not write or delete)
168 * their own coredumps */
169
170 acl = acl_get_fd(fd);
171 if (!acl)
172 return log_error_errno(errno, "Failed to get ACL: %m");
173
174 if (acl_create_entry(&acl, &entry) < 0 ||
175 acl_set_tag_type(entry, ACL_USER) < 0 ||
176 acl_set_qualifier(entry, &uid) < 0)
177 return log_error_errno(errno, "Failed to patch ACL: %m");
178
179 if (acl_get_permset(entry, &permset) < 0 ||
180 acl_add_perm(permset, ACL_READ) < 0)
181 return log_warning_errno(errno, "Failed to patch ACL: %m");
182
183 r = calc_acl_mask_if_needed(&acl);
184 if (r < 0)
185 return log_warning_errno(r, "Failed to patch ACL: %m");
186
187 if (acl_set_fd(fd, acl) < 0)
188 return log_error_errno(errno, "Failed to apply ACL: %m");
189 #endif
190
191 return 0;
192 }
193
194 static int fix_xattr(int fd, const char *context[_CONTEXT_MAX]) {
195
196 static const char * const xattrs[_CONTEXT_MAX] = {
197 [CONTEXT_PID] = "user.coredump.pid",
198 [CONTEXT_UID] = "user.coredump.uid",
199 [CONTEXT_GID] = "user.coredump.gid",
200 [CONTEXT_SIGNAL] = "user.coredump.signal",
201 [CONTEXT_TIMESTAMP] = "user.coredump.timestamp",
202 [CONTEXT_RLIMIT] = "user.coredump.rlimit",
203 [CONTEXT_HOSTNAME] = "user.coredump.hostname",
204 [CONTEXT_COMM] = "user.coredump.comm",
205 [CONTEXT_EXE] = "user.coredump.exe",
206 };
207
208 int r = 0;
209 unsigned i;
210
211 assert(fd >= 0);
212
213 /* Attach some metadata to coredumps via extended
214 * attributes. Just because we can. */
215
216 for (i = 0; i < _CONTEXT_MAX; i++) {
217 int k;
218
219 if (isempty(context[i]) || !xattrs[i])
220 continue;
221
222 k = fsetxattr(fd, xattrs[i], context[i], strlen(context[i]), XATTR_CREATE);
223 if (k < 0 && r == 0)
224 r = -errno;
225 }
226
227 return r;
228 }
229
230 #define filename_escape(s) xescape((s), "./ ")
231
232 static inline const char *coredump_tmpfile_name(const char *s) {
233 return s ? s : "(unnamed temporary file)";
234 }
235
236 static int fix_permissions(
237 int fd,
238 const char *filename,
239 const char *target,
240 const char *context[_CONTEXT_MAX],
241 uid_t uid) {
242
243 int r;
244
245 assert(fd >= 0);
246 assert(target);
247 assert(context);
248
249 /* Ignore errors on these */
250 (void) fchmod(fd, 0640);
251 (void) fix_acl(fd, uid);
252 (void) fix_xattr(fd, context);
253
254 if (fsync(fd) < 0)
255 return log_error_errno(errno, "Failed to sync coredump %s: %m", coredump_tmpfile_name(filename));
256
257 (void) fsync_directory_of_file(fd);
258
259 r = link_tmpfile(fd, filename, target);
260 if (r < 0)
261 return log_error_errno(r, "Failed to move coredump %s into place: %m", target);
262
263 return 0;
264 }
265
266 static int maybe_remove_external_coredump(const char *filename, uint64_t size) {
267
268 /* Returns 1 if might remove, 0 if will not remove, < 0 on error. */
269
270 if (arg_storage == COREDUMP_STORAGE_EXTERNAL &&
271 size <= arg_external_size_max)
272 return 0;
273
274 if (!filename)
275 return 1;
276
277 if (unlink(filename) < 0 && errno != ENOENT)
278 return log_error_errno(errno, "Failed to unlink %s: %m", filename);
279
280 return 1;
281 }
282
283 static int make_filename(const char *context[_CONTEXT_MAX], char **ret) {
284 _cleanup_free_ char *c = NULL, *u = NULL, *p = NULL, *t = NULL;
285 sd_id128_t boot = {};
286 int r;
287
288 assert(context);
289
290 c = filename_escape(context[CONTEXT_COMM]);
291 if (!c)
292 return -ENOMEM;
293
294 u = filename_escape(context[CONTEXT_UID]);
295 if (!u)
296 return -ENOMEM;
297
298 r = sd_id128_get_boot(&boot);
299 if (r < 0)
300 return r;
301
302 p = filename_escape(context[CONTEXT_PID]);
303 if (!p)
304 return -ENOMEM;
305
306 t = filename_escape(context[CONTEXT_TIMESTAMP]);
307 if (!t)
308 return -ENOMEM;
309
310 if (asprintf(ret,
311 "/var/lib/systemd/coredump/core.%s.%s." SD_ID128_FORMAT_STR ".%s.%s000000",
312 c,
313 u,
314 SD_ID128_FORMAT_VAL(boot),
315 p,
316 t) < 0)
317 return -ENOMEM;
318
319 return 0;
320 }
321
322 static int save_external_coredump(
323 const char *context[_CONTEXT_MAX],
324 int input_fd,
325 char **ret_filename,
326 int *ret_node_fd,
327 int *ret_data_fd,
328 uint64_t *ret_size,
329 bool *ret_truncated) {
330
331 _cleanup_free_ char *fn = NULL, *tmp = NULL;
332 _cleanup_close_ int fd = -1;
333 uint64_t rlimit, process_limit, max_size;
334 struct stat st;
335 uid_t uid;
336 int r;
337
338 assert(context);
339 assert(ret_filename);
340 assert(ret_node_fd);
341 assert(ret_data_fd);
342 assert(ret_size);
343
344 r = parse_uid(context[CONTEXT_UID], &uid);
345 if (r < 0)
346 return log_error_errno(r, "Failed to parse UID: %m");
347
348 r = safe_atou64(context[CONTEXT_RLIMIT], &rlimit);
349 if (r < 0)
350 return log_error_errno(r, "Failed to parse resource limit '%s': %m", context[CONTEXT_RLIMIT]);
351 if (rlimit < page_size()) {
352 /* Is coredumping disabled? Then don't bother saving/processing the coredump.
353 * Anything below PAGE_SIZE cannot give a readable coredump (the kernel uses
354 * ELF_EXEC_PAGESIZE which is not easily accessible, but is usually the same as PAGE_SIZE. */
355 return log_info_errno(SYNTHETIC_ERRNO(EBADSLT),
356 "Resource limits disable core dumping for process %s (%s).",
357 context[CONTEXT_PID], context[CONTEXT_COMM]);
358 }
359
360 process_limit = MAX(arg_process_size_max, storage_size_max());
361 if (process_limit == 0)
362 return log_debug_errno(SYNTHETIC_ERRNO(EBADSLT),
363 "Limits for coredump processing and storage are both 0, not dumping core.");
364
365 /* Never store more than the process configured, or than we actually shall keep or process */
366 max_size = MIN(rlimit, process_limit);
367
368 r = make_filename(context, &fn);
369 if (r < 0)
370 return log_error_errno(r, "Failed to determine coredump file name: %m");
371
372 mkdir_p_label("/var/lib/systemd/coredump", 0755);
373
374 fd = open_tmpfile_linkable(fn, O_RDWR|O_CLOEXEC, &tmp);
375 if (fd < 0)
376 return log_error_errno(fd, "Failed to create temporary file for coredump %s: %m", fn);
377
378 r = copy_bytes(input_fd, fd, max_size, 0);
379 if (r < 0) {
380 log_error_errno(r, "Cannot store coredump of %s (%s): %m", context[CONTEXT_PID], context[CONTEXT_COMM]);
381 goto fail;
382 }
383 *ret_truncated = r == 1;
384 if (*ret_truncated)
385 log_struct(LOG_INFO,
386 LOG_MESSAGE("Core file was truncated to %zu bytes.", max_size),
387 "SIZE_LIMIT=%zu", max_size,
388 "MESSAGE_ID=" SD_MESSAGE_TRUNCATED_CORE_STR);
389
390 if (fstat(fd, &st) < 0) {
391 log_error_errno(errno, "Failed to fstat core file %s: %m", coredump_tmpfile_name(tmp));
392 goto fail;
393 }
394
395 if (lseek(fd, 0, SEEK_SET) == (off_t) -1) {
396 log_error_errno(errno, "Failed to seek on %s: %m", coredump_tmpfile_name(tmp));
397 goto fail;
398 }
399
400 #if HAVE_XZ || HAVE_LZ4
401 /* If we will remove the coredump anyway, do not compress. */
402 if (arg_compress && !maybe_remove_external_coredump(NULL, st.st_size)) {
403
404 _cleanup_free_ char *fn_compressed = NULL, *tmp_compressed = NULL;
405 _cleanup_close_ int fd_compressed = -1;
406
407 fn_compressed = strappend(fn, COMPRESSED_EXT);
408 if (!fn_compressed) {
409 log_oom();
410 goto uncompressed;
411 }
412
413 fd_compressed = open_tmpfile_linkable(fn_compressed, O_RDWR|O_CLOEXEC, &tmp_compressed);
414 if (fd_compressed < 0) {
415 log_error_errno(fd_compressed, "Failed to create temporary file for coredump %s: %m", fn_compressed);
416 goto uncompressed;
417 }
418
419 r = compress_stream(fd, fd_compressed, -1);
420 if (r < 0) {
421 log_error_errno(r, "Failed to compress %s: %m", coredump_tmpfile_name(tmp_compressed));
422 goto fail_compressed;
423 }
424
425 r = fix_permissions(fd_compressed, tmp_compressed, fn_compressed, context, uid);
426 if (r < 0)
427 goto fail_compressed;
428
429 /* OK, this worked, we can get rid of the uncompressed version now */
430 if (tmp)
431 unlink_noerrno(tmp);
432
433 *ret_filename = TAKE_PTR(fn_compressed); /* compressed */
434 *ret_node_fd = TAKE_FD(fd_compressed); /* compressed */
435 *ret_data_fd = TAKE_FD(fd); /* uncompressed */
436 *ret_size = (uint64_t) st.st_size; /* uncompressed */
437
438 return 0;
439
440 fail_compressed:
441 if (tmp_compressed)
442 (void) unlink(tmp_compressed);
443 }
444
445 uncompressed:
446 #endif
447
448 r = fix_permissions(fd, tmp, fn, context, uid);
449 if (r < 0)
450 goto fail;
451
452 *ret_filename = TAKE_PTR(fn);
453 *ret_data_fd = TAKE_FD(fd);
454 *ret_node_fd = -1;
455 *ret_size = (uint64_t) st.st_size;
456
457 return 0;
458
459 fail:
460 if (tmp)
461 (void) unlink(tmp);
462 return r;
463 }
464
465 static int allocate_journal_field(int fd, size_t size, char **ret, size_t *ret_size) {
466 _cleanup_free_ char *field = NULL;
467 ssize_t n;
468
469 assert(fd >= 0);
470 assert(ret);
471 assert(ret_size);
472
473 if (lseek(fd, 0, SEEK_SET) == (off_t) -1)
474 return log_warning_errno(errno, "Failed to seek: %m");
475
476 field = malloc(9 + size);
477 if (!field) {
478 log_warning("Failed to allocate memory for coredump, coredump will not be stored.");
479 return -ENOMEM;
480 }
481
482 memcpy(field, "COREDUMP=", 9);
483
484 n = read(fd, field + 9, size);
485 if (n < 0)
486 return log_error_errno((int) n, "Failed to read core data: %m");
487 if ((size_t) n < size)
488 return log_error_errno(SYNTHETIC_ERRNO(EIO),
489 "Core data too short.");
490
491 *ret = TAKE_PTR(field);
492 *ret_size = size + 9;
493
494 return 0;
495 }
496
497 /* Joins /proc/[pid]/fd/ and /proc/[pid]/fdinfo/ into the following lines:
498 * 0:/dev/pts/23
499 * pos: 0
500 * flags: 0100002
501 *
502 * 1:/dev/pts/23
503 * pos: 0
504 * flags: 0100002
505 *
506 * 2:/dev/pts/23
507 * pos: 0
508 * flags: 0100002
509 * EOF
510 */
511 static int compose_open_fds(pid_t pid, char **open_fds) {
512 _cleanup_closedir_ DIR *proc_fd_dir = NULL;
513 _cleanup_close_ int proc_fdinfo_fd = -1;
514 _cleanup_free_ char *buffer = NULL;
515 _cleanup_fclose_ FILE *stream = NULL;
516 const char *fddelim = "", *path;
517 struct dirent *dent = NULL;
518 size_t size = 0;
519 int r;
520
521 assert(pid >= 0);
522 assert(open_fds != NULL);
523
524 path = procfs_file_alloca(pid, "fd");
525 proc_fd_dir = opendir(path);
526 if (!proc_fd_dir)
527 return -errno;
528
529 proc_fdinfo_fd = openat(dirfd(proc_fd_dir), "../fdinfo", O_DIRECTORY|O_NOFOLLOW|O_CLOEXEC|O_PATH);
530 if (proc_fdinfo_fd < 0)
531 return -errno;
532
533 stream = open_memstream(&buffer, &size);
534 if (!stream)
535 return -ENOMEM;
536
537 (void) __fsetlocking(stream, FSETLOCKING_BYCALLER);
538
539 FOREACH_DIRENT(dent, proc_fd_dir, return -errno) {
540 _cleanup_fclose_ FILE *fdinfo = NULL;
541 _cleanup_free_ char *fdname = NULL;
542 int fd;
543
544 r = readlinkat_malloc(dirfd(proc_fd_dir), dent->d_name, &fdname);
545 if (r < 0)
546 return r;
547
548 fprintf(stream, "%s%s:%s\n", fddelim, dent->d_name, fdname);
549 fddelim = "\n";
550
551 /* Use the directory entry from /proc/[pid]/fd with /proc/[pid]/fdinfo */
552 fd = openat(proc_fdinfo_fd, dent->d_name, O_NOFOLLOW|O_CLOEXEC|O_RDONLY);
553 if (fd < 0)
554 continue;
555
556 fdinfo = fdopen(fd, "r");
557 if (!fdinfo) {
558 safe_close(fd);
559 continue;
560 }
561
562 for (;;) {
563 _cleanup_free_ char *line = NULL;
564
565 r = read_line(fdinfo, LONG_LINE_MAX, &line);
566 if (r < 0)
567 return r;
568 if (r == 0)
569 break;
570
571 fputs(line, stream);
572 fputc('\n', stream);
573 }
574 }
575
576 errno = 0;
577 stream = safe_fclose(stream);
578
579 if (errno > 0)
580 return -errno;
581
582 *open_fds = TAKE_PTR(buffer);
583
584 return 0;
585 }
586
587 static int get_process_ns(pid_t pid, const char *namespace, ino_t *ns) {
588 const char *p;
589 struct stat stbuf;
590 _cleanup_close_ int proc_ns_dir_fd;
591
592 p = procfs_file_alloca(pid, "ns");
593
594 proc_ns_dir_fd = open(p, O_DIRECTORY | O_CLOEXEC | O_RDONLY);
595 if (proc_ns_dir_fd < 0)
596 return -errno;
597
598 if (fstatat(proc_ns_dir_fd, namespace, &stbuf, /* flags */0) < 0)
599 return -errno;
600
601 *ns = stbuf.st_ino;
602 return 0;
603 }
604
605 static int get_mount_namespace_leader(pid_t pid, pid_t *container_pid) {
606 pid_t cpid = pid, ppid = 0;
607 ino_t proc_mntns;
608 int r = 0;
609
610 r = get_process_ns(pid, "mnt", &proc_mntns);
611 if (r < 0)
612 return r;
613
614 for (;;) {
615 ino_t parent_mntns;
616
617 r = get_process_ppid(cpid, &ppid);
618 if (r < 0)
619 return r;
620
621 r = get_process_ns(ppid, "mnt", &parent_mntns);
622 if (r < 0)
623 return r;
624
625 if (proc_mntns != parent_mntns)
626 break;
627
628 if (ppid == 1)
629 return -ENOENT;
630
631 cpid = ppid;
632 }
633
634 *container_pid = ppid;
635 return 0;
636 }
637
638 /* Returns 1 if the parent was found.
639 * Returns 0 if there is not a process we can call the pid's
640 * container parent (the pid's process isn't 'containerized').
641 * Returns a negative number on errors.
642 */
643 static int get_process_container_parent_cmdline(pid_t pid, char** cmdline) {
644 int r = 0;
645 pid_t container_pid;
646 const char *proc_root_path;
647 struct stat root_stat, proc_root_stat;
648
649 /* To compare inodes of / and /proc/[pid]/root */
650 if (stat("/", &root_stat) < 0)
651 return -errno;
652
653 proc_root_path = procfs_file_alloca(pid, "root");
654 if (stat(proc_root_path, &proc_root_stat) < 0)
655 return -errno;
656
657 /* The process uses system root. */
658 if (proc_root_stat.st_ino == root_stat.st_ino) {
659 *cmdline = NULL;
660 return 0;
661 }
662
663 r = get_mount_namespace_leader(pid, &container_pid);
664 if (r < 0)
665 return r;
666
667 r = get_process_cmdline(container_pid, 0, false, cmdline);
668 if (r < 0)
669 return r;
670
671 return 1;
672 }
673
674 static int change_uid_gid(const char *context[]) {
675 uid_t uid;
676 gid_t gid;
677 int r;
678
679 r = parse_uid(context[CONTEXT_UID], &uid);
680 if (r < 0)
681 return r;
682
683 if (uid <= SYSTEM_UID_MAX) {
684 const char *user = "systemd-coredump";
685
686 r = get_user_creds(&user, &uid, &gid, NULL, NULL, 0);
687 if (r < 0) {
688 log_warning_errno(r, "Cannot resolve %s user. Proceeding to dump core as root: %m", user);
689 uid = gid = 0;
690 }
691 } else {
692 r = parse_gid(context[CONTEXT_GID], &gid);
693 if (r < 0)
694 return r;
695 }
696
697 return drop_privileges(uid, gid, 0);
698 }
699
700 static bool is_journald_crash(const char *context[_CONTEXT_MAX]) {
701 assert(context);
702
703 return streq_ptr(context[CONTEXT_UNIT], SPECIAL_JOURNALD_SERVICE);
704 }
705
706 static bool is_pid1_crash(const char *context[_CONTEXT_MAX]) {
707 assert(context);
708
709 return streq_ptr(context[CONTEXT_UNIT], SPECIAL_INIT_SCOPE) ||
710 streq_ptr(context[CONTEXT_PID], "1");
711 }
712
713 #define SUBMIT_COREDUMP_FIELDS 4
714
715 static int submit_coredump(
716 const char *context[_CONTEXT_MAX],
717 struct iovec *iovec,
718 size_t n_iovec_allocated,
719 size_t n_iovec,
720 int input_fd) {
721
722 _cleanup_close_ int coredump_fd = -1, coredump_node_fd = -1;
723 _cleanup_free_ char *core_message = NULL, *filename = NULL, *coredump_data = NULL;
724 uint64_t coredump_size = UINT64_MAX;
725 bool truncated = false, journald_crash;
726 int r;
727
728 assert(context);
729 assert(iovec);
730 assert(n_iovec_allocated >= n_iovec + SUBMIT_COREDUMP_FIELDS);
731 assert(input_fd >= 0);
732
733 journald_crash = is_journald_crash(context);
734
735 /* Vacuum before we write anything again */
736 (void) coredump_vacuum(-1, arg_keep_free, arg_max_use);
737
738 /* Always stream the coredump to disk, if that's possible */
739 r = save_external_coredump(context, input_fd,
740 &filename, &coredump_node_fd, &coredump_fd, &coredump_size, &truncated);
741 if (r < 0)
742 /* Skip whole core dumping part */
743 goto log;
744
745 /* If we don't want to keep the coredump on disk, remove it now, as later on we will lack the privileges for
746 * it. However, we keep the fd to it, so that we can still process it and log it. */
747 r = maybe_remove_external_coredump(filename, coredump_size);
748 if (r < 0)
749 return r;
750 if (r == 0) {
751 const char *coredump_filename;
752
753 coredump_filename = strjoina("COREDUMP_FILENAME=", filename);
754 iovec[n_iovec++] = IOVEC_MAKE_STRING(coredump_filename);
755 } else if (arg_storage == COREDUMP_STORAGE_EXTERNAL)
756 log_info("The core will not be stored: size %"PRIu64" is greater than %"PRIu64" (the configured maximum)",
757 coredump_size, arg_external_size_max);
758
759 /* Vacuum again, but exclude the coredump we just created */
760 (void) coredump_vacuum(coredump_node_fd >= 0 ? coredump_node_fd : coredump_fd, arg_keep_free, arg_max_use);
761
762 /* Now, let's drop privileges to become the user who owns the segfaulted process and allocate the coredump
763 * memory under the user's uid. This also ensures that the credentials journald will see are the ones of the
764 * coredumping user, thus making sure the user gets access to the core dump. Let's also get rid of all
765 * capabilities, if we run as root, we won't need them anymore. */
766 r = change_uid_gid(context);
767 if (r < 0)
768 return log_error_errno(r, "Failed to drop privileges: %m");
769
770 #if HAVE_ELFUTILS
771 /* Try to get a strack trace if we can */
772 if (coredump_size <= arg_process_size_max) {
773 _cleanup_free_ char *stacktrace = NULL;
774
775 r = coredump_make_stack_trace(coredump_fd, context[CONTEXT_EXE], &stacktrace);
776 if (r >= 0)
777 core_message = strjoin("MESSAGE=Process ", context[CONTEXT_PID],
778 " (", context[CONTEXT_COMM], ") of user ",
779 context[CONTEXT_UID], " dumped core.",
780 journald_crash ? "\nCoredump diverted to " : "",
781 journald_crash ? filename : "",
782 "\n\n", stacktrace);
783 else if (r == -EINVAL)
784 log_warning("Failed to generate stack trace: %s", dwfl_errmsg(dwfl_errno()));
785 else
786 log_warning_errno(r, "Failed to generate stack trace: %m");
787 } else
788 log_debug("Not generating stack trace: core size %"PRIu64" is greater than %"PRIu64" (the configured maximum)",
789 coredump_size, arg_process_size_max);
790
791 if (!core_message)
792 #endif
793 log:
794 core_message = strjoin("MESSAGE=Process ", context[CONTEXT_PID],
795 " (", context[CONTEXT_COMM], ") of user ",
796 context[CONTEXT_UID], " dumped core.",
797 journald_crash ? "\nCoredump diverted to " : NULL,
798 journald_crash ? filename : NULL);
799 if (!core_message)
800 return log_oom();
801
802 if (journald_crash) {
803 /* We cannot log to the journal, so just print the MESSAGE.
804 * The target was set previously to something safe. */
805 log_dispatch(LOG_ERR, 0, core_message);
806 return 0;
807 }
808
809 iovec[n_iovec++] = IOVEC_MAKE_STRING(core_message);
810
811 if (truncated)
812 iovec[n_iovec++] = IOVEC_MAKE_STRING("COREDUMP_TRUNCATED=1");
813
814 /* Optionally store the entire coredump in the journal */
815 if (arg_storage == COREDUMP_STORAGE_JOURNAL) {
816 if (coredump_size <= arg_journal_size_max) {
817 size_t sz = 0;
818
819 /* Store the coredump itself in the journal */
820
821 r = allocate_journal_field(coredump_fd, (size_t) coredump_size, &coredump_data, &sz);
822 if (r >= 0)
823 iovec[n_iovec++] = IOVEC_MAKE(coredump_data, sz);
824 else
825 log_warning_errno(r, "Failed to attach the core to the journal entry: %m");
826 } else
827 log_info("The core will not be stored: size %"PRIu64" is greater than %"PRIu64" (the configured maximum)",
828 coredump_size, arg_journal_size_max);
829 }
830
831 assert(n_iovec <= n_iovec_allocated);
832
833 r = sd_journal_sendv(iovec, n_iovec);
834 if (r < 0)
835 return log_error_errno(r, "Failed to log coredump: %m");
836
837 return 0;
838 }
839
840 static void map_context_fields(const struct iovec *iovec, const char* context[]) {
841
842 static const char * const context_field_names[] = {
843 [CONTEXT_PID] = "COREDUMP_PID=",
844 [CONTEXT_UID] = "COREDUMP_UID=",
845 [CONTEXT_GID] = "COREDUMP_GID=",
846 [CONTEXT_SIGNAL] = "COREDUMP_SIGNAL=",
847 [CONTEXT_TIMESTAMP] = "COREDUMP_TIMESTAMP=",
848 [CONTEXT_RLIMIT] = "COREDUMP_RLIMIT=",
849 [CONTEXT_HOSTNAME] = "COREDUMP_HOSTNAME=",
850 [CONTEXT_COMM] = "COREDUMP_COMM=",
851 [CONTEXT_EXE] = "COREDUMP_EXE=",
852 };
853
854 unsigned i;
855
856 assert(iovec);
857 assert(context);
858
859 for (i = 0; i < ELEMENTSOF(context_field_names); i++) {
860 char *p;
861
862 if (!context_field_names[i])
863 continue;
864
865 p = memory_startswith(iovec->iov_base, iovec->iov_len, context_field_names[i]);
866 if (!p)
867 continue;
868
869 /* Note that these strings are NUL terminated, because we made sure that a trailing NUL byte is in the
870 * buffer, though not included in the iov_len count. (see below) */
871 context[i] = p;
872 break;
873 }
874 }
875
876 static int process_socket(int fd) {
877 _cleanup_close_ int coredump_fd = -1;
878 struct iovec *iovec = NULL;
879 size_t n_iovec = 0, n_allocated = 0, i, k;
880 const char *context[_CONTEXT_MAX] = {};
881 int r;
882
883 assert(fd >= 0);
884
885 log_setup_service();
886
887 log_debug("Processing coredump received on stdin...");
888
889 for (;;) {
890 union {
891 struct cmsghdr cmsghdr;
892 uint8_t buf[CMSG_SPACE(sizeof(int))];
893 } control = {};
894 struct msghdr mh = {
895 .msg_control = &control,
896 .msg_controllen = sizeof(control),
897 .msg_iovlen = 1,
898 };
899 ssize_t n;
900 ssize_t l;
901
902 if (!GREEDY_REALLOC(iovec, n_allocated, n_iovec + SUBMIT_COREDUMP_FIELDS)) {
903 r = log_oom();
904 goto finish;
905 }
906
907 l = next_datagram_size_fd(fd);
908 if (l < 0) {
909 r = log_error_errno(l, "Failed to determine datagram size to read: %m");
910 goto finish;
911 }
912
913 assert(l >= 0);
914
915 iovec[n_iovec].iov_len = l;
916 iovec[n_iovec].iov_base = malloc(l + 1);
917 if (!iovec[n_iovec].iov_base) {
918 r = log_oom();
919 goto finish;
920 }
921
922 mh.msg_iov = iovec + n_iovec;
923
924 n = recvmsg(fd, &mh, MSG_CMSG_CLOEXEC);
925 if (n < 0) {
926 free(iovec[n_iovec].iov_base);
927 r = log_error_errno(errno, "Failed to receive datagram: %m");
928 goto finish;
929 }
930
931 if (n == 0) {
932 struct cmsghdr *cmsg, *found = NULL;
933 /* The final zero-length datagram carries the file descriptor and tells us that we're done. */
934
935 free(iovec[n_iovec].iov_base);
936
937 CMSG_FOREACH(cmsg, &mh) {
938 if (cmsg->cmsg_level == SOL_SOCKET &&
939 cmsg->cmsg_type == SCM_RIGHTS &&
940 cmsg->cmsg_len == CMSG_LEN(sizeof(int))) {
941 assert(!found);
942 found = cmsg;
943 }
944 }
945
946 if (!found) {
947 log_error("Coredump file descriptor missing.");
948 r = -EBADMSG;
949 goto finish;
950 }
951
952 assert(coredump_fd < 0);
953 coredump_fd = *(int*) CMSG_DATA(found);
954 break;
955 }
956
957 /* Add trailing NUL byte, in case these are strings */
958 ((char*) iovec[n_iovec].iov_base)[n] = 0;
959 iovec[n_iovec].iov_len = (size_t) n;
960
961 cmsg_close_all(&mh);
962 map_context_fields(iovec + n_iovec, context);
963 n_iovec++;
964 }
965
966 if (!GREEDY_REALLOC(iovec, n_allocated, n_iovec + SUBMIT_COREDUMP_FIELDS)) {
967 r = log_oom();
968 goto finish;
969 }
970
971 /* Make sure we got all data we really need */
972 assert(context[CONTEXT_PID]);
973 assert(context[CONTEXT_UID]);
974 assert(context[CONTEXT_GID]);
975 assert(context[CONTEXT_SIGNAL]);
976 assert(context[CONTEXT_TIMESTAMP]);
977 assert(context[CONTEXT_RLIMIT]);
978 assert(context[CONTEXT_HOSTNAME]);
979 assert(context[CONTEXT_COMM]);
980 assert(coredump_fd >= 0);
981
982 /* Small quirk: the journal fields contain the timestamp padded with six zeroes, so that the kernel-supplied 1s
983 * granularity timestamps becomes 1µs granularity, i.e. the granularity systemd usually operates in. Since we
984 * are reconstructing the original kernel context, we chop this off again, here. */
985 k = strlen(context[CONTEXT_TIMESTAMP]);
986 if (k > 6)
987 context[CONTEXT_TIMESTAMP] = strndupa(context[CONTEXT_TIMESTAMP], k - 6);
988
989 r = submit_coredump(context, iovec, n_allocated, n_iovec, coredump_fd);
990
991 finish:
992 for (i = 0; i < n_iovec; i++)
993 free(iovec[i].iov_base);
994 free(iovec);
995
996 return r;
997 }
998
999 static int send_iovec(const struct iovec iovec[], size_t n_iovec, int input_fd) {
1000
1001 static const union sockaddr_union sa = {
1002 .un.sun_family = AF_UNIX,
1003 .un.sun_path = "/run/systemd/coredump",
1004 };
1005 _cleanup_close_ int fd = -1;
1006 size_t i;
1007 int r;
1008
1009 assert(iovec || n_iovec <= 0);
1010 assert(input_fd >= 0);
1011
1012 fd = socket(AF_UNIX, SOCK_SEQPACKET|SOCK_CLOEXEC, 0);
1013 if (fd < 0)
1014 return log_error_errno(errno, "Failed to create coredump socket: %m");
1015
1016 if (connect(fd, &sa.sa, SOCKADDR_UN_LEN(sa.un)) < 0)
1017 return log_error_errno(errno, "Failed to connect to coredump service: %m");
1018
1019 for (i = 0; i < n_iovec; i++) {
1020 struct msghdr mh = {
1021 .msg_iov = (struct iovec*) iovec + i,
1022 .msg_iovlen = 1,
1023 };
1024 struct iovec copy[2];
1025
1026 for (;;) {
1027 if (sendmsg(fd, &mh, MSG_NOSIGNAL) >= 0)
1028 break;
1029
1030 if (errno == EMSGSIZE && mh.msg_iov[0].iov_len > 0) {
1031 /* This field didn't fit? That's a pity. Given that this is just metadata,
1032 * let's truncate the field at half, and try again. We append three dots, in
1033 * order to show that this is truncated. */
1034
1035 if (mh.msg_iov != copy) {
1036 /* We don't want to modify the caller's iovec, hence let's create our
1037 * own array, consisting of two new iovecs, where the first is a
1038 * (truncated) copy of what we want to send, and the second one
1039 * contains the trailing dots. */
1040 copy[0] = iovec[i];
1041 copy[1] = (struct iovec) {
1042 .iov_base = (char[]) { '.', '.', '.' },
1043 .iov_len = 3,
1044 };
1045
1046 mh.msg_iov = copy;
1047 mh.msg_iovlen = 2;
1048 }
1049
1050 copy[0].iov_len /= 2; /* halve it, and try again */
1051 continue;
1052 }
1053
1054 return log_error_errno(errno, "Failed to send coredump datagram: %m");
1055 }
1056 }
1057
1058 r = send_one_fd(fd, input_fd, 0);
1059 if (r < 0)
1060 return log_error_errno(r, "Failed to send coredump fd: %m");
1061
1062 return 0;
1063 }
1064
1065 static char* set_iovec_field(struct iovec *iovec, size_t *n_iovec, const char *field, const char *value) {
1066 char *x;
1067
1068 x = strappend(field, value);
1069 if (x)
1070 iovec[(*n_iovec)++] = IOVEC_MAKE_STRING(x);
1071 return x;
1072 }
1073
1074 static char* set_iovec_field_free(struct iovec *iovec, size_t *n_iovec, const char *field, char *value) {
1075 char *x;
1076
1077 x = set_iovec_field(iovec, n_iovec, field, value);
1078 free(value);
1079 return x;
1080 }
1081
1082 static int gather_pid_metadata(
1083 char* context[_CONTEXT_MAX],
1084 char **comm_fallback,
1085 struct iovec *iovec, size_t *n_iovec) {
1086
1087 /* We need 27 empty slots in iovec!
1088 *
1089 * Note that if we fail on oom later on, we do not roll-back changes to the iovec structure. (It remains valid,
1090 * with the first n_iovec fields initialized.) */
1091
1092 uid_t owner_uid;
1093 pid_t pid;
1094 char *t;
1095 const char *p;
1096 int r, signo;
1097
1098 r = parse_pid(context[CONTEXT_PID], &pid);
1099 if (r < 0)
1100 return log_error_errno(r, "Failed to parse PID \"%s\": %m", context[CONTEXT_PID]);
1101
1102 r = get_process_comm(pid, &context[CONTEXT_COMM]);
1103 if (r < 0) {
1104 log_warning_errno(r, "Failed to get COMM, falling back to the command line: %m");
1105 context[CONTEXT_COMM] = strv_join(comm_fallback, " ");
1106 if (!context[CONTEXT_COMM])
1107 return log_oom();
1108 }
1109
1110 r = get_process_exe(pid, &context[CONTEXT_EXE]);
1111 if (r < 0)
1112 log_warning_errno(r, "Failed to get EXE, ignoring: %m");
1113
1114 if (cg_pid_get_unit(pid, &context[CONTEXT_UNIT]) >= 0) {
1115 if (!is_journald_crash((const char**) context)) {
1116 /* OK, now we know it's not the journal, hence we can make use of it now. */
1117 log_set_target(LOG_TARGET_JOURNAL_OR_KMSG);
1118 log_open();
1119 }
1120
1121 /* If this is PID 1 disable coredump collection, we'll unlikely be able to process it later on. */
1122 if (is_pid1_crash((const char**) context)) {
1123 log_notice("Due to PID 1 having crashed coredump collection will now be turned off.");
1124 disable_coredumps();
1125 }
1126
1127 set_iovec_field(iovec, n_iovec, "COREDUMP_UNIT=", context[CONTEXT_UNIT]);
1128 }
1129
1130 if (cg_pid_get_user_unit(pid, &t) >= 0)
1131 set_iovec_field_free(iovec, n_iovec, "COREDUMP_USER_UNIT=", t);
1132
1133 /* The next few are mandatory */
1134 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_PID=", context[CONTEXT_PID]))
1135 return log_oom();
1136
1137 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_UID=", context[CONTEXT_UID]))
1138 return log_oom();
1139
1140 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_GID=", context[CONTEXT_GID]))
1141 return log_oom();
1142
1143 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_SIGNAL=", context[CONTEXT_SIGNAL]))
1144 return log_oom();
1145
1146 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_RLIMIT=", context[CONTEXT_RLIMIT]))
1147 return log_oom();
1148
1149 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_HOSTNAME=", context[CONTEXT_HOSTNAME]))
1150 return log_oom();
1151
1152 if (!set_iovec_field(iovec, n_iovec, "COREDUMP_COMM=", context[CONTEXT_COMM]))
1153 return log_oom();
1154
1155 if (context[CONTEXT_EXE] &&
1156 !set_iovec_field(iovec, n_iovec, "COREDUMP_EXE=", context[CONTEXT_EXE]))
1157 return log_oom();
1158
1159 if (sd_pid_get_session(pid, &t) >= 0)
1160 set_iovec_field_free(iovec, n_iovec, "COREDUMP_SESSION=", t);
1161
1162 if (sd_pid_get_owner_uid(pid, &owner_uid) >= 0) {
1163 r = asprintf(&t, "COREDUMP_OWNER_UID=" UID_FMT, owner_uid);
1164 if (r > 0)
1165 iovec[(*n_iovec)++] = IOVEC_MAKE_STRING(t);
1166 }
1167
1168 if (sd_pid_get_slice(pid, &t) >= 0)
1169 set_iovec_field_free(iovec, n_iovec, "COREDUMP_SLICE=", t);
1170
1171 if (get_process_cmdline(pid, 0, false, &t) >= 0)
1172 set_iovec_field_free(iovec, n_iovec, "COREDUMP_CMDLINE=", t);
1173
1174 if (cg_pid_get_path_shifted(pid, NULL, &t) >= 0)
1175 set_iovec_field_free(iovec, n_iovec, "COREDUMP_CGROUP=", t);
1176
1177 if (compose_open_fds(pid, &t) >= 0)
1178 set_iovec_field_free(iovec, n_iovec, "COREDUMP_OPEN_FDS=", t);
1179
1180 p = procfs_file_alloca(pid, "status");
1181 if (read_full_file(p, &t, NULL) >= 0)
1182 set_iovec_field_free(iovec, n_iovec, "COREDUMP_PROC_STATUS=", t);
1183
1184 p = procfs_file_alloca(pid, "maps");
1185 if (read_full_file(p, &t, NULL) >= 0)
1186 set_iovec_field_free(iovec, n_iovec, "COREDUMP_PROC_MAPS=", t);
1187
1188 p = procfs_file_alloca(pid, "limits");
1189 if (read_full_file(p, &t, NULL) >= 0)
1190 set_iovec_field_free(iovec, n_iovec, "COREDUMP_PROC_LIMITS=", t);
1191
1192 p = procfs_file_alloca(pid, "cgroup");
1193 if (read_full_file(p, &t, NULL) >=0)
1194 set_iovec_field_free(iovec, n_iovec, "COREDUMP_PROC_CGROUP=", t);
1195
1196 p = procfs_file_alloca(pid, "mountinfo");
1197 if (read_full_file(p, &t, NULL) >=0)
1198 set_iovec_field_free(iovec, n_iovec, "COREDUMP_PROC_MOUNTINFO=", t);
1199
1200 if (get_process_cwd(pid, &t) >= 0)
1201 set_iovec_field_free(iovec, n_iovec, "COREDUMP_CWD=", t);
1202
1203 if (get_process_root(pid, &t) >= 0) {
1204 bool proc_self_root_is_slash;
1205
1206 proc_self_root_is_slash = strcmp(t, "/") == 0;
1207
1208 set_iovec_field_free(iovec, n_iovec, "COREDUMP_ROOT=", t);
1209
1210 /* If the process' root is "/", then there is a chance it has
1211 * mounted own root and hence being containerized. */
1212 if (proc_self_root_is_slash && get_process_container_parent_cmdline(pid, &t) > 0)
1213 set_iovec_field_free(iovec, n_iovec, "COREDUMP_CONTAINER_CMDLINE=", t);
1214 }
1215
1216 if (get_process_environ(pid, &t) >= 0)
1217 set_iovec_field_free(iovec, n_iovec, "COREDUMP_ENVIRON=", t);
1218
1219 t = strjoin("COREDUMP_TIMESTAMP=", context[CONTEXT_TIMESTAMP], "000000");
1220 if (t)
1221 iovec[(*n_iovec)++] = IOVEC_MAKE_STRING(t);
1222
1223 if (safe_atoi(context[CONTEXT_SIGNAL], &signo) >= 0 && SIGNAL_VALID(signo))
1224 set_iovec_field(iovec, n_iovec, "COREDUMP_SIGNAL_NAME=SIG", signal_to_string(signo));
1225
1226 return 0; /* we successfully acquired all metadata */
1227 }
1228
1229 static int process_kernel(int argc, char* argv[]) {
1230
1231 char* context[_CONTEXT_MAX] = {};
1232 struct iovec iovec[29 + SUBMIT_COREDUMP_FIELDS];
1233 size_t i, n_iovec, n_to_free = 0;
1234 int r;
1235
1236 log_debug("Processing coredump received from the kernel...");
1237
1238 if (argc < CONTEXT_COMM + 1)
1239 return log_error_errno(SYNTHETIC_ERRNO(EINVAL),
1240 "Not enough arguments passed by the kernel (%i, expected %i).",
1241 argc - 1, CONTEXT_COMM + 1 - 1);
1242
1243 context[CONTEXT_PID] = argv[1 + CONTEXT_PID];
1244 context[CONTEXT_UID] = argv[1 + CONTEXT_UID];
1245 context[CONTEXT_GID] = argv[1 + CONTEXT_GID];
1246 context[CONTEXT_SIGNAL] = argv[1 + CONTEXT_SIGNAL];
1247 context[CONTEXT_TIMESTAMP] = argv[1 + CONTEXT_TIMESTAMP];
1248 context[CONTEXT_RLIMIT] = argv[1 + CONTEXT_RLIMIT];
1249 context[CONTEXT_HOSTNAME] = argv[1 + CONTEXT_HOSTNAME];
1250
1251 r = gather_pid_metadata(context, argv + 1 + CONTEXT_COMM, iovec, &n_to_free);
1252 if (r < 0)
1253 goto finish;
1254
1255 n_iovec = n_to_free;
1256
1257 iovec[n_iovec++] = IOVEC_MAKE_STRING("MESSAGE_ID=" SD_MESSAGE_COREDUMP_STR);
1258
1259 assert_cc(2 == LOG_CRIT);
1260 iovec[n_iovec++] = IOVEC_MAKE_STRING("PRIORITY=2");
1261
1262 assert(n_iovec <= ELEMENTSOF(iovec));
1263
1264 if (is_journald_crash((const char**) context) || is_pid1_crash((const char**) context))
1265 r = submit_coredump((const char**) context,
1266 iovec, ELEMENTSOF(iovec), n_iovec,
1267 STDIN_FILENO);
1268 else
1269 r = send_iovec(iovec, n_iovec, STDIN_FILENO);
1270
1271 finish:
1272 for (i = 0; i < n_to_free; i++)
1273 free(iovec[i].iov_base);
1274
1275 /* Those fields are allocated by gather_pid_metadata */
1276 free(context[CONTEXT_COMM]);
1277 free(context[CONTEXT_EXE]);
1278 free(context[CONTEXT_UNIT]);
1279
1280 return r;
1281 }
1282
1283 static int process_backtrace(int argc, char *argv[]) {
1284 char *context[_CONTEXT_MAX] = {};
1285 _cleanup_free_ char *message = NULL;
1286 _cleanup_free_ struct iovec *iovec = NULL;
1287 size_t n_iovec, n_allocated, n_to_free = 0, i;
1288 int r;
1289 JournalImporter importer = {
1290 .fd = STDIN_FILENO,
1291 };
1292
1293 log_debug("Processing backtrace on stdin...");
1294
1295 if (argc < CONTEXT_COMM + 1)
1296 return log_error_errno(SYNTHETIC_ERRNO(EINVAL),
1297 "Not enough arguments passed (%i, expected %i).",
1298 argc - 1, CONTEXT_COMM + 1 - 1);
1299
1300 context[CONTEXT_PID] = argv[2 + CONTEXT_PID];
1301 context[CONTEXT_UID] = argv[2 + CONTEXT_UID];
1302 context[CONTEXT_GID] = argv[2 + CONTEXT_GID];
1303 context[CONTEXT_SIGNAL] = argv[2 + CONTEXT_SIGNAL];
1304 context[CONTEXT_TIMESTAMP] = argv[2 + CONTEXT_TIMESTAMP];
1305 context[CONTEXT_RLIMIT] = argv[2 + CONTEXT_RLIMIT];
1306 context[CONTEXT_HOSTNAME] = argv[2 + CONTEXT_HOSTNAME];
1307
1308 n_allocated = 34 + COREDUMP_STORAGE_EXTERNAL;
1309 /* 26 metadata, 2 static, +unknown input, 4 storage, rounded up */
1310 iovec = new(struct iovec, n_allocated);
1311 if (!iovec)
1312 return log_oom();
1313
1314 r = gather_pid_metadata(context, argv + 2 + CONTEXT_COMM, iovec, &n_to_free);
1315 if (r < 0)
1316 goto finish;
1317 if (r > 0) {
1318 /* This was a special crash, and has already been processed. */
1319 r = 0;
1320 goto finish;
1321 }
1322 n_iovec = n_to_free;
1323
1324 for (;;) {
1325 r = journal_importer_process_data(&importer);
1326 if (r < 0) {
1327 log_error_errno(r, "Failed to parse journal entry on stdin: %m");
1328 goto finish;
1329 }
1330 if (r == 1 || /* complete entry */
1331 journal_importer_eof(&importer)) /* end of data */
1332 break;
1333 }
1334
1335 if (!GREEDY_REALLOC(iovec, n_allocated, n_iovec + importer.iovw.count + 2))
1336 return log_oom();
1337
1338 if (journal_importer_eof(&importer)) {
1339 log_warning("Did not receive a full journal entry on stdin, ignoring message sent by reporter");
1340
1341 message = strjoin("MESSAGE=Process ", context[CONTEXT_PID],
1342 " (", context[CONTEXT_COMM], ")"
1343 " of user ", context[CONTEXT_UID],
1344 " failed with ", context[CONTEXT_SIGNAL]);
1345 if (!message) {
1346 r = log_oom();
1347 goto finish;
1348 }
1349 iovec[n_iovec++] = IOVEC_MAKE_STRING(message);
1350 } else {
1351 for (i = 0; i < importer.iovw.count; i++)
1352 iovec[n_iovec++] = importer.iovw.iovec[i];
1353 }
1354
1355 iovec[n_iovec++] = IOVEC_MAKE_STRING("MESSAGE_ID=" SD_MESSAGE_BACKTRACE_STR);
1356 assert_cc(2 == LOG_CRIT);
1357 iovec[n_iovec++] = IOVEC_MAKE_STRING("PRIORITY=2");
1358
1359 assert(n_iovec <= n_allocated);
1360
1361 r = sd_journal_sendv(iovec, n_iovec);
1362 if (r < 0)
1363 log_error_errno(r, "Failed to log backtrace: %m");
1364
1365 finish:
1366 for (i = 0; i < n_to_free; i++)
1367 free(iovec[i].iov_base);
1368
1369 /* Those fields are allocated by gather_pid_metadata */
1370 free(context[CONTEXT_COMM]);
1371 free(context[CONTEXT_EXE]);
1372 free(context[CONTEXT_UNIT]);
1373
1374 return r;
1375 }
1376
1377 static int run(int argc, char *argv[]) {
1378 int r;
1379
1380 /* First, log to a safe place, since we don't know what crashed and it might
1381 * be journald which we'd rather not log to then. */
1382
1383 log_set_target(LOG_TARGET_KMSG);
1384 log_open();
1385
1386 /* Make sure we never enter a loop */
1387 (void) prctl(PR_SET_DUMPABLE, 0);
1388
1389 /* Ignore all parse errors */
1390 (void) parse_config();
1391
1392 log_debug("Selected storage '%s'.", coredump_storage_to_string(arg_storage));
1393 log_debug("Selected compression %s.", yes_no(arg_compress));
1394
1395 r = sd_listen_fds(false);
1396 if (r < 0)
1397 return log_error_errno(r, "Failed to determine the number of file descriptors: %m");
1398
1399 /* If we got an fd passed, we are running in coredumpd mode. Otherwise we
1400 * are invoked from the kernel as coredump handler. */
1401 if (r == 0) {
1402 if (streq_ptr(argv[1], "--backtrace"))
1403 return process_backtrace(argc, argv);
1404 else
1405 return process_kernel(argc, argv);
1406 } else if (r == 1)
1407 return process_socket(SD_LISTEN_FDS_START);
1408
1409 return log_error_errno(SYNTHETIC_ERRNO(EINVAL),
1410 "Received unexpected number of file descriptors.");
1411 }
1412
1413 DEFINE_MAIN_FUNCTION(run);