chiark / gitweb /
tree-wide: use startswith return value to avoid hardcoded offset
[elogind.git] / src / core / cgroup.c
1 /***
2   This file is part of systemd.
3
4   Copyright 2013 Lennart Poettering
5
6   systemd is free software; you can redistribute it and/or modify it
7   under the terms of the GNU Lesser General Public License as published by
8   the Free Software Foundation; either version 2.1 of the License, or
9   (at your option) any later version.
10
11   systemd is distributed in the hope that it will be useful, but
12   WITHOUT ANY WARRANTY; without even the implied warranty of
13   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14   Lesser General Public License for more details.
15
16   You should have received a copy of the GNU Lesser General Public License
17   along with systemd; If not, see <http://www.gnu.org/licenses/>.
18 ***/
19
20 #include <fcntl.h>
21 #include <fnmatch.h>
22
23 #include "alloc-util.h"
24 #include "cgroup-util.h"
25 #include "cgroup.h"
26 #include "fd-util.h"
27 #include "fileio.h"
28 #include "fs-util.h"
29 #include "parse-util.h"
30 #include "path-util.h"
31 #include "process-util.h"
32 //#include "special.h"
33 #include "string-table.h"
34 #include "string-util.h"
35 #include "stdio-util.h"
36
37 #define CGROUP_CPU_QUOTA_PERIOD_USEC ((usec_t) 100 * USEC_PER_MSEC)
38
39 #if 0 /// UNNEEDED by elogind
40 static void cgroup_compat_warn(void) {
41         static bool cgroup_compat_warned = false;
42
43         if (cgroup_compat_warned)
44                 return;
45
46         log_warning("cgroup compatibility translation between legacy and unified hierarchy settings activated. See cgroup-compat debug messages for details.");
47         cgroup_compat_warned = true;
48 }
49
50 #define log_cgroup_compat(unit, fmt, ...) do {                                  \
51                 cgroup_compat_warn();                                           \
52                 log_unit_debug(unit, "cgroup-compat: " fmt, ##__VA_ARGS__);     \
53         } while (false)
54
55 void cgroup_context_init(CGroupContext *c) {
56         assert(c);
57
58         /* Initialize everything to the kernel defaults, assuming the
59          * structure is preinitialized to 0 */
60
61         c->cpu_weight = CGROUP_WEIGHT_INVALID;
62         c->startup_cpu_weight = CGROUP_WEIGHT_INVALID;
63         c->cpu_quota_per_sec_usec = USEC_INFINITY;
64
65         c->cpu_shares = CGROUP_CPU_SHARES_INVALID;
66         c->startup_cpu_shares = CGROUP_CPU_SHARES_INVALID;
67
68         c->memory_high = CGROUP_LIMIT_MAX;
69         c->memory_max = CGROUP_LIMIT_MAX;
70         c->memory_swap_max = CGROUP_LIMIT_MAX;
71
72         c->memory_limit = CGROUP_LIMIT_MAX;
73
74         c->io_weight = CGROUP_WEIGHT_INVALID;
75         c->startup_io_weight = CGROUP_WEIGHT_INVALID;
76
77         c->blockio_weight = CGROUP_BLKIO_WEIGHT_INVALID;
78         c->startup_blockio_weight = CGROUP_BLKIO_WEIGHT_INVALID;
79
80         c->tasks_max = (uint64_t) -1;
81 }
82
83 void cgroup_context_free_device_allow(CGroupContext *c, CGroupDeviceAllow *a) {
84         assert(c);
85         assert(a);
86
87         LIST_REMOVE(device_allow, c->device_allow, a);
88         free(a->path);
89         free(a);
90 }
91
92 void cgroup_context_free_io_device_weight(CGroupContext *c, CGroupIODeviceWeight *w) {
93         assert(c);
94         assert(w);
95
96         LIST_REMOVE(device_weights, c->io_device_weights, w);
97         free(w->path);
98         free(w);
99 }
100
101 void cgroup_context_free_io_device_limit(CGroupContext *c, CGroupIODeviceLimit *l) {
102         assert(c);
103         assert(l);
104
105         LIST_REMOVE(device_limits, c->io_device_limits, l);
106         free(l->path);
107         free(l);
108 }
109
110 void cgroup_context_free_blockio_device_weight(CGroupContext *c, CGroupBlockIODeviceWeight *w) {
111         assert(c);
112         assert(w);
113
114         LIST_REMOVE(device_weights, c->blockio_device_weights, w);
115         free(w->path);
116         free(w);
117 }
118
119 void cgroup_context_free_blockio_device_bandwidth(CGroupContext *c, CGroupBlockIODeviceBandwidth *b) {
120         assert(c);
121         assert(b);
122
123         LIST_REMOVE(device_bandwidths, c->blockio_device_bandwidths, b);
124         free(b->path);
125         free(b);
126 }
127
128 void cgroup_context_done(CGroupContext *c) {
129         assert(c);
130
131         while (c->io_device_weights)
132                 cgroup_context_free_io_device_weight(c, c->io_device_weights);
133
134         while (c->io_device_limits)
135                 cgroup_context_free_io_device_limit(c, c->io_device_limits);
136
137         while (c->blockio_device_weights)
138                 cgroup_context_free_blockio_device_weight(c, c->blockio_device_weights);
139
140         while (c->blockio_device_bandwidths)
141                 cgroup_context_free_blockio_device_bandwidth(c, c->blockio_device_bandwidths);
142
143         while (c->device_allow)
144                 cgroup_context_free_device_allow(c, c->device_allow);
145 }
146
147 void cgroup_context_dump(CGroupContext *c, FILE* f, const char *prefix) {
148         CGroupIODeviceLimit *il;
149         CGroupIODeviceWeight *iw;
150         CGroupBlockIODeviceBandwidth *b;
151         CGroupBlockIODeviceWeight *w;
152         CGroupDeviceAllow *a;
153         char u[FORMAT_TIMESPAN_MAX];
154
155         assert(c);
156         assert(f);
157
158         prefix = strempty(prefix);
159
160         fprintf(f,
161                 "%sCPUAccounting=%s\n"
162                 "%sIOAccounting=%s\n"
163                 "%sBlockIOAccounting=%s\n"
164                 "%sMemoryAccounting=%s\n"
165                 "%sTasksAccounting=%s\n"
166                 "%sCPUWeight=%" PRIu64 "\n"
167                 "%sStartupCPUWeight=%" PRIu64 "\n"
168                 "%sCPUShares=%" PRIu64 "\n"
169                 "%sStartupCPUShares=%" PRIu64 "\n"
170                 "%sCPUQuotaPerSecSec=%s\n"
171                 "%sIOWeight=%" PRIu64 "\n"
172                 "%sStartupIOWeight=%" PRIu64 "\n"
173                 "%sBlockIOWeight=%" PRIu64 "\n"
174                 "%sStartupBlockIOWeight=%" PRIu64 "\n"
175                 "%sMemoryLow=%" PRIu64 "\n"
176                 "%sMemoryHigh=%" PRIu64 "\n"
177                 "%sMemoryMax=%" PRIu64 "\n"
178                 "%sMemorySwapMax=%" PRIu64 "\n"
179                 "%sMemoryLimit=%" PRIu64 "\n"
180                 "%sTasksMax=%" PRIu64 "\n"
181                 "%sDevicePolicy=%s\n"
182                 "%sDelegate=%s\n",
183                 prefix, yes_no(c->cpu_accounting),
184                 prefix, yes_no(c->io_accounting),
185                 prefix, yes_no(c->blockio_accounting),
186                 prefix, yes_no(c->memory_accounting),
187                 prefix, yes_no(c->tasks_accounting),
188                 prefix, c->cpu_weight,
189                 prefix, c->startup_cpu_weight,
190                 prefix, c->cpu_shares,
191                 prefix, c->startup_cpu_shares,
192                 prefix, format_timespan(u, sizeof(u), c->cpu_quota_per_sec_usec, 1),
193                 prefix, c->io_weight,
194                 prefix, c->startup_io_weight,
195                 prefix, c->blockio_weight,
196                 prefix, c->startup_blockio_weight,
197                 prefix, c->memory_low,
198                 prefix, c->memory_high,
199                 prefix, c->memory_max,
200                 prefix, c->memory_swap_max,
201                 prefix, c->memory_limit,
202                 prefix, c->tasks_max,
203                 prefix, cgroup_device_policy_to_string(c->device_policy),
204                 prefix, yes_no(c->delegate));
205
206         LIST_FOREACH(device_allow, a, c->device_allow)
207                 fprintf(f,
208                         "%sDeviceAllow=%s %s%s%s\n",
209                         prefix,
210                         a->path,
211                         a->r ? "r" : "", a->w ? "w" : "", a->m ? "m" : "");
212
213         LIST_FOREACH(device_weights, iw, c->io_device_weights)
214                 fprintf(f,
215                         "%sIODeviceWeight=%s %" PRIu64,
216                         prefix,
217                         iw->path,
218                         iw->weight);
219
220         LIST_FOREACH(device_limits, il, c->io_device_limits) {
221                 char buf[FORMAT_BYTES_MAX];
222                 CGroupIOLimitType type;
223
224                 for (type = 0; type < _CGROUP_IO_LIMIT_TYPE_MAX; type++)
225                         if (il->limits[type] != cgroup_io_limit_defaults[type])
226                                 fprintf(f,
227                                         "%s%s=%s %s\n",
228                                         prefix,
229                                         cgroup_io_limit_type_to_string(type),
230                                         il->path,
231                                         format_bytes(buf, sizeof(buf), il->limits[type]));
232         }
233
234         LIST_FOREACH(device_weights, w, c->blockio_device_weights)
235                 fprintf(f,
236                         "%sBlockIODeviceWeight=%s %" PRIu64,
237                         prefix,
238                         w->path,
239                         w->weight);
240
241         LIST_FOREACH(device_bandwidths, b, c->blockio_device_bandwidths) {
242                 char buf[FORMAT_BYTES_MAX];
243
244                 if (b->rbps != CGROUP_LIMIT_MAX)
245                         fprintf(f,
246                                 "%sBlockIOReadBandwidth=%s %s\n",
247                                 prefix,
248                                 b->path,
249                                 format_bytes(buf, sizeof(buf), b->rbps));
250                 if (b->wbps != CGROUP_LIMIT_MAX)
251                         fprintf(f,
252                                 "%sBlockIOWriteBandwidth=%s %s\n",
253                                 prefix,
254                                 b->path,
255                                 format_bytes(buf, sizeof(buf), b->wbps));
256         }
257 }
258
259 static int lookup_block_device(const char *p, dev_t *dev) {
260         struct stat st;
261         int r;
262
263         assert(p);
264         assert(dev);
265
266         r = stat(p, &st);
267         if (r < 0)
268                 return log_warning_errno(errno, "Couldn't stat device %s: %m", p);
269
270         if (S_ISBLK(st.st_mode))
271                 *dev = st.st_rdev;
272         else if (major(st.st_dev) != 0) {
273                 /* If this is not a device node then find the block
274                  * device this file is stored on */
275                 *dev = st.st_dev;
276
277                 /* If this is a partition, try to get the originating
278                  * block device */
279                 block_get_whole_disk(*dev, dev);
280         } else {
281                 log_warning("%s is not a block device and file system block device cannot be determined or is not local.", p);
282                 return -ENODEV;
283         }
284
285         return 0;
286 }
287
288 static int whitelist_device(const char *path, const char *node, const char *acc) {
289         char buf[2+DECIMAL_STR_MAX(dev_t)*2+2+4];
290         struct stat st;
291         int r;
292
293         assert(path);
294         assert(acc);
295
296         if (stat(node, &st) < 0) {
297                 log_warning("Couldn't stat device %s", node);
298                 return -errno;
299         }
300
301         if (!S_ISCHR(st.st_mode) && !S_ISBLK(st.st_mode)) {
302                 log_warning("%s is not a device.", node);
303                 return -ENODEV;
304         }
305
306         sprintf(buf,
307                 "%c %u:%u %s",
308                 S_ISCHR(st.st_mode) ? 'c' : 'b',
309                 major(st.st_rdev), minor(st.st_rdev),
310                 acc);
311
312         r = cg_set_attribute("devices", path, "devices.allow", buf);
313         if (r < 0)
314                 log_full_errno(IN_SET(r, -ENOENT, -EROFS, -EINVAL, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
315                                "Failed to set devices.allow on %s: %m", path);
316
317         return r;
318 }
319
320 static int whitelist_major(const char *path, const char *name, char type, const char *acc) {
321         _cleanup_fclose_ FILE *f = NULL;
322         char line[LINE_MAX];
323         bool good = false;
324         int r;
325
326         assert(path);
327         assert(acc);
328         assert(type == 'b' || type == 'c');
329
330         f = fopen("/proc/devices", "re");
331         if (!f)
332                 return log_warning_errno(errno, "Cannot open /proc/devices to resolve %s (%c): %m", name, type);
333
334         FOREACH_LINE(line, f, goto fail) {
335                 char buf[2+DECIMAL_STR_MAX(unsigned)+3+4], *p, *w;
336                 unsigned maj;
337
338                 truncate_nl(line);
339
340                 if (type == 'c' && streq(line, "Character devices:")) {
341                         good = true;
342                         continue;
343                 }
344
345                 if (type == 'b' && streq(line, "Block devices:")) {
346                         good = true;
347                         continue;
348                 }
349
350                 if (isempty(line)) {
351                         good = false;
352                         continue;
353                 }
354
355                 if (!good)
356                         continue;
357
358                 p = strstrip(line);
359
360                 w = strpbrk(p, WHITESPACE);
361                 if (!w)
362                         continue;
363                 *w = 0;
364
365                 r = safe_atou(p, &maj);
366                 if (r < 0)
367                         continue;
368                 if (maj <= 0)
369                         continue;
370
371                 w++;
372                 w += strspn(w, WHITESPACE);
373
374                 if (fnmatch(name, w, 0) != 0)
375                         continue;
376
377                 sprintf(buf,
378                         "%c %u:* %s",
379                         type,
380                         maj,
381                         acc);
382
383                 r = cg_set_attribute("devices", path, "devices.allow", buf);
384                 if (r < 0)
385                         log_full_errno(IN_SET(r, -ENOENT, -EROFS, -EINVAL, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
386                                        "Failed to set devices.allow on %s: %m", path);
387         }
388
389         return 0;
390
391 fail:
392         log_warning_errno(errno, "Failed to read /proc/devices: %m");
393         return -errno;
394 }
395
396 static bool cgroup_context_has_cpu_weight(CGroupContext *c) {
397         return c->cpu_weight != CGROUP_WEIGHT_INVALID ||
398                 c->startup_cpu_weight != CGROUP_WEIGHT_INVALID;
399 }
400
401 static bool cgroup_context_has_cpu_shares(CGroupContext *c) {
402         return c->cpu_shares != CGROUP_CPU_SHARES_INVALID ||
403                 c->startup_cpu_shares != CGROUP_CPU_SHARES_INVALID;
404 }
405
406 static uint64_t cgroup_context_cpu_weight(CGroupContext *c, ManagerState state) {
407         if (IN_SET(state, MANAGER_STARTING, MANAGER_INITIALIZING) &&
408             c->startup_cpu_weight != CGROUP_WEIGHT_INVALID)
409                 return c->startup_cpu_weight;
410         else if (c->cpu_weight != CGROUP_WEIGHT_INVALID)
411                 return c->cpu_weight;
412         else
413                 return CGROUP_WEIGHT_DEFAULT;
414 }
415
416 static uint64_t cgroup_context_cpu_shares(CGroupContext *c, ManagerState state) {
417         if (IN_SET(state, MANAGER_STARTING, MANAGER_INITIALIZING) &&
418             c->startup_cpu_shares != CGROUP_CPU_SHARES_INVALID)
419                 return c->startup_cpu_shares;
420         else if (c->cpu_shares != CGROUP_CPU_SHARES_INVALID)
421                 return c->cpu_shares;
422         else
423                 return CGROUP_CPU_SHARES_DEFAULT;
424 }
425
426 static void cgroup_apply_unified_cpu_config(Unit *u, uint64_t weight, uint64_t quota) {
427         char buf[MAX(DECIMAL_STR_MAX(uint64_t) + 1, (DECIMAL_STR_MAX(usec_t) + 1) * 2)];
428         int r;
429
430         xsprintf(buf, "%" PRIu64 "\n", weight);
431         r = cg_set_attribute("cpu", u->cgroup_path, "cpu.weight", buf);
432         if (r < 0)
433                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
434                               "Failed to set cpu.weight: %m");
435
436         if (quota != USEC_INFINITY)
437                 xsprintf(buf, USEC_FMT " " USEC_FMT "\n",
438                          quota * CGROUP_CPU_QUOTA_PERIOD_USEC / USEC_PER_SEC, CGROUP_CPU_QUOTA_PERIOD_USEC);
439         else
440                 xsprintf(buf, "max " USEC_FMT "\n", CGROUP_CPU_QUOTA_PERIOD_USEC);
441
442         r = cg_set_attribute("cpu", u->cgroup_path, "cpu.max", buf);
443
444         if (r < 0)
445                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
446                               "Failed to set cpu.max: %m");
447 }
448
449 static void cgroup_apply_legacy_cpu_config(Unit *u, uint64_t shares, uint64_t quota) {
450         char buf[MAX(DECIMAL_STR_MAX(uint64_t), DECIMAL_STR_MAX(usec_t)) + 1];
451         int r;
452
453         xsprintf(buf, "%" PRIu64 "\n", shares);
454         r = cg_set_attribute("cpu", u->cgroup_path, "cpu.shares", buf);
455         if (r < 0)
456                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
457                               "Failed to set cpu.shares: %m");
458
459         xsprintf(buf, USEC_FMT "\n", CGROUP_CPU_QUOTA_PERIOD_USEC);
460         r = cg_set_attribute("cpu", u->cgroup_path, "cpu.cfs_period_us", buf);
461         if (r < 0)
462                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
463                               "Failed to set cpu.cfs_period_us: %m");
464
465         if (quota != USEC_INFINITY) {
466                 xsprintf(buf, USEC_FMT "\n", quota * CGROUP_CPU_QUOTA_PERIOD_USEC / USEC_PER_SEC);
467                 r = cg_set_attribute("cpu", u->cgroup_path, "cpu.cfs_quota_us", buf);
468         } else
469                 r = cg_set_attribute("cpu", u->cgroup_path, "cpu.cfs_quota_us", "-1");
470         if (r < 0)
471                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
472                               "Failed to set cpu.cfs_quota_us: %m");
473 }
474
475 static uint64_t cgroup_cpu_shares_to_weight(uint64_t shares) {
476         return CLAMP(shares * CGROUP_WEIGHT_DEFAULT / CGROUP_CPU_SHARES_DEFAULT,
477                      CGROUP_WEIGHT_MIN, CGROUP_WEIGHT_MAX);
478 }
479
480 static uint64_t cgroup_cpu_weight_to_shares(uint64_t weight) {
481         return CLAMP(weight * CGROUP_CPU_SHARES_DEFAULT / CGROUP_WEIGHT_DEFAULT,
482                      CGROUP_CPU_SHARES_MIN, CGROUP_CPU_SHARES_MAX);
483 }
484
485 static bool cgroup_context_has_io_config(CGroupContext *c) {
486         return c->io_accounting ||
487                 c->io_weight != CGROUP_WEIGHT_INVALID ||
488                 c->startup_io_weight != CGROUP_WEIGHT_INVALID ||
489                 c->io_device_weights ||
490                 c->io_device_limits;
491 }
492
493 static bool cgroup_context_has_blockio_config(CGroupContext *c) {
494         return c->blockio_accounting ||
495                 c->blockio_weight != CGROUP_BLKIO_WEIGHT_INVALID ||
496                 c->startup_blockio_weight != CGROUP_BLKIO_WEIGHT_INVALID ||
497                 c->blockio_device_weights ||
498                 c->blockio_device_bandwidths;
499 }
500
501 static uint64_t cgroup_context_io_weight(CGroupContext *c, ManagerState state) {
502         if (IN_SET(state, MANAGER_STARTING, MANAGER_INITIALIZING) &&
503             c->startup_io_weight != CGROUP_WEIGHT_INVALID)
504                 return c->startup_io_weight;
505         else if (c->io_weight != CGROUP_WEIGHT_INVALID)
506                 return c->io_weight;
507         else
508                 return CGROUP_WEIGHT_DEFAULT;
509 }
510
511 static uint64_t cgroup_context_blkio_weight(CGroupContext *c, ManagerState state) {
512         if (IN_SET(state, MANAGER_STARTING, MANAGER_INITIALIZING) &&
513             c->startup_blockio_weight != CGROUP_BLKIO_WEIGHT_INVALID)
514                 return c->startup_blockio_weight;
515         else if (c->blockio_weight != CGROUP_BLKIO_WEIGHT_INVALID)
516                 return c->blockio_weight;
517         else
518                 return CGROUP_BLKIO_WEIGHT_DEFAULT;
519 }
520
521 static uint64_t cgroup_weight_blkio_to_io(uint64_t blkio_weight) {
522         return CLAMP(blkio_weight * CGROUP_WEIGHT_DEFAULT / CGROUP_BLKIO_WEIGHT_DEFAULT,
523                      CGROUP_WEIGHT_MIN, CGROUP_WEIGHT_MAX);
524 }
525
526 static uint64_t cgroup_weight_io_to_blkio(uint64_t io_weight) {
527         return CLAMP(io_weight * CGROUP_BLKIO_WEIGHT_DEFAULT / CGROUP_WEIGHT_DEFAULT,
528                      CGROUP_BLKIO_WEIGHT_MIN, CGROUP_BLKIO_WEIGHT_MAX);
529 }
530
531 static void cgroup_apply_io_device_weight(Unit *u, const char *dev_path, uint64_t io_weight) {
532         char buf[DECIMAL_STR_MAX(dev_t)*2+2+DECIMAL_STR_MAX(uint64_t)+1];
533         dev_t dev;
534         int r;
535
536         r = lookup_block_device(dev_path, &dev);
537         if (r < 0)
538                 return;
539
540         xsprintf(buf, "%u:%u %" PRIu64 "\n", major(dev), minor(dev), io_weight);
541         r = cg_set_attribute("io", u->cgroup_path, "io.weight", buf);
542         if (r < 0)
543                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
544                               "Failed to set io.weight: %m");
545 }
546
547 static void cgroup_apply_blkio_device_weight(Unit *u, const char *dev_path, uint64_t blkio_weight) {
548         char buf[DECIMAL_STR_MAX(dev_t)*2+2+DECIMAL_STR_MAX(uint64_t)+1];
549         dev_t dev;
550         int r;
551
552         r = lookup_block_device(dev_path, &dev);
553         if (r < 0)
554                 return;
555
556         xsprintf(buf, "%u:%u %" PRIu64 "\n", major(dev), minor(dev), blkio_weight);
557         r = cg_set_attribute("blkio", u->cgroup_path, "blkio.weight_device", buf);
558         if (r < 0)
559                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
560                               "Failed to set blkio.weight_device: %m");
561 }
562
563 static unsigned cgroup_apply_io_device_limit(Unit *u, const char *dev_path, uint64_t *limits) {
564         char limit_bufs[_CGROUP_IO_LIMIT_TYPE_MAX][DECIMAL_STR_MAX(uint64_t)];
565         char buf[DECIMAL_STR_MAX(dev_t)*2+2+(6+DECIMAL_STR_MAX(uint64_t)+1)*4];
566         CGroupIOLimitType type;
567         dev_t dev;
568         unsigned n = 0;
569         int r;
570
571         r = lookup_block_device(dev_path, &dev);
572         if (r < 0)
573                 return 0;
574
575         for (type = 0; type < _CGROUP_IO_LIMIT_TYPE_MAX; type++) {
576                 if (limits[type] != cgroup_io_limit_defaults[type]) {
577                         xsprintf(limit_bufs[type], "%" PRIu64, limits[type]);
578                         n++;
579                 } else {
580                         xsprintf(limit_bufs[type], "%s", limits[type] == CGROUP_LIMIT_MAX ? "max" : "0");
581                 }
582         }
583
584         xsprintf(buf, "%u:%u rbps=%s wbps=%s riops=%s wiops=%s\n", major(dev), minor(dev),
585                  limit_bufs[CGROUP_IO_RBPS_MAX], limit_bufs[CGROUP_IO_WBPS_MAX],
586                  limit_bufs[CGROUP_IO_RIOPS_MAX], limit_bufs[CGROUP_IO_WIOPS_MAX]);
587         r = cg_set_attribute("io", u->cgroup_path, "io.max", buf);
588         if (r < 0)
589                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
590                               "Failed to set io.max: %m");
591         return n;
592 }
593
594 static unsigned cgroup_apply_blkio_device_limit(Unit *u, const char *dev_path, uint64_t rbps, uint64_t wbps) {
595         char buf[DECIMAL_STR_MAX(dev_t)*2+2+DECIMAL_STR_MAX(uint64_t)+1];
596         dev_t dev;
597         unsigned n = 0;
598         int r;
599
600         r = lookup_block_device(dev_path, &dev);
601         if (r < 0)
602                 return 0;
603
604         if (rbps != CGROUP_LIMIT_MAX)
605                 n++;
606         sprintf(buf, "%u:%u %" PRIu64 "\n", major(dev), minor(dev), rbps);
607         r = cg_set_attribute("blkio", u->cgroup_path, "blkio.throttle.read_bps_device", buf);
608         if (r < 0)
609                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
610                               "Failed to set blkio.throttle.read_bps_device: %m");
611
612         if (wbps != CGROUP_LIMIT_MAX)
613                 n++;
614         sprintf(buf, "%u:%u %" PRIu64 "\n", major(dev), minor(dev), wbps);
615         r = cg_set_attribute("blkio", u->cgroup_path, "blkio.throttle.write_bps_device", buf);
616         if (r < 0)
617                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
618                               "Failed to set blkio.throttle.write_bps_device: %m");
619
620         return n;
621 }
622
623 static bool cgroup_context_has_unified_memory_config(CGroupContext *c) {
624         return c->memory_low > 0 || c->memory_high != CGROUP_LIMIT_MAX || c->memory_max != CGROUP_LIMIT_MAX || c->memory_swap_max != CGROUP_LIMIT_MAX;
625 }
626
627 static void cgroup_apply_unified_memory_limit(Unit *u, const char *file, uint64_t v) {
628         char buf[DECIMAL_STR_MAX(uint64_t) + 1] = "max";
629         int r;
630
631         if (v != CGROUP_LIMIT_MAX)
632                 xsprintf(buf, "%" PRIu64 "\n", v);
633
634         r = cg_set_attribute("memory", u->cgroup_path, file, buf);
635         if (r < 0)
636                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
637                               "Failed to set %s: %m", file);
638 }
639
640 static void cgroup_context_apply(Unit *u, CGroupMask mask, ManagerState state) {
641         const char *path;
642         CGroupContext *c;
643         bool is_root;
644         int r;
645
646         assert(u);
647
648         c = unit_get_cgroup_context(u);
649         path = u->cgroup_path;
650
651         assert(c);
652         assert(path);
653
654         if (mask == 0)
655                 return;
656
657         /* Some cgroup attributes are not supported on the root cgroup,
658          * hence silently ignore */
659         is_root = isempty(path) || path_equal(path, "/");
660         if (is_root)
661                 /* Make sure we don't try to display messages with an empty path. */
662                 path = "/";
663
664         /* We generally ignore errors caused by read-only mounted
665          * cgroup trees (assuming we are running in a container then),
666          * and missing cgroups, i.e. EROFS and ENOENT. */
667
668         if ((mask & CGROUP_MASK_CPU) && !is_root) {
669                 bool has_weight = cgroup_context_has_cpu_weight(c);
670                 bool has_shares = cgroup_context_has_cpu_shares(c);
671
672                 if (cg_all_unified() > 0) {
673                         uint64_t weight;
674
675                         if (has_weight)
676                                 weight = cgroup_context_cpu_weight(c, state);
677                         else if (has_shares) {
678                                 uint64_t shares = cgroup_context_cpu_shares(c, state);
679
680                                 weight = cgroup_cpu_shares_to_weight(shares);
681
682                                 log_cgroup_compat(u, "Applying [Startup]CpuShares %" PRIu64 " as [Startup]CpuWeight %" PRIu64 " on %s",
683                                                   shares, weight, path);
684                         } else
685                                 weight = CGROUP_WEIGHT_DEFAULT;
686
687                         cgroup_apply_unified_cpu_config(u, weight, c->cpu_quota_per_sec_usec);
688                 } else {
689                         uint64_t shares;
690
691                         if (has_weight) {
692                                 uint64_t weight = cgroup_context_cpu_weight(c, state);
693
694                                 shares = cgroup_cpu_weight_to_shares(weight);
695
696                                 log_cgroup_compat(u, "Applying [Startup]CpuWeight %" PRIu64 " as [Startup]CpuShares %" PRIu64 " on %s",
697                                                   weight, shares, path);
698                         } else if (has_shares)
699                                 shares = cgroup_context_cpu_shares(c, state);
700                         else
701                                 shares = CGROUP_CPU_SHARES_DEFAULT;
702
703                         cgroup_apply_legacy_cpu_config(u, shares, c->cpu_quota_per_sec_usec);
704                 }
705         }
706
707         if (mask & CGROUP_MASK_IO) {
708                 bool has_io = cgroup_context_has_io_config(c);
709                 bool has_blockio = cgroup_context_has_blockio_config(c);
710
711                 if (!is_root) {
712                         char buf[8+DECIMAL_STR_MAX(uint64_t)+1];
713                         uint64_t weight;
714
715                         if (has_io)
716                                 weight = cgroup_context_io_weight(c, state);
717                         else if (has_blockio) {
718                                 uint64_t blkio_weight = cgroup_context_blkio_weight(c, state);
719
720                                 weight = cgroup_weight_blkio_to_io(blkio_weight);
721
722                                 log_cgroup_compat(u, "Applying [Startup]BlockIOWeight %" PRIu64 " as [Startup]IOWeight %" PRIu64,
723                                                   blkio_weight, weight);
724                         } else
725                                 weight = CGROUP_WEIGHT_DEFAULT;
726
727                         xsprintf(buf, "default %" PRIu64 "\n", weight);
728                         r = cg_set_attribute("io", path, "io.weight", buf);
729                         if (r < 0)
730                                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
731                                               "Failed to set io.weight: %m");
732
733                         if (has_io) {
734                                 CGroupIODeviceWeight *w;
735
736                                 /* FIXME: no way to reset this list */
737                                 LIST_FOREACH(device_weights, w, c->io_device_weights)
738                                         cgroup_apply_io_device_weight(u, w->path, w->weight);
739                         } else if (has_blockio) {
740                                 CGroupBlockIODeviceWeight *w;
741
742                                 /* FIXME: no way to reset this list */
743                                 LIST_FOREACH(device_weights, w, c->blockio_device_weights) {
744                                         weight = cgroup_weight_blkio_to_io(w->weight);
745
746                                         log_cgroup_compat(u, "Applying BlockIODeviceWeight %" PRIu64 " as IODeviceWeight %" PRIu64 " for %s",
747                                                           w->weight, weight, w->path);
748
749                                         cgroup_apply_io_device_weight(u, w->path, weight);
750                                 }
751                         }
752                 }
753
754                 /* Apply limits and free ones without config. */
755                 if (has_io) {
756                         CGroupIODeviceLimit *l, *next;
757
758                         LIST_FOREACH_SAFE(device_limits, l, next, c->io_device_limits) {
759                                 if (!cgroup_apply_io_device_limit(u, l->path, l->limits))
760                                         cgroup_context_free_io_device_limit(c, l);
761                         }
762                 } else if (has_blockio) {
763                         CGroupBlockIODeviceBandwidth *b, *next;
764
765                         LIST_FOREACH_SAFE(device_bandwidths, b, next, c->blockio_device_bandwidths) {
766                                 uint64_t limits[_CGROUP_IO_LIMIT_TYPE_MAX];
767                                 CGroupIOLimitType type;
768
769                                 for (type = 0; type < _CGROUP_IO_LIMIT_TYPE_MAX; type++)
770                                         limits[type] = cgroup_io_limit_defaults[type];
771
772                                 limits[CGROUP_IO_RBPS_MAX] = b->rbps;
773                                 limits[CGROUP_IO_WBPS_MAX] = b->wbps;
774
775                                 log_cgroup_compat(u, "Applying BlockIO{Read|Write}Bandwidth %" PRIu64 " %" PRIu64 " as IO{Read|Write}BandwidthMax for %s",
776                                                   b->rbps, b->wbps, b->path);
777
778                                 if (!cgroup_apply_io_device_limit(u, b->path, limits))
779                                         cgroup_context_free_blockio_device_bandwidth(c, b);
780                         }
781                 }
782         }
783
784         if (mask & CGROUP_MASK_BLKIO) {
785                 bool has_io = cgroup_context_has_io_config(c);
786                 bool has_blockio = cgroup_context_has_blockio_config(c);
787
788                 if (!is_root) {
789                         char buf[DECIMAL_STR_MAX(uint64_t)+1];
790                         uint64_t weight;
791
792                         if (has_io) {
793                                 uint64_t io_weight = cgroup_context_io_weight(c, state);
794
795                                 weight = cgroup_weight_io_to_blkio(cgroup_context_io_weight(c, state));
796
797                                 log_cgroup_compat(u, "Applying [Startup]IOWeight %" PRIu64 " as [Startup]BlockIOWeight %" PRIu64,
798                                                   io_weight, weight);
799                         } else if (has_blockio)
800                                 weight = cgroup_context_blkio_weight(c, state);
801                         else
802                                 weight = CGROUP_BLKIO_WEIGHT_DEFAULT;
803
804                         xsprintf(buf, "%" PRIu64 "\n", weight);
805                         r = cg_set_attribute("blkio", path, "blkio.weight", buf);
806                         if (r < 0)
807                                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
808                                               "Failed to set blkio.weight: %m");
809
810                         if (has_io) {
811                                 CGroupIODeviceWeight *w;
812
813                                 /* FIXME: no way to reset this list */
814                                 LIST_FOREACH(device_weights, w, c->io_device_weights) {
815                                         weight = cgroup_weight_io_to_blkio(w->weight);
816
817                                         log_cgroup_compat(u, "Applying IODeviceWeight %" PRIu64 " as BlockIODeviceWeight %" PRIu64 " for %s",
818                                                           w->weight, weight, w->path);
819
820                                         cgroup_apply_blkio_device_weight(u, w->path, weight);
821                                 }
822                         } else if (has_blockio) {
823                                 CGroupBlockIODeviceWeight *w;
824
825                                 /* FIXME: no way to reset this list */
826                                 LIST_FOREACH(device_weights, w, c->blockio_device_weights)
827                                         cgroup_apply_blkio_device_weight(u, w->path, w->weight);
828                         }
829                 }
830
831                 /* Apply limits and free ones without config. */
832                 if (has_io) {
833                         CGroupIODeviceLimit *l, *next;
834
835                         LIST_FOREACH_SAFE(device_limits, l, next, c->io_device_limits) {
836                                 log_cgroup_compat(u, "Applying IO{Read|Write}Bandwidth %" PRIu64 " %" PRIu64 " as BlockIO{Read|Write}BandwidthMax for %s",
837                                                   l->limits[CGROUP_IO_RBPS_MAX], l->limits[CGROUP_IO_WBPS_MAX], l->path);
838
839                                 if (!cgroup_apply_blkio_device_limit(u, l->path, l->limits[CGROUP_IO_RBPS_MAX], l->limits[CGROUP_IO_WBPS_MAX]))
840                                         cgroup_context_free_io_device_limit(c, l);
841                         }
842                 } else if (has_blockio) {
843                         CGroupBlockIODeviceBandwidth *b, *next;
844
845                         LIST_FOREACH_SAFE(device_bandwidths, b, next, c->blockio_device_bandwidths)
846                                 if (!cgroup_apply_blkio_device_limit(u, b->path, b->rbps, b->wbps))
847                                         cgroup_context_free_blockio_device_bandwidth(c, b);
848                 }
849         }
850
851         if ((mask & CGROUP_MASK_MEMORY) && !is_root) {
852                 if (cg_all_unified() > 0) {
853                         uint64_t max;
854                         uint64_t swap_max = CGROUP_LIMIT_MAX;
855
856                         if (cgroup_context_has_unified_memory_config(c)) {
857                                 max = c->memory_max;
858                                 swap_max = c->memory_swap_max;
859                         } else {
860                                 max = c->memory_limit;
861
862                                 if (max != CGROUP_LIMIT_MAX)
863                                         log_cgroup_compat(u, "Applying MemoryLimit %" PRIu64 " as MemoryMax", max);
864                         }
865
866                         cgroup_apply_unified_memory_limit(u, "memory.low", c->memory_low);
867                         cgroup_apply_unified_memory_limit(u, "memory.high", c->memory_high);
868                         cgroup_apply_unified_memory_limit(u, "memory.max", max);
869                         cgroup_apply_unified_memory_limit(u, "memory.swap.max", swap_max);
870                 } else {
871                         char buf[DECIMAL_STR_MAX(uint64_t) + 1];
872                         uint64_t val;
873
874                         if (cgroup_context_has_unified_memory_config(c)) {
875                                 val = c->memory_max;
876                                 log_cgroup_compat(u, "Applying MemoryMax %" PRIi64 " as MemoryLimit", val);
877                         } else
878                                 val = c->memory_limit;
879
880                         if (val == CGROUP_LIMIT_MAX)
881                                 strncpy(buf, "-1\n", sizeof(buf));
882                         else
883                                 xsprintf(buf, "%" PRIu64 "\n", val);
884
885                         r = cg_set_attribute("memory", path, "memory.limit_in_bytes", buf);
886                         if (r < 0)
887                                 log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
888                                               "Failed to set memory.limit_in_bytes: %m");
889                 }
890         }
891
892         if ((mask & CGROUP_MASK_DEVICES) && !is_root) {
893                 CGroupDeviceAllow *a;
894
895                 /* Changing the devices list of a populated cgroup
896                  * might result in EINVAL, hence ignore EINVAL
897                  * here. */
898
899                 if (c->device_allow || c->device_policy != CGROUP_AUTO)
900                         r = cg_set_attribute("devices", path, "devices.deny", "a");
901                 else
902                         r = cg_set_attribute("devices", path, "devices.allow", "a");
903                 if (r < 0)
904                         log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EINVAL, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
905                                       "Failed to reset devices.list: %m");
906
907                 if (c->device_policy == CGROUP_CLOSED ||
908                     (c->device_policy == CGROUP_AUTO && c->device_allow)) {
909                         static const char auto_devices[] =
910                                 "/dev/null\0" "rwm\0"
911                                 "/dev/zero\0" "rwm\0"
912                                 "/dev/full\0" "rwm\0"
913                                 "/dev/random\0" "rwm\0"
914                                 "/dev/urandom\0" "rwm\0"
915                                 "/dev/tty\0" "rwm\0"
916                                 "/dev/pts/ptmx\0" "rw\0" /* /dev/pts/ptmx may not be duplicated, but accessed */
917                                 /* Allow /run/elogind/inaccessible/{chr,blk} devices for mapping InaccessiblePaths */
918                                 /* Allow /run/systemd/inaccessible/{chr,blk} devices for mapping InaccessiblePaths */
919                                 "/run/systemd/inaccessible/chr\0" "rwm\0"
920                                 "/run/systemd/inaccessible/blk\0" "rwm\0";
921
922                         const char *x, *y;
923
924                         NULSTR_FOREACH_PAIR(x, y, auto_devices)
925                                 whitelist_device(path, x, y);
926
927                         whitelist_major(path, "pts", 'c', "rw");
928                         whitelist_major(path, "kdbus", 'c', "rw");
929                         whitelist_major(path, "kdbus/*", 'c', "rw");
930                 }
931
932                 LIST_FOREACH(device_allow, a, c->device_allow) {
933                         char acc[4], *val;
934                         unsigned k = 0;
935
936                         if (a->r)
937                                 acc[k++] = 'r';
938                         if (a->w)
939                                 acc[k++] = 'w';
940                         if (a->m)
941                                 acc[k++] = 'm';
942
943                         if (k == 0)
944                                 continue;
945
946                         acc[k++] = 0;
947
948                         if (startswith(a->path, "/dev/"))
949                                 whitelist_device(path, a->path, acc);
950                         else if ((val = startswith(a->path, "block-")))
951                                 whitelist_major(path, val, 'b', acc);
952                         else if ((val = startswith(a->path, "char-")))
953                                 whitelist_major(path, val, 'c', acc);
954                         else
955                                 log_unit_debug(u, "Ignoring device %s while writing cgroup attribute.", a->path);
956                 }
957         }
958
959         if ((mask & CGROUP_MASK_PIDS) && !is_root) {
960
961                 if (c->tasks_max != CGROUP_LIMIT_MAX) {
962                         char buf[DECIMAL_STR_MAX(uint64_t) + 2];
963
964                         sprintf(buf, "%" PRIu64 "\n", c->tasks_max);
965                         r = cg_set_attribute("pids", path, "pids.max", buf);
966                 } else
967                         r = cg_set_attribute("pids", path, "pids.max", "max");
968
969                 if (r < 0)
970                         log_unit_full(u, IN_SET(r, -ENOENT, -EROFS, -EACCES) ? LOG_DEBUG : LOG_WARNING, r,
971                                       "Failed to set pids.max: %m");
972         }
973 }
974
975 CGroupMask cgroup_context_get_mask(CGroupContext *c) {
976         CGroupMask mask = 0;
977
978         /* Figure out which controllers we need */
979
980         if (c->cpu_accounting ||
981             cgroup_context_has_cpu_weight(c) ||
982             cgroup_context_has_cpu_shares(c) ||
983             c->cpu_quota_per_sec_usec != USEC_INFINITY)
984                 mask |= CGROUP_MASK_CPUACCT | CGROUP_MASK_CPU;
985
986         if (cgroup_context_has_io_config(c) || cgroup_context_has_blockio_config(c))
987                 mask |= CGROUP_MASK_IO | CGROUP_MASK_BLKIO;
988
989         if (c->memory_accounting ||
990             c->memory_limit != CGROUP_LIMIT_MAX ||
991             cgroup_context_has_unified_memory_config(c))
992                 mask |= CGROUP_MASK_MEMORY;
993
994         if (c->device_allow ||
995             c->device_policy != CGROUP_AUTO)
996                 mask |= CGROUP_MASK_DEVICES;
997
998         if (c->tasks_accounting ||
999             c->tasks_max != (uint64_t) -1)
1000                 mask |= CGROUP_MASK_PIDS;
1001
1002         return mask;
1003 }
1004
1005 CGroupMask unit_get_own_mask(Unit *u) {
1006         CGroupContext *c;
1007
1008         /* Returns the mask of controllers the unit needs for itself */
1009
1010         c = unit_get_cgroup_context(u);
1011         if (!c)
1012                 return 0;
1013
1014         /* If delegation is turned on, then turn on all cgroups,
1015          * unless we are on the legacy hierarchy and the process we
1016          * fork into it is known to drop privileges, and hence
1017          * shouldn't get access to the controllers.
1018          *
1019          * Note that on the unified hierarchy it is safe to delegate
1020          * controllers to unprivileged services. */
1021
1022         if (c->delegate) {
1023                 ExecContext *e;
1024
1025                 e = unit_get_exec_context(u);
1026                 if (!e ||
1027                     exec_context_maintains_privileges(e) ||
1028                     cg_all_unified() > 0)
1029                         return _CGROUP_MASK_ALL;
1030         }
1031
1032         return cgroup_context_get_mask(c);
1033 }
1034
1035 CGroupMask unit_get_members_mask(Unit *u) {
1036         assert(u);
1037
1038         /* Returns the mask of controllers all of the unit's children
1039          * require, merged */
1040
1041         if (u->cgroup_members_mask_valid)
1042                 return u->cgroup_members_mask;
1043
1044         u->cgroup_members_mask = 0;
1045
1046         if (u->type == UNIT_SLICE) {
1047                 Unit *member;
1048                 Iterator i;
1049
1050                 SET_FOREACH(member, u->dependencies[UNIT_BEFORE], i) {
1051
1052                         if (member == u)
1053                                 continue;
1054
1055                         if (UNIT_DEREF(member->slice) != u)
1056                                 continue;
1057
1058                         u->cgroup_members_mask |=
1059                                 unit_get_own_mask(member) |
1060                                 unit_get_members_mask(member);
1061                 }
1062         }
1063
1064         u->cgroup_members_mask_valid = true;
1065         return u->cgroup_members_mask;
1066 }
1067
1068 CGroupMask unit_get_siblings_mask(Unit *u) {
1069         assert(u);
1070
1071         /* Returns the mask of controllers all of the unit's siblings
1072          * require, i.e. the members mask of the unit's parent slice
1073          * if there is one. */
1074
1075         if (UNIT_ISSET(u->slice))
1076                 return unit_get_members_mask(UNIT_DEREF(u->slice));
1077
1078         return unit_get_own_mask(u) | unit_get_members_mask(u);
1079 }
1080
1081 CGroupMask unit_get_subtree_mask(Unit *u) {
1082
1083         /* Returns the mask of this subtree, meaning of the group
1084          * itself and its children. */
1085
1086         return unit_get_own_mask(u) | unit_get_members_mask(u);
1087 }
1088
1089 CGroupMask unit_get_target_mask(Unit *u) {
1090         CGroupMask mask;
1091
1092         /* This returns the cgroup mask of all controllers to enable
1093          * for a specific cgroup, i.e. everything it needs itself,
1094          * plus all that its children need, plus all that its siblings
1095          * need. This is primarily useful on the legacy cgroup
1096          * hierarchy, where we need to duplicate each cgroup in each
1097          * hierarchy that shall be enabled for it. */
1098
1099         mask = unit_get_own_mask(u) | unit_get_members_mask(u) | unit_get_siblings_mask(u);
1100         mask &= u->manager->cgroup_supported;
1101
1102         return mask;
1103 }
1104
1105 CGroupMask unit_get_enable_mask(Unit *u) {
1106         CGroupMask mask;
1107
1108         /* This returns the cgroup mask of all controllers to enable
1109          * for the children of a specific cgroup. This is primarily
1110          * useful for the unified cgroup hierarchy, where each cgroup
1111          * controls which controllers are enabled for its children. */
1112
1113         mask = unit_get_members_mask(u);
1114         mask &= u->manager->cgroup_supported;
1115
1116         return mask;
1117 }
1118
1119 /* Recurse from a unit up through its containing slices, propagating
1120  * mask bits upward. A unit is also member of itself. */
1121 void unit_update_cgroup_members_masks(Unit *u) {
1122         CGroupMask m;
1123         bool more;
1124
1125         assert(u);
1126
1127         /* Calculate subtree mask */
1128         m = unit_get_subtree_mask(u);
1129
1130         /* See if anything changed from the previous invocation. If
1131          * not, we're done. */
1132         if (u->cgroup_subtree_mask_valid && m == u->cgroup_subtree_mask)
1133                 return;
1134
1135         more =
1136                 u->cgroup_subtree_mask_valid &&
1137                 ((m & ~u->cgroup_subtree_mask) != 0) &&
1138                 ((~m & u->cgroup_subtree_mask) == 0);
1139
1140         u->cgroup_subtree_mask = m;
1141         u->cgroup_subtree_mask_valid = true;
1142
1143         if (UNIT_ISSET(u->slice)) {
1144                 Unit *s = UNIT_DEREF(u->slice);
1145
1146                 if (more)
1147                         /* There's more set now than before. We
1148                          * propagate the new mask to the parent's mask
1149                          * (not caring if it actually was valid or
1150                          * not). */
1151
1152                         s->cgroup_members_mask |= m;
1153
1154                 else
1155                         /* There's less set now than before (or we
1156                          * don't know), we need to recalculate
1157                          * everything, so let's invalidate the
1158                          * parent's members mask */
1159
1160                         s->cgroup_members_mask_valid = false;
1161
1162                 /* And now make sure that this change also hits our
1163                  * grandparents */
1164                 unit_update_cgroup_members_masks(s);
1165         }
1166 }
1167
1168 static const char *migrate_callback(CGroupMask mask, void *userdata) {
1169         Unit *u = userdata;
1170
1171         assert(mask != 0);
1172         assert(u);
1173
1174         while (u) {
1175                 if (u->cgroup_path &&
1176                     u->cgroup_realized &&
1177                     (u->cgroup_realized_mask & mask) == mask)
1178                         return u->cgroup_path;
1179
1180                 u = UNIT_DEREF(u->slice);
1181         }
1182
1183         return NULL;
1184 }
1185
1186 char *unit_default_cgroup_path(Unit *u) {
1187         _cleanup_free_ char *escaped = NULL, *slice = NULL;
1188         int r;
1189
1190         assert(u);
1191
1192         if (unit_has_name(u, SPECIAL_ROOT_SLICE))
1193                 return strdup(u->manager->cgroup_root);
1194
1195         if (UNIT_ISSET(u->slice) && !unit_has_name(UNIT_DEREF(u->slice), SPECIAL_ROOT_SLICE)) {
1196                 r = cg_slice_to_path(UNIT_DEREF(u->slice)->id, &slice);
1197                 if (r < 0)
1198                         return NULL;
1199         }
1200
1201         escaped = cg_escape(u->id);
1202         if (!escaped)
1203                 return NULL;
1204
1205         if (slice)
1206                 return strjoin(u->manager->cgroup_root, "/", slice, "/", escaped, NULL);
1207         else
1208                 return strjoin(u->manager->cgroup_root, "/", escaped, NULL);
1209 }
1210
1211 int unit_set_cgroup_path(Unit *u, const char *path) {
1212         _cleanup_free_ char *p = NULL;
1213         int r;
1214
1215         assert(u);
1216
1217         if (path) {
1218                 p = strdup(path);
1219                 if (!p)
1220                         return -ENOMEM;
1221         } else
1222                 p = NULL;
1223
1224         if (streq_ptr(u->cgroup_path, p))
1225                 return 0;
1226
1227         if (p) {
1228                 r = hashmap_put(u->manager->cgroup_unit, p, u);
1229                 if (r < 0)
1230                         return r;
1231         }
1232
1233         unit_release_cgroup(u);
1234
1235         u->cgroup_path = p;
1236         p = NULL;
1237
1238         return 1;
1239 }
1240
1241 int unit_watch_cgroup(Unit *u) {
1242         _cleanup_free_ char *events = NULL;
1243         int r;
1244
1245         assert(u);
1246
1247         if (!u->cgroup_path)
1248                 return 0;
1249
1250         if (u->cgroup_inotify_wd >= 0)
1251                 return 0;
1252
1253         /* Only applies to the unified hierarchy */
1254         r = cg_unified(SYSTEMD_CGROUP_CONTROLLER);
1255         if (r < 0)
1256                 return log_unit_error_errno(u, r, "Failed detect whether the unified hierarchy is used: %m");
1257         if (r == 0)
1258                 return 0;
1259
1260         /* Don't watch the root slice, it's pointless. */
1261         if (unit_has_name(u, SPECIAL_ROOT_SLICE))
1262                 return 0;
1263
1264         r = hashmap_ensure_allocated(&u->manager->cgroup_inotify_wd_unit, &trivial_hash_ops);
1265         if (r < 0)
1266                 return log_oom();
1267
1268         r = cg_get_path(SYSTEMD_CGROUP_CONTROLLER, u->cgroup_path, "cgroup.events", &events);
1269         if (r < 0)
1270                 return log_oom();
1271
1272         u->cgroup_inotify_wd = inotify_add_watch(u->manager->cgroup_inotify_fd, events, IN_MODIFY);
1273         if (u->cgroup_inotify_wd < 0) {
1274
1275                 if (errno == ENOENT) /* If the directory is already
1276                                       * gone we don't need to track
1277                                       * it, so this is not an error */
1278                         return 0;
1279
1280                 return log_unit_error_errno(u, errno, "Failed to add inotify watch descriptor for control group %s: %m", u->cgroup_path);
1281         }
1282
1283         r = hashmap_put(u->manager->cgroup_inotify_wd_unit, INT_TO_PTR(u->cgroup_inotify_wd), u);
1284         if (r < 0)
1285                 return log_unit_error_errno(u, r, "Failed to add inotify watch descriptor to hash map: %m");
1286
1287         return 0;
1288 }
1289
1290 static int unit_create_cgroup(
1291                 Unit *u,
1292                 CGroupMask target_mask,
1293                 CGroupMask enable_mask) {
1294
1295         CGroupContext *c;
1296         int r;
1297
1298         assert(u);
1299
1300         c = unit_get_cgroup_context(u);
1301         if (!c)
1302                 return 0;
1303
1304         if (!u->cgroup_path) {
1305                 _cleanup_free_ char *path = NULL;
1306
1307                 path = unit_default_cgroup_path(u);
1308                 if (!path)
1309                         return log_oom();
1310
1311                 r = unit_set_cgroup_path(u, path);
1312                 if (r == -EEXIST)
1313                         return log_unit_error_errno(u, r, "Control group %s exists already.", path);
1314                 if (r < 0)
1315                         return log_unit_error_errno(u, r, "Failed to set unit's control group path to %s: %m", path);
1316         }
1317
1318         /* First, create our own group */
1319         r = cg_create_everywhere(u->manager->cgroup_supported, target_mask, u->cgroup_path);
1320         if (r < 0)
1321                 return log_unit_error_errno(u, r, "Failed to create cgroup %s: %m", u->cgroup_path);
1322
1323         /* Start watching it */
1324         (void) unit_watch_cgroup(u);
1325
1326         /* Enable all controllers we need */
1327         r = cg_enable_everywhere(u->manager->cgroup_supported, enable_mask, u->cgroup_path);
1328         if (r < 0)
1329                 log_unit_warning_errno(u, r, "Failed to enable controllers on cgroup %s, ignoring: %m", u->cgroup_path);
1330
1331         /* Keep track that this is now realized */
1332         u->cgroup_realized = true;
1333         u->cgroup_realized_mask = target_mask;
1334         u->cgroup_enabled_mask = enable_mask;
1335
1336         if (u->type != UNIT_SLICE && !c->delegate) {
1337
1338                 /* Then, possibly move things over, but not if
1339                  * subgroups may contain processes, which is the case
1340                  * for slice and delegation units. */
1341                 r = cg_migrate_everywhere(u->manager->cgroup_supported, u->cgroup_path, u->cgroup_path, migrate_callback, u);
1342                 if (r < 0)
1343                         log_unit_warning_errno(u, r, "Failed to migrate cgroup from to %s, ignoring: %m", u->cgroup_path);
1344         }
1345
1346         return 0;
1347 }
1348
1349 int unit_attach_pids_to_cgroup(Unit *u) {
1350         int r;
1351         assert(u);
1352
1353         r = unit_realize_cgroup(u);
1354         if (r < 0)
1355                 return r;
1356
1357         r = cg_attach_many_everywhere(u->manager->cgroup_supported, u->cgroup_path, u->pids, migrate_callback, u);
1358         if (r < 0)
1359                 return r;
1360
1361         return 0;
1362 }
1363
1364 static void cgroup_xattr_apply(Unit *u) {
1365         char ids[SD_ID128_STRING_MAX];
1366         int r;
1367
1368         assert(u);
1369
1370         if (!MANAGER_IS_SYSTEM(u->manager))
1371                 return;
1372
1373         if (sd_id128_is_null(u->invocation_id))
1374                 return;
1375
1376         r = cg_set_xattr(SYSTEMD_CGROUP_CONTROLLER, u->cgroup_path,
1377                          "trusted.invocation_id",
1378                          sd_id128_to_string(u->invocation_id, ids), 32,
1379                          0);
1380         if (r < 0)
1381                 log_unit_warning_errno(u, r, "Failed to set invocation ID on control group %s, ignoring: %m", u->cgroup_path);
1382 }
1383
1384 static bool unit_has_mask_realized(Unit *u, CGroupMask target_mask, CGroupMask enable_mask) {
1385         assert(u);
1386
1387         return u->cgroup_realized && u->cgroup_realized_mask == target_mask && u->cgroup_enabled_mask == enable_mask;
1388 }
1389
1390 /* Check if necessary controllers and attributes for a unit are in place.
1391  *
1392  * If so, do nothing.
1393  * If not, create paths, move processes over, and set attributes.
1394  *
1395  * Returns 0 on success and < 0 on failure. */
1396 static int unit_realize_cgroup_now(Unit *u, ManagerState state) {
1397         CGroupMask target_mask, enable_mask;
1398         int r;
1399
1400         assert(u);
1401
1402         if (u->in_cgroup_queue) {
1403                 LIST_REMOVE(cgroup_queue, u->manager->cgroup_queue, u);
1404                 u->in_cgroup_queue = false;
1405         }
1406
1407         target_mask = unit_get_target_mask(u);
1408         enable_mask = unit_get_enable_mask(u);
1409
1410         if (unit_has_mask_realized(u, target_mask, enable_mask))
1411                 return 0;
1412
1413         /* First, realize parents */
1414         if (UNIT_ISSET(u->slice)) {
1415                 r = unit_realize_cgroup_now(UNIT_DEREF(u->slice), state);
1416                 if (r < 0)
1417                         return r;
1418         }
1419
1420         /* And then do the real work */
1421         r = unit_create_cgroup(u, target_mask, enable_mask);
1422         if (r < 0)
1423                 return r;
1424
1425         /* Finally, apply the necessary attributes. */
1426         cgroup_context_apply(u, target_mask, state);
1427         cgroup_xattr_apply(u);
1428
1429         return 0;
1430 }
1431
1432 static void unit_add_to_cgroup_queue(Unit *u) {
1433
1434         if (u->in_cgroup_queue)
1435                 return;
1436
1437         LIST_PREPEND(cgroup_queue, u->manager->cgroup_queue, u);
1438         u->in_cgroup_queue = true;
1439 }
1440
1441 unsigned manager_dispatch_cgroup_queue(Manager *m) {
1442         ManagerState state;
1443         unsigned n = 0;
1444         Unit *i;
1445         int r;
1446
1447         state = manager_state(m);
1448
1449         while ((i = m->cgroup_queue)) {
1450                 assert(i->in_cgroup_queue);
1451
1452                 r = unit_realize_cgroup_now(i, state);
1453                 if (r < 0)
1454                         log_warning_errno(r, "Failed to realize cgroups for queued unit %s, ignoring: %m", i->id);
1455
1456                 n++;
1457         }
1458
1459         return n;
1460 }
1461
1462 static void unit_queue_siblings(Unit *u) {
1463         Unit *slice;
1464
1465         /* This adds the siblings of the specified unit and the
1466          * siblings of all parent units to the cgroup queue. (But
1467          * neither the specified unit itself nor the parents.) */
1468
1469         while ((slice = UNIT_DEREF(u->slice))) {
1470                 Iterator i;
1471                 Unit *m;
1472
1473                 SET_FOREACH(m, slice->dependencies[UNIT_BEFORE], i) {
1474                         if (m == u)
1475                                 continue;
1476
1477                         /* Skip units that have a dependency on the slice
1478                          * but aren't actually in it. */
1479                         if (UNIT_DEREF(m->slice) != slice)
1480                                 continue;
1481
1482                         /* No point in doing cgroup application for units
1483                          * without active processes. */
1484                         if (UNIT_IS_INACTIVE_OR_FAILED(unit_active_state(m)))
1485                                 continue;
1486
1487                         /* If the unit doesn't need any new controllers
1488                          * and has current ones realized, it doesn't need
1489                          * any changes. */
1490                         if (unit_has_mask_realized(m, unit_get_target_mask(m), unit_get_enable_mask(m)))
1491                                 continue;
1492
1493                         unit_add_to_cgroup_queue(m);
1494                 }
1495
1496                 u = slice;
1497         }
1498 }
1499
1500 int unit_realize_cgroup(Unit *u) {
1501         assert(u);
1502
1503         if (!UNIT_HAS_CGROUP_CONTEXT(u))
1504                 return 0;
1505
1506         /* So, here's the deal: when realizing the cgroups for this
1507          * unit, we need to first create all parents, but there's more
1508          * actually: for the weight-based controllers we also need to
1509          * make sure that all our siblings (i.e. units that are in the
1510          * same slice as we are) have cgroups, too. Otherwise, things
1511          * would become very uneven as each of their processes would
1512          * get as much resources as all our group together. This call
1513          * will synchronously create the parent cgroups, but will
1514          * defer work on the siblings to the next event loop
1515          * iteration. */
1516
1517         /* Add all sibling slices to the cgroup queue. */
1518         unit_queue_siblings(u);
1519
1520         /* And realize this one now (and apply the values) */
1521         return unit_realize_cgroup_now(u, manager_state(u->manager));
1522 }
1523
1524 void unit_release_cgroup(Unit *u) {
1525         assert(u);
1526
1527         /* Forgets all cgroup details for this cgroup */
1528
1529         if (u->cgroup_path) {
1530                 (void) hashmap_remove(u->manager->cgroup_unit, u->cgroup_path);
1531                 u->cgroup_path = mfree(u->cgroup_path);
1532         }
1533
1534         if (u->cgroup_inotify_wd >= 0) {
1535                 if (inotify_rm_watch(u->manager->cgroup_inotify_fd, u->cgroup_inotify_wd) < 0)
1536                         log_unit_debug_errno(u, errno, "Failed to remove cgroup inotify watch %i for %s, ignoring", u->cgroup_inotify_wd, u->id);
1537
1538                 (void) hashmap_remove(u->manager->cgroup_inotify_wd_unit, INT_TO_PTR(u->cgroup_inotify_wd));
1539                 u->cgroup_inotify_wd = -1;
1540         }
1541 }
1542
1543 void unit_prune_cgroup(Unit *u) {
1544         int r;
1545         bool is_root_slice;
1546
1547         assert(u);
1548
1549         /* Removes the cgroup, if empty and possible, and stops watching it. */
1550
1551         if (!u->cgroup_path)
1552                 return;
1553
1554         (void) unit_get_cpu_usage(u, NULL); /* Cache the last CPU usage value before we destroy the cgroup */
1555
1556         is_root_slice = unit_has_name(u, SPECIAL_ROOT_SLICE);
1557
1558         r = cg_trim_everywhere(u->manager->cgroup_supported, u->cgroup_path, !is_root_slice);
1559         if (r < 0) {
1560                 log_unit_debug_errno(u, r, "Failed to destroy cgroup %s, ignoring: %m", u->cgroup_path);
1561                 return;
1562         }
1563
1564         if (is_root_slice)
1565                 return;
1566
1567         unit_release_cgroup(u);
1568
1569         u->cgroup_realized = false;
1570         u->cgroup_realized_mask = 0;
1571         u->cgroup_enabled_mask = 0;
1572 }
1573
1574 int unit_search_main_pid(Unit *u, pid_t *ret) {
1575         _cleanup_fclose_ FILE *f = NULL;
1576         pid_t pid = 0, npid, mypid;
1577         int r;
1578
1579         assert(u);
1580         assert(ret);
1581
1582         if (!u->cgroup_path)
1583                 return -ENXIO;
1584
1585         r = cg_enumerate_processes(SYSTEMD_CGROUP_CONTROLLER, u->cgroup_path, &f);
1586         if (r < 0)
1587                 return r;
1588
1589         mypid = getpid();
1590         while (cg_read_pid(f, &npid) > 0)  {
1591                 pid_t ppid;
1592
1593                 if (npid == pid)
1594                         continue;
1595
1596                 /* Ignore processes that aren't our kids */
1597                 if (get_process_ppid(npid, &ppid) >= 0 && ppid != mypid)
1598                         continue;
1599
1600                 if (pid != 0)
1601                         /* Dang, there's more than one daemonized PID
1602                         in this group, so we don't know what process
1603                         is the main process. */
1604
1605                         return -ENODATA;
1606
1607                 pid = npid;
1608         }
1609
1610         *ret = pid;
1611         return 0;
1612 }
1613
1614 static int unit_watch_pids_in_path(Unit *u, const char *path) {
1615         _cleanup_closedir_ DIR *d = NULL;
1616         _cleanup_fclose_ FILE *f = NULL;
1617         int ret = 0, r;
1618
1619         assert(u);
1620         assert(path);
1621
1622         r = cg_enumerate_processes(SYSTEMD_CGROUP_CONTROLLER, path, &f);
1623         if (r < 0)
1624                 ret = r;
1625         else {
1626                 pid_t pid;
1627
1628                 while ((r = cg_read_pid(f, &pid)) > 0) {
1629                         r = unit_watch_pid(u, pid);
1630                         if (r < 0 && ret >= 0)
1631                                 ret = r;
1632                 }
1633
1634                 if (r < 0 && ret >= 0)
1635                         ret = r;
1636         }
1637
1638         r = cg_enumerate_subgroups(SYSTEMD_CGROUP_CONTROLLER, path, &d);
1639         if (r < 0) {
1640                 if (ret >= 0)
1641                         ret = r;
1642         } else {
1643                 char *fn;
1644
1645                 while ((r = cg_read_subgroup(d, &fn)) > 0) {
1646                         _cleanup_free_ char *p = NULL;
1647
1648                         p = strjoin(path, "/", fn, NULL);
1649                         free(fn);
1650
1651                         if (!p)
1652                                 return -ENOMEM;
1653
1654                         r = unit_watch_pids_in_path(u, p);
1655                         if (r < 0 && ret >= 0)
1656                                 ret = r;
1657                 }
1658
1659                 if (r < 0 && ret >= 0)
1660                         ret = r;
1661         }
1662
1663         return ret;
1664 }
1665
1666 int unit_watch_all_pids(Unit *u) {
1667         assert(u);
1668
1669         /* Adds all PIDs from our cgroup to the set of PIDs we
1670          * watch. This is a fallback logic for cases where we do not
1671          * get reliable cgroup empty notifications: we try to use
1672          * SIGCHLD as replacement. */
1673
1674         if (!u->cgroup_path)
1675                 return -ENOENT;
1676
1677         if (cg_unified(SYSTEMD_CGROUP_CONTROLLER) > 0) /* On unified we can use proper notifications */
1678                 return 0;
1679
1680         return unit_watch_pids_in_path(u, u->cgroup_path);
1681 }
1682
1683 int unit_notify_cgroup_empty(Unit *u) {
1684         int r;
1685
1686         assert(u);
1687
1688         if (!u->cgroup_path)
1689                 return 0;
1690
1691         r = cg_is_empty_recursive(SYSTEMD_CGROUP_CONTROLLER, u->cgroup_path);
1692         if (r <= 0)
1693                 return r;
1694
1695         unit_add_to_gc_queue(u);
1696
1697         if (UNIT_VTABLE(u)->notify_cgroup_empty)
1698                 UNIT_VTABLE(u)->notify_cgroup_empty(u);
1699
1700         return 0;
1701 }
1702
1703 static int on_cgroup_inotify_event(sd_event_source *s, int fd, uint32_t revents, void *userdata) {
1704         Manager *m = userdata;
1705
1706         assert(s);
1707         assert(fd >= 0);
1708         assert(m);
1709
1710         for (;;) {
1711                 union inotify_event_buffer buffer;
1712                 struct inotify_event *e;
1713                 ssize_t l;
1714
1715                 l = read(fd, &buffer, sizeof(buffer));
1716                 if (l < 0) {
1717                         if (errno == EINTR || errno == EAGAIN)
1718                                 return 0;
1719
1720                         return log_error_errno(errno, "Failed to read control group inotify events: %m");
1721                 }
1722
1723                 FOREACH_INOTIFY_EVENT(e, buffer, l) {
1724                         Unit *u;
1725
1726                         if (e->wd < 0)
1727                                 /* Queue overflow has no watch descriptor */
1728                                 continue;
1729
1730                         if (e->mask & IN_IGNORED)
1731                                 /* The watch was just removed */
1732                                 continue;
1733
1734                         u = hashmap_get(m->cgroup_inotify_wd_unit, INT_TO_PTR(e->wd));
1735                         if (!u) /* Not that inotify might deliver
1736                                  * events for a watch even after it
1737                                  * was removed, because it was queued
1738                                  * before the removal. Let's ignore
1739                                  * this here safely. */
1740                                 continue;
1741
1742                         (void) unit_notify_cgroup_empty(u);
1743                 }
1744         }
1745 }
1746 #endif // 0
1747
1748 int manager_setup_cgroup(Manager *m) {
1749         _cleanup_free_ char *path = NULL;
1750         CGroupController c;
1751         int r, all_unified, systemd_unified;
1752         char *e;
1753
1754         assert(m);
1755
1756         /* 1. Determine hierarchy */
1757         m->cgroup_root = mfree(m->cgroup_root);
1758         r = cg_pid_get_path(SYSTEMD_CGROUP_CONTROLLER, 0, &m->cgroup_root);
1759         if (r < 0)
1760                 return log_error_errno(r, "Cannot determine cgroup we are running in: %m");
1761
1762 #if 0 /// elogind does not support systemd scopes and slices
1763         /* Chop off the init scope, if we are already located in it */
1764         e = endswith(m->cgroup_root, "/" SPECIAL_INIT_SCOPE);
1765
1766         /* LEGACY: Also chop off the system slice if we are in
1767          * it. This is to support live upgrades from older systemd
1768          * versions where PID 1 was moved there. Also see
1769          * cg_get_root_path(). */
1770         if (!e && MANAGER_IS_SYSTEM(m)) {
1771                 e = endswith(m->cgroup_root, "/" SPECIAL_SYSTEM_SLICE);
1772                 if (!e)
1773                         e = endswith(m->cgroup_root, "/system"); /* even more legacy */
1774         }
1775         if (e)
1776                 *e = 0;
1777 #endif // 0
1778
1779         /* And make sure to store away the root value without trailing
1780          * slash, even for the root dir, so that we can easily prepend
1781          * it everywhere. */
1782         while ((e = endswith(m->cgroup_root, "/")))
1783                 *e = 0;
1784         log_debug_elogind("Cgroup Controller \"%s\" -> root \"%s\"",
1785                           SYSTEMD_CGROUP_CONTROLLER, m->cgroup_root);
1786
1787         /* 2. Show data */
1788         r = cg_get_path(SYSTEMD_CGROUP_CONTROLLER, m->cgroup_root, NULL, &path);
1789         if (r < 0)
1790                 return log_error_errno(r, "Cannot find cgroup mount point: %m");
1791
1792         all_unified = cg_all_unified();
1793         systemd_unified = cg_unified(SYSTEMD_CGROUP_CONTROLLER);
1794
1795         if (all_unified < 0 || systemd_unified < 0)
1796                 return log_error_errno(all_unified < 0 ? all_unified : systemd_unified,
1797                                        "Couldn't determine if we are running in the unified hierarchy: %m");
1798
1799         if (all_unified > 0)
1800                 log_debug("Unified cgroup hierarchy is located at %s.", path);
1801         else if (systemd_unified > 0)
1802                 log_debug("Unified cgroup hierarchy is located at %s. Controllers are on legacy hierarchies.", path);
1803         else
1804                 log_debug("Using cgroup controller " SYSTEMD_CGROUP_CONTROLLER ". File system hierarchy is at %s.", path);
1805
1806         if (!m->test_run) {
1807                 const char *scope_path;
1808
1809                 /* 3. Install agent */
1810                 if (systemd_unified) {
1811
1812                         /* In the unified hierarchy we can get
1813                          * cgroup empty notifications via inotify. */
1814
1815 #if 0 /// elogind does not support the unified hierarchy, yet.
1816                         m->cgroup_inotify_event_source = sd_event_source_unref(m->cgroup_inotify_event_source);
1817                         safe_close(m->cgroup_inotify_fd);
1818
1819                         m->cgroup_inotify_fd = inotify_init1(IN_NONBLOCK|IN_CLOEXEC);
1820                         if (m->cgroup_inotify_fd < 0)
1821                                 return log_error_errno(errno, "Failed to create control group inotify object: %m");
1822
1823                         r = sd_event_add_io(m->event, &m->cgroup_inotify_event_source, m->cgroup_inotify_fd, EPOLLIN, on_cgroup_inotify_event, m);
1824                         if (r < 0)
1825                                 return log_error_errno(r, "Failed to watch control group inotify object: %m");
1826
1827                         /* Process cgroup empty notifications early, but after service notifications and SIGCHLD. Also
1828                          * see handling of cgroup agent notifications, for the classic cgroup hierarchy support. */
1829                         r = sd_event_source_set_priority(m->cgroup_inotify_event_source, SD_EVENT_PRIORITY_NORMAL-5);
1830                         if (r < 0)
1831                                 return log_error_errno(r, "Failed to set priority of inotify event source: %m");
1832
1833                         (void) sd_event_source_set_description(m->cgroup_inotify_event_source, "cgroup-inotify");
1834
1835 #else
1836                         return log_error_errno(EOPNOTSUPP, "Unified cgroup hierarchy not supported: %m");
1837 #endif // 0
1838                 } else if (MANAGER_IS_SYSTEM(m)) {
1839
1840                         /* On the legacy hierarchy we only get
1841                          * notifications via cgroup agents. (Which
1842                          * isn't really reliable, since it does not
1843                          * generate events when control groups with
1844                          * children run empty. */
1845
1846                         r = cg_install_release_agent(SYSTEMD_CGROUP_CONTROLLER, SYSTEMD_CGROUP_AGENT_PATH);
1847                         if (r < 0)
1848                                 log_warning_errno(r, "Failed to install release agent, ignoring: %m");
1849                         else if (r > 0)
1850                                 log_debug("Installed release agent.");
1851                         else if (r == 0)
1852                                 log_debug("Release agent already installed.");
1853                 }
1854
1855 #if 0 /// elogind is not meant to run in systemd init scope
1856                 /* 4. Make sure we are in the special "init.scope" unit in the root slice. */
1857                 scope_path = strjoina(m->cgroup_root, "/" SPECIAL_INIT_SCOPE);
1858                 r = cg_create_and_attach(SYSTEMD_CGROUP_CONTROLLER, scope_path, 0);
1859 #else
1860                 if (streq(SYSTEMD_CGROUP_CONTROLLER, "name=elogind"))
1861                         // we are our own cgroup controller
1862                         scope_path = strjoina("");
1863                 else if (streq(m->cgroup_root, "/elogind"))
1864                         // root already is our cgroup
1865                         scope_path = strjoina(m->cgroup_root);
1866                 else
1867                         // we have to create our own group
1868                         scope_path = strjoina(m->cgroup_root, "/elogind");
1869                 r = cg_create_and_attach(SYSTEMD_CGROUP_CONTROLLER, scope_path, 0);
1870 #endif // 0
1871                 if (r < 0)
1872                         return log_error_errno(r, "Failed to create %s control group: %m", scope_path);
1873                 log_debug_elogind("Created control group \"%s\"", scope_path);
1874
1875                 /* also, move all other userspace processes remaining
1876                  * in the root cgroup into that scope. */
1877                 r = cg_migrate(SYSTEMD_CGROUP_CONTROLLER, m->cgroup_root, SYSTEMD_CGROUP_CONTROLLER, scope_path, 0);
1878                 if (r < 0)
1879                         log_warning_errno(r, "Couldn't move remaining userspace processes, ignoring: %m");
1880
1881                 /* 5. And pin it, so that it cannot be unmounted */
1882                 safe_close(m->pin_cgroupfs_fd);
1883                 m->pin_cgroupfs_fd = open(path, O_RDONLY|O_CLOEXEC|O_DIRECTORY|O_NOCTTY|O_NONBLOCK);
1884                 if (m->pin_cgroupfs_fd < 0)
1885                         return log_error_errno(errno, "Failed to open pin file: %m");
1886
1887                 /* 6.  Always enable hierarchical support if it exists... */
1888                 if (!all_unified)
1889                         (void) cg_set_attribute("memory", "/", "memory.use_hierarchy", "1");
1890         }
1891
1892         /* 7. Figure out which controllers are supported */
1893         r = cg_mask_supported(&m->cgroup_supported);
1894         if (r < 0)
1895                 return log_error_errno(r, "Failed to determine supported controllers: %m");
1896
1897         for (c = 0; c < _CGROUP_CONTROLLER_MAX; c++)
1898                 log_debug("Controller '%s' supported: %s", cgroup_controller_to_string(c), yes_no(m->cgroup_supported & CGROUP_CONTROLLER_TO_MASK(c)));
1899
1900         return 0;
1901 }
1902
1903 void manager_shutdown_cgroup(Manager *m, bool delete) {
1904         assert(m);
1905
1906         /* We can't really delete the group, since we are in it. But
1907          * let's trim it. */
1908         if (delete && m->cgroup_root)
1909                 (void) cg_trim(SYSTEMD_CGROUP_CONTROLLER, m->cgroup_root, false);
1910
1911 #if 0 /// elogind does not support the unified hierarchy, yet.
1912         m->cgroup_inotify_wd_unit = hashmap_free(m->cgroup_inotify_wd_unit);
1913
1914         m->cgroup_inotify_event_source = sd_event_source_unref(m->cgroup_inotify_event_source);
1915         m->cgroup_inotify_fd = safe_close(m->cgroup_inotify_fd);
1916 #endif // 0
1917
1918         m->pin_cgroupfs_fd = safe_close(m->pin_cgroupfs_fd);
1919
1920         m->cgroup_root = mfree(m->cgroup_root);
1921 }
1922
1923 #if 0 /// UNNEEDED by elogind
1924 Unit* manager_get_unit_by_cgroup(Manager *m, const char *cgroup) {
1925         char *p;
1926         Unit *u;
1927
1928         assert(m);
1929         assert(cgroup);
1930
1931         u = hashmap_get(m->cgroup_unit, cgroup);
1932         if (u)
1933                 return u;
1934
1935         p = strdupa(cgroup);
1936         for (;;) {
1937                 char *e;
1938
1939                 e = strrchr(p, '/');
1940                 if (!e || e == p)
1941                         return hashmap_get(m->cgroup_unit, SPECIAL_ROOT_SLICE);
1942
1943                 *e = 0;
1944
1945                 u = hashmap_get(m->cgroup_unit, p);
1946                 if (u)
1947                         return u;
1948         }
1949 }
1950
1951 Unit *manager_get_unit_by_pid_cgroup(Manager *m, pid_t pid) {
1952         _cleanup_free_ char *cgroup = NULL;
1953         int r;
1954
1955         assert(m);
1956
1957         if (pid <= 0)
1958                 return NULL;
1959
1960         r = cg_pid_get_path(SYSTEMD_CGROUP_CONTROLLER, pid, &cgroup);
1961         if (r < 0)
1962                 return NULL;
1963
1964         return manager_get_unit_by_cgroup(m, cgroup);
1965 }
1966
1967 Unit *manager_get_unit_by_pid(Manager *m, pid_t pid) {
1968         Unit *u;
1969
1970         assert(m);
1971
1972         if (pid <= 0)
1973                 return NULL;
1974
1975         if (pid == 1)
1976                 return hashmap_get(m->units, SPECIAL_INIT_SCOPE);
1977
1978         u = hashmap_get(m->watch_pids1, PID_TO_PTR(pid));
1979         if (u)
1980                 return u;
1981
1982         u = hashmap_get(m->watch_pids2, PID_TO_PTR(pid));
1983         if (u)
1984                 return u;
1985
1986         return manager_get_unit_by_pid_cgroup(m, pid);
1987 }
1988 #endif // 0
1989
1990 #if 0 /// elogind must substitute this with its own variant
1991 int manager_notify_cgroup_empty(Manager *m, const char *cgroup) {
1992         Unit *u;
1993
1994         assert(m);
1995         assert(cgroup);
1996
1997         log_debug("Got cgroup empty notification for: %s", cgroup);
1998
1999         u = manager_get_unit_by_cgroup(m, cgroup);
2000         if (!u)
2001                 return 0;
2002
2003         return unit_notify_cgroup_empty(u);
2004 }
2005 #else
2006 int manager_notify_cgroup_empty(Manager *m, const char *cgroup) {
2007         Session *s;
2008
2009         assert(m);
2010         assert(cgroup);
2011
2012         log_debug("Got cgroup empty notification for: %s", cgroup);
2013
2014         s = hashmap_get(m->sessions, cgroup);
2015
2016         if (s) {
2017                 session_finalize(s);
2018                 session_free(s);
2019         } else
2020                 log_warning("Session not found: %s", cgroup);
2021
2022         return 0;
2023 }
2024 #endif // 0
2025 #if 0 /// UNNEEDED by elogind
2026 int unit_get_memory_current(Unit *u, uint64_t *ret) {
2027         _cleanup_free_ char *v = NULL;
2028         int r;
2029
2030         assert(u);
2031         assert(ret);
2032
2033         if (!u->cgroup_path)
2034                 return -ENODATA;
2035
2036         if ((u->cgroup_realized_mask & CGROUP_MASK_MEMORY) == 0)
2037                 return -ENODATA;
2038
2039         if (cg_all_unified() <= 0)
2040                 r = cg_get_attribute("memory", u->cgroup_path, "memory.usage_in_bytes", &v);
2041         else
2042                 r = cg_get_attribute("memory", u->cgroup_path, "memory.current", &v);
2043         if (r == -ENOENT)
2044                 return -ENODATA;
2045         if (r < 0)
2046                 return r;
2047
2048         return safe_atou64(v, ret);
2049 }
2050
2051 int unit_get_tasks_current(Unit *u, uint64_t *ret) {
2052         _cleanup_free_ char *v = NULL;
2053         int r;
2054
2055         assert(u);
2056         assert(ret);
2057
2058         if (!u->cgroup_path)
2059                 return -ENODATA;
2060
2061         if ((u->cgroup_realized_mask & CGROUP_MASK_PIDS) == 0)
2062                 return -ENODATA;
2063
2064         r = cg_get_attribute("pids", u->cgroup_path, "pids.current", &v);
2065         if (r == -ENOENT)
2066                 return -ENODATA;
2067         if (r < 0)
2068                 return r;
2069
2070         return safe_atou64(v, ret);
2071 }
2072
2073 static int unit_get_cpu_usage_raw(Unit *u, nsec_t *ret) {
2074         _cleanup_free_ char *v = NULL;
2075         uint64_t ns;
2076         int r;
2077
2078         assert(u);
2079         assert(ret);
2080
2081         if (!u->cgroup_path)
2082                 return -ENODATA;
2083
2084         if (cg_all_unified() > 0) {
2085                 const char *keys[] = { "usage_usec", NULL };
2086                 _cleanup_free_ char *val = NULL;
2087                 uint64_t us;
2088
2089                 if ((u->cgroup_realized_mask & CGROUP_MASK_CPU) == 0)
2090                         return -ENODATA;
2091
2092                 r = cg_get_keyed_attribute("cpu", u->cgroup_path, "cpu.stat", keys, &val);
2093                 if (r < 0)
2094                         return r;
2095
2096                 r = safe_atou64(val, &us);
2097                 if (r < 0)
2098                         return r;
2099
2100                 ns = us * NSEC_PER_USEC;
2101         } else {
2102                 if ((u->cgroup_realized_mask & CGROUP_MASK_CPUACCT) == 0)
2103                         return -ENODATA;
2104
2105                 r = cg_get_attribute("cpuacct", u->cgroup_path, "cpuacct.usage", &v);
2106                 if (r == -ENOENT)
2107                         return -ENODATA;
2108                 if (r < 0)
2109                         return r;
2110
2111                 r = safe_atou64(v, &ns);
2112                 if (r < 0)
2113                         return r;
2114         }
2115
2116         *ret = ns;
2117         return 0;
2118 }
2119
2120 int unit_get_cpu_usage(Unit *u, nsec_t *ret) {
2121         nsec_t ns;
2122         int r;
2123
2124         assert(u);
2125
2126         /* Retrieve the current CPU usage counter. This will subtract the CPU counter taken when the unit was
2127          * started. If the cgroup has been removed already, returns the last cached value. To cache the value, simply
2128          * call this function with a NULL return value. */
2129
2130         r = unit_get_cpu_usage_raw(u, &ns);
2131         if (r == -ENODATA && u->cpu_usage_last != NSEC_INFINITY) {
2132                 /* If we can't get the CPU usage anymore (because the cgroup was already removed, for example), use our
2133                  * cached value. */
2134
2135                 if (ret)
2136                         *ret = u->cpu_usage_last;
2137                 return 0;
2138         }
2139         if (r < 0)
2140                 return r;
2141
2142         if (ns > u->cpu_usage_base)
2143                 ns -= u->cpu_usage_base;
2144         else
2145                 ns = 0;
2146
2147         u->cpu_usage_last = ns;
2148         if (ret)
2149                 *ret = ns;
2150
2151         return 0;
2152 }
2153
2154 int unit_reset_cpu_usage(Unit *u) {
2155         nsec_t ns;
2156         int r;
2157
2158         assert(u);
2159
2160         u->cpu_usage_last = NSEC_INFINITY;
2161
2162         r = unit_get_cpu_usage_raw(u, &ns);
2163         if (r < 0) {
2164                 u->cpu_usage_base = 0;
2165                 return r;
2166         }
2167
2168         u->cpu_usage_base = ns;
2169         return 0;
2170 }
2171
2172 bool unit_cgroup_delegate(Unit *u) {
2173         CGroupContext *c;
2174
2175         assert(u);
2176
2177         c = unit_get_cgroup_context(u);
2178         if (!c)
2179                 return false;
2180
2181         return c->delegate;
2182 }
2183
2184 void unit_invalidate_cgroup(Unit *u, CGroupMask m) {
2185         assert(u);
2186
2187         if (!UNIT_HAS_CGROUP_CONTEXT(u))
2188                 return;
2189
2190         if (m == 0)
2191                 return;
2192
2193         /* always invalidate compat pairs together */
2194         if (m & (CGROUP_MASK_IO | CGROUP_MASK_BLKIO))
2195                 m |= CGROUP_MASK_IO | CGROUP_MASK_BLKIO;
2196
2197         if ((u->cgroup_realized_mask & m) == 0)
2198                 return;
2199
2200         u->cgroup_realized_mask &= ~m;
2201         unit_add_to_cgroup_queue(u);
2202 }
2203
2204 void manager_invalidate_startup_units(Manager *m) {
2205         Iterator i;
2206         Unit *u;
2207
2208         assert(m);
2209
2210         SET_FOREACH(u, m->startup_units, i)
2211                 unit_invalidate_cgroup(u, CGROUP_MASK_CPU|CGROUP_MASK_IO|CGROUP_MASK_BLKIO);
2212 }
2213
2214 static const char* const cgroup_device_policy_table[_CGROUP_DEVICE_POLICY_MAX] = {
2215         [CGROUP_AUTO] = "auto",
2216         [CGROUP_CLOSED] = "closed",
2217         [CGROUP_STRICT] = "strict",
2218 };
2219
2220 DEFINE_STRING_TABLE_LOOKUP(cgroup_device_policy, CGroupDevicePolicy);
2221 #endif // 0