sched/debug: Initialize sd_sysctl_cpus if !CONFIG_CPUMASK_OFFSTACK
[GitHub/moto-9609/android_kernel_motorola_exynos9610.git] / kernel / user_namespace.c
1 /*
2 * This program is free software; you can redistribute it and/or
3 * modify it under the terms of the GNU General Public License as
4 * published by the Free Software Foundation, version 2 of the
5 * License.
6 */
7
8 #include <linux/export.h>
9 #include <linux/nsproxy.h>
10 #include <linux/slab.h>
11 #include <linux/sched/signal.h>
12 #include <linux/user_namespace.h>
13 #include <linux/proc_ns.h>
14 #include <linux/highuid.h>
15 #include <linux/cred.h>
16 #include <linux/securebits.h>
17 #include <linux/keyctl.h>
18 #include <linux/key-type.h>
19 #include <keys/user-type.h>
20 #include <linux/seq_file.h>
21 #include <linux/fs.h>
22 #include <linux/uaccess.h>
23 #include <linux/ctype.h>
24 #include <linux/projid.h>
25 #include <linux/fs_struct.h>
26
27 static struct kmem_cache *user_ns_cachep __read_mostly;
28 static DEFINE_MUTEX(userns_state_mutex);
29
30 static bool new_idmap_permitted(const struct file *file,
31 struct user_namespace *ns, int cap_setid,
32 struct uid_gid_map *map);
33 static void free_user_ns(struct work_struct *work);
34
35 static struct ucounts *inc_user_namespaces(struct user_namespace *ns, kuid_t uid)
36 {
37 return inc_ucount(ns, uid, UCOUNT_USER_NAMESPACES);
38 }
39
40 static void dec_user_namespaces(struct ucounts *ucounts)
41 {
42 return dec_ucount(ucounts, UCOUNT_USER_NAMESPACES);
43 }
44
45 static void set_cred_user_ns(struct cred *cred, struct user_namespace *user_ns)
46 {
47 /* Start with the same capabilities as init but useless for doing
48 * anything as the capabilities are bound to the new user namespace.
49 */
50 cred->securebits = SECUREBITS_DEFAULT;
51 cred->cap_inheritable = CAP_EMPTY_SET;
52 cred->cap_permitted = CAP_FULL_SET;
53 cred->cap_effective = CAP_FULL_SET;
54 cred->cap_ambient = CAP_EMPTY_SET;
55 cred->cap_bset = CAP_FULL_SET;
56 #ifdef CONFIG_KEYS
57 key_put(cred->request_key_auth);
58 cred->request_key_auth = NULL;
59 #endif
60 /* tgcred will be cleared in our caller bc CLONE_THREAD won't be set */
61 cred->user_ns = user_ns;
62 }
63
64 /*
65 * Create a new user namespace, deriving the creator from the user in the
66 * passed credentials, and replacing that user with the new root user for the
67 * new namespace.
68 *
69 * This is called by copy_creds(), which will finish setting the target task's
70 * credentials.
71 */
72 int create_user_ns(struct cred *new)
73 {
74 struct user_namespace *ns, *parent_ns = new->user_ns;
75 kuid_t owner = new->euid;
76 kgid_t group = new->egid;
77 struct ucounts *ucounts;
78 int ret, i;
79
80 ret = -ENOSPC;
81 if (parent_ns->level > 32)
82 goto fail;
83
84 ucounts = inc_user_namespaces(parent_ns, owner);
85 if (!ucounts)
86 goto fail;
87
88 /*
89 * Verify that we can not violate the policy of which files
90 * may be accessed that is specified by the root directory,
91 * by verifing that the root directory is at the root of the
92 * mount namespace which allows all files to be accessed.
93 */
94 ret = -EPERM;
95 if (current_chrooted())
96 goto fail_dec;
97
98 /* The creator needs a mapping in the parent user namespace
99 * or else we won't be able to reasonably tell userspace who
100 * created a user_namespace.
101 */
102 ret = -EPERM;
103 if (!kuid_has_mapping(parent_ns, owner) ||
104 !kgid_has_mapping(parent_ns, group))
105 goto fail_dec;
106
107 ret = -ENOMEM;
108 ns = kmem_cache_zalloc(user_ns_cachep, GFP_KERNEL);
109 if (!ns)
110 goto fail_dec;
111
112 ret = ns_alloc_inum(&ns->ns);
113 if (ret)
114 goto fail_free;
115 ns->ns.ops = &userns_operations;
116
117 atomic_set(&ns->count, 1);
118 /* Leave the new->user_ns reference with the new user namespace. */
119 ns->parent = parent_ns;
120 ns->level = parent_ns->level + 1;
121 ns->owner = owner;
122 ns->group = group;
123 INIT_WORK(&ns->work, free_user_ns);
124 for (i = 0; i < UCOUNT_COUNTS; i++) {
125 ns->ucount_max[i] = INT_MAX;
126 }
127 ns->ucounts = ucounts;
128
129 /* Inherit USERNS_SETGROUPS_ALLOWED from our parent */
130 mutex_lock(&userns_state_mutex);
131 ns->flags = parent_ns->flags;
132 mutex_unlock(&userns_state_mutex);
133
134 #ifdef CONFIG_PERSISTENT_KEYRINGS
135 init_rwsem(&ns->persistent_keyring_register_sem);
136 #endif
137 ret = -ENOMEM;
138 if (!setup_userns_sysctls(ns))
139 goto fail_keyring;
140
141 set_cred_user_ns(new, ns);
142 return 0;
143 fail_keyring:
144 #ifdef CONFIG_PERSISTENT_KEYRINGS
145 key_put(ns->persistent_keyring_register);
146 #endif
147 ns_free_inum(&ns->ns);
148 fail_free:
149 kmem_cache_free(user_ns_cachep, ns);
150 fail_dec:
151 dec_user_namespaces(ucounts);
152 fail:
153 return ret;
154 }
155
156 int unshare_userns(unsigned long unshare_flags, struct cred **new_cred)
157 {
158 struct cred *cred;
159 int err = -ENOMEM;
160
161 if (!(unshare_flags & CLONE_NEWUSER))
162 return 0;
163
164 cred = prepare_creds();
165 if (cred) {
166 err = create_user_ns(cred);
167 if (err)
168 put_cred(cred);
169 else
170 *new_cred = cred;
171 }
172
173 return err;
174 }
175
176 static void free_user_ns(struct work_struct *work)
177 {
178 struct user_namespace *parent, *ns =
179 container_of(work, struct user_namespace, work);
180
181 do {
182 struct ucounts *ucounts = ns->ucounts;
183 parent = ns->parent;
184 retire_userns_sysctls(ns);
185 #ifdef CONFIG_PERSISTENT_KEYRINGS
186 key_put(ns->persistent_keyring_register);
187 #endif
188 ns_free_inum(&ns->ns);
189 kmem_cache_free(user_ns_cachep, ns);
190 dec_user_namespaces(ucounts);
191 ns = parent;
192 } while (atomic_dec_and_test(&parent->count));
193 }
194
195 void __put_user_ns(struct user_namespace *ns)
196 {
197 schedule_work(&ns->work);
198 }
199 EXPORT_SYMBOL(__put_user_ns);
200
201 static u32 map_id_range_down(struct uid_gid_map *map, u32 id, u32 count)
202 {
203 unsigned idx, extents;
204 u32 first, last, id2;
205
206 id2 = id + count - 1;
207
208 /* Find the matching extent */
209 extents = map->nr_extents;
210 smp_rmb();
211 for (idx = 0; idx < extents; idx++) {
212 first = map->extent[idx].first;
213 last = first + map->extent[idx].count - 1;
214 if (id >= first && id <= last &&
215 (id2 >= first && id2 <= last))
216 break;
217 }
218 /* Map the id or note failure */
219 if (idx < extents)
220 id = (id - first) + map->extent[idx].lower_first;
221 else
222 id = (u32) -1;
223
224 return id;
225 }
226
227 static u32 map_id_down(struct uid_gid_map *map, u32 id)
228 {
229 unsigned idx, extents;
230 u32 first, last;
231
232 /* Find the matching extent */
233 extents = map->nr_extents;
234 smp_rmb();
235 for (idx = 0; idx < extents; idx++) {
236 first = map->extent[idx].first;
237 last = first + map->extent[idx].count - 1;
238 if (id >= first && id <= last)
239 break;
240 }
241 /* Map the id or note failure */
242 if (idx < extents)
243 id = (id - first) + map->extent[idx].lower_first;
244 else
245 id = (u32) -1;
246
247 return id;
248 }
249
250 static u32 map_id_up(struct uid_gid_map *map, u32 id)
251 {
252 unsigned idx, extents;
253 u32 first, last;
254
255 /* Find the matching extent */
256 extents = map->nr_extents;
257 smp_rmb();
258 for (idx = 0; idx < extents; idx++) {
259 first = map->extent[idx].lower_first;
260 last = first + map->extent[idx].count - 1;
261 if (id >= first && id <= last)
262 break;
263 }
264 /* Map the id or note failure */
265 if (idx < extents)
266 id = (id - first) + map->extent[idx].first;
267 else
268 id = (u32) -1;
269
270 return id;
271 }
272
273 /**
274 * make_kuid - Map a user-namespace uid pair into a kuid.
275 * @ns: User namespace that the uid is in
276 * @uid: User identifier
277 *
278 * Maps a user-namespace uid pair into a kernel internal kuid,
279 * and returns that kuid.
280 *
281 * When there is no mapping defined for the user-namespace uid
282 * pair INVALID_UID is returned. Callers are expected to test
283 * for and handle INVALID_UID being returned. INVALID_UID
284 * may be tested for using uid_valid().
285 */
286 kuid_t make_kuid(struct user_namespace *ns, uid_t uid)
287 {
288 /* Map the uid to a global kernel uid */
289 return KUIDT_INIT(map_id_down(&ns->uid_map, uid));
290 }
291 EXPORT_SYMBOL(make_kuid);
292
293 /**
294 * from_kuid - Create a uid from a kuid user-namespace pair.
295 * @targ: The user namespace we want a uid in.
296 * @kuid: The kernel internal uid to start with.
297 *
298 * Map @kuid into the user-namespace specified by @targ and
299 * return the resulting uid.
300 *
301 * There is always a mapping into the initial user_namespace.
302 *
303 * If @kuid has no mapping in @targ (uid_t)-1 is returned.
304 */
305 uid_t from_kuid(struct user_namespace *targ, kuid_t kuid)
306 {
307 /* Map the uid from a global kernel uid */
308 return map_id_up(&targ->uid_map, __kuid_val(kuid));
309 }
310 EXPORT_SYMBOL(from_kuid);
311
312 /**
313 * from_kuid_munged - Create a uid from a kuid user-namespace pair.
314 * @targ: The user namespace we want a uid in.
315 * @kuid: The kernel internal uid to start with.
316 *
317 * Map @kuid into the user-namespace specified by @targ and
318 * return the resulting uid.
319 *
320 * There is always a mapping into the initial user_namespace.
321 *
322 * Unlike from_kuid from_kuid_munged never fails and always
323 * returns a valid uid. This makes from_kuid_munged appropriate
324 * for use in syscalls like stat and getuid where failing the
325 * system call and failing to provide a valid uid are not an
326 * options.
327 *
328 * If @kuid has no mapping in @targ overflowuid is returned.
329 */
330 uid_t from_kuid_munged(struct user_namespace *targ, kuid_t kuid)
331 {
332 uid_t uid;
333 uid = from_kuid(targ, kuid);
334
335 if (uid == (uid_t) -1)
336 uid = overflowuid;
337 return uid;
338 }
339 EXPORT_SYMBOL(from_kuid_munged);
340
341 /**
342 * make_kgid - Map a user-namespace gid pair into a kgid.
343 * @ns: User namespace that the gid is in
344 * @gid: group identifier
345 *
346 * Maps a user-namespace gid pair into a kernel internal kgid,
347 * and returns that kgid.
348 *
349 * When there is no mapping defined for the user-namespace gid
350 * pair INVALID_GID is returned. Callers are expected to test
351 * for and handle INVALID_GID being returned. INVALID_GID may be
352 * tested for using gid_valid().
353 */
354 kgid_t make_kgid(struct user_namespace *ns, gid_t gid)
355 {
356 /* Map the gid to a global kernel gid */
357 return KGIDT_INIT(map_id_down(&ns->gid_map, gid));
358 }
359 EXPORT_SYMBOL(make_kgid);
360
361 /**
362 * from_kgid - Create a gid from a kgid user-namespace pair.
363 * @targ: The user namespace we want a gid in.
364 * @kgid: The kernel internal gid to start with.
365 *
366 * Map @kgid into the user-namespace specified by @targ and
367 * return the resulting gid.
368 *
369 * There is always a mapping into the initial user_namespace.
370 *
371 * If @kgid has no mapping in @targ (gid_t)-1 is returned.
372 */
373 gid_t from_kgid(struct user_namespace *targ, kgid_t kgid)
374 {
375 /* Map the gid from a global kernel gid */
376 return map_id_up(&targ->gid_map, __kgid_val(kgid));
377 }
378 EXPORT_SYMBOL(from_kgid);
379
380 /**
381 * from_kgid_munged - Create a gid from a kgid user-namespace pair.
382 * @targ: The user namespace we want a gid in.
383 * @kgid: The kernel internal gid to start with.
384 *
385 * Map @kgid into the user-namespace specified by @targ and
386 * return the resulting gid.
387 *
388 * There is always a mapping into the initial user_namespace.
389 *
390 * Unlike from_kgid from_kgid_munged never fails and always
391 * returns a valid gid. This makes from_kgid_munged appropriate
392 * for use in syscalls like stat and getgid where failing the
393 * system call and failing to provide a valid gid are not options.
394 *
395 * If @kgid has no mapping in @targ overflowgid is returned.
396 */
397 gid_t from_kgid_munged(struct user_namespace *targ, kgid_t kgid)
398 {
399 gid_t gid;
400 gid = from_kgid(targ, kgid);
401
402 if (gid == (gid_t) -1)
403 gid = overflowgid;
404 return gid;
405 }
406 EXPORT_SYMBOL(from_kgid_munged);
407
408 /**
409 * make_kprojid - Map a user-namespace projid pair into a kprojid.
410 * @ns: User namespace that the projid is in
411 * @projid: Project identifier
412 *
413 * Maps a user-namespace uid pair into a kernel internal kuid,
414 * and returns that kuid.
415 *
416 * When there is no mapping defined for the user-namespace projid
417 * pair INVALID_PROJID is returned. Callers are expected to test
418 * for and handle handle INVALID_PROJID being returned. INVALID_PROJID
419 * may be tested for using projid_valid().
420 */
421 kprojid_t make_kprojid(struct user_namespace *ns, projid_t projid)
422 {
423 /* Map the uid to a global kernel uid */
424 return KPROJIDT_INIT(map_id_down(&ns->projid_map, projid));
425 }
426 EXPORT_SYMBOL(make_kprojid);
427
428 /**
429 * from_kprojid - Create a projid from a kprojid user-namespace pair.
430 * @targ: The user namespace we want a projid in.
431 * @kprojid: The kernel internal project identifier to start with.
432 *
433 * Map @kprojid into the user-namespace specified by @targ and
434 * return the resulting projid.
435 *
436 * There is always a mapping into the initial user_namespace.
437 *
438 * If @kprojid has no mapping in @targ (projid_t)-1 is returned.
439 */
440 projid_t from_kprojid(struct user_namespace *targ, kprojid_t kprojid)
441 {
442 /* Map the uid from a global kernel uid */
443 return map_id_up(&targ->projid_map, __kprojid_val(kprojid));
444 }
445 EXPORT_SYMBOL(from_kprojid);
446
447 /**
448 * from_kprojid_munged - Create a projiid from a kprojid user-namespace pair.
449 * @targ: The user namespace we want a projid in.
450 * @kprojid: The kernel internal projid to start with.
451 *
452 * Map @kprojid into the user-namespace specified by @targ and
453 * return the resulting projid.
454 *
455 * There is always a mapping into the initial user_namespace.
456 *
457 * Unlike from_kprojid from_kprojid_munged never fails and always
458 * returns a valid projid. This makes from_kprojid_munged
459 * appropriate for use in syscalls like stat and where
460 * failing the system call and failing to provide a valid projid are
461 * not an options.
462 *
463 * If @kprojid has no mapping in @targ OVERFLOW_PROJID is returned.
464 */
465 projid_t from_kprojid_munged(struct user_namespace *targ, kprojid_t kprojid)
466 {
467 projid_t projid;
468 projid = from_kprojid(targ, kprojid);
469
470 if (projid == (projid_t) -1)
471 projid = OVERFLOW_PROJID;
472 return projid;
473 }
474 EXPORT_SYMBOL(from_kprojid_munged);
475
476
477 static int uid_m_show(struct seq_file *seq, void *v)
478 {
479 struct user_namespace *ns = seq->private;
480 struct uid_gid_extent *extent = v;
481 struct user_namespace *lower_ns;
482 uid_t lower;
483
484 lower_ns = seq_user_ns(seq);
485 if ((lower_ns == ns) && lower_ns->parent)
486 lower_ns = lower_ns->parent;
487
488 lower = from_kuid(lower_ns, KUIDT_INIT(extent->lower_first));
489
490 seq_printf(seq, "%10u %10u %10u\n",
491 extent->first,
492 lower,
493 extent->count);
494
495 return 0;
496 }
497
498 static int gid_m_show(struct seq_file *seq, void *v)
499 {
500 struct user_namespace *ns = seq->private;
501 struct uid_gid_extent *extent = v;
502 struct user_namespace *lower_ns;
503 gid_t lower;
504
505 lower_ns = seq_user_ns(seq);
506 if ((lower_ns == ns) && lower_ns->parent)
507 lower_ns = lower_ns->parent;
508
509 lower = from_kgid(lower_ns, KGIDT_INIT(extent->lower_first));
510
511 seq_printf(seq, "%10u %10u %10u\n",
512 extent->first,
513 lower,
514 extent->count);
515
516 return 0;
517 }
518
519 static int projid_m_show(struct seq_file *seq, void *v)
520 {
521 struct user_namespace *ns = seq->private;
522 struct uid_gid_extent *extent = v;
523 struct user_namespace *lower_ns;
524 projid_t lower;
525
526 lower_ns = seq_user_ns(seq);
527 if ((lower_ns == ns) && lower_ns->parent)
528 lower_ns = lower_ns->parent;
529
530 lower = from_kprojid(lower_ns, KPROJIDT_INIT(extent->lower_first));
531
532 seq_printf(seq, "%10u %10u %10u\n",
533 extent->first,
534 lower,
535 extent->count);
536
537 return 0;
538 }
539
540 static void *m_start(struct seq_file *seq, loff_t *ppos,
541 struct uid_gid_map *map)
542 {
543 struct uid_gid_extent *extent = NULL;
544 loff_t pos = *ppos;
545
546 if (pos < map->nr_extents)
547 extent = &map->extent[pos];
548
549 return extent;
550 }
551
552 static void *uid_m_start(struct seq_file *seq, loff_t *ppos)
553 {
554 struct user_namespace *ns = seq->private;
555
556 return m_start(seq, ppos, &ns->uid_map);
557 }
558
559 static void *gid_m_start(struct seq_file *seq, loff_t *ppos)
560 {
561 struct user_namespace *ns = seq->private;
562
563 return m_start(seq, ppos, &ns->gid_map);
564 }
565
566 static void *projid_m_start(struct seq_file *seq, loff_t *ppos)
567 {
568 struct user_namespace *ns = seq->private;
569
570 return m_start(seq, ppos, &ns->projid_map);
571 }
572
573 static void *m_next(struct seq_file *seq, void *v, loff_t *pos)
574 {
575 (*pos)++;
576 return seq->op->start(seq, pos);
577 }
578
579 static void m_stop(struct seq_file *seq, void *v)
580 {
581 return;
582 }
583
584 const struct seq_operations proc_uid_seq_operations = {
585 .start = uid_m_start,
586 .stop = m_stop,
587 .next = m_next,
588 .show = uid_m_show,
589 };
590
591 const struct seq_operations proc_gid_seq_operations = {
592 .start = gid_m_start,
593 .stop = m_stop,
594 .next = m_next,
595 .show = gid_m_show,
596 };
597
598 const struct seq_operations proc_projid_seq_operations = {
599 .start = projid_m_start,
600 .stop = m_stop,
601 .next = m_next,
602 .show = projid_m_show,
603 };
604
605 static bool mappings_overlap(struct uid_gid_map *new_map,
606 struct uid_gid_extent *extent)
607 {
608 u32 upper_first, lower_first, upper_last, lower_last;
609 unsigned idx;
610
611 upper_first = extent->first;
612 lower_first = extent->lower_first;
613 upper_last = upper_first + extent->count - 1;
614 lower_last = lower_first + extent->count - 1;
615
616 for (idx = 0; idx < new_map->nr_extents; idx++) {
617 u32 prev_upper_first, prev_lower_first;
618 u32 prev_upper_last, prev_lower_last;
619 struct uid_gid_extent *prev;
620
621 prev = &new_map->extent[idx];
622
623 prev_upper_first = prev->first;
624 prev_lower_first = prev->lower_first;
625 prev_upper_last = prev_upper_first + prev->count - 1;
626 prev_lower_last = prev_lower_first + prev->count - 1;
627
628 /* Does the upper range intersect a previous extent? */
629 if ((prev_upper_first <= upper_last) &&
630 (prev_upper_last >= upper_first))
631 return true;
632
633 /* Does the lower range intersect a previous extent? */
634 if ((prev_lower_first <= lower_last) &&
635 (prev_lower_last >= lower_first))
636 return true;
637 }
638 return false;
639 }
640
641 static ssize_t map_write(struct file *file, const char __user *buf,
642 size_t count, loff_t *ppos,
643 int cap_setid,
644 struct uid_gid_map *map,
645 struct uid_gid_map *parent_map)
646 {
647 struct seq_file *seq = file->private_data;
648 struct user_namespace *ns = seq->private;
649 struct uid_gid_map new_map;
650 unsigned idx;
651 struct uid_gid_extent *extent = NULL;
652 char *kbuf = NULL, *pos, *next_line;
653 ssize_t ret;
654
655 /* Only allow < page size writes at the beginning of the file */
656 if ((*ppos != 0) || (count >= PAGE_SIZE))
657 return -EINVAL;
658
659 /* Slurp in the user data */
660 kbuf = memdup_user_nul(buf, count);
661 if (IS_ERR(kbuf))
662 return PTR_ERR(kbuf);
663
664 /*
665 * The userns_state_mutex serializes all writes to any given map.
666 *
667 * Any map is only ever written once.
668 *
669 * An id map fits within 1 cache line on most architectures.
670 *
671 * On read nothing needs to be done unless you are on an
672 * architecture with a crazy cache coherency model like alpha.
673 *
674 * There is a one time data dependency between reading the
675 * count of the extents and the values of the extents. The
676 * desired behavior is to see the values of the extents that
677 * were written before the count of the extents.
678 *
679 * To achieve this smp_wmb() is used on guarantee the write
680 * order and smp_rmb() is guaranteed that we don't have crazy
681 * architectures returning stale data.
682 */
683 mutex_lock(&userns_state_mutex);
684
685 ret = -EPERM;
686 /* Only allow one successful write to the map */
687 if (map->nr_extents != 0)
688 goto out;
689
690 /*
691 * Adjusting namespace settings requires capabilities on the target.
692 */
693 if (cap_valid(cap_setid) && !file_ns_capable(file, ns, CAP_SYS_ADMIN))
694 goto out;
695
696 /* Parse the user data */
697 ret = -EINVAL;
698 pos = kbuf;
699 new_map.nr_extents = 0;
700 for (; pos; pos = next_line) {
701 extent = &new_map.extent[new_map.nr_extents];
702
703 /* Find the end of line and ensure I don't look past it */
704 next_line = strchr(pos, '\n');
705 if (next_line) {
706 *next_line = '\0';
707 next_line++;
708 if (*next_line == '\0')
709 next_line = NULL;
710 }
711
712 pos = skip_spaces(pos);
713 extent->first = simple_strtoul(pos, &pos, 10);
714 if (!isspace(*pos))
715 goto out;
716
717 pos = skip_spaces(pos);
718 extent->lower_first = simple_strtoul(pos, &pos, 10);
719 if (!isspace(*pos))
720 goto out;
721
722 pos = skip_spaces(pos);
723 extent->count = simple_strtoul(pos, &pos, 10);
724 if (*pos && !isspace(*pos))
725 goto out;
726
727 /* Verify there is not trailing junk on the line */
728 pos = skip_spaces(pos);
729 if (*pos != '\0')
730 goto out;
731
732 /* Verify we have been given valid starting values */
733 if ((extent->first == (u32) -1) ||
734 (extent->lower_first == (u32) -1))
735 goto out;
736
737 /* Verify count is not zero and does not cause the
738 * extent to wrap
739 */
740 if ((extent->first + extent->count) <= extent->first)
741 goto out;
742 if ((extent->lower_first + extent->count) <=
743 extent->lower_first)
744 goto out;
745
746 /* Do the ranges in extent overlap any previous extents? */
747 if (mappings_overlap(&new_map, extent))
748 goto out;
749
750 new_map.nr_extents++;
751
752 /* Fail if the file contains too many extents */
753 if ((new_map.nr_extents == UID_GID_MAP_MAX_EXTENTS) &&
754 (next_line != NULL))
755 goto out;
756 }
757 /* Be very certaint the new map actually exists */
758 if (new_map.nr_extents == 0)
759 goto out;
760
761 ret = -EPERM;
762 /* Validate the user is allowed to use user id's mapped to. */
763 if (!new_idmap_permitted(file, ns, cap_setid, &new_map))
764 goto out;
765
766 /* Map the lower ids from the parent user namespace to the
767 * kernel global id space.
768 */
769 for (idx = 0; idx < new_map.nr_extents; idx++) {
770 u32 lower_first;
771 extent = &new_map.extent[idx];
772
773 lower_first = map_id_range_down(parent_map,
774 extent->lower_first,
775 extent->count);
776
777 /* Fail if we can not map the specified extent to
778 * the kernel global id space.
779 */
780 if (lower_first == (u32) -1)
781 goto out;
782
783 extent->lower_first = lower_first;
784 }
785
786 /* Install the map */
787 memcpy(map->extent, new_map.extent,
788 new_map.nr_extents*sizeof(new_map.extent[0]));
789 smp_wmb();
790 map->nr_extents = new_map.nr_extents;
791
792 *ppos = count;
793 ret = count;
794 out:
795 mutex_unlock(&userns_state_mutex);
796 kfree(kbuf);
797 return ret;
798 }
799
800 ssize_t proc_uid_map_write(struct file *file, const char __user *buf,
801 size_t size, loff_t *ppos)
802 {
803 struct seq_file *seq = file->private_data;
804 struct user_namespace *ns = seq->private;
805 struct user_namespace *seq_ns = seq_user_ns(seq);
806
807 if (!ns->parent)
808 return -EPERM;
809
810 if ((seq_ns != ns) && (seq_ns != ns->parent))
811 return -EPERM;
812
813 return map_write(file, buf, size, ppos, CAP_SETUID,
814 &ns->uid_map, &ns->parent->uid_map);
815 }
816
817 ssize_t proc_gid_map_write(struct file *file, const char __user *buf,
818 size_t size, loff_t *ppos)
819 {
820 struct seq_file *seq = file->private_data;
821 struct user_namespace *ns = seq->private;
822 struct user_namespace *seq_ns = seq_user_ns(seq);
823
824 if (!ns->parent)
825 return -EPERM;
826
827 if ((seq_ns != ns) && (seq_ns != ns->parent))
828 return -EPERM;
829
830 return map_write(file, buf, size, ppos, CAP_SETGID,
831 &ns->gid_map, &ns->parent->gid_map);
832 }
833
834 ssize_t proc_projid_map_write(struct file *file, const char __user *buf,
835 size_t size, loff_t *ppos)
836 {
837 struct seq_file *seq = file->private_data;
838 struct user_namespace *ns = seq->private;
839 struct user_namespace *seq_ns = seq_user_ns(seq);
840
841 if (!ns->parent)
842 return -EPERM;
843
844 if ((seq_ns != ns) && (seq_ns != ns->parent))
845 return -EPERM;
846
847 /* Anyone can set any valid project id no capability needed */
848 return map_write(file, buf, size, ppos, -1,
849 &ns->projid_map, &ns->parent->projid_map);
850 }
851
852 static bool new_idmap_permitted(const struct file *file,
853 struct user_namespace *ns, int cap_setid,
854 struct uid_gid_map *new_map)
855 {
856 const struct cred *cred = file->f_cred;
857 /* Don't allow mappings that would allow anything that wouldn't
858 * be allowed without the establishment of unprivileged mappings.
859 */
860 if ((new_map->nr_extents == 1) && (new_map->extent[0].count == 1) &&
861 uid_eq(ns->owner, cred->euid)) {
862 u32 id = new_map->extent[0].lower_first;
863 if (cap_setid == CAP_SETUID) {
864 kuid_t uid = make_kuid(ns->parent, id);
865 if (uid_eq(uid, cred->euid))
866 return true;
867 } else if (cap_setid == CAP_SETGID) {
868 kgid_t gid = make_kgid(ns->parent, id);
869 if (!(ns->flags & USERNS_SETGROUPS_ALLOWED) &&
870 gid_eq(gid, cred->egid))
871 return true;
872 }
873 }
874
875 /* Allow anyone to set a mapping that doesn't require privilege */
876 if (!cap_valid(cap_setid))
877 return true;
878
879 /* Allow the specified ids if we have the appropriate capability
880 * (CAP_SETUID or CAP_SETGID) over the parent user namespace.
881 * And the opener of the id file also had the approprpiate capability.
882 */
883 if (ns_capable(ns->parent, cap_setid) &&
884 file_ns_capable(file, ns->parent, cap_setid))
885 return true;
886
887 return false;
888 }
889
890 int proc_setgroups_show(struct seq_file *seq, void *v)
891 {
892 struct user_namespace *ns = seq->private;
893 unsigned long userns_flags = ACCESS_ONCE(ns->flags);
894
895 seq_printf(seq, "%s\n",
896 (userns_flags & USERNS_SETGROUPS_ALLOWED) ?
897 "allow" : "deny");
898 return 0;
899 }
900
901 ssize_t proc_setgroups_write(struct file *file, const char __user *buf,
902 size_t count, loff_t *ppos)
903 {
904 struct seq_file *seq = file->private_data;
905 struct user_namespace *ns = seq->private;
906 char kbuf[8], *pos;
907 bool setgroups_allowed;
908 ssize_t ret;
909
910 /* Only allow a very narrow range of strings to be written */
911 ret = -EINVAL;
912 if ((*ppos != 0) || (count >= sizeof(kbuf)))
913 goto out;
914
915 /* What was written? */
916 ret = -EFAULT;
917 if (copy_from_user(kbuf, buf, count))
918 goto out;
919 kbuf[count] = '\0';
920 pos = kbuf;
921
922 /* What is being requested? */
923 ret = -EINVAL;
924 if (strncmp(pos, "allow", 5) == 0) {
925 pos += 5;
926 setgroups_allowed = true;
927 }
928 else if (strncmp(pos, "deny", 4) == 0) {
929 pos += 4;
930 setgroups_allowed = false;
931 }
932 else
933 goto out;
934
935 /* Verify there is not trailing junk on the line */
936 pos = skip_spaces(pos);
937 if (*pos != '\0')
938 goto out;
939
940 ret = -EPERM;
941 mutex_lock(&userns_state_mutex);
942 if (setgroups_allowed) {
943 /* Enabling setgroups after setgroups has been disabled
944 * is not allowed.
945 */
946 if (!(ns->flags & USERNS_SETGROUPS_ALLOWED))
947 goto out_unlock;
948 } else {
949 /* Permanently disabling setgroups after setgroups has
950 * been enabled by writing the gid_map is not allowed.
951 */
952 if (ns->gid_map.nr_extents != 0)
953 goto out_unlock;
954 ns->flags &= ~USERNS_SETGROUPS_ALLOWED;
955 }
956 mutex_unlock(&userns_state_mutex);
957
958 /* Report a successful write */
959 *ppos = count;
960 ret = count;
961 out:
962 return ret;
963 out_unlock:
964 mutex_unlock(&userns_state_mutex);
965 goto out;
966 }
967
968 bool userns_may_setgroups(const struct user_namespace *ns)
969 {
970 bool allowed;
971
972 mutex_lock(&userns_state_mutex);
973 /* It is not safe to use setgroups until a gid mapping in
974 * the user namespace has been established.
975 */
976 allowed = ns->gid_map.nr_extents != 0;
977 /* Is setgroups allowed? */
978 allowed = allowed && (ns->flags & USERNS_SETGROUPS_ALLOWED);
979 mutex_unlock(&userns_state_mutex);
980
981 return allowed;
982 }
983
984 /*
985 * Returns true if @child is the same namespace or a descendant of
986 * @ancestor.
987 */
988 bool in_userns(const struct user_namespace *ancestor,
989 const struct user_namespace *child)
990 {
991 const struct user_namespace *ns;
992 for (ns = child; ns->level > ancestor->level; ns = ns->parent)
993 ;
994 return (ns == ancestor);
995 }
996
997 bool current_in_userns(const struct user_namespace *target_ns)
998 {
999 return in_userns(target_ns, current_user_ns());
1000 }
1001
1002 static inline struct user_namespace *to_user_ns(struct ns_common *ns)
1003 {
1004 return container_of(ns, struct user_namespace, ns);
1005 }
1006
1007 static struct ns_common *userns_get(struct task_struct *task)
1008 {
1009 struct user_namespace *user_ns;
1010
1011 rcu_read_lock();
1012 user_ns = get_user_ns(__task_cred(task)->user_ns);
1013 rcu_read_unlock();
1014
1015 return user_ns ? &user_ns->ns : NULL;
1016 }
1017
1018 static void userns_put(struct ns_common *ns)
1019 {
1020 put_user_ns(to_user_ns(ns));
1021 }
1022
1023 static int userns_install(struct nsproxy *nsproxy, struct ns_common *ns)
1024 {
1025 struct user_namespace *user_ns = to_user_ns(ns);
1026 struct cred *cred;
1027
1028 /* Don't allow gaining capabilities by reentering
1029 * the same user namespace.
1030 */
1031 if (user_ns == current_user_ns())
1032 return -EINVAL;
1033
1034 /* Tasks that share a thread group must share a user namespace */
1035 if (!thread_group_empty(current))
1036 return -EINVAL;
1037
1038 if (current->fs->users != 1)
1039 return -EINVAL;
1040
1041 if (!ns_capable(user_ns, CAP_SYS_ADMIN))
1042 return -EPERM;
1043
1044 cred = prepare_creds();
1045 if (!cred)
1046 return -ENOMEM;
1047
1048 put_user_ns(cred->user_ns);
1049 set_cred_user_ns(cred, get_user_ns(user_ns));
1050
1051 return commit_creds(cred);
1052 }
1053
1054 struct ns_common *ns_get_owner(struct ns_common *ns)
1055 {
1056 struct user_namespace *my_user_ns = current_user_ns();
1057 struct user_namespace *owner, *p;
1058
1059 /* See if the owner is in the current user namespace */
1060 owner = p = ns->ops->owner(ns);
1061 for (;;) {
1062 if (!p)
1063 return ERR_PTR(-EPERM);
1064 if (p == my_user_ns)
1065 break;
1066 p = p->parent;
1067 }
1068
1069 return &get_user_ns(owner)->ns;
1070 }
1071
1072 static struct user_namespace *userns_owner(struct ns_common *ns)
1073 {
1074 return to_user_ns(ns)->parent;
1075 }
1076
1077 const struct proc_ns_operations userns_operations = {
1078 .name = "user",
1079 .type = CLONE_NEWUSER,
1080 .get = userns_get,
1081 .put = userns_put,
1082 .install = userns_install,
1083 .owner = userns_owner,
1084 .get_parent = ns_get_owner,
1085 };
1086
1087 static __init int user_namespaces_init(void)
1088 {
1089 user_ns_cachep = KMEM_CACHE(user_namespace, SLAB_PANIC);
1090 return 0;
1091 }
1092 subsys_initcall(user_namespaces_init);