1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Generic pidhash and scalable, time-bounded PID allocator
4 *
5 * (C) 2002-2003 Nadia Yvette Chambers, IBM
6 * (C) 2004 Nadia Yvette Chambers, Oracle
7 * (C) 2002-2004 Ingo Molnar, Red Hat
8 *
9 * pid-structures are backing objects for tasks sharing a given ID to chain
10 * against. There is very little to them aside from hashing them and
11 * parking tasks using given ID's on a list.
12 *
13 * The hash is always changed with the tasklist_lock write-acquired,
14 * and the hash is only accessed with the tasklist_lock at least
15 * read-acquired, so there's no additional SMP locking needed here.
16 *
17 * We have a list of bitmap pages, which bitmaps represent the PID space.
18 * Allocating and freeing PIDs is completely lockless. The worst-case
19 * allocation scenario when all but one out of 1 million PIDs possible are
20 * allocated already: the scanning of 32 list entries and at most PAGE_SIZE
21 * bytes. The typical fastpath is a single successful setbit. Freeing is O(1).
22 *
23 * Pid namespaces:
24 * (C) 2007 Pavel Emelyanov <xemul@openvz.org>, OpenVZ, SWsoft Inc.
25 * (C) 2007 Sukadev Bhattiprolu <sukadev@us.ibm.com>, IBM
26 * Many thanks to Oleg Nesterov for comments and help
27 *
28 */
29
30 #include <linux/mm.h>
31 #include <linux/export.h>
32 #include <linux/slab.h>
33 #include <linux/init.h>
34 #include <linux/rculist.h>
35 #include <linux/memblock.h>
36 #include <linux/pid_namespace.h>
37 #include <linux/init_task.h>
38 #include <linux/syscalls.h>
39 #include <linux/proc_ns.h>
40 #include <linux/refcount.h>
41 #include <linux/anon_inodes.h>
42 #include <linux/sched/signal.h>
43 #include <linux/sched/task.h>
44 #include <linux/idr.h>
45 #include <linux/pidfs.h>
46 #include <net/sock.h>
47 #include <uapi/linux/pidfd.h>
48
49 struct pid init_struct_pid = {
50 .count = REFCOUNT_INIT(1),
51 .tasks = {
52 { .first = NULL },
53 { .first = NULL },
54 { .first = NULL },
55 },
56 .level = 0,
57 .numbers = { {
58 .nr = 0,
59 .ns = &init_pid_ns,
60 }, }
61 };
62
63 static int pid_max_min = RESERVED_PIDS + 1;
64 static int pid_max_max = PID_MAX_LIMIT;
65
66 /*
67 * PID-map pages start out as NULL, they get allocated upon
68 * first use and are never deallocated. This way a low pid_max
69 * value does not cause lots of bitmaps to be allocated, but
70 * the scheme scales to up to 4 million PIDs, runtime.
71 */
72 struct pid_namespace init_pid_ns = {
73 .ns = NS_COMMON_INIT(init_pid_ns),
74 .idr = IDR_INIT(init_pid_ns.idr),
75 .pid_allocated = PIDNS_ADDING,
76 .level = 0,
77 .child_reaper = &init_task,
78 .user_ns = &init_user_ns,
79 .pid_max = PID_MAX_DEFAULT,
80 #if defined(CONFIG_SYSCTL) && defined(CONFIG_MEMFD_CREATE)
81 .memfd_noexec_scope = MEMFD_NOEXEC_SCOPE_EXEC,
82 #endif
83 };
84 EXPORT_SYMBOL_GPL(init_pid_ns);
85
86 static __cacheline_aligned_in_smp DEFINE_SPINLOCK(pidmap_lock);
87
put_pid(struct pid * pid)88 void put_pid(struct pid *pid)
89 {
90 struct pid_namespace *ns;
91
92 if (!pid)
93 return;
94
95 ns = pid->numbers[pid->level].ns;
96 if (refcount_dec_and_test(&pid->count)) {
97 pidfs_free_pid(pid);
98 kmem_cache_free(ns->pid_cachep, pid);
99 put_pid_ns(ns);
100 }
101 }
102 EXPORT_SYMBOL_GPL(put_pid);
103
delayed_put_pid(struct rcu_head * rhp)104 static void delayed_put_pid(struct rcu_head *rhp)
105 {
106 struct pid *pid = container_of(rhp, struct pid, rcu);
107 put_pid(pid);
108 }
109
free_pid(struct pid * pid)110 void free_pid(struct pid *pid)
111 {
112 int i;
113 struct pid_namespace *active_ns;
114
115 lockdep_assert_not_held(&tasklist_lock);
116
117 active_ns = pid->numbers[pid->level].ns;
118 ns_ref_active_put(active_ns);
119
120 spin_lock(&pidmap_lock);
121 for (i = 0; i <= pid->level; i++) {
122 struct upid *upid = pid->numbers + i;
123 struct pid_namespace *ns = upid->ns;
124 switch (--ns->pid_allocated) {
125 case 2:
126 case 1:
127 /* When all that is left in the pid namespace
128 * is the reaper wake up the reaper. The reaper
129 * may be sleeping in zap_pid_ns_processes().
130 */
131 wake_up_process(READ_ONCE(ns->child_reaper));
132 break;
133 case PIDNS_ADDING:
134 /* Only possible if the 1st fork fails */
135 WARN_ON(READ_ONCE(ns->child_reaper));
136 break;
137 }
138
139 idr_remove(&ns->idr, upid->nr);
140 }
141 spin_unlock(&pidmap_lock);
142
143 pidfs_remove_pid(pid);
144 call_rcu(&pid->rcu, delayed_put_pid);
145 }
146
free_pids(struct pid ** pids)147 void free_pids(struct pid **pids)
148 {
149 int tmp;
150
151 /*
152 * This can batch pidmap_lock.
153 */
154 for (tmp = PIDTYPE_MAX; --tmp >= 0; )
155 if (pids[tmp])
156 free_pid(pids[tmp]);
157 }
158
alloc_pid(struct pid_namespace * ns,pid_t * arg_set_tid,size_t arg_set_tid_size)159 struct pid *alloc_pid(struct pid_namespace *ns, pid_t *arg_set_tid,
160 size_t arg_set_tid_size)
161 {
162 int set_tid[MAX_PID_NS_LEVEL + 1] = {};
163 int pid_max[MAX_PID_NS_LEVEL + 1] = {};
164 struct pid *pid;
165 enum pid_type type;
166 int i, nr;
167 struct pid_namespace *tmp;
168 struct upid *upid;
169 int retval = -ENOMEM;
170 bool retried_preload;
171
172 /*
173 * arg_set_tid_size contains the size of the arg_set_tid array. Starting at
174 * the most nested currently active PID namespace it tells alloc_pid()
175 * which PID to set for a process in that most nested PID namespace
176 * up to arg_set_tid_size PID namespaces. It does not have to set the PID
177 * for a process in all nested PID namespaces but arg_set_tid_size must
178 * never be greater than the current ns->level + 1.
179 */
180 if (arg_set_tid_size > ns->level + 1)
181 return ERR_PTR(-EINVAL);
182
183 /*
184 * Prep before we take locks:
185 *
186 * 1. allocate and fill in pid struct
187 */
188 pid = kmem_cache_alloc(ns->pid_cachep, GFP_KERNEL);
189 if (!pid)
190 return ERR_PTR(retval);
191
192 get_pid_ns(ns);
193 pid->level = ns->level;
194 refcount_set(&pid->count, 1);
195 spin_lock_init(&pid->lock);
196 for (type = 0; type < PIDTYPE_MAX; ++type)
197 INIT_HLIST_HEAD(&pid->tasks[type]);
198 init_waitqueue_head(&pid->wait_pidfd);
199 INIT_HLIST_HEAD(&pid->inodes);
200 pidfs_prepare_pid(pid);
201
202 /*
203 * 2. perm check checkpoint_restore_ns_capable()
204 *
205 * This stores found pid_max to make sure the used value is the same should
206 * later code need it.
207 */
208 for (tmp = ns, i = ns->level; i >= 0; i--) {
209 pid_max[ns->level - i] = READ_ONCE(tmp->pid_max);
210
211 if (arg_set_tid_size) {
212 int tid = set_tid[ns->level - i] = arg_set_tid[ns->level - i];
213
214 retval = -EINVAL;
215 if (tid < 1 || tid >= pid_max[ns->level - i])
216 goto out_abort;
217 retval = -EPERM;
218 if (!checkpoint_restore_ns_capable(tmp->user_ns))
219 goto out_abort;
220 arg_set_tid_size--;
221 }
222
223 tmp = tmp->parent;
224 }
225
226 /*
227 * Prep is done, id allocation goes here:
228 */
229 retried_preload = false;
230 idr_preload(GFP_KERNEL);
231 spin_lock(&pidmap_lock);
232 /* For the case when the previous attempt to create init failed */
233 if (ns->pid_allocated == PIDNS_ADDING)
234 idr_set_cursor(&ns->idr, 0);
235
236 for (tmp = ns, i = ns->level; i >= 0;) {
237 int tid = set_tid[ns->level - i];
238
239 if (tid) {
240 nr = idr_alloc(&tmp->idr, NULL, tid,
241 tid + 1, GFP_ATOMIC);
242 /*
243 * If ENOSPC is returned it means that the PID is
244 * alreay in use. Return EEXIST in that case.
245 */
246 if (nr == -ENOSPC)
247
248 nr = -EEXIST;
249 } else {
250 int pid_min = 1;
251 /*
252 * init really needs pid 1, but after reaching the
253 * maximum wrap back to RESERVED_PIDS
254 */
255 if (idr_get_cursor(&tmp->idr) > RESERVED_PIDS)
256 pid_min = RESERVED_PIDS;
257
258 /*
259 * Store a null pointer so find_pid_ns does not find
260 * a partially initialized PID (see below).
261 */
262 nr = idr_alloc_cyclic(&tmp->idr, NULL, pid_min,
263 pid_max[ns->level - i], GFP_ATOMIC);
264 if (nr == -ENOSPC)
265 nr = -EAGAIN;
266 }
267
268 if (unlikely(nr < 0)) {
269 /*
270 * Preload more memory if idr_alloc{,cyclic} failed with -ENOMEM.
271 *
272 * The IDR API only allows us to preload memory for one call, while we may end
273 * up doing several under pidmap_lock with GFP_ATOMIC. The situation may be
274 * salvageable with GFP_KERNEL. But make sure to not loop indefinitely if preload
275 * did not help (the routine unfortunately returns void, so we have no idea
276 * if it got anywhere).
277 *
278 * The lock can be safely dropped and picked up as historically pid allocation
279 * for different namespaces was *not* atomic -- we try to hold on to it the
280 * entire time only for performance reasons.
281 */
282 if (nr == -ENOMEM && !retried_preload) {
283 spin_unlock(&pidmap_lock);
284 idr_preload_end();
285 retried_preload = true;
286 idr_preload(GFP_KERNEL);
287 spin_lock(&pidmap_lock);
288 continue;
289 }
290 retval = nr;
291 goto out_free;
292 }
293
294 pid->numbers[i].nr = nr;
295 pid->numbers[i].ns = tmp;
296 i--;
297 retried_preload = false;
298
299 /*
300 * PID 1 (init) must be created first.
301 */
302 if (!READ_ONCE(tmp->child_reaper) && nr != 1) {
303 retval = -EINVAL;
304 goto out_free;
305 }
306
307 tmp = tmp->parent;
308 }
309
310 /*
311 * ENOMEM is not the most obvious choice especially for the case
312 * where the child subreaper has already exited and the pid
313 * namespace denies the creation of any new processes. But ENOMEM
314 * is what we have exposed to userspace for a long time and it is
315 * documented behavior for pid namespaces. So we can't easily
316 * change it even if there were an error code better suited.
317 *
318 * This can't be done earlier because we need to preserve other
319 * error conditions.
320 *
321 * We need this even if copy_process() does the same check. If two
322 * or more tasks from parent namespace try to inject a child into a
323 * dead namespace, one of free_pid() calls from the copy_process()
324 * error path may try to wakeup the possibly freed ns->child_reaper.
325 */
326 retval = -ENOMEM;
327 if (unlikely(!(ns->pid_allocated & PIDNS_ADDING)))
328 goto out_free;
329 for (upid = pid->numbers + ns->level; upid >= pid->numbers; --upid) {
330 /* Make the PID visible to find_pid_ns. */
331 idr_replace(&upid->ns->idr, pid, upid->nr);
332 upid->ns->pid_allocated++;
333 }
334 spin_unlock(&pidmap_lock);
335 idr_preload_end();
336 ns_ref_active_get(ns);
337
338 retval = pidfs_add_pid(pid);
339 if (unlikely(retval)) {
340 free_pid(pid);
341 pid = ERR_PTR(-ENOMEM);
342 }
343
344 return pid;
345
346 out_free:
347 while (++i <= ns->level) {
348 upid = pid->numbers + i;
349 idr_remove(&upid->ns->idr, upid->nr);
350 }
351
352 spin_unlock(&pidmap_lock);
353 idr_preload_end();
354
355 out_abort:
356 put_pid_ns(ns);
357 kmem_cache_free(ns->pid_cachep, pid);
358 return ERR_PTR(retval);
359 }
360
disable_pid_allocation(struct pid_namespace * ns)361 void disable_pid_allocation(struct pid_namespace *ns)
362 {
363 spin_lock(&pidmap_lock);
364 ns->pid_allocated &= ~PIDNS_ADDING;
365 spin_unlock(&pidmap_lock);
366 }
367
find_pid_ns(int nr,struct pid_namespace * ns)368 struct pid *find_pid_ns(int nr, struct pid_namespace *ns)
369 {
370 return idr_find(&ns->idr, nr);
371 }
372 EXPORT_SYMBOL_GPL(find_pid_ns);
373
find_vpid(int nr)374 struct pid *find_vpid(int nr)
375 {
376 return find_pid_ns(nr, task_active_pid_ns(current));
377 }
378 EXPORT_SYMBOL_GPL(find_vpid);
379
task_pid_ptr(struct task_struct * task,enum pid_type type)380 static struct pid **task_pid_ptr(struct task_struct *task, enum pid_type type)
381 {
382 return (type == PIDTYPE_PID) ?
383 &task->thread_pid :
384 &task->signal->pids[type];
385 }
386
387 /*
388 * attach_pid() must be called with the tasklist_lock write-held.
389 */
attach_pid(struct task_struct * task,enum pid_type type)390 void attach_pid(struct task_struct *task, enum pid_type type)
391 {
392 struct pid *pid;
393
394 lockdep_assert_held_write(&tasklist_lock);
395
396 pid = *task_pid_ptr(task, type);
397 hlist_add_head_rcu(&task->pid_links[type], &pid->tasks[type]);
398 }
399
__change_pid(struct pid ** pids,struct task_struct * task,enum pid_type type,struct pid * new)400 static void __change_pid(struct pid **pids, struct task_struct *task,
401 enum pid_type type, struct pid *new)
402 {
403 struct pid **pid_ptr, *pid;
404 int tmp;
405
406 lockdep_assert_held_write(&tasklist_lock);
407
408 pid_ptr = task_pid_ptr(task, type);
409 pid = *pid_ptr;
410
411 hlist_del_rcu(&task->pid_links[type]);
412 *pid_ptr = new;
413
414 for (tmp = PIDTYPE_MAX; --tmp >= 0; )
415 if (pid_has_task(pid, tmp))
416 return;
417
418 WARN_ON(pids[type]);
419 pids[type] = pid;
420 }
421
detach_pid(struct pid ** pids,struct task_struct * task,enum pid_type type)422 void detach_pid(struct pid **pids, struct task_struct *task, enum pid_type type)
423 {
424 __change_pid(pids, task, type, NULL);
425 }
426
change_pid(struct pid ** pids,struct task_struct * task,enum pid_type type,struct pid * pid)427 void change_pid(struct pid **pids, struct task_struct *task, enum pid_type type,
428 struct pid *pid)
429 {
430 __change_pid(pids, task, type, pid);
431 attach_pid(task, type);
432 }
433
exchange_tids(struct task_struct * left,struct task_struct * right)434 void exchange_tids(struct task_struct *left, struct task_struct *right)
435 {
436 struct pid *pid1 = left->thread_pid;
437 struct pid *pid2 = right->thread_pid;
438 struct hlist_head *head1 = &pid1->tasks[PIDTYPE_PID];
439 struct hlist_head *head2 = &pid2->tasks[PIDTYPE_PID];
440
441 lockdep_assert_held_write(&tasklist_lock);
442
443 /* Swap the single entry tid lists */
444 hlists_swap_heads_rcu(head1, head2);
445
446 /* Swap the per task_struct pid */
447 rcu_assign_pointer(left->thread_pid, pid2);
448 rcu_assign_pointer(right->thread_pid, pid1);
449
450 /* Swap the cached value */
451 WRITE_ONCE(left->pid, pid_nr(pid2));
452 WRITE_ONCE(right->pid, pid_nr(pid1));
453 }
454
455 /* transfer_pid is an optimization of attach_pid(new), detach_pid(old) */
transfer_pid(struct task_struct * old,struct task_struct * new,enum pid_type type)456 void transfer_pid(struct task_struct *old, struct task_struct *new,
457 enum pid_type type)
458 {
459 WARN_ON_ONCE(type == PIDTYPE_PID);
460 lockdep_assert_held_write(&tasklist_lock);
461 hlist_replace_rcu(&old->pid_links[type], &new->pid_links[type]);
462 }
463
pid_task(struct pid * pid,enum pid_type type)464 struct task_struct *pid_task(struct pid *pid, enum pid_type type)
465 {
466 struct task_struct *result = NULL;
467 if (pid) {
468 struct hlist_node *first;
469 first = rcu_dereference_check(hlist_first_rcu(&pid->tasks[type]),
470 lockdep_tasklist_lock_is_held());
471 if (first)
472 result = hlist_entry(first, struct task_struct, pid_links[(type)]);
473 }
474 return result;
475 }
476 EXPORT_SYMBOL(pid_task);
477
478 /*
479 * Must be called under rcu_read_lock().
480 */
find_task_by_pid_ns(pid_t nr,struct pid_namespace * ns)481 struct task_struct *find_task_by_pid_ns(pid_t nr, struct pid_namespace *ns)
482 {
483 RCU_LOCKDEP_WARN(!rcu_read_lock_held(),
484 "find_task_by_pid_ns() needs rcu_read_lock() protection");
485 return pid_task(find_pid_ns(nr, ns), PIDTYPE_PID);
486 }
487
find_task_by_vpid(pid_t vnr)488 struct task_struct *find_task_by_vpid(pid_t vnr)
489 {
490 return find_task_by_pid_ns(vnr, task_active_pid_ns(current));
491 }
492
find_get_task_by_vpid(pid_t nr)493 struct task_struct *find_get_task_by_vpid(pid_t nr)
494 {
495 struct task_struct *task;
496
497 rcu_read_lock();
498 task = find_task_by_vpid(nr);
499 if (task)
500 get_task_struct(task);
501 rcu_read_unlock();
502
503 return task;
504 }
505
get_task_pid(struct task_struct * task,enum pid_type type)506 struct pid *get_task_pid(struct task_struct *task, enum pid_type type)
507 {
508 struct pid *pid;
509 rcu_read_lock();
510 pid = get_pid(rcu_dereference(*task_pid_ptr(task, type)));
511 rcu_read_unlock();
512 return pid;
513 }
514 EXPORT_SYMBOL_GPL(get_task_pid);
515
get_pid_task(struct pid * pid,enum pid_type type)516 struct task_struct *get_pid_task(struct pid *pid, enum pid_type type)
517 {
518 struct task_struct *result;
519 rcu_read_lock();
520 result = pid_task(pid, type);
521 if (result)
522 get_task_struct(result);
523 rcu_read_unlock();
524 return result;
525 }
526 EXPORT_SYMBOL_GPL(get_pid_task);
527
find_get_pid(pid_t nr)528 struct pid *find_get_pid(pid_t nr)
529 {
530 struct pid *pid;
531
532 rcu_read_lock();
533 pid = get_pid(find_vpid(nr));
534 rcu_read_unlock();
535
536 return pid;
537 }
538 EXPORT_SYMBOL_GPL(find_get_pid);
539
pid_nr_ns(struct pid * pid,struct pid_namespace * ns)540 pid_t pid_nr_ns(struct pid *pid, struct pid_namespace *ns)
541 {
542 struct upid *upid;
543 pid_t nr = 0;
544
545 if (pid && ns && ns->level <= pid->level) {
546 upid = &pid->numbers[ns->level];
547 if (upid->ns == ns)
548 nr = upid->nr;
549 }
550 return nr;
551 }
552 EXPORT_SYMBOL_GPL(pid_nr_ns);
553
pid_vnr(struct pid * pid)554 pid_t pid_vnr(struct pid *pid)
555 {
556 return pid_nr_ns(pid, task_active_pid_ns(current));
557 }
558 EXPORT_SYMBOL_GPL(pid_vnr);
559
__task_pid_nr_ns(struct task_struct * task,enum pid_type type,struct pid_namespace * ns)560 pid_t __task_pid_nr_ns(struct task_struct *task, enum pid_type type,
561 struct pid_namespace *ns)
562 {
563 pid_t nr = 0;
564
565 rcu_read_lock();
566 if (!ns)
567 ns = task_active_pid_ns(current);
568 nr = pid_nr_ns(rcu_dereference(*task_pid_ptr(task, type)), ns);
569 rcu_read_unlock();
570
571 return nr;
572 }
573 EXPORT_SYMBOL(__task_pid_nr_ns);
574
task_active_pid_ns(struct task_struct * tsk)575 struct pid_namespace *task_active_pid_ns(struct task_struct *tsk)
576 {
577 return ns_of_pid(task_pid(tsk));
578 }
579 EXPORT_SYMBOL_GPL(task_active_pid_ns);
580
581 /*
582 * Used by proc to find the first pid that is greater than or equal to nr.
583 *
584 * If there is a pid at nr this function is exactly the same as find_pid_ns.
585 */
find_ge_pid(int nr,struct pid_namespace * ns)586 struct pid *find_ge_pid(int nr, struct pid_namespace *ns)
587 {
588 return idr_get_next(&ns->idr, &nr);
589 }
590 EXPORT_SYMBOL_GPL(find_ge_pid);
591
pidfd_get_pid(unsigned int fd,unsigned int * flags)592 struct pid *pidfd_get_pid(unsigned int fd, unsigned int *flags)
593 {
594 CLASS(fd, f)(fd);
595 struct pid *pid;
596
597 if (fd_empty(f))
598 return ERR_PTR(-EBADF);
599
600 pid = pidfd_pid(fd_file(f));
601 if (!IS_ERR(pid)) {
602 get_pid(pid);
603 *flags = fd_file(f)->f_flags;
604 }
605 return pid;
606 }
607
608 /**
609 * pidfd_get_task() - Get the task associated with a pidfd
610 *
611 * @pidfd: pidfd for which to get the task
612 * @flags: flags associated with this pidfd
613 *
614 * Return the task associated with @pidfd. The function takes a reference on
615 * the returned task. The caller is responsible for releasing that reference.
616 *
617 * Return: On success, the task_struct associated with the pidfd.
618 * On error, a negative errno number will be returned.
619 */
pidfd_get_task(int pidfd,unsigned int * flags)620 struct task_struct *pidfd_get_task(int pidfd, unsigned int *flags)
621 {
622 unsigned int f_flags = 0;
623 struct pid *pid;
624 struct task_struct *task;
625 enum pid_type type;
626
627 switch (pidfd) {
628 case PIDFD_SELF_THREAD:
629 type = PIDTYPE_PID;
630 pid = get_task_pid(current, type);
631 break;
632 case PIDFD_SELF_THREAD_GROUP:
633 type = PIDTYPE_TGID;
634 pid = get_task_pid(current, type);
635 break;
636 default:
637 pid = pidfd_get_pid(pidfd, &f_flags);
638 if (IS_ERR(pid))
639 return ERR_CAST(pid);
640 type = PIDTYPE_TGID;
641 break;
642 }
643
644 task = get_pid_task(pid, type);
645 put_pid(pid);
646 if (!task)
647 return ERR_PTR(-ESRCH);
648
649 *flags = f_flags;
650 return task;
651 }
652
653 /**
654 * pidfd_create() - Create a new pid file descriptor.
655 *
656 * @pid: struct pid that the pidfd will reference
657 * @flags: flags to pass
658 *
659 * This creates a new pid file descriptor with the O_CLOEXEC flag set.
660 *
661 * Note, that this function can only be called after the fd table has
662 * been unshared to avoid leaking the pidfd to the new process.
663 *
664 * This symbol should not be explicitly exported to loadable modules.
665 *
666 * Return: On success, a cloexec pidfd is returned.
667 * On error, a negative errno number will be returned.
668 */
pidfd_create(struct pid * pid,unsigned int flags)669 static int pidfd_create(struct pid *pid, unsigned int flags)
670 {
671 int pidfd;
672 struct file *pidfd_file;
673
674 pidfd = pidfd_prepare(pid, flags, &pidfd_file);
675 if (pidfd < 0)
676 return pidfd;
677
678 fd_install(pidfd, pidfd_file);
679 return pidfd;
680 }
681
682 /**
683 * sys_pidfd_open() - Open new pid file descriptor.
684 *
685 * @pid: pid for which to retrieve a pidfd
686 * @flags: flags to pass
687 *
688 * This creates a new pid file descriptor with the O_CLOEXEC flag set for
689 * the task identified by @pid. Without PIDFD_THREAD flag the target task
690 * must be a thread-group leader.
691 *
692 * Return: On success, a cloexec pidfd is returned.
693 * On error, a negative errno number will be returned.
694 */
SYSCALL_DEFINE2(pidfd_open,pid_t,pid,unsigned int,flags)695 SYSCALL_DEFINE2(pidfd_open, pid_t, pid, unsigned int, flags)
696 {
697 int fd;
698 struct pid *p;
699
700 if (flags & ~(PIDFD_NONBLOCK | PIDFD_THREAD))
701 return -EINVAL;
702
703 if (pid <= 0)
704 return -EINVAL;
705
706 p = find_get_pid(pid);
707 if (!p)
708 return -ESRCH;
709
710 fd = pidfd_create(p, flags);
711
712 put_pid(p);
713 return fd;
714 }
715
716 #ifdef CONFIG_SYSCTL
pid_table_root_lookup(struct ctl_table_root * root)717 static struct ctl_table_set *pid_table_root_lookup(struct ctl_table_root *root)
718 {
719 return &task_active_pid_ns(current)->set;
720 }
721
set_is_seen(struct ctl_table_set * set)722 static int set_is_seen(struct ctl_table_set *set)
723 {
724 return &task_active_pid_ns(current)->set == set;
725 }
726
pid_table_root_permissions(struct ctl_table_header * head,const struct ctl_table * table)727 static int pid_table_root_permissions(struct ctl_table_header *head,
728 const struct ctl_table *table)
729 {
730 struct pid_namespace *pidns =
731 container_of(head->set, struct pid_namespace, set);
732 int mode = table->mode;
733
734 if (ns_capable_noaudit(pidns->user_ns, CAP_SYS_ADMIN) ||
735 uid_eq(current_euid(), make_kuid(pidns->user_ns, 0)))
736 mode = (mode & S_IRWXU) >> 6;
737 else if (in_egroup_p(make_kgid(pidns->user_ns, 0)))
738 mode = (mode & S_IRWXG) >> 3;
739 else
740 mode = mode & S_IROTH;
741 return (mode << 6) | (mode << 3) | mode;
742 }
743
pid_table_root_set_ownership(struct ctl_table_header * head,kuid_t * uid,kgid_t * gid)744 static void pid_table_root_set_ownership(struct ctl_table_header *head,
745 kuid_t *uid, kgid_t *gid)
746 {
747 struct pid_namespace *pidns =
748 container_of(head->set, struct pid_namespace, set);
749 kuid_t ns_root_uid;
750 kgid_t ns_root_gid;
751
752 ns_root_uid = make_kuid(pidns->user_ns, 0);
753 if (uid_valid(ns_root_uid))
754 *uid = ns_root_uid;
755
756 ns_root_gid = make_kgid(pidns->user_ns, 0);
757 if (gid_valid(ns_root_gid))
758 *gid = ns_root_gid;
759 }
760
761 static struct ctl_table_root pid_table_root = {
762 .lookup = pid_table_root_lookup,
763 .permissions = pid_table_root_permissions,
764 .set_ownership = pid_table_root_set_ownership,
765 };
766
proc_do_cad_pid(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)767 static int proc_do_cad_pid(const struct ctl_table *table, int write, void *buffer,
768 size_t *lenp, loff_t *ppos)
769 {
770 struct pid *new_pid;
771 pid_t tmp_pid;
772 int r;
773 struct ctl_table tmp_table = *table;
774
775 tmp_pid = pid_vnr(cad_pid);
776 tmp_table.data = &tmp_pid;
777
778 r = proc_dointvec(&tmp_table, write, buffer, lenp, ppos);
779 if (r || !write)
780 return r;
781
782 new_pid = find_get_pid(tmp_pid);
783 if (!new_pid)
784 return -ESRCH;
785
786 put_pid(xchg(&cad_pid, new_pid));
787 return 0;
788 }
789
790 static const struct ctl_table pid_table[] = {
791 {
792 .procname = "pid_max",
793 .data = &init_pid_ns.pid_max,
794 .maxlen = sizeof(int),
795 .mode = 0644,
796 .proc_handler = proc_dointvec_minmax,
797 .extra1 = &pid_max_min,
798 .extra2 = &pid_max_max,
799 },
800 #ifdef CONFIG_PROC_SYSCTL
801 {
802 .procname = "cad_pid",
803 .maxlen = sizeof(int),
804 .mode = 0600,
805 .proc_handler = proc_do_cad_pid,
806 },
807 #endif
808 };
809 #endif
810
register_pidns_sysctls(struct pid_namespace * pidns)811 int register_pidns_sysctls(struct pid_namespace *pidns)
812 {
813 #ifdef CONFIG_SYSCTL
814 struct ctl_table *tbl;
815
816 setup_sysctl_set(&pidns->set, &pid_table_root, set_is_seen);
817
818 tbl = kmemdup(pid_table, sizeof(pid_table), GFP_KERNEL);
819 if (!tbl)
820 return -ENOMEM;
821 tbl->data = &pidns->pid_max;
822 pidns->pid_max = min(pid_max_max, max_t(int, pidns->pid_max,
823 PIDS_PER_CPU_DEFAULT * num_possible_cpus()));
824
825 pidns->sysctls = __register_sysctl_table(&pidns->set, "kernel", tbl,
826 ARRAY_SIZE(pid_table));
827 if (!pidns->sysctls) {
828 kfree(tbl);
829 retire_sysctl_set(&pidns->set);
830 return -ENOMEM;
831 }
832 #endif
833 return 0;
834 }
835
unregister_pidns_sysctls(struct pid_namespace * pidns)836 void unregister_pidns_sysctls(struct pid_namespace *pidns)
837 {
838 #ifdef CONFIG_SYSCTL
839 const struct ctl_table *tbl;
840
841 tbl = pidns->sysctls->ctl_table_arg;
842 unregister_sysctl_table(pidns->sysctls);
843 retire_sysctl_set(&pidns->set);
844 kfree(tbl);
845 #endif
846 }
847
pid_idr_init(void)848 void __init pid_idr_init(void)
849 {
850 /* Verify no one has done anything silly: */
851 BUILD_BUG_ON(PID_MAX_LIMIT >= PIDNS_ADDING);
852
853 /* bump default and minimum pid_max based on number of cpus */
854 init_pid_ns.pid_max = min(pid_max_max, max_t(int, init_pid_ns.pid_max,
855 PIDS_PER_CPU_DEFAULT * num_possible_cpus()));
856 pid_max_min = max_t(int, pid_max_min,
857 PIDS_PER_CPU_MIN * num_possible_cpus());
858 pr_info("pid_max: default: %u minimum: %u\n", init_pid_ns.pid_max, pid_max_min);
859
860 idr_init(&init_pid_ns.idr);
861
862 init_pid_ns.pid_cachep = kmem_cache_create("pid",
863 struct_size_t(struct pid, numbers, 1),
864 __alignof__(struct pid),
865 SLAB_HWCACHE_ALIGN | SLAB_PANIC | SLAB_ACCOUNT,
866 NULL);
867 }
868
pid_namespace_sysctl_init(void)869 static __init int pid_namespace_sysctl_init(void)
870 {
871 #ifdef CONFIG_SYSCTL
872 /* "kernel" directory will have already been initialized. */
873 BUG_ON(register_pidns_sysctls(&init_pid_ns));
874 #endif
875 return 0;
876 }
877 subsys_initcall(pid_namespace_sysctl_init);
878
__pidfd_fget(struct task_struct * task,int fd)879 static struct file *__pidfd_fget(struct task_struct *task, int fd)
880 {
881 struct file *file;
882 int ret;
883
884 ret = down_read_killable(&task->signal->exec_update_lock);
885 if (ret)
886 return ERR_PTR(ret);
887
888 if (!ptrace_may_access(task, PTRACE_MODE_ATTACH_REALCREDS))
889 file = ERR_PTR(-EPERM);
890 else if (task->flags & PF_EXITING)
891 file = ERR_PTR(-ESRCH);
892 else
893 file = fget_task(task, fd);
894
895 up_read(&task->signal->exec_update_lock);
896
897 if (!file) {
898 /*
899 * It is possible that the target thread is exiting; it can be
900 * either:
901 * 1. before exit_signals(), which gives a real fd
902 * 2. before exit_files() takes the task_lock() gives a real fd
903 * 3. after exit_files() releases task_lock(), ->files is NULL;
904 * this has PF_EXITING, since it was set in exit_signals(),
905 * __pidfd_fget() returns EBADF.
906 * In case 3 we get EBADF, but that really means ESRCH, since
907 * the task is currently exiting and has freed its files
908 * struct, so we fix it up.
909 */
910 if (task->flags & PF_EXITING)
911 file = ERR_PTR(-ESRCH);
912 else
913 file = ERR_PTR(-EBADF);
914 }
915
916 return file;
917 }
918
pidfd_getfd(struct pid * pid,int fd)919 static int pidfd_getfd(struct pid *pid, int fd)
920 {
921 struct task_struct *task;
922 struct file *file;
923 int ret;
924
925 task = get_pid_task(pid, PIDTYPE_PID);
926 if (!task)
927 return -ESRCH;
928
929 file = __pidfd_fget(task, fd);
930 put_task_struct(task);
931 if (IS_ERR(file))
932 return PTR_ERR(file);
933
934 ret = receive_fd(file, NULL, O_CLOEXEC);
935 fput(file);
936
937 return ret;
938 }
939
940 /**
941 * sys_pidfd_getfd() - Get a file descriptor from another process
942 *
943 * @pidfd: the pidfd file descriptor of the process
944 * @fd: the file descriptor number to get
945 * @flags: flags on how to get the fd (reserved)
946 *
947 * This syscall gets a copy of a file descriptor from another process
948 * based on the pidfd, and file descriptor number. It requires that
949 * the calling process has the ability to ptrace the process represented
950 * by the pidfd. The process which is having its file descriptor copied
951 * is otherwise unaffected.
952 *
953 * Return: On success, a cloexec file descriptor is returned.
954 * On error, a negative errno number will be returned.
955 */
SYSCALL_DEFINE3(pidfd_getfd,int,pidfd,int,fd,unsigned int,flags)956 SYSCALL_DEFINE3(pidfd_getfd, int, pidfd, int, fd,
957 unsigned int, flags)
958 {
959 struct pid *pid;
960
961 /* flags is currently unused - make sure it's unset */
962 if (flags)
963 return -EINVAL;
964
965 CLASS(fd, f)(pidfd);
966 if (fd_empty(f))
967 return -EBADF;
968
969 pid = pidfd_pid(fd_file(f));
970 if (IS_ERR(pid))
971 return PTR_ERR(pid);
972
973 return pidfd_getfd(pid, fd);
974 }
975