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b2441318 1// SPDX-License-Identifier: GPL-2.0
1da177e4
LT
2/*
3 * linux/ipc/sem.c
4 * Copyright (C) 1992 Krishna Balasubramanian
5 * Copyright (C) 1995 Eric Schenk, Bruno Haible
6 *
1da177e4
LT
7 * /proc/sysvipc/sem support (c) 1999 Dragos Acostachioaie <dragos@iname.com>
8 *
9 * SMP-threaded, sysctl's added
624dffcb 10 * (c) 1999 Manfred Spraul <manfred@colorfullife.com>
1da177e4 11 * Enforced range limit on SEM_UNDO
046c6884 12 * (c) 2001 Red Hat Inc
1da177e4
LT
13 * Lockless wakeup
14 * (c) 2003 Manfred Spraul <manfred@colorfullife.com>
9ae949fa 15 * (c) 2016 Davidlohr Bueso <dave@stgolabs.net>
c5cf6359
MS
16 * Further wakeup optimizations, documentation
17 * (c) 2010 Manfred Spraul <manfred@colorfullife.com>
073115d6
SG
18 *
19 * support for audit of ipc object properties and permission changes
20 * Dustin Kirkland <dustin.kirkland@us.ibm.com>
e3893534
KK
21 *
22 * namespaces support
23 * OpenVZ, SWsoft Inc.
24 * Pavel Emelianov <xemul@openvz.org>
c5cf6359
MS
25 *
26 * Implementation notes: (May 2010)
27 * This file implements System V semaphores.
28 *
29 * User space visible behavior:
30 * - FIFO ordering for semop() operations (just FIFO, not starvation
31 * protection)
32 * - multiple semaphore operations that alter the same semaphore in
33 * one semop() are handled.
34 * - sem_ctime (time of last semctl()) is updated in the IPC_SET, SETVAL and
35 * SETALL calls.
36 * - two Linux specific semctl() commands: SEM_STAT, SEM_INFO.
37 * - undo adjustments at process exit are limited to 0..SEMVMX.
38 * - namespace are supported.
b1989a3d 39 * - SEMMSL, SEMMNS, SEMOPM and SEMMNI can be configured at runtime by writing
c5cf6359
MS
40 * to /proc/sys/kernel/sem.
41 * - statistics about the usage are reported in /proc/sysvipc/sem.
42 *
43 * Internals:
44 * - scalability:
45 * - all global variables are read-mostly.
46 * - semop() calls and semctl(RMID) are synchronized by RCU.
47 * - most operations do write operations (actually: spin_lock calls) to
48 * the per-semaphore array structure.
49 * Thus: Perfect SMP scaling between independent semaphore arrays.
50 * If multiple semaphores in one array are used, then cache line
51 * trashing on the semaphore array spinlock will limit the scaling.
2f2ed41d 52 * - semncnt and semzcnt are calculated on demand in count_semcnt()
c5cf6359
MS
53 * - the task that performs a successful semop() scans the list of all
54 * sleeping tasks and completes any pending operations that can be fulfilled.
55 * Semaphores are actively given to waiting tasks (necessary for FIFO).
56 * (see update_queue())
57 * - To improve the scalability, the actual wake-up calls are performed after
9ae949fa 58 * dropping all locks. (see wake_up_sem_queue_prepare())
c5cf6359
MS
59 * - All work is done by the waker, the woken up task does not have to do
60 * anything - not even acquiring a lock or dropping a refcount.
61 * - A woken up task may not even touch the semaphore array anymore, it may
62 * have been destroyed already by a semctl(RMID).
c5cf6359
MS
63 * - UNDO values are stored in an array (one per process and per
64 * semaphore array, lazily allocated). For backwards compatibility, multiple
65 * modes for the UNDO variables are supported (per process, per thread)
66 * (see copy_semundo, CLONE_SYSVSEM)
67 * - There are two lists of the pending operations: a per-array list
68 * and per-semaphore list (stored in the array). This allows to achieve FIFO
69 * ordering without always scanning all pending operations.
70 * The worst-case behavior is nevertheless O(N^2) for N wakeups.
1da177e4
LT
71 */
72
b0d17578 73#include <linux/compat.h>
1da177e4
LT
74#include <linux/slab.h>
75#include <linux/spinlock.h>
76#include <linux/init.h>
77#include <linux/proc_fs.h>
78#include <linux/time.h>
1da177e4
LT
79#include <linux/security.h>
80#include <linux/syscalls.h>
81#include <linux/audit.h>
c59ede7b 82#include <linux/capability.h>
19b4946c 83#include <linux/seq_file.h>
3e148c79 84#include <linux/rwsem.h>
e3893534 85#include <linux/nsproxy.h>
ae5e1b22 86#include <linux/ipc_namespace.h>
84f001e1 87#include <linux/sched/wake_q.h>
ec67aaa4 88#include <linux/nospec.h>
0eb71a9d 89#include <linux/rhashtable.h>
5f921ae9 90
7153e402 91#include <linux/uaccess.h>
1da177e4
LT
92#include "util.h"
93
1a5c1349
EB
94/* One semaphore structure for each semaphore in the system. */
95struct sem {
96 int semval; /* current value */
97 /*
98 * PID of the process that last modified the semaphore. For
99 * Linux, specifically these are:
100 * - semop
101 * - semctl, via SETVAL and SETALL.
102 * - at task exit when performing undo adjustments (see exit_sem).
103 */
51d6f263 104 struct pid *sempid;
1a5c1349
EB
105 spinlock_t lock; /* spinlock for fine-grained semtimedop */
106 struct list_head pending_alter; /* pending single-sop operations */
107 /* that alter the semaphore */
108 struct list_head pending_const; /* pending single-sop operations */
109 /* that do not alter the semaphore*/
2a70b787 110 time64_t sem_otime; /* candidate for sem_otime */
1a5c1349
EB
111} ____cacheline_aligned_in_smp;
112
113/* One sem_array data structure for each set of semaphores in the system. */
114struct sem_array {
115 struct kern_ipc_perm sem_perm; /* permissions .. see ipc.h */
116 time64_t sem_ctime; /* create/last semctl() time */
117 struct list_head pending_alter; /* pending operations */
118 /* that alter the array */
119 struct list_head pending_const; /* pending complex operations */
120 /* that do not alter semvals */
121 struct list_head list_id; /* undo requests on this array */
122 int sem_nsems; /* no. of semaphores in array */
123 int complex_count; /* pending complex operations */
124 unsigned int use_global_lock;/* >0: global lock required */
125
126 struct sem sems[];
127} __randomize_layout;
e57940d7
MS
128
129/* One queue for each sleeping process in the system. */
130struct sem_queue {
e57940d7
MS
131 struct list_head list; /* queue of pending operations */
132 struct task_struct *sleeper; /* this process */
133 struct sem_undo *undo; /* undo structure */
51d6f263 134 struct pid *pid; /* process id of requesting process */
e57940d7
MS
135 int status; /* completion status of operation */
136 struct sembuf *sops; /* array of pending operations */
ed247b7c 137 struct sembuf *blocking; /* the operation that blocked */
e57940d7 138 int nsops; /* number of operations */
4ce33ec2
DB
139 bool alter; /* does *sops alter the array? */
140 bool dupsop; /* sops on more than one sem_num */
e57940d7
MS
141};
142
143/* Each task has a list of undo requests. They are executed automatically
144 * when the process exits.
145 */
146struct sem_undo {
147 struct list_head list_proc; /* per-process list: *
148 * all undos from one process
149 * rcu protected */
150 struct rcu_head rcu; /* rcu struct for sem_undo */
151 struct sem_undo_list *ulp; /* back ptr to sem_undo_list */
152 struct list_head list_id; /* per semaphore array list:
153 * all undos for one array */
154 int semid; /* semaphore set identifier */
b46fae06 155 short semadj[]; /* array of adjustments */
e57940d7
MS
156 /* one per semaphore */
157};
158
159/* sem_undo_list controls shared access to the list of sem_undo structures
160 * that may be shared among all a CLONE_SYSVSEM task group.
161 */
162struct sem_undo_list {
f74370b8 163 refcount_t refcnt;
e57940d7
MS
164 spinlock_t lock;
165 struct list_head list_proc;
166};
167
168
ed2ddbf8 169#define sem_ids(ns) ((ns)->ids[IPC_SEM_IDS])
e3893534 170
7748dbfa 171static int newary(struct ipc_namespace *, struct ipc_params *);
01b8b07a 172static void freeary(struct ipc_namespace *, struct kern_ipc_perm *);
1da177e4 173#ifdef CONFIG_PROC_FS
19b4946c 174static int sysvipc_sem_proc_show(struct seq_file *s, void *it);
1da177e4
LT
175#endif
176
177#define SEMMSL_FAST 256 /* 512 bytes on stack */
178#define SEMOPM_FAST 64 /* ~ 372 bytes on stack */
179
9de5ab8a
MS
180/*
181 * Switching from the mode suitable for simple ops
182 * to the mode for complex ops is costly. Therefore:
183 * use some hysteresis
184 */
185#define USE_GLOBAL_LOCK_HYSTERESIS 10
186
1da177e4 187/*
758a6ba3 188 * Locking:
5864a2fd 189 * a) global sem_lock() for read/write
1da177e4 190 * sem_undo.id_next,
758a6ba3 191 * sem_array.complex_count,
5864a2fd
MS
192 * sem_array.pending{_alter,_const},
193 * sem_array.sem_undo
46c0a8ca 194 *
5864a2fd 195 * b) global or semaphore sem_lock() for read/write:
1a233956 196 * sem_array.sems[i].pending_{const,alter}:
5864a2fd
MS
197 *
198 * c) special:
199 * sem_undo_list.list_proc:
200 * * undo_list->lock for write
201 * * rcu for read
9de5ab8a
MS
202 * use_global_lock:
203 * * global sem_lock() for write
204 * * either local or global sem_lock() for read.
205 *
206 * Memory ordering:
207 * Most ordering is enforced by using spin_lock() and spin_unlock().
8116b54e
MS
208 *
209 * Exceptions:
210 * 1) use_global_lock: (SEM_BARRIER_1)
9de5ab8a 211 * Setting it from non-zero to 0 is a RELEASE, this is ensured by
8116b54e
MS
212 * using smp_store_release(): Immediately after setting it to 0,
213 * a simple op can start.
9de5ab8a
MS
214 * Testing if it is non-zero is an ACQUIRE, this is ensured by using
215 * smp_load_acquire().
216 * Setting it from 0 to non-zero must be ordered with regards to
217 * this smp_load_acquire(), this is guaranteed because the smp_load_acquire()
218 * is inside a spin_lock() and after a write from 0 to non-zero a
219 * spin_lock()+spin_unlock() is done.
17d056e0
MS
220 * To prevent the compiler/cpu temporarily writing 0 to use_global_lock,
221 * READ_ONCE()/WRITE_ONCE() is used.
8116b54e
MS
222 *
223 * 2) queue.status: (SEM_BARRIER_2)
224 * Initialization is done while holding sem_lock(), so no further barrier is
225 * required.
226 * Setting it to a result code is a RELEASE, this is ensured by both a
227 * smp_store_release() (for case a) and while holding sem_lock()
228 * (for case b).
b1989a3d 229 * The ACQUIRE when reading the result code without holding sem_lock() is
8116b54e
MS
230 * achieved by using READ_ONCE() + smp_acquire__after_ctrl_dep().
231 * (case a above).
232 * Reading the result code while holding sem_lock() needs no further barriers,
233 * the locks inside sem_lock() enforce ordering (case b above)
234 *
235 * 3) current->state:
236 * current->state is set to TASK_INTERRUPTIBLE while holding sem_lock().
237 * The wakeup is handled using the wake_q infrastructure. wake_q wakeups may
238 * happen immediately after calling wake_q_add. As wake_q_add_safe() is called
239 * when holding sem_lock(), no further barriers are required.
240 *
241 * See also ipc/mqueue.c for more details on the covered races.
1da177e4
LT
242 */
243
e3893534
KK
244#define sc_semmsl sem_ctls[0]
245#define sc_semmns sem_ctls[1]
246#define sc_semopm sem_ctls[2]
247#define sc_semmni sem_ctls[3]
248
eae04d25 249void sem_init_ns(struct ipc_namespace *ns)
e3893534 250{
e3893534
KK
251 ns->sc_semmsl = SEMMSL;
252 ns->sc_semmns = SEMMNS;
253 ns->sc_semopm = SEMOPM;
254 ns->sc_semmni = SEMMNI;
255 ns->used_sems = 0;
eae04d25 256 ipc_init_ids(&ns->ids[IPC_SEM_IDS]);
e3893534
KK
257}
258
ae5e1b22 259#ifdef CONFIG_IPC_NS
e3893534
KK
260void sem_exit_ns(struct ipc_namespace *ns)
261{
01b8b07a 262 free_ipcs(ns, &sem_ids(ns), freeary);
7d6feeb2 263 idr_destroy(&ns->ids[IPC_SEM_IDS].ipcs_idr);
0cfb6aee 264 rhashtable_destroy(&ns->ids[IPC_SEM_IDS].key_ht);
e3893534 265}
ae5e1b22 266#endif
1da177e4 267
eae04d25 268void __init sem_init(void)
1da177e4 269{
eae04d25 270 sem_init_ns(&init_ipc_ns);
19b4946c
MW
271 ipc_init_proc_interface("sysvipc/sem",
272 " key semid perms nsems uid gid cuid cgid otime ctime\n",
e3893534 273 IPC_SEM_IDS, sysvipc_sem_proc_show);
1da177e4
LT
274}
275
f269f40a
MS
276/**
277 * unmerge_queues - unmerge queues, if possible.
278 * @sma: semaphore array
279 *
280 * The function unmerges the wait queues if complex_count is 0.
281 * It must be called prior to dropping the global semaphore array lock.
282 */
283static void unmerge_queues(struct sem_array *sma)
284{
285 struct sem_queue *q, *tq;
286
287 /* complex operations still around? */
288 if (sma->complex_count)
289 return;
290 /*
291 * We will switch back to simple mode.
292 * Move all pending operation back into the per-semaphore
293 * queues.
294 */
295 list_for_each_entry_safe(q, tq, &sma->pending_alter, list) {
296 struct sem *curr;
1a233956 297 curr = &sma->sems[q->sops[0].sem_num];
f269f40a
MS
298
299 list_add_tail(&q->list, &curr->pending_alter);
300 }
301 INIT_LIST_HEAD(&sma->pending_alter);
302}
303
304/**
8001c858 305 * merge_queues - merge single semop queues into global queue
f269f40a
MS
306 * @sma: semaphore array
307 *
308 * This function merges all per-semaphore queues into the global queue.
309 * It is necessary to achieve FIFO ordering for the pending single-sop
310 * operations when a multi-semop operation must sleep.
311 * Only the alter operations must be moved, the const operations can stay.
312 */
313static void merge_queues(struct sem_array *sma)
314{
315 int i;
316 for (i = 0; i < sma->sem_nsems; i++) {
1a233956 317 struct sem *sem = &sma->sems[i];
f269f40a
MS
318
319 list_splice_init(&sem->pending_alter, &sma->pending_alter);
320 }
321}
322
53dad6d3
DB
323static void sem_rcu_free(struct rcu_head *head)
324{
dba4cdd3
MS
325 struct kern_ipc_perm *p = container_of(head, struct kern_ipc_perm, rcu);
326 struct sem_array *sma = container_of(p, struct sem_array, sem_perm);
53dad6d3 327
aefad959 328 security_sem_free(&sma->sem_perm);
e2029dfe 329 kvfree(sma);
53dad6d3
DB
330}
331
5e9d5275 332/*
5864a2fd 333 * Enter the mode suitable for non-simple operations:
5e9d5275 334 * Caller must own sem_perm.lock.
5e9d5275 335 */
5864a2fd 336static void complexmode_enter(struct sem_array *sma)
5e9d5275
MS
337{
338 int i;
339 struct sem *sem;
340
9de5ab8a
MS
341 if (sma->use_global_lock > 0) {
342 /*
343 * We are already in global lock mode.
344 * Nothing to do, just reset the
345 * counter until we return to simple mode.
346 */
17d056e0 347 WRITE_ONCE(sma->use_global_lock, USE_GLOBAL_LOCK_HYSTERESIS);
6d07b68c
MS
348 return;
349 }
17d056e0 350 WRITE_ONCE(sma->use_global_lock, USE_GLOBAL_LOCK_HYSTERESIS);
5864a2fd 351
5e9d5275 352 for (i = 0; i < sma->sem_nsems; i++) {
1a233956 353 sem = &sma->sems[i];
27d7be18
MS
354 spin_lock(&sem->lock);
355 spin_unlock(&sem->lock);
5e9d5275 356 }
5864a2fd
MS
357}
358
359/*
360 * Try to leave the mode that disallows simple operations:
361 * Caller must own sem_perm.lock.
362 */
363static void complexmode_tryleave(struct sem_array *sma)
364{
365 if (sma->complex_count) {
366 /* Complex ops are sleeping.
367 * We must stay in complex mode
368 */
369 return;
370 }
9de5ab8a 371 if (sma->use_global_lock == 1) {
8116b54e
MS
372
373 /* See SEM_BARRIER_1 for purpose/pairing */
9de5ab8a
MS
374 smp_store_release(&sma->use_global_lock, 0);
375 } else {
17d056e0
MS
376 WRITE_ONCE(sma->use_global_lock,
377 sma->use_global_lock-1);
9de5ab8a 378 }
5e9d5275
MS
379}
380
5864a2fd 381#define SEM_GLOBAL_LOCK (-1)
6062a8dc
RR
382/*
383 * If the request contains only one semaphore operation, and there are
384 * no complex transactions pending, lock only the semaphore involved.
385 * Otherwise, lock the entire semaphore array, since we either have
386 * multiple semaphores in our own semops, or we need to look at
387 * semaphores from other pending complex operations.
6062a8dc
RR
388 */
389static inline int sem_lock(struct sem_array *sma, struct sembuf *sops,
390 int nsops)
391{
5e9d5275 392 struct sem *sem;
ec67aaa4 393 int idx;
6062a8dc 394
5e9d5275
MS
395 if (nsops != 1) {
396 /* Complex operation - acquire a full lock */
397 ipc_lock_object(&sma->sem_perm);
6062a8dc 398
5864a2fd
MS
399 /* Prevent parallel simple ops */
400 complexmode_enter(sma);
401 return SEM_GLOBAL_LOCK;
5e9d5275
MS
402 }
403
404 /*
405 * Only one semaphore affected - try to optimize locking.
5864a2fd
MS
406 * Optimized locking is possible if no complex operation
407 * is either enqueued or processed right now.
408 *
9de5ab8a 409 * Both facts are tracked by use_global_mode.
5e9d5275 410 */
ec67aaa4
DB
411 idx = array_index_nospec(sops->sem_num, sma->sem_nsems);
412 sem = &sma->sems[idx];
6062a8dc 413
5864a2fd 414 /*
9de5ab8a 415 * Initial check for use_global_lock. Just an optimization,
5864a2fd
MS
416 * no locking, no memory barrier.
417 */
17d056e0 418 if (!READ_ONCE(sma->use_global_lock)) {
6062a8dc 419 /*
5e9d5275
MS
420 * It appears that no complex operation is around.
421 * Acquire the per-semaphore lock.
6062a8dc 422 */
5e9d5275
MS
423 spin_lock(&sem->lock);
424
8116b54e 425 /* see SEM_BARRIER_1 for purpose/pairing */
9de5ab8a 426 if (!smp_load_acquire(&sma->use_global_lock)) {
5864a2fd
MS
427 /* fast path successful! */
428 return sops->sem_num;
6062a8dc 429 }
5e9d5275
MS
430 spin_unlock(&sem->lock);
431 }
432
433 /* slow path: acquire the full lock */
434 ipc_lock_object(&sma->sem_perm);
6062a8dc 435
9de5ab8a
MS
436 if (sma->use_global_lock == 0) {
437 /*
438 * The use_global_lock mode ended while we waited for
439 * sma->sem_perm.lock. Thus we must switch to locking
440 * with sem->lock.
441 * Unlike in the fast path, there is no need to recheck
442 * sma->use_global_lock after we have acquired sem->lock:
443 * We own sma->sem_perm.lock, thus use_global_lock cannot
444 * change.
5e9d5275
MS
445 */
446 spin_lock(&sem->lock);
9de5ab8a 447
5e9d5275
MS
448 ipc_unlock_object(&sma->sem_perm);
449 return sops->sem_num;
6062a8dc 450 } else {
9de5ab8a
MS
451 /*
452 * Not a false alarm, thus continue to use the global lock
453 * mode. No need for complexmode_enter(), this was done by
454 * the caller that has set use_global_mode to non-zero.
6062a8dc 455 */
5864a2fd 456 return SEM_GLOBAL_LOCK;
6062a8dc 457 }
6062a8dc
RR
458}
459
460static inline void sem_unlock(struct sem_array *sma, int locknum)
461{
5864a2fd 462 if (locknum == SEM_GLOBAL_LOCK) {
f269f40a 463 unmerge_queues(sma);
5864a2fd 464 complexmode_tryleave(sma);
cf9d5d78 465 ipc_unlock_object(&sma->sem_perm);
6062a8dc 466 } else {
1a233956 467 struct sem *sem = &sma->sems[locknum];
6062a8dc
RR
468 spin_unlock(&sem->lock);
469 }
6062a8dc
RR
470}
471
3e148c79 472/*
d9a605e4 473 * sem_lock_(check_) routines are called in the paths where the rwsem
3e148c79 474 * is not held.
321310ce
LT
475 *
476 * The caller holds the RCU read lock.
3e148c79 477 */
16df3674
DB
478static inline struct sem_array *sem_obtain_object(struct ipc_namespace *ns, int id)
479{
55b7ae50 480 struct kern_ipc_perm *ipcp = ipc_obtain_object_idr(&sem_ids(ns), id);
16df3674
DB
481
482 if (IS_ERR(ipcp))
483 return ERR_CAST(ipcp);
484
485 return container_of(ipcp, struct sem_array, sem_perm);
486}
487
16df3674
DB
488static inline struct sem_array *sem_obtain_object_check(struct ipc_namespace *ns,
489 int id)
490{
491 struct kern_ipc_perm *ipcp = ipc_obtain_object_check(&sem_ids(ns), id);
492
493 if (IS_ERR(ipcp))
494 return ERR_CAST(ipcp);
b1ed88b4 495
03f02c76 496 return container_of(ipcp, struct sem_array, sem_perm);
023a5355
ND
497}
498
6ff37972
PP
499static inline void sem_lock_and_putref(struct sem_array *sma)
500{
6062a8dc 501 sem_lock(sma, NULL, -1);
dba4cdd3 502 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
6ff37972
PP
503}
504
7ca7e564
ND
505static inline void sem_rmid(struct ipc_namespace *ns, struct sem_array *s)
506{
507 ipc_rmid(&sem_ids(ns), &s->sem_perm);
508}
509
101ede01
KC
510static struct sem_array *sem_alloc(size_t nsems)
511{
512 struct sem_array *sma;
101ede01
KC
513
514 if (nsems > (INT_MAX - sizeof(*sma)) / sizeof(sma->sems[0]))
515 return NULL;
516
18319498 517 sma = kvzalloc(struct_size(sma, sems, nsems), GFP_KERNEL_ACCOUNT);
101ede01
KC
518 if (unlikely(!sma))
519 return NULL;
520
101ede01
KC
521 return sma;
522}
523
f4566f04
ND
524/**
525 * newary - Create a new semaphore set
526 * @ns: namespace
527 * @params: ptr to the structure that contains key, semflg and nsems
528 *
d9a605e4 529 * Called with sem_ids.rwsem held (as a writer)
f4566f04 530 */
7748dbfa 531static int newary(struct ipc_namespace *ns, struct ipc_params *params)
1da177e4 532{
1da177e4
LT
533 int retval;
534 struct sem_array *sma;
7748dbfa
ND
535 key_t key = params->key;
536 int nsems = params->u.nsems;
537 int semflg = params->flg;
b97e820f 538 int i;
1da177e4
LT
539
540 if (!nsems)
541 return -EINVAL;
e3893534 542 if (ns->used_sems + nsems > ns->sc_semmns)
1da177e4
LT
543 return -ENOSPC;
544
101ede01 545 sma = sem_alloc(nsems);
3ab08fe2 546 if (!sma)
1da177e4 547 return -ENOMEM;
3ab08fe2 548
1da177e4
LT
549 sma->sem_perm.mode = (semflg & S_IRWXUGO);
550 sma->sem_perm.key = key;
551
552 sma->sem_perm.security = NULL;
aefad959 553 retval = security_sem_alloc(&sma->sem_perm);
1da177e4 554 if (retval) {
e2029dfe 555 kvfree(sma);
1da177e4
LT
556 return retval;
557 }
558
6062a8dc 559 for (i = 0; i < nsems; i++) {
1a233956
MS
560 INIT_LIST_HEAD(&sma->sems[i].pending_alter);
561 INIT_LIST_HEAD(&sma->sems[i].pending_const);
562 spin_lock_init(&sma->sems[i].lock);
6062a8dc 563 }
b97e820f
MS
564
565 sma->complex_count = 0;
9de5ab8a 566 sma->use_global_lock = USE_GLOBAL_LOCK_HYSTERESIS;
1a82e9e1
MS
567 INIT_LIST_HEAD(&sma->pending_alter);
568 INIT_LIST_HEAD(&sma->pending_const);
4daa28f6 569 INIT_LIST_HEAD(&sma->list_id);
1da177e4 570 sma->sem_nsems = nsems;
e54d02b2 571 sma->sem_ctime = ktime_get_real_seconds();
e8577d1f 572
39c96a1b 573 /* ipc_addid() locks sma upon success. */
2ec55f80
MS
574 retval = ipc_addid(&sem_ids(ns), &sma->sem_perm, ns->sc_semmni);
575 if (retval < 0) {
39cfffd7 576 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
2ec55f80 577 return retval;
e8577d1f
MS
578 }
579 ns->used_sems += nsems;
580
6062a8dc 581 sem_unlock(sma, -1);
6d49dab8 582 rcu_read_unlock();
1da177e4 583
7ca7e564 584 return sma->sem_perm.id;
1da177e4
LT
585}
586
7748dbfa 587
f4566f04 588/*
d9a605e4 589 * Called with sem_ids.rwsem and ipcp locked.
f4566f04 590 */
00898e85 591static int sem_more_checks(struct kern_ipc_perm *ipcp, struct ipc_params *params)
7748dbfa 592{
03f02c76
ND
593 struct sem_array *sma;
594
595 sma = container_of(ipcp, struct sem_array, sem_perm);
596 if (params->u.nsems > sma->sem_nsems)
7748dbfa
ND
597 return -EINVAL;
598
599 return 0;
600}
601
69894718 602long ksys_semget(key_t key, int nsems, int semflg)
1da177e4 603{
e3893534 604 struct ipc_namespace *ns;
eb66ec44
MK
605 static const struct ipc_ops sem_ops = {
606 .getnew = newary,
50ab44b1 607 .associate = security_sem_associate,
eb66ec44
MK
608 .more_checks = sem_more_checks,
609 };
7748dbfa 610 struct ipc_params sem_params;
e3893534
KK
611
612 ns = current->nsproxy->ipc_ns;
1da177e4 613
e3893534 614 if (nsems < 0 || nsems > ns->sc_semmsl)
1da177e4 615 return -EINVAL;
7ca7e564 616
7748dbfa
ND
617 sem_params.key = key;
618 sem_params.flg = semflg;
619 sem_params.u.nsems = nsems;
1da177e4 620
7748dbfa 621 return ipcget(ns, &sem_ids(ns), &sem_ops, &sem_params);
1da177e4
LT
622}
623
69894718
DB
624SYSCALL_DEFINE3(semget, key_t, key, int, nsems, int, semflg)
625{
626 return ksys_semget(key, nsems, semflg);
627}
628
78f5009c 629/**
4ce33ec2
DB
630 * perform_atomic_semop[_slow] - Attempt to perform semaphore
631 * operations on a given array.
758a6ba3 632 * @sma: semaphore array
d198cd6d 633 * @q: struct sem_queue that describes the operation
758a6ba3 634 *
4ce33ec2
DB
635 * Caller blocking are as follows, based the value
636 * indicated by the semaphore operation (sem_op):
637 *
638 * (1) >0 never blocks.
639 * (2) 0 (wait-for-zero operation): semval is non-zero.
640 * (3) <0 attempting to decrement semval to a value smaller than zero.
641 *
758a6ba3
MS
642 * Returns 0 if the operation was possible.
643 * Returns 1 if the operation is impossible, the caller must sleep.
4ce33ec2 644 * Returns <0 for error codes.
1da177e4 645 */
4ce33ec2 646static int perform_atomic_semop_slow(struct sem_array *sma, struct sem_queue *q)
1da177e4 647{
51d6f263
EB
648 int result, sem_op, nsops;
649 struct pid *pid;
1da177e4 650 struct sembuf *sop;
239521f3 651 struct sem *curr;
d198cd6d
MS
652 struct sembuf *sops;
653 struct sem_undo *un;
654
655 sops = q->sops;
656 nsops = q->nsops;
657 un = q->undo;
1da177e4
LT
658
659 for (sop = sops; sop < sops + nsops; sop++) {
ec67aaa4
DB
660 int idx = array_index_nospec(sop->sem_num, sma->sem_nsems);
661 curr = &sma->sems[idx];
1da177e4
LT
662 sem_op = sop->sem_op;
663 result = curr->semval;
78f5009c 664
1da177e4
LT
665 if (!sem_op && result)
666 goto would_block;
667
668 result += sem_op;
669 if (result < 0)
670 goto would_block;
671 if (result > SEMVMX)
672 goto out_of_range;
78f5009c 673
1da177e4
LT
674 if (sop->sem_flg & SEM_UNDO) {
675 int undo = un->semadj[sop->sem_num] - sem_op;
78f5009c 676 /* Exceeding the undo range is an error. */
1da177e4
LT
677 if (undo < (-SEMAEM - 1) || undo > SEMAEM)
678 goto out_of_range;
78f5009c 679 un->semadj[sop->sem_num] = undo;
1da177e4 680 }
78f5009c 681
1da177e4
LT
682 curr->semval = result;
683 }
684
685 sop--;
d198cd6d 686 pid = q->pid;
1da177e4 687 while (sop >= sops) {
51d6f263 688 ipc_update_pid(&sma->sems[sop->sem_num].sempid, pid);
1da177e4
LT
689 sop--;
690 }
78f5009c 691
1da177e4
LT
692 return 0;
693
694out_of_range:
695 result = -ERANGE;
696 goto undo;
697
698would_block:
ed247b7c
MS
699 q->blocking = sop;
700
1da177e4
LT
701 if (sop->sem_flg & IPC_NOWAIT)
702 result = -EAGAIN;
703 else
704 result = 1;
705
706undo:
707 sop--;
708 while (sop >= sops) {
78f5009c 709 sem_op = sop->sem_op;
1a233956 710 sma->sems[sop->sem_num].semval -= sem_op;
78f5009c
PM
711 if (sop->sem_flg & SEM_UNDO)
712 un->semadj[sop->sem_num] += sem_op;
1da177e4
LT
713 sop--;
714 }
715
716 return result;
717}
718
4ce33ec2
DB
719static int perform_atomic_semop(struct sem_array *sma, struct sem_queue *q)
720{
721 int result, sem_op, nsops;
722 struct sembuf *sop;
723 struct sem *curr;
724 struct sembuf *sops;
725 struct sem_undo *un;
726
727 sops = q->sops;
728 nsops = q->nsops;
729 un = q->undo;
730
731 if (unlikely(q->dupsop))
732 return perform_atomic_semop_slow(sma, q);
733
734 /*
735 * We scan the semaphore set twice, first to ensure that the entire
736 * operation can succeed, therefore avoiding any pointless writes
737 * to shared memory and having to undo such changes in order to block
738 * until the operations can go through.
739 */
740 for (sop = sops; sop < sops + nsops; sop++) {
ec67aaa4
DB
741 int idx = array_index_nospec(sop->sem_num, sma->sem_nsems);
742
743 curr = &sma->sems[idx];
4ce33ec2
DB
744 sem_op = sop->sem_op;
745 result = curr->semval;
746
747 if (!sem_op && result)
748 goto would_block; /* wait-for-zero */
749
750 result += sem_op;
751 if (result < 0)
752 goto would_block;
753
754 if (result > SEMVMX)
755 return -ERANGE;
756
757 if (sop->sem_flg & SEM_UNDO) {
758 int undo = un->semadj[sop->sem_num] - sem_op;
759
760 /* Exceeding the undo range is an error. */
761 if (undo < (-SEMAEM - 1) || undo > SEMAEM)
762 return -ERANGE;
763 }
764 }
765
766 for (sop = sops; sop < sops + nsops; sop++) {
1a233956 767 curr = &sma->sems[sop->sem_num];
4ce33ec2 768 sem_op = sop->sem_op;
4ce33ec2
DB
769
770 if (sop->sem_flg & SEM_UNDO) {
771 int undo = un->semadj[sop->sem_num] - sem_op;
772
773 un->semadj[sop->sem_num] = undo;
774 }
775 curr->semval += sem_op;
51d6f263 776 ipc_update_pid(&curr->sempid, q->pid);
4ce33ec2
DB
777 }
778
779 return 0;
780
781would_block:
782 q->blocking = sop;
783 return sop->sem_flg & IPC_NOWAIT ? -EAGAIN : 1;
784}
785
9ae949fa
DB
786static inline void wake_up_sem_queue_prepare(struct sem_queue *q, int error,
787 struct wake_q_head *wake_q)
0a2b9d4c 788{
a11ddb37
VG
789 struct task_struct *sleeper;
790
791 sleeper = get_task_struct(q->sleeper);
8116b54e 792
7497835f 793 /* see SEM_BARRIER_2 for purpose/pairing */
8116b54e
MS
794 smp_store_release(&q->status, error);
795
a11ddb37 796 wake_q_add_safe(wake_q, sleeper);
d4212093
NP
797}
798
b97e820f
MS
799static void unlink_queue(struct sem_array *sma, struct sem_queue *q)
800{
801 list_del(&q->list);
9f1bc2c9 802 if (q->nsops > 1)
b97e820f
MS
803 sma->complex_count--;
804}
805
fd5db422
MS
806/** check_restart(sma, q)
807 * @sma: semaphore array
808 * @q: the operation that just completed
809 *
810 * update_queue is O(N^2) when it restarts scanning the whole queue of
811 * waiting operations. Therefore this function checks if the restart is
812 * really necessary. It is called after a previously waiting operation
1a82e9e1
MS
813 * modified the array.
814 * Note that wait-for-zero operations are handled without restart.
fd5db422 815 */
4663d3e8 816static inline int check_restart(struct sem_array *sma, struct sem_queue *q)
fd5db422 817{
1a82e9e1
MS
818 /* pending complex alter operations are too difficult to analyse */
819 if (!list_empty(&sma->pending_alter))
fd5db422
MS
820 return 1;
821
822 /* we were a sleeping complex operation. Too difficult */
823 if (q->nsops > 1)
824 return 1;
825
1a82e9e1
MS
826 /* It is impossible that someone waits for the new value:
827 * - complex operations always restart.
b1989a3d 828 * - wait-for-zero are handled separately.
1a82e9e1
MS
829 * - q is a previously sleeping simple operation that
830 * altered the array. It must be a decrement, because
831 * simple increments never sleep.
832 * - If there are older (higher priority) decrements
833 * in the queue, then they have observed the original
834 * semval value and couldn't proceed. The operation
835 * decremented to value - thus they won't proceed either.
836 */
837 return 0;
838}
fd5db422 839
1a82e9e1 840/**
8001c858 841 * wake_const_ops - wake up non-alter tasks
1a82e9e1
MS
842 * @sma: semaphore array.
843 * @semnum: semaphore that was modified.
9ae949fa 844 * @wake_q: lockless wake-queue head.
1a82e9e1
MS
845 *
846 * wake_const_ops must be called after a semaphore in a semaphore array
847 * was set to 0. If complex const operations are pending, wake_const_ops must
848 * be called with semnum = -1, as well as with the number of each modified
849 * semaphore.
9ae949fa 850 * The tasks that must be woken up are added to @wake_q. The return code
1a82e9e1
MS
851 * is stored in q->pid.
852 * The function returns 1 if at least one operation was completed successfully.
853 */
854static int wake_const_ops(struct sem_array *sma, int semnum,
9ae949fa 855 struct wake_q_head *wake_q)
1a82e9e1 856{
f150f02c 857 struct sem_queue *q, *tmp;
1a82e9e1
MS
858 struct list_head *pending_list;
859 int semop_completed = 0;
860
861 if (semnum == -1)
862 pending_list = &sma->pending_const;
863 else
1a233956 864 pending_list = &sma->sems[semnum].pending_const;
fd5db422 865
f150f02c
DB
866 list_for_each_entry_safe(q, tmp, pending_list, list) {
867 int error = perform_atomic_semop(sma, q);
1a82e9e1 868
f150f02c
DB
869 if (error > 0)
870 continue;
871 /* operation completed, remove from queue & wakeup */
872 unlink_queue(sma, q);
1a82e9e1 873
f150f02c
DB
874 wake_up_sem_queue_prepare(q, error, wake_q);
875 if (error == 0)
876 semop_completed = 1;
1a82e9e1 877 }
f150f02c 878
1a82e9e1
MS
879 return semop_completed;
880}
881
882/**
8001c858 883 * do_smart_wakeup_zero - wakeup all wait for zero tasks
1a82e9e1
MS
884 * @sma: semaphore array
885 * @sops: operations that were performed
886 * @nsops: number of operations
9ae949fa 887 * @wake_q: lockless wake-queue head
1a82e9e1 888 *
8001c858
DB
889 * Checks all required queue for wait-for-zero operations, based
890 * on the actual changes that were performed on the semaphore array.
1a82e9e1
MS
891 * The function returns 1 if at least one operation was completed successfully.
892 */
893static int do_smart_wakeup_zero(struct sem_array *sma, struct sembuf *sops,
9ae949fa 894 int nsops, struct wake_q_head *wake_q)
1a82e9e1
MS
895{
896 int i;
897 int semop_completed = 0;
898 int got_zero = 0;
899
900 /* first: the per-semaphore queues, if known */
901 if (sops) {
902 for (i = 0; i < nsops; i++) {
903 int num = sops[i].sem_num;
904
1a233956 905 if (sma->sems[num].semval == 0) {
1a82e9e1 906 got_zero = 1;
9ae949fa 907 semop_completed |= wake_const_ops(sma, num, wake_q);
1a82e9e1
MS
908 }
909 }
910 } else {
911 /*
912 * No sops means modified semaphores not known.
913 * Assume all were changed.
fd5db422 914 */
1a82e9e1 915 for (i = 0; i < sma->sem_nsems; i++) {
1a233956 916 if (sma->sems[i].semval == 0) {
1a82e9e1 917 got_zero = 1;
9ae949fa 918 semop_completed |= wake_const_ops(sma, i, wake_q);
1a82e9e1
MS
919 }
920 }
fd5db422
MS
921 }
922 /*
1a82e9e1
MS
923 * If one of the modified semaphores got 0,
924 * then check the global queue, too.
fd5db422 925 */
1a82e9e1 926 if (got_zero)
9ae949fa 927 semop_completed |= wake_const_ops(sma, -1, wake_q);
fd5db422 928
1a82e9e1 929 return semop_completed;
fd5db422
MS
930}
931
636c6be8
MS
932
933/**
8001c858 934 * update_queue - look for tasks that can be completed.
636c6be8
MS
935 * @sma: semaphore array.
936 * @semnum: semaphore that was modified.
9ae949fa 937 * @wake_q: lockless wake-queue head.
636c6be8
MS
938 *
939 * update_queue must be called after a semaphore in a semaphore array
9f1bc2c9
RR
940 * was modified. If multiple semaphores were modified, update_queue must
941 * be called with semnum = -1, as well as with the number of each modified
942 * semaphore.
9ae949fa 943 * The tasks that must be woken up are added to @wake_q. The return code
0a2b9d4c 944 * is stored in q->pid.
1a82e9e1
MS
945 * The function internally checks if const operations can now succeed.
946 *
0a2b9d4c 947 * The function return 1 if at least one semop was completed successfully.
1da177e4 948 */
9ae949fa 949static int update_queue(struct sem_array *sma, int semnum, struct wake_q_head *wake_q)
1da177e4 950{
f150f02c 951 struct sem_queue *q, *tmp;
636c6be8 952 struct list_head *pending_list;
0a2b9d4c 953 int semop_completed = 0;
636c6be8 954
9f1bc2c9 955 if (semnum == -1)
1a82e9e1 956 pending_list = &sma->pending_alter;
9f1bc2c9 957 else
1a233956 958 pending_list = &sma->sems[semnum].pending_alter;
9cad200c
NP
959
960again:
f150f02c 961 list_for_each_entry_safe(q, tmp, pending_list, list) {
fd5db422 962 int error, restart;
636c6be8 963
d987f8b2
MS
964 /* If we are scanning the single sop, per-semaphore list of
965 * one semaphore and that semaphore is 0, then it is not
1a82e9e1 966 * necessary to scan further: simple increments
d987f8b2
MS
967 * that affect only one entry succeed immediately and cannot
968 * be in the per semaphore pending queue, and decrements
969 * cannot be successful if the value is already 0.
970 */
1a233956 971 if (semnum != -1 && sma->sems[semnum].semval == 0)
d987f8b2
MS
972 break;
973
d198cd6d 974 error = perform_atomic_semop(sma, q);
1da177e4
LT
975
976 /* Does q->sleeper still need to sleep? */
9cad200c
NP
977 if (error > 0)
978 continue;
979
b97e820f 980 unlink_queue(sma, q);
9cad200c 981
0a2b9d4c 982 if (error) {
fd5db422 983 restart = 0;
0a2b9d4c
MS
984 } else {
985 semop_completed = 1;
9ae949fa 986 do_smart_wakeup_zero(sma, q->sops, q->nsops, wake_q);
fd5db422 987 restart = check_restart(sma, q);
0a2b9d4c 988 }
fd5db422 989
9ae949fa 990 wake_up_sem_queue_prepare(q, error, wake_q);
fd5db422 991 if (restart)
9cad200c 992 goto again;
1da177e4 993 }
0a2b9d4c 994 return semop_completed;
1da177e4
LT
995}
996
0e8c6656 997/**
8001c858 998 * set_semotime - set sem_otime
0e8c6656
MS
999 * @sma: semaphore array
1000 * @sops: operations that modified the array, may be NULL
1001 *
1002 * sem_otime is replicated to avoid cache line trashing.
1003 * This function sets one instance to the current time.
1004 */
1005static void set_semotime(struct sem_array *sma, struct sembuf *sops)
1006{
1007 if (sops == NULL) {
2a70b787 1008 sma->sems[0].sem_otime = ktime_get_real_seconds();
0e8c6656 1009 } else {
1a233956 1010 sma->sems[sops[0].sem_num].sem_otime =
2a70b787 1011 ktime_get_real_seconds();
0e8c6656
MS
1012 }
1013}
1014
0a2b9d4c 1015/**
8001c858 1016 * do_smart_update - optimized update_queue
fd5db422
MS
1017 * @sma: semaphore array
1018 * @sops: operations that were performed
1019 * @nsops: number of operations
0a2b9d4c 1020 * @otime: force setting otime
9ae949fa 1021 * @wake_q: lockless wake-queue head
fd5db422 1022 *
1a82e9e1
MS
1023 * do_smart_update() does the required calls to update_queue and wakeup_zero,
1024 * based on the actual changes that were performed on the semaphore array.
0a2b9d4c 1025 * Note that the function does not do the actual wake-up: the caller is
9ae949fa 1026 * responsible for calling wake_up_q().
0a2b9d4c 1027 * It is safe to perform this call after dropping all locks.
fd5db422 1028 */
0a2b9d4c 1029static void do_smart_update(struct sem_array *sma, struct sembuf *sops, int nsops,
9ae949fa 1030 int otime, struct wake_q_head *wake_q)
fd5db422
MS
1031{
1032 int i;
1033
9ae949fa 1034 otime |= do_smart_wakeup_zero(sma, sops, nsops, wake_q);
1a82e9e1 1035
f269f40a
MS
1036 if (!list_empty(&sma->pending_alter)) {
1037 /* semaphore array uses the global queue - just process it. */
9ae949fa 1038 otime |= update_queue(sma, -1, wake_q);
f269f40a
MS
1039 } else {
1040 if (!sops) {
1041 /*
1042 * No sops, thus the modified semaphores are not
1043 * known. Check all.
1044 */
1045 for (i = 0; i < sma->sem_nsems; i++)
9ae949fa 1046 otime |= update_queue(sma, i, wake_q);
f269f40a
MS
1047 } else {
1048 /*
1049 * Check the semaphores that were increased:
1050 * - No complex ops, thus all sleeping ops are
1051 * decrease.
1052 * - if we decreased the value, then any sleeping
b1989a3d 1053 * semaphore ops won't be able to run: If the
f269f40a
MS
1054 * previous value was too small, then the new
1055 * value will be too small, too.
1056 */
1057 for (i = 0; i < nsops; i++) {
1058 if (sops[i].sem_op > 0) {
1059 otime |= update_queue(sma,
9ae949fa 1060 sops[i].sem_num, wake_q);
f269f40a 1061 }
ab465df9 1062 }
9f1bc2c9 1063 }
fd5db422 1064 }
0e8c6656
MS
1065 if (otime)
1066 set_semotime(sma, sops);
fd5db422
MS
1067}
1068
2f2ed41d 1069/*
b220c57a 1070 * check_qop: Test if a queued operation sleeps on the semaphore semnum
2f2ed41d
MS
1071 */
1072static int check_qop(struct sem_array *sma, int semnum, struct sem_queue *q,
1073 bool count_zero)
1074{
b220c57a 1075 struct sembuf *sop = q->blocking;
2f2ed41d 1076
9b44ee2e
MS
1077 /*
1078 * Linux always (since 0.99.10) reported a task as sleeping on all
1079 * semaphores. This violates SUS, therefore it was changed to the
1080 * standard compliant behavior.
1081 * Give the administrators a chance to notice that an application
1082 * might misbehave because it relies on the Linux behavior.
1083 */
1084 pr_info_once("semctl(GETNCNT/GETZCNT) is since 3.16 Single Unix Specification compliant.\n"
1085 "The task %s (%d) triggered the difference, watch for misbehavior.\n",
1086 current->comm, task_pid_nr(current));
1087
b220c57a
MS
1088 if (sop->sem_num != semnum)
1089 return 0;
2f2ed41d 1090
b220c57a
MS
1091 if (count_zero && sop->sem_op == 0)
1092 return 1;
1093 if (!count_zero && sop->sem_op < 0)
1094 return 1;
1095
1096 return 0;
2f2ed41d
MS
1097}
1098
1da177e4
LT
1099/* The following counts are associated to each semaphore:
1100 * semncnt number of tasks waiting on semval being nonzero
1101 * semzcnt number of tasks waiting on semval being zero
b220c57a
MS
1102 *
1103 * Per definition, a task waits only on the semaphore of the first semop
1104 * that cannot proceed, even if additional operation would block, too.
1da177e4 1105 */
2f2ed41d
MS
1106static int count_semcnt(struct sem_array *sma, ushort semnum,
1107 bool count_zero)
1da177e4 1108{
2f2ed41d 1109 struct list_head *l;
239521f3 1110 struct sem_queue *q;
2f2ed41d 1111 int semcnt;
1da177e4 1112
2f2ed41d
MS
1113 semcnt = 0;
1114 /* First: check the simple operations. They are easy to evaluate */
1115 if (count_zero)
1a233956 1116 l = &sma->sems[semnum].pending_const;
2f2ed41d 1117 else
1a233956 1118 l = &sma->sems[semnum].pending_alter;
1da177e4 1119
2f2ed41d
MS
1120 list_for_each_entry(q, l, list) {
1121 /* all task on a per-semaphore list sleep on exactly
1122 * that semaphore
1123 */
1124 semcnt++;
ebc2e5e6
RR
1125 }
1126
2f2ed41d 1127 /* Then: check the complex operations. */
1994862d 1128 list_for_each_entry(q, &sma->pending_alter, list) {
2f2ed41d
MS
1129 semcnt += check_qop(sma, semnum, q, count_zero);
1130 }
1131 if (count_zero) {
1132 list_for_each_entry(q, &sma->pending_const, list) {
1133 semcnt += check_qop(sma, semnum, q, count_zero);
1134 }
1994862d 1135 }
2f2ed41d 1136 return semcnt;
1da177e4
LT
1137}
1138
d9a605e4
DB
1139/* Free a semaphore set. freeary() is called with sem_ids.rwsem locked
1140 * as a writer and the spinlock for this semaphore set hold. sem_ids.rwsem
3e148c79 1141 * remains locked on exit.
1da177e4 1142 */
01b8b07a 1143static void freeary(struct ipc_namespace *ns, struct kern_ipc_perm *ipcp)
1da177e4 1144{
380af1b3
MS
1145 struct sem_undo *un, *tu;
1146 struct sem_queue *q, *tq;
01b8b07a 1147 struct sem_array *sma = container_of(ipcp, struct sem_array, sem_perm);
9f1bc2c9 1148 int i;
9ae949fa 1149 DEFINE_WAKE_Q(wake_q);
1da177e4 1150
380af1b3 1151 /* Free the existing undo structures for this semaphore set. */
cf9d5d78 1152 ipc_assert_locked_object(&sma->sem_perm);
380af1b3
MS
1153 list_for_each_entry_safe(un, tu, &sma->list_id, list_id) {
1154 list_del(&un->list_id);
1155 spin_lock(&un->ulp->lock);
1da177e4 1156 un->semid = -1;
380af1b3
MS
1157 list_del_rcu(&un->list_proc);
1158 spin_unlock(&un->ulp->lock);
fc37a3b8 1159 kvfree_rcu(un, rcu);
380af1b3 1160 }
1da177e4
LT
1161
1162 /* Wake up all pending processes and let them fail with EIDRM. */
1a82e9e1
MS
1163 list_for_each_entry_safe(q, tq, &sma->pending_const, list) {
1164 unlink_queue(sma, q);
9ae949fa 1165 wake_up_sem_queue_prepare(q, -EIDRM, &wake_q);
1a82e9e1
MS
1166 }
1167
1168 list_for_each_entry_safe(q, tq, &sma->pending_alter, list) {
b97e820f 1169 unlink_queue(sma, q);
9ae949fa 1170 wake_up_sem_queue_prepare(q, -EIDRM, &wake_q);
1da177e4 1171 }
9f1bc2c9 1172 for (i = 0; i < sma->sem_nsems; i++) {
1a233956 1173 struct sem *sem = &sma->sems[i];
1a82e9e1
MS
1174 list_for_each_entry_safe(q, tq, &sem->pending_const, list) {
1175 unlink_queue(sma, q);
9ae949fa 1176 wake_up_sem_queue_prepare(q, -EIDRM, &wake_q);
1a82e9e1
MS
1177 }
1178 list_for_each_entry_safe(q, tq, &sem->pending_alter, list) {
9f1bc2c9 1179 unlink_queue(sma, q);
9ae949fa 1180 wake_up_sem_queue_prepare(q, -EIDRM, &wake_q);
9f1bc2c9 1181 }
51d6f263 1182 ipc_update_pid(&sem->sempid, NULL);
9f1bc2c9 1183 }
1da177e4 1184
7ca7e564
ND
1185 /* Remove the semaphore set from the IDR */
1186 sem_rmid(ns, sma);
6062a8dc 1187 sem_unlock(sma, -1);
6d49dab8 1188 rcu_read_unlock();
1da177e4 1189
9ae949fa 1190 wake_up_q(&wake_q);
e3893534 1191 ns->used_sems -= sma->sem_nsems;
dba4cdd3 1192 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
1da177e4
LT
1193}
1194
1195static unsigned long copy_semid_to_user(void __user *buf, struct semid64_ds *in, int version)
1196{
239521f3 1197 switch (version) {
1da177e4
LT
1198 case IPC_64:
1199 return copy_to_user(buf, in, sizeof(*in));
1200 case IPC_OLD:
1201 {
1202 struct semid_ds out;
1203
982f7c2b
DR
1204 memset(&out, 0, sizeof(out));
1205
1da177e4
LT
1206 ipc64_perm_to_ipc_perm(&in->sem_perm, &out.sem_perm);
1207
1208 out.sem_otime = in->sem_otime;
1209 out.sem_ctime = in->sem_ctime;
1210 out.sem_nsems = in->sem_nsems;
1211
1212 return copy_to_user(buf, &out, sizeof(out));
1213 }
1214 default:
1215 return -EINVAL;
1216 }
1217}
1218
e54d02b2 1219static time64_t get_semotime(struct sem_array *sma)
d12e1e50
MS
1220{
1221 int i;
e54d02b2 1222 time64_t res;
d12e1e50 1223
1a233956 1224 res = sma->sems[0].sem_otime;
d12e1e50 1225 for (i = 1; i < sma->sem_nsems; i++) {
e54d02b2 1226 time64_t to = sma->sems[i].sem_otime;
d12e1e50
MS
1227
1228 if (to > res)
1229 res = to;
1230 }
1231 return res;
1232}
1233
45a4a64a
AV
1234static int semctl_stat(struct ipc_namespace *ns, int semid,
1235 int cmd, struct semid64_ds *semid64)
1da177e4 1236{
1da177e4 1237 struct sem_array *sma;
c2ab975c 1238 time64_t semotime;
45a4a64a 1239 int err;
1da177e4 1240
45a4a64a 1241 memset(semid64, 0, sizeof(*semid64));
46c0a8ca 1242
45a4a64a 1243 rcu_read_lock();
a280d6dc 1244 if (cmd == SEM_STAT || cmd == SEM_STAT_ANY) {
45a4a64a
AV
1245 sma = sem_obtain_object(ns, semid);
1246 if (IS_ERR(sma)) {
1247 err = PTR_ERR(sma);
1248 goto out_unlock;
1249 }
a280d6dc 1250 } else { /* IPC_STAT */
45a4a64a
AV
1251 sma = sem_obtain_object_check(ns, semid);
1252 if (IS_ERR(sma)) {
1253 err = PTR_ERR(sma);
1254 goto out_unlock;
1da177e4 1255 }
1da177e4 1256 }
1da177e4 1257
a280d6dc
DB
1258 /* see comment for SHM_STAT_ANY */
1259 if (cmd == SEM_STAT_ANY)
1260 audit_ipc_obj(&sma->sem_perm);
1261 else {
1262 err = -EACCES;
1263 if (ipcperms(ns, &sma->sem_perm, S_IRUGO))
1264 goto out_unlock;
1265 }
1da177e4 1266
aefad959 1267 err = security_sem_semctl(&sma->sem_perm, cmd);
45a4a64a
AV
1268 if (err)
1269 goto out_unlock;
1da177e4 1270
87ad4b0d
PM
1271 ipc_lock_object(&sma->sem_perm);
1272
1273 if (!ipc_valid_object(&sma->sem_perm)) {
1274 ipc_unlock_object(&sma->sem_perm);
1275 err = -EIDRM;
1276 goto out_unlock;
1277 }
1278
45a4a64a 1279 kernel_to_ipc64_perm(&sma->sem_perm, &semid64->sem_perm);
c2ab975c
AB
1280 semotime = get_semotime(sma);
1281 semid64->sem_otime = semotime;
45a4a64a 1282 semid64->sem_ctime = sma->sem_ctime;
c2ab975c
AB
1283#ifndef CONFIG_64BIT
1284 semid64->sem_otime_high = semotime >> 32;
1285 semid64->sem_ctime_high = sma->sem_ctime >> 32;
1286#endif
45a4a64a 1287 semid64->sem_nsems = sma->sem_nsems;
87ad4b0d 1288
615c999c
MS
1289 if (cmd == IPC_STAT) {
1290 /*
1291 * As defined in SUS:
1292 * Return 0 on success
1293 */
1294 err = 0;
1295 } else {
1296 /*
1297 * SEM_STAT and SEM_STAT_ANY (both Linux specific)
1298 * Return the full id, including the sequence number
1299 */
1300 err = sma->sem_perm.id;
1301 }
87ad4b0d 1302 ipc_unlock_object(&sma->sem_perm);
1da177e4 1303out_unlock:
16df3674 1304 rcu_read_unlock();
1da177e4
LT
1305 return err;
1306}
1307
45a4a64a
AV
1308static int semctl_info(struct ipc_namespace *ns, int semid,
1309 int cmd, void __user *p)
1310{
1311 struct seminfo seminfo;
27c331a1 1312 int max_idx;
45a4a64a
AV
1313 int err;
1314
1315 err = security_sem_semctl(NULL, cmd);
1316 if (err)
1317 return err;
1318
1319 memset(&seminfo, 0, sizeof(seminfo));
1320 seminfo.semmni = ns->sc_semmni;
1321 seminfo.semmns = ns->sc_semmns;
1322 seminfo.semmsl = ns->sc_semmsl;
1323 seminfo.semopm = ns->sc_semopm;
1324 seminfo.semvmx = SEMVMX;
1325 seminfo.semmnu = SEMMNU;
1326 seminfo.semmap = SEMMAP;
1327 seminfo.semume = SEMUME;
1328 down_read(&sem_ids(ns).rwsem);
1329 if (cmd == SEM_INFO) {
1330 seminfo.semusz = sem_ids(ns).in_use;
1331 seminfo.semaem = ns->used_sems;
1332 } else {
1333 seminfo.semusz = SEMUSZ;
1334 seminfo.semaem = SEMAEM;
1335 }
27c331a1 1336 max_idx = ipc_get_maxidx(&sem_ids(ns));
45a4a64a
AV
1337 up_read(&sem_ids(ns).rwsem);
1338 if (copy_to_user(p, &seminfo, sizeof(struct seminfo)))
1339 return -EFAULT;
27c331a1 1340 return (max_idx < 0) ? 0 : max_idx;
45a4a64a
AV
1341}
1342
e1fd1f49 1343static int semctl_setval(struct ipc_namespace *ns, int semid, int semnum,
45a4a64a 1344 int val)
e1fd1f49
AV
1345{
1346 struct sem_undo *un;
1347 struct sem_array *sma;
239521f3 1348 struct sem *curr;
45a4a64a 1349 int err;
9ae949fa
DB
1350 DEFINE_WAKE_Q(wake_q);
1351
6062a8dc
RR
1352 if (val > SEMVMX || val < 0)
1353 return -ERANGE;
e1fd1f49 1354
6062a8dc
RR
1355 rcu_read_lock();
1356 sma = sem_obtain_object_check(ns, semid);
1357 if (IS_ERR(sma)) {
1358 rcu_read_unlock();
1359 return PTR_ERR(sma);
1360 }
1361
1362 if (semnum < 0 || semnum >= sma->sem_nsems) {
1363 rcu_read_unlock();
1364 return -EINVAL;
1365 }
1366
1367
1368 if (ipcperms(ns, &sma->sem_perm, S_IWUGO)) {
1369 rcu_read_unlock();
1370 return -EACCES;
1371 }
e1fd1f49 1372
aefad959 1373 err = security_sem_semctl(&sma->sem_perm, SETVAL);
6062a8dc
RR
1374 if (err) {
1375 rcu_read_unlock();
1376 return -EACCES;
1377 }
e1fd1f49 1378
6062a8dc 1379 sem_lock(sma, NULL, -1);
e1fd1f49 1380
0f3d2b01 1381 if (!ipc_valid_object(&sma->sem_perm)) {
6e224f94
MS
1382 sem_unlock(sma, -1);
1383 rcu_read_unlock();
1384 return -EIDRM;
1385 }
1386
ec67aaa4 1387 semnum = array_index_nospec(semnum, sma->sem_nsems);
1a233956 1388 curr = &sma->sems[semnum];
e1fd1f49 1389
cf9d5d78 1390 ipc_assert_locked_object(&sma->sem_perm);
e1fd1f49
AV
1391 list_for_each_entry(un, &sma->list_id, list_id)
1392 un->semadj[semnum] = 0;
1393
1394 curr->semval = val;
51d6f263 1395 ipc_update_pid(&curr->sempid, task_tgid(current));
e54d02b2 1396 sma->sem_ctime = ktime_get_real_seconds();
e1fd1f49 1397 /* maybe some queued-up processes were waiting for this */
9ae949fa 1398 do_smart_update(sma, NULL, 0, 0, &wake_q);
6062a8dc 1399 sem_unlock(sma, -1);
6d49dab8 1400 rcu_read_unlock();
9ae949fa 1401 wake_up_q(&wake_q);
6062a8dc 1402 return 0;
e1fd1f49
AV
1403}
1404
e3893534 1405static int semctl_main(struct ipc_namespace *ns, int semid, int semnum,
e1fd1f49 1406 int cmd, void __user *p)
1da177e4
LT
1407{
1408 struct sem_array *sma;
239521f3 1409 struct sem *curr;
16df3674 1410 int err, nsems;
1da177e4 1411 ushort fast_sem_io[SEMMSL_FAST];
239521f3 1412 ushort *sem_io = fast_sem_io;
9ae949fa 1413 DEFINE_WAKE_Q(wake_q);
16df3674
DB
1414
1415 rcu_read_lock();
1416 sma = sem_obtain_object_check(ns, semid);
1417 if (IS_ERR(sma)) {
1418 rcu_read_unlock();
023a5355 1419 return PTR_ERR(sma);
16df3674 1420 }
1da177e4
LT
1421
1422 nsems = sma->sem_nsems;
1423
1da177e4 1424 err = -EACCES;
c728b9c8
LT
1425 if (ipcperms(ns, &sma->sem_perm, cmd == SETALL ? S_IWUGO : S_IRUGO))
1426 goto out_rcu_wakeup;
1da177e4 1427
aefad959 1428 err = security_sem_semctl(&sma->sem_perm, cmd);
c728b9c8
LT
1429 if (err)
1430 goto out_rcu_wakeup;
1da177e4 1431
1da177e4
LT
1432 switch (cmd) {
1433 case GETALL:
1434 {
e1fd1f49 1435 ushort __user *array = p;
1da177e4
LT
1436 int i;
1437
ce857229 1438 sem_lock(sma, NULL, -1);
0f3d2b01 1439 if (!ipc_valid_object(&sma->sem_perm)) {
6e224f94
MS
1440 err = -EIDRM;
1441 goto out_unlock;
1442 }
239521f3 1443 if (nsems > SEMMSL_FAST) {
dba4cdd3 1444 if (!ipc_rcu_getref(&sma->sem_perm)) {
ce857229 1445 err = -EIDRM;
6e224f94 1446 goto out_unlock;
ce857229
AV
1447 }
1448 sem_unlock(sma, -1);
6d49dab8 1449 rcu_read_unlock();
f8dbe8d2
KC
1450 sem_io = kvmalloc_array(nsems, sizeof(ushort),
1451 GFP_KERNEL);
239521f3 1452 if (sem_io == NULL) {
dba4cdd3 1453 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
1da177e4
LT
1454 return -ENOMEM;
1455 }
1456
4091fd94 1457 rcu_read_lock();
6ff37972 1458 sem_lock_and_putref(sma);
0f3d2b01 1459 if (!ipc_valid_object(&sma->sem_perm)) {
1da177e4 1460 err = -EIDRM;
6e224f94 1461 goto out_unlock;
1da177e4 1462 }
ce857229 1463 }
1da177e4 1464 for (i = 0; i < sma->sem_nsems; i++)
1a233956 1465 sem_io[i] = sma->sems[i].semval;
6062a8dc 1466 sem_unlock(sma, -1);
6d49dab8 1467 rcu_read_unlock();
1da177e4 1468 err = 0;
239521f3 1469 if (copy_to_user(array, sem_io, nsems*sizeof(ushort)))
1da177e4
LT
1470 err = -EFAULT;
1471 goto out_free;
1472 }
1473 case SETALL:
1474 {
1475 int i;
1476 struct sem_undo *un;
1477
dba4cdd3 1478 if (!ipc_rcu_getref(&sma->sem_perm)) {
6e224f94
MS
1479 err = -EIDRM;
1480 goto out_rcu_wakeup;
6062a8dc 1481 }
16df3674 1482 rcu_read_unlock();
1da177e4 1483
239521f3 1484 if (nsems > SEMMSL_FAST) {
f8dbe8d2
KC
1485 sem_io = kvmalloc_array(nsems, sizeof(ushort),
1486 GFP_KERNEL);
239521f3 1487 if (sem_io == NULL) {
dba4cdd3 1488 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
1da177e4
LT
1489 return -ENOMEM;
1490 }
1491 }
1492
239521f3 1493 if (copy_from_user(sem_io, p, nsems*sizeof(ushort))) {
dba4cdd3 1494 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
1da177e4
LT
1495 err = -EFAULT;
1496 goto out_free;
1497 }
1498
1499 for (i = 0; i < nsems; i++) {
1500 if (sem_io[i] > SEMVMX) {
dba4cdd3 1501 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
1da177e4
LT
1502 err = -ERANGE;
1503 goto out_free;
1504 }
1505 }
4091fd94 1506 rcu_read_lock();
6ff37972 1507 sem_lock_and_putref(sma);
0f3d2b01 1508 if (!ipc_valid_object(&sma->sem_perm)) {
1da177e4 1509 err = -EIDRM;
6e224f94 1510 goto out_unlock;
1da177e4
LT
1511 }
1512
a5f4db87 1513 for (i = 0; i < nsems; i++) {
1a233956 1514 sma->sems[i].semval = sem_io[i];
51d6f263 1515 ipc_update_pid(&sma->sems[i].sempid, task_tgid(current));
a5f4db87 1516 }
4daa28f6 1517
cf9d5d78 1518 ipc_assert_locked_object(&sma->sem_perm);
4daa28f6 1519 list_for_each_entry(un, &sma->list_id, list_id) {
1da177e4
LT
1520 for (i = 0; i < nsems; i++)
1521 un->semadj[i] = 0;
4daa28f6 1522 }
e54d02b2 1523 sma->sem_ctime = ktime_get_real_seconds();
1da177e4 1524 /* maybe some queued-up processes were waiting for this */
9ae949fa 1525 do_smart_update(sma, NULL, 0, 0, &wake_q);
1da177e4
LT
1526 err = 0;
1527 goto out_unlock;
1528 }
e1fd1f49 1529 /* GETVAL, GETPID, GETNCTN, GETZCNT: fall-through */
1da177e4
LT
1530 }
1531 err = -EINVAL;
c728b9c8
LT
1532 if (semnum < 0 || semnum >= nsems)
1533 goto out_rcu_wakeup;
1da177e4 1534
6062a8dc 1535 sem_lock(sma, NULL, -1);
0f3d2b01 1536 if (!ipc_valid_object(&sma->sem_perm)) {
6e224f94
MS
1537 err = -EIDRM;
1538 goto out_unlock;
1539 }
ec67aaa4
DB
1540
1541 semnum = array_index_nospec(semnum, nsems);
1a233956 1542 curr = &sma->sems[semnum];
1da177e4
LT
1543
1544 switch (cmd) {
1545 case GETVAL:
1546 err = curr->semval;
1547 goto out_unlock;
1548 case GETPID:
51d6f263 1549 err = pid_vnr(curr->sempid);
1da177e4
LT
1550 goto out_unlock;
1551 case GETNCNT:
2f2ed41d 1552 err = count_semcnt(sma, semnum, 0);
1da177e4
LT
1553 goto out_unlock;
1554 case GETZCNT:
2f2ed41d 1555 err = count_semcnt(sma, semnum, 1);
1da177e4 1556 goto out_unlock;
1da177e4 1557 }
16df3674 1558
1da177e4 1559out_unlock:
6062a8dc 1560 sem_unlock(sma, -1);
c728b9c8 1561out_rcu_wakeup:
6d49dab8 1562 rcu_read_unlock();
9ae949fa 1563 wake_up_q(&wake_q);
1da177e4 1564out_free:
239521f3 1565 if (sem_io != fast_sem_io)
f8dbe8d2 1566 kvfree(sem_io);
1da177e4
LT
1567 return err;
1568}
1569
016d7132
PP
1570static inline unsigned long
1571copy_semid_from_user(struct semid64_ds *out, void __user *buf, int version)
1da177e4 1572{
239521f3 1573 switch (version) {
1da177e4 1574 case IPC_64:
016d7132 1575 if (copy_from_user(out, buf, sizeof(*out)))
1da177e4 1576 return -EFAULT;
1da177e4 1577 return 0;
1da177e4
LT
1578 case IPC_OLD:
1579 {
1580 struct semid_ds tbuf_old;
1581
239521f3 1582 if (copy_from_user(&tbuf_old, buf, sizeof(tbuf_old)))
1da177e4
LT
1583 return -EFAULT;
1584
016d7132
PP
1585 out->sem_perm.uid = tbuf_old.sem_perm.uid;
1586 out->sem_perm.gid = tbuf_old.sem_perm.gid;
1587 out->sem_perm.mode = tbuf_old.sem_perm.mode;
1da177e4
LT
1588
1589 return 0;
1590 }
1591 default:
1592 return -EINVAL;
1593 }
1594}
1595
522bb2a2 1596/*
d9a605e4 1597 * This function handles some semctl commands which require the rwsem
522bb2a2 1598 * to be held in write mode.
d9a605e4 1599 * NOTE: no locks must be held, the rwsem is taken inside this function.
522bb2a2 1600 */
21a4826a 1601static int semctl_down(struct ipc_namespace *ns, int semid,
45a4a64a 1602 int cmd, struct semid64_ds *semid64)
1da177e4
LT
1603{
1604 struct sem_array *sma;
1605 int err;
1da177e4
LT
1606 struct kern_ipc_perm *ipcp;
1607
d9a605e4 1608 down_write(&sem_ids(ns).rwsem);
7b4cc5d8
DB
1609 rcu_read_lock();
1610
4241c1a3 1611 ipcp = ipcctl_obtain_check(ns, &sem_ids(ns), semid, cmd,
45a4a64a 1612 &semid64->sem_perm, 0);
7b4cc5d8
DB
1613 if (IS_ERR(ipcp)) {
1614 err = PTR_ERR(ipcp);
7b4cc5d8
DB
1615 goto out_unlock1;
1616 }
073115d6 1617
a5f75e7f 1618 sma = container_of(ipcp, struct sem_array, sem_perm);
1da177e4 1619
aefad959 1620 err = security_sem_semctl(&sma->sem_perm, cmd);
7b4cc5d8
DB
1621 if (err)
1622 goto out_unlock1;
1da177e4 1623
7b4cc5d8 1624 switch (cmd) {
1da177e4 1625 case IPC_RMID:
6062a8dc 1626 sem_lock(sma, NULL, -1);
7b4cc5d8 1627 /* freeary unlocks the ipc object and rcu */
01b8b07a 1628 freeary(ns, ipcp);
522bb2a2 1629 goto out_up;
1da177e4 1630 case IPC_SET:
6062a8dc 1631 sem_lock(sma, NULL, -1);
45a4a64a 1632 err = ipc_update_perm(&semid64->sem_perm, ipcp);
1efdb69b 1633 if (err)
7b4cc5d8 1634 goto out_unlock0;
e54d02b2 1635 sma->sem_ctime = ktime_get_real_seconds();
1da177e4
LT
1636 break;
1637 default:
1da177e4 1638 err = -EINVAL;
7b4cc5d8 1639 goto out_unlock1;
1da177e4 1640 }
1da177e4 1641
7b4cc5d8 1642out_unlock0:
6062a8dc 1643 sem_unlock(sma, -1);
7b4cc5d8 1644out_unlock1:
6d49dab8 1645 rcu_read_unlock();
522bb2a2 1646out_up:
d9a605e4 1647 up_write(&sem_ids(ns).rwsem);
1da177e4
LT
1648 return err;
1649}
1650
275f2214 1651static long ksys_semctl(int semid, int semnum, int cmd, unsigned long arg, int version)
1da177e4 1652{
e3893534 1653 struct ipc_namespace *ns;
e1fd1f49 1654 void __user *p = (void __user *)arg;
45a4a64a
AV
1655 struct semid64_ds semid64;
1656 int err;
1da177e4
LT
1657
1658 if (semid < 0)
1659 return -EINVAL;
1660
e3893534 1661 ns = current->nsproxy->ipc_ns;
1da177e4 1662
239521f3 1663 switch (cmd) {
1da177e4
LT
1664 case IPC_INFO:
1665 case SEM_INFO:
45a4a64a 1666 return semctl_info(ns, semid, cmd, p);
4b9fcb0e 1667 case IPC_STAT:
1da177e4 1668 case SEM_STAT:
a280d6dc 1669 case SEM_STAT_ANY:
45a4a64a
AV
1670 err = semctl_stat(ns, semid, cmd, &semid64);
1671 if (err < 0)
1672 return err;
1673 if (copy_semid_to_user(p, &semid64, version))
1674 err = -EFAULT;
1675 return err;
1da177e4
LT
1676 case GETALL:
1677 case GETVAL:
1678 case GETPID:
1679 case GETNCNT:
1680 case GETZCNT:
1da177e4 1681 case SETALL:
e1fd1f49 1682 return semctl_main(ns, semid, semnum, cmd, p);
45a4a64a
AV
1683 case SETVAL: {
1684 int val;
1685#if defined(CONFIG_64BIT) && defined(__BIG_ENDIAN)
1686 /* big-endian 64bit */
1687 val = arg >> 32;
1688#else
1689 /* 32bit or little-endian 64bit */
1690 val = arg;
1691#endif
1692 return semctl_setval(ns, semid, semnum, val);
1693 }
1da177e4 1694 case IPC_SET:
45a4a64a
AV
1695 if (copy_semid_from_user(&semid64, p, version))
1696 return -EFAULT;
df561f66 1697 fallthrough;
45a4a64a
AV
1698 case IPC_RMID:
1699 return semctl_down(ns, semid, cmd, &semid64);
1da177e4
LT
1700 default:
1701 return -EINVAL;
1702 }
1703}
1704
d969c6fa
DB
1705SYSCALL_DEFINE4(semctl, int, semid, int, semnum, int, cmd, unsigned long, arg)
1706{
275f2214 1707 return ksys_semctl(semid, semnum, cmd, arg, IPC_64);
d969c6fa
DB
1708}
1709
275f2214
AB
1710#ifdef CONFIG_ARCH_WANT_IPC_PARSE_VERSION
1711long ksys_old_semctl(int semid, int semnum, int cmd, unsigned long arg)
1712{
1713 int version = ipc_parse_version(&cmd);
1714
1715 return ksys_semctl(semid, semnum, cmd, arg, version);
1716}
1717
1718SYSCALL_DEFINE4(old_semctl, int, semid, int, semnum, int, cmd, unsigned long, arg)
1719{
1720 return ksys_old_semctl(semid, semnum, cmd, arg);
1721}
1722#endif
1723
c0ebccb6
AV
1724#ifdef CONFIG_COMPAT
1725
1726struct compat_semid_ds {
1727 struct compat_ipc_perm sem_perm;
9afc5eee
AB
1728 old_time32_t sem_otime;
1729 old_time32_t sem_ctime;
c0ebccb6
AV
1730 compat_uptr_t sem_base;
1731 compat_uptr_t sem_pending;
1732 compat_uptr_t sem_pending_last;
1733 compat_uptr_t undo;
1734 unsigned short sem_nsems;
1735};
1736
1737static int copy_compat_semid_from_user(struct semid64_ds *out, void __user *buf,
1738 int version)
1739{
1740 memset(out, 0, sizeof(*out));
1741 if (version == IPC_64) {
6aa211e8 1742 struct compat_semid64_ds __user *p = buf;
c0ebccb6
AV
1743 return get_compat_ipc64_perm(&out->sem_perm, &p->sem_perm);
1744 } else {
6aa211e8 1745 struct compat_semid_ds __user *p = buf;
c0ebccb6
AV
1746 return get_compat_ipc_perm(&out->sem_perm, &p->sem_perm);
1747 }
1748}
1749
1750static int copy_compat_semid_to_user(void __user *buf, struct semid64_ds *in,
1751 int version)
1752{
1753 if (version == IPC_64) {
1754 struct compat_semid64_ds v;
1755 memset(&v, 0, sizeof(v));
1756 to_compat_ipc64_perm(&v.sem_perm, &in->sem_perm);
c2ab975c
AB
1757 v.sem_otime = lower_32_bits(in->sem_otime);
1758 v.sem_otime_high = upper_32_bits(in->sem_otime);
1759 v.sem_ctime = lower_32_bits(in->sem_ctime);
1760 v.sem_ctime_high = upper_32_bits(in->sem_ctime);
c0ebccb6
AV
1761 v.sem_nsems = in->sem_nsems;
1762 return copy_to_user(buf, &v, sizeof(v));
1763 } else {
1764 struct compat_semid_ds v;
1765 memset(&v, 0, sizeof(v));
1766 to_compat_ipc_perm(&v.sem_perm, &in->sem_perm);
1767 v.sem_otime = in->sem_otime;
1768 v.sem_ctime = in->sem_ctime;
1769 v.sem_nsems = in->sem_nsems;
1770 return copy_to_user(buf, &v, sizeof(v));
1771 }
1772}
1773
275f2214 1774static long compat_ksys_semctl(int semid, int semnum, int cmd, int arg, int version)
c0ebccb6
AV
1775{
1776 void __user *p = compat_ptr(arg);
1777 struct ipc_namespace *ns;
1778 struct semid64_ds semid64;
c0ebccb6
AV
1779 int err;
1780
1781 ns = current->nsproxy->ipc_ns;
1782
1783 if (semid < 0)
1784 return -EINVAL;
1785
1786 switch (cmd & (~IPC_64)) {
1787 case IPC_INFO:
1788 case SEM_INFO:
1789 return semctl_info(ns, semid, cmd, p);
1790 case IPC_STAT:
1791 case SEM_STAT:
a280d6dc 1792 case SEM_STAT_ANY:
c0ebccb6
AV
1793 err = semctl_stat(ns, semid, cmd, &semid64);
1794 if (err < 0)
1795 return err;
1796 if (copy_compat_semid_to_user(p, &semid64, version))
1797 err = -EFAULT;
1798 return err;
1799 case GETVAL:
1800 case GETPID:
1801 case GETNCNT:
1802 case GETZCNT:
1803 case GETALL:
1da177e4 1804 case SETALL:
e1fd1f49
AV
1805 return semctl_main(ns, semid, semnum, cmd, p);
1806 case SETVAL:
1807 return semctl_setval(ns, semid, semnum, arg);
1da177e4 1808 case IPC_SET:
c0ebccb6
AV
1809 if (copy_compat_semid_from_user(&semid64, p, version))
1810 return -EFAULT;
df561f66 1811 fallthrough;
c0ebccb6
AV
1812 case IPC_RMID:
1813 return semctl_down(ns, semid, cmd, &semid64);
1da177e4
LT
1814 default:
1815 return -EINVAL;
1816 }
1817}
d969c6fa
DB
1818
1819COMPAT_SYSCALL_DEFINE4(semctl, int, semid, int, semnum, int, cmd, int, arg)
1820{
275f2214 1821 return compat_ksys_semctl(semid, semnum, cmd, arg, IPC_64);
d969c6fa 1822}
275f2214
AB
1823
1824#ifdef CONFIG_ARCH_WANT_COMPAT_IPC_PARSE_VERSION
1825long compat_ksys_old_semctl(int semid, int semnum, int cmd, int arg)
1826{
1827 int version = compat_ipc_parse_version(&cmd);
1828
1829 return compat_ksys_semctl(semid, semnum, cmd, arg, version);
1830}
1831
1832COMPAT_SYSCALL_DEFINE4(old_semctl, int, semid, int, semnum, int, cmd, int, arg)
1833{
1834 return compat_ksys_old_semctl(semid, semnum, cmd, arg);
1835}
1836#endif
c0ebccb6 1837#endif
1da177e4 1838
1da177e4
LT
1839/* If the task doesn't already have a undo_list, then allocate one
1840 * here. We guarantee there is only one thread using this undo list,
1841 * and current is THE ONE
1842 *
1843 * If this allocation and assignment succeeds, but later
1844 * portions of this code fail, there is no need to free the sem_undo_list.
1845 * Just let it stay associated with the task, and it'll be freed later
1846 * at exit time.
1847 *
1848 * This can block, so callers must hold no locks.
1849 */
1850static inline int get_undo_list(struct sem_undo_list **undo_listp)
1851{
1852 struct sem_undo_list *undo_list;
1da177e4
LT
1853
1854 undo_list = current->sysvsem.undo_list;
1855 if (!undo_list) {
18319498 1856 undo_list = kzalloc(sizeof(*undo_list), GFP_KERNEL_ACCOUNT);
1da177e4
LT
1857 if (undo_list == NULL)
1858 return -ENOMEM;
00a5dfdb 1859 spin_lock_init(&undo_list->lock);
f74370b8 1860 refcount_set(&undo_list->refcnt, 1);
4daa28f6
MS
1861 INIT_LIST_HEAD(&undo_list->list_proc);
1862
1da177e4
LT
1863 current->sysvsem.undo_list = undo_list;
1864 }
1865 *undo_listp = undo_list;
1866 return 0;
1867}
1868
bf17bb71 1869static struct sem_undo *__lookup_undo(struct sem_undo_list *ulp, int semid)
1da177e4 1870{
bf17bb71 1871 struct sem_undo *un;
4daa28f6 1872
984035ad
JFG
1873 list_for_each_entry_rcu(un, &ulp->list_proc, list_proc,
1874 spin_is_locked(&ulp->lock)) {
bf17bb71
NP
1875 if (un->semid == semid)
1876 return un;
1da177e4 1877 }
4daa28f6 1878 return NULL;
1da177e4
LT
1879}
1880
bf17bb71
NP
1881static struct sem_undo *lookup_undo(struct sem_undo_list *ulp, int semid)
1882{
1883 struct sem_undo *un;
1884
239521f3 1885 assert_spin_locked(&ulp->lock);
bf17bb71
NP
1886
1887 un = __lookup_undo(ulp, semid);
1888 if (un) {
1889 list_del_rcu(&un->list_proc);
1890 list_add_rcu(&un->list_proc, &ulp->list_proc);
1891 }
1892 return un;
1893}
1894
4daa28f6 1895/**
8001c858 1896 * find_alloc_undo - lookup (and if not present create) undo array
4daa28f6
MS
1897 * @ns: namespace
1898 * @semid: semaphore array id
1899 *
1900 * The function looks up (and if not present creates) the undo structure.
1901 * The size of the undo structure depends on the size of the semaphore
1902 * array, thus the alloc path is not that straightforward.
380af1b3
MS
1903 * Lifetime-rules: sem_undo is rcu-protected, on success, the function
1904 * performs a rcu_read_lock().
4daa28f6
MS
1905 */
1906static struct sem_undo *find_alloc_undo(struct ipc_namespace *ns, int semid)
1da177e4
LT
1907{
1908 struct sem_array *sma;
1909 struct sem_undo_list *ulp;
1910 struct sem_undo *un, *new;
6062a8dc 1911 int nsems, error;
1da177e4
LT
1912
1913 error = get_undo_list(&ulp);
1914 if (error)
1915 return ERR_PTR(error);
1916
380af1b3 1917 rcu_read_lock();
c530c6ac 1918 spin_lock(&ulp->lock);
1da177e4 1919 un = lookup_undo(ulp, semid);
c530c6ac 1920 spin_unlock(&ulp->lock);
239521f3 1921 if (likely(un != NULL))
1da177e4
LT
1922 goto out;
1923
1924 /* no undo structure around - allocate one. */
4daa28f6 1925 /* step 1: figure out the size of the semaphore array */
16df3674
DB
1926 sma = sem_obtain_object_check(ns, semid);
1927 if (IS_ERR(sma)) {
1928 rcu_read_unlock();
4de85cd6 1929 return ERR_CAST(sma);
16df3674 1930 }
023a5355 1931
1da177e4 1932 nsems = sma->sem_nsems;
dba4cdd3 1933 if (!ipc_rcu_getref(&sma->sem_perm)) {
6062a8dc
RR
1934 rcu_read_unlock();
1935 un = ERR_PTR(-EIDRM);
1936 goto out;
1937 }
16df3674 1938 rcu_read_unlock();
1da177e4 1939
4daa28f6 1940 /* step 2: allocate new undo structure */
b46fae06 1941 new = kvzalloc(struct_size(new, semadj, nsems), GFP_KERNEL_ACCOUNT);
1da177e4 1942 if (!new) {
dba4cdd3 1943 ipc_rcu_putref(&sma->sem_perm, sem_rcu_free);
1da177e4
LT
1944 return ERR_PTR(-ENOMEM);
1945 }
1da177e4 1946
380af1b3 1947 /* step 3: Acquire the lock on semaphore array */
4091fd94 1948 rcu_read_lock();
6ff37972 1949 sem_lock_and_putref(sma);
0f3d2b01 1950 if (!ipc_valid_object(&sma->sem_perm)) {
6062a8dc 1951 sem_unlock(sma, -1);
6d49dab8 1952 rcu_read_unlock();
fc37a3b8 1953 kvfree(new);
1da177e4
LT
1954 un = ERR_PTR(-EIDRM);
1955 goto out;
1956 }
380af1b3
MS
1957 spin_lock(&ulp->lock);
1958
1959 /*
1960 * step 4: check for races: did someone else allocate the undo struct?
1961 */
1962 un = lookup_undo(ulp, semid);
1963 if (un) {
520ba724 1964 spin_unlock(&ulp->lock);
fc37a3b8 1965 kvfree(new);
380af1b3
MS
1966 goto success;
1967 }
4daa28f6 1968 /* step 5: initialize & link new undo structure */
380af1b3 1969 new->ulp = ulp;
4daa28f6
MS
1970 new->semid = semid;
1971 assert_spin_locked(&ulp->lock);
380af1b3 1972 list_add_rcu(&new->list_proc, &ulp->list_proc);
cf9d5d78 1973 ipc_assert_locked_object(&sma->sem_perm);
4daa28f6 1974 list_add(&new->list_id, &sma->list_id);
380af1b3 1975 un = new;
c530c6ac 1976 spin_unlock(&ulp->lock);
520ba724 1977success:
6062a8dc 1978 sem_unlock(sma, -1);
1da177e4
LT
1979out:
1980 return un;
1981}
1982
bdec0145
AB
1983long __do_semtimedop(int semid, struct sembuf *sops,
1984 unsigned nsops, const struct timespec64 *timeout,
1985 struct ipc_namespace *ns)
1da177e4
LT
1986{
1987 int error = -EINVAL;
1988 struct sem_array *sma;
bdec0145 1989 struct sembuf *sop;
1da177e4 1990 struct sem_undo *un;
4ce33ec2
DB
1991 int max, locknum;
1992 bool undos = false, alter = false, dupsop = false;
1da177e4 1993 struct sem_queue queue;
49c9dd0d
PS
1994 unsigned long dup = 0;
1995 ktime_t expires, *exp = NULL;
1996 bool timed_out = false;
1da177e4
LT
1997
1998 if (nsops < 1 || semid < 0)
1999 return -EINVAL;
e3893534 2000 if (nsops > ns->sc_semopm)
1da177e4 2001 return -E2BIG;
4ce33ec2 2002
1da177e4 2003 if (timeout) {
49c9dd0d
PS
2004 if (!timespec64_valid(timeout))
2005 return -EINVAL;
2006 expires = ktime_add_safe(ktime_get(),
2007 timespec64_to_ktime(*timeout));
2008 exp = &expires;
1da177e4 2009 }
4ce33ec2 2010
bdec0145 2011
1da177e4
LT
2012 max = 0;
2013 for (sop = sops; sop < sops + nsops; sop++) {
4ce33ec2
DB
2014 unsigned long mask = 1ULL << ((sop->sem_num) % BITS_PER_LONG);
2015
1da177e4
LT
2016 if (sop->sem_num >= max)
2017 max = sop->sem_num;
2018 if (sop->sem_flg & SEM_UNDO)
4ce33ec2
DB
2019 undos = true;
2020 if (dup & mask) {
2021 /*
2022 * There was a previous alter access that appears
2023 * to have accessed the same semaphore, thus use
2024 * the dupsop logic. "appears", because the detection
2025 * can only check % BITS_PER_LONG.
2026 */
2027 dupsop = true;
2028 }
2029 if (sop->sem_op != 0) {
2030 alter = true;
2031 dup |= mask;
2032 }
1da177e4 2033 }
1da177e4 2034
1da177e4 2035 if (undos) {
6062a8dc 2036 /* On success, find_alloc_undo takes the rcu_read_lock */
4daa28f6 2037 un = find_alloc_undo(ns, semid);
1da177e4
LT
2038 if (IS_ERR(un)) {
2039 error = PTR_ERR(un);
bdec0145 2040 goto out;
1da177e4 2041 }
6062a8dc 2042 } else {
1da177e4 2043 un = NULL;
6062a8dc
RR
2044 rcu_read_lock();
2045 }
1da177e4 2046
16df3674 2047 sma = sem_obtain_object_check(ns, semid);
023a5355 2048 if (IS_ERR(sma)) {
6062a8dc 2049 rcu_read_unlock();
023a5355 2050 error = PTR_ERR(sma);
bdec0145 2051 goto out;
023a5355
ND
2052 }
2053
16df3674 2054 error = -EFBIG;
248e7357
DB
2055 if (max >= sma->sem_nsems) {
2056 rcu_read_unlock();
bdec0145 2057 goto out;
248e7357 2058 }
16df3674
DB
2059
2060 error = -EACCES;
248e7357
DB
2061 if (ipcperms(ns, &sma->sem_perm, alter ? S_IWUGO : S_IRUGO)) {
2062 rcu_read_unlock();
bdec0145 2063 goto out;
248e7357 2064 }
16df3674 2065
aefad959 2066 error = security_sem_semop(&sma->sem_perm, sops, nsops, alter);
248e7357
DB
2067 if (error) {
2068 rcu_read_unlock();
bdec0145 2069 goto out;
248e7357 2070 }
16df3674 2071
6e224f94
MS
2072 error = -EIDRM;
2073 locknum = sem_lock(sma, sops, nsops);
0f3d2b01
RA
2074 /*
2075 * We eventually might perform the following check in a lockless
2076 * fashion, considering ipc_valid_object() locking constraints.
2077 * If nsops == 1 and there is no contention for sem_perm.lock, then
2078 * only a per-semaphore lock is held and it's OK to proceed with the
2079 * check below. More details on the fine grained locking scheme
2080 * entangled here and why it's RMID race safe on comments at sem_lock()
2081 */
2082 if (!ipc_valid_object(&sma->sem_perm))
bdec0145 2083 goto out_unlock;
1da177e4 2084 /*
4daa28f6 2085 * semid identifiers are not unique - find_alloc_undo may have
1da177e4 2086 * allocated an undo structure, it was invalidated by an RMID
4daa28f6 2087 * and now a new array with received the same id. Check and fail.
25985edc 2088 * This case can be detected checking un->semid. The existence of
380af1b3 2089 * "un" itself is guaranteed by rcu.
1da177e4 2090 */
6062a8dc 2091 if (un && un->semid == -1)
bdec0145 2092 goto out_unlock;
4daa28f6 2093
d198cd6d
MS
2094 queue.sops = sops;
2095 queue.nsops = nsops;
2096 queue.undo = un;
51d6f263 2097 queue.pid = task_tgid(current);
d198cd6d 2098 queue.alter = alter;
4ce33ec2 2099 queue.dupsop = dupsop;
d198cd6d
MS
2100
2101 error = perform_atomic_semop(sma, &queue);
b1989a3d 2102 if (error == 0) { /* non-blocking successful path */
9ae949fa
DB
2103 DEFINE_WAKE_Q(wake_q);
2104
2105 /*
2106 * If the operation was successful, then do
0e8c6656
MS
2107 * the required updates.
2108 */
2109 if (alter)
9ae949fa 2110 do_smart_update(sma, sops, nsops, 1, &wake_q);
0e8c6656
MS
2111 else
2112 set_semotime(sma, sops);
9ae949fa
DB
2113
2114 sem_unlock(sma, locknum);
2115 rcu_read_unlock();
2116 wake_up_q(&wake_q);
2117
bdec0145 2118 goto out;
1da177e4 2119 }
9ae949fa 2120 if (error < 0) /* non-blocking error path */
bdec0145 2121 goto out_unlock;
1da177e4 2122
9ae949fa
DB
2123 /*
2124 * We need to sleep on this operation, so we put the current
1da177e4
LT
2125 * task into the pending queue and go to sleep.
2126 */
b97e820f
MS
2127 if (nsops == 1) {
2128 struct sem *curr;
ec67aaa4
DB
2129 int idx = array_index_nospec(sops->sem_num, sma->sem_nsems);
2130 curr = &sma->sems[idx];
b97e820f 2131
f269f40a
MS
2132 if (alter) {
2133 if (sma->complex_count) {
2134 list_add_tail(&queue.list,
2135 &sma->pending_alter);
2136 } else {
2137
2138 list_add_tail(&queue.list,
2139 &curr->pending_alter);
2140 }
2141 } else {
1a82e9e1 2142 list_add_tail(&queue.list, &curr->pending_const);
f269f40a 2143 }
b97e820f 2144 } else {
f269f40a
MS
2145 if (!sma->complex_count)
2146 merge_queues(sma);
2147
9f1bc2c9 2148 if (alter)
1a82e9e1 2149 list_add_tail(&queue.list, &sma->pending_alter);
9f1bc2c9 2150 else
1a82e9e1
MS
2151 list_add_tail(&queue.list, &sma->pending_const);
2152
b97e820f
MS
2153 sma->complex_count++;
2154 }
2155
b5fa01a2 2156 do {
8116b54e 2157 /* memory ordering ensured by the lock in sem_lock() */
f075faa3 2158 WRITE_ONCE(queue.status, -EINTR);
b5fa01a2 2159 queue.sleeper = current;
0b0577f6 2160
8116b54e 2161 /* memory ordering is ensured by the lock in sem_lock() */
b5fa01a2
DB
2162 __set_current_state(TASK_INTERRUPTIBLE);
2163 sem_unlock(sma, locknum);
2164 rcu_read_unlock();
1da177e4 2165
49c9dd0d
PS
2166 timed_out = !schedule_hrtimeout_range(exp,
2167 current->timer_slack_ns, HRTIMER_MODE_ABS);
1da177e4 2168
9ae949fa 2169 /*
b5fa01a2
DB
2170 * fastpath: the semop has completed, either successfully or
2171 * not, from the syscall pov, is quite irrelevant to us at this
2172 * point; we're done.
2173 *
2174 * We _do_ care, nonetheless, about being awoken by a signal or
2175 * spuriously. The queue.status is checked again in the
2176 * slowpath (aka after taking sem_lock), such that we can detect
2177 * scenarios where we were awakened externally, during the
2178 * window between wake_q_add() and wake_up_q().
c61284e9 2179 */
b52be557 2180 rcu_read_lock();
b5fa01a2
DB
2181 error = READ_ONCE(queue.status);
2182 if (error != -EINTR) {
8116b54e
MS
2183 /* see SEM_BARRIER_2 for purpose/pairing */
2184 smp_acquire__after_ctrl_dep();
b52be557 2185 rcu_read_unlock();
bdec0145 2186 goto out;
b5fa01a2 2187 }
d694ad62 2188
c626bc46 2189 locknum = sem_lock(sma, sops, nsops);
1da177e4 2190
370b262c 2191 if (!ipc_valid_object(&sma->sem_perm))
bdec0145 2192 goto out_unlock;
370b262c 2193
8116b54e
MS
2194 /*
2195 * No necessity for any barrier: We are protect by sem_lock()
2196 */
370b262c 2197 error = READ_ONCE(queue.status);
1da177e4 2198
b5fa01a2
DB
2199 /*
2200 * If queue.status != -EINTR we are woken up by another process.
2201 * Leave without unlink_queue(), but with sem_unlock().
2202 */
2203 if (error != -EINTR)
bdec0145 2204 goto out_unlock;
0b0577f6 2205
b5fa01a2
DB
2206 /*
2207 * If an interrupt occurred we have to clean up the queue.
2208 */
49c9dd0d 2209 if (timed_out)
b5fa01a2
DB
2210 error = -EAGAIN;
2211 } while (error == -EINTR && !signal_pending(current)); /* spurious */
0b0577f6 2212
b97e820f 2213 unlink_queue(sma, &queue);
1da177e4 2214
bdec0145 2215out_unlock:
6062a8dc 2216 sem_unlock(sma, locknum);
6d49dab8 2217 rcu_read_unlock();
bdec0145
AB
2218out:
2219 return error;
2220}
2221
2222static long do_semtimedop(int semid, struct sembuf __user *tsops,
2223 unsigned nsops, const struct timespec64 *timeout)
2224{
2225 struct sembuf fast_sops[SEMOPM_FAST];
2226 struct sembuf *sops = fast_sops;
2227 struct ipc_namespace *ns;
2228 int ret;
2229
2230 ns = current->nsproxy->ipc_ns;
2231 if (nsops > ns->sc_semopm)
2232 return -E2BIG;
2233 if (nsops < 1)
2234 return -EINVAL;
2235
2236 if (nsops > SEMOPM_FAST) {
6a4746ba 2237 sops = kvmalloc_array(nsops, sizeof(*sops), GFP_KERNEL);
bdec0145
AB
2238 if (sops == NULL)
2239 return -ENOMEM;
2240 }
2241
2242 if (copy_from_user(sops, tsops, nsops * sizeof(*tsops))) {
2243 ret = -EFAULT;
2244 goto out_free;
2245 }
2246
2247 ret = __do_semtimedop(semid, sops, nsops, timeout, ns);
2248
1da177e4 2249out_free:
239521f3 2250 if (sops != fast_sops)
e4243b80 2251 kvfree(sops);
bdec0145
AB
2252
2253 return ret;
1da177e4
LT
2254}
2255
41f4f0e2 2256long ksys_semtimedop(int semid, struct sembuf __user *tsops,
21fc538d 2257 unsigned int nsops, const struct __kernel_timespec __user *timeout)
44ee4546
AV
2258{
2259 if (timeout) {
3ef56dc2
DD
2260 struct timespec64 ts;
2261 if (get_timespec64(&ts, timeout))
44ee4546
AV
2262 return -EFAULT;
2263 return do_semtimedop(semid, tsops, nsops, &ts);
2264 }
2265 return do_semtimedop(semid, tsops, nsops, NULL);
2266}
2267
41f4f0e2 2268SYSCALL_DEFINE4(semtimedop, int, semid, struct sembuf __user *, tsops,
21fc538d 2269 unsigned int, nsops, const struct __kernel_timespec __user *, timeout)
41f4f0e2
DB
2270{
2271 return ksys_semtimedop(semid, tsops, nsops, timeout);
2272}
2273
b0d17578 2274#ifdef CONFIG_COMPAT_32BIT_TIME
41f4f0e2
DB
2275long compat_ksys_semtimedop(int semid, struct sembuf __user *tsems,
2276 unsigned int nsops,
9afc5eee 2277 const struct old_timespec32 __user *timeout)
44ee4546
AV
2278{
2279 if (timeout) {
3ef56dc2 2280 struct timespec64 ts;
9afc5eee 2281 if (get_old_timespec32(&ts, timeout))
44ee4546
AV
2282 return -EFAULT;
2283 return do_semtimedop(semid, tsems, nsops, &ts);
2284 }
2285 return do_semtimedop(semid, tsems, nsops, NULL);
2286}
41f4f0e2 2287
8dabe724 2288SYSCALL_DEFINE4(semtimedop_time32, int, semid, struct sembuf __user *, tsems,
41f4f0e2 2289 unsigned int, nsops,
9afc5eee 2290 const struct old_timespec32 __user *, timeout)
41f4f0e2
DB
2291{
2292 return compat_ksys_semtimedop(semid, tsems, nsops, timeout);
2293}
44ee4546
AV
2294#endif
2295
d5460c99
HC
2296SYSCALL_DEFINE3(semop, int, semid, struct sembuf __user *, tsops,
2297 unsigned, nsops)
1da177e4 2298{
44ee4546 2299 return do_semtimedop(semid, tsops, nsops, NULL);
1da177e4
LT
2300}
2301
2302/* If CLONE_SYSVSEM is set, establish sharing of SEM_UNDO state between
2303 * parent and child tasks.
1da177e4
LT
2304 */
2305
2306int copy_semundo(unsigned long clone_flags, struct task_struct *tsk)
2307{
2308 struct sem_undo_list *undo_list;
2309 int error;
2310
2311 if (clone_flags & CLONE_SYSVSEM) {
2312 error = get_undo_list(&undo_list);
2313 if (error)
2314 return error;
f74370b8 2315 refcount_inc(&undo_list->refcnt);
1da177e4 2316 tsk->sysvsem.undo_list = undo_list;
46c0a8ca 2317 } else
1da177e4
LT
2318 tsk->sysvsem.undo_list = NULL;
2319
2320 return 0;
2321}
2322
2323/*
2324 * add semadj values to semaphores, free undo structures.
2325 * undo structures are not freed when semaphore arrays are destroyed
2326 * so some of them may be out of date.
2327 * IMPLEMENTATION NOTE: There is some confusion over whether the
2328 * set of adjustments that needs to be done should be done in an atomic
2329 * manner or not. That is, if we are attempting to decrement the semval
2330 * should we queue up and wait until we can do so legally?
2331 * The original implementation attempted to do this (queue and wait).
2332 * The current implementation does not do so. The POSIX standard
2333 * and SVID should be consulted to determine what behavior is mandated.
2334 */
2335void exit_sem(struct task_struct *tsk)
2336{
4daa28f6 2337 struct sem_undo_list *ulp;
1da177e4 2338
4daa28f6
MS
2339 ulp = tsk->sysvsem.undo_list;
2340 if (!ulp)
1da177e4 2341 return;
9edff4ab 2342 tsk->sysvsem.undo_list = NULL;
1da177e4 2343
f74370b8 2344 if (!refcount_dec_and_test(&ulp->refcnt))
1da177e4
LT
2345 return;
2346
380af1b3 2347 for (;;) {
1da177e4 2348 struct sem_array *sma;
380af1b3 2349 struct sem_undo *un;
6062a8dc 2350 int semid, i;
9ae949fa 2351 DEFINE_WAKE_Q(wake_q);
4daa28f6 2352
2a1613a5
NB
2353 cond_resched();
2354
380af1b3 2355 rcu_read_lock();
05725f7e
JP
2356 un = list_entry_rcu(ulp->list_proc.next,
2357 struct sem_undo, list_proc);
602b8593
HK
2358 if (&un->list_proc == &ulp->list_proc) {
2359 /*
2360 * We must wait for freeary() before freeing this ulp,
2361 * in case we raced with last sem_undo. There is a small
2362 * possibility where we exit while freeary() didn't
2363 * finish unlocking sem_undo_list.
2364 */
e0892e08
PM
2365 spin_lock(&ulp->lock);
2366 spin_unlock(&ulp->lock);
602b8593
HK
2367 rcu_read_unlock();
2368 break;
2369 }
2370 spin_lock(&ulp->lock);
2371 semid = un->semid;
2372 spin_unlock(&ulp->lock);
4daa28f6 2373
602b8593 2374 /* exit_sem raced with IPC_RMID, nothing to do */
6062a8dc
RR
2375 if (semid == -1) {
2376 rcu_read_unlock();
602b8593 2377 continue;
6062a8dc 2378 }
1da177e4 2379
602b8593 2380 sma = sem_obtain_object_check(tsk->nsproxy->ipc_ns, semid);
380af1b3 2381 /* exit_sem raced with IPC_RMID, nothing to do */
6062a8dc
RR
2382 if (IS_ERR(sma)) {
2383 rcu_read_unlock();
380af1b3 2384 continue;
6062a8dc 2385 }
1da177e4 2386
6062a8dc 2387 sem_lock(sma, NULL, -1);
6e224f94 2388 /* exit_sem raced with IPC_RMID, nothing to do */
0f3d2b01 2389 if (!ipc_valid_object(&sma->sem_perm)) {
6e224f94
MS
2390 sem_unlock(sma, -1);
2391 rcu_read_unlock();
2392 continue;
2393 }
bf17bb71 2394 un = __lookup_undo(ulp, semid);
380af1b3
MS
2395 if (un == NULL) {
2396 /* exit_sem raced with IPC_RMID+semget() that created
2397 * exactly the same semid. Nothing to do.
2398 */
6062a8dc 2399 sem_unlock(sma, -1);
6d49dab8 2400 rcu_read_unlock();
380af1b3
MS
2401 continue;
2402 }
2403
2404 /* remove un from the linked lists */
cf9d5d78 2405 ipc_assert_locked_object(&sma->sem_perm);
4daa28f6
MS
2406 list_del(&un->list_id);
2407
edf28f40 2408 spin_lock(&ulp->lock);
380af1b3 2409 list_del_rcu(&un->list_proc);
edf28f40 2410 spin_unlock(&ulp->lock);
380af1b3 2411
4daa28f6
MS
2412 /* perform adjustments registered in un */
2413 for (i = 0; i < sma->sem_nsems; i++) {
1a233956 2414 struct sem *semaphore = &sma->sems[i];
4daa28f6
MS
2415 if (un->semadj[i]) {
2416 semaphore->semval += un->semadj[i];
1da177e4
LT
2417 /*
2418 * Range checks of the new semaphore value,
2419 * not defined by sus:
2420 * - Some unices ignore the undo entirely
2421 * (e.g. HP UX 11i 11.22, Tru64 V5.1)
2422 * - some cap the value (e.g. FreeBSD caps
2423 * at 0, but doesn't enforce SEMVMX)
2424 *
2425 * Linux caps the semaphore value, both at 0
2426 * and at SEMVMX.
2427 *
239521f3 2428 * Manfred <manfred@colorfullife.com>
1da177e4 2429 */
5f921ae9
IM
2430 if (semaphore->semval < 0)
2431 semaphore->semval = 0;
2432 if (semaphore->semval > SEMVMX)
2433 semaphore->semval = SEMVMX;
51d6f263 2434 ipc_update_pid(&semaphore->sempid, task_tgid(current));
1da177e4
LT
2435 }
2436 }
1da177e4 2437 /* maybe some queued-up processes were waiting for this */
9ae949fa 2438 do_smart_update(sma, NULL, 0, 1, &wake_q);
6062a8dc 2439 sem_unlock(sma, -1);
6d49dab8 2440 rcu_read_unlock();
9ae949fa 2441 wake_up_q(&wake_q);
380af1b3 2442
fc37a3b8 2443 kvfree_rcu(un, rcu);
1da177e4 2444 }
4daa28f6 2445 kfree(ulp);
1da177e4
LT
2446}
2447
2448#ifdef CONFIG_PROC_FS
19b4946c 2449static int sysvipc_sem_proc_show(struct seq_file *s, void *it)
1da177e4 2450{
1efdb69b 2451 struct user_namespace *user_ns = seq_user_ns(s);
ade9f91b
KC
2452 struct kern_ipc_perm *ipcp = it;
2453 struct sem_array *sma = container_of(ipcp, struct sem_array, sem_perm);
e54d02b2 2454 time64_t sem_otime;
d12e1e50 2455
d8c63376
MS
2456 /*
2457 * The proc interface isn't aware of sem_lock(), it calls
17d056e0
MS
2458 * ipc_lock_object(), i.e. spin_lock(&sma->sem_perm.lock).
2459 * (in sysvipc_find_ipc)
5864a2fd
MS
2460 * In order to stay compatible with sem_lock(), we must
2461 * enter / leave complex_mode.
d8c63376 2462 */
5864a2fd 2463 complexmode_enter(sma);
d8c63376 2464
d12e1e50 2465 sem_otime = get_semotime(sma);
19b4946c 2466
7f032d6e 2467 seq_printf(s,
e54d02b2 2468 "%10d %10d %4o %10u %5u %5u %5u %5u %10llu %10llu\n",
7f032d6e
JP
2469 sma->sem_perm.key,
2470 sma->sem_perm.id,
2471 sma->sem_perm.mode,
2472 sma->sem_nsems,
2473 from_kuid_munged(user_ns, sma->sem_perm.uid),
2474 from_kgid_munged(user_ns, sma->sem_perm.gid),
2475 from_kuid_munged(user_ns, sma->sem_perm.cuid),
2476 from_kgid_munged(user_ns, sma->sem_perm.cgid),
2477 sem_otime,
2478 sma->sem_ctime);
2479
5864a2fd
MS
2480 complexmode_tryleave(sma);
2481
7f032d6e 2482 return 0;
1da177e4
LT
2483}
2484#endif