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Merge tag 'hsi-for-3.19' of git://git.kernel.org/pub/scm/linux/kernel/git/sre/linux-hsi
[mirror_ubuntu-zesty-kernel.git] / kernel / pid.c
CommitLineData
1da177e4
LT
1/*
2 * Generic pidhash and scalable, time-bounded PID allocator
3 *
6d49e352
NYC
4 * (C) 2002-2003 Nadia Yvette Chambers, IBM
5 * (C) 2004 Nadia Yvette Chambers, Oracle
1da177e4
LT
6 * (C) 2002-2004 Ingo Molnar, Red Hat
7 *
8 * pid-structures are backing objects for tasks sharing a given ID to chain
9 * against. There is very little to them aside from hashing them and
10 * parking tasks using given ID's on a list.
11 *
12 * The hash is always changed with the tasklist_lock write-acquired,
13 * and the hash is only accessed with the tasklist_lock at least
14 * read-acquired, so there's no additional SMP locking needed here.
15 *
16 * We have a list of bitmap pages, which bitmaps represent the PID space.
17 * Allocating and freeing PIDs is completely lockless. The worst-case
18 * allocation scenario when all but one out of 1 million PIDs possible are
19 * allocated already: the scanning of 32 list entries and at most PAGE_SIZE
20 * bytes. The typical fastpath is a single successful setbit. Freeing is O(1).
30e49c26
PE
21 *
22 * Pid namespaces:
23 * (C) 2007 Pavel Emelyanov <xemul@openvz.org>, OpenVZ, SWsoft Inc.
24 * (C) 2007 Sukadev Bhattiprolu <sukadev@us.ibm.com>, IBM
25 * Many thanks to Oleg Nesterov for comments and help
26 *
1da177e4
LT
27 */
28
29#include <linux/mm.h>
9984de1a 30#include <linux/export.h>
1da177e4
LT
31#include <linux/slab.h>
32#include <linux/init.h>
82524746 33#include <linux/rculist.h>
1da177e4
LT
34#include <linux/bootmem.h>
35#include <linux/hash.h>
61a58c6c 36#include <linux/pid_namespace.h>
820e45db 37#include <linux/init_task.h>
3eb07c8c 38#include <linux/syscalls.h>
0bb80f24 39#include <linux/proc_ns.h>
0a01f2cc 40#include <linux/proc_fs.h>
1da177e4 41
8ef047aa
PE
42#define pid_hashfn(nr, ns) \
43 hash_long((unsigned long)nr + (unsigned long)ns, pidhash_shift)
92476d7f 44static struct hlist_head *pid_hash;
2c85f51d 45static unsigned int pidhash_shift = 4;
820e45db 46struct pid init_struct_pid = INIT_STRUCT_PID;
1da177e4
LT
47
48int pid_max = PID_MAX_DEFAULT;
1da177e4
LT
49
50#define RESERVED_PIDS 300
51
52int pid_max_min = RESERVED_PIDS + 1;
53int pid_max_max = PID_MAX_LIMIT;
54
61a58c6c
SB
55static inline int mk_pid(struct pid_namespace *pid_ns,
56 struct pidmap *map, int off)
3fbc9648 57{
61a58c6c 58 return (map - pid_ns->pidmap)*BITS_PER_PAGE + off;
3fbc9648
SB
59}
60
1da177e4
LT
61#define find_next_offset(map, off) \
62 find_next_zero_bit((map)->page, BITS_PER_PAGE, off)
63
64/*
65 * PID-map pages start out as NULL, they get allocated upon
66 * first use and are never deallocated. This way a low pid_max
67 * value does not cause lots of bitmaps to be allocated, but
68 * the scheme scales to up to 4 million PIDs, runtime.
69 */
61a58c6c 70struct pid_namespace init_pid_ns = {
9a575a92
CLG
71 .kref = {
72 .refcount = ATOMIC_INIT(2),
73 },
3fbc9648
SB
74 .pidmap = {
75 [ 0 ... PIDMAP_ENTRIES-1] = { ATOMIC_INIT(BITS_PER_PAGE), NULL }
76 },
84d73786 77 .last_pid = 0,
8f75af44 78 .nr_hashed = PIDNS_HASH_ADDING,
faacbfd3
PE
79 .level = 0,
80 .child_reaper = &init_task,
49f4d8b9 81 .user_ns = &init_user_ns,
98f842e6 82 .proc_inum = PROC_PID_INIT_INO,
3fbc9648 83};
198fe21b 84EXPORT_SYMBOL_GPL(init_pid_ns);
1da177e4 85
92476d7f
EB
86/*
87 * Note: disable interrupts while the pidmap_lock is held as an
88 * interrupt might come in and do read_lock(&tasklist_lock).
89 *
90 * If we don't disable interrupts there is a nasty deadlock between
91 * detach_pid()->free_pid() and another cpu that does
92 * spin_lock(&pidmap_lock) followed by an interrupt routine that does
93 * read_lock(&tasklist_lock);
94 *
95 * After we clean up the tasklist_lock and know there are no
96 * irq handlers that take it we can leave the interrupts enabled.
97 * For now it is easier to be safe than to prove it can't happen.
98 */
3fbc9648 99
1da177e4
LT
100static __cacheline_aligned_in_smp DEFINE_SPINLOCK(pidmap_lock);
101
b7127aa4 102static void free_pidmap(struct upid *upid)
1da177e4 103{
b7127aa4
ON
104 int nr = upid->nr;
105 struct pidmap *map = upid->ns->pidmap + nr / BITS_PER_PAGE;
106 int offset = nr & BITS_PER_PAGE_MASK;
1da177e4
LT
107
108 clear_bit(offset, map->page);
109 atomic_inc(&map->nr_free);
110}
111
5fdee8c4
S
112/*
113 * If we started walking pids at 'base', is 'a' seen before 'b'?
114 */
115static int pid_before(int base, int a, int b)
116{
117 /*
118 * This is the same as saying
119 *
120 * (a - base + MAXUINT) % MAXUINT < (b - base + MAXUINT) % MAXUINT
121 * and that mapping orders 'a' and 'b' with respect to 'base'.
122 */
123 return (unsigned)(a - base) < (unsigned)(b - base);
124}
125
126/*
b8f566b0
PE
127 * We might be racing with someone else trying to set pid_ns->last_pid
128 * at the pid allocation time (there's also a sysctl for this, but racing
129 * with this one is OK, see comment in kernel/pid_namespace.c about it).
5fdee8c4
S
130 * We want the winner to have the "later" value, because if the
131 * "earlier" value prevails, then a pid may get reused immediately.
132 *
133 * Since pids rollover, it is not sufficient to just pick the bigger
134 * value. We have to consider where we started counting from.
135 *
136 * 'base' is the value of pid_ns->last_pid that we observed when
137 * we started looking for a pid.
138 *
139 * 'pid' is the pid that we eventually found.
140 */
141static void set_last_pid(struct pid_namespace *pid_ns, int base, int pid)
142{
143 int prev;
144 int last_write = base;
145 do {
146 prev = last_write;
147 last_write = cmpxchg(&pid_ns->last_pid, prev, pid);
148 } while ((prev != last_write) && (pid_before(base, last_write, pid)));
149}
150
61a58c6c 151static int alloc_pidmap(struct pid_namespace *pid_ns)
1da177e4 152{
61a58c6c 153 int i, offset, max_scan, pid, last = pid_ns->last_pid;
6a1f3b84 154 struct pidmap *map;
1da177e4
LT
155
156 pid = last + 1;
157 if (pid >= pid_max)
158 pid = RESERVED_PIDS;
159 offset = pid & BITS_PER_PAGE_MASK;
61a58c6c 160 map = &pid_ns->pidmap[pid/BITS_PER_PAGE];
c52b0b91
ON
161 /*
162 * If last_pid points into the middle of the map->page we
163 * want to scan this bitmap block twice, the second time
164 * we start with offset == 0 (or RESERVED_PIDS).
165 */
166 max_scan = DIV_ROUND_UP(pid_max, BITS_PER_PAGE) - !offset;
1da177e4
LT
167 for (i = 0; i <= max_scan; ++i) {
168 if (unlikely(!map->page)) {
3fbc9648 169 void *page = kzalloc(PAGE_SIZE, GFP_KERNEL);
1da177e4
LT
170 /*
171 * Free the page if someone raced with us
172 * installing it:
173 */
92476d7f 174 spin_lock_irq(&pidmap_lock);
7be6d991 175 if (!map->page) {
3fbc9648 176 map->page = page;
7be6d991
AGR
177 page = NULL;
178 }
92476d7f 179 spin_unlock_irq(&pidmap_lock);
7be6d991 180 kfree(page);
1da177e4
LT
181 if (unlikely(!map->page))
182 break;
183 }
184 if (likely(atomic_read(&map->nr_free))) {
8db049b3 185 for ( ; ; ) {
1da177e4
LT
186 if (!test_and_set_bit(offset, map->page)) {
187 atomic_dec(&map->nr_free);
5fdee8c4 188 set_last_pid(pid_ns, last, pid);
1da177e4
LT
189 return pid;
190 }
191 offset = find_next_offset(map, offset);
8db049b3
RC
192 if (offset >= BITS_PER_PAGE)
193 break;
61a58c6c 194 pid = mk_pid(pid_ns, map, offset);
8db049b3
RC
195 if (pid >= pid_max)
196 break;
197 }
1da177e4 198 }
61a58c6c 199 if (map < &pid_ns->pidmap[(pid_max-1)/BITS_PER_PAGE]) {
1da177e4
LT
200 ++map;
201 offset = 0;
202 } else {
61a58c6c 203 map = &pid_ns->pidmap[0];
1da177e4
LT
204 offset = RESERVED_PIDS;
205 if (unlikely(last == offset))
206 break;
207 }
61a58c6c 208 pid = mk_pid(pid_ns, map, offset);
1da177e4
LT
209 }
210 return -1;
211}
212
c78193e9 213int next_pidmap(struct pid_namespace *pid_ns, unsigned int last)
0804ef4b
EB
214{
215 int offset;
f40f50d3 216 struct pidmap *map, *end;
0804ef4b 217
c78193e9
LT
218 if (last >= PID_MAX_LIMIT)
219 return -1;
220
0804ef4b 221 offset = (last + 1) & BITS_PER_PAGE_MASK;
61a58c6c
SB
222 map = &pid_ns->pidmap[(last + 1)/BITS_PER_PAGE];
223 end = &pid_ns->pidmap[PIDMAP_ENTRIES];
f40f50d3 224 for (; map < end; map++, offset = 0) {
0804ef4b
EB
225 if (unlikely(!map->page))
226 continue;
227 offset = find_next_bit((map)->page, BITS_PER_PAGE, offset);
228 if (offset < BITS_PER_PAGE)
61a58c6c 229 return mk_pid(pid_ns, map, offset);
0804ef4b
EB
230 }
231 return -1;
232}
233
7ad5b3a5 234void put_pid(struct pid *pid)
92476d7f 235{
baf8f0f8
PE
236 struct pid_namespace *ns;
237
92476d7f
EB
238 if (!pid)
239 return;
baf8f0f8 240
8ef047aa 241 ns = pid->numbers[pid->level].ns;
92476d7f 242 if ((atomic_read(&pid->count) == 1) ||
8ef047aa 243 atomic_dec_and_test(&pid->count)) {
baf8f0f8 244 kmem_cache_free(ns->pid_cachep, pid);
b461cc03 245 put_pid_ns(ns);
8ef047aa 246 }
92476d7f 247}
bbf73147 248EXPORT_SYMBOL_GPL(put_pid);
92476d7f
EB
249
250static void delayed_put_pid(struct rcu_head *rhp)
251{
252 struct pid *pid = container_of(rhp, struct pid, rcu);
253 put_pid(pid);
254}
255
7ad5b3a5 256void free_pid(struct pid *pid)
92476d7f
EB
257{
258 /* We can be called with write_lock_irq(&tasklist_lock) held */
8ef047aa 259 int i;
92476d7f
EB
260 unsigned long flags;
261
262 spin_lock_irqsave(&pidmap_lock, flags);
0a01f2cc
EB
263 for (i = 0; i <= pid->level; i++) {
264 struct upid *upid = pid->numbers + i;
af4b8a83 265 struct pid_namespace *ns = upid->ns;
0a01f2cc 266 hlist_del_rcu(&upid->pid_chain);
af4b8a83 267 switch(--ns->nr_hashed) {
a6064885 268 case 2:
af4b8a83
EB
269 case 1:
270 /* When all that is left in the pid namespace
271 * is the reaper wake up the reaper. The reaper
272 * may be sleeping in zap_pid_ns_processes().
273 */
274 wake_up_process(ns->child_reaper);
275 break;
314a8ad0
ON
276 case PIDNS_HASH_ADDING:
277 /* Handle a fork failure of the first process */
278 WARN_ON(ns->child_reaper);
279 ns->nr_hashed = 0;
280 /* fall through */
af4b8a83 281 case 0:
af4b8a83
EB
282 schedule_work(&ns->proc_work);
283 break;
5e1182de 284 }
0a01f2cc 285 }
92476d7f
EB
286 spin_unlock_irqrestore(&pidmap_lock, flags);
287
8ef047aa 288 for (i = 0; i <= pid->level; i++)
b7127aa4 289 free_pidmap(pid->numbers + i);
8ef047aa 290
92476d7f
EB
291 call_rcu(&pid->rcu, delayed_put_pid);
292}
293
8ef047aa 294struct pid *alloc_pid(struct pid_namespace *ns)
92476d7f
EB
295{
296 struct pid *pid;
297 enum pid_type type;
8ef047aa
PE
298 int i, nr;
299 struct pid_namespace *tmp;
198fe21b 300 struct upid *upid;
92476d7f 301
baf8f0f8 302 pid = kmem_cache_alloc(ns->pid_cachep, GFP_KERNEL);
92476d7f
EB
303 if (!pid)
304 goto out;
305
8ef047aa 306 tmp = ns;
0a01f2cc 307 pid->level = ns->level;
8ef047aa
PE
308 for (i = ns->level; i >= 0; i--) {
309 nr = alloc_pidmap(tmp);
310 if (nr < 0)
311 goto out_free;
92476d7f 312
8ef047aa
PE
313 pid->numbers[i].nr = nr;
314 pid->numbers[i].ns = tmp;
315 tmp = tmp->parent;
316 }
317
0a01f2cc
EB
318 if (unlikely(is_child_reaper(pid))) {
319 if (pid_ns_prepare_proc(ns))
320 goto out_free;
321 }
322
b461cc03 323 get_pid_ns(ns);
92476d7f 324 atomic_set(&pid->count, 1);
92476d7f
EB
325 for (type = 0; type < PIDTYPE_MAX; ++type)
326 INIT_HLIST_HEAD(&pid->tasks[type]);
327
417e3152 328 upid = pid->numbers + ns->level;
92476d7f 329 spin_lock_irq(&pidmap_lock);
c876ad76 330 if (!(ns->nr_hashed & PIDNS_HASH_ADDING))
5e1182de 331 goto out_unlock;
0a01f2cc 332 for ( ; upid >= pid->numbers; --upid) {
198fe21b
PE
333 hlist_add_head_rcu(&upid->pid_chain,
334 &pid_hash[pid_hashfn(upid->nr, upid->ns)]);
0a01f2cc
EB
335 upid->ns->nr_hashed++;
336 }
92476d7f
EB
337 spin_unlock_irq(&pidmap_lock);
338
339out:
340 return pid;
341
5e1182de 342out_unlock:
6e666884 343 spin_unlock_irq(&pidmap_lock);
24c037eb
ON
344 put_pid_ns(ns);
345
92476d7f 346out_free:
b7127aa4
ON
347 while (++i <= ns->level)
348 free_pidmap(pid->numbers + i);
8ef047aa 349
baf8f0f8 350 kmem_cache_free(ns->pid_cachep, pid);
92476d7f
EB
351 pid = NULL;
352 goto out;
353}
354
c876ad76
EB
355void disable_pid_allocation(struct pid_namespace *ns)
356{
357 spin_lock_irq(&pidmap_lock);
358 ns->nr_hashed &= ~PIDNS_HASH_ADDING;
359 spin_unlock_irq(&pidmap_lock);
360}
361
7ad5b3a5 362struct pid *find_pid_ns(int nr, struct pid_namespace *ns)
1da177e4 363{
198fe21b
PE
364 struct upid *pnr;
365
b67bfe0d 366 hlist_for_each_entry_rcu(pnr,
198fe21b
PE
367 &pid_hash[pid_hashfn(nr, ns)], pid_chain)
368 if (pnr->nr == nr && pnr->ns == ns)
369 return container_of(pnr, struct pid,
370 numbers[ns->level]);
1da177e4 371
1da177e4
LT
372 return NULL;
373}
198fe21b 374EXPORT_SYMBOL_GPL(find_pid_ns);
1da177e4 375
8990571e
PE
376struct pid *find_vpid(int nr)
377{
17cf22c3 378 return find_pid_ns(nr, task_active_pid_ns(current));
8990571e
PE
379}
380EXPORT_SYMBOL_GPL(find_vpid);
381
e713d0da
SB
382/*
383 * attach_pid() must be called with the tasklist_lock write-held.
384 */
81907739 385void attach_pid(struct task_struct *task, enum pid_type type)
1da177e4 386{
81907739
ON
387 struct pid_link *link = &task->pids[type];
388 hlist_add_head_rcu(&link->node, &link->pid->tasks[type]);
1da177e4
LT
389}
390
24336eae
ON
391static void __change_pid(struct task_struct *task, enum pid_type type,
392 struct pid *new)
1da177e4 393{
92476d7f
EB
394 struct pid_link *link;
395 struct pid *pid;
396 int tmp;
1da177e4 397
92476d7f
EB
398 link = &task->pids[type];
399 pid = link->pid;
1da177e4 400
92476d7f 401 hlist_del_rcu(&link->node);
24336eae 402 link->pid = new;
1da177e4 403
92476d7f
EB
404 for (tmp = PIDTYPE_MAX; --tmp >= 0; )
405 if (!hlist_empty(&pid->tasks[tmp]))
406 return;
1da177e4 407
92476d7f 408 free_pid(pid);
1da177e4
LT
409}
410
24336eae
ON
411void detach_pid(struct task_struct *task, enum pid_type type)
412{
413 __change_pid(task, type, NULL);
414}
415
416void change_pid(struct task_struct *task, enum pid_type type,
417 struct pid *pid)
418{
419 __change_pid(task, type, pid);
81907739 420 attach_pid(task, type);
24336eae
ON
421}
422
c18258c6 423/* transfer_pid is an optimization of attach_pid(new), detach_pid(old) */
7ad5b3a5 424void transfer_pid(struct task_struct *old, struct task_struct *new,
c18258c6
EB
425 enum pid_type type)
426{
427 new->pids[type].pid = old->pids[type].pid;
428 hlist_replace_rcu(&old->pids[type].node, &new->pids[type].node);
c18258c6
EB
429}
430
7ad5b3a5 431struct task_struct *pid_task(struct pid *pid, enum pid_type type)
1da177e4 432{
92476d7f
EB
433 struct task_struct *result = NULL;
434 if (pid) {
435 struct hlist_node *first;
67bdbffd 436 first = rcu_dereference_check(hlist_first_rcu(&pid->tasks[type]),
db1466b3 437 lockdep_tasklist_lock_is_held());
92476d7f
EB
438 if (first)
439 result = hlist_entry(first, struct task_struct, pids[(type)].node);
440 }
441 return result;
442}
eccba068 443EXPORT_SYMBOL(pid_task);
1da177e4 444
92476d7f 445/*
9728e5d6 446 * Must be called under rcu_read_lock().
92476d7f 447 */
17f98dcf 448struct task_struct *find_task_by_pid_ns(pid_t nr, struct pid_namespace *ns)
92476d7f 449{
b3fbab05
PM
450 rcu_lockdep_assert(rcu_read_lock_held(),
451 "find_task_by_pid_ns() needs rcu_read_lock()"
452 " protection");
17f98dcf 453 return pid_task(find_pid_ns(nr, ns), PIDTYPE_PID);
92476d7f 454}
1da177e4 455
228ebcbe
PE
456struct task_struct *find_task_by_vpid(pid_t vnr)
457{
17cf22c3 458 return find_task_by_pid_ns(vnr, task_active_pid_ns(current));
228ebcbe 459}
228ebcbe 460
1a657f78
ON
461struct pid *get_task_pid(struct task_struct *task, enum pid_type type)
462{
463 struct pid *pid;
464 rcu_read_lock();
2ae448ef
ON
465 if (type != PIDTYPE_PID)
466 task = task->group_leader;
1a657f78
ON
467 pid = get_pid(task->pids[type].pid);
468 rcu_read_unlock();
469 return pid;
470}
77c100c8 471EXPORT_SYMBOL_GPL(get_task_pid);
1a657f78 472
7ad5b3a5 473struct task_struct *get_pid_task(struct pid *pid, enum pid_type type)
92476d7f
EB
474{
475 struct task_struct *result;
476 rcu_read_lock();
477 result = pid_task(pid, type);
478 if (result)
479 get_task_struct(result);
480 rcu_read_unlock();
481 return result;
1da177e4 482}
77c100c8 483EXPORT_SYMBOL_GPL(get_pid_task);
1da177e4 484
92476d7f 485struct pid *find_get_pid(pid_t nr)
1da177e4
LT
486{
487 struct pid *pid;
488
92476d7f 489 rcu_read_lock();
198fe21b 490 pid = get_pid(find_vpid(nr));
92476d7f 491 rcu_read_unlock();
1da177e4 492
92476d7f 493 return pid;
1da177e4 494}
339caf2a 495EXPORT_SYMBOL_GPL(find_get_pid);
1da177e4 496
7af57294
PE
497pid_t pid_nr_ns(struct pid *pid, struct pid_namespace *ns)
498{
499 struct upid *upid;
500 pid_t nr = 0;
501
502 if (pid && ns->level <= pid->level) {
503 upid = &pid->numbers[ns->level];
504 if (upid->ns == ns)
505 nr = upid->nr;
506 }
507 return nr;
508}
4f82f457 509EXPORT_SYMBOL_GPL(pid_nr_ns);
7af57294 510
44c4e1b2
EB
511pid_t pid_vnr(struct pid *pid)
512{
17cf22c3 513 return pid_nr_ns(pid, task_active_pid_ns(current));
44c4e1b2
EB
514}
515EXPORT_SYMBOL_GPL(pid_vnr);
516
52ee2dfd
ON
517pid_t __task_pid_nr_ns(struct task_struct *task, enum pid_type type,
518 struct pid_namespace *ns)
2f2a3a46 519{
52ee2dfd
ON
520 pid_t nr = 0;
521
522 rcu_read_lock();
523 if (!ns)
17cf22c3 524 ns = task_active_pid_ns(current);
52ee2dfd
ON
525 if (likely(pid_alive(task))) {
526 if (type != PIDTYPE_PID)
527 task = task->group_leader;
528 nr = pid_nr_ns(task->pids[type].pid, ns);
529 }
530 rcu_read_unlock();
531
532 return nr;
2f2a3a46 533}
52ee2dfd 534EXPORT_SYMBOL(__task_pid_nr_ns);
2f2a3a46
PE
535
536pid_t task_tgid_nr_ns(struct task_struct *tsk, struct pid_namespace *ns)
537{
538 return pid_nr_ns(task_tgid(tsk), ns);
539}
540EXPORT_SYMBOL(task_tgid_nr_ns);
541
61bce0f1
EB
542struct pid_namespace *task_active_pid_ns(struct task_struct *tsk)
543{
544 return ns_of_pid(task_pid(tsk));
545}
546EXPORT_SYMBOL_GPL(task_active_pid_ns);
547
0804ef4b 548/*
025dfdaf 549 * Used by proc to find the first pid that is greater than or equal to nr.
0804ef4b 550 *
e49859e7 551 * If there is a pid at nr this function is exactly the same as find_pid_ns.
0804ef4b 552 */
198fe21b 553struct pid *find_ge_pid(int nr, struct pid_namespace *ns)
0804ef4b
EB
554{
555 struct pid *pid;
556
557 do {
198fe21b 558 pid = find_pid_ns(nr, ns);
0804ef4b
EB
559 if (pid)
560 break;
198fe21b 561 nr = next_pidmap(ns, nr);
0804ef4b
EB
562 } while (nr > 0);
563
564 return pid;
565}
566
1da177e4
LT
567/*
568 * The pid hash table is scaled according to the amount of memory in the
569 * machine. From a minimum of 16 slots up to 4096 slots at one gigabyte or
570 * more.
571 */
572void __init pidhash_init(void)
573{
074b8517 574 unsigned int i, pidhash_size;
1da177e4 575
2c85f51d
JB
576 pid_hash = alloc_large_system_hash("PID", sizeof(*pid_hash), 0, 18,
577 HASH_EARLY | HASH_SMALL,
31fe62b9
TB
578 &pidhash_shift, NULL,
579 0, 4096);
074b8517 580 pidhash_size = 1U << pidhash_shift;
1da177e4 581
92476d7f
EB
582 for (i = 0; i < pidhash_size; i++)
583 INIT_HLIST_HEAD(&pid_hash[i]);
1da177e4
LT
584}
585
586void __init pidmap_init(void)
587{
c876ad76
EB
588 /* Veryify no one has done anything silly */
589 BUILD_BUG_ON(PID_MAX_LIMIT >= PIDNS_HASH_ADDING);
590
72680a19
HB
591 /* bump default and minimum pid_max based on number of cpus */
592 pid_max = min(pid_max_max, max_t(int, pid_max,
593 PIDS_PER_CPU_DEFAULT * num_possible_cpus()));
594 pid_max_min = max_t(int, pid_max_min,
595 PIDS_PER_CPU_MIN * num_possible_cpus());
596 pr_info("pid_max: default: %u minimum: %u\n", pid_max, pid_max_min);
597
61a58c6c 598 init_pid_ns.pidmap[0].page = kzalloc(PAGE_SIZE, GFP_KERNEL);
73b9ebfe 599 /* Reserve PID 0. We never call free_pidmap(0) */
61a58c6c
SB
600 set_bit(0, init_pid_ns.pidmap[0].page);
601 atomic_dec(&init_pid_ns.pidmap[0].nr_free);
92476d7f 602
74bd59bb
PE
603 init_pid_ns.pid_cachep = KMEM_CACHE(pid,
604 SLAB_HWCACHE_ALIGN | SLAB_PANIC);
1da177e4 605}