1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * linux/kernel/exit.c 4 * 5 * Copyright (C) 1991, 1992 Linus Torvalds 6 */ 7 8 #include <linux/mm.h> 9 #include <linux/slab.h> 10 #include <linux/sched/autogroup.h> 11 #include <linux/sched/mm.h> 12 #include <linux/sched/stat.h> 13 #include <linux/sched/task.h> 14 #include <linux/sched/task_stack.h> 15 #include <linux/sched/cputime.h> 16 #include <linux/interrupt.h> 17 #include <linux/module.h> 18 #include <linux/capability.h> 19 #include <linux/completion.h> 20 #include <linux/personality.h> 21 #include <linux/tty.h> 22 #include <linux/iocontext.h> 23 #include <linux/key.h> 24 #include <linux/cpu.h> 25 #include <linux/acct.h> 26 #include <linux/tsacct_kern.h> 27 #include <linux/file.h> 28 #include <linux/freezer.h> 29 #include <linux/binfmts.h> 30 #include <linux/nsproxy.h> 31 #include <linux/pid_namespace.h> 32 #include <linux/ptrace.h> 33 #include <linux/profile.h> 34 #include <linux/mount.h> 35 #include <linux/proc_fs.h> 36 #include <linux/kthread.h> 37 #include <linux/mempolicy.h> 38 #include <linux/taskstats_kern.h> 39 #include <linux/delayacct.h> 40 #include <linux/cgroup.h> 41 #include <linux/syscalls.h> 42 #include <linux/signal.h> 43 #include <linux/posix-timers.h> 44 #include <linux/cn_proc.h> 45 #include <linux/mutex.h> 46 #include <linux/futex.h> 47 #include <linux/pipe_fs_i.h> 48 #include <linux/audit.h> /* for audit_free() */ 49 #include <linux/resource.h> 50 #include <linux/task_io_accounting_ops.h> 51 #include <linux/task_work.h> 52 #include <linux/fs_struct.h> 53 #include <linux/init_task.h> 54 #include <linux/perf_event.h> 55 #include <trace/events/sched.h> 56 #include <linux/hw_breakpoint.h> 57 #include <linux/oom.h> 58 #include <linux/writeback.h> 59 #include <linux/shm.h> 60 #include <linux/kcov.h> 61 #include <linux/kmsan.h> 62 #include <linux/random.h> 63 #include <linux/rcuwait.h> 64 #include <linux/compat.h> 65 #include <linux/io_uring.h> 66 #include <linux/kprobes.h> 67 #include <linux/rethook.h> 68 #include <linux/sysfs.h> 69 #include <linux/user_events.h> 70 #include <linux/unwind_deferred.h> 71 #include <linux/uaccess.h> 72 #include <linux/pidfs.h> 73 74 #include <uapi/linux/wait.h> 75 76 #include <asm/unistd.h> 77 #include <asm/mmu_context.h> 78 79 #include "exit.h" 80 81 /* 82 * The default value should be high enough to not crash a system that randomly 83 * crashes its kernel from time to time, but low enough to at least not permit 84 * overflowing 32-bit refcounts or the ldsem writer count. 85 */ 86 static unsigned int oops_limit = 10000; 87 88 #ifdef CONFIG_SYSCTL 89 static const struct ctl_table kern_exit_table[] = { 90 { 91 .procname = "oops_limit", 92 .data = &oops_limit, 93 .maxlen = sizeof(oops_limit), 94 .mode = 0644, 95 .proc_handler = proc_douintvec, 96 }, 97 }; 98 99 static __init int kernel_exit_sysctls_init(void) 100 { 101 register_sysctl_init("kernel", kern_exit_table); 102 return 0; 103 } 104 late_initcall(kernel_exit_sysctls_init); 105 #endif 106 107 static atomic_t oops_count = ATOMIC_INIT(0); 108 109 #ifdef CONFIG_SYSFS 110 static ssize_t oops_count_show(struct kobject *kobj, struct kobj_attribute *attr, 111 char *page) 112 { 113 return sysfs_emit(page, "%d\n", atomic_read(&oops_count)); 114 } 115 116 static struct kobj_attribute oops_count_attr = __ATTR_RO(oops_count); 117 118 static __init int kernel_exit_sysfs_init(void) 119 { 120 sysfs_add_file_to_group(kernel_kobj, &oops_count_attr.attr, NULL); 121 return 0; 122 } 123 late_initcall(kernel_exit_sysfs_init); 124 #endif 125 126 /* 127 * For things release_task() would like to do *after* tasklist_lock is released. 128 */ 129 struct release_task_post { 130 struct pid *pids[PIDTYPE_MAX]; 131 }; 132 133 static void __unhash_process(struct release_task_post *post, struct task_struct *p, 134 bool group_dead) 135 { 136 struct pid *pid = task_pid(p); 137 138 nr_threads--; 139 140 detach_pid(post->pids, p, PIDTYPE_PID); 141 wake_up_all(&pid->wait_pidfd); 142 143 if (group_dead) { 144 detach_pid(post->pids, p, PIDTYPE_TGID); 145 detach_pid(post->pids, p, PIDTYPE_PGID); 146 detach_pid(post->pids, p, PIDTYPE_SID); 147 148 list_del_rcu(&p->tasks); 149 list_del_init(&p->sibling); 150 __this_cpu_dec(process_counts); 151 } 152 list_del_rcu(&p->thread_node); 153 } 154 155 /* 156 * This function expects the tasklist_lock write-locked. 157 */ 158 static void __exit_signal(struct release_task_post *post, struct task_struct *tsk) 159 { 160 struct signal_struct *sig = tsk->signal; 161 bool group_dead = thread_group_leader(tsk); 162 struct sighand_struct *sighand; 163 struct tty_struct *tty; 164 u64 utime, stime; 165 166 sighand = rcu_dereference_check(tsk->sighand, 167 lockdep_tasklist_lock_is_held()); 168 spin_lock(&sighand->siglock); 169 170 #ifdef CONFIG_POSIX_TIMERS 171 posix_cpu_timers_exit(tsk); 172 if (group_dead) 173 posix_cpu_timers_exit_group(tsk); 174 #endif 175 176 if (group_dead) { 177 tty = sig->tty; 178 sig->tty = NULL; 179 } else { 180 /* 181 * If there is any task waiting for the group exit 182 * then notify it: 183 */ 184 if (sig->notify_count > 0 && !--sig->notify_count) 185 wake_up_process(sig->group_exec_task); 186 187 if (tsk == sig->curr_target) 188 sig->curr_target = next_thread(tsk); 189 } 190 191 /* 192 * Accumulate here the counters for all threads as they die. We could 193 * skip the group leader because it is the last user of signal_struct, 194 * but we want to avoid the race with thread_group_cputime() which can 195 * see the empty ->thread_head list. 196 */ 197 task_cputime(tsk, &utime, &stime); 198 write_seqlock(&sig->stats_lock); 199 sig->utime += utime; 200 sig->stime += stime; 201 sig->gtime += task_gtime(tsk); 202 sig->min_flt += tsk->min_flt; 203 sig->maj_flt += tsk->maj_flt; 204 sig->nvcsw += tsk->nvcsw; 205 sig->nivcsw += tsk->nivcsw; 206 sig->inblock += task_io_get_inblock(tsk); 207 sig->oublock += task_io_get_oublock(tsk); 208 task_io_accounting_add(&sig->ioac, &tsk->ioac); 209 sig->sum_sched_runtime += tsk->se.sum_exec_runtime; 210 sig->nr_threads--; 211 __unhash_process(post, tsk, group_dead); 212 write_sequnlock(&sig->stats_lock); 213 214 /* 215 * Ensure that all preceeding state is visible. Pairs with 216 * the smp_acquire__after_ctrl_dep() in the sighand == NULL 217 * path of lock_task_sighand(). 218 */ 219 smp_store_release(&tsk->sighand, NULL); 220 spin_unlock(&sighand->siglock); 221 222 __cleanup_sighand(sighand); 223 if (group_dead) 224 tty_kref_put(tty); 225 } 226 227 static void delayed_put_task_struct(struct rcu_head *rhp) 228 { 229 struct task_struct *tsk = container_of(rhp, struct task_struct, rcu); 230 231 kprobe_flush_task(tsk); 232 rethook_flush_task(tsk); 233 perf_event_delayed_put(tsk); 234 trace_sched_process_free(tsk); 235 put_task_struct(tsk); 236 } 237 238 void put_task_struct_rcu_user(struct task_struct *task) 239 { 240 if (refcount_dec_and_test(&task->rcu_users)) 241 call_rcu(&task->rcu, delayed_put_task_struct); 242 } 243 244 void __weak release_thread(struct task_struct *dead_task) 245 { 246 } 247 248 void release_task(struct task_struct *p) 249 { 250 struct release_task_post post; 251 struct task_struct *leader; 252 struct pid *thread_pid; 253 int zap_leader; 254 repeat: 255 memset(&post, 0, sizeof(post)); 256 257 /* don't need to get the RCU readlock here - the process is dead and 258 * can't be modifying its own credentials. */ 259 dec_rlimit_ucounts(task_ucounts(p), UCOUNT_RLIMIT_NPROC, 1); 260 261 pidfs_exit(p); 262 cgroup_task_release(p); 263 264 /* Retrieve @thread_pid before __unhash_process() may set it to NULL. */ 265 thread_pid = task_pid(p); 266 267 write_lock_irq(&tasklist_lock); 268 ptrace_release_task(p); 269 __exit_signal(&post, p); 270 271 /* 272 * If we are the last non-leader member of the thread 273 * group, and the leader is zombie, then notify the 274 * group leader's parent process. (if it wants notification.) 275 */ 276 zap_leader = 0; 277 leader = p->group_leader; 278 if (leader != p && thread_group_empty(leader) 279 && leader->exit_state == EXIT_ZOMBIE) { 280 /* for pidfs_exit() and do_notify_parent() */ 281 if (leader->signal->flags & SIGNAL_GROUP_EXIT) 282 leader->exit_code = leader->signal->group_exit_code; 283 /* 284 * If we were the last child thread and the leader has 285 * exited already, and the leader's parent ignores SIGCHLD, 286 * then we are the one who should release the leader. 287 */ 288 zap_leader = do_notify_parent(leader, leader->exit_signal); 289 if (zap_leader) 290 leader->exit_state = EXIT_DEAD; 291 } 292 293 write_unlock_irq(&tasklist_lock); 294 /* @thread_pid can't go away until free_pids() below */ 295 proc_flush_pid(thread_pid); 296 exit_cred_namespaces(p); 297 add_device_randomness(&p->se.sum_exec_runtime, 298 sizeof(p->se.sum_exec_runtime)); 299 free_pids(post.pids); 300 release_thread(p); 301 /* 302 * This task was already removed from the process/thread/pid lists 303 * and lock_task_sighand(p) can't succeed. Nobody else can touch 304 * ->pending or, if group dead, signal->shared_pending. We can call 305 * flush_sigqueue() lockless. 306 */ 307 flush_sigqueue(&p->pending); 308 if (thread_group_leader(p)) 309 flush_sigqueue(&p->signal->shared_pending); 310 311 put_task_struct_rcu_user(p); 312 313 p = leader; 314 if (unlikely(zap_leader)) 315 goto repeat; 316 } 317 318 int rcuwait_wake_up(struct rcuwait *w) 319 { 320 int ret = 0; 321 struct task_struct *task; 322 323 rcu_read_lock(); 324 325 /* 326 * Order condition vs @task, such that everything prior to the load 327 * of @task is visible. This is the condition as to why the user called 328 * rcuwait_wake() in the first place. Pairs with set_current_state() 329 * barrier (A) in rcuwait_wait_event(). 330 * 331 * WAIT WAKE 332 * [S] tsk = current [S] cond = true 333 * MB (A) MB (B) 334 * [L] cond [L] tsk 335 */ 336 smp_mb(); /* (B) */ 337 338 task = rcu_dereference(w->task); 339 if (task) 340 ret = wake_up_process(task); 341 rcu_read_unlock(); 342 343 return ret; 344 } 345 EXPORT_SYMBOL_GPL(rcuwait_wake_up); 346 347 /* 348 * Determine if a process group is "orphaned", according to the POSIX 349 * definition in 2.2.2.52. Orphaned process groups are not to be affected 350 * by terminal-generated stop signals. Newly orphaned process groups are 351 * to receive a SIGHUP and a SIGCONT. 352 * 353 * "I ask you, have you ever known what it is to be an orphan?" 354 */ 355 static int will_become_orphaned_pgrp(struct pid *pgrp, 356 struct task_struct *ignored_task) 357 { 358 struct task_struct *p; 359 360 do_each_pid_task(pgrp, PIDTYPE_PGID, p) { 361 if ((p == ignored_task) || 362 (p->exit_state && thread_group_empty(p)) || 363 is_global_init(p->real_parent)) 364 continue; 365 366 if (task_pgrp(p->real_parent) != pgrp && 367 task_session(p->real_parent) == task_session(p)) 368 return 0; 369 } while_each_pid_task(pgrp, PIDTYPE_PGID, p); 370 371 return 1; 372 } 373 374 int is_current_pgrp_orphaned(void) 375 { 376 int retval; 377 378 read_lock(&tasklist_lock); 379 retval = will_become_orphaned_pgrp(task_pgrp(current), NULL); 380 read_unlock(&tasklist_lock); 381 382 return retval; 383 } 384 385 static bool has_stopped_jobs(struct pid *pgrp) 386 { 387 struct task_struct *p; 388 389 do_each_pid_task(pgrp, PIDTYPE_PGID, p) { 390 if (p->signal->flags & SIGNAL_STOP_STOPPED) 391 return true; 392 } while_each_pid_task(pgrp, PIDTYPE_PGID, p); 393 394 return false; 395 } 396 397 /* 398 * Check to see if any process groups have become orphaned as 399 * a result of our exiting, and if they have any stopped jobs, 400 * send them a SIGHUP and then a SIGCONT. (POSIX 3.2.2.2) 401 */ 402 static void 403 kill_orphaned_pgrp(struct task_struct *tsk, struct task_struct *parent) 404 { 405 struct pid *pgrp = task_pgrp(tsk); 406 struct task_struct *ignored_task = tsk; 407 408 if (!parent) 409 /* exit: our father is in a different pgrp than 410 * we are and we were the only connection outside. 411 */ 412 parent = tsk->real_parent; 413 else 414 /* reparent: our child is in a different pgrp than 415 * we are, and it was the only connection outside. 416 */ 417 ignored_task = NULL; 418 419 if (task_pgrp(parent) != pgrp && 420 task_session(parent) == task_session(tsk) && 421 will_become_orphaned_pgrp(pgrp, ignored_task) && 422 has_stopped_jobs(pgrp)) { 423 __kill_pgrp_info(SIGHUP, SEND_SIG_PRIV, pgrp); 424 __kill_pgrp_info(SIGCONT, SEND_SIG_PRIV, pgrp); 425 } 426 } 427 428 static void coredump_task_exit(struct task_struct *tsk, 429 struct core_state *core_state) 430 { 431 struct core_thread self; 432 433 self.task = tsk; 434 if (self.task->flags & PF_SIGNALED) 435 self.next = xchg(&core_state->dumper.next, &self); 436 else 437 self.task = NULL; 438 /* 439 * Implies mb(), the result of xchg() must be visible 440 * to core_state->dumper. 441 */ 442 if (atomic_dec_and_test(&core_state->nr_threads)) 443 complete(&core_state->startup); 444 445 for (;;) { 446 set_current_state(TASK_IDLE|TASK_FREEZABLE); 447 if (!self.task) /* see coredump_finish() */ 448 break; 449 schedule(); 450 } 451 __set_current_state(TASK_RUNNING); 452 } 453 454 #ifdef CONFIG_MEMCG 455 /* drops tasklist_lock if succeeds */ 456 static bool __try_to_set_owner(struct task_struct *tsk, struct mm_struct *mm) 457 { 458 bool ret = false; 459 460 task_lock(tsk); 461 if (likely(tsk->mm == mm)) { 462 /* tsk can't pass exit_mm/exec_mmap and exit */ 463 read_unlock(&tasklist_lock); 464 WRITE_ONCE(mm->owner, tsk); 465 lru_gen_migrate_mm(mm); 466 ret = true; 467 } 468 task_unlock(tsk); 469 return ret; 470 } 471 472 static bool try_to_set_owner(struct task_struct *g, struct mm_struct *mm) 473 { 474 struct task_struct *t; 475 476 for_each_thread(g, t) { 477 struct mm_struct *t_mm = READ_ONCE(t->mm); 478 if (t_mm == mm) { 479 if (__try_to_set_owner(t, mm)) 480 return true; 481 } else if (t_mm) 482 break; 483 } 484 485 return false; 486 } 487 488 /* 489 * A task is exiting. If it owned this mm, find a new owner for the mm. 490 */ 491 void mm_update_next_owner(struct mm_struct *mm) 492 { 493 struct task_struct *g, *p = current; 494 495 /* 496 * If the exiting or execing task is not the owner, it's 497 * someone else's problem. 498 */ 499 if (mm->owner != p) 500 return; 501 /* 502 * The current owner is exiting/execing and there are no other 503 * candidates. Do not leave the mm pointing to a possibly 504 * freed task structure. 505 */ 506 if (atomic_read(&mm->mm_users) <= 1) { 507 WRITE_ONCE(mm->owner, NULL); 508 return; 509 } 510 511 read_lock(&tasklist_lock); 512 /* 513 * Search in the children 514 */ 515 list_for_each_entry(g, &p->children, sibling) { 516 if (try_to_set_owner(g, mm)) 517 goto ret; 518 } 519 /* 520 * Search in the siblings 521 */ 522 list_for_each_entry(g, &p->real_parent->children, sibling) { 523 if (try_to_set_owner(g, mm)) 524 goto ret; 525 } 526 /* 527 * Search through everything else, we should not get here often. 528 */ 529 for_each_process(g) { 530 if (atomic_read(&mm->mm_users) <= 1) 531 break; 532 if (g->flags & PF_KTHREAD) 533 continue; 534 if (try_to_set_owner(g, mm)) 535 goto ret; 536 } 537 read_unlock(&tasklist_lock); 538 /* 539 * We found no owner yet mm_users > 1: this implies that we are 540 * most likely racing with swapoff (try_to_unuse()) or /proc or 541 * ptrace or page migration (get_task_mm()). Mark owner as NULL. 542 */ 543 WRITE_ONCE(mm->owner, NULL); 544 ret: 545 return; 546 547 } 548 #endif /* CONFIG_MEMCG */ 549 550 #if defined(CONFIG_SCHED_CACHE) && defined(CONFIG_NUMA_BALANCING) 551 /* 552 * Subtract the memory footprint of the current task from 553 * mm. 554 */ 555 static void exit_mm_sched_cache(struct mm_struct *mm) 556 { 557 unsigned long fp, sub; 558 559 if (!current->total_numa_faults) 560 return; 561 /* 562 * No lock protection due to performance considerations. 563 * Make sure mm->sc_stat.footprint does not become 564 * negative. 565 */ 566 fp = READ_ONCE(mm->sc_stat.footprint); 567 sub = min(fp, current->total_numa_faults); 568 WRITE_ONCE(mm->sc_stat.footprint, fp - sub); 569 } 570 #else 571 static inline void exit_mm_sched_cache(struct mm_struct *mm) 572 { 573 } 574 #endif /* CONFIG_SCHED_CACHE CONFIG_NUMA_BALANCING */ 575 576 /* 577 * Turn us into a lazy TLB process if we 578 * aren't already.. 579 */ 580 static void exit_mm(void) 581 { 582 struct mm_struct *mm = current->mm; 583 584 mm_exit_exec_release(current, mm); 585 if (!mm) 586 return; 587 588 exit_mm_sched_cache(mm); 589 590 mmap_read_lock(mm); 591 mmgrab_lazy_tlb(mm); 592 BUG_ON(mm != current->active_mm); 593 /* more a memory barrier than a real lock */ 594 task_lock(current); 595 /* 596 * When a thread stops operating on an address space, the loop 597 * in membarrier_private_expedited() may not observe that 598 * tsk->mm, and the loop in membarrier_global_expedited() may 599 * not observe a MEMBARRIER_STATE_GLOBAL_EXPEDITED 600 * rq->membarrier_state, so those would not issue an IPI. 601 * Membarrier requires a memory barrier after accessing 602 * user-space memory, before clearing tsk->mm or the 603 * rq->membarrier_state. 604 */ 605 smp_mb__after_spinlock(); 606 local_irq_disable(); 607 current->mm = NULL; 608 membarrier_update_current_mm(NULL); 609 enter_lazy_tlb(mm, current); 610 local_irq_enable(); 611 task_unlock(current); 612 mmap_read_unlock(mm); 613 mm_update_next_owner(mm); 614 mmput(mm); 615 if (test_thread_flag(TIF_MEMDIE)) 616 exit_oom_victim(); 617 } 618 619 static struct task_struct *find_alive_thread(struct task_struct *p) 620 { 621 struct task_struct *t; 622 623 for_each_thread(p, t) { 624 if (!(t->flags & PF_EXITING)) 625 return t; 626 } 627 return NULL; 628 } 629 630 static struct task_struct *find_child_reaper(struct task_struct *father, 631 struct list_head *dead) 632 __releases(&tasklist_lock) 633 __acquires(&tasklist_lock) 634 { 635 struct pid_namespace *pid_ns = task_active_pid_ns(father); 636 struct task_struct *reaper = pid_ns->child_reaper; 637 struct task_struct *p, *n; 638 639 if (likely(reaper != father)) 640 return reaper; 641 642 reaper = find_alive_thread(father); 643 if (reaper) { 644 ASSERT_EXCLUSIVE_WRITER(pid_ns->child_reaper); 645 WRITE_ONCE(pid_ns->child_reaper, reaper); 646 return reaper; 647 } 648 649 write_unlock_irq(&tasklist_lock); 650 651 list_for_each_entry_safe(p, n, dead, ptrace_entry) { 652 list_del_init(&p->ptrace_entry); 653 release_task(p); 654 } 655 656 zap_pid_ns_processes(pid_ns); 657 write_lock_irq(&tasklist_lock); 658 659 return father; 660 } 661 662 /* 663 * When we die, we re-parent all our children, and try to: 664 * 1. give them to another thread in our thread group, if such a member exists 665 * 2. give it to the first ancestor process which prctl'd itself as a 666 * child_subreaper for its children (like a service manager) 667 * 3. give it to the init process (PID 1) in our pid namespace 668 */ 669 static struct task_struct *find_new_reaper(struct task_struct *father, 670 struct task_struct *child_reaper) 671 { 672 struct task_struct *thread, *reaper; 673 674 thread = find_alive_thread(father); 675 if (thread) 676 return thread; 677 678 if (father->signal->has_child_subreaper) { 679 unsigned int ns_level = task_pid(father)->level; 680 /* 681 * Find the first ->is_child_subreaper ancestor in our pid_ns. 682 * We can't check reaper != child_reaper to ensure we do not 683 * cross the namespaces, the exiting parent could be injected 684 * by setns() + fork(). 685 * We check pid->level, this is slightly more efficient than 686 * task_active_pid_ns(reaper) != task_active_pid_ns(father). 687 */ 688 for (reaper = father->real_parent; 689 task_pid(reaper)->level == ns_level; 690 reaper = reaper->real_parent) { 691 if (reaper == &init_task) 692 break; 693 if (!reaper->signal->is_child_subreaper) 694 continue; 695 thread = find_alive_thread(reaper); 696 if (thread) 697 return thread; 698 } 699 } 700 701 return child_reaper; 702 } 703 704 /* 705 * Any that need to be release_task'd are put on the @dead list. 706 */ 707 static void reparent_leader(struct task_struct *father, struct task_struct *p, 708 struct list_head *dead) 709 { 710 if (unlikely(p->exit_state == EXIT_DEAD)) 711 return; 712 713 /* We don't want people slaying init. */ 714 p->exit_signal = SIGCHLD; 715 716 /* If it has exited notify the new parent about this child's death. */ 717 if (!p->ptrace && 718 p->exit_state == EXIT_ZOMBIE && thread_group_empty(p)) { 719 if (do_notify_parent(p, p->exit_signal)) { 720 p->exit_state = EXIT_DEAD; 721 list_add(&p->ptrace_entry, dead); 722 } 723 } 724 725 kill_orphaned_pgrp(p, father); 726 } 727 728 /* 729 * Make init inherit all the child processes 730 */ 731 static void forget_original_parent(struct task_struct *father, 732 struct list_head *dead) 733 { 734 struct task_struct *p, *t, *reaper; 735 736 if (unlikely(!list_empty(&father->ptraced))) 737 exit_ptrace(father, dead); 738 739 /* Can drop and reacquire tasklist_lock */ 740 reaper = find_child_reaper(father, dead); 741 if (list_empty(&father->children)) 742 return; 743 744 reaper = find_new_reaper(father, reaper); 745 list_for_each_entry(p, &father->children, sibling) { 746 for_each_thread(p, t) { 747 RCU_INIT_POINTER(t->real_parent, reaper); 748 BUG_ON((!t->ptrace) != (rcu_access_pointer(t->parent) == father)); 749 if (likely(!t->ptrace)) 750 t->parent = t->real_parent; 751 if (t->pdeath_signal) 752 group_send_sig_info(t->pdeath_signal, 753 SEND_SIG_NOINFO, t, 754 PIDTYPE_TGID); 755 } 756 /* 757 * If this is a threaded reparent there is no need to 758 * notify anyone anything has happened. 759 */ 760 if (!same_thread_group(reaper, father)) 761 reparent_leader(father, p, dead); 762 } 763 list_splice_tail_init(&father->children, &reaper->children); 764 } 765 766 /* 767 * Send signals to all our closest relatives so that they know 768 * to properly mourn us.. 769 */ 770 static void exit_notify(struct task_struct *tsk, int group_dead) 771 { 772 bool autoreap; 773 struct task_struct *p, *n; 774 LIST_HEAD(dead); 775 776 write_lock_irq(&tasklist_lock); 777 forget_original_parent(tsk, &dead); 778 779 if (group_dead) 780 kill_orphaned_pgrp(tsk->group_leader, NULL); 781 782 tsk->exit_state = EXIT_ZOMBIE; 783 784 if (unlikely(tsk->ptrace)) { 785 int sig = thread_group_empty(tsk) && !ptrace_reparented(tsk) 786 ? tsk->exit_signal : SIGCHLD; 787 autoreap = do_notify_parent(tsk, sig); 788 } else if (thread_group_leader(tsk)) { 789 autoreap = thread_group_empty(tsk) && 790 do_notify_parent(tsk, tsk->exit_signal); 791 } else { 792 autoreap = true; 793 /* untraced sub-thread */ 794 do_notify_pidfd(tsk); 795 } 796 797 if (autoreap) { 798 tsk->exit_state = EXIT_DEAD; 799 list_add(&tsk->ptrace_entry, &dead); 800 } 801 802 /* mt-exec, de_thread() is waiting for group leader */ 803 if (unlikely(tsk->signal->notify_count < 0)) 804 wake_up_process(tsk->signal->group_exec_task); 805 write_unlock_irq(&tasklist_lock); 806 807 list_for_each_entry_safe(p, n, &dead, ptrace_entry) { 808 list_del_init(&p->ptrace_entry); 809 release_task(p); 810 } 811 } 812 813 #ifdef CONFIG_DEBUG_STACK_USAGE 814 #ifdef CONFIG_STACK_GROWSUP 815 unsigned long stack_not_used(struct task_struct *p) 816 { 817 unsigned long *n = end_of_stack(p); 818 819 do { /* Skip over canary */ 820 n--; 821 } while (!*n); 822 823 return (unsigned long)end_of_stack(p) - (unsigned long)n; 824 } 825 #else /* !CONFIG_STACK_GROWSUP */ 826 unsigned long stack_not_used(struct task_struct *p) 827 { 828 unsigned long *n = end_of_stack(p); 829 830 do { /* Skip over canary */ 831 n++; 832 } while (!*n); 833 834 return (unsigned long)n - (unsigned long)end_of_stack(p); 835 } 836 #endif /* CONFIG_STACK_GROWSUP */ 837 838 /* Count the maximum pages reached in kernel stacks */ 839 static inline void kstack_histogram(unsigned long used_stack) 840 { 841 #ifdef CONFIG_VM_EVENT_COUNTERS 842 if (used_stack <= 1024) 843 count_vm_event(KSTACK_1K); 844 #if THREAD_SIZE > 1024 845 else if (used_stack <= 2048) 846 count_vm_event(KSTACK_2K); 847 #endif 848 #if THREAD_SIZE > 2048 849 else if (used_stack <= 4096) 850 count_vm_event(KSTACK_4K); 851 #endif 852 #if THREAD_SIZE > 4096 853 else if (used_stack <= 8192) 854 count_vm_event(KSTACK_8K); 855 #endif 856 #if THREAD_SIZE > 8192 857 else if (used_stack <= 16384) 858 count_vm_event(KSTACK_16K); 859 #endif 860 #if THREAD_SIZE > 16384 861 else if (used_stack <= 32768) 862 count_vm_event(KSTACK_32K); 863 #endif 864 #if THREAD_SIZE > 32768 865 else if (used_stack <= 65536) 866 count_vm_event(KSTACK_64K); 867 #endif 868 #if THREAD_SIZE > 65536 869 else 870 count_vm_event(KSTACK_REST); 871 #endif 872 #endif /* CONFIG_VM_EVENT_COUNTERS */ 873 } 874 875 static void check_stack_usage(void) 876 { 877 static DEFINE_SPINLOCK(low_water_lock); 878 static int lowest_to_date = THREAD_SIZE; 879 unsigned long free; 880 881 free = stack_not_used(current); 882 kstack_histogram(THREAD_SIZE - free); 883 884 if (free >= lowest_to_date) 885 return; 886 887 spin_lock(&low_water_lock); 888 if (free < lowest_to_date) { 889 pr_info("%s (%d) used greatest stack depth: %lu bytes left\n", 890 current->comm, task_pid_nr(current), free); 891 lowest_to_date = free; 892 } 893 spin_unlock(&low_water_lock); 894 } 895 #else /* !CONFIG_DEBUG_STACK_USAGE */ 896 static inline void check_stack_usage(void) {} 897 #endif /* CONFIG_DEBUG_STACK_USAGE */ 898 899 static void synchronize_group_exit(struct task_struct *tsk, long code) 900 { 901 struct sighand_struct *sighand = tsk->sighand; 902 struct signal_struct *signal = tsk->signal; 903 struct core_state *core_state; 904 905 spin_lock_irq(&sighand->siglock); 906 signal->quick_threads--; 907 if ((signal->quick_threads == 0) && 908 !(signal->flags & SIGNAL_GROUP_EXIT)) { 909 signal->flags = SIGNAL_GROUP_EXIT; 910 signal->group_exit_code = code; 911 signal->group_stop_count = 0; 912 } 913 /* 914 * Serialize with any possible pending coredump. 915 * We must hold siglock around checking core_state 916 * and setting PF_POSTCOREDUMP. The core-inducing thread 917 * will increment ->nr_threads for each thread in the 918 * group without PF_POSTCOREDUMP set. 919 */ 920 tsk->flags |= PF_POSTCOREDUMP; 921 core_state = signal->core_state; 922 spin_unlock_irq(&sighand->siglock); 923 924 if (unlikely(core_state)) 925 coredump_task_exit(tsk, core_state); 926 } 927 928 void __noreturn do_exit(long code) 929 { 930 struct task_struct *tsk = current; 931 struct kthread *kthread; 932 int group_dead; 933 934 WARN_ON(irqs_disabled()); 935 WARN_ON(tsk->plug); 936 937 kthread = tsk_is_kthread(tsk); 938 if (unlikely(kthread)) 939 kthread_do_exit(kthread, code); 940 941 kcov_task_exit(tsk); 942 kmsan_task_exit(tsk); 943 944 synchronize_group_exit(tsk, code); 945 ptrace_event(PTRACE_EVENT_EXIT, code); 946 user_events_exit(tsk); 947 948 io_uring_files_cancel(); 949 sched_mm_cid_exit(tsk); 950 exit_signals(tsk); /* sets PF_EXITING */ 951 952 seccomp_filter_release(tsk); 953 954 acct_update_integrals(tsk); 955 group_dead = atomic_dec_and_test(&tsk->signal->live); 956 if (group_dead) { 957 /* 958 * If the last thread of global init has exited, panic 959 * immediately to get a useable coredump. 960 */ 961 if (unlikely(is_global_init(tsk))) 962 panic("Attempted to kill init! exitcode=0x%08x\n", 963 tsk->signal->group_exit_code ?: (int)code); 964 965 #ifdef CONFIG_POSIX_TIMERS 966 hrtimer_cancel(&tsk->signal->real_timer); 967 exit_itimers(tsk); 968 #endif 969 if (tsk->mm) 970 setmax_mm_hiwater_rss(&tsk->signal->maxrss, tsk->mm); 971 } 972 acct_collect(code, group_dead); 973 if (group_dead) 974 tty_audit_exit(); 975 audit_free(tsk); 976 977 tsk->exit_code = code; 978 taskstats_exit(tsk, group_dead); 979 trace_sched_process_exit(tsk, group_dead); 980 981 /* 982 * Since sampling can touch ->mm, make sure to stop everything before we 983 * tear it down. 984 * 985 * Also flushes inherited counters to the parent - before the parent 986 * gets woken up by child-exit notifications. 987 */ 988 perf_event_exit_task(tsk); 989 /* 990 * PF_EXITING (above) ensures unwind_deferred_request() will no 991 * longer add new unwinds. While exit_mm() (below) will destroy the 992 * abaility to do unwinds. So flush any pending unwinds here. 993 */ 994 unwind_deferred_task_exit(tsk); 995 996 exit_mm(); 997 998 if (group_dead) 999 acct_process(); 1000 1001 exit_sem(tsk); 1002 exit_shm(tsk); 1003 exit_files(tsk); 1004 exit_fs(tsk); 1005 if (group_dead) 1006 disassociate_ctty(1); 1007 exit_nsproxy_namespaces(tsk); 1008 exit_task_work(tsk); 1009 exit_thread(tsk); 1010 1011 sched_autogroup_exit_task(tsk); 1012 cgroup_task_exit(tsk); 1013 1014 /* 1015 * FIXME: do that only when needed, using sched_exit tracepoint 1016 */ 1017 flush_ptrace_hw_breakpoint(tsk); 1018 1019 exit_tasks_rcu_start(); 1020 exit_notify(tsk, group_dead); 1021 proc_exit_connector(tsk); 1022 mpol_put_task_policy(tsk); 1023 #ifdef CONFIG_FUTEX 1024 if (unlikely(current->futex.pi_state_cache)) 1025 kfree(current->futex.pi_state_cache); 1026 #endif 1027 /* 1028 * Make sure we are holding no locks: 1029 */ 1030 debug_check_no_locks_held(); 1031 1032 if (tsk->io_context) 1033 exit_io_context(tsk); 1034 1035 if (tsk->splice_pipe) 1036 free_pipe_info(tsk->splice_pipe); 1037 1038 if (tsk->task_frag.page) 1039 put_page(tsk->task_frag.page); 1040 1041 exit_task_stack_account(tsk); 1042 1043 check_stack_usage(); 1044 preempt_disable(); 1045 if (tsk->nr_dirtied) 1046 __this_cpu_add(dirty_throttle_leaks, tsk->nr_dirtied); 1047 exit_rcu(); 1048 exit_tasks_rcu_finish(); 1049 1050 lockdep_free_task(tsk); 1051 do_task_dead(); 1052 } 1053 EXPORT_SYMBOL(do_exit); 1054 1055 void __noreturn make_task_dead(int signr) 1056 { 1057 /* 1058 * Take the task off the cpu after something catastrophic has 1059 * happened. 1060 * 1061 * We can get here from a kernel oops, sometimes with preemption off. 1062 * Start by checking for critical errors. 1063 * Then fix up important state like USER_DS and preemption. 1064 * Then do everything else. 1065 */ 1066 struct task_struct *tsk = current; 1067 unsigned int limit; 1068 1069 if (unlikely(in_interrupt())) 1070 panic("Aiee, killing interrupt handler!"); 1071 if (unlikely(!tsk->pid)) 1072 panic("Attempted to kill the idle task!"); 1073 1074 if (unlikely(irqs_disabled())) { 1075 pr_info("note: %s[%d] exited with irqs disabled\n", 1076 current->comm, task_pid_nr(current)); 1077 local_irq_enable(); 1078 } 1079 if (unlikely(in_atomic())) { 1080 pr_info("note: %s[%d] exited with preempt_count %d\n", 1081 current->comm, task_pid_nr(current), 1082 preempt_count()); 1083 preempt_count_set(PREEMPT_ENABLED); 1084 } 1085 1086 /* 1087 * Every time the system oopses, if the oops happens while a reference 1088 * to an object was held, the reference leaks. 1089 * If the oops doesn't also leak memory, repeated oopsing can cause 1090 * reference counters to wrap around (if they're not using refcount_t). 1091 * This means that repeated oopsing can make unexploitable-looking bugs 1092 * exploitable through repeated oopsing. 1093 * To make sure this can't happen, place an upper bound on how often the 1094 * kernel may oops without panic(). 1095 */ 1096 limit = READ_ONCE(oops_limit); 1097 if (atomic_inc_return(&oops_count) >= limit && limit) 1098 panic("Oopsed too often (kernel.oops_limit is %d)", limit); 1099 1100 /* 1101 * We're taking recursive faults here in make_task_dead. Safest is to just 1102 * leave this task alone and wait for reboot. 1103 */ 1104 if (unlikely(tsk->flags & PF_EXITING)) { 1105 pr_alert("Fixing recursive fault but reboot is needed!\n"); 1106 futex_exit_recursive(tsk); 1107 tsk->exit_state = EXIT_DEAD; 1108 refcount_inc(&tsk->rcu_users); 1109 preempt_disable(); 1110 do_task_dead(); 1111 } 1112 1113 do_exit(signr); 1114 } 1115 1116 SYSCALL_DEFINE1(exit, int, error_code) 1117 { 1118 do_exit((error_code & 0xff) << 8); 1119 } 1120 1121 /* 1122 * Take down every thread in the group. This is called by fatal signals 1123 * as well as by sys_exit_group (below). 1124 */ 1125 void __noreturn 1126 do_group_exit(int exit_code) 1127 { 1128 struct signal_struct *sig = current->signal; 1129 1130 if (sig->flags & SIGNAL_GROUP_EXIT) 1131 exit_code = sig->group_exit_code; 1132 else if (sig->group_exec_task) 1133 exit_code = 0; 1134 else { 1135 struct sighand_struct *const sighand = current->sighand; 1136 1137 spin_lock_irq(&sighand->siglock); 1138 if (sig->flags & SIGNAL_GROUP_EXIT) 1139 /* Another thread got here before we took the lock. */ 1140 exit_code = sig->group_exit_code; 1141 else if (sig->group_exec_task) 1142 exit_code = 0; 1143 else { 1144 sig->group_exit_code = exit_code; 1145 sig->flags = SIGNAL_GROUP_EXIT; 1146 zap_other_threads(current); 1147 } 1148 spin_unlock_irq(&sighand->siglock); 1149 } 1150 1151 do_exit(exit_code); 1152 /* NOTREACHED */ 1153 } 1154 1155 /* 1156 * this kills every thread in the thread group. Note that any externally 1157 * wait4()-ing process will get the correct exit code - even if this 1158 * thread is not the thread group leader. 1159 */ 1160 SYSCALL_DEFINE1(exit_group, int, error_code) 1161 { 1162 do_group_exit((error_code & 0xff) << 8); 1163 /* NOTREACHED */ 1164 return 0; 1165 } 1166 1167 static int eligible_pid(struct wait_opts *wo, struct task_struct *p) 1168 { 1169 return wo->wo_type == PIDTYPE_MAX || 1170 task_pid_type(p, wo->wo_type) == wo->wo_pid; 1171 } 1172 1173 static int 1174 eligible_child(struct wait_opts *wo, bool ptrace, struct task_struct *p) 1175 { 1176 if (!eligible_pid(wo, p)) 1177 return 0; 1178 1179 /* 1180 * Wait for all children (clone and not) if __WALL is set or 1181 * if it is traced by us. 1182 */ 1183 if (ptrace || (wo->wo_flags & __WALL)) 1184 return 1; 1185 1186 /* 1187 * Otherwise, wait for clone children *only* if __WCLONE is set; 1188 * otherwise, wait for non-clone children *only*. 1189 * 1190 * Note: a "clone" child here is one that reports to its parent 1191 * using a signal other than SIGCHLD, or a non-leader thread which 1192 * we can only see if it is traced by us. 1193 */ 1194 if ((p->exit_signal != SIGCHLD) ^ !!(wo->wo_flags & __WCLONE)) 1195 return 0; 1196 1197 return 1; 1198 } 1199 1200 /* 1201 * Handle sys_wait4 work for one task in state EXIT_ZOMBIE. We hold 1202 * read_lock(&tasklist_lock) on entry. If we return zero, we still hold 1203 * the lock and this task is uninteresting. If we return nonzero, we have 1204 * released the lock and the system call should return. 1205 */ 1206 static int wait_task_zombie(struct wait_opts *wo, struct task_struct *p) 1207 { 1208 int state, status; 1209 pid_t pid = task_pid_vnr(p); 1210 uid_t uid = from_kuid_munged(current_user_ns(), task_uid(p)); 1211 struct waitid_info *infop; 1212 1213 if (!likely(wo->wo_flags & WEXITED)) 1214 return 0; 1215 1216 if (unlikely(wo->wo_flags & WNOWAIT)) { 1217 status = (p->signal->flags & SIGNAL_GROUP_EXIT) 1218 ? p->signal->group_exit_code : p->exit_code; 1219 get_task_struct(p); 1220 read_unlock(&tasklist_lock); 1221 sched_annotate_sleep(); 1222 if (wo->wo_rusage) 1223 getrusage(p, RUSAGE_BOTH, wo->wo_rusage); 1224 put_task_struct(p); 1225 goto out_info; 1226 } 1227 /* 1228 * Move the task's state to DEAD/TRACE, only one thread can do this. 1229 */ 1230 state = (ptrace_reparented(p) && thread_group_leader(p)) ? 1231 EXIT_TRACE : EXIT_DEAD; 1232 if (cmpxchg(&p->exit_state, EXIT_ZOMBIE, state) != EXIT_ZOMBIE) 1233 return 0; 1234 /* 1235 * We own this thread, nobody else can reap it. 1236 */ 1237 read_unlock(&tasklist_lock); 1238 sched_annotate_sleep(); 1239 1240 /* 1241 * Check thread_group_leader() to exclude the traced sub-threads. 1242 */ 1243 if (state == EXIT_DEAD && thread_group_leader(p)) { 1244 struct signal_struct *sig = p->signal; 1245 struct signal_struct *psig = current->signal; 1246 unsigned long maxrss; 1247 u64 tgutime, tgstime; 1248 1249 /* 1250 * The resource counters for the group leader are in its 1251 * own task_struct. Those for dead threads in the group 1252 * are in its signal_struct, as are those for the child 1253 * processes it has previously reaped. All these 1254 * accumulate in the parent's signal_struct c* fields. 1255 * 1256 * We don't bother to take a lock here to protect these 1257 * p->signal fields because the whole thread group is dead 1258 * and nobody can change them. 1259 * 1260 * psig->stats_lock also protects us from our sub-threads 1261 * which can reap other children at the same time. 1262 * 1263 * We use thread_group_cputime_adjusted() to get times for 1264 * the thread group, which consolidates times for all threads 1265 * in the group including the group leader. 1266 */ 1267 thread_group_cputime_adjusted(p, &tgutime, &tgstime); 1268 write_seqlock_irq(&psig->stats_lock); 1269 psig->cutime += tgutime + sig->cutime; 1270 psig->cstime += tgstime + sig->cstime; 1271 psig->cgtime += task_gtime(p) + sig->gtime + sig->cgtime; 1272 psig->cmin_flt += 1273 p->min_flt + sig->min_flt + sig->cmin_flt; 1274 psig->cmaj_flt += 1275 p->maj_flt + sig->maj_flt + sig->cmaj_flt; 1276 psig->cnvcsw += 1277 p->nvcsw + sig->nvcsw + sig->cnvcsw; 1278 psig->cnivcsw += 1279 p->nivcsw + sig->nivcsw + sig->cnivcsw; 1280 psig->cinblock += 1281 task_io_get_inblock(p) + 1282 sig->inblock + sig->cinblock; 1283 psig->coublock += 1284 task_io_get_oublock(p) + 1285 sig->oublock + sig->coublock; 1286 maxrss = max(sig->maxrss, sig->cmaxrss); 1287 if (psig->cmaxrss < maxrss) 1288 psig->cmaxrss = maxrss; 1289 task_io_accounting_add(&psig->ioac, &p->ioac); 1290 task_io_accounting_add(&psig->ioac, &sig->ioac); 1291 write_sequnlock_irq(&psig->stats_lock); 1292 } 1293 1294 if (wo->wo_rusage) 1295 getrusage(p, RUSAGE_BOTH, wo->wo_rusage); 1296 status = (p->signal->flags & SIGNAL_GROUP_EXIT) 1297 ? p->signal->group_exit_code : p->exit_code; 1298 wo->wo_stat = status; 1299 1300 if (state == EXIT_TRACE) { 1301 write_lock_irq(&tasklist_lock); 1302 /* We dropped tasklist, ptracer could die and untrace */ 1303 ptrace_unlink(p); 1304 1305 /* If parent wants a zombie, don't release it now */ 1306 state = EXIT_ZOMBIE; 1307 if (do_notify_parent(p, p->exit_signal)) 1308 state = EXIT_DEAD; 1309 p->exit_state = state; 1310 write_unlock_irq(&tasklist_lock); 1311 } 1312 if (state == EXIT_DEAD) 1313 release_task(p); 1314 1315 out_info: 1316 infop = wo->wo_info; 1317 if (infop) { 1318 if ((status & 0x7f) == 0) { 1319 infop->cause = CLD_EXITED; 1320 infop->status = status >> 8; 1321 } else { 1322 infop->cause = (status & 0x80) ? CLD_DUMPED : CLD_KILLED; 1323 infop->status = status & 0x7f; 1324 } 1325 infop->pid = pid; 1326 infop->uid = uid; 1327 } 1328 1329 return pid; 1330 } 1331 1332 static int *task_stopped_code(struct task_struct *p, bool ptrace) 1333 { 1334 if (ptrace) { 1335 if (task_is_traced(p) && !(p->jobctl & JOBCTL_LISTENING)) 1336 return &p->exit_code; 1337 } else { 1338 if (p->signal->flags & SIGNAL_STOP_STOPPED) 1339 return &p->signal->group_exit_code; 1340 } 1341 return NULL; 1342 } 1343 1344 /** 1345 * wait_task_stopped - Wait for %TASK_STOPPED or %TASK_TRACED 1346 * @wo: wait options 1347 * @ptrace: is the wait for ptrace 1348 * @p: task to wait for 1349 * 1350 * Handle sys_wait4() work for %p in state %TASK_STOPPED or %TASK_TRACED. 1351 * 1352 * CONTEXT: 1353 * read_lock(&tasklist_lock), which is released if return value is 1354 * non-zero. Also, grabs and releases @p->sighand->siglock. 1355 * 1356 * RETURNS: 1357 * 0 if wait condition didn't exist and search for other wait conditions 1358 * should continue. Non-zero return, -errno on failure and @p's pid on 1359 * success, implies that tasklist_lock is released and wait condition 1360 * search should terminate. 1361 */ 1362 static int wait_task_stopped(struct wait_opts *wo, 1363 int ptrace, struct task_struct *p) 1364 { 1365 struct waitid_info *infop; 1366 int exit_code, *p_code, why; 1367 uid_t uid = 0; /* unneeded, required by compiler */ 1368 pid_t pid; 1369 1370 /* 1371 * Traditionally we see ptrace'd stopped tasks regardless of options. 1372 */ 1373 if (!ptrace && !(wo->wo_flags & WUNTRACED)) 1374 return 0; 1375 1376 if (!task_stopped_code(p, ptrace)) 1377 return 0; 1378 1379 exit_code = 0; 1380 spin_lock_irq(&p->sighand->siglock); 1381 1382 p_code = task_stopped_code(p, ptrace); 1383 if (unlikely(!p_code)) 1384 goto unlock_sig; 1385 1386 exit_code = *p_code; 1387 if (!exit_code) 1388 goto unlock_sig; 1389 1390 if (!unlikely(wo->wo_flags & WNOWAIT)) 1391 *p_code = 0; 1392 1393 uid = from_kuid_munged(current_user_ns(), task_uid(p)); 1394 unlock_sig: 1395 spin_unlock_irq(&p->sighand->siglock); 1396 if (!exit_code) 1397 return 0; 1398 1399 /* 1400 * Now we are pretty sure this task is interesting. 1401 * Make sure it doesn't get reaped out from under us while we 1402 * give up the lock and then examine it below. We don't want to 1403 * keep holding onto the tasklist_lock while we call getrusage and 1404 * possibly take page faults for user memory. 1405 */ 1406 get_task_struct(p); 1407 pid = task_pid_vnr(p); 1408 why = ptrace ? CLD_TRAPPED : CLD_STOPPED; 1409 read_unlock(&tasklist_lock); 1410 sched_annotate_sleep(); 1411 if (wo->wo_rusage) 1412 getrusage(p, RUSAGE_BOTH, wo->wo_rusage); 1413 put_task_struct(p); 1414 1415 if (likely(!(wo->wo_flags & WNOWAIT))) 1416 wo->wo_stat = (exit_code << 8) | 0x7f; 1417 1418 infop = wo->wo_info; 1419 if (infop) { 1420 infop->cause = why; 1421 infop->status = exit_code; 1422 infop->pid = pid; 1423 infop->uid = uid; 1424 } 1425 return pid; 1426 } 1427 1428 /* 1429 * Handle do_wait work for one task in a live, non-stopped state. 1430 * read_lock(&tasklist_lock) on entry. If we return zero, we still hold 1431 * the lock and this task is uninteresting. If we return nonzero, we have 1432 * released the lock and the system call should return. 1433 */ 1434 static int wait_task_continued(struct wait_opts *wo, struct task_struct *p) 1435 { 1436 struct waitid_info *infop; 1437 pid_t pid; 1438 uid_t uid; 1439 1440 if (!unlikely(wo->wo_flags & WCONTINUED)) 1441 return 0; 1442 1443 if (!(p->signal->flags & SIGNAL_STOP_CONTINUED)) 1444 return 0; 1445 1446 spin_lock_irq(&p->sighand->siglock); 1447 /* Re-check with the lock held. */ 1448 if (!(p->signal->flags & SIGNAL_STOP_CONTINUED)) { 1449 spin_unlock_irq(&p->sighand->siglock); 1450 return 0; 1451 } 1452 if (!unlikely(wo->wo_flags & WNOWAIT)) 1453 p->signal->flags &= ~SIGNAL_STOP_CONTINUED; 1454 uid = from_kuid_munged(current_user_ns(), task_uid(p)); 1455 spin_unlock_irq(&p->sighand->siglock); 1456 1457 pid = task_pid_vnr(p); 1458 get_task_struct(p); 1459 read_unlock(&tasklist_lock); 1460 sched_annotate_sleep(); 1461 if (wo->wo_rusage) 1462 getrusage(p, RUSAGE_BOTH, wo->wo_rusage); 1463 put_task_struct(p); 1464 1465 infop = wo->wo_info; 1466 if (!infop) { 1467 wo->wo_stat = 0xffff; 1468 } else { 1469 infop->cause = CLD_CONTINUED; 1470 infop->pid = pid; 1471 infop->uid = uid; 1472 infop->status = SIGCONT; 1473 } 1474 return pid; 1475 } 1476 1477 /* 1478 * Consider @p for a wait by @parent. 1479 * 1480 * -ECHILD should be in ->notask_error before the first call. 1481 * Returns nonzero for a final return, when we have unlocked tasklist_lock. 1482 * Returns zero if the search for a child should continue; 1483 * then ->notask_error is 0 if @p is an eligible child, 1484 * or still -ECHILD. 1485 */ 1486 static int wait_consider_task(struct wait_opts *wo, int ptrace, 1487 struct task_struct *p) 1488 { 1489 /* 1490 * We can race with wait_task_zombie() from another thread. 1491 * Ensure that EXIT_ZOMBIE -> EXIT_DEAD/EXIT_TRACE transition 1492 * can't confuse the checks below. 1493 */ 1494 int exit_state = READ_ONCE(p->exit_state); 1495 int ret; 1496 1497 if (unlikely(exit_state == EXIT_DEAD)) 1498 return 0; 1499 1500 ret = eligible_child(wo, ptrace, p); 1501 if (!ret) 1502 return ret; 1503 1504 if (unlikely(exit_state == EXIT_TRACE)) { 1505 /* 1506 * ptrace == 0 means we are the natural parent. In this case 1507 * we should clear notask_error, debugger will notify us. 1508 */ 1509 if (likely(!ptrace)) 1510 wo->notask_error = 0; 1511 return 0; 1512 } 1513 1514 if (likely(!ptrace) && unlikely(p->ptrace)) { 1515 /* 1516 * If it is traced by its real parent's group, just pretend 1517 * the caller is ptrace_do_wait() and reap this child if it 1518 * is zombie. 1519 * 1520 * This also hides group stop state from real parent; otherwise 1521 * a single stop can be reported twice as group and ptrace stop. 1522 * If a ptracer wants to distinguish these two events for its 1523 * own children it should create a separate process which takes 1524 * the role of real parent. 1525 */ 1526 if (!ptrace_reparented(p)) 1527 ptrace = 1; 1528 } 1529 1530 /* slay zombie? */ 1531 if (exit_state == EXIT_ZOMBIE) { 1532 /* we don't reap group leaders with subthreads */ 1533 if (!delay_group_leader(p)) { 1534 /* 1535 * A zombie ptracee is only visible to its ptracer. 1536 * Notification and reaping will be cascaded to the 1537 * real parent when the ptracer detaches. 1538 */ 1539 if (unlikely(ptrace) || likely(!p->ptrace)) 1540 return wait_task_zombie(wo, p); 1541 } 1542 1543 /* 1544 * Allow access to stopped/continued state via zombie by 1545 * falling through. Clearing of notask_error is complex. 1546 * 1547 * When !@ptrace: 1548 * 1549 * If WEXITED is set, notask_error should naturally be 1550 * cleared. If not, subset of WSTOPPED|WCONTINUED is set, 1551 * so, if there are live subthreads, there are events to 1552 * wait for. If all subthreads are dead, it's still safe 1553 * to clear - this function will be called again in finite 1554 * amount time once all the subthreads are released and 1555 * will then return without clearing. 1556 * 1557 * When @ptrace: 1558 * 1559 * Stopped state is per-task and thus can't change once the 1560 * target task dies. Only continued and exited can happen. 1561 * Clear notask_error if WCONTINUED | WEXITED. 1562 */ 1563 if (likely(!ptrace) || (wo->wo_flags & (WCONTINUED | WEXITED))) 1564 wo->notask_error = 0; 1565 } else { 1566 /* 1567 * @p is alive and it's gonna stop, continue or exit, so 1568 * there always is something to wait for. 1569 */ 1570 wo->notask_error = 0; 1571 } 1572 1573 /* 1574 * Wait for stopped. Depending on @ptrace, different stopped state 1575 * is used and the two don't interact with each other. 1576 */ 1577 ret = wait_task_stopped(wo, ptrace, p); 1578 if (ret) 1579 return ret; 1580 1581 /* 1582 * Wait for continued. There's only one continued state and the 1583 * ptracer can consume it which can confuse the real parent. Don't 1584 * use WCONTINUED from ptracer. You don't need or want it. 1585 */ 1586 return wait_task_continued(wo, p); 1587 } 1588 1589 /* 1590 * Do the work of do_wait() for one thread in the group, @tsk. 1591 * 1592 * -ECHILD should be in ->notask_error before the first call. 1593 * Returns nonzero for a final return, when we have unlocked tasklist_lock. 1594 * Returns zero if the search for a child should continue; then 1595 * ->notask_error is 0 if there were any eligible children, 1596 * or still -ECHILD. 1597 */ 1598 static int do_wait_thread(struct wait_opts *wo, struct task_struct *tsk) 1599 { 1600 struct task_struct *p; 1601 1602 list_for_each_entry(p, &tsk->children, sibling) { 1603 int ret = wait_consider_task(wo, 0, p); 1604 1605 if (ret) 1606 return ret; 1607 } 1608 1609 return 0; 1610 } 1611 1612 static int ptrace_do_wait(struct wait_opts *wo, struct task_struct *tsk) 1613 { 1614 struct task_struct *p; 1615 1616 list_for_each_entry(p, &tsk->ptraced, ptrace_entry) { 1617 int ret = wait_consider_task(wo, 1, p); 1618 1619 if (ret) 1620 return ret; 1621 } 1622 1623 return 0; 1624 } 1625 1626 bool pid_child_should_wake(struct wait_opts *wo, struct task_struct *p) 1627 { 1628 if (!eligible_pid(wo, p)) 1629 return false; 1630 1631 if ((wo->wo_flags & __WNOTHREAD) && wo->child_wait.private != p->parent) 1632 return false; 1633 1634 return true; 1635 } 1636 1637 static int child_wait_callback(wait_queue_entry_t *wait, unsigned mode, 1638 int sync, void *key) 1639 { 1640 struct wait_opts *wo = container_of(wait, struct wait_opts, 1641 child_wait); 1642 struct task_struct *p = key; 1643 1644 if (pid_child_should_wake(wo, p)) 1645 return default_wake_function(wait, mode, sync, key); 1646 1647 return 0; 1648 } 1649 1650 void __wake_up_parent(struct task_struct *p, struct task_struct *parent) 1651 { 1652 __wake_up_sync_key(&parent->signal->wait_chldexit, 1653 TASK_INTERRUPTIBLE, p); 1654 } 1655 1656 static bool is_effectively_child(struct wait_opts *wo, bool ptrace, 1657 struct task_struct *target) 1658 { 1659 struct task_struct *parent = 1660 !ptrace ? target->real_parent : target->parent; 1661 1662 return current == parent || (!(wo->wo_flags & __WNOTHREAD) && 1663 same_thread_group(current, parent)); 1664 } 1665 1666 /* 1667 * Optimization for waiting on PIDTYPE_PID. No need to iterate through child 1668 * and tracee lists to find the target task. 1669 */ 1670 static int do_wait_pid(struct wait_opts *wo) 1671 { 1672 bool ptrace; 1673 struct task_struct *target; 1674 int retval; 1675 1676 ptrace = false; 1677 target = pid_task(wo->wo_pid, PIDTYPE_TGID); 1678 if (target && is_effectively_child(wo, ptrace, target)) { 1679 retval = wait_consider_task(wo, ptrace, target); 1680 if (retval) 1681 return retval; 1682 } 1683 1684 ptrace = true; 1685 target = pid_task(wo->wo_pid, PIDTYPE_PID); 1686 if (target && target->ptrace && 1687 is_effectively_child(wo, ptrace, target)) { 1688 retval = wait_consider_task(wo, ptrace, target); 1689 if (retval) 1690 return retval; 1691 } 1692 1693 return 0; 1694 } 1695 1696 long __do_wait(struct wait_opts *wo) 1697 { 1698 long retval; 1699 1700 /* 1701 * If there is nothing that can match our criteria, just get out. 1702 * We will clear ->notask_error to zero if we see any child that 1703 * might later match our criteria, even if we are not able to reap 1704 * it yet. 1705 */ 1706 wo->notask_error = -ECHILD; 1707 if ((wo->wo_type < PIDTYPE_MAX) && 1708 (!wo->wo_pid || !pid_has_task(wo->wo_pid, wo->wo_type))) 1709 goto notask; 1710 1711 read_lock(&tasklist_lock); 1712 1713 if (wo->wo_type == PIDTYPE_PID) { 1714 retval = do_wait_pid(wo); 1715 if (retval) 1716 return retval; 1717 } else { 1718 struct task_struct *tsk = current; 1719 1720 do { 1721 retval = do_wait_thread(wo, tsk); 1722 if (retval) 1723 return retval; 1724 1725 retval = ptrace_do_wait(wo, tsk); 1726 if (retval) 1727 return retval; 1728 1729 if (wo->wo_flags & __WNOTHREAD) 1730 break; 1731 } while_each_thread(current, tsk); 1732 } 1733 read_unlock(&tasklist_lock); 1734 1735 notask: 1736 retval = wo->notask_error; 1737 if (!retval && !(wo->wo_flags & WNOHANG)) 1738 return -ERESTARTSYS; 1739 1740 return retval; 1741 } 1742 1743 static long do_wait(struct wait_opts *wo) 1744 { 1745 int retval; 1746 1747 trace_sched_process_wait(wo->wo_pid); 1748 1749 init_waitqueue_func_entry(&wo->child_wait, child_wait_callback); 1750 wo->child_wait.private = current; 1751 add_wait_queue(¤t->signal->wait_chldexit, &wo->child_wait); 1752 1753 do { 1754 set_current_state(TASK_INTERRUPTIBLE); 1755 retval = __do_wait(wo); 1756 if (retval != -ERESTARTSYS) 1757 break; 1758 if (signal_pending(current)) 1759 break; 1760 schedule(); 1761 } while (1); 1762 1763 __set_current_state(TASK_RUNNING); 1764 remove_wait_queue(¤t->signal->wait_chldexit, &wo->child_wait); 1765 return retval; 1766 } 1767 1768 int kernel_waitid_prepare(struct wait_opts *wo, int which, pid_t upid, 1769 struct waitid_info *infop, int options, 1770 struct rusage *ru) 1771 { 1772 unsigned int f_flags = 0; 1773 struct pid *pid = NULL; 1774 enum pid_type type; 1775 1776 if (options & ~(WNOHANG|WNOWAIT|WEXITED|WSTOPPED|WCONTINUED| 1777 __WNOTHREAD|__WCLONE|__WALL)) 1778 return -EINVAL; 1779 if (!(options & (WEXITED|WSTOPPED|WCONTINUED))) 1780 return -EINVAL; 1781 1782 switch (which) { 1783 case P_ALL: 1784 type = PIDTYPE_MAX; 1785 break; 1786 case P_PID: 1787 type = PIDTYPE_PID; 1788 if (upid <= 0) 1789 return -EINVAL; 1790 1791 pid = find_get_pid(upid); 1792 break; 1793 case P_PGID: 1794 type = PIDTYPE_PGID; 1795 if (upid < 0) 1796 return -EINVAL; 1797 1798 if (upid) 1799 pid = find_get_pid(upid); 1800 else 1801 pid = get_task_pid(current, PIDTYPE_PGID); 1802 break; 1803 case P_PIDFD: 1804 type = PIDTYPE_PID; 1805 if (upid < 0) 1806 return -EINVAL; 1807 1808 pid = pidfd_get_pid(upid, &f_flags); 1809 if (IS_ERR(pid)) 1810 return PTR_ERR(pid); 1811 1812 break; 1813 default: 1814 return -EINVAL; 1815 } 1816 1817 wo->wo_type = type; 1818 wo->wo_pid = pid; 1819 wo->wo_flags = options; 1820 wo->wo_info = infop; 1821 wo->wo_rusage = ru; 1822 if (f_flags & O_NONBLOCK) 1823 wo->wo_flags |= WNOHANG; 1824 1825 return 0; 1826 } 1827 1828 static long kernel_waitid(int which, pid_t upid, struct waitid_info *infop, 1829 int options, struct rusage *ru) 1830 { 1831 struct wait_opts wo; 1832 long ret; 1833 1834 ret = kernel_waitid_prepare(&wo, which, upid, infop, options, ru); 1835 if (ret) 1836 return ret; 1837 1838 ret = do_wait(&wo); 1839 if (!ret && !(options & WNOHANG) && (wo.wo_flags & WNOHANG)) 1840 ret = -EAGAIN; 1841 1842 put_pid(wo.wo_pid); 1843 return ret; 1844 } 1845 1846 SYSCALL_DEFINE5(waitid, int, which, pid_t, upid, struct siginfo __user *, 1847 infop, int, options, struct rusage __user *, ru) 1848 { 1849 struct rusage r; 1850 struct waitid_info info = {.status = 0}; 1851 long err = kernel_waitid(which, upid, &info, options, ru ? &r : NULL); 1852 int signo = 0; 1853 1854 if (err > 0) { 1855 signo = SIGCHLD; 1856 err = 0; 1857 if (ru && copy_to_user(ru, &r, sizeof(struct rusage))) 1858 return -EFAULT; 1859 } 1860 if (!infop) 1861 return err; 1862 1863 if (!user_write_access_begin(infop, sizeof(*infop))) 1864 return -EFAULT; 1865 1866 unsafe_put_user(signo, &infop->si_signo, Efault); 1867 unsafe_put_user(0, &infop->si_errno, Efault); 1868 unsafe_put_user(info.cause, &infop->si_code, Efault); 1869 unsafe_put_user(info.pid, &infop->si_pid, Efault); 1870 unsafe_put_user(info.uid, &infop->si_uid, Efault); 1871 unsafe_put_user(info.status, &infop->si_status, Efault); 1872 user_write_access_end(); 1873 return err; 1874 Efault: 1875 user_write_access_end(); 1876 return -EFAULT; 1877 } 1878 1879 long kernel_wait4(pid_t upid, int __user *stat_addr, int options, 1880 struct rusage *ru) 1881 { 1882 struct wait_opts wo; 1883 struct pid *pid = NULL; 1884 enum pid_type type; 1885 long ret; 1886 1887 if (options & ~(WNOHANG|WUNTRACED|WCONTINUED| 1888 __WNOTHREAD|__WCLONE|__WALL)) 1889 return -EINVAL; 1890 1891 /* -INT_MIN is not defined */ 1892 if (upid == INT_MIN) 1893 return -ESRCH; 1894 1895 if (upid == -1) 1896 type = PIDTYPE_MAX; 1897 else if (upid < 0) { 1898 type = PIDTYPE_PGID; 1899 pid = find_get_pid(-upid); 1900 } else if (upid == 0) { 1901 type = PIDTYPE_PGID; 1902 pid = get_task_pid(current, PIDTYPE_PGID); 1903 } else /* upid > 0 */ { 1904 type = PIDTYPE_PID; 1905 pid = find_get_pid(upid); 1906 } 1907 1908 wo.wo_type = type; 1909 wo.wo_pid = pid; 1910 wo.wo_flags = options | WEXITED; 1911 wo.wo_info = NULL; 1912 wo.wo_stat = 0; 1913 wo.wo_rusage = ru; 1914 ret = do_wait(&wo); 1915 put_pid(pid); 1916 if (ret > 0 && stat_addr && put_user(wo.wo_stat, stat_addr)) 1917 ret = -EFAULT; 1918 1919 return ret; 1920 } 1921 1922 int kernel_wait(pid_t pid, int *stat) 1923 { 1924 struct wait_opts wo = { 1925 .wo_type = PIDTYPE_PID, 1926 .wo_pid = find_get_pid(pid), 1927 .wo_flags = WEXITED, 1928 }; 1929 int ret; 1930 1931 ret = do_wait(&wo); 1932 if (ret > 0 && wo.wo_stat) 1933 *stat = wo.wo_stat; 1934 put_pid(wo.wo_pid); 1935 return ret; 1936 } 1937 1938 SYSCALL_DEFINE4(wait4, pid_t, upid, int __user *, stat_addr, 1939 int, options, struct rusage __user *, ru) 1940 { 1941 struct rusage r; 1942 long err = kernel_wait4(upid, stat_addr, options, ru ? &r : NULL); 1943 1944 if (err > 0) { 1945 if (ru && copy_to_user(ru, &r, sizeof(struct rusage))) 1946 return -EFAULT; 1947 } 1948 return err; 1949 } 1950 1951 #ifdef __ARCH_WANT_SYS_WAITPID 1952 1953 /* 1954 * sys_waitpid() remains for compatibility. waitpid() should be 1955 * implemented by calling sys_wait4() from libc.a. 1956 */ 1957 SYSCALL_DEFINE3(waitpid, pid_t, pid, int __user *, stat_addr, int, options) 1958 { 1959 return kernel_wait4(pid, stat_addr, options, NULL); 1960 } 1961 1962 #endif 1963 1964 #ifdef CONFIG_COMPAT 1965 COMPAT_SYSCALL_DEFINE4(wait4, 1966 compat_pid_t, pid, 1967 compat_uint_t __user *, stat_addr, 1968 int, options, 1969 struct compat_rusage __user *, ru) 1970 { 1971 struct rusage r; 1972 long err = kernel_wait4(pid, stat_addr, options, ru ? &r : NULL); 1973 if (err > 0) { 1974 if (ru && put_compat_rusage(&r, ru)) 1975 return -EFAULT; 1976 } 1977 return err; 1978 } 1979 1980 COMPAT_SYSCALL_DEFINE5(waitid, 1981 int, which, compat_pid_t, pid, 1982 struct compat_siginfo __user *, infop, int, options, 1983 struct compat_rusage __user *, uru) 1984 { 1985 struct rusage ru; 1986 struct waitid_info info = {.status = 0}; 1987 long err = kernel_waitid(which, pid, &info, options, uru ? &ru : NULL); 1988 int signo = 0; 1989 if (err > 0) { 1990 signo = SIGCHLD; 1991 err = 0; 1992 if (uru) { 1993 /* kernel_waitid() overwrites everything in ru */ 1994 if (COMPAT_USE_64BIT_TIME) 1995 err = copy_to_user(uru, &ru, sizeof(ru)); 1996 else 1997 err = put_compat_rusage(&ru, uru); 1998 if (err) 1999 return -EFAULT; 2000 } 2001 } 2002 2003 if (!infop) 2004 return err; 2005 2006 if (!user_write_access_begin(infop, sizeof(*infop))) 2007 return -EFAULT; 2008 2009 unsafe_put_user(signo, &infop->si_signo, Efault); 2010 unsafe_put_user(0, &infop->si_errno, Efault); 2011 unsafe_put_user(info.cause, &infop->si_code, Efault); 2012 unsafe_put_user(info.pid, &infop->si_pid, Efault); 2013 unsafe_put_user(info.uid, &infop->si_uid, Efault); 2014 unsafe_put_user(info.status, &infop->si_status, Efault); 2015 user_write_access_end(); 2016 return err; 2017 Efault: 2018 user_write_access_end(); 2019 return -EFAULT; 2020 } 2021 #endif 2022 2023 /* 2024 * This needs to be __function_aligned as GCC implicitly makes any 2025 * implementation of abort() cold and drops alignment specified by 2026 * -falign-functions=N. 2027 * 2028 * See https://gcc.gnu.org/bugzilla/show_bug.cgi?id=88345#c11 2029 */ 2030 __weak __function_aligned void abort(void) 2031 { 2032 BUG(); 2033 2034 /* if that doesn't kill us, halt */ 2035 panic("Oops failed to kill thread"); 2036 } 2037 EXPORT_SYMBOL(abort); 2038