1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * linux/kernel/signal.c 4 * 5 * Copyright (C) 1991, 1992 Linus Torvalds 6 * 7 * 1997-11-02 Modified for POSIX.1b signals by Richard Henderson 8 * 9 * 2003-06-02 Jim Houston - Concurrent Computer Corp. 10 * Changes to use preallocated sigqueue structures 11 * to allow signals to be sent reliably. 12 */ 13 14 #include <linux/slab.h> 15 #include <linux/export.h> 16 #include <linux/init.h> 17 #include <linux/sched/mm.h> 18 #include <linux/sched/user.h> 19 #include <linux/sched/debug.h> 20 #include <linux/sched/task.h> 21 #include <linux/sched/task_stack.h> 22 #include <linux/sched/cputime.h> 23 #include <linux/file.h> 24 #include <linux/fs.h> 25 #include <linux/mm.h> 26 #include <linux/proc_fs.h> 27 #include <linux/tty.h> 28 #include <linux/binfmts.h> 29 #include <linux/coredump.h> 30 #include <linux/security.h> 31 #include <linux/syscalls.h> 32 #include <linux/ptrace.h> 33 #include <linux/signal.h> 34 #include <linux/signalfd.h> 35 #include <linux/ratelimit.h> 36 #include <linux/task_work.h> 37 #include <linux/capability.h> 38 #include <linux/freezer.h> 39 #include <linux/pid_namespace.h> 40 #include <linux/nsproxy.h> 41 #include <linux/user_namespace.h> 42 #include <linux/uprobes.h> 43 #include <linux/compat.h> 44 #include <linux/cn_proc.h> 45 #include <linux/compiler.h> 46 #include <linux/posix-timers.h> 47 #include <linux/cgroup.h> 48 #include <linux/audit.h> 49 #include <linux/sysctl.h> 50 #include <uapi/linux/pidfd.h> 51 52 #define CREATE_TRACE_POINTS 53 #include <trace/events/signal.h> 54 55 #include <asm/param.h> 56 #include <linux/uaccess.h> 57 #include <asm/unistd.h> 58 #include <asm/siginfo.h> 59 #include <asm/cacheflush.h> 60 #include <asm/syscall.h> /* for syscall_get_* */ 61 62 #include "time/posix-timers.h" 63 64 /* 65 * SLAB caches for signal bits. 66 */ 67 68 static struct kmem_cache *sigqueue_cachep; 69 70 int print_fatal_signals __read_mostly; 71 72 static void __user *sig_handler(struct task_struct *t, int sig) 73 { 74 return t->sighand->action[sig - 1].sa.sa_handler; 75 } 76 77 static inline bool sig_handler_ignored(void __user *handler, int sig) 78 { 79 /* Is it explicitly or implicitly ignored? */ 80 return handler == SIG_IGN || 81 (handler == SIG_DFL && sig_kernel_ignore(sig)); 82 } 83 84 static bool sig_task_ignored(struct task_struct *t, int sig, bool force) 85 { 86 void __user *handler; 87 88 handler = sig_handler(t, sig); 89 90 /* SIGKILL and SIGSTOP may not be sent to the global init */ 91 if (unlikely(is_global_init(t) && sig_kernel_only(sig))) 92 return true; 93 94 if (unlikely(t->signal->flags & SIGNAL_UNKILLABLE) && 95 handler == SIG_DFL && !(force && sig_kernel_only(sig))) 96 return true; 97 98 /* Only allow kernel generated signals to this kthread */ 99 if (unlikely((t->flags & PF_KTHREAD) && 100 (handler == SIG_KTHREAD_KERNEL) && !force)) 101 return true; 102 103 return sig_handler_ignored(handler, sig); 104 } 105 106 static bool sig_ignored(struct task_struct *t, int sig, bool force) 107 { 108 /* 109 * Blocked signals are never ignored, since the 110 * signal handler may change by the time it is 111 * unblocked. 112 */ 113 if (sigismember(&t->blocked, sig) || sigismember(&t->real_blocked, sig)) 114 return false; 115 116 /* 117 * Tracers may want to know about even ignored signal unless it 118 * is SIGKILL which can't be reported anyway but can be ignored 119 * by SIGNAL_UNKILLABLE task. 120 */ 121 if (t->ptrace && sig != SIGKILL) 122 return false; 123 124 return sig_task_ignored(t, sig, force); 125 } 126 127 /* 128 * Re-calculate pending state from the set of locally pending 129 * signals, globally pending signals, and blocked signals. 130 */ 131 static inline bool has_pending_signals(sigset_t *signal, sigset_t *blocked) 132 { 133 unsigned long ready = 0; 134 for (long i = 0; i < _NSIG_WORDS; i++) 135 ready |= signal->sig[i] & ~blocked->sig[i]; 136 return ready != 0; 137 } 138 139 #define PENDING(p,b) has_pending_signals(&(p)->signal, (b)) 140 141 static bool recalc_sigpending_tsk(struct task_struct *t) 142 { 143 if ((t->jobctl & (JOBCTL_PENDING_MASK | JOBCTL_TRAP_FREEZE)) || 144 PENDING(&t->pending, &t->blocked) || 145 PENDING(&t->signal->shared_pending, &t->blocked) || 146 cgroup_task_frozen(t)) { 147 set_tsk_thread_flag(t, TIF_SIGPENDING); 148 return true; 149 } 150 151 /* 152 * We must never clear the flag in another thread, or in current 153 * when it's possible the current syscall is returning -ERESTART*. 154 * So we don't clear it here, and only callers who know they should do. 155 */ 156 return false; 157 } 158 159 void recalc_sigpending(void) 160 { 161 if (!recalc_sigpending_tsk(current) && !freezing(current)) { 162 if (unlikely(test_thread_flag(TIF_SIGPENDING))) 163 clear_thread_flag(TIF_SIGPENDING); 164 } 165 } 166 EXPORT_SYMBOL(recalc_sigpending); 167 168 void calculate_sigpending(void) 169 { 170 /* Have any signals or users of TIF_SIGPENDING been delayed 171 * until after fork? 172 */ 173 spin_lock_irq(¤t->sighand->siglock); 174 set_tsk_thread_flag(current, TIF_SIGPENDING); 175 recalc_sigpending(); 176 spin_unlock_irq(¤t->sighand->siglock); 177 } 178 179 /* Given the mask, find the first available signal that should be serviced. */ 180 181 #define SYNCHRONOUS_MASK \ 182 (sigmask(SIGSEGV) | sigmask(SIGBUS) | sigmask(SIGILL) | \ 183 sigmask(SIGTRAP) | sigmask(SIGFPE) | sigmask(SIGSYS)) 184 185 int next_signal(struct sigpending *pending, sigset_t *mask) 186 { 187 unsigned long i, *s, *m, x; 188 int sig = 0; 189 190 s = pending->signal.sig; 191 m = mask->sig; 192 193 /* 194 * Handle the first word specially: it contains the 195 * synchronous signals that need to be dequeued first. 196 */ 197 x = *s &~ *m; 198 if (x) { 199 if (x & SYNCHRONOUS_MASK) 200 x &= SYNCHRONOUS_MASK; 201 sig = ffz(~x) + 1; 202 return sig; 203 } 204 205 switch (_NSIG_WORDS) { 206 default: 207 for (i = 1; i < _NSIG_WORDS; ++i) { 208 x = *++s &~ *++m; 209 if (!x) 210 continue; 211 sig = ffz(~x) + i*_NSIG_BPW + 1; 212 break; 213 } 214 break; 215 216 case 2: 217 x = s[1] &~ m[1]; 218 if (!x) 219 break; 220 sig = ffz(~x) + _NSIG_BPW + 1; 221 break; 222 223 case 1: 224 /* Nothing to do */ 225 break; 226 } 227 228 return sig; 229 } 230 231 static inline void print_dropped_signal(int sig) 232 { 233 static DEFINE_RATELIMIT_STATE(ratelimit_state, 5 * HZ, 10); 234 235 if (!print_fatal_signals) 236 return; 237 238 if (!__ratelimit(&ratelimit_state)) 239 return; 240 241 pr_info("%s/%d: reached RLIMIT_SIGPENDING, dropped signal %d\n", 242 current->comm, current->pid, sig); 243 } 244 245 /** 246 * task_set_jobctl_pending - set jobctl pending bits 247 * @task: target task 248 * @mask: pending bits to set 249 * 250 * Clear @mask from @task->jobctl. @mask must be subset of 251 * %JOBCTL_PENDING_MASK | %JOBCTL_STOP_CONSUME | %JOBCTL_STOP_SIGMASK | 252 * %JOBCTL_TRAPPING. If stop signo is being set, the existing signo is 253 * cleared. If @task is already being killed or exiting, this function 254 * becomes noop. 255 * 256 * CONTEXT: 257 * Must be called with @task->sighand->siglock held. 258 * 259 * RETURNS: 260 * %true if @mask is set, %false if made noop because @task was dying. 261 */ 262 bool task_set_jobctl_pending(struct task_struct *task, unsigned long mask) 263 { 264 BUG_ON(mask & ~(JOBCTL_PENDING_MASK | JOBCTL_STOP_CONSUME | 265 JOBCTL_STOP_SIGMASK | JOBCTL_TRAPPING)); 266 BUG_ON((mask & JOBCTL_TRAPPING) && !(mask & JOBCTL_PENDING_MASK)); 267 268 if (unlikely(fatal_signal_pending(task) || (task->flags & PF_EXITING))) 269 return false; 270 271 if (mask & JOBCTL_STOP_SIGMASK) 272 task->jobctl &= ~JOBCTL_STOP_SIGMASK; 273 274 task->jobctl |= mask; 275 return true; 276 } 277 278 /** 279 * task_clear_jobctl_trapping - clear jobctl trapping bit 280 * @task: target task 281 * 282 * If JOBCTL_TRAPPING is set, a ptracer is waiting for us to enter TRACED. 283 * Clear it and wake up the ptracer. Note that we don't need any further 284 * locking. @task->siglock guarantees that @task->parent points to the 285 * ptracer. 286 * 287 * CONTEXT: 288 * Must be called with @task->sighand->siglock held. 289 */ 290 void task_clear_jobctl_trapping(struct task_struct *task) 291 { 292 if (unlikely(task->jobctl & JOBCTL_TRAPPING)) { 293 task->jobctl &= ~JOBCTL_TRAPPING; 294 smp_mb(); /* advised by wake_up_bit() */ 295 wake_up_bit(&task->jobctl, JOBCTL_TRAPPING_BIT); 296 } 297 } 298 299 /** 300 * task_clear_jobctl_pending - clear jobctl pending bits 301 * @task: target task 302 * @mask: pending bits to clear 303 * 304 * Clear @mask from @task->jobctl. @mask must be subset of 305 * %JOBCTL_PENDING_MASK. If %JOBCTL_STOP_PENDING is being cleared, other 306 * STOP bits are cleared together. 307 * 308 * If clearing of @mask leaves no stop or trap pending, this function calls 309 * task_clear_jobctl_trapping(). 310 * 311 * CONTEXT: 312 * Must be called with @task->sighand->siglock held. 313 */ 314 void task_clear_jobctl_pending(struct task_struct *task, unsigned long mask) 315 { 316 BUG_ON(mask & ~JOBCTL_PENDING_MASK); 317 318 if (mask & JOBCTL_STOP_PENDING) 319 mask |= JOBCTL_STOP_CONSUME | JOBCTL_STOP_DEQUEUED; 320 321 task->jobctl &= ~mask; 322 323 if (!(task->jobctl & JOBCTL_PENDING_MASK)) 324 task_clear_jobctl_trapping(task); 325 } 326 327 /** 328 * task_participate_group_stop - participate in a group stop 329 * @task: task participating in a group stop 330 * 331 * @task has %JOBCTL_STOP_PENDING set and is participating in a group stop. 332 * Group stop states are cleared and the group stop count is consumed if 333 * %JOBCTL_STOP_CONSUME was set. If the consumption completes the group 334 * stop, the appropriate `SIGNAL_*` flags are set. 335 * 336 * CONTEXT: 337 * Must be called with @task->sighand->siglock held. 338 * 339 * RETURNS: 340 * %true if group stop completion should be notified to the parent, %false 341 * otherwise. 342 */ 343 static bool task_participate_group_stop(struct task_struct *task) 344 { 345 struct signal_struct *sig = task->signal; 346 bool consume = task->jobctl & JOBCTL_STOP_CONSUME; 347 348 WARN_ON_ONCE(!(task->jobctl & JOBCTL_STOP_PENDING)); 349 350 task_clear_jobctl_pending(task, JOBCTL_STOP_PENDING); 351 352 if (!consume) 353 return false; 354 355 if (!WARN_ON_ONCE(sig->group_stop_count == 0)) 356 sig->group_stop_count--; 357 358 /* 359 * Tell the caller to notify completion iff we are entering into a 360 * fresh group stop. Read comment in do_signal_stop() for details. 361 */ 362 if (!sig->group_stop_count && !(sig->flags & SIGNAL_STOP_STOPPED)) { 363 signal_set_stop_flags(sig, SIGNAL_STOP_STOPPED); 364 return true; 365 } 366 return false; 367 } 368 369 void task_join_group_stop(struct task_struct *task) 370 { 371 unsigned long mask = current->jobctl & JOBCTL_STOP_SIGMASK; 372 struct signal_struct *sig = current->signal; 373 374 if (sig->group_stop_count) { 375 sig->group_stop_count++; 376 mask |= JOBCTL_STOP_CONSUME; 377 } else if (!(sig->flags & SIGNAL_STOP_STOPPED)) 378 return; 379 380 /* Have the new thread join an on-going signal group stop */ 381 task_set_jobctl_pending(task, mask | JOBCTL_STOP_PENDING); 382 } 383 384 static struct ucounts *sig_get_ucounts(struct task_struct *t, int sig, 385 int override_rlimit) 386 { 387 struct ucounts *ucounts; 388 long sigpending; 389 390 /* 391 * Protect access to @t credentials. This can go away when all 392 * callers hold rcu read lock. 393 * 394 * NOTE! A pending signal will hold on to the user refcount, 395 * and we get/put the refcount only when the sigpending count 396 * changes from/to zero. 397 */ 398 rcu_read_lock(); 399 ucounts = task_ucounts(t); 400 sigpending = inc_rlimit_get_ucounts(ucounts, UCOUNT_RLIMIT_SIGPENDING, 401 override_rlimit); 402 rcu_read_unlock(); 403 if (!sigpending) 404 return NULL; 405 406 if (unlikely(!override_rlimit && sigpending > task_rlimit(t, RLIMIT_SIGPENDING))) { 407 dec_rlimit_put_ucounts(ucounts, UCOUNT_RLIMIT_SIGPENDING); 408 print_dropped_signal(sig); 409 return NULL; 410 } 411 412 return ucounts; 413 } 414 415 static void __sigqueue_init(struct sigqueue *q, struct ucounts *ucounts, 416 const unsigned int sigqueue_flags) 417 { 418 INIT_LIST_HEAD(&q->list); 419 q->flags = sigqueue_flags; 420 q->ucounts = ucounts; 421 } 422 423 /* 424 * allocate a new signal queue record 425 * - this may be called without locks if and only if t == current, otherwise an 426 * appropriate lock must be held to stop the target task from exiting 427 */ 428 static struct sigqueue *sigqueue_alloc(int sig, struct task_struct *t, gfp_t gfp_flags, 429 int override_rlimit) 430 { 431 struct ucounts *ucounts = sig_get_ucounts(t, sig, override_rlimit); 432 struct sigqueue *q; 433 434 if (!ucounts) 435 return NULL; 436 437 q = kmem_cache_alloc(sigqueue_cachep, gfp_flags); 438 if (!q) { 439 dec_rlimit_put_ucounts(ucounts, UCOUNT_RLIMIT_SIGPENDING); 440 return NULL; 441 } 442 443 __sigqueue_init(q, ucounts, 0); 444 return q; 445 } 446 447 static void __sigqueue_free(struct sigqueue *q) 448 { 449 if (q->flags & SIGQUEUE_PREALLOC) { 450 posixtimer_sigqueue_putref(q); 451 return; 452 } 453 if (q->ucounts) { 454 dec_rlimit_put_ucounts(q->ucounts, UCOUNT_RLIMIT_SIGPENDING); 455 q->ucounts = NULL; 456 } 457 kmem_cache_free(sigqueue_cachep, q); 458 } 459 460 void flush_sigqueue(struct sigpending *queue) 461 { 462 struct sigqueue *q; 463 464 sigemptyset(&queue->signal); 465 while (!list_empty(&queue->list)) { 466 q = list_entry(queue->list.next, struct sigqueue , list); 467 list_del_init(&q->list); 468 __sigqueue_free(q); 469 } 470 } 471 472 /* 473 * Flush all pending signals for this kthread. 474 */ 475 void flush_signals(struct task_struct *t) 476 { 477 unsigned long flags; 478 479 spin_lock_irqsave(&t->sighand->siglock, flags); 480 clear_tsk_thread_flag(t, TIF_SIGPENDING); 481 flush_sigqueue(&t->pending); 482 flush_sigqueue(&t->signal->shared_pending); 483 spin_unlock_irqrestore(&t->sighand->siglock, flags); 484 } 485 EXPORT_SYMBOL(flush_signals); 486 487 void ignore_signals(struct task_struct *t) 488 { 489 int i; 490 491 for (i = 0; i < _NSIG; ++i) 492 t->sighand->action[i].sa.sa_handler = SIG_IGN; 493 494 flush_signals(t); 495 } 496 497 /* 498 * Flush all handlers for a task. 499 */ 500 501 void 502 flush_signal_handlers(struct task_struct *t, int force_default) 503 { 504 int i; 505 struct k_sigaction *ka = &t->sighand->action[0]; 506 for (i = _NSIG ; i != 0 ; i--) { 507 if (force_default || ka->sa.sa_handler != SIG_IGN) 508 ka->sa.sa_handler = SIG_DFL; 509 ka->sa.sa_flags = 0; 510 #ifdef __ARCH_HAS_SA_RESTORER 511 ka->sa.sa_restorer = NULL; 512 #endif 513 sigemptyset(&ka->sa.sa_mask); 514 ka++; 515 } 516 } 517 518 bool unhandled_signal(struct task_struct *tsk, int sig) 519 { 520 void __user *handler = tsk->sighand->action[sig-1].sa.sa_handler; 521 if (is_global_init(tsk)) 522 return true; 523 524 if (handler != SIG_IGN && handler != SIG_DFL) 525 return false; 526 527 /* If dying, we handle all new signals by ignoring them */ 528 if (fatal_signal_pending(tsk)) 529 return false; 530 531 /* if ptraced, let the tracer determine */ 532 return !tsk->ptrace; 533 } 534 535 static void collect_signal(int sig, struct sigpending *list, kernel_siginfo_t *info, 536 struct sigqueue **timer_sigq) 537 { 538 struct sigqueue *q, *first = NULL; 539 540 /* 541 * Collect the siginfo appropriate to this signal. Check if 542 * there is another siginfo for the same signal. 543 */ 544 list_for_each_entry(q, &list->list, list) { 545 if (q->info.si_signo == sig) { 546 if (first) 547 goto still_pending; 548 first = q; 549 } 550 } 551 552 sigdelset(&list->signal, sig); 553 554 if (first) { 555 still_pending: 556 list_del_init(&first->list); 557 copy_siginfo(info, &first->info); 558 559 /* 560 * posix-timer signals are preallocated and freed when the last 561 * reference count is dropped in posixtimer_deliver_signal() or 562 * immediately on timer deletion when the signal is not pending. 563 * Spare the extra round through __sigqueue_free() which is 564 * ignoring preallocated signals. 565 */ 566 if (unlikely((first->flags & SIGQUEUE_PREALLOC) && (info->si_code == SI_TIMER))) 567 *timer_sigq = first; 568 else 569 __sigqueue_free(first); 570 } else { 571 /* 572 * Ok, it wasn't in the queue. This must be 573 * a fast-pathed signal or we must have been 574 * out of queue space. So zero out the info. 575 */ 576 clear_siginfo(info); 577 info->si_signo = sig; 578 info->si_errno = 0; 579 info->si_code = SI_USER; 580 info->si_pid = 0; 581 info->si_uid = 0; 582 } 583 } 584 585 static int __dequeue_signal(struct sigpending *pending, sigset_t *mask, 586 kernel_siginfo_t *info, struct sigqueue **timer_sigq) 587 { 588 int sig = next_signal(pending, mask); 589 590 if (sig) 591 collect_signal(sig, pending, info, timer_sigq); 592 return sig; 593 } 594 595 /* 596 * Try to dequeue a signal. If a deliverable signal is found fill in the 597 * caller provided siginfo and return the signal number. Otherwise return 598 * 0. 599 */ 600 int dequeue_signal(sigset_t *mask, kernel_siginfo_t *info, enum pid_type *type) 601 { 602 struct task_struct *tsk = current; 603 struct sigqueue *timer_sigq; 604 int signr; 605 606 lockdep_assert_held(&tsk->sighand->siglock); 607 608 again: 609 *type = PIDTYPE_PID; 610 timer_sigq = NULL; 611 signr = __dequeue_signal(&tsk->pending, mask, info, &timer_sigq); 612 if (!signr) { 613 *type = PIDTYPE_TGID; 614 signr = __dequeue_signal(&tsk->signal->shared_pending, 615 mask, info, &timer_sigq); 616 617 if (unlikely(signr == SIGALRM)) 618 posixtimer_rearm_itimer(tsk); 619 } 620 621 recalc_sigpending(); 622 if (!signr) 623 return 0; 624 625 if (unlikely(sig_kernel_stop(signr))) { 626 /* 627 * Set a marker that we have dequeued a stop signal. Our 628 * caller might release the siglock and then the pending 629 * stop signal it is about to process is no longer in the 630 * pending bitmasks, but must still be cleared by a SIGCONT 631 * (and overruled by a SIGKILL). So those cases clear this 632 * shared flag after we've set it. Note that this flag may 633 * remain set after the signal we return is ignored or 634 * handled. That doesn't matter because its only purpose 635 * is to alert stop-signal processing code when another 636 * processor has come along and cleared the flag. 637 */ 638 current->jobctl |= JOBCTL_STOP_DEQUEUED; 639 } 640 641 if (IS_ENABLED(CONFIG_POSIX_TIMERS) && unlikely(timer_sigq)) { 642 if (!posixtimer_deliver_signal(info, timer_sigq)) 643 goto again; 644 } 645 646 return signr; 647 } 648 EXPORT_SYMBOL_GPL(dequeue_signal); 649 650 static int dequeue_synchronous_signal(kernel_siginfo_t *info) 651 { 652 struct task_struct *tsk = current; 653 struct sigpending *pending = &tsk->pending; 654 struct sigqueue *q, *sync = NULL; 655 656 /* 657 * Might a synchronous signal be in the queue? 658 */ 659 if (!((pending->signal.sig[0] & ~tsk->blocked.sig[0]) & SYNCHRONOUS_MASK)) 660 return 0; 661 662 /* 663 * Return the first synchronous signal in the queue. 664 */ 665 list_for_each_entry(q, &pending->list, list) { 666 /* Synchronous signals have a positive si_code */ 667 if ((q->info.si_code > SI_USER) && 668 (sigmask(q->info.si_signo) & SYNCHRONOUS_MASK)) { 669 sync = q; 670 goto next; 671 } 672 } 673 return 0; 674 next: 675 /* 676 * Check if there is another siginfo for the same signal. 677 */ 678 list_for_each_entry_continue(q, &pending->list, list) { 679 if (q->info.si_signo == sync->info.si_signo) 680 goto still_pending; 681 } 682 683 sigdelset(&pending->signal, sync->info.si_signo); 684 recalc_sigpending(); 685 still_pending: 686 list_del_init(&sync->list); 687 copy_siginfo(info, &sync->info); 688 __sigqueue_free(sync); 689 return info->si_signo; 690 } 691 692 /* 693 * Tell a process that it has a new active signal.. 694 * 695 * NOTE! we rely on the previous spin_lock to 696 * lock interrupts for us! We can only be called with 697 * "siglock" held, and the local interrupt must 698 * have been disabled when that got acquired! 699 * 700 * No need to set need_resched since signal event passing 701 * goes through ->blocked 702 */ 703 void signal_wake_up_state(struct task_struct *t, unsigned int state) 704 { 705 lockdep_assert_held(&t->sighand->siglock); 706 707 set_tsk_thread_flag(t, TIF_SIGPENDING); 708 709 /* 710 * TASK_WAKEKILL also means wake it up in the stopped/traced/killable 711 * case. We don't check t->state here because there is a race with it 712 * executing another processor and just now entering stopped state. 713 * By using wake_up_state, we ensure the process will wake up and 714 * handle its death signal. 715 */ 716 if (!wake_up_state(t, state | TASK_INTERRUPTIBLE)) 717 kick_process(t); 718 } 719 720 static inline void posixtimer_sig_ignore(struct task_struct *tsk, struct sigqueue *q); 721 722 static void sigqueue_free_ignored(struct task_struct *tsk, struct sigqueue *q) 723 { 724 if (likely(!(q->flags & SIGQUEUE_PREALLOC) || q->info.si_code != SI_TIMER)) 725 __sigqueue_free(q); 726 else 727 posixtimer_sig_ignore(tsk, q); 728 } 729 730 /* Remove signals in mask from the pending set and queue. */ 731 static void flush_sigqueue_mask(struct task_struct *p, sigset_t *mask, struct sigpending *s) 732 { 733 struct sigqueue *q, *n; 734 sigset_t m; 735 736 lockdep_assert_held(&p->sighand->siglock); 737 738 sigandsets(&m, mask, &s->signal); 739 if (sigisemptyset(&m)) 740 return; 741 742 sigandnsets(&s->signal, &s->signal, mask); 743 list_for_each_entry_safe(q, n, &s->list, list) { 744 if (sigismember(mask, q->info.si_signo)) { 745 list_del_init(&q->list); 746 sigqueue_free_ignored(p, q); 747 } 748 } 749 } 750 751 static inline int is_si_special(const struct kernel_siginfo *info) 752 { 753 return info <= SEND_SIG_PRIV; 754 } 755 756 static inline bool si_fromuser(const struct kernel_siginfo *info) 757 { 758 return info == SEND_SIG_NOINFO || 759 (!is_si_special(info) && SI_FROMUSER(info)); 760 } 761 762 /* 763 * called with RCU read lock from check_kill_permission() 764 */ 765 static bool kill_ok_by_cred(struct task_struct *t) 766 { 767 const struct cred *cred = current_cred(); 768 const struct cred *tcred = __task_cred(t); 769 770 return uid_eq(cred->euid, tcred->suid) || 771 uid_eq(cred->euid, tcred->uid) || 772 uid_eq(cred->uid, tcred->suid) || 773 uid_eq(cred->uid, tcred->uid) || 774 ns_capable(tcred->user_ns, CAP_KILL); 775 } 776 777 /* 778 * Bad permissions for sending the signal 779 * - the caller must hold the RCU read lock 780 */ 781 static int check_kill_permission(int sig, struct kernel_siginfo *info, 782 struct task_struct *t) 783 { 784 struct pid *sid; 785 int error; 786 787 if (!valid_signal(sig)) 788 return -EINVAL; 789 790 if (!si_fromuser(info)) 791 return 0; 792 793 error = audit_signal_info(sig, t); /* Let audit system see the signal */ 794 if (error) 795 return error; 796 797 if (!same_thread_group(current, t) && 798 !kill_ok_by_cred(t)) { 799 switch (sig) { 800 case SIGCONT: 801 sid = task_session(t); 802 /* 803 * We don't return the error if sid == NULL. The 804 * task was unhashed, the caller must notice this. 805 */ 806 if (!sid || sid == task_session(current)) 807 break; 808 fallthrough; 809 default: 810 return -EPERM; 811 } 812 } 813 814 return security_task_kill(t, info, sig, NULL); 815 } 816 817 /** 818 * ptrace_trap_notify - schedule trap to notify ptracer 819 * @t: tracee wanting to notify tracer 820 * 821 * This function schedules sticky ptrace trap which is cleared on the next 822 * TRAP_STOP to notify ptracer of an event. @t must have been seized by 823 * ptracer. 824 * 825 * If @t is running, STOP trap will be taken. If trapped for STOP and 826 * ptracer is listening for events, tracee is woken up so that it can 827 * re-trap for the new event. If trapped otherwise, STOP trap will be 828 * eventually taken without returning to userland after the existing traps 829 * are finished by PTRACE_CONT. 830 * 831 * CONTEXT: 832 * Must be called with @task->sighand->siglock held. 833 */ 834 static void ptrace_trap_notify(struct task_struct *t) 835 { 836 WARN_ON_ONCE(!(t->ptrace & PT_SEIZED)); 837 lockdep_assert_held(&t->sighand->siglock); 838 839 task_set_jobctl_pending(t, JOBCTL_TRAP_NOTIFY); 840 ptrace_signal_wake_up(t, t->jobctl & JOBCTL_LISTENING); 841 } 842 843 /* 844 * Handle magic process-wide effects of stop/continue signals. Unlike 845 * the signal actions, these happen immediately at signal-generation 846 * time regardless of blocking, ignoring, or handling. This does the 847 * actual continuing for SIGCONT, but not the actual stopping for stop 848 * signals. The process stop is done as a signal action for SIG_DFL. 849 * 850 * Returns true if the signal should be actually delivered, otherwise 851 * it should be dropped. 852 */ 853 static bool prepare_signal(int sig, struct task_struct *p, bool force) 854 { 855 struct signal_struct *signal = p->signal; 856 struct task_struct *t; 857 sigset_t flush; 858 859 if (signal->flags & SIGNAL_GROUP_EXIT) { 860 if (signal->core_state) 861 return sig == SIGKILL; 862 /* 863 * The process is in the middle of dying, drop the signal. 864 */ 865 return false; 866 } else if (sig_kernel_stop(sig)) { 867 /* 868 * This is a stop signal. Remove SIGCONT from all queues. 869 */ 870 siginitset(&flush, sigmask(SIGCONT)); 871 flush_sigqueue_mask(p, &flush, &signal->shared_pending); 872 for_each_thread(p, t) 873 flush_sigqueue_mask(p, &flush, &t->pending); 874 } else if (sig == SIGCONT) { 875 unsigned int why; 876 /* 877 * Remove all stop signals from all queues, wake all threads. 878 */ 879 siginitset(&flush, SIG_KERNEL_STOP_MASK); 880 flush_sigqueue_mask(p, &flush, &signal->shared_pending); 881 for_each_thread(p, t) { 882 flush_sigqueue_mask(p, &flush, &t->pending); 883 task_clear_jobctl_pending(t, JOBCTL_STOP_PENDING); 884 if (likely(!(t->ptrace & PT_SEIZED))) { 885 t->jobctl &= ~JOBCTL_STOPPED; 886 wake_up_state(t, __TASK_STOPPED); 887 } else 888 ptrace_trap_notify(t); 889 } 890 891 /* 892 * Notify the parent with CLD_CONTINUED if we were stopped. 893 * 894 * If we were in the middle of a group stop, we pretend it 895 * was already finished, and then continued. Since SIGCHLD 896 * doesn't queue we report only CLD_STOPPED, as if the next 897 * CLD_CONTINUED was dropped. 898 */ 899 why = 0; 900 if (signal->flags & SIGNAL_STOP_STOPPED) 901 why |= SIGNAL_CLD_CONTINUED; 902 else if (signal->group_stop_count) 903 why |= SIGNAL_CLD_STOPPED; 904 905 if (why) { 906 /* 907 * The first thread which returns from do_signal_stop() 908 * will take ->siglock, notice SIGNAL_CLD_MASK, and 909 * notify its parent. See get_signal(). 910 */ 911 signal_set_stop_flags(signal, why | SIGNAL_STOP_CONTINUED); 912 signal->group_stop_count = 0; 913 signal->group_exit_code = 0; 914 } 915 } 916 917 return !sig_ignored(p, sig, force); 918 } 919 920 /* 921 * Test if P wants to take SIG. After we've checked all threads with this, 922 * it's equivalent to finding no threads not blocking SIG. Any threads not 923 * blocking SIG were ruled out because they are not running and already 924 * have pending signals. Such threads will dequeue from the shared queue 925 * as soon as they're available, so putting the signal on the shared queue 926 * will be equivalent to sending it to one such thread. 927 */ 928 static inline bool wants_signal(int sig, struct task_struct *p) 929 { 930 if (sigismember(&p->blocked, sig)) 931 return false; 932 933 if (p->flags & PF_EXITING) 934 return false; 935 936 if (sig == SIGKILL) 937 return true; 938 939 if (task_is_stopped_or_traced(p)) 940 return false; 941 942 return task_curr(p) || !task_sigpending(p); 943 } 944 945 static void complete_signal(int sig, struct task_struct *p, enum pid_type type) 946 { 947 struct signal_struct *signal = p->signal; 948 struct task_struct *t; 949 950 /* 951 * Now find a thread we can wake up to take the signal off the queue. 952 * 953 * Try the suggested task first (may or may not be the main thread). 954 */ 955 if (wants_signal(sig, p)) 956 t = p; 957 else if ((type == PIDTYPE_PID) || thread_group_empty(p)) 958 /* 959 * There is just one thread and it does not need to be woken. 960 * It will dequeue unblocked signals before it runs again. 961 */ 962 return; 963 else { 964 /* 965 * Otherwise try to find a suitable thread. 966 */ 967 t = signal->curr_target; 968 while (!wants_signal(sig, t)) { 969 t = next_thread(t); 970 if (t == signal->curr_target) 971 /* 972 * No thread needs to be woken. 973 * Any eligible threads will see 974 * the signal in the queue soon. 975 */ 976 return; 977 } 978 signal->curr_target = t; 979 } 980 981 /* 982 * Found a killable thread. If the signal will be fatal, 983 * then start taking the whole group down immediately. 984 */ 985 if (sig_fatal(p, sig) && !sigismember(&t->real_blocked, sig) && 986 (sig == SIGKILL || !p->ptrace)) { 987 /* 988 * This signal will be fatal to the whole group. 989 */ 990 if (!sig_kernel_coredump(sig)) { 991 /* 992 * Start a group exit and wake everybody up. 993 * This way we don't have other threads 994 * running and doing things after a slower 995 * thread has the fatal signal pending. 996 */ 997 signal->flags = SIGNAL_GROUP_EXIT; 998 signal->group_exit_code = sig; 999 signal->group_stop_count = 0; 1000 __for_each_thread(signal, t) { 1001 task_clear_jobctl_pending(t, JOBCTL_PENDING_MASK); 1002 sigaddset(&t->pending.signal, SIGKILL); 1003 signal_wake_up(t, 1); 1004 } 1005 return; 1006 } 1007 } 1008 1009 /* 1010 * The signal is already in the shared-pending queue. 1011 * Tell the chosen thread to wake up and dequeue it. 1012 */ 1013 signal_wake_up(t, sig == SIGKILL); 1014 return; 1015 } 1016 1017 static inline bool legacy_queue(struct sigpending *signals, int sig) 1018 { 1019 return (sig < SIGRTMIN) && sigismember(&signals->signal, sig); 1020 } 1021 1022 static int __send_signal_locked(int sig, struct kernel_siginfo *info, 1023 struct task_struct *t, enum pid_type type, bool force) 1024 { 1025 struct sigpending *pending; 1026 struct sigqueue *q; 1027 int override_rlimit; 1028 int ret = 0, result; 1029 1030 lockdep_assert_held(&t->sighand->siglock); 1031 1032 result = TRACE_SIGNAL_IGNORED; 1033 if (!prepare_signal(sig, t, force)) 1034 goto ret; 1035 1036 pending = (type != PIDTYPE_PID) ? &t->signal->shared_pending : &t->pending; 1037 /* 1038 * Short-circuit ignored signals and support queuing 1039 * exactly one non-rt signal, so that we can get more 1040 * detailed information about the cause of the signal. 1041 */ 1042 result = TRACE_SIGNAL_ALREADY_PENDING; 1043 if (legacy_queue(pending, sig)) 1044 goto ret; 1045 1046 result = TRACE_SIGNAL_DELIVERED; 1047 /* 1048 * Skip useless siginfo allocation for SIGKILL and kernel threads. 1049 */ 1050 if ((sig == SIGKILL) || (t->flags & PF_KTHREAD)) 1051 goto out_set; 1052 1053 /* 1054 * Real-time signals must be queued if sent by sigqueue, or 1055 * some other real-time mechanism. It is implementation 1056 * defined whether kill() does so. We attempt to do so, on 1057 * the principle of least surprise, but since kill is not 1058 * allowed to fail with EAGAIN when low on memory we just 1059 * make sure at least one signal gets delivered and don't 1060 * pass on the info struct. 1061 */ 1062 if (sig < SIGRTMIN) 1063 override_rlimit = (is_si_special(info) || info->si_code >= 0); 1064 else 1065 override_rlimit = 0; 1066 1067 q = sigqueue_alloc(sig, t, GFP_ATOMIC, override_rlimit); 1068 1069 if (q) { 1070 list_add_tail(&q->list, &pending->list); 1071 switch ((unsigned long) info) { 1072 case (unsigned long) SEND_SIG_NOINFO: 1073 clear_siginfo(&q->info); 1074 q->info.si_signo = sig; 1075 q->info.si_errno = 0; 1076 q->info.si_code = SI_USER; 1077 q->info.si_pid = task_tgid_nr_ns(current, 1078 task_active_pid_ns(t)); 1079 rcu_read_lock(); 1080 q->info.si_uid = 1081 from_kuid_munged(task_cred_xxx(t, user_ns), 1082 current_uid()); 1083 rcu_read_unlock(); 1084 break; 1085 case (unsigned long) SEND_SIG_PRIV: 1086 clear_siginfo(&q->info); 1087 q->info.si_signo = sig; 1088 q->info.si_errno = 0; 1089 q->info.si_code = SI_KERNEL; 1090 q->info.si_pid = 0; 1091 q->info.si_uid = 0; 1092 break; 1093 default: 1094 copy_siginfo(&q->info, info); 1095 break; 1096 } 1097 } else if (!is_si_special(info) && 1098 sig >= SIGRTMIN && info->si_code != SI_USER) { 1099 /* 1100 * Queue overflow, abort. We may abort if the 1101 * signal was rt and sent by user using something 1102 * other than kill(). 1103 */ 1104 result = TRACE_SIGNAL_OVERFLOW_FAIL; 1105 ret = -EAGAIN; 1106 goto ret; 1107 } else { 1108 /* 1109 * This is a silent loss of information. We still 1110 * send the signal, but the *info bits are lost. 1111 */ 1112 result = TRACE_SIGNAL_LOSE_INFO; 1113 } 1114 1115 out_set: 1116 signalfd_notify(t, sig); 1117 sigaddset(&pending->signal, sig); 1118 1119 /* Let multiprocess signals appear after on-going forks */ 1120 if (type > PIDTYPE_TGID) { 1121 struct multiprocess_signals *delayed; 1122 hlist_for_each_entry(delayed, &t->signal->multiprocess, node) { 1123 sigset_t *signal = &delayed->signal; 1124 /* Can't queue both a stop and a continue signal */ 1125 if (sig == SIGCONT) 1126 sigdelsetmask(signal, SIG_KERNEL_STOP_MASK); 1127 else if (sig_kernel_stop(sig)) 1128 sigdelset(signal, SIGCONT); 1129 sigaddset(signal, sig); 1130 } 1131 } 1132 1133 complete_signal(sig, t, type); 1134 ret: 1135 trace_signal_generate(sig, info, t, type != PIDTYPE_PID, result); 1136 return ret; 1137 } 1138 1139 static inline bool has_si_pid_and_uid(struct kernel_siginfo *info) 1140 { 1141 bool ret = false; 1142 switch (siginfo_layout(info->si_signo, info->si_code)) { 1143 case SIL_KILL: 1144 case SIL_CHLD: 1145 case SIL_RT: 1146 ret = true; 1147 break; 1148 case SIL_TIMER: 1149 case SIL_POLL: 1150 case SIL_FAULT: 1151 case SIL_FAULT_TRAPNO: 1152 case SIL_FAULT_MCEERR: 1153 case SIL_FAULT_BNDERR: 1154 case SIL_FAULT_PKUERR: 1155 case SIL_FAULT_PERF_EVENT: 1156 case SIL_SYS: 1157 ret = false; 1158 break; 1159 } 1160 return ret; 1161 } 1162 1163 int send_signal_locked(int sig, struct kernel_siginfo *info, 1164 struct task_struct *t, enum pid_type type) 1165 { 1166 struct kernel_siginfo __maybe_unused rewritten; 1167 /* Should SIGKILL or SIGSTOP be received by a pid namespace init? */ 1168 bool force = false; 1169 1170 if (info == SEND_SIG_NOINFO) { 1171 /* Force if sent from an ancestor pid namespace */ 1172 force = !task_pid_nr_ns(current, task_active_pid_ns(t)); 1173 } else if (info == SEND_SIG_PRIV) { 1174 /* Don't ignore kernel generated signals */ 1175 force = true; 1176 } else if (has_si_pid_and_uid(info)) { 1177 /* SIGKILL and SIGSTOP is special or has ids */ 1178 #ifdef CONFIG_USER_NS 1179 struct user_namespace *t_user_ns; 1180 kuid_t uid; 1181 1182 rcu_read_lock(); 1183 t_user_ns = task_cred_xxx(t, user_ns); 1184 if (current_user_ns() != t_user_ns) { 1185 rewritten = *info; 1186 info = &rewritten; 1187 uid = make_kuid(current_user_ns(), info->si_uid); 1188 rewritten.si_uid = from_kuid_munged(t_user_ns, uid); 1189 } 1190 rcu_read_unlock(); 1191 #endif 1192 /* A kernel generated signal? */ 1193 force = (info->si_code == SI_KERNEL); 1194 1195 #ifdef CONFIG_PID_NS 1196 /* From an ancestor pid namespace? */ 1197 if (!task_pid_nr_ns(current, task_active_pid_ns(t))) { 1198 if (info != &rewritten) { 1199 rewritten = *info; 1200 info = &rewritten; 1201 } 1202 rewritten.si_pid = 0; 1203 force = true; 1204 } 1205 #endif 1206 } 1207 return __send_signal_locked(sig, info, t, type, force); 1208 } 1209 1210 static void print_fatal_signal(int signr) 1211 { 1212 struct pt_regs *regs = task_pt_regs(current); 1213 struct file *exe_file; 1214 1215 exe_file = get_task_exe_file(current); 1216 if (exe_file) { 1217 pr_info("%pD: %s: potentially unexpected fatal signal %d.\n", 1218 exe_file, current->comm, signr); 1219 fput(exe_file); 1220 } else { 1221 pr_info("%s: potentially unexpected fatal signal %d.\n", 1222 current->comm, signr); 1223 } 1224 1225 #if defined(__i386__) && !defined(__arch_um__) 1226 pr_info("code at %08lx: ", regs->ip); 1227 { 1228 int i; 1229 for (i = 0; i < 16; i++) { 1230 unsigned char insn; 1231 1232 if (get_user(insn, (unsigned char *)(regs->ip + i))) 1233 break; 1234 pr_cont("%02x ", insn); 1235 } 1236 } 1237 pr_cont("\n"); 1238 #endif 1239 preempt_disable(); 1240 show_regs(regs); 1241 preempt_enable(); 1242 } 1243 1244 static int __init setup_print_fatal_signals(char *str) 1245 { 1246 get_option (&str, &print_fatal_signals); 1247 1248 return 1; 1249 } 1250 1251 __setup("print-fatal-signals=", setup_print_fatal_signals); 1252 1253 int do_send_sig_info(int sig, struct kernel_siginfo *info, struct task_struct *p, 1254 enum pid_type type) 1255 { 1256 unsigned long flags; 1257 int ret = -ESRCH; 1258 1259 if (lock_task_sighand(p, &flags)) { 1260 ret = send_signal_locked(sig, info, p, type); 1261 unlock_task_sighand(p, &flags); 1262 } 1263 1264 return ret; 1265 } 1266 1267 enum sig_handler { 1268 HANDLER_CURRENT, /* If reachable use the current handler */ 1269 HANDLER_SIG_DFL, /* Always use SIG_DFL handler semantics */ 1270 HANDLER_EXIT, /* Only visible as the process exit code */ 1271 }; 1272 1273 /* 1274 * Force a signal that the process can't ignore: if necessary 1275 * we unblock the signal and change any SIG_IGN to SIG_DFL. 1276 * 1277 * Note: If we unblock the signal, we always reset it to SIG_DFL, 1278 * since we do not want to have a signal handler that was blocked 1279 * be invoked when user space had explicitly blocked it. 1280 * 1281 * We don't want to have recursive SIGSEGV's etc, for example, 1282 * that is why we also clear SIGNAL_UNKILLABLE. 1283 */ 1284 static int 1285 force_sig_info_to_task(struct kernel_siginfo *info, struct task_struct *t, 1286 enum sig_handler handler) 1287 { 1288 unsigned long int flags; 1289 int ret, blocked, ignored; 1290 struct k_sigaction *action; 1291 int sig = info->si_signo; 1292 1293 spin_lock_irqsave(&t->sighand->siglock, flags); 1294 action = &t->sighand->action[sig-1]; 1295 ignored = action->sa.sa_handler == SIG_IGN; 1296 blocked = sigismember(&t->blocked, sig); 1297 if (blocked || ignored || (handler != HANDLER_CURRENT)) { 1298 action->sa.sa_handler = SIG_DFL; 1299 if (handler == HANDLER_EXIT) 1300 action->sa.sa_flags |= SA_IMMUTABLE; 1301 if (blocked) 1302 sigdelset(&t->blocked, sig); 1303 } 1304 /* 1305 * Don't clear SIGNAL_UNKILLABLE for traced tasks, users won't expect 1306 * debugging to leave init killable. But HANDLER_EXIT is always fatal. 1307 */ 1308 if (action->sa.sa_handler == SIG_DFL && 1309 (!t->ptrace || (handler == HANDLER_EXIT))) 1310 t->signal->flags &= ~SIGNAL_UNKILLABLE; 1311 ret = send_signal_locked(sig, info, t, PIDTYPE_PID); 1312 /* This can happen if the signal was already pending and blocked */ 1313 if (!task_sigpending(t)) 1314 signal_wake_up(t, 0); 1315 spin_unlock_irqrestore(&t->sighand->siglock, flags); 1316 1317 return ret; 1318 } 1319 1320 int force_sig_info(struct kernel_siginfo *info) 1321 { 1322 return force_sig_info_to_task(info, current, HANDLER_CURRENT); 1323 } 1324 1325 /* 1326 * Nuke all other threads in the group. 1327 */ 1328 int zap_other_threads(struct task_struct *p) 1329 { 1330 struct task_struct *t; 1331 int count = 0; 1332 1333 p->signal->group_stop_count = 0; 1334 task_clear_jobctl_pending(p, JOBCTL_PENDING_MASK); 1335 1336 for_other_threads(p, t) { 1337 task_clear_jobctl_pending(t, JOBCTL_PENDING_MASK); 1338 count++; 1339 1340 /* Don't bother with already dead threads */ 1341 if (t->exit_state) 1342 continue; 1343 sigaddset(&t->pending.signal, SIGKILL); 1344 signal_wake_up(t, 1); 1345 } 1346 1347 return count; 1348 } 1349 1350 struct sighand_struct *lock_task_sighand(struct task_struct *tsk, 1351 unsigned long *flags) 1352 { 1353 struct sighand_struct *sighand; 1354 1355 rcu_read_lock(); 1356 for (;;) { 1357 sighand = rcu_dereference(tsk->sighand); 1358 if (unlikely(sighand == NULL)) { 1359 /* 1360 * Pairs with the smp_store_release() in 1361 * __exit_signal(). It ensures that all state 1362 * modifications to the task preceeding the store are 1363 * visible to the callers of lock_task_sighand(). 1364 */ 1365 smp_acquire__after_ctrl_dep(); 1366 break; 1367 } 1368 1369 /* 1370 * This sighand can be already freed and even reused, but 1371 * we rely on SLAB_TYPESAFE_BY_RCU and sighand_ctor() which 1372 * initializes ->siglock: this slab can't go away, it has 1373 * the same object type, ->siglock can't be reinitialized. 1374 * 1375 * We need to ensure that tsk->sighand is still the same 1376 * after we take the lock, we can race with de_thread() or 1377 * __exit_signal(). In the latter case the next iteration 1378 * must see ->sighand == NULL. 1379 */ 1380 spin_lock_irqsave(&sighand->siglock, *flags); 1381 if (likely(sighand == rcu_access_pointer(tsk->sighand))) 1382 break; 1383 spin_unlock_irqrestore(&sighand->siglock, *flags); 1384 } 1385 rcu_read_unlock(); 1386 1387 return sighand; 1388 } 1389 1390 #ifdef CONFIG_LOCKDEP 1391 void lockdep_assert_task_sighand_held(struct task_struct *task) 1392 { 1393 struct sighand_struct *sighand; 1394 1395 rcu_read_lock(); 1396 sighand = rcu_dereference(task->sighand); 1397 if (sighand) 1398 lockdep_assert_held(&sighand->siglock); 1399 else 1400 WARN_ON_ONCE(1); 1401 rcu_read_unlock(); 1402 } 1403 #endif 1404 1405 /* 1406 * send signal info to all the members of a thread group or to the 1407 * individual thread if type == PIDTYPE_PID. 1408 */ 1409 int group_send_sig_info(int sig, struct kernel_siginfo *info, 1410 struct task_struct *p, enum pid_type type) 1411 { 1412 int ret; 1413 1414 rcu_read_lock(); 1415 ret = check_kill_permission(sig, info, p); 1416 rcu_read_unlock(); 1417 1418 if (!ret && sig) 1419 ret = do_send_sig_info(sig, info, p, type); 1420 1421 return ret; 1422 } 1423 1424 /* 1425 * __kill_pgrp_info() sends a signal to a process group: this is what the tty 1426 * control characters do (^C, ^Z etc) 1427 * - the caller must hold at least a readlock on tasklist_lock 1428 */ 1429 int __kill_pgrp_info(int sig, struct kernel_siginfo *info, struct pid *pgrp) 1430 { 1431 struct task_struct *p = NULL; 1432 int ret = -ESRCH; 1433 1434 do_each_pid_task(pgrp, PIDTYPE_PGID, p) { 1435 int err = group_send_sig_info(sig, info, p, PIDTYPE_PGID); 1436 /* 1437 * If group_send_sig_info() succeeds at least once ret 1438 * becomes 0 and after that the code below has no effect. 1439 * Otherwise we return the last err or -ESRCH if this 1440 * process group is empty. 1441 */ 1442 if (ret) 1443 ret = err; 1444 } while_each_pid_task(pgrp, PIDTYPE_PGID, p); 1445 1446 return ret; 1447 } 1448 1449 static int kill_pid_info_type(int sig, struct kernel_siginfo *info, 1450 struct pid *pid, enum pid_type type) 1451 { 1452 int error = -ESRCH; 1453 struct task_struct *p; 1454 1455 for (;;) { 1456 rcu_read_lock(); 1457 p = pid_task(pid, PIDTYPE_PID); 1458 if (p) 1459 error = group_send_sig_info(sig, info, p, type); 1460 rcu_read_unlock(); 1461 if (likely(!p || error != -ESRCH)) 1462 return error; 1463 /* 1464 * The task was unhashed in between, try again. If it 1465 * is dead, pid_task() will return NULL, if we race with 1466 * de_thread() it will find the new leader. 1467 */ 1468 } 1469 } 1470 1471 int kill_pid_info(int sig, struct kernel_siginfo *info, struct pid *pid) 1472 { 1473 return kill_pid_info_type(sig, info, pid, PIDTYPE_TGID); 1474 } 1475 1476 static int kill_proc_info(int sig, struct kernel_siginfo *info, pid_t pid) 1477 { 1478 int error; 1479 rcu_read_lock(); 1480 error = kill_pid_info(sig, info, find_vpid(pid)); 1481 rcu_read_unlock(); 1482 return error; 1483 } 1484 1485 static inline bool kill_as_cred_perm(const struct cred *cred, 1486 struct task_struct *target) 1487 { 1488 const struct cred *pcred = __task_cred(target); 1489 1490 return uid_eq(cred->euid, pcred->suid) || 1491 uid_eq(cred->euid, pcred->uid) || 1492 uid_eq(cred->uid, pcred->suid) || 1493 uid_eq(cred->uid, pcred->uid); 1494 } 1495 1496 /* 1497 * The usb asyncio usage of siginfo is wrong. The glibc support 1498 * for asyncio which uses SI_ASYNCIO assumes the layout is SIL_RT. 1499 * AKA after the generic fields: 1500 * kernel_pid_t si_pid; 1501 * kernel_uid32_t si_uid; 1502 * sigval_t si_value; 1503 * 1504 * Unfortunately when usb generates SI_ASYNCIO it assumes the layout 1505 * after the generic fields is: 1506 * void __user *si_addr; 1507 * 1508 * This is a practical problem when there is a 64bit big endian kernel 1509 * and a 32bit userspace. As the 32bit address will encoded in the low 1510 * 32bits of the pointer. Those low 32bits will be stored at higher 1511 * address than appear in a 32 bit pointer. So userspace will not 1512 * see the address it was expecting for it's completions. 1513 * 1514 * There is nothing in the encoding that can allow 1515 * copy_siginfo_to_user32 to detect this confusion of formats, so 1516 * handle this by requiring the caller of kill_pid_usb_asyncio to 1517 * notice when this situration takes place and to store the 32bit 1518 * pointer in sival_int, instead of sival_addr of the sigval_t addr 1519 * parameter. 1520 */ 1521 int kill_pid_usb_asyncio(int sig, int errno, sigval_t addr, 1522 struct pid *pid, const struct cred *cred) 1523 { 1524 struct kernel_siginfo info; 1525 struct task_struct *p; 1526 unsigned long flags; 1527 int ret = -EINVAL; 1528 1529 if (!valid_signal(sig)) 1530 return ret; 1531 1532 clear_siginfo(&info); 1533 info.si_signo = sig; 1534 info.si_errno = errno; 1535 info.si_code = SI_ASYNCIO; 1536 *((sigval_t *)&info.si_pid) = addr; 1537 1538 rcu_read_lock(); 1539 p = pid_task(pid, PIDTYPE_PID); 1540 if (!p) { 1541 ret = -ESRCH; 1542 goto out_unlock; 1543 } 1544 if (!kill_as_cred_perm(cred, p)) { 1545 ret = -EPERM; 1546 goto out_unlock; 1547 } 1548 ret = security_task_kill(p, &info, sig, cred); 1549 if (ret) 1550 goto out_unlock; 1551 1552 if (sig) { 1553 if (lock_task_sighand(p, &flags)) { 1554 ret = __send_signal_locked(sig, &info, p, PIDTYPE_TGID, false); 1555 unlock_task_sighand(p, &flags); 1556 } else 1557 ret = -ESRCH; 1558 } 1559 out_unlock: 1560 rcu_read_unlock(); 1561 return ret; 1562 } 1563 EXPORT_SYMBOL_GPL(kill_pid_usb_asyncio); 1564 1565 /* 1566 * kill_something_info() interprets pid in interesting ways just like kill(2). 1567 * 1568 * POSIX specifies that kill(-1,sig) is unspecified, but what we have 1569 * is probably wrong. Should make it like BSD or SYSV. 1570 */ 1571 1572 static int kill_something_info(int sig, struct kernel_siginfo *info, pid_t pid) 1573 { 1574 int ret; 1575 1576 if (pid > 0) 1577 return kill_proc_info(sig, info, pid); 1578 1579 /* -INT_MIN is undefined. Exclude this case to avoid a UBSAN warning */ 1580 if (pid == INT_MIN) 1581 return -ESRCH; 1582 1583 read_lock(&tasklist_lock); 1584 if (pid != -1) { 1585 ret = __kill_pgrp_info(sig, info, 1586 pid ? find_vpid(-pid) : task_pgrp(current)); 1587 } else { 1588 int retval = 0, count = 0; 1589 struct task_struct * p; 1590 1591 for_each_process(p) { 1592 if (task_pid_vnr(p) > 1 && 1593 !same_thread_group(p, current)) { 1594 int err = group_send_sig_info(sig, info, p, 1595 PIDTYPE_MAX); 1596 ++count; 1597 if (err != -EPERM) 1598 retval = err; 1599 } 1600 } 1601 ret = count ? retval : -ESRCH; 1602 } 1603 read_unlock(&tasklist_lock); 1604 1605 return ret; 1606 } 1607 1608 /* 1609 * These are for backward compatibility with the rest of the kernel source. 1610 */ 1611 1612 int send_sig_info(int sig, struct kernel_siginfo *info, struct task_struct *p) 1613 { 1614 /* 1615 * Make sure legacy kernel users don't send in bad values 1616 * (normal paths check this in check_kill_permission). 1617 */ 1618 if (!valid_signal(sig)) 1619 return -EINVAL; 1620 1621 return do_send_sig_info(sig, info, p, PIDTYPE_PID); 1622 } 1623 EXPORT_SYMBOL(send_sig_info); 1624 1625 #define __si_special(priv) \ 1626 ((priv) ? SEND_SIG_PRIV : SEND_SIG_NOINFO) 1627 1628 int 1629 send_sig(int sig, struct task_struct *p, int priv) 1630 { 1631 return send_sig_info(sig, __si_special(priv), p); 1632 } 1633 EXPORT_SYMBOL(send_sig); 1634 1635 void force_sig(int sig) 1636 { 1637 struct kernel_siginfo info; 1638 1639 clear_siginfo(&info); 1640 info.si_signo = sig; 1641 info.si_errno = 0; 1642 info.si_code = SI_KERNEL; 1643 info.si_pid = 0; 1644 info.si_uid = 0; 1645 force_sig_info(&info); 1646 } 1647 EXPORT_SYMBOL(force_sig); 1648 1649 void force_fatal_sig(int sig) 1650 { 1651 struct kernel_siginfo info; 1652 1653 clear_siginfo(&info); 1654 info.si_signo = sig; 1655 info.si_errno = 0; 1656 info.si_code = SI_KERNEL; 1657 info.si_pid = 0; 1658 info.si_uid = 0; 1659 force_sig_info_to_task(&info, current, HANDLER_SIG_DFL); 1660 } 1661 1662 void force_exit_sig(int sig) 1663 { 1664 struct kernel_siginfo info; 1665 1666 clear_siginfo(&info); 1667 info.si_signo = sig; 1668 info.si_errno = 0; 1669 info.si_code = SI_KERNEL; 1670 info.si_pid = 0; 1671 info.si_uid = 0; 1672 force_sig_info_to_task(&info, current, HANDLER_EXIT); 1673 } 1674 1675 /* 1676 * When things go south during signal handling, we 1677 * will force a SIGSEGV. And if the signal that caused 1678 * the problem was already a SIGSEGV, we'll want to 1679 * make sure we don't even try to deliver the signal.. 1680 */ 1681 void force_sigsegv(int sig) 1682 { 1683 if (sig == SIGSEGV) 1684 force_fatal_sig(SIGSEGV); 1685 else 1686 force_sig(SIGSEGV); 1687 } 1688 1689 int force_sig_fault_to_task(int sig, int code, void __user *addr, 1690 struct task_struct *t) 1691 { 1692 struct kernel_siginfo info; 1693 1694 clear_siginfo(&info); 1695 info.si_signo = sig; 1696 info.si_errno = 0; 1697 info.si_code = code; 1698 info.si_addr = addr; 1699 return force_sig_info_to_task(&info, t, HANDLER_CURRENT); 1700 } 1701 1702 int force_sig_fault(int sig, int code, void __user *addr) 1703 { 1704 return force_sig_fault_to_task(sig, code, addr, current); 1705 } 1706 1707 int send_sig_fault(int sig, int code, void __user *addr, struct task_struct *t) 1708 { 1709 struct kernel_siginfo info; 1710 1711 clear_siginfo(&info); 1712 info.si_signo = sig; 1713 info.si_errno = 0; 1714 info.si_code = code; 1715 info.si_addr = addr; 1716 return send_sig_info(info.si_signo, &info, t); 1717 } 1718 1719 int force_sig_mceerr(int code, void __user *addr, short lsb) 1720 { 1721 struct kernel_siginfo info; 1722 1723 WARN_ON((code != BUS_MCEERR_AO) && (code != BUS_MCEERR_AR)); 1724 clear_siginfo(&info); 1725 info.si_signo = SIGBUS; 1726 info.si_errno = 0; 1727 info.si_code = code; 1728 info.si_addr = addr; 1729 info.si_addr_lsb = lsb; 1730 return force_sig_info(&info); 1731 } 1732 1733 int send_sig_mceerr(int code, void __user *addr, short lsb, struct task_struct *t) 1734 { 1735 struct kernel_siginfo info; 1736 1737 WARN_ON((code != BUS_MCEERR_AO) && (code != BUS_MCEERR_AR)); 1738 clear_siginfo(&info); 1739 info.si_signo = SIGBUS; 1740 info.si_errno = 0; 1741 info.si_code = code; 1742 info.si_addr = addr; 1743 info.si_addr_lsb = lsb; 1744 return send_sig_info(info.si_signo, &info, t); 1745 } 1746 EXPORT_SYMBOL(send_sig_mceerr); 1747 1748 int force_sig_bnderr(void __user *addr, void __user *lower, void __user *upper) 1749 { 1750 struct kernel_siginfo info; 1751 1752 clear_siginfo(&info); 1753 info.si_signo = SIGSEGV; 1754 info.si_errno = 0; 1755 info.si_code = SEGV_BNDERR; 1756 info.si_addr = addr; 1757 info.si_lower = lower; 1758 info.si_upper = upper; 1759 return force_sig_info(&info); 1760 } 1761 1762 #ifdef SEGV_PKUERR 1763 int force_sig_pkuerr(void __user *addr, u32 pkey) 1764 { 1765 struct kernel_siginfo info; 1766 1767 clear_siginfo(&info); 1768 info.si_signo = SIGSEGV; 1769 info.si_errno = 0; 1770 info.si_code = SEGV_PKUERR; 1771 info.si_addr = addr; 1772 info.si_pkey = pkey; 1773 return force_sig_info(&info); 1774 } 1775 #endif 1776 1777 int send_sig_perf(void __user *addr, u32 type, u64 sig_data) 1778 { 1779 struct kernel_siginfo info; 1780 1781 clear_siginfo(&info); 1782 info.si_signo = SIGTRAP; 1783 info.si_errno = 0; 1784 info.si_code = TRAP_PERF; 1785 info.si_addr = addr; 1786 info.si_perf_data = sig_data; 1787 info.si_perf_type = type; 1788 1789 /* 1790 * Signals generated by perf events should not terminate the whole 1791 * process if SIGTRAP is blocked, however, delivering the signal 1792 * asynchronously is better than not delivering at all. But tell user 1793 * space if the signal was asynchronous, so it can clearly be 1794 * distinguished from normal synchronous ones. 1795 */ 1796 info.si_perf_flags = sigismember(¤t->blocked, info.si_signo) ? 1797 TRAP_PERF_FLAG_ASYNC : 1798 0; 1799 1800 return send_sig_info(info.si_signo, &info, current); 1801 } 1802 1803 /** 1804 * force_sig_seccomp - signals the task to allow in-process syscall emulation 1805 * @syscall: syscall number to send to userland 1806 * @reason: filter-supplied reason code to send to userland (via si_errno) 1807 * @force_coredump: true to trigger a coredump 1808 * 1809 * Forces a SIGSYS with a code of SYS_SECCOMP and related sigsys info. 1810 */ 1811 int force_sig_seccomp(int syscall, int reason, bool force_coredump) 1812 { 1813 struct kernel_siginfo info; 1814 1815 clear_siginfo(&info); 1816 info.si_signo = SIGSYS; 1817 info.si_code = SYS_SECCOMP; 1818 info.si_call_addr = (void __user *)KSTK_EIP(current); 1819 info.si_errno = reason; 1820 info.si_arch = syscall_get_arch(current); 1821 info.si_syscall = syscall; 1822 return force_sig_info_to_task(&info, current, 1823 force_coredump ? HANDLER_EXIT : HANDLER_CURRENT); 1824 } 1825 1826 /* For the crazy architectures that include trap information in 1827 * the errno field, instead of an actual errno value. 1828 */ 1829 int force_sig_ptrace_errno_trap(int errno, void __user *addr) 1830 { 1831 struct kernel_siginfo info; 1832 1833 clear_siginfo(&info); 1834 info.si_signo = SIGTRAP; 1835 info.si_errno = errno; 1836 info.si_code = TRAP_HWBKPT; 1837 info.si_addr = addr; 1838 return force_sig_info(&info); 1839 } 1840 1841 /* For the rare architectures that include trap information using 1842 * si_trapno. 1843 */ 1844 int force_sig_fault_trapno(int sig, int code, void __user *addr, int trapno) 1845 { 1846 struct kernel_siginfo info; 1847 1848 clear_siginfo(&info); 1849 info.si_signo = sig; 1850 info.si_errno = 0; 1851 info.si_code = code; 1852 info.si_addr = addr; 1853 info.si_trapno = trapno; 1854 return force_sig_info(&info); 1855 } 1856 1857 /* For the rare architectures that include trap information using 1858 * si_trapno. 1859 */ 1860 int send_sig_fault_trapno(int sig, int code, void __user *addr, int trapno, 1861 struct task_struct *t) 1862 { 1863 struct kernel_siginfo info; 1864 1865 clear_siginfo(&info); 1866 info.si_signo = sig; 1867 info.si_errno = 0; 1868 info.si_code = code; 1869 info.si_addr = addr; 1870 info.si_trapno = trapno; 1871 return send_sig_info(info.si_signo, &info, t); 1872 } 1873 1874 static int kill_pgrp_info(int sig, struct kernel_siginfo *info, struct pid *pgrp) 1875 { 1876 int ret; 1877 read_lock(&tasklist_lock); 1878 ret = __kill_pgrp_info(sig, info, pgrp); 1879 read_unlock(&tasklist_lock); 1880 return ret; 1881 } 1882 1883 int kill_pgrp(struct pid *pid, int sig, int priv) 1884 { 1885 return kill_pgrp_info(sig, __si_special(priv), pid); 1886 } 1887 EXPORT_SYMBOL(kill_pgrp); 1888 1889 int kill_pid(struct pid *pid, int sig, int priv) 1890 { 1891 return kill_pid_info(sig, __si_special(priv), pid); 1892 } 1893 EXPORT_SYMBOL(kill_pid); 1894 1895 int kill_cad_pid(int sig, int priv) 1896 { 1897 int ret; 1898 1899 rcu_read_lock(); 1900 ret = kill_pid(rcu_dereference(cad_pid), sig, priv); 1901 rcu_read_unlock(); 1902 1903 return ret; 1904 } 1905 EXPORT_SYMBOL(kill_cad_pid); 1906 1907 #ifdef CONFIG_POSIX_TIMERS 1908 /* 1909 * These functions handle POSIX timer signals. POSIX timers use 1910 * preallocated sigqueue structs for sending signals. 1911 */ 1912 static void __flush_itimer_signals(struct sigpending *pending) 1913 { 1914 sigset_t signal, retain; 1915 struct sigqueue *q, *n; 1916 1917 signal = pending->signal; 1918 sigemptyset(&retain); 1919 1920 list_for_each_entry_safe(q, n, &pending->list, list) { 1921 int sig = q->info.si_signo; 1922 1923 if (likely(q->info.si_code != SI_TIMER)) { 1924 sigaddset(&retain, sig); 1925 } else { 1926 sigdelset(&signal, sig); 1927 list_del_init(&q->list); 1928 __sigqueue_free(q); 1929 } 1930 } 1931 1932 sigorsets(&pending->signal, &signal, &retain); 1933 } 1934 1935 void flush_itimer_signals(void) 1936 { 1937 struct task_struct *tsk = current; 1938 1939 guard(spinlock_irqsave)(&tsk->sighand->siglock); 1940 __flush_itimer_signals(&tsk->pending); 1941 __flush_itimer_signals(&tsk->signal->shared_pending); 1942 } 1943 1944 bool posixtimer_init_sigqueue(struct sigqueue *q) 1945 { 1946 struct ucounts *ucounts = sig_get_ucounts(current, -1, 0); 1947 1948 if (!ucounts) 1949 return false; 1950 clear_siginfo(&q->info); 1951 __sigqueue_init(q, ucounts, SIGQUEUE_PREALLOC); 1952 return true; 1953 } 1954 1955 static void posixtimer_queue_sigqueue(struct sigqueue *q, struct task_struct *t, enum pid_type type) 1956 { 1957 struct sigpending *pending; 1958 int sig = q->info.si_signo; 1959 1960 signalfd_notify(t, sig); 1961 pending = (type != PIDTYPE_PID) ? &t->signal->shared_pending : &t->pending; 1962 list_add_tail(&q->list, &pending->list); 1963 sigaddset(&pending->signal, sig); 1964 complete_signal(sig, t, type); 1965 } 1966 1967 /* 1968 * This function is used by POSIX timers to deliver a timer signal. 1969 * Where type is PIDTYPE_PID (such as for timers with SIGEV_THREAD_ID 1970 * set), the signal must be delivered to the specific thread (queues 1971 * into t->pending). 1972 * 1973 * Where type is not PIDTYPE_PID, signals must be delivered to the 1974 * process. In this case, prefer to deliver to current if it is in 1975 * the same thread group as the target process and its sighand is 1976 * stable, which avoids unnecessarily waking up a potentially idle task. 1977 */ 1978 static inline struct task_struct *posixtimer_get_target(struct k_itimer *tmr) 1979 { 1980 struct task_struct *t = pid_task(tmr->it_pid, tmr->it_pid_type); 1981 1982 if (t && tmr->it_pid_type != PIDTYPE_PID && 1983 same_thread_group(t, current) && !current->exit_state) 1984 t = current; 1985 return t; 1986 } 1987 1988 void posixtimer_send_sigqueue(struct k_itimer *tmr) 1989 { 1990 struct sigqueue *q = &tmr->sigq; 1991 int sig = q->info.si_signo; 1992 struct task_struct *t; 1993 unsigned long flags; 1994 int result; 1995 1996 guard(rcu)(); 1997 1998 t = posixtimer_get_target(tmr); 1999 if (!t) 2000 return; 2001 2002 if (!likely(lock_task_sighand(t, &flags))) 2003 return; 2004 2005 /* 2006 * Update @tmr::sigqueue_seq for posix timer signals with sighand 2007 * locked to prevent a race against dequeue_signal(). 2008 */ 2009 tmr->it_sigqueue_seq = tmr->it_signal_seq; 2010 2011 /* 2012 * Set the signal delivery status under sighand lock, so that the 2013 * ignored signal handling can distinguish between a periodic and a 2014 * non-periodic timer. 2015 */ 2016 tmr->it_sig_periodic = tmr->it_status == POSIX_TIMER_REQUEUE_PENDING; 2017 2018 if (!prepare_signal(sig, t, false)) { 2019 result = TRACE_SIGNAL_IGNORED; 2020 2021 if (!list_empty(&q->list)) { 2022 /* 2023 * The signal was ignored and blocked. The timer 2024 * expiry queued it because blocked signals are 2025 * queued independent of the ignored state. 2026 * 2027 * The unblocking set SIGPENDING, but the signal 2028 * was not yet dequeued from the pending list. 2029 * So prepare_signal() sees unblocked and ignored, 2030 * which ends up here. Leave it queued like a 2031 * regular signal. 2032 * 2033 * The same happens when the task group is exiting 2034 * and the signal is already queued. 2035 * prepare_signal() treats SIGNAL_GROUP_EXIT as 2036 * ignored independent of its queued state. This 2037 * gets cleaned up in __exit_signal(). 2038 */ 2039 goto out; 2040 } 2041 2042 /* Periodic timers with SIG_IGN are queued on the ignored list */ 2043 if (tmr->it_sig_periodic) { 2044 /* 2045 * Already queued means the timer was rearmed after 2046 * the previous expiry got it on the ignore list. 2047 * Nothing to do for that case. 2048 */ 2049 if (hlist_unhashed(&tmr->ignored_list)) { 2050 /* 2051 * Take a signal reference and queue it on 2052 * the ignored list. 2053 */ 2054 posixtimer_sigqueue_getref(q); 2055 posixtimer_sig_ignore(t, q); 2056 } 2057 } else if (!hlist_unhashed(&tmr->ignored_list)) { 2058 /* 2059 * Covers the case where a timer was periodic and 2060 * then the signal was ignored. Later it was rearmed 2061 * as oneshot timer. The previous signal is invalid 2062 * now, and this oneshot signal has to be dropped. 2063 * Remove it from the ignored list and drop the 2064 * reference count as the signal is not longer 2065 * queued. 2066 */ 2067 hlist_del_init(&tmr->ignored_list); 2068 posixtimer_putref(tmr); 2069 } 2070 goto out; 2071 } 2072 2073 if (unlikely(!list_empty(&q->list))) { 2074 /* This holds a reference count already */ 2075 result = TRACE_SIGNAL_ALREADY_PENDING; 2076 goto out; 2077 } 2078 2079 /* 2080 * If the signal is on the ignore list, it got blocked after it was 2081 * ignored earlier. But nothing lifted the ignore. Move it back to 2082 * the pending list to be consistent with the regular signal 2083 * handling. This already holds a reference count. 2084 * 2085 * If it's not on the ignore list acquire a reference count. 2086 */ 2087 if (likely(hlist_unhashed(&tmr->ignored_list))) 2088 posixtimer_sigqueue_getref(q); 2089 else 2090 hlist_del_init(&tmr->ignored_list); 2091 2092 posixtimer_queue_sigqueue(q, t, tmr->it_pid_type); 2093 result = TRACE_SIGNAL_DELIVERED; 2094 out: 2095 trace_signal_generate(sig, &q->info, t, tmr->it_pid_type != PIDTYPE_PID, result); 2096 unlock_task_sighand(t, &flags); 2097 } 2098 2099 static inline void posixtimer_sig_ignore(struct task_struct *tsk, struct sigqueue *q) 2100 { 2101 struct k_itimer *tmr = container_of(q, struct k_itimer, sigq); 2102 2103 /* 2104 * If the timer is marked deleted already or the signal originates 2105 * from a non-periodic timer, then just drop the reference 2106 * count. Otherwise queue it on the ignored list. 2107 */ 2108 if (posixtimer_valid(tmr) && tmr->it_sig_periodic) 2109 hlist_add_head(&tmr->ignored_list, &tsk->signal->ignored_posix_timers); 2110 else 2111 posixtimer_putref(tmr); 2112 } 2113 2114 static void posixtimer_sig_unignore(struct task_struct *tsk, int sig) 2115 { 2116 struct hlist_head *head = &tsk->signal->ignored_posix_timers; 2117 struct hlist_node *tmp; 2118 struct k_itimer *tmr; 2119 2120 if (likely(hlist_empty(head))) 2121 return; 2122 2123 /* 2124 * Rearming a timer with sighand lock held is not possible due to 2125 * lock ordering vs. tmr::it_lock. Just stick the sigqueue back and 2126 * let the signal delivery path deal with it whether it needs to be 2127 * rearmed or not. This cannot be decided here w/o dropping sighand 2128 * lock and creating a loop retry horror show. 2129 */ 2130 hlist_for_each_entry_safe(tmr, tmp , head, ignored_list) { 2131 struct task_struct *target; 2132 2133 /* 2134 * tmr::sigq.info.si_signo is immutable, so accessing it 2135 * without holding tmr::it_lock is safe. 2136 */ 2137 if (tmr->sigq.info.si_signo != sig) 2138 continue; 2139 2140 hlist_del_init(&tmr->ignored_list); 2141 2142 /* This should never happen and leaks a reference count */ 2143 if (WARN_ON_ONCE(!list_empty(&tmr->sigq.list))) 2144 continue; 2145 2146 /* 2147 * Get the target for the signal. If target is a thread and 2148 * has exited by now, drop the reference count. 2149 */ 2150 guard(rcu)(); 2151 target = posixtimer_get_target(tmr); 2152 if (target) 2153 posixtimer_queue_sigqueue(&tmr->sigq, target, tmr->it_pid_type); 2154 else 2155 posixtimer_putref(tmr); 2156 } 2157 } 2158 #else /* CONFIG_POSIX_TIMERS */ 2159 static inline void posixtimer_sig_ignore(struct task_struct *tsk, struct sigqueue *q) { } 2160 static inline void posixtimer_sig_unignore(struct task_struct *tsk, int sig) { } 2161 #endif /* !CONFIG_POSIX_TIMERS */ 2162 2163 void do_notify_pidfd(struct task_struct *task) 2164 { 2165 struct pid *pid = task_pid(task); 2166 2167 WARN_ON(task->exit_state == 0); 2168 2169 __wake_up(&pid->wait_pidfd, TASK_NORMAL, 0, 2170 poll_to_key(EPOLLIN | EPOLLRDNORM)); 2171 } 2172 2173 /* 2174 * Let a parent know about the death of a child. 2175 * For a stopped/continued status change, use do_notify_parent_cldstop instead. 2176 * 2177 * Returns true if our parent ignored us and so we've switched to 2178 * self-reaping. 2179 */ 2180 bool do_notify_parent(struct task_struct *tsk, int sig) 2181 { 2182 struct kernel_siginfo info; 2183 unsigned long flags; 2184 struct sighand_struct *psig; 2185 bool autoreap = false; 2186 u64 utime, stime; 2187 2188 if (WARN_ON_ONCE(!valid_signal(sig))) 2189 return false; 2190 2191 /* do_notify_parent_cldstop should have been called instead. */ 2192 WARN_ON_ONCE(task_is_stopped_or_traced(tsk)); 2193 2194 WARN_ON_ONCE(!tsk->ptrace && !thread_group_empty(tsk)); 2195 2196 /* ptraced, or group-leader without sub-threads */ 2197 do_notify_pidfd(tsk); 2198 2199 if (sig != SIGCHLD) { 2200 /* 2201 * This is only possible if parent == real_parent. 2202 * Check if it has changed security domain. 2203 */ 2204 if (tsk->parent_exec_id != READ_ONCE(tsk->parent->self_exec_id)) 2205 sig = SIGCHLD; 2206 } 2207 2208 clear_siginfo(&info); 2209 info.si_signo = sig; 2210 info.si_errno = 0; 2211 /* 2212 * We are under tasklist_lock here so our parent is tied to 2213 * us and cannot change. 2214 * 2215 * task_active_pid_ns will always return the same pid namespace 2216 * until a task passes through release_task. 2217 * 2218 * write_lock() currently calls preempt_disable() which is the 2219 * same as rcu_read_lock(), but according to Oleg, this is not 2220 * correct to rely on this 2221 */ 2222 rcu_read_lock(); 2223 info.si_pid = task_pid_nr_ns(tsk, task_active_pid_ns(tsk->parent)); 2224 info.si_uid = from_kuid_munged(task_cred_xxx(tsk->parent, user_ns), 2225 task_uid(tsk)); 2226 rcu_read_unlock(); 2227 2228 task_cputime(tsk, &utime, &stime); 2229 info.si_utime = nsec_to_clock_t(utime + tsk->signal->utime); 2230 info.si_stime = nsec_to_clock_t(stime + tsk->signal->stime); 2231 2232 info.si_status = tsk->exit_code & 0x7f; 2233 if (tsk->exit_code & 0x80) 2234 info.si_code = CLD_DUMPED; 2235 else if (tsk->exit_code & 0x7f) 2236 info.si_code = CLD_KILLED; 2237 else { 2238 info.si_code = CLD_EXITED; 2239 info.si_status = tsk->exit_code >> 8; 2240 } 2241 2242 psig = tsk->parent->sighand; 2243 spin_lock_irqsave(&psig->siglock, flags); 2244 if (!tsk->ptrace && sig == SIGCHLD && 2245 (psig->action[SIGCHLD-1].sa.sa_handler == SIG_IGN || 2246 (psig->action[SIGCHLD-1].sa.sa_flags & SA_NOCLDWAIT))) { 2247 /* 2248 * We are exiting and our parent doesn't care. POSIX.1 2249 * defines special semantics for setting SIGCHLD to SIG_IGN 2250 * or setting the SA_NOCLDWAIT flag: we should be reaped 2251 * automatically and not left for our parent's wait4 call. 2252 * Rather than having the parent do it as a magic kind of 2253 * signal handler, we just set this to tell do_exit that we 2254 * can be cleaned up without becoming a zombie. Note that 2255 * we still call __wake_up_parent in this case, because a 2256 * blocked sys_wait4 might now return -ECHILD. 2257 * 2258 * Whether we send SIGCHLD or not for SA_NOCLDWAIT 2259 * is implementation-defined: we do (if you don't want 2260 * it, just use SIG_IGN instead). 2261 */ 2262 autoreap = true; 2263 if (psig->action[SIGCHLD-1].sa.sa_handler == SIG_IGN) 2264 sig = 0; 2265 } 2266 if (!tsk->ptrace && tsk->signal->autoreap) { 2267 autoreap = true; 2268 sig = 0; 2269 } 2270 /* 2271 * Send with __send_signal as si_pid and si_uid are in the 2272 * parent's namespaces. 2273 */ 2274 if (sig) 2275 __send_signal_locked(sig, &info, tsk->parent, PIDTYPE_TGID, false); 2276 __wake_up_parent(tsk, tsk->parent); 2277 spin_unlock_irqrestore(&psig->siglock, flags); 2278 2279 return autoreap; 2280 } 2281 2282 /** 2283 * do_notify_parent_cldstop - notify parent of stopped/continued state change 2284 * @tsk: task reporting the state change 2285 * @for_ptracer: the notification is for ptracer 2286 * @why: CLD_{CONTINUED|STOPPED|TRAPPED} to report 2287 * 2288 * Notify @tsk's parent that the stopped/continued state has changed. If 2289 * @for_ptracer is %false, @tsk's group leader notifies to its real parent. 2290 * If %true, @tsk reports to @tsk->parent which should be the ptracer. 2291 * 2292 * CONTEXT: 2293 * Must be called with tasklist_lock at least read locked. 2294 */ 2295 static void do_notify_parent_cldstop(struct task_struct *tsk, 2296 bool for_ptracer, int why) 2297 { 2298 struct kernel_siginfo info; 2299 unsigned long flags; 2300 struct task_struct *parent; 2301 struct sighand_struct *sighand; 2302 u64 utime, stime; 2303 2304 if (for_ptracer) { 2305 parent = tsk->parent; 2306 } else { 2307 tsk = tsk->group_leader; 2308 parent = tsk->real_parent; 2309 } 2310 2311 clear_siginfo(&info); 2312 info.si_signo = SIGCHLD; 2313 info.si_errno = 0; 2314 /* 2315 * see comment in do_notify_parent() about the following 4 lines 2316 */ 2317 rcu_read_lock(); 2318 info.si_pid = task_pid_nr_ns(tsk, task_active_pid_ns(parent)); 2319 info.si_uid = from_kuid_munged(task_cred_xxx(parent, user_ns), task_uid(tsk)); 2320 rcu_read_unlock(); 2321 2322 task_cputime(tsk, &utime, &stime); 2323 info.si_utime = nsec_to_clock_t(utime); 2324 info.si_stime = nsec_to_clock_t(stime); 2325 2326 info.si_code = why; 2327 switch (why) { 2328 case CLD_CONTINUED: 2329 info.si_status = SIGCONT; 2330 break; 2331 case CLD_STOPPED: 2332 info.si_status = tsk->signal->group_exit_code & 0x7f; 2333 break; 2334 case CLD_TRAPPED: 2335 info.si_status = tsk->exit_code & 0x7f; 2336 break; 2337 default: 2338 BUG(); 2339 } 2340 2341 sighand = parent->sighand; 2342 spin_lock_irqsave(&sighand->siglock, flags); 2343 if (sighand->action[SIGCHLD-1].sa.sa_handler != SIG_IGN && 2344 !(sighand->action[SIGCHLD-1].sa.sa_flags & SA_NOCLDSTOP)) 2345 send_signal_locked(SIGCHLD, &info, parent, PIDTYPE_TGID); 2346 /* 2347 * Even if SIGCHLD is not generated, we must wake up wait4 calls. 2348 */ 2349 __wake_up_parent(tsk, parent); 2350 spin_unlock_irqrestore(&sighand->siglock, flags); 2351 } 2352 2353 /* 2354 * This must be called with current->sighand->siglock held. 2355 * 2356 * This should be the path for all ptrace stops. 2357 * We always set current->last_siginfo while stopped here. 2358 * That makes it a way to test a stopped process for 2359 * being ptrace-stopped vs being job-control-stopped. 2360 * 2361 * Returns the signal the ptracer requested the code resume 2362 * with. If the code did not stop because the tracer is gone, 2363 * the stop signal remains unchanged unless clear_code. 2364 */ 2365 static int ptrace_stop(int exit_code, int why, unsigned long message, 2366 kernel_siginfo_t *info) 2367 __releases(¤t->sighand->siglock) 2368 __acquires(¤t->sighand->siglock) 2369 { 2370 bool gstop_done = false; 2371 2372 if (arch_ptrace_stop_needed()) { 2373 /* 2374 * The arch code has something special to do before a 2375 * ptrace stop. This is allowed to block, e.g. for faults 2376 * on user stack pages. We can't keep the siglock while 2377 * calling arch_ptrace_stop, so we must release it now. 2378 * To preserve proper semantics, we must do this before 2379 * any signal bookkeeping like checking group_stop_count. 2380 */ 2381 spin_unlock_irq(¤t->sighand->siglock); 2382 arch_ptrace_stop(); 2383 spin_lock_irq(¤t->sighand->siglock); 2384 } 2385 2386 /* 2387 * After this point ptrace_signal_wake_up or signal_wake_up 2388 * will clear TASK_TRACED if ptrace_unlink happens or a fatal 2389 * signal comes in. Handle previous ptrace_unlinks and fatal 2390 * signals here to prevent ptrace_stop sleeping in schedule. 2391 */ 2392 if (!current->ptrace || __fatal_signal_pending(current)) 2393 return exit_code; 2394 2395 set_special_state(TASK_TRACED); 2396 current->jobctl |= JOBCTL_TRACED; 2397 2398 /* 2399 * We're committing to trapping. TRACED should be visible before 2400 * TRAPPING is cleared; otherwise, the tracer might fail do_wait(). 2401 * Also, transition to TRACED and updates to ->jobctl should be 2402 * atomic with respect to siglock and should be done after the arch 2403 * hook as siglock is released and regrabbed across it. 2404 * 2405 * TRACER TRACEE 2406 * 2407 * ptrace_attach() 2408 * [L] wait_on_bit(JOBCTL_TRAPPING) [S] set_special_state(TRACED) 2409 * do_wait() 2410 * set_current_state() smp_wmb(); 2411 * ptrace_do_wait() 2412 * wait_task_stopped() 2413 * task_stopped_code() 2414 * [L] task_is_traced() [S] task_clear_jobctl_trapping(); 2415 */ 2416 smp_wmb(); 2417 2418 current->ptrace_message = message; 2419 current->last_siginfo = info; 2420 current->exit_code = exit_code; 2421 2422 /* 2423 * If @why is CLD_STOPPED, we're trapping to participate in a group 2424 * stop. Do the bookkeeping. Note that if SIGCONT was delievered 2425 * across siglock relocks since INTERRUPT was scheduled, PENDING 2426 * could be clear now. We act as if SIGCONT is received after 2427 * TASK_TRACED is entered - ignore it. 2428 */ 2429 if (why == CLD_STOPPED && (current->jobctl & JOBCTL_STOP_PENDING)) 2430 gstop_done = task_participate_group_stop(current); 2431 2432 /* any trap clears pending STOP trap, STOP trap clears NOTIFY */ 2433 task_clear_jobctl_pending(current, JOBCTL_TRAP_STOP); 2434 if (info && info->si_code >> 8 == PTRACE_EVENT_STOP) 2435 task_clear_jobctl_pending(current, JOBCTL_TRAP_NOTIFY); 2436 2437 /* entering a trap, clear TRAPPING */ 2438 task_clear_jobctl_trapping(current); 2439 2440 spin_unlock_irq(¤t->sighand->siglock); 2441 read_lock(&tasklist_lock); 2442 /* 2443 * Notify parents of the stop. 2444 * 2445 * While ptraced, there are two parents - the ptracer and 2446 * the real_parent of the group_leader. The ptracer should 2447 * know about every stop while the real parent is only 2448 * interested in the completion of group stop. The states 2449 * for the two don't interact with each other. Notify 2450 * separately unless they're gonna be duplicates. 2451 */ 2452 if (current->ptrace) 2453 do_notify_parent_cldstop(current, true, why); 2454 if (gstop_done && (!current->ptrace || ptrace_reparented(current))) 2455 do_notify_parent_cldstop(current, false, why); 2456 2457 /* 2458 * The previous do_notify_parent_cldstop() invocation woke ptracer. 2459 * One a PREEMPTION kernel this can result in preemption requirement 2460 * which will be fulfilled after read_unlock() and the ptracer will be 2461 * put on the CPU. 2462 * The ptracer is in wait_task_inactive(, __TASK_TRACED) waiting for 2463 * this task wait in schedule(). If this task gets preempted then it 2464 * remains enqueued on the runqueue. The ptracer will observe this and 2465 * then sleep for a delay of one HZ tick. In the meantime this task 2466 * gets scheduled, enters schedule() and will wait for the ptracer. 2467 * 2468 * This preemption point is not bad from a correctness point of 2469 * view but extends the runtime by one HZ tick time due to the 2470 * ptracer's sleep. The preempt-disable section ensures that there 2471 * will be no preemption between unlock and schedule() and so 2472 * improving the performance since the ptracer will observe that 2473 * the tracee is scheduled out once it gets on the CPU. 2474 * 2475 * On PREEMPT_RT locking tasklist_lock does not disable preemption. 2476 * Therefore the task can be preempted after do_notify_parent_cldstop() 2477 * before unlocking tasklist_lock so there is no benefit in doing this. 2478 * 2479 * In fact disabling preemption is harmful on PREEMPT_RT because 2480 * the spinlock_t in cgroup_enter_frozen() must not be acquired 2481 * with preemption disabled due to the 'sleeping' spinlock 2482 * substitution of RT. 2483 */ 2484 if (!IS_ENABLED(CONFIG_PREEMPT_RT)) 2485 preempt_disable(); 2486 read_unlock(&tasklist_lock); 2487 cgroup_enter_frozen(); 2488 if (!IS_ENABLED(CONFIG_PREEMPT_RT)) 2489 preempt_enable_no_resched(); 2490 schedule(); 2491 cgroup_leave_frozen(true); 2492 2493 /* 2494 * We are back. Now reacquire the siglock before touching 2495 * last_siginfo, so that we are sure to have synchronized with 2496 * any signal-sending on another CPU that wants to examine it. 2497 */ 2498 spin_lock_irq(¤t->sighand->siglock); 2499 exit_code = current->exit_code; 2500 current->last_siginfo = NULL; 2501 current->ptrace_message = 0; 2502 current->exit_code = 0; 2503 2504 /* LISTENING can be set only during STOP traps, clear it */ 2505 current->jobctl &= ~(JOBCTL_LISTENING | JOBCTL_PTRACE_FROZEN); 2506 2507 /* 2508 * Queued signals ignored us while we were stopped for tracing. 2509 * So check for any that we should take before resuming user mode. 2510 * This sets TIF_SIGPENDING, but never clears it. 2511 */ 2512 recalc_sigpending_tsk(current); 2513 return exit_code; 2514 } 2515 2516 static int ptrace_do_notify(int signr, int exit_code, int why, unsigned long message) 2517 { 2518 kernel_siginfo_t info; 2519 2520 clear_siginfo(&info); 2521 info.si_signo = signr; 2522 info.si_code = exit_code; 2523 info.si_pid = task_pid_vnr(current); 2524 info.si_uid = from_kuid_munged(current_user_ns(), current_uid()); 2525 2526 /* Let the debugger run. */ 2527 return ptrace_stop(exit_code, why, message, &info); 2528 } 2529 2530 int ptrace_notify(int exit_code, unsigned long message) 2531 { 2532 int signr; 2533 2534 BUG_ON((exit_code & (0x7f | ~0xffff)) != SIGTRAP); 2535 if (unlikely(task_work_pending(current))) 2536 task_work_run(); 2537 2538 spin_lock_irq(¤t->sighand->siglock); 2539 signr = ptrace_do_notify(SIGTRAP, exit_code, CLD_TRAPPED, message); 2540 spin_unlock_irq(¤t->sighand->siglock); 2541 return signr; 2542 } 2543 2544 /** 2545 * do_signal_stop - handle group stop for SIGSTOP and other stop signals 2546 * @signr: signr causing group stop if initiating 2547 * 2548 * If %JOBCTL_STOP_PENDING is not set yet, initiate group stop with @signr 2549 * and participate in it. If already set, participate in the existing 2550 * group stop. If participated in a group stop (and thus slept), %true is 2551 * returned with siglock released. 2552 * 2553 * If ptraced, this function doesn't handle stop itself. Instead, 2554 * %JOBCTL_TRAP_STOP is scheduled and %false is returned with siglock 2555 * untouched. The caller must ensure that INTERRUPT trap handling takes 2556 * places afterwards. 2557 * 2558 * CONTEXT: 2559 * Must be called with @current->sighand->siglock held, which is released 2560 * on %true return. 2561 * 2562 * RETURNS: 2563 * %false if group stop is already cancelled or ptrace trap is scheduled. 2564 * %true if participated in group stop. 2565 */ 2566 static bool do_signal_stop(int signr) 2567 __releases(¤t->sighand->siglock) 2568 { 2569 struct signal_struct *sig = current->signal; 2570 2571 if (!(current->jobctl & JOBCTL_STOP_PENDING)) { 2572 unsigned long gstop = JOBCTL_STOP_PENDING | JOBCTL_STOP_CONSUME; 2573 struct task_struct *t; 2574 2575 /* signr will be recorded in task->jobctl for retries */ 2576 WARN_ON_ONCE(signr & ~JOBCTL_STOP_SIGMASK); 2577 2578 if (!likely(current->jobctl & JOBCTL_STOP_DEQUEUED) || 2579 unlikely(sig->flags & SIGNAL_GROUP_EXIT) || 2580 unlikely(sig->group_exec_task)) 2581 return false; 2582 /* 2583 * There is no group stop already in progress. We must 2584 * initiate one now. 2585 * 2586 * While ptraced, a task may be resumed while group stop is 2587 * still in effect and then receive a stop signal and 2588 * initiate another group stop. This deviates from the 2589 * usual behavior as two consecutive stop signals can't 2590 * cause two group stops when !ptraced. That is why we 2591 * also check !task_is_stopped(t) below. 2592 * 2593 * The condition can be distinguished by testing whether 2594 * SIGNAL_STOP_STOPPED is already set. Don't generate 2595 * group_exit_code in such case. 2596 * 2597 * This is not necessary for SIGNAL_STOP_CONTINUED because 2598 * an intervening stop signal is required to cause two 2599 * continued events regardless of ptrace. 2600 */ 2601 if (!(sig->flags & SIGNAL_STOP_STOPPED)) 2602 sig->group_exit_code = signr; 2603 2604 sig->group_stop_count = 0; 2605 if (task_set_jobctl_pending(current, signr | gstop)) 2606 sig->group_stop_count++; 2607 2608 for_other_threads(current, t) { 2609 /* 2610 * Setting state to TASK_STOPPED for a group 2611 * stop is always done with the siglock held, 2612 * so this check has no races. 2613 */ 2614 if (!task_is_stopped(t) && 2615 task_set_jobctl_pending(t, signr | gstop)) { 2616 sig->group_stop_count++; 2617 if (likely(!(t->ptrace & PT_SEIZED))) 2618 signal_wake_up(t, 0); 2619 else 2620 ptrace_trap_notify(t); 2621 } 2622 } 2623 } 2624 2625 if (likely(!current->ptrace)) { 2626 int notify = 0; 2627 2628 /* 2629 * If there are no other threads in the group, or if there 2630 * is a group stop in progress and we are the last to stop, 2631 * report to the parent. 2632 */ 2633 if (task_participate_group_stop(current)) 2634 notify = CLD_STOPPED; 2635 2636 current->jobctl |= JOBCTL_STOPPED; 2637 set_special_state(TASK_STOPPED); 2638 spin_unlock_irq(¤t->sighand->siglock); 2639 2640 /* 2641 * Notify the parent of the group stop completion. Because 2642 * we're not holding either the siglock or tasklist_lock 2643 * here, ptracer may attach inbetween; however, this is for 2644 * group stop and should always be delivered to the real 2645 * parent of the group leader. The new ptracer will get 2646 * its notification when this task transitions into 2647 * TASK_TRACED. 2648 */ 2649 if (notify) { 2650 read_lock(&tasklist_lock); 2651 do_notify_parent_cldstop(current, false, notify); 2652 read_unlock(&tasklist_lock); 2653 } 2654 2655 /* Now we don't run again until woken by SIGCONT or SIGKILL */ 2656 cgroup_enter_frozen(); 2657 schedule(); 2658 return true; 2659 } else { 2660 /* 2661 * While ptraced, group stop is handled by STOP trap. 2662 * Schedule it and let the caller deal with it. 2663 */ 2664 task_set_jobctl_pending(current, JOBCTL_TRAP_STOP); 2665 return false; 2666 } 2667 } 2668 2669 /** 2670 * do_jobctl_trap - take care of ptrace jobctl traps 2671 * 2672 * When PT_SEIZED, it's used for both group stop and explicit 2673 * SEIZE/INTERRUPT traps. Both generate PTRACE_EVENT_STOP trap with 2674 * accompanying siginfo. If stopped, lower eight bits of exit_code contain 2675 * the stop signal; otherwise, %SIGTRAP. 2676 * 2677 * When !PT_SEIZED, it's used only for group stop trap with stop signal 2678 * number as exit_code and no siginfo. 2679 * 2680 * CONTEXT: 2681 * Must be called with @current->sighand->siglock held, which may be 2682 * released and re-acquired before returning with intervening sleep. 2683 */ 2684 static void do_jobctl_trap(void) 2685 { 2686 struct signal_struct *signal = current->signal; 2687 int signr = current->jobctl & JOBCTL_STOP_SIGMASK; 2688 2689 if (current->ptrace & PT_SEIZED) { 2690 if (!signal->group_stop_count && 2691 !(signal->flags & SIGNAL_STOP_STOPPED)) 2692 signr = SIGTRAP; 2693 WARN_ON_ONCE(!signr); 2694 ptrace_do_notify(signr, signr | (PTRACE_EVENT_STOP << 8), 2695 CLD_STOPPED, 0); 2696 } else { 2697 WARN_ON_ONCE(!signr); 2698 ptrace_stop(signr, CLD_STOPPED, 0, NULL); 2699 } 2700 } 2701 2702 /** 2703 * do_freezer_trap - handle the freezer jobctl trap 2704 * 2705 * Puts the task into frozen state, if only the task is not about to quit. 2706 * In this case it drops JOBCTL_TRAP_FREEZE. 2707 * 2708 * CONTEXT: 2709 * Must be called with @current->sighand->siglock held, 2710 * which is always released before returning. 2711 */ 2712 static void do_freezer_trap(void) 2713 __releases(¤t->sighand->siglock) 2714 { 2715 /* 2716 * If there are other trap bits pending except JOBCTL_TRAP_FREEZE, 2717 * let's make another loop to give it a chance to be handled. 2718 * In any case, we'll return back. 2719 */ 2720 if ((current->jobctl & (JOBCTL_PENDING_MASK | JOBCTL_TRAP_FREEZE)) != 2721 JOBCTL_TRAP_FREEZE) { 2722 spin_unlock_irq(¤t->sighand->siglock); 2723 return; 2724 } 2725 2726 /* 2727 * Now we're sure that there is no pending fatal signal and no 2728 * pending traps. Clear TIF_SIGPENDING to not get out of schedule() 2729 * immediately (if there is a non-fatal signal pending), and 2730 * put the task into sleep. 2731 */ 2732 __set_current_state(TASK_INTERRUPTIBLE|TASK_FREEZABLE); 2733 clear_thread_flag(TIF_SIGPENDING); 2734 spin_unlock_irq(¤t->sighand->siglock); 2735 cgroup_enter_frozen(); 2736 schedule(); 2737 2738 /* 2739 * We could've been woken by task_work, run it to clear 2740 * TIF_NOTIFY_SIGNAL. The caller will retry if necessary. 2741 */ 2742 clear_notify_signal(); 2743 if (unlikely(task_work_pending(current))) 2744 task_work_run(); 2745 } 2746 2747 static int ptrace_signal(int signr, kernel_siginfo_t *info, enum pid_type type) 2748 { 2749 /* 2750 * We do not check sig_kernel_stop(signr) but set this marker 2751 * unconditionally because we do not know whether debugger will 2752 * change signr. This flag has no meaning unless we are going 2753 * to stop after return from ptrace_stop(). In this case it will 2754 * be checked in do_signal_stop(), we should only stop if it was 2755 * not cleared by SIGCONT while we were sleeping. See also the 2756 * comment in dequeue_signal(). 2757 */ 2758 current->jobctl |= JOBCTL_STOP_DEQUEUED; 2759 signr = ptrace_stop(signr, CLD_TRAPPED, 0, info); 2760 2761 /* We're back. Did the debugger cancel the sig? */ 2762 if (signr == 0) 2763 return signr; 2764 2765 /* 2766 * Update the siginfo structure if the signal has 2767 * changed. If the debugger wanted something 2768 * specific in the siginfo structure then it should 2769 * have updated *info via PTRACE_SETSIGINFO. 2770 */ 2771 if (signr != info->si_signo) { 2772 clear_siginfo(info); 2773 info->si_signo = signr; 2774 info->si_errno = 0; 2775 info->si_code = SI_USER; 2776 rcu_read_lock(); 2777 info->si_pid = task_pid_vnr(current->parent); 2778 info->si_uid = from_kuid_munged(current_user_ns(), 2779 task_uid(current->parent)); 2780 rcu_read_unlock(); 2781 } 2782 2783 /* If the (new) signal is now blocked, requeue it. */ 2784 if (sigismember(¤t->blocked, signr) || 2785 fatal_signal_pending(current)) { 2786 send_signal_locked(signr, info, current, type); 2787 signr = 0; 2788 } 2789 2790 return signr; 2791 } 2792 2793 static void hide_si_addr_tag_bits(struct ksignal *ksig) 2794 { 2795 switch (siginfo_layout(ksig->sig, ksig->info.si_code)) { 2796 case SIL_FAULT: 2797 case SIL_FAULT_TRAPNO: 2798 case SIL_FAULT_MCEERR: 2799 case SIL_FAULT_BNDERR: 2800 case SIL_FAULT_PKUERR: 2801 case SIL_FAULT_PERF_EVENT: 2802 ksig->info.si_addr = arch_untagged_si_addr( 2803 ksig->info.si_addr, ksig->sig, ksig->info.si_code); 2804 break; 2805 case SIL_KILL: 2806 case SIL_TIMER: 2807 case SIL_POLL: 2808 case SIL_CHLD: 2809 case SIL_RT: 2810 case SIL_SYS: 2811 break; 2812 } 2813 } 2814 2815 bool get_signal(struct ksignal *ksig) 2816 { 2817 struct sighand_struct *sighand = current->sighand; 2818 struct signal_struct *signal = current->signal; 2819 int signr; 2820 2821 clear_notify_signal(); 2822 if (unlikely(task_work_pending(current))) 2823 task_work_run(); 2824 2825 if (!task_sigpending(current)) 2826 return false; 2827 2828 if (unlikely(uprobe_deny_signal())) 2829 return false; 2830 2831 /* 2832 * Do this once, we can't return to user-mode if freezing() == T. 2833 * do_signal_stop() and ptrace_stop() set TASK_STOPPED/TASK_TRACED 2834 * and the freezer handles those states via TASK_FROZEN, thus they 2835 * do not need another check after return. 2836 */ 2837 try_to_freeze(); 2838 2839 relock: 2840 spin_lock_irq(&sighand->siglock); 2841 2842 /* 2843 * Every stopped thread goes here after wakeup. Check to see if 2844 * we should notify the parent, prepare_signal(SIGCONT) encodes 2845 * the CLD_ si_code into SIGNAL_CLD_MASK bits. 2846 */ 2847 if (unlikely(signal->flags & SIGNAL_CLD_MASK)) { 2848 int why; 2849 2850 if (signal->flags & SIGNAL_CLD_CONTINUED) 2851 why = CLD_CONTINUED; 2852 else 2853 why = CLD_STOPPED; 2854 2855 signal->flags &= ~SIGNAL_CLD_MASK; 2856 2857 spin_unlock_irq(&sighand->siglock); 2858 2859 /* 2860 * Notify the parent that we're continuing. This event is 2861 * always per-process and doesn't make whole lot of sense 2862 * for ptracers, who shouldn't consume the state via 2863 * wait(2) either, but, for backward compatibility, notify 2864 * the ptracer of the group leader too unless it's gonna be 2865 * a duplicate. 2866 */ 2867 read_lock(&tasklist_lock); 2868 do_notify_parent_cldstop(current, false, why); 2869 2870 if (ptrace_reparented(current->group_leader)) 2871 do_notify_parent_cldstop(current->group_leader, 2872 true, why); 2873 read_unlock(&tasklist_lock); 2874 2875 goto relock; 2876 } 2877 2878 for (;;) { 2879 struct k_sigaction *ka; 2880 enum pid_type type; 2881 2882 /* Has this task already been marked for death? */ 2883 if ((signal->flags & SIGNAL_GROUP_EXIT) || 2884 signal->group_exec_task) { 2885 signr = SIGKILL; 2886 sigdelset(¤t->pending.signal, SIGKILL); 2887 trace_signal_deliver(SIGKILL, SEND_SIG_NOINFO, 2888 &sighand->action[SIGKILL-1]); 2889 recalc_sigpending(); 2890 /* 2891 * implies do_group_exit() or return to PF_USER_WORKER, 2892 * no need to initialize ksig->info/etc. 2893 */ 2894 goto fatal; 2895 } 2896 2897 if (unlikely(current->jobctl & JOBCTL_STOP_PENDING) && 2898 do_signal_stop(0)) 2899 goto relock; 2900 2901 if (unlikely(current->jobctl & 2902 (JOBCTL_TRAP_MASK | JOBCTL_TRAP_FREEZE))) { 2903 if (current->jobctl & JOBCTL_TRAP_MASK) { 2904 do_jobctl_trap(); 2905 spin_unlock_irq(&sighand->siglock); 2906 } else if (current->jobctl & JOBCTL_TRAP_FREEZE) 2907 do_freezer_trap(); 2908 2909 goto relock; 2910 } 2911 2912 /* 2913 * If the task is leaving the frozen state, let's update 2914 * cgroup counters and reset the frozen bit. 2915 */ 2916 if (unlikely(cgroup_task_frozen(current))) { 2917 spin_unlock_irq(&sighand->siglock); 2918 cgroup_leave_frozen(false); 2919 goto relock; 2920 } 2921 2922 /* 2923 * Signals generated by the execution of an instruction 2924 * need to be delivered before any other pending signals 2925 * so that the instruction pointer in the signal stack 2926 * frame points to the faulting instruction. 2927 */ 2928 type = PIDTYPE_PID; 2929 signr = dequeue_synchronous_signal(&ksig->info); 2930 if (!signr) 2931 signr = dequeue_signal(¤t->blocked, &ksig->info, &type); 2932 2933 if (!signr) 2934 break; /* will return 0 */ 2935 2936 if (unlikely(current->ptrace) && (signr != SIGKILL) && 2937 !(sighand->action[signr -1].sa.sa_flags & SA_IMMUTABLE)) { 2938 signr = ptrace_signal(signr, &ksig->info, type); 2939 if (!signr) 2940 continue; 2941 } 2942 2943 ka = &sighand->action[signr-1]; 2944 2945 /* Trace actually delivered signals. */ 2946 trace_signal_deliver(signr, &ksig->info, ka); 2947 2948 if (ka->sa.sa_handler == SIG_IGN) /* Do nothing. */ 2949 continue; 2950 if (ka->sa.sa_handler != SIG_DFL) { 2951 /* Run the handler. */ 2952 ksig->ka = *ka; 2953 2954 if (ka->sa.sa_flags & SA_ONESHOT) 2955 ka->sa.sa_handler = SIG_DFL; 2956 2957 break; /* will return non-zero "signr" value */ 2958 } 2959 2960 /* 2961 * Now we are doing the default action for this signal. 2962 */ 2963 if (sig_kernel_ignore(signr)) /* Default is nothing. */ 2964 continue; 2965 2966 /* 2967 * Global init gets no signals it doesn't want. 2968 * Container-init gets no signals it doesn't want from same 2969 * container. 2970 * 2971 * Note that if global/container-init sees a sig_kernel_only() 2972 * signal here, the signal must have been generated internally 2973 * or must have come from an ancestor namespace. In either 2974 * case, the signal cannot be dropped. 2975 */ 2976 if (unlikely(signal->flags & SIGNAL_UNKILLABLE) && 2977 !sig_kernel_only(signr)) 2978 continue; 2979 2980 if (sig_kernel_stop(signr)) { 2981 /* 2982 * The default action is to stop all threads in 2983 * the thread group. The job control signals 2984 * do nothing in an orphaned pgrp, but SIGSTOP 2985 * always works. Note that siglock needs to be 2986 * dropped during the call to is_orphaned_pgrp() 2987 * because of lock ordering with tasklist_lock. 2988 * This allows an intervening SIGCONT to be posted. 2989 * We need to check for that and bail out if necessary. 2990 */ 2991 if (signr != SIGSTOP) { 2992 spin_unlock_irq(&sighand->siglock); 2993 2994 /* signals can be posted during this window */ 2995 2996 if (is_current_pgrp_orphaned()) 2997 goto relock; 2998 2999 spin_lock_irq(&sighand->siglock); 3000 } 3001 3002 if (likely(do_signal_stop(signr))) { 3003 /* It released the siglock. */ 3004 goto relock; 3005 } 3006 3007 /* 3008 * We didn't actually stop, due to a race 3009 * with SIGCONT or something like that. 3010 */ 3011 continue; 3012 } 3013 3014 fatal: 3015 spin_unlock_irq(&sighand->siglock); 3016 if (unlikely(cgroup_task_frozen(current))) 3017 cgroup_leave_frozen(true); 3018 3019 /* 3020 * Anything else is fatal, maybe with a core dump. 3021 */ 3022 current->flags |= PF_SIGNALED; 3023 3024 if (sig_kernel_coredump(signr)) { 3025 if (print_fatal_signals) 3026 print_fatal_signal(signr); 3027 proc_coredump_connector(current); 3028 /* 3029 * If it was able to dump core, this kills all 3030 * other threads in the group and synchronizes with 3031 * their demise. If we lost the race with another 3032 * thread getting here, it set group_exit_code 3033 * first and our do_group_exit call below will use 3034 * that value and ignore the one we pass it. 3035 */ 3036 vfs_coredump(&ksig->info); 3037 } 3038 3039 /* 3040 * PF_USER_WORKER threads will catch and exit on fatal signals 3041 * themselves. They have cleanup that must be performed, so we 3042 * cannot call do_exit() on their behalf. Note that ksig won't 3043 * be properly initialized, PF_USER_WORKER's shouldn't use it. 3044 */ 3045 if (current->flags & PF_USER_WORKER) 3046 goto out; 3047 3048 /* 3049 * Death signals, no core dump. 3050 */ 3051 do_group_exit(signr); 3052 /* NOTREACHED */ 3053 } 3054 spin_unlock_irq(&sighand->siglock); 3055 3056 ksig->sig = signr; 3057 3058 if (signr && !(ksig->ka.sa.sa_flags & SA_EXPOSE_TAGBITS)) 3059 hide_si_addr_tag_bits(ksig); 3060 out: 3061 return signr > 0; 3062 } 3063 3064 /** 3065 * signal_delivered - called after signal delivery to update blocked signals 3066 * @ksig: kernel signal struct 3067 * @stepping: nonzero if debugger single-step or block-step in use 3068 * 3069 * This function should be called when a signal has successfully been 3070 * delivered. It updates the blocked signals accordingly (@ksig->ka.sa.sa_mask 3071 * is always blocked), and the signal itself is blocked unless %SA_NODEFER 3072 * is set in @ksig->ka.sa.sa_flags. Tracing is notified. 3073 */ 3074 static void signal_delivered(struct ksignal *ksig, int stepping) 3075 { 3076 sigset_t blocked; 3077 3078 /* A signal was successfully delivered, and the 3079 saved sigmask was stored on the signal frame, 3080 and will be restored by sigreturn. So we can 3081 simply clear the restore sigmask flag. */ 3082 clear_restore_sigmask(); 3083 3084 sigorsets(&blocked, ¤t->blocked, &ksig->ka.sa.sa_mask); 3085 if (!(ksig->ka.sa.sa_flags & SA_NODEFER)) 3086 sigaddset(&blocked, ksig->sig); 3087 set_current_blocked(&blocked); 3088 if (current->sas_ss_flags & SS_AUTODISARM) 3089 sas_ss_reset(current); 3090 if (stepping) 3091 ptrace_notify(SIGTRAP, 0); 3092 } 3093 3094 void signal_setup_done(int failed, struct ksignal *ksig, int stepping) 3095 { 3096 if (failed) 3097 force_sigsegv(ksig->sig); 3098 else 3099 signal_delivered(ksig, stepping); 3100 } 3101 3102 /* 3103 * It could be that complete_signal() picked us to notify about the 3104 * group-wide signal. Other threads should be notified now to take 3105 * the shared signals in @which since we will not. 3106 */ 3107 static void retarget_shared_pending(struct task_struct *tsk, sigset_t *which) 3108 { 3109 sigset_t retarget; 3110 struct task_struct *t; 3111 3112 sigandsets(&retarget, &tsk->signal->shared_pending.signal, which); 3113 if (sigisemptyset(&retarget)) 3114 return; 3115 3116 for_other_threads(tsk, t) { 3117 if (t->flags & PF_EXITING) 3118 continue; 3119 3120 if (!has_pending_signals(&retarget, &t->blocked)) 3121 continue; 3122 /* Remove the signals this thread can handle. */ 3123 sigandsets(&retarget, &retarget, &t->blocked); 3124 3125 if (!task_sigpending(t)) 3126 signal_wake_up(t, 0); 3127 3128 if (sigisemptyset(&retarget)) 3129 break; 3130 } 3131 } 3132 3133 void exit_signals(struct task_struct *tsk) 3134 { 3135 int group_stop = 0; 3136 sigset_t unblocked; 3137 3138 /* 3139 * @tsk is about to have PF_EXITING set - lock out users which 3140 * expect stable threadgroup. 3141 */ 3142 cgroup_threadgroup_change_begin(tsk); 3143 3144 if (thread_group_empty(tsk) || (tsk->signal->flags & SIGNAL_GROUP_EXIT)) { 3145 tsk->flags |= PF_EXITING; 3146 cgroup_threadgroup_change_end(tsk); 3147 return; 3148 } 3149 3150 spin_lock_irq(&tsk->sighand->siglock); 3151 /* 3152 * From now this task is not visible for group-wide signals, 3153 * see wants_signal(), do_signal_stop(). 3154 */ 3155 tsk->flags |= PF_EXITING; 3156 3157 cgroup_threadgroup_change_end(tsk); 3158 3159 if (!task_sigpending(tsk)) 3160 goto out; 3161 3162 unblocked = tsk->blocked; 3163 signotset(&unblocked); 3164 retarget_shared_pending(tsk, &unblocked); 3165 3166 if (unlikely(tsk->jobctl & JOBCTL_STOP_PENDING) && 3167 task_participate_group_stop(tsk)) 3168 group_stop = CLD_STOPPED; 3169 out: 3170 spin_unlock_irq(&tsk->sighand->siglock); 3171 3172 /* 3173 * If group stop has completed, deliver the notification. This 3174 * should always go to the real parent of the group leader. 3175 */ 3176 if (unlikely(group_stop)) { 3177 read_lock(&tasklist_lock); 3178 do_notify_parent_cldstop(tsk, false, group_stop); 3179 read_unlock(&tasklist_lock); 3180 } 3181 } 3182 3183 /* 3184 * System call entry points. 3185 */ 3186 3187 /** 3188 * sys_restart_syscall - restart a system call 3189 */ 3190 SYSCALL_DEFINE0(restart_syscall) 3191 { 3192 struct restart_block *restart = ¤t->restart_block; 3193 return restart->fn(restart); 3194 } 3195 3196 long do_no_restart_syscall(struct restart_block *param) 3197 { 3198 return -EINTR; 3199 } 3200 3201 static void __set_task_blocked(struct task_struct *tsk, const sigset_t *newset) 3202 { 3203 if (task_sigpending(tsk) && !thread_group_empty(tsk)) { 3204 sigset_t newblocked; 3205 /* A set of now blocked but previously unblocked signals. */ 3206 sigandnsets(&newblocked, newset, ¤t->blocked); 3207 retarget_shared_pending(tsk, &newblocked); 3208 } 3209 tsk->blocked = *newset; 3210 recalc_sigpending(); 3211 } 3212 3213 /** 3214 * set_current_blocked - change current->blocked mask 3215 * @newset: new mask 3216 * 3217 * It is wrong to change ->blocked directly, this helper should be used 3218 * to ensure the process can't miss a shared signal we are going to block. 3219 */ 3220 void set_current_blocked(sigset_t *newset) 3221 { 3222 sigdelsetmask(newset, sigmask(SIGKILL) | sigmask(SIGSTOP)); 3223 __set_current_blocked(newset); 3224 } 3225 3226 void __set_current_blocked(const sigset_t *newset) 3227 { 3228 struct task_struct *tsk = current; 3229 3230 /* 3231 * In case the signal mask hasn't changed, there is nothing we need 3232 * to do. The current->blocked shouldn't be modified by other task. 3233 */ 3234 if (sigequalsets(&tsk->blocked, newset)) 3235 return; 3236 3237 spin_lock_irq(&tsk->sighand->siglock); 3238 __set_task_blocked(tsk, newset); 3239 spin_unlock_irq(&tsk->sighand->siglock); 3240 } 3241 3242 /* 3243 * This is also useful for kernel threads that want to temporarily 3244 * (or permanently) block certain signals. 3245 * 3246 * NOTE! Unlike the user-mode sys_sigprocmask(), the kernel 3247 * interface happily blocks "unblockable" signals like SIGKILL 3248 * and friends. 3249 */ 3250 int sigprocmask(int how, sigset_t *set, sigset_t *oldset) 3251 { 3252 struct task_struct *tsk = current; 3253 sigset_t newset; 3254 3255 /* Lockless, only current can change ->blocked, never from irq */ 3256 if (oldset) 3257 *oldset = tsk->blocked; 3258 3259 switch (how) { 3260 case SIG_BLOCK: 3261 sigorsets(&newset, &tsk->blocked, set); 3262 break; 3263 case SIG_UNBLOCK: 3264 sigandnsets(&newset, &tsk->blocked, set); 3265 break; 3266 case SIG_SETMASK: 3267 newset = *set; 3268 break; 3269 default: 3270 return -EINVAL; 3271 } 3272 3273 __set_current_blocked(&newset); 3274 return 0; 3275 } 3276 EXPORT_SYMBOL(sigprocmask); 3277 3278 /* 3279 * The api helps set app-provided sigmasks. 3280 * 3281 * This is useful for syscalls such as ppoll, pselect, io_pgetevents and 3282 * epoll_pwait where a new sigmask is passed from userland for the syscalls. 3283 * 3284 * Note that it does set_restore_sigmask() in advance, so it must be always 3285 * paired with restore_saved_sigmask_unless() before return from syscall. 3286 */ 3287 int set_user_sigmask(const sigset_t __user *umask, size_t sigsetsize) 3288 { 3289 sigset_t kmask; 3290 3291 if (!umask) 3292 return 0; 3293 if (sigsetsize != sizeof(sigset_t)) 3294 return -EINVAL; 3295 if (copy_from_user(&kmask, umask, sizeof(sigset_t))) 3296 return -EFAULT; 3297 3298 set_restore_sigmask(); 3299 current->saved_sigmask = current->blocked; 3300 set_current_blocked(&kmask); 3301 3302 return 0; 3303 } 3304 3305 #ifdef CONFIG_COMPAT 3306 int set_compat_user_sigmask(const compat_sigset_t __user *umask, 3307 size_t sigsetsize) 3308 { 3309 sigset_t kmask; 3310 3311 if (!umask) 3312 return 0; 3313 if (sigsetsize != sizeof(compat_sigset_t)) 3314 return -EINVAL; 3315 if (get_compat_sigset(&kmask, umask)) 3316 return -EFAULT; 3317 3318 set_restore_sigmask(); 3319 current->saved_sigmask = current->blocked; 3320 set_current_blocked(&kmask); 3321 3322 return 0; 3323 } 3324 #endif 3325 3326 /** 3327 * sys_rt_sigprocmask - change the list of currently blocked signals 3328 * @how: whether to add, remove, or set signals 3329 * @nset: stores pending signals 3330 * @oset: previous value of signal mask if non-null 3331 * @sigsetsize: size of sigset_t type 3332 */ 3333 SYSCALL_DEFINE4(rt_sigprocmask, int, how, sigset_t __user *, nset, 3334 sigset_t __user *, oset, size_t, sigsetsize) 3335 { 3336 sigset_t old_set, new_set; 3337 int error; 3338 3339 /* XXX: Don't preclude handling different sized sigset_t's. */ 3340 if (sigsetsize != sizeof(sigset_t)) 3341 return -EINVAL; 3342 3343 old_set = current->blocked; 3344 3345 if (nset) { 3346 if (copy_from_user(&new_set, nset, sizeof(sigset_t))) 3347 return -EFAULT; 3348 sigdelsetmask(&new_set, sigmask(SIGKILL)|sigmask(SIGSTOP)); 3349 3350 error = sigprocmask(how, &new_set, NULL); 3351 if (error) 3352 return error; 3353 } 3354 3355 if (oset) { 3356 if (copy_to_user(oset, &old_set, sizeof(sigset_t))) 3357 return -EFAULT; 3358 } 3359 3360 return 0; 3361 } 3362 3363 #ifdef CONFIG_COMPAT 3364 COMPAT_SYSCALL_DEFINE4(rt_sigprocmask, int, how, compat_sigset_t __user *, nset, 3365 compat_sigset_t __user *, oset, compat_size_t, sigsetsize) 3366 { 3367 sigset_t old_set = current->blocked; 3368 3369 /* XXX: Don't preclude handling different sized sigset_t's. */ 3370 if (sigsetsize != sizeof(sigset_t)) 3371 return -EINVAL; 3372 3373 if (nset) { 3374 sigset_t new_set; 3375 int error; 3376 if (get_compat_sigset(&new_set, nset)) 3377 return -EFAULT; 3378 sigdelsetmask(&new_set, sigmask(SIGKILL)|sigmask(SIGSTOP)); 3379 3380 error = sigprocmask(how, &new_set, NULL); 3381 if (error) 3382 return error; 3383 } 3384 return oset ? put_compat_sigset(oset, &old_set, sizeof(*oset)) : 0; 3385 } 3386 #endif 3387 3388 static void do_sigpending(sigset_t *set) 3389 { 3390 spin_lock_irq(¤t->sighand->siglock); 3391 sigorsets(set, ¤t->pending.signal, 3392 ¤t->signal->shared_pending.signal); 3393 spin_unlock_irq(¤t->sighand->siglock); 3394 3395 /* Outside the lock because only this thread touches it. */ 3396 sigandsets(set, ¤t->blocked, set); 3397 } 3398 3399 /** 3400 * sys_rt_sigpending - examine a pending signal that has been raised 3401 * while blocked 3402 * @uset: stores pending signals 3403 * @sigsetsize: size of sigset_t type or larger 3404 */ 3405 SYSCALL_DEFINE2(rt_sigpending, sigset_t __user *, uset, size_t, sigsetsize) 3406 { 3407 sigset_t set; 3408 3409 if (sigsetsize > sizeof(*uset)) 3410 return -EINVAL; 3411 3412 do_sigpending(&set); 3413 3414 if (copy_to_user(uset, &set, sigsetsize)) 3415 return -EFAULT; 3416 3417 return 0; 3418 } 3419 3420 #ifdef CONFIG_COMPAT 3421 COMPAT_SYSCALL_DEFINE2(rt_sigpending, compat_sigset_t __user *, uset, 3422 compat_size_t, sigsetsize) 3423 { 3424 sigset_t set; 3425 3426 if (sigsetsize > sizeof(*uset)) 3427 return -EINVAL; 3428 3429 do_sigpending(&set); 3430 3431 return put_compat_sigset(uset, &set, sigsetsize); 3432 } 3433 #endif 3434 3435 static const struct { 3436 unsigned char limit, layout; 3437 } sig_sicodes[] = { 3438 [SIGILL] = { NSIGILL, SIL_FAULT }, 3439 [SIGFPE] = { NSIGFPE, SIL_FAULT }, 3440 [SIGSEGV] = { NSIGSEGV, SIL_FAULT }, 3441 [SIGBUS] = { NSIGBUS, SIL_FAULT }, 3442 [SIGTRAP] = { NSIGTRAP, SIL_FAULT }, 3443 #if defined(SIGEMT) 3444 [SIGEMT] = { NSIGEMT, SIL_FAULT }, 3445 #endif 3446 [SIGCHLD] = { NSIGCHLD, SIL_CHLD }, 3447 [SIGPOLL] = { NSIGPOLL, SIL_POLL }, 3448 [SIGSYS] = { NSIGSYS, SIL_SYS }, 3449 }; 3450 3451 static bool known_siginfo_layout(unsigned sig, int si_code) 3452 { 3453 if (si_code == SI_KERNEL) 3454 return true; 3455 else if ((si_code > SI_USER)) { 3456 if (sig_specific_sicodes(sig)) { 3457 if (si_code <= sig_sicodes[sig].limit) 3458 return true; 3459 } 3460 else if (si_code <= NSIGPOLL) 3461 return true; 3462 } 3463 else if (si_code >= SI_DETHREAD) 3464 return true; 3465 else if (si_code == SI_ASYNCNL) 3466 return true; 3467 return false; 3468 } 3469 3470 enum siginfo_layout siginfo_layout(unsigned sig, int si_code) 3471 { 3472 enum siginfo_layout layout = SIL_KILL; 3473 if ((si_code > SI_USER) && (si_code < SI_KERNEL)) { 3474 if ((sig < ARRAY_SIZE(sig_sicodes)) && 3475 (si_code <= sig_sicodes[sig].limit)) { 3476 layout = sig_sicodes[sig].layout; 3477 /* Handle the exceptions */ 3478 if ((sig == SIGBUS) && 3479 (si_code >= BUS_MCEERR_AR) && (si_code <= BUS_MCEERR_AO)) 3480 layout = SIL_FAULT_MCEERR; 3481 else if ((sig == SIGSEGV) && (si_code == SEGV_BNDERR)) 3482 layout = SIL_FAULT_BNDERR; 3483 #ifdef SEGV_PKUERR 3484 else if ((sig == SIGSEGV) && (si_code == SEGV_PKUERR)) 3485 layout = SIL_FAULT_PKUERR; 3486 #endif 3487 else if ((sig == SIGTRAP) && (si_code == TRAP_PERF)) 3488 layout = SIL_FAULT_PERF_EVENT; 3489 else if (IS_ENABLED(CONFIG_SPARC) && 3490 (sig == SIGILL) && (si_code == ILL_ILLTRP)) 3491 layout = SIL_FAULT_TRAPNO; 3492 else if (IS_ENABLED(CONFIG_ALPHA) && 3493 ((sig == SIGFPE) || 3494 ((sig == SIGTRAP) && (si_code == TRAP_UNK)))) 3495 layout = SIL_FAULT_TRAPNO; 3496 } 3497 else if (si_code <= NSIGPOLL) 3498 layout = SIL_POLL; 3499 } else { 3500 if (si_code == SI_TIMER) 3501 layout = SIL_TIMER; 3502 else if (si_code == SI_SIGIO) 3503 layout = SIL_POLL; 3504 else if (si_code < 0) 3505 layout = SIL_RT; 3506 } 3507 return layout; 3508 } 3509 3510 static inline char __user *si_expansion(const siginfo_t __user *info) 3511 { 3512 return ((char __user *)info) + sizeof(struct kernel_siginfo); 3513 } 3514 3515 int copy_siginfo_to_user(siginfo_t __user *to, const kernel_siginfo_t *from) 3516 { 3517 char __user *expansion = si_expansion(to); 3518 if (copy_to_user(to, from , sizeof(struct kernel_siginfo))) 3519 return -EFAULT; 3520 if (clear_user(expansion, SI_EXPANSION_SIZE)) 3521 return -EFAULT; 3522 return 0; 3523 } 3524 3525 static int post_copy_siginfo_from_user(kernel_siginfo_t *info, 3526 const siginfo_t __user *from) 3527 { 3528 if (unlikely(!known_siginfo_layout(info->si_signo, info->si_code))) { 3529 char __user *expansion = si_expansion(from); 3530 char buf[SI_EXPANSION_SIZE]; 3531 int i; 3532 /* 3533 * An unknown si_code might need more than 3534 * sizeof(struct kernel_siginfo) bytes. Verify all of the 3535 * extra bytes are 0. This guarantees copy_siginfo_to_user 3536 * will return this data to userspace exactly. 3537 */ 3538 if (copy_from_user(&buf, expansion, SI_EXPANSION_SIZE)) 3539 return -EFAULT; 3540 for (i = 0; i < SI_EXPANSION_SIZE; i++) { 3541 if (buf[i] != 0) 3542 return -E2BIG; 3543 } 3544 } 3545 return 0; 3546 } 3547 3548 static int __copy_siginfo_from_user(int signo, kernel_siginfo_t *to, 3549 const siginfo_t __user *from) 3550 { 3551 if (copy_from_user(to, from, sizeof(struct kernel_siginfo))) 3552 return -EFAULT; 3553 to->si_signo = signo; 3554 return post_copy_siginfo_from_user(to, from); 3555 } 3556 3557 int copy_siginfo_from_user(kernel_siginfo_t *to, const siginfo_t __user *from) 3558 { 3559 if (copy_from_user(to, from, sizeof(struct kernel_siginfo))) 3560 return -EFAULT; 3561 return post_copy_siginfo_from_user(to, from); 3562 } 3563 3564 #ifdef CONFIG_COMPAT 3565 /** 3566 * copy_siginfo_to_external32 - copy a kernel siginfo into a compat user siginfo 3567 * @to: compat siginfo destination 3568 * @from: kernel siginfo source 3569 * 3570 * Note: This function does not work properly for the SIGCHLD on x32, but 3571 * fortunately it doesn't have to. The only valid callers for this function are 3572 * copy_siginfo_to_user32, which is overriden for x32 and the coredump code. 3573 * The latter does not care because SIGCHLD will never cause a coredump. 3574 */ 3575 void copy_siginfo_to_external32(struct compat_siginfo *to, 3576 const struct kernel_siginfo *from) 3577 { 3578 memset(to, 0, sizeof(*to)); 3579 3580 to->si_signo = from->si_signo; 3581 to->si_errno = from->si_errno; 3582 to->si_code = from->si_code; 3583 switch(siginfo_layout(from->si_signo, from->si_code)) { 3584 case SIL_KILL: 3585 to->si_pid = from->si_pid; 3586 to->si_uid = from->si_uid; 3587 break; 3588 case SIL_TIMER: 3589 to->si_tid = from->si_tid; 3590 to->si_overrun = from->si_overrun; 3591 to->si_int = from->si_int; 3592 break; 3593 case SIL_POLL: 3594 to->si_band = from->si_band; 3595 to->si_fd = from->si_fd; 3596 break; 3597 case SIL_FAULT: 3598 to->si_addr = ptr_to_compat(from->si_addr); 3599 break; 3600 case SIL_FAULT_TRAPNO: 3601 to->si_addr = ptr_to_compat(from->si_addr); 3602 to->si_trapno = from->si_trapno; 3603 break; 3604 case SIL_FAULT_MCEERR: 3605 to->si_addr = ptr_to_compat(from->si_addr); 3606 to->si_addr_lsb = from->si_addr_lsb; 3607 break; 3608 case SIL_FAULT_BNDERR: 3609 to->si_addr = ptr_to_compat(from->si_addr); 3610 to->si_lower = ptr_to_compat(from->si_lower); 3611 to->si_upper = ptr_to_compat(from->si_upper); 3612 break; 3613 case SIL_FAULT_PKUERR: 3614 to->si_addr = ptr_to_compat(from->si_addr); 3615 to->si_pkey = from->si_pkey; 3616 break; 3617 case SIL_FAULT_PERF_EVENT: 3618 to->si_addr = ptr_to_compat(from->si_addr); 3619 to->si_perf_data = from->si_perf_data; 3620 to->si_perf_type = from->si_perf_type; 3621 to->si_perf_flags = from->si_perf_flags; 3622 break; 3623 case SIL_CHLD: 3624 to->si_pid = from->si_pid; 3625 to->si_uid = from->si_uid; 3626 to->si_status = from->si_status; 3627 to->si_utime = from->si_utime; 3628 to->si_stime = from->si_stime; 3629 break; 3630 case SIL_RT: 3631 to->si_pid = from->si_pid; 3632 to->si_uid = from->si_uid; 3633 to->si_int = from->si_int; 3634 break; 3635 case SIL_SYS: 3636 to->si_call_addr = ptr_to_compat(from->si_call_addr); 3637 to->si_syscall = from->si_syscall; 3638 to->si_arch = from->si_arch; 3639 break; 3640 } 3641 } 3642 3643 int __copy_siginfo_to_user32(struct compat_siginfo __user *to, 3644 const struct kernel_siginfo *from) 3645 { 3646 struct compat_siginfo new; 3647 3648 copy_siginfo_to_external32(&new, from); 3649 if (copy_to_user(to, &new, sizeof(struct compat_siginfo))) 3650 return -EFAULT; 3651 return 0; 3652 } 3653 3654 static int post_copy_siginfo_from_user32(kernel_siginfo_t *to, 3655 const struct compat_siginfo *from) 3656 { 3657 clear_siginfo(to); 3658 to->si_signo = from->si_signo; 3659 to->si_errno = from->si_errno; 3660 to->si_code = from->si_code; 3661 switch(siginfo_layout(from->si_signo, from->si_code)) { 3662 case SIL_KILL: 3663 to->si_pid = from->si_pid; 3664 to->si_uid = from->si_uid; 3665 break; 3666 case SIL_TIMER: 3667 to->si_tid = from->si_tid; 3668 to->si_overrun = from->si_overrun; 3669 to->si_int = from->si_int; 3670 break; 3671 case SIL_POLL: 3672 to->si_band = from->si_band; 3673 to->si_fd = from->si_fd; 3674 break; 3675 case SIL_FAULT: 3676 to->si_addr = compat_ptr(from->si_addr); 3677 break; 3678 case SIL_FAULT_TRAPNO: 3679 to->si_addr = compat_ptr(from->si_addr); 3680 to->si_trapno = from->si_trapno; 3681 break; 3682 case SIL_FAULT_MCEERR: 3683 to->si_addr = compat_ptr(from->si_addr); 3684 to->si_addr_lsb = from->si_addr_lsb; 3685 break; 3686 case SIL_FAULT_BNDERR: 3687 to->si_addr = compat_ptr(from->si_addr); 3688 to->si_lower = compat_ptr(from->si_lower); 3689 to->si_upper = compat_ptr(from->si_upper); 3690 break; 3691 case SIL_FAULT_PKUERR: 3692 to->si_addr = compat_ptr(from->si_addr); 3693 to->si_pkey = from->si_pkey; 3694 break; 3695 case SIL_FAULT_PERF_EVENT: 3696 to->si_addr = compat_ptr(from->si_addr); 3697 to->si_perf_data = from->si_perf_data; 3698 to->si_perf_type = from->si_perf_type; 3699 to->si_perf_flags = from->si_perf_flags; 3700 break; 3701 case SIL_CHLD: 3702 to->si_pid = from->si_pid; 3703 to->si_uid = from->si_uid; 3704 to->si_status = from->si_status; 3705 #ifdef CONFIG_X86_X32_ABI 3706 if (in_x32_syscall()) { 3707 to->si_utime = from->_sifields._sigchld_x32._utime; 3708 to->si_stime = from->_sifields._sigchld_x32._stime; 3709 } else 3710 #endif 3711 { 3712 to->si_utime = from->si_utime; 3713 to->si_stime = from->si_stime; 3714 } 3715 break; 3716 case SIL_RT: 3717 to->si_pid = from->si_pid; 3718 to->si_uid = from->si_uid; 3719 to->si_int = from->si_int; 3720 break; 3721 case SIL_SYS: 3722 to->si_call_addr = compat_ptr(from->si_call_addr); 3723 to->si_syscall = from->si_syscall; 3724 to->si_arch = from->si_arch; 3725 break; 3726 } 3727 return 0; 3728 } 3729 3730 static int __copy_siginfo_from_user32(int signo, struct kernel_siginfo *to, 3731 const struct compat_siginfo __user *ufrom) 3732 { 3733 struct compat_siginfo from; 3734 3735 if (copy_from_user(&from, ufrom, sizeof(struct compat_siginfo))) 3736 return -EFAULT; 3737 3738 from.si_signo = signo; 3739 return post_copy_siginfo_from_user32(to, &from); 3740 } 3741 3742 int copy_siginfo_from_user32(struct kernel_siginfo *to, 3743 const struct compat_siginfo __user *ufrom) 3744 { 3745 struct compat_siginfo from; 3746 3747 if (copy_from_user(&from, ufrom, sizeof(struct compat_siginfo))) 3748 return -EFAULT; 3749 3750 return post_copy_siginfo_from_user32(to, &from); 3751 } 3752 #endif /* CONFIG_COMPAT */ 3753 3754 /** 3755 * do_sigtimedwait - wait for queued signals specified in @which 3756 * @which: queued signals to wait for 3757 * @info: if non-null, the signal's siginfo is returned here 3758 * @ts: upper bound on process time suspension 3759 */ 3760 static int do_sigtimedwait(const sigset_t *which, kernel_siginfo_t *info, 3761 const struct timespec64 *ts) 3762 { 3763 ktime_t *to = NULL, timeout = KTIME_MAX; 3764 struct task_struct *tsk = current; 3765 sigset_t mask = *which; 3766 enum pid_type type; 3767 int sig, ret = 0; 3768 3769 if (ts) { 3770 if (!timespec64_valid(ts)) 3771 return -EINVAL; 3772 timeout = timespec64_to_ktime(*ts); 3773 to = &timeout; 3774 } 3775 3776 /* 3777 * Invert the set of allowed signals to get those we want to block. 3778 */ 3779 sigdelsetmask(&mask, sigmask(SIGKILL) | sigmask(SIGSTOP)); 3780 signotset(&mask); 3781 3782 spin_lock_irq(&tsk->sighand->siglock); 3783 sig = dequeue_signal(&mask, info, &type); 3784 if (!sig && timeout) { 3785 /* 3786 * None ready, temporarily unblock those we're interested 3787 * while we are sleeping in so that we'll be awakened when 3788 * they arrive. Unblocking is always fine, we can avoid 3789 * set_current_blocked(). 3790 */ 3791 tsk->real_blocked = tsk->blocked; 3792 sigandsets(&tsk->blocked, &tsk->blocked, &mask); 3793 recalc_sigpending(); 3794 spin_unlock_irq(&tsk->sighand->siglock); 3795 3796 __set_current_state(TASK_INTERRUPTIBLE|TASK_FREEZABLE); 3797 ret = schedule_hrtimeout_range(to, tsk->timer_slack_ns, 3798 HRTIMER_MODE_REL); 3799 spin_lock_irq(&tsk->sighand->siglock); 3800 __set_task_blocked(tsk, &tsk->real_blocked); 3801 sigemptyset(&tsk->real_blocked); 3802 sig = dequeue_signal(&mask, info, &type); 3803 } 3804 spin_unlock_irq(&tsk->sighand->siglock); 3805 3806 if (sig) 3807 return sig; 3808 return ret ? -EINTR : -EAGAIN; 3809 } 3810 3811 /** 3812 * sys_rt_sigtimedwait - synchronously wait for queued signals specified 3813 * in @uthese 3814 * @uthese: queued signals to wait for 3815 * @uinfo: if non-null, the signal's siginfo is returned here 3816 * @uts: upper bound on process time suspension 3817 * @sigsetsize: size of sigset_t type 3818 */ 3819 SYSCALL_DEFINE4(rt_sigtimedwait, const sigset_t __user *, uthese, 3820 siginfo_t __user *, uinfo, 3821 const struct __kernel_timespec __user *, uts, 3822 size_t, sigsetsize) 3823 { 3824 sigset_t these; 3825 struct timespec64 ts; 3826 kernel_siginfo_t info; 3827 int ret; 3828 3829 /* XXX: Don't preclude handling different sized sigset_t's. */ 3830 if (sigsetsize != sizeof(sigset_t)) 3831 return -EINVAL; 3832 3833 if (copy_from_user(&these, uthese, sizeof(these))) 3834 return -EFAULT; 3835 3836 if (uts) { 3837 if (get_timespec64(&ts, uts)) 3838 return -EFAULT; 3839 } 3840 3841 ret = do_sigtimedwait(&these, &info, uts ? &ts : NULL); 3842 3843 if (ret > 0 && uinfo) { 3844 if (copy_siginfo_to_user(uinfo, &info)) 3845 ret = -EFAULT; 3846 } 3847 3848 return ret; 3849 } 3850 3851 #ifdef CONFIG_COMPAT_32BIT_TIME 3852 SYSCALL_DEFINE4(rt_sigtimedwait_time32, const sigset_t __user *, uthese, 3853 siginfo_t __user *, uinfo, 3854 const struct old_timespec32 __user *, uts, 3855 size_t, sigsetsize) 3856 { 3857 sigset_t these; 3858 struct timespec64 ts; 3859 kernel_siginfo_t info; 3860 int ret; 3861 3862 if (sigsetsize != sizeof(sigset_t)) 3863 return -EINVAL; 3864 3865 if (copy_from_user(&these, uthese, sizeof(these))) 3866 return -EFAULT; 3867 3868 if (uts) { 3869 if (get_old_timespec32(&ts, uts)) 3870 return -EFAULT; 3871 } 3872 3873 ret = do_sigtimedwait(&these, &info, uts ? &ts : NULL); 3874 3875 if (ret > 0 && uinfo) { 3876 if (copy_siginfo_to_user(uinfo, &info)) 3877 ret = -EFAULT; 3878 } 3879 3880 return ret; 3881 } 3882 #endif 3883 3884 #ifdef CONFIG_COMPAT 3885 COMPAT_SYSCALL_DEFINE4(rt_sigtimedwait_time64, compat_sigset_t __user *, uthese, 3886 struct compat_siginfo __user *, uinfo, 3887 struct __kernel_timespec __user *, uts, compat_size_t, sigsetsize) 3888 { 3889 sigset_t s; 3890 struct timespec64 t; 3891 kernel_siginfo_t info; 3892 long ret; 3893 3894 if (sigsetsize != sizeof(sigset_t)) 3895 return -EINVAL; 3896 3897 if (get_compat_sigset(&s, uthese)) 3898 return -EFAULT; 3899 3900 if (uts) { 3901 if (get_timespec64(&t, uts)) 3902 return -EFAULT; 3903 } 3904 3905 ret = do_sigtimedwait(&s, &info, uts ? &t : NULL); 3906 3907 if (ret > 0 && uinfo) { 3908 if (copy_siginfo_to_user32(uinfo, &info)) 3909 ret = -EFAULT; 3910 } 3911 3912 return ret; 3913 } 3914 3915 #ifdef CONFIG_COMPAT_32BIT_TIME 3916 COMPAT_SYSCALL_DEFINE4(rt_sigtimedwait_time32, compat_sigset_t __user *, uthese, 3917 struct compat_siginfo __user *, uinfo, 3918 struct old_timespec32 __user *, uts, compat_size_t, sigsetsize) 3919 { 3920 sigset_t s; 3921 struct timespec64 t; 3922 kernel_siginfo_t info; 3923 long ret; 3924 3925 if (sigsetsize != sizeof(sigset_t)) 3926 return -EINVAL; 3927 3928 if (get_compat_sigset(&s, uthese)) 3929 return -EFAULT; 3930 3931 if (uts) { 3932 if (get_old_timespec32(&t, uts)) 3933 return -EFAULT; 3934 } 3935 3936 ret = do_sigtimedwait(&s, &info, uts ? &t : NULL); 3937 3938 if (ret > 0 && uinfo) { 3939 if (copy_siginfo_to_user32(uinfo, &info)) 3940 ret = -EFAULT; 3941 } 3942 3943 return ret; 3944 } 3945 #endif 3946 #endif 3947 3948 static void prepare_kill_siginfo(int sig, struct kernel_siginfo *info, 3949 enum pid_type type) 3950 { 3951 clear_siginfo(info); 3952 info->si_signo = sig; 3953 info->si_errno = 0; 3954 info->si_code = (type == PIDTYPE_PID) ? SI_TKILL : SI_USER; 3955 info->si_pid = task_tgid_vnr(current); 3956 info->si_uid = from_kuid_munged(current_user_ns(), current_uid()); 3957 } 3958 3959 /* 3960 * Not even root can pretend to send SI_FROMKERNEL() signals. 3961 * Nor can they impersonate kill()/tgkill(), which have si_pid/uid 3962 */ 3963 static bool si_code_reserved_to_kernel(int si_code) 3964 { 3965 return si_code >= 0 || si_code == SI_TKILL; 3966 } 3967 3968 /** 3969 * sys_kill - send a signal to a process 3970 * @pid: the PID of the process 3971 * @sig: signal to be sent 3972 */ 3973 SYSCALL_DEFINE2(kill, pid_t, pid, int, sig) 3974 { 3975 return kill_something_info(sig, SEND_SIG_NOINFO, pid); 3976 } 3977 3978 /* 3979 * Verify that the signaler and signalee either are in the same pid namespace 3980 * or that the signaler's pid namespace is an ancestor of the signalee's pid 3981 * namespace. 3982 */ 3983 static bool access_pidfd_pidns(struct pid *pid) 3984 { 3985 struct pid_namespace *active = task_active_pid_ns(current); 3986 struct pid_namespace *p = ns_of_pid(pid); 3987 3988 for (;;) { 3989 if (!p) 3990 return false; 3991 if (p == active) 3992 break; 3993 p = p->parent; 3994 } 3995 3996 return true; 3997 } 3998 3999 static int copy_siginfo_from_user_any(kernel_siginfo_t *kinfo, 4000 siginfo_t __user *info) 4001 { 4002 #ifdef CONFIG_COMPAT 4003 /* 4004 * Avoid hooking up compat syscalls and instead handle necessary 4005 * conversions here. Note, this is a stop-gap measure and should not be 4006 * considered a generic solution. 4007 */ 4008 if (in_compat_syscall()) 4009 return copy_siginfo_from_user32( 4010 kinfo, (struct compat_siginfo __user *)info); 4011 #endif 4012 return copy_siginfo_from_user(kinfo, info); 4013 } 4014 4015 static struct pid *pidfd_to_pid(const struct file *file) 4016 { 4017 struct pid *pid; 4018 4019 pid = pidfd_pid(file); 4020 if (!IS_ERR(pid)) 4021 return pid; 4022 4023 return tgid_pidfd_to_pid(file); 4024 } 4025 4026 #define PIDFD_SEND_SIGNAL_FLAGS \ 4027 (PIDFD_SIGNAL_THREAD | PIDFD_SIGNAL_THREAD_GROUP | \ 4028 PIDFD_SIGNAL_PROCESS_GROUP) 4029 4030 static int do_pidfd_send_signal(struct pid *pid, int sig, enum pid_type type, 4031 siginfo_t __user *info, unsigned int flags) 4032 { 4033 kernel_siginfo_t kinfo; 4034 4035 switch (flags) { 4036 case PIDFD_SIGNAL_THREAD: 4037 type = PIDTYPE_PID; 4038 break; 4039 case PIDFD_SIGNAL_THREAD_GROUP: 4040 type = PIDTYPE_TGID; 4041 break; 4042 case PIDFD_SIGNAL_PROCESS_GROUP: 4043 type = PIDTYPE_PGID; 4044 break; 4045 } 4046 4047 if (info) { 4048 int ret; 4049 4050 ret = copy_siginfo_from_user_any(&kinfo, info); 4051 if (unlikely(ret)) 4052 return ret; 4053 4054 if (unlikely(sig != kinfo.si_signo)) 4055 return -EINVAL; 4056 4057 /* Only allow sending arbitrary signals to yourself. */ 4058 if ((task_pid(current) != pid || type > PIDTYPE_TGID) && 4059 si_code_reserved_to_kernel(kinfo.si_code)) 4060 return -EPERM; 4061 } else { 4062 prepare_kill_siginfo(sig, &kinfo, type); 4063 } 4064 4065 if (type == PIDTYPE_PGID) 4066 return kill_pgrp_info(sig, &kinfo, pid); 4067 4068 return kill_pid_info_type(sig, &kinfo, pid, type); 4069 } 4070 4071 /** 4072 * sys_pidfd_send_signal - Signal a process through a pidfd 4073 * @pidfd: file descriptor of the process 4074 * @sig: signal to send 4075 * @info: signal info 4076 * @flags: future flags 4077 * 4078 * Send the signal to the thread group or to the individual thread depending 4079 * on PIDFD_THREAD. 4080 * In the future extension to @flags may be used to override the default scope 4081 * of @pidfd. 4082 * 4083 * Return: 0 on success, negative errno on failure 4084 */ 4085 SYSCALL_DEFINE4(pidfd_send_signal, int, pidfd, int, sig, 4086 siginfo_t __user *, info, unsigned int, flags) 4087 { 4088 struct pid *pid; 4089 enum pid_type type; 4090 int ret; 4091 4092 /* Enforce flags be set to 0 until we add an extension. */ 4093 if (flags & ~PIDFD_SEND_SIGNAL_FLAGS) 4094 return -EINVAL; 4095 4096 /* Ensure that only a single signal scope determining flag is set. */ 4097 if (hweight32(flags & PIDFD_SEND_SIGNAL_FLAGS) > 1) 4098 return -EINVAL; 4099 4100 switch (pidfd) { 4101 case PIDFD_SELF_THREAD: 4102 pid = get_task_pid(current, PIDTYPE_PID); 4103 type = PIDTYPE_PID; 4104 break; 4105 case PIDFD_SELF_THREAD_GROUP: 4106 pid = get_task_pid(current, PIDTYPE_TGID); 4107 type = PIDTYPE_TGID; 4108 break; 4109 default: { 4110 CLASS(fd, f)(pidfd); 4111 if (fd_empty(f)) 4112 return -EBADF; 4113 4114 /* Is this a pidfd? */ 4115 pid = pidfd_to_pid(fd_file(f)); 4116 if (IS_ERR(pid)) 4117 return PTR_ERR(pid); 4118 4119 if (!access_pidfd_pidns(pid)) 4120 return -EINVAL; 4121 4122 /* Infer scope from the type of pidfd. */ 4123 if (fd_file(f)->f_flags & PIDFD_THREAD) 4124 type = PIDTYPE_PID; 4125 else 4126 type = PIDTYPE_TGID; 4127 4128 return do_pidfd_send_signal(pid, sig, type, info, flags); 4129 } 4130 } 4131 4132 ret = do_pidfd_send_signal(pid, sig, type, info, flags); 4133 put_pid(pid); 4134 4135 return ret; 4136 } 4137 4138 static int 4139 do_send_specific(pid_t tgid, pid_t pid, int sig, struct kernel_siginfo *info) 4140 { 4141 struct task_struct *p; 4142 int error = -ESRCH; 4143 4144 rcu_read_lock(); 4145 p = find_task_by_vpid(pid); 4146 if (p && (tgid <= 0 || task_tgid_vnr(p) == tgid)) { 4147 error = check_kill_permission(sig, info, p); 4148 /* 4149 * The null signal is a permissions and process existence 4150 * probe. No signal is actually delivered. 4151 */ 4152 if (!error && sig) { 4153 error = do_send_sig_info(sig, info, p, PIDTYPE_PID); 4154 /* 4155 * If lock_task_sighand() failed we pretend the task 4156 * dies after receiving the signal. The window is tiny, 4157 * and the signal is private anyway. 4158 */ 4159 if (unlikely(error == -ESRCH)) 4160 error = 0; 4161 } 4162 } 4163 rcu_read_unlock(); 4164 4165 return error; 4166 } 4167 4168 static int do_tkill(pid_t tgid, pid_t pid, int sig) 4169 { 4170 struct kernel_siginfo info; 4171 4172 prepare_kill_siginfo(sig, &info, PIDTYPE_PID); 4173 4174 return do_send_specific(tgid, pid, sig, &info); 4175 } 4176 4177 /** 4178 * sys_tgkill - send signal to one specific thread 4179 * @tgid: the thread group ID of the thread 4180 * @pid: the PID of the thread 4181 * @sig: signal to be sent 4182 * 4183 * This syscall also checks the @tgid and returns -ESRCH even if the PID 4184 * exists but it's not belonging to the target process anymore. This 4185 * method solves the problem of threads exiting and PIDs getting reused. 4186 */ 4187 SYSCALL_DEFINE3(tgkill, pid_t, tgid, pid_t, pid, int, sig) 4188 { 4189 /* This is only valid for single tasks */ 4190 if (pid <= 0 || tgid <= 0) 4191 return -EINVAL; 4192 4193 return do_tkill(tgid, pid, sig); 4194 } 4195 4196 /** 4197 * sys_tkill - send signal to one specific task 4198 * @pid: the PID of the task 4199 * @sig: signal to be sent 4200 * 4201 * Send a signal to only one task, even if it's a CLONE_THREAD task. 4202 */ 4203 SYSCALL_DEFINE2(tkill, pid_t, pid, int, sig) 4204 { 4205 /* This is only valid for single tasks */ 4206 if (pid <= 0) 4207 return -EINVAL; 4208 4209 return do_tkill(0, pid, sig); 4210 } 4211 4212 static int do_rt_sigqueueinfo(pid_t pid, int sig, kernel_siginfo_t *info) 4213 { 4214 if (si_code_reserved_to_kernel(info->si_code) && 4215 task_pid_vnr(current) != pid) 4216 return -EPERM; 4217 4218 /* POSIX.1b doesn't mention process groups. */ 4219 return kill_proc_info(sig, info, pid); 4220 } 4221 4222 /** 4223 * sys_rt_sigqueueinfo - send signal information to a signal 4224 * @pid: the PID of the thread 4225 * @sig: signal to be sent 4226 * @uinfo: signal info to be sent 4227 */ 4228 SYSCALL_DEFINE3(rt_sigqueueinfo, pid_t, pid, int, sig, 4229 siginfo_t __user *, uinfo) 4230 { 4231 kernel_siginfo_t info; 4232 int ret = __copy_siginfo_from_user(sig, &info, uinfo); 4233 if (unlikely(ret)) 4234 return ret; 4235 return do_rt_sigqueueinfo(pid, sig, &info); 4236 } 4237 4238 #ifdef CONFIG_COMPAT 4239 COMPAT_SYSCALL_DEFINE3(rt_sigqueueinfo, 4240 compat_pid_t, pid, 4241 int, sig, 4242 struct compat_siginfo __user *, uinfo) 4243 { 4244 kernel_siginfo_t info; 4245 int ret = __copy_siginfo_from_user32(sig, &info, uinfo); 4246 if (unlikely(ret)) 4247 return ret; 4248 return do_rt_sigqueueinfo(pid, sig, &info); 4249 } 4250 #endif 4251 4252 static int do_rt_tgsigqueueinfo(pid_t tgid, pid_t pid, int sig, kernel_siginfo_t *info) 4253 { 4254 /* This is only valid for single tasks */ 4255 if (pid <= 0 || tgid <= 0) 4256 return -EINVAL; 4257 4258 if (si_code_reserved_to_kernel(info->si_code) && 4259 task_pid_vnr(current) != pid) 4260 return -EPERM; 4261 4262 return do_send_specific(tgid, pid, sig, info); 4263 } 4264 4265 SYSCALL_DEFINE4(rt_tgsigqueueinfo, pid_t, tgid, pid_t, pid, int, sig, 4266 siginfo_t __user *, uinfo) 4267 { 4268 kernel_siginfo_t info; 4269 int ret = __copy_siginfo_from_user(sig, &info, uinfo); 4270 if (unlikely(ret)) 4271 return ret; 4272 return do_rt_tgsigqueueinfo(tgid, pid, sig, &info); 4273 } 4274 4275 #ifdef CONFIG_COMPAT 4276 COMPAT_SYSCALL_DEFINE4(rt_tgsigqueueinfo, 4277 compat_pid_t, tgid, 4278 compat_pid_t, pid, 4279 int, sig, 4280 struct compat_siginfo __user *, uinfo) 4281 { 4282 kernel_siginfo_t info; 4283 int ret = __copy_siginfo_from_user32(sig, &info, uinfo); 4284 if (unlikely(ret)) 4285 return ret; 4286 return do_rt_tgsigqueueinfo(tgid, pid, sig, &info); 4287 } 4288 #endif 4289 4290 /* 4291 * For kthreads only, must not be used if cloned with CLONE_SIGHAND 4292 */ 4293 void kernel_sigaction(int sig, __sighandler_t action) 4294 { 4295 spin_lock_irq(¤t->sighand->siglock); 4296 current->sighand->action[sig - 1].sa.sa_handler = action; 4297 if (action == SIG_IGN) { 4298 sigset_t mask; 4299 4300 sigemptyset(&mask); 4301 sigaddset(&mask, sig); 4302 4303 flush_sigqueue_mask(current, &mask, ¤t->signal->shared_pending); 4304 flush_sigqueue_mask(current, &mask, ¤t->pending); 4305 recalc_sigpending(); 4306 } 4307 spin_unlock_irq(¤t->sighand->siglock); 4308 } 4309 EXPORT_SYMBOL(kernel_sigaction); 4310 4311 void __weak sigaction_compat_abi(struct k_sigaction *act, 4312 struct k_sigaction *oact) 4313 { 4314 } 4315 4316 int do_sigaction(int sig, struct k_sigaction *act, struct k_sigaction *oact) 4317 { 4318 struct task_struct *p = current, *t; 4319 struct k_sigaction *k; 4320 sigset_t mask; 4321 4322 if (!valid_signal(sig) || sig < 1 || (act && sig_kernel_only(sig))) 4323 return -EINVAL; 4324 4325 k = &p->sighand->action[sig-1]; 4326 4327 spin_lock_irq(&p->sighand->siglock); 4328 if (k->sa.sa_flags & SA_IMMUTABLE) { 4329 spin_unlock_irq(&p->sighand->siglock); 4330 return -EINVAL; 4331 } 4332 if (oact) 4333 *oact = *k; 4334 4335 /* 4336 * Make sure that we never accidentally claim to support SA_UNSUPPORTED, 4337 * e.g. by having an architecture use the bit in their uapi. 4338 */ 4339 BUILD_BUG_ON(UAPI_SA_FLAGS & SA_UNSUPPORTED); 4340 4341 /* 4342 * Clear unknown flag bits in order to allow userspace to detect missing 4343 * support for flag bits and to allow the kernel to use non-uapi bits 4344 * internally. 4345 */ 4346 if (act) 4347 act->sa.sa_flags &= UAPI_SA_FLAGS; 4348 if (oact) 4349 oact->sa.sa_flags &= UAPI_SA_FLAGS; 4350 4351 sigaction_compat_abi(act, oact); 4352 4353 if (act) { 4354 bool was_ignored = k->sa.sa_handler == SIG_IGN; 4355 4356 sigdelsetmask(&act->sa.sa_mask, 4357 sigmask(SIGKILL) | sigmask(SIGSTOP)); 4358 *k = *act; 4359 /* 4360 * POSIX 3.3.1.3: 4361 * "Setting a signal action to SIG_IGN for a signal that is 4362 * pending shall cause the pending signal to be discarded, 4363 * whether or not it is blocked." 4364 * 4365 * "Setting a signal action to SIG_DFL for a signal that is 4366 * pending and whose default action is to ignore the signal 4367 * (for example, SIGCHLD), shall cause the pending signal to 4368 * be discarded, whether or not it is blocked" 4369 */ 4370 if (sig_handler_ignored(sig_handler(p, sig), sig)) { 4371 sigemptyset(&mask); 4372 sigaddset(&mask, sig); 4373 flush_sigqueue_mask(p, &mask, &p->signal->shared_pending); 4374 for_each_thread(p, t) 4375 flush_sigqueue_mask(p, &mask, &t->pending); 4376 } else if (was_ignored) { 4377 posixtimer_sig_unignore(p, sig); 4378 } 4379 } 4380 4381 spin_unlock_irq(&p->sighand->siglock); 4382 return 0; 4383 } 4384 4385 #ifdef CONFIG_DYNAMIC_SIGFRAME 4386 static inline void sigaltstack_lock(void) 4387 __acquires(¤t->sighand->siglock) 4388 { 4389 spin_lock_irq(¤t->sighand->siglock); 4390 } 4391 4392 static inline void sigaltstack_unlock(void) 4393 __releases(¤t->sighand->siglock) 4394 { 4395 spin_unlock_irq(¤t->sighand->siglock); 4396 } 4397 #else 4398 static inline void sigaltstack_lock(void) { } 4399 static inline void sigaltstack_unlock(void) { } 4400 #endif 4401 4402 static int 4403 do_sigaltstack (const stack_t *ss, stack_t *oss, unsigned long sp, 4404 size_t min_ss_size) 4405 { 4406 struct task_struct *t = current; 4407 int ret = 0; 4408 4409 if (oss) { 4410 memset(oss, 0, sizeof(stack_t)); 4411 oss->ss_sp = (void __user *) t->sas_ss_sp; 4412 oss->ss_size = t->sas_ss_size; 4413 oss->ss_flags = sas_ss_flags(sp) | 4414 (current->sas_ss_flags & SS_FLAG_BITS); 4415 } 4416 4417 if (ss) { 4418 void __user *ss_sp = ss->ss_sp; 4419 size_t ss_size = ss->ss_size; 4420 unsigned ss_flags = ss->ss_flags; 4421 int ss_mode; 4422 4423 if (unlikely(on_sig_stack(sp))) 4424 return -EPERM; 4425 4426 ss_mode = ss_flags & ~SS_FLAG_BITS; 4427 if (unlikely(ss_mode != SS_DISABLE && ss_mode != SS_ONSTACK && 4428 ss_mode != 0)) 4429 return -EINVAL; 4430 4431 /* 4432 * Return before taking any locks if no actual 4433 * sigaltstack changes were requested. 4434 */ 4435 if (t->sas_ss_sp == (unsigned long)ss_sp && 4436 t->sas_ss_size == ss_size && 4437 t->sas_ss_flags == ss_flags) 4438 return 0; 4439 4440 sigaltstack_lock(); 4441 if (ss_mode == SS_DISABLE) { 4442 ss_size = 0; 4443 ss_sp = NULL; 4444 } else { 4445 if (unlikely(ss_size < min_ss_size)) 4446 ret = -ENOMEM; 4447 if (!sigaltstack_size_valid(ss_size)) 4448 ret = -ENOMEM; 4449 } 4450 if (!ret) { 4451 t->sas_ss_sp = (unsigned long) ss_sp; 4452 t->sas_ss_size = ss_size; 4453 t->sas_ss_flags = ss_flags; 4454 } 4455 sigaltstack_unlock(); 4456 } 4457 return ret; 4458 } 4459 4460 SYSCALL_DEFINE2(sigaltstack,const stack_t __user *,uss, stack_t __user *,uoss) 4461 { 4462 stack_t new, old; 4463 int err; 4464 if (uss && copy_from_user(&new, uss, sizeof(stack_t))) 4465 return -EFAULT; 4466 err = do_sigaltstack(uss ? &new : NULL, uoss ? &old : NULL, 4467 current_user_stack_pointer(), 4468 MINSIGSTKSZ); 4469 if (!err && uoss && copy_to_user(uoss, &old, sizeof(stack_t))) 4470 err = -EFAULT; 4471 return err; 4472 } 4473 4474 int restore_altstack(const stack_t __user *uss) 4475 { 4476 stack_t new; 4477 if (copy_from_user(&new, uss, sizeof(stack_t))) 4478 return -EFAULT; 4479 (void)do_sigaltstack(&new, NULL, current_user_stack_pointer(), 4480 MINSIGSTKSZ); 4481 /* squash all but EFAULT for now */ 4482 return 0; 4483 } 4484 4485 int __save_altstack(stack_t __user *uss, unsigned long sp) 4486 { 4487 struct task_struct *t = current; 4488 int err = __put_user((void __user *)t->sas_ss_sp, &uss->ss_sp) | 4489 __put_user(t->sas_ss_flags, &uss->ss_flags) | 4490 __put_user(t->sas_ss_size, &uss->ss_size); 4491 return err; 4492 } 4493 4494 #ifdef CONFIG_COMPAT 4495 static int do_compat_sigaltstack(const compat_stack_t __user *uss_ptr, 4496 compat_stack_t __user *uoss_ptr) 4497 { 4498 stack_t uss, uoss; 4499 int ret; 4500 4501 if (uss_ptr) { 4502 compat_stack_t uss32; 4503 if (copy_from_user(&uss32, uss_ptr, sizeof(compat_stack_t))) 4504 return -EFAULT; 4505 uss.ss_sp = compat_ptr(uss32.ss_sp); 4506 uss.ss_flags = uss32.ss_flags; 4507 uss.ss_size = uss32.ss_size; 4508 } 4509 ret = do_sigaltstack(uss_ptr ? &uss : NULL, &uoss, 4510 compat_user_stack_pointer(), 4511 COMPAT_MINSIGSTKSZ); 4512 if (ret >= 0 && uoss_ptr) { 4513 compat_stack_t old; 4514 memset(&old, 0, sizeof(old)); 4515 old.ss_sp = ptr_to_compat(uoss.ss_sp); 4516 old.ss_flags = uoss.ss_flags; 4517 old.ss_size = uoss.ss_size; 4518 if (copy_to_user(uoss_ptr, &old, sizeof(compat_stack_t))) 4519 ret = -EFAULT; 4520 } 4521 return ret; 4522 } 4523 4524 COMPAT_SYSCALL_DEFINE2(sigaltstack, 4525 const compat_stack_t __user *, uss_ptr, 4526 compat_stack_t __user *, uoss_ptr) 4527 { 4528 return do_compat_sigaltstack(uss_ptr, uoss_ptr); 4529 } 4530 4531 int compat_restore_altstack(const compat_stack_t __user *uss) 4532 { 4533 int err = do_compat_sigaltstack(uss, NULL); 4534 /* squash all but -EFAULT for now */ 4535 return err == -EFAULT ? err : 0; 4536 } 4537 4538 int __compat_save_altstack(compat_stack_t __user *uss, unsigned long sp) 4539 { 4540 int err; 4541 struct task_struct *t = current; 4542 err = __put_user(ptr_to_compat((void __user *)t->sas_ss_sp), 4543 &uss->ss_sp) | 4544 __put_user(t->sas_ss_flags, &uss->ss_flags) | 4545 __put_user(t->sas_ss_size, &uss->ss_size); 4546 return err; 4547 } 4548 #endif 4549 4550 #ifdef __ARCH_WANT_SYS_SIGPENDING 4551 4552 /** 4553 * sys_sigpending - examine pending signals 4554 * @uset: where mask of pending signal is returned 4555 */ 4556 SYSCALL_DEFINE1(sigpending, old_sigset_t __user *, uset) 4557 { 4558 sigset_t set; 4559 4560 if (sizeof(old_sigset_t) > sizeof(*uset)) 4561 return -EINVAL; 4562 4563 do_sigpending(&set); 4564 4565 if (copy_to_user(uset, &set, sizeof(old_sigset_t))) 4566 return -EFAULT; 4567 4568 return 0; 4569 } 4570 4571 #ifdef CONFIG_COMPAT 4572 COMPAT_SYSCALL_DEFINE1(sigpending, compat_old_sigset_t __user *, set32) 4573 { 4574 sigset_t set; 4575 4576 do_sigpending(&set); 4577 4578 return put_user(set.sig[0], set32); 4579 } 4580 #endif 4581 4582 #endif 4583 4584 #ifdef __ARCH_WANT_SYS_SIGPROCMASK 4585 /** 4586 * sys_sigprocmask - examine and change blocked signals 4587 * @how: whether to add, remove, or set signals 4588 * @nset: signals to add or remove (if non-null) 4589 * @oset: previous value of signal mask if non-null 4590 * 4591 * Some platforms have their own version with special arguments; 4592 * others support only sys_rt_sigprocmask. 4593 */ 4594 4595 SYSCALL_DEFINE3(sigprocmask, int, how, old_sigset_t __user *, nset, 4596 old_sigset_t __user *, oset) 4597 { 4598 old_sigset_t old_set, new_set; 4599 sigset_t new_blocked; 4600 4601 old_set = current->blocked.sig[0]; 4602 4603 if (nset) { 4604 if (copy_from_user(&new_set, nset, sizeof(*nset))) 4605 return -EFAULT; 4606 4607 new_blocked = current->blocked; 4608 4609 switch (how) { 4610 case SIG_BLOCK: 4611 sigaddsetmask(&new_blocked, new_set); 4612 break; 4613 case SIG_UNBLOCK: 4614 sigdelsetmask(&new_blocked, new_set); 4615 break; 4616 case SIG_SETMASK: 4617 new_blocked.sig[0] = new_set; 4618 break; 4619 default: 4620 return -EINVAL; 4621 } 4622 4623 set_current_blocked(&new_blocked); 4624 } 4625 4626 if (oset) { 4627 if (copy_to_user(oset, &old_set, sizeof(*oset))) 4628 return -EFAULT; 4629 } 4630 4631 return 0; 4632 } 4633 #endif /* __ARCH_WANT_SYS_SIGPROCMASK */ 4634 4635 #ifndef CONFIG_ODD_RT_SIGACTION 4636 /** 4637 * sys_rt_sigaction - alter an action taken by a process 4638 * @sig: signal to be sent 4639 * @act: new sigaction 4640 * @oact: used to save the previous sigaction 4641 * @sigsetsize: size of sigset_t type 4642 */ 4643 SYSCALL_DEFINE4(rt_sigaction, int, sig, 4644 const struct sigaction __user *, act, 4645 struct sigaction __user *, oact, 4646 size_t, sigsetsize) 4647 { 4648 struct k_sigaction new_sa, old_sa; 4649 int ret; 4650 4651 /* XXX: Don't preclude handling different sized sigset_t's. */ 4652 if (sigsetsize != sizeof(sigset_t)) 4653 return -EINVAL; 4654 4655 if (act && copy_from_user(&new_sa.sa, act, sizeof(new_sa.sa))) 4656 return -EFAULT; 4657 4658 ret = do_sigaction(sig, act ? &new_sa : NULL, oact ? &old_sa : NULL); 4659 if (ret) 4660 return ret; 4661 4662 if (oact && copy_to_user(oact, &old_sa.sa, sizeof(old_sa.sa))) 4663 return -EFAULT; 4664 4665 return 0; 4666 } 4667 #ifdef CONFIG_COMPAT 4668 COMPAT_SYSCALL_DEFINE4(rt_sigaction, int, sig, 4669 const struct compat_sigaction __user *, act, 4670 struct compat_sigaction __user *, oact, 4671 compat_size_t, sigsetsize) 4672 { 4673 struct k_sigaction new_ka, old_ka; 4674 #ifdef __ARCH_HAS_SA_RESTORER 4675 compat_uptr_t restorer; 4676 #endif 4677 int ret; 4678 4679 /* XXX: Don't preclude handling different sized sigset_t's. */ 4680 if (sigsetsize != sizeof(compat_sigset_t)) 4681 return -EINVAL; 4682 4683 if (act) { 4684 compat_uptr_t handler; 4685 ret = get_user(handler, &act->sa_handler); 4686 new_ka.sa.sa_handler = compat_ptr(handler); 4687 #ifdef __ARCH_HAS_SA_RESTORER 4688 ret |= get_user(restorer, &act->sa_restorer); 4689 new_ka.sa.sa_restorer = compat_ptr(restorer); 4690 #endif 4691 ret |= get_compat_sigset(&new_ka.sa.sa_mask, &act->sa_mask); 4692 ret |= get_user(new_ka.sa.sa_flags, &act->sa_flags); 4693 if (ret) 4694 return -EFAULT; 4695 } 4696 4697 ret = do_sigaction(sig, act ? &new_ka : NULL, oact ? &old_ka : NULL); 4698 if (!ret && oact) { 4699 ret = put_user(ptr_to_compat(old_ka.sa.sa_handler), 4700 &oact->sa_handler); 4701 ret |= put_compat_sigset(&oact->sa_mask, &old_ka.sa.sa_mask, 4702 sizeof(oact->sa_mask)); 4703 ret |= put_user(old_ka.sa.sa_flags, &oact->sa_flags); 4704 #ifdef __ARCH_HAS_SA_RESTORER 4705 ret |= put_user(ptr_to_compat(old_ka.sa.sa_restorer), 4706 &oact->sa_restorer); 4707 #endif 4708 } 4709 return ret; 4710 } 4711 #endif 4712 #endif /* !CONFIG_ODD_RT_SIGACTION */ 4713 4714 #ifdef CONFIG_OLD_SIGACTION 4715 SYSCALL_DEFINE3(sigaction, int, sig, 4716 const struct old_sigaction __user *, act, 4717 struct old_sigaction __user *, oact) 4718 { 4719 struct k_sigaction new_ka, old_ka; 4720 int ret; 4721 4722 if (act) { 4723 old_sigset_t mask; 4724 if (!access_ok(act, sizeof(*act)) || 4725 __get_user(new_ka.sa.sa_handler, &act->sa_handler) || 4726 __get_user(new_ka.sa.sa_restorer, &act->sa_restorer) || 4727 __get_user(new_ka.sa.sa_flags, &act->sa_flags) || 4728 __get_user(mask, &act->sa_mask)) 4729 return -EFAULT; 4730 #ifdef __ARCH_HAS_KA_RESTORER 4731 new_ka.ka_restorer = NULL; 4732 #endif 4733 siginitset(&new_ka.sa.sa_mask, mask); 4734 } 4735 4736 ret = do_sigaction(sig, act ? &new_ka : NULL, oact ? &old_ka : NULL); 4737 4738 if (!ret && oact) { 4739 if (!access_ok(oact, sizeof(*oact)) || 4740 __put_user(old_ka.sa.sa_handler, &oact->sa_handler) || 4741 __put_user(old_ka.sa.sa_restorer, &oact->sa_restorer) || 4742 __put_user(old_ka.sa.sa_flags, &oact->sa_flags) || 4743 __put_user(old_ka.sa.sa_mask.sig[0], &oact->sa_mask)) 4744 return -EFAULT; 4745 } 4746 4747 return ret; 4748 } 4749 #endif 4750 #ifdef CONFIG_COMPAT_OLD_SIGACTION 4751 COMPAT_SYSCALL_DEFINE3(sigaction, int, sig, 4752 const struct compat_old_sigaction __user *, act, 4753 struct compat_old_sigaction __user *, oact) 4754 { 4755 struct k_sigaction new_ka, old_ka; 4756 int ret; 4757 compat_old_sigset_t mask; 4758 compat_uptr_t handler, restorer; 4759 4760 if (act) { 4761 if (!access_ok(act, sizeof(*act)) || 4762 __get_user(handler, &act->sa_handler) || 4763 __get_user(restorer, &act->sa_restorer) || 4764 __get_user(new_ka.sa.sa_flags, &act->sa_flags) || 4765 __get_user(mask, &act->sa_mask)) 4766 return -EFAULT; 4767 4768 #ifdef __ARCH_HAS_KA_RESTORER 4769 new_ka.ka_restorer = NULL; 4770 #endif 4771 new_ka.sa.sa_handler = compat_ptr(handler); 4772 new_ka.sa.sa_restorer = compat_ptr(restorer); 4773 siginitset(&new_ka.sa.sa_mask, mask); 4774 } 4775 4776 ret = do_sigaction(sig, act ? &new_ka : NULL, oact ? &old_ka : NULL); 4777 4778 if (!ret && oact) { 4779 if (!access_ok(oact, sizeof(*oact)) || 4780 __put_user(ptr_to_compat(old_ka.sa.sa_handler), 4781 &oact->sa_handler) || 4782 __put_user(ptr_to_compat(old_ka.sa.sa_restorer), 4783 &oact->sa_restorer) || 4784 __put_user(old_ka.sa.sa_flags, &oact->sa_flags) || 4785 __put_user(old_ka.sa.sa_mask.sig[0], &oact->sa_mask)) 4786 return -EFAULT; 4787 } 4788 return ret; 4789 } 4790 #endif 4791 4792 #ifdef CONFIG_SGETMASK_SYSCALL 4793 4794 /* 4795 * For backwards compatibility. Functionality superseded by sigprocmask. 4796 */ 4797 SYSCALL_DEFINE0(sgetmask) 4798 { 4799 /* SMP safe */ 4800 return current->blocked.sig[0]; 4801 } 4802 4803 SYSCALL_DEFINE1(ssetmask, int, newmask) 4804 { 4805 int old = current->blocked.sig[0]; 4806 sigset_t newset; 4807 4808 siginitset(&newset, newmask); 4809 set_current_blocked(&newset); 4810 4811 return old; 4812 } 4813 #endif /* CONFIG_SGETMASK_SYSCALL */ 4814 4815 #ifdef __ARCH_WANT_SYS_SIGNAL 4816 /* 4817 * For backwards compatibility. Functionality superseded by sigaction. 4818 */ 4819 SYSCALL_DEFINE2(signal, int, sig, __sighandler_t, handler) 4820 { 4821 struct k_sigaction new_sa, old_sa; 4822 int ret; 4823 4824 new_sa.sa.sa_handler = handler; 4825 new_sa.sa.sa_flags = SA_ONESHOT | SA_NOMASK; 4826 sigemptyset(&new_sa.sa.sa_mask); 4827 4828 ret = do_sigaction(sig, &new_sa, &old_sa); 4829 4830 return ret ? ret : (unsigned long)old_sa.sa.sa_handler; 4831 } 4832 #endif /* __ARCH_WANT_SYS_SIGNAL */ 4833 4834 #ifdef __ARCH_WANT_SYS_PAUSE 4835 4836 SYSCALL_DEFINE0(pause) 4837 { 4838 while (!signal_pending(current)) { 4839 __set_current_state(TASK_INTERRUPTIBLE); 4840 schedule(); 4841 } 4842 return -ERESTARTNOHAND; 4843 } 4844 4845 #endif 4846 4847 static int sigsuspend(sigset_t *set) 4848 { 4849 current->saved_sigmask = current->blocked; 4850 set_current_blocked(set); 4851 4852 while (!signal_pending(current)) { 4853 __set_current_state(TASK_INTERRUPTIBLE); 4854 schedule(); 4855 } 4856 set_restore_sigmask(); 4857 return -ERESTARTNOHAND; 4858 } 4859 4860 /** 4861 * sys_rt_sigsuspend - replace the signal mask for a value with the 4862 * @unewset value until a signal is received 4863 * @unewset: new signal mask value 4864 * @sigsetsize: size of sigset_t type 4865 */ 4866 SYSCALL_DEFINE2(rt_sigsuspend, sigset_t __user *, unewset, size_t, sigsetsize) 4867 { 4868 sigset_t newset; 4869 4870 /* XXX: Don't preclude handling different sized sigset_t's. */ 4871 if (sigsetsize != sizeof(sigset_t)) 4872 return -EINVAL; 4873 4874 if (copy_from_user(&newset, unewset, sizeof(newset))) 4875 return -EFAULT; 4876 return sigsuspend(&newset); 4877 } 4878 4879 #ifdef CONFIG_COMPAT 4880 COMPAT_SYSCALL_DEFINE2(rt_sigsuspend, compat_sigset_t __user *, unewset, compat_size_t, sigsetsize) 4881 { 4882 sigset_t newset; 4883 4884 /* XXX: Don't preclude handling different sized sigset_t's. */ 4885 if (sigsetsize != sizeof(sigset_t)) 4886 return -EINVAL; 4887 4888 if (get_compat_sigset(&newset, unewset)) 4889 return -EFAULT; 4890 return sigsuspend(&newset); 4891 } 4892 #endif 4893 4894 #ifdef CONFIG_OLD_SIGSUSPEND 4895 SYSCALL_DEFINE1(sigsuspend, old_sigset_t, mask) 4896 { 4897 sigset_t blocked; 4898 siginitset(&blocked, mask); 4899 return sigsuspend(&blocked); 4900 } 4901 #endif 4902 #ifdef CONFIG_OLD_SIGSUSPEND3 4903 SYSCALL_DEFINE3(sigsuspend, int, unused1, int, unused2, old_sigset_t, mask) 4904 { 4905 sigset_t blocked; 4906 siginitset(&blocked, mask); 4907 return sigsuspend(&blocked); 4908 } 4909 #endif 4910 4911 __weak const char *arch_vma_name(struct vm_area_struct *vma) 4912 { 4913 return NULL; 4914 } 4915 4916 static inline void siginfo_buildtime_checks(void) 4917 { 4918 BUILD_BUG_ON(sizeof(struct siginfo) != SI_MAX_SIZE); 4919 4920 /* Verify the offsets in the two siginfos match */ 4921 #define CHECK_OFFSET(field) \ 4922 BUILD_BUG_ON(offsetof(siginfo_t, field) != offsetof(kernel_siginfo_t, field)) 4923 4924 /* kill */ 4925 CHECK_OFFSET(si_pid); 4926 CHECK_OFFSET(si_uid); 4927 4928 /* timer */ 4929 CHECK_OFFSET(si_tid); 4930 CHECK_OFFSET(si_overrun); 4931 CHECK_OFFSET(si_value); 4932 4933 /* rt */ 4934 CHECK_OFFSET(si_pid); 4935 CHECK_OFFSET(si_uid); 4936 CHECK_OFFSET(si_value); 4937 4938 /* sigchld */ 4939 CHECK_OFFSET(si_pid); 4940 CHECK_OFFSET(si_uid); 4941 CHECK_OFFSET(si_status); 4942 CHECK_OFFSET(si_utime); 4943 CHECK_OFFSET(si_stime); 4944 4945 /* sigfault */ 4946 CHECK_OFFSET(si_addr); 4947 CHECK_OFFSET(si_trapno); 4948 CHECK_OFFSET(si_addr_lsb); 4949 CHECK_OFFSET(si_lower); 4950 CHECK_OFFSET(si_upper); 4951 CHECK_OFFSET(si_pkey); 4952 CHECK_OFFSET(si_perf_data); 4953 CHECK_OFFSET(si_perf_type); 4954 CHECK_OFFSET(si_perf_flags); 4955 4956 /* sigpoll */ 4957 CHECK_OFFSET(si_band); 4958 CHECK_OFFSET(si_fd); 4959 4960 /* sigsys */ 4961 CHECK_OFFSET(si_call_addr); 4962 CHECK_OFFSET(si_syscall); 4963 CHECK_OFFSET(si_arch); 4964 #undef CHECK_OFFSET 4965 4966 /* usb asyncio */ 4967 BUILD_BUG_ON(offsetof(struct siginfo, si_pid) != 4968 offsetof(struct siginfo, si_addr)); 4969 if (sizeof(int) == sizeof(void __user *)) { 4970 BUILD_BUG_ON(sizeof_field(struct siginfo, si_pid) != 4971 sizeof(void __user *)); 4972 } else { 4973 BUILD_BUG_ON((sizeof_field(struct siginfo, si_pid) + 4974 sizeof_field(struct siginfo, si_uid)) != 4975 sizeof(void __user *)); 4976 BUILD_BUG_ON(offsetofend(struct siginfo, si_pid) != 4977 offsetof(struct siginfo, si_uid)); 4978 } 4979 #ifdef CONFIG_COMPAT 4980 BUILD_BUG_ON(offsetof(struct compat_siginfo, si_pid) != 4981 offsetof(struct compat_siginfo, si_addr)); 4982 BUILD_BUG_ON(sizeof_field(struct compat_siginfo, si_pid) != 4983 sizeof(compat_uptr_t)); 4984 BUILD_BUG_ON(sizeof_field(struct compat_siginfo, si_pid) != 4985 sizeof_field(struct siginfo, si_pid)); 4986 #endif 4987 } 4988 4989 #if defined(CONFIG_SYSCTL) 4990 static const struct ctl_table signal_debug_table[] = { 4991 #ifdef CONFIG_SYSCTL_EXCEPTION_TRACE 4992 { 4993 .procname = "exception-trace", 4994 .data = &show_unhandled_signals, 4995 .maxlen = sizeof(int), 4996 .mode = 0644, 4997 .proc_handler = proc_dointvec 4998 }, 4999 #endif 5000 }; 5001 5002 static const struct ctl_table signal_table[] = { 5003 { 5004 .procname = "print-fatal-signals", 5005 .data = &print_fatal_signals, 5006 .maxlen = sizeof(int), 5007 .mode = 0644, 5008 .proc_handler = proc_dointvec, 5009 }, 5010 }; 5011 5012 static int __init init_signal_sysctls(void) 5013 { 5014 register_sysctl_init("debug", signal_debug_table); 5015 register_sysctl_init("kernel", signal_table); 5016 return 0; 5017 } 5018 early_initcall(init_signal_sysctls); 5019 #endif /* CONFIG_SYSCTL */ 5020 5021 void __init signals_init(void) 5022 { 5023 siginfo_buildtime_checks(); 5024 5025 sigqueue_cachep = KMEM_CACHE(sigqueue, SLAB_PANIC | SLAB_ACCOUNT); 5026 } 5027 5028 #ifdef CONFIG_KGDB_KDB 5029 #include <linux/kdb.h> 5030 /* 5031 * kdb_send_sig - Allows kdb to send signals without exposing 5032 * signal internals. This function checks if the required locks are 5033 * available before calling the main signal code, to avoid kdb 5034 * deadlocks. 5035 */ 5036 void kdb_send_sig(struct task_struct *t, int sig) 5037 { 5038 static struct task_struct *kdb_prev_t; 5039 int new_t, ret; 5040 if (!spin_trylock(&t->sighand->siglock)) { 5041 kdb_printf("Can't do kill command now.\n" 5042 "The sigmask lock is held somewhere else in " 5043 "kernel, try again later\n"); 5044 return; 5045 } 5046 new_t = kdb_prev_t != t; 5047 kdb_prev_t = t; 5048 if (!task_is_running(t) && new_t) { 5049 spin_unlock(&t->sighand->siglock); 5050 kdb_printf("Process is not RUNNING, sending a signal from " 5051 "kdb risks deadlock\n" 5052 "on the run queue locks. " 5053 "The signal has _not_ been sent.\n" 5054 "Reissue the kill command if you want to risk " 5055 "the deadlock.\n"); 5056 return; 5057 } 5058 ret = send_signal_locked(sig, SEND_SIG_PRIV, t, PIDTYPE_PID); 5059 spin_unlock(&t->sighand->siglock); 5060 if (ret) 5061 kdb_printf("Fail to deliver Signal %d to process %d.\n", 5062 sig, t->pid); 5063 else 5064 kdb_printf("Signal %d is sent to process %d.\n", sig, t->pid); 5065 } 5066 #endif /* CONFIG_KGDB_KDB */ 5067