source: mainline/kernel/generic/src/proc/thread.c@ a5b5f17

Last change on this file since a5b5f17 was dfa4be62, checked in by Jiří Zárevúcky <zarevucky.jiri@…>, 17 months ago

Thread lock is no longer necessary

  • Property mode set to 100644
File size: 26.8 KB
RevLine 
[f761f1eb]1/*
[7ed8530]2 * Copyright (c) 2010 Jakub Jermar
[ef1eab7]3 * Copyright (c) 2018 Jiri Svoboda
[f761f1eb]4 * All rights reserved.
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
9 *
10 * - Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * - Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * - The name of the author may not be used to endorse or promote products
16 * derived from this software without specific prior written permission.
17 *
18 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
23 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
24 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
25 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
26 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
27 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
28 */
29
[174156fd]30/** @addtogroup kernel_generic_proc
[b45c443]31 * @{
32 */
33
[9179d0a]34/**
[b45c443]35 * @file
[da1bafb]36 * @brief Thread management functions.
[9179d0a]37 */
38
[63e27ef]39#include <assert.h>
[f761f1eb]40#include <proc/scheduler.h>
41#include <proc/thread.h>
42#include <proc/task.h>
43#include <mm/frame.h>
44#include <mm/page.h>
45#include <arch/asm.h>
[cce6acf]46#include <arch/cycle.h>
[f761f1eb]47#include <arch.h>
48#include <synch/spinlock.h>
49#include <synch/waitq.h>
[d314571]50#include <synch/syswaitq.h>
[f761f1eb]51#include <cpu.h>
[e535eeb]52#include <str.h>
[f761f1eb]53#include <context.h>
[5c9a08b]54#include <adt/list.h>
[ef1eab7]55#include <adt/odict.h>
[f761f1eb]56#include <time/clock.h>
[b3f8fb7]57#include <time/timeout.h>
[8d6c1f1]58#include <time/delay.h>
[4ffa9e0]59#include <config.h>
60#include <arch/interrupt.h>
[26a8604f]61#include <smp/ipi.h>
[23684b7]62#include <atomic.h>
[b169619]63#include <memw.h>
[bab75df6]64#include <stdio.h>
[aafed15]65#include <stdlib.h>
[9f52563]66#include <main/uinit.h>
[e3c762cd]67#include <syscall/copy.h>
68#include <errno.h>
[aae365bc]69#include <debug.h>
[111b9b9]70#include <halt.h>
[52755f1]71
[fe19611]72/** Thread states */
[a000878c]73const char *thread_states[] = {
[fe19611]74 "Invalid",
75 "Running",
76 "Sleeping",
77 "Ready",
78 "Entering",
79 "Exiting",
[48d14222]80 "Lingering"
[e1b6742]81};
82
[ef1eab7]83/** Lock protecting the @c threads ordered dictionary .
[4e33b6b]84 *
85 * For locking rules, see declaration thereof.
86 */
[da1bafb]87IRQ_SPINLOCK_INITIALIZE(threads_lock);
[88169d9]88
[ef1eab7]89/** Ordered dictionary of all threads by their address (i.e. pointer to
90 * the thread_t structure).
[88169d9]91 *
[ef1eab7]92 * When a thread is found in the @c threads ordered dictionary, it is
93 * guaranteed to exist as long as the @c threads_lock is held.
[da1bafb]94 *
[ef1eab7]95 * Members are of type thread_t.
[1871118]96 *
97 * This structure contains weak references. Any reference from it must not leave
98 * threads_lock critical section unless strengthened via thread_try_ref().
[88169d9]99 */
[ef1eab7]100odict_t threads;
[f761f1eb]101
[da1bafb]102IRQ_SPINLOCK_STATIC_INITIALIZE(tidlock);
103static thread_id_t last_tid = 0;
[f761f1eb]104
[82d515e9]105static slab_cache_t *thread_cache;
[da1bafb]106
[ef1eab7]107static void *threads_getkey(odlink_t *);
108static int threads_cmp(void *, void *);
109
[da1bafb]110/** Initialization and allocation for thread_t structure
111 *
112 */
[b7fd2a0]113static errno_t thr_constructor(void *obj, unsigned int kmflags)
[266294a9]114{
[da1bafb]115 thread_t *thread = (thread_t *) obj;
[a35b458]116
[da1bafb]117 link_initialize(&thread->rq_link);
118 link_initialize(&thread->wq_link);
119 link_initialize(&thread->th_link);
[a35b458]120
[32fffef0]121 /* call the architecture-specific part of the constructor */
[da1bafb]122 thr_constructor_arch(thread);
[a35b458]123
[38ff925]124 /*
125 * Allocate the kernel stack from the low-memory to prevent an infinite
126 * nesting of TLB-misses when accessing the stack from the part of the
127 * TLB-miss handler written in C.
128 *
129 * Note that low-memory is safe to be used for the stack as it will be
130 * covered by the kernel identity mapping, which guarantees not to
131 * nest TLB-misses infinitely (either via some hardware mechanism or
[c477c80]132 * by the construction of the assembly-language part of the TLB-miss
[38ff925]133 * handler).
134 *
135 * This restriction can be lifted once each architecture provides
[c477c80]136 * a similar guarantee, for example, by locking the kernel stack
[38ff925]137 * in the TLB whenever it is allocated from the high-memory and the
138 * thread is being scheduled to run.
139 */
140 kmflags |= FRAME_LOWMEM;
141 kmflags &= ~FRAME_HIGHMEM;
[a35b458]142
[128359eb]143 /*
144 * NOTE: All kernel stacks must be aligned to STACK_SIZE,
145 * see CURRENT.
146 */
[d1da1ff2]147
[cd3b380]148 uintptr_t stack_phys =
149 frame_alloc(STACK_FRAMES, kmflags, STACK_SIZE - 1);
[0366d09d]150 if (!stack_phys)
[7f11dc6]151 return ENOMEM;
[a35b458]152
[cd3b380]153 thread->kstack = (uint8_t *) PA2KA(stack_phys);
[a35b458]154
[9a1b20c]155#ifdef CONFIG_UDEBUG
[da1bafb]156 mutex_initialize(&thread->udebug.lock, MUTEX_PASSIVE);
[9a1b20c]157#endif
[a35b458]158
[7f11dc6]159 return EOK;
[266294a9]160}
161
162/** Destruction of thread_t object */
[da1bafb]163static size_t thr_destructor(void *obj)
[266294a9]164{
[da1bafb]165 thread_t *thread = (thread_t *) obj;
[a35b458]166
[32fffef0]167 /* call the architecture-specific part of the destructor */
[da1bafb]168 thr_destructor_arch(thread);
[a35b458]169
[5df1963]170 frame_free(KA2PA(thread->kstack), STACK_FRAMES);
[a35b458]171
[e7c4115d]172 return STACK_FRAMES; /* number of frames freed */
[266294a9]173}
[70527f1]174
175/** Initialize threads
176 *
177 * Initialize kernel threads support.
178 *
179 */
[f761f1eb]180void thread_init(void)
181{
[43114c5]182 THREAD = NULL;
[a35b458]183
[e3306d04]184 atomic_store(&nrdy, 0);
[0366d09d]185 thread_cache = slab_cache_create("thread_t", sizeof(thread_t), _Alignof(thread_t),
[6f4495f5]186 thr_constructor, thr_destructor, 0);
[a35b458]187
[ef1eab7]188 odict_initialize(&threads, threads_getkey, threads_cmp);
[016acbe]189}
[70527f1]190
[6eef3c4]191/** Wire thread to the given CPU
192 *
193 * @param cpu CPU to wire the thread to.
194 *
195 */
196void thread_wire(thread_t *thread, cpu_t *cpu)
197{
[dfa4be62]198 ipl_t ipl = interrupts_disable();
[efed95a3]199 atomic_set_unordered(&thread->cpu, cpu);
[dd218ea]200 thread->nomigrate++;
[dfa4be62]201 interrupts_restore(ipl);
[6eef3c4]202}
203
[0f4f1b2]204/** Start a thread that wasn't started yet since it was created.
205 *
206 * @param thread A reference to the newly created thread.
207 */
208void thread_start(thread_t *thread)
209{
[41bfc64]210 assert(atomic_get_unordered(&thread->state) == Entering);
[286da52]211 thread_requeue_sleeping(thread_ref(thread));
[f761f1eb]212}
213
[70527f1]214/** Create new thread
215 *
216 * Create a new thread.
217 *
[da1bafb]218 * @param func Thread's implementing function.
219 * @param arg Thread's implementing function argument.
220 * @param task Task to which the thread belongs. The caller must
221 * guarantee that the task won't cease to exist during the
222 * call. The task's lock may not be held.
223 * @param flags Thread flags.
224 * @param name Symbolic name (a copy is made).
[70527f1]225 *
[da1bafb]226 * @return New thread's structure on success, NULL on failure.
[70527f1]227 *
228 */
[3bacee1]229thread_t *thread_create(void (*func)(void *), void *arg, task_t *task,
[6eef3c4]230 thread_flags_t flags, const char *name)
[f761f1eb]231{
[abf6c01]232 thread_t *thread = (thread_t *) slab_alloc(thread_cache, FRAME_ATOMIC);
[da1bafb]233 if (!thread)
[2a46e10]234 return NULL;
[a35b458]235
[1871118]236 refcount_init(&thread->refcount);
237
[deacd722]238 if (thread_create_arch(thread, flags) != EOK) {
239 slab_free(thread_cache, thread);
240 return NULL;
241 }
242
[bb68433]243 /* Not needed, but good for debugging */
[26aafe8]244 memsetb(thread->kstack, STACK_SIZE, 0);
[a35b458]245
[da1bafb]246 irq_spinlock_lock(&tidlock, true);
247 thread->tid = ++last_tid;
248 irq_spinlock_unlock(&tidlock, true);
[a35b458]249
[6a0e568]250 context_create(&thread->saved_context, thread_main_func,
251 thread->kstack, STACK_SIZE);
[a35b458]252
[a6e55886]253 current_initialize((current_t *) thread->kstack);
[a35b458]254
[da1bafb]255 str_cpy(thread->name, THREAD_NAME_BUFLEN, name);
[a35b458]256
[da1bafb]257 thread->thread_code = func;
258 thread->thread_arg = arg;
[11909ce3]259 thread->ucycles = ATOMIC_TIME_INITIALIZER();
260 thread->kcycles = ATOMIC_TIME_INITIALIZER();
[6eef3c4]261 thread->uncounted =
262 ((flags & THREAD_FLAG_UNCOUNTED) == THREAD_FLAG_UNCOUNTED);
[9fbdeca]263 atomic_init(&thread->priority, 0);
[efed95a3]264 atomic_init(&thread->cpu, NULL);
[6eef3c4]265 thread->stolen = false;
266 thread->uspace =
267 ((flags & THREAD_FLAG_USPACE) == THREAD_FLAG_USPACE);
[a35b458]268
[43ac0cc]269 thread->nomigrate = 0;
[41bfc64]270 atomic_init(&thread->state, Entering);
[a35b458]271
[111b9b9]272 atomic_init(&thread->sleep_queue, NULL);
[a35b458]273
[da1bafb]274 thread->in_copy_from_uspace = false;
275 thread->in_copy_to_uspace = false;
[a35b458]276
[da1bafb]277 thread->interrupted = false;
[111b9b9]278 atomic_init(&thread->sleep_state, SLEEP_INITIAL);
279
[da1bafb]280 waitq_initialize(&thread->join_wq);
[a35b458]281
[da1bafb]282 thread->task = task;
[a35b458]283
[6eef3c4]284 thread->fpu_context_exists = false;
[a35b458]285
[ef1eab7]286 odlink_initialize(&thread->lthreads);
[a35b458]287
[9a1b20c]288#ifdef CONFIG_UDEBUG
[5b7a107]289 /* Initialize debugging stuff */
[33e15a0]290 atomic_init(&thread->btrace, false);
[da1bafb]291 udebug_thread_initialize(&thread->udebug);
[9a1b20c]292#endif
[a35b458]293
[6eef3c4]294 if ((flags & THREAD_FLAG_NOATTACH) != THREAD_FLAG_NOATTACH)
[da1bafb]295 thread_attach(thread, task);
[a35b458]296
[da1bafb]297 return thread;
[d8431986]298}
299
300/** Destroy thread memory structure
301 *
302 * Detach thread from all queues, cpus etc. and destroy it.
[da1bafb]303 *
[11d2c983]304 * @param obj Thread to be destroyed.
[d8431986]305 *
306 */
[1871118]307static void thread_destroy(void *obj)
[d8431986]308{
[1871118]309 thread_t *thread = (thread_t *) obj;
310
[11d2c983]311 assert_link_not_used(&thread->rq_link);
312 assert_link_not_used(&thread->wq_link);
313
[63e27ef]314 assert(thread->task);
[11d2c983]315
316 ipl_t ipl = interrupts_disable();
317
318 /* Remove thread from global list. */
319 irq_spinlock_lock(&threads_lock, false);
320 odict_remove(&thread->lthreads);
321 irq_spinlock_unlock(&threads_lock, false);
322
[c7326f21]323 /* Remove thread from task's list and accumulate accounting. */
324 irq_spinlock_lock(&thread->task->lock, false);
325
326 list_remove(&thread->th_link);
327
328 /*
329 * No other CPU has access to this thread anymore, so we don't need
330 * thread->lock for accessing thread's fields after this point.
331 */
332
333 if (!thread->uncounted) {
[11909ce3]334 thread->task->ucycles += atomic_time_read(&thread->ucycles);
335 thread->task->kcycles += atomic_time_read(&thread->kcycles);
[c7326f21]336 }
337
338 irq_spinlock_unlock(&thread->task->lock, false);
[11d2c983]339
[41bfc64]340 assert((atomic_get_unordered(&thread->state) == Exiting) || (atomic_get_unordered(&thread->state) == Lingering));
[a35b458]341
[c7326f21]342 /* Clear cpu->fpu_owner if set to this thread. */
[169815e]343#ifdef CONFIG_FPU_LAZY
[efed95a3]344 cpu_t *cpu = atomic_get_unordered(&thread->cpu);
345 if (cpu) {
[f3dbe27]346 /*
347 * We need to lock for this because the old CPU can concurrently try
348 * to dump this thread's FPU state, in which case we need to wait for
349 * it to finish. An atomic compare-and-swap wouldn't be enough.
350 */
[efed95a3]351 irq_spinlock_lock(&cpu->fpu_lock, false);
[f3dbe27]352
[efed95a3]353 if (atomic_get_unordered(&cpu->fpu_owner) == thread)
354 atomic_set_unordered(&cpu->fpu_owner, NULL);
[f3dbe27]355
[efed95a3]356 irq_spinlock_unlock(&cpu->fpu_lock, false);
[169815e]357 }
358#endif
[a35b458]359
[11d2c983]360 interrupts_restore(ipl);
[a35b458]361
[ea7890e7]362 /*
[7ed8530]363 * Drop the reference to the containing task.
[ea7890e7]364 */
[da1bafb]365 task_release(thread->task);
[11d2c983]366 thread->task = NULL;
367
[82d515e9]368 slab_free(thread_cache, thread);
[d8431986]369}
370
[1871118]371void thread_put(thread_t *thread)
372{
373 if (refcount_down(&thread->refcount)) {
374 thread_destroy(thread);
375 }
376}
377
[d8431986]378/** Make the thread visible to the system.
379 *
380 * Attach the thread structure to the current task and make it visible in the
[5dcee525]381 * threads_tree.
[d8431986]382 *
[da1bafb]383 * @param t Thread to be attached to the task.
384 * @param task Task to which the thread is to be attached.
385 *
[d8431986]386 */
[da1bafb]387void thread_attach(thread_t *thread, task_t *task)
[d8431986]388{
[1871118]389 ipl_t ipl = interrupts_disable();
390
[d8431986]391 /*
[9a1b20c]392 * Attach to the specified task.
[d8431986]393 */
[1871118]394 irq_spinlock_lock(&task->lock, false);
[a35b458]395
[7ed8530]396 /* Hold a reference to the task. */
397 task_hold(task);
[a35b458]398
[9a1b20c]399 /* Must not count kbox thread into lifecount */
[6eef3c4]400 if (thread->uspace)
[9a1b20c]401 atomic_inc(&task->lifecount);
[a35b458]402
[55b77d9]403 list_append(&thread->th_link, &task->threads);
[a35b458]404
[1871118]405 irq_spinlock_unlock(&task->lock, false);
[a35b458]406
[bb68433]407 /*
[ef1eab7]408 * Register this thread in the system-wide dictionary.
[bb68433]409 */
[1871118]410 irq_spinlock_lock(&threads_lock, false);
[ef1eab7]411 odict_insert(&thread->lthreads, &threads, NULL);
[1871118]412 irq_spinlock_unlock(&threads_lock, false);
413
414 interrupts_restore(ipl);
[f761f1eb]415}
416
[0182a665]417/** Terminate thread.
[70527f1]418 *
[da1bafb]419 * End current thread execution and switch it to the exiting state.
420 * All pending timeouts are executed.
421 *
[70527f1]422 */
[f761f1eb]423void thread_exit(void)
424{
[6eef3c4]425 if (THREAD->uspace) {
[9a1b20c]426#ifdef CONFIG_UDEBUG
427 /* Generate udebug THREAD_E event */
428 udebug_thread_e_event();
[a35b458]429
[0ac99db]430 /*
431 * This thread will not execute any code or system calls from
432 * now on.
433 */
434 udebug_stoppable_begin();
[9a1b20c]435#endif
436 if (atomic_predec(&TASK->lifecount) == 0) {
437 /*
438 * We are the last userspace thread in the task that
439 * still has not exited. With the exception of the
440 * moment the task was created, new userspace threads
441 * can only be created by threads of the same task.
442 * We are safe to perform cleanup.
[da1bafb]443 *
[9a1b20c]444 */
[ea7890e7]445 ipc_cleanup();
[d314571]446 sys_waitq_task_cleanup();
[3bacee1]447 LOG("Cleanup of task %" PRIu64 " completed.", TASK->taskid);
[ea7890e7]448 }
449 }
[a35b458]450
[151c050]451 scheduler_enter(Exiting);
452 unreachable();
[f761f1eb]453}
454
[518dd43]455/** Interrupts an existing thread so that it may exit as soon as possible.
[1b20da0]456 *
457 * Threads that are blocked waiting for a synchronization primitive
[897fd8f1]458 * are woken up with a return code of EINTR if the
[518dd43]459 * blocking call was interruptable. See waitq_sleep_timeout().
[1b20da0]460 *
[518dd43]461 * Interrupted threads automatically exit when returning back to user space.
[1b20da0]462 *
[1871118]463 * @param thread A valid thread object.
[518dd43]464 */
[111b9b9]465void thread_interrupt(thread_t *thread)
[518dd43]466{
[63e27ef]467 assert(thread != NULL);
[111b9b9]468 thread->interrupted = true;
469 thread_wakeup(thread);
470}
[a35b458]471
[111b9b9]472/** Prepare for putting the thread to sleep.
473 *
474 * @returns whether the thread is currently terminating. If THREAD_OK
475 * is returned, the thread is guaranteed to be woken up instantly if the thread
476 * is terminated at any time between this function's return and
477 * thread_wait_finish(). If THREAD_TERMINATING is returned, the thread can still
478 * go to sleep, but doing so will delay termination.
479 */
480thread_termination_state_t thread_wait_start(void)
481{
482 assert(THREAD != NULL);
[a35b458]483
[111b9b9]484 /*
485 * This is an exchange rather than a store so that we can use the acquire
486 * semantics, which is needed to ensure that code after this operation sees
487 * memory ops made before thread_wakeup() in other thread, if that wakeup
488 * was reset by this operation.
489 *
490 * In particular, we need this to ensure we can't miss the thread being
491 * terminated concurrently with a synchronization primitive preparing to
492 * sleep.
493 */
494 (void) atomic_exchange_explicit(&THREAD->sleep_state, SLEEP_INITIAL,
495 memory_order_acquire);
[a35b458]496
[111b9b9]497 return THREAD->interrupted ? THREAD_TERMINATING : THREAD_OK;
498}
[a35b458]499
[111b9b9]500static void thread_wait_timeout_callback(void *arg)
501{
502 thread_wakeup(arg);
503}
504
505/**
506 * Suspends this thread's execution until thread_wakeup() is called on it,
507 * or deadline is reached.
508 *
509 * The way this would normally be used is that the current thread call
510 * thread_wait_start(), and if interruption has not been signaled, stores
511 * a reference to itself in a synchronized structure (such as waitq).
512 * After that, it releases any spinlocks it might hold and calls this function.
513 *
514 * The thread doing the wakeup will acquire the thread's reference from said
515 * synchronized structure and calls thread_wakeup() on it.
516 *
517 * Notably, there can be more than one thread performing wakeup.
518 * The number of performed calls to thread_wakeup(), or their relative
519 * ordering with thread_wait_finish(), does not matter. However, calls to
520 * thread_wakeup() are expected to be synchronized with thread_wait_start()
521 * with which they are associated, otherwise wakeups may be missed.
522 * However, the operation of thread_wakeup() is defined at any time,
523 * synchronization notwithstanding (in the sense of C un/defined behavior),
524 * and is in fact used to interrupt waiting threads by external events.
525 * The waiting thread must operate correctly in face of spurious wakeups,
526 * and clean up its reference in the synchronization structure if necessary.
527 *
528 * Returns THREAD_WAIT_TIMEOUT if timeout fired, which is a necessary condition
529 * for it to have been waken up by the timeout, but the caller must assume
530 * that proper wakeups, timeouts and interrupts may occur concurrently, so
531 * the fact timeout has been registered does not necessarily mean the thread
532 * has not been woken up or interrupted.
533 */
534thread_wait_result_t thread_wait_finish(deadline_t deadline)
535{
536 assert(THREAD != NULL);
537
538 timeout_t timeout;
539
[5663872]540 /* Extra check to avoid going to scheduler if we don't need to. */
541 if (atomic_load_explicit(&THREAD->sleep_state, memory_order_acquire) !=
542 SLEEP_INITIAL)
543 return THREAD_WAIT_SUCCESS;
[111b9b9]544
[5663872]545 if (deadline != DEADLINE_NEVER) {
[111b9b9]546 timeout_initialize(&timeout);
547 timeout_register_deadline(&timeout, deadline,
548 thread_wait_timeout_callback, THREAD);
549 }
550
[151c050]551 scheduler_enter(Sleeping);
[111b9b9]552
553 if (deadline != DEADLINE_NEVER && !timeout_unregister(&timeout)) {
554 return THREAD_WAIT_TIMEOUT;
555 } else {
556 return THREAD_WAIT_SUCCESS;
557 }
558}
559
560void thread_wakeup(thread_t *thread)
561{
562 assert(thread != NULL);
563
564 int state = atomic_exchange_explicit(&thread->sleep_state, SLEEP_WOKE,
[5663872]565 memory_order_acq_rel);
[111b9b9]566
567 if (state == SLEEP_ASLEEP) {
568 /*
569 * Only one thread gets to do this.
570 * The reference consumed here is the reference implicitly passed to
571 * the waking thread by the sleeper in thread_wait_finish().
572 */
[286da52]573 thread_requeue_sleeping(thread);
[111b9b9]574 }
[518dd43]575}
576
[43ac0cc]577/** Prevent the current thread from being migrated to another processor. */
578void thread_migration_disable(void)
579{
[dfa4be62]580 ipl_t ipl = interrupts_disable();
[a35b458]581
[dfa4be62]582 assert(THREAD);
[43ac0cc]583 THREAD->nomigrate++;
[dfa4be62]584
585 interrupts_restore(ipl);
[43ac0cc]586}
587
588/** Allow the current thread to be migrated to another processor. */
589void thread_migration_enable(void)
590{
[dfa4be62]591 ipl_t ipl = interrupts_disable();
592
[63e27ef]593 assert(THREAD);
594 assert(THREAD->nomigrate > 0);
[a35b458]595
[6eef3c4]596 if (THREAD->nomigrate > 0)
597 THREAD->nomigrate--;
[dfa4be62]598
599 interrupts_restore(ipl);
[43ac0cc]600}
601
[70527f1]602/** Thread sleep
603 *
604 * Suspend execution of the current thread.
605 *
606 * @param sec Number of seconds to sleep.
607 *
608 */
[7f1c620]609void thread_sleep(uint32_t sec)
[f761f1eb]610{
[7c3fb9b]611 /*
612 * Sleep in 1000 second steps to support
613 * full argument range
614 */
[22e6802]615 while (sec > 0) {
616 uint32_t period = (sec > 1000) ? 1000 : sec;
[a35b458]617
[22e6802]618 thread_usleep(period * 1000000);
619 sec -= period;
620 }
[f761f1eb]621}
[70527f1]622
[5110d0a]623errno_t thread_join(thread_t *thread)
624{
625 return thread_join_timeout(thread, SYNCH_NO_TIMEOUT, SYNCH_FLAGS_NONE);
626}
627
[fe19611]628/** Wait for another thread to exit.
[a064d4f]629 * After successful wait, the thread reference is destroyed.
[fe19611]630 *
[da1bafb]631 * @param thread Thread to join on exit.
632 * @param usec Timeout in microseconds.
633 * @param flags Mode of operation.
[fe19611]634 *
635 * @return An error code from errno.h or an error code from synch.h.
[da1bafb]636 *
[fe19611]637 */
[b7fd2a0]638errno_t thread_join_timeout(thread_t *thread, uint32_t usec, unsigned int flags)
[fe19611]639{
[0f4f1b2]640 assert(thread != NULL);
641
[da1bafb]642 if (thread == THREAD)
[fe19611]643 return EINVAL;
[a35b458]644
[a3d87b9]645 errno_t rc = _waitq_sleep_timeout(&thread->join_wq, usec, flags);
[a064d4f]646
647 if (rc == EOK)
648 thread_put(thread);
649
650 return rc;
[fe19611]651}
652
[0f4f1b2]653void thread_detach(thread_t *thread)
654{
655 thread_put(thread);
656}
657
[70527f1]658/** Thread usleep
659 *
660 * Suspend execution of the current thread.
661 *
662 * @param usec Number of microseconds to sleep.
663 *
[1b20da0]664 */
[7f1c620]665void thread_usleep(uint32_t usec)
[f761f1eb]666{
667 waitq_t wq;
[a35b458]668
[f761f1eb]669 waitq_initialize(&wq);
[a35b458]670
[111b9b9]671 (void) waitq_sleep_timeout(&wq, usec);
[151c050]672}
673
674/** Allow other threads to run. */
675void thread_yield(void)
676{
677 assert(THREAD != NULL);
678 scheduler_enter(Running);
[f761f1eb]679}
680
[ef1eab7]681static void thread_print(thread_t *thread, bool additional)
[5dcee525]682{
[1ba37fa]683 uint64_t ucycles, kcycles;
684 char usuffix, ksuffix;
[11909ce3]685 order_suffix(atomic_time_read(&thread->ucycles), &ucycles, &usuffix);
686 order_suffix(atomic_time_read(&thread->kcycles), &kcycles, &ksuffix);
[a35b458]687
[41bfc64]688 state_t state = atomic_get_unordered(&thread->state);
689
[577f042a]690 char *name;
691 if (str_cmp(thread->name, "uinit") == 0)
692 name = thread->task->name;
693 else
694 name = thread->name;
[a35b458]695
[ef1eab7]696 if (additional)
[c1b073b7]697 printf("%-8" PRIu64 " %p %p %9" PRIu64 "%c %9" PRIu64 "%c ",
[577f042a]698 thread->tid, thread->thread_code, thread->kstack,
699 ucycles, usuffix, kcycles, ksuffix);
[48dcc69]700 else
[c1b073b7]701 printf("%-8" PRIu64 " %-14s %p %-8s %p %-5" PRIu32 "\n",
[41bfc64]702 thread->tid, name, thread, thread_states[state],
[26aafe8]703 thread->task, thread->task->container);
[a35b458]704
[ef1eab7]705 if (additional) {
[efed95a3]706 cpu_t *cpu = atomic_get_unordered(&thread->cpu);
707 if (cpu)
708 printf("%-5u", cpu->id);
[48dcc69]709 else
710 printf("none ");
[a35b458]711
[41bfc64]712 if (state == Sleeping) {
[c1b073b7]713 printf(" %p", thread->sleep_queue);
[48dcc69]714 }
[a35b458]715
[48dcc69]716 printf("\n");
[43b1e86]717 }
[5dcee525]718}
719
[da1bafb]720/** Print list of threads debug info
[48dcc69]721 *
722 * @param additional Print additional information.
[da1bafb]723 *
724 */
[48dcc69]725void thread_print_list(bool additional)
[55ab0f1]726{
[ef1eab7]727 thread_t *thread;
728
[1871118]729 /* Accessing system-wide threads list through thread_first()/thread_next(). */
[da1bafb]730 irq_spinlock_lock(&threads_lock, true);
[a35b458]731
[c1b073b7]732 if (sizeof(void *) <= 4) {
733 if (additional)
734 printf("[id ] [code ] [stack ] [ucycles ] [kcycles ]"
735 " [cpu] [waitqueue]\n");
736 else
737 printf("[id ] [name ] [address ] [state ] [task ]"
738 " [ctn]\n");
739 } else {
740 if (additional) {
741 printf("[id ] [code ] [stack ] [ucycles ] [kcycles ]"
742 " [cpu] [waitqueue ]\n");
743 } else
744 printf("[id ] [name ] [address ] [state ]"
745 " [task ] [ctn]\n");
746 }
[a35b458]747
[aab5e46]748 thread = thread_first();
749 while (thread != NULL) {
[ef1eab7]750 thread_print(thread, additional);
[aab5e46]751 thread = thread_next(thread);
[ef1eab7]752 }
[a35b458]753
[da1bafb]754 irq_spinlock_unlock(&threads_lock, true);
[55ab0f1]755}
[9f52563]756
[1871118]757static bool thread_exists(thread_t *thread)
[016acbe]758{
[ef1eab7]759 odlink_t *odlink = odict_find_eq(&threads, thread, NULL);
760 return odlink != NULL;
[016acbe]761}
762
[1871118]763/** Check whether the thread exists, and if so, return a reference to it.
764 */
765thread_t *thread_try_get(thread_t *thread)
766{
767 irq_spinlock_lock(&threads_lock, true);
768
769 if (thread_exists(thread)) {
770 /* Try to strengthen the reference. */
771 thread = thread_try_ref(thread);
772 } else {
773 thread = NULL;
774 }
775
776 irq_spinlock_unlock(&threads_lock, true);
777
778 return thread;
779}
780
[cce6acf]781/** Update accounting of current thread.
782 *
783 * Note that thread_lock on THREAD must be already held and
784 * interrupts must be already disabled.
785 *
[da1bafb]786 * @param user True to update user accounting, false for kernel.
787 *
[cce6acf]788 */
[a2a00e8]789void thread_update_accounting(bool user)
[cce6acf]790{
[63e27ef]791 assert(interrupts_disabled());
[11909ce3]792
793 uint64_t time = get_cycle();
[a35b458]794
[da1bafb]795 if (user)
[11909ce3]796 atomic_time_increment(&THREAD->ucycles, time - THREAD->last_cycle);
[da1bafb]797 else
[11909ce3]798 atomic_time_increment(&THREAD->kcycles, time - THREAD->last_cycle);
[a35b458]799
[cce6acf]800 THREAD->last_cycle = time;
801}
802
[e1b6742]803/** Find thread structure corresponding to thread ID.
804 *
805 * The threads_lock must be already held by the caller of this function and
806 * interrupts must be disabled.
807 *
[1871118]808 * The returned reference is weak.
809 * If the caller needs to keep it, thread_try_ref() must be used to upgrade
810 * to a strong reference _before_ threads_lock is released.
811 *
[e1b6742]812 * @param id Thread ID.
813 *
814 * @return Thread structure address or NULL if there is no such thread ID.
815 *
816 */
817thread_t *thread_find_by_id(thread_id_t thread_id)
818{
[ef1eab7]819 thread_t *thread;
820
[63e27ef]821 assert(interrupts_disabled());
822 assert(irq_spinlock_locked(&threads_lock));
[a35b458]823
[aab5e46]824 thread = thread_first();
825 while (thread != NULL) {
[ef1eab7]826 if (thread->tid == thread_id)
827 return thread;
[a35b458]828
[aab5e46]829 thread = thread_next(thread);
[ef1eab7]830 }
[a35b458]831
[ef1eab7]832 return NULL;
[e1b6742]833}
834
[aab5e46]835/** Get count of threads.
836 *
837 * @return Number of threads in the system
838 */
839size_t thread_count(void)
840{
841 assert(interrupts_disabled());
842 assert(irq_spinlock_locked(&threads_lock));
843
844 return odict_count(&threads);
845}
846
847/** Get first thread.
848 *
849 * @return Pointer to first thread or @c NULL if there are none.
850 */
851thread_t *thread_first(void)
852{
853 odlink_t *odlink;
854
855 assert(interrupts_disabled());
856 assert(irq_spinlock_locked(&threads_lock));
857
858 odlink = odict_first(&threads);
859 if (odlink == NULL)
860 return NULL;
861
862 return odict_get_instance(odlink, thread_t, lthreads);
863}
864
865/** Get next thread.
866 *
867 * @param cur Current thread
868 * @return Pointer to next thread or @c NULL if there are no more threads.
869 */
870thread_t *thread_next(thread_t *cur)
871{
872 odlink_t *odlink;
873
874 assert(interrupts_disabled());
875 assert(irq_spinlock_locked(&threads_lock));
876
877 odlink = odict_next(&cur->lthreads, &threads);
878 if (odlink == NULL)
879 return NULL;
880
881 return odict_get_instance(odlink, thread_t, lthreads);
882}
883
[5b7a107]884#ifdef CONFIG_UDEBUG
885
[df58e44]886void thread_stack_trace(thread_id_t thread_id)
887{
888 irq_spinlock_lock(&threads_lock, true);
[1871118]889 thread_t *thread = thread_try_ref(thread_find_by_id(thread_id));
890 irq_spinlock_unlock(&threads_lock, true);
[a35b458]891
[df58e44]892 if (thread == NULL) {
893 printf("No such thread.\n");
894 return;
895 }
[a35b458]896
[df58e44]897 /*
898 * Schedule a stack trace to be printed
899 * just before the thread is scheduled next.
900 *
901 * If the thread is sleeping then try to interrupt
902 * the sleep. Any request for printing an uspace stack
903 * trace from within the kernel should be always
904 * considered a last resort debugging means, therefore
905 * forcing the thread's sleep to be interrupted
906 * is probably justifiable.
907 */
[a35b458]908
[7364e2d1]909 printf("Scheduling thread stack trace.\n");
[33e15a0]910 atomic_set_unordered(&thread->btrace, true);
[a35b458]911
[7364e2d1]912 thread_wakeup(thread);
[1871118]913 thread_put(thread);
[df58e44]914}
[e1b6742]915
[5b7a107]916#endif /* CONFIG_UDEBUG */
[e1b6742]917
[ef1eab7]918/** Get key function for the @c threads ordered dictionary.
919 *
920 * @param odlink Link
921 * @return Pointer to thread structure cast as 'void *'
922 */
923static void *threads_getkey(odlink_t *odlink)
924{
925 thread_t *thread = odict_get_instance(odlink, thread_t, lthreads);
926 return (void *) thread;
927}
928
929/** Key comparison function for the @c threads ordered dictionary.
930 *
931 * @param a Pointer to thread A
932 * @param b Pointer to thread B
933 * @return -1, 0, 1 iff pointer to A is less than, equal to, greater than B
934 */
935static int threads_cmp(void *a, void *b)
936{
937 if (a > b)
938 return -1;
939 else if (a == b)
940 return 0;
941 else
942 return +1;
943}
944
[9f52563]945/** Process syscall to create new thread.
946 *
947 */
[5a5269d]948sys_errno_t sys_thread_create(uspace_ptr_uspace_arg_t uspace_uarg, uspace_ptr_char uspace_name,
949 size_t name_len, uspace_ptr_thread_id_t uspace_thread_id)
[9f52563]950{
[24345a5]951 if (name_len > THREAD_NAME_BUFLEN - 1)
[7faabb7]952 name_len = THREAD_NAME_BUFLEN - 1;
[a35b458]953
[da1bafb]954 char namebuf[THREAD_NAME_BUFLEN];
[b7fd2a0]955 errno_t rc = copy_from_uspace(namebuf, uspace_name, name_len);
[a53ed3a]956 if (rc != EOK)
[b7fd2a0]957 return (sys_errno_t) rc;
[a35b458]958
[b60c582]959 namebuf[name_len] = 0;
[a35b458]960
[4680ef5]961 /*
962 * In case of failure, kernel_uarg will be deallocated in this function.
963 * In case of success, kernel_uarg will be freed in uinit().
964 */
[da1bafb]965 uspace_arg_t *kernel_uarg =
[11b285d]966 (uspace_arg_t *) malloc(sizeof(uspace_arg_t));
[7473807]967 if (!kernel_uarg)
968 return (sys_errno_t) ENOMEM;
[a35b458]969
[e3c762cd]970 rc = copy_from_uspace(kernel_uarg, uspace_uarg, sizeof(uspace_arg_t));
[a53ed3a]971 if (rc != EOK) {
[e3c762cd]972 free(kernel_uarg);
[b7fd2a0]973 return (sys_errno_t) rc;
[e3c762cd]974 }
[a35b458]975
[da1bafb]976 thread_t *thread = thread_create(uinit, kernel_uarg, TASK,
[6eef3c4]977 THREAD_FLAG_USPACE | THREAD_FLAG_NOATTACH, namebuf);
[da1bafb]978 if (thread) {
[5a5269d]979 if (uspace_thread_id) {
[da1bafb]980 rc = copy_to_uspace(uspace_thread_id, &thread->tid,
981 sizeof(thread->tid));
[a53ed3a]982 if (rc != EOK) {
[d8431986]983 /*
984 * We have encountered a failure, but the thread
985 * has already been created. We need to undo its
986 * creation now.
987 */
[a35b458]988
[d8431986]989 /*
[ea7890e7]990 * The new thread structure is initialized, but
991 * is still not visible to the system.
[d8431986]992 * We can safely deallocate it.
993 */
[82d515e9]994 slab_free(thread_cache, thread);
[da1bafb]995 free(kernel_uarg);
[a35b458]996
[b7fd2a0]997 return (sys_errno_t) rc;
[3bacee1]998 }
[d8431986]999 }
[a35b458]1000
[9a1b20c]1001#ifdef CONFIG_UDEBUG
[13964ef]1002 /*
1003 * Generate udebug THREAD_B event and attach the thread.
1004 * This must be done atomically (with the debug locks held),
1005 * otherwise we would either miss some thread or receive
1006 * THREAD_B events for threads that already existed
1007 * and could be detected with THREAD_READ before.
1008 */
[da1bafb]1009 udebug_thread_b_event_attach(thread, TASK);
[13964ef]1010#else
[da1bafb]1011 thread_attach(thread, TASK);
[9a1b20c]1012#endif
[286da52]1013 thread_start(thread);
1014 thread_put(thread);
[a35b458]1015
[d8431986]1016 return 0;
[201abde]1017 } else
[0f250f9]1018 free(kernel_uarg);
[a35b458]1019
[b7fd2a0]1020 return (sys_errno_t) ENOMEM;
[9f52563]1021}
1022
1023/** Process syscall to terminate thread.
1024 *
1025 */
[b7fd2a0]1026sys_errno_t sys_thread_exit(int uspace_status)
[9f52563]1027{
[68091bd]1028 thread_exit();
[9f52563]1029}
[b45c443]1030
[3ce7f082]1031/** Syscall for getting TID.
1032 *
[201abde]1033 * @param uspace_thread_id Userspace address of 8-byte buffer where to store
1034 * current thread ID.
1035 *
1036 * @return 0 on success or an error code from @ref errno.h.
[da1bafb]1037 *
[b45c443]1038 */
[5a5269d]1039sys_errno_t sys_thread_get_id(uspace_ptr_thread_id_t uspace_thread_id)
[3ce7f082]1040{
1041 /*
1042 * No need to acquire lock on THREAD because tid
1043 * remains constant for the lifespan of the thread.
[da1bafb]1044 *
[3ce7f082]1045 */
[b7fd2a0]1046 return (sys_errno_t) copy_to_uspace(uspace_thread_id, &THREAD->tid,
[201abde]1047 sizeof(THREAD->tid));
[3ce7f082]1048}
[6f4495f5]1049
[d9ece1cb]1050/** Syscall wrapper for sleeping. */
[b7fd2a0]1051sys_errno_t sys_thread_usleep(uint32_t usec)
[d9ece1cb]1052{
[22e6802]1053 thread_usleep(usec);
[d9ece1cb]1054 return 0;
1055}
1056
[b7fd2a0]1057sys_errno_t sys_thread_udelay(uint32_t usec)
[7e7b791]1058{
[8d6c1f1]1059 delay(usec);
[7e7b791]1060 return 0;
1061}
1062
[3ce7f082]1063/** @}
1064 */
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