source: mainline/kernel/generic/src/proc/scheduler.c@ 286da52

Last change on this file since 286da52 was 286da52, checked in by Jiří Zárevúcky <zarevucky.jiri@…>, 18 months ago

Streamline requeuing threads

Split thread_ready() into different functions for different circumstances,
since they can be simplified after.

  • Property mode set to 100644
File size: 19.0 KB
RevLine 
[f761f1eb]1/*
[481d4751]2 * Copyright (c) 2010 Jakub Jermar
[25939997]3 * Copyright (c) 2023 Jiří Zárevúcky
[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 Scheduler and load balancing.
[9179d0a]37 *
[cf26ba9]38 * This file contains the scheduler and kcpulb kernel thread which
[9179d0a]39 * performs load-balancing of per-CPU run queues.
40 */
41
[63e27ef]42#include <assert.h>
[4621d23]43#include <atomic.h>
[f761f1eb]44#include <proc/scheduler.h>
45#include <proc/thread.h>
46#include <proc/task.h>
[32ff43e6]47#include <mm/frame.h>
48#include <mm/page.h>
[20d50a1]49#include <mm/as.h>
[b3f8fb7]50#include <time/timeout.h>
[fe19611]51#include <time/delay.h>
[32ff43e6]52#include <arch/asm.h>
[cce6acf]53#include <arch/cycle.h>
[23684b7]54#include <atomic.h>
[32ff43e6]55#include <synch/spinlock.h>
[f761f1eb]56#include <config.h>
57#include <context.h>
[b3f8fb7]58#include <fpu_context.h>
[b2e121a]59#include <halt.h>
[f761f1eb]60#include <arch.h>
[5c9a08b]61#include <adt/list.h>
[02a99d2]62#include <panic.h>
[32ff43e6]63#include <cpu.h>
[bab75df6]64#include <stdio.h>
[b2fa1204]65#include <log.h>
[df58e44]66#include <stacktrace.h>
[9c0a9b3]67
[31e15be]68atomic_size_t nrdy; /**< Number of ready threads in the system. */
[f761f1eb]69
[5f85c91]70#ifdef CONFIG_FPU_LAZY
[b49f4ae]71void scheduler_fpu_lazy_request(void)
72{
73 fpu_enable();
[f3dbe27]74
75 /* We need this lock to ensure synchronization with thread destructor. */
[169815e]76 irq_spinlock_lock(&CPU->fpu_lock, false);
[a35b458]77
[a3eeceb6]78 /* Save old context */
[f3dbe27]79 thread_t *owner = atomic_load_explicit(&CPU->fpu_owner, memory_order_relaxed);
80 if (owner != NULL) {
81 fpu_context_save(&owner->fpu_context);
82 atomic_store_explicit(&CPU->fpu_owner, NULL, memory_order_relaxed);
[b49f4ae]83 }
[a35b458]84
[f3dbe27]85 irq_spinlock_unlock(&CPU->fpu_lock, false);
86
[7d6ec87]87 if (THREAD->fpu_context_exists) {
[0366d09d]88 fpu_context_restore(&THREAD->fpu_context);
[7d6ec87]89 } else {
[f76fed4]90 fpu_init();
[6eef3c4]91 THREAD->fpu_context_exists = true;
[b49f4ae]92 }
[a35b458]93
[f3dbe27]94 atomic_store_explicit(&CPU->fpu_owner, THREAD, memory_order_relaxed);
[b49f4ae]95}
[da1bafb]96#endif /* CONFIG_FPU_LAZY */
[0ca6faa]97
[70527f1]98/** Initialize scheduler
99 *
100 * Initialize kernel scheduler.
101 *
102 */
[f761f1eb]103void scheduler_init(void)
104{
105}
106
[70527f1]107/** Get thread to be scheduled
108 *
109 * Get the optimal thread to be scheduled
[d1a184f]110 * according to thread accounting and scheduler
[70527f1]111 * policy.
112 *
113 * @return Thread to be scheduled.
114 *
115 */
[ec8ef12]116static thread_t *try_find_thread(int *rq_index)
[f761f1eb]117{
[ec8ef12]118 assert(interrupts_disabled());
[63e27ef]119 assert(CPU != NULL);
[a35b458]120
[ec8ef12]121 if (atomic_load(&CPU->nrdy) == 0)
122 return NULL;
[a35b458]123
[ec8ef12]124 for (int i = 0; i < RQ_COUNT; i++) {
[da1bafb]125 irq_spinlock_lock(&(CPU->rq[i].lock), false);
126 if (CPU->rq[i].n == 0) {
[f761f1eb]127 /*
128 * If this queue is empty, try a lower-priority queue.
129 */
[da1bafb]130 irq_spinlock_unlock(&(CPU->rq[i].lock), false);
[f761f1eb]131 continue;
132 }
[a35b458]133
[248fc1a]134 atomic_dec(&CPU->nrdy);
[59e07c91]135 atomic_dec(&nrdy);
[da1bafb]136 CPU->rq[i].n--;
[a35b458]137
[f761f1eb]138 /*
139 * Take the first thread from the queue.
140 */
[55b77d9]141 thread_t *thread = list_get_instance(
142 list_first(&CPU->rq[i].rq), thread_t, rq_link);
[da1bafb]143 list_remove(&thread->rq_link);
[a35b458]144
[8996582]145 irq_spinlock_unlock(&(CPU->rq[i].lock), false);
[a35b458]146
[117ad5a2]147 *rq_index = i;
[da1bafb]148 return thread;
[f761f1eb]149 }
[a35b458]150
[ec8ef12]151 return NULL;
152}
153
154/** Get thread to be scheduled
155 *
156 * Get the optimal thread to be scheduled
157 * according to thread accounting and scheduler
158 * policy.
159 *
160 * @return Thread to be scheduled.
161 *
162 */
163static thread_t *find_best_thread(int *rq_index)
164{
165 assert(interrupts_disabled());
166 assert(CPU != NULL);
167
168 while (true) {
169 thread_t *thread = try_find_thread(rq_index);
170
171 if (thread != NULL)
172 return thread;
173
174 /*
175 * For there was nothing to run, the CPU goes to sleep
176 * until a hardware interrupt or an IPI comes.
177 * This improves energy saving and hyperthreading.
178 */
[4760793]179 CPU_LOCAL->idle = true;
[ec8ef12]180
181 /*
182 * Go to sleep with interrupts enabled.
183 * Ideally, this should be atomic, but this is not guaranteed on
184 * all platforms yet, so it is possible we will go sleep when
185 * a thread has just become available.
186 */
187 cpu_interruptible_sleep();
188 }
[f761f1eb]189}
190
[c680333]191static void switch_task(task_t *task)
192{
193 /* If the task stays the same, a lot of work is avoided. */
194 if (TASK == task)
195 return;
196
197 as_t *old_as = AS;
198 as_t *new_as = task->as;
199
200 /* It is possible for two tasks to share one address space. */
201 if (old_as != new_as)
202 as_switch(old_as, new_as);
203
204 if (TASK)
205 task_release(TASK);
206
207 TASK = task;
208
209 task_hold(TASK);
210
211 before_task_runs_arch();
212}
213
[70527f1]214/** Prevent rq starvation
215 *
216 * Prevent low priority threads from starving in rq's.
217 *
218 * When the function decides to relink rq's, it reconnects
219 * respective pointers so that in result threads with 'pri'
[abbc16e]220 * greater or equal start are moved to a higher-priority queue.
[70527f1]221 *
222 * @param start Threshold priority.
223 *
[f761f1eb]224 */
[e16e036a]225static void relink_rq(int start)
[f761f1eb]226{
[25939997]227 assert(interrupts_disabled());
228
[4760793]229 if (CPU_LOCAL->current_clock_tick < CPU_LOCAL->relink_deadline)
[011c79a]230 return;
231
[4760793]232 CPU_LOCAL->relink_deadline = CPU_LOCAL->current_clock_tick + NEEDS_RELINK_MAX;
[a35b458]233
[3118355]234 /* Temporary cache for lists we are moving. */
[011c79a]235 list_t list;
[55b77d9]236 list_initialize(&list);
[a35b458]237
[3118355]238 size_t n = 0;
239
240 /* Move every list (except the one with highest priority) one level up. */
241 for (int i = RQ_COUNT - 1; i > start; i--) {
242 irq_spinlock_lock(&CPU->rq[i].lock, false);
[a35b458]243
[3118355]244 /* Swap lists. */
245 list_swap(&CPU->rq[i].rq, &list);
[a35b458]246
[3118355]247 /* Swap number of items. */
248 size_t tmpn = CPU->rq[i].n;
249 CPU->rq[i].n = n;
250 n = tmpn;
[a35b458]251
[011c79a]252 irq_spinlock_unlock(&CPU->rq[i].lock, false);
[f761f1eb]253 }
[a35b458]254
[3118355]255 /* Append the contents of rq[start + 1] to rq[start]. */
256 if (n != 0) {
257 irq_spinlock_lock(&CPU->rq[start].lock, false);
258 list_concat(&CPU->rq[start].rq, &list);
259 CPU->rq[start].n += n;
260 irq_spinlock_unlock(&CPU->rq[start].lock, false);
261 }
[f761f1eb]262}
263
[23f36a3]264/**
265 * Do whatever needs to be done with current FPU state before we switch to
266 * another thread.
267 */
268static void fpu_cleanup(void)
269{
270#if (defined CONFIG_FPU) && (!defined CONFIG_FPU_LAZY)
271 fpu_context_save(&THREAD->fpu_context);
272#endif
273}
274
275/**
276 * Set correct FPU state for this thread after switch from another thread.
277 */
278static void fpu_restore(void)
279{
280#ifdef CONFIG_FPU_LAZY
281 /*
282 * The only concurrent modification possible for fpu_owner here is
283 * another thread changing it from itself to NULL in its destructor.
284 */
285 thread_t *owner = atomic_load_explicit(&CPU->fpu_owner,
286 memory_order_relaxed);
287
288 if (THREAD == owner)
289 fpu_enable();
290 else
291 fpu_disable();
292
293#elif defined CONFIG_FPU
294 fpu_enable();
295 if (THREAD->fpu_context_exists)
296 fpu_context_restore(&THREAD->fpu_context);
297 else {
298 fpu_init();
299 THREAD->fpu_context_exists = true;
300 }
301#endif
302}
303
[8996582]304/** Things to do before we switch to THREAD context.
305 */
306static void prepare_to_run_thread(int rq_index)
307{
308 relink_rq(rq_index);
309
310 switch_task(THREAD->task);
311
312 irq_spinlock_lock(&THREAD->lock, false);
[286da52]313 assert(THREAD->cpu == CPU);
314
[8996582]315 THREAD->state = Running;
316 THREAD->priority = rq_index; /* Correct rq index */
317
318 /*
319 * Clear the stolen flag so that it can be migrated
320 * when load balancing needs emerge.
321 */
322 THREAD->stolen = false;
323
324#ifdef SCHEDULER_VERBOSE
325 log(LF_OTHER, LVL_DEBUG,
326 "cpu%u: tid %" PRIu64 " (priority=%d, ticks=%" PRIu64
327 ", nrdy=%zu)", CPU->id, THREAD->tid, THREAD->priority,
328 THREAD->ticks, atomic_load(&CPU->nrdy));
329#endif
330
331 /*
332 * Some architectures provide late kernel PA2KA(identity)
333 * mapping in a page fault handler. However, the page fault
334 * handler uses the kernel stack of the running thread and
335 * therefore cannot be used to map it. The kernel stack, if
336 * necessary, is to be mapped in before_thread_runs(). This
337 * function must be executed before the switch to the new stack.
338 */
339 before_thread_runs_arch();
340
341#ifdef CONFIG_UDEBUG
342 if (THREAD->btrace) {
343 istate_t *istate = THREAD->udebug.uspace_state;
344 if (istate != NULL) {
345 printf("Thread %" PRIu64 " stack trace:\n", THREAD->tid);
346 stack_trace_istate(istate);
347 }
348
349 THREAD->btrace = false;
350 }
351#endif
352
353 fpu_restore();
354
355 /* Time allocation in microseconds. */
356 uint64_t time_to_run = (rq_index + 1) * 10000;
357
358 /* Set the time of next preemption. */
359 CPU_LOCAL->preempt_deadline =
360 CPU_LOCAL->current_clock_tick + us2ticks(time_to_run);
361
362 /* Save current CPU cycle */
363 THREAD->last_cycle = get_cycle();
[c1eaec4]364
365 irq_spinlock_unlock(&THREAD->lock, false);
[8996582]366}
367
[286da52]368static void add_to_rq(thread_t *thread, cpu_t *cpu, int i)
369{
370 /* Add to the appropriate runqueue. */
371 runq_t *rq = &cpu->rq[i];
372
373 irq_spinlock_lock(&rq->lock, false);
374 list_append(&thread->rq_link, &rq->rq);
375 rq->n++;
376 irq_spinlock_unlock(&rq->lock, false);
377
378 atomic_inc(&nrdy);
379 atomic_inc(&cpu->nrdy);
380}
381
382/** Requeue a thread that was just preempted on this CPU.
383 */
384static void thread_requeue_preempted(thread_t *thread)
385{
386 irq_spinlock_lock(&thread->lock, false);
387
388 assert(thread->state == Running);
389 assert(thread->cpu == CPU);
390
391 int i = (thread->priority < RQ_COUNT - 1) ?
392 ++thread->priority : thread->priority;
393
394 thread->state = Ready;
395
396 irq_spinlock_unlock(&thread->lock, false);
397
398 add_to_rq(thread, CPU, i);
399}
400
401void thread_requeue_sleeping(thread_t *thread)
402{
403 ipl_t ipl = interrupts_disable();
404
405 irq_spinlock_lock(&thread->lock, false);
406
407 assert(thread->state == Sleeping || thread->state == Entering);
408
409 thread->priority = 0;
410 thread->state = Ready;
411
412 /* Prefer the CPU on which the thread ran last */
413 if (!thread->cpu)
414 thread->cpu = CPU;
415
416 cpu_t *cpu = thread->cpu;
417
418 irq_spinlock_unlock(&thread->lock, false);
419
420 add_to_rq(thread, cpu, 0);
421
422 interrupts_restore(ipl);
423}
424
[6e49dab]425static void cleanup_after_thread(thread_t *thread, state_t out_state)
426{
427 assert(CURRENT->mutex_locks == 0);
428 assert(interrupts_disabled());
429
430 int expected;
431
432 switch (out_state) {
433 case Running:
[286da52]434 thread_requeue_preempted(thread);
[6e49dab]435 break;
436
437 case Exiting:
438 waitq_close(&thread->join_wq);
439
440 /*
441 * Release the reference CPU has for the thread.
442 * If there are no other references (e.g. threads calling join),
443 * the thread structure is deallocated.
444 */
445 thread_put(thread);
446 break;
447
448 case Sleeping:
449 expected = SLEEP_INITIAL;
450
451 /* Only set SLEEP_ASLEEP in sleep pad if it's still in initial state */
452 if (!atomic_compare_exchange_strong_explicit(&thread->sleep_state,
453 &expected, SLEEP_ASLEEP,
454 memory_order_acq_rel, memory_order_acquire)) {
455
456 assert(expected == SLEEP_WOKE);
457 /* The thread has already been woken up, requeue immediately. */
[286da52]458 thread_requeue_sleeping(thread);
[6e49dab]459 }
460 break;
461
462 default:
463 /*
464 * Entering state is unexpected.
465 */
466 panic("tid%" PRIu64 ": unexpected state %s.",
467 thread->tid, thread_states[thread->state]);
468 break;
469 }
470}
471
[25939997]472/** Switch to scheduler context to let other threads run. */
[151c050]473void scheduler_enter(state_t new_state)
[7d6ec87]474{
[151c050]475 ipl_t ipl = interrupts_disable();
[a35b458]476
[151c050]477 assert(CPU != NULL);
478 assert(THREAD != NULL);
[23f36a3]479
[151c050]480 fpu_cleanup();
[a35b458]481
[25939997]482 if (atomic_load(&haltstate))
483 halt();
484
[6a0e568]485 /* Check if we have a thread to switch to. */
486
487 int rq_index;
488 thread_t *new_thread = try_find_thread(&rq_index);
489
490 if (new_thread == NULL && new_state == Running) {
491 /* No other thread to run, but we still have work to do here. */
492 interrupts_restore(ipl);
493 return;
494 }
495
[151c050]496 irq_spinlock_lock(&THREAD->lock, false);
497 THREAD->state = new_state;
[a35b458]498
[151c050]499 /* Update thread kernel accounting */
500 THREAD->kcycles += get_cycle() - THREAD->last_cycle;
[a35b458]501
[29029ac0]502 /*
503 * On Sparc, this saves some extra userspace state that's not
504 * covered by context_save()/context_restore().
505 */
506 after_thread_ran_arch();
507
[c1eaec4]508 irq_spinlock_unlock(&THREAD->lock, false);
509
510 CPU_LOCAL->exiting_state = new_state;
[ed7e057]511
[6a0e568]512 if (new_thread) {
513 thread_t *old_thread = THREAD;
514 CPU_LOCAL->prev_thread = old_thread;
515 THREAD = new_thread;
516 /* No waiting necessary, we can switch to the new thread directly. */
517 prepare_to_run_thread(rq_index);
518
519 current_copy(CURRENT, (current_t *) new_thread->kstack);
520 context_swap(&old_thread->saved_context, &new_thread->saved_context);
521 } else {
522 /*
523 * A new thread isn't immediately available, switch to a separate
524 * stack to sleep or do other idle stuff.
525 */
526 current_copy(CURRENT, (current_t *) CPU_LOCAL->stack);
527 context_swap(&THREAD->saved_context, &CPU_LOCAL->scheduler_context);
528 }
[ed7e057]529
[c1eaec4]530 assert(CURRENT->mutex_locks == 0);
531 assert(interrupts_disabled());
532
[6a0e568]533 /* Check if we need to clean up after another thread. */
534 if (CPU_LOCAL->prev_thread) {
535 cleanup_after_thread(CPU_LOCAL->prev_thread, CPU_LOCAL->exiting_state);
536 CPU_LOCAL->prev_thread = NULL;
537 }
538
[ed7e057]539 interrupts_restore(ipl);
[7d6ec87]540}
[70527f1]541
[25939997]542/** Enter main scheduler loop. Never returns.
[70527f1]543 *
[25939997]544 * This function switches to a runnable thread as soon as one is available,
545 * after which it is only switched back to if a thread is stopping and there is
546 * no other thread to run in its place. We need a separate context for that
547 * because we're going to block the CPU, which means we need another context
548 * to clean up after the previous thread.
[70527f1]549 */
[25939997]550void scheduler_run(void)
[f761f1eb]551{
[25939997]552 assert(interrupts_disabled());
553
[63e27ef]554 assert(CPU != NULL);
[25939997]555 assert(TASK == NULL);
556 assert(THREAD == NULL);
[63e27ef]557 assert(interrupts_disabled());
[a35b458]558
[25939997]559 while (!atomic_load(&haltstate)) {
560 assert(CURRENT->mutex_locks == 0);
561
562 int rq_index;
563 THREAD = find_best_thread(&rq_index);
564 prepare_to_run_thread(rq_index);
565
566 /*
567 * Copy the knowledge of CPU, TASK, THREAD and preemption counter to
568 * thread's stack.
569 */
570 current_copy(CURRENT, (current_t *) THREAD->kstack);
571
572 /* Switch to thread context. */
573 context_swap(&CPU_LOCAL->scheduler_context, &THREAD->saved_context);
574
[c1eaec4]575 /* Back from another thread. */
[25939997]576 assert(CPU != NULL);
577 assert(THREAD != NULL);
[c1eaec4]578 assert(CURRENT->mutex_locks == 0);
[25939997]579 assert(interrupts_disabled());
[151c050]580
[c1eaec4]581 cleanup_after_thread(THREAD, CPU_LOCAL->exiting_state);
[a35b458]582
[25939997]583 /*
584 * Necessary because we're allowing interrupts in find_best_thread(),
585 * so we need to avoid other code referencing the thread we left.
586 */
[43114c5]587 THREAD = NULL;
[f761f1eb]588 }
[a35b458]589
[25939997]590 halt();
[f761f1eb]591}
592
[6a0e568]593/** Thread wrapper.
594 *
595 * This wrapper is provided to ensure that a starting thread properly handles
596 * everything it needs to do when first scheduled, and when it exits.
597 */
598void thread_main_func(void)
599{
600 assert(interrupts_disabled());
601
602 void (*f)(void *) = THREAD->thread_code;
603 void *arg = THREAD->thread_arg;
604
605 /* This is where each thread wakes up after its creation */
606
607 /* Check if we need to clean up after another thread. */
608 if (CPU_LOCAL->prev_thread) {
609 cleanup_after_thread(CPU_LOCAL->prev_thread, CPU_LOCAL->exiting_state);
610 CPU_LOCAL->prev_thread = NULL;
611 }
612
613 interrupts_enable();
614
615 f(arg);
616
617 thread_exit();
618
619 /* Not reached */
620}
621
[5f85c91]622#ifdef CONFIG_SMP
[fbaf6ac]623
624static thread_t *steal_thread_from(cpu_t *old_cpu, int i)
625{
626 runq_t *old_rq = &old_cpu->rq[i];
627 runq_t *new_rq = &CPU->rq[i];
628
[06f81c4]629 ipl_t ipl = interrupts_disable();
630
631 irq_spinlock_lock(&old_rq->lock, false);
[fbaf6ac]632
[f3dbe27]633 /*
634 * If fpu_owner is any thread in the list, its store is seen here thanks to
635 * the runqueue lock.
636 */
637 thread_t *fpu_owner = atomic_load_explicit(&old_cpu->fpu_owner,
638 memory_order_relaxed);
639
[fbaf6ac]640 /* Search rq from the back */
641 list_foreach_rev(old_rq->rq, rq_link, thread_t, thread) {
642
643 irq_spinlock_lock(&thread->lock, false);
644
645 /*
646 * Do not steal CPU-wired threads, threads
647 * already stolen, threads for which migration
648 * was temporarily disabled or threads whose
649 * FPU context is still in the CPU.
650 */
[06f81c4]651 if (thread->stolen || thread->nomigrate ||
[f3dbe27]652 thread == fpu_owner) {
[fbaf6ac]653 irq_spinlock_unlock(&thread->lock, false);
654 continue;
655 }
656
657 thread->stolen = true;
658 thread->cpu = CPU;
659
660 irq_spinlock_unlock(&thread->lock, false);
661
662 /*
663 * Ready thread on local CPU
664 */
665
666#ifdef KCPULB_VERBOSE
667 log(LF_OTHER, LVL_DEBUG,
668 "kcpulb%u: TID %" PRIu64 " -> cpu%u, "
669 "nrdy=%ld, avg=%ld", CPU->id, thread->tid,
670 CPU->id, atomic_load(&CPU->nrdy),
671 atomic_load(&nrdy) / config.cpu_active);
672#endif
673
674 /* Remove thread from ready queue. */
675 old_rq->n--;
676 list_remove(&thread->rq_link);
[06f81c4]677 irq_spinlock_unlock(&old_rq->lock, false);
[fbaf6ac]678
679 /* Append thread to local queue. */
[06f81c4]680 irq_spinlock_lock(&new_rq->lock, false);
[fbaf6ac]681 list_append(&thread->rq_link, &new_rq->rq);
682 new_rq->n++;
[06f81c4]683 irq_spinlock_unlock(&new_rq->lock, false);
[fbaf6ac]684
685 atomic_dec(&old_cpu->nrdy);
686 atomic_inc(&CPU->nrdy);
[06f81c4]687 interrupts_restore(ipl);
[fbaf6ac]688 return thread;
689 }
690
[06f81c4]691 irq_spinlock_unlock(&old_rq->lock, false);
692 interrupts_restore(ipl);
[fbaf6ac]693 return NULL;
694}
695
[70527f1]696/** Load balancing thread
697 *
698 * SMP load balancing thread, supervising thread supplies
699 * for the CPU it's wired to.
700 *
701 * @param arg Generic thread argument (unused).
702 *
[f761f1eb]703 */
704void kcpulb(void *arg)
705{
[3cfe2b8]706 size_t average;
707 size_t rdy;
[a35b458]708
[f761f1eb]709loop:
710 /*
[3260ada]711 * Work in 1s intervals.
[f761f1eb]712 */
[3260ada]713 thread_sleep(1);
[a35b458]714
[f761f1eb]715not_satisfied:
716 /*
717 * Calculate the number of threads that will be migrated/stolen from
718 * other CPU's. Note that situation can have changed between two
719 * passes. Each time get the most up to date counts.
[da1bafb]720 *
[f761f1eb]721 */
[036e97c]722 average = atomic_load(&nrdy) / config.cpu_active + 1;
723 rdy = atomic_load(&CPU->nrdy);
[a35b458]724
[da1bafb]725 if (average <= rdy)
[f761f1eb]726 goto satisfied;
[a35b458]727
[3cfe2b8]728 size_t count = average - rdy;
[a35b458]729
[f761f1eb]730 /*
[4e33b6b]731 * Searching least priority queues on all CPU's first and most priority
732 * queues on all CPU's last.
[f761f1eb]733 */
[da1bafb]734 size_t acpu;
735 int rq;
[a35b458]736
[da1bafb]737 for (rq = RQ_COUNT - 1; rq >= 0; rq--) {
738 for (acpu = 0; acpu < config.cpu_active; acpu++) {
[fbaf6ac]739 cpu_t *cpu = &cpus[acpu];
[a35b458]740
[f761f1eb]741 /*
742 * Not interested in ourselves.
[4e33b6b]743 * Doesn't require interrupt disabling for kcpulb has
744 * THREAD_FLAG_WIRED.
[da1bafb]745 *
[f761f1eb]746 */
[43114c5]747 if (CPU == cpu)
[248fc1a]748 continue;
[a35b458]749
[036e97c]750 if (atomic_load(&cpu->nrdy) <= average)
[248fc1a]751 continue;
[a35b458]752
[fbaf6ac]753 if (steal_thread_from(cpu, rq) && --count == 0)
754 goto satisfied;
[f761f1eb]755 }
756 }
[a35b458]757
[036e97c]758 if (atomic_load(&CPU->nrdy)) {
[f761f1eb]759 /*
760 * Be a little bit light-weight and let migrated threads run.
[da1bafb]761 *
[f761f1eb]762 */
[151c050]763 thread_yield();
[3260ada]764 } else {
[f761f1eb]765 /*
766 * We failed to migrate a single thread.
[3260ada]767 * Give up this turn.
[da1bafb]768 *
[f761f1eb]769 */
[3260ada]770 goto loop;
[f761f1eb]771 }
[a35b458]772
[f761f1eb]773 goto not_satisfied;
[a35b458]774
[f761f1eb]775satisfied:
776 goto loop;
777}
[5f85c91]778#endif /* CONFIG_SMP */
[10e16a7]779
[da1bafb]780/** Print information about threads & scheduler queues
781 *
782 */
[10e16a7]783void sched_print_list(void)
784{
[da1bafb]785 size_t cpu;
[4184e76]786 for (cpu = 0; cpu < config.cpu_count; cpu++) {
[10e16a7]787 if (!cpus[cpu].active)
788 continue;
[a35b458]789
[3b68542]790 printf("cpu%u: address=%p, nrdy=%zu\n",
791 cpus[cpu].id, &cpus[cpu], atomic_load(&cpus[cpu].nrdy));
[a35b458]792
[da1bafb]793 unsigned int i;
[4e33b6b]794 for (i = 0; i < RQ_COUNT; i++) {
[da1bafb]795 irq_spinlock_lock(&(cpus[cpu].rq[i].lock), false);
796 if (cpus[cpu].rq[i].n == 0) {
797 irq_spinlock_unlock(&(cpus[cpu].rq[i].lock), false);
[10e16a7]798 continue;
799 }
[a35b458]800
[5b86d10]801 printf("\trq[%u]: ", i);
[feeac0d]802 list_foreach(cpus[cpu].rq[i].rq, rq_link, thread_t,
803 thread) {
[da1bafb]804 printf("%" PRIu64 "(%s) ", thread->tid,
805 thread_states[thread->state]);
[10e16a7]806 }
807 printf("\n");
[a35b458]808
[da1bafb]809 irq_spinlock_unlock(&(cpus[cpu].rq[i].lock), false);
[10e16a7]810 }
811 }
812}
[b45c443]813
[cc73a8a1]814/** @}
[b45c443]815 */
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