sched.c 24 KB

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  1. /* sched.c - SPU scheduler.
  2. *
  3. * Copyright (C) IBM 2005
  4. * Author: Mark Nutter <mnutter@us.ibm.com>
  5. *
  6. * 2006-03-31 NUMA domains added.
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation; either version 2, or (at your option)
  11. * any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program; if not, write to the Free Software
  20. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  21. */
  22. #undef DEBUG
  23. #include <linux/module.h>
  24. #include <linux/errno.h>
  25. #include <linux/sched.h>
  26. #include <linux/kernel.h>
  27. #include <linux/mm.h>
  28. #include <linux/completion.h>
  29. #include <linux/vmalloc.h>
  30. #include <linux/smp.h>
  31. #include <linux/stddef.h>
  32. #include <linux/unistd.h>
  33. #include <linux/numa.h>
  34. #include <linux/mutex.h>
  35. #include <linux/notifier.h>
  36. #include <linux/kthread.h>
  37. #include <linux/pid_namespace.h>
  38. #include <linux/proc_fs.h>
  39. #include <linux/seq_file.h>
  40. #include <asm/io.h>
  41. #include <asm/mmu_context.h>
  42. #include <asm/spu.h>
  43. #include <asm/spu_csa.h>
  44. #include <asm/spu_priv1.h>
  45. #include "spufs.h"
  46. struct spu_prio_array {
  47. DECLARE_BITMAP(bitmap, MAX_PRIO);
  48. struct list_head runq[MAX_PRIO];
  49. spinlock_t runq_lock;
  50. int nr_waiting;
  51. };
  52. static unsigned long spu_avenrun[3];
  53. static struct spu_prio_array *spu_prio;
  54. static struct task_struct *spusched_task;
  55. static struct timer_list spusched_timer;
  56. /*
  57. * Priority of a normal, non-rt, non-niced'd process (aka nice level 0).
  58. */
  59. #define NORMAL_PRIO 120
  60. /*
  61. * Frequency of the spu scheduler tick. By default we do one SPU scheduler
  62. * tick for every 10 CPU scheduler ticks.
  63. */
  64. #define SPUSCHED_TICK (10)
  65. /*
  66. * These are the 'tuning knobs' of the scheduler:
  67. *
  68. * Minimum timeslice is 5 msecs (or 1 spu scheduler tick, whichever is
  69. * larger), default timeslice is 100 msecs, maximum timeslice is 800 msecs.
  70. */
  71. #define MIN_SPU_TIMESLICE max(5 * HZ / (1000 * SPUSCHED_TICK), 1)
  72. #define DEF_SPU_TIMESLICE (100 * HZ / (1000 * SPUSCHED_TICK))
  73. #define MAX_USER_PRIO (MAX_PRIO - MAX_RT_PRIO)
  74. #define SCALE_PRIO(x, prio) \
  75. max(x * (MAX_PRIO - prio) / (MAX_USER_PRIO / 2), MIN_SPU_TIMESLICE)
  76. /*
  77. * scale user-nice values [ -20 ... 0 ... 19 ] to time slice values:
  78. * [800ms ... 100ms ... 5ms]
  79. *
  80. * The higher a thread's priority, the bigger timeslices
  81. * it gets during one round of execution. But even the lowest
  82. * priority thread gets MIN_TIMESLICE worth of execution time.
  83. */
  84. void spu_set_timeslice(struct spu_context *ctx)
  85. {
  86. if (ctx->prio < NORMAL_PRIO)
  87. ctx->time_slice = SCALE_PRIO(DEF_SPU_TIMESLICE * 4, ctx->prio);
  88. else
  89. ctx->time_slice = SCALE_PRIO(DEF_SPU_TIMESLICE, ctx->prio);
  90. }
  91. /*
  92. * Update scheduling information from the owning thread.
  93. */
  94. void __spu_update_sched_info(struct spu_context *ctx)
  95. {
  96. /*
  97. * 32-Bit assignment are atomic on powerpc, and we don't care about
  98. * memory ordering here because retriving the controlling thread is
  99. * per defintion racy.
  100. */
  101. ctx->tid = current->pid;
  102. /*
  103. * We do our own priority calculations, so we normally want
  104. * ->static_prio to start with. Unfortunately thies field
  105. * contains junk for threads with a realtime scheduling
  106. * policy so we have to look at ->prio in this case.
  107. */
  108. if (rt_prio(current->prio))
  109. ctx->prio = current->prio;
  110. else
  111. ctx->prio = current->static_prio;
  112. ctx->policy = current->policy;
  113. /*
  114. * A lot of places that don't hold list_mutex poke into
  115. * cpus_allowed, including grab_runnable_context which
  116. * already holds the runq_lock. So abuse runq_lock
  117. * to protect this field aswell.
  118. */
  119. spin_lock(&spu_prio->runq_lock);
  120. ctx->cpus_allowed = current->cpus_allowed;
  121. spin_unlock(&spu_prio->runq_lock);
  122. }
  123. void spu_update_sched_info(struct spu_context *ctx)
  124. {
  125. int node = ctx->spu->node;
  126. mutex_lock(&cbe_spu_info[node].list_mutex);
  127. __spu_update_sched_info(ctx);
  128. mutex_unlock(&cbe_spu_info[node].list_mutex);
  129. }
  130. static int __node_allowed(struct spu_context *ctx, int node)
  131. {
  132. if (nr_cpus_node(node)) {
  133. cpumask_t mask = node_to_cpumask(node);
  134. if (cpus_intersects(mask, ctx->cpus_allowed))
  135. return 1;
  136. }
  137. return 0;
  138. }
  139. static int node_allowed(struct spu_context *ctx, int node)
  140. {
  141. int rval;
  142. spin_lock(&spu_prio->runq_lock);
  143. rval = __node_allowed(ctx, node);
  144. spin_unlock(&spu_prio->runq_lock);
  145. return rval;
  146. }
  147. void do_notify_spus_active(void)
  148. {
  149. int node;
  150. /*
  151. * Wake up the active spu_contexts.
  152. *
  153. * When the awakened processes see their "notify_active" flag is set,
  154. * they will call spu_switch_notify();
  155. */
  156. for_each_online_node(node) {
  157. struct spu *spu;
  158. mutex_lock(&cbe_spu_info[node].list_mutex);
  159. list_for_each_entry(spu, &cbe_spu_info[node].spus, cbe_list) {
  160. if (spu->alloc_state != SPU_FREE) {
  161. struct spu_context *ctx = spu->ctx;
  162. set_bit(SPU_SCHED_NOTIFY_ACTIVE,
  163. &ctx->sched_flags);
  164. mb();
  165. wake_up_all(&ctx->stop_wq);
  166. }
  167. }
  168. mutex_unlock(&cbe_spu_info[node].list_mutex);
  169. }
  170. }
  171. EXPORT_SYMBOL_GPL(do_notify_spus_active);
  172. #ifndef MODULE
  173. void notify_spus_active(void)
  174. {
  175. do_notify_spus_active();
  176. }
  177. EXPORT_SYMBOL_GPL(notify_spus_active);
  178. #endif
  179. /**
  180. * spu_bind_context - bind spu context to physical spu
  181. * @spu: physical spu to bind to
  182. * @ctx: context to bind
  183. */
  184. static void spu_bind_context(struct spu *spu, struct spu_context *ctx)
  185. {
  186. pr_debug("%s: pid=%d SPU=%d NODE=%d\n", __FUNCTION__, current->pid,
  187. spu->number, spu->node);
  188. spuctx_switch_state(ctx, SPU_UTIL_SYSTEM);
  189. if (ctx->flags & SPU_CREATE_NOSCHED)
  190. atomic_inc(&cbe_spu_info[spu->node].reserved_spus);
  191. ctx->stats.slb_flt_base = spu->stats.slb_flt;
  192. ctx->stats.class2_intr_base = spu->stats.class2_intr;
  193. spu->ctx = ctx;
  194. spu->flags = 0;
  195. ctx->spu = spu;
  196. ctx->ops = &spu_hw_ops;
  197. spu->pid = current->pid;
  198. spu->tgid = current->tgid;
  199. spu_associate_mm(spu, ctx->owner);
  200. spu->ibox_callback = spufs_ibox_callback;
  201. spu->wbox_callback = spufs_wbox_callback;
  202. spu->stop_callback = spufs_stop_callback;
  203. spu->mfc_callback = spufs_mfc_callback;
  204. spu->dma_callback = spufs_dma_callback;
  205. mb();
  206. spu_unmap_mappings(ctx);
  207. spu_restore(&ctx->csa, spu);
  208. spu->timestamp = jiffies;
  209. spu_cpu_affinity_set(spu, raw_smp_processor_id());
  210. spu_switch_notify(spu, ctx);
  211. ctx->state = SPU_STATE_RUNNABLE;
  212. spuctx_switch_state(ctx, SPU_UTIL_IDLE_LOADED);
  213. }
  214. /*
  215. * Must be used with the list_mutex held.
  216. */
  217. static inline int sched_spu(struct spu *spu)
  218. {
  219. BUG_ON(!mutex_is_locked(&cbe_spu_info[spu->node].list_mutex));
  220. return (!spu->ctx || !(spu->ctx->flags & SPU_CREATE_NOSCHED));
  221. }
  222. static void aff_merge_remaining_ctxs(struct spu_gang *gang)
  223. {
  224. struct spu_context *ctx;
  225. list_for_each_entry(ctx, &gang->aff_list_head, aff_list) {
  226. if (list_empty(&ctx->aff_list))
  227. list_add(&ctx->aff_list, &gang->aff_list_head);
  228. }
  229. gang->aff_flags |= AFF_MERGED;
  230. }
  231. static void aff_set_offsets(struct spu_gang *gang)
  232. {
  233. struct spu_context *ctx;
  234. int offset;
  235. offset = -1;
  236. list_for_each_entry_reverse(ctx, &gang->aff_ref_ctx->aff_list,
  237. aff_list) {
  238. if (&ctx->aff_list == &gang->aff_list_head)
  239. break;
  240. ctx->aff_offset = offset--;
  241. }
  242. offset = 0;
  243. list_for_each_entry(ctx, gang->aff_ref_ctx->aff_list.prev, aff_list) {
  244. if (&ctx->aff_list == &gang->aff_list_head)
  245. break;
  246. ctx->aff_offset = offset++;
  247. }
  248. gang->aff_flags |= AFF_OFFSETS_SET;
  249. }
  250. static struct spu *aff_ref_location(struct spu_context *ctx, int mem_aff,
  251. int group_size, int lowest_offset)
  252. {
  253. struct spu *spu;
  254. int node, n;
  255. /*
  256. * TODO: A better algorithm could be used to find a good spu to be
  257. * used as reference location for the ctxs chain.
  258. */
  259. node = cpu_to_node(raw_smp_processor_id());
  260. for (n = 0; n < MAX_NUMNODES; n++, node++) {
  261. node = (node < MAX_NUMNODES) ? node : 0;
  262. if (!node_allowed(ctx, node))
  263. continue;
  264. mutex_lock(&cbe_spu_info[node].list_mutex);
  265. list_for_each_entry(spu, &cbe_spu_info[node].spus, cbe_list) {
  266. if ((!mem_aff || spu->has_mem_affinity) &&
  267. sched_spu(spu)) {
  268. mutex_unlock(&cbe_spu_info[node].list_mutex);
  269. return spu;
  270. }
  271. }
  272. mutex_unlock(&cbe_spu_info[node].list_mutex);
  273. }
  274. return NULL;
  275. }
  276. static void aff_set_ref_point_location(struct spu_gang *gang)
  277. {
  278. int mem_aff, gs, lowest_offset;
  279. struct spu_context *ctx;
  280. struct spu *tmp;
  281. mem_aff = gang->aff_ref_ctx->flags & SPU_CREATE_AFFINITY_MEM;
  282. lowest_offset = 0;
  283. gs = 0;
  284. list_for_each_entry(tmp, &gang->aff_list_head, aff_list)
  285. gs++;
  286. list_for_each_entry_reverse(ctx, &gang->aff_ref_ctx->aff_list,
  287. aff_list) {
  288. if (&ctx->aff_list == &gang->aff_list_head)
  289. break;
  290. lowest_offset = ctx->aff_offset;
  291. }
  292. gang->aff_ref_spu = aff_ref_location(gang->aff_ref_ctx, mem_aff, gs,
  293. lowest_offset);
  294. }
  295. static struct spu *ctx_location(struct spu *ref, int offset, int node)
  296. {
  297. struct spu *spu;
  298. spu = NULL;
  299. if (offset >= 0) {
  300. list_for_each_entry(spu, ref->aff_list.prev, aff_list) {
  301. BUG_ON(spu->node != node);
  302. if (offset == 0)
  303. break;
  304. if (sched_spu(spu))
  305. offset--;
  306. }
  307. } else {
  308. list_for_each_entry_reverse(spu, ref->aff_list.next, aff_list) {
  309. BUG_ON(spu->node != node);
  310. if (offset == 0)
  311. break;
  312. if (sched_spu(spu))
  313. offset++;
  314. }
  315. }
  316. return spu;
  317. }
  318. /*
  319. * affinity_check is called each time a context is going to be scheduled.
  320. * It returns the spu ptr on which the context must run.
  321. */
  322. static int has_affinity(struct spu_context *ctx)
  323. {
  324. struct spu_gang *gang = ctx->gang;
  325. if (list_empty(&ctx->aff_list))
  326. return 0;
  327. if (!gang->aff_ref_spu) {
  328. if (!(gang->aff_flags & AFF_MERGED))
  329. aff_merge_remaining_ctxs(gang);
  330. if (!(gang->aff_flags & AFF_OFFSETS_SET))
  331. aff_set_offsets(gang);
  332. aff_set_ref_point_location(gang);
  333. }
  334. return gang->aff_ref_spu != NULL;
  335. }
  336. /**
  337. * spu_unbind_context - unbind spu context from physical spu
  338. * @spu: physical spu to unbind from
  339. * @ctx: context to unbind
  340. */
  341. static void spu_unbind_context(struct spu *spu, struct spu_context *ctx)
  342. {
  343. pr_debug("%s: unbind pid=%d SPU=%d NODE=%d\n", __FUNCTION__,
  344. spu->pid, spu->number, spu->node);
  345. spuctx_switch_state(ctx, SPU_UTIL_SYSTEM);
  346. if (spu->ctx->flags & SPU_CREATE_NOSCHED)
  347. atomic_dec(&cbe_spu_info[spu->node].reserved_spus);
  348. if (ctx->gang){
  349. mutex_lock(&ctx->gang->aff_mutex);
  350. if (has_affinity(ctx)) {
  351. if (atomic_dec_and_test(&ctx->gang->aff_sched_count))
  352. ctx->gang->aff_ref_spu = NULL;
  353. }
  354. mutex_unlock(&ctx->gang->aff_mutex);
  355. }
  356. spu_switch_notify(spu, NULL);
  357. spu_unmap_mappings(ctx);
  358. spu_save(&ctx->csa, spu);
  359. spu->timestamp = jiffies;
  360. ctx->state = SPU_STATE_SAVED;
  361. spu->ibox_callback = NULL;
  362. spu->wbox_callback = NULL;
  363. spu->stop_callback = NULL;
  364. spu->mfc_callback = NULL;
  365. spu->dma_callback = NULL;
  366. spu_associate_mm(spu, NULL);
  367. spu->pid = 0;
  368. spu->tgid = 0;
  369. ctx->ops = &spu_backing_ops;
  370. spu->flags = 0;
  371. spu->ctx = NULL;
  372. ctx->stats.slb_flt +=
  373. (spu->stats.slb_flt - ctx->stats.slb_flt_base);
  374. ctx->stats.class2_intr +=
  375. (spu->stats.class2_intr - ctx->stats.class2_intr_base);
  376. /* This maps the underlying spu state to idle */
  377. spuctx_switch_state(ctx, SPU_UTIL_IDLE_LOADED);
  378. ctx->spu = NULL;
  379. }
  380. /**
  381. * spu_add_to_rq - add a context to the runqueue
  382. * @ctx: context to add
  383. */
  384. static void __spu_add_to_rq(struct spu_context *ctx)
  385. {
  386. /*
  387. * Unfortunately this code path can be called from multiple threads
  388. * on behalf of a single context due to the way the problem state
  389. * mmap support works.
  390. *
  391. * Fortunately we need to wake up all these threads at the same time
  392. * and can simply skip the runqueue addition for every but the first
  393. * thread getting into this codepath.
  394. *
  395. * It's still quite hacky, and long-term we should proxy all other
  396. * threads through the owner thread so that spu_run is in control
  397. * of all the scheduling activity for a given context.
  398. */
  399. if (list_empty(&ctx->rq)) {
  400. list_add_tail(&ctx->rq, &spu_prio->runq[ctx->prio]);
  401. set_bit(ctx->prio, spu_prio->bitmap);
  402. if (!spu_prio->nr_waiting++)
  403. __mod_timer(&spusched_timer, jiffies + SPUSCHED_TICK);
  404. }
  405. }
  406. static void __spu_del_from_rq(struct spu_context *ctx)
  407. {
  408. int prio = ctx->prio;
  409. if (!list_empty(&ctx->rq)) {
  410. if (!--spu_prio->nr_waiting)
  411. del_timer(&spusched_timer);
  412. list_del_init(&ctx->rq);
  413. if (list_empty(&spu_prio->runq[prio]))
  414. clear_bit(prio, spu_prio->bitmap);
  415. }
  416. }
  417. static void spu_prio_wait(struct spu_context *ctx)
  418. {
  419. DEFINE_WAIT(wait);
  420. spin_lock(&spu_prio->runq_lock);
  421. prepare_to_wait_exclusive(&ctx->stop_wq, &wait, TASK_INTERRUPTIBLE);
  422. if (!signal_pending(current)) {
  423. __spu_add_to_rq(ctx);
  424. spin_unlock(&spu_prio->runq_lock);
  425. mutex_unlock(&ctx->state_mutex);
  426. schedule();
  427. mutex_lock(&ctx->state_mutex);
  428. spin_lock(&spu_prio->runq_lock);
  429. __spu_del_from_rq(ctx);
  430. }
  431. spin_unlock(&spu_prio->runq_lock);
  432. __set_current_state(TASK_RUNNING);
  433. remove_wait_queue(&ctx->stop_wq, &wait);
  434. }
  435. static struct spu *spu_get_idle(struct spu_context *ctx)
  436. {
  437. struct spu *spu, *aff_ref_spu;
  438. int node, n;
  439. if (ctx->gang) {
  440. mutex_lock(&ctx->gang->aff_mutex);
  441. if (has_affinity(ctx)) {
  442. aff_ref_spu = ctx->gang->aff_ref_spu;
  443. atomic_inc(&ctx->gang->aff_sched_count);
  444. mutex_unlock(&ctx->gang->aff_mutex);
  445. node = aff_ref_spu->node;
  446. mutex_lock(&cbe_spu_info[node].list_mutex);
  447. spu = ctx_location(aff_ref_spu, ctx->aff_offset, node);
  448. if (spu && spu->alloc_state == SPU_FREE)
  449. goto found;
  450. mutex_unlock(&cbe_spu_info[node].list_mutex);
  451. mutex_lock(&ctx->gang->aff_mutex);
  452. if (atomic_dec_and_test(&ctx->gang->aff_sched_count))
  453. ctx->gang->aff_ref_spu = NULL;
  454. mutex_unlock(&ctx->gang->aff_mutex);
  455. return NULL;
  456. }
  457. mutex_unlock(&ctx->gang->aff_mutex);
  458. }
  459. node = cpu_to_node(raw_smp_processor_id());
  460. for (n = 0; n < MAX_NUMNODES; n++, node++) {
  461. node = (node < MAX_NUMNODES) ? node : 0;
  462. if (!node_allowed(ctx, node))
  463. continue;
  464. mutex_lock(&cbe_spu_info[node].list_mutex);
  465. list_for_each_entry(spu, &cbe_spu_info[node].spus, cbe_list) {
  466. if (spu->alloc_state == SPU_FREE)
  467. goto found;
  468. }
  469. mutex_unlock(&cbe_spu_info[node].list_mutex);
  470. }
  471. return NULL;
  472. found:
  473. spu->alloc_state = SPU_USED;
  474. mutex_unlock(&cbe_spu_info[node].list_mutex);
  475. pr_debug("Got SPU %d %d\n", spu->number, spu->node);
  476. spu_init_channels(spu);
  477. return spu;
  478. }
  479. /**
  480. * find_victim - find a lower priority context to preempt
  481. * @ctx: canidate context for running
  482. *
  483. * Returns the freed physical spu to run the new context on.
  484. */
  485. static struct spu *find_victim(struct spu_context *ctx)
  486. {
  487. struct spu_context *victim = NULL;
  488. struct spu *spu;
  489. int node, n;
  490. /*
  491. * Look for a possible preemption candidate on the local node first.
  492. * If there is no candidate look at the other nodes. This isn't
  493. * exactly fair, but so far the whole spu schedule tries to keep
  494. * a strong node affinity. We might want to fine-tune this in
  495. * the future.
  496. */
  497. restart:
  498. node = cpu_to_node(raw_smp_processor_id());
  499. for (n = 0; n < MAX_NUMNODES; n++, node++) {
  500. node = (node < MAX_NUMNODES) ? node : 0;
  501. if (!node_allowed(ctx, node))
  502. continue;
  503. mutex_lock(&cbe_spu_info[node].list_mutex);
  504. list_for_each_entry(spu, &cbe_spu_info[node].spus, cbe_list) {
  505. struct spu_context *tmp = spu->ctx;
  506. if (tmp && tmp->prio > ctx->prio &&
  507. (!victim || tmp->prio > victim->prio))
  508. victim = spu->ctx;
  509. }
  510. mutex_unlock(&cbe_spu_info[node].list_mutex);
  511. if (victim) {
  512. /*
  513. * This nests ctx->state_mutex, but we always lock
  514. * higher priority contexts before lower priority
  515. * ones, so this is safe until we introduce
  516. * priority inheritance schemes.
  517. */
  518. if (!mutex_trylock(&victim->state_mutex)) {
  519. victim = NULL;
  520. goto restart;
  521. }
  522. spu = victim->spu;
  523. if (!spu) {
  524. /*
  525. * This race can happen because we've dropped
  526. * the active list mutex. No a problem, just
  527. * restart the search.
  528. */
  529. mutex_unlock(&victim->state_mutex);
  530. victim = NULL;
  531. goto restart;
  532. }
  533. mutex_lock(&cbe_spu_info[node].list_mutex);
  534. cbe_spu_info[node].nr_active--;
  535. spu_unbind_context(spu, victim);
  536. mutex_unlock(&cbe_spu_info[node].list_mutex);
  537. victim->stats.invol_ctx_switch++;
  538. spu->stats.invol_ctx_switch++;
  539. mutex_unlock(&victim->state_mutex);
  540. /*
  541. * We need to break out of the wait loop in spu_run
  542. * manually to ensure this context gets put on the
  543. * runqueue again ASAP.
  544. */
  545. wake_up(&victim->stop_wq);
  546. return spu;
  547. }
  548. }
  549. return NULL;
  550. }
  551. /**
  552. * spu_activate - find a free spu for a context and execute it
  553. * @ctx: spu context to schedule
  554. * @flags: flags (currently ignored)
  555. *
  556. * Tries to find a free spu to run @ctx. If no free spu is available
  557. * add the context to the runqueue so it gets woken up once an spu
  558. * is available.
  559. */
  560. int spu_activate(struct spu_context *ctx, unsigned long flags)
  561. {
  562. do {
  563. struct spu *spu;
  564. /*
  565. * If there are multiple threads waiting for a single context
  566. * only one actually binds the context while the others will
  567. * only be able to acquire the state_mutex once the context
  568. * already is in runnable state.
  569. */
  570. if (ctx->spu)
  571. return 0;
  572. spu = spu_get_idle(ctx);
  573. /*
  574. * If this is a realtime thread we try to get it running by
  575. * preempting a lower priority thread.
  576. */
  577. if (!spu && rt_prio(ctx->prio))
  578. spu = find_victim(ctx);
  579. if (spu) {
  580. int node = spu->node;
  581. mutex_lock(&cbe_spu_info[node].list_mutex);
  582. spu_bind_context(spu, ctx);
  583. cbe_spu_info[node].nr_active++;
  584. mutex_unlock(&cbe_spu_info[node].list_mutex);
  585. return 0;
  586. }
  587. spu_prio_wait(ctx);
  588. } while (!signal_pending(current));
  589. return -ERESTARTSYS;
  590. }
  591. /**
  592. * grab_runnable_context - try to find a runnable context
  593. *
  594. * Remove the highest priority context on the runqueue and return it
  595. * to the caller. Returns %NULL if no runnable context was found.
  596. */
  597. static struct spu_context *grab_runnable_context(int prio, int node)
  598. {
  599. struct spu_context *ctx;
  600. int best;
  601. spin_lock(&spu_prio->runq_lock);
  602. best = find_first_bit(spu_prio->bitmap, prio);
  603. while (best < prio) {
  604. struct list_head *rq = &spu_prio->runq[best];
  605. list_for_each_entry(ctx, rq, rq) {
  606. /* XXX(hch): check for affinity here aswell */
  607. if (__node_allowed(ctx, node)) {
  608. __spu_del_from_rq(ctx);
  609. goto found;
  610. }
  611. }
  612. best++;
  613. }
  614. ctx = NULL;
  615. found:
  616. spin_unlock(&spu_prio->runq_lock);
  617. return ctx;
  618. }
  619. static int __spu_deactivate(struct spu_context *ctx, int force, int max_prio)
  620. {
  621. struct spu *spu = ctx->spu;
  622. struct spu_context *new = NULL;
  623. if (spu) {
  624. new = grab_runnable_context(max_prio, spu->node);
  625. if (new || force) {
  626. int node = spu->node;
  627. mutex_lock(&cbe_spu_info[node].list_mutex);
  628. spu_unbind_context(spu, ctx);
  629. spu->alloc_state = SPU_FREE;
  630. cbe_spu_info[node].nr_active--;
  631. mutex_unlock(&cbe_spu_info[node].list_mutex);
  632. ctx->stats.vol_ctx_switch++;
  633. spu->stats.vol_ctx_switch++;
  634. if (new)
  635. wake_up(&new->stop_wq);
  636. }
  637. }
  638. return new != NULL;
  639. }
  640. /**
  641. * spu_deactivate - unbind a context from it's physical spu
  642. * @ctx: spu context to unbind
  643. *
  644. * Unbind @ctx from the physical spu it is running on and schedule
  645. * the highest priority context to run on the freed physical spu.
  646. */
  647. void spu_deactivate(struct spu_context *ctx)
  648. {
  649. __spu_deactivate(ctx, 1, MAX_PRIO);
  650. }
  651. /**
  652. * spu_yield - yield a physical spu if others are waiting
  653. * @ctx: spu context to yield
  654. *
  655. * Check if there is a higher priority context waiting and if yes
  656. * unbind @ctx from the physical spu and schedule the highest
  657. * priority context to run on the freed physical spu instead.
  658. */
  659. void spu_yield(struct spu_context *ctx)
  660. {
  661. if (!(ctx->flags & SPU_CREATE_NOSCHED)) {
  662. mutex_lock(&ctx->state_mutex);
  663. __spu_deactivate(ctx, 0, MAX_PRIO);
  664. mutex_unlock(&ctx->state_mutex);
  665. }
  666. }
  667. static noinline void spusched_tick(struct spu_context *ctx)
  668. {
  669. if (ctx->flags & SPU_CREATE_NOSCHED)
  670. return;
  671. if (ctx->policy == SCHED_FIFO)
  672. return;
  673. if (--ctx->time_slice)
  674. return;
  675. /*
  676. * Unfortunately list_mutex ranks outside of state_mutex, so
  677. * we have to trylock here. If we fail give the context another
  678. * tick and try again.
  679. */
  680. if (mutex_trylock(&ctx->state_mutex)) {
  681. struct spu *spu = ctx->spu;
  682. struct spu_context *new;
  683. new = grab_runnable_context(ctx->prio + 1, spu->node);
  684. if (new) {
  685. spu_unbind_context(spu, ctx);
  686. ctx->stats.invol_ctx_switch++;
  687. spu->stats.invol_ctx_switch++;
  688. spu->alloc_state = SPU_FREE;
  689. cbe_spu_info[spu->node].nr_active--;
  690. wake_up(&new->stop_wq);
  691. /*
  692. * We need to break out of the wait loop in
  693. * spu_run manually to ensure this context
  694. * gets put on the runqueue again ASAP.
  695. */
  696. wake_up(&ctx->stop_wq);
  697. }
  698. spu_set_timeslice(ctx);
  699. mutex_unlock(&ctx->state_mutex);
  700. } else {
  701. ctx->time_slice++;
  702. }
  703. }
  704. /**
  705. * count_active_contexts - count nr of active tasks
  706. *
  707. * Return the number of tasks currently running or waiting to run.
  708. *
  709. * Note that we don't take runq_lock / list_mutex here. Reading
  710. * a single 32bit value is atomic on powerpc, and we don't care
  711. * about memory ordering issues here.
  712. */
  713. static unsigned long count_active_contexts(void)
  714. {
  715. int nr_active = 0, node;
  716. for (node = 0; node < MAX_NUMNODES; node++)
  717. nr_active += cbe_spu_info[node].nr_active;
  718. nr_active += spu_prio->nr_waiting;
  719. return nr_active;
  720. }
  721. /**
  722. * spu_calc_load - given tick count, update the avenrun load estimates.
  723. * @tick: tick count
  724. *
  725. * No locking against reading these values from userspace, as for
  726. * the CPU loadavg code.
  727. */
  728. static void spu_calc_load(unsigned long ticks)
  729. {
  730. unsigned long active_tasks; /* fixed-point */
  731. static int count = LOAD_FREQ;
  732. count -= ticks;
  733. if (unlikely(count < 0)) {
  734. active_tasks = count_active_contexts() * FIXED_1;
  735. do {
  736. CALC_LOAD(spu_avenrun[0], EXP_1, active_tasks);
  737. CALC_LOAD(spu_avenrun[1], EXP_5, active_tasks);
  738. CALC_LOAD(spu_avenrun[2], EXP_15, active_tasks);
  739. count += LOAD_FREQ;
  740. } while (count < 0);
  741. }
  742. }
  743. static void spusched_wake(unsigned long data)
  744. {
  745. mod_timer(&spusched_timer, jiffies + SPUSCHED_TICK);
  746. wake_up_process(spusched_task);
  747. spu_calc_load(SPUSCHED_TICK);
  748. }
  749. static int spusched_thread(void *unused)
  750. {
  751. struct spu *spu;
  752. int node;
  753. while (!kthread_should_stop()) {
  754. set_current_state(TASK_INTERRUPTIBLE);
  755. schedule();
  756. for (node = 0; node < MAX_NUMNODES; node++) {
  757. mutex_lock(&cbe_spu_info[node].list_mutex);
  758. list_for_each_entry(spu, &cbe_spu_info[node].spus, cbe_list)
  759. if (spu->ctx)
  760. spusched_tick(spu->ctx);
  761. mutex_unlock(&cbe_spu_info[node].list_mutex);
  762. }
  763. }
  764. return 0;
  765. }
  766. #define LOAD_INT(x) ((x) >> FSHIFT)
  767. #define LOAD_FRAC(x) LOAD_INT(((x) & (FIXED_1-1)) * 100)
  768. static int show_spu_loadavg(struct seq_file *s, void *private)
  769. {
  770. int a, b, c;
  771. a = spu_avenrun[0] + (FIXED_1/200);
  772. b = spu_avenrun[1] + (FIXED_1/200);
  773. c = spu_avenrun[2] + (FIXED_1/200);
  774. /*
  775. * Note that last_pid doesn't really make much sense for the
  776. * SPU loadavg (it even seems very odd on the CPU side..),
  777. * but we include it here to have a 100% compatible interface.
  778. */
  779. seq_printf(s, "%d.%02d %d.%02d %d.%02d %ld/%d %d\n",
  780. LOAD_INT(a), LOAD_FRAC(a),
  781. LOAD_INT(b), LOAD_FRAC(b),
  782. LOAD_INT(c), LOAD_FRAC(c),
  783. count_active_contexts(),
  784. atomic_read(&nr_spu_contexts),
  785. current->nsproxy->pid_ns->last_pid);
  786. return 0;
  787. }
  788. static int spu_loadavg_open(struct inode *inode, struct file *file)
  789. {
  790. return single_open(file, show_spu_loadavg, NULL);
  791. }
  792. static const struct file_operations spu_loadavg_fops = {
  793. .open = spu_loadavg_open,
  794. .read = seq_read,
  795. .llseek = seq_lseek,
  796. .release = single_release,
  797. };
  798. int __init spu_sched_init(void)
  799. {
  800. struct proc_dir_entry *entry;
  801. int err = -ENOMEM, i;
  802. spu_prio = kzalloc(sizeof(struct spu_prio_array), GFP_KERNEL);
  803. if (!spu_prio)
  804. goto out;
  805. for (i = 0; i < MAX_PRIO; i++) {
  806. INIT_LIST_HEAD(&spu_prio->runq[i]);
  807. __clear_bit(i, spu_prio->bitmap);
  808. }
  809. spin_lock_init(&spu_prio->runq_lock);
  810. setup_timer(&spusched_timer, spusched_wake, 0);
  811. spusched_task = kthread_run(spusched_thread, NULL, "spusched");
  812. if (IS_ERR(spusched_task)) {
  813. err = PTR_ERR(spusched_task);
  814. goto out_free_spu_prio;
  815. }
  816. entry = create_proc_entry("spu_loadavg", 0, NULL);
  817. if (!entry)
  818. goto out_stop_kthread;
  819. entry->proc_fops = &spu_loadavg_fops;
  820. pr_debug("spusched: tick: %d, min ticks: %d, default ticks: %d\n",
  821. SPUSCHED_TICK, MIN_SPU_TIMESLICE, DEF_SPU_TIMESLICE);
  822. return 0;
  823. out_stop_kthread:
  824. kthread_stop(spusched_task);
  825. out_free_spu_prio:
  826. kfree(spu_prio);
  827. out:
  828. return err;
  829. }
  830. void spu_sched_exit(void)
  831. {
  832. struct spu *spu;
  833. int node;
  834. remove_proc_entry("spu_loadavg", NULL);
  835. del_timer_sync(&spusched_timer);
  836. kthread_stop(spusched_task);
  837. for (node = 0; node < MAX_NUMNODES; node++) {
  838. mutex_lock(&cbe_spu_info[node].list_mutex);
  839. list_for_each_entry(spu, &cbe_spu_info[node].spus, cbe_list)
  840. if (spu->alloc_state != SPU_FREE)
  841. spu->alloc_state = SPU_FREE;
  842. mutex_unlock(&cbe_spu_info[node].list_mutex);
  843. }
  844. kfree(spu_prio);
  845. }