run.c 8.8 KB

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  1. #define DEBUG
  2. #include <linux/wait.h>
  3. #include <linux/ptrace.h>
  4. #include <asm/spu.h>
  5. #include <asm/spu_priv1.h>
  6. #include <asm/io.h>
  7. #include <asm/unistd.h>
  8. #include "spufs.h"
  9. /* interrupt-level stop callback function. */
  10. void spufs_stop_callback(struct spu *spu)
  11. {
  12. struct spu_context *ctx = spu->ctx;
  13. wake_up_all(&ctx->stop_wq);
  14. }
  15. static inline int spu_stopped(struct spu_context *ctx, u32 * stat)
  16. {
  17. struct spu *spu;
  18. u64 pte_fault;
  19. *stat = ctx->ops->status_read(ctx);
  20. if (ctx->state != SPU_STATE_RUNNABLE)
  21. return 1;
  22. spu = ctx->spu;
  23. pte_fault = spu->dsisr &
  24. (MFC_DSISR_PTE_NOT_FOUND | MFC_DSISR_ACCESS_DENIED);
  25. return (!(*stat & SPU_STATUS_RUNNING) || pte_fault || spu->class_0_pending) ?
  26. 1 : 0;
  27. }
  28. static int spu_setup_isolated(struct spu_context *ctx)
  29. {
  30. int ret;
  31. u64 __iomem *mfc_cntl;
  32. u64 sr1;
  33. u32 status;
  34. unsigned long timeout;
  35. const u32 status_loading = SPU_STATUS_RUNNING
  36. | SPU_STATUS_ISOLATED_STATE | SPU_STATUS_ISOLATED_LOAD_STATUS;
  37. ret = -ENODEV;
  38. if (!isolated_loader)
  39. goto out;
  40. /*
  41. * We need to exclude userspace access to the context.
  42. *
  43. * To protect against memory access we invalidate all ptes
  44. * and make sure the pagefault handlers block on the mutex.
  45. */
  46. spu_unmap_mappings(ctx);
  47. mfc_cntl = &ctx->spu->priv2->mfc_control_RW;
  48. /* purge the MFC DMA queue to ensure no spurious accesses before we
  49. * enter kernel mode */
  50. timeout = jiffies + HZ;
  51. out_be64(mfc_cntl, MFC_CNTL_PURGE_DMA_REQUEST);
  52. while ((in_be64(mfc_cntl) & MFC_CNTL_PURGE_DMA_STATUS_MASK)
  53. != MFC_CNTL_PURGE_DMA_COMPLETE) {
  54. if (time_after(jiffies, timeout)) {
  55. printk(KERN_ERR "%s: timeout flushing MFC DMA queue\n",
  56. __FUNCTION__);
  57. ret = -EIO;
  58. goto out;
  59. }
  60. cond_resched();
  61. }
  62. /* put the SPE in kernel mode to allow access to the loader */
  63. sr1 = spu_mfc_sr1_get(ctx->spu);
  64. sr1 &= ~MFC_STATE1_PROBLEM_STATE_MASK;
  65. spu_mfc_sr1_set(ctx->spu, sr1);
  66. /* start the loader */
  67. ctx->ops->signal1_write(ctx, (unsigned long)isolated_loader >> 32);
  68. ctx->ops->signal2_write(ctx,
  69. (unsigned long)isolated_loader & 0xffffffff);
  70. ctx->ops->runcntl_write(ctx,
  71. SPU_RUNCNTL_RUNNABLE | SPU_RUNCNTL_ISOLATE);
  72. ret = 0;
  73. timeout = jiffies + HZ;
  74. while (((status = ctx->ops->status_read(ctx)) & status_loading) ==
  75. status_loading) {
  76. if (time_after(jiffies, timeout)) {
  77. printk(KERN_ERR "%s: timeout waiting for loader\n",
  78. __FUNCTION__);
  79. ret = -EIO;
  80. goto out_drop_priv;
  81. }
  82. cond_resched();
  83. }
  84. if (!(status & SPU_STATUS_RUNNING)) {
  85. /* If isolated LOAD has failed: run SPU, we will get a stop-and
  86. * signal later. */
  87. pr_debug("%s: isolated LOAD failed\n", __FUNCTION__);
  88. ctx->ops->runcntl_write(ctx, SPU_RUNCNTL_RUNNABLE);
  89. ret = -EACCES;
  90. goto out_drop_priv;
  91. }
  92. if (!(status & SPU_STATUS_ISOLATED_STATE)) {
  93. /* This isn't allowed by the CBEA, but check anyway */
  94. pr_debug("%s: SPU fell out of isolated mode?\n", __FUNCTION__);
  95. ctx->ops->runcntl_write(ctx, SPU_RUNCNTL_STOP);
  96. ret = -EINVAL;
  97. goto out_drop_priv;
  98. }
  99. out_drop_priv:
  100. /* Finished accessing the loader. Drop kernel mode */
  101. sr1 |= MFC_STATE1_PROBLEM_STATE_MASK;
  102. spu_mfc_sr1_set(ctx->spu, sr1);
  103. out:
  104. return ret;
  105. }
  106. static int spu_run_init(struct spu_context *ctx, u32 * npc)
  107. {
  108. if (ctx->flags & SPU_CREATE_ISOLATE) {
  109. unsigned long runcntl;
  110. if (!(ctx->ops->status_read(ctx) & SPU_STATUS_ISOLATED_STATE)) {
  111. int ret = spu_setup_isolated(ctx);
  112. if (ret)
  113. return ret;
  114. }
  115. /* if userspace has set the runcntrl register (eg, to issue an
  116. * isolated exit), we need to re-set it here */
  117. runcntl = ctx->ops->runcntl_read(ctx) &
  118. (SPU_RUNCNTL_RUNNABLE | SPU_RUNCNTL_ISOLATE);
  119. if (runcntl == 0)
  120. runcntl = SPU_RUNCNTL_RUNNABLE;
  121. ctx->ops->runcntl_write(ctx, runcntl);
  122. } else {
  123. unsigned long mode = SPU_PRIVCNTL_MODE_NORMAL;
  124. spu_start_tick(ctx);
  125. ctx->ops->npc_write(ctx, *npc);
  126. if (test_thread_flag(TIF_SINGLESTEP))
  127. mode = SPU_PRIVCNTL_MODE_SINGLE_STEP;
  128. out_be64(&ctx->spu->priv2->spu_privcntl_RW, mode);
  129. ctx->ops->runcntl_write(ctx, SPU_RUNCNTL_RUNNABLE);
  130. }
  131. return 0;
  132. }
  133. static int spu_run_fini(struct spu_context *ctx, u32 * npc,
  134. u32 * status)
  135. {
  136. int ret = 0;
  137. spu_stop_tick(ctx);
  138. *status = ctx->ops->status_read(ctx);
  139. *npc = ctx->ops->npc_read(ctx);
  140. spu_release(ctx);
  141. if (signal_pending(current))
  142. ret = -ERESTARTSYS;
  143. return ret;
  144. }
  145. static int spu_reacquire_runnable(struct spu_context *ctx, u32 *npc,
  146. u32 *status)
  147. {
  148. int ret;
  149. ret = spu_run_fini(ctx, npc, status);
  150. if (ret)
  151. return ret;
  152. if (*status & (SPU_STATUS_STOPPED_BY_STOP | SPU_STATUS_STOPPED_BY_HALT))
  153. return *status;
  154. ret = spu_acquire_runnable(ctx, 0);
  155. if (ret)
  156. return ret;
  157. ret = spu_run_init(ctx, npc);
  158. if (ret) {
  159. spu_release(ctx);
  160. return ret;
  161. }
  162. return 0;
  163. }
  164. /*
  165. * SPU syscall restarting is tricky because we violate the basic
  166. * assumption that the signal handler is running on the interrupted
  167. * thread. Here instead, the handler runs on PowerPC user space code,
  168. * while the syscall was called from the SPU.
  169. * This means we can only do a very rough approximation of POSIX
  170. * signal semantics.
  171. */
  172. int spu_handle_restartsys(struct spu_context *ctx, long *spu_ret,
  173. unsigned int *npc)
  174. {
  175. int ret;
  176. switch (*spu_ret) {
  177. case -ERESTARTSYS:
  178. case -ERESTARTNOINTR:
  179. /*
  180. * Enter the regular syscall restarting for
  181. * sys_spu_run, then restart the SPU syscall
  182. * callback.
  183. */
  184. *npc -= 8;
  185. ret = -ERESTARTSYS;
  186. break;
  187. case -ERESTARTNOHAND:
  188. case -ERESTART_RESTARTBLOCK:
  189. /*
  190. * Restart block is too hard for now, just return -EINTR
  191. * to the SPU.
  192. * ERESTARTNOHAND comes from sys_pause, we also return
  193. * -EINTR from there.
  194. * Assume that we need to be restarted ourselves though.
  195. */
  196. *spu_ret = -EINTR;
  197. ret = -ERESTARTSYS;
  198. break;
  199. default:
  200. printk(KERN_WARNING "%s: unexpected return code %ld\n",
  201. __FUNCTION__, *spu_ret);
  202. ret = 0;
  203. }
  204. return ret;
  205. }
  206. int spu_process_callback(struct spu_context *ctx)
  207. {
  208. struct spu_syscall_block s;
  209. u32 ls_pointer, npc;
  210. void __iomem *ls;
  211. long spu_ret;
  212. int ret;
  213. /* get syscall block from local store */
  214. npc = ctx->ops->npc_read(ctx) & ~3;
  215. ls = (void __iomem *)ctx->ops->get_ls(ctx);
  216. ls_pointer = in_be32(ls + npc);
  217. if (ls_pointer > (LS_SIZE - sizeof(s)))
  218. return -EFAULT;
  219. memcpy_fromio(&s, ls + ls_pointer, sizeof(s));
  220. /* do actual syscall without pinning the spu */
  221. ret = 0;
  222. spu_ret = -ENOSYS;
  223. npc += 4;
  224. if (s.nr_ret < __NR_syscalls) {
  225. spu_release(ctx);
  226. /* do actual system call from here */
  227. spu_ret = spu_sys_callback(&s);
  228. if (spu_ret <= -ERESTARTSYS) {
  229. ret = spu_handle_restartsys(ctx, &spu_ret, &npc);
  230. }
  231. spu_acquire(ctx);
  232. if (ret == -ERESTARTSYS)
  233. return ret;
  234. }
  235. /* write result, jump over indirect pointer */
  236. memcpy_toio(ls + ls_pointer, &spu_ret, sizeof(spu_ret));
  237. ctx->ops->npc_write(ctx, npc);
  238. ctx->ops->runcntl_write(ctx, SPU_RUNCNTL_RUNNABLE);
  239. return ret;
  240. }
  241. static inline int spu_process_events(struct spu_context *ctx)
  242. {
  243. struct spu *spu = ctx->spu;
  244. int ret = 0;
  245. if (spu->class_0_pending)
  246. ret = spu_irq_class_0_bottom(spu);
  247. if (!ret && signal_pending(current))
  248. ret = -ERESTARTSYS;
  249. return ret;
  250. }
  251. long spufs_run_spu(struct file *file, struct spu_context *ctx,
  252. u32 *npc, u32 *event)
  253. {
  254. int ret;
  255. u32 status;
  256. if (mutex_lock_interruptible(&ctx->run_mutex))
  257. return -ERESTARTSYS;
  258. ctx->ops->master_start(ctx);
  259. ctx->event_return = 0;
  260. ret = spu_acquire_runnable(ctx, 0);
  261. if (ret)
  262. return ret;
  263. ret = spu_run_init(ctx, npc);
  264. if (ret) {
  265. spu_release(ctx);
  266. goto out;
  267. }
  268. do {
  269. ret = spufs_wait(ctx->stop_wq, spu_stopped(ctx, &status));
  270. if (unlikely(ret))
  271. break;
  272. if ((status & SPU_STATUS_STOPPED_BY_STOP) &&
  273. (status >> SPU_STOP_STATUS_SHIFT == 0x2104)) {
  274. ret = spu_process_callback(ctx);
  275. if (ret)
  276. break;
  277. status &= ~SPU_STATUS_STOPPED_BY_STOP;
  278. }
  279. ret = spufs_handle_class1(ctx);
  280. if (ret)
  281. break;
  282. if (unlikely(ctx->state != SPU_STATE_RUNNABLE)) {
  283. ret = spu_reacquire_runnable(ctx, npc, &status);
  284. if (ret) {
  285. spu_stop_tick(ctx);
  286. goto out2;
  287. }
  288. continue;
  289. }
  290. ret = spu_process_events(ctx);
  291. } while (!ret && !(status & (SPU_STATUS_STOPPED_BY_STOP |
  292. SPU_STATUS_STOPPED_BY_HALT |
  293. SPU_STATUS_SINGLE_STEP)));
  294. ctx->ops->master_stop(ctx);
  295. ret = spu_run_fini(ctx, npc, &status);
  296. spu_yield(ctx);
  297. out2:
  298. if ((ret == 0) ||
  299. ((ret == -ERESTARTSYS) &&
  300. ((status & SPU_STATUS_STOPPED_BY_HALT) ||
  301. (status & SPU_STATUS_SINGLE_STEP) ||
  302. ((status & SPU_STATUS_STOPPED_BY_STOP) &&
  303. (status >> SPU_STOP_STATUS_SHIFT != 0x2104)))))
  304. ret = status;
  305. /* Note: we don't need to force_sig SIGTRAP on single-step
  306. * since we have TIF_SINGLESTEP set, thus the kernel will do
  307. * it upon return from the syscall anyawy
  308. */
  309. if ((status & SPU_STATUS_STOPPED_BY_STOP)
  310. && (status >> SPU_STOP_STATUS_SHIFT) == 0x3fff) {
  311. force_sig(SIGTRAP, current);
  312. ret = -ERESTARTSYS;
  313. }
  314. out:
  315. *event = ctx->event_return;
  316. mutex_unlock(&ctx->run_mutex);
  317. return ret;
  318. }