spufs.h 10 KB

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  1. /*
  2. * SPU file system
  3. *
  4. * (C) Copyright IBM Deutschland Entwicklung GmbH 2005
  5. *
  6. * Author: Arnd Bergmann <arndb@de.ibm.com>
  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. #ifndef SPUFS_H
  23. #define SPUFS_H
  24. #include <linux/kref.h>
  25. #include <linux/mutex.h>
  26. #include <linux/spinlock.h>
  27. #include <linux/fs.h>
  28. #include <linux/cpumask.h>
  29. #include <asm/spu.h>
  30. #include <asm/spu_csa.h>
  31. #include <asm/spu_info.h>
  32. /* The magic number for our file system */
  33. enum {
  34. SPUFS_MAGIC = 0x23c9b64e,
  35. };
  36. struct spu_context_ops;
  37. struct spu_gang;
  38. enum {
  39. SPU_SCHED_WAS_ACTIVE, /* was active upon spu_acquire_saved() */
  40. };
  41. /* ctx->sched_flags */
  42. enum {
  43. SPU_SCHED_NOTIFY_ACTIVE,
  44. };
  45. struct spu_context {
  46. struct spu *spu; /* pointer to a physical SPU */
  47. struct spu_state csa; /* SPU context save area. */
  48. spinlock_t mmio_lock; /* protects mmio access */
  49. struct address_space *local_store; /* local store mapping. */
  50. struct address_space *mfc; /* 'mfc' area mappings. */
  51. struct address_space *cntl; /* 'control' area mappings. */
  52. struct address_space *signal1; /* 'signal1' area mappings. */
  53. struct address_space *signal2; /* 'signal2' area mappings. */
  54. struct address_space *mss; /* 'mss' area mappings. */
  55. struct address_space *psmap; /* 'psmap' area mappings. */
  56. struct mutex mapping_lock;
  57. u64 object_id; /* user space pointer for oprofile */
  58. enum { SPU_STATE_RUNNABLE, SPU_STATE_SAVED } state;
  59. struct mutex state_mutex;
  60. struct mutex run_mutex;
  61. struct mm_struct *owner;
  62. struct kref kref;
  63. wait_queue_head_t ibox_wq;
  64. wait_queue_head_t wbox_wq;
  65. wait_queue_head_t stop_wq;
  66. wait_queue_head_t mfc_wq;
  67. struct fasync_struct *ibox_fasync;
  68. struct fasync_struct *wbox_fasync;
  69. struct fasync_struct *mfc_fasync;
  70. u32 tagwait;
  71. struct spu_context_ops *ops;
  72. struct work_struct reap_work;
  73. unsigned long flags;
  74. unsigned long event_return;
  75. struct list_head gang_list;
  76. struct spu_gang *gang;
  77. struct kref *prof_priv_kref;
  78. void ( * prof_priv_release) (struct kref *kref);
  79. /* owner thread */
  80. pid_t tid;
  81. /* scheduler fields */
  82. struct list_head rq;
  83. unsigned int time_slice;
  84. unsigned long sched_flags;
  85. cpumask_t cpus_allowed;
  86. int policy;
  87. int prio;
  88. /* statistics */
  89. struct {
  90. /* updates protected by ctx->state_mutex */
  91. enum spu_utilization_state util_state;
  92. unsigned long long tstamp; /* time of last state switch */
  93. unsigned long long times[SPU_UTIL_MAX];
  94. unsigned long long vol_ctx_switch;
  95. unsigned long long invol_ctx_switch;
  96. unsigned long long min_flt;
  97. unsigned long long maj_flt;
  98. unsigned long long hash_flt;
  99. unsigned long long slb_flt;
  100. unsigned long long slb_flt_base; /* # at last ctx switch */
  101. unsigned long long class2_intr;
  102. unsigned long long class2_intr_base; /* # at last ctx switch */
  103. unsigned long long libassist;
  104. } stats;
  105. struct list_head aff_list;
  106. int aff_head;
  107. int aff_offset;
  108. };
  109. struct spu_gang {
  110. struct list_head list;
  111. struct mutex mutex;
  112. struct kref kref;
  113. int contexts;
  114. struct spu_context *aff_ref_ctx;
  115. struct list_head aff_list_head;
  116. struct mutex aff_mutex;
  117. int aff_flags;
  118. struct spu *aff_ref_spu;
  119. atomic_t aff_sched_count;
  120. };
  121. /* Flag bits for spu_gang aff_flags */
  122. #define AFF_OFFSETS_SET 1
  123. #define AFF_MERGED 2
  124. struct mfc_dma_command {
  125. int32_t pad; /* reserved */
  126. uint32_t lsa; /* local storage address */
  127. uint64_t ea; /* effective address */
  128. uint16_t size; /* transfer size */
  129. uint16_t tag; /* command tag */
  130. uint16_t class; /* class ID */
  131. uint16_t cmd; /* command opcode */
  132. };
  133. /* SPU context query/set operations. */
  134. struct spu_context_ops {
  135. int (*mbox_read) (struct spu_context * ctx, u32 * data);
  136. u32(*mbox_stat_read) (struct spu_context * ctx);
  137. unsigned int (*mbox_stat_poll)(struct spu_context *ctx,
  138. unsigned int events);
  139. int (*ibox_read) (struct spu_context * ctx, u32 * data);
  140. int (*wbox_write) (struct spu_context * ctx, u32 data);
  141. u32(*signal1_read) (struct spu_context * ctx);
  142. void (*signal1_write) (struct spu_context * ctx, u32 data);
  143. u32(*signal2_read) (struct spu_context * ctx);
  144. void (*signal2_write) (struct spu_context * ctx, u32 data);
  145. void (*signal1_type_set) (struct spu_context * ctx, u64 val);
  146. u64(*signal1_type_get) (struct spu_context * ctx);
  147. void (*signal2_type_set) (struct spu_context * ctx, u64 val);
  148. u64(*signal2_type_get) (struct spu_context * ctx);
  149. u32(*npc_read) (struct spu_context * ctx);
  150. void (*npc_write) (struct spu_context * ctx, u32 data);
  151. u32(*status_read) (struct spu_context * ctx);
  152. char*(*get_ls) (struct spu_context * ctx);
  153. u32 (*runcntl_read) (struct spu_context * ctx);
  154. void (*runcntl_write) (struct spu_context * ctx, u32 data);
  155. void (*master_start) (struct spu_context * ctx);
  156. void (*master_stop) (struct spu_context * ctx);
  157. int (*set_mfc_query)(struct spu_context * ctx, u32 mask, u32 mode);
  158. u32 (*read_mfc_tagstatus)(struct spu_context * ctx);
  159. u32 (*get_mfc_free_elements)(struct spu_context *ctx);
  160. int (*send_mfc_command)(struct spu_context * ctx,
  161. struct mfc_dma_command * cmd);
  162. void (*dma_info_read) (struct spu_context * ctx,
  163. struct spu_dma_info * info);
  164. void (*proxydma_info_read) (struct spu_context * ctx,
  165. struct spu_proxydma_info * info);
  166. void (*restart_dma)(struct spu_context *ctx);
  167. };
  168. extern struct spu_context_ops spu_hw_ops;
  169. extern struct spu_context_ops spu_backing_ops;
  170. struct spufs_inode_info {
  171. struct spu_context *i_ctx;
  172. struct spu_gang *i_gang;
  173. struct inode vfs_inode;
  174. int i_openers;
  175. };
  176. #define SPUFS_I(inode) \
  177. container_of(inode, struct spufs_inode_info, vfs_inode)
  178. extern struct tree_descr spufs_dir_contents[];
  179. extern struct tree_descr spufs_dir_nosched_contents[];
  180. /* system call implementation */
  181. long spufs_run_spu(struct spu_context *ctx, u32 *npc, u32 *status);
  182. long spufs_create(struct nameidata *nd, unsigned int flags,
  183. mode_t mode, struct file *filp);
  184. extern const struct file_operations spufs_context_fops;
  185. /* gang management */
  186. struct spu_gang *alloc_spu_gang(void);
  187. struct spu_gang *get_spu_gang(struct spu_gang *gang);
  188. int put_spu_gang(struct spu_gang *gang);
  189. void spu_gang_remove_ctx(struct spu_gang *gang, struct spu_context *ctx);
  190. void spu_gang_add_ctx(struct spu_gang *gang, struct spu_context *ctx);
  191. /* fault handling */
  192. int spufs_handle_class1(struct spu_context *ctx);
  193. /* affinity */
  194. struct spu *affinity_check(struct spu_context *ctx);
  195. /* context management */
  196. extern atomic_t nr_spu_contexts;
  197. static inline void spu_acquire(struct spu_context *ctx)
  198. {
  199. mutex_lock(&ctx->state_mutex);
  200. }
  201. static inline void spu_release(struct spu_context *ctx)
  202. {
  203. mutex_unlock(&ctx->state_mutex);
  204. }
  205. struct spu_context * alloc_spu_context(struct spu_gang *gang);
  206. void destroy_spu_context(struct kref *kref);
  207. struct spu_context * get_spu_context(struct spu_context *ctx);
  208. int put_spu_context(struct spu_context *ctx);
  209. void spu_unmap_mappings(struct spu_context *ctx);
  210. void spu_forget(struct spu_context *ctx);
  211. int spu_acquire_runnable(struct spu_context *ctx, unsigned long flags);
  212. void spu_acquire_saved(struct spu_context *ctx);
  213. void spu_release_saved(struct spu_context *ctx);
  214. int spu_activate(struct spu_context *ctx, unsigned long flags);
  215. void spu_deactivate(struct spu_context *ctx);
  216. void spu_yield(struct spu_context *ctx);
  217. void spu_switch_notify(struct spu *spu, struct spu_context *ctx);
  218. void spu_set_timeslice(struct spu_context *ctx);
  219. void spu_update_sched_info(struct spu_context *ctx);
  220. void __spu_update_sched_info(struct spu_context *ctx);
  221. int __init spu_sched_init(void);
  222. void spu_sched_exit(void);
  223. extern char *isolated_loader;
  224. /*
  225. * spufs_wait
  226. * Same as wait_event_interruptible(), except that here
  227. * we need to call spu_release(ctx) before sleeping, and
  228. * then spu_acquire(ctx) when awoken.
  229. */
  230. #define spufs_wait(wq, condition) \
  231. ({ \
  232. int __ret = 0; \
  233. DEFINE_WAIT(__wait); \
  234. for (;;) { \
  235. prepare_to_wait(&(wq), &__wait, TASK_INTERRUPTIBLE); \
  236. if (condition) \
  237. break; \
  238. if (signal_pending(current)) { \
  239. __ret = -ERESTARTSYS; \
  240. break; \
  241. } \
  242. spu_release(ctx); \
  243. schedule(); \
  244. spu_acquire(ctx); \
  245. } \
  246. finish_wait(&(wq), &__wait); \
  247. __ret; \
  248. })
  249. size_t spu_wbox_write(struct spu_context *ctx, u32 data);
  250. size_t spu_ibox_read(struct spu_context *ctx, u32 *data);
  251. /* irq callback funcs. */
  252. void spufs_ibox_callback(struct spu *spu);
  253. void spufs_wbox_callback(struct spu *spu);
  254. void spufs_stop_callback(struct spu *spu);
  255. void spufs_mfc_callback(struct spu *spu);
  256. void spufs_dma_callback(struct spu *spu, int type);
  257. extern struct spu_coredump_calls spufs_coredump_calls;
  258. struct spufs_coredump_reader {
  259. char *name;
  260. ssize_t (*read)(struct spu_context *ctx,
  261. char __user *buffer, size_t size, loff_t *pos);
  262. u64 (*get)(void *data);
  263. size_t size;
  264. };
  265. extern struct spufs_coredump_reader spufs_coredump_read[];
  266. extern int spufs_coredump_num_notes;
  267. /*
  268. * This function is a little bit too large for an inline, but
  269. * as fault.c is built into the kernel we can't move it out of
  270. * line.
  271. */
  272. static inline void spuctx_switch_state(struct spu_context *ctx,
  273. enum spu_utilization_state new_state)
  274. {
  275. unsigned long long curtime;
  276. signed long long delta;
  277. struct timespec ts;
  278. struct spu *spu;
  279. enum spu_utilization_state old_state;
  280. ktime_get_ts(&ts);
  281. curtime = timespec_to_ns(&ts);
  282. delta = curtime - ctx->stats.tstamp;
  283. WARN_ON(!mutex_is_locked(&ctx->state_mutex));
  284. WARN_ON(delta < 0);
  285. spu = ctx->spu;
  286. old_state = ctx->stats.util_state;
  287. ctx->stats.util_state = new_state;
  288. ctx->stats.tstamp = curtime;
  289. /*
  290. * Update the physical SPU utilization statistics.
  291. */
  292. if (spu) {
  293. ctx->stats.times[old_state] += delta;
  294. spu->stats.times[old_state] += delta;
  295. spu->stats.util_state = new_state;
  296. spu->stats.tstamp = curtime;
  297. }
  298. }
  299. #endif