perfmon.c 169 KB

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  1. /*
  2. * This file implements the perfmon-2 subsystem which is used
  3. * to program the IA-64 Performance Monitoring Unit (PMU).
  4. *
  5. * The initial version of perfmon.c was written by
  6. * Ganesh Venkitachalam, IBM Corp.
  7. *
  8. * Then it was modified for perfmon-1.x by Stephane Eranian and
  9. * David Mosberger, Hewlett Packard Co.
  10. *
  11. * Version Perfmon-2.x is a rewrite of perfmon-1.x
  12. * by Stephane Eranian, Hewlett Packard Co.
  13. *
  14. * Copyright (C) 1999-2005 Hewlett Packard Co
  15. * Stephane Eranian <eranian@hpl.hp.com>
  16. * David Mosberger-Tang <davidm@hpl.hp.com>
  17. *
  18. * More information about perfmon available at:
  19. * http://www.hpl.hp.com/research/linux/perfmon
  20. */
  21. #include <linux/module.h>
  22. #include <linux/kernel.h>
  23. #include <linux/sched.h>
  24. #include <linux/interrupt.h>
  25. #include <linux/smp_lock.h>
  26. #include <linux/proc_fs.h>
  27. #include <linux/seq_file.h>
  28. #include <linux/init.h>
  29. #include <linux/vmalloc.h>
  30. #include <linux/mm.h>
  31. #include <linux/sysctl.h>
  32. #include <linux/list.h>
  33. #include <linux/file.h>
  34. #include <linux/poll.h>
  35. #include <linux/vfs.h>
  36. #include <linux/smp.h>
  37. #include <linux/pagemap.h>
  38. #include <linux/mount.h>
  39. #include <linux/bitops.h>
  40. #include <linux/capability.h>
  41. #include <linux/rcupdate.h>
  42. #include <linux/completion.h>
  43. #include <asm/errno.h>
  44. #include <asm/intrinsics.h>
  45. #include <asm/page.h>
  46. #include <asm/perfmon.h>
  47. #include <asm/processor.h>
  48. #include <asm/signal.h>
  49. #include <asm/system.h>
  50. #include <asm/uaccess.h>
  51. #include <asm/delay.h>
  52. #ifdef CONFIG_PERFMON
  53. /*
  54. * perfmon context state
  55. */
  56. #define PFM_CTX_UNLOADED 1 /* context is not loaded onto any task */
  57. #define PFM_CTX_LOADED 2 /* context is loaded onto a task */
  58. #define PFM_CTX_MASKED 3 /* context is loaded but monitoring is masked due to overflow */
  59. #define PFM_CTX_ZOMBIE 4 /* owner of the context is closing it */
  60. #define PFM_INVALID_ACTIVATION (~0UL)
  61. #define PFM_NUM_PMC_REGS 64 /* PMC save area for ctxsw */
  62. #define PFM_NUM_PMD_REGS 64 /* PMD save area for ctxsw */
  63. /*
  64. * depth of message queue
  65. */
  66. #define PFM_MAX_MSGS 32
  67. #define PFM_CTXQ_EMPTY(g) ((g)->ctx_msgq_head == (g)->ctx_msgq_tail)
  68. /*
  69. * type of a PMU register (bitmask).
  70. * bitmask structure:
  71. * bit0 : register implemented
  72. * bit1 : end marker
  73. * bit2-3 : reserved
  74. * bit4 : pmc has pmc.pm
  75. * bit5 : pmc controls a counter (has pmc.oi), pmd is used as counter
  76. * bit6-7 : register type
  77. * bit8-31: reserved
  78. */
  79. #define PFM_REG_NOTIMPL 0x0 /* not implemented at all */
  80. #define PFM_REG_IMPL 0x1 /* register implemented */
  81. #define PFM_REG_END 0x2 /* end marker */
  82. #define PFM_REG_MONITOR (0x1<<4|PFM_REG_IMPL) /* a PMC with a pmc.pm field only */
  83. #define PFM_REG_COUNTING (0x2<<4|PFM_REG_MONITOR) /* a monitor + pmc.oi+ PMD used as a counter */
  84. #define PFM_REG_CONTROL (0x4<<4|PFM_REG_IMPL) /* PMU control register */
  85. #define PFM_REG_CONFIG (0x8<<4|PFM_REG_IMPL) /* configuration register */
  86. #define PFM_REG_BUFFER (0xc<<4|PFM_REG_IMPL) /* PMD used as buffer */
  87. #define PMC_IS_LAST(i) (pmu_conf->pmc_desc[i].type & PFM_REG_END)
  88. #define PMD_IS_LAST(i) (pmu_conf->pmd_desc[i].type & PFM_REG_END)
  89. #define PMC_OVFL_NOTIFY(ctx, i) ((ctx)->ctx_pmds[i].flags & PFM_REGFL_OVFL_NOTIFY)
  90. /* i assumed unsigned */
  91. #define PMC_IS_IMPL(i) (i< PMU_MAX_PMCS && (pmu_conf->pmc_desc[i].type & PFM_REG_IMPL))
  92. #define PMD_IS_IMPL(i) (i< PMU_MAX_PMDS && (pmu_conf->pmd_desc[i].type & PFM_REG_IMPL))
  93. /* XXX: these assume that register i is implemented */
  94. #define PMD_IS_COUNTING(i) ((pmu_conf->pmd_desc[i].type & PFM_REG_COUNTING) == PFM_REG_COUNTING)
  95. #define PMC_IS_COUNTING(i) ((pmu_conf->pmc_desc[i].type & PFM_REG_COUNTING) == PFM_REG_COUNTING)
  96. #define PMC_IS_MONITOR(i) ((pmu_conf->pmc_desc[i].type & PFM_REG_MONITOR) == PFM_REG_MONITOR)
  97. #define PMC_IS_CONTROL(i) ((pmu_conf->pmc_desc[i].type & PFM_REG_CONTROL) == PFM_REG_CONTROL)
  98. #define PMC_DFL_VAL(i) pmu_conf->pmc_desc[i].default_value
  99. #define PMC_RSVD_MASK(i) pmu_conf->pmc_desc[i].reserved_mask
  100. #define PMD_PMD_DEP(i) pmu_conf->pmd_desc[i].dep_pmd[0]
  101. #define PMC_PMD_DEP(i) pmu_conf->pmc_desc[i].dep_pmd[0]
  102. #define PFM_NUM_IBRS IA64_NUM_DBG_REGS
  103. #define PFM_NUM_DBRS IA64_NUM_DBG_REGS
  104. #define CTX_OVFL_NOBLOCK(c) ((c)->ctx_fl_block == 0)
  105. #define CTX_HAS_SMPL(c) ((c)->ctx_fl_is_sampling)
  106. #define PFM_CTX_TASK(h) (h)->ctx_task
  107. #define PMU_PMC_OI 5 /* position of pmc.oi bit */
  108. /* XXX: does not support more than 64 PMDs */
  109. #define CTX_USED_PMD(ctx, mask) (ctx)->ctx_used_pmds[0] |= (mask)
  110. #define CTX_IS_USED_PMD(ctx, c) (((ctx)->ctx_used_pmds[0] & (1UL << (c))) != 0UL)
  111. #define CTX_USED_MONITOR(ctx, mask) (ctx)->ctx_used_monitors[0] |= (mask)
  112. #define CTX_USED_IBR(ctx,n) (ctx)->ctx_used_ibrs[(n)>>6] |= 1UL<< ((n) % 64)
  113. #define CTX_USED_DBR(ctx,n) (ctx)->ctx_used_dbrs[(n)>>6] |= 1UL<< ((n) % 64)
  114. #define CTX_USES_DBREGS(ctx) (((pfm_context_t *)(ctx))->ctx_fl_using_dbreg==1)
  115. #define PFM_CODE_RR 0 /* requesting code range restriction */
  116. #define PFM_DATA_RR 1 /* requestion data range restriction */
  117. #define PFM_CPUINFO_CLEAR(v) pfm_get_cpu_var(pfm_syst_info) &= ~(v)
  118. #define PFM_CPUINFO_SET(v) pfm_get_cpu_var(pfm_syst_info) |= (v)
  119. #define PFM_CPUINFO_GET() pfm_get_cpu_var(pfm_syst_info)
  120. #define RDEP(x) (1UL<<(x))
  121. /*
  122. * context protection macros
  123. * in SMP:
  124. * - we need to protect against CPU concurrency (spin_lock)
  125. * - we need to protect against PMU overflow interrupts (local_irq_disable)
  126. * in UP:
  127. * - we need to protect against PMU overflow interrupts (local_irq_disable)
  128. *
  129. * spin_lock_irqsave()/spin_lock_irqrestore():
  130. * in SMP: local_irq_disable + spin_lock
  131. * in UP : local_irq_disable
  132. *
  133. * spin_lock()/spin_lock():
  134. * in UP : removed automatically
  135. * in SMP: protect against context accesses from other CPU. interrupts
  136. * are not masked. This is useful for the PMU interrupt handler
  137. * because we know we will not get PMU concurrency in that code.
  138. */
  139. #define PROTECT_CTX(c, f) \
  140. do { \
  141. DPRINT(("spinlock_irq_save ctx %p by [%d]\n", c, current->pid)); \
  142. spin_lock_irqsave(&(c)->ctx_lock, f); \
  143. DPRINT(("spinlocked ctx %p by [%d]\n", c, current->pid)); \
  144. } while(0)
  145. #define UNPROTECT_CTX(c, f) \
  146. do { \
  147. DPRINT(("spinlock_irq_restore ctx %p by [%d]\n", c, current->pid)); \
  148. spin_unlock_irqrestore(&(c)->ctx_lock, f); \
  149. } while(0)
  150. #define PROTECT_CTX_NOPRINT(c, f) \
  151. do { \
  152. spin_lock_irqsave(&(c)->ctx_lock, f); \
  153. } while(0)
  154. #define UNPROTECT_CTX_NOPRINT(c, f) \
  155. do { \
  156. spin_unlock_irqrestore(&(c)->ctx_lock, f); \
  157. } while(0)
  158. #define PROTECT_CTX_NOIRQ(c) \
  159. do { \
  160. spin_lock(&(c)->ctx_lock); \
  161. } while(0)
  162. #define UNPROTECT_CTX_NOIRQ(c) \
  163. do { \
  164. spin_unlock(&(c)->ctx_lock); \
  165. } while(0)
  166. #ifdef CONFIG_SMP
  167. #define GET_ACTIVATION() pfm_get_cpu_var(pmu_activation_number)
  168. #define INC_ACTIVATION() pfm_get_cpu_var(pmu_activation_number)++
  169. #define SET_ACTIVATION(c) (c)->ctx_last_activation = GET_ACTIVATION()
  170. #else /* !CONFIG_SMP */
  171. #define SET_ACTIVATION(t) do {} while(0)
  172. #define GET_ACTIVATION(t) do {} while(0)
  173. #define INC_ACTIVATION(t) do {} while(0)
  174. #endif /* CONFIG_SMP */
  175. #define SET_PMU_OWNER(t, c) do { pfm_get_cpu_var(pmu_owner) = (t); pfm_get_cpu_var(pmu_ctx) = (c); } while(0)
  176. #define GET_PMU_OWNER() pfm_get_cpu_var(pmu_owner)
  177. #define GET_PMU_CTX() pfm_get_cpu_var(pmu_ctx)
  178. #define LOCK_PFS(g) spin_lock_irqsave(&pfm_sessions.pfs_lock, g)
  179. #define UNLOCK_PFS(g) spin_unlock_irqrestore(&pfm_sessions.pfs_lock, g)
  180. #define PFM_REG_RETFLAG_SET(flags, val) do { flags &= ~PFM_REG_RETFL_MASK; flags |= (val); } while(0)
  181. /*
  182. * cmp0 must be the value of pmc0
  183. */
  184. #define PMC0_HAS_OVFL(cmp0) (cmp0 & ~0x1UL)
  185. #define PFMFS_MAGIC 0xa0b4d889
  186. /*
  187. * debugging
  188. */
  189. #define PFM_DEBUGGING 1
  190. #ifdef PFM_DEBUGGING
  191. #define DPRINT(a) \
  192. do { \
  193. if (unlikely(pfm_sysctl.debug >0)) { printk("%s.%d: CPU%d [%d] ", __FUNCTION__, __LINE__, smp_processor_id(), current->pid); printk a; } \
  194. } while (0)
  195. #define DPRINT_ovfl(a) \
  196. do { \
  197. if (unlikely(pfm_sysctl.debug > 0 && pfm_sysctl.debug_ovfl >0)) { printk("%s.%d: CPU%d [%d] ", __FUNCTION__, __LINE__, smp_processor_id(), current->pid); printk a; } \
  198. } while (0)
  199. #endif
  200. /*
  201. * 64-bit software counter structure
  202. *
  203. * the next_reset_type is applied to the next call to pfm_reset_regs()
  204. */
  205. typedef struct {
  206. unsigned long val; /* virtual 64bit counter value */
  207. unsigned long lval; /* last reset value */
  208. unsigned long long_reset; /* reset value on sampling overflow */
  209. unsigned long short_reset; /* reset value on overflow */
  210. unsigned long reset_pmds[4]; /* which other pmds to reset when this counter overflows */
  211. unsigned long smpl_pmds[4]; /* which pmds are accessed when counter overflow */
  212. unsigned long seed; /* seed for random-number generator */
  213. unsigned long mask; /* mask for random-number generator */
  214. unsigned int flags; /* notify/do not notify */
  215. unsigned long eventid; /* overflow event identifier */
  216. } pfm_counter_t;
  217. /*
  218. * context flags
  219. */
  220. typedef struct {
  221. unsigned int block:1; /* when 1, task will blocked on user notifications */
  222. unsigned int system:1; /* do system wide monitoring */
  223. unsigned int using_dbreg:1; /* using range restrictions (debug registers) */
  224. unsigned int is_sampling:1; /* true if using a custom format */
  225. unsigned int excl_idle:1; /* exclude idle task in system wide session */
  226. unsigned int going_zombie:1; /* context is zombie (MASKED+blocking) */
  227. unsigned int trap_reason:2; /* reason for going into pfm_handle_work() */
  228. unsigned int no_msg:1; /* no message sent on overflow */
  229. unsigned int can_restart:1; /* allowed to issue a PFM_RESTART */
  230. unsigned int reserved:22;
  231. } pfm_context_flags_t;
  232. #define PFM_TRAP_REASON_NONE 0x0 /* default value */
  233. #define PFM_TRAP_REASON_BLOCK 0x1 /* we need to block on overflow */
  234. #define PFM_TRAP_REASON_RESET 0x2 /* we need to reset PMDs */
  235. /*
  236. * perfmon context: encapsulates all the state of a monitoring session
  237. */
  238. typedef struct pfm_context {
  239. spinlock_t ctx_lock; /* context protection */
  240. pfm_context_flags_t ctx_flags; /* bitmask of flags (block reason incl.) */
  241. unsigned int ctx_state; /* state: active/inactive (no bitfield) */
  242. struct task_struct *ctx_task; /* task to which context is attached */
  243. unsigned long ctx_ovfl_regs[4]; /* which registers overflowed (notification) */
  244. struct completion ctx_restart_done; /* use for blocking notification mode */
  245. unsigned long ctx_used_pmds[4]; /* bitmask of PMD used */
  246. unsigned long ctx_all_pmds[4]; /* bitmask of all accessible PMDs */
  247. unsigned long ctx_reload_pmds[4]; /* bitmask of force reload PMD on ctxsw in */
  248. unsigned long ctx_all_pmcs[4]; /* bitmask of all accessible PMCs */
  249. unsigned long ctx_reload_pmcs[4]; /* bitmask of force reload PMC on ctxsw in */
  250. unsigned long ctx_used_monitors[4]; /* bitmask of monitor PMC being used */
  251. unsigned long ctx_pmcs[PFM_NUM_PMC_REGS]; /* saved copies of PMC values */
  252. unsigned int ctx_used_ibrs[1]; /* bitmask of used IBR (speedup ctxsw in) */
  253. unsigned int ctx_used_dbrs[1]; /* bitmask of used DBR (speedup ctxsw in) */
  254. unsigned long ctx_dbrs[IA64_NUM_DBG_REGS]; /* DBR values (cache) when not loaded */
  255. unsigned long ctx_ibrs[IA64_NUM_DBG_REGS]; /* IBR values (cache) when not loaded */
  256. pfm_counter_t ctx_pmds[PFM_NUM_PMD_REGS]; /* software state for PMDS */
  257. unsigned long th_pmcs[PFM_NUM_PMC_REGS]; /* PMC thread save state */
  258. unsigned long th_pmds[PFM_NUM_PMD_REGS]; /* PMD thread save state */
  259. u64 ctx_saved_psr_up; /* only contains psr.up value */
  260. unsigned long ctx_last_activation; /* context last activation number for last_cpu */
  261. unsigned int ctx_last_cpu; /* CPU id of current or last CPU used (SMP only) */
  262. unsigned int ctx_cpu; /* cpu to which perfmon is applied (system wide) */
  263. int ctx_fd; /* file descriptor used my this context */
  264. pfm_ovfl_arg_t ctx_ovfl_arg; /* argument to custom buffer format handler */
  265. pfm_buffer_fmt_t *ctx_buf_fmt; /* buffer format callbacks */
  266. void *ctx_smpl_hdr; /* points to sampling buffer header kernel vaddr */
  267. unsigned long ctx_smpl_size; /* size of sampling buffer */
  268. void *ctx_smpl_vaddr; /* user level virtual address of smpl buffer */
  269. wait_queue_head_t ctx_msgq_wait;
  270. pfm_msg_t ctx_msgq[PFM_MAX_MSGS];
  271. int ctx_msgq_head;
  272. int ctx_msgq_tail;
  273. struct fasync_struct *ctx_async_queue;
  274. wait_queue_head_t ctx_zombieq; /* termination cleanup wait queue */
  275. } pfm_context_t;
  276. /*
  277. * magic number used to verify that structure is really
  278. * a perfmon context
  279. */
  280. #define PFM_IS_FILE(f) ((f)->f_op == &pfm_file_ops)
  281. #define PFM_GET_CTX(t) ((pfm_context_t *)(t)->thread.pfm_context)
  282. #ifdef CONFIG_SMP
  283. #define SET_LAST_CPU(ctx, v) (ctx)->ctx_last_cpu = (v)
  284. #define GET_LAST_CPU(ctx) (ctx)->ctx_last_cpu
  285. #else
  286. #define SET_LAST_CPU(ctx, v) do {} while(0)
  287. #define GET_LAST_CPU(ctx) do {} while(0)
  288. #endif
  289. #define ctx_fl_block ctx_flags.block
  290. #define ctx_fl_system ctx_flags.system
  291. #define ctx_fl_using_dbreg ctx_flags.using_dbreg
  292. #define ctx_fl_is_sampling ctx_flags.is_sampling
  293. #define ctx_fl_excl_idle ctx_flags.excl_idle
  294. #define ctx_fl_going_zombie ctx_flags.going_zombie
  295. #define ctx_fl_trap_reason ctx_flags.trap_reason
  296. #define ctx_fl_no_msg ctx_flags.no_msg
  297. #define ctx_fl_can_restart ctx_flags.can_restart
  298. #define PFM_SET_WORK_PENDING(t, v) do { (t)->thread.pfm_needs_checking = v; } while(0);
  299. #define PFM_GET_WORK_PENDING(t) (t)->thread.pfm_needs_checking
  300. /*
  301. * global information about all sessions
  302. * mostly used to synchronize between system wide and per-process
  303. */
  304. typedef struct {
  305. spinlock_t pfs_lock; /* lock the structure */
  306. unsigned int pfs_task_sessions; /* number of per task sessions */
  307. unsigned int pfs_sys_sessions; /* number of per system wide sessions */
  308. unsigned int pfs_sys_use_dbregs; /* incremented when a system wide session uses debug regs */
  309. unsigned int pfs_ptrace_use_dbregs; /* incremented when a process uses debug regs */
  310. struct task_struct *pfs_sys_session[NR_CPUS]; /* point to task owning a system-wide session */
  311. } pfm_session_t;
  312. /*
  313. * information about a PMC or PMD.
  314. * dep_pmd[]: a bitmask of dependent PMD registers
  315. * dep_pmc[]: a bitmask of dependent PMC registers
  316. */
  317. typedef int (*pfm_reg_check_t)(struct task_struct *task, pfm_context_t *ctx, unsigned int cnum, unsigned long *val, struct pt_regs *regs);
  318. typedef struct {
  319. unsigned int type;
  320. int pm_pos;
  321. unsigned long default_value; /* power-on default value */
  322. unsigned long reserved_mask; /* bitmask of reserved bits */
  323. pfm_reg_check_t read_check;
  324. pfm_reg_check_t write_check;
  325. unsigned long dep_pmd[4];
  326. unsigned long dep_pmc[4];
  327. } pfm_reg_desc_t;
  328. /* assume cnum is a valid monitor */
  329. #define PMC_PM(cnum, val) (((val) >> (pmu_conf->pmc_desc[cnum].pm_pos)) & 0x1)
  330. /*
  331. * This structure is initialized at boot time and contains
  332. * a description of the PMU main characteristics.
  333. *
  334. * If the probe function is defined, detection is based
  335. * on its return value:
  336. * - 0 means recognized PMU
  337. * - anything else means not supported
  338. * When the probe function is not defined, then the pmu_family field
  339. * is used and it must match the host CPU family such that:
  340. * - cpu->family & config->pmu_family != 0
  341. */
  342. typedef struct {
  343. unsigned long ovfl_val; /* overflow value for counters */
  344. pfm_reg_desc_t *pmc_desc; /* detailed PMC register dependencies descriptions */
  345. pfm_reg_desc_t *pmd_desc; /* detailed PMD register dependencies descriptions */
  346. unsigned int num_pmcs; /* number of PMCS: computed at init time */
  347. unsigned int num_pmds; /* number of PMDS: computed at init time */
  348. unsigned long impl_pmcs[4]; /* bitmask of implemented PMCS */
  349. unsigned long impl_pmds[4]; /* bitmask of implemented PMDS */
  350. char *pmu_name; /* PMU family name */
  351. unsigned int pmu_family; /* cpuid family pattern used to identify pmu */
  352. unsigned int flags; /* pmu specific flags */
  353. unsigned int num_ibrs; /* number of IBRS: computed at init time */
  354. unsigned int num_dbrs; /* number of DBRS: computed at init time */
  355. unsigned int num_counters; /* PMC/PMD counting pairs : computed at init time */
  356. int (*probe)(void); /* customized probe routine */
  357. unsigned int use_rr_dbregs:1; /* set if debug registers used for range restriction */
  358. } pmu_config_t;
  359. /*
  360. * PMU specific flags
  361. */
  362. #define PFM_PMU_IRQ_RESEND 1 /* PMU needs explicit IRQ resend */
  363. /*
  364. * debug register related type definitions
  365. */
  366. typedef struct {
  367. unsigned long ibr_mask:56;
  368. unsigned long ibr_plm:4;
  369. unsigned long ibr_ig:3;
  370. unsigned long ibr_x:1;
  371. } ibr_mask_reg_t;
  372. typedef struct {
  373. unsigned long dbr_mask:56;
  374. unsigned long dbr_plm:4;
  375. unsigned long dbr_ig:2;
  376. unsigned long dbr_w:1;
  377. unsigned long dbr_r:1;
  378. } dbr_mask_reg_t;
  379. typedef union {
  380. unsigned long val;
  381. ibr_mask_reg_t ibr;
  382. dbr_mask_reg_t dbr;
  383. } dbreg_t;
  384. /*
  385. * perfmon command descriptions
  386. */
  387. typedef struct {
  388. int (*cmd_func)(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs);
  389. char *cmd_name;
  390. int cmd_flags;
  391. unsigned int cmd_narg;
  392. size_t cmd_argsize;
  393. int (*cmd_getsize)(void *arg, size_t *sz);
  394. } pfm_cmd_desc_t;
  395. #define PFM_CMD_FD 0x01 /* command requires a file descriptor */
  396. #define PFM_CMD_ARG_READ 0x02 /* command must read argument(s) */
  397. #define PFM_CMD_ARG_RW 0x04 /* command must read/write argument(s) */
  398. #define PFM_CMD_STOP 0x08 /* command does not work on zombie context */
  399. #define PFM_CMD_NAME(cmd) pfm_cmd_tab[(cmd)].cmd_name
  400. #define PFM_CMD_READ_ARG(cmd) (pfm_cmd_tab[(cmd)].cmd_flags & PFM_CMD_ARG_READ)
  401. #define PFM_CMD_RW_ARG(cmd) (pfm_cmd_tab[(cmd)].cmd_flags & PFM_CMD_ARG_RW)
  402. #define PFM_CMD_USE_FD(cmd) (pfm_cmd_tab[(cmd)].cmd_flags & PFM_CMD_FD)
  403. #define PFM_CMD_STOPPED(cmd) (pfm_cmd_tab[(cmd)].cmd_flags & PFM_CMD_STOP)
  404. #define PFM_CMD_ARG_MANY -1 /* cannot be zero */
  405. typedef struct {
  406. unsigned long pfm_spurious_ovfl_intr_count; /* keep track of spurious ovfl interrupts */
  407. unsigned long pfm_replay_ovfl_intr_count; /* keep track of replayed ovfl interrupts */
  408. unsigned long pfm_ovfl_intr_count; /* keep track of ovfl interrupts */
  409. unsigned long pfm_ovfl_intr_cycles; /* cycles spent processing ovfl interrupts */
  410. unsigned long pfm_ovfl_intr_cycles_min; /* min cycles spent processing ovfl interrupts */
  411. unsigned long pfm_ovfl_intr_cycles_max; /* max cycles spent processing ovfl interrupts */
  412. unsigned long pfm_smpl_handler_calls;
  413. unsigned long pfm_smpl_handler_cycles;
  414. char pad[SMP_CACHE_BYTES] ____cacheline_aligned;
  415. } pfm_stats_t;
  416. /*
  417. * perfmon internal variables
  418. */
  419. static pfm_stats_t pfm_stats[NR_CPUS];
  420. static pfm_session_t pfm_sessions; /* global sessions information */
  421. static DEFINE_SPINLOCK(pfm_alt_install_check);
  422. static pfm_intr_handler_desc_t *pfm_alt_intr_handler;
  423. static struct proc_dir_entry *perfmon_dir;
  424. static pfm_uuid_t pfm_null_uuid = {0,};
  425. static spinlock_t pfm_buffer_fmt_lock;
  426. static LIST_HEAD(pfm_buffer_fmt_list);
  427. static pmu_config_t *pmu_conf;
  428. /* sysctl() controls */
  429. pfm_sysctl_t pfm_sysctl;
  430. EXPORT_SYMBOL(pfm_sysctl);
  431. static ctl_table pfm_ctl_table[]={
  432. {1, "debug", &pfm_sysctl.debug, sizeof(int), 0666, NULL, &proc_dointvec, NULL,},
  433. {2, "debug_ovfl", &pfm_sysctl.debug_ovfl, sizeof(int), 0666, NULL, &proc_dointvec, NULL,},
  434. {3, "fastctxsw", &pfm_sysctl.fastctxsw, sizeof(int), 0600, NULL, &proc_dointvec, NULL,},
  435. {4, "expert_mode", &pfm_sysctl.expert_mode, sizeof(int), 0600, NULL, &proc_dointvec, NULL,},
  436. { 0, },
  437. };
  438. static ctl_table pfm_sysctl_dir[] = {
  439. {1, "perfmon", NULL, 0, 0755, pfm_ctl_table, },
  440. {0,},
  441. };
  442. static ctl_table pfm_sysctl_root[] = {
  443. {1, "kernel", NULL, 0, 0755, pfm_sysctl_dir, },
  444. {0,},
  445. };
  446. static struct ctl_table_header *pfm_sysctl_header;
  447. static int pfm_context_unload(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs);
  448. #define pfm_get_cpu_var(v) __ia64_per_cpu_var(v)
  449. #define pfm_get_cpu_data(a,b) per_cpu(a, b)
  450. static inline void
  451. pfm_put_task(struct task_struct *task)
  452. {
  453. if (task != current) put_task_struct(task);
  454. }
  455. static inline void
  456. pfm_set_task_notify(struct task_struct *task)
  457. {
  458. struct thread_info *info;
  459. info = (struct thread_info *) ((char *) task + IA64_TASK_SIZE);
  460. set_bit(TIF_NOTIFY_RESUME, &info->flags);
  461. }
  462. static inline void
  463. pfm_clear_task_notify(void)
  464. {
  465. clear_thread_flag(TIF_NOTIFY_RESUME);
  466. }
  467. static inline void
  468. pfm_reserve_page(unsigned long a)
  469. {
  470. SetPageReserved(vmalloc_to_page((void *)a));
  471. }
  472. static inline void
  473. pfm_unreserve_page(unsigned long a)
  474. {
  475. ClearPageReserved(vmalloc_to_page((void*)a));
  476. }
  477. static inline unsigned long
  478. pfm_protect_ctx_ctxsw(pfm_context_t *x)
  479. {
  480. spin_lock(&(x)->ctx_lock);
  481. return 0UL;
  482. }
  483. static inline void
  484. pfm_unprotect_ctx_ctxsw(pfm_context_t *x, unsigned long f)
  485. {
  486. spin_unlock(&(x)->ctx_lock);
  487. }
  488. static inline unsigned int
  489. pfm_do_munmap(struct mm_struct *mm, unsigned long addr, size_t len, int acct)
  490. {
  491. return do_munmap(mm, addr, len);
  492. }
  493. static inline unsigned long
  494. pfm_get_unmapped_area(struct file *file, unsigned long addr, unsigned long len, unsigned long pgoff, unsigned long flags, unsigned long exec)
  495. {
  496. return get_unmapped_area(file, addr, len, pgoff, flags);
  497. }
  498. static int
  499. pfmfs_get_sb(struct file_system_type *fs_type, int flags, const char *dev_name, void *data,
  500. struct vfsmount *mnt)
  501. {
  502. return get_sb_pseudo(fs_type, "pfm:", NULL, PFMFS_MAGIC, mnt);
  503. }
  504. static struct file_system_type pfm_fs_type = {
  505. .name = "pfmfs",
  506. .get_sb = pfmfs_get_sb,
  507. .kill_sb = kill_anon_super,
  508. };
  509. DEFINE_PER_CPU(unsigned long, pfm_syst_info);
  510. DEFINE_PER_CPU(struct task_struct *, pmu_owner);
  511. DEFINE_PER_CPU(pfm_context_t *, pmu_ctx);
  512. DEFINE_PER_CPU(unsigned long, pmu_activation_number);
  513. EXPORT_PER_CPU_SYMBOL_GPL(pfm_syst_info);
  514. /* forward declaration */
  515. static struct file_operations pfm_file_ops;
  516. /*
  517. * forward declarations
  518. */
  519. #ifndef CONFIG_SMP
  520. static void pfm_lazy_save_regs (struct task_struct *ta);
  521. #endif
  522. void dump_pmu_state(const char *);
  523. static int pfm_write_ibr_dbr(int mode, pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs);
  524. #include "perfmon_itanium.h"
  525. #include "perfmon_mckinley.h"
  526. #include "perfmon_montecito.h"
  527. #include "perfmon_generic.h"
  528. static pmu_config_t *pmu_confs[]={
  529. &pmu_conf_mont,
  530. &pmu_conf_mck,
  531. &pmu_conf_ita,
  532. &pmu_conf_gen, /* must be last */
  533. NULL
  534. };
  535. static int pfm_end_notify_user(pfm_context_t *ctx);
  536. static inline void
  537. pfm_clear_psr_pp(void)
  538. {
  539. ia64_rsm(IA64_PSR_PP);
  540. ia64_srlz_i();
  541. }
  542. static inline void
  543. pfm_set_psr_pp(void)
  544. {
  545. ia64_ssm(IA64_PSR_PP);
  546. ia64_srlz_i();
  547. }
  548. static inline void
  549. pfm_clear_psr_up(void)
  550. {
  551. ia64_rsm(IA64_PSR_UP);
  552. ia64_srlz_i();
  553. }
  554. static inline void
  555. pfm_set_psr_up(void)
  556. {
  557. ia64_ssm(IA64_PSR_UP);
  558. ia64_srlz_i();
  559. }
  560. static inline unsigned long
  561. pfm_get_psr(void)
  562. {
  563. unsigned long tmp;
  564. tmp = ia64_getreg(_IA64_REG_PSR);
  565. ia64_srlz_i();
  566. return tmp;
  567. }
  568. static inline void
  569. pfm_set_psr_l(unsigned long val)
  570. {
  571. ia64_setreg(_IA64_REG_PSR_L, val);
  572. ia64_srlz_i();
  573. }
  574. static inline void
  575. pfm_freeze_pmu(void)
  576. {
  577. ia64_set_pmc(0,1UL);
  578. ia64_srlz_d();
  579. }
  580. static inline void
  581. pfm_unfreeze_pmu(void)
  582. {
  583. ia64_set_pmc(0,0UL);
  584. ia64_srlz_d();
  585. }
  586. static inline void
  587. pfm_restore_ibrs(unsigned long *ibrs, unsigned int nibrs)
  588. {
  589. int i;
  590. for (i=0; i < nibrs; i++) {
  591. ia64_set_ibr(i, ibrs[i]);
  592. ia64_dv_serialize_instruction();
  593. }
  594. ia64_srlz_i();
  595. }
  596. static inline void
  597. pfm_restore_dbrs(unsigned long *dbrs, unsigned int ndbrs)
  598. {
  599. int i;
  600. for (i=0; i < ndbrs; i++) {
  601. ia64_set_dbr(i, dbrs[i]);
  602. ia64_dv_serialize_data();
  603. }
  604. ia64_srlz_d();
  605. }
  606. /*
  607. * PMD[i] must be a counter. no check is made
  608. */
  609. static inline unsigned long
  610. pfm_read_soft_counter(pfm_context_t *ctx, int i)
  611. {
  612. return ctx->ctx_pmds[i].val + (ia64_get_pmd(i) & pmu_conf->ovfl_val);
  613. }
  614. /*
  615. * PMD[i] must be a counter. no check is made
  616. */
  617. static inline void
  618. pfm_write_soft_counter(pfm_context_t *ctx, int i, unsigned long val)
  619. {
  620. unsigned long ovfl_val = pmu_conf->ovfl_val;
  621. ctx->ctx_pmds[i].val = val & ~ovfl_val;
  622. /*
  623. * writing to unimplemented part is ignore, so we do not need to
  624. * mask off top part
  625. */
  626. ia64_set_pmd(i, val & ovfl_val);
  627. }
  628. static pfm_msg_t *
  629. pfm_get_new_msg(pfm_context_t *ctx)
  630. {
  631. int idx, next;
  632. next = (ctx->ctx_msgq_tail+1) % PFM_MAX_MSGS;
  633. DPRINT(("ctx_fd=%p head=%d tail=%d\n", ctx, ctx->ctx_msgq_head, ctx->ctx_msgq_tail));
  634. if (next == ctx->ctx_msgq_head) return NULL;
  635. idx = ctx->ctx_msgq_tail;
  636. ctx->ctx_msgq_tail = next;
  637. DPRINT(("ctx=%p head=%d tail=%d msg=%d\n", ctx, ctx->ctx_msgq_head, ctx->ctx_msgq_tail, idx));
  638. return ctx->ctx_msgq+idx;
  639. }
  640. static pfm_msg_t *
  641. pfm_get_next_msg(pfm_context_t *ctx)
  642. {
  643. pfm_msg_t *msg;
  644. DPRINT(("ctx=%p head=%d tail=%d\n", ctx, ctx->ctx_msgq_head, ctx->ctx_msgq_tail));
  645. if (PFM_CTXQ_EMPTY(ctx)) return NULL;
  646. /*
  647. * get oldest message
  648. */
  649. msg = ctx->ctx_msgq+ctx->ctx_msgq_head;
  650. /*
  651. * and move forward
  652. */
  653. ctx->ctx_msgq_head = (ctx->ctx_msgq_head+1) % PFM_MAX_MSGS;
  654. DPRINT(("ctx=%p head=%d tail=%d type=%d\n", ctx, ctx->ctx_msgq_head, ctx->ctx_msgq_tail, msg->pfm_gen_msg.msg_type));
  655. return msg;
  656. }
  657. static void
  658. pfm_reset_msgq(pfm_context_t *ctx)
  659. {
  660. ctx->ctx_msgq_head = ctx->ctx_msgq_tail = 0;
  661. DPRINT(("ctx=%p msgq reset\n", ctx));
  662. }
  663. static void *
  664. pfm_rvmalloc(unsigned long size)
  665. {
  666. void *mem;
  667. unsigned long addr;
  668. size = PAGE_ALIGN(size);
  669. mem = vmalloc(size);
  670. if (mem) {
  671. //printk("perfmon: CPU%d pfm_rvmalloc(%ld)=%p\n", smp_processor_id(), size, mem);
  672. memset(mem, 0, size);
  673. addr = (unsigned long)mem;
  674. while (size > 0) {
  675. pfm_reserve_page(addr);
  676. addr+=PAGE_SIZE;
  677. size-=PAGE_SIZE;
  678. }
  679. }
  680. return mem;
  681. }
  682. static void
  683. pfm_rvfree(void *mem, unsigned long size)
  684. {
  685. unsigned long addr;
  686. if (mem) {
  687. DPRINT(("freeing physical buffer @%p size=%lu\n", mem, size));
  688. addr = (unsigned long) mem;
  689. while ((long) size > 0) {
  690. pfm_unreserve_page(addr);
  691. addr+=PAGE_SIZE;
  692. size-=PAGE_SIZE;
  693. }
  694. vfree(mem);
  695. }
  696. return;
  697. }
  698. static pfm_context_t *
  699. pfm_context_alloc(void)
  700. {
  701. pfm_context_t *ctx;
  702. /*
  703. * allocate context descriptor
  704. * must be able to free with interrupts disabled
  705. */
  706. ctx = kmalloc(sizeof(pfm_context_t), GFP_KERNEL);
  707. if (ctx) {
  708. memset(ctx, 0, sizeof(pfm_context_t));
  709. DPRINT(("alloc ctx @%p\n", ctx));
  710. }
  711. return ctx;
  712. }
  713. static void
  714. pfm_context_free(pfm_context_t *ctx)
  715. {
  716. if (ctx) {
  717. DPRINT(("free ctx @%p\n", ctx));
  718. kfree(ctx);
  719. }
  720. }
  721. static void
  722. pfm_mask_monitoring(struct task_struct *task)
  723. {
  724. pfm_context_t *ctx = PFM_GET_CTX(task);
  725. unsigned long mask, val, ovfl_mask;
  726. int i;
  727. DPRINT_ovfl(("masking monitoring for [%d]\n", task->pid));
  728. ovfl_mask = pmu_conf->ovfl_val;
  729. /*
  730. * monitoring can only be masked as a result of a valid
  731. * counter overflow. In UP, it means that the PMU still
  732. * has an owner. Note that the owner can be different
  733. * from the current task. However the PMU state belongs
  734. * to the owner.
  735. * In SMP, a valid overflow only happens when task is
  736. * current. Therefore if we come here, we know that
  737. * the PMU state belongs to the current task, therefore
  738. * we can access the live registers.
  739. *
  740. * So in both cases, the live register contains the owner's
  741. * state. We can ONLY touch the PMU registers and NOT the PSR.
  742. *
  743. * As a consequence to this call, the ctx->th_pmds[] array
  744. * contains stale information which must be ignored
  745. * when context is reloaded AND monitoring is active (see
  746. * pfm_restart).
  747. */
  748. mask = ctx->ctx_used_pmds[0];
  749. for (i = 0; mask; i++, mask>>=1) {
  750. /* skip non used pmds */
  751. if ((mask & 0x1) == 0) continue;
  752. val = ia64_get_pmd(i);
  753. if (PMD_IS_COUNTING(i)) {
  754. /*
  755. * we rebuild the full 64 bit value of the counter
  756. */
  757. ctx->ctx_pmds[i].val += (val & ovfl_mask);
  758. } else {
  759. ctx->ctx_pmds[i].val = val;
  760. }
  761. DPRINT_ovfl(("pmd[%d]=0x%lx hw_pmd=0x%lx\n",
  762. i,
  763. ctx->ctx_pmds[i].val,
  764. val & ovfl_mask));
  765. }
  766. /*
  767. * mask monitoring by setting the privilege level to 0
  768. * we cannot use psr.pp/psr.up for this, it is controlled by
  769. * the user
  770. *
  771. * if task is current, modify actual registers, otherwise modify
  772. * thread save state, i.e., what will be restored in pfm_load_regs()
  773. */
  774. mask = ctx->ctx_used_monitors[0] >> PMU_FIRST_COUNTER;
  775. for(i= PMU_FIRST_COUNTER; mask; i++, mask>>=1) {
  776. if ((mask & 0x1) == 0UL) continue;
  777. ia64_set_pmc(i, ctx->th_pmcs[i] & ~0xfUL);
  778. ctx->th_pmcs[i] &= ~0xfUL;
  779. DPRINT_ovfl(("pmc[%d]=0x%lx\n", i, ctx->th_pmcs[i]));
  780. }
  781. /*
  782. * make all of this visible
  783. */
  784. ia64_srlz_d();
  785. }
  786. /*
  787. * must always be done with task == current
  788. *
  789. * context must be in MASKED state when calling
  790. */
  791. static void
  792. pfm_restore_monitoring(struct task_struct *task)
  793. {
  794. pfm_context_t *ctx = PFM_GET_CTX(task);
  795. unsigned long mask, ovfl_mask;
  796. unsigned long psr, val;
  797. int i, is_system;
  798. is_system = ctx->ctx_fl_system;
  799. ovfl_mask = pmu_conf->ovfl_val;
  800. if (task != current) {
  801. printk(KERN_ERR "perfmon.%d: invalid task[%d] current[%d]\n", __LINE__, task->pid, current->pid);
  802. return;
  803. }
  804. if (ctx->ctx_state != PFM_CTX_MASKED) {
  805. printk(KERN_ERR "perfmon.%d: task[%d] current[%d] invalid state=%d\n", __LINE__,
  806. task->pid, current->pid, ctx->ctx_state);
  807. return;
  808. }
  809. psr = pfm_get_psr();
  810. /*
  811. * monitoring is masked via the PMC.
  812. * As we restore their value, we do not want each counter to
  813. * restart right away. We stop monitoring using the PSR,
  814. * restore the PMC (and PMD) and then re-establish the psr
  815. * as it was. Note that there can be no pending overflow at
  816. * this point, because monitoring was MASKED.
  817. *
  818. * system-wide session are pinned and self-monitoring
  819. */
  820. if (is_system && (PFM_CPUINFO_GET() & PFM_CPUINFO_DCR_PP)) {
  821. /* disable dcr pp */
  822. ia64_setreg(_IA64_REG_CR_DCR, ia64_getreg(_IA64_REG_CR_DCR) & ~IA64_DCR_PP);
  823. pfm_clear_psr_pp();
  824. } else {
  825. pfm_clear_psr_up();
  826. }
  827. /*
  828. * first, we restore the PMD
  829. */
  830. mask = ctx->ctx_used_pmds[0];
  831. for (i = 0; mask; i++, mask>>=1) {
  832. /* skip non used pmds */
  833. if ((mask & 0x1) == 0) continue;
  834. if (PMD_IS_COUNTING(i)) {
  835. /*
  836. * we split the 64bit value according to
  837. * counter width
  838. */
  839. val = ctx->ctx_pmds[i].val & ovfl_mask;
  840. ctx->ctx_pmds[i].val &= ~ovfl_mask;
  841. } else {
  842. val = ctx->ctx_pmds[i].val;
  843. }
  844. ia64_set_pmd(i, val);
  845. DPRINT(("pmd[%d]=0x%lx hw_pmd=0x%lx\n",
  846. i,
  847. ctx->ctx_pmds[i].val,
  848. val));
  849. }
  850. /*
  851. * restore the PMCs
  852. */
  853. mask = ctx->ctx_used_monitors[0] >> PMU_FIRST_COUNTER;
  854. for(i= PMU_FIRST_COUNTER; mask; i++, mask>>=1) {
  855. if ((mask & 0x1) == 0UL) continue;
  856. ctx->th_pmcs[i] = ctx->ctx_pmcs[i];
  857. ia64_set_pmc(i, ctx->th_pmcs[i]);
  858. DPRINT(("[%d] pmc[%d]=0x%lx\n", task->pid, i, ctx->th_pmcs[i]));
  859. }
  860. ia64_srlz_d();
  861. /*
  862. * must restore DBR/IBR because could be modified while masked
  863. * XXX: need to optimize
  864. */
  865. if (ctx->ctx_fl_using_dbreg) {
  866. pfm_restore_ibrs(ctx->ctx_ibrs, pmu_conf->num_ibrs);
  867. pfm_restore_dbrs(ctx->ctx_dbrs, pmu_conf->num_dbrs);
  868. }
  869. /*
  870. * now restore PSR
  871. */
  872. if (is_system && (PFM_CPUINFO_GET() & PFM_CPUINFO_DCR_PP)) {
  873. /* enable dcr pp */
  874. ia64_setreg(_IA64_REG_CR_DCR, ia64_getreg(_IA64_REG_CR_DCR) | IA64_DCR_PP);
  875. ia64_srlz_i();
  876. }
  877. pfm_set_psr_l(psr);
  878. }
  879. static inline void
  880. pfm_save_pmds(unsigned long *pmds, unsigned long mask)
  881. {
  882. int i;
  883. ia64_srlz_d();
  884. for (i=0; mask; i++, mask>>=1) {
  885. if (mask & 0x1) pmds[i] = ia64_get_pmd(i);
  886. }
  887. }
  888. /*
  889. * reload from thread state (used for ctxw only)
  890. */
  891. static inline void
  892. pfm_restore_pmds(unsigned long *pmds, unsigned long mask)
  893. {
  894. int i;
  895. unsigned long val, ovfl_val = pmu_conf->ovfl_val;
  896. for (i=0; mask; i++, mask>>=1) {
  897. if ((mask & 0x1) == 0) continue;
  898. val = PMD_IS_COUNTING(i) ? pmds[i] & ovfl_val : pmds[i];
  899. ia64_set_pmd(i, val);
  900. }
  901. ia64_srlz_d();
  902. }
  903. /*
  904. * propagate PMD from context to thread-state
  905. */
  906. static inline void
  907. pfm_copy_pmds(struct task_struct *task, pfm_context_t *ctx)
  908. {
  909. unsigned long ovfl_val = pmu_conf->ovfl_val;
  910. unsigned long mask = ctx->ctx_all_pmds[0];
  911. unsigned long val;
  912. int i;
  913. DPRINT(("mask=0x%lx\n", mask));
  914. for (i=0; mask; i++, mask>>=1) {
  915. val = ctx->ctx_pmds[i].val;
  916. /*
  917. * We break up the 64 bit value into 2 pieces
  918. * the lower bits go to the machine state in the
  919. * thread (will be reloaded on ctxsw in).
  920. * The upper part stays in the soft-counter.
  921. */
  922. if (PMD_IS_COUNTING(i)) {
  923. ctx->ctx_pmds[i].val = val & ~ovfl_val;
  924. val &= ovfl_val;
  925. }
  926. ctx->th_pmds[i] = val;
  927. DPRINT(("pmd[%d]=0x%lx soft_val=0x%lx\n",
  928. i,
  929. ctx->th_pmds[i],
  930. ctx->ctx_pmds[i].val));
  931. }
  932. }
  933. /*
  934. * propagate PMC from context to thread-state
  935. */
  936. static inline void
  937. pfm_copy_pmcs(struct task_struct *task, pfm_context_t *ctx)
  938. {
  939. unsigned long mask = ctx->ctx_all_pmcs[0];
  940. int i;
  941. DPRINT(("mask=0x%lx\n", mask));
  942. for (i=0; mask; i++, mask>>=1) {
  943. /* masking 0 with ovfl_val yields 0 */
  944. ctx->th_pmcs[i] = ctx->ctx_pmcs[i];
  945. DPRINT(("pmc[%d]=0x%lx\n", i, ctx->th_pmcs[i]));
  946. }
  947. }
  948. static inline void
  949. pfm_restore_pmcs(unsigned long *pmcs, unsigned long mask)
  950. {
  951. int i;
  952. for (i=0; mask; i++, mask>>=1) {
  953. if ((mask & 0x1) == 0) continue;
  954. ia64_set_pmc(i, pmcs[i]);
  955. }
  956. ia64_srlz_d();
  957. }
  958. static inline int
  959. pfm_uuid_cmp(pfm_uuid_t a, pfm_uuid_t b)
  960. {
  961. return memcmp(a, b, sizeof(pfm_uuid_t));
  962. }
  963. static inline int
  964. pfm_buf_fmt_exit(pfm_buffer_fmt_t *fmt, struct task_struct *task, void *buf, struct pt_regs *regs)
  965. {
  966. int ret = 0;
  967. if (fmt->fmt_exit) ret = (*fmt->fmt_exit)(task, buf, regs);
  968. return ret;
  969. }
  970. static inline int
  971. pfm_buf_fmt_getsize(pfm_buffer_fmt_t *fmt, struct task_struct *task, unsigned int flags, int cpu, void *arg, unsigned long *size)
  972. {
  973. int ret = 0;
  974. if (fmt->fmt_getsize) ret = (*fmt->fmt_getsize)(task, flags, cpu, arg, size);
  975. return ret;
  976. }
  977. static inline int
  978. pfm_buf_fmt_validate(pfm_buffer_fmt_t *fmt, struct task_struct *task, unsigned int flags,
  979. int cpu, void *arg)
  980. {
  981. int ret = 0;
  982. if (fmt->fmt_validate) ret = (*fmt->fmt_validate)(task, flags, cpu, arg);
  983. return ret;
  984. }
  985. static inline int
  986. pfm_buf_fmt_init(pfm_buffer_fmt_t *fmt, struct task_struct *task, void *buf, unsigned int flags,
  987. int cpu, void *arg)
  988. {
  989. int ret = 0;
  990. if (fmt->fmt_init) ret = (*fmt->fmt_init)(task, buf, flags, cpu, arg);
  991. return ret;
  992. }
  993. static inline int
  994. pfm_buf_fmt_restart(pfm_buffer_fmt_t *fmt, struct task_struct *task, pfm_ovfl_ctrl_t *ctrl, void *buf, struct pt_regs *regs)
  995. {
  996. int ret = 0;
  997. if (fmt->fmt_restart) ret = (*fmt->fmt_restart)(task, ctrl, buf, regs);
  998. return ret;
  999. }
  1000. static inline int
  1001. pfm_buf_fmt_restart_active(pfm_buffer_fmt_t *fmt, struct task_struct *task, pfm_ovfl_ctrl_t *ctrl, void *buf, struct pt_regs *regs)
  1002. {
  1003. int ret = 0;
  1004. if (fmt->fmt_restart_active) ret = (*fmt->fmt_restart_active)(task, ctrl, buf, regs);
  1005. return ret;
  1006. }
  1007. static pfm_buffer_fmt_t *
  1008. __pfm_find_buffer_fmt(pfm_uuid_t uuid)
  1009. {
  1010. struct list_head * pos;
  1011. pfm_buffer_fmt_t * entry;
  1012. list_for_each(pos, &pfm_buffer_fmt_list) {
  1013. entry = list_entry(pos, pfm_buffer_fmt_t, fmt_list);
  1014. if (pfm_uuid_cmp(uuid, entry->fmt_uuid) == 0)
  1015. return entry;
  1016. }
  1017. return NULL;
  1018. }
  1019. /*
  1020. * find a buffer format based on its uuid
  1021. */
  1022. static pfm_buffer_fmt_t *
  1023. pfm_find_buffer_fmt(pfm_uuid_t uuid)
  1024. {
  1025. pfm_buffer_fmt_t * fmt;
  1026. spin_lock(&pfm_buffer_fmt_lock);
  1027. fmt = __pfm_find_buffer_fmt(uuid);
  1028. spin_unlock(&pfm_buffer_fmt_lock);
  1029. return fmt;
  1030. }
  1031. int
  1032. pfm_register_buffer_fmt(pfm_buffer_fmt_t *fmt)
  1033. {
  1034. int ret = 0;
  1035. /* some sanity checks */
  1036. if (fmt == NULL || fmt->fmt_name == NULL) return -EINVAL;
  1037. /* we need at least a handler */
  1038. if (fmt->fmt_handler == NULL) return -EINVAL;
  1039. /*
  1040. * XXX: need check validity of fmt_arg_size
  1041. */
  1042. spin_lock(&pfm_buffer_fmt_lock);
  1043. if (__pfm_find_buffer_fmt(fmt->fmt_uuid)) {
  1044. printk(KERN_ERR "perfmon: duplicate sampling format: %s\n", fmt->fmt_name);
  1045. ret = -EBUSY;
  1046. goto out;
  1047. }
  1048. list_add(&fmt->fmt_list, &pfm_buffer_fmt_list);
  1049. printk(KERN_INFO "perfmon: added sampling format %s\n", fmt->fmt_name);
  1050. out:
  1051. spin_unlock(&pfm_buffer_fmt_lock);
  1052. return ret;
  1053. }
  1054. EXPORT_SYMBOL(pfm_register_buffer_fmt);
  1055. int
  1056. pfm_unregister_buffer_fmt(pfm_uuid_t uuid)
  1057. {
  1058. pfm_buffer_fmt_t *fmt;
  1059. int ret = 0;
  1060. spin_lock(&pfm_buffer_fmt_lock);
  1061. fmt = __pfm_find_buffer_fmt(uuid);
  1062. if (!fmt) {
  1063. printk(KERN_ERR "perfmon: cannot unregister format, not found\n");
  1064. ret = -EINVAL;
  1065. goto out;
  1066. }
  1067. list_del_init(&fmt->fmt_list);
  1068. printk(KERN_INFO "perfmon: removed sampling format: %s\n", fmt->fmt_name);
  1069. out:
  1070. spin_unlock(&pfm_buffer_fmt_lock);
  1071. return ret;
  1072. }
  1073. EXPORT_SYMBOL(pfm_unregister_buffer_fmt);
  1074. extern void update_pal_halt_status(int);
  1075. static int
  1076. pfm_reserve_session(struct task_struct *task, int is_syswide, unsigned int cpu)
  1077. {
  1078. unsigned long flags;
  1079. /*
  1080. * validy checks on cpu_mask have been done upstream
  1081. */
  1082. LOCK_PFS(flags);
  1083. DPRINT(("in sys_sessions=%u task_sessions=%u dbregs=%u syswide=%d cpu=%u\n",
  1084. pfm_sessions.pfs_sys_sessions,
  1085. pfm_sessions.pfs_task_sessions,
  1086. pfm_sessions.pfs_sys_use_dbregs,
  1087. is_syswide,
  1088. cpu));
  1089. if (is_syswide) {
  1090. /*
  1091. * cannot mix system wide and per-task sessions
  1092. */
  1093. if (pfm_sessions.pfs_task_sessions > 0UL) {
  1094. DPRINT(("system wide not possible, %u conflicting task_sessions\n",
  1095. pfm_sessions.pfs_task_sessions));
  1096. goto abort;
  1097. }
  1098. if (pfm_sessions.pfs_sys_session[cpu]) goto error_conflict;
  1099. DPRINT(("reserving system wide session on CPU%u currently on CPU%u\n", cpu, smp_processor_id()));
  1100. pfm_sessions.pfs_sys_session[cpu] = task;
  1101. pfm_sessions.pfs_sys_sessions++ ;
  1102. } else {
  1103. if (pfm_sessions.pfs_sys_sessions) goto abort;
  1104. pfm_sessions.pfs_task_sessions++;
  1105. }
  1106. DPRINT(("out sys_sessions=%u task_sessions=%u dbregs=%u syswide=%d cpu=%u\n",
  1107. pfm_sessions.pfs_sys_sessions,
  1108. pfm_sessions.pfs_task_sessions,
  1109. pfm_sessions.pfs_sys_use_dbregs,
  1110. is_syswide,
  1111. cpu));
  1112. /*
  1113. * disable default_idle() to go to PAL_HALT
  1114. */
  1115. update_pal_halt_status(0);
  1116. UNLOCK_PFS(flags);
  1117. return 0;
  1118. error_conflict:
  1119. DPRINT(("system wide not possible, conflicting session [%d] on CPU%d\n",
  1120. pfm_sessions.pfs_sys_session[cpu]->pid,
  1121. cpu));
  1122. abort:
  1123. UNLOCK_PFS(flags);
  1124. return -EBUSY;
  1125. }
  1126. static int
  1127. pfm_unreserve_session(pfm_context_t *ctx, int is_syswide, unsigned int cpu)
  1128. {
  1129. unsigned long flags;
  1130. /*
  1131. * validy checks on cpu_mask have been done upstream
  1132. */
  1133. LOCK_PFS(flags);
  1134. DPRINT(("in sys_sessions=%u task_sessions=%u dbregs=%u syswide=%d cpu=%u\n",
  1135. pfm_sessions.pfs_sys_sessions,
  1136. pfm_sessions.pfs_task_sessions,
  1137. pfm_sessions.pfs_sys_use_dbregs,
  1138. is_syswide,
  1139. cpu));
  1140. if (is_syswide) {
  1141. pfm_sessions.pfs_sys_session[cpu] = NULL;
  1142. /*
  1143. * would not work with perfmon+more than one bit in cpu_mask
  1144. */
  1145. if (ctx && ctx->ctx_fl_using_dbreg) {
  1146. if (pfm_sessions.pfs_sys_use_dbregs == 0) {
  1147. printk(KERN_ERR "perfmon: invalid release for ctx %p sys_use_dbregs=0\n", ctx);
  1148. } else {
  1149. pfm_sessions.pfs_sys_use_dbregs--;
  1150. }
  1151. }
  1152. pfm_sessions.pfs_sys_sessions--;
  1153. } else {
  1154. pfm_sessions.pfs_task_sessions--;
  1155. }
  1156. DPRINT(("out sys_sessions=%u task_sessions=%u dbregs=%u syswide=%d cpu=%u\n",
  1157. pfm_sessions.pfs_sys_sessions,
  1158. pfm_sessions.pfs_task_sessions,
  1159. pfm_sessions.pfs_sys_use_dbregs,
  1160. is_syswide,
  1161. cpu));
  1162. /*
  1163. * if possible, enable default_idle() to go into PAL_HALT
  1164. */
  1165. if (pfm_sessions.pfs_task_sessions == 0 && pfm_sessions.pfs_sys_sessions == 0)
  1166. update_pal_halt_status(1);
  1167. UNLOCK_PFS(flags);
  1168. return 0;
  1169. }
  1170. /*
  1171. * removes virtual mapping of the sampling buffer.
  1172. * IMPORTANT: cannot be called with interrupts disable, e.g. inside
  1173. * a PROTECT_CTX() section.
  1174. */
  1175. static int
  1176. pfm_remove_smpl_mapping(struct task_struct *task, void *vaddr, unsigned long size)
  1177. {
  1178. int r;
  1179. /* sanity checks */
  1180. if (task->mm == NULL || size == 0UL || vaddr == NULL) {
  1181. printk(KERN_ERR "perfmon: pfm_remove_smpl_mapping [%d] invalid context mm=%p\n", task->pid, task->mm);
  1182. return -EINVAL;
  1183. }
  1184. DPRINT(("smpl_vaddr=%p size=%lu\n", vaddr, size));
  1185. /*
  1186. * does the actual unmapping
  1187. */
  1188. down_write(&task->mm->mmap_sem);
  1189. DPRINT(("down_write done smpl_vaddr=%p size=%lu\n", vaddr, size));
  1190. r = pfm_do_munmap(task->mm, (unsigned long)vaddr, size, 0);
  1191. up_write(&task->mm->mmap_sem);
  1192. if (r !=0) {
  1193. printk(KERN_ERR "perfmon: [%d] unable to unmap sampling buffer @%p size=%lu\n", task->pid, vaddr, size);
  1194. }
  1195. DPRINT(("do_unmap(%p, %lu)=%d\n", vaddr, size, r));
  1196. return 0;
  1197. }
  1198. /*
  1199. * free actual physical storage used by sampling buffer
  1200. */
  1201. #if 0
  1202. static int
  1203. pfm_free_smpl_buffer(pfm_context_t *ctx)
  1204. {
  1205. pfm_buffer_fmt_t *fmt;
  1206. if (ctx->ctx_smpl_hdr == NULL) goto invalid_free;
  1207. /*
  1208. * we won't use the buffer format anymore
  1209. */
  1210. fmt = ctx->ctx_buf_fmt;
  1211. DPRINT(("sampling buffer @%p size %lu vaddr=%p\n",
  1212. ctx->ctx_smpl_hdr,
  1213. ctx->ctx_smpl_size,
  1214. ctx->ctx_smpl_vaddr));
  1215. pfm_buf_fmt_exit(fmt, current, NULL, NULL);
  1216. /*
  1217. * free the buffer
  1218. */
  1219. pfm_rvfree(ctx->ctx_smpl_hdr, ctx->ctx_smpl_size);
  1220. ctx->ctx_smpl_hdr = NULL;
  1221. ctx->ctx_smpl_size = 0UL;
  1222. return 0;
  1223. invalid_free:
  1224. printk(KERN_ERR "perfmon: pfm_free_smpl_buffer [%d] no buffer\n", current->pid);
  1225. return -EINVAL;
  1226. }
  1227. #endif
  1228. static inline void
  1229. pfm_exit_smpl_buffer(pfm_buffer_fmt_t *fmt)
  1230. {
  1231. if (fmt == NULL) return;
  1232. pfm_buf_fmt_exit(fmt, current, NULL, NULL);
  1233. }
  1234. /*
  1235. * pfmfs should _never_ be mounted by userland - too much of security hassle,
  1236. * no real gain from having the whole whorehouse mounted. So we don't need
  1237. * any operations on the root directory. However, we need a non-trivial
  1238. * d_name - pfm: will go nicely and kill the special-casing in procfs.
  1239. */
  1240. static struct vfsmount *pfmfs_mnt;
  1241. static int __init
  1242. init_pfm_fs(void)
  1243. {
  1244. int err = register_filesystem(&pfm_fs_type);
  1245. if (!err) {
  1246. pfmfs_mnt = kern_mount(&pfm_fs_type);
  1247. err = PTR_ERR(pfmfs_mnt);
  1248. if (IS_ERR(pfmfs_mnt))
  1249. unregister_filesystem(&pfm_fs_type);
  1250. else
  1251. err = 0;
  1252. }
  1253. return err;
  1254. }
  1255. static void __exit
  1256. exit_pfm_fs(void)
  1257. {
  1258. unregister_filesystem(&pfm_fs_type);
  1259. mntput(pfmfs_mnt);
  1260. }
  1261. static ssize_t
  1262. pfm_read(struct file *filp, char __user *buf, size_t size, loff_t *ppos)
  1263. {
  1264. pfm_context_t *ctx;
  1265. pfm_msg_t *msg;
  1266. ssize_t ret;
  1267. unsigned long flags;
  1268. DECLARE_WAITQUEUE(wait, current);
  1269. if (PFM_IS_FILE(filp) == 0) {
  1270. printk(KERN_ERR "perfmon: pfm_poll: bad magic [%d]\n", current->pid);
  1271. return -EINVAL;
  1272. }
  1273. ctx = (pfm_context_t *)filp->private_data;
  1274. if (ctx == NULL) {
  1275. printk(KERN_ERR "perfmon: pfm_read: NULL ctx [%d]\n", current->pid);
  1276. return -EINVAL;
  1277. }
  1278. /*
  1279. * check even when there is no message
  1280. */
  1281. if (size < sizeof(pfm_msg_t)) {
  1282. DPRINT(("message is too small ctx=%p (>=%ld)\n", ctx, sizeof(pfm_msg_t)));
  1283. return -EINVAL;
  1284. }
  1285. PROTECT_CTX(ctx, flags);
  1286. /*
  1287. * put ourselves on the wait queue
  1288. */
  1289. add_wait_queue(&ctx->ctx_msgq_wait, &wait);
  1290. for(;;) {
  1291. /*
  1292. * check wait queue
  1293. */
  1294. set_current_state(TASK_INTERRUPTIBLE);
  1295. DPRINT(("head=%d tail=%d\n", ctx->ctx_msgq_head, ctx->ctx_msgq_tail));
  1296. ret = 0;
  1297. if(PFM_CTXQ_EMPTY(ctx) == 0) break;
  1298. UNPROTECT_CTX(ctx, flags);
  1299. /*
  1300. * check non-blocking read
  1301. */
  1302. ret = -EAGAIN;
  1303. if(filp->f_flags & O_NONBLOCK) break;
  1304. /*
  1305. * check pending signals
  1306. */
  1307. if(signal_pending(current)) {
  1308. ret = -EINTR;
  1309. break;
  1310. }
  1311. /*
  1312. * no message, so wait
  1313. */
  1314. schedule();
  1315. PROTECT_CTX(ctx, flags);
  1316. }
  1317. DPRINT(("[%d] back to running ret=%ld\n", current->pid, ret));
  1318. set_current_state(TASK_RUNNING);
  1319. remove_wait_queue(&ctx->ctx_msgq_wait, &wait);
  1320. if (ret < 0) goto abort;
  1321. ret = -EINVAL;
  1322. msg = pfm_get_next_msg(ctx);
  1323. if (msg == NULL) {
  1324. printk(KERN_ERR "perfmon: pfm_read no msg for ctx=%p [%d]\n", ctx, current->pid);
  1325. goto abort_locked;
  1326. }
  1327. DPRINT(("fd=%d type=%d\n", msg->pfm_gen_msg.msg_ctx_fd, msg->pfm_gen_msg.msg_type));
  1328. ret = -EFAULT;
  1329. if(copy_to_user(buf, msg, sizeof(pfm_msg_t)) == 0) ret = sizeof(pfm_msg_t);
  1330. abort_locked:
  1331. UNPROTECT_CTX(ctx, flags);
  1332. abort:
  1333. return ret;
  1334. }
  1335. static ssize_t
  1336. pfm_write(struct file *file, const char __user *ubuf,
  1337. size_t size, loff_t *ppos)
  1338. {
  1339. DPRINT(("pfm_write called\n"));
  1340. return -EINVAL;
  1341. }
  1342. static unsigned int
  1343. pfm_poll(struct file *filp, poll_table * wait)
  1344. {
  1345. pfm_context_t *ctx;
  1346. unsigned long flags;
  1347. unsigned int mask = 0;
  1348. if (PFM_IS_FILE(filp) == 0) {
  1349. printk(KERN_ERR "perfmon: pfm_poll: bad magic [%d]\n", current->pid);
  1350. return 0;
  1351. }
  1352. ctx = (pfm_context_t *)filp->private_data;
  1353. if (ctx == NULL) {
  1354. printk(KERN_ERR "perfmon: pfm_poll: NULL ctx [%d]\n", current->pid);
  1355. return 0;
  1356. }
  1357. DPRINT(("pfm_poll ctx_fd=%d before poll_wait\n", ctx->ctx_fd));
  1358. poll_wait(filp, &ctx->ctx_msgq_wait, wait);
  1359. PROTECT_CTX(ctx, flags);
  1360. if (PFM_CTXQ_EMPTY(ctx) == 0)
  1361. mask = POLLIN | POLLRDNORM;
  1362. UNPROTECT_CTX(ctx, flags);
  1363. DPRINT(("pfm_poll ctx_fd=%d mask=0x%x\n", ctx->ctx_fd, mask));
  1364. return mask;
  1365. }
  1366. static int
  1367. pfm_ioctl(struct inode *inode, struct file *file, unsigned int cmd, unsigned long arg)
  1368. {
  1369. DPRINT(("pfm_ioctl called\n"));
  1370. return -EINVAL;
  1371. }
  1372. /*
  1373. * interrupt cannot be masked when coming here
  1374. */
  1375. static inline int
  1376. pfm_do_fasync(int fd, struct file *filp, pfm_context_t *ctx, int on)
  1377. {
  1378. int ret;
  1379. ret = fasync_helper (fd, filp, on, &ctx->ctx_async_queue);
  1380. DPRINT(("pfm_fasync called by [%d] on ctx_fd=%d on=%d async_queue=%p ret=%d\n",
  1381. current->pid,
  1382. fd,
  1383. on,
  1384. ctx->ctx_async_queue, ret));
  1385. return ret;
  1386. }
  1387. static int
  1388. pfm_fasync(int fd, struct file *filp, int on)
  1389. {
  1390. pfm_context_t *ctx;
  1391. int ret;
  1392. if (PFM_IS_FILE(filp) == 0) {
  1393. printk(KERN_ERR "perfmon: pfm_fasync bad magic [%d]\n", current->pid);
  1394. return -EBADF;
  1395. }
  1396. ctx = (pfm_context_t *)filp->private_data;
  1397. if (ctx == NULL) {
  1398. printk(KERN_ERR "perfmon: pfm_fasync NULL ctx [%d]\n", current->pid);
  1399. return -EBADF;
  1400. }
  1401. /*
  1402. * we cannot mask interrupts during this call because this may
  1403. * may go to sleep if memory is not readily avalaible.
  1404. *
  1405. * We are protected from the conetxt disappearing by the get_fd()/put_fd()
  1406. * done in caller. Serialization of this function is ensured by caller.
  1407. */
  1408. ret = pfm_do_fasync(fd, filp, ctx, on);
  1409. DPRINT(("pfm_fasync called on ctx_fd=%d on=%d async_queue=%p ret=%d\n",
  1410. fd,
  1411. on,
  1412. ctx->ctx_async_queue, ret));
  1413. return ret;
  1414. }
  1415. #ifdef CONFIG_SMP
  1416. /*
  1417. * this function is exclusively called from pfm_close().
  1418. * The context is not protected at that time, nor are interrupts
  1419. * on the remote CPU. That's necessary to avoid deadlocks.
  1420. */
  1421. static void
  1422. pfm_syswide_force_stop(void *info)
  1423. {
  1424. pfm_context_t *ctx = (pfm_context_t *)info;
  1425. struct pt_regs *regs = task_pt_regs(current);
  1426. struct task_struct *owner;
  1427. unsigned long flags;
  1428. int ret;
  1429. if (ctx->ctx_cpu != smp_processor_id()) {
  1430. printk(KERN_ERR "perfmon: pfm_syswide_force_stop for CPU%d but on CPU%d\n",
  1431. ctx->ctx_cpu,
  1432. smp_processor_id());
  1433. return;
  1434. }
  1435. owner = GET_PMU_OWNER();
  1436. if (owner != ctx->ctx_task) {
  1437. printk(KERN_ERR "perfmon: pfm_syswide_force_stop CPU%d unexpected owner [%d] instead of [%d]\n",
  1438. smp_processor_id(),
  1439. owner->pid, ctx->ctx_task->pid);
  1440. return;
  1441. }
  1442. if (GET_PMU_CTX() != ctx) {
  1443. printk(KERN_ERR "perfmon: pfm_syswide_force_stop CPU%d unexpected ctx %p instead of %p\n",
  1444. smp_processor_id(),
  1445. GET_PMU_CTX(), ctx);
  1446. return;
  1447. }
  1448. DPRINT(("on CPU%d forcing system wide stop for [%d]\n", smp_processor_id(), ctx->ctx_task->pid));
  1449. /*
  1450. * the context is already protected in pfm_close(), we simply
  1451. * need to mask interrupts to avoid a PMU interrupt race on
  1452. * this CPU
  1453. */
  1454. local_irq_save(flags);
  1455. ret = pfm_context_unload(ctx, NULL, 0, regs);
  1456. if (ret) {
  1457. DPRINT(("context_unload returned %d\n", ret));
  1458. }
  1459. /*
  1460. * unmask interrupts, PMU interrupts are now spurious here
  1461. */
  1462. local_irq_restore(flags);
  1463. }
  1464. static void
  1465. pfm_syswide_cleanup_other_cpu(pfm_context_t *ctx)
  1466. {
  1467. int ret;
  1468. DPRINT(("calling CPU%d for cleanup\n", ctx->ctx_cpu));
  1469. ret = smp_call_function_single(ctx->ctx_cpu, pfm_syswide_force_stop, ctx, 0, 1);
  1470. DPRINT(("called CPU%d for cleanup ret=%d\n", ctx->ctx_cpu, ret));
  1471. }
  1472. #endif /* CONFIG_SMP */
  1473. /*
  1474. * called for each close(). Partially free resources.
  1475. * When caller is self-monitoring, the context is unloaded.
  1476. */
  1477. static int
  1478. pfm_flush(struct file *filp, fl_owner_t id)
  1479. {
  1480. pfm_context_t *ctx;
  1481. struct task_struct *task;
  1482. struct pt_regs *regs;
  1483. unsigned long flags;
  1484. unsigned long smpl_buf_size = 0UL;
  1485. void *smpl_buf_vaddr = NULL;
  1486. int state, is_system;
  1487. if (PFM_IS_FILE(filp) == 0) {
  1488. DPRINT(("bad magic for\n"));
  1489. return -EBADF;
  1490. }
  1491. ctx = (pfm_context_t *)filp->private_data;
  1492. if (ctx == NULL) {
  1493. printk(KERN_ERR "perfmon: pfm_flush: NULL ctx [%d]\n", current->pid);
  1494. return -EBADF;
  1495. }
  1496. /*
  1497. * remove our file from the async queue, if we use this mode.
  1498. * This can be done without the context being protected. We come
  1499. * here when the context has become unreacheable by other tasks.
  1500. *
  1501. * We may still have active monitoring at this point and we may
  1502. * end up in pfm_overflow_handler(). However, fasync_helper()
  1503. * operates with interrupts disabled and it cleans up the
  1504. * queue. If the PMU handler is called prior to entering
  1505. * fasync_helper() then it will send a signal. If it is
  1506. * invoked after, it will find an empty queue and no
  1507. * signal will be sent. In both case, we are safe
  1508. */
  1509. if (filp->f_flags & FASYNC) {
  1510. DPRINT(("cleaning up async_queue=%p\n", ctx->ctx_async_queue));
  1511. pfm_do_fasync (-1, filp, ctx, 0);
  1512. }
  1513. PROTECT_CTX(ctx, flags);
  1514. state = ctx->ctx_state;
  1515. is_system = ctx->ctx_fl_system;
  1516. task = PFM_CTX_TASK(ctx);
  1517. regs = task_pt_regs(task);
  1518. DPRINT(("ctx_state=%d is_current=%d\n",
  1519. state,
  1520. task == current ? 1 : 0));
  1521. /*
  1522. * if state == UNLOADED, then task is NULL
  1523. */
  1524. /*
  1525. * we must stop and unload because we are losing access to the context.
  1526. */
  1527. if (task == current) {
  1528. #ifdef CONFIG_SMP
  1529. /*
  1530. * the task IS the owner but it migrated to another CPU: that's bad
  1531. * but we must handle this cleanly. Unfortunately, the kernel does
  1532. * not provide a mechanism to block migration (while the context is loaded).
  1533. *
  1534. * We need to release the resource on the ORIGINAL cpu.
  1535. */
  1536. if (is_system && ctx->ctx_cpu != smp_processor_id()) {
  1537. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  1538. /*
  1539. * keep context protected but unmask interrupt for IPI
  1540. */
  1541. local_irq_restore(flags);
  1542. pfm_syswide_cleanup_other_cpu(ctx);
  1543. /*
  1544. * restore interrupt masking
  1545. */
  1546. local_irq_save(flags);
  1547. /*
  1548. * context is unloaded at this point
  1549. */
  1550. } else
  1551. #endif /* CONFIG_SMP */
  1552. {
  1553. DPRINT(("forcing unload\n"));
  1554. /*
  1555. * stop and unload, returning with state UNLOADED
  1556. * and session unreserved.
  1557. */
  1558. pfm_context_unload(ctx, NULL, 0, regs);
  1559. DPRINT(("ctx_state=%d\n", ctx->ctx_state));
  1560. }
  1561. }
  1562. /*
  1563. * remove virtual mapping, if any, for the calling task.
  1564. * cannot reset ctx field until last user is calling close().
  1565. *
  1566. * ctx_smpl_vaddr must never be cleared because it is needed
  1567. * by every task with access to the context
  1568. *
  1569. * When called from do_exit(), the mm context is gone already, therefore
  1570. * mm is NULL, i.e., the VMA is already gone and we do not have to
  1571. * do anything here
  1572. */
  1573. if (ctx->ctx_smpl_vaddr && current->mm) {
  1574. smpl_buf_vaddr = ctx->ctx_smpl_vaddr;
  1575. smpl_buf_size = ctx->ctx_smpl_size;
  1576. }
  1577. UNPROTECT_CTX(ctx, flags);
  1578. /*
  1579. * if there was a mapping, then we systematically remove it
  1580. * at this point. Cannot be done inside critical section
  1581. * because some VM function reenables interrupts.
  1582. *
  1583. */
  1584. if (smpl_buf_vaddr) pfm_remove_smpl_mapping(current, smpl_buf_vaddr, smpl_buf_size);
  1585. return 0;
  1586. }
  1587. /*
  1588. * called either on explicit close() or from exit_files().
  1589. * Only the LAST user of the file gets to this point, i.e., it is
  1590. * called only ONCE.
  1591. *
  1592. * IMPORTANT: we get called ONLY when the refcnt on the file gets to zero
  1593. * (fput()),i.e, last task to access the file. Nobody else can access the
  1594. * file at this point.
  1595. *
  1596. * When called from exit_files(), the VMA has been freed because exit_mm()
  1597. * is executed before exit_files().
  1598. *
  1599. * When called from exit_files(), the current task is not yet ZOMBIE but we
  1600. * flush the PMU state to the context.
  1601. */
  1602. static int
  1603. pfm_close(struct inode *inode, struct file *filp)
  1604. {
  1605. pfm_context_t *ctx;
  1606. struct task_struct *task;
  1607. struct pt_regs *regs;
  1608. DECLARE_WAITQUEUE(wait, current);
  1609. unsigned long flags;
  1610. unsigned long smpl_buf_size = 0UL;
  1611. void *smpl_buf_addr = NULL;
  1612. int free_possible = 1;
  1613. int state, is_system;
  1614. DPRINT(("pfm_close called private=%p\n", filp->private_data));
  1615. if (PFM_IS_FILE(filp) == 0) {
  1616. DPRINT(("bad magic\n"));
  1617. return -EBADF;
  1618. }
  1619. ctx = (pfm_context_t *)filp->private_data;
  1620. if (ctx == NULL) {
  1621. printk(KERN_ERR "perfmon: pfm_close: NULL ctx [%d]\n", current->pid);
  1622. return -EBADF;
  1623. }
  1624. PROTECT_CTX(ctx, flags);
  1625. state = ctx->ctx_state;
  1626. is_system = ctx->ctx_fl_system;
  1627. task = PFM_CTX_TASK(ctx);
  1628. regs = task_pt_regs(task);
  1629. DPRINT(("ctx_state=%d is_current=%d\n",
  1630. state,
  1631. task == current ? 1 : 0));
  1632. /*
  1633. * if task == current, then pfm_flush() unloaded the context
  1634. */
  1635. if (state == PFM_CTX_UNLOADED) goto doit;
  1636. /*
  1637. * context is loaded/masked and task != current, we need to
  1638. * either force an unload or go zombie
  1639. */
  1640. /*
  1641. * The task is currently blocked or will block after an overflow.
  1642. * we must force it to wakeup to get out of the
  1643. * MASKED state and transition to the unloaded state by itself.
  1644. *
  1645. * This situation is only possible for per-task mode
  1646. */
  1647. if (state == PFM_CTX_MASKED && CTX_OVFL_NOBLOCK(ctx) == 0) {
  1648. /*
  1649. * set a "partial" zombie state to be checked
  1650. * upon return from down() in pfm_handle_work().
  1651. *
  1652. * We cannot use the ZOMBIE state, because it is checked
  1653. * by pfm_load_regs() which is called upon wakeup from down().
  1654. * In such case, it would free the context and then we would
  1655. * return to pfm_handle_work() which would access the
  1656. * stale context. Instead, we set a flag invisible to pfm_load_regs()
  1657. * but visible to pfm_handle_work().
  1658. *
  1659. * For some window of time, we have a zombie context with
  1660. * ctx_state = MASKED and not ZOMBIE
  1661. */
  1662. ctx->ctx_fl_going_zombie = 1;
  1663. /*
  1664. * force task to wake up from MASKED state
  1665. */
  1666. complete(&ctx->ctx_restart_done);
  1667. DPRINT(("waking up ctx_state=%d\n", state));
  1668. /*
  1669. * put ourself to sleep waiting for the other
  1670. * task to report completion
  1671. *
  1672. * the context is protected by mutex, therefore there
  1673. * is no risk of being notified of completion before
  1674. * begin actually on the waitq.
  1675. */
  1676. set_current_state(TASK_INTERRUPTIBLE);
  1677. add_wait_queue(&ctx->ctx_zombieq, &wait);
  1678. UNPROTECT_CTX(ctx, flags);
  1679. /*
  1680. * XXX: check for signals :
  1681. * - ok for explicit close
  1682. * - not ok when coming from exit_files()
  1683. */
  1684. schedule();
  1685. PROTECT_CTX(ctx, flags);
  1686. remove_wait_queue(&ctx->ctx_zombieq, &wait);
  1687. set_current_state(TASK_RUNNING);
  1688. /*
  1689. * context is unloaded at this point
  1690. */
  1691. DPRINT(("after zombie wakeup ctx_state=%d for\n", state));
  1692. }
  1693. else if (task != current) {
  1694. #ifdef CONFIG_SMP
  1695. /*
  1696. * switch context to zombie state
  1697. */
  1698. ctx->ctx_state = PFM_CTX_ZOMBIE;
  1699. DPRINT(("zombie ctx for [%d]\n", task->pid));
  1700. /*
  1701. * cannot free the context on the spot. deferred until
  1702. * the task notices the ZOMBIE state
  1703. */
  1704. free_possible = 0;
  1705. #else
  1706. pfm_context_unload(ctx, NULL, 0, regs);
  1707. #endif
  1708. }
  1709. doit:
  1710. /* reload state, may have changed during opening of critical section */
  1711. state = ctx->ctx_state;
  1712. /*
  1713. * the context is still attached to a task (possibly current)
  1714. * we cannot destroy it right now
  1715. */
  1716. /*
  1717. * we must free the sampling buffer right here because
  1718. * we cannot rely on it being cleaned up later by the
  1719. * monitored task. It is not possible to free vmalloc'ed
  1720. * memory in pfm_load_regs(). Instead, we remove the buffer
  1721. * now. should there be subsequent PMU overflow originally
  1722. * meant for sampling, the will be converted to spurious
  1723. * and that's fine because the monitoring tools is gone anyway.
  1724. */
  1725. if (ctx->ctx_smpl_hdr) {
  1726. smpl_buf_addr = ctx->ctx_smpl_hdr;
  1727. smpl_buf_size = ctx->ctx_smpl_size;
  1728. /* no more sampling */
  1729. ctx->ctx_smpl_hdr = NULL;
  1730. ctx->ctx_fl_is_sampling = 0;
  1731. }
  1732. DPRINT(("ctx_state=%d free_possible=%d addr=%p size=%lu\n",
  1733. state,
  1734. free_possible,
  1735. smpl_buf_addr,
  1736. smpl_buf_size));
  1737. if (smpl_buf_addr) pfm_exit_smpl_buffer(ctx->ctx_buf_fmt);
  1738. /*
  1739. * UNLOADED that the session has already been unreserved.
  1740. */
  1741. if (state == PFM_CTX_ZOMBIE) {
  1742. pfm_unreserve_session(ctx, ctx->ctx_fl_system , ctx->ctx_cpu);
  1743. }
  1744. /*
  1745. * disconnect file descriptor from context must be done
  1746. * before we unlock.
  1747. */
  1748. filp->private_data = NULL;
  1749. /*
  1750. * if we free on the spot, the context is now completely unreacheable
  1751. * from the callers side. The monitored task side is also cut, so we
  1752. * can freely cut.
  1753. *
  1754. * If we have a deferred free, only the caller side is disconnected.
  1755. */
  1756. UNPROTECT_CTX(ctx, flags);
  1757. /*
  1758. * All memory free operations (especially for vmalloc'ed memory)
  1759. * MUST be done with interrupts ENABLED.
  1760. */
  1761. if (smpl_buf_addr) pfm_rvfree(smpl_buf_addr, smpl_buf_size);
  1762. /*
  1763. * return the memory used by the context
  1764. */
  1765. if (free_possible) pfm_context_free(ctx);
  1766. return 0;
  1767. }
  1768. static int
  1769. pfm_no_open(struct inode *irrelevant, struct file *dontcare)
  1770. {
  1771. DPRINT(("pfm_no_open called\n"));
  1772. return -ENXIO;
  1773. }
  1774. static struct file_operations pfm_file_ops = {
  1775. .llseek = no_llseek,
  1776. .read = pfm_read,
  1777. .write = pfm_write,
  1778. .poll = pfm_poll,
  1779. .ioctl = pfm_ioctl,
  1780. .open = pfm_no_open, /* special open code to disallow open via /proc */
  1781. .fasync = pfm_fasync,
  1782. .release = pfm_close,
  1783. .flush = pfm_flush
  1784. };
  1785. static int
  1786. pfmfs_delete_dentry(struct dentry *dentry)
  1787. {
  1788. return 1;
  1789. }
  1790. static struct dentry_operations pfmfs_dentry_operations = {
  1791. .d_delete = pfmfs_delete_dentry,
  1792. };
  1793. static int
  1794. pfm_alloc_fd(struct file **cfile)
  1795. {
  1796. int fd, ret = 0;
  1797. struct file *file = NULL;
  1798. struct inode * inode;
  1799. char name[32];
  1800. struct qstr this;
  1801. fd = get_unused_fd();
  1802. if (fd < 0) return -ENFILE;
  1803. ret = -ENFILE;
  1804. file = get_empty_filp();
  1805. if (!file) goto out;
  1806. /*
  1807. * allocate a new inode
  1808. */
  1809. inode = new_inode(pfmfs_mnt->mnt_sb);
  1810. if (!inode) goto out;
  1811. DPRINT(("new inode ino=%ld @%p\n", inode->i_ino, inode));
  1812. inode->i_mode = S_IFCHR|S_IRUGO;
  1813. inode->i_uid = current->fsuid;
  1814. inode->i_gid = current->fsgid;
  1815. sprintf(name, "[%lu]", inode->i_ino);
  1816. this.name = name;
  1817. this.len = strlen(name);
  1818. this.hash = inode->i_ino;
  1819. ret = -ENOMEM;
  1820. /*
  1821. * allocate a new dcache entry
  1822. */
  1823. file->f_dentry = d_alloc(pfmfs_mnt->mnt_sb->s_root, &this);
  1824. if (!file->f_dentry) goto out;
  1825. file->f_dentry->d_op = &pfmfs_dentry_operations;
  1826. d_add(file->f_dentry, inode);
  1827. file->f_vfsmnt = mntget(pfmfs_mnt);
  1828. file->f_mapping = inode->i_mapping;
  1829. file->f_op = &pfm_file_ops;
  1830. file->f_mode = FMODE_READ;
  1831. file->f_flags = O_RDONLY;
  1832. file->f_pos = 0;
  1833. /*
  1834. * may have to delay until context is attached?
  1835. */
  1836. fd_install(fd, file);
  1837. /*
  1838. * the file structure we will use
  1839. */
  1840. *cfile = file;
  1841. return fd;
  1842. out:
  1843. if (file) put_filp(file);
  1844. put_unused_fd(fd);
  1845. return ret;
  1846. }
  1847. static void
  1848. pfm_free_fd(int fd, struct file *file)
  1849. {
  1850. struct files_struct *files = current->files;
  1851. struct fdtable *fdt;
  1852. /*
  1853. * there ie no fd_uninstall(), so we do it here
  1854. */
  1855. spin_lock(&files->file_lock);
  1856. fdt = files_fdtable(files);
  1857. rcu_assign_pointer(fdt->fd[fd], NULL);
  1858. spin_unlock(&files->file_lock);
  1859. if (file)
  1860. put_filp(file);
  1861. put_unused_fd(fd);
  1862. }
  1863. static int
  1864. pfm_remap_buffer(struct vm_area_struct *vma, unsigned long buf, unsigned long addr, unsigned long size)
  1865. {
  1866. DPRINT(("CPU%d buf=0x%lx addr=0x%lx size=%ld\n", smp_processor_id(), buf, addr, size));
  1867. while (size > 0) {
  1868. unsigned long pfn = ia64_tpa(buf) >> PAGE_SHIFT;
  1869. if (remap_pfn_range(vma, addr, pfn, PAGE_SIZE, PAGE_READONLY))
  1870. return -ENOMEM;
  1871. addr += PAGE_SIZE;
  1872. buf += PAGE_SIZE;
  1873. size -= PAGE_SIZE;
  1874. }
  1875. return 0;
  1876. }
  1877. /*
  1878. * allocate a sampling buffer and remaps it into the user address space of the task
  1879. */
  1880. static int
  1881. pfm_smpl_buffer_alloc(struct task_struct *task, pfm_context_t *ctx, unsigned long rsize, void **user_vaddr)
  1882. {
  1883. struct mm_struct *mm = task->mm;
  1884. struct vm_area_struct *vma = NULL;
  1885. unsigned long size;
  1886. void *smpl_buf;
  1887. /*
  1888. * the fixed header + requested size and align to page boundary
  1889. */
  1890. size = PAGE_ALIGN(rsize);
  1891. DPRINT(("sampling buffer rsize=%lu size=%lu bytes\n", rsize, size));
  1892. /*
  1893. * check requested size to avoid Denial-of-service attacks
  1894. * XXX: may have to refine this test
  1895. * Check against address space limit.
  1896. *
  1897. * if ((mm->total_vm << PAGE_SHIFT) + len> task->rlim[RLIMIT_AS].rlim_cur)
  1898. * return -ENOMEM;
  1899. */
  1900. if (size > task->signal->rlim[RLIMIT_MEMLOCK].rlim_cur)
  1901. return -ENOMEM;
  1902. /*
  1903. * We do the easy to undo allocations first.
  1904. *
  1905. * pfm_rvmalloc(), clears the buffer, so there is no leak
  1906. */
  1907. smpl_buf = pfm_rvmalloc(size);
  1908. if (smpl_buf == NULL) {
  1909. DPRINT(("Can't allocate sampling buffer\n"));
  1910. return -ENOMEM;
  1911. }
  1912. DPRINT(("smpl_buf @%p\n", smpl_buf));
  1913. /* allocate vma */
  1914. vma = kmem_cache_alloc(vm_area_cachep, SLAB_KERNEL);
  1915. if (!vma) {
  1916. DPRINT(("Cannot allocate vma\n"));
  1917. goto error_kmem;
  1918. }
  1919. memset(vma, 0, sizeof(*vma));
  1920. /*
  1921. * partially initialize the vma for the sampling buffer
  1922. */
  1923. vma->vm_mm = mm;
  1924. vma->vm_flags = VM_READ| VM_MAYREAD |VM_RESERVED;
  1925. vma->vm_page_prot = PAGE_READONLY; /* XXX may need to change */
  1926. /*
  1927. * Now we have everything we need and we can initialize
  1928. * and connect all the data structures
  1929. */
  1930. ctx->ctx_smpl_hdr = smpl_buf;
  1931. ctx->ctx_smpl_size = size; /* aligned size */
  1932. /*
  1933. * Let's do the difficult operations next.
  1934. *
  1935. * now we atomically find some area in the address space and
  1936. * remap the buffer in it.
  1937. */
  1938. down_write(&task->mm->mmap_sem);
  1939. /* find some free area in address space, must have mmap sem held */
  1940. vma->vm_start = pfm_get_unmapped_area(NULL, 0, size, 0, MAP_PRIVATE|MAP_ANONYMOUS, 0);
  1941. if (vma->vm_start == 0UL) {
  1942. DPRINT(("Cannot find unmapped area for size %ld\n", size));
  1943. up_write(&task->mm->mmap_sem);
  1944. goto error;
  1945. }
  1946. vma->vm_end = vma->vm_start + size;
  1947. vma->vm_pgoff = vma->vm_start >> PAGE_SHIFT;
  1948. DPRINT(("aligned size=%ld, hdr=%p mapped @0x%lx\n", size, ctx->ctx_smpl_hdr, vma->vm_start));
  1949. /* can only be applied to current task, need to have the mm semaphore held when called */
  1950. if (pfm_remap_buffer(vma, (unsigned long)smpl_buf, vma->vm_start, size)) {
  1951. DPRINT(("Can't remap buffer\n"));
  1952. up_write(&task->mm->mmap_sem);
  1953. goto error;
  1954. }
  1955. /*
  1956. * now insert the vma in the vm list for the process, must be
  1957. * done with mmap lock held
  1958. */
  1959. insert_vm_struct(mm, vma);
  1960. mm->total_vm += size >> PAGE_SHIFT;
  1961. vm_stat_account(vma->vm_mm, vma->vm_flags, vma->vm_file,
  1962. vma_pages(vma));
  1963. up_write(&task->mm->mmap_sem);
  1964. /*
  1965. * keep track of user level virtual address
  1966. */
  1967. ctx->ctx_smpl_vaddr = (void *)vma->vm_start;
  1968. *(unsigned long *)user_vaddr = vma->vm_start;
  1969. return 0;
  1970. error:
  1971. kmem_cache_free(vm_area_cachep, vma);
  1972. error_kmem:
  1973. pfm_rvfree(smpl_buf, size);
  1974. return -ENOMEM;
  1975. }
  1976. /*
  1977. * XXX: do something better here
  1978. */
  1979. static int
  1980. pfm_bad_permissions(struct task_struct *task)
  1981. {
  1982. /* inspired by ptrace_attach() */
  1983. DPRINT(("cur: uid=%d gid=%d task: euid=%d suid=%d uid=%d egid=%d sgid=%d\n",
  1984. current->uid,
  1985. current->gid,
  1986. task->euid,
  1987. task->suid,
  1988. task->uid,
  1989. task->egid,
  1990. task->sgid));
  1991. return ((current->uid != task->euid)
  1992. || (current->uid != task->suid)
  1993. || (current->uid != task->uid)
  1994. || (current->gid != task->egid)
  1995. || (current->gid != task->sgid)
  1996. || (current->gid != task->gid)) && !capable(CAP_SYS_PTRACE);
  1997. }
  1998. static int
  1999. pfarg_is_sane(struct task_struct *task, pfarg_context_t *pfx)
  2000. {
  2001. int ctx_flags;
  2002. /* valid signal */
  2003. ctx_flags = pfx->ctx_flags;
  2004. if (ctx_flags & PFM_FL_SYSTEM_WIDE) {
  2005. /*
  2006. * cannot block in this mode
  2007. */
  2008. if (ctx_flags & PFM_FL_NOTIFY_BLOCK) {
  2009. DPRINT(("cannot use blocking mode when in system wide monitoring\n"));
  2010. return -EINVAL;
  2011. }
  2012. } else {
  2013. }
  2014. /* probably more to add here */
  2015. return 0;
  2016. }
  2017. static int
  2018. pfm_setup_buffer_fmt(struct task_struct *task, pfm_context_t *ctx, unsigned int ctx_flags,
  2019. unsigned int cpu, pfarg_context_t *arg)
  2020. {
  2021. pfm_buffer_fmt_t *fmt = NULL;
  2022. unsigned long size = 0UL;
  2023. void *uaddr = NULL;
  2024. void *fmt_arg = NULL;
  2025. int ret = 0;
  2026. #define PFM_CTXARG_BUF_ARG(a) (pfm_buffer_fmt_t *)(a+1)
  2027. /* invoke and lock buffer format, if found */
  2028. fmt = pfm_find_buffer_fmt(arg->ctx_smpl_buf_id);
  2029. if (fmt == NULL) {
  2030. DPRINT(("[%d] cannot find buffer format\n", task->pid));
  2031. return -EINVAL;
  2032. }
  2033. /*
  2034. * buffer argument MUST be contiguous to pfarg_context_t
  2035. */
  2036. if (fmt->fmt_arg_size) fmt_arg = PFM_CTXARG_BUF_ARG(arg);
  2037. ret = pfm_buf_fmt_validate(fmt, task, ctx_flags, cpu, fmt_arg);
  2038. DPRINT(("[%d] after validate(0x%x,%d,%p)=%d\n", task->pid, ctx_flags, cpu, fmt_arg, ret));
  2039. if (ret) goto error;
  2040. /* link buffer format and context */
  2041. ctx->ctx_buf_fmt = fmt;
  2042. /*
  2043. * check if buffer format wants to use perfmon buffer allocation/mapping service
  2044. */
  2045. ret = pfm_buf_fmt_getsize(fmt, task, ctx_flags, cpu, fmt_arg, &size);
  2046. if (ret) goto error;
  2047. if (size) {
  2048. /*
  2049. * buffer is always remapped into the caller's address space
  2050. */
  2051. ret = pfm_smpl_buffer_alloc(current, ctx, size, &uaddr);
  2052. if (ret) goto error;
  2053. /* keep track of user address of buffer */
  2054. arg->ctx_smpl_vaddr = uaddr;
  2055. }
  2056. ret = pfm_buf_fmt_init(fmt, task, ctx->ctx_smpl_hdr, ctx_flags, cpu, fmt_arg);
  2057. error:
  2058. return ret;
  2059. }
  2060. static void
  2061. pfm_reset_pmu_state(pfm_context_t *ctx)
  2062. {
  2063. int i;
  2064. /*
  2065. * install reset values for PMC.
  2066. */
  2067. for (i=1; PMC_IS_LAST(i) == 0; i++) {
  2068. if (PMC_IS_IMPL(i) == 0) continue;
  2069. ctx->ctx_pmcs[i] = PMC_DFL_VAL(i);
  2070. DPRINT(("pmc[%d]=0x%lx\n", i, ctx->ctx_pmcs[i]));
  2071. }
  2072. /*
  2073. * PMD registers are set to 0UL when the context in memset()
  2074. */
  2075. /*
  2076. * On context switched restore, we must restore ALL pmc and ALL pmd even
  2077. * when they are not actively used by the task. In UP, the incoming process
  2078. * may otherwise pick up left over PMC, PMD state from the previous process.
  2079. * As opposed to PMD, stale PMC can cause harm to the incoming
  2080. * process because they may change what is being measured.
  2081. * Therefore, we must systematically reinstall the entire
  2082. * PMC state. In SMP, the same thing is possible on the
  2083. * same CPU but also on between 2 CPUs.
  2084. *
  2085. * The problem with PMD is information leaking especially
  2086. * to user level when psr.sp=0
  2087. *
  2088. * There is unfortunately no easy way to avoid this problem
  2089. * on either UP or SMP. This definitively slows down the
  2090. * pfm_load_regs() function.
  2091. */
  2092. /*
  2093. * bitmask of all PMCs accessible to this context
  2094. *
  2095. * PMC0 is treated differently.
  2096. */
  2097. ctx->ctx_all_pmcs[0] = pmu_conf->impl_pmcs[0] & ~0x1;
  2098. /*
  2099. * bitmask of all PMDs that are accesible to this context
  2100. */
  2101. ctx->ctx_all_pmds[0] = pmu_conf->impl_pmds[0];
  2102. DPRINT(("<%d> all_pmcs=0x%lx all_pmds=0x%lx\n", ctx->ctx_fd, ctx->ctx_all_pmcs[0],ctx->ctx_all_pmds[0]));
  2103. /*
  2104. * useful in case of re-enable after disable
  2105. */
  2106. ctx->ctx_used_ibrs[0] = 0UL;
  2107. ctx->ctx_used_dbrs[0] = 0UL;
  2108. }
  2109. static int
  2110. pfm_ctx_getsize(void *arg, size_t *sz)
  2111. {
  2112. pfarg_context_t *req = (pfarg_context_t *)arg;
  2113. pfm_buffer_fmt_t *fmt;
  2114. *sz = 0;
  2115. if (!pfm_uuid_cmp(req->ctx_smpl_buf_id, pfm_null_uuid)) return 0;
  2116. fmt = pfm_find_buffer_fmt(req->ctx_smpl_buf_id);
  2117. if (fmt == NULL) {
  2118. DPRINT(("cannot find buffer format\n"));
  2119. return -EINVAL;
  2120. }
  2121. /* get just enough to copy in user parameters */
  2122. *sz = fmt->fmt_arg_size;
  2123. DPRINT(("arg_size=%lu\n", *sz));
  2124. return 0;
  2125. }
  2126. /*
  2127. * cannot attach if :
  2128. * - kernel task
  2129. * - task not owned by caller
  2130. * - task incompatible with context mode
  2131. */
  2132. static int
  2133. pfm_task_incompatible(pfm_context_t *ctx, struct task_struct *task)
  2134. {
  2135. /*
  2136. * no kernel task or task not owner by caller
  2137. */
  2138. if (task->mm == NULL) {
  2139. DPRINT(("task [%d] has not memory context (kernel thread)\n", task->pid));
  2140. return -EPERM;
  2141. }
  2142. if (pfm_bad_permissions(task)) {
  2143. DPRINT(("no permission to attach to [%d]\n", task->pid));
  2144. return -EPERM;
  2145. }
  2146. /*
  2147. * cannot block in self-monitoring mode
  2148. */
  2149. if (CTX_OVFL_NOBLOCK(ctx) == 0 && task == current) {
  2150. DPRINT(("cannot load a blocking context on self for [%d]\n", task->pid));
  2151. return -EINVAL;
  2152. }
  2153. if (task->exit_state == EXIT_ZOMBIE) {
  2154. DPRINT(("cannot attach to zombie task [%d]\n", task->pid));
  2155. return -EBUSY;
  2156. }
  2157. /*
  2158. * always ok for self
  2159. */
  2160. if (task == current) return 0;
  2161. if ((task->state != TASK_STOPPED) && (task->state != TASK_TRACED)) {
  2162. DPRINT(("cannot attach to non-stopped task [%d] state=%ld\n", task->pid, task->state));
  2163. return -EBUSY;
  2164. }
  2165. /*
  2166. * make sure the task is off any CPU
  2167. */
  2168. wait_task_inactive(task);
  2169. /* more to come... */
  2170. return 0;
  2171. }
  2172. static int
  2173. pfm_get_task(pfm_context_t *ctx, pid_t pid, struct task_struct **task)
  2174. {
  2175. struct task_struct *p = current;
  2176. int ret;
  2177. /* XXX: need to add more checks here */
  2178. if (pid < 2) return -EPERM;
  2179. if (pid != current->pid) {
  2180. read_lock(&tasklist_lock);
  2181. p = find_task_by_pid(pid);
  2182. /* make sure task cannot go away while we operate on it */
  2183. if (p) get_task_struct(p);
  2184. read_unlock(&tasklist_lock);
  2185. if (p == NULL) return -ESRCH;
  2186. }
  2187. ret = pfm_task_incompatible(ctx, p);
  2188. if (ret == 0) {
  2189. *task = p;
  2190. } else if (p != current) {
  2191. pfm_put_task(p);
  2192. }
  2193. return ret;
  2194. }
  2195. static int
  2196. pfm_context_create(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  2197. {
  2198. pfarg_context_t *req = (pfarg_context_t *)arg;
  2199. struct file *filp;
  2200. int ctx_flags;
  2201. int ret;
  2202. /* let's check the arguments first */
  2203. ret = pfarg_is_sane(current, req);
  2204. if (ret < 0) return ret;
  2205. ctx_flags = req->ctx_flags;
  2206. ret = -ENOMEM;
  2207. ctx = pfm_context_alloc();
  2208. if (!ctx) goto error;
  2209. ret = pfm_alloc_fd(&filp);
  2210. if (ret < 0) goto error_file;
  2211. req->ctx_fd = ctx->ctx_fd = ret;
  2212. /*
  2213. * attach context to file
  2214. */
  2215. filp->private_data = ctx;
  2216. /*
  2217. * does the user want to sample?
  2218. */
  2219. if (pfm_uuid_cmp(req->ctx_smpl_buf_id, pfm_null_uuid)) {
  2220. ret = pfm_setup_buffer_fmt(current, ctx, ctx_flags, 0, req);
  2221. if (ret) goto buffer_error;
  2222. }
  2223. /*
  2224. * init context protection lock
  2225. */
  2226. spin_lock_init(&ctx->ctx_lock);
  2227. /*
  2228. * context is unloaded
  2229. */
  2230. ctx->ctx_state = PFM_CTX_UNLOADED;
  2231. /*
  2232. * initialization of context's flags
  2233. */
  2234. ctx->ctx_fl_block = (ctx_flags & PFM_FL_NOTIFY_BLOCK) ? 1 : 0;
  2235. ctx->ctx_fl_system = (ctx_flags & PFM_FL_SYSTEM_WIDE) ? 1: 0;
  2236. ctx->ctx_fl_is_sampling = ctx->ctx_buf_fmt ? 1 : 0; /* assume record() is defined */
  2237. ctx->ctx_fl_no_msg = (ctx_flags & PFM_FL_OVFL_NO_MSG) ? 1: 0;
  2238. /*
  2239. * will move to set properties
  2240. * ctx->ctx_fl_excl_idle = (ctx_flags & PFM_FL_EXCL_IDLE) ? 1: 0;
  2241. */
  2242. /*
  2243. * init restart semaphore to locked
  2244. */
  2245. init_completion(&ctx->ctx_restart_done);
  2246. /*
  2247. * activation is used in SMP only
  2248. */
  2249. ctx->ctx_last_activation = PFM_INVALID_ACTIVATION;
  2250. SET_LAST_CPU(ctx, -1);
  2251. /*
  2252. * initialize notification message queue
  2253. */
  2254. ctx->ctx_msgq_head = ctx->ctx_msgq_tail = 0;
  2255. init_waitqueue_head(&ctx->ctx_msgq_wait);
  2256. init_waitqueue_head(&ctx->ctx_zombieq);
  2257. DPRINT(("ctx=%p flags=0x%x system=%d notify_block=%d excl_idle=%d no_msg=%d ctx_fd=%d \n",
  2258. ctx,
  2259. ctx_flags,
  2260. ctx->ctx_fl_system,
  2261. ctx->ctx_fl_block,
  2262. ctx->ctx_fl_excl_idle,
  2263. ctx->ctx_fl_no_msg,
  2264. ctx->ctx_fd));
  2265. /*
  2266. * initialize soft PMU state
  2267. */
  2268. pfm_reset_pmu_state(ctx);
  2269. return 0;
  2270. buffer_error:
  2271. pfm_free_fd(ctx->ctx_fd, filp);
  2272. if (ctx->ctx_buf_fmt) {
  2273. pfm_buf_fmt_exit(ctx->ctx_buf_fmt, current, NULL, regs);
  2274. }
  2275. error_file:
  2276. pfm_context_free(ctx);
  2277. error:
  2278. return ret;
  2279. }
  2280. static inline unsigned long
  2281. pfm_new_counter_value (pfm_counter_t *reg, int is_long_reset)
  2282. {
  2283. unsigned long val = is_long_reset ? reg->long_reset : reg->short_reset;
  2284. unsigned long new_seed, old_seed = reg->seed, mask = reg->mask;
  2285. extern unsigned long carta_random32 (unsigned long seed);
  2286. if (reg->flags & PFM_REGFL_RANDOM) {
  2287. new_seed = carta_random32(old_seed);
  2288. val -= (old_seed & mask); /* counter values are negative numbers! */
  2289. if ((mask >> 32) != 0)
  2290. /* construct a full 64-bit random value: */
  2291. new_seed |= carta_random32(old_seed >> 32) << 32;
  2292. reg->seed = new_seed;
  2293. }
  2294. reg->lval = val;
  2295. return val;
  2296. }
  2297. static void
  2298. pfm_reset_regs_masked(pfm_context_t *ctx, unsigned long *ovfl_regs, int is_long_reset)
  2299. {
  2300. unsigned long mask = ovfl_regs[0];
  2301. unsigned long reset_others = 0UL;
  2302. unsigned long val;
  2303. int i;
  2304. /*
  2305. * now restore reset value on sampling overflowed counters
  2306. */
  2307. mask >>= PMU_FIRST_COUNTER;
  2308. for(i = PMU_FIRST_COUNTER; mask; i++, mask >>= 1) {
  2309. if ((mask & 0x1UL) == 0UL) continue;
  2310. ctx->ctx_pmds[i].val = val = pfm_new_counter_value(ctx->ctx_pmds+ i, is_long_reset);
  2311. reset_others |= ctx->ctx_pmds[i].reset_pmds[0];
  2312. DPRINT_ovfl((" %s reset ctx_pmds[%d]=%lx\n", is_long_reset ? "long" : "short", i, val));
  2313. }
  2314. /*
  2315. * Now take care of resetting the other registers
  2316. */
  2317. for(i = 0; reset_others; i++, reset_others >>= 1) {
  2318. if ((reset_others & 0x1) == 0) continue;
  2319. ctx->ctx_pmds[i].val = val = pfm_new_counter_value(ctx->ctx_pmds + i, is_long_reset);
  2320. DPRINT_ovfl(("%s reset_others pmd[%d]=%lx\n",
  2321. is_long_reset ? "long" : "short", i, val));
  2322. }
  2323. }
  2324. static void
  2325. pfm_reset_regs(pfm_context_t *ctx, unsigned long *ovfl_regs, int is_long_reset)
  2326. {
  2327. unsigned long mask = ovfl_regs[0];
  2328. unsigned long reset_others = 0UL;
  2329. unsigned long val;
  2330. int i;
  2331. DPRINT_ovfl(("ovfl_regs=0x%lx is_long_reset=%d\n", ovfl_regs[0], is_long_reset));
  2332. if (ctx->ctx_state == PFM_CTX_MASKED) {
  2333. pfm_reset_regs_masked(ctx, ovfl_regs, is_long_reset);
  2334. return;
  2335. }
  2336. /*
  2337. * now restore reset value on sampling overflowed counters
  2338. */
  2339. mask >>= PMU_FIRST_COUNTER;
  2340. for(i = PMU_FIRST_COUNTER; mask; i++, mask >>= 1) {
  2341. if ((mask & 0x1UL) == 0UL) continue;
  2342. val = pfm_new_counter_value(ctx->ctx_pmds+ i, is_long_reset);
  2343. reset_others |= ctx->ctx_pmds[i].reset_pmds[0];
  2344. DPRINT_ovfl((" %s reset ctx_pmds[%d]=%lx\n", is_long_reset ? "long" : "short", i, val));
  2345. pfm_write_soft_counter(ctx, i, val);
  2346. }
  2347. /*
  2348. * Now take care of resetting the other registers
  2349. */
  2350. for(i = 0; reset_others; i++, reset_others >>= 1) {
  2351. if ((reset_others & 0x1) == 0) continue;
  2352. val = pfm_new_counter_value(ctx->ctx_pmds + i, is_long_reset);
  2353. if (PMD_IS_COUNTING(i)) {
  2354. pfm_write_soft_counter(ctx, i, val);
  2355. } else {
  2356. ia64_set_pmd(i, val);
  2357. }
  2358. DPRINT_ovfl(("%s reset_others pmd[%d]=%lx\n",
  2359. is_long_reset ? "long" : "short", i, val));
  2360. }
  2361. ia64_srlz_d();
  2362. }
  2363. static int
  2364. pfm_write_pmcs(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  2365. {
  2366. struct task_struct *task;
  2367. pfarg_reg_t *req = (pfarg_reg_t *)arg;
  2368. unsigned long value, pmc_pm;
  2369. unsigned long smpl_pmds, reset_pmds, impl_pmds;
  2370. unsigned int cnum, reg_flags, flags, pmc_type;
  2371. int i, can_access_pmu = 0, is_loaded, is_system, expert_mode;
  2372. int is_monitor, is_counting, state;
  2373. int ret = -EINVAL;
  2374. pfm_reg_check_t wr_func;
  2375. #define PFM_CHECK_PMC_PM(x, y, z) ((x)->ctx_fl_system ^ PMC_PM(y, z))
  2376. state = ctx->ctx_state;
  2377. is_loaded = state == PFM_CTX_LOADED ? 1 : 0;
  2378. is_system = ctx->ctx_fl_system;
  2379. task = ctx->ctx_task;
  2380. impl_pmds = pmu_conf->impl_pmds[0];
  2381. if (state == PFM_CTX_ZOMBIE) return -EINVAL;
  2382. if (is_loaded) {
  2383. /*
  2384. * In system wide and when the context is loaded, access can only happen
  2385. * when the caller is running on the CPU being monitored by the session.
  2386. * It does not have to be the owner (ctx_task) of the context per se.
  2387. */
  2388. if (is_system && ctx->ctx_cpu != smp_processor_id()) {
  2389. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  2390. return -EBUSY;
  2391. }
  2392. can_access_pmu = GET_PMU_OWNER() == task || is_system ? 1 : 0;
  2393. }
  2394. expert_mode = pfm_sysctl.expert_mode;
  2395. for (i = 0; i < count; i++, req++) {
  2396. cnum = req->reg_num;
  2397. reg_flags = req->reg_flags;
  2398. value = req->reg_value;
  2399. smpl_pmds = req->reg_smpl_pmds[0];
  2400. reset_pmds = req->reg_reset_pmds[0];
  2401. flags = 0;
  2402. if (cnum >= PMU_MAX_PMCS) {
  2403. DPRINT(("pmc%u is invalid\n", cnum));
  2404. goto error;
  2405. }
  2406. pmc_type = pmu_conf->pmc_desc[cnum].type;
  2407. pmc_pm = (value >> pmu_conf->pmc_desc[cnum].pm_pos) & 0x1;
  2408. is_counting = (pmc_type & PFM_REG_COUNTING) == PFM_REG_COUNTING ? 1 : 0;
  2409. is_monitor = (pmc_type & PFM_REG_MONITOR) == PFM_REG_MONITOR ? 1 : 0;
  2410. /*
  2411. * we reject all non implemented PMC as well
  2412. * as attempts to modify PMC[0-3] which are used
  2413. * as status registers by the PMU
  2414. */
  2415. if ((pmc_type & PFM_REG_IMPL) == 0 || (pmc_type & PFM_REG_CONTROL) == PFM_REG_CONTROL) {
  2416. DPRINT(("pmc%u is unimplemented or no-access pmc_type=%x\n", cnum, pmc_type));
  2417. goto error;
  2418. }
  2419. wr_func = pmu_conf->pmc_desc[cnum].write_check;
  2420. /*
  2421. * If the PMC is a monitor, then if the value is not the default:
  2422. * - system-wide session: PMCx.pm=1 (privileged monitor)
  2423. * - per-task : PMCx.pm=0 (user monitor)
  2424. */
  2425. if (is_monitor && value != PMC_DFL_VAL(cnum) && is_system ^ pmc_pm) {
  2426. DPRINT(("pmc%u pmc_pm=%lu is_system=%d\n",
  2427. cnum,
  2428. pmc_pm,
  2429. is_system));
  2430. goto error;
  2431. }
  2432. if (is_counting) {
  2433. /*
  2434. * enforce generation of overflow interrupt. Necessary on all
  2435. * CPUs.
  2436. */
  2437. value |= 1 << PMU_PMC_OI;
  2438. if (reg_flags & PFM_REGFL_OVFL_NOTIFY) {
  2439. flags |= PFM_REGFL_OVFL_NOTIFY;
  2440. }
  2441. if (reg_flags & PFM_REGFL_RANDOM) flags |= PFM_REGFL_RANDOM;
  2442. /* verify validity of smpl_pmds */
  2443. if ((smpl_pmds & impl_pmds) != smpl_pmds) {
  2444. DPRINT(("invalid smpl_pmds 0x%lx for pmc%u\n", smpl_pmds, cnum));
  2445. goto error;
  2446. }
  2447. /* verify validity of reset_pmds */
  2448. if ((reset_pmds & impl_pmds) != reset_pmds) {
  2449. DPRINT(("invalid reset_pmds 0x%lx for pmc%u\n", reset_pmds, cnum));
  2450. goto error;
  2451. }
  2452. } else {
  2453. if (reg_flags & (PFM_REGFL_OVFL_NOTIFY|PFM_REGFL_RANDOM)) {
  2454. DPRINT(("cannot set ovfl_notify or random on pmc%u\n", cnum));
  2455. goto error;
  2456. }
  2457. /* eventid on non-counting monitors are ignored */
  2458. }
  2459. /*
  2460. * execute write checker, if any
  2461. */
  2462. if (likely(expert_mode == 0 && wr_func)) {
  2463. ret = (*wr_func)(task, ctx, cnum, &value, regs);
  2464. if (ret) goto error;
  2465. ret = -EINVAL;
  2466. }
  2467. /*
  2468. * no error on this register
  2469. */
  2470. PFM_REG_RETFLAG_SET(req->reg_flags, 0);
  2471. /*
  2472. * Now we commit the changes to the software state
  2473. */
  2474. /*
  2475. * update overflow information
  2476. */
  2477. if (is_counting) {
  2478. /*
  2479. * full flag update each time a register is programmed
  2480. */
  2481. ctx->ctx_pmds[cnum].flags = flags;
  2482. ctx->ctx_pmds[cnum].reset_pmds[0] = reset_pmds;
  2483. ctx->ctx_pmds[cnum].smpl_pmds[0] = smpl_pmds;
  2484. ctx->ctx_pmds[cnum].eventid = req->reg_smpl_eventid;
  2485. /*
  2486. * Mark all PMDS to be accessed as used.
  2487. *
  2488. * We do not keep track of PMC because we have to
  2489. * systematically restore ALL of them.
  2490. *
  2491. * We do not update the used_monitors mask, because
  2492. * if we have not programmed them, then will be in
  2493. * a quiescent state, therefore we will not need to
  2494. * mask/restore then when context is MASKED.
  2495. */
  2496. CTX_USED_PMD(ctx, reset_pmds);
  2497. CTX_USED_PMD(ctx, smpl_pmds);
  2498. /*
  2499. * make sure we do not try to reset on
  2500. * restart because we have established new values
  2501. */
  2502. if (state == PFM_CTX_MASKED) ctx->ctx_ovfl_regs[0] &= ~1UL << cnum;
  2503. }
  2504. /*
  2505. * Needed in case the user does not initialize the equivalent
  2506. * PMD. Clearing is done indirectly via pfm_reset_pmu_state() so there is no
  2507. * possible leak here.
  2508. */
  2509. CTX_USED_PMD(ctx, pmu_conf->pmc_desc[cnum].dep_pmd[0]);
  2510. /*
  2511. * keep track of the monitor PMC that we are using.
  2512. * we save the value of the pmc in ctx_pmcs[] and if
  2513. * the monitoring is not stopped for the context we also
  2514. * place it in the saved state area so that it will be
  2515. * picked up later by the context switch code.
  2516. *
  2517. * The value in ctx_pmcs[] can only be changed in pfm_write_pmcs().
  2518. *
  2519. * The value in th_pmcs[] may be modified on overflow, i.e., when
  2520. * monitoring needs to be stopped.
  2521. */
  2522. if (is_monitor) CTX_USED_MONITOR(ctx, 1UL << cnum);
  2523. /*
  2524. * update context state
  2525. */
  2526. ctx->ctx_pmcs[cnum] = value;
  2527. if (is_loaded) {
  2528. /*
  2529. * write thread state
  2530. */
  2531. if (is_system == 0) ctx->th_pmcs[cnum] = value;
  2532. /*
  2533. * write hardware register if we can
  2534. */
  2535. if (can_access_pmu) {
  2536. ia64_set_pmc(cnum, value);
  2537. }
  2538. #ifdef CONFIG_SMP
  2539. else {
  2540. /*
  2541. * per-task SMP only here
  2542. *
  2543. * we are guaranteed that the task is not running on the other CPU,
  2544. * we indicate that this PMD will need to be reloaded if the task
  2545. * is rescheduled on the CPU it ran last on.
  2546. */
  2547. ctx->ctx_reload_pmcs[0] |= 1UL << cnum;
  2548. }
  2549. #endif
  2550. }
  2551. DPRINT(("pmc[%u]=0x%lx ld=%d apmu=%d flags=0x%x all_pmcs=0x%lx used_pmds=0x%lx eventid=%ld smpl_pmds=0x%lx reset_pmds=0x%lx reloads_pmcs=0x%lx used_monitors=0x%lx ovfl_regs=0x%lx\n",
  2552. cnum,
  2553. value,
  2554. is_loaded,
  2555. can_access_pmu,
  2556. flags,
  2557. ctx->ctx_all_pmcs[0],
  2558. ctx->ctx_used_pmds[0],
  2559. ctx->ctx_pmds[cnum].eventid,
  2560. smpl_pmds,
  2561. reset_pmds,
  2562. ctx->ctx_reload_pmcs[0],
  2563. ctx->ctx_used_monitors[0],
  2564. ctx->ctx_ovfl_regs[0]));
  2565. }
  2566. /*
  2567. * make sure the changes are visible
  2568. */
  2569. if (can_access_pmu) ia64_srlz_d();
  2570. return 0;
  2571. error:
  2572. PFM_REG_RETFLAG_SET(req->reg_flags, PFM_REG_RETFL_EINVAL);
  2573. return ret;
  2574. }
  2575. static int
  2576. pfm_write_pmds(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  2577. {
  2578. struct task_struct *task;
  2579. pfarg_reg_t *req = (pfarg_reg_t *)arg;
  2580. unsigned long value, hw_value, ovfl_mask;
  2581. unsigned int cnum;
  2582. int i, can_access_pmu = 0, state;
  2583. int is_counting, is_loaded, is_system, expert_mode;
  2584. int ret = -EINVAL;
  2585. pfm_reg_check_t wr_func;
  2586. state = ctx->ctx_state;
  2587. is_loaded = state == PFM_CTX_LOADED ? 1 : 0;
  2588. is_system = ctx->ctx_fl_system;
  2589. ovfl_mask = pmu_conf->ovfl_val;
  2590. task = ctx->ctx_task;
  2591. if (unlikely(state == PFM_CTX_ZOMBIE)) return -EINVAL;
  2592. /*
  2593. * on both UP and SMP, we can only write to the PMC when the task is
  2594. * the owner of the local PMU.
  2595. */
  2596. if (likely(is_loaded)) {
  2597. /*
  2598. * In system wide and when the context is loaded, access can only happen
  2599. * when the caller is running on the CPU being monitored by the session.
  2600. * It does not have to be the owner (ctx_task) of the context per se.
  2601. */
  2602. if (unlikely(is_system && ctx->ctx_cpu != smp_processor_id())) {
  2603. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  2604. return -EBUSY;
  2605. }
  2606. can_access_pmu = GET_PMU_OWNER() == task || is_system ? 1 : 0;
  2607. }
  2608. expert_mode = pfm_sysctl.expert_mode;
  2609. for (i = 0; i < count; i++, req++) {
  2610. cnum = req->reg_num;
  2611. value = req->reg_value;
  2612. if (!PMD_IS_IMPL(cnum)) {
  2613. DPRINT(("pmd[%u] is unimplemented or invalid\n", cnum));
  2614. goto abort_mission;
  2615. }
  2616. is_counting = PMD_IS_COUNTING(cnum);
  2617. wr_func = pmu_conf->pmd_desc[cnum].write_check;
  2618. /*
  2619. * execute write checker, if any
  2620. */
  2621. if (unlikely(expert_mode == 0 && wr_func)) {
  2622. unsigned long v = value;
  2623. ret = (*wr_func)(task, ctx, cnum, &v, regs);
  2624. if (ret) goto abort_mission;
  2625. value = v;
  2626. ret = -EINVAL;
  2627. }
  2628. /*
  2629. * no error on this register
  2630. */
  2631. PFM_REG_RETFLAG_SET(req->reg_flags, 0);
  2632. /*
  2633. * now commit changes to software state
  2634. */
  2635. hw_value = value;
  2636. /*
  2637. * update virtualized (64bits) counter
  2638. */
  2639. if (is_counting) {
  2640. /*
  2641. * write context state
  2642. */
  2643. ctx->ctx_pmds[cnum].lval = value;
  2644. /*
  2645. * when context is load we use the split value
  2646. */
  2647. if (is_loaded) {
  2648. hw_value = value & ovfl_mask;
  2649. value = value & ~ovfl_mask;
  2650. }
  2651. }
  2652. /*
  2653. * update reset values (not just for counters)
  2654. */
  2655. ctx->ctx_pmds[cnum].long_reset = req->reg_long_reset;
  2656. ctx->ctx_pmds[cnum].short_reset = req->reg_short_reset;
  2657. /*
  2658. * update randomization parameters (not just for counters)
  2659. */
  2660. ctx->ctx_pmds[cnum].seed = req->reg_random_seed;
  2661. ctx->ctx_pmds[cnum].mask = req->reg_random_mask;
  2662. /*
  2663. * update context value
  2664. */
  2665. ctx->ctx_pmds[cnum].val = value;
  2666. /*
  2667. * Keep track of what we use
  2668. *
  2669. * We do not keep track of PMC because we have to
  2670. * systematically restore ALL of them.
  2671. */
  2672. CTX_USED_PMD(ctx, PMD_PMD_DEP(cnum));
  2673. /*
  2674. * mark this PMD register used as well
  2675. */
  2676. CTX_USED_PMD(ctx, RDEP(cnum));
  2677. /*
  2678. * make sure we do not try to reset on
  2679. * restart because we have established new values
  2680. */
  2681. if (is_counting && state == PFM_CTX_MASKED) {
  2682. ctx->ctx_ovfl_regs[0] &= ~1UL << cnum;
  2683. }
  2684. if (is_loaded) {
  2685. /*
  2686. * write thread state
  2687. */
  2688. if (is_system == 0) ctx->th_pmds[cnum] = hw_value;
  2689. /*
  2690. * write hardware register if we can
  2691. */
  2692. if (can_access_pmu) {
  2693. ia64_set_pmd(cnum, hw_value);
  2694. } else {
  2695. #ifdef CONFIG_SMP
  2696. /*
  2697. * we are guaranteed that the task is not running on the other CPU,
  2698. * we indicate that this PMD will need to be reloaded if the task
  2699. * is rescheduled on the CPU it ran last on.
  2700. */
  2701. ctx->ctx_reload_pmds[0] |= 1UL << cnum;
  2702. #endif
  2703. }
  2704. }
  2705. DPRINT(("pmd[%u]=0x%lx ld=%d apmu=%d, hw_value=0x%lx ctx_pmd=0x%lx short_reset=0x%lx "
  2706. "long_reset=0x%lx notify=%c seed=0x%lx mask=0x%lx used_pmds=0x%lx reset_pmds=0x%lx reload_pmds=0x%lx all_pmds=0x%lx ovfl_regs=0x%lx\n",
  2707. cnum,
  2708. value,
  2709. is_loaded,
  2710. can_access_pmu,
  2711. hw_value,
  2712. ctx->ctx_pmds[cnum].val,
  2713. ctx->ctx_pmds[cnum].short_reset,
  2714. ctx->ctx_pmds[cnum].long_reset,
  2715. PMC_OVFL_NOTIFY(ctx, cnum) ? 'Y':'N',
  2716. ctx->ctx_pmds[cnum].seed,
  2717. ctx->ctx_pmds[cnum].mask,
  2718. ctx->ctx_used_pmds[0],
  2719. ctx->ctx_pmds[cnum].reset_pmds[0],
  2720. ctx->ctx_reload_pmds[0],
  2721. ctx->ctx_all_pmds[0],
  2722. ctx->ctx_ovfl_regs[0]));
  2723. }
  2724. /*
  2725. * make changes visible
  2726. */
  2727. if (can_access_pmu) ia64_srlz_d();
  2728. return 0;
  2729. abort_mission:
  2730. /*
  2731. * for now, we have only one possibility for error
  2732. */
  2733. PFM_REG_RETFLAG_SET(req->reg_flags, PFM_REG_RETFL_EINVAL);
  2734. return ret;
  2735. }
  2736. /*
  2737. * By the way of PROTECT_CONTEXT(), interrupts are masked while we are in this function.
  2738. * Therefore we know, we do not have to worry about the PMU overflow interrupt. If an
  2739. * interrupt is delivered during the call, it will be kept pending until we leave, making
  2740. * it appears as if it had been generated at the UNPROTECT_CONTEXT(). At least we are
  2741. * guaranteed to return consistent data to the user, it may simply be old. It is not
  2742. * trivial to treat the overflow while inside the call because you may end up in
  2743. * some module sampling buffer code causing deadlocks.
  2744. */
  2745. static int
  2746. pfm_read_pmds(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  2747. {
  2748. struct task_struct *task;
  2749. unsigned long val = 0UL, lval, ovfl_mask, sval;
  2750. pfarg_reg_t *req = (pfarg_reg_t *)arg;
  2751. unsigned int cnum, reg_flags = 0;
  2752. int i, can_access_pmu = 0, state;
  2753. int is_loaded, is_system, is_counting, expert_mode;
  2754. int ret = -EINVAL;
  2755. pfm_reg_check_t rd_func;
  2756. /*
  2757. * access is possible when loaded only for
  2758. * self-monitoring tasks or in UP mode
  2759. */
  2760. state = ctx->ctx_state;
  2761. is_loaded = state == PFM_CTX_LOADED ? 1 : 0;
  2762. is_system = ctx->ctx_fl_system;
  2763. ovfl_mask = pmu_conf->ovfl_val;
  2764. task = ctx->ctx_task;
  2765. if (state == PFM_CTX_ZOMBIE) return -EINVAL;
  2766. if (likely(is_loaded)) {
  2767. /*
  2768. * In system wide and when the context is loaded, access can only happen
  2769. * when the caller is running on the CPU being monitored by the session.
  2770. * It does not have to be the owner (ctx_task) of the context per se.
  2771. */
  2772. if (unlikely(is_system && ctx->ctx_cpu != smp_processor_id())) {
  2773. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  2774. return -EBUSY;
  2775. }
  2776. /*
  2777. * this can be true when not self-monitoring only in UP
  2778. */
  2779. can_access_pmu = GET_PMU_OWNER() == task || is_system ? 1 : 0;
  2780. if (can_access_pmu) ia64_srlz_d();
  2781. }
  2782. expert_mode = pfm_sysctl.expert_mode;
  2783. DPRINT(("ld=%d apmu=%d ctx_state=%d\n",
  2784. is_loaded,
  2785. can_access_pmu,
  2786. state));
  2787. /*
  2788. * on both UP and SMP, we can only read the PMD from the hardware register when
  2789. * the task is the owner of the local PMU.
  2790. */
  2791. for (i = 0; i < count; i++, req++) {
  2792. cnum = req->reg_num;
  2793. reg_flags = req->reg_flags;
  2794. if (unlikely(!PMD_IS_IMPL(cnum))) goto error;
  2795. /*
  2796. * we can only read the register that we use. That includes
  2797. * the one we explicitely initialize AND the one we want included
  2798. * in the sampling buffer (smpl_regs).
  2799. *
  2800. * Having this restriction allows optimization in the ctxsw routine
  2801. * without compromising security (leaks)
  2802. */
  2803. if (unlikely(!CTX_IS_USED_PMD(ctx, cnum))) goto error;
  2804. sval = ctx->ctx_pmds[cnum].val;
  2805. lval = ctx->ctx_pmds[cnum].lval;
  2806. is_counting = PMD_IS_COUNTING(cnum);
  2807. /*
  2808. * If the task is not the current one, then we check if the
  2809. * PMU state is still in the local live register due to lazy ctxsw.
  2810. * If true, then we read directly from the registers.
  2811. */
  2812. if (can_access_pmu){
  2813. val = ia64_get_pmd(cnum);
  2814. } else {
  2815. /*
  2816. * context has been saved
  2817. * if context is zombie, then task does not exist anymore.
  2818. * In this case, we use the full value saved in the context (pfm_flush_regs()).
  2819. */
  2820. val = is_loaded ? ctx->th_pmds[cnum] : 0UL;
  2821. }
  2822. rd_func = pmu_conf->pmd_desc[cnum].read_check;
  2823. if (is_counting) {
  2824. /*
  2825. * XXX: need to check for overflow when loaded
  2826. */
  2827. val &= ovfl_mask;
  2828. val += sval;
  2829. }
  2830. /*
  2831. * execute read checker, if any
  2832. */
  2833. if (unlikely(expert_mode == 0 && rd_func)) {
  2834. unsigned long v = val;
  2835. ret = (*rd_func)(ctx->ctx_task, ctx, cnum, &v, regs);
  2836. if (ret) goto error;
  2837. val = v;
  2838. ret = -EINVAL;
  2839. }
  2840. PFM_REG_RETFLAG_SET(reg_flags, 0);
  2841. DPRINT(("pmd[%u]=0x%lx\n", cnum, val));
  2842. /*
  2843. * update register return value, abort all if problem during copy.
  2844. * we only modify the reg_flags field. no check mode is fine because
  2845. * access has been verified upfront in sys_perfmonctl().
  2846. */
  2847. req->reg_value = val;
  2848. req->reg_flags = reg_flags;
  2849. req->reg_last_reset_val = lval;
  2850. }
  2851. return 0;
  2852. error:
  2853. PFM_REG_RETFLAG_SET(req->reg_flags, PFM_REG_RETFL_EINVAL);
  2854. return ret;
  2855. }
  2856. int
  2857. pfm_mod_write_pmcs(struct task_struct *task, void *req, unsigned int nreq, struct pt_regs *regs)
  2858. {
  2859. pfm_context_t *ctx;
  2860. if (req == NULL) return -EINVAL;
  2861. ctx = GET_PMU_CTX();
  2862. if (ctx == NULL) return -EINVAL;
  2863. /*
  2864. * for now limit to current task, which is enough when calling
  2865. * from overflow handler
  2866. */
  2867. if (task != current && ctx->ctx_fl_system == 0) return -EBUSY;
  2868. return pfm_write_pmcs(ctx, req, nreq, regs);
  2869. }
  2870. EXPORT_SYMBOL(pfm_mod_write_pmcs);
  2871. int
  2872. pfm_mod_read_pmds(struct task_struct *task, void *req, unsigned int nreq, struct pt_regs *regs)
  2873. {
  2874. pfm_context_t *ctx;
  2875. if (req == NULL) return -EINVAL;
  2876. ctx = GET_PMU_CTX();
  2877. if (ctx == NULL) return -EINVAL;
  2878. /*
  2879. * for now limit to current task, which is enough when calling
  2880. * from overflow handler
  2881. */
  2882. if (task != current && ctx->ctx_fl_system == 0) return -EBUSY;
  2883. return pfm_read_pmds(ctx, req, nreq, regs);
  2884. }
  2885. EXPORT_SYMBOL(pfm_mod_read_pmds);
  2886. /*
  2887. * Only call this function when a process it trying to
  2888. * write the debug registers (reading is always allowed)
  2889. */
  2890. int
  2891. pfm_use_debug_registers(struct task_struct *task)
  2892. {
  2893. pfm_context_t *ctx = task->thread.pfm_context;
  2894. unsigned long flags;
  2895. int ret = 0;
  2896. if (pmu_conf->use_rr_dbregs == 0) return 0;
  2897. DPRINT(("called for [%d]\n", task->pid));
  2898. /*
  2899. * do it only once
  2900. */
  2901. if (task->thread.flags & IA64_THREAD_DBG_VALID) return 0;
  2902. /*
  2903. * Even on SMP, we do not need to use an atomic here because
  2904. * the only way in is via ptrace() and this is possible only when the
  2905. * process is stopped. Even in the case where the ctxsw out is not totally
  2906. * completed by the time we come here, there is no way the 'stopped' process
  2907. * could be in the middle of fiddling with the pfm_write_ibr_dbr() routine.
  2908. * So this is always safe.
  2909. */
  2910. if (ctx && ctx->ctx_fl_using_dbreg == 1) return -1;
  2911. LOCK_PFS(flags);
  2912. /*
  2913. * We cannot allow setting breakpoints when system wide monitoring
  2914. * sessions are using the debug registers.
  2915. */
  2916. if (pfm_sessions.pfs_sys_use_dbregs> 0)
  2917. ret = -1;
  2918. else
  2919. pfm_sessions.pfs_ptrace_use_dbregs++;
  2920. DPRINT(("ptrace_use_dbregs=%u sys_use_dbregs=%u by [%d] ret = %d\n",
  2921. pfm_sessions.pfs_ptrace_use_dbregs,
  2922. pfm_sessions.pfs_sys_use_dbregs,
  2923. task->pid, ret));
  2924. UNLOCK_PFS(flags);
  2925. return ret;
  2926. }
  2927. /*
  2928. * This function is called for every task that exits with the
  2929. * IA64_THREAD_DBG_VALID set. This indicates a task which was
  2930. * able to use the debug registers for debugging purposes via
  2931. * ptrace(). Therefore we know it was not using them for
  2932. * perfmormance monitoring, so we only decrement the number
  2933. * of "ptraced" debug register users to keep the count up to date
  2934. */
  2935. int
  2936. pfm_release_debug_registers(struct task_struct *task)
  2937. {
  2938. unsigned long flags;
  2939. int ret;
  2940. if (pmu_conf->use_rr_dbregs == 0) return 0;
  2941. LOCK_PFS(flags);
  2942. if (pfm_sessions.pfs_ptrace_use_dbregs == 0) {
  2943. printk(KERN_ERR "perfmon: invalid release for [%d] ptrace_use_dbregs=0\n", task->pid);
  2944. ret = -1;
  2945. } else {
  2946. pfm_sessions.pfs_ptrace_use_dbregs--;
  2947. ret = 0;
  2948. }
  2949. UNLOCK_PFS(flags);
  2950. return ret;
  2951. }
  2952. static int
  2953. pfm_restart(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  2954. {
  2955. struct task_struct *task;
  2956. pfm_buffer_fmt_t *fmt;
  2957. pfm_ovfl_ctrl_t rst_ctrl;
  2958. int state, is_system;
  2959. int ret = 0;
  2960. state = ctx->ctx_state;
  2961. fmt = ctx->ctx_buf_fmt;
  2962. is_system = ctx->ctx_fl_system;
  2963. task = PFM_CTX_TASK(ctx);
  2964. switch(state) {
  2965. case PFM_CTX_MASKED:
  2966. break;
  2967. case PFM_CTX_LOADED:
  2968. if (CTX_HAS_SMPL(ctx) && fmt->fmt_restart_active) break;
  2969. /* fall through */
  2970. case PFM_CTX_UNLOADED:
  2971. case PFM_CTX_ZOMBIE:
  2972. DPRINT(("invalid state=%d\n", state));
  2973. return -EBUSY;
  2974. default:
  2975. DPRINT(("state=%d, cannot operate (no active_restart handler)\n", state));
  2976. return -EINVAL;
  2977. }
  2978. /*
  2979. * In system wide and when the context is loaded, access can only happen
  2980. * when the caller is running on the CPU being monitored by the session.
  2981. * It does not have to be the owner (ctx_task) of the context per se.
  2982. */
  2983. if (is_system && ctx->ctx_cpu != smp_processor_id()) {
  2984. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  2985. return -EBUSY;
  2986. }
  2987. /* sanity check */
  2988. if (unlikely(task == NULL)) {
  2989. printk(KERN_ERR "perfmon: [%d] pfm_restart no task\n", current->pid);
  2990. return -EINVAL;
  2991. }
  2992. if (task == current || is_system) {
  2993. fmt = ctx->ctx_buf_fmt;
  2994. DPRINT(("restarting self %d ovfl=0x%lx\n",
  2995. task->pid,
  2996. ctx->ctx_ovfl_regs[0]));
  2997. if (CTX_HAS_SMPL(ctx)) {
  2998. prefetch(ctx->ctx_smpl_hdr);
  2999. rst_ctrl.bits.mask_monitoring = 0;
  3000. rst_ctrl.bits.reset_ovfl_pmds = 0;
  3001. if (state == PFM_CTX_LOADED)
  3002. ret = pfm_buf_fmt_restart_active(fmt, task, &rst_ctrl, ctx->ctx_smpl_hdr, regs);
  3003. else
  3004. ret = pfm_buf_fmt_restart(fmt, task, &rst_ctrl, ctx->ctx_smpl_hdr, regs);
  3005. } else {
  3006. rst_ctrl.bits.mask_monitoring = 0;
  3007. rst_ctrl.bits.reset_ovfl_pmds = 1;
  3008. }
  3009. if (ret == 0) {
  3010. if (rst_ctrl.bits.reset_ovfl_pmds)
  3011. pfm_reset_regs(ctx, ctx->ctx_ovfl_regs, PFM_PMD_LONG_RESET);
  3012. if (rst_ctrl.bits.mask_monitoring == 0) {
  3013. DPRINT(("resuming monitoring for [%d]\n", task->pid));
  3014. if (state == PFM_CTX_MASKED) pfm_restore_monitoring(task);
  3015. } else {
  3016. DPRINT(("keeping monitoring stopped for [%d]\n", task->pid));
  3017. // cannot use pfm_stop_monitoring(task, regs);
  3018. }
  3019. }
  3020. /*
  3021. * clear overflowed PMD mask to remove any stale information
  3022. */
  3023. ctx->ctx_ovfl_regs[0] = 0UL;
  3024. /*
  3025. * back to LOADED state
  3026. */
  3027. ctx->ctx_state = PFM_CTX_LOADED;
  3028. /*
  3029. * XXX: not really useful for self monitoring
  3030. */
  3031. ctx->ctx_fl_can_restart = 0;
  3032. return 0;
  3033. }
  3034. /*
  3035. * restart another task
  3036. */
  3037. /*
  3038. * When PFM_CTX_MASKED, we cannot issue a restart before the previous
  3039. * one is seen by the task.
  3040. */
  3041. if (state == PFM_CTX_MASKED) {
  3042. if (ctx->ctx_fl_can_restart == 0) return -EINVAL;
  3043. /*
  3044. * will prevent subsequent restart before this one is
  3045. * seen by other task
  3046. */
  3047. ctx->ctx_fl_can_restart = 0;
  3048. }
  3049. /*
  3050. * if blocking, then post the semaphore is PFM_CTX_MASKED, i.e.
  3051. * the task is blocked or on its way to block. That's the normal
  3052. * restart path. If the monitoring is not masked, then the task
  3053. * can be actively monitoring and we cannot directly intervene.
  3054. * Therefore we use the trap mechanism to catch the task and
  3055. * force it to reset the buffer/reset PMDs.
  3056. *
  3057. * if non-blocking, then we ensure that the task will go into
  3058. * pfm_handle_work() before returning to user mode.
  3059. *
  3060. * We cannot explicitely reset another task, it MUST always
  3061. * be done by the task itself. This works for system wide because
  3062. * the tool that is controlling the session is logically doing
  3063. * "self-monitoring".
  3064. */
  3065. if (CTX_OVFL_NOBLOCK(ctx) == 0 && state == PFM_CTX_MASKED) {
  3066. DPRINT(("unblocking [%d] \n", task->pid));
  3067. complete(&ctx->ctx_restart_done);
  3068. } else {
  3069. DPRINT(("[%d] armed exit trap\n", task->pid));
  3070. ctx->ctx_fl_trap_reason = PFM_TRAP_REASON_RESET;
  3071. PFM_SET_WORK_PENDING(task, 1);
  3072. pfm_set_task_notify(task);
  3073. /*
  3074. * XXX: send reschedule if task runs on another CPU
  3075. */
  3076. }
  3077. return 0;
  3078. }
  3079. static int
  3080. pfm_debug(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3081. {
  3082. unsigned int m = *(unsigned int *)arg;
  3083. pfm_sysctl.debug = m == 0 ? 0 : 1;
  3084. printk(KERN_INFO "perfmon debugging %s (timing reset)\n", pfm_sysctl.debug ? "on" : "off");
  3085. if (m == 0) {
  3086. memset(pfm_stats, 0, sizeof(pfm_stats));
  3087. for(m=0; m < NR_CPUS; m++) pfm_stats[m].pfm_ovfl_intr_cycles_min = ~0UL;
  3088. }
  3089. return 0;
  3090. }
  3091. /*
  3092. * arg can be NULL and count can be zero for this function
  3093. */
  3094. static int
  3095. pfm_write_ibr_dbr(int mode, pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3096. {
  3097. struct thread_struct *thread = NULL;
  3098. struct task_struct *task;
  3099. pfarg_dbreg_t *req = (pfarg_dbreg_t *)arg;
  3100. unsigned long flags;
  3101. dbreg_t dbreg;
  3102. unsigned int rnum;
  3103. int first_time;
  3104. int ret = 0, state;
  3105. int i, can_access_pmu = 0;
  3106. int is_system, is_loaded;
  3107. if (pmu_conf->use_rr_dbregs == 0) return -EINVAL;
  3108. state = ctx->ctx_state;
  3109. is_loaded = state == PFM_CTX_LOADED ? 1 : 0;
  3110. is_system = ctx->ctx_fl_system;
  3111. task = ctx->ctx_task;
  3112. if (state == PFM_CTX_ZOMBIE) return -EINVAL;
  3113. /*
  3114. * on both UP and SMP, we can only write to the PMC when the task is
  3115. * the owner of the local PMU.
  3116. */
  3117. if (is_loaded) {
  3118. thread = &task->thread;
  3119. /*
  3120. * In system wide and when the context is loaded, access can only happen
  3121. * when the caller is running on the CPU being monitored by the session.
  3122. * It does not have to be the owner (ctx_task) of the context per se.
  3123. */
  3124. if (unlikely(is_system && ctx->ctx_cpu != smp_processor_id())) {
  3125. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  3126. return -EBUSY;
  3127. }
  3128. can_access_pmu = GET_PMU_OWNER() == task || is_system ? 1 : 0;
  3129. }
  3130. /*
  3131. * we do not need to check for ipsr.db because we do clear ibr.x, dbr.r, and dbr.w
  3132. * ensuring that no real breakpoint can be installed via this call.
  3133. *
  3134. * IMPORTANT: regs can be NULL in this function
  3135. */
  3136. first_time = ctx->ctx_fl_using_dbreg == 0;
  3137. /*
  3138. * don't bother if we are loaded and task is being debugged
  3139. */
  3140. if (is_loaded && (thread->flags & IA64_THREAD_DBG_VALID) != 0) {
  3141. DPRINT(("debug registers already in use for [%d]\n", task->pid));
  3142. return -EBUSY;
  3143. }
  3144. /*
  3145. * check for debug registers in system wide mode
  3146. *
  3147. * If though a check is done in pfm_context_load(),
  3148. * we must repeat it here, in case the registers are
  3149. * written after the context is loaded
  3150. */
  3151. if (is_loaded) {
  3152. LOCK_PFS(flags);
  3153. if (first_time && is_system) {
  3154. if (pfm_sessions.pfs_ptrace_use_dbregs)
  3155. ret = -EBUSY;
  3156. else
  3157. pfm_sessions.pfs_sys_use_dbregs++;
  3158. }
  3159. UNLOCK_PFS(flags);
  3160. }
  3161. if (ret != 0) return ret;
  3162. /*
  3163. * mark ourself as user of the debug registers for
  3164. * perfmon purposes.
  3165. */
  3166. ctx->ctx_fl_using_dbreg = 1;
  3167. /*
  3168. * clear hardware registers to make sure we don't
  3169. * pick up stale state.
  3170. *
  3171. * for a system wide session, we do not use
  3172. * thread.dbr, thread.ibr because this process
  3173. * never leaves the current CPU and the state
  3174. * is shared by all processes running on it
  3175. */
  3176. if (first_time && can_access_pmu) {
  3177. DPRINT(("[%d] clearing ibrs, dbrs\n", task->pid));
  3178. for (i=0; i < pmu_conf->num_ibrs; i++) {
  3179. ia64_set_ibr(i, 0UL);
  3180. ia64_dv_serialize_instruction();
  3181. }
  3182. ia64_srlz_i();
  3183. for (i=0; i < pmu_conf->num_dbrs; i++) {
  3184. ia64_set_dbr(i, 0UL);
  3185. ia64_dv_serialize_data();
  3186. }
  3187. ia64_srlz_d();
  3188. }
  3189. /*
  3190. * Now install the values into the registers
  3191. */
  3192. for (i = 0; i < count; i++, req++) {
  3193. rnum = req->dbreg_num;
  3194. dbreg.val = req->dbreg_value;
  3195. ret = -EINVAL;
  3196. if ((mode == PFM_CODE_RR && rnum >= PFM_NUM_IBRS) || ((mode == PFM_DATA_RR) && rnum >= PFM_NUM_DBRS)) {
  3197. DPRINT(("invalid register %u val=0x%lx mode=%d i=%d count=%d\n",
  3198. rnum, dbreg.val, mode, i, count));
  3199. goto abort_mission;
  3200. }
  3201. /*
  3202. * make sure we do not install enabled breakpoint
  3203. */
  3204. if (rnum & 0x1) {
  3205. if (mode == PFM_CODE_RR)
  3206. dbreg.ibr.ibr_x = 0;
  3207. else
  3208. dbreg.dbr.dbr_r = dbreg.dbr.dbr_w = 0;
  3209. }
  3210. PFM_REG_RETFLAG_SET(req->dbreg_flags, 0);
  3211. /*
  3212. * Debug registers, just like PMC, can only be modified
  3213. * by a kernel call. Moreover, perfmon() access to those
  3214. * registers are centralized in this routine. The hardware
  3215. * does not modify the value of these registers, therefore,
  3216. * if we save them as they are written, we can avoid having
  3217. * to save them on context switch out. This is made possible
  3218. * by the fact that when perfmon uses debug registers, ptrace()
  3219. * won't be able to modify them concurrently.
  3220. */
  3221. if (mode == PFM_CODE_RR) {
  3222. CTX_USED_IBR(ctx, rnum);
  3223. if (can_access_pmu) {
  3224. ia64_set_ibr(rnum, dbreg.val);
  3225. ia64_dv_serialize_instruction();
  3226. }
  3227. ctx->ctx_ibrs[rnum] = dbreg.val;
  3228. DPRINT(("write ibr%u=0x%lx used_ibrs=0x%x ld=%d apmu=%d\n",
  3229. rnum, dbreg.val, ctx->ctx_used_ibrs[0], is_loaded, can_access_pmu));
  3230. } else {
  3231. CTX_USED_DBR(ctx, rnum);
  3232. if (can_access_pmu) {
  3233. ia64_set_dbr(rnum, dbreg.val);
  3234. ia64_dv_serialize_data();
  3235. }
  3236. ctx->ctx_dbrs[rnum] = dbreg.val;
  3237. DPRINT(("write dbr%u=0x%lx used_dbrs=0x%x ld=%d apmu=%d\n",
  3238. rnum, dbreg.val, ctx->ctx_used_dbrs[0], is_loaded, can_access_pmu));
  3239. }
  3240. }
  3241. return 0;
  3242. abort_mission:
  3243. /*
  3244. * in case it was our first attempt, we undo the global modifications
  3245. */
  3246. if (first_time) {
  3247. LOCK_PFS(flags);
  3248. if (ctx->ctx_fl_system) {
  3249. pfm_sessions.pfs_sys_use_dbregs--;
  3250. }
  3251. UNLOCK_PFS(flags);
  3252. ctx->ctx_fl_using_dbreg = 0;
  3253. }
  3254. /*
  3255. * install error return flag
  3256. */
  3257. PFM_REG_RETFLAG_SET(req->dbreg_flags, PFM_REG_RETFL_EINVAL);
  3258. return ret;
  3259. }
  3260. static int
  3261. pfm_write_ibrs(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3262. {
  3263. return pfm_write_ibr_dbr(PFM_CODE_RR, ctx, arg, count, regs);
  3264. }
  3265. static int
  3266. pfm_write_dbrs(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3267. {
  3268. return pfm_write_ibr_dbr(PFM_DATA_RR, ctx, arg, count, regs);
  3269. }
  3270. int
  3271. pfm_mod_write_ibrs(struct task_struct *task, void *req, unsigned int nreq, struct pt_regs *regs)
  3272. {
  3273. pfm_context_t *ctx;
  3274. if (req == NULL) return -EINVAL;
  3275. ctx = GET_PMU_CTX();
  3276. if (ctx == NULL) return -EINVAL;
  3277. /*
  3278. * for now limit to current task, which is enough when calling
  3279. * from overflow handler
  3280. */
  3281. if (task != current && ctx->ctx_fl_system == 0) return -EBUSY;
  3282. return pfm_write_ibrs(ctx, req, nreq, regs);
  3283. }
  3284. EXPORT_SYMBOL(pfm_mod_write_ibrs);
  3285. int
  3286. pfm_mod_write_dbrs(struct task_struct *task, void *req, unsigned int nreq, struct pt_regs *regs)
  3287. {
  3288. pfm_context_t *ctx;
  3289. if (req == NULL) return -EINVAL;
  3290. ctx = GET_PMU_CTX();
  3291. if (ctx == NULL) return -EINVAL;
  3292. /*
  3293. * for now limit to current task, which is enough when calling
  3294. * from overflow handler
  3295. */
  3296. if (task != current && ctx->ctx_fl_system == 0) return -EBUSY;
  3297. return pfm_write_dbrs(ctx, req, nreq, regs);
  3298. }
  3299. EXPORT_SYMBOL(pfm_mod_write_dbrs);
  3300. static int
  3301. pfm_get_features(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3302. {
  3303. pfarg_features_t *req = (pfarg_features_t *)arg;
  3304. req->ft_version = PFM_VERSION;
  3305. return 0;
  3306. }
  3307. static int
  3308. pfm_stop(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3309. {
  3310. struct pt_regs *tregs;
  3311. struct task_struct *task = PFM_CTX_TASK(ctx);
  3312. int state, is_system;
  3313. state = ctx->ctx_state;
  3314. is_system = ctx->ctx_fl_system;
  3315. /*
  3316. * context must be attached to issue the stop command (includes LOADED,MASKED,ZOMBIE)
  3317. */
  3318. if (state == PFM_CTX_UNLOADED) return -EINVAL;
  3319. /*
  3320. * In system wide and when the context is loaded, access can only happen
  3321. * when the caller is running on the CPU being monitored by the session.
  3322. * It does not have to be the owner (ctx_task) of the context per se.
  3323. */
  3324. if (is_system && ctx->ctx_cpu != smp_processor_id()) {
  3325. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  3326. return -EBUSY;
  3327. }
  3328. DPRINT(("task [%d] ctx_state=%d is_system=%d\n",
  3329. PFM_CTX_TASK(ctx)->pid,
  3330. state,
  3331. is_system));
  3332. /*
  3333. * in system mode, we need to update the PMU directly
  3334. * and the user level state of the caller, which may not
  3335. * necessarily be the creator of the context.
  3336. */
  3337. if (is_system) {
  3338. /*
  3339. * Update local PMU first
  3340. *
  3341. * disable dcr pp
  3342. */
  3343. ia64_setreg(_IA64_REG_CR_DCR, ia64_getreg(_IA64_REG_CR_DCR) & ~IA64_DCR_PP);
  3344. ia64_srlz_i();
  3345. /*
  3346. * update local cpuinfo
  3347. */
  3348. PFM_CPUINFO_CLEAR(PFM_CPUINFO_DCR_PP);
  3349. /*
  3350. * stop monitoring, does srlz.i
  3351. */
  3352. pfm_clear_psr_pp();
  3353. /*
  3354. * stop monitoring in the caller
  3355. */
  3356. ia64_psr(regs)->pp = 0;
  3357. return 0;
  3358. }
  3359. /*
  3360. * per-task mode
  3361. */
  3362. if (task == current) {
  3363. /* stop monitoring at kernel level */
  3364. pfm_clear_psr_up();
  3365. /*
  3366. * stop monitoring at the user level
  3367. */
  3368. ia64_psr(regs)->up = 0;
  3369. } else {
  3370. tregs = task_pt_regs(task);
  3371. /*
  3372. * stop monitoring at the user level
  3373. */
  3374. ia64_psr(tregs)->up = 0;
  3375. /*
  3376. * monitoring disabled in kernel at next reschedule
  3377. */
  3378. ctx->ctx_saved_psr_up = 0;
  3379. DPRINT(("task=[%d]\n", task->pid));
  3380. }
  3381. return 0;
  3382. }
  3383. static int
  3384. pfm_start(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3385. {
  3386. struct pt_regs *tregs;
  3387. int state, is_system;
  3388. state = ctx->ctx_state;
  3389. is_system = ctx->ctx_fl_system;
  3390. if (state != PFM_CTX_LOADED) return -EINVAL;
  3391. /*
  3392. * In system wide and when the context is loaded, access can only happen
  3393. * when the caller is running on the CPU being monitored by the session.
  3394. * It does not have to be the owner (ctx_task) of the context per se.
  3395. */
  3396. if (is_system && ctx->ctx_cpu != smp_processor_id()) {
  3397. DPRINT(("should be running on CPU%d\n", ctx->ctx_cpu));
  3398. return -EBUSY;
  3399. }
  3400. /*
  3401. * in system mode, we need to update the PMU directly
  3402. * and the user level state of the caller, which may not
  3403. * necessarily be the creator of the context.
  3404. */
  3405. if (is_system) {
  3406. /*
  3407. * set user level psr.pp for the caller
  3408. */
  3409. ia64_psr(regs)->pp = 1;
  3410. /*
  3411. * now update the local PMU and cpuinfo
  3412. */
  3413. PFM_CPUINFO_SET(PFM_CPUINFO_DCR_PP);
  3414. /*
  3415. * start monitoring at kernel level
  3416. */
  3417. pfm_set_psr_pp();
  3418. /* enable dcr pp */
  3419. ia64_setreg(_IA64_REG_CR_DCR, ia64_getreg(_IA64_REG_CR_DCR) | IA64_DCR_PP);
  3420. ia64_srlz_i();
  3421. return 0;
  3422. }
  3423. /*
  3424. * per-process mode
  3425. */
  3426. if (ctx->ctx_task == current) {
  3427. /* start monitoring at kernel level */
  3428. pfm_set_psr_up();
  3429. /*
  3430. * activate monitoring at user level
  3431. */
  3432. ia64_psr(regs)->up = 1;
  3433. } else {
  3434. tregs = task_pt_regs(ctx->ctx_task);
  3435. /*
  3436. * start monitoring at the kernel level the next
  3437. * time the task is scheduled
  3438. */
  3439. ctx->ctx_saved_psr_up = IA64_PSR_UP;
  3440. /*
  3441. * activate monitoring at user level
  3442. */
  3443. ia64_psr(tregs)->up = 1;
  3444. }
  3445. return 0;
  3446. }
  3447. static int
  3448. pfm_get_pmc_reset(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3449. {
  3450. pfarg_reg_t *req = (pfarg_reg_t *)arg;
  3451. unsigned int cnum;
  3452. int i;
  3453. int ret = -EINVAL;
  3454. for (i = 0; i < count; i++, req++) {
  3455. cnum = req->reg_num;
  3456. if (!PMC_IS_IMPL(cnum)) goto abort_mission;
  3457. req->reg_value = PMC_DFL_VAL(cnum);
  3458. PFM_REG_RETFLAG_SET(req->reg_flags, 0);
  3459. DPRINT(("pmc_reset_val pmc[%u]=0x%lx\n", cnum, req->reg_value));
  3460. }
  3461. return 0;
  3462. abort_mission:
  3463. PFM_REG_RETFLAG_SET(req->reg_flags, PFM_REG_RETFL_EINVAL);
  3464. return ret;
  3465. }
  3466. static int
  3467. pfm_check_task_exist(pfm_context_t *ctx)
  3468. {
  3469. struct task_struct *g, *t;
  3470. int ret = -ESRCH;
  3471. read_lock(&tasklist_lock);
  3472. do_each_thread (g, t) {
  3473. if (t->thread.pfm_context == ctx) {
  3474. ret = 0;
  3475. break;
  3476. }
  3477. } while_each_thread (g, t);
  3478. read_unlock(&tasklist_lock);
  3479. DPRINT(("pfm_check_task_exist: ret=%d ctx=%p\n", ret, ctx));
  3480. return ret;
  3481. }
  3482. static int
  3483. pfm_context_load(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3484. {
  3485. struct task_struct *task;
  3486. struct thread_struct *thread;
  3487. struct pfm_context_t *old;
  3488. unsigned long flags;
  3489. #ifndef CONFIG_SMP
  3490. struct task_struct *owner_task = NULL;
  3491. #endif
  3492. pfarg_load_t *req = (pfarg_load_t *)arg;
  3493. unsigned long *pmcs_source, *pmds_source;
  3494. int the_cpu;
  3495. int ret = 0;
  3496. int state, is_system, set_dbregs = 0;
  3497. state = ctx->ctx_state;
  3498. is_system = ctx->ctx_fl_system;
  3499. /*
  3500. * can only load from unloaded or terminated state
  3501. */
  3502. if (state != PFM_CTX_UNLOADED) {
  3503. DPRINT(("cannot load to [%d], invalid ctx_state=%d\n",
  3504. req->load_pid,
  3505. ctx->ctx_state));
  3506. return -EBUSY;
  3507. }
  3508. DPRINT(("load_pid [%d] using_dbreg=%d\n", req->load_pid, ctx->ctx_fl_using_dbreg));
  3509. if (CTX_OVFL_NOBLOCK(ctx) == 0 && req->load_pid == current->pid) {
  3510. DPRINT(("cannot use blocking mode on self\n"));
  3511. return -EINVAL;
  3512. }
  3513. ret = pfm_get_task(ctx, req->load_pid, &task);
  3514. if (ret) {
  3515. DPRINT(("load_pid [%d] get_task=%d\n", req->load_pid, ret));
  3516. return ret;
  3517. }
  3518. ret = -EINVAL;
  3519. /*
  3520. * system wide is self monitoring only
  3521. */
  3522. if (is_system && task != current) {
  3523. DPRINT(("system wide is self monitoring only load_pid=%d\n",
  3524. req->load_pid));
  3525. goto error;
  3526. }
  3527. thread = &task->thread;
  3528. ret = 0;
  3529. /*
  3530. * cannot load a context which is using range restrictions,
  3531. * into a task that is being debugged.
  3532. */
  3533. if (ctx->ctx_fl_using_dbreg) {
  3534. if (thread->flags & IA64_THREAD_DBG_VALID) {
  3535. ret = -EBUSY;
  3536. DPRINT(("load_pid [%d] task is debugged, cannot load range restrictions\n", req->load_pid));
  3537. goto error;
  3538. }
  3539. LOCK_PFS(flags);
  3540. if (is_system) {
  3541. if (pfm_sessions.pfs_ptrace_use_dbregs) {
  3542. DPRINT(("cannot load [%d] dbregs in use\n", task->pid));
  3543. ret = -EBUSY;
  3544. } else {
  3545. pfm_sessions.pfs_sys_use_dbregs++;
  3546. DPRINT(("load [%d] increased sys_use_dbreg=%u\n", task->pid, pfm_sessions.pfs_sys_use_dbregs));
  3547. set_dbregs = 1;
  3548. }
  3549. }
  3550. UNLOCK_PFS(flags);
  3551. if (ret) goto error;
  3552. }
  3553. /*
  3554. * SMP system-wide monitoring implies self-monitoring.
  3555. *
  3556. * The programming model expects the task to
  3557. * be pinned on a CPU throughout the session.
  3558. * Here we take note of the current CPU at the
  3559. * time the context is loaded. No call from
  3560. * another CPU will be allowed.
  3561. *
  3562. * The pinning via shed_setaffinity()
  3563. * must be done by the calling task prior
  3564. * to this call.
  3565. *
  3566. * systemwide: keep track of CPU this session is supposed to run on
  3567. */
  3568. the_cpu = ctx->ctx_cpu = smp_processor_id();
  3569. ret = -EBUSY;
  3570. /*
  3571. * now reserve the session
  3572. */
  3573. ret = pfm_reserve_session(current, is_system, the_cpu);
  3574. if (ret) goto error;
  3575. /*
  3576. * task is necessarily stopped at this point.
  3577. *
  3578. * If the previous context was zombie, then it got removed in
  3579. * pfm_save_regs(). Therefore we should not see it here.
  3580. * If we see a context, then this is an active context
  3581. *
  3582. * XXX: needs to be atomic
  3583. */
  3584. DPRINT(("before cmpxchg() old_ctx=%p new_ctx=%p\n",
  3585. thread->pfm_context, ctx));
  3586. ret = -EBUSY;
  3587. old = ia64_cmpxchg(acq, &thread->pfm_context, NULL, ctx, sizeof(pfm_context_t *));
  3588. if (old != NULL) {
  3589. DPRINT(("load_pid [%d] already has a context\n", req->load_pid));
  3590. goto error_unres;
  3591. }
  3592. pfm_reset_msgq(ctx);
  3593. ctx->ctx_state = PFM_CTX_LOADED;
  3594. /*
  3595. * link context to task
  3596. */
  3597. ctx->ctx_task = task;
  3598. if (is_system) {
  3599. /*
  3600. * we load as stopped
  3601. */
  3602. PFM_CPUINFO_SET(PFM_CPUINFO_SYST_WIDE);
  3603. PFM_CPUINFO_CLEAR(PFM_CPUINFO_DCR_PP);
  3604. if (ctx->ctx_fl_excl_idle) PFM_CPUINFO_SET(PFM_CPUINFO_EXCL_IDLE);
  3605. } else {
  3606. thread->flags |= IA64_THREAD_PM_VALID;
  3607. }
  3608. /*
  3609. * propagate into thread-state
  3610. */
  3611. pfm_copy_pmds(task, ctx);
  3612. pfm_copy_pmcs(task, ctx);
  3613. pmcs_source = ctx->th_pmcs;
  3614. pmds_source = ctx->th_pmds;
  3615. /*
  3616. * always the case for system-wide
  3617. */
  3618. if (task == current) {
  3619. if (is_system == 0) {
  3620. /* allow user level control */
  3621. ia64_psr(regs)->sp = 0;
  3622. DPRINT(("clearing psr.sp for [%d]\n", task->pid));
  3623. SET_LAST_CPU(ctx, smp_processor_id());
  3624. INC_ACTIVATION();
  3625. SET_ACTIVATION(ctx);
  3626. #ifndef CONFIG_SMP
  3627. /*
  3628. * push the other task out, if any
  3629. */
  3630. owner_task = GET_PMU_OWNER();
  3631. if (owner_task) pfm_lazy_save_regs(owner_task);
  3632. #endif
  3633. }
  3634. /*
  3635. * load all PMD from ctx to PMU (as opposed to thread state)
  3636. * restore all PMC from ctx to PMU
  3637. */
  3638. pfm_restore_pmds(pmds_source, ctx->ctx_all_pmds[0]);
  3639. pfm_restore_pmcs(pmcs_source, ctx->ctx_all_pmcs[0]);
  3640. ctx->ctx_reload_pmcs[0] = 0UL;
  3641. ctx->ctx_reload_pmds[0] = 0UL;
  3642. /*
  3643. * guaranteed safe by earlier check against DBG_VALID
  3644. */
  3645. if (ctx->ctx_fl_using_dbreg) {
  3646. pfm_restore_ibrs(ctx->ctx_ibrs, pmu_conf->num_ibrs);
  3647. pfm_restore_dbrs(ctx->ctx_dbrs, pmu_conf->num_dbrs);
  3648. }
  3649. /*
  3650. * set new ownership
  3651. */
  3652. SET_PMU_OWNER(task, ctx);
  3653. DPRINT(("context loaded on PMU for [%d]\n", task->pid));
  3654. } else {
  3655. /*
  3656. * when not current, task MUST be stopped, so this is safe
  3657. */
  3658. regs = task_pt_regs(task);
  3659. /* force a full reload */
  3660. ctx->ctx_last_activation = PFM_INVALID_ACTIVATION;
  3661. SET_LAST_CPU(ctx, -1);
  3662. /* initial saved psr (stopped) */
  3663. ctx->ctx_saved_psr_up = 0UL;
  3664. ia64_psr(regs)->up = ia64_psr(regs)->pp = 0;
  3665. }
  3666. ret = 0;
  3667. error_unres:
  3668. if (ret) pfm_unreserve_session(ctx, ctx->ctx_fl_system, the_cpu);
  3669. error:
  3670. /*
  3671. * we must undo the dbregs setting (for system-wide)
  3672. */
  3673. if (ret && set_dbregs) {
  3674. LOCK_PFS(flags);
  3675. pfm_sessions.pfs_sys_use_dbregs--;
  3676. UNLOCK_PFS(flags);
  3677. }
  3678. /*
  3679. * release task, there is now a link with the context
  3680. */
  3681. if (is_system == 0 && task != current) {
  3682. pfm_put_task(task);
  3683. if (ret == 0) {
  3684. ret = pfm_check_task_exist(ctx);
  3685. if (ret) {
  3686. ctx->ctx_state = PFM_CTX_UNLOADED;
  3687. ctx->ctx_task = NULL;
  3688. }
  3689. }
  3690. }
  3691. return ret;
  3692. }
  3693. /*
  3694. * in this function, we do not need to increase the use count
  3695. * for the task via get_task_struct(), because we hold the
  3696. * context lock. If the task were to disappear while having
  3697. * a context attached, it would go through pfm_exit_thread()
  3698. * which also grabs the context lock and would therefore be blocked
  3699. * until we are here.
  3700. */
  3701. static void pfm_flush_pmds(struct task_struct *, pfm_context_t *ctx);
  3702. static int
  3703. pfm_context_unload(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs)
  3704. {
  3705. struct task_struct *task = PFM_CTX_TASK(ctx);
  3706. struct pt_regs *tregs;
  3707. int prev_state, is_system;
  3708. int ret;
  3709. DPRINT(("ctx_state=%d task [%d]\n", ctx->ctx_state, task ? task->pid : -1));
  3710. prev_state = ctx->ctx_state;
  3711. is_system = ctx->ctx_fl_system;
  3712. /*
  3713. * unload only when necessary
  3714. */
  3715. if (prev_state == PFM_CTX_UNLOADED) {
  3716. DPRINT(("ctx_state=%d, nothing to do\n", prev_state));
  3717. return 0;
  3718. }
  3719. /*
  3720. * clear psr and dcr bits
  3721. */
  3722. ret = pfm_stop(ctx, NULL, 0, regs);
  3723. if (ret) return ret;
  3724. ctx->ctx_state = PFM_CTX_UNLOADED;
  3725. /*
  3726. * in system mode, we need to update the PMU directly
  3727. * and the user level state of the caller, which may not
  3728. * necessarily be the creator of the context.
  3729. */
  3730. if (is_system) {
  3731. /*
  3732. * Update cpuinfo
  3733. *
  3734. * local PMU is taken care of in pfm_stop()
  3735. */
  3736. PFM_CPUINFO_CLEAR(PFM_CPUINFO_SYST_WIDE);
  3737. PFM_CPUINFO_CLEAR(PFM_CPUINFO_EXCL_IDLE);
  3738. /*
  3739. * save PMDs in context
  3740. * release ownership
  3741. */
  3742. pfm_flush_pmds(current, ctx);
  3743. /*
  3744. * at this point we are done with the PMU
  3745. * so we can unreserve the resource.
  3746. */
  3747. if (prev_state != PFM_CTX_ZOMBIE)
  3748. pfm_unreserve_session(ctx, 1 , ctx->ctx_cpu);
  3749. /*
  3750. * disconnect context from task
  3751. */
  3752. task->thread.pfm_context = NULL;
  3753. /*
  3754. * disconnect task from context
  3755. */
  3756. ctx->ctx_task = NULL;
  3757. /*
  3758. * There is nothing more to cleanup here.
  3759. */
  3760. return 0;
  3761. }
  3762. /*
  3763. * per-task mode
  3764. */
  3765. tregs = task == current ? regs : task_pt_regs(task);
  3766. if (task == current) {
  3767. /*
  3768. * cancel user level control
  3769. */
  3770. ia64_psr(regs)->sp = 1;
  3771. DPRINT(("setting psr.sp for [%d]\n", task->pid));
  3772. }
  3773. /*
  3774. * save PMDs to context
  3775. * release ownership
  3776. */
  3777. pfm_flush_pmds(task, ctx);
  3778. /*
  3779. * at this point we are done with the PMU
  3780. * so we can unreserve the resource.
  3781. *
  3782. * when state was ZOMBIE, we have already unreserved.
  3783. */
  3784. if (prev_state != PFM_CTX_ZOMBIE)
  3785. pfm_unreserve_session(ctx, 0 , ctx->ctx_cpu);
  3786. /*
  3787. * reset activation counter and psr
  3788. */
  3789. ctx->ctx_last_activation = PFM_INVALID_ACTIVATION;
  3790. SET_LAST_CPU(ctx, -1);
  3791. /*
  3792. * PMU state will not be restored
  3793. */
  3794. task->thread.flags &= ~IA64_THREAD_PM_VALID;
  3795. /*
  3796. * break links between context and task
  3797. */
  3798. task->thread.pfm_context = NULL;
  3799. ctx->ctx_task = NULL;
  3800. PFM_SET_WORK_PENDING(task, 0);
  3801. ctx->ctx_fl_trap_reason = PFM_TRAP_REASON_NONE;
  3802. ctx->ctx_fl_can_restart = 0;
  3803. ctx->ctx_fl_going_zombie = 0;
  3804. DPRINT(("disconnected [%d] from context\n", task->pid));
  3805. return 0;
  3806. }
  3807. /*
  3808. * called only from exit_thread(): task == current
  3809. * we come here only if current has a context attached (loaded or masked)
  3810. */
  3811. void
  3812. pfm_exit_thread(struct task_struct *task)
  3813. {
  3814. pfm_context_t *ctx;
  3815. unsigned long flags;
  3816. struct pt_regs *regs = task_pt_regs(task);
  3817. int ret, state;
  3818. int free_ok = 0;
  3819. ctx = PFM_GET_CTX(task);
  3820. PROTECT_CTX(ctx, flags);
  3821. DPRINT(("state=%d task [%d]\n", ctx->ctx_state, task->pid));
  3822. state = ctx->ctx_state;
  3823. switch(state) {
  3824. case PFM_CTX_UNLOADED:
  3825. /*
  3826. * only comes to thios function if pfm_context is not NULL, i.e., cannot
  3827. * be in unloaded state
  3828. */
  3829. printk(KERN_ERR "perfmon: pfm_exit_thread [%d] ctx unloaded\n", task->pid);
  3830. break;
  3831. case PFM_CTX_LOADED:
  3832. case PFM_CTX_MASKED:
  3833. ret = pfm_context_unload(ctx, NULL, 0, regs);
  3834. if (ret) {
  3835. printk(KERN_ERR "perfmon: pfm_exit_thread [%d] state=%d unload failed %d\n", task->pid, state, ret);
  3836. }
  3837. DPRINT(("ctx unloaded for current state was %d\n", state));
  3838. pfm_end_notify_user(ctx);
  3839. break;
  3840. case PFM_CTX_ZOMBIE:
  3841. ret = pfm_context_unload(ctx, NULL, 0, regs);
  3842. if (ret) {
  3843. printk(KERN_ERR "perfmon: pfm_exit_thread [%d] state=%d unload failed %d\n", task->pid, state, ret);
  3844. }
  3845. free_ok = 1;
  3846. break;
  3847. default:
  3848. printk(KERN_ERR "perfmon: pfm_exit_thread [%d] unexpected state=%d\n", task->pid, state);
  3849. break;
  3850. }
  3851. UNPROTECT_CTX(ctx, flags);
  3852. { u64 psr = pfm_get_psr();
  3853. BUG_ON(psr & (IA64_PSR_UP|IA64_PSR_PP));
  3854. BUG_ON(GET_PMU_OWNER());
  3855. BUG_ON(ia64_psr(regs)->up);
  3856. BUG_ON(ia64_psr(regs)->pp);
  3857. }
  3858. /*
  3859. * All memory free operations (especially for vmalloc'ed memory)
  3860. * MUST be done with interrupts ENABLED.
  3861. */
  3862. if (free_ok) pfm_context_free(ctx);
  3863. }
  3864. /*
  3865. * functions MUST be listed in the increasing order of their index (see permfon.h)
  3866. */
  3867. #define PFM_CMD(name, flags, arg_count, arg_type, getsz) { name, #name, flags, arg_count, sizeof(arg_type), getsz }
  3868. #define PFM_CMD_S(name, flags) { name, #name, flags, 0, 0, NULL }
  3869. #define PFM_CMD_PCLRWS (PFM_CMD_FD|PFM_CMD_ARG_RW|PFM_CMD_STOP)
  3870. #define PFM_CMD_PCLRW (PFM_CMD_FD|PFM_CMD_ARG_RW)
  3871. #define PFM_CMD_NONE { NULL, "no-cmd", 0, 0, 0, NULL}
  3872. static pfm_cmd_desc_t pfm_cmd_tab[]={
  3873. /* 0 */PFM_CMD_NONE,
  3874. /* 1 */PFM_CMD(pfm_write_pmcs, PFM_CMD_PCLRWS, PFM_CMD_ARG_MANY, pfarg_reg_t, NULL),
  3875. /* 2 */PFM_CMD(pfm_write_pmds, PFM_CMD_PCLRWS, PFM_CMD_ARG_MANY, pfarg_reg_t, NULL),
  3876. /* 3 */PFM_CMD(pfm_read_pmds, PFM_CMD_PCLRWS, PFM_CMD_ARG_MANY, pfarg_reg_t, NULL),
  3877. /* 4 */PFM_CMD_S(pfm_stop, PFM_CMD_PCLRWS),
  3878. /* 5 */PFM_CMD_S(pfm_start, PFM_CMD_PCLRWS),
  3879. /* 6 */PFM_CMD_NONE,
  3880. /* 7 */PFM_CMD_NONE,
  3881. /* 8 */PFM_CMD(pfm_context_create, PFM_CMD_ARG_RW, 1, pfarg_context_t, pfm_ctx_getsize),
  3882. /* 9 */PFM_CMD_NONE,
  3883. /* 10 */PFM_CMD_S(pfm_restart, PFM_CMD_PCLRW),
  3884. /* 11 */PFM_CMD_NONE,
  3885. /* 12 */PFM_CMD(pfm_get_features, PFM_CMD_ARG_RW, 1, pfarg_features_t, NULL),
  3886. /* 13 */PFM_CMD(pfm_debug, 0, 1, unsigned int, NULL),
  3887. /* 14 */PFM_CMD_NONE,
  3888. /* 15 */PFM_CMD(pfm_get_pmc_reset, PFM_CMD_ARG_RW, PFM_CMD_ARG_MANY, pfarg_reg_t, NULL),
  3889. /* 16 */PFM_CMD(pfm_context_load, PFM_CMD_PCLRWS, 1, pfarg_load_t, NULL),
  3890. /* 17 */PFM_CMD_S(pfm_context_unload, PFM_CMD_PCLRWS),
  3891. /* 18 */PFM_CMD_NONE,
  3892. /* 19 */PFM_CMD_NONE,
  3893. /* 20 */PFM_CMD_NONE,
  3894. /* 21 */PFM_CMD_NONE,
  3895. /* 22 */PFM_CMD_NONE,
  3896. /* 23 */PFM_CMD_NONE,
  3897. /* 24 */PFM_CMD_NONE,
  3898. /* 25 */PFM_CMD_NONE,
  3899. /* 26 */PFM_CMD_NONE,
  3900. /* 27 */PFM_CMD_NONE,
  3901. /* 28 */PFM_CMD_NONE,
  3902. /* 29 */PFM_CMD_NONE,
  3903. /* 30 */PFM_CMD_NONE,
  3904. /* 31 */PFM_CMD_NONE,
  3905. /* 32 */PFM_CMD(pfm_write_ibrs, PFM_CMD_PCLRWS, PFM_CMD_ARG_MANY, pfarg_dbreg_t, NULL),
  3906. /* 33 */PFM_CMD(pfm_write_dbrs, PFM_CMD_PCLRWS, PFM_CMD_ARG_MANY, pfarg_dbreg_t, NULL)
  3907. };
  3908. #define PFM_CMD_COUNT (sizeof(pfm_cmd_tab)/sizeof(pfm_cmd_desc_t))
  3909. static int
  3910. pfm_check_task_state(pfm_context_t *ctx, int cmd, unsigned long flags)
  3911. {
  3912. struct task_struct *task;
  3913. int state, old_state;
  3914. recheck:
  3915. state = ctx->ctx_state;
  3916. task = ctx->ctx_task;
  3917. if (task == NULL) {
  3918. DPRINT(("context %d no task, state=%d\n", ctx->ctx_fd, state));
  3919. return 0;
  3920. }
  3921. DPRINT(("context %d state=%d [%d] task_state=%ld must_stop=%d\n",
  3922. ctx->ctx_fd,
  3923. state,
  3924. task->pid,
  3925. task->state, PFM_CMD_STOPPED(cmd)));
  3926. /*
  3927. * self-monitoring always ok.
  3928. *
  3929. * for system-wide the caller can either be the creator of the
  3930. * context (to one to which the context is attached to) OR
  3931. * a task running on the same CPU as the session.
  3932. */
  3933. if (task == current || ctx->ctx_fl_system) return 0;
  3934. /*
  3935. * we are monitoring another thread
  3936. */
  3937. switch(state) {
  3938. case PFM_CTX_UNLOADED:
  3939. /*
  3940. * if context is UNLOADED we are safe to go
  3941. */
  3942. return 0;
  3943. case PFM_CTX_ZOMBIE:
  3944. /*
  3945. * no command can operate on a zombie context
  3946. */
  3947. DPRINT(("cmd %d state zombie cannot operate on context\n", cmd));
  3948. return -EINVAL;
  3949. case PFM_CTX_MASKED:
  3950. /*
  3951. * PMU state has been saved to software even though
  3952. * the thread may still be running.
  3953. */
  3954. if (cmd != PFM_UNLOAD_CONTEXT) return 0;
  3955. }
  3956. /*
  3957. * context is LOADED or MASKED. Some commands may need to have
  3958. * the task stopped.
  3959. *
  3960. * We could lift this restriction for UP but it would mean that
  3961. * the user has no guarantee the task would not run between
  3962. * two successive calls to perfmonctl(). That's probably OK.
  3963. * If this user wants to ensure the task does not run, then
  3964. * the task must be stopped.
  3965. */
  3966. if (PFM_CMD_STOPPED(cmd)) {
  3967. if ((task->state != TASK_STOPPED) && (task->state != TASK_TRACED)) {
  3968. DPRINT(("[%d] task not in stopped state\n", task->pid));
  3969. return -EBUSY;
  3970. }
  3971. /*
  3972. * task is now stopped, wait for ctxsw out
  3973. *
  3974. * This is an interesting point in the code.
  3975. * We need to unprotect the context because
  3976. * the pfm_save_regs() routines needs to grab
  3977. * the same lock. There are danger in doing
  3978. * this because it leaves a window open for
  3979. * another task to get access to the context
  3980. * and possibly change its state. The one thing
  3981. * that is not possible is for the context to disappear
  3982. * because we are protected by the VFS layer, i.e.,
  3983. * get_fd()/put_fd().
  3984. */
  3985. old_state = state;
  3986. UNPROTECT_CTX(ctx, flags);
  3987. wait_task_inactive(task);
  3988. PROTECT_CTX(ctx, flags);
  3989. /*
  3990. * we must recheck to verify if state has changed
  3991. */
  3992. if (ctx->ctx_state != old_state) {
  3993. DPRINT(("old_state=%d new_state=%d\n", old_state, ctx->ctx_state));
  3994. goto recheck;
  3995. }
  3996. }
  3997. return 0;
  3998. }
  3999. /*
  4000. * system-call entry point (must return long)
  4001. */
  4002. asmlinkage long
  4003. sys_perfmonctl (int fd, int cmd, void __user *arg, int count)
  4004. {
  4005. struct file *file = NULL;
  4006. pfm_context_t *ctx = NULL;
  4007. unsigned long flags = 0UL;
  4008. void *args_k = NULL;
  4009. long ret; /* will expand int return types */
  4010. size_t base_sz, sz, xtra_sz = 0;
  4011. int narg, completed_args = 0, call_made = 0, cmd_flags;
  4012. int (*func)(pfm_context_t *ctx, void *arg, int count, struct pt_regs *regs);
  4013. int (*getsize)(void *arg, size_t *sz);
  4014. #define PFM_MAX_ARGSIZE 4096
  4015. /*
  4016. * reject any call if perfmon was disabled at initialization
  4017. */
  4018. if (unlikely(pmu_conf == NULL)) return -ENOSYS;
  4019. if (unlikely(cmd < 0 || cmd >= PFM_CMD_COUNT)) {
  4020. DPRINT(("invalid cmd=%d\n", cmd));
  4021. return -EINVAL;
  4022. }
  4023. func = pfm_cmd_tab[cmd].cmd_func;
  4024. narg = pfm_cmd_tab[cmd].cmd_narg;
  4025. base_sz = pfm_cmd_tab[cmd].cmd_argsize;
  4026. getsize = pfm_cmd_tab[cmd].cmd_getsize;
  4027. cmd_flags = pfm_cmd_tab[cmd].cmd_flags;
  4028. if (unlikely(func == NULL)) {
  4029. DPRINT(("invalid cmd=%d\n", cmd));
  4030. return -EINVAL;
  4031. }
  4032. DPRINT(("cmd=%s idx=%d narg=0x%x argsz=%lu count=%d\n",
  4033. PFM_CMD_NAME(cmd),
  4034. cmd,
  4035. narg,
  4036. base_sz,
  4037. count));
  4038. /*
  4039. * check if number of arguments matches what the command expects
  4040. */
  4041. if (unlikely((narg == PFM_CMD_ARG_MANY && count <= 0) || (narg > 0 && narg != count)))
  4042. return -EINVAL;
  4043. restart_args:
  4044. sz = xtra_sz + base_sz*count;
  4045. /*
  4046. * limit abuse to min page size
  4047. */
  4048. if (unlikely(sz > PFM_MAX_ARGSIZE)) {
  4049. printk(KERN_ERR "perfmon: [%d] argument too big %lu\n", current->pid, sz);
  4050. return -E2BIG;
  4051. }
  4052. /*
  4053. * allocate default-sized argument buffer
  4054. */
  4055. if (likely(count && args_k == NULL)) {
  4056. args_k = kmalloc(PFM_MAX_ARGSIZE, GFP_KERNEL);
  4057. if (args_k == NULL) return -ENOMEM;
  4058. }
  4059. ret = -EFAULT;
  4060. /*
  4061. * copy arguments
  4062. *
  4063. * assume sz = 0 for command without parameters
  4064. */
  4065. if (sz && copy_from_user(args_k, arg, sz)) {
  4066. DPRINT(("cannot copy_from_user %lu bytes @%p\n", sz, arg));
  4067. goto error_args;
  4068. }
  4069. /*
  4070. * check if command supports extra parameters
  4071. */
  4072. if (completed_args == 0 && getsize) {
  4073. /*
  4074. * get extra parameters size (based on main argument)
  4075. */
  4076. ret = (*getsize)(args_k, &xtra_sz);
  4077. if (ret) goto error_args;
  4078. completed_args = 1;
  4079. DPRINT(("restart_args sz=%lu xtra_sz=%lu\n", sz, xtra_sz));
  4080. /* retry if necessary */
  4081. if (likely(xtra_sz)) goto restart_args;
  4082. }
  4083. if (unlikely((cmd_flags & PFM_CMD_FD) == 0)) goto skip_fd;
  4084. ret = -EBADF;
  4085. file = fget(fd);
  4086. if (unlikely(file == NULL)) {
  4087. DPRINT(("invalid fd %d\n", fd));
  4088. goto error_args;
  4089. }
  4090. if (unlikely(PFM_IS_FILE(file) == 0)) {
  4091. DPRINT(("fd %d not related to perfmon\n", fd));
  4092. goto error_args;
  4093. }
  4094. ctx = (pfm_context_t *)file->private_data;
  4095. if (unlikely(ctx == NULL)) {
  4096. DPRINT(("no context for fd %d\n", fd));
  4097. goto error_args;
  4098. }
  4099. prefetch(&ctx->ctx_state);
  4100. PROTECT_CTX(ctx, flags);
  4101. /*
  4102. * check task is stopped
  4103. */
  4104. ret = pfm_check_task_state(ctx, cmd, flags);
  4105. if (unlikely(ret)) goto abort_locked;
  4106. skip_fd:
  4107. ret = (*func)(ctx, args_k, count, task_pt_regs(current));
  4108. call_made = 1;
  4109. abort_locked:
  4110. if (likely(ctx)) {
  4111. DPRINT(("context unlocked\n"));
  4112. UNPROTECT_CTX(ctx, flags);
  4113. }
  4114. /* copy argument back to user, if needed */
  4115. if (call_made && PFM_CMD_RW_ARG(cmd) && copy_to_user(arg, args_k, base_sz*count)) ret = -EFAULT;
  4116. error_args:
  4117. if (file)
  4118. fput(file);
  4119. kfree(args_k);
  4120. DPRINT(("cmd=%s ret=%ld\n", PFM_CMD_NAME(cmd), ret));
  4121. return ret;
  4122. }
  4123. static void
  4124. pfm_resume_after_ovfl(pfm_context_t *ctx, unsigned long ovfl_regs, struct pt_regs *regs)
  4125. {
  4126. pfm_buffer_fmt_t *fmt = ctx->ctx_buf_fmt;
  4127. pfm_ovfl_ctrl_t rst_ctrl;
  4128. int state;
  4129. int ret = 0;
  4130. state = ctx->ctx_state;
  4131. /*
  4132. * Unlock sampling buffer and reset index atomically
  4133. * XXX: not really needed when blocking
  4134. */
  4135. if (CTX_HAS_SMPL(ctx)) {
  4136. rst_ctrl.bits.mask_monitoring = 0;
  4137. rst_ctrl.bits.reset_ovfl_pmds = 0;
  4138. if (state == PFM_CTX_LOADED)
  4139. ret = pfm_buf_fmt_restart_active(fmt, current, &rst_ctrl, ctx->ctx_smpl_hdr, regs);
  4140. else
  4141. ret = pfm_buf_fmt_restart(fmt, current, &rst_ctrl, ctx->ctx_smpl_hdr, regs);
  4142. } else {
  4143. rst_ctrl.bits.mask_monitoring = 0;
  4144. rst_ctrl.bits.reset_ovfl_pmds = 1;
  4145. }
  4146. if (ret == 0) {
  4147. if (rst_ctrl.bits.reset_ovfl_pmds) {
  4148. pfm_reset_regs(ctx, &ovfl_regs, PFM_PMD_LONG_RESET);
  4149. }
  4150. if (rst_ctrl.bits.mask_monitoring == 0) {
  4151. DPRINT(("resuming monitoring\n"));
  4152. if (ctx->ctx_state == PFM_CTX_MASKED) pfm_restore_monitoring(current);
  4153. } else {
  4154. DPRINT(("stopping monitoring\n"));
  4155. //pfm_stop_monitoring(current, regs);
  4156. }
  4157. ctx->ctx_state = PFM_CTX_LOADED;
  4158. }
  4159. }
  4160. /*
  4161. * context MUST BE LOCKED when calling
  4162. * can only be called for current
  4163. */
  4164. static void
  4165. pfm_context_force_terminate(pfm_context_t *ctx, struct pt_regs *regs)
  4166. {
  4167. int ret;
  4168. DPRINT(("entering for [%d]\n", current->pid));
  4169. ret = pfm_context_unload(ctx, NULL, 0, regs);
  4170. if (ret) {
  4171. printk(KERN_ERR "pfm_context_force_terminate: [%d] unloaded failed with %d\n", current->pid, ret);
  4172. }
  4173. /*
  4174. * and wakeup controlling task, indicating we are now disconnected
  4175. */
  4176. wake_up_interruptible(&ctx->ctx_zombieq);
  4177. /*
  4178. * given that context is still locked, the controlling
  4179. * task will only get access when we return from
  4180. * pfm_handle_work().
  4181. */
  4182. }
  4183. static int pfm_ovfl_notify_user(pfm_context_t *ctx, unsigned long ovfl_pmds);
  4184. /*
  4185. * pfm_handle_work() can be called with interrupts enabled
  4186. * (TIF_NEED_RESCHED) or disabled. The down_interruptible
  4187. * call may sleep, therefore we must re-enable interrupts
  4188. * to avoid deadlocks. It is safe to do so because this function
  4189. * is called ONLY when returning to user level (PUStk=1), in which case
  4190. * there is no risk of kernel stack overflow due to deep
  4191. * interrupt nesting.
  4192. */
  4193. void
  4194. pfm_handle_work(void)
  4195. {
  4196. pfm_context_t *ctx;
  4197. struct pt_regs *regs;
  4198. unsigned long flags, dummy_flags;
  4199. unsigned long ovfl_regs;
  4200. unsigned int reason;
  4201. int ret;
  4202. ctx = PFM_GET_CTX(current);
  4203. if (ctx == NULL) {
  4204. printk(KERN_ERR "perfmon: [%d] has no PFM context\n", current->pid);
  4205. return;
  4206. }
  4207. PROTECT_CTX(ctx, flags);
  4208. PFM_SET_WORK_PENDING(current, 0);
  4209. pfm_clear_task_notify();
  4210. regs = task_pt_regs(current);
  4211. /*
  4212. * extract reason for being here and clear
  4213. */
  4214. reason = ctx->ctx_fl_trap_reason;
  4215. ctx->ctx_fl_trap_reason = PFM_TRAP_REASON_NONE;
  4216. ovfl_regs = ctx->ctx_ovfl_regs[0];
  4217. DPRINT(("reason=%d state=%d\n", reason, ctx->ctx_state));
  4218. /*
  4219. * must be done before we check for simple-reset mode
  4220. */
  4221. if (ctx->ctx_fl_going_zombie || ctx->ctx_state == PFM_CTX_ZOMBIE) goto do_zombie;
  4222. //if (CTX_OVFL_NOBLOCK(ctx)) goto skip_blocking;
  4223. if (reason == PFM_TRAP_REASON_RESET) goto skip_blocking;
  4224. /*
  4225. * restore interrupt mask to what it was on entry.
  4226. * Could be enabled/diasbled.
  4227. */
  4228. UNPROTECT_CTX(ctx, flags);
  4229. /*
  4230. * force interrupt enable because of down_interruptible()
  4231. */
  4232. local_irq_enable();
  4233. DPRINT(("before block sleeping\n"));
  4234. /*
  4235. * may go through without blocking on SMP systems
  4236. * if restart has been received already by the time we call down()
  4237. */
  4238. ret = wait_for_completion_interruptible(&ctx->ctx_restart_done);
  4239. DPRINT(("after block sleeping ret=%d\n", ret));
  4240. /*
  4241. * lock context and mask interrupts again
  4242. * We save flags into a dummy because we may have
  4243. * altered interrupts mask compared to entry in this
  4244. * function.
  4245. */
  4246. PROTECT_CTX(ctx, dummy_flags);
  4247. /*
  4248. * we need to read the ovfl_regs only after wake-up
  4249. * because we may have had pfm_write_pmds() in between
  4250. * and that can changed PMD values and therefore
  4251. * ovfl_regs is reset for these new PMD values.
  4252. */
  4253. ovfl_regs = ctx->ctx_ovfl_regs[0];
  4254. if (ctx->ctx_fl_going_zombie) {
  4255. do_zombie:
  4256. DPRINT(("context is zombie, bailing out\n"));
  4257. pfm_context_force_terminate(ctx, regs);
  4258. goto nothing_to_do;
  4259. }
  4260. /*
  4261. * in case of interruption of down() we don't restart anything
  4262. */
  4263. if (ret < 0) goto nothing_to_do;
  4264. skip_blocking:
  4265. pfm_resume_after_ovfl(ctx, ovfl_regs, regs);
  4266. ctx->ctx_ovfl_regs[0] = 0UL;
  4267. nothing_to_do:
  4268. /*
  4269. * restore flags as they were upon entry
  4270. */
  4271. UNPROTECT_CTX(ctx, flags);
  4272. }
  4273. static int
  4274. pfm_notify_user(pfm_context_t *ctx, pfm_msg_t *msg)
  4275. {
  4276. if (ctx->ctx_state == PFM_CTX_ZOMBIE) {
  4277. DPRINT(("ignoring overflow notification, owner is zombie\n"));
  4278. return 0;
  4279. }
  4280. DPRINT(("waking up somebody\n"));
  4281. if (msg) wake_up_interruptible(&ctx->ctx_msgq_wait);
  4282. /*
  4283. * safe, we are not in intr handler, nor in ctxsw when
  4284. * we come here
  4285. */
  4286. kill_fasync (&ctx->ctx_async_queue, SIGIO, POLL_IN);
  4287. return 0;
  4288. }
  4289. static int
  4290. pfm_ovfl_notify_user(pfm_context_t *ctx, unsigned long ovfl_pmds)
  4291. {
  4292. pfm_msg_t *msg = NULL;
  4293. if (ctx->ctx_fl_no_msg == 0) {
  4294. msg = pfm_get_new_msg(ctx);
  4295. if (msg == NULL) {
  4296. printk(KERN_ERR "perfmon: pfm_ovfl_notify_user no more notification msgs\n");
  4297. return -1;
  4298. }
  4299. msg->pfm_ovfl_msg.msg_type = PFM_MSG_OVFL;
  4300. msg->pfm_ovfl_msg.msg_ctx_fd = ctx->ctx_fd;
  4301. msg->pfm_ovfl_msg.msg_active_set = 0;
  4302. msg->pfm_ovfl_msg.msg_ovfl_pmds[0] = ovfl_pmds;
  4303. msg->pfm_ovfl_msg.msg_ovfl_pmds[1] = 0UL;
  4304. msg->pfm_ovfl_msg.msg_ovfl_pmds[2] = 0UL;
  4305. msg->pfm_ovfl_msg.msg_ovfl_pmds[3] = 0UL;
  4306. msg->pfm_ovfl_msg.msg_tstamp = 0UL;
  4307. }
  4308. DPRINT(("ovfl msg: msg=%p no_msg=%d fd=%d ovfl_pmds=0x%lx\n",
  4309. msg,
  4310. ctx->ctx_fl_no_msg,
  4311. ctx->ctx_fd,
  4312. ovfl_pmds));
  4313. return pfm_notify_user(ctx, msg);
  4314. }
  4315. static int
  4316. pfm_end_notify_user(pfm_context_t *ctx)
  4317. {
  4318. pfm_msg_t *msg;
  4319. msg = pfm_get_new_msg(ctx);
  4320. if (msg == NULL) {
  4321. printk(KERN_ERR "perfmon: pfm_end_notify_user no more notification msgs\n");
  4322. return -1;
  4323. }
  4324. /* no leak */
  4325. memset(msg, 0, sizeof(*msg));
  4326. msg->pfm_end_msg.msg_type = PFM_MSG_END;
  4327. msg->pfm_end_msg.msg_ctx_fd = ctx->ctx_fd;
  4328. msg->pfm_ovfl_msg.msg_tstamp = 0UL;
  4329. DPRINT(("end msg: msg=%p no_msg=%d ctx_fd=%d\n",
  4330. msg,
  4331. ctx->ctx_fl_no_msg,
  4332. ctx->ctx_fd));
  4333. return pfm_notify_user(ctx, msg);
  4334. }
  4335. /*
  4336. * main overflow processing routine.
  4337. * it can be called from the interrupt path or explicitely during the context switch code
  4338. */
  4339. static void
  4340. pfm_overflow_handler(struct task_struct *task, pfm_context_t *ctx, u64 pmc0, struct pt_regs *regs)
  4341. {
  4342. pfm_ovfl_arg_t *ovfl_arg;
  4343. unsigned long mask;
  4344. unsigned long old_val, ovfl_val, new_val;
  4345. unsigned long ovfl_notify = 0UL, ovfl_pmds = 0UL, smpl_pmds = 0UL, reset_pmds;
  4346. unsigned long tstamp;
  4347. pfm_ovfl_ctrl_t ovfl_ctrl;
  4348. unsigned int i, has_smpl;
  4349. int must_notify = 0;
  4350. if (unlikely(ctx->ctx_state == PFM_CTX_ZOMBIE)) goto stop_monitoring;
  4351. /*
  4352. * sanity test. Should never happen
  4353. */
  4354. if (unlikely((pmc0 & 0x1) == 0)) goto sanity_check;
  4355. tstamp = ia64_get_itc();
  4356. mask = pmc0 >> PMU_FIRST_COUNTER;
  4357. ovfl_val = pmu_conf->ovfl_val;
  4358. has_smpl = CTX_HAS_SMPL(ctx);
  4359. DPRINT_ovfl(("pmc0=0x%lx pid=%d iip=0x%lx, %s "
  4360. "used_pmds=0x%lx\n",
  4361. pmc0,
  4362. task ? task->pid: -1,
  4363. (regs ? regs->cr_iip : 0),
  4364. CTX_OVFL_NOBLOCK(ctx) ? "nonblocking" : "blocking",
  4365. ctx->ctx_used_pmds[0]));
  4366. /*
  4367. * first we update the virtual counters
  4368. * assume there was a prior ia64_srlz_d() issued
  4369. */
  4370. for (i = PMU_FIRST_COUNTER; mask ; i++, mask >>= 1) {
  4371. /* skip pmd which did not overflow */
  4372. if ((mask & 0x1) == 0) continue;
  4373. /*
  4374. * Note that the pmd is not necessarily 0 at this point as qualified events
  4375. * may have happened before the PMU was frozen. The residual count is not
  4376. * taken into consideration here but will be with any read of the pmd via
  4377. * pfm_read_pmds().
  4378. */
  4379. old_val = new_val = ctx->ctx_pmds[i].val;
  4380. new_val += 1 + ovfl_val;
  4381. ctx->ctx_pmds[i].val = new_val;
  4382. /*
  4383. * check for overflow condition
  4384. */
  4385. if (likely(old_val > new_val)) {
  4386. ovfl_pmds |= 1UL << i;
  4387. if (PMC_OVFL_NOTIFY(ctx, i)) ovfl_notify |= 1UL << i;
  4388. }
  4389. DPRINT_ovfl(("ctx_pmd[%d].val=0x%lx old_val=0x%lx pmd=0x%lx ovfl_pmds=0x%lx ovfl_notify=0x%lx\n",
  4390. i,
  4391. new_val,
  4392. old_val,
  4393. ia64_get_pmd(i) & ovfl_val,
  4394. ovfl_pmds,
  4395. ovfl_notify));
  4396. }
  4397. /*
  4398. * there was no 64-bit overflow, nothing else to do
  4399. */
  4400. if (ovfl_pmds == 0UL) return;
  4401. /*
  4402. * reset all control bits
  4403. */
  4404. ovfl_ctrl.val = 0;
  4405. reset_pmds = 0UL;
  4406. /*
  4407. * if a sampling format module exists, then we "cache" the overflow by
  4408. * calling the module's handler() routine.
  4409. */
  4410. if (has_smpl) {
  4411. unsigned long start_cycles, end_cycles;
  4412. unsigned long pmd_mask;
  4413. int j, k, ret = 0;
  4414. int this_cpu = smp_processor_id();
  4415. pmd_mask = ovfl_pmds >> PMU_FIRST_COUNTER;
  4416. ovfl_arg = &ctx->ctx_ovfl_arg;
  4417. prefetch(ctx->ctx_smpl_hdr);
  4418. for(i=PMU_FIRST_COUNTER; pmd_mask && ret == 0; i++, pmd_mask >>=1) {
  4419. mask = 1UL << i;
  4420. if ((pmd_mask & 0x1) == 0) continue;
  4421. ovfl_arg->ovfl_pmd = (unsigned char )i;
  4422. ovfl_arg->ovfl_notify = ovfl_notify & mask ? 1 : 0;
  4423. ovfl_arg->active_set = 0;
  4424. ovfl_arg->ovfl_ctrl.val = 0; /* module must fill in all fields */
  4425. ovfl_arg->smpl_pmds[0] = smpl_pmds = ctx->ctx_pmds[i].smpl_pmds[0];
  4426. ovfl_arg->pmd_value = ctx->ctx_pmds[i].val;
  4427. ovfl_arg->pmd_last_reset = ctx->ctx_pmds[i].lval;
  4428. ovfl_arg->pmd_eventid = ctx->ctx_pmds[i].eventid;
  4429. /*
  4430. * copy values of pmds of interest. Sampling format may copy them
  4431. * into sampling buffer.
  4432. */
  4433. if (smpl_pmds) {
  4434. for(j=0, k=0; smpl_pmds; j++, smpl_pmds >>=1) {
  4435. if ((smpl_pmds & 0x1) == 0) continue;
  4436. ovfl_arg->smpl_pmds_values[k++] = PMD_IS_COUNTING(j) ? pfm_read_soft_counter(ctx, j) : ia64_get_pmd(j);
  4437. DPRINT_ovfl(("smpl_pmd[%d]=pmd%u=0x%lx\n", k-1, j, ovfl_arg->smpl_pmds_values[k-1]));
  4438. }
  4439. }
  4440. pfm_stats[this_cpu].pfm_smpl_handler_calls++;
  4441. start_cycles = ia64_get_itc();
  4442. /*
  4443. * call custom buffer format record (handler) routine
  4444. */
  4445. ret = (*ctx->ctx_buf_fmt->fmt_handler)(task, ctx->ctx_smpl_hdr, ovfl_arg, regs, tstamp);
  4446. end_cycles = ia64_get_itc();
  4447. /*
  4448. * For those controls, we take the union because they have
  4449. * an all or nothing behavior.
  4450. */
  4451. ovfl_ctrl.bits.notify_user |= ovfl_arg->ovfl_ctrl.bits.notify_user;
  4452. ovfl_ctrl.bits.block_task |= ovfl_arg->ovfl_ctrl.bits.block_task;
  4453. ovfl_ctrl.bits.mask_monitoring |= ovfl_arg->ovfl_ctrl.bits.mask_monitoring;
  4454. /*
  4455. * build the bitmask of pmds to reset now
  4456. */
  4457. if (ovfl_arg->ovfl_ctrl.bits.reset_ovfl_pmds) reset_pmds |= mask;
  4458. pfm_stats[this_cpu].pfm_smpl_handler_cycles += end_cycles - start_cycles;
  4459. }
  4460. /*
  4461. * when the module cannot handle the rest of the overflows, we abort right here
  4462. */
  4463. if (ret && pmd_mask) {
  4464. DPRINT(("handler aborts leftover ovfl_pmds=0x%lx\n",
  4465. pmd_mask<<PMU_FIRST_COUNTER));
  4466. }
  4467. /*
  4468. * remove the pmds we reset now from the set of pmds to reset in pfm_restart()
  4469. */
  4470. ovfl_pmds &= ~reset_pmds;
  4471. } else {
  4472. /*
  4473. * when no sampling module is used, then the default
  4474. * is to notify on overflow if requested by user
  4475. */
  4476. ovfl_ctrl.bits.notify_user = ovfl_notify ? 1 : 0;
  4477. ovfl_ctrl.bits.block_task = ovfl_notify ? 1 : 0;
  4478. ovfl_ctrl.bits.mask_monitoring = ovfl_notify ? 1 : 0; /* XXX: change for saturation */
  4479. ovfl_ctrl.bits.reset_ovfl_pmds = ovfl_notify ? 0 : 1;
  4480. /*
  4481. * if needed, we reset all overflowed pmds
  4482. */
  4483. if (ovfl_notify == 0) reset_pmds = ovfl_pmds;
  4484. }
  4485. DPRINT_ovfl(("ovfl_pmds=0x%lx reset_pmds=0x%lx\n", ovfl_pmds, reset_pmds));
  4486. /*
  4487. * reset the requested PMD registers using the short reset values
  4488. */
  4489. if (reset_pmds) {
  4490. unsigned long bm = reset_pmds;
  4491. pfm_reset_regs(ctx, &bm, PFM_PMD_SHORT_RESET);
  4492. }
  4493. if (ovfl_notify && ovfl_ctrl.bits.notify_user) {
  4494. /*
  4495. * keep track of what to reset when unblocking
  4496. */
  4497. ctx->ctx_ovfl_regs[0] = ovfl_pmds;
  4498. /*
  4499. * check for blocking context
  4500. */
  4501. if (CTX_OVFL_NOBLOCK(ctx) == 0 && ovfl_ctrl.bits.block_task) {
  4502. ctx->ctx_fl_trap_reason = PFM_TRAP_REASON_BLOCK;
  4503. /*
  4504. * set the perfmon specific checking pending work for the task
  4505. */
  4506. PFM_SET_WORK_PENDING(task, 1);
  4507. /*
  4508. * when coming from ctxsw, current still points to the
  4509. * previous task, therefore we must work with task and not current.
  4510. */
  4511. pfm_set_task_notify(task);
  4512. }
  4513. /*
  4514. * defer until state is changed (shorten spin window). the context is locked
  4515. * anyway, so the signal receiver would come spin for nothing.
  4516. */
  4517. must_notify = 1;
  4518. }
  4519. DPRINT_ovfl(("owner [%d] pending=%ld reason=%u ovfl_pmds=0x%lx ovfl_notify=0x%lx masked=%d\n",
  4520. GET_PMU_OWNER() ? GET_PMU_OWNER()->pid : -1,
  4521. PFM_GET_WORK_PENDING(task),
  4522. ctx->ctx_fl_trap_reason,
  4523. ovfl_pmds,
  4524. ovfl_notify,
  4525. ovfl_ctrl.bits.mask_monitoring ? 1 : 0));
  4526. /*
  4527. * in case monitoring must be stopped, we toggle the psr bits
  4528. */
  4529. if (ovfl_ctrl.bits.mask_monitoring) {
  4530. pfm_mask_monitoring(task);
  4531. ctx->ctx_state = PFM_CTX_MASKED;
  4532. ctx->ctx_fl_can_restart = 1;
  4533. }
  4534. /*
  4535. * send notification now
  4536. */
  4537. if (must_notify) pfm_ovfl_notify_user(ctx, ovfl_notify);
  4538. return;
  4539. sanity_check:
  4540. printk(KERN_ERR "perfmon: CPU%d overflow handler [%d] pmc0=0x%lx\n",
  4541. smp_processor_id(),
  4542. task ? task->pid : -1,
  4543. pmc0);
  4544. return;
  4545. stop_monitoring:
  4546. /*
  4547. * in SMP, zombie context is never restored but reclaimed in pfm_load_regs().
  4548. * Moreover, zombies are also reclaimed in pfm_save_regs(). Therefore we can
  4549. * come here as zombie only if the task is the current task. In which case, we
  4550. * can access the PMU hardware directly.
  4551. *
  4552. * Note that zombies do have PM_VALID set. So here we do the minimal.
  4553. *
  4554. * In case the context was zombified it could not be reclaimed at the time
  4555. * the monitoring program exited. At this point, the PMU reservation has been
  4556. * returned, the sampiing buffer has been freed. We must convert this call
  4557. * into a spurious interrupt. However, we must also avoid infinite overflows
  4558. * by stopping monitoring for this task. We can only come here for a per-task
  4559. * context. All we need to do is to stop monitoring using the psr bits which
  4560. * are always task private. By re-enabling secure montioring, we ensure that
  4561. * the monitored task will not be able to re-activate monitoring.
  4562. * The task will eventually be context switched out, at which point the context
  4563. * will be reclaimed (that includes releasing ownership of the PMU).
  4564. *
  4565. * So there might be a window of time where the number of per-task session is zero
  4566. * yet one PMU might have a owner and get at most one overflow interrupt for a zombie
  4567. * context. This is safe because if a per-task session comes in, it will push this one
  4568. * out and by the virtue on pfm_save_regs(), this one will disappear. If a system wide
  4569. * session is force on that CPU, given that we use task pinning, pfm_save_regs() will
  4570. * also push our zombie context out.
  4571. *
  4572. * Overall pretty hairy stuff....
  4573. */
  4574. DPRINT(("ctx is zombie for [%d], converted to spurious\n", task ? task->pid: -1));
  4575. pfm_clear_psr_up();
  4576. ia64_psr(regs)->up = 0;
  4577. ia64_psr(regs)->sp = 1;
  4578. return;
  4579. }
  4580. static int
  4581. pfm_do_interrupt_handler(int irq, void *arg, struct pt_regs *regs)
  4582. {
  4583. struct task_struct *task;
  4584. pfm_context_t *ctx;
  4585. unsigned long flags;
  4586. u64 pmc0;
  4587. int this_cpu = smp_processor_id();
  4588. int retval = 0;
  4589. pfm_stats[this_cpu].pfm_ovfl_intr_count++;
  4590. /*
  4591. * srlz.d done before arriving here
  4592. */
  4593. pmc0 = ia64_get_pmc(0);
  4594. task = GET_PMU_OWNER();
  4595. ctx = GET_PMU_CTX();
  4596. /*
  4597. * if we have some pending bits set
  4598. * assumes : if any PMC0.bit[63-1] is set, then PMC0.fr = 1
  4599. */
  4600. if (PMC0_HAS_OVFL(pmc0) && task) {
  4601. /*
  4602. * we assume that pmc0.fr is always set here
  4603. */
  4604. /* sanity check */
  4605. if (!ctx) goto report_spurious1;
  4606. if (ctx->ctx_fl_system == 0 && (task->thread.flags & IA64_THREAD_PM_VALID) == 0)
  4607. goto report_spurious2;
  4608. PROTECT_CTX_NOPRINT(ctx, flags);
  4609. pfm_overflow_handler(task, ctx, pmc0, regs);
  4610. UNPROTECT_CTX_NOPRINT(ctx, flags);
  4611. } else {
  4612. pfm_stats[this_cpu].pfm_spurious_ovfl_intr_count++;
  4613. retval = -1;
  4614. }
  4615. /*
  4616. * keep it unfrozen at all times
  4617. */
  4618. pfm_unfreeze_pmu();
  4619. return retval;
  4620. report_spurious1:
  4621. printk(KERN_INFO "perfmon: spurious overflow interrupt on CPU%d: process %d has no PFM context\n",
  4622. this_cpu, task->pid);
  4623. pfm_unfreeze_pmu();
  4624. return -1;
  4625. report_spurious2:
  4626. printk(KERN_INFO "perfmon: spurious overflow interrupt on CPU%d: process %d, invalid flag\n",
  4627. this_cpu,
  4628. task->pid);
  4629. pfm_unfreeze_pmu();
  4630. return -1;
  4631. }
  4632. static irqreturn_t
  4633. pfm_interrupt_handler(int irq, void *arg, struct pt_regs *regs)
  4634. {
  4635. unsigned long start_cycles, total_cycles;
  4636. unsigned long min, max;
  4637. int this_cpu;
  4638. int ret;
  4639. this_cpu = get_cpu();
  4640. if (likely(!pfm_alt_intr_handler)) {
  4641. min = pfm_stats[this_cpu].pfm_ovfl_intr_cycles_min;
  4642. max = pfm_stats[this_cpu].pfm_ovfl_intr_cycles_max;
  4643. start_cycles = ia64_get_itc();
  4644. ret = pfm_do_interrupt_handler(irq, arg, regs);
  4645. total_cycles = ia64_get_itc();
  4646. /*
  4647. * don't measure spurious interrupts
  4648. */
  4649. if (likely(ret == 0)) {
  4650. total_cycles -= start_cycles;
  4651. if (total_cycles < min) pfm_stats[this_cpu].pfm_ovfl_intr_cycles_min = total_cycles;
  4652. if (total_cycles > max) pfm_stats[this_cpu].pfm_ovfl_intr_cycles_max = total_cycles;
  4653. pfm_stats[this_cpu].pfm_ovfl_intr_cycles += total_cycles;
  4654. }
  4655. }
  4656. else {
  4657. (*pfm_alt_intr_handler->handler)(irq, arg, regs);
  4658. }
  4659. put_cpu_no_resched();
  4660. return IRQ_HANDLED;
  4661. }
  4662. /*
  4663. * /proc/perfmon interface, for debug only
  4664. */
  4665. #define PFM_PROC_SHOW_HEADER ((void *)NR_CPUS+1)
  4666. static void *
  4667. pfm_proc_start(struct seq_file *m, loff_t *pos)
  4668. {
  4669. if (*pos == 0) {
  4670. return PFM_PROC_SHOW_HEADER;
  4671. }
  4672. while (*pos <= NR_CPUS) {
  4673. if (cpu_online(*pos - 1)) {
  4674. return (void *)*pos;
  4675. }
  4676. ++*pos;
  4677. }
  4678. return NULL;
  4679. }
  4680. static void *
  4681. pfm_proc_next(struct seq_file *m, void *v, loff_t *pos)
  4682. {
  4683. ++*pos;
  4684. return pfm_proc_start(m, pos);
  4685. }
  4686. static void
  4687. pfm_proc_stop(struct seq_file *m, void *v)
  4688. {
  4689. }
  4690. static void
  4691. pfm_proc_show_header(struct seq_file *m)
  4692. {
  4693. struct list_head * pos;
  4694. pfm_buffer_fmt_t * entry;
  4695. unsigned long flags;
  4696. seq_printf(m,
  4697. "perfmon version : %u.%u\n"
  4698. "model : %s\n"
  4699. "fastctxsw : %s\n"
  4700. "expert mode : %s\n"
  4701. "ovfl_mask : 0x%lx\n"
  4702. "PMU flags : 0x%x\n",
  4703. PFM_VERSION_MAJ, PFM_VERSION_MIN,
  4704. pmu_conf->pmu_name,
  4705. pfm_sysctl.fastctxsw > 0 ? "Yes": "No",
  4706. pfm_sysctl.expert_mode > 0 ? "Yes": "No",
  4707. pmu_conf->ovfl_val,
  4708. pmu_conf->flags);
  4709. LOCK_PFS(flags);
  4710. seq_printf(m,
  4711. "proc_sessions : %u\n"
  4712. "sys_sessions : %u\n"
  4713. "sys_use_dbregs : %u\n"
  4714. "ptrace_use_dbregs : %u\n",
  4715. pfm_sessions.pfs_task_sessions,
  4716. pfm_sessions.pfs_sys_sessions,
  4717. pfm_sessions.pfs_sys_use_dbregs,
  4718. pfm_sessions.pfs_ptrace_use_dbregs);
  4719. UNLOCK_PFS(flags);
  4720. spin_lock(&pfm_buffer_fmt_lock);
  4721. list_for_each(pos, &pfm_buffer_fmt_list) {
  4722. entry = list_entry(pos, pfm_buffer_fmt_t, fmt_list);
  4723. seq_printf(m, "format : %02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x-%02x %s\n",
  4724. entry->fmt_uuid[0],
  4725. entry->fmt_uuid[1],
  4726. entry->fmt_uuid[2],
  4727. entry->fmt_uuid[3],
  4728. entry->fmt_uuid[4],
  4729. entry->fmt_uuid[5],
  4730. entry->fmt_uuid[6],
  4731. entry->fmt_uuid[7],
  4732. entry->fmt_uuid[8],
  4733. entry->fmt_uuid[9],
  4734. entry->fmt_uuid[10],
  4735. entry->fmt_uuid[11],
  4736. entry->fmt_uuid[12],
  4737. entry->fmt_uuid[13],
  4738. entry->fmt_uuid[14],
  4739. entry->fmt_uuid[15],
  4740. entry->fmt_name);
  4741. }
  4742. spin_unlock(&pfm_buffer_fmt_lock);
  4743. }
  4744. static int
  4745. pfm_proc_show(struct seq_file *m, void *v)
  4746. {
  4747. unsigned long psr;
  4748. unsigned int i;
  4749. int cpu;
  4750. if (v == PFM_PROC_SHOW_HEADER) {
  4751. pfm_proc_show_header(m);
  4752. return 0;
  4753. }
  4754. /* show info for CPU (v - 1) */
  4755. cpu = (long)v - 1;
  4756. seq_printf(m,
  4757. "CPU%-2d overflow intrs : %lu\n"
  4758. "CPU%-2d overflow cycles : %lu\n"
  4759. "CPU%-2d overflow min : %lu\n"
  4760. "CPU%-2d overflow max : %lu\n"
  4761. "CPU%-2d smpl handler calls : %lu\n"
  4762. "CPU%-2d smpl handler cycles : %lu\n"
  4763. "CPU%-2d spurious intrs : %lu\n"
  4764. "CPU%-2d replay intrs : %lu\n"
  4765. "CPU%-2d syst_wide : %d\n"
  4766. "CPU%-2d dcr_pp : %d\n"
  4767. "CPU%-2d exclude idle : %d\n"
  4768. "CPU%-2d owner : %d\n"
  4769. "CPU%-2d context : %p\n"
  4770. "CPU%-2d activations : %lu\n",
  4771. cpu, pfm_stats[cpu].pfm_ovfl_intr_count,
  4772. cpu, pfm_stats[cpu].pfm_ovfl_intr_cycles,
  4773. cpu, pfm_stats[cpu].pfm_ovfl_intr_cycles_min,
  4774. cpu, pfm_stats[cpu].pfm_ovfl_intr_cycles_max,
  4775. cpu, pfm_stats[cpu].pfm_smpl_handler_calls,
  4776. cpu, pfm_stats[cpu].pfm_smpl_handler_cycles,
  4777. cpu, pfm_stats[cpu].pfm_spurious_ovfl_intr_count,
  4778. cpu, pfm_stats[cpu].pfm_replay_ovfl_intr_count,
  4779. cpu, pfm_get_cpu_data(pfm_syst_info, cpu) & PFM_CPUINFO_SYST_WIDE ? 1 : 0,
  4780. cpu, pfm_get_cpu_data(pfm_syst_info, cpu) & PFM_CPUINFO_DCR_PP ? 1 : 0,
  4781. cpu, pfm_get_cpu_data(pfm_syst_info, cpu) & PFM_CPUINFO_EXCL_IDLE ? 1 : 0,
  4782. cpu, pfm_get_cpu_data(pmu_owner, cpu) ? pfm_get_cpu_data(pmu_owner, cpu)->pid: -1,
  4783. cpu, pfm_get_cpu_data(pmu_ctx, cpu),
  4784. cpu, pfm_get_cpu_data(pmu_activation_number, cpu));
  4785. if (num_online_cpus() == 1 && pfm_sysctl.debug > 0) {
  4786. psr = pfm_get_psr();
  4787. ia64_srlz_d();
  4788. seq_printf(m,
  4789. "CPU%-2d psr : 0x%lx\n"
  4790. "CPU%-2d pmc0 : 0x%lx\n",
  4791. cpu, psr,
  4792. cpu, ia64_get_pmc(0));
  4793. for (i=0; PMC_IS_LAST(i) == 0; i++) {
  4794. if (PMC_IS_COUNTING(i) == 0) continue;
  4795. seq_printf(m,
  4796. "CPU%-2d pmc%u : 0x%lx\n"
  4797. "CPU%-2d pmd%u : 0x%lx\n",
  4798. cpu, i, ia64_get_pmc(i),
  4799. cpu, i, ia64_get_pmd(i));
  4800. }
  4801. }
  4802. return 0;
  4803. }
  4804. struct seq_operations pfm_seq_ops = {
  4805. .start = pfm_proc_start,
  4806. .next = pfm_proc_next,
  4807. .stop = pfm_proc_stop,
  4808. .show = pfm_proc_show
  4809. };
  4810. static int
  4811. pfm_proc_open(struct inode *inode, struct file *file)
  4812. {
  4813. return seq_open(file, &pfm_seq_ops);
  4814. }
  4815. /*
  4816. * we come here as soon as local_cpu_data->pfm_syst_wide is set. this happens
  4817. * during pfm_enable() hence before pfm_start(). We cannot assume monitoring
  4818. * is active or inactive based on mode. We must rely on the value in
  4819. * local_cpu_data->pfm_syst_info
  4820. */
  4821. void
  4822. pfm_syst_wide_update_task(struct task_struct *task, unsigned long info, int is_ctxswin)
  4823. {
  4824. struct pt_regs *regs;
  4825. unsigned long dcr;
  4826. unsigned long dcr_pp;
  4827. dcr_pp = info & PFM_CPUINFO_DCR_PP ? 1 : 0;
  4828. /*
  4829. * pid 0 is guaranteed to be the idle task. There is one such task with pid 0
  4830. * on every CPU, so we can rely on the pid to identify the idle task.
  4831. */
  4832. if ((info & PFM_CPUINFO_EXCL_IDLE) == 0 || task->pid) {
  4833. regs = task_pt_regs(task);
  4834. ia64_psr(regs)->pp = is_ctxswin ? dcr_pp : 0;
  4835. return;
  4836. }
  4837. /*
  4838. * if monitoring has started
  4839. */
  4840. if (dcr_pp) {
  4841. dcr = ia64_getreg(_IA64_REG_CR_DCR);
  4842. /*
  4843. * context switching in?
  4844. */
  4845. if (is_ctxswin) {
  4846. /* mask monitoring for the idle task */
  4847. ia64_setreg(_IA64_REG_CR_DCR, dcr & ~IA64_DCR_PP);
  4848. pfm_clear_psr_pp();
  4849. ia64_srlz_i();
  4850. return;
  4851. }
  4852. /*
  4853. * context switching out
  4854. * restore monitoring for next task
  4855. *
  4856. * Due to inlining this odd if-then-else construction generates
  4857. * better code.
  4858. */
  4859. ia64_setreg(_IA64_REG_CR_DCR, dcr |IA64_DCR_PP);
  4860. pfm_set_psr_pp();
  4861. ia64_srlz_i();
  4862. }
  4863. }
  4864. #ifdef CONFIG_SMP
  4865. static void
  4866. pfm_force_cleanup(pfm_context_t *ctx, struct pt_regs *regs)
  4867. {
  4868. struct task_struct *task = ctx->ctx_task;
  4869. ia64_psr(regs)->up = 0;
  4870. ia64_psr(regs)->sp = 1;
  4871. if (GET_PMU_OWNER() == task) {
  4872. DPRINT(("cleared ownership for [%d]\n", ctx->ctx_task->pid));
  4873. SET_PMU_OWNER(NULL, NULL);
  4874. }
  4875. /*
  4876. * disconnect the task from the context and vice-versa
  4877. */
  4878. PFM_SET_WORK_PENDING(task, 0);
  4879. task->thread.pfm_context = NULL;
  4880. task->thread.flags &= ~IA64_THREAD_PM_VALID;
  4881. DPRINT(("force cleanup for [%d]\n", task->pid));
  4882. }
  4883. /*
  4884. * in 2.6, interrupts are masked when we come here and the runqueue lock is held
  4885. */
  4886. void
  4887. pfm_save_regs(struct task_struct *task)
  4888. {
  4889. pfm_context_t *ctx;
  4890. unsigned long flags;
  4891. u64 psr;
  4892. ctx = PFM_GET_CTX(task);
  4893. if (ctx == NULL) return;
  4894. /*
  4895. * we always come here with interrupts ALREADY disabled by
  4896. * the scheduler. So we simply need to protect against concurrent
  4897. * access, not CPU concurrency.
  4898. */
  4899. flags = pfm_protect_ctx_ctxsw(ctx);
  4900. if (ctx->ctx_state == PFM_CTX_ZOMBIE) {
  4901. struct pt_regs *regs = task_pt_regs(task);
  4902. pfm_clear_psr_up();
  4903. pfm_force_cleanup(ctx, regs);
  4904. BUG_ON(ctx->ctx_smpl_hdr);
  4905. pfm_unprotect_ctx_ctxsw(ctx, flags);
  4906. pfm_context_free(ctx);
  4907. return;
  4908. }
  4909. /*
  4910. * save current PSR: needed because we modify it
  4911. */
  4912. ia64_srlz_d();
  4913. psr = pfm_get_psr();
  4914. BUG_ON(psr & (IA64_PSR_I));
  4915. /*
  4916. * stop monitoring:
  4917. * This is the last instruction which may generate an overflow
  4918. *
  4919. * We do not need to set psr.sp because, it is irrelevant in kernel.
  4920. * It will be restored from ipsr when going back to user level
  4921. */
  4922. pfm_clear_psr_up();
  4923. /*
  4924. * keep a copy of psr.up (for reload)
  4925. */
  4926. ctx->ctx_saved_psr_up = psr & IA64_PSR_UP;
  4927. /*
  4928. * release ownership of this PMU.
  4929. * PM interrupts are masked, so nothing
  4930. * can happen.
  4931. */
  4932. SET_PMU_OWNER(NULL, NULL);
  4933. /*
  4934. * we systematically save the PMD as we have no
  4935. * guarantee we will be schedule at that same
  4936. * CPU again.
  4937. */
  4938. pfm_save_pmds(ctx->th_pmds, ctx->ctx_used_pmds[0]);
  4939. /*
  4940. * save pmc0 ia64_srlz_d() done in pfm_save_pmds()
  4941. * we will need it on the restore path to check
  4942. * for pending overflow.
  4943. */
  4944. ctx->th_pmcs[0] = ia64_get_pmc(0);
  4945. /*
  4946. * unfreeze PMU if had pending overflows
  4947. */
  4948. if (ctx->th_pmcs[0] & ~0x1UL) pfm_unfreeze_pmu();
  4949. /*
  4950. * finally, allow context access.
  4951. * interrupts will still be masked after this call.
  4952. */
  4953. pfm_unprotect_ctx_ctxsw(ctx, flags);
  4954. }
  4955. #else /* !CONFIG_SMP */
  4956. void
  4957. pfm_save_regs(struct task_struct *task)
  4958. {
  4959. pfm_context_t *ctx;
  4960. u64 psr;
  4961. ctx = PFM_GET_CTX(task);
  4962. if (ctx == NULL) return;
  4963. /*
  4964. * save current PSR: needed because we modify it
  4965. */
  4966. psr = pfm_get_psr();
  4967. BUG_ON(psr & (IA64_PSR_I));
  4968. /*
  4969. * stop monitoring:
  4970. * This is the last instruction which may generate an overflow
  4971. *
  4972. * We do not need to set psr.sp because, it is irrelevant in kernel.
  4973. * It will be restored from ipsr when going back to user level
  4974. */
  4975. pfm_clear_psr_up();
  4976. /*
  4977. * keep a copy of psr.up (for reload)
  4978. */
  4979. ctx->ctx_saved_psr_up = psr & IA64_PSR_UP;
  4980. }
  4981. static void
  4982. pfm_lazy_save_regs (struct task_struct *task)
  4983. {
  4984. pfm_context_t *ctx;
  4985. unsigned long flags;
  4986. { u64 psr = pfm_get_psr();
  4987. BUG_ON(psr & IA64_PSR_UP);
  4988. }
  4989. ctx = PFM_GET_CTX(task);
  4990. /*
  4991. * we need to mask PMU overflow here to
  4992. * make sure that we maintain pmc0 until
  4993. * we save it. overflow interrupts are
  4994. * treated as spurious if there is no
  4995. * owner.
  4996. *
  4997. * XXX: I don't think this is necessary
  4998. */
  4999. PROTECT_CTX(ctx,flags);
  5000. /*
  5001. * release ownership of this PMU.
  5002. * must be done before we save the registers.
  5003. *
  5004. * after this call any PMU interrupt is treated
  5005. * as spurious.
  5006. */
  5007. SET_PMU_OWNER(NULL, NULL);
  5008. /*
  5009. * save all the pmds we use
  5010. */
  5011. pfm_save_pmds(ctx->th_pmds, ctx->ctx_used_pmds[0]);
  5012. /*
  5013. * save pmc0 ia64_srlz_d() done in pfm_save_pmds()
  5014. * it is needed to check for pended overflow
  5015. * on the restore path
  5016. */
  5017. ctx->th_pmcs[0] = ia64_get_pmc(0);
  5018. /*
  5019. * unfreeze PMU if had pending overflows
  5020. */
  5021. if (ctx->th_pmcs[0] & ~0x1UL) pfm_unfreeze_pmu();
  5022. /*
  5023. * now get can unmask PMU interrupts, they will
  5024. * be treated as purely spurious and we will not
  5025. * lose any information
  5026. */
  5027. UNPROTECT_CTX(ctx,flags);
  5028. }
  5029. #endif /* CONFIG_SMP */
  5030. #ifdef CONFIG_SMP
  5031. /*
  5032. * in 2.6, interrupts are masked when we come here and the runqueue lock is held
  5033. */
  5034. void
  5035. pfm_load_regs (struct task_struct *task)
  5036. {
  5037. pfm_context_t *ctx;
  5038. unsigned long pmc_mask = 0UL, pmd_mask = 0UL;
  5039. unsigned long flags;
  5040. u64 psr, psr_up;
  5041. int need_irq_resend;
  5042. ctx = PFM_GET_CTX(task);
  5043. if (unlikely(ctx == NULL)) return;
  5044. BUG_ON(GET_PMU_OWNER());
  5045. /*
  5046. * possible on unload
  5047. */
  5048. if (unlikely((task->thread.flags & IA64_THREAD_PM_VALID) == 0)) return;
  5049. /*
  5050. * we always come here with interrupts ALREADY disabled by
  5051. * the scheduler. So we simply need to protect against concurrent
  5052. * access, not CPU concurrency.
  5053. */
  5054. flags = pfm_protect_ctx_ctxsw(ctx);
  5055. psr = pfm_get_psr();
  5056. need_irq_resend = pmu_conf->flags & PFM_PMU_IRQ_RESEND;
  5057. BUG_ON(psr & (IA64_PSR_UP|IA64_PSR_PP));
  5058. BUG_ON(psr & IA64_PSR_I);
  5059. if (unlikely(ctx->ctx_state == PFM_CTX_ZOMBIE)) {
  5060. struct pt_regs *regs = task_pt_regs(task);
  5061. BUG_ON(ctx->ctx_smpl_hdr);
  5062. pfm_force_cleanup(ctx, regs);
  5063. pfm_unprotect_ctx_ctxsw(ctx, flags);
  5064. /*
  5065. * this one (kmalloc'ed) is fine with interrupts disabled
  5066. */
  5067. pfm_context_free(ctx);
  5068. return;
  5069. }
  5070. /*
  5071. * we restore ALL the debug registers to avoid picking up
  5072. * stale state.
  5073. */
  5074. if (ctx->ctx_fl_using_dbreg) {
  5075. pfm_restore_ibrs(ctx->ctx_ibrs, pmu_conf->num_ibrs);
  5076. pfm_restore_dbrs(ctx->ctx_dbrs, pmu_conf->num_dbrs);
  5077. }
  5078. /*
  5079. * retrieve saved psr.up
  5080. */
  5081. psr_up = ctx->ctx_saved_psr_up;
  5082. /*
  5083. * if we were the last user of the PMU on that CPU,
  5084. * then nothing to do except restore psr
  5085. */
  5086. if (GET_LAST_CPU(ctx) == smp_processor_id() && ctx->ctx_last_activation == GET_ACTIVATION()) {
  5087. /*
  5088. * retrieve partial reload masks (due to user modifications)
  5089. */
  5090. pmc_mask = ctx->ctx_reload_pmcs[0];
  5091. pmd_mask = ctx->ctx_reload_pmds[0];
  5092. } else {
  5093. /*
  5094. * To avoid leaking information to the user level when psr.sp=0,
  5095. * we must reload ALL implemented pmds (even the ones we don't use).
  5096. * In the kernel we only allow PFM_READ_PMDS on registers which
  5097. * we initialized or requested (sampling) so there is no risk there.
  5098. */
  5099. pmd_mask = pfm_sysctl.fastctxsw ? ctx->ctx_used_pmds[0] : ctx->ctx_all_pmds[0];
  5100. /*
  5101. * ALL accessible PMCs are systematically reloaded, unused registers
  5102. * get their default (from pfm_reset_pmu_state()) values to avoid picking
  5103. * up stale configuration.
  5104. *
  5105. * PMC0 is never in the mask. It is always restored separately.
  5106. */
  5107. pmc_mask = ctx->ctx_all_pmcs[0];
  5108. }
  5109. /*
  5110. * when context is MASKED, we will restore PMC with plm=0
  5111. * and PMD with stale information, but that's ok, nothing
  5112. * will be captured.
  5113. *
  5114. * XXX: optimize here
  5115. */
  5116. if (pmd_mask) pfm_restore_pmds(ctx->th_pmds, pmd_mask);
  5117. if (pmc_mask) pfm_restore_pmcs(ctx->th_pmcs, pmc_mask);
  5118. /*
  5119. * check for pending overflow at the time the state
  5120. * was saved.
  5121. */
  5122. if (unlikely(PMC0_HAS_OVFL(ctx->th_pmcs[0]))) {
  5123. /*
  5124. * reload pmc0 with the overflow information
  5125. * On McKinley PMU, this will trigger a PMU interrupt
  5126. */
  5127. ia64_set_pmc(0, ctx->th_pmcs[0]);
  5128. ia64_srlz_d();
  5129. ctx->th_pmcs[0] = 0UL;
  5130. /*
  5131. * will replay the PMU interrupt
  5132. */
  5133. if (need_irq_resend) ia64_resend_irq(IA64_PERFMON_VECTOR);
  5134. pfm_stats[smp_processor_id()].pfm_replay_ovfl_intr_count++;
  5135. }
  5136. /*
  5137. * we just did a reload, so we reset the partial reload fields
  5138. */
  5139. ctx->ctx_reload_pmcs[0] = 0UL;
  5140. ctx->ctx_reload_pmds[0] = 0UL;
  5141. SET_LAST_CPU(ctx, smp_processor_id());
  5142. /*
  5143. * dump activation value for this PMU
  5144. */
  5145. INC_ACTIVATION();
  5146. /*
  5147. * record current activation for this context
  5148. */
  5149. SET_ACTIVATION(ctx);
  5150. /*
  5151. * establish new ownership.
  5152. */
  5153. SET_PMU_OWNER(task, ctx);
  5154. /*
  5155. * restore the psr.up bit. measurement
  5156. * is active again.
  5157. * no PMU interrupt can happen at this point
  5158. * because we still have interrupts disabled.
  5159. */
  5160. if (likely(psr_up)) pfm_set_psr_up();
  5161. /*
  5162. * allow concurrent access to context
  5163. */
  5164. pfm_unprotect_ctx_ctxsw(ctx, flags);
  5165. }
  5166. #else /* !CONFIG_SMP */
  5167. /*
  5168. * reload PMU state for UP kernels
  5169. * in 2.5 we come here with interrupts disabled
  5170. */
  5171. void
  5172. pfm_load_regs (struct task_struct *task)
  5173. {
  5174. pfm_context_t *ctx;
  5175. struct task_struct *owner;
  5176. unsigned long pmd_mask, pmc_mask;
  5177. u64 psr, psr_up;
  5178. int need_irq_resend;
  5179. owner = GET_PMU_OWNER();
  5180. ctx = PFM_GET_CTX(task);
  5181. psr = pfm_get_psr();
  5182. BUG_ON(psr & (IA64_PSR_UP|IA64_PSR_PP));
  5183. BUG_ON(psr & IA64_PSR_I);
  5184. /*
  5185. * we restore ALL the debug registers to avoid picking up
  5186. * stale state.
  5187. *
  5188. * This must be done even when the task is still the owner
  5189. * as the registers may have been modified via ptrace()
  5190. * (not perfmon) by the previous task.
  5191. */
  5192. if (ctx->ctx_fl_using_dbreg) {
  5193. pfm_restore_ibrs(ctx->ctx_ibrs, pmu_conf->num_ibrs);
  5194. pfm_restore_dbrs(ctx->ctx_dbrs, pmu_conf->num_dbrs);
  5195. }
  5196. /*
  5197. * retrieved saved psr.up
  5198. */
  5199. psr_up = ctx->ctx_saved_psr_up;
  5200. need_irq_resend = pmu_conf->flags & PFM_PMU_IRQ_RESEND;
  5201. /*
  5202. * short path, our state is still there, just
  5203. * need to restore psr and we go
  5204. *
  5205. * we do not touch either PMC nor PMD. the psr is not touched
  5206. * by the overflow_handler. So we are safe w.r.t. to interrupt
  5207. * concurrency even without interrupt masking.
  5208. */
  5209. if (likely(owner == task)) {
  5210. if (likely(psr_up)) pfm_set_psr_up();
  5211. return;
  5212. }
  5213. /*
  5214. * someone else is still using the PMU, first push it out and
  5215. * then we'll be able to install our stuff !
  5216. *
  5217. * Upon return, there will be no owner for the current PMU
  5218. */
  5219. if (owner) pfm_lazy_save_regs(owner);
  5220. /*
  5221. * To avoid leaking information to the user level when psr.sp=0,
  5222. * we must reload ALL implemented pmds (even the ones we don't use).
  5223. * In the kernel we only allow PFM_READ_PMDS on registers which
  5224. * we initialized or requested (sampling) so there is no risk there.
  5225. */
  5226. pmd_mask = pfm_sysctl.fastctxsw ? ctx->ctx_used_pmds[0] : ctx->ctx_all_pmds[0];
  5227. /*
  5228. * ALL accessible PMCs are systematically reloaded, unused registers
  5229. * get their default (from pfm_reset_pmu_state()) values to avoid picking
  5230. * up stale configuration.
  5231. *
  5232. * PMC0 is never in the mask. It is always restored separately
  5233. */
  5234. pmc_mask = ctx->ctx_all_pmcs[0];
  5235. pfm_restore_pmds(ctx->th_pmds, pmd_mask);
  5236. pfm_restore_pmcs(ctx->th_pmcs, pmc_mask);
  5237. /*
  5238. * check for pending overflow at the time the state
  5239. * was saved.
  5240. */
  5241. if (unlikely(PMC0_HAS_OVFL(ctx->th_pmcs[0]))) {
  5242. /*
  5243. * reload pmc0 with the overflow information
  5244. * On McKinley PMU, this will trigger a PMU interrupt
  5245. */
  5246. ia64_set_pmc(0, ctx->th_pmcs[0]);
  5247. ia64_srlz_d();
  5248. ctx->th_pmcs[0] = 0UL;
  5249. /*
  5250. * will replay the PMU interrupt
  5251. */
  5252. if (need_irq_resend) ia64_resend_irq(IA64_PERFMON_VECTOR);
  5253. pfm_stats[smp_processor_id()].pfm_replay_ovfl_intr_count++;
  5254. }
  5255. /*
  5256. * establish new ownership.
  5257. */
  5258. SET_PMU_OWNER(task, ctx);
  5259. /*
  5260. * restore the psr.up bit. measurement
  5261. * is active again.
  5262. * no PMU interrupt can happen at this point
  5263. * because we still have interrupts disabled.
  5264. */
  5265. if (likely(psr_up)) pfm_set_psr_up();
  5266. }
  5267. #endif /* CONFIG_SMP */
  5268. /*
  5269. * this function assumes monitoring is stopped
  5270. */
  5271. static void
  5272. pfm_flush_pmds(struct task_struct *task, pfm_context_t *ctx)
  5273. {
  5274. u64 pmc0;
  5275. unsigned long mask2, val, pmd_val, ovfl_val;
  5276. int i, can_access_pmu = 0;
  5277. int is_self;
  5278. /*
  5279. * is the caller the task being monitored (or which initiated the
  5280. * session for system wide measurements)
  5281. */
  5282. is_self = ctx->ctx_task == task ? 1 : 0;
  5283. /*
  5284. * can access PMU is task is the owner of the PMU state on the current CPU
  5285. * or if we are running on the CPU bound to the context in system-wide mode
  5286. * (that is not necessarily the task the context is attached to in this mode).
  5287. * In system-wide we always have can_access_pmu true because a task running on an
  5288. * invalid processor is flagged earlier in the call stack (see pfm_stop).
  5289. */
  5290. can_access_pmu = (GET_PMU_OWNER() == task) || (ctx->ctx_fl_system && ctx->ctx_cpu == smp_processor_id());
  5291. if (can_access_pmu) {
  5292. /*
  5293. * Mark the PMU as not owned
  5294. * This will cause the interrupt handler to do nothing in case an overflow
  5295. * interrupt was in-flight
  5296. * This also guarantees that pmc0 will contain the final state
  5297. * It virtually gives us full control on overflow processing from that point
  5298. * on.
  5299. */
  5300. SET_PMU_OWNER(NULL, NULL);
  5301. DPRINT(("releasing ownership\n"));
  5302. /*
  5303. * read current overflow status:
  5304. *
  5305. * we are guaranteed to read the final stable state
  5306. */
  5307. ia64_srlz_d();
  5308. pmc0 = ia64_get_pmc(0); /* slow */
  5309. /*
  5310. * reset freeze bit, overflow status information destroyed
  5311. */
  5312. pfm_unfreeze_pmu();
  5313. } else {
  5314. pmc0 = ctx->th_pmcs[0];
  5315. /*
  5316. * clear whatever overflow status bits there were
  5317. */
  5318. ctx->th_pmcs[0] = 0;
  5319. }
  5320. ovfl_val = pmu_conf->ovfl_val;
  5321. /*
  5322. * we save all the used pmds
  5323. * we take care of overflows for counting PMDs
  5324. *
  5325. * XXX: sampling situation is not taken into account here
  5326. */
  5327. mask2 = ctx->ctx_used_pmds[0];
  5328. DPRINT(("is_self=%d ovfl_val=0x%lx mask2=0x%lx\n", is_self, ovfl_val, mask2));
  5329. for (i = 0; mask2; i++, mask2>>=1) {
  5330. /* skip non used pmds */
  5331. if ((mask2 & 0x1) == 0) continue;
  5332. /*
  5333. * can access PMU always true in system wide mode
  5334. */
  5335. val = pmd_val = can_access_pmu ? ia64_get_pmd(i) : ctx->th_pmds[i];
  5336. if (PMD_IS_COUNTING(i)) {
  5337. DPRINT(("[%d] pmd[%d] ctx_pmd=0x%lx hw_pmd=0x%lx\n",
  5338. task->pid,
  5339. i,
  5340. ctx->ctx_pmds[i].val,
  5341. val & ovfl_val));
  5342. /*
  5343. * we rebuild the full 64 bit value of the counter
  5344. */
  5345. val = ctx->ctx_pmds[i].val + (val & ovfl_val);
  5346. /*
  5347. * now everything is in ctx_pmds[] and we need
  5348. * to clear the saved context from save_regs() such that
  5349. * pfm_read_pmds() gets the correct value
  5350. */
  5351. pmd_val = 0UL;
  5352. /*
  5353. * take care of overflow inline
  5354. */
  5355. if (pmc0 & (1UL << i)) {
  5356. val += 1 + ovfl_val;
  5357. DPRINT(("[%d] pmd[%d] overflowed\n", task->pid, i));
  5358. }
  5359. }
  5360. DPRINT(("[%d] ctx_pmd[%d]=0x%lx pmd_val=0x%lx\n", task->pid, i, val, pmd_val));
  5361. if (is_self) ctx->th_pmds[i] = pmd_val;
  5362. ctx->ctx_pmds[i].val = val;
  5363. }
  5364. }
  5365. static struct irqaction perfmon_irqaction = {
  5366. .handler = pfm_interrupt_handler,
  5367. .flags = IRQF_DISABLED,
  5368. .name = "perfmon"
  5369. };
  5370. static void
  5371. pfm_alt_save_pmu_state(void *data)
  5372. {
  5373. struct pt_regs *regs;
  5374. regs = task_pt_regs(current);
  5375. DPRINT(("called\n"));
  5376. /*
  5377. * should not be necessary but
  5378. * let's take not risk
  5379. */
  5380. pfm_clear_psr_up();
  5381. pfm_clear_psr_pp();
  5382. ia64_psr(regs)->pp = 0;
  5383. /*
  5384. * This call is required
  5385. * May cause a spurious interrupt on some processors
  5386. */
  5387. pfm_freeze_pmu();
  5388. ia64_srlz_d();
  5389. }
  5390. void
  5391. pfm_alt_restore_pmu_state(void *data)
  5392. {
  5393. struct pt_regs *regs;
  5394. regs = task_pt_regs(current);
  5395. DPRINT(("called\n"));
  5396. /*
  5397. * put PMU back in state expected
  5398. * by perfmon
  5399. */
  5400. pfm_clear_psr_up();
  5401. pfm_clear_psr_pp();
  5402. ia64_psr(regs)->pp = 0;
  5403. /*
  5404. * perfmon runs with PMU unfrozen at all times
  5405. */
  5406. pfm_unfreeze_pmu();
  5407. ia64_srlz_d();
  5408. }
  5409. int
  5410. pfm_install_alt_pmu_interrupt(pfm_intr_handler_desc_t *hdl)
  5411. {
  5412. int ret, i;
  5413. int reserve_cpu;
  5414. /* some sanity checks */
  5415. if (hdl == NULL || hdl->handler == NULL) return -EINVAL;
  5416. /* do the easy test first */
  5417. if (pfm_alt_intr_handler) return -EBUSY;
  5418. /* one at a time in the install or remove, just fail the others */
  5419. if (!spin_trylock(&pfm_alt_install_check)) {
  5420. return -EBUSY;
  5421. }
  5422. /* reserve our session */
  5423. for_each_online_cpu(reserve_cpu) {
  5424. ret = pfm_reserve_session(NULL, 1, reserve_cpu);
  5425. if (ret) goto cleanup_reserve;
  5426. }
  5427. /* save the current system wide pmu states */
  5428. ret = on_each_cpu(pfm_alt_save_pmu_state, NULL, 0, 1);
  5429. if (ret) {
  5430. DPRINT(("on_each_cpu() failed: %d\n", ret));
  5431. goto cleanup_reserve;
  5432. }
  5433. /* officially change to the alternate interrupt handler */
  5434. pfm_alt_intr_handler = hdl;
  5435. spin_unlock(&pfm_alt_install_check);
  5436. return 0;
  5437. cleanup_reserve:
  5438. for_each_online_cpu(i) {
  5439. /* don't unreserve more than we reserved */
  5440. if (i >= reserve_cpu) break;
  5441. pfm_unreserve_session(NULL, 1, i);
  5442. }
  5443. spin_unlock(&pfm_alt_install_check);
  5444. return ret;
  5445. }
  5446. EXPORT_SYMBOL_GPL(pfm_install_alt_pmu_interrupt);
  5447. int
  5448. pfm_remove_alt_pmu_interrupt(pfm_intr_handler_desc_t *hdl)
  5449. {
  5450. int i;
  5451. int ret;
  5452. if (hdl == NULL) return -EINVAL;
  5453. /* cannot remove someone else's handler! */
  5454. if (pfm_alt_intr_handler != hdl) return -EINVAL;
  5455. /* one at a time in the install or remove, just fail the others */
  5456. if (!spin_trylock(&pfm_alt_install_check)) {
  5457. return -EBUSY;
  5458. }
  5459. pfm_alt_intr_handler = NULL;
  5460. ret = on_each_cpu(pfm_alt_restore_pmu_state, NULL, 0, 1);
  5461. if (ret) {
  5462. DPRINT(("on_each_cpu() failed: %d\n", ret));
  5463. }
  5464. for_each_online_cpu(i) {
  5465. pfm_unreserve_session(NULL, 1, i);
  5466. }
  5467. spin_unlock(&pfm_alt_install_check);
  5468. return 0;
  5469. }
  5470. EXPORT_SYMBOL_GPL(pfm_remove_alt_pmu_interrupt);
  5471. /*
  5472. * perfmon initialization routine, called from the initcall() table
  5473. */
  5474. static int init_pfm_fs(void);
  5475. static int __init
  5476. pfm_probe_pmu(void)
  5477. {
  5478. pmu_config_t **p;
  5479. int family;
  5480. family = local_cpu_data->family;
  5481. p = pmu_confs;
  5482. while(*p) {
  5483. if ((*p)->probe) {
  5484. if ((*p)->probe() == 0) goto found;
  5485. } else if ((*p)->pmu_family == family || (*p)->pmu_family == 0xff) {
  5486. goto found;
  5487. }
  5488. p++;
  5489. }
  5490. return -1;
  5491. found:
  5492. pmu_conf = *p;
  5493. return 0;
  5494. }
  5495. static struct file_operations pfm_proc_fops = {
  5496. .open = pfm_proc_open,
  5497. .read = seq_read,
  5498. .llseek = seq_lseek,
  5499. .release = seq_release,
  5500. };
  5501. int __init
  5502. pfm_init(void)
  5503. {
  5504. unsigned int n, n_counters, i;
  5505. printk("perfmon: version %u.%u IRQ %u\n",
  5506. PFM_VERSION_MAJ,
  5507. PFM_VERSION_MIN,
  5508. IA64_PERFMON_VECTOR);
  5509. if (pfm_probe_pmu()) {
  5510. printk(KERN_INFO "perfmon: disabled, there is no support for processor family %d\n",
  5511. local_cpu_data->family);
  5512. return -ENODEV;
  5513. }
  5514. /*
  5515. * compute the number of implemented PMD/PMC from the
  5516. * description tables
  5517. */
  5518. n = 0;
  5519. for (i=0; PMC_IS_LAST(i) == 0; i++) {
  5520. if (PMC_IS_IMPL(i) == 0) continue;
  5521. pmu_conf->impl_pmcs[i>>6] |= 1UL << (i&63);
  5522. n++;
  5523. }
  5524. pmu_conf->num_pmcs = n;
  5525. n = 0; n_counters = 0;
  5526. for (i=0; PMD_IS_LAST(i) == 0; i++) {
  5527. if (PMD_IS_IMPL(i) == 0) continue;
  5528. pmu_conf->impl_pmds[i>>6] |= 1UL << (i&63);
  5529. n++;
  5530. if (PMD_IS_COUNTING(i)) n_counters++;
  5531. }
  5532. pmu_conf->num_pmds = n;
  5533. pmu_conf->num_counters = n_counters;
  5534. /*
  5535. * sanity checks on the number of debug registers
  5536. */
  5537. if (pmu_conf->use_rr_dbregs) {
  5538. if (pmu_conf->num_ibrs > IA64_NUM_DBG_REGS) {
  5539. printk(KERN_INFO "perfmon: unsupported number of code debug registers (%u)\n", pmu_conf->num_ibrs);
  5540. pmu_conf = NULL;
  5541. return -1;
  5542. }
  5543. if (pmu_conf->num_dbrs > IA64_NUM_DBG_REGS) {
  5544. printk(KERN_INFO "perfmon: unsupported number of data debug registers (%u)\n", pmu_conf->num_ibrs);
  5545. pmu_conf = NULL;
  5546. return -1;
  5547. }
  5548. }
  5549. printk("perfmon: %s PMU detected, %u PMCs, %u PMDs, %u counters (%lu bits)\n",
  5550. pmu_conf->pmu_name,
  5551. pmu_conf->num_pmcs,
  5552. pmu_conf->num_pmds,
  5553. pmu_conf->num_counters,
  5554. ffz(pmu_conf->ovfl_val));
  5555. /* sanity check */
  5556. if (pmu_conf->num_pmds >= PFM_NUM_PMD_REGS || pmu_conf->num_pmcs >= PFM_NUM_PMC_REGS) {
  5557. printk(KERN_ERR "perfmon: not enough pmc/pmd, perfmon disabled\n");
  5558. pmu_conf = NULL;
  5559. return -1;
  5560. }
  5561. /*
  5562. * create /proc/perfmon (mostly for debugging purposes)
  5563. */
  5564. perfmon_dir = create_proc_entry("perfmon", S_IRUGO, NULL);
  5565. if (perfmon_dir == NULL) {
  5566. printk(KERN_ERR "perfmon: cannot create /proc entry, perfmon disabled\n");
  5567. pmu_conf = NULL;
  5568. return -1;
  5569. }
  5570. /*
  5571. * install customized file operations for /proc/perfmon entry
  5572. */
  5573. perfmon_dir->proc_fops = &pfm_proc_fops;
  5574. /*
  5575. * create /proc/sys/kernel/perfmon (for debugging purposes)
  5576. */
  5577. pfm_sysctl_header = register_sysctl_table(pfm_sysctl_root, 0);
  5578. /*
  5579. * initialize all our spinlocks
  5580. */
  5581. spin_lock_init(&pfm_sessions.pfs_lock);
  5582. spin_lock_init(&pfm_buffer_fmt_lock);
  5583. init_pfm_fs();
  5584. for(i=0; i < NR_CPUS; i++) pfm_stats[i].pfm_ovfl_intr_cycles_min = ~0UL;
  5585. return 0;
  5586. }
  5587. __initcall(pfm_init);
  5588. /*
  5589. * this function is called before pfm_init()
  5590. */
  5591. void
  5592. pfm_init_percpu (void)
  5593. {
  5594. static int first_time=1;
  5595. /*
  5596. * make sure no measurement is active
  5597. * (may inherit programmed PMCs from EFI).
  5598. */
  5599. pfm_clear_psr_pp();
  5600. pfm_clear_psr_up();
  5601. /*
  5602. * we run with the PMU not frozen at all times
  5603. */
  5604. pfm_unfreeze_pmu();
  5605. if (first_time) {
  5606. register_percpu_irq(IA64_PERFMON_VECTOR, &perfmon_irqaction);
  5607. first_time=0;
  5608. }
  5609. ia64_setreg(_IA64_REG_CR_PMV, IA64_PERFMON_VECTOR);
  5610. ia64_srlz_d();
  5611. }
  5612. /*
  5613. * used for debug purposes only
  5614. */
  5615. void
  5616. dump_pmu_state(const char *from)
  5617. {
  5618. struct task_struct *task;
  5619. struct pt_regs *regs;
  5620. pfm_context_t *ctx;
  5621. unsigned long psr, dcr, info, flags;
  5622. int i, this_cpu;
  5623. local_irq_save(flags);
  5624. this_cpu = smp_processor_id();
  5625. regs = task_pt_regs(current);
  5626. info = PFM_CPUINFO_GET();
  5627. dcr = ia64_getreg(_IA64_REG_CR_DCR);
  5628. if (info == 0 && ia64_psr(regs)->pp == 0 && (dcr & IA64_DCR_PP) == 0) {
  5629. local_irq_restore(flags);
  5630. return;
  5631. }
  5632. printk("CPU%d from %s() current [%d] iip=0x%lx %s\n",
  5633. this_cpu,
  5634. from,
  5635. current->pid,
  5636. regs->cr_iip,
  5637. current->comm);
  5638. task = GET_PMU_OWNER();
  5639. ctx = GET_PMU_CTX();
  5640. printk("->CPU%d owner [%d] ctx=%p\n", this_cpu, task ? task->pid : -1, ctx);
  5641. psr = pfm_get_psr();
  5642. printk("->CPU%d pmc0=0x%lx psr.pp=%d psr.up=%d dcr.pp=%d syst_info=0x%lx user_psr.up=%d user_psr.pp=%d\n",
  5643. this_cpu,
  5644. ia64_get_pmc(0),
  5645. psr & IA64_PSR_PP ? 1 : 0,
  5646. psr & IA64_PSR_UP ? 1 : 0,
  5647. dcr & IA64_DCR_PP ? 1 : 0,
  5648. info,
  5649. ia64_psr(regs)->up,
  5650. ia64_psr(regs)->pp);
  5651. ia64_psr(regs)->up = 0;
  5652. ia64_psr(regs)->pp = 0;
  5653. for (i=1; PMC_IS_LAST(i) == 0; i++) {
  5654. if (PMC_IS_IMPL(i) == 0) continue;
  5655. printk("->CPU%d pmc[%d]=0x%lx thread_pmc[%d]=0x%lx\n", this_cpu, i, ia64_get_pmc(i), i, ctx->th_pmcs[i]);
  5656. }
  5657. for (i=1; PMD_IS_LAST(i) == 0; i++) {
  5658. if (PMD_IS_IMPL(i) == 0) continue;
  5659. printk("->CPU%d pmd[%d]=0x%lx thread_pmd[%d]=0x%lx\n", this_cpu, i, ia64_get_pmd(i), i, ctx->th_pmds[i]);
  5660. }
  5661. if (ctx) {
  5662. printk("->CPU%d ctx_state=%d vaddr=%p addr=%p fd=%d ctx_task=[%d] saved_psr_up=0x%lx\n",
  5663. this_cpu,
  5664. ctx->ctx_state,
  5665. ctx->ctx_smpl_vaddr,
  5666. ctx->ctx_smpl_hdr,
  5667. ctx->ctx_msgq_head,
  5668. ctx->ctx_msgq_tail,
  5669. ctx->ctx_saved_psr_up);
  5670. }
  5671. local_irq_restore(flags);
  5672. }
  5673. /*
  5674. * called from process.c:copy_thread(). task is new child.
  5675. */
  5676. void
  5677. pfm_inherit(struct task_struct *task, struct pt_regs *regs)
  5678. {
  5679. struct thread_struct *thread;
  5680. DPRINT(("perfmon: pfm_inherit clearing state for [%d]\n", task->pid));
  5681. thread = &task->thread;
  5682. /*
  5683. * cut links inherited from parent (current)
  5684. */
  5685. thread->pfm_context = NULL;
  5686. PFM_SET_WORK_PENDING(task, 0);
  5687. /*
  5688. * the psr bits are already set properly in copy_threads()
  5689. */
  5690. }
  5691. #else /* !CONFIG_PERFMON */
  5692. asmlinkage long
  5693. sys_perfmonctl (int fd, int cmd, void *arg, int count)
  5694. {
  5695. return -ENOSYS;
  5696. }
  5697. #endif /* CONFIG_PERFMON */