1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Performance event support for s390x - CPU-measurement Counter Facility 4 * 5 * Copyright IBM Corp. 2012, 2023 6 * Author(s): Hendrik Brueckner <brueckner@linux.ibm.com> 7 * Thomas Richter <tmricht@linux.ibm.com> 8 */ 9 #define KMSG_COMPONENT "cpum_cf" 10 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt 11 12 #include <linux/kernel.h> 13 #include <linux/kernel_stat.h> 14 #include <linux/percpu.h> 15 #include <linux/notifier.h> 16 #include <linux/init.h> 17 #include <linux/export.h> 18 #include <linux/miscdevice.h> 19 #include <linux/perf_event.h> 20 21 #include <asm/cpu_mf.h> 22 #include <asm/hwctrset.h> 23 #include <asm/debug.h> 24 25 /* Perf PMU definitions for the counter facility */ 26 #define PERF_CPUM_CF_MAX_CTR 0xffffUL /* Max ctr for ECCTR */ 27 #define PERF_EVENT_CPUM_CF_DIAG 0xBC000UL /* Event: Counter sets */ 28 29 enum cpumf_ctr_set { 30 CPUMF_CTR_SET_BASIC = 0, /* Basic Counter Set */ 31 CPUMF_CTR_SET_USER = 1, /* Problem-State Counter Set */ 32 CPUMF_CTR_SET_CRYPTO = 2, /* Crypto-Activity Counter Set */ 33 CPUMF_CTR_SET_EXT = 3, /* Extended Counter Set */ 34 CPUMF_CTR_SET_MT_DIAG = 4, /* MT-diagnostic Counter Set */ 35 36 /* Maximum number of counter sets */ 37 CPUMF_CTR_SET_MAX, 38 }; 39 40 #define CPUMF_LCCTL_ENABLE_SHIFT 16 41 #define CPUMF_LCCTL_ACTCTL_SHIFT 0 42 43 static inline void ctr_set_enable(u64 *state, u64 ctrsets) 44 { 45 *state |= ctrsets << CPUMF_LCCTL_ENABLE_SHIFT; 46 } 47 48 static inline void ctr_set_disable(u64 *state, u64 ctrsets) 49 { 50 *state &= ~(ctrsets << CPUMF_LCCTL_ENABLE_SHIFT); 51 } 52 53 static inline void ctr_set_start(u64 *state, u64 ctrsets) 54 { 55 *state |= ctrsets << CPUMF_LCCTL_ACTCTL_SHIFT; 56 } 57 58 static inline void ctr_set_stop(u64 *state, u64 ctrsets) 59 { 60 *state &= ~(ctrsets << CPUMF_LCCTL_ACTCTL_SHIFT); 61 } 62 63 static inline int ctr_stcctm(enum cpumf_ctr_set set, u64 range, u64 *dest) 64 { 65 switch (set) { 66 case CPUMF_CTR_SET_BASIC: 67 return stcctm(BASIC, range, dest); 68 case CPUMF_CTR_SET_USER: 69 return stcctm(PROBLEM_STATE, range, dest); 70 case CPUMF_CTR_SET_CRYPTO: 71 return stcctm(CRYPTO_ACTIVITY, range, dest); 72 case CPUMF_CTR_SET_EXT: 73 return stcctm(EXTENDED, range, dest); 74 case CPUMF_CTR_SET_MT_DIAG: 75 return stcctm(MT_DIAG_CLEARING, range, dest); 76 case CPUMF_CTR_SET_MAX: 77 return 3; 78 } 79 return 3; 80 } 81 82 struct cpu_cf_events { 83 refcount_t refcnt; /* Reference count */ 84 atomic_t ctr_set[CPUMF_CTR_SET_MAX]; 85 u64 state; /* For perf_event_open SVC */ 86 u64 dev_state; /* For /dev/hwctr */ 87 unsigned int flags; 88 size_t used; /* Bytes used in data */ 89 size_t usedss; /* Bytes used in start/stop */ 90 unsigned char start[PAGE_SIZE]; /* Counter set at event add */ 91 unsigned char stop[PAGE_SIZE]; /* Counter set at event delete */ 92 unsigned char data[PAGE_SIZE]; /* Counter set at /dev/hwctr */ 93 unsigned int sets; /* # Counter set saved in memory */ 94 }; 95 96 static unsigned int cfdiag_cpu_speed; /* CPU speed for CF_DIAG trailer */ 97 static debug_info_t *cf_dbg; 98 99 /* 100 * The CPU Measurement query counter information instruction contains 101 * information which varies per machine generation, but is constant and 102 * does not change when running on a particular machine, such as counter 103 * first and second version number. This is needed to determine the size 104 * of counter sets. Extract this information at device driver initialization. 105 */ 106 static struct cpumf_ctr_info cpumf_ctr_info; 107 108 struct cpu_cf_ptr { 109 struct cpu_cf_events *cpucf; 110 }; 111 112 static struct cpu_cf_root { /* Anchor to per CPU data */ 113 refcount_t refcnt; /* Overall active events */ 114 struct cpu_cf_ptr __percpu *cfptr; 115 } cpu_cf_root; 116 117 /* 118 * Serialize event initialization and event removal. Both are called from 119 * user space in task context with perf_event_open() and close() 120 * system calls. 121 * 122 * This mutex serializes functions cpum_cf_alloc_cpu() called at event 123 * initialization via cpumf_pmu_event_init() and function cpum_cf_free_cpu() 124 * called at event removal via call back function hw_perf_event_destroy() 125 * when the event is deleted. They are serialized to enforce correct 126 * bookkeeping of pointer and reference counts anchored by 127 * struct cpu_cf_root and the access to cpu_cf_root::refcnt and the 128 * per CPU pointers stored in cpu_cf_root::cfptr. 129 */ 130 static DEFINE_MUTEX(pmc_reserve_mutex); 131 132 /* 133 * Get pointer to per-cpu structure. 134 * 135 * Function get_cpu_cfhw() is called from 136 * - cfset_copy_all(): This function is protected by cpus_read_lock(), so 137 * CPU hot plug remove can not happen. Event removal requires a close() 138 * first. 139 * 140 * Function this_cpu_cfhw() is called from perf common code functions: 141 * - pmu_{en|dis}able(), pmu_{add|del}()and pmu_{start|stop}(): 142 * All functions execute with interrupts disabled on that particular CPU. 143 * - cfset_ioctl_{on|off}, cfset_cpu_read(): see comment cfset_copy_all(). 144 * 145 * Therefore it is safe to access the CPU specific pointer to the event. 146 */ 147 static struct cpu_cf_events *get_cpu_cfhw(int cpu) 148 { 149 struct cpu_cf_ptr __percpu *p = cpu_cf_root.cfptr; 150 151 if (p) { 152 struct cpu_cf_ptr *q = per_cpu_ptr(p, cpu); 153 154 return q->cpucf; 155 } 156 return NULL; 157 } 158 159 static struct cpu_cf_events *this_cpu_cfhw(void) 160 { 161 return get_cpu_cfhw(smp_processor_id()); 162 } 163 164 /* Disable counter sets on dedicated CPU */ 165 static void cpum_cf_reset_cpu(void *flags) 166 { 167 lcctl(0); 168 } 169 170 /* Free per CPU data when the last event is removed. */ 171 static void cpum_cf_free_root(void) 172 { 173 if (!refcount_dec_and_test(&cpu_cf_root.refcnt)) 174 return; 175 free_percpu(cpu_cf_root.cfptr); 176 cpu_cf_root.cfptr = NULL; 177 irq_subclass_unregister(IRQ_SUBCLASS_MEASUREMENT_ALERT); 178 on_each_cpu(cpum_cf_reset_cpu, NULL, 1); 179 debug_sprintf_event(cf_dbg, 4, "%s root.refcnt %u cfptr %d\n", 180 __func__, refcount_read(&cpu_cf_root.refcnt), 181 !cpu_cf_root.cfptr); 182 } 183 184 /* 185 * On initialization of first event also allocate per CPU data dynamically. 186 * Start with an array of pointers, the array size is the maximum number of 187 * CPUs possible, which might be larger than the number of CPUs currently 188 * online. 189 */ 190 static int cpum_cf_alloc_root(void) 191 { 192 int rc = 0; 193 194 if (refcount_inc_not_zero(&cpu_cf_root.refcnt)) 195 return rc; 196 197 /* The memory is already zeroed. */ 198 cpu_cf_root.cfptr = alloc_percpu(struct cpu_cf_ptr); 199 if (cpu_cf_root.cfptr) { 200 refcount_set(&cpu_cf_root.refcnt, 1); 201 on_each_cpu(cpum_cf_reset_cpu, NULL, 1); 202 irq_subclass_register(IRQ_SUBCLASS_MEASUREMENT_ALERT); 203 } else { 204 rc = -ENOMEM; 205 } 206 207 return rc; 208 } 209 210 /* Free CPU counter data structure for a PMU */ 211 static void cpum_cf_free_cpu(int cpu) 212 { 213 struct cpu_cf_events *cpuhw; 214 struct cpu_cf_ptr *p; 215 216 mutex_lock(&pmc_reserve_mutex); 217 /* 218 * When invoked via CPU hotplug handler, there might be no events 219 * installed or that particular CPU might not have an 220 * event installed. This anchor pointer can be NULL! 221 */ 222 if (!cpu_cf_root.cfptr) 223 goto out; 224 p = per_cpu_ptr(cpu_cf_root.cfptr, cpu); 225 cpuhw = p->cpucf; 226 /* 227 * Might be zero when called from CPU hotplug handler and no event 228 * installed on that CPU, but on different CPUs. 229 */ 230 if (!cpuhw) 231 goto out; 232 233 if (refcount_dec_and_test(&cpuhw->refcnt)) { 234 kfree(cpuhw); 235 p->cpucf = NULL; 236 } 237 cpum_cf_free_root(); 238 out: 239 mutex_unlock(&pmc_reserve_mutex); 240 } 241 242 /* Allocate CPU counter data structure for a PMU. Called under mutex lock. */ 243 static int cpum_cf_alloc_cpu(int cpu) 244 { 245 struct cpu_cf_events *cpuhw; 246 struct cpu_cf_ptr *p; 247 int rc; 248 249 mutex_lock(&pmc_reserve_mutex); 250 rc = cpum_cf_alloc_root(); 251 if (rc) 252 goto unlock; 253 p = per_cpu_ptr(cpu_cf_root.cfptr, cpu); 254 cpuhw = p->cpucf; 255 256 if (!cpuhw) { 257 cpuhw = kzalloc(sizeof(*cpuhw), GFP_KERNEL); 258 if (cpuhw) { 259 p->cpucf = cpuhw; 260 refcount_set(&cpuhw->refcnt, 1); 261 } else { 262 rc = -ENOMEM; 263 } 264 } else { 265 refcount_inc(&cpuhw->refcnt); 266 } 267 if (rc) { 268 /* 269 * Error in allocation of event, decrement anchor. Since 270 * cpu_cf_event in not created, its destroy() function is not 271 * invoked. Adjust the reference counter for the anchor. 272 */ 273 cpum_cf_free_root(); 274 } 275 unlock: 276 mutex_unlock(&pmc_reserve_mutex); 277 return rc; 278 } 279 280 /* 281 * Create/delete per CPU data structures for /dev/hwctr interface and events 282 * created by perf_event_open(). 283 * If cpu is -1, track task on all available CPUs. This requires 284 * allocation of hardware data structures for all CPUs. This setup handles 285 * perf_event_open() with task context and /dev/hwctr interface. 286 * If cpu is non-zero install event on this CPU only. This setup handles 287 * perf_event_open() with CPU context. 288 */ 289 static int cpum_cf_alloc(int cpu) 290 { 291 cpumask_var_t mask; 292 int rc; 293 294 if (cpu == -1) { 295 if (!zalloc_cpumask_var(&mask, GFP_KERNEL)) 296 return -ENOMEM; 297 for_each_online_cpu(cpu) { 298 rc = cpum_cf_alloc_cpu(cpu); 299 if (rc) { 300 for_each_cpu(cpu, mask) 301 cpum_cf_free_cpu(cpu); 302 break; 303 } 304 cpumask_set_cpu(cpu, mask); 305 } 306 free_cpumask_var(mask); 307 } else { 308 rc = cpum_cf_alloc_cpu(cpu); 309 } 310 return rc; 311 } 312 313 static void cpum_cf_free(int cpu) 314 { 315 if (cpu == -1) { 316 for_each_online_cpu(cpu) 317 cpum_cf_free_cpu(cpu); 318 } else { 319 cpum_cf_free_cpu(cpu); 320 } 321 } 322 323 #define CF_DIAG_CTRSET_DEF 0xfeef /* Counter set header mark */ 324 /* interval in seconds */ 325 326 /* Counter sets are stored as data stream in a page sized memory buffer and 327 * exported to user space via raw data attached to the event sample data. 328 * Each counter set starts with an eight byte header consisting of: 329 * - a two byte eye catcher (0xfeef) 330 * - a one byte counter set number 331 * - a two byte counter set size (indicates the number of counters in this set) 332 * - a three byte reserved value (must be zero) to make the header the same 333 * size as a counter value. 334 * All counter values are eight byte in size. 335 * 336 * All counter sets are followed by a 64 byte trailer. 337 * The trailer consists of a: 338 * - flag field indicating valid fields when corresponding bit set 339 * - the counter facility first and second version number 340 * - the CPU speed if nonzero 341 * - the time stamp the counter sets have been collected 342 * - the time of day (TOD) base value 343 * - the machine type. 344 * 345 * The counter sets are saved when the process is prepared to be executed on a 346 * CPU and saved again when the process is going to be removed from a CPU. 347 * The difference of both counter sets are calculated and stored in the event 348 * sample data area. 349 */ 350 struct cf_ctrset_entry { /* CPU-M CF counter set entry (8 byte) */ 351 unsigned int def:16; /* 0-15 Data Entry Format */ 352 unsigned int set:16; /* 16-31 Counter set identifier */ 353 unsigned int ctr:16; /* 32-47 Number of stored counters */ 354 unsigned int res1:16; /* 48-63 Reserved */ 355 }; 356 357 struct cf_trailer_entry { /* CPU-M CF_DIAG trailer (64 byte) */ 358 /* 0 - 7 */ 359 union { 360 struct { 361 unsigned int clock_base:1; /* TOD clock base set */ 362 unsigned int speed:1; /* CPU speed set */ 363 /* Measurement alerts */ 364 unsigned int mtda:1; /* Loss of MT ctr. data alert */ 365 unsigned int caca:1; /* Counter auth. change alert */ 366 unsigned int lcda:1; /* Loss of counter data alert */ 367 }; 368 unsigned long flags; /* 0-63 All indicators */ 369 }; 370 /* 8 - 15 */ 371 unsigned int cfvn:16; /* 64-79 Ctr First Version */ 372 unsigned int csvn:16; /* 80-95 Ctr Second Version */ 373 unsigned int cpu_speed:32; /* 96-127 CPU speed */ 374 /* 16 - 23 */ 375 unsigned long timestamp; /* 128-191 Timestamp (TOD) */ 376 /* 24 - 55 */ 377 union { 378 struct { 379 unsigned long progusage1; 380 unsigned long progusage2; 381 unsigned long progusage3; 382 unsigned long tod_base; 383 }; 384 unsigned long progusage[4]; 385 }; 386 /* 56 - 63 */ 387 unsigned int mach_type:16; /* Machine type */ 388 unsigned int res1:16; /* Reserved */ 389 unsigned int res2:32; /* Reserved */ 390 }; 391 392 /* Create the trailer data at the end of a page. */ 393 static void cfdiag_trailer(struct cf_trailer_entry *te) 394 { 395 struct cpuid cpuid; 396 397 te->cfvn = cpumf_ctr_info.cfvn; /* Counter version numbers */ 398 te->csvn = cpumf_ctr_info.csvn; 399 400 get_cpu_id(&cpuid); /* Machine type */ 401 te->mach_type = cpuid.machine; 402 te->cpu_speed = cfdiag_cpu_speed; 403 if (te->cpu_speed) 404 te->speed = 1; 405 te->clock_base = 1; /* Save clock base */ 406 te->tod_base = tod_clock_base.tod; 407 te->timestamp = get_tod_clock_fast(); 408 } 409 410 /* 411 * The number of counters per counter set varies between machine generations, 412 * but is constant when running on a particular machine generation. 413 * Determine each counter set size at device driver initialization and 414 * retrieve it later. 415 */ 416 static size_t cpumf_ctr_setsizes[CPUMF_CTR_SET_MAX]; 417 static void cpum_cf_make_setsize(enum cpumf_ctr_set ctrset) 418 { 419 size_t ctrset_size = 0; 420 421 switch (ctrset) { 422 case CPUMF_CTR_SET_BASIC: 423 if (cpumf_ctr_info.cfvn >= 1) 424 ctrset_size = 6; 425 break; 426 case CPUMF_CTR_SET_USER: 427 if (cpumf_ctr_info.cfvn == 1) 428 ctrset_size = 6; 429 else if (cpumf_ctr_info.cfvn >= 3) 430 ctrset_size = 2; 431 break; 432 case CPUMF_CTR_SET_CRYPTO: 433 if (cpumf_ctr_info.csvn >= 1 && cpumf_ctr_info.csvn <= 5) 434 ctrset_size = 16; 435 else if (cpumf_ctr_info.csvn >= 6) 436 ctrset_size = 20; 437 break; 438 case CPUMF_CTR_SET_EXT: 439 if (cpumf_ctr_info.csvn == 1) 440 ctrset_size = 32; 441 else if (cpumf_ctr_info.csvn == 2) 442 ctrset_size = 48; 443 else if (cpumf_ctr_info.csvn >= 3 && cpumf_ctr_info.csvn <= 5) 444 ctrset_size = 128; 445 else if (cpumf_ctr_info.csvn >= 6 && cpumf_ctr_info.csvn <= 8) 446 ctrset_size = 160; 447 break; 448 case CPUMF_CTR_SET_MT_DIAG: 449 if (cpumf_ctr_info.csvn > 3) 450 ctrset_size = 48; 451 break; 452 case CPUMF_CTR_SET_MAX: 453 break; 454 } 455 cpumf_ctr_setsizes[ctrset] = ctrset_size; 456 } 457 458 /* 459 * Return the maximum possible counter set size (in number of 8 byte counters) 460 * depending on type and model number. 461 */ 462 static size_t cpum_cf_read_setsize(enum cpumf_ctr_set ctrset) 463 { 464 return cpumf_ctr_setsizes[ctrset]; 465 } 466 467 /* Read a counter set. The counter set number determines the counter set and 468 * the CPUM-CF first and second version number determine the number of 469 * available counters in each counter set. 470 * Each counter set starts with header containing the counter set number and 471 * the number of eight byte counters. 472 * 473 * The functions returns the number of bytes occupied by this counter set 474 * including the header. 475 * If there is no counter in the counter set, this counter set is useless and 476 * zero is returned on this case. 477 * 478 * Note that the counter sets may not be enabled or active and the stcctm 479 * instruction might return error 3. Depending on error_ok value this is ok, 480 * for example when called from cpumf_pmu_start() call back function. 481 */ 482 static size_t cfdiag_getctrset(struct cf_ctrset_entry *ctrdata, int ctrset, 483 size_t room, bool error_ok) 484 { 485 size_t ctrset_size, need = 0; 486 int rc = 3; /* Assume write failure */ 487 488 ctrdata->def = CF_DIAG_CTRSET_DEF; 489 ctrdata->set = ctrset; 490 ctrdata->res1 = 0; 491 ctrset_size = cpum_cf_read_setsize(ctrset); 492 493 if (ctrset_size) { /* Save data */ 494 need = ctrset_size * sizeof(u64) + sizeof(*ctrdata); 495 if (need <= room) { 496 rc = ctr_stcctm(ctrset, ctrset_size, 497 (u64 *)(ctrdata + 1)); 498 } 499 if (rc != 3 || error_ok) 500 ctrdata->ctr = ctrset_size; 501 else 502 need = 0; 503 } 504 505 return need; 506 } 507 508 static const u64 cpumf_ctr_ctl[CPUMF_CTR_SET_MAX] = { 509 [CPUMF_CTR_SET_BASIC] = 0x02, 510 [CPUMF_CTR_SET_USER] = 0x04, 511 [CPUMF_CTR_SET_CRYPTO] = 0x08, 512 [CPUMF_CTR_SET_EXT] = 0x01, 513 [CPUMF_CTR_SET_MT_DIAG] = 0x20, 514 }; 515 516 /* Read out all counter sets and save them in the provided data buffer. 517 * The last 64 byte host an artificial trailer entry. 518 */ 519 static size_t cfdiag_getctr(void *data, size_t sz, unsigned long auth, 520 bool error_ok) 521 { 522 struct cf_trailer_entry *trailer; 523 size_t offset = 0, done; 524 int i; 525 526 memset(data, 0, sz); 527 sz -= sizeof(*trailer); /* Always room for trailer */ 528 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) { 529 struct cf_ctrset_entry *ctrdata = data + offset; 530 531 if (!(auth & cpumf_ctr_ctl[i])) 532 continue; /* Counter set not authorized */ 533 534 done = cfdiag_getctrset(ctrdata, i, sz - offset, error_ok); 535 offset += done; 536 } 537 trailer = data + offset; 538 cfdiag_trailer(trailer); 539 return offset + sizeof(*trailer); 540 } 541 542 /* Calculate the difference for each counter in a counter set. */ 543 static void cfdiag_diffctrset(u64 *pstart, u64 *pstop, int counters) 544 { 545 for (; --counters >= 0; ++pstart, ++pstop) 546 if (*pstop >= *pstart) 547 *pstop -= *pstart; 548 else 549 *pstop = *pstart - *pstop + 1; 550 } 551 552 /* Scan the counter sets and calculate the difference of each counter 553 * in each set. The result is the increment of each counter during the 554 * period the counter set has been activated. 555 * 556 * Return true on success. 557 */ 558 static int cfdiag_diffctr(struct cpu_cf_events *cpuhw, unsigned long auth) 559 { 560 struct cf_trailer_entry *trailer_start, *trailer_stop; 561 struct cf_ctrset_entry *ctrstart, *ctrstop; 562 size_t offset = 0; 563 int i; 564 565 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) { 566 ctrstart = (struct cf_ctrset_entry *)(cpuhw->start + offset); 567 ctrstop = (struct cf_ctrset_entry *)(cpuhw->stop + offset); 568 569 /* Counter set not authorized */ 570 if (!(auth & cpumf_ctr_ctl[i])) 571 continue; 572 /* Counter set size zero was not saved */ 573 if (!cpum_cf_read_setsize(i)) 574 continue; 575 576 if (memcmp(ctrstop, ctrstart, sizeof(*ctrstop))) { 577 pr_err_once("cpum_cf_diag counter set compare error " 578 "in set %i\n", ctrstart->set); 579 return 0; 580 } 581 if (ctrstart->def == CF_DIAG_CTRSET_DEF) { 582 cfdiag_diffctrset((u64 *)(ctrstart + 1), 583 (u64 *)(ctrstop + 1), ctrstart->ctr); 584 offset += ctrstart->ctr * sizeof(u64) + 585 sizeof(*ctrstart); 586 } 587 } 588 589 /* Save time_stamp from start of event in stop's trailer */ 590 trailer_start = (struct cf_trailer_entry *)(cpuhw->start + offset); 591 trailer_stop = (struct cf_trailer_entry *)(cpuhw->stop + offset); 592 trailer_stop->progusage[0] = trailer_start->timestamp; 593 594 return 1; 595 } 596 597 static enum cpumf_ctr_set get_counter_set(u64 event) 598 { 599 int set = CPUMF_CTR_SET_MAX; 600 601 if (event < 32) 602 set = CPUMF_CTR_SET_BASIC; 603 else if (event < 64) 604 set = CPUMF_CTR_SET_USER; 605 else if (event < 128) 606 set = CPUMF_CTR_SET_CRYPTO; 607 else if (event < 288) 608 set = CPUMF_CTR_SET_EXT; 609 else if (event >= 448 && event < 496) 610 set = CPUMF_CTR_SET_MT_DIAG; 611 612 return set; 613 } 614 615 static int validate_ctr_version(const u64 config, enum cpumf_ctr_set set) 616 { 617 u16 mtdiag_ctl; 618 int err = 0; 619 620 /* check required version for counter sets */ 621 switch (set) { 622 case CPUMF_CTR_SET_BASIC: 623 case CPUMF_CTR_SET_USER: 624 if (cpumf_ctr_info.cfvn < 1) 625 err = -EOPNOTSUPP; 626 break; 627 case CPUMF_CTR_SET_CRYPTO: 628 if ((cpumf_ctr_info.csvn >= 1 && cpumf_ctr_info.csvn <= 5 && 629 config > 79) || (cpumf_ctr_info.csvn >= 6 && config > 83)) 630 err = -EOPNOTSUPP; 631 break; 632 case CPUMF_CTR_SET_EXT: 633 if (cpumf_ctr_info.csvn < 1) 634 err = -EOPNOTSUPP; 635 if ((cpumf_ctr_info.csvn == 1 && config > 159) || 636 (cpumf_ctr_info.csvn == 2 && config > 175) || 637 (cpumf_ctr_info.csvn >= 3 && cpumf_ctr_info.csvn <= 5 && 638 config > 255) || 639 (cpumf_ctr_info.csvn >= 6 && config > 287)) 640 err = -EOPNOTSUPP; 641 break; 642 case CPUMF_CTR_SET_MT_DIAG: 643 if (cpumf_ctr_info.csvn <= 3) 644 err = -EOPNOTSUPP; 645 /* 646 * MT-diagnostic counters are read-only. The counter set 647 * is automatically enabled and activated on all CPUs with 648 * multithreading (SMT). Deactivation of multithreading 649 * also disables the counter set. State changes are ignored 650 * by lcctl(). Because Linux controls SMT enablement through 651 * a kernel parameter only, the counter set is either disabled 652 * or enabled and active. 653 * 654 * Thus, the counters can only be used if SMT is on and the 655 * counter set is enabled and active. 656 */ 657 mtdiag_ctl = cpumf_ctr_ctl[CPUMF_CTR_SET_MT_DIAG]; 658 if (!((cpumf_ctr_info.auth_ctl & mtdiag_ctl) && 659 (cpumf_ctr_info.enable_ctl & mtdiag_ctl) && 660 (cpumf_ctr_info.act_ctl & mtdiag_ctl))) 661 err = -EOPNOTSUPP; 662 break; 663 case CPUMF_CTR_SET_MAX: 664 err = -EOPNOTSUPP; 665 } 666 667 return err; 668 } 669 670 /* 671 * Change the CPUMF state to active. 672 * Enable and activate the CPU-counter sets according 673 * to the per-cpu control state. 674 */ 675 static void cpumf_pmu_enable(struct pmu *pmu) 676 { 677 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 678 int err; 679 680 if (!cpuhw || (cpuhw->flags & PMU_F_ENABLED)) 681 return; 682 683 err = lcctl(cpuhw->state | cpuhw->dev_state); 684 if (err) 685 pr_err("Enabling the performance measuring unit failed with rc=%x\n", err); 686 else 687 cpuhw->flags |= PMU_F_ENABLED; 688 } 689 690 /* 691 * Change the CPUMF state to inactive. 692 * Disable and enable (inactive) the CPU-counter sets according 693 * to the per-cpu control state. 694 */ 695 static void cpumf_pmu_disable(struct pmu *pmu) 696 { 697 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 698 u64 inactive; 699 int err; 700 701 if (!cpuhw || !(cpuhw->flags & PMU_F_ENABLED)) 702 return; 703 704 inactive = cpuhw->state & ~((1 << CPUMF_LCCTL_ENABLE_SHIFT) - 1); 705 inactive |= cpuhw->dev_state; 706 err = lcctl(inactive); 707 if (err) 708 pr_err("Disabling the performance measuring unit failed with rc=%x\n", err); 709 else 710 cpuhw->flags &= ~PMU_F_ENABLED; 711 } 712 713 /* Release the PMU if event is the last perf event */ 714 static void hw_perf_event_destroy(struct perf_event *event) 715 { 716 cpum_cf_free(event->cpu); 717 } 718 719 /* CPUMF <-> perf event mappings for kernel+userspace (basic set) */ 720 static const int cpumf_generic_events_basic[] = { 721 [PERF_COUNT_HW_CPU_CYCLES] = 0, 722 [PERF_COUNT_HW_INSTRUCTIONS] = 1, 723 [PERF_COUNT_HW_CACHE_REFERENCES] = -1, 724 [PERF_COUNT_HW_CACHE_MISSES] = -1, 725 [PERF_COUNT_HW_BRANCH_INSTRUCTIONS] = -1, 726 [PERF_COUNT_HW_BRANCH_MISSES] = -1, 727 [PERF_COUNT_HW_BUS_CYCLES] = -1, 728 }; 729 /* CPUMF <-> perf event mappings for userspace (problem-state set) */ 730 static const int cpumf_generic_events_user[] = { 731 [PERF_COUNT_HW_CPU_CYCLES] = 32, 732 [PERF_COUNT_HW_INSTRUCTIONS] = 33, 733 [PERF_COUNT_HW_CACHE_REFERENCES] = -1, 734 [PERF_COUNT_HW_CACHE_MISSES] = -1, 735 [PERF_COUNT_HW_BRANCH_INSTRUCTIONS] = -1, 736 [PERF_COUNT_HW_BRANCH_MISSES] = -1, 737 [PERF_COUNT_HW_BUS_CYCLES] = -1, 738 }; 739 740 static int is_userspace_event(u64 ev) 741 { 742 return cpumf_generic_events_user[PERF_COUNT_HW_CPU_CYCLES] == ev || 743 cpumf_generic_events_user[PERF_COUNT_HW_INSTRUCTIONS] == ev; 744 } 745 746 static int __hw_perf_event_init(struct perf_event *event, unsigned int type) 747 { 748 struct perf_event_attr *attr = &event->attr; 749 struct hw_perf_event *hwc = &event->hw; 750 enum cpumf_ctr_set set; 751 u64 ev; 752 753 switch (type) { 754 case PERF_TYPE_RAW: 755 /* Raw events are used to access counters directly, 756 * hence do not permit excludes */ 757 if (attr->exclude_kernel || attr->exclude_user || 758 attr->exclude_hv) 759 return -EOPNOTSUPP; 760 ev = attr->config; 761 break; 762 763 case PERF_TYPE_HARDWARE: 764 if (is_sampling_event(event)) /* No sampling support */ 765 return -ENOENT; 766 ev = attr->config; 767 if (!attr->exclude_user && attr->exclude_kernel) { 768 /* 769 * Count user space (problem-state) only 770 * Handle events 32 and 33 as 0:u and 1:u 771 */ 772 if (!is_userspace_event(ev)) { 773 if (ev >= ARRAY_SIZE(cpumf_generic_events_user)) 774 return -EOPNOTSUPP; 775 ev = cpumf_generic_events_user[ev]; 776 } 777 } else if (!attr->exclude_kernel && attr->exclude_user) { 778 /* No support for kernel space counters only */ 779 return -EOPNOTSUPP; 780 } else { 781 /* Count user and kernel space, incl. events 32 + 33 */ 782 if (!is_userspace_event(ev)) { 783 if (ev >= ARRAY_SIZE(cpumf_generic_events_basic)) 784 return -EOPNOTSUPP; 785 ev = cpumf_generic_events_basic[ev]; 786 } 787 } 788 break; 789 790 default: 791 return -ENOENT; 792 } 793 794 if (ev == -1) 795 return -ENOENT; 796 797 if (ev > PERF_CPUM_CF_MAX_CTR) 798 return -ENOENT; 799 800 /* Obtain the counter set to which the specified counter belongs */ 801 set = get_counter_set(ev); 802 switch (set) { 803 case CPUMF_CTR_SET_BASIC: 804 case CPUMF_CTR_SET_USER: 805 case CPUMF_CTR_SET_CRYPTO: 806 case CPUMF_CTR_SET_EXT: 807 case CPUMF_CTR_SET_MT_DIAG: 808 /* 809 * Use the hardware perf event structure to store the 810 * counter number in the 'config' member and the counter 811 * set number in the 'config_base' as bit mask. 812 * It is later used to enable/disable the counter(s). 813 */ 814 hwc->config = ev; 815 hwc->config_base = cpumf_ctr_ctl[set]; 816 break; 817 case CPUMF_CTR_SET_MAX: 818 /* The counter could not be associated to a counter set */ 819 return -EINVAL; 820 } 821 822 /* Initialize for using the CPU-measurement counter facility */ 823 if (cpum_cf_alloc(event->cpu)) 824 return -ENOMEM; 825 event->destroy = hw_perf_event_destroy; 826 827 /* 828 * Finally, validate version and authorization of the counter set. 829 * If the particular CPU counter set is not authorized, 830 * return with -ENOENT in order to fall back to other 831 * PMUs that might suffice the event request. 832 */ 833 if (!(hwc->config_base & cpumf_ctr_info.auth_ctl)) 834 return -ENOENT; 835 return validate_ctr_version(hwc->config, set); 836 } 837 838 /* Events CPU_CYCLES and INSTRUCTIONS can be submitted with two different 839 * attribute::type values: 840 * - PERF_TYPE_HARDWARE: 841 * - pmu->type: 842 * Handle both type of invocations identical. They address the same hardware. 843 * The result is different when event modifiers exclude_kernel and/or 844 * exclude_user are also set. 845 */ 846 static int cpumf_pmu_event_type(struct perf_event *event) 847 { 848 u64 ev = event->attr.config; 849 850 if (cpumf_generic_events_basic[PERF_COUNT_HW_CPU_CYCLES] == ev || 851 cpumf_generic_events_basic[PERF_COUNT_HW_INSTRUCTIONS] == ev || 852 cpumf_generic_events_user[PERF_COUNT_HW_CPU_CYCLES] == ev || 853 cpumf_generic_events_user[PERF_COUNT_HW_INSTRUCTIONS] == ev) 854 return PERF_TYPE_HARDWARE; 855 return PERF_TYPE_RAW; 856 } 857 858 static int cpumf_pmu_event_init(struct perf_event *event) 859 { 860 unsigned int type = event->attr.type; 861 int err = -ENOENT; 862 863 if (type == PERF_TYPE_HARDWARE || type == PERF_TYPE_RAW) 864 err = __hw_perf_event_init(event, type); 865 else if (event->pmu->type == type) 866 /* Registered as unknown PMU */ 867 err = __hw_perf_event_init(event, cpumf_pmu_event_type(event)); 868 869 return err; 870 } 871 872 static int hw_perf_event_reset(struct perf_event *event) 873 { 874 u64 prev, new; 875 int err; 876 877 prev = local64_read(&event->hw.prev_count); 878 do { 879 err = ecctr(event->hw.config, &new); 880 if (err) { 881 if (err != 3) 882 break; 883 /* The counter is not (yet) available. This 884 * might happen if the counter set to which 885 * this counter belongs is in the disabled 886 * state. 887 */ 888 new = 0; 889 } 890 } while (!local64_try_cmpxchg(&event->hw.prev_count, &prev, new)); 891 892 return err; 893 } 894 895 static void hw_perf_event_update(struct perf_event *event) 896 { 897 u64 prev, new, delta; 898 int err; 899 900 prev = local64_read(&event->hw.prev_count); 901 do { 902 err = ecctr(event->hw.config, &new); 903 if (err) 904 return; 905 } while (!local64_try_cmpxchg(&event->hw.prev_count, &prev, new)); 906 907 delta = (prev <= new) ? new - prev 908 : (-1ULL - prev) + new + 1; /* overflow */ 909 local64_add(delta, &event->count); 910 } 911 912 static void cpumf_pmu_read(struct perf_event *event) 913 { 914 if (event->hw.state & PERF_HES_STOPPED) 915 return; 916 917 hw_perf_event_update(event); 918 } 919 920 static void cpumf_pmu_start(struct perf_event *event, int flags) 921 { 922 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 923 struct hw_perf_event *hwc = &event->hw; 924 int i; 925 926 if (!(hwc->state & PERF_HES_STOPPED)) 927 return; 928 929 hwc->state = 0; 930 931 /* (Re-)enable and activate the counter set */ 932 ctr_set_enable(&cpuhw->state, hwc->config_base); 933 ctr_set_start(&cpuhw->state, hwc->config_base); 934 935 /* The counter set to which this counter belongs can be already active. 936 * Because all counters in a set are active, the event->hw.prev_count 937 * needs to be synchronized. At this point, the counter set can be in 938 * the inactive or disabled state. 939 */ 940 if (hwc->config == PERF_EVENT_CPUM_CF_DIAG) { 941 cpuhw->usedss = cfdiag_getctr(cpuhw->start, 942 sizeof(cpuhw->start), 943 hwc->config_base, true); 944 } else { 945 hw_perf_event_reset(event); 946 } 947 948 /* Increment refcount for counter sets */ 949 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) 950 if ((hwc->config_base & cpumf_ctr_ctl[i])) 951 atomic_inc(&cpuhw->ctr_set[i]); 952 } 953 954 /* Create perf event sample with the counter sets as raw data. The sample 955 * is then pushed to the event subsystem and the function checks for 956 * possible event overflows. If an event overflow occurs, the PMU is 957 * stopped. 958 * 959 * Return non-zero if an event overflow occurred. 960 */ 961 static int cfdiag_push_sample(struct perf_event *event, 962 struct cpu_cf_events *cpuhw) 963 { 964 struct perf_sample_data data; 965 struct perf_raw_record raw; 966 struct pt_regs regs; 967 int overflow; 968 969 /* Setup perf sample */ 970 perf_sample_data_init(&data, 0, event->hw.last_period); 971 memset(®s, 0, sizeof(regs)); 972 memset(&raw, 0, sizeof(raw)); 973 974 if (event->attr.sample_type & PERF_SAMPLE_CPU) 975 data.cpu_entry.cpu = event->cpu; 976 if (event->attr.sample_type & PERF_SAMPLE_RAW) { 977 raw.frag.size = cpuhw->usedss; 978 raw.frag.data = cpuhw->stop; 979 perf_sample_save_raw_data(&data, event, &raw); 980 } 981 982 overflow = perf_event_overflow(event, &data, ®s); 983 984 perf_event_update_userpage(event); 985 return overflow; 986 } 987 988 static void cpumf_pmu_stop(struct perf_event *event, int flags) 989 { 990 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 991 struct hw_perf_event *hwc = &event->hw; 992 int i; 993 994 if (!(hwc->state & PERF_HES_STOPPED)) { 995 /* Decrement reference count for this counter set and if this 996 * is the last used counter in the set, clear activation 997 * control and set the counter set state to inactive. 998 */ 999 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) { 1000 if (!(hwc->config_base & cpumf_ctr_ctl[i])) 1001 continue; 1002 if (!atomic_dec_return(&cpuhw->ctr_set[i])) 1003 ctr_set_stop(&cpuhw->state, cpumf_ctr_ctl[i]); 1004 } 1005 hwc->state |= PERF_HES_STOPPED; 1006 } 1007 1008 if ((flags & PERF_EF_UPDATE) && !(hwc->state & PERF_HES_UPTODATE)) { 1009 if (hwc->config == PERF_EVENT_CPUM_CF_DIAG) { 1010 local64_inc(&event->count); 1011 cpuhw->usedss = cfdiag_getctr(cpuhw->stop, 1012 sizeof(cpuhw->stop), 1013 event->hw.config_base, 1014 false); 1015 if (cfdiag_diffctr(cpuhw, event->hw.config_base)) 1016 cfdiag_push_sample(event, cpuhw); 1017 } else { 1018 hw_perf_event_update(event); 1019 } 1020 hwc->state |= PERF_HES_UPTODATE; 1021 } 1022 } 1023 1024 static int cpumf_pmu_add(struct perf_event *event, int flags) 1025 { 1026 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 1027 1028 ctr_set_enable(&cpuhw->state, event->hw.config_base); 1029 event->hw.state = PERF_HES_UPTODATE | PERF_HES_STOPPED; 1030 1031 if (flags & PERF_EF_START) 1032 cpumf_pmu_start(event, PERF_EF_RELOAD); 1033 1034 return 0; 1035 } 1036 1037 static void cpumf_pmu_del(struct perf_event *event, int flags) 1038 { 1039 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 1040 int i; 1041 1042 cpumf_pmu_stop(event, PERF_EF_UPDATE); 1043 1044 /* Check if any counter in the counter set is still used. If not used, 1045 * change the counter set to the disabled state. This also clears the 1046 * content of all counters in the set. 1047 * 1048 * When a new perf event has been added but not yet started, this can 1049 * clear enable control and resets all counters in a set. Therefore, 1050 * cpumf_pmu_start() always has to re-enable a counter set. 1051 */ 1052 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) 1053 if (!atomic_read(&cpuhw->ctr_set[i])) 1054 ctr_set_disable(&cpuhw->state, cpumf_ctr_ctl[i]); 1055 } 1056 1057 /* Performance monitoring unit for s390x */ 1058 static struct pmu cpumf_pmu = { 1059 .task_ctx_nr = perf_sw_context, 1060 .capabilities = PERF_PMU_CAP_NO_INTERRUPT, 1061 .pmu_enable = cpumf_pmu_enable, 1062 .pmu_disable = cpumf_pmu_disable, 1063 .event_init = cpumf_pmu_event_init, 1064 .add = cpumf_pmu_add, 1065 .del = cpumf_pmu_del, 1066 .start = cpumf_pmu_start, 1067 .stop = cpumf_pmu_stop, 1068 .read = cpumf_pmu_read, 1069 }; 1070 1071 static struct cfset_session { /* CPUs and counter set bit mask */ 1072 struct list_head head; /* Head of list of active processes */ 1073 } cfset_session = { 1074 .head = LIST_HEAD_INIT(cfset_session.head) 1075 }; 1076 1077 static refcount_t cfset_opencnt = REFCOUNT_INIT(0); /* Access count */ 1078 /* 1079 * Synchronize access to device /dev/hwc. This mutex protects against 1080 * concurrent access to functions cfset_open() and cfset_release(). 1081 * Same for CPU hotplug add and remove events triggering 1082 * cpum_cf_online_cpu() and cpum_cf_offline_cpu(). 1083 * It also serializes concurrent device ioctl access from multiple 1084 * processes accessing /dev/hwc. 1085 * 1086 * The mutex protects concurrent access to the /dev/hwctr session management 1087 * struct cfset_session and reference counting variable cfset_opencnt. 1088 */ 1089 static DEFINE_MUTEX(cfset_ctrset_mutex); 1090 1091 /* 1092 * CPU hotplug handles only /dev/hwctr device. 1093 * For perf_event_open() the CPU hotplug handling is done on kernel common 1094 * code: 1095 * - CPU add: Nothing is done since a file descriptor can not be created 1096 * and returned to the user. 1097 * - CPU delete: Handled by common code via pmu_disable(), pmu_stop() and 1098 * pmu_delete(). The event itself is removed when the file descriptor is 1099 * closed. 1100 */ 1101 static int cfset_online_cpu(unsigned int cpu); 1102 1103 static int cpum_cf_online_cpu(unsigned int cpu) 1104 { 1105 int rc = 0; 1106 1107 /* 1108 * Ignore notification for perf_event_open(). 1109 * Handle only /dev/hwctr device sessions. 1110 */ 1111 mutex_lock(&cfset_ctrset_mutex); 1112 if (refcount_read(&cfset_opencnt)) { 1113 rc = cpum_cf_alloc_cpu(cpu); 1114 if (!rc) 1115 cfset_online_cpu(cpu); 1116 } 1117 mutex_unlock(&cfset_ctrset_mutex); 1118 return rc; 1119 } 1120 1121 static int cfset_offline_cpu(unsigned int cpu); 1122 1123 static int cpum_cf_offline_cpu(unsigned int cpu) 1124 { 1125 /* 1126 * During task exit processing of grouped perf events triggered by CPU 1127 * hotplug processing, pmu_disable() is called as part of perf context 1128 * removal process. Therefore do not trigger event removal now for 1129 * perf_event_open() created events. Perf common code triggers event 1130 * destruction when the event file descriptor is closed. 1131 * 1132 * Handle only /dev/hwctr device sessions. 1133 */ 1134 mutex_lock(&cfset_ctrset_mutex); 1135 if (refcount_read(&cfset_opencnt)) { 1136 cfset_offline_cpu(cpu); 1137 cpum_cf_free_cpu(cpu); 1138 } 1139 mutex_unlock(&cfset_ctrset_mutex); 1140 return 0; 1141 } 1142 1143 /* Return true if store counter set multiple instruction is available */ 1144 static inline int stccm_avail(void) 1145 { 1146 return test_facility(142); 1147 } 1148 1149 /* CPU-measurement alerts for the counter facility */ 1150 static void cpumf_measurement_alert(struct ext_code ext_code, 1151 unsigned int alert, unsigned long unused) 1152 { 1153 struct cpu_cf_events *cpuhw; 1154 1155 if (!(alert & CPU_MF_INT_CF_MASK)) 1156 return; 1157 1158 inc_irq_stat(IRQEXT_CMC); 1159 1160 /* 1161 * Measurement alerts are shared and might happen when the PMU 1162 * is not reserved. Ignore these alerts in this case. 1163 */ 1164 cpuhw = this_cpu_cfhw(); 1165 if (!cpuhw) 1166 return; 1167 1168 /* counter authorization change alert */ 1169 if (alert & CPU_MF_INT_CF_CACA) 1170 qctri(&cpumf_ctr_info); 1171 1172 /* loss of counter data alert */ 1173 if (alert & CPU_MF_INT_CF_LCDA) 1174 pr_err("CPU[%i] Counter data was lost\n", smp_processor_id()); 1175 1176 /* loss of MT counter data alert */ 1177 if (alert & CPU_MF_INT_CF_MTDA) 1178 pr_warn("CPU[%i] MT counter data was lost\n", 1179 smp_processor_id()); 1180 } 1181 1182 static int cfset_init(void); 1183 static int __init cpumf_pmu_init(void) 1184 { 1185 int rc; 1186 1187 /* Extract counter measurement facility information */ 1188 if (!cpum_cf_avail() || qctri(&cpumf_ctr_info)) 1189 return -ENODEV; 1190 1191 /* Determine and store counter set sizes for later reference */ 1192 for (rc = CPUMF_CTR_SET_BASIC; rc < CPUMF_CTR_SET_MAX; ++rc) 1193 cpum_cf_make_setsize(rc); 1194 1195 /* 1196 * Clear bit 15 of cr0 to unauthorize problem-state to 1197 * extract measurement counters 1198 */ 1199 system_ctl_clear_bit(0, CR0_CPUMF_EXTRACTION_AUTH_BIT); 1200 1201 /* register handler for measurement-alert interruptions */ 1202 rc = register_external_irq(EXT_IRQ_MEASURE_ALERT, 1203 cpumf_measurement_alert); 1204 if (rc) { 1205 pr_err("Registering for CPU-measurement alerts failed with rc=%i\n", rc); 1206 return rc; 1207 } 1208 1209 /* Setup s390dbf facility */ 1210 cf_dbg = debug_register(KMSG_COMPONENT, 2, 1, 128); 1211 if (!cf_dbg) { 1212 pr_err("Registration of s390dbf(cpum_cf) failed\n"); 1213 rc = -ENOMEM; 1214 goto out1; 1215 } 1216 debug_register_view(cf_dbg, &debug_sprintf_view); 1217 1218 cpumf_pmu.attr_groups = cpumf_cf_event_group(); 1219 rc = perf_pmu_register(&cpumf_pmu, "cpum_cf", -1); 1220 if (rc) { 1221 pr_err("Registering the cpum_cf PMU failed with rc=%i\n", rc); 1222 goto out2; 1223 } else if (stccm_avail()) { /* Setup counter set device */ 1224 cfset_init(); 1225 } 1226 1227 rc = cpuhp_setup_state(CPUHP_AP_PERF_S390_CF_ONLINE, 1228 "perf/s390/cf:online", 1229 cpum_cf_online_cpu, cpum_cf_offline_cpu); 1230 return rc; 1231 1232 out2: 1233 debug_unregister_view(cf_dbg, &debug_sprintf_view); 1234 debug_unregister(cf_dbg); 1235 out1: 1236 unregister_external_irq(EXT_IRQ_MEASURE_ALERT, cpumf_measurement_alert); 1237 return rc; 1238 } 1239 1240 /* Support for the CPU Measurement Facility counter set extraction using 1241 * device /dev/hwctr. This allows user space programs to extract complete 1242 * counter set via normal file operations. 1243 */ 1244 1245 struct cfset_call_on_cpu_parm { /* Parm struct for smp_call_on_cpu */ 1246 unsigned int sets; /* Counter set bit mask */ 1247 atomic_t cpus_ack; /* # CPUs successfully executed func */ 1248 }; 1249 1250 struct cfset_request { /* CPUs and counter set bit mask */ 1251 unsigned long ctrset; /* Bit mask of counter set to read */ 1252 cpumask_t mask; /* CPU mask to read from */ 1253 struct list_head node; /* Chain to cfset_session.head */ 1254 }; 1255 1256 static void cfset_session_init(void) 1257 { 1258 INIT_LIST_HEAD(&cfset_session.head); 1259 } 1260 1261 /* Remove current request from global bookkeeping. Maintain a counter set bit 1262 * mask on a per CPU basis. 1263 * Done in process context under mutex protection. 1264 */ 1265 static void cfset_session_del(struct cfset_request *p) 1266 { 1267 list_del(&p->node); 1268 } 1269 1270 /* Add current request to global bookkeeping. Maintain a counter set bit mask 1271 * on a per CPU basis. 1272 * Done in process context under mutex protection. 1273 */ 1274 static void cfset_session_add(struct cfset_request *p) 1275 { 1276 list_add(&p->node, &cfset_session.head); 1277 } 1278 1279 /* The /dev/hwctr device access uses PMU_F_IN_USE to mark the device access 1280 * path is currently used. 1281 * The cpu_cf_events::dev_state is used to denote counter sets in use by this 1282 * interface. It is always or'ed in. If this interface is not active, its 1283 * value is zero and no additional counter sets will be included. 1284 * 1285 * The cpu_cf_events::state is used by the perf_event_open SVC and remains 1286 * unchanged. 1287 * 1288 * perf_pmu_enable() and perf_pmu_enable() and its call backs 1289 * cpumf_pmu_enable() and cpumf_pmu_disable() are called by the 1290 * performance measurement subsystem to enable per process 1291 * CPU Measurement counter facility. 1292 * The XXX_enable() and XXX_disable functions are used to turn off 1293 * x86 performance monitoring interrupt (PMI) during scheduling. 1294 * s390 uses these calls to temporarily stop and resume the active CPU 1295 * counters sets during scheduling. 1296 * 1297 * We do allow concurrent access of perf_event_open() SVC and /dev/hwctr 1298 * device access. The perf_event_open() SVC interface makes a lot of effort 1299 * to only run the counters while the calling process is actively scheduled 1300 * to run. 1301 * When /dev/hwctr interface is also used at the same time, the counter sets 1302 * will keep running, even when the process is scheduled off a CPU. 1303 * However this is not a problem and does not lead to wrong counter values 1304 * for the perf_event_open() SVC. The current counter value will be recorded 1305 * during schedule-in. At schedule-out time the current counter value is 1306 * extracted again and the delta is calculated and added to the event. 1307 */ 1308 /* Stop all counter sets via ioctl interface */ 1309 static void cfset_ioctl_off(void *parm) 1310 { 1311 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 1312 struct cfset_call_on_cpu_parm *p = parm; 1313 int rc; 1314 1315 /* Check if any counter set used by /dev/hwctr */ 1316 for (rc = CPUMF_CTR_SET_BASIC; rc < CPUMF_CTR_SET_MAX; ++rc) 1317 if ((p->sets & cpumf_ctr_ctl[rc])) { 1318 if (!atomic_dec_return(&cpuhw->ctr_set[rc])) { 1319 ctr_set_disable(&cpuhw->dev_state, 1320 cpumf_ctr_ctl[rc]); 1321 ctr_set_stop(&cpuhw->dev_state, 1322 cpumf_ctr_ctl[rc]); 1323 } 1324 } 1325 /* Keep perf_event_open counter sets */ 1326 rc = lcctl(cpuhw->dev_state | cpuhw->state); 1327 if (rc) 1328 pr_err("Counter set stop %#llx of /dev/%s failed rc=%i\n", 1329 cpuhw->state, S390_HWCTR_DEVICE, rc); 1330 if (!cpuhw->dev_state) 1331 cpuhw->flags &= ~PMU_F_IN_USE; 1332 } 1333 1334 /* Start counter sets on particular CPU */ 1335 static void cfset_ioctl_on(void *parm) 1336 { 1337 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 1338 struct cfset_call_on_cpu_parm *p = parm; 1339 int rc; 1340 1341 cpuhw->flags |= PMU_F_IN_USE; 1342 ctr_set_enable(&cpuhw->dev_state, p->sets); 1343 ctr_set_start(&cpuhw->dev_state, p->sets); 1344 for (rc = CPUMF_CTR_SET_BASIC; rc < CPUMF_CTR_SET_MAX; ++rc) 1345 if ((p->sets & cpumf_ctr_ctl[rc])) 1346 atomic_inc(&cpuhw->ctr_set[rc]); 1347 rc = lcctl(cpuhw->dev_state | cpuhw->state); /* Start counter sets */ 1348 if (!rc) 1349 atomic_inc(&p->cpus_ack); 1350 else 1351 pr_err("Counter set start %#llx of /dev/%s failed rc=%i\n", 1352 cpuhw->dev_state | cpuhw->state, S390_HWCTR_DEVICE, rc); 1353 } 1354 1355 static void cfset_release_cpu(void *p) 1356 { 1357 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 1358 int rc; 1359 1360 cpuhw->dev_state = 0; 1361 rc = lcctl(cpuhw->state); /* Keep perf_event_open counter sets */ 1362 if (rc) 1363 pr_err("Counter set release %#llx of /dev/%s failed rc=%i\n", 1364 cpuhw->state, S390_HWCTR_DEVICE, rc); 1365 } 1366 1367 /* This modifies the process CPU mask to adopt it to the currently online 1368 * CPUs. Offline CPUs can not be addresses. This call terminates the access 1369 * and is usually followed by close() or a new iotcl(..., START, ...) which 1370 * creates a new request structure. 1371 */ 1372 static void cfset_all_stop(struct cfset_request *req) 1373 { 1374 struct cfset_call_on_cpu_parm p = { 1375 .sets = req->ctrset, 1376 }; 1377 1378 cpumask_and(&req->mask, &req->mask, cpu_online_mask); 1379 on_each_cpu_mask(&req->mask, cfset_ioctl_off, &p, 1); 1380 } 1381 1382 /* Release function is also called when application gets terminated without 1383 * doing a proper ioctl(..., S390_HWCTR_STOP, ...) command. 1384 */ 1385 static int cfset_release(struct inode *inode, struct file *file) 1386 { 1387 mutex_lock(&cfset_ctrset_mutex); 1388 /* Open followed by close/exit has no private_data */ 1389 if (file->private_data) { 1390 cfset_all_stop(file->private_data); 1391 cfset_session_del(file->private_data); 1392 kfree(file->private_data); 1393 file->private_data = NULL; 1394 } 1395 if (refcount_dec_and_test(&cfset_opencnt)) { /* Last close */ 1396 on_each_cpu(cfset_release_cpu, NULL, 1); 1397 cpum_cf_free(-1); 1398 } 1399 mutex_unlock(&cfset_ctrset_mutex); 1400 return 0; 1401 } 1402 1403 /* 1404 * Open via /dev/hwctr device. Allocate all per CPU resources on the first 1405 * open of the device. The last close releases all per CPU resources. 1406 * Parallel perf_event_open system calls also use per CPU resources. 1407 * These invocations are handled via reference counting on the per CPU data 1408 * structures. 1409 */ 1410 static int cfset_open(struct inode *inode, struct file *file) 1411 { 1412 int rc = 0; 1413 1414 if (!perfmon_capable()) 1415 return -EPERM; 1416 file->private_data = NULL; 1417 1418 mutex_lock(&cfset_ctrset_mutex); 1419 if (!refcount_inc_not_zero(&cfset_opencnt)) { /* First open */ 1420 rc = cpum_cf_alloc(-1); 1421 if (!rc) { 1422 cfset_session_init(); 1423 refcount_set(&cfset_opencnt, 1); 1424 } 1425 } 1426 mutex_unlock(&cfset_ctrset_mutex); 1427 1428 /* nonseekable_open() never fails */ 1429 return rc ?: nonseekable_open(inode, file); 1430 } 1431 1432 static int cfset_all_start(struct cfset_request *req) 1433 { 1434 struct cfset_call_on_cpu_parm p = { 1435 .sets = req->ctrset, 1436 .cpus_ack = ATOMIC_INIT(0), 1437 }; 1438 cpumask_var_t mask; 1439 int rc = 0; 1440 1441 if (!alloc_cpumask_var(&mask, GFP_KERNEL)) 1442 return -ENOMEM; 1443 cpumask_and(mask, &req->mask, cpu_online_mask); 1444 on_each_cpu_mask(mask, cfset_ioctl_on, &p, 1); 1445 if (atomic_read(&p.cpus_ack) != cpumask_weight(mask)) { 1446 on_each_cpu_mask(mask, cfset_ioctl_off, &p, 1); 1447 rc = -EIO; 1448 } 1449 free_cpumask_var(mask); 1450 return rc; 1451 } 1452 1453 /* Return the maximum required space for all possible CPUs in case one 1454 * CPU will be onlined during the START, READ, STOP cycles. 1455 * To find out the size of the counter sets, any one CPU will do. They 1456 * all have the same counter sets. 1457 */ 1458 static size_t cfset_needspace(unsigned int sets) 1459 { 1460 size_t bytes = 0; 1461 int i; 1462 1463 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) { 1464 if (!(sets & cpumf_ctr_ctl[i])) 1465 continue; 1466 bytes += cpum_cf_read_setsize(i) * sizeof(u64) + 1467 sizeof(((struct s390_ctrset_setdata *)0)->set) + 1468 sizeof(((struct s390_ctrset_setdata *)0)->no_cnts); 1469 } 1470 bytes = sizeof(((struct s390_ctrset_read *)0)->no_cpus) + nr_cpu_ids * 1471 (bytes + sizeof(((struct s390_ctrset_cpudata *)0)->cpu_nr) + 1472 sizeof(((struct s390_ctrset_cpudata *)0)->no_sets)); 1473 return bytes; 1474 } 1475 1476 static int cfset_all_copy(unsigned long arg, cpumask_t *mask) 1477 { 1478 struct s390_ctrset_read __user *ctrset_read; 1479 unsigned int cpu, cpus, rc = 0; 1480 void __user *uptr; 1481 1482 ctrset_read = (struct s390_ctrset_read __user *)arg; 1483 uptr = ctrset_read->data; 1484 for_each_cpu(cpu, mask) { 1485 struct cpu_cf_events *cpuhw = get_cpu_cfhw(cpu); 1486 struct s390_ctrset_cpudata __user *ctrset_cpudata; 1487 1488 ctrset_cpudata = uptr; 1489 rc = put_user(cpu, &ctrset_cpudata->cpu_nr); 1490 rc |= put_user(cpuhw->sets, &ctrset_cpudata->no_sets); 1491 rc |= copy_to_user(ctrset_cpudata->data, cpuhw->data, 1492 cpuhw->used); 1493 if (rc) { 1494 rc = -EFAULT; 1495 goto out; 1496 } 1497 uptr += sizeof(struct s390_ctrset_cpudata) + cpuhw->used; 1498 cond_resched(); 1499 } 1500 cpus = cpumask_weight(mask); 1501 if (put_user(cpus, &ctrset_read->no_cpus)) 1502 rc = -EFAULT; 1503 out: 1504 return rc; 1505 } 1506 1507 static size_t cfset_cpuset_read(struct s390_ctrset_setdata *p, int ctrset, 1508 int ctrset_size, size_t room) 1509 { 1510 size_t need = 0; 1511 int rc = -1; 1512 1513 need = sizeof(*p) + sizeof(u64) * ctrset_size; 1514 if (need <= room) { 1515 p->set = cpumf_ctr_ctl[ctrset]; 1516 p->no_cnts = ctrset_size; 1517 rc = ctr_stcctm(ctrset, ctrset_size, (u64 *)p->cv); 1518 if (rc == 3) /* Nothing stored */ 1519 need = 0; 1520 } 1521 return need; 1522 } 1523 1524 /* Read all counter sets. */ 1525 static void cfset_cpu_read(void *parm) 1526 { 1527 struct cpu_cf_events *cpuhw = this_cpu_cfhw(); 1528 struct cfset_call_on_cpu_parm *p = parm; 1529 int set, set_size; 1530 size_t space; 1531 1532 /* No data saved yet */ 1533 cpuhw->used = 0; 1534 cpuhw->sets = 0; 1535 memset(cpuhw->data, 0, sizeof(cpuhw->data)); 1536 1537 /* Scan the counter sets */ 1538 for (set = CPUMF_CTR_SET_BASIC; set < CPUMF_CTR_SET_MAX; ++set) { 1539 struct s390_ctrset_setdata *sp = (void *)cpuhw->data + 1540 cpuhw->used; 1541 1542 if (!(p->sets & cpumf_ctr_ctl[set])) 1543 continue; /* Counter set not in list */ 1544 set_size = cpum_cf_read_setsize(set); 1545 space = sizeof(cpuhw->data) - cpuhw->used; 1546 space = cfset_cpuset_read(sp, set, set_size, space); 1547 if (space) { 1548 cpuhw->used += space; 1549 cpuhw->sets += 1; 1550 } 1551 } 1552 } 1553 1554 static int cfset_all_read(unsigned long arg, struct cfset_request *req) 1555 { 1556 struct cfset_call_on_cpu_parm p; 1557 cpumask_var_t mask; 1558 int rc; 1559 1560 if (!alloc_cpumask_var(&mask, GFP_KERNEL)) 1561 return -ENOMEM; 1562 1563 p.sets = req->ctrset; 1564 cpumask_and(mask, &req->mask, cpu_online_mask); 1565 on_each_cpu_mask(mask, cfset_cpu_read, &p, 1); 1566 rc = cfset_all_copy(arg, mask); 1567 free_cpumask_var(mask); 1568 return rc; 1569 } 1570 1571 static long cfset_ioctl_read(unsigned long arg, struct cfset_request *req) 1572 { 1573 int ret = -ENODATA; 1574 1575 if (req && req->ctrset) 1576 ret = cfset_all_read(arg, req); 1577 return ret; 1578 } 1579 1580 static long cfset_ioctl_stop(struct file *file) 1581 { 1582 struct cfset_request *req = file->private_data; 1583 int ret = -ENXIO; 1584 1585 if (req) { 1586 cfset_all_stop(req); 1587 cfset_session_del(req); 1588 kfree(req); 1589 file->private_data = NULL; 1590 ret = 0; 1591 } 1592 return ret; 1593 } 1594 1595 static long cfset_ioctl_start(unsigned long arg, struct file *file) 1596 { 1597 struct s390_ctrset_start __user *ustart; 1598 struct s390_ctrset_start start; 1599 struct cfset_request *preq; 1600 void __user *umask; 1601 unsigned int len; 1602 int ret = 0; 1603 size_t need; 1604 1605 if (file->private_data) 1606 return -EBUSY; 1607 ustart = (struct s390_ctrset_start __user *)arg; 1608 if (copy_from_user(&start, ustart, sizeof(start))) 1609 return -EFAULT; 1610 if (start.version != S390_HWCTR_START_VERSION) 1611 return -EINVAL; 1612 if (start.counter_sets & ~(cpumf_ctr_ctl[CPUMF_CTR_SET_BASIC] | 1613 cpumf_ctr_ctl[CPUMF_CTR_SET_USER] | 1614 cpumf_ctr_ctl[CPUMF_CTR_SET_CRYPTO] | 1615 cpumf_ctr_ctl[CPUMF_CTR_SET_EXT] | 1616 cpumf_ctr_ctl[CPUMF_CTR_SET_MT_DIAG])) 1617 return -EINVAL; /* Invalid counter set */ 1618 if (!start.counter_sets) 1619 return -EINVAL; /* No counter set at all? */ 1620 1621 preq = kzalloc(sizeof(*preq), GFP_KERNEL); 1622 if (!preq) 1623 return -ENOMEM; 1624 cpumask_clear(&preq->mask); 1625 len = min_t(u64, start.cpumask_len, cpumask_size()); 1626 umask = (void __user *)start.cpumask; 1627 if (copy_from_user(&preq->mask, umask, len)) { 1628 kfree(preq); 1629 return -EFAULT; 1630 } 1631 if (cpumask_empty(&preq->mask)) { 1632 kfree(preq); 1633 return -EINVAL; 1634 } 1635 need = cfset_needspace(start.counter_sets); 1636 if (put_user(need, &ustart->data_bytes)) { 1637 kfree(preq); 1638 return -EFAULT; 1639 } 1640 preq->ctrset = start.counter_sets; 1641 ret = cfset_all_start(preq); 1642 if (!ret) { 1643 cfset_session_add(preq); 1644 file->private_data = preq; 1645 } else { 1646 kfree(preq); 1647 } 1648 return ret; 1649 } 1650 1651 /* Entry point to the /dev/hwctr device interface. 1652 * The ioctl system call supports three subcommands: 1653 * S390_HWCTR_START: Start the specified counter sets on a CPU list. The 1654 * counter set keeps running until explicitly stopped. Returns the number 1655 * of bytes needed to store the counter values. If another S390_HWCTR_START 1656 * ioctl subcommand is called without a previous S390_HWCTR_STOP stop 1657 * command on the same file descriptor, -EBUSY is returned. 1658 * S390_HWCTR_READ: Read the counter set values from specified CPU list given 1659 * with the S390_HWCTR_START command. 1660 * S390_HWCTR_STOP: Stops the counter sets on the CPU list given with the 1661 * previous S390_HWCTR_START subcommand. 1662 */ 1663 static long cfset_ioctl(struct file *file, unsigned int cmd, unsigned long arg) 1664 { 1665 int ret; 1666 1667 cpus_read_lock(); 1668 mutex_lock(&cfset_ctrset_mutex); 1669 switch (cmd) { 1670 case S390_HWCTR_START: 1671 ret = cfset_ioctl_start(arg, file); 1672 break; 1673 case S390_HWCTR_STOP: 1674 ret = cfset_ioctl_stop(file); 1675 break; 1676 case S390_HWCTR_READ: 1677 ret = cfset_ioctl_read(arg, file->private_data); 1678 break; 1679 default: 1680 ret = -ENOTTY; 1681 break; 1682 } 1683 mutex_unlock(&cfset_ctrset_mutex); 1684 cpus_read_unlock(); 1685 return ret; 1686 } 1687 1688 static const struct file_operations cfset_fops = { 1689 .owner = THIS_MODULE, 1690 .open = cfset_open, 1691 .release = cfset_release, 1692 .unlocked_ioctl = cfset_ioctl, 1693 .compat_ioctl = cfset_ioctl, 1694 }; 1695 1696 static struct miscdevice cfset_dev = { 1697 .name = S390_HWCTR_DEVICE, 1698 .minor = MISC_DYNAMIC_MINOR, 1699 .fops = &cfset_fops, 1700 .mode = 0666, 1701 }; 1702 1703 /* Hotplug add of a CPU. Scan through all active processes and add 1704 * that CPU to the list of CPUs supplied with ioctl(..., START, ...). 1705 */ 1706 static int cfset_online_cpu(unsigned int cpu) 1707 { 1708 struct cfset_call_on_cpu_parm p; 1709 struct cfset_request *rp; 1710 1711 if (!list_empty(&cfset_session.head)) { 1712 list_for_each_entry(rp, &cfset_session.head, node) { 1713 p.sets = rp->ctrset; 1714 cfset_ioctl_on(&p); 1715 cpumask_set_cpu(cpu, &rp->mask); 1716 } 1717 } 1718 return 0; 1719 } 1720 1721 /* Hotplug remove of a CPU. Scan through all active processes and clear 1722 * that CPU from the list of CPUs supplied with ioctl(..., START, ...). 1723 * Adjust reference counts. 1724 */ 1725 static int cfset_offline_cpu(unsigned int cpu) 1726 { 1727 struct cfset_call_on_cpu_parm p; 1728 struct cfset_request *rp; 1729 1730 if (!list_empty(&cfset_session.head)) { 1731 list_for_each_entry(rp, &cfset_session.head, node) { 1732 p.sets = rp->ctrset; 1733 cfset_ioctl_off(&p); 1734 cpumask_clear_cpu(cpu, &rp->mask); 1735 } 1736 } 1737 return 0; 1738 } 1739 1740 static void cfdiag_read(struct perf_event *event) 1741 { 1742 } 1743 1744 static int get_authctrsets(void) 1745 { 1746 unsigned long auth = 0; 1747 enum cpumf_ctr_set i; 1748 1749 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) { 1750 if (cpumf_ctr_info.auth_ctl & cpumf_ctr_ctl[i]) 1751 auth |= cpumf_ctr_ctl[i]; 1752 } 1753 return auth; 1754 } 1755 1756 /* Setup the event. Test for authorized counter sets and only include counter 1757 * sets which are authorized at the time of the setup. Including unauthorized 1758 * counter sets result in specification exception (and panic). 1759 */ 1760 static int cfdiag_event_init2(struct perf_event *event) 1761 { 1762 struct perf_event_attr *attr = &event->attr; 1763 int err = 0; 1764 1765 /* Set sample_period to indicate sampling */ 1766 event->hw.config = attr->config; 1767 event->hw.sample_period = attr->sample_period; 1768 local64_set(&event->hw.period_left, event->hw.sample_period); 1769 local64_set(&event->count, 0); 1770 event->hw.last_period = event->hw.sample_period; 1771 1772 /* Add all authorized counter sets to config_base. The 1773 * the hardware init function is either called per-cpu or just once 1774 * for all CPUS (event->cpu == -1). This depends on the whether 1775 * counting is started for all CPUs or on a per workload base where 1776 * the perf event moves from one CPU to another CPU. 1777 * Checking the authorization on any CPU is fine as the hardware 1778 * applies the same authorization settings to all CPUs. 1779 */ 1780 event->hw.config_base = get_authctrsets(); 1781 1782 /* No authorized counter sets, nothing to count/sample */ 1783 if (!event->hw.config_base) 1784 err = -EINVAL; 1785 1786 return err; 1787 } 1788 1789 static int cfdiag_event_init(struct perf_event *event) 1790 { 1791 struct perf_event_attr *attr = &event->attr; 1792 int err = -ENOENT; 1793 1794 if (event->attr.config != PERF_EVENT_CPUM_CF_DIAG || 1795 event->attr.type != event->pmu->type) 1796 goto out; 1797 1798 /* Raw events are used to access counters directly, 1799 * hence do not permit excludes. 1800 * This event is useless without PERF_SAMPLE_RAW to return counter set 1801 * values as raw data. 1802 */ 1803 if (attr->exclude_kernel || attr->exclude_user || attr->exclude_hv || 1804 !(attr->sample_type & (PERF_SAMPLE_CPU | PERF_SAMPLE_RAW))) { 1805 err = -EOPNOTSUPP; 1806 goto out; 1807 } 1808 1809 /* Initialize for using the CPU-measurement counter facility */ 1810 if (cpum_cf_alloc(event->cpu)) 1811 return -ENOMEM; 1812 event->destroy = hw_perf_event_destroy; 1813 1814 err = cfdiag_event_init2(event); 1815 out: 1816 return err; 1817 } 1818 1819 /* Create cf_diag/events/CF_DIAG event sysfs file. This counter is used 1820 * to collect the complete counter sets for a scheduled process. Target 1821 * are complete counter sets attached as raw data to the artificial event. 1822 * This results in complete counter sets available when a process is 1823 * scheduled. Contains the delta of every counter while the process was 1824 * running. 1825 */ 1826 CPUMF_EVENT_ATTR(CF_DIAG, CF_DIAG, PERF_EVENT_CPUM_CF_DIAG); 1827 1828 static struct attribute *cfdiag_events_attr[] = { 1829 CPUMF_EVENT_PTR(CF_DIAG, CF_DIAG), 1830 NULL, 1831 }; 1832 1833 PMU_FORMAT_ATTR(event, "config:0-63"); 1834 1835 static struct attribute *cfdiag_format_attr[] = { 1836 &format_attr_event.attr, 1837 NULL, 1838 }; 1839 1840 static struct attribute_group cfdiag_events_group = { 1841 .name = "events", 1842 .attrs = cfdiag_events_attr, 1843 }; 1844 static struct attribute_group cfdiag_format_group = { 1845 .name = "format", 1846 .attrs = cfdiag_format_attr, 1847 }; 1848 static const struct attribute_group *cfdiag_attr_groups[] = { 1849 &cfdiag_events_group, 1850 &cfdiag_format_group, 1851 NULL, 1852 }; 1853 1854 /* Performance monitoring unit for event CF_DIAG. Since this event 1855 * is also started and stopped via the perf_event_open() system call, use 1856 * the same event enable/disable call back functions. They do not 1857 * have a pointer to the perf_event structure as first parameter. 1858 * 1859 * The functions XXX_add, XXX_del, XXX_start and XXX_stop are also common. 1860 * Reuse them and distinguish the event (always first parameter) via 1861 * 'config' member. 1862 */ 1863 static struct pmu cf_diag = { 1864 .task_ctx_nr = perf_sw_context, 1865 .event_init = cfdiag_event_init, 1866 .pmu_enable = cpumf_pmu_enable, 1867 .pmu_disable = cpumf_pmu_disable, 1868 .add = cpumf_pmu_add, 1869 .del = cpumf_pmu_del, 1870 .start = cpumf_pmu_start, 1871 .stop = cpumf_pmu_stop, 1872 .read = cfdiag_read, 1873 1874 .attr_groups = cfdiag_attr_groups 1875 }; 1876 1877 /* Calculate memory needed to store all counter sets together with header and 1878 * trailer data. This is independent of the counter set authorization which 1879 * can vary depending on the configuration. 1880 */ 1881 static size_t cfdiag_maxsize(struct cpumf_ctr_info *info) 1882 { 1883 size_t max_size = sizeof(struct cf_trailer_entry); 1884 enum cpumf_ctr_set i; 1885 1886 for (i = CPUMF_CTR_SET_BASIC; i < CPUMF_CTR_SET_MAX; ++i) { 1887 size_t size = cpum_cf_read_setsize(i); 1888 1889 if (size) 1890 max_size += size * sizeof(u64) + 1891 sizeof(struct cf_ctrset_entry); 1892 } 1893 return max_size; 1894 } 1895 1896 /* Get the CPU speed, try sampling facility first and CPU attributes second. */ 1897 static void cfdiag_get_cpu_speed(void) 1898 { 1899 unsigned long mhz; 1900 1901 if (cpum_sf_avail()) { /* Sampling facility first */ 1902 struct hws_qsi_info_block si; 1903 1904 memset(&si, 0, sizeof(si)); 1905 if (!qsi(&si)) { 1906 cfdiag_cpu_speed = si.cpu_speed; 1907 return; 1908 } 1909 } 1910 1911 /* Fallback: CPU speed extract static part. Used in case 1912 * CPU Measurement Sampling Facility is turned off. 1913 */ 1914 mhz = __ecag(ECAG_CPU_ATTRIBUTE, 0); 1915 if (mhz != -1UL) 1916 cfdiag_cpu_speed = mhz & 0xffffffff; 1917 } 1918 1919 static int cfset_init(void) 1920 { 1921 size_t need; 1922 int rc; 1923 1924 cfdiag_get_cpu_speed(); 1925 /* Make sure the counter set data fits into predefined buffer. */ 1926 need = cfdiag_maxsize(&cpumf_ctr_info); 1927 if (need > sizeof(((struct cpu_cf_events *)0)->start)) { 1928 pr_err("Insufficient memory for PMU(cpum_cf_diag) need=%zu\n", 1929 need); 1930 return -ENOMEM; 1931 } 1932 1933 rc = misc_register(&cfset_dev); 1934 if (rc) { 1935 pr_err("Registration of /dev/%s failed rc=%i\n", 1936 cfset_dev.name, rc); 1937 goto out; 1938 } 1939 1940 rc = perf_pmu_register(&cf_diag, "cpum_cf_diag", -1); 1941 if (rc) { 1942 misc_deregister(&cfset_dev); 1943 pr_err("Registration of PMU(cpum_cf_diag) failed with rc=%i\n", 1944 rc); 1945 } 1946 out: 1947 return rc; 1948 } 1949 1950 device_initcall(cpumf_pmu_init); 1951