1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (c) 2014, The Linux Foundation. All rights reserved. 4 */ 5 6 #include <linux/bitops.h> 7 #include <linux/kernel.h> 8 #include <linux/moduleparam.h> 9 #include <linux/init.h> 10 #include <linux/types.h> 11 #include <linux/device.h> 12 #include <linux/io.h> 13 #include <linux/err.h> 14 #include <linux/fs.h> 15 #include <linux/slab.h> 16 #include <linux/delay.h> 17 #include <linux/smp.h> 18 #include <linux/sysfs.h> 19 #include <linux/stat.h> 20 #include <linux/clk.h> 21 #include <linux/cpu.h> 22 #include <linux/cpu_pm.h> 23 #include <linux/coresight.h> 24 #include <linux/coresight-pmu.h> 25 #include <linux/pm_wakeup.h> 26 #include <linux/amba/bus.h> 27 #include <linux/seq_file.h> 28 #include <linux/uaccess.h> 29 #include <linux/perf_event.h> 30 #include <linux/platform_device.h> 31 #include <linux/pm_runtime.h> 32 #include <linux/property.h> 33 34 #include <asm/barrier.h> 35 #include <asm/sections.h> 36 #include <asm/sysreg.h> 37 #include <asm/local.h> 38 #include <asm/virt.h> 39 40 #include "coresight-etm4x.h" 41 #include "coresight-etm-perf.h" 42 #include "coresight-etm4x-cfg.h" 43 #include "coresight-self-hosted-trace.h" 44 #include "coresight-syscfg.h" 45 46 static int boot_enable; 47 module_param(boot_enable, int, 0444); 48 MODULE_PARM_DESC(boot_enable, "Enable tracing on boot"); 49 50 #define PARAM_PM_SAVE_FIRMWARE 0 /* save self-hosted state as per firmware */ 51 #define PARAM_PM_SAVE_NEVER 1 /* never save any state */ 52 #define PARAM_PM_SAVE_SELF_HOSTED 2 /* save self-hosted state only */ 53 54 static int pm_save_enable = PARAM_PM_SAVE_FIRMWARE; 55 module_param(pm_save_enable, int, 0444); 56 MODULE_PARM_DESC(pm_save_enable, 57 "Save/restore state on power down: 1 = never, 2 = self-hosted"); 58 59 static struct etmv4_drvdata *etmdrvdata[NR_CPUS]; 60 static void etm4_set_default_config(struct etmv4_config *config); 61 static int etm4_set_event_filters(struct etmv4_drvdata *drvdata, 62 struct perf_event *event); 63 static u64 etm4_get_access_type(struct etmv4_config *config); 64 65 static enum cpuhp_state hp_online; 66 67 struct etm4_init_arg { 68 unsigned int pid; 69 struct etmv4_drvdata *drvdata; 70 struct csdev_access *csa; 71 }; 72 73 /* 74 * Check if TRCSSPCICRn(i) is implemented for a given instance. 75 * 76 * TRCSSPCICRn is implemented only if : 77 * TRCSSPCICR<n> is present only if all of the following are true: 78 * TRCIDR4.NUMSSCC > n. 79 * TRCIDR4.NUMPC > 0b0000 . 80 * TRCSSCSR<n>.PC == 0b1 81 */ 82 static inline bool etm4x_sspcicrn_present(struct etmv4_drvdata *drvdata, int n) 83 { 84 return (n < drvdata->nr_ss_cmp) && 85 drvdata->nr_pe && 86 (drvdata->config.ss_status[n] & TRCSSCSRn_PC); 87 } 88 89 u64 etm4x_sysreg_read(u32 offset, bool _relaxed, bool _64bit) 90 { 91 u64 res = 0; 92 93 switch (offset) { 94 ETM4x_READ_SYSREG_CASES(res) 95 default : 96 pr_warn_ratelimited("etm4x: trying to read unsupported register @%x\n", 97 offset); 98 } 99 100 if (!_relaxed) 101 __iormb(res); /* Imitate the !relaxed I/O helpers */ 102 103 return res; 104 } 105 106 void etm4x_sysreg_write(u64 val, u32 offset, bool _relaxed, bool _64bit) 107 { 108 if (!_relaxed) 109 __iowmb(); /* Imitate the !relaxed I/O helpers */ 110 if (!_64bit) 111 val &= GENMASK(31, 0); 112 113 switch (offset) { 114 ETM4x_WRITE_SYSREG_CASES(val) 115 default : 116 pr_warn_ratelimited("etm4x: trying to write to unsupported register @%x\n", 117 offset); 118 } 119 } 120 121 static u64 ete_sysreg_read(u32 offset, bool _relaxed, bool _64bit) 122 { 123 u64 res = 0; 124 125 switch (offset) { 126 ETE_READ_CASES(res) 127 default : 128 pr_warn_ratelimited("ete: trying to read unsupported register @%x\n", 129 offset); 130 } 131 132 if (!_relaxed) 133 __iormb(res); /* Imitate the !relaxed I/O helpers */ 134 135 return res; 136 } 137 138 static void ete_sysreg_write(u64 val, u32 offset, bool _relaxed, bool _64bit) 139 { 140 if (!_relaxed) 141 __iowmb(); /* Imitate the !relaxed I/O helpers */ 142 if (!_64bit) 143 val &= GENMASK(31, 0); 144 145 switch (offset) { 146 ETE_WRITE_CASES(val) 147 default : 148 pr_warn_ratelimited("ete: trying to write to unsupported register @%x\n", 149 offset); 150 } 151 } 152 153 static void etm_detect_os_lock(struct etmv4_drvdata *drvdata, 154 struct csdev_access *csa) 155 { 156 u32 oslsr = etm4x_relaxed_read32(csa, TRCOSLSR); 157 158 drvdata->os_lock_model = ETM_OSLSR_OSLM(oslsr); 159 } 160 161 static void etm_write_os_lock(struct etmv4_drvdata *drvdata, 162 struct csdev_access *csa, u32 val) 163 { 164 val = !!val; 165 166 switch (drvdata->os_lock_model) { 167 case ETM_OSLOCK_PRESENT: 168 etm4x_relaxed_write32(csa, val, TRCOSLAR); 169 break; 170 case ETM_OSLOCK_PE: 171 write_sysreg_s(val, SYS_OSLAR_EL1); 172 break; 173 default: 174 pr_warn_once("CPU%d: Unsupported Trace OSLock model: %x\n", 175 smp_processor_id(), drvdata->os_lock_model); 176 fallthrough; 177 case ETM_OSLOCK_NI: 178 return; 179 } 180 isb(); 181 } 182 183 static inline void etm4_os_unlock_csa(struct etmv4_drvdata *drvdata, 184 struct csdev_access *csa) 185 { 186 WARN_ON(drvdata->cpu != smp_processor_id()); 187 188 /* Writing 0 to OS Lock unlocks the trace unit registers */ 189 etm_write_os_lock(drvdata, csa, 0x0); 190 drvdata->os_unlock = true; 191 } 192 193 static void etm4_os_unlock(struct etmv4_drvdata *drvdata) 194 { 195 if (!WARN_ON(!drvdata->csdev)) 196 etm4_os_unlock_csa(drvdata, &drvdata->csdev->access); 197 } 198 199 static void etm4_os_lock(struct etmv4_drvdata *drvdata) 200 { 201 if (WARN_ON(!drvdata->csdev)) 202 return; 203 /* Writing 0x1 to OS Lock locks the trace registers */ 204 etm_write_os_lock(drvdata, &drvdata->csdev->access, 0x1); 205 drvdata->os_unlock = false; 206 } 207 208 static void etm4_cs_lock(struct etmv4_drvdata *drvdata, 209 struct csdev_access *csa) 210 { 211 /* Software Lock is only accessible via memory mapped interface */ 212 if (csa->io_mem) 213 CS_LOCK(csa->base); 214 } 215 216 static void etm4_cs_unlock(struct etmv4_drvdata *drvdata, 217 struct csdev_access *csa) 218 { 219 if (csa->io_mem) 220 CS_UNLOCK(csa->base); 221 } 222 223 static int etm4_cpu_id(struct coresight_device *csdev) 224 { 225 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 226 227 return drvdata->cpu; 228 } 229 230 static int etm4_trace_id(struct coresight_device *csdev) 231 { 232 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 233 234 return drvdata->trcid; 235 } 236 237 struct etm4_enable_arg { 238 struct etmv4_drvdata *drvdata; 239 int rc; 240 }; 241 242 /* 243 * etm4x_prohibit_trace - Prohibit the CPU from tracing at all ELs. 244 * When the CPU supports FEAT_TRF, we could move the ETM to a trace 245 * prohibited state by filtering the Exception levels via TRFCR_EL1. 246 */ 247 static void etm4x_prohibit_trace(struct etmv4_drvdata *drvdata) 248 { 249 /* If the CPU doesn't support FEAT_TRF, nothing to do */ 250 if (!drvdata->trfcr) 251 return; 252 cpu_prohibit_trace(); 253 } 254 255 /* 256 * etm4x_allow_trace - Allow CPU tracing in the respective ELs, 257 * as configured by the drvdata->config.mode for the current 258 * session. Even though we have TRCVICTLR bits to filter the 259 * trace in the ELs, it doesn't prevent the ETM from generating 260 * a packet (e.g, TraceInfo) that might contain the addresses from 261 * the excluded levels. Thus we use the additional controls provided 262 * via the Trace Filtering controls (FEAT_TRF) to make sure no trace 263 * is generated for the excluded ELs. 264 */ 265 static void etm4x_allow_trace(struct etmv4_drvdata *drvdata) 266 { 267 u64 trfcr = drvdata->trfcr; 268 269 /* If the CPU doesn't support FEAT_TRF, nothing to do */ 270 if (!trfcr) 271 return; 272 273 if (drvdata->config.mode & ETM_MODE_EXCL_KERN) 274 trfcr &= ~TRFCR_ELx_ExTRE; 275 if (drvdata->config.mode & ETM_MODE_EXCL_USER) 276 trfcr &= ~TRFCR_ELx_E0TRE; 277 278 write_trfcr(trfcr); 279 } 280 281 #ifdef CONFIG_ETM4X_IMPDEF_FEATURE 282 283 #define HISI_HIP08_AMBA_ID 0x000b6d01 284 #define ETM4_AMBA_MASK 0xfffff 285 #define HISI_HIP08_CORE_COMMIT_MASK 0x3000 286 #define HISI_HIP08_CORE_COMMIT_SHIFT 12 287 #define HISI_HIP08_CORE_COMMIT_FULL 0b00 288 #define HISI_HIP08_CORE_COMMIT_LVL_1 0b01 289 #define HISI_HIP08_CORE_COMMIT_REG sys_reg(3, 1, 15, 2, 5) 290 291 struct etm4_arch_features { 292 void (*arch_callback)(bool enable); 293 }; 294 295 static bool etm4_hisi_match_pid(unsigned int id) 296 { 297 return (id & ETM4_AMBA_MASK) == HISI_HIP08_AMBA_ID; 298 } 299 300 static void etm4_hisi_config_core_commit(bool enable) 301 { 302 u8 commit = enable ? HISI_HIP08_CORE_COMMIT_LVL_1 : 303 HISI_HIP08_CORE_COMMIT_FULL; 304 u64 val; 305 306 /* 307 * bit 12 and 13 of HISI_HIP08_CORE_COMMIT_REG are used together 308 * to set core-commit, 2'b00 means cpu is at full speed, 2'b01, 309 * 2'b10, 2'b11 mean reduce pipeline speed, and 2'b01 means level-1 310 * speed(minimun value). So bit 12 and 13 should be cleared together. 311 */ 312 val = read_sysreg_s(HISI_HIP08_CORE_COMMIT_REG); 313 val &= ~HISI_HIP08_CORE_COMMIT_MASK; 314 val |= commit << HISI_HIP08_CORE_COMMIT_SHIFT; 315 write_sysreg_s(val, HISI_HIP08_CORE_COMMIT_REG); 316 } 317 318 static struct etm4_arch_features etm4_features[] = { 319 [ETM4_IMPDEF_HISI_CORE_COMMIT] = { 320 .arch_callback = etm4_hisi_config_core_commit, 321 }, 322 {}, 323 }; 324 325 static void etm4_enable_arch_specific(struct etmv4_drvdata *drvdata) 326 { 327 struct etm4_arch_features *ftr; 328 int bit; 329 330 for_each_set_bit(bit, drvdata->arch_features, ETM4_IMPDEF_FEATURE_MAX) { 331 ftr = &etm4_features[bit]; 332 333 if (ftr->arch_callback) 334 ftr->arch_callback(true); 335 } 336 } 337 338 static void etm4_disable_arch_specific(struct etmv4_drvdata *drvdata) 339 { 340 struct etm4_arch_features *ftr; 341 int bit; 342 343 for_each_set_bit(bit, drvdata->arch_features, ETM4_IMPDEF_FEATURE_MAX) { 344 ftr = &etm4_features[bit]; 345 346 if (ftr->arch_callback) 347 ftr->arch_callback(false); 348 } 349 } 350 351 static void etm4_check_arch_features(struct etmv4_drvdata *drvdata, 352 unsigned int id) 353 { 354 if (etm4_hisi_match_pid(id)) 355 set_bit(ETM4_IMPDEF_HISI_CORE_COMMIT, drvdata->arch_features); 356 } 357 #else 358 static void etm4_enable_arch_specific(struct etmv4_drvdata *drvdata) 359 { 360 } 361 362 static void etm4_disable_arch_specific(struct etmv4_drvdata *drvdata) 363 { 364 } 365 366 static void etm4_check_arch_features(struct etmv4_drvdata *drvdata, 367 unsigned int id) 368 { 369 } 370 #endif /* CONFIG_ETM4X_IMPDEF_FEATURE */ 371 372 static int etm4_enable_hw(struct etmv4_drvdata *drvdata) 373 { 374 int i, rc; 375 struct etmv4_config *config = &drvdata->config; 376 struct coresight_device *csdev = drvdata->csdev; 377 struct device *etm_dev = &csdev->dev; 378 struct csdev_access *csa = &csdev->access; 379 380 381 etm4_cs_unlock(drvdata, csa); 382 etm4_enable_arch_specific(drvdata); 383 384 etm4_os_unlock(drvdata); 385 386 rc = coresight_claim_device_unlocked(csdev); 387 if (rc) 388 goto done; 389 390 /* Disable the trace unit before programming trace registers */ 391 etm4x_relaxed_write32(csa, 0, TRCPRGCTLR); 392 393 /* 394 * If we use system instructions, we need to synchronize the 395 * write to the TRCPRGCTLR, before accessing the TRCSTATR. 396 * See ARM IHI0064F, section 397 * "4.3.7 Synchronization of register updates" 398 */ 399 if (!csa->io_mem) 400 isb(); 401 402 /* wait for TRCSTATR.IDLE to go up */ 403 if (coresight_timeout(csa, TRCSTATR, TRCSTATR_IDLE_BIT, 1)) 404 dev_err(etm_dev, 405 "timeout while waiting for Idle Trace Status\n"); 406 if (drvdata->nr_pe) 407 etm4x_relaxed_write32(csa, config->pe_sel, TRCPROCSELR); 408 etm4x_relaxed_write32(csa, config->cfg, TRCCONFIGR); 409 /* nothing specific implemented */ 410 etm4x_relaxed_write32(csa, 0x0, TRCAUXCTLR); 411 etm4x_relaxed_write32(csa, config->eventctrl0, TRCEVENTCTL0R); 412 etm4x_relaxed_write32(csa, config->eventctrl1, TRCEVENTCTL1R); 413 if (drvdata->stallctl) 414 etm4x_relaxed_write32(csa, config->stall_ctrl, TRCSTALLCTLR); 415 etm4x_relaxed_write32(csa, config->ts_ctrl, TRCTSCTLR); 416 etm4x_relaxed_write32(csa, config->syncfreq, TRCSYNCPR); 417 etm4x_relaxed_write32(csa, config->ccctlr, TRCCCCTLR); 418 etm4x_relaxed_write32(csa, config->bb_ctrl, TRCBBCTLR); 419 etm4x_relaxed_write32(csa, drvdata->trcid, TRCTRACEIDR); 420 etm4x_relaxed_write32(csa, config->vinst_ctrl, TRCVICTLR); 421 etm4x_relaxed_write32(csa, config->viiectlr, TRCVIIECTLR); 422 etm4x_relaxed_write32(csa, config->vissctlr, TRCVISSCTLR); 423 if (drvdata->nr_pe_cmp) 424 etm4x_relaxed_write32(csa, config->vipcssctlr, TRCVIPCSSCTLR); 425 for (i = 0; i < drvdata->nrseqstate - 1; i++) 426 etm4x_relaxed_write32(csa, config->seq_ctrl[i], TRCSEQEVRn(i)); 427 etm4x_relaxed_write32(csa, config->seq_rst, TRCSEQRSTEVR); 428 etm4x_relaxed_write32(csa, config->seq_state, TRCSEQSTR); 429 etm4x_relaxed_write32(csa, config->ext_inp, TRCEXTINSELR); 430 for (i = 0; i < drvdata->nr_cntr; i++) { 431 etm4x_relaxed_write32(csa, config->cntrldvr[i], TRCCNTRLDVRn(i)); 432 etm4x_relaxed_write32(csa, config->cntr_ctrl[i], TRCCNTCTLRn(i)); 433 etm4x_relaxed_write32(csa, config->cntr_val[i], TRCCNTVRn(i)); 434 } 435 436 /* 437 * Resource selector pair 0 is always implemented and reserved. As 438 * such start at 2. 439 */ 440 for (i = 2; i < drvdata->nr_resource * 2; i++) 441 etm4x_relaxed_write32(csa, config->res_ctrl[i], TRCRSCTLRn(i)); 442 443 for (i = 0; i < drvdata->nr_ss_cmp; i++) { 444 /* always clear status bit on restart if using single-shot */ 445 if (config->ss_ctrl[i] || config->ss_pe_cmp[i]) 446 config->ss_status[i] &= ~BIT(31); 447 etm4x_relaxed_write32(csa, config->ss_ctrl[i], TRCSSCCRn(i)); 448 etm4x_relaxed_write32(csa, config->ss_status[i], TRCSSCSRn(i)); 449 if (etm4x_sspcicrn_present(drvdata, i)) 450 etm4x_relaxed_write32(csa, config->ss_pe_cmp[i], TRCSSPCICRn(i)); 451 } 452 for (i = 0; i < drvdata->nr_addr_cmp; i++) { 453 etm4x_relaxed_write64(csa, config->addr_val[i], TRCACVRn(i)); 454 etm4x_relaxed_write64(csa, config->addr_acc[i], TRCACATRn(i)); 455 } 456 for (i = 0; i < drvdata->numcidc; i++) 457 etm4x_relaxed_write64(csa, config->ctxid_pid[i], TRCCIDCVRn(i)); 458 etm4x_relaxed_write32(csa, config->ctxid_mask0, TRCCIDCCTLR0); 459 if (drvdata->numcidc > 4) 460 etm4x_relaxed_write32(csa, config->ctxid_mask1, TRCCIDCCTLR1); 461 462 for (i = 0; i < drvdata->numvmidc; i++) 463 etm4x_relaxed_write64(csa, config->vmid_val[i], TRCVMIDCVRn(i)); 464 etm4x_relaxed_write32(csa, config->vmid_mask0, TRCVMIDCCTLR0); 465 if (drvdata->numvmidc > 4) 466 etm4x_relaxed_write32(csa, config->vmid_mask1, TRCVMIDCCTLR1); 467 468 if (!drvdata->skip_power_up) { 469 u32 trcpdcr = etm4x_relaxed_read32(csa, TRCPDCR); 470 471 /* 472 * Request to keep the trace unit powered and also 473 * emulation of powerdown 474 */ 475 etm4x_relaxed_write32(csa, trcpdcr | TRCPDCR_PU, TRCPDCR); 476 } 477 478 /* 479 * ETE mandates that the TRCRSR is written to before 480 * enabling it. 481 */ 482 if (etm4x_is_ete(drvdata)) 483 etm4x_relaxed_write32(csa, TRCRSR_TA, TRCRSR); 484 485 etm4x_allow_trace(drvdata); 486 /* Enable the trace unit */ 487 etm4x_relaxed_write32(csa, 1, TRCPRGCTLR); 488 489 /* Synchronize the register updates for sysreg access */ 490 if (!csa->io_mem) 491 isb(); 492 493 /* wait for TRCSTATR.IDLE to go back down to '0' */ 494 if (coresight_timeout(csa, TRCSTATR, TRCSTATR_IDLE_BIT, 0)) 495 dev_err(etm_dev, 496 "timeout while waiting for Idle Trace Status\n"); 497 498 /* 499 * As recommended by section 4.3.7 ("Synchronization when using the 500 * memory-mapped interface") of ARM IHI 0064D 501 */ 502 dsb(sy); 503 isb(); 504 505 done: 506 etm4_cs_lock(drvdata, csa); 507 508 dev_dbg(etm_dev, "cpu: %d enable smp call done: %d\n", 509 drvdata->cpu, rc); 510 return rc; 511 } 512 513 static void etm4_enable_hw_smp_call(void *info) 514 { 515 struct etm4_enable_arg *arg = info; 516 517 if (WARN_ON(!arg)) 518 return; 519 arg->rc = etm4_enable_hw(arg->drvdata); 520 } 521 522 /* 523 * The goal of function etm4_config_timestamp_event() is to configure a 524 * counter that will tell the tracer to emit a timestamp packet when it 525 * reaches zero. This is done in order to get a more fine grained idea 526 * of when instructions are executed so that they can be correlated 527 * with execution on other CPUs. 528 * 529 * To do this the counter itself is configured to self reload and 530 * TRCRSCTLR1 (always true) used to get the counter to decrement. From 531 * there a resource selector is configured with the counter and the 532 * timestamp control register to use the resource selector to trigger the 533 * event that will insert a timestamp packet in the stream. 534 */ 535 static int etm4_config_timestamp_event(struct etmv4_drvdata *drvdata) 536 { 537 int ctridx, ret = -EINVAL; 538 int counter, rselector; 539 u32 val = 0; 540 struct etmv4_config *config = &drvdata->config; 541 542 /* No point in trying if we don't have at least one counter */ 543 if (!drvdata->nr_cntr) 544 goto out; 545 546 /* Find a counter that hasn't been initialised */ 547 for (ctridx = 0; ctridx < drvdata->nr_cntr; ctridx++) 548 if (config->cntr_val[ctridx] == 0) 549 break; 550 551 /* All the counters have been configured already, bail out */ 552 if (ctridx == drvdata->nr_cntr) { 553 pr_debug("%s: no available counter found\n", __func__); 554 ret = -ENOSPC; 555 goto out; 556 } 557 558 /* 559 * Searching for an available resource selector to use, starting at 560 * '2' since every implementation has at least 2 resource selector. 561 * ETMIDR4 gives the number of resource selector _pairs_, 562 * hence multiply by 2. 563 */ 564 for (rselector = 2; rselector < drvdata->nr_resource * 2; rselector++) 565 if (!config->res_ctrl[rselector]) 566 break; 567 568 if (rselector == drvdata->nr_resource * 2) { 569 pr_debug("%s: no available resource selector found\n", 570 __func__); 571 ret = -ENOSPC; 572 goto out; 573 } 574 575 /* Remember what counter we used */ 576 counter = 1 << ctridx; 577 578 /* 579 * Initialise original and reload counter value to the smallest 580 * possible value in order to get as much precision as we can. 581 */ 582 config->cntr_val[ctridx] = 1; 583 config->cntrldvr[ctridx] = 1; 584 585 /* Set the trace counter control register */ 586 val = 0x1 << 16 | /* Bit 16, reload counter automatically */ 587 0x0 << 7 | /* Select single resource selector */ 588 0x1; /* Resource selector 1, i.e always true */ 589 590 config->cntr_ctrl[ctridx] = val; 591 592 val = 0x2 << 16 | /* Group 0b0010 - Counter and sequencers */ 593 counter << 0; /* Counter to use */ 594 595 config->res_ctrl[rselector] = val; 596 597 val = 0x0 << 7 | /* Select single resource selector */ 598 rselector; /* Resource selector */ 599 600 config->ts_ctrl = val; 601 602 ret = 0; 603 out: 604 return ret; 605 } 606 607 static int etm4_parse_event_config(struct coresight_device *csdev, 608 struct perf_event *event) 609 { 610 int ret = 0; 611 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 612 struct etmv4_config *config = &drvdata->config; 613 struct perf_event_attr *attr = &event->attr; 614 unsigned long cfg_hash; 615 int preset; 616 617 /* Clear configuration from previous run */ 618 memset(config, 0, sizeof(struct etmv4_config)); 619 620 if (attr->exclude_kernel) 621 config->mode = ETM_MODE_EXCL_KERN; 622 623 if (attr->exclude_user) 624 config->mode = ETM_MODE_EXCL_USER; 625 626 /* Always start from the default config */ 627 etm4_set_default_config(config); 628 629 /* Configure filters specified on the perf cmd line, if any. */ 630 ret = etm4_set_event_filters(drvdata, event); 631 if (ret) 632 goto out; 633 634 /* Go from generic option to ETMv4 specifics */ 635 if (attr->config & BIT(ETM_OPT_CYCACC)) { 636 config->cfg |= BIT(4); 637 /* TRM: Must program this for cycacc to work */ 638 config->ccctlr = ETM_CYC_THRESHOLD_DEFAULT; 639 } 640 if (attr->config & BIT(ETM_OPT_TS)) { 641 /* 642 * Configure timestamps to be emitted at regular intervals in 643 * order to correlate instructions executed on different CPUs 644 * (CPU-wide trace scenarios). 645 */ 646 ret = etm4_config_timestamp_event(drvdata); 647 648 /* 649 * No need to go further if timestamp intervals can't 650 * be configured. 651 */ 652 if (ret) 653 goto out; 654 655 /* bit[11], Global timestamp tracing bit */ 656 config->cfg |= BIT(11); 657 } 658 659 if (attr->config & BIT(ETM_OPT_CTXTID)) 660 /* bit[6], Context ID tracing bit */ 661 config->cfg |= BIT(ETM4_CFG_BIT_CTXTID); 662 663 /* 664 * If set bit ETM_OPT_CTXTID2 in perf config, this asks to trace VMID 665 * for recording CONTEXTIDR_EL2. Do not enable VMID tracing if the 666 * kernel is not running in EL2. 667 */ 668 if (attr->config & BIT(ETM_OPT_CTXTID2)) { 669 if (!is_kernel_in_hyp_mode()) { 670 ret = -EINVAL; 671 goto out; 672 } 673 config->cfg |= BIT(ETM4_CFG_BIT_VMID) | BIT(ETM4_CFG_BIT_VMID_OPT); 674 } 675 676 /* return stack - enable if selected and supported */ 677 if ((attr->config & BIT(ETM_OPT_RETSTK)) && drvdata->retstack) 678 /* bit[12], Return stack enable bit */ 679 config->cfg |= BIT(12); 680 681 /* 682 * Set any selected configuration and preset. 683 * 684 * This extracts the values of PMU_FORMAT_ATTR(configid) and PMU_FORMAT_ATTR(preset) 685 * in the perf attributes defined in coresight-etm-perf.c. 686 * configid uses bits 63:32 of attr->config2, preset uses bits 3:0 of attr->config. 687 * A zero configid means no configuration active, preset = 0 means no preset selected. 688 */ 689 if (attr->config2 & GENMASK_ULL(63, 32)) { 690 cfg_hash = (u32)(attr->config2 >> 32); 691 preset = attr->config & 0xF; 692 ret = cscfg_csdev_enable_active_config(csdev, cfg_hash, preset); 693 } 694 695 out: 696 return ret; 697 } 698 699 static int etm4_enable_perf(struct coresight_device *csdev, 700 struct perf_event *event) 701 { 702 int ret = 0; 703 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 704 705 if (WARN_ON_ONCE(drvdata->cpu != smp_processor_id())) { 706 ret = -EINVAL; 707 goto out; 708 } 709 710 /* Configure the tracer based on the session's specifics */ 711 ret = etm4_parse_event_config(csdev, event); 712 if (ret) 713 goto out; 714 /* And enable it */ 715 ret = etm4_enable_hw(drvdata); 716 717 out: 718 return ret; 719 } 720 721 static int etm4_enable_sysfs(struct coresight_device *csdev) 722 { 723 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 724 struct etm4_enable_arg arg = { }; 725 int ret; 726 727 spin_lock(&drvdata->spinlock); 728 729 /* 730 * Executing etm4_enable_hw on the cpu whose ETM is being enabled 731 * ensures that register writes occur when cpu is powered. 732 */ 733 arg.drvdata = drvdata; 734 ret = smp_call_function_single(drvdata->cpu, 735 etm4_enable_hw_smp_call, &arg, 1); 736 if (!ret) 737 ret = arg.rc; 738 if (!ret) 739 drvdata->sticky_enable = true; 740 spin_unlock(&drvdata->spinlock); 741 742 if (!ret) 743 dev_dbg(&csdev->dev, "ETM tracing enabled\n"); 744 return ret; 745 } 746 747 static int etm4_enable(struct coresight_device *csdev, 748 struct perf_event *event, u32 mode) 749 { 750 int ret; 751 u32 val; 752 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 753 754 val = local_cmpxchg(&drvdata->mode, CS_MODE_DISABLED, mode); 755 756 /* Someone is already using the tracer */ 757 if (val) 758 return -EBUSY; 759 760 switch (mode) { 761 case CS_MODE_SYSFS: 762 ret = etm4_enable_sysfs(csdev); 763 break; 764 case CS_MODE_PERF: 765 ret = etm4_enable_perf(csdev, event); 766 break; 767 default: 768 ret = -EINVAL; 769 } 770 771 /* The tracer didn't start */ 772 if (ret) 773 local_set(&drvdata->mode, CS_MODE_DISABLED); 774 775 return ret; 776 } 777 778 static void etm4_disable_hw(void *info) 779 { 780 u32 control; 781 struct etmv4_drvdata *drvdata = info; 782 struct etmv4_config *config = &drvdata->config; 783 struct coresight_device *csdev = drvdata->csdev; 784 struct device *etm_dev = &csdev->dev; 785 struct csdev_access *csa = &csdev->access; 786 int i; 787 788 etm4_cs_unlock(drvdata, csa); 789 etm4_disable_arch_specific(drvdata); 790 791 if (!drvdata->skip_power_up) { 792 /* power can be removed from the trace unit now */ 793 control = etm4x_relaxed_read32(csa, TRCPDCR); 794 control &= ~TRCPDCR_PU; 795 etm4x_relaxed_write32(csa, control, TRCPDCR); 796 } 797 798 control = etm4x_relaxed_read32(csa, TRCPRGCTLR); 799 800 /* EN, bit[0] Trace unit enable bit */ 801 control &= ~0x1; 802 803 /* 804 * If the CPU supports v8.4 Trace filter Control, 805 * set the ETM to trace prohibited region. 806 */ 807 etm4x_prohibit_trace(drvdata); 808 /* 809 * Make sure everything completes before disabling, as recommended 810 * by section 7.3.77 ("TRCVICTLR, ViewInst Main Control Register, 811 * SSTATUS") of ARM IHI 0064D 812 */ 813 dsb(sy); 814 isb(); 815 /* Trace synchronization barrier, is a nop if not supported */ 816 tsb_csync(); 817 etm4x_relaxed_write32(csa, control, TRCPRGCTLR); 818 819 /* wait for TRCSTATR.PMSTABLE to go to '1' */ 820 if (coresight_timeout(csa, TRCSTATR, TRCSTATR_PMSTABLE_BIT, 1)) 821 dev_err(etm_dev, 822 "timeout while waiting for PM stable Trace Status\n"); 823 /* read the status of the single shot comparators */ 824 for (i = 0; i < drvdata->nr_ss_cmp; i++) { 825 config->ss_status[i] = 826 etm4x_relaxed_read32(csa, TRCSSCSRn(i)); 827 } 828 829 /* read back the current counter values */ 830 for (i = 0; i < drvdata->nr_cntr; i++) { 831 config->cntr_val[i] = 832 etm4x_relaxed_read32(csa, TRCCNTVRn(i)); 833 } 834 835 coresight_disclaim_device_unlocked(csdev); 836 etm4_cs_lock(drvdata, csa); 837 838 dev_dbg(&drvdata->csdev->dev, 839 "cpu: %d disable smp call done\n", drvdata->cpu); 840 } 841 842 static int etm4_disable_perf(struct coresight_device *csdev, 843 struct perf_event *event) 844 { 845 u32 control; 846 struct etm_filters *filters = event->hw.addr_filters; 847 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 848 struct perf_event_attr *attr = &event->attr; 849 850 if (WARN_ON_ONCE(drvdata->cpu != smp_processor_id())) 851 return -EINVAL; 852 853 etm4_disable_hw(drvdata); 854 /* 855 * The config_id occupies bits 63:32 of the config2 perf event attr 856 * field. If this is non-zero then we will have enabled a config. 857 */ 858 if (attr->config2 & GENMASK_ULL(63, 32)) 859 cscfg_csdev_disable_active_config(csdev); 860 861 /* 862 * Check if the start/stop logic was active when the unit was stopped. 863 * That way we can re-enable the start/stop logic when the process is 864 * scheduled again. Configuration of the start/stop logic happens in 865 * function etm4_set_event_filters(). 866 */ 867 control = etm4x_relaxed_read32(&csdev->access, TRCVICTLR); 868 /* TRCVICTLR::SSSTATUS, bit[9] */ 869 filters->ssstatus = (control & BIT(9)); 870 871 return 0; 872 } 873 874 static void etm4_disable_sysfs(struct coresight_device *csdev) 875 { 876 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 877 878 /* 879 * Taking hotplug lock here protects from clocks getting disabled 880 * with tracing being left on (crash scenario) if user disable occurs 881 * after cpu online mask indicates the cpu is offline but before the 882 * DYING hotplug callback is serviced by the ETM driver. 883 */ 884 cpus_read_lock(); 885 spin_lock(&drvdata->spinlock); 886 887 /* 888 * Executing etm4_disable_hw on the cpu whose ETM is being disabled 889 * ensures that register writes occur when cpu is powered. 890 */ 891 smp_call_function_single(drvdata->cpu, etm4_disable_hw, drvdata, 1); 892 893 spin_unlock(&drvdata->spinlock); 894 cpus_read_unlock(); 895 896 dev_dbg(&csdev->dev, "ETM tracing disabled\n"); 897 } 898 899 static void etm4_disable(struct coresight_device *csdev, 900 struct perf_event *event) 901 { 902 u32 mode; 903 struct etmv4_drvdata *drvdata = dev_get_drvdata(csdev->dev.parent); 904 905 /* 906 * For as long as the tracer isn't disabled another entity can't 907 * change its status. As such we can read the status here without 908 * fearing it will change under us. 909 */ 910 mode = local_read(&drvdata->mode); 911 912 switch (mode) { 913 case CS_MODE_DISABLED: 914 break; 915 case CS_MODE_SYSFS: 916 etm4_disable_sysfs(csdev); 917 break; 918 case CS_MODE_PERF: 919 etm4_disable_perf(csdev, event); 920 break; 921 } 922 923 if (mode) 924 local_set(&drvdata->mode, CS_MODE_DISABLED); 925 } 926 927 static const struct coresight_ops_source etm4_source_ops = { 928 .cpu_id = etm4_cpu_id, 929 .trace_id = etm4_trace_id, 930 .enable = etm4_enable, 931 .disable = etm4_disable, 932 }; 933 934 static const struct coresight_ops etm4_cs_ops = { 935 .source_ops = &etm4_source_ops, 936 }; 937 938 static inline bool cpu_supports_sysreg_trace(void) 939 { 940 u64 dfr0 = read_sysreg_s(SYS_ID_AA64DFR0_EL1); 941 942 return ((dfr0 >> ID_AA64DFR0_TRACEVER_SHIFT) & 0xfUL) > 0; 943 } 944 945 static bool etm4_init_sysreg_access(struct etmv4_drvdata *drvdata, 946 struct csdev_access *csa) 947 { 948 u32 devarch; 949 950 if (!cpu_supports_sysreg_trace()) 951 return false; 952 953 /* 954 * ETMs implementing sysreg access must implement TRCDEVARCH. 955 */ 956 devarch = read_etm4x_sysreg_const_offset(TRCDEVARCH); 957 switch (devarch & ETM_DEVARCH_ID_MASK) { 958 case ETM_DEVARCH_ETMv4x_ARCH: 959 *csa = (struct csdev_access) { 960 .io_mem = false, 961 .read = etm4x_sysreg_read, 962 .write = etm4x_sysreg_write, 963 }; 964 break; 965 case ETM_DEVARCH_ETE_ARCH: 966 *csa = (struct csdev_access) { 967 .io_mem = false, 968 .read = ete_sysreg_read, 969 .write = ete_sysreg_write, 970 }; 971 break; 972 default: 973 return false; 974 } 975 976 drvdata->arch = etm_devarch_to_arch(devarch); 977 return true; 978 } 979 980 static bool etm4_init_iomem_access(struct etmv4_drvdata *drvdata, 981 struct csdev_access *csa) 982 { 983 u32 devarch = readl_relaxed(drvdata->base + TRCDEVARCH); 984 u32 idr1 = readl_relaxed(drvdata->base + TRCIDR1); 985 986 /* 987 * All ETMs must implement TRCDEVARCH to indicate that 988 * the component is an ETMv4. To support any broken 989 * implementations we fall back to TRCIDR1 check, which 990 * is not really reliable. 991 */ 992 if ((devarch & ETM_DEVARCH_ID_MASK) == ETM_DEVARCH_ETMv4x_ARCH) { 993 drvdata->arch = etm_devarch_to_arch(devarch); 994 } else { 995 pr_warn("CPU%d: ETM4x incompatible TRCDEVARCH: %x, falling back to TRCIDR1\n", 996 smp_processor_id(), devarch); 997 998 if (ETM_TRCIDR1_ARCH_MAJOR(idr1) != ETM_TRCIDR1_ARCH_ETMv4) 999 return false; 1000 drvdata->arch = etm_trcidr_to_arch(idr1); 1001 } 1002 1003 *csa = CSDEV_ACCESS_IOMEM(drvdata->base); 1004 return true; 1005 } 1006 1007 static bool etm4_init_csdev_access(struct etmv4_drvdata *drvdata, 1008 struct csdev_access *csa) 1009 { 1010 /* 1011 * Always choose the memory mapped io, if there is 1012 * a memory map to prevent sysreg access on broken 1013 * systems. 1014 */ 1015 if (drvdata->base) 1016 return etm4_init_iomem_access(drvdata, csa); 1017 1018 if (etm4_init_sysreg_access(drvdata, csa)) 1019 return true; 1020 1021 return false; 1022 } 1023 1024 static void cpu_detect_trace_filtering(struct etmv4_drvdata *drvdata) 1025 { 1026 u64 dfr0 = read_sysreg(id_aa64dfr0_el1); 1027 u64 trfcr; 1028 1029 drvdata->trfcr = 0; 1030 if (!cpuid_feature_extract_unsigned_field(dfr0, ID_AA64DFR0_TRACE_FILT_SHIFT)) 1031 return; 1032 1033 /* 1034 * If the CPU supports v8.4 SelfHosted Tracing, enable 1035 * tracing at the kernel EL and EL0, forcing to use the 1036 * virtual time as the timestamp. 1037 */ 1038 trfcr = (TRFCR_ELx_TS_VIRTUAL | 1039 TRFCR_ELx_ExTRE | 1040 TRFCR_ELx_E0TRE); 1041 1042 /* If we are running at EL2, allow tracing the CONTEXTIDR_EL2. */ 1043 if (is_kernel_in_hyp_mode()) 1044 trfcr |= TRFCR_EL2_CX; 1045 1046 drvdata->trfcr = trfcr; 1047 } 1048 1049 static void etm4_init_arch_data(void *info) 1050 { 1051 u32 etmidr0; 1052 u32 etmidr2; 1053 u32 etmidr3; 1054 u32 etmidr4; 1055 u32 etmidr5; 1056 struct etm4_init_arg *init_arg = info; 1057 struct etmv4_drvdata *drvdata; 1058 struct csdev_access *csa; 1059 int i; 1060 1061 drvdata = init_arg->drvdata; 1062 csa = init_arg->csa; 1063 1064 /* 1065 * If we are unable to detect the access mechanism, 1066 * or unable to detect the trace unit type, fail 1067 * early. 1068 */ 1069 if (!etm4_init_csdev_access(drvdata, csa)) 1070 return; 1071 1072 /* Detect the support for OS Lock before we actually use it */ 1073 etm_detect_os_lock(drvdata, csa); 1074 1075 /* Make sure all registers are accessible */ 1076 etm4_os_unlock_csa(drvdata, csa); 1077 etm4_cs_unlock(drvdata, csa); 1078 1079 etm4_check_arch_features(drvdata, init_arg->pid); 1080 1081 /* find all capabilities of the tracing unit */ 1082 etmidr0 = etm4x_relaxed_read32(csa, TRCIDR0); 1083 1084 /* INSTP0, bits[2:1] P0 tracing support field */ 1085 if (BMVAL(etmidr0, 1, 1) && BMVAL(etmidr0, 2, 2)) 1086 drvdata->instrp0 = true; 1087 else 1088 drvdata->instrp0 = false; 1089 1090 /* TRCBB, bit[5] Branch broadcast tracing support bit */ 1091 if (BMVAL(etmidr0, 5, 5)) 1092 drvdata->trcbb = true; 1093 else 1094 drvdata->trcbb = false; 1095 1096 /* TRCCOND, bit[6] Conditional instruction tracing support bit */ 1097 if (BMVAL(etmidr0, 6, 6)) 1098 drvdata->trccond = true; 1099 else 1100 drvdata->trccond = false; 1101 1102 /* TRCCCI, bit[7] Cycle counting instruction bit */ 1103 if (BMVAL(etmidr0, 7, 7)) 1104 drvdata->trccci = true; 1105 else 1106 drvdata->trccci = false; 1107 1108 /* RETSTACK, bit[9] Return stack bit */ 1109 if (BMVAL(etmidr0, 9, 9)) 1110 drvdata->retstack = true; 1111 else 1112 drvdata->retstack = false; 1113 1114 /* NUMEVENT, bits[11:10] Number of events field */ 1115 drvdata->nr_event = BMVAL(etmidr0, 10, 11); 1116 /* QSUPP, bits[16:15] Q element support field */ 1117 drvdata->q_support = BMVAL(etmidr0, 15, 16); 1118 /* TSSIZE, bits[28:24] Global timestamp size field */ 1119 drvdata->ts_size = BMVAL(etmidr0, 24, 28); 1120 1121 /* maximum size of resources */ 1122 etmidr2 = etm4x_relaxed_read32(csa, TRCIDR2); 1123 /* CIDSIZE, bits[9:5] Indicates the Context ID size */ 1124 drvdata->ctxid_size = BMVAL(etmidr2, 5, 9); 1125 /* VMIDSIZE, bits[14:10] Indicates the VMID size */ 1126 drvdata->vmid_size = BMVAL(etmidr2, 10, 14); 1127 /* CCSIZE, bits[28:25] size of the cycle counter in bits minus 12 */ 1128 drvdata->ccsize = BMVAL(etmidr2, 25, 28); 1129 1130 etmidr3 = etm4x_relaxed_read32(csa, TRCIDR3); 1131 /* CCITMIN, bits[11:0] minimum threshold value that can be programmed */ 1132 drvdata->ccitmin = BMVAL(etmidr3, 0, 11); 1133 /* EXLEVEL_S, bits[19:16] Secure state instruction tracing */ 1134 drvdata->s_ex_level = BMVAL(etmidr3, 16, 19); 1135 drvdata->config.s_ex_level = drvdata->s_ex_level; 1136 /* EXLEVEL_NS, bits[23:20] Non-secure state instruction tracing */ 1137 drvdata->ns_ex_level = BMVAL(etmidr3, 20, 23); 1138 1139 /* 1140 * TRCERR, bit[24] whether a trace unit can trace a 1141 * system error exception. 1142 */ 1143 if (BMVAL(etmidr3, 24, 24)) 1144 drvdata->trc_error = true; 1145 else 1146 drvdata->trc_error = false; 1147 1148 /* SYNCPR, bit[25] implementation has a fixed synchronization period? */ 1149 if (BMVAL(etmidr3, 25, 25)) 1150 drvdata->syncpr = true; 1151 else 1152 drvdata->syncpr = false; 1153 1154 /* STALLCTL, bit[26] is stall control implemented? */ 1155 if (BMVAL(etmidr3, 26, 26)) 1156 drvdata->stallctl = true; 1157 else 1158 drvdata->stallctl = false; 1159 1160 /* SYSSTALL, bit[27] implementation can support stall control? */ 1161 if (BMVAL(etmidr3, 27, 27)) 1162 drvdata->sysstall = true; 1163 else 1164 drvdata->sysstall = false; 1165 1166 /* 1167 * NUMPROC - the number of PEs available for tracing, 5bits 1168 * = TRCIDR3.bits[13:12]bits[30:28] 1169 * bits[4:3] = TRCIDR3.bits[13:12] (since etm-v4.2, otherwise RES0) 1170 * bits[3:0] = TRCIDR3.bits[30:28] 1171 */ 1172 drvdata->nr_pe = (BMVAL(etmidr3, 12, 13) << 3) | BMVAL(etmidr3, 28, 30); 1173 1174 /* NOOVERFLOW, bit[31] is trace overflow prevention supported */ 1175 if (BMVAL(etmidr3, 31, 31)) 1176 drvdata->nooverflow = true; 1177 else 1178 drvdata->nooverflow = false; 1179 1180 /* number of resources trace unit supports */ 1181 etmidr4 = etm4x_relaxed_read32(csa, TRCIDR4); 1182 /* NUMACPAIRS, bits[0:3] number of addr comparator pairs for tracing */ 1183 drvdata->nr_addr_cmp = BMVAL(etmidr4, 0, 3); 1184 /* NUMPC, bits[15:12] number of PE comparator inputs for tracing */ 1185 drvdata->nr_pe_cmp = BMVAL(etmidr4, 12, 15); 1186 /* 1187 * NUMRSPAIR, bits[19:16] 1188 * The number of resource pairs conveyed by the HW starts at 0, i.e a 1189 * value of 0x0 indicate 1 resource pair, 0x1 indicate two and so on. 1190 * As such add 1 to the value of NUMRSPAIR for a better representation. 1191 * 1192 * For ETM v4.3 and later, 0x0 means 0, and no pairs are available - 1193 * the default TRUE and FALSE resource selectors are omitted. 1194 * Otherwise for values 0x1 and above the number is N + 1 as per v4.2. 1195 */ 1196 drvdata->nr_resource = BMVAL(etmidr4, 16, 19); 1197 if ((drvdata->arch < ETM_ARCH_V4_3) || (drvdata->nr_resource > 0)) 1198 drvdata->nr_resource += 1; 1199 /* 1200 * NUMSSCC, bits[23:20] the number of single-shot 1201 * comparator control for tracing. Read any status regs as these 1202 * also contain RO capability data. 1203 */ 1204 drvdata->nr_ss_cmp = BMVAL(etmidr4, 20, 23); 1205 for (i = 0; i < drvdata->nr_ss_cmp; i++) { 1206 drvdata->config.ss_status[i] = 1207 etm4x_relaxed_read32(csa, TRCSSCSRn(i)); 1208 } 1209 /* NUMCIDC, bits[27:24] number of Context ID comparators for tracing */ 1210 drvdata->numcidc = BMVAL(etmidr4, 24, 27); 1211 /* NUMVMIDC, bits[31:28] number of VMID comparators for tracing */ 1212 drvdata->numvmidc = BMVAL(etmidr4, 28, 31); 1213 1214 etmidr5 = etm4x_relaxed_read32(csa, TRCIDR5); 1215 /* NUMEXTIN, bits[8:0] number of external inputs implemented */ 1216 drvdata->nr_ext_inp = BMVAL(etmidr5, 0, 8); 1217 /* TRACEIDSIZE, bits[21:16] indicates the trace ID width */ 1218 drvdata->trcid_size = BMVAL(etmidr5, 16, 21); 1219 /* ATBTRIG, bit[22] implementation can support ATB triggers? */ 1220 if (BMVAL(etmidr5, 22, 22)) 1221 drvdata->atbtrig = true; 1222 else 1223 drvdata->atbtrig = false; 1224 /* 1225 * LPOVERRIDE, bit[23] implementation supports 1226 * low-power state override 1227 */ 1228 if (BMVAL(etmidr5, 23, 23) && (!drvdata->skip_power_up)) 1229 drvdata->lpoverride = true; 1230 else 1231 drvdata->lpoverride = false; 1232 /* NUMSEQSTATE, bits[27:25] number of sequencer states implemented */ 1233 drvdata->nrseqstate = BMVAL(etmidr5, 25, 27); 1234 /* NUMCNTR, bits[30:28] number of counters available for tracing */ 1235 drvdata->nr_cntr = BMVAL(etmidr5, 28, 30); 1236 etm4_cs_lock(drvdata, csa); 1237 cpu_detect_trace_filtering(drvdata); 1238 } 1239 1240 static inline u32 etm4_get_victlr_access_type(struct etmv4_config *config) 1241 { 1242 return etm4_get_access_type(config) << TRCVICTLR_EXLEVEL_SHIFT; 1243 } 1244 1245 /* Set ELx trace filter access in the TRCVICTLR register */ 1246 static void etm4_set_victlr_access(struct etmv4_config *config) 1247 { 1248 config->vinst_ctrl &= ~TRCVICTLR_EXLEVEL_MASK; 1249 config->vinst_ctrl |= etm4_get_victlr_access_type(config); 1250 } 1251 1252 static void etm4_set_default_config(struct etmv4_config *config) 1253 { 1254 /* disable all events tracing */ 1255 config->eventctrl0 = 0x0; 1256 config->eventctrl1 = 0x0; 1257 1258 /* disable stalling */ 1259 config->stall_ctrl = 0x0; 1260 1261 /* enable trace synchronization every 4096 bytes, if available */ 1262 config->syncfreq = 0xC; 1263 1264 /* disable timestamp event */ 1265 config->ts_ctrl = 0x0; 1266 1267 /* TRCVICTLR::EVENT = 0x01, select the always on logic */ 1268 config->vinst_ctrl = BIT(0); 1269 1270 /* TRCVICTLR::EXLEVEL_NS:EXLEVELS: Set kernel / user filtering */ 1271 etm4_set_victlr_access(config); 1272 } 1273 1274 static u64 etm4_get_ns_access_type(struct etmv4_config *config) 1275 { 1276 u64 access_type = 0; 1277 1278 /* 1279 * EXLEVEL_NS, for NonSecure Exception levels. 1280 * The mask here is a generic value and must be 1281 * shifted to the corresponding field for the registers 1282 */ 1283 if (!is_kernel_in_hyp_mode()) { 1284 /* Stay away from hypervisor mode for non-VHE */ 1285 access_type = ETM_EXLEVEL_NS_HYP; 1286 if (config->mode & ETM_MODE_EXCL_KERN) 1287 access_type |= ETM_EXLEVEL_NS_OS; 1288 } else if (config->mode & ETM_MODE_EXCL_KERN) { 1289 access_type = ETM_EXLEVEL_NS_HYP; 1290 } 1291 1292 if (config->mode & ETM_MODE_EXCL_USER) 1293 access_type |= ETM_EXLEVEL_NS_APP; 1294 1295 return access_type; 1296 } 1297 1298 /* 1299 * Construct the exception level masks for a given config. 1300 * This must be shifted to the corresponding register field 1301 * for usage. 1302 */ 1303 static u64 etm4_get_access_type(struct etmv4_config *config) 1304 { 1305 /* All Secure exception levels are excluded from the trace */ 1306 return etm4_get_ns_access_type(config) | (u64)config->s_ex_level; 1307 } 1308 1309 static u64 etm4_get_comparator_access_type(struct etmv4_config *config) 1310 { 1311 return etm4_get_access_type(config) << TRCACATR_EXLEVEL_SHIFT; 1312 } 1313 1314 static void etm4_set_comparator_filter(struct etmv4_config *config, 1315 u64 start, u64 stop, int comparator) 1316 { 1317 u64 access_type = etm4_get_comparator_access_type(config); 1318 1319 /* First half of default address comparator */ 1320 config->addr_val[comparator] = start; 1321 config->addr_acc[comparator] = access_type; 1322 config->addr_type[comparator] = ETM_ADDR_TYPE_RANGE; 1323 1324 /* Second half of default address comparator */ 1325 config->addr_val[comparator + 1] = stop; 1326 config->addr_acc[comparator + 1] = access_type; 1327 config->addr_type[comparator + 1] = ETM_ADDR_TYPE_RANGE; 1328 1329 /* 1330 * Configure the ViewInst function to include this address range 1331 * comparator. 1332 * 1333 * @comparator is divided by two since it is the index in the 1334 * etmv4_config::addr_val array but register TRCVIIECTLR deals with 1335 * address range comparator _pairs_. 1336 * 1337 * Therefore: 1338 * index 0 -> compatator pair 0 1339 * index 2 -> comparator pair 1 1340 * index 4 -> comparator pair 2 1341 * ... 1342 * index 14 -> comparator pair 7 1343 */ 1344 config->viiectlr |= BIT(comparator / 2); 1345 } 1346 1347 static void etm4_set_start_stop_filter(struct etmv4_config *config, 1348 u64 address, int comparator, 1349 enum etm_addr_type type) 1350 { 1351 int shift; 1352 u64 access_type = etm4_get_comparator_access_type(config); 1353 1354 /* Configure the comparator */ 1355 config->addr_val[comparator] = address; 1356 config->addr_acc[comparator] = access_type; 1357 config->addr_type[comparator] = type; 1358 1359 /* 1360 * Configure ViewInst Start-Stop control register. 1361 * Addresses configured to start tracing go from bit 0 to n-1, 1362 * while those configured to stop tracing from 16 to 16 + n-1. 1363 */ 1364 shift = (type == ETM_ADDR_TYPE_START ? 0 : 16); 1365 config->vissctlr |= BIT(shift + comparator); 1366 } 1367 1368 static void etm4_set_default_filter(struct etmv4_config *config) 1369 { 1370 /* Trace everything 'default' filter achieved by no filtering */ 1371 config->viiectlr = 0x0; 1372 1373 /* 1374 * TRCVICTLR::SSSTATUS == 1, the start-stop logic is 1375 * in the started state 1376 */ 1377 config->vinst_ctrl |= BIT(9); 1378 config->mode |= ETM_MODE_VIEWINST_STARTSTOP; 1379 1380 /* No start-stop filtering for ViewInst */ 1381 config->vissctlr = 0x0; 1382 } 1383 1384 static void etm4_set_default(struct etmv4_config *config) 1385 { 1386 if (WARN_ON_ONCE(!config)) 1387 return; 1388 1389 /* 1390 * Make default initialisation trace everything 1391 * 1392 * This is done by a minimum default config sufficient to enable 1393 * full instruction trace - with a default filter for trace all 1394 * achieved by having no filtering. 1395 */ 1396 etm4_set_default_config(config); 1397 etm4_set_default_filter(config); 1398 } 1399 1400 static int etm4_get_next_comparator(struct etmv4_drvdata *drvdata, u32 type) 1401 { 1402 int nr_comparator, index = 0; 1403 struct etmv4_config *config = &drvdata->config; 1404 1405 /* 1406 * nr_addr_cmp holds the number of comparator _pair_, so time 2 1407 * for the total number of comparators. 1408 */ 1409 nr_comparator = drvdata->nr_addr_cmp * 2; 1410 1411 /* Go through the tally of comparators looking for a free one. */ 1412 while (index < nr_comparator) { 1413 switch (type) { 1414 case ETM_ADDR_TYPE_RANGE: 1415 if (config->addr_type[index] == ETM_ADDR_TYPE_NONE && 1416 config->addr_type[index + 1] == ETM_ADDR_TYPE_NONE) 1417 return index; 1418 1419 /* Address range comparators go in pairs */ 1420 index += 2; 1421 break; 1422 case ETM_ADDR_TYPE_START: 1423 case ETM_ADDR_TYPE_STOP: 1424 if (config->addr_type[index] == ETM_ADDR_TYPE_NONE) 1425 return index; 1426 1427 /* Start/stop address can have odd indexes */ 1428 index += 1; 1429 break; 1430 default: 1431 return -EINVAL; 1432 } 1433 } 1434 1435 /* If we are here all the comparators have been used. */ 1436 return -ENOSPC; 1437 } 1438 1439 static int etm4_set_event_filters(struct etmv4_drvdata *drvdata, 1440 struct perf_event *event) 1441 { 1442 int i, comparator, ret = 0; 1443 u64 address; 1444 struct etmv4_config *config = &drvdata->config; 1445 struct etm_filters *filters = event->hw.addr_filters; 1446 1447 if (!filters) 1448 goto default_filter; 1449 1450 /* Sync events with what Perf got */ 1451 perf_event_addr_filters_sync(event); 1452 1453 /* 1454 * If there are no filters to deal with simply go ahead with 1455 * the default filter, i.e the entire address range. 1456 */ 1457 if (!filters->nr_filters) 1458 goto default_filter; 1459 1460 for (i = 0; i < filters->nr_filters; i++) { 1461 struct etm_filter *filter = &filters->etm_filter[i]; 1462 enum etm_addr_type type = filter->type; 1463 1464 /* See if a comparator is free. */ 1465 comparator = etm4_get_next_comparator(drvdata, type); 1466 if (comparator < 0) { 1467 ret = comparator; 1468 goto out; 1469 } 1470 1471 switch (type) { 1472 case ETM_ADDR_TYPE_RANGE: 1473 etm4_set_comparator_filter(config, 1474 filter->start_addr, 1475 filter->stop_addr, 1476 comparator); 1477 /* 1478 * TRCVICTLR::SSSTATUS == 1, the start-stop logic is 1479 * in the started state 1480 */ 1481 config->vinst_ctrl |= BIT(9); 1482 1483 /* No start-stop filtering for ViewInst */ 1484 config->vissctlr = 0x0; 1485 break; 1486 case ETM_ADDR_TYPE_START: 1487 case ETM_ADDR_TYPE_STOP: 1488 /* Get the right start or stop address */ 1489 address = (type == ETM_ADDR_TYPE_START ? 1490 filter->start_addr : 1491 filter->stop_addr); 1492 1493 /* Configure comparator */ 1494 etm4_set_start_stop_filter(config, address, 1495 comparator, type); 1496 1497 /* 1498 * If filters::ssstatus == 1, trace acquisition was 1499 * started but the process was yanked away before the 1500 * the stop address was hit. As such the start/stop 1501 * logic needs to be re-started so that tracing can 1502 * resume where it left. 1503 * 1504 * The start/stop logic status when a process is 1505 * scheduled out is checked in function 1506 * etm4_disable_perf(). 1507 */ 1508 if (filters->ssstatus) 1509 config->vinst_ctrl |= BIT(9); 1510 1511 /* No include/exclude filtering for ViewInst */ 1512 config->viiectlr = 0x0; 1513 break; 1514 default: 1515 ret = -EINVAL; 1516 goto out; 1517 } 1518 } 1519 1520 goto out; 1521 1522 1523 default_filter: 1524 etm4_set_default_filter(config); 1525 1526 out: 1527 return ret; 1528 } 1529 1530 void etm4_config_trace_mode(struct etmv4_config *config) 1531 { 1532 u32 mode; 1533 1534 mode = config->mode; 1535 mode &= (ETM_MODE_EXCL_KERN | ETM_MODE_EXCL_USER); 1536 1537 /* excluding kernel AND user space doesn't make sense */ 1538 WARN_ON_ONCE(mode == (ETM_MODE_EXCL_KERN | ETM_MODE_EXCL_USER)); 1539 1540 /* nothing to do if neither flags are set */ 1541 if (!(mode & ETM_MODE_EXCL_KERN) && !(mode & ETM_MODE_EXCL_USER)) 1542 return; 1543 1544 etm4_set_victlr_access(config); 1545 } 1546 1547 static int etm4_online_cpu(unsigned int cpu) 1548 { 1549 if (!etmdrvdata[cpu]) 1550 return 0; 1551 1552 if (etmdrvdata[cpu]->boot_enable && !etmdrvdata[cpu]->sticky_enable) 1553 coresight_enable(etmdrvdata[cpu]->csdev); 1554 return 0; 1555 } 1556 1557 static int etm4_starting_cpu(unsigned int cpu) 1558 { 1559 if (!etmdrvdata[cpu]) 1560 return 0; 1561 1562 spin_lock(&etmdrvdata[cpu]->spinlock); 1563 if (!etmdrvdata[cpu]->os_unlock) 1564 etm4_os_unlock(etmdrvdata[cpu]); 1565 1566 if (local_read(&etmdrvdata[cpu]->mode)) 1567 etm4_enable_hw(etmdrvdata[cpu]); 1568 spin_unlock(&etmdrvdata[cpu]->spinlock); 1569 return 0; 1570 } 1571 1572 static int etm4_dying_cpu(unsigned int cpu) 1573 { 1574 if (!etmdrvdata[cpu]) 1575 return 0; 1576 1577 spin_lock(&etmdrvdata[cpu]->spinlock); 1578 if (local_read(&etmdrvdata[cpu]->mode)) 1579 etm4_disable_hw(etmdrvdata[cpu]); 1580 spin_unlock(&etmdrvdata[cpu]->spinlock); 1581 return 0; 1582 } 1583 1584 static void etm4_init_trace_id(struct etmv4_drvdata *drvdata) 1585 { 1586 drvdata->trcid = coresight_get_trace_id(drvdata->cpu); 1587 } 1588 1589 static int __etm4_cpu_save(struct etmv4_drvdata *drvdata) 1590 { 1591 int i, ret = 0; 1592 struct etmv4_save_state *state; 1593 struct coresight_device *csdev = drvdata->csdev; 1594 struct csdev_access *csa; 1595 struct device *etm_dev; 1596 1597 if (WARN_ON(!csdev)) 1598 return -ENODEV; 1599 1600 etm_dev = &csdev->dev; 1601 csa = &csdev->access; 1602 1603 /* 1604 * As recommended by 3.4.1 ("The procedure when powering down the PE") 1605 * of ARM IHI 0064D 1606 */ 1607 dsb(sy); 1608 isb(); 1609 1610 etm4_cs_unlock(drvdata, csa); 1611 /* Lock the OS lock to disable trace and external debugger access */ 1612 etm4_os_lock(drvdata); 1613 1614 /* wait for TRCSTATR.PMSTABLE to go up */ 1615 if (coresight_timeout(csa, TRCSTATR, TRCSTATR_PMSTABLE_BIT, 1)) { 1616 dev_err(etm_dev, 1617 "timeout while waiting for PM Stable Status\n"); 1618 etm4_os_unlock(drvdata); 1619 ret = -EBUSY; 1620 goto out; 1621 } 1622 1623 state = drvdata->save_state; 1624 1625 state->trcprgctlr = etm4x_read32(csa, TRCPRGCTLR); 1626 if (drvdata->nr_pe) 1627 state->trcprocselr = etm4x_read32(csa, TRCPROCSELR); 1628 state->trcconfigr = etm4x_read32(csa, TRCCONFIGR); 1629 state->trcauxctlr = etm4x_read32(csa, TRCAUXCTLR); 1630 state->trceventctl0r = etm4x_read32(csa, TRCEVENTCTL0R); 1631 state->trceventctl1r = etm4x_read32(csa, TRCEVENTCTL1R); 1632 if (drvdata->stallctl) 1633 state->trcstallctlr = etm4x_read32(csa, TRCSTALLCTLR); 1634 state->trctsctlr = etm4x_read32(csa, TRCTSCTLR); 1635 state->trcsyncpr = etm4x_read32(csa, TRCSYNCPR); 1636 state->trcccctlr = etm4x_read32(csa, TRCCCCTLR); 1637 state->trcbbctlr = etm4x_read32(csa, TRCBBCTLR); 1638 state->trctraceidr = etm4x_read32(csa, TRCTRACEIDR); 1639 state->trcqctlr = etm4x_read32(csa, TRCQCTLR); 1640 1641 state->trcvictlr = etm4x_read32(csa, TRCVICTLR); 1642 state->trcviiectlr = etm4x_read32(csa, TRCVIIECTLR); 1643 state->trcvissctlr = etm4x_read32(csa, TRCVISSCTLR); 1644 if (drvdata->nr_pe_cmp) 1645 state->trcvipcssctlr = etm4x_read32(csa, TRCVIPCSSCTLR); 1646 state->trcvdctlr = etm4x_read32(csa, TRCVDCTLR); 1647 state->trcvdsacctlr = etm4x_read32(csa, TRCVDSACCTLR); 1648 state->trcvdarcctlr = etm4x_read32(csa, TRCVDARCCTLR); 1649 1650 for (i = 0; i < drvdata->nrseqstate - 1; i++) 1651 state->trcseqevr[i] = etm4x_read32(csa, TRCSEQEVRn(i)); 1652 1653 state->trcseqrstevr = etm4x_read32(csa, TRCSEQRSTEVR); 1654 state->trcseqstr = etm4x_read32(csa, TRCSEQSTR); 1655 state->trcextinselr = etm4x_read32(csa, TRCEXTINSELR); 1656 1657 for (i = 0; i < drvdata->nr_cntr; i++) { 1658 state->trccntrldvr[i] = etm4x_read32(csa, TRCCNTRLDVRn(i)); 1659 state->trccntctlr[i] = etm4x_read32(csa, TRCCNTCTLRn(i)); 1660 state->trccntvr[i] = etm4x_read32(csa, TRCCNTVRn(i)); 1661 } 1662 1663 for (i = 0; i < drvdata->nr_resource * 2; i++) 1664 state->trcrsctlr[i] = etm4x_read32(csa, TRCRSCTLRn(i)); 1665 1666 for (i = 0; i < drvdata->nr_ss_cmp; i++) { 1667 state->trcssccr[i] = etm4x_read32(csa, TRCSSCCRn(i)); 1668 state->trcsscsr[i] = etm4x_read32(csa, TRCSSCSRn(i)); 1669 if (etm4x_sspcicrn_present(drvdata, i)) 1670 state->trcsspcicr[i] = etm4x_read32(csa, TRCSSPCICRn(i)); 1671 } 1672 1673 for (i = 0; i < drvdata->nr_addr_cmp * 2; i++) { 1674 state->trcacvr[i] = etm4x_read64(csa, TRCACVRn(i)); 1675 state->trcacatr[i] = etm4x_read64(csa, TRCACATRn(i)); 1676 } 1677 1678 /* 1679 * Data trace stream is architecturally prohibited for A profile cores 1680 * so we don't save (or later restore) trcdvcvr and trcdvcmr - As per 1681 * section 1.3.4 ("Possible functional configurations of an ETMv4 trace 1682 * unit") of ARM IHI 0064D. 1683 */ 1684 1685 for (i = 0; i < drvdata->numcidc; i++) 1686 state->trccidcvr[i] = etm4x_read64(csa, TRCCIDCVRn(i)); 1687 1688 for (i = 0; i < drvdata->numvmidc; i++) 1689 state->trcvmidcvr[i] = etm4x_read64(csa, TRCVMIDCVRn(i)); 1690 1691 state->trccidcctlr0 = etm4x_read32(csa, TRCCIDCCTLR0); 1692 if (drvdata->numcidc > 4) 1693 state->trccidcctlr1 = etm4x_read32(csa, TRCCIDCCTLR1); 1694 1695 state->trcvmidcctlr0 = etm4x_read32(csa, TRCVMIDCCTLR0); 1696 if (drvdata->numvmidc > 4) 1697 state->trcvmidcctlr0 = etm4x_read32(csa, TRCVMIDCCTLR1); 1698 1699 state->trcclaimset = etm4x_read32(csa, TRCCLAIMCLR); 1700 1701 if (!drvdata->skip_power_up) 1702 state->trcpdcr = etm4x_read32(csa, TRCPDCR); 1703 1704 /* wait for TRCSTATR.IDLE to go up */ 1705 if (coresight_timeout(csa, TRCSTATR, TRCSTATR_IDLE_BIT, 1)) { 1706 dev_err(etm_dev, 1707 "timeout while waiting for Idle Trace Status\n"); 1708 etm4_os_unlock(drvdata); 1709 ret = -EBUSY; 1710 goto out; 1711 } 1712 1713 drvdata->state_needs_restore = true; 1714 1715 /* 1716 * Power can be removed from the trace unit now. We do this to 1717 * potentially save power on systems that respect the TRCPDCR_PU 1718 * despite requesting software to save/restore state. 1719 */ 1720 if (!drvdata->skip_power_up) 1721 etm4x_relaxed_write32(csa, (state->trcpdcr & ~TRCPDCR_PU), 1722 TRCPDCR); 1723 out: 1724 etm4_cs_lock(drvdata, csa); 1725 return ret; 1726 } 1727 1728 static int etm4_cpu_save(struct etmv4_drvdata *drvdata) 1729 { 1730 int ret = 0; 1731 1732 /* Save the TRFCR irrespective of whether the ETM is ON */ 1733 if (drvdata->trfcr) 1734 drvdata->save_trfcr = read_trfcr(); 1735 /* 1736 * Save and restore the ETM Trace registers only if 1737 * the ETM is active. 1738 */ 1739 if (local_read(&drvdata->mode) && drvdata->save_state) 1740 ret = __etm4_cpu_save(drvdata); 1741 return ret; 1742 } 1743 1744 static void __etm4_cpu_restore(struct etmv4_drvdata *drvdata) 1745 { 1746 int i; 1747 struct etmv4_save_state *state = drvdata->save_state; 1748 struct csdev_access tmp_csa = CSDEV_ACCESS_IOMEM(drvdata->base); 1749 struct csdev_access *csa = &tmp_csa; 1750 1751 etm4_cs_unlock(drvdata, csa); 1752 etm4x_relaxed_write32(csa, state->trcclaimset, TRCCLAIMSET); 1753 1754 etm4x_relaxed_write32(csa, state->trcprgctlr, TRCPRGCTLR); 1755 if (drvdata->nr_pe) 1756 etm4x_relaxed_write32(csa, state->trcprocselr, TRCPROCSELR); 1757 etm4x_relaxed_write32(csa, state->trcconfigr, TRCCONFIGR); 1758 etm4x_relaxed_write32(csa, state->trcauxctlr, TRCAUXCTLR); 1759 etm4x_relaxed_write32(csa, state->trceventctl0r, TRCEVENTCTL0R); 1760 etm4x_relaxed_write32(csa, state->trceventctl1r, TRCEVENTCTL1R); 1761 if (drvdata->stallctl) 1762 etm4x_relaxed_write32(csa, state->trcstallctlr, TRCSTALLCTLR); 1763 etm4x_relaxed_write32(csa, state->trctsctlr, TRCTSCTLR); 1764 etm4x_relaxed_write32(csa, state->trcsyncpr, TRCSYNCPR); 1765 etm4x_relaxed_write32(csa, state->trcccctlr, TRCCCCTLR); 1766 etm4x_relaxed_write32(csa, state->trcbbctlr, TRCBBCTLR); 1767 etm4x_relaxed_write32(csa, state->trctraceidr, TRCTRACEIDR); 1768 etm4x_relaxed_write32(csa, state->trcqctlr, TRCQCTLR); 1769 1770 etm4x_relaxed_write32(csa, state->trcvictlr, TRCVICTLR); 1771 etm4x_relaxed_write32(csa, state->trcviiectlr, TRCVIIECTLR); 1772 etm4x_relaxed_write32(csa, state->trcvissctlr, TRCVISSCTLR); 1773 if (drvdata->nr_pe_cmp) 1774 etm4x_relaxed_write32(csa, state->trcvipcssctlr, TRCVIPCSSCTLR); 1775 etm4x_relaxed_write32(csa, state->trcvdctlr, TRCVDCTLR); 1776 etm4x_relaxed_write32(csa, state->trcvdsacctlr, TRCVDSACCTLR); 1777 etm4x_relaxed_write32(csa, state->trcvdarcctlr, TRCVDARCCTLR); 1778 1779 for (i = 0; i < drvdata->nrseqstate - 1; i++) 1780 etm4x_relaxed_write32(csa, state->trcseqevr[i], TRCSEQEVRn(i)); 1781 1782 etm4x_relaxed_write32(csa, state->trcseqrstevr, TRCSEQRSTEVR); 1783 etm4x_relaxed_write32(csa, state->trcseqstr, TRCSEQSTR); 1784 etm4x_relaxed_write32(csa, state->trcextinselr, TRCEXTINSELR); 1785 1786 for (i = 0; i < drvdata->nr_cntr; i++) { 1787 etm4x_relaxed_write32(csa, state->trccntrldvr[i], TRCCNTRLDVRn(i)); 1788 etm4x_relaxed_write32(csa, state->trccntctlr[i], TRCCNTCTLRn(i)); 1789 etm4x_relaxed_write32(csa, state->trccntvr[i], TRCCNTVRn(i)); 1790 } 1791 1792 for (i = 0; i < drvdata->nr_resource * 2; i++) 1793 etm4x_relaxed_write32(csa, state->trcrsctlr[i], TRCRSCTLRn(i)); 1794 1795 for (i = 0; i < drvdata->nr_ss_cmp; i++) { 1796 etm4x_relaxed_write32(csa, state->trcssccr[i], TRCSSCCRn(i)); 1797 etm4x_relaxed_write32(csa, state->trcsscsr[i], TRCSSCSRn(i)); 1798 if (etm4x_sspcicrn_present(drvdata, i)) 1799 etm4x_relaxed_write32(csa, state->trcsspcicr[i], TRCSSPCICRn(i)); 1800 } 1801 1802 for (i = 0; i < drvdata->nr_addr_cmp * 2; i++) { 1803 etm4x_relaxed_write64(csa, state->trcacvr[i], TRCACVRn(i)); 1804 etm4x_relaxed_write64(csa, state->trcacatr[i], TRCACATRn(i)); 1805 } 1806 1807 for (i = 0; i < drvdata->numcidc; i++) 1808 etm4x_relaxed_write64(csa, state->trccidcvr[i], TRCCIDCVRn(i)); 1809 1810 for (i = 0; i < drvdata->numvmidc; i++) 1811 etm4x_relaxed_write64(csa, state->trcvmidcvr[i], TRCVMIDCVRn(i)); 1812 1813 etm4x_relaxed_write32(csa, state->trccidcctlr0, TRCCIDCCTLR0); 1814 if (drvdata->numcidc > 4) 1815 etm4x_relaxed_write32(csa, state->trccidcctlr1, TRCCIDCCTLR1); 1816 1817 etm4x_relaxed_write32(csa, state->trcvmidcctlr0, TRCVMIDCCTLR0); 1818 if (drvdata->numvmidc > 4) 1819 etm4x_relaxed_write32(csa, state->trcvmidcctlr0, TRCVMIDCCTLR1); 1820 1821 etm4x_relaxed_write32(csa, state->trcclaimset, TRCCLAIMSET); 1822 1823 if (!drvdata->skip_power_up) 1824 etm4x_relaxed_write32(csa, state->trcpdcr, TRCPDCR); 1825 1826 drvdata->state_needs_restore = false; 1827 1828 /* 1829 * As recommended by section 4.3.7 ("Synchronization when using the 1830 * memory-mapped interface") of ARM IHI 0064D 1831 */ 1832 dsb(sy); 1833 isb(); 1834 1835 /* Unlock the OS lock to re-enable trace and external debug access */ 1836 etm4_os_unlock(drvdata); 1837 etm4_cs_lock(drvdata, csa); 1838 } 1839 1840 static void etm4_cpu_restore(struct etmv4_drvdata *drvdata) 1841 { 1842 if (drvdata->trfcr) 1843 write_trfcr(drvdata->save_trfcr); 1844 if (drvdata->state_needs_restore) 1845 __etm4_cpu_restore(drvdata); 1846 } 1847 1848 static int etm4_cpu_pm_notify(struct notifier_block *nb, unsigned long cmd, 1849 void *v) 1850 { 1851 struct etmv4_drvdata *drvdata; 1852 unsigned int cpu = smp_processor_id(); 1853 1854 if (!etmdrvdata[cpu]) 1855 return NOTIFY_OK; 1856 1857 drvdata = etmdrvdata[cpu]; 1858 1859 if (WARN_ON_ONCE(drvdata->cpu != cpu)) 1860 return NOTIFY_BAD; 1861 1862 switch (cmd) { 1863 case CPU_PM_ENTER: 1864 if (etm4_cpu_save(drvdata)) 1865 return NOTIFY_BAD; 1866 break; 1867 case CPU_PM_EXIT: 1868 case CPU_PM_ENTER_FAILED: 1869 etm4_cpu_restore(drvdata); 1870 break; 1871 default: 1872 return NOTIFY_DONE; 1873 } 1874 1875 return NOTIFY_OK; 1876 } 1877 1878 static struct notifier_block etm4_cpu_pm_nb = { 1879 .notifier_call = etm4_cpu_pm_notify, 1880 }; 1881 1882 /* Setup PM. Deals with error conditions and counts */ 1883 static int __init etm4_pm_setup(void) 1884 { 1885 int ret; 1886 1887 ret = cpu_pm_register_notifier(&etm4_cpu_pm_nb); 1888 if (ret) 1889 return ret; 1890 1891 ret = cpuhp_setup_state_nocalls(CPUHP_AP_ARM_CORESIGHT_STARTING, 1892 "arm/coresight4:starting", 1893 etm4_starting_cpu, etm4_dying_cpu); 1894 1895 if (ret) 1896 goto unregister_notifier; 1897 1898 ret = cpuhp_setup_state_nocalls(CPUHP_AP_ONLINE_DYN, 1899 "arm/coresight4:online", 1900 etm4_online_cpu, NULL); 1901 1902 /* HP dyn state ID returned in ret on success */ 1903 if (ret > 0) { 1904 hp_online = ret; 1905 return 0; 1906 } 1907 1908 /* failed dyn state - remove others */ 1909 cpuhp_remove_state_nocalls(CPUHP_AP_ARM_CORESIGHT_STARTING); 1910 1911 unregister_notifier: 1912 cpu_pm_unregister_notifier(&etm4_cpu_pm_nb); 1913 return ret; 1914 } 1915 1916 static void etm4_pm_clear(void) 1917 { 1918 cpu_pm_unregister_notifier(&etm4_cpu_pm_nb); 1919 cpuhp_remove_state_nocalls(CPUHP_AP_ARM_CORESIGHT_STARTING); 1920 if (hp_online) { 1921 cpuhp_remove_state_nocalls(hp_online); 1922 hp_online = 0; 1923 } 1924 } 1925 1926 static int etm4_probe(struct device *dev, void __iomem *base, u32 etm_pid) 1927 { 1928 int ret; 1929 struct coresight_platform_data *pdata = NULL; 1930 struct etmv4_drvdata *drvdata; 1931 struct coresight_desc desc = { 0 }; 1932 struct etm4_init_arg init_arg = { 0 }; 1933 u8 major, minor; 1934 char *type_name; 1935 1936 drvdata = devm_kzalloc(dev, sizeof(*drvdata), GFP_KERNEL); 1937 if (!drvdata) 1938 return -ENOMEM; 1939 1940 dev_set_drvdata(dev, drvdata); 1941 1942 if (pm_save_enable == PARAM_PM_SAVE_FIRMWARE) 1943 pm_save_enable = coresight_loses_context_with_cpu(dev) ? 1944 PARAM_PM_SAVE_SELF_HOSTED : PARAM_PM_SAVE_NEVER; 1945 1946 if (pm_save_enable != PARAM_PM_SAVE_NEVER) { 1947 drvdata->save_state = devm_kmalloc(dev, 1948 sizeof(struct etmv4_save_state), GFP_KERNEL); 1949 if (!drvdata->save_state) 1950 return -ENOMEM; 1951 } 1952 1953 drvdata->base = base; 1954 1955 spin_lock_init(&drvdata->spinlock); 1956 1957 drvdata->cpu = coresight_get_cpu(dev); 1958 if (drvdata->cpu < 0) 1959 return drvdata->cpu; 1960 1961 init_arg.drvdata = drvdata; 1962 init_arg.csa = &desc.access; 1963 init_arg.pid = etm_pid; 1964 1965 if (smp_call_function_single(drvdata->cpu, 1966 etm4_init_arch_data, &init_arg, 1)) 1967 dev_err(dev, "ETM arch init failed\n"); 1968 1969 if (!drvdata->arch) 1970 return -EINVAL; 1971 1972 /* TRCPDCR is not accessible with system instructions. */ 1973 if (!desc.access.io_mem || 1974 fwnode_property_present(dev_fwnode(dev), "qcom,skip-power-up")) 1975 drvdata->skip_power_up = true; 1976 1977 major = ETM_ARCH_MAJOR_VERSION(drvdata->arch); 1978 minor = ETM_ARCH_MINOR_VERSION(drvdata->arch); 1979 1980 if (etm4x_is_ete(drvdata)) { 1981 type_name = "ete"; 1982 /* ETE v1 has major version == 0b101. Adjust this for logging.*/ 1983 major -= 4; 1984 } else { 1985 type_name = "etm"; 1986 } 1987 1988 desc.name = devm_kasprintf(dev, GFP_KERNEL, 1989 "%s%d", type_name, drvdata->cpu); 1990 if (!desc.name) 1991 return -ENOMEM; 1992 1993 etm4_init_trace_id(drvdata); 1994 etm4_set_default(&drvdata->config); 1995 1996 pdata = coresight_get_platform_data(dev); 1997 if (IS_ERR(pdata)) 1998 return PTR_ERR(pdata); 1999 2000 dev->platform_data = pdata; 2001 2002 desc.type = CORESIGHT_DEV_TYPE_SOURCE; 2003 desc.subtype.source_subtype = CORESIGHT_DEV_SUBTYPE_SOURCE_PROC; 2004 desc.ops = &etm4_cs_ops; 2005 desc.pdata = pdata; 2006 desc.dev = dev; 2007 desc.groups = coresight_etmv4_groups; 2008 drvdata->csdev = coresight_register(&desc); 2009 if (IS_ERR(drvdata->csdev)) 2010 return PTR_ERR(drvdata->csdev); 2011 2012 ret = etm_perf_symlink(drvdata->csdev, true); 2013 if (ret) { 2014 coresight_unregister(drvdata->csdev); 2015 return ret; 2016 } 2017 2018 /* register with config infrastructure & load any current features */ 2019 ret = etm4_cscfg_register(drvdata->csdev); 2020 if (ret) { 2021 coresight_unregister(drvdata->csdev); 2022 return ret; 2023 } 2024 2025 etmdrvdata[drvdata->cpu] = drvdata; 2026 2027 dev_info(&drvdata->csdev->dev, "CPU%d: %s v%d.%d initialized\n", 2028 drvdata->cpu, type_name, major, minor); 2029 2030 if (boot_enable) { 2031 coresight_enable(drvdata->csdev); 2032 drvdata->boot_enable = true; 2033 } 2034 2035 return 0; 2036 } 2037 2038 static int etm4_probe_amba(struct amba_device *adev, const struct amba_id *id) 2039 { 2040 void __iomem *base; 2041 struct device *dev = &adev->dev; 2042 struct resource *res = &adev->res; 2043 int ret; 2044 2045 /* Validity for the resource is already checked by the AMBA core */ 2046 base = devm_ioremap_resource(dev, res); 2047 if (IS_ERR(base)) 2048 return PTR_ERR(base); 2049 2050 ret = etm4_probe(dev, base, id->id); 2051 if (!ret) 2052 pm_runtime_put(&adev->dev); 2053 2054 return ret; 2055 } 2056 2057 static int etm4_probe_platform_dev(struct platform_device *pdev) 2058 { 2059 int ret; 2060 2061 pm_runtime_get_noresume(&pdev->dev); 2062 pm_runtime_set_active(&pdev->dev); 2063 pm_runtime_enable(&pdev->dev); 2064 2065 /* 2066 * System register based devices could match the 2067 * HW by reading appropriate registers on the HW 2068 * and thus we could skip the PID. 2069 */ 2070 ret = etm4_probe(&pdev->dev, NULL, 0); 2071 2072 pm_runtime_put(&pdev->dev); 2073 return ret; 2074 } 2075 2076 static struct amba_cs_uci_id uci_id_etm4[] = { 2077 { 2078 /* ETMv4 UCI data */ 2079 .devarch = ETM_DEVARCH_ETMv4x_ARCH, 2080 .devarch_mask = ETM_DEVARCH_ID_MASK, 2081 .devtype = 0x00000013, 2082 } 2083 }; 2084 2085 static void clear_etmdrvdata(void *info) 2086 { 2087 int cpu = *(int *)info; 2088 2089 etmdrvdata[cpu] = NULL; 2090 } 2091 2092 static int __exit etm4_remove_dev(struct etmv4_drvdata *drvdata) 2093 { 2094 etm_perf_symlink(drvdata->csdev, false); 2095 /* 2096 * Taking hotplug lock here to avoid racing between etm4_remove_dev() 2097 * and CPU hotplug call backs. 2098 */ 2099 cpus_read_lock(); 2100 /* 2101 * The readers for etmdrvdata[] are CPU hotplug call backs 2102 * and PM notification call backs. Change etmdrvdata[i] on 2103 * CPU i ensures these call backs has consistent view 2104 * inside one call back function. 2105 */ 2106 if (smp_call_function_single(drvdata->cpu, clear_etmdrvdata, &drvdata->cpu, 1)) 2107 etmdrvdata[drvdata->cpu] = NULL; 2108 2109 cpus_read_unlock(); 2110 2111 cscfg_unregister_csdev(drvdata->csdev); 2112 coresight_unregister(drvdata->csdev); 2113 2114 return 0; 2115 } 2116 2117 static void __exit etm4_remove_amba(struct amba_device *adev) 2118 { 2119 struct etmv4_drvdata *drvdata = dev_get_drvdata(&adev->dev); 2120 2121 if (drvdata) 2122 etm4_remove_dev(drvdata); 2123 } 2124 2125 static int __exit etm4_remove_platform_dev(struct platform_device *pdev) 2126 { 2127 int ret = 0; 2128 struct etmv4_drvdata *drvdata = dev_get_drvdata(&pdev->dev); 2129 2130 if (drvdata) 2131 ret = etm4_remove_dev(drvdata); 2132 pm_runtime_disable(&pdev->dev); 2133 return ret; 2134 } 2135 2136 static const struct amba_id etm4_ids[] = { 2137 CS_AMBA_ID(0x000bb95d), /* Cortex-A53 */ 2138 CS_AMBA_ID(0x000bb95e), /* Cortex-A57 */ 2139 CS_AMBA_ID(0x000bb95a), /* Cortex-A72 */ 2140 CS_AMBA_ID(0x000bb959), /* Cortex-A73 */ 2141 CS_AMBA_UCI_ID(0x000bb9da, uci_id_etm4),/* Cortex-A35 */ 2142 CS_AMBA_UCI_ID(0x000bbd05, uci_id_etm4),/* Cortex-A55 */ 2143 CS_AMBA_UCI_ID(0x000bbd0a, uci_id_etm4),/* Cortex-A75 */ 2144 CS_AMBA_UCI_ID(0x000bbd0c, uci_id_etm4),/* Neoverse N1 */ 2145 CS_AMBA_UCI_ID(0x000bbd41, uci_id_etm4),/* Cortex-A78 */ 2146 CS_AMBA_UCI_ID(0x000f0205, uci_id_etm4),/* Qualcomm Kryo */ 2147 CS_AMBA_UCI_ID(0x000f0211, uci_id_etm4),/* Qualcomm Kryo */ 2148 CS_AMBA_UCI_ID(0x000bb802, uci_id_etm4),/* Qualcomm Kryo 385 Cortex-A55 */ 2149 CS_AMBA_UCI_ID(0x000bb803, uci_id_etm4),/* Qualcomm Kryo 385 Cortex-A75 */ 2150 CS_AMBA_UCI_ID(0x000bb805, uci_id_etm4),/* Qualcomm Kryo 4XX Cortex-A55 */ 2151 CS_AMBA_UCI_ID(0x000bb804, uci_id_etm4),/* Qualcomm Kryo 4XX Cortex-A76 */ 2152 CS_AMBA_UCI_ID(0x000bbd0d, uci_id_etm4),/* Qualcomm Kryo 5XX Cortex-A77 */ 2153 CS_AMBA_UCI_ID(0x000cc0af, uci_id_etm4),/* Marvell ThunderX2 */ 2154 CS_AMBA_UCI_ID(0x000b6d01, uci_id_etm4),/* HiSilicon-Hip08 */ 2155 CS_AMBA_UCI_ID(0x000b6d02, uci_id_etm4),/* HiSilicon-Hip09 */ 2156 {}, 2157 }; 2158 2159 MODULE_DEVICE_TABLE(amba, etm4_ids); 2160 2161 static struct amba_driver etm4x_amba_driver = { 2162 .drv = { 2163 .name = "coresight-etm4x", 2164 .owner = THIS_MODULE, 2165 .suppress_bind_attrs = true, 2166 }, 2167 .probe = etm4_probe_amba, 2168 .remove = etm4_remove_amba, 2169 .id_table = etm4_ids, 2170 }; 2171 2172 static const struct of_device_id etm4_sysreg_match[] = { 2173 { .compatible = "arm,coresight-etm4x-sysreg" }, 2174 { .compatible = "arm,embedded-trace-extension" }, 2175 {} 2176 }; 2177 2178 static struct platform_driver etm4_platform_driver = { 2179 .probe = etm4_probe_platform_dev, 2180 .remove = etm4_remove_platform_dev, 2181 .driver = { 2182 .name = "coresight-etm4x", 2183 .of_match_table = etm4_sysreg_match, 2184 .suppress_bind_attrs = true, 2185 }, 2186 }; 2187 2188 static int __init etm4x_init(void) 2189 { 2190 int ret; 2191 2192 ret = etm4_pm_setup(); 2193 2194 /* etm4_pm_setup() does its own cleanup - exit on error */ 2195 if (ret) 2196 return ret; 2197 2198 ret = amba_driver_register(&etm4x_amba_driver); 2199 if (ret) { 2200 pr_err("Error registering etm4x AMBA driver\n"); 2201 goto clear_pm; 2202 } 2203 2204 ret = platform_driver_register(&etm4_platform_driver); 2205 if (!ret) 2206 return 0; 2207 2208 pr_err("Error registering etm4x platform driver\n"); 2209 amba_driver_unregister(&etm4x_amba_driver); 2210 2211 clear_pm: 2212 etm4_pm_clear(); 2213 return ret; 2214 } 2215 2216 static void __exit etm4x_exit(void) 2217 { 2218 amba_driver_unregister(&etm4x_amba_driver); 2219 platform_driver_unregister(&etm4_platform_driver); 2220 etm4_pm_clear(); 2221 } 2222 2223 module_init(etm4x_init); 2224 module_exit(etm4x_exit); 2225 2226 MODULE_AUTHOR("Pratik Patel <pratikp@codeaurora.org>"); 2227 MODULE_AUTHOR("Mathieu Poirier <mathieu.poirier@linaro.org>"); 2228 MODULE_DESCRIPTION("Arm CoreSight Program Flow Trace v4.x driver"); 2229 MODULE_LICENSE("GPL v2"); 2230