1 /* 2 * Copyright (c) 2013-2025, Arm Limited and Contributors. All rights reserved. 3 * 4 * SPDX-License-Identifier: BSD-3-Clause 5 */ 6 7 #include <assert.h> 8 #include <string.h> 9 10 #include <arch.h> 11 #include <arch_features.h> 12 #include <arch_helpers.h> 13 #include <common/debug.h> 14 #include <lib/pmf/pmf.h> 15 #include <lib/runtime_instr.h> 16 #include <lib/smccc.h> 17 #include <plat/common/platform.h> 18 #include <services/arm_arch_svc.h> 19 20 #include "psci_private.h" 21 22 /******************************************************************************* 23 * PSCI frontend api for servicing SMCs. Described in the PSCI spec. 24 ******************************************************************************/ 25 int psci_cpu_on(u_register_t target_cpu, 26 uintptr_t entrypoint, 27 u_register_t context_id) 28 29 { 30 int rc; 31 entry_point_info_t *ep = NULL; 32 unsigned int target_idx = (unsigned int)plat_core_pos_by_mpidr(target_cpu); 33 34 /* Validate the target CPU */ 35 if (!is_valid_mpidr(target_cpu)) { 36 return PSCI_E_INVALID_PARAMS; 37 } 38 39 ep = get_cpu_data_by_index(target_idx, warmboot_ep_info); 40 /* Validate the lower EL entry point and put it in the entry_point_info */ 41 rc = psci_validate_entry_point(ep, entrypoint, context_id); 42 if (rc != PSCI_E_SUCCESS) { 43 return rc; 44 } 45 46 /* 47 * To turn this cpu on, specify which power 48 * levels need to be turned on 49 */ 50 return psci_cpu_on_start(target_cpu, ep); 51 } 52 53 unsigned int psci_version(void) 54 { 55 return PSCI_MAJOR_VER | PSCI_MINOR_VER; 56 } 57 58 int psci_cpu_suspend(unsigned int power_state, 59 uintptr_t entrypoint, 60 u_register_t context_id) 61 { 62 int rc; 63 unsigned int target_pwrlvl, is_power_down_state; 64 psci_power_state_t state_info = { {PSCI_LOCAL_STATE_RUN} }; 65 plat_local_state_t cpu_pd_state; 66 unsigned int cpu_idx = plat_my_core_pos(); 67 68 #if ERRATA_SME_POWER_DOWN 69 /* 70 * If SME isn't off, attempting a real power down will only end up being 71 * rejected. If we got called with SME on, fall back to a normal 72 * suspend. We can't force SME off as in the event the power down is 73 * rejected for another reason (eg GIC) we'd lose the SME context. 74 */ 75 if (is_feat_sme_supported() && read_svcr() != 0) { 76 power_state &= ~(PSTATE_TYPE_MASK << PSTATE_TYPE_SHIFT); 77 power_state &= ~(PSTATE_PWR_LVL_MASK << PSTATE_PWR_LVL_SHIFT); 78 } 79 #endif /* ERRATA_SME_POWER_DOWN */ 80 81 /* Validate the power_state parameter */ 82 rc = psci_validate_power_state(power_state, &state_info); 83 if (rc != PSCI_E_SUCCESS) { 84 assert(rc == PSCI_E_INVALID_PARAMS); 85 return rc; 86 } 87 88 /* 89 * Get the value of the state type bit from the power state parameter. 90 */ 91 is_power_down_state = psci_get_pstate_type(power_state); 92 93 /* Sanity check the requested suspend levels */ 94 assert(psci_validate_suspend_req(&state_info, is_power_down_state) 95 == PSCI_E_SUCCESS); 96 97 target_pwrlvl = psci_find_target_suspend_lvl(&state_info); 98 if (target_pwrlvl == PSCI_INVALID_PWR_LVL) { 99 ERROR("Invalid target power level for suspend operation\n"); 100 panic(); 101 } 102 103 /* Fast path for local CPU standby, won't interact with higher power levels. */ 104 if (is_cpu_standby_req(is_power_down_state, target_pwrlvl)) { 105 if (psci_plat_pm_ops->cpu_standby == NULL) { 106 return PSCI_E_INVALID_PARAMS; 107 } 108 109 /* 110 * Set the state of the CPU power domain to the platform 111 * specific retention state and enter the standby state. 112 */ 113 cpu_pd_state = state_info.pwr_domain_state[PSCI_CPU_PWR_LVL]; 114 psci_set_cpu_local_state(cpu_pd_state); 115 116 #if ENABLE_PSCI_STAT 117 plat_psci_stat_accounting_start(&state_info); 118 #endif 119 120 #if ENABLE_RUNTIME_INSTRUMENTATION 121 PMF_CAPTURE_TIMESTAMP(rt_instr_svc, 122 RT_INSTR_ENTER_HW_LOW_PWR, 123 PMF_NO_CACHE_MAINT); 124 #endif 125 126 psci_plat_pm_ops->cpu_standby(cpu_pd_state); 127 128 /* Upon exit from standby, set the state back to RUN. */ 129 psci_set_cpu_local_state(PSCI_LOCAL_STATE_RUN); 130 131 #if ENABLE_RUNTIME_INSTRUMENTATION 132 PMF_CAPTURE_TIMESTAMP(rt_instr_svc, 133 RT_INSTR_EXIT_HW_LOW_PWR, 134 PMF_NO_CACHE_MAINT); 135 #endif 136 137 #if ENABLE_PSCI_STAT 138 plat_psci_stat_accounting_stop(&state_info); 139 140 /* Update PSCI stats */ 141 psci_stats_update_pwr_up(cpu_idx, PSCI_CPU_PWR_LVL, &state_info); 142 #endif 143 144 return PSCI_E_SUCCESS; 145 } 146 147 /* 148 * If a power down state has been requested, we need to verify entry 149 * point and program entry information. 150 */ 151 if (is_power_down_state != 0U) { 152 entry_point_info_t *ep = get_cpu_data_by_index(cpu_idx, warmboot_ep_info); 153 154 rc = psci_validate_entry_point(ep, entrypoint, context_id); 155 if (rc != PSCI_E_SUCCESS) { 156 return rc; 157 } 158 } 159 160 /* 161 * Do what is needed to enter the power down state. Upon success, 162 * enter the final wfi which will power down this CPU. This function 163 * might return if the power down was abandoned for any reason, e.g. 164 * arrival of an interrupt 165 */ 166 rc = psci_cpu_suspend_start(cpu_idx, 167 target_pwrlvl, 168 &state_info, 169 is_power_down_state); 170 171 return rc; 172 } 173 174 175 int psci_system_suspend(uintptr_t entrypoint, u_register_t context_id) 176 { 177 int rc; 178 psci_power_state_t state_info; 179 unsigned int cpu_idx = plat_my_core_pos(); 180 entry_point_info_t *ep = get_cpu_data_by_index(cpu_idx, warmboot_ep_info); 181 182 /* Check if the current CPU is the last ON CPU in the system */ 183 if (!psci_is_last_on_cpu(cpu_idx)) { 184 return PSCI_E_DENIED; 185 } 186 187 /* Validate the entry point and get the entry_point_info */ 188 rc = psci_validate_entry_point(ep, entrypoint, context_id); 189 if (rc != PSCI_E_SUCCESS) { 190 return rc; 191 } 192 193 /* Query the psci_power_state for system suspend */ 194 psci_query_sys_suspend_pwrstate(&state_info); 195 196 /* 197 * Check if platform allows suspend to Highest power level 198 * (System level) 199 */ 200 if (psci_find_target_suspend_lvl(&state_info) < PLAT_MAX_PWR_LVL) { 201 return PSCI_E_DENIED; 202 } 203 /* Ensure that the psci_power_state makes sense */ 204 assert(psci_validate_suspend_req(&state_info, PSTATE_TYPE_POWERDOWN) 205 == PSCI_E_SUCCESS); 206 assert(is_local_state_off( 207 state_info.pwr_domain_state[PLAT_MAX_PWR_LVL]) != 0); 208 209 /* 210 * Do what is needed to enter the system suspend state. This function 211 * might return if the power down was abandoned for any reason, e.g. 212 * arrival of an interrupt 213 */ 214 rc = psci_cpu_suspend_start(cpu_idx, 215 PLAT_MAX_PWR_LVL, 216 &state_info, 217 PSTATE_TYPE_POWERDOWN); 218 219 return rc; 220 } 221 222 int psci_cpu_off(void) 223 { 224 int rc; 225 unsigned int target_pwrlvl = PLAT_MAX_PWR_LVL; 226 227 /* 228 * Do what is needed to power off this CPU and possible higher power 229 * levels if it able to do so. Upon success, enter the final wfi 230 * which will power down this CPU. 231 */ 232 rc = psci_do_cpu_off(target_pwrlvl); 233 234 /* 235 * The only error cpu_off can return is E_DENIED. So check if that's 236 * indeed the case. 237 */ 238 assert(rc == PSCI_E_DENIED); 239 240 return rc; 241 } 242 243 int psci_affinity_info(u_register_t target_affinity, 244 unsigned int lowest_affinity_level) 245 { 246 unsigned int target_idx; 247 248 /* Validate the target affinity */ 249 if (!is_valid_mpidr(target_affinity)) { 250 return PSCI_E_INVALID_PARAMS; 251 } 252 253 /* We dont support level higher than PSCI_CPU_PWR_LVL */ 254 if (lowest_affinity_level > PSCI_CPU_PWR_LVL) { 255 return PSCI_E_INVALID_PARAMS; 256 } 257 /* Calculate the cpu index of the target */ 258 target_idx = (unsigned int) plat_core_pos_by_mpidr(target_affinity); 259 260 /* 261 * Generic management: 262 * Perform cache maintanence ahead of reading the target CPU state to 263 * ensure that the data is not stale. 264 * There is a theoretical edge case where the cache may contain stale 265 * data for the target CPU data - this can occur under the following 266 * conditions: 267 * - the target CPU is in another cluster from the current 268 * - the target CPU was the last CPU to shutdown on its cluster 269 * - the cluster was removed from coherency as part of the CPU shutdown 270 * 271 * In this case the cache maintenace that was performed as part of the 272 * target CPUs shutdown was not seen by the current CPU's cluster. And 273 * so the cache may contain stale data for the target CPU. 274 */ 275 flush_cpu_data_by_index(target_idx, 276 psci_svc_cpu_data.aff_info_state); 277 278 return (int)psci_get_aff_info_state_by_idx(target_idx); 279 } 280 281 int psci_migrate(u_register_t target_cpu) 282 { 283 int rc; 284 u_register_t resident_cpu_mpidr = 0; 285 286 /* Validate the target cpu */ 287 if (!is_valid_mpidr(target_cpu)) 288 return PSCI_E_INVALID_PARAMS; 289 290 rc = psci_spd_migrate_info(&resident_cpu_mpidr); 291 if (rc != PSCI_TOS_UP_MIG_CAP) { 292 return (rc == PSCI_TOS_NOT_UP_MIG_CAP) ? 293 PSCI_E_DENIED : PSCI_E_NOT_SUPPORTED; 294 } 295 296 /* 297 * Migrate should only be invoked on the CPU where 298 * the Secure OS is resident. 299 */ 300 if (resident_cpu_mpidr != read_mpidr_el1()) { 301 return PSCI_E_NOT_PRESENT; 302 } 303 304 /* Check the validity of the specified target cpu */ 305 if (!is_valid_mpidr(target_cpu)) { 306 return PSCI_E_INVALID_PARAMS; 307 } 308 309 assert((psci_spd_pm != NULL) && (psci_spd_pm->svc_migrate != NULL)); 310 311 rc = psci_spd_pm->svc_migrate(read_mpidr_el1(), target_cpu); 312 assert((rc == PSCI_E_SUCCESS) || (rc == PSCI_E_INTERN_FAIL)); 313 314 return rc; 315 } 316 317 int psci_migrate_info_type(void) 318 { 319 u_register_t resident_cpu_mpidr; 320 321 return psci_spd_migrate_info(&resident_cpu_mpidr); 322 } 323 324 u_register_t psci_migrate_info_up_cpu(void) 325 { 326 u_register_t resident_cpu_mpidr = 0; 327 int rc; 328 329 /* 330 * Return value of this depends upon what 331 * psci_spd_migrate_info() returns. 332 */ 333 rc = psci_spd_migrate_info(&resident_cpu_mpidr); 334 if ((rc != PSCI_TOS_NOT_UP_MIG_CAP) && (rc != PSCI_TOS_UP_MIG_CAP)) { 335 return (u_register_t)(register_t) PSCI_E_INVALID_PARAMS; 336 } 337 338 return resident_cpu_mpidr; 339 } 340 341 int psci_node_hw_state(u_register_t target_cpu, 342 unsigned int power_level) 343 { 344 int rc; 345 346 /* Validate target_cpu */ 347 if (!is_valid_mpidr(target_cpu)) { 348 return PSCI_E_INVALID_PARAMS; 349 } 350 351 /* Validate power_level against PLAT_MAX_PWR_LVL */ 352 if (power_level > PLAT_MAX_PWR_LVL) { 353 return PSCI_E_INVALID_PARAMS; 354 } 355 356 /* 357 * Dispatch this call to platform to query power controller, and pass on 358 * to the caller what it returns 359 */ 360 assert(psci_plat_pm_ops->get_node_hw_state != NULL); 361 rc = psci_plat_pm_ops->get_node_hw_state(target_cpu, power_level); 362 assert(((rc >= HW_ON) && (rc <= HW_STANDBY)) 363 || (rc == PSCI_E_NOT_SUPPORTED) 364 || (rc == PSCI_E_INVALID_PARAMS)); 365 return rc; 366 } 367 368 int psci_features(unsigned int psci_fid) 369 { 370 unsigned int local_caps = psci_caps; 371 372 if (psci_fid == SMCCC_VERSION) { 373 return PSCI_E_SUCCESS; 374 } 375 /* Check if it is a 64 bit function */ 376 if (((psci_fid >> FUNCID_CC_SHIFT) & FUNCID_CC_MASK) == SMC_64) { 377 local_caps &= PSCI_CAP_64BIT_MASK; 378 } 379 /* Check for invalid fid */ 380 if (!(is_std_svc_call(psci_fid) && is_valid_fast_smc(psci_fid) 381 && is_psci_fid(psci_fid))) { 382 return PSCI_E_NOT_SUPPORTED; 383 } 384 385 /* Check if the psci fid is supported or not */ 386 if ((local_caps & define_psci_cap(psci_fid)) == 0U) { 387 return PSCI_E_NOT_SUPPORTED; 388 } 389 /* Format the feature flags */ 390 if ((psci_fid == PSCI_CPU_SUSPEND_AARCH32) || 391 (psci_fid == PSCI_CPU_SUSPEND_AARCH64)) { 392 unsigned int ret = ((FF_PSTATE << FF_PSTATE_SHIFT) | 393 (FF_SUPPORTS_OS_INIT_MODE << FF_MODE_SUPPORT_SHIFT)); 394 return (int)ret; 395 } 396 397 /* Return 0 for all other fid's */ 398 return PSCI_E_SUCCESS; 399 } 400 401 #if PSCI_OS_INIT_MODE 402 int psci_set_suspend_mode(unsigned int mode) 403 { 404 if (psci_suspend_mode == mode) { 405 return PSCI_E_SUCCESS; 406 } 407 408 unsigned int this_core = plat_my_core_pos(); 409 410 if (mode == PLAT_COORD) { 411 /* Check if the current CPU is the last ON CPU in the system */ 412 if (!psci_is_last_on_cpu_safe(this_core)) { 413 return PSCI_E_DENIED; 414 } 415 } 416 417 if (mode == OS_INIT) { 418 /* 419 * Check if all CPUs in the system are ON or if the current 420 * CPU is the last ON CPU in the system. 421 */ 422 if (!(psci_are_all_cpus_on_safe(this_core) || 423 psci_is_last_on_cpu_safe(this_core))) { 424 return PSCI_E_DENIED; 425 } 426 } 427 428 psci_suspend_mode = mode; 429 psci_flush_dcache_range((uintptr_t)&psci_suspend_mode, 430 sizeof(psci_suspend_mode)); 431 432 return PSCI_E_SUCCESS; 433 } 434 #endif 435 436 /******************************************************************************* 437 * PSCI top level handler for servicing SMCs. 438 ******************************************************************************/ 439 u_register_t psci_smc_handler(uint32_t smc_fid, 440 u_register_t x1, 441 u_register_t x2, 442 u_register_t x3, 443 u_register_t x4, 444 void *cookie, 445 void *handle, 446 u_register_t flags) 447 { 448 (void)x4; 449 (void)cookie; 450 (void)handle; 451 u_register_t ret; 452 453 if (is_caller_secure(flags)) { 454 return (u_register_t)SMC_UNK; 455 } 456 457 /* Check the fid against the capabilities */ 458 if ((psci_caps & define_psci_cap(smc_fid)) == 0U) { 459 return (u_register_t)SMC_UNK; 460 } 461 462 if (((smc_fid >> FUNCID_CC_SHIFT) & FUNCID_CC_MASK) == SMC_32) { 463 /* 32-bit PSCI function, clear top parameter bits */ 464 465 uint32_t r1 = (uint32_t)x1; 466 uint32_t r2 = (uint32_t)x2; 467 uint32_t r3 = (uint32_t)x3; 468 469 switch (smc_fid) { 470 case PSCI_VERSION: 471 ret = (u_register_t)psci_version(); 472 break; 473 474 case PSCI_CPU_OFF: 475 ret = (u_register_t)psci_cpu_off(); 476 break; 477 478 case PSCI_CPU_SUSPEND_AARCH32: 479 ret = (u_register_t)psci_cpu_suspend(r1, r2, r3); 480 break; 481 482 case PSCI_CPU_ON_AARCH32: 483 ret = (u_register_t)psci_cpu_on(r1, r2, r3); 484 break; 485 486 case PSCI_AFFINITY_INFO_AARCH32: 487 ret = (u_register_t)psci_affinity_info(r1, r2); 488 break; 489 490 case PSCI_MIG_AARCH32: 491 ret = (u_register_t)psci_migrate(r1); 492 break; 493 494 case PSCI_MIG_INFO_TYPE: 495 ret = (u_register_t)psci_migrate_info_type(); 496 break; 497 498 case PSCI_MIG_INFO_UP_CPU_AARCH32: 499 ret = psci_migrate_info_up_cpu(); 500 break; 501 502 case PSCI_NODE_HW_STATE_AARCH32: 503 ret = (u_register_t)psci_node_hw_state(r1, r2); 504 break; 505 506 case PSCI_SYSTEM_SUSPEND_AARCH32: 507 ret = (u_register_t)psci_system_suspend(r1, r2); 508 break; 509 510 case PSCI_SYSTEM_OFF: 511 psci_system_off(); 512 /* We should never return from psci_system_off() */ 513 break; 514 515 case PSCI_SYSTEM_RESET: 516 psci_system_reset(); 517 /* We should never return from psci_system_reset() */ 518 break; 519 520 case PSCI_FEATURES: 521 ret = (u_register_t)psci_features(r1); 522 break; 523 524 #if PSCI_OS_INIT_MODE 525 case PSCI_SET_SUSPEND_MODE: 526 ret = (u_register_t)psci_set_suspend_mode(r1); 527 break; 528 #endif 529 530 #if ENABLE_PSCI_STAT 531 case PSCI_STAT_RESIDENCY_AARCH32: 532 ret = psci_stat_residency(r1, r2); 533 break; 534 535 case PSCI_STAT_COUNT_AARCH32: 536 ret = psci_stat_count(r1, r2); 537 break; 538 #endif 539 case PSCI_MEM_PROTECT: 540 ret = psci_mem_protect(r1); 541 break; 542 543 case PSCI_MEM_CHK_RANGE_AARCH32: 544 ret = psci_mem_chk_range(r1, r2); 545 break; 546 547 case PSCI_SYSTEM_RESET2_AARCH32: 548 /* We should never return from psci_system_reset2() */ 549 ret = psci_system_reset2(r1, r2); 550 break; 551 552 default: 553 WARN("Unimplemented PSCI Call: 0x%x\n", smc_fid); 554 ret = (u_register_t)SMC_UNK; 555 break; 556 } 557 } else { 558 /* 64-bit PSCI function */ 559 560 switch (smc_fid) { 561 case PSCI_CPU_SUSPEND_AARCH64: 562 ret = (u_register_t) 563 psci_cpu_suspend((unsigned int)x1, x2, x3); 564 break; 565 566 case PSCI_CPU_ON_AARCH64: 567 ret = (u_register_t)psci_cpu_on(x1, x2, x3); 568 break; 569 570 case PSCI_AFFINITY_INFO_AARCH64: 571 ret = (u_register_t) 572 psci_affinity_info(x1, (unsigned int)x2); 573 break; 574 575 case PSCI_MIG_AARCH64: 576 ret = (u_register_t)psci_migrate(x1); 577 break; 578 579 case PSCI_MIG_INFO_UP_CPU_AARCH64: 580 ret = psci_migrate_info_up_cpu(); 581 break; 582 583 case PSCI_NODE_HW_STATE_AARCH64: 584 ret = (u_register_t)psci_node_hw_state( 585 x1, (unsigned int) x2); 586 break; 587 588 case PSCI_SYSTEM_SUSPEND_AARCH64: 589 ret = (u_register_t)psci_system_suspend(x1, x2); 590 break; 591 592 #if ENABLE_PSCI_STAT 593 case PSCI_STAT_RESIDENCY_AARCH64: 594 ret = psci_stat_residency(x1, (unsigned int) x2); 595 break; 596 597 case PSCI_STAT_COUNT_AARCH64: 598 ret = psci_stat_count(x1, (unsigned int) x2); 599 break; 600 #endif 601 602 case PSCI_MEM_CHK_RANGE_AARCH64: 603 ret = psci_mem_chk_range(x1, x2); 604 break; 605 606 case PSCI_SYSTEM_RESET2_AARCH64: 607 /* We should never return from psci_system_reset2() */ 608 ret = psci_system_reset2((uint32_t) x1, x2); 609 break; 610 611 default: 612 WARN("Unimplemented PSCI Call: 0x%x\n", smc_fid); 613 ret = (u_register_t)SMC_UNK; 614 break; 615 } 616 } 617 618 return ret; 619 } 620