Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 1 | /* |
| 2 | * Copyright (c) 2018, Arm Limited. All rights reserved. |
| 3 | * |
| 4 | * SPDX-License-Identifier: BSD-3-Clause |
| 5 | */ |
| 6 | |
| 7 | #include <arch_helpers.h> |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 8 | #include <assert.h> |
| 9 | #include <debug.h> |
Antonio Nino Diaz | 09a00ef | 2019-01-11 13:12:58 +0000 | [diff] [blame] | 10 | #include <drivers/arm/arm_gic.h> |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 11 | #include <irq.h> |
| 12 | #include <mmio.h> |
| 13 | #include <nvm.h> |
| 14 | #include <plat_topology.h> |
| 15 | #include <platform.h> |
| 16 | #include <platform_def.h> |
| 17 | #include <power_management.h> |
| 18 | #include <psci.h> |
| 19 | #include <sgi.h> |
Ambroise Vincent | 602b7f5 | 2019-02-11 14:13:43 +0000 | [diff] [blame^] | 20 | #include <stdint.h> |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 21 | #include <string.h> |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 22 | #include <tftf.h> |
| 23 | #include <tftf_lib.h> |
| 24 | #include <timer.h> |
| 25 | |
| 26 | /* version information for TFTF */ |
| 27 | extern const char version_string[]; |
| 28 | |
| 29 | unsigned int lead_cpu_mpid; |
| 30 | |
| 31 | /* Defined in hotplug.c */ |
| 32 | extern volatile test_function_t test_entrypoint[PLATFORM_CORE_COUNT]; |
| 33 | |
| 34 | /* Per-CPU results for the current test */ |
| 35 | static test_result_t test_results[PLATFORM_CORE_COUNT]; |
| 36 | |
| 37 | /* Context ID passed to tftf_psci_cpu_on() */ |
| 38 | static u_register_t cpu_on_ctx_id_arr[PLATFORM_CORE_COUNT]; |
| 39 | |
| 40 | static unsigned int test_is_rebooting; |
| 41 | |
| 42 | static inline const test_suite_t *current_testsuite(void) |
| 43 | { |
| 44 | test_ref_t test_to_run; |
| 45 | tftf_get_test_to_run(&test_to_run); |
| 46 | return &testsuites[test_to_run.testsuite_idx]; |
| 47 | } |
| 48 | |
| 49 | static inline const test_case_t *current_testcase(void) |
| 50 | { |
| 51 | test_ref_t test_to_run; |
| 52 | tftf_get_test_to_run(&test_to_run); |
| 53 | return &testsuites[test_to_run.testsuite_idx]. |
| 54 | testcases[test_to_run.testcase_idx]; |
| 55 | } |
| 56 | |
| 57 | /* |
| 58 | * Identify the next test in the tests list and update the NVM data to point to |
| 59 | * that test. |
| 60 | * If there is no more tests to execute, return NULL. |
| 61 | * Otherwise, return the test case. |
| 62 | */ |
| 63 | static const test_case_t *advance_to_next_test(void) |
| 64 | { |
| 65 | test_ref_t test_to_run; |
| 66 | const test_case_t *testcase; |
| 67 | unsigned int testcase_idx; |
| 68 | unsigned int testsuite_idx; |
| 69 | |
| 70 | #if DEBUG |
| 71 | test_progress_t progress; |
| 72 | tftf_get_test_progress(&progress); |
| 73 | assert(progress == TEST_COMPLETE); |
| 74 | #endif |
| 75 | |
| 76 | tftf_get_test_to_run(&test_to_run); |
| 77 | testcase_idx = test_to_run.testcase_idx; |
| 78 | testsuite_idx = test_to_run.testsuite_idx; |
| 79 | |
| 80 | /* Move to the next test case in the current test suite */ |
| 81 | ++testcase_idx; |
| 82 | testcase = &testsuites[testsuite_idx].testcases[testcase_idx]; |
| 83 | |
| 84 | if (testcase->name == NULL) { |
| 85 | /* |
| 86 | * There's no more test cases in the current test suite so move |
| 87 | * to the first test case of the next test suite. |
| 88 | */ |
| 89 | const test_suite_t *testsuite; |
| 90 | testcase_idx = 0; |
| 91 | ++testsuite_idx; |
| 92 | testsuite = &testsuites[testsuite_idx]; |
| 93 | testcase = &testsuite->testcases[0]; |
| 94 | |
| 95 | if (testsuite->name == NULL) { |
| 96 | /* |
| 97 | * This was the last test suite so there's no more tests |
| 98 | * at all. |
| 99 | */ |
| 100 | return NULL; |
| 101 | } |
| 102 | } |
| 103 | |
| 104 | VERBOSE("Moving to test (%u,%u)\n", testsuite_idx, testcase_idx); |
| 105 | test_to_run.testsuite_idx = testsuite_idx; |
| 106 | test_to_run.testcase_idx = testcase_idx; |
| 107 | tftf_set_test_to_run(test_to_run); |
| 108 | tftf_set_test_progress(TEST_READY); |
| 109 | |
| 110 | return testcase; |
| 111 | } |
| 112 | |
| 113 | /* |
| 114 | * This function is executed only by the lead CPU. |
| 115 | * It prepares the environment for the next test to run. |
| 116 | */ |
| 117 | static void prepare_next_test(void) |
| 118 | { |
| 119 | unsigned int mpid; |
| 120 | unsigned int core_pos; |
| 121 | unsigned int cpu_node; |
| 122 | |
| 123 | /* This function should be called by the lead CPU only */ |
| 124 | assert((read_mpidr_el1() & MPID_MASK) == lead_cpu_mpid); |
| 125 | |
| 126 | /* |
| 127 | * Only the lead CPU should be powered on at this stage. All other CPUs |
| 128 | * should be powered off or powering off. If some CPUs are not powered |
| 129 | * off yet, wait for them to power off. |
| 130 | */ |
| 131 | for_each_cpu(cpu_node) { |
| 132 | mpid = tftf_get_mpidr_from_node(cpu_node); |
| 133 | if (mpid == lead_cpu_mpid) |
| 134 | assert(tftf_is_cpu_online(mpid)); |
| 135 | else |
| 136 | while (tftf_psci_affinity_info(mpid, MPIDR_AFFLVL0) |
| 137 | == PSCI_STATE_ON) |
| 138 | ; |
| 139 | } |
| 140 | |
| 141 | /* No CPU should have entered the test yet */ |
| 142 | assert(tftf_get_ref_cnt() == 0); |
| 143 | |
| 144 | /* Populate the test entrypoint for the lead CPU */ |
| 145 | core_pos = platform_get_core_pos(lead_cpu_mpid); |
| 146 | test_entrypoint[core_pos] = (test_function_t) current_testcase()->test; |
| 147 | |
| 148 | for (unsigned int i = 0; i < PLATFORM_CORE_COUNT; ++i) |
| 149 | test_results[i] = TEST_RESULT_NA; |
| 150 | |
Sandrine Bailleux | 125d58c | 2018-11-07 17:11:59 +0100 | [diff] [blame] | 151 | /* If we're starting a new testsuite, announce it. */ |
| 152 | test_ref_t test_to_run; |
| 153 | tftf_get_test_to_run(&test_to_run); |
| 154 | if (test_to_run.testcase_idx == 0) { |
| 155 | print_testsuite_start(current_testsuite()); |
| 156 | } |
| 157 | |
| 158 | print_test_start(current_testcase()); |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 159 | |
| 160 | /* Program the watchdog */ |
| 161 | tftf_platform_watchdog_set(); |
| 162 | |
| 163 | /* TODO: Take a 1st timestamp to be able to measure test duration */ |
| 164 | |
| 165 | tftf_set_test_progress(TEST_IN_PROGRESS); |
| 166 | } |
| 167 | |
| 168 | /* |
| 169 | * Go through individual CPUs' test results and determine the overall |
| 170 | * test result from that. |
| 171 | */ |
| 172 | static test_result_t get_overall_test_result(void) |
| 173 | { |
| 174 | test_result_t result = TEST_RESULT_NA; |
| 175 | unsigned int cpu_mpid; |
| 176 | unsigned int cpu_node; |
| 177 | unsigned int core_pos; |
| 178 | |
| 179 | for_each_cpu(cpu_node) { |
| 180 | cpu_mpid = tftf_get_mpidr_from_node(cpu_node); |
| 181 | core_pos = platform_get_core_pos(cpu_mpid); |
| 182 | |
| 183 | switch (test_results[core_pos]) { |
| 184 | case TEST_RESULT_NA: |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 185 | /* Ignoring */ |
| 186 | break; |
| 187 | |
| 188 | case TEST_RESULT_SKIPPED: |
| 189 | /* |
| 190 | * If at least one CPU skipped the test, consider the |
| 191 | * whole test as skipped as well. |
| 192 | */ |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 193 | return TEST_RESULT_SKIPPED; |
| 194 | |
| 195 | case TEST_RESULT_SUCCESS: |
| 196 | result = TEST_RESULT_SUCCESS; |
| 197 | break; |
| 198 | |
| 199 | case TEST_RESULT_FAIL: |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 200 | return TEST_RESULT_FAIL; |
| 201 | |
| 202 | case TEST_RESULT_CRASHED: |
| 203 | /* |
| 204 | * Means the CPU never returned from the test whereas it |
| 205 | * was supposed to. Either there is a bug in the test's |
| 206 | * implementation or some sort of unexpected crash |
| 207 | * happened. |
| 208 | * If at least one CPU crashed, consider the whole test |
| 209 | * as crashed as well. |
| 210 | */ |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 211 | return TEST_RESULT_CRASHED; |
| 212 | |
| 213 | default: |
| 214 | ERROR("Unknown test result value: %u\n", |
| 215 | test_results[core_pos]); |
| 216 | panic(); |
| 217 | } |
| 218 | } |
| 219 | |
| 220 | /* |
| 221 | * At least one CPU (i.e. the lead CPU) should have participated in the |
| 222 | * test. |
| 223 | */ |
| 224 | assert(result != TEST_RESULT_NA); |
| 225 | return result; |
| 226 | } |
| 227 | |
| 228 | /* |
| 229 | * This function is executed by the last CPU to exit the test only. |
| 230 | * It does the necessary bookkeeping and reports the overall test result. |
| 231 | * If it was the last test, it will also generate the final test report. |
| 232 | * Otherwise, it will reset the platform, provided that the platform |
| 233 | * supports reset from non-trusted world. This ensures that the next test |
| 234 | * runs in a clean environment |
| 235 | * |
| 236 | * Return 1 if this was the last test, 0 otherwise. |
| 237 | */ |
| 238 | static unsigned int close_test(void) |
| 239 | { |
| 240 | const test_case_t *next_test; |
| 241 | |
| 242 | #if DEBUG |
| 243 | /* |
| 244 | * Check that the test didn't pretend resetting the platform, when in |
| 245 | * fact it returned into the framework. |
| 246 | * |
| 247 | * If that happens, the test implementation should be fixed. |
| 248 | * However, it is not a fatal error so just flag the problem in debug |
| 249 | * builds. |
| 250 | */ |
| 251 | test_progress_t progress; |
| 252 | tftf_get_test_progress(&progress); |
| 253 | assert(progress != TEST_REBOOTING); |
| 254 | #endif /* DEBUG */ |
| 255 | |
| 256 | tftf_set_test_progress(TEST_COMPLETE); |
| 257 | test_is_rebooting = 0; |
| 258 | |
| 259 | /* TODO: Take a 2nd timestamp and compute test duration */ |
| 260 | |
| 261 | /* Reset watchdog */ |
| 262 | tftf_platform_watchdog_reset(); |
| 263 | |
| 264 | /* Ensure no CPU is still executing the test */ |
| 265 | assert(tftf_get_ref_cnt() == 0); |
| 266 | |
| 267 | /* Save test result in NVM */ |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 268 | tftf_testcase_set_result(current_testcase(), |
Sandrine Bailleux | 125d58c | 2018-11-07 17:11:59 +0100 | [diff] [blame] | 269 | get_overall_test_result(), |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 270 | 0); |
| 271 | |
Sandrine Bailleux | 125d58c | 2018-11-07 17:11:59 +0100 | [diff] [blame] | 272 | print_test_end(current_testcase()); |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 273 | |
| 274 | /* The test is finished, let's move to the next one (if any) */ |
| 275 | next_test = advance_to_next_test(); |
| 276 | |
| 277 | /* If this was the last test then report all results */ |
| 278 | if (!next_test) { |
Sandrine Bailleux | 125d58c | 2018-11-07 17:11:59 +0100 | [diff] [blame] | 279 | print_tests_summary(); |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 280 | tftf_clean_nvm(); |
| 281 | return 1; |
| 282 | } else { |
| 283 | #if (PLAT_SUPPORTS_NS_RESET && !NEW_TEST_SESSION && USE_NVM) |
| 284 | /* |
| 285 | * Reset the platform so that the next test runs in a clean |
| 286 | * environment. |
| 287 | */ |
| 288 | INFO("Reset platform before executing next test:%p\n", |
| 289 | (void *) &(next_test->test)); |
| 290 | tftf_plat_reset(); |
| 291 | bug_unreachable(); |
| 292 | #endif |
| 293 | } |
| 294 | |
| 295 | return 0; |
| 296 | } |
| 297 | |
| 298 | /* |
| 299 | * Hand over to lead CPU, i.e.: |
| 300 | * 1) Power on lead CPU |
| 301 | * 2) Power down calling CPU |
| 302 | */ |
| 303 | static void __dead2 hand_over_to_lead_cpu(void) |
| 304 | { |
| 305 | int ret; |
| 306 | unsigned int mpid = read_mpidr_el1() & MPID_MASK; |
| 307 | unsigned int core_pos = platform_get_core_pos(mpid); |
| 308 | |
| 309 | VERBOSE("CPU%u: Hand over to lead CPU%u\n", core_pos, |
| 310 | platform_get_core_pos(lead_cpu_mpid)); |
| 311 | |
| 312 | /* |
| 313 | * Power on lead CPU. |
| 314 | * The entry point address passed as the 2nd argument of tftf_cpu_on() |
| 315 | * doesn't matter because it will be overwritten by prepare_next_test(). |
| 316 | * Pass a NULL pointer to easily catch the problem in case something |
| 317 | * goes wrong. |
| 318 | */ |
| 319 | ret = tftf_cpu_on(lead_cpu_mpid, 0, 0); |
| 320 | if (ret != PSCI_E_SUCCESS) { |
| 321 | ERROR("CPU%u: Failed to power on lead CPU%u (%d)\n", |
| 322 | core_pos, platform_get_core_pos(lead_cpu_mpid), ret); |
| 323 | panic(); |
| 324 | } |
| 325 | |
| 326 | /* Wait for lead CPU to be actually powered on */ |
| 327 | while (!tftf_is_cpu_online(lead_cpu_mpid)) |
| 328 | ; |
| 329 | |
| 330 | /* |
| 331 | * Lead CPU has successfully booted, let's now power down the calling |
| 332 | * core. |
| 333 | */ |
| 334 | tftf_cpu_off(); |
| 335 | panic(); |
| 336 | } |
| 337 | |
| 338 | void __dead2 run_tests(void) |
| 339 | { |
| 340 | unsigned int mpid = read_mpidr_el1() & MPID_MASK; |
| 341 | unsigned int core_pos = platform_get_core_pos(mpid); |
| 342 | unsigned int test_session_finished; |
| 343 | unsigned int cpus_cnt; |
| 344 | |
| 345 | while (1) { |
| 346 | if (mpid == lead_cpu_mpid && (tftf_get_ref_cnt() == 0)) |
| 347 | prepare_next_test(); |
| 348 | |
| 349 | /* |
| 350 | * Increment the reference count to indicate that the CPU is |
| 351 | * participating in the test. |
| 352 | */ |
| 353 | tftf_inc_ref_cnt(); |
| 354 | |
| 355 | /* |
| 356 | * Mark the CPU's test result as "crashed". This is meant to be |
| 357 | * overwritten by the actual test result when the CPU returns |
| 358 | * from the test function into the framework. In case the CPU |
| 359 | * crashes in the test (and thus, never returns from it), this |
| 360 | * variable will hold the right value. |
| 361 | */ |
| 362 | test_results[core_pos] = TEST_RESULT_CRASHED; |
| 363 | |
| 364 | /* |
| 365 | * Jump to the test entrypoint for this core. |
| 366 | * - For the lead CPU, it has been populated by |
| 367 | * prepare_next_test() |
| 368 | * - For other CPUs, it has been populated by tftf_cpu_on() or |
| 369 | * tftf_try_cpu_on() |
| 370 | */ |
| 371 | while (test_entrypoint[core_pos] == 0) |
| 372 | ; |
| 373 | |
| 374 | test_results[core_pos] = test_entrypoint[core_pos](); |
| 375 | test_entrypoint[core_pos] = 0; |
| 376 | |
| 377 | /* |
| 378 | * Decrement the reference count to indicate that the CPU is not |
| 379 | * participating in the test any longer. |
| 380 | */ |
| 381 | cpus_cnt = tftf_dec_ref_cnt(); |
| 382 | |
| 383 | /* |
| 384 | * Last CPU to exit the test gets to do the necessary |
| 385 | * bookkeeping and to report the overall test result. |
| 386 | * Other CPUs shut down. |
| 387 | */ |
| 388 | if (cpus_cnt == 0) { |
| 389 | test_session_finished = close_test(); |
| 390 | if (test_session_finished) |
| 391 | break; |
| 392 | |
| 393 | if (mpid != lead_cpu_mpid) { |
| 394 | hand_over_to_lead_cpu(); |
| 395 | bug_unreachable(); |
| 396 | } |
| 397 | } else { |
| 398 | tftf_cpu_off(); |
| 399 | panic(); |
| 400 | } |
| 401 | } |
| 402 | |
| 403 | tftf_exit(); |
| 404 | |
| 405 | /* Should never reach this point */ |
| 406 | bug_unreachable(); |
| 407 | } |
| 408 | |
| 409 | u_register_t tftf_get_cpu_on_ctx_id(unsigned int core_pos) |
| 410 | { |
| 411 | assert(core_pos < PLATFORM_CORE_COUNT); |
| 412 | |
| 413 | return cpu_on_ctx_id_arr[core_pos]; |
| 414 | } |
| 415 | |
| 416 | void tftf_set_cpu_on_ctx_id(unsigned int core_pos, u_register_t context_id) |
| 417 | { |
| 418 | assert(core_pos < PLATFORM_CORE_COUNT); |
| 419 | |
| 420 | cpu_on_ctx_id_arr[core_pos] = context_id; |
| 421 | } |
| 422 | |
| 423 | unsigned int tftf_is_rebooted(void) |
| 424 | { |
| 425 | return test_is_rebooting; |
| 426 | } |
| 427 | |
| 428 | /* |
| 429 | * Return 0 if the test session can be resumed |
| 430 | * -1 otherwise. |
| 431 | */ |
| 432 | static int resume_test_session(void) |
| 433 | { |
| 434 | test_ref_t test_to_run; |
| 435 | test_progress_t test_progress; |
| 436 | const test_case_t *next_test; |
| 437 | |
| 438 | /* Get back on our feet. Where did we stop? */ |
| 439 | tftf_get_test_to_run(&test_to_run); |
| 440 | tftf_get_test_progress(&test_progress); |
| 441 | assert(TEST_PROGRESS_IS_VALID(test_progress)); |
| 442 | |
| 443 | switch (test_progress) { |
| 444 | case TEST_READY: |
| 445 | /* |
| 446 | * The TFTF has reset in the framework code, before the test |
| 447 | * actually started. |
| 448 | * Nothing to update, just start the test from scratch. |
| 449 | */ |
| 450 | break; |
| 451 | |
| 452 | case TEST_IN_PROGRESS: |
| 453 | /* |
| 454 | * The test crashed, i.e. it couldn't complete. |
| 455 | * Update the test result in NVM then move to the next test. |
| 456 | */ |
| 457 | INFO("Test has crashed, moving to the next one\n"); |
| 458 | tftf_testcase_set_result(current_testcase(), |
| 459 | TEST_RESULT_CRASHED, |
| 460 | 0); |
| 461 | next_test = advance_to_next_test(); |
| 462 | if (!next_test) { |
| 463 | INFO("No more tests\n"); |
| 464 | return -1; |
| 465 | } |
| 466 | break; |
| 467 | |
| 468 | case TEST_COMPLETE: |
| 469 | /* |
| 470 | * The TFTF has reset in the framework code, after the test had |
| 471 | * completed but before we finished the framework maintenance |
| 472 | * required to move to the next test. |
| 473 | * |
| 474 | * In this case, we don't know the exact state of the data: |
| 475 | * maybe we had the time to update the test result, |
| 476 | * maybe we had the time to move to the next test. |
| 477 | * We can't be sure so let's stay on the safe side and just |
| 478 | * restart the test session from the beginning... |
| 479 | */ |
| 480 | NOTICE("The test framework has been interrupted in the middle " |
| 481 | "of critical maintenance operations.\n"); |
| 482 | NOTICE("Can't recover execution.\n"); |
| 483 | return -1; |
| 484 | |
| 485 | case TEST_REBOOTING: |
| 486 | /* |
| 487 | * Nothing to update about the test session, as we want to |
| 488 | * re-enter the same test. Just remember that the test is |
| 489 | * rebooting in case it queries this information. |
| 490 | */ |
| 491 | test_is_rebooting = 1; |
| 492 | break; |
| 493 | |
| 494 | default: |
| 495 | bug_unreachable(); |
| 496 | } |
| 497 | |
| 498 | return 0; |
| 499 | } |
| 500 | |
| 501 | /* |
| 502 | * C entry point in the TFTF. |
| 503 | * This function is executed by the primary CPU only. |
| 504 | */ |
| 505 | void __dead2 tftf_cold_boot_main(void) |
| 506 | { |
| 507 | STATUS status; |
| 508 | int rc; |
| 509 | |
| 510 | NOTICE("%s\n", TFTF_WELCOME_STR); |
| 511 | NOTICE("%s\n", build_message); |
| 512 | NOTICE("%s\n\n", version_string); |
| 513 | |
| 514 | #ifndef AARCH32 |
| 515 | NOTICE("Running at NS-EL%u\n", IS_IN_EL(1) ? 1 : 2); |
| 516 | #else |
| 517 | NOTICE("Running in AArch32 HYP mode\n"); |
| 518 | #endif |
| 519 | |
| 520 | tftf_arch_setup(); |
| 521 | tftf_platform_setup(); |
| 522 | tftf_init_topology(); |
| 523 | |
| 524 | tftf_irq_setup(); |
| 525 | |
| 526 | rc = tftf_initialise_timer(); |
| 527 | if (rc != 0) { |
| 528 | ERROR("Failed to initialize the timer subsystem (%d).\n", rc); |
| 529 | tftf_exit(); |
| 530 | } |
| 531 | |
| 532 | /* Enable the SGI used by the timer management framework */ |
| 533 | tftf_irq_enable(IRQ_WAKE_SGI, GIC_HIGHEST_NS_PRIORITY); |
| 534 | enable_irq(); |
| 535 | |
| 536 | if (new_test_session()) { |
| 537 | NOTICE("Starting a new test session\n"); |
| 538 | status = tftf_init_nvm(); |
| 539 | if (status != STATUS_SUCCESS) { |
| 540 | /* |
| 541 | * TFTF will have an undetermined behavior if its data |
| 542 | * structures have not been initialised. There's no |
| 543 | * point in continuing execution. |
| 544 | */ |
| 545 | ERROR("FATAL: Failed to initialise internal data structures in NVM.\n"); |
| 546 | tftf_clean_nvm(); |
| 547 | tftf_exit(); |
| 548 | } |
| 549 | } else { |
| 550 | NOTICE("Resuming interrupted test session\n"); |
| 551 | rc = resume_test_session(); |
| 552 | if (rc < 0) { |
Sandrine Bailleux | 125d58c | 2018-11-07 17:11:59 +0100 | [diff] [blame] | 553 | print_tests_summary(); |
Sandrine Bailleux | 3cd87d7 | 2018-10-09 11:12:55 +0200 | [diff] [blame] | 554 | tftf_clean_nvm(); |
| 555 | tftf_exit(); |
| 556 | } |
| 557 | } |
| 558 | |
| 559 | /* Initialise the CPUs status map */ |
| 560 | tftf_init_cpus_status_map(); |
| 561 | |
| 562 | /* |
| 563 | * Detect power state format and get power state information for |
| 564 | * a platform. |
| 565 | */ |
| 566 | tftf_init_pstate_framework(); |
| 567 | |
| 568 | /* The lead CPU is always the primary core. */ |
| 569 | lead_cpu_mpid = read_mpidr_el1() & MPID_MASK; |
| 570 | |
| 571 | /* |
| 572 | * Hand over to lead CPU if required. |
| 573 | * If the primary CPU is not the lead CPU for the first test then: |
| 574 | * 1) Power on the lead CPU |
| 575 | * 2) Power down the primary CPU |
| 576 | */ |
| 577 | if ((read_mpidr_el1() & MPID_MASK) != lead_cpu_mpid) { |
| 578 | hand_over_to_lead_cpu(); |
| 579 | bug_unreachable(); |
| 580 | } |
| 581 | |
| 582 | /* Enter the test session */ |
| 583 | run_tests(); |
| 584 | |
| 585 | /* Should never reach this point */ |
| 586 | bug_unreachable(); |
| 587 | } |
| 588 | |
| 589 | void __dead2 tftf_exit(void) |
| 590 | { |
| 591 | NOTICE("Exiting tests.\n"); |
| 592 | |
| 593 | /* Let the platform code clean up if required */ |
| 594 | tftf_platform_end(); |
| 595 | |
| 596 | while (1) |
| 597 | wfi(); |
| 598 | } |