1 // SPDX-License-Identifier: BSD-2-Clause 2 /* 3 * Copyright (c) 2014, STMicroelectronics International N.V. 4 * Copyright (c) 2020, Arm Limited 5 * Copyright (c) 2025, NVIDIA Corporation & AFFILIATES. 6 */ 7 8 #include <assert.h> 9 #include <kernel/mutex.h> 10 #include <kernel/panic.h> 11 #include <kernel/pseudo_ta.h> 12 #include <kernel/stmm_sp.h> 13 #include <kernel/tee_common.h> 14 #include <kernel/tee_misc.h> 15 #include <kernel/tee_ta_manager.h> 16 #include <kernel/tee_time.h> 17 #include <kernel/thread.h> 18 #include <kernel/user_mode_ctx.h> 19 #include <kernel/user_ta.h> 20 #include <malloc.h> 21 #include <mm/core_memprot.h> 22 #include <mm/core_mmu.h> 23 #include <mm/mobj.h> 24 #include <mm/vm.h> 25 #include <pta_stats.h> 26 #include <stdlib.h> 27 #include <string.h> 28 #include <tee_api_types.h> 29 #include <tee/entry_std.h> 30 #include <tee/tee_obj.h> 31 #include <trace.h> 32 #include <types_ext.h> 33 #include <user_ta_header.h> 34 #include <utee_types.h> 35 #include <util.h> 36 37 #if defined(CFG_TA_STATS) 38 #define MAX_DUMP_SESS_NUM (16) 39 40 struct tee_ta_dump_ctx { 41 TEE_UUID uuid; 42 uint32_t panicked; 43 bool is_user_ta; 44 uint32_t sess_num; 45 uint32_t sess_id[MAX_DUMP_SESS_NUM]; 46 }; 47 #endif 48 49 /* This mutex protects the critical section in tee_ta_init_session */ 50 struct mutex tee_ta_mutex = MUTEX_INITIALIZER; 51 /* This condvar is used when waiting for a TA context to become initialized */ 52 struct condvar tee_ta_init_cv = CONDVAR_INITIALIZER; 53 struct tee_ta_ctx_head tee_ctxes = TAILQ_HEAD_INITIALIZER(tee_ctxes); 54 55 #ifndef CFG_CONCURRENT_SINGLE_INSTANCE_TA 56 static struct condvar tee_ta_cv = CONDVAR_INITIALIZER; 57 static short int tee_ta_single_instance_thread = THREAD_ID_INVALID; 58 static size_t tee_ta_single_instance_count; 59 #endif 60 61 #ifdef CFG_CONCURRENT_SINGLE_INSTANCE_TA 62 static void lock_single_instance(void) 63 { 64 } 65 66 static void unlock_single_instance(void) 67 { 68 } 69 70 static bool has_single_instance_lock(void) 71 { 72 return false; 73 } 74 #else 75 static void lock_single_instance(void) 76 { 77 /* Requires tee_ta_mutex to be held */ 78 if (tee_ta_single_instance_thread != thread_get_id()) { 79 /* Wait until the single-instance lock is available. */ 80 while (tee_ta_single_instance_thread != THREAD_ID_INVALID) 81 condvar_wait(&tee_ta_cv, &tee_ta_mutex); 82 83 tee_ta_single_instance_thread = thread_get_id(); 84 assert(tee_ta_single_instance_count == 0); 85 } 86 87 tee_ta_single_instance_count++; 88 } 89 90 static void unlock_single_instance(void) 91 { 92 /* Requires tee_ta_mutex to be held */ 93 assert(tee_ta_single_instance_thread == thread_get_id()); 94 assert(tee_ta_single_instance_count > 0); 95 96 tee_ta_single_instance_count--; 97 if (tee_ta_single_instance_count == 0) { 98 tee_ta_single_instance_thread = THREAD_ID_INVALID; 99 condvar_signal(&tee_ta_cv); 100 } 101 } 102 103 static bool has_single_instance_lock(void) 104 { 105 /* Requires tee_ta_mutex to be held */ 106 return tee_ta_single_instance_thread == thread_get_id(); 107 } 108 #endif 109 110 struct tee_ta_session *__noprof to_ta_session(struct ts_session *sess) 111 { 112 assert(is_ta_ctx(sess->ctx) || is_stmm_ctx(sess->ctx)); 113 return container_of(sess, struct tee_ta_session, ts_sess); 114 } 115 116 static struct tee_ta_ctx *ts_to_ta_ctx(struct ts_ctx *ctx) 117 { 118 if (is_ta_ctx(ctx)) 119 return to_ta_ctx(ctx); 120 121 if (is_stmm_ctx(ctx)) 122 return &(to_stmm_ctx(ctx)->ta_ctx); 123 124 panic("bad context"); 125 } 126 127 static bool tee_ta_try_set_busy(struct tee_ta_ctx *ctx) 128 { 129 bool rc = true; 130 131 if (ctx->flags & TA_FLAG_CONCURRENT) 132 return true; 133 134 mutex_lock(&tee_ta_mutex); 135 136 if (ctx->flags & TA_FLAG_SINGLE_INSTANCE) 137 lock_single_instance(); 138 139 if (has_single_instance_lock()) { 140 if (ctx->busy) { 141 /* 142 * We're holding the single-instance lock and the 143 * TA is busy, as waiting now would only cause a 144 * dead-lock, we release the lock and return false. 145 */ 146 rc = false; 147 if (ctx->flags & TA_FLAG_SINGLE_INSTANCE) 148 unlock_single_instance(); 149 } 150 } else { 151 /* 152 * We're not holding the single-instance lock, we're free to 153 * wait for the TA to become available. 154 */ 155 while (ctx->busy) 156 condvar_wait(&ctx->busy_cv, &tee_ta_mutex); 157 } 158 159 /* Either it's already true or we should set it to true */ 160 ctx->busy = true; 161 162 mutex_unlock(&tee_ta_mutex); 163 return rc; 164 } 165 166 static void tee_ta_set_busy(struct tee_ta_ctx *ctx) 167 { 168 if (!tee_ta_try_set_busy(ctx)) 169 panic(); 170 } 171 172 static void tee_ta_clear_busy(struct tee_ta_ctx *ctx) 173 { 174 if (ctx->flags & TA_FLAG_CONCURRENT) 175 return; 176 177 mutex_lock(&tee_ta_mutex); 178 179 assert(ctx->busy); 180 ctx->busy = false; 181 condvar_signal(&ctx->busy_cv); 182 183 if (ctx->flags & TA_FLAG_SINGLE_INSTANCE) 184 unlock_single_instance(); 185 186 mutex_unlock(&tee_ta_mutex); 187 } 188 189 static void dec_session_ref_count(struct tee_ta_session *s) 190 { 191 assert(s->ref_count > 0); 192 s->ref_count--; 193 if (s->ref_count == 1) 194 condvar_signal(&s->refc_cv); 195 } 196 197 void tee_ta_put_session(struct tee_ta_session *s) 198 { 199 mutex_lock(&tee_ta_mutex); 200 201 if (s->lock_thread == thread_get_id()) { 202 s->lock_thread = THREAD_ID_INVALID; 203 condvar_signal(&s->lock_cv); 204 } 205 dec_session_ref_count(s); 206 207 mutex_unlock(&tee_ta_mutex); 208 } 209 210 static struct tee_ta_session *tee_ta_find_session_nolock(uint32_t id, 211 struct tee_ta_session_head *open_sessions) 212 { 213 struct tee_ta_session *s = NULL; 214 struct tee_ta_session *found = NULL; 215 216 TAILQ_FOREACH(s, open_sessions, link) { 217 if (s->id == id) { 218 found = s; 219 break; 220 } 221 } 222 223 return found; 224 } 225 226 struct tee_ta_session *tee_ta_find_session(uint32_t id, 227 struct tee_ta_session_head *open_sessions) 228 { 229 struct tee_ta_session *s = NULL; 230 231 mutex_lock(&tee_ta_mutex); 232 233 s = tee_ta_find_session_nolock(id, open_sessions); 234 235 mutex_unlock(&tee_ta_mutex); 236 237 return s; 238 } 239 240 struct tee_ta_session *tee_ta_get_session(uint32_t id, bool exclusive, 241 struct tee_ta_session_head *open_sessions) 242 { 243 struct tee_ta_session *s; 244 245 mutex_lock(&tee_ta_mutex); 246 247 while (true) { 248 s = tee_ta_find_session_nolock(id, open_sessions); 249 if (!s) 250 break; 251 if (s->unlink) { 252 s = NULL; 253 break; 254 } 255 s->ref_count++; 256 if (!exclusive) 257 break; 258 259 assert(s->lock_thread != thread_get_id()); 260 261 while (s->lock_thread != THREAD_ID_INVALID && !s->unlink) 262 condvar_wait(&s->lock_cv, &tee_ta_mutex); 263 264 if (s->unlink) { 265 dec_session_ref_count(s); 266 s = NULL; 267 break; 268 } 269 270 s->lock_thread = thread_get_id(); 271 break; 272 } 273 274 mutex_unlock(&tee_ta_mutex); 275 return s; 276 } 277 278 static void tee_ta_unlink_session(struct tee_ta_session *s, 279 struct tee_ta_session_head *open_sessions) 280 { 281 mutex_lock(&tee_ta_mutex); 282 283 assert(s->ref_count >= 1); 284 assert(s->lock_thread == thread_get_id()); 285 assert(!s->unlink); 286 287 s->unlink = true; 288 condvar_broadcast(&s->lock_cv); 289 290 while (s->ref_count != 1) 291 condvar_wait(&s->refc_cv, &tee_ta_mutex); 292 293 TAILQ_REMOVE(open_sessions, s, link); 294 295 mutex_unlock(&tee_ta_mutex); 296 } 297 298 static void dump_ftrace(struct tee_ta_session *s __maybe_unused) 299 { 300 #if defined(CFG_FTRACE_SUPPORT) 301 struct ts_ctx *ts_ctx = s->ts_sess.ctx; 302 303 if (ts_ctx && ts_ctx->ops->dump_ftrace && 304 core_mmu_user_mapping_is_active()) { 305 ts_push_current_session(&s->ts_sess); 306 ts_ctx->ops->dump_ftrace(ts_ctx); 307 ts_pop_current_session(); 308 } 309 #endif 310 } 311 312 static void destroy_session(struct tee_ta_session *s, 313 struct tee_ta_session_head *open_sessions) 314 { 315 dump_ftrace(s); 316 317 tee_ta_unlink_session(s, open_sessions); 318 #if defined(CFG_TA_GPROF_SUPPORT) 319 free(s->ts_sess.sbuf); 320 #endif 321 free(s); 322 } 323 324 static void destroy_context(struct tee_ta_ctx *ctx) 325 { 326 DMSG("Destroy TA ctx (0x%" PRIxVA ")", (vaddr_t)ctx); 327 328 condvar_destroy(&ctx->busy_cv); 329 ctx->ts_ctx.ops->destroy(&ctx->ts_ctx); 330 } 331 332 /* 333 * tee_ta_context_find - Find TA in session list based on a UUID (input) 334 * Returns a pointer to the session 335 */ 336 static struct tee_ta_ctx *tee_ta_context_find(const TEE_UUID *uuid) 337 { 338 struct tee_ta_ctx *ctx; 339 340 TAILQ_FOREACH(ctx, &tee_ctxes, link) { 341 if (memcmp(&ctx->ts_ctx.uuid, uuid, sizeof(TEE_UUID)) == 0) 342 return ctx; 343 } 344 345 return NULL; 346 } 347 348 /* check if requester (client ID) matches session initial client */ 349 static TEE_Result check_client(struct tee_ta_session *s, const TEE_Identity *id) 350 { 351 if (id == KERN_IDENTITY) 352 return TEE_SUCCESS; 353 354 if (id == NSAPP_IDENTITY) { 355 if (s->clnt_id.login == TEE_LOGIN_TRUSTED_APP) { 356 DMSG("nsec tries to hijack TA session"); 357 return TEE_ERROR_ACCESS_DENIED; 358 } 359 return TEE_SUCCESS; 360 } 361 362 if (memcmp(&s->clnt_id, id, sizeof(TEE_Identity)) != 0) { 363 DMSG("client id mismatch"); 364 return TEE_ERROR_ACCESS_DENIED; 365 } 366 return TEE_SUCCESS; 367 } 368 369 /* 370 * Check if invocation parameters matches TA properties 371 * 372 * @s - current session handle 373 * @param - already identified memory references hold a valid 'mobj'. 374 * 375 * Policy: 376 * - All TAs can access 'non-secure' shared memory. 377 * - All TAs can access TEE private memory (seccpy) 378 * - Only SDP flagged TAs can accept SDP memory references. 379 */ 380 #ifndef CFG_SECURE_DATA_PATH 381 static bool check_params(struct tee_ta_session *sess __unused, 382 struct tee_ta_param *param __unused) 383 { 384 /* 385 * When CFG_SECURE_DATA_PATH is not enabled, SDP memory references 386 * are rejected at OP-TEE core entry. Hence here all TAs have same 387 * permissions regarding memory reference parameters. 388 */ 389 return true; 390 } 391 #else 392 static bool check_params(struct tee_ta_session *sess, 393 struct tee_ta_param *param) 394 { 395 int n; 396 397 /* 398 * When CFG_SECURE_DATA_PATH is enabled, OP-TEE entry allows SHM and 399 * SDP memory references. Only TAs flagged SDP can access SDP memory. 400 */ 401 if (sess->ts_sess.ctx && 402 ts_to_ta_ctx(sess->ts_sess.ctx)->flags & TA_FLAG_SECURE_DATA_PATH) 403 return true; 404 405 for (n = 0; n < TEE_NUM_PARAMS; n++) { 406 uint32_t param_type = TEE_PARAM_TYPE_GET(param->types, n); 407 struct param_mem *mem = ¶m->u[n].mem; 408 409 if (param_type != TEE_PARAM_TYPE_MEMREF_INPUT && 410 param_type != TEE_PARAM_TYPE_MEMREF_OUTPUT && 411 param_type != TEE_PARAM_TYPE_MEMREF_INOUT) 412 continue; 413 if (!mem->size) 414 continue; 415 if (mobj_is_sdp_mem(mem->mobj)) 416 return false; 417 } 418 return true; 419 } 420 #endif 421 422 static void set_invoke_timeout(struct tee_ta_session *sess, 423 uint32_t cancel_req_to) 424 { 425 TEE_Time current_time; 426 TEE_Time cancel_time; 427 428 if (cancel_req_to == TEE_TIMEOUT_INFINITE) 429 goto infinite; 430 431 if (tee_time_get_sys_time(¤t_time) != TEE_SUCCESS) 432 goto infinite; 433 434 if (ADD_OVERFLOW(current_time.seconds, cancel_req_to / 1000, 435 &cancel_time.seconds)) 436 goto infinite; 437 438 cancel_time.millis = current_time.millis + cancel_req_to % 1000; 439 if (cancel_time.millis > 1000) { 440 if (ADD_OVERFLOW(current_time.seconds, 1, 441 &cancel_time.seconds)) 442 goto infinite; 443 444 cancel_time.seconds++; 445 cancel_time.millis -= 1000; 446 } 447 448 sess->cancel_time = cancel_time; 449 return; 450 451 infinite: 452 sess->cancel_time.seconds = UINT32_MAX; 453 sess->cancel_time.millis = UINT32_MAX; 454 } 455 456 static void close_session(struct tee_ta_session *sess, 457 struct tee_ta_session_head *open_sessions) 458 { 459 struct ts_ctx *ts_ctx = NULL; 460 struct tee_ta_ctx *ctx = NULL; 461 bool keep_crashed = false; 462 bool keep_alive = false; 463 464 ts_ctx = sess->ts_sess.ctx; 465 if (!ts_ctx) { 466 destroy_session(sess, open_sessions); 467 return; 468 } 469 470 ctx = ts_to_ta_ctx(ts_ctx); 471 if (ctx->panicked) { 472 destroy_session(sess, open_sessions); 473 } else { 474 tee_ta_set_busy(ctx); 475 set_invoke_timeout(sess, TEE_TIMEOUT_INFINITE); 476 ts_ctx->ops->enter_close_session(&sess->ts_sess); 477 destroy_session(sess, open_sessions); 478 tee_ta_clear_busy(ctx); 479 } 480 481 mutex_lock(&tee_ta_mutex); 482 483 if (ctx->ref_count <= 0) 484 panic(); 485 486 ctx->ref_count--; 487 if (ctx->flags & TA_FLAG_SINGLE_INSTANCE) 488 keep_alive = ctx->flags & TA_FLAG_INSTANCE_KEEP_ALIVE; 489 if (keep_alive) 490 keep_crashed = ctx->flags & TA_FLAG_INSTANCE_KEEP_CRASHED; 491 if (!ctx->ref_count && 492 ((ctx->panicked && !keep_crashed) || !keep_alive)) { 493 if (!ctx->is_releasing) { 494 TAILQ_REMOVE(&tee_ctxes, ctx, link); 495 ctx->is_releasing = true; 496 } 497 mutex_unlock(&tee_ta_mutex); 498 499 destroy_context(ctx); 500 } else 501 mutex_unlock(&tee_ta_mutex); 502 } 503 504 /* 505 * Close a Trusted Application and free available resources 506 */ 507 TEE_Result tee_ta_close_session(uint32_t id, 508 struct tee_ta_session_head *open_sessions, 509 const TEE_Identity *clnt_id) 510 { 511 struct tee_ta_session *sess = NULL; 512 513 DMSG("id %"PRIu32, id); 514 515 sess = tee_ta_get_session(id, true, open_sessions); 516 517 if (!sess) { 518 EMSG("session id %"PRIu32" to be removed is not found", id); 519 return TEE_ERROR_ITEM_NOT_FOUND; 520 } 521 522 if (check_client(sess, clnt_id) != TEE_SUCCESS) { 523 tee_ta_put_session(sess); 524 return TEE_ERROR_BAD_PARAMETERS; /* intentional generic error */ 525 } 526 527 DMSG("Destroy session"); 528 close_session(sess, open_sessions); 529 530 return TEE_SUCCESS; 531 } 532 533 static TEE_Result tee_ta_init_session_with_context(struct tee_ta_session *s, 534 const TEE_UUID *uuid) 535 { 536 struct tee_ta_ctx *ctx = NULL; 537 538 while (true) { 539 ctx = tee_ta_context_find(uuid); 540 if (!ctx) 541 return TEE_ERROR_ITEM_NOT_FOUND; 542 543 if (!ctx->is_initializing) 544 break; 545 /* 546 * Context is still initializing, wait here until it's 547 * fully initialized. Note that we're searching for the 548 * context again since it may have been removed while we 549 * where sleeping. 550 */ 551 condvar_wait(&tee_ta_init_cv, &tee_ta_mutex); 552 } 553 554 /* 555 * If the trusted service is not a single instance service (e.g. is 556 * a multi-instance TA) it should be loaded as a new instance instead 557 * of doing anything with this instance. So tell the caller that we 558 * didn't find the TA it the caller will load a new instance. 559 */ 560 if ((ctx->flags & TA_FLAG_SINGLE_INSTANCE) == 0) 561 return TEE_ERROR_ITEM_NOT_FOUND; 562 563 /* 564 * The trusted service is single instance, if it isn't multi session we 565 * can't create another session unless its reference is zero 566 */ 567 if (!(ctx->flags & TA_FLAG_MULTI_SESSION) && ctx->ref_count) 568 return TEE_ERROR_BUSY; 569 570 DMSG("Re-open trusted service %pUl", (void *)&ctx->ts_ctx.uuid); 571 572 ctx->ref_count++; 573 s->ts_sess.ctx = &ctx->ts_ctx; 574 s->ts_sess.handle_scall = s->ts_sess.ctx->ops->handle_scall; 575 return TEE_SUCCESS; 576 } 577 578 static uint32_t new_session_id(struct tee_ta_session_head *open_sessions) 579 { 580 struct tee_ta_session *last = NULL; 581 uint32_t saved = 0; 582 uint32_t id = 1; 583 584 last = TAILQ_LAST(open_sessions, tee_ta_session_head); 585 if (last) { 586 /* This value is less likely to be already used */ 587 id = last->id + 1; 588 if (!id) 589 id++; /* 0 is not valid */ 590 } 591 592 saved = id; 593 do { 594 if (!tee_ta_find_session_nolock(id, open_sessions)) 595 return id; 596 id++; 597 if (!id) 598 id++; 599 } while (id != saved); 600 601 return 0; 602 } 603 604 static TEE_Result tee_ta_init_session(TEE_ErrorOrigin *err, 605 struct tee_ta_session_head *open_sessions, 606 const TEE_UUID *uuid, 607 struct tee_ta_session **sess) 608 { 609 TEE_Result res; 610 struct tee_ta_session *s = calloc(1, sizeof(struct tee_ta_session)); 611 612 *err = TEE_ORIGIN_TEE; 613 if (!s) 614 return TEE_ERROR_OUT_OF_MEMORY; 615 616 s->cancel_mask = true; 617 condvar_init(&s->refc_cv); 618 condvar_init(&s->lock_cv); 619 s->lock_thread = thread_get_id(); 620 s->ref_count = 1; 621 622 mutex_lock(&tee_ta_mutex); 623 s->id = new_session_id(open_sessions); 624 if (!s->id) { 625 res = TEE_ERROR_OVERFLOW; 626 goto err_mutex_unlock; 627 } 628 629 TAILQ_INSERT_TAIL(open_sessions, s, link); 630 631 /* Look for already loaded TA */ 632 res = tee_ta_init_session_with_context(s, uuid); 633 if (res == TEE_SUCCESS || res != TEE_ERROR_ITEM_NOT_FOUND) { 634 mutex_unlock(&tee_ta_mutex); 635 goto out; 636 } 637 638 /* Look for secure partition */ 639 res = stmm_init_session(uuid, s); 640 if (res == TEE_SUCCESS || res != TEE_ERROR_ITEM_NOT_FOUND) { 641 mutex_unlock(&tee_ta_mutex); 642 if (res == TEE_SUCCESS) 643 res = stmm_complete_session(s); 644 645 goto out; 646 } 647 648 /* Look for pseudo TA */ 649 res = tee_ta_init_pseudo_ta_session(uuid, s); 650 if (res == TEE_SUCCESS || res != TEE_ERROR_ITEM_NOT_FOUND) { 651 mutex_unlock(&tee_ta_mutex); 652 goto out; 653 } 654 655 /* Look for user TA */ 656 res = tee_ta_init_user_ta_session(uuid, s); 657 mutex_unlock(&tee_ta_mutex); 658 if (res == TEE_SUCCESS) 659 res = tee_ta_complete_user_ta_session(s); 660 661 out: 662 if (!res) { 663 *sess = s; 664 return TEE_SUCCESS; 665 } 666 667 mutex_lock(&tee_ta_mutex); 668 TAILQ_REMOVE(open_sessions, s, link); 669 err_mutex_unlock: 670 mutex_unlock(&tee_ta_mutex); 671 free(s); 672 return res; 673 } 674 675 static void maybe_release_ta_ctx(struct tee_ta_ctx *ctx) 676 { 677 bool was_releasing = false; 678 bool keep_crashed = false; 679 bool keep_alive = false; 680 681 if (ctx->flags & TA_FLAG_SINGLE_INSTANCE) 682 keep_alive = ctx->flags & TA_FLAG_INSTANCE_KEEP_ALIVE; 683 if (keep_alive) 684 keep_crashed = ctx->flags & TA_FLAG_INSTANCE_KEEP_CRASHED; 685 686 /* 687 * Keep panicked TAs with SINGLE_INSTANCE, KEEP_ALIVE, and KEEP_CRASHED 688 * flags in the context list to maintain their panicked status and 689 * prevent respawning. 690 */ 691 if (!keep_crashed) { 692 mutex_lock(&tee_ta_mutex); 693 was_releasing = ctx->is_releasing; 694 ctx->is_releasing = true; 695 if (!was_releasing) { 696 DMSG("Releasing panicked TA ctx"); 697 TAILQ_REMOVE(&tee_ctxes, ctx, link); 698 } 699 mutex_unlock(&tee_ta_mutex); 700 701 if (!was_releasing) 702 ctx->ts_ctx.ops->release_state(&ctx->ts_ctx); 703 } 704 } 705 706 TEE_Result tee_ta_open_session(TEE_ErrorOrigin *err, uint32_t *sess_id, 707 struct tee_ta_session_head *open_sessions, 708 const TEE_UUID *uuid, 709 const TEE_Identity *clnt_id, 710 uint32_t cancel_req_to, 711 struct tee_ta_param *param) 712 { 713 TEE_Result res = TEE_SUCCESS; 714 struct tee_ta_session *s = NULL; 715 struct tee_ta_ctx *ctx = NULL; 716 struct ts_ctx *ts_ctx = NULL; 717 bool panicked = false; 718 bool was_busy = false; 719 720 res = tee_ta_init_session(err, open_sessions, uuid, &s); 721 if (res != TEE_SUCCESS) { 722 DMSG("init session failed 0x%x", res); 723 return res; 724 } 725 726 if (!check_params(s, param)) { 727 close_session(s, open_sessions); 728 return TEE_ERROR_BAD_PARAMETERS; 729 } 730 731 ts_ctx = s->ts_sess.ctx; 732 ctx = ts_to_ta_ctx(ts_ctx); 733 734 if (tee_ta_try_set_busy(ctx)) { 735 if (!ctx->panicked) { 736 /* Save identity of the owner of the session */ 737 s->clnt_id = *clnt_id; 738 s->param = param; 739 set_invoke_timeout(s, cancel_req_to); 740 res = ts_ctx->ops->enter_open_session(&s->ts_sess); 741 s->param = NULL; 742 } 743 744 panicked = ctx->panicked; 745 if (panicked) { 746 maybe_release_ta_ctx(ctx); 747 res = TEE_ERROR_TARGET_DEAD; 748 } else { 749 if (IS_ENABLED(CFG_FTRACE_DUMP_EVERY_ENTRY)) 750 dump_ftrace(s); 751 } 752 753 tee_ta_clear_busy(ctx); 754 } else { 755 /* Deadlock avoided */ 756 res = TEE_ERROR_BUSY; 757 was_busy = true; 758 } 759 760 /* 761 * Origin error equal to TEE_ORIGIN_TRUSTED_APP for "regular" error, 762 * apart from panicking. 763 */ 764 if (panicked || was_busy) 765 *err = TEE_ORIGIN_TEE; 766 else 767 *err = s->err_origin; 768 769 if (res) { 770 close_session(s, open_sessions); 771 EMSG("Failed for TA %pUl. Return error %#"PRIx32, uuid, res); 772 } else { 773 *sess_id = s->id; 774 tee_ta_put_session(s); 775 } 776 777 return res; 778 } 779 780 TEE_Result tee_ta_invoke_command(TEE_ErrorOrigin *err, 781 struct tee_ta_session *sess, 782 const TEE_Identity *clnt_id, 783 uint32_t cancel_req_to, uint32_t cmd, 784 struct tee_ta_param *param) 785 { 786 struct tee_ta_ctx *ta_ctx = NULL; 787 struct ts_ctx *ts_ctx = NULL; 788 TEE_Result res = TEE_SUCCESS; 789 bool panicked = false; 790 791 if (check_client(sess, clnt_id) != TEE_SUCCESS) 792 return TEE_ERROR_BAD_PARAMETERS; /* intentional generic error */ 793 794 if (!check_params(sess, param)) 795 return TEE_ERROR_BAD_PARAMETERS; 796 797 ts_ctx = sess->ts_sess.ctx; 798 ta_ctx = ts_to_ta_ctx(ts_ctx); 799 800 tee_ta_set_busy(ta_ctx); 801 802 if (!ta_ctx->panicked) { 803 sess->param = param; 804 set_invoke_timeout(sess, cancel_req_to); 805 res = ts_ctx->ops->enter_invoke_cmd(&sess->ts_sess, cmd); 806 sess->param = NULL; 807 } 808 809 panicked = ta_ctx->panicked; 810 if (panicked) { 811 maybe_release_ta_ctx(ta_ctx); 812 res = TEE_ERROR_TARGET_DEAD; 813 } else { 814 if (IS_ENABLED(CFG_FTRACE_DUMP_EVERY_ENTRY)) 815 dump_ftrace(sess); 816 } 817 818 tee_ta_clear_busy(ta_ctx); 819 820 /* 821 * Origin error equal to TEE_ORIGIN_TRUSTED_APP for "regular" error, 822 * apart from panicking. 823 */ 824 if (panicked) 825 *err = TEE_ORIGIN_TEE; 826 else 827 *err = sess->err_origin; 828 829 /* Short buffer is not an effective error case */ 830 if (res != TEE_SUCCESS && res != TEE_ERROR_SHORT_BUFFER) 831 DMSG("Error: %x of %d", res, *err); 832 833 return res; 834 } 835 836 #if defined(CFG_TA_STATS) 837 static TEE_Result dump_ta_memstats(struct tee_ta_session *s, 838 struct tee_ta_param *param) 839 { 840 TEE_Result res = TEE_SUCCESS; 841 struct tee_ta_ctx *ctx = NULL; 842 struct ts_ctx *ts_ctx = NULL; 843 bool panicked = false; 844 845 ts_ctx = s->ts_sess.ctx; 846 if (!ts_ctx) 847 return TEE_ERROR_ITEM_NOT_FOUND; 848 849 ctx = ts_to_ta_ctx(ts_ctx); 850 851 if (ctx->is_initializing) 852 return TEE_ERROR_BAD_STATE; 853 854 if (tee_ta_try_set_busy(ctx)) { 855 if (!ctx->panicked) { 856 s->param = param; 857 set_invoke_timeout(s, TEE_TIMEOUT_INFINITE); 858 res = ts_ctx->ops->dump_mem_stats(&s->ts_sess); 859 s->param = NULL; 860 } 861 862 panicked = ctx->panicked; 863 if (panicked) { 864 maybe_release_ta_ctx(ctx); 865 res = TEE_ERROR_TARGET_DEAD; 866 } 867 868 tee_ta_clear_busy(ctx); 869 } else { 870 /* Deadlock avoided */ 871 res = TEE_ERROR_BUSY; 872 } 873 874 return res; 875 } 876 877 static void init_dump_ctx(struct tee_ta_dump_ctx *dump_ctx) 878 { 879 struct tee_ta_session *sess = NULL; 880 struct tee_ta_session_head *open_sessions = NULL; 881 struct tee_ta_ctx *ctx = NULL; 882 unsigned int n = 0; 883 884 nsec_sessions_list_head(&open_sessions); 885 /* 886 * Scan all sessions opened from secure side by searching through 887 * all available TA instances and for each context, scan all opened 888 * sessions. 889 */ 890 TAILQ_FOREACH(ctx, &tee_ctxes, link) { 891 unsigned int cnt = 0; 892 893 if (!is_user_ta_ctx(&ctx->ts_ctx)) 894 continue; 895 896 memcpy(&dump_ctx[n].uuid, &ctx->ts_ctx.uuid, 897 sizeof(ctx->ts_ctx.uuid)); 898 dump_ctx[n].panicked = ctx->panicked; 899 dump_ctx[n].is_user_ta = is_user_ta_ctx(&ctx->ts_ctx); 900 TAILQ_FOREACH(sess, open_sessions, link) { 901 if (sess->ts_sess.ctx == &ctx->ts_ctx) { 902 if (cnt == MAX_DUMP_SESS_NUM) 903 break; 904 905 dump_ctx[n].sess_id[cnt] = sess->id; 906 cnt++; 907 } 908 } 909 910 dump_ctx[n].sess_num = cnt; 911 n++; 912 } 913 } 914 915 static TEE_Result dump_ta_stats(struct tee_ta_dump_ctx *dump_ctx, 916 struct pta_stats_ta *dump_stats, 917 size_t ta_count) 918 { 919 TEE_Result res = TEE_SUCCESS; 920 struct tee_ta_session *sess = NULL; 921 struct tee_ta_session_head *open_sessions = NULL; 922 struct tee_ta_param param = { }; 923 unsigned int i = 0; 924 unsigned int j = 0; 925 926 nsec_sessions_list_head(&open_sessions); 927 928 for (i = 0; i < ta_count; i++) { 929 struct pta_stats_ta *stats = &dump_stats[i]; 930 931 memcpy(&stats->uuid, &dump_ctx[i].uuid, 932 sizeof(dump_ctx[i].uuid)); 933 stats->panicked = dump_ctx[i].panicked; 934 stats->sess_num = dump_ctx[i].sess_num; 935 936 /* Find a session from dump context */ 937 for (j = 0, sess = NULL; j < dump_ctx[i].sess_num && !sess; j++) 938 sess = tee_ta_get_session(dump_ctx[i].sess_id[j], true, 939 open_sessions); 940 941 if (!sess) 942 continue; 943 /* If session is existing, get its heap stats */ 944 memset(¶m, 0, sizeof(struct tee_ta_param)); 945 param.types = TEE_PARAM_TYPES(TEE_PARAM_TYPE_VALUE_OUTPUT, 946 TEE_PARAM_TYPE_VALUE_OUTPUT, 947 TEE_PARAM_TYPE_VALUE_OUTPUT, 948 TEE_PARAM_TYPE_NONE); 949 res = dump_ta_memstats(sess, ¶m); 950 if (res == TEE_SUCCESS) { 951 stats->heap.allocated = param.u[0].val.a; 952 stats->heap.max_allocated = param.u[0].val.b; 953 stats->heap.size = param.u[1].val.a; 954 stats->heap.num_alloc_fail = param.u[1].val.b; 955 stats->heap.biggest_alloc_fail = param.u[2].val.a; 956 stats->heap.biggest_alloc_fail_used = param.u[2].val.b; 957 } else { 958 memset(&stats->heap, 0, sizeof(stats->heap)); 959 } 960 tee_ta_put_session(sess); 961 } 962 963 return TEE_SUCCESS; 964 } 965 966 TEE_Result tee_ta_instance_stats(void *buf, size_t *buf_size) 967 { 968 TEE_Result res = TEE_SUCCESS; 969 struct pta_stats_ta *dump_stats = NULL; 970 struct tee_ta_dump_ctx *dump_ctx = NULL; 971 struct tee_ta_ctx *ctx = NULL; 972 size_t sz = 0; 973 size_t ta_count = 0; 974 975 if (!buf_size) 976 return TEE_ERROR_BAD_PARAMETERS; 977 978 mutex_lock(&tee_ta_mutex); 979 980 /* Go through all available TA and calc out the actual buffer size. */ 981 TAILQ_FOREACH(ctx, &tee_ctxes, link) 982 if (is_user_ta_ctx(&ctx->ts_ctx)) 983 ta_count++; 984 985 sz = sizeof(struct pta_stats_ta) * ta_count; 986 if (!sz) { 987 /* sz = 0 means there is no UTA, return no item found. */ 988 res = TEE_ERROR_ITEM_NOT_FOUND; 989 } else if (!buf || *buf_size < sz) { 990 /* 991 * buf is null or pass size less than actual size 992 * means caller try to query the buffer size. 993 * update *buf_size. 994 */ 995 *buf_size = sz; 996 res = TEE_ERROR_SHORT_BUFFER; 997 } else if (!IS_ALIGNED_WITH_TYPE(buf, uint32_t)) { 998 DMSG("Data alignment"); 999 res = TEE_ERROR_BAD_PARAMETERS; 1000 } else { 1001 dump_stats = (struct pta_stats_ta *)buf; 1002 dump_ctx = malloc(sizeof(struct tee_ta_dump_ctx) * ta_count); 1003 if (!dump_ctx) 1004 res = TEE_ERROR_OUT_OF_MEMORY; 1005 else 1006 init_dump_ctx(dump_ctx); 1007 } 1008 mutex_unlock(&tee_ta_mutex); 1009 1010 if (res != TEE_SUCCESS) 1011 return res; 1012 1013 /* Dump user ta stats by iterating dump_ctx[] */ 1014 res = dump_ta_stats(dump_ctx, dump_stats, ta_count); 1015 if (res == TEE_SUCCESS) 1016 *buf_size = sz; 1017 1018 free(dump_ctx); 1019 return res; 1020 } 1021 #endif 1022 1023 TEE_Result tee_ta_cancel_command(TEE_ErrorOrigin *err, 1024 struct tee_ta_session *sess, 1025 const TEE_Identity *clnt_id) 1026 { 1027 *err = TEE_ORIGIN_TEE; 1028 1029 if (check_client(sess, clnt_id) != TEE_SUCCESS) 1030 return TEE_ERROR_BAD_PARAMETERS; /* intentional generic error */ 1031 1032 sess->cancel = true; 1033 return TEE_SUCCESS; 1034 } 1035 1036 bool tee_ta_session_is_cancelled(struct tee_ta_session *s, TEE_Time *curr_time) 1037 { 1038 TEE_Time current_time; 1039 1040 if (s->cancel_mask) 1041 return false; 1042 1043 if (s->cancel) 1044 return true; 1045 1046 if (s->cancel_time.seconds == UINT32_MAX) 1047 return false; 1048 1049 if (curr_time != NULL) 1050 current_time = *curr_time; 1051 else if (tee_time_get_sys_time(¤t_time) != TEE_SUCCESS) 1052 return false; 1053 1054 if (current_time.seconds > s->cancel_time.seconds || 1055 (current_time.seconds == s->cancel_time.seconds && 1056 current_time.millis >= s->cancel_time.millis)) { 1057 return true; 1058 } 1059 1060 return false; 1061 } 1062 1063 #if defined(CFG_TA_GPROF_SUPPORT) 1064 void tee_ta_gprof_sample_pc(vaddr_t pc) 1065 { 1066 struct ts_session *s = ts_get_current_session(); 1067 struct user_ta_ctx *utc = NULL; 1068 struct sample_buf *sbuf = NULL; 1069 TEE_Result res = 0; 1070 size_t idx = 0; 1071 1072 sbuf = s->sbuf; 1073 if (!sbuf || !sbuf->enabled) 1074 return; /* PC sampling is not enabled */ 1075 1076 idx = (((uint64_t)pc - sbuf->offset)/2 * sbuf->scale)/65536; 1077 if (idx < sbuf->nsamples) { 1078 utc = to_user_ta_ctx(s->ctx); 1079 res = vm_check_access_rights(&utc->uctx, 1080 TEE_MEMORY_ACCESS_READ | 1081 TEE_MEMORY_ACCESS_WRITE | 1082 TEE_MEMORY_ACCESS_ANY_OWNER, 1083 (uaddr_t)&sbuf->samples[idx], 1084 sizeof(*sbuf->samples)); 1085 if (res != TEE_SUCCESS) 1086 return; 1087 sbuf->samples[idx]++; 1088 } 1089 sbuf->count++; 1090 } 1091 1092 static void gprof_update_session_utime(bool suspend, struct ts_session *s, 1093 uint64_t now) 1094 { 1095 struct sample_buf *sbuf = s->sbuf; 1096 1097 if (!sbuf) 1098 return; 1099 1100 if (suspend) { 1101 assert(sbuf->usr_entered); 1102 sbuf->usr += now - sbuf->usr_entered; 1103 sbuf->usr_entered = 0; 1104 } else { 1105 assert(!sbuf->usr_entered); 1106 if (!now) 1107 now++; /* 0 is reserved */ 1108 sbuf->usr_entered = now; 1109 } 1110 } 1111 1112 /* 1113 * Update user-mode CPU time for the current session 1114 * @suspend: true if session is being suspended (leaving user mode), false if 1115 * it is resumed (entering user mode) 1116 */ 1117 static void tee_ta_update_session_utime(bool suspend) 1118 { 1119 struct ts_session *s = ts_get_current_session(); 1120 uint64_t now = barrier_read_counter_timer(); 1121 1122 gprof_update_session_utime(suspend, s, now); 1123 } 1124 1125 void tee_ta_update_session_utime_suspend(void) 1126 { 1127 tee_ta_update_session_utime(true); 1128 } 1129 1130 void tee_ta_update_session_utime_resume(void) 1131 { 1132 tee_ta_update_session_utime(false); 1133 } 1134 #endif 1135 1136 #if defined(CFG_FTRACE_SUPPORT) 1137 static void ftrace_update_times(bool suspend) 1138 { 1139 struct ts_session *s = ts_get_current_session_may_fail(); 1140 struct ftrace_buf *fbuf = NULL; 1141 TEE_Result res = TEE_SUCCESS; 1142 uint64_t now = 0; 1143 uint32_t i = 0; 1144 1145 if (!s) 1146 return; 1147 1148 now = barrier_read_counter_timer(); 1149 1150 fbuf = s->fbuf; 1151 if (!fbuf) 1152 return; 1153 1154 res = vm_check_access_rights(to_user_mode_ctx(s->ctx), 1155 TEE_MEMORY_ACCESS_WRITE | 1156 TEE_MEMORY_ACCESS_ANY_OWNER, 1157 (uaddr_t)fbuf, sizeof(*fbuf)); 1158 if (res) 1159 return; 1160 1161 if (suspend) { 1162 fbuf->suspend_time = now; 1163 } else { 1164 for (i = 0; i <= fbuf->ret_idx; i++) 1165 fbuf->begin_time[i] += now - fbuf->suspend_time; 1166 } 1167 } 1168 1169 void tee_ta_ftrace_update_times_suspend(void) 1170 { 1171 ftrace_update_times(true); 1172 } 1173 1174 void tee_ta_ftrace_update_times_resume(void) 1175 { 1176 ftrace_update_times(false); 1177 } 1178 #endif 1179 1180 bool __noprof is_ta_ctx(struct ts_ctx *ctx) 1181 { 1182 return is_user_ta_ctx(ctx) || is_pseudo_ta_ctx(ctx); 1183 } 1184