1 /* 2 * Copyright (c) 2014, STMicroelectronics International N.V. 3 * All rights reserved. 4 * 5 * Redistribution and use in source and binary forms, with or without 6 * modification, are permitted provided that the following conditions are met: 7 * 8 * 1. Redistributions of source code must retain the above copyright notice, 9 * this list of conditions and the following disclaimer. 10 * 11 * 2. Redistributions in binary form must reproduce the above copyright notice, 12 * this list of conditions and the following disclaimer in the documentation 13 * and/or other materials provided with the distribution. 14 * 15 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" 16 * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 17 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 18 * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE 19 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 20 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 21 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 22 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 23 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 24 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 25 * POSSIBILITY OF SUCH DAMAGE. 26 */ 27 #include <util.h> 28 #include <kernel/tee_common_otp.h> 29 #include <kernel/tee_common.h> 30 #include <kernel/tee_compat.h> 31 #include <tee_api_types.h> 32 #include <kernel/tee_ta_manager.h> 33 #include <utee_types.h> 34 #include <tee/tee_svc.h> 35 #include <tee/tee_cryp_utl.h> 36 #include <mm/tee_mmu.h> 37 #include <mm/tee_mm.h> 38 #include <kernel/tee_rpc.h> 39 #include <kernel/tee_rpc_types.h> 40 #include <kernel/tee_time.h> 41 42 #include <user_ta_header.h> 43 #include <kernel/tee_core_trace.h> 44 #include <kernel/tee_kta_trace.h> 45 #include <kernel/chip_services.h> 46 47 void tee_svc_sys_log(const void *buf, size_t len) 48 { 49 char *kbuf; 50 51 if (len == 0) 52 return; 53 54 kbuf = malloc(len); 55 if (kbuf == NULL) 56 return; 57 *kbuf = '\0'; 58 59 /* log as Info/Raw traces */ 60 if (tee_svc_copy_from_user(NULL, kbuf, buf, len) == TEE_SUCCESS) 61 ATAMSG_RAW("%s", kbuf); 62 63 free(kbuf); 64 } 65 66 void tee_svc_sys_panic(uint32_t code) 67 { 68 struct tee_ta_session *sess; 69 70 if (tee_ta_get_current_session(&sess) == TEE_SUCCESS) { 71 EMSG("Set session %p to panicked", (void *)sess); 72 sess->ctx->panicked = 1; 73 sess->ctx->panic_code = code; 74 75 { 76 int *p = 0; 77 78 /* 79 * Force panicking. This memory error will be trapped by 80 * the error exception handler myErrorHandler() 81 */ 82 EMSG("Following 'DTLB exception in bundle'"); 83 EMSG(" is generated with code %d", code); 84 *p = 1; 85 } 86 } else { 87 DMSG("Panic called from unknown TA"); 88 } 89 } 90 91 TEE_Result tee_svc_reserved(void) 92 { 93 return TEE_ERROR_GENERIC; 94 } 95 96 uint32_t tee_svc_sys_dummy(uint32_t *a __unused) 97 { 98 DMSG("tee_svc_sys_dummy: a 0x%x", (unsigned int)a); 99 return 0; 100 } 101 102 uint32_t tee_svc_sys_dummy_7args(uint32_t a1 __unused, uint32_t a2 __unused, 103 uint32_t a3 __unused, uint32_t a4 __unused, 104 uint32_t a5 __unused, uint32_t a6 __unused, 105 uint32_t a7 __unused) 106 { 107 DMSG("tee_svc_sys_dummy_7args: 0x%x, 0x%x, 0x%x, 0x%x, 0x%x, %x, %x\n", 108 a1, a2, a3, a4, a5, a6, a7); 109 return 0; 110 } 111 112 uint32_t tee_svc_sys_nocall(void) 113 { 114 DMSG("No syscall"); 115 return 0x1; 116 } 117 118 TEE_Result tee_svc_sys_get_property(uint32_t prop, tee_uaddr_t buf, size_t blen) 119 { 120 static const char api_vers[] = "1.0"; 121 static const char descr[] = "Version N.N"; 122 /* 123 * Value 100 means: 124 * System time based on REE-controlled timers. Can be tampered by the 125 * REE. The implementation must still guarantee that the system time 126 * is monotonous, i.e., successive calls to TEE_GetSystemTime must 127 * return increasing values of the system time. 128 */ 129 static const uint32_t sys_time_prot_lvl = 100; 130 static const uint32_t ta_time_prot_lvl = 100; 131 struct tee_ta_session *sess; 132 TEE_Result res; 133 134 res = tee_ta_get_current_session(&sess); 135 if (res != TEE_SUCCESS) 136 return res; 137 138 switch (prop) { 139 case UTEE_PROP_TEE_API_VERSION: 140 if (blen < sizeof(api_vers)) 141 return TEE_ERROR_SHORT_BUFFER; 142 return tee_svc_copy_to_user(sess, (void *)buf, api_vers, 143 sizeof(api_vers)); 144 145 case UTEE_PROP_TEE_DESCR: 146 if (blen < sizeof(descr)) 147 return TEE_ERROR_SHORT_BUFFER; 148 return tee_svc_copy_to_user(sess, (void *)buf, descr, 149 sizeof(descr)); 150 151 case UTEE_PROP_TEE_DEV_ID: 152 { 153 TEE_UUID uuid; 154 const size_t nslen = 4; 155 uint8_t data[4 + 156 FVR_DIE_ID_NUM_REGS * sizeof(uint32_t)] = { 157 'S', 'T', 'E', 'E' }; 158 159 if (blen < sizeof(uuid)) 160 return TEE_ERROR_SHORT_BUFFER; 161 162 if (tee_otp_get_die_id 163 (data + nslen, sizeof(data) - nslen)) 164 return TEE_ERROR_BAD_STATE; 165 166 res = tee_hash_createdigest(TEE_ALG_SHA256, data, 167 sizeof(data), 168 (uint8_t *)&uuid, 169 sizeof(uuid)); 170 if (res != TEE_SUCCESS) 171 return TEE_ERROR_BAD_STATE; 172 173 /* 174 * Changes the random value into and UUID as specifiec 175 * in RFC 4122. The magic values are from the example 176 * code in the RFC. 177 * 178 * TEE_UUID is defined slightly different from the RFC, 179 * but close enough for our purpose. 180 */ 181 182 uuid.timeHiAndVersion &= 0x0fff; 183 uuid.timeHiAndVersion |= 5 << 12; 184 185 /* uuid.clock_seq_hi_and_reserved in the RFC */ 186 uuid.clockSeqAndNode[0] &= 0x3f; 187 uuid.clockSeqAndNode[0] |= 0x80; 188 189 return tee_svc_copy_to_user(sess, (void *)buf, &uuid, 190 sizeof(TEE_UUID)); 191 } 192 193 case UTEE_PROP_TEE_SYS_TIME_PROT_LEVEL: 194 if (blen < sizeof(sys_time_prot_lvl)) 195 return TEE_ERROR_SHORT_BUFFER; 196 return tee_svc_copy_to_user(sess, (void *)buf, 197 &sys_time_prot_lvl, 198 sizeof(sys_time_prot_lvl)); 199 200 case UTEE_PROP_TEE_TA_TIME_PROT_LEVEL: 201 if (blen < sizeof(ta_time_prot_lvl)) 202 return TEE_ERROR_SHORT_BUFFER; 203 return tee_svc_copy_to_user(sess, (void *)buf, 204 &ta_time_prot_lvl, 205 sizeof(ta_time_prot_lvl)); 206 207 case UTEE_PROP_CLIENT_ID: 208 if (blen < sizeof(TEE_Identity)) 209 return TEE_ERROR_SHORT_BUFFER; 210 211 return tee_svc_copy_to_user(sess, (void *)buf, 212 &sess->clnt_id, sizeof(TEE_Identity)); 213 214 case UTEE_PROP_TA_APP_ID: 215 if (blen < sizeof(TEE_UUID)) 216 return TEE_ERROR_SHORT_BUFFER; 217 218 return tee_svc_copy_to_user(sess, (void *)buf, 219 &sess->ctx->head->uuid, sizeof(TEE_UUID)); 220 221 default: 222 break; 223 } 224 return TEE_ERROR_NOT_IMPLEMENTED; 225 } 226 227 /* 228 * TA invokes some TA with parameter. 229 * If some parameters are memory references: 230 * - either the memref is inside TA private RAM: TA is not allowed to expose 231 * its private RAM: use a temporary memory buffer and copy the data. 232 * - or the memref is not in the TA private RAM: 233 * - if the memref was mapped to the TA, TA is allowed to expose it. 234 * - if so, converts memref virtual address into a physical address. 235 */ 236 static TEE_Result tee_svc_copy_param(struct tee_ta_session *sess, 237 struct tee_ta_session *called_sess, 238 uint32_t param_types, 239 TEE_Param callee_params[TEE_NUM_PARAMS], 240 struct tee_ta_param *param, 241 tee_paddr_t tmp_buf_pa[TEE_NUM_PARAMS], 242 tee_mm_entry_t **mm) 243 { 244 size_t n; 245 TEE_Result res; 246 size_t req_mem = 0; 247 size_t s; 248 uint8_t *dst = 0; 249 tee_paddr_t dst_pa, src_pa = 0; 250 bool ta_private_memref[TEE_NUM_PARAMS]; 251 252 /* fill 'param' input struct with caller params description buffer */ 253 param->types = param_types; 254 if (!callee_params) { 255 if (param->types != 0) 256 return TEE_ERROR_BAD_PARAMETERS; 257 memset(param->params, 0, sizeof(param->params)); 258 } else { 259 tee_svc_copy_from_user(sess, param->params, callee_params, 260 sizeof(param->params)); 261 } 262 263 if ((called_sess != NULL) && 264 (called_sess->ctx->static_ta == NULL) && 265 (called_sess->ctx->flags & TA_FLAG_USER_MODE) == 0) { 266 /* 267 * kernel TA, borrow the mapping of the calling 268 * during this call. 269 */ 270 called_sess->calling_sess = sess; 271 return TEE_SUCCESS; 272 } 273 274 for (n = 0; n < TEE_NUM_PARAMS; n++) { 275 276 ta_private_memref[n] = false; 277 278 switch (TEE_PARAM_TYPE_GET(param->types, n)) { 279 case TEE_PARAM_TYPE_MEMREF_INPUT: 280 case TEE_PARAM_TYPE_MEMREF_OUTPUT: 281 case TEE_PARAM_TYPE_MEMREF_INOUT: 282 if (param->params[n].memref.buffer == NULL) { 283 if (param->params[n].memref.size != 0) 284 return TEE_ERROR_BAD_PARAMETERS; 285 break; 286 } 287 /* uTA cannot expose its private memory */ 288 if (tee_mmu_is_vbuf_inside_ta_private(sess->ctx, 289 param->params[n].memref.buffer, 290 param->params[n].memref.size)) { 291 292 s = ROUNDUP(param->params[n].memref.size, 293 sizeof(uint32_t)); 294 /* Check overflow */ 295 if (req_mem + s < req_mem) 296 return TEE_ERROR_BAD_PARAMETERS; 297 req_mem += s; 298 ta_private_memref[n] = true; 299 break; 300 } 301 if (tee_mmu_is_vbuf_intersect_ta_private(sess->ctx, 302 param->params[n].memref.buffer, 303 param->params[n].memref.size)) 304 return TEE_ERROR_BAD_PARAMETERS; 305 306 if (tee_mmu_user_va2pa(sess->ctx, 307 (void *)param->params[n].memref.buffer, 308 &src_pa) != TEE_SUCCESS) 309 return TEE_ERROR_BAD_PARAMETERS; 310 311 param->param_attr[n] = tee_mmu_user_get_cache_attr( 312 sess->ctx, 313 (void *)param->params[n].memref.buffer); 314 315 param->params[n].memref.buffer = (void *)src_pa; 316 break; 317 318 default: 319 break; 320 } 321 } 322 323 if (req_mem == 0) 324 return TEE_SUCCESS; 325 326 /* Allocate section in secure DDR */ 327 *mm = tee_mm_alloc(&tee_mm_sec_ddr, req_mem); 328 if (*mm == NULL) { 329 DMSG("tee_mm_alloc TEE_ERROR_GENERIC"); 330 return TEE_ERROR_GENERIC; 331 } 332 333 /* Get the virtual address for the section in secure DDR */ 334 res = tee_mmu_kmap(tee_mm_get_smem(*mm), req_mem, &dst); 335 if (res != TEE_SUCCESS) 336 return res; 337 dst_pa = tee_mm_get_smem(*mm); 338 339 for (n = 0; n < 4; n++) { 340 341 if (ta_private_memref[n] == false) 342 continue; 343 344 s = ROUNDUP(param->params[n].memref.size, sizeof(uint32_t)); 345 346 switch (TEE_PARAM_TYPE_GET(param->types, n)) { 347 case TEE_PARAM_TYPE_MEMREF_INPUT: 348 case TEE_PARAM_TYPE_MEMREF_INOUT: 349 if (param->params[n].memref.buffer != NULL) { 350 res = tee_svc_copy_from_user(sess, dst, 351 param->params[n].memref.buffer, 352 param->params[n].memref.size); 353 if (res != TEE_SUCCESS) 354 return res; 355 param->param_attr[n] = 356 tee_mmu_kmap_get_cache_attr(dst); 357 param->params[n].memref.buffer = (void *)dst_pa; 358 tmp_buf_pa[n] = dst_pa; 359 dst += s; 360 dst_pa += s; 361 } 362 break; 363 364 case TEE_PARAM_TYPE_MEMREF_OUTPUT: 365 if (param->params[n].memref.buffer != NULL) { 366 param->param_attr[n] = 367 tee_mmu_kmap_get_cache_attr(dst); 368 param->params[n].memref.buffer = (void *)dst_pa; 369 tmp_buf_pa[n] = dst_pa; 370 dst += s; 371 dst_pa += s; 372 } 373 break; 374 375 default: 376 continue; 377 } 378 } 379 380 tee_mmu_kunmap(dst, req_mem); 381 382 return TEE_SUCCESS; 383 } 384 385 /* 386 * Back from execution of service: update parameters passed from TA: 387 * If some parameters were memory references: 388 * - either the memref was temporary: copy back data and update size 389 * - or it was the original TA memref: update only the size value. 390 */ 391 static TEE_Result tee_svc_update_out_param( 392 struct tee_ta_session *sess, 393 struct tee_ta_session *called_sess, 394 struct tee_ta_param *param, 395 tee_paddr_t tmp_buf_pa[TEE_NUM_PARAMS], 396 TEE_Param callee_params[TEE_NUM_PARAMS]) 397 { 398 size_t n; 399 bool have_private_mem_map = (called_sess == NULL) || 400 (called_sess->ctx->static_ta != NULL) || 401 ((called_sess->ctx->flags & TA_FLAG_USER_MODE) != 0); 402 403 tee_ta_set_current_session(sess); 404 405 for (n = 0; n < TEE_NUM_PARAMS; n++) { 406 switch (TEE_PARAM_TYPE_GET(param->types, n)) { 407 case TEE_PARAM_TYPE_MEMREF_OUTPUT: 408 case TEE_PARAM_TYPE_MEMREF_INOUT: 409 410 /* outside TA private => memref is valid, update size */ 411 if (!tee_mmu_is_vbuf_inside_ta_private(sess->ctx, 412 callee_params[n].memref.buffer, 413 param->params[n].memref.size)) { 414 callee_params[n].memref.size = 415 param->params[n].memref.size; 416 break; 417 } 418 419 /* 420 * If we called a kernel TA the parameters are in shared 421 * memory and no copy is needed. 422 */ 423 if (have_private_mem_map && 424 param->params[n].memref.size <= 425 callee_params[n].memref.size) { 426 uint8_t *src = 0; 427 TEE_Result res; 428 429 /* FIXME: TA_RAM is already mapped ! */ 430 res = tee_mmu_kmap(tmp_buf_pa[n], 431 param->params[n].memref.size, &src); 432 if (res != TEE_SUCCESS) 433 return TEE_ERROR_GENERIC; 434 435 res = tee_svc_copy_to_user(sess, 436 callee_params[n].memref. 437 buffer, src, 438 param->params[n]. 439 memref.size); 440 if (res != TEE_SUCCESS) 441 return res; 442 tee_mmu_kunmap(src, 443 param->params[n].memref.size); 444 445 } 446 callee_params[n].memref.size = param->params[n].memref.size; 447 break; 448 449 case TEE_PARAM_TYPE_VALUE_OUTPUT: 450 case TEE_PARAM_TYPE_VALUE_INOUT: 451 callee_params[n].value = param->params[n].value; 452 break; 453 454 default: 455 continue; 456 } 457 } 458 459 return TEE_SUCCESS; 460 } 461 462 /* Called when a TA calls an OpenSession on another TA */ 463 TEE_Result tee_svc_open_ta_session(const TEE_UUID *dest, 464 uint32_t cancel_req_to, uint32_t param_types, 465 TEE_Param params[4], 466 TEE_TASessionHandle *ta_sess, 467 uint32_t *ret_orig) 468 { 469 TEE_Result res; 470 uint32_t ret_o = TEE_ORIGIN_TEE; 471 struct tee_ta_session *s = NULL; 472 struct tee_ta_session *sess; 473 tee_mm_entry_t *mm_param = NULL; 474 475 TEE_UUID *uuid = malloc(sizeof(TEE_UUID)); 476 struct tee_ta_param *param = malloc(sizeof(struct tee_ta_param)); 477 TEE_Identity *clnt_id = malloc(sizeof(TEE_Identity)); 478 tee_paddr_t tmp_buf_pa[TEE_NUM_PARAMS]; 479 480 if (uuid == NULL || param == NULL || clnt_id == NULL) { 481 res = TEE_ERROR_OUT_OF_MEMORY; 482 goto out_free_only; 483 } 484 485 memset(param, 0, sizeof(struct tee_ta_param)); 486 487 res = tee_ta_get_current_session(&sess); 488 if (res != TEE_SUCCESS) 489 goto out_free_only; 490 491 res = tee_svc_copy_from_user(sess, uuid, dest, sizeof(TEE_UUID)); 492 if (res != TEE_SUCCESS) 493 goto function_exit; 494 495 clnt_id->login = TEE_LOGIN_TRUSTED_APP; 496 memcpy(&clnt_id->uuid, &sess->ctx->head->uuid, sizeof(TEE_UUID)); 497 498 res = tee_svc_copy_param(sess, NULL, param_types, params, param, 499 tmp_buf_pa, &mm_param); 500 if (res != TEE_SUCCESS) 501 goto function_exit; 502 503 /* 504 * Find session of a multi session TA or a static TA 505 * In such a case, there is no need to ask the supplicant for the TA 506 * code 507 */ 508 res = tee_ta_open_session(&ret_o, &s, &sess->ctx->open_sessions, uuid, 509 clnt_id, cancel_req_to, param); 510 if (res != TEE_SUCCESS) 511 goto function_exit; 512 513 res = tee_svc_update_out_param(sess, NULL, param, tmp_buf_pa, params); 514 515 function_exit: 516 tee_ta_set_current_session(sess); 517 518 if (mm_param != NULL) { 519 TEE_Result res2; 520 void *va = 0; 521 522 res2 = 523 tee_mmu_kmap_pa2va((void *)tee_mm_get_smem(mm_param), &va); 524 if (res2 == TEE_SUCCESS) 525 tee_mmu_kunmap(va, tee_mm_get_bytes(mm_param)); 526 } 527 tee_mm_free(mm_param); 528 tee_svc_copy_to_user(sess, ta_sess, &s, sizeof(s)); 529 tee_svc_copy_to_user(sess, ret_orig, &ret_o, sizeof(ret_o)); 530 531 out_free_only: 532 free(param); 533 free(uuid); 534 free(clnt_id); 535 return res; 536 } 537 538 TEE_Result tee_svc_close_ta_session(TEE_TASessionHandle ta_sess) 539 { 540 TEE_Result res; 541 struct tee_ta_session *sess; 542 543 res = tee_ta_get_current_session(&sess); 544 if (res != TEE_SUCCESS) 545 return res; 546 547 tee_ta_set_current_session(NULL); 548 549 res = 550 tee_ta_close_session((uint32_t)ta_sess, &sess->ctx->open_sessions); 551 tee_ta_set_current_session(sess); 552 return res; 553 } 554 555 TEE_Result tee_svc_invoke_ta_command(TEE_TASessionHandle ta_sess, 556 uint32_t cancel_req_to, uint32_t cmd_id, 557 uint32_t param_types, TEE_Param params[4], 558 uint32_t *ret_orig) 559 { 560 TEE_Result res; 561 uint32_t ret_o = TEE_ORIGIN_TEE; 562 struct tee_ta_param param = { 0 }; 563 struct tee_ta_session *sess; 564 struct tee_ta_session *called_sess = (struct tee_ta_session *)ta_sess; 565 tee_mm_entry_t *mm_param = NULL; 566 tee_paddr_t tmp_buf_pa[TEE_NUM_PARAMS]; 567 568 res = tee_ta_get_current_session(&sess); 569 if (res != TEE_SUCCESS) 570 return res; 571 572 res = 573 tee_ta_verify_session_pointer(called_sess, 574 &sess->ctx->open_sessions); 575 if (res != TEE_SUCCESS) 576 return res; 577 578 res = tee_svc_copy_param(sess, called_sess, param_types, params, 579 ¶m, tmp_buf_pa, &mm_param); 580 if (res != TEE_SUCCESS) 581 goto function_exit; 582 583 res = 584 tee_ta_invoke_command(&ret_o, called_sess, cancel_req_to, 585 cmd_id, ¶m); 586 if (res != TEE_SUCCESS) 587 goto function_exit; 588 589 res = tee_svc_update_out_param(sess, called_sess, ¶m, tmp_buf_pa, 590 params); 591 if (res != TEE_SUCCESS) 592 goto function_exit; 593 594 function_exit: 595 tee_ta_set_current_session(sess); 596 called_sess->calling_sess = NULL; /* clear eventual borrowed mapping */ 597 598 if (mm_param != NULL) { 599 TEE_Result res2; 600 void *va = 0; 601 602 res2 = 603 tee_mmu_kmap_pa2va((void *)tee_mm_get_smem(mm_param), &va); 604 if (res2 == TEE_SUCCESS) 605 tee_mmu_kunmap(va, tee_mm_get_bytes(mm_param)); 606 } 607 tee_mm_free(mm_param); 608 if (ret_orig) 609 tee_svc_copy_to_user(sess, ret_orig, &ret_o, sizeof(ret_o)); 610 return res; 611 } 612 613 TEE_Result tee_svc_check_access_rights(uint32_t flags, const void *buf, 614 size_t len) 615 { 616 TEE_Result res; 617 struct tee_ta_session *s; 618 619 res = tee_ta_get_current_session(&s); 620 if (res != TEE_SUCCESS) 621 return res; 622 623 return tee_mmu_check_access_rights(s->ctx, flags, (tee_uaddr_t)buf, 624 len); 625 } 626 627 TEE_Result tee_svc_copy_from_user(struct tee_ta_session *sess, void *kaddr, 628 const void *uaddr, size_t len) 629 { 630 TEE_Result res; 631 struct tee_ta_session *s; 632 633 if (sess == NULL) { 634 res = tee_ta_get_current_session(&s); 635 if (res != TEE_SUCCESS) 636 return res; 637 } else { 638 s = sess; 639 tee_ta_set_current_session(s); 640 } 641 res = 642 tee_mmu_check_access_rights(s->ctx, 643 TEE_MEMORY_ACCESS_READ | 644 TEE_MEMORY_ACCESS_ANY_OWNER, 645 (tee_uaddr_t)uaddr, len); 646 if (res != TEE_SUCCESS) 647 return res; 648 649 memcpy(kaddr, uaddr, len); 650 return TEE_SUCCESS; 651 } 652 653 TEE_Result tee_svc_copy_to_user(struct tee_ta_session *sess, void *uaddr, 654 const void *kaddr, size_t len) 655 { 656 TEE_Result res; 657 struct tee_ta_session *s; 658 659 if (sess == NULL) { 660 res = tee_ta_get_current_session(&s); 661 if (res != TEE_SUCCESS) 662 return res; 663 } else { 664 s = sess; 665 tee_ta_set_current_session(s); 666 } 667 668 res = 669 tee_mmu_check_access_rights(s->ctx, 670 TEE_MEMORY_ACCESS_WRITE | 671 TEE_MEMORY_ACCESS_ANY_OWNER, 672 (tee_uaddr_t)uaddr, len); 673 if (res != TEE_SUCCESS) 674 return res; 675 676 memcpy(uaddr, kaddr, len); 677 return TEE_SUCCESS; 678 } 679 680 static bool session_is_cancelled(struct tee_ta_session *s, TEE_Time *curr_time) 681 { 682 TEE_Time current_time; 683 684 if (s->cancel_mask) 685 return false; 686 687 if (s->cancel) 688 return true; 689 690 if (s->cancel_time.seconds == UINT32_MAX) 691 return false; 692 693 if (curr_time != NULL) 694 current_time = *curr_time; 695 else if (tee_time_get_sys_time(¤t_time) != TEE_SUCCESS) 696 return false; 697 698 if (current_time.seconds > s->cancel_time.seconds || 699 (current_time.seconds == s->cancel_time.seconds && 700 current_time.millis >= s->cancel_time.millis)) { 701 return true; 702 } 703 704 return false; 705 } 706 707 TEE_Result tee_svc_get_cancellation_flag(bool *cancel) 708 { 709 TEE_Result res; 710 struct tee_ta_session *s = NULL; 711 bool c; 712 713 res = tee_ta_get_current_session(&s); 714 if (res != TEE_SUCCESS) 715 return res; 716 717 c = session_is_cancelled(s, NULL); 718 719 return tee_svc_copy_to_user(s, cancel, &c, sizeof(c)); 720 } 721 722 TEE_Result tee_svc_unmask_cancellation(bool *old_mask) 723 { 724 TEE_Result res; 725 struct tee_ta_session *s = NULL; 726 bool m; 727 728 res = tee_ta_get_current_session(&s); 729 if (res != TEE_SUCCESS) 730 return res; 731 732 m = s->cancel_mask; 733 s->cancel_mask = false; 734 return tee_svc_copy_to_user(s, old_mask, &m, sizeof(m)); 735 } 736 737 TEE_Result tee_svc_mask_cancellation(bool *old_mask) 738 { 739 TEE_Result res; 740 struct tee_ta_session *s = NULL; 741 bool m; 742 743 res = tee_ta_get_current_session(&s); 744 if (res != TEE_SUCCESS) 745 return res; 746 747 m = s->cancel_mask; 748 s->cancel_mask = true; 749 return tee_svc_copy_to_user(s, old_mask, &m, sizeof(m)); 750 } 751 752 TEE_Result tee_svc_wait(uint32_t timeout) 753 { 754 TEE_Result res = TEE_SUCCESS; 755 uint32_t mytime = 0; 756 struct tee_ta_session *s; 757 TEE_Time base_time; 758 TEE_Time current_time; 759 760 res = tee_ta_get_current_session(&s); 761 if (res != TEE_SUCCESS) 762 return res; 763 764 res = tee_time_get_sys_time(&base_time); 765 if (res != TEE_SUCCESS) 766 return res; 767 768 while (true) { 769 res = tee_time_get_sys_time(¤t_time); 770 if (res != TEE_SUCCESS) 771 return res; 772 773 if (session_is_cancelled(s, ¤t_time)) 774 return TEE_ERROR_CANCEL; 775 776 mytime = (current_time.seconds - base_time.seconds) * 1000 + 777 (int)current_time.millis - (int)base_time.millis; 778 if (mytime >= timeout) 779 return TEE_SUCCESS; 780 781 tee_time_wait(timeout - mytime); 782 } 783 784 return res; 785 } 786 787 TEE_Result tee_svc_get_time(enum utee_time_category cat, TEE_Time *mytime) 788 { 789 TEE_Result res, res2; 790 struct tee_ta_session *s = NULL; 791 TEE_Time t; 792 793 res = tee_ta_get_current_session(&s); 794 if (res != TEE_SUCCESS) 795 return res; 796 797 switch (cat) { 798 case UTEE_TIME_CAT_SYSTEM: 799 res = tee_time_get_sys_time(&t); 800 break; 801 case UTEE_TIME_CAT_TA_PERSISTENT: 802 res = 803 tee_time_get_ta_time((const void *)&s->ctx->head->uuid, &t); 804 break; 805 case UTEE_TIME_CAT_REE: 806 res = tee_time_get_ree_time(&t); 807 break; 808 default: 809 res = TEE_ERROR_BAD_PARAMETERS; 810 break; 811 } 812 813 if (res == TEE_SUCCESS || res == TEE_ERROR_OVERFLOW) { 814 res2 = tee_svc_copy_to_user(s, mytime, &t, sizeof(t)); 815 if (res2 != TEE_SUCCESS) 816 res = res2; 817 } 818 819 return res; 820 } 821 822 TEE_Result tee_svc_set_ta_time(const TEE_Time *mytime) 823 { 824 TEE_Result res; 825 struct tee_ta_session *s = NULL; 826 TEE_Time t; 827 828 res = tee_ta_get_current_session(&s); 829 if (res != TEE_SUCCESS) 830 return res; 831 832 res = tee_svc_copy_from_user(s, &t, mytime, sizeof(t)); 833 if (res != TEE_SUCCESS) 834 return res; 835 836 return tee_time_set_ta_time((const void *)&s->ctx->head->uuid, &t); 837 } 838