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
lock_single_instance(void)62 static void lock_single_instance(void)
63 {
64 }
65
unlock_single_instance(void)66 static void unlock_single_instance(void)
67 {
68 }
69
has_single_instance_lock(void)70 static bool has_single_instance_lock(void)
71 {
72 return false;
73 }
74 #else
lock_single_instance(void)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
unlock_single_instance(void)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
has_single_instance_lock(void)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
to_ta_session(struct ts_session * sess)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
ts_to_ta_ctx(struct ts_ctx * ctx)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
tee_ta_try_set_busy(struct tee_ta_ctx * ctx)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
tee_ta_set_busy(struct tee_ta_ctx * ctx)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
tee_ta_clear_busy(struct tee_ta_ctx * ctx)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
dec_session_ref_count(struct tee_ta_session * s)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
tee_ta_put_session(struct tee_ta_session * s)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
tee_ta_find_session_nolock(uint32_t id,struct tee_ta_session_head * open_sessions)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
tee_ta_find_session(uint32_t id,struct tee_ta_session_head * open_sessions)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
tee_ta_get_session(uint32_t id,bool exclusive,struct tee_ta_session_head * open_sessions)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
tee_ta_unlink_session(struct tee_ta_session * s,struct tee_ta_session_head * open_sessions)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
dump_ftrace(struct tee_ta_session * s __maybe_unused)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
destroy_session(struct tee_ta_session * s,struct tee_ta_session_head * open_sessions)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
destroy_context(struct tee_ta_ctx * ctx)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 */
tee_ta_context_find(const TEE_UUID * uuid)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 */
check_client(struct tee_ta_session * s,const TEE_Identity * id)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
check_params(struct tee_ta_session * sess __unused,struct tee_ta_param * param __unused)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
check_params(struct tee_ta_session * sess,struct tee_ta_param * param)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
set_invoke_timeout(struct tee_ta_session * sess,uint32_t cancel_req_to)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
close_session(struct tee_ta_session * sess,struct tee_ta_session_head * open_sessions)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 */
tee_ta_close_session(uint32_t id,struct tee_ta_session_head * open_sessions,const TEE_Identity * clnt_id)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
tee_ta_init_session_with_context(struct tee_ta_session * s,const TEE_UUID * uuid)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
new_session_id(struct tee_ta_session_head * open_sessions)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
tee_ta_init_session(TEE_ErrorOrigin * err,struct tee_ta_session_head * open_sessions,const TEE_UUID * uuid,struct tee_ta_session ** sess)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
maybe_release_ta_ctx(struct tee_ta_ctx * ctx)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
tee_ta_open_session(TEE_ErrorOrigin * err,uint32_t * sess_id,struct tee_ta_session_head * open_sessions,const TEE_UUID * uuid,const TEE_Identity * clnt_id,uint32_t cancel_req_to,struct tee_ta_param * param)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
tee_ta_invoke_command(TEE_ErrorOrigin * err,struct tee_ta_session * sess,const TEE_Identity * clnt_id,uint32_t cancel_req_to,uint32_t cmd,struct tee_ta_param * param)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)
dump_ta_memstats(struct tee_ta_session * s,struct tee_ta_param * param)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
init_dump_ctx(struct tee_ta_dump_ctx * dump_ctx)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
dump_ta_stats(struct tee_ta_dump_ctx * dump_ctx,struct pta_stats_ta * dump_stats,size_t ta_count)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
tee_ta_instance_stats(void * buf,size_t * buf_size)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
tee_ta_cancel_command(TEE_ErrorOrigin * err,struct tee_ta_session * sess,const TEE_Identity * clnt_id)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
tee_ta_session_is_cancelled(struct tee_ta_session * s,TEE_Time * curr_time)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)
tee_ta_gprof_sample_pc(vaddr_t pc)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
gprof_update_session_utime(bool suspend,struct ts_session * s,uint64_t now)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 */
tee_ta_update_session_utime(bool suspend)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
tee_ta_update_session_utime_suspend(void)1125 void tee_ta_update_session_utime_suspend(void)
1126 {
1127 tee_ta_update_session_utime(true);
1128 }
1129
tee_ta_update_session_utime_resume(void)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)
ftrace_update_times(bool suspend)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
tee_ta_ftrace_update_times_suspend(void)1169 void tee_ta_ftrace_update_times_suspend(void)
1170 {
1171 ftrace_update_times(true);
1172 }
1173
tee_ta_ftrace_update_times_resume(void)1174 void tee_ta_ftrace_update_times_resume(void)
1175 {
1176 ftrace_update_times(false);
1177 }
1178 #endif
1179
is_ta_ctx(struct ts_ctx * ctx)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