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Jens Wiklanderc2888862014-08-04 15:39:58 +02001/*
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -07002 * Copyright (c) 2013-2023, ARM Limited and Contributors. All rights reserved.
Jens Wiklanderc2888862014-08-04 15:39:58 +02003 *
dp-armfa3cf0b2017-05-03 09:38:09 +01004 * SPDX-License-Identifier: BSD-3-Clause
Jens Wiklanderc2888862014-08-04 15:39:58 +02005 */
6
7
8/*******************************************************************************
9 * This is the Secure Payload Dispatcher (SPD). The dispatcher is meant to be a
10 * plug-in component to the Secure Monitor, registered as a runtime service. The
11 * SPD is expected to be a functional extension of the Secure Payload (SP) that
12 * executes in Secure EL1. The Secure Monitor will delegate all SMCs targeting
13 * the Trusted OS/Applications range to the dispatcher. The SPD will either
14 * handle the request locally or delegate it to the Secure Payload. It is also
15 * responsible for initialising and maintaining communication with the SP.
16 ******************************************************************************/
Jens Wiklanderc2888862014-08-04 15:39:58 +020017#include <assert.h>
Jens Wiklanderc2888862014-08-04 15:39:58 +020018#include <errno.h>
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -070019#include <inttypes.h>
Jens Wiklanderc2888862014-08-04 15:39:58 +020020#include <stddef.h>
Antonio Nino Diaze0f90632018-12-14 00:18:21 +000021
22#include <arch_helpers.h>
23#include <bl31/bl31.h>
24#include <common/bl_common.h>
25#include <common/debug.h>
26#include <common/runtime_svc.h>
27#include <lib/el3_runtime/context_mgmt.h>
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -070028#include <lib/optee_utils.h>
29#include <lib/xlat_tables/xlat_tables_v2.h>
Antonio Nino Diaze0f90632018-12-14 00:18:21 +000030#include <plat/common/platform.h>
31#include <tools_share/uuid.h>
32
Jens Wiklanderc2888862014-08-04 15:39:58 +020033#include "opteed_private.h"
Jens Wiklanderc2888862014-08-04 15:39:58 +020034#include "teesmc_opteed.h"
Isla Mitchell99305012017-07-11 14:54:08 +010035
Jens Wiklanderc2888862014-08-04 15:39:58 +020036/*******************************************************************************
37 * Address of the entrypoint vector table in OPTEE. It is
38 * initialised once on the primary core after a cold boot.
39 ******************************************************************************/
Sandrine Bailleuxb3b6e222018-07-11 12:44:22 +020040struct optee_vectors *optee_vector_table;
Jens Wiklanderc2888862014-08-04 15:39:58 +020041
42/*******************************************************************************
43 * Array to keep track of per-cpu OPTEE state
44 ******************************************************************************/
45optee_context_t opteed_sp_context[OPTEED_CORE_COUNT];
46uint32_t opteed_rw;
47
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -070048#if OPTEE_ALLOW_SMC_LOAD
49static bool opteed_allow_load;
50#else
Jens Wiklanderc2888862014-08-04 15:39:58 +020051static int32_t opteed_init(void);
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -070052#endif
53
54uint64_t dual32to64(uint32_t high, uint32_t low)
55{
56 return ((uint64_t)high << 32) | low;
57}
Jens Wiklanderc2888862014-08-04 15:39:58 +020058
59/*******************************************************************************
60 * This function is the handler registered for S-EL1 interrupts by the
61 * OPTEED. It validates the interrupt and upon success arranges entry into
62 * the OPTEE at 'optee_fiq_entry()' for handling the interrupt.
63 ******************************************************************************/
64static uint64_t opteed_sel1_interrupt_handler(uint32_t id,
65 uint32_t flags,
66 void *handle,
67 void *cookie)
68{
69 uint32_t linear_id;
Jens Wiklanderc2888862014-08-04 15:39:58 +020070 optee_context_t *optee_ctx;
71
72 /* Check the security state when the exception was generated */
73 assert(get_interrupt_src_ss(flags) == NON_SECURE);
74
Jens Wiklanderc2888862014-08-04 15:39:58 +020075 /* Sanity check the pointer to this cpu's context */
Jens Wiklanderc2888862014-08-04 15:39:58 +020076 assert(handle == cm_get_context(NON_SECURE));
77
78 /* Save the non-secure context before entering the OPTEE */
79 cm_el1_sysregs_context_save(NON_SECURE);
80
81 /* Get a reference to this cpu's OPTEE context */
Soby Mathewda43b662015-07-08 21:45:46 +010082 linear_id = plat_my_core_pos();
Jens Wiklanderc2888862014-08-04 15:39:58 +020083 optee_ctx = &opteed_sp_context[linear_id];
84 assert(&optee_ctx->cpu_ctx == cm_get_context(SECURE));
85
Daniel Boulbyc5259cc2018-05-15 11:41:55 +010086 cm_set_elr_el3(SECURE, (uint64_t)&optee_vector_table->fiq_entry);
Jens Wiklanderc2888862014-08-04 15:39:58 +020087 cm_el1_sysregs_context_restore(SECURE);
88 cm_set_next_eret_context(SECURE);
89
90 /*
91 * Tell the OPTEE that it has to handle an FIQ (synchronously).
92 * Also the instruction in normal world where the interrupt was
93 * generated is passed for debugging purposes. It is safe to
94 * retrieve this address from ELR_EL3 as the secure context will
95 * not take effect until el3_exit().
96 */
97 SMC_RET1(&optee_ctx->cpu_ctx, read_elr_el3());
98}
99
100/*******************************************************************************
101 * OPTEE Dispatcher setup. The OPTEED finds out the OPTEE entrypoint and type
102 * (aarch32/aarch64) if not already known and initialises the context for entry
103 * into OPTEE for its initialization.
104 ******************************************************************************/
Masahiro Yamada56212752018-04-19 01:14:42 +0900105static int32_t opteed_setup(void)
Jens Wiklanderc2888862014-08-04 15:39:58 +0200106{
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700107#if OPTEE_ALLOW_SMC_LOAD
108 opteed_allow_load = true;
109 INFO("Delaying OP-TEE setup until we receive an SMC call to load it\n");
110 return 0;
111#else
Jens Wiklanderc2888862014-08-04 15:39:58 +0200112 entry_point_info_t *optee_ep_info;
Jens Wiklanderc2888862014-08-04 15:39:58 +0200113 uint32_t linear_id;
Edison Ai5d685d32017-07-18 16:52:26 +0800114 uint64_t opteed_pageable_part;
115 uint64_t opteed_mem_limit;
Jens Wiklanderce6cd162017-08-24 13:16:22 +0200116 uint64_t dt_addr;
Jens Wiklanderc2888862014-08-04 15:39:58 +0200117
Soby Mathewda43b662015-07-08 21:45:46 +0100118 linear_id = plat_my_core_pos();
Jens Wiklanderc2888862014-08-04 15:39:58 +0200119
120 /*
121 * Get information about the Secure Payload (BL32) image. Its
122 * absence is a critical failure. TODO: Add support to
123 * conditionally include the SPD service
124 */
125 optee_ep_info = bl31_plat_get_next_image_ep_info(SECURE);
126 if (!optee_ep_info) {
127 WARN("No OPTEE provided by BL2 boot loader, Booting device"
128 " without OPTEE initialization. SMC`s destined for OPTEE"
129 " will return SMC_UNK\n");
130 return 1;
131 }
132
133 /*
134 * If there's no valid entry point for SP, we return a non-zero value
135 * signalling failure initializing the service. We bail out without
136 * registering any handlers
137 */
138 if (!optee_ep_info->pc)
139 return 1;
140
Edison Ai5d685d32017-07-18 16:52:26 +0800141 opteed_rw = optee_ep_info->args.arg0;
142 opteed_pageable_part = optee_ep_info->args.arg1;
143 opteed_mem_limit = optee_ep_info->args.arg2;
Jens Wiklanderce6cd162017-08-24 13:16:22 +0200144 dt_addr = optee_ep_info->args.arg3;
Edison Ai5d685d32017-07-18 16:52:26 +0800145
Jens Wiklanderc2888862014-08-04 15:39:58 +0200146 opteed_init_optee_ep_state(optee_ep_info,
147 opteed_rw,
148 optee_ep_info->pc,
Edison Ai5d685d32017-07-18 16:52:26 +0800149 opteed_pageable_part,
150 opteed_mem_limit,
Jens Wiklanderce6cd162017-08-24 13:16:22 +0200151 dt_addr,
Jens Wiklanderc2888862014-08-04 15:39:58 +0200152 &opteed_sp_context[linear_id]);
153
154 /*
155 * All OPTEED initialization done. Now register our init function with
156 * BL31 for deferred invocation
157 */
158 bl31_register_bl32_init(&opteed_init);
159
160 return 0;
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700161#endif /* OPTEE_ALLOW_SMC_LOAD */
Jens Wiklanderc2888862014-08-04 15:39:58 +0200162}
163
164/*******************************************************************************
165 * This function passes control to the OPTEE image (BL32) for the first time
166 * on the primary cpu after a cold boot. It assumes that a valid secure
167 * context has already been created by opteed_setup() which can be directly
168 * used. It also assumes that a valid non-secure context has been
169 * initialised by PSCI so it does not need to save and restore any
170 * non-secure state. This function performs a synchronous entry into
Jeffrey Kardatzkeab7e5572023-02-09 11:03:17 -0800171 * OPTEE. OPTEE passes control back to this routine through a SMC. This returns
172 * a non-zero value on success and zero on failure.
Jens Wiklanderc2888862014-08-04 15:39:58 +0200173 ******************************************************************************/
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700174static int32_t
175opteed_init_with_entry_point(entry_point_info_t *optee_entry_point)
Jens Wiklanderc2888862014-08-04 15:39:58 +0200176{
Soby Mathewda43b662015-07-08 21:45:46 +0100177 uint32_t linear_id = plat_my_core_pos();
Jens Wiklanderc2888862014-08-04 15:39:58 +0200178 optee_context_t *optee_ctx = &opteed_sp_context[linear_id];
Jens Wiklanderc2888862014-08-04 15:39:58 +0200179 uint64_t rc;
Jens Wiklanderc2888862014-08-04 15:39:58 +0200180 assert(optee_entry_point);
181
Soby Mathewda43b662015-07-08 21:45:46 +0100182 cm_init_my_context(optee_entry_point);
Jens Wiklanderc2888862014-08-04 15:39:58 +0200183
184 /*
185 * Arrange for an entry into OPTEE. It will be returned via
186 * OPTEE_ENTRY_DONE case
187 */
188 rc = opteed_synchronous_sp_entry(optee_ctx);
189 assert(rc != 0);
190
191 return rc;
192}
193
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700194#if !OPTEE_ALLOW_SMC_LOAD
195static int32_t opteed_init(void)
196{
197 entry_point_info_t *optee_entry_point;
198 /*
199 * Get information about the OP-TEE (BL32) image. Its
200 * absence is a critical failure.
201 */
202 optee_entry_point = bl31_plat_get_next_image_ep_info(SECURE);
203 return opteed_init_with_entry_point(optee_entry_point);
204}
205#endif /* !OPTEE_ALLOW_SMC_LOAD */
Jens Wiklanderc2888862014-08-04 15:39:58 +0200206
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700207#if OPTEE_ALLOW_SMC_LOAD
208/*******************************************************************************
209 * This function is responsible for handling the SMC that loads the OP-TEE
210 * binary image via a non-secure SMC call. It takes the size and physical
211 * address of the payload as parameters.
212 ******************************************************************************/
213static int32_t opteed_handle_smc_load(uint64_t data_size, uint32_t data_pa)
214{
215 uintptr_t data_va = data_pa;
216 uint64_t mapped_data_pa;
217 uintptr_t mapped_data_va;
218 uint64_t data_map_size;
219 int32_t rc;
220 optee_header_t *image_header;
221 uint8_t *image_ptr;
222 uint64_t target_pa;
223 uint64_t target_end_pa;
224 uint64_t image_pa;
225 uintptr_t image_va;
226 optee_image_t *curr_image;
227 uintptr_t target_va;
228 uint64_t target_size;
229 entry_point_info_t optee_ep_info;
230 uint32_t linear_id = plat_my_core_pos();
231
232 mapped_data_pa = page_align(data_pa, DOWN);
233 mapped_data_va = mapped_data_pa;
234 data_map_size = page_align(data_size + (mapped_data_pa - data_pa), UP);
235
Jeffrey Kardatzkeab7e5572023-02-09 11:03:17 -0800236 /*
237 * We do not validate the passed in address because we are trusting the
238 * non-secure world at this point still.
239 */
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700240 rc = mmap_add_dynamic_region(mapped_data_pa, mapped_data_va,
241 data_map_size, MT_MEMORY | MT_RO | MT_NS);
242 if (rc != 0) {
243 return rc;
244 }
245
246 image_header = (optee_header_t *)data_va;
247 if (image_header->magic != TEE_MAGIC_NUM_OPTEE ||
248 image_header->version != 2 || image_header->nb_images != 1) {
249 mmap_remove_dynamic_region(mapped_data_va, data_map_size);
250 return -EINVAL;
251 }
252
253 image_ptr = (uint8_t *)data_va + sizeof(optee_header_t) +
254 sizeof(optee_image_t);
255 if (image_header->arch == 1) {
256 opteed_rw = OPTEE_AARCH64;
257 } else {
258 opteed_rw = OPTEE_AARCH32;
259 }
260
261 curr_image = &image_header->optee_image_list[0];
262 image_pa = dual32to64(curr_image->load_addr_hi,
263 curr_image->load_addr_lo);
264 image_va = image_pa;
265 target_end_pa = image_pa + curr_image->size;
266
267 /* Now also map the memory we want to copy it to. */
268 target_pa = page_align(image_pa, DOWN);
269 target_va = target_pa;
270 target_size = page_align(target_end_pa, UP) - target_pa;
271
272 rc = mmap_add_dynamic_region(target_pa, target_va, target_size,
273 MT_MEMORY | MT_RW | MT_SECURE);
274 if (rc != 0) {
275 mmap_remove_dynamic_region(mapped_data_va, data_map_size);
276 return rc;
277 }
278
279 INFO("Loaded OP-TEE via SMC: size %d addr 0x%" PRIx64 "\n",
280 curr_image->size, image_va);
281
282 memcpy((void *)image_va, image_ptr, curr_image->size);
283 flush_dcache_range(target_pa, target_size);
284
285 mmap_remove_dynamic_region(mapped_data_va, data_map_size);
286 mmap_remove_dynamic_region(target_va, target_size);
287
288 /* Save the non-secure state */
289 cm_el1_sysregs_context_save(NON_SECURE);
290
291 opteed_init_optee_ep_state(&optee_ep_info,
292 opteed_rw,
293 image_pa,
294 0,
295 0,
296 0,
297 &opteed_sp_context[linear_id]);
Jeffrey Kardatzkeab7e5572023-02-09 11:03:17 -0800298 if (opteed_init_with_entry_point(&optee_ep_info) == 0) {
299 rc = -EFAULT;
300 }
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700301
302 /* Restore non-secure state */
303 cm_el1_sysregs_context_restore(NON_SECURE);
304 cm_set_next_eret_context(NON_SECURE);
305
306 return rc;
307}
308#endif /* OPTEE_ALLOW_SMC_LOAD */
309
Jens Wiklanderc2888862014-08-04 15:39:58 +0200310/*******************************************************************************
311 * This function is responsible for handling all SMCs in the Trusted OS/App
312 * range from the non-secure state as defined in the SMC Calling Convention
313 * Document. It is also responsible for communicating with the Secure
314 * payload to delegate work and return results back to the non-secure
315 * state. Lastly it will also return any information that OPTEE needs to do
316 * the work assigned to it.
317 ******************************************************************************/
Masahiro Yamada5ac9d962018-04-19 01:18:48 +0900318static uintptr_t opteed_smc_handler(uint32_t smc_fid,
319 u_register_t x1,
320 u_register_t x2,
321 u_register_t x3,
322 u_register_t x4,
Jens Wiklanderc2888862014-08-04 15:39:58 +0200323 void *cookie,
324 void *handle,
Masahiro Yamada5ac9d962018-04-19 01:18:48 +0900325 u_register_t flags)
Jens Wiklanderc2888862014-08-04 15:39:58 +0200326{
327 cpu_context_t *ns_cpu_context;
Soby Mathewda43b662015-07-08 21:45:46 +0100328 uint32_t linear_id = plat_my_core_pos();
Jens Wiklanderc2888862014-08-04 15:39:58 +0200329 optee_context_t *optee_ctx = &opteed_sp_context[linear_id];
330 uint64_t rc;
331
332 /*
333 * Determine which security state this SMC originated from
334 */
335
336 if (is_caller_non_secure(flags)) {
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700337#if OPTEE_ALLOW_SMC_LOAD
338 if (smc_fid == NSSMC_OPTEED_CALL_LOAD_IMAGE) {
339 /*
340 * TODO: Consider wiping the code for SMC loading from
341 * memory after it has been invoked similar to what is
342 * done under RECLAIM_INIT, but extended to happen
343 * later.
344 */
345 if (!opteed_allow_load) {
346 SMC_RET1(handle, -EPERM);
347 }
348
349 opteed_allow_load = false;
350 uint64_t data_size = dual32to64(x1, x2);
351 uint64_t data_pa = dual32to64(x3, x4);
352 if (!data_size || !data_pa) {
353 /*
354 * This is invoked when the OP-TEE image didn't
355 * load correctly in the kernel but we want to
356 * block off loading of it later for security
357 * reasons.
358 */
359 SMC_RET1(handle, -EINVAL);
360 }
361 SMC_RET1(handle, opteed_handle_smc_load(
362 data_size, data_pa));
363 }
364#endif /* OPTEE_ALLOW_SMC_LOAD */
Jens Wiklanderc2888862014-08-04 15:39:58 +0200365 /*
366 * This is a fresh request from the non-secure client.
367 * The parameters are in x1 and x2. Figure out which
368 * registers need to be preserved, save the non-secure
369 * state and send the request to the secure payload.
370 */
371 assert(handle == cm_get_context(NON_SECURE));
372
373 cm_el1_sysregs_context_save(NON_SECURE);
374
375 /*
376 * We are done stashing the non-secure context. Ask the
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700377 * OP-TEE to do the work now. If we are loading vi an SMC,
378 * then we also need to init this CPU context if not done
379 * already.
Jens Wiklanderc2888862014-08-04 15:39:58 +0200380 */
Jeffrey Kardatzke7e6b09a2022-10-03 15:50:21 -0700381 if (optee_vector_table == NULL) {
382 SMC_RET1(handle, -EINVAL);
383 }
384
385 if (get_optee_pstate(optee_ctx->state) ==
386 OPTEE_PSTATE_UNKNOWN) {
387 opteed_cpu_on_finish_handler(0);
388 }
Jens Wiklanderc2888862014-08-04 15:39:58 +0200389
390 /*
391 * Verify if there is a valid context to use, copy the
392 * operation type and parameters to the secure context
393 * and jump to the fast smc entry point in the secure
394 * payload. Entry into S-EL1 will take place upon exit
395 * from this function.
396 */
397 assert(&optee_ctx->cpu_ctx == cm_get_context(SECURE));
398
399 /* Set appropriate entry for SMC.
400 * We expect OPTEE to manage the PSTATE.I and PSTATE.F
401 * flags as appropriate.
402 */
403 if (GET_SMC_TYPE(smc_fid) == SMC_TYPE_FAST) {
404 cm_set_elr_el3(SECURE, (uint64_t)
Daniel Boulbyc5259cc2018-05-15 11:41:55 +0100405 &optee_vector_table->fast_smc_entry);
Jens Wiklanderc2888862014-08-04 15:39:58 +0200406 } else {
407 cm_set_elr_el3(SECURE, (uint64_t)
Daniel Boulbyc5259cc2018-05-15 11:41:55 +0100408 &optee_vector_table->yield_smc_entry);
Jens Wiklanderc2888862014-08-04 15:39:58 +0200409 }
410
411 cm_el1_sysregs_context_restore(SECURE);
412 cm_set_next_eret_context(SECURE);
413
Ashutosh Singh3270b842016-03-31 17:18:34 +0100414 write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
415 CTX_GPREG_X4,
416 read_ctx_reg(get_gpregs_ctx(handle),
417 CTX_GPREG_X4));
418 write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
419 CTX_GPREG_X5,
420 read_ctx_reg(get_gpregs_ctx(handle),
421 CTX_GPREG_X5));
422 write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
423 CTX_GPREG_X6,
424 read_ctx_reg(get_gpregs_ctx(handle),
425 CTX_GPREG_X6));
Jens Wiklanderc2888862014-08-04 15:39:58 +0200426 /* Propagate hypervisor client ID */
427 write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
428 CTX_GPREG_X7,
429 read_ctx_reg(get_gpregs_ctx(handle),
430 CTX_GPREG_X7));
431
432 SMC_RET4(&optee_ctx->cpu_ctx, smc_fid, x1, x2, x3);
433 }
434
435 /*
436 * Returning from OPTEE
437 */
438
439 switch (smc_fid) {
440 /*
441 * OPTEE has finished initialising itself after a cold boot
442 */
443 case TEESMC_OPTEED_RETURN_ENTRY_DONE:
444 /*
445 * Stash the OPTEE entry points information. This is done
446 * only once on the primary cpu
447 */
Daniel Boulbyc5259cc2018-05-15 11:41:55 +0100448 assert(optee_vector_table == NULL);
449 optee_vector_table = (optee_vectors_t *) x1;
Jens Wiklanderc2888862014-08-04 15:39:58 +0200450
Daniel Boulbyc5259cc2018-05-15 11:41:55 +0100451 if (optee_vector_table) {
Jens Wiklanderc2888862014-08-04 15:39:58 +0200452 set_optee_pstate(optee_ctx->state, OPTEE_PSTATE_ON);
453
454 /*
455 * OPTEE has been successfully initialized.
456 * Register power management hooks with PSCI
457 */
458 psci_register_spd_pm_hook(&opteed_pm);
459
460 /*
461 * Register an interrupt handler for S-EL1 interrupts
462 * when generated during code executing in the
463 * non-secure state.
464 */
465 flags = 0;
466 set_interrupt_rm_flag(flags, NON_SECURE);
467 rc = register_interrupt_type_handler(INTR_TYPE_S_EL1,
468 opteed_sel1_interrupt_handler,
469 flags);
470 if (rc)
471 panic();
472 }
473
474 /*
475 * OPTEE reports completion. The OPTEED must have initiated
476 * the original request through a synchronous entry into
477 * OPTEE. Jump back to the original C runtime context.
478 */
479 opteed_synchronous_sp_exit(optee_ctx, x1);
Jonathan Wright75a5d8b2018-03-14 15:56:21 +0000480 break;
Jens Wiklanderc2888862014-08-04 15:39:58 +0200481
482
483 /*
484 * These function IDs is used only by OP-TEE to indicate it has
485 * finished:
486 * 1. turning itself on in response to an earlier psci
487 * cpu_on request
488 * 2. resuming itself after an earlier psci cpu_suspend
489 * request.
490 */
491 case TEESMC_OPTEED_RETURN_ON_DONE:
492 case TEESMC_OPTEED_RETURN_RESUME_DONE:
493
494
495 /*
496 * These function IDs is used only by the SP to indicate it has
497 * finished:
498 * 1. suspending itself after an earlier psci cpu_suspend
499 * request.
500 * 2. turning itself off in response to an earlier psci
501 * cpu_off request.
502 */
503 case TEESMC_OPTEED_RETURN_OFF_DONE:
504 case TEESMC_OPTEED_RETURN_SUSPEND_DONE:
505 case TEESMC_OPTEED_RETURN_SYSTEM_OFF_DONE:
506 case TEESMC_OPTEED_RETURN_SYSTEM_RESET_DONE:
507
508 /*
509 * OPTEE reports completion. The OPTEED must have initiated the
510 * original request through a synchronous entry into OPTEE.
511 * Jump back to the original C runtime context, and pass x1 as
512 * return value to the caller
513 */
514 opteed_synchronous_sp_exit(optee_ctx, x1);
Jonathan Wright75a5d8b2018-03-14 15:56:21 +0000515 break;
Jens Wiklanderc2888862014-08-04 15:39:58 +0200516
517 /*
518 * OPTEE is returning from a call or being preempted from a call, in
519 * either case execution should resume in the normal world.
520 */
521 case TEESMC_OPTEED_RETURN_CALL_DONE:
522 /*
523 * This is the result from the secure client of an
524 * earlier request. The results are in x0-x3. Copy it
525 * into the non-secure context, save the secure state
526 * and return to the non-secure state.
527 */
528 assert(handle == cm_get_context(SECURE));
529 cm_el1_sysregs_context_save(SECURE);
530
531 /* Get a reference to the non-secure context */
532 ns_cpu_context = cm_get_context(NON_SECURE);
533 assert(ns_cpu_context);
534
535 /* Restore non-secure state */
536 cm_el1_sysregs_context_restore(NON_SECURE);
537 cm_set_next_eret_context(NON_SECURE);
538
539 SMC_RET4(ns_cpu_context, x1, x2, x3, x4);
540
541 /*
542 * OPTEE has finished handling a S-EL1 FIQ interrupt. Execution
543 * should resume in the normal world.
544 */
545 case TEESMC_OPTEED_RETURN_FIQ_DONE:
546 /* Get a reference to the non-secure context */
547 ns_cpu_context = cm_get_context(NON_SECURE);
548 assert(ns_cpu_context);
549
550 /*
551 * Restore non-secure state. There is no need to save the
552 * secure system register context since OPTEE was supposed
553 * to preserve it during S-EL1 interrupt handling.
554 */
555 cm_el1_sysregs_context_restore(NON_SECURE);
556 cm_set_next_eret_context(NON_SECURE);
557
558 SMC_RET0((uint64_t) ns_cpu_context);
559
560 default:
561 panic();
562 }
563}
564
565/* Define an OPTEED runtime service descriptor for fast SMC calls */
566DECLARE_RT_SVC(
567 opteed_fast,
568
569 OEN_TOS_START,
570 OEN_TOS_END,
571 SMC_TYPE_FAST,
572 opteed_setup,
573 opteed_smc_handler
574);
575
David Cunadoc8833ea2017-04-16 17:15:08 +0100576/* Define an OPTEED runtime service descriptor for yielding SMC calls */
Jens Wiklanderc2888862014-08-04 15:39:58 +0200577DECLARE_RT_SVC(
578 opteed_std,
579
580 OEN_TOS_START,
581 OEN_TOS_END,
David Cunadoc8833ea2017-04-16 17:15:08 +0100582 SMC_TYPE_YIELD,
Jens Wiklanderc2888862014-08-04 15:39:58 +0200583 NULL,
584 opteed_smc_handler
585);