xref: /rk3399_ARM-atf/services/spd/opteed/opteed_main.c (revision 6c77e7491563979a3a0ba5eb8b8c6a073cb5c2cb)
1aa5da461SJens Wiklander /*
2bbbbcdaeSDavid Cunado  * Copyright (c) 2013-2017, ARM Limited and Contributors. All rights reserved.
3aa5da461SJens Wiklander  *
482cb2c1aSdp-arm  * SPDX-License-Identifier: BSD-3-Clause
5aa5da461SJens Wiklander  */
6aa5da461SJens Wiklander 
7aa5da461SJens Wiklander 
8aa5da461SJens Wiklander /*******************************************************************************
9aa5da461SJens Wiklander  * This is the Secure Payload Dispatcher (SPD). The dispatcher is meant to be a
10aa5da461SJens Wiklander  * plug-in component to the Secure Monitor, registered as a runtime service. The
11aa5da461SJens Wiklander  * SPD is expected to be a functional extension of the Secure Payload (SP) that
12aa5da461SJens Wiklander  * executes in Secure EL1. The Secure Monitor will delegate all SMCs targeting
13aa5da461SJens Wiklander  * the Trusted OS/Applications range to the dispatcher. The SPD will either
14aa5da461SJens Wiklander  * handle the request locally or delegate it to the Secure Payload. It is also
15aa5da461SJens Wiklander  * responsible for initialising and maintaining communication with the SP.
16aa5da461SJens Wiklander  ******************************************************************************/
17aa5da461SJens Wiklander #include <arch_helpers.h>
18aa5da461SJens Wiklander #include <assert.h>
19aa5da461SJens Wiklander #include <bl31.h>
202a4b4b71SIsla Mitchell #include <bl_common.h>
21aa5da461SJens Wiklander #include <context_mgmt.h>
22aa5da461SJens Wiklander #include <debug.h>
23aa5da461SJens Wiklander #include <errno.h>
24aa5da461SJens Wiklander #include <platform.h>
25aa5da461SJens Wiklander #include <runtime_svc.h>
26aa5da461SJens Wiklander #include <stddef.h>
27aa5da461SJens Wiklander #include <uuid.h>
28aa5da461SJens Wiklander #include "opteed_private.h"
29aa5da461SJens Wiklander #include "teesmc_opteed.h"
302a4b4b71SIsla Mitchell #include "teesmc_opteed_macros.h"
312a4b4b71SIsla Mitchell 
32aa5da461SJens Wiklander 
33aa5da461SJens Wiklander /*******************************************************************************
34aa5da461SJens Wiklander  * Address of the entrypoint vector table in OPTEE. It is
35aa5da461SJens Wiklander  * initialised once on the primary core after a cold boot.
36aa5da461SJens Wiklander  ******************************************************************************/
37*6c77e749SSandrine Bailleux struct optee_vectors *optee_vector_table;
38aa5da461SJens Wiklander 
39aa5da461SJens Wiklander /*******************************************************************************
40aa5da461SJens Wiklander  * Array to keep track of per-cpu OPTEE state
41aa5da461SJens Wiklander  ******************************************************************************/
42aa5da461SJens Wiklander optee_context_t opteed_sp_context[OPTEED_CORE_COUNT];
43aa5da461SJens Wiklander uint32_t opteed_rw;
44aa5da461SJens Wiklander 
45aa5da461SJens Wiklander static int32_t opteed_init(void);
46aa5da461SJens Wiklander 
47aa5da461SJens Wiklander /*******************************************************************************
48aa5da461SJens Wiklander  * This function is the handler registered for S-EL1 interrupts by the
49aa5da461SJens Wiklander  * OPTEED. It validates the interrupt and upon success arranges entry into
50aa5da461SJens Wiklander  * the OPTEE at 'optee_fiq_entry()' for handling the interrupt.
51aa5da461SJens Wiklander  ******************************************************************************/
52aa5da461SJens Wiklander static uint64_t opteed_sel1_interrupt_handler(uint32_t id,
53aa5da461SJens Wiklander 					    uint32_t flags,
54aa5da461SJens Wiklander 					    void *handle,
55aa5da461SJens Wiklander 					    void *cookie)
56aa5da461SJens Wiklander {
57aa5da461SJens Wiklander 	uint32_t linear_id;
58aa5da461SJens Wiklander 	optee_context_t *optee_ctx;
59aa5da461SJens Wiklander 
60aa5da461SJens Wiklander 	/* Check the security state when the exception was generated */
61aa5da461SJens Wiklander 	assert(get_interrupt_src_ss(flags) == NON_SECURE);
62aa5da461SJens Wiklander 
63aa5da461SJens Wiklander 	/* Sanity check the pointer to this cpu's context */
64aa5da461SJens Wiklander 	assert(handle == cm_get_context(NON_SECURE));
65aa5da461SJens Wiklander 
66aa5da461SJens Wiklander 	/* Save the non-secure context before entering the OPTEE */
67aa5da461SJens Wiklander 	cm_el1_sysregs_context_save(NON_SECURE);
68aa5da461SJens Wiklander 
69aa5da461SJens Wiklander 	/* Get a reference to this cpu's OPTEE context */
70fd650ff6SSoby Mathew 	linear_id = plat_my_core_pos();
71aa5da461SJens Wiklander 	optee_ctx = &opteed_sp_context[linear_id];
72aa5da461SJens Wiklander 	assert(&optee_ctx->cpu_ctx == cm_get_context(SECURE));
73aa5da461SJens Wiklander 
74776ff52aSDaniel Boulby 	cm_set_elr_el3(SECURE, (uint64_t)&optee_vector_table->fiq_entry);
75aa5da461SJens Wiklander 	cm_el1_sysregs_context_restore(SECURE);
76aa5da461SJens Wiklander 	cm_set_next_eret_context(SECURE);
77aa5da461SJens Wiklander 
78aa5da461SJens Wiklander 	/*
79aa5da461SJens Wiklander 	 * Tell the OPTEE that it has to handle an FIQ (synchronously).
80aa5da461SJens Wiklander 	 * Also the instruction in normal world where the interrupt was
81aa5da461SJens Wiklander 	 * generated is passed for debugging purposes. It is safe to
82aa5da461SJens Wiklander 	 * retrieve this address from ELR_EL3 as the secure context will
83aa5da461SJens Wiklander 	 * not take effect until el3_exit().
84aa5da461SJens Wiklander 	 */
85aa5da461SJens Wiklander 	SMC_RET1(&optee_ctx->cpu_ctx, read_elr_el3());
86aa5da461SJens Wiklander }
87aa5da461SJens Wiklander 
88aa5da461SJens Wiklander /*******************************************************************************
89aa5da461SJens Wiklander  * OPTEE Dispatcher setup. The OPTEED finds out the OPTEE entrypoint and type
90aa5da461SJens Wiklander  * (aarch32/aarch64) if not already known and initialises the context for entry
91aa5da461SJens Wiklander  * into OPTEE for its initialization.
92aa5da461SJens Wiklander  ******************************************************************************/
93724fd958SMasahiro Yamada static int32_t opteed_setup(void)
94aa5da461SJens Wiklander {
95aa5da461SJens Wiklander 	entry_point_info_t *optee_ep_info;
96aa5da461SJens Wiklander 	uint32_t linear_id;
97d59a6accSEdison Ai 	uint64_t opteed_pageable_part;
98d59a6accSEdison Ai 	uint64_t opteed_mem_limit;
9919911aa6SJens Wiklander 	uint64_t dt_addr;
100aa5da461SJens Wiklander 
101fd650ff6SSoby Mathew 	linear_id = plat_my_core_pos();
102aa5da461SJens Wiklander 
103aa5da461SJens Wiklander 	/*
104aa5da461SJens Wiklander 	 * Get information about the Secure Payload (BL32) image. Its
105aa5da461SJens Wiklander 	 * absence is a critical failure.  TODO: Add support to
106aa5da461SJens Wiklander 	 * conditionally include the SPD service
107aa5da461SJens Wiklander 	 */
108aa5da461SJens Wiklander 	optee_ep_info = bl31_plat_get_next_image_ep_info(SECURE);
109aa5da461SJens Wiklander 	if (!optee_ep_info) {
110aa5da461SJens Wiklander 		WARN("No OPTEE provided by BL2 boot loader, Booting device"
111aa5da461SJens Wiklander 			" without OPTEE initialization. SMC`s destined for OPTEE"
112aa5da461SJens Wiklander 			" will return SMC_UNK\n");
113aa5da461SJens Wiklander 		return 1;
114aa5da461SJens Wiklander 	}
115aa5da461SJens Wiklander 
116aa5da461SJens Wiklander 	/*
117aa5da461SJens Wiklander 	 * If there's no valid entry point for SP, we return a non-zero value
118aa5da461SJens Wiklander 	 * signalling failure initializing the service. We bail out without
119aa5da461SJens Wiklander 	 * registering any handlers
120aa5da461SJens Wiklander 	 */
121aa5da461SJens Wiklander 	if (!optee_ep_info->pc)
122aa5da461SJens Wiklander 		return 1;
123aa5da461SJens Wiklander 
124d59a6accSEdison Ai 	opteed_rw = optee_ep_info->args.arg0;
125d59a6accSEdison Ai 	opteed_pageable_part = optee_ep_info->args.arg1;
126d59a6accSEdison Ai 	opteed_mem_limit = optee_ep_info->args.arg2;
12719911aa6SJens Wiklander 	dt_addr = optee_ep_info->args.arg3;
128d59a6accSEdison Ai 
129aa5da461SJens Wiklander 	opteed_init_optee_ep_state(optee_ep_info,
130aa5da461SJens Wiklander 				opteed_rw,
131aa5da461SJens Wiklander 				optee_ep_info->pc,
132d59a6accSEdison Ai 				opteed_pageable_part,
133d59a6accSEdison Ai 				opteed_mem_limit,
13419911aa6SJens Wiklander 				dt_addr,
135aa5da461SJens Wiklander 				&opteed_sp_context[linear_id]);
136aa5da461SJens Wiklander 
137aa5da461SJens Wiklander 	/*
138aa5da461SJens Wiklander 	 * All OPTEED initialization done. Now register our init function with
139aa5da461SJens Wiklander 	 * BL31 for deferred invocation
140aa5da461SJens Wiklander 	 */
141aa5da461SJens Wiklander 	bl31_register_bl32_init(&opteed_init);
142aa5da461SJens Wiklander 
143aa5da461SJens Wiklander 	return 0;
144aa5da461SJens Wiklander }
145aa5da461SJens Wiklander 
146aa5da461SJens Wiklander /*******************************************************************************
147aa5da461SJens Wiklander  * This function passes control to the OPTEE image (BL32) for the first time
148aa5da461SJens Wiklander  * on the primary cpu after a cold boot. It assumes that a valid secure
149aa5da461SJens Wiklander  * context has already been created by opteed_setup() which can be directly
150aa5da461SJens Wiklander  * used.  It also assumes that a valid non-secure context has been
151aa5da461SJens Wiklander  * initialised by PSCI so it does not need to save and restore any
152aa5da461SJens Wiklander  * non-secure state. This function performs a synchronous entry into
153aa5da461SJens Wiklander  * OPTEE. OPTEE passes control back to this routine through a SMC.
154aa5da461SJens Wiklander  ******************************************************************************/
155aa5da461SJens Wiklander static int32_t opteed_init(void)
156aa5da461SJens Wiklander {
157fd650ff6SSoby Mathew 	uint32_t linear_id = plat_my_core_pos();
158aa5da461SJens Wiklander 	optee_context_t *optee_ctx = &opteed_sp_context[linear_id];
159aa5da461SJens Wiklander 	entry_point_info_t *optee_entry_point;
160aa5da461SJens Wiklander 	uint64_t rc;
161aa5da461SJens Wiklander 
162aa5da461SJens Wiklander 	/*
163aa5da461SJens Wiklander 	 * Get information about the OPTEE (BL32) image. Its
164aa5da461SJens Wiklander 	 * absence is a critical failure.
165aa5da461SJens Wiklander 	 */
166aa5da461SJens Wiklander 	optee_entry_point = bl31_plat_get_next_image_ep_info(SECURE);
167aa5da461SJens Wiklander 	assert(optee_entry_point);
168aa5da461SJens Wiklander 
169fd650ff6SSoby Mathew 	cm_init_my_context(optee_entry_point);
170aa5da461SJens Wiklander 
171aa5da461SJens Wiklander 	/*
172aa5da461SJens Wiklander 	 * Arrange for an entry into OPTEE. It will be returned via
173aa5da461SJens Wiklander 	 * OPTEE_ENTRY_DONE case
174aa5da461SJens Wiklander 	 */
175aa5da461SJens Wiklander 	rc = opteed_synchronous_sp_entry(optee_ctx);
176aa5da461SJens Wiklander 	assert(rc != 0);
177aa5da461SJens Wiklander 
178aa5da461SJens Wiklander 	return rc;
179aa5da461SJens Wiklander }
180aa5da461SJens Wiklander 
181aa5da461SJens Wiklander 
182aa5da461SJens Wiklander /*******************************************************************************
183aa5da461SJens Wiklander  * This function is responsible for handling all SMCs in the Trusted OS/App
184aa5da461SJens Wiklander  * range from the non-secure state as defined in the SMC Calling Convention
185aa5da461SJens Wiklander  * Document. It is also responsible for communicating with the Secure
186aa5da461SJens Wiklander  * payload to delegate work and return results back to the non-secure
187aa5da461SJens Wiklander  * state. Lastly it will also return any information that OPTEE needs to do
188aa5da461SJens Wiklander  * the work assigned to it.
189aa5da461SJens Wiklander  ******************************************************************************/
19057d1e5faSMasahiro Yamada static uintptr_t opteed_smc_handler(uint32_t smc_fid,
19157d1e5faSMasahiro Yamada 			 u_register_t x1,
19257d1e5faSMasahiro Yamada 			 u_register_t x2,
19357d1e5faSMasahiro Yamada 			 u_register_t x3,
19457d1e5faSMasahiro Yamada 			 u_register_t x4,
195aa5da461SJens Wiklander 			 void *cookie,
196aa5da461SJens Wiklander 			 void *handle,
19757d1e5faSMasahiro Yamada 			 u_register_t flags)
198aa5da461SJens Wiklander {
199aa5da461SJens Wiklander 	cpu_context_t *ns_cpu_context;
200fd650ff6SSoby Mathew 	uint32_t linear_id = plat_my_core_pos();
201aa5da461SJens Wiklander 	optee_context_t *optee_ctx = &opteed_sp_context[linear_id];
202aa5da461SJens Wiklander 	uint64_t rc;
203aa5da461SJens Wiklander 
204aa5da461SJens Wiklander 	/*
205aa5da461SJens Wiklander 	 * Determine which security state this SMC originated from
206aa5da461SJens Wiklander 	 */
207aa5da461SJens Wiklander 
208aa5da461SJens Wiklander 	if (is_caller_non_secure(flags)) {
209aa5da461SJens Wiklander 		/*
210aa5da461SJens Wiklander 		 * This is a fresh request from the non-secure client.
211aa5da461SJens Wiklander 		 * The parameters are in x1 and x2. Figure out which
212aa5da461SJens Wiklander 		 * registers need to be preserved, save the non-secure
213aa5da461SJens Wiklander 		 * state and send the request to the secure payload.
214aa5da461SJens Wiklander 		 */
215aa5da461SJens Wiklander 		assert(handle == cm_get_context(NON_SECURE));
216aa5da461SJens Wiklander 
217aa5da461SJens Wiklander 		cm_el1_sysregs_context_save(NON_SECURE);
218aa5da461SJens Wiklander 
219aa5da461SJens Wiklander 		/*
220aa5da461SJens Wiklander 		 * We are done stashing the non-secure context. Ask the
221aa5da461SJens Wiklander 		 * OPTEE to do the work now.
222aa5da461SJens Wiklander 		 */
223aa5da461SJens Wiklander 
224aa5da461SJens Wiklander 		/*
225aa5da461SJens Wiklander 		 * Verify if there is a valid context to use, copy the
226aa5da461SJens Wiklander 		 * operation type and parameters to the secure context
227aa5da461SJens Wiklander 		 * and jump to the fast smc entry point in the secure
228aa5da461SJens Wiklander 		 * payload. Entry into S-EL1 will take place upon exit
229aa5da461SJens Wiklander 		 * from this function.
230aa5da461SJens Wiklander 		 */
231aa5da461SJens Wiklander 		assert(&optee_ctx->cpu_ctx == cm_get_context(SECURE));
232aa5da461SJens Wiklander 
233aa5da461SJens Wiklander 		/* Set appropriate entry for SMC.
234aa5da461SJens Wiklander 		 * We expect OPTEE to manage the PSTATE.I and PSTATE.F
235aa5da461SJens Wiklander 		 * flags as appropriate.
236aa5da461SJens Wiklander 		 */
237aa5da461SJens Wiklander 		if (GET_SMC_TYPE(smc_fid) == SMC_TYPE_FAST) {
238aa5da461SJens Wiklander 			cm_set_elr_el3(SECURE, (uint64_t)
239776ff52aSDaniel Boulby 					&optee_vector_table->fast_smc_entry);
240aa5da461SJens Wiklander 		} else {
241aa5da461SJens Wiklander 			cm_set_elr_el3(SECURE, (uint64_t)
242776ff52aSDaniel Boulby 					&optee_vector_table->yield_smc_entry);
243aa5da461SJens Wiklander 		}
244aa5da461SJens Wiklander 
245aa5da461SJens Wiklander 		cm_el1_sysregs_context_restore(SECURE);
246aa5da461SJens Wiklander 		cm_set_next_eret_context(SECURE);
247aa5da461SJens Wiklander 
24856a6412dSAshutosh Singh 		write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
24956a6412dSAshutosh Singh 			      CTX_GPREG_X4,
25056a6412dSAshutosh Singh 			      read_ctx_reg(get_gpregs_ctx(handle),
25156a6412dSAshutosh Singh 					   CTX_GPREG_X4));
25256a6412dSAshutosh Singh 		write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
25356a6412dSAshutosh Singh 			      CTX_GPREG_X5,
25456a6412dSAshutosh Singh 			      read_ctx_reg(get_gpregs_ctx(handle),
25556a6412dSAshutosh Singh 					   CTX_GPREG_X5));
25656a6412dSAshutosh Singh 		write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
25756a6412dSAshutosh Singh 			      CTX_GPREG_X6,
25856a6412dSAshutosh Singh 			      read_ctx_reg(get_gpregs_ctx(handle),
25956a6412dSAshutosh Singh 					   CTX_GPREG_X6));
260aa5da461SJens Wiklander 		/* Propagate hypervisor client ID */
261aa5da461SJens Wiklander 		write_ctx_reg(get_gpregs_ctx(&optee_ctx->cpu_ctx),
262aa5da461SJens Wiklander 			      CTX_GPREG_X7,
263aa5da461SJens Wiklander 			      read_ctx_reg(get_gpregs_ctx(handle),
264aa5da461SJens Wiklander 					   CTX_GPREG_X7));
265aa5da461SJens Wiklander 
266aa5da461SJens Wiklander 		SMC_RET4(&optee_ctx->cpu_ctx, smc_fid, x1, x2, x3);
267aa5da461SJens Wiklander 	}
268aa5da461SJens Wiklander 
269aa5da461SJens Wiklander 	/*
270aa5da461SJens Wiklander 	 * Returning from OPTEE
271aa5da461SJens Wiklander 	 */
272aa5da461SJens Wiklander 
273aa5da461SJens Wiklander 	switch (smc_fid) {
274aa5da461SJens Wiklander 	/*
275aa5da461SJens Wiklander 	 * OPTEE has finished initialising itself after a cold boot
276aa5da461SJens Wiklander 	 */
277aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_ENTRY_DONE:
278aa5da461SJens Wiklander 		/*
279aa5da461SJens Wiklander 		 * Stash the OPTEE entry points information. This is done
280aa5da461SJens Wiklander 		 * only once on the primary cpu
281aa5da461SJens Wiklander 		 */
282776ff52aSDaniel Boulby 		assert(optee_vector_table == NULL);
283776ff52aSDaniel Boulby 		optee_vector_table = (optee_vectors_t *) x1;
284aa5da461SJens Wiklander 
285776ff52aSDaniel Boulby 		if (optee_vector_table) {
286aa5da461SJens Wiklander 			set_optee_pstate(optee_ctx->state, OPTEE_PSTATE_ON);
287aa5da461SJens Wiklander 
288aa5da461SJens Wiklander 			/*
289aa5da461SJens Wiklander 			 * OPTEE has been successfully initialized.
290aa5da461SJens Wiklander 			 * Register power management hooks with PSCI
291aa5da461SJens Wiklander 			 */
292aa5da461SJens Wiklander 			psci_register_spd_pm_hook(&opteed_pm);
293aa5da461SJens Wiklander 
294aa5da461SJens Wiklander 			/*
295aa5da461SJens Wiklander 			 * Register an interrupt handler for S-EL1 interrupts
296aa5da461SJens Wiklander 			 * when generated during code executing in the
297aa5da461SJens Wiklander 			 * non-secure state.
298aa5da461SJens Wiklander 			 */
299aa5da461SJens Wiklander 			flags = 0;
300aa5da461SJens Wiklander 			set_interrupt_rm_flag(flags, NON_SECURE);
301aa5da461SJens Wiklander 			rc = register_interrupt_type_handler(INTR_TYPE_S_EL1,
302aa5da461SJens Wiklander 						opteed_sel1_interrupt_handler,
303aa5da461SJens Wiklander 						flags);
304aa5da461SJens Wiklander 			if (rc)
305aa5da461SJens Wiklander 				panic();
306aa5da461SJens Wiklander 		}
307aa5da461SJens Wiklander 
308aa5da461SJens Wiklander 		/*
309aa5da461SJens Wiklander 		 * OPTEE reports completion. The OPTEED must have initiated
310aa5da461SJens Wiklander 		 * the original request through a synchronous entry into
311aa5da461SJens Wiklander 		 * OPTEE. Jump back to the original C runtime context.
312aa5da461SJens Wiklander 		 */
313aa5da461SJens Wiklander 		opteed_synchronous_sp_exit(optee_ctx, x1);
314185a23ffSJonathan Wright 		break;
315aa5da461SJens Wiklander 
316aa5da461SJens Wiklander 
317aa5da461SJens Wiklander 	/*
318aa5da461SJens Wiklander 	 * These function IDs is used only by OP-TEE to indicate it has
319aa5da461SJens Wiklander 	 * finished:
320aa5da461SJens Wiklander 	 * 1. turning itself on in response to an earlier psci
321aa5da461SJens Wiklander 	 *    cpu_on request
322aa5da461SJens Wiklander 	 * 2. resuming itself after an earlier psci cpu_suspend
323aa5da461SJens Wiklander 	 *    request.
324aa5da461SJens Wiklander 	 */
325aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_ON_DONE:
326aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_RESUME_DONE:
327aa5da461SJens Wiklander 
328aa5da461SJens Wiklander 
329aa5da461SJens Wiklander 	/*
330aa5da461SJens Wiklander 	 * These function IDs is used only by the SP to indicate it has
331aa5da461SJens Wiklander 	 * finished:
332aa5da461SJens Wiklander 	 * 1. suspending itself after an earlier psci cpu_suspend
333aa5da461SJens Wiklander 	 *    request.
334aa5da461SJens Wiklander 	 * 2. turning itself off in response to an earlier psci
335aa5da461SJens Wiklander 	 *    cpu_off request.
336aa5da461SJens Wiklander 	 */
337aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_OFF_DONE:
338aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_SUSPEND_DONE:
339aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_SYSTEM_OFF_DONE:
340aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_SYSTEM_RESET_DONE:
341aa5da461SJens Wiklander 
342aa5da461SJens Wiklander 		/*
343aa5da461SJens Wiklander 		 * OPTEE reports completion. The OPTEED must have initiated the
344aa5da461SJens Wiklander 		 * original request through a synchronous entry into OPTEE.
345aa5da461SJens Wiklander 		 * Jump back to the original C runtime context, and pass x1 as
346aa5da461SJens Wiklander 		 * return value to the caller
347aa5da461SJens Wiklander 		 */
348aa5da461SJens Wiklander 		opteed_synchronous_sp_exit(optee_ctx, x1);
349185a23ffSJonathan Wright 		break;
350aa5da461SJens Wiklander 
351aa5da461SJens Wiklander 	/*
352aa5da461SJens Wiklander 	 * OPTEE is returning from a call or being preempted from a call, in
353aa5da461SJens Wiklander 	 * either case execution should resume in the normal world.
354aa5da461SJens Wiklander 	 */
355aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_CALL_DONE:
356aa5da461SJens Wiklander 		/*
357aa5da461SJens Wiklander 		 * This is the result from the secure client of an
358aa5da461SJens Wiklander 		 * earlier request. The results are in x0-x3. Copy it
359aa5da461SJens Wiklander 		 * into the non-secure context, save the secure state
360aa5da461SJens Wiklander 		 * and return to the non-secure state.
361aa5da461SJens Wiklander 		 */
362aa5da461SJens Wiklander 		assert(handle == cm_get_context(SECURE));
363aa5da461SJens Wiklander 		cm_el1_sysregs_context_save(SECURE);
364aa5da461SJens Wiklander 
365aa5da461SJens Wiklander 		/* Get a reference to the non-secure context */
366aa5da461SJens Wiklander 		ns_cpu_context = cm_get_context(NON_SECURE);
367aa5da461SJens Wiklander 		assert(ns_cpu_context);
368aa5da461SJens Wiklander 
369aa5da461SJens Wiklander 		/* Restore non-secure state */
370aa5da461SJens Wiklander 		cm_el1_sysregs_context_restore(NON_SECURE);
371aa5da461SJens Wiklander 		cm_set_next_eret_context(NON_SECURE);
372aa5da461SJens Wiklander 
373aa5da461SJens Wiklander 		SMC_RET4(ns_cpu_context, x1, x2, x3, x4);
374aa5da461SJens Wiklander 
375aa5da461SJens Wiklander 	/*
376aa5da461SJens Wiklander 	 * OPTEE has finished handling a S-EL1 FIQ interrupt. Execution
377aa5da461SJens Wiklander 	 * should resume in the normal world.
378aa5da461SJens Wiklander 	 */
379aa5da461SJens Wiklander 	case TEESMC_OPTEED_RETURN_FIQ_DONE:
380aa5da461SJens Wiklander 		/* Get a reference to the non-secure context */
381aa5da461SJens Wiklander 		ns_cpu_context = cm_get_context(NON_SECURE);
382aa5da461SJens Wiklander 		assert(ns_cpu_context);
383aa5da461SJens Wiklander 
384aa5da461SJens Wiklander 		/*
385aa5da461SJens Wiklander 		 * Restore non-secure state. There is no need to save the
386aa5da461SJens Wiklander 		 * secure system register context since OPTEE was supposed
387aa5da461SJens Wiklander 		 * to preserve it during S-EL1 interrupt handling.
388aa5da461SJens Wiklander 		 */
389aa5da461SJens Wiklander 		cm_el1_sysregs_context_restore(NON_SECURE);
390aa5da461SJens Wiklander 		cm_set_next_eret_context(NON_SECURE);
391aa5da461SJens Wiklander 
392aa5da461SJens Wiklander 		SMC_RET0((uint64_t) ns_cpu_context);
393aa5da461SJens Wiklander 
394aa5da461SJens Wiklander 	default:
395aa5da461SJens Wiklander 		panic();
396aa5da461SJens Wiklander 	}
397aa5da461SJens Wiklander }
398aa5da461SJens Wiklander 
399aa5da461SJens Wiklander /* Define an OPTEED runtime service descriptor for fast SMC calls */
400aa5da461SJens Wiklander DECLARE_RT_SVC(
401aa5da461SJens Wiklander 	opteed_fast,
402aa5da461SJens Wiklander 
403aa5da461SJens Wiklander 	OEN_TOS_START,
404aa5da461SJens Wiklander 	OEN_TOS_END,
405aa5da461SJens Wiklander 	SMC_TYPE_FAST,
406aa5da461SJens Wiklander 	opteed_setup,
407aa5da461SJens Wiklander 	opteed_smc_handler
408aa5da461SJens Wiklander );
409aa5da461SJens Wiklander 
410bbbbcdaeSDavid Cunado /* Define an OPTEED runtime service descriptor for yielding SMC calls */
411aa5da461SJens Wiklander DECLARE_RT_SVC(
412aa5da461SJens Wiklander 	opteed_std,
413aa5da461SJens Wiklander 
414aa5da461SJens Wiklander 	OEN_TOS_START,
415aa5da461SJens Wiklander 	OEN_TOS_END,
416bbbbcdaeSDavid Cunado 	SMC_TYPE_YIELD,
417aa5da461SJens Wiklander 	NULL,
418aa5da461SJens Wiklander 	opteed_smc_handler
419aa5da461SJens Wiklander );
420