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707 lines
19 KiB
707 lines
19 KiB
/*
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* Copyright (c) 2017-2019, ARM Limited and Contributors. All rights reserved.
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*
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* SPDX-License-Identifier: BSD-3-Clause
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*/
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#include <assert.h>
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#include <string.h>
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#include <arch_helpers.h>
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#include <bl31/ehf.h>
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#include <bl31/interrupt_mgmt.h>
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#include <common/bl_common.h>
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#include <common/debug.h>
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#include <common/runtime_svc.h>
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#include <lib/cassert.h>
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#include <services/sdei.h>
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#include "sdei_private.h"
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/* x0-x17 GPREGS context */
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#define SDEI_SAVED_GPREGS 18U
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/* Maximum preemption nesting levels: Critical priority and Normal priority */
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#define MAX_EVENT_NESTING 2U
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/* Per-CPU SDEI state access macro */
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#define sdei_get_this_pe_state() (&cpu_state[plat_my_core_pos()])
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/* Structure to store information about an outstanding dispatch */
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typedef struct sdei_dispatch_context {
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sdei_ev_map_t *map;
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uint64_t x[SDEI_SAVED_GPREGS];
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jmp_buf *dispatch_jmp;
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/* Exception state registers */
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uint64_t elr_el3;
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uint64_t spsr_el3;
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#if DYNAMIC_WORKAROUND_CVE_2018_3639
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/* CVE-2018-3639 mitigation state */
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uint64_t disable_cve_2018_3639;
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#endif
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} sdei_dispatch_context_t;
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/* Per-CPU SDEI state data */
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typedef struct sdei_cpu_state {
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sdei_dispatch_context_t dispatch_stack[MAX_EVENT_NESTING];
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unsigned short stack_top; /* Empty ascending */
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bool pe_masked;
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bool pending_enables;
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} sdei_cpu_state_t;
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/* SDEI states for all cores in the system */
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static sdei_cpu_state_t cpu_state[PLATFORM_CORE_COUNT];
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int64_t sdei_pe_mask(void)
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{
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int64_t ret = 0;
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sdei_cpu_state_t *state = sdei_get_this_pe_state();
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/*
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* Return value indicates whether this call had any effect in the mask
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* status of this PE.
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*/
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if (!state->pe_masked) {
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state->pe_masked = true;
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ret = 1;
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}
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return ret;
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}
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void sdei_pe_unmask(void)
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{
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unsigned int i;
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sdei_ev_map_t *map;
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sdei_entry_t *se;
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sdei_cpu_state_t *state = sdei_get_this_pe_state();
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uint64_t my_mpidr = read_mpidr_el1() & MPIDR_AFFINITY_MASK;
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/*
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* If there are pending enables, iterate through the private mappings
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* and enable those bound maps that are in enabled state. Also, iterate
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* through shared mappings and enable interrupts of events that are
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* targeted to this PE.
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*/
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if (state->pending_enables) {
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for_each_private_map(i, map) {
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se = get_event_entry(map);
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if (is_map_bound(map) && GET_EV_STATE(se, ENABLED))
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plat_ic_enable_interrupt(map->intr);
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}
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for_each_shared_map(i, map) {
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se = get_event_entry(map);
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sdei_map_lock(map);
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if (is_map_bound(map) && GET_EV_STATE(se, ENABLED) &&
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(se->reg_flags == SDEI_REGF_RM_PE) &&
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(se->affinity == my_mpidr)) {
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plat_ic_enable_interrupt(map->intr);
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}
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sdei_map_unlock(map);
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}
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}
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state->pending_enables = false;
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state->pe_masked = false;
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}
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/* Push a dispatch context to the dispatch stack */
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static sdei_dispatch_context_t *push_dispatch(void)
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{
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sdei_cpu_state_t *state = sdei_get_this_pe_state();
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sdei_dispatch_context_t *disp_ctx;
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/* Cannot have more than max events */
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assert(state->stack_top < MAX_EVENT_NESTING);
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disp_ctx = &state->dispatch_stack[state->stack_top];
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state->stack_top++;
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return disp_ctx;
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}
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/* Pop a dispatch context to the dispatch stack */
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static sdei_dispatch_context_t *pop_dispatch(void)
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{
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sdei_cpu_state_t *state = sdei_get_this_pe_state();
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if (state->stack_top == 0U)
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return NULL;
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assert(state->stack_top <= MAX_EVENT_NESTING);
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state->stack_top--;
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return &state->dispatch_stack[state->stack_top];
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}
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/* Retrieve the context at the top of dispatch stack */
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static sdei_dispatch_context_t *get_outstanding_dispatch(void)
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{
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sdei_cpu_state_t *state = sdei_get_this_pe_state();
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if (state->stack_top == 0U)
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return NULL;
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assert(state->stack_top <= MAX_EVENT_NESTING);
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return &state->dispatch_stack[state->stack_top - 1U];
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}
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static sdei_dispatch_context_t *save_event_ctx(sdei_ev_map_t *map,
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void *tgt_ctx)
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{
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sdei_dispatch_context_t *disp_ctx;
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const gp_regs_t *tgt_gpregs;
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const el3_state_t *tgt_el3;
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assert(tgt_ctx != NULL);
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tgt_gpregs = get_gpregs_ctx(tgt_ctx);
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tgt_el3 = get_el3state_ctx(tgt_ctx);
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disp_ctx = push_dispatch();
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assert(disp_ctx != NULL);
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disp_ctx->map = map;
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/* Save general purpose and exception registers */
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memcpy(disp_ctx->x, tgt_gpregs, sizeof(disp_ctx->x));
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disp_ctx->spsr_el3 = read_ctx_reg(tgt_el3, CTX_SPSR_EL3);
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disp_ctx->elr_el3 = read_ctx_reg(tgt_el3, CTX_ELR_EL3);
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return disp_ctx;
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}
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static void restore_event_ctx(const sdei_dispatch_context_t *disp_ctx, void *tgt_ctx)
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{
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gp_regs_t *tgt_gpregs;
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el3_state_t *tgt_el3;
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assert(tgt_ctx != NULL);
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tgt_gpregs = get_gpregs_ctx(tgt_ctx);
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tgt_el3 = get_el3state_ctx(tgt_ctx);
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CASSERT(sizeof(disp_ctx->x) == (SDEI_SAVED_GPREGS * sizeof(uint64_t)),
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foo);
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/* Restore general purpose and exception registers */
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memcpy(tgt_gpregs, disp_ctx->x, sizeof(disp_ctx->x));
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write_ctx_reg(tgt_el3, CTX_SPSR_EL3, disp_ctx->spsr_el3);
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write_ctx_reg(tgt_el3, CTX_ELR_EL3, disp_ctx->elr_el3);
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#if DYNAMIC_WORKAROUND_CVE_2018_3639
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cve_2018_3639_t *tgt_cve_2018_3639;
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tgt_cve_2018_3639 = get_cve_2018_3639_ctx(tgt_ctx);
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/* Restore CVE-2018-3639 mitigation state */
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write_ctx_reg(tgt_cve_2018_3639, CTX_CVE_2018_3639_DISABLE,
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disp_ctx->disable_cve_2018_3639);
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#endif
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}
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static void save_secure_context(void)
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{
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cm_el1_sysregs_context_save(SECURE);
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}
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/* Restore Secure context and arrange to resume it at the next ERET */
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static void restore_and_resume_secure_context(void)
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{
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cm_el1_sysregs_context_restore(SECURE);
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cm_set_next_eret_context(SECURE);
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}
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/*
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* Restore Non-secure context and arrange to resume it at the next ERET. Return
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* pointer to the Non-secure context.
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*/
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static cpu_context_t *restore_and_resume_ns_context(void)
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{
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cpu_context_t *ns_ctx;
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cm_el1_sysregs_context_restore(NON_SECURE);
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cm_set_next_eret_context(NON_SECURE);
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ns_ctx = cm_get_context(NON_SECURE);
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assert(ns_ctx != NULL);
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return ns_ctx;
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}
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/*
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* Populate the Non-secure context so that the next ERET will dispatch to the
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* SDEI client.
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*/
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static void setup_ns_dispatch(sdei_ev_map_t *map, sdei_entry_t *se,
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cpu_context_t *ctx, jmp_buf *dispatch_jmp)
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{
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sdei_dispatch_context_t *disp_ctx;
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/* Push the event and context */
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disp_ctx = save_event_ctx(map, ctx);
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/*
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* Setup handler arguments:
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*
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* - x0: Event number
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* - x1: Handler argument supplied at the time of event registration
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* - x2: Interrupted PC
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* - x3: Interrupted SPSR
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*/
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SMC_SET_GP(ctx, CTX_GPREG_X0, (uint64_t) map->ev_num);
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SMC_SET_GP(ctx, CTX_GPREG_X1, se->arg);
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SMC_SET_GP(ctx, CTX_GPREG_X2, disp_ctx->elr_el3);
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SMC_SET_GP(ctx, CTX_GPREG_X3, disp_ctx->spsr_el3);
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/*
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* Prepare for ERET:
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*
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* - Set PC to the registered handler address
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* - Set SPSR to jump to client EL with exceptions masked
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*/
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cm_set_elr_spsr_el3(NON_SECURE, (uintptr_t) se->ep,
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SPSR_64(sdei_client_el(), MODE_SP_ELX,
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DISABLE_ALL_EXCEPTIONS));
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#if DYNAMIC_WORKAROUND_CVE_2018_3639
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cve_2018_3639_t *tgt_cve_2018_3639;
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tgt_cve_2018_3639 = get_cve_2018_3639_ctx(ctx);
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/* Save CVE-2018-3639 mitigation state */
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disp_ctx->disable_cve_2018_3639 = read_ctx_reg(tgt_cve_2018_3639,
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CTX_CVE_2018_3639_DISABLE);
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/* Force SDEI handler to execute with mitigation enabled by default */
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write_ctx_reg(tgt_cve_2018_3639, CTX_CVE_2018_3639_DISABLE, 0);
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#endif
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disp_ctx->dispatch_jmp = dispatch_jmp;
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}
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/* Handle a triggered SDEI interrupt while events were masked on this PE */
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static void handle_masked_trigger(sdei_ev_map_t *map, sdei_entry_t *se,
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sdei_cpu_state_t *state, unsigned int intr_raw)
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{
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uint64_t my_mpidr __unused = (read_mpidr_el1() & MPIDR_AFFINITY_MASK);
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bool disable = false;
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/* Nothing to do for event 0 */
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if (map->ev_num == SDEI_EVENT_0)
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return;
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/*
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* For a private event, or for a shared event specifically routed to
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* this CPU, we disable interrupt, leave the interrupt pending, and do
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* EOI.
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*/
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if (is_event_private(map) || (se->reg_flags == SDEI_REGF_RM_PE))
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disable = true;
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if (se->reg_flags == SDEI_REGF_RM_PE)
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assert(se->affinity == my_mpidr);
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if (disable) {
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plat_ic_disable_interrupt(map->intr);
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plat_ic_set_interrupt_pending(map->intr);
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plat_ic_end_of_interrupt(intr_raw);
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state->pending_enables = true;
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return;
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}
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/*
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* We just received a shared event with routing set to ANY PE. The
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* interrupt can't be delegated on this PE as SDEI events are masked.
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* However, because its routing mode is ANY, it is possible that the
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* event can be delegated on any other PE that hasn't masked events.
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* Therefore, we set the interrupt back pending so as to give other
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* suitable PEs a chance of handling it.
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*/
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assert(plat_ic_is_spi(map->intr) != 0);
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plat_ic_set_interrupt_pending(map->intr);
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/*
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* Leaving the same interrupt pending also means that the same interrupt
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* can target this PE again as soon as this PE leaves EL3. Whether and
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* how often that happens depends on the implementation of GIC.
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*
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* We therefore call a platform handler to resolve this situation.
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*/
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plat_sdei_handle_masked_trigger(my_mpidr, map->intr);
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/* This PE is masked. We EOI the interrupt, as it can't be delegated */
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plat_ic_end_of_interrupt(intr_raw);
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}
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/* SDEI main interrupt handler */
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int sdei_intr_handler(uint32_t intr_raw, uint32_t flags, void *handle,
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void *cookie)
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{
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sdei_entry_t *se;
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cpu_context_t *ctx;
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sdei_ev_map_t *map;
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const sdei_dispatch_context_t *disp_ctx;
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unsigned int sec_state;
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sdei_cpu_state_t *state;
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uint32_t intr;
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jmp_buf dispatch_jmp;
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const uint64_t mpidr = read_mpidr_el1();
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/*
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* To handle an event, the following conditions must be true:
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*
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* 1. Event must be signalled
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* 2. Event must be enabled
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* 3. This PE must be a target PE for the event
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* 4. PE must be unmasked for SDEI
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* 5. If this is a normal event, no event must be running
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* 6. If this is a critical event, no critical event must be running
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*
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* (1) and (2) are true when this function is running
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* (3) is enforced in GIC by selecting the appropriate routing option
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* (4) is satisfied by client calling PE_UNMASK
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* (5) and (6) is enforced using interrupt priority, the RPR, in GIC:
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* - Normal SDEI events belong to Normal SDE priority class
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* - Critical SDEI events belong to Critical CSDE priority class
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*
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* The interrupt has already been acknowledged, and therefore is active,
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* so no other PE can handle this event while we are at it.
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*
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* Find if this is an SDEI interrupt. There must be an event mapped to
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* this interrupt
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*/
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intr = plat_ic_get_interrupt_id(intr_raw);
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map = find_event_map_by_intr(intr, (plat_ic_is_spi(intr) != 0));
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if (map == NULL) {
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ERROR("No SDEI map for interrupt %u\n", intr);
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panic();
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}
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/*
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* Received interrupt number must either correspond to event 0, or must
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* be bound interrupt.
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*/
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assert((map->ev_num == SDEI_EVENT_0) || is_map_bound(map));
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se = get_event_entry(map);
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state = sdei_get_this_pe_state();
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if (state->pe_masked) {
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/*
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* Interrupts received while this PE was masked can't be
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* dispatched.
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*/
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SDEI_LOG("interrupt %u on %llx while PE masked\n", map->intr,
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mpidr);
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if (is_event_shared(map))
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sdei_map_lock(map);
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handle_masked_trigger(map, se, state, intr_raw);
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if (is_event_shared(map))
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sdei_map_unlock(map);
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return 0;
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}
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/* Insert load barrier for signalled SDEI event */
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if (map->ev_num == SDEI_EVENT_0)
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dmbld();
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if (is_event_shared(map))
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sdei_map_lock(map);
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/* Assert shared event routed to this PE had been configured so */
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if (is_event_shared(map) && (se->reg_flags == SDEI_REGF_RM_PE)) {
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assert(se->affinity == (mpidr & MPIDR_AFFINITY_MASK));
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}
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if (!can_sdei_state_trans(se, DO_DISPATCH)) {
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SDEI_LOG("SDEI event 0x%x can't be dispatched; state=0x%x\n",
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map->ev_num, se->state);
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/*
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* If the event is registered, leave the interrupt pending so
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* that it's delivered when the event is enabled.
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*/
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if (GET_EV_STATE(se, REGISTERED))
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plat_ic_set_interrupt_pending(map->intr);
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/*
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* The interrupt was disabled or unregistered after the handler
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* started to execute, which means now the interrupt is already
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* disabled and we just need to EOI the interrupt.
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*/
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plat_ic_end_of_interrupt(intr_raw);
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if (is_event_shared(map))
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sdei_map_unlock(map);
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return 0;
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}
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disp_ctx = get_outstanding_dispatch();
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if (is_event_critical(map)) {
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/*
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* If this event is Critical, and if there's an outstanding
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* dispatch, assert the latter is a Normal dispatch. Critical
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* events can preempt an outstanding Normal event dispatch.
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*/
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if (disp_ctx != NULL)
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assert(is_event_normal(disp_ctx->map));
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} else {
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/*
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* If this event is Normal, assert that there are no outstanding
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* dispatches. Normal events can't preempt any outstanding event
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* dispatches.
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*/
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assert(disp_ctx == NULL);
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}
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sec_state = get_interrupt_src_ss(flags);
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if (is_event_shared(map))
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sdei_map_unlock(map);
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SDEI_LOG("ACK %llx, ev:%d ss:%d spsr:%lx ELR:%lx\n", mpidr, map->ev_num,
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sec_state, read_spsr_el3(), read_elr_el3());
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ctx = handle;
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/*
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* Check if we interrupted secure state. Perform a context switch so
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* that we can delegate to NS.
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*/
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if (sec_state == SECURE) {
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save_secure_context();
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ctx = restore_and_resume_ns_context();
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}
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/* Synchronously dispatch event */
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setup_ns_dispatch(map, se, ctx, &dispatch_jmp);
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begin_sdei_synchronous_dispatch(&dispatch_jmp);
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/*
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* We reach here when client completes the event.
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|
*
|
|
* If the cause of dispatch originally interrupted the Secure world,
|
|
* resume Secure.
|
|
*
|
|
* No need to save the Non-secure context ahead of a world switch: the
|
|
* Non-secure context was fully saved before dispatch, and has been
|
|
* returned to its pre-dispatch state.
|
|
*/
|
|
if (sec_state == SECURE)
|
|
restore_and_resume_secure_context();
|
|
|
|
/*
|
|
* The event was dispatched after receiving SDEI interrupt. With
|
|
* the event handling completed, EOI the corresponding
|
|
* interrupt.
|
|
*/
|
|
if ((map->ev_num != SDEI_EVENT_0) && !is_map_bound(map)) {
|
|
ERROR("Invalid SDEI mapping: ev=%u\n", map->ev_num);
|
|
panic();
|
|
}
|
|
plat_ic_end_of_interrupt(intr_raw);
|
|
|
|
return 0;
|
|
}
|
|
|
|
/*
|
|
* Explicitly dispatch the given SDEI event.
|
|
*
|
|
* When calling this API, the caller must be prepared for the SDEI dispatcher to
|
|
* restore and make Non-secure context as active. This call returns only after
|
|
* the client has completed the dispatch. Then, the Non-secure context will be
|
|
* active, and the following ERET will return to Non-secure.
|
|
*
|
|
* Should the caller require re-entry to Secure, it must restore the Secure
|
|
* context and program registers for ERET.
|
|
*/
|
|
int sdei_dispatch_event(int ev_num)
|
|
{
|
|
sdei_entry_t *se;
|
|
sdei_ev_map_t *map;
|
|
cpu_context_t *ns_ctx;
|
|
sdei_dispatch_context_t *disp_ctx;
|
|
sdei_cpu_state_t *state;
|
|
jmp_buf dispatch_jmp;
|
|
|
|
/* Can't dispatch if events are masked on this PE */
|
|
state = sdei_get_this_pe_state();
|
|
if (state->pe_masked)
|
|
return -1;
|
|
|
|
/* Event 0 can't be dispatched */
|
|
if (ev_num == SDEI_EVENT_0)
|
|
return -1;
|
|
|
|
/* Locate mapping corresponding to this event */
|
|
map = find_event_map(ev_num);
|
|
if (map == NULL)
|
|
return -1;
|
|
|
|
/* Only explicit events can be dispatched */
|
|
if (!is_map_explicit(map))
|
|
return -1;
|
|
|
|
/* Examine state of dispatch stack */
|
|
disp_ctx = get_outstanding_dispatch();
|
|
if (disp_ctx != NULL) {
|
|
/*
|
|
* There's an outstanding dispatch. If the outstanding dispatch
|
|
* is critical, no more dispatches are possible.
|
|
*/
|
|
if (is_event_critical(disp_ctx->map))
|
|
return -1;
|
|
|
|
/*
|
|
* If the outstanding dispatch is Normal, only critical events
|
|
* can be dispatched.
|
|
*/
|
|
if (is_event_normal(map))
|
|
return -1;
|
|
}
|
|
|
|
se = get_event_entry(map);
|
|
if (!can_sdei_state_trans(se, DO_DISPATCH))
|
|
return -1;
|
|
|
|
/* Activate the priority corresponding to the event being dispatched */
|
|
ehf_activate_priority(sdei_event_priority(map));
|
|
|
|
/*
|
|
* Prepare for NS dispatch by restoring the Non-secure context and
|
|
* marking that as active.
|
|
*/
|
|
ns_ctx = restore_and_resume_ns_context();
|
|
|
|
/* Dispatch event synchronously */
|
|
setup_ns_dispatch(map, se, ns_ctx, &dispatch_jmp);
|
|
begin_sdei_synchronous_dispatch(&dispatch_jmp);
|
|
|
|
/*
|
|
* We reach here when client completes the event.
|
|
*
|
|
* Deactivate the priority level that was activated at the time of
|
|
* explicit dispatch.
|
|
*/
|
|
ehf_deactivate_priority(sdei_event_priority(map));
|
|
|
|
return 0;
|
|
}
|
|
|
|
static void end_sdei_synchronous_dispatch(jmp_buf *buffer)
|
|
{
|
|
longjmp(*buffer, 1);
|
|
}
|
|
|
|
int sdei_event_complete(bool resume, uint64_t pc)
|
|
{
|
|
sdei_dispatch_context_t *disp_ctx;
|
|
sdei_entry_t *se;
|
|
sdei_ev_map_t *map;
|
|
cpu_context_t *ctx;
|
|
sdei_action_t act;
|
|
unsigned int client_el = sdei_client_el();
|
|
|
|
/* Return error if called without an active event */
|
|
disp_ctx = get_outstanding_dispatch();
|
|
if (disp_ctx == NULL)
|
|
return SDEI_EDENY;
|
|
|
|
/* Validate resumption point */
|
|
if (resume && (plat_sdei_validate_entry_point(pc, client_el) != 0))
|
|
return SDEI_EDENY;
|
|
|
|
map = disp_ctx->map;
|
|
assert(map != NULL);
|
|
se = get_event_entry(map);
|
|
|
|
if (is_event_shared(map))
|
|
sdei_map_lock(map);
|
|
|
|
act = resume ? DO_COMPLETE_RESUME : DO_COMPLETE;
|
|
if (!can_sdei_state_trans(se, act)) {
|
|
if (is_event_shared(map))
|
|
sdei_map_unlock(map);
|
|
return SDEI_EDENY;
|
|
}
|
|
|
|
if (is_event_shared(map))
|
|
sdei_map_unlock(map);
|
|
|
|
/* Having done sanity checks, pop dispatch */
|
|
(void) pop_dispatch();
|
|
|
|
SDEI_LOG("EOI:%lx, %d spsr:%lx elr:%lx\n", read_mpidr_el1(),
|
|
map->ev_num, read_spsr_el3(), read_elr_el3());
|
|
|
|
/*
|
|
* Restore Non-secure to how it was originally interrupted. Once done,
|
|
* it's up-to-date with the saved copy.
|
|
*/
|
|
ctx = cm_get_context(NON_SECURE);
|
|
restore_event_ctx(disp_ctx, ctx);
|
|
|
|
if (resume) {
|
|
/*
|
|
* Complete-and-resume call. Prepare the Non-secure context
|
|
* (currently active) for complete and resume.
|
|
*/
|
|
cm_set_elr_spsr_el3(NON_SECURE, pc, SPSR_64(client_el,
|
|
MODE_SP_ELX, DISABLE_ALL_EXCEPTIONS));
|
|
|
|
/*
|
|
* Make it look as if a synchronous exception were taken at the
|
|
* supplied Non-secure resumption point. Populate SPSR and
|
|
* ELR_ELx so that an ERET from there works as expected.
|
|
*
|
|
* The assumption is that the client, if necessary, would have
|
|
* saved any live content in these registers before making this
|
|
* call.
|
|
*/
|
|
if (client_el == MODE_EL2) {
|
|
write_elr_el2(disp_ctx->elr_el3);
|
|
write_spsr_el2(disp_ctx->spsr_el3);
|
|
} else {
|
|
/* EL1 */
|
|
write_elr_el1(disp_ctx->elr_el3);
|
|
write_spsr_el1(disp_ctx->spsr_el3);
|
|
}
|
|
}
|
|
|
|
/* End the outstanding dispatch */
|
|
end_sdei_synchronous_dispatch(disp_ctx->dispatch_jmp);
|
|
|
|
return 0;
|
|
}
|
|
|
|
int64_t sdei_event_context(void *handle, unsigned int param)
|
|
{
|
|
sdei_dispatch_context_t *disp_ctx;
|
|
|
|
if (param >= SDEI_SAVED_GPREGS)
|
|
return SDEI_EINVAL;
|
|
|
|
/* Get outstanding dispatch on this CPU */
|
|
disp_ctx = get_outstanding_dispatch();
|
|
if (disp_ctx == NULL)
|
|
return SDEI_EDENY;
|
|
|
|
assert(disp_ctx->map != NULL);
|
|
|
|
if (!can_sdei_state_trans(get_event_entry(disp_ctx->map), DO_CONTEXT))
|
|
return SDEI_EDENY;
|
|
|
|
/*
|
|
* No locking is required for the Running status as this is the only CPU
|
|
* which can complete the event
|
|
*/
|
|
|
|
return (int64_t) disp_ctx->x[param];
|
|
}
|
|
|