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473 lines
12 KiB
473 lines
12 KiB
/*
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* Copyright (c) 2021-2022, ProvenRun S.A.S. 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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/*******************************************************************************
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* This is the Secure Payload Dispatcher (SPD). The dispatcher is meant to be a
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* plug-in component to the Secure Monitor, registered as a runtime service. The
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* SPD is expected to be a functional extension of the Secure Payload (SP) that
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* executes in Secure EL1. The Secure Monitor will delegate all SMCs targeting
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* the Trusted OS/Applications range to the dispatcher. The SPD will either
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* handle the request locally or delegate it to the Secure Payload. It is also
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* responsible for initialising and maintaining communication with the SP.
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******************************************************************************/
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#include <assert.h>
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#include <errno.h>
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#include <stddef.h>
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#include <string.h>
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#include <arch_helpers.h>
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#include <bl31/bl31.h>
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#include <bl31/interrupt_mgmt.h>
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#include <bl_common.h>
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#include <common/debug.h>
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#include <common/ep_info.h>
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#include <drivers/arm/gic_common.h>
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#include <lib/el3_runtime/context_mgmt.h>
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#include <lib/spinlock.h>
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#include <plat/common/platform.h>
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#include <pnc.h>
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#include "pncd_private.h"
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#include <runtime_svc.h>
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#include <tools_share/uuid.h>
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/*******************************************************************************
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* Structure to keep track of ProvenCore state
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******************************************************************************/
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static pnc_context_t pncd_sp_context;
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static bool ree_info;
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static uint64_t ree_base_addr;
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static uint64_t ree_length;
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static uint64_t ree_tag;
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static bool pnc_initialized;
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static spinlock_t smc_handler_lock;
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static int pncd_init(void);
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static void context_save(unsigned long security_state)
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{
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assert(sec_state_is_valid(security_state));
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cm_el1_sysregs_context_save((uint32_t) security_state);
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#if CTX_INCLUDE_FPREGS
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simd_ctx_save((uint32_t)security_state, false);
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#endif
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}
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static void *context_restore(unsigned long security_state)
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{
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void *handle;
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assert(sec_state_is_valid(security_state));
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/* Get a reference to the next context */
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handle = cm_get_context((uint32_t) security_state);
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assert(handle);
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/* Restore state */
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cm_el1_sysregs_context_restore((uint32_t) security_state);
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#if CTX_INCLUDE_FPREGS
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simd_ctx_restore((uint32_t)security_state);
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#endif
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cm_set_next_eret_context((uint32_t) security_state);
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return handle;
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}
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static uint64_t pncd_sel1_interrupt_handler(uint32_t id,
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uint32_t flags, void *handle, void *cookie);
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/*******************************************************************************
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* Switch context to the specified security state and return the targeted
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* handle. Note that the context may remain unchanged if the switch is not
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* allowed.
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******************************************************************************/
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void *pncd_context_switch_to(unsigned long security_state)
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{
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unsigned long sec_state_from =
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security_state == SECURE ? NON_SECURE : SECURE;
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assert(sec_state_is_valid(security_state));
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/* Check if this is the first world switch */
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if (!pnc_initialized) {
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int rc;
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uint32_t flags;
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assert(sec_state_from == SECURE);
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INFO("PnC initialization done\n");
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/*
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* Register an interrupt handler for S-EL1 interrupts
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* when generated during code executing in the
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* non-secure state.
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*/
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flags = 0U;
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set_interrupt_rm_flag(flags, NON_SECURE);
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rc = register_interrupt_type_handler(INTR_TYPE_S_EL1,
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pncd_sel1_interrupt_handler,
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flags);
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if (rc != 0) {
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ERROR("Failed to register S-EL1 interrupt handler (%d)\n",
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rc);
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panic();
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}
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context_save(SECURE);
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pnc_initialized = true;
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/*
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* Release the lock before restoring the EL3 context to
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* bl31_main.
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*/
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spin_unlock(&smc_handler_lock);
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/*
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* SP reports completion. The SPD must have initiated
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* the original request through a synchronous entry
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* into the SP. Jump back to the original C runtime
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* context.
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*/
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pncd_synchronous_sp_exit(&pncd_sp_context, (uint64_t) 0x0);
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/* Unreachable */
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ERROR("Returned from pncd_synchronous_sp_exit... Should not happen\n");
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panic();
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}
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/* Check that the world switch is allowed */
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if (read_mpidr() != pncd_sp_context.mpidr) {
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if (sec_state_from == SECURE) {
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/*
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* Secure -> Non-Secure world switch initiated on a CPU where there
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* should be no Trusted OS running
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*/
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WARN("Secure to Non-Secure switch requested on CPU where ProvenCore is not supposed to be running...\n");
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}
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/*
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* Secure or Non-Secure world wants to switch world but there is no Secure
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* software on this core
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*/
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return cm_get_context((uint32_t) sec_state_from);
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}
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context_save(sec_state_from);
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return context_restore(security_state);
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}
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/*******************************************************************************
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* This function is the handler registered for S-EL1 interrupts by the PNCD. It
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* validates the interrupt and upon success arranges entry into the PNC at
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* 'pnc_sel1_intr_entry()' for handling the interrupt.
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******************************************************************************/
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static uint64_t pncd_sel1_interrupt_handler(uint32_t id,
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uint32_t flags,
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void *handle,
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void *cookie)
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{
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/* Check the security state when the exception was generated */
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assert(get_interrupt_src_ss(flags) == NON_SECURE);
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/* Sanity check the pointer to this cpu's context */
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assert(handle == cm_get_context(NON_SECURE));
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/* switch to PnC */
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handle = pncd_context_switch_to(SECURE);
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assert(handle != NULL);
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SMC_RET0(handle);
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}
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#pragma weak plat_pncd_setup
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int plat_pncd_setup(void)
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{
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return 0;
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}
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/*******************************************************************************
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* Secure Payload Dispatcher setup. The SPD finds out the SP entrypoint and type
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* (aarch32/aarch64) if not already known and initialises the context for entry
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* into the SP for its initialisation.
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******************************************************************************/
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static int pncd_setup(void)
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{
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entry_point_info_t *pnc_ep_info;
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/*
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* Get information about the Secure Payload (BL32) image. Its
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* absence is a critical failure.
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*
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* TODO: Add support to conditionally include the SPD service
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*/
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pnc_ep_info = bl31_plat_get_next_image_ep_info(SECURE);
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if (!pnc_ep_info) {
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WARN("No PNC provided by BL2 boot loader, Booting device without PNC initialization. SMC`s destined for PNC will return SMC_UNK\n");
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return 1;
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}
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/*
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* If there's no valid entry point for SP, we return a non-zero value
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* signalling failure initializing the service. We bail out without
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* registering any handlers
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*/
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if (!pnc_ep_info->pc) {
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return 1;
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}
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pncd_init_pnc_ep_state(pnc_ep_info,
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pnc_ep_info->pc,
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&pncd_sp_context);
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/*
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* All PNCD initialization done. Now register our init function with
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* BL31 for deferred invocation
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*/
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bl31_register_bl32_init(&pncd_init);
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bl31_set_next_image_type(NON_SECURE);
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return plat_pncd_setup();
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}
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/*******************************************************************************
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* This function passes control to the Secure Payload image (BL32) for the first
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* time on the primary cpu after a cold boot. It assumes that a valid secure
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* context has already been created by pncd_setup() which can be directly used.
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* It also assumes that a valid non-secure context has been initialised by PSCI
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* so it does not need to save and restore any non-secure state. This function
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* performs a synchronous entry into the Secure payload. The SP passes control
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* back to this routine through a SMC.
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******************************************************************************/
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static int32_t pncd_init(void)
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{
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entry_point_info_t *pnc_entry_point;
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uint64_t rc = 0;
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/*
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* Get information about the Secure Payload (BL32) image. Its
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* absence is a critical failure.
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*/
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pnc_entry_point = bl31_plat_get_next_image_ep_info(SECURE);
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assert(pnc_entry_point);
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cm_init_my_context(pnc_entry_point);
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/*
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* Arrange for an entry into the test secure payload. It will be
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* returned via PNC_ENTRY_DONE case
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*/
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rc = pncd_synchronous_sp_entry(&pncd_sp_context);
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/*
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* If everything went well at this point, the return value should be 0.
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*/
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return rc == 0;
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}
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#pragma weak plat_pncd_smc_handler
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/*******************************************************************************
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* This function is responsible for handling the platform-specific SMCs in the
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* Trusted OS/App range as defined in the SMC Calling Convention Document.
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******************************************************************************/
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uintptr_t plat_pncd_smc_handler(uint32_t smc_fid,
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u_register_t x1,
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u_register_t x2,
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u_register_t x3,
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u_register_t x4,
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void *cookie,
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void *handle,
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u_register_t flags)
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{
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(void) smc_fid;
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(void) x1;
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(void) x2;
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(void) x3;
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(void) x4;
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(void) cookie;
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(void) flags;
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SMC_RET1(handle, SMC_UNK);
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}
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/*******************************************************************************
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* This function is responsible for handling all SMCs in the Trusted OS/App
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* range as defined in the SMC Calling Convention Document. It is also
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* responsible for communicating with the Secure payload to delegate work and
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* return results back to the non-secure state. Lastly it will also return any
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* information that the secure payload needs to do the work assigned to it.
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*
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* It should only be called with the smc_handler_lock held.
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******************************************************************************/
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static uintptr_t pncd_smc_handler_unsafe(uint32_t smc_fid,
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u_register_t x1,
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u_register_t x2,
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u_register_t x3,
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u_register_t x4,
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void *cookie,
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void *handle,
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u_register_t flags)
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{
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uint32_t ns;
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/* Determine which security state this SMC originated from */
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ns = is_caller_non_secure(flags);
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assert(ns != 0 || read_mpidr() == pncd_sp_context.mpidr);
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switch (smc_fid) {
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case SMC_CONFIG_SHAREDMEM:
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if (ree_info) {
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/* Do not Yield */
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SMC_RET0(handle);
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}
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/*
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* Fetch the physical base address (x1) and size (x2) of the
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* shared memory allocated by the Non-Secure world. This memory
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* will be used by PNC to communicate with the Non-Secure world.
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* Verifying the validity of these values is up to the Trusted
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* OS.
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*/
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ree_base_addr = x1 | (x2 << 32);
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ree_length = x3;
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ree_tag = x4;
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INFO("IN SMC_CONFIG_SHAREDMEM: addr=%lx, length=%lx, tag=%lx\n",
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(unsigned long) ree_base_addr,
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(unsigned long) ree_length,
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(unsigned long) ree_tag);
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if ((ree_base_addr % 0x200000) != 0) {
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SMC_RET1(handle, SMC_UNK);
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}
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if ((ree_length % 0x200000) != 0) {
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SMC_RET1(handle, SMC_UNK);
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}
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ree_info = true;
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/* Do not Yield */
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SMC_RET4(handle, 0, 0, 0, 0);
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break;
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case SMC_GET_SHAREDMEM:
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if (ree_info) {
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x1 = (1U << 16) | ree_tag;
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x2 = ree_base_addr & 0xFFFFFFFF;
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x3 = (ree_base_addr >> 32) & 0xFFFFFFFF;
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x4 = ree_length & 0xFFFFFFFF;
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SMC_RET4(handle, x1, x2, x3, x4);
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} else {
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SMC_RET4(handle, 0, 0, 0, 0);
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}
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break;
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case SMC_ACTION_FROM_NS:
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if (ns == 0) {
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SMC_RET1(handle, SMC_UNK);
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}
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if (SPD_PNCD_S_IRQ < MIN_PPI_ID) {
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plat_ic_raise_s_el1_sgi(SPD_PNCD_S_IRQ,
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pncd_sp_context.mpidr);
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} else {
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plat_ic_set_interrupt_pending(SPD_PNCD_S_IRQ);
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}
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SMC_RET0(handle);
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break;
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case SMC_ACTION_FROM_S:
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if (ns != 0) {
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SMC_RET1(handle, SMC_UNK);
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}
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if (SPD_PNCD_NS_IRQ < MIN_PPI_ID) {
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/*
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* NS SGI is sent to the same core as the one running
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* PNC
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*/
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plat_ic_raise_ns_sgi(SPD_PNCD_NS_IRQ, read_mpidr());
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} else {
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plat_ic_set_interrupt_pending(SPD_PNCD_NS_IRQ);
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}
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SMC_RET0(handle);
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break;
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case SMC_YIELD:
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assert(handle == cm_get_context(ns != 0 ? NON_SECURE : SECURE));
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handle = pncd_context_switch_to(ns != 0 ? SECURE : NON_SECURE);
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assert(handle != NULL);
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SMC_RET0(handle);
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break;
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default:
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INFO("Unknown smc: %x\n", smc_fid);
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break;
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}
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return plat_pncd_smc_handler(smc_fid, x1, x2, x3, x4,
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cookie, handle, flags);
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}
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static uintptr_t pncd_smc_handler(uint32_t smc_fid,
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u_register_t x1,
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u_register_t x2,
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u_register_t x3,
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u_register_t x4,
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void *cookie,
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void *handle,
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u_register_t flags)
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{
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uintptr_t ret;
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/* SMC handling is serialized */
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spin_lock(&smc_handler_lock);
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ret = pncd_smc_handler_unsafe(smc_fid, x1, x2, x3, x4, cookie, handle,
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flags);
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spin_unlock(&smc_handler_lock);
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return ret;
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}
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/* Define a SPD runtime service descriptor for fast SMC calls */
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DECLARE_RT_SVC(
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pncd_fast,
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OEN_TOS_START,
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OEN_TOS_END,
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SMC_TYPE_FAST,
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pncd_setup,
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pncd_smc_handler
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);
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/* Define a SPD runtime service descriptor for standard SMC calls */
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DECLARE_RT_SVC(
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pncd_std,
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OEN_TOS_START,
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OEN_TOS_END,
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SMC_TYPE_YIELD,
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NULL,
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pncd_smc_handler
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);
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