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331 lines
9.0 KiB
331 lines
9.0 KiB
/*
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* Texas Instruments K3 Secure Proxy Driver
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* Based on Linux and U-Boot implementation
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*
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* Copyright (C) 2018 Texas Instruments Incorporated - http://www.ti.com/
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*
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* SPDX-License-Identifier: BSD-3-Clause
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*/
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#include <errno.h>
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#include <stdlib.h>
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#include <platform_def.h>
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#include <arch_helpers.h>
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#include <common/debug.h>
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#include <lib/mmio.h>
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#include <lib/utils.h>
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#include <lib/utils_def.h>
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#include "sec_proxy.h"
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/* SEC PROXY RT THREAD STATUS */
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#define RT_THREAD_STATUS (0x0)
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#define RT_THREAD_STATUS_ERROR_SHIFT (31)
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#define RT_THREAD_STATUS_ERROR_MASK BIT(31)
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#define RT_THREAD_STATUS_CUR_CNT_SHIFT (0)
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#define RT_THREAD_STATUS_CUR_CNT_MASK GENMASK(7, 0)
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/* SEC PROXY SCFG THREAD CTRL */
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#define SCFG_THREAD_CTRL (0x1000)
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#define SCFG_THREAD_CTRL_DIR_SHIFT (31)
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#define SCFG_THREAD_CTRL_DIR_MASK BIT(31)
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#define SEC_PROXY_THREAD(base, x) ((base) + (0x1000 * (x)))
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#define THREAD_IS_RX (1)
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#define THREAD_IS_TX (0)
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/**
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* struct k3_sec_proxy_desc - Description of secure proxy integration
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* @timeout_us: Timeout for communication (in Microseconds)
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* @max_msg_size: Message size in bytes
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* @data_start_offset: Offset of the First data register of the thread
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* @data_end_offset: Offset of the Last data register of the thread
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*/
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struct k3_sec_proxy_desc {
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uint32_t timeout_us;
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uint16_t max_msg_size;
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uint16_t data_start_offset;
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uint16_t data_end_offset;
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};
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/**
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* struct k3_sec_proxy_thread - Description of a Secure Proxy Thread
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* @name: Thread Name
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* @data: Thread Data path region for target
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* @scfg: Secure Config Region for Thread
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* @rt: RealTime Region for Thread
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*/
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struct k3_sec_proxy_thread {
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const char *name;
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uintptr_t data;
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uintptr_t scfg;
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uintptr_t rt;
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};
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/**
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* struct k3_sec_proxy_mbox - Description of a Secure Proxy Instance
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* @desc: Description of the SoC integration
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* @chans: Array for valid thread instances
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*/
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struct k3_sec_proxy_mbox {
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const struct k3_sec_proxy_desc desc;
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struct k3_sec_proxy_thread threads[];
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};
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/*
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* Thread ID #0: DMSC notify
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* Thread ID #1: DMSC request response
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* Thread ID #2: DMSC request high priority
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* Thread ID #3: DMSC request low priority
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* Thread ID #4: DMSC notify response
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*/
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#define SP_THREAD(_x) \
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[_x] = { \
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.name = #_x, \
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.data = SEC_PROXY_THREAD(SEC_PROXY_DATA_BASE, _x), \
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.scfg = SEC_PROXY_THREAD(SEC_PROXY_SCFG_BASE, _x), \
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.rt = SEC_PROXY_THREAD(SEC_PROXY_RT_BASE, _x), \
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}
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static struct k3_sec_proxy_mbox spm = {
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.desc = {
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.timeout_us = SEC_PROXY_TIMEOUT_US,
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.max_msg_size = SEC_PROXY_MAX_MESSAGE_SIZE,
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.data_start_offset = 0x4,
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.data_end_offset = 0x3C,
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},
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.threads = {
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SP_THREAD(SP_NOTIFY),
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SP_THREAD(SP_RESPONSE),
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SP_THREAD(SP_HIGH_PRIORITY),
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SP_THREAD(SP_LOW_PRIORITY),
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SP_THREAD(SP_NOTIFY_RESP),
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},
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};
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/**
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* struct sec_msg_hdr - Message header for secure messages and responses
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* @checksum: CRC of message for integrity checking
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*/
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union sec_msg_hdr {
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struct {
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uint16_t checksum;
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uint16_t reserved;
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} __packed;
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uint32_t data;
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};
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/**
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* k3_sec_proxy_verify_thread() - Verify thread status before
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* sending/receiving data
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* @spt: Pointer to Secure Proxy thread description
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* @dir: Direction of the thread
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*
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* Return: 0 if all goes well, else appropriate error message
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*/
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static inline int k3_sec_proxy_verify_thread(struct k3_sec_proxy_thread *spt,
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uint32_t dir)
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{
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/* Check for any errors already available */
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if (mmio_read_32(spt->rt + RT_THREAD_STATUS) &
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RT_THREAD_STATUS_ERROR_MASK) {
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ERROR("Thread %s is corrupted, cannot send data\n", spt->name);
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return -EINVAL;
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}
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/* Make sure thread is configured for right direction */
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if ((mmio_read_32(spt->scfg + SCFG_THREAD_CTRL) & SCFG_THREAD_CTRL_DIR_MASK)
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!= (dir << SCFG_THREAD_CTRL_DIR_SHIFT)) {
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if (dir == THREAD_IS_TX)
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ERROR("Trying to send data on RX Thread %s\n",
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spt->name);
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else
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ERROR("Trying to receive data on TX Thread %s\n",
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spt->name);
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return -EINVAL;
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}
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/* Check the message queue before sending/receiving data */
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uint32_t tick_start = (uint32_t)read_cntpct_el0();
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uint32_t ticks_per_us = SYS_COUNTER_FREQ_IN_TICKS / 1000000;
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while (!(mmio_read_32(spt->rt + RT_THREAD_STATUS) & RT_THREAD_STATUS_CUR_CNT_MASK)) {
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VERBOSE("Waiting for thread %s to %s\n",
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spt->name, (dir == THREAD_IS_TX) ? "empty" : "fill");
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if (((uint32_t)read_cntpct_el0() - tick_start) >
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(spm.desc.timeout_us * ticks_per_us)) {
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ERROR("Timeout waiting for thread %s to %s\n",
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spt->name, (dir == THREAD_IS_TX) ? "empty" : "fill");
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return -ETIMEDOUT;
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}
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}
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return 0;
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}
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/**
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* k3_sec_proxy_clear_rx_thread() - Clear Secure Proxy thread
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*
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* @id: Channel Identifier
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*
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* Return: 0 if all goes well, else appropriate error message
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*/
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int k3_sec_proxy_clear_rx_thread(enum k3_sec_proxy_chan_id id)
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{
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struct k3_sec_proxy_thread *spt = &spm.threads[id];
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/* Check for any errors already available */
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if (mmio_read_32(spt->rt + RT_THREAD_STATUS) &
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RT_THREAD_STATUS_ERROR_MASK) {
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ERROR("Thread %s is corrupted, cannot send data\n", spt->name);
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return -EINVAL;
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}
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/* Make sure thread is configured for right direction */
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if (!(mmio_read_32(spt->scfg + SCFG_THREAD_CTRL) & SCFG_THREAD_CTRL_DIR_MASK)) {
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ERROR("Cannot clear a transmit thread %s\n", spt->name);
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return -EINVAL;
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}
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/* Read off messages from thread until empty */
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uint32_t try_count = 10;
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while (mmio_read_32(spt->rt + RT_THREAD_STATUS) & RT_THREAD_STATUS_CUR_CNT_MASK) {
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if (!(try_count--)) {
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ERROR("Could not clear all messages from thread %s\n", spt->name);
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return -ETIMEDOUT;
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}
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WARN("Clearing message from thread %s\n", spt->name);
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mmio_read_32(spt->data + spm.desc.data_end_offset);
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}
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return 0;
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}
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/**
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* k3_sec_proxy_send() - Send data over a Secure Proxy thread
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* @id: Channel Identifier
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* @msg: Pointer to k3_sec_proxy_msg
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*
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* Return: 0 if all goes well, else appropriate error message
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*/
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int k3_sec_proxy_send(enum k3_sec_proxy_chan_id id, const struct k3_sec_proxy_msg *msg)
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{
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struct k3_sec_proxy_thread *spt = &spm.threads[id];
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union sec_msg_hdr secure_header;
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int num_words, trail_bytes, i, ret;
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uintptr_t data_reg;
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ret = k3_sec_proxy_verify_thread(spt, THREAD_IS_TX);
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if (ret) {
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ERROR("Thread %s verification failed (%d)\n", spt->name, ret);
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return ret;
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}
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/* Check the message size */
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if (msg->len + sizeof(secure_header) > spm.desc.max_msg_size) {
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ERROR("Thread %s message length %lu > max msg size\n",
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spt->name, msg->len);
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return -EINVAL;
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}
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/* TODO: Calculate checksum */
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secure_header.checksum = 0;
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/* Send the secure header */
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data_reg = spm.desc.data_start_offset;
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mmio_write_32(spt->data + data_reg, secure_header.data);
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data_reg += sizeof(uint32_t);
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/* Send whole words */
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num_words = msg->len / sizeof(uint32_t);
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for (i = 0; i < num_words; i++) {
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mmio_write_32(spt->data + data_reg, ((uint32_t *)msg->buf)[i]);
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data_reg += sizeof(uint32_t);
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}
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/* Send remaining bytes */
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trail_bytes = msg->len % sizeof(uint32_t);
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if (trail_bytes) {
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uint32_t data_trail = 0;
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i = msg->len - trail_bytes;
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while (trail_bytes--) {
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data_trail <<= 8;
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data_trail |= msg->buf[i++];
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}
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mmio_write_32(spt->data + data_reg, data_trail);
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data_reg += sizeof(uint32_t);
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}
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/*
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* 'data_reg' indicates next register to write. If we did not already
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* write on tx complete reg(last reg), we must do so for transmit
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*/
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if (data_reg <= spm.desc.data_end_offset)
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mmio_write_32(spt->data + spm.desc.data_end_offset, 0);
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VERBOSE("Message successfully sent on thread %s\n", spt->name);
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return 0;
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}
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/**
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* k3_sec_proxy_recv() - Receive data from a Secure Proxy thread
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* @id: Channel Identifier
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* @msg: Pointer to k3_sec_proxy_msg
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*
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* Return: 0 if all goes well, else appropriate error message
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*/
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int k3_sec_proxy_recv(enum k3_sec_proxy_chan_id id, struct k3_sec_proxy_msg *msg)
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{
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struct k3_sec_proxy_thread *spt = &spm.threads[id];
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union sec_msg_hdr secure_header;
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uintptr_t data_reg;
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int num_words, trail_bytes, i, ret;
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ret = k3_sec_proxy_verify_thread(spt, THREAD_IS_RX);
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if (ret) {
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ERROR("Thread %s verification failed (%d)\n", spt->name, ret);
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return ret;
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}
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/* Read secure header */
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data_reg = spm.desc.data_start_offset;
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secure_header.data = mmio_read_32(spt->data + data_reg);
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data_reg += sizeof(uint32_t);
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/* Read whole words */
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num_words = msg->len / sizeof(uint32_t);
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for (i = 0; i < num_words; i++) {
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((uint32_t *)msg->buf)[i] = mmio_read_32(spt->data + data_reg);
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data_reg += sizeof(uint32_t);
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}
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/* Read remaining bytes */
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trail_bytes = msg->len % sizeof(uint32_t);
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if (trail_bytes) {
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uint32_t data_trail = mmio_read_32(spt->data + data_reg);
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data_reg += sizeof(uint32_t);
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i = msg->len - trail_bytes;
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while (trail_bytes--) {
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msg->buf[i] = data_trail & 0xff;
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data_trail >>= 8;
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}
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}
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/*
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* 'data_reg' indicates next register to read. If we did not already
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* read on rx complete reg(last reg), we must do so for receive
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*/
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if (data_reg <= spm.desc.data_end_offset)
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mmio_read_32(spt->data + spm.desc.data_end_offset);
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/* TODO: Verify checksum */
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(void)secure_header.checksum;
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VERBOSE("Message successfully received from thread %s\n", spt->name);
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return 0;
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}
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