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Change-Id: Ib9d99fefda812d20265db47be353c844f8b77129 Found-by: Coverity Scan #1420204 Signed-off-by: Patrick Georgi <pgeorgi@google.com> Reviewed-on: https://review.coreboot.org/c/flashrom/+/40969 Tested-by: build bot (Jenkins) <no-reply@coreboot.org> Reviewed-by: Angel Pons <th3fanbus@gmail.com>
616 lines
18 KiB
C
616 lines
18 KiB
C
/*
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* This file is part of the flashrom project.
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*
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* Copyright 2014, Google Inc.
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met:
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*
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* * Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* * Redistributions in binary form must reproduce the above
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* copyright notice, this list of conditions and the following disclaimer
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* in the documentation and/or other materials provided with the
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* distribution.
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* * Neither the name of Google Inc. nor the names of its
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* contributors may be used to endorse or promote products derived from
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* this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*
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* Alternatively, this software may be distributed under the terms of the
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* GNU General Public License ("GPL") version 2 as published by the Free
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* Software Foundation.
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*/
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/*
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* This SPI flash programming interface is designed to talk to a Chromium OS
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* device over a Raiden USB connection. The USB connection is routed to a
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* microcontroller running an image compiled from:
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*
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* https://chromium.googlesource.com/chromiumos/platform/ec
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*
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* The protocol for the USB-SPI bridge is documented in the following file in
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* that respository:
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*
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* chip/stm32/usb_spi.c
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*
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* Version 1:
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* SPI transactions of up to 62B in each direction with every command having
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* a response. The initial packet from host contains a 2B header indicating
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* write and read counts with an optional payload length equal to the write
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* count. The device will respond with a message that reports the 2B status
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* code and an optional payload response length equal to read count.
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*
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* Message Format:
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*
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* Command Packet:
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* +------------------+-----------------+------------------------+
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* | write count : 1B | read count : 1B | write payload : <= 62B |
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* +------------------+-----------------+------------------------+
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*
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* write count: 1 byte, zero based count of bytes to write
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*
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* read count: 1 byte, zero based count of bytes to read
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*
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* write payload: Up to 62 bytes of data to write to SPI, the total
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* length of all TX packets must match write count.
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* Due to data alignment constraints, this must be an
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* even number of bytes unless this is the final packet.
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*
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* Response Packet:
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* +-------------+-----------------------+
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* | status : 2B | read payload : <= 62B |
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* +-------------+-----------------------+
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*
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* status: 2 byte status
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* 0x0000: Success
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* 0x0001: SPI timeout
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* 0x0002: Busy, try again
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* This can happen if someone else has acquired the shared memory
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* buffer that the SPI driver uses as /dev/null
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* 0x0003: Write count invalid (V1 > 62B)
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* 0x0004: Read count invalid (V1 > 62B)
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* 0x0005: The SPI bridge is disabled.
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* 0x8000: Unknown error mask
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* The bottom 15 bits will contain the bottom 15 bits from the EC
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* error code.
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*
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* read payload: Up to 62 bytes of data read from SPI, the total
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* length of all RX packets must match read count
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* unless an error status was returned. Due to data
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* alignment constraints, this must be a even number
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* of bytes unless this is the final packet.
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*
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* USB Error Codes:
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*
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* send_command return codes have the following format:
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*
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* 0x00000: Status code success.
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* 0x00001-0x0FFFF: Error code returned by the USB SPI device.
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* 0x10001-0x1FFFF: The host has determined an error has occurred.
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* 0x20001-0x20063 Lower bits store the positive value representation
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* of the libusb_error enum. See the libusb documentation:
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* http://libusb.sourceforge.net/api-1.0/group__misc.html
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*/
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#include "programmer.h"
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#include "spi.h"
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#include "usb_device.h"
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#include <libusb.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <unistd.h>
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/* FIXME: Add some programmer IDs here */
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const struct dev_entry devs_raiden[] = {
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{0},
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};
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#define GOOGLE_VID (0x18D1)
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#define GOOGLE_RAIDEN_SPI_SUBCLASS (0x51)
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#define GOOGLE_RAIDEN_SPI_PROTOCOL (0x01)
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enum usb_spi_error {
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USB_SPI_SUCCESS = 0x0000,
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USB_SPI_TIMEOUT = 0x0001,
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USB_SPI_BUSY = 0x0002,
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USB_SPI_WRITE_COUNT_INVALID = 0x0003,
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USB_SPI_READ_COUNT_INVALID = 0x0004,
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USB_SPI_DISABLED = 0x0005,
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USB_SPI_UNKNOWN_ERROR = 0x8000,
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};
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enum raiden_debug_spi_request {
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RAIDEN_DEBUG_SPI_REQ_ENABLE = 0x0000,
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RAIDEN_DEBUG_SPI_REQ_DISABLE = 0x0001,
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RAIDEN_DEBUG_SPI_REQ_ENABLE_AP = 0x0002,
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RAIDEN_DEBUG_SPI_REQ_ENABLE_EC = 0x0003,
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};
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#define PACKET_HEADER_SIZE (2)
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#define MAX_PACKET_SIZE (64)
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#define PAYLOAD_SIZE (MAX_PACKET_SIZE - PACKET_HEADER_SIZE)
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/*
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* Servo Micro has an error where it is capable of acknowledging USB packets
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* without loading it into the USB endpoint buffers or triggering interrupts.
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* See crbug.com/952494. Retry mechanisms have been implemented to recover
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* from these rare failures allowing the process to continue.
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*/
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#define WRITE_RETY_ATTEMPTS (3)
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#define READ_RETY_ATTEMPTS (3)
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#define RETY_INTERVAL_US (100 * 1000)
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/*
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* This timeout is so large because the Raiden SPI timeout is 800ms.
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*/
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#define TRANSFER_TIMEOUT_MS (200 + 800)
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struct raiden_debug_spi_data {
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struct usb_device *dev;
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uint8_t in_ep;
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uint8_t out_ep;
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};
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typedef struct {
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int8_t write_count;
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/* -1 Indicates readback all on halfduplex compliant devices. */
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int8_t read_count;
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uint8_t data[PAYLOAD_SIZE];
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} __attribute__((packed)) usb_spi_command_t;
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typedef struct {
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uint16_t status_code;
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uint8_t data[PAYLOAD_SIZE];
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} __attribute__((packed)) usb_spi_response_t;
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/*
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* This function will return true when an error code can potentially recover
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* if we attempt to write SPI data to the device or read from it. We know
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* that some conditions are not recoverable in the current state so allows us
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* to bypass the retry logic and terminate early.
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*/
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static bool retry_recovery(int error_code)
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{
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if (error_code < 0x10000) {
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/* Handle error codes returned from the device. */
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if (USB_SPI_WRITE_COUNT_INVALID <= error_code &&
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error_code <= USB_SPI_DISABLED) {
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return false;
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}
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} else if (usb_device_is_libusb_error(error_code)) {
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/* Handle error codes returned from libusb. */
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if (error_code == LIBUSB_ERROR(LIBUSB_ERROR_NO_DEVICE)) {
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return false;
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}
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}
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return true;
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}
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static const struct raiden_debug_spi_data *
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get_raiden_data_from_context(const struct flashctx *flash)
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{
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return (const struct raiden_debug_spi_data *)flash->mst->spi.data;
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}
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static int write_command(const struct flashctx *flash,
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unsigned int write_count,
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unsigned int read_count,
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const unsigned char *write_buffer,
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unsigned char *read_buffer)
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{
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int transferred;
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int ret;
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usb_spi_command_t command_packet;
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const struct raiden_debug_spi_data * ctx_data = get_raiden_data_from_context(flash);
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if (write_count > PAYLOAD_SIZE) {
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msg_perr("Raiden: Invalid write_count of %d\n", write_count);
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return SPI_INVALID_LENGTH;
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}
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if (read_count > PAYLOAD_SIZE) {
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msg_perr("Raiden: Invalid read_count of %d\n", read_count);
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return SPI_INVALID_LENGTH;
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}
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command_packet.write_count = write_count;
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command_packet.read_count = read_count;
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memcpy(command_packet.data, write_buffer, write_count);
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ret = LIBUSB(libusb_bulk_transfer(ctx_data->dev->handle,
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ctx_data->out_ep,
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(void*)&command_packet,
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write_count + PACKET_HEADER_SIZE,
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&transferred,
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TRANSFER_TIMEOUT_MS));
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if (ret != 0) {
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msg_perr("Raiden: OUT transfer failed\n"
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" write_count = %d\n"
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" read_count = %d\n",
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write_count, read_count);
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return ret;
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}
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if ((unsigned) transferred != write_count + PACKET_HEADER_SIZE) {
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msg_perr("Raiden: Write failure (wrote %d, expected %d)\n",
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transferred, write_count + PACKET_HEADER_SIZE);
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return 0x10001;
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}
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return 0;
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}
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static int read_response(const struct flashctx *flash,
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unsigned int write_count,
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unsigned int read_count,
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const unsigned char *write_buffer,
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unsigned char *read_buffer)
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{
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int transferred;
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int ret;
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usb_spi_response_t response_packet;
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const struct raiden_debug_spi_data * ctx_data = get_raiden_data_from_context(flash);
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ret = LIBUSB(libusb_bulk_transfer(ctx_data->dev->handle,
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ctx_data->in_ep,
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(void*)&response_packet,
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read_count + PACKET_HEADER_SIZE,
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&transferred,
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TRANSFER_TIMEOUT_MS));
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if (ret != 0) {
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msg_perr("Raiden: IN transfer failed\n"
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" write_count = %d\n"
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" read_count = %d\n",
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write_count, read_count);
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return ret;
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}
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if ((unsigned) transferred != read_count + PACKET_HEADER_SIZE) {
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msg_perr("Raiden: Read failure (read %d, expected %d)\n",
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transferred, read_count + PACKET_HEADER_SIZE);
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return 0x10002;
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}
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memcpy(read_buffer, response_packet.data, read_count);
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return response_packet.status_code;
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}
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static int send_command(const struct flashctx *flash,
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unsigned int write_count,
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unsigned int read_count,
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const unsigned char *write_buffer,
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unsigned char *read_buffer)
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{
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int status = -1;
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for (int write_attempt = 0; write_attempt < WRITE_RETY_ATTEMPTS;
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write_attempt++) {
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status = write_command(flash, write_count, read_count,
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write_buffer, read_buffer);
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if (status) {
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/* Write operation failed. */
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msg_perr("Raiden: Write command failed\n"
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"Write attempt = %d\n"
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"status = %d\n",
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write_attempt + 1, status);
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if (!retry_recovery(status)) {
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/* Reattempting will not result in a recovery. */
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return status;
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}
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programmer_delay(RETY_INTERVAL_US);
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continue;
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}
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for (int read_attempt = 0; read_attempt < READ_RETY_ATTEMPTS; read_attempt++) {
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status = read_response(flash, write_count, read_count,
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write_buffer, read_buffer);
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if (status != 0) {
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/* Read operation failed. */
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msg_perr("Raiden: Read response failed\n"
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"Write attempt = %d\n"
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"Read attempt = %d\n"
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"status = %d\n",
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write_attempt + 1, read_attempt + 1, status);
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if (!retry_recovery(status)) {
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/* Reattempting will not result in a recovery. */
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return status;
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}
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programmer_delay(RETY_INTERVAL_US);
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} else {
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/* We were successful at performing the SPI transfer. */
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return status;
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}
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}
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}
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return status;
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}
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/*
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* Unfortunately there doesn't seem to be a way to specify the maximum number
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* of bytes that your SPI device can read/write, these values are the maximum
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* data chunk size that flashrom will package up with an additional five bytes
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* of command for the flash device, resulting in a 62 byte packet, that we then
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* add two bytes to in either direction, making our way up to the 64 byte
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* maximum USB packet size for the device.
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*
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* The largest command that flashrom generates is the byte program command, so
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* we use that command header maximum size here.
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*/
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#define MAX_DATA_SIZE (PAYLOAD_SIZE - JEDEC_BYTE_PROGRAM_OUTSIZE)
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static struct spi_master spi_master_raiden_debug = {
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.features = SPI_MASTER_4BA,
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.max_data_read = MAX_DATA_SIZE,
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.max_data_write = MAX_DATA_SIZE,
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.command = send_command,
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.multicommand = default_spi_send_multicommand,
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.read = default_spi_read,
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.write_256 = default_spi_write_256,
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.write_aai = default_spi_write_aai,
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};
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static int match_endpoint(struct libusb_endpoint_descriptor const *descriptor,
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enum libusb_endpoint_direction direction)
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{
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return (((descriptor->bEndpointAddress & LIBUSB_ENDPOINT_DIR_MASK) ==
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direction) &&
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((descriptor->bmAttributes & LIBUSB_TRANSFER_TYPE_MASK) ==
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LIBUSB_TRANSFER_TYPE_BULK));
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}
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static int find_endpoints(struct usb_device *dev, uint8_t *in_ep, uint8_t *out_ep)
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{
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int i;
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int in_count = 0;
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int out_count = 0;
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for (i = 0; i < dev->interface_descriptor->bNumEndpoints; i++) {
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struct libusb_endpoint_descriptor const *endpoint =
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&dev->interface_descriptor->endpoint[i];
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if (match_endpoint(endpoint, LIBUSB_ENDPOINT_IN)) {
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in_count++;
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*in_ep = endpoint->bEndpointAddress;
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} else if (match_endpoint(endpoint, LIBUSB_ENDPOINT_OUT)) {
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out_count++;
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*out_ep = endpoint->bEndpointAddress;
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}
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}
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if (in_count != 1 || out_count != 1) {
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msg_perr("Raiden: Failed to find one IN and one OUT endpoint\n"
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" found %d IN and %d OUT endpoints\n",
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in_count,
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out_count);
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return 1;
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}
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msg_pdbg("Raiden: Found IN endpoint = 0x%02x\n", *in_ep);
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msg_pdbg("Raiden: Found OUT endpoint = 0x%02x\n", *out_ep);
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return 0;
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}
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static int raiden_debug_spi_shutdown(void * data)
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{
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struct raiden_debug_spi_data * ctx_data =
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(struct raiden_debug_spi_data *)data;
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int ret = LIBUSB(libusb_control_transfer(
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ctx_data->dev->handle,
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LIBUSB_ENDPOINT_OUT |
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LIBUSB_REQUEST_TYPE_VENDOR |
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LIBUSB_RECIPIENT_INTERFACE,
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RAIDEN_DEBUG_SPI_REQ_DISABLE,
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0,
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ctx_data->dev->interface_descriptor->bInterfaceNumber,
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NULL,
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0,
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TRANSFER_TIMEOUT_MS));
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if (ret != 0) {
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msg_perr("Raiden: Failed to disable SPI bridge\n");
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return ret;
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}
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usb_device_free(ctx_data->dev);
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libusb_exit(NULL);
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free(ctx_data);
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return 0;
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}
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static int get_target(void)
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{
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int request_enable = RAIDEN_DEBUG_SPI_REQ_ENABLE;
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char *target_str = extract_programmer_param("target");
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if (target_str) {
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if (!strcasecmp(target_str, "ap"))
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request_enable = RAIDEN_DEBUG_SPI_REQ_ENABLE_AP;
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else if (!strcasecmp(target_str, "ec"))
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request_enable = RAIDEN_DEBUG_SPI_REQ_ENABLE_EC;
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else {
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msg_perr("Invalid target: %s\n", target_str);
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request_enable = -1;
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}
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}
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free(target_str);
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return request_enable;
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}
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static void free_dev_list(struct usb_device **dev_lst)
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{
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struct usb_device *dev = *dev_lst;
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/* free devices we don't care about */
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dev = dev->next;
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while (dev)
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dev = usb_device_free(dev);
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}
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int raiden_debug_spi_init(void)
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{
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struct usb_match match;
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char *serial = extract_programmer_param("serial");
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struct usb_device *current;
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struct usb_device *device = NULL;
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int found = 0;
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int ret;
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int request_enable = get_target();
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if (request_enable < 0) {
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free(serial);
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return 1;
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}
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usb_match_init(&match);
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usb_match_value_default(&match.vid, GOOGLE_VID);
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usb_match_value_default(&match.class, LIBUSB_CLASS_VENDOR_SPEC);
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usb_match_value_default(&match.subclass, GOOGLE_RAIDEN_SPI_SUBCLASS);
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usb_match_value_default(&match.protocol, GOOGLE_RAIDEN_SPI_PROTOCOL);
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ret = LIBUSB(libusb_init(NULL));
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if (ret != 0) {
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msg_perr("Raiden: libusb_init failed\n");
|
|
free(serial);
|
|
return ret;
|
|
}
|
|
|
|
ret = usb_device_find(&match, ¤t);
|
|
if (ret != 0) {
|
|
msg_perr("Raiden: Failed to find devices\n");
|
|
free(serial);
|
|
return ret;
|
|
}
|
|
|
|
uint8_t in_endpoint = 0;
|
|
uint8_t out_endpoint = 0;
|
|
while (current) {
|
|
device = current;
|
|
|
|
if (find_endpoints(device, &in_endpoint, &out_endpoint)) {
|
|
msg_pdbg("Raiden: Failed to find valid endpoints on device");
|
|
usb_device_show(" ", current);
|
|
goto loop_end;
|
|
}
|
|
|
|
if (usb_device_claim(device)) {
|
|
msg_pdbg("Raiden: Failed to claim USB device");
|
|
usb_device_show(" ", current);
|
|
goto loop_end;
|
|
}
|
|
|
|
if (!serial) {
|
|
found = 1;
|
|
goto loop_end;
|
|
} else {
|
|
unsigned char dev_serial[32];
|
|
struct libusb_device_descriptor descriptor;
|
|
int rc;
|
|
|
|
memset(dev_serial, 0, sizeof(dev_serial));
|
|
|
|
if (libusb_get_device_descriptor(device->device, &descriptor)) {
|
|
msg_pdbg("USB: Failed to get device descriptor.\n");
|
|
goto loop_end;
|
|
}
|
|
|
|
rc = libusb_get_string_descriptor_ascii(device->handle,
|
|
descriptor.iSerialNumber,
|
|
dev_serial,
|
|
sizeof(dev_serial));
|
|
if (rc < 0) {
|
|
LIBUSB(rc);
|
|
} else {
|
|
if (strcmp(serial, (char *)dev_serial)) {
|
|
msg_pdbg("Raiden: Serial number %s did not match device", serial);
|
|
usb_device_show(" ", current);
|
|
} else {
|
|
msg_pinfo("Raiden: Serial number %s matched device", serial);
|
|
usb_device_show(" ", current);
|
|
found = 1;
|
|
}
|
|
}
|
|
}
|
|
|
|
loop_end:
|
|
if (found)
|
|
break;
|
|
else
|
|
current = usb_device_free(current);
|
|
}
|
|
|
|
if (!device || !found) {
|
|
msg_perr("Raiden: No usable device found.\n");
|
|
free(serial);
|
|
return 1;
|
|
}
|
|
|
|
free_dev_list(¤t);
|
|
|
|
ret = LIBUSB(libusb_control_transfer(
|
|
device->handle,
|
|
LIBUSB_ENDPOINT_OUT |
|
|
LIBUSB_REQUEST_TYPE_VENDOR |
|
|
LIBUSB_RECIPIENT_INTERFACE,
|
|
request_enable,
|
|
0,
|
|
device->interface_descriptor->bInterfaceNumber,
|
|
NULL,
|
|
0,
|
|
TRANSFER_TIMEOUT_MS));
|
|
if (ret != 0) {
|
|
msg_perr("Raiden: Failed to enable SPI bridge\n");
|
|
return ret;
|
|
}
|
|
|
|
/*
|
|
* Allow for power to settle on the AP and EC flash devices.
|
|
* Load switches can have a 1-3 ms turn on time, and SPI flash devices
|
|
* can require up to 10 ms from power on to the first write.
|
|
*/
|
|
if ((request_enable == RAIDEN_DEBUG_SPI_REQ_ENABLE_AP) ||
|
|
(request_enable == RAIDEN_DEBUG_SPI_REQ_ENABLE_EC))
|
|
usleep(50 * 1000);
|
|
|
|
struct raiden_debug_spi_data *data = calloc(1, sizeof(struct raiden_debug_spi_data));
|
|
if (!data) {
|
|
msg_perr("Unable to allocate space for extra SPI master data.\n");
|
|
return SPI_GENERIC_ERROR;
|
|
}
|
|
|
|
data->dev = device;
|
|
data->in_ep = in_endpoint;
|
|
data->out_ep = out_endpoint;
|
|
|
|
spi_master_raiden_debug.data = data;
|
|
|
|
register_spi_master(&spi_master_raiden_debug);
|
|
register_shutdown(raiden_debug_spi_shutdown, data);
|
|
|
|
return 0;
|
|
}
|