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Updater.cpp
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#include "Updater.h"
#include "Arduino.h"
#include "eboot_command.h"
#include "interrupts.h"
#include "esp8266_peri.h"
//#define DEBUG_UPDATER Serial
extern "C" {
#include "c_types.h"
#include "spi_flash.h"
#include "user_interface.h"
}
extern "C" uint32_t _SPIFFS_start;
UpdaterClass::UpdaterClass()
: _async(false)
, _error(0)
, _buffer(0)
, _bufferLen(0)
, _size(0)
, _startAddress(0)
, _currentAddress(0)
, _command(U_FLASH)
{
}
void UpdaterClass::_reset() {
if (_buffer)
delete[] _buffer;
_buffer = 0;
_bufferLen = 0;
_startAddress = 0;
_currentAddress = 0;
_size = 0;
_command = U_FLASH;
}
bool UpdaterClass::begin(size_t size, int command) {
if(_size > 0){
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.println(F("[begin] already running"));
#endif
return false;
}
/* Check boot mode; if boot mode is 1 (UART download mode),
we will not be able to reset into normal mode once update is done.
Fail early to avoid frustration.
https://github.com/esp8266/Arduino/issues/1017#issuecomment-200605576
*/
int boot_mode = (GPI >> 16) & 0xf;
if (boot_mode == 1) {
_setError(UPDATE_ERROR_BOOTSTRAP);
return false;
}
#ifdef DEBUG_UPDATER
if (command == U_SPIFFS) {
DEBUG_UPDATER.println(F("[begin] Update SPIFFS."));
}
#endif
if(size == 0) {
_setError(UPDATE_ERROR_SIZE);
return false;
}
if(!ESP.checkFlashConfig(false)) {
_setError(UPDATE_ERROR_FLASH_CONFIG);
return false;
}
_reset();
clearError(); // _error = 0
wifi_set_sleep_type(NONE_SLEEP_T);
uint32_t updateStartAddress = 0;
if (command == U_FLASH) {
//size of current sketch rounded to a sector
uint32_t currentSketchSize = (ESP.getSketchSize() + FLASH_SECTOR_SIZE - 1) & (~(FLASH_SECTOR_SIZE - 1));
//address of the end of the space available for sketch and update
uint32_t updateEndAddress = (uint32_t)&_SPIFFS_start - 0x40200000;
//size of the update rounded to a sector
uint32_t roundedSize = (size + FLASH_SECTOR_SIZE - 1) & (~(FLASH_SECTOR_SIZE - 1));
//address where we will start writing the update
updateStartAddress = updateEndAddress - roundedSize;
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.printf("[begin] roundedSize: 0x%08X (%d)\n", roundedSize, roundedSize);
DEBUG_UPDATER.printf("[begin] updateEndAddress: 0x%08X (%d)\n", updateEndAddress, updateEndAddress);
DEBUG_UPDATER.printf("[begin] currentSketchSize: 0x%08X (%d)\n", currentSketchSize, currentSketchSize);
#endif
//make sure that the size of both sketches is less than the total space (updateEndAddress)
if(updateStartAddress < currentSketchSize) {
_setError(UPDATE_ERROR_SPACE);
return false;
}
}
else if (command == U_SPIFFS) {
updateStartAddress = (uint32_t)&_SPIFFS_start - 0x40200000;
}
else {
// unknown command
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.println(F("[begin] Unknown update command."));
#endif
return false;
}
//initialize
_startAddress = updateStartAddress;
_currentAddress = _startAddress;
_size = size;
if (ESP.getFreeHeap() > 2 * FLASH_SECTOR_SIZE) {
_bufferSize = FLASH_SECTOR_SIZE;
} else {
_bufferSize = 256;
}
_buffer = new uint8_t[_bufferSize];
_command = command;
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.printf("[begin] _startAddress: 0x%08X (%d)\n", _startAddress, _startAddress);
DEBUG_UPDATER.printf("[begin] _currentAddress: 0x%08X (%d)\n", _currentAddress, _currentAddress);
DEBUG_UPDATER.printf("[begin] _size: 0x%08X (%d)\n", _size, _size);
#endif
_md5.begin();
return true;
}
bool UpdaterClass::setMD5(const char * expected_md5){
if(strlen(expected_md5) != 32)
{
return false;
}
_target_md5 = expected_md5;
return true;
}
bool UpdaterClass::end(bool evenIfRemaining){
if(_size == 0){
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.println(F("no update"));
#endif
return false;
}
if(hasError() || (!isFinished() && !evenIfRemaining)){
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.printf("premature end: res:%u, pos:%u/%u\n", getError(), progress(), _size);
#endif
_reset();
return false;
}
if(evenIfRemaining) {
if(_bufferLen > 0) {
_writeBuffer();
}
_size = progress();
}
_md5.calculate();
if(_target_md5.length()) {
if(_target_md5 != _md5.toString()){
_setError(UPDATE_ERROR_MD5);
_reset();
return false;
}
#ifdef DEBUG_UPDATER
else DEBUG_UPDATER.printf("MD5 Success: %s\n", _target_md5.c_str());
#endif
}
if(!_verifyEnd()) {
_reset();
return false;
}
if (_command == U_FLASH) {
eboot_command ebcmd;
ebcmd.action = ACTION_COPY_RAW;
ebcmd.args[0] = _startAddress;
ebcmd.args[1] = 0x00000;
ebcmd.args[2] = _size;
eboot_command_write(&ebcmd);
#ifdef DEBUG_UPDATER
DEBUG_UPDATER.printf("Staged: address:0x%08X, size:0x%08X\n", _startAddress, _size);
}
else if (_command == U_SPIFFS) {
DEBUG_UPDATER.printf("SPIFFS: address:0x%08X, size:0x%08X\n", _startAddress, _size);
#endif
}
_reset();
return true;
}
bool UpdaterClass::_writeBuffer(){
bool eraseResult = true, writeResult = true;
if (_currentAddress % FLASH_SECTOR_SIZE == 0) {
if(!_async) yield();
eraseResult = ESP.flashEraseSector(_currentAddress/FLASH_SECTOR_SIZE);
}
if (eraseResult) {
if(!_async) yield();
writeResult = ESP.flashWrite(_currentAddress, (uint32_t*) _buffer, _bufferLen);
} else { // if erase was unsuccessful
_currentAddress = (_startAddress + _size);
_setError(UPDATE_ERROR_ERASE);
return false;
}
if (!writeResult) {
_currentAddress = (_startAddress + _size);
_setError(UPDATE_ERROR_WRITE);
return false;
}
_md5.add(_buffer, _bufferLen);
_currentAddress += _bufferLen;
_bufferLen = 0;
return true;
}
size_t UpdaterClass::write(uint8_t *data, size_t len) {
if(hasError() || !isRunning())
return 0;
if(len > remaining()){
//len = remaining();
//fail instead
_setError(UPDATE_ERROR_SPACE);
return 0;
}
size_t left = len;
while((_bufferLen + left) > _bufferSize) {
size_t toBuff = _bufferSize - _bufferLen;
memcpy(_buffer + _bufferLen, data + (len - left), toBuff);
_bufferLen += toBuff;
if(!_writeBuffer()){
return len - left;
}
left -= toBuff;
if(!_async) yield();
}
//lets see whats left
memcpy(_buffer + _bufferLen, data + (len - left), left);
_bufferLen += left;
if(_bufferLen == remaining()){
//we are at the end of the update, so should write what's left to flash
if(!_writeBuffer()){
return len - left;
}
}
return len;
}
bool UpdaterClass::_verifyHeader(uint8_t data) {
if(_command == U_FLASH) {
// check for valid first magic byte (is always 0xE9)
if(data != 0xE9) {
_currentAddress = (_startAddress + _size);
_setError(UPDATE_ERROR_MAGIC_BYTE);
return false;
}
return true;
} else if(_command == U_SPIFFS) {
// no check of SPIFFS possible with first byte.
return true;
}
return false;
}
bool UpdaterClass::_verifyEnd() {
if(_command == U_FLASH) {
uint8_t buf[4];
if(!ESP.flashRead(_startAddress, (uint32_t *) &buf[0], 4)) {
_currentAddress = (_startAddress);
_setError(UPDATE_ERROR_READ);
return false;
}
// check for valid first magic byte
if(buf[0] != 0xE9) {
_currentAddress = (_startAddress);
_setError(UPDATE_ERROR_MAGIC_BYTE);
return false;
}
uint32_t bin_flash_size = ESP.magicFlashChipSize((buf[3] & 0xf0) >> 4);
// check if new bin fits to SPI flash
if(bin_flash_size > ESP.getFlashChipRealSize()) {
_currentAddress = (_startAddress);
_setError(UPDATE_ERROR_NEW_FLASH_CONFIG);
return false;
}
return true;
} else if(_command == U_SPIFFS) {
// SPIFFS is already over written checks make no sense any more.
return true;
}
return false;
}
size_t UpdaterClass::writeStream(Stream &data) {
size_t written = 0;
size_t toRead = 0;
if(hasError() || !isRunning())
return 0;
if(!_verifyHeader(data.peek())) {
#ifdef DEBUG_UPDATER
printError(DEBUG_UPDATER);
#endif
_reset();
return 0;
}
while(remaining()) {
toRead = data.readBytes(_buffer + _bufferLen, (_bufferSize - _bufferLen));
if(toRead == 0) { //Timeout
delay(100);
toRead = data.readBytes(_buffer + _bufferLen, (_bufferSize - _bufferLen));
if(toRead == 0) { //Timeout
_currentAddress = (_startAddress + _size);
_setError(UPDATE_ERROR_STREAM);
_reset();
return written;
}
}
_bufferLen += toRead;
if((_bufferLen == remaining() || _bufferLen == _bufferSize) && !_writeBuffer())
return written;
written += toRead;
yield();
}
return written;
}
void UpdaterClass::_setError(int error){
_error = error;
#ifdef DEBUG_UPDATER
printError(DEBUG_UPDATER);
#endif
}
void UpdaterClass::printError(Print &out){
out.printf_P(PSTR("ERROR[%u]: "), _error);
if(_error == UPDATE_ERROR_OK){
out.println(F("No Error"));
} else if(_error == UPDATE_ERROR_WRITE){
out.println(F("Flash Write Failed"));
} else if(_error == UPDATE_ERROR_ERASE){
out.println(F("Flash Erase Failed"));
} else if(_error == UPDATE_ERROR_READ){
out.println(F("Flash Read Failed"));
} else if(_error == UPDATE_ERROR_SPACE){
out.println(F("Not Enough Space"));
} else if(_error == UPDATE_ERROR_SIZE){
out.println(F("Bad Size Given"));
} else if(_error == UPDATE_ERROR_STREAM){
out.println(F("Stream Read Timeout"));
} else if(_error == UPDATE_ERROR_MD5){
//out.println(F("MD5 Check Failed"));
out.printf("MD5 Failed: expected:%s, calculated:%s\n", _target_md5.c_str(), _md5.toString().c_str());
} else if(_error == UPDATE_ERROR_FLASH_CONFIG){
out.printf_P(PSTR("Flash config wrong real: %d IDE: %d\n"), ESP.getFlashChipRealSize(), ESP.getFlashChipSize());
} else if(_error == UPDATE_ERROR_NEW_FLASH_CONFIG){
out.printf_P(PSTR("new Flash config wrong real: %d\n"), ESP.getFlashChipRealSize());
} else if(_error == UPDATE_ERROR_MAGIC_BYTE){
out.println(F("Magic byte is wrong, not 0xE9"));
} else if (_error == UPDATE_ERROR_BOOTSTRAP){
out.println(F("Invalid bootstrapping state, reset ESP8266 before updating"));
} else {
out.println(F("UNKNOWN"));
}
}
UpdaterClass Update;