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https://gitee.com/Lyon1998/pikapython.git
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add pika_config.c
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367
package/STM32G030Booter/pika_config.c
Normal file
367
package/STM32G030Booter/pika_config.c
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#include "pika_config.h"
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#include "main.h"
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/* support printf */
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void HARDWARE_PRINTF_Init(void) {
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LL_USART_InitTypeDef USART_InitStruct = {0};
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LL_GPIO_InitTypeDef GPIO_InitStruct = {0};
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/* Peripheral clock enable */
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LL_APB2_GRP1_EnableClock(LL_APB2_GRP1_PERIPH_USART1);
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LL_IOP_GRP1_EnableClock(LL_IOP_GRP1_PERIPH_GPIOA);
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/**USART1 GPIO Configuration
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PA9 ------> USART1_TX
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PA10 ------> USART1_RX
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*/
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GPIO_InitStruct.Pin = LL_GPIO_PIN_9;
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GPIO_InitStruct.Mode = LL_GPIO_MODE_ALTERNATE;
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GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_LOW;
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GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
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GPIO_InitStruct.Pull = LL_GPIO_PULL_NO;
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GPIO_InitStruct.Alternate = LL_GPIO_AF_1;
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LL_GPIO_Init(GPIOA, &GPIO_InitStruct);
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GPIO_InitStruct.Pin = LL_GPIO_PIN_10;
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GPIO_InitStruct.Mode = LL_GPIO_MODE_ALTERNATE;
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GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_LOW;
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GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
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GPIO_InitStruct.Pull = LL_GPIO_PULL_NO;
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GPIO_InitStruct.Alternate = LL_GPIO_AF_1;
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LL_GPIO_Init(GPIOA, &GPIO_InitStruct);
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/* USART1 interrupt Init */
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NVIC_SetPriority(USART1_IRQn, 0);
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NVIC_EnableIRQ(USART1_IRQn);
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USART_InitStruct.PrescalerValue = LL_USART_PRESCALER_DIV1;
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USART_InitStruct.BaudRate = 115200;
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USART_InitStruct.DataWidth = LL_USART_DATAWIDTH_8B;
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USART_InitStruct.StopBits = LL_USART_STOPBITS_1;
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USART_InitStruct.Parity = LL_USART_PARITY_NONE;
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USART_InitStruct.TransferDirection = LL_USART_DIRECTION_TX_RX;
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USART_InitStruct.HardwareFlowControl = LL_USART_HWCONTROL_NONE;
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USART_InitStruct.OverSampling = LL_USART_OVERSAMPLING_16;
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LL_USART_Init(USART1, &USART_InitStruct);
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LL_USART_SetTXFIFOThreshold(USART1, LL_USART_FIFOTHRESHOLD_1_8);
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LL_USART_SetRXFIFOThreshold(USART1, LL_USART_FIFOTHRESHOLD_1_8);
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LL_USART_DisableFIFO(USART1);
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LL_USART_ConfigAsyncMode(USART1);
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LL_USART_Enable(USART1);
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/* Polling USART1 initialisation */
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while ((!(LL_USART_IsActiveFlag_TEACK(USART1))) ||
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(!(LL_USART_IsActiveFlag_REACK(USART1)))) {
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}
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/* open interrupt */
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LL_USART_EnableIT_RXNE(USART1);
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LL_USART_EnableIT_PE(USART1);
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}
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#pragma import(__use_no_semihosting)
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void _sys_exit(int x) {
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x = x;
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}
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struct __FILE{
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int handle;
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};
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FILE __stdout;
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int fputc(int ch, FILE* f) {
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LL_USART_TransmitData8(USART1, ch);
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while (LL_USART_IsActiveFlag_TC(USART1) != 1)
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;
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return ch;
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}
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/* support delay_us */
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void delay_us(uint32_t udelay) {
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uint32_t startval, tickn, delays, wait;
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startval = SysTick->VAL;
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tickn = HAL_GetTick();
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delays = udelay * 64; // delay 1us when delays = 64
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if (delays > startval) {
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while (HAL_GetTick() == tickn) {
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}
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wait = 64000 + startval - delays;
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while (wait < SysTick->VAL) {
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}
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} else {
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wait = startval - delays;
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while (wait < SysTick->VAL && HAL_GetTick() == tickn) {
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}
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}
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}
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/* support pika Asm to flash */
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uint32_t globalWriteAddress = 0;
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uint32_t GetPage(uint32_t Addr) {
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return (Addr - FLASH_BASE) / FLASH_PAGE_SIZE;
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}
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int32_t __eriseSelecttedFlash(uint32_t flashStart, uint32_t flashEnd) {
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uint32_t FirstPage = 0, NbOfPages = 0;
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uint32_t PageError = 0;
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__IO uint32_t data32 = 0, MemoryProgramStatus = 0;
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static FLASH_EraseInitTypeDef EraseInitStruct = {0};
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HAL_FLASH_Unlock();
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/* Get the 1st page to erase */
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FirstPage = GetPage(flashStart);
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/* Get the number of pages to erase from 1st page */
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NbOfPages = GetPage(flashEnd) - FirstPage + 1;
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/* Fill EraseInit structure*/
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EraseInitStruct.TypeErase = FLASH_TYPEERASE_PAGES;
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EraseInitStruct.Page = FirstPage;
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EraseInitStruct.NbPages = NbOfPages;
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if (HAL_FLASHEx_Erase(&EraseInitStruct, &PageError) != HAL_OK) {
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return 1;
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}
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return 0;
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}
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uint32_t flash_write_char(uint32_t bassAddr,
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uint32_t flash_addr,
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char ch_input) {
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static uint8_t writeBuff[8] = {0};
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static uint8_t offset = 0;
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if (offset > 7) {
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offset = 0;
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uint64_t writeData64 = 0;
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for (int i = 7; i >= 0; i--) {
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char ch = writeBuff[i];
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writeData64 = writeData64 << 8;
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writeData64 += ch;
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}
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__platformDisableIrqHandle();
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if (HAL_FLASH_Program(FLASH_TYPEPROGRAM_DOUBLEWORD,
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bassAddr + flash_addr, writeData64) != HAL_OK) {
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while (1) {
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offset = 0;
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}
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}
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__platformDisableIrqHandle();
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flash_addr = flash_addr + 8;
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}
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writeBuff[offset] = ch_input;
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offset++;
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return flash_addr;
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}
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uint8_t __platformAsmIsToFlash(char* pyMultiLine) {
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if (strCountSign(pyMultiLine, '\n') > 1) {
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return 1;
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}
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return 0;
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}
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int32_t __saveStrToFlash(char* str,
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uint32_t flashStart,
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uint32_t flashEnd,
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uint32_t* writeAddress_p) {
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uint32_t size = strGetSize(str);
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for (int i = 0; i < size; i++) {
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(*writeAddress_p) =
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flash_write_char(flashStart, (*writeAddress_p), str[i]);
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}
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return 0;
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}
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char* __platformLoadPikaAsm() {
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return (char*)FLASH_PIKA_ASM_START_ADDR;
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}
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int32_t __platformSavePikaAsm(char* PikaAsm) {
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if (0 == globalWriteAddress) {
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__eriseSelecttedFlash(FLASH_PIKA_ASM_START_ADDR,
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FLASH_PIKA_ASM_END_ADDR);
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}
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return __saveStrToFlash(PikaAsm, FLASH_PIKA_ASM_START_ADDR,
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FLASH_PIKA_ASM_END_ADDR, &globalWriteAddress);
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}
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int32_t __platformSavePikaAsmEOF() {
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for (int i = 0; i < 16; i++) {
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globalWriteAddress = flash_write_char(FLASH_PIKA_ASM_START_ADDR,
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globalWriteAddress, '\0');
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}
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return 0;
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}
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/* support mem pool */
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#if use_mem_pool
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/* use mem pool */
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Pool pikaPool;
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void* __impl_pikaMalloc(size_t size) {
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void* mem = pool_malloc(&pikaPool, size);
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return mem;
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}
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void __impl_pikaFree(void* ptrm, size_t size) {
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pool_free(&pikaPool, ptrm, size);
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}
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#endif
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/* support download python script by uart1 */
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uint8_t pika_memory_lock = 0;
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uint8_t __isLocked_pikaMemory(void){
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return pika_memory_lock;
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}
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CodeHeap codeHeap;
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void STM32_Code_Init(void) {
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codeHeap.size = 0;
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codeHeap.content = pikaMalloc(codeHeap.size + 1);
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codeHeap.ena = 0;
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}
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uint8_t STM32_Code_reciveHandler(char* data, uint32_t rxSize) {
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char buff[RX_BUFF_LENGTH] = {0};
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if (0 == codeHeap.ena) {
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char* strLine = strGetLastLine(buff, data);
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if (strIsStartWith(strLine, "import ")) {
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codeHeap.reciveTime = uwTick;
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codeHeap.ena = 1;
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data = strLine;
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}
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}
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if (1 == codeHeap.ena) {
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if(!pika_memory_lock){
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pika_memory_lock = 1;
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#if use_mem_pool
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__platformDisableIrqHandle();
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pool_deinit(&pikaPool);
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__platformEnableIrqHandle();
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#endif
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}
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codeHeap.reciveTime = uwTick;
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codeHeap.oldSize = codeHeap.size;
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codeHeap.size += rxSize;
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codeHeap.content = realloc(codeHeap.content, codeHeap.size + 1);
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memcpy(codeHeap.content + codeHeap.oldSize, data, rxSize);
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codeHeap.content[codeHeap.size] = 0;
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/* reciving code */
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return 1;
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}
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/* not work */
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return 0;
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}
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void STM32_Code_flashHandler(void) {
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if (!codeHeap.ena) {
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/* recive not activate */
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return;
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}
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if (uwTick - codeHeap.reciveTime < 200) {
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/* still reciving */
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return;
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}
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/* transmite is finished */
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STM32_Code_reciveHandler("\n\n", 2);
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uint32_t FirstPage = 0, NbOfPages = 0;
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uint32_t PageError = 0;
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__IO uint32_t data32 = 0, MemoryProgramStatus = 0;
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static FLASH_EraseInitTypeDef EraseInitStruct = {0};
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printf("==============[Programer]==============\r\n");
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printf("[info]: Recived byte: %d\r\n", codeHeap.size);
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printf("[info]: Programing... \r\n");
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HAL_FLASH_Unlock();
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/* Get the 1st page to erase */
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FirstPage = GetPage(FLASH_SCRIPT_START_ADDR);
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/* Get the number of pages to erase from 1st page */
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NbOfPages = GetPage(FLASH_SCRIPT_END_ADDR) - FirstPage + 1;
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/* Fill EraseInit structure*/
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EraseInitStruct.TypeErase = FLASH_TYPEERASE_PAGES;
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EraseInitStruct.Page = FirstPage;
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EraseInitStruct.NbPages = NbOfPages;
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printf("[info]: Erasing flash... \r\n");
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if (HAL_FLASHEx_Erase(&EraseInitStruct, &PageError) != HAL_OK) {
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printf("[error]: Erase faild! \r\n");
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while (1) {
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}
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}
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printf("[ OK ]: Erase flash ok! \r\n");
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printf("[info]: Writing flash... \r\n");
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uint32_t baseAddress = FLASH_SCRIPT_START_ADDR;
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uint32_t writeAddress = 0;
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uint64_t writeData64 = 0;
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while (writeAddress < codeHeap.size + 1) {
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writeData64 = 0;
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for (int i = 7; i >= 0; i--) {
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char ch = codeHeap.content[writeAddress + i];
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writeData64 = writeData64 << 8;
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writeData64 += ch;
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}
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if (HAL_FLASH_Program(FLASH_TYPEPROGRAM_DOUBLEWORD,
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baseAddress + writeAddress,
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writeData64) == HAL_OK) {
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writeAddress = writeAddress + 8;
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} else {
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printf("[error]: Write flash faild. \r\n");
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while (1) {
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}
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}
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}
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HAL_FLASH_Lock();
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printf("[ OK ]: Write flash ok! \r\n");
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baseAddress = FLASH_SCRIPT_START_ADDR;
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MemoryProgramStatus = 0x0;
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printf("[info]: Checking flash... \r\n");
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char* codeInFlash = (char*)baseAddress;
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printf("\r\n");
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printf("----[code in flash]-----\r\n");
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for (int i = 0; i < strGetSize(codeHeap.content); i++) {
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if ('\n' == codeHeap.content[i]) {
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fputc('\r', (FILE*)!NULL);
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}
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fputc(codeHeap.content[i], (FILE*)!NULL);
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}
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printf("----[code in flash]-----\r\n");
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printf("\r\n");
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if (!strEqu(codeInFlash, codeHeap.content)) {
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printf("[error]: Check flash faild.\r\n");
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printf("\r\n");
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printf("\r\n\r\n");
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printf("---------[code in heap]----------\r\n");
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printf("\r\n");
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for (int i = 0; i < strGetSize(codeHeap.content); i++) {
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if ('\n' == codeHeap.content[i]) {
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fputc('\r', (FILE*)!NULL);
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}
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fputc(codeHeap.content[i], (FILE*)!NULL);
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}
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printf("\r\n\r\n");
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printf("---------[code in heap]----------\r\n");
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while (1) {
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}
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}
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printf("[ OK ]: Checking flash ok! \r\n");
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printf("[ OK ]: Programing ok! \r\n");
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printf("[info]: Restarting... \r\n");
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printf("==============[Programer]==============\r\n");
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printf("\r\n");
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HAL_NVIC_SystemReset();
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}
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void __platformWait(void){
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while(1){
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pika_memory_lock ++;
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}
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}
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64
package/STM32G030Booter/pika_config.h
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64
package/STM32G030Booter/pika_config.h
Normal file
@ -0,0 +1,64 @@
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#ifndef __STM32G030_PIKA_PORT__H
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#define __STM32G030_PIKA_PORT__H
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#define use_mem_pool 1
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#include <stdint.h>
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#include "pikaObj.h"
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typedef struct _CodeHeap {
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char* content;
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uint32_t size;
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uint8_t ena;
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uint32_t reciveTime;
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uint32_t oldSize;
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} CodeHeap;
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/* support std lib for stm32 */
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#define delay_ms HAL_Delay
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#undef u16
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#undef u8
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#undef u32
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#define u16 uint16_t
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#define u8 uint8_t
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#define u32 uint32_t
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#define GPIO_Pin_0 GPIO_PIN_0
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#define GPIO_Pin_1 GPIO_PIN_1
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#define GPIO_Pin_2 GPIO_PIN_2
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#define GPIO_Pin_3 GPIO_PIN_3
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#define GPIO_Pin_4 GPIO_PIN_4
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#define GPIO_Pin_5 GPIO_PIN_5
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#define GPIO_Pin_6 GPIO_PIN_6
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#define GPIO_Pin_7 GPIO_PIN_7
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#define GPIO_Pin_8 GPIO_PIN_8
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#define GPIO_Pin_9 GPIO_PIN_9
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#define GPIO_Pin_10 GPIO_PIN_10
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#define GPIO_Pin_11 GPIO_PIN_11
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#define GPIO_Pin_12 GPIO_PIN_12
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#define GPIO_Pin_13 GPIO_PIN_13
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#define GPIO_Pin_14 GPIO_PIN_14
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#define GPIO_Pin_15 GPIO_PIN_15
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/* support pinrtf */
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void HARDWARE_PRINTF_Init(void);
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/* support write asm to flash */
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#define FLASH_SCRIPT_START_ADDR \
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(FLASH_BASE + ((FLASH_PAGE_NB - 2) * FLASH_PAGE_SIZE))
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#define FLASH_SCRIPT_END_ADDR (FLASH_BASE + FLASH_SIZE - 1)
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#define FLASH_PIKA_ASM_START_ADDR FLASH_SCRIPT_START_ADDR
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#define FLASH_PIKA_ASM_END_ADDR FLASH_SCRIPT_END_ADDR
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#define RX_BUFF_LENGTH 64
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/* support download python script by uart1 */
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uint8_t STM32_Code_reciveHandler(char* data, uint32_t rxSize);
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void STM32_Code_Init(void);
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void STM32_Code_flashHandler(void);
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/* handler for usart1 */
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void __PIKA_USART1_IRQHandler(char rx_char);
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#endif
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/* delay_us */
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void delay_us(uint32_t udelay);
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