mirror of
https://github.com/Next-Flip/Momentum-Firmware.git
synced 2026-05-09 05:49:09 -07:00
388 lines
13 KiB
C
388 lines
13 KiB
C
#include "uhf_module.h"
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#include "uhf_module_cmd.h"
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#define DELAY_MS 100
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#define WAIT_TICK 8000 // max wait time in between each byte
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volatile uint16_t tick = 0;
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void rx_callback(UartIrqEvent event, uint8_t data, void* ctx) {
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UNUSED(event);
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Buffer* buffer = ctx;
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if(buffer->closed) return; // buffer closed
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buffer_append_single(buffer, data); // append data
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if(data == FRAME_END) buffer_close(buffer); // end of frame
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tick = WAIT_TICK; // reset tick
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}
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static M100ResponseType setup_and_send_rx(M100Module* module, uint8_t* cmd, size_t cmd_length) {
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buffer_reset(module->buf);
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tick = WAIT_TICK;
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furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, cmd_length);
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while(--tick) {
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furi_delay_us(5);
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}
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buffer_close(module->buf);
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// Validation Checks
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uint8_t* data = buffer_get_data(module->buf);
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size_t length = buffer_get_size(module->buf);
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// check if size > 0
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if(!length) return M100EmptyResponse;
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// check if data is valid
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if(data[0] != FRAME_START || data[length - 1] != FRAME_END) return M100ValidationFail;
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// check if checksum is correct
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if(checksum(data + 1, length - 3) != data[length - 2]) return M100ChecksumFail;
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return M100SuccessResponse;
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}
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M100ModuleInfo* m100_module_info_alloc() {
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M100ModuleInfo* module_info = (M100ModuleInfo*)malloc(sizeof(M100ModuleInfo));
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return module_info;
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}
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void m100_module_info_free(M100ModuleInfo* module_info) {
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free(module_info->hw_version);
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free(module_info->sw_version);
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free(module_info->manufacturer);
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free(module_info);
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}
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M100Module* m100_module_alloc() {
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M100Module* module = (M100Module*)malloc(sizeof(M100Module));
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module->info = m100_module_info_alloc();
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module->buf = buffer_alloc(MAX_BUFFER_SIZE);
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module->baudrate = DEFAULT_BAUDRATE;
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module->transmitting_power = DEFAULT_TRANSMITTING_POWER;
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module->region = DEFAULT_WORKING_REGION;
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furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, module->buf);
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return module;
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}
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void m100_module_free(M100Module* module) {
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m100_module_info_free(module->info);
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buffer_free(module->buf);
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free(module);
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}
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uint8_t checksum(const uint8_t* data, size_t length) {
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// CheckSum8 Modulo 256
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// Sum of Bytes % 256
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uint64_t sum_val = 0x00;
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for(size_t i = 0; i < length; i++) {
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sum_val += data[i];
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}
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return (uint8_t)(sum_val % 0x100);
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}
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uint16_t crc16_genibus(const uint8_t* data, size_t length) {
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uint16_t crc = 0xFFFF; // Initial value
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uint16_t polynomial = 0x1021; // CRC-16/GENIBUS polynomial
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for(size_t i = 0; i < length; i++) {
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crc ^= (data[i] << 8); // Move byte into MSB of 16bit CRC
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for(int j = 0; j < 8; j++) {
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if(crc & 0x8000) {
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crc = (crc << 1) ^ polynomial;
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} else {
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crc <<= 1;
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}
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}
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}
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return crc ^ 0xFFFF; // Post-inversion
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}
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char* _m100_info_helper(M100Module* module, char** info) {
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if(!buffer_get_size(module->buf)) return NULL;
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uint8_t* data = buffer_get_data(module->buf);
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uint16_t payload_len = data[3];
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payload_len = (payload_len << 8) + data[4];
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FuriString* temp_str = furi_string_alloc();
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for(int i = 0; i < payload_len; i++) {
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furi_string_cat_printf(temp_str, "%c", data[6 + i]);
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}
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if(*info == NULL) {
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*info = (char*)malloc(sizeof(char) * payload_len);
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} else {
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for(size_t i = 0; i < strlen(*info); i++) {
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(*info)[i] = 0;
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}
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}
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memcpy(*info, furi_string_get_cstr(temp_str), payload_len);
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furi_string_free(temp_str);
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return *info;
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}
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char* m100_get_hardware_version(M100Module* module) {
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setup_and_send_rx(module, (uint8_t*)&CMD_HW_VERSION.cmd[0], CMD_HW_VERSION.length);
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return _m100_info_helper(module, &module->info->hw_version);
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}
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char* m100_get_software_version(M100Module* module) {
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setup_and_send_rx(module, (uint8_t*)&CMD_SW_VERSION.cmd[0], CMD_SW_VERSION.length);
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return _m100_info_helper(module, &module->info->sw_version);
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}
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char* m100_get_manufacturers(M100Module* module) {
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setup_and_send_rx(module, (uint8_t*)&CMD_MANUFACTURERS.cmd[0], CMD_MANUFACTURERS.length);
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return _m100_info_helper(module, &module->info->manufacturer);
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}
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M100ResponseType m100_single_poll(M100Module* module, UHFTag* uhf_tag) {
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M100ResponseType rp_type =
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setup_and_send_rx(module, (uint8_t*)&CMD_SINGLE_POLLING.cmd[0], CMD_SINGLE_POLLING.length);
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if(rp_type != M100SuccessResponse) return rp_type;
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uint8_t* data = buffer_get_data(module->buf);
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size_t length = buffer_get_size(module->buf);
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uint16_t pc = data[6];
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uint16_t crc = 0;
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// mask out epc length from protocol control
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size_t epc_len = pc;
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epc_len >>= 3;
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epc_len *= 2;
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// get protocol control
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pc <<= 8;
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pc += data[7];
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// get cyclic redundency check
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crc = data[8 + epc_len];
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crc <<= 8;
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crc += data[8 + epc_len + 1];
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// validate checksum
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if(checksum(data + 1, length - 3) != data[length - 2]) return M100ValidationFail;
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// validate crc
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if(crc16_genibus(data + 6, epc_len + 2) != crc) return M100ValidationFail;
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uhf_tag_set_epc_pc(uhf_tag, pc);
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uhf_tag_set_epc_crc(uhf_tag, crc);
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uhf_tag_set_epc(uhf_tag, data + 8, epc_len);
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return M100SuccessResponse;
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}
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M100ResponseType m100_set_select(M100Module* module, UHFTag* uhf_tag) {
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// Set select
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uint8_t cmd[MAX_BUFFER_SIZE];
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size_t cmd_length = CMD_SET_SELECT_PARAMETER.length;
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size_t mask_length_bytes = uhf_tag->epc->size;
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size_t mask_length_bits = mask_length_bytes * 8;
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// payload len == sel param len + ptr len + mask len + epc len
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size_t payload_len = 7 + mask_length_bytes;
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memcpy(cmd, CMD_SET_SELECT_PARAMETER.cmd, cmd_length);
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// set new length
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cmd_length = 12 + mask_length_bytes + 2;
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// set payload length
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cmd[3] = (payload_len >> 8) & 0xFF;
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cmd[4] = payload_len & 0xFF;
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// set select param
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cmd[5] = 0x01; // 0x00=rfu, 0x01=epc, 0x10=tid, 0x11=user
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// set ptr
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cmd[9] = 0x20; // epc data begins after 0x20
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// set mask length
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cmd[10] = mask_length_bits;
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// truncate
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cmd[11] = false;
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// set mask
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memcpy((void*)&cmd[12], uhf_tag->epc->data, mask_length_bytes);
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// set checksum
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cmd[cmd_length - 2] = checksum(cmd + 1, 11 + mask_length_bytes);
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// end frame
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cmd[cmd_length - 1] = FRAME_END;
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setup_and_send_rx(module, cmd, 12 + mask_length_bytes + 3);
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uint8_t* data = buffer_get_data(module->buf);
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if(checksum(data + 1, 5) != data[6]) return M100ValidationFail; // error in rx
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if(data[5] != 0x00) return M100ValidationFail; // error if not 0
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return M100SuccessResponse;
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}
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UHFTag* m100_get_select_param(M100Module* module) {
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buffer_reset(module->buf);
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furi_hal_uart_set_irq_cb(FuriHalUartIdLPUART1, rx_callback, module->buf);
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furi_hal_uart_tx(
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FuriHalUartIdUSART1,
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(uint8_t*)&CMD_GET_SELECT_PARAMETER.cmd,
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CMD_GET_SELECT_PARAMETER.length);
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furi_delay_ms(DELAY_MS);
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// UHFTag* uhf_tag = uhf_tag_alloc();
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// uint8_t* data = buffer_get_data(module->buf);
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// size_t mask_length =
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// uhf_tag_set_epc(uhf_tag, data + 12, )
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// TODO : implement
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return NULL;
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}
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M100ResponseType m100_read_label_data_storage(
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M100Module* module,
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UHFTag* uhf_tag,
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BankType bank,
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uint32_t access_pwd,
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uint16_t word_count) {
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/*
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Will probably remove UHFTag as param and get it from get selected tag
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*/
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if(bank == EPCBank) return M100SuccessResponse;
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uint8_t cmd[MAX_BUFFER_SIZE];
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size_t cmd_length = CMD_READ_LABEL_DATA_STORAGE_AREA.length;
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memcpy(cmd, CMD_READ_LABEL_DATA_STORAGE_AREA.cmd, cmd_length);
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// set access password
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cmd[5] = (access_pwd >> 24) & 0xFF;
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cmd[6] = (access_pwd >> 16) & 0xFF;
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cmd[7] = (access_pwd >> 8) & 0xFF;
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cmd[8] = access_pwd & 0xFF;
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// set mem bank
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cmd[9] = (uint8_t)bank;
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// set word counter
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cmd[12] = (word_count >> 8) & 0xFF;
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cmd[13] = word_count & 0xFF;
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// calc checksum
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cmd[cmd_length - 2] = checksum(cmd + 1, cmd_length - 3);
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M100ResponseType rp_type = setup_and_send_rx(module, cmd, cmd_length);
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if(rp_type != M100SuccessResponse) return rp_type;
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uint8_t* data = buffer_get_data(module->buf);
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uint8_t rtn_command = data[2];
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uint16_t payload_len = data[3];
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payload_len = (payload_len << 8) + data[4];
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if(rtn_command == 0xFF) {
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if(payload_len == 0x01) return M100NoTagResponse;
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return M100MemoryOverrun;
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}
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size_t ptr_offset = 5 /*<-ptr offset*/ + uhf_tag_get_epc_size(uhf_tag) + 3 /*<-pc + ul*/;
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size_t bank_data_length = payload_len - (ptr_offset - 5 /*dont include the offset*/);
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if(bank == TIDBank) {
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uhf_tag_set_tid(uhf_tag, data + ptr_offset, bank_data_length);
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} else if(bank == UserBank) {
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uhf_tag_set_user(uhf_tag, data + ptr_offset, bank_data_length);
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}
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return M100SuccessResponse;
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}
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M100ResponseType m100_write_label_data_storage(
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M100Module* module,
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UHFTag* saved_tag,
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UHFTag* selected_tag,
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BankType bank,
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uint16_t source_address,
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uint32_t access_pwd) {
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uint8_t cmd[MAX_BUFFER_SIZE];
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size_t cmd_length = CMD_WRITE_LABEL_DATA_STORE.length;
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memcpy(cmd, CMD_WRITE_LABEL_DATA_STORE.cmd, cmd_length);
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uint16_t payload_len = 9;
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uint16_t data_length = 0;
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if(bank == ReservedBank) {
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// access pwd len + kill pwd len
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payload_len += 4;
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data_length = 4;
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} else if(bank == EPCBank) {
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// epc len + pc len
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payload_len += 4 + uhf_tag_get_epc_size(saved_tag);
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data_length = 4 + uhf_tag_get_epc_size(saved_tag);
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// set data
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uint8_t tmp_arr[4];
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tmp_arr[0] = (uint8_t)((uhf_tag_get_epc_crc(selected_tag) >> 8) & 0xFF);
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tmp_arr[1] = (uint8_t)(uhf_tag_get_epc_crc(selected_tag) & 0xFF);
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tmp_arr[2] = (uint8_t)((uhf_tag_get_epc_pc(saved_tag) >> 8) & 0xFF);
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tmp_arr[3] = (uint8_t)(uhf_tag_get_epc_pc(saved_tag) & 0xFF);
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memcpy(cmd + 14, tmp_arr, 4);
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memcpy(cmd + 18, uhf_tag_get_epc(saved_tag), uhf_tag_get_epc_size(saved_tag));
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} else if(bank == UserBank) {
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payload_len += uhf_tag_get_user_size(saved_tag);
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data_length = uhf_tag_get_user_size(saved_tag);
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// set data
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memcpy(cmd + 14, uhf_tag_get_user(saved_tag), uhf_tag_get_user_size(saved_tag));
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}
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// set payload length
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cmd[3] = (payload_len >> 8) & 0xFF;
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cmd[4] = payload_len & 0xFF;
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// set access password
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cmd[5] = (access_pwd >> 24) & 0xFF;
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cmd[6] = (access_pwd >> 16) & 0xFF;
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cmd[7] = (access_pwd >> 8) & 0xFF;
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cmd[8] = access_pwd & 0xFF;
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// set membank
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cmd[9] = (uint8_t)bank;
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// set source address
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cmd[10] = (source_address >> 8) & 0xFF;
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cmd[11] = source_address & 0xFF;
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// set data length
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size_t data_length_words = data_length / 2;
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cmd[12] = (data_length_words >> 8) & 0xFF;
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cmd[13] = data_length_words & 0xFF;
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// update cmd len
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cmd_length = 7 + payload_len;
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// calculate checksum
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cmd[cmd_length - 2] = checksum(cmd + 1, cmd_length - 3);
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cmd[cmd_length - 1] = FRAME_END;
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// send cmd
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// furi_hal_uart_set_irq_cb(FuriHalUartIdUSART1, rx_callback, module->buf);
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// furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, cmd_length);
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// unsigned int delay = DELAY_MS / 2;
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// unsigned int timeout = 15;
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// while(!buffer_get_size(module->buf)) {
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// furi_delay_ms(delay);
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// if(!timeout--) break;
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// }
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setup_and_send_rx(module, cmd, cmd_length);
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uint8_t* buff_data = buffer_get_data(module->buf);
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size_t buff_length = buffer_get_size(module->buf);
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if(buff_data[2] == 0xFF && buff_length == 8)
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return M100NoTagResponse;
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else if(buff_data[2] == 0xFF)
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return M100ValidationFail;
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return M100SuccessResponse;
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}
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void m100_set_baudrate(M100Module* module, uint32_t baudrate) {
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size_t length = CMD_SET_COMMUNICATION_BAUD_RATE.length;
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uint8_t cmd[length];
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memcpy(cmd, CMD_SET_COMMUNICATION_BAUD_RATE.cmd, length);
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uint16_t br_mod = baudrate / 100; // module format
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cmd[6] = 0xFF & br_mod; // pow LSB
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cmd[5] = 0xFF & (br_mod >> 8); // pow MSB
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cmd[length - 2] = checksum(cmd + 1, length - 3);
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furi_hal_uart_tx(FuriHalUartIdUSART1, cmd, length);
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furi_hal_uart_set_br(FuriHalUartIdUSART1, baudrate);
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module->baudrate = baudrate;
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}
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bool m100_set_working_region(M100Module* module, WorkingRegion region) {
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size_t length = CMD_SET_WORK_AREA.length;
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uint8_t cmd[length];
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memcpy(cmd, CMD_SET_WORK_AREA.cmd, length);
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cmd[5] = (uint8_t)region;
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cmd[length - 2] = checksum(cmd + 1, length - 3);
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setup_and_send_rx(module, cmd, length);
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module->region = region;
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return true;
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}
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bool m100_set_transmitting_power(M100Module* module, uint16_t power) {
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size_t length = CMD_SET_TRANSMITTING_POWER.length;
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uint8_t cmd[length];
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memcpy(cmd, CMD_SET_TRANSMITTING_POWER.cmd, length);
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cmd[5] = (power >> 8) & 0xFF;
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cmd[6] = power & 0xFF;
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cmd[length - 2] = checksum(cmd + 1, length - 3);
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setup_and_send_rx(module, cmd, length);
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module->transmitting_power = power;
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return true;
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}
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bool m100_set_freq_hopping(M100Module* module, bool hopping) {
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UNUSED(module);
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UNUSED(hopping);
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return true;
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}
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bool m100_set_power(M100Module* module, uint8_t* power) {
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UNUSED(module);
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UNUSED(power);
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return true;
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}
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uint32_t m100_get_baudrate(M100Module* module) {
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return module->baudrate;
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} |