* SubGhz: the functions of saving loading KeeLog have been modified, saving KeeLog is prohibited * SubGhz: Fix displaying Nice FlorS in the Raed scene * SubGhz: Fix displaying Faac SLH in the Raed scene * SubGhz: Fix displaying iDo in the Raed scene * SubGhz: Fix displaying Star Line in the Raed scene * SubGhz: Fix displaying Nice Flo in the Raed scene, added save and load functions. (testing needed, no remote control) * SubGhz: subghz_beginadded common encoder upload signal * SubGhz: add Came encoder * SubGhz: modified pricenton encoder, fix view transmitter hide the "Send" button if there is no encoder * SubGhz: add nice flo encoder, need testing no remote control * SubGhz: add gate_tx encoder * SubGhz: add nero_sketch encoder * SubGhz: add keelog encoder * SubGhz: add long upload upload while the button is pressed while releasing the transfer is over, with a check for sticking (maximum 200 upload repetitions) * SubGhz: fix max upload * SubGhz: Fix structure subghz add encoder * SubGhz: add generating and sending a dynamic keelog key, refactoring the code * SubGhz: add notifications * SubGhz: add creating a new remote control (Pricenton, Nice Flo 12bit, Nice Flo 24bit, CAME 12bit, CAME 24bit, Gate TX, DoorHan) * SubGhz: Fix load file, fix scene start * Subghz: Fix show key * SubGhz: Fix subghz_cli * SubGhz: Fix furi-hal-subghz * Format sources * SubGhz: standard notification scheme, fix broken assert in DMA. * SubGhz: move level alignment logic to furi-hal-subghz, fix spelling, cleanup. Co-authored-by: Aleksandr Kutuzov <alleteam@gmail.com>
		
			
				
	
	
		
			239 lines
		
	
	
		
			9.2 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			239 lines
		
	
	
		
			9.2 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#include "subghz_protocol_nice_flor_s.h"
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#include <furi.h>
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#include "file-worker.h"
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/*
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 * https://phreakerclub.com/1615
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 * https://phreakerclub.com/forum/showthread.php?t=2360
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 * https://vrtp.ru/index.php?showtopic=27867
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 */
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struct SubGhzProtocolNiceFlorS {
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    SubGhzProtocolCommon common;
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    const char* rainbow_table_file_name;
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};
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SubGhzProtocolNiceFlorS* subghz_protocol_nice_flor_s_alloc() {
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    SubGhzProtocolNiceFlorS* instance = furi_alloc(sizeof(SubGhzProtocolNiceFlorS));
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    instance->common.name = "Nice FloR-S";
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    instance->common.code_min_count_bit_for_found = 52;
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    instance->common.te_short = 500;
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    instance->common.te_long = 1000;
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    instance->common.te_delta = 300;
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    instance->common.type_protocol = TYPE_PROTOCOL_DYNAMIC;
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    instance->common.to_string = (SubGhzProtocolCommonToStr)subghz_protocol_nice_flor_s_to_str;
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    return instance;
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}
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void subghz_protocol_nice_flor_s_free(SubGhzProtocolNiceFlorS* instance) {
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    furi_assert(instance);
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    free(instance);
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}
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void subghz_protocol_nice_flor_s_name_file(SubGhzProtocolNiceFlorS* instance, const char* name) {
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    instance->rainbow_table_file_name = name;
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    printf("Loading Nice FloR S rainbow table %s\r\n", name);
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}
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/** Send bit 
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 * 
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 * @param instance - SubGhzProtocolNiceFlorS instance
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 * @param bit - bit
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 */
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void subghz_protocol_nice_flor_s_send_bit(SubGhzProtocolNiceFlorS* instance, uint8_t bit) {
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    if(bit) {
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        //send bit 1
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        SUBGHZ_TX_PIN_HIGH();
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        delay_us(instance->common.te_long);
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        SUBGHZ_TX_PIN_LOW();
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        delay_us(instance->common.te_short);
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    } else {
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        //send bit 0
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        SUBGHZ_TX_PIN_HIGH();
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        delay_us(instance->common.te_short);
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        SUBGHZ_TX_PIN_LOW();
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        delay_us(instance->common.te_long);
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    }
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}
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void subghz_protocol_nice_flor_s_send_key(
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    SubGhzProtocolNiceFlorS* instance,
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    uint64_t key,
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    uint8_t bit,
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    uint8_t repeat) {
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    while(repeat--) {
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        //Send header
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        SUBGHZ_TX_PIN_LOW();
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        delay_us(instance->common.te_short * 34);
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        //Send Start Bit
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        SUBGHZ_TX_PIN_HIGH();
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        delay_us(instance->common.te_short * 3);
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        SUBGHZ_TX_PIN_LOW();
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        delay_us(instance->common.te_short * 3);
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        //Send key data
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        for(uint8_t i = bit; i > 0; i--) {
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            subghz_protocol_nice_flor_s_send_bit(instance, bit_read(key, i - 1));
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        }
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        //Send Stop Bit
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        SUBGHZ_TX_PIN_HIGH();
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        delay_us(instance->common.te_short * 3);
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        SUBGHZ_TX_PIN_LOW();
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        delay_us(instance->common.te_short * 3);
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    }
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}
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/** Read bytes from rainbow table
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 * 
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 * @param instance - SubGhzProtocolNiceFlorS* instance
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 * @param address  - address byte
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 * @return byte data
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 */
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uint8_t subghz_nice_flor_s_get_byte_in_file(SubGhzProtocolNiceFlorS* instance, uint32_t address) {
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    if(!instance->rainbow_table_file_name) 
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        return 0;
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    uint8_t buffer = 0;
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    FileWorker* file_worker = file_worker_alloc(true);
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    if(file_worker_open(file_worker, instance->rainbow_table_file_name, FSAM_READ, FSOM_OPEN_EXISTING)) {
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        file_worker_seek(file_worker, address, true);
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        file_worker_read(file_worker, &buffer, 1);
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        // bool res = file_worker_read(file_worker, &buffer, 1);
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        // furi_assert(res== true);
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    }
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    file_worker_close(file_worker);
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    file_worker_free(file_worker);
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    return buffer;
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}
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/** Decrypt protocol Nice Flor S
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 * 
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 * @param instance - SubGhzProtocolNiceFlorS* instance
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 */
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void subghz_nice_flor_s_decoder_decrypt(SubGhzProtocolNiceFlorS* instance) {
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    /*
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    * Packet format Nice Flor-s: START-P0-P1-P2-P3-P4-P5-P6-P7-STOP
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    * P0 (4-bit)    - button positional code - 1:0x1, 2:0x2, 3:0x4, 4:0x8;
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    * P1 (4-bit)    - batch repetition number, calculated by the formula:
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    * P1 = 0xF ^ P0 ^ n; where n changes from 1 to 15, then 0, and then in a circle
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    * key 1: {0xF,0xC,0xD,0xA,0xB,0x8,0x9,0x6,0x7,0x4,0x5,0x2,0x3,0x0,0x1,0xE};
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    * key 2: {0xC,0xF,0xE,0x9,0x8,0xB,0xA,0x5,0x4,0x7,0x6,0x1,0x0,0x3,0x2,0xD};
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    * key 3: {0xA,0x9,0x8,0xF,0xE,0xD,0xC,0x3,0x2,0x1,0x0,0x7,0x6,0x5,0x4,0xB};
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    * P2 (4-bit)    - part of the serial number, P2 = (K ^ S3) & 0xF;
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    * P3 (byte)     - the major part of the encrypted index
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    * P4 (byte)     - the low-order part of the encrypted index
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    * P5 (byte)     - part of the serial number, P5 = K ^ S2;
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    * P6 (byte)     - part of the serial number, P6 = K ^ S1;
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    * P7 (byte)     - part of the serial number, P7 = K ^ S0;
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    * K (byte)      - depends on P3 and P4, K = Fk(P3, P4);
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    * S3,S2,S1,S0   - serial number of the console 28 bit.
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    */
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    uint16_t p3p4 = (uint16_t)(instance->common.code_last_found >> 24);
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    instance->common.cnt = subghz_nice_flor_s_get_byte_in_file(instance,p3p4*2) << 8 | subghz_nice_flor_s_get_byte_in_file(instance,p3p4*2+1); 
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    uint8_t k =(uint8_t)(p3p4 & 0x00FF) ^subghz_nice_flor_s_get_byte_in_file(instance,(0x20000 |(instance->common.cnt &0x00ff))); 
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    uint8_t s3 = ((uint8_t)(instance->common.code_last_found >> 40) ^ k) & 0x0f;
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    uint8_t s2 = ((uint8_t)(instance->common.code_last_found >> 16) ^ k);
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    uint8_t s1 = ((uint8_t)(instance->common.code_last_found >> 8) ^ k);
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    uint8_t s0 = ((uint8_t)(instance->common.code_last_found) ^ k);
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    instance->common.serial = s3 << 24 | s2 << 16 | s1 << 8 | s0;
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    instance->common.btn = (instance->common.code_last_found >> 48) & 0x0f;
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}
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void subghz_protocol_nice_flor_s_reset(SubGhzProtocolNiceFlorS* instance) {
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    instance->common.parser_step = 0;
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}
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void subghz_protocol_nice_flor_s_parse(SubGhzProtocolNiceFlorS* instance, bool level, uint32_t duration) {
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    switch(instance->common.parser_step) {
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    case 0:
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        if((!level) 
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            && (DURATION_DIFF(duration, instance->common.te_short * 38) < instance->common.te_delta * 38)) {
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            //Found start header Nice Flor-S
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            instance->common.parser_step = 1;
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        } else {
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            instance->common.parser_step = 0;
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        }
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        break;
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    case 1:
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        if((level) 
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            && (DURATION_DIFF(duration, instance->common.te_short * 3) < instance->common.te_delta * 3)) {
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            //Found next header Nice Flor-S
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            instance->common.parser_step = 2;
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        } else {
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            instance->common.parser_step = 0;
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        }
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        break;
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    case 2:
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        if((!level) 
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            && (DURATION_DIFF(duration, instance->common.te_short * 3) < instance->common.te_delta * 3)) {
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            //Found header Nice Flor-S
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            instance->common.parser_step = 3;
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            instance->common.code_found = 0;
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            instance->common.code_count_bit = 0;
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        } else {
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            instance->common.parser_step = 0;
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        }
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        break;
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    case 3:
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        if(level) {
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            if(DURATION_DIFF(duration, instance->common.te_short * 3) < instance->common.te_delta) {
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                //Found STOP bit
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                instance->common.parser_step = 0;
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                if(instance->common.code_count_bit >=instance->common.code_min_count_bit_for_found) {
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                    instance->common.code_last_found = instance->common.code_found;
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                    instance->common.code_last_count_bit = instance->common.code_count_bit;
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                    if(instance->common.callback) instance->common.callback((SubGhzProtocolCommon*)instance, instance->common.context);
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                }
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                break;
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            } else {
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                //save interval
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                instance->common.te_last = duration;
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                instance->common.parser_step = 4;
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            }
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        }
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        break;
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    case 4:
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        if(!level) {
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            if((DURATION_DIFF(instance->common.te_last, instance->common.te_short) < instance->common.te_delta) 
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                &&(DURATION_DIFF(duration, instance->common.te_long) < instance->common.te_delta)) {
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                subghz_protocol_common_add_bit(&instance->common, 0);
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                instance->common.parser_step = 3;
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            } else if(
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                (DURATION_DIFF(instance->common.te_last, instance->common.te_long) < instance->common.te_delta) 
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                    &&(DURATION_DIFF(duration, instance->common.te_short) < instance->common.te_delta)) {
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                subghz_protocol_common_add_bit(&instance->common, 1);
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                instance->common.parser_step = 3;
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            } else
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                instance->common.parser_step = 0;
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        } else {
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            instance->common.parser_step = 0;
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        }
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        break;
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    }
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}
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void subghz_protocol_nice_flor_s_to_str(SubGhzProtocolNiceFlorS* instance, string_t output) {
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    subghz_nice_flor_s_decoder_decrypt(instance);
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    uint32_t code_found_hi = instance->common.code_last_found >> 32;
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    uint32_t code_found_lo = instance->common.code_last_found & 0x00000000ffffffff;
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    string_cat_printf(
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        output,
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        "%s, %d Bit\r\n"
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        " KEY:0x%lX%08lX\r\n"
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        " SN:%05lX\r\n"
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        " CNT:%04X BTN:%02lX\r\n",
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        instance->common.name,
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        instance->common.code_last_count_bit,
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        code_found_hi,
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        code_found_lo,
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        instance->common.serial,
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        instance->common.cnt,
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        instance->common.btn
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    );
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} |