* SubGhz: scene based application * SubGhz: encoder/decoder separation, DMA streaming, update app and cli. * SubGhz: 2 stage async tx complete, minor cleanup * SubGhz: 2 stage async tx complete, FIX state pin end transmit * SubGhz: Pricenton, receive TE signal * SubGhz: Pricenton, add save data, add load data * SubGhz: Add Read scene, Fix pricenton save, load funtion * SubGhz: Add Read, Receiver, SaveName scene * SubGhz: Read and Save (pricenton) * SubGhz: add Load scence * SubGhz: Fix select file scene, add load scene, add transmitter view, add send tx pricenton * SubGhz: Fix pricenton encoder, fix transmitter send * SubGhz: modified Pricenton Encoder (added guard time at the beginning), modified CC1101 config, code refactoring * SubGhz: Fix pricenton encoder defalut TE * Archive: Fix path and name SubGhz * Archive: Fix name app SubGhz * GubGhz: Came: add Save, Load key * GubGhz: GateTX: add Save, Load key * GubGhz: NeroSketch: add Save, Load key * Github: better linters triggers * SubGhz: adding fast loading keys Archive -> Run in app * GubGhz: KeeLog: add Save, Load key, key generation from the serial number of the meter and the button * SubGhz: format sources and fix compilation * FuriHal: add subghz configuration description for AGC section * SubGhz: save only protocols that can be saved. Cleanup. * Github: lint on pull requests Co-authored-by: Aleksandr Kutuzov <alleteam@gmail.com>
		
			
				
	
	
		
			453 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			453 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#include "subghz_protocol_keeloq.h"
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#include "subghz_protocol_keeloq_common.h"
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#include "../subghz_keystore.h"
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#include <furi.h>
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#include <m-string.h>
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struct SubGhzProtocolKeeloq {
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    SubGhzProtocolCommon common;
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    SubGhzKeystore* keystore;
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    const char* manufacture_name;
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};
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SubGhzProtocolKeeloq* subghz_protocol_keeloq_alloc(SubGhzKeystore* keystore) {
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    SubGhzProtocolKeeloq* instance = furi_alloc(sizeof(SubGhzProtocolKeeloq));
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    instance->keystore = keystore;
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    instance->common.name = "KeeLoq";
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    instance->common.code_min_count_bit_for_found = 64;
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    instance->common.te_shot = 400;
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    instance->common.te_long = 800;
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    instance->common.te_delta = 140;
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    instance->common.to_string = (SubGhzProtocolCommonToStr)subghz_protocol_keeloq_to_str;
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    instance->common.to_save_string =
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        (SubGhzProtocolCommonGetStrSave)subghz_protocol_keeloq_to_save_str;
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    instance->common.to_load_protocol =
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        (SubGhzProtocolCommonLoad)subghz_protocol_keeloq_to_load_protocol;
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    return instance;
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}
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void subghz_protocol_keeloq_free(SubGhzProtocolKeeloq* instance) {
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    furi_assert(instance);
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    free(instance);
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}
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/** Checking the accepted code against the database manafacture key
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 * 
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 * @param instance SubGhzProtocolKeeloq instance
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 * @param fix fix part of the parcel
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 * @param hop hop encrypted part of the parcel
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 * @return true on successful search
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 */
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uint8_t subghz_protocol_keeloq_check_remote_controller_selector(
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    SubGhzProtocolKeeloq* instance,
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    uint32_t fix,
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    uint32_t hop) {
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    uint16_t end_serial = (uint16_t)(fix & 0x3FF);
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    uint8_t btn = (uint8_t)(fix >> 28);
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    uint32_t decrypt = 0;
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    uint64_t man_normal_learning;
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    for
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        M_EACH(manufacture_code, *subghz_keystore_get_data(instance->keystore), SubGhzKeyArray_t) {
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            switch(manufacture_code->type) {
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            case KEELOQ_LEARNING_SIMPLE:
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                //Simple Learning
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                decrypt = subghz_protocol_keeloq_common_decrypt(hop, manufacture_code->key);
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                if((decrypt >> 28 == btn) &&
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                   ((((uint16_t)(decrypt >> 16)) & 0x3FF) == end_serial)) {
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                    instance->manufacture_name = string_get_cstr(manufacture_code->name);
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                    instance->common.cnt = decrypt & 0x0000FFFF;
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                    return 1;
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                }
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                break;
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            case KEELOQ_LEARNING_NORMAL:
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                // Normal_Learning
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                // https://phreakerclub.com/forum/showpost.php?p=43557&postcount=37
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                man_normal_learning =
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                    subghz_protocol_keeloq_common_normal_learning(fix, manufacture_code->key);
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                decrypt = subghz_protocol_keeloq_common_decrypt(hop, man_normal_learning);
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                if((decrypt >> 28 == btn) &&
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                   ((((uint16_t)(decrypt >> 16)) & 0x3FF) == end_serial)) {
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                    instance->manufacture_name = string_get_cstr(manufacture_code->name);
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                    instance->common.cnt = decrypt & 0x0000FFFF;
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                    return 1;
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                }
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                break;
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            case KEELOQ_LEARNING_UNKNOWN:
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                // Simple Learning
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                decrypt = subghz_protocol_keeloq_common_decrypt(hop, manufacture_code->key);
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                if((decrypt >> 28 == btn) &&
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                   ((((uint16_t)(decrypt >> 16)) & 0x3FF) == end_serial)) {
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                    instance->manufacture_name = string_get_cstr(manufacture_code->name);
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                    instance->common.cnt = decrypt & 0x0000FFFF;
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                    return 1;
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                }
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                // Check for mirrored man
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                uint64_t man_rev = 0;
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                uint64_t man_rev_byte = 0;
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                for(uint8_t i = 0; i < 64; i += 8) {
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                    man_rev_byte = (uint8_t)(manufacture_code->key >> i);
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                    man_rev = man_rev | man_rev_byte << (56 - i);
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                }
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                decrypt = subghz_protocol_keeloq_common_decrypt(hop, man_rev);
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                if((decrypt >> 28 == btn) &&
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                   ((((uint16_t)(decrypt >> 16)) & 0x3FF) == end_serial)) {
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                    instance->manufacture_name = string_get_cstr(manufacture_code->name);
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                    instance->common.cnt = decrypt & 0x0000FFFF;
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                    return 1;
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                }
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                //###########################
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                // Normal_Learning
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                // https://phreakerclub.com/forum/showpost.php?p=43557&postcount=37
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                man_normal_learning =
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                    subghz_protocol_keeloq_common_normal_learning(fix, manufacture_code->key);
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                decrypt = subghz_protocol_keeloq_common_decrypt(hop, man_normal_learning);
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                if((decrypt >> 28 == btn) &&
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                   ((((uint16_t)(decrypt >> 16)) & 0x3FF) == end_serial)) {
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                    instance->manufacture_name = string_get_cstr(manufacture_code->name);
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                    instance->common.cnt = decrypt & 0x0000FFFF;
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                    return 1;
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                }
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                // Check for mirrored man
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                man_rev = 0;
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                man_rev_byte = 0;
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                for(uint8_t i = 0; i < 64; i += 8) {
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                    man_rev_byte = (uint8_t)(manufacture_code->key >> i);
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                    man_rev = man_rev | man_rev_byte << (56 - i);
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                }
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                man_normal_learning = subghz_protocol_keeloq_common_normal_learning(fix, man_rev);
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                decrypt = subghz_protocol_keeloq_common_decrypt(hop, man_normal_learning);
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                if((decrypt >> 28 == btn) &&
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                   ((((uint16_t)(decrypt >> 16)) & 0x3FF) == end_serial)) {
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                    instance->manufacture_name = string_get_cstr(manufacture_code->name);
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                    instance->common.cnt = decrypt & 0x0000FFFF;
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                    return 1;
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                }
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                break;
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            }
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        }
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    instance->manufacture_name = "Unknown";
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    instance->common.cnt = 0;
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    return 0;
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}
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/** Analysis of received data
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 * 
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 * @param instance SubGhzProtocolKeeloq instance
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 */
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void subghz_protocol_keeloq_check_remote_controller(SubGhzProtocolKeeloq* instance) {
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    uint64_t key = subghz_protocol_common_reverse_key(
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        instance->common.code_last_found, instance->common.code_last_count_bit);
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    uint32_t key_fix = key >> 32;
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    uint32_t key_hop = key & 0x00000000ffffffff;
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    // Check key AN-Motors
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    if((key_hop >> 24) == ((key_hop >> 16) & 0x00ff) &&
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       (key_fix >> 28) == ((key_hop >> 12) & 0x0f) && (key_hop & 0xFFF) == 0x404) {
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        instance->manufacture_name = "AN-Motors";
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        instance->common.cnt = key_hop >> 16;
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    } else if((key_hop & 0xFFF) == (0x000) && (key_fix >> 28) == ((key_hop >> 12) & 0x0f)) {
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        instance->manufacture_name = "HCS101";
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        instance->common.cnt = key_hop >> 16;
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    } else {
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        subghz_protocol_keeloq_check_remote_controller_selector(instance, key_fix, key_hop);
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    }
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    instance->common.serial = key_fix & 0x0FFFFFFF;
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    instance->common.btn = key_fix >> 28;
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}
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/** Send bit 
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 * 
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 * @param instance - SubGhzProtocolKeeloq instance
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 * @param bit - bit
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 */
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void subghz_protocol_keeloq_send_bit(SubGhzProtocolKeeloq* instance, uint8_t bit) {
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    if(bit) {
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        // send bit 1
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        SUBGHZ_TX_PIN_HIGTH();
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        delay_us(instance->common.te_shot);
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        SUBGHZ_TX_PIN_LOW();
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        delay_us(instance->common.te_long);
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    } else {
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        // send bit 0
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        SUBGHZ_TX_PIN_HIGTH();
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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_shot);
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    }
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}
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void subghz_protocol_keeloq_send_key(
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    SubGhzProtocolKeeloq* 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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        for(uint8_t i = 11; i > 0; i--) {
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            SUBGHZ_TX_PIN_HIGTH();
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            delay_us(instance->common.te_shot);
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            SUBGHZ_TX_PIN_LOW();
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            delay_us(instance->common.te_shot);
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        }
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        delay_us(instance->common.te_shot * 9); //+1 up Send header
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        for(uint8_t i = bit; i > 0; i--) {
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            subghz_protocol_keeloq_send_bit(instance, bit_read(key, i - 1));
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        }
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        // +send 2 status bit
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        subghz_protocol_keeloq_send_bit(instance, 0);
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        subghz_protocol_keeloq_send_bit(instance, 0);
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        // send end
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        subghz_protocol_keeloq_send_bit(instance, 0);
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        delay_us(instance->common.te_shot * 2); //+2 interval END SEND
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    }
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}
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void subghz_protocol_keeloq_reset(SubGhzProtocolKeeloq* instance) {
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    instance->common.parser_step = 0;
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}
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void subghz_protocol_keeloq_parse(SubGhzProtocolKeeloq* 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_shot) < instance->common.te_delta) {
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            instance->common.parser_step = 1;
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            instance->common.header_count++;
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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_shot) < instance->common.te_delta)) {
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            instance->common.parser_step = 0;
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            break;
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        }
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        if((instance->common.header_count > 2) &&
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           (DURATION_DIFF(duration, instance->common.te_shot * 10) <
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            instance->common.te_delta * 10)) {
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            // Found header
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            instance->common.parser_step = 2;
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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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            instance->common.header_count = 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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            instance->common.te_last = duration;
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            instance->common.parser_step = 3;
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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 >= (instance->common.te_shot * 2 + instance->common.te_delta)) {
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                // Found end TX
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                instance->common.parser_step = 0;
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                if(instance->common.code_count_bit >=
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                   instance->common.code_min_count_bit_for_found) {
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                    if(instance->common.code_last_found != instance->common.code_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)
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                            instance->common.callback(
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                                (SubGhzProtocolCommon*)instance, instance->common.context);
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                    }
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                    instance->common.code_found = 0;
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                    instance->common.code_count_bit = 0;
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                    instance->common.header_count = 0;
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                }
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                break;
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            } else if(
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                (DURATION_DIFF(instance->common.te_last, instance->common.te_shot) <
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                 instance->common.te_delta) &&
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                (DURATION_DIFF(duration, instance->common.te_long) < instance->common.te_delta)) {
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                if(instance->common.code_count_bit <
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                   instance->common.code_min_count_bit_for_found) {
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                    subghz_protocol_common_add_bit(&instance->common, 1);
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                }
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                instance->common.parser_step = 2;
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            } else if(
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                (DURATION_DIFF(instance->common.te_last, instance->common.te_long) <
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                 instance->common.te_delta) &&
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                (DURATION_DIFF(duration, instance->common.te_shot) < instance->common.te_delta)) {
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                if(instance->common.code_count_bit <
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                   instance->common.code_min_count_bit_for_found) {
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                    subghz_protocol_common_add_bit(&instance->common, 0);
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                }
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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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                instance->common.header_count = 0;
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            }
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        } else {
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            instance->common.parser_step = 0;
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            instance->common.header_count = 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_keeloq_to_str(SubGhzProtocolKeeloq* instance, string_t output) {
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    subghz_protocol_keeloq_check_remote_controller(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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    uint64_t code_found_reverse = subghz_protocol_common_reverse_key(
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        instance->common.code_last_found, instance->common.code_last_count_bit);
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    uint32_t code_found_reverse_hi = code_found_reverse >> 32;
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    uint32_t code_found_reverse_lo = code_found_reverse & 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%lX\r\n"
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        "FIX:%08lX MF:%s \r\n"
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        "HOP:%08lX \r\n"
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        "SN:%07lX CNT:%04X B:%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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        code_found_reverse_hi,
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        instance->manufacture_name,
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        code_found_reverse_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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uint64_t subghz_protocol_keeloq_gen_key(SubGhzProtocolKeeloq* instance) {
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    uint32_t fix = instance->common.btn << 28 | instance->common.serial;
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    uint32_t decrypt = instance->common.btn << 28 | (instance->common.serial & 0x3FF) << 16 |
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                       instance->common.cnt;
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    uint32_t hop = 0;
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    uint64_t man_normal_learning = 0;
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    int res = 0;
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    for
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        M_EACH(manufacture_code, *subghz_keystore_get_data(instance->keystore), SubGhzKeyArray_t) {
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            res = strcmp(string_get_cstr(manufacture_code->name), instance->manufacture_name);
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            if(res == 0) {
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                switch(manufacture_code->type) {
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                case KEELOQ_LEARNING_SIMPLE:
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                    //Simple Learning
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                    hop = subghz_protocol_keeloq_common_encrypt(decrypt, manufacture_code->key);
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                    break;
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                case KEELOQ_LEARNING_NORMAL:
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                    //Simple Learning
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                    man_normal_learning =
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                        subghz_protocol_keeloq_common_normal_learning(fix, manufacture_code->key);
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                    hop = subghz_protocol_keeloq_common_encrypt(decrypt, man_normal_learning);
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                    break;
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                case KEELOQ_LEARNING_UNKNOWN:
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                    hop = 0; //todo
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                    break;
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                }
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                break;
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            }
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        }
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    uint64_t yek = (uint64_t)fix << 32 | hop;
 | 
						|
    return subghz_protocol_common_reverse_key(yek, instance->common.code_last_count_bit);
 | 
						|
}
 | 
						|
 | 
						|
void subghz_protocol_keeloq_to_save_str(SubGhzProtocolKeeloq* instance, string_t output) {
 | 
						|
    string_printf(
 | 
						|
        output,
 | 
						|
        "Protocol: %s\n"
 | 
						|
        "Bit: %d\n"
 | 
						|
        "Manufacture_name: %s\n"
 | 
						|
        "Serial: %08lX\n"
 | 
						|
        "Cnt: %04lX\n"
 | 
						|
        "Btn: %01lX\n",
 | 
						|
        instance->common.name,
 | 
						|
        instance->common.code_last_count_bit,
 | 
						|
        instance->manufacture_name,
 | 
						|
        instance->common.serial,
 | 
						|
        instance->common.cnt,
 | 
						|
        instance->common.btn);
 | 
						|
}
 | 
						|
 | 
						|
bool subghz_protocol_keeloq_to_load_protocol(
 | 
						|
    FileWorker* file_worker,
 | 
						|
    SubGhzProtocolKeeloq* instance) {
 | 
						|
    bool loaded = false;
 | 
						|
    string_t temp_str;
 | 
						|
    string_init(temp_str);
 | 
						|
    string_t temp_name_man;
 | 
						|
    string_init(temp_name_man);
 | 
						|
    int res = 0;
 | 
						|
    int data = 0;
 | 
						|
 | 
						|
    do {
 | 
						|
        // Read and parse bit data from 2nd line
 | 
						|
        if(!file_worker_read_until(file_worker, temp_str, '\n')) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        res = sscanf(string_get_cstr(temp_str), "Bit: %d\n", &data);
 | 
						|
        if(res != 1) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        instance->common.code_last_count_bit = (uint8_t)data;
 | 
						|
 | 
						|
        // Read and parse name protocol from 3st line
 | 
						|
        if(!file_worker_read_until(file_worker, temp_name_man, '\n')) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        // strlen("Manufacture_name: ") = 18
 | 
						|
        string_right(temp_name_man, 18);
 | 
						|
        instance->manufacture_name = string_get_cstr(temp_name_man);
 | 
						|
 | 
						|
        // Read and parse key data from 4nd line
 | 
						|
        if(!file_worker_read_until(file_worker, temp_str, '\n')) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        uint32_t temp_param = 0;
 | 
						|
        res = sscanf(string_get_cstr(temp_str), "Serial: %08lX\n", &temp_param);
 | 
						|
        if(res != 1) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        instance->common.serial = temp_param;
 | 
						|
 | 
						|
        // Read and parse key data from 5nd line
 | 
						|
        if(!file_worker_read_until(file_worker, temp_str, '\n')) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        res = sscanf(string_get_cstr(temp_str), "Cnt: %04lX\n", &temp_param);
 | 
						|
        if(res != 1) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        instance->common.cnt = (uint16_t)temp_param;
 | 
						|
 | 
						|
        // Read and parse key data from 5nd line
 | 
						|
        if(!file_worker_read_until(file_worker, temp_str, '\n')) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        res = sscanf(string_get_cstr(temp_str), "Btn: %01lX\n", &temp_param);
 | 
						|
        if(res != 1) {
 | 
						|
            break;
 | 
						|
        }
 | 
						|
        instance->common.btn = (uint8_t)temp_param;
 | 
						|
 | 
						|
        instance->common.code_last_found = subghz_protocol_keeloq_gen_key(instance);
 | 
						|
 | 
						|
        loaded = true;
 | 
						|
    } while(0);
 | 
						|
    string_clear(temp_name_man);
 | 
						|
    string_clear(temp_str);
 | 
						|
 | 
						|
    return loaded;
 | 
						|
}
 |