mirror of
https://github.com/Next-Flip/Momentum-Firmware.git
synced 2025-09-29 21:12:48 +02:00
489 lines
17 KiB
C
489 lines
17 KiB
C
#include "hollarm.h"
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#include "../blocks/const.h"
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#include "../blocks/decoder.h"
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#include "../blocks/encoder.h"
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#include "../blocks/generic.h"
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#include "../blocks/math.h"
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#include "../blocks/custom_btn_i.h"
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#define TAG "SubGhzProtocolHollarm"
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static const SubGhzBlockConst subghz_protocol_hollarm_const = {
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.te_short = 200,
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.te_long = 1000,
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.te_delta = 200,
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.min_count_bit_for_found = 42,
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};
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struct SubGhzProtocolDecoderHollarm {
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SubGhzProtocolDecoderBase base;
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SubGhzBlockDecoder decoder;
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SubGhzBlockGeneric generic;
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};
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struct SubGhzProtocolEncoderHollarm {
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SubGhzProtocolEncoderBase base;
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SubGhzProtocolBlockEncoder encoder;
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SubGhzBlockGeneric generic;
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};
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typedef enum {
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HollarmDecoderStepReset = 0,
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HollarmDecoderStepSaveDuration,
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HollarmDecoderStepCheckDuration,
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} HollarmDecoderStep;
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const SubGhzProtocolDecoder subghz_protocol_hollarm_decoder = {
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.alloc = subghz_protocol_decoder_hollarm_alloc,
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.free = subghz_protocol_decoder_hollarm_free,
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.feed = subghz_protocol_decoder_hollarm_feed,
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.reset = subghz_protocol_decoder_hollarm_reset,
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.get_hash_data = NULL,
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.get_hash_data_long = subghz_protocol_decoder_hollarm_get_hash_data,
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.serialize = subghz_protocol_decoder_hollarm_serialize,
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.deserialize = subghz_protocol_decoder_hollarm_deserialize,
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.get_string = subghz_protocol_decoder_hollarm_get_string,
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.get_string_brief = NULL,
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};
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const SubGhzProtocolEncoder subghz_protocol_hollarm_encoder = {
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.alloc = subghz_protocol_encoder_hollarm_alloc,
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.free = subghz_protocol_encoder_hollarm_free,
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.deserialize = subghz_protocol_encoder_hollarm_deserialize,
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.stop = subghz_protocol_encoder_hollarm_stop,
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.yield = subghz_protocol_encoder_hollarm_yield,
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};
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const SubGhzProtocol subghz_protocol_hollarm = {
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.name = SUBGHZ_PROTOCOL_HOLLARM_NAME,
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.type = SubGhzProtocolTypeStatic,
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.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
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SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
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.decoder = &subghz_protocol_hollarm_decoder,
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.encoder = &subghz_protocol_hollarm_encoder,
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.filter = SubGhzProtocolFilter_Alarms,
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};
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void* subghz_protocol_encoder_hollarm_alloc(SubGhzEnvironment* environment) {
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UNUSED(environment);
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SubGhzProtocolEncoderHollarm* instance = malloc(sizeof(SubGhzProtocolEncoderHollarm));
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instance->base.protocol = &subghz_protocol_hollarm;
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instance->generic.protocol_name = instance->base.protocol->name;
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instance->encoder.repeat = 10;
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instance->encoder.size_upload = 256;
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instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
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instance->encoder.is_running = false;
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return instance;
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}
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void subghz_protocol_encoder_hollarm_free(void* context) {
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furi_assert(context);
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SubGhzProtocolEncoderHollarm* instance = context;
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free(instance->encoder.upload);
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free(instance);
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}
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// Get custom button code
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static uint8_t subghz_protocol_hollarm_get_btn_code(void) {
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uint8_t custom_btn_id = subghz_custom_btn_get();
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uint8_t original_btn_code = subghz_custom_btn_get_original();
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uint8_t btn = original_btn_code;
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// Set custom button
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if((custom_btn_id == SUBGHZ_CUSTOM_BTN_OK) && (original_btn_code != 0)) {
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// Restore original button code
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btn = original_btn_code;
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} else if(custom_btn_id == SUBGHZ_CUSTOM_BTN_UP) {
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switch(original_btn_code) {
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case 0x1:
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btn = 0x2;
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break;
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case 0x2:
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btn = 0x1;
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break;
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case 0x4:
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btn = 0x1;
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break;
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case 0x8:
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btn = 0x1;
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break;
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default:
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break;
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}
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} else if(custom_btn_id == SUBGHZ_CUSTOM_BTN_DOWN) {
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switch(original_btn_code) {
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case 0x1:
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btn = 0x4;
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break;
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case 0x2:
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btn = 0x4;
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break;
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case 0x4:
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btn = 0x2;
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break;
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case 0x8:
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btn = 0x4;
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default:
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break;
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}
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} else if(custom_btn_id == SUBGHZ_CUSTOM_BTN_LEFT) {
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switch(original_btn_code) {
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case 0x1:
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btn = 0x8;
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break;
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case 0x2:
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btn = 0x8;
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break;
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case 0x4:
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btn = 0x8;
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break;
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case 0x8:
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btn = 0x2;
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break;
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default:
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break;
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}
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}
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return btn;
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}
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/**
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* Generating an upload from data.
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* @param instance Pointer to a SubGhzProtocolEncoderHollarm instance
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*/
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static void subghz_protocol_encoder_hollarm_get_upload(SubGhzProtocolEncoderHollarm* instance) {
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furi_assert(instance);
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// Generate new key using custom or default button
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instance->generic.btn = subghz_protocol_hollarm_get_btn_code();
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uint64_t new_key = (instance->generic.data >> 12) << 12 | (instance->generic.btn << 8);
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uint8_t bytesum = ((new_key >> 32) & 0xFF) + ((new_key >> 24) & 0xFF) +
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((new_key >> 16) & 0xFF) + ((new_key >> 8) & 0xFF);
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instance->generic.data = (new_key | bytesum);
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size_t index = 0;
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// Send key and GAP between parcels
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for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
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// Read and prepare levels with 2 bit (was saved for better parsing) to the left offset to fit with the original remote transmission
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if(bit_read((instance->generic.data << 2), i - 1)) {
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// Send bit 1
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instance->encoder.upload[index++] =
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level_duration_make(true, (uint32_t)subghz_protocol_hollarm_const.te_short);
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if(i == 1) {
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//Send gap if bit was last
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instance->encoder.upload[index++] = level_duration_make(
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false, (uint32_t)subghz_protocol_hollarm_const.te_short * 12);
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} else {
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instance->encoder.upload[index++] = level_duration_make(
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false, (uint32_t)subghz_protocol_hollarm_const.te_short * 8);
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}
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} else {
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// Send bit 0
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instance->encoder.upload[index++] =
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level_duration_make(true, (uint32_t)subghz_protocol_hollarm_const.te_short);
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if(i == 1) {
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//Send gap if bit was last
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instance->encoder.upload[index++] = level_duration_make(
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false, (uint32_t)subghz_protocol_hollarm_const.te_short * 12);
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} else {
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instance->encoder.upload[index++] =
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level_duration_make(false, (uint32_t)subghz_protocol_hollarm_const.te_long);
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}
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}
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}
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instance->encoder.size_upload = index;
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return;
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}
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/**
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* Analysis of received data and parsing serial number
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* @param instance Pointer to a SubGhzBlockGeneric* instance
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*/
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static void subghz_protocol_hollarm_remote_controller(SubGhzBlockGeneric* instance) {
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instance->btn = (instance->data >> 8) & 0xF;
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instance->serial = (instance->data & 0xFFFFFFF0000) >> 16;
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// Save original button for later use
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if(subghz_custom_btn_get_original() == 0) {
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subghz_custom_btn_set_original(instance->btn);
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}
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subghz_custom_btn_set_max(3);
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// Hollarm Decoder
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// 09.2024 - @xMasterX (MMX)
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// Thanks @Skorpionm for support!
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// F0B93422FF = FF 8bit Sum
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// F0B93421FE = FE 8bit Sum
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// F0B9342401 = 01 8bit Sum
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// F0B9342805 = 05 8bit Sum
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// Serial (moved 2bit to right) | Btn | 8b previous 4 bytes sum
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// 00001111000010111001001101000010 0010 11111111 btn = (0x2)
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// 00001111000010111001001101000010 0001 11111110 btn = (0x1)
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// 00001111000010111001001101000010 0100 00000001 btn = (0x4)
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// 00001111000010111001001101000010 1000 00000101 btn = (0x8)
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}
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SubGhzProtocolStatus
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subghz_protocol_encoder_hollarm_deserialize(void* context, FlipperFormat* flipper_format) {
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furi_assert(context);
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SubGhzProtocolEncoderHollarm* instance = context;
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SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
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do {
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ret = subghz_block_generic_deserialize_check_count_bit(
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&instance->generic,
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flipper_format,
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subghz_protocol_hollarm_const.min_count_bit_for_found);
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if(ret != SubGhzProtocolStatusOk) {
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break;
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}
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//optional parameter parameter
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flipper_format_read_uint32(
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flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
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subghz_protocol_hollarm_remote_controller(&instance->generic);
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subghz_protocol_encoder_hollarm_get_upload(instance);
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if(!flipper_format_rewind(flipper_format)) {
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FURI_LOG_E(TAG, "Rewind error");
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break;
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}
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uint8_t key_data[sizeof(uint64_t)] = {0};
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for(size_t i = 0; i < sizeof(uint64_t); i++) {
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key_data[sizeof(uint64_t) - i - 1] = (instance->generic.data >> i * 8) & 0xFF;
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}
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if(!flipper_format_update_hex(flipper_format, "Key", key_data, sizeof(uint64_t))) {
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FURI_LOG_E(TAG, "Unable to add Key");
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break;
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}
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instance->encoder.is_running = true;
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} while(false);
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return ret;
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}
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void subghz_protocol_encoder_hollarm_stop(void* context) {
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SubGhzProtocolEncoderHollarm* instance = context;
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instance->encoder.is_running = false;
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}
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LevelDuration subghz_protocol_encoder_hollarm_yield(void* context) {
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SubGhzProtocolEncoderHollarm* instance = context;
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if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
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instance->encoder.is_running = false;
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return level_duration_reset();
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}
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LevelDuration ret = instance->encoder.upload[instance->encoder.front];
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if(++instance->encoder.front == instance->encoder.size_upload) {
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instance->encoder.repeat--;
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instance->encoder.front = 0;
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}
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return ret;
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}
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void* subghz_protocol_decoder_hollarm_alloc(SubGhzEnvironment* environment) {
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UNUSED(environment);
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SubGhzProtocolDecoderHollarm* instance = malloc(sizeof(SubGhzProtocolDecoderHollarm));
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instance->base.protocol = &subghz_protocol_hollarm;
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instance->generic.protocol_name = instance->base.protocol->name;
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return instance;
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}
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void subghz_protocol_decoder_hollarm_free(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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free(instance);
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}
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void subghz_protocol_decoder_hollarm_reset(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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instance->decoder.parser_step = HollarmDecoderStepReset;
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}
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void subghz_protocol_decoder_hollarm_feed(void* context, bool level, volatile uint32_t duration) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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switch(instance->decoder.parser_step) {
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case HollarmDecoderStepReset:
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if((!level) && (DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_short * 12) <
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subghz_protocol_hollarm_const.te_delta * 2)) {
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//Found GAP between parcels
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instance->decoder.decode_data = 0;
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instance->decoder.decode_count_bit = 0;
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instance->decoder.parser_step = HollarmDecoderStepSaveDuration;
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}
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break;
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case HollarmDecoderStepSaveDuration:
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// Save HIGH level timing for next step
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if(level) {
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instance->decoder.te_last = duration;
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instance->decoder.parser_step = HollarmDecoderStepCheckDuration;
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} else {
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instance->decoder.parser_step = HollarmDecoderStepReset;
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}
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break;
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case HollarmDecoderStepCheckDuration:
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if(!level) {
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// Bit 0 is short 200us HIGH + long 1000us LOW timing
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if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hollarm_const.te_short) <
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subghz_protocol_hollarm_const.te_delta) &&
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(DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_long) <
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subghz_protocol_hollarm_const.te_delta)) {
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subghz_protocol_blocks_add_bit(&instance->decoder, 0);
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instance->decoder.parser_step = HollarmDecoderStepSaveDuration;
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// Bit 1 is short 200us HIGH + short x8 = 1600us LOW timing
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} else if(
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(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hollarm_const.te_short) <
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subghz_protocol_hollarm_const.te_delta) &&
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(DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_short * 8) <
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subghz_protocol_hollarm_const.te_delta)) {
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subghz_protocol_blocks_add_bit(&instance->decoder, 1);
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instance->decoder.parser_step = HollarmDecoderStepSaveDuration;
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} else if(
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// End of the key
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DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_short * 12) <
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subghz_protocol_hollarm_const.te_delta) {
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// When next GAP is found add bit 0 and do check for read finish
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// (we have 42 high level pulses, last or first one may be a stop/start bit but we will parse it as zero)
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subghz_protocol_blocks_add_bit(&instance->decoder, 0);
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// If got 42 bits key reading is finished
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if(instance->decoder.decode_count_bit ==
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subghz_protocol_hollarm_const.min_count_bit_for_found) {
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// Saving with 2bit to the right offset for proper parsing
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instance->generic.data = (instance->decoder.decode_data >> 2);
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instance->generic.data_count_bit = instance->decoder.decode_count_bit;
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uint8_t bytesum = ((instance->generic.data >> 32) & 0xFF) +
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((instance->generic.data >> 24) & 0xFF) +
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((instance->generic.data >> 16) & 0xFF) +
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((instance->generic.data >> 8) & 0xFF);
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if(bytesum != (instance->generic.data & 0xFF)) {
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// Check if the key is valid by verifying the sum
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instance->generic.data = 0;
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instance->generic.data_count_bit = 0;
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instance->decoder.decode_data = 0;
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instance->decoder.decode_count_bit = 0;
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instance->decoder.parser_step = HollarmDecoderStepReset;
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break;
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}
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if(instance->base.callback)
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instance->base.callback(&instance->base, instance->base.context);
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}
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instance->decoder.decode_data = 0;
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instance->decoder.decode_count_bit = 0;
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instance->decoder.parser_step = HollarmDecoderStepReset;
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} else {
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instance->decoder.parser_step = HollarmDecoderStepReset;
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}
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} else {
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instance->decoder.parser_step = HollarmDecoderStepReset;
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}
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break;
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}
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}
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/**
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* Get button name.
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* @param btn Button number, 4 bit
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*/
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static const char* subghz_protocol_hollarm_get_button_name(uint8_t btn) {
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const char* name_btn[16] = {
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"Unknown",
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"Disarm", // B (2)
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"Arm", // A (1)
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"0x3",
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"Ringtone/Alarm", // C (3)
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"0x5",
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"0x6",
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"0x7",
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"Ring", // D (4)
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"Settings mode",
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"Exit settings",
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"Vibro sens. setting",
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"Not used\n(in settings)",
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"Volume setting",
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"0xE",
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"0xF"};
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return btn <= 0xf ? name_btn[btn] : name_btn[0];
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}
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uint32_t subghz_protocol_decoder_hollarm_get_hash_data(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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return subghz_protocol_blocks_get_hash_data_long(
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&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
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}
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SubGhzProtocolStatus subghz_protocol_decoder_hollarm_serialize(
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void* context,
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FlipperFormat* flipper_format,
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SubGhzRadioPreset* preset) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
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}
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SubGhzProtocolStatus
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subghz_protocol_decoder_hollarm_deserialize(void* context, FlipperFormat* flipper_format) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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return subghz_block_generic_deserialize_check_count_bit(
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&instance->generic, flipper_format, subghz_protocol_hollarm_const.min_count_bit_for_found);
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}
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void subghz_protocol_decoder_hollarm_get_string(void* context, FuriString* output) {
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furi_assert(context);
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SubGhzProtocolDecoderHollarm* instance = context;
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// Parse serial
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subghz_protocol_hollarm_remote_controller(&instance->generic);
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// Get byte sum
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uint8_t bytesum =
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((instance->generic.data >> 32) & 0xFF) + ((instance->generic.data >> 24) & 0xFF) +
|
|
((instance->generic.data >> 16) & 0xFF) + ((instance->generic.data >> 8) & 0xFF);
|
|
|
|
furi_string_cat_printf(
|
|
output,
|
|
"%s %db\r\n"
|
|
"Key: 0x%02lX%08lX\r\n"
|
|
"Serial: 0x%06lX Sum: %02X\r\n"
|
|
"Btn: 0x%01X - %s\r\n",
|
|
instance->generic.protocol_name,
|
|
instance->generic.data_count_bit,
|
|
(uint32_t)(instance->generic.data >> 32),
|
|
(uint32_t)instance->generic.data,
|
|
instance->generic.serial,
|
|
bytesum,
|
|
instance->generic.btn,
|
|
subghz_protocol_hollarm_get_button_name(instance->generic.btn));
|
|
}
|