289 lines
10 KiB
C
289 lines
10 KiB
C
#include "x10.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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#define TAG "SubGhzProtocolX10"
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// @CodeAllNight - X10 Packet decoder...
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//
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// Do a Sub-GHz read at 310MHz, with 650KHz AM modulation.
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//
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// Pulses are as follows...
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// + 9600 [16*te_short] ~ [te_delta*3] | 9025 [te_delta*7]
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// - 4875 [8*te_short] ~ [te_delta*3] | 4488 [te_delta*5]
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//
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// 32 bits of data (see below)...
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// + 600 [te_short] | 550
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// - 600 [te_short] (for 0) or 1800 [te_long] (for 1) | 550 (for 0) or 1700 (for 1) [te_delta*2]
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//
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// + 600 [te_short]
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// -43200 [72*te_short] ~ [te_delta*2]
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//
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// Data simplification of 32 bits can the thought of as:
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// first 8 bits are device id (technically first 4 bits sent are channel #).
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// second 8 bits are inverted from previous 8 bits.
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// next 8 bits are command.
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// last 8 bits are inverted from previous 8 bits.
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//
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// Format: SSSSXBXX ssssxbxx DBOQBXXX dboqbxxx
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// S - The serial number (Channel) is encoded in the first four bits that were sent.
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// x - Unused bits
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// B - Bit 6 is set if the button should be button 9-16, instead of buttons 1-8.
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// DQ - The 1st bit of byte 3 is 1 if DIMMER. (bit 4=0 for BRIGHT, bit 4=1 for DIM)
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// B - The 2nd bit of byte 3 is the button number.
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// Q - 3rd bit of byte 3 are 1 for OFF and 0 for ON (unless DIMMER).
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// B - 4th and 5th bit of byte 3 is the rest of the button number.
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//
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// Actual protocol can be found at http://kbase.x10.com/wiki/CM17A_Protocol
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static const SubGhzBlockConst subghz_protocol_x10_const = {
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.te_short = 600,
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.te_long = 1800,
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.te_delta = 100,
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.min_count_bit_for_found = 32,
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};
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struct SubGhzProtocolDecoderX10 {
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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 SubGhzProtocolEncoderX10 {
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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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X10DecoderStepReset = 0,
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X10DecoderStepFoundPreambula,
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X10DecoderStepSaveDuration,
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X10DecoderStepCheckDuration,
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} X10DecoderStep;
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const SubGhzProtocolDecoder subghz_protocol_x10_decoder = {
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.alloc = subghz_protocol_decoder_x10_alloc,
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.free = subghz_protocol_decoder_x10_free,
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.feed = subghz_protocol_decoder_x10_feed,
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.reset = subghz_protocol_decoder_x10_reset,
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.get_hash_data = subghz_protocol_decoder_x10_get_hash_data,
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.serialize = subghz_protocol_decoder_x10_serialize,
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.deserialize = subghz_protocol_decoder_x10_deserialize,
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.get_string = subghz_protocol_decoder_x10_get_string,
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};
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const SubGhzProtocolEncoder subghz_protocol_x10_encoder = {
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.alloc = NULL,
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.free = NULL,
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.deserialize = NULL,
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.stop = NULL,
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.yield = NULL,
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};
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const SubGhzProtocol subghz_protocol_x10 = {
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.name = SUBGHZ_PROTOCOL_X10_NAME,
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.type = SubGhzProtocolTypeDynamic,
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.flag = SubGhzProtocolFlag_315 /* Technically it is 310MHz only */ | SubGhzProtocolFlag_AM |
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SubGhzProtocolFlag_Decodable,
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.decoder = &subghz_protocol_x10_decoder,
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.encoder = &subghz_protocol_x10_encoder,
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};
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void* subghz_protocol_decoder_x10_alloc(SubGhzEnvironment* environment) {
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UNUSED(environment);
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SubGhzProtocolDecoderX10* instance = malloc(sizeof(SubGhzProtocolDecoderX10));
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instance->base.protocol = &subghz_protocol_x10;
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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_x10_free(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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free(instance);
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}
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void subghz_protocol_decoder_x10_reset(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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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 = X10DecoderStepReset;
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}
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bool subghz_protocol_x10_validate(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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SubGhzBlockDecoder* decoder = &instance->decoder;
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uint64_t data = decoder->decode_data;
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return decoder->decode_count_bit >= subghz_protocol_x10_const.min_count_bit_for_found &&
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((((data >> 24) ^ (data >> 16)) & 0xFF) == 0xFF) &&
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((((data >> 8) ^ (data )) & 0xFF) == 0xFF);
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}
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void subghz_protocol_decoder_x10_feed(void* context, bool level, uint32_t duration) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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switch(instance->decoder.parser_step) {
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case X10DecoderStepReset:
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if((level) && (DURATION_DIFF(duration, subghz_protocol_x10_const.te_short * 16) <
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subghz_protocol_x10_const.te_delta * 7)) {
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instance->decoder.parser_step = X10DecoderStepFoundPreambula;
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}
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break;
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case X10DecoderStepFoundPreambula:
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if((!level) && (DURATION_DIFF(duration, subghz_protocol_x10_const.te_short * 8) <
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subghz_protocol_x10_const.te_delta * 5)) {
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instance->decoder.parser_step = X10DecoderStepSaveDuration;
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instance->decoder.decode_data = 0;
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instance->decoder.decode_count_bit = 0;
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} else {
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subghz_protocol_decoder_x10_reset(context);
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}
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break;
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case X10DecoderStepSaveDuration:
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if(level) {
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if(DURATION_DIFF(duration, subghz_protocol_x10_const.te_short) <
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subghz_protocol_x10_const.te_delta) {
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if(instance->decoder.decode_count_bit ==
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subghz_protocol_x10_const.min_count_bit_for_found) {
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instance->decoder.parser_step = X10DecoderStepReset;
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if (subghz_protocol_x10_validate(context)) {
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FURI_LOG_E(TAG, "Decoded a signal!");
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instance->generic.data = instance->decoder.decode_data;
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instance->generic.data_count_bit = instance->decoder.decode_count_bit;
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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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subghz_protocol_decoder_x10_reset(context);
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} else {
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instance->decoder.te_last = duration;
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instance->decoder.parser_step = X10DecoderStepCheckDuration;
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}
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} else {
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subghz_protocol_decoder_x10_reset(context);
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}
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} else {
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subghz_protocol_decoder_x10_reset(context);
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}
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break;
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case X10DecoderStepCheckDuration:
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if(!level) {
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if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_x10_const.te_short) <
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subghz_protocol_x10_const.te_delta) &&
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(DURATION_DIFF(duration, subghz_protocol_x10_const.te_short) <
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subghz_protocol_x10_const.te_delta)) {
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subghz_protocol_blocks_add_bit(&instance->decoder, 0);
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instance->decoder.parser_step = X10DecoderStepSaveDuration;
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} else if(
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(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_x10_const.te_short) <
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subghz_protocol_x10_const.te_delta) &&
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(DURATION_DIFF(duration, subghz_protocol_x10_const.te_long) <
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subghz_protocol_x10_const.te_delta * 2)) {
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subghz_protocol_blocks_add_bit(&instance->decoder, 1);
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instance->decoder.parser_step = X10DecoderStepSaveDuration;
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} else {
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subghz_protocol_decoder_x10_reset(context);
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}
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} else {
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subghz_protocol_decoder_x10_reset(context);
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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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* Set the serial and btn values based on the data and data_count_bit.
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* @param instance Pointer to a SubGhzBlockGeneric* instance
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*/
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static void subghz_protocol_x10_check_remote_controller(SubGhzBlockGeneric* instance) {
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instance->serial = (instance->data & 0xF0000000) >> (24+4);
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instance->btn = (((instance->data & 0x07000000) >> 24) | ((instance->data & 0xF800) >> 8));
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}
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uint8_t subghz_protocol_decoder_x10_get_hash_data(void* context) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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return subghz_protocol_blocks_get_hash_data(
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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_x10_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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SubGhzProtocolDecoderX10* 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_x10_deserialize(void* context, FlipperFormat* flipper_format) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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bool ret = false;
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do {
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if(!subghz_block_generic_deserialize(&instance->generic, flipper_format)) {
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break;
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}
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if(instance->generic.data_count_bit !=
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subghz_protocol_x10_const.min_count_bit_for_found) {
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FURI_LOG_E(TAG, "Wrong number of bits in key");
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break;
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}
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ret = true;
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} while(false);
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return ret;
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}
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const char* CHANNEL_LETTERS = "MNOPCDABEFGHKLIJ";
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void subghz_protocol_decoder_x10_get_string(void* context, FuriString* output) {
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furi_assert(context);
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SubGhzProtocolDecoderX10* instance = context;
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subghz_protocol_x10_check_remote_controller(&instance->generic);
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char code_channel = CHANNEL_LETTERS[(instance->generic.serial & 0x0F)];
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uint32_t code_button = 1 + (
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((instance->generic.btn&0x10) >> 4) |
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((instance->generic.btn&0x8) >> 2) |
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((instance->generic.btn&0x40)>>4) |
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((instance->generic.btn&4)<<1));
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char* code_action = (instance->generic.btn & 0x20) == 0x20 ? "Off" : "On";
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if (instance->generic.btn == 0x98) {
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code_button = 0;
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code_action = "Dim";
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} else if (instance->generic.btn == 0x88) {
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code_button = 0;
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code_action = "Bright";
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}
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furi_string_cat_printf(
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output,
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"%s %dbit\r\n"
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"Channel:%c \r\n"
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"Button:%ld %s\r\n\r\n"
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"Key:%lX%08lX\r\n"
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"Sn:%07lX Btn:%X\r\n",
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instance->generic.protocol_name,
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instance->generic.data_count_bit,
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code_channel,
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code_button,
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code_action,
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(uint32_t)(instance->generic.data >> 32),
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(uint32_t)instance->generic.data,
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instance->generic.serial,
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instance->generic.btn);
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}
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