mirror of
https://github.com/DarkFlippers/unleashed-firmware
synced 2024-11-23 13:03:13 +00:00
dd988ba449
* nfc_util functions for processing bytes moved into bit_lib * bitlib test update * bit_lib moved from lfrfid to standalone lib * Added bit functions for any supported data types * Error fix and api add * Added test for 64 * Added doc * Testcase for 64 rewrited * Realization error fix * API version bump * sync api version, fix after-merge old libs usage * fix build errors * build fix * fbt format Co-authored-by: assasinfil <nfa57643@gmail.com> Co-authored-by: gornekich <n.gorbadey@gmail.com> Co-authored-by: あく <alleteam@gmail.com>
223 lines
No EOL
7.6 KiB
C
223 lines
No EOL
7.6 KiB
C
#include <furi.h>
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#include <toolbox/protocols/protocol.h>
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#include <lfrfid/tools/fsk_demod.h>
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#include <lfrfid/tools/fsk_osc.h>
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#include "lfrfid_protocols.h"
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#include <bit_lib/bit_lib.h>
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#define JITTER_TIME (20)
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#define MIN_TIME (64 - JITTER_TIME)
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#define MAX_TIME (80 + JITTER_TIME)
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#define HID_DATA_SIZE 23
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#define HID_PREAMBLE_SIZE 1
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#define HID_ENCODED_DATA_SIZE (HID_PREAMBLE_SIZE + HID_DATA_SIZE + HID_PREAMBLE_SIZE)
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#define HID_ENCODED_BIT_SIZE ((HID_PREAMBLE_SIZE + HID_DATA_SIZE) * 8)
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#define HID_DECODED_DATA_SIZE (12)
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#define HID_DECODED_BIT_SIZE ((HID_ENCODED_BIT_SIZE - HID_PREAMBLE_SIZE * 8) / 2)
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#define HID_PREAMBLE 0x1D
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typedef struct {
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FSKDemod* fsk_demod;
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} ProtocolHIDExDecoder;
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typedef struct {
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FSKOsc* fsk_osc;
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uint8_t encoded_index;
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uint32_t pulse;
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} ProtocolHIDExEncoder;
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typedef struct {
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ProtocolHIDExDecoder decoder;
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ProtocolHIDExEncoder encoder;
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uint8_t encoded_data[HID_ENCODED_DATA_SIZE];
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uint8_t data[HID_DECODED_DATA_SIZE];
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size_t protocol_size;
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} ProtocolHIDEx;
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ProtocolHIDEx* protocol_hid_ex_generic_alloc(void) {
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ProtocolHIDEx* protocol = malloc(sizeof(ProtocolHIDEx));
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protocol->decoder.fsk_demod = fsk_demod_alloc(MIN_TIME, 6, MAX_TIME, 5);
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protocol->encoder.fsk_osc = fsk_osc_alloc(8, 10, 50);
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return protocol;
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};
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void protocol_hid_ex_generic_free(ProtocolHIDEx* protocol) {
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fsk_demod_free(protocol->decoder.fsk_demod);
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fsk_osc_free(protocol->encoder.fsk_osc);
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free(protocol);
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};
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uint8_t* protocol_hid_ex_generic_get_data(ProtocolHIDEx* protocol) {
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return protocol->data;
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};
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void protocol_hid_ex_generic_decoder_start(ProtocolHIDEx* protocol) {
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memset(protocol->encoded_data, 0, HID_ENCODED_DATA_SIZE);
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};
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static bool protocol_hid_ex_generic_can_be_decoded(const uint8_t* data) {
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// check preamble
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if(data[0] != HID_PREAMBLE || data[HID_PREAMBLE_SIZE + HID_DATA_SIZE] != HID_PREAMBLE) {
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return false;
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}
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// check for manchester encoding
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for(size_t i = HID_PREAMBLE_SIZE; i < (HID_PREAMBLE_SIZE + HID_DATA_SIZE); i++) {
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for(size_t n = 0; n < 4; n++) {
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uint8_t bit_pair = (data[i] >> (n * 2)) & 0b11;
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if(bit_pair == 0b11 || bit_pair == 0b00) {
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return false;
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}
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}
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}
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return true;
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}
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static void protocol_hid_ex_generic_decode(const uint8_t* from, uint8_t* to) {
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size_t bit_index = 0;
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for(size_t i = HID_PREAMBLE_SIZE; i < (HID_PREAMBLE_SIZE + HID_DATA_SIZE); i++) {
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for(size_t n = 0; n < 4; n++) {
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uint8_t bit_pair = (from[i] >> (6 - (n * 2))) & 0b11;
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if(bit_pair == 0b01) {
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bit_lib_set_bit(to, bit_index, 0);
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} else if(bit_pair == 0b10) {
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bit_lib_set_bit(to, bit_index, 1);
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}
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bit_index++;
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}
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}
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}
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bool protocol_hid_ex_generic_decoder_feed(ProtocolHIDEx* protocol, bool level, uint32_t duration) {
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bool value;
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uint32_t count;
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bool result = false;
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fsk_demod_feed(protocol->decoder.fsk_demod, level, duration, &value, &count);
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if(count > 0) {
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for(size_t i = 0; i < count; i++) {
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bit_lib_push_bit(protocol->encoded_data, HID_ENCODED_DATA_SIZE, value);
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if(protocol_hid_ex_generic_can_be_decoded(protocol->encoded_data)) {
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protocol_hid_ex_generic_decode(protocol->encoded_data, protocol->data);
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result = true;
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}
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}
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}
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return result;
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};
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static void protocol_hid_ex_generic_encode(ProtocolHIDEx* protocol) {
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protocol->encoded_data[0] = HID_PREAMBLE;
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size_t bit_index = 0;
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for(size_t i = 0; i < HID_DECODED_BIT_SIZE; i++) {
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bool bit = bit_lib_get_bit(protocol->data, i);
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if(bit) {
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bit_lib_set_bit(protocol->encoded_data, 8 + bit_index, 1);
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bit_lib_set_bit(protocol->encoded_data, 8 + bit_index + 1, 0);
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} else {
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bit_lib_set_bit(protocol->encoded_data, 8 + bit_index, 0);
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bit_lib_set_bit(protocol->encoded_data, 8 + bit_index + 1, 1);
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}
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bit_index += 2;
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}
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}
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bool protocol_hid_ex_generic_encoder_start(ProtocolHIDEx* protocol) {
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protocol->encoder.encoded_index = 0;
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protocol->encoder.pulse = 0;
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protocol_hid_ex_generic_encode(protocol);
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return true;
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};
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LevelDuration protocol_hid_ex_generic_encoder_yield(ProtocolHIDEx* protocol) {
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bool level = 0;
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uint32_t duration = 0;
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// if pulse is zero, we need to output high, otherwise we need to output low
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if(protocol->encoder.pulse == 0) {
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// get bit
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uint8_t bit = bit_lib_get_bit(protocol->encoded_data, protocol->encoder.encoded_index);
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// get pulse from oscillator
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bool advance = fsk_osc_next(protocol->encoder.fsk_osc, bit, &duration);
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if(advance) {
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bit_lib_increment_index(protocol->encoder.encoded_index, HID_ENCODED_BIT_SIZE);
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}
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// duration diveded by 2 because we need to output high and low
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duration = duration / 2;
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protocol->encoder.pulse = duration;
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level = true;
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} else {
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// output low half and reset pulse
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duration = protocol->encoder.pulse;
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protocol->encoder.pulse = 0;
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level = false;
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}
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return level_duration_make(level, duration);
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};
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bool protocol_hid_ex_generic_write_data(ProtocolHIDEx* protocol, void* data) {
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LFRFIDWriteRequest* request = (LFRFIDWriteRequest*)data;
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bool result = false;
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// Correct protocol data by redecoding
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protocol_hid_ex_generic_encoder_start(protocol);
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protocol_hid_ex_generic_decode(protocol->encoded_data, protocol->data);
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protocol_hid_ex_generic_encoder_start(protocol);
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if(request->write_type == LFRFIDWriteTypeT5577) {
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request->t5577.block[0] = LFRFID_T5577_MODULATION_FSK2a | LFRFID_T5577_BITRATE_RF_50 |
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(6 << LFRFID_T5577_MAXBLOCK_SHIFT);
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request->t5577.block[1] = bit_lib_get_bits_32(protocol->encoded_data, 0, 32);
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request->t5577.block[2] = bit_lib_get_bits_32(protocol->encoded_data, 32, 32);
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request->t5577.block[3] = bit_lib_get_bits_32(protocol->encoded_data, 64, 32);
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request->t5577.block[4] = bit_lib_get_bits_32(protocol->encoded_data, 96, 32);
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request->t5577.block[5] = bit_lib_get_bits_32(protocol->encoded_data, 128, 32);
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request->t5577.block[6] = bit_lib_get_bits_32(protocol->encoded_data, 160, 32);
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request->t5577.blocks_to_write = 7;
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result = true;
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}
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return result;
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};
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void protocol_hid_ex_generic_render_data(ProtocolHIDEx* protocol, FuriString* result) {
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// TODO FL-3518: parser and render functions
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UNUSED(protocol);
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furi_string_printf(result, "Generic HID Extended\r\nData: Unknown");
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};
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const ProtocolBase protocol_hid_ex_generic = {
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.name = "HIDExt",
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.manufacturer = "Generic",
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.data_size = HID_DECODED_DATA_SIZE,
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.features = LFRFIDFeatureASK,
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.validate_count = 3,
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.alloc = (ProtocolAlloc)protocol_hid_ex_generic_alloc,
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.free = (ProtocolFree)protocol_hid_ex_generic_free,
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.get_data = (ProtocolGetData)protocol_hid_ex_generic_get_data,
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.decoder =
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{
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.start = (ProtocolDecoderStart)protocol_hid_ex_generic_decoder_start,
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.feed = (ProtocolDecoderFeed)protocol_hid_ex_generic_decoder_feed,
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},
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.encoder =
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{
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.start = (ProtocolEncoderStart)protocol_hid_ex_generic_encoder_start,
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.yield = (ProtocolEncoderYield)protocol_hid_ex_generic_encoder_yield,
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},
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.render_data = (ProtocolRenderData)protocol_hid_ex_generic_render_data,
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.render_brief_data = (ProtocolRenderData)protocol_hid_ex_generic_render_data,
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.write_data = (ProtocolWriteData)protocol_hid_ex_generic_write_data,
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}; |