* iButton: getting started on the worker concept * Hal delay: added global instructions_per_us variable * iButton: one wire slave * iButton: ibutton key setter * iButton: one wire host, use ibutton_hal * iButton\RFID: common pulse decoder concept * iButton: cyfral decoder * iButton: worker thread concept * iButton: metakom decoder * iButton: write key through worker * iButton: worker mode holder * iButton: worker improvements * iButton: Cyfral encoder * iButton: Metakom encoder * lib: pulse protocol helpers * iButton: Metakom decoder * iButton: Cyfral decoder * iButton worker: separate modes * iButton: libs documentation * HAL: iButton gpio modes * iButton worker: rename modes file * iButton worker, hal: move to LL * iButton CLI: worker for reading and emulation commands * iButton HAL: correct init and emulation sequence * iButton cli: moved to plain C * iButton: move to worker, small step to plain C * Libs, one wire: move to plain C * Libs: added forgotten files to compilation * iButton writer: get rid of manual disable/enable irq
		
			
				
	
	
		
			94 lines
		
	
	
		
			2.6 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			94 lines
		
	
	
		
			2.6 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#include "encoder_metakom.h"
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#include <furi_hal.h>
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#define METAKOM_DATA_SIZE sizeof(uint32_t)
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#define METAKOM_PERIOD (125 * instructions_per_us)
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#define METAKOM_0_LOW (METAKOM_PERIOD * 0.33f)
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#define METAKOM_0_HI (METAKOM_PERIOD * 0.66f)
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#define METAKOM_1_LOW (METAKOM_PERIOD * 0.66f)
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#define METAKOM_1_HI (METAKOM_PERIOD * 0.33f)
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#define METAKOM_SET_DATA(level, len) \
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    *polarity = !level;              \
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    *length = len;
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struct EncoderMetakom {
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    uint32_t data;
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    uint32_t index;
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};
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EncoderMetakom* encoder_metakom_alloc() {
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    EncoderMetakom* metakom = malloc(sizeof(EncoderMetakom));
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    encoder_metakom_reset(metakom);
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    return metakom;
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}
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void encoder_metakom_free(EncoderMetakom* metakom) {
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    free(metakom);
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}
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void encoder_metakom_reset(EncoderMetakom* metakom) {
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    metakom->data = 0;
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    metakom->index = 0;
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}
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void encoder_metakom_set_data(EncoderMetakom* metakom, const uint8_t* data, size_t data_size) {
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    furi_assert(metakom);
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    furi_check(data_size >= METAKOM_DATA_SIZE);
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    memcpy(&metakom->data, data, METAKOM_DATA_SIZE);
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}
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void encoder_metakom_get_pulse(EncoderMetakom* metakom, bool* polarity, uint32_t* length) {
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    if(metakom->index == 0) {
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        // sync bit
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        METAKOM_SET_DATA(true, METAKOM_PERIOD);
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    } else if(metakom->index >= 1 && metakom->index <= 6) {
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        // start word (0b010)
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        switch(metakom->index) {
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        case 1:
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            METAKOM_SET_DATA(false, METAKOM_0_LOW);
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            break;
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        case 2:
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            METAKOM_SET_DATA(true, METAKOM_0_HI);
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            break;
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        case 3:
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            METAKOM_SET_DATA(false, METAKOM_1_LOW);
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            break;
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        case 4:
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            METAKOM_SET_DATA(true, METAKOM_1_HI);
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            break;
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        case 5:
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            METAKOM_SET_DATA(false, METAKOM_0_LOW);
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            break;
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        case 6:
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            METAKOM_SET_DATA(true, METAKOM_0_HI);
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            break;
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        }
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    } else {
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        // data
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        uint8_t data_start_index = metakom->index - 7;
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        bool clock_polarity = (data_start_index) % 2;
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        uint8_t bit_index = (data_start_index) / 2;
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        bool bit_value = (metakom->data >> (32 - 1 - bit_index)) & 1;
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        if(!clock_polarity) {
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            if(bit_value) {
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                METAKOM_SET_DATA(false, METAKOM_1_LOW);
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            } else {
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                METAKOM_SET_DATA(false, METAKOM_0_LOW);
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            }
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        } else {
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            if(bit_value) {
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                METAKOM_SET_DATA(true, METAKOM_1_HI);
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            } else {
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                METAKOM_SET_DATA(true, METAKOM_0_HI);
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            }
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        }
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    }
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    metakom->index++;
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    if(metakom->index >= (1 + 3 * 2 + 32 * 2)) {
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        metakom->index = 0;
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    }
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}
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