midi back and forth
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@ -26,7 +26,7 @@ const uint16_t PROGMEM keymaps[][MATRIX_ROWS][MATRIX_COLS] = {
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MO(1), KC_LEFT,KC_DOWN,KC_UP, KC_RGHT,
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RGB_TOG, RGB_HUI,
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RGB_MOD,
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KC_PGDN, KC_SPC,KC_SPC
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M(2), KC_SPC,KC_SPC
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),
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[SYMB] = KEYMAP(
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// left hand
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@ -89,6 +89,11 @@ const macro_t *action_get_macro(keyrecord_t *record, uint8_t id, uint8_t opt)
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eeconfig_init();
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}
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break;
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case 2:
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if (record->event.pressed) { // For resetting EEPROM
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send_unicode_midi(0x0CA0);
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}
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break;
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}
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return MACRO_NONE;
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};
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@ -1161,7 +1161,7 @@ void sysex_callback(MidiDevice * device,
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// send_byte(*data);
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midi_buffer[start + place] = *data;
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if (*data == 0xF7)
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sysex_buffer_callback(start + place, &midi_buffer);
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sysex_buffer_callback(device, start + place, &midi_buffer);
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// SEND_STRING(" ");
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data++;
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}
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@ -1169,7 +1169,24 @@ void sysex_callback(MidiDevice * device,
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}
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void sysex_buffer_callback(uint8_t length, uint8_t * data) {
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uint32_t decode_4byte_chunk(uint8_t * data) {
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uint32_t part1 = *data++;
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uint32_t part2 = *data++;
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uint32_t part3 = *data++;
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uint32_t part4 = *data++;
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uint32_t part5 = *data++;
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return ((part1 & 0x1FUL) << 28) | (part2 << 21) | (part3 << 14) | (part4 << 7) | part5;
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}
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void encode_4byte_chunk(uint32_t data, uint8_t * pointer) {
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*pointer++ = (data >> 28) & 0x7F;
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*pointer++ = (data >> 21) & 0x7F;
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*pointer++ = (data >> 14) & 0x7F;
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*pointer++ = (data >> 7) & 0x7F;
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*pointer++ = (data) & 0x7F;
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}
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void sysex_buffer_callback(MidiDevice * device, uint8_t length, uint8_t * data) {
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uint8_t * pointer_copy = data;
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if (*data++ != 0xF0)
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@ -1180,28 +1197,31 @@ void sysex_buffer_callback(uint8_t length, uint8_t * data) {
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data++;
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switch (*data++) {
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case 0x13: ; // Get info from keyboard
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switch (*data++) {
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case 0x00: ; // Get layer state
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// send_dword(layer_state);
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uint8_t chunk[5];
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encode_4byte_chunk(layer_state | default_layer_state, &chunk);
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uint8_t array[] = {0xF0, 0x00, 0x00, 0x00, 0x00, chunk[0], chunk[1], chunk[2], chunk[3], chunk[4], 0xF7};
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midi_send_array(&midi_device, 11, &array);
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// midi_send_data(device, 3, 0x00, layer_state >> 24 & 0x7f, layer_state >> 16 & 0x7f);
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// midi_send_data(device, 6, layer_state >> 8 & 0x7f, layer_state & 0x7f, 0xF7);
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break;
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}
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#ifdef RGBLIGHT_ENABLE
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case 0x27: ; // RGB LED functions
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switch (*data++)
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switch (*data++) {
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case 0x00: ; // Update HSV
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uint32_t part1 = *data++;
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uint32_t part2 = *data++;
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uint32_t part3 = *data++;
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uint32_t part4 = *data++;
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uint32_t part5 = *data++;
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uint32_t chunk = ((part1 & 0x1FUL) << 28) | (part2 << 21) | (part3 << 14) | (part4 << 7) | part5;
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// SEND_STRING("\nCHUNK: ");
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// send_dword(chunk);
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uint32_t chunk = decode_4byte_chunk(data);
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rgblight_sethsv(((chunk >> 16) & 0xFFFF) % 360, (chunk >> 8) & 0xFF, chunk & 0xFF);
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// SEND_STRING("\nHUE: ");
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// send_word(((chunk >> 16) & 0xFFFF) % 360);
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// SEND_STRING("\nSAT: ");
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// send_word((chunk >> 8) & 0xFF);
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// SEND_STRING("\nVAL: ");
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// send_word(chunk & 0xFF);
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break;
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case 0x01: ; // Update RGB
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break;
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}
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break;
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#endif
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}
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// SEND_STRING("\nDATA:\n");
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@ -1212,4 +1232,12 @@ void sysex_buffer_callback(uint8_t length, uint8_t * data) {
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}
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void send_unicode_midi(uint32_t unicode) {
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uint8_t chunk[5];
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encode_4byte_chunk(unicode, &chunk);
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uint8_t array[] = {0xF0, 0x00, 0x00, 0x00, 0x05, chunk[0], chunk[1], chunk[2], chunk[3], chunk[4], 0xF7};
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midi_send_array(&midi_device, 11, &array);
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}
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#endif
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@ -70,6 +70,7 @@ typedef struct {
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#ifdef MIDI_ENABLE
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void MIDI_Task(void);
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MidiDevice midi_device;
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void send_unicode_midi(uint32_t unicode);
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#endif
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// #if LUFA_VERSION_INTEGER < 0x120730
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