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master
...
updates-fo
13 changed files with 229 additions and 117 deletions
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@ -38,13 +38,6 @@ supported boards. Notes have been moved to the bottom of the code.
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uint8_t clockPin = 13;
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uint8_t latchPin = 0;
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uint8_t oePin = 1;
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#elif defined(ARDUINO_ADAFRUIT_FEATHER_ESP32C6) // Feather ESP32-C6
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// not featherwing compatible, but can 'hand wire' if desired
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uint8_t rgbPins[] = {6, A3, A1, A0, A2, 0};
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uint8_t addrPins[] = {8, 5, 15, 7};
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uint8_t clockPin = 14;
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uint8_t latchPin = RX;
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uint8_t oePin = TX;
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#elif defined(ARDUINO_ADAFRUIT_FEATHER_ESP32S2) // Feather ESP32-S2
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// M0/M4/RP2040 Matrix FeatherWing compatible:
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uint8_t rgbPins[] = {6, 5, 9, 11, 10, 12};
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@ -66,11 +59,11 @@ supported boards. Notes have been moved to the bottom of the code.
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uint8_t latchPin = 0;
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uint8_t oePin = 1;
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#elif defined(_SAMD21_) // Feather M0 variants
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uint8_t rgbPins[] = {6, 5, 9, 11, 10, 12};
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uint8_t addrPins[] = {A5, A4, A3, A2};
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uint8_t clockPin = 13;
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uint8_t latchPin = 0;
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uint8_t oePin = 1;
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uint8_t rgbPins[] = {6, 7, 10, 11, 12, 13};
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uint8_t addrPins[] = {0, 1, 2, 3};
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uint8_t clockPin = SDA;
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uint8_t latchPin = 4;
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uint8_t oePin = 5;
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#elif defined(NRF52_SERIES) // Special nRF52840 FeatherWing pinout
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uint8_t rgbPins[] = {6, A5, A1, A0, A4, 11};
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uint8_t addrPins[] = {10, 5, 13, 9};
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@ -1,5 +1,5 @@
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name=Adafruit Protomatter
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version=1.7.0
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version=1.6.2
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author=Adafruit
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maintainer=Adafruit <info@adafruit.com>
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sentence=A library for Adafruit RGB LED matrices.
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@ -29,7 +29,7 @@
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#define _PM_portSetRegister(pin) (volatile uint32_t *)&GPIO.out_w1ts
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#define _PM_portClearRegister(pin) (volatile uint32_t *)&GPIO.out_w1tc
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#define _PM_portBitMask(pin) (1U << ((pin) & 31))
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#define _PM_portBitMask(pin) (1U << ((pin)&31))
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#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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#define _PM_byteOffset(pin) ((pin & 31) / 8)
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@ -29,7 +29,7 @@
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#define _PM_portSetRegister(pin) (volatile uint32_t *)&GPIO.out_w1ts
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#define _PM_portClearRegister(pin) (volatile uint32_t *)&GPIO.out_w1tc
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#define _PM_portBitMask(pin) (1U << ((pin) & 31))
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#define _PM_portBitMask(pin) (1U << ((pin)&31))
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#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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#define _PM_byteOffset(pin) ((pin & 31) / 8)
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@ -129,10 +129,12 @@ IRAM_ATTR static void blast_long(Protomatter_core *core, uint32_t *data) {}
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static void pinmux(int8_t pin, uint8_t signal) {
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esp_rom_gpio_connect_out_signal(pin, signal, false, false);
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PIN_FUNC_SELECT(GPIO_PIN_MUX_REG[pin], PIN_FUNC_GPIO);
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gpio_hal_iomux_func_sel(GPIO_PIN_MUX_REG[pin], PIN_FUNC_GPIO);
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gpio_set_drive_capability((gpio_num_t)pin, GPIO_DRIVE_STRENGTH);
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}
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#if defined(ARDUINO) // COMPILING FOR ARDUINO ------------------------------
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// LCD_CAM requires a complete replacement of the "blast" functions in order
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// to use the DMA-based peripheral.
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#define _PM_CUSTOM_BLAST // Disable blast_*() functions in core.c
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@ -160,23 +162,11 @@ IRAM_ATTR static void blast_byte(Protomatter_core *core, uint8_t *data) {
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// Timer was cleared to 0 before calling blast_byte(), so this
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// is the state of the timer immediately after DMA started:
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#if defined(ARDUINO)
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dmaSetupTime = (uint32_t)timerRead((hw_timer_t *)core->timer);
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#elif defined(CIRCUITPY)
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uint64_t value;
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#if (ESP_IDF_VERSION_MAJOR == 5)
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gptimer_handle_t timer = (gptimer_handle_t)core->timer;
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gptimer_get_raw_count(timer, &value);
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#else
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timer_index_t *timer = (timer_index_t *)core->timer;
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timer_get_counter_value(timer->group, timer->idx, &value);
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#endif
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dmaSetupTime = (uint32_t)value;
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#endif
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// See notes near top of this file for what's done with this info.
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}
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static void _PM_timerInit(Protomatter_core *core) {
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void _PM_timerInit(Protomatter_core *core) {
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// On S3, initialize the LCD_CAM peripheral and DMA.
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// LCD_CAM isn't enabled by default -- MUST begin with this:
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@ -252,9 +242,157 @@ static void _PM_timerInit(Protomatter_core *core) {
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desc.next = NULL;
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// Alloc DMA channel & connect it to LCD periph
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#if defined(CIRCUITPY)
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if (dma_chan == NULL) {
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gdma_channel_alloc_config_t dma_chan_config = {
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.sibling_chan = NULL,
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.direction = GDMA_CHANNEL_DIRECTION_TX,
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.flags = {.reserve_sibling = 0}};
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esp_err_t ret = gdma_new_channel(&dma_chan_config, &dma_chan);
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(void)ret;
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gdma_connect(dma_chan, GDMA_MAKE_TRIGGER(GDMA_TRIG_PERIPH_LCD, 0));
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gdma_strategy_config_t strategy_config = {.owner_check = false,
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.auto_update_desc = false};
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gdma_apply_strategy(dma_chan, &strategy_config);
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gdma_transfer_ability_t ability = {
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.sram_trans_align = 0,
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.psram_trans_align = 0,
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};
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gdma_set_transfer_ability(dma_chan, &ability);
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gdma_start(dma_chan, (intptr_t)&desc);
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// Enable TRANS_DONE interrupt. Note that we do NOT require nor install
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// an interrupt service routine, but DO need to enable the TRANS_DONE
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// flag to make the LCD DMA transfer work.
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LCD_CAM.lc_dma_int_ena.val |= LCD_LL_EVENT_TRANS_DONE & 0x03;
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_PM_esp32commonTimerInit(core); // In esp32-common.h
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}
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#elif defined(CIRCUITPY) // COMPILING FOR CIRCUITPYTHON --------------------
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// LCD_CAM requires a complete replacement of the "blast" functions in order
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// to use the DMA-based peripheral.
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#define _PM_CUSTOM_BLAST // Disable blast_*() functions in core.c
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IRAM_ATTR static void blast_byte(Protomatter_core *core, uint8_t *data) {
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// Reset LCD DOUT parameters each time (required).
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// IN PRINCIPLE, cyclelen should be chainBits-1 (resulting in chainBits
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// cycles). But due to the required dummy phases at start of transfer,
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// extend by 1; set to chainBits, issue chainBits+1 cycles.
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LCD_CAM.lcd_user.lcd_dout_cyclelen = core->chainBits;
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LCD_CAM.lcd_user.lcd_dout = 1;
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LCD_CAM.lcd_user.lcd_update = 1;
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// Reset LCD TX FIFO each time, else we see old data. When doing this,
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// it's REQUIRED in the setup code to enable at least one dummy pulse,
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// else the PCLK & data are randomly misaligned by 1-2 clocks!
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LCD_CAM.lcd_misc.lcd_afifo_reset = 1;
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// Partially re-init descriptor each time (required)
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desc.dw0.size = desc.dw0.length = core->chainBits;
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desc.buffer = data;
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gdma_start(dma_chan, (intptr_t)&desc);
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esp_rom_delay_us(1); // Necessary before starting xfer
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LCD_CAM.lcd_user.lcd_start = 1; // Begin LCD DMA xfer
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// Timer was cleared to 0 before calling blast_byte(), so this
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// is the state of the timer immediately after DMA started:
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uint64_t value;
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#if (ESP_IDF_VERSION_MAJOR == 5)
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gptimer_handle_t timer = (gptimer_handle_t)core->timer;
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gptimer_get_raw_count(timer, &value);
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#else
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timer_index_t *timer = (timer_index_t *)core->timer;
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timer_get_counter_value(timer->group, timer->idx, &value);
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#endif
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dmaSetupTime = (uint32_t)value;
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// See notes near top of this file for what's done with this info.
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}
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static void _PM_timerInit(Protomatter_core *core) {
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// TO DO: adapt this function for any CircuitPython-specific changes.
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// If none are required, this function can be deleted and the version
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// above can be moved before the ARDUIO/CIRCUITPY checks. If minimal
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// changes, consider a single _PM_timerInit() implementation with
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// ARDUINO/CIRCUITPY checks inside. It's all good.
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// On S3, initialize the LCD_CAM peripheral and DMA.
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// LCD_CAM isn't enabled by default -- MUST begin with this:
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periph_module_enable(PERIPH_LCD_CAM_MODULE);
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periph_module_reset(PERIPH_LCD_CAM_MODULE);
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// Reset LCD bus
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LCD_CAM.lcd_user.lcd_reset = 1;
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esp_rom_delay_us(100);
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// Configure LCD clock
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LCD_CAM.lcd_clock.clk_en = 1; // Enable clock
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LCD_CAM.lcd_clock.lcd_clk_sel = 3; // PLL160M source
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LCD_CAM.lcd_clock.lcd_clkm_div_a = 1; // 1/1 fractional divide,
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LCD_CAM.lcd_clock.lcd_clkm_div_b = 1; // plus prescale below yields...
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#if LCD_CLK_PRESCALE == 8
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LCD_CAM.lcd_clock.lcd_clkm_div_num = 7; // 1:8 prescale (20 MHz CLK)
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#elif LCD_CLK_PRESCALE == 9
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LCD_CAM.lcd_clock.lcd_clkm_div_num = 8; // 1:9 prescale (17.8 MHz CLK)
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#else
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LCD_CAM.lcd_clock.lcd_clkm_div_num = 9; // 1:10 prescale (16 MHz CLK)
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#endif
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LCD_CAM.lcd_clock.lcd_ck_out_edge = 0; // PCLK low in first half of cycle
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LCD_CAM.lcd_clock.lcd_ck_idle_edge = 0; // PCLK low idle
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LCD_CAM.lcd_clock.lcd_clk_equ_sysclk = 1; // PCLK = CLK (ignore CLKCNT_N)
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// Configure frame format. Some of these could probably be skipped and
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// use defaults, but being verbose for posterity...
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LCD_CAM.lcd_ctrl.lcd_rgb_mode_en = 0; // i8080 mode (not RGB)
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LCD_CAM.lcd_rgb_yuv.lcd_conv_bypass = 0; // Disable RGB/YUV converter
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LCD_CAM.lcd_misc.lcd_next_frame_en = 0; // Do NOT auto-frame
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LCD_CAM.lcd_data_dout_mode.val = 0; // No data delays
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LCD_CAM.lcd_user.lcd_always_out_en = 0; // Only when requested
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LCD_CAM.lcd_user.lcd_8bits_order = 0; // Do not swap bytes
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LCD_CAM.lcd_user.lcd_bit_order = 0; // Do not reverse bit order
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LCD_CAM.lcd_user.lcd_2byte_en = 0; // 8-bit data mode
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// MUST enable at least one dummy phase at start of output, else clock and
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// data are randomly misaligned by 1-2 cycles following required TX FIFO
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// reset in blast_byte(). One phase MOSTLY works but sparkles a tiny bit
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// (as in still very occasionally misaligned by 1 cycle). Two seems ideal;
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// no sparkle. Since HUB75 is just a shift register, the extra clock ticks
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// are harmless and the zero-data shifts off end of the chain.
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LCD_CAM.lcd_user.lcd_dummy = 1; // Enable dummy phase(s) @ LCD start
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LCD_CAM.lcd_user.lcd_dummy_cyclelen = 1; // 2 dummy phases
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LCD_CAM.lcd_user.lcd_cmd = 0; // No command at LCD start
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LCD_CAM.lcd_user.lcd_cmd_2_cycle_en = 0;
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LCD_CAM.lcd_user.lcd_update = 1;
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// Configure signal pins. IN THEORY this could be expanded to support
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// 2 parallel chains, but the rest of the LCD & DMA setup is not currently
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// written for that, so it's limited to a single chain for now.
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const uint8_t signal[] = {LCD_DATA_OUT0_IDX, LCD_DATA_OUT1_IDX,
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LCD_DATA_OUT2_IDX, LCD_DATA_OUT3_IDX,
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LCD_DATA_OUT4_IDX, LCD_DATA_OUT5_IDX};
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for (int i = 0; i < 6; i++)
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pinmux(core->rgbPins[i], signal[i]);
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pinmux(core->clockPin, LCD_PCLK_IDX);
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gpio_set_drive_capability(core->latch.pin, GPIO_DRIVE_STRENGTH);
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gpio_set_drive_capability(core->oe.pin, GPIO_DRIVE_STRENGTH);
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for (uint8_t i = 0; i < core->numAddressLines; i++) {
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gpio_set_drive_capability(core->addr[i].pin, GPIO_DRIVE_STRENGTH);
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}
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// Disable LCD_CAM interrupts, clear any pending interrupt
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LCD_CAM.lc_dma_int_ena.val &= ~LCD_LL_EVENT_TRANS_DONE;
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LCD_CAM.lc_dma_int_clr.val = 0x03;
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// Set up DMA TX descriptor
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desc.dw0.owner = DMA_DESCRIPTOR_BUFFER_OWNER_DMA;
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desc.dw0.suc_eof = 1;
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desc.dw0.size = desc.dw0.length = core->chainBits;
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desc.buffer = core->screenData;
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desc.next = NULL;
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// Alloc DMA channel & connect it to LCD periph
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if (dma_chan == NULL) {
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gdma_channel_alloc_config_t dma_chan_config = {
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.sibling_chan = NULL,
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.direction = GDMA_CHANNEL_DIRECTION_TX,
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@ -269,9 +407,7 @@ static void _PM_timerInit(Protomatter_core *core) {
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.psram_trans_align = 0,
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};
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gdma_set_transfer_ability(dma_chan, &ability);
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#if defined(CIRCUITPY)
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}
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#endif
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gdma_start(dma_chan, (intptr_t)&desc);
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// Enable TRANS_DONE interrupt. Note that we do NOT require nor install
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@ -282,4 +418,6 @@ static void _PM_timerInit(Protomatter_core *core) {
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_PM_esp32commonTimerInit(core); // In esp32-common.h
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}
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#endif // END CIRCUITPYTHON ------------------------------------------------
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#endif // END ESP32S3
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@ -32,7 +32,7 @@
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#define _PM_portClearRegister(pin) \
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(volatile uint32_t *)((pin < 32) ? &GPIO.out_w1tc : &GPIO.out1_w1tc.val)
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#define _PM_portBitMask(pin) (1U << ((pin) & 31))
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#define _PM_portBitMask(pin) (1U << ((pin)&31))
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#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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#define _PM_byteOffset(pin) ((pin & 31) / 8)
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@ -99,7 +99,7 @@ volatile uint32_t *_PM_portClearRegister(uint32_t pin) {
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#define _PM_pinInput(pin) nrf_gpio_cfg_input(pin)
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#define _PM_pinHigh(pin) nrf_gpio_pin_set(pin)
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#define _PM_pinLow(pin) nrf_gpio_pin_clear(pin)
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#define _PM_portBitMask(pin) (1u << ((pin) & 31))
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#define _PM_portBitMask(pin) (1u << ((pin)&31))
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#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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#define _PM_byteOffset(pin) ((pin & 31) / 8)
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@ -142,19 +142,19 @@ void _PM_timerInit(Protomatter_core *core) {
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IRQn_Type IRQn; // Interrupt number
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} timer[] = {
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#if defined(NRF_TIMER0)
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{NRF_TIMER0, TIMER0_IRQn},
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{NRF_TIMER0, TIMER0_IRQn},
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#endif
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#if defined(NRF_TIMER1)
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{NRF_TIMER1, TIMER1_IRQn},
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{NRF_TIMER1, TIMER1_IRQn},
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#endif
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#if defined(NRF_TIMER2)
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{NRF_TIMER2, TIMER2_IRQn},
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{NRF_TIMER2, TIMER2_IRQn},
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#endif
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#if defined(NRF_TIMER3)
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{NRF_TIMER3, TIMER3_IRQn},
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{NRF_TIMER3, TIMER3_IRQn},
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#endif
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#if defined(NRF_TIMER4)
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{NRF_TIMER4, TIMER4_IRQn},
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{NRF_TIMER4, TIMER4_IRQn},
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#endif
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};
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#define NUM_TIMERS (sizeof timer / sizeof timer[0])
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@ -26,8 +26,7 @@
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#pragma once
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#if defined(ARDUINO_ARCH_RP2040) || defined(PICO_BOARD) || \
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defined(__RP2040__) || defined(__RP2350__)
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#if defined(ARDUINO_ARCH_RP2040) || defined(PICO_BOARD) || defined(__RP2040__)
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#include "../../hardware_pwm/include/hardware/pwm.h"
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#include "hardware/irq.h"
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@ -105,14 +104,9 @@ void _PM_timerInit(Protomatter_core *core) {
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#elif defined(CIRCUITPY) // COMPILING FOR CIRCUITPYTHON --------------------
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#if !defined(F_CPU) // Not sure if CircuitPython build defines this
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||||
#ifdef __RP2040__
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#if !defined(F_CPU) // Not sure if CircuitPython build defines this
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#define F_CPU 125000000 // Standard RP2040 clock speed
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#endif
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#ifdef __RP2350__
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#define F_CPU 150000000 // Standard RP2350 clock speed
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#endif
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#endif
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// 'pin' here is GPXX #
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#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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@ -64,7 +64,7 @@ void _PM_IRQ_HANDLER(void) {
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#define _PM_pinInput(pin) gpio_set_pin_direction(pin, GPIO_DIRECTION_IN)
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#define _PM_pinHigh(pin) gpio_set_pin_level(pin, 1)
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#define _PM_pinLow(pin) gpio_set_pin_level(pin, 0)
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#define _PM_portBitMask(pin) (1u << ((pin) & 31))
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#define _PM_portBitMask(pin) (1u << ((pin)&31))
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#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
|
||||
#define _PM_byteOffset(pin) ((pin & 31) / 8)
|
||||
|
|
|
|||
|
|
@ -51,19 +51,19 @@ void _PM_timerInit(Protomatter_core *core) {
|
|||
uint8_t GCM_ID; // GCLK selection ID
|
||||
} timer[] = {
|
||||
#if defined(TC0)
|
||||
{TC0, TC0_IRQn, GCM_TCC0_TCC1},
|
||||
{TC0, TC0_IRQn, GCM_TCC0_TCC1},
|
||||
#endif
|
||||
#if defined(TC1)
|
||||
{TC1, TC1_IRQn, GCM_TCC0_TCC1},
|
||||
{TC1, TC1_IRQn, GCM_TCC0_TCC1},
|
||||
#endif
|
||||
#if defined(TC2)
|
||||
{TC2, TC2_IRQn, GCM_TCC2_TC3},
|
||||
{TC2, TC2_IRQn, GCM_TCC2_TC3},
|
||||
#endif
|
||||
#if defined(TC3)
|
||||
{TC3, TC3_IRQn, GCM_TCC2_TC3},
|
||||
{TC3, TC3_IRQn, GCM_TCC2_TC3},
|
||||
#endif
|
||||
#if defined(TC4)
|
||||
{TC4, TC4_IRQn, GCM_TC4_TC5},
|
||||
{TC4, TC4_IRQn, GCM_TC4_TC5},
|
||||
#endif
|
||||
};
|
||||
#define NUM_TIMERS (sizeof timer / sizeof timer[0])
|
||||
|
|
|
|||
|
|
@ -78,43 +78,43 @@ void _PM_timerInit(Protomatter_core *core) {
|
|||
uint8_t GCLK_ID; // Peripheral channel # for clock source
|
||||
} timer[] = {
|
||||
#if defined(TC0)
|
||||
{TC0, TC0_IRQn, TC0_GCLK_ID},
|
||||
{TC0, TC0_IRQn, TC0_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC1)
|
||||
{TC1, TC1_IRQn, TC1_GCLK_ID},
|
||||
{TC1, TC1_IRQn, TC1_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC2)
|
||||
{TC2, TC2_IRQn, TC2_GCLK_ID},
|
||||
{TC2, TC2_IRQn, TC2_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC3)
|
||||
{TC3, TC3_IRQn, TC3_GCLK_ID},
|
||||
{TC3, TC3_IRQn, TC3_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC4)
|
||||
{TC4, TC4_IRQn, TC4_GCLK_ID},
|
||||
{TC4, TC4_IRQn, TC4_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC5)
|
||||
{TC5, TC5_IRQn, TC5_GCLK_ID},
|
||||
{TC5, TC5_IRQn, TC5_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC6)
|
||||
{TC6, TC6_IRQn, TC6_GCLK_ID},
|
||||
{TC6, TC6_IRQn, TC6_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC7)
|
||||
{TC7, TC7_IRQn, TC7_GCLK_ID},
|
||||
{TC7, TC7_IRQn, TC7_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC8)
|
||||
{TC8, TC8_IRQn, TC8_GCLK_ID},
|
||||
{TC8, TC8_IRQn, TC8_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC9)
|
||||
{TC9, TC9_IRQn, TC9_GCLK_ID},
|
||||
{TC9, TC9_IRQn, TC9_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC10)
|
||||
{TC10, TC10_IRQn, TC10_GCLK_ID},
|
||||
{TC10, TC10_IRQn, TC10_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC11)
|
||||
{TC11, TC11_IRQn, TC11_GCLK_ID},
|
||||
{TC11, TC11_IRQn, TC11_GCLK_ID},
|
||||
#endif
|
||||
#if defined(TC12)
|
||||
{TC12, TC12_IRQn, TC12_GCLK_ID},
|
||||
{TC12, TC12_IRQn, TC12_GCLK_ID},
|
||||
#endif
|
||||
};
|
||||
#define NUM_TIMERS (sizeof timer / sizeof timer[0])
|
||||
|
|
|
|||
|
|
@ -28,7 +28,7 @@
|
|||
#include "timers.h"
|
||||
|
||||
#undef _PM_portBitMask
|
||||
#define _PM_portBitMask(pin) (1u << ((pin) & 15))
|
||||
#define _PM_portBitMask(pin) (1u << ((pin)&15))
|
||||
#define _PM_byteOffset(pin) ((pin & 15) / 8)
|
||||
#define _PM_wordOffset(pin) ((pin & 15) / 16)
|
||||
|
||||
|
|
@ -83,7 +83,7 @@ volatile uint16_t *_PM_portClearRegister(uint32_t pin) {
|
|||
// TODO: this is no longer true, should it change?
|
||||
void *_PM_protoPtr = NULL;
|
||||
|
||||
static TIM_HandleTypeDef tim_handle;
|
||||
STATIC TIM_HandleTypeDef tim_handle;
|
||||
|
||||
// Timer interrupt service routine
|
||||
void _PM_IRQ_HANDLER(void) {
|
||||
|
|
|
|||
83
src/core.c
83
src/core.c
|
|
@ -95,13 +95,12 @@ ProtomatterStatus _PM_init(Protomatter_core *core, uint16_t bitWidth,
|
|||
uint8_t addrCount, uint8_t *addrList,
|
||||
uint8_t clockPin, uint8_t latchPin, uint8_t oePin,
|
||||
bool doubleBuffer, int8_t tile, void *timer) {
|
||||
if (!core) {
|
||||
if (!core)
|
||||
return PROTOMATTER_ERR_ARG;
|
||||
}
|
||||
|
||||
// bitDepth is NOT constrained here, handle in calling function
|
||||
// (varies with implementation, e.g. GFX lib is max 6 bitplanes,
|
||||
// but might be more or less elsewhere)
|
||||
// bitDepth is NOT constrained here, handle in calling function
|
||||
// (varies with implementation, e.g. GFX lib is max 6 bitplanes,
|
||||
// but might be more or less elsewhere)
|
||||
#if defined(_PM_bytesPerElement)
|
||||
#if _PM_bytesPerElement == 1
|
||||
if (rgbCount > 1)
|
||||
|
|
@ -781,9 +780,9 @@ IRAM_ATTR static void blast_word(Protomatter_core *core, uint16_t *data) {
|
|||
volatile uint16_t *toggle =
|
||||
(volatile uint16_t *)core->toggleReg + core->portOffset;
|
||||
#else
|
||||
volatile uint16_t *set; // For RGB data set
|
||||
volatile _PM_PORT_TYPE *set_full; // For clock set
|
||||
volatile _PM_PORT_TYPE *clear_full; // For RGB data + clock clear
|
||||
volatile uint16_t *set; // For RGB data set
|
||||
volatile _PM_PORT_TYPE *set_full; // For clock set
|
||||
volatile _PM_PORT_TYPE *clear_full; // For RGB data + clock clear
|
||||
set = (volatile uint16_t *)core->setReg + core->portOffset;
|
||||
set_full = (volatile _PM_PORT_TYPE *)core->setReg;
|
||||
clear_full = (volatile _PM_PORT_TYPE *)core->clearReg;
|
||||
|
|
@ -830,7 +829,7 @@ IRAM_ATTR static void blast_long(Protomatter_core *core, uint32_t *data) {
|
|||
// Note in this case two copies exist of the PORT set register.
|
||||
// The optimizer will most likely simplify this; leaving as-is, not
|
||||
// wanting a special case of the PEW macro due to divergence risk.
|
||||
volatile uint32_t *set; // For RGB data set
|
||||
volatile uint32_t *set; // For RGB data set
|
||||
#if !defined(_PM_STRICT_32BIT_IO)
|
||||
volatile _PM_PORT_TYPE *set_full; // For clock set
|
||||
set_full = (volatile _PM_PORT_TYPE *)core->setReg;
|
||||
|
|
@ -1075,7 +1074,7 @@ __attribute__((noinline)) void _PM_convert_565_byte(Protomatter_core *core,
|
|||
*d2++ = result;
|
||||
#endif
|
||||
} // end x
|
||||
} // end tile
|
||||
} // end tile
|
||||
|
||||
greenBit <<= 1;
|
||||
if (plane || (core->numPlanes < 6)) {
|
||||
|
|
@ -1101,8 +1100,8 @@ __attribute__((noinline)) void _PM_convert_565_byte(Protomatter_core *core,
|
|||
dest[-pad] &= ~clockMask; // Negative index is legal & intentional
|
||||
#endif
|
||||
dest += bitplaneSize; // Advance one scanline in dest buffer
|
||||
} // end plane
|
||||
} // end row
|
||||
} // end plane
|
||||
} // end row
|
||||
}
|
||||
|
||||
// Corresponding function for word output -- either 12 RGB bits (2 parallel
|
||||
|
|
@ -1200,26 +1199,20 @@ void _PM_convert_565_word(Protomatter_core *core, uint16_t *source,
|
|||
uint16_t upperRGB = upperSrc[srcIdx]; // Pixel in upper half
|
||||
uint16_t lowerRGB = lowerSrc[srcIdx]; // Pixel in lower half
|
||||
uint16_t result = 0;
|
||||
if (upperRGB & redBit) {
|
||||
if (upperRGB & redBit)
|
||||
result |= pinMask[0];
|
||||
}
|
||||
if (upperRGB & greenBit) {
|
||||
if (upperRGB & greenBit)
|
||||
result |= pinMask[1];
|
||||
}
|
||||
if (upperRGB & blueBit) {
|
||||
if (upperRGB & blueBit)
|
||||
result |= pinMask[2];
|
||||
}
|
||||
if (lowerRGB & redBit) {
|
||||
if (lowerRGB & redBit)
|
||||
result |= pinMask[3];
|
||||
}
|
||||
if (lowerRGB & greenBit) {
|
||||
if (lowerRGB & greenBit)
|
||||
result |= pinMask[4];
|
||||
}
|
||||
if (lowerRGB & blueBit) {
|
||||
if (lowerRGB & blueBit)
|
||||
result |= pinMask[5];
|
||||
}
|
||||
// Main difference here vs byte converter is each chain
|
||||
// ORs new bits into place (vs single-pass overwrite).
|
||||
// Main difference here vs byte converter is each chain
|
||||
// ORs new bits into place (vs single-pass overwrite).
|
||||
// #if defined(_PM_portToggleRegister)
|
||||
#if defined(_PM_USE_TOGGLE_FORMAT)
|
||||
*d2++ |= result ^ prior; // Bitwise OR
|
||||
|
|
@ -1228,7 +1221,7 @@ void _PM_convert_565_word(Protomatter_core *core, uint16_t *source,
|
|||
*d2++ |= result; // Bitwise OR
|
||||
#endif
|
||||
} // end x
|
||||
} // end tile
|
||||
} // end tile
|
||||
greenBit <<= 1;
|
||||
if (plane || (core->numPlanes < 6)) {
|
||||
redBit <<= 1;
|
||||
|
|
@ -1238,9 +1231,9 @@ void _PM_convert_565_word(Protomatter_core *core, uint16_t *source,
|
|||
blueBit = 0b0000000000000001;
|
||||
}
|
||||
dest += bitplaneSize; // Advance one scanline in dest buffer
|
||||
} // end plane
|
||||
} // end row
|
||||
pinMask += 6; // Next chain's RGB pin masks
|
||||
} // end plane
|
||||
} // end row
|
||||
pinMask += 6; // Next chain's RGB pin masks
|
||||
}
|
||||
}
|
||||
|
||||
|
|
@ -1330,26 +1323,20 @@ void _PM_convert_565_long(Protomatter_core *core, uint16_t *source,
|
|||
uint16_t upperRGB = upperSrc[srcIdx]; // Pixel in upper half
|
||||
uint16_t lowerRGB = lowerSrc[srcIdx]; // Pixel in lower half
|
||||
uint32_t result = 0;
|
||||
if (upperRGB & redBit) {
|
||||
if (upperRGB & redBit)
|
||||
result |= pinMask[0];
|
||||
}
|
||||
if (upperRGB & greenBit) {
|
||||
if (upperRGB & greenBit)
|
||||
result |= pinMask[1];
|
||||
}
|
||||
if (upperRGB & blueBit) {
|
||||
if (upperRGB & blueBit)
|
||||
result |= pinMask[2];
|
||||
}
|
||||
if (lowerRGB & redBit) {
|
||||
if (lowerRGB & redBit)
|
||||
result |= pinMask[3];
|
||||
}
|
||||
if (lowerRGB & greenBit) {
|
||||
if (lowerRGB & greenBit)
|
||||
result |= pinMask[4];
|
||||
}
|
||||
if (lowerRGB & blueBit) {
|
||||
if (lowerRGB & blueBit)
|
||||
result |= pinMask[5];
|
||||
}
|
||||
// Main difference here vs byte converter is each chain
|
||||
// ORs new bits into place (vs single-pass overwrite).
|
||||
// Main difference here vs byte converter is each chain
|
||||
// ORs new bits into place (vs single-pass overwrite).
|
||||
// #if defined(_PM_portToggleRegister)
|
||||
#if defined(_PM_USE_TOGGLE_FORMAT)
|
||||
*d2++ |= result ^ prior; // Bitwise OR
|
||||
|
|
@ -1358,7 +1345,7 @@ void _PM_convert_565_long(Protomatter_core *core, uint16_t *source,
|
|||
*d2++ |= result; // Bitwise OR
|
||||
#endif
|
||||
} // end x
|
||||
} // end tile
|
||||
} // end tile
|
||||
greenBit <<= 1;
|
||||
if (plane || (core->numPlanes < 6)) {
|
||||
redBit <<= 1;
|
||||
|
|
@ -1368,9 +1355,9 @@ void _PM_convert_565_long(Protomatter_core *core, uint16_t *source,
|
|||
blueBit = 0b0000000000000001;
|
||||
}
|
||||
dest += bitplaneSize; // Advance one scanline in dest buffer
|
||||
} // end plane
|
||||
} // end row
|
||||
pinMask += 6; // Next chain's RGB pin masks
|
||||
} // end plane
|
||||
} // end row
|
||||
pinMask += 6; // Next chain's RGB pin masks
|
||||
}
|
||||
}
|
||||
|
||||
|
|
|
|||
Loading…
Reference in a new issue