mirror of
https://github.com/tinygo-org/drivers.git
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Driver for SSD1289 LCD
This commit is contained in:
committed by
Ron Evans
parent
0ced12683c
commit
b3c0315a09
@@ -225,13 +225,15 @@ endif
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@md5sum ./build/test.elf
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tinygo build -size short -o ./build/test.hex -target=nucleo-wl55jc ./examples/sx126x/lora_rxtx/
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@md5sum ./build/test.hex
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tinygo build -size short -o ./build/test.uf2 -target=pico ./examples/ssd1289/main.go
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@md5sum ./build/test.uf2
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DRIVERS = $(wildcard */)
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NOTESTS = build examples flash semihosting pcd8544 shiftregister st7789 microphone mcp3008 gps microbitmatrix \
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hcsr04 ssd1331 ws2812 thermistor apa102 easystepper ssd1351 ili9341 wifinina shifter hub75 \
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hd44780 buzzer ssd1306 espat l9110x st7735 bmi160 l293x dht keypad4x4 max72xx p1am tone tm1637 \
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pcf8563 mcp2515 servo sdcard rtl8720dn image cmd i2csoft hts221 lps22hb apds9960 axp192 xpt2046 \
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ft6336 sx126x
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ft6336 sx126x ssd1289
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TESTS = $(filter-out $(addsuffix /%,$(NOTESTS)),$(DRIVERS))
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unit-test:
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@@ -135,6 +135,7 @@ The following 78 devices are supported.
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| [WS2812 RGB LED](https://cdn-shop.adafruit.com/datasheets/WS2812.pdf) | GPIO |
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| [XPT2046 touch controller](http://grobotronics.com/images/datasheets/xpt2046-datasheet.pdf) | GPIO |
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| [Semtech SX126x Lora](https://www.semtech.com/products/wireless-rf/lora-transceiv-ers/sx1261) | SPI |
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| [SSD1289 TFT color display](http://aitendo3.sakura.ne.jp/aitendo_data/product_img/lcd/tft2/M032C1289TP/3.2-SSD1289.pdf) | GPIO |
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## Contributing
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@@ -0,0 +1,68 @@
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package main
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import (
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"image/color"
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"machine"
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"math/rand"
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"tinygo.org/x/drivers/ssd1289"
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)
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func main() {
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//The SSD1289 is configured in 16 bit parallel mode and requires 16 GPIOs
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//The Pin bus is the most flexible but ineffecient method it switches
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//individual pins on and off. If you are able to use consecutive pins
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//consider creating a more efficient bus implementation that uses
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//your microcontrollers built in "ports"
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//see rp2040bus.go for an example for the rapsberry pi pico
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bus := ssd1289.NewPinBus([16]machine.Pin{
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machine.GP4, //DB0
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machine.GP5, //DB1
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machine.GP6, //DB2
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machine.GP7, //DB3
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machine.GP8, //DB4
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machine.GP9, //DB5
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machine.GP10, //DB6
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machine.GP11, //DB7
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machine.GP12, //DB8
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machine.GP13, //DB9
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machine.GP14, //DB10
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machine.GP15, //DB11
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machine.GP16, //DB12
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machine.GP17, //DB13
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machine.GP18, //DB14
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machine.GP19, //DB15
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})
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//Control pins for the SSD1289
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rs := machine.GP0
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wr := machine.GP1
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cs := machine.GP2
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rst := machine.GP3
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display := ssd1289.New(rs, wr, cs, rst, bus)
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display.Configure() //Sends intialization sequence to SSD1289.
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//!! After configure the display will contain random data and needs to be cleared
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background := color.RGBA{0, 0, 0, 255} //Black
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display.FillDisplay(background) //Clears the display to the given color
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for {
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//Draw random filled coloured rectangles
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x := int16(rand.Intn(120))
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w := int16(rand.Intn(120))
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y := int16(rand.Intn(160))
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h := int16(rand.Intn(160))
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r := uint8(rand.Intn(255))
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g := uint8(rand.Intn(255))
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b := uint8(rand.Intn(255))
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c := color.RGBA{r, g, b, 255}
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display.FillRect(x, y, w, h, c) //Fills the given rectangle the rest of the display is unaffected.
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}
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}
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@@ -0,0 +1,37 @@
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package ssd1289
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import "machine"
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type pinBus struct {
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pins [16]machine.Pin
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}
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func NewPinBus(pins [16]machine.Pin) pinBus {
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for i := 0; i < 16; i++ {
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pins[i].Configure(machine.PinConfig{Mode: machine.PinOutput})
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}
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return pinBus{
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pins: pins,
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}
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}
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func (b pinBus) Set(data uint16) {
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b.pins[15].Set((data & (1 << 15)) != 0)
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b.pins[14].Set((data & (1 << 14)) != 0)
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b.pins[13].Set((data & (1 << 13)) != 0)
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b.pins[12].Set((data & (1 << 12)) != 0)
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b.pins[11].Set((data & (1 << 11)) != 0)
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b.pins[10].Set((data & (1 << 10)) != 0)
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b.pins[9].Set((data & (1 << 9)) != 0)
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b.pins[8].Set((data & (1 << 8)) != 0)
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b.pins[7].Set((data & (1 << 7)) != 0)
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b.pins[6].Set((data & (1 << 6)) != 0)
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b.pins[5].Set((data & (1 << 5)) != 0)
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b.pins[4].Set((data & (1 << 4)) != 0)
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b.pins[3].Set((data & (1 << 3)) != 0)
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b.pins[2].Set((data & (1 << 2)) != 0)
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b.pins[1].Set((data & (1 << 1)) != 0)
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b.pins[0].Set((data & (1 << 0)) != 0)
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}
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@@ -0,0 +1,23 @@
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package ssd1289
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type Command byte
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const (
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OSCILLATIONSTART Command = 0x00
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DRIVEROUTPUTCONTROL = 0x01
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POWERCONTROL1 = 0x03
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POWERCONTROL2 = 0x0C
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POWERCONTROL3 = 0x0D
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POWERCONTROL4 = 0x0E
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POWERCONTROL5 = 0x1E
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DISPLAYCONTROL = 0x07
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SLEEPMODE = 0x10
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ENTRYMODE = 0x11
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LCDDRIVEACCONTROL = 0x02
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HORIZONTALRAMADDRESSPOSITION = 0x44
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VERTICALRAMADDRESSSTARTPOSITION = 0x45
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VERTICALRAMADDRESSENDPOSITION = 0x46
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SETGDDRAMYADDRESSCOUNTER = 0x4F
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SETGDDRAMXADDRESSCOUNTER = 0x4E
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RAMDATAREADWRITE = 0x22
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)
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@@ -0,0 +1,32 @@
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//go:build rp2040
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// +build rp2040
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package ssd1289
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import (
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"device/rp"
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"machine"
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)
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type rp2040Bus struct {
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firstPin machine.Pin
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}
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func NewRP2040Bus(firstPin machine.Pin) rp2040Bus {
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for i := uint8(0); i < 16; i++ {
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pin := machine.Pin(i + uint8(firstPin))
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pin.Configure(machine.PinConfig{Mode: machine.PinOutput})
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}
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return rp2040Bus{
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firstPin: firstPin,
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}
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}
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func (b rp2040Bus) Set(data uint16) {
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data32 := uint32(data)
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rp.SIO.GPIO_OUT_CLR.Set(0xFFFF << b.firstPin)
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rp.SIO.GPIO_OUT_SET.Set(data32 << b.firstPin)
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}
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@@ -0,0 +1,200 @@
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// Package ssd1289 implements a driver for the SSD1289 led matrix controller as packaged on the TFT_320QVT board
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//
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// Datasheet: http://aitendo3.sakura.ne.jp/aitendo_data/product_img/lcd/tft2/M032C1289TP/3.2-SSD1289.pdf
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//
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package ssd1289
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import (
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"image/color"
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"machine"
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"time"
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)
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type Bus interface {
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Set(data uint16)
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}
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type Device struct {
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rs machine.Pin
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wr machine.Pin
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cs machine.Pin
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rst machine.Pin
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bus Bus
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}
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const width = int16(240)
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const height = int16(320)
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func New(rs machine.Pin, wr machine.Pin, cs machine.Pin, rst machine.Pin, bus Bus) Device {
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d := Device{
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rs: rs,
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wr: wr,
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cs: cs,
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rst: rst,
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bus: bus,
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}
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rs.Configure(machine.PinConfig{Mode: machine.PinOutput})
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wr.Configure(machine.PinConfig{Mode: machine.PinOutput})
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cs.Configure(machine.PinConfig{Mode: machine.PinOutput})
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rst.Configure(machine.PinConfig{Mode: machine.PinOutput})
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cs.High()
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rst.High()
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wr.High()
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return d
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}
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func (d *Device) lcdWriteCom(cmd Command) {
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d.rs.Low()
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d.lcdWriteBusInt(uint16(cmd))
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}
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func (d *Device) lcdWriteDataInt(data uint16) {
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d.rs.High()
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d.lcdWriteBusInt(data)
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}
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func (d *Device) lcdWriteComData(cmd Command, data uint16) {
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d.lcdWriteCom(cmd)
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d.lcdWriteDataInt(data)
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}
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func (d *Device) tx() {
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d.wr.Low()
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d.wr.High()
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}
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func (d *Device) lcdWriteBusInt(data uint16) {
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d.bus.Set(data)
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d.tx()
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}
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func (d *Device) Configure() {
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d.rst.High()
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time.Sleep(time.Millisecond * 5)
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d.rst.Low()
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time.Sleep(time.Millisecond * 15)
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d.rst.High()
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time.Sleep(time.Millisecond * 15)
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d.cs.Low()
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//Power supply setting
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d.lcdWriteComData(POWERCONTROL1, 0xA8A4)
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d.lcdWriteComData(POWERCONTROL2, 0x0000)
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d.lcdWriteComData(POWERCONTROL3, 0x080C)
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d.lcdWriteComData(POWERCONTROL4, 0x2B00)
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d.lcdWriteComData(POWERCONTROL5, 0x00B7)
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//Set R07h at 0021h
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d.lcdWriteComData(DISPLAYCONTROL, 0x021)
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//Set R00h at 0001h
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d.lcdWriteComData(OSCILLATIONSTART, 0x0001)
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//Set R07h at 0021h
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d.lcdWriteComData(DISPLAYCONTROL, 0x023)
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//Set R10h at 0000h, Exit sleep mode
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d.lcdWriteComData(SLEEPMODE, 0x0000)
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//Wait 30ms
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time.Sleep(time.Millisecond * 30)
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//Set R07h at 0033h
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d.lcdWriteComData(DISPLAYCONTROL, 0x033)
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//Entry Mode setting (R11h)
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//DFM 11 --> 65k
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//TRANS 0
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//OEDEF 0
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//WMODE 0 --> Normal data bus
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//DMODE 00 --> Ram
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//TY 01 --> 262k Type A not used as we are in 65k mode.
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//ID 11 --> Horizontal & Vertical increment
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//AM 0 --> Horizontal
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//LG 000 --> No compare register usage
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d.lcdWriteComData(ENTRYMODE, 0x6030)
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//LCD Driver AC Setting
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//I couldn't make sense of the documentation fortunately 0 seems to
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//FLD 0 --> Normal driving
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//ENWS 0 --> POR mode
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//BC 1 --> Less flicker
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//EOR 1 --> Less stripey
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//WSMD 0 --> not used in POR mode
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//NW 0 --> Least flicker
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d.lcdWriteComData(LCDDRIVEACCONTROL, 0x0600)
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//End of documented init
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//RL 0 --> Output shift direction
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//REV 1 --> Reverse colors
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//CAD 0 --> Cs on common
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//BGR 0 --> use RGB color assignment
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//SM 0 --> standard gate scan sequence
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//TB 1 --> Display is mirrored with 0
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//MUX 319 --> Number of lines in display
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d.lcdWriteComData(DRIVEROUTPUTCONTROL, 0x233F)
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d.cs.High()
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}
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func (d *Device) setXY(x1 uint16, y1 uint16, x2 uint16, y2 uint16) {
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d.lcdWriteComData(HORIZONTALRAMADDRESSPOSITION, (x2<<8)+x1)
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d.lcdWriteComData(VERTICALRAMADDRESSSTARTPOSITION, y1)
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d.lcdWriteComData(VERTICALRAMADDRESSENDPOSITION, y2)
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d.lcdWriteComData(SETGDDRAMXADDRESSCOUNTER, x1)
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d.lcdWriteComData(SETGDDRAMYADDRESSCOUNTER, y1)
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d.lcdWriteCom(RAMDATAREADWRITE)
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}
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func (d *Device) ClearDisplay() {
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d.FillDisplay(color.RGBA{0, 0, 0, 255})
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}
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func (d *Device) FillDisplay(c color.RGBA) {
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d.FillRect(0, 0, width, height, c)
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}
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func encodeColor(c color.RGBA) uint16 {
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encoded := (uint16(c.B)&248)<<8 | (uint16(c.G)&252)<<3 | (uint16(c.R)&248)>>3
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return encoded
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}
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func (d *Device) SetPixel(x, y int16, c color.RGBA) {
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encoded := encodeColor(c)
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d.cs.Low()
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d.setXY(uint16(x), uint16(y), uint16(x), uint16(y))
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d.rs.High()
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d.lcdWriteBusInt(encoded)
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d.cs.High()
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}
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func (d *Device) FillRect(x, y, w, h int16, c color.RGBA) {
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encoded := encodeColor(c)
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d.cs.Low()
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d.setXY(uint16(x), uint16(y), uint16(x+(w-1)), uint16(y+(h-1)))
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d.rs.High()
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d.bus.Set(encoded)
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for i := int64(0); i < int64(w)*int64(h); i++ {
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d.tx()
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}
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d.cs.High()
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d.rs.Low()
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}
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func (d *Device) Display() error {
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//Not enough memory to store an entire screen on most microcontrollers
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return nil
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}
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func (d *Device) Size() (x, y int16) {
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return width, height
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}
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