mirror of
https://github.com/tinygo-org/drivers.git
synced 2026-07-27 19:18:41 +00:00
Compare commits
22 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| 2413eb86e0 | |||
| c7555a1469 | |||
| 3fca96e0ef | |||
| c7981f72ec | |||
| 5df157230f | |||
| bcb291992c | |||
| 7b710e3a48 | |||
| dcfd9c066d | |||
| 955b3a56e8 | |||
| 21b8d953f4 | |||
| d1b917b835 | |||
| 2cd73e3204 | |||
| 3ae5895183 | |||
| d80f619c9f | |||
| c91888a099 | |||
| b4dbac3a67 | |||
| bf077c8249 | |||
| 4867abcbba | |||
| 45922f6524 | |||
| eb040dde9c | |||
| 04bfa6fa70 | |||
| 8453611d1f |
@@ -1,3 +1,42 @@
|
||||
0.7.0
|
||||
---
|
||||
- **new devices**
|
||||
- veml6070: add Vishay UV light sensor
|
||||
- **enhancements**
|
||||
- lis3dh: example uses I2C1 so requires config to specify pins since they are not default
|
||||
- ssd1331: make SPI TX faster
|
||||
- st7735: make SPI Tx faster
|
||||
- **docs**
|
||||
- complete missing GoDocs for main and sub-packages
|
||||
- **core**
|
||||
- add Version string for support purposes
|
||||
- **examples**
|
||||
- Change all espat driver examples to use Arduino Nano33 IoT by default
|
||||
|
||||
0.6.0
|
||||
---
|
||||
- **new devices**
|
||||
- Support software SPI for APA102 (Itsy Bitsy M0 on-board "Dotstar" LED as example)
|
||||
|
||||
0.5.0
|
||||
---
|
||||
- **new devices**
|
||||
- LSM6DS3 accelerometer
|
||||
- **bugfixes**
|
||||
- ws2812: fix timings for the nrf51
|
||||
- **enhancements**
|
||||
- ws2812: Add build tag for Arduino Nano33 IoT
|
||||
|
||||
0.4.0
|
||||
---
|
||||
- **new devices**
|
||||
- SSD1331 TFT color display
|
||||
- ST7735 TFT color display
|
||||
- ST7789 TFT color display
|
||||
- **docs**
|
||||
- espat
|
||||
- complete list of dependencies for flashing NINA-W102 as used in Arduino Nano33 IoT board.
|
||||
|
||||
0.3.0
|
||||
---
|
||||
- **new devices**
|
||||
|
||||
@@ -11,6 +11,7 @@ smoke-test:
|
||||
@mkdir -p build
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/adxl345/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/apa102/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/apa102/itsybitsy-m0/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/at24cx/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/bh1750/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/blinkm/main.go
|
||||
@@ -19,15 +20,16 @@ smoke-test:
|
||||
tinygo build -size short -o ./build/test.elf -target=bluepill ./examples/ds1307/time/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/ds3231/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/easystepper/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/espat/espconsole/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/espat/esphub/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/espat/espstation/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=arduino-nano33 ./examples/espat/espconsole/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=arduino-nano33 ./examples/espat/esphub/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=arduino-nano33 ./examples/espat/espstation/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=feather-m0 ./examples/gps/i2c/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=feather-m0 ./examples/gps/uart/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/hd44780/customchar/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/hd44780/text/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/hub75/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=circuitplay-express ./examples/lis3dh/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=arduino-nano33 ./examples/lsm6ds3/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/mag3110/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/microbitmatrix/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/mma8653/main.go
|
||||
@@ -37,6 +39,9 @@ smoke-test:
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/sht3x/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/ssd1306/i2c_128x32/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/ssd1306/spi_128x64/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/ssd1331/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/st7735/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/st7789/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=circuitplay-express ./examples/thermistor/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=itsybitsy-m0 ./examples/vl53l1x/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=microbit ./examples/waveshare-epd/epd2in13/main.go
|
||||
@@ -45,5 +50,6 @@ smoke-test:
|
||||
tinygo build -size short -o ./build/test.elf -target=trinket-m0 ./examples/bme280/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=circuitplay-express ./examples/microphone/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=circuitplay-express ./examples/buzzer/main.go
|
||||
tinygo build -size short -o ./build/test.elf -target=trinket-m0 ./examples/veml6070/main.go
|
||||
|
||||
test: clean fmt-check smoke-test
|
||||
|
||||
@@ -69,6 +69,7 @@ func main() {
|
||||
| [GPS module](https://www.u-blox.com/en/product/neo-6-series) | I2C/UART |
|
||||
| [HUB75 RGB led matrix](https://cdn-learn.adafruit.com/downloads/pdf/32x16-32x32-rgb-led-matrix.pdf) | SPI |
|
||||
| [LIS3DH accelerometer](https://www.st.com/resource/en/datasheet/lis3dh.pdf) | I2C |
|
||||
| [LSM6DS3 accelerometer](https://www.st.com/resource/en/datasheet/lsm6ds3.pdf) | I2C |
|
||||
| [MAG3110 magnetometer](https://www.nxp.com/docs/en/data-sheet/MAG3110.pdf) | I2C |
|
||||
| [BBC micro:bit LED matrix](https://github.com/bbcmicrobit/hardware/blob/master/SCH_BBC-Microbit_V1.3B.pdf) | GPIO |
|
||||
| [Microphone - PDM](https://cdn-learn.adafruit.com/assets/assets/000/049/977/original/MP34DT01-M.pdf) | I2S/PDM |
|
||||
@@ -77,7 +78,11 @@ func main() {
|
||||
| [PCD8544 display](http://eia.udg.edu/~forest/PCD8544_1.pdf) | SPI |
|
||||
| [SHT3x Digital Humidity Sensor](https://www.sensirion.com/fileadmin/user_upload/customers/sensirion/Dokumente/0_Datasheets/Humidity/Sensirion_Humidity_Sensors_SHT3x_Datasheet_digital.pdf) | I2C |
|
||||
| [SSD1306 OLED display](https://cdn-shop.adafruit.com/datasheets/SSD1306.pdf) | I2C / SPI |
|
||||
| [SSD1331 TFT color display](https://www.crystalfontz.com/controllers/SolomonSystech/SSD1331/381/) | SPI |
|
||||
| [ST7735 TFT color display](https://www.crystalfontz.com/controllers/Sitronix/ST7735R/319/) | SPI |
|
||||
| [ST7789 TFT color display](https://cdn-shop.adafruit.com/product-files/3787/3787_tft_QT154H2201__________20190228182902.pdf) | SPI |
|
||||
| [Thermistor](https://www.farnell.com/datasheets/33552.pdf) | ADC |
|
||||
| [VEML6070 UV light sensor](https://www.vishay.com/docs/84277/veml6070.pdf) | I2C |
|
||||
| [VL53L1X time-of-flight distance sensor](https://www.st.com/resource/en/datasheet/vl53l1x.pdf) | I2C |
|
||||
| [Waveshare 2.13" e-paper display](https://www.waveshare.com/w/upload/e/e6/2.13inch_e-Paper_Datasheet.pdf) | SPI |
|
||||
| [Waveshare 2.13" (B & C) e-paper display](https://www.waveshare.com/w/upload/d/d3/2.13inch-e-paper-b-Specification.pdf) | SPI |
|
||||
|
||||
+15
-2
@@ -21,15 +21,28 @@ const (
|
||||
|
||||
// Device wraps APA102 SPI LEDs.
|
||||
type Device struct {
|
||||
bus machine.SPI
|
||||
bus SPI
|
||||
Order int
|
||||
}
|
||||
|
||||
// The SPI interface specifies the minimum functionality that a bus
|
||||
// implementation needs to provide for use by the APA102 driver. Hardware
|
||||
// SPI from the TinyGo "machine" package implements this already.
|
||||
type SPI interface {
|
||||
Tx(w, r []byte) error
|
||||
}
|
||||
|
||||
// New returns a new APA102 driver. Pass in a fully configured SPI bus.
|
||||
func New(b machine.SPI) Device {
|
||||
func New(b SPI) Device {
|
||||
return Device{bus: b, Order: BGR}
|
||||
}
|
||||
|
||||
// NewSoftwareSPI returns a new APA102 driver that will use a software based
|
||||
// implementation of the SPI protocol.
|
||||
func NewSoftwareSPI(sckPin, mosiPin machine.Pin, delay uint32) Device {
|
||||
return New(&bbSPI{SCK: sckPin, MOSI: mosiPin, Delay: delay})
|
||||
}
|
||||
|
||||
// WriteColors writes the given RGBA color slice out using the APA102 protocol.
|
||||
// The A value (Alpha channel) is used for brightness, set to 0xff (255) for maximum.
|
||||
func (d Device) WriteColors(cs []color.RGBA) (n int, err error) {
|
||||
|
||||
@@ -0,0 +1,68 @@
|
||||
package apa102
|
||||
|
||||
import "machine"
|
||||
|
||||
// bbSPI is a dumb bit-bang implementation of SPI protocol that is hardcoded
|
||||
// to mode 0 and ignores trying to receive data. Just enough for the APA102.
|
||||
// Note: making this unexported for now because it is probable not suitable
|
||||
// most purposes other than the APA102 package. It might be desirable to make
|
||||
// this more generic and include it in the TinyGo "machine" package instead.
|
||||
type bbSPI struct {
|
||||
SCK machine.Pin
|
||||
MOSI machine.Pin
|
||||
Delay uint32
|
||||
}
|
||||
|
||||
// Configure sets up the SCK and MOSI pins as outputs and sets them low
|
||||
func (s *bbSPI) Configure() {
|
||||
s.SCK.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
s.MOSI.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
s.SCK.Low()
|
||||
s.MOSI.Low()
|
||||
if s.Delay == 0 {
|
||||
s.Delay = 1
|
||||
}
|
||||
}
|
||||
|
||||
// Tx matches signature of machine.SPI.Tx() and is used to send multiple bytes.
|
||||
// The r slice is ignored and no error will ever be returned.
|
||||
func (s *bbSPI) Tx(w []byte, r []byte) error {
|
||||
s.Configure()
|
||||
for _, b := range w {
|
||||
s.Transfer(b)
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// delay represents a quarter of the clock cycle
|
||||
func (s *bbSPI) delay() {
|
||||
for i := uint32(0); i < s.Delay; {
|
||||
i++
|
||||
}
|
||||
}
|
||||
|
||||
// Transfer is used to send a single byte.
|
||||
func (s *bbSPI) Transfer(b byte) {
|
||||
for i := uint8(0); i < 8; i++ {
|
||||
|
||||
// half clock cycle high to start
|
||||
s.SCK.High()
|
||||
s.delay()
|
||||
|
||||
// write the value to MOSI (MSB first)
|
||||
if b&(1<<(7-i)) == 0 {
|
||||
s.MOSI.Low()
|
||||
} else {
|
||||
s.MOSI.High()
|
||||
}
|
||||
s.delay()
|
||||
|
||||
// half clock cycle low
|
||||
s.SCK.Low()
|
||||
s.delay()
|
||||
|
||||
// for actual SPI would try to read the MISO value here
|
||||
s.delay()
|
||||
|
||||
}
|
||||
}
|
||||
+3
-3
@@ -1,5 +1,5 @@
|
||||
// Package drivers provides a collection of hardware drivers for devices that
|
||||
// can be used together with TinyGo (https://tinygo.org).
|
||||
// Package drivers provides a collection of hardware drivers for TinyGo (https://tinygo.org)
|
||||
// for devices such as sensors and displays.
|
||||
//
|
||||
// Here is an example in TinyGo that uses the BMP180 digital barometer:
|
||||
//
|
||||
@@ -9,7 +9,7 @@
|
||||
// "time"
|
||||
// "machine"
|
||||
//
|
||||
// "github.com/tinygo-org/drivers/bmp180"
|
||||
// "tinygo.org/x/drivers/bmp180"
|
||||
// )
|
||||
//
|
||||
// func main() {
|
||||
|
||||
@@ -1,4 +1,4 @@
|
||||
// Simple driver to rotate a 4-wire stepper motor
|
||||
// Package easystepper provides a simple driver to rotate a 4-wire stepper motor.
|
||||
package easystepper // import "tinygo.org/x/drivers/easystepper"
|
||||
|
||||
import (
|
||||
|
||||
+3
-1
@@ -16,7 +16,9 @@ https://github.com/hybridgroup/esp32-at
|
||||
|
||||
To flash this firmware on the Arduino Nano33 IoT you will need to follow the following procedure:
|
||||
|
||||
- Using the normal Arduino software, load the `SerialNINAPassthrough` sketch on to the board.
|
||||
- Install _Arduino SAMD Boards_ from the Boards Manager.
|
||||
- Install _WiFiNANO_ from the Library Manager.
|
||||
- Using the normal Arduino software, load the `SerialNINAPassthrough` sketch on to the board (in File -> Examples -> WiFiNINA-> Tools).
|
||||
- Flash the NINA 102 firmware using the `make flash` command in the https://github.com/hybridgroup/esp32-at repo.
|
||||
|
||||
You only need to do this one time, and then the correct ESP-AT firmware will be on the NINA chip, and you can just flash the Arduino Nano33 IoT board using TinyGo. We should be able to remove some of these step in a future release of this software.
|
||||
|
||||
@@ -1,3 +1,5 @@
|
||||
// Package mqtt is intended to provide compatible interfaces with the
|
||||
// Paho mqtt library.
|
||||
package mqtt
|
||||
|
||||
import (
|
||||
|
||||
@@ -0,0 +1,84 @@
|
||||
// This example demostrates how to control the "Dotstar" (APA102) LED included
|
||||
// on the Adafruit Itsy Bitsy M0 board. It implements a "rainbow effect" based
|
||||
// on the following example:
|
||||
// https://github.com/adafruit/Adafruit_Learning_System_Guides/blob/master/CircuitPython_Essentials/CircuitPython_Internal_RGB_LED_rainbow.py
|
||||
package main
|
||||
|
||||
import (
|
||||
"image/color"
|
||||
"machine"
|
||||
"time"
|
||||
|
||||
"tinygo.org/x/drivers/apa102"
|
||||
)
|
||||
|
||||
var (
|
||||
apa apa102.Device
|
||||
|
||||
led = machine.PWM{machine.LED}
|
||||
leds = make([]color.RGBA, 1)
|
||||
wheel = &Wheel{Brightness: 0x10}
|
||||
)
|
||||
|
||||
func init() {
|
||||
|
||||
// APA102 on Itsy Bitsy is connected to pins that require a software-based
|
||||
// SPI implementation.
|
||||
apa = apa102.NewSoftwareSPI(machine.PA00, machine.PA01, 1)
|
||||
|
||||
// Configure the regular on-board LED for PWM fading
|
||||
machine.InitPWM()
|
||||
led.Configure()
|
||||
|
||||
}
|
||||
|
||||
func main() {
|
||||
|
||||
// We'll fade the on-board LED in a goroutine to show/ensure that the APA102
|
||||
// works fine with the scheduler enabled. Comment this out to test this code
|
||||
// with the scheduler disabled.
|
||||
go func() {
|
||||
for i, brightening := uint8(0), false; ; i++ {
|
||||
if i == 0 {
|
||||
brightening = !brightening
|
||||
continue
|
||||
}
|
||||
var brightness uint16 = uint16(i) << 8
|
||||
if !brightening {
|
||||
brightness = 0xFFFF - brightness
|
||||
}
|
||||
led.Set(brightness)
|
||||
time.Sleep(5 * time.Millisecond)
|
||||
}
|
||||
}()
|
||||
|
||||
// Use the "wheel" function from Adafruit's example to cycle the APA102
|
||||
for {
|
||||
leds[0] = wheel.Next()
|
||||
apa.WriteColors(leds)
|
||||
time.Sleep(25 * time.Millisecond)
|
||||
}
|
||||
|
||||
}
|
||||
|
||||
// Wheel is a port of Adafruit's Circuit Python example referenced above.
|
||||
type Wheel struct {
|
||||
Brightness uint8
|
||||
pos uint8
|
||||
}
|
||||
|
||||
// Next increments the internal state of the color and returns the new RGBA
|
||||
func (w *Wheel) Next() (c color.RGBA) {
|
||||
pos := w.pos
|
||||
if w.pos < 85 {
|
||||
c = color.RGBA{R: 0xFF - pos*3, G: pos * 3, B: 0x0, A: w.Brightness}
|
||||
} else if w.pos < 170 {
|
||||
pos -= 85
|
||||
c = color.RGBA{R: 0x0, G: 0xFF - pos*3, B: pos * 3, A: w.Brightness}
|
||||
} else {
|
||||
pos -= 170
|
||||
c = color.RGBA{R: pos * 3, G: 0x0, B: 0xFF - pos*3, A: w.Brightness}
|
||||
}
|
||||
w.pos++
|
||||
return
|
||||
}
|
||||
@@ -23,11 +23,12 @@ const actAsAP = false
|
||||
const ssid = "YOURSSID"
|
||||
const pass = "YOURPASS"
|
||||
|
||||
// these are the default pins for the Arduino Nano33 IoT.
|
||||
// change these to connect to a different UART or pins for the ESP8266/ESP32
|
||||
var (
|
||||
uart = machine.UART1
|
||||
tx = machine.D10
|
||||
rx = machine.D11
|
||||
uart = machine.UART2
|
||||
tx = machine.PA22
|
||||
rx = machine.PA23
|
||||
|
||||
console = machine.UART0
|
||||
|
||||
|
||||
@@ -21,11 +21,12 @@ const actAsAP = false
|
||||
const ssid = "YOURSSID"
|
||||
const pass = "YOURPASS"
|
||||
|
||||
// these are the default pins for the Arduino Nano33 IoT.
|
||||
// change these to connect to a different UART or pins for the ESP8266/ESP32
|
||||
var (
|
||||
uart = machine.UART1
|
||||
tx = machine.D10
|
||||
rx = machine.D11
|
||||
uart = machine.UART2
|
||||
tx = machine.PA22
|
||||
rx = machine.PA23
|
||||
|
||||
adaptor *espat.Device
|
||||
)
|
||||
|
||||
@@ -21,11 +21,12 @@ const pass = "YOURPASS"
|
||||
// IP address of the listener aka "hub". Replace with your own info.
|
||||
const hubIP = "0.0.0.0"
|
||||
|
||||
// these are the default pins for the Arduino Nano33 IoT.
|
||||
// change these to connect to a different UART or pins for the ESP8266/ESP32
|
||||
var (
|
||||
uart = machine.UART1
|
||||
tx = machine.D10
|
||||
rx = machine.D11
|
||||
uart = machine.UART2
|
||||
tx = machine.PA22
|
||||
rx = machine.PA23
|
||||
|
||||
adaptor *espat.Device
|
||||
)
|
||||
|
||||
@@ -28,11 +28,12 @@ const pass = "YOURPASS"
|
||||
//const server = "tcp://test.mosquitto.org:1883"
|
||||
const server = "ssl://test.mosquitto.org:8883"
|
||||
|
||||
// these are the default pins for the Arduino Nano33 IoT.
|
||||
// change these to connect to a different UART or pins for the ESP8266/ESP32
|
||||
var (
|
||||
uart = machine.UART1
|
||||
tx = machine.D10
|
||||
rx = machine.D11
|
||||
uart = machine.UART2
|
||||
tx = machine.PA22
|
||||
rx = machine.PA23
|
||||
|
||||
console = machine.UART0
|
||||
|
||||
|
||||
@@ -21,9 +21,10 @@ const pass = "YOURPASS"
|
||||
// IP address of the server aka "hub". Replace with your own info.
|
||||
const serverIP = "0.0.0.0"
|
||||
|
||||
// these are the default pins for the Arduino Nano33 IoT.
|
||||
// change these to connect to a different UART or pins for the ESP8266/ESP32
|
||||
var (
|
||||
uart = machine.UART1
|
||||
uart = machine.UART2
|
||||
tx = machine.PA22
|
||||
rx = machine.PA23
|
||||
|
||||
|
||||
@@ -11,7 +11,7 @@ import (
|
||||
var i2c = machine.I2C1
|
||||
|
||||
func main() {
|
||||
i2c.Configure(machine.I2CConfig{})
|
||||
i2c.Configure(machine.I2CConfig{SCL: machine.SCL1_PIN, SDA: machine.SDA1_PIN})
|
||||
|
||||
accel := lis3dh.New(i2c)
|
||||
accel.Address = lis3dh.Address1 // address on the Circuit Playground Express
|
||||
|
||||
@@ -0,0 +1,30 @@
|
||||
// Connects to an LSM6DS3 I2C a 6 axis Inertial Measurement Unit (IMU)
|
||||
package main
|
||||
|
||||
import (
|
||||
"machine"
|
||||
"time"
|
||||
|
||||
"tinygo.org/x/drivers/lsm6ds3"
|
||||
)
|
||||
|
||||
func main() {
|
||||
machine.I2C0.Configure(machine.I2CConfig{})
|
||||
|
||||
accel := lsm6ds3.New(machine.I2C0)
|
||||
accel.Configure(lsm6ds3.Configuration{})
|
||||
if !accel.Connected() {
|
||||
println("LSM6DS3 not connected")
|
||||
return
|
||||
}
|
||||
|
||||
for {
|
||||
x, y, z := accel.ReadAcceleration()
|
||||
println("Acceleration:", float32(x)/1000000, float32(y)/1000000, float32(z)/1000000)
|
||||
x, y, z = accel.ReadRotation()
|
||||
println("Gyroscope:", float32(x)/1000000, float32(y)/1000000, float32(z)/1000000)
|
||||
x, _ = accel.ReadTemperature()
|
||||
println("Degrees C", float32(x)/1000, "\n\n")
|
||||
time.Sleep(time.Millisecond * 1000)
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,33 @@
|
||||
package ssd1331
|
||||
|
||||
import (
|
||||
"machine"
|
||||
|
||||
"image/color"
|
||||
|
||||
"tinygo.org/x/drivers/ssd1331"
|
||||
)
|
||||
|
||||
func main() {
|
||||
machine.SPI0.Configure(machine.SPIConfig{
|
||||
Frequency: 8000000,
|
||||
})
|
||||
display := ssd1331.New(machine.SPI0, machine.P6, machine.P7, machine.P8)
|
||||
display.Configure(ssd1331.Config{})
|
||||
display.SetContrast(0x30, 0x20, 0x30)
|
||||
width, height := display.Size()
|
||||
|
||||
white := color.RGBA{255, 255, 255, 255}
|
||||
red := color.RGBA{255, 0, 0, 255}
|
||||
blue := color.RGBA{0, 0, 255, 255}
|
||||
green := color.RGBA{0, 255, 0, 255}
|
||||
black := color.RGBA{0, 0, 0, 255}
|
||||
|
||||
display.FillScreen(black)
|
||||
|
||||
display.FillRectangle(0, 0, width/2, height/2, white)
|
||||
display.FillRectangle(width/2, 0, width/2, height/2, red)
|
||||
display.FillRectangle(0, height/2, width/2, height/2, green)
|
||||
display.FillRectangle(width/2, height/2, width/2, height/2, blue)
|
||||
display.FillRectangle(width/4, height/4, width/2, height/2, black)
|
||||
}
|
||||
@@ -0,0 +1,33 @@
|
||||
package main
|
||||
|
||||
import (
|
||||
"machine"
|
||||
|
||||
"image/color"
|
||||
|
||||
"tinygo.org/x/drivers/st7735"
|
||||
)
|
||||
|
||||
func main() {
|
||||
machine.SPI0.Configure(machine.SPIConfig{
|
||||
Frequency: 8000000,
|
||||
})
|
||||
display := st7735.New(machine.SPI0, machine.P6, machine.P7, machine.P8, machine.P9)
|
||||
display.Configure(st7735.Config{})
|
||||
|
||||
width, height := display.Size()
|
||||
|
||||
white := color.RGBA{255, 255, 255, 255}
|
||||
red := color.RGBA{255, 0, 0, 255}
|
||||
blue := color.RGBA{0, 0, 255, 255}
|
||||
green := color.RGBA{0, 255, 0, 255}
|
||||
black := color.RGBA{0, 0, 0, 255}
|
||||
|
||||
display.FillScreen(black)
|
||||
|
||||
display.FillRectangle(0, 0, width/2, height/2, white)
|
||||
display.FillRectangle(width/2, 0, width/2, height/2, red)
|
||||
display.FillRectangle(0, height/2, width/2, height/2, green)
|
||||
display.FillRectangle(width/2, height/2, width/2, height/2, blue)
|
||||
display.FillRectangle(width/4, height/4, width/2, height/2, black)
|
||||
}
|
||||
@@ -0,0 +1,34 @@
|
||||
package main
|
||||
|
||||
import (
|
||||
"machine"
|
||||
|
||||
"image/color"
|
||||
|
||||
"tinygo.org/x/drivers/st7789"
|
||||
)
|
||||
|
||||
func main() {
|
||||
machine.SPI0.Configure(machine.SPIConfig{
|
||||
Frequency: 8000000,
|
||||
Mode: 3,
|
||||
})
|
||||
display := st7789.New(machine.SPI0, machine.P6, machine.P7, machine.P8)
|
||||
display.Configure(st7789.Config{Rotation: st7789.NO_ROTATION})
|
||||
|
||||
width, height := display.Size()
|
||||
|
||||
white := color.RGBA{255, 255, 255, 255}
|
||||
red := color.RGBA{255, 0, 0, 255}
|
||||
blue := color.RGBA{0, 0, 255, 255}
|
||||
green := color.RGBA{0, 255, 0, 255}
|
||||
black := color.RGBA{0, 0, 0, 255}
|
||||
|
||||
display.FillScreen(black)
|
||||
|
||||
display.FillRectangle(0, 0, width/2, height/2, white)
|
||||
display.FillRectangle(width/2, 0, width/2, height/2, red)
|
||||
display.FillRectangle(0, height/2, width/2, height/2, green)
|
||||
display.FillRectangle(width/2, height/2, width/2, height/2, blue)
|
||||
display.FillRectangle(width/4, height/4, width/2, height/2, black)
|
||||
}
|
||||
@@ -0,0 +1,41 @@
|
||||
package main
|
||||
|
||||
import (
|
||||
"time"
|
||||
|
||||
"machine"
|
||||
|
||||
"tinygo.org/x/drivers/veml6070"
|
||||
)
|
||||
|
||||
func main() {
|
||||
machine.I2C0.Configure(machine.I2CConfig{})
|
||||
sensor := veml6070.New(machine.I2C0)
|
||||
|
||||
if !sensor.Configure() {
|
||||
println("VEML6070 could not be configured")
|
||||
return
|
||||
}
|
||||
|
||||
println("VEML6070 configured")
|
||||
|
||||
for {
|
||||
intensity, _ := sensor.ReadUVALightIntensity()
|
||||
println("UVA light intensity:", float32(intensity)/1000.0, "W/(m*m)")
|
||||
|
||||
switch sensor.GetEstimatedRiskLevel(intensity) {
|
||||
case veml6070.UVI_RISK_LOW:
|
||||
println("UV risk level: low")
|
||||
case veml6070.UVI_RISK_MODERATE:
|
||||
println("UV risk level: moderate")
|
||||
case veml6070.UVI_RISK_HIGH:
|
||||
println("UV risk level: high")
|
||||
case veml6070.UVI_RISK_VERY_HIGH:
|
||||
println("UV risk level: very high")
|
||||
case veml6070.UVI_RISK_EXTREME:
|
||||
println("UV risk level: extreme")
|
||||
}
|
||||
|
||||
time.Sleep(2 * time.Second)
|
||||
}
|
||||
}
|
||||
+1
-1
@@ -1,4 +1,4 @@
|
||||
// Package lis3dh provides a driver for the HD44780 LCD controller.
|
||||
// Package hd44780 provides a driver for the HD44780 LCD controller.
|
||||
//
|
||||
// Datasheet: https://www.sparkfun.com/datasheets/LCD/HD44780.pdf
|
||||
//
|
||||
|
||||
@@ -0,0 +1,183 @@
|
||||
// Package lsm6ds3 implements a driver for the LSM6DS3 a 6 axis Inertial
|
||||
// Measurement Unit (IMU)
|
||||
//
|
||||
// Datasheet: https://www.st.com/resource/en/datasheet/lsm6ds3.pdf
|
||||
//
|
||||
package lsm6ds3 // import "tinygo.org/x/drivers/lsm6ds3"
|
||||
|
||||
import (
|
||||
"machine"
|
||||
)
|
||||
|
||||
type AccelRange uint8
|
||||
type AccelSampleRate uint8
|
||||
type AccelBandwidth uint8
|
||||
|
||||
type GyroRange uint8
|
||||
type GyroSampleRate uint8
|
||||
|
||||
// Device wraps an I2C connection to a LSM6DS3 device.
|
||||
type Device struct {
|
||||
bus machine.I2C
|
||||
Address uint16
|
||||
accelRange AccelRange
|
||||
accelSampleRate AccelSampleRate
|
||||
accelBandWidth AccelBandwidth
|
||||
gyroRange GyroRange
|
||||
gyroSampleRate GyroSampleRate
|
||||
dataBufferSix []uint8
|
||||
dataBufferTwo []uint8
|
||||
}
|
||||
|
||||
// Configuration for LSM6DS3 device.
|
||||
type Configuration struct {
|
||||
AccelRange AccelRange
|
||||
AccelSampleRate AccelSampleRate
|
||||
AccelBandWidth AccelBandwidth
|
||||
GyroRange GyroRange
|
||||
GyroSampleRate GyroSampleRate
|
||||
IsPedometer bool
|
||||
ResetStepCounter bool
|
||||
}
|
||||
|
||||
// New creates a new LSM6DS3 connection. The I2C bus must already be
|
||||
// configured.
|
||||
//
|
||||
// This function only creates the Device object, it does not touch the device.
|
||||
func New(bus machine.I2C) Device {
|
||||
return Device{bus: bus, Address: Address}
|
||||
}
|
||||
|
||||
// Configure sets up the device for communication.
|
||||
func (d *Device) Configure(cfg Configuration) {
|
||||
if cfg.AccelRange != 0 {
|
||||
d.accelRange = cfg.AccelRange
|
||||
} else {
|
||||
d.accelRange = ACCEL_2G
|
||||
}
|
||||
|
||||
if cfg.AccelSampleRate != 0 {
|
||||
d.accelSampleRate = cfg.AccelSampleRate
|
||||
} else {
|
||||
d.accelSampleRate = ACCEL_SR_104
|
||||
}
|
||||
|
||||
if cfg.AccelBandWidth != 0 {
|
||||
d.accelBandWidth = cfg.AccelBandWidth
|
||||
} else {
|
||||
d.accelBandWidth = ACCEL_BW_100
|
||||
}
|
||||
|
||||
if cfg.GyroRange != 0 {
|
||||
d.gyroRange = cfg.GyroRange
|
||||
} else {
|
||||
d.gyroRange = GYRO_2000DPS
|
||||
}
|
||||
|
||||
if cfg.GyroSampleRate != 0 {
|
||||
d.gyroSampleRate = cfg.GyroSampleRate
|
||||
} else {
|
||||
d.gyroSampleRate = GYRO_SR_104
|
||||
}
|
||||
|
||||
d.dataBufferSix = make([]uint8, 6)
|
||||
d.dataBufferTwo = make([]uint8, 2)
|
||||
|
||||
if cfg.IsPedometer { // CONFIGURE AS PEDOMETER
|
||||
// Configure accelerometer: 2G + 26Hz
|
||||
d.bus.WriteRegister(uint8(d.Address), CTRL1_XL, []byte{uint8(ACCEL_2G) | uint8(ACCEL_SR_26)})
|
||||
|
||||
// Configure Zen_G, Yen_G, Xen_G, reset steps
|
||||
if cfg.ResetStepCounter {
|
||||
d.bus.WriteRegister(uint8(d.Address), CTRL10_C, []byte{0x3E})
|
||||
} else {
|
||||
d.bus.WriteRegister(uint8(d.Address), CTRL10_C, []byte{0x3C})
|
||||
}
|
||||
|
||||
// Enable pedometer
|
||||
d.bus.WriteRegister(uint8(d.Address), TAP_CFG, []byte{0x40})
|
||||
} else { // NORMAL USE
|
||||
// Configure accelerometer
|
||||
data := make([]uint8, 1)
|
||||
data[0] = uint8(d.accelRange) | uint8(d.accelSampleRate) | uint8(d.accelBandWidth)
|
||||
d.bus.WriteRegister(uint8(d.Address), CTRL1_XL, data)
|
||||
|
||||
// Set ODR bit
|
||||
d.bus.ReadRegister(uint8(d.Address), CTRL4_C, data)
|
||||
data[0] = data[0] &^ BW_SCAL_ODR_ENABLED
|
||||
data[0] |= BW_SCAL_ODR_ENABLED
|
||||
d.bus.WriteRegister(uint8(d.Address), CTRL4_C, data)
|
||||
|
||||
// Configure gyroscope
|
||||
data[0] = uint8(d.gyroRange) | uint8(d.gyroSampleRate)
|
||||
d.bus.WriteRegister(uint8(d.Address), CTRL2_G, data)
|
||||
}
|
||||
}
|
||||
|
||||
// Connected returns whether a LSM6DS3 has been found.
|
||||
// It does a "who am I" request and checks the response.
|
||||
func (d *Device) Connected() bool {
|
||||
data := []byte{0}
|
||||
d.bus.ReadRegister(uint8(d.Address), WHO_AM_I, data)
|
||||
return data[0] == 0x69
|
||||
}
|
||||
|
||||
// ReadAcceleration reads the current acceleration from the device and returns
|
||||
// it in µg (micro-gravity). When one of the axes is pointing straight to Earth
|
||||
// and the sensor is not moving the returned value will be around 1000000 or
|
||||
// -1000000.
|
||||
func (d *Device) ReadAcceleration() (x int32, y int32, z int32) {
|
||||
d.bus.ReadRegister(uint8(d.Address), OUTX_L_XL, d.dataBufferSix)
|
||||
// k comes from "Table 3. Mechanical characteristics" 3 of the datasheet * 1000
|
||||
k := int32(61) // 2G
|
||||
if d.accelRange == ACCEL_4G {
|
||||
k = 122
|
||||
} else if d.accelRange == ACCEL_8G {
|
||||
k = 244
|
||||
} else if d.accelRange == ACCEL_16G {
|
||||
k = 488
|
||||
}
|
||||
x = int32(int16((uint16(d.dataBufferSix[1])<<8)|uint16(d.dataBufferSix[0]))) * k
|
||||
y = int32(int16((uint16(d.dataBufferSix[3])<<8)|uint16(d.dataBufferSix[2]))) * k
|
||||
z = int32(int16((uint16(d.dataBufferSix[5])<<8)|uint16(d.dataBufferSix[4]))) * k
|
||||
return
|
||||
}
|
||||
|
||||
// ReadRotation reads the current rotation from the device and returns it in
|
||||
// µ°/s (micro-degrees/sec). This means that if you were to do a complete
|
||||
// rotation along one axis and while doing so integrate all values over time,
|
||||
// you would get a value close to 360000000.
|
||||
func (d *Device) ReadRotation() (x int32, y int32, z int32) {
|
||||
d.bus.ReadRegister(uint8(d.Address), OUTX_L_G, d.dataBufferSix)
|
||||
// k comes from "Table 3. Mechanical characteristics" 3 of the datasheet * 1000
|
||||
k := int32(4375) // 125DPS
|
||||
if d.gyroRange == GYRO_250DPS {
|
||||
k = 8750
|
||||
} else if d.gyroRange == GYRO_500DPS {
|
||||
k = 17500
|
||||
} else if d.gyroRange == GYRO_1000DPS {
|
||||
k = 35000
|
||||
} else if d.gyroRange == GYRO_2000DPS {
|
||||
k = 70000
|
||||
}
|
||||
x = int32(int16((uint16(d.dataBufferSix[1])<<8)|uint16(d.dataBufferSix[0]))) * k
|
||||
y = int32(int16((uint16(d.dataBufferSix[3])<<8)|uint16(d.dataBufferSix[2]))) * k
|
||||
z = int32(int16((uint16(d.dataBufferSix[5])<<8)|uint16(d.dataBufferSix[4]))) * k
|
||||
return
|
||||
}
|
||||
|
||||
// ReadTemperature returns the temperature in celsius milli degrees (ºC/1000)
|
||||
func (d *Device) ReadTemperature() (int32, error) {
|
||||
d.bus.ReadRegister(uint8(d.Address), OUT_TEMP_L, d.dataBufferTwo)
|
||||
|
||||
// From "Table 5. Temperature sensor characteristics"
|
||||
// temp = value/16 + 25
|
||||
t := 25000 + (int32(int16((int16(d.dataBufferTwo[1])<<8)|int16(d.dataBufferTwo[0])))*125)/2
|
||||
return t, nil
|
||||
}
|
||||
|
||||
// ReadSteps returns the steps of the pedometer
|
||||
func (d *Device) ReadSteps() int32 {
|
||||
d.bus.ReadRegister(uint8(d.Address), STEP_COUNTER_L, d.dataBufferTwo)
|
||||
return int32(int16((uint16(d.dataBufferTwo[1]) << 8) | uint16(d.dataBufferTwo[0])))
|
||||
}
|
||||
@@ -0,0 +1,83 @@
|
||||
package lsm6ds3
|
||||
|
||||
// Constants/addresses used for I2C.
|
||||
|
||||
// The I2C address which this device listens to.
|
||||
const Address = 0x6A
|
||||
|
||||
const (
|
||||
WHO_AM_I = 0x0F
|
||||
STATUS = 0x1E
|
||||
CTRL1_XL = 0x10
|
||||
CTRL2_G = 0x11
|
||||
CTRL3_C = 0x12
|
||||
CTRL4_C = 0x13
|
||||
CTRL5_C = 0x14
|
||||
CTRL6_C = 0x15
|
||||
CTRL7_G = 0x16
|
||||
CTRL8_XL = 0x17
|
||||
CTRL9_XL = 0x18
|
||||
CTRL10_C = 0x19
|
||||
OUTX_L_G = 0x22
|
||||
OUTX_H_G = 0x23
|
||||
OUTY_L_G = 0x24
|
||||
OUTY_H_G = 0x25
|
||||
OUTZ_L_G = 0x26
|
||||
OUTZ_H_G = 0x27
|
||||
OUTX_L_XL = 0x28
|
||||
OUTX_H_XL = 0x29
|
||||
OUTY_L_XL = 0x2A
|
||||
OUTY_H_XL = 0x2B
|
||||
OUTZ_L_XL = 0x2C
|
||||
OUTZ_H_XL = 0x2D
|
||||
OUT_TEMP_L = 0x20
|
||||
OUT_TEMP_H = 0x21
|
||||
BW_SCAL_ODR_DISABLED = 0x00
|
||||
BW_SCAL_ODR_ENABLED = 0x80
|
||||
STEP_TIMESTAMP_L = 0x49
|
||||
STEP_TIMESTAMP_H = 0x4A
|
||||
STEP_COUNTER_L = 0x4B
|
||||
STEP_COUNTER_H = 0x4C
|
||||
STEP_COUNT_DELTA = 0x15
|
||||
TAP_CFG = 0x58
|
||||
INT1_CTRL = 0x0D
|
||||
|
||||
ACCEL_2G AccelRange = 0x00
|
||||
ACCEL_4G AccelRange = 0x08
|
||||
ACCEL_8G AccelRange = 0x0C
|
||||
ACCEL_16G AccelRange = 0x04
|
||||
|
||||
ACCEL_SR_OFF AccelSampleRate = 0x00
|
||||
ACCEL_SR_13 AccelSampleRate = 0x10
|
||||
ACCEL_SR_26 AccelSampleRate = 0x20
|
||||
ACCEL_SR_52 AccelSampleRate = 0x30
|
||||
ACCEL_SR_104 AccelSampleRate = 0x40
|
||||
ACCEL_SR_208 AccelSampleRate = 0x50
|
||||
ACCEL_SR_416 AccelSampleRate = 0x60
|
||||
ACCEL_SR_833 AccelSampleRate = 0x70
|
||||
ACCEL_SR_1666 AccelSampleRate = 0x80
|
||||
ACCEL_SR_3332 AccelSampleRate = 0x90
|
||||
ACCEL_SR_6664 AccelSampleRate = 0xA0
|
||||
ACCEL_SR_13330 AccelSampleRate = 0xB0
|
||||
|
||||
ACCEL_BW_50 AccelBandwidth = 0x03
|
||||
ACCEL_BW_100 AccelBandwidth = 0x02
|
||||
ACCEL_BW_200 AccelBandwidth = 0x01
|
||||
ACCEL_BW_400 AccelBandwidth = 0x00
|
||||
|
||||
//GYRO_125DPS GyroRange = 0x01
|
||||
GYRO_250DPS GyroRange = 0x00
|
||||
GYRO_500DPS GyroRange = 0x04
|
||||
GYRO_1000DPS GyroRange = 0x08
|
||||
GYRO_2000DPS GyroRange = 0x0C
|
||||
|
||||
GYRO_SR_OFF GyroSampleRate = 0x00
|
||||
GYRO_SR_13 GyroSampleRate = 0x10
|
||||
GYRO_SR_26 GyroSampleRate = 0x20
|
||||
GYRO_SR_52 GyroSampleRate = 0x30
|
||||
GYRO_SR_104 GyroSampleRate = 0x40
|
||||
GYRO_SR_208 GyroSampleRate = 0x50
|
||||
GYRO_SR_416 GyroSampleRate = 0x60
|
||||
GYRO_SR_833 GyroSampleRate = 0x70
|
||||
GYRO_SR_1666 GyroSampleRate = 0x80
|
||||
)
|
||||
@@ -0,0 +1,33 @@
|
||||
package ssd1331
|
||||
|
||||
// Registers
|
||||
const (
|
||||
DRAWLINE = 0x21
|
||||
DRAWRECT = 0x22
|
||||
FILL = 0x26
|
||||
SETCOLUMN = 0x15
|
||||
SETROW = 0x75
|
||||
CONTRASTA = 0x81
|
||||
CONTRASTB = 0x82
|
||||
CONTRASTC = 0x83
|
||||
MASTERCURRENT = 0x87
|
||||
SETREMAP = 0xA0
|
||||
STARTLINE = 0xA1
|
||||
DISPLAYOFFSET = 0xA2
|
||||
NORMALDISPLAY = 0xA4
|
||||
DISPLAYALLON = 0xA5
|
||||
DISPLAYALLOFF = 0xA6
|
||||
INVERTDISPLAY = 0xA7
|
||||
SETMULTIPLEX = 0xA8
|
||||
SETMASTER = 0xAD
|
||||
DISPLAYOFF = 0xAE
|
||||
DISPLAYON = 0xAF
|
||||
POWERMODE = 0xB0
|
||||
PRECHARGE = 0xB1
|
||||
CLOCKDIV = 0xB3
|
||||
PRECHARGEA = 0x8A
|
||||
PRECHARGEB = 0x8B
|
||||
PRECHARGEC = 0x8C
|
||||
PRECHARGELEVEL = 0xBB
|
||||
VCOMH = 0xBE
|
||||
)
|
||||
@@ -0,0 +1,273 @@
|
||||
// Package ssd1331 implements a driver for the SSD1331 TFT color displays.
|
||||
//
|
||||
// Datasheet: https://www.crystalfontz.com/controllers/SolomonSystech/SSD1331/381/
|
||||
//
|
||||
package ssd1331 // import "tinygo.org/x/drivers/ssd1331"
|
||||
|
||||
import (
|
||||
"image/color"
|
||||
"machine"
|
||||
|
||||
"errors"
|
||||
"time"
|
||||
)
|
||||
|
||||
type Model uint8
|
||||
type Rotation uint8
|
||||
|
||||
// Device wraps an SPI connection.
|
||||
type Device struct {
|
||||
bus machine.SPI
|
||||
dcPin machine.Pin
|
||||
resetPin machine.Pin
|
||||
csPin machine.Pin
|
||||
width int16
|
||||
height int16
|
||||
batchLength int16
|
||||
isBGR bool
|
||||
batchData []uint8
|
||||
}
|
||||
|
||||
// Config is the configuration for the display
|
||||
type Config struct {
|
||||
Width int16
|
||||
Height int16
|
||||
}
|
||||
|
||||
// New creates a new SSD1331 connection. The SPI wire must already be configured.
|
||||
func New(bus machine.SPI, resetPin, dcPin, csPin machine.Pin) Device {
|
||||
dcPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
resetPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
csPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
return Device{
|
||||
bus: bus,
|
||||
dcPin: dcPin,
|
||||
resetPin: resetPin,
|
||||
csPin: csPin,
|
||||
}
|
||||
}
|
||||
|
||||
// Configure initializes the display with default configuration
|
||||
func (d *Device) Configure(cfg Config) {
|
||||
if cfg.Width != 0 {
|
||||
d.width = cfg.Width
|
||||
} else {
|
||||
d.width = 96
|
||||
}
|
||||
if cfg.Height != 0 {
|
||||
d.height = cfg.Height
|
||||
} else {
|
||||
d.height = 64
|
||||
}
|
||||
|
||||
d.batchLength = d.width
|
||||
if d.height > d.width {
|
||||
d.batchLength = d.height
|
||||
}
|
||||
d.batchLength += d.batchLength & 1
|
||||
d.batchData = make([]uint8, d.batchLength*2)
|
||||
|
||||
// reset the device
|
||||
d.resetPin.High()
|
||||
time.Sleep(100 * time.Millisecond)
|
||||
d.resetPin.Low()
|
||||
time.Sleep(100 * time.Millisecond)
|
||||
d.resetPin.High()
|
||||
time.Sleep(200 * time.Millisecond)
|
||||
|
||||
// Initialization
|
||||
d.Command(DISPLAYOFF)
|
||||
d.Command(SETREMAP)
|
||||
d.Command(0x72) // RGB
|
||||
//d.Command(0x76) // BGR
|
||||
d.Command(STARTLINE)
|
||||
d.Command(0x0)
|
||||
d.Command(DISPLAYOFFSET)
|
||||
d.Command(0x0)
|
||||
d.Command(NORMALDISPLAY)
|
||||
d.Command(SETMULTIPLEX)
|
||||
d.Command(0x3F)
|
||||
d.Command(SETMASTER)
|
||||
d.Command(0x8E)
|
||||
d.Command(POWERMODE)
|
||||
d.Command(0x0B)
|
||||
d.Command(PRECHARGE)
|
||||
d.Command(0x31)
|
||||
d.Command(CLOCKDIV)
|
||||
d.Command(0xF0)
|
||||
d.Command(PRECHARGEA)
|
||||
d.Command(0x64)
|
||||
d.Command(PRECHARGEB)
|
||||
d.Command(0x78)
|
||||
d.Command(PRECHARGEC)
|
||||
d.Command(0x64)
|
||||
d.Command(PRECHARGELEVEL)
|
||||
d.Command(0x3A)
|
||||
d.Command(VCOMH)
|
||||
d.Command(0x3E)
|
||||
d.Command(MASTERCURRENT)
|
||||
d.Command(0x06)
|
||||
d.Command(CONTRASTA)
|
||||
d.Command(0x91)
|
||||
d.Command(CONTRASTB)
|
||||
d.Command(0x50)
|
||||
d.Command(CONTRASTC)
|
||||
d.Command(0x7D)
|
||||
d.Command(DISPLAYON)
|
||||
}
|
||||
|
||||
// Display does nothing, there's no buffer as it might be too big for some boards
|
||||
func (d *Device) Display() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
// SetPixel sets a pixel in the screen
|
||||
func (d *Device) SetPixel(x int16, y int16, c color.RGBA) {
|
||||
if x < 0 || y < 0 || x >= d.width || y >= d.height {
|
||||
return
|
||||
}
|
||||
d.FillRectangle(x, y, 1, 1, c)
|
||||
}
|
||||
|
||||
// setWindow prepares the screen to be modified at a given rectangle
|
||||
func (d *Device) setWindow(x, y, w, h int16) {
|
||||
/*d.Tx([]uint8{SETCOLUMN}, true)
|
||||
d.Tx([]uint8{uint8(x), uint8(x + w - 1)}, false)
|
||||
d.Tx([]uint8{SETROW}, true)
|
||||
d.Tx([]uint8{uint8(y), uint8(y + h - 1)}, false)*/
|
||||
d.Command(SETCOLUMN)
|
||||
d.Command(uint8(x))
|
||||
d.Command(uint8(x + w - 1))
|
||||
d.Command(SETROW)
|
||||
d.Command(uint8(y))
|
||||
d.Command(uint8(y + h - 1))
|
||||
}
|
||||
|
||||
// FillRectangle fills a rectangle at a given coordinates with a color
|
||||
func (d *Device) FillRectangle(x, y, width, height int16, c color.RGBA) error {
|
||||
if x < 0 || y < 0 || width <= 0 || height <= 0 ||
|
||||
x >= d.width || (x+width) > d.width || y >= d.height || (y+height) > d.height {
|
||||
return errors.New("rectangle coordinates outside display area")
|
||||
}
|
||||
d.setWindow(x, y, width, height)
|
||||
c565 := RGBATo565(c)
|
||||
c1 := uint8(c565 >> 8)
|
||||
c2 := uint8(c565)
|
||||
|
||||
var i int16
|
||||
for i = 0; i < d.batchLength; i++ {
|
||||
d.batchData[i*2] = c1
|
||||
d.batchData[i*2+1] = c2
|
||||
}
|
||||
i = width * height
|
||||
for i > 0 {
|
||||
if i >= d.batchLength {
|
||||
d.Tx(d.batchData, false)
|
||||
} else {
|
||||
d.Tx(d.batchData[:i*2], false)
|
||||
}
|
||||
i -= d.batchLength
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// FillRectangle fills a rectangle at a given coordinates with a buffer
|
||||
func (d *Device) FillRectangleWithBuffer(x, y, width, height int16, buffer []color.RGBA) error {
|
||||
if x < 0 || y < 0 || width <= 0 || height <= 0 ||
|
||||
x >= d.width || (x+width) > d.width || y >= d.height || (y+height) > d.height {
|
||||
return errors.New("rectangle coordinates outside display area")
|
||||
}
|
||||
k := width * height
|
||||
l := int16(len(buffer))
|
||||
if k != l {
|
||||
return errors.New("buffer length does not match with rectangle size")
|
||||
}
|
||||
|
||||
d.setWindow(x, y, width, height)
|
||||
|
||||
offset := int16(0)
|
||||
for k > 0 {
|
||||
for i := int16(0); i < d.batchLength; i++ {
|
||||
if offset+i < l {
|
||||
c565 := RGBATo565(buffer[offset+i])
|
||||
c1 := uint8(c565 >> 8)
|
||||
c2 := uint8(c565)
|
||||
d.batchData[i*2] = c1
|
||||
d.batchData[i*2+1] = c2
|
||||
}
|
||||
}
|
||||
if k >= d.batchLength {
|
||||
d.Tx(d.batchData, false)
|
||||
} else {
|
||||
d.Tx(d.batchData[:k*2], false)
|
||||
}
|
||||
k -= d.batchLength
|
||||
offset += d.batchLength
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// DrawFastVLine draws a vertical line faster than using SetPixel
|
||||
func (d *Device) DrawFastVLine(x, y0, y1 int16, c color.RGBA) {
|
||||
if y0 > y1 {
|
||||
y0, y1 = y1, y0
|
||||
}
|
||||
d.FillRectangle(x, y0, 1, y1-y0+1, c)
|
||||
}
|
||||
|
||||
// DrawFastHLine draws a horizontal line faster than using SetPixel
|
||||
func (d *Device) DrawFastHLine(x0, x1, y int16, c color.RGBA) {
|
||||
if x0 > x1 {
|
||||
x0, x1 = x1, x0
|
||||
}
|
||||
d.FillRectangle(x0, y, x1-x0+1, y, c)
|
||||
}
|
||||
|
||||
// FillScreen fills the screen with a given color
|
||||
func (d *Device) FillScreen(c color.RGBA) {
|
||||
d.FillRectangle(0, 0, d.width, d.height, c)
|
||||
}
|
||||
|
||||
// SetContrast sets the three contrast values (A, B & C)
|
||||
func (d *Device) SetContrast(contrastA, contrastB, contrastC uint8) {
|
||||
d.Command(CONTRASTA)
|
||||
d.Command(contrastA)
|
||||
d.Command(CONTRASTB)
|
||||
d.Command(contrastB)
|
||||
d.Command(CONTRASTC)
|
||||
d.Command(contrastC)
|
||||
}
|
||||
|
||||
// Command sends a command to the display
|
||||
func (d *Device) Command(command uint8) {
|
||||
d.Tx([]byte{command}, true)
|
||||
}
|
||||
|
||||
// Command sends a data to the display
|
||||
func (d *Device) Data(data uint8) {
|
||||
d.Tx([]byte{data}, false)
|
||||
}
|
||||
|
||||
// Tx sends data to the display
|
||||
func (d *Device) Tx(data []byte, isCommand bool) {
|
||||
d.dcPin.Set(!isCommand)
|
||||
d.bus.Tx(data, nil)
|
||||
}
|
||||
|
||||
// Size returns the current size of the display.
|
||||
func (d *Device) Size() (w, h int16) {
|
||||
return d.width, d.height
|
||||
}
|
||||
|
||||
// IsBGR changes the color mode (RGB/BGR)
|
||||
func (d *Device) IsBGR(bgr bool) {
|
||||
d.isBGR = bgr
|
||||
}
|
||||
|
||||
// RGBATo565 converts a color.RGBA to uint16 used in the display
|
||||
func RGBATo565(c color.RGBA) uint16 {
|
||||
r, g, b, _ := c.RGBA()
|
||||
return uint16((r & 0xF800) +
|
||||
((g & 0xFC00) >> 5) +
|
||||
((b & 0xF800) >> 11))
|
||||
}
|
||||
@@ -0,0 +1,9 @@
|
||||
# ST7735 driver
|
||||
|
||||
There are multiple devices using the ST7735 chip, and there are multiple versions ST7735B, ST7735R & ST7735S. Two apparently identical displays might have different configurations. The most common issues are:
|
||||
|
||||
* Colors are inverted (black is white and viceversa), invert the colors with display.InvertColors(true)
|
||||
* Colors are not right (red is blue and viceversa, but green is ok), some displays uses BRG instead of RGB for defining colors, change the mode with display.IsBGR(true)
|
||||
* There is noise/snow/confetti in the screen, probably rows and columns offsets are wrong, configure them with st7735.Config{RowOffset:XX, ColumnOffset:YY}
|
||||
|
||||
If nothing of the above works, your device may need a different boot-up process.
|
||||
@@ -0,0 +1,57 @@
|
||||
package st7735
|
||||
|
||||
// Registers
|
||||
const (
|
||||
NOP = 0x00
|
||||
SWRESET = 0x01
|
||||
RDDID = 0x04
|
||||
RDDST = 0x09
|
||||
SLPIN = 0x10
|
||||
SLPOUT = 0x11
|
||||
PTLON = 0x12
|
||||
NORON = 0x13
|
||||
INVOFF = 0x20
|
||||
INVON = 0x21
|
||||
DISPOFF = 0x28
|
||||
DISPON = 0x29
|
||||
CASET = 0x2A
|
||||
RASET = 0x2B
|
||||
RAMWR = 0x2C
|
||||
RAMRD = 0x2E
|
||||
PTLAR = 0x30
|
||||
COLMOD = 0x3A
|
||||
MADCTL = 0x36
|
||||
MADCTL_MY = 0x80
|
||||
MADCTL_MX = 0x40
|
||||
MADCTL_MV = 0x20
|
||||
MADCTL_ML = 0x10
|
||||
MADCTL_RGB = 0x00
|
||||
MADCTL_BGR = 0x08
|
||||
MADCTL_MH = 0x04
|
||||
RDID1 = 0xDA
|
||||
RDID2 = 0xDB
|
||||
RDID3 = 0xDC
|
||||
RDID4 = 0xDD
|
||||
FRMCTR1 = 0xB1
|
||||
FRMCTR2 = 0xB2
|
||||
FRMCTR3 = 0xB3
|
||||
INVCTR = 0xB4
|
||||
DISSET5 = 0xB6
|
||||
PWCTR1 = 0xC0
|
||||
PWCTR2 = 0xC1
|
||||
PWCTR3 = 0xC2
|
||||
PWCTR4 = 0xC3
|
||||
PWCTR5 = 0xC4
|
||||
VMCTR1 = 0xC5
|
||||
PWCTR6 = 0xFC
|
||||
GMCTRP1 = 0xE0
|
||||
GMCTRN1 = 0xE1
|
||||
|
||||
GREENTAB Model = 0
|
||||
MINI80x160 Model = 1
|
||||
|
||||
NO_ROTATION Rotation = 0
|
||||
ROTATION_90 Rotation = 1 // 90 degrees clock-wise rotation
|
||||
ROTATION_180 Rotation = 2
|
||||
ROTATION_270 Rotation = 3
|
||||
)
|
||||
@@ -0,0 +1,427 @@
|
||||
// Package st7735 implements a driver for the ST7735 TFT displays, it comes in various screen sizes.
|
||||
//
|
||||
// Datasheet: https://www.crystalfontz.com/controllers/Sitronix/ST7735R/319/
|
||||
//
|
||||
package st7735 // import "tinygo.org/x/drivers/st7735"
|
||||
|
||||
import (
|
||||
"image/color"
|
||||
"machine"
|
||||
"time"
|
||||
|
||||
"errors"
|
||||
)
|
||||
|
||||
type Model uint8
|
||||
type Rotation uint8
|
||||
|
||||
// Device wraps an SPI connection.
|
||||
type Device struct {
|
||||
bus machine.SPI
|
||||
dcPin machine.Pin
|
||||
resetPin machine.Pin
|
||||
csPin machine.Pin
|
||||
blPin machine.Pin
|
||||
width int16
|
||||
height int16
|
||||
columnOffset int16
|
||||
rowOffset int16
|
||||
rotation Rotation
|
||||
batchLength int16
|
||||
model Model
|
||||
isBGR bool
|
||||
batchData []uint8
|
||||
}
|
||||
|
||||
// Config is the configuration for the display
|
||||
type Config struct {
|
||||
Width int16
|
||||
Height int16
|
||||
Rotation Rotation
|
||||
Model Model
|
||||
RowOffset int16
|
||||
ColumnOffset int16
|
||||
}
|
||||
|
||||
// New creates a new ST7735 connection. The SPI wire must already be configured.
|
||||
func New(bus machine.SPI, resetPin, dcPin, csPin, blPin machine.Pin) Device {
|
||||
dcPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
resetPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
csPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
blPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
return Device{
|
||||
bus: bus,
|
||||
dcPin: dcPin,
|
||||
resetPin: resetPin,
|
||||
csPin: csPin,
|
||||
blPin: blPin,
|
||||
}
|
||||
}
|
||||
|
||||
// Configure initializes the display with default configuration
|
||||
func (d *Device) Configure(cfg Config) {
|
||||
d.model = cfg.Model
|
||||
if cfg.Width != 0 {
|
||||
d.width = cfg.Width
|
||||
} else {
|
||||
if d.model == MINI80x160 {
|
||||
d.width = 80
|
||||
} else {
|
||||
d.width = 128
|
||||
}
|
||||
}
|
||||
if cfg.Height != 0 {
|
||||
d.height = cfg.Height
|
||||
} else {
|
||||
d.height = 160
|
||||
}
|
||||
d.rotation = cfg.Rotation
|
||||
|
||||
if cfg.RowOffset != 0 {
|
||||
d.rowOffset = cfg.RowOffset
|
||||
} else {
|
||||
d.rowOffset = 1
|
||||
}
|
||||
if cfg.ColumnOffset != 0 {
|
||||
d.columnOffset = cfg.ColumnOffset
|
||||
} else {
|
||||
if d.model == MINI80x160 {
|
||||
d.columnOffset = 26
|
||||
} else {
|
||||
d.columnOffset = 2
|
||||
}
|
||||
}
|
||||
|
||||
d.batchLength = d.width
|
||||
if d.height > d.width {
|
||||
d.batchLength = d.height
|
||||
}
|
||||
d.batchLength += d.batchLength & 1
|
||||
d.batchData = make([]uint8, d.batchLength*2)
|
||||
|
||||
// reset the device
|
||||
d.resetPin.High()
|
||||
time.Sleep(5 * time.Millisecond)
|
||||
d.resetPin.Low()
|
||||
time.Sleep(20 * time.Millisecond)
|
||||
d.resetPin.High()
|
||||
time.Sleep(150 * time.Millisecond)
|
||||
|
||||
// Common initialization
|
||||
d.Command(SWRESET)
|
||||
time.Sleep(150 * time.Millisecond)
|
||||
d.Command(SLPOUT)
|
||||
time.Sleep(500 * time.Millisecond)
|
||||
d.Command(FRMCTR1)
|
||||
d.Data(0x01)
|
||||
d.Data(0x2C)
|
||||
d.Data(0x2D)
|
||||
d.Command(FRMCTR2)
|
||||
d.Data(0x01)
|
||||
d.Data(0x2C)
|
||||
d.Data(0x2D)
|
||||
d.Command(FRMCTR3)
|
||||
d.Data(0x01)
|
||||
d.Data(0x2C)
|
||||
d.Data(0x2D)
|
||||
d.Data(0x01)
|
||||
d.Data(0x2C)
|
||||
d.Data(0x2D)
|
||||
d.Command(INVCTR)
|
||||
d.Data(0x07)
|
||||
d.Command(PWCTR1)
|
||||
d.Data(0xA2)
|
||||
d.Data(0x02)
|
||||
d.Data(0x84)
|
||||
d.Command(PWCTR2)
|
||||
d.Data(0xC5)
|
||||
d.Command(PWCTR3)
|
||||
d.Data(0x0A)
|
||||
d.Data(0x00)
|
||||
d.Command(PWCTR4)
|
||||
d.Data(0x8A)
|
||||
d.Data(0x2A)
|
||||
d.Command(PWCTR5)
|
||||
d.Data(0x8A)
|
||||
d.Data(0xEE)
|
||||
d.Command(VMCTR1)
|
||||
d.Data(0x0E)
|
||||
d.Command(COLMOD)
|
||||
d.Data(0x05)
|
||||
|
||||
if d.model == GREENTAB {
|
||||
d.InvertColors(false)
|
||||
d.Command(CASET)
|
||||
d.Data(0x00)
|
||||
d.Data(0x02)
|
||||
d.Data(0x00)
|
||||
d.Data(0x7F + 0x02)
|
||||
d.Command(RASET)
|
||||
d.Data(0x00)
|
||||
d.Data(0x01)
|
||||
d.Data(0x00)
|
||||
d.Data(0x9F + 0x01)
|
||||
} else if d.model == MINI80x160 {
|
||||
d.isBGR = true
|
||||
d.InvertColors(true)
|
||||
d.Command(CASET)
|
||||
d.Data(0x00)
|
||||
d.Data(0x00)
|
||||
d.Data(0x00)
|
||||
d.Data(0x7F)
|
||||
d.Command(RASET)
|
||||
d.Data(0x00)
|
||||
d.Data(0x00)
|
||||
d.Data(0x00)
|
||||
d.Data(0x9F)
|
||||
}
|
||||
|
||||
// common color adjustment
|
||||
d.Command(GMCTRP1)
|
||||
d.Data(0x02)
|
||||
d.Data(0x1C)
|
||||
d.Data(0x07)
|
||||
d.Data(0x12)
|
||||
d.Data(0x37)
|
||||
d.Data(0x32)
|
||||
d.Data(0x29)
|
||||
d.Data(0x2D)
|
||||
d.Data(0x29)
|
||||
d.Data(0x25)
|
||||
d.Data(0x2B)
|
||||
d.Data(0x39)
|
||||
d.Data(0x00)
|
||||
d.Data(0x01)
|
||||
d.Data(0x03)
|
||||
d.Data(0x10)
|
||||
d.Command(GMCTRN1)
|
||||
d.Data(0x03)
|
||||
d.Data(0x1D)
|
||||
d.Data(0x07)
|
||||
d.Data(0x06)
|
||||
d.Data(0x2E)
|
||||
d.Data(0x2C)
|
||||
d.Data(0x29)
|
||||
d.Data(0x2D)
|
||||
d.Data(0x2E)
|
||||
d.Data(0x2E)
|
||||
d.Data(0x37)
|
||||
d.Data(0x3F)
|
||||
d.Data(0x00)
|
||||
d.Data(0x00)
|
||||
d.Data(0x02)
|
||||
d.Data(0x10)
|
||||
|
||||
d.Command(NORON)
|
||||
time.Sleep(10 * time.Millisecond)
|
||||
d.Command(DISPON)
|
||||
time.Sleep(500 * time.Millisecond)
|
||||
|
||||
if cfg.Model == MINI80x160 {
|
||||
d.Command(MADCTL)
|
||||
d.Data(0xC0)
|
||||
}
|
||||
|
||||
d.SetRotation(d.rotation)
|
||||
|
||||
d.blPin.High()
|
||||
}
|
||||
|
||||
// Display does nothing, there's no buffer as it might be too big for some boards
|
||||
func (d *Device) Display() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
// SetPixel sets a pixel in the screen
|
||||
func (d *Device) SetPixel(x int16, y int16, c color.RGBA) {
|
||||
w, h := d.Size()
|
||||
if x < 0 || y < 0 || x >= w || y >= h {
|
||||
return
|
||||
}
|
||||
d.FillRectangle(x, y, 1, 1, c)
|
||||
}
|
||||
|
||||
// setWindow prepares the screen to be modified at a given rectangle
|
||||
func (d *Device) setWindow(x, y, w, h int16) {
|
||||
if d.rotation == NO_ROTATION || d.rotation == ROTATION_180 {
|
||||
x += d.columnOffset
|
||||
y += d.rowOffset
|
||||
} else {
|
||||
x += d.rowOffset
|
||||
y += d.columnOffset
|
||||
}
|
||||
d.Tx([]uint8{CASET}, true)
|
||||
d.Tx([]uint8{uint8(x >> 8), uint8(x), uint8((x + w - 1) >> 8), uint8(x + w - 1)}, false)
|
||||
d.Tx([]uint8{RASET}, true)
|
||||
d.Tx([]uint8{uint8(y >> 8), uint8(y), uint8((y + h - 1) >> 8), uint8(y + h - 1)}, false)
|
||||
d.Command(RAMWR)
|
||||
}
|
||||
|
||||
// FillRectangle fills a rectangle at a given coordinates with a color
|
||||
func (d *Device) FillRectangle(x, y, width, height int16, c color.RGBA) error {
|
||||
k, i := d.Size()
|
||||
if x < 0 || y < 0 || width <= 0 || height <= 0 ||
|
||||
x >= k || (x+width) > k || y >= i || (y+height) > i {
|
||||
return errors.New("rectangle coordinates outside display area")
|
||||
}
|
||||
d.setWindow(x, y, width, height)
|
||||
c565 := RGBATo565(c)
|
||||
c1 := uint8(c565 >> 8)
|
||||
c2 := uint8(c565)
|
||||
|
||||
for i = 0; i < d.batchLength; i++ {
|
||||
d.batchData[i*2] = c1
|
||||
d.batchData[i*2+1] = c2
|
||||
}
|
||||
i = width * height
|
||||
for i > 0 {
|
||||
if i >= d.batchLength {
|
||||
d.Tx(d.batchData, false)
|
||||
} else {
|
||||
d.Tx(d.batchData[:i*2], false)
|
||||
}
|
||||
i -= d.batchLength
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// FillRectangle fills a rectangle at a given coordinates with a buffer
|
||||
func (d *Device) FillRectangleWithBuffer(x, y, width, height int16, buffer []color.RGBA) error {
|
||||
k, l := d.Size()
|
||||
if x < 0 || y < 0 || width <= 0 || height <= 0 ||
|
||||
x >= k || (x+width) > k || y >= l || (y+height) > l {
|
||||
return errors.New("rectangle coordinates outside display area")
|
||||
}
|
||||
k = width * height
|
||||
l = int16(len(buffer))
|
||||
if k != l {
|
||||
return errors.New("buffer length does not match with rectangle size")
|
||||
}
|
||||
|
||||
d.setWindow(x, y, width, height)
|
||||
|
||||
offset := int16(0)
|
||||
for k > 0 {
|
||||
for i := int16(0); i < d.batchLength; i++ {
|
||||
if offset+i < l {
|
||||
c565 := RGBATo565(buffer[offset+i])
|
||||
c1 := uint8(c565 >> 8)
|
||||
c2 := uint8(c565)
|
||||
d.batchData[i*2] = c1
|
||||
d.batchData[i*2+1] = c2
|
||||
}
|
||||
}
|
||||
if k >= d.batchLength {
|
||||
d.Tx(d.batchData, false)
|
||||
} else {
|
||||
d.Tx(d.batchData[:k*2], false)
|
||||
}
|
||||
k -= d.batchLength
|
||||
offset += d.batchLength
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// DrawFastVLine draws a vertical line faster than using SetPixel
|
||||
func (d *Device) DrawFastVLine(x, y0, y1 int16, c color.RGBA) {
|
||||
if y0 > y1 {
|
||||
y0, y1 = y1, y0
|
||||
}
|
||||
d.FillRectangle(x, y0, 1, y1-y0+1, c)
|
||||
}
|
||||
|
||||
// DrawFastHLine draws a horizontal line faster than using SetPixel
|
||||
func (d *Device) DrawFastHLine(x0, x1, y int16, c color.RGBA) {
|
||||
if x0 > x1 {
|
||||
x0, x1 = x1, x0
|
||||
}
|
||||
d.FillRectangle(x0, y, x1-x0+1, y, c)
|
||||
}
|
||||
|
||||
// FillScreen fills the screen with a given color
|
||||
func (d *Device) FillScreen(c color.RGBA) {
|
||||
if d.rotation == NO_ROTATION || d.rotation == ROTATION_180 {
|
||||
d.FillRectangle(0, 0, d.width, d.height, c)
|
||||
} else {
|
||||
d.FillRectangle(0, 0, d.height, d.width, c)
|
||||
}
|
||||
}
|
||||
|
||||
// SetRotation changes the rotation of the device (clock-wise)
|
||||
func (d *Device) SetRotation(rotation Rotation) {
|
||||
madctl := uint8(0)
|
||||
switch rotation % 4 {
|
||||
case 0:
|
||||
madctl = MADCTL_MX | MADCTL_MY
|
||||
break
|
||||
case 1:
|
||||
madctl = MADCTL_MY | MADCTL_MV
|
||||
break
|
||||
case 2:
|
||||
break
|
||||
case 3:
|
||||
madctl = MADCTL_MX | MADCTL_MV
|
||||
break
|
||||
}
|
||||
if d.isBGR {
|
||||
madctl |= MADCTL_BGR
|
||||
}
|
||||
d.Command(MADCTL)
|
||||
d.Data(madctl)
|
||||
|
||||
}
|
||||
|
||||
// Command sends a command to the display
|
||||
func (d *Device) Command(command uint8) {
|
||||
d.Tx([]byte{command}, true)
|
||||
}
|
||||
|
||||
// Command sends a data to the display
|
||||
func (d *Device) Data(data uint8) {
|
||||
d.Tx([]byte{data}, false)
|
||||
}
|
||||
|
||||
// Tx sends data to the display
|
||||
func (d *Device) Tx(data []byte, isCommand bool) {
|
||||
d.dcPin.Set(!isCommand)
|
||||
d.bus.Tx(data, nil)
|
||||
}
|
||||
|
||||
// Size returns the current size of the display.
|
||||
func (d *Device) Size() (w, h int16) {
|
||||
if d.rotation == NO_ROTATION || d.rotation == ROTATION_180 {
|
||||
return d.width, d.height
|
||||
}
|
||||
return d.height, d.width
|
||||
}
|
||||
|
||||
// EnableBacklight enables or disables the backlight
|
||||
func (d *Device) EnableBacklight(enable bool) {
|
||||
if enable {
|
||||
d.blPin.High()
|
||||
} else {
|
||||
d.blPin.Low()
|
||||
}
|
||||
}
|
||||
|
||||
// InverColors inverts the colors of the screen
|
||||
func (d *Device) InvertColors(invert bool) {
|
||||
if invert {
|
||||
d.Command(INVON)
|
||||
} else {
|
||||
d.Command(INVOFF)
|
||||
}
|
||||
}
|
||||
|
||||
// IsBGR changes the color mode (RGB/BGR)
|
||||
func (d *Device) IsBGR(bgr bool) {
|
||||
d.isBGR = bgr
|
||||
}
|
||||
|
||||
// RGBATo565 converts a color.RGBA to uint16 used in the display
|
||||
func RGBATo565(c color.RGBA) uint16 {
|
||||
r, g, b, _ := c.RGBA()
|
||||
return uint16((r & 0xF800) +
|
||||
((g & 0xFC00) >> 5) +
|
||||
((b & 0xF800) >> 11))
|
||||
}
|
||||
@@ -0,0 +1,54 @@
|
||||
package st7789
|
||||
|
||||
// Registers
|
||||
const (
|
||||
NOP = 0x00
|
||||
SWRESET = 0x01
|
||||
RDDID = 0x04
|
||||
RDDST = 0x09
|
||||
SLPIN = 0x10
|
||||
SLPOUT = 0x11
|
||||
PTLON = 0x12
|
||||
NORON = 0x13
|
||||
INVOFF = 0x20
|
||||
INVON = 0x21
|
||||
DISPOFF = 0x28
|
||||
DISPON = 0x29
|
||||
CASET = 0x2A
|
||||
RASET = 0x2B
|
||||
RAMWR = 0x2C
|
||||
RAMRD = 0x2E
|
||||
PTLAR = 0x30
|
||||
COLMOD = 0x3A
|
||||
MADCTL = 0x36
|
||||
MADCTL_MY = 0x80
|
||||
MADCTL_MX = 0x40
|
||||
MADCTL_MV = 0x20
|
||||
MADCTL_ML = 0x10
|
||||
MADCTL_RGB = 0x00
|
||||
MADCTL_BGR = 0x08
|
||||
MADCTL_MH = 0x04
|
||||
RDID1 = 0xDA
|
||||
RDID2 = 0xDB
|
||||
RDID3 = 0xDC
|
||||
RDID4 = 0xDD
|
||||
FRMCTR1 = 0xB1
|
||||
FRMCTR2 = 0xB2
|
||||
FRMCTR3 = 0xB3
|
||||
INVCTR = 0xB4
|
||||
DISSET5 = 0xB6
|
||||
PWCTR1 = 0xC0
|
||||
PWCTR2 = 0xC1
|
||||
PWCTR3 = 0xC2
|
||||
PWCTR4 = 0xC3
|
||||
PWCTR5 = 0xC4
|
||||
VMCTR1 = 0xC5
|
||||
PWCTR6 = 0xFC
|
||||
GMCTRP1 = 0xE0
|
||||
GMCTRN1 = 0xE1
|
||||
|
||||
NO_ROTATION Rotation = 0
|
||||
ROTATION_90 Rotation = 1 // 90 degrees clock-wise rotation
|
||||
ROTATION_180 Rotation = 2
|
||||
ROTATION_270 Rotation = 3
|
||||
)
|
||||
@@ -0,0 +1,330 @@
|
||||
// Package st7789 implements a driver for the ST7789 TFT displays, it comes in various screen sizes.
|
||||
//
|
||||
// Datasheet: https://cdn-shop.adafruit.com/product-files/3787/3787_tft_QT154H2201__________20190228182902.pdf
|
||||
//
|
||||
package st7789 // import "tinygo.org/x/drivers/st7789"
|
||||
|
||||
import (
|
||||
"image/color"
|
||||
"machine"
|
||||
"time"
|
||||
|
||||
"errors"
|
||||
)
|
||||
|
||||
type Rotation uint8
|
||||
|
||||
// Device wraps an SPI connection.
|
||||
type Device struct {
|
||||
bus machine.SPI
|
||||
dcPin machine.Pin
|
||||
resetPin machine.Pin
|
||||
blPin machine.Pin
|
||||
width int16
|
||||
height int16
|
||||
columnOffsetCfg int16
|
||||
rowOffsetCfg int16
|
||||
columnOffset int16
|
||||
rowOffset int16
|
||||
rotation Rotation
|
||||
batchLength int32
|
||||
isBGR bool
|
||||
}
|
||||
|
||||
// Config is the configuration for the display
|
||||
type Config struct {
|
||||
Width int16
|
||||
Height int16
|
||||
Rotation Rotation
|
||||
RowOffset int16
|
||||
ColumnOffset int16
|
||||
}
|
||||
|
||||
// New creates a new ST7789 connection. The SPI wire must already be configured.
|
||||
func New(bus machine.SPI, resetPin, dcPin, blPin machine.Pin) Device {
|
||||
dcPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
resetPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
blPin.Configure(machine.PinConfig{Mode: machine.PinOutput})
|
||||
return Device{
|
||||
bus: bus,
|
||||
dcPin: dcPin,
|
||||
resetPin: resetPin,
|
||||
blPin: blPin,
|
||||
}
|
||||
}
|
||||
|
||||
// Configure initializes the display with default configuration
|
||||
func (d *Device) Configure(cfg Config) {
|
||||
if cfg.Width != 0 {
|
||||
d.width = cfg.Width
|
||||
} else {
|
||||
d.width = 240
|
||||
}
|
||||
if cfg.Height != 0 {
|
||||
d.height = cfg.Height
|
||||
} else {
|
||||
d.height = 240
|
||||
}
|
||||
d.rotation = cfg.Rotation
|
||||
|
||||
if cfg.RowOffset != 0 {
|
||||
d.rowOffsetCfg = cfg.RowOffset
|
||||
} else {
|
||||
d.rowOffsetCfg = 80
|
||||
}
|
||||
if cfg.ColumnOffset != 0 {
|
||||
d.columnOffsetCfg = cfg.ColumnOffset
|
||||
}
|
||||
|
||||
d.batchLength = int32(d.width)
|
||||
if d.height > d.width {
|
||||
d.batchLength = int32(d.height)
|
||||
}
|
||||
d.batchLength += d.batchLength & 1
|
||||
|
||||
// reset the device
|
||||
d.resetPin.High()
|
||||
time.Sleep(5 * time.Millisecond)
|
||||
d.resetPin.Low()
|
||||
time.Sleep(20 * time.Millisecond)
|
||||
d.resetPin.High()
|
||||
time.Sleep(150 * time.Millisecond)
|
||||
|
||||
// Common initialization
|
||||
d.Command(SWRESET)
|
||||
time.Sleep(150 * time.Millisecond)
|
||||
d.Command(SLPOUT)
|
||||
time.Sleep(500 * time.Millisecond)
|
||||
d.Command(COLMOD)
|
||||
d.Data(0x55)
|
||||
time.Sleep(10 * time.Millisecond)
|
||||
|
||||
d.SetRotation(d.rotation)
|
||||
|
||||
d.Command(CASET)
|
||||
d.Data(0x00)
|
||||
d.Data(uint8(d.columnOffset))
|
||||
d.Data((240 + uint8(d.columnOffset)) >> 8)
|
||||
d.Data(((240 + uint8(d.columnOffset)) >> 8) & 0xFF)
|
||||
d.Command(RASET)
|
||||
d.Data(0x00)
|
||||
d.Data(uint8(d.rowOffset))
|
||||
d.Data((240 + uint8(d.rowOffset)) >> 8)
|
||||
d.Data(((240 + uint8(d.rowOffset)) >> 8) & 0xFF)
|
||||
|
||||
d.InvertColors(true)
|
||||
|
||||
d.Command(NORON)
|
||||
time.Sleep(10 * time.Millisecond)
|
||||
d.Command(DISPON)
|
||||
time.Sleep(500 * time.Millisecond)
|
||||
|
||||
d.blPin.High()
|
||||
}
|
||||
|
||||
// Display does nothing, there's no buffer as it might be too big for some boards
|
||||
func (d *Device) Display() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
// SetPixel sets a pixel in the screen
|
||||
func (d *Device) SetPixel(x int16, y int16, c color.RGBA) {
|
||||
if x < 0 || y < 0 ||
|
||||
(((d.rotation == NO_ROTATION || d.rotation == ROTATION_180) && (x >= d.width || y >= d.height)) ||
|
||||
((d.rotation == ROTATION_90 || d.rotation == ROTATION_270) && (x >= d.height || y >= d.width))) {
|
||||
return
|
||||
}
|
||||
d.FillRectangle(x, y, 1, 1, c)
|
||||
}
|
||||
|
||||
// setWindow prepares the screen to be modified at a given rectangle
|
||||
func (d *Device) setWindow(x, y, w, h int16) {
|
||||
x += d.columnOffset
|
||||
y += d.rowOffset
|
||||
d.Tx([]uint8{CASET}, true)
|
||||
d.Tx([]uint8{uint8(x << 8), uint8(x), uint8((x + w - 1) >> 8), uint8(x + w - 1)}, false)
|
||||
d.Tx([]uint8{RASET}, true)
|
||||
d.Tx([]uint8{uint8(y >> 8), uint8(y), uint8((y + h - 1) >> 8), uint8(y + h - 1)}, false)
|
||||
d.Command(RAMWR)
|
||||
}
|
||||
|
||||
// FillRectangle fills a rectangle at a given coordinates with a color
|
||||
func (d *Device) FillRectangle(x, y, width, height int16, c color.RGBA) error {
|
||||
k, i := d.Size()
|
||||
if x < 0 || y < 0 || width <= 0 || height <= 0 ||
|
||||
x >= k || (x+width) > k || y >= i || (y+height) > i {
|
||||
return errors.New("rectangle coordinates outside display area")
|
||||
}
|
||||
d.setWindow(x, y, width, height)
|
||||
c565 := RGBATo565(c)
|
||||
c1 := uint8(c565 >> 8)
|
||||
c2 := uint8(c565)
|
||||
|
||||
data := make([]uint8, d.batchLength*2)
|
||||
for i := int32(0); i < d.batchLength; i++ {
|
||||
data[i*2] = c1
|
||||
data[i*2+1] = c2
|
||||
}
|
||||
j := int32(width) * int32(height)
|
||||
for j > 0 {
|
||||
if j >= d.batchLength {
|
||||
d.Tx(data, false)
|
||||
} else {
|
||||
d.Tx(data[:j*2], false)
|
||||
}
|
||||
j -= d.batchLength
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// FillRectangle fills a rectangle at a given coordinates with a buffer
|
||||
func (d *Device) FillRectangleWithBuffer(x, y, width, height int16, buffer []color.RGBA) error {
|
||||
i, j := d.Size()
|
||||
if x < 0 || y < 0 || width <= 0 || height <= 0 ||
|
||||
x >= i || (x+width) > i || y >= j || (y+height) > j {
|
||||
return errors.New("rectangle coordinates outside display area")
|
||||
}
|
||||
if int32(width)*int32(height) != int32(len(buffer)) {
|
||||
return errors.New("buffer length does not match with rectangle size")
|
||||
}
|
||||
d.setWindow(x, y, width, height)
|
||||
|
||||
k := int32(width) * int32(height)
|
||||
data := make([]uint8, d.batchLength*2)
|
||||
offset := int32(0)
|
||||
for k > 0 {
|
||||
for i := int32(0); i < d.batchLength; i++ {
|
||||
|
||||
c565 := RGBATo565(buffer[offset+i])
|
||||
c1 := uint8(c565 >> 8)
|
||||
c2 := uint8(c565)
|
||||
data[i*2] = c1
|
||||
data[i*2+1] = c2
|
||||
}
|
||||
if k >= d.batchLength {
|
||||
d.Tx(data, false)
|
||||
} else {
|
||||
d.Tx(data[:k*2], false)
|
||||
}
|
||||
k -= d.batchLength
|
||||
offset += d.batchLength
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// DrawFastVLine draws a vertical line faster than using SetPixel
|
||||
func (d *Device) DrawFastVLine(x, y0, y1 int16, c color.RGBA) {
|
||||
if y0 > y1 {
|
||||
y0, y1 = y1, y0
|
||||
}
|
||||
d.FillRectangle(x, y0, 1, y1-y0+1, c)
|
||||
}
|
||||
|
||||
// DrawFastHLine draws a horizontal line faster than using SetPixel
|
||||
func (d *Device) DrawFastHLine(x0, x1, y int16, c color.RGBA) {
|
||||
if x0 > x1 {
|
||||
x0, x1 = x1, x0
|
||||
}
|
||||
d.FillRectangle(x0, y, x1-x0+1, y, c)
|
||||
}
|
||||
|
||||
// FillScreen fills the screen with a given color
|
||||
func (d *Device) FillScreen(c color.RGBA) {
|
||||
if d.rotation == NO_ROTATION || d.rotation == ROTATION_180 {
|
||||
d.FillRectangle(0, 0, d.width, d.height, c)
|
||||
} else {
|
||||
d.FillRectangle(0, 0, d.height, d.width, c)
|
||||
}
|
||||
}
|
||||
|
||||
// SetRotation changes the rotation of the device (clock-wise)
|
||||
func (d *Device) SetRotation(rotation Rotation) {
|
||||
madctl := uint8(0)
|
||||
switch rotation % 4 {
|
||||
case 0:
|
||||
madctl = MADCTL_MX | MADCTL_MY
|
||||
d.rowOffset = d.rowOffsetCfg
|
||||
d.columnOffset = d.columnOffsetCfg
|
||||
break
|
||||
case 1:
|
||||
madctl = MADCTL_MY | MADCTL_MV
|
||||
d.rowOffset = d.columnOffsetCfg
|
||||
d.columnOffset = d.rowOffsetCfg
|
||||
break
|
||||
case 2:
|
||||
d.rowOffset = 0
|
||||
d.columnOffset = 0
|
||||
break
|
||||
case 3:
|
||||
madctl = MADCTL_MX | MADCTL_MV
|
||||
d.rowOffset = 0
|
||||
d.columnOffset = 0
|
||||
break
|
||||
}
|
||||
if d.isBGR {
|
||||
madctl |= MADCTL_BGR
|
||||
}
|
||||
d.Command(MADCTL)
|
||||
d.Data(madctl)
|
||||
|
||||
}
|
||||
|
||||
// Command sends a command to the display
|
||||
func (d *Device) Command(command uint8) {
|
||||
d.Tx([]byte{command}, true)
|
||||
}
|
||||
|
||||
// Command sends a data to the display
|
||||
func (d *Device) Data(data uint8) {
|
||||
d.Tx([]byte{data}, false)
|
||||
}
|
||||
|
||||
// Tx sends data to the display
|
||||
func (d *Device) Tx(data []byte, isCommand bool) {
|
||||
if isCommand {
|
||||
d.dcPin.Low()
|
||||
d.bus.Tx(data, nil)
|
||||
} else {
|
||||
d.dcPin.High()
|
||||
d.bus.Tx(data, nil)
|
||||
}
|
||||
}
|
||||
|
||||
// Size returns the current size of the display.
|
||||
func (d *Device) Size() (w, h int16) {
|
||||
if d.rotation == NO_ROTATION || d.rotation == ROTATION_180 {
|
||||
return d.width, d.height
|
||||
}
|
||||
return d.height, d.width
|
||||
}
|
||||
|
||||
// EnableBacklight enables or disables the backlight
|
||||
func (d *Device) EnableBacklight(enable bool) {
|
||||
if enable {
|
||||
d.blPin.High()
|
||||
} else {
|
||||
d.blPin.Low()
|
||||
}
|
||||
}
|
||||
|
||||
// InverColors inverts the colors of the screen
|
||||
func (d *Device) InvertColors(invert bool) {
|
||||
if invert {
|
||||
d.Command(INVON)
|
||||
} else {
|
||||
d.Command(INVOFF)
|
||||
}
|
||||
}
|
||||
|
||||
// IsBGR changes the color mode (RGB/BGR)
|
||||
func (d *Device) IsBGR(bgr bool) {
|
||||
d.isBGR = bgr
|
||||
}
|
||||
|
||||
// RGBATo565 converts a color.RGBA to uint16 used in the display
|
||||
func RGBATo565(c color.RGBA) uint16 {
|
||||
r, g, b, _ := c.RGBA()
|
||||
return uint16((r & 0xF800) +
|
||||
((g & 0xFC00) >> 5) +
|
||||
((b & 0xF800) >> 11))
|
||||
}
|
||||
@@ -0,0 +1,65 @@
|
||||
package veml6070
|
||||
|
||||
// I2C addresses and other constants
|
||||
|
||||
const (
|
||||
ADDR_L = 0x38 // 7bit address of the VEML6070 (write, read)
|
||||
ADDR_H = 0x39 // 7bit address of the VEML6070 (read)
|
||||
)
|
||||
|
||||
// Some possible values for resistance value (in ohm) of VEML6070 calibration resistor
|
||||
const (
|
||||
RSET_240K = 240000
|
||||
RSET_270K = 270000
|
||||
RSET_300K = 300000
|
||||
RSET_600K = 600000
|
||||
)
|
||||
|
||||
// Possible values for integration time of VEML6070
|
||||
// (internally represents the config register bit mask)
|
||||
const (
|
||||
IT_HALF = 0x00
|
||||
IT_1 = 0x04
|
||||
IT_2 = 0x08
|
||||
IT_4 = 0x0C
|
||||
)
|
||||
|
||||
// Possible values for UVI (UV index) risk level estimations - the VEML6070 can
|
||||
// only estimate UVI risk levels since it can only sense UVA rays but the vendor
|
||||
// tried to come up with some coarse thresholds, from application notes
|
||||
const (
|
||||
UVI_RISK_LOW = iota
|
||||
UVI_RISK_MODERATE
|
||||
UVI_RISK_HIGH
|
||||
UVI_RISK_VERY_HIGH
|
||||
UVI_RISK_EXTREME
|
||||
)
|
||||
|
||||
// Scale factor in milliseconds / ohm to determine refresh time
|
||||
// (aka sampling time) without IT_FACTOR for any given RSET, from datasheet.
|
||||
// Note: 100.0 milliseconds are applicable for RSET=240 kOhm and IT_FACTOR=1
|
||||
const RSET_TO_REFRESHTIME_SCALE = 100.0 / RSET_240K
|
||||
|
||||
// The refresh time in milliseconds for which NORMALIZED_UVA_SENSITIVITY
|
||||
// is applicable to a step count
|
||||
const NORMALIZED_REFRESHTIME = 100.0
|
||||
|
||||
// The UVA sensitivity in mW/(m*m)/step which is applicable to a step count
|
||||
// normalized to the NORMALIZED_REFRESHTIME, from datasheet for RSET=240 kOhm
|
||||
// and IT_FACTOR=1
|
||||
const NORMALIZED_UVA_SENSITIVITY = 50.0
|
||||
|
||||
// Config register
|
||||
|
||||
// Possible values for shutdown
|
||||
const (
|
||||
CONFIG_SD_DISABLE = 0x00
|
||||
CONFIG_SD_ENABLE = 0x01
|
||||
)
|
||||
|
||||
// Enable / disable
|
||||
const (
|
||||
CONFIG_DEFAULTS = 0x02
|
||||
CONFIG_ENABLE = CONFIG_SD_DISABLE | CONFIG_DEFAULTS
|
||||
CONFIG_DISABLE = CONFIG_SD_ENABLE | CONFIG_DEFAULTS
|
||||
)
|
||||
@@ -0,0 +1,140 @@
|
||||
// Package veml6070 provides a driver for the VEML6070 digital UV light sensor
|
||||
// by Vishay.
|
||||
//
|
||||
// Datasheet:
|
||||
// https://www.vishay.com/docs/84277/veml6070.pdf
|
||||
// Application Notes:
|
||||
// https://www.vishay.com/docs/84310/designingveml6070.pdf
|
||||
//
|
||||
package veml6070 // import "tinygo.org/x/drivers/veml6070"
|
||||
|
||||
import (
|
||||
"time"
|
||||
|
||||
"machine"
|
||||
)
|
||||
|
||||
// Device wraps an I2C connection to a VEML6070 device.
|
||||
type Device struct {
|
||||
bus machine.I2C
|
||||
AddressLow uint16
|
||||
AddressHigh uint16
|
||||
RSET uint32
|
||||
IT uint8
|
||||
}
|
||||
|
||||
// New creates a new VEML6070 connection. The I2C bus must already be
|
||||
// configured.
|
||||
//
|
||||
// This function only creates the Device object, it does not initialize the device.
|
||||
// You must call Configure() first in order to use the device itself.
|
||||
func New(bus machine.I2C) Device {
|
||||
return Device{
|
||||
bus: bus,
|
||||
AddressLow: ADDR_L,
|
||||
AddressHigh: ADDR_H,
|
||||
RSET: RSET_240K,
|
||||
// Note: default to maximum to get as much precision as possible since
|
||||
// raw data values larger than 16 bit can hardly occur with RSET below
|
||||
// 300 kOhm in real world applications. Power saving due to shorter
|
||||
// sampling time might be a reason to reduce this.
|
||||
IT: IT_4,
|
||||
}
|
||||
}
|
||||
|
||||
// Configure sets up the device for communication
|
||||
func (d *Device) Configure() bool {
|
||||
// save power by shutdown as early as possible, also serves as presence test
|
||||
if err := d.disable(); err != nil {
|
||||
return false
|
||||
}
|
||||
|
||||
return true
|
||||
}
|
||||
|
||||
// ReadUVALightIntensity returns the UVA light intensity (irradiance)
|
||||
// in milli Watt per square meter (mW/(m*m))
|
||||
func (d *Device) ReadUVALightIntensity() (uint32, error) {
|
||||
var err2 error
|
||||
|
||||
if err := d.enable(); err != nil {
|
||||
return 0, err
|
||||
}
|
||||
|
||||
// wait two times the refresh time to allow completion of a previous cycle
|
||||
// with old settings (worst case)
|
||||
time.Sleep(time.Duration(d.getRefreshTime()) * 2 * time.Millisecond)
|
||||
|
||||
msb, err2 := d.readData(d.AddressHigh)
|
||||
if err2 != nil {
|
||||
return 0, err2
|
||||
}
|
||||
|
||||
lsb, err2 := d.readData(d.AddressLow)
|
||||
if err2 != nil {
|
||||
return 0, err2
|
||||
}
|
||||
|
||||
if err := d.disable(); err != nil {
|
||||
return 0, err
|
||||
}
|
||||
|
||||
rawData := (uint32(msb) << 8) | uint32(lsb)
|
||||
|
||||
// normalize raw data (step count sampled in d.getRefreshTime()) into the
|
||||
// linearly scaled normalized data (step count sampled in 100ms) for which
|
||||
// we know the UVA sensitivity
|
||||
normalizedData := float32(rawData) * NORMALIZED_REFRESHTIME / d.getRefreshTime()
|
||||
|
||||
// now we can calculate the absolute UVA power detected combining normalized
|
||||
// data with known UVA sensitivity for this data, from datasheet
|
||||
intensity := normalizedData * NORMALIZED_UVA_SENSITIVITY // mW/(m*m)
|
||||
|
||||
return uint32(intensity + 0.5), nil
|
||||
}
|
||||
|
||||
// GetEstimatedRiskLevel returns estimated risk level from comparing UVA light
|
||||
// intensity values in mW/(m*m) with thresholds calculated from application notes
|
||||
func (d *Device) GetEstimatedRiskLevel(intensity uint32) uint8 {
|
||||
if intensity <= 24888 {
|
||||
return UVI_RISK_LOW
|
||||
} else if intensity <= 49800 {
|
||||
return UVI_RISK_MODERATE
|
||||
} else if intensity <= 66400 {
|
||||
return UVI_RISK_HIGH
|
||||
} else if intensity <= 91288 {
|
||||
return UVI_RISK_VERY_HIGH
|
||||
} else {
|
||||
return UVI_RISK_EXTREME
|
||||
}
|
||||
}
|
||||
|
||||
func (d *Device) disable() error {
|
||||
return d.bus.Tx(uint16(d.AddressLow), []byte{CONFIG_DISABLE}, nil)
|
||||
}
|
||||
|
||||
func (d *Device) enable() error {
|
||||
return d.bus.Tx(uint16(d.AddressLow), []byte{CONFIG_ENABLE | d.IT}, nil)
|
||||
}
|
||||
|
||||
func (d *Device) readData(address uint16) (byte, error) {
|
||||
data := []byte{0}
|
||||
err := machine.I2C0.Tx(address, []byte{}, data)
|
||||
return data[0], err
|
||||
}
|
||||
|
||||
// getRefreshTime returns the refresh time (aka sample time) in milliseconds
|
||||
func (d *Device) getRefreshTime() float32 {
|
||||
var it float32
|
||||
switch d.IT {
|
||||
case IT_HALF:
|
||||
it = 0.5
|
||||
case IT_1:
|
||||
it = 1
|
||||
case IT_2:
|
||||
it = 2
|
||||
case IT_4:
|
||||
it = 4
|
||||
}
|
||||
return float32(d.RSET) * RSET_TO_REFRESHTIME_SCALE * it
|
||||
}
|
||||
@@ -0,0 +1,5 @@
|
||||
package drivers
|
||||
|
||||
// Version returns a user-readable string showing the version of the drivers package for support purposes.
|
||||
// Update this value before release of new version of software.
|
||||
const Version = "0.7.0"
|
||||
@@ -17,14 +17,16 @@ func (d Device) WriteByte(c byte) error {
|
||||
|
||||
// See:
|
||||
// https://wp.josh.com/2014/05/13/ws2812-neopixels-are-not-so-finicky-once-you-get-to-know-them/
|
||||
// T0H: 4 cycles or 250ns
|
||||
// T0L: 14 cycles or 875ns -> together 18 cycles or 1125ns
|
||||
// T1H: 10 cycles or 625ns
|
||||
// T1H: 8 cycles or 500ns -> together 18 cycles or 1125ns
|
||||
// Note: timings have been increased slightly to also support ws2811 LEDs.
|
||||
// T0H: 5 cycles or 312.5ns
|
||||
// T0L: 14 cycles or 875.0ns -> together 19 cycles or 1187.5ns
|
||||
// T1H: 11 cycles or 687.5ns
|
||||
// T1H: 8 cycles or 500.0ns -> together 19 cycles or 1187.5ns
|
||||
value := uint32(c) << 24
|
||||
arm.AsmFull(`
|
||||
send_bit:
|
||||
str {maskSet}, {portSet} @ [2] T0H and T0L start here
|
||||
nop @ [1]
|
||||
lsls {value}, #1 @ [1]
|
||||
bcs.n skip_store @ [1/3]
|
||||
str {maskClear}, {portClear} @ [2] T0H -> T0L transition
|
||||
|
||||
@@ -1,4 +1,4 @@
|
||||
// +build circuitplay_express itsybitsy_m0
|
||||
// +build circuitplay_express itsybitsy_m0 arduino_nano33
|
||||
|
||||
package ws2812
|
||||
|
||||
|
||||
Reference in New Issue
Block a user