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sgp30: add the now-obsolete SGP30 air quality sensor
Tested with a rp2040. TODO: add the ability to set the absolute humidity for more accurate sensor details. The formula for that is rather complex, so I've left this as a future addition.
This commit is contained in:
committed by
Ron Evans
parent
93cbba5d8b
commit
92050d90da
@@ -0,0 +1,53 @@
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package main
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// Example for the SGP30 to be used on a Raspberry Pi pico.
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// Connect the sensor I2C pins to GP26 and GP27 to test.
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import (
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"machine"
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"time"
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"tinygo.org/x/drivers/sgp30"
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)
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func main() {
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time.Sleep(time.Second)
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println("start")
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// Configure the I2C bus.
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bus := machine.I2C1
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err := bus.Configure(machine.I2CConfig{
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SDA: machine.GP26,
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SCL: machine.GP27,
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Frequency: 400 * machine.KHz,
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})
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if err != nil {
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println("could not configure I2C:", bus)
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return
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}
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// Configure the sensor.
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sensor := sgp30.New(bus)
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if !sensor.Connected() {
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println("sensor not connected")
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return
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}
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err = sensor.Configure(sgp30.Config{})
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if err != nil {
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println("sensor could not be configured:", err.Error())
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return
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}
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// Measure every second, as recommended by the datasheet.
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for {
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time.Sleep(time.Second)
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err := sensor.Update(0)
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if err != nil {
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println("could not read sensor:", err.Error())
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continue
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}
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println("CO₂ equivalent:", sensor.CO2())
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println("TVOC ", sensor.TVOC())
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}
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}
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+169
@@ -0,0 +1,169 @@
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// SGP30 VOC sensor.
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//
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// This sensor is marked obsolete by Sensirion, but is still commonly available.
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//
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// Datasheet: https://sensirion.com/media/documents/984E0DD5/61644B8B/Sensirion_Gas_Sensors_Datasheet_SGP30.pdf
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package sgp30
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import (
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"errors"
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"time"
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"tinygo.org/x/drivers"
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)
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const Address = 0x58
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var (
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errInvalidCRC = errors.New("sgp30: invalid CRC")
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)
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type Device struct {
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bus drivers.I2C
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commandBuf [2]byte
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responseBuf [9]byte
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readyTime time.Time
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co2eq uint16
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tvoc uint16
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}
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type Config struct {
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// Nothing to configure right now.
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}
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// New returns a new SGP30 driver instance. It does not touch the device yet,
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// call Configure to configure this sensor.
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func New(bus drivers.I2C) *Device {
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return &Device{
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bus: bus,
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// The sensor has a maximum powerup time of 0.6ms.
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// See table 6 in the datasheet.
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readyTime: time.Now().Add(600 * time.Microsecond),
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}
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}
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// Connected returns whether something (probably a SGP30) is present on the bus.
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func (d *Device) Connected() bool {
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d.waitUntilReady()
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// Request serial ID.
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d.commandBuf = [2]byte{0x36, 0x82}
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err := d.bus.Tx(Address, d.commandBuf[:], nil)
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if err != nil {
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return false
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}
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// Wait 0.5ms as specified in the datasheet.
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time.Sleep(500 * time.Microsecond)
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// Read the serial ID from the sensor.
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err = d.bus.Tx(Address, nil, d.responseBuf[:9])
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if err != nil {
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return false
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}
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// Check whether the CRC matches.
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_, ok1 := readWord(d.responseBuf[:3])
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_, ok2 := readWord(d.responseBuf[3:6])
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_, ok3 := readWord(d.responseBuf[6:9])
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ok := ok1 && ok2 && ok3
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return ok
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}
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// Wait until a previous command has completed. This may be necessary on
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// startup, for example.
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func (d *Device) waitUntilReady() {
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now := time.Now()
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delay := d.readyTime.Sub(now)
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if delay > 0 {
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time.Sleep(delay)
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}
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}
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// Configure starts the measurement process for the SGP30 sensor.
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func (d *Device) Configure(config Config) error {
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d.waitUntilReady()
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// Send the sgp30_iaq_init command.
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d.commandBuf = [2]byte{0x20, 0x03}
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err := d.bus.Tx(Address, d.commandBuf[:], nil)
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// The next command will have to wait at least 10ms.
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d.readyTime = time.Now().Add(10 * time.Millisecond)
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return err
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}
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// Read the current CO₂eq and TVOC values from the sensor.
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// This method must be called around once per second per the datasheet as this
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// is how the sensor algorithm was calibrated.
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func (d *Device) Update(which drivers.Measurement) error {
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d.waitUntilReady()
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// Send sgp30_measure_iaq command.
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d.commandBuf = [2]byte{0x20, 0x08}
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err := d.bus.Tx(Address, d.commandBuf[:], nil)
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if err != nil {
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return err
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}
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// Wait until the response is ready.
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// This can take up to 12ms according to the datasheet.
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time.Sleep(12 * time.Millisecond)
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// Read the response.
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data := d.responseBuf[:6]
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err = d.bus.Tx(Address, nil, data)
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if err != nil {
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return err
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}
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// Decode the response.
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co2eq, ok1 := readWord(data[0:3])
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tvoc, ok2 := readWord(data[3:6])
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if !ok1 || !ok2 {
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return errInvalidCRC
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}
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d.co2eq = co2eq
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d.tvoc = tvoc
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return nil
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}
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// Returns the CO₂ equivalent value read in the previous measurement.
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//
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// Warning: this is _not_ an actual CO₂ value. The SGP30 can't actually read
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// CO₂. Instead, it's an approximation based on various other gases in the
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// environment.
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func (d *Device) CO2() uint32 {
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return uint32(d.co2eq)
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}
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// Returns the total number of VOCs (volatile organic compounds) in parts per
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// billion (ppb).
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func (d *Device) TVOC() uint32 {
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return uint32(d.tvoc)
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}
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// Read a single 16-bit word from the sensor and check the CRC. The data
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// parameter must be a slice of 3 bytes.
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func readWord(data []byte) (value uint16, ok bool) {
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if len(data) != 3 {
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return 0, false
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}
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value = uint16(data[0])<<8 | uint16(data[1])
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crc := uint8(0xff)
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for i := 0; i < 2; i++ {
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crc ^= data[i]
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for b := 0; b < 8; b++ {
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if crc&0x80 != 0 {
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crc = (crc << 1) ^ 0x31
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} else {
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crc <<= 1
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}
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}
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}
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ok = crc == data[2]
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return
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}
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@@ -62,6 +62,7 @@ tinygo build -size short -o ./build/test.hex -target=pico ./examples/pca9685/mai
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tinygo build -size short -o ./build/test.hex -target=microbit ./examples/pcd8544/setbuffer/main.go
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tinygo build -size short -o ./build/test.hex -target=microbit ./examples/pcd8544/setpixel/main.go
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tinygo build -size short -o ./build/test.hex -target=arduino ./examples/servo
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tinygo build -size short -o ./build/test.hex -target=pico ./examples/sgp30
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tinygo build -size short -o ./build/test.hex -target=pybadge ./examples/shifter/main.go
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tinygo build -size short -o ./build/test.hex -target=microbit ./examples/sht3x/main.go
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tinygo build -size short -o ./build/test.hex -target=microbit ./examples/sht4x/main.go
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