mirror of
https://github.com/tinygo-org/drivers.git
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Add ens160 i2c driver
Driver for ENS160 sensor: https://www.sciosense.com/wp-content/uploads/2023/12/ENS160-Datasheet.pdf
This commit is contained in:
committed by
deadprogram
parent
28d87eb0c5
commit
833990f44d
@@ -0,0 +1,225 @@
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// Package ens160 provides a driver for the ScioSense ENS160 digital gas sensor.
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//
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// Datasheet: https://www.sciosense.com/wp-content/uploads/2023/12/ENS160-Datasheet.pdf
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package ens160
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import (
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"encoding/binary"
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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 (
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defaultTimeout = 30 * time.Millisecond
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shortTimeout = 1 * time.Millisecond
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)
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// Conversion constants for environment data compensation.
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const (
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kelvinOffsetMilli = 273150 // 273.15 K in milli-units
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tempRawFactor = 64 // As per datasheet for TEMP_IN
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humRawFactor = 512 // As per datasheet for RH_IN
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milliFactor = 1000 // For converting from milli-units
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roundingTerm = milliFactor / 2 // For rounding before integer division
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)
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// validityStrings provides human-readable descriptions for validity flags.
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var validityStrings = [...]string{
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ValidityNormalOperation: "normal operation",
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ValidityWarmUpPhase: "warm-up phase, wait ~3 minutes for valid data",
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ValidityInitialStartUpPhase: "initial start-up phase, wait ~1 hour for valid data",
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ValidityInvalidOutput: "invalid output",
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}
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// Device wraps an I2C connection to an ENS160 device.
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type Device struct {
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bus drivers.I2C // I²C implementation
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addr uint16 // 7‑bit bus address, promoted to uint16 per drivers.I2C
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// shadow registers / last measurements
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lastTvocPPB uint16
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lastEco2PPM uint16
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lastAqiUBA uint8
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lastValidity uint8 // Store the latest validity status
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// pre‑allocated buffers
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wbuf [5]byte // longest write: reg + 4 bytes (TEMP+RH)
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rbuf [5]byte // longest read: DATA burst (5 bytes)
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}
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// New returns a new ENS160 driver.
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func New(bus drivers.I2C, addr uint16) *Device {
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if addr == 0 {
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addr = DefaultAddress
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}
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return &Device{
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bus: bus,
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addr: addr,
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lastValidity: ValidityInvalidOutput,
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}
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}
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// Connected returns whether a ENS160 has been found.
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func (d *Device) Connected() bool {
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d.wbuf[0] = regPartID
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err := d.bus.Tx(d.addr, d.wbuf[:1], d.rbuf[:2])
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return err == nil && d.rbuf[0] == LowPartID && d.rbuf[1] == HighPartID
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}
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// Configure sets up the device for reading.
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func (d *Device) Configure() error {
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// 1. Soft-reset. The device will automatically enter IDLE mode.
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if err := d.write1(regOpMode, ModeReset); err != nil {
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return err
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}
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time.Sleep(defaultTimeout)
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// 2. Clear GPR registers, then go to STANDARD mode.
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if err := d.write1(regCommand, cmdClrGPR); err != nil {
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return err
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}
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time.Sleep(defaultTimeout)
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if err := d.write1(regOpMode, ModeStandard); err != nil {
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return err
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}
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time.Sleep(defaultTimeout)
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return nil
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}
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// calculateTempRaw converts temperature from milli-degrees Celsius to the sensor's raw format.
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func calculateTempRaw(tempMilliC int32) uint16 {
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// Clip temperature
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const (
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minC = -40 * 1000
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maxC = 85 * 1000
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)
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if tempMilliC < minC {
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tempMilliC = minC
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} else if tempMilliC > maxC {
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tempMilliC = maxC
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}
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// Integer fixed-point conversion to format required by the sensor.
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// Formula from datasheet: T_IN = (T_ambient_C + 273.15) * 64
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return uint16((((tempMilliC + kelvinOffsetMilli) * tempRawFactor) + roundingTerm) / milliFactor)
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}
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// calculateHumRaw converts relative humidity from milli-percent to the sensor's raw format.
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func calculateHumRaw(rhMilliPct int32) uint16 {
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// Clip humidity
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if rhMilliPct < 0 {
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rhMilliPct = 0
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} else if rhMilliPct > 100*1000 {
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rhMilliPct = 100 * 1000
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}
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// Integer fixed-point conversion to format required by the sensor.
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// Formula from datasheet: RH_IN = (RH_ambient_% * 512)
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return uint16(((rhMilliPct * humRawFactor) + roundingTerm) / milliFactor)
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}
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// SetEnvDataMilli sets the ambient temperature and humidity for compensation.
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//
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// tempMilliC is the temperature in milli-degrees Celsius.
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// rhMilliPct is the relative humidity in milli-percent.
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func (d *Device) SetEnvDataMilli(tempMilliC, rhMilliPct int32) error {
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tempRaw := calculateTempRaw(tempMilliC)
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humRaw := calculateHumRaw(rhMilliPct)
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d.wbuf[0] = regTempIn // start address (auto‑increment)
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binary.LittleEndian.PutUint16(d.wbuf[1:3], tempRaw)
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binary.LittleEndian.PutUint16(d.wbuf[3:5], humRaw)
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return d.bus.Tx(d.addr, d.wbuf[:5], nil)
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}
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// Update refreshes the concentration measurements.
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func (d *Device) Update(which drivers.Measurement) error {
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if which&drivers.Concentration == 0 {
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return nil // nothing requested
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}
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const maxTries = 1000
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var (
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status uint8
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validity uint8
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)
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var gotData bool
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// Poll DEVICE_STATUS until NEWDAT or timeout
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for range maxTries {
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var err error
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status, err = d.read1(regStatus)
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if err != nil {
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return err
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}
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if status&statusSTATER != 0 {
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return errors.New("ENS160: error (STATER set)")
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}
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validity = (status & statusValidityMask) >> statusValidityShift
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if status&statusNEWDAT != 0 {
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gotData = true
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break // Always break when data available
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}
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time.Sleep(shortTimeout)
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}
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if !gotData {
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return errors.New("ENS160: timeout waiting for NEWDAT")
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}
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// Burst-read data regardless of validity state
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d.wbuf[0] = regAQI
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if err := d.bus.Tx(d.addr, d.wbuf[:1], d.rbuf[:5]); err != nil {
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return errors.New("ENS160: burst read failed")
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}
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d.lastAqiUBA = d.rbuf[0]
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d.lastTvocPPB = binary.LittleEndian.Uint16(d.rbuf[1:3])
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d.lastEco2PPM = binary.LittleEndian.Uint16(d.rbuf[3:5])
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d.lastValidity = validity // Store the validity status
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return nil
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}
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// TVOC returns the last total‑VOC concentration in parts‑per‑billion.
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func (d *Device) TVOC() uint16 { return d.lastTvocPPB }
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// ECO2 returns the last equivalent CO₂ concentration in parts‑per‑million.
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func (d *Device) ECO2() uint16 { return d.lastEco2PPM }
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// AQI returns the last Air‑Quality Index according to UBA (1–5).
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func (d *Device) AQI() uint8 { return d.lastAqiUBA }
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// Validity returns the current operating state of the sensor.
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func (d *Device) Validity() uint8 {
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return d.lastValidity
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}
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// ValidityString returns a human-readable string describing the current validity status.
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func (d *Device) ValidityString() string {
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if int(d.lastValidity) < len(validityStrings) {
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return validityStrings[d.lastValidity]
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}
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return "unknown"
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}
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// write1 writes a single byte to a register.
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func (d *Device) write1(reg, val uint8) error {
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d.wbuf[0] = reg
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d.wbuf[1] = val
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return d.bus.Tx(d.addr, d.wbuf[:2], nil)
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}
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// read1 reads a single byte from a register.
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func (d *Device) read1(reg uint8) (uint8, error) {
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d.wbuf[0] = reg
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if err := d.bus.Tx(d.addr, d.wbuf[:1], d.rbuf[:1]); err != nil {
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return 0, err
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}
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return d.rbuf[0], nil
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}
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@@ -0,0 +1,54 @@
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package ens160
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import (
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"testing"
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)
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func TestCalculateTempRaw(t *testing.T) {
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testCases := []struct {
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name string
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tempMilliC int32
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expectedRaw uint16
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}{
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{"25°C", 25000, 19082},
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{"-10.5°C", -10500, 16810},
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{"Min temp", -40000, 14922},
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{"Below min", -50000, 14922},
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{"Max temp", 85000, 22922},
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{"Above max", 90000, 22922},
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{"Zero", 0, 17482},
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}
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for _, tc := range testCases {
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t.Run(tc.name, func(t *testing.T) {
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raw := calculateTempRaw(tc.tempMilliC)
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if raw != tc.expectedRaw {
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t.Errorf("expected %d, got %d", tc.expectedRaw, raw)
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}
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})
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}
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}
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func TestCalculateHumRaw(t *testing.T) {
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testCases := []struct {
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name string
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rhMilliPct int32
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expectedRaw uint16
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}{
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{"50%", 50000, 25600},
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{"0%", 0, 0},
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{"100%", 100000, 51200},
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{"Below 0%", -10000, 0},
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{"Above 100%", 110000, 51200},
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{"33.3%", 33300, 17050},
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}
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for _, tc := range testCases {
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t.Run(tc.name, func(t *testing.T) {
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raw := calculateHumRaw(tc.rhMilliPct)
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if raw != tc.expectedRaw {
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t.Errorf("expected %d, got %d", tc.expectedRaw, raw)
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}
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})
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}
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}
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@@ -0,0 +1,65 @@
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package ens160
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// DefaultAddress is the default I2C address for the ENS160 when the ADDR pin is
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// connected to high (3.3V). When connected to low (GND), the address is 0x52.
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const DefaultAddress = 0x53
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// Registers
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const (
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regPartID = 0x00
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regOpMode = 0x10
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regConfig = 0x11
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regCommand = 0x12
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regTempIn = 0x13
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regRhIn = 0x15
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regStatus = 0x20
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regAQI = 0x21
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regTVOC = 0x22
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regECO2 = 0x24
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regDataT = 0x30
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regDataRH = 0x32
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regMISR = 0x38
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regGPRWrite = 0x40
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regGPRRead = 0x48
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)
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// Operating modes
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const (
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ModeDeepSleep = 0x00
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ModeIdle = 0x01
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ModeStandard = 0x02
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ModeReset = 0xF0
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)
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// Status register bits
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const (
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statusSTATAS = 1 << 7
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statusSTATER = 1 << 6
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statusValidityMask = 0x0C
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statusValidityShift = 2
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statusNEWDAT = 1 << 1
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statusNEWGPR = 1 << 0
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)
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// Validity flags
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const (
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ValidityNormalOperation = 0x00
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ValidityWarmUpPhase = 0x01 // need ~3 minutes until valid data
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ValidityInitialStartUpPhase = 0x02 // need ~1 hour until valid data
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ValidityInvalidOutput = 0x03
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)
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// Commands
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const (
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cmdNOP = 0x00
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cmdGetAppVer = 0x0E
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cmdClrGPR = 0xCC
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)
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// Part IDs
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const (
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LowPartID = 0x60
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HighPartID = 0x01
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)
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@@ -0,0 +1,56 @@
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// This example demonstrates ENS160 usage.
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//
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// Wiring:
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// - VCC to 3.3V, GND to ground
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// - SDA to board SDA, SCL to board SCL
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package main
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import (
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"time"
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"machine"
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"tinygo.org/x/drivers"
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"tinygo.org/x/drivers/ens160"
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)
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func main() {
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err := machine.I2C0.Configure(machine.I2CConfig{
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Frequency: 400 * machine.KHz,
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})
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if err != nil {
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println("Failed to configure I2C:", err)
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}
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dev := ens160.New(machine.I2C0, ens160.DefaultAddress)
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connected := dev.Connected()
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if !connected {
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println("ENS160 not detected")
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return
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}
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println("ENS160 detected")
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if err := dev.Configure(); err != nil {
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println("Failed to configure ENS160:", err)
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}
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for {
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err := dev.Update(drivers.Concentration)
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if err != nil {
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println("Error reading ENS160: %v\n", err)
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time.Sleep(5 * time.Second)
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continue
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}
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println(
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"AQI:", dev.AQI(),
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"TVOC:", dev.TVOC(),
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"eCO2:", dev.ECO2(),
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"Validity:", dev.ValidityString(),
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)
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time.Sleep(2 * time.Second)
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}
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}
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@@ -141,6 +141,7 @@ tinygo build -size short -o ./build/test.uf2 -target=pico ./examples/tmc2209/mai
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tinygo build -size short -o ./build/test.hex -target=pico ./examples/tmc5160/main.go
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tinygo build -size short -o ./build/test.uf2 -target=nicenano ./examples/sharpmem/main.go
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tinygo build -size short -o ./build/test.hex -target=feather-nrf52840 ./examples/max6675/main.go
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tinygo build -size short -o ./build/test.hex -target=pico ./examples/ens160/main.go
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# network examples (espat)
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tinygo build -size short -o ./build/test.hex -target=challenger-rp2040 ./examples/net/ntpclient/
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# network examples (wifinina)
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Block a user