Alex2ESP/examples/Thermostat/Thermostat.ino
David 69b4d59896 Examples as Arduino sketches: one folder per device type, each its own endpointId, Wi-Fi with a timeout
Light, DimmableLight, ColorTemperatureLight, ColorLight, TemperatureSensor, ContactSensor, Blind,
Thermostat, Lock, Scene, Doorbell and MultiDevice on the 2.0 API: addCapability(row, instance), one
onDirective() handler, the report helpers, ChangeReports from loop(), a deferred answer for the lock.
Wi-Fi is waited for 30 s, then the sketch says what to check and carries on.

examples/README.md has what each sketch does, its limits and the measured sizes for d1_mini: Light
takes 30,616 bytes of static RAM and 332,565 of flash; all 17 sketches build with 0 warnings.
test/test_examples compares the discovery object of every new sketch: 147 host tests (were 135).
The sketches were compiled, not run on a board.

Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com>
2026-09-28 21:41:51 +00:00

319 lines
9.4 KiB
C++

// Thermostat: heating and cooling with a setpoint (Alexa.ThermostatController, Alexa.TemperatureSensor).
//
// Modes HEAT, COOL, AUTO and OFF. HEAT and COOL have one setpoint; AUTO has two, it heats below the lower and
// cools above the upper one. Setpoints are 10 to 30 degrees Celsius and, in AUTO, at least 2 degrees apart.
// A directive in Fahrenheit or Kelvin is converted; the thermostat reports in Celsius.
//
// What is refused, and with which error:
// a setpoint outside of 10 to 30 degrees TEMPERATURE_VALUE_OUT_OF_RANGE, with the range
// two setpoints closer than 2 degrees REQUESTED_SETPOINTS_TOO_CLOSE, with the distance
// two setpoints in HEAT or COOL DUAL_SETPOINTS_UNSUPPORTED
// a setpoint while the thermostat is OFF THERMOSTAT_IS_OFF
// a mode other than the four UNSUPPORTED_THERMOSTAT_MODE
//
// The sensor is a TMP36 on A0 of a Wemos D1 mini (A0 takes 0 to 3.2 V); two outputs switch the heating and the
// cooling.
#include <Arduino.h>
#include <ESP8266WiFi.h>
#include <Alex2ESP.h>
// Wi-Fi and the credentials of your Alex2MQTT account
const char *WIFI_SSID = "";
const char *WIFI_PASSWORD = "";
const char *ALEXA_USERNAME = "";
const char *ALEXA_PASSWORD = "";
const char *ALEXA_ROOT_TOPIC = "";
const uint8_t HEAT_PIN = 5; // D1 on a Wemos D1 mini, high = on
const uint8_t COOL_PIN = 4; // D2
const float LOWEST = 10; // degrees Celsius
const float HIGHEST = 30;
const float DISTANCE = 2; // between the two setpoints of AUTO
const float HYSTERESIS = 0.5f;
Alex2ESP alexa;
AlexaThermostatMode mode = AlexaThermostatMode::HEAT;
float target = 21; // HEAT and COOL
float lower = 19; // AUTO
float upper = 24;
float temperature = 0;
unsigned long lastRead = 0;
// Joins the Wi-Fi network and returns after 30 s at the latest. Without a connection the sketch carries on: the
// ESP8266 keeps trying, and alexa.loop() opens the MQTT session once Wi-Fi is up.
void connectWiFi()
{
WiFi.mode(WIFI_STA);
WiFi.begin(WIFI_SSID, WIFI_PASSWORD);
Serial.printf("\n[WIFI] Connecting to \"%s\"\n", WIFI_SSID);
unsigned long started = millis();
while (WiFi.status() != WL_CONNECTED && millis() - started < 30000)
{
delay(100);
}
if (WiFi.status() == WL_CONNECTED)
{
Serial.printf("[WIFI] Connected, IP address %s\n", WiFi.localIP().toString().c_str());
}
else
{
Serial.printf("[WIFI] No connection after 30 s (status %d): check WIFI_SSID and WIFI_PASSWORD. Still trying.\n",
WiFi.status());
}
}
// TMP36: 0.5 V at 0 degrees Celsius, 10 mV per degree
float readTemperature()
{
float volts = analogRead(A0) * 3.2f / 1023;
return (volts - 0.5f) * 100;
}
// A temperature of a directive, {"value": 70, "scale": "FAHRENHEIT"}, in degrees Celsius
float toCelsius(JsonVariantConst temperature)
{
float value = temperature["value"] | 0.0f;
const char *scale = temperature["scale"] | "CELSIUS";
if (strcmp(scale, "FAHRENHEIT") == 0)
{
return (value - 32) * 5 / 9;
}
return strcmp(scale, "KELVIN") == 0 ? value - 273.15f : value;
}
// A difference between two temperatures: one degree Fahrenheit is 5/9 of a degree Celsius
float differenceInCelsius(JsonVariantConst difference)
{
float value = difference["value"] | 0.0f;
return strcmp(difference["scale"] | "CELSIUS", "FAHRENHEIT") == 0 ? value * 5 / 9 : value;
}
void setCelsius(JsonObject temperature, float value)
{
temperature["value"] = value;
temperature["scale"] = "CELSIUS";
}
bool withinRange(float setpoint)
{
return setpoint >= LOWEST && setpoint <= HIGHEST;
}
void sendOutOfRange(AlexaDirective &directive)
{
AlexaStatusMessage error = directive.error(AlexaErrorType::TEMPERATURE_VALUE_OUT_OF_RANGE, "10 to 30 degrees Celsius");
JsonObject range = error.payload()["validRange"].to<JsonObject>();
setCelsius(range["minimumValue"].to<JsonObject>(), LOWEST);
setCelsius(range["maximumValue"].to<JsonObject>(), HIGHEST);
error.send();
}
// The state of the thermostat: what the answer to a directive and the answer to ReportState carry
void sendState(AlexaStatusMessage message)
{
message.addHealthProp(EndpointHealth::OK)
.addTemperatureSensorProp(temperature, TemperatureSensorScale::CELSIUS, millis() - lastRead)
.addThermostatModeProp(mode);
if (mode == AlexaThermostatMode::AUTO)
{
message.addThermostatDualSetpointProp(lower, upper);
}
else
{
message.addThermostatSetpointProp(target);
}
message.send();
}
// Takes the setpoints when the thermostat can use them and returns true; sends the error and returns false when not.
// One setpoint in AUTO moves both and keeps their distance.
bool setSetpoints(AlexaDirective &directive, bool two, float first, float second)
{
if (mode == AlexaThermostatMode::OFF)
{
directive.error(AlexaErrorType::THERMOSTAT_IS_OFF, "Set a mode first").send();
return false;
}
if (two && mode != AlexaThermostatMode::AUTO)
{
directive.error(AlexaErrorType::DUAL_SETPOINTS_UNSUPPORTED, "Two setpoints in AUTO only").send();
return false;
}
if (!two && mode == AlexaThermostatMode::AUTO)
{
float half = (upper - lower) / 2;
second = first + half;
first = first - half;
}
if (mode != AlexaThermostatMode::AUTO)
{
if (!withinRange(first))
{
sendOutOfRange(directive);
return false;
}
target = first;
return true;
}
if (!withinRange(first) || !withinRange(second))
{
sendOutOfRange(directive);
return false;
}
if (second - first < DISTANCE)
{
AlexaStatusMessage error = directive.error(AlexaErrorType::REQUESTED_SETPOINTS_TOO_CLOSE, "At least 2 degrees apart");
setCelsius(error.payload()["minimumTemperatureDelta"].to<JsonObject>(), DISTANCE);
error.send();
return false;
}
lower = first;
upper = second;
return true;
}
bool setMode(const char *name)
{
if (strcmp(name, "HEAT") == 0)
{
mode = AlexaThermostatMode::HEAT;
}
else if (strcmp(name, "COOL") == 0)
{
mode = AlexaThermostatMode::COOL;
}
else if (strcmp(name, "AUTO") == 0)
{
mode = AlexaThermostatMode::AUTO;
}
else if (strcmp(name, "OFF") == 0)
{
mode = AlexaThermostatMode::OFF;
}
else
{
return false;
}
return true;
}
void onDirective(AlexaDirective &directive)
{
if (directive.isReportState())
{
sendState(directive.stateReport());
return;
}
JsonObjectConst payload = directive.payload;
if (directive.is("SetTargetTemperature"))
{
bool two = !payload["lowerSetpoint"].isNull() && !payload["upperSetpoint"].isNull();
bool taken = two ? setSetpoints(directive, true, toCelsius(payload["lowerSetpoint"]), toCelsius(payload["upperSetpoint"]))
: setSetpoints(directive, false, toCelsius(payload["targetSetpoint"]), 0);
if (!taken)
{
return;
}
}
else if (directive.is("AdjustTargetTemperature"))
{
float centre = mode == AlexaThermostatMode::AUTO ? (lower + upper) / 2 : target;
if (!setSetpoints(directive, false, centre + differenceInCelsius(payload["targetSetpointDelta"]), 0))
{
return;
}
}
else if (directive.is("SetThermostatMode"))
{
if (!setMode(payload["thermostatMode"]["value"] | ""))
{
directive.error(AlexaErrorType::UNSUPPORTED_THERMOSTAT_MODE, "HEAT, COOL, AUTO or OFF").send();
return;
}
}
else
{
directive.error(AlexaErrorType::INVALID_DIRECTIVE, "This thermostat takes setpoints and modes").send();
return;
}
sendState(directive.response());
}
// The "configuration" of the capability in discovery
void thermostatConfiguration(JsonObject configuration, void *)
{
JsonArray modes = configuration["supportedModes"].to<JsonArray>();
modes.add("HEAT");
modes.add("COOL");
modes.add("AUTO");
modes.add("OFF");
configuration["supportsScheduling"] = false;
}
// Switches on below the setpoint and off above it, with half a degree between the two
void control()
{
bool heats = mode == AlexaThermostatMode::HEAT || mode == AlexaThermostatMode::AUTO;
bool cools = mode == AlexaThermostatMode::COOL || mode == AlexaThermostatMode::AUTO;
float heatBelow = mode == AlexaThermostatMode::AUTO ? lower : target;
float coolAbove = mode == AlexaThermostatMode::AUTO ? upper : target;
if (!heats || temperature >= heatBelow + HYSTERESIS)
{
digitalWrite(HEAT_PIN, LOW);
}
else if (temperature <= heatBelow - HYSTERESIS)
{
digitalWrite(HEAT_PIN, HIGH);
}
if (!cools || temperature <= coolAbove - HYSTERESIS)
{
digitalWrite(COOL_PIN, LOW);
}
else if (temperature >= coolAbove + HYSTERESIS)
{
digitalWrite(COOL_PIN, HIGH);
}
}
void setup()
{
Serial.begin(74880);
pinMode(HEAT_PIN, OUTPUT);
pinMode(COOL_PIN, OUTPUT);
temperature = readTemperature();
connectWiFi();
// MQTT user name, MQTT password, root topic
alexa.begin(ALEXA_USERNAME, ALEXA_PASSWORD, ALEXA_ROOT_TOPIC);
// The name Alexa shows, and the id of the endpoint: every device of an account has its own
AlexaDevice *thermostat = alexa.getDevice("Hallway Thermostat", "esp-thermostat");
thermostat->setDisplayCategory(DisplayCategory::THERMOSTAT);
thermostat->addCapability(AlexaInterfaces::ThermostatController)->setConfiguration(thermostatConfiguration);
thermostat->addCapability(AlexaInterfaces::TemperatureSensor);
thermostat->addCapability(AlexaInterfaces::EndpointHealth);
thermostat->onDirective(onDirective);
}
void loop()
{
alexa.loop();
if (millis() - lastRead >= 2000)
{
lastRead = millis();
temperature = readTemperature();
control();
}
}