Initial commit of Arduino libraries
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/*
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RadioLib RF69 Transmit with Interrupts Example
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This example transmits FSK packets with one second delays
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between them. Each packet contains up to 64 bytes
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of data, in the form of:
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- Arduino String
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- null-terminated char array (C-string)
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- arbitrary binary data (byte array)
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For default module settings, see the wiki page
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https://github.com/jgromes/RadioLib/wiki/Default-configuration#rf69sx1231
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For full API reference, see the GitHub Pages
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https://jgromes.github.io/RadioLib/
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*/
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// include the library
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#include <RadioLib.h>
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// RF69 has the following connections:
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// CS pin: 10
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// DIO0 pin: 2
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// RESET pin: 3
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RF69 radio = new Module(10, 2, 3);
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// or detect the pinout automatically using RadioBoards
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// https://github.com/radiolib-org/RadioBoards
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/*
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#define RADIO_BOARD_AUTO
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#include <RadioBoards.h>
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Radio radio = new RadioModule();
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*/
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// save transmission state between loops
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int transmissionState = RADIOLIB_ERR_NONE;
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// flag to indicate that a packet was sent
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volatile bool transmittedFlag = false;
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// this function is called when a complete packet
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// is transmitted by the module
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// IMPORTANT: this function MUST be 'void' type
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// and MUST NOT have any arguments!
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#if defined(ESP8266) || defined(ESP32)
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ICACHE_RAM_ATTR
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#endif
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void setFlag(void) {
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// we sent a packet, set the flag
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transmittedFlag = true;
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}
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void setup() {
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Serial.begin(9600);
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// initialize RF69 with default settings
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Serial.print(F("[RF69] Initializing ... "));
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int state = radio.begin();
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if (state == RADIOLIB_ERR_NONE) {
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Serial.println(F("success!"));
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} else {
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Serial.print(F("failed, code "));
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Serial.println(state);
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while (true) { delay(10); }
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}
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// set the function that will be called
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// when packet transmission is finished
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radio.setPacketSentAction(setFlag);
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// NOTE: some RF69 modules use high power output,
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// those are usually marked RF69H(C/CW).
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// To configure RadioLib for these modules,
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// you must call setOutputPower() with
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// second argument set to true.
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/*
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Serial.print(F("[RF69] Setting high power module ... "));
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state = radio.setOutputPower(20, true);
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if (state == RADIOLIB_ERR_NONE) {
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Serial.println(F("success!"));
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} else {
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Serial.print(F("failed, code "));
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Serial.println(state);
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while (true) { delay(10); }
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}
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*/
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// start transmitting the first packet
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Serial.print(F("[RF69] Sending first packet ... "));
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// you can transmit C-string or Arduino string up to
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// 64 characters long
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transmissionState = radio.startTransmit("Hello World!");
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// you can also transmit byte array up to 64 bytes long
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/*
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byte byteArr[] = {0x01, 0x23, 0x45, 0x67,
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0x89, 0xAB, 0xCD, 0xEF};
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state = radio.startTransmit(byteArr, 8);
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*/
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}
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// counter to keep track of transmitted packets
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int count = 0;
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void loop() {
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// check if the previous transmission finished
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if(transmittedFlag) {
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// reset flag
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transmittedFlag = false;
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if (transmissionState == RADIOLIB_ERR_NONE) {
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// packet was successfully sent
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Serial.println(F("transmission finished!"));
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// NOTE: when using interrupt-driven transmit method,
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// it is not possible to automatically measure
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// transmission data rate using getDataRate()
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} else {
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Serial.print(F("failed, code "));
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Serial.println(transmissionState);
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}
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// clean up after transmission is finished
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// this will ensure transmitter is disabled,
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// RF switch is powered down etc.
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radio.finishTransmit();
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// wait a second before transmitting again
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delay(1000);
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// send another one
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Serial.print(F("[RF69] Sending another packet ... "));
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// you can transmit C-string or Arduino string up to
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// 64 characters long
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String str = "Hello World! #" + String(count++);
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transmissionState = radio.startTransmit(str);
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// you can also transmit byte array up to 64 bytes long
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/*
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byte byteArr[] = {0x01, 0x23, 0x45, 0x67,
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0x89, 0xAB, 0xCD, 0xEF};
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transmissionState = radio.startTransmit(byteArr, 8);
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*/
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}
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}
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