// **********************************************************************************
// Driver definition for HopeRF RFM69W/RFM69HW/RFM69CW/RFM69HCW, Semtech SX1231/1231H
// **********************************************************************************
// Copyright Felix Rusu (2014), felix@lowpowerlab.com
// http://lowpowerlab.com/
// **********************************************************************************
// License
// **********************************************************************************
// This program is free software; you can redistribute it
// and/or modify it under the terms of the GNU General
// Public License as published by the Free Software
// Foundation; either version 3 of the License, or
// (at your option) any later version.
//
// This program is distributed in the hope that it will
// be useful, but WITHOUT ANY WARRANTY; without even the
// implied warranty of MERCHANTABILITY or FITNESS FOR A
// PARTICULAR PURPOSE. See the GNU General Public
// License for more details.
//
// You should have received a copy of the GNU General
// Public License along with this program.
// If not, see <http://www.gnu.org/licenses/>.
//
// Licence can be viewed at
// http://www.gnu.org/licenses/gpl-3.0.txt
//
// Please maintain this license information along with authorship
// and copyright notices in any redistribution of this code
// **********************************************************************************
#ifndef RFM69_h
#define RFM69_h
#if !defined(RFM69_SPI)
#define RFM69_SPI hwSPI //!< default SPI
#endif
#define RFM69_MAX_DATA_LEN (61u) // to take advantage of the built in AES/CRC we want to limit the frame size to the internal FIFO size (66 bytes - 3 bytes overhead - 2 bytes crc)
#if defined(ARDUINO_ARCH_AVR)
#if defined(__AVR_ATmega32U4__)
#define DEFAULT_RFM69_IRQ_PIN (3) //!< DEFAULT_RFM69_IRQ_PIN
#else
#define DEFAULT_RFM69_IRQ_PIN (2) //!< DEFAULT_RFM69_IRQ_PIN
#endif
#define DEFAULT_RFM69_IRQ_NUM digitalPinToInterrupt(MY_RFM69_IRQ_PIN) //!< DEFAULT_RFM69_IRQ_NUM
#elif defined(ARDUINO_ARCH_ESP8266)
#define DEFAULT_RFM69_IRQ_PIN (5) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM digitalPinToInterrupt(MY_RFM69_IRQ_PIN) //!< DEFAULT_RFM69_IRQ_NUM
#elif defined(ARDUINO_ARCH_ESP32)
#define DEFAULT_RFM69_IRQ_PIN (16) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM digitalPinToInterrupt(DEFAULT_RFM69_IRQ_PIN) //!< DEFAULT_RFM69_IRQ_NUM
#elif defined(ARDUINO_ARCH_SAMD)
#define DEFAULT_RFM69_IRQ_PIN (2) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM digitalPinToInterrupt(MY_RFM69_IRQ_PIN) //!< DEFAULT_RFM69_IRQ_NUM
#elif defined(LINUX_ARCH_RASPBERRYPI)
#define DEFAULT_RFM69_IRQ_PIN (22) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM DEFAULT_RFM69_IRQ_PIN //!< DEFAULT_RFM69_IRQ_NUM
#elif defined(ARDUINO_ARCH_STM32F1)
#define DEFAULT_RFM69_IRQ_PIN (PA3) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM DEFAULT_RFM69_IRQ_PIN //!< DEFAULT_RFM69_IRQ_NUM
#elif defined(TEENSYDUINO)
#define DEFAULT_RFM69_IRQ_PIN (8) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM digitalPinToInterrupt(MY_RFM69_IRQ_PIN) //!< DEFAULT_RFM69_IRQ_NUM
#else
#define DEFAULT_RFM69_IRQ_PIN (2) //!< DEFAULT_RFM69_IRQ_PIN
#define DEFAULT_RFM69_IRQ_NUM (2) //!< DEFAULT_RFM69_IRQ_NUM
#endif
#define DEFAULT_RFM69_CS_PIN (SS) //!< DEFAULT_RFM69_CS_PIN
// SPI clock divier for non-transaction implementations
#if (MY_RFM69_SPI_SPEED >= F_CPU / 2)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV2 //!< SPI clock divider 2
#elif (MY_RFM69_SPI_SPEED >= F_CPU / 4)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV4 //!< SPI clock divider 4
#elif (MY_RFM69_SPI_SPEED >= F_CPU / 8)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV8 //!< SPI clock divider 8
#elif (MY_RFM69_SPI_SPEED >= F_CPU / 16)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV16 //!< SPI clock divider 16
#elif (MY_RFM69_SPI_SPEED >= F_CPU / 32)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV32 //!< SPI clock divider 32
#elif (MY_RFM69_SPI_SPEED >= F_CPU / 64)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV64 //!< SPI clock divider 64
#elif (MY_RFM69_SPI_SPEED >= F_CPU / 128)
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV128 //!< SPI clock divider 128
#else
#define RFM69_CLOCK_DIV SPI_CLOCK_DIV256 //!< SPI clock divider 256
#endif
// powerup delay
#define RFM69_POWERUP_DELAY_MS (100u) //!< Power up delay, allow VCC to settle, transport to become fully operational
#define CSMA_LIMIT -90 // upper RX signal sensitivity threshold in dBm for carrier sense access
#define RFM69_MODE_SLEEP 0 // XTAL OFF
#define RFM69_MODE_STANDBY 1 // XTAL ON
#define RFM69_MODE_SYNTH 2 // PLL ON
#define RFM69_MODE_RX 3 // RX MODE
#define RFM69_MODE_TX 4 // TX MODE
// available frequency bands
#define RFM69_315MHZ 31 // non trivial values to avoid misconfiguration
#define RFM69_433MHZ 43
#define RFM69_868MHZ 86
#define RFM69_915MHZ 91
#define null 0
#define COURSE_TEMP_COEF -90 // puts the temperature reading in the ballpark, user can fine tune the returned value
#define RFM69_BROADCAST_ADDR 255
#define RFM69_CSMA_LIMIT_MS 1000
#define RFM69_TX_LIMIT_MS 1000
#define RFM69_FXOSC (32*1000000ul) //!< The crystal oscillator frequency of the module, 32MHz
#define RFM69_FSTEP (RFM69_FXOSC / 524288ul) //!< The Frequency Synthesizer step
// TWS: define CTLbyte bits
#define RFM69_CTL_SENDACK 0x80
#define RFM69_CTL_REQACK 0x40
/** RFM69 class */
class RFM69
{
public:
static volatile uint8_t DATA[RFM69_MAX_DATA_LEN]; //!< recv/xmit buf, including hdr & crc bytes
static volatile uint8_t DATALEN; //!< DATALEN
static volatile uint8_t SENDERID; //!< SENDERID
static volatile uint8_t TARGETID; //!< should match _address
static volatile uint8_t PAYLOADLEN; //!< PAYLOADLEN
static volatile uint8_t ACK_REQUESTED; //!< ACK_REQUESTED
static volatile uint8_t
ACK_RECEIVED; //!< Should be polled immediately after sending a packet with ACK requestwith ACK request
static volatile int16_t RSSI; //!< most accurate RSSI during reception (closest to the reception)
static volatile uint8_t _mode; //!< should be protected?
/**
* @brief Constructor
*
* @param slaveSelectPin ChipSelect pin.
* @param interruptPin Interrupt pin.
* @param isRFM69HW Set to @c true to indicate RFM69HW variant.
* @param interruptNum Interrupt number.
*/
// cppcheck-suppress uninitMemberVar
RFM69(uint8_t slaveSelectPin=MY_RFM69_CS_PIN, uint8_t interruptPin=MY_RFM69_IRQ_PIN,
bool isRFM69HW=false,
uint8_t interruptNum=digitalPinToInterrupt(MY_RFM69_IRQ_PIN))
{
_slaveSelectPin = slaveSelectPin;
_interruptPin = interruptPin;
_interruptNum = interruptNum;
_mode = RFM69_MODE_STANDBY;
_promiscuousMode = false;
_powerLevel = 31;
_isRFM69HW = isRFM69HW;
_address = RFM69_BROADCAST_ADDR;
#if !defined(SPI_HAS_TRANSACTION)
#if defined (SPCR) && defined (SPSR)
_SPCR = 0;
_SPSR = 0;
#endif
#if defined (SREG)
_SREG = 0;
#endif
#endif // SPI_HAS_TRANSACTION
}
bool initialize(uint8_t freqBand, uint8_t ID, uint8_t networkID=1); //!< initialize
void setAddress(uint8_t addr); //!< setAddress
void setNetwork(uint8_t networkID); //!< setNetwork
bool canSend(); //!< canSend
virtual void send(uint8_t toAddress, const void* buffer, uint8_t bufferSize,
bool requestACK=false); //!< send
virtual bool sendWithRetry(uint8_t toAddress, const void* buffer, uint8_t bufferSize,
uint8_t retries=5, uint8_t retryWaitTime=
200); //!< sendWithRetry (40ms roundtrip req for 61byte packets, adjusted)
virtual bool receiveDone(); //!< receiveDone
bool ACKReceived(uint8_t fromNodeID); //!< ACKReceived
bool ACKRequested(); //!< ACKRequested
virtual void sendACK(const void* buffer = "", uint8_t bufferSize=0); //!< sendACK
uint32_t getFrequency(); //!< getFrequency
void setFrequency(uint32_t freqHz); //!< setFrequency
void encrypt(const char* key); //!< encrypt
void setCS(uint8_t newSPISlaveSelect); //!< setCS
int16_t readRSSI(bool forceTrigger=false); //!< readRSSI
void promiscuous(bool onOff=true); //!< promiscuous
virtual void setHighPower(bool onOFF=
true); //!< setHighPower (have to call it after initialize for RFM69HW)
virtual void setPowerLevel(uint8_t level); //!< setPowerLevel (reduce/increase transmit power level)
void sleep(void); //!< sleep
void standBy(void); //!< standBy
void powerDown(void); //!< powerDown
void powerUp(void); //!< powerUp
void reset(void); //!< reset
bool sanityCheck(void); //!< sanityCheck
uint8_t readTemperature(uint8_t calFactor=0); //!< readTemperature (get CMOS temperature (8bit))
void rcCalibration(); //!< rcCalibration (calibrate the internal RC oscillator for use in wide temperature variations - see datasheet section [4.3.5. RC Timer Accuracy])
// allow hacking registers by making these public
uint8_t readReg(uint8_t addr); //!< readReg
void writeReg(uint8_t addr, uint8_t val); //!< writeReg
void readAllRegs(); //!< readAllRegs
protected:
static void isr0(); //!< isr0
void virtual interruptHandler(); //!< interruptHandler
virtual void interruptHook(uint8_t CTLbyte); //!< interruptHook
virtual void sendFrame(uint8_t toAddress, const void* buffer, uint8_t size, bool requestACK=false,
bool sendACK=false); //!< sendFrame
static RFM69* selfPointer; //!< selfPointer
uint8_t _slaveSelectPin; //!< _slaveSelectPin
uint8_t _interruptPin; //!< _interruptPin
uint8_t _interruptNum; //!< _interruptNum
uint8_t _address; //!< _address
bool _promiscuousMode; //!< _promiscuousMode
uint8_t _powerLevel; //!< _powerLevel
bool _isRFM69HW; //!< _isRFM69HW
#if defined (SPCR) && defined (SPSR)
uint8_t _SPCR; //!< _SPCR
uint8_t _SPSR; //!< _SPSR
#endif
#if defined (SREG)
uint8_t _SREG; //!< _SREG
#endif
virtual void receiveBegin(); //!< receiveBegin
virtual void setMode(uint8_t mode); //!< setMode
virtual void setHighPowerRegs(bool onOff); //!< setHighPowerRegs
virtual void select(); //!< select
virtual void unselect(); //!< unselect
};
#endif