add rotary
Dependencies: X_NUCLEO_IKS01A1 LoRaWAN-lib SX1272Lib mbed
Fork of Canada-SX1272-LoRaWAN-Bootcamp by
LoRaWAN-SX1272-Mbed-Shield
Overview
LoRaWAN-SX1272-Mbed-Shield application demo is a LoRaWAN Class-A device example project using LoRaWAN-lib and SX1272Lib libraries that send out sensors data.
Prerequisites
1. NUCLEO_L152RE board.
2. SX1272-mbed-shield board.
3. X-NUCLEO-IKS01A1.
4. Grove Red LED.
5. Grove Button.
6. Grove Rotary Angle Sensor.
7. mbed online compiler.
8. Tera Term.
Hardware Configuration
Application 8, 9, 11
1. Connect NUCLEO_L152RE with X-NUCLEO-IKS01A1.
2. On top of X-NUCLEO-IKS01A1, connect SX1272-mbed-shield.
Application 13
1. Connect NUCLEO_L152RE with SX1272-mbed-shield.
2. Connect Grove Red LED with DIO_D6 port on SX1272-mbed-shield.
3. Connect Grove Button with DIO_D8 port on SX1272-mbed-shield.
4. Connect Grove Rotary Angle Sensor with ANA_A1 port SX1272-mbed-shield.
Software Configuration
The end-device must be configured with the following parameters:
- Commissioning.h
- Activation Type: OTA or ABP
- OTA: #define OVER_THE_AIR_ACTIVATION 1
- Network Type: Public or Private
- Public: #define LORAWAN_PUBLIC_NETWORK true
- LORAWAN_DEVICE_EUI (8 Bytes) : Fist 3 Bytes is the Organizationally Unique Identifier (OUI) followed by 5 bytes of unique ID. If not defined by user, then the firmware automatically assigns one to the end-device. (For OTA)
- #define IEEE_OUI 0x00, 0x00, 0x00
- #define LORAWAN_DEVICE_EUI { IEEE_OUI, 0x00, 0x00, 0x00, 0x00, 0x00 }
- #define IEEE_OUI 0x00, 0x00, 0x00
- LORAWAN_APPLICATION_EUI (8 Bytes) (For OTA)
- #define LORAWAN_APPLICATION_EUI { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }
- LORAWAN_APPLICATION_KEY (16 Bytes) (For OTA)
- #define LORAWAN_APPLICATION_KEY { 0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee, 0xff }
- #define LORAWAN_APPLICATION_KEY { 0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee, 0xff }
- LORAWAN_DEVICE_ADDRESS (For ABP)
- #define LORAWAN_DEVICE_ADDRESS ( uint32_t )0x0
- LORAWAN_NWKSKEY (For ABP)
- #define LORAWAN_NWKSKEY { 0x2B, 0x7E, 0x15, 0x16, 0x28, 0xAE, 0xD2, 0xA6, 0xAB, 0xF7, 0x15, 0x88, 0x09, 0xCF, 0x4F, 0x3C }
- LORAWAN_APPSKEY (For ABP)
- #define LORAWAN_APPSKEY { 0x2B, 0x7E, 0x15, 0x16, 0x28, 0xAE, 0xD2, 0xA6, 0xAB, 0xF7, 0x15, 0x88, 0x09, 0xCF, 0x4F, 0x3C }
- Activation Type: OTA or ABP
- Configure.h
- Communication Type: Hybrid or FHSS
- Hybrid: #define USE_BAND_915_HYBRID
- Join request Period:
- 5 sec: #define OVER_THE_AIR_ACTIVATION_DUTYCYCLE 5000000 value in us
- TX Period:
- 5 sec: #define APP_TX_DUTYCYCLE 5000000 value in us
- Uplink message: Confirmed or Unconfirmed
- Confirmed: #define LORAWAN_CONFIRMED_MSG_ON 1
- ADR(Adaptive Data Rate): ON or OFF
- OFF: #define LORAWAN_ADR_ON 0
- Default data rate: DR_0 or DR_1 or DR_2 or DR_3 or DR_4
- DR_0: #define LORAWAN_DEFAULT_DATARATE DR_0
- Application Type: 8 (IKS01A1) or 9 (IKS01A1+Cayenne) or 11 (Push Button) or 13 (rotary+Cayenne)
- 9: #define LORAWAN_APP_PORT 9
- Tx Power: 10 to 30
- 20 dBm: #define LORAWAN_TX_POWER TX_POWER_20_DBM
- Communication Type: Hybrid or FHSS
Serial Terminal Display
- Use Tera Term to see the sending message (baud rate: 115200):
- button = 0 (if not press) button = 1 (if pressed)
- rotary = 0 ~ 300
- button = 0 (if not press) button = 1 (if pressed)
app/LoRaApp.cpp@17:a822234a2299, 2018-02-10 (annotated)
- Committer:
- terence304
- Date:
- Sat Feb 10 02:37:58 2018 +0000
- Revision:
- 17:a822234a2299
- Parent:
- 8:b1f612e91735
update commissioning parameters
Who changed what in which revision?
User | Revision | Line number | New contents of line |
---|---|---|---|
ubhat | 0:6cc76d70e2a1 | 1 | /* |
ubhat | 0:6cc76d70e2a1 | 2 | / _____) _ | | |
ubhat | 0:6cc76d70e2a1 | 3 | ( (____ _____ ____ _| |_ _____ ____| |__ |
ubhat | 0:6cc76d70e2a1 | 4 | \____ \| ___ | (_ _) ___ |/ ___) _ \ |
ubhat | 0:6cc76d70e2a1 | 5 | _____) ) ____| | | || |_| ____( (___| | | | |
ubhat | 0:6cc76d70e2a1 | 6 | (______/|_____)_|_|_| \__)_____)\____)_| |_| |
ubhat | 0:6cc76d70e2a1 | 7 | (C)2015 Semtech |
ubhat | 0:6cc76d70e2a1 | 8 | |
ubhat | 0:6cc76d70e2a1 | 9 | Description: User-defined applications such as GPS, Temp, Accelerometer, LED indications etc. |
ubhat | 0:6cc76d70e2a1 | 10 | Event based actions such as LED blink on Tx, LED toggle on downlink etc |
ubhat | 0:6cc76d70e2a1 | 11 | |
ubhat | 0:6cc76d70e2a1 | 12 | License: Revised BSD License, see LICENSE.TXT file include in the project |
ubhat | 0:6cc76d70e2a1 | 13 | |
ubhat | 0:6cc76d70e2a1 | 14 | Maintainer: Uttam Bhat |
ubhat | 0:6cc76d70e2a1 | 15 | */ |
ubhat | 0:6cc76d70e2a1 | 16 | |
ubhat | 0:6cc76d70e2a1 | 17 | #include "LoRaApp.h" |
ubhat | 0:6cc76d70e2a1 | 18 | |
ubhat | 0:6cc76d70e2a1 | 19 | #ifdef USE_IKS01A1_SENSOR |
ubhat | 0:6cc76d70e2a1 | 20 | float iks01a1_data; |
ubhat | 0:6cc76d70e2a1 | 21 | int32_t Accl_Value[3] = {0}; |
ubhat | 0:6cc76d70e2a1 | 22 | #endif |
ubhat | 0:6cc76d70e2a1 | 23 | |
ubhat | 0:6cc76d70e2a1 | 24 | #ifdef USE_CAYENNE_LPP |
ubhat | 0:6cc76d70e2a1 | 25 | /* |
ubhat | 0:6cc76d70e2a1 | 26 | .... Pressure |
ubhat | 0:6cc76d70e2a1 | 27 | .... Temperature |
ubhat | 0:6cc76d70e2a1 | 28 | .... Humidity |
ubhat | 0:6cc76d70e2a1 | 29 | .... Accelerometer |
ubhat | 0:6cc76d70e2a1 | 30 | */ |
ubhat | 0:6cc76d70e2a1 | 31 | uint8_t maxLPPsize[4] = {4, 4, 3, 8}; |
ubhat | 0:6cc76d70e2a1 | 32 | #endif |
ubhat | 0:6cc76d70e2a1 | 33 | |
ubhat | 0:6cc76d70e2a1 | 34 | bool VerticalStatus = false; |
ubhat | 0:6cc76d70e2a1 | 35 | |
ubhat | 0:6cc76d70e2a1 | 36 | |
ubhat | 0:6cc76d70e2a1 | 37 | Application::Application( uint8_t * memptr ) |
ubhat | 0:6cc76d70e2a1 | 38 | { |
ubhat | 0:6cc76d70e2a1 | 39 | BuffAddr = memptr; |
ubhat | 0:6cc76d70e2a1 | 40 | memset( BuffAddr, 0, LORAWAN_APP_DATA_MAX_SIZE ); |
ubhat | 0:6cc76d70e2a1 | 41 | BuffPtr = 0; |
ubhat | 0:6cc76d70e2a1 | 42 | } |
ubhat | 0:6cc76d70e2a1 | 43 | |
ubhat | 0:6cc76d70e2a1 | 44 | Application::~Application( ) |
ubhat | 0:6cc76d70e2a1 | 45 | { |
ubhat | 0:6cc76d70e2a1 | 46 | } |
ubhat | 0:6cc76d70e2a1 | 47 | |
ubhat | 0:6cc76d70e2a1 | 48 | void Application::ApplicationAppendData( uint8_t *pData, uint8_t len ) |
ubhat | 0:6cc76d70e2a1 | 49 | { |
ubhat | 0:6cc76d70e2a1 | 50 | memcpy( BuffAddr + BuffPtr, pData, len ); |
ubhat | 0:6cc76d70e2a1 | 51 | BuffPtr += len; |
ubhat | 0:6cc76d70e2a1 | 52 | } |
ubhat | 0:6cc76d70e2a1 | 53 | |
ubhat | 0:6cc76d70e2a1 | 54 | void Application::ApplicationPtrPos( uint8_t ptrPos ) |
ubhat | 0:6cc76d70e2a1 | 55 | { |
ubhat | 0:6cc76d70e2a1 | 56 | BuffPtr = ptrPos; |
ubhat | 0:6cc76d70e2a1 | 57 | } |
ubhat | 0:6cc76d70e2a1 | 58 | |
ubhat | 0:6cc76d70e2a1 | 59 | void Application::ApplicationCall( eAppType App ) |
ubhat | 0:6cc76d70e2a1 | 60 | { |
ubhat | 0:6cc76d70e2a1 | 61 | switch( App ) |
ubhat | 0:6cc76d70e2a1 | 62 | { |
ubhat | 0:6cc76d70e2a1 | 63 | // Appends 1 Byte to TX buffer |
ubhat | 0:6cc76d70e2a1 | 64 | case AppTemp: |
ubhat | 0:6cc76d70e2a1 | 65 | { |
ubhat | 0:6cc76d70e2a1 | 66 | #ifdef USE_IKS01A1_SENSOR |
ubhat | 0:6cc76d70e2a1 | 67 | |
ubhat | 0:6cc76d70e2a1 | 68 | temp_sensor2->GetTemperature(&iks01a1_data); |
ubhat | 0:6cc76d70e2a1 | 69 | |
ubhat | 0:6cc76d70e2a1 | 70 | printf("Temp = %f, %d\r\n", iks01a1_data, (int8_t) iks01a1_data); |
ubhat | 0:6cc76d70e2a1 | 71 | |
ubhat | 0:6cc76d70e2a1 | 72 | if( ( BuffPtr + 1 ) <= LORAWAN_APP_DATA_SIZE ) |
ubhat | 0:6cc76d70e2a1 | 73 | { |
ubhat | 0:6cc76d70e2a1 | 74 | #ifdef USE_CAYENNE_LPP |
ubhat | 0:6cc76d70e2a1 | 75 | BuffAddr[BuffPtr++] = 0; |
ubhat | 0:6cc76d70e2a1 | 76 | BuffAddr[BuffPtr++] = (int8_t) ( iks01a1_data * 10 ); |
ubhat | 0:6cc76d70e2a1 | 77 | #else |
ubhat | 0:6cc76d70e2a1 | 78 | BuffAddr[BuffPtr++] = (int8_t) iks01a1_data; |
ubhat | 0:6cc76d70e2a1 | 79 | #endif |
ubhat | 0:6cc76d70e2a1 | 80 | } |
ubhat | 0:6cc76d70e2a1 | 81 | |
ubhat | 0:6cc76d70e2a1 | 82 | #endif |
ubhat | 0:6cc76d70e2a1 | 83 | break; |
ubhat | 0:6cc76d70e2a1 | 84 | } |
ubhat | 0:6cc76d70e2a1 | 85 | |
ubhat | 0:6cc76d70e2a1 | 86 | // Appends 2 Bytes to TX buffer |
ubhat | 0:6cc76d70e2a1 | 87 | case AppPressr: |
ubhat | 0:6cc76d70e2a1 | 88 | { |
ubhat | 0:6cc76d70e2a1 | 89 | #ifdef USE_IKS01A1_SENSOR |
ubhat | 0:6cc76d70e2a1 | 90 | |
ubhat | 0:6cc76d70e2a1 | 91 | pressure_sensor->GetPressure(&iks01a1_data); |
ubhat | 0:6cc76d70e2a1 | 92 | |
ubhat | 0:6cc76d70e2a1 | 93 | printf("Pressure = %f, %d\r\n", iks01a1_data, (uint16_t) iks01a1_data); |
ubhat | 0:6cc76d70e2a1 | 94 | |
ubhat | 0:6cc76d70e2a1 | 95 | if( ( BuffPtr + 2 ) <= LORAWAN_APP_DATA_SIZE ) |
ubhat | 0:6cc76d70e2a1 | 96 | { |
ubhat | 0:6cc76d70e2a1 | 97 | #ifdef USE_CAYENNE_LPP |
ubhat | 0:6cc76d70e2a1 | 98 | int16_t tmp; |
ubhat | 0:6cc76d70e2a1 | 99 | |
ubhat | 0:6cc76d70e2a1 | 100 | tmp = (int16_t) ( iks01a1_data * 10 ); |
ubhat | 0:6cc76d70e2a1 | 101 | BuffAddr[BuffPtr++] = ( tmp >> 8 ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 102 | BuffAddr[BuffPtr++] = ( tmp ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 103 | #else |
ubhat | 0:6cc76d70e2a1 | 104 | BuffAddr[BuffPtr++] = ( (int16_t) iks01a1_data >> 8 ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 105 | BuffAddr[BuffPtr++] = ( (int16_t) iks01a1_data ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 106 | #endif |
ubhat | 0:6cc76d70e2a1 | 107 | } |
ubhat | 0:6cc76d70e2a1 | 108 | |
ubhat | 0:6cc76d70e2a1 | 109 | #endif |
ubhat | 0:6cc76d70e2a1 | 110 | break; |
ubhat | 0:6cc76d70e2a1 | 111 | } |
ubhat | 0:6cc76d70e2a1 | 112 | |
ubhat | 0:6cc76d70e2a1 | 113 | // Appends 2 Bytes to TX buffer |
ubhat | 0:6cc76d70e2a1 | 114 | case AppHumid: |
ubhat | 0:6cc76d70e2a1 | 115 | { |
ubhat | 0:6cc76d70e2a1 | 116 | #ifdef USE_IKS01A1_SENSOR |
ubhat | 0:6cc76d70e2a1 | 117 | |
ubhat | 0:6cc76d70e2a1 | 118 | humidity_sensor->GetHumidity(&iks01a1_data); |
ubhat | 0:6cc76d70e2a1 | 119 | |
ubhat | 0:6cc76d70e2a1 | 120 | printf("Humidity = %f, %d\r\n", iks01a1_data, (uint8_t) iks01a1_data); |
ubhat | 0:6cc76d70e2a1 | 121 | |
ubhat | 0:6cc76d70e2a1 | 122 | if( ( BuffPtr + 1 ) <= LORAWAN_APP_DATA_SIZE ) |
ubhat | 0:6cc76d70e2a1 | 123 | { |
ubhat | 0:6cc76d70e2a1 | 124 | #ifdef USE_CAYENNE_LPP |
ubhat | 0:6cc76d70e2a1 | 125 | BuffAddr[BuffPtr++] = (uint8_t) ( iks01a1_data * 2 ); |
ubhat | 0:6cc76d70e2a1 | 126 | #else |
ubhat | 0:6cc76d70e2a1 | 127 | BuffAddr[BuffPtr++] = (int8_t) iks01a1_data; |
ubhat | 0:6cc76d70e2a1 | 128 | #endif |
ubhat | 0:6cc76d70e2a1 | 129 | } |
ubhat | 0:6cc76d70e2a1 | 130 | |
ubhat | 0:6cc76d70e2a1 | 131 | #endif |
ubhat | 0:6cc76d70e2a1 | 132 | break; |
ubhat | 0:6cc76d70e2a1 | 133 | } |
ubhat | 0:6cc76d70e2a1 | 134 | |
terence304 | 2:5859f5872d6c | 135 | // Appends 6 Bytes to TX buffer |
ubhat | 0:6cc76d70e2a1 | 136 | case AppAccl: |
ubhat | 0:6cc76d70e2a1 | 137 | { |
ubhat | 0:6cc76d70e2a1 | 138 | #ifdef USE_IKS01A1_SENSOR |
ubhat | 0:6cc76d70e2a1 | 139 | |
ubhat | 0:6cc76d70e2a1 | 140 | accelerometer->Get_X_Axes(Accl_Value); |
ubhat | 0:6cc76d70e2a1 | 141 | |
ubhat | 0:6cc76d70e2a1 | 142 | printf("X/Y/Z = %d/%d/%d\r\n", Accl_Value[0], Accl_Value[1], Accl_Value[2]); |
ubhat | 0:6cc76d70e2a1 | 143 | |
ubhat | 0:6cc76d70e2a1 | 144 | if( ( BuffPtr + 6 ) <= LORAWAN_APP_DATA_SIZE ) |
ubhat | 0:6cc76d70e2a1 | 145 | { |
ubhat | 0:6cc76d70e2a1 | 146 | BuffAddr[BuffPtr++] = ( (int16_t) Accl_Value[0] >> 8 ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 147 | BuffAddr[BuffPtr++] = ( (int16_t) Accl_Value[0] ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 148 | BuffAddr[BuffPtr++] = ( (int16_t) Accl_Value[1] >> 8 ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 149 | BuffAddr[BuffPtr++] = ( (int16_t) Accl_Value[1] ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 150 | BuffAddr[BuffPtr++] = ( (int16_t) Accl_Value[2] >> 8 ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 151 | BuffAddr[BuffPtr++] = ( (int16_t) Accl_Value[2] ) & 0xFF; |
ubhat | 0:6cc76d70e2a1 | 152 | } |
ubhat | 0:6cc76d70e2a1 | 153 | #endif |
ubhat | 0:6cc76d70e2a1 | 154 | break; |
ubhat | 0:6cc76d70e2a1 | 155 | } |
ubhat | 0:6cc76d70e2a1 | 156 | |
ubhat | 0:6cc76d70e2a1 | 157 | case AppPushButton: |
ubhat | 0:6cc76d70e2a1 | 158 | { |
ubhat | 0:6cc76d70e2a1 | 159 | uint16_t PushButtonCnt; |
ubhat | 0:6cc76d70e2a1 | 160 | uint8_t *p = (uint8_t *) &PushButtonCnt; |
ubhat | 0:6cc76d70e2a1 | 161 | |
ubhat | 0:6cc76d70e2a1 | 162 | PushButtonCnt = LoRaMacUplinkStatus.UplinkCounter; |
ubhat | 0:6cc76d70e2a1 | 163 | |
ubhat | 0:6cc76d70e2a1 | 164 | memcpy( &BuffAddr[BuffPtr], p, sizeof(uint16_t) ); |
ubhat | 0:6cc76d70e2a1 | 165 | |
ubhat | 0:6cc76d70e2a1 | 166 | break; |
ubhat | 0:6cc76d70e2a1 | 167 | } |
ubhat | 0:6cc76d70e2a1 | 168 | |
terence304 | 2:5859f5872d6c | 169 | case AppButton: |
terence304 | 2:5859f5872d6c | 170 | { |
terence304 | 2:5859f5872d6c | 171 | int button_val = 0; |
terence304 | 2:5859f5872d6c | 172 | |
terence304 | 2:5859f5872d6c | 173 | if (1 == ext_button) button_val = 1; |
terence304 | 2:5859f5872d6c | 174 | |
terence304 | 2:5859f5872d6c | 175 | printf("button: %d\r\n", button_val); |
terence304 | 2:5859f5872d6c | 176 | |
terence304 | 2:5859f5872d6c | 177 | BuffAddr[BuffPtr++] = button_val; |
terence304 | 2:5859f5872d6c | 178 | |
terence304 | 2:5859f5872d6c | 179 | break; |
terence304 | 2:5859f5872d6c | 180 | } |
terence304 | 2:5859f5872d6c | 181 | |
terence304 | 2:5859f5872d6c | 182 | case AppRotary: |
terence304 | 2:5859f5872d6c | 183 | { |
terence304 | 2:5859f5872d6c | 184 | uint16_t degree = (uint16_t)(ext_rotary.read() * 300); |
terence304 | 2:5859f5872d6c | 185 | |
terence304 | 2:5859f5872d6c | 186 | printf("rotary angle: %d\r\n", degree); |
terence304 | 2:5859f5872d6c | 187 | |
terence | 8:b1f612e91735 | 188 | BuffAddr[BuffPtr++] = ((degree * 100) >> 8) & 0xff; |
terence | 8:b1f612e91735 | 189 | BuffAddr[BuffPtr++] = (degree * 100) & 0xff; |
terence304 | 2:5859f5872d6c | 190 | |
terence304 | 2:5859f5872d6c | 191 | break; |
terence304 | 2:5859f5872d6c | 192 | } |
terence304 | 2:5859f5872d6c | 193 | |
ubhat | 0:6cc76d70e2a1 | 194 | default: |
ubhat | 0:6cc76d70e2a1 | 195 | { |
ubhat | 0:6cc76d70e2a1 | 196 | break; |
ubhat | 0:6cc76d70e2a1 | 197 | } |
ubhat | 0:6cc76d70e2a1 | 198 | } |
ubhat | 0:6cc76d70e2a1 | 199 | } |
ubhat | 0:6cc76d70e2a1 | 200 | |
ubhat | 0:6cc76d70e2a1 | 201 | void CheckOrientation( void ) |
ubhat | 0:6cc76d70e2a1 | 202 | { |
terence304 | 2:5859f5872d6c | 203 | } |