Example programs for MultiTech Dot devices demonstrating how to use the Dot devices and the Dot libraries for LoRa communication.

Dependencies:   ISL29011

Dependents:   Dot-Examples-delujoc

This project has moved to github

Please see GitHub Dot-Examples

Dot Library Not Included!

Because these example programs can be used for both mDot and xDot devices, the LoRa stack is not included. The libmDot library should be imported if building for mDot devices. The libxDot library should be imported if building for xDot devices.

Dot Library Limitations

Commit messages in Dot Library repositories specify the version of the library and the version of mbed-os it was compiled against. We recommend building your application with the version of mbed-os specified in the commit message of the version of the Dot library you're using. This will ensure that you don't run into any runtime issues caused by differences in the mbed-os versions.

Example Programs Description

This application contains multiple example programs. Each example demonstrates a different way to configure and use a Dot. A short summary of each example is provided below. Common code used by multiple examples is in the dot_utils.cpp file.

All examples print logging, including RX data, on the USB debug port at 115200 baud. Each example defaults the Dot's configuration and saves the new configuration to NVM.

OTA Example

This example demonstrates configuring the Dot for OTA join mode and entering sleep or deepsleep mode between transactions with the gateway. If deepsleep mode is used, the session is saved and restored so that a rejoin is not necessary after waking up even though RAM contents have been lost. ACKs are disabled, but network link checks are configured - if enough link checks are missed, the Dot will no longer be considered joined to the network and will attempt to rejoin before transmitting more data.

AUTO_OTA Example

This example demonstrates configuring the Dot for AUTO_OTA join mode and entering sleep or deepsleep mode between transactions with the gateway. AUTO_OTA join mode automatically saves and restores the session when deepsleep mode is used, so the manual saving and restoring of the session is not necessary. ACKs are disabled, but network link checks are configured - if enough link checks are missed, the Dot will no longer be considered joined to the network and will attempt to rejoin before transmitting more data.

Manual Example

This example demonstrates configuring the Dot for MANUAL join mode and entering sleep or deepsleep mode between transactions with the gateway. The Dot must be provisioned on the gateway before its packets will be accepted! Follow these steps to provision the Dot on a Conduit gateway:

  • ssh into the conduit
  • use the lorq-query application to provision the Dot on the gateway
    • lora-query -a 01020304 A 0102030401020304 <your Dot's device ID> 01020304010203040102030401020304 01020304010203040102030401020304
    • if any of the credentials change on the Dot side, they must be updated on the gateway side as well

To provision a Dot on a third-party gateway, see the gateway or network provider documentation.

Class B Example

This example demonstrates how to configure the dot for an OTA join, how to acquire a lock on a GPS synchronized beacon, and then to subsequently enter class B mode of operation. After a successful join, the device will request to the dot-library to switch to class B. When this happens, the library will send an uplink to the network server (hence we must be joined first before entering this mode) requesting the GPS time to calculate when the next beacon is expected. Once this time elapses, the dot will open an rx window to demodulate the broadcasted beacon and fire an mDotEvent::BeaconRx event upon successful reception. After the beacon is received, the example sends an uplink which will have the class B bit in the packet's frame control set to indicate to the network server that downlinks may now be scheduled on ping slots. The lora-query application can be used to configure a Conduit gateway to communicate with a Dot in class B mode. For information on how to inform a third-party gateway that a Dot is operating in class B mode, see the gateway or network provider documentation.

Class C Example

This example demonstrates configuring the Dot for OTA join mode and communicating with the gateway using class C mode. In class C mode the gateway can send a packet to the Dot at any time, so it must be listening whenever it is not transmitting. This means that the Dot cannot enter sleep or deepsleep mode. The gateway will not immediately send packets to the Dot (outside the receive windows following a transmission from the Dot) until it is informed that the Dot is operating in class C mode. The lora-query application can be used to configure a Conduit gateway to communicate with a Dot in class C mode. For information on how to inform a third-party gateway that a Dot is operating in class C mode, see the gateway or network provider documentation.

FOTA Example

Full FOTA support is available on mDot and on xDot with external flash. See this article for details on adding external flash for xDot FOTA.

Without external flash xDot can use the FOTA example to dynamically join a multicast session only. After joining the multicast session the received Fragmentation packets could be handed to a host MCU for processing and at completion the firmware can be loaded into the xDot using the bootloader and y-modem. See xDot Developer Guide.

This example demonstrates how to incorporate over-the-air updates to an application. The example uses a Class C application. Class A or B functionality could also be used. The device will automatically enter into Class C operation for the FOTA operation, Class B would be disabled during the FOTA transfer.

  • Add the following code to allow Fota to use the Dot instance

examples/src/fota_example.cpp

    // Initialize FOTA singleton
    Fota::getInstance(dot);
  • Add fragmentation and multicast handling the the PacketRx event

examples/inc/RadioEvent.h

    virtual void PacketRx(uint8_t port, uint8_t *payload, uint16_t size, int16_t rssi, int8_t snr, lora::DownlinkControl ctrl, uint8_t slot, uint8_t retries, uint32_t address, uint32_t fcnt, bool dupRx) {
        mDotEvent::PacketRx(port, payload, size, rssi, snr, ctrl, slot, retries, address, fcnt, dupRx);

#if ACTIVE_EXAMPLE == FOTA_EXAMPLE
        if(port == 200 || port == 201 || port == 202) {
            Fota::getInstance()->processCmd(payload, port, size);
        }
#endif
    }

A definition is needed to enable FOTA.

mbed_app.json

{
    "macros": [
        "FOTA=1"
    ]
}


Peer to Peer Example

This example demonstrates configuring Dots for peer to peer communication without a gateway. It should be compiled and run on two Dots. Peer to peer communication uses LoRa modulation but uses a single higher throughput (usually 500kHz or 250kHz) datarate. It is similar to class C operation - when a Dot isn't transmitting, it's listening for packets from the other Dot. Both Dots must be configured exactly the same for peer to peer communication to be successful.


Choosing An Example Program and Channel Plan

Only the active example is compiled. The active example can be updated by changing the ACTIVE_EXAMPLE definition in the examples/example_config.h file.

By default the OTA_EXAMPLE will be compiled and the US915 channel plan will be used.

example_config.h

#ifndef __EXAMPLE__CONFIG_H__
#define __EXAMPLE__CONFIG_H__

#define OTA_EXAMPLE              1  // see ota_example.cpp
#define AUTO_OTA_EXAMPLE         2  // see auto_ota_example.cpp
#define MANUAL_EXAMPLE           3  // see manual_example.cpp
#define PEER_TO_PEER_EXAMPLE     4  // see peer_to_peer_example.cpp
#define CLASS_C_EXAMPLE          5  // see class_c_example.cpp

// the active example is the one that will be compiled
#if !defined(ACTIVE_EXAMPLE)
#define ACTIVE_EXAMPLE  OTA_EXAMPLE
#endif

// the active channel plan is the one that will be compiled
// options are :
//      CP_US915
//      CP_AU915
//      CP_EU868
//      CP_KR920
//      CP_AS923
//      CP_AS923_JAPAN
#if !defined(CHANNEL_PLAN)
#define CHANNEL_PLAN CP_US915
#endif

#endif


Compile the AUTO_OTA_EXAMPLE and use the EU868 channel plan instead.

example_config.h

#ifndef __EXAMPLE__CONFIG_H__
#define __EXAMPLE__CONFIG_H__

#define OTA_EXAMPLE              1  // see ota_example.cpp
#define AUTO_OTA_EXAMPLE         2  // see auto_ota_example.cpp
#define MANUAL_EXAMPLE           3  // see manual_example.cpp
#define PEER_TO_PEER_EXAMPLE     4  // see peer_to_peer_example.cpp
#define CLASS_C_EXAMPLE          5  // see class_c_example.cpp

// the active example is the one that will be compiled
#if !defined(ACTIVE_EXAMPLE)
#define ACTIVE_EXAMPLE  AUTO_OTA_EXAMPLE
#endif

// the active channel plan is the one that will be compiled
// options are :
//      CP_US915
//      CP_AU915
//      CP_EU868
//      CP_KR920
//      CP_AS923
//      CP_AS923_JAPAN
#if !defined(CHANNEL_PLAN)
#define CHANNEL_PLAN CP_EU868
#endif

#endif



Dot Libraries

Stable and development libraries are available for both mDot and xDot platforms. The library chosen must match the target platform. Compiling for the mDot platform with the xDot library or vice versa will not succeed.

mDot Library

Development library for mDot.

libmDot-dev

Stable library for mDot.

libmDot-stable


For mbed-os 5 use:

Import librarylibmDot-mbed5

Stable version of the mDot library for mbed 5. This version of the library is suitable for deployment scenarios. See lastest commit message for version of mbed-os library that has been tested against.

xDot Library

Development library for xDot.

libxDot-dev

Stable library for xDot.

libxDot-stable


For mbed-os 5 use:

Import librarylibxDot-mbed5

Stable version of the xDot library for mbed 5. This version of the library is suitable for deployment scenarios.

Committer:
Evan Hosseini
Date:
Mon Apr 30 14:46:28 2018 -0500
Revision:
30:2f5ae37e6c47
Parent:
25:56f7775c702f
Child:
33:15ea8f985c54
Add ambient light sensor code back for xDot

Who changed what in which revision?

UserRevisionLine numberNew contents of line
Mike Fiore 11:d2e31743433a 1 #include "dot_util.h"
Mike Fiore 14:19fae4509473 2 #include "RadioEvent.h"
Mike Fiore 11:d2e31743433a 3
Mike Fiore 11:d2e31743433a 4 #if ACTIVE_EXAMPLE == PEER_TO_PEER_EXAMPLE
Mike Fiore 11:d2e31743433a 5
mfiore 17:d4f82e16de5f 6 /////////////////////////////////////////////////////////////////////////////
mfiore 17:d4f82e16de5f 7 // -------------------- DOT LIBRARY REQUIRED ------------------------------//
mfiore 17:d4f82e16de5f 8 // * Because these example programs can be used for both mDot and xDot //
mfiore 17:d4f82e16de5f 9 // devices, the LoRa stack is not included. The libmDot library should //
mfiore 17:d4f82e16de5f 10 // be imported if building for mDot devices. The libxDot library //
mfiore 17:d4f82e16de5f 11 // should be imported if building for xDot devices. //
mfiore 17:d4f82e16de5f 12 // * https://developer.mbed.org/teams/MultiTech/code/libmDot-dev-mbed5/ //
mfiore 17:d4f82e16de5f 13 // * https://developer.mbed.org/teams/MultiTech/code/libmDot-mbed5/ //
mfiore 17:d4f82e16de5f 14 // * https://developer.mbed.org/teams/MultiTech/code/libxDot-dev-mbed5/ //
mfiore 17:d4f82e16de5f 15 // * https://developer.mbed.org/teams/MultiTech/code/libxDot-mbed5/ //
mfiore 17:d4f82e16de5f 16 /////////////////////////////////////////////////////////////////////////////
mfiore 17:d4f82e16de5f 17
Mike Fiore 11:d2e31743433a 18 /////////////////////////////////////////////////////////////
Mike Fiore 11:d2e31743433a 19 // * these options must match between the two devices in //
Mike Fiore 11:d2e31743433a 20 // order for communication to be successful
Mike Fiore 11:d2e31743433a 21 /////////////////////////////////////////////////////////////
Mike Fiore 11:d2e31743433a 22 static uint8_t network_address[] = { 0x01, 0x02, 0x03, 0x04 };
Mike Fiore 11:d2e31743433a 23 static uint8_t network_session_key[] = { 0x01, 0x02, 0x03, 0x04, 0x01, 0x02, 0x03, 0x04, 0x01, 0x02, 0x03, 0x04, 0x01, 0x02, 0x03, 0x04 };
Mike Fiore 11:d2e31743433a 24 static uint8_t data_session_key[] = { 0x01, 0x02, 0x03, 0x04, 0x01, 0x02, 0x03, 0x04, 0x01, 0x02, 0x03, 0x04, 0x01, 0x02, 0x03, 0x04 };
Mike Fiore 11:d2e31743433a 25
Mike Fiore 11:d2e31743433a 26 mDot* dot = NULL;
Mike Fiore 21:09d05faf0e13 27 lora::ChannelPlan* plan = NULL;
Mike Fiore 11:d2e31743433a 28
Mike Fiore 11:d2e31743433a 29 Serial pc(USBTX, USBRX);
Mike Fiore 11:d2e31743433a 30
Evan Hosseini 30:2f5ae37e6c47 31 #if defined(TARGET_XDOT_L151CC)
Evan Hosseini 30:2f5ae37e6c47 32 I2C i2c(I2C_SDA, I2C_SCL);
Evan Hosseini 30:2f5ae37e6c47 33 ISL29011 lux(i2c);
Evan Hosseini 30:2f5ae37e6c47 34 #else
Evan Hosseini 30:2f5ae37e6c47 35 AnalogIn lux(XBEE_AD0);
Evan Hosseini 30:2f5ae37e6c47 36 #endif
Evan Hosseini 30:2f5ae37e6c47 37
Mike Fiore 11:d2e31743433a 38 int main() {
Mike Fiore 14:19fae4509473 39 // Custom event handler for automatically displaying RX data
Mike Fiore 11:d2e31743433a 40 RadioEvent events;
Mike Fiore 11:d2e31743433a 41 uint32_t tx_frequency;
Mike Fiore 11:d2e31743433a 42 uint8_t tx_datarate;
Mike Fiore 11:d2e31743433a 43 uint8_t tx_power;
Mike Fiore 11:d2e31743433a 44 uint8_t frequency_band;
Mike Fiore 11:d2e31743433a 45
Mike Fiore 11:d2e31743433a 46 pc.baud(115200);
Mike Fiore 11:d2e31743433a 47
Evan Hosseini 30:2f5ae37e6c47 48 #if defined(TARGET_XDOT_L151CC)
Evan Hosseini 30:2f5ae37e6c47 49 i2c.frequency(400000);
Evan Hosseini 30:2f5ae37e6c47 50 #endif
Evan Hosseini 30:2f5ae37e6c47 51
Mike Fiore 11:d2e31743433a 52 mts::MTSLog::setLogLevel(mts::MTSLog::TRACE_LEVEL);
Mike Fiore 11:d2e31743433a 53
Mike Fiore 21:09d05faf0e13 54 #if CHANNEL_PLAN == CP_US915
Mike Fiore 21:09d05faf0e13 55 plan = new lora::ChannelPlan_US915();
Mike Fiore 21:09d05faf0e13 56 #elif CHANNEL_PLAN == CP_AU915
Mike Fiore 21:09d05faf0e13 57 plan = new lora::ChannelPlan_AU915();
Mike Fiore 21:09d05faf0e13 58 #elif CHANNEL_PLAN == CP_EU868
Mike Fiore 21:09d05faf0e13 59 plan = new lora::ChannelPlan_EU868();
Mike Fiore 21:09d05faf0e13 60 #elif CHANNEL_PLAN == CP_KR920
Mike Fiore 21:09d05faf0e13 61 plan = new lora::ChannelPlan_KR920();
Mike Fiore 21:09d05faf0e13 62 #elif CHANNEL_PLAN == CP_AS923
Mike Fiore 21:09d05faf0e13 63 plan = new lora::ChannelPlan_AS923();
Mike Fiore 21:09d05faf0e13 64 #elif CHANNEL_PLAN == CP_AS923_JAPAN
Mike Fiore 21:09d05faf0e13 65 plan = new lora::ChannelPlan_AS923_Japan();
mfiore 22:d9bc10bbc433 66 #elif CHANNEL_PLAN == CP_IN865
mfiore 22:d9bc10bbc433 67 plan = new lora::ChannelPlan_IN865();
Mike Fiore 21:09d05faf0e13 68 #endif
Mike Fiore 21:09d05faf0e13 69 assert(plan);
Mike Fiore 21:09d05faf0e13 70
Mike Fiore 21:09d05faf0e13 71 dot = mDot::getInstance(plan);
Mike Fiore 21:09d05faf0e13 72 assert(dot);
Mike Fiore 11:d2e31743433a 73
Mike Fiore 16:a3832552dfe1 74 logInfo("mbed-os library version: %d", MBED_LIBRARY_VERSION);
Mike Fiore 16:a3832552dfe1 75
Mike Fiore 12:ec9768677cea 76 // start from a well-known state
Mike Fiore 12:ec9768677cea 77 logInfo("defaulting Dot configuration");
Mike Fiore 12:ec9768677cea 78 dot->resetConfig();
Mike Fiore 12:ec9768677cea 79
Mike Fiore 11:d2e31743433a 80 // make sure library logging is turned on
Mike Fiore 11:d2e31743433a 81 dot->setLogLevel(mts::MTSLog::INFO_LEVEL);
Mike Fiore 11:d2e31743433a 82
Mike Fiore 11:d2e31743433a 83 // attach the custom events handler
Mike Fiore 11:d2e31743433a 84 dot->setEvents(&events);
Mike Fiore 11:d2e31743433a 85
Mike Fiore 11:d2e31743433a 86 // update configuration if necessary
Mike Fiore 11:d2e31743433a 87 if (dot->getJoinMode() != mDot::PEER_TO_PEER) {
Mike Fiore 11:d2e31743433a 88 logInfo("changing network join mode to PEER_TO_PEER");
Mike Fiore 11:d2e31743433a 89 if (dot->setJoinMode(mDot::PEER_TO_PEER) != mDot::MDOT_OK) {
Mike Fiore 11:d2e31743433a 90 logError("failed to set network join mode to PEER_TO_PEER");
Mike Fiore 11:d2e31743433a 91 }
Mike Fiore 11:d2e31743433a 92 }
Mike Fiore 11:d2e31743433a 93 frequency_band = dot->getFrequencyBand();
Mike Fiore 11:d2e31743433a 94 switch (frequency_band) {
Mike Fiore 21:09d05faf0e13 95 case lora::ChannelPlan::EU868_OLD:
Mike Fiore 21:09d05faf0e13 96 case lora::ChannelPlan::EU868:
Mike Fiore 11:d2e31743433a 97 // 250kHz channels achieve higher throughput
Mike Fiore 21:09d05faf0e13 98 // DR_6 : SF7 @ 250kHz
Mike Fiore 21:09d05faf0e13 99 // DR_0 - DR_5 (125kHz channels) available but much slower
Mike Fiore 11:d2e31743433a 100 tx_frequency = 869850000;
Mike Fiore 21:09d05faf0e13 101 tx_datarate = lora::DR_6;
Mike Fiore 11:d2e31743433a 102 // the 869850000 frequency is 100% duty cycle if the total power is under 7 dBm - tx power 4 + antenna gain 3 = 7
Mike Fiore 11:d2e31743433a 103 tx_power = 4;
Mike Fiore 11:d2e31743433a 104 break;
Mike Fiore 21:09d05faf0e13 105
Mike Fiore 21:09d05faf0e13 106 case lora::ChannelPlan::US915_OLD:
Mike Fiore 21:09d05faf0e13 107 case lora::ChannelPlan::US915:
Mike Fiore 21:09d05faf0e13 108 case lora::ChannelPlan::AU915_OLD:
Mike Fiore 21:09d05faf0e13 109 case lora::ChannelPlan::AU915:
Mike Fiore 11:d2e31743433a 110 // 500kHz channels achieve highest throughput
Mike Fiore 21:09d05faf0e13 111 // DR_8 : SF12 @ 500kHz
Mike Fiore 21:09d05faf0e13 112 // DR_9 : SF11 @ 500kHz
Mike Fiore 21:09d05faf0e13 113 // DR_10 : SF10 @ 500kHz
Mike Fiore 21:09d05faf0e13 114 // DR_11 : SF9 @ 500kHz
Mike Fiore 21:09d05faf0e13 115 // DR_12 : SF8 @ 500kHz
Mike Fiore 21:09d05faf0e13 116 // DR_13 : SF7 @ 500kHz
Mike Fiore 21:09d05faf0e13 117 // DR_0 - DR_3 (125kHz channels) available but much slower
Mike Fiore 11:d2e31743433a 118 tx_frequency = 915500000;
Mike Fiore 21:09d05faf0e13 119 tx_datarate = lora::DR_13;
Mike Fiore 11:d2e31743433a 120 // 915 bands have no duty cycle restrictions, set tx power to max
Mike Fiore 11:d2e31743433a 121 tx_power = 20;
Mike Fiore 11:d2e31743433a 122 break;
Mike Fiore 21:09d05faf0e13 123
Mike Fiore 21:09d05faf0e13 124 case lora::ChannelPlan::AS923:
Mike Fiore 21:09d05faf0e13 125 case lora::ChannelPlan::AS923_JAPAN:
Mike Fiore 21:09d05faf0e13 126 // 250kHz channels achieve higher throughput
Mike Fiore 21:09d05faf0e13 127 // DR_6 : SF7 @ 250kHz
Mike Fiore 21:09d05faf0e13 128 // DR_0 - DR_5 (125kHz channels) available but much slower
Mike Fiore 21:09d05faf0e13 129 tx_frequency = 924800000;
Mike Fiore 21:09d05faf0e13 130 tx_datarate = lora::DR_6;
Mike Fiore 21:09d05faf0e13 131 tx_power = 16;
Mike Fiore 21:09d05faf0e13 132 break;
Mike Fiore 21:09d05faf0e13 133
Mike Fiore 21:09d05faf0e13 134 case lora::ChannelPlan::KR920:
Mike Fiore 21:09d05faf0e13 135 // DR_5 : SF7 @ 125kHz
Mike Fiore 21:09d05faf0e13 136 tx_frequency = 922700000;
Mike Fiore 21:09d05faf0e13 137 tx_datarate = lora::DR_5;
Mike Fiore 21:09d05faf0e13 138 tx_power = 14;
Mike Fiore 21:09d05faf0e13 139 break;
Mike Fiore 21:09d05faf0e13 140
Mike Fiore 21:09d05faf0e13 141 default:
Mike Fiore 21:09d05faf0e13 142 while (true) {
Mike Fiore 21:09d05faf0e13 143 logFatal("no known channel plan in use - extra configuration is needed!");
Mike Fiore 21:09d05faf0e13 144 wait(5);
Mike Fiore 21:09d05faf0e13 145 }
Mike Fiore 21:09d05faf0e13 146 break;
Mike Fiore 11:d2e31743433a 147 }
Mike Fiore 11:d2e31743433a 148 // in PEER_TO_PEER mode there is no join request/response transaction
Mike Fiore 11:d2e31743433a 149 // as long as both Dots are configured correctly, they should be able to communicate
Mike Fiore 11:d2e31743433a 150 update_peer_to_peer_config(network_address, network_session_key, data_session_key, tx_frequency, tx_datarate, tx_power);
Mike Fiore 11:d2e31743433a 151
Mike Fiore 11:d2e31743433a 152 // save changes to configuration
Mike Fiore 11:d2e31743433a 153 logInfo("saving configuration");
Mike Fiore 11:d2e31743433a 154 if (!dot->saveConfig()) {
Mike Fiore 11:d2e31743433a 155 logError("failed to save configuration");
Mike Fiore 11:d2e31743433a 156 }
Mike Fiore 11:d2e31743433a 157
Mike Fiore 11:d2e31743433a 158 // display configuration
Mike Fiore 11:d2e31743433a 159 display_config();
Mike Fiore 11:d2e31743433a 160
Mike Fiore 11:d2e31743433a 161 while (true) {
Evan Hosseini 30:2f5ae37e6c47 162 uint16_t light;
Mike Fiore 11:d2e31743433a 163 std::vector<uint8_t> tx_data;
Mike Fiore 11:d2e31743433a 164
Mike Fiore 11:d2e31743433a 165 // join network if not joined
Mike Fiore 11:d2e31743433a 166 if (!dot->getNetworkJoinStatus()) {
Mike Fiore 11:d2e31743433a 167 join_network();
Mike Fiore 11:d2e31743433a 168 }
Mike Fiore 11:d2e31743433a 169
Evan Hosseini 30:2f5ae37e6c47 170 #if defined(TARGET_XDOT_L151CC)
Evan Hosseini 30:2f5ae37e6c47 171 // configure the ISL29011 sensor on the xDot-DK for continuous ambient light sampling, 16 bit conversion, and maximum range
Evan Hosseini 30:2f5ae37e6c47 172 lux.setMode(ISL29011::ALS_CONT);
Evan Hosseini 30:2f5ae37e6c47 173 lux.setResolution(ISL29011::ADC_16BIT);
Evan Hosseini 30:2f5ae37e6c47 174 lux.setRange(ISL29011::RNG_64000);
Evan Hosseini 30:2f5ae37e6c47 175
Evan Hosseini 30:2f5ae37e6c47 176 // get the latest light sample and send it to the gateway
Evan Hosseini 30:2f5ae37e6c47 177 light = lux.getData();
Evan Hosseini 30:2f5ae37e6c47 178 tx_data.push_back((light >> 8) & 0xFF);
Evan Hosseini 30:2f5ae37e6c47 179 tx_data.push_back(light & 0xFF);
Evan Hosseini 30:2f5ae37e6c47 180 logInfo("light: %lu [0x%04X]", light, light);
Mike Fiore 11:d2e31743433a 181 send_data(tx_data);
Mike Fiore 11:d2e31743433a 182
Evan Hosseini 30:2f5ae37e6c47 183 // put the LSL29011 ambient light sensor into a low power state
Evan Hosseini 30:2f5ae37e6c47 184 lux.setMode(ISL29011::PWR_DOWN);
Evan Hosseini 30:2f5ae37e6c47 185 #else
Evan Hosseini 30:2f5ae37e6c47 186 // get some dummy data and send it to the gateway
Evan Hosseini 30:2f5ae37e6c47 187 light = lux.read_u16();
Evan Hosseini 30:2f5ae37e6c47 188 tx_data.push_back((light >> 8) & 0xFF);
Evan Hosseini 30:2f5ae37e6c47 189 tx_data.push_back(light & 0xFF);
Evan Hosseini 30:2f5ae37e6c47 190 logInfo("light: %lu [0x%04X]", light, light);
Evan Hosseini 30:2f5ae37e6c47 191 send_data(tx_data);
Evan Hosseini 30:2f5ae37e6c47 192 #endif
Evan Hosseini 30:2f5ae37e6c47 193
Mike Fiore 11:d2e31743433a 194 // the Dot can't sleep in PEER_TO_PEER mode
Mike Fiore 11:d2e31743433a 195 // it must be waiting for data from the other Dot
Mike Fiore 11:d2e31743433a 196 // send data every 5 seconds
Mike Fiore 11:d2e31743433a 197 logInfo("waiting for 5s");
Mike Fiore 11:d2e31743433a 198 wait(5);
Mike Fiore 11:d2e31743433a 199 }
Mike Fiore 11:d2e31743433a 200
Mike Fiore 11:d2e31743433a 201 return 0;
Mike Fiore 11:d2e31743433a 202 }
Mike Fiore 11:d2e31743433a 203
Mike Fiore 11:d2e31743433a 204 #endif