This is a simple mbed client example demonstrating, registration of a device with mbed Device Connector and reading and writing values as well as deregistering on different Network Interfaces including Ethernet, WiFi, 6LoWPAN ND and Thread respectively.

Getting started with mbed Client on mbed OS

This is the mbed Client example for mbed OS. It demonstrates how to register a device with mbed Device Connector, how to read and write values, and how to deregister. If you are unfamiliar with mbed Device Connector, we recommend that you read the introduction to the data model first.

The application:

  • Connects to network with WiFi, Ethernet, 6LoWPAN ND or Thread connection.
  • Registers with mbed Device Connector.
  • Gives mbed Device Connector access to its resources (read and write).
  • Records the number of clicks on the device’s button and sends the number to mbed Device Connector.
  • Lets you control the blink pattern of the LED on the device (through mbed Device Connector).

Required hardware

  • K64F board.
  • 1-2 micro-USB cables.
  • mbed 6LoWPAN gateway router for 6LoWPAN ND and Thread.
  • mbed 6LoWPAN shield (AT86RF212B/AT86RF233 for 6LoWPAN ND and Thread.
  • Ethernet cable and connection to the internet.

Requirements for non K64F board

This example application is primarily designed for FRDM-K64F board but you can also use other mbed OS supported boards to run this example application , with some minor modifications for setup.

  • To get the application registering successfully on non K64F boards , you need Edit the mbed_app.json file to add NULL_ENTROPY feature for mbedTLS:

""macros": ["MBEDTLS_USER_CONFIG_FILE=\"mbedtls_mbed_client_config.h\"",
            "MBEDTLS_NO_DEFAULT_ENTROPY_SOURCES",
            "MBEDTLS_TEST_NULL_ENTROPY"],
  • On non K64F boards, there is no unregistration functionality and button press is simulated through timer ticks incrementing every 15 seconds.

Application setup

To configure the example application, please check following:

Connection type

The application uses Ethernet as the default connection type. To change the connection type, set one of them in mbed_app.json. For example, to enable 6LoWPAN ND mode:

    "network-interface": {
        "help": "options are ETHERNET,WIFI,MESH_LOWPAN_ND,MESH_THREAD.",
        "value": "MESH_LOWPAN_ND"
    }

Client credentials

To register the application to the Connector service, you need to create and set the client side certificate.

  • Go to mbed Device Connector and log in with your mbed account.
  • On mbed Device Connector, go to My Devices > Security credentials and click the Get my device security credentials button to get new credentials for your device.
  • Replace the contents in `security.h` of this project's directory with content copied above.

6LoWPAN ND and Thread settings

First you need to select the RF driver to be used by 6LoWPAN/Thread stack.

For example Atmel AT86RF233/212B driver is located in https://github.com/ARMmbed/atmel-rf-driver

To add that driver to you application , import library from following URL:

https://github.com/ARMmbed/atmel-rf-driver

Then you need to enable the IPV6 functionality as the 6LoWPAN and Thread are part of IPv6 stack. Edit the mbed_app.json file to add IPV6 feature:

"target.features_add": ["CLIENT", "IPV6", "COMMON_PAL"],

6LoWPAN ND and Thread use IPv6 for connectivity. Therefore, you need to verify first that you have a working IPv6 connection. To do that, ping the Connector IPv6 address 2607:f0d0:2601:52::20 from your network.

mbed gateway

To connect the example application in 6LoWPAN ND or Thread mode to Connector, you need to set up an mbed 6LoWPAN gateway router as follows:

  • Use an Ethernet cable to connect the mbed 6LoWPAN gateway router to the internet.
  • Use a micro-USB cable to connect the mbed 6LoWPAN gateway router to your computer. The computer will list the router as removable storage.
  • The firmware for the gateway is located in the `GW_Binary` folder in the root of this example. Select the binary matching your application bootstrap mode:
  • For the 6LoWPAN ND bootstrap, use `gateway6LoWPANDynamic.bin`.
  • For the Thread bootstrap, use `gatewayThreadDynamic.bin`.

The dynamic binaries use IPv6 autoconfiguration and enable the client to connect to the Connector service. The static binaries create a site-local IPv6 network and packets cannot be routed outside.

  • Copy the gateway binary file to the mbed 6LoWPAN gateway router to flash the device. The device reboots automatically after flashing. If that does not happen, press the Reset button on the board.

You can view debug traces from the gateway with a serial port monitor. The gateway uses baud rate 460800. The gateway IPv6 address is correctly configured when the following trace is visible: `Eth bootstrap ready, IP=XXXX:XXXX:XXXX:XXXX:XXXX:XXXX:XXXX:XXXX`.

Channel settings

The default 2.4GHz channel settings are already defined by the mbed-mesh-api to match the mbed gateway settings. The application can override these settings by adding them to the mbed_app.json file in the main project directory. For example:

    "target_overrides": {
        "*": {
            "mbed-mesh-api.6lowpan-nd-channel-page": 0,
            "mbed-mesh-api.6lowpan-nd-channel": 12,
            "mbed-mesh-api.thread-config-channel-page": 0,
            "mbed-mesh-api.thread-config-channel": 12
        }
    }

For sub-GHz shields (AT86RF212B) use the following overrides, 6LoWPAN ND only:

"mbed-mesh-api.6lowpan-nd-channel-page": 2,
"mbed-mesh-api.6lowpan-nd-channel": 1

For more information about the radio shields, see [the related documentation](docs/radio_module_identify.md). All the configurable settings can be found in the mbed-os-example-client/mbed-os/features/FEATURE_IPV6/mbed-mesh-api/mbed_lib.json file.

Thread-specific settings

With Thread, you can change the operating mode of the client from the default router mode to a sleepy end device by adding the following override to the `mbed_app.json` file:

    "mbed-mesh-api.thread-device-type": "MESH_DEVICE_TYPE_THREAD_SLEEPY_END_DEVICE"

Ethernet settings

For running the example application using Ethernet, you need:

  • An Ethernet cable.
  • An Ethernet connection to the internet.

Wi-Fi settings

The example application uses ESP8266 WiFi Interface for managing the wireless connectivity. To run this application using WiFi, you need:

    "network-interface": {
        "help": "options are ETHERNET,WIFI,MESH_LOWPAN_ND,MESH_THREAD.",
        "value": "WIFI"
    }

Provide your WiFi SSID and password here and leave `\"` in the beginning and end of your SSID and password (as shown in the example below). Otherwise, the example cannot pick up the SSID and password in correct format.

    "wifi-ssid": {
        "help": "WiFi SSID",
        "value": "\"SSID\""
    },
    "wifi-password": {
        "help": "WiFi Password",
        "value": "\"Password\""
    }

IP address setup

This example uses IPv4 to communicate with the mbed Device Connector Server except for 6LoWPAN ND and Thread. The example program should automatically get an IPv4 address from the router when connected over Ethernet.

If your network does not have DHCP enabled, you have to manually assign a static IP address to the board. We recommend having DHCP enabled to make everything run smoothly.

Changing socket type

Your device can connect to mbed Device Connector via UDP or TCP binding mode. The default is UDP. The binding mode cannot be changed in 6LoWPAN ND or Thread mode.

To change the binding mode:

  • In the `simpleclient.h` file, find the parameter `SOCKET_MODE`. The default is `M2MInterface::UDP`.
  • To switch to TCP, change it to `M2MInterface::TCP`.
  • Rebuild and flash the application.

Tip: The instructions in this document remain the same, irrespective of the socket mode you select.

Monitoring the application

The application prints debug messages over the serial port, so you can monitor its activity with a serial port monitor. The application uses baud rate 115200.

SerialPC

After connecting, you should see messages about connecting to mbed Device Connector:

In app_start()
IP address 10.2.15.222
Device name 6868df22-d353-4150-b90a-a878130859d9

When you click the `SW2` button on your board you should see messages about the value changes:

handle_button_click, new value of counter is 1

Testing the application

  • Flash the application.
  • Verify that the registration succeeded. You should see `Registered object successfully!` printed to the serial port.
  • On mbed Device Connector, go to My devices > Connected devices. Your device should be listed here.
  • Press the `SW2` button on the device a number of times (make a note of how many times you did that).
  • Go to Device Connector > API Console.
  • Enter https://api.connector.mbed.com/endpoints/DEVICE_NAME/3200/0/5501 in the URI field and click TEST API. Replace DEVICE_NAME with your actual endpoint name. The device name can be found in the security.h file, see variable MBED_ENDPOINT_NAME or it can be found from the traces.
  • The number of times you pressed SW2 is shown.
  • Press the SW3 button to unregister from mbed Device Connector. You should see Unregistered Object Successfully printed to the serial port and the LED starts blinking. This will also stop your application. Press the `RESET` button to run the program again.

For more methods check the mbed Device Connector Quick Start.

Application resources

The application exposes three resources:

  • 3200/0/5501. Number of presses of SW2 (GET).
  • 3201/0/5850. Blink function, blinks LED1 when executed (POST).
  • 3201/0/5853. Blink pattern, used by the blink function to determine how to blink. In the format of 1000:500:1000:500:1000:500 (PUT).

For information on how to get notifications when resource 1 changes, or how to use resources 2 and 3, take a look at the mbed Device Connector Quick Start.

Building this example

Building with mbed CLI

If you'd like to use mbed CLI to build this, then you should follow the instructions in the Handbook TODO - new link. The instructions here relate to using the developer.mbed.org Online Compiler

If you'd like to use the online Compiler, then you can Import this code into your compiler, select your platform from the top right, compile the code using the compile button, load it onto your board, press the reset button on the board and you code will run. See the client go online!

More instructions for using the mbed Online Compiler can be found at TODO - update this

Committer:
mbed_official
Date:
Tue Nov 28 07:00:06 2017 +0000
Revision:
117:81e1ff2179d0
Parent:
115:45399116b171
Child:
118:0b784e889605
Merge pull request #243 from ARMmbed/fix_blinky_thread

Using thread signals instead of restarting a thread
.
Commit copied from https://github.com/ARMmbed/mbed-os-example-client

Who changed what in which revision?

UserRevisionLine numberNew contents of line
mbed_official 21:b88cdeb5b302 1 /*
mbed_official 44:2b472e66a942 2 * Copyright (c) 2015, 2016 ARM Limited. All rights reserved.
mbed_official 21:b88cdeb5b302 3 * SPDX-License-Identifier: Apache-2.0
mbed_official 21:b88cdeb5b302 4 * Licensed under the Apache License, Version 2.0 (the License); you may
mbed_official 21:b88cdeb5b302 5 * not use this file except in compliance with the License.
mbed_official 21:b88cdeb5b302 6 * You may obtain a copy of the License at
mbed_official 21:b88cdeb5b302 7 *
mbed_official 21:b88cdeb5b302 8 * http://www.apache.org/licenses/LICENSE-2.0
mbed_official 21:b88cdeb5b302 9 *
mbed_official 21:b88cdeb5b302 10 * Unless required by applicable law or agreed to in writing, software
mbed_official 21:b88cdeb5b302 11 * distributed under the License is distributed on an AS IS BASIS, WITHOUT
mbed_official 21:b88cdeb5b302 12 * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
mbed_official 21:b88cdeb5b302 13 * See the License for the specific language governing permissions and
mbed_official 21:b88cdeb5b302 14 * limitations under the License.
mbed_official 21:b88cdeb5b302 15 */
mbed_official 63:c73f78fd7982 16 #define __STDC_FORMAT_MACROS
mbed_official 63:c73f78fd7982 17 #include <inttypes.h>
mbed_official 21:b88cdeb5b302 18 #include "simpleclient.h"
mbed_official 21:b88cdeb5b302 19 #include <string>
mbed_official 21:b88cdeb5b302 20 #include <sstream>
mbed_official 21:b88cdeb5b302 21 #include <vector>
mbed_official 21:b88cdeb5b302 22 #include "mbed-trace/mbed_trace.h"
mbed_official 21:b88cdeb5b302 23 #include "mbedtls/entropy_poll.h"
mbed_official 21:b88cdeb5b302 24
mbed_official 21:b88cdeb5b302 25 #include "security.h"
mbed_official 21:b88cdeb5b302 26
mbed_official 21:b88cdeb5b302 27 #include "mbed.h"
mbed_official 21:b88cdeb5b302 28
mbed_official 63:c73f78fd7982 29 // easy-connect compliancy, it has 2 sets of wifi pins we have only one
mbed_official 63:c73f78fd7982 30 #define MBED_CONF_APP_ESP8266_TX MBED_CONF_APP_WIFI_TX
mbed_official 63:c73f78fd7982 31 #define MBED_CONF_APP_ESP8266_RX MBED_CONF_APP_WIFI_RX
mbed_official 63:c73f78fd7982 32 #include "easy-connect/easy-connect.h"
mbed_official 21:b88cdeb5b302 33
mbed_official 71:ec259c9b02ea 34 #ifdef TARGET_STM
mbed_official 71:ec259c9b02ea 35 #define RED_LED (LED3)
mbed_official 71:ec259c9b02ea 36 #define GREEN_LED (LED1)
mbed_official 71:ec259c9b02ea 37 #define BLUE_LED (LED2)
mbed_official 117:81e1ff2179d0 38 #define LED_ON (1)
mbed_official 71:ec259c9b02ea 39 #else // !TARGET_STM
mbed_official 71:ec259c9b02ea 40 #define RED_LED (LED1)
mbed_official 71:ec259c9b02ea 41 #define GREEN_LED (LED2)
mbed_official 117:81e1ff2179d0 42 #define BLUE_LED (LED3)
mbed_official 117:81e1ff2179d0 43 #define LED_ON (0)
mbed_official 71:ec259c9b02ea 44 #endif // !TARGET_STM
mbed_official 71:ec259c9b02ea 45 #define LED_OFF (!LED_ON)
mbed_official 71:ec259c9b02ea 46
mbed_official 117:81e1ff2179d0 47 #define BLINK_SIGNAL 0x1
mbed_official 117:81e1ff2179d0 48
mbed_official 21:b88cdeb5b302 49 // Status indication
mbed_official 71:ec259c9b02ea 50 DigitalOut red_led(RED_LED);
mbed_official 71:ec259c9b02ea 51 DigitalOut green_led(GREEN_LED);
mbed_official 71:ec259c9b02ea 52 DigitalOut blue_led(BLUE_LED);
mbed_official 71:ec259c9b02ea 53
mbed_official 21:b88cdeb5b302 54 Ticker status_ticker;
mbed_official 21:b88cdeb5b302 55 void blinky() {
mbed_official 21:b88cdeb5b302 56 green_led = !green_led;
mbed_official 21:b88cdeb5b302 57 }
mbed_official 21:b88cdeb5b302 58
mbed_official 21:b88cdeb5b302 59 // These are example resource values for the Device Object
mbed_official 21:b88cdeb5b302 60 struct MbedClientDevice device = {
mbed_official 21:b88cdeb5b302 61 "Manufacturer_String", // Manufacturer
mbed_official 21:b88cdeb5b302 62 "Type_String", // Type
mbed_official 21:b88cdeb5b302 63 "ModelNumber_String", // ModelNumber
mbed_official 21:b88cdeb5b302 64 "SerialNumber_String" // SerialNumber
mbed_official 21:b88cdeb5b302 65 };
mbed_official 21:b88cdeb5b302 66
mbed_official 21:b88cdeb5b302 67 // Instantiate the class which implements LWM2M Client API (from simpleclient.h)
mbed_official 21:b88cdeb5b302 68 MbedClient mbed_client(device);
mbed_official 21:b88cdeb5b302 69
mbed_official 21:b88cdeb5b302 70
mbed_official 21:b88cdeb5b302 71 // In case of K64F board , there is button resource available
mbed_official 21:b88cdeb5b302 72 // to change resource value and unregister
mbed_official 21:b88cdeb5b302 73 #ifdef TARGET_K64F
mbed_official 21:b88cdeb5b302 74 // Set up Hardware interrupt button.
mbed_official 21:b88cdeb5b302 75 InterruptIn obs_button(SW2);
mbed_official 21:b88cdeb5b302 76 InterruptIn unreg_button(SW3);
mbed_official 21:b88cdeb5b302 77 #else
mbed_official 21:b88cdeb5b302 78 //In non K64F boards , set up a timer to simulate updating resource,
mbed_official 21:b88cdeb5b302 79 // there is no functionality to unregister.
mbed_official 21:b88cdeb5b302 80 Ticker timer;
mbed_official 21:b88cdeb5b302 81 #endif
mbed_official 21:b88cdeb5b302 82
mbed_official 21:b88cdeb5b302 83 /*
mbed_official 21:b88cdeb5b302 84 * Arguments for running "blink" in it's own thread.
mbed_official 21:b88cdeb5b302 85 */
mbed_official 21:b88cdeb5b302 86 class BlinkArgs {
mbed_official 21:b88cdeb5b302 87 public:
mbed_official 21:b88cdeb5b302 88 BlinkArgs() {
mbed_official 21:b88cdeb5b302 89 clear();
mbed_official 21:b88cdeb5b302 90 }
mbed_official 21:b88cdeb5b302 91 void clear() {
mbed_official 21:b88cdeb5b302 92 position = 0;
mbed_official 21:b88cdeb5b302 93 blink_pattern.clear();
mbed_official 21:b88cdeb5b302 94 }
mbed_official 21:b88cdeb5b302 95 uint16_t position;
mbed_official 21:b88cdeb5b302 96 std::vector<uint32_t> blink_pattern;
mbed_official 21:b88cdeb5b302 97 };
mbed_official 21:b88cdeb5b302 98
mbed_official 21:b88cdeb5b302 99 /*
mbed_official 21:b88cdeb5b302 100 * The Led contains one property (pattern) and a function (blink).
mbed_official 21:b88cdeb5b302 101 * When the function blink is executed, the pattern is read, and the LED
mbed_official 21:b88cdeb5b302 102 * will blink based on the pattern.
mbed_official 21:b88cdeb5b302 103 */
mbed_official 21:b88cdeb5b302 104 class LedResource {
mbed_official 21:b88cdeb5b302 105 public:
mbed_official 21:b88cdeb5b302 106 LedResource() {
mbed_official 21:b88cdeb5b302 107 // create ObjectID with metadata tag of '3201', which is 'digital output'
mbed_official 117:81e1ff2179d0 108 blinky_thread.start(callback(this, &LedResource::do_blink));
mbed_official 21:b88cdeb5b302 109 led_object = M2MInterfaceFactory::create_object("3201");
mbed_official 21:b88cdeb5b302 110 M2MObjectInstance* led_inst = led_object->create_object_instance();
mbed_official 21:b88cdeb5b302 111
mbed_official 21:b88cdeb5b302 112 // 5853 = Multi-state output
mbed_official 21:b88cdeb5b302 113 M2MResource* pattern_res = led_inst->create_dynamic_resource("5853", "Pattern",
mbed_official 21:b88cdeb5b302 114 M2MResourceInstance::STRING, false);
mbed_official 21:b88cdeb5b302 115 // read and write
mbed_official 21:b88cdeb5b302 116 pattern_res->set_operation(M2MBase::GET_PUT_ALLOWED);
mbed_official 21:b88cdeb5b302 117 // set initial pattern (toggle every 200ms. 7 toggles in total)
mbed_official 21:b88cdeb5b302 118 pattern_res->set_value((const uint8_t*)"500:500:500:500:500:500:500", 27);
mbed_official 21:b88cdeb5b302 119
mbed_official 21:b88cdeb5b302 120 // there's not really an execute LWM2M ID that matches... hmm...
mbed_official 21:b88cdeb5b302 121 M2MResource* led_res = led_inst->create_dynamic_resource("5850", "Blink",
mbed_official 21:b88cdeb5b302 122 M2MResourceInstance::OPAQUE, false);
mbed_official 21:b88cdeb5b302 123 // we allow executing a function here...
mbed_official 21:b88cdeb5b302 124 led_res->set_operation(M2MBase::POST_ALLOWED);
mbed_official 21:b88cdeb5b302 125 // when a POST comes in, we want to execute the led_execute_callback
mbed_official 21:b88cdeb5b302 126 led_res->set_execute_function(execute_callback(this, &LedResource::blink));
mbed_official 21:b88cdeb5b302 127 // Completion of execute function can take a time, that's why delayed response is used
mbed_official 21:b88cdeb5b302 128 led_res->set_delayed_response(true);
mbed_official 21:b88cdeb5b302 129 blink_args = new BlinkArgs();
mbed_official 21:b88cdeb5b302 130 }
mbed_official 21:b88cdeb5b302 131
mbed_official 21:b88cdeb5b302 132 ~LedResource() {
mbed_official 21:b88cdeb5b302 133 delete blink_args;
mbed_official 21:b88cdeb5b302 134 }
mbed_official 21:b88cdeb5b302 135
mbed_official 21:b88cdeb5b302 136 M2MObject* get_object() {
mbed_official 21:b88cdeb5b302 137 return led_object;
mbed_official 21:b88cdeb5b302 138 }
mbed_official 21:b88cdeb5b302 139
mbed_official 21:b88cdeb5b302 140 void blink(void *argument) {
mbed_official 21:b88cdeb5b302 141 // read the value of 'Pattern'
mbed_official 21:b88cdeb5b302 142 status_ticker.detach();
mbed_official 71:ec259c9b02ea 143 green_led = LED_OFF;
mbed_official 21:b88cdeb5b302 144
mbed_official 21:b88cdeb5b302 145 M2MObjectInstance* inst = led_object->object_instance();
mbed_official 21:b88cdeb5b302 146 M2MResource* res = inst->resource("5853");
mbed_official 21:b88cdeb5b302 147 // Clear previous blink data
mbed_official 21:b88cdeb5b302 148 blink_args->clear();
mbed_official 21:b88cdeb5b302 149
mbed_official 21:b88cdeb5b302 150 // values in mbed Client are all buffers, and we need a vector of int's
mbed_official 21:b88cdeb5b302 151 uint8_t* buffIn = NULL;
mbed_official 21:b88cdeb5b302 152 uint32_t sizeIn;
mbed_official 21:b88cdeb5b302 153 res->get_value(buffIn, sizeIn);
mbed_official 21:b88cdeb5b302 154
mbed_official 21:b88cdeb5b302 155 // turn the buffer into a string, and initialize a vector<int> on the heap
mbed_official 21:b88cdeb5b302 156 std::string s((char*)buffIn, sizeIn);
mbed_official 21:b88cdeb5b302 157 free(buffIn);
mbed_official 63:c73f78fd7982 158 printf("led_execute_callback pattern=%s\n", s.c_str());
mbed_official 21:b88cdeb5b302 159
mbed_official 21:b88cdeb5b302 160 // our pattern is something like 500:200:500, so parse that
mbed_official 21:b88cdeb5b302 161 std::size_t found = s.find_first_of(":");
mbed_official 21:b88cdeb5b302 162 while (found!=std::string::npos) {
mbed_official 21:b88cdeb5b302 163 blink_args->blink_pattern.push_back(atoi((const char*)s.substr(0,found).c_str()));
mbed_official 21:b88cdeb5b302 164 s = s.substr(found+1);
mbed_official 21:b88cdeb5b302 165 found=s.find_first_of(":");
mbed_official 21:b88cdeb5b302 166 if(found == std::string::npos) {
mbed_official 21:b88cdeb5b302 167 blink_args->blink_pattern.push_back(atoi((const char*)s.c_str()));
mbed_official 21:b88cdeb5b302 168 }
mbed_official 21:b88cdeb5b302 169 }
mbed_official 21:b88cdeb5b302 170 // check if POST contains payload
mbed_official 21:b88cdeb5b302 171 if (argument) {
mbed_official 21:b88cdeb5b302 172 M2MResource::M2MExecuteParameter* param = (M2MResource::M2MExecuteParameter*)argument;
mbed_official 21:b88cdeb5b302 173 String object_name = param->get_argument_object_name();
mbed_official 21:b88cdeb5b302 174 uint16_t object_instance_id = param->get_argument_object_instance_id();
mbed_official 21:b88cdeb5b302 175 String resource_name = param->get_argument_resource_name();
mbed_official 21:b88cdeb5b302 176 int payload_length = param->get_argument_value_length();
mbed_official 110:c6ef55b9498a 177 const uint8_t* payload = param->get_argument_value();
mbed_official 63:c73f78fd7982 178 printf("Resource: %s/%d/%s executed\n", object_name.c_str(), object_instance_id, resource_name.c_str());
mbed_official 63:c73f78fd7982 179 printf("Payload: %.*s\n", payload_length, payload);
mbed_official 21:b88cdeb5b302 180 }
mbed_official 21:b88cdeb5b302 181 // do_blink is called with the vector, and starting at -1
mbed_official 117:81e1ff2179d0 182 blinky_thread.signal_set(BLINK_SIGNAL);
mbed_official 21:b88cdeb5b302 183 }
mbed_official 21:b88cdeb5b302 184
mbed_official 21:b88cdeb5b302 185 private:
mbed_official 21:b88cdeb5b302 186 M2MObject* led_object;
mbed_official 21:b88cdeb5b302 187 Thread blinky_thread;
mbed_official 21:b88cdeb5b302 188 BlinkArgs *blink_args;
mbed_official 21:b88cdeb5b302 189 void do_blink() {
mbed_official 117:81e1ff2179d0 190 for(;;) {
mbed_official 117:81e1ff2179d0 191 blinky_thread.signal_wait(BLINK_SIGNAL);
mbed_official 117:81e1ff2179d0 192 for (;;) {
mbed_official 117:81e1ff2179d0 193 // blink the LED
mbed_official 117:81e1ff2179d0 194 red_led = !red_led;
mbed_official 117:81e1ff2179d0 195 // up the position, if we reached the end of the vector
mbed_official 117:81e1ff2179d0 196 if (blink_args->position >= blink_args->blink_pattern.size()) {
mbed_official 117:81e1ff2179d0 197 // send delayed response after blink is done
mbed_official 117:81e1ff2179d0 198 M2MObjectInstance* inst = led_object->object_instance();
mbed_official 117:81e1ff2179d0 199 M2MResource* led_res = inst->resource("5850");
mbed_official 117:81e1ff2179d0 200 led_res->send_delayed_post_response();
mbed_official 117:81e1ff2179d0 201 red_led = LED_OFF;
mbed_official 117:81e1ff2179d0 202 status_ticker.attach_us(blinky, 250000);
mbed_official 117:81e1ff2179d0 203 break;
mbed_official 117:81e1ff2179d0 204 }
mbed_official 117:81e1ff2179d0 205 // Wait requested time, then continue prosessing the blink pattern from next position.
mbed_official 117:81e1ff2179d0 206 Thread::wait(blink_args->blink_pattern.at(blink_args->position));
mbed_official 117:81e1ff2179d0 207 blink_args->position++;
mbed_official 117:81e1ff2179d0 208 }
mbed_official 21:b88cdeb5b302 209 }
mbed_official 21:b88cdeb5b302 210 }
mbed_official 21:b88cdeb5b302 211 };
mbed_official 21:b88cdeb5b302 212
mbed_official 21:b88cdeb5b302 213 /*
mbed_official 21:b88cdeb5b302 214 * The button contains one property (click count).
mbed_official 21:b88cdeb5b302 215 * When `handle_button_click` is executed, the counter updates.
mbed_official 21:b88cdeb5b302 216 */
mbed_official 21:b88cdeb5b302 217 class ButtonResource {
mbed_official 21:b88cdeb5b302 218 public:
mbed_official 21:b88cdeb5b302 219 ButtonResource(): counter(0) {
mbed_official 21:b88cdeb5b302 220 // create ObjectID with metadata tag of '3200', which is 'digital input'
mbed_official 21:b88cdeb5b302 221 btn_object = M2MInterfaceFactory::create_object("3200");
mbed_official 21:b88cdeb5b302 222 M2MObjectInstance* btn_inst = btn_object->create_object_instance();
mbed_official 21:b88cdeb5b302 223 // create resource with ID '5501', which is digital input counter
mbed_official 21:b88cdeb5b302 224 M2MResource* btn_res = btn_inst->create_dynamic_resource("5501", "Button",
mbed_official 21:b88cdeb5b302 225 M2MResourceInstance::INTEGER, true /* observable */);
mbed_official 21:b88cdeb5b302 226 // we can read this value
mbed_official 21:b88cdeb5b302 227 btn_res->set_operation(M2MBase::GET_ALLOWED);
mbed_official 21:b88cdeb5b302 228 // set initial value (all values in mbed Client are buffers)
mbed_official 21:b88cdeb5b302 229 // to be able to read this data easily in the Connector console, we'll use a string
mbed_official 21:b88cdeb5b302 230 btn_res->set_value((uint8_t*)"0", 1);
mbed_official 21:b88cdeb5b302 231 }
mbed_official 21:b88cdeb5b302 232
mbed_official 21:b88cdeb5b302 233 ~ButtonResource() {
mbed_official 21:b88cdeb5b302 234 }
mbed_official 21:b88cdeb5b302 235
mbed_official 21:b88cdeb5b302 236 M2MObject* get_object() {
mbed_official 21:b88cdeb5b302 237 return btn_object;
mbed_official 21:b88cdeb5b302 238 }
mbed_official 21:b88cdeb5b302 239
mbed_official 21:b88cdeb5b302 240 /*
mbed_official 21:b88cdeb5b302 241 * When you press the button, we read the current value of the click counter
mbed_official 21:b88cdeb5b302 242 * from mbed Device Connector, then up the value with one.
mbed_official 21:b88cdeb5b302 243 */
mbed_official 21:b88cdeb5b302 244 void handle_button_click() {
mbed_official 65:ea64e559b7d3 245 if (mbed_client.register_successful()) {
mbed_official 65:ea64e559b7d3 246 M2MObjectInstance* inst = btn_object->object_instance();
mbed_official 65:ea64e559b7d3 247 M2MResource* res = inst->resource("5501");
mbed_official 21:b88cdeb5b302 248
mbed_official 65:ea64e559b7d3 249 // up counter
mbed_official 65:ea64e559b7d3 250 counter++;
mbed_official 65:ea64e559b7d3 251 #ifdef TARGET_K64F
mbed_official 65:ea64e559b7d3 252 printf("handle_button_click, new value of counter is %d\n", counter);
mbed_official 65:ea64e559b7d3 253 #else
mbed_official 65:ea64e559b7d3 254 printf("simulate button_click, new value of counter is %d\n", counter);
mbed_official 65:ea64e559b7d3 255 #endif
mbed_official 65:ea64e559b7d3 256 // serialize the value of counter as a string, and tell connector
mbed_official 65:ea64e559b7d3 257 char buffer[20];
mbed_official 65:ea64e559b7d3 258 int size = sprintf(buffer,"%d",counter);
mbed_official 65:ea64e559b7d3 259 res->set_value((uint8_t*)buffer, size);
mbed_official 65:ea64e559b7d3 260 } else {
mbed_official 65:ea64e559b7d3 261 printf("simulate button_click, device not registered\n");
mbed_official 65:ea64e559b7d3 262 }
mbed_official 21:b88cdeb5b302 263 }
mbed_official 21:b88cdeb5b302 264
mbed_official 21:b88cdeb5b302 265 private:
mbed_official 21:b88cdeb5b302 266 M2MObject* btn_object;
mbed_official 21:b88cdeb5b302 267 uint16_t counter;
mbed_official 21:b88cdeb5b302 268 };
mbed_official 21:b88cdeb5b302 269
mbed_official 21:b88cdeb5b302 270 class BigPayloadResource {
mbed_official 21:b88cdeb5b302 271 public:
mbed_official 21:b88cdeb5b302 272 BigPayloadResource() {
mbed_official 21:b88cdeb5b302 273 big_payload = M2MInterfaceFactory::create_object("1000");
mbed_official 21:b88cdeb5b302 274 M2MObjectInstance* payload_inst = big_payload->create_object_instance();
mbed_official 21:b88cdeb5b302 275 M2MResource* payload_res = payload_inst->create_dynamic_resource("1", "BigData",
mbed_official 21:b88cdeb5b302 276 M2MResourceInstance::STRING, true /* observable */);
mbed_official 21:b88cdeb5b302 277 payload_res->set_operation(M2MBase::GET_PUT_ALLOWED);
mbed_official 21:b88cdeb5b302 278 payload_res->set_value((uint8_t*)"0", 1);
mbed_official 21:b88cdeb5b302 279 payload_res->set_incoming_block_message_callback(
mbed_official 21:b88cdeb5b302 280 incoming_block_message_callback(this, &BigPayloadResource::block_message_received));
mbed_official 21:b88cdeb5b302 281 payload_res->set_outgoing_block_message_callback(
mbed_official 21:b88cdeb5b302 282 outgoing_block_message_callback(this, &BigPayloadResource::block_message_requested));
mbed_official 21:b88cdeb5b302 283 }
mbed_official 21:b88cdeb5b302 284
mbed_official 21:b88cdeb5b302 285 M2MObject* get_object() {
mbed_official 21:b88cdeb5b302 286 return big_payload;
mbed_official 21:b88cdeb5b302 287 }
mbed_official 21:b88cdeb5b302 288
mbed_official 21:b88cdeb5b302 289 void block_message_received(M2MBlockMessage *argument) {
mbed_official 21:b88cdeb5b302 290 if (argument) {
mbed_official 21:b88cdeb5b302 291 if (M2MBlockMessage::ErrorNone == argument->error_code()) {
mbed_official 21:b88cdeb5b302 292 if (argument->is_last_block()) {
mbed_official 63:c73f78fd7982 293 printf("Last block received\n");
mbed_official 21:b88cdeb5b302 294 }
mbed_official 63:c73f78fd7982 295 printf("Block number: %d\n", argument->block_number());
mbed_official 21:b88cdeb5b302 296 // First block received
mbed_official 21:b88cdeb5b302 297 if (argument->block_number() == 0) {
mbed_official 21:b88cdeb5b302 298 // Store block
mbed_official 21:b88cdeb5b302 299 // More blocks coming
mbed_official 21:b88cdeb5b302 300 } else {
mbed_official 21:b88cdeb5b302 301 // Store blocks
mbed_official 21:b88cdeb5b302 302 }
mbed_official 21:b88cdeb5b302 303 } else {
mbed_official 63:c73f78fd7982 304 printf("Error when receiving block message! - EntityTooLarge\n");
mbed_official 21:b88cdeb5b302 305 }
mbed_official 63:c73f78fd7982 306 printf("Total message size: %" PRIu32 "\n", argument->total_message_size());
mbed_official 21:b88cdeb5b302 307 }
mbed_official 21:b88cdeb5b302 308 }
mbed_official 21:b88cdeb5b302 309
mbed_official 21:b88cdeb5b302 310 void block_message_requested(const String& resource, uint8_t *&/*data*/, uint32_t &/*len*/) {
mbed_official 63:c73f78fd7982 311 printf("GET request received for resource: %s\n", resource.c_str());
mbed_official 21:b88cdeb5b302 312 // Copy data and length to coap response
mbed_official 21:b88cdeb5b302 313 }
mbed_official 21:b88cdeb5b302 314
mbed_official 21:b88cdeb5b302 315 private:
mbed_official 21:b88cdeb5b302 316 M2MObject* big_payload;
mbed_official 21:b88cdeb5b302 317 };
mbed_official 21:b88cdeb5b302 318
mbed_official 21:b88cdeb5b302 319 // Network interaction must be performed outside of interrupt context
mbed_official 21:b88cdeb5b302 320 Semaphore updates(0);
mbed_official 21:b88cdeb5b302 321 volatile bool registered = false;
mbed_official 21:b88cdeb5b302 322 volatile bool clicked = false;
mbed_official 21:b88cdeb5b302 323 osThreadId mainThread;
mbed_official 21:b88cdeb5b302 324
mbed_official 21:b88cdeb5b302 325 void unregister() {
mbed_official 21:b88cdeb5b302 326 registered = false;
mbed_official 21:b88cdeb5b302 327 updates.release();
mbed_official 21:b88cdeb5b302 328 }
mbed_official 21:b88cdeb5b302 329
mbed_official 21:b88cdeb5b302 330 void button_clicked() {
mbed_official 21:b88cdeb5b302 331 clicked = true;
mbed_official 21:b88cdeb5b302 332 updates.release();
mbed_official 21:b88cdeb5b302 333 }
mbed_official 21:b88cdeb5b302 334
mbed_official 115:45399116b171 335 // debug printf function
mbed_official 115:45399116b171 336 void trace_printer(const char* str) {
mbed_official 115:45399116b171 337 printf("%s\r\n", str);
mbed_official 115:45399116b171 338 }
mbed_official 115:45399116b171 339
mbed_official 21:b88cdeb5b302 340 // Entry point to the program
mbed_official 21:b88cdeb5b302 341 int main() {
mbed_official 21:b88cdeb5b302 342
mbed_official 21:b88cdeb5b302 343 unsigned int seed;
mbed_official 21:b88cdeb5b302 344 size_t len;
mbed_official 21:b88cdeb5b302 345
mbed_official 21:b88cdeb5b302 346 #ifdef MBEDTLS_ENTROPY_HARDWARE_ALT
mbed_official 21:b88cdeb5b302 347 // Used to randomize source port
mbed_official 21:b88cdeb5b302 348 mbedtls_hardware_poll(NULL, (unsigned char *) &seed, sizeof seed, &len);
mbed_official 21:b88cdeb5b302 349
mbed_official 21:b88cdeb5b302 350 #elif defined MBEDTLS_TEST_NULL_ENTROPY
mbed_official 21:b88cdeb5b302 351
mbed_official 21:b88cdeb5b302 352 #warning "mbedTLS security feature is disabled. Connection will not be secure !! Implement proper hardware entropy for your selected hardware."
mbed_official 21:b88cdeb5b302 353 // Used to randomize source port
mbed_official 21:b88cdeb5b302 354 mbedtls_null_entropy_poll( NULL,(unsigned char *) &seed, sizeof seed, &len);
mbed_official 21:b88cdeb5b302 355
mbed_official 21:b88cdeb5b302 356 #else
mbed_official 21:b88cdeb5b302 357
mbed_official 21:b88cdeb5b302 358 #error "This hardware does not have entropy, endpoint will not register to Connector.\
mbed_official 21:b88cdeb5b302 359 You need to enable NULL ENTROPY for your application, but if this configuration change is made then no security is offered by mbed TLS.\
mbed_official 21:b88cdeb5b302 360 Add MBEDTLS_NO_DEFAULT_ENTROPY_SOURCES and MBEDTLS_TEST_NULL_ENTROPY in mbed_app.json macros to register your endpoint."
mbed_official 21:b88cdeb5b302 361
mbed_official 21:b88cdeb5b302 362 #endif
mbed_official 21:b88cdeb5b302 363
mbed_official 21:b88cdeb5b302 364 srand(seed);
mbed_official 71:ec259c9b02ea 365 red_led = LED_OFF;
mbed_official 71:ec259c9b02ea 366 blue_led = LED_OFF;
mbed_official 63:c73f78fd7982 367
mbed_official 21:b88cdeb5b302 368 status_ticker.attach_us(blinky, 250000);
mbed_official 21:b88cdeb5b302 369 // Keep track of the main thread
mbed_official 21:b88cdeb5b302 370 mainThread = osThreadGetId();
mbed_official 21:b88cdeb5b302 371
mbed_official 87:5092f48bb68c 372 printf("\nStarting mbed Client example\n");
mbed_official 21:b88cdeb5b302 373
mbed_official 21:b88cdeb5b302 374 mbed_trace_init();
mbed_official 115:45399116b171 375 mbed_trace_print_function_set(trace_printer);
mbed_official 115:45399116b171 376 mbed_trace_config_set(TRACE_MODE_COLOR | TRACE_ACTIVE_LEVEL_INFO | TRACE_CARRIAGE_RETURN);
mbed_official 44:2b472e66a942 377
mbed_official 63:c73f78fd7982 378 NetworkInterface* network = easy_connect(true);
mbed_official 63:c73f78fd7982 379 if(network == NULL) {
mbed_official 63:c73f78fd7982 380 printf("\nConnection to Network Failed - exiting application...\n");
mbed_official 63:c73f78fd7982 381 return -1;
mbed_official 21:b88cdeb5b302 382 }
mbed_official 21:b88cdeb5b302 383
mbed_official 21:b88cdeb5b302 384 // we create our button and LED resources
mbed_official 21:b88cdeb5b302 385 ButtonResource button_resource;
mbed_official 21:b88cdeb5b302 386 LedResource led_resource;
mbed_official 21:b88cdeb5b302 387 BigPayloadResource big_payload_resource;
mbed_official 21:b88cdeb5b302 388
mbed_official 21:b88cdeb5b302 389 #ifdef TARGET_K64F
mbed_official 21:b88cdeb5b302 390 // On press of SW3 button on K64F board, example application
mbed_official 21:b88cdeb5b302 391 // will call unregister API towards mbed Device Connector
mbed_official 21:b88cdeb5b302 392 //unreg_button.fall(&mbed_client,&MbedClient::test_unregister);
mbed_official 21:b88cdeb5b302 393 unreg_button.fall(&unregister);
mbed_official 21:b88cdeb5b302 394
mbed_official 21:b88cdeb5b302 395 // Observation Button (SW2) press will send update of endpoint resource values to connector
mbed_official 21:b88cdeb5b302 396 obs_button.fall(&button_clicked);
mbed_official 21:b88cdeb5b302 397 #else
mbed_official 21:b88cdeb5b302 398 // Send update of endpoint resource values to connector every 15 seconds periodically
mbed_official 21:b88cdeb5b302 399 timer.attach(&button_clicked, 15.0);
mbed_official 21:b88cdeb5b302 400 #endif
mbed_official 21:b88cdeb5b302 401
mbed_official 21:b88cdeb5b302 402 // Create endpoint interface to manage register and unregister
mbed_official 63:c73f78fd7982 403 mbed_client.create_interface(MBED_SERVER_ADDRESS, network);
mbed_official 21:b88cdeb5b302 404
mbed_official 21:b88cdeb5b302 405 // Create Objects of varying types, see simpleclient.h for more details on implementation.
mbed_official 21:b88cdeb5b302 406 M2MSecurity* register_object = mbed_client.create_register_object(); // server object specifying connector info
mbed_official 21:b88cdeb5b302 407 M2MDevice* device_object = mbed_client.create_device_object(); // device resources object
mbed_official 21:b88cdeb5b302 408
mbed_official 21:b88cdeb5b302 409 // Create list of Objects to register
mbed_official 21:b88cdeb5b302 410 M2MObjectList object_list;
mbed_official 21:b88cdeb5b302 411
mbed_official 21:b88cdeb5b302 412 // Add objects to list
mbed_official 21:b88cdeb5b302 413 object_list.push_back(device_object);
mbed_official 21:b88cdeb5b302 414 object_list.push_back(button_resource.get_object());
mbed_official 21:b88cdeb5b302 415 object_list.push_back(led_resource.get_object());
mbed_official 21:b88cdeb5b302 416 object_list.push_back(big_payload_resource.get_object());
mbed_official 21:b88cdeb5b302 417
mbed_official 21:b88cdeb5b302 418 // Set endpoint registration object
mbed_official 21:b88cdeb5b302 419 mbed_client.set_register_object(register_object);
mbed_official 21:b88cdeb5b302 420
mbed_official 21:b88cdeb5b302 421 // Register with mbed Device Connector
mbed_official 21:b88cdeb5b302 422 mbed_client.test_register(register_object, object_list);
mbed_official 21:b88cdeb5b302 423 registered = true;
mbed_official 21:b88cdeb5b302 424
mbed_official 21:b88cdeb5b302 425 while (true) {
mbed_official 21:b88cdeb5b302 426 updates.wait(25000);
mbed_official 21:b88cdeb5b302 427 if(registered) {
mbed_official 21:b88cdeb5b302 428 if(!clicked) {
mbed_official 21:b88cdeb5b302 429 mbed_client.test_update_register();
mbed_official 21:b88cdeb5b302 430 }
mbed_official 21:b88cdeb5b302 431 }else {
mbed_official 21:b88cdeb5b302 432 break;
mbed_official 21:b88cdeb5b302 433 }
mbed_official 21:b88cdeb5b302 434 if(clicked) {
mbed_official 65:ea64e559b7d3 435 clicked = false;
mbed_official 21:b88cdeb5b302 436 button_resource.handle_button_click();
mbed_official 21:b88cdeb5b302 437 }
mbed_official 21:b88cdeb5b302 438 }
mbed_official 21:b88cdeb5b302 439
mbed_official 21:b88cdeb5b302 440 mbed_client.test_unregister();
mbed_official 21:b88cdeb5b302 441 status_ticker.detach();
mbed_official 21:b88cdeb5b302 442 }