Port from Avnet's Internet Of Things full WiGo demo: SmartConfig - WebServer - Exosite - Android sensor Fusion App

Dependencies:   mbed CC3000_Hostdriver TEMT6200 TSI Wi-Go_eCompass_Lib_V3 WiGo_BattCharger

Fork of CC3000_Simple_Socket by Frank Vannieuwkerke

Information

This demo uses the old HostDriver.
A newer release using the mbed socket compatible API HostDriver is available at Wi-Go_IOT_Demo_MKII.

Wi-Go Reference Design Overview


For additional information on Wi-Go, please visit http://www.em.avnet.com/wi-go
For additional information on Freescale eCompass, please visit
http://www.freescale.com/webapp/sps/site/prod_summary.jsp?code=E-Compass
Ported from Avnet's Wi-Go KEIL code.
Special thanks to Jim Carver from Avnet for providing the Wi-Go board and for his assistance.


Multiple Wi-Fi applications are provided within the latest version of Wi-Go software:

  • SmartConfig App for auto-setup of Wi-Go network parameters.
  • WebServer display of live sensor data.
  • Exosite portal sensor data feed by Wi-Go.
  • Freescale's Sensor Fusion App data feed by Wi-Go.

Wi-Go is intended for "untethered" portable operation (using it's high-capacity Lithium-Polymer battery). The serial terminal text interface is only required for initial setup, thereafter selection of an application from those available is via finger position on the Touch Slider during the initial 6 second startup period.

Running the Wi-Go Demo Suite

Warning

  • We need a large amount of free RAM for the eCompass library:
    Before compiling the code, check if CC3000_MAXIMAL_RX_SIZE is set to (511 + 1) in cc3000_common.h.
  • The on-board Firmware must be updated to mbed enable a Wi-Go system. Goto the Component page to get the FirmwareUpdate tool (scroll down to the FirmwareUpdate topic).

MAG3110 sensor and eCompass Calibration!

As with the other sensor applications, the eCompass function requires quality calibration data to achieve best accuracy.
For the first 15 seconds after power-up it is recommended that "Figure 8" movements with Wi-Go be done in a smooth, repetitive pattern. Don't touch the slider pad during calibration.

Startup
The RGB LED blinks in a GREEN-ORANGE sequence to inform the user the module is waiting for input.
The RGB LED color designates which of the following Apps to launch.

RGB LED ColorApplication to Launch
PurpleSmartConfig
BlueWebServer
RedExosite Data Client
GreenAndroid Server

Swipe your index finger across the slider pad, the RGB LED color will change at approximately 25% intervals.
Removing your finger latches the last color displayed. After about 3 seconds, the selected app will start.
Another app can be selected when the slider pad is touched again within the 3 seconds timeout.

After launch of Exosite or Android Server Apps, the eCompass function then controls the RGB LED.
(not in WebServer mode where RGB LEDs are manually controlled by the User).

RGB LED ColorDirection Indication
BlueNear to North
GreenNorth
RedEast / West
PurpleSouth

__Note!__ The D1, D2 and D3 User LEDs on Wi-Go adhere to the following convention for the different Apps

User LED#Description of function controlling the LED
D1is the board heartbeat, derived from the timer interrupt
D2indicates network activity as follows:
Web Server Wi-Go webpage is being served.
Exosite Client Wi-Go is sending data.
Android App Wi-Go is sending data
D3WLAN Network is Connected

Detail of Wi-Go Applications

App #1: SmartConfig
See TI's pages on how to use the SmartConfig tool:

  • Preferred method : Configuration using the SmartConfig tool
  • SmartConfig download: Smart Config and Home Automation
    • iOS app : available at Apple app store.
    • Android app : download and install the Android SmartConfig Application on a PC.
      This file contains the source code as well as the compiled APK file.
      The APK file is stored in ti\CC3000AndroidApp\SmartConfigCC3X\bin.

App #2: WebServer display of live sensor data
__Note!__
When using the WebServer for the first time on a Wi-Fi network you will need to determine the IP address that's assigned to Wi-Go by the DHCP Server. To do this, it is recommended you use one of the following two methods:

  • While Wi-Go is initially tethered to a laptop via USB, launch of the WebServer Application and note the IP address that is reported on the terminal screen immediately after selection of this App.
  • Alternatively, use a 3rd party LAN SCAN type tool to view Wi-Go's IP address.
    eg. FING, - available for free download from Google Play or iTunes App Stores…

Wi-Go's WebServer Application is selected as follows:

  • Press RESET, followed by the eCompass Calibration (mentioned at the top of this page).
    Then use index finger on slider to select the WebServer App (RGB LED = BLUE).
    At end of the 3 second selection period the WebServer App shall launch.
  • If you are tethered to a laptop and have a terminal open the Wi-Fi network connection confirmation will be seen, eg.

'*** Wi-Go board DHCP assigned IP Address = 192.168.43.102
  • Once you have noted Wi-Go's reported IP address, the USB cable may be disconnected and Wi-Go then used as intended, running on it's own battery power.
  • Use an Internet Browser on SmartPhone/Tablet/Laptop (connected to same Hot-Spot/Wireless Router subnet), to now connect to the noted Wi-Go IP address and view the WebServer output: /media/uploads/frankvnk/wi-go_webserver.png
  • the Webserver sensor data is auto-updated every 2 seconds a manual refresh (F5 on laptop).
  • In the event of an error, press refresh to regenerate the screen.
  • Use the mouse (or touch-screen) to exercise the RGB LED output.

App #3: Exosite Data Client
Wi-Go's sensor data gets transmitted via Wi-Fi to a cloud-based Exosite portal where the sensor measurements are displayed graphically on a "dashboard". Users can create unique customized dashboards using drag and drop GUI widgets from the library provided on the Exosite website.
__Note!__ For the Exosite application a "live" connection to the Internet is required !!!

  • Press RESET, followed by the eCompass Calibration (mentioned at the top of this page).
    Then use index finger on slider to select the Exosite Client App (RGB LED = RED)
  • On launching this App, note Wi-Go's MAC address displayed on your terminal
    (if not running a terminal use FING or other WLAN Scan tool to determine Wi-Go's MAC address) /media/uploads/frankvnk/mac_address.png
  • Using your computer's internet browser, go to avnet.exosite.com and sign-up for a free Avnet Trial Exosite Account: /media/uploads/frankvnk/avnet_trial_exosite.png
  • On the next screen, click on the Sign-Up Now button in the displayed Avnet Trial account option.
  • Complete the Account Info and Contact Info then click on Create Account (make sure to use a valid email address!).
  • Check for new incoming email from avnet.exosite.com to the address you provided and click on the link in this email to activate your new Exosite account.
  • Once activated, login using the email address and password that you chose in your registration. Your Exosite Portal and Dashboard should now display. The first time you log-in to your new account, the default Home dashboard will be displayed, pre-configured with two widgets. On the left is the Welcome widget for tips and information. On the right is the Device List widget.
    Dashboards are configurable, so at any time this default dashboard can be changed, widgets deleted and added (Clicking the upside-down triangle icon in a widget's Title bar will allow you to edit it).
  • Before going further with the Dashboard, you need to connect your Wi-Go device to your Exosite account. Do this by going to the left sidebar and selecting Devices followed by selecting the +Add Device link (on right of screen). /media/uploads/frankvnk/add_device.png
  • In the Setup screens that follow, enter the following
Select a supported deviceWi-Go
Enter device MAC Addressnn:nn:nn:nn:nn:nn [your Wi-Go's MAC address including colons]
Enter device Name[choose a descriptive name]
Enter device Location[description of your location]
  • Once completed, under Devices the name chosen for the added Wi-Go device should now be listed.
  • Click on this new Wi-Go device to examine (and edit if necessary) it's Device Information screen.
    /media/uploads/frankvnk/device_information.png
  • Click the CLOSE button to exit the Device Information screen.
  • On your Wi-Go kit now press RESET, followed by the eCompass Calibration (mentioned at the top of this page)
    and again select the Exosite Client App (RGB LED = RED) using your index finger.
  • Refresh your browser (press F5) a couple've times until the Active indicator changes to On (Green).
    /media/uploads/frankvnk/active_indicator.png
  • From the left sidebar click on Home and click on the recently named Wi-Go device which is located under the Device List.
    This will bring-up a default dashboard display similar to what's shown below.
    (Dashboards are typically accessed via the Dashboards menu entry). Check the dashboard is updating with live data by moving your Wi-Go Kit through different orientations.
    /media/uploads/frankvnk/dashboard.png
  • To create a custom dashboard, select Dashboards from the sidebar menu, followed by +Add Dashboard (on right side of Your Dashboards title bar). After completion of the initial configuration screen you will then be able to add Widgets to display the various Wi-Go data sources as well as pictures and text to support your application.
  • More guidance on the creation, editing and sharing of custom dashboards is available under the Exosite support pages

App #4: Android Sensor Fusion App

  • Press RESET, followed by the eCompass Calibration (mentioned at the top of this page)
    , then use index finger on slider to select the Android App (RGB LED = GREEN)
  • Freescale's ''Xtrinsic Sensor Fusion Toolbox'" will run on Android 3.0 or above phone or tablet. Free to download from Google Play, type Sensor fusion in the search box to find it. freescale.sensors.sfusion /media/uploads/frankvnk/sensor_fusion_toolbox.png
  • The Freescale App is well documented. To access the built-in documentation, press the NAV button at top of screen followed by Documentation from the scroll-down menu:
    /media/uploads/frankvnk/sensor_fusion_doc.png
  • Freescale's sensors site provides additional resources such as this overview: free-android-app-teaches-sensor-fusion-basics
  • Go to the Options Menu and select Preferences… /media/uploads/frankvnk/sensor_fusion_preferences.png
  • The following items need to be taken care of:
Enter WiGo's IP address
Enter the SSID (of the Hot-Spot or Wireless Access Point used by Wi-Go)
  • Press Save and Exit!
    /media/uploads/frankvnk/sensor_fusion_save_and_exit.png
  • Exit the Application completely then re-launch the Sensor Fusion Application.
  • Select the ''Source/Algorithm'" menu and change the data source to Wi-Go mag/accel /media/uploads/frankvnk/sensor_fusion_wigo_mag_accel.png
  • The Android App should now be displaying a 3-D image of Wi-Go that you can rotate and flip-over by moving the Wi-Go board accordingly…
  • Use NAV > Device View to display if this view does not come-up by default. /media/uploads/frankvnk/sensor_fusion_nav_device_view.png
  • A Serial Terminal connection is not necessary but if you happen to have one open you should see the following messages as Wi-Go connects to the Android App:
    "Server waiting for connection" followed by
    "connected, transmit buffer size= 96", and then
    "input = 0123456789"
    at which time Wi-Go starts streaming data to the Android App.
Committer:
frankvnk
Date:
Thu Oct 17 18:02:03 2013 +0000
Revision:
10:6498ecb9f5c7
Parent:
9:5d431f47ac93
Child:
12:0cad7eaf1a59
removed no-lib test

Who changed what in which revision?

UserRevisionLine numberNew contents of line
frankvnk 3:405462258899 1 #include "mbed.h"
frankvnk 3:405462258899 2 #include "doTCPIP.h"
frankvnk 3:405462258899 3 #include "TSISensor.h"
frankvnk 3:405462258899 4 #include "TEMT6200.h"
frankvnk 10:6498ecb9f5c7 5 #include "WiGo_BattCharger.h"
frankvnk 3:405462258899 6 #include "MMA8451Q.h"
frankvnk 3:405462258899 7 #include "MAG3110.h"
frankvnk 3:405462258899 8 #include "MPL3115A2.h"
frankvnk 3:405462258899 9 #include "demo.h"
frankvnk 3:405462258899 10 #include "run_exosite.h"
frankvnk 3:405462258899 11
frankvnk 3:405462258899 12 #define FCOUNTSPERG 4096.0F // sensor specific: MMA8451 provide 4096 counts / g in 2g mode
frankvnk 3:405462258899 13 #define FCOUNTSPERUT 10.0F // sensor specific: MAG3110 provide 10 counts / uT
frankvnk 3:405462258899 14
frankvnk 9:5d431f47ac93 15 #define BATT_0 0.53
frankvnk 9:5d431f47ac93 16 #define BATT_100 0.63
frankvnk 9:5d431f47ac93 17
frankvnk 3:405462258899 18 // Serial USB port
frankvnk 3:405462258899 19 Serial pc(USBTX, USBRX);
frankvnk 3:405462258899 20
frankvnk 3:405462258899 21 // Slide sensor
frankvnk 3:405462258899 22 TSISensor tsi;
frankvnk 3:405462258899 23
frankvnk 3:405462258899 24 // Systick
frankvnk 3:405462258899 25 Ticker systick;
frankvnk 3:405462258899 26
frankvnk 3:405462258899 27 // Ambient light sensor : PTD5 = enable, PTB0 = analog input
frankvnk 3:405462258899 28 TEMT6200 ambi(PTD5, PTB0);
frankvnk 3:405462258899 29
frankvnk 3:405462258899 30 //Wi-Go battery charger control
frankvnk 10:6498ecb9f5c7 31 WiGo_BattCharger Batt(CHRG_EN1, CHRG_EN2, CHRG_SNS_EN, CHRG_SNS, CHRG_POK, CHRG_CHG);
frankvnk 10:6498ecb9f5c7 32
frankvnk 3:405462258899 33 // Accelerometer
frankvnk 3:405462258899 34 #define MMA8451_I2C_ADDRESS (0x1d<<1)
frankvnk 3:405462258899 35 MMA8451Q acc(PTE25, PTE24, MMA8451_I2C_ADDRESS);
frankvnk 3:405462258899 36
frankvnk 3:405462258899 37 // Magnetometer
frankvnk 3:405462258899 38 MAG3110 mag(PTE0, PTE1);
frankvnk 3:405462258899 39
frankvnk 3:405462258899 40 // altimeter-Pressure-Temperature (apt)
frankvnk 3:405462258899 41 #define MPL3115A2_I2C_ADDRESS (0x60<<1)
frankvnk 3:405462258899 42 MPL3115A2 apt( PTE0, PTE1, MPL3115A2_I2C_ADDRESS);
frankvnk 3:405462258899 43
frankvnk 3:405462258899 44
frankvnk 3:405462258899 45 int secondFlag;
frankvnk 3:405462258899 46 int HsecondFlag;
frankvnk 3:405462258899 47 unsigned int seconds;
frankvnk 3:405462258899 48 unsigned int compass_type;
frankvnk 3:405462258899 49 unsigned short adc_sample3;
frankvnk 3:405462258899 50 float fcountperg = 1.0F / FCOUNTSPERG;
frankvnk 3:405462258899 51 float fcountperut = 1.0F / FCOUNTSPERUT;
frankvnk 3:405462258899 52
frankvnk 3:405462258899 53 void accel_read(void)
frankvnk 3:405462258899 54 {
frankvnk 3:405462258899 55 signed short resultx, resulty, resultz;
frankvnk 3:405462258899 56 if(acc.isDataAvailable())
frankvnk 3:405462258899 57 {
frankvnk 3:405462258899 58 acc.getAccRawX(&resultx);
frankvnk 3:405462258899 59 acc.getAccRawY(&resulty);
frankvnk 3:405462258899 60 acc.getAccRawZ(&resultz);
frankvnk 3:405462258899 61 if(compass_type == NED_COMPASS)
frankvnk 3:405462258899 62 {
frankvnk 3:405462258899 63 axis6.acc_x = resultx;
frankvnk 3:405462258899 64 axis6.acc_y = -1 * resulty; // multiple by -1 to compensate for PCB layout
frankvnk 3:405462258899 65 axis6.acc_z = resultz;
frankvnk 3:405462258899 66 }
frankvnk 3:405462258899 67 if(compass_type == ANDROID_COMPASS)
frankvnk 3:405462258899 68 {
frankvnk 3:405462258899 69 axis6.acc_x = resulty; //
frankvnk 3:405462258899 70 axis6.acc_y = -1 * resultx;
frankvnk 3:405462258899 71 axis6.acc_z = resultz;
frankvnk 3:405462258899 72 }
frankvnk 3:405462258899 73 if(compass_type == WINDOWS_COMPASS)
frankvnk 3:405462258899 74 {
frankvnk 3:405462258899 75 axis6.acc_x = -1 * resulty; //
frankvnk 3:405462258899 76 axis6.acc_y = resultx;
frankvnk 3:405462258899 77 axis6.acc_z = resultz;
frankvnk 3:405462258899 78 }
frankvnk 3:405462258899 79 axis6.fax = axis6.acc_x;
frankvnk 3:405462258899 80 axis6.fay = axis6.acc_y;
frankvnk 3:405462258899 81 axis6.faz = axis6.acc_z;
frankvnk 3:405462258899 82 axis6.fGax = axis6.fax * fcountperg;
frankvnk 3:405462258899 83 axis6.fGay = axis6.fay * fcountperg;
frankvnk 3:405462258899 84 axis6.fGaz = axis6.faz * fcountperg;
frankvnk 3:405462258899 85 }
frankvnk 3:405462258899 86 }
frankvnk 3:405462258899 87
frankvnk 3:405462258899 88 void readTempAlt(void) // We don't use the fractional data
frankvnk 3:405462258899 89 {
frankvnk 3:405462258899 90 unsigned char raw_data[5];
frankvnk 3:405462258899 91 if(apt.getAllDataRaw(&raw_data[0]))
frankvnk 3:405462258899 92 {
frankvnk 3:405462258899 93 axis6.temp = raw_data[3];
frankvnk 3:405462258899 94 axis6.alt = ((raw_data[0] << 8) | raw_data[1]);
frankvnk 3:405462258899 95
frankvnk 3:405462258899 96 }
frankvnk 3:405462258899 97 }
frankvnk 3:405462258899 98
frankvnk 3:405462258899 99 void readCompass( void )
frankvnk 3:405462258899 100 {
frankvnk 3:405462258899 101 if(compass_type == NED_COMPASS)
frankvnk 3:405462258899 102 {
frankvnk 3:405462258899 103 axis6.mag_y = mag.readVal(MAG_OUT_X_MSB); // x & y swapped to compenste for PCB layout
frankvnk 3:405462258899 104 axis6.mag_x = mag.readVal(MAG_OUT_Y_MSB); //
frankvnk 3:405462258899 105 axis6.mag_z = mag.readVal(MAG_OUT_Z_MSB); //
frankvnk 3:405462258899 106 }
frankvnk 3:405462258899 107 if(compass_type == ANDROID_COMPASS)
frankvnk 3:405462258899 108 {
frankvnk 3:405462258899 109 axis6.mag_x = mag.readVal(MAG_OUT_X_MSB); //
frankvnk 3:405462258899 110 axis6.mag_y = mag.readVal(MAG_OUT_Y_MSB); //
frankvnk 3:405462258899 111 axis6.mag_z = -1 * mag.readVal(MAG_OUT_Z_MSB); // negate to reverse axis of Z to conform to Android coordinate system
frankvnk 3:405462258899 112 }
frankvnk 3:405462258899 113 if(compass_type == WINDOWS_COMPASS)
frankvnk 3:405462258899 114 {
frankvnk 3:405462258899 115 axis6.mag_x = mag.readVal(MAG_OUT_X_MSB); //
frankvnk 3:405462258899 116 axis6.mag_y = mag.readVal(MAG_OUT_Y_MSB); //
frankvnk 3:405462258899 117 axis6.mag_z = -1 * mag.readVal(MAG_OUT_Z_MSB); //
frankvnk 3:405462258899 118 }
frankvnk 3:405462258899 119 axis6.fmx = axis6.mag_x;
frankvnk 3:405462258899 120 axis6.fmy = axis6.mag_y;
frankvnk 3:405462258899 121 axis6.fmz = axis6.mag_z;
frankvnk 3:405462258899 122 axis6.fUTmx = axis6.fmx * fcountperut;
frankvnk 3:405462258899 123 axis6.fUTmy = axis6.fmy * fcountperut;
frankvnk 3:405462258899 124 axis6.fUTmz = axis6.fmz * fcountperut;
frankvnk 3:405462258899 125 }
frankvnk 3:405462258899 126
frankvnk 3:405462258899 127 void set_dir_LED(void)
frankvnk 3:405462258899 128 {
frankvnk 3:405462258899 129 GREEN_OFF;
frankvnk 3:405462258899 130 RED_OFF;
frankvnk 3:405462258899 131 BLUE_OFF;
frankvnk 3:405462258899 132
frankvnk 3:405462258899 133 if((axis6.compass >= 353) || (axis6.compass <= 7))
frankvnk 3:405462258899 134 {
frankvnk 3:405462258899 135 GREEN_ON;
frankvnk 3:405462258899 136 }
frankvnk 3:405462258899 137 else
frankvnk 3:405462258899 138 {
frankvnk 3:405462258899 139 GREEN_OFF;
frankvnk 3:405462258899 140 }
frankvnk 3:405462258899 141 if(((axis6.compass >= 348) && (axis6.compass <= 357)) || ((axis6.compass >= 3) && (axis6.compass <= 12)))
frankvnk 3:405462258899 142 {
frankvnk 3:405462258899 143 BLUE_ON;
frankvnk 3:405462258899 144 }
frankvnk 3:405462258899 145 else
frankvnk 3:405462258899 146 {
frankvnk 3:405462258899 147 BLUE_OFF;
frankvnk 3:405462258899 148 }
frankvnk 3:405462258899 149 if((axis6.compass >= 348) || (axis6.compass <= 12)) return;
frankvnk 3:405462258899 150 if(((axis6.compass >= 268) && (axis6.compass <= 272)) || ((axis6.compass >= 88) && (axis6.compass <= 92)))
frankvnk 3:405462258899 151 {
frankvnk 3:405462258899 152 RED_ON;
frankvnk 3:405462258899 153 return;
frankvnk 3:405462258899 154 }
frankvnk 3:405462258899 155 if((axis6.compass >= 178) && (axis6.compass <= 182))
frankvnk 3:405462258899 156 {
frankvnk 3:405462258899 157 BLUE_ON;
frankvnk 3:405462258899 158 RED_ON;
frankvnk 3:405462258899 159 return;
frankvnk 3:405462258899 160 }
frankvnk 3:405462258899 161 }
frankvnk 3:405462258899 162
frankvnk 3:405462258899 163 void SysTick_Handler(void)
frankvnk 3:405462258899 164 {
frankvnk 3:405462258899 165 static unsigned int ttt = 1;
frankvnk 3:405462258899 166 int ts;
frankvnk 3:405462258899 167 ts = ttt & 0x3;
frankvnk 3:405462258899 168 if(ts == 2) readCompass();
frankvnk 3:405462258899 169 if(ts == 1) accel_read();
frankvnk 3:405462258899 170 if(ts == 3)
frankvnk 3:405462258899 171 {
frankvnk 3:405462258899 172 run_eCompass();
frankvnk 3:405462258899 173 newData = 1; // a general purpose flag for things that need to synch to the ISR
frankvnk 3:405462258899 174 axis6.timestamp++;
frankvnk 3:405462258899 175 if(!server_running) set_dir_LED(); // Set the LEDs based on direction when nothing else is usng them
frankvnk 3:405462258899 176 }
frankvnk 9:5d431f47ac93 177 if(ttt == 20)//100)
frankvnk 3:405462258899 178 {
frankvnk 3:405462258899 179 LED_D1_ON;
frankvnk 3:405462258899 180 if(seconds && (seconds < 15)) calibrate_eCompass();
frankvnk 3:405462258899 181 readTempAlt();
frankvnk 3:405462258899 182 axis6.light = ambi.readRaw(); // Light Sensor
frankvnk 3:405462258899 183 HsecondFlag = 1; // A general purpose flag for things that need to happen every 500ms
frankvnk 3:405462258899 184 }
frankvnk 9:5d431f47ac93 185 if(ttt >= 40)//200)
frankvnk 3:405462258899 186 {
frankvnk 3:405462258899 187 LED_D1_OFF;
frankvnk 3:405462258899 188 ttt = 1;
frankvnk 3:405462258899 189 calibrate_eCompass();
frankvnk 3:405462258899 190 Batt.sense_en(1);
frankvnk 3:405462258899 191 adc_sample3 = Batt.level();
frankvnk 3:405462258899 192 Batt.sense_en(0);
frankvnk 3:405462258899 193 secondFlag = 1; // A general purpose flag for things that need to happen once a second
frankvnk 3:405462258899 194 HsecondFlag = 1;
frankvnk 3:405462258899 195 seconds++;
frankvnk 3:405462258899 196 if(!(seconds & 0x1F)) do_mDNS = 1;
frankvnk 3:405462258899 197 } else ttt++;
frankvnk 3:405462258899 198 }
frankvnk 3:405462258899 199
frankvnk 3:405462258899 200 int main()
frankvnk 3:405462258899 201 {
frankvnk 3:405462258899 202 int loop;
frankvnk 3:405462258899 203 int temp;
frankvnk 7:0f3095de6ea5 204 unsigned int oldseconds;
frankvnk 3:405462258899 205
frankvnk 3:405462258899 206 // set current to 500mA since we're turning on the Wi-Fi
frankvnk 3:405462258899 207 Batt.init(CHRG_500MA);
frankvnk 3:405462258899 208
frankvnk 3:405462258899 209 // Set MPL3115 to altimeter mode - oversample rate = 128
frankvnk 3:405462258899 210 apt.Oversample_Ratio(OVERSAMPLE_RATIO_128);
frankvnk 3:405462258899 211 apt.Altimeter_Mode();
frankvnk 3:405462258899 212
frankvnk 3:405462258899 213 //Set baudrate to 115200 instead of the default 9600
frankvnk 3:405462258899 214 pc.baud (115200);
frankvnk 3:405462258899 215
frankvnk 9:5d431f47ac93 216 initLEDs();
frankvnk 9:5d431f47ac93 217 Init_HostDriver();
frankvnk 9:5d431f47ac93 218
frankvnk 3:405462258899 219 printf("\n\n\nWi-Go Master V3.3\n");
frankvnk 3:405462258899 220 printf("Firmware build version: %s, %s\n", __DATE__, __TIME__);
frankvnk 3:405462258899 221 // Initalize global variables
frankvnk 3:405462258899 222 axis6.packet_id = 1;
frankvnk 3:405462258899 223 axis6.timestamp = 0;
frankvnk 3:405462258899 224 axis6.acc_x = 0;
frankvnk 3:405462258899 225 axis6.acc_y = 0;
frankvnk 3:405462258899 226 axis6.acc_z = 0;
frankvnk 3:405462258899 227 axis6.mag_x = 0;
frankvnk 3:405462258899 228 axis6.mag_y = 0;
frankvnk 3:405462258899 229 axis6.mag_z = 0;
frankvnk 3:405462258899 230 axis6.roll = 0;
frankvnk 3:405462258899 231 axis6.pitch = 0;
frankvnk 3:405462258899 232 axis6.yaw = 0;
frankvnk 3:405462258899 233 axis6.compass = 0;
frankvnk 3:405462258899 234 axis6.alt = 0;
frankvnk 3:405462258899 235 axis6.temp = 0;
frankvnk 3:405462258899 236 axis6.light = 0;
frankvnk 3:405462258899 237 compass_type = ANDROID_COMPASS;
frankvnk 3:405462258899 238 seconds = 0;
frankvnk 3:405462258899 239 runSmartConfig = 0;
frankvnk 3:405462258899 240 ulSmartConfigFinished = 0;
frankvnk 3:405462258899 241 server_running = 1;
frankvnk 3:405462258899 242 newData = 0;
frankvnk 3:405462258899 243 secondFlag = 0;
frankvnk 3:405462258899 244 HsecondFlag = 0;
frankvnk 3:405462258899 245 socket_active_status = 0xFFFF;
frankvnk 3:405462258899 246 socket_active_status = SOCKET_STATUS_INIT_VAL;
frankvnk 3:405462258899 247 ForceFixedSSID = 0;
frankvnk 3:405462258899 248 GREEN_ON;
frankvnk 3:405462258899 249
frankvnk 3:405462258899 250 // Read the Magnetometer a couple of times to initalize
frankvnk 3:405462258899 251 for(loop=0 ; loop < 5 ; loop++)
frankvnk 3:405462258899 252 {
frankvnk 3:405462258899 253 while(!(mag.readReg(MAG_DR_STATUS) && 0x08));
frankvnk 3:405462258899 254 readCompass();
frankvnk 3:405462258899 255 }
frankvnk 3:405462258899 256
frankvnk 3:405462258899 257 init_eCompass();
frankvnk 3:405462258899 258
frankvnk 3:405462258899 259 // Start 5ms Ticker
frankvnk 9:5d431f47ac93 260 systick.attach(&SysTick_Handler, 0.025);
frankvnk 3:405462258899 261
frankvnk 3:405462258899 262 runSmartConfig = 0;
frankvnk 3:405462258899 263 ulSmartConfigFinished = 0;
frankvnk 3:405462258899 264 server_running = 1;
frankvnk 3:405462258899 265 newData = 0;
frankvnk 3:405462258899 266 socket_active_status = SOCKET_STATUS_INIT_VAL;
frankvnk 3:405462258899 267
frankvnk 3:405462258899 268 GREEN_ON;
frankvnk 3:405462258899 269
frankvnk 3:405462258899 270 // Trigger a WLAN device
frankvnk 3:405462258899 271 wlan_start(0);
frankvnk 3:405462258899 272 nvmem_read( NVMEM_USER_FILE_1_FILEID, sizeof(userFS), 0, (unsigned char *) &userFS);
frankvnk 3:405462258899 273 nvmem_get_mac_address(myMAC);
frankvnk 3:405462258899 274 print_mac();
frankvnk 3:405462258899 275 wlan_stop();
frankvnk 3:405462258899 276 printf("FTC %i\n",userFS.FTC);
frankvnk 3:405462258899 277 printf("PP_version %i.%i\n",userFS.PP_version[0], userFS.PP_version[1]);
frankvnk 3:405462258899 278 printf("SERV_PACK %i.%i\n",userFS.SERV_PACK[0], userFS.SERV_PACK[1]);
frankvnk 3:405462258899 279 printf("DRV_VER %i.%i.%i\n",userFS.DRV_VER[0], userFS.DRV_VER[1], userFS.DRV_VER[2]);
frankvnk 3:405462258899 280 printf("FW_VER %i.%i.%i\n",userFS.FW_VER[0], userFS.FW_VER[1], userFS.FW_VER[2]);
frankvnk 3:405462258899 281
frankvnk 3:405462258899 282 if(!userFS.FTC && !ForceFixedSSID)
frankvnk 3:405462258899 283 {
frankvnk 3:405462258899 284 do_FTC(); // Call First Time Configuration if SmartConfig has not been run, and fixed SSID is not enabled
frankvnk 9:5d431f47ac93 285 while(1)
frankvnk 9:5d431f47ac93 286 {
frankvnk 9:5d431f47ac93 287 printf("Reset system\n");
frankvnk 9:5d431f47ac93 288 GREEN_ON;
frankvnk 9:5d431f47ac93 289 secondFlag = 0;
frankvnk 9:5d431f47ac93 290 while(!secondFlag);
frankvnk 9:5d431f47ac93 291 secondFlag = 0;
frankvnk 9:5d431f47ac93 292 GREEN_OFF;
frankvnk 9:5d431f47ac93 293 while(!secondFlag);
frankvnk 9:5d431f47ac93 294 }
frankvnk 3:405462258899 295 }
frankvnk 3:405462258899 296 server_running = 1;
frankvnk 3:405462258899 297
frankvnk 3:405462258899 298 // Wait for slider touch
frankvnk 6:7c06ad22f206 299 printf("\nUse the slider to start an application.\n");
frankvnk 6:7c06ad22f206 300 printf("Releasing the slider for more than 3 seconds\nwill start the chosen application.\n");
frankvnk 7:0f3095de6ea5 301 printf("Touching the slider within the 3 seconds\ntimeframe allows you to re-select an application.\n");
frankvnk 6:7c06ad22f206 302 printf("\nThe RGB LED indicates the selection:\n");
frankvnk 3:405462258899 303 printf("PURPLE - Force SmartConfig.\n");
frankvnk 3:405462258899 304 printf("BLUE - Webserver displaying live sensor data.\n");
frankvnk 3:405462258899 305 printf("RED - Exosite data client.\n");
frankvnk 3:405462258899 306 printf("GREEN - Android sensor fusion app.\n");
frankvnk 3:405462258899 307 while( tsi.readPercentage() == 0 )
frankvnk 3:405462258899 308 {
frankvnk 3:405462258899 309 RED_ON;
frankvnk 3:405462258899 310 wait(0.2);
frankvnk 3:405462258899 311 RED_OFF;
frankvnk 3:405462258899 312 wait(0.2);
frankvnk 3:405462258899 313 }
frankvnk 3:405462258899 314 RED_OFF
frankvnk 3:405462258899 315
frankvnk 7:0f3095de6ea5 316 oldseconds = seconds;
frankvnk 3:405462258899 317 loop = 100;
frankvnk 3:405462258899 318 temp = 0;
frankvnk 3:405462258899 319 // Read slider as long as it is touched.
frankvnk 6:7c06ad22f206 320 // If released for more than 3 seconds, exit
frankvnk 7:0f3095de6ea5 321 while((loop != 0) || ((seconds - oldseconds) < 3))
frankvnk 3:405462258899 322 {
frankvnk 3:405462258899 323 loop = tsi.readPercentage() * 100;
frankvnk 3:405462258899 324 if(loop != 0)
frankvnk 3:405462258899 325 {
frankvnk 7:0f3095de6ea5 326 oldseconds = seconds;
frankvnk 3:405462258899 327 temp = loop;
frankvnk 3:405462258899 328 }
frankvnk 3:405462258899 329 if(temp > 75)
frankvnk 3:405462258899 330 {
frankvnk 3:405462258899 331 BLUE_ON;
frankvnk 3:405462258899 332 RED_ON;
frankvnk 3:405462258899 333 GREEN_OFF;
frankvnk 3:405462258899 334 }
frankvnk 3:405462258899 335 else if(temp > 50)
frankvnk 3:405462258899 336 {
frankvnk 3:405462258899 337 BLUE_ON;
frankvnk 3:405462258899 338 GREEN_OFF;
frankvnk 3:405462258899 339 RED_OFF;
frankvnk 3:405462258899 340 }
frankvnk 3:405462258899 341 else if(temp > 25)
frankvnk 3:405462258899 342 {
frankvnk 3:405462258899 343 BLUE_OFF;
frankvnk 3:405462258899 344 GREEN_OFF;
frankvnk 3:405462258899 345 RED_ON;
frankvnk 3:405462258899 346 }
frankvnk 3:405462258899 347 else
frankvnk 3:405462258899 348 {
frankvnk 3:405462258899 349 BLUE_OFF;
frankvnk 3:405462258899 350 GREEN_ON;
frankvnk 3:405462258899 351 RED_OFF;
frankvnk 3:405462258899 352 }
frankvnk 3:405462258899 353 }
frankvnk 3:405462258899 354 BLUE_OFF;
frankvnk 3:405462258899 355 GREEN_OFF;
frankvnk 3:405462258899 356 RED_OFF;
frankvnk 3:405462258899 357
frankvnk 3:405462258899 358 server_running = 0;
frankvnk 3:405462258899 359 // Execute the user selected application
frankvnk 3:405462258899 360 if(temp > 75)
frankvnk 3:405462258899 361 { // Force SmartCOnfig
frankvnk 3:405462258899 362 server_running = 1;
frankvnk 3:405462258899 363 runSmartConfig = 1;
frankvnk 3:405462258899 364 initTCPIP();
frankvnk 3:405462258899 365 server_running = 1;
frankvnk 3:405462258899 366 RED_OFF;
frankvnk 3:405462258899 367 GREEN_OFF;
frankvnk 3:405462258899 368 BLUE_OFF;
frankvnk 3:405462258899 369 while(1)
frankvnk 3:405462258899 370 {
frankvnk 3:405462258899 371 printf("Reset system\n");
frankvnk 3:405462258899 372 GREEN_ON;
frankvnk 3:405462258899 373 secondFlag = 0;
frankvnk 3:405462258899 374 while(!secondFlag);
frankvnk 3:405462258899 375 secondFlag = 0;
frankvnk 3:405462258899 376 GREEN_OFF;
frankvnk 3:405462258899 377 while(!secondFlag);
frankvnk 3:405462258899 378 }
frankvnk 3:405462258899 379 } else SmartConfigProfilestored = SMART_CONFIG_SET;
frankvnk 3:405462258899 380
frankvnk 3:405462258899 381 RED_OFF;
frankvnk 3:405462258899 382 GREEN_OFF;
frankvnk 3:405462258899 383 BLUE_OFF;
frankvnk 3:405462258899 384
frankvnk 3:405462258899 385 // Start the selected application
frankvnk 3:405462258899 386 if(temp > 50)
frankvnk 3:405462258899 387 {
frankvnk 3:405462258899 388 compass_type = NED_COMPASS;
frankvnk 3:405462258899 389 init_eCompass();
frankvnk 3:405462258899 390 seconds = 0;
frankvnk 6:7c06ad22f206 391 demo_wifi_main(); // Run Webserver
frankvnk 3:405462258899 392 }
frankvnk 3:405462258899 393 if(temp > 25)
frankvnk 3:405462258899 394 {
frankvnk 3:405462258899 395 compass_type = NED_COMPASS;
frankvnk 3:405462258899 396 init_eCompass();
frankvnk 3:405462258899 397 seconds = 0;
frankvnk 6:7c06ad22f206 398 run_exosite(); // Send data to Exosite
frankvnk 3:405462258899 399 }
frankvnk 3:405462258899 400 init_eCompass();
frankvnk 3:405462258899 401 seconds = 0;
frankvnk 6:7c06ad22f206 402 runTCPIPserver(); // Run TCP/IP Connection to host
frankvnk 3:405462258899 403 }
frankvnk 3:405462258899 404
frankvnk 9:5d431f47ac93 405