Dual CANbus monitor and instrumentation cluster. Presently tuned for the Nissan Leaf EV.

Dependencies:   SPI_TFTx2_ILI9341 TFT_fonts TOUCH_TFTx2_ILI9341 mbed

Fork of CANary_corrupt by Tick Tock

After adding the LPC1768 platform, import as a program and do not select the "update to latest revision" box

User Guide

Eagle Schematic and Board design

/media/uploads/TickTock/canaryr6.zip

/media/uploads/TickTock/canary_sch.jpg

/media/uploads/TickTock/canaryr6brd.jpg

For LCD Rev 1.01:

/media/uploads/TickTock/lcdsch.jpg

For VCD Rev 2.00:

/media/uploads/TickTock/lcdr2.jpg

Parts List

qtyinstancepart #packagesupplierDescription
1BAT3Vhttp://www.ebay.com/itm/10x-CR2032-SMD-Battery-Holder-for-CR2032-Battery-/180938057979?pt=LH_DefaultDomain_0&hash=item2a20bfa8fbLithium 2032 coin battery holder
4C1-C4ECST1DC106R6032Tantalium capacitor 10uF
3FC1-FC3ZF1-20-01-T-WThttp://www.samtec.com/cable-systems/idc-ffc/ffc/zero-insertion.aspx20 conductor 1mm pitch flex cable connector (optional)
1FJ-20-R-08.00-4http://www.samtec.com/cable-systems/idc-ffc/ffc/zero-insertion.aspx8\" 20 conductor 1mm pitch flex connector, end reversed (optional)
2H1-H4(DON'T populate H1-H4 headers - solder mbed directly)
1H5http://www.ebay.com/itm/221186042943?ssPageName=STRK:MEWNX:IT&_trksid=p3984.m1497.l26491x12 .1\" pitch header (optional)
1H62x6 .1\" pitch header (optional)
2IC1,IC2VP230LMDSOP8http://www.ebay.com/itm/130488665247?ssPageName=STRK:MEWNX:IT&_trksid=p3984.m1497.l2649canbus transciever
1IC3LM1117-5VSOT2235V regulator
5JP*2 pin .1\" jumper header
1mbedLPC1768http://www.ebay.com/itm/200830573509?ssPageName=STRK:MEWNX:IT&_trksid=p3984.m1497.l2649mbed uC
2Q1,Q22N2222SOT23General purpose NPN transistor
1R1R393M120639K resistor
1R2R103M120610K resistor
4R4-R6R102M12061K resistor
1R3R500M120650 Ohm resistor
2TR1-TR5ZJYS81R5-2PL51TG01http://www.digikey.com/product-detail/en/ZJYS81R5-2PL51T-G01/445-2223-1-ND/765232CM Choke
1Z11N5340BGC1702-15http://www.ebay.com/itm/150878122425?ssPageName=STRK:MEWNX:IT&_trksid=p3984.m1497.l26496V, 5W Zener Diode
1Z1DC-DC conveterhttp://www.ebay.com/itm/251142727849?ssPageName=STRK:MEWNX:IT&_trksid=p3984.m1497.l264912V-7V, 3W DC-DC converter
1X1USBhttp://www.ebay.com/itm/New-Vertical-USB-2-0-A-pcb-connector-socket-USB-A-Type-/300553895292?pt=LH_DefaultDomain_0&hash=item45fa687d7cvertical USB connector
2LCD0,LCD1TFThttp://www.mikroe.com/add-on-boards/display/tft-proto/320x240 LCD with touch screen
1E0Enclosurehttp://www.shapeways.com/model/1077799/canary.html?li=user-profile&materialId=63d printed enclosure

Assembly

1) LCD Displays

I found ribbon cable is a nice way to organize the wires to the displays. There are two versions of the display and each must be wired differently. The original project used HW REV. 1.01. For that version, you'll need 12 conductors and I connected them in the following order:

1LED+
2LED-
3RST
4SDI
5WR/SCLK
6CS
7X+
8X-
9Y+
10Y-
11VDD
12GND

If, instead, you have HW REV 2.0, you will need 13 conductors with the following order:

1LED+
2LED-
3RST
4SDI
5RS (SCLK)
6WR (DC)
7CS
8X+
9X-
10Y+
11Y-
12VDD
13GND

First I connected all the GND connections (2 GND & IM0, IM1, IM3 for REV1.01 or 2 GND, RD, & IM0 for REV2.00). Do not connect the bottom GND until you have the ribbon cable connected. After making all the ribbon cable connections (connecting the GND of the ribbon cable to the bottom GND pad), solder the GND bar from the previous step to the back of the bottom GND connection. Finally, make a connection from the back side 3.3V pin to IM2 for REV1.01 or to IM1,IM2,&IM3 for REV2.00. Take a break and repeat for the second display.

Examples of REV1.01 boards:

/media/uploads/TickTock/lcdtop.jpg /media/uploads/TickTock/lcdbot.jpg

Examples of REV2.00:

/media/uploads/TickTock/rev2front.jpg /media/uploads/TickTock/rev2back.jpg

Once the two displays are complete combine all wires except CS0, CS1, X+, X-, Y+, and Y-. Connect X- of the left display to X+ of the right. Similarly connect Y- of the left display to Y+ of the right. Insulate any exposed wires.

2) PCB

Refer to the schematics to place all the components on the board. If you plan to install into the CANary 3D enclosure, DO NOT install the battery holder or the socket for the mbed and, instead, connect two wires to the VB and GND pads nearby. You will have to install the battery holder against the back wall to avoid interfering with the right-hand display and the mbed will have to be directly soldered. I have not found a socket with a low enough profile to fit in the space provided (depth of enclosure is limited by the space behind the center console). Also, I recommend keeping as much lead as possible on the Zener diode (bending it as shown to clear the back wall). Although it is operating well within parameters, the Zener gets quite hot during extended operation and the leads help dissipate the heat and keep it away from the PCB and other components.Update: Several Zeners have failed resulting in damage to some users boards so I recommend using a DC-DC converter instead to bring the 12V down to 7V.

/media/uploads/TickTock/pcbtop.jpg /media/uploads/TickTock/pcbbot.jpg

Once the PCB is populated, solder the LCDs to the PCB. CS0 connects to the right display and CS1 connects to the left. /media/uploads/TickTock/brddis.jpg

Update: The Zener diodes tended to fail after a few months so I am recommending removing them and replacing with a DC-DC converter. This will run cooler and waste less energy, too. To install, remove the left display panel to gain access to the Zener. From there, the Zener can be removed and it's pads used to connect to the DC-DC converter. I recommend setting the output voltage on the bench before installing since the trim pot is tricky to reach once installed. Set it to 7V. The input can be connected to the left pad previously occupied by the zener and the output can connect to the right. GND(-) can be connected to the bottom right pad on the 2x6 header below the flex cable connector. Make sure the GND wire lies flat so it doesn't interfere with the connection of the flex cable. /media/uploads/TickTock/dcdcinst2.jpg

Once soldered in place, the DC-DC converter can easily be mounted to the back wall with double sided tape above the battery holder. /media/uploads/TickTock/dcdcinst3.jpg

3) Testing

1)First step is to buzz out all connections from the LCDs to the pins in the main board
2)Next check the touch screen connections. On the main board, place an Ohm meter across X+ and X-. You should read 700 Ohms. Repeat for Y+ and Y-. Then test the resistance from X+ to Y+. With nothing touching the screens, it should read >100K Ohms and <1K when touching either screen.
3)When all connections are checked, solder in the mbed. Download and install the touch2 program http://mbed.org/users/TickTock/code/touch2/ to test the basic operation of the mbed and touch screens.
tips:
Touch screen is sensitive - excess flux on X+,X-,Y+,Y- connection on mbed can result in flakey operation
If touch is not working, double-check the LCD0_CS and LCD1_CS are not swapped. LCD0_CS must connect to the CS of the LCD that has X- & Y- connected to the mbed. LCD1_CS must connect to the CS of the LCD that has X+ & Y+ connected to the mbed.
4)Once touch2 works, it is time to connect to the OBD connector. I highly recommend double checking all connections from the OBD to the PCB with the cable in place before connecting to the Leaf. Buzz out all the pins in the OBS to make sure none are shorting to each other, Check that the 12V goes to the Zener (and nothing else) and the switched 12V to the resistor divider (and nothing else). Test the ground connection properly connects to ground and nothing else.
5)Once you are confident there are no shorts or wrong connections from the OBD connector, take a deep breath and plug it into your leaf. Touch2 program should come up and function. Unplug and install the latest CANary firmware. If you have the REV2.00 LCD boards, you will need to edit the precompile.h file in the TOUCH_TFTx2_w9341 library and set USE_ILI9341 to 1. Test all features before installing into the enclosure (gids, cellpair, menu system, logging) since installing and removing from the enclosure is a PITA.

/media/uploads/TickTock/pcbdone.jpg /media/uploads/TickTock/functioning.jpg

4) Enclosure

The 3D printer leaves a lot of powder behind - I used a strong spray of water to get it out of all the cracks. The enclosure comes with a rather rough finish. I recommend convincing yourself you like it, then simply lightly sand then paint before assembly. Sanding is very difficult - the nylon is very nicely fused and doesn't want to sand. I tried sandblasting and that didn't work either. I had some limited success with filler and then sanding, but only on the outside - it is too difficult to sand the face. /media/uploads/TickTock/enclosure.jpg

5) Final Assembly

Make sure you are well rested with lots of patience before attempting assembly. It is a puzzle figuring out how to get both displays and the PCB in place. Enclosure was too expensive for me to keep iterating to optimize for assembly. I ended up snipping the thin display posts shorter and using various tools to push the displays into place. Also, some USB connectors are taller than others. If you have one of the taller ones, you will have to deflect the back wall a bit while inserting the PCB (being careful not to bend the housing) to get it to it's opening in the back wall. Do use a screw in the provided post to secure the PCB as USB insertion will otherwise dislodge it.

I added an additional safety line which wraps around the center post to prevent the enclosure from becoming a projectile in the event of an accident. /media/uploads/TickTock/safety.jpg Installed: /media/uploads/TickTock/installed.jpg

Committer:
TickTock
Date:
Sun Mar 03 15:50:54 2013 +0000
Revision:
12:8e42d7ba8468
Parent:
11:e9d155aad4e2
Child:
13:62e0f7f39ff5
Repartitioned display and utility functions

Who changed what in which revision?

UserRevisionLine numberNew contents of line
TickTock 12:8e42d7ba8468 1 //#include "utility.h"
TickTock 12:8e42d7ba8468 2 //#include "displayModes.h"
TickTock 4:8d7759f4fe7a 3 //To Do:
TickTock 12:8e42d7ba8468 4 // * USB device detect
TickTock 12:8e42d7ba8468 5 // * config file on local fs with touchscreen calibration
TickTock 12:8e42d7ba8468 6 // * user programmable message decode
TickTock 12:8e42d7ba8468 7 // * brake trainer
TickTock 12:8e42d7ba8468 8 // * write and read the Mode Data
TickTock 12:8e42d7ba8468 9 // * Date entry config screen (keypad)
TickTock 12:8e42d7ba8468 10 // * auto-poll option for cellpair data
TickTock 12:8e42d7ba8468 11 // * cellpair histogram
TickTock 12:8e42d7ba8468 12 // *
TickTock 12:8e42d7ba8468 13 #include "mbed.h"
TickTock 12:8e42d7ba8468 14 #include "CAN.h"
TickTock 12:8e42d7ba8468 15 #include "beep.h"
TickTock 12:8e42d7ba8468 16 #include "MSCFileSystem.h"
TickTock 12:8e42d7ba8468 17 #include "PowerControl.h"
TickTock 12:8e42d7ba8468 18 #include "EthernetPowerControl.h"
TickTock 12:8e42d7ba8468 19 #include "utility.h"
TickTock 12:8e42d7ba8468 20 #include "displayModes.h"
TickTock 4:8d7759f4fe7a 21
TickTock 0:1596b8644523 22 int main() {
TickTock 2:71b1999a8ea5 23 int readPointer=0;
TickTock 4:8d7759f4fe7a 24 char sTemp[40];
TickTock 2:71b1999a8ea5 25 unsigned long secs;
TickTock 7:17bf9ceaf0aa 26 char i,j,display=0;
TickTock 7:17bf9ceaf0aa 27 point lastTouch;
TickTock 7:17bf9ceaf0aa 28
TickTock 8:67eed72f3e10 29 can1.monitor(true); // set to snoop mode
TickTock 8:67eed72f3e10 30 can2.monitor(true); // set to snoop mode
TickTock 2:71b1999a8ea5 31 can1.frequency(500000);
TickTock 2:71b1999a8ea5 32 can2.frequency(500000);
TickTock 7:17bf9ceaf0aa 33 can1SleepMode = 1; // Turn on Monitor_only Mode
TickTock 7:17bf9ceaf0aa 34 can2SleepMode = 1; // Turn on Monitor_only Mode
TickTock 0:1596b8644523 35 can1.attach(&recieve1);
TickTock 0:1596b8644523 36 can2.attach(&recieve2);
TickTock 4:8d7759f4fe7a 37
TickTock 3:3e879b043bc5 38 tt.set_orientation(1);
TickTock 3:3e879b043bc5 39 tt.set_font((unsigned char*) Arial12x12_prop); // select the font
TickTock 4:8d7759f4fe7a 40 tt.set_display(2); // select right display
TickTock 4:8d7759f4fe7a 41 tt.background(Black);
TickTock 3:3e879b043bc5 42 tt.cls();
TickTock 3:3e879b043bc5 43 tt.set_display(0); // select left display
TickTock 12:8e42d7ba8468 44 if(true){ // bypass calibration
TickTock 12:8e42d7ba8468 45 tt.setcal(5570, 34030, 80, 108, 33700, 5780, 82, 108, 32500);
TickTock 12:8e42d7ba8468 46 } else { // calibrate the touch
TickTock 12:8e42d7ba8468 47 tt.calibrate();
TickTock 12:8e42d7ba8468 48 }
TickTock 1:9dcd70c32180 49 tt.claim(stdout); // send stdout to the TFT display
TickTock 12:8e42d7ba8468 50 touchpad.rise(&touch_ISR);
TickTock 4:8d7759f4fe7a 51 tt.wfi(); // enable interrupt on touch
TickTock 7:17bf9ceaf0aa 52 dled = 0.8; // turn on display LED 80%
TickTock 2:71b1999a8ea5 53 timer.start() ;
TickTock 2:71b1999a8ea5 54 RTC_Init(); // start the RTC Interrupts that sync the timer
TickTock 1:9dcd70c32180 55 struct tm t; // pointer to a static tm structure
TickTock 7:17bf9ceaf0aa 56 //NVIC_SetPriority(TIMER3_IRQn, 1); //set ticker priority
TickTock 7:17bf9ceaf0aa 57 //NVIC_SetPriority(CAN_IRQn, 2); //higher than can (so RTC sync works)
TickTock 1:9dcd70c32180 58 seconds = time(NULL);
TickTock 1:9dcd70c32180 59 t = *localtime(&seconds) ;
TickTock 2:71b1999a8ea5 60 strftime(sTemp, 32, "%a %m/%d/%Y %X", &t);
TickTock 3:3e879b043bc5 61 //tt.locate(0,0);
TickTock 3:3e879b043bc5 62 //printf("\nCurrent time : %s\n", sTemp); // DAY MM/DD/YYYY HH:MM:SS
TickTock 1:9dcd70c32180 63
TickTock 1:9dcd70c32180 64 // is it a date before 2012 ?
TickTock 1:9dcd70c32180 65 if ((t.tm_year + 1900) < 2012 ) {
TickTock 1:9dcd70c32180 66 // before 2012, so the RTC probably lost power
TickTock 1:9dcd70c32180 67 // So, set a near-recent date in 2012
TickTock 1:9dcd70c32180 68
TickTock 1:9dcd70c32180 69 // enter people-values here
TickTock 2:71b1999a8ea5 70 t.tm_year = 2013 ; // 28 May 2012
TickTock 2:71b1999a8ea5 71 t.tm_mon = 3 ; // 1 to 12
TickTock 2:71b1999a8ea5 72 t.tm_mday = 5;
TickTock 1:9dcd70c32180 73 t.tm_hour = 12; // 12:59:56 PM (after noon)
TickTock 1:9dcd70c32180 74 t.tm_min = 59;
TickTock 1:9dcd70c32180 75 t.tm_sec = 56;
TickTock 1:9dcd70c32180 76
TickTock 1:9dcd70c32180 77 // adjust for tm structure required values
TickTock 1:9dcd70c32180 78 t.tm_year = t.tm_year - 1900;
TickTock 1:9dcd70c32180 79 t.tm_mon = t.tm_mon - 1;
TickTock 1:9dcd70c32180 80
TickTock 1:9dcd70c32180 81 // set the RTC
TickTock 1:9dcd70c32180 82 set_time(mktime(&t));
TickTock 1:9dcd70c32180 83 seconds = time(NULL);
TickTock 1:9dcd70c32180 84
TickTock 1:9dcd70c32180 85 // printf("Set RTC to:\n" );
TickTock 1:9dcd70c32180 86 // strftime(sTemp, 32, "%a %m/%d/%Y %X", localtime(&seconds));
TickTock 1:9dcd70c32180 87 // printf("%s\n", sTemp); // DAY MM/DD/YYYY HH:MM:SS
TickTock 0:1596b8644523 88 }
TickTock 12:8e42d7ba8468 89 //ticker.attach(&tickerISR, 60); //poll cellpair data every minute
TickTock 2:71b1999a8ea5 90 while (true) {
TickTock 4:8d7759f4fe7a 91 if (!logOpen) { // Open new file if one is not already open
TickTock 7:17bf9ceaf0aa 92 if(logEn){ //logging enable
TickTock 7:17bf9ceaf0aa 93 seconds = time(NULL);
TickTock 7:17bf9ceaf0aa 94 t = *localtime(&seconds) ;
TickTock 7:17bf9ceaf0aa 95 strftime(fileName, 32, "/fs/%m%d%H%M.alc", &t); //mmddhhmm.alc
TickTock 7:17bf9ceaf0aa 96 sprintf(sTemp,"Using file %s\n",fileName);
TickTock 4:8d7759f4fe7a 97 logMsg(sTemp);
TickTock 7:17bf9ceaf0aa 98 file = fopen(fileName, "ab");
TickTock 7:17bf9ceaf0aa 99
TickTock 7:17bf9ceaf0aa 100 if(file==NULL){
TickTock 7:17bf9ceaf0aa 101 sprintf(sTemp,"\nUnable to open %s\n\n\n\n",fileName);
TickTock 7:17bf9ceaf0aa 102 logMsg(sTemp);
TickTock 7:17bf9ceaf0aa 103 logEn=false;
TickTock 7:17bf9ceaf0aa 104 spkr.beep(1000,0.2);
TickTock 7:17bf9ceaf0aa 105 } else {
TickTock 7:17bf9ceaf0aa 106 logOpen = true;
TickTock 7:17bf9ceaf0aa 107 readPointer=writePointer;
TickTock 7:17bf9ceaf0aa 108 sprintf(sTemp,"Starting Can Log %s\n",fileName);
TickTock 7:17bf9ceaf0aa 109 logMsg(sTemp);
TickTock 7:17bf9ceaf0aa 110 logTS();
TickTock 7:17bf9ceaf0aa 111 spkr.beep(2000,0.2);
TickTock 7:17bf9ceaf0aa 112 }
TickTock 7:17bf9ceaf0aa 113 }//logging enabled
TickTock 4:8d7759f4fe7a 114 } else { // if (!logOpen)
TickTock 7:17bf9ceaf0aa 115 if (((writePointer+maxBufLen-readPointer)%maxBufLen)>(maxBufLen/16)||canIdle) {
TickTock 7:17bf9ceaf0aa 116 // Dump buffer if > 1/16 full or canbus has stopped
TickTock 7:17bf9ceaf0aa 117 if (file == NULL) {
TickTock 7:17bf9ceaf0aa 118 logOpen = false;
TickTock 7:17bf9ceaf0aa 119 sprintf(sTemp,"Failed to append log file.\n\n");
TickTock 7:17bf9ceaf0aa 120 spkr.beep(1000,0.2);
TickTock 7:17bf9ceaf0aa 121 logMsg(sTemp);
TickTock 7:17bf9ceaf0aa 122 logEn=false;
TickTock 7:17bf9ceaf0aa 123 } else {
TickTock 7:17bf9ceaf0aa 124 while (readPointer != writePointer) {
TickTock 7:17bf9ceaf0aa 125 for (j = 0; j<13; j++){
TickTock 7:17bf9ceaf0aa 126 fprintf(file,"%c",writeBuffer[readPointer][j]);
TickTock 4:8d7759f4fe7a 127 }
TickTock 7:17bf9ceaf0aa 128 if(++readPointer >= maxBufLen)
TickTock 7:17bf9ceaf0aa 129 readPointer=0;
TickTock 4:8d7759f4fe7a 130 }
TickTock 7:17bf9ceaf0aa 131 led4 = !led4;
TickTock 7:17bf9ceaf0aa 132 }
TickTock 7:17bf9ceaf0aa 133 } // if > 1/16 full, canbus has stopped, or PB1 pressed
TickTock 4:8d7759f4fe7a 134 } // if logOpen
TickTock 4:8d7759f4fe7a 135 if (canIdle&&userIdle) { // canbus idle --> sleep to save power
TickTock 4:8d7759f4fe7a 136 if (logOpen){
TickTock 7:17bf9ceaf0aa 137 fclose(file);
TickTock 7:17bf9ceaf0aa 138 } // if (logOpen)*/
TickTock 4:8d7759f4fe7a 139 sprintf(sTemp,"Putting uC to sleep.\n");
TickTock 4:8d7759f4fe7a 140 logMsg(sTemp);
TickTock 4:8d7759f4fe7a 141 //LPC_RTC->CIIR=0x00; // block RTC interrupts
TickTock 4:8d7759f4fe7a 142 led1=0;
TickTock 4:8d7759f4fe7a 143 led2=0;
TickTock 4:8d7759f4fe7a 144 led3=0;
TickTock 4:8d7759f4fe7a 145 led4=0;
TickTock 4:8d7759f4fe7a 146 dled=0; // turn off display
TickTock 4:8d7759f4fe7a 147 secs = time(NULL); // seconds past 12:00:00 AM 1 Jan 1900
TickTock 4:8d7759f4fe7a 148 while (secsNoMsg>canTimeout && secsNoTouch>userTimeout) {
TickTock 4:8d7759f4fe7a 149 //DeepPowerDown();
TickTock 12:8e42d7ba8468 150 tt.wfi(); //enable touch interrupt
TickTock 7:17bf9ceaf0aa 151 __wfi(); // freeze CPU and wait for interrupt (from canbus or touch)
TickTock 7:17bf9ceaf0aa 152 //Sleep();
TickTock 4:8d7759f4fe7a 153 //DeepPowerDown();
TickTock 4:8d7759f4fe7a 154 }
TickTock 4:8d7759f4fe7a 155 canIdle=secsNoMsg>canTimeout;
TickTock 4:8d7759f4fe7a 156 userIdle=userIdle>userTimeout;
TickTock 7:17bf9ceaf0aa 157 dled=0.8; // turn on display LED
TickTock 4:8d7759f4fe7a 158 sprintf(sTemp,"Waking uC.\n");
TickTock 4:8d7759f4fe7a 159 logMsg(sTemp);
TickTock 4:8d7759f4fe7a 160 if (time(NULL)>(secs+1800)) {
TickTock 4:8d7759f4fe7a 161 logOpen = false; // Start new file if asleep for more than 30 minutes
TickTock 4:8d7759f4fe7a 162 if (secsNoTouch>100) secsNoTouch = 100; // also mostly reset user Idle counter
TickTock 7:17bf9ceaf0aa 163 } else if (false){ // insert timestamp on each wake if logging enabled (disabled for now)
TickTock 7:17bf9ceaf0aa 164 file = fopen(fileName, "ab");
TickTock 4:8d7759f4fe7a 165 logTS();
TickTock 4:8d7759f4fe7a 166 }
TickTock 4:8d7759f4fe7a 167 } // if idle
TickTock 4:8d7759f4fe7a 168
TickTock 12:8e42d7ba8468 169 if(touched){
TickTock 7:17bf9ceaf0aa 170 lastTouch = tt.get_touch();
TickTock 7:17bf9ceaf0aa 171 lastTouch = tt.to_pixel(lastTouch); // convert to pixel pos
TickTock 12:8e42d7ba8468 172 touched = false; // clear interrupt flag
TickTock 7:17bf9ceaf0aa 173 }
TickTock 4:8d7759f4fe7a 174 if (!userIdle) {
TickTock 4:8d7759f4fe7a 175 if (secsNoTouch<2) {// Recently touched
TickTock 4:8d7759f4fe7a 176 secsNoTouch +=2; // increment to prevent double touch
TickTock 4:8d7759f4fe7a 177 if (lastTouch.x>320){
TickTock 4:8d7759f4fe7a 178 i=1;
TickTock 4:8d7759f4fe7a 179 lastTouch.x-=320;
TickTock 4:8d7759f4fe7a 180 } else {
TickTock 4:8d7759f4fe7a 181 i=0;
TickTock 4:8d7759f4fe7a 182 }
TickTock 7:17bf9ceaf0aa 183 if (lastTouch.y>btn11y1 && lastTouch.y<btn11y2) {
TickTock 5:ebf6fa994b78 184 if(sMode==1){
TickTock 5:ebf6fa994b78 185 if (lastTouch.x>btn31x1 && lastTouch.x<btn31x2) {
TickTock 12:8e42d7ba8468 186 dMode[i]=dMode[i]>0?dMode[i]-1:maxScreens;
TickTock 5:ebf6fa994b78 187 } else if (lastTouch.x>btn32x1 && lastTouch.x<btn32x2) {
TickTock 5:ebf6fa994b78 188 secsNoTouch = userTimeout; // immediately exit config mode
TickTock 5:ebf6fa994b78 189 } else if (lastTouch.x>btn33x1 && lastTouch.x<btn33x2) {
TickTock 12:8e42d7ba8468 190 dMode[i]=dMode[i]<maxScreens?dMode[i]+1:0;
TickTock 5:ebf6fa994b78 191 }
TickTock 5:ebf6fa994b78 192 } else sMode=1;
TickTock 5:ebf6fa994b78 193 } else {
TickTock 12:8e42d7ba8468 194 if (dMode[i]==monitorScreen||dMode[i]==changedScreen) {
TickTock 7:17bf9ceaf0aa 195 if (lastTouch.x>btn31x1 && lastTouch.x<btn31x2) {
TickTock 5:ebf6fa994b78 196 indexOffset=indexOffset>4?indexOffset-4:1;
TickTock 7:17bf9ceaf0aa 197 } else if (lastTouch.x>btn32x1 && lastTouch.x<btn32x2) {
TickTock 7:17bf9ceaf0aa 198 for(j=0;j<100;j++) msgChanged[j]=0; // clear changed data
TickTock 7:17bf9ceaf0aa 199 lastDMode[i]=99;//force refresh
TickTock 7:17bf9ceaf0aa 200 } else if (lastTouch.x>btn33x1 && lastTouch.x<btn33x2) {
TickTock 5:ebf6fa994b78 201 indexOffset=indexOffset<77?indexOffset+4:80;
TickTock 7:17bf9ceaf0aa 202 }
TickTock 12:8e42d7ba8468 203 } else if (dMode[i]==cpScreen) {
TickTock 8:67eed72f3e10 204 if (lastTouch.x>btn32x1 && lastTouch.x<btn32x2){
TickTock 12:8e42d7ba8468 205 pollCP=true;
TickTock 8:67eed72f3e10 206 }
TickTock 2:71b1999a8ea5 207 }
TickTock 8:67eed72f3e10 208 } //top of screen
TickTock 4:8d7759f4fe7a 209 }
TickTock 4:8d7759f4fe7a 210 } else { // userIdle
TickTock 8:67eed72f3e10 211 if(sMode==1){
TickTock 8:67eed72f3e10 212 sMode=0;
TickTock 8:67eed72f3e10 213 lastDMode[0]=99;
TickTock 8:67eed72f3e10 214 lastDMode[1]=99;
TickTock 8:67eed72f3e10 215 }
TickTock 4:8d7759f4fe7a 216 }
TickTock 12:8e42d7ba8468 217 if(pollCP){
TickTock 12:8e42d7ba8468 218 sendCPreq(); // send cellpair data request.
TickTock 12:8e42d7ba8468 219 wait_ms(16);
TickTock 12:8e42d7ba8468 220 sendTreq(); //send temperature request
TickTock 12:8e42d7ba8468 221 wait_ms(16);
TickTock 12:8e42d7ba8468 222 pollCP=false;
TickTock 12:8e42d7ba8468 223 showCP=true;
TickTock 12:8e42d7ba8468 224 }
TickTock 7:17bf9ceaf0aa 225 display=display<1?display+1:0; // toggle display
TickTock 7:17bf9ceaf0aa 226 updateDisplay(display);
TickTock 7:17bf9ceaf0aa 227 //wait(0.1); // We get >2K messages per second
TickTock 2:71b1999a8ea5 228 } //while (true)
TickTock 0:1596b8644523 229 }