| 1 | #include "macros.h"
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| 2 | #include <avr/io.h>
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| 3 | /*
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| 4 | Mockup for the PLD of Volker Commichaus
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| 5 | Bias Crate Controller of the FACt Bias
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| 6 | voltage supply system
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| 7 |
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| 8 | Interface to FT245R or
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| 9 | something that behaves similarly:
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| 10 |
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| 11 | I am not going to use the Arduino specific digital input
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| 12 | and digital output routines anymore . they are slow and stupid.
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| 13 | But I like Serial.println very much.... so :-)
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| 14 |
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| 15 |
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| 16 |
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| 17 | Digital I/O:
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| 18 |
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| 19 | ATmega: Net Name : Int/Out/Bi : mnemonic
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| 20 | ---------------------------------------------------------------------
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| 21 | PC0 : RXF# : IN : Read from FIFO possible
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| 22 | PC1 : TXE# : IN : transmit enable
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| 23 | PC2 : RD# : OUT : Read from 'FIFO'
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| 24 | PC3 : WR : OUT : Write to 'FIFO'
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| 25 | PC4 : : IN : HV down request button - low active
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| 26 | PD2 : D0 : BI
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| 27 | PD3 : D1 : BI
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| 28 | PD4 : D2 : BI
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| 29 | PD5 : D3 : BI
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| 30 | PD6 : D4 : BI : Data
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| 31 | PD7 : D5 : BI
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| 32 | PB0 : D6 : BI
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| 33 | PB1 : D7 : BI
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| 34 | */
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| 35 | #define WR PC3
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| 36 | #define RD PC2
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| 37 | #define TXE PC1
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| 38 | #define RXF PC0
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| 39 | #define BUTTON PC4
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| 40 | /*
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| 41 | -----------------------------------------------------------------------------
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| 42 |
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| 43 | Analog Inputs:
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| 44 |
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| 45 | This Software is intended to be run on an Arduino-like board.
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| 46 | 12 of the digi I/Os are used to communicate with the outside world,
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| 47 | which is the FTDI245R in the first place.
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| 48 | The FTDI245R interconnects this mockup via USB with a PC.
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| 49 | This mockup will *not* provide any real functionality, as
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| 50 | the PLD in the CrateController does. It will just fake this
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| 51 | functionality.
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| 52 | So when it is ordered to set the voltage to e.g. 80V,
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| 53 | it will store, that it was ordered so.
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| 54 | If later it is asked to set the voltage to 10V, with a single
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| 55 | command, it will endure a fake 'trip'.
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| 56 | Everything, which happens, will be output via Serial Interface.
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| 57 |
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| 58 | It is not intended to input anything via the serial interface,
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| 59 | since this is not possible in reality anyway.
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| 60 | */
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| 61 |
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| 62 | // comment this line out, if you want to skip the Serial
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| 63 | // Port entirely
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| 64 | // #define SERIAL_ON
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| 65 |
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| 66 | #define DATABUSWIDTH 8
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| 67 | #define MAXBOARDS 13
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| 68 | #define EXISTINGBOARDS 10
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| 69 | #define CHPERBOARD 32
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| 70 | #define NUMCHANNELS EXISTINGBOARDS*CHPERBOARD
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| 71 |
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| 72 | #define BUTTON_PRESSED_BIT_POS 4
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| 73 | #define DANGEROUSSTEP 200
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| 74 |
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| 75 | #define REFFGAPD 3
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| 76 |
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| 77 |
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| 78 |
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| 79 |
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| 80 | unsigned char message[3];
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| 81 | unsigned char messageindex=0;
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| 82 | unsigned char answer[3];
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| 83 | unsigned char answerindex=0;
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| 84 |
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| 85 | unsigned char overcurrentbitmap[NUMCHANNELS/8 ];
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| 86 | unsigned short voltages[NUMCHANNELS];
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| 87 | unsigned short setvoltage =0;
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| 88 | unsigned char statusbit =0;
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| 89 | unsigned char w = 0;
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| 90 | unsigned short current =0;
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| 91 | unsigned char errorbits = 0;
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| 92 | unsigned char board = 0;
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| 93 | unsigned char channel = 0;
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| 94 |
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| 95 | unsigned char timeoutcounter =0;
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| 96 |
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| 97 | typedef enum {
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| 98 | state_receiving,
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| 99 | state_parsing,
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| 100 | state_system_reset,
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| 101 | state_read_status,
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| 102 | state_global_set,
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| 103 | state_set_voltage,
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| 104 | state_sending
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| 105 | } state_t;
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| 106 |
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| 107 | state_t last_state = state_set_voltage;
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| 108 | state_t state = state_receiving;
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| 109 | unsigned char command =0;
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| 110 |
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| 111 |
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| 112 | void setup(){
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| 113 |
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| 114 | DDRC |= 1<<PC5;
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| 115 | PORTC ^= 1<<PC5;
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| 116 | PORTC ^= 1<<PC5;
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| 117 | #ifdef SERIAL_ON
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| 118 | Serial.begin(9600);
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| 119 | #endif
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| 120 |
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| 121 | // WR and RD are outputs
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| 122 | DDRC |= (1<<WR) | (1<<RD);
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| 123 | // WR idles low
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| 124 | PORTC &= ~1<<WR;
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| 125 | // RD idles high
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| 126 | PORTC |= (1<<RD);
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| 127 |
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| 128 | // RXF, TXE and BUTTON are inputs
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| 129 | DDRC &= ~( (1<<TXE) | (1<<RXF) | (1<<BUTTON) );
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| 130 |
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| 131 | // TXE and RXF should be held high by the FT245 or Arduino anyway,
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| 132 | // but for convenience
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| 133 | // I pull them up, with ~20kohm reistors.
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| 134 |
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| 135 | PORTC |= 1<<TXE;
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| 136 | PORTC |= 1<<RXF;
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| 137 |
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| 138 | // The button should be low active.
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| 139 | // so I need a pull up here as well.
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| 140 | PORTC |= 1<< BUTTON;
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| 141 |
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| 142 | // this affects PD2..PD7, PB0 and PB1.
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| 143 | //MakeDataBusInput ();
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| 144 | MAKEDATABUSINPUT;
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| 145 |
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| 146 | // for security, all unused pins I set to inputs, but
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| 147 | // this might be anyway the atmega default case...
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| 148 | //DDRC &= ~( (1<<PC5) | (1<<PC6) | (1<<PC7) ); //arduino states: PC7 is not defined in this scope
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| 149 | DDRC &= ~( (1<<PC5) | (1<<PC6) );
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| 150 | DDRC |= 1<<PC5;
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| 151 | DDRB &= ~( (1<<PB2) | (1<<PB3) | (1<<PB4) );
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| 152 |
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| 153 | // to PB5 a LED is connected
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| 154 | DDRB |= 1<<PB5;
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| 155 | // this LED is high active ... I switch it on & off quickly
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| 156 | PORTB |= 1<<PB5;
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| 157 | delay (100);
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| 158 | PORTB &= ~(1<<PB5);
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| 159 |
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| 160 | #ifdef SERIAL_ON
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| 161 | Serial.println("\n\nwelcome to the arduino FACT bias crate controller");
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| 162 | #endif
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| 163 |
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| 164 | for (unsigned short channel = 0; channel < NUMCHANNELS; channel++)
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| 165 | voltages[channel] = 0;
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| 166 | for (unsigned short channel = 0; channel < NUMCHANNELS/8; channel++)
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| 167 | overcurrentbitmap[channel] = 0x00;
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| 168 |
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| 169 | /*
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| 170 | delay (1000);
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| 171 | delay (1000);
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| 172 | delay (1000);
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| 173 | delay (1000);
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| 174 | delay (1000);
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| 175 | delay (1000);
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| 176 | delay (1000);
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| 177 | delay (1000);
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| 178 | delay (1000);
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| 179 | delay (1000);
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| 180 | delay (1000);
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| 181 | delay (1000);
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| 182 | delay (1000);
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| 183 | delay (1000);
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| 184 | delay (1000);
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| 185 | delay (1000);
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| 186 | delay (1000);
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| 187 | delay (1000);
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| 188 | delay (1000);
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| 189 | delay (1000);
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| 190 | delay (1000);
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| 191 | delay (1000);
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| 192 | delay (1000);
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| 193 | */
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| 194 | PORTC ^= 1<<PC5;
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| 195 | PORTC ^= 1<<PC5;
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| 196 | PORTC ^= 1<<PC5;
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| 197 | PORTC ^= 1<<PC5;
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| 198 | }
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| 199 |
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| 200 | void loop(){
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| 201 | PORTC ^= 1<<PC5;
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| 202 | PORTC ^= 1<<PC5;
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| 203 |
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| 204 | #ifdef SERIAL_ON
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| 205 | if (state != last_state){
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| 206 | Serial.print("state: ");
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| 207 | switch (state){
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| 208 | case state_receiving:
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| 209 | Serial.println("receiving");
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| 210 | break;
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| 211 | case state_parsing:
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| 212 | Serial.println("parsing");
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| 213 | break;
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| 214 | case state_system_reset:
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| 215 | Serial.println("sys reset");
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| 216 | break;
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| 217 | case state_read_status:
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| 218 | Serial.println("read stat");
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| 219 | break;
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| 220 | case state_global_set:
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| 221 | Serial.println("global set");
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| 222 | break;
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| 223 | case state_set_voltage:
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| 224 | Serial.println("set volt");
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| 225 | break;
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| 226 | case state_sending:
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| 227 | Serial.println("sending");
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| 228 | break;
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| 229 | }
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| 230 | }
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| 231 | last_state = state;
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| 232 | #endif
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| 233 |
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| 234 | switch( state ) {
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| 235 | case state_receiving:
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| 236 | //PORTB |= 1<<PB5;
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| 237 | //delay (100);
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| 238 | //PORTB &= ~(1<<PB5);
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| 239 | // empfange bytes vom FT245 und
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| 240 | // schreibe diese in ein byte-array der Länge 3
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| 241 | // wenn vollständig, dann gehe in zustand: state_parsing
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| 242 | if ( ISRXFLOW ){
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| 243 | // read one byte
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| 244 | CLRBIT(PORTC, RD);
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| 245 | message[messageindex]=READFROMDATABUS;
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| 246 | SETBIT(PORTC, RD);
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| 247 | messageindex++;
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| 248 | while ( ISRXFLOW ){}
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| 249 | }
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| 250 | if (messageindex == 3) {
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| 251 | messageindex = 0;
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| 252 | state = state_parsing;
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| 253 | }
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| 254 | break;
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| 255 |
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| 256 | case state_parsing:
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| 257 | PORTC ^= 1<<PC5;
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| 258 | PORTC ^= 1<<PC5;
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| 259 | #ifdef SERIAL_ON
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| 260 | for (int i=0; i<3; i++){
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| 261 | Serial.print(message[i], HEX);
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| 262 | if (i<2)
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| 263 | Serial.print(" ");
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| 264 | else
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| 265 | Serial.println("");
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| 266 | }
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| 267 | #endif
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| 268 | // schau in das 3-byte array und finde heraus, was zu tun ist.
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| 269 | // je nachdem was zu tun ist, wird die state variable anders gesetzt.
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| 270 | // die message wird nicht verändert .. also die ersten bits nicht weggeschnitten oder so.
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| 271 | //
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| 272 | command = (message[0]) >> 5;
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| 273 | // das & 0x07 ist hier garnicht unbedingt notwendig, aber
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| 274 | // es stellt sicher, dass ich mit case 0 bis case 7
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| 275 | // wirklich alle cases bearbeitet habe.. dann brauch
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| 276 | // ich keinen default case.
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| 277 | switch ( command & 0x07 ) {
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| 278 | case 0:
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| 279 | // System Reset
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| 280 | state = state_system_reset;
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| 281 | break;
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| 282 |
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| 283 | case 1:
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| 284 | // Read Channel Status & Current
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| 285 | state = state_read_status;
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| 286 | break;
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| 287 |
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| 288 | case 2:
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| 289 | // Global Set
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| 290 | state = state_global_set;
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| 291 | break;
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| 292 |
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| 293 | case 3:
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| 294 | // Channel Set to voltage
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| 295 | state = state_set_voltage;
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| 296 | break;
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| 297 |
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| 298 | default:
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| 299 | // TODO Alarm, das ist unfug, aber nur zum testen
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| 300 | answer[0] = 0xff ;
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| 301 | answer[1] = 0x00 ;
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| 302 | answer[2] = 0xff ;
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| 303 | state = state_sending;
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| 304 | break;
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| 305 | }
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| 306 | //state = state_receiving;
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| 307 | break;
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| 308 |
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| 309 | case state_system_reset:
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| 310 | PORTC ^= 1<<PC5;
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| 311 | PORTC ^= 1<<PC5;
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| 312 | PORTC ^= 1<<PC5;
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| 313 | PORTC ^= 1<<PC5;
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| 314 | w = (w+1)%8;
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| 315 | // Die message hat also den Befehl 'crate_reset' enthalten
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| 316 | // Also werde ich mal alles resetten, was ich so weiss
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| 317 | // Ist aber wichtig, nochmal nach zu lesen, was eigentlich
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| 318 | // wirklich resetted werden muss.
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| 319 | //
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| 320 | // System reset setzt nicht die Spannungen auf null
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| 321 | // for (unsigned short channel = 0; channel < NUMCHANNELS; channel++)
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| 322 | // voltages[channel] = 0;
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| 323 | for (unsigned short channel = 0; channel < NUMCHANNELS/8; channel++)
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| 324 | overcurrentbitmap[channel] = 0x00;
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| 325 | answer[0] = w<<4;
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| 326 | answer[1] = 0x00;
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| 327 | answer[2] = 0x00;
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| 328 | state = state_sending;
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| 329 | break;
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| 330 |
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| 331 | case state_read_status:
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| 332 | PORTC ^= 1<<PC5;
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| 333 | PORTC ^= 1<<PC5;
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| 334 | PORTC ^= 1<<PC5;
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| 335 | PORTC ^= 1<<PC5;
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| 336 | PORTC ^= 1<<PC5;
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| 337 | PORTC ^= 1<<PC5;
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| 338 | w = (w+1)%8;
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| 339 | // Hier hat der User, nach dem status eines bestimmten
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| 340 | // boards und channels gefragt. Wo nach wurde gefragt?
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| 341 | board = (message[0] & 0x1e) >> 1;
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| 342 | channel = ((message[0] & 0x01) << 4) | ((message[1] & 0xf0) >> 4) ;
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| 343 | // Jetzt ist interessant, ob das angefragte board vorhanden ist
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| 344 | if (board < EXISTINGBOARDS){ // board exists
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| 345 | // we calculate the current I=U/R
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| 346 | current = voltages[board * CHPERBOARD + channel] / REFFGAPD;
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| 347 | answer[0] = (statusbit<<7) | (w<<4) | (unsigned char)((current>>8) & 0x000f);
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| 348 | answer[1] = (unsigned char)(current & 0x00ff);
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| 349 | answer[2] = (errorbits<<4) | (board&0x0f);
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| 350 | } else { // board is not exisiting
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| 351 | answer[0] = w<<4;
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| 352 | answer[1] = 0x00;
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| 353 | answer[2] = 0xf0 | (board&0x0f);
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| 354 | }
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| 355 | state = state_sending;
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| 356 | break;
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| 357 |
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| 358 |
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| 359 | case state_set_voltage:
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| 360 | PORTC ^= 1<<PC5;
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| 361 | PORTC ^= 1<<PC5;
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| 362 | PORTC ^= 1<<PC5;
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| 363 | PORTC ^= 1<<PC5;
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| 364 | PORTC ^= 1<<PC5;
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| 365 | PORTC ^= 1<<PC5;
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| 366 | PORTC ^= 1<<PC5;
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| 367 | PORTC ^= 1<<PC5;
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| 368 | w = (w+1)%8;
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| 369 | board = (message[0] & 0x1e) >> 1;
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| 370 | channel = ((message[0] & 0x01) << 4) | ((message[1] & 0xf0) >> 4) ;
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| 371 | errorbits = 0;
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| 372 | statusbit = 0;
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| 373 |
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| 374 | errorbits |= ISBUTTONPRESSED<<(BUTTON_PRESSED_BIT_POS);
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| 375 |
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| 376 | if ( board < EXISTINGBOARDS){
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| 377 | setvoltage = ((unsigned short)*message+1) & 0x0fff;
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| 378 | if ( abs(voltages[board*CHPERBOARD + channel] - setvoltage) > DANGEROUSSTEP ) {// overcurrent!
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| 379 | overcurrentbitmap[board*CHPERBOARD/8+channel/8] |= 1<<channel%8;
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| 380 | statusbit = 1;
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| 381 | }
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| 382 | voltages[board*CHPERBOARD + channel] = setvoltage;
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| 383 | current = voltages[board * CHPERBOARD + channel] / REFFGAPD;
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| 384 | } else {
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| 385 | current = 0;
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| 386 | errorbits |= 0x07;
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| 387 | }
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| 388 |
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| 389 |
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| 390 | answer[0] = statusbit<<7 | w<<4 | (unsigned char)((current>>8) & 0x000f);
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| 391 | answer[1] = (unsigned char)(current & 0x00ff);
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| 392 | answer[2] = errorbits<<4 | (board&0x0f);
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| 393 |
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| 394 | state = state_sending;
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| 395 | break;
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| 396 |
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| 397 | case state_global_set:
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| 398 | PORTC ^= 1<<PC5;
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| 399 | PORTC ^= 1<<PC5;
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| 400 | PORTC ^= 1<<PC5;
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| 401 | PORTC ^= 1<<PC5;
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| 402 | PORTC ^= 1<<PC5;
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| 403 | PORTC ^= 1<<PC5;
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| 404 | PORTC ^= 1<<PC5;
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| 405 | PORTC ^= 1<<PC5;
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| 406 | PORTC ^= 1<<PC5;
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| 407 | PORTC ^= 1<<PC5;
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| 408 | w = (w+1)%8;
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| 409 | // Erstmal schauen, was der user für eine Spannung setzen wollte
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| 410 | setvoltage = ((unsigned short)*message+1) & 0x0fff;
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| 411 | // so .. da jemand eine Spannung hoch oder runter setzt, könnte es sein
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| 412 | // dass ein überstrom zustand auftritt ... sagen wir mal, wenn die Spannung in einem
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| 413 | // Schritt um mehr als 3 geändert wird, dann gibts nen Überstrom
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| 414 | // das ist eigentlich mist, aber ich will erstmal irgendwas hier einbauen.
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| 415 | for (unsigned char b=0; b < EXISTINGBOARDS; b++)
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| 416 | for (unsigned char c=0; c < CHPERBOARD; c++){
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| 417 | if ( abs(voltages[b*CHPERBOARD + c] - setvoltage) > DANGEROUSSTEP )// overcurrent!
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| 418 | overcurrentbitmap[b*CHPERBOARD/8+c/8] |= 1<<c%8;
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| 419 | voltages[b*CHPERBOARD + c] = setvoltage;
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| 420 | }
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| 421 | answer[0] = w<<4 ;
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| 422 | answer[1] = 0x00 ;
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| 423 | answer[2] = 0x00 ;
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| 424 | state = state_sending;
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| 425 | break;
|
|---|
| 426 |
|
|---|
| 427 | case state_sending:
|
|---|
| 428 | PORTC ^= 1<<PC5;
|
|---|
| 429 | PORTC ^= 1<<PC5;
|
|---|
| 430 | PORTC ^= 1<<PC5;
|
|---|
| 431 | PORTC ^= 1<<PC5;
|
|---|
| 432 | PORTC ^= 1<<PC5;
|
|---|
| 433 | PORTC ^= 1<<PC5;
|
|---|
| 434 | PORTC ^= 1<<PC5;
|
|---|
| 435 | PORTC ^= 1<<PC5;
|
|---|
| 436 | PORTC ^= 1<<PC5;
|
|---|
| 437 | PORTC ^= 1<<PC5;
|
|---|
| 438 | PORTC ^= 1<<PC5;
|
|---|
| 439 | PORTC ^= 1<<PC5;
|
|---|
| 440 | PORTC ^= 1<<PC5;
|
|---|
| 441 | PORTC ^= 1<<PC5;
|
|---|
| 442 | // in diesem State bleibe ich solange es dauert, um die 'answer'
|
|---|
| 443 | // zu senden. Falls das senden aus irgendeinem Grund nicht gehen sollte
|
|---|
| 444 | // bleibe ich *für immer* in diesem state.
|
|---|
| 445 | if ( ISTXELOW ){
|
|---|
| 446 | MAKEDATABUSOUTPUT;
|
|---|
| 447 | PUTONDATABUS(answer[answerindex]);
|
|---|
| 448 | SETBIT (PORTC, WR);
|
|---|
| 449 | delayMicroseconds(6);
|
|---|
| 450 | CLRBIT (PORTC, WR);
|
|---|
| 451 | MAKEDATABUSINPUT;
|
|---|
| 452 |
|
|---|
| 453 | answerindex++;
|
|---|
| 454 | //wait for txe going high
|
|---|
| 455 | while ( ISTXELOW ){ }
|
|---|
| 456 | }
|
|---|
| 457 |
|
|---|
| 458 | if (answerindex == 3 || timeoutcounter >250) {
|
|---|
| 459 | answerindex =0;
|
|---|
| 460 | state = state_receiving;
|
|---|
| 461 | }
|
|---|
| 462 | break;
|
|---|
| 463 |
|
|---|
| 464 | default:
|
|---|
| 465 | // ungültiger Zustand!
|
|---|
| 466 | // Sollte eigentlich nie auftreten
|
|---|
| 467 | // Wenn er auftritt, dann erzeuge ich eine Nachricht via
|
|---|
| 468 | // USB.
|
|---|
| 469 | break;
|
|---|
| 470 | }
|
|---|
| 471 |
|
|---|
| 472 | }
|
|---|
| 473 |
|
|---|