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//-----------------------------------------------------------------------------
// Jonathan Westhues, Mar 2006
// Edits by Gerhard de Koning Gans, Sep 2007 (##)
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//
// This code is licensed to you under the terms of the GNU GPL, version 2 or,
// at your option, any later version. See the LICENSE.txt file for the text of
// the license.
//-----------------------------------------------------------------------------
// The main application code. This is the first thing called after start.c
// executes.
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//-----------------------------------------------------------------------------
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# include <stdarg.h>
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# include <inttypes.h>
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# include "usb_cdc.h"
# include "proxmark3.h"
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# include "apps.h"
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# include "util.h"
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# include "printf.h"
# include "string.h"
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# include "legicrf.h"
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# include "lfsampling.h"
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# include "BigBuf.h"
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# include "mifareutil.h"
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# ifdef WITH_LCD
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# include "LCD.h"
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# endif
//=============================================================================
// A buffer where we can queue things up to be sent through the FPGA, for
// any purpose (fake tag, as reader, whatever). We go MSB first, since that
// is the order in which they go out on the wire.
//=============================================================================
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# define TOSEND_BUFFER_SIZE (9*MAX_FRAME_SIZE + 1 + 1 + 2) // 8 data bits and 1 parity bit per payload byte, 1 correction bit, 1 SOC bit, 2 EOC bits
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uint8_t ToSend [ TOSEND_BUFFER_SIZE ] ;
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int ToSendMax = - 1 ;
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static int ToSendBit ;
struct common_area common_area __attribute__ ( ( section ( " .commonarea " ) ) ) ;
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void ToSendReset ( void ) {
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ToSendMax = - 1 ;
ToSendBit = 8 ;
}
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void ToSendStuffBit ( int b ) {
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if ( ToSendBit > = 8 ) {
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ToSendMax + + ;
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ToSend [ ToSendMax ] = 0 ;
ToSendBit = 0 ;
}
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if ( b )
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ToSend [ ToSendMax ] | = ( 1 < < ( 7 - ToSendBit ) ) ;
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ToSendBit + + ;
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if ( ToSendMax > = sizeof ( ToSend ) ) {
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ToSendBit = 0 ;
DbpString ( " ToSendStuffBit overflowed! " ) ;
}
}
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void PrintToSendBuffer ( void ) {
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DbpString ( " Printing ToSendBuffer: " ) ;
Dbhexdump ( ToSendMax , ToSend , 0 ) ;
}
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void print_result ( char * name , uint8_t * buf , size_t len ) {
uint8_t * p = buf ;
if ( len % 16 = = 0 ) {
for ( ; p - buf < len ; p + = 16 )
Dbprintf ( " [%s:%d/%d] %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x " ,
name ,
p - buf ,
len ,
p [ 0 ] , p [ 1 ] , p [ 2 ] , p [ 3 ] , p [ 4 ] , p [ 5 ] , p [ 6 ] , p [ 7 ] , p [ 8 ] , p [ 9 ] , p [ 10 ] , p [ 11 ] , p [ 12 ] , p [ 13 ] , p [ 14 ] , p [ 15 ]
) ;
}
else {
for ( ; p - buf < len ; p + = 8 )
Dbprintf ( " [%s:%d/%d] %02x %02x %02x %02x %02x %02x %02x %02x " ,
name ,
p - buf ,
len ,
p [ 0 ] , p [ 1 ] , p [ 2 ] , p [ 3 ] , p [ 4 ] , p [ 5 ] , p [ 6 ] , p [ 7 ] ) ;
}
}
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//=============================================================================
// Debug print functions, to go out over USB, to the usual PC-side client.
//=============================================================================
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void DbpStringEx ( char * str , uint32_t cmd ) {
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byte_t len = strlen ( str ) ;
cmd_send ( CMD_DEBUG_PRINT_STRING , len , cmd , 0 , ( byte_t * ) str , len ) ;
}
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void DbpString ( char * str ) {
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DbpStringEx ( str , 0 ) ;
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}
#if 0
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void DbpIntegers ( int x1 , int x2 , int x3 ) {
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cmd_send ( CMD_DEBUG_PRINT_INTEGERS , x1 , x2 , x3 , 0 , 0 ) ;
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}
# endif
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void DbprintfEx ( uint32_t cmd , const char * fmt , . . . ) {
// should probably limit size here; oh well, let's just use a big buffer
char output_string [ 128 ] = { 0x00 } ;
va_list ap ;
va_start ( ap , fmt ) ;
kvsprintf ( fmt , output_string , 10 , ap ) ;
va_end ( ap ) ;
DbpStringEx ( output_string , cmd ) ;
}
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void Dbprintf ( const char * fmt , . . . ) {
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// should probably limit size here; oh well, let's just use a big buffer
char output_string [ 128 ] = { 0x00 } ;
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va_list ap ;
va_start ( ap , fmt ) ;
kvsprintf ( fmt , output_string , 10 , ap ) ;
va_end ( ap ) ;
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DbpString ( output_string ) ;
}
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// prints HEX & ASCII
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void Dbhexdump ( int len , uint8_t * d , bool bAsci ) {
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int l = 0 , i ;
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char ascii [ 9 ] ;
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while ( len > 0 ) {
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l = ( len > 8 ) ? 8 : len ;
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memcpy ( ascii , d , l ) ;
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ascii [ l ] = 0 ;
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// filter safe ascii
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for ( i = 0 ; i < l ; i + + ) {
if ( ascii [ i ] < 32 | | ascii [ i ] > 126 ) {
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ascii [ i ] = ' . ' ;
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}
}
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if ( bAsci )
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Dbprintf ( " %-8s %*D " , ascii , l , d , " " ) ;
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else
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Dbprintf ( " %*D " , l , d , " " ) ;
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len - = 8 ;
d + = 8 ;
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}
}
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//-----------------------------------------------------------------------------
// Read an ADC channel and block till it completes, then return the result
// in ADC units (0 to 1023). Also a routine to average 32 samples and
// return that.
//-----------------------------------------------------------------------------
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static int ReadAdc ( int ch ) {
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uint32_t d ;
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AT91C_BASE_ADC - > ADC_CR = AT91C_ADC_SWRST ;
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AT91C_BASE_ADC - > ADC_MR = ADC_MODE_PRESCALE ( 63 /* was 32 */ ) | // ADC_CLK = MCK / ((63+1) * 2) = 48MHz / 128 = 375kHz
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ADC_MODE_STARTUP_TIME ( 1 /* was 16 */ ) | // Startup Time = (1+1) * 8 / ADC_CLK = 16 / 375kHz = 42,7us Note: must be > 20us
ADC_MODE_SAMPLE_HOLD_TIME ( 15 /* was 8 */ ) ; // Sample & Hold Time SHTIM = 15 / ADC_CLK = 15 / 375kHz = 40us
// Note: ADC_MODE_PRESCALE and ADC_MODE_SAMPLE_HOLD_TIME are set to the maximum allowed value.
// Both AMPL_LO and AMPL_HI are very high impedance (10MOhm) outputs, the input capacitance of the ADC is 12pF (typical). This results in a time constant
// of RC = 10MOhm * 12pF = 120us. Even after the maximum configurable sample&hold time of 40us the input capacitor will not be fully charged.
//
// The maths are:
// If there is a voltage v_in at the input, the voltage v_cap at the capacitor (this is what we are measuring) will be
//
// v_cap = v_in * (1 - exp(-RC/SHTIM)) = v_in * (1 - exp(-3)) = v_in * 0,95 (i.e. an error of 5%)
//
// Note: with the "historic" values in the comments above, the error was 34% !!!
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AT91C_BASE_ADC - > ADC_CHER = ADC_CHANNEL ( ch ) ;
AT91C_BASE_ADC - > ADC_CR = AT91C_ADC_START ;
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while ( ! ( AT91C_BASE_ADC - > ADC_SR & ADC_END_OF_CONVERSION ( ch ) ) ) { } ;
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d = AT91C_BASE_ADC - > ADC_CDR [ ch ] ;
return d ;
}
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// was static - merlok
int AvgAdc ( int ch ) {
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int i , a = 0 ;
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for ( i = 0 ; i < 32 ; i + + )
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a + = ReadAdc ( ch ) ;
return ( a + 15 ) > > 5 ;
}
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void MeasureAntennaTuning ( void ) {
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uint8_t LF_Results [ 256 ] ;
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int i , adcval = 0 , peak = 0 , peakv = 0 , peakf = 0 ;
int vLf125 = 0 , vLf134 = 0 , vHf = 0 ; // in mV
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memset ( LF_Results , 0 , sizeof ( LF_Results ) ) ;
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LED_B_ON ( ) ;
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/*
* Sweeps the useful LF range of the proxmark from
* 46.8 kHz ( divisor = 255 ) to 600 kHz ( divisor = 19 ) and
* read the voltage in the antenna , the result left
* in the buffer is a graph which should clearly show
* the resonating frequency of your LF antenna
* ( hopefully around 95 if it is tuned to 125 kHz ! )
*/
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FpgaDownloadAndGo ( FPGA_BITSTREAM_LF ) ;
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FpgaWriteConfWord ( FPGA_MAJOR_MODE_LF_ADC | FPGA_LF_ADC_READER_FIELD ) ;
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SpinDelay ( 50 ) ;
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for ( i = 255 ; i > = 19 ; i - - ) {
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WDT_HIT ( ) ;
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FpgaSendCommand ( FPGA_CMD_SET_DIVISOR , i ) ;
SpinDelay ( 20 ) ;
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adcval = ( ( MAX_ADC_LF_VOLTAGE * AvgAdc ( ADC_CHAN_LF ) ) > > 10 ) ;
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if ( i = = 95 )
vLf125 = adcval ; // voltage at 125Khz
if ( i = = 89 )
vLf134 = adcval ; // voltage at 134Khz
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LF_Results [ i ] = adcval > > 8 ; // scale int to fit in byte for graphing purposes
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if ( LF_Results [ i ] > peak ) {
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peakv = adcval ;
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peak = LF_Results [ i ] ;
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peakf = i ;
}
}
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LED_A_ON ( ) ;
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// Let the FPGA drive the high-frequency antenna around 13.56 MHz.
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FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
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FpgaWriteConfWord ( FPGA_MAJOR_MODE_HF_READER_RX_XCORR ) ;
SpinDelay ( 20 ) ;
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vHf = ( MAX_ADC_HF_VOLTAGE * AvgAdc ( ADC_CHAN_HF ) ) > > 10 ;
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cmd_send ( CMD_MEASURED_ANTENNA_TUNING , vLf125 | ( vLf134 < < 16 ) , vHf , peakf | ( peakv < < 16 ) , LF_Results , 256 ) ;
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FpgaWriteConfWord ( FPGA_MAJOR_MODE_OFF ) ;
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LEDsoff ( ) ;
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}
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void MeasureAntennaTuningHf ( void ) {
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int vHf = 0 ; // in mV
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// Let the FPGA drive the high-frequency antenna around 13.56 MHz.
FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
FpgaWriteConfWord ( FPGA_MAJOR_MODE_HF_READER_RX_XCORR ) ;
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while ( ! BUTTON_PRESS ( ) ) {
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SpinDelay ( 20 ) ;
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vHf = ( MAX_ADC_HF_VOLTAGE * AvgAdc ( ADC_CHAN_HF ) ) > > 10 ;
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//Dbprintf("%d mV",vHf);
DbprintfEx ( CMD_MEASURE_ANTENNA_TUNING_HF , " %d mV " , vHf ) ;
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}
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FpgaWriteConfWord ( FPGA_MAJOR_MODE_OFF ) ;
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DbpString ( " cancelled " ) ;
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}
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void ReadMem ( int addr ) {
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const uint8_t * data = ( ( uint8_t * ) addr ) ;
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Dbprintf ( " %x: %02x %02x %02x %02x %02x %02x %02x %02x " , addr , data [ 0 ] , data [ 1 ] , data [ 2 ] , data [ 3 ] , data [ 4 ] , data [ 5 ] , data [ 6 ] , data [ 7 ] ) ;
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}
/* osimage version information is linked in */
extern struct version_information version_information ;
/* bootrom version information is pointed to from _bootphase1_version_pointer */
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extern char * _bootphase1_version_pointer , _flash_start , _flash_end , _bootrom_start , _bootrom_end , __data_src_start__ ;
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void SendVersion ( void ) {
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char temp [ USB_CMD_DATA_SIZE ] ; /* Limited data payload in USB packets */
char VersionString [ USB_CMD_DATA_SIZE ] = { ' \0 ' } ;
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/* Try to find the bootrom version information. Expect to find a pointer at
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* symbol _bootphase1_version_pointer , perform slight sanity checks on the
* pointer , then use it .
*/
char * bootrom_version = * ( char * * ) & _bootphase1_version_pointer ;
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strncat ( VersionString , " [ ARM ] \n " , sizeof ( VersionString ) - strlen ( VersionString ) - 1 ) ;
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if ( bootrom_version < & _flash_start | | bootrom_version > = & _flash_end ) {
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strcat ( VersionString , " bootrom version information appears invalid \n " ) ;
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} else {
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FormatVersionInformation ( temp , sizeof ( temp ) , " bootrom: " , bootrom_version ) ;
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strncat ( VersionString , temp , sizeof ( VersionString ) - strlen ( VersionString ) - 1 ) ;
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}
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FormatVersionInformation ( temp , sizeof ( temp ) , " os: " , & version_information ) ;
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strncat ( VersionString , temp , sizeof ( VersionString ) - strlen ( VersionString ) - 1 ) ;
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strncat ( VersionString , " [ FPGA ] \n " , sizeof ( VersionString ) - strlen ( VersionString ) - 1 ) ;
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FpgaGatherVersion ( FPGA_BITSTREAM_LF , temp , sizeof ( temp ) ) ;
strncat ( VersionString , temp , sizeof ( VersionString ) - strlen ( VersionString ) - 1 ) ;
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FpgaGatherVersion ( FPGA_BITSTREAM_HF , temp , sizeof ( temp ) ) ;
strncat ( VersionString , temp , sizeof ( VersionString ) - strlen ( VersionString ) - 1 ) ;
// Send Chip ID and used flash memory
uint32_t text_and_rodata_section_size = ( uint32_t ) & __data_src_start__ - ( uint32_t ) & _flash_start ;
uint32_t compressed_data_section_size = common_area . arg1 ;
cmd_send ( CMD_ACK , * ( AT91C_DBGU_CIDR ) , text_and_rodata_section_size + compressed_data_section_size , 0 , VersionString , strlen ( VersionString ) ) ;
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}
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// measure the USB Speed by sending SpeedTestBufferSize bytes to client and measuring the elapsed time.
// Note: this mimics GetFromBigbuf(), i.e. we have the overhead of the UsbCommand structure included.
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void printUSBSpeed ( void ) {
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Dbprintf ( " USB Speed: " ) ;
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Dbprintf ( " Sending USB packets to client... " ) ;
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# define USB_SPEED_TEST_MIN_TIME 1500 // in milliseconds
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uint8_t * test_data = BigBuf_get_addr ( ) ;
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uint32_t end_time ;
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uint32_t start_time = end_time = GetTickCount ( ) ;
uint32_t bytes_transferred = 0 ;
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LED_B_ON ( ) ;
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while ( end_time < start_time + USB_SPEED_TEST_MIN_TIME ) {
cmd_send ( CMD_DOWNLOADED_RAW_ADC_SAMPLES_125K , 0 , USB_CMD_DATA_SIZE , 0 , test_data , USB_CMD_DATA_SIZE ) ;
end_time = GetTickCount ( ) ;
bytes_transferred + = USB_CMD_DATA_SIZE ;
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}
LED_B_OFF ( ) ;
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Dbprintf ( " Time elapsed............%dms " , end_time - start_time ) ;
Dbprintf ( " Bytes transferred.......%d " , bytes_transferred ) ;
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Dbprintf ( " USB Transfer Speed PM3 -> Client = %d Bytes/s " , 1000 * bytes_transferred / ( end_time - start_time ) ) ;
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}
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/**
* Prints runtime information about the PM3 .
* */
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void SendStatus ( void ) {
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BigBuf_print_status ( ) ;
Fpga_print_status ( ) ;
printConfig ( ) ; //LF Sampling config
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printUSBSpeed ( ) ;
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Dbprintf ( " Various " ) ;
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Dbprintf ( " MF_DBGLEVEL.............%d " , MF_DBGLEVEL ) ;
Dbprintf ( " ToSendMax...............%d " , ToSendMax ) ;
Dbprintf ( " ToSendBit...............%d " , ToSendBit ) ;
Dbprintf ( " ToSend BUFFERSIZE.......%d " , TOSEND_BUFFER_SIZE ) ;
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printStandAloneModes ( ) ;
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cmd_send ( CMD_ACK , 1 , 0 , 0 , 0 , 0 ) ;
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}
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// Show some leds in a pattern to identify StandAlone mod is running
void StandAloneMode ( void ) {
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DbpString ( " Stand-alone mode! No PC necessary. " ) ;
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// Oooh pretty -- notify user we're in elite samy mode now
LED ( LED_RED , 200 ) ;
LED ( LED_ORANGE , 200 ) ;
LED ( LED_GREEN , 200 ) ;
LED ( LED_ORANGE , 200 ) ;
LED ( LED_RED , 200 ) ;
LED ( LED_ORANGE , 200 ) ;
LED ( LED_GREEN , 200 ) ;
LED ( LED_ORANGE , 200 ) ;
LED ( LED_RED , 200 ) ;
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}
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// detection of which Standalone Modes is installed
// (iceman)
void printStandAloneModes ( void ) {
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DbpString ( " Installed StandAlone Mods " ) ;
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# if defined(WITH_LF_ICERUN)
DbpString ( " LF sniff/clone/simulation - aka IceRun (iceman) " ) ;
# endif
# if defined(WITH_HF_YOUNG)
DbpString ( " HF Mifare sniff/simulation - (Craig Young) " ) ;
# endif
# if defined(WITH_LF_SAMYRUN)
DbpString ( " LF HID26 standalone - aka SamyRun (Samy Kamkar) " ) ;
# endif
# if defined(WITH_LF_PROXBRUTE)
DbpString ( " LF HID ProxII bruteforce - aka Proxbrute (Brad Antoniewicz) " ) ;
# endif
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# if defined(WITH_LF_HIDBRUTE)
DbpString ( " LF HID corporate 1000 bruteforce - (Federico dotta & Maurizio Agazzini) " ) ;
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# endif
# if defined(WITH_HF_MATTYRUN)
DbpString ( " HF Mifare sniff/clone - aka MattyRun (Matta Real) " ) ;
# endif
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# if defined(WITH_HF_COLIN)
DbpString ( " HF Mifare ultra fast sniff/sim/clone - aka VIGIKPWN (Colin Brigato) " ) ;
# endif
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DbpString ( " Running " ) ;
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//Dbprintf(" Is Device attached to USB| %s", USB_ATTACHED() ? "Yes" : "No");
//Dbprintf(" Is USB_reconnect value | %d", GetUSBreconnect() );
//Dbprintf(" Is USB_configured value | %d", GetUSBconfigured() );
2017-09-29 04:33:03 +08:00
2017-08-26 18:57:18 +08:00
//.. add your own standalone detection based on with compiler directive you are used.
// don't "reuse" the already taken ones, this will make things easier when trying to detect the different modes
// 2017-08-06 must adapt the makefile and have individual compilation flags for all mods
//
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}
/*
OBJECTIVE
Listen and detect an external reader . Determine the best location
for the antenna .
INSTRUCTIONS :
Inside the ListenReaderField ( ) function , there is two mode .
By default , when you call the function , you will enter mode 1.
If you press the PM3 button one time , you will enter mode 2.
If you press the PM3 button a second time , you will exit the function .
DESCRIPTION OF MODE 1 :
This mode just listens for an external reader field and lights up green
for HF and / or red for LF . This is the original mode of the detectreader
function .
DESCRIPTION OF MODE 2 :
This mode will visually represent , using the LEDs , the actual strength of the
current compared to the maximum current detected . Basically , once you know
what kind of external reader is present , it will help you spot the best location to place
your antenna . You will probably not get some good results if there is a LF and a HF reader
at the same place ! : - )
LIGHT SCHEME USED :
*/
static const char LIGHT_SCHEME [ ] = {
0x0 , /* ---- | No field detected */
0x1 , /* X--- | 14% of maximum current detected */
0x2 , /* -X-- | 29% of maximum current detected */
0x4 , /* --X- | 43% of maximum current detected */
0x8 , /* ---X | 57% of maximum current detected */
0xC , /* --XX | 71% of maximum current detected */
0xE , /* -XXX | 86% of maximum current detected */
0xF , /* XXXX | 100% of maximum current detected */
} ;
static const int LIGHT_LEN = sizeof ( LIGHT_SCHEME ) / sizeof ( LIGHT_SCHEME [ 0 ] ) ;
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void ListenReaderField ( int limit ) {
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# define LF_ONLY 1
# define HF_ONLY 2
# define REPORT_CHANGE 10 // report new values only if they have changed at least by REPORT_CHANGE
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int lf_av , lf_av_new , lf_baseline = 0 , lf_max ;
int hf_av , hf_av_new , hf_baseline = 0 , hf_max ;
int mode = 1 , display_val , display_max , i ;
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// switch off FPGA - we don't want to measure our own signal
FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
FpgaWriteConfWord ( FPGA_MAJOR_MODE_OFF ) ;
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LEDsoff ( ) ;
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lf_av = lf_max = AvgAdc ( ADC_CHAN_LF ) ;
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if ( limit ! = HF_ONLY ) {
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Dbprintf ( " LF 125/134kHz Baseline: %dmV " , ( MAX_ADC_LF_VOLTAGE * lf_av ) > > 10 ) ;
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lf_baseline = lf_av ;
}
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hf_av = hf_max = AvgAdc ( ADC_CHAN_HF ) ;
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if ( limit ! = LF_ONLY ) {
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Dbprintf ( " HF 13.56MHz Baseline: %dmV " , ( MAX_ADC_HF_VOLTAGE * hf_av ) > > 10 ) ;
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hf_baseline = hf_av ;
}
for ( ; ; ) {
if ( BUTTON_PRESS ( ) ) {
SpinDelay ( 500 ) ;
switch ( mode ) {
case 1 :
mode = 2 ;
DbpString ( " Signal Strength Mode " ) ;
break ;
case 2 :
default :
DbpString ( " Stopped " ) ;
LEDsoff ( ) ;
return ;
break ;
}
}
WDT_HIT ( ) ;
if ( limit ! = HF_ONLY ) {
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if ( mode = = 1 ) {
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if ( ABS ( lf_av - lf_baseline ) > REPORT_CHANGE )
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LED_D_ON ( ) ;
else
LED_D_OFF ( ) ;
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}
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2015-02-03 14:21:57 +08:00
lf_av_new = AvgAdc ( ADC_CHAN_LF ) ;
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// see if there's a significant change
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if ( ABS ( lf_av - lf_av_new ) > REPORT_CHANGE ) {
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Dbprintf ( " LF 125/134kHz Field Change: %5dmV " , ( MAX_ADC_LF_VOLTAGE * lf_av_new ) > > 10 ) ;
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lf_av = lf_av_new ;
if ( lf_av > lf_max )
lf_max = lf_av ;
}
}
if ( limit ! = LF_ONLY ) {
if ( mode = = 1 ) {
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if ( ABS ( hf_av - hf_baseline ) > REPORT_CHANGE )
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LED_B_ON ( ) ;
else
LED_B_OFF ( ) ;
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}
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2015-02-03 14:21:57 +08:00
hf_av_new = AvgAdc ( ADC_CHAN_HF ) ;
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// see if there's a significant change
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if ( ABS ( hf_av - hf_av_new ) > REPORT_CHANGE ) {
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Dbprintf ( " HF 13.56MHz Field Change: %5dmV " , ( MAX_ADC_HF_VOLTAGE * hf_av_new ) > > 10 ) ;
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hf_av = hf_av_new ;
if ( hf_av > hf_max )
hf_max = hf_av ;
}
}
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if ( mode = = 2 ) {
if ( limit = = LF_ONLY ) {
display_val = lf_av ;
display_max = lf_max ;
} else if ( limit = = HF_ONLY ) {
display_val = hf_av ;
display_max = hf_max ;
} else { /* Pick one at random */
if ( ( hf_max - hf_baseline ) > ( lf_max - lf_baseline ) ) {
display_val = hf_av ;
display_max = hf_max ;
} else {
display_val = lf_av ;
display_max = lf_max ;
}
}
for ( i = 0 ; i < LIGHT_LEN ; i + + ) {
if ( display_val > = ( ( display_max / LIGHT_LEN ) * i ) & & display_val < = ( ( display_max / LIGHT_LEN ) * ( i + 1 ) ) ) {
if ( LIGHT_SCHEME [ i ] & 0x1 ) LED_C_ON ( ) ; else LED_C_OFF ( ) ;
if ( LIGHT_SCHEME [ i ] & 0x2 ) LED_A_ON ( ) ; else LED_A_OFF ( ) ;
if ( LIGHT_SCHEME [ i ] & 0x4 ) LED_B_ON ( ) ; else LED_B_OFF ( ) ;
if ( LIGHT_SCHEME [ i ] & 0x8 ) LED_D_ON ( ) ; else LED_D_OFF ( ) ;
break ;
}
}
}
}
}
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void UsbPacketReceived ( uint8_t * packet , int len ) {
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UsbCommand * c = ( UsbCommand * ) packet ;
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//Dbprintf("received %d bytes, with command: 0x%04x and args: %d %d %d",len,c->cmd,c->arg[0],c->arg[1],c->arg[2]);
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switch ( c - > cmd ) {
# ifdef WITH_LF
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case CMD_SET_LF_SAMPLING_CONFIG :
setSamplingConfig ( ( sample_config * ) c - > d . asBytes ) ;
break ;
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case CMD_ACQUIRE_RAW_ADC_SAMPLES_125K : {
uint32_t bits = SampleLF ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
cmd_send ( CMD_ACK , bits , 0 , 0 , 0 , 0 ) ;
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break ;
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}
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case CMD_MOD_THEN_ACQUIRE_RAW_ADC_SAMPLES_125K :
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ModThenAcquireRawAdcSamples125k ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
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case CMD_LF_SNOOP_RAW_ADC_SAMPLES : {
uint32_t bits = SnoopLF ( ) ;
cmd_send ( CMD_ACK , bits , 0 , 0 , 0 , 0 ) ;
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break ;
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}
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case CMD_HID_DEMOD_FSK : {
uint32_t high , low ;
CmdHIDdemodFSK ( c - > arg [ 0 ] , & high , & low , 1 ) ;
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break ;
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}
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case CMD_HID_SIM_TAG :
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CmdHIDsimTAG ( c - > arg [ 0 ] , c - > arg [ 1 ] , 1 ) ;
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break ;
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case CMD_FSK_SIM_TAG :
CmdFSKsimTAG ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_ASK_SIM_TAG :
CmdASKsimTag ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
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case CMD_PSK_SIM_TAG :
CmdPSKsimTag ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
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case CMD_HID_CLONE_TAG :
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CopyHIDtoT55x7 ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes [ 0 ] ) ;
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break ;
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case CMD_IO_DEMOD_FSK : {
uint32_t high , low ;
CmdIOdemodFSK ( c - > arg [ 0 ] , & high , & low , 1 ) ;
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break ;
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}
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case CMD_IO_CLONE_TAG :
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CopyIOtoT55x7 ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
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break ;
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case CMD_EM410X_DEMOD : {
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uint32_t high ;
uint64_t low ;
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CmdEM410xdemod ( c - > arg [ 0 ] , & high , & low , 1 ) ;
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break ;
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}
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case CMD_EM410X_WRITE_TAG :
WriteEM410x ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
break ;
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case CMD_READ_TI_TYPE :
ReadTItag ( ) ;
break ;
case CMD_WRITE_TI_TYPE :
WriteTItag ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
break ;
case CMD_SIMULATE_TAG_125K :
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LED_A_ON ( ) ;
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SimulateTagLowFrequency ( c - > arg [ 0 ] , c - > arg [ 1 ] , 1 ) ;
LED_A_OFF ( ) ;
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break ;
case CMD_LF_SIMULATE_BIDIR :
SimulateTagLowFrequencyBidir ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
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case CMD_INDALA_CLONE_TAG :
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CopyIndala64toT55x7 ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
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case CMD_INDALA_CLONE_TAG_L :
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CopyIndala224toT55x7 ( c - > d . asDwords [ 0 ] , c - > d . asDwords [ 1 ] , c - > d . asDwords [ 2 ] , c - > d . asDwords [ 3 ] , c - > d . asDwords [ 4 ] , c - > d . asDwords [ 5 ] , c - > d . asDwords [ 6 ] ) ;
break ;
2013-07-09 01:56:05 +08:00
case CMD_T55XX_READ_BLOCK :
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T55xxReadBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
case CMD_T55XX_WRITE_BLOCK :
T55xxWriteBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes [ 0 ] ) ;
break ;
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case CMD_T55XX_WAKEUP :
T55xxWakeUp ( c - > arg [ 0 ] ) ;
break ;
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case CMD_T55XX_RESET_READ :
T55xxResetRead ( ) ;
break ;
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case CMD_PCF7931_READ :
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ReadPCF7931 ( ) ;
break ;
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case CMD_PCF7931_WRITE :
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WritePCF7931 ( c - > d . asBytes [ 0 ] , c - > d . asBytes [ 1 ] , c - > d . asBytes [ 2 ] , c - > d . asBytes [ 3 ] , c - > d . asBytes [ 4 ] , c - > d . asBytes [ 5 ] , c - > d . asBytes [ 6 ] , c - > d . asBytes [ 9 ] ,
c - > d . asBytes [ 7 ] - 128 , c - > d . asBytes [ 8 ] - 128 , c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
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case CMD_EM4X_READ_WORD :
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EM4xReadWord ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
case CMD_EM4X_WRITE_WORD :
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EM4xWriteWord ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
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case CMD_AWID_DEMOD_FSK : {
uint32_t high , low ;
// Set realtime AWID demodulation
CmdAWIDdemodFSK ( c - > arg [ 0 ] , & high , & low , 1 ) ;
2015-11-10 18:42:59 +08:00
break ;
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}
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case CMD_VIKING_CLONE_TAG :
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CopyVikingtoT55xx ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
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case CMD_COTAG :
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Cotag ( c - > arg [ 0 ] ) ;
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break ;
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# endif
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# ifdef WITH_HITAG
case CMD_SNOOP_HITAG : // Eavesdrop Hitag tag, args = type
SnoopHitag ( c - > arg [ 0 ] ) ;
break ;
case CMD_SIMULATE_HITAG : // Simulate Hitag tag, args = memory content
SimulateHitagTag ( ( bool ) c - > arg [ 0 ] , ( byte_t * ) c - > d . asBytes ) ;
break ;
case CMD_READER_HITAG : // Reader for Hitag tags, args = type and function
ReaderHitag ( ( hitag_function ) c - > arg [ 0 ] , ( hitag_data * ) c - > d . asBytes ) ;
break ;
2016-03-05 02:06:47 +08:00
case CMD_SIMULATE_HITAG_S : // Simulate Hitag s tag, args = memory content
SimulateHitagSTag ( ( bool ) c - > arg [ 0 ] , ( byte_t * ) c - > d . asBytes ) ;
break ;
case CMD_TEST_HITAGS_TRACES : // Tests every challenge within the given file
check_challenges ( ( bool ) c - > arg [ 0 ] , ( byte_t * ) c - > d . asBytes ) ;
break ;
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case CMD_READ_HITAG_S : //Reader for only Hitag S tags, args = key or challenge
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ReadHitagS ( ( hitag_function ) c - > arg [ 0 ] , ( hitag_data * ) c - > d . asBytes ) ;
break ;
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case CMD_WR_HITAG_S : //writer for Hitag tags args=data to write,page and key or challenge
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if ( ( hitag_function ) c - > arg [ 0 ] < 10 ) {
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WritePageHitagS ( ( hitag_function ) c - > arg [ 0 ] , ( hitag_data * ) c - > d . asBytes , c - > arg [ 2 ] ) ;
} else if ( ( hitag_function ) c - > arg [ 0 ] > = 10 ) {
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WriterHitag ( ( hitag_function ) c - > arg [ 0 ] , ( hitag_data * ) c - > d . asBytes , c - > arg [ 2 ] ) ;
}
2016-03-05 02:06:47 +08:00
break ;
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# endif
2015-04-30 06:27:31 +08:00
2010-02-21 05:24:25 +08:00
# ifdef WITH_ISO15693
case CMD_ACQUIRE_RAW_ADC_SAMPLES_ISO_15693 :
AcquireRawAdcSamplesIso15693 ( ) ;
break ;
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case CMD_RECORD_RAW_ADC_SAMPLES_ISO_15693 :
RecordRawAdcSamplesIso15693 ( ) ;
break ;
case CMD_ISO_15693_COMMAND :
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DirectTag15693Command ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
case CMD_ISO_15693_FIND_AFI :
BruteforceIso15693Afi ( c - > arg [ 0 ] ) ;
break ;
case CMD_ISO_15693_DEBUG :
SetDebugIso15693 ( c - > arg [ 0 ] ) ;
break ;
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case CMD_READER_ISO_15693 :
ReaderIso15693 ( c - > arg [ 0 ] ) ;
break ;
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case CMD_SIMTAG_ISO_15693 :
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SimTagIso15693 ( c - > arg [ 0 ] , c - > d . asBytes ) ;
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break ;
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# endif
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# ifdef WITH_LEGICRF
case CMD_SIMULATE_TAG_LEGIC_RF :
LegicRfSimulate ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
break ;
case CMD_WRITER_LEGIC_RF :
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LegicRfWriter ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
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case CMD_READER_LEGIC_RF :
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LegicRfReader ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
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case CMD_LEGIC_INFO :
LegicRfInfo ( ) ;
break ;
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case CMD_LEGIC_ESET :
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//-----------------------------------------------------------------------------
// Note: we call FpgaDownloadAndGo(FPGA_BITSTREAM_HF) here although FPGA is not
// involved in dealing with emulator memory. But if it is called later, it might
// destroy the Emulator Memory.
//-----------------------------------------------------------------------------
// arg0 = offset
// arg1 = num of bytes
FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
emlSet ( c - > d . asBytes , c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
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break ;
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# endif
# ifdef WITH_ISO14443b
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case CMD_READ_SRI_TAG :
ReadSTMemoryIso14443b ( c - > arg [ 0 ] ) ;
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break ;
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case CMD_SNOOP_ISO_14443B :
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SnoopIso14443b ( ) ;
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break ;
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case CMD_SIMULATE_TAG_ISO_14443B :
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SimulateIso14443bTag ( c - > arg [ 0 ] ) ;
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break ;
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case CMD_ISO_14443B_COMMAND :
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//SendRawCommand14443B(c->arg[0],c->arg[1],c->arg[2],c->d.asBytes);
SendRawCommand14443B_Ex ( c ) ;
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break ;
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# endif
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# ifdef WITH_FELICA
case CMD_FELICA_LITE_SIM :
HfSimLite ( c - > arg [ 0 ] ) ;
break ;
case CMD_FELICA_SNOOP :
HfSnoopISO18 ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
case CMD_FELICA_LITE_DUMP :
HfDumpFelicaLiteS ( ) ;
break ;
# endif
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# ifdef WITH_ISO14443a
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case CMD_SNOOP_ISO_14443a :
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SniffIso14443a ( c - > arg [ 0 ] ) ;
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break ;
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case CMD_READER_ISO_14443a :
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ReaderIso14443a ( c ) ;
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break ;
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case CMD_SIMULATE_TAG_ISO_14443a :
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SimulateIso14443aTag ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ; // ## Simulate iso14443a tag - pass tag type & UID
2011-12-16 19:00:51 +08:00
break ;
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case CMD_EPA_PACE_COLLECT_NONCE :
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EPA_PACE_Collect_Nonce ( c ) ;
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break ;
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case CMD_EPA_PACE_REPLAY :
EPA_PACE_Replay ( c ) ;
break ;
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case CMD_READER_MIFARE :
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ReaderMifare ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] ) ;
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break ;
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case CMD_MIFARE_READBL :
MifareReadBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
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case CMD_MIFAREU_READBL :
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MifareUReadBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFAREUC_AUTH :
MifareUC_Auth ( c - > arg [ 0 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFAREU_READCARD :
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MifareUReadCard ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFAREUC_SETPWD :
MifareUSetPwd ( c - > arg [ 0 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFARE_READSC :
MifareReadSector ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_MIFARE_WRITEBL :
MifareWriteBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
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//case CMD_MIFAREU_WRITEBL_COMPAT:
//MifareUWriteBlockCompat(c->arg[0], c->d.asBytes);
//break;
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case CMD_MIFAREU_WRITEBL :
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MifareUWriteBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFARE_ACQUIRE_ENCRYPTED_NONCES :
MifareAcquireEncryptedNonces ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
2017-08-26 18:57:18 +08:00
case CMD_MIFARE_ACQUIRE_NONCES :
MifareAcquireNonces ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
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case CMD_MIFARE_NESTED :
MifareNested ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFARE_CHKKEYS : {
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MifareChkKeys ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
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}
case CMD_MIFARE_CHKKEYS_FAST : {
MifareChkKeys_fast ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
}
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case CMD_SIMULATE_MIFARE_CARD :
Mifare1ksim ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
2011-06-18 02:39:54 +08:00
// emulator
case CMD_MIFARE_SET_DBGMODE :
MifareSetDbgLvl ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_MIFARE_EML_MEMCLR :
MifareEMemClr ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_MIFARE_EML_MEMSET :
MifareEMemSet ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_MIFARE_EML_MEMGET :
MifareEMemGet ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_MIFARE_EML_CARDLOAD :
MifareECardLoad ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
// Work with "magic Chinese" card
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case CMD_MIFARE_CSETBLOCK :
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MifareCSetBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFARE_CGETBLOCK :
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MifareCGetBlock ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ;
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break ;
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case CMD_MIFARE_CIDENT :
MifareCIdent ( ) ;
break ;
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// mifare sniffer
case CMD_MIFARE_SNIFFER :
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SniffMifare ( c - > arg [ 0 ] ) ;
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break ;
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case CMD_MIFARE_SETMOD :
MifareSetMod ( c - > arg [ 0 ] , c - > d . asBytes ) ;
break ;
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//mifare desfire
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case CMD_MIFARE_DESFIRE_READBL :
break ;
case CMD_MIFARE_DESFIRE_WRITEBL :
break ;
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case CMD_MIFARE_DESFIRE_AUTH1 :
MifareDES_Auth1 ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
break ;
case CMD_MIFARE_DESFIRE_AUTH2 :
//MifareDES_Auth2(c->arg[0],c->d.asBytes);
break ;
case CMD_MIFARE_DES_READER :
//readermifaredes(c->arg[0], c->arg[1], c->d.asBytes);
break ;
case CMD_MIFARE_DESFIRE_INFO :
MifareDesfireGetInformation ( ) ;
break ;
case CMD_MIFARE_DESFIRE :
MifareSendCommand ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ;
break ;
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case CMD_MIFARE_COLLECT_NONCES :
break ;
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case CMD_MIFARE_NACK_DETECT :
DetectNACKbug ( ) ;
break ;
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# endif
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2011-12-16 19:00:51 +08:00
# ifdef WITH_ICLASS
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// Makes use of ISO14443a FPGA Firmware
case CMD_SNOOP_ICLASS :
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SniffIClass ( ) ;
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break ;
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case CMD_SIMULATE_TAG_ICLASS :
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SimulateIClass ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > arg [ 2 ] , c - > d . asBytes ) ;
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break ;
case CMD_READER_ICLASS :
ReaderIClass ( c - > arg [ 0 ] ) ;
break ;
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case CMD_READER_ICLASS_REPLAY :
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ReaderIClass_Replay ( c - > arg [ 0 ] , c - > d . asBytes ) ;
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break ;
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case CMD_ICLASS_EML_MEMSET :
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//iceman, should call FPGADOWNLOAD before, since it corrupts BigBuf
FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
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emlSet ( c - > d . asBytes , c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
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case CMD_ICLASS_WRITEBLOCK :
iClass_WriteBlock ( c - > arg [ 0 ] , c - > d . asBytes ) ;
break ;
case CMD_ICLASS_READCHECK : // auth step 1
iClass_ReadCheck ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
case CMD_ICLASS_READBLOCK :
iClass_ReadBlk ( c - > arg [ 0 ] ) ;
break ;
case CMD_ICLASS_AUTHENTICATION : //check
iClass_Authentication ( c - > d . asBytes ) ;
break ;
case CMD_ICLASS_DUMP :
iClass_Dump ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
case CMD_ICLASS_CLONE :
iClass_Clone ( c - > arg [ 0 ] , c - > arg [ 1 ] , c - > d . asBytes ) ;
break ;
2011-05-18 20:33:32 +08:00
# endif
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# ifdef WITH_HFSNOOP
case CMD_HF_SNIFFER :
HfSnoop ( c - > arg [ 0 ] , c - > arg [ 1 ] ) ;
break ;
# endif
2011-05-18 20:33:32 +08:00
2011-12-16 19:00:51 +08:00
case CMD_BUFF_CLEAR :
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BigBuf_Clear ( ) ;
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break ;
case CMD_MEASURE_ANTENNA_TUNING :
MeasureAntennaTuning ( ) ;
break ;
case CMD_MEASURE_ANTENNA_TUNING_HF :
MeasureAntennaTuningHf ( ) ;
break ;
case CMD_LISTEN_READER_FIELD :
ListenReaderField ( c - > arg [ 0 ] ) ;
break ;
case CMD_FPGA_MAJOR_MODE_OFF : // ## FPGA Control
FpgaWriteConfWord ( FPGA_MAJOR_MODE_OFF ) ;
SpinDelay ( 200 ) ;
LED_D_OFF ( ) ; // LED D indicates field ON or OFF
break ;
2016-03-12 16:03:28 +08:00
case CMD_DOWNLOAD_RAW_ADC_SAMPLES_125K : {
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LED_B_ON ( ) ;
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uint8_t * mem = BigBuf_get_addr ( ) ;
bool isok = false ;
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size_t len = 0 ;
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uint32_t startidx = c - > arg [ 0 ] ;
uint32_t numofbytes = c - > arg [ 1 ] ;
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// arg0 = startindex
// arg1 = length bytes to transfer
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// arg2 = BigBuf tracelen
//Dbprintf("transfer to client parameters: %" PRIu32 " | %" PRIu32 " | %" PRIu32, startidx, numofbytes, c->arg[2]);
2017-01-17 04:06:51 +08:00
2017-07-07 18:52:51 +08:00
for ( size_t i = 0 ; i < numofbytes ; i + = USB_CMD_DATA_SIZE ) {
len = MIN ( ( numofbytes - i ) , USB_CMD_DATA_SIZE ) ;
isok = cmd_send ( CMD_DOWNLOADED_RAW_ADC_SAMPLES_125K , i , len , BigBuf_get_traceLen ( ) , mem + startidx + i , len ) ;
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if ( ! isok )
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Dbprintf ( " transfer to client failed :: | bytes between %d - %d " , i , len ) ;
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}
// Trigger a finish downloading signal with an ACK frame
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// iceman, when did sending samplingconfig array got attached here?!?
// arg0 = status of download transfer
// arg1 = RFU
// arg2 = tracelen?
// asbytes = samplingconfig array
2017-01-16 21:48:26 +08:00
cmd_send ( CMD_ACK , 1 , 0 , BigBuf_get_traceLen ( ) , getSamplingConfig ( ) , sizeof ( sample_config ) ) ;
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LED_B_OFF ( ) ;
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break ;
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}
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case CMD_UPLOAD_SIM_SAMPLES_125K : {
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// iceman; since changing fpga_bitstreams clears bigbuff, Its better to call it before.
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// to be able to use this one for uploading data to device
// arg1 = 0 upload for LF usage
// 1 upload for HF usage
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# define FPGA_LF 1
if ( c - > arg [ 1 ] = = FPGA_LF )
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FpgaDownloadAndGo ( FPGA_BITSTREAM_LF ) ;
else
FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
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uint8_t * mem = BigBuf_get_addr ( ) ;
memcpy ( mem + c - > arg [ 0 ] , c - > d . asBytes , USB_CMD_DATA_SIZE ) ;
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cmd_send ( CMD_ACK , 1 , 0 , 0 , 0 , 0 ) ;
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break ;
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}
case CMD_DOWNLOAD_EML_BIGBUF : {
LED_B_ON ( ) ;
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uint8_t * mem = BigBuf_get_EM_addr ( ) ;
bool isok = false ;
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size_t len = 0 ;
2017-07-07 18:52:51 +08:00
uint32_t startidx = c - > arg [ 0 ] ;
uint32_t numofbytes = c - > arg [ 1 ] ;
// arg0 = startindex
// arg1 = length bytes to transfer
// arg2 = RFU
//Dbprintf("transfer to client parameters: %" PRIu32 " | %" PRIu32 " | %" PRIu32, startidx, numofbytes, c->arg[2]);
for ( size_t i = 0 ; i < numofbytes ; i + = USB_CMD_DATA_SIZE ) {
len = MIN ( ( numofbytes - i ) , USB_CMD_DATA_SIZE ) ;
isok = cmd_send ( CMD_DOWNLOADED_EML_BIGBUF , i , len , 0 , mem + startidx + i , len ) ;
if ( ! isok )
Dbprintf ( " transfer to client failed :: | bytes between %d - %d " , i , len ) ;
2016-03-12 16:03:28 +08:00
}
// Trigger a finish downloading signal with an ACK frame
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cmd_send ( CMD_ACK , 1 , 0 , 0 , 0 , 0 ) ;
2016-03-12 16:03:28 +08:00
LED_B_OFF ( ) ;
break ;
}
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case CMD_READ_MEM :
ReadMem ( c - > arg [ 0 ] ) ;
break ;
case CMD_SET_LF_DIVISOR :
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FpgaDownloadAndGo ( FPGA_BITSTREAM_LF ) ;
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FpgaSendCommand ( FPGA_CMD_SET_DIVISOR , c - > arg [ 0 ] ) ;
break ;
case CMD_SET_ADC_MUX :
switch ( c - > arg [ 0 ] ) {
case 0 : SetAdcMuxFor ( GPIO_MUXSEL_LOPKD ) ; break ;
case 1 : SetAdcMuxFor ( GPIO_MUXSEL_LORAW ) ; break ;
case 2 : SetAdcMuxFor ( GPIO_MUXSEL_HIPKD ) ; break ;
case 3 : SetAdcMuxFor ( GPIO_MUXSEL_HIRAW ) ; break ;
}
break ;
case CMD_VERSION :
SendVersion ( ) ;
break ;
2015-07-23 05:00:52 +08:00
case CMD_STATUS :
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SendStatus ( ) ;
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break ;
case CMD_PING :
cmd_send ( CMD_ACK , 0 , 0 , 0 , 0 , 0 ) ;
break ;
2010-02-21 05:24:25 +08:00
# ifdef WITH_LCD
case CMD_LCD_RESET :
LCDReset ( ) ;
break ;
case CMD_LCD :
LCDSend ( c - > arg [ 0 ] ) ;
break ;
# endif
case CMD_SETUP_WRITE :
case CMD_FINISH_WRITE :
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case CMD_HARDWARE_RESET :
usb_disable ( ) ;
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// (iceman) why this wait?
SpinDelay ( 1000 ) ;
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AT91C_BASE_RSTC - > RSTC_RCR = RST_CONTROL_KEY | AT91C_RSTC_PROCRST ;
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// We're going to reset, and the bootrom will take control.
for ( ; ; ) { }
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break ;
2010-02-21 05:24:25 +08:00
2013-07-09 01:56:05 +08:00
case CMD_START_FLASH :
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if ( common_area . flags . bootrom_present ) {
common_area . command = COMMON_AREA_COMMAND_ENTER_FLASH_MODE ;
}
2013-07-09 01:56:05 +08:00
usb_disable ( ) ;
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AT91C_BASE_RSTC - > RSTC_RCR = RST_CONTROL_KEY | AT91C_RSTC_PROCRST ;
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// We're going to flash, and the bootrom will take control.
for ( ; ; ) { }
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break ;
2010-02-21 05:57:20 +08:00
2010-02-21 05:24:25 +08:00
case CMD_DEVICE_INFO : {
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uint32_t dev_info = DEVICE_INFO_FLAG_OSIMAGE_PRESENT | DEVICE_INFO_FLAG_CURRENT_MODE_OS ;
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if ( common_area . flags . bootrom_present )
dev_info | = DEVICE_INFO_FLAG_BOOTROM_PRESENT ;
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cmd_send ( CMD_DEVICE_INFO , dev_info , 0 , 0 , 0 , 0 ) ;
break ;
}
default :
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Dbprintf ( " %s: 0x%04x " , " unknown command: " , c - > cmd ) ;
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break ;
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}
}
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void __attribute__ ( ( noreturn ) ) AppMain ( void ) {
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2010-02-21 05:24:25 +08:00
SpinDelay ( 100 ) ;
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clear_trace ( ) ;
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2010-02-21 05:24:25 +08:00
if ( common_area . magic ! = COMMON_AREA_MAGIC | | common_area . version ! = 1 ) {
/* Initialize common area */
memset ( & common_area , 0 , sizeof ( common_area ) ) ;
common_area . magic = COMMON_AREA_MAGIC ;
common_area . version = 1 ;
}
common_area . flags . osimage_present = 1 ;
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LEDsoff ( ) ;
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usb_enable ( ) ;
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// The FPGA gets its clock from us from PCK0 output, so set that up.
AT91C_BASE_PIOA - > PIO_BSR = GPIO_PCK0 ;
AT91C_BASE_PIOA - > PIO_PDR = GPIO_PCK0 ;
AT91C_BASE_PMC - > PMC_SCER = AT91C_PMC_PCK0 ;
// PCK0 is PLL clock / 4 = 96Mhz / 4 = 24Mhz
2016-08-26 22:35:30 +08:00
AT91C_BASE_PMC - > PMC_PCKR [ 0 ] = AT91C_PMC_CSS_PLL_CLK | AT91C_PMC_PRES_CLK_4 ; // 4 for 24Mhz pck0, 2 for 48 MHZ pck0
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AT91C_BASE_PIOA - > PIO_OER = GPIO_PCK0 ;
// Reset SPI
AT91C_BASE_SPI - > SPI_CR = AT91C_SPI_SWRST ;
// Reset SSC
AT91C_BASE_SSC - > SSC_CR = AT91C_SSC_SWRST ;
// Load the FPGA image, which we have stored in our flash.
2014-06-20 07:02:59 +08:00
// (the HF version by default)
FpgaDownloadAndGo ( FPGA_BITSTREAM_HF ) ;
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2011-06-10 21:35:10 +08:00
StartTickCount ( ) ;
2012-12-05 07:39:18 +08:00
2010-02-21 05:24:25 +08:00
# ifdef WITH_LCD
LCDInit ( ) ;
# endif
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byte_t rx [ sizeof ( UsbCommand ) ] ;
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2010-02-21 05:24:25 +08:00
for ( ; ; ) {
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WDT_HIT ( ) ;
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// Check if there is a usb packet available
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if ( cmd_receive ( ( UsbCommand * ) rx ) )
UsbPacketReceived ( rx , sizeof ( UsbCommand ) ) ;
2017-10-11 18:48:04 +08:00
2017-09-29 04:33:03 +08:00
// Press button for one second to enter a possible standalone mode
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if ( BUTTON_HELD ( 1000 ) > 0 ) {
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/*
* So this is the trigger to execute a standalone mod . Generic entrypoint by following the standalone / standalone . h headerfile
* All standalone mod " main loop " should be the RunMod ( ) function .
* Since the standalone is either LF or HF , the somewhat bisarr defines below exists .
*/
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# if defined (WITH_LF) && ( defined (WITH_LF_SAMYRUN) || defined (WITH_LF_HIDBRUTE) || defined (WITH_LF_PROXBRUTE) )
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RunMod ( ) ;
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# endif
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# if defined (WITH_ISO14443a) && defined (WITH_HF_YOUNG)
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RunMod ( ) ;
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# endif
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// when here, we are no longer in standalone mode.
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// reseting the variables which keeps track of usb re-attached/configured
//SetUSBreconnect(0);
//SetUSBconfigured(0);
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}
2010-02-21 05:24:25 +08:00
}
}