mirror of
https://github.com/RfidResearchGroup/proxmark3.git
synced 2024-11-12 20:45:28 +08:00
208 lines
5.9 KiB
C
208 lines
5.9 KiB
C
//-----------------------------------------------------------------------------
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//
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// This code is licensed to you under the terms of the GNU GPL, version 2 or,
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// at your option, any later version. See the LICENSE.txt file for the text of
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// the license.
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//-----------------------------------------------------------------------------
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// Low frequency AWID26 commands
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//-----------------------------------------------------------------------------
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#include <stdio.h>
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#include <string.h>
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#include <inttypes.h>
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#include <stdbool.h>
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#include "proxmark3.h"
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#include "ui.h"
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//#include "graph.h"
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#include "cmdmain.h"
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#include "cmdparser.h"
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//#include "cmddata.h"
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#include "cmdlf.h"
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#include "cmdlfawid26.h"
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#include "util.h"
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//#include "data.h"
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static int CmdHelp(const char *Cmd);
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int CmdClone(const char *Cmd)
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{
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char cmdp = param_getchar(Cmd, 0);
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if (strlen(Cmd) < 1 || cmdp == 'h' || cmdp == 'H') {
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PrintAndLog("Usage: lf awid26 clone <facility> <id>");
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PrintAndLog(" [], ");
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PrintAndLog("");
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PrintAndLog(" sample: lf awid26 clone 15 2233");
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return 0;
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}
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//sscanf(Cmd, "%d %d", &facilitycode, &cardno);
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// char block0 = "00107060";
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// char block1 = "00107060";
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// char block2 = "00107060";
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// char block3 = "00107060";
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unsigned char buf[10] = {0x00};
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unsigned char *resp = buf;
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awid26_hex_to_uid(resp, "");
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// PrintAndLog("Writing block %d with data %08X", Block, Data);
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return 0;
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}
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// convert 96 bit AWID FSK data to 8 digit BCD UID
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bool awid26_hex_to_uid(unsigned char *response, char *awid26)
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{
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//uint8_t i, tmp[96], tmp1[7];
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//uint8_t tmp[96] = {0x00};
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//int site;
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//int id;
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//if(!hextobinarray(tmp, awid26))
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return false;
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// // data is in blocks of 4 bits - every 4th bit is parity, except the first
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// // block which is all zeros
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// for(i= 0 ; i < 4 ; ++i)
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// if(tmp[i] != 0x00)
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// return false;
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// // discard 1st block
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// memcpy(tmp, tmp + 4, 92);
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// // check and strip parity on the rest
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// for(i= 1 ; i < 23 ; ++i)
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// if(tmp[(i * 4) - 1] != GetParity(tmp + (i - 1) * 4, ODD, 3))
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// return false;
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// else
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// memcpy((tmp + (i - 1) * 3), tmp + (i - 1) * 4, 3);
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// // discard the rest of the header - 1 more 3 bit block
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// memcpy(tmp, tmp + 3, 66);
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// // next 8 bits is data length - should be 26: 0x1A
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// binarraytohex(tmp1, tmp, 8);
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// if(strcmp(tmp1, "1A") != 0)
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// return false;
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// memcpy(tmp, tmp +8, 58);
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// // standard wiegand parity check - even for 1st 12 bits, odd for 2nd 12
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// if(tmp[0] != GetParity(tmp + 1, EVEN, 12))
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// return false;
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// if(tmp[25] != GetParity(tmp + 13, ODD, 12))
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// return false;
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// // convert to hex, ignoring parity bits
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// if(!binarraytohex(tmp1, tmp + 1, 24))
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// return false;
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// // convert hex to site/id
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// sscanf(tmp1,"%2X%4X", &site, &id);
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// // final output 8 byte BCD
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// sprintf(response,"%03d%05d", site, id);
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return true;
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}
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// convert null-terminated BCD UID (8 digits) to 96 bit awid26 encoded binary array
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bool bcd_to_awid26_bin(unsigned char *awid26, unsigned char *bcd)
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{
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// char i, p, tmp1[8], tmp2[26];
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// int tmpint;
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// if(strlen(bcd) != 8)
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// return false;
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// // convert BCD site code to HEX
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// sscanf(bcd, "%03d", &tmpint);
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// sprintf(tmp2, "%02x", tmpint);
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// memcpy(tmp1, tmp2, 2);
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// // convert BCD ID to HEX
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// sscanf(bcd + 3, "%05d", &tmpint);;
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// sprintf(tmp2, "%04x", tmpint);
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// // copy with trailing NULL
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// memcpy(tmp1 + 2, tmp2, 5);
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// // convert full HEX to binary, leaving room for parity prefix
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// hextobinarray(tmp2 + 1, tmp1);
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// wiegand_add_parity(tmp2, tmp2 + 1, 24);
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// memset(awid26, '\x0', 96);
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// // magic 18 bit awid26 header (we will overwrite the last two bits)
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// hextobinarray(awid26, "011D8");
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// // copy to target leaving space for parity bits
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// for(i= 0, p= 18 ; i < 26 ; ++i, ++p)
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// {
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// // skip target bit if this is a parity location
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// if(!((p + 1) % 4))
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// p += 1;
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// awid26[p]= tmp2[i];
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// }
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// // add parity bits
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// for(i= 1 ; i < 24 ; ++i)
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// awid26[((i + 1) * 4) - 1]= GetParity(&awid26[i * 4], ODD, 3);
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return false;
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}
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// int CmdReadTrace(const char *Cmd)
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// {
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// uint8_t bits[LF_BITSSTREAM_LEN] = {0x00};
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// uint8_t * bitstream = bits;
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// uint8_t si = 5;
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// uint32_t bl0 = PackBits(si, 32, bitstream);
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// uint32_t bl1 = PackBits(si+32, 32, bitstream);
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// uint32_t acl = PackBits(si, 8, bitstream); si += 8;
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// uint32_t mfc = PackBits(si, 8, bitstream); si += 8;
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// uint32_t cid = PackBits(si, 5, bitstream); si += 5;
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// uint32_t icr = PackBits(si, 3, bitstream); si += 3;
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// uint32_t year = PackBits(si, 4, bitstream); si += 4;
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// uint32_t quarter = PackBits(si, 2, bitstream); si += 2;
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// uint32_t lotid = PackBits(si, 12, bitstream); si += 12;
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// uint32_t wafer = PackBits(si, 5, bitstream); si += 5;
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// uint32_t dw = PackBits(si, 15, bitstream);
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// PrintAndLog("");
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// PrintAndLog("-- T55xx Trace Information ----------------------------------");
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// PrintAndLog("-------------------------------------------------------------");
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// PrintAndLog(" ACL Allocation class (ISO/IEC 15963-1) : 0x%02X (%d)", acl, acl);
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// PrintAndLog(" MFC Manufacturer ID (ISO/IEC 7816-6) : 0x%02X (%d)", mfc, mfc);
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// PrintAndLog(" CID : 0x%02X (%d)", cid, cid);
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// PrintAndLog(" ICR IC Revision : %d",icr );
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// return 0;
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// }
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static command_t CommandTable[] =
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{
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{"help", CmdHelp, 1, "This help"},
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{"clone", CmdClone, 1, "<facility> <id> -- clone AWID26 to t55xx tag"},
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{NULL, NULL, 0, NULL}
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};
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int CmdLFAWID26(const char *Cmd)
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{
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CmdsParse(CommandTable, Cmd);
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return 0;
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}
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int CmdHelp(const char *Cmd)
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{
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CmdsHelp(CommandTable);
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return 0;
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}
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