]>
cvs.zerfleddert.de Git - proxmark3-svn/blob - client/cmdlfem4x.c
89f68171bf4ca0d6de8fd13458cb3e2064b21bbf
1 //-----------------------------------------------------------------------------
2 // Copyright (C) 2010 iZsh <izsh at fail0verflow.com>
4 // This code is licensed to you under the terms of the GNU GPL, version 2 or,
5 // at your option, any later version. See the LICENSE.txt file for the text of
7 //-----------------------------------------------------------------------------
8 // Low frequency EM4x commands
9 //-----------------------------------------------------------------------------
11 #include "cmdlfem4x.h"
13 uint64_t g_em410xid
= 0;
15 static int CmdHelp(const char *Cmd
);
17 int CmdEMdemodASK(const char *Cmd
)
19 char cmdp
= param_getchar(Cmd
, 0);
20 uint8_t findone
= (cmdp
== '1') ? 1 : 0;
21 UsbCommand c
= {CMD_EM410X_DEMOD
, {findone
, 0, 0}};
26 /* Read the ID of an EM410x tag.
28 * 1111 1111 1 <-- standard non-repeatable header
29 * XXXX [row parity bit] <-- 10 rows of 5 bits for our 40 bit tag ID
31 * CCCC <-- each bit here is parity for the 10 bits above in corresponding column
32 * 0 <-- stop bit, end of tag
34 int CmdEM410xRead(const char *Cmd
)
39 if(!AskEm410xDemod("", &hi
, &lo
, false)) return 0;
41 PrintAndLog ("EM410x XL pattern found");
43 PrintAndLog("EM410x pattern found: ");
51 int usage_lf_em410x_sim(void) {
52 PrintAndLog("Simulating EM410x tag");
54 PrintAndLog("Usage: lf em 410xsim [h] <uid> <clock>");
55 PrintAndLog("Options:");
56 PrintAndLog(" h - this help");
57 PrintAndLog(" uid - uid (10 HEX symbols)");
58 PrintAndLog(" clock - clock (32|64) (optional)");
59 PrintAndLog("samples:");
60 PrintAndLog(" lf em 410xsim 0F0368568B");
61 PrintAndLog(" lf em 410xsim 0F0368568B 32");
65 // emulate an EM410X tag
66 int CmdEM410xSim(const char *Cmd
)
68 int i
, n
, j
, binary
[4], parity
[4];
69 uint8_t uid
[5] = {0x00};
71 char cmdp
= param_getchar(Cmd
, 0);
72 if (cmdp
== 'h' || cmdp
== 'H') return usage_lf_em410x_sim();
74 /* clock is 64 in EM410x tags */
77 if (param_gethex(Cmd
, 0, uid
, 10)) {
78 PrintAndLog("UID must include 10 HEX symbols");
82 param_getdec(Cmd
, 1, &clock
);
84 PrintAndLog("Starting simulating UID %02X%02X%02X%02X%02X clock: %d", uid
[0],uid
[1],uid
[2],uid
[3],uid
[4],clock
);
85 PrintAndLog("Press pm3-button to about simulation");
90 /* write 9 start bits */
91 for (i
= 0; i
< 9; i
++)
92 AppendGraph(0, clock
, 1);
94 /* for each hex char */
95 parity
[0] = parity
[1] = parity
[2] = parity
[3] = 0;
96 for (i
= 0; i
< 10; i
++)
98 /* read each hex char */
99 sscanf(&Cmd
[i
], "%1x", &n
);
100 for (j
= 3; j
>= 0; j
--, n
/= 2)
103 /* append each bit */
104 AppendGraph(0, clock
, binary
[0]);
105 AppendGraph(0, clock
, binary
[1]);
106 AppendGraph(0, clock
, binary
[2]);
107 AppendGraph(0, clock
, binary
[3]);
109 /* append parity bit */
110 AppendGraph(0, clock
, binary
[0] ^ binary
[1] ^ binary
[2] ^ binary
[3]);
112 /* keep track of column parity */
113 parity
[0] ^= binary
[0];
114 parity
[1] ^= binary
[1];
115 parity
[2] ^= binary
[2];
116 parity
[3] ^= binary
[3];
120 AppendGraph(0, clock
, parity
[0]);
121 AppendGraph(0, clock
, parity
[1]);
122 AppendGraph(0, clock
, parity
[2]);
123 AppendGraph(0, clock
, parity
[3]);
126 AppendGraph(1, clock
, 0);
128 CmdLFSim("0"); //240 start_gap.
132 /* Function is equivalent of lf read + data samples + em410xread
133 * looped until an EM410x tag is detected
135 * Why is CmdSamples("16000")?
136 * TBD: Auto-grow sample size based on detected sample rate. IE: If the
137 * rate gets lower, then grow the number of samples
138 * Changed by martin, 4000 x 4 = 16000,
139 * see http://www.proxmark.org/forum/viewtopic.php?pid=7235#p7235
141 int CmdEM410xWatch(const char *Cmd
) {
144 printf("\naborted via keyboard!\n");
148 getSamples("6144",true);
149 } while (!CmdEM410xRead(""));
153 //currently only supports manchester modulations
155 int CmdEM410xWatchnSpoof(const char *Cmd
)
157 // loops if the captured ID was in XL-format.
159 PrintAndLog("# Replaying captured ID: %" PRIu64
, g_em410xid
);
164 int CmdEM410xWrite(const char *Cmd
)
166 uint64_t id
= 0xFFFFFFFFFFFFFFFF; // invalid id value
167 int card
= 0xFF; // invalid card value
168 uint32_t clock
= 0; // invalid clock value
170 sscanf(Cmd
, "%" PRIx64
" %d %d", &id
, &card
, &clock
);
173 if (id
== 0xFFFFFFFFFFFFFFFF) {
174 PrintAndLog("Error! ID is required.\n");
177 if (id
>= 0x10000000000) {
178 PrintAndLog("Error! Given EM410x ID is longer than 40 bits.\n");
184 PrintAndLog("Error! Card type required.\n");
188 PrintAndLog("Error! Bad card type selected.\n");
197 // Allowed clock rates: 16, 32, 40 and 64
198 if ((clock
!= 16) && (clock
!= 32) && (clock
!= 64) && (clock
!= 40)) {
199 PrintAndLog("Error! Clock rate %d not valid. Supported clock rates are 16, 32, 40 and 64.\n", clock
);
204 PrintAndLog("Writing %s tag with UID 0x%010" PRIx64
" (clock rate: %d)", "T55x7", id
, clock
);
205 // NOTE: We really should pass the clock in as a separate argument, but to
206 // provide for backwards-compatibility for older firmware, and to avoid
207 // having to add another argument to CMD_EM410X_WRITE_TAG, we just store
208 // the clock rate in bits 8-15 of the card value
209 card
= (card
& 0xFF) | ((clock
<< 8) & 0xFF00);
210 } else if (card
== 0) {
211 PrintAndLog("Writing %s tag with UID 0x%010" PRIx64
, "T5555", id
, clock
);
212 card
= (card
& 0xFF) | ((clock
<< 8) & 0xFF00);
214 PrintAndLog("Error! Bad card type selected.\n");
218 UsbCommand c
= {CMD_EM410X_WRITE_TAG
, {card
, (uint32_t)(id
>> 32), (uint32_t)id
}};
223 bool EM_EndParityTest(uint8_t *BitStream
, size_t size
, uint8_t rows
, uint8_t cols
, uint8_t pType
)
225 if (rows
*cols
>size
) return FALSE
;
227 //assume last col is a parity and do not test
228 for (uint8_t colNum
= 0; colNum
< cols
-1; colNum
++) {
229 for (uint8_t rowNum
= 0; rowNum
< rows
; rowNum
++) {
230 colP
^= BitStream
[(rowNum
*cols
)+colNum
];
232 if (colP
!= pType
) return FALSE
;
237 bool EM_ByteParityTest(uint8_t *BitStream
, size_t size
, uint8_t rows
, uint8_t cols
, uint8_t pType
)
239 if (rows
*cols
>size
) return FALSE
;
241 //assume last row is a parity row and do not test
242 for (uint8_t rowNum
= 0; rowNum
< rows
-1; rowNum
++) {
243 for (uint8_t colNum
= 0; colNum
< cols
; colNum
++) {
244 rowP
^= BitStream
[(rowNum
*cols
)+colNum
];
246 if (rowP
!= pType
) return FALSE
;
251 // EM word parity test.
252 // 9*5 = 45 bits in total
261 bool EMwordparitytest(uint8_t *bits
){
263 // last row/col parity must be 0
264 if (bits
[44] != 0 ) return FALSE
;
267 uint8_t c1
= bytebits_to_byte(bits
, 8) ^ bytebits_to_byte(bits
+9, 8) ^ bytebits_to_byte(bits
+18, 8) ^ bytebits_to_byte(bits
+27, 8);
268 uint8_t c2
= bytebits_to_byte(bits
+36, 8);
269 if ( c1
!= c2
) return FALSE
;
273 for ( uint8_t i
= 0; i
< 36; ++i
) {
276 if ( i
>0 && (i
% 9) == 0) {
289 //////////////// 4050 / 4450 commands
290 int usage_lf_em4x50_dump(void) {
291 PrintAndLog("Dump EM4x50/EM4x69. Tag must be on antenna. ");
293 PrintAndLog("Usage: lf em 4x50dump [h] <pwd>");
294 PrintAndLog("Options:");
295 PrintAndLog(" h - this help");
296 PrintAndLog(" pwd - password (hex) (optional)");
297 PrintAndLog("samples:");
298 PrintAndLog(" lf em 4x50dump");
299 PrintAndLog(" lf em 4x50dump 11223344");
302 int usage_lf_em4x50_read(void) {
303 PrintAndLog("Read EM 4x50/EM4x69. Tag must be on antenna. ");
305 PrintAndLog("Usage: lf em 4x50read [h] <address> <pwd>");
306 PrintAndLog("Options:");
307 PrintAndLog(" h - this help");
308 PrintAndLog(" address - memory address to read. (0-15)");
309 PrintAndLog(" pwd - password (hex) (optional)");
310 PrintAndLog("samples:");
311 PrintAndLog(" lf em 4x50read 1");
312 PrintAndLog(" lf em 4x50read 1 11223344");
315 int usage_lf_em4x50_write(void) {
316 PrintAndLog("Write EM 4x50/4x69. Tag must be on antenna. ");
318 PrintAndLog("Usage: lf em 4x50write [h] <address> <data> <pwd>");
319 PrintAndLog("Options:");
320 PrintAndLog(" h - this help");
321 PrintAndLog(" address - memory address to write to. (0-15)");
322 PrintAndLog(" data - data to write (hex)");
323 PrintAndLog(" pwd - password (hex) (optional)");
324 PrintAndLog("samples:");
325 PrintAndLog(" lf em 4x50write 1 deadc0de");
326 PrintAndLog(" lf em 4x50write 1 deadc0de 11223344");
330 uint32_t OutputEM4x50_Block(uint8_t *BitStream
, size_t size
, bool verbose
, bool pTest
)
332 if (size
<45) return 0;
334 uint32_t code
= bytebits_to_byte(BitStream
,8);
335 code
= code
<<8 | bytebits_to_byte(BitStream
+9,8);
336 code
= code
<<8 | bytebits_to_byte(BitStream
+18,8);
337 code
= code
<<8 | bytebits_to_byte(BitStream
+27,8);
339 if (verbose
|| g_debugMode
){
340 for (uint8_t i
= 0; i
<5; i
++){
341 if (i
== 4) PrintAndLog(""); //parity byte spacer
342 PrintAndLog("%d%d%d%d%d%d%d%d %d -> 0x%02x",
352 bytebits_to_byte(BitStream
+i
*9,8)
356 PrintAndLog("Parity Passed");
358 PrintAndLog("Parity Failed");
364 /* Read the transmitted data of an EM4x50 tag from the graphbuffer
367 * XXXXXXXX [row parity bit (even)] <- 8 bits plus parity
368 * XXXXXXXX [row parity bit (even)] <- 8 bits plus parity
369 * XXXXXXXX [row parity bit (even)] <- 8 bits plus parity
370 * XXXXXXXX [row parity bit (even)] <- 8 bits plus parity
371 * CCCCCCCC <- column parity bits
373 * LW <- Listen Window
375 * This pattern repeats for every block of data being transmitted.
376 * Transmission starts with two Listen Windows (LW - a modulated
377 * pattern of 320 cycles each (32/32/128/64/64)).
379 * Note that this data may or may not be the UID. It is whatever data
380 * is stored in the blocks defined in the control word First and Last
381 * Word Read values. UID is stored in block 32.
383 //completed by Marshmellow
384 int EM4x50Read(const char *Cmd
, bool verbose
) {
385 uint8_t fndClk
[] = {8,16,32,40,50,64,128};
389 int i
, j
, startblock
, skip
, block
, start
, end
, low
, high
, minClk
;
390 bool complete
= false;
391 int tmpbuff
[MAX_GRAPH_TRACE_LEN
/ 64];
397 memset(tmpbuff
, 0, MAX_GRAPH_TRACE_LEN
/ 64);
399 // get user entry if any
400 sscanf(Cmd
, "%i %i", &clk
, &invert
);
402 // save GraphBuffer - to restore it later
405 // first get high and low values
406 for (i
= 0; i
< GraphTraceLen
; i
++) {
407 if (GraphBuffer
[i
] > high
)
408 high
= GraphBuffer
[i
];
409 else if (GraphBuffer
[i
] < low
)
410 low
= GraphBuffer
[i
];
416 // get to first full low to prime loop and skip incomplete first pulse
417 while ((GraphBuffer
[i
] < high
) && (i
< GraphTraceLen
))
419 while ((GraphBuffer
[i
] > low
) && (i
< GraphTraceLen
))
423 // populate tmpbuff buffer with pulse lengths
424 while (i
< GraphTraceLen
) {
425 // measure from low to low
426 while ((GraphBuffer
[i
] > low
) && (i
< GraphTraceLen
))
429 while ((GraphBuffer
[i
] < high
) && (i
< GraphTraceLen
))
431 while ((GraphBuffer
[i
] > low
) && (i
< GraphTraceLen
))
433 if (j
>=(MAX_GRAPH_TRACE_LEN
/64)) {
436 tmpbuff
[j
++]= i
- start
;
437 if (i
-start
< minClk
&& i
< GraphTraceLen
) {
443 for (uint8_t clkCnt
= 0; clkCnt
<7; clkCnt
++) {
444 tol
= fndClk
[clkCnt
]/8;
445 if (minClk
>= fndClk
[clkCnt
]-tol
&& minClk
<= fndClk
[clkCnt
]+1) {
451 PrintAndLog("ERROR: EM4x50 - didn't find a clock");
456 // look for data start - should be 2 pairs of LW (pulses of clk*3,clk*2)
458 for (i
= 0; i
< j
- 4 ; ++i
) {
460 if (tmpbuff
[i
] >= clk
*3-tol
&& tmpbuff
[i
] <= clk
*3+tol
) //3 clocks
461 if (tmpbuff
[i
+1] >= clk
*2-tol
&& tmpbuff
[i
+1] <= clk
*2+tol
) //2 clocks
462 if (tmpbuff
[i
+2] >= clk
*3-tol
&& tmpbuff
[i
+2] <= clk
*3+tol
) //3 clocks
463 if (tmpbuff
[i
+3] >= clk
-tol
) //1.5 to 2 clocks - depends on bit following
471 // skip over the remainder of LW
472 skip
+= tmpbuff
[i
+1] + tmpbuff
[i
+2] + clk
;
473 if (tmpbuff
[i
+3]>clk
)
474 phaseoff
= tmpbuff
[i
+3]-clk
;
477 // now do it again to find the end
479 for (i
+= 3; i
< j
- 4 ; ++i
) {
481 if (tmpbuff
[i
] >= clk
*3-tol
&& tmpbuff
[i
] <= clk
*3+tol
) //3 clocks
482 if (tmpbuff
[i
+1] >= clk
*2-tol
&& tmpbuff
[i
+1] <= clk
*2+tol
) //2 clocks
483 if (tmpbuff
[i
+2] >= clk
*3-tol
&& tmpbuff
[i
+2] <= clk
*3+tol
) //3 clocks
484 if (tmpbuff
[i
+3] >= clk
-tol
) //1.5 to 2 clocks - depends on bit following
492 if (verbose
|| g_debugMode
) {
494 PrintAndLog("\nNote: one block = 50 bits (32 data, 12 parity, 6 marker)");
496 PrintAndLog("No data found!, clock tried:%d",clk
);
497 PrintAndLog("Try again with more samples.");
498 PrintAndLog(" or after a 'data askedge' command to clean up the read");
501 } else if (start
< 0) return 0;
503 snprintf(tmp2
, sizeof(tmp2
),"%d %d 1000 %d", clk
, invert
, clk
*47);
504 // get rid of leading crap
505 snprintf(tmp
, sizeof(tmp
), "%i", skip
);
508 bool AllPTest
= true;
509 // now work through remaining buffer printing out data blocks
513 if (verbose
|| g_debugMode
) PrintAndLog("\nBlock %i:", block
);
516 // look for LW before start of next block
517 for ( ; i
< j
- 4 ; ++i
) {
519 if (tmpbuff
[i
] >= clk
*3-tol
&& tmpbuff
[i
] <= clk
*3+tol
)
520 if (tmpbuff
[i
+1] >= clk
-tol
)
523 if (i
>= j
-4) break; //next LW not found
525 if (tmpbuff
[i
+1]>clk
)
526 phaseoff
= tmpbuff
[i
+1]-clk
;
530 if (ASKDemod(tmp2
, false, false, 1) < 1) {
534 //set DemodBufferLen to just one block
535 DemodBufferLen
= skip
/clk
;
537 pTest
= EM_ByteParityTest(DemodBuffer
,DemodBufferLen
,5,9,0);
538 pTest
&= EM_EndParityTest(DemodBuffer
,DemodBufferLen
,5,9,0);
541 Code
[block
] = OutputEM4x50_Block(DemodBuffer
,DemodBufferLen
,verbose
, pTest
);
542 if (g_debugMode
) PrintAndLog("\nskipping %d samples, bits:%d", skip
, skip
/clk
);
543 //skip to start of next block
544 snprintf(tmp
,sizeof(tmp
),"%i",skip
);
547 if (i
>= end
) break; //in case chip doesn't output 6 blocks
550 if (verbose
|| g_debugMode
|| AllPTest
){
552 PrintAndLog("*** Warning!");
553 PrintAndLog("Partial data - no end found!");
554 PrintAndLog("Try again with more samples.");
556 PrintAndLog("Found data at sample: %i - using clock: %i", start
, clk
);
558 for (block
=0; block
< end
; block
++){
559 PrintAndLog("Block %d: %08x",block
,Code
[block
]);
562 PrintAndLog("Parities Passed");
564 PrintAndLog("Parities Failed");
565 PrintAndLog("Try cleaning the read samples with 'data askedge'");
569 //restore GraphBuffer
571 return (int)AllPTest
;
574 int CmdEM4x50Read(const char *Cmd
) {
575 uint8_t ctmp
= param_getchar(Cmd
, 0);
576 if ( ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x50_read();
577 return EM4x50Read(Cmd
, true);
579 int CmdEM4x50Write(const char *Cmd
){
580 uint8_t ctmp
= param_getchar(Cmd
, 0);
581 if ( ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x50_write();
582 PrintAndLog("no implemented yet");
585 int CmdEM4x50Dump(const char *Cmd
){
586 uint8_t ctmp
= param_getchar(Cmd
, 0);
587 if ( ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x50_dump();
588 PrintAndLog("no implemented yet");
592 #define EM_PREAMBLE_LEN 6
593 // download samples from device and copy to Graphbuffer
594 bool downloadSamplesEM(){
596 // 8 bit preamble + 32 bit word response (max clock (128) * 40bits = 5120 samples)
598 GetFromBigBuf(got
, sizeof(got
), 0);
599 if ( !WaitForResponseTimeout(CMD_ACK
, NULL
, 2500) ) {
600 PrintAndLog("command execution time out");
603 setGraphBuf(got
, sizeof(got
));
608 bool doPreambleSearch(size_t *startIdx
){
611 if ( DemodBufferLen
< EM_PREAMBLE_LEN
) {
612 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM4305 demodbuffer too small");
616 // set size to 20 to only test first 14 positions for the preamble
617 size_t size
= (20 > DemodBufferLen
) ? DemodBufferLen
: 20;
619 // skip first two 0 bits as they might have been missed in the demod
620 uint8_t preamble
[EM_PREAMBLE_LEN
] = {0,0,1,0,1,0};
622 if ( !preambleSearchEx(DemodBuffer
, preamble
, EM_PREAMBLE_LEN
, &size
, startIdx
, TRUE
)) {
623 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM4305 preamble not found :: %d", *startIdx
);
631 if (!GetFskClock("", FALSE
, FALSE
)) {
632 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: FSK clock failed");
636 int ans
= FSKrawDemod("0 0", FALSE
);
638 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: FSK Demod failed");
643 // PSK clocks should be easy to detect ( but difficult to demod a non-repeating pattern... )
645 int ans
= GetPskClock("", FALSE
, FALSE
);
647 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: PSK clock failed");
651 //try psk1 -- 0 0 6 (six errors?!?)
652 ans
= PSKDemod("0 0 6", FALSE
);
654 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: PSK1 Demod failed");
657 ans
= PSKDemod("0 1 6", FALSE
);
659 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: PSK1 inverted Demod failed");
663 // either PSK1 or PSK1 inverted is ok from here.
664 // lets check PSK2 later.
667 // try manchester - NOTE: ST only applies to T55x7 tags.
668 bool detectASK_MAN(){
669 bool stcheck
= FALSE
;
670 int ans
= ASKDemod_ext("0 0 0", FALSE
, FALSE
, 1, &stcheck
);
672 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: ASK/Manchester Demod failed");
678 int ans
= ASKbiphaseDemod("0 0 1", FALSE
);
680 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: ASK/biphase normal demod failed");
682 ans
= ASKbiphaseDemod("0 1 1", FALSE
);
684 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM: ASK/biphase inverted demod failed");
691 // param: idx - start index in demoded data.
692 bool setDemodBufferEM(uint32_t *word
, size_t idx
){
694 //test for even parity bits.
695 uint8_t parity
[45] = {0};
696 memcpy( parity
, DemodBuffer
, 45);
697 if (!EMwordparitytest(parity
) ){
698 PrintAndLog("DEBUG: Error - EM Parity tests failed");
702 // test for even parity bits and remove them. (leave out the end row of parities so 36 bits)
703 if (!removeParity(DemodBuffer
, idx
+ EM_PREAMBLE_LEN
, 9, 0, 36)) {
704 if (g_debugMode
) PrintAndLog("DEBUG: Error - EM, failed removing parity");
707 setDemodBuf(DemodBuffer
, 32, 0);
708 *word
= bytebits_to_byteLSBF(DemodBuffer
, 32);
712 // FSK, PSK, ASK/MANCHESTER, ASK/BIPHASE, ASK/DIPHASE
713 // should cover 90% of known used configs
714 // the rest will need to be manually demoded for now...
715 bool demodEM4x05resp(uint32_t *word
) {
718 if (detectASK_MAN() && doPreambleSearch( &idx
))
719 return setDemodBufferEM(word
, idx
);
721 if (detectASK_BI() && doPreambleSearch( &idx
))
722 return setDemodBufferEM(word
, idx
);
724 if (detectFSK() && doPreambleSearch( &idx
))
725 return setDemodBufferEM(word
, idx
);
728 if (doPreambleSearch( &idx
))
729 return setDemodBufferEM(word
, idx
);
731 psk1TOpsk2(DemodBuffer
, DemodBufferLen
);
732 if (doPreambleSearch( &idx
))
733 return setDemodBufferEM(word
, idx
);
738 //////////////// 4205 / 4305 commands
739 int usage_lf_em4x05_dump(void) {
740 PrintAndLog("Dump EM4x05/EM4x69. Tag must be on antenna. ");
742 PrintAndLog("Usage: lf em 4x05dump [h] <pwd>");
743 PrintAndLog("Options:");
744 PrintAndLog(" h - this help");
745 PrintAndLog(" pwd - password (hex) (optional)");
746 PrintAndLog("samples:");
747 PrintAndLog(" lf em 4x05dump");
748 PrintAndLog(" lf em 4x05dump 11223344");
751 int usage_lf_em4x05_read(void) {
752 PrintAndLog("Read EM4x05/EM4x69. Tag must be on antenna. ");
754 PrintAndLog("Usage: lf em 4x05read [h] <address> <pwd>");
755 PrintAndLog("Options:");
756 PrintAndLog(" h - this help");
757 PrintAndLog(" address - memory address to read. (0-15)");
758 PrintAndLog(" pwd - password (hex) (optional)");
759 PrintAndLog("samples:");
760 PrintAndLog(" lf em 4x05read 1");
761 PrintAndLog(" lf em 4x05read 1 11223344");
764 int usage_lf_em4x05_write(void) {
765 PrintAndLog("Write EM4x05/4x69. Tag must be on antenna. ");
767 PrintAndLog("Usage: lf em 4x05write [h] <address> <data> <pwd>");
768 PrintAndLog("Options:");
769 PrintAndLog(" h - this help");
770 PrintAndLog(" address - memory address to write to. (0-15)");
771 PrintAndLog(" data - data to write (hex)");
772 PrintAndLog(" pwd - password (hex) (optional)");
773 PrintAndLog("samples:");
774 PrintAndLog(" lf em 4x05write 1 deadc0de");
775 PrintAndLog(" lf em 4x05write 1 deadc0de 11223344");
778 int usage_lf_em4x05_info(void) {
779 PrintAndLog("Tag information EM4205/4305/4469//4569 tags. Tag must be on antenna.");
781 PrintAndLog("Usage: lf em 4x05info [h] <pwd>");
782 PrintAndLog("Options:");
783 PrintAndLog(" h - this help");
784 PrintAndLog(" pwd - password (hex) (optional)");
785 PrintAndLog("samples:");
786 PrintAndLog(" lf em 4x05info");
787 PrintAndLog(" lf em 4x05info deadc0de");
791 int EM4x05ReadWord_ext(uint8_t addr
, uint32_t pwd
, bool usePwd
, uint32_t *word
) {
792 UsbCommand c
= {CMD_EM4X_READ_WORD
, {addr
, pwd
, usePwd
}};
793 clearCommandBuffer();
796 if (!WaitForResponseTimeout(CMD_ACK
, &resp
, 2500)){
797 PrintAndLog("Command timed out");
800 if ( !downloadSamplesEM() ) {
803 int testLen
= (GraphTraceLen
< 1000) ? GraphTraceLen
: 1000;
804 if (graphJustNoise(GraphBuffer
, testLen
)) {
805 PrintAndLog("no tag not found");
808 return demodEM4x05resp(word
);
811 int CmdEM4x05Dump(const char *Cmd
) {
815 uint8_t ctmp
= param_getchar(Cmd
, 0);
816 if ( ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x05_dump();
818 // for now use default input of 1 as invalid (unlikely 1 will be a valid password...)
819 pwd
= param_get32ex(Cmd
, 0, 1, 16);
826 PrintAndLog("Addr | data | ascii");
827 PrintAndLog("-----+--------+------");
828 for (; addr
< 16; addr
++) {
832 PrintAndLog(" %02u | %08X", addr
, pwd
, word
);
834 PrintAndLog(" 02 | cannot read");
837 success
&= EM4x05ReadWord_ext(addr
, pwd
, usePwd
, &word
);
844 int CmdEM4x05Read(const char *Cmd
) {
848 uint8_t ctmp
= param_getchar(Cmd
, 0);
849 if ( strlen(Cmd
) == 0 || ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x05_read();
851 addr
= param_get8ex(Cmd
, 0, 50, 10);
852 pwd
= param_get32ex(Cmd
, 1, 1, 16);
855 PrintAndLog("Address must be between 0 and 15");
859 PrintAndLog("Reading address %02u", addr
);
863 PrintAndLog("Reading address %02u | password %08X", addr
, pwd
);
867 int isOk
= EM4x05ReadWord_ext(addr
, pwd
, usePwd
, &word
);
869 PrintAndLog("Address %02d | %08X - %s", addr
, word
, (addr
> 13) ? "Lock" : "");
871 PrintAndLog("Read Address %02d | failed",addr
);
875 int CmdEM4x05Write(const char *Cmd
) {
876 uint8_t ctmp
= param_getchar(Cmd
, 0);
877 if ( strlen(Cmd
) == 0 || ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x05_write();
880 uint8_t addr
= 50; // default to invalid address
881 uint32_t data
= 0; // default to blank data
882 uint32_t pwd
= 1; // default to blank password
884 addr
= param_get8ex(Cmd
, 0, 50, 10);
885 data
= param_get32ex(Cmd
, 1, 0, 16);
886 pwd
= param_get32ex(Cmd
, 2, 1, 16);
889 PrintAndLog("Address must be between 0 and 15");
893 PrintAndLog("Writing address %d data %08X", addr
, data
);
896 PrintAndLog("Writing address %d data %08X using password %08X", addr
, data
, pwd
);
899 uint16_t flag
= (addr
<< 8 ) | usePwd
;
901 UsbCommand c
= {CMD_EM4X_WRITE_WORD
, {flag
, data
, pwd
}};
902 clearCommandBuffer();
905 if (!WaitForResponseTimeout(CMD_ACK
, &resp
, 2000)){
906 PrintAndLog("Error occurred, device did not respond during write operation.");
910 if (!downloadSamplesEM())
913 //need 0 bits demoded (after preamble) to verify write cmd
915 int isOk
= demodEM4x05resp(&dummy
);
917 PrintAndLog("Write Verified");
919 PrintAndLog("Write could not be verified");
923 void printEM4x05config(uint32_t wordData
) {
924 uint16_t datarate
= (((wordData
& 0x3F)+1)*2);
925 uint8_t encoder
= ((wordData
>> 6) & 0xF);
927 memset(enc
,0,sizeof(enc
));
929 uint8_t PSKcf
= (wordData
>> 10) & 0x3;
931 memset(cf
,0,sizeof(cf
));
932 uint8_t delay
= (wordData
>> 12) & 0x3;
934 memset(cdelay
,0,sizeof(cdelay
));
935 uint8_t LWR
= (wordData
>> 14) & 0xF; //last word read
938 case 0: snprintf(enc
,sizeof(enc
),"NRZ"); break;
939 case 1: snprintf(enc
,sizeof(enc
),"Manchester"); break;
940 case 2: snprintf(enc
,sizeof(enc
),"Biphase"); break;
941 case 3: snprintf(enc
,sizeof(enc
),"Miller"); break;
942 case 4: snprintf(enc
,sizeof(enc
),"PSK1"); break;
943 case 5: snprintf(enc
,sizeof(enc
),"PSK2"); break;
944 case 6: snprintf(enc
,sizeof(enc
),"PSK3"); break;
945 case 7: snprintf(enc
,sizeof(enc
),"Unknown"); break;
946 case 8: snprintf(enc
,sizeof(enc
),"FSK1"); break;
947 case 9: snprintf(enc
,sizeof(enc
),"FSK2"); break;
948 default: snprintf(enc
,sizeof(enc
),"Unknown"); break;
952 case 0: snprintf(cf
,sizeof(cf
),"RF/2"); break;
953 case 1: snprintf(cf
,sizeof(cf
),"RF/8"); break;
954 case 2: snprintf(cf
,sizeof(cf
),"RF/4"); break;
955 case 3: snprintf(cf
,sizeof(cf
),"unknown"); break;
959 case 0: snprintf(cdelay
, sizeof(cdelay
),"no delay"); break;
960 case 1: snprintf(cdelay
, sizeof(cdelay
),"BP/8 or 1/8th bit period delay"); break;
961 case 2: snprintf(cdelay
, sizeof(cdelay
),"BP/4 or 1/4th bit period delay"); break;
962 case 3: snprintf(cdelay
, sizeof(cdelay
),"no delay"); break;
964 PrintAndLog("ConfigWord: %08X (Word 4)\n", wordData
);
965 PrintAndLog("Config Breakdown:", wordData
);
966 PrintAndLog(" Data Rate: %02u | RF/%u", wordData
& 0x3F, datarate
);
967 PrintAndLog(" Encoder: %u | %s", encoder
, enc
);
968 PrintAndLog(" PSK CF: %u | %s", PSKcf
, cf
);
969 PrintAndLog(" Delay: %u | %s", delay
, cdelay
);
970 PrintAndLog(" LastWordR: %02u | Address of last word for default read", LWR
);
971 PrintAndLog(" ReadLogin: %u | Read Login is %s", (wordData
& 0x40000)>>18, (wordData
& 0x40000) ? "Required" : "Not Required");
972 PrintAndLog(" ReadHKL: %u | Read Housekeeping Words Login is %s", (wordData
& 0x80000)>>19, (wordData
& 0x80000) ? "Required" : "Not Required");
973 PrintAndLog("WriteLogin: %u | Write Login is %s", (wordData
& 0x100000)>>20, (wordData
& 0x100000) ? "Required" : "Not Required");
974 PrintAndLog(" WriteHKL: %u | Write Housekeeping Words Login is %s", (wordData
& 0x200000)>>21, (wordData
& 0x200000) ? "Required" : "Not Required");
975 PrintAndLog(" R.A.W.: %u | Read After Write is %s", (wordData
& 0x400000)>>22, (wordData
& 0x400000) ? "On" : "Off");
976 PrintAndLog(" Disable: %u | Disable Command is %s", (wordData
& 0x800000)>>23, (wordData
& 0x800000) ? "Accepted" : "Not Accepted");
977 PrintAndLog(" R.T.F.: %u | Reader Talk First is %s", (wordData
& 0x1000000)>>24, (wordData
& 0x1000000) ? "Enabled" : "Disabled");
978 PrintAndLog(" Pigeon: %u | Pigeon Mode is %s\n", (wordData
& 0x4000000)>>26, (wordData
& 0x4000000) ? "Enabled" : "Disabled");
981 void printEM4x05info(uint32_t block0
, uint32_t serial
) {
983 uint8_t chipType
= (block0
>> 1) & 0xF;
984 uint8_t cap
= (block0
>> 5) & 3;
985 uint16_t custCode
= (block0
>> 9) & 0x3FF;
988 case 9: PrintAndLog("\n Chip Type: %u | EM4305", chipType
); break;
989 case 4: PrintAndLog(" Chip Type: %u | Unknown", chipType
); break;
990 case 2: PrintAndLog(" Chip Type: %u | EM4469", chipType
); break;
991 //add more here when known
992 default: PrintAndLog(" Chip Type: %u Unknown", chipType
); break;
996 case 3: PrintAndLog(" Cap Type: %u | 330pF",cap
); break;
997 case 2: PrintAndLog(" Cap Type: %u | %spF",cap
, (chipType
==2)? "75":"210"); break;
998 case 1: PrintAndLog(" Cap Type: %u | 250pF",cap
); break;
999 case 0: PrintAndLog(" Cap Type: %u | no resonant capacitor",cap
); break;
1000 default: PrintAndLog(" Cap Type: %u | unknown",cap
); break;
1003 PrintAndLog(" Cust Code: %03u | %s", custCode
, (custCode
== 0x200) ? "Default": "Unknown");
1005 PrintAndLog("\n Serial #: %08X\n", serial
);
1008 void printEM4x05ProtectionBits(uint32_t word
) {
1009 for (uint8_t i
= 0; i
< 15; i
++) {
1010 PrintAndLog(" Word: %02u | %s", i
, (((1 << i
) & word
) || i
< 2) ? "Is Write Locked" : "Is Not Write Locked");
1012 PrintAndLog(" Word: %02u | %s", i
+1, (((1 << i
) & word
) || i
< 2) ? "Is Write Locked" : "Is Not Write Locked");
1016 //quick test for EM4x05/EM4x69 tag
1017 bool EM4x05IsBlock0(uint32_t *word
) {
1018 return EM4x05ReadWord_ext(0, 0, FALSE
, word
);
1021 int CmdEM4x05Info(const char *Cmd
) {
1022 #define EM_SERIAL_BLOCK 1
1023 #define EM_CONFIG_BLOCK 4
1024 #define EM_PROT1_BLOCK 14
1025 #define EM_PROT2_BLOCK 15
1027 uint32_t word
= 0, block0
= 0, serial
= 0;
1028 bool usePwd
= false;
1029 uint8_t ctmp
= param_getchar(Cmd
, 0);
1030 if ( ctmp
== 'H' || ctmp
== 'h' ) return usage_lf_em4x05_info();
1032 // for now use default input of 1 as invalid (unlikely 1 will be a valid password...)
1033 pwd
= param_get32ex(Cmd
, 0, 1, 16);
1038 // read word 0 (chip info)
1039 // block 0 can be read even without a password.
1040 if ( !EM4x05IsBlock0(&block0
) )
1043 // read word 1 (serial #) doesn't need pwd
1044 // continue if failed, .. non blocking fail.
1045 EM4x05ReadWord_ext(EM_SERIAL_BLOCK
, 0, false, &serial
);
1046 printEM4x05info(block0
, serial
);
1048 // read word 4 (config block)
1049 // needs password if one is set
1050 if ( EM4x05ReadWord_ext(EM_CONFIG_BLOCK
, pwd
, usePwd
, &word
) != 1 )
1053 printEM4x05config(word
);
1055 // read word 14 and 15 to see which is being used for the protection bits
1056 if ( EM4x05ReadWord_ext(EM_PROT1_BLOCK
, pwd
, usePwd
, &word
) != 1 ) {
1059 // if status bit says this is not the used protection word
1060 if (!(word
& 0x8000)) {
1061 if ( EM4x05ReadWord_ext(EM_PROT2_BLOCK
, pwd
, usePwd
, &word
) != 1 )
1064 //something went wrong
1065 if (!(word
& 0x8000)) return 0;
1066 printEM4x05ProtectionBits(word
);
1070 static command_t CommandTable
[] = {
1071 {"help", CmdHelp
, 1, "This help"},
1072 {"410xdemod", CmdEMdemodASK
, 0, "[findone] -- Extract ID from EM410x tag (option 0 for continuous loop, 1 for only 1 tag)"},
1073 {"410xread", CmdEM410xRead
, 1, "[clock rate] -- Extract ID from EM410x tag in GraphBuffer"},
1074 {"410xsim", CmdEM410xSim
, 0, "simulate EM410x tag"},
1075 {"410xwatch", CmdEM410xWatch
, 0, "['h'] -- Watches for EM410x 125/134 kHz tags (option 'h' for 134)"},
1076 {"410xspoof", CmdEM410xWatchnSpoof
, 0, "['h'] --- Watches for EM410x 125/134 kHz tags, and replays them. (option 'h' for 134)" },
1077 {"410xwrite", CmdEM410xWrite
, 0, "<UID> <'0' T5555> <'1' T55x7> [clock rate] -- Write EM410x UID to T5555(Q5) or T55x7 tag, optionally setting clock rate"},
1078 {"4x05dump", CmdEM4x05Dump
, 0, "dump EM4205/4305 tag"},
1079 {"4x05info", CmdEM4x05Info
, 0, "tag information EM4x05/EM4x69"},
1080 {"4x05read", CmdEM4x05Read
, 0, "read word data from EM4205/4305"},
1081 {"4x05write", CmdEM4x05Write
, 0, "write word data to EM4205/4305"},
1082 {"4x50read", CmdEM4x50Read
, 0, "read word data from EM4x50"},
1083 {"4x50write", CmdEM4x50Write
, 0, "write word data to EM4x50"},
1084 {"4x50dump", CmdEM4x50Dump
, 0, "dump EM4x50 tag"},
1085 {NULL
, NULL
, 0, NULL
}
1088 int CmdLFEM4X(const char *Cmd
) {
1089 clearCommandBuffer();
1090 CmdsParse(CommandTable
, Cmd
);
1094 int CmdHelp(const char *Cmd
) {
1095 CmdsHelp(CommandTable
);