4 * Copyright (c) 1990-1997 Sam Leffler
5 * Copyright (c) 1991-1997 Silicon Graphics, Inc.
7 * Permission to use, copy, modify, distribute, and sell this software and
8 * its documentation for any purpose is hereby granted without fee, provided
9 * that (i) the above copyright notices and this permission notice appear in
10 * all copies of the software and related documentation, and (ii) the names of
11 * Sam Leffler and Silicon Graphics may not be used in any advertising or
12 * publicity relating to the software without the specific, prior written
13 * permission of Sam Leffler and Silicon Graphics.
15 * THE SOFTWARE IS PROVIDED "AS-IS" AND WITHOUT WARRANTY OF ANY KIND,
16 * EXPRESS, IMPLIED OR OTHERWISE, INCLUDING WITHOUT LIMITATION, ANY
17 * WARRANTY OF MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE.
19 * IN NO EVENT SHALL SAM LEFFLER OR SILICON GRAPHICS BE LIABLE FOR
20 * ANY SPECIAL, INCIDENTAL, INDIRECT OR CONSEQUENTIAL DAMAGES OF ANY KIND,
21 * OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS,
22 * WHETHER OR NOT ADVISED OF THE POSSIBILITY OF DAMAGE, AND ON ANY THEORY OF
23 * LIABILITY, ARISING OUT OF OR IN CONNECTION WITH THE USE OR PERFORMANCE
32 * CCITT Group 3 (T.4) and Group 4 (T.6) Compression Support.
34 * This file contains support for decoding and encoding TIFF
35 * compression algorithms 2, 3, 4, and 32771.
37 * Decoder support is derived, with permission, from the code
38 * in Frank Cringle's viewfax program;
39 * Copyright (C) 1990, 1995 Frank D. Cringle.
47 * Compression+decompression state blocks are
48 * derived from this ``base state'' block.
51 int rw_mode
; /* O_RDONLY for decode, else encode */
52 int mode
; /* operating mode */
53 tmsize_t rowbytes
; /* bytes in a decoded scanline */
54 uint32 rowpixels
; /* pixels in a scanline */
56 uint16 cleanfaxdata
; /* CleanFaxData tag */
57 uint32 badfaxrun
; /* BadFaxRun tag */
58 uint32 badfaxlines
; /* BadFaxLines tag */
59 uint32 groupoptions
; /* Group 3/4 options tag */
61 TIFFVGetMethod vgetparent
; /* super-class method */
62 TIFFVSetMethod vsetparent
; /* super-class method */
63 TIFFPrintMethod printdir
; /* super-class method */
65 #define Fax3State(tif) ((Fax3BaseState*) (tif)->tif_data)
67 typedef enum { G3_1D
, G3_2D
} Ttag
;
71 /* Decoder state info */
72 const unsigned char* bitmap
; /* bit reversal table */
73 uint32 data
; /* current i/o byte/word */
74 int bit
; /* current i/o bit in byte */
75 int EOLcnt
; /* count of EOL codes recognized */
76 TIFFFaxFillFunc fill
; /* fill routine */
77 uint32
* runs
; /* b&w runs for current/previous row */
78 uint32
* refruns
; /* runs for reference line */
79 uint32
* curruns
; /* runs for current line */
81 /* Encoder state info */
82 Ttag tag
; /* encoding state */
83 unsigned char* refline
; /* reference line for 2d decoding */
84 int k
; /* #rows left that can be 2d encoded */
85 int maxk
; /* max #rows that can be 2d encoded */
89 #define DecoderState(tif) ((Fax3CodecState*) Fax3State(tif))
90 #define EncoderState(tif) ((Fax3CodecState*) Fax3State(tif))
92 #define is2DEncoding(sp) (sp->b.groupoptions & GROUP3OPT_2DENCODING)
93 #define isAligned(p,t) ((((size_t)(p)) & (sizeof (t)-1)) == 0)
96 * Group 3 and Group 4 Decoding.
100 * These macros glue the TIFF library state to
101 * the state expected by Frank's decoder.
103 #define DECLARE_STATE(tif, sp, mod) \
104 static const char module[] = mod; \
105 Fax3CodecState* sp = DecoderState(tif); \
106 int a0; /* reference element */ \
107 int lastx = sp->b.rowpixels; /* last element in row */ \
108 uint32 BitAcc; /* bit accumulator */ \
109 int BitsAvail; /* # valid bits in BitAcc */ \
110 int RunLength; /* length of current run */ \
111 unsigned char* cp; /* next byte of input data */ \
112 unsigned char* ep; /* end of input data */ \
113 uint32* pa; /* place to stuff next run */ \
114 uint32* thisrun; /* current row's run array */ \
115 int EOLcnt; /* # EOL codes recognized */ \
116 const unsigned char* bitmap = sp->bitmap; /* input data bit reverser */ \
117 const TIFFFaxTabEnt* TabEnt
118 #define DECLARE_STATE_2D(tif, sp, mod) \
119 DECLARE_STATE(tif, sp, mod); \
120 int b1; /* next change on prev line */ \
121 uint32* pb /* next run in reference line */\
123 * Load any state that may be changed during decoding.
125 #define CACHE_STATE(tif, sp) do { \
127 BitsAvail = sp->bit; \
128 EOLcnt = sp->EOLcnt; \
129 cp = (unsigned char*) tif->tif_rawcp; \
130 ep = cp + tif->tif_rawcc; \
133 * Save state possibly changed during decoding.
135 #define UNCACHE_STATE(tif, sp) do { \
136 sp->bit = BitsAvail; \
138 sp->EOLcnt = EOLcnt; \
139 tif->tif_rawcc -= (tmsize_t)((uint8*) cp - tif->tif_rawcp); \
140 tif->tif_rawcp = (uint8*) cp; \
144 * Setup state for decoding a strip.
147 Fax3PreDecode(TIFF
* tif
, uint16 s
)
149 Fax3CodecState
* sp
= DecoderState(tif
);
153 sp
->bit
= 0; /* force initial read */
155 sp
->EOLcnt
= 0; /* force initial scan for EOL */
157 * Decoder assumes lsb-to-msb bit order. Note that we select
158 * this here rather than in Fax3SetupState so that viewers can
159 * hold the image open, fiddle with the FillOrder tag value,
160 * and then re-decode the image. Otherwise they'd need to close
161 * and open the image to get the state reset.
164 TIFFGetBitRevTable(tif
->tif_dir
.td_fillorder
!= FILLORDER_LSB2MSB
);
165 if (sp
->refruns
) { /* init reference line to white */
166 sp
->refruns
[0] = (uint32
) sp
->b
.rowpixels
;
174 * Routine for handling various errors/conditions.
175 * Note how they are "glued into the decoder" by
176 * overriding the definitions used by the decoder.
180 Fax3Unexpected(const char* module, TIFF
* tif
, uint32 line
, uint32 a0
)
182 TIFFErrorExt(tif
->tif_clientdata
, module, "Bad code word at line %u of %s %u (x %u)",
183 line
, isTiled(tif
) ? "tile" : "strip",
184 (isTiled(tif
) ? tif
->tif_curtile
: tif
->tif_curstrip
),
187 #define unexpected(table, a0) Fax3Unexpected(module, tif, sp->line, a0)
190 Fax3Extension(const char* module, TIFF
* tif
, uint32 line
, uint32 a0
)
192 TIFFErrorExt(tif
->tif_clientdata
, module,
193 "Uncompressed data (not supported) at line %u of %s %u (x %u)",
194 line
, isTiled(tif
) ? "tile" : "strip",
195 (isTiled(tif
) ? tif
->tif_curtile
: tif
->tif_curstrip
),
198 #define extension(a0) Fax3Extension(module, tif, sp->line, a0)
201 Fax3BadLength(const char* module, TIFF
* tif
, uint32 line
, uint32 a0
, uint32 lastx
)
203 TIFFWarningExt(tif
->tif_clientdata
, module, "%s at line %u of %s %u (got %u, expected %u)",
204 a0
< lastx
? "Premature EOL" : "Line length mismatch",
205 line
, isTiled(tif
) ? "tile" : "strip",
206 (isTiled(tif
) ? tif
->tif_curtile
: tif
->tif_curstrip
),
209 #define badlength(a0,lastx) Fax3BadLength(module, tif, sp->line, a0, lastx)
212 Fax3PrematureEOF(const char* module, TIFF
* tif
, uint32 line
, uint32 a0
)
214 TIFFWarningExt(tif
->tif_clientdata
, module, "Premature EOF at line %u of %s %u (x %u)",
215 line
, isTiled(tif
) ? "tile" : "strip",
216 (isTiled(tif
) ? tif
->tif_curtile
: tif
->tif_curstrip
),
219 #define prematureEOF(a0) Fax3PrematureEOF(module, tif, sp->line, a0)
224 * Decode the requested amount of G3 1D-encoded data.
227 Fax3Decode1D(TIFF
* tif
, uint8
* buf
, tmsize_t occ
, uint16 s
)
229 DECLARE_STATE(tif
, sp
, "Fax3Decode1D");
231 if (occ
% sp
->b
.rowbytes
)
233 TIFFErrorExt(tif
->tif_clientdata
, module, "Fractional scanlines cannot be read");
236 CACHE_STATE(tif
, sp
);
237 thisrun
= sp
->curruns
;
243 printf("\nBitAcc=%08X, BitsAvail = %d\n", BitAcc
, BitsAvail
);
244 printf("-------------------- %d\n", tif
->tif_row
);
249 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
250 buf
+= sp
->b
.rowbytes
;
251 occ
-= sp
->b
.rowbytes
;
254 EOF1D
: /* premature EOF */
256 EOF1Da
: /* premature EOF */
257 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
258 UNCACHE_STATE(tif
, sp
);
261 UNCACHE_STATE(tif
, sp
);
265 #define SWAP(t,a,b) { t x; x = (a); (a) = (b); (b) = x; }
267 * Decode the requested amount of G3 2D-encoded data.
270 Fax3Decode2D(TIFF
* tif
, uint8
* buf
, tmsize_t occ
, uint16 s
)
272 DECLARE_STATE_2D(tif
, sp
, "Fax3Decode2D");
273 int is1D
; /* current line is 1d/2d-encoded */
275 if (occ
% sp
->b
.rowbytes
)
277 TIFFErrorExt(tif
->tif_clientdata
, module, "Fractional scanlines cannot be read");
280 CACHE_STATE(tif
, sp
);
284 pa
= thisrun
= sp
->curruns
;
286 printf("\nBitAcc=%08X, BitsAvail = %d EOLcnt = %d",
287 BitAcc
, BitsAvail
, EOLcnt
);
291 is1D
= GetBits(1); /* 1D/2D-encoding tag bit */
294 printf(" %s\n-------------------- %d\n",
295 is1D
? "1D" : "2D", tif
->tif_row
);
304 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
305 SETVALUE(0); /* imaginary change for reference */
306 SWAP(uint32
*, sp
->curruns
, sp
->refruns
);
307 buf
+= sp
->b
.rowbytes
;
308 occ
-= sp
->b
.rowbytes
;
311 EOF2D
: /* premature EOF */
313 EOF2Da
: /* premature EOF */
314 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
315 UNCACHE_STATE(tif
, sp
);
318 UNCACHE_STATE(tif
, sp
);
324 * The ZERO & FILL macros must handle spans < 2*sizeof(long) bytes.
325 * For machines with 64-bit longs this is <16 bytes; otherwise
326 * this is <8 bytes. We optimize the code here to reflect the
327 * machine characteristics.
329 #if SIZEOF_UNSIGNED_LONG == 8
330 # define FILL(n, cp) \
332 case 15:(cp)[14] = 0xff; case 14:(cp)[13] = 0xff; case 13: (cp)[12] = 0xff;\
333 case 12:(cp)[11] = 0xff; case 11:(cp)[10] = 0xff; case 10: (cp)[9] = 0xff;\
334 case 9: (cp)[8] = 0xff; case 8: (cp)[7] = 0xff; case 7: (cp)[6] = 0xff;\
335 case 6: (cp)[5] = 0xff; case 5: (cp)[4] = 0xff; case 4: (cp)[3] = 0xff;\
336 case 3: (cp)[2] = 0xff; case 2: (cp)[1] = 0xff; \
337 case 1: (cp)[0] = 0xff; (cp) += (n); case 0: ; \
339 # define ZERO(n, cp) \
341 case 15:(cp)[14] = 0; case 14:(cp)[13] = 0; case 13: (cp)[12] = 0; \
342 case 12:(cp)[11] = 0; case 11:(cp)[10] = 0; case 10: (cp)[9] = 0; \
343 case 9: (cp)[8] = 0; case 8: (cp)[7] = 0; case 7: (cp)[6] = 0; \
344 case 6: (cp)[5] = 0; case 5: (cp)[4] = 0; case 4: (cp)[3] = 0; \
345 case 3: (cp)[2] = 0; case 2: (cp)[1] = 0; \
346 case 1: (cp)[0] = 0; (cp) += (n); case 0: ; \
349 # define FILL(n, cp) \
351 case 7: (cp)[6] = 0xff; case 6: (cp)[5] = 0xff; case 5: (cp)[4] = 0xff; \
352 case 4: (cp)[3] = 0xff; case 3: (cp)[2] = 0xff; case 2: (cp)[1] = 0xff; \
353 case 1: (cp)[0] = 0xff; (cp) += (n); case 0: ; \
355 # define ZERO(n, cp) \
357 case 7: (cp)[6] = 0; case 6: (cp)[5] = 0; case 5: (cp)[4] = 0; \
358 case 4: (cp)[3] = 0; case 3: (cp)[2] = 0; case 2: (cp)[1] = 0; \
359 case 1: (cp)[0] = 0; (cp) += (n); case 0: ; \
364 * Bit-fill a row according to the white/black
365 * runs generated during G3/G4 decoding.
368 _TIFFFax3fillruns(unsigned char* buf
, uint32
* runs
, uint32
* erun
, uint32 lastx
)
370 static const unsigned char _fillmasks
[] =
371 { 0x00, 0x80, 0xc0, 0xe0, 0xf0, 0xf8, 0xfc, 0xfe, 0xff };
380 for (; runs
< erun
; runs
+= 2) {
382 if (x
+run
> lastx
|| run
> lastx
)
383 run
= runs
[0] = (uint32
) (lastx
- x
);
388 if (bx
) { /* align to byte boundary */
389 *cp
++ &= 0xff << (8-bx
);
392 if( (n
= run
>> 3) != 0 ) { /* multiple bytes to fill */
393 if ((n
/sizeof (long)) > 1) {
395 * Align to longword boundary and fill.
397 for (; n
&& !isAligned(cp
, long); n
--)
400 nw
= (int32
)(n
/ sizeof (long));
401 n
-= nw
* sizeof (long);
405 cp
= (unsigned char*) lp
;
411 cp
[0] &= 0xff >> run
;
413 cp
[0] &= ~(_fillmasks
[run
]>>bx
);
417 if (x
+run
> lastx
|| run
> lastx
)
418 run
= runs
[1] = lastx
- x
;
423 if (bx
) { /* align to byte boundary */
427 if( (n
= run
>>3) != 0 ) { /* multiple bytes to fill */
428 if ((n
/sizeof (long)) > 1) {
430 * Align to longword boundary and fill.
432 for (; n
&& !isAligned(cp
, long); n
--)
435 nw
= (int32
)(n
/ sizeof (long));
436 n
-= nw
* sizeof (long);
440 cp
= (unsigned char*) lp
;
446 cp
[0] |= 0xff00 >> run
;
448 cp
[0] |= _fillmasks
[run
]>>bx
;
458 Fax3FixupTags(TIFF
* tif
)
465 * Setup G3/G4-related compression/decompression state
466 * before data is processed. This routine is called once
467 * per image -- it sets up different state based on whether
468 * or not decoding or encoding is being done and whether
469 * 1D- or 2D-encoded data is involved.
472 Fax3SetupState(TIFF
* tif
)
474 static const char module[] = "Fax3SetupState";
475 TIFFDirectory
* td
= &tif
->tif_dir
;
476 Fax3BaseState
* sp
= Fax3State(tif
);
478 Fax3CodecState
* dsp
= (Fax3CodecState
*) Fax3State(tif
);
480 uint32 rowpixels
, nruns
;
482 if (td
->td_bitspersample
!= 1) {
483 TIFFErrorExt(tif
->tif_clientdata
, module,
484 "Bits/sample must be 1 for Group 3/4 encoding/decoding");
488 * Calculate the scanline/tile widths.
491 rowbytes
= TIFFTileRowSize(tif
);
492 rowpixels
= td
->td_tilewidth
;
494 rowbytes
= TIFFScanlineSize(tif
);
495 rowpixels
= td
->td_imagewidth
;
497 sp
->rowbytes
= rowbytes
;
498 sp
->rowpixels
= rowpixels
;
500 * Allocate any additional space required for decoding/encoding.
503 (sp
->groupoptions
& GROUP3OPT_2DENCODING
) ||
504 td
->td_compression
== COMPRESSION_CCITTFAX4
508 Assure that allocation computations do not overflow.
510 TIFFroundup and TIFFSafeMultiply return zero on integer overflow
512 dsp
->runs
=(uint32
*) NULL
;
513 nruns
= TIFFroundup_32(rowpixels
,32);
515 nruns
= TIFFSafeMultiply(uint32
,nruns
,2);
517 if ((nruns
== 0) || (TIFFSafeMultiply(uint32
,nruns
,2) == 0)) {
518 TIFFErrorExt(tif
->tif_clientdata
, tif
->tif_name
,
519 "Row pixels integer overflow (rowpixels %u)",
523 dsp
->runs
= (uint32
*) _TIFFCheckMalloc(tif
,
524 TIFFSafeMultiply(uint32
,nruns
,2),
526 "for Group 3/4 run arrays");
527 if (dsp
->runs
== NULL
)
529 memset( dsp
->runs
, 0, TIFFSafeMultiply(uint32
,nruns
,2)*sizeof(uint32
));
530 dsp
->curruns
= dsp
->runs
;
532 dsp
->refruns
= dsp
->runs
+ nruns
;
535 if (td
->td_compression
== COMPRESSION_CCITTFAX3
536 && is2DEncoding(dsp
)) { /* NB: default is 1D routine */
537 tif
->tif_decoderow
= Fax3Decode2D
;
538 tif
->tif_decodestrip
= Fax3Decode2D
;
539 tif
->tif_decodetile
= Fax3Decode2D
;
542 if (needsRefLine
) { /* 2d encoding */
543 Fax3CodecState
* esp
= EncoderState(tif
);
545 * 2d encoding requires a scanline
546 * buffer for the ``reference line''; the
547 * scanline against which delta encoding
548 * is referenced. The reference line must
549 * be initialized to be ``white'' (done elsewhere).
551 esp
->refline
= (unsigned char*) _TIFFmalloc(rowbytes
);
552 if (esp
->refline
== NULL
) {
553 TIFFErrorExt(tif
->tif_clientdata
, module,
554 "No space for Group 3/4 reference line");
557 } else /* 1d encoding */
558 EncoderState(tif
)->refline
= NULL
;
564 * CCITT Group 3 FAX Encoding.
567 #define Fax3FlushBits(tif, sp) { \
568 if ((tif)->tif_rawcc >= (tif)->tif_rawdatasize) \
569 (void) TIFFFlushData1(tif); \
570 *(tif)->tif_rawcp++ = (uint8) (sp)->data; \
571 (tif)->tif_rawcc++; \
572 (sp)->data = 0, (sp)->bit = 8; \
574 #define _FlushBits(tif) { \
575 if ((tif)->tif_rawcc >= (tif)->tif_rawdatasize) \
576 (void) TIFFFlushData1(tif); \
577 *(tif)->tif_rawcp++ = (uint8) data; \
578 (tif)->tif_rawcc++; \
581 static const int _msbmask
[9] =
582 { 0x00, 0x01, 0x03, 0x07, 0x0f, 0x1f, 0x3f, 0x7f, 0xff };
583 #define _PutBits(tif, bits, length) { \
584 while (length > bit) { \
585 data |= bits >> (length - bit); \
589 assert( length < 9 ); \
590 data |= (bits & _msbmask[length]) << (bit - length); \
597 * Write a variable-length bit-value to
598 * the output stream. Values are
599 * assumed to be at most 16 bits.
602 Fax3PutBits(TIFF
* tif
, unsigned int bits
, unsigned int length
)
604 Fax3CodecState
* sp
= EncoderState(tif
);
605 unsigned int bit
= sp
->bit
;
608 _PutBits(tif
, bits
, length
);
615 * Write a code to the output stream.
617 #define putcode(tif, te) Fax3PutBits(tif, (te)->code, (te)->length)
620 #define DEBUG_COLOR(w) (tab == TIFFFaxWhiteCodes ? w "W" : w "B")
621 #define DEBUG_PRINT(what,len) { \
623 printf("%08X/%-2d: %s%5d\t", data, bit, DEBUG_COLOR(what), len); \
624 for (t = length-1; t >= 0; t--) \
625 putchar(code & (1<<t) ? '1' : '0'); \
631 * Write the sequence of codes that describes
632 * the specified span of zero's or one's. The
633 * appropriate table that holds the make-up and
634 * terminating codes is supplied.
637 putspan(TIFF
* tif
, int32 span
, const tableentry
* tab
)
639 Fax3CodecState
* sp
= EncoderState(tif
);
640 unsigned int bit
= sp
->bit
;
642 unsigned int code
, length
;
644 while (span
>= 2624) {
645 const tableentry
* te
= &tab
[63 + (2560>>6)];
646 code
= te
->code
, length
= te
->length
;
648 DEBUG_PRINT("MakeUp", te
->runlen
);
650 _PutBits(tif
, code
, length
);
654 const tableentry
* te
= &tab
[63 + (span
>>6)];
655 assert(te
->runlen
== 64*(span
>>6));
656 code
= te
->code
, length
= te
->length
;
658 DEBUG_PRINT("MakeUp", te
->runlen
);
660 _PutBits(tif
, code
, length
);
663 code
= tab
[span
].code
, length
= tab
[span
].length
;
665 DEBUG_PRINT(" Term", tab
[span
].runlen
);
667 _PutBits(tif
, code
, length
);
674 * Write an EOL code to the output stream. The zero-fill
675 * logic for byte-aligning encoded scanlines is handled
676 * here. We also handle writing the tag bit for the next
677 * scanline when doing 2d encoding.
680 Fax3PutEOL(TIFF
* tif
)
682 Fax3CodecState
* sp
= EncoderState(tif
);
683 unsigned int bit
= sp
->bit
;
685 unsigned int code
, length
, tparm
;
687 if (sp
->b
.groupoptions
& GROUP3OPT_FILLBITS
) {
689 * Force bit alignment so EOL will terminate on
690 * a byte boundary. That is, force the bit alignment
691 * to 16-12 = 4 before putting out the EOL code.
694 if (align
!= sp
->bit
) {
696 align
= sp
->bit
+ (8 - align
);
698 align
= sp
->bit
- align
;
701 _PutBits(tif
, 0, tparm
);
704 code
= EOL
, length
= 12;
705 if (is2DEncoding(sp
))
706 code
= (code
<<1) | (sp
->tag
== G3_1D
), length
++;
707 _PutBits(tif
, code
, length
);
714 * Reset encoding state at the start of a strip.
717 Fax3PreEncode(TIFF
* tif
, uint16 s
)
719 Fax3CodecState
* sp
= EncoderState(tif
);
727 * This is necessary for Group 4; otherwise it isn't
728 * needed because the first scanline of each strip ends
729 * up being copied into the refline.
732 _TIFFmemset(sp
->refline
, 0x00, sp
->b
.rowbytes
);
733 if (is2DEncoding(sp
)) {
734 float res
= tif
->tif_dir
.td_yresolution
;
736 * The CCITT spec says that when doing 2d encoding, you
737 * should only do it on K consecutive scanlines, where K
738 * depends on the resolution of the image being encoded
739 * (2 for <= 200 lpi, 4 for > 200 lpi). Since the directory
740 * code initializes td_yresolution to 0, this code will
741 * select a K of 2 unless the YResolution tag is set
742 * appropriately. (Note also that we fudge a little here
743 * and use 150 lpi to avoid problems with units conversion.)
745 if (tif
->tif_dir
.td_resolutionunit
== RESUNIT_CENTIMETER
)
746 res
*= 2.54f
; /* convert to inches */
747 sp
->maxk
= (res
> 150 ? 4 : 2);
750 sp
->k
= sp
->maxk
= 0;
755 static const unsigned char zeroruns
[256] = {
756 8, 7, 6, 6, 5, 5, 5, 5, 4, 4, 4, 4, 4, 4, 4, 4, /* 0x00 - 0x0f */
757 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, /* 0x10 - 0x1f */
758 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, /* 0x20 - 0x2f */
759 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, /* 0x30 - 0x3f */
760 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0x40 - 0x4f */
761 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0x50 - 0x5f */
762 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0x60 - 0x6f */
763 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0x70 - 0x7f */
764 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x80 - 0x8f */
765 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x90 - 0x9f */
766 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0xa0 - 0xaf */
767 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0xb0 - 0xbf */
768 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0xc0 - 0xcf */
769 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0xd0 - 0xdf */
770 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0xe0 - 0xef */
771 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0xf0 - 0xff */
773 static const unsigned char oneruns
[256] = {
774 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x00 - 0x0f */
775 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x10 - 0x1f */
776 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x20 - 0x2f */
777 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x30 - 0x3f */
778 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x40 - 0x4f */
779 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x50 - 0x5f */
780 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x60 - 0x6f */
781 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* 0x70 - 0x7f */
782 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0x80 - 0x8f */
783 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0x90 - 0x9f */
784 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0xa0 - 0xaf */
785 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 0xb0 - 0xbf */
786 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, /* 0xc0 - 0xcf */
787 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, /* 0xd0 - 0xdf */
788 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, /* 0xe0 - 0xef */
789 4, 4, 4, 4, 4, 4, 4, 4, 5, 5, 5, 5, 6, 6, 7, 8, /* 0xf0 - 0xff */
793 * On certain systems it pays to inline
794 * the routines that find pixel spans.
797 static int32
find0span(unsigned char*, int32
, int32
);
798 static int32
find1span(unsigned char*, int32
, int32
);
799 #pragma inline(find0span,find1span)
803 * Find a span of ones or zeros using the supplied
804 * table. The ``base'' of the bit string is supplied
805 * along with the start+end bit indices.
808 find0span(unsigned char* bp
, int32 bs
, int32 be
)
810 int32 bits
= be
- bs
;
815 * Check partial byte on lhs.
817 if (bits
> 0 && (n
= (bs
& 7))) {
818 span
= zeroruns
[(*bp
<< n
) & 0xff];
819 if (span
> 8-n
) /* table value too generous */
821 if (span
> bits
) /* constrain span to bit range */
823 if (n
+span
< 8) /* doesn't extend to edge of byte */
829 if (bits
>= (int32
)(2 * 8 * sizeof(long))) {
832 * Align to longword boundary and check longwords.
834 while (!isAligned(bp
, long)) {
836 return (span
+ zeroruns
[*bp
]);
837 span
+= 8, bits
-= 8;
841 while ((bits
>= (int32
)(8 * sizeof(long))) && (0 == *lp
)) {
842 span
+= 8*sizeof (long), bits
-= 8*sizeof (long);
845 bp
= (unsigned char*) lp
;
848 * Scan full bytes for all 0's.
851 if (*bp
!= 0x00) /* end of run */
852 return (span
+ zeroruns
[*bp
]);
853 span
+= 8, bits
-= 8;
857 * Check partial byte on rhs.
861 span
+= (n
> bits
? bits
: n
);
867 find1span(unsigned char* bp
, int32 bs
, int32 be
)
869 int32 bits
= be
- bs
;
874 * Check partial byte on lhs.
876 if (bits
> 0 && (n
= (bs
& 7))) {
877 span
= oneruns
[(*bp
<< n
) & 0xff];
878 if (span
> 8-n
) /* table value too generous */
880 if (span
> bits
) /* constrain span to bit range */
882 if (n
+span
< 8) /* doesn't extend to edge of byte */
888 if (bits
>= (int32
)(2 * 8 * sizeof(long))) {
891 * Align to longword boundary and check longwords.
893 while (!isAligned(bp
, long)) {
895 return (span
+ oneruns
[*bp
]);
896 span
+= 8, bits
-= 8;
900 while ((bits
>= (int32
)(8 * sizeof(long))) && (~0 == *lp
)) {
901 span
+= 8*sizeof (long), bits
-= 8*sizeof (long);
904 bp
= (unsigned char*) lp
;
907 * Scan full bytes for all 1's.
910 if (*bp
!= 0xff) /* end of run */
911 return (span
+ oneruns
[*bp
]);
912 span
+= 8, bits
-= 8;
916 * Check partial byte on rhs.
920 span
+= (n
> bits
? bits
: n
);
926 * Return the offset of the next bit in the range
927 * [bs..be] that is different from the specified
928 * color. The end, be, is returned if no such bit
931 #define finddiff(_cp, _bs, _be, _color) \
932 (_bs + (_color ? find1span(_cp,_bs,_be) : find0span(_cp,_bs,_be)))
934 * Like finddiff, but also check the starting bit
935 * against the end in case start > end.
937 #define finddiff2(_cp, _bs, _be, _color) \
938 (_bs < _be ? finddiff(_cp,_bs,_be,_color) : _be)
941 * 1d-encode a row of pixels. The encoding is
942 * a sequence of all-white or all-black spans
943 * of pixels encoded with Huffman codes.
946 Fax3Encode1DRow(TIFF
* tif
, unsigned char* bp
, uint32 bits
)
948 Fax3CodecState
* sp
= EncoderState(tif
);
953 span
= find0span(bp
, bs
, bits
); /* white span */
954 putspan(tif
, span
, TIFFFaxWhiteCodes
);
958 span
= find1span(bp
, bs
, bits
); /* black span */
959 putspan(tif
, span
, TIFFFaxBlackCodes
);
964 if (sp
->b
.mode
& (FAXMODE_BYTEALIGN
|FAXMODE_WORDALIGN
)) {
965 if (sp
->bit
!= 8) /* byte-align */
966 Fax3FlushBits(tif
, sp
);
967 if ((sp
->b
.mode
&FAXMODE_WORDALIGN
) &&
968 !isAligned(tif
->tif_rawcp
, uint16
))
969 Fax3FlushBits(tif
, sp
);
974 static const tableentry horizcode
=
975 { 3, 0x1, 0 }; /* 001 */
976 static const tableentry passcode
=
977 { 4, 0x1, 0 }; /* 0001 */
978 static const tableentry vcodes
[7] = {
979 { 7, 0x03, 0 }, /* 0000 011 */
980 { 6, 0x03, 0 }, /* 0000 11 */
981 { 3, 0x03, 0 }, /* 011 */
982 { 1, 0x1, 0 }, /* 1 */
983 { 3, 0x2, 0 }, /* 010 */
984 { 6, 0x02, 0 }, /* 0000 10 */
985 { 7, 0x02, 0 } /* 0000 010 */
989 * 2d-encode a row of pixels. Consult the CCITT
990 * documentation for the algorithm.
993 Fax3Encode2DRow(TIFF
* tif
, unsigned char* bp
, unsigned char* rp
, uint32 bits
)
995 #define PIXEL(buf,ix) ((((buf)[(ix)>>3]) >> (7-((ix)&7))) & 1)
997 uint32 a1
= (PIXEL(bp
, 0) != 0 ? 0 : finddiff(bp
, 0, bits
, 0));
998 uint32 b1
= (PIXEL(rp
, 0) != 0 ? 0 : finddiff(rp
, 0, bits
, 0));
1002 b2
= finddiff2(rp
, b1
, bits
, PIXEL(rp
,b1
));
1005 if (!(-3 <= d
&& d
<= 3)) { /* horizontal mode */
1006 a2
= finddiff2(bp
, a1
, bits
, PIXEL(bp
,a1
));
1007 putcode(tif
, &horizcode
);
1008 if (a0
+a1
== 0 || PIXEL(bp
, a0
) == 0) {
1009 putspan(tif
, a1
-a0
, TIFFFaxWhiteCodes
);
1010 putspan(tif
, a2
-a1
, TIFFFaxBlackCodes
);
1012 putspan(tif
, a1
-a0
, TIFFFaxBlackCodes
);
1013 putspan(tif
, a2
-a1
, TIFFFaxWhiteCodes
);
1016 } else { /* vertical mode */
1017 putcode(tif
, &vcodes
[d
+3]);
1020 } else { /* pass mode */
1021 putcode(tif
, &passcode
);
1026 a1
= finddiff(bp
, a0
, bits
, PIXEL(bp
,a0
));
1027 b1
= finddiff(rp
, a0
, bits
, !PIXEL(bp
,a0
));
1028 b1
= finddiff(rp
, b1
, bits
, PIXEL(bp
,a0
));
1035 * Encode a buffer of pixels.
1038 Fax3Encode(TIFF
* tif
, uint8
* bp
, tmsize_t cc
, uint16 s
)
1040 static const char module[] = "Fax3Encode";
1041 Fax3CodecState
* sp
= EncoderState(tif
);
1043 if (cc
% sp
->b
.rowbytes
)
1045 TIFFErrorExt(tif
->tif_clientdata
, module, "Fractional scanlines cannot be written");
1049 if ((sp
->b
.mode
& FAXMODE_NOEOL
) == 0)
1051 if (is2DEncoding(sp
)) {
1052 if (sp
->tag
== G3_1D
) {
1053 if (!Fax3Encode1DRow(tif
, bp
, sp
->b
.rowpixels
))
1057 if (!Fax3Encode2DRow(tif
, bp
, sp
->refline
,
1066 _TIFFmemcpy(sp
->refline
, bp
, sp
->b
.rowbytes
);
1068 if (!Fax3Encode1DRow(tif
, bp
, sp
->b
.rowpixels
))
1071 bp
+= sp
->b
.rowbytes
;
1072 cc
-= sp
->b
.rowbytes
;
1078 Fax3PostEncode(TIFF
* tif
)
1080 Fax3CodecState
* sp
= EncoderState(tif
);
1083 Fax3FlushBits(tif
, sp
);
1088 Fax3Close(TIFF
* tif
)
1090 if ((Fax3State(tif
)->mode
& FAXMODE_NORTC
) == 0) {
1091 Fax3CodecState
* sp
= EncoderState(tif
);
1092 unsigned int code
= EOL
;
1093 unsigned int length
= 12;
1096 if (is2DEncoding(sp
))
1097 code
= (code
<<1) | (sp
->tag
== G3_1D
), length
++;
1098 for (i
= 0; i
< 6; i
++)
1099 Fax3PutBits(tif
, code
, length
);
1100 Fax3FlushBits(tif
, sp
);
1105 Fax3Cleanup(TIFF
* tif
)
1107 Fax3CodecState
* sp
= DecoderState(tif
);
1111 tif
->tif_tagmethods
.vgetfield
= sp
->b
.vgetparent
;
1112 tif
->tif_tagmethods
.vsetfield
= sp
->b
.vsetparent
;
1113 tif
->tif_tagmethods
.printdir
= sp
->b
.printdir
;
1116 _TIFFfree(sp
->runs
);
1118 _TIFFfree(sp
->refline
);
1120 _TIFFfree(tif
->tif_data
);
1121 tif
->tif_data
= NULL
;
1123 _TIFFSetDefaultCompressionState(tif
);
1126 #define FIELD_BADFAXLINES (FIELD_CODEC+0)
1127 #define FIELD_CLEANFAXDATA (FIELD_CODEC+1)
1128 #define FIELD_BADFAXRUN (FIELD_CODEC+2)
1130 #define FIELD_OPTIONS (FIELD_CODEC+7)
1132 static const TIFFField faxFields
[] = {
1133 { TIFFTAG_FAXMODE
, 0, 0, TIFF_ANY
, 0, TIFF_SETGET_INT
, TIFF_SETGET_UNDEFINED
, FIELD_PSEUDO
, FALSE
, FALSE
, "FaxMode", NULL
},
1134 { TIFFTAG_FAXFILLFUNC
, 0, 0, TIFF_ANY
, 0, TIFF_SETGET_OTHER
, TIFF_SETGET_UNDEFINED
, FIELD_PSEUDO
, FALSE
, FALSE
, "FaxFillFunc", NULL
},
1135 { TIFFTAG_BADFAXLINES
, 1, 1, TIFF_LONG
, 0, TIFF_SETGET_UINT32
, TIFF_SETGET_UINT32
, FIELD_BADFAXLINES
, TRUE
, FALSE
, "BadFaxLines", NULL
},
1136 { TIFFTAG_CLEANFAXDATA
, 1, 1, TIFF_SHORT
, 0, TIFF_SETGET_UINT16
, TIFF_SETGET_UINT16
, FIELD_CLEANFAXDATA
, TRUE
, FALSE
, "CleanFaxData", NULL
},
1137 { TIFFTAG_CONSECUTIVEBADFAXLINES
, 1, 1, TIFF_LONG
, 0, TIFF_SETGET_UINT32
, TIFF_SETGET_UINT32
, FIELD_BADFAXRUN
, TRUE
, FALSE
, "ConsecutiveBadFaxLines", NULL
}};
1138 static const TIFFField fax3Fields
[] = {
1139 { TIFFTAG_GROUP3OPTIONS
, 1, 1, TIFF_LONG
, 0, TIFF_SETGET_UINT32
, TIFF_SETGET_UINT32
, FIELD_OPTIONS
, FALSE
, FALSE
, "Group3Options", NULL
},
1141 static const TIFFField fax4Fields
[] = {
1142 { TIFFTAG_GROUP4OPTIONS
, 1, 1, TIFF_LONG
, 0, TIFF_SETGET_UINT32
, TIFF_SETGET_UINT32
, FIELD_OPTIONS
, FALSE
, FALSE
, "Group4Options", NULL
},
1146 Fax3VSetField(TIFF
* tif
, uint32 tag
, va_list ap
)
1148 Fax3BaseState
* sp
= Fax3State(tif
);
1149 const TIFFField
* fip
;
1152 assert(sp
->vsetparent
!= 0);
1155 case TIFFTAG_FAXMODE
:
1156 sp
->mode
= (int) va_arg(ap
, int);
1157 return 1; /* NB: pseudo tag */
1158 case TIFFTAG_FAXFILLFUNC
:
1159 DecoderState(tif
)->fill
= va_arg(ap
, TIFFFaxFillFunc
);
1160 return 1; /* NB: pseudo tag */
1161 case TIFFTAG_GROUP3OPTIONS
:
1162 /* XXX: avoid reading options if compression mismatches. */
1163 if (tif
->tif_dir
.td_compression
== COMPRESSION_CCITTFAX3
)
1164 sp
->groupoptions
= (uint32
) va_arg(ap
, uint32
);
1166 case TIFFTAG_GROUP4OPTIONS
:
1167 /* XXX: avoid reading options if compression mismatches. */
1168 if (tif
->tif_dir
.td_compression
== COMPRESSION_CCITTFAX4
)
1169 sp
->groupoptions
= (uint32
) va_arg(ap
, uint32
);
1171 case TIFFTAG_BADFAXLINES
:
1172 sp
->badfaxlines
= (uint32
) va_arg(ap
, uint32
);
1174 case TIFFTAG_CLEANFAXDATA
:
1175 sp
->cleanfaxdata
= (uint16
) va_arg(ap
, uint16_vap
);
1177 case TIFFTAG_CONSECUTIVEBADFAXLINES
:
1178 sp
->badfaxrun
= (uint32
) va_arg(ap
, uint32
);
1181 return (*sp
->vsetparent
)(tif
, tag
, ap
);
1184 if ((fip
= TIFFFieldWithTag(tif
, tag
)))
1185 TIFFSetFieldBit(tif
, fip
->field_bit
);
1189 tif
->tif_flags
|= TIFF_DIRTYDIRECT
;
1194 Fax3VGetField(TIFF
* tif
, uint32 tag
, va_list ap
)
1196 Fax3BaseState
* sp
= Fax3State(tif
);
1201 case TIFFTAG_FAXMODE
:
1202 *va_arg(ap
, int*) = sp
->mode
;
1204 case TIFFTAG_FAXFILLFUNC
:
1205 *va_arg(ap
, TIFFFaxFillFunc
*) = DecoderState(tif
)->fill
;
1207 case TIFFTAG_GROUP3OPTIONS
:
1208 case TIFFTAG_GROUP4OPTIONS
:
1209 *va_arg(ap
, uint32
*) = sp
->groupoptions
;
1211 case TIFFTAG_BADFAXLINES
:
1212 *va_arg(ap
, uint32
*) = sp
->badfaxlines
;
1214 case TIFFTAG_CLEANFAXDATA
:
1215 *va_arg(ap
, uint16
*) = sp
->cleanfaxdata
;
1217 case TIFFTAG_CONSECUTIVEBADFAXLINES
:
1218 *va_arg(ap
, uint32
*) = sp
->badfaxrun
;
1221 return (*sp
->vgetparent
)(tif
, tag
, ap
);
1227 Fax3PrintDir(TIFF
* tif
, FILE* fd
, long flags
)
1229 Fax3BaseState
* sp
= Fax3State(tif
);
1234 if (TIFFFieldSet(tif
,FIELD_OPTIONS
)) {
1235 const char* sep
= " ";
1236 if (tif
->tif_dir
.td_compression
== COMPRESSION_CCITTFAX4
) {
1237 fprintf(fd
, " Group 4 Options:");
1238 if (sp
->groupoptions
& GROUP4OPT_UNCOMPRESSED
)
1239 fprintf(fd
, "%suncompressed data", sep
);
1242 fprintf(fd
, " Group 3 Options:");
1243 if (sp
->groupoptions
& GROUP3OPT_2DENCODING
)
1244 fprintf(fd
, "%s2-d encoding", sep
), sep
= "+";
1245 if (sp
->groupoptions
& GROUP3OPT_FILLBITS
)
1246 fprintf(fd
, "%sEOL padding", sep
), sep
= "+";
1247 if (sp
->groupoptions
& GROUP3OPT_UNCOMPRESSED
)
1248 fprintf(fd
, "%suncompressed data", sep
);
1250 fprintf(fd
, " (%lu = 0x%lx)\n",
1251 (unsigned long) sp
->groupoptions
,
1252 (unsigned long) sp
->groupoptions
);
1254 if (TIFFFieldSet(tif
,FIELD_CLEANFAXDATA
)) {
1255 fprintf(fd
, " Fax Data:");
1256 switch (sp
->cleanfaxdata
) {
1257 case CLEANFAXDATA_CLEAN
:
1258 fprintf(fd
, " clean");
1260 case CLEANFAXDATA_REGENERATED
:
1261 fprintf(fd
, " receiver regenerated");
1263 case CLEANFAXDATA_UNCLEAN
:
1264 fprintf(fd
, " uncorrected errors");
1267 fprintf(fd
, " (%u = 0x%x)\n",
1268 sp
->cleanfaxdata
, sp
->cleanfaxdata
);
1270 if (TIFFFieldSet(tif
,FIELD_BADFAXLINES
))
1271 fprintf(fd
, " Bad Fax Lines: %lu\n",
1272 (unsigned long) sp
->badfaxlines
);
1273 if (TIFFFieldSet(tif
,FIELD_BADFAXRUN
))
1274 fprintf(fd
, " Consecutive Bad Fax Lines: %lu\n",
1275 (unsigned long) sp
->badfaxrun
);
1277 (*sp
->printdir
)(tif
, fd
, flags
);
1281 InitCCITTFax3(TIFF
* tif
)
1283 static const char module[] = "InitCCITTFax3";
1287 * Merge codec-specific tag information.
1289 if (!_TIFFMergeFields(tif
, faxFields
, TIFFArrayCount(faxFields
))) {
1290 TIFFErrorExt(tif
->tif_clientdata
, "InitCCITTFax3",
1291 "Merging common CCITT Fax codec-specific tags failed");
1296 * Allocate state block so tag methods have storage to record values.
1298 tif
->tif_data
= (uint8
*)
1299 _TIFFmalloc(sizeof (Fax3CodecState
));
1301 if (tif
->tif_data
== NULL
) {
1302 TIFFErrorExt(tif
->tif_clientdata
, module,
1303 "No space for state block");
1307 sp
= Fax3State(tif
);
1308 sp
->rw_mode
= tif
->tif_mode
;
1311 * Override parent get/set field methods.
1313 sp
->vgetparent
= tif
->tif_tagmethods
.vgetfield
;
1314 tif
->tif_tagmethods
.vgetfield
= Fax3VGetField
; /* hook for codec tags */
1315 sp
->vsetparent
= tif
->tif_tagmethods
.vsetfield
;
1316 tif
->tif_tagmethods
.vsetfield
= Fax3VSetField
; /* hook for codec tags */
1317 sp
->printdir
= tif
->tif_tagmethods
.printdir
;
1318 tif
->tif_tagmethods
.printdir
= Fax3PrintDir
; /* hook for codec tags */
1319 sp
->groupoptions
= 0;
1321 if (sp
->rw_mode
== O_RDONLY
) /* FIXME: improve for in place update */
1322 tif
->tif_flags
|= TIFF_NOBITREV
; /* decoder does bit reversal */
1323 DecoderState(tif
)->runs
= NULL
;
1324 TIFFSetField(tif
, TIFFTAG_FAXFILLFUNC
, _TIFFFax3fillruns
);
1325 EncoderState(tif
)->refline
= NULL
;
1328 * Install codec methods.
1330 tif
->tif_fixuptags
= Fax3FixupTags
;
1331 tif
->tif_setupdecode
= Fax3SetupState
;
1332 tif
->tif_predecode
= Fax3PreDecode
;
1333 tif
->tif_decoderow
= Fax3Decode1D
;
1334 tif
->tif_decodestrip
= Fax3Decode1D
;
1335 tif
->tif_decodetile
= Fax3Decode1D
;
1336 tif
->tif_setupencode
= Fax3SetupState
;
1337 tif
->tif_preencode
= Fax3PreEncode
;
1338 tif
->tif_postencode
= Fax3PostEncode
;
1339 tif
->tif_encoderow
= Fax3Encode
;
1340 tif
->tif_encodestrip
= Fax3Encode
;
1341 tif
->tif_encodetile
= Fax3Encode
;
1342 tif
->tif_close
= Fax3Close
;
1343 tif
->tif_cleanup
= Fax3Cleanup
;
1349 TIFFInitCCITTFax3(TIFF
* tif
, int scheme
)
1352 if (InitCCITTFax3(tif
)) {
1354 * Merge codec-specific tag information.
1356 if (!_TIFFMergeFields(tif
, fax3Fields
,
1357 TIFFArrayCount(fax3Fields
))) {
1358 TIFFErrorExt(tif
->tif_clientdata
, "TIFFInitCCITTFax3",
1359 "Merging CCITT Fax 3 codec-specific tags failed");
1364 * The default format is Class/F-style w/o RTC.
1366 return TIFFSetField(tif
, TIFFTAG_FAXMODE
, FAXMODE_CLASSF
);
1372 * CCITT Group 4 (T.6) Facsimile-compatible
1373 * Compression Scheme Support.
1376 #define SWAP(t,a,b) { t x; x = (a); (a) = (b); (b) = x; }
1378 * Decode the requested amount of G4-encoded data.
1381 Fax4Decode(TIFF
* tif
, uint8
* buf
, tmsize_t occ
, uint16 s
)
1383 DECLARE_STATE_2D(tif
, sp
, "Fax4Decode");
1385 if (occ
% sp
->b
.rowbytes
)
1387 TIFFErrorExt(tif
->tif_clientdata
, module, "Fractional scanlines cannot be read");
1390 CACHE_STATE(tif
, sp
);
1394 pa
= thisrun
= sp
->curruns
;
1398 printf("\nBitAcc=%08X, BitsAvail = %d\n", BitAcc
, BitsAvail
);
1399 printf("-------------------- %d\n", tif
->tif_row
);
1405 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
1406 SETVALUE(0); /* imaginary change for reference */
1407 SWAP(uint32
*, sp
->curruns
, sp
->refruns
);
1408 buf
+= sp
->b
.rowbytes
;
1409 occ
-= sp
->b
.rowbytes
;
1413 NeedBits16( 13, BADG4
);
1416 if( GetBits(13) != 0x1001 )
1417 fputs( "Bad EOFB\n", stderr
);
1420 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
1421 UNCACHE_STATE(tif
, sp
);
1422 return ( sp
->line
? 1 : -1); /* don't error on badly-terminated strips */
1424 UNCACHE_STATE(tif
, sp
);
1430 * Encode the requested amount of data.
1433 Fax4Encode(TIFF
* tif
, uint8
* bp
, tmsize_t cc
, uint16 s
)
1435 static const char module[] = "Fax4Encode";
1436 Fax3CodecState
*sp
= EncoderState(tif
);
1438 if (cc
% sp
->b
.rowbytes
)
1440 TIFFErrorExt(tif
->tif_clientdata
, module, "Fractional scanlines cannot be written");
1444 if (!Fax3Encode2DRow(tif
, bp
, sp
->refline
, sp
->b
.rowpixels
))
1446 _TIFFmemcpy(sp
->refline
, bp
, sp
->b
.rowbytes
);
1447 bp
+= sp
->b
.rowbytes
;
1448 cc
-= sp
->b
.rowbytes
;
1454 Fax4PostEncode(TIFF
* tif
)
1456 Fax3CodecState
*sp
= EncoderState(tif
);
1458 /* terminate strip w/ EOFB */
1459 Fax3PutBits(tif
, EOL
, 12);
1460 Fax3PutBits(tif
, EOL
, 12);
1462 Fax3FlushBits(tif
, sp
);
1467 TIFFInitCCITTFax4(TIFF
* tif
, int scheme
)
1470 if (InitCCITTFax3(tif
)) { /* reuse G3 support */
1472 * Merge codec-specific tag information.
1474 if (!_TIFFMergeFields(tif
, fax4Fields
,
1475 TIFFArrayCount(fax4Fields
))) {
1476 TIFFErrorExt(tif
->tif_clientdata
, "TIFFInitCCITTFax4",
1477 "Merging CCITT Fax 4 codec-specific tags failed");
1481 tif
->tif_decoderow
= Fax4Decode
;
1482 tif
->tif_decodestrip
= Fax4Decode
;
1483 tif
->tif_decodetile
= Fax4Decode
;
1484 tif
->tif_encoderow
= Fax4Encode
;
1485 tif
->tif_encodestrip
= Fax4Encode
;
1486 tif
->tif_encodetile
= Fax4Encode
;
1487 tif
->tif_postencode
= Fax4PostEncode
;
1489 * Suppress RTC at the end of each strip.
1491 return TIFFSetField(tif
, TIFFTAG_FAXMODE
, FAXMODE_NORTC
);
1497 * CCITT Group 3 1-D Modified Huffman RLE Compression Support.
1498 * (Compression algorithms 2 and 32771)
1502 * Decode the requested amount of RLE-encoded data.
1505 Fax3DecodeRLE(TIFF
* tif
, uint8
* buf
, tmsize_t occ
, uint16 s
)
1507 DECLARE_STATE(tif
, sp
, "Fax3DecodeRLE");
1508 int mode
= sp
->b
.mode
;
1510 if (occ
% sp
->b
.rowbytes
)
1512 TIFFErrorExt(tif
->tif_clientdata
, module, "Fractional scanlines cannot be read");
1515 CACHE_STATE(tif
, sp
);
1516 thisrun
= sp
->curruns
;
1522 printf("\nBitAcc=%08X, BitsAvail = %d\n", BitAcc
, BitsAvail
);
1523 printf("-------------------- %d\n", tif
->tif_row
);
1527 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
1529 * Cleanup at the end of the row.
1531 if (mode
& FAXMODE_BYTEALIGN
) {
1532 int n
= BitsAvail
- (BitsAvail
&~ 7);
1534 } else if (mode
& FAXMODE_WORDALIGN
) {
1535 int n
= BitsAvail
- (BitsAvail
&~ 15);
1537 if (BitsAvail
== 0 && !isAligned(cp
, uint16
))
1540 buf
+= sp
->b
.rowbytes
;
1541 occ
-= sp
->b
.rowbytes
;
1544 EOFRLE
: /* premature EOF */
1545 (*sp
->fill
)(buf
, thisrun
, pa
, lastx
);
1546 UNCACHE_STATE(tif
, sp
);
1549 UNCACHE_STATE(tif
, sp
);
1554 TIFFInitCCITTRLE(TIFF
* tif
, int scheme
)
1557 if (InitCCITTFax3(tif
)) { /* reuse G3 support */
1558 tif
->tif_decoderow
= Fax3DecodeRLE
;
1559 tif
->tif_decodestrip
= Fax3DecodeRLE
;
1560 tif
->tif_decodetile
= Fax3DecodeRLE
;
1562 * Suppress RTC+EOLs when encoding and byte-align data.
1564 return TIFFSetField(tif
, TIFFTAG_FAXMODE
,
1565 FAXMODE_NORTC
|FAXMODE_NOEOL
|FAXMODE_BYTEALIGN
);
1571 TIFFInitCCITTRLEW(TIFF
* tif
, int scheme
)
1574 if (InitCCITTFax3(tif
)) { /* reuse G3 support */
1575 tif
->tif_decoderow
= Fax3DecodeRLE
;
1576 tif
->tif_decodestrip
= Fax3DecodeRLE
;
1577 tif
->tif_decodetile
= Fax3DecodeRLE
;
1579 * Suppress RTC+EOLs when encoding and word-align data.
1581 return TIFFSetField(tif
, TIFFTAG_FAXMODE
,
1582 FAXMODE_NORTC
|FAXMODE_NOEOL
|FAXMODE_WORDALIGN
);
1586 #endif /* CCITT_SUPPORT */
1588 /* vim: set ts=8 sts=8 sw=8 noet: */