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1 /*
2 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3 %                                                                             %
4 %                                                                             %
5 %                  M   M   AAA   TTTTT  L       AAA   BBBB                    %
6 %                  MM MM  A   A    T    L      A   A  B   B                   %
7 %                  M M M  AAAAA    T    L      AAAAA  BBBB                    %
8 %                  M   M  A   A    T    L      A   A  B   B                   %
9 %                  M   M  A   A    T    LLLLL  A   A  BBBB                    %
10 %                                                                             %
11 %                                                                             %
12 %                        Read MATLAB Image Format                             %
13 %                                                                             %
14 %                              Software Design                                %
15 %                              Jaroslav Fojtik                                %
16 %                                2001-2008                                    %
17 %                                                                             %
18 %                                                                             %
19 %  Permission is hereby granted, free of charge, to any person obtaining a    %
20 %  copy of this software and associated documentation files ("ImageMagick"),  %
21 %  to deal in ImageMagick without restriction, including without limitation   %
22 %  the rights to use, copy, modify, merge, publish, distribute, sublicense,   %
23 %  and/or sell copies of ImageMagick, and to permit persons to whom the       %
24 %  ImageMagick is furnished to do so, subject to the following conditions:    %
25 %                                                                             %
26 %  The above copyright notice and this permission notice shall be included in %
27 %  all copies or substantial portions of ImageMagick.                         %
28 %                                                                             %
29 %  The software is provided "as is", without warranty of any kind, express or %
30 %  implied, including but not limited to the warranties of merchantability,   %
31 %  fitness for a particular purpose and noninfringement.  In no event shall   %
32 %  ImageMagick Studio be liable for any claim, damages or other liability,    %
33 %  whether in an action of contract, tort or otherwise, arising from, out of  %
34 %  or in connection with ImageMagick or the use or other dealings in          %
35 %  ImageMagick.                                                               %
36 %                                                                             %
37 %  Except as contained in this notice, the name of the ImageMagick Studio     %
38 %  shall not be used in advertising or otherwise to promote the sale, use or  %
39 %  other dealings in ImageMagick without prior written authorization from the %
40 %  ImageMagick Studio.                                                        %
41 %                                                                             %
42 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
43 %
44 %
45 */
46 \f
47 /*
48   Include declarations.
49 */
50 #include "MagickCore/studio.h"
51 #include "MagickCore/attribute.h"
52 #include "MagickCore/blob.h"
53 #include "MagickCore/blob-private.h"
54 #include "MagickCore/cache.h"
55 #include "MagickCore/color-private.h"
56 #include "MagickCore/colormap.h"
57 #include "MagickCore/colorspace-private.h"
58 #include "MagickCore/distort.h"
59 #include "MagickCore/exception.h"
60 #include "MagickCore/exception-private.h"
61 #include "MagickCore/image.h"
62 #include "MagickCore/image-private.h"
63 #include "MagickCore/list.h"
64 #include "MagickCore/magick.h"
65 #include "MagickCore/memory_.h"
66 #include "MagickCore/monitor.h"
67 #include "MagickCore/monitor-private.h"
68 #include "MagickCore/pixel-accessor.h"
69 #include "MagickCore/quantum.h"
70 #include "MagickCore/quantum-private.h"
71 #include "MagickCore/option.h"
72 #include "MagickCore/pixel.h"
73 #include "MagickCore/resource_.h"
74 #include "MagickCore/static.h"
75 #include "MagickCore/string_.h"
76 #include "MagickCore/module.h"
77 #include "MagickCore/transform.h"
78 #include "MagickCore/utility-private.h"
79 #if defined(MAGICKCORE_ZLIB_DELEGATE)
80  #include "zlib.h"
81 #endif
82 \f
83 /*
84   Forward declaration.
85 */
86 static MagickBooleanType
87   WriteMATImage(const ImageInfo *,Image *,ExceptionInfo *);
88
89
90 /* Auto coloring method, sorry this creates some artefact inside data
91 MinReal+j*MaxComplex = red  MaxReal+j*MaxComplex = black
92 MinReal+j*0 = white          MaxReal+j*0 = black
93 MinReal+j*MinComplex = blue  MaxReal+j*MinComplex = black
94 */
95
96 typedef struct
97 {
98   char identific[124];
99   unsigned short Version;
100   char EndianIndicator[2];
101   unsigned long DataType;
102   unsigned int ObjectSize;
103   unsigned long unknown1;
104   unsigned long unknown2;
105
106   unsigned short unknown5;
107   unsigned char StructureFlag;
108   unsigned char StructureClass;
109   unsigned long unknown3;
110   unsigned long unknown4;
111   unsigned long DimFlag;
112
113   unsigned long SizeX;
114   unsigned long SizeY;
115   unsigned short Flag1;
116   unsigned short NameFlag;
117 }
118 MATHeader;
119
120 static const char *MonthsTab[12]={"Jan","Feb","Mar","Apr","May","Jun","Jul","Aug","Sep","Oct","Nov","Dec"};
121 static const char *DayOfWTab[7]={"Sun","Mon","Tue","Wed","Thu","Fri","Sat"};
122 static const char *OsDesc=
123 #if defined(MAGICKCORE_WINDOWS_SUPPORT)
124     "PCWIN";
125 #else
126  #ifdef __APPLE__
127     "MAC";
128  #else
129     "LNX86";
130  #endif
131 #endif
132
133 typedef enum
134   {
135     miINT8 = 1,      /* 8 bit signed */
136     miUINT8,      /* 8 bit unsigned */
137     miINT16,      /* 16 bit signed */
138     miUINT16,      /* 16 bit unsigned */
139     miINT32,      /* 32 bit signed */
140     miUINT32,      /* 32 bit unsigned */
141     miSINGLE,      /* IEEE 754 single precision float */
142     miRESERVE1,
143     miDOUBLE,      /* IEEE 754 double precision float */
144     miRESERVE2,
145     miRESERVE3,
146     miINT64,      /* 64 bit signed */
147     miUINT64,      /* 64 bit unsigned */
148     miMATRIX,            /* MATLAB array */
149     miCOMPRESSED,          /* Compressed Data */
150     miUTF8,            /* Unicode UTF-8 Encoded Character Data */
151     miUTF16,            /* Unicode UTF-16 Encoded Character Data */
152     miUTF32      /* Unicode UTF-32 Encoded Character Data */
153   } mat5_data_type;
154
155 typedef enum
156   {
157     mxCELL_CLASS=1,    /* cell array */
158     mxSTRUCT_CLASS,    /* structure */
159     mxOBJECT_CLASS,    /* object */
160     mxCHAR_CLASS,    /* character array */
161     mxSPARSE_CLASS,    /* sparse array */
162     mxDOUBLE_CLASS,    /* double precision array */
163     mxSINGLE_CLASS,    /* single precision floating point */
164     mxINT8_CLASS,    /* 8 bit signed integer */
165     mxUINT8_CLASS,    /* 8 bit unsigned integer */
166     mxINT16_CLASS,    /* 16 bit signed integer */
167     mxUINT16_CLASS,    /* 16 bit unsigned integer */
168     mxINT32_CLASS,    /* 32 bit signed integer */
169     mxUINT32_CLASS,    /* 32 bit unsigned integer */
170     mxINT64_CLASS,    /* 64 bit signed integer */
171     mxUINT64_CLASS,    /* 64 bit unsigned integer */
172     mxFUNCTION_CLASS            /* Function handle */
173   } arrayclasstype;
174
175 #define FLAG_COMPLEX 0x8
176 #define FLAG_GLOBAL  0x4
177 #define FLAG_LOGICAL 0x2
178
179 static const QuantumType z2qtype[4] = {GrayQuantum, BlueQuantum, GreenQuantum, RedQuantum};
180
181
182 static void InsertComplexDoubleRow(Image *image,double *p,int y,double MinVal,
183   double MaxVal,ExceptionInfo *exception)
184 {
185
186   double f;
187   int x;
188   register Quantum *q;
189
190   if (MinVal == 0)
191     MinVal = -1;
192   if (MaxVal == 0)
193     MaxVal = 1;
194
195   q=QueueAuthenticPixels(image,0,y,image->columns,1,exception);
196   if (q == (Quantum *) NULL)
197     return;
198   for (x = 0; x < (ssize_t) image->columns; x++)
199   {
200     if (*p > 0)
201     {
202       f = (*p / MaxVal) * (QuantumRange-GetPixelRed(image,q));
203       if (f + GetPixelRed(image,q) > QuantumRange)
204         SetPixelRed(image,QuantumRange,q);
205       else
206         SetPixelRed(image,GetPixelRed(image,q)+(int) f,q);
207       if ((int) f / 2.0 > GetPixelGreen(image,q))
208         {
209           SetPixelGreen(image,0,q);
210           SetPixelBlue(image,0,q);
211         }
212       else
213         {
214           SetPixelBlue(image,GetPixelBlue(image,q)-(int) (f/2.0),q);
215           SetPixelGreen(image,GetPixelBlue(image,q),q);
216         }
217     }
218     if (*p < 0)
219     {
220       f = (*p / MaxVal) * (QuantumRange-GetPixelBlue(image,q));
221       if (f+GetPixelBlue(image,q) > QuantumRange)
222         SetPixelBlue(image,QuantumRange,q);
223       else
224         SetPixelBlue(image,GetPixelBlue(image,q)+(int) f,q);
225       if ((int) f / 2.0 > GetPixelGreen(image,q))
226         {
227           SetPixelRed(image,0,q);
228           SetPixelGreen(image,0,q);
229         }
230       else
231         {
232           SetPixelRed(image,GetPixelRed(image,q)-(int) (f/2.0),q);
233           SetPixelGreen(image,GetPixelRed(image,q),q);
234         }
235     }
236     p++;
237     q+=GetPixelChannels(image);
238   }
239   if (!SyncAuthenticPixels(image,exception))
240     return;
241   return;
242 }
243
244
245 static void InsertComplexFloatRow(Image *image,float *p,int y,double MinVal,
246   double MaxVal,ExceptionInfo *exception)
247 {
248   double f;
249   int x;
250   register Quantum *q;
251
252   if (MinVal == 0)
253     MinVal = -1;
254   if (MaxVal == 0)
255     MaxVal = 1;
256
257   q = QueueAuthenticPixels(image, 0, y, image->columns, 1,exception);
258   if (q == (Quantum *) NULL)
259     return;
260   for (x = 0; x < (ssize_t) image->columns; x++)
261   {
262     if (*p > 0)
263     {
264       f = (*p / MaxVal) * (QuantumRange-GetPixelRed(image,q));
265       if (f+GetPixelRed(image,q) > QuantumRange)
266         SetPixelRed(image,QuantumRange,q);
267       else
268         SetPixelRed(image,GetPixelRed(image,q)+(int) f,q);
269       if ((int) f / 2.0 > GetPixelGreen(image,q))
270         {
271           SetPixelGreen(image,0,q);
272           SetPixelBlue(image,0,q);
273         }
274       else
275         {
276           SetPixelBlue(image,GetPixelBlue(image,q)-(int) (f/2.0),q);
277           SetPixelGreen(image,GetPixelBlue(image,q),q);
278         }
279     }
280     if (*p < 0)
281     {
282       f = (*p / MaxVal) * (QuantumRange - GetPixelBlue(image,q));
283       if (f + GetPixelBlue(image,q) > QuantumRange)
284         SetPixelBlue(image,QuantumRange,q);
285       else
286         SetPixelBlue(image,GetPixelBlue(image,q)+
287           (int) f,q);
288       if ((int) f / 2.0 > GetPixelGreen(image,q))
289         {
290           SetPixelGreen(image,0,q);
291           SetPixelRed(image,0,q);
292         }
293       else
294         {
295           SetPixelRed(image,GetPixelRed(image,q)-(int) (f/2.0),q);
296           SetPixelGreen(image,GetPixelRed(image,q),q);
297         }
298     }
299     p++;
300     q++;
301   }
302   if (!SyncAuthenticPixels(image,exception))
303     return;
304   return;
305 }
306
307
308 /************** READERS ******************/
309
310 /* This function reads one block of floats*/
311 static void ReadBlobFloatsLSB(Image * image, size_t len, float *data)
312 {
313   while (len >= 4)
314   {
315     *data++ = ReadBlobFloat(image);
316     len -= sizeof(float);
317   }
318   if (len > 0)
319     (void) SeekBlob(image, len, SEEK_CUR);
320 }
321
322 static void ReadBlobFloatsMSB(Image * image, size_t len, float *data)
323 {
324   while (len >= 4)
325   {
326     *data++ = ReadBlobFloat(image);
327     len -= sizeof(float);
328   }
329   if (len > 0)
330     (void) SeekBlob(image, len, SEEK_CUR);
331 }
332
333 /* This function reads one block of doubles*/
334 static void ReadBlobDoublesLSB(Image * image, size_t len, double *data)
335 {
336   while (len >= 8)
337   {
338     *data++ = ReadBlobDouble(image);
339     len -= sizeof(double);
340   }
341   if (len > 0)
342     (void) SeekBlob(image, len, SEEK_CUR);
343 }
344
345 static void ReadBlobDoublesMSB(Image * image, size_t len, double *data)
346 {
347   while (len >= 8)
348   {
349     *data++ = ReadBlobDouble(image);
350     len -= sizeof(double);
351   }
352   if (len > 0)
353     (void) SeekBlob(image, len, SEEK_CUR);
354 }
355
356 /* Calculate minimum and maximum from a given block of data */
357 static void CalcMinMax(Image *image, int endian_indicator, int SizeX, int SizeY, size_t CellType, unsigned ldblk, void *BImgBuff, double *Min, double *Max)
358 {
359 MagickOffsetType filepos;
360 int i, x;
361 void (*ReadBlobDoublesXXX)(Image * image, size_t len, double *data);
362 void (*ReadBlobFloatsXXX)(Image * image, size_t len, float *data);
363 double *dblrow;
364 float *fltrow;
365
366   if (endian_indicator == LSBEndian)
367   {
368     ReadBlobDoublesXXX = ReadBlobDoublesLSB;
369     ReadBlobFloatsXXX = ReadBlobFloatsLSB;
370   }
371   else    /* MI */
372   {
373     ReadBlobDoublesXXX = ReadBlobDoublesMSB;
374     ReadBlobFloatsXXX = ReadBlobFloatsMSB;
375   }
376
377   filepos = TellBlob(image);     /* Please note that file seeking occurs only in the case of doubles */
378   for (i = 0; i < SizeY; i++)
379   {
380     if (CellType==miDOUBLE)
381     {
382       ReadBlobDoublesXXX(image, ldblk, (double *)BImgBuff);
383       dblrow = (double *)BImgBuff;
384       if (i == 0)
385       {
386         *Min = *Max = *dblrow;
387       }
388       for (x = 0; x < SizeX; x++)
389       {
390         if (*Min > *dblrow)
391           *Min = *dblrow;
392         if (*Max < *dblrow)
393           *Max = *dblrow;
394         dblrow++;
395       }
396     }
397     if (CellType==miSINGLE)
398     {
399       ReadBlobFloatsXXX(image, ldblk, (float *)BImgBuff);
400       fltrow = (float *)BImgBuff;
401       if (i == 0)
402       {
403         *Min = *Max = *fltrow;
404       }
405     for (x = 0; x < (ssize_t) SizeX; x++)
406       {
407         if (*Min > *fltrow)
408           *Min = *fltrow;
409         if (*Max < *fltrow)
410           *Max = *fltrow;
411         fltrow++;
412       }
413     }
414   }
415   (void) SeekBlob(image, filepos, SEEK_SET);
416 }
417
418
419 static void FixSignedValues(const Image *image,Quantum *q, int y)
420 {
421   while(y-->0)
422   {
423      /* Please note that negative values will overflow
424         Q=8; QuantumRange=255: <0;127> + 127+1 = <128; 255>
425            <-1;-128> + 127+1 = <0; 127> */
426     SetPixelRed(image,GetPixelRed(image,q)+QuantumRange/2+1,q);
427     SetPixelGreen(image,GetPixelGreen(image,q)+QuantumRange/2+1,q);
428     SetPixelBlue(image,GetPixelBlue(image,q)+QuantumRange/2+1,q);
429     q++;
430   }
431 }
432
433
434 /** Fix whole row of logical/binary data. It means pack it. */
435 static void FixLogical(unsigned char *Buff,int ldblk)
436 {
437 unsigned char mask=128;
438 unsigned char *BuffL = Buff;
439 unsigned char val = 0;
440
441   while(ldblk-->0)
442   {
443     if(*Buff++ != 0)
444       val |= mask;
445
446     mask >>= 1;
447     if(mask==0)
448     {
449       *BuffL++ = val;
450       val = 0;
451       mask = 128;
452     }
453
454   }
455   *BuffL = val;
456 }
457
458 #if defined(MAGICKCORE_ZLIB_DELEGATE)
459 static voidpf AcquireZIPMemory(voidpf context,unsigned int items,
460   unsigned int size)
461 {
462   (void) context;
463   return((voidpf) AcquireQuantumMemory(items,size));
464 }
465
466 static void RelinquishZIPMemory(voidpf context,voidpf memory)
467 {
468   (void) context;
469   memory=RelinquishMagickMemory(memory);
470 }
471 #endif
472
473 #if defined(MAGICKCORE_ZLIB_DELEGATE)
474 /** This procedure decompreses an image block for a new MATLAB format. */
475 static Image *decompress_block(Image *orig, unsigned int *Size, ImageInfo *clone_info, ExceptionInfo *exception)
476 {
477
478 Image *image2;
479 void *cache_block, *decompress_block;
480 z_stream zip_info;
481 FILE *mat_file;
482 size_t magick_size;
483 size_t extent;
484 int file;
485
486 int status;
487 int zip_status;
488 ssize_t TotalSize = 0;
489
490   if(clone_info==NULL) return NULL;
491   if(clone_info->file)    /* Close file opened from previous transaction. */
492   {
493     fclose(clone_info->file);
494     clone_info->file = NULL;
495     (void) remove_utf8(clone_info->filename);
496   }
497
498   cache_block = AcquireQuantumMemory((size_t)(*Size < 16384) ? *Size: 16384,sizeof(unsigned char *));
499   if(cache_block==NULL) return NULL;
500   decompress_block = AcquireQuantumMemory((size_t)(4096),sizeof(unsigned char *));
501   if(decompress_block==NULL)
502   {
503     RelinquishMagickMemory(cache_block);
504     return NULL;
505   }
506
507   mat_file=0;
508   file = AcquireUniqueFileResource(clone_info->filename);
509   if (file != -1)
510     mat_file = fdopen(file,"w");
511   if(!mat_file)
512   {
513     RelinquishMagickMemory(cache_block);
514     RelinquishMagickMemory(decompress_block);
515     (void) LogMagickEvent(CoderEvent,GetMagickModule(),"Cannot create file stream for decompressed image");
516     return NULL;
517   }
518
519   zip_info.zalloc=AcquireZIPMemory;
520   zip_info.zfree=RelinquishZIPMemory;
521   zip_info.opaque = (voidpf) NULL;
522   zip_status = inflateInit(&zip_info);
523   if (zip_status != Z_OK)
524     {
525       RelinquishMagickMemory(cache_block);
526       RelinquishMagickMemory(decompress_block);
527       (void) ThrowMagickException(exception,GetMagickModule(),CorruptImageError,
528         "UnableToUncompressImage","`%s'",clone_info->filename);
529       (void) fclose(mat_file);
530       RelinquishUniqueFileResource(clone_info->filename);
531       return NULL;
532     }
533   /* zip_info.next_out = 8*4;*/
534
535   zip_info.avail_in = 0;
536   zip_info.total_out = 0;
537   while(*Size>0 && !EOFBlob(orig))
538   {
539     magick_size = ReadBlob(orig, (*Size < 16384) ? *Size : 16384, (unsigned char *) cache_block);
540     zip_info.next_in = (Bytef *) cache_block;
541     zip_info.avail_in = (uInt) magick_size;
542
543     while(zip_info.avail_in>0)
544     {
545       zip_info.avail_out = 4096;
546       zip_info.next_out = (Bytef *) decompress_block;
547       zip_status = inflate(&zip_info,Z_NO_FLUSH);
548       if ((zip_status != Z_OK) && (zip_status != Z_STREAM_END))
549         break;
550       extent=fwrite(decompress_block, 4096-zip_info.avail_out, 1, mat_file);
551       (void) extent;
552       TotalSize += 4096-zip_info.avail_out;
553
554       if(zip_status == Z_STREAM_END) goto DblBreak;
555     }
556     if ((zip_status != Z_OK) && (zip_status != Z_STREAM_END))
557       break;
558
559     *Size -= (unsigned int) magick_size;
560   }
561 DblBreak:
562
563   inflateEnd(&zip_info);
564   (void)fclose(mat_file);
565   RelinquishMagickMemory(cache_block);
566   RelinquishMagickMemory(decompress_block);
567   *Size = TotalSize;
568
569   if((clone_info->file=fopen(clone_info->filename,"rb"))==NULL) goto UnlinkFile;
570   if( (image2 = AcquireImage(clone_info,exception))==NULL ) goto EraseFile;
571   status = OpenBlob(clone_info,image2,ReadBinaryBlobMode,exception);
572   if (status == MagickFalse)
573   {
574     DeleteImageFromList(&image2);
575 EraseFile:
576     fclose(clone_info->file);
577     clone_info->file = NULL;
578 UnlinkFile:
579     RelinquishUniqueFileResource(clone_info->filename);
580     return NULL;
581   }
582
583   return image2;
584 }
585 #endif
586
587 static Image *ReadMATImageV4(const ImageInfo *image_info,Image *image,
588   ExceptionInfo *exception)
589 {
590   typedef struct {
591     unsigned char Type[4];
592     unsigned int nRows;
593     unsigned int nCols;
594     unsigned int imagf;
595     unsigned int nameLen;
596   } MAT4_HDR;
597
598   long
599     ldblk;
600
601   EndianType
602     endian;
603
604   Image
605     *rotated_image;
606
607   MagickBooleanType
608     status;
609
610   MAT4_HDR
611     HDR;
612
613   QuantumInfo
614     *quantum_info;
615
616   QuantumFormatType
617     format_type;
618
619   register ssize_t
620     i;
621
622   ssize_t
623     count,
624     y;
625
626   unsigned char
627     *pixels;
628
629   unsigned int
630     depth;
631
632
633   quantum_info=(QuantumInfo *) NULL;
634   (void) SeekBlob(image,0,SEEK_SET);
635   while (EOFBlob(image) == MagickFalse)
636   {
637     /*
638      Object parser loop.
639     */
640     ldblk=ReadBlobLSBLong(image);
641     if ((ldblk > 9999) || (ldblk < 0))
642       break;
643     HDR.Type[3]=ldblk % 10; ldblk /= 10;  /* T digit */
644     HDR.Type[2]=ldblk % 10; ldblk /= 10;  /* P digit */
645     HDR.Type[1]=ldblk % 10; ldblk /= 10;  /* O digit */
646     HDR.Type[0]=ldblk;        /* M digit */
647     if (HDR.Type[3] != 0)
648       break;  /* Data format */
649     if (HDR.Type[2] != 0)
650       break;  /* Always 0 */
651     if (HDR.Type[0] == 0)
652       {
653         HDR.nRows=ReadBlobLSBLong(image);
654         HDR.nCols=ReadBlobLSBLong(image);
655         HDR.imagf=ReadBlobLSBLong(image);
656         HDR.nameLen=ReadBlobLSBLong(image);
657         endian=LSBEndian;
658       }
659     else
660       {
661         HDR.nRows=ReadBlobMSBLong(image);
662         HDR.nCols=ReadBlobMSBLong(image);
663         HDR.imagf=ReadBlobMSBLong(image);
664         HDR.nameLen=ReadBlobMSBLong(image);
665         endian=MSBEndian;
666       }
667     if ((HDR.imagf != 0) && (HDR.imagf != 1))
668       break;
669     if (HDR.nameLen > 0xFFFF)
670       return((Image *) NULL);
671     for (i=0; i < (ssize_t) HDR.nameLen; i++)
672     {
673       int
674         byte;
675
676       /*
677         Skip matrix name.
678       */
679       byte=ReadBlobByte(image);
680       if (byte == EOF)
681         {
682           ThrowFileException(exception,CorruptImageError,"UnexpectedEndOfFile",
683             image->filename);
684           break;
685         }
686     }
687     image->columns=(size_t) HDR.nRows;
688     image->rows=(size_t) HDR.nCols;
689     SetImageColorspace(image,GRAYColorspace,exception);
690     if (image_info->ping != MagickFalse)
691       {
692         Swap(image->columns,image->rows);
693         if(HDR.imagf==1) ldblk *= 2;
694         SeekBlob(image, HDR.nCols*ldblk, SEEK_CUR);
695         goto skip_reading_current;
696       }
697     status=SetImageExtent(image,image->columns,image->rows,exception);
698     if (status == MagickFalse)
699       return((Image *) NULL);
700     (void) SetImageBackgroundColor(image,exception);
701     quantum_info=AcquireQuantumInfo(image_info,image);
702     if (quantum_info == (QuantumInfo *) NULL)
703       return((Image *) NULL);
704     switch(HDR.Type[1])
705     {
706       case 0:
707         format_type=FloatingPointQuantumFormat;
708         depth=64;
709         break;
710       case 1:
711         format_type=FloatingPointQuantumFormat;
712         depth=32;
713         break;
714       case 2:
715         format_type=UnsignedQuantumFormat;
716         depth=16;
717         break;
718       case 3:
719         format_type=SignedQuantumFormat;
720         depth=16;
721         break;
722       case 4:
723         format_type=UnsignedQuantumFormat;
724         depth=8;
725         break;
726       default:
727         format_type=UnsignedQuantumFormat;
728         depth=8;
729         break;
730     }
731     image->depth=depth;
732     if (HDR.Type[0] != 0)
733       SetQuantumEndian(image,quantum_info,MSBEndian);
734     status=SetQuantumFormat(image,quantum_info,format_type);
735     status=SetQuantumDepth(image,quantum_info,depth);
736     status=SetQuantumEndian(image,quantum_info,endian);
737     SetQuantumScale(quantum_info,1.0);
738     pixels=(unsigned char *) GetQuantumPixels(quantum_info);
739     for (y=0; y < (ssize_t) image->rows; y++)
740     {
741       register Quantum
742         *magick_restrict q;
743
744       count=ReadBlob(image,depth/8*image->columns,(char *) pixels);
745       if (count == -1)
746         break;
747       q=QueueAuthenticPixels(image,0,image->rows-y-1,image->columns,1,
748         exception);
749       if (q == (Quantum *) NULL)
750         break;
751       (void) ImportQuantumPixels(image,(CacheView *) NULL,quantum_info,
752         GrayQuantum,pixels,exception);
753       if ((HDR.Type[1] == 2) || (HDR.Type[1] == 3))
754         FixSignedValues(image,q,(int) image->columns);
755       if (SyncAuthenticPixels(image,exception) == MagickFalse)
756         break;
757       if (image->previous == (Image *) NULL)
758         {
759           status=SetImageProgress(image,LoadImageTag,(MagickOffsetType) y,
760             image->rows);
761           if (status == MagickFalse)
762             break;
763         }
764     }
765     if (HDR.imagf == 1)
766       for (y=0; y < (ssize_t) image->rows; y++)
767       {
768         /*
769           Read complex pixels.
770         */
771         count=ReadBlob(image,depth/8*image->columns,(char *) pixels);
772         if (count == -1)
773           break;
774         if (HDR.Type[1] == 0)
775           InsertComplexDoubleRow(image,(double *) pixels,y,0,0,exception);
776         else
777           InsertComplexFloatRow(image,(float *) pixels,y,0,0,exception);
778       }
779     if (quantum_info != (QuantumInfo *) NULL)
780       quantum_info=DestroyQuantumInfo(quantum_info);
781     if (EOFBlob(image) != MagickFalse)
782       {
783         ThrowFileException(exception,CorruptImageError,"UnexpectedEndOfFile",
784           image->filename);
785         break;
786       }
787     rotated_image=RotateImage(image,90.0,exception);
788     if (rotated_image != (Image *) NULL)
789       {
790         void
791           *blob;
792         
793         rotated_image->page.x=0;
794         rotated_image->page.y=0;
795         blob = rotated_image->blob;
796         rotated_image->blob = image->blob;
797         rotated_image->colors = image->colors;
798         image->blob = (BlobInfo *) blob;
799         AppendImageToList(&image,rotated_image);
800         DeleteImageFromList(&image->previous);
801         image = rotated_image;
802       }
803     /*
804       Proceed to next image.
805     */
806     if (image_info->number_scenes != 0)
807       if (image->scene >= (image_info->scene+image_info->number_scenes-1))
808         break;
809     /*
810       Allocate next image structure.
811     */
812 skip_reading_current:
813     AcquireNextImage(image_info,image,exception);
814     if (GetNextImageInList(image) == (Image *) NULL)
815       {
816         image=DestroyImageList(image);
817         return((Image *) NULL);
818       }
819     image=SyncNextImageInList(image);
820     status=SetImageProgress(image,LoadImagesTag,TellBlob(image),
821       GetBlobSize(image));
822     if (status == MagickFalse)
823       break;
824   }
825   (void) CloseBlob(image);
826   return(GetFirstImageInList(image));
827 }
828 \f
829 /*
830 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
831 %                                                                             %
832 %                                                                             %
833 %                                                                             %
834 %   R e a d M A T L A B i m a g e                                             %
835 %                                                                             %
836 %                                                                             %
837 %                                                                             %
838 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
839 %
840 %  ReadMATImage() reads an MAT X image file and returns it.  It
841 %  allocates the memory necessary for the new Image structure and returns a
842 %  pointer to the new image.
843 %
844 %  The format of the ReadMATImage method is:
845 %
846 %      Image *ReadMATImage(const ImageInfo *image_info,ExceptionInfo *exception)
847 %
848 %  A description of each parameter follows:
849 %
850 %    o image:  Method ReadMATImage returns a pointer to the image after
851 %      reading. A null image is returned if there is a memory shortage or if
852 %      the image cannot be read.
853 %
854 %    o image_info: Specifies a pointer to a ImageInfo structure.
855 %
856 %    o exception: return any errors or warnings in this structure.
857 %
858 */
859 static Image *ReadMATImage(const ImageInfo *image_info,ExceptionInfo *exception)
860 {
861   Image *image, *image2=NULL,
862    *rotated_image;
863   register Quantum *q;
864
865   unsigned int status;
866   MATHeader MATLAB_HDR;
867   size_t size;
868   size_t CellType;
869   QuantumInfo *quantum_info;
870   ImageInfo *clone_info;
871   int i;
872   ssize_t ldblk;
873   unsigned char *BImgBuff = NULL;
874   double MinVal, MaxVal;
875   unsigned z, z2;
876   unsigned Frames;
877   int logging;
878   int sample_size;
879   MagickOffsetType filepos=0x80;
880   BlobInfo *blob;
881   size_t one;
882
883   unsigned int (*ReadBlobXXXLong)(Image *image);
884   unsigned short (*ReadBlobXXXShort)(Image *image);
885   void (*ReadBlobDoublesXXX)(Image * image, size_t len, double *data);
886   void (*ReadBlobFloatsXXX)(Image * image, size_t len, float *data);
887
888
889   assert(image_info != (const ImageInfo *) NULL);
890   assert(image_info->signature == MagickCoreSignature);
891   assert(exception != (ExceptionInfo *) NULL);
892   assert(exception->signature == MagickCoreSignature);
893   logging = LogMagickEvent(CoderEvent,GetMagickModule(),"enter");
894
895   /*
896      Open image file.
897    */
898   image = AcquireImage(image_info,exception);
899   image2 = (Image *) NULL;
900
901   status = OpenBlob(image_info, image, ReadBinaryBlobMode, exception);
902   if (status == MagickFalse)
903     {
904       image=DestroyImageList(image);
905       return((Image *) NULL);
906     }
907   /*
908      Read MATLAB image.
909    */
910   quantum_info=(QuantumInfo *) NULL;
911   clone_info=(ImageInfo *) NULL;
912   if (ReadBlob(image,124,(unsigned char *) &MATLAB_HDR.identific) != 124)
913     ThrowReaderException(CorruptImageError,"ImproperImageHeader");
914   if (strncmp(MATLAB_HDR.identific,"MATLAB",6) != 0)
915     {
916       image2=ReadMATImageV4(image_info,image,exception);
917       if (image2  == NULL)
918         goto MATLAB_KO;
919       image=image2;
920       goto END_OF_READING;
921     }
922   MATLAB_HDR.Version = ReadBlobLSBShort(image);
923   if(ReadBlob(image,2,(unsigned char *) &MATLAB_HDR.EndianIndicator) != 2)
924     ThrowReaderException(CorruptImageError,"ImproperImageHeader");
925
926   if (logging)
927     (void) LogMagickEvent(CoderEvent,GetMagickModule(),"  Endian %c%c",
928       MATLAB_HDR.EndianIndicator[0],MATLAB_HDR.EndianIndicator[1]);
929   if (!strncmp(MATLAB_HDR.EndianIndicator, "IM", 2))
930   {
931     ReadBlobXXXLong = ReadBlobLSBLong;
932     ReadBlobXXXShort = ReadBlobLSBShort;
933     ReadBlobDoublesXXX = ReadBlobDoublesLSB;
934     ReadBlobFloatsXXX = ReadBlobFloatsLSB;
935     image->endian = LSBEndian;
936   }
937   else if (!strncmp(MATLAB_HDR.EndianIndicator, "MI", 2))
938   {
939     ReadBlobXXXLong = ReadBlobMSBLong;
940     ReadBlobXXXShort = ReadBlobMSBShort;
941     ReadBlobDoublesXXX = ReadBlobDoublesMSB;
942     ReadBlobFloatsXXX = ReadBlobFloatsMSB;
943     image->endian = MSBEndian;
944   }
945   else
946     goto MATLAB_KO;    /* unsupported endian */
947
948   if (strncmp(MATLAB_HDR.identific, "MATLAB", 6))
949     {
950 MATLAB_KO:
951       if ((image != image2) && (image2 != (Image *) NULL))
952         image2=DestroyImage(image2);
953       if (clone_info != (ImageInfo *) NULL)
954         clone_info=DestroyImageInfo(clone_info);
955       ThrowReaderException(CorruptImageError,"ImproperImageHeader");
956     }
957
958   filepos = TellBlob(image);
959   while(!EOFBlob(image)) /* object parser loop */
960   {
961     Frames = 1;
962     (void) SeekBlob(image,filepos,SEEK_SET);
963     /* printf("pos=%X\n",TellBlob(image)); */
964
965     MATLAB_HDR.DataType = ReadBlobXXXLong(image);
966     if(EOFBlob(image)) break;
967     MATLAB_HDR.ObjectSize = ReadBlobXXXLong(image);
968     if(EOFBlob(image)) break;
969     if((MagickSizeType) (MATLAB_HDR.ObjectSize+filepos) > GetBlobSize(image))
970       goto MATLAB_KO;
971     filepos += MATLAB_HDR.ObjectSize + 4 + 4;
972
973     if (clone_info != (ImageInfo *) NULL)
974       clone_info=DestroyImageInfo(clone_info);
975     clone_info=CloneImageInfo(image_info);
976     if ((image != image2) && (image2 != (Image *) NULL))
977       image2=DestroyImage(image2);
978     image2 = image;
979 #if defined(MAGICKCORE_ZLIB_DELEGATE)
980     if(MATLAB_HDR.DataType == miCOMPRESSED)
981     {
982       image2 = decompress_block(image,&MATLAB_HDR.ObjectSize,clone_info,exception);
983       if(image2==NULL) continue;
984       MATLAB_HDR.DataType = ReadBlobXXXLong(image2); /* replace compressed object type. */
985     }
986 #endif
987
988     if (MATLAB_HDR.DataType!=miMATRIX)
989       {
990         clone_info=DestroyImageInfo(clone_info);
991         continue;  /* skip another objects. */
992       }
993
994     MATLAB_HDR.unknown1 = ReadBlobXXXLong(image2);
995     MATLAB_HDR.unknown2 = ReadBlobXXXLong(image2);
996
997     MATLAB_HDR.unknown5 = ReadBlobXXXLong(image2);
998     MATLAB_HDR.StructureClass = MATLAB_HDR.unknown5 & 0xFF;
999     MATLAB_HDR.StructureFlag = (MATLAB_HDR.unknown5>>8) & 0xFF;
1000
1001     MATLAB_HDR.unknown3 = ReadBlobXXXLong(image2);
1002     if(image!=image2)
1003       MATLAB_HDR.unknown4 = ReadBlobXXXLong(image2);  /* ??? don't understand why ?? */
1004     MATLAB_HDR.unknown4 = ReadBlobXXXLong(image2);
1005     MATLAB_HDR.DimFlag = ReadBlobXXXLong(image2);
1006     MATLAB_HDR.SizeX = ReadBlobXXXLong(image2);
1007     MATLAB_HDR.SizeY = ReadBlobXXXLong(image2);
1008
1009
1010     switch(MATLAB_HDR.DimFlag)
1011     {
1012       case  8: z2=z=1; break;      /* 2D matrix*/
1013       case 12: z2=z = ReadBlobXXXLong(image2);  /* 3D matrix RGB*/
1014            (void) ReadBlobXXXLong(image2);
1015          if(z!=3)
1016            {
1017              if (clone_info != (ImageInfo *) NULL)
1018                clone_info=DestroyImageInfo(clone_info);
1019              if ((image != image2) && (image2 != (Image *) NULL))
1020                image2=DestroyImage(image2);
1021              ThrowReaderException(CoderError,
1022                "MultidimensionalMatricesAreNotSupported");
1023            }
1024          break;
1025       case 16: z2=z = ReadBlobXXXLong(image2);  /* 4D matrix animation */
1026          if(z!=3 && z!=1)
1027            {
1028              if (clone_info != (ImageInfo *) NULL)
1029                clone_info=DestroyImageInfo(clone_info);
1030              if ((image != image2) && (image2 != (Image *) NULL))
1031                image2=DestroyImage(image2);
1032              ThrowReaderException(CoderError,
1033                "MultidimensionalMatricesAreNotSupported");
1034            }
1035          Frames = ReadBlobXXXLong(image2);
1036          if (Frames == 0)
1037            {
1038              if (clone_info != (ImageInfo *) NULL)
1039                clone_info=DestroyImageInfo(clone_info);
1040              if ((image != image2) && (image2 != (Image *) NULL))
1041                image2=DestroyImage(image2);
1042              ThrowReaderException(CorruptImageError,"ImproperImageHeader");
1043            }
1044          break;
1045       default:
1046         if (clone_info != (ImageInfo *) NULL)
1047           clone_info=DestroyImageInfo(clone_info);
1048         if ((image != image2) && (image2 != (Image *) NULL))
1049           image2=DestroyImage(image2);
1050         ThrowReaderException(CoderError, "MultidimensionalMatricesAreNotSupported");
1051     }
1052
1053     MATLAB_HDR.Flag1 = ReadBlobXXXShort(image2);
1054     MATLAB_HDR.NameFlag = ReadBlobXXXShort(image2);
1055
1056     if (logging) (void)LogMagickEvent(CoderEvent,GetMagickModule(),
1057           "MATLAB_HDR.StructureClass %d",MATLAB_HDR.StructureClass);
1058     if (MATLAB_HDR.StructureClass != mxCHAR_CLASS &&
1059         MATLAB_HDR.StructureClass != mxSINGLE_CLASS &&    /* float + complex float */
1060         MATLAB_HDR.StructureClass != mxDOUBLE_CLASS &&    /* double + complex double */
1061         MATLAB_HDR.StructureClass != mxINT8_CLASS &&
1062         MATLAB_HDR.StructureClass != mxUINT8_CLASS &&    /* uint8 + uint8 3D */
1063         MATLAB_HDR.StructureClass != mxINT16_CLASS &&
1064         MATLAB_HDR.StructureClass != mxUINT16_CLASS &&    /* uint16 + uint16 3D */
1065         MATLAB_HDR.StructureClass != mxINT32_CLASS &&
1066         MATLAB_HDR.StructureClass != mxUINT32_CLASS &&    /* uint32 + uint32 3D */
1067         MATLAB_HDR.StructureClass != mxINT64_CLASS &&
1068         MATLAB_HDR.StructureClass != mxUINT64_CLASS)    /* uint64 + uint64 3D */
1069       {
1070         if ((image2 != (Image*) NULL) && (image2 != (Image *) image))
1071           {
1072             CloseBlob(image2);
1073             DeleteImageFromList(&image2);
1074           }
1075         if (clone_info != (ImageInfo *) NULL)
1076           DestroyImageInfo(clone_info);
1077         ThrowReaderException(CoderError,"UnsupportedCellTypeInTheMatrix");
1078       }
1079
1080     switch (MATLAB_HDR.NameFlag)
1081     {
1082       case 0:
1083         size = ReadBlobXXXLong(image2);  /* Object name string size */
1084         size = 4 * (ssize_t) ((size + 3 + 1) / 4);
1085         (void) SeekBlob(image2, size, SEEK_CUR);
1086         break;
1087       case 1:
1088       case 2:
1089       case 3:
1090       case 4:
1091         (void) ReadBlob(image2, 4, (unsigned char *) &size); /* Object name string */
1092         break;
1093       default:
1094         goto MATLAB_KO;
1095     }
1096
1097     CellType = ReadBlobXXXLong(image2);    /* Additional object type */
1098     if (logging)
1099       (void) LogMagickEvent(CoderEvent,GetMagickModule(),
1100         "MATLAB_HDR.CellType: %.20g",(double) CellType);
1101
1102     (void) ReadBlob(image2, 4, (unsigned char *) &size);     /* data size */
1103
1104     NEXT_FRAME:
1105     switch (CellType)
1106     {
1107       case miINT8:
1108       case miUINT8:
1109         sample_size = 8;
1110         if(MATLAB_HDR.StructureFlag & FLAG_LOGICAL)
1111           image->depth = 1;
1112         else
1113           image->depth = 8;         /* Byte type cell */
1114         ldblk = (ssize_t) MATLAB_HDR.SizeX;
1115         break;
1116       case miINT16:
1117       case miUINT16:
1118         sample_size = 16;
1119         image->depth = 16;        /* Word type cell */
1120         ldblk = (ssize_t) (2 * MATLAB_HDR.SizeX);
1121         break;
1122       case miINT32:
1123       case miUINT32:
1124         sample_size = 32;
1125         image->depth = 32;        /* Dword type cell */
1126         ldblk = (ssize_t) (4 * MATLAB_HDR.SizeX);
1127         break;
1128       case miINT64:
1129       case miUINT64:
1130         sample_size = 64;
1131         image->depth = 64;        /* Qword type cell */
1132         ldblk = (ssize_t) (8 * MATLAB_HDR.SizeX);
1133         break;
1134       case miSINGLE:
1135         sample_size = 32;
1136         image->depth = 32;        /* double type cell */
1137         (void) SetImageOption(clone_info,"quantum:format","floating-point");
1138         if (MATLAB_HDR.StructureFlag & FLAG_COMPLEX)
1139   {              /* complex float type cell */
1140   }
1141         ldblk = (ssize_t) (4 * MATLAB_HDR.SizeX);
1142         break;
1143       case miDOUBLE:
1144         sample_size = 64;
1145         image->depth = 64;        /* double type cell */
1146         (void) SetImageOption(clone_info,"quantum:format","floating-point");
1147 DisableMSCWarning(4127)
1148         if (sizeof(double) != 8)
1149 RestoreMSCWarning
1150           ThrowReaderException(CoderError, "IncompatibleSizeOfDouble");
1151         if (MATLAB_HDR.StructureFlag & FLAG_COMPLEX)
1152   {                         /* complex double type cell */
1153   }
1154         ldblk = (ssize_t) (8 * MATLAB_HDR.SizeX);
1155         break;
1156       default:
1157         if ((image != image2) && (image2 != (Image *) NULL))
1158           image2=DestroyImage(image2);
1159         if (clone_info)
1160           clone_info=DestroyImageInfo(clone_info);
1161         ThrowReaderException(CoderError, "UnsupportedCellTypeInTheMatrix");
1162     }
1163     (void) sample_size;
1164     image->columns = MATLAB_HDR.SizeX;
1165     image->rows = MATLAB_HDR.SizeY;
1166     one=1;
1167     image->colors = one << image->depth;
1168     if (image->columns == 0 || image->rows == 0)
1169       goto MATLAB_KO;
1170     if((unsigned long)ldblk*MATLAB_HDR.SizeY > MATLAB_HDR.ObjectSize)
1171       goto MATLAB_KO;
1172     /* Image is gray when no complex flag is set and 2D Matrix */
1173     if ((MATLAB_HDR.DimFlag == 8) &&
1174         ((MATLAB_HDR.StructureFlag & FLAG_COMPLEX) == 0))
1175       {
1176         image->type=GrayscaleType;
1177         SetImageColorspace(image,GRAYColorspace,exception);
1178       }
1179
1180
1181     /*
1182       If ping is true, then only set image size and colors without
1183       reading any image data.
1184     */
1185     if (image_info->ping)
1186     {
1187       size_t temp = image->columns;
1188       image->columns = image->rows;
1189       image->rows = temp;
1190       goto done_reading; /* !!!!!! BAD  !!!! */
1191     }
1192     status=SetImageExtent(image,image->columns,image->rows,exception);
1193     if (status == MagickFalse)
1194       {
1195         if ((image != image2) && (image2 != (Image *) NULL))
1196           image2=DestroyImage(image2);
1197         return(DestroyImageList(image));
1198       }
1199     (void) SetImageBackgroundColor(image,exception);
1200     quantum_info=AcquireQuantumInfo(clone_info,image);
1201     if (quantum_info == (QuantumInfo *) NULL)
1202       ThrowReaderException(ResourceLimitError,"MemoryAllocationFailed");
1203
1204   /* ----- Load raster data ----- */
1205     BImgBuff = (unsigned char *) AcquireQuantumMemory((size_t) (ldblk),sizeof(double));    /* Ldblk was set in the check phase */
1206     if (BImgBuff == NULL)
1207       ThrowReaderException(ResourceLimitError,"MemoryAllocationFailed");
1208     (void) ResetMagickMemory(BImgBuff,0,ldblk*sizeof(double));
1209
1210     MinVal = 0;
1211     MaxVal = 0;
1212     if (CellType==miDOUBLE || CellType==miSINGLE)        /* Find Min and Max Values for floats */
1213     {
1214       CalcMinMax(image2, image_info->endian,  MATLAB_HDR.SizeX, MATLAB_HDR.SizeY, CellType, ldblk, BImgBuff, &quantum_info->minimum, &quantum_info->maximum);
1215     }
1216
1217     /* Main loop for reading all scanlines */
1218     if(z==1) z=0; /* read grey scanlines */
1219     /* else read color scanlines */
1220     do
1221     {
1222       for (i = 0; i < (ssize_t) MATLAB_HDR.SizeY; i++)
1223       {
1224         q=GetAuthenticPixels(image,0,MATLAB_HDR.SizeY-i-1,image->columns,1,exception);
1225         if (q == (Quantum *) NULL)
1226   {
1227     if (logging) (void)LogMagickEvent(CoderEvent,GetMagickModule(),
1228               "  MAT set image pixels returns unexpected NULL on a row %u.", (unsigned)(MATLAB_HDR.SizeY-i-1));
1229     goto done_reading;    /* Skip image rotation, when cannot set image pixels    */
1230   }
1231         if(ReadBlob(image2,ldblk,(unsigned char *)BImgBuff) != (ssize_t) ldblk)
1232   {
1233     if (logging) (void)LogMagickEvent(CoderEvent,GetMagickModule(),
1234              "  MAT cannot read scanrow %u from a file.", (unsigned)(MATLAB_HDR.SizeY-i-1));
1235     goto ExitLoop;
1236   }
1237         if((CellType==miINT8 || CellType==miUINT8) && (MATLAB_HDR.StructureFlag & FLAG_LOGICAL))
1238         {
1239           FixLogical((unsigned char *)BImgBuff,ldblk);
1240           if(ImportQuantumPixels(image,(CacheView *) NULL,quantum_info,z2qtype[z],BImgBuff,exception) <= 0)
1241     {
1242 ImportQuantumPixelsFailed:
1243       if (logging) (void)LogMagickEvent(CoderEvent,GetMagickModule(),
1244               "  MAT failed to ImportQuantumPixels for a row %u", (unsigned)(MATLAB_HDR.SizeY-i-1));
1245       break;
1246     }
1247         }
1248         else
1249         {
1250           if(ImportQuantumPixels(image,(CacheView *) NULL,quantum_info,z2qtype[z],BImgBuff,exception) <= 0)
1251       goto ImportQuantumPixelsFailed;
1252
1253
1254           if (z<=1 &&       /* fix only during a last pass z==0 || z==1 */
1255           (CellType==miINT8 || CellType==miINT16 || CellType==miINT32 || CellType==miINT64))
1256       FixSignedValues(image,q,MATLAB_HDR.SizeX);
1257         }
1258
1259         if (!SyncAuthenticPixels(image,exception))
1260   {
1261     if (logging) (void)LogMagickEvent(CoderEvent,GetMagickModule(),
1262             "  MAT failed to sync image pixels for a row %u", (unsigned)(MATLAB_HDR.SizeY-i-1));
1263     goto ExitLoop;
1264   }
1265       }
1266     } while(z-- >= 2);
1267 ExitLoop:
1268
1269
1270     /* Read complex part of numbers here */
1271     if (MATLAB_HDR.StructureFlag & FLAG_COMPLEX)
1272     {        /* Find Min and Max Values for complex parts of floats */
1273       CellType = ReadBlobXXXLong(image2);    /* Additional object type */
1274       i = ReadBlobXXXLong(image2);           /* size of a complex part - toss away*/
1275
1276       if (CellType==miDOUBLE || CellType==miSINGLE)
1277       {
1278         CalcMinMax(image2,  image_info->endian, MATLAB_HDR.SizeX, MATLAB_HDR.SizeY, CellType, ldblk, BImgBuff, &MinVal, &MaxVal);
1279       }
1280
1281       if (CellType==miDOUBLE)
1282         for (i = 0; i < (ssize_t) MATLAB_HDR.SizeY; i++)
1283   {
1284           ReadBlobDoublesXXX(image2, ldblk, (double *)BImgBuff);
1285           InsertComplexDoubleRow(image, (double *)BImgBuff, i, MinVal, MaxVal,
1286             exception);
1287   }
1288
1289       if (CellType==miSINGLE)
1290         for (i = 0; i < (ssize_t) MATLAB_HDR.SizeY; i++)
1291   {
1292           ReadBlobFloatsXXX(image2, ldblk, (float *)BImgBuff);
1293           InsertComplexFloatRow(image,(float *)BImgBuff,i,MinVal,MaxVal,
1294             exception);
1295   }
1296     }
1297
1298       /* Image is gray when no complex flag is set and 2D Matrix AGAIN!!! */
1299     if ((MATLAB_HDR.DimFlag == 8) &&
1300         ((MATLAB_HDR.StructureFlag & FLAG_COMPLEX) == 0))
1301       image->type=GrayscaleType;
1302     if (image->depth == 1)
1303       image->type=BilevelType;
1304
1305     if(image2==image)
1306         image2 = NULL;    /* Remove shadow copy to an image before rotation. */
1307
1308       /*  Rotate image. */
1309     rotated_image = RotateImage(image, 90.0, exception);
1310     if (rotated_image != (Image *) NULL)
1311     {
1312         /* Remove page offsets added by RotateImage */
1313       rotated_image->page.x=0;
1314       rotated_image->page.y=0;
1315
1316       blob = rotated_image->blob;
1317       rotated_image->blob = image->blob;
1318       rotated_image->colors = image->colors;
1319       image->blob = blob;
1320       AppendImageToList(&image,rotated_image);
1321       DeleteImageFromList(&image);
1322     }
1323
1324 done_reading:
1325
1326     if(image2!=NULL)
1327       if(image2!=image)
1328       {
1329         DeleteImageFromList(&image2);
1330   if(clone_info)
1331   {
1332           if(clone_info->file)
1333     {
1334             fclose(clone_info->file);
1335             clone_info->file = NULL;
1336             (void) remove_utf8(clone_info->filename);
1337     }
1338         }
1339       }
1340
1341       /* Allocate next image structure. */
1342     AcquireNextImage(image_info,image,exception);
1343     if (image->next == (Image *) NULL) break;
1344     image=SyncNextImageInList(image);
1345     image->columns=image->rows=0;
1346     image->colors=0;
1347
1348       /* row scan buffer is no longer needed */
1349     RelinquishMagickMemory(BImgBuff);
1350     BImgBuff = NULL;
1351     if (quantum_info != (QuantumInfo *) NULL)
1352       quantum_info=DestroyQuantumInfo(quantum_info);
1353
1354     if(--Frames>0)
1355     {
1356       z = z2;
1357       if(image2==NULL) image2 = image;
1358       goto NEXT_FRAME;
1359     }
1360     if ((image2!=NULL) && (image2!=image))   /* Does shadow temporary decompressed image exist? */
1361       {
1362 /*  CloseBlob(image2); */
1363         DeleteImageFromList(&image2);
1364         if(clone_info)
1365         {
1366           if(clone_info->file)
1367           {
1368             fclose(clone_info->file);
1369             clone_info->file = NULL;
1370             (void) remove_utf8(clone_info->filename);
1371           }
1372         }
1373         }
1374
1375     if (clone_info)
1376       clone_info=DestroyImageInfo(clone_info);
1377   }
1378
1379   RelinquishMagickMemory(BImgBuff);
1380   if (quantum_info != (QuantumInfo *) NULL)
1381     quantum_info=DestroyQuantumInfo(quantum_info);
1382 END_OF_READING:
1383   CloseBlob(image);
1384
1385
1386   {
1387     Image *p;
1388     ssize_t scene=0;
1389
1390     /*
1391       Rewind list, removing any empty images while rewinding.
1392     */
1393     p=image;
1394     image=NULL;
1395     while (p != (Image *) NULL)
1396       {
1397         Image *tmp=p;
1398         if ((p->rows == 0) || (p->columns == 0)) {
1399           p=p->previous;
1400           if (tmp == image2)
1401             image2=(Image *) NULL;
1402           DeleteImageFromList(&tmp);
1403         } else {
1404           image=p;
1405           p=p->previous;
1406         }
1407       }
1408
1409     /*
1410       Fix scene numbers
1411     */
1412     for (p=image; p != (Image *) NULL; p=p->next)
1413       p->scene=scene++;
1414   }
1415
1416   if(clone_info != NULL)  /* cleanup garbage file from compression */
1417   {
1418     if(clone_info->file)
1419     {
1420       fclose(clone_info->file);
1421       clone_info->file = NULL;
1422       (void) remove_utf8(clone_info->filename);
1423     }
1424     DestroyImageInfo(clone_info);
1425     clone_info = NULL;
1426   }
1427   if (logging) (void)LogMagickEvent(CoderEvent,GetMagickModule(),"return");
1428   if ((image != image2) && (image2 != (Image *) NULL))
1429     image2=DestroyImage(image2);
1430   if (image == (Image *) NULL)
1431     ThrowReaderException(CorruptImageError,"ImproperImageHeader")
1432   return(image);
1433 }
1434 \f
1435 /*
1436 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1437 %                                                                             %
1438 %                                                                             %
1439 %                                                                             %
1440 %   R e g i s t e r M A T I m a g e                                           %
1441 %                                                                             %
1442 %                                                                             %
1443 %                                                                             %
1444 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1445 %
1446 %  Method RegisterMATImage adds attributes for the MAT image format to
1447 %  the list of supported formats.  The attributes include the image format
1448 %  tag, a method to read and/or write the format, whether the format
1449 %  supports the saving of more than one frame to the same file or blob,
1450 %  whether the format supports native in-memory I/O, and a brief
1451 %  description of the format.
1452 %
1453 %  The format of the RegisterMATImage method is:
1454 %
1455 %      size_t RegisterMATImage(void)
1456 %
1457 */
1458 ModuleExport size_t RegisterMATImage(void)
1459 {
1460   MagickInfo
1461     *entry;
1462
1463   entry=AcquireMagickInfo("MAT","MAT","MATLAB level 5 image format");
1464   entry->decoder=(DecodeImageHandler *) ReadMATImage;
1465   entry->encoder=(EncodeImageHandler *) WriteMATImage;
1466   entry->flags^=CoderBlobSupportFlag;
1467   entry->flags|=CoderDecoderSeekableStreamFlag;
1468   (void) RegisterMagickInfo(entry);
1469   return(MagickImageCoderSignature);
1470 }
1471 \f
1472 /*
1473 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1474 %                                                                             %
1475 %                                                                             %
1476 %                                                                             %
1477 %   U n r e g i s t e r M A T I m a g e                                       %
1478 %                                                                             %
1479 %                                                                             %
1480 %                                                                             %
1481 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1482 %
1483 %  Method UnregisterMATImage removes format registrations made by the
1484 %  MAT module from the list of supported formats.
1485 %
1486 %  The format of the UnregisterMATImage method is:
1487 %
1488 %      UnregisterMATImage(void)
1489 %
1490 */
1491 ModuleExport void UnregisterMATImage(void)
1492 {
1493   (void) UnregisterMagickInfo("MAT");
1494 }
1495 \f
1496 /*
1497 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1498 %                                                                             %
1499 %                                                                             %
1500 %                                                                             %
1501 %   W r i t e M A T L A B I m a g e                                           %
1502 %                                                                             %
1503 %                                                                             %
1504 %                                                                             %
1505 %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1506 %
1507 %  Function WriteMATImage writes an Matlab matrix to a file.
1508 %
1509 %  The format of the WriteMATImage method is:
1510 %
1511 %      MagickBooleanType WriteMATImage(const ImageInfo *image_info,
1512 %        Image *image,ExceptionInfo *exception)
1513 %
1514 %  A description of each parameter follows.
1515 %
1516 %    o image_info: Specifies a pointer to a ImageInfo structure.
1517 %
1518 %    o image:  A pointer to an Image structure.
1519 %
1520 %    o exception: return any errors or warnings in this structure.
1521 %
1522 */
1523 static MagickBooleanType WriteMATImage(const ImageInfo *image_info,Image *image,
1524   ExceptionInfo *exception)
1525 {
1526   char
1527     MATLAB_HDR[0x80];
1528
1529   MagickBooleanType
1530     status;
1531
1532   MagickOffsetType
1533     scene;
1534
1535   struct tm
1536     local_time;
1537
1538   time_t
1539     current_time;
1540
1541   /*
1542     Open output image file.
1543   */
1544   assert(image_info != (const ImageInfo *) NULL);
1545   assert(image_info->signature == MagickCoreSignature);
1546   assert(image != (Image *) NULL);
1547   assert(image->signature == MagickCoreSignature);
1548   (void) LogMagickEvent(CoderEvent,GetMagickModule(),"enter MAT");
1549   assert(exception != (ExceptionInfo *) NULL);
1550   assert(exception->signature == MagickCoreSignature);
1551   status=OpenBlob(image_info,image,WriteBinaryBlobMode,exception);
1552   if (status == MagickFalse)
1553     return(MagickFalse);
1554   image->depth=8;
1555
1556   current_time=time((time_t *) NULL);
1557 #if defined(MAGICKCORE_HAVE_LOCALTIME_R)
1558   (void) localtime_r(&current_time,&local_time);
1559 #else
1560   (void) memcpy(&local_time,localtime(&current_time),sizeof(local_time));
1561 #endif
1562   (void) memset(MATLAB_HDR,' ',MagickMin(sizeof(MATLAB_HDR),124));
1563   FormatLocaleString(MATLAB_HDR,sizeof(MATLAB_HDR),
1564     "MATLAB 5.0 MAT-file, Platform: %s, Created on: %s %s %2d %2d:%2d:%2d %d",
1565     OsDesc,DayOfWTab[local_time.tm_wday],MonthsTab[local_time.tm_mon],
1566     local_time.tm_mday,local_time.tm_hour,local_time.tm_min,
1567     local_time.tm_sec,local_time.tm_year+1900);
1568   MATLAB_HDR[0x7C]=0;
1569   MATLAB_HDR[0x7D]=1;
1570   MATLAB_HDR[0x7E]='I';
1571   MATLAB_HDR[0x7F]='M';
1572   (void) WriteBlob(image,sizeof(MATLAB_HDR),(unsigned char *) MATLAB_HDR);
1573   scene=0;
1574   do
1575   {
1576     char
1577       padding;
1578
1579     MagickBooleanType
1580       is_gray;
1581
1582     QuantumInfo
1583       *quantum_info;
1584
1585     size_t
1586       data_size;
1587
1588     unsigned char
1589       *pixels;
1590
1591     unsigned int
1592       z;
1593
1594     (void) TransformImageColorspace(image,sRGBColorspace,exception);
1595     is_gray=SetImageGray(image,exception);
1596     z=(is_gray != MagickFalse) ? 0 : 3;
1597
1598     /*
1599       Store MAT header.
1600     */
1601     data_size = image->rows * image->columns;
1602     if (is_gray == MagickFalse)
1603       data_size*=3;
1604     padding=((unsigned char)(data_size-1) & 0x7) ^ 0x7;
1605
1606     (void) WriteBlobLSBLong(image,miMATRIX);
1607     (void) WriteBlobLSBLong(image,(unsigned int) data_size+padding+
1608       ((is_gray != MagickFalse) ? 48 : 56));
1609     (void) WriteBlobLSBLong(image,0x6); /* 0x88 */
1610     (void) WriteBlobLSBLong(image,0x8); /* 0x8C */
1611     (void) WriteBlobLSBLong(image,0x6); /* 0x90 */
1612     (void) WriteBlobLSBLong(image,0);
1613     (void) WriteBlobLSBLong(image,0x5); /* 0x98 */
1614     (void) WriteBlobLSBLong(image,(is_gray != MagickFalse) ? 0x8 : 0xC); /* 0x9C - DimFlag */
1615     (void) WriteBlobLSBLong(image,(unsigned int) image->rows);    /* x: 0xA0 */
1616     (void) WriteBlobLSBLong(image,(unsigned int) image->columns); /* y: 0xA4 */
1617     if (is_gray == MagickFalse)
1618       {
1619         (void) WriteBlobLSBLong(image,3); /* z: 0xA8 */
1620         (void) WriteBlobLSBLong(image,0);
1621       }
1622     (void) WriteBlobLSBShort(image,1);  /* 0xB0 */
1623     (void) WriteBlobLSBShort(image,1);  /* 0xB2 */
1624     (void) WriteBlobLSBLong(image,'M'); /* 0xB4 */
1625     (void) WriteBlobLSBLong(image,0x2); /* 0xB8 */
1626     (void) WriteBlobLSBLong(image,(unsigned int) data_size); /* 0xBC */
1627
1628     /*
1629       Store image data.
1630     */
1631     quantum_info=AcquireQuantumInfo(image_info,image);
1632     if (quantum_info == (QuantumInfo *) NULL)
1633       ThrowWriterException(ResourceLimitError,"MemoryAllocationFailed");
1634     pixels=(unsigned char *) GetQuantumPixels(quantum_info);
1635     do
1636     {
1637       const Quantum
1638         *p;
1639
1640       ssize_t
1641         y;
1642
1643       for (y=0; y < (ssize_t)image->columns; y++)
1644       {
1645         p=GetVirtualPixels(image,y,0,1,image->rows,exception);
1646         if (p == (const Quantum *) NULL)
1647           break;
1648         (void) ExportQuantumPixels(image,(CacheView *) NULL,quantum_info,
1649           z2qtype[z],pixels,exception);
1650         (void) WriteBlob(image,image->rows,pixels);
1651       }
1652       if (SyncAuthenticPixels(image,exception) == MagickFalse)
1653         break;
1654     } while (z-- >= 2);
1655     while (padding-- > 0)
1656       (void) WriteBlobByte(image,0);
1657     quantum_info=DestroyQuantumInfo(quantum_info);
1658     if (GetNextImageInList(image) == (Image *) NULL)
1659       break;
1660     image=SyncNextImageInList(image);
1661     status=SetImageProgress(image,SaveImagesTag,scene++,
1662       GetImageListLength(image));
1663     if (status == MagickFalse)
1664       break;
1665   } while (image_info->adjoin != MagickFalse);
1666   (void) CloseBlob(image);
1667   return(status);
1668 }