• Home
  • Line#
  • Scopes#
  • Navigate#
  • Raw
  • Download
1 /*
2  * transupp.c
3  *
4  * This file was part of the Independent JPEG Group's software:
5  * Copyright (C) 1997-2011, Thomas G. Lane, Guido Vollbeding.
6  * libjpeg-turbo Modifications:
7  * Copyright (C) 2010, 2017, D. R. Commander.
8  * For conditions of distribution and use, see the accompanying README.ijg
9  * file.
10  *
11  * This file contains image transformation routines and other utility code
12  * used by the jpegtran sample application.  These are NOT part of the core
13  * JPEG library.  But we keep these routines separate from jpegtran.c to
14  * ease the task of maintaining jpegtran-like programs that have other user
15  * interfaces.
16  */
17 
18 /* Although this file really shouldn't have access to the library internals,
19  * it's helpful to let it call jround_up() and jcopy_block_row().
20  */
21 #define JPEG_INTERNALS
22 
23 #include "jinclude.h"
24 #include "jpeglib.h"
25 #include "transupp.h"           /* My own external interface */
26 #include "jpegcomp.h"
27 #include <ctype.h>              /* to declare isdigit() */
28 
29 
30 #if JPEG_LIB_VERSION >= 70
31 #define dstinfo_min_DCT_h_scaled_size dstinfo->min_DCT_h_scaled_size
32 #define dstinfo_min_DCT_v_scaled_size dstinfo->min_DCT_v_scaled_size
33 #else
34 #define dstinfo_min_DCT_h_scaled_size DCTSIZE
35 #define dstinfo_min_DCT_v_scaled_size DCTSIZE
36 #endif
37 
38 
39 #if TRANSFORMS_SUPPORTED
40 
41 /*
42  * Lossless image transformation routines.  These routines work on DCT
43  * coefficient arrays and thus do not require any lossy decompression
44  * or recompression of the image.
45  * Thanks to Guido Vollbeding for the initial design and code of this feature,
46  * and to Ben Jackson for introducing the cropping feature.
47  *
48  * Horizontal flipping is done in-place, using a single top-to-bottom
49  * pass through the virtual source array.  It will thus be much the
50  * fastest option for images larger than main memory.
51  *
52  * The other routines require a set of destination virtual arrays, so they
53  * need twice as much memory as jpegtran normally does.  The destination
54  * arrays are always written in normal scan order (top to bottom) because
55  * the virtual array manager expects this.  The source arrays will be scanned
56  * in the corresponding order, which means multiple passes through the source
57  * arrays for most of the transforms.  That could result in much thrashing
58  * if the image is larger than main memory.
59  *
60  * If cropping or trimming is involved, the destination arrays may be smaller
61  * than the source arrays.  Note it is not possible to do horizontal flip
62  * in-place when a nonzero Y crop offset is specified, since we'd have to move
63  * data from one block row to another but the virtual array manager doesn't
64  * guarantee we can touch more than one row at a time.  So in that case,
65  * we have to use a separate destination array.
66  *
67  * Some notes about the operating environment of the individual transform
68  * routines:
69  * 1. Both the source and destination virtual arrays are allocated from the
70  *    source JPEG object, and therefore should be manipulated by calling the
71  *    source's memory manager.
72  * 2. The destination's component count should be used.  It may be smaller
73  *    than the source's when forcing to grayscale.
74  * 3. Likewise the destination's sampling factors should be used.  When
75  *    forcing to grayscale the destination's sampling factors will be all 1,
76  *    and we may as well take that as the effective iMCU size.
77  * 4. When "trim" is in effect, the destination's dimensions will be the
78  *    trimmed values but the source's will be untrimmed.
79  * 5. When "crop" is in effect, the destination's dimensions will be the
80  *    cropped values but the source's will be uncropped.  Each transform
81  *    routine is responsible for picking up source data starting at the
82  *    correct X and Y offset for the crop region.  (The X and Y offsets
83  *    passed to the transform routines are measured in iMCU blocks of the
84  *    destination.)
85  * 6. All the routines assume that the source and destination buffers are
86  *    padded out to a full iMCU boundary.  This is true, although for the
87  *    source buffer it is an undocumented property of jdcoefct.c.
88  */
89 
90 
91 LOCAL(void)
do_crop(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)92 do_crop (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
93          JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
94          jvirt_barray_ptr *src_coef_arrays,
95          jvirt_barray_ptr *dst_coef_arrays)
96 /* Crop.  This is only used when no rotate/flip is requested with the crop. */
97 {
98   JDIMENSION dst_blk_y, x_crop_blocks, y_crop_blocks;
99   int ci, offset_y;
100   JBLOCKARRAY src_buffer, dst_buffer;
101   jpeg_component_info *compptr;
102 
103   /* We simply have to copy the right amount of data (the destination's
104    * image size) starting at the given X and Y offsets in the source.
105    */
106   for (ci = 0; ci < dstinfo->num_components; ci++) {
107     compptr = dstinfo->comp_info + ci;
108     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
109     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
110     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
111          dst_blk_y += compptr->v_samp_factor) {
112       dst_buffer = (*srcinfo->mem->access_virt_barray)
113         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
114          (JDIMENSION) compptr->v_samp_factor, TRUE);
115       src_buffer = (*srcinfo->mem->access_virt_barray)
116         ((j_common_ptr) srcinfo, src_coef_arrays[ci],
117          dst_blk_y + y_crop_blocks,
118          (JDIMENSION) compptr->v_samp_factor, FALSE);
119       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
120         jcopy_block_row(src_buffer[offset_y] + x_crop_blocks,
121                         dst_buffer[offset_y],
122                         compptr->width_in_blocks);
123       }
124     }
125   }
126 }
127 
128 
129 LOCAL(void)
do_flip_h_no_crop(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,jvirt_barray_ptr * src_coef_arrays)130 do_flip_h_no_crop (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
131                    JDIMENSION x_crop_offset,
132                    jvirt_barray_ptr *src_coef_arrays)
133 /* Horizontal flip; done in-place, so no separate dest array is required.
134  * NB: this only works when y_crop_offset is zero.
135  */
136 {
137   JDIMENSION MCU_cols, comp_width, blk_x, blk_y, x_crop_blocks;
138   int ci, k, offset_y;
139   JBLOCKARRAY buffer;
140   JCOEFPTR ptr1, ptr2;
141   JCOEF temp1, temp2;
142   jpeg_component_info *compptr;
143 
144   /* Horizontal mirroring of DCT blocks is accomplished by swapping
145    * pairs of blocks in-place.  Within a DCT block, we perform horizontal
146    * mirroring by changing the signs of odd-numbered columns.
147    * Partial iMCUs at the right edge are left untouched.
148    */
149   MCU_cols = srcinfo->output_width /
150     (dstinfo->max_h_samp_factor * dstinfo_min_DCT_h_scaled_size);
151 
152   for (ci = 0; ci < dstinfo->num_components; ci++) {
153     compptr = dstinfo->comp_info + ci;
154     comp_width = MCU_cols * compptr->h_samp_factor;
155     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
156     for (blk_y = 0; blk_y < compptr->height_in_blocks;
157          blk_y += compptr->v_samp_factor) {
158       buffer = (*srcinfo->mem->access_virt_barray)
159         ((j_common_ptr) srcinfo, src_coef_arrays[ci], blk_y,
160          (JDIMENSION) compptr->v_samp_factor, TRUE);
161       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
162         /* Do the mirroring */
163         for (blk_x = 0; blk_x * 2 < comp_width; blk_x++) {
164           ptr1 = buffer[offset_y][blk_x];
165           ptr2 = buffer[offset_y][comp_width - blk_x - 1];
166           /* this unrolled loop doesn't need to know which row it's on... */
167           for (k = 0; k < DCTSIZE2; k += 2) {
168             temp1 = *ptr1;      /* swap even column */
169             temp2 = *ptr2;
170             *ptr1++ = temp2;
171             *ptr2++ = temp1;
172             temp1 = *ptr1;      /* swap odd column with sign change */
173             temp2 = *ptr2;
174             *ptr1++ = -temp2;
175             *ptr2++ = -temp1;
176           }
177         }
178         if (x_crop_blocks > 0) {
179           /* Now left-justify the portion of the data to be kept.
180            * We can't use a single jcopy_block_row() call because that routine
181            * depends on memcpy(), whose behavior is unspecified for overlapping
182            * source and destination areas.  Sigh.
183            */
184           for (blk_x = 0; blk_x < compptr->width_in_blocks; blk_x++) {
185             jcopy_block_row(buffer[offset_y] + blk_x + x_crop_blocks,
186                             buffer[offset_y] + blk_x,
187                             (JDIMENSION) 1);
188           }
189         }
190       }
191     }
192   }
193 }
194 
195 
196 LOCAL(void)
do_flip_h(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)197 do_flip_h (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
198            JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
199            jvirt_barray_ptr *src_coef_arrays,
200            jvirt_barray_ptr *dst_coef_arrays)
201 /* Horizontal flip in general cropping case */
202 {
203   JDIMENSION MCU_cols, comp_width, dst_blk_x, dst_blk_y;
204   JDIMENSION x_crop_blocks, y_crop_blocks;
205   int ci, k, offset_y;
206   JBLOCKARRAY src_buffer, dst_buffer;
207   JBLOCKROW src_row_ptr, dst_row_ptr;
208   JCOEFPTR src_ptr, dst_ptr;
209   jpeg_component_info *compptr;
210 
211   /* Here we must output into a separate array because we can't touch
212    * different rows of a single virtual array simultaneously.  Otherwise,
213    * this is essentially the same as the routine above.
214    */
215   MCU_cols = srcinfo->output_width /
216     (dstinfo->max_h_samp_factor * dstinfo_min_DCT_h_scaled_size);
217 
218   for (ci = 0; ci < dstinfo->num_components; ci++) {
219     compptr = dstinfo->comp_info + ci;
220     comp_width = MCU_cols * compptr->h_samp_factor;
221     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
222     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
223     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
224          dst_blk_y += compptr->v_samp_factor) {
225       dst_buffer = (*srcinfo->mem->access_virt_barray)
226         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
227          (JDIMENSION) compptr->v_samp_factor, TRUE);
228       src_buffer = (*srcinfo->mem->access_virt_barray)
229         ((j_common_ptr) srcinfo, src_coef_arrays[ci],
230          dst_blk_y + y_crop_blocks,
231          (JDIMENSION) compptr->v_samp_factor, FALSE);
232       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
233         dst_row_ptr = dst_buffer[offset_y];
234         src_row_ptr = src_buffer[offset_y];
235         for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks; dst_blk_x++) {
236           if (x_crop_blocks + dst_blk_x < comp_width) {
237             /* Do the mirrorable blocks */
238             dst_ptr = dst_row_ptr[dst_blk_x];
239             src_ptr = src_row_ptr[comp_width - x_crop_blocks - dst_blk_x - 1];
240             /* this unrolled loop doesn't need to know which row it's on... */
241             for (k = 0; k < DCTSIZE2; k += 2) {
242               *dst_ptr++ = *src_ptr++;   /* copy even column */
243               *dst_ptr++ = - *src_ptr++; /* copy odd column with sign change */
244             }
245           } else {
246             /* Copy last partial block(s) verbatim */
247             jcopy_block_row(src_row_ptr + dst_blk_x + x_crop_blocks,
248                             dst_row_ptr + dst_blk_x,
249                             (JDIMENSION) 1);
250           }
251         }
252       }
253     }
254   }
255 }
256 
257 
258 LOCAL(void)
do_flip_v(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)259 do_flip_v (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
260            JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
261            jvirt_barray_ptr *src_coef_arrays,
262            jvirt_barray_ptr *dst_coef_arrays)
263 /* Vertical flip */
264 {
265   JDIMENSION MCU_rows, comp_height, dst_blk_x, dst_blk_y;
266   JDIMENSION x_crop_blocks, y_crop_blocks;
267   int ci, i, j, offset_y;
268   JBLOCKARRAY src_buffer, dst_buffer;
269   JBLOCKROW src_row_ptr, dst_row_ptr;
270   JCOEFPTR src_ptr, dst_ptr;
271   jpeg_component_info *compptr;
272 
273   /* We output into a separate array because we can't touch different
274    * rows of the source virtual array simultaneously.  Otherwise, this
275    * is a pretty straightforward analog of horizontal flip.
276    * Within a DCT block, vertical mirroring is done by changing the signs
277    * of odd-numbered rows.
278    * Partial iMCUs at the bottom edge are copied verbatim.
279    */
280   MCU_rows = srcinfo->output_height /
281     (dstinfo->max_v_samp_factor * dstinfo_min_DCT_v_scaled_size);
282 
283   for (ci = 0; ci < dstinfo->num_components; ci++) {
284     compptr = dstinfo->comp_info + ci;
285     comp_height = MCU_rows * compptr->v_samp_factor;
286     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
287     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
288     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
289          dst_blk_y += compptr->v_samp_factor) {
290       dst_buffer = (*srcinfo->mem->access_virt_barray)
291         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
292          (JDIMENSION) compptr->v_samp_factor, TRUE);
293       if (y_crop_blocks + dst_blk_y < comp_height) {
294         /* Row is within the mirrorable area. */
295         src_buffer = (*srcinfo->mem->access_virt_barray)
296           ((j_common_ptr) srcinfo, src_coef_arrays[ci],
297            comp_height - y_crop_blocks - dst_blk_y -
298            (JDIMENSION) compptr->v_samp_factor,
299            (JDIMENSION) compptr->v_samp_factor, FALSE);
300       } else {
301         /* Bottom-edge blocks will be copied verbatim. */
302         src_buffer = (*srcinfo->mem->access_virt_barray)
303           ((j_common_ptr) srcinfo, src_coef_arrays[ci],
304            dst_blk_y + y_crop_blocks,
305            (JDIMENSION) compptr->v_samp_factor, FALSE);
306       }
307       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
308         if (y_crop_blocks + dst_blk_y < comp_height) {
309           /* Row is within the mirrorable area. */
310           dst_row_ptr = dst_buffer[offset_y];
311           src_row_ptr = src_buffer[compptr->v_samp_factor - offset_y - 1];
312           src_row_ptr += x_crop_blocks;
313           for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks;
314                dst_blk_x++) {
315             dst_ptr = dst_row_ptr[dst_blk_x];
316             src_ptr = src_row_ptr[dst_blk_x];
317             for (i = 0; i < DCTSIZE; i += 2) {
318               /* copy even row */
319               for (j = 0; j < DCTSIZE; j++)
320                 *dst_ptr++ = *src_ptr++;
321               /* copy odd row with sign change */
322               for (j = 0; j < DCTSIZE; j++)
323                 *dst_ptr++ = - *src_ptr++;
324             }
325           }
326         } else {
327           /* Just copy row verbatim. */
328           jcopy_block_row(src_buffer[offset_y] + x_crop_blocks,
329                           dst_buffer[offset_y],
330                           compptr->width_in_blocks);
331         }
332       }
333     }
334   }
335 }
336 
337 
338 LOCAL(void)
do_transpose(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)339 do_transpose (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
340               JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
341               jvirt_barray_ptr *src_coef_arrays,
342               jvirt_barray_ptr *dst_coef_arrays)
343 /* Transpose source into destination */
344 {
345   JDIMENSION dst_blk_x, dst_blk_y, x_crop_blocks, y_crop_blocks;
346   int ci, i, j, offset_x, offset_y;
347   JBLOCKARRAY src_buffer, dst_buffer;
348   JCOEFPTR src_ptr, dst_ptr;
349   jpeg_component_info *compptr;
350 
351   /* Transposing pixels within a block just requires transposing the
352    * DCT coefficients.
353    * Partial iMCUs at the edges require no special treatment; we simply
354    * process all the available DCT blocks for every component.
355    */
356   for (ci = 0; ci < dstinfo->num_components; ci++) {
357     compptr = dstinfo->comp_info + ci;
358     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
359     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
360     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
361          dst_blk_y += compptr->v_samp_factor) {
362       dst_buffer = (*srcinfo->mem->access_virt_barray)
363         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
364          (JDIMENSION) compptr->v_samp_factor, TRUE);
365       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
366         for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks;
367              dst_blk_x += compptr->h_samp_factor) {
368           src_buffer = (*srcinfo->mem->access_virt_barray)
369             ((j_common_ptr) srcinfo, src_coef_arrays[ci],
370              dst_blk_x + x_crop_blocks,
371              (JDIMENSION) compptr->h_samp_factor, FALSE);
372           for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
373             dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
374             src_ptr = src_buffer[offset_x][dst_blk_y + offset_y + y_crop_blocks];
375             for (i = 0; i < DCTSIZE; i++)
376               for (j = 0; j < DCTSIZE; j++)
377                 dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
378           }
379         }
380       }
381     }
382   }
383 }
384 
385 
386 LOCAL(void)
do_rot_90(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)387 do_rot_90 (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
388            JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
389            jvirt_barray_ptr *src_coef_arrays,
390            jvirt_barray_ptr *dst_coef_arrays)
391 /* 90 degree rotation is equivalent to
392  *   1. Transposing the image;
393  *   2. Horizontal mirroring.
394  * These two steps are merged into a single processing routine.
395  */
396 {
397   JDIMENSION MCU_cols, comp_width, dst_blk_x, dst_blk_y;
398   JDIMENSION x_crop_blocks, y_crop_blocks;
399   int ci, i, j, offset_x, offset_y;
400   JBLOCKARRAY src_buffer, dst_buffer;
401   JCOEFPTR src_ptr, dst_ptr;
402   jpeg_component_info *compptr;
403 
404   /* Because of the horizontal mirror step, we can't process partial iMCUs
405    * at the (output) right edge properly.  They just get transposed and
406    * not mirrored.
407    */
408   MCU_cols = srcinfo->output_height /
409     (dstinfo->max_h_samp_factor * dstinfo_min_DCT_h_scaled_size);
410 
411   for (ci = 0; ci < dstinfo->num_components; ci++) {
412     compptr = dstinfo->comp_info + ci;
413     comp_width = MCU_cols * compptr->h_samp_factor;
414     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
415     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
416     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
417          dst_blk_y += compptr->v_samp_factor) {
418       dst_buffer = (*srcinfo->mem->access_virt_barray)
419         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
420          (JDIMENSION) compptr->v_samp_factor, TRUE);
421       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
422         for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks;
423              dst_blk_x += compptr->h_samp_factor) {
424           if (x_crop_blocks + dst_blk_x < comp_width) {
425             /* Block is within the mirrorable area. */
426             src_buffer = (*srcinfo->mem->access_virt_barray)
427               ((j_common_ptr) srcinfo, src_coef_arrays[ci],
428                comp_width - x_crop_blocks - dst_blk_x -
429                (JDIMENSION) compptr->h_samp_factor,
430                (JDIMENSION) compptr->h_samp_factor, FALSE);
431           } else {
432             /* Edge blocks are transposed but not mirrored. */
433             src_buffer = (*srcinfo->mem->access_virt_barray)
434               ((j_common_ptr) srcinfo, src_coef_arrays[ci],
435                dst_blk_x + x_crop_blocks,
436                (JDIMENSION) compptr->h_samp_factor, FALSE);
437           }
438           for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
439             dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
440             if (x_crop_blocks + dst_blk_x < comp_width) {
441               /* Block is within the mirrorable area. */
442               src_ptr = src_buffer[compptr->h_samp_factor - offset_x - 1]
443                 [dst_blk_y + offset_y + y_crop_blocks];
444               for (i = 0; i < DCTSIZE; i++) {
445                 for (j = 0; j < DCTSIZE; j++)
446                   dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
447                 i++;
448                 for (j = 0; j < DCTSIZE; j++)
449                   dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
450               }
451             } else {
452               /* Edge blocks are transposed but not mirrored. */
453               src_ptr = src_buffer[offset_x]
454                 [dst_blk_y + offset_y + y_crop_blocks];
455               for (i = 0; i < DCTSIZE; i++)
456                 for (j = 0; j < DCTSIZE; j++)
457                   dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
458             }
459           }
460         }
461       }
462     }
463   }
464 }
465 
466 
467 LOCAL(void)
do_rot_270(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)468 do_rot_270 (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
469             JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
470             jvirt_barray_ptr *src_coef_arrays,
471             jvirt_barray_ptr *dst_coef_arrays)
472 /* 270 degree rotation is equivalent to
473  *   1. Horizontal mirroring;
474  *   2. Transposing the image.
475  * These two steps are merged into a single processing routine.
476  */
477 {
478   JDIMENSION MCU_rows, comp_height, dst_blk_x, dst_blk_y;
479   JDIMENSION x_crop_blocks, y_crop_blocks;
480   int ci, i, j, offset_x, offset_y;
481   JBLOCKARRAY src_buffer, dst_buffer;
482   JCOEFPTR src_ptr, dst_ptr;
483   jpeg_component_info *compptr;
484 
485   /* Because of the horizontal mirror step, we can't process partial iMCUs
486    * at the (output) bottom edge properly.  They just get transposed and
487    * not mirrored.
488    */
489   MCU_rows = srcinfo->output_width /
490     (dstinfo->max_v_samp_factor * dstinfo_min_DCT_v_scaled_size);
491 
492   for (ci = 0; ci < dstinfo->num_components; ci++) {
493     compptr = dstinfo->comp_info + ci;
494     comp_height = MCU_rows * compptr->v_samp_factor;
495     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
496     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
497     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
498          dst_blk_y += compptr->v_samp_factor) {
499       dst_buffer = (*srcinfo->mem->access_virt_barray)
500         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
501          (JDIMENSION) compptr->v_samp_factor, TRUE);
502       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
503         for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks;
504              dst_blk_x += compptr->h_samp_factor) {
505           src_buffer = (*srcinfo->mem->access_virt_barray)
506             ((j_common_ptr) srcinfo, src_coef_arrays[ci],
507              dst_blk_x + x_crop_blocks,
508              (JDIMENSION) compptr->h_samp_factor, FALSE);
509           for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
510             dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
511             if (y_crop_blocks + dst_blk_y < comp_height) {
512               /* Block is within the mirrorable area. */
513               src_ptr = src_buffer[offset_x]
514                 [comp_height - y_crop_blocks - dst_blk_y - offset_y - 1];
515               for (i = 0; i < DCTSIZE; i++) {
516                 for (j = 0; j < DCTSIZE; j++) {
517                   dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
518                   j++;
519                   dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
520                 }
521               }
522             } else {
523               /* Edge blocks are transposed but not mirrored. */
524               src_ptr = src_buffer[offset_x]
525                 [dst_blk_y + offset_y + y_crop_blocks];
526               for (i = 0; i < DCTSIZE; i++)
527                 for (j = 0; j < DCTSIZE; j++)
528                   dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
529             }
530           }
531         }
532       }
533     }
534   }
535 }
536 
537 
538 LOCAL(void)
do_rot_180(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)539 do_rot_180 (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
540             JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
541             jvirt_barray_ptr *src_coef_arrays,
542             jvirt_barray_ptr *dst_coef_arrays)
543 /* 180 degree rotation is equivalent to
544  *   1. Vertical mirroring;
545  *   2. Horizontal mirroring.
546  * These two steps are merged into a single processing routine.
547  */
548 {
549   JDIMENSION MCU_cols, MCU_rows, comp_width, comp_height, dst_blk_x, dst_blk_y;
550   JDIMENSION x_crop_blocks, y_crop_blocks;
551   int ci, i, j, offset_y;
552   JBLOCKARRAY src_buffer, dst_buffer;
553   JBLOCKROW src_row_ptr, dst_row_ptr;
554   JCOEFPTR src_ptr, dst_ptr;
555   jpeg_component_info *compptr;
556 
557   MCU_cols = srcinfo->output_width /
558     (dstinfo->max_h_samp_factor * dstinfo_min_DCT_h_scaled_size);
559   MCU_rows = srcinfo->output_height /
560     (dstinfo->max_v_samp_factor * dstinfo_min_DCT_v_scaled_size);
561 
562   for (ci = 0; ci < dstinfo->num_components; ci++) {
563     compptr = dstinfo->comp_info + ci;
564     comp_width = MCU_cols * compptr->h_samp_factor;
565     comp_height = MCU_rows * compptr->v_samp_factor;
566     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
567     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
568     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
569          dst_blk_y += compptr->v_samp_factor) {
570       dst_buffer = (*srcinfo->mem->access_virt_barray)
571         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
572          (JDIMENSION) compptr->v_samp_factor, TRUE);
573       if (y_crop_blocks + dst_blk_y < comp_height) {
574         /* Row is within the vertically mirrorable area. */
575         src_buffer = (*srcinfo->mem->access_virt_barray)
576           ((j_common_ptr) srcinfo, src_coef_arrays[ci],
577            comp_height - y_crop_blocks - dst_blk_y -
578            (JDIMENSION) compptr->v_samp_factor,
579            (JDIMENSION) compptr->v_samp_factor, FALSE);
580       } else {
581         /* Bottom-edge rows are only mirrored horizontally. */
582         src_buffer = (*srcinfo->mem->access_virt_barray)
583           ((j_common_ptr) srcinfo, src_coef_arrays[ci],
584            dst_blk_y + y_crop_blocks,
585            (JDIMENSION) compptr->v_samp_factor, FALSE);
586       }
587       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
588         dst_row_ptr = dst_buffer[offset_y];
589         if (y_crop_blocks + dst_blk_y < comp_height) {
590           /* Row is within the mirrorable area. */
591           src_row_ptr = src_buffer[compptr->v_samp_factor - offset_y - 1];
592           for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks; dst_blk_x++) {
593             dst_ptr = dst_row_ptr[dst_blk_x];
594             if (x_crop_blocks + dst_blk_x < comp_width) {
595               /* Process the blocks that can be mirrored both ways. */
596               src_ptr = src_row_ptr[comp_width - x_crop_blocks - dst_blk_x - 1];
597               for (i = 0; i < DCTSIZE; i += 2) {
598                 /* For even row, negate every odd column. */
599                 for (j = 0; j < DCTSIZE; j += 2) {
600                   *dst_ptr++ = *src_ptr++;
601                   *dst_ptr++ = - *src_ptr++;
602                 }
603                 /* For odd row, negate every even column. */
604                 for (j = 0; j < DCTSIZE; j += 2) {
605                   *dst_ptr++ = - *src_ptr++;
606                   *dst_ptr++ = *src_ptr++;
607                 }
608               }
609             } else {
610               /* Any remaining right-edge blocks are only mirrored vertically. */
611               src_ptr = src_row_ptr[x_crop_blocks + dst_blk_x];
612               for (i = 0; i < DCTSIZE; i += 2) {
613                 for (j = 0; j < DCTSIZE; j++)
614                   *dst_ptr++ = *src_ptr++;
615                 for (j = 0; j < DCTSIZE; j++)
616                   *dst_ptr++ = - *src_ptr++;
617               }
618             }
619           }
620         } else {
621           /* Remaining rows are just mirrored horizontally. */
622           src_row_ptr = src_buffer[offset_y];
623           for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks; dst_blk_x++) {
624             if (x_crop_blocks + dst_blk_x < comp_width) {
625               /* Process the blocks that can be mirrored. */
626               dst_ptr = dst_row_ptr[dst_blk_x];
627               src_ptr = src_row_ptr[comp_width - x_crop_blocks - dst_blk_x - 1];
628               for (i = 0; i < DCTSIZE2; i += 2) {
629                 *dst_ptr++ = *src_ptr++;
630                 *dst_ptr++ = - *src_ptr++;
631               }
632             } else {
633               /* Any remaining right-edge blocks are only copied. */
634               jcopy_block_row(src_row_ptr + dst_blk_x + x_crop_blocks,
635                               dst_row_ptr + dst_blk_x,
636                               (JDIMENSION) 1);
637             }
638           }
639         }
640       }
641     }
642   }
643 }
644 
645 
646 LOCAL(void)
do_transverse(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JDIMENSION x_crop_offset,JDIMENSION y_crop_offset,jvirt_barray_ptr * src_coef_arrays,jvirt_barray_ptr * dst_coef_arrays)647 do_transverse (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
648                JDIMENSION x_crop_offset, JDIMENSION y_crop_offset,
649                jvirt_barray_ptr *src_coef_arrays,
650                jvirt_barray_ptr *dst_coef_arrays)
651 /* Transverse transpose is equivalent to
652  *   1. 180 degree rotation;
653  *   2. Transposition;
654  * or
655  *   1. Horizontal mirroring;
656  *   2. Transposition;
657  *   3. Horizontal mirroring.
658  * These steps are merged into a single processing routine.
659  */
660 {
661   JDIMENSION MCU_cols, MCU_rows, comp_width, comp_height, dst_blk_x, dst_blk_y;
662   JDIMENSION x_crop_blocks, y_crop_blocks;
663   int ci, i, j, offset_x, offset_y;
664   JBLOCKARRAY src_buffer, dst_buffer;
665   JCOEFPTR src_ptr, dst_ptr;
666   jpeg_component_info *compptr;
667 
668   MCU_cols = srcinfo->output_height /
669     (dstinfo->max_h_samp_factor * dstinfo_min_DCT_h_scaled_size);
670   MCU_rows = srcinfo->output_width /
671     (dstinfo->max_v_samp_factor * dstinfo_min_DCT_v_scaled_size);
672 
673   for (ci = 0; ci < dstinfo->num_components; ci++) {
674     compptr = dstinfo->comp_info + ci;
675     comp_width = MCU_cols * compptr->h_samp_factor;
676     comp_height = MCU_rows * compptr->v_samp_factor;
677     x_crop_blocks = x_crop_offset * compptr->h_samp_factor;
678     y_crop_blocks = y_crop_offset * compptr->v_samp_factor;
679     for (dst_blk_y = 0; dst_blk_y < compptr->height_in_blocks;
680          dst_blk_y += compptr->v_samp_factor) {
681       dst_buffer = (*srcinfo->mem->access_virt_barray)
682         ((j_common_ptr) srcinfo, dst_coef_arrays[ci], dst_blk_y,
683          (JDIMENSION) compptr->v_samp_factor, TRUE);
684       for (offset_y = 0; offset_y < compptr->v_samp_factor; offset_y++) {
685         for (dst_blk_x = 0; dst_blk_x < compptr->width_in_blocks;
686              dst_blk_x += compptr->h_samp_factor) {
687           if (x_crop_blocks + dst_blk_x < comp_width) {
688             /* Block is within the mirrorable area. */
689             src_buffer = (*srcinfo->mem->access_virt_barray)
690               ((j_common_ptr) srcinfo, src_coef_arrays[ci],
691                comp_width - x_crop_blocks - dst_blk_x -
692                (JDIMENSION) compptr->h_samp_factor,
693                (JDIMENSION) compptr->h_samp_factor, FALSE);
694           } else {
695             src_buffer = (*srcinfo->mem->access_virt_barray)
696               ((j_common_ptr) srcinfo, src_coef_arrays[ci],
697                dst_blk_x + x_crop_blocks,
698                (JDIMENSION) compptr->h_samp_factor, FALSE);
699           }
700           for (offset_x = 0; offset_x < compptr->h_samp_factor; offset_x++) {
701             dst_ptr = dst_buffer[offset_y][dst_blk_x + offset_x];
702             if (y_crop_blocks + dst_blk_y < comp_height) {
703               if (x_crop_blocks + dst_blk_x < comp_width) {
704                 /* Block is within the mirrorable area. */
705                 src_ptr = src_buffer[compptr->h_samp_factor - offset_x - 1]
706                   [comp_height - y_crop_blocks - dst_blk_y - offset_y - 1];
707                 for (i = 0; i < DCTSIZE; i++) {
708                   for (j = 0; j < DCTSIZE; j++) {
709                     dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
710                     j++;
711                     dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
712                   }
713                   i++;
714                   for (j = 0; j < DCTSIZE; j++) {
715                     dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
716                     j++;
717                     dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
718                   }
719                 }
720               } else {
721                 /* Right-edge blocks are mirrored in y only */
722                 src_ptr = src_buffer[offset_x]
723                   [comp_height - y_crop_blocks - dst_blk_y - offset_y - 1];
724                 for (i = 0; i < DCTSIZE; i++) {
725                   for (j = 0; j < DCTSIZE; j++) {
726                     dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
727                     j++;
728                     dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
729                   }
730                 }
731               }
732             } else {
733               if (x_crop_blocks + dst_blk_x < comp_width) {
734                 /* Bottom-edge blocks are mirrored in x only */
735                 src_ptr = src_buffer[compptr->h_samp_factor - offset_x - 1]
736                   [dst_blk_y + offset_y + y_crop_blocks];
737                 for (i = 0; i < DCTSIZE; i++) {
738                   for (j = 0; j < DCTSIZE; j++)
739                     dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
740                   i++;
741                   for (j = 0; j < DCTSIZE; j++)
742                     dst_ptr[j*DCTSIZE+i] = -src_ptr[i*DCTSIZE+j];
743                 }
744               } else {
745                 /* At lower right corner, just transpose, no mirroring */
746                 src_ptr = src_buffer[offset_x]
747                   [dst_blk_y + offset_y + y_crop_blocks];
748                 for (i = 0; i < DCTSIZE; i++)
749                   for (j = 0; j < DCTSIZE; j++)
750                     dst_ptr[j*DCTSIZE+i] = src_ptr[i*DCTSIZE+j];
751               }
752             }
753           }
754         }
755       }
756     }
757   }
758 }
759 
760 
761 /* Parse an unsigned integer: subroutine for jtransform_parse_crop_spec.
762  * Returns TRUE if valid integer found, FALSE if not.
763  * *strptr is advanced over the digit string, and *result is set to its value.
764  */
765 
766 LOCAL(boolean)
jt_read_integer(const char ** strptr,JDIMENSION * result)767 jt_read_integer (const char **strptr, JDIMENSION *result)
768 {
769   const char *ptr = *strptr;
770   JDIMENSION val = 0;
771 
772   for (; isdigit(*ptr); ptr++) {
773     val = val * 10 + (JDIMENSION) (*ptr - '0');
774   }
775   *result = val;
776   if (ptr == *strptr)
777     return FALSE;               /* oops, no digits */
778   *strptr = ptr;
779   return TRUE;
780 }
781 
782 
783 /* Parse a crop specification (written in X11 geometry style).
784  * The routine returns TRUE if the spec string is valid, FALSE if not.
785  *
786  * The crop spec string should have the format
787  *      <width>[f]x<height>[f]{+-}<xoffset>{+-}<yoffset>
788  * where width, height, xoffset, and yoffset are unsigned integers.
789  * Each of the elements can be omitted to indicate a default value.
790  * (A weakness of this style is that it is not possible to omit xoffset
791  * while specifying yoffset, since they look alike.)
792  *
793  * This code is loosely based on XParseGeometry from the X11 distribution.
794  */
795 
796 GLOBAL(boolean)
jtransform_parse_crop_spec(jpeg_transform_info * info,const char * spec)797 jtransform_parse_crop_spec (jpeg_transform_info *info, const char *spec)
798 {
799   info->crop = FALSE;
800   info->crop_width_set = JCROP_UNSET;
801   info->crop_height_set = JCROP_UNSET;
802   info->crop_xoffset_set = JCROP_UNSET;
803   info->crop_yoffset_set = JCROP_UNSET;
804 
805   if (isdigit(*spec)) {
806     /* fetch width */
807     if (! jt_read_integer(&spec, &info->crop_width))
808       return FALSE;
809     if (*spec == 'f' || *spec == 'F') {
810       spec++;
811       info->crop_width_set = JCROP_FORCE;
812     } else
813       info->crop_width_set = JCROP_POS;
814   }
815   if (*spec == 'x' || *spec == 'X') {
816     /* fetch height */
817     spec++;
818     if (! jt_read_integer(&spec, &info->crop_height))
819       return FALSE;
820     if (*spec == 'f' || *spec == 'F') {
821       spec++;
822       info->crop_height_set = JCROP_FORCE;
823     } else
824       info->crop_height_set = JCROP_POS;
825   }
826   if (*spec == '+' || *spec == '-') {
827     /* fetch xoffset */
828     info->crop_xoffset_set = (*spec == '-') ? JCROP_NEG : JCROP_POS;
829     spec++;
830     if (! jt_read_integer(&spec, &info->crop_xoffset))
831       return FALSE;
832   }
833   if (*spec == '+' || *spec == '-') {
834     /* fetch yoffset */
835     info->crop_yoffset_set = (*spec == '-') ? JCROP_NEG : JCROP_POS;
836     spec++;
837     if (! jt_read_integer(&spec, &info->crop_yoffset))
838       return FALSE;
839   }
840   /* We had better have gotten to the end of the string. */
841   if (*spec != '\0')
842     return FALSE;
843   info->crop = TRUE;
844   return TRUE;
845 }
846 
847 
848 /* Trim off any partial iMCUs on the indicated destination edge */
849 
850 LOCAL(void)
trim_right_edge(jpeg_transform_info * info,JDIMENSION full_width)851 trim_right_edge (jpeg_transform_info *info, JDIMENSION full_width)
852 {
853   JDIMENSION MCU_cols;
854 
855   MCU_cols = info->output_width / info->iMCU_sample_width;
856   if (MCU_cols > 0 && info->x_crop_offset + MCU_cols ==
857       full_width / info->iMCU_sample_width)
858     info->output_width = MCU_cols * info->iMCU_sample_width;
859 }
860 
861 LOCAL(void)
trim_bottom_edge(jpeg_transform_info * info,JDIMENSION full_height)862 trim_bottom_edge (jpeg_transform_info *info, JDIMENSION full_height)
863 {
864   JDIMENSION MCU_rows;
865 
866   MCU_rows = info->output_height / info->iMCU_sample_height;
867   if (MCU_rows > 0 && info->y_crop_offset + MCU_rows ==
868       full_height / info->iMCU_sample_height)
869     info->output_height = MCU_rows * info->iMCU_sample_height;
870 }
871 
872 
873 /* Request any required workspace.
874  *
875  * This routine figures out the size that the output image will be
876  * (which implies that all the transform parameters must be set before
877  * it is called).
878  *
879  * We allocate the workspace virtual arrays from the source decompression
880  * object, so that all the arrays (both the original data and the workspace)
881  * will be taken into account while making memory management decisions.
882  * Hence, this routine must be called after jpeg_read_header (which reads
883  * the image dimensions) and before jpeg_read_coefficients (which realizes
884  * the source's virtual arrays).
885  *
886  * This function returns FALSE right away if -perfect is given
887  * and transformation is not perfect.  Otherwise returns TRUE.
888  */
889 
890 GLOBAL(boolean)
jtransform_request_workspace(j_decompress_ptr srcinfo,jpeg_transform_info * info)891 jtransform_request_workspace (j_decompress_ptr srcinfo,
892                               jpeg_transform_info *info)
893 {
894   jvirt_barray_ptr *coef_arrays;
895   boolean need_workspace, transpose_it;
896   jpeg_component_info *compptr;
897   JDIMENSION xoffset, yoffset;
898   JDIMENSION width_in_iMCUs, height_in_iMCUs;
899   JDIMENSION width_in_blocks, height_in_blocks;
900   int ci, h_samp_factor, v_samp_factor;
901 
902   /* Determine number of components in output image */
903   if (info->force_grayscale &&
904       srcinfo->jpeg_color_space == JCS_YCbCr &&
905       srcinfo->num_components == 3)
906     /* We'll only process the first component */
907     info->num_components = 1;
908   else
909     /* Process all the components */
910     info->num_components = srcinfo->num_components;
911 
912   /* Compute output image dimensions and related values. */
913 #if JPEG_LIB_VERSION >= 80
914   jpeg_core_output_dimensions(srcinfo);
915 #else
916   srcinfo->output_width = srcinfo->image_width;
917   srcinfo->output_height = srcinfo->image_height;
918 #endif
919 
920   /* Return right away if -perfect is given and transformation is not perfect.
921    */
922   if (info->perfect) {
923     if (info->num_components == 1) {
924       if (!jtransform_perfect_transform(srcinfo->output_width,
925           srcinfo->output_height,
926           srcinfo->_min_DCT_h_scaled_size,
927           srcinfo->_min_DCT_v_scaled_size,
928           info->transform))
929         return FALSE;
930     } else {
931       if (!jtransform_perfect_transform(srcinfo->output_width,
932           srcinfo->output_height,
933           srcinfo->max_h_samp_factor * srcinfo->_min_DCT_h_scaled_size,
934           srcinfo->max_v_samp_factor * srcinfo->_min_DCT_v_scaled_size,
935           info->transform))
936         return FALSE;
937     }
938   }
939 
940   /* If there is only one output component, force the iMCU size to be 1;
941    * else use the source iMCU size.  (This allows us to do the right thing
942    * when reducing color to grayscale, and also provides a handy way of
943    * cleaning up "funny" grayscale images whose sampling factors are not 1x1.)
944    */
945   switch (info->transform) {
946   case JXFORM_TRANSPOSE:
947   case JXFORM_TRANSVERSE:
948   case JXFORM_ROT_90:
949   case JXFORM_ROT_270:
950     info->output_width = srcinfo->output_height;
951     info->output_height = srcinfo->output_width;
952     if (info->num_components == 1) {
953       info->iMCU_sample_width = srcinfo->_min_DCT_v_scaled_size;
954       info->iMCU_sample_height = srcinfo->_min_DCT_h_scaled_size;
955     } else {
956       info->iMCU_sample_width =
957         srcinfo->max_v_samp_factor * srcinfo->_min_DCT_v_scaled_size;
958       info->iMCU_sample_height =
959         srcinfo->max_h_samp_factor * srcinfo->_min_DCT_h_scaled_size;
960     }
961     break;
962   default:
963     info->output_width = srcinfo->output_width;
964     info->output_height = srcinfo->output_height;
965     if (info->num_components == 1) {
966       info->iMCU_sample_width = srcinfo->_min_DCT_h_scaled_size;
967       info->iMCU_sample_height = srcinfo->_min_DCT_v_scaled_size;
968     } else {
969       info->iMCU_sample_width =
970         srcinfo->max_h_samp_factor * srcinfo->_min_DCT_h_scaled_size;
971       info->iMCU_sample_height =
972         srcinfo->max_v_samp_factor * srcinfo->_min_DCT_v_scaled_size;
973     }
974     break;
975   }
976 
977   /* If cropping has been requested, compute the crop area's position and
978    * dimensions, ensuring that its upper left corner falls at an iMCU boundary.
979    */
980   if (info->crop) {
981     /* Insert default values for unset crop parameters */
982     if (info->crop_xoffset_set == JCROP_UNSET)
983       info->crop_xoffset = 0;   /* default to +0 */
984     if (info->crop_yoffset_set == JCROP_UNSET)
985       info->crop_yoffset = 0;   /* default to +0 */
986     if (info->crop_xoffset >= info->output_width ||
987         info->crop_yoffset >= info->output_height)
988       ERREXIT(srcinfo, JERR_BAD_CROP_SPEC);
989     if (info->crop_width_set == JCROP_UNSET)
990       info->crop_width = info->output_width - info->crop_xoffset;
991     if (info->crop_height_set == JCROP_UNSET)
992       info->crop_height = info->output_height - info->crop_yoffset;
993     /* Ensure parameters are valid */
994     if (info->crop_width <= 0 || info->crop_width > info->output_width ||
995         info->crop_height <= 0 || info->crop_height > info->output_height ||
996         info->crop_xoffset > info->output_width - info->crop_width ||
997         info->crop_yoffset > info->output_height - info->crop_height)
998       ERREXIT(srcinfo, JERR_BAD_CROP_SPEC);
999     /* Convert negative crop offsets into regular offsets */
1000     if (info->crop_xoffset_set == JCROP_NEG)
1001       xoffset = info->output_width - info->crop_width - info->crop_xoffset;
1002     else
1003       xoffset = info->crop_xoffset;
1004     if (info->crop_yoffset_set == JCROP_NEG)
1005       yoffset = info->output_height - info->crop_height - info->crop_yoffset;
1006     else
1007       yoffset = info->crop_yoffset;
1008     /* Now adjust so that upper left corner falls at an iMCU boundary */
1009     if (info->crop_width_set == JCROP_FORCE)
1010       info->output_width = info->crop_width;
1011     else
1012       info->output_width =
1013         info->crop_width + (xoffset % info->iMCU_sample_width);
1014     if (info->crop_height_set == JCROP_FORCE)
1015       info->output_height = info->crop_height;
1016     else
1017       info->output_height =
1018         info->crop_height + (yoffset % info->iMCU_sample_height);
1019     /* Save x/y offsets measured in iMCUs */
1020     info->x_crop_offset = xoffset / info->iMCU_sample_width;
1021     info->y_crop_offset = yoffset / info->iMCU_sample_height;
1022   } else {
1023     info->x_crop_offset = 0;
1024     info->y_crop_offset = 0;
1025   }
1026 
1027   /* Figure out whether we need workspace arrays,
1028    * and if so whether they are transposed relative to the source.
1029    */
1030   need_workspace = FALSE;
1031   transpose_it = FALSE;
1032   switch (info->transform) {
1033   case JXFORM_NONE:
1034     if (info->x_crop_offset != 0 || info->y_crop_offset != 0)
1035       need_workspace = TRUE;
1036     /* No workspace needed if neither cropping nor transforming */
1037     break;
1038   case JXFORM_FLIP_H:
1039     if (info->trim)
1040       trim_right_edge(info, srcinfo->output_width);
1041     if (info->y_crop_offset != 0 || info->slow_hflip)
1042       need_workspace = TRUE;
1043     /* do_flip_h_no_crop doesn't need a workspace array */
1044     break;
1045   case JXFORM_FLIP_V:
1046     if (info->trim)
1047       trim_bottom_edge(info, srcinfo->output_height);
1048     /* Need workspace arrays having same dimensions as source image. */
1049     need_workspace = TRUE;
1050     break;
1051   case JXFORM_TRANSPOSE:
1052     /* transpose does NOT have to trim anything */
1053     /* Need workspace arrays having transposed dimensions. */
1054     need_workspace = TRUE;
1055     transpose_it = TRUE;
1056     break;
1057   case JXFORM_TRANSVERSE:
1058     if (info->trim) {
1059       trim_right_edge(info, srcinfo->output_height);
1060       trim_bottom_edge(info, srcinfo->output_width);
1061     }
1062     /* Need workspace arrays having transposed dimensions. */
1063     need_workspace = TRUE;
1064     transpose_it = TRUE;
1065     break;
1066   case JXFORM_ROT_90:
1067     if (info->trim)
1068       trim_right_edge(info, srcinfo->output_height);
1069     /* Need workspace arrays having transposed dimensions. */
1070     need_workspace = TRUE;
1071     transpose_it = TRUE;
1072     break;
1073   case JXFORM_ROT_180:
1074     if (info->trim) {
1075       trim_right_edge(info, srcinfo->output_width);
1076       trim_bottom_edge(info, srcinfo->output_height);
1077     }
1078     /* Need workspace arrays having same dimensions as source image. */
1079     need_workspace = TRUE;
1080     break;
1081   case JXFORM_ROT_270:
1082     if (info->trim)
1083       trim_bottom_edge(info, srcinfo->output_width);
1084     /* Need workspace arrays having transposed dimensions. */
1085     need_workspace = TRUE;
1086     transpose_it = TRUE;
1087     break;
1088   }
1089 
1090   /* Allocate workspace if needed.
1091    * Note that we allocate arrays padded out to the next iMCU boundary,
1092    * so that transform routines need not worry about missing edge blocks.
1093    */
1094   if (need_workspace) {
1095     coef_arrays = (jvirt_barray_ptr *)
1096       (*srcinfo->mem->alloc_small) ((j_common_ptr) srcinfo, JPOOL_IMAGE,
1097                 sizeof(jvirt_barray_ptr) * info->num_components);
1098     width_in_iMCUs = (JDIMENSION)
1099       jdiv_round_up((long) info->output_width,
1100                     (long) info->iMCU_sample_width);
1101     height_in_iMCUs = (JDIMENSION)
1102       jdiv_round_up((long) info->output_height,
1103                     (long) info->iMCU_sample_height);
1104     for (ci = 0; ci < info->num_components; ci++) {
1105       compptr = srcinfo->comp_info + ci;
1106       if (info->num_components == 1) {
1107         /* we're going to force samp factors to 1x1 in this case */
1108         h_samp_factor = v_samp_factor = 1;
1109       } else if (transpose_it) {
1110         h_samp_factor = compptr->v_samp_factor;
1111         v_samp_factor = compptr->h_samp_factor;
1112       } else {
1113         h_samp_factor = compptr->h_samp_factor;
1114         v_samp_factor = compptr->v_samp_factor;
1115       }
1116       width_in_blocks = width_in_iMCUs * h_samp_factor;
1117       height_in_blocks = height_in_iMCUs * v_samp_factor;
1118       coef_arrays[ci] = (*srcinfo->mem->request_virt_barray)
1119         ((j_common_ptr) srcinfo, JPOOL_IMAGE, FALSE,
1120          width_in_blocks, height_in_blocks, (JDIMENSION) v_samp_factor);
1121     }
1122     info->workspace_coef_arrays = coef_arrays;
1123   } else
1124     info->workspace_coef_arrays = NULL;
1125 
1126   return TRUE;
1127 }
1128 
1129 
1130 /* Transpose destination image parameters */
1131 
1132 LOCAL(void)
transpose_critical_parameters(j_compress_ptr dstinfo)1133 transpose_critical_parameters (j_compress_ptr dstinfo)
1134 {
1135   int tblno, i, j, ci, itemp;
1136   jpeg_component_info *compptr;
1137   JQUANT_TBL *qtblptr;
1138   JDIMENSION jtemp;
1139   UINT16 qtemp;
1140 
1141   /* Transpose image dimensions */
1142   jtemp = dstinfo->image_width;
1143   dstinfo->image_width = dstinfo->image_height;
1144   dstinfo->image_height = jtemp;
1145 #if JPEG_LIB_VERSION >= 70
1146   itemp = dstinfo->min_DCT_h_scaled_size;
1147   dstinfo->min_DCT_h_scaled_size = dstinfo->min_DCT_v_scaled_size;
1148   dstinfo->min_DCT_v_scaled_size = itemp;
1149 #endif
1150 
1151   /* Transpose sampling factors */
1152   for (ci = 0; ci < dstinfo->num_components; ci++) {
1153     compptr = dstinfo->comp_info + ci;
1154     itemp = compptr->h_samp_factor;
1155     compptr->h_samp_factor = compptr->v_samp_factor;
1156     compptr->v_samp_factor = itemp;
1157   }
1158 
1159   /* Transpose quantization tables */
1160   for (tblno = 0; tblno < NUM_QUANT_TBLS; tblno++) {
1161     qtblptr = dstinfo->quant_tbl_ptrs[tblno];
1162     if (qtblptr != NULL) {
1163       for (i = 0; i < DCTSIZE; i++) {
1164         for (j = 0; j < i; j++) {
1165           qtemp = qtblptr->quantval[i*DCTSIZE+j];
1166           qtblptr->quantval[i*DCTSIZE+j] = qtblptr->quantval[j*DCTSIZE+i];
1167           qtblptr->quantval[j*DCTSIZE+i] = qtemp;
1168         }
1169       }
1170     }
1171   }
1172 }
1173 
1174 
1175 /* Adjust Exif image parameters.
1176  *
1177  * We try to adjust the Tags ExifImageWidth and ExifImageHeight if possible.
1178  */
1179 
1180 LOCAL(void)
adjust_exif_parameters(JOCTET * data,unsigned int length,JDIMENSION new_width,JDIMENSION new_height)1181 adjust_exif_parameters (JOCTET *data, unsigned int length,
1182                         JDIMENSION new_width, JDIMENSION new_height)
1183 {
1184   boolean is_motorola; /* Flag for byte order */
1185   unsigned int number_of_tags, tagnum;
1186   unsigned int firstoffset, offset;
1187   JDIMENSION new_value;
1188 
1189   if (length < 12) return; /* Length of an IFD entry */
1190 
1191   /* Discover byte order */
1192   if (GETJOCTET(data[0]) == 0x49 && GETJOCTET(data[1]) == 0x49)
1193     is_motorola = FALSE;
1194   else if (GETJOCTET(data[0]) == 0x4D && GETJOCTET(data[1]) == 0x4D)
1195     is_motorola = TRUE;
1196   else
1197     return;
1198 
1199   /* Check Tag Mark */
1200   if (is_motorola) {
1201     if (GETJOCTET(data[2]) != 0) return;
1202     if (GETJOCTET(data[3]) != 0x2A) return;
1203   } else {
1204     if (GETJOCTET(data[3]) != 0) return;
1205     if (GETJOCTET(data[2]) != 0x2A) return;
1206   }
1207 
1208   /* Get first IFD offset (offset to IFD0) */
1209   if (is_motorola) {
1210     if (GETJOCTET(data[4]) != 0) return;
1211     if (GETJOCTET(data[5]) != 0) return;
1212     firstoffset = GETJOCTET(data[6]);
1213     firstoffset <<= 8;
1214     firstoffset += GETJOCTET(data[7]);
1215   } else {
1216     if (GETJOCTET(data[7]) != 0) return;
1217     if (GETJOCTET(data[6]) != 0) return;
1218     firstoffset = GETJOCTET(data[5]);
1219     firstoffset <<= 8;
1220     firstoffset += GETJOCTET(data[4]);
1221   }
1222   if (firstoffset > length - 2) return; /* check end of data segment */
1223 
1224   /* Get the number of directory entries contained in this IFD */
1225   if (is_motorola) {
1226     number_of_tags = GETJOCTET(data[firstoffset]);
1227     number_of_tags <<= 8;
1228     number_of_tags += GETJOCTET(data[firstoffset+1]);
1229   } else {
1230     number_of_tags = GETJOCTET(data[firstoffset+1]);
1231     number_of_tags <<= 8;
1232     number_of_tags += GETJOCTET(data[firstoffset]);
1233   }
1234   if (number_of_tags == 0) return;
1235   firstoffset += 2;
1236 
1237   /* Search for ExifSubIFD offset Tag in IFD0 */
1238   for (;;) {
1239     if (firstoffset > length - 12) return; /* check end of data segment */
1240     /* Get Tag number */
1241     if (is_motorola) {
1242       tagnum = GETJOCTET(data[firstoffset]);
1243       tagnum <<= 8;
1244       tagnum += GETJOCTET(data[firstoffset+1]);
1245     } else {
1246       tagnum = GETJOCTET(data[firstoffset+1]);
1247       tagnum <<= 8;
1248       tagnum += GETJOCTET(data[firstoffset]);
1249     }
1250     if (tagnum == 0x8769) break; /* found ExifSubIFD offset Tag */
1251     if (--number_of_tags == 0) return;
1252     firstoffset += 12;
1253   }
1254 
1255   /* Get the ExifSubIFD offset */
1256   if (is_motorola) {
1257     if (GETJOCTET(data[firstoffset+8]) != 0) return;
1258     if (GETJOCTET(data[firstoffset+9]) != 0) return;
1259     offset = GETJOCTET(data[firstoffset+10]);
1260     offset <<= 8;
1261     offset += GETJOCTET(data[firstoffset+11]);
1262   } else {
1263     if (GETJOCTET(data[firstoffset+11]) != 0) return;
1264     if (GETJOCTET(data[firstoffset+10]) != 0) return;
1265     offset = GETJOCTET(data[firstoffset+9]);
1266     offset <<= 8;
1267     offset += GETJOCTET(data[firstoffset+8]);
1268   }
1269   if (offset > length - 2) return; /* check end of data segment */
1270 
1271   /* Get the number of directory entries contained in this SubIFD */
1272   if (is_motorola) {
1273     number_of_tags = GETJOCTET(data[offset]);
1274     number_of_tags <<= 8;
1275     number_of_tags += GETJOCTET(data[offset+1]);
1276   } else {
1277     number_of_tags = GETJOCTET(data[offset+1]);
1278     number_of_tags <<= 8;
1279     number_of_tags += GETJOCTET(data[offset]);
1280   }
1281   if (number_of_tags < 2) return;
1282   offset += 2;
1283 
1284   /* Search for ExifImageWidth and ExifImageHeight Tags in this SubIFD */
1285   do {
1286     if (offset > length - 12) return; /* check end of data segment */
1287     /* Get Tag number */
1288     if (is_motorola) {
1289       tagnum = GETJOCTET(data[offset]);
1290       tagnum <<= 8;
1291       tagnum += GETJOCTET(data[offset+1]);
1292     } else {
1293       tagnum = GETJOCTET(data[offset+1]);
1294       tagnum <<= 8;
1295       tagnum += GETJOCTET(data[offset]);
1296     }
1297     if (tagnum == 0xA002 || tagnum == 0xA003) {
1298       if (tagnum == 0xA002)
1299         new_value = new_width; /* ExifImageWidth Tag */
1300       else
1301         new_value = new_height; /* ExifImageHeight Tag */
1302       if (is_motorola) {
1303         data[offset+2] = 0; /* Format = unsigned long (4 octets) */
1304         data[offset+3] = 4;
1305         data[offset+4] = 0; /* Number Of Components = 1 */
1306         data[offset+5] = 0;
1307         data[offset+6] = 0;
1308         data[offset+7] = 1;
1309         data[offset+8] = 0;
1310         data[offset+9] = 0;
1311         data[offset+10] = (JOCTET)((new_value >> 8) & 0xFF);
1312         data[offset+11] = (JOCTET)(new_value & 0xFF);
1313       } else {
1314         data[offset+2] = 4; /* Format = unsigned long (4 octets) */
1315         data[offset+3] = 0;
1316         data[offset+4] = 1; /* Number Of Components = 1 */
1317         data[offset+5] = 0;
1318         data[offset+6] = 0;
1319         data[offset+7] = 0;
1320         data[offset+8] = (JOCTET)(new_value & 0xFF);
1321         data[offset+9] = (JOCTET)((new_value >> 8) & 0xFF);
1322         data[offset+10] = 0;
1323         data[offset+11] = 0;
1324       }
1325     }
1326     offset += 12;
1327   } while (--number_of_tags);
1328 }
1329 
1330 
1331 /* Adjust output image parameters as needed.
1332  *
1333  * This must be called after jpeg_copy_critical_parameters()
1334  * and before jpeg_write_coefficients().
1335  *
1336  * The return value is the set of virtual coefficient arrays to be written
1337  * (either the ones allocated by jtransform_request_workspace, or the
1338  * original source data arrays).  The caller will need to pass this value
1339  * to jpeg_write_coefficients().
1340  */
1341 
1342 GLOBAL(jvirt_barray_ptr *)
jtransform_adjust_parameters(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,jvirt_barray_ptr * src_coef_arrays,jpeg_transform_info * info)1343 jtransform_adjust_parameters (j_decompress_ptr srcinfo,
1344                               j_compress_ptr dstinfo,
1345                               jvirt_barray_ptr *src_coef_arrays,
1346                               jpeg_transform_info *info)
1347 {
1348   /* If force-to-grayscale is requested, adjust destination parameters */
1349   if (info->force_grayscale) {
1350     /* First, ensure we have YCbCr or grayscale data, and that the source's
1351      * Y channel is full resolution.  (No reasonable person would make Y
1352      * be less than full resolution, so actually coping with that case
1353      * isn't worth extra code space.  But we check it to avoid crashing.)
1354      */
1355     if (((dstinfo->jpeg_color_space == JCS_YCbCr &&
1356           dstinfo->num_components == 3) ||
1357          (dstinfo->jpeg_color_space == JCS_GRAYSCALE &&
1358           dstinfo->num_components == 1)) &&
1359         srcinfo->comp_info[0].h_samp_factor == srcinfo->max_h_samp_factor &&
1360         srcinfo->comp_info[0].v_samp_factor == srcinfo->max_v_samp_factor) {
1361       /* We use jpeg_set_colorspace to make sure subsidiary settings get fixed
1362        * properly.  Among other things, it sets the target h_samp_factor &
1363        * v_samp_factor to 1, which typically won't match the source.
1364        * We have to preserve the source's quantization table number, however.
1365        */
1366       int sv_quant_tbl_no = dstinfo->comp_info[0].quant_tbl_no;
1367       jpeg_set_colorspace(dstinfo, JCS_GRAYSCALE);
1368       dstinfo->comp_info[0].quant_tbl_no = sv_quant_tbl_no;
1369     } else {
1370       /* Sorry, can't do it */
1371       ERREXIT(dstinfo, JERR_CONVERSION_NOTIMPL);
1372     }
1373   } else if (info->num_components == 1) {
1374     /* For a single-component source, we force the destination sampling factors
1375      * to 1x1, with or without force_grayscale.  This is useful because some
1376      * decoders choke on grayscale images with other sampling factors.
1377      */
1378     dstinfo->comp_info[0].h_samp_factor = 1;
1379     dstinfo->comp_info[0].v_samp_factor = 1;
1380   }
1381 
1382   /* Correct the destination's image dimensions as necessary
1383    * for rotate/flip, resize, and crop operations.
1384    */
1385 #if JPEG_LIB_VERSION >= 80
1386   dstinfo->jpeg_width = info->output_width;
1387   dstinfo->jpeg_height = info->output_height;
1388 #endif
1389 
1390   /* Transpose destination image parameters */
1391   switch (info->transform) {
1392   case JXFORM_TRANSPOSE:
1393   case JXFORM_TRANSVERSE:
1394   case JXFORM_ROT_90:
1395   case JXFORM_ROT_270:
1396 #if JPEG_LIB_VERSION < 80
1397     dstinfo->image_width = info->output_height;
1398     dstinfo->image_height = info->output_width;
1399 #endif
1400     transpose_critical_parameters(dstinfo);
1401     break;
1402   default:
1403 #if JPEG_LIB_VERSION < 80
1404     dstinfo->image_width = info->output_width;
1405     dstinfo->image_height = info->output_height;
1406 #endif
1407     break;
1408   }
1409 
1410   /* Adjust Exif properties */
1411   if (srcinfo->marker_list != NULL &&
1412       srcinfo->marker_list->marker == JPEG_APP0+1 &&
1413       srcinfo->marker_list->data_length >= 6 &&
1414       GETJOCTET(srcinfo->marker_list->data[0]) == 0x45 &&
1415       GETJOCTET(srcinfo->marker_list->data[1]) == 0x78 &&
1416       GETJOCTET(srcinfo->marker_list->data[2]) == 0x69 &&
1417       GETJOCTET(srcinfo->marker_list->data[3]) == 0x66 &&
1418       GETJOCTET(srcinfo->marker_list->data[4]) == 0 &&
1419       GETJOCTET(srcinfo->marker_list->data[5]) == 0) {
1420     /* Suppress output of JFIF marker */
1421     dstinfo->write_JFIF_header = FALSE;
1422     /* Adjust Exif image parameters */
1423 #if JPEG_LIB_VERSION >= 80
1424     if (dstinfo->jpeg_width != srcinfo->image_width ||
1425         dstinfo->jpeg_height != srcinfo->image_height)
1426       /* Align data segment to start of TIFF structure for parsing */
1427       adjust_exif_parameters(srcinfo->marker_list->data + 6,
1428         srcinfo->marker_list->data_length - 6,
1429         dstinfo->jpeg_width, dstinfo->jpeg_height);
1430 #else
1431     if (dstinfo->image_width != srcinfo->image_width ||
1432         dstinfo->image_height != srcinfo->image_height)
1433       /* Align data segment to start of TIFF structure for parsing */
1434       adjust_exif_parameters(srcinfo->marker_list->data + 6,
1435         srcinfo->marker_list->data_length - 6,
1436         dstinfo->image_width, dstinfo->image_height);
1437 #endif
1438   }
1439 
1440   /* Return the appropriate output data set */
1441   if (info->workspace_coef_arrays != NULL)
1442     return info->workspace_coef_arrays;
1443   return src_coef_arrays;
1444 }
1445 
1446 
1447 /* Execute the actual transformation, if any.
1448  *
1449  * This must be called *after* jpeg_write_coefficients, because it depends
1450  * on jpeg_write_coefficients to have computed subsidiary values such as
1451  * the per-component width and height fields in the destination object.
1452  *
1453  * Note that some transformations will modify the source data arrays!
1454  */
1455 
1456 GLOBAL(void)
jtransform_execute_transform(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,jvirt_barray_ptr * src_coef_arrays,jpeg_transform_info * info)1457 jtransform_execute_transform (j_decompress_ptr srcinfo,
1458                               j_compress_ptr dstinfo,
1459                               jvirt_barray_ptr *src_coef_arrays,
1460                               jpeg_transform_info *info)
1461 {
1462   jvirt_barray_ptr *dst_coef_arrays = info->workspace_coef_arrays;
1463 
1464   /* Note: conditions tested here should match those in switch statement
1465    * in jtransform_request_workspace()
1466    */
1467   switch (info->transform) {
1468   case JXFORM_NONE:
1469     if (info->x_crop_offset != 0 || info->y_crop_offset != 0)
1470       do_crop(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1471               src_coef_arrays, dst_coef_arrays);
1472     break;
1473   case JXFORM_FLIP_H:
1474     if (info->y_crop_offset != 0 || info->slow_hflip)
1475       do_flip_h(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1476                 src_coef_arrays, dst_coef_arrays);
1477     else
1478       do_flip_h_no_crop(srcinfo, dstinfo, info->x_crop_offset,
1479                         src_coef_arrays);
1480     break;
1481   case JXFORM_FLIP_V:
1482     do_flip_v(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1483               src_coef_arrays, dst_coef_arrays);
1484     break;
1485   case JXFORM_TRANSPOSE:
1486     do_transpose(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1487                  src_coef_arrays, dst_coef_arrays);
1488     break;
1489   case JXFORM_TRANSVERSE:
1490     do_transverse(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1491                   src_coef_arrays, dst_coef_arrays);
1492     break;
1493   case JXFORM_ROT_90:
1494     do_rot_90(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1495               src_coef_arrays, dst_coef_arrays);
1496     break;
1497   case JXFORM_ROT_180:
1498     do_rot_180(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1499                src_coef_arrays, dst_coef_arrays);
1500     break;
1501   case JXFORM_ROT_270:
1502     do_rot_270(srcinfo, dstinfo, info->x_crop_offset, info->y_crop_offset,
1503                src_coef_arrays, dst_coef_arrays);
1504     break;
1505   }
1506 }
1507 
1508 /* jtransform_perfect_transform
1509  *
1510  * Determine whether lossless transformation is perfectly
1511  * possible for a specified image and transformation.
1512  *
1513  * Inputs:
1514  *   image_width, image_height: source image dimensions.
1515  *   MCU_width, MCU_height: pixel dimensions of MCU.
1516  *   transform: transformation identifier.
1517  * Parameter sources from initialized jpeg_struct
1518  * (after reading source header):
1519  *   image_width = cinfo.image_width
1520  *   image_height = cinfo.image_height
1521  *   MCU_width = cinfo.max_h_samp_factor * cinfo.block_size
1522  *   MCU_height = cinfo.max_v_samp_factor * cinfo.block_size
1523  * Result:
1524  *   TRUE = perfect transformation possible
1525  *   FALSE = perfect transformation not possible
1526  *           (may use custom action then)
1527  */
1528 
1529 GLOBAL(boolean)
jtransform_perfect_transform(JDIMENSION image_width,JDIMENSION image_height,int MCU_width,int MCU_height,JXFORM_CODE transform)1530 jtransform_perfect_transform(JDIMENSION image_width, JDIMENSION image_height,
1531                              int MCU_width, int MCU_height,
1532                              JXFORM_CODE transform)
1533 {
1534   boolean result = TRUE; /* initialize TRUE */
1535 
1536   switch (transform) {
1537   case JXFORM_FLIP_H:
1538   case JXFORM_ROT_270:
1539     if (image_width % (JDIMENSION) MCU_width)
1540       result = FALSE;
1541     break;
1542   case JXFORM_FLIP_V:
1543   case JXFORM_ROT_90:
1544     if (image_height % (JDIMENSION) MCU_height)
1545       result = FALSE;
1546     break;
1547   case JXFORM_TRANSVERSE:
1548   case JXFORM_ROT_180:
1549     if (image_width % (JDIMENSION) MCU_width)
1550       result = FALSE;
1551     if (image_height % (JDIMENSION) MCU_height)
1552       result = FALSE;
1553     break;
1554   default:
1555     break;
1556   }
1557 
1558   return result;
1559 }
1560 
1561 #endif /* TRANSFORMS_SUPPORTED */
1562 
1563 
1564 /* Setup decompression object to save desired markers in memory.
1565  * This must be called before jpeg_read_header() to have the desired effect.
1566  */
1567 
1568 GLOBAL(void)
jcopy_markers_setup(j_decompress_ptr srcinfo,JCOPY_OPTION option)1569 jcopy_markers_setup (j_decompress_ptr srcinfo, JCOPY_OPTION option)
1570 {
1571 #ifdef SAVE_MARKERS_SUPPORTED
1572   int m;
1573 
1574   /* Save comments except under NONE option */
1575   if (option != JCOPYOPT_NONE) {
1576     jpeg_save_markers(srcinfo, JPEG_COM, 0xFFFF);
1577   }
1578   /* Save all types of APPn markers iff ALL option */
1579   if (option == JCOPYOPT_ALL) {
1580     for (m = 0; m < 16; m++)
1581       jpeg_save_markers(srcinfo, JPEG_APP0 + m, 0xFFFF);
1582   }
1583 #endif /* SAVE_MARKERS_SUPPORTED */
1584 }
1585 
1586 /* Copy markers saved in the given source object to the destination object.
1587  * This should be called just after jpeg_start_compress() or
1588  * jpeg_write_coefficients().
1589  * Note that those routines will have written the SOI, and also the
1590  * JFIF APP0 or Adobe APP14 markers if selected.
1591  */
1592 
1593 GLOBAL(void)
jcopy_markers_execute(j_decompress_ptr srcinfo,j_compress_ptr dstinfo,JCOPY_OPTION option)1594 jcopy_markers_execute (j_decompress_ptr srcinfo, j_compress_ptr dstinfo,
1595                        JCOPY_OPTION option)
1596 {
1597   jpeg_saved_marker_ptr marker;
1598 
1599   /* In the current implementation, we don't actually need to examine the
1600    * option flag here; we just copy everything that got saved.
1601    * But to avoid confusion, we do not output JFIF and Adobe APP14 markers
1602    * if the encoder library already wrote one.
1603    */
1604   for (marker = srcinfo->marker_list; marker != NULL; marker = marker->next) {
1605     if (dstinfo->write_JFIF_header &&
1606         marker->marker == JPEG_APP0 &&
1607         marker->data_length >= 5 &&
1608         GETJOCTET(marker->data[0]) == 0x4A &&
1609         GETJOCTET(marker->data[1]) == 0x46 &&
1610         GETJOCTET(marker->data[2]) == 0x49 &&
1611         GETJOCTET(marker->data[3]) == 0x46 &&
1612         GETJOCTET(marker->data[4]) == 0)
1613       continue;                 /* reject duplicate JFIF */
1614     if (dstinfo->write_Adobe_marker &&
1615         marker->marker == JPEG_APP0+14 &&
1616         marker->data_length >= 5 &&
1617         GETJOCTET(marker->data[0]) == 0x41 &&
1618         GETJOCTET(marker->data[1]) == 0x64 &&
1619         GETJOCTET(marker->data[2]) == 0x6F &&
1620         GETJOCTET(marker->data[3]) == 0x62 &&
1621         GETJOCTET(marker->data[4]) == 0x65)
1622       continue;                 /* reject duplicate Adobe */
1623     jpeg_write_marker(dstinfo, marker->marker,
1624                       marker->data, marker->data_length);
1625   }
1626 }
1627