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cristy3ed852e2009-09-05 21:47:34 +00001/*
2%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3% %
4% %
5% %
6% QQQ U U AAA N N TTTTT IIIII ZZZZZ EEEEE %
7% Q Q U U A A NN N T I ZZ E %
8% Q Q U U AAAAA N N N T I ZZZ EEEEE %
9% Q QQ U U A A N NN T I ZZ E %
10% QQQQ UUU A A N N T IIIII ZZZZZ EEEEE %
11% %
12% %
13% MagickCore Methods to Reduce the Number of Unique Colors in an Image %
14% %
15% Software Design %
16% John Cristy %
17% July 1992 %
18% %
19% %
cristy1454be72011-12-19 01:52:48 +000020% Copyright 1999-2012 ImageMagick Studio LLC, a non-profit organization %
cristy3ed852e2009-09-05 21:47:34 +000021% dedicated to making software imaging solutions freely available. %
22% %
23% You may not use this file except in compliance with the License. You may %
24% obtain a copy of the License at %
25% %
26% http://www.imagemagick.org/script/license.php %
27% %
28% Unless required by applicable law or agreed to in writing, software %
29% distributed under the License is distributed on an "AS IS" BASIS, %
30% WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. %
31% See the License for the specific language governing permissions and %
32% limitations under the License. %
33% %
34%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
35%
36% Realism in computer graphics typically requires using 24 bits/pixel to
37% generate an image. Yet many graphic display devices do not contain the
38% amount of memory necessary to match the spatial and color resolution of
39% the human eye. The Quantize methods takes a 24 bit image and reduces
40% the number of colors so it can be displayed on raster device with less
41% bits per pixel. In most instances, the quantized image closely
42% resembles the original reference image.
43%
44% A reduction of colors in an image is also desirable for image
45% transmission and real-time animation.
46%
47% QuantizeImage() takes a standard RGB or monochrome images and quantizes
48% them down to some fixed number of colors.
49%
50% For purposes of color allocation, an image is a set of n pixels, where
51% each pixel is a point in RGB space. RGB space is a 3-dimensional
52% vector space, and each pixel, Pi, is defined by an ordered triple of
53% red, green, and blue coordinates, (Ri, Gi, Bi).
54%
55% Each primary color component (red, green, or blue) represents an
56% intensity which varies linearly from 0 to a maximum value, Cmax, which
57% corresponds to full saturation of that color. Color allocation is
58% defined over a domain consisting of the cube in RGB space with opposite
59% vertices at (0,0,0) and (Cmax, Cmax, Cmax). QUANTIZE requires Cmax =
60% 255.
61%
62% The algorithm maps this domain onto a tree in which each node
63% represents a cube within that domain. In the following discussion
64% these cubes are defined by the coordinate of two opposite vertices:
65% The vertex nearest the origin in RGB space and the vertex farthest from
66% the origin.
67%
68% The tree's root node represents the entire domain, (0,0,0) through
69% (Cmax,Cmax,Cmax). Each lower level in the tree is generated by
70% subdividing one node's cube into eight smaller cubes of equal size.
71% This corresponds to bisecting the parent cube with planes passing
72% through the midpoints of each edge.
73%
74% The basic algorithm operates in three phases: Classification,
75% Reduction, and Assignment. Classification builds a color description
76% tree for the image. Reduction collapses the tree until the number it
77% represents, at most, the number of colors desired in the output image.
78% Assignment defines the output image's color map and sets each pixel's
79% color by restorage_class in the reduced tree. Our goal is to minimize
80% the numerical discrepancies between the original colors and quantized
81% colors (quantization error).
82%
83% Classification begins by initializing a color description tree of
84% sufficient depth to represent each possible input color in a leaf.
85% However, it is impractical to generate a fully-formed color description
86% tree in the storage_class phase for realistic values of Cmax. If
87% colors components in the input image are quantized to k-bit precision,
88% so that Cmax= 2k-1, the tree would need k levels below the root node to
89% allow representing each possible input color in a leaf. This becomes
90% prohibitive because the tree's total number of nodes is 1 +
91% sum(i=1, k, 8k).
92%
93% A complete tree would require 19,173,961 nodes for k = 8, Cmax = 255.
94% Therefore, to avoid building a fully populated tree, QUANTIZE: (1)
95% Initializes data structures for nodes only as they are needed; (2)
96% Chooses a maximum depth for the tree as a function of the desired
97% number of colors in the output image (currently log2(colormap size)).
98%
99% For each pixel in the input image, storage_class scans downward from
100% the root of the color description tree. At each level of the tree it
101% identifies the single node which represents a cube in RGB space
102% containing the pixel's color. It updates the following data for each
103% such node:
104%
105% n1: Number of pixels whose color is contained in the RGB cube which
106% this node represents;
107%
108% n2: Number of pixels whose color is not represented in a node at
109% lower depth in the tree; initially, n2 = 0 for all nodes except
110% leaves of the tree.
111%
112% Sr, Sg, Sb: Sums of the red, green, and blue component values for all
113% pixels not classified at a lower depth. The combination of these sums
114% and n2 will ultimately characterize the mean color of a set of
115% pixels represented by this node.
116%
117% E: the distance squared in RGB space between each pixel contained
118% within a node and the nodes' center. This represents the
119% quantization error for a node.
120%
121% Reduction repeatedly prunes the tree until the number of nodes with n2
122% > 0 is less than or equal to the maximum number of colors allowed in
123% the output image. On any given iteration over the tree, it selects
124% those nodes whose E count is minimal for pruning and merges their color
125% statistics upward. It uses a pruning threshold, Ep, to govern node
126% selection as follows:
127%
128% Ep = 0
129% while number of nodes with (n2 > 0) > required maximum number of colors
130% prune all nodes such that E <= Ep
131% Set Ep to minimum E in remaining nodes
132%
133% This has the effect of minimizing any quantization error when merging
134% two nodes together.
135%
136% When a node to be pruned has offspring, the pruning procedure invokes
137% itself recursively in order to prune the tree from the leaves upward.
138% n2, Sr, Sg, and Sb in a node being pruned are always added to the
139% corresponding data in that node's parent. This retains the pruned
140% node's color characteristics for later averaging.
141%
142% For each node, n2 pixels exist for which that node represents the
143% smallest volume in RGB space containing those pixel's colors. When n2
144% > 0 the node will uniquely define a color in the output image. At the
145% beginning of reduction, n2 = 0 for all nodes except a the leaves of
146% the tree which represent colors present in the input image.
147%
148% The other pixel count, n1, indicates the total number of colors within
149% the cubic volume which the node represents. This includes n1 - n2
150% pixels whose colors should be defined by nodes at a lower level in the
151% tree.
152%
153% Assignment generates the output image from the pruned tree. The output
154% image consists of two parts: (1) A color map, which is an array of
155% color descriptions (RGB triples) for each color present in the output
156% image; (2) A pixel array, which represents each pixel as an index
157% into the color map array.
158%
159% First, the assignment phase makes one pass over the pruned color
160% description tree to establish the image's color map. For each node
161% with n2 > 0, it divides Sr, Sg, and Sb by n2 . This produces the mean
162% color of all pixels that classify no lower than this node. Each of
163% these colors becomes an entry in the color map.
164%
165% Finally, the assignment phase reclassifies each pixel in the pruned
166% tree to identify the deepest node containing the pixel's color. The
167% pixel's value in the pixel array becomes the index of this node's mean
168% color in the color map.
169%
170% This method is based on a similar algorithm written by Paul Raveling.
171%
172*/
173
174/*
175 Include declarations.
176*/
cristy4c08aed2011-07-01 19:47:50 +0000177#include "MagickCore/studio.h"
178#include "MagickCore/attribute.h"
179#include "MagickCore/cache-view.h"
180#include "MagickCore/color.h"
181#include "MagickCore/color-private.h"
182#include "MagickCore/colormap.h"
183#include "MagickCore/colorspace.h"
cristy510d06a2011-07-06 23:43:54 +0000184#include "MagickCore/colorspace-private.h"
cristy4c08aed2011-07-01 19:47:50 +0000185#include "MagickCore/enhance.h"
186#include "MagickCore/exception.h"
187#include "MagickCore/exception-private.h"
188#include "MagickCore/histogram.h"
189#include "MagickCore/image.h"
190#include "MagickCore/image-private.h"
191#include "MagickCore/list.h"
192#include "MagickCore/memory_.h"
193#include "MagickCore/monitor.h"
194#include "MagickCore/monitor-private.h"
195#include "MagickCore/option.h"
196#include "MagickCore/pixel-accessor.h"
cristy1d1b10f2012-06-02 20:02:55 +0000197#include "MagickCore/pixel-private.h"
cristy4c08aed2011-07-01 19:47:50 +0000198#include "MagickCore/quantize.h"
199#include "MagickCore/quantum.h"
200#include "MagickCore/quantum-private.h"
cristyac245f82012-05-05 17:13:57 +0000201#include "MagickCore/resource_.h"
cristy4c08aed2011-07-01 19:47:50 +0000202#include "MagickCore/string_.h"
203#include "MagickCore/thread-private.h"
cristy3ed852e2009-09-05 21:47:34 +0000204
205/*
206 Define declarations.
207*/
cristye1287512010-06-19 17:38:25 +0000208#if !defined(__APPLE__) && !defined(TARGET_OS_IPHONE)
cristy3ed852e2009-09-05 21:47:34 +0000209#define CacheShift 2
cristye1287512010-06-19 17:38:25 +0000210#else
211#define CacheShift 3
212#endif
cristy3ed852e2009-09-05 21:47:34 +0000213#define ErrorQueueLength 16
214#define MaxNodes 266817
215#define MaxTreeDepth 8
216#define NodesInAList 1920
217
218/*
219 Typdef declarations.
220*/
cristy101ab702011-10-13 13:06:32 +0000221typedef struct _RealPixelInfo
cristy3ed852e2009-09-05 21:47:34 +0000222{
cristya19f1d72012-08-07 18:24:38 +0000223 double
cristy3ed852e2009-09-05 21:47:34 +0000224 red,
225 green,
226 blue,
cristy4c08aed2011-07-01 19:47:50 +0000227 alpha;
cristy101ab702011-10-13 13:06:32 +0000228} RealPixelInfo;
cristy3ed852e2009-09-05 21:47:34 +0000229
230typedef struct _NodeInfo
231{
232 struct _NodeInfo
233 *parent,
234 *child[16];
235
236 MagickSizeType
237 number_unique;
238
cristy101ab702011-10-13 13:06:32 +0000239 RealPixelInfo
cristy3ed852e2009-09-05 21:47:34 +0000240 total_color;
241
cristya19f1d72012-08-07 18:24:38 +0000242 double
cristy3ed852e2009-09-05 21:47:34 +0000243 quantize_error;
244
cristybb503372010-05-27 20:51:26 +0000245 size_t
cristy3ed852e2009-09-05 21:47:34 +0000246 color_number,
247 id,
248 level;
249} NodeInfo;
250
251typedef struct _Nodes
252{
253 NodeInfo
254 *nodes;
255
256 struct _Nodes
257 *next;
258} Nodes;
259
260typedef struct _CubeInfo
261{
262 NodeInfo
263 *root;
264
cristybb503372010-05-27 20:51:26 +0000265 size_t
cristy3ed852e2009-09-05 21:47:34 +0000266 colors,
267 maximum_colors;
268
cristybb503372010-05-27 20:51:26 +0000269 ssize_t
cristy3ed852e2009-09-05 21:47:34 +0000270 transparent_index;
271
272 MagickSizeType
273 transparent_pixels;
274
cristy101ab702011-10-13 13:06:32 +0000275 RealPixelInfo
cristy3ed852e2009-09-05 21:47:34 +0000276 target;
277
cristya19f1d72012-08-07 18:24:38 +0000278 double
cristy3ed852e2009-09-05 21:47:34 +0000279 distance,
280 pruning_threshold,
281 next_threshold;
282
cristybb503372010-05-27 20:51:26 +0000283 size_t
cristy3ed852e2009-09-05 21:47:34 +0000284 nodes,
285 free_nodes,
286 color_number;
287
288 NodeInfo
289 *next_node;
290
291 Nodes
292 *node_queue;
293
cristybb503372010-05-27 20:51:26 +0000294 ssize_t
cristy3ed852e2009-09-05 21:47:34 +0000295 *cache;
296
cristy101ab702011-10-13 13:06:32 +0000297 RealPixelInfo
cristy3ed852e2009-09-05 21:47:34 +0000298 error[ErrorQueueLength];
299
cristya19f1d72012-08-07 18:24:38 +0000300 double
cristy3ed852e2009-09-05 21:47:34 +0000301 weights[ErrorQueueLength];
302
303 QuantizeInfo
304 *quantize_info;
305
306 MagickBooleanType
307 associate_alpha;
308
cristybb503372010-05-27 20:51:26 +0000309 ssize_t
cristy3ed852e2009-09-05 21:47:34 +0000310 x,
311 y;
312
cristybb503372010-05-27 20:51:26 +0000313 size_t
cristy3ed852e2009-09-05 21:47:34 +0000314 depth;
315
316 MagickOffsetType
317 offset;
318
319 MagickSizeType
320 span;
321} CubeInfo;
322
323/*
324 Method prototypes.
325*/
326static CubeInfo
cristybb503372010-05-27 20:51:26 +0000327 *GetCubeInfo(const QuantizeInfo *,const size_t,const size_t);
cristy3ed852e2009-09-05 21:47:34 +0000328
329static NodeInfo
cristybb503372010-05-27 20:51:26 +0000330 *GetNodeInfo(CubeInfo *,const size_t,const size_t,NodeInfo *);
cristy3ed852e2009-09-05 21:47:34 +0000331
332static MagickBooleanType
cristy018f07f2011-09-04 21:15:19 +0000333 AssignImageColors(Image *,CubeInfo *,ExceptionInfo *),
cristy3ed852e2009-09-05 21:47:34 +0000334 ClassifyImageColors(CubeInfo *,const Image *,ExceptionInfo *),
cristy8a11cb12011-10-19 23:53:34 +0000335 DitherImage(Image *,CubeInfo *,ExceptionInfo *),
cristy018f07f2011-09-04 21:15:19 +0000336 SetGrayscaleImage(Image *,ExceptionInfo *);
cristy3ed852e2009-09-05 21:47:34 +0000337
cristybb503372010-05-27 20:51:26 +0000338static size_t
cristy3ed852e2009-09-05 21:47:34 +0000339 DefineImageColormap(Image *,CubeInfo *,NodeInfo *);
340
341static void
342 ClosestColor(const Image *,CubeInfo *,const NodeInfo *),
343 DestroyCubeInfo(CubeInfo *),
344 PruneLevel(const Image *,CubeInfo *,const NodeInfo *),
345 PruneToCubeDepth(const Image *,CubeInfo *,const NodeInfo *),
346 ReduceImageColors(const Image *,CubeInfo *);
347
348/*
349%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
350% %
351% %
352% %
353% A c q u i r e Q u a n t i z e I n f o %
354% %
355% %
356% %
357%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
358%
359% AcquireQuantizeInfo() allocates the QuantizeInfo structure.
360%
361% The format of the AcquireQuantizeInfo method is:
362%
363% QuantizeInfo *AcquireQuantizeInfo(const ImageInfo *image_info)
364%
365% A description of each parameter follows:
366%
367% o image_info: the image info.
368%
369*/
370MagickExport QuantizeInfo *AcquireQuantizeInfo(const ImageInfo *image_info)
371{
372 QuantizeInfo
373 *quantize_info;
374
cristy73bd4a52010-10-05 11:24:23 +0000375 quantize_info=(QuantizeInfo *) AcquireMagickMemory(sizeof(*quantize_info));
cristy3ed852e2009-09-05 21:47:34 +0000376 if (quantize_info == (QuantizeInfo *) NULL)
377 ThrowFatalException(ResourceLimitFatalError,"MemoryAllocationFailed");
378 GetQuantizeInfo(quantize_info);
379 if (image_info != (ImageInfo *) NULL)
380 {
381 const char
382 *option;
383
cristycbda6112012-05-27 20:57:16 +0000384 quantize_info->dither_method=image_info->dither == MagickFalse ?
385 NoDitherMethod : RiemersmaDitherMethod;
cristy3ed852e2009-09-05 21:47:34 +0000386 option=GetImageOption(image_info,"dither");
387 if (option != (const char *) NULL)
cristy042ee782011-04-22 18:48:30 +0000388 quantize_info->dither_method=(DitherMethod) ParseCommandOption(
cristy3ed852e2009-09-05 21:47:34 +0000389 MagickDitherOptions,MagickFalse,option);
390 quantize_info->measure_error=image_info->verbose;
391 }
392 return(quantize_info);
393}
394
395/*
396%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
397% %
398% %
399% %
400+ A s s i g n I m a g e C o l o r s %
401% %
402% %
403% %
404%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
405%
406% AssignImageColors() generates the output image from the pruned tree. The
407% output image consists of two parts: (1) A color map, which is an array
408% of color descriptions (RGB triples) for each color present in the
409% output image; (2) A pixel array, which represents each pixel as an
410% index into the color map array.
411%
412% First, the assignment phase makes one pass over the pruned color
413% description tree to establish the image's color map. For each node
414% with n2 > 0, it divides Sr, Sg, and Sb by n2 . This produces the mean
415% color of all pixels that classify no lower than this node. Each of
416% these colors becomes an entry in the color map.
417%
418% Finally, the assignment phase reclassifies each pixel in the pruned
419% tree to identify the deepest node containing the pixel's color. The
420% pixel's value in the pixel array becomes the index of this node's mean
421% color in the color map.
422%
423% The format of the AssignImageColors() method is:
424%
425% MagickBooleanType AssignImageColors(Image *image,CubeInfo *cube_info)
426%
427% A description of each parameter follows.
428%
429% o image: the image.
430%
431% o cube_info: A pointer to the Cube structure.
432%
433*/
434
cristy4c08aed2011-07-01 19:47:50 +0000435static inline void AssociateAlphaPixel(const Image *image,
cristy101ab702011-10-13 13:06:32 +0000436 const CubeInfo *cube_info,const Quantum *pixel,RealPixelInfo *alpha_pixel)
cristy3ed852e2009-09-05 21:47:34 +0000437{
cristya19f1d72012-08-07 18:24:38 +0000438 double
cristy3ed852e2009-09-05 21:47:34 +0000439 alpha;
440
441 if ((cube_info->associate_alpha == MagickFalse) ||
cristy4c08aed2011-07-01 19:47:50 +0000442 (GetPixelAlpha(image,pixel)== OpaqueAlpha))
cristy3ed852e2009-09-05 21:47:34 +0000443 {
cristya19f1d72012-08-07 18:24:38 +0000444 alpha_pixel->red=(double) GetPixelRed(image,pixel);
445 alpha_pixel->green=(double) GetPixelGreen(image,pixel);
446 alpha_pixel->blue=(double) GetPixelBlue(image,pixel);
447 alpha_pixel->alpha=(double) GetPixelAlpha(image,pixel);
cristy3ed852e2009-09-05 21:47:34 +0000448 return;
449 }
cristya19f1d72012-08-07 18:24:38 +0000450 alpha=(double) (QuantumScale*GetPixelAlpha(image,pixel));
cristy4c08aed2011-07-01 19:47:50 +0000451 alpha_pixel->red=alpha*GetPixelRed(image,pixel);
452 alpha_pixel->green=alpha*GetPixelGreen(image,pixel);
453 alpha_pixel->blue=alpha*GetPixelBlue(image,pixel);
cristya19f1d72012-08-07 18:24:38 +0000454 alpha_pixel->alpha=(double) GetPixelAlpha(image,pixel);
cristy4c08aed2011-07-01 19:47:50 +0000455}
456
cristy101ab702011-10-13 13:06:32 +0000457static inline void AssociateAlphaPixelInfo(const Image *image,
458 const CubeInfo *cube_info,const PixelInfo *pixel,
459 RealPixelInfo *alpha_pixel)
cristy4c08aed2011-07-01 19:47:50 +0000460{
cristya19f1d72012-08-07 18:24:38 +0000461 double
cristy4c08aed2011-07-01 19:47:50 +0000462 alpha;
463
464 if ((cube_info->associate_alpha == MagickFalse) ||
465 (pixel->alpha == OpaqueAlpha))
466 {
cristya19f1d72012-08-07 18:24:38 +0000467 alpha_pixel->red=(double) pixel->red;
468 alpha_pixel->green=(double) pixel->green;
469 alpha_pixel->blue=(double) pixel->blue;
470 alpha_pixel->alpha=(double) pixel->alpha;
cristy4c08aed2011-07-01 19:47:50 +0000471 return;
472 }
cristya19f1d72012-08-07 18:24:38 +0000473 alpha=(double) (QuantumScale*pixel->alpha);
cristy4c08aed2011-07-01 19:47:50 +0000474 alpha_pixel->red=alpha*pixel->red;
475 alpha_pixel->green=alpha*pixel->green;
476 alpha_pixel->blue=alpha*pixel->blue;
cristya19f1d72012-08-07 18:24:38 +0000477 alpha_pixel->alpha=(double) pixel->alpha;
cristy3ed852e2009-09-05 21:47:34 +0000478}
479
cristya19f1d72012-08-07 18:24:38 +0000480static inline Quantum ClampToUnsignedQuantum(const double value)
cristy3ed852e2009-09-05 21:47:34 +0000481{
482 if (value <= 0.0)
483 return((Quantum) 0);
484 if (value >= QuantumRange)
cristy6e963d82012-06-19 15:23:24 +0000485 return(QuantumRange);
cristy3ed852e2009-09-05 21:47:34 +0000486 return((Quantum) (value+0.5));
487}
488
cristybb503372010-05-27 20:51:26 +0000489static inline size_t ColorToNodeId(const CubeInfo *cube_info,
cristy101ab702011-10-13 13:06:32 +0000490 const RealPixelInfo *pixel,size_t index)
cristy3ed852e2009-09-05 21:47:34 +0000491{
cristybb503372010-05-27 20:51:26 +0000492 size_t
cristy3ed852e2009-09-05 21:47:34 +0000493 id;
494
cristy4c08aed2011-07-01 19:47:50 +0000495 id=(size_t) (((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->red)) >> index) & 0x01) |
496 ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->green)) >> index) & 0x01) << 1 |
497 ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->blue)) >> index) & 0x01) << 2);
cristy3ed852e2009-09-05 21:47:34 +0000498 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +0000499 id|=((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->alpha)) >> index) & 0x1) << 3;
cristy3ed852e2009-09-05 21:47:34 +0000500 return(id);
501}
502
cristy018f07f2011-09-04 21:15:19 +0000503static MagickBooleanType AssignImageColors(Image *image,CubeInfo *cube_info,
504 ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +0000505{
506#define AssignImageTag "Assign/Image"
507
cristyecc31b12011-02-13 00:32:29 +0000508 ssize_t
cristyecc31b12011-02-13 00:32:29 +0000509 y;
510
cristy3ed852e2009-09-05 21:47:34 +0000511 /*
512 Allocate image colormap.
513 */
514 if ((cube_info->quantize_info->colorspace != UndefinedColorspace) &&
515 (cube_info->quantize_info->colorspace != CMYKColorspace))
516 (void) TransformImageColorspace((Image *) image,
cristye941a752011-10-15 01:52:48 +0000517 cube_info->quantize_info->colorspace,exception);
cristy3ed852e2009-09-05 21:47:34 +0000518 else
cristy3d9f5ba2012-06-26 13:37:31 +0000519 if (IssRGBCompatibleColorspace(image->colorspace) == MagickFalse)
cristyc511e882012-04-16 21:11:14 +0000520 (void) TransformImageColorspace((Image *) image,sRGBColorspace,exception);
cristy018f07f2011-09-04 21:15:19 +0000521 if (AcquireImageColormap(image,cube_info->colors,exception) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +0000522 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
523 image->filename);
524 image->colors=0;
525 cube_info->transparent_pixels=0;
526 cube_info->transparent_index=(-1);
527 (void) DefineImageColormap(image,cube_info,cube_info->root);
528 /*
529 Create a reduced color image.
530 */
cristycbda6112012-05-27 20:57:16 +0000531 if ((cube_info->quantize_info->dither_method != NoDitherMethod) &&
cristyd5acfd12010-06-15 00:11:38 +0000532 (cube_info->quantize_info->dither_method != NoDitherMethod))
cristy8a11cb12011-10-19 23:53:34 +0000533 (void) DitherImage(image,cube_info,exception);
cristy3ed852e2009-09-05 21:47:34 +0000534 else
535 {
cristy3ed852e2009-09-05 21:47:34 +0000536 CacheView
537 *image_view;
538
cristye9717ac2011-02-20 16:17:17 +0000539 MagickBooleanType
540 status;
541
542 status=MagickTrue;
cristydb070952012-04-20 14:33:00 +0000543 image_view=AcquireAuthenticCacheView(image,exception);
cristye9717ac2011-02-20 16:17:17 +0000544#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristyac245f82012-05-05 17:13:57 +0000545 #pragma omp parallel for schedule(static,4) shared(status) \
cristy4ee2b0c2012-05-15 00:30:35 +0000546 dynamic_number_threads(image,image->columns,image->rows,1)
cristye9717ac2011-02-20 16:17:17 +0000547#endif
cristybb503372010-05-27 20:51:26 +0000548 for (y=0; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +0000549 {
cristye9717ac2011-02-20 16:17:17 +0000550 CubeInfo
551 cube;
552
cristy4c08aed2011-07-01 19:47:50 +0000553 register Quantum
cristyc47d1f82009-11-26 01:44:43 +0000554 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +0000555
cristye9717ac2011-02-20 16:17:17 +0000556 register ssize_t
557 x;
558
559 ssize_t
560 count;
561
562 if (status == MagickFalse)
563 continue;
cristy3ed852e2009-09-05 21:47:34 +0000564 q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,
565 exception);
cristyacd2ed22011-08-30 01:44:23 +0000566 if (q == (Quantum *) NULL)
cristye9717ac2011-02-20 16:17:17 +0000567 {
568 status=MagickFalse;
569 continue;
570 }
cristye9717ac2011-02-20 16:17:17 +0000571 cube=(*cube_info);
cristybb503372010-05-27 20:51:26 +0000572 for (x=0; x < (ssize_t) image->columns; x+=count)
cristy3ed852e2009-09-05 21:47:34 +0000573 {
cristy101ab702011-10-13 13:06:32 +0000574 RealPixelInfo
cristye9717ac2011-02-20 16:17:17 +0000575 pixel;
576
577 register const NodeInfo
578 *node_info;
579
580 register ssize_t
581 i;
582
583 size_t
584 id,
585 index;
586
cristy3ed852e2009-09-05 21:47:34 +0000587 /*
588 Identify the deepest node containing the pixel's color.
589 */
cristybb503372010-05-27 20:51:26 +0000590 for (count=1; (x+count) < (ssize_t) image->columns; count++)
cristy4c08aed2011-07-01 19:47:50 +0000591 {
cristy101ab702011-10-13 13:06:32 +0000592 PixelInfo
cristy4c08aed2011-07-01 19:47:50 +0000593 packet;
594
cristy101ab702011-10-13 13:06:32 +0000595 GetPixelInfoPixel(image,q+count*GetPixelChannels(image),&packet);
cristy4c08aed2011-07-01 19:47:50 +0000596 if (IsPixelEquivalent(image,q,&packet) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +0000597 break;
cristy4c08aed2011-07-01 19:47:50 +0000598 }
599 AssociateAlphaPixel(image,&cube,q,&pixel);
cristye9717ac2011-02-20 16:17:17 +0000600 node_info=cube.root;
cristybb503372010-05-27 20:51:26 +0000601 for (index=MaxTreeDepth-1; (ssize_t) index > 0; index--)
cristy3ed852e2009-09-05 21:47:34 +0000602 {
cristye9717ac2011-02-20 16:17:17 +0000603 id=ColorToNodeId(&cube,&pixel,index);
cristy3ed852e2009-09-05 21:47:34 +0000604 if (node_info->child[id] == (NodeInfo *) NULL)
605 break;
606 node_info=node_info->child[id];
607 }
608 /*
609 Find closest color among siblings and their children.
610 */
cristye9717ac2011-02-20 16:17:17 +0000611 cube.target=pixel;
cristya19f1d72012-08-07 18:24:38 +0000612 cube.distance=(double) (4.0*(QuantumRange+1.0)*
cristy3ed852e2009-09-05 21:47:34 +0000613 (QuantumRange+1.0)+1.0);
cristye9717ac2011-02-20 16:17:17 +0000614 ClosestColor(image,&cube,node_info->parent);
615 index=cube.color_number;
cristybb503372010-05-27 20:51:26 +0000616 for (i=0; i < (ssize_t) count; i++)
cristy3ed852e2009-09-05 21:47:34 +0000617 {
618 if (image->storage_class == PseudoClass)
cristy4c08aed2011-07-01 19:47:50 +0000619 SetPixelIndex(image,(Quantum) index,q);
cristye9717ac2011-02-20 16:17:17 +0000620 if (cube.quantize_info->measure_error == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +0000621 {
cristye42f6582012-02-11 17:59:50 +0000622 SetPixelRed(image,ClampToQuantum(
623 image->colormap[index].red),q);
624 SetPixelGreen(image,ClampToQuantum(
625 image->colormap[index].green),q);
626 SetPixelBlue(image,ClampToQuantum(
627 image->colormap[index].blue),q);
cristye9717ac2011-02-20 16:17:17 +0000628 if (cube.associate_alpha != MagickFalse)
cristye42f6582012-02-11 17:59:50 +0000629 SetPixelAlpha(image,ClampToQuantum(
630 image->colormap[index].alpha),q);
cristy3ed852e2009-09-05 21:47:34 +0000631 }
cristyed231572011-07-14 02:18:59 +0000632 q+=GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +0000633 }
634 }
635 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
cristye9717ac2011-02-20 16:17:17 +0000636 status=MagickFalse;
637 if (image->progress_monitor != (MagickProgressMonitor) NULL)
638 {
639 MagickBooleanType
640 proceed;
641
642#if defined(MAGICKCORE_OPENMP_SUPPORT)
643 #pragma omp critical (MagickCore_AssignImageColors)
644#endif
645 proceed=SetImageProgress(image,AssignImageTag,(MagickOffsetType) y,
646 image->rows);
647 if (proceed == MagickFalse)
648 status=MagickFalse;
649 }
cristy3ed852e2009-09-05 21:47:34 +0000650 }
651 image_view=DestroyCacheView(image_view);
652 }
653 if (cube_info->quantize_info->measure_error != MagickFalse)
cristy8a11cb12011-10-19 23:53:34 +0000654 (void) GetImageQuantizeError(image,exception);
cristy3ed852e2009-09-05 21:47:34 +0000655 if ((cube_info->quantize_info->number_colors == 2) &&
656 (cube_info->quantize_info->colorspace == GRAYColorspace))
657 {
cristye42f6582012-02-11 17:59:50 +0000658 double
cristy3ed852e2009-09-05 21:47:34 +0000659 intensity;
660
cristy101ab702011-10-13 13:06:32 +0000661 register PixelInfo
cristyc47d1f82009-11-26 01:44:43 +0000662 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +0000663
cristye9717ac2011-02-20 16:17:17 +0000664 register ssize_t
665 i;
666
cristy3ed852e2009-09-05 21:47:34 +0000667 /*
668 Monochrome image.
669 */
670 q=image->colormap;
cristybb503372010-05-27 20:51:26 +0000671 for (i=0; i < (ssize_t) image->colors; i++)
cristy3ed852e2009-09-05 21:47:34 +0000672 {
cristya19f1d72012-08-07 18:24:38 +0000673 intensity=(double) ((double) GetPixelInfoIntensity(q) <
674 ((double) QuantumRange/2.0) ? 0 : QuantumRange);
cristy4c08aed2011-07-01 19:47:50 +0000675 q->red=intensity;
676 q->green=intensity;
677 q->blue=intensity;
cristy3ed852e2009-09-05 21:47:34 +0000678 q++;
679 }
680 }
cristyea1a8aa2011-10-20 13:24:06 +0000681 (void) SyncImage(image,exception);
cristy3ed852e2009-09-05 21:47:34 +0000682 if ((cube_info->quantize_info->colorspace != UndefinedColorspace) &&
683 (cube_info->quantize_info->colorspace != CMYKColorspace))
cristyc511e882012-04-16 21:11:14 +0000684 (void) TransformImageColorspace((Image *) image,sRGBColorspace,exception);
cristy3ed852e2009-09-05 21:47:34 +0000685 return(MagickTrue);
686}
687
688/*
689%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
690% %
691% %
692% %
693+ C l a s s i f y I m a g e C o l o r s %
694% %
695% %
696% %
697%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
698%
699% ClassifyImageColors() begins by initializing a color description tree
700% of sufficient depth to represent each possible input color in a leaf.
701% However, it is impractical to generate a fully-formed color
702% description tree in the storage_class phase for realistic values of
703% Cmax. If colors components in the input image are quantized to k-bit
704% precision, so that Cmax= 2k-1, the tree would need k levels below the
705% root node to allow representing each possible input color in a leaf.
706% This becomes prohibitive because the tree's total number of nodes is
707% 1 + sum(i=1,k,8k).
708%
709% A complete tree would require 19,173,961 nodes for k = 8, Cmax = 255.
710% Therefore, to avoid building a fully populated tree, QUANTIZE: (1)
711% Initializes data structures for nodes only as they are needed; (2)
712% Chooses a maximum depth for the tree as a function of the desired
713% number of colors in the output image (currently log2(colormap size)).
714%
715% For each pixel in the input image, storage_class scans downward from
716% the root of the color description tree. At each level of the tree it
717% identifies the single node which represents a cube in RGB space
718% containing It updates the following data for each such node:
719%
720% n1 : Number of pixels whose color is contained in the RGB cube
721% which this node represents;
722%
723% n2 : Number of pixels whose color is not represented in a node at
724% lower depth in the tree; initially, n2 = 0 for all nodes except
725% leaves of the tree.
726%
727% Sr, Sg, Sb : Sums of the red, green, and blue component values for
728% all pixels not classified at a lower depth. The combination of
729% these sums and n2 will ultimately characterize the mean color of a
730% set of pixels represented by this node.
731%
732% E: the distance squared in RGB space between each pixel contained
733% within a node and the nodes' center. This represents the quantization
734% error for a node.
735%
736% The format of the ClassifyImageColors() method is:
737%
738% MagickBooleanType ClassifyImageColors(CubeInfo *cube_info,
739% const Image *image,ExceptionInfo *exception)
740%
741% A description of each parameter follows.
742%
743% o cube_info: A pointer to the Cube structure.
744%
745% o image: the image.
746%
747*/
748
749static inline void SetAssociatedAlpha(const Image *image,CubeInfo *cube_info)
750{
751 MagickBooleanType
752 associate_alpha;
753
754 associate_alpha=image->matte;
755 if (cube_info->quantize_info->colorspace == TransparentColorspace)
756 associate_alpha=MagickFalse;
757 if ((cube_info->quantize_info->number_colors == 2) &&
758 (cube_info->quantize_info->colorspace == GRAYColorspace))
759 associate_alpha=MagickFalse;
760 cube_info->associate_alpha=associate_alpha;
761}
762
763static MagickBooleanType ClassifyImageColors(CubeInfo *cube_info,
764 const Image *image,ExceptionInfo *exception)
765{
766#define ClassifyImageTag "Classify/Image"
767
cristyc4c8d132010-01-07 01:58:38 +0000768 CacheView
769 *image_view;
770
cristy3ed852e2009-09-05 21:47:34 +0000771 MagickBooleanType
772 proceed;
773
cristya19f1d72012-08-07 18:24:38 +0000774 double
cristy3ed852e2009-09-05 21:47:34 +0000775 bisect;
776
777 NodeInfo
778 *node_info;
779
cristy101ab702011-10-13 13:06:32 +0000780 RealPixelInfo
cristy3ed852e2009-09-05 21:47:34 +0000781 error,
782 mid,
783 midpoint,
784 pixel;
785
786 size_t
cristyecc31b12011-02-13 00:32:29 +0000787 count,
cristy3ed852e2009-09-05 21:47:34 +0000788 id,
789 index,
790 level;
791
cristyecc31b12011-02-13 00:32:29 +0000792 ssize_t
793 y;
794
cristy3ed852e2009-09-05 21:47:34 +0000795 /*
796 Classify the first cube_info->maximum_colors colors to a tree depth of 8.
797 */
798 SetAssociatedAlpha(image,cube_info);
799 if ((cube_info->quantize_info->colorspace != UndefinedColorspace) &&
800 (cube_info->quantize_info->colorspace != CMYKColorspace))
801 (void) TransformImageColorspace((Image *) image,
cristye941a752011-10-15 01:52:48 +0000802 cube_info->quantize_info->colorspace,exception);
cristy3ed852e2009-09-05 21:47:34 +0000803 else
cristy3d9f5ba2012-06-26 13:37:31 +0000804 if (IssRGBCompatibleColorspace(image->colorspace) == MagickFalse)
cristyc511e882012-04-16 21:11:14 +0000805 (void) TransformImageColorspace((Image *) image,sRGBColorspace,exception);
cristya19f1d72012-08-07 18:24:38 +0000806 midpoint.red=(double) QuantumRange/2.0;
807 midpoint.green=(double) QuantumRange/2.0;
808 midpoint.blue=(double) QuantumRange/2.0;
809 midpoint.alpha=(double) QuantumRange/2.0;
cristy4c08aed2011-07-01 19:47:50 +0000810 error.alpha=0.0;
cristydb070952012-04-20 14:33:00 +0000811 image_view=AcquireVirtualCacheView(image,exception);
cristybb503372010-05-27 20:51:26 +0000812 for (y=0; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +0000813 {
cristy4c08aed2011-07-01 19:47:50 +0000814 register const Quantum
cristyc47d1f82009-11-26 01:44:43 +0000815 *restrict p;
cristy3ed852e2009-09-05 21:47:34 +0000816
cristybb503372010-05-27 20:51:26 +0000817 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +0000818 x;
819
820 p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception);
cristy4c08aed2011-07-01 19:47:50 +0000821 if (p == (const Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +0000822 break;
823 if (cube_info->nodes > MaxNodes)
824 {
825 /*
826 Prune one level if the color tree is too large.
827 */
828 PruneLevel(image,cube_info,cube_info->root);
829 cube_info->depth--;
830 }
cristybb503372010-05-27 20:51:26 +0000831 for (x=0; x < (ssize_t) image->columns; x+=(ssize_t) count)
cristy3ed852e2009-09-05 21:47:34 +0000832 {
833 /*
834 Start at the root and descend the color cube tree.
835 */
cristybb66d9c2010-10-09 01:40:31 +0000836 for (count=1; (x+(ssize_t) count) < (ssize_t) image->columns; count++)
cristy4c08aed2011-07-01 19:47:50 +0000837 {
cristy101ab702011-10-13 13:06:32 +0000838 PixelInfo
cristy4c08aed2011-07-01 19:47:50 +0000839 packet;
840
cristy101ab702011-10-13 13:06:32 +0000841 GetPixelInfoPixel(image,p+count*GetPixelChannels(image),&packet);
cristy4c08aed2011-07-01 19:47:50 +0000842 if (IsPixelEquivalent(image,p,&packet) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +0000843 break;
cristy4c08aed2011-07-01 19:47:50 +0000844 }
845 AssociateAlphaPixel(image,cube_info,p,&pixel);
cristy3ed852e2009-09-05 21:47:34 +0000846 index=MaxTreeDepth-1;
cristya19f1d72012-08-07 18:24:38 +0000847 bisect=((double) QuantumRange+1.0)/2.0;
cristy3ed852e2009-09-05 21:47:34 +0000848 mid=midpoint;
849 node_info=cube_info->root;
850 for (level=1; level <= MaxTreeDepth; level++)
851 {
852 bisect*=0.5;
853 id=ColorToNodeId(cube_info,&pixel,index);
854 mid.red+=(id & 1) != 0 ? bisect : -bisect;
855 mid.green+=(id & 2) != 0 ? bisect : -bisect;
856 mid.blue+=(id & 4) != 0 ? bisect : -bisect;
cristy4c08aed2011-07-01 19:47:50 +0000857 mid.alpha+=(id & 8) != 0 ? bisect : -bisect;
cristy3ed852e2009-09-05 21:47:34 +0000858 if (node_info->child[id] == (NodeInfo *) NULL)
859 {
860 /*
861 Set colors of new node to contain pixel.
862 */
863 node_info->child[id]=GetNodeInfo(cube_info,id,level,node_info);
864 if (node_info->child[id] == (NodeInfo *) NULL)
865 (void) ThrowMagickException(exception,GetMagickModule(),
anthonye5b39652012-04-21 05:37:29 +0000866 ResourceLimitError,"MemoryAllocationFailed","'%s'",
cristy3ed852e2009-09-05 21:47:34 +0000867 image->filename);
868 if (level == MaxTreeDepth)
869 cube_info->colors++;
870 }
871 /*
872 Approximate the quantization error represented by this node.
873 */
874 node_info=node_info->child[id];
875 error.red=QuantumScale*(pixel.red-mid.red);
876 error.green=QuantumScale*(pixel.green-mid.green);
877 error.blue=QuantumScale*(pixel.blue-mid.blue);
878 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +0000879 error.alpha=QuantumScale*(pixel.alpha-mid.alpha);
cristy3ed852e2009-09-05 21:47:34 +0000880 node_info->quantize_error+=sqrt((double) (count*error.red*error.red+
881 count*error.green*error.green+count*error.blue*error.blue+
cristy4c08aed2011-07-01 19:47:50 +0000882 count*error.alpha*error.alpha));
cristy3ed852e2009-09-05 21:47:34 +0000883 cube_info->root->quantize_error+=node_info->quantize_error;
884 index--;
885 }
886 /*
887 Sum RGB for this leaf for later derivation of the mean cube color.
888 */
889 node_info->number_unique+=count;
890 node_info->total_color.red+=count*QuantumScale*pixel.red;
891 node_info->total_color.green+=count*QuantumScale*pixel.green;
892 node_info->total_color.blue+=count*QuantumScale*pixel.blue;
893 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +0000894 node_info->total_color.alpha+=count*QuantumScale*pixel.alpha;
cristyed231572011-07-14 02:18:59 +0000895 p+=count*GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +0000896 }
897 if (cube_info->colors > cube_info->maximum_colors)
898 {
899 PruneToCubeDepth(image,cube_info,cube_info->root);
900 break;
901 }
cristycee97112010-05-28 00:44:52 +0000902 proceed=SetImageProgress(image,ClassifyImageTag,(MagickOffsetType) y,
903 image->rows);
cristy3ed852e2009-09-05 21:47:34 +0000904 if (proceed == MagickFalse)
905 break;
906 }
cristybb503372010-05-27 20:51:26 +0000907 for (y++; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +0000908 {
cristy4c08aed2011-07-01 19:47:50 +0000909 register const Quantum
cristyc47d1f82009-11-26 01:44:43 +0000910 *restrict p;
cristy3ed852e2009-09-05 21:47:34 +0000911
cristybb503372010-05-27 20:51:26 +0000912 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +0000913 x;
914
915 p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception);
cristy4c08aed2011-07-01 19:47:50 +0000916 if (p == (const Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +0000917 break;
918 if (cube_info->nodes > MaxNodes)
919 {
920 /*
921 Prune one level if the color tree is too large.
922 */
923 PruneLevel(image,cube_info,cube_info->root);
924 cube_info->depth--;
925 }
cristybb503372010-05-27 20:51:26 +0000926 for (x=0; x < (ssize_t) image->columns; x+=(ssize_t) count)
cristy3ed852e2009-09-05 21:47:34 +0000927 {
928 /*
929 Start at the root and descend the color cube tree.
930 */
cristybb66d9c2010-10-09 01:40:31 +0000931 for (count=1; (x+(ssize_t) count) < (ssize_t) image->columns; count++)
cristy4c08aed2011-07-01 19:47:50 +0000932 {
cristy101ab702011-10-13 13:06:32 +0000933 PixelInfo
cristy4c08aed2011-07-01 19:47:50 +0000934 packet;
935
cristy101ab702011-10-13 13:06:32 +0000936 GetPixelInfoPixel(image,p+count*GetPixelChannels(image),&packet);
cristy4c08aed2011-07-01 19:47:50 +0000937 if (IsPixelEquivalent(image,p,&packet) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +0000938 break;
cristy4c08aed2011-07-01 19:47:50 +0000939 }
940 AssociateAlphaPixel(image,cube_info,p,&pixel);
cristy3ed852e2009-09-05 21:47:34 +0000941 index=MaxTreeDepth-1;
cristya19f1d72012-08-07 18:24:38 +0000942 bisect=((double) QuantumRange+1.0)/2.0;
cristy3ed852e2009-09-05 21:47:34 +0000943 mid=midpoint;
944 node_info=cube_info->root;
945 for (level=1; level <= cube_info->depth; level++)
946 {
947 bisect*=0.5;
948 id=ColorToNodeId(cube_info,&pixel,index);
949 mid.red+=(id & 1) != 0 ? bisect : -bisect;
950 mid.green+=(id & 2) != 0 ? bisect : -bisect;
951 mid.blue+=(id & 4) != 0 ? bisect : -bisect;
cristy4c08aed2011-07-01 19:47:50 +0000952 mid.alpha+=(id & 8) != 0 ? bisect : -bisect;
cristy3ed852e2009-09-05 21:47:34 +0000953 if (node_info->child[id] == (NodeInfo *) NULL)
954 {
955 /*
956 Set colors of new node to contain pixel.
957 */
958 node_info->child[id]=GetNodeInfo(cube_info,id,level,node_info);
959 if (node_info->child[id] == (NodeInfo *) NULL)
960 (void) ThrowMagickException(exception,GetMagickModule(),
961 ResourceLimitError,"MemoryAllocationFailed","%s",
962 image->filename);
963 if (level == cube_info->depth)
964 cube_info->colors++;
965 }
966 /*
967 Approximate the quantization error represented by this node.
968 */
969 node_info=node_info->child[id];
970 error.red=QuantumScale*(pixel.red-mid.red);
971 error.green=QuantumScale*(pixel.green-mid.green);
972 error.blue=QuantumScale*(pixel.blue-mid.blue);
973 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +0000974 error.alpha=QuantumScale*(pixel.alpha-mid.alpha);
cristy3ed852e2009-09-05 21:47:34 +0000975 node_info->quantize_error+=sqrt((double) (count*error.red*error.red+
cristy83b6e792011-01-26 15:46:06 +0000976 count*error.green*error.green+count*error.blue*error.blue+
cristy4c08aed2011-07-01 19:47:50 +0000977 count*error.alpha*error.alpha));
cristy3ed852e2009-09-05 21:47:34 +0000978 cube_info->root->quantize_error+=node_info->quantize_error;
979 index--;
980 }
981 /*
982 Sum RGB for this leaf for later derivation of the mean cube color.
983 */
984 node_info->number_unique+=count;
985 node_info->total_color.red+=count*QuantumScale*pixel.red;
986 node_info->total_color.green+=count*QuantumScale*pixel.green;
987 node_info->total_color.blue+=count*QuantumScale*pixel.blue;
988 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +0000989 node_info->total_color.alpha+=count*QuantumScale*pixel.alpha;
cristyed231572011-07-14 02:18:59 +0000990 p+=count*GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +0000991 }
cristycee97112010-05-28 00:44:52 +0000992 proceed=SetImageProgress(image,ClassifyImageTag,(MagickOffsetType) y,
993 image->rows);
cristy3ed852e2009-09-05 21:47:34 +0000994 if (proceed == MagickFalse)
995 break;
996 }
997 image_view=DestroyCacheView(image_view);
998 if ((cube_info->quantize_info->colorspace != UndefinedColorspace) &&
999 (cube_info->quantize_info->colorspace != CMYKColorspace))
cristyc511e882012-04-16 21:11:14 +00001000 (void) TransformImageColorspace((Image *) image,sRGBColorspace,exception);
cristy3ed852e2009-09-05 21:47:34 +00001001 return(MagickTrue);
1002}
1003
1004/*
1005%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1006% %
1007% %
1008% %
1009% C l o n e Q u a n t i z e I n f o %
1010% %
1011% %
1012% %
1013%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1014%
1015% CloneQuantizeInfo() makes a duplicate of the given quantize info structure,
1016% or if quantize info is NULL, a new one.
1017%
1018% The format of the CloneQuantizeInfo method is:
1019%
1020% QuantizeInfo *CloneQuantizeInfo(const QuantizeInfo *quantize_info)
1021%
1022% A description of each parameter follows:
1023%
1024% o clone_info: Method CloneQuantizeInfo returns a duplicate of the given
1025% quantize info, or if image info is NULL a new one.
1026%
1027% o quantize_info: a structure of type info.
1028%
1029*/
1030MagickExport QuantizeInfo *CloneQuantizeInfo(const QuantizeInfo *quantize_info)
1031{
1032 QuantizeInfo
1033 *clone_info;
1034
cristy73bd4a52010-10-05 11:24:23 +00001035 clone_info=(QuantizeInfo *) AcquireMagickMemory(sizeof(*clone_info));
cristy3ed852e2009-09-05 21:47:34 +00001036 if (clone_info == (QuantizeInfo *) NULL)
1037 ThrowFatalException(ResourceLimitFatalError,"MemoryAllocationFailed");
1038 GetQuantizeInfo(clone_info);
1039 if (quantize_info == (QuantizeInfo *) NULL)
1040 return(clone_info);
1041 clone_info->number_colors=quantize_info->number_colors;
1042 clone_info->tree_depth=quantize_info->tree_depth;
cristy3ed852e2009-09-05 21:47:34 +00001043 clone_info->dither_method=quantize_info->dither_method;
1044 clone_info->colorspace=quantize_info->colorspace;
1045 clone_info->measure_error=quantize_info->measure_error;
1046 return(clone_info);
1047}
1048
1049/*
1050%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1051% %
1052% %
1053% %
1054+ C l o s e s t C o l o r %
1055% %
1056% %
1057% %
1058%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1059%
1060% ClosestColor() traverses the color cube tree at a particular node and
1061% determines which colormap entry best represents the input color.
1062%
1063% The format of the ClosestColor method is:
1064%
1065% void ClosestColor(const Image *image,CubeInfo *cube_info,
1066% const NodeInfo *node_info)
1067%
1068% A description of each parameter follows.
1069%
1070% o image: the image.
1071%
1072% o cube_info: A pointer to the Cube structure.
1073%
1074% o node_info: the address of a structure of type NodeInfo which points to a
1075% node in the color cube tree that is to be pruned.
1076%
1077*/
1078static void ClosestColor(const Image *image,CubeInfo *cube_info,
1079 const NodeInfo *node_info)
1080{
cristybb503372010-05-27 20:51:26 +00001081 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00001082 i;
1083
cristybb503372010-05-27 20:51:26 +00001084 size_t
cristy3ed852e2009-09-05 21:47:34 +00001085 number_children;
1086
1087 /*
1088 Traverse any children.
1089 */
1090 number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL;
cristybb503372010-05-27 20:51:26 +00001091 for (i=0; i < (ssize_t) number_children; i++)
cristy3ed852e2009-09-05 21:47:34 +00001092 if (node_info->child[i] != (NodeInfo *) NULL)
1093 ClosestColor(image,cube_info,node_info->child[i]);
1094 if (node_info->number_unique != 0)
1095 {
cristya19f1d72012-08-07 18:24:38 +00001096 double
cristy3ed852e2009-09-05 21:47:34 +00001097 pixel;
1098
cristya19f1d72012-08-07 18:24:38 +00001099 register double
cristy3ed852e2009-09-05 21:47:34 +00001100 alpha,
1101 beta,
1102 distance;
1103
cristy101ab702011-10-13 13:06:32 +00001104 register PixelInfo
cristyc47d1f82009-11-26 01:44:43 +00001105 *restrict p;
cristy3ed852e2009-09-05 21:47:34 +00001106
cristy101ab702011-10-13 13:06:32 +00001107 register RealPixelInfo
cristyc47d1f82009-11-26 01:44:43 +00001108 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +00001109
1110 /*
1111 Determine if this color is "closest".
1112 */
1113 p=image->colormap+node_info->color_number;
1114 q=(&cube_info->target);
1115 alpha=1.0;
1116 beta=1.0;
cristy847620f2011-02-09 02:24:21 +00001117 if (cube_info->associate_alpha != MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +00001118 {
cristya19f1d72012-08-07 18:24:38 +00001119 alpha=(double) (QuantumScale*p->alpha);
1120 beta=(double) (QuantumScale*q->alpha);
cristy3ed852e2009-09-05 21:47:34 +00001121 }
cristy4c08aed2011-07-01 19:47:50 +00001122 pixel=alpha*p->red-beta*q->red;
cristy3ed852e2009-09-05 21:47:34 +00001123 distance=pixel*pixel;
cristy36fbc3b2011-02-09 02:30:04 +00001124 if (distance <= cube_info->distance)
cristy3ed852e2009-09-05 21:47:34 +00001125 {
cristy4c08aed2011-07-01 19:47:50 +00001126 pixel=alpha*p->green-beta*q->green;
cristy3ed852e2009-09-05 21:47:34 +00001127 distance+=pixel*pixel;
cristy36fbc3b2011-02-09 02:30:04 +00001128 if (distance <= cube_info->distance)
cristy3ed852e2009-09-05 21:47:34 +00001129 {
cristy4c08aed2011-07-01 19:47:50 +00001130 pixel=alpha*p->blue-beta*q->blue;
cristy3ed852e2009-09-05 21:47:34 +00001131 distance+=pixel*pixel;
cristy36fbc3b2011-02-09 02:30:04 +00001132 if (distance <= cube_info->distance)
cristy3ed852e2009-09-05 21:47:34 +00001133 {
1134 pixel=alpha-beta;
1135 distance+=pixel*pixel;
cristyc4080402011-02-09 02:55:58 +00001136 if (distance <= cube_info->distance)
cristy3ed852e2009-09-05 21:47:34 +00001137 {
1138 cube_info->distance=distance;
1139 cube_info->color_number=node_info->color_number;
1140 }
1141 }
1142 }
1143 }
1144 }
1145}
1146
1147/*
1148%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1149% %
1150% %
1151% %
1152% C o m p r e s s I m a g e C o l o r m a p %
1153% %
1154% %
1155% %
1156%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1157%
1158% CompressImageColormap() compresses an image colormap by removing any
1159% duplicate or unused color entries.
1160%
1161% The format of the CompressImageColormap method is:
1162%
cristy018f07f2011-09-04 21:15:19 +00001163% MagickBooleanType CompressImageColormap(Image *image,
1164% ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001165%
1166% A description of each parameter follows:
1167%
1168% o image: the image.
1169%
cristy018f07f2011-09-04 21:15:19 +00001170% o exception: return any errors or warnings in this structure.
1171%
cristy3ed852e2009-09-05 21:47:34 +00001172*/
cristy018f07f2011-09-04 21:15:19 +00001173MagickExport MagickBooleanType CompressImageColormap(Image *image,
1174 ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001175{
1176 QuantizeInfo
1177 quantize_info;
1178
1179 assert(image != (Image *) NULL);
1180 assert(image->signature == MagickSignature);
1181 if (image->debug != MagickFalse)
1182 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename);
cristy8a11cb12011-10-19 23:53:34 +00001183 if (IsPaletteImage(image,exception) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +00001184 return(MagickFalse);
1185 GetQuantizeInfo(&quantize_info);
1186 quantize_info.number_colors=image->colors;
1187 quantize_info.tree_depth=MaxTreeDepth;
cristy018f07f2011-09-04 21:15:19 +00001188 return(QuantizeImage(&quantize_info,image,exception));
cristy3ed852e2009-09-05 21:47:34 +00001189}
1190
1191/*
1192%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1193% %
1194% %
1195% %
1196+ D e f i n e I m a g e C o l o r m a p %
1197% %
1198% %
1199% %
1200%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1201%
1202% DefineImageColormap() traverses the color cube tree and notes each colormap
1203% entry. A colormap entry is any node in the color cube tree where the
1204% of unique colors is not zero. DefineImageColormap() returns the number of
1205% colors in the image colormap.
1206%
1207% The format of the DefineImageColormap method is:
1208%
cristybb503372010-05-27 20:51:26 +00001209% size_t DefineImageColormap(Image *image,CubeInfo *cube_info,
cristy3ed852e2009-09-05 21:47:34 +00001210% NodeInfo *node_info)
1211%
1212% A description of each parameter follows.
1213%
1214% o image: the image.
1215%
1216% o cube_info: A pointer to the Cube structure.
1217%
1218% o node_info: the address of a structure of type NodeInfo which points to a
1219% node in the color cube tree that is to be pruned.
1220%
1221*/
cristybb503372010-05-27 20:51:26 +00001222static size_t DefineImageColormap(Image *image,CubeInfo *cube_info,
cristy3ed852e2009-09-05 21:47:34 +00001223 NodeInfo *node_info)
1224{
cristybb503372010-05-27 20:51:26 +00001225 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00001226 i;
1227
cristybb503372010-05-27 20:51:26 +00001228 size_t
cristy3ed852e2009-09-05 21:47:34 +00001229 number_children;
1230
1231 /*
1232 Traverse any children.
1233 */
1234 number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL;
cristybb503372010-05-27 20:51:26 +00001235 for (i=0; i < (ssize_t) number_children; i++)
cristy3ed852e2009-09-05 21:47:34 +00001236 if (node_info->child[i] != (NodeInfo *) NULL)
cristycee97112010-05-28 00:44:52 +00001237 (void) DefineImageColormap(image,cube_info,node_info->child[i]);
cristy3ed852e2009-09-05 21:47:34 +00001238 if (node_info->number_unique != 0)
1239 {
cristya19f1d72012-08-07 18:24:38 +00001240 register double
cristy3ed852e2009-09-05 21:47:34 +00001241 alpha;
1242
cristy101ab702011-10-13 13:06:32 +00001243 register PixelInfo
cristyc47d1f82009-11-26 01:44:43 +00001244 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +00001245
1246 /*
1247 Colormap entry is defined by the mean color in this cube.
1248 */
1249 q=image->colormap+image->colors;
cristya19f1d72012-08-07 18:24:38 +00001250 alpha=(double) ((MagickOffsetType) node_info->number_unique);
cristyc58380a2012-06-03 15:12:30 +00001251 alpha=MagickEpsilonReciprocal(alpha);
cristy3ed852e2009-09-05 21:47:34 +00001252 if (cube_info->associate_alpha == MagickFalse)
1253 {
cristy8cd03c32012-07-07 18:57:59 +00001254 q->red=(double) ClampToQuantum(alpha*QuantumRange*
1255 node_info->total_color.red);
1256 q->green=(double) ClampToQuantum(alpha*QuantumRange*
1257 node_info->total_color.green);
1258 q->blue=(double) ClampToQuantum(alpha*(double) QuantumRange*
1259 node_info->total_color.blue);
cristy4c08aed2011-07-01 19:47:50 +00001260 q->alpha=OpaqueAlpha;
cristy3ed852e2009-09-05 21:47:34 +00001261 }
1262 else
1263 {
cristya19f1d72012-08-07 18:24:38 +00001264 double
cristy3ed852e2009-09-05 21:47:34 +00001265 opacity;
1266
cristya19f1d72012-08-07 18:24:38 +00001267 opacity=(double) (alpha*QuantumRange*
cristy4c08aed2011-07-01 19:47:50 +00001268 node_info->total_color.alpha);
cristye42f6582012-02-11 17:59:50 +00001269 q->alpha=(double) ClampToQuantum(opacity);
cristy4c08aed2011-07-01 19:47:50 +00001270 if (q->alpha == OpaqueAlpha)
cristy3ed852e2009-09-05 21:47:34 +00001271 {
cristy8cd03c32012-07-07 18:57:59 +00001272 q->red=(double) ClampToQuantum(alpha*QuantumRange*
1273 node_info->total_color.red);
1274 q->green=(double) ClampToQuantum(alpha*QuantumRange*
1275 node_info->total_color.green);
1276 q->blue=(double) ClampToQuantum(alpha*QuantumRange*
1277 node_info->total_color.blue);
cristy3ed852e2009-09-05 21:47:34 +00001278 }
1279 else
1280 {
cristya19f1d72012-08-07 18:24:38 +00001281 double
cristy3ed852e2009-09-05 21:47:34 +00001282 gamma;
1283
cristya19f1d72012-08-07 18:24:38 +00001284 gamma=(double) (QuantumScale*q->alpha);
cristyc58380a2012-06-03 15:12:30 +00001285 gamma=MagickEpsilonReciprocal(gamma);
cristy8cd03c32012-07-07 18:57:59 +00001286 q->red=(double) ClampToQuantum(alpha*gamma*QuantumRange*
1287 node_info->total_color.red);
1288 q->green=(double) ClampToQuantum(alpha*gamma*QuantumRange*
1289 node_info->total_color.green);
1290 q->blue=(double) ClampToQuantum(alpha*gamma*QuantumRange*
1291 node_info->total_color.blue);
cristy3ed852e2009-09-05 21:47:34 +00001292 if (node_info->number_unique > cube_info->transparent_pixels)
1293 {
1294 cube_info->transparent_pixels=node_info->number_unique;
cristybb503372010-05-27 20:51:26 +00001295 cube_info->transparent_index=(ssize_t) image->colors;
cristy3ed852e2009-09-05 21:47:34 +00001296 }
1297 }
1298 }
1299 node_info->color_number=image->colors++;
1300 }
1301 return(image->colors);
1302}
1303
1304/*
1305%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1306% %
1307% %
1308% %
1309+ D e s t r o y C u b e I n f o %
1310% %
1311% %
1312% %
1313%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1314%
1315% DestroyCubeInfo() deallocates memory associated with an image.
1316%
1317% The format of the DestroyCubeInfo method is:
1318%
1319% DestroyCubeInfo(CubeInfo *cube_info)
1320%
1321% A description of each parameter follows:
1322%
1323% o cube_info: the address of a structure of type CubeInfo.
1324%
1325*/
1326static void DestroyCubeInfo(CubeInfo *cube_info)
1327{
1328 register Nodes
1329 *nodes;
1330
1331 /*
1332 Release color cube tree storage.
1333 */
1334 do
1335 {
1336 nodes=cube_info->node_queue->next;
1337 cube_info->node_queue->nodes=(NodeInfo *) RelinquishMagickMemory(
1338 cube_info->node_queue->nodes);
1339 cube_info->node_queue=(Nodes *) RelinquishMagickMemory(
1340 cube_info->node_queue);
1341 cube_info->node_queue=nodes;
1342 } while (cube_info->node_queue != (Nodes *) NULL);
cristybb503372010-05-27 20:51:26 +00001343 if (cube_info->cache != (ssize_t *) NULL)
1344 cube_info->cache=(ssize_t *) RelinquishMagickMemory(cube_info->cache);
cristy3ed852e2009-09-05 21:47:34 +00001345 cube_info->quantize_info=DestroyQuantizeInfo(cube_info->quantize_info);
1346 cube_info=(CubeInfo *) RelinquishMagickMemory(cube_info);
1347}
1348
1349/*
1350%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1351% %
1352% %
1353% %
1354% D e s t r o y Q u a n t i z e I n f o %
1355% %
1356% %
1357% %
1358%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1359%
1360% DestroyQuantizeInfo() deallocates memory associated with an QuantizeInfo
1361% structure.
1362%
1363% The format of the DestroyQuantizeInfo method is:
1364%
1365% QuantizeInfo *DestroyQuantizeInfo(QuantizeInfo *quantize_info)
1366%
1367% A description of each parameter follows:
1368%
1369% o quantize_info: Specifies a pointer to an QuantizeInfo structure.
1370%
1371*/
1372MagickExport QuantizeInfo *DestroyQuantizeInfo(QuantizeInfo *quantize_info)
1373{
1374 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"...");
1375 assert(quantize_info != (QuantizeInfo *) NULL);
1376 assert(quantize_info->signature == MagickSignature);
1377 quantize_info->signature=(~MagickSignature);
1378 quantize_info=(QuantizeInfo *) RelinquishMagickMemory(quantize_info);
1379 return(quantize_info);
1380}
1381
1382/*
1383%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1384% %
1385% %
1386% %
1387+ D i t h e r I m a g e %
1388% %
1389% %
1390% %
1391%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1392%
1393% DitherImage() distributes the difference between an original image and
1394% the corresponding color reduced algorithm to neighboring pixels using
1395% serpentine-scan Floyd-Steinberg error diffusion. DitherImage returns
1396% MagickTrue if the image is dithered otherwise MagickFalse.
1397%
1398% The format of the DitherImage method is:
1399%
cristy8a11cb12011-10-19 23:53:34 +00001400% MagickBooleanType DitherImage(Image *image,CubeInfo *cube_info,
1401% ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001402%
1403% A description of each parameter follows.
1404%
1405% o image: the image.
1406%
1407% o cube_info: A pointer to the Cube structure.
1408%
cristy8a11cb12011-10-19 23:53:34 +00001409% o exception: return any errors or warnings in this structure.
1410%
cristy3ed852e2009-09-05 21:47:34 +00001411*/
1412
cristy101ab702011-10-13 13:06:32 +00001413static RealPixelInfo **DestroyPixelThreadSet(RealPixelInfo **pixels)
cristye9717ac2011-02-20 16:17:17 +00001414{
1415 register ssize_t
1416 i;
1417
cristy101ab702011-10-13 13:06:32 +00001418 assert(pixels != (RealPixelInfo **) NULL);
cristyac245f82012-05-05 17:13:57 +00001419 for (i=0; i < (ssize_t) GetMagickResourceLimit(ThreadResource); i++)
cristy101ab702011-10-13 13:06:32 +00001420 if (pixels[i] != (RealPixelInfo *) NULL)
1421 pixels[i]=(RealPixelInfo *) RelinquishMagickMemory(pixels[i]);
1422 pixels=(RealPixelInfo **) RelinquishMagickMemory(pixels);
cristye9717ac2011-02-20 16:17:17 +00001423 return(pixels);
1424}
1425
cristy101ab702011-10-13 13:06:32 +00001426static RealPixelInfo **AcquirePixelThreadSet(const size_t count)
cristye9717ac2011-02-20 16:17:17 +00001427{
cristy101ab702011-10-13 13:06:32 +00001428 RealPixelInfo
cristye9717ac2011-02-20 16:17:17 +00001429 **pixels;
1430
1431 register ssize_t
1432 i;
1433
1434 size_t
1435 number_threads;
1436
cristy9357bdd2012-07-30 12:28:34 +00001437 number_threads=(size_t) GetMagickResourceLimit(ThreadResource);
cristy101ab702011-10-13 13:06:32 +00001438 pixels=(RealPixelInfo **) AcquireQuantumMemory(number_threads,
cristye9717ac2011-02-20 16:17:17 +00001439 sizeof(*pixels));
cristy101ab702011-10-13 13:06:32 +00001440 if (pixels == (RealPixelInfo **) NULL)
1441 return((RealPixelInfo **) NULL);
cristye9717ac2011-02-20 16:17:17 +00001442 (void) ResetMagickMemory(pixels,0,number_threads*sizeof(*pixels));
1443 for (i=0; i < (ssize_t) number_threads; i++)
1444 {
cristy101ab702011-10-13 13:06:32 +00001445 pixels[i]=(RealPixelInfo *) AcquireQuantumMemory(count,
cristye9717ac2011-02-20 16:17:17 +00001446 2*sizeof(**pixels));
cristy101ab702011-10-13 13:06:32 +00001447 if (pixels[i] == (RealPixelInfo *) NULL)
cristye9717ac2011-02-20 16:17:17 +00001448 return(DestroyPixelThreadSet(pixels));
1449 }
1450 return(pixels);
1451}
1452
cristyca972de2010-06-20 23:37:02 +00001453static inline ssize_t CacheOffset(CubeInfo *cube_info,
cristy101ab702011-10-13 13:06:32 +00001454 const RealPixelInfo *pixel)
cristyca972de2010-06-20 23:37:02 +00001455{
1456#define RedShift(pixel) (((pixel) >> CacheShift) << (0*(8-CacheShift)))
1457#define GreenShift(pixel) (((pixel) >> CacheShift) << (1*(8-CacheShift)))
1458#define BlueShift(pixel) (((pixel) >> CacheShift) << (2*(8-CacheShift)))
1459#define AlphaShift(pixel) (((pixel) >> CacheShift) << (3*(8-CacheShift)))
1460
1461 ssize_t
1462 offset;
1463
1464 offset=(ssize_t)
cristy15893a42010-11-20 18:57:15 +00001465 (RedShift(ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->red))) |
cristyca972de2010-06-20 23:37:02 +00001466 GreenShift(ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->green))) |
cristy15893a42010-11-20 18:57:15 +00001467 BlueShift(ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->blue))));
cristyca972de2010-06-20 23:37:02 +00001468 if (cube_info->associate_alpha != MagickFalse)
cristy15893a42010-11-20 18:57:15 +00001469 offset|=AlphaShift(ScaleQuantumToChar(ClampToUnsignedQuantum(
cristy4c08aed2011-07-01 19:47:50 +00001470 pixel->alpha)));
cristyca972de2010-06-20 23:37:02 +00001471 return(offset);
1472}
1473
cristy8a11cb12011-10-19 23:53:34 +00001474static MagickBooleanType FloydSteinbergDither(Image *image,CubeInfo *cube_info,
1475 ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001476{
1477#define DitherImageTag "Dither/Image"
1478
cristyc4c8d132010-01-07 01:58:38 +00001479 CacheView
1480 *image_view;
1481
cristy3ed852e2009-09-05 21:47:34 +00001482 MagickBooleanType
cristye9717ac2011-02-20 16:17:17 +00001483 status;
cristy3ed852e2009-09-05 21:47:34 +00001484
cristy101ab702011-10-13 13:06:32 +00001485 RealPixelInfo
cristye9717ac2011-02-20 16:17:17 +00001486 **pixels;
cristy3ed852e2009-09-05 21:47:34 +00001487
cristy847620f2011-02-09 02:24:21 +00001488 ssize_t
cristy847620f2011-02-09 02:24:21 +00001489 y;
1490
cristy3ed852e2009-09-05 21:47:34 +00001491 /*
1492 Distribute quantization error using Floyd-Steinberg.
1493 */
cristye9717ac2011-02-20 16:17:17 +00001494 pixels=AcquirePixelThreadSet(image->columns);
cristy101ab702011-10-13 13:06:32 +00001495 if (pixels == (RealPixelInfo **) NULL)
cristy3ed852e2009-09-05 21:47:34 +00001496 return(MagickFalse);
cristye9717ac2011-02-20 16:17:17 +00001497 status=MagickTrue;
cristydb070952012-04-20 14:33:00 +00001498 image_view=AcquireAuthenticCacheView(image,exception);
cristybb503372010-05-27 20:51:26 +00001499 for (y=0; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +00001500 {
cristye9717ac2011-02-20 16:17:17 +00001501 const int
1502 id = GetOpenMPThreadId();
1503
1504 CubeInfo
1505 cube;
1506
cristy101ab702011-10-13 13:06:32 +00001507 RealPixelInfo
cristye9717ac2011-02-20 16:17:17 +00001508 *current,
1509 *previous;
1510
cristy4c08aed2011-07-01 19:47:50 +00001511 register Quantum
cristyecc31b12011-02-13 00:32:29 +00001512 *restrict q;
1513
cristybb503372010-05-27 20:51:26 +00001514 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00001515 x;
1516
cristye9717ac2011-02-20 16:17:17 +00001517 size_t
1518 index;
1519
1520 ssize_t
1521 v;
1522
1523 if (status == MagickFalse)
1524 continue;
cristy3ed852e2009-09-05 21:47:34 +00001525 q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,exception);
cristyacd2ed22011-08-30 01:44:23 +00001526 if (q == (Quantum *) NULL)
cristye9717ac2011-02-20 16:17:17 +00001527 {
1528 status=MagickFalse;
cristy00cbdd62011-02-20 17:29:26 +00001529 continue;
cristye9717ac2011-02-20 16:17:17 +00001530 }
cristyed231572011-07-14 02:18:59 +00001531 q+=(y & 0x01)*image->columns*GetPixelChannels(image);
cristye9717ac2011-02-20 16:17:17 +00001532 cube=(*cube_info);
1533 current=pixels[id]+(y & 0x01)*image->columns;
1534 previous=pixels[id]+((y+1) & 0x01)*image->columns;
cristy4c08aed2011-07-01 19:47:50 +00001535 v=(ssize_t) ((y & 0x01) != 0 ? -1 : 1);
cristybb503372010-05-27 20:51:26 +00001536 for (x=0; x < (ssize_t) image->columns; x++)
cristy3ed852e2009-09-05 21:47:34 +00001537 {
cristy101ab702011-10-13 13:06:32 +00001538 RealPixelInfo
cristye9717ac2011-02-20 16:17:17 +00001539 color,
1540 pixel;
1541
1542 register ssize_t
1543 i;
1544
1545 ssize_t
1546 u;
1547
cristyed231572011-07-14 02:18:59 +00001548 q-=(y & 0x01)*GetPixelChannels(image);
cristy4c08aed2011-07-01 19:47:50 +00001549 u=(y & 0x01) != 0 ? (ssize_t) image->columns-1-x : x;
1550 AssociateAlphaPixel(image,&cube,q,&pixel);
cristy3ed852e2009-09-05 21:47:34 +00001551 if (x > 0)
1552 {
1553 pixel.red+=7*current[u-v].red/16;
1554 pixel.green+=7*current[u-v].green/16;
1555 pixel.blue+=7*current[u-v].blue/16;
cristye9717ac2011-02-20 16:17:17 +00001556 if (cube.associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001557 pixel.alpha+=7*current[u-v].alpha/16;
cristy3ed852e2009-09-05 21:47:34 +00001558 }
1559 if (y > 0)
1560 {
cristybb503372010-05-27 20:51:26 +00001561 if (x < (ssize_t) (image->columns-1))
cristy3ed852e2009-09-05 21:47:34 +00001562 {
1563 pixel.red+=previous[u+v].red/16;
1564 pixel.green+=previous[u+v].green/16;
1565 pixel.blue+=previous[u+v].blue/16;
cristye9717ac2011-02-20 16:17:17 +00001566 if (cube.associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001567 pixel.alpha+=previous[u+v].alpha/16;
cristy3ed852e2009-09-05 21:47:34 +00001568 }
1569 pixel.red+=5*previous[u].red/16;
1570 pixel.green+=5*previous[u].green/16;
1571 pixel.blue+=5*previous[u].blue/16;
cristye9717ac2011-02-20 16:17:17 +00001572 if (cube.associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001573 pixel.alpha+=5*previous[u].alpha/16;
cristy3ed852e2009-09-05 21:47:34 +00001574 if (x > 0)
1575 {
1576 pixel.red+=3*previous[u-v].red/16;
1577 pixel.green+=3*previous[u-v].green/16;
1578 pixel.blue+=3*previous[u-v].blue/16;
cristye9717ac2011-02-20 16:17:17 +00001579 if (cube.associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001580 pixel.alpha+=3*previous[u-v].alpha/16;
cristy3ed852e2009-09-05 21:47:34 +00001581 }
1582 }
cristya19f1d72012-08-07 18:24:38 +00001583 pixel.red=(double) ClampToUnsignedQuantum(pixel.red);
1584 pixel.green=(double) ClampToUnsignedQuantum(pixel.green);
1585 pixel.blue=(double) ClampToUnsignedQuantum(pixel.blue);
cristye9717ac2011-02-20 16:17:17 +00001586 if (cube.associate_alpha != MagickFalse)
cristya19f1d72012-08-07 18:24:38 +00001587 pixel.alpha=(double) ClampToUnsignedQuantum(pixel.alpha);
cristye9717ac2011-02-20 16:17:17 +00001588 i=CacheOffset(&cube,&pixel);
1589 if (cube.cache[i] < 0)
cristy3ed852e2009-09-05 21:47:34 +00001590 {
1591 register NodeInfo
1592 *node_info;
1593
cristybb503372010-05-27 20:51:26 +00001594 register size_t
cristy3ed852e2009-09-05 21:47:34 +00001595 id;
1596
1597 /*
1598 Identify the deepest node containing the pixel's color.
1599 */
cristye9717ac2011-02-20 16:17:17 +00001600 node_info=cube.root;
cristybb503372010-05-27 20:51:26 +00001601 for (index=MaxTreeDepth-1; (ssize_t) index > 0; index--)
cristy3ed852e2009-09-05 21:47:34 +00001602 {
cristye9717ac2011-02-20 16:17:17 +00001603 id=ColorToNodeId(&cube,&pixel,index);
cristy3ed852e2009-09-05 21:47:34 +00001604 if (node_info->child[id] == (NodeInfo *) NULL)
1605 break;
1606 node_info=node_info->child[id];
1607 }
1608 /*
1609 Find closest color among siblings and their children.
1610 */
cristye9717ac2011-02-20 16:17:17 +00001611 cube.target=pixel;
cristya19f1d72012-08-07 18:24:38 +00001612 cube.distance=(double) (4.0*(QuantumRange+1.0)*(QuantumRange+
cristy3ed852e2009-09-05 21:47:34 +00001613 1.0)+1.0);
cristye9717ac2011-02-20 16:17:17 +00001614 ClosestColor(image,&cube,node_info->parent);
1615 cube.cache[i]=(ssize_t) cube.color_number;
cristy3ed852e2009-09-05 21:47:34 +00001616 }
1617 /*
1618 Assign pixel to closest colormap entry.
1619 */
cristye9717ac2011-02-20 16:17:17 +00001620 index=(size_t) cube.cache[i];
cristy3ed852e2009-09-05 21:47:34 +00001621 if (image->storage_class == PseudoClass)
cristy4c08aed2011-07-01 19:47:50 +00001622 SetPixelIndex(image,(Quantum) index,q);
cristye9717ac2011-02-20 16:17:17 +00001623 if (cube.quantize_info->measure_error == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +00001624 {
cristye42f6582012-02-11 17:59:50 +00001625 SetPixelRed(image,ClampToQuantum(image->colormap[index].red),q);
1626 SetPixelGreen(image,ClampToQuantum(image->colormap[index].green),q);
1627 SetPixelBlue(image,ClampToQuantum(image->colormap[index].blue),q);
cristye9717ac2011-02-20 16:17:17 +00001628 if (cube.associate_alpha != MagickFalse)
cristye42f6582012-02-11 17:59:50 +00001629 SetPixelAlpha(image,ClampToQuantum(image->colormap[index].alpha),q);
cristy3ed852e2009-09-05 21:47:34 +00001630 }
1631 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
cristye9717ac2011-02-20 16:17:17 +00001632 status=MagickFalse;
cristy3ed852e2009-09-05 21:47:34 +00001633 /*
1634 Store the error.
1635 */
cristy101ab702011-10-13 13:06:32 +00001636 AssociateAlphaPixelInfo(image,&cube,image->colormap+index,&color);
cristy3ed852e2009-09-05 21:47:34 +00001637 current[u].red=pixel.red-color.red;
1638 current[u].green=pixel.green-color.green;
1639 current[u].blue=pixel.blue-color.blue;
cristye9717ac2011-02-20 16:17:17 +00001640 if (cube.associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001641 current[u].alpha=pixel.alpha-color.alpha;
cristye9717ac2011-02-20 16:17:17 +00001642 if (image->progress_monitor != (MagickProgressMonitor) NULL)
1643 {
1644 MagickBooleanType
1645 proceed;
1646
1647#if defined(MAGICKCORE_OPENMP_SUPPORT)
1648 #pragma omp critical (MagickCore_FloydSteinbergDither)
1649#endif
1650 proceed=SetImageProgress(image,DitherImageTag,(MagickOffsetType) y,
1651 image->rows);
1652 if (proceed == MagickFalse)
1653 status=MagickFalse;
1654 }
cristyed231572011-07-14 02:18:59 +00001655 q+=((y+1) & 0x01)*GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +00001656 }
1657 }
cristy3ed852e2009-09-05 21:47:34 +00001658 image_view=DestroyCacheView(image_view);
cristye9717ac2011-02-20 16:17:17 +00001659 pixels=DestroyPixelThreadSet(pixels);
cristy3ed852e2009-09-05 21:47:34 +00001660 return(MagickTrue);
1661}
1662
1663static MagickBooleanType
cristy8a11cb12011-10-19 23:53:34 +00001664 RiemersmaDither(Image *,CacheView *,CubeInfo *,const unsigned int,
1665 ExceptionInfo *exception);
cristy3ed852e2009-09-05 21:47:34 +00001666
1667static void Riemersma(Image *image,CacheView *image_view,CubeInfo *cube_info,
cristy8a11cb12011-10-19 23:53:34 +00001668 const size_t level,const unsigned int direction,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001669{
1670 if (level == 1)
1671 switch (direction)
1672 {
1673 case WestGravity:
1674 {
cristy8a11cb12011-10-19 23:53:34 +00001675 (void) RiemersmaDither(image,image_view,cube_info,EastGravity,
1676 exception);
1677 (void) RiemersmaDither(image,image_view,cube_info,SouthGravity,
1678 exception);
1679 (void) RiemersmaDither(image,image_view,cube_info,WestGravity,
1680 exception);
cristy3ed852e2009-09-05 21:47:34 +00001681 break;
1682 }
1683 case EastGravity:
1684 {
cristy8a11cb12011-10-19 23:53:34 +00001685 (void) RiemersmaDither(image,image_view,cube_info,WestGravity,
1686 exception);
1687 (void) RiemersmaDither(image,image_view,cube_info,NorthGravity,
1688 exception);
1689 (void) RiemersmaDither(image,image_view,cube_info,EastGravity,
1690 exception);
cristy3ed852e2009-09-05 21:47:34 +00001691 break;
1692 }
1693 case NorthGravity:
1694 {
cristy8a11cb12011-10-19 23:53:34 +00001695 (void) RiemersmaDither(image,image_view,cube_info,SouthGravity,
1696 exception);
1697 (void) RiemersmaDither(image,image_view,cube_info,EastGravity,
1698 exception);
1699 (void) RiemersmaDither(image,image_view,cube_info,NorthGravity,
1700 exception);
cristy3ed852e2009-09-05 21:47:34 +00001701 break;
1702 }
1703 case SouthGravity:
1704 {
cristy8a11cb12011-10-19 23:53:34 +00001705 (void) RiemersmaDither(image,image_view,cube_info,NorthGravity,
1706 exception);
1707 (void) RiemersmaDither(image,image_view,cube_info,WestGravity,
1708 exception);
1709 (void) RiemersmaDither(image,image_view,cube_info,SouthGravity,
1710 exception);
cristy3ed852e2009-09-05 21:47:34 +00001711 break;
1712 }
1713 default:
1714 break;
1715 }
1716 else
1717 switch (direction)
1718 {
1719 case WestGravity:
1720 {
cristy8a11cb12011-10-19 23:53:34 +00001721 Riemersma(image,image_view,cube_info,level-1,NorthGravity,
1722 exception);
1723 (void) RiemersmaDither(image,image_view,cube_info,EastGravity,
1724 exception);
1725 Riemersma(image,image_view,cube_info,level-1,WestGravity,
1726 exception);
1727 (void) RiemersmaDither(image,image_view,cube_info,SouthGravity,
1728 exception);
1729 Riemersma(image,image_view,cube_info,level-1,WestGravity,
1730 exception);
1731 (void) RiemersmaDither(image,image_view,cube_info,WestGravity,
1732 exception);
1733 Riemersma(image,image_view,cube_info,level-1,SouthGravity,
1734 exception);
cristy3ed852e2009-09-05 21:47:34 +00001735 break;
1736 }
1737 case EastGravity:
1738 {
cristy8a11cb12011-10-19 23:53:34 +00001739 Riemersma(image,image_view,cube_info,level-1,SouthGravity,
1740 exception);
1741 (void) RiemersmaDither(image,image_view,cube_info,WestGravity,
1742 exception);
1743 Riemersma(image,image_view,cube_info,level-1,EastGravity,
1744 exception);
1745 (void) RiemersmaDither(image,image_view,cube_info,NorthGravity,
1746 exception);
1747 Riemersma(image,image_view,cube_info,level-1,EastGravity,
1748 exception);
1749 (void) RiemersmaDither(image,image_view,cube_info,EastGravity,
1750 exception);
1751 Riemersma(image,image_view,cube_info,level-1,NorthGravity,
1752 exception);
cristy3ed852e2009-09-05 21:47:34 +00001753 break;
1754 }
1755 case NorthGravity:
1756 {
cristy8a11cb12011-10-19 23:53:34 +00001757 Riemersma(image,image_view,cube_info,level-1,WestGravity,
1758 exception);
1759 (void) RiemersmaDither(image,image_view,cube_info,SouthGravity,
1760 exception);
1761 Riemersma(image,image_view,cube_info,level-1,NorthGravity,
1762 exception);
1763 (void) RiemersmaDither(image,image_view,cube_info,EastGravity,
1764 exception);
1765 Riemersma(image,image_view,cube_info,level-1,NorthGravity,
1766 exception);
1767 (void) RiemersmaDither(image,image_view,cube_info,NorthGravity,
1768 exception);
1769 Riemersma(image,image_view,cube_info,level-1,EastGravity,
1770 exception);
cristy3ed852e2009-09-05 21:47:34 +00001771 break;
1772 }
1773 case SouthGravity:
1774 {
cristy8a11cb12011-10-19 23:53:34 +00001775 Riemersma(image,image_view,cube_info,level-1,EastGravity,
1776 exception);
1777 (void) RiemersmaDither(image,image_view,cube_info,NorthGravity,
1778 exception);
1779 Riemersma(image,image_view,cube_info,level-1,SouthGravity,
1780 exception);
1781 (void) RiemersmaDither(image,image_view,cube_info,WestGravity,
1782 exception);
1783 Riemersma(image,image_view,cube_info,level-1,SouthGravity,
1784 exception);
1785 (void) RiemersmaDither(image,image_view,cube_info,SouthGravity,
1786 exception);
1787 Riemersma(image,image_view,cube_info,level-1,WestGravity,
1788 exception);
cristy3ed852e2009-09-05 21:47:34 +00001789 break;
1790 }
1791 default:
1792 break;
1793 }
1794}
1795
1796static MagickBooleanType RiemersmaDither(Image *image,CacheView *image_view,
cristy8a11cb12011-10-19 23:53:34 +00001797 CubeInfo *cube_info,const unsigned int direction,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001798{
1799#define DitherImageTag "Dither/Image"
1800
1801 MagickBooleanType
1802 proceed;
1803
cristy101ab702011-10-13 13:06:32 +00001804 RealPixelInfo
cristy3ed852e2009-09-05 21:47:34 +00001805 color,
1806 pixel;
1807
1808 register CubeInfo
1809 *p;
1810
cristybb503372010-05-27 20:51:26 +00001811 size_t
cristy3ed852e2009-09-05 21:47:34 +00001812 index;
1813
1814 p=cube_info;
cristybb503372010-05-27 20:51:26 +00001815 if ((p->x >= 0) && (p->x < (ssize_t) image->columns) &&
1816 (p->y >= 0) && (p->y < (ssize_t) image->rows))
cristy3ed852e2009-09-05 21:47:34 +00001817 {
cristy4c08aed2011-07-01 19:47:50 +00001818 register Quantum
cristyc47d1f82009-11-26 01:44:43 +00001819 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +00001820
cristyecc31b12011-02-13 00:32:29 +00001821 register ssize_t
1822 i;
1823
cristy3ed852e2009-09-05 21:47:34 +00001824 /*
1825 Distribute error.
1826 */
cristy3ed852e2009-09-05 21:47:34 +00001827 q=GetCacheViewAuthenticPixels(image_view,p->x,p->y,1,1,exception);
cristyacd2ed22011-08-30 01:44:23 +00001828 if (q == (Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00001829 return(MagickFalse);
cristy4c08aed2011-07-01 19:47:50 +00001830 AssociateAlphaPixel(image,cube_info,q,&pixel);
cristy3ed852e2009-09-05 21:47:34 +00001831 for (i=0; i < ErrorQueueLength; i++)
1832 {
1833 pixel.red+=p->weights[i]*p->error[i].red;
1834 pixel.green+=p->weights[i]*p->error[i].green;
1835 pixel.blue+=p->weights[i]*p->error[i].blue;
1836 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001837 pixel.alpha+=p->weights[i]*p->error[i].alpha;
cristy3ed852e2009-09-05 21:47:34 +00001838 }
cristya19f1d72012-08-07 18:24:38 +00001839 pixel.red=(double) ClampToUnsignedQuantum(pixel.red);
1840 pixel.green=(double) ClampToUnsignedQuantum(pixel.green);
1841 pixel.blue=(double) ClampToUnsignedQuantum(pixel.blue);
cristy3ed852e2009-09-05 21:47:34 +00001842 if (cube_info->associate_alpha != MagickFalse)
cristya19f1d72012-08-07 18:24:38 +00001843 pixel.alpha=(double) ClampToUnsignedQuantum(pixel.alpha);
cristyca972de2010-06-20 23:37:02 +00001844 i=CacheOffset(cube_info,&pixel);
cristy3ed852e2009-09-05 21:47:34 +00001845 if (p->cache[i] < 0)
1846 {
1847 register NodeInfo
1848 *node_info;
1849
cristybb503372010-05-27 20:51:26 +00001850 register size_t
cristy3ed852e2009-09-05 21:47:34 +00001851 id;
1852
1853 /*
1854 Identify the deepest node containing the pixel's color.
1855 */
1856 node_info=p->root;
cristybb503372010-05-27 20:51:26 +00001857 for (index=MaxTreeDepth-1; (ssize_t) index > 0; index--)
cristy3ed852e2009-09-05 21:47:34 +00001858 {
1859 id=ColorToNodeId(cube_info,&pixel,index);
1860 if (node_info->child[id] == (NodeInfo *) NULL)
1861 break;
1862 node_info=node_info->child[id];
1863 }
cristyecc31b12011-02-13 00:32:29 +00001864 node_info=node_info->parent;
cristy3ed852e2009-09-05 21:47:34 +00001865 /*
1866 Find closest color among siblings and their children.
1867 */
1868 p->target=pixel;
cristya19f1d72012-08-07 18:24:38 +00001869 p->distance=(double) (4.0*(QuantumRange+1.0)*((double)
cristy3ed852e2009-09-05 21:47:34 +00001870 QuantumRange+1.0)+1.0);
1871 ClosestColor(image,p,node_info->parent);
cristybb503372010-05-27 20:51:26 +00001872 p->cache[i]=(ssize_t) p->color_number;
cristy3ed852e2009-09-05 21:47:34 +00001873 }
1874 /*
1875 Assign pixel to closest colormap entry.
1876 */
cristy4c08aed2011-07-01 19:47:50 +00001877 index=(size_t) p->cache[i];
cristy3ed852e2009-09-05 21:47:34 +00001878 if (image->storage_class == PseudoClass)
cristy4c08aed2011-07-01 19:47:50 +00001879 SetPixelIndex(image,(Quantum) index,q);
cristy3ed852e2009-09-05 21:47:34 +00001880 if (cube_info->quantize_info->measure_error == MagickFalse)
1881 {
cristye42f6582012-02-11 17:59:50 +00001882 SetPixelRed(image,ClampToQuantum(image->colormap[index].red),q);
1883 SetPixelGreen(image,ClampToQuantum(image->colormap[index].green),q);
1884 SetPixelBlue(image,ClampToQuantum(image->colormap[index].blue),q);
cristy3ed852e2009-09-05 21:47:34 +00001885 if (cube_info->associate_alpha != MagickFalse)
cristye42f6582012-02-11 17:59:50 +00001886 SetPixelAlpha(image,ClampToQuantum(image->colormap[index].alpha),q);
cristy3ed852e2009-09-05 21:47:34 +00001887 }
1888 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
1889 return(MagickFalse);
1890 /*
1891 Propagate the error as the last entry of the error queue.
1892 */
1893 (void) CopyMagickMemory(p->error,p->error+1,(ErrorQueueLength-1)*
1894 sizeof(p->error[0]));
cristy101ab702011-10-13 13:06:32 +00001895 AssociateAlphaPixelInfo(image,cube_info,image->colormap+index,&color);
cristy3ed852e2009-09-05 21:47:34 +00001896 p->error[ErrorQueueLength-1].red=pixel.red-color.red;
1897 p->error[ErrorQueueLength-1].green=pixel.green-color.green;
1898 p->error[ErrorQueueLength-1].blue=pixel.blue-color.blue;
1899 if (cube_info->associate_alpha != MagickFalse)
cristy4c08aed2011-07-01 19:47:50 +00001900 p->error[ErrorQueueLength-1].alpha=pixel.alpha-color.alpha;
cristy3ed852e2009-09-05 21:47:34 +00001901 proceed=SetImageProgress(image,DitherImageTag,p->offset,p->span);
1902 if (proceed == MagickFalse)
1903 return(MagickFalse);
1904 p->offset++;
1905 }
1906 switch (direction)
1907 {
1908 case WestGravity: p->x--; break;
1909 case EastGravity: p->x++; break;
1910 case NorthGravity: p->y--; break;
1911 case SouthGravity: p->y++; break;
1912 }
1913 return(MagickTrue);
1914}
1915
cristybb503372010-05-27 20:51:26 +00001916static inline ssize_t MagickMax(const ssize_t x,const ssize_t y)
cristy3ed852e2009-09-05 21:47:34 +00001917{
1918 if (x > y)
1919 return(x);
1920 return(y);
1921}
1922
cristybb503372010-05-27 20:51:26 +00001923static inline ssize_t MagickMin(const ssize_t x,const ssize_t y)
cristy3ed852e2009-09-05 21:47:34 +00001924{
1925 if (x < y)
1926 return(x);
1927 return(y);
1928}
1929
cristy8a11cb12011-10-19 23:53:34 +00001930static MagickBooleanType DitherImage(Image *image,CubeInfo *cube_info,
1931 ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00001932{
cristyc4c8d132010-01-07 01:58:38 +00001933 CacheView
1934 *image_view;
1935
cristy3ed852e2009-09-05 21:47:34 +00001936 MagickBooleanType
1937 status;
1938
cristybb503372010-05-27 20:51:26 +00001939 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00001940 i;
1941
cristybb503372010-05-27 20:51:26 +00001942 size_t
cristy3ed852e2009-09-05 21:47:34 +00001943 depth;
1944
cristyfb7e9cd2011-02-20 16:26:15 +00001945 if (cube_info->quantize_info->dither_method != RiemersmaDitherMethod)
cristy8a11cb12011-10-19 23:53:34 +00001946 return(FloydSteinbergDither(image,cube_info,exception));
cristy3ed852e2009-09-05 21:47:34 +00001947 /*
cristycee97112010-05-28 00:44:52 +00001948 Distribute quantization error along a Hilbert curve.
cristy3ed852e2009-09-05 21:47:34 +00001949 */
1950 (void) ResetMagickMemory(cube_info->error,0,ErrorQueueLength*
1951 sizeof(*cube_info->error));
1952 cube_info->x=0;
1953 cube_info->y=0;
cristybb503372010-05-27 20:51:26 +00001954 i=MagickMax((ssize_t) image->columns,(ssize_t) image->rows);
cristy3ed852e2009-09-05 21:47:34 +00001955 for (depth=1; i != 0; depth++)
1956 i>>=1;
cristybb503372010-05-27 20:51:26 +00001957 if ((ssize_t) (1L << depth) < MagickMax((ssize_t) image->columns,(ssize_t) image->rows))
cristy3ed852e2009-09-05 21:47:34 +00001958 depth++;
1959 cube_info->offset=0;
1960 cube_info->span=(MagickSizeType) image->columns*image->rows;
cristydb070952012-04-20 14:33:00 +00001961 image_view=AcquireAuthenticCacheView(image,exception);
cristy3ed852e2009-09-05 21:47:34 +00001962 if (depth > 1)
cristy8a11cb12011-10-19 23:53:34 +00001963 Riemersma(image,image_view,cube_info,depth-1,NorthGravity,exception);
1964 status=RiemersmaDither(image,image_view,cube_info,ForgetGravity,exception);
cristy3ed852e2009-09-05 21:47:34 +00001965 image_view=DestroyCacheView(image_view);
1966 return(status);
1967}
1968
1969/*
1970%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1971% %
1972% %
1973% %
1974+ G e t C u b e I n f o %
1975% %
1976% %
1977% %
1978%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
1979%
1980% GetCubeInfo() initialize the Cube data structure.
1981%
1982% The format of the GetCubeInfo method is:
1983%
1984% CubeInfo GetCubeInfo(const QuantizeInfo *quantize_info,
cristybb503372010-05-27 20:51:26 +00001985% const size_t depth,const size_t maximum_colors)
cristy3ed852e2009-09-05 21:47:34 +00001986%
1987% A description of each parameter follows.
1988%
1989% o quantize_info: Specifies a pointer to an QuantizeInfo structure.
1990%
1991% o depth: Normally, this integer value is zero or one. A zero or
1992% one tells Quantize to choose a optimal tree depth of Log4(number_colors).
1993% A tree of this depth generally allows the best representation of the
1994% reference image with the least amount of memory and the fastest
1995% computational speed. In some cases, such as an image with low color
1996% dispersion (a few number of colors), a value other than
1997% Log4(number_colors) is required. To expand the color tree completely,
1998% use a value of 8.
1999%
2000% o maximum_colors: maximum colors.
2001%
2002*/
2003static CubeInfo *GetCubeInfo(const QuantizeInfo *quantize_info,
cristybb503372010-05-27 20:51:26 +00002004 const size_t depth,const size_t maximum_colors)
cristy3ed852e2009-09-05 21:47:34 +00002005{
2006 CubeInfo
2007 *cube_info;
2008
cristya19f1d72012-08-07 18:24:38 +00002009 double
cristy3ed852e2009-09-05 21:47:34 +00002010 sum,
2011 weight;
2012
cristybb503372010-05-27 20:51:26 +00002013 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002014 i;
2015
cristyecc31b12011-02-13 00:32:29 +00002016 size_t
2017 length;
2018
cristy3ed852e2009-09-05 21:47:34 +00002019 /*
2020 Initialize tree to describe color cube_info.
2021 */
cristy73bd4a52010-10-05 11:24:23 +00002022 cube_info=(CubeInfo *) AcquireMagickMemory(sizeof(*cube_info));
cristy3ed852e2009-09-05 21:47:34 +00002023 if (cube_info == (CubeInfo *) NULL)
2024 return((CubeInfo *) NULL);
2025 (void) ResetMagickMemory(cube_info,0,sizeof(*cube_info));
2026 cube_info->depth=depth;
2027 if (cube_info->depth > MaxTreeDepth)
2028 cube_info->depth=MaxTreeDepth;
2029 if (cube_info->depth < 2)
2030 cube_info->depth=2;
2031 cube_info->maximum_colors=maximum_colors;
2032 /*
2033 Initialize root node.
2034 */
2035 cube_info->root=GetNodeInfo(cube_info,0,0,(NodeInfo *) NULL);
2036 if (cube_info->root == (NodeInfo *) NULL)
2037 return((CubeInfo *) NULL);
2038 cube_info->root->parent=cube_info->root;
2039 cube_info->quantize_info=CloneQuantizeInfo(quantize_info);
cristycbda6112012-05-27 20:57:16 +00002040 if (cube_info->quantize_info->dither_method == NoDitherMethod)
cristy3ed852e2009-09-05 21:47:34 +00002041 return(cube_info);
2042 /*
2043 Initialize dither resources.
2044 */
2045 length=(size_t) (1UL << (4*(8-CacheShift)));
cristybb503372010-05-27 20:51:26 +00002046 cube_info->cache=(ssize_t *) AcquireQuantumMemory(length,
cristy3ed852e2009-09-05 21:47:34 +00002047 sizeof(*cube_info->cache));
cristybb503372010-05-27 20:51:26 +00002048 if (cube_info->cache == (ssize_t *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00002049 return((CubeInfo *) NULL);
2050 /*
2051 Initialize color cache.
2052 */
cristybb503372010-05-27 20:51:26 +00002053 for (i=0; i < (ssize_t) length; i++)
cristy3ed852e2009-09-05 21:47:34 +00002054 cube_info->cache[i]=(-1);
2055 /*
cristycee97112010-05-28 00:44:52 +00002056 Distribute weights along a curve of exponential decay.
cristy3ed852e2009-09-05 21:47:34 +00002057 */
2058 weight=1.0;
2059 for (i=0; i < ErrorQueueLength; i++)
2060 {
cristy35f15302012-06-07 14:59:02 +00002061 cube_info->weights[ErrorQueueLength-i-1]=MagickEpsilonReciprocal(weight);
cristy3ed852e2009-09-05 21:47:34 +00002062 weight*=exp(log(((double) QuantumRange+1.0))/(ErrorQueueLength-1.0));
2063 }
2064 /*
2065 Normalize the weighting factors.
2066 */
2067 weight=0.0;
2068 for (i=0; i < ErrorQueueLength; i++)
2069 weight+=cube_info->weights[i];
2070 sum=0.0;
2071 for (i=0; i < ErrorQueueLength; i++)
2072 {
2073 cube_info->weights[i]/=weight;
2074 sum+=cube_info->weights[i];
2075 }
2076 cube_info->weights[0]+=1.0-sum;
2077 return(cube_info);
2078}
2079
2080/*
2081%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2082% %
2083% %
2084% %
2085+ G e t N o d e I n f o %
2086% %
2087% %
2088% %
2089%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2090%
2091% GetNodeInfo() allocates memory for a new node in the color cube tree and
2092% presets all fields to zero.
2093%
2094% The format of the GetNodeInfo method is:
2095%
cristybb503372010-05-27 20:51:26 +00002096% NodeInfo *GetNodeInfo(CubeInfo *cube_info,const size_t id,
2097% const size_t level,NodeInfo *parent)
cristy3ed852e2009-09-05 21:47:34 +00002098%
2099% A description of each parameter follows.
2100%
2101% o node: The GetNodeInfo method returns a pointer to a queue of nodes.
2102%
2103% o id: Specifies the child number of the node.
2104%
2105% o level: Specifies the level in the storage_class the node resides.
2106%
2107*/
cristybb503372010-05-27 20:51:26 +00002108static NodeInfo *GetNodeInfo(CubeInfo *cube_info,const size_t id,
2109 const size_t level,NodeInfo *parent)
cristy3ed852e2009-09-05 21:47:34 +00002110{
2111 NodeInfo
2112 *node_info;
2113
2114 if (cube_info->free_nodes == 0)
2115 {
2116 Nodes
2117 *nodes;
2118
2119 /*
2120 Allocate a new queue of nodes.
2121 */
cristy73bd4a52010-10-05 11:24:23 +00002122 nodes=(Nodes *) AcquireMagickMemory(sizeof(*nodes));
cristy3ed852e2009-09-05 21:47:34 +00002123 if (nodes == (Nodes *) NULL)
2124 return((NodeInfo *) NULL);
2125 nodes->nodes=(NodeInfo *) AcquireQuantumMemory(NodesInAList,
2126 sizeof(*nodes->nodes));
2127 if (nodes->nodes == (NodeInfo *) NULL)
2128 return((NodeInfo *) NULL);
2129 nodes->next=cube_info->node_queue;
2130 cube_info->node_queue=nodes;
2131 cube_info->next_node=nodes->nodes;
2132 cube_info->free_nodes=NodesInAList;
2133 }
2134 cube_info->nodes++;
2135 cube_info->free_nodes--;
2136 node_info=cube_info->next_node++;
2137 (void) ResetMagickMemory(node_info,0,sizeof(*node_info));
2138 node_info->parent=parent;
2139 node_info->id=id;
2140 node_info->level=level;
2141 return(node_info);
2142}
2143
2144/*
2145%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2146% %
2147% %
2148% %
2149% G e t I m a g e Q u a n t i z e E r r o r %
2150% %
2151% %
2152% %
2153%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2154%
2155% GetImageQuantizeError() measures the difference between the original
2156% and quantized images. This difference is the total quantization error.
2157% The error is computed by summing over all pixels in an image the distance
2158% squared in RGB space between each reference pixel value and its quantized
2159% value. These values are computed:
2160%
2161% o mean_error_per_pixel: This value is the mean error for any single
2162% pixel in the image.
2163%
2164% o normalized_mean_square_error: This value is the normalized mean
2165% quantization error for any single pixel in the image. This distance
2166% measure is normalized to a range between 0 and 1. It is independent
2167% of the range of red, green, and blue values in the image.
2168%
2169% o normalized_maximum_square_error: Thsi value is the normalized
2170% maximum quantization error for any single pixel in the image. This
2171% distance measure is normalized to a range between 0 and 1. It is
2172% independent of the range of red, green, and blue values in your image.
2173%
2174% The format of the GetImageQuantizeError method is:
2175%
cristy8a11cb12011-10-19 23:53:34 +00002176% MagickBooleanType GetImageQuantizeError(Image *image,
2177% ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002178%
2179% A description of each parameter follows.
2180%
2181% o image: the image.
2182%
cristy8a11cb12011-10-19 23:53:34 +00002183% o exception: return any errors or warnings in this structure.
2184%
cristy3ed852e2009-09-05 21:47:34 +00002185*/
cristy8a11cb12011-10-19 23:53:34 +00002186MagickExport MagickBooleanType GetImageQuantizeError(Image *image,
2187 ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002188{
cristyc4c8d132010-01-07 01:58:38 +00002189 CacheView
2190 *image_view;
2191
cristya19f1d72012-08-07 18:24:38 +00002192 double
cristy3ed852e2009-09-05 21:47:34 +00002193 alpha,
2194 area,
2195 beta,
2196 distance,
2197 maximum_error,
2198 mean_error,
2199 mean_error_per_pixel;
2200
cristybb503372010-05-27 20:51:26 +00002201 size_t
cristy3ed852e2009-09-05 21:47:34 +00002202 index;
2203
cristyecc31b12011-02-13 00:32:29 +00002204 ssize_t
2205 y;
2206
cristy3ed852e2009-09-05 21:47:34 +00002207 assert(image != (Image *) NULL);
2208 assert(image->signature == MagickSignature);
2209 if (image->debug != MagickFalse)
2210 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename);
cristy8a11cb12011-10-19 23:53:34 +00002211 image->total_colors=GetNumberColors(image,(FILE *) NULL,exception);
cristy3ed852e2009-09-05 21:47:34 +00002212 (void) ResetMagickMemory(&image->error,0,sizeof(image->error));
2213 if (image->storage_class == DirectClass)
2214 return(MagickTrue);
2215 alpha=1.0;
2216 beta=1.0;
2217 area=3.0*image->columns*image->rows;
2218 maximum_error=0.0;
2219 mean_error_per_pixel=0.0;
2220 mean_error=0.0;
cristydb070952012-04-20 14:33:00 +00002221 image_view=AcquireVirtualCacheView(image,exception);
cristybb503372010-05-27 20:51:26 +00002222 for (y=0; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +00002223 {
cristy4c08aed2011-07-01 19:47:50 +00002224 register const Quantum
cristyc47d1f82009-11-26 01:44:43 +00002225 *restrict p;
cristy3ed852e2009-09-05 21:47:34 +00002226
cristybb503372010-05-27 20:51:26 +00002227 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002228 x;
2229
2230 p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception);
cristy4c08aed2011-07-01 19:47:50 +00002231 if (p == (const Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00002232 break;
cristybb503372010-05-27 20:51:26 +00002233 for (x=0; x < (ssize_t) image->columns; x++)
cristy3ed852e2009-09-05 21:47:34 +00002234 {
cristy4c08aed2011-07-01 19:47:50 +00002235 index=1UL*GetPixelIndex(image,p);
cristy3ed852e2009-09-05 21:47:34 +00002236 if (image->matte != MagickFalse)
2237 {
cristya19f1d72012-08-07 18:24:38 +00002238 alpha=(double) (QuantumScale*GetPixelAlpha(image,p));
2239 beta=(double) (QuantumScale*image->colormap[index].alpha);
cristy3ed852e2009-09-05 21:47:34 +00002240 }
cristy4c08aed2011-07-01 19:47:50 +00002241 distance=fabs(alpha*GetPixelRed(image,p)-beta*
cristy01e4e7d2011-05-01 23:00:41 +00002242 image->colormap[index].red);
cristy3ed852e2009-09-05 21:47:34 +00002243 mean_error_per_pixel+=distance;
2244 mean_error+=distance*distance;
2245 if (distance > maximum_error)
2246 maximum_error=distance;
cristy4c08aed2011-07-01 19:47:50 +00002247 distance=fabs(alpha*GetPixelGreen(image,p)-beta*
cristy01e4e7d2011-05-01 23:00:41 +00002248 image->colormap[index].green);
cristy3ed852e2009-09-05 21:47:34 +00002249 mean_error_per_pixel+=distance;
2250 mean_error+=distance*distance;
2251 if (distance > maximum_error)
2252 maximum_error=distance;
cristy4c08aed2011-07-01 19:47:50 +00002253 distance=fabs(alpha*GetPixelBlue(image,p)-beta*
cristy01e4e7d2011-05-01 23:00:41 +00002254 image->colormap[index].blue);
cristy3ed852e2009-09-05 21:47:34 +00002255 mean_error_per_pixel+=distance;
2256 mean_error+=distance*distance;
2257 if (distance > maximum_error)
2258 maximum_error=distance;
cristyed231572011-07-14 02:18:59 +00002259 p+=GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +00002260 }
2261 }
2262 image_view=DestroyCacheView(image_view);
2263 image->error.mean_error_per_pixel=(double) mean_error_per_pixel/area;
2264 image->error.normalized_mean_error=(double) QuantumScale*QuantumScale*
2265 mean_error/area;
2266 image->error.normalized_maximum_error=(double) QuantumScale*maximum_error;
2267 return(MagickTrue);
2268}
2269
2270/*
2271%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2272% %
2273% %
2274% %
2275% G e t Q u a n t i z e I n f o %
2276% %
2277% %
2278% %
2279%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2280%
2281% GetQuantizeInfo() initializes the QuantizeInfo structure.
2282%
2283% The format of the GetQuantizeInfo method is:
2284%
2285% GetQuantizeInfo(QuantizeInfo *quantize_info)
2286%
2287% A description of each parameter follows:
2288%
2289% o quantize_info: Specifies a pointer to a QuantizeInfo structure.
2290%
2291*/
2292MagickExport void GetQuantizeInfo(QuantizeInfo *quantize_info)
2293{
2294 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"...");
2295 assert(quantize_info != (QuantizeInfo *) NULL);
2296 (void) ResetMagickMemory(quantize_info,0,sizeof(*quantize_info));
2297 quantize_info->number_colors=256;
cristy3ed852e2009-09-05 21:47:34 +00002298 quantize_info->dither_method=RiemersmaDitherMethod;
2299 quantize_info->colorspace=UndefinedColorspace;
2300 quantize_info->measure_error=MagickFalse;
2301 quantize_info->signature=MagickSignature;
2302}
2303
2304/*
2305%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2306% %
2307% %
2308% %
cristy018f07f2011-09-04 21:15:19 +00002309% P o s t e r i z e I m a g e %
cristy3ed852e2009-09-05 21:47:34 +00002310% %
2311% %
2312% %
2313%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2314%
2315% PosterizeImage() reduces the image to a limited number of colors for a
2316% "poster" effect.
2317%
2318% The format of the PosterizeImage method is:
2319%
cristybb503372010-05-27 20:51:26 +00002320% MagickBooleanType PosterizeImage(Image *image,const size_t levels,
cristycbda6112012-05-27 20:57:16 +00002321% const DitherMethod dither_method,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002322%
2323% A description of each parameter follows:
2324%
2325% o image: Specifies a pointer to an Image structure.
2326%
2327% o levels: Number of color levels allowed in each channel. Very low values
2328% (2, 3, or 4) have the most visible effect.
2329%
cristycbda6112012-05-27 20:57:16 +00002330% o dither_method: choose from UndefinedDitherMethod, NoDitherMethod,
2331% RiemersmaDitherMethod, FloydSteinbergDitherMethod.
cristy3ed852e2009-09-05 21:47:34 +00002332%
cristy018f07f2011-09-04 21:15:19 +00002333% o exception: return any errors or warnings in this structure.
2334%
cristy3ed852e2009-09-05 21:47:34 +00002335*/
cristyd1a2c0f2011-02-09 14:14:50 +00002336
cristya19f1d72012-08-07 18:24:38 +00002337static inline ssize_t MagickRound(double x)
cristy4d727152011-02-10 19:57:21 +00002338{
2339 /*
cristyecc31b12011-02-13 00:32:29 +00002340 Round the fraction to nearest integer.
cristy4d727152011-02-10 19:57:21 +00002341 */
2342 if (x >= 0.0)
2343 return((ssize_t) (x+0.5));
2344 return((ssize_t) (x-0.5));
2345}
2346
cristyd1a2c0f2011-02-09 14:14:50 +00002347MagickExport MagickBooleanType PosterizeImage(Image *image,const size_t levels,
cristycbda6112012-05-27 20:57:16 +00002348 const DitherMethod dither_method,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002349{
cristyd1a2c0f2011-02-09 14:14:50 +00002350#define PosterizeImageTag "Posterize/Image"
cristy4d727152011-02-10 19:57:21 +00002351#define PosterizePixel(pixel) (Quantum) (QuantumRange*(MagickRound( \
cristy3e9cad02011-02-20 01:42:00 +00002352 QuantumScale*pixel*(levels-1)))/MagickMax((ssize_t) levels-1,1))
cristyd1a2c0f2011-02-09 14:14:50 +00002353
cristyc4c8d132010-01-07 01:58:38 +00002354 CacheView
cristyd1a2c0f2011-02-09 14:14:50 +00002355 *image_view;
cristyc4c8d132010-01-07 01:58:38 +00002356
cristy3ed852e2009-09-05 21:47:34 +00002357 MagickBooleanType
2358 status;
2359
cristyd1a2c0f2011-02-09 14:14:50 +00002360 MagickOffsetType
2361 progress;
2362
cristy3ed852e2009-09-05 21:47:34 +00002363 QuantizeInfo
2364 *quantize_info;
2365
cristy847620f2011-02-09 02:24:21 +00002366 register ssize_t
2367 i;
2368
cristy847620f2011-02-09 02:24:21 +00002369 ssize_t
cristyd1a2c0f2011-02-09 14:14:50 +00002370 y;
cristy847620f2011-02-09 02:24:21 +00002371
cristy3ed852e2009-09-05 21:47:34 +00002372 assert(image != (Image *) NULL);
2373 assert(image->signature == MagickSignature);
2374 if (image->debug != MagickFalse)
2375 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename);
cristyd1a2c0f2011-02-09 14:14:50 +00002376 if (image->storage_class == PseudoClass)
2377#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristyac245f82012-05-05 17:13:57 +00002378 #pragma omp parallel for schedule(static,4) shared(progress,status) \
cristy4ee2b0c2012-05-15 00:30:35 +00002379 dynamic_number_threads(image,image->columns,1,1)
cristyd1a2c0f2011-02-09 14:14:50 +00002380#endif
2381 for (i=0; i < (ssize_t) image->colors; i++)
cristy3ed852e2009-09-05 21:47:34 +00002382 {
cristyd1a2c0f2011-02-09 14:14:50 +00002383 /*
2384 Posterize colormap.
2385 */
cristyed231572011-07-14 02:18:59 +00002386 if ((GetPixelRedTraits(image) & UpdatePixelTrait) != 0)
cristye42f6582012-02-11 17:59:50 +00002387 image->colormap[i].red=(double)
2388 PosterizePixel(image->colormap[i].red);
cristyed231572011-07-14 02:18:59 +00002389 if ((GetPixelGreenTraits(image) & UpdatePixelTrait) != 0)
cristye42f6582012-02-11 17:59:50 +00002390 image->colormap[i].green=(double)
2391 PosterizePixel(image->colormap[i].green);
cristyed231572011-07-14 02:18:59 +00002392 if ((GetPixelBlueTraits(image) & UpdatePixelTrait) != 0)
cristye42f6582012-02-11 17:59:50 +00002393 image->colormap[i].blue=(double)
2394 PosterizePixel(image->colormap[i].blue);
cristyed231572011-07-14 02:18:59 +00002395 if ((GetPixelAlphaTraits(image) & UpdatePixelTrait) != 0)
cristye42f6582012-02-11 17:59:50 +00002396 image->colormap[i].alpha=(double)
2397 PosterizePixel(image->colormap[i].alpha);
cristy3ed852e2009-09-05 21:47:34 +00002398 }
cristyd1a2c0f2011-02-09 14:14:50 +00002399 /*
2400 Posterize image.
2401 */
2402 status=MagickTrue;
2403 progress=0;
cristydb070952012-04-20 14:33:00 +00002404 image_view=AcquireAuthenticCacheView(image,exception);
cristyd1a2c0f2011-02-09 14:14:50 +00002405#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristyac245f82012-05-05 17:13:57 +00002406 #pragma omp parallel for schedule(static,4) shared(progress,status) \
cristy4ee2b0c2012-05-15 00:30:35 +00002407 dynamic_number_threads(image,image->columns,image->rows,1)
cristyd1a2c0f2011-02-09 14:14:50 +00002408#endif
2409 for (y=0; y < (ssize_t) image->rows; y++)
2410 {
cristy4c08aed2011-07-01 19:47:50 +00002411 register Quantum
cristyd1a2c0f2011-02-09 14:14:50 +00002412 *restrict q;
2413
2414 register ssize_t
2415 x;
2416
2417 if (status == MagickFalse)
2418 continue;
2419 q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,exception);
cristyacd2ed22011-08-30 01:44:23 +00002420 if (q == (Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00002421 {
cristyd1a2c0f2011-02-09 14:14:50 +00002422 status=MagickFalse;
2423 continue;
cristy3ed852e2009-09-05 21:47:34 +00002424 }
cristyd1a2c0f2011-02-09 14:14:50 +00002425 for (x=0; x < (ssize_t) image->columns; x++)
cristy3ed852e2009-09-05 21:47:34 +00002426 {
cristyed231572011-07-14 02:18:59 +00002427 if ((GetPixelRedTraits(image) & UpdatePixelTrait) != 0)
cristy4c08aed2011-07-01 19:47:50 +00002428 SetPixelRed(image,PosterizePixel(GetPixelRed(image,q)),q);
cristyed231572011-07-14 02:18:59 +00002429 if ((GetPixelGreenTraits(image) & UpdatePixelTrait) != 0)
cristy4c08aed2011-07-01 19:47:50 +00002430 SetPixelGreen(image,PosterizePixel(GetPixelGreen(image,q)),q);
cristyed231572011-07-14 02:18:59 +00002431 if ((GetPixelBlueTraits(image) & UpdatePixelTrait) != 0)
cristy4c08aed2011-07-01 19:47:50 +00002432 SetPixelBlue(image,PosterizePixel(GetPixelBlue(image,q)),q);
cristyed231572011-07-14 02:18:59 +00002433 if (((GetPixelBlackTraits(image) & UpdatePixelTrait) != 0) &&
cristy4c08aed2011-07-01 19:47:50 +00002434 (image->colorspace == CMYKColorspace))
2435 SetPixelBlack(image,PosterizePixel(GetPixelBlack(image,q)),q);
cristyed231572011-07-14 02:18:59 +00002436 if (((GetPixelAlphaTraits(image) & UpdatePixelTrait) != 0) &&
cristyd1a2c0f2011-02-09 14:14:50 +00002437 (image->matte == MagickTrue))
cristy4c08aed2011-07-01 19:47:50 +00002438 SetPixelAlpha(image,PosterizePixel(GetPixelAlpha(image,q)),q);
cristyed231572011-07-14 02:18:59 +00002439 q+=GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +00002440 }
cristyd1a2c0f2011-02-09 14:14:50 +00002441 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
2442 status=MagickFalse;
2443 if (image->progress_monitor != (MagickProgressMonitor) NULL)
2444 {
2445 MagickBooleanType
2446 proceed;
2447
2448#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristy13020672011-07-08 02:33:26 +00002449 #pragma omp critical (MagickCore_PosterizeImage)
cristyd1a2c0f2011-02-09 14:14:50 +00002450#endif
2451 proceed=SetImageProgress(image,PosterizeImageTag,progress++,
2452 image->rows);
2453 if (proceed == MagickFalse)
2454 status=MagickFalse;
2455 }
2456 }
2457 image_view=DestroyCacheView(image_view);
cristy3ed852e2009-09-05 21:47:34 +00002458 quantize_info=AcquireQuantizeInfo((ImageInfo *) NULL);
cristyd1a2c0f2011-02-09 14:14:50 +00002459 quantize_info->number_colors=(size_t) MagickMin((ssize_t) levels*levels*
2460 levels,MaxColormapSize+1);
cristycbda6112012-05-27 20:57:16 +00002461 quantize_info->dither_method=dither_method;
cristy3e9cad02011-02-20 01:42:00 +00002462 quantize_info->tree_depth=MaxTreeDepth;
cristy018f07f2011-09-04 21:15:19 +00002463 status=QuantizeImage(quantize_info,image,exception);
cristy3ed852e2009-09-05 21:47:34 +00002464 quantize_info=DestroyQuantizeInfo(quantize_info);
cristy3ed852e2009-09-05 21:47:34 +00002465 return(status);
2466}
2467
2468/*
2469%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2470% %
2471% %
2472% %
2473+ P r u n e C h i l d %
2474% %
2475% %
2476% %
2477%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2478%
2479% PruneChild() deletes the given node and merges its statistics into its
2480% parent.
2481%
2482% The format of the PruneSubtree method is:
2483%
2484% PruneChild(const Image *image,CubeInfo *cube_info,
2485% const NodeInfo *node_info)
2486%
2487% A description of each parameter follows.
2488%
2489% o image: the image.
2490%
2491% o cube_info: A pointer to the Cube structure.
2492%
2493% o node_info: pointer to node in color cube tree that is to be pruned.
2494%
2495*/
2496static void PruneChild(const Image *image,CubeInfo *cube_info,
2497 const NodeInfo *node_info)
2498{
2499 NodeInfo
2500 *parent;
2501
cristybb503372010-05-27 20:51:26 +00002502 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002503 i;
2504
cristybb503372010-05-27 20:51:26 +00002505 size_t
cristy3ed852e2009-09-05 21:47:34 +00002506 number_children;
2507
2508 /*
2509 Traverse any children.
2510 */
2511 number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL;
cristybb503372010-05-27 20:51:26 +00002512 for (i=0; i < (ssize_t) number_children; i++)
cristy3ed852e2009-09-05 21:47:34 +00002513 if (node_info->child[i] != (NodeInfo *) NULL)
2514 PruneChild(image,cube_info,node_info->child[i]);
2515 /*
2516 Merge color statistics into parent.
2517 */
2518 parent=node_info->parent;
2519 parent->number_unique+=node_info->number_unique;
2520 parent->total_color.red+=node_info->total_color.red;
2521 parent->total_color.green+=node_info->total_color.green;
2522 parent->total_color.blue+=node_info->total_color.blue;
cristy4c08aed2011-07-01 19:47:50 +00002523 parent->total_color.alpha+=node_info->total_color.alpha;
cristy3ed852e2009-09-05 21:47:34 +00002524 parent->child[node_info->id]=(NodeInfo *) NULL;
2525 cube_info->nodes--;
2526}
2527
2528/*
2529%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2530% %
2531% %
2532% %
2533+ P r u n e L e v e l %
2534% %
2535% %
2536% %
2537%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2538%
2539% PruneLevel() deletes all nodes at the bottom level of the color tree merging
2540% their color statistics into their parent node.
2541%
2542% The format of the PruneLevel method is:
2543%
2544% PruneLevel(const Image *image,CubeInfo *cube_info,
2545% const NodeInfo *node_info)
2546%
2547% A description of each parameter follows.
2548%
2549% o image: the image.
2550%
2551% o cube_info: A pointer to the Cube structure.
2552%
2553% o node_info: pointer to node in color cube tree that is to be pruned.
2554%
2555*/
2556static void PruneLevel(const Image *image,CubeInfo *cube_info,
2557 const NodeInfo *node_info)
2558{
cristybb503372010-05-27 20:51:26 +00002559 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002560 i;
2561
cristybb503372010-05-27 20:51:26 +00002562 size_t
cristy3ed852e2009-09-05 21:47:34 +00002563 number_children;
2564
2565 /*
2566 Traverse any children.
2567 */
2568 number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL;
cristybb503372010-05-27 20:51:26 +00002569 for (i=0; i < (ssize_t) number_children; i++)
cristy3ed852e2009-09-05 21:47:34 +00002570 if (node_info->child[i] != (NodeInfo *) NULL)
2571 PruneLevel(image,cube_info,node_info->child[i]);
2572 if (node_info->level == cube_info->depth)
2573 PruneChild(image,cube_info,node_info);
2574}
2575
2576/*
2577%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2578% %
2579% %
2580% %
2581+ P r u n e T o C u b e D e p t h %
2582% %
2583% %
2584% %
2585%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2586%
2587% PruneToCubeDepth() deletes any nodes at a depth greater than
2588% cube_info->depth while merging their color statistics into their parent
2589% node.
2590%
2591% The format of the PruneToCubeDepth method is:
2592%
2593% PruneToCubeDepth(const Image *image,CubeInfo *cube_info,
2594% const NodeInfo *node_info)
2595%
2596% A description of each parameter follows.
2597%
2598% o cube_info: A pointer to the Cube structure.
2599%
2600% o node_info: pointer to node in color cube tree that is to be pruned.
2601%
2602*/
2603static void PruneToCubeDepth(const Image *image,CubeInfo *cube_info,
2604 const NodeInfo *node_info)
2605{
cristybb503372010-05-27 20:51:26 +00002606 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002607 i;
2608
cristybb503372010-05-27 20:51:26 +00002609 size_t
cristy3ed852e2009-09-05 21:47:34 +00002610 number_children;
2611
2612 /*
2613 Traverse any children.
2614 */
2615 number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL;
cristybb503372010-05-27 20:51:26 +00002616 for (i=0; i < (ssize_t) number_children; i++)
cristy3ed852e2009-09-05 21:47:34 +00002617 if (node_info->child[i] != (NodeInfo *) NULL)
2618 PruneToCubeDepth(image,cube_info,node_info->child[i]);
2619 if (node_info->level > cube_info->depth)
2620 PruneChild(image,cube_info,node_info);
2621}
2622
2623/*
2624%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2625% %
2626% %
2627% %
2628% Q u a n t i z e I m a g e %
2629% %
2630% %
2631% %
2632%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2633%
2634% QuantizeImage() analyzes the colors within a reference image and chooses a
2635% fixed number of colors to represent the image. The goal of the algorithm
2636% is to minimize the color difference between the input and output image while
2637% minimizing the processing time.
2638%
2639% The format of the QuantizeImage method is:
2640%
2641% MagickBooleanType QuantizeImage(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00002642% Image *image,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002643%
2644% A description of each parameter follows:
2645%
2646% o quantize_info: Specifies a pointer to an QuantizeInfo structure.
2647%
2648% o image: the image.
2649%
cristy018f07f2011-09-04 21:15:19 +00002650% o exception: return any errors or warnings in this structure.
2651%
cristy3ed852e2009-09-05 21:47:34 +00002652*/
cristy5f7dca62011-08-12 12:38:05 +00002653
2654static MagickBooleanType DirectToColormapImage(Image *image,
2655 ExceptionInfo *exception)
2656{
2657 CacheView
2658 *image_view;
2659
2660 MagickBooleanType
2661 status;
2662
2663 register ssize_t
2664 i;
2665
2666 size_t
2667 number_colors;
2668
2669 ssize_t
2670 y;
2671
2672 status=MagickTrue;
2673 number_colors=(size_t) (image->columns*image->rows);
cristy018f07f2011-09-04 21:15:19 +00002674 if (AcquireImageColormap(image,number_colors,exception) == MagickFalse)
cristy5f7dca62011-08-12 12:38:05 +00002675 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
2676 image->filename);
2677 if (image->colors != number_colors)
2678 return(MagickFalse);
2679 i=0;
cristydb070952012-04-20 14:33:00 +00002680 image_view=AcquireAuthenticCacheView(image,exception);
cristy5f7dca62011-08-12 12:38:05 +00002681 for (y=0; y < (ssize_t) image->rows; y++)
2682 {
2683 MagickBooleanType
2684 proceed;
2685
2686 register Quantum
2687 *restrict q;
2688
2689 register ssize_t
2690 x;
2691
2692 q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,exception);
2693 if (q == (Quantum *) NULL)
2694 break;
2695 for (x=0; x < (ssize_t) image->columns; x++)
2696 {
cristye42f6582012-02-11 17:59:50 +00002697 image->colormap[i].red=(double) GetPixelRed(image,q);
2698 image->colormap[i].green=(double) GetPixelGreen(image,q);
2699 image->colormap[i].blue=(double) GetPixelBlue(image,q);
2700 image->colormap[i].alpha=(double) GetPixelAlpha(image,q);
cristy5f7dca62011-08-12 12:38:05 +00002701 SetPixelIndex(image,(Quantum) i,q);
2702 i++;
2703 q+=GetPixelChannels(image);
2704 }
2705 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
2706 break;
2707 proceed=SetImageProgress(image,AssignImageTag,(MagickOffsetType) y,
2708 image->rows);
2709 if (proceed == MagickFalse)
2710 status=MagickFalse;
2711 }
2712 image_view=DestroyCacheView(image_view);
2713 return(status);
2714}
2715
cristy3ed852e2009-09-05 21:47:34 +00002716MagickExport MagickBooleanType QuantizeImage(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00002717 Image *image,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002718{
2719 CubeInfo
2720 *cube_info;
2721
2722 MagickBooleanType
2723 status;
2724
cristybb503372010-05-27 20:51:26 +00002725 size_t
cristy3ed852e2009-09-05 21:47:34 +00002726 depth,
2727 maximum_colors;
2728
2729 assert(quantize_info != (const QuantizeInfo *) NULL);
2730 assert(quantize_info->signature == MagickSignature);
2731 assert(image != (Image *) NULL);
2732 assert(image->signature == MagickSignature);
2733 if (image->debug != MagickFalse)
2734 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename);
2735 maximum_colors=quantize_info->number_colors;
2736 if (maximum_colors == 0)
2737 maximum_colors=MaxColormapSize;
2738 if (maximum_colors > MaxColormapSize)
2739 maximum_colors=MaxColormapSize;
cristy5f7dca62011-08-12 12:38:05 +00002740 if ((image->columns*image->rows) <= maximum_colors)
cristy8a11cb12011-10-19 23:53:34 +00002741 (void) DirectToColormapImage(image,exception);
2742 if ((IsImageGray(image,exception) != MagickFalse) &&
cristy8e752752011-04-16 13:48:22 +00002743 (image->matte == MagickFalse))
cristy018f07f2011-09-04 21:15:19 +00002744 (void) SetGrayscaleImage(image,exception);
cristy3ed852e2009-09-05 21:47:34 +00002745 if ((image->storage_class == PseudoClass) &&
2746 (image->colors <= maximum_colors))
2747 return(MagickTrue);
2748 depth=quantize_info->tree_depth;
2749 if (depth == 0)
2750 {
cristybb503372010-05-27 20:51:26 +00002751 size_t
cristy3ed852e2009-09-05 21:47:34 +00002752 colors;
2753
2754 /*
2755 Depth of color tree is: Log4(colormap size)+2.
2756 */
2757 colors=maximum_colors;
2758 for (depth=1; colors != 0; depth++)
2759 colors>>=2;
cristycbda6112012-05-27 20:57:16 +00002760 if ((quantize_info->dither_method != NoDitherMethod) && (depth > 2))
cristy3ed852e2009-09-05 21:47:34 +00002761 depth--;
2762 if ((image->matte != MagickFalse) && (depth > 5))
2763 depth--;
2764 }
2765 /*
2766 Initialize color cube.
2767 */
2768 cube_info=GetCubeInfo(quantize_info,depth,maximum_colors);
2769 if (cube_info == (CubeInfo *) NULL)
2770 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
2771 image->filename);
cristy8a11cb12011-10-19 23:53:34 +00002772 status=ClassifyImageColors(cube_info,image,exception);
cristy3ed852e2009-09-05 21:47:34 +00002773 if (status != MagickFalse)
2774 {
2775 /*
2776 Reduce the number of colors in the image.
2777 */
2778 ReduceImageColors(image,cube_info);
cristy018f07f2011-09-04 21:15:19 +00002779 status=AssignImageColors(image,cube_info,exception);
cristy3ed852e2009-09-05 21:47:34 +00002780 }
2781 DestroyCubeInfo(cube_info);
2782 return(status);
2783}
2784
2785/*
2786%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2787% %
2788% %
2789% %
2790% Q u a n t i z e I m a g e s %
2791% %
2792% %
2793% %
2794%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2795%
2796% QuantizeImages() analyzes the colors within a set of reference images and
2797% chooses a fixed number of colors to represent the set. The goal of the
2798% algorithm is to minimize the color difference between the input and output
2799% images while minimizing the processing time.
2800%
2801% The format of the QuantizeImages method is:
2802%
2803% MagickBooleanType QuantizeImages(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00002804% Image *images,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002805%
2806% A description of each parameter follows:
2807%
2808% o quantize_info: Specifies a pointer to an QuantizeInfo structure.
2809%
2810% o images: Specifies a pointer to a list of Image structures.
2811%
cristy018f07f2011-09-04 21:15:19 +00002812% o exception: return any errors or warnings in this structure.
2813%
cristy3ed852e2009-09-05 21:47:34 +00002814*/
2815MagickExport MagickBooleanType QuantizeImages(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00002816 Image *images,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00002817{
2818 CubeInfo
2819 *cube_info;
2820
2821 Image
2822 *image;
2823
2824 MagickBooleanType
2825 proceed,
2826 status;
2827
2828 MagickProgressMonitor
2829 progress_monitor;
2830
cristybb503372010-05-27 20:51:26 +00002831 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002832 i;
2833
cristybb503372010-05-27 20:51:26 +00002834 size_t
cristy3ed852e2009-09-05 21:47:34 +00002835 depth,
2836 maximum_colors,
2837 number_images;
2838
2839 assert(quantize_info != (const QuantizeInfo *) NULL);
2840 assert(quantize_info->signature == MagickSignature);
2841 assert(images != (Image *) NULL);
2842 assert(images->signature == MagickSignature);
2843 if (images->debug != MagickFalse)
2844 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",images->filename);
2845 if (GetNextImageInList(images) == (Image *) NULL)
2846 {
2847 /*
2848 Handle a single image with QuantizeImage.
2849 */
cristy018f07f2011-09-04 21:15:19 +00002850 status=QuantizeImage(quantize_info,images,exception);
cristy3ed852e2009-09-05 21:47:34 +00002851 return(status);
2852 }
2853 status=MagickFalse;
2854 maximum_colors=quantize_info->number_colors;
2855 if (maximum_colors == 0)
2856 maximum_colors=MaxColormapSize;
2857 if (maximum_colors > MaxColormapSize)
2858 maximum_colors=MaxColormapSize;
2859 depth=quantize_info->tree_depth;
2860 if (depth == 0)
2861 {
cristybb503372010-05-27 20:51:26 +00002862 size_t
cristy3ed852e2009-09-05 21:47:34 +00002863 colors;
2864
2865 /*
2866 Depth of color tree is: Log4(colormap size)+2.
2867 */
2868 colors=maximum_colors;
2869 for (depth=1; colors != 0; depth++)
2870 colors>>=2;
cristycbda6112012-05-27 20:57:16 +00002871 if (quantize_info->dither_method != NoDitherMethod)
cristy3ed852e2009-09-05 21:47:34 +00002872 depth--;
2873 }
2874 /*
2875 Initialize color cube.
2876 */
2877 cube_info=GetCubeInfo(quantize_info,depth,maximum_colors);
2878 if (cube_info == (CubeInfo *) NULL)
2879 {
cristy8a11cb12011-10-19 23:53:34 +00002880 (void) ThrowMagickException(exception,GetMagickModule(),
anthonye5b39652012-04-21 05:37:29 +00002881 ResourceLimitError,"MemoryAllocationFailed","'%s'",images->filename);
cristy3ed852e2009-09-05 21:47:34 +00002882 return(MagickFalse);
2883 }
2884 number_images=GetImageListLength(images);
2885 image=images;
2886 for (i=0; image != (Image *) NULL; i++)
2887 {
2888 progress_monitor=SetImageProgressMonitor(image,(MagickProgressMonitor) NULL,
2889 image->client_data);
cristy8a11cb12011-10-19 23:53:34 +00002890 status=ClassifyImageColors(cube_info,image,exception);
cristy3ed852e2009-09-05 21:47:34 +00002891 if (status == MagickFalse)
2892 break;
2893 (void) SetImageProgressMonitor(image,progress_monitor,image->client_data);
cristycee97112010-05-28 00:44:52 +00002894 proceed=SetImageProgress(image,AssignImageTag,(MagickOffsetType) i,
2895 number_images);
cristy3ed852e2009-09-05 21:47:34 +00002896 if (proceed == MagickFalse)
2897 break;
2898 image=GetNextImageInList(image);
2899 }
2900 if (status != MagickFalse)
2901 {
2902 /*
2903 Reduce the number of colors in an image sequence.
2904 */
2905 ReduceImageColors(images,cube_info);
2906 image=images;
2907 for (i=0; image != (Image *) NULL; i++)
2908 {
2909 progress_monitor=SetImageProgressMonitor(image,(MagickProgressMonitor)
2910 NULL,image->client_data);
cristy018f07f2011-09-04 21:15:19 +00002911 status=AssignImageColors(image,cube_info,exception);
cristy3ed852e2009-09-05 21:47:34 +00002912 if (status == MagickFalse)
2913 break;
2914 (void) SetImageProgressMonitor(image,progress_monitor,
2915 image->client_data);
cristycee97112010-05-28 00:44:52 +00002916 proceed=SetImageProgress(image,AssignImageTag,(MagickOffsetType) i,
2917 number_images);
cristy3ed852e2009-09-05 21:47:34 +00002918 if (proceed == MagickFalse)
2919 break;
2920 image=GetNextImageInList(image);
2921 }
2922 }
2923 DestroyCubeInfo(cube_info);
2924 return(status);
2925}
2926
2927/*
2928%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2929% %
2930% %
2931% %
2932+ R e d u c e %
2933% %
2934% %
2935% %
2936%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2937%
2938% Reduce() traverses the color cube tree and prunes any node whose
2939% quantization error falls below a particular threshold.
2940%
2941% The format of the Reduce method is:
2942%
2943% Reduce(const Image *image,CubeInfo *cube_info,const NodeInfo *node_info)
2944%
2945% A description of each parameter follows.
2946%
2947% o image: the image.
2948%
2949% o cube_info: A pointer to the Cube structure.
2950%
2951% o node_info: pointer to node in color cube tree that is to be pruned.
2952%
2953*/
2954static void Reduce(const Image *image,CubeInfo *cube_info,
2955 const NodeInfo *node_info)
2956{
cristybb503372010-05-27 20:51:26 +00002957 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00002958 i;
2959
cristybb503372010-05-27 20:51:26 +00002960 size_t
cristy3ed852e2009-09-05 21:47:34 +00002961 number_children;
2962
2963 /*
2964 Traverse any children.
2965 */
2966 number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL;
cristybb503372010-05-27 20:51:26 +00002967 for (i=0; i < (ssize_t) number_children; i++)
cristy3ed852e2009-09-05 21:47:34 +00002968 if (node_info->child[i] != (NodeInfo *) NULL)
2969 Reduce(image,cube_info,node_info->child[i]);
2970 if (node_info->quantize_error <= cube_info->pruning_threshold)
2971 PruneChild(image,cube_info,node_info);
2972 else
2973 {
2974 /*
2975 Find minimum pruning threshold.
2976 */
2977 if (node_info->number_unique > 0)
2978 cube_info->colors++;
2979 if (node_info->quantize_error < cube_info->next_threshold)
2980 cube_info->next_threshold=node_info->quantize_error;
2981 }
2982}
2983
2984/*
2985%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2986% %
2987% %
2988% %
2989+ R e d u c e I m a g e C o l o r s %
2990% %
2991% %
2992% %
2993%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2994%
2995% ReduceImageColors() repeatedly prunes the tree until the number of nodes
2996% with n2 > 0 is less than or equal to the maximum number of colors allowed
2997% in the output image. On any given iteration over the tree, it selects
2998% those nodes whose E value is minimal for pruning and merges their
2999% color statistics upward. It uses a pruning threshold, Ep, to govern
3000% node selection as follows:
3001%
3002% Ep = 0
3003% while number of nodes with (n2 > 0) > required maximum number of colors
3004% prune all nodes such that E <= Ep
3005% Set Ep to minimum E in remaining nodes
3006%
3007% This has the effect of minimizing any quantization error when merging
3008% two nodes together.
3009%
3010% When a node to be pruned has offspring, the pruning procedure invokes
3011% itself recursively in order to prune the tree from the leaves upward.
3012% n2, Sr, Sg, and Sb in a node being pruned are always added to the
3013% corresponding data in that node's parent. This retains the pruned
3014% node's color characteristics for later averaging.
3015%
3016% For each node, n2 pixels exist for which that node represents the
3017% smallest volume in RGB space containing those pixel's colors. When n2
3018% > 0 the node will uniquely define a color in the output image. At the
3019% beginning of reduction, n2 = 0 for all nodes except a the leaves of
3020% the tree which represent colors present in the input image.
3021%
3022% The other pixel count, n1, indicates the total number of colors
3023% within the cubic volume which the node represents. This includes n1 -
3024% n2 pixels whose colors should be defined by nodes at a lower level in
3025% the tree.
3026%
3027% The format of the ReduceImageColors method is:
3028%
3029% ReduceImageColors(const Image *image,CubeInfo *cube_info)
3030%
3031% A description of each parameter follows.
3032%
3033% o image: the image.
3034%
3035% o cube_info: A pointer to the Cube structure.
3036%
3037*/
3038static void ReduceImageColors(const Image *image,CubeInfo *cube_info)
3039{
3040#define ReduceImageTag "Reduce/Image"
3041
3042 MagickBooleanType
3043 proceed;
3044
3045 MagickOffsetType
3046 offset;
3047
cristybb503372010-05-27 20:51:26 +00003048 size_t
cristy3ed852e2009-09-05 21:47:34 +00003049 span;
3050
3051 cube_info->next_threshold=0.0;
3052 for (span=cube_info->colors; cube_info->colors > cube_info->maximum_colors; )
3053 {
3054 cube_info->pruning_threshold=cube_info->next_threshold;
3055 cube_info->next_threshold=cube_info->root->quantize_error-1;
3056 cube_info->colors=0;
3057 Reduce(image,cube_info,cube_info->root);
3058 offset=(MagickOffsetType) span-cube_info->colors;
3059 proceed=SetImageProgress(image,ReduceImageTag,offset,span-
3060 cube_info->maximum_colors+1);
3061 if (proceed == MagickFalse)
3062 break;
3063 }
3064}
3065
3066/*
3067%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3068% %
3069% %
3070% %
3071% R e m a p I m a g e %
3072% %
3073% %
3074% %
3075%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3076%
anthony31f1bf72012-01-30 12:37:22 +00003077% RemapImage() replaces the colors of an image with a dither of the colors
3078% provided.
cristy3ed852e2009-09-05 21:47:34 +00003079%
3080% The format of the RemapImage method is:
3081%
3082% MagickBooleanType RemapImage(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00003083% Image *image,const Image *remap_image,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00003084%
3085% A description of each parameter follows:
3086%
3087% o quantize_info: Specifies a pointer to an QuantizeInfo structure.
3088%
3089% o image: the image.
3090%
3091% o remap_image: the reference image.
3092%
cristy018f07f2011-09-04 21:15:19 +00003093% o exception: return any errors or warnings in this structure.
3094%
cristy3ed852e2009-09-05 21:47:34 +00003095*/
3096MagickExport MagickBooleanType RemapImage(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00003097 Image *image,const Image *remap_image,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00003098{
3099 CubeInfo
3100 *cube_info;
3101
3102 MagickBooleanType
3103 status;
3104
3105 /*
3106 Initialize color cube.
3107 */
3108 assert(image != (Image *) NULL);
3109 assert(image->signature == MagickSignature);
3110 if (image->debug != MagickFalse)
3111 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename);
3112 assert(remap_image != (Image *) NULL);
3113 assert(remap_image->signature == MagickSignature);
3114 cube_info=GetCubeInfo(quantize_info,MaxTreeDepth,
3115 quantize_info->number_colors);
3116 if (cube_info == (CubeInfo *) NULL)
3117 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
3118 image->filename);
cristy8a11cb12011-10-19 23:53:34 +00003119 status=ClassifyImageColors(cube_info,remap_image,exception);
cristy3ed852e2009-09-05 21:47:34 +00003120 if (status != MagickFalse)
3121 {
3122 /*
3123 Classify image colors from the reference image.
3124 */
3125 cube_info->quantize_info->number_colors=cube_info->colors;
cristy018f07f2011-09-04 21:15:19 +00003126 status=AssignImageColors(image,cube_info,exception);
cristy3ed852e2009-09-05 21:47:34 +00003127 }
3128 DestroyCubeInfo(cube_info);
3129 return(status);
3130}
3131
3132/*
3133%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3134% %
3135% %
3136% %
3137% R e m a p I m a g e s %
3138% %
3139% %
3140% %
3141%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3142%
3143% RemapImages() replaces the colors of a sequence of images with the
3144% closest color from a reference image.
3145%
3146% The format of the RemapImage method is:
3147%
3148% MagickBooleanType RemapImages(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00003149% Image *images,Image *remap_image,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00003150%
3151% A description of each parameter follows:
3152%
3153% o quantize_info: Specifies a pointer to an QuantizeInfo structure.
3154%
3155% o images: the image sequence.
3156%
3157% o remap_image: the reference image.
3158%
cristy018f07f2011-09-04 21:15:19 +00003159% o exception: return any errors or warnings in this structure.
3160%
cristy3ed852e2009-09-05 21:47:34 +00003161*/
3162MagickExport MagickBooleanType RemapImages(const QuantizeInfo *quantize_info,
cristy018f07f2011-09-04 21:15:19 +00003163 Image *images,const Image *remap_image,ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00003164{
3165 CubeInfo
3166 *cube_info;
3167
3168 Image
3169 *image;
3170
3171 MagickBooleanType
3172 status;
3173
3174 assert(images != (Image *) NULL);
3175 assert(images->signature == MagickSignature);
3176 if (images->debug != MagickFalse)
3177 (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",images->filename);
3178 image=images;
3179 if (remap_image == (Image *) NULL)
3180 {
3181 /*
3182 Create a global colormap for an image sequence.
3183 */
cristy018f07f2011-09-04 21:15:19 +00003184 status=QuantizeImages(quantize_info,images,exception);
cristy3ed852e2009-09-05 21:47:34 +00003185 return(status);
3186 }
3187 /*
3188 Classify image colors from the reference image.
3189 */
3190 cube_info=GetCubeInfo(quantize_info,MaxTreeDepth,
3191 quantize_info->number_colors);
3192 if (cube_info == (CubeInfo *) NULL)
3193 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
3194 image->filename);
cristy018f07f2011-09-04 21:15:19 +00003195 status=ClassifyImageColors(cube_info,remap_image,exception);
cristy3ed852e2009-09-05 21:47:34 +00003196 if (status != MagickFalse)
3197 {
3198 /*
3199 Classify image colors from the reference image.
3200 */
3201 cube_info->quantize_info->number_colors=cube_info->colors;
3202 image=images;
3203 for ( ; image != (Image *) NULL; image=GetNextImageInList(image))
3204 {
cristy018f07f2011-09-04 21:15:19 +00003205 status=AssignImageColors(image,cube_info,exception);
cristy3ed852e2009-09-05 21:47:34 +00003206 if (status == MagickFalse)
3207 break;
3208 }
3209 }
3210 DestroyCubeInfo(cube_info);
3211 return(status);
3212}
3213
3214/*
3215%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3216% %
3217% %
3218% %
3219% S e t G r a y s c a l e I m a g e %
3220% %
3221% %
3222% %
3223%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3224%
3225% SetGrayscaleImage() converts an image to a PseudoClass grayscale image.
3226%
3227% The format of the SetGrayscaleImage method is:
3228%
cristy018f07f2011-09-04 21:15:19 +00003229% MagickBooleanType SetGrayscaleImage(Image *image,ExceptionInfo *exeption)
cristy3ed852e2009-09-05 21:47:34 +00003230%
3231% A description of each parameter follows:
3232%
3233% o image: The image.
3234%
cristy018f07f2011-09-04 21:15:19 +00003235% o exception: return any errors or warnings in this structure.
3236%
cristy3ed852e2009-09-05 21:47:34 +00003237*/
3238
3239#if defined(__cplusplus) || defined(c_plusplus)
3240extern "C" {
3241#endif
3242
3243static int IntensityCompare(const void *x,const void *y)
3244{
cristy101ab702011-10-13 13:06:32 +00003245 PixelInfo
cristy3ed852e2009-09-05 21:47:34 +00003246 *color_1,
3247 *color_2;
3248
cristyecc31b12011-02-13 00:32:29 +00003249 ssize_t
3250 intensity;
3251
cristy101ab702011-10-13 13:06:32 +00003252 color_1=(PixelInfo *) x;
3253 color_2=(PixelInfo *) y;
cristyada285b2012-07-07 19:00:46 +00003254 intensity=(ssize_t) (GetPixelInfoIntensity(color_1)-(ssize_t)
3255 GetPixelInfoIntensity(color_2));
cristycee97112010-05-28 00:44:52 +00003256 return((int) intensity);
cristy3ed852e2009-09-05 21:47:34 +00003257}
3258
3259#if defined(__cplusplus) || defined(c_plusplus)
3260}
3261#endif
3262
cristy018f07f2011-09-04 21:15:19 +00003263static MagickBooleanType SetGrayscaleImage(Image *image,
3264 ExceptionInfo *exception)
cristy3ed852e2009-09-05 21:47:34 +00003265{
cristyc4c8d132010-01-07 01:58:38 +00003266 CacheView
3267 *image_view;
3268
cristyecc31b12011-02-13 00:32:29 +00003269 MagickBooleanType
3270 status;
cristy3ed852e2009-09-05 21:47:34 +00003271
cristy101ab702011-10-13 13:06:32 +00003272 PixelInfo
cristy3ed852e2009-09-05 21:47:34 +00003273 *colormap;
3274
cristybb503372010-05-27 20:51:26 +00003275 register ssize_t
cristy3ed852e2009-09-05 21:47:34 +00003276 i;
3277
cristyecc31b12011-02-13 00:32:29 +00003278 ssize_t
3279 *colormap_index,
3280 j,
3281 y;
cristy3ed852e2009-09-05 21:47:34 +00003282
cristy3ed852e2009-09-05 21:47:34 +00003283 assert(image != (Image *) NULL);
3284 assert(image->signature == MagickSignature);
3285 if (image->type != GrayscaleType)
cristye941a752011-10-15 01:52:48 +00003286 (void) TransformImageColorspace(image,GRAYColorspace,exception);
cristybb503372010-05-27 20:51:26 +00003287 colormap_index=(ssize_t *) AcquireQuantumMemory(MaxMap+1,
cristy3ed852e2009-09-05 21:47:34 +00003288 sizeof(*colormap_index));
cristybb503372010-05-27 20:51:26 +00003289 if (colormap_index == (ssize_t *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00003290 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
3291 image->filename);
3292 if (image->storage_class != PseudoClass)
3293 {
cristybb503372010-05-27 20:51:26 +00003294 for (i=0; i <= (ssize_t) MaxMap; i++)
cristy3ed852e2009-09-05 21:47:34 +00003295 colormap_index[i]=(-1);
cristy018f07f2011-09-04 21:15:19 +00003296 if (AcquireImageColormap(image,MaxMap+1,exception) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +00003297 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
3298 image->filename);
3299 image->colors=0;
3300 status=MagickTrue;
cristydb070952012-04-20 14:33:00 +00003301 image_view=AcquireAuthenticCacheView(image,exception);
cristyb5d5f722009-11-04 03:03:49 +00003302#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristyac245f82012-05-05 17:13:57 +00003303 #pragma omp parallel for schedule(static,4) shared(status) \
cristy4ee2b0c2012-05-15 00:30:35 +00003304 dynamic_number_threads(image,image->columns,image->rows,1)
cristy3ed852e2009-09-05 21:47:34 +00003305#endif
cristybb503372010-05-27 20:51:26 +00003306 for (y=0; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +00003307 {
cristy4c08aed2011-07-01 19:47:50 +00003308 register Quantum
cristyc47d1f82009-11-26 01:44:43 +00003309 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +00003310
cristyecc31b12011-02-13 00:32:29 +00003311 register ssize_t
3312 x;
3313
cristy3ed852e2009-09-05 21:47:34 +00003314 if (status == MagickFalse)
3315 continue;
3316 q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,
3317 exception);
cristyacd2ed22011-08-30 01:44:23 +00003318 if (q == (Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00003319 {
3320 status=MagickFalse;
3321 continue;
3322 }
cristybb503372010-05-27 20:51:26 +00003323 for (x=0; x < (ssize_t) image->columns; x++)
cristy3ed852e2009-09-05 21:47:34 +00003324 {
cristybb503372010-05-27 20:51:26 +00003325 register size_t
cristy3ed852e2009-09-05 21:47:34 +00003326 intensity;
3327
cristy4c08aed2011-07-01 19:47:50 +00003328 intensity=ScaleQuantumToMap(GetPixelRed(image,q));
cristy3ed852e2009-09-05 21:47:34 +00003329 if (colormap_index[intensity] < 0)
3330 {
cristyb5d5f722009-11-04 03:03:49 +00003331#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristyac245f82012-05-05 17:13:57 +00003332 #pragma omp critical (MagickCore_SetGrayscaleImage)
cristy3ed852e2009-09-05 21:47:34 +00003333#endif
3334 if (colormap_index[intensity] < 0)
3335 {
cristybb503372010-05-27 20:51:26 +00003336 colormap_index[intensity]=(ssize_t) image->colors;
cristye42f6582012-02-11 17:59:50 +00003337 image->colormap[image->colors].red=(double)
3338 GetPixelRed(image,q);
3339 image->colormap[image->colors].green=(double)
3340 GetPixelGreen(image,q);
3341 image->colormap[image->colors].blue=(double)
3342 GetPixelBlue(image,q);
cristy3ed852e2009-09-05 21:47:34 +00003343 image->colors++;
3344 }
3345 }
cristy4c08aed2011-07-01 19:47:50 +00003346 SetPixelIndex(image,(Quantum)
3347 colormap_index[intensity],q);
cristyed231572011-07-14 02:18:59 +00003348 q+=GetPixelChannels(image);
cristy3ed852e2009-09-05 21:47:34 +00003349 }
3350 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
3351 status=MagickFalse;
3352 }
3353 image_view=DestroyCacheView(image_view);
3354 }
cristybb503372010-05-27 20:51:26 +00003355 for (i=0; i < (ssize_t) image->colors; i++)
cristye42f6582012-02-11 17:59:50 +00003356 image->colormap[i].alpha=(double) i;
cristy101ab702011-10-13 13:06:32 +00003357 qsort((void *) image->colormap,image->colors,sizeof(PixelInfo),
cristy3ed852e2009-09-05 21:47:34 +00003358 IntensityCompare);
cristy101ab702011-10-13 13:06:32 +00003359 colormap=(PixelInfo *) AcquireQuantumMemory(image->colors,
cristy3ed852e2009-09-05 21:47:34 +00003360 sizeof(*colormap));
cristy101ab702011-10-13 13:06:32 +00003361 if (colormap == (PixelInfo *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00003362 ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed",
3363 image->filename);
3364 j=0;
3365 colormap[j]=image->colormap[0];
cristybb503372010-05-27 20:51:26 +00003366 for (i=0; i < (ssize_t) image->colors; i++)
cristy3ed852e2009-09-05 21:47:34 +00003367 {
cristy101ab702011-10-13 13:06:32 +00003368 if (IsPixelInfoEquivalent(&colormap[j],&image->colormap[i]) == MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +00003369 {
3370 j++;
3371 colormap[j]=image->colormap[i];
3372 }
cristy4c08aed2011-07-01 19:47:50 +00003373 colormap_index[(ssize_t) image->colormap[i].alpha]=j;
cristy3ed852e2009-09-05 21:47:34 +00003374 }
cristybb503372010-05-27 20:51:26 +00003375 image->colors=(size_t) (j+1);
cristy101ab702011-10-13 13:06:32 +00003376 image->colormap=(PixelInfo *) RelinquishMagickMemory(image->colormap);
cristy3ed852e2009-09-05 21:47:34 +00003377 image->colormap=colormap;
3378 status=MagickTrue;
cristydb070952012-04-20 14:33:00 +00003379 image_view=AcquireAuthenticCacheView(image,exception);
cristyb5d5f722009-11-04 03:03:49 +00003380#if defined(MAGICKCORE_OPENMP_SUPPORT)
cristyac245f82012-05-05 17:13:57 +00003381 #pragma omp parallel for schedule(static,4) shared(status) \
cristy4ee2b0c2012-05-15 00:30:35 +00003382 dynamic_number_threads(image,image->columns,image->rows,1)
cristy3ed852e2009-09-05 21:47:34 +00003383#endif
cristybb503372010-05-27 20:51:26 +00003384 for (y=0; y < (ssize_t) image->rows; y++)
cristy3ed852e2009-09-05 21:47:34 +00003385 {
cristy4c08aed2011-07-01 19:47:50 +00003386 register Quantum
cristyc47d1f82009-11-26 01:44:43 +00003387 *restrict q;
cristy3ed852e2009-09-05 21:47:34 +00003388
cristyecc31b12011-02-13 00:32:29 +00003389 register ssize_t
3390 x;
3391
cristy3ed852e2009-09-05 21:47:34 +00003392 if (status == MagickFalse)
3393 continue;
3394 q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,exception);
cristyacd2ed22011-08-30 01:44:23 +00003395 if (q == (Quantum *) NULL)
cristy3ed852e2009-09-05 21:47:34 +00003396 {
3397 status=MagickFalse;
3398 continue;
3399 }
cristybb503372010-05-27 20:51:26 +00003400 for (x=0; x < (ssize_t) image->columns; x++)
cristy4c08aed2011-07-01 19:47:50 +00003401 {
3402 SetPixelIndex(image,(Quantum) colormap_index[ScaleQuantumToMap(
3403 GetPixelIndex(image,q))],q);
cristyed231572011-07-14 02:18:59 +00003404 q+=GetPixelChannels(image);
cristy4c08aed2011-07-01 19:47:50 +00003405 }
cristy3ed852e2009-09-05 21:47:34 +00003406 if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse)
3407 status=MagickFalse;
3408 }
3409 image_view=DestroyCacheView(image_view);
cristybb503372010-05-27 20:51:26 +00003410 colormap_index=(ssize_t *) RelinquishMagickMemory(colormap_index);
cristy3ed852e2009-09-05 21:47:34 +00003411 image->type=GrayscaleType;
cristy8a11cb12011-10-19 23:53:34 +00003412 if (IsImageMonochrome(image,exception) != MagickFalse)
cristy3ed852e2009-09-05 21:47:34 +00003413 image->type=BilevelType;
3414 return(status);
3415}