cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1 | /* |
| 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 | % % |
cristy | 16af1cb | 2009-12-11 21:38:29 +0000 | [diff] [blame] | 20 | % Copyright 1999-2010 ImageMagick Studio LLC, a non-profit organization % |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 21 | % 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 | */ |
| 177 | #include "magick/studio.h" |
| 178 | #include "magick/cache-view.h" |
| 179 | #include "magick/color.h" |
| 180 | #include "magick/color-private.h" |
| 181 | #include "magick/colorspace.h" |
| 182 | #include "magick/enhance.h" |
| 183 | #include "magick/exception.h" |
| 184 | #include "magick/exception-private.h" |
cristy | f2e1166 | 2009-10-14 01:24:43 +0000 | [diff] [blame] | 185 | #include "magick/histogram.h" |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 186 | #include "magick/image.h" |
| 187 | #include "magick/image-private.h" |
| 188 | #include "magick/list.h" |
| 189 | #include "magick/memory_.h" |
| 190 | #include "magick/monitor.h" |
| 191 | #include "magick/monitor-private.h" |
| 192 | #include "magick/option.h" |
| 193 | #include "magick/pixel-private.h" |
| 194 | #include "magick/quantize.h" |
| 195 | #include "magick/quantum.h" |
| 196 | #include "magick/string_.h" |
| 197 | |
| 198 | /* |
| 199 | Define declarations. |
| 200 | */ |
| 201 | #define CacheShift 2 |
| 202 | #define ErrorQueueLength 16 |
| 203 | #define MaxNodes 266817 |
| 204 | #define MaxTreeDepth 8 |
| 205 | #define NodesInAList 1920 |
| 206 | |
| 207 | /* |
| 208 | Typdef declarations. |
| 209 | */ |
| 210 | typedef struct _RealPixelPacket |
| 211 | { |
| 212 | MagickRealType |
| 213 | red, |
| 214 | green, |
| 215 | blue, |
| 216 | opacity; |
| 217 | } RealPixelPacket; |
| 218 | |
| 219 | typedef struct _NodeInfo |
| 220 | { |
| 221 | struct _NodeInfo |
| 222 | *parent, |
| 223 | *child[16]; |
| 224 | |
| 225 | MagickSizeType |
| 226 | number_unique; |
| 227 | |
| 228 | RealPixelPacket |
| 229 | total_color; |
| 230 | |
| 231 | MagickRealType |
| 232 | quantize_error; |
| 233 | |
| 234 | unsigned long |
| 235 | color_number, |
| 236 | id, |
| 237 | level; |
| 238 | } NodeInfo; |
| 239 | |
| 240 | typedef struct _Nodes |
| 241 | { |
| 242 | NodeInfo |
| 243 | *nodes; |
| 244 | |
| 245 | struct _Nodes |
| 246 | *next; |
| 247 | } Nodes; |
| 248 | |
| 249 | typedef struct _CubeInfo |
| 250 | { |
| 251 | NodeInfo |
| 252 | *root; |
| 253 | |
| 254 | unsigned long |
| 255 | colors, |
| 256 | maximum_colors; |
| 257 | |
| 258 | long |
| 259 | transparent_index; |
| 260 | |
| 261 | MagickSizeType |
| 262 | transparent_pixels; |
| 263 | |
| 264 | RealPixelPacket |
| 265 | target; |
| 266 | |
| 267 | MagickRealType |
| 268 | distance, |
| 269 | pruning_threshold, |
| 270 | next_threshold; |
| 271 | |
| 272 | unsigned long |
| 273 | nodes, |
| 274 | free_nodes, |
| 275 | color_number; |
| 276 | |
| 277 | NodeInfo |
| 278 | *next_node; |
| 279 | |
| 280 | Nodes |
| 281 | *node_queue; |
| 282 | |
| 283 | long |
| 284 | *cache; |
| 285 | |
| 286 | RealPixelPacket |
| 287 | error[ErrorQueueLength]; |
| 288 | |
| 289 | MagickRealType |
| 290 | weights[ErrorQueueLength]; |
| 291 | |
| 292 | QuantizeInfo |
| 293 | *quantize_info; |
| 294 | |
| 295 | MagickBooleanType |
| 296 | associate_alpha; |
| 297 | |
| 298 | long |
| 299 | x, |
| 300 | y; |
| 301 | |
| 302 | unsigned long |
| 303 | depth; |
| 304 | |
| 305 | MagickOffsetType |
| 306 | offset; |
| 307 | |
| 308 | MagickSizeType |
| 309 | span; |
| 310 | } CubeInfo; |
| 311 | |
| 312 | /* |
| 313 | Method prototypes. |
| 314 | */ |
| 315 | static CubeInfo |
| 316 | *GetCubeInfo(const QuantizeInfo *,const unsigned long,const unsigned long); |
| 317 | |
| 318 | static NodeInfo |
| 319 | *GetNodeInfo(CubeInfo *,const unsigned long,const unsigned long,NodeInfo *); |
| 320 | |
| 321 | static MagickBooleanType |
| 322 | AssignImageColors(Image *,CubeInfo *), |
| 323 | ClassifyImageColors(CubeInfo *,const Image *,ExceptionInfo *), |
| 324 | DitherImage(Image *,CubeInfo *), |
| 325 | SetGrayscaleImage(Image *); |
| 326 | |
| 327 | static unsigned long |
| 328 | DefineImageColormap(Image *,CubeInfo *,NodeInfo *); |
| 329 | |
| 330 | static void |
| 331 | ClosestColor(const Image *,CubeInfo *,const NodeInfo *), |
| 332 | DestroyCubeInfo(CubeInfo *), |
| 333 | PruneLevel(const Image *,CubeInfo *,const NodeInfo *), |
| 334 | PruneToCubeDepth(const Image *,CubeInfo *,const NodeInfo *), |
| 335 | ReduceImageColors(const Image *,CubeInfo *); |
| 336 | |
| 337 | /* |
| 338 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 339 | % % |
| 340 | % % |
| 341 | % % |
| 342 | % A c q u i r e Q u a n t i z e I n f o % |
| 343 | % % |
| 344 | % % |
| 345 | % % |
| 346 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 347 | % |
| 348 | % AcquireQuantizeInfo() allocates the QuantizeInfo structure. |
| 349 | % |
| 350 | % The format of the AcquireQuantizeInfo method is: |
| 351 | % |
| 352 | % QuantizeInfo *AcquireQuantizeInfo(const ImageInfo *image_info) |
| 353 | % |
| 354 | % A description of each parameter follows: |
| 355 | % |
| 356 | % o image_info: the image info. |
| 357 | % |
| 358 | */ |
| 359 | MagickExport QuantizeInfo *AcquireQuantizeInfo(const ImageInfo *image_info) |
| 360 | { |
| 361 | QuantizeInfo |
| 362 | *quantize_info; |
| 363 | |
cristy | 9082321 | 2009-12-12 20:48:33 +0000 | [diff] [blame] | 364 | quantize_info=(QuantizeInfo *) AcquireAlignedMemory(1,sizeof(*quantize_info)); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 365 | if (quantize_info == (QuantizeInfo *) NULL) |
| 366 | ThrowFatalException(ResourceLimitFatalError,"MemoryAllocationFailed"); |
| 367 | GetQuantizeInfo(quantize_info); |
| 368 | if (image_info != (ImageInfo *) NULL) |
| 369 | { |
| 370 | const char |
| 371 | *option; |
| 372 | |
| 373 | quantize_info->dither=image_info->dither; |
| 374 | option=GetImageOption(image_info,"dither"); |
| 375 | if (option != (const char *) NULL) |
| 376 | quantize_info->dither_method=(DitherMethod) ParseMagickOption( |
| 377 | MagickDitherOptions,MagickFalse,option); |
| 378 | quantize_info->measure_error=image_info->verbose; |
| 379 | } |
| 380 | return(quantize_info); |
| 381 | } |
| 382 | |
| 383 | /* |
| 384 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 385 | % % |
| 386 | % % |
| 387 | % % |
| 388 | + A s s i g n I m a g e C o l o r s % |
| 389 | % % |
| 390 | % % |
| 391 | % % |
| 392 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 393 | % |
| 394 | % AssignImageColors() generates the output image from the pruned tree. The |
| 395 | % output image consists of two parts: (1) A color map, which is an array |
| 396 | % of color descriptions (RGB triples) for each color present in the |
| 397 | % output image; (2) A pixel array, which represents each pixel as an |
| 398 | % index into the color map array. |
| 399 | % |
| 400 | % First, the assignment phase makes one pass over the pruned color |
| 401 | % description tree to establish the image's color map. For each node |
| 402 | % with n2 > 0, it divides Sr, Sg, and Sb by n2 . This produces the mean |
| 403 | % color of all pixels that classify no lower than this node. Each of |
| 404 | % these colors becomes an entry in the color map. |
| 405 | % |
| 406 | % Finally, the assignment phase reclassifies each pixel in the pruned |
| 407 | % tree to identify the deepest node containing the pixel's color. The |
| 408 | % pixel's value in the pixel array becomes the index of this node's mean |
| 409 | % color in the color map. |
| 410 | % |
| 411 | % The format of the AssignImageColors() method is: |
| 412 | % |
| 413 | % MagickBooleanType AssignImageColors(Image *image,CubeInfo *cube_info) |
| 414 | % |
| 415 | % A description of each parameter follows. |
| 416 | % |
| 417 | % o image: the image. |
| 418 | % |
| 419 | % o cube_info: A pointer to the Cube structure. |
| 420 | % |
| 421 | */ |
| 422 | |
| 423 | static inline void AssociateAlphaPixel(const CubeInfo *cube_info, |
| 424 | const PixelPacket *pixel,RealPixelPacket *alpha_pixel) |
| 425 | { |
| 426 | MagickRealType |
| 427 | alpha; |
| 428 | |
| 429 | if ((cube_info->associate_alpha == MagickFalse) || |
| 430 | (pixel->opacity == OpaqueOpacity)) |
| 431 | { |
| 432 | alpha_pixel->red=(MagickRealType) pixel->red; |
| 433 | alpha_pixel->green=(MagickRealType) pixel->green; |
| 434 | alpha_pixel->blue=(MagickRealType) pixel->blue; |
| 435 | alpha_pixel->opacity=(MagickRealType) pixel->opacity; |
| 436 | return; |
| 437 | } |
| 438 | alpha=(MagickRealType) (QuantumScale*(QuantumRange-pixel->opacity)); |
| 439 | alpha_pixel->red=alpha*pixel->red; |
| 440 | alpha_pixel->green=alpha*pixel->green; |
| 441 | alpha_pixel->blue=alpha*pixel->blue; |
| 442 | alpha_pixel->opacity=(MagickRealType) pixel->opacity; |
| 443 | } |
| 444 | |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 445 | static inline Quantum ClampToUnsignedQuantum(const MagickRealType value) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 446 | { |
| 447 | if (value <= 0.0) |
| 448 | return((Quantum) 0); |
| 449 | if (value >= QuantumRange) |
| 450 | return((Quantum) QuantumRange); |
| 451 | return((Quantum) (value+0.5)); |
| 452 | } |
| 453 | |
| 454 | static inline unsigned long ColorToNodeId(const CubeInfo *cube_info, |
| 455 | const RealPixelPacket *pixel,unsigned long index) |
| 456 | { |
| 457 | unsigned long |
| 458 | id; |
| 459 | |
| 460 | id=(unsigned long) ( |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 461 | ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->red)) >> index) & 0x1) | |
| 462 | ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->green)) >> index) & 0x1) << 1 | |
| 463 | ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->blue)) >> index) & 0x1) << 2); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 464 | if (cube_info->associate_alpha != MagickFalse) |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 465 | id|=((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel->opacity)) >> index) & 0x1) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 466 | << 3; |
| 467 | return(id); |
| 468 | } |
| 469 | |
| 470 | static inline MagickBooleanType IsSameColor(const Image *image, |
| 471 | const PixelPacket *p,const PixelPacket *q) |
| 472 | { |
| 473 | if ((p->red != q->red) || (p->green != q->green) || (p->blue != q->blue)) |
| 474 | return(MagickFalse); |
| 475 | if ((image->matte != MagickFalse) && (p->opacity != q->opacity)) |
| 476 | return(MagickFalse); |
| 477 | return(MagickTrue); |
| 478 | } |
| 479 | |
| 480 | static MagickBooleanType AssignImageColors(Image *image,CubeInfo *cube_info) |
| 481 | { |
| 482 | #define AssignImageTag "Assign/Image" |
| 483 | |
| 484 | long |
| 485 | y; |
| 486 | |
| 487 | MagickBooleanType |
| 488 | proceed; |
| 489 | |
| 490 | RealPixelPacket |
| 491 | pixel; |
| 492 | |
| 493 | register long |
| 494 | i, |
| 495 | x; |
| 496 | |
| 497 | register const NodeInfo |
| 498 | *node_info; |
| 499 | |
| 500 | ssize_t |
| 501 | count; |
| 502 | |
| 503 | unsigned long |
| 504 | id, |
| 505 | index; |
| 506 | |
| 507 | /* |
| 508 | Allocate image colormap. |
| 509 | */ |
| 510 | if ((cube_info->quantize_info->colorspace != UndefinedColorspace) && |
| 511 | (cube_info->quantize_info->colorspace != CMYKColorspace)) |
| 512 | (void) TransformImageColorspace((Image *) image, |
| 513 | cube_info->quantize_info->colorspace); |
| 514 | else |
| 515 | if ((image->colorspace != GRAYColorspace) && |
| 516 | (image->colorspace != RGBColorspace) && |
| 517 | (image->colorspace != CMYColorspace)) |
| 518 | (void) TransformImageColorspace((Image *) image,RGBColorspace); |
| 519 | if (AcquireImageColormap(image,cube_info->colors) == MagickFalse) |
| 520 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 521 | image->filename); |
| 522 | image->colors=0; |
| 523 | cube_info->transparent_pixels=0; |
| 524 | cube_info->transparent_index=(-1); |
| 525 | (void) DefineImageColormap(image,cube_info,cube_info->root); |
| 526 | /* |
| 527 | Create a reduced color image. |
| 528 | */ |
| 529 | if ((cube_info->quantize_info->dither != MagickFalse) && |
| 530 | (cube_info->quantize_info->dither_method != NoDitherMethod)) |
| 531 | (void) DitherImage(image,cube_info); |
| 532 | else |
| 533 | { |
| 534 | ExceptionInfo |
| 535 | *exception; |
| 536 | |
| 537 | CacheView |
| 538 | *image_view; |
| 539 | |
| 540 | exception=(&image->exception); |
| 541 | image_view=AcquireCacheView(image); |
| 542 | for (y=0; y < (long) image->rows; y++) |
| 543 | { |
| 544 | register IndexPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 545 | *restrict indexes; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 546 | |
| 547 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 548 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 549 | |
| 550 | q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1, |
| 551 | exception); |
| 552 | if (q == (PixelPacket *) NULL) |
| 553 | break; |
| 554 | indexes=GetCacheViewAuthenticIndexQueue(image_view); |
| 555 | for (x=0; x < (long) image->columns; x+=count) |
| 556 | { |
| 557 | /* |
| 558 | Identify the deepest node containing the pixel's color. |
| 559 | */ |
| 560 | for (count=1; (x+count) < (long) image->columns; count++) |
| 561 | if (IsSameColor(image,q,q+count) == MagickFalse) |
| 562 | break; |
| 563 | AssociateAlphaPixel(cube_info,q,&pixel); |
| 564 | node_info=cube_info->root; |
| 565 | for (index=MaxTreeDepth-1; (long) index > 0; index--) |
| 566 | { |
| 567 | id=ColorToNodeId(cube_info,&pixel,index); |
| 568 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 569 | break; |
| 570 | node_info=node_info->child[id]; |
| 571 | } |
| 572 | /* |
| 573 | Find closest color among siblings and their children. |
| 574 | */ |
| 575 | cube_info->target=pixel; |
| 576 | cube_info->distance=(MagickRealType) (4.0*(QuantumRange+1.0)* |
| 577 | (QuantumRange+1.0)+1.0); |
| 578 | ClosestColor(image,cube_info,node_info->parent); |
| 579 | index=cube_info->color_number; |
| 580 | for (i=0; i < (long) count; i++) |
| 581 | { |
| 582 | if (image->storage_class == PseudoClass) |
| 583 | indexes[x+i]=(IndexPacket) index; |
| 584 | if (cube_info->quantize_info->measure_error == MagickFalse) |
| 585 | { |
| 586 | q->red=image->colormap[index].red; |
| 587 | q->green=image->colormap[index].green; |
| 588 | q->blue=image->colormap[index].blue; |
| 589 | if (cube_info->associate_alpha != MagickFalse) |
| 590 | q->opacity=image->colormap[index].opacity; |
| 591 | } |
| 592 | q++; |
| 593 | } |
| 594 | } |
| 595 | if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse) |
| 596 | break; |
| 597 | proceed=SetImageProgress(image,AssignImageTag,y,image->rows); |
| 598 | if (proceed == MagickFalse) |
| 599 | break; |
| 600 | } |
| 601 | image_view=DestroyCacheView(image_view); |
| 602 | } |
| 603 | if (cube_info->quantize_info->measure_error != MagickFalse) |
| 604 | (void) GetImageQuantizeError(image); |
| 605 | if ((cube_info->quantize_info->number_colors == 2) && |
| 606 | (cube_info->quantize_info->colorspace == GRAYColorspace)) |
| 607 | { |
| 608 | Quantum |
| 609 | intensity; |
| 610 | |
| 611 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 612 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 613 | |
| 614 | /* |
| 615 | Monochrome image. |
| 616 | */ |
| 617 | q=image->colormap; |
| 618 | for (i=0; i < (long) image->colors; i++) |
| 619 | { |
| 620 | intensity=(Quantum) (PixelIntensity(q) < ((MagickRealType) |
| 621 | QuantumRange/2.0) ? 0 : QuantumRange); |
| 622 | q->red=intensity; |
| 623 | q->green=intensity; |
| 624 | q->blue=intensity; |
| 625 | q++; |
| 626 | } |
| 627 | } |
| 628 | (void) SyncImage(image); |
| 629 | if ((cube_info->quantize_info->colorspace != UndefinedColorspace) && |
| 630 | (cube_info->quantize_info->colorspace != CMYKColorspace)) |
| 631 | (void) TransformImageColorspace((Image *) image,RGBColorspace); |
| 632 | return(MagickTrue); |
| 633 | } |
| 634 | |
| 635 | /* |
| 636 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 637 | % % |
| 638 | % % |
| 639 | % % |
| 640 | + C l a s s i f y I m a g e C o l o r s % |
| 641 | % % |
| 642 | % % |
| 643 | % % |
| 644 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 645 | % |
| 646 | % ClassifyImageColors() begins by initializing a color description tree |
| 647 | % of sufficient depth to represent each possible input color in a leaf. |
| 648 | % However, it is impractical to generate a fully-formed color |
| 649 | % description tree in the storage_class phase for realistic values of |
| 650 | % Cmax. If colors components in the input image are quantized to k-bit |
| 651 | % precision, so that Cmax= 2k-1, the tree would need k levels below the |
| 652 | % root node to allow representing each possible input color in a leaf. |
| 653 | % This becomes prohibitive because the tree's total number of nodes is |
| 654 | % 1 + sum(i=1,k,8k). |
| 655 | % |
| 656 | % A complete tree would require 19,173,961 nodes for k = 8, Cmax = 255. |
| 657 | % Therefore, to avoid building a fully populated tree, QUANTIZE: (1) |
| 658 | % Initializes data structures for nodes only as they are needed; (2) |
| 659 | % Chooses a maximum depth for the tree as a function of the desired |
| 660 | % number of colors in the output image (currently log2(colormap size)). |
| 661 | % |
| 662 | % For each pixel in the input image, storage_class scans downward from |
| 663 | % the root of the color description tree. At each level of the tree it |
| 664 | % identifies the single node which represents a cube in RGB space |
| 665 | % containing It updates the following data for each such node: |
| 666 | % |
| 667 | % n1 : Number of pixels whose color is contained in the RGB cube |
| 668 | % which this node represents; |
| 669 | % |
| 670 | % n2 : Number of pixels whose color is not represented in a node at |
| 671 | % lower depth in the tree; initially, n2 = 0 for all nodes except |
| 672 | % leaves of the tree. |
| 673 | % |
| 674 | % Sr, Sg, Sb : Sums of the red, green, and blue component values for |
| 675 | % all pixels not classified at a lower depth. The combination of |
| 676 | % these sums and n2 will ultimately characterize the mean color of a |
| 677 | % set of pixels represented by this node. |
| 678 | % |
| 679 | % E: the distance squared in RGB space between each pixel contained |
| 680 | % within a node and the nodes' center. This represents the quantization |
| 681 | % error for a node. |
| 682 | % |
| 683 | % The format of the ClassifyImageColors() method is: |
| 684 | % |
| 685 | % MagickBooleanType ClassifyImageColors(CubeInfo *cube_info, |
| 686 | % const Image *image,ExceptionInfo *exception) |
| 687 | % |
| 688 | % A description of each parameter follows. |
| 689 | % |
| 690 | % o cube_info: A pointer to the Cube structure. |
| 691 | % |
| 692 | % o image: the image. |
| 693 | % |
| 694 | */ |
| 695 | |
| 696 | static inline void SetAssociatedAlpha(const Image *image,CubeInfo *cube_info) |
| 697 | { |
| 698 | MagickBooleanType |
| 699 | associate_alpha; |
| 700 | |
| 701 | associate_alpha=image->matte; |
| 702 | if (cube_info->quantize_info->colorspace == TransparentColorspace) |
| 703 | associate_alpha=MagickFalse; |
| 704 | if ((cube_info->quantize_info->number_colors == 2) && |
| 705 | (cube_info->quantize_info->colorspace == GRAYColorspace)) |
| 706 | associate_alpha=MagickFalse; |
| 707 | cube_info->associate_alpha=associate_alpha; |
| 708 | } |
| 709 | |
| 710 | static MagickBooleanType ClassifyImageColors(CubeInfo *cube_info, |
| 711 | const Image *image,ExceptionInfo *exception) |
| 712 | { |
| 713 | #define ClassifyImageTag "Classify/Image" |
| 714 | |
cristy | c4c8d13 | 2010-01-07 01:58:38 +0000 | [diff] [blame] | 715 | CacheView |
| 716 | *image_view; |
| 717 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 718 | long |
| 719 | y; |
| 720 | |
| 721 | MagickBooleanType |
| 722 | proceed; |
| 723 | |
| 724 | MagickRealType |
| 725 | bisect; |
| 726 | |
| 727 | NodeInfo |
| 728 | *node_info; |
| 729 | |
| 730 | RealPixelPacket |
| 731 | error, |
| 732 | mid, |
| 733 | midpoint, |
| 734 | pixel; |
| 735 | |
| 736 | size_t |
| 737 | count; |
| 738 | |
| 739 | unsigned long |
| 740 | id, |
| 741 | index, |
| 742 | level; |
| 743 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 744 | /* |
| 745 | Classify the first cube_info->maximum_colors colors to a tree depth of 8. |
| 746 | */ |
| 747 | SetAssociatedAlpha(image,cube_info); |
| 748 | if ((cube_info->quantize_info->colorspace != UndefinedColorspace) && |
| 749 | (cube_info->quantize_info->colorspace != CMYKColorspace)) |
| 750 | (void) TransformImageColorspace((Image *) image, |
| 751 | cube_info->quantize_info->colorspace); |
| 752 | else |
| 753 | if ((image->colorspace != GRAYColorspace) && |
| 754 | (image->colorspace != CMYColorspace) && |
| 755 | (image->colorspace != RGBColorspace)) |
| 756 | (void) TransformImageColorspace((Image *) image,RGBColorspace); |
| 757 | midpoint.red=(MagickRealType) QuantumRange/2.0; |
| 758 | midpoint.green=(MagickRealType) QuantumRange/2.0; |
| 759 | midpoint.blue=(MagickRealType) QuantumRange/2.0; |
| 760 | midpoint.opacity=(MagickRealType) QuantumRange/2.0; |
| 761 | error.opacity=0.0; |
| 762 | image_view=AcquireCacheView(image); |
| 763 | for (y=0; y < (long) image->rows; y++) |
| 764 | { |
| 765 | register const PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 766 | *restrict p; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 767 | |
| 768 | register long |
| 769 | x; |
| 770 | |
| 771 | p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception); |
| 772 | if (p == (const PixelPacket *) NULL) |
| 773 | break; |
| 774 | if (cube_info->nodes > MaxNodes) |
| 775 | { |
| 776 | /* |
| 777 | Prune one level if the color tree is too large. |
| 778 | */ |
| 779 | PruneLevel(image,cube_info,cube_info->root); |
| 780 | cube_info->depth--; |
| 781 | } |
| 782 | for (x=0; x < (long) image->columns; x+=(long) count) |
| 783 | { |
| 784 | /* |
| 785 | Start at the root and descend the color cube tree. |
| 786 | */ |
| 787 | for (count=1; (x+count) < image->columns; count++) |
| 788 | if (IsSameColor(image,p,p+count) == MagickFalse) |
| 789 | break; |
| 790 | AssociateAlphaPixel(cube_info,p,&pixel); |
| 791 | index=MaxTreeDepth-1; |
| 792 | bisect=((MagickRealType) QuantumRange+1.0)/2.0; |
| 793 | mid=midpoint; |
| 794 | node_info=cube_info->root; |
| 795 | for (level=1; level <= MaxTreeDepth; level++) |
| 796 | { |
| 797 | bisect*=0.5; |
| 798 | id=ColorToNodeId(cube_info,&pixel,index); |
| 799 | mid.red+=(id & 1) != 0 ? bisect : -bisect; |
| 800 | mid.green+=(id & 2) != 0 ? bisect : -bisect; |
| 801 | mid.blue+=(id & 4) != 0 ? bisect : -bisect; |
| 802 | mid.opacity+=(id & 8) != 0 ? bisect : -bisect; |
| 803 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 804 | { |
| 805 | /* |
| 806 | Set colors of new node to contain pixel. |
| 807 | */ |
| 808 | node_info->child[id]=GetNodeInfo(cube_info,id,level,node_info); |
| 809 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 810 | (void) ThrowMagickException(exception,GetMagickModule(), |
| 811 | ResourceLimitError,"MemoryAllocationFailed","`%s'", |
| 812 | image->filename); |
| 813 | if (level == MaxTreeDepth) |
| 814 | cube_info->colors++; |
| 815 | } |
| 816 | /* |
| 817 | Approximate the quantization error represented by this node. |
| 818 | */ |
| 819 | node_info=node_info->child[id]; |
| 820 | error.red=QuantumScale*(pixel.red-mid.red); |
| 821 | error.green=QuantumScale*(pixel.green-mid.green); |
| 822 | error.blue=QuantumScale*(pixel.blue-mid.blue); |
| 823 | if (cube_info->associate_alpha != MagickFalse) |
| 824 | error.opacity=QuantumScale*(pixel.opacity-mid.opacity); |
| 825 | node_info->quantize_error+=sqrt((double) (count*error.red*error.red+ |
| 826 | count*error.green*error.green+count*error.blue*error.blue+ |
| 827 | count*error.opacity*error.opacity)); |
| 828 | cube_info->root->quantize_error+=node_info->quantize_error; |
| 829 | index--; |
| 830 | } |
| 831 | /* |
| 832 | Sum RGB for this leaf for later derivation of the mean cube color. |
| 833 | */ |
| 834 | node_info->number_unique+=count; |
| 835 | node_info->total_color.red+=count*QuantumScale*pixel.red; |
| 836 | node_info->total_color.green+=count*QuantumScale*pixel.green; |
| 837 | node_info->total_color.blue+=count*QuantumScale*pixel.blue; |
| 838 | if (cube_info->associate_alpha != MagickFalse) |
| 839 | node_info->total_color.opacity+=count*QuantumScale*pixel.opacity; |
| 840 | p+=count; |
| 841 | } |
| 842 | if (cube_info->colors > cube_info->maximum_colors) |
| 843 | { |
| 844 | PruneToCubeDepth(image,cube_info,cube_info->root); |
| 845 | break; |
| 846 | } |
| 847 | proceed=SetImageProgress(image,ClassifyImageTag,y,image->rows); |
| 848 | if (proceed == MagickFalse) |
| 849 | break; |
| 850 | } |
| 851 | for (y++; y < (long) image->rows; y++) |
| 852 | { |
| 853 | register const PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 854 | *restrict p; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 855 | |
| 856 | register long |
| 857 | x; |
| 858 | |
| 859 | p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception); |
| 860 | if (p == (const PixelPacket *) NULL) |
| 861 | break; |
| 862 | if (cube_info->nodes > MaxNodes) |
| 863 | { |
| 864 | /* |
| 865 | Prune one level if the color tree is too large. |
| 866 | */ |
| 867 | PruneLevel(image,cube_info,cube_info->root); |
| 868 | cube_info->depth--; |
| 869 | } |
| 870 | for (x=0; x < (long) image->columns; x+=(long) count) |
| 871 | { |
| 872 | /* |
| 873 | Start at the root and descend the color cube tree. |
| 874 | */ |
| 875 | for (count=1; (x+count) < image->columns; count++) |
| 876 | if (IsSameColor(image,p,p+count) == MagickFalse) |
| 877 | break; |
| 878 | AssociateAlphaPixel(cube_info,p,&pixel); |
| 879 | index=MaxTreeDepth-1; |
| 880 | bisect=((MagickRealType) QuantumRange+1.0)/2.0; |
| 881 | mid=midpoint; |
| 882 | node_info=cube_info->root; |
| 883 | for (level=1; level <= cube_info->depth; level++) |
| 884 | { |
| 885 | bisect*=0.5; |
| 886 | id=ColorToNodeId(cube_info,&pixel,index); |
| 887 | mid.red+=(id & 1) != 0 ? bisect : -bisect; |
| 888 | mid.green+=(id & 2) != 0 ? bisect : -bisect; |
| 889 | mid.blue+=(id & 4) != 0 ? bisect : -bisect; |
| 890 | mid.opacity+=(id & 8) != 0 ? bisect : -bisect; |
| 891 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 892 | { |
| 893 | /* |
| 894 | Set colors of new node to contain pixel. |
| 895 | */ |
| 896 | node_info->child[id]=GetNodeInfo(cube_info,id,level,node_info); |
| 897 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 898 | (void) ThrowMagickException(exception,GetMagickModule(), |
| 899 | ResourceLimitError,"MemoryAllocationFailed","%s", |
| 900 | image->filename); |
| 901 | if (level == cube_info->depth) |
| 902 | cube_info->colors++; |
| 903 | } |
| 904 | /* |
| 905 | Approximate the quantization error represented by this node. |
| 906 | */ |
| 907 | node_info=node_info->child[id]; |
| 908 | error.red=QuantumScale*(pixel.red-mid.red); |
| 909 | error.green=QuantumScale*(pixel.green-mid.green); |
| 910 | error.blue=QuantumScale*(pixel.blue-mid.blue); |
| 911 | if (cube_info->associate_alpha != MagickFalse) |
| 912 | error.opacity=QuantumScale*(pixel.opacity-mid.opacity); |
| 913 | node_info->quantize_error+=sqrt((double) (count*error.red*error.red+ |
| 914 | count*error.green*error.green+error.blue*error.blue+ |
| 915 | count*error.opacity*error.opacity)); |
| 916 | cube_info->root->quantize_error+=node_info->quantize_error; |
| 917 | index--; |
| 918 | } |
| 919 | /* |
| 920 | Sum RGB for this leaf for later derivation of the mean cube color. |
| 921 | */ |
| 922 | node_info->number_unique+=count; |
| 923 | node_info->total_color.red+=count*QuantumScale*pixel.red; |
| 924 | node_info->total_color.green+=count*QuantumScale*pixel.green; |
| 925 | node_info->total_color.blue+=count*QuantumScale*pixel.blue; |
| 926 | if (cube_info->associate_alpha != MagickFalse) |
| 927 | node_info->total_color.opacity+=count*QuantumScale*pixel.opacity; |
| 928 | p+=count; |
| 929 | } |
| 930 | proceed=SetImageProgress(image,ClassifyImageTag,y,image->rows); |
| 931 | if (proceed == MagickFalse) |
| 932 | break; |
| 933 | } |
| 934 | image_view=DestroyCacheView(image_view); |
| 935 | if ((cube_info->quantize_info->colorspace != UndefinedColorspace) && |
| 936 | (cube_info->quantize_info->colorspace != CMYKColorspace)) |
| 937 | (void) TransformImageColorspace((Image *) image,RGBColorspace); |
| 938 | return(MagickTrue); |
| 939 | } |
| 940 | |
| 941 | /* |
| 942 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 943 | % % |
| 944 | % % |
| 945 | % % |
| 946 | % C l o n e Q u a n t i z e I n f o % |
| 947 | % % |
| 948 | % % |
| 949 | % % |
| 950 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 951 | % |
| 952 | % CloneQuantizeInfo() makes a duplicate of the given quantize info structure, |
| 953 | % or if quantize info is NULL, a new one. |
| 954 | % |
| 955 | % The format of the CloneQuantizeInfo method is: |
| 956 | % |
| 957 | % QuantizeInfo *CloneQuantizeInfo(const QuantizeInfo *quantize_info) |
| 958 | % |
| 959 | % A description of each parameter follows: |
| 960 | % |
| 961 | % o clone_info: Method CloneQuantizeInfo returns a duplicate of the given |
| 962 | % quantize info, or if image info is NULL a new one. |
| 963 | % |
| 964 | % o quantize_info: a structure of type info. |
| 965 | % |
| 966 | */ |
| 967 | MagickExport QuantizeInfo *CloneQuantizeInfo(const QuantizeInfo *quantize_info) |
| 968 | { |
| 969 | QuantizeInfo |
| 970 | *clone_info; |
| 971 | |
cristy | 9082321 | 2009-12-12 20:48:33 +0000 | [diff] [blame] | 972 | clone_info=(QuantizeInfo *) AcquireAlignedMemory(1,sizeof(*clone_info)); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 973 | if (clone_info == (QuantizeInfo *) NULL) |
| 974 | ThrowFatalException(ResourceLimitFatalError,"MemoryAllocationFailed"); |
| 975 | GetQuantizeInfo(clone_info); |
| 976 | if (quantize_info == (QuantizeInfo *) NULL) |
| 977 | return(clone_info); |
| 978 | clone_info->number_colors=quantize_info->number_colors; |
| 979 | clone_info->tree_depth=quantize_info->tree_depth; |
| 980 | clone_info->dither=quantize_info->dither; |
| 981 | clone_info->dither_method=quantize_info->dither_method; |
| 982 | clone_info->colorspace=quantize_info->colorspace; |
| 983 | clone_info->measure_error=quantize_info->measure_error; |
| 984 | return(clone_info); |
| 985 | } |
| 986 | |
| 987 | /* |
| 988 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 989 | % % |
| 990 | % % |
| 991 | % % |
| 992 | + C l o s e s t C o l o r % |
| 993 | % % |
| 994 | % % |
| 995 | % % |
| 996 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 997 | % |
| 998 | % ClosestColor() traverses the color cube tree at a particular node and |
| 999 | % determines which colormap entry best represents the input color. |
| 1000 | % |
| 1001 | % The format of the ClosestColor method is: |
| 1002 | % |
| 1003 | % void ClosestColor(const Image *image,CubeInfo *cube_info, |
| 1004 | % const NodeInfo *node_info) |
| 1005 | % |
| 1006 | % A description of each parameter follows. |
| 1007 | % |
| 1008 | % o image: the image. |
| 1009 | % |
| 1010 | % o cube_info: A pointer to the Cube structure. |
| 1011 | % |
| 1012 | % o node_info: the address of a structure of type NodeInfo which points to a |
| 1013 | % node in the color cube tree that is to be pruned. |
| 1014 | % |
| 1015 | */ |
| 1016 | static void ClosestColor(const Image *image,CubeInfo *cube_info, |
| 1017 | const NodeInfo *node_info) |
| 1018 | { |
| 1019 | register long |
| 1020 | i; |
| 1021 | |
| 1022 | unsigned long |
| 1023 | number_children; |
| 1024 | |
| 1025 | /* |
| 1026 | Traverse any children. |
| 1027 | */ |
| 1028 | number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL; |
| 1029 | for (i=0; i < (long) number_children; i++) |
| 1030 | if (node_info->child[i] != (NodeInfo *) NULL) |
| 1031 | ClosestColor(image,cube_info,node_info->child[i]); |
| 1032 | if (node_info->number_unique != 0) |
| 1033 | { |
| 1034 | MagickRealType |
| 1035 | pixel; |
| 1036 | |
| 1037 | register MagickRealType |
| 1038 | alpha, |
| 1039 | beta, |
| 1040 | distance; |
| 1041 | |
| 1042 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1043 | *restrict p; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1044 | |
| 1045 | register RealPixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1046 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1047 | |
| 1048 | /* |
| 1049 | Determine if this color is "closest". |
| 1050 | */ |
| 1051 | p=image->colormap+node_info->color_number; |
| 1052 | q=(&cube_info->target); |
| 1053 | alpha=1.0; |
| 1054 | beta=1.0; |
| 1055 | if (cube_info->associate_alpha == MagickFalse) |
| 1056 | { |
cristy | 46f0820 | 2010-01-10 04:04:21 +0000 | [diff] [blame] | 1057 | alpha=(MagickRealType) (QuantumScale*GetAlphaPixelComponent(p)); |
| 1058 | beta=(MagickRealType) (QuantumScale*GetAlphaPixelComponent(q)); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1059 | } |
| 1060 | pixel=alpha*p->red-beta*q->red; |
| 1061 | distance=pixel*pixel; |
| 1062 | if (distance < cube_info->distance) |
| 1063 | { |
| 1064 | pixel=alpha*p->green-beta*q->green; |
| 1065 | distance+=pixel*pixel; |
| 1066 | if (distance < cube_info->distance) |
| 1067 | { |
| 1068 | pixel=alpha*p->blue-beta*q->blue; |
| 1069 | distance+=pixel*pixel; |
| 1070 | if (distance < cube_info->distance) |
| 1071 | { |
| 1072 | pixel=alpha-beta; |
| 1073 | distance+=pixel*pixel; |
| 1074 | if (distance < cube_info->distance) |
| 1075 | { |
| 1076 | cube_info->distance=distance; |
| 1077 | cube_info->color_number=node_info->color_number; |
| 1078 | } |
| 1079 | } |
| 1080 | } |
| 1081 | } |
| 1082 | } |
| 1083 | } |
| 1084 | |
| 1085 | /* |
| 1086 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1087 | % % |
| 1088 | % % |
| 1089 | % % |
| 1090 | % C o m p r e s s I m a g e C o l o r m a p % |
| 1091 | % % |
| 1092 | % % |
| 1093 | % % |
| 1094 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1095 | % |
| 1096 | % CompressImageColormap() compresses an image colormap by removing any |
| 1097 | % duplicate or unused color entries. |
| 1098 | % |
| 1099 | % The format of the CompressImageColormap method is: |
| 1100 | % |
| 1101 | % MagickBooleanType CompressImageColormap(Image *image) |
| 1102 | % |
| 1103 | % A description of each parameter follows: |
| 1104 | % |
| 1105 | % o image: the image. |
| 1106 | % |
| 1107 | */ |
| 1108 | MagickExport MagickBooleanType CompressImageColormap(Image *image) |
| 1109 | { |
| 1110 | QuantizeInfo |
| 1111 | quantize_info; |
| 1112 | |
| 1113 | assert(image != (Image *) NULL); |
| 1114 | assert(image->signature == MagickSignature); |
| 1115 | if (image->debug != MagickFalse) |
| 1116 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename); |
| 1117 | if (IsPaletteImage(image,&image->exception) == MagickFalse) |
| 1118 | return(MagickFalse); |
| 1119 | GetQuantizeInfo(&quantize_info); |
| 1120 | quantize_info.number_colors=image->colors; |
| 1121 | quantize_info.tree_depth=MaxTreeDepth; |
| 1122 | return(QuantizeImage(&quantize_info,image)); |
| 1123 | } |
| 1124 | |
| 1125 | /* |
| 1126 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1127 | % % |
| 1128 | % % |
| 1129 | % % |
| 1130 | + D e f i n e I m a g e C o l o r m a p % |
| 1131 | % % |
| 1132 | % % |
| 1133 | % % |
| 1134 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1135 | % |
| 1136 | % DefineImageColormap() traverses the color cube tree and notes each colormap |
| 1137 | % entry. A colormap entry is any node in the color cube tree where the |
| 1138 | % of unique colors is not zero. DefineImageColormap() returns the number of |
| 1139 | % colors in the image colormap. |
| 1140 | % |
| 1141 | % The format of the DefineImageColormap method is: |
| 1142 | % |
| 1143 | % unsigned long DefineImageColormap(Image *image,CubeInfo *cube_info, |
| 1144 | % NodeInfo *node_info) |
| 1145 | % |
| 1146 | % A description of each parameter follows. |
| 1147 | % |
| 1148 | % o image: the image. |
| 1149 | % |
| 1150 | % o cube_info: A pointer to the Cube structure. |
| 1151 | % |
| 1152 | % o node_info: the address of a structure of type NodeInfo which points to a |
| 1153 | % node in the color cube tree that is to be pruned. |
| 1154 | % |
| 1155 | */ |
| 1156 | static unsigned long DefineImageColormap(Image *image,CubeInfo *cube_info, |
| 1157 | NodeInfo *node_info) |
| 1158 | { |
| 1159 | register long |
| 1160 | i; |
| 1161 | |
| 1162 | unsigned long |
| 1163 | number_children; |
| 1164 | |
| 1165 | /* |
| 1166 | Traverse any children. |
| 1167 | */ |
| 1168 | number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL; |
| 1169 | for (i=0; i < (long) number_children; i++) |
| 1170 | if (node_info->child[i] != (NodeInfo *) NULL) |
| 1171 | DefineImageColormap(image,cube_info,node_info->child[i]); |
| 1172 | if (node_info->number_unique != 0) |
| 1173 | { |
| 1174 | register MagickRealType |
| 1175 | alpha; |
| 1176 | |
| 1177 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1178 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1179 | |
| 1180 | /* |
| 1181 | Colormap entry is defined by the mean color in this cube. |
| 1182 | */ |
| 1183 | q=image->colormap+image->colors; |
| 1184 | alpha=(MagickRealType) ((MagickOffsetType) node_info->number_unique); |
| 1185 | alpha=1.0/(fabs(alpha) <= MagickEpsilon ? 1.0 : alpha); |
| 1186 | if (cube_info->associate_alpha == MagickFalse) |
| 1187 | { |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1188 | q->red=ClampToQuantum((MagickRealType) (alpha*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1189 | node_info->total_color.red)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1190 | q->green=ClampToQuantum((MagickRealType) (alpha*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1191 | node_info->total_color.green)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1192 | q->blue=ClampToQuantum((MagickRealType) (alpha*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1193 | node_info->total_color.blue)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1194 | SetOpacityPixelComponent(q,OpaqueOpacity); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1195 | } |
| 1196 | else |
| 1197 | { |
| 1198 | MagickRealType |
| 1199 | opacity; |
| 1200 | |
| 1201 | opacity=(MagickRealType) (alpha*QuantumRange* |
| 1202 | node_info->total_color.opacity); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1203 | q->opacity=ClampToQuantum(opacity); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1204 | if (q->opacity == OpaqueOpacity) |
| 1205 | { |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1206 | q->red=ClampToQuantum((MagickRealType) (alpha*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1207 | node_info->total_color.red)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1208 | q->green=ClampToQuantum((MagickRealType) (alpha*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1209 | node_info->total_color.green)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1210 | q->blue=ClampToQuantum((MagickRealType) (alpha*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1211 | node_info->total_color.blue)); |
| 1212 | } |
| 1213 | else |
| 1214 | { |
| 1215 | MagickRealType |
| 1216 | gamma; |
| 1217 | |
| 1218 | gamma=(MagickRealType) (QuantumScale*(QuantumRange- |
| 1219 | (MagickRealType) q->opacity)); |
| 1220 | gamma=1.0/(fabs(gamma) <= MagickEpsilon ? 1.0 : gamma); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1221 | q->red=ClampToQuantum((MagickRealType) (alpha*gamma*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1222 | node_info->total_color.red)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1223 | q->green=ClampToQuantum((MagickRealType) (alpha*gamma* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1224 | QuantumRange*node_info->total_color.green)); |
cristy | ce70c17 | 2010-01-07 17:15:30 +0000 | [diff] [blame] | 1225 | q->blue=ClampToQuantum((MagickRealType) (alpha*gamma*QuantumRange* |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1226 | node_info->total_color.blue)); |
| 1227 | if (node_info->number_unique > cube_info->transparent_pixels) |
| 1228 | { |
| 1229 | cube_info->transparent_pixels=node_info->number_unique; |
| 1230 | cube_info->transparent_index=(long) image->colors; |
| 1231 | } |
| 1232 | } |
| 1233 | } |
| 1234 | node_info->color_number=image->colors++; |
| 1235 | } |
| 1236 | return(image->colors); |
| 1237 | } |
| 1238 | |
| 1239 | /* |
| 1240 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1241 | % % |
| 1242 | % % |
| 1243 | % % |
| 1244 | + D e s t r o y C u b e I n f o % |
| 1245 | % % |
| 1246 | % % |
| 1247 | % % |
| 1248 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1249 | % |
| 1250 | % DestroyCubeInfo() deallocates memory associated with an image. |
| 1251 | % |
| 1252 | % The format of the DestroyCubeInfo method is: |
| 1253 | % |
| 1254 | % DestroyCubeInfo(CubeInfo *cube_info) |
| 1255 | % |
| 1256 | % A description of each parameter follows: |
| 1257 | % |
| 1258 | % o cube_info: the address of a structure of type CubeInfo. |
| 1259 | % |
| 1260 | */ |
| 1261 | static void DestroyCubeInfo(CubeInfo *cube_info) |
| 1262 | { |
| 1263 | register Nodes |
| 1264 | *nodes; |
| 1265 | |
| 1266 | /* |
| 1267 | Release color cube tree storage. |
| 1268 | */ |
| 1269 | do |
| 1270 | { |
| 1271 | nodes=cube_info->node_queue->next; |
| 1272 | cube_info->node_queue->nodes=(NodeInfo *) RelinquishMagickMemory( |
| 1273 | cube_info->node_queue->nodes); |
| 1274 | cube_info->node_queue=(Nodes *) RelinquishMagickMemory( |
| 1275 | cube_info->node_queue); |
| 1276 | cube_info->node_queue=nodes; |
| 1277 | } while (cube_info->node_queue != (Nodes *) NULL); |
| 1278 | if (cube_info->cache != (long *) NULL) |
| 1279 | cube_info->cache=(long *) RelinquishMagickMemory(cube_info->cache); |
| 1280 | cube_info->quantize_info=DestroyQuantizeInfo(cube_info->quantize_info); |
| 1281 | cube_info=(CubeInfo *) RelinquishMagickMemory(cube_info); |
| 1282 | } |
| 1283 | |
| 1284 | /* |
| 1285 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1286 | % % |
| 1287 | % % |
| 1288 | % % |
| 1289 | % D e s t r o y Q u a n t i z e I n f o % |
| 1290 | % % |
| 1291 | % % |
| 1292 | % % |
| 1293 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1294 | % |
| 1295 | % DestroyQuantizeInfo() deallocates memory associated with an QuantizeInfo |
| 1296 | % structure. |
| 1297 | % |
| 1298 | % The format of the DestroyQuantizeInfo method is: |
| 1299 | % |
| 1300 | % QuantizeInfo *DestroyQuantizeInfo(QuantizeInfo *quantize_info) |
| 1301 | % |
| 1302 | % A description of each parameter follows: |
| 1303 | % |
| 1304 | % o quantize_info: Specifies a pointer to an QuantizeInfo structure. |
| 1305 | % |
| 1306 | */ |
| 1307 | MagickExport QuantizeInfo *DestroyQuantizeInfo(QuantizeInfo *quantize_info) |
| 1308 | { |
| 1309 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"..."); |
| 1310 | assert(quantize_info != (QuantizeInfo *) NULL); |
| 1311 | assert(quantize_info->signature == MagickSignature); |
| 1312 | quantize_info->signature=(~MagickSignature); |
| 1313 | quantize_info=(QuantizeInfo *) RelinquishMagickMemory(quantize_info); |
| 1314 | return(quantize_info); |
| 1315 | } |
| 1316 | |
| 1317 | /* |
| 1318 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1319 | % % |
| 1320 | % % |
| 1321 | % % |
| 1322 | + D i t h e r I m a g e % |
| 1323 | % % |
| 1324 | % % |
| 1325 | % % |
| 1326 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1327 | % |
| 1328 | % DitherImage() distributes the difference between an original image and |
| 1329 | % the corresponding color reduced algorithm to neighboring pixels using |
| 1330 | % serpentine-scan Floyd-Steinberg error diffusion. DitherImage returns |
| 1331 | % MagickTrue if the image is dithered otherwise MagickFalse. |
| 1332 | % |
| 1333 | % The format of the DitherImage method is: |
| 1334 | % |
| 1335 | % MagickBooleanType DitherImage(Image *image,CubeInfo *cube_info) |
| 1336 | % |
| 1337 | % A description of each parameter follows. |
| 1338 | % |
| 1339 | % o image: the image. |
| 1340 | % |
| 1341 | % o cube_info: A pointer to the Cube structure. |
| 1342 | % |
| 1343 | */ |
| 1344 | |
| 1345 | static MagickBooleanType FloydSteinbergDither(Image *image,CubeInfo *cube_info) |
| 1346 | { |
| 1347 | #define DitherImageTag "Dither/Image" |
| 1348 | |
cristy | c4c8d13 | 2010-01-07 01:58:38 +0000 | [diff] [blame] | 1349 | CacheView |
| 1350 | *image_view; |
| 1351 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1352 | ExceptionInfo |
| 1353 | *exception; |
| 1354 | |
| 1355 | long |
| 1356 | u, |
| 1357 | v, |
| 1358 | y; |
| 1359 | |
| 1360 | MagickBooleanType |
| 1361 | proceed; |
| 1362 | |
| 1363 | RealPixelPacket |
| 1364 | color, |
| 1365 | *current, |
| 1366 | pixel, |
| 1367 | *previous, |
| 1368 | *scanlines; |
| 1369 | |
| 1370 | register CubeInfo |
| 1371 | *p; |
| 1372 | |
| 1373 | unsigned long |
| 1374 | index; |
| 1375 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1376 | /* |
| 1377 | Distribute quantization error using Floyd-Steinberg. |
| 1378 | */ |
| 1379 | scanlines=(RealPixelPacket *) AcquireQuantumMemory(image->columns, |
| 1380 | 2*sizeof(*scanlines)); |
| 1381 | if (scanlines == (RealPixelPacket *) NULL) |
| 1382 | return(MagickFalse); |
| 1383 | p=cube_info; |
| 1384 | exception=(&image->exception); |
| 1385 | image_view=AcquireCacheView(image); |
| 1386 | for (y=0; y < (long) image->rows; y++) |
| 1387 | { |
| 1388 | register IndexPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1389 | *restrict indexes; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1390 | |
| 1391 | register long |
| 1392 | i, |
| 1393 | x; |
| 1394 | |
| 1395 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1396 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1397 | |
| 1398 | q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,exception); |
| 1399 | if (q == (PixelPacket *) NULL) |
| 1400 | return(MagickFalse); |
| 1401 | indexes=GetCacheViewAuthenticIndexQueue(image_view); |
| 1402 | current=scanlines+(y & 0x01)*image->columns; |
| 1403 | previous=scanlines+((y+1) & 0x01)*image->columns; |
| 1404 | v=(y & 0x01) ? -1 : 1; |
| 1405 | for (x=0; x < (long) image->columns; x++) |
| 1406 | { |
| 1407 | u=(y & 0x01) ? (long) image->columns-1-x : x; |
| 1408 | AssociateAlphaPixel(cube_info,q+u,&pixel); |
| 1409 | if (x > 0) |
| 1410 | { |
| 1411 | pixel.red+=7*current[u-v].red/16; |
| 1412 | pixel.green+=7*current[u-v].green/16; |
| 1413 | pixel.blue+=7*current[u-v].blue/16; |
| 1414 | if (cube_info->associate_alpha != MagickFalse) |
| 1415 | pixel.opacity+=7*current[u-v].opacity/16; |
| 1416 | } |
| 1417 | if (y > 0) |
| 1418 | { |
| 1419 | if (x < (long) (image->columns-1)) |
| 1420 | { |
| 1421 | pixel.red+=previous[u+v].red/16; |
| 1422 | pixel.green+=previous[u+v].green/16; |
| 1423 | pixel.blue+=previous[u+v].blue/16; |
| 1424 | if (cube_info->associate_alpha != MagickFalse) |
| 1425 | pixel.opacity+=previous[u+v].opacity/16; |
| 1426 | } |
| 1427 | pixel.red+=5*previous[u].red/16; |
| 1428 | pixel.green+=5*previous[u].green/16; |
| 1429 | pixel.blue+=5*previous[u].blue/16; |
| 1430 | if (cube_info->associate_alpha != MagickFalse) |
| 1431 | pixel.opacity+=5*previous[u].opacity/16; |
| 1432 | if (x > 0) |
| 1433 | { |
| 1434 | pixel.red+=3*previous[u-v].red/16; |
| 1435 | pixel.green+=3*previous[u-v].green/16; |
| 1436 | pixel.blue+=3*previous[u-v].blue/16; |
| 1437 | if (cube_info->associate_alpha != MagickFalse) |
| 1438 | pixel.opacity+=3*previous[u-v].opacity/16; |
| 1439 | } |
| 1440 | } |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 1441 | pixel.red=(MagickRealType) ClampToUnsignedQuantum(pixel.red); |
| 1442 | pixel.green=(MagickRealType) ClampToUnsignedQuantum(pixel.green); |
| 1443 | pixel.blue=(MagickRealType) ClampToUnsignedQuantum(pixel.blue); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1444 | if (cube_info->associate_alpha != MagickFalse) |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 1445 | pixel.opacity=(MagickRealType) ClampToUnsignedQuantum(pixel.opacity); |
| 1446 | i=(long) ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.red)) >> CacheShift) | |
| 1447 | (ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.green)) >> CacheShift) << 6 | |
| 1448 | (ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.blue)) >> CacheShift) << 12); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1449 | if (cube_info->associate_alpha != MagickFalse) |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 1450 | i|=((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.opacity)) >> CacheShift) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1451 | << 18); |
| 1452 | if (p->cache[i] < 0) |
| 1453 | { |
| 1454 | register NodeInfo |
| 1455 | *node_info; |
| 1456 | |
| 1457 | register unsigned long |
| 1458 | id; |
| 1459 | |
| 1460 | /* |
| 1461 | Identify the deepest node containing the pixel's color. |
| 1462 | */ |
| 1463 | node_info=p->root; |
| 1464 | for (index=MaxTreeDepth-1; (long) index > 0; index--) |
| 1465 | { |
| 1466 | id=ColorToNodeId(cube_info,&pixel,index); |
| 1467 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 1468 | break; |
| 1469 | node_info=node_info->child[id]; |
| 1470 | } |
| 1471 | /* |
| 1472 | Find closest color among siblings and their children. |
| 1473 | */ |
| 1474 | p->target=pixel; |
| 1475 | p->distance=(MagickRealType) (4.0*(QuantumRange+1.0)*(QuantumRange+ |
| 1476 | 1.0)+1.0); |
| 1477 | ClosestColor(image,p,node_info->parent); |
| 1478 | p->cache[i]=(long) p->color_number; |
| 1479 | } |
| 1480 | /* |
| 1481 | Assign pixel to closest colormap entry. |
| 1482 | */ |
| 1483 | index=(unsigned long) p->cache[i]; |
| 1484 | if (image->storage_class == PseudoClass) |
| 1485 | indexes[u]=(IndexPacket) index; |
| 1486 | if (cube_info->quantize_info->measure_error == MagickFalse) |
| 1487 | { |
| 1488 | (q+u)->red=image->colormap[index].red; |
| 1489 | (q+u)->green=image->colormap[index].green; |
| 1490 | (q+u)->blue=image->colormap[index].blue; |
| 1491 | if (cube_info->associate_alpha != MagickFalse) |
| 1492 | (q+u)->opacity=image->colormap[index].opacity; |
| 1493 | } |
| 1494 | if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse) |
| 1495 | return(MagickFalse); |
| 1496 | /* |
| 1497 | Store the error. |
| 1498 | */ |
| 1499 | AssociateAlphaPixel(cube_info,image->colormap+index,&color); |
| 1500 | current[u].red=pixel.red-color.red; |
| 1501 | current[u].green=pixel.green-color.green; |
| 1502 | current[u].blue=pixel.blue-color.blue; |
| 1503 | if (cube_info->associate_alpha != MagickFalse) |
| 1504 | current[u].opacity=pixel.opacity-color.opacity; |
| 1505 | proceed=SetImageProgress(image,DitherImageTag,p->offset,p->span); |
| 1506 | if (proceed == MagickFalse) |
| 1507 | return(MagickFalse); |
| 1508 | p->offset++; |
| 1509 | } |
| 1510 | } |
| 1511 | scanlines=(RealPixelPacket *) RelinquishMagickMemory(scanlines); |
| 1512 | image_view=DestroyCacheView(image_view); |
| 1513 | return(MagickTrue); |
| 1514 | } |
| 1515 | |
| 1516 | static MagickBooleanType |
| 1517 | RiemersmaDither(Image *,CacheView *,CubeInfo *,const unsigned int); |
| 1518 | |
| 1519 | static void Riemersma(Image *image,CacheView *image_view,CubeInfo *cube_info, |
| 1520 | const unsigned long level,const unsigned int direction) |
| 1521 | { |
| 1522 | if (level == 1) |
| 1523 | switch (direction) |
| 1524 | { |
| 1525 | case WestGravity: |
| 1526 | { |
| 1527 | (void) RiemersmaDither(image,image_view,cube_info,EastGravity); |
| 1528 | (void) RiemersmaDither(image,image_view,cube_info,SouthGravity); |
| 1529 | (void) RiemersmaDither(image,image_view,cube_info,WestGravity); |
| 1530 | break; |
| 1531 | } |
| 1532 | case EastGravity: |
| 1533 | { |
| 1534 | (void) RiemersmaDither(image,image_view,cube_info,WestGravity); |
| 1535 | (void) RiemersmaDither(image,image_view,cube_info,NorthGravity); |
| 1536 | (void) RiemersmaDither(image,image_view,cube_info,EastGravity); |
| 1537 | break; |
| 1538 | } |
| 1539 | case NorthGravity: |
| 1540 | { |
| 1541 | (void) RiemersmaDither(image,image_view,cube_info,SouthGravity); |
| 1542 | (void) RiemersmaDither(image,image_view,cube_info,EastGravity); |
| 1543 | (void) RiemersmaDither(image,image_view,cube_info,NorthGravity); |
| 1544 | break; |
| 1545 | } |
| 1546 | case SouthGravity: |
| 1547 | { |
| 1548 | (void) RiemersmaDither(image,image_view,cube_info,NorthGravity); |
| 1549 | (void) RiemersmaDither(image,image_view,cube_info,WestGravity); |
| 1550 | (void) RiemersmaDither(image,image_view,cube_info,SouthGravity); |
| 1551 | break; |
| 1552 | } |
| 1553 | default: |
| 1554 | break; |
| 1555 | } |
| 1556 | else |
| 1557 | switch (direction) |
| 1558 | { |
| 1559 | case WestGravity: |
| 1560 | { |
| 1561 | Riemersma(image,image_view,cube_info,level-1,NorthGravity); |
| 1562 | (void) RiemersmaDither(image,image_view,cube_info,EastGravity); |
| 1563 | Riemersma(image,image_view,cube_info,level-1,WestGravity); |
| 1564 | (void) RiemersmaDither(image,image_view,cube_info,SouthGravity); |
| 1565 | Riemersma(image,image_view,cube_info,level-1,WestGravity); |
| 1566 | (void) RiemersmaDither(image,image_view,cube_info,WestGravity); |
| 1567 | Riemersma(image,image_view,cube_info,level-1,SouthGravity); |
| 1568 | break; |
| 1569 | } |
| 1570 | case EastGravity: |
| 1571 | { |
| 1572 | Riemersma(image,image_view,cube_info,level-1,SouthGravity); |
| 1573 | (void) RiemersmaDither(image,image_view,cube_info,WestGravity); |
| 1574 | Riemersma(image,image_view,cube_info,level-1,EastGravity); |
| 1575 | (void) RiemersmaDither(image,image_view,cube_info,NorthGravity); |
| 1576 | Riemersma(image,image_view,cube_info,level-1,EastGravity); |
| 1577 | (void) RiemersmaDither(image,image_view,cube_info,EastGravity); |
| 1578 | Riemersma(image,image_view,cube_info,level-1,NorthGravity); |
| 1579 | break; |
| 1580 | } |
| 1581 | case NorthGravity: |
| 1582 | { |
| 1583 | Riemersma(image,image_view,cube_info,level-1,WestGravity); |
| 1584 | (void) RiemersmaDither(image,image_view,cube_info,SouthGravity); |
| 1585 | Riemersma(image,image_view,cube_info,level-1,NorthGravity); |
| 1586 | (void) RiemersmaDither(image,image_view,cube_info,EastGravity); |
| 1587 | Riemersma(image,image_view,cube_info,level-1,NorthGravity); |
| 1588 | (void) RiemersmaDither(image,image_view,cube_info,NorthGravity); |
| 1589 | Riemersma(image,image_view,cube_info,level-1,EastGravity); |
| 1590 | break; |
| 1591 | } |
| 1592 | case SouthGravity: |
| 1593 | { |
| 1594 | Riemersma(image,image_view,cube_info,level-1,EastGravity); |
| 1595 | (void) RiemersmaDither(image,image_view,cube_info,NorthGravity); |
| 1596 | Riemersma(image,image_view,cube_info,level-1,SouthGravity); |
| 1597 | (void) RiemersmaDither(image,image_view,cube_info,WestGravity); |
| 1598 | Riemersma(image,image_view,cube_info,level-1,SouthGravity); |
| 1599 | (void) RiemersmaDither(image,image_view,cube_info,SouthGravity); |
| 1600 | Riemersma(image,image_view,cube_info,level-1,WestGravity); |
| 1601 | break; |
| 1602 | } |
| 1603 | default: |
| 1604 | break; |
| 1605 | } |
| 1606 | } |
| 1607 | |
| 1608 | static MagickBooleanType RiemersmaDither(Image *image,CacheView *image_view, |
| 1609 | CubeInfo *cube_info,const unsigned int direction) |
| 1610 | { |
| 1611 | #define DitherImageTag "Dither/Image" |
| 1612 | |
| 1613 | MagickBooleanType |
| 1614 | proceed; |
| 1615 | |
| 1616 | RealPixelPacket |
| 1617 | color, |
| 1618 | pixel; |
| 1619 | |
| 1620 | register CubeInfo |
| 1621 | *p; |
| 1622 | |
| 1623 | unsigned long |
| 1624 | index; |
| 1625 | |
| 1626 | p=cube_info; |
| 1627 | if ((p->x >= 0) && (p->x < (long) image->columns) && |
| 1628 | (p->y >= 0) && (p->y < (long) image->rows)) |
| 1629 | { |
| 1630 | ExceptionInfo |
| 1631 | *exception; |
| 1632 | |
| 1633 | register IndexPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1634 | *restrict indexes; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1635 | |
| 1636 | register long |
| 1637 | i; |
| 1638 | |
| 1639 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 1640 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1641 | |
| 1642 | /* |
| 1643 | Distribute error. |
| 1644 | */ |
| 1645 | exception=(&image->exception); |
| 1646 | q=GetCacheViewAuthenticPixels(image_view,p->x,p->y,1,1,exception); |
| 1647 | if (q == (PixelPacket *) NULL) |
| 1648 | return(MagickFalse); |
| 1649 | indexes=GetCacheViewAuthenticIndexQueue(image_view); |
| 1650 | AssociateAlphaPixel(cube_info,q,&pixel); |
| 1651 | for (i=0; i < ErrorQueueLength; i++) |
| 1652 | { |
| 1653 | pixel.red+=p->weights[i]*p->error[i].red; |
| 1654 | pixel.green+=p->weights[i]*p->error[i].green; |
| 1655 | pixel.blue+=p->weights[i]*p->error[i].blue; |
| 1656 | if (cube_info->associate_alpha != MagickFalse) |
| 1657 | pixel.opacity+=p->weights[i]*p->error[i].opacity; |
| 1658 | } |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 1659 | pixel.red=(MagickRealType) ClampToUnsignedQuantum(pixel.red); |
| 1660 | pixel.green=(MagickRealType) ClampToUnsignedQuantum(pixel.green); |
| 1661 | pixel.blue=(MagickRealType) ClampToUnsignedQuantum(pixel.blue); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1662 | if (cube_info->associate_alpha != MagickFalse) |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 1663 | pixel.opacity=(MagickRealType) ClampToUnsignedQuantum(pixel.opacity); |
| 1664 | i=(long) ((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.red)) >> CacheShift) | |
| 1665 | (ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.green)) >> CacheShift) << 6 | |
| 1666 | (ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.blue)) >> CacheShift) << 12); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1667 | if (cube_info->associate_alpha != MagickFalse) |
cristy | 75ffdb7 | 2010-01-07 17:40:12 +0000 | [diff] [blame] | 1668 | i|=((ScaleQuantumToChar(ClampToUnsignedQuantum(pixel.opacity)) >> CacheShift) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1669 | << 18); |
| 1670 | if (p->cache[i] < 0) |
| 1671 | { |
| 1672 | register NodeInfo |
| 1673 | *node_info; |
| 1674 | |
| 1675 | register unsigned long |
| 1676 | id; |
| 1677 | |
| 1678 | /* |
| 1679 | Identify the deepest node containing the pixel's color. |
| 1680 | */ |
| 1681 | node_info=p->root; |
| 1682 | for (index=MaxTreeDepth-1; (long) index > 0; index--) |
| 1683 | { |
| 1684 | id=ColorToNodeId(cube_info,&pixel,index); |
| 1685 | if (node_info->child[id] == (NodeInfo *) NULL) |
| 1686 | break; |
| 1687 | node_info=node_info->child[id]; |
| 1688 | } |
| 1689 | /* |
| 1690 | Find closest color among siblings and their children. |
| 1691 | */ |
| 1692 | p->target=pixel; |
| 1693 | p->distance=(MagickRealType) (4.0*(QuantumRange+1.0)*((MagickRealType) |
| 1694 | QuantumRange+1.0)+1.0); |
| 1695 | ClosestColor(image,p,node_info->parent); |
| 1696 | p->cache[i]=(long) p->color_number; |
| 1697 | } |
| 1698 | /* |
| 1699 | Assign pixel to closest colormap entry. |
| 1700 | */ |
| 1701 | index=(unsigned long) (1*p->cache[i]); |
| 1702 | if (image->storage_class == PseudoClass) |
| 1703 | *indexes=(IndexPacket) index; |
| 1704 | if (cube_info->quantize_info->measure_error == MagickFalse) |
| 1705 | { |
| 1706 | q->red=image->colormap[index].red; |
| 1707 | q->green=image->colormap[index].green; |
| 1708 | q->blue=image->colormap[index].blue; |
| 1709 | if (cube_info->associate_alpha != MagickFalse) |
| 1710 | q->opacity=image->colormap[index].opacity; |
| 1711 | } |
| 1712 | if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse) |
| 1713 | return(MagickFalse); |
| 1714 | /* |
| 1715 | Propagate the error as the last entry of the error queue. |
| 1716 | */ |
| 1717 | (void) CopyMagickMemory(p->error,p->error+1,(ErrorQueueLength-1)* |
| 1718 | sizeof(p->error[0])); |
| 1719 | AssociateAlphaPixel(cube_info,image->colormap+index,&color); |
| 1720 | p->error[ErrorQueueLength-1].red=pixel.red-color.red; |
| 1721 | p->error[ErrorQueueLength-1].green=pixel.green-color.green; |
| 1722 | p->error[ErrorQueueLength-1].blue=pixel.blue-color.blue; |
| 1723 | if (cube_info->associate_alpha != MagickFalse) |
| 1724 | p->error[ErrorQueueLength-1].opacity=pixel.opacity-color.opacity; |
| 1725 | proceed=SetImageProgress(image,DitherImageTag,p->offset,p->span); |
| 1726 | if (proceed == MagickFalse) |
| 1727 | return(MagickFalse); |
| 1728 | p->offset++; |
| 1729 | } |
| 1730 | switch (direction) |
| 1731 | { |
| 1732 | case WestGravity: p->x--; break; |
| 1733 | case EastGravity: p->x++; break; |
| 1734 | case NorthGravity: p->y--; break; |
| 1735 | case SouthGravity: p->y++; break; |
| 1736 | } |
| 1737 | return(MagickTrue); |
| 1738 | } |
| 1739 | |
| 1740 | static inline long MagickMax(const long x,const long y) |
| 1741 | { |
| 1742 | if (x > y) |
| 1743 | return(x); |
| 1744 | return(y); |
| 1745 | } |
| 1746 | |
| 1747 | static inline long MagickMin(const long x,const long y) |
| 1748 | { |
| 1749 | if (x < y) |
| 1750 | return(x); |
| 1751 | return(y); |
| 1752 | } |
| 1753 | |
| 1754 | static MagickBooleanType DitherImage(Image *image,CubeInfo *cube_info) |
| 1755 | { |
cristy | c4c8d13 | 2010-01-07 01:58:38 +0000 | [diff] [blame] | 1756 | CacheView |
| 1757 | *image_view; |
| 1758 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1759 | MagickBooleanType |
| 1760 | status; |
| 1761 | |
| 1762 | register long |
| 1763 | i; |
| 1764 | |
| 1765 | unsigned long |
| 1766 | depth; |
| 1767 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1768 | if (cube_info->quantize_info->dither_method == FloydSteinbergDitherMethod) |
| 1769 | return(FloydSteinbergDither(image,cube_info)); |
| 1770 | /* |
| 1771 | Distribute quantization error along a Hilbert curve. |
| 1772 | */ |
| 1773 | (void) ResetMagickMemory(cube_info->error,0,ErrorQueueLength* |
| 1774 | sizeof(*cube_info->error)); |
| 1775 | cube_info->x=0; |
| 1776 | cube_info->y=0; |
| 1777 | i=MagickMax((long) image->columns,(long) image->rows); |
| 1778 | for (depth=1; i != 0; depth++) |
| 1779 | i>>=1; |
| 1780 | if ((long) (1L << depth) < MagickMax((long) image->columns,(long) image->rows)) |
| 1781 | depth++; |
| 1782 | cube_info->offset=0; |
| 1783 | cube_info->span=(MagickSizeType) image->columns*image->rows; |
| 1784 | image_view=AcquireCacheView(image); |
| 1785 | if (depth > 1) |
| 1786 | Riemersma(image,image_view,cube_info,depth-1,NorthGravity); |
| 1787 | status=RiemersmaDither(image,image_view,cube_info,ForgetGravity); |
| 1788 | image_view=DestroyCacheView(image_view); |
| 1789 | return(status); |
| 1790 | } |
| 1791 | |
| 1792 | /* |
| 1793 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1794 | % % |
| 1795 | % % |
| 1796 | % % |
| 1797 | + G e t C u b e I n f o % |
| 1798 | % % |
| 1799 | % % |
| 1800 | % % |
| 1801 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1802 | % |
| 1803 | % GetCubeInfo() initialize the Cube data structure. |
| 1804 | % |
| 1805 | % The format of the GetCubeInfo method is: |
| 1806 | % |
| 1807 | % CubeInfo GetCubeInfo(const QuantizeInfo *quantize_info, |
| 1808 | % const unsigned long depth,const unsigned long maximum_colors) |
| 1809 | % |
| 1810 | % A description of each parameter follows. |
| 1811 | % |
| 1812 | % o quantize_info: Specifies a pointer to an QuantizeInfo structure. |
| 1813 | % |
| 1814 | % o depth: Normally, this integer value is zero or one. A zero or |
| 1815 | % one tells Quantize to choose a optimal tree depth of Log4(number_colors). |
| 1816 | % A tree of this depth generally allows the best representation of the |
| 1817 | % reference image with the least amount of memory and the fastest |
| 1818 | % computational speed. In some cases, such as an image with low color |
| 1819 | % dispersion (a few number of colors), a value other than |
| 1820 | % Log4(number_colors) is required. To expand the color tree completely, |
| 1821 | % use a value of 8. |
| 1822 | % |
| 1823 | % o maximum_colors: maximum colors. |
| 1824 | % |
| 1825 | */ |
| 1826 | static CubeInfo *GetCubeInfo(const QuantizeInfo *quantize_info, |
| 1827 | const unsigned long depth,const unsigned long maximum_colors) |
| 1828 | { |
| 1829 | CubeInfo |
| 1830 | *cube_info; |
| 1831 | |
| 1832 | MagickRealType |
| 1833 | sum, |
| 1834 | weight; |
| 1835 | |
| 1836 | size_t |
| 1837 | length; |
| 1838 | |
| 1839 | register long |
| 1840 | i; |
| 1841 | |
| 1842 | /* |
| 1843 | Initialize tree to describe color cube_info. |
| 1844 | */ |
cristy | 9082321 | 2009-12-12 20:48:33 +0000 | [diff] [blame] | 1845 | cube_info=(CubeInfo *) AcquireAlignedMemory(1,sizeof(*cube_info)); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1846 | if (cube_info == (CubeInfo *) NULL) |
| 1847 | return((CubeInfo *) NULL); |
| 1848 | (void) ResetMagickMemory(cube_info,0,sizeof(*cube_info)); |
| 1849 | cube_info->depth=depth; |
| 1850 | if (cube_info->depth > MaxTreeDepth) |
| 1851 | cube_info->depth=MaxTreeDepth; |
| 1852 | if (cube_info->depth < 2) |
| 1853 | cube_info->depth=2; |
| 1854 | cube_info->maximum_colors=maximum_colors; |
| 1855 | /* |
| 1856 | Initialize root node. |
| 1857 | */ |
| 1858 | cube_info->root=GetNodeInfo(cube_info,0,0,(NodeInfo *) NULL); |
| 1859 | if (cube_info->root == (NodeInfo *) NULL) |
| 1860 | return((CubeInfo *) NULL); |
| 1861 | cube_info->root->parent=cube_info->root; |
| 1862 | cube_info->quantize_info=CloneQuantizeInfo(quantize_info); |
| 1863 | if (cube_info->quantize_info->dither == MagickFalse) |
| 1864 | return(cube_info); |
| 1865 | /* |
| 1866 | Initialize dither resources. |
| 1867 | */ |
| 1868 | length=(size_t) (1UL << (4*(8-CacheShift))); |
| 1869 | cube_info->cache=(long *) AcquireQuantumMemory(length, |
| 1870 | sizeof(*cube_info->cache)); |
| 1871 | if (cube_info->cache == (long *) NULL) |
| 1872 | return((CubeInfo *) NULL); |
| 1873 | /* |
| 1874 | Initialize color cache. |
| 1875 | */ |
| 1876 | for (i=0; i < (long) length; i++) |
| 1877 | cube_info->cache[i]=(-1); |
| 1878 | /* |
| 1879 | Distribute weights along a curve of exponential decay. |
| 1880 | */ |
| 1881 | weight=1.0; |
| 1882 | for (i=0; i < ErrorQueueLength; i++) |
| 1883 | { |
| 1884 | cube_info->weights[ErrorQueueLength-i-1]=1.0/weight; |
| 1885 | weight*=exp(log(((double) QuantumRange+1.0))/(ErrorQueueLength-1.0)); |
| 1886 | } |
| 1887 | /* |
| 1888 | Normalize the weighting factors. |
| 1889 | */ |
| 1890 | weight=0.0; |
| 1891 | for (i=0; i < ErrorQueueLength; i++) |
| 1892 | weight+=cube_info->weights[i]; |
| 1893 | sum=0.0; |
| 1894 | for (i=0; i < ErrorQueueLength; i++) |
| 1895 | { |
| 1896 | cube_info->weights[i]/=weight; |
| 1897 | sum+=cube_info->weights[i]; |
| 1898 | } |
| 1899 | cube_info->weights[0]+=1.0-sum; |
| 1900 | return(cube_info); |
| 1901 | } |
| 1902 | |
| 1903 | /* |
| 1904 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1905 | % % |
| 1906 | % % |
| 1907 | % % |
| 1908 | + G e t N o d e I n f o % |
| 1909 | % % |
| 1910 | % % |
| 1911 | % % |
| 1912 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1913 | % |
| 1914 | % GetNodeInfo() allocates memory for a new node in the color cube tree and |
| 1915 | % presets all fields to zero. |
| 1916 | % |
| 1917 | % The format of the GetNodeInfo method is: |
| 1918 | % |
| 1919 | % NodeInfo *GetNodeInfo(CubeInfo *cube_info,const unsigned long id, |
| 1920 | % const unsigned long level,NodeInfo *parent) |
| 1921 | % |
| 1922 | % A description of each parameter follows. |
| 1923 | % |
| 1924 | % o node: The GetNodeInfo method returns a pointer to a queue of nodes. |
| 1925 | % |
| 1926 | % o id: Specifies the child number of the node. |
| 1927 | % |
| 1928 | % o level: Specifies the level in the storage_class the node resides. |
| 1929 | % |
| 1930 | */ |
| 1931 | static NodeInfo *GetNodeInfo(CubeInfo *cube_info,const unsigned long id, |
| 1932 | const unsigned long level,NodeInfo *parent) |
| 1933 | { |
| 1934 | NodeInfo |
| 1935 | *node_info; |
| 1936 | |
| 1937 | if (cube_info->free_nodes == 0) |
| 1938 | { |
| 1939 | Nodes |
| 1940 | *nodes; |
| 1941 | |
| 1942 | /* |
| 1943 | Allocate a new queue of nodes. |
| 1944 | */ |
cristy | 9082321 | 2009-12-12 20:48:33 +0000 | [diff] [blame] | 1945 | nodes=(Nodes *) AcquireAlignedMemory(1,sizeof(*nodes)); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 1946 | if (nodes == (Nodes *) NULL) |
| 1947 | return((NodeInfo *) NULL); |
| 1948 | nodes->nodes=(NodeInfo *) AcquireQuantumMemory(NodesInAList, |
| 1949 | sizeof(*nodes->nodes)); |
| 1950 | if (nodes->nodes == (NodeInfo *) NULL) |
| 1951 | return((NodeInfo *) NULL); |
| 1952 | nodes->next=cube_info->node_queue; |
| 1953 | cube_info->node_queue=nodes; |
| 1954 | cube_info->next_node=nodes->nodes; |
| 1955 | cube_info->free_nodes=NodesInAList; |
| 1956 | } |
| 1957 | cube_info->nodes++; |
| 1958 | cube_info->free_nodes--; |
| 1959 | node_info=cube_info->next_node++; |
| 1960 | (void) ResetMagickMemory(node_info,0,sizeof(*node_info)); |
| 1961 | node_info->parent=parent; |
| 1962 | node_info->id=id; |
| 1963 | node_info->level=level; |
| 1964 | return(node_info); |
| 1965 | } |
| 1966 | |
| 1967 | /* |
| 1968 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1969 | % % |
| 1970 | % % |
| 1971 | % % |
| 1972 | % G e t I m a g e Q u a n t i z e E r r o r % |
| 1973 | % % |
| 1974 | % % |
| 1975 | % % |
| 1976 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 1977 | % |
| 1978 | % GetImageQuantizeError() measures the difference between the original |
| 1979 | % and quantized images. This difference is the total quantization error. |
| 1980 | % The error is computed by summing over all pixels in an image the distance |
| 1981 | % squared in RGB space between each reference pixel value and its quantized |
| 1982 | % value. These values are computed: |
| 1983 | % |
| 1984 | % o mean_error_per_pixel: This value is the mean error for any single |
| 1985 | % pixel in the image. |
| 1986 | % |
| 1987 | % o normalized_mean_square_error: This value is the normalized mean |
| 1988 | % quantization error for any single pixel in the image. This distance |
| 1989 | % measure is normalized to a range between 0 and 1. It is independent |
| 1990 | % of the range of red, green, and blue values in the image. |
| 1991 | % |
| 1992 | % o normalized_maximum_square_error: Thsi value is the normalized |
| 1993 | % maximum quantization error for any single pixel in the image. This |
| 1994 | % distance measure is normalized to a range between 0 and 1. It is |
| 1995 | % independent of the range of red, green, and blue values in your image. |
| 1996 | % |
| 1997 | % The format of the GetImageQuantizeError method is: |
| 1998 | % |
| 1999 | % MagickBooleanType GetImageQuantizeError(Image *image) |
| 2000 | % |
| 2001 | % A description of each parameter follows. |
| 2002 | % |
| 2003 | % o image: the image. |
| 2004 | % |
| 2005 | */ |
| 2006 | MagickExport MagickBooleanType GetImageQuantizeError(Image *image) |
| 2007 | { |
cristy | c4c8d13 | 2010-01-07 01:58:38 +0000 | [diff] [blame] | 2008 | CacheView |
| 2009 | *image_view; |
| 2010 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2011 | ExceptionInfo |
| 2012 | *exception; |
| 2013 | |
| 2014 | IndexPacket |
| 2015 | *indexes; |
| 2016 | |
| 2017 | long |
| 2018 | y; |
| 2019 | |
| 2020 | MagickRealType |
| 2021 | alpha, |
| 2022 | area, |
| 2023 | beta, |
| 2024 | distance, |
| 2025 | maximum_error, |
| 2026 | mean_error, |
| 2027 | mean_error_per_pixel; |
| 2028 | |
| 2029 | unsigned long |
| 2030 | index; |
| 2031 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2032 | assert(image != (Image *) NULL); |
| 2033 | assert(image->signature == MagickSignature); |
| 2034 | if (image->debug != MagickFalse) |
| 2035 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename); |
| 2036 | image->total_colors=GetNumberColors(image,(FILE *) NULL,&image->exception); |
| 2037 | (void) ResetMagickMemory(&image->error,0,sizeof(image->error)); |
| 2038 | if (image->storage_class == DirectClass) |
| 2039 | return(MagickTrue); |
| 2040 | alpha=1.0; |
| 2041 | beta=1.0; |
| 2042 | area=3.0*image->columns*image->rows; |
| 2043 | maximum_error=0.0; |
| 2044 | mean_error_per_pixel=0.0; |
| 2045 | mean_error=0.0; |
| 2046 | exception=(&image->exception); |
| 2047 | image_view=AcquireCacheView(image); |
| 2048 | for (y=0; y < (long) image->rows; y++) |
| 2049 | { |
| 2050 | register const PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 2051 | *restrict p; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2052 | |
| 2053 | register long |
| 2054 | x; |
| 2055 | |
| 2056 | p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception); |
| 2057 | if (p == (const PixelPacket *) NULL) |
| 2058 | break; |
| 2059 | indexes=GetCacheViewAuthenticIndexQueue(image_view); |
| 2060 | for (x=0; x < (long) image->columns; x++) |
| 2061 | { |
| 2062 | index=1UL*indexes[x]; |
| 2063 | if (image->matte != MagickFalse) |
| 2064 | { |
cristy | 46f0820 | 2010-01-10 04:04:21 +0000 | [diff] [blame] | 2065 | alpha=(MagickRealType) (QuantumScale*(GetAlphaPixelComponent(p))); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2066 | beta=(MagickRealType) (QuantumScale*(QuantumRange- |
| 2067 | image->colormap[index].opacity)); |
| 2068 | } |
| 2069 | distance=fabs(alpha*p->red-beta*image->colormap[index].red); |
| 2070 | mean_error_per_pixel+=distance; |
| 2071 | mean_error+=distance*distance; |
| 2072 | if (distance > maximum_error) |
| 2073 | maximum_error=distance; |
| 2074 | distance=fabs(alpha*p->green-beta*image->colormap[index].green); |
| 2075 | mean_error_per_pixel+=distance; |
| 2076 | mean_error+=distance*distance; |
| 2077 | if (distance > maximum_error) |
| 2078 | maximum_error=distance; |
| 2079 | distance=fabs(alpha*p->blue-beta*image->colormap[index].blue); |
| 2080 | mean_error_per_pixel+=distance; |
| 2081 | mean_error+=distance*distance; |
| 2082 | if (distance > maximum_error) |
| 2083 | maximum_error=distance; |
| 2084 | p++; |
| 2085 | } |
| 2086 | } |
| 2087 | image_view=DestroyCacheView(image_view); |
| 2088 | image->error.mean_error_per_pixel=(double) mean_error_per_pixel/area; |
| 2089 | image->error.normalized_mean_error=(double) QuantumScale*QuantumScale* |
| 2090 | mean_error/area; |
| 2091 | image->error.normalized_maximum_error=(double) QuantumScale*maximum_error; |
| 2092 | return(MagickTrue); |
| 2093 | } |
| 2094 | |
| 2095 | /* |
| 2096 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2097 | % % |
| 2098 | % % |
| 2099 | % % |
| 2100 | % G e t Q u a n t i z e I n f o % |
| 2101 | % % |
| 2102 | % % |
| 2103 | % % |
| 2104 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2105 | % |
| 2106 | % GetQuantizeInfo() initializes the QuantizeInfo structure. |
| 2107 | % |
| 2108 | % The format of the GetQuantizeInfo method is: |
| 2109 | % |
| 2110 | % GetQuantizeInfo(QuantizeInfo *quantize_info) |
| 2111 | % |
| 2112 | % A description of each parameter follows: |
| 2113 | % |
| 2114 | % o quantize_info: Specifies a pointer to a QuantizeInfo structure. |
| 2115 | % |
| 2116 | */ |
| 2117 | MagickExport void GetQuantizeInfo(QuantizeInfo *quantize_info) |
| 2118 | { |
| 2119 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"..."); |
| 2120 | assert(quantize_info != (QuantizeInfo *) NULL); |
| 2121 | (void) ResetMagickMemory(quantize_info,0,sizeof(*quantize_info)); |
| 2122 | quantize_info->number_colors=256; |
| 2123 | quantize_info->dither=MagickTrue; |
| 2124 | quantize_info->dither_method=RiemersmaDitherMethod; |
| 2125 | quantize_info->colorspace=UndefinedColorspace; |
| 2126 | quantize_info->measure_error=MagickFalse; |
| 2127 | quantize_info->signature=MagickSignature; |
| 2128 | } |
| 2129 | |
| 2130 | /* |
| 2131 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2132 | % % |
| 2133 | % % |
| 2134 | % % |
| 2135 | % P o s t e r i z e I m a g e % |
| 2136 | % % |
| 2137 | % % |
| 2138 | % % |
| 2139 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2140 | % |
| 2141 | % PosterizeImage() reduces the image to a limited number of colors for a |
| 2142 | % "poster" effect. |
| 2143 | % |
| 2144 | % The format of the PosterizeImage method is: |
| 2145 | % |
| 2146 | % MagickBooleanType PosterizeImage(Image *image,const unsigned long levels, |
| 2147 | % const MagickBooleanType dither) |
| 2148 | % |
| 2149 | % A description of each parameter follows: |
| 2150 | % |
| 2151 | % o image: Specifies a pointer to an Image structure. |
| 2152 | % |
| 2153 | % o levels: Number of color levels allowed in each channel. Very low values |
| 2154 | % (2, 3, or 4) have the most visible effect. |
| 2155 | % |
| 2156 | % o dither: Set this integer value to something other than zero to |
| 2157 | % dither the mapped image. |
| 2158 | % |
| 2159 | */ |
| 2160 | MagickExport MagickBooleanType PosterizeImage(Image *image, |
| 2161 | const unsigned long levels,const MagickBooleanType dither) |
| 2162 | { |
cristy | c4c8d13 | 2010-01-07 01:58:38 +0000 | [diff] [blame] | 2163 | CacheView |
| 2164 | *posterize_view; |
| 2165 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2166 | ExceptionInfo |
| 2167 | *exception; |
| 2168 | |
| 2169 | Image |
| 2170 | *posterize_image; |
| 2171 | |
| 2172 | IndexPacket |
| 2173 | *indexes; |
| 2174 | |
| 2175 | long |
| 2176 | j, |
| 2177 | k, |
| 2178 | l, |
| 2179 | n; |
| 2180 | |
| 2181 | MagickBooleanType |
| 2182 | status; |
| 2183 | |
| 2184 | QuantizeInfo |
| 2185 | *quantize_info; |
| 2186 | |
| 2187 | register long |
| 2188 | i; |
| 2189 | |
| 2190 | register PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 2191 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2192 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2193 | /* |
| 2194 | Posterize image. |
| 2195 | */ |
| 2196 | assert(image != (Image *) NULL); |
| 2197 | assert(image->signature == MagickSignature); |
| 2198 | if (image->debug != MagickFalse) |
| 2199 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename); |
| 2200 | posterize_image=AcquireImage((ImageInfo *) NULL); |
| 2201 | if (posterize_image == (Image *) NULL) |
| 2202 | return(MagickFalse); |
| 2203 | l=1; |
| 2204 | while ((l*l*l) < (long) MagickMin((long) levels*levels*levels,MaxColormapSize+1)) |
| 2205 | l++; |
| 2206 | status=SetImageExtent(posterize_image,(unsigned long) (l*l*l),1); |
| 2207 | if (status == MagickFalse) |
| 2208 | { |
| 2209 | posterize_image=DestroyImage(posterize_image); |
| 2210 | return(MagickFalse); |
| 2211 | } |
| 2212 | status=AcquireImageColormap(posterize_image,levels*levels*levels); |
| 2213 | if (status == MagickFalse) |
| 2214 | { |
| 2215 | posterize_image=DestroyImage(posterize_image); |
| 2216 | return(MagickFalse); |
| 2217 | } |
| 2218 | posterize_view=AcquireCacheView(posterize_image); |
| 2219 | exception=(&image->exception); |
| 2220 | q=QueueCacheViewAuthenticPixels(posterize_view,0,0,posterize_image->columns,1, |
| 2221 | exception); |
| 2222 | if (q == (PixelPacket *) NULL) |
| 2223 | { |
| 2224 | posterize_view=DestroyCacheView(posterize_view); |
| 2225 | posterize_image=DestroyImage(posterize_image); |
| 2226 | return(MagickFalse); |
| 2227 | } |
| 2228 | indexes=GetCacheViewAuthenticIndexQueue(posterize_view); |
| 2229 | n=0; |
| 2230 | for (i=0; i < l; i++) |
| 2231 | for (j=0; j < l; j++) |
| 2232 | for (k=0; k < l; k++) |
| 2233 | { |
| 2234 | posterize_image->colormap[n].red=(Quantum) (QuantumRange*i/ |
| 2235 | MagickMax(l-1L,1L)); |
| 2236 | posterize_image->colormap[n].green=(Quantum) |
| 2237 | (QuantumRange*j/MagickMax(l-1L,1L)); |
| 2238 | posterize_image->colormap[n].blue=(Quantum) (QuantumRange*k/ |
| 2239 | MagickMax(l-1L,1L)); |
| 2240 | posterize_image->colormap[n].opacity=OpaqueOpacity; |
| 2241 | *q++=posterize_image->colormap[n]; |
| 2242 | indexes[n]=(IndexPacket) n; |
| 2243 | n++; |
| 2244 | } |
| 2245 | if (SyncCacheViewAuthenticPixels(posterize_view,exception) == MagickFalse) |
| 2246 | { |
| 2247 | posterize_view=DestroyCacheView(posterize_view); |
| 2248 | posterize_image=DestroyImage(posterize_image); |
| 2249 | return(MagickFalse); |
| 2250 | } |
| 2251 | posterize_view=DestroyCacheView(posterize_view); |
| 2252 | quantize_info=AcquireQuantizeInfo((ImageInfo *) NULL); |
| 2253 | quantize_info->dither=dither; |
| 2254 | status=RemapImage(quantize_info,image,posterize_image); |
| 2255 | quantize_info=DestroyQuantizeInfo(quantize_info); |
| 2256 | posterize_image=DestroyImage(posterize_image); |
| 2257 | return(status); |
| 2258 | } |
| 2259 | |
| 2260 | /* |
| 2261 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2262 | % % |
| 2263 | % % |
| 2264 | % % |
| 2265 | + P r u n e C h i l d % |
| 2266 | % % |
| 2267 | % % |
| 2268 | % % |
| 2269 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2270 | % |
| 2271 | % PruneChild() deletes the given node and merges its statistics into its |
| 2272 | % parent. |
| 2273 | % |
| 2274 | % The format of the PruneSubtree method is: |
| 2275 | % |
| 2276 | % PruneChild(const Image *image,CubeInfo *cube_info, |
| 2277 | % const NodeInfo *node_info) |
| 2278 | % |
| 2279 | % A description of each parameter follows. |
| 2280 | % |
| 2281 | % o image: the image. |
| 2282 | % |
| 2283 | % o cube_info: A pointer to the Cube structure. |
| 2284 | % |
| 2285 | % o node_info: pointer to node in color cube tree that is to be pruned. |
| 2286 | % |
| 2287 | */ |
| 2288 | static void PruneChild(const Image *image,CubeInfo *cube_info, |
| 2289 | const NodeInfo *node_info) |
| 2290 | { |
| 2291 | NodeInfo |
| 2292 | *parent; |
| 2293 | |
| 2294 | register long |
| 2295 | i; |
| 2296 | |
| 2297 | unsigned long |
| 2298 | number_children; |
| 2299 | |
| 2300 | /* |
| 2301 | Traverse any children. |
| 2302 | */ |
| 2303 | number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL; |
| 2304 | for (i=0; i < (long) number_children; i++) |
| 2305 | if (node_info->child[i] != (NodeInfo *) NULL) |
| 2306 | PruneChild(image,cube_info,node_info->child[i]); |
| 2307 | /* |
| 2308 | Merge color statistics into parent. |
| 2309 | */ |
| 2310 | parent=node_info->parent; |
| 2311 | parent->number_unique+=node_info->number_unique; |
| 2312 | parent->total_color.red+=node_info->total_color.red; |
| 2313 | parent->total_color.green+=node_info->total_color.green; |
| 2314 | parent->total_color.blue+=node_info->total_color.blue; |
| 2315 | parent->total_color.opacity+=node_info->total_color.opacity; |
| 2316 | parent->child[node_info->id]=(NodeInfo *) NULL; |
| 2317 | cube_info->nodes--; |
| 2318 | } |
| 2319 | |
| 2320 | /* |
| 2321 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2322 | % % |
| 2323 | % % |
| 2324 | % % |
| 2325 | + P r u n e L e v e l % |
| 2326 | % % |
| 2327 | % % |
| 2328 | % % |
| 2329 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2330 | % |
| 2331 | % PruneLevel() deletes all nodes at the bottom level of the color tree merging |
| 2332 | % their color statistics into their parent node. |
| 2333 | % |
| 2334 | % The format of the PruneLevel method is: |
| 2335 | % |
| 2336 | % PruneLevel(const Image *image,CubeInfo *cube_info, |
| 2337 | % const NodeInfo *node_info) |
| 2338 | % |
| 2339 | % A description of each parameter follows. |
| 2340 | % |
| 2341 | % o image: the image. |
| 2342 | % |
| 2343 | % o cube_info: A pointer to the Cube structure. |
| 2344 | % |
| 2345 | % o node_info: pointer to node in color cube tree that is to be pruned. |
| 2346 | % |
| 2347 | */ |
| 2348 | static void PruneLevel(const Image *image,CubeInfo *cube_info, |
| 2349 | const NodeInfo *node_info) |
| 2350 | { |
| 2351 | register long |
| 2352 | i; |
| 2353 | |
| 2354 | unsigned long |
| 2355 | number_children; |
| 2356 | |
| 2357 | /* |
| 2358 | Traverse any children. |
| 2359 | */ |
| 2360 | number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL; |
| 2361 | for (i=0; i < (long) number_children; i++) |
| 2362 | if (node_info->child[i] != (NodeInfo *) NULL) |
| 2363 | PruneLevel(image,cube_info,node_info->child[i]); |
| 2364 | if (node_info->level == cube_info->depth) |
| 2365 | PruneChild(image,cube_info,node_info); |
| 2366 | } |
| 2367 | |
| 2368 | /* |
| 2369 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2370 | % % |
| 2371 | % % |
| 2372 | % % |
| 2373 | + P r u n e T o C u b e D e p t h % |
| 2374 | % % |
| 2375 | % % |
| 2376 | % % |
| 2377 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2378 | % |
| 2379 | % PruneToCubeDepth() deletes any nodes at a depth greater than |
| 2380 | % cube_info->depth while merging their color statistics into their parent |
| 2381 | % node. |
| 2382 | % |
| 2383 | % The format of the PruneToCubeDepth method is: |
| 2384 | % |
| 2385 | % PruneToCubeDepth(const Image *image,CubeInfo *cube_info, |
| 2386 | % const NodeInfo *node_info) |
| 2387 | % |
| 2388 | % A description of each parameter follows. |
| 2389 | % |
| 2390 | % o cube_info: A pointer to the Cube structure. |
| 2391 | % |
| 2392 | % o node_info: pointer to node in color cube tree that is to be pruned. |
| 2393 | % |
| 2394 | */ |
| 2395 | static void PruneToCubeDepth(const Image *image,CubeInfo *cube_info, |
| 2396 | const NodeInfo *node_info) |
| 2397 | { |
| 2398 | register long |
| 2399 | i; |
| 2400 | |
| 2401 | unsigned long |
| 2402 | number_children; |
| 2403 | |
| 2404 | /* |
| 2405 | Traverse any children. |
| 2406 | */ |
| 2407 | number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL; |
| 2408 | for (i=0; i < (long) number_children; i++) |
| 2409 | if (node_info->child[i] != (NodeInfo *) NULL) |
| 2410 | PruneToCubeDepth(image,cube_info,node_info->child[i]); |
| 2411 | if (node_info->level > cube_info->depth) |
| 2412 | PruneChild(image,cube_info,node_info); |
| 2413 | } |
| 2414 | |
| 2415 | /* |
| 2416 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2417 | % % |
| 2418 | % % |
| 2419 | % % |
| 2420 | % Q u a n t i z e I m a g e % |
| 2421 | % % |
| 2422 | % % |
| 2423 | % % |
| 2424 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2425 | % |
| 2426 | % QuantizeImage() analyzes the colors within a reference image and chooses a |
| 2427 | % fixed number of colors to represent the image. The goal of the algorithm |
| 2428 | % is to minimize the color difference between the input and output image while |
| 2429 | % minimizing the processing time. |
| 2430 | % |
| 2431 | % The format of the QuantizeImage method is: |
| 2432 | % |
| 2433 | % MagickBooleanType QuantizeImage(const QuantizeInfo *quantize_info, |
| 2434 | % Image *image) |
| 2435 | % |
| 2436 | % A description of each parameter follows: |
| 2437 | % |
| 2438 | % o quantize_info: Specifies a pointer to an QuantizeInfo structure. |
| 2439 | % |
| 2440 | % o image: the image. |
| 2441 | % |
| 2442 | */ |
cristy | 0157aea | 2010-04-24 21:12:18 +0000 | [diff] [blame^] | 2443 | static MagickBooleanType DirectToColormapImage(Image *image, |
| 2444 | ExceptionInfo *exception) |
| 2445 | { |
| 2446 | CacheView |
| 2447 | *image_view; |
| 2448 | |
| 2449 | long |
| 2450 | y; |
| 2451 | |
| 2452 | MagickBooleanType |
| 2453 | status; |
| 2454 | |
| 2455 | register long |
| 2456 | i; |
| 2457 | |
| 2458 | unsigned long |
| 2459 | number_colors; |
| 2460 | |
| 2461 | status=MagickTrue; |
| 2462 | number_colors=(unsigned long) (image->columns*image->rows); |
| 2463 | if (AcquireImageColormap(image,number_colors) == MagickFalse) |
| 2464 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 2465 | image->filename); |
| 2466 | i=0; |
| 2467 | image_view=AcquireCacheView(image); |
| 2468 | for (y=0; y < (long) image->rows; y++) |
| 2469 | { |
| 2470 | register const PixelPacket |
| 2471 | *restrict p; |
| 2472 | |
| 2473 | register long |
| 2474 | x; |
| 2475 | |
| 2476 | p=GetCacheViewVirtualPixels(image_view,0,y,image->columns,1,exception); |
| 2477 | if (p == (const PixelPacket *) NULL) |
| 2478 | break; |
| 2479 | for (x=0; x < (long) image->columns; x++) |
| 2480 | image->colormap[i++]=(*p++); |
| 2481 | } |
| 2482 | image_view=DestroyCacheView(image_view); |
| 2483 | return(status); |
| 2484 | } |
| 2485 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2486 | MagickExport MagickBooleanType QuantizeImage(const QuantizeInfo *quantize_info, |
| 2487 | Image *image) |
| 2488 | { |
| 2489 | CubeInfo |
| 2490 | *cube_info; |
| 2491 | |
| 2492 | MagickBooleanType |
| 2493 | status; |
| 2494 | |
| 2495 | unsigned long |
| 2496 | depth, |
| 2497 | maximum_colors; |
| 2498 | |
| 2499 | assert(quantize_info != (const QuantizeInfo *) NULL); |
| 2500 | assert(quantize_info->signature == MagickSignature); |
| 2501 | assert(image != (Image *) NULL); |
| 2502 | assert(image->signature == MagickSignature); |
| 2503 | if (image->debug != MagickFalse) |
| 2504 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename); |
| 2505 | maximum_colors=quantize_info->number_colors; |
| 2506 | if (maximum_colors == 0) |
| 2507 | maximum_colors=MaxColormapSize; |
| 2508 | if (maximum_colors > MaxColormapSize) |
| 2509 | maximum_colors=MaxColormapSize; |
| 2510 | if ((IsGrayImage(image,&image->exception) != MagickFalse) && |
| 2511 | (image->matte == MagickFalse)) |
| 2512 | (void) SetGrayscaleImage(image); |
| 2513 | if ((image->storage_class == PseudoClass) && |
| 2514 | (image->colors <= maximum_colors)) |
| 2515 | return(MagickTrue); |
cristy | 0157aea | 2010-04-24 21:12:18 +0000 | [diff] [blame^] | 2516 | if ((image->columns*image->rows) <= maximum_colors) |
| 2517 | return(DirectToColormapImage(image,&image->exception)); |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 2518 | depth=quantize_info->tree_depth; |
| 2519 | if (depth == 0) |
| 2520 | { |
| 2521 | unsigned long |
| 2522 | colors; |
| 2523 | |
| 2524 | /* |
| 2525 | Depth of color tree is: Log4(colormap size)+2. |
| 2526 | */ |
| 2527 | colors=maximum_colors; |
| 2528 | for (depth=1; colors != 0; depth++) |
| 2529 | colors>>=2; |
| 2530 | if ((quantize_info->dither != MagickFalse) && (depth > 2)) |
| 2531 | depth--; |
| 2532 | if ((image->matte != MagickFalse) && (depth > 5)) |
| 2533 | depth--; |
| 2534 | } |
| 2535 | /* |
| 2536 | Initialize color cube. |
| 2537 | */ |
| 2538 | cube_info=GetCubeInfo(quantize_info,depth,maximum_colors); |
| 2539 | if (cube_info == (CubeInfo *) NULL) |
| 2540 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 2541 | image->filename); |
| 2542 | status=ClassifyImageColors(cube_info,image,&image->exception); |
| 2543 | if (status != MagickFalse) |
| 2544 | { |
| 2545 | /* |
| 2546 | Reduce the number of colors in the image. |
| 2547 | */ |
| 2548 | ReduceImageColors(image,cube_info); |
| 2549 | status=AssignImageColors(image,cube_info); |
| 2550 | } |
| 2551 | DestroyCubeInfo(cube_info); |
| 2552 | return(status); |
| 2553 | } |
| 2554 | |
| 2555 | /* |
| 2556 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2557 | % % |
| 2558 | % % |
| 2559 | % % |
| 2560 | % Q u a n t i z e I m a g e s % |
| 2561 | % % |
| 2562 | % % |
| 2563 | % % |
| 2564 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2565 | % |
| 2566 | % QuantizeImages() analyzes the colors within a set of reference images and |
| 2567 | % chooses a fixed number of colors to represent the set. The goal of the |
| 2568 | % algorithm is to minimize the color difference between the input and output |
| 2569 | % images while minimizing the processing time. |
| 2570 | % |
| 2571 | % The format of the QuantizeImages method is: |
| 2572 | % |
| 2573 | % MagickBooleanType QuantizeImages(const QuantizeInfo *quantize_info, |
| 2574 | % Image *images) |
| 2575 | % |
| 2576 | % A description of each parameter follows: |
| 2577 | % |
| 2578 | % o quantize_info: Specifies a pointer to an QuantizeInfo structure. |
| 2579 | % |
| 2580 | % o images: Specifies a pointer to a list of Image structures. |
| 2581 | % |
| 2582 | */ |
| 2583 | MagickExport MagickBooleanType QuantizeImages(const QuantizeInfo *quantize_info, |
| 2584 | Image *images) |
| 2585 | { |
| 2586 | CubeInfo |
| 2587 | *cube_info; |
| 2588 | |
| 2589 | Image |
| 2590 | *image; |
| 2591 | |
| 2592 | MagickBooleanType |
| 2593 | proceed, |
| 2594 | status; |
| 2595 | |
| 2596 | MagickProgressMonitor |
| 2597 | progress_monitor; |
| 2598 | |
| 2599 | register long |
| 2600 | i; |
| 2601 | |
| 2602 | unsigned long |
| 2603 | depth, |
| 2604 | maximum_colors, |
| 2605 | number_images; |
| 2606 | |
| 2607 | assert(quantize_info != (const QuantizeInfo *) NULL); |
| 2608 | assert(quantize_info->signature == MagickSignature); |
| 2609 | assert(images != (Image *) NULL); |
| 2610 | assert(images->signature == MagickSignature); |
| 2611 | if (images->debug != MagickFalse) |
| 2612 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",images->filename); |
| 2613 | if (GetNextImageInList(images) == (Image *) NULL) |
| 2614 | { |
| 2615 | /* |
| 2616 | Handle a single image with QuantizeImage. |
| 2617 | */ |
| 2618 | status=QuantizeImage(quantize_info,images); |
| 2619 | return(status); |
| 2620 | } |
| 2621 | status=MagickFalse; |
| 2622 | maximum_colors=quantize_info->number_colors; |
| 2623 | if (maximum_colors == 0) |
| 2624 | maximum_colors=MaxColormapSize; |
| 2625 | if (maximum_colors > MaxColormapSize) |
| 2626 | maximum_colors=MaxColormapSize; |
| 2627 | depth=quantize_info->tree_depth; |
| 2628 | if (depth == 0) |
| 2629 | { |
| 2630 | unsigned long |
| 2631 | colors; |
| 2632 | |
| 2633 | /* |
| 2634 | Depth of color tree is: Log4(colormap size)+2. |
| 2635 | */ |
| 2636 | colors=maximum_colors; |
| 2637 | for (depth=1; colors != 0; depth++) |
| 2638 | colors>>=2; |
| 2639 | if (quantize_info->dither != MagickFalse) |
| 2640 | depth--; |
| 2641 | } |
| 2642 | /* |
| 2643 | Initialize color cube. |
| 2644 | */ |
| 2645 | cube_info=GetCubeInfo(quantize_info,depth,maximum_colors); |
| 2646 | if (cube_info == (CubeInfo *) NULL) |
| 2647 | { |
| 2648 | (void) ThrowMagickException(&images->exception,GetMagickModule(), |
| 2649 | ResourceLimitError,"MemoryAllocationFailed","`%s'",images->filename); |
| 2650 | return(MagickFalse); |
| 2651 | } |
| 2652 | number_images=GetImageListLength(images); |
| 2653 | image=images; |
| 2654 | for (i=0; image != (Image *) NULL; i++) |
| 2655 | { |
| 2656 | progress_monitor=SetImageProgressMonitor(image,(MagickProgressMonitor) NULL, |
| 2657 | image->client_data); |
| 2658 | status=ClassifyImageColors(cube_info,image,&image->exception); |
| 2659 | if (status == MagickFalse) |
| 2660 | break; |
| 2661 | (void) SetImageProgressMonitor(image,progress_monitor,image->client_data); |
| 2662 | proceed=SetImageProgress(image,AssignImageTag,i,number_images); |
| 2663 | if (proceed == MagickFalse) |
| 2664 | break; |
| 2665 | image=GetNextImageInList(image); |
| 2666 | } |
| 2667 | if (status != MagickFalse) |
| 2668 | { |
| 2669 | /* |
| 2670 | Reduce the number of colors in an image sequence. |
| 2671 | */ |
| 2672 | ReduceImageColors(images,cube_info); |
| 2673 | image=images; |
| 2674 | for (i=0; image != (Image *) NULL; i++) |
| 2675 | { |
| 2676 | progress_monitor=SetImageProgressMonitor(image,(MagickProgressMonitor) |
| 2677 | NULL,image->client_data); |
| 2678 | status=AssignImageColors(image,cube_info); |
| 2679 | if (status == MagickFalse) |
| 2680 | break; |
| 2681 | (void) SetImageProgressMonitor(image,progress_monitor, |
| 2682 | image->client_data); |
| 2683 | proceed=SetImageProgress(image,AssignImageTag,i,number_images); |
| 2684 | if (proceed == MagickFalse) |
| 2685 | break; |
| 2686 | image=GetNextImageInList(image); |
| 2687 | } |
| 2688 | } |
| 2689 | DestroyCubeInfo(cube_info); |
| 2690 | return(status); |
| 2691 | } |
| 2692 | |
| 2693 | /* |
| 2694 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2695 | % % |
| 2696 | % % |
| 2697 | % % |
| 2698 | + R e d u c e % |
| 2699 | % % |
| 2700 | % % |
| 2701 | % % |
| 2702 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2703 | % |
| 2704 | % Reduce() traverses the color cube tree and prunes any node whose |
| 2705 | % quantization error falls below a particular threshold. |
| 2706 | % |
| 2707 | % The format of the Reduce method is: |
| 2708 | % |
| 2709 | % Reduce(const Image *image,CubeInfo *cube_info,const NodeInfo *node_info) |
| 2710 | % |
| 2711 | % A description of each parameter follows. |
| 2712 | % |
| 2713 | % o image: the image. |
| 2714 | % |
| 2715 | % o cube_info: A pointer to the Cube structure. |
| 2716 | % |
| 2717 | % o node_info: pointer to node in color cube tree that is to be pruned. |
| 2718 | % |
| 2719 | */ |
| 2720 | static void Reduce(const Image *image,CubeInfo *cube_info, |
| 2721 | const NodeInfo *node_info) |
| 2722 | { |
| 2723 | register long |
| 2724 | i; |
| 2725 | |
| 2726 | unsigned long |
| 2727 | number_children; |
| 2728 | |
| 2729 | /* |
| 2730 | Traverse any children. |
| 2731 | */ |
| 2732 | number_children=cube_info->associate_alpha == MagickFalse ? 8UL : 16UL; |
| 2733 | for (i=0; i < (long) number_children; i++) |
| 2734 | if (node_info->child[i] != (NodeInfo *) NULL) |
| 2735 | Reduce(image,cube_info,node_info->child[i]); |
| 2736 | if (node_info->quantize_error <= cube_info->pruning_threshold) |
| 2737 | PruneChild(image,cube_info,node_info); |
| 2738 | else |
| 2739 | { |
| 2740 | /* |
| 2741 | Find minimum pruning threshold. |
| 2742 | */ |
| 2743 | if (node_info->number_unique > 0) |
| 2744 | cube_info->colors++; |
| 2745 | if (node_info->quantize_error < cube_info->next_threshold) |
| 2746 | cube_info->next_threshold=node_info->quantize_error; |
| 2747 | } |
| 2748 | } |
| 2749 | |
| 2750 | /* |
| 2751 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2752 | % % |
| 2753 | % % |
| 2754 | % % |
| 2755 | + R e d u c e I m a g e C o l o r s % |
| 2756 | % % |
| 2757 | % % |
| 2758 | % % |
| 2759 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2760 | % |
| 2761 | % ReduceImageColors() repeatedly prunes the tree until the number of nodes |
| 2762 | % with n2 > 0 is less than or equal to the maximum number of colors allowed |
| 2763 | % in the output image. On any given iteration over the tree, it selects |
| 2764 | % those nodes whose E value is minimal for pruning and merges their |
| 2765 | % color statistics upward. It uses a pruning threshold, Ep, to govern |
| 2766 | % node selection as follows: |
| 2767 | % |
| 2768 | % Ep = 0 |
| 2769 | % while number of nodes with (n2 > 0) > required maximum number of colors |
| 2770 | % prune all nodes such that E <= Ep |
| 2771 | % Set Ep to minimum E in remaining nodes |
| 2772 | % |
| 2773 | % This has the effect of minimizing any quantization error when merging |
| 2774 | % two nodes together. |
| 2775 | % |
| 2776 | % When a node to be pruned has offspring, the pruning procedure invokes |
| 2777 | % itself recursively in order to prune the tree from the leaves upward. |
| 2778 | % n2, Sr, Sg, and Sb in a node being pruned are always added to the |
| 2779 | % corresponding data in that node's parent. This retains the pruned |
| 2780 | % node's color characteristics for later averaging. |
| 2781 | % |
| 2782 | % For each node, n2 pixels exist for which that node represents the |
| 2783 | % smallest volume in RGB space containing those pixel's colors. When n2 |
| 2784 | % > 0 the node will uniquely define a color in the output image. At the |
| 2785 | % beginning of reduction, n2 = 0 for all nodes except a the leaves of |
| 2786 | % the tree which represent colors present in the input image. |
| 2787 | % |
| 2788 | % The other pixel count, n1, indicates the total number of colors |
| 2789 | % within the cubic volume which the node represents. This includes n1 - |
| 2790 | % n2 pixels whose colors should be defined by nodes at a lower level in |
| 2791 | % the tree. |
| 2792 | % |
| 2793 | % The format of the ReduceImageColors method is: |
| 2794 | % |
| 2795 | % ReduceImageColors(const Image *image,CubeInfo *cube_info) |
| 2796 | % |
| 2797 | % A description of each parameter follows. |
| 2798 | % |
| 2799 | % o image: the image. |
| 2800 | % |
| 2801 | % o cube_info: A pointer to the Cube structure. |
| 2802 | % |
| 2803 | */ |
| 2804 | static void ReduceImageColors(const Image *image,CubeInfo *cube_info) |
| 2805 | { |
| 2806 | #define ReduceImageTag "Reduce/Image" |
| 2807 | |
| 2808 | MagickBooleanType |
| 2809 | proceed; |
| 2810 | |
| 2811 | MagickOffsetType |
| 2812 | offset; |
| 2813 | |
| 2814 | unsigned long |
| 2815 | span; |
| 2816 | |
| 2817 | cube_info->next_threshold=0.0; |
| 2818 | for (span=cube_info->colors; cube_info->colors > cube_info->maximum_colors; ) |
| 2819 | { |
| 2820 | cube_info->pruning_threshold=cube_info->next_threshold; |
| 2821 | cube_info->next_threshold=cube_info->root->quantize_error-1; |
| 2822 | cube_info->colors=0; |
| 2823 | Reduce(image,cube_info,cube_info->root); |
| 2824 | offset=(MagickOffsetType) span-cube_info->colors; |
| 2825 | proceed=SetImageProgress(image,ReduceImageTag,offset,span- |
| 2826 | cube_info->maximum_colors+1); |
| 2827 | if (proceed == MagickFalse) |
| 2828 | break; |
| 2829 | } |
| 2830 | } |
| 2831 | |
| 2832 | /* |
| 2833 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2834 | % % |
| 2835 | % % |
| 2836 | % % |
| 2837 | % R e m a p I m a g e % |
| 2838 | % % |
| 2839 | % % |
| 2840 | % % |
| 2841 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2842 | % |
| 2843 | % RemapImage() replaces the colors of an image with the closest color from |
| 2844 | % a reference image. |
| 2845 | % |
| 2846 | % The format of the RemapImage method is: |
| 2847 | % |
| 2848 | % MagickBooleanType RemapImage(const QuantizeInfo *quantize_info, |
| 2849 | % Image *image,const Image *remap_image) |
| 2850 | % |
| 2851 | % A description of each parameter follows: |
| 2852 | % |
| 2853 | % o quantize_info: Specifies a pointer to an QuantizeInfo structure. |
| 2854 | % |
| 2855 | % o image: the image. |
| 2856 | % |
| 2857 | % o remap_image: the reference image. |
| 2858 | % |
| 2859 | */ |
| 2860 | MagickExport MagickBooleanType RemapImage(const QuantizeInfo *quantize_info, |
| 2861 | Image *image,const Image *remap_image) |
| 2862 | { |
| 2863 | CubeInfo |
| 2864 | *cube_info; |
| 2865 | |
| 2866 | MagickBooleanType |
| 2867 | status; |
| 2868 | |
| 2869 | /* |
| 2870 | Initialize color cube. |
| 2871 | */ |
| 2872 | assert(image != (Image *) NULL); |
| 2873 | assert(image->signature == MagickSignature); |
| 2874 | if (image->debug != MagickFalse) |
| 2875 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",image->filename); |
| 2876 | assert(remap_image != (Image *) NULL); |
| 2877 | assert(remap_image->signature == MagickSignature); |
| 2878 | cube_info=GetCubeInfo(quantize_info,MaxTreeDepth, |
| 2879 | quantize_info->number_colors); |
| 2880 | if (cube_info == (CubeInfo *) NULL) |
| 2881 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 2882 | image->filename); |
| 2883 | status=ClassifyImageColors(cube_info,remap_image,&image->exception); |
| 2884 | if (status != MagickFalse) |
| 2885 | { |
| 2886 | /* |
| 2887 | Classify image colors from the reference image. |
| 2888 | */ |
| 2889 | cube_info->quantize_info->number_colors=cube_info->colors; |
| 2890 | status=AssignImageColors(image,cube_info); |
| 2891 | } |
| 2892 | DestroyCubeInfo(cube_info); |
| 2893 | return(status); |
| 2894 | } |
| 2895 | |
| 2896 | /* |
| 2897 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2898 | % % |
| 2899 | % % |
| 2900 | % % |
| 2901 | % R e m a p I m a g e s % |
| 2902 | % % |
| 2903 | % % |
| 2904 | % % |
| 2905 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2906 | % |
| 2907 | % RemapImages() replaces the colors of a sequence of images with the |
| 2908 | % closest color from a reference image. |
| 2909 | % |
| 2910 | % The format of the RemapImage method is: |
| 2911 | % |
| 2912 | % MagickBooleanType RemapImages(const QuantizeInfo *quantize_info, |
| 2913 | % Image *images,Image *remap_image) |
| 2914 | % |
| 2915 | % A description of each parameter follows: |
| 2916 | % |
| 2917 | % o quantize_info: Specifies a pointer to an QuantizeInfo structure. |
| 2918 | % |
| 2919 | % o images: the image sequence. |
| 2920 | % |
| 2921 | % o remap_image: the reference image. |
| 2922 | % |
| 2923 | */ |
| 2924 | MagickExport MagickBooleanType RemapImages(const QuantizeInfo *quantize_info, |
| 2925 | Image *images,const Image *remap_image) |
| 2926 | { |
| 2927 | CubeInfo |
| 2928 | *cube_info; |
| 2929 | |
| 2930 | Image |
| 2931 | *image; |
| 2932 | |
| 2933 | MagickBooleanType |
| 2934 | status; |
| 2935 | |
| 2936 | assert(images != (Image *) NULL); |
| 2937 | assert(images->signature == MagickSignature); |
| 2938 | if (images->debug != MagickFalse) |
| 2939 | (void) LogMagickEvent(TraceEvent,GetMagickModule(),"%s",images->filename); |
| 2940 | image=images; |
| 2941 | if (remap_image == (Image *) NULL) |
| 2942 | { |
| 2943 | /* |
| 2944 | Create a global colormap for an image sequence. |
| 2945 | */ |
| 2946 | status=QuantizeImages(quantize_info,images); |
| 2947 | return(status); |
| 2948 | } |
| 2949 | /* |
| 2950 | Classify image colors from the reference image. |
| 2951 | */ |
| 2952 | cube_info=GetCubeInfo(quantize_info,MaxTreeDepth, |
| 2953 | quantize_info->number_colors); |
| 2954 | if (cube_info == (CubeInfo *) NULL) |
| 2955 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 2956 | image->filename); |
| 2957 | status=ClassifyImageColors(cube_info,remap_image,&image->exception); |
| 2958 | if (status != MagickFalse) |
| 2959 | { |
| 2960 | /* |
| 2961 | Classify image colors from the reference image. |
| 2962 | */ |
| 2963 | cube_info->quantize_info->number_colors=cube_info->colors; |
| 2964 | image=images; |
| 2965 | for ( ; image != (Image *) NULL; image=GetNextImageInList(image)) |
| 2966 | { |
| 2967 | status=AssignImageColors(image,cube_info); |
| 2968 | if (status == MagickFalse) |
| 2969 | break; |
| 2970 | } |
| 2971 | } |
| 2972 | DestroyCubeInfo(cube_info); |
| 2973 | return(status); |
| 2974 | } |
| 2975 | |
| 2976 | /* |
| 2977 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2978 | % % |
| 2979 | % % |
| 2980 | % % |
| 2981 | % S e t G r a y s c a l e I m a g e % |
| 2982 | % % |
| 2983 | % % |
| 2984 | % % |
| 2985 | %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
| 2986 | % |
| 2987 | % SetGrayscaleImage() converts an image to a PseudoClass grayscale image. |
| 2988 | % |
| 2989 | % The format of the SetGrayscaleImage method is: |
| 2990 | % |
| 2991 | % MagickBooleanType SetGrayscaleImage(Image *image) |
| 2992 | % |
| 2993 | % A description of each parameter follows: |
| 2994 | % |
| 2995 | % o image: The image. |
| 2996 | % |
| 2997 | */ |
| 2998 | |
| 2999 | #if defined(__cplusplus) || defined(c_plusplus) |
| 3000 | extern "C" { |
| 3001 | #endif |
| 3002 | |
| 3003 | static int IntensityCompare(const void *x,const void *y) |
| 3004 | { |
| 3005 | long |
| 3006 | intensity; |
| 3007 | |
| 3008 | PixelPacket |
| 3009 | *color_1, |
| 3010 | *color_2; |
| 3011 | |
| 3012 | color_1=(PixelPacket *) x; |
| 3013 | color_2=(PixelPacket *) y; |
| 3014 | intensity=PixelIntensityToQuantum(color_1)-(long) |
| 3015 | PixelIntensityToQuantum(color_2); |
| 3016 | return(intensity); |
| 3017 | } |
| 3018 | |
| 3019 | #if defined(__cplusplus) || defined(c_plusplus) |
| 3020 | } |
| 3021 | #endif |
| 3022 | |
| 3023 | static MagickBooleanType SetGrayscaleImage(Image *image) |
| 3024 | { |
cristy | c4c8d13 | 2010-01-07 01:58:38 +0000 | [diff] [blame] | 3025 | CacheView |
| 3026 | *image_view; |
| 3027 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3028 | ExceptionInfo |
| 3029 | *exception; |
| 3030 | |
| 3031 | long |
| 3032 | j, |
| 3033 | y; |
| 3034 | |
| 3035 | PixelPacket |
| 3036 | *colormap; |
| 3037 | |
| 3038 | long |
| 3039 | *colormap_index; |
| 3040 | |
| 3041 | register long |
| 3042 | i; |
| 3043 | |
| 3044 | MagickBooleanType |
| 3045 | status; |
| 3046 | |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3047 | assert(image != (Image *) NULL); |
| 3048 | assert(image->signature == MagickSignature); |
| 3049 | if (image->type != GrayscaleType) |
| 3050 | (void) TransformImageColorspace(image,GRAYColorspace); |
| 3051 | colormap_index=(long *) AcquireQuantumMemory(MaxMap+1, |
| 3052 | sizeof(*colormap_index)); |
| 3053 | if (colormap_index == (long *) NULL) |
| 3054 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 3055 | image->filename); |
| 3056 | if (image->storage_class != PseudoClass) |
| 3057 | { |
| 3058 | ExceptionInfo |
| 3059 | *exception; |
| 3060 | |
| 3061 | for (i=0; i <= (long) MaxMap; i++) |
| 3062 | colormap_index[i]=(-1); |
| 3063 | if (AcquireImageColormap(image,MaxMap+1) == MagickFalse) |
| 3064 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 3065 | image->filename); |
| 3066 | image->colors=0; |
| 3067 | status=MagickTrue; |
| 3068 | exception=(&image->exception); |
| 3069 | image_view=AcquireCacheView(image); |
cristy | b5d5f72 | 2009-11-04 03:03:49 +0000 | [diff] [blame] | 3070 | #if defined(MAGICKCORE_OPENMP_SUPPORT) |
| 3071 | #pragma omp parallel for schedule(dynamic,4) shared(status) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3072 | #endif |
| 3073 | for (y=0; y < (long) image->rows; y++) |
| 3074 | { |
| 3075 | register IndexPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 3076 | *restrict indexes; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3077 | |
| 3078 | register long |
| 3079 | x; |
| 3080 | |
| 3081 | register const PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 3082 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3083 | |
| 3084 | if (status == MagickFalse) |
| 3085 | continue; |
| 3086 | q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1, |
| 3087 | exception); |
| 3088 | if (q == (PixelPacket *) NULL) |
| 3089 | { |
| 3090 | status=MagickFalse; |
| 3091 | continue; |
| 3092 | } |
| 3093 | indexes=GetCacheViewAuthenticIndexQueue(image_view); |
| 3094 | for (x=0; x < (long) image->columns; x++) |
| 3095 | { |
| 3096 | register unsigned long |
| 3097 | intensity; |
| 3098 | |
| 3099 | intensity=ScaleQuantumToMap(q->red); |
| 3100 | if (colormap_index[intensity] < 0) |
| 3101 | { |
cristy | b5d5f72 | 2009-11-04 03:03:49 +0000 | [diff] [blame] | 3102 | #if defined(MAGICKCORE_OPENMP_SUPPORT) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3103 | #pragma omp critical (MagickCore_SetGrayscaleImage) |
| 3104 | #endif |
| 3105 | if (colormap_index[intensity] < 0) |
| 3106 | { |
| 3107 | colormap_index[intensity]=(long) image->colors; |
| 3108 | image->colormap[image->colors]=(*q); |
| 3109 | image->colors++; |
| 3110 | } |
| 3111 | } |
| 3112 | indexes[x]=(IndexPacket) colormap_index[intensity]; |
| 3113 | q++; |
| 3114 | } |
| 3115 | if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse) |
| 3116 | status=MagickFalse; |
| 3117 | } |
| 3118 | image_view=DestroyCacheView(image_view); |
| 3119 | } |
| 3120 | for (i=0; i < (long) image->colors; i++) |
| 3121 | image->colormap[i].opacity=(unsigned short) i; |
| 3122 | qsort((void *) image->colormap,image->colors,sizeof(PixelPacket), |
| 3123 | IntensityCompare); |
| 3124 | colormap=(PixelPacket *) AcquireQuantumMemory(image->colors, |
| 3125 | sizeof(*colormap)); |
| 3126 | if (colormap == (PixelPacket *) NULL) |
| 3127 | ThrowBinaryException(ResourceLimitError,"MemoryAllocationFailed", |
| 3128 | image->filename); |
| 3129 | j=0; |
| 3130 | colormap[j]=image->colormap[0]; |
| 3131 | for (i=0; i < (long) image->colors; i++) |
| 3132 | { |
| 3133 | if (IsSameColor(image,&colormap[j],&image->colormap[i]) == MagickFalse) |
| 3134 | { |
| 3135 | j++; |
| 3136 | colormap[j]=image->colormap[i]; |
| 3137 | } |
| 3138 | colormap_index[(long) image->colormap[i].opacity]=j; |
| 3139 | } |
| 3140 | image->colors=(unsigned long) (j+1); |
| 3141 | image->colormap=(PixelPacket *) RelinquishMagickMemory(image->colormap); |
| 3142 | image->colormap=colormap; |
| 3143 | status=MagickTrue; |
| 3144 | exception=(&image->exception); |
| 3145 | image_view=AcquireCacheView(image); |
cristy | b5d5f72 | 2009-11-04 03:03:49 +0000 | [diff] [blame] | 3146 | #if defined(MAGICKCORE_OPENMP_SUPPORT) |
| 3147 | #pragma omp parallel for schedule(dynamic,4) shared(status) |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3148 | #endif |
| 3149 | for (y=0; y < (long) image->rows; y++) |
| 3150 | { |
| 3151 | register IndexPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 3152 | *restrict indexes; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3153 | |
| 3154 | register long |
| 3155 | x; |
| 3156 | |
| 3157 | register const PixelPacket |
cristy | c47d1f8 | 2009-11-26 01:44:43 +0000 | [diff] [blame] | 3158 | *restrict q; |
cristy | 3ed852e | 2009-09-05 21:47:34 +0000 | [diff] [blame] | 3159 | |
| 3160 | if (status == MagickFalse) |
| 3161 | continue; |
| 3162 | q=GetCacheViewAuthenticPixels(image_view,0,y,image->columns,1,exception); |
| 3163 | if (q == (PixelPacket *) NULL) |
| 3164 | { |
| 3165 | status=MagickFalse; |
| 3166 | continue; |
| 3167 | } |
| 3168 | indexes=GetCacheViewAuthenticIndexQueue(image_view); |
| 3169 | for (x=0; x < (long) image->columns; x++) |
| 3170 | indexes[x]=(IndexPacket) colormap_index[ScaleQuantumToMap(indexes[x])]; |
| 3171 | if (SyncCacheViewAuthenticPixels(image_view,exception) == MagickFalse) |
| 3172 | status=MagickFalse; |
| 3173 | } |
| 3174 | image_view=DestroyCacheView(image_view); |
| 3175 | colormap_index=(long *) RelinquishMagickMemory(colormap_index); |
| 3176 | image->type=GrayscaleType; |
| 3177 | if (IsMonochromeImage(image,&image->exception) != MagickFalse) |
| 3178 | image->type=BilevelType; |
| 3179 | return(status); |
| 3180 | } |