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55<p class="text-center"><a href="quantize.php#QuantizeImage">QuantizeImage</a> &bull; <a href="quantize.php#AcquireQuantizeInfo">AcquireQuantizeInfo</a> &bull; <a href="quantize.php#CloneQuantizeInfo">CloneQuantizeInfo</a> &bull; <a href="quantize.php#CompressImageColormap">CompressImageColormap</a> &bull; <a href="quantize.php#DestroyQuantizeInfo">DestroyQuantizeInfo</a> &bull; <a href="quantize.php#GetImageQuantizeError">GetImageQuantizeError</a> &bull; <a href="quantize.php#GetQuantizeInfo">GetQuantizeInfo</a> &bull; <a href="quantize.php#PosterizeImage">PosterizeImage</a> &bull; <a href="quantize.php#QuantizeImage">QuantizeImage</a> &bull; <a href="quantize.php#QuantizeImages">QuantizeImages</a> &bull; <a href="quantize.php#RemapImage">RemapImage</a> &bull; <a href="quantize.php#RemapImages">RemapImages</a> &bull; <a href="quantize.php#SetGrayscaleImage">SetGrayscaleImage</a></p>
56
57<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="QuantizeImage">QuantizeImage</a></h2>
58
59<p>QuantizeImage() takes a standard RGB or monochrome images and quantizes them down to some fixed number of colors.</p>
60
61<p>For purposes of color allocation, an image is a set of n pixels, where each pixel is a point in RGB space.  RGB space is a 3-dimensional vector space, and each pixel, Pi,  is defined by an ordered triple of red, green, and blue coordinates, (Ri, Gi, Bi).</p>
62
63<p>Each primary color component (red, green, or blue) represents an intensity which varies linearly from 0 to a maximum value, Cmax, which corresponds to full saturation of that color.  Color allocation is defined over a domain consisting of the cube in RGB space with opposite vertices at (0,0,0) and (Cmax, Cmax, Cmax).  QUANTIZE requires Cmax = 255.</p>
64
65<p>The algorithm maps this domain onto a tree in which each node represents a cube within that domain.  In the following discussion these cubes are defined by the coordinate of two opposite vertices (vertex nearest the origin in RGB space and the vertex farthest from the origin).</p>
66
67<p>The tree's root node represents the entire domain, (0,0,0) through (Cmax,Cmax,Cmax).  Each lower level in the tree is generated by subdividing one node's cube into eight smaller cubes of equal size. This corresponds to bisecting the parent cube with planes passing through the midpoints of each edge.</p>
68
69<p>The basic algorithm operates in three phases: Classification, Reduction, and Assignment.  Classification builds a color description tree for the image.  Reduction collapses the tree until the number it represents, at most, the number of colors desired in the output image. Assignment defines the output image's color map and sets each pixel's color by restorage_class in the reduced tree.  Our goal is to minimize the numerical discrepancies between the original colors and quantized colors (quantization error).</p>
70
71<p>Classification begins by initializing a color description tree of sufficient depth to represent each possible input color in a leaf. However, it is impractical to generate a fully-formed color description tree in the storage_class phase for realistic values of Cmax.  If colors components in the input image are quantized to k-bit precision, so that Cmax= 2k-1, the tree would need k levels below the root node to allow representing each possible input color in a leaf.  This becomes prohibitive because the tree's total number of nodes is 1 + sum(i=1, k, 8k).</p>
72
73<p>A complete tree would require 19,173,961 nodes for k = 8, Cmax = 255.</p>
74<dt>avoid building a fully populated tree, QUANTIZE</dt>
75<p>(1) Initializes data structures for nodes only as they are needed;  (2) Chooses a maximum depth for the tree as a function of the desired number of colors in the output image (currently log2(colormap size)).</p>
76
77<p>For each pixel in the input image, storage_class scans downward from the root of the color description tree.  At each level of the tree it identifies the single node which represents a cube in RGB space containing the pixel's color.  It updates the following data for each such node:</p>
78
79<pre class="text">
80    n1: Number of pixels whose color is contained in the RGB cube which
81    this node represents;
82</pre>
83
84<p>n2: Number of pixels whose color is not represented in a node at lower depth in the tree;  initially,  n2 = 0 for all nodes except leaves of the tree.</p>
85
86<p>Sr, Sg, Sb: Sums of the red, green, and blue component values for all pixels not classified at a lower depth. The combination of these sums and n2 will ultimately characterize the mean color of a set of pixels represented by this node.</p>
87
88<p>E: the distance squared in RGB space between each pixel contained within a node and the nodes' center.  This represents the quantization error for a node.</p>
89
90<p>Reduction repeatedly prunes the tree until the number of nodes with n2 &gt; 0 is less than or equal to the maximum number of colors allowed in the output image.  On any given iteration over the tree, it selects those nodes whose E count is minimal for pruning and merges their color statistics upward. It uses a pruning threshold, Ep, to govern node selection as follows:</p>
91
92<dd>
93</dd>
94
95<dd> Ep = 0 while number of nodes with (n2 &gt; 0) &gt; required maximum number of colors prune all nodes such that E &lt;= Ep Set Ep to minimum E in remaining nodes </dd>
96
97<dd> This has the effect of minimizing any quantization error when merging two nodes together. </dd>
98
99<dd> When a node to be pruned has offspring, the pruning procedure invokes itself recursively in order to prune the tree from the leaves upward. n2,  Sr, Sg,  and  Sb in a node being pruned are always added to the corresponding data in that node's parent.  This retains the pruned node's color characteristics for later averaging. </dd>
100
101<dd> For each node, n2 pixels exist for which that node represents the smallest volume in RGB space containing those pixel's colors.  When n2 &gt; 0 the node will uniquely define a color in the output image. At the beginning of reduction,  n2 = 0  for all nodes except a the leaves of the tree which represent colors present in the input image. </dd>
102
103<dd> The other pixel count, n1, indicates the total number of colors within the cubic volume which the node represents.  This includes n1 - n2 pixels whose colors should be defined by nodes at a lower level in the tree. </dd>
104
105<dd> Assignment generates the output image from the pruned tree.  The output </dd>
106<dl class="dl-horizontal">
107<dt>parts</dt>
108<dd>(1)  A color map, which is an array of color descriptions (RGB triples) for each color present in the output image;  (2)  A pixel array, which represents each pixel as an index into the color map array. </dd>
109
110<dd> First, the assignment phase makes one pass over the pruned color description tree to establish the image's color map.  For each node with n2  &gt; 0, it divides Sr, Sg, and Sb by n2 .  This produces the mean color of all pixels that classify no lower than this node.  Each of these colors becomes an entry in the color map. </dd>
111
112<dd> Finally,  the assignment phase reclassifies each pixel in the pruned tree to identify the deepest node containing the pixel's color.  The pixel's value in the pixel array becomes the index of this node's mean color in the color map. </dd>
113
114<dd> This method is based on a similar algorithm written by Paul Raveling. </dd>
115
116<dd>  </dd>
117</dl>
118<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="AcquireQuantizeInfo">AcquireQuantizeInfo</a></h2>
119
120<p>AcquireQuantizeInfo() allocates the QuantizeInfo structure.</p>
121
122<p>The format of the AcquireQuantizeInfo method is:</p>
123
124<pre class="text">
125QuantizeInfo *AcquireQuantizeInfo(const ImageInfo *image_info)
126</pre>
127
128<p>A description of each parameter follows:</p>
129
130<dd>
131</dd>
132
133<dd> </dd>
134<dl class="dl-horizontal">
135<dt>image_info</dt>
136<dd>the image info. </dd>
137
138<dd>  </dd>
139</dl>
140<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="CloneQuantizeInfo">CloneQuantizeInfo</a></h2>
141
142<p>CloneQuantizeInfo() makes a duplicate of the given quantize info structure, or if quantize info is NULL, a new one.</p>
143
144<p>The format of the CloneQuantizeInfo method is:</p>
145
146<pre class="text">
147QuantizeInfo *CloneQuantizeInfo(const QuantizeInfo *quantize_info)
148</pre>
149
150<p>A description of each parameter follows:</p>
151
152<dd>
153</dd>
154
155<dd> </dd>
156<dl class="dl-horizontal">
157<dt>clone_info</dt>
158<dd>Method CloneQuantizeInfo returns a duplicate of the given quantize info, or if image info is NULL a new one. </dd>
159
160<dd> </dd>
161<dt>quantize_info</dt>
162<dd>a structure of type info. </dd>
163
164<dd>  </dd>
165</dl>
166<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="CompressImageColormap">CompressImageColormap</a></h2>
167
168<p>CompressImageColormap() compresses an image colormap by removing any duplicate or unused color entries.</p>
169
170<p>The format of the CompressImageColormap method is:</p>
171
172<pre class="text">
173MagickBooleanType CompressImageColormap(Image *image,
174  ExceptionInfo *exception)
175</pre>
176
177<p>A description of each parameter follows:</p>
178
179<dd>
180</dd>
181
182<dd> </dd>
183<dl class="dl-horizontal">
184<dt>image</dt>
185<dd>the image. </dd>
186
187<dd> </dd>
188<dt>exception</dt>
189<dd>return any errors or warnings in this structure. </dd>
190
191<dd>  </dd>
192</dl>
193<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="DestroyQuantizeInfo">DestroyQuantizeInfo</a></h2>
194
195<p>DestroyQuantizeInfo() deallocates memory associated with an QuantizeInfo structure.</p>
196
197<p>The format of the DestroyQuantizeInfo method is:</p>
198
199<pre class="text">
200QuantizeInfo *DestroyQuantizeInfo(QuantizeInfo *quantize_info)
201</pre>
202
203<p>A description of each parameter follows:</p>
204
205<dd>
206</dd>
207
208<dd> </dd>
209<dl class="dl-horizontal">
210<dt>quantize_info</dt>
211<dd>Specifies a pointer to an QuantizeInfo structure. </dd>
212
213<dd>  </dd>
214</dl>
215<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="GetImageQuantizeError">GetImageQuantizeError</a></h2>
216
217<p>GetImageQuantizeError() measures the difference between the original and quantized images.  This difference is the total quantization error. The error is computed by summing over all pixels in an image the distance squared in RGB space between each reference pixel value and its quantized value.  These values are computed:</p>
218
219<pre class="text">
220    o mean_error_per_pixel:  This value is the mean error for any single
221pixel in the image.
222</pre>
223
224<dt>normalized_mean_square_error</dt>
225<p>This value is the normalized mean quantization error for any single pixel in the image.  This distance measure is normalized to a range between 0 and 1.  It is independent of the range of red, green, and blue values in the image.</p>
226
227<dt>normalized_maximum_square_error</dt>
228<p>Thsi value is the normalized maximum quantization error for any single pixel in the image.  This distance measure is normalized to a range between 0 and 1.  It is independent of the range of red, green, and blue values in your image.</p>
229
230<p>The format of the GetImageQuantizeError method is:</p>
231
232<pre class="text">
233MagickBooleanType GetImageQuantizeError(Image *image,
234  ExceptionInfo *exception)
235</pre>
236
237<p>A description of each parameter follows.</p>
238
239<dt>image</dt>
240<p>the image.</p>
241
242<dt>exception</dt>
243<p>return any errors or warnings in this structure.</p>
244
245<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="GetQuantizeInfo">GetQuantizeInfo</a></h2>
246
247<p>GetQuantizeInfo() initializes the QuantizeInfo structure.</p>
248
249<p>The format of the GetQuantizeInfo method is:</p>
250
251<pre class="text">
252GetQuantizeInfo(QuantizeInfo *quantize_info)
253</pre>
254
255<p>A description of each parameter follows:</p>
256
257<dd>
258</dd>
259
260<dd> </dd>
261<dl class="dl-horizontal">
262<dt>quantize_info</dt>
263<dd>Specifies a pointer to a QuantizeInfo structure. </dd>
264
265<dd>  </dd>
266</dl>
267<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="PosterizeImage">PosterizeImage</a></h2>
268
269<p>PosterizeImage() reduces the image to a limited number of colors for a "poster" effect.</p>
270
271<p>The format of the PosterizeImage method is:</p>
272
273<pre class="text">
274MagickBooleanType PosterizeImage(Image *image,const size_t levels,
275  const DitherMethod dither_method,ExceptionInfo *exception)
276</pre>
277
278<p>A description of each parameter follows:</p>
279
280<dd>
281</dd>
282
283<dd> </dd>
284<dl class="dl-horizontal">
285<dt>image</dt>
286<dd>Specifies a pointer to an Image structure. </dd>
287
288<dd> </dd>
289<dt>levels</dt>
290<dd>Number of color levels allowed in each channel.  Very low values (2, 3, or 4) have the most visible effect. </dd>
291
292<dd> </dd>
293<dt>dither_method</dt>
294<dd>choose from UndefinedDitherMethod, NoDitherMethod, RiemersmaDitherMethod, FloydSteinbergDitherMethod. </dd>
295
296<dd> </dd>
297<dt>exception</dt>
298<dd>return any errors or warnings in this structure. </dd>
299
300<dd>  </dd>
301</dl>
302<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="QuantizeImage">QuantizeImage</a></h2>
303
304<p>QuantizeImage() analyzes the colors within a reference image and chooses a fixed number of colors to represent the image.  The goal of the algorithm is to minimize the color difference between the input and output image while minimizing the processing time.</p>
305
306<p>The format of the QuantizeImage method is:</p>
307
308<pre class="text">
309MagickBooleanType QuantizeImage(const QuantizeInfo *quantize_info,
310  Image *image,ExceptionInfo *exception)
311</pre>
312
313<p>A description of each parameter follows:</p>
314
315<dd>
316</dd>
317
318<dd> </dd>
319<dl class="dl-horizontal">
320<dt>quantize_info</dt>
321<dd>Specifies a pointer to an QuantizeInfo structure. </dd>
322
323<dd> </dd>
324<dt>image</dt>
325<dd>the image. </dd>
326
327<dd> </dd>
328<dt>exception</dt>
329<dd>return any errors or warnings in this structure. </dd>
330
331<dd>  </dd>
332</dl>
333<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="QuantizeImages">QuantizeImages</a></h2>
334
335<p>QuantizeImages() analyzes the colors within a set of reference images and chooses a fixed number of colors to represent the set.  The goal of the algorithm is to minimize the color difference between the input and output images while minimizing the processing time.</p>
336
337<p>The format of the QuantizeImages method is:</p>
338
339<pre class="text">
340MagickBooleanType QuantizeImages(const QuantizeInfo *quantize_info,
341  Image *images,ExceptionInfo *exception)
342</pre>
343
344<p>A description of each parameter follows:</p>
345
346<dd>
347</dd>
348
349<dd> </dd>
350<dl class="dl-horizontal">
351<dt>quantize_info</dt>
352<dd>Specifies a pointer to an QuantizeInfo structure. </dd>
353
354<dd> </dd>
355<dt>images</dt>
356<dd>Specifies a pointer to a list of Image structures. </dd>
357
358<dd> </dd>
359<dt>exception</dt>
360<dd>return any errors or warnings in this structure. </dd>
361
362<dd>  </dd>
363</dl>
364<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="RemapImage">RemapImage</a></h2>
365
366<p>RemapImage() replaces the colors of an image with the closest of the colors from the reference image.</p>
367
368<p>The format of the RemapImage method is:</p>
369
370<pre class="text">
371MagickBooleanType RemapImage(const QuantizeInfo *quantize_info,
372  Image *image,const Image *remap_image,ExceptionInfo *exception)
373</pre>
374
375<p>A description of each parameter follows:</p>
376
377<dd>
378</dd>
379
380<dd> </dd>
381<dl class="dl-horizontal">
382<dt>quantize_info</dt>
383<dd>Specifies a pointer to an QuantizeInfo structure. </dd>
384
385<dd> </dd>
386<dt>image</dt>
387<dd>the image. </dd>
388
389<dd> </dd>
390<dt>remap_image</dt>
391<dd>the reference image. </dd>
392
393<dd> </dd>
394<dt>exception</dt>
395<dd>return any errors or warnings in this structure. </dd>
396
397<dd>  </dd>
398</dl>
399<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="RemapImages">RemapImages</a></h2>
400
401<p>RemapImages() replaces the colors of a sequence of images with the closest color from a reference image.</p>
402
403<p>The format of the RemapImage method is:</p>
404
405<pre class="text">
406MagickBooleanType RemapImages(const QuantizeInfo *quantize_info,
407  Image *images,Image *remap_image,ExceptionInfo *exception)
408</pre>
409
410<p>A description of each parameter follows:</p>
411
412<dd>
413</dd>
414
415<dd> </dd>
416<dl class="dl-horizontal">
417<dt>quantize_info</dt>
418<dd>Specifies a pointer to an QuantizeInfo structure. </dd>
419
420<dd> </dd>
421<dt>images</dt>
422<dd>the image sequence. </dd>
423
424<dd> </dd>
425<dt>remap_image</dt>
426<dd>the reference image. </dd>
427
428<dd> </dd>
429<dt>exception</dt>
430<dd>return any errors or warnings in this structure. </dd>
431
432<dd>  </dd>
433</dl>
434<h2><a href="http://nextgen.imagemagick.org/api/MagickCore/quantize_8c.html" id="SetGrayscaleImage">SetGrayscaleImage</a></h2>
435
436<p>SetGrayscaleImage() converts an image to a PseudoClass grayscale image.</p>
437
438<p>The format of the SetGrayscaleImage method is:</p>
439
440<pre class="text">
441MagickBooleanType SetGrayscaleImage(Image *image,
442  ExceptionInfo *exception)
443</pre>
444
445<p>A description of each parameter follows:</p>
446
447<dd>
448</dd>
449
450<dd> </dd>
451<dl class="dl-horizontal">
452<dt>image</dt>
453<dd>The image. </dd>
454
455<dd> </dd>
456<dt>exception</dt>
457<dd>return any errors or warnings in this structure. </dd>
458
459<dd>  </dd>
460</dl>
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