blob: cdd8627abfec08bcdea8a94fcdf1879b72e286e7 [file] [log] [blame]
cristy701db312009-11-20 03:14:08 +00001/*
2%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3% %
4% %
5% %
6% M M OOO RRRR PPPP H H OOO L OOO GGGG Y Y %
7% MM MM O O R R P P H H O O L O O G Y Y %
8% M M M O O RRRR PPPP HHHHH O O L O O G GGG Y %
9% M M O O R R P H H O O L O O G G Y %
10% M M OOO R R P H H OOO LLLLL OOO GGG Y %
11% %
12% %
13% MagickCore Morphology Methods %
14% %
15% Software Design %
16% Anthony Thyssen %
anthonyc94cdb02010-01-06 08:15:29 +000017% January 2010 %
cristy701db312009-11-20 03:14:08 +000018% %
19% %
cristy16af1cb2009-12-11 21:38:29 +000020% Copyright 1999-2010 ImageMagick Studio LLC, a non-profit organization %
cristy701db312009-11-20 03:14:08 +000021% dedicated to making software imaging solutions freely available. %
22% %
23% You may not use this file except in compliance with the License. You may %
24% obtain a copy of the License at %
25% %
26% http://www.imagemagick.org/script/license.php %
27% %
28% Unless required by applicable law or agreed to in writing, software %
29% distributed under the License is distributed on an "AS IS" BASIS, %
30% WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. %
31% See the License for the specific language governing permissions and %
32% limitations under the License. %
33% %
34%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
35%
anthony1b2bc0a2010-05-12 05:25:22 +000036% Morpology is the the application of various kernels, of any size and even
anthony602ab9b2010-01-05 08:06:50 +000037% shape, to a image in various ways (typically binary, but not always).
cristy701db312009-11-20 03:14:08 +000038%
anthony602ab9b2010-01-05 08:06:50 +000039% Convolution (weighted sum or average) is just one specific type of
40% morphology. Just one that is very common for image bluring and sharpening
41% effects. Not only 2D Gaussian blurring, but also 2-pass 1D Blurring.
42%
43% This module provides not only a general morphology function, and the ability
44% to apply more advanced or iterative morphologies, but also functions for the
45% generation of many different types of kernel arrays from user supplied
46% arguments. Prehaps even the generation of a kernel from a small image.
cristy701db312009-11-20 03:14:08 +000047*/
48
49/*
50 Include declarations.
51*/
52#include "magick/studio.h"
anthony602ab9b2010-01-05 08:06:50 +000053#include "magick/artifact.h"
cristy701db312009-11-20 03:14:08 +000054#include "magick/cache-view.h"
55#include "magick/color-private.h"
56#include "magick/enhance.h"
57#include "magick/exception.h"
58#include "magick/exception-private.h"
anthony602ab9b2010-01-05 08:06:50 +000059#include "magick/gem.h"
cristy701db312009-11-20 03:14:08 +000060#include "magick/hashmap.h"
61#include "magick/image.h"
cristybba804b2010-01-05 15:39:59 +000062#include "magick/image-private.h"
cristy701db312009-11-20 03:14:08 +000063#include "magick/list.h"
anthony29188a82010-01-22 10:12:34 +000064#include "magick/magick.h"
cristy701db312009-11-20 03:14:08 +000065#include "magick/memory_.h"
66#include "magick/monitor-private.h"
67#include "magick/morphology.h"
anthony46a369d2010-05-19 02:41:48 +000068#include "magick/morphology-private.h"
anthony602ab9b2010-01-05 08:06:50 +000069#include "magick/option.h"
cristy701db312009-11-20 03:14:08 +000070#include "magick/pixel-private.h"
71#include "magick/prepress.h"
72#include "magick/quantize.h"
73#include "magick/registry.h"
74#include "magick/semaphore.h"
75#include "magick/splay-tree.h"
76#include "magick/statistic.h"
77#include "magick/string_.h"
anthony602ab9b2010-01-05 08:06:50 +000078#include "magick/string-private.h"
79#include "magick/token.h"
cristya29d45f2010-03-05 21:14:54 +000080
anthonyc3cd15b2010-05-27 06:05:40 +000081
anthony602ab9b2010-01-05 08:06:50 +000082/*
anthonyc3cd15b2010-05-27 06:05:40 +000083** The following test is for special floating point numbers of value NaN (not
84** a number), that may be used within a Kernel Definition. NaN's are defined
85** as part of the IEEE standard for floating point number representation.
86**
87** These are used as a Kernel value to mean that this kernel position is not
88** part of the kernel neighbourhood for convolution or morphology processing,
89** and thus should be ignored. This allows the use of 'shaped' kernels.
90**
91** The special properity that two NaN's are never equal, even if they are from
92** the same variable allow you to test if a value is special NaN value.
93**
94** This macro IsNaN() is thus is only true if the value given is NaN.
cristya29d45f2010-03-05 21:14:54 +000095*/
anthony602ab9b2010-01-05 08:06:50 +000096#define IsNan(a) ((a)!=(a))
97
anthony29188a82010-01-22 10:12:34 +000098/*
cristya29d45f2010-03-05 21:14:54 +000099 Other global definitions used by module.
100*/
anthony29188a82010-01-22 10:12:34 +0000101static inline double MagickMin(const double x,const double y)
102{
103 return( x < y ? x : y);
104}
105static inline double MagickMax(const double x,const double y)
106{
107 return( x > y ? x : y);
108}
109#define Minimize(assign,value) assign=MagickMin(assign,value)
110#define Maximize(assign,value) assign=MagickMax(assign,value)
111
anthonyc4c86e02010-01-27 09:30:32 +0000112/* Currently these are only internal to this module */
113static void
anthony46a369d2010-05-19 02:41:48 +0000114 CalcKernelMetaData(KernelInfo *),
anthonybfb635a2010-06-04 00:18:04 +0000115 ExpandMirrorKernelInfo(KernelInfo *),
116 ExpandRotateKernelInfo(KernelInfo *, const double),
cristyef656912010-03-05 19:54:59 +0000117 RotateKernelInfo(KernelInfo *, double);
anthony602ab9b2010-01-05 08:06:50 +0000118
anthony3dd0f622010-05-13 12:57:32 +0000119
120/* Quick function to find last kernel in a kernel list */
121static inline KernelInfo *LastKernelInfo(KernelInfo *kernel)
122{
123 while (kernel->next != (KernelInfo *) NULL)
124 kernel = kernel->next;
125 return(kernel);
126}
127
128
anthony602ab9b2010-01-05 08:06:50 +0000129/*
130%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
131% %
132% %
133% %
anthony83ba99b2010-01-24 08:48:15 +0000134% A c q u i r e K e r n e l I n f o %
anthony602ab9b2010-01-05 08:06:50 +0000135% %
136% %
137% %
138%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
139%
cristy2be15382010-01-21 02:38:03 +0000140% AcquireKernelInfo() takes the given string (generally supplied by the
anthony602ab9b2010-01-05 08:06:50 +0000141% user) and converts it into a Morphology/Convolution Kernel. This allows
142% users to specify a kernel from a number of pre-defined kernels, or to fully
143% specify their own kernel for a specific Convolution or Morphology
144% Operation.
145%
146% The kernel so generated can be any rectangular array of floating point
147% values (doubles) with the 'control point' or 'pixel being affected'
148% anywhere within that array of values.
149%
anthony83ba99b2010-01-24 08:48:15 +0000150% Previously IM was restricted to a square of odd size using the exact
cristybb503372010-05-27 20:51:26 +0000151% center as origin, this is no ssize_ter the case, and any rectangular kernel
anthony83ba99b2010-01-24 08:48:15 +0000152% with any value being declared the origin. This in turn allows the use of
153% highly asymmetrical kernels.
anthony602ab9b2010-01-05 08:06:50 +0000154%
155% The floating point values in the kernel can also include a special value
anthony83ba99b2010-01-24 08:48:15 +0000156% known as 'nan' or 'not a number' to indicate that this value is not part
157% of the kernel array. This allows you to shaped the kernel within its
158% rectangular area. That is 'nan' values provide a 'mask' for the kernel
159% shape. However at least one non-nan value must be provided for correct
160% working of a kernel.
anthony602ab9b2010-01-05 08:06:50 +0000161%
anthony7a01dcf2010-05-11 12:25:52 +0000162% The returned kernel should be freed using the DestroyKernelInfo() when you
163% are finished with it. Do not free this memory yourself.
anthony602ab9b2010-01-05 08:06:50 +0000164%
165% Input kernel defintion strings can consist of any of three types.
166%
anthonybfb635a2010-06-04 00:18:04 +0000167% "name:args[[@><]"
anthony29188a82010-01-22 10:12:34 +0000168% Select from one of the built in kernels, using the name and
169% geometry arguments supplied. See AcquireKernelBuiltIn()
anthony602ab9b2010-01-05 08:06:50 +0000170%
anthonybfb635a2010-06-04 00:18:04 +0000171% "WxH[+X+Y][@><]:num, num, num ..."
anthony1b2bc0a2010-05-12 05:25:22 +0000172% a kernel of size W by H, with W*H floating point numbers following.
anthony602ab9b2010-01-05 08:06:50 +0000173% the 'center' can be optionally be defined at +X+Y (such that +0+0
anthony29188a82010-01-22 10:12:34 +0000174% is top left corner). If not defined the pixel in the center, for
175% odd sizes, or to the immediate top or left of center for even sizes
176% is automatically selected.
anthony602ab9b2010-01-05 08:06:50 +0000177%
anthony29188a82010-01-22 10:12:34 +0000178% "num, num, num, num, ..."
179% list of floating point numbers defining an 'old style' odd sized
180% square kernel. At least 9 values should be provided for a 3x3
181% square kernel, 25 for a 5x5 square kernel, 49 for 7x7, etc.
182% Values can be space or comma separated. This is not recommended.
anthony602ab9b2010-01-05 08:06:50 +0000183%
anthony7a01dcf2010-05-11 12:25:52 +0000184% You can define a 'list of kernels' which can be used by some morphology
185% operators A list is defined as a semi-colon seperated list kernels.
186%
anthonydbc89892010-05-12 07:05:27 +0000187% " kernel ; kernel ; kernel ; "
anthony7a01dcf2010-05-11 12:25:52 +0000188%
anthony1dd091a2010-05-27 06:31:15 +0000189% Any extra ';' characters, at start, end or between kernel defintions are
anthony43c49252010-05-18 10:59:50 +0000190% simply ignored.
191%
anthonybfb635a2010-06-04 00:18:04 +0000192% The special flags will expand a single kernel, into a list of rotated
193% kernels. A '@' flag will expand a 3x3 kernel into a list of 45-degree
194% cyclic rotations, while a '>' will generate a list of 90-degree rotations.
195% The '<' also exands using 90-degree rotates, but giving a 180-degree
196% reflected kernel before the +/- 90-degree rotations, which can be important
197% for Thinning operations.
198%
anthony43c49252010-05-18 10:59:50 +0000199% Note that 'name' kernels will start with an alphabetic character while the
200% new kernel specification has a ':' character in its specification string.
201% If neither is the case, it is assumed an old style of a simple list of
202% numbers generating a odd-sized square kernel has been given.
anthony7a01dcf2010-05-11 12:25:52 +0000203%
anthony602ab9b2010-01-05 08:06:50 +0000204% The format of the AcquireKernal method is:
205%
cristy2be15382010-01-21 02:38:03 +0000206% KernelInfo *AcquireKernelInfo(const char *kernel_string)
anthony602ab9b2010-01-05 08:06:50 +0000207%
208% A description of each parameter follows:
209%
210% o kernel_string: the Morphology/Convolution kernel wanted.
211%
212*/
213
anthonyc84dce52010-05-07 05:42:23 +0000214/* This was separated so that it could be used as a separate
anthony5ef8e942010-05-11 06:51:12 +0000215** array input handling function, such as for -color-matrix
anthonyc84dce52010-05-07 05:42:23 +0000216*/
anthony5ef8e942010-05-11 06:51:12 +0000217static KernelInfo *ParseKernelArray(const char *kernel_string)
anthony602ab9b2010-01-05 08:06:50 +0000218{
cristy2be15382010-01-21 02:38:03 +0000219 KernelInfo
anthony602ab9b2010-01-05 08:06:50 +0000220 *kernel;
221
222 char
223 token[MaxTextExtent];
224
anthony602ab9b2010-01-05 08:06:50 +0000225 const char
anthony5ef8e942010-05-11 06:51:12 +0000226 *p,
227 *end;
anthony602ab9b2010-01-05 08:06:50 +0000228
cristybb503372010-05-27 20:51:26 +0000229 register ssize_t
anthonyc84dce52010-05-07 05:42:23 +0000230 i;
anthony602ab9b2010-01-05 08:06:50 +0000231
anthony29188a82010-01-22 10:12:34 +0000232 double
233 nan = sqrt((double)-1.0); /* Special Value : Not A Number */
234
anthony43c49252010-05-18 10:59:50 +0000235 MagickStatusType
236 flags;
237
238 GeometryInfo
239 args;
240
cristy2be15382010-01-21 02:38:03 +0000241 kernel=(KernelInfo *) AcquireMagickMemory(sizeof(*kernel));
242 if (kernel == (KernelInfo *)NULL)
anthony602ab9b2010-01-05 08:06:50 +0000243 return(kernel);
244 (void) ResetMagickMemory(kernel,0,sizeof(*kernel));
anthony43c49252010-05-18 10:59:50 +0000245 kernel->minimum = kernel->maximum = kernel->angle = 0.0;
anthony7a01dcf2010-05-11 12:25:52 +0000246 kernel->negative_range = kernel->positive_range = 0.0;
anthony602ab9b2010-01-05 08:06:50 +0000247 kernel->type = UserDefinedKernel;
anthony7a01dcf2010-05-11 12:25:52 +0000248 kernel->next = (KernelInfo *) NULL;
cristyd43a46b2010-01-21 02:13:41 +0000249 kernel->signature = MagickSignature;
anthony602ab9b2010-01-05 08:06:50 +0000250
anthony5ef8e942010-05-11 06:51:12 +0000251 /* find end of this specific kernel definition string */
252 end = strchr(kernel_string, ';');
253 if ( end == (char *) NULL )
254 end = strchr(kernel_string, '\0');
255
anthony43c49252010-05-18 10:59:50 +0000256 /* clear flags - for Expanding kernal lists thorugh rotations */
257 flags = NoValue;
258
anthony602ab9b2010-01-05 08:06:50 +0000259 /* Has a ':' in argument - New user kernel specification */
260 p = strchr(kernel_string, ':');
anthony5ef8e942010-05-11 06:51:12 +0000261 if ( p != (char *) NULL && p < end)
anthony602ab9b2010-01-05 08:06:50 +0000262 {
anthony602ab9b2010-01-05 08:06:50 +0000263 /* ParseGeometry() needs the geometry separated! -- Arrgghh */
cristy150989e2010-02-01 14:59:39 +0000264 memcpy(token, kernel_string, (size_t) (p-kernel_string));
anthony602ab9b2010-01-05 08:06:50 +0000265 token[p-kernel_string] = '\0';
anthonyc84dce52010-05-07 05:42:23 +0000266 SetGeometryInfo(&args);
anthony602ab9b2010-01-05 08:06:50 +0000267 flags = ParseGeometry(token, &args);
anthony602ab9b2010-01-05 08:06:50 +0000268
anthony29188a82010-01-22 10:12:34 +0000269 /* Size handling and checks of geometry settings */
anthony602ab9b2010-01-05 08:06:50 +0000270 if ( (flags & WidthValue) == 0 ) /* if no width then */
271 args.rho = args.sigma; /* then width = height */
272 if ( args.rho < 1.0 ) /* if width too small */
273 args.rho = 1.0; /* then width = 1 */
274 if ( args.sigma < 1.0 ) /* if height too small */
275 args.sigma = args.rho; /* then height = width */
cristybb503372010-05-27 20:51:26 +0000276 kernel->width = (size_t)args.rho;
277 kernel->height = (size_t)args.sigma;
anthony602ab9b2010-01-05 08:06:50 +0000278
279 /* Offset Handling and Checks */
280 if ( args.xi < 0.0 || args.psi < 0.0 )
anthony83ba99b2010-01-24 08:48:15 +0000281 return(DestroyKernelInfo(kernel));
cristybb503372010-05-27 20:51:26 +0000282 kernel->x = ((flags & XValue)!=0) ? (ssize_t)args.xi
283 : (ssize_t) (kernel->width-1)/2;
284 kernel->y = ((flags & YValue)!=0) ? (ssize_t)args.psi
285 : (ssize_t) (kernel->height-1)/2;
286 if ( kernel->x >= (ssize_t) kernel->width ||
287 kernel->y >= (ssize_t) kernel->height )
anthony83ba99b2010-01-24 08:48:15 +0000288 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +0000289
290 p++; /* advance beyond the ':' */
291 }
292 else
anthonyc84dce52010-05-07 05:42:23 +0000293 { /* ELSE - Old old specification, forming odd-square kernel */
anthony602ab9b2010-01-05 08:06:50 +0000294 /* count up number of values given */
295 p=(const char *) kernel_string;
cristya699b172010-01-06 16:48:49 +0000296 while ((isspace((int) ((unsigned char) *p)) != 0) || (*p == '\''))
anthony29188a82010-01-22 10:12:34 +0000297 p++; /* ignore "'" chars for convolve filter usage - Cristy */
anthony5ef8e942010-05-11 06:51:12 +0000298 for (i=0; p < end; i++)
anthony602ab9b2010-01-05 08:06:50 +0000299 {
300 GetMagickToken(p,&p,token);
301 if (*token == ',')
302 GetMagickToken(p,&p,token);
303 }
304 /* set the size of the kernel - old sized square */
cristybb503372010-05-27 20:51:26 +0000305 kernel->width = kernel->height= (size_t) sqrt((double) i+1.0);
306 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +0000307 p=(const char *) kernel_string;
anthony29188a82010-01-22 10:12:34 +0000308 while ((isspace((int) ((unsigned char) *p)) != 0) || (*p == '\''))
309 p++; /* ignore "'" chars for convolve filter usage - Cristy */
anthony602ab9b2010-01-05 08:06:50 +0000310 }
311
312 /* Read in the kernel values from rest of input string argument */
313 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
314 kernel->height*sizeof(double));
315 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +0000316 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +0000317
cristyc99304f2010-02-01 15:26:27 +0000318 kernel->minimum = +MagickHuge;
319 kernel->maximum = -MagickHuge;
320 kernel->negative_range = kernel->positive_range = 0.0;
anthonyc84dce52010-05-07 05:42:23 +0000321
cristybb503372010-05-27 20:51:26 +0000322 for (i=0; (i < (ssize_t) (kernel->width*kernel->height)) && (p < end); i++)
anthony602ab9b2010-01-05 08:06:50 +0000323 {
324 GetMagickToken(p,&p,token);
325 if (*token == ',')
326 GetMagickToken(p,&p,token);
anthony29188a82010-01-22 10:12:34 +0000327 if ( LocaleCompare("nan",token) == 0
anthonyc84dce52010-05-07 05:42:23 +0000328 || LocaleCompare("-",token) == 0 ) {
anthony29188a82010-01-22 10:12:34 +0000329 kernel->values[i] = nan; /* do not include this value in kernel */
330 }
331 else {
332 kernel->values[i] = StringToDouble(token);
333 ( kernel->values[i] < 0)
cristyc99304f2010-02-01 15:26:27 +0000334 ? ( kernel->negative_range += kernel->values[i] )
335 : ( kernel->positive_range += kernel->values[i] );
336 Minimize(kernel->minimum, kernel->values[i]);
337 Maximize(kernel->maximum, kernel->values[i]);
anthony29188a82010-01-22 10:12:34 +0000338 }
anthony602ab9b2010-01-05 08:06:50 +0000339 }
anthony29188a82010-01-22 10:12:34 +0000340
anthony5ef8e942010-05-11 06:51:12 +0000341 /* sanity check -- no more values in kernel definition */
342 GetMagickToken(p,&p,token);
343 if ( *token != '\0' && *token != ';' && *token != '\'' )
344 return(DestroyKernelInfo(kernel));
345
anthonyc84dce52010-05-07 05:42:23 +0000346#if 0
347 /* this was the old method of handling a incomplete kernel */
cristybb503372010-05-27 20:51:26 +0000348 if ( i < (ssize_t) (kernel->width*kernel->height) ) {
cristyc99304f2010-02-01 15:26:27 +0000349 Minimize(kernel->minimum, kernel->values[i]);
350 Maximize(kernel->maximum, kernel->values[i]);
cristybb503372010-05-27 20:51:26 +0000351 for ( ; i < (ssize_t) (kernel->width*kernel->height); i++)
anthony29188a82010-01-22 10:12:34 +0000352 kernel->values[i]=0.0;
353 }
anthonyc84dce52010-05-07 05:42:23 +0000354#else
355 /* Number of values for kernel was not enough - Report Error */
cristybb503372010-05-27 20:51:26 +0000356 if ( i < (ssize_t) (kernel->width*kernel->height) )
anthonyc84dce52010-05-07 05:42:23 +0000357 return(DestroyKernelInfo(kernel));
358#endif
359
360 /* check that we recieved at least one real (non-nan) value! */
361 if ( kernel->minimum == MagickHuge )
362 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +0000363
anthony43c49252010-05-18 10:59:50 +0000364 if ( (flags & AreaValue) != 0 ) /* '@' symbol in kernel size */
anthonybfb635a2010-06-04 00:18:04 +0000365 ExpandRotateKernelInfo(kernel, 45.0); /* cyclic rotate 3x3 kernels */
366 else if ( (flags & GreaterValue) != 0 ) /* '>' symbol in kernel args */
367 ExpandRotateKernelInfo(kernel, 90.0); /* 90 degree rotate of kernel */
368 else if ( (flags & LessValue) != 0 ) /* '<' symbol in kernel args */
369 ExpandMirrorKernelInfo(kernel); /* 90 degree mirror rotate */
anthony43c49252010-05-18 10:59:50 +0000370
anthony602ab9b2010-01-05 08:06:50 +0000371 return(kernel);
372}
anthonyc84dce52010-05-07 05:42:23 +0000373
anthony43c49252010-05-18 10:59:50 +0000374static KernelInfo *ParseKernelName(const char *kernel_string)
anthonyc84dce52010-05-07 05:42:23 +0000375{
anthonyf0176c32010-05-23 23:08:57 +0000376 KernelInfo
377 *kernel;
378
anthonyc84dce52010-05-07 05:42:23 +0000379 char
380 token[MaxTextExtent];
381
cristybb503372010-05-27 20:51:26 +0000382 ssize_t
anthony5ef8e942010-05-11 06:51:12 +0000383 type;
384
anthonyc84dce52010-05-07 05:42:23 +0000385 const char
anthony7a01dcf2010-05-11 12:25:52 +0000386 *p,
387 *end;
anthonyc84dce52010-05-07 05:42:23 +0000388
389 MagickStatusType
390 flags;
391
392 GeometryInfo
393 args;
394
anthonyc84dce52010-05-07 05:42:23 +0000395 /* Parse special 'named' kernel */
anthony5ef8e942010-05-11 06:51:12 +0000396 GetMagickToken(kernel_string,&p,token);
anthonyc84dce52010-05-07 05:42:23 +0000397 type=ParseMagickOption(MagickKernelOptions,MagickFalse,token);
398 if ( type < 0 || type == UserDefinedKernel )
anthony5ef8e942010-05-11 06:51:12 +0000399 return((KernelInfo *)NULL); /* not a valid named kernel */
anthonyc84dce52010-05-07 05:42:23 +0000400
401 while (((isspace((int) ((unsigned char) *p)) != 0) ||
anthony5ef8e942010-05-11 06:51:12 +0000402 (*p == ',') || (*p == ':' )) && (*p != '\0') && (*p != ';'))
anthonyc84dce52010-05-07 05:42:23 +0000403 p++;
anthony7a01dcf2010-05-11 12:25:52 +0000404
405 end = strchr(p, ';'); /* end of this kernel defintion */
406 if ( end == (char *) NULL )
407 end = strchr(p, '\0');
408
409 /* ParseGeometry() needs the geometry separated! -- Arrgghh */
410 memcpy(token, p, (size_t) (end-p));
411 token[end-p] = '\0';
anthonyc84dce52010-05-07 05:42:23 +0000412 SetGeometryInfo(&args);
anthony7a01dcf2010-05-11 12:25:52 +0000413 flags = ParseGeometry(token, &args);
anthonyc84dce52010-05-07 05:42:23 +0000414
anthony3c10fc82010-05-13 02:40:51 +0000415#if 0
416 /* For Debugging Geometry Input */
anthony46a369d2010-05-19 02:41:48 +0000417 fprintf(stderr, "Geometry = 0x%04X : %lg x %lg %+lg %+lg\n",
anthony3c10fc82010-05-13 02:40:51 +0000418 flags, args.rho, args.sigma, args.xi, args.psi );
419#endif
420
anthonyc84dce52010-05-07 05:42:23 +0000421 /* special handling of missing values in input string */
422 switch( type ) {
anthony5ef8e942010-05-11 06:51:12 +0000423 case RectangleKernel:
424 if ( (flags & WidthValue) == 0 ) /* if no width then */
425 args.rho = args.sigma; /* then width = height */
426 if ( args.rho < 1.0 ) /* if width too small */
427 args.rho = 3; /* then width = 3 */
428 if ( args.sigma < 1.0 ) /* if height too small */
429 args.sigma = args.rho; /* then height = width */
430 if ( (flags & XValue) == 0 ) /* center offset if not defined */
cristybb503372010-05-27 20:51:26 +0000431 args.xi = (double)(((ssize_t)args.rho-1)/2);
anthony5ef8e942010-05-11 06:51:12 +0000432 if ( (flags & YValue) == 0 )
cristybb503372010-05-27 20:51:26 +0000433 args.psi = (double)(((ssize_t)args.sigma-1)/2);
anthony5ef8e942010-05-11 06:51:12 +0000434 break;
435 case SquareKernel:
436 case DiamondKernel:
437 case DiskKernel:
438 case PlusKernel:
anthony3dd0f622010-05-13 12:57:32 +0000439 case CrossKernel:
anthony5ef8e942010-05-11 06:51:12 +0000440 /* If no scale given (a 0 scale is valid! - set it to 1.0 */
441 if ( (flags & HeightValue) == 0 )
442 args.sigma = 1.0;
443 break;
anthonyc1061722010-05-14 06:23:49 +0000444 case RingKernel:
445 if ( (flags & XValue) == 0 )
446 args.xi = 1.0;
447 break;
anthony5ef8e942010-05-11 06:51:12 +0000448 case ChebyshevKernel:
anthonybee715c2010-06-04 01:25:57 +0000449 case ManhattanKernel:
anthony5ef8e942010-05-11 06:51:12 +0000450 case EuclideanKernel:
anthony43c49252010-05-18 10:59:50 +0000451 if ( (flags & HeightValue) == 0 ) /* no distance scale */
452 args.sigma = 100.0; /* default distance scaling */
453 else if ( (flags & AspectValue ) != 0 ) /* '!' flag */
454 args.sigma = QuantumRange/(args.sigma+1); /* maximum pixel distance */
455 else if ( (flags & PercentValue ) != 0 ) /* '%' flag */
456 args.sigma *= QuantumRange/100.0; /* percentage of color range */
anthony5ef8e942010-05-11 06:51:12 +0000457 break;
458 default:
459 break;
anthonyc84dce52010-05-07 05:42:23 +0000460 }
461
anthonyf0176c32010-05-23 23:08:57 +0000462 kernel = AcquireKernelBuiltIn((KernelInfoType)type, &args);
463
464 /* global expand to rotated kernel list - only for single kernels */
465 if ( kernel->next == (KernelInfo *) NULL ) {
466 if ( (flags & AreaValue) != 0 ) /* '@' symbol in kernel args */
anthonybfb635a2010-06-04 00:18:04 +0000467 ExpandRotateKernelInfo(kernel, 45.0);
468 else if ( (flags & GreaterValue) != 0 ) /* '>' symbol in kernel args */
469 ExpandRotateKernelInfo(kernel, 90.0);
470 else if ( (flags & LessValue) != 0 ) /* '<' symbol in kernel args */
471 ExpandMirrorKernelInfo(kernel);
anthonyf0176c32010-05-23 23:08:57 +0000472 }
473
474 return(kernel);
anthonyc84dce52010-05-07 05:42:23 +0000475}
476
anthony5ef8e942010-05-11 06:51:12 +0000477MagickExport KernelInfo *AcquireKernelInfo(const char *kernel_string)
478{
anthony7a01dcf2010-05-11 12:25:52 +0000479
480 KernelInfo
anthonydbc89892010-05-12 07:05:27 +0000481 *kernel,
anthony43c49252010-05-18 10:59:50 +0000482 *new_kernel;
anthony7a01dcf2010-05-11 12:25:52 +0000483
anthony5ef8e942010-05-11 06:51:12 +0000484 char
485 token[MaxTextExtent];
486
anthony7a01dcf2010-05-11 12:25:52 +0000487 const char
anthonydbc89892010-05-12 07:05:27 +0000488 *p;
anthony7a01dcf2010-05-11 12:25:52 +0000489
cristybb503372010-05-27 20:51:26 +0000490 size_t
anthonye108a3f2010-05-12 07:24:03 +0000491 kernel_number;
492
anthonydbc89892010-05-12 07:05:27 +0000493 p = kernel_string;
anthony43c49252010-05-18 10:59:50 +0000494 kernel = NULL;
anthonye108a3f2010-05-12 07:24:03 +0000495 kernel_number = 0;
anthony5ef8e942010-05-11 06:51:12 +0000496
anthonydbc89892010-05-12 07:05:27 +0000497 while ( GetMagickToken(p,NULL,token), *token != '\0' ) {
anthony7a01dcf2010-05-11 12:25:52 +0000498
anthony43c49252010-05-18 10:59:50 +0000499 /* ignore extra or multiple ';' kernel seperators */
anthonydbc89892010-05-12 07:05:27 +0000500 if ( *token != ';' ) {
anthony7a01dcf2010-05-11 12:25:52 +0000501
anthonydbc89892010-05-12 07:05:27 +0000502 /* tokens starting with alpha is a Named kernel */
anthony43c49252010-05-18 10:59:50 +0000503 if (isalpha((int) *token) != 0)
504 new_kernel = ParseKernelName(p);
anthonydbc89892010-05-12 07:05:27 +0000505 else /* otherwise a user defined kernel array */
anthony43c49252010-05-18 10:59:50 +0000506 new_kernel = ParseKernelArray(p);
anthony7a01dcf2010-05-11 12:25:52 +0000507
anthonye108a3f2010-05-12 07:24:03 +0000508 /* Error handling -- this is not proper error handling! */
509 if ( new_kernel == (KernelInfo *) NULL ) {
cristye8c25f92010-06-03 00:53:06 +0000510 fprintf(stderr, "Failed to parse kernel number #%.20g\n",(double)
cristyf2faecf2010-05-28 19:19:36 +0000511 kernel_number);
anthonye108a3f2010-05-12 07:24:03 +0000512 if ( kernel != (KernelInfo *) NULL )
513 kernel=DestroyKernelInfo(kernel);
514 return((KernelInfo *) NULL);
anthonydbc89892010-05-12 07:05:27 +0000515 }
anthonye108a3f2010-05-12 07:24:03 +0000516
517 /* initialise or append the kernel list */
anthony3dd0f622010-05-13 12:57:32 +0000518 if ( kernel == (KernelInfo *) NULL )
519 kernel = new_kernel;
520 else
anthony43c49252010-05-18 10:59:50 +0000521 LastKernelInfo(kernel)->next = new_kernel;
anthonydbc89892010-05-12 07:05:27 +0000522 }
523
524 /* look for the next kernel in list */
525 p = strchr(p, ';');
526 if ( p == (char *) NULL )
527 break;
528 p++;
529
530 }
anthony7a01dcf2010-05-11 12:25:52 +0000531 return(kernel);
anthony5ef8e942010-05-11 06:51:12 +0000532}
533
anthony602ab9b2010-01-05 08:06:50 +0000534
535/*
536%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
537% %
538% %
539% %
540% A c q u i r e K e r n e l B u i l t I n %
541% %
542% %
543% %
544%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
545%
546% AcquireKernelBuiltIn() returned one of the 'named' built-in types of
547% kernels used for special purposes such as gaussian blurring, skeleton
548% pruning, and edge distance determination.
549%
550% They take a KernelType, and a set of geometry style arguments, which were
551% typically decoded from a user supplied string, or from a more complex
552% Morphology Method that was requested.
553%
554% The format of the AcquireKernalBuiltIn method is:
555%
cristy2be15382010-01-21 02:38:03 +0000556% KernelInfo *AcquireKernelBuiltIn(const KernelInfoType type,
anthony602ab9b2010-01-05 08:06:50 +0000557% const GeometryInfo args)
558%
559% A description of each parameter follows:
560%
561% o type: the pre-defined type of kernel wanted
562%
563% o args: arguments defining or modifying the kernel
564%
565% Convolution Kernels
566%
anthony46a369d2010-05-19 02:41:48 +0000567% Unity
568% the No-Op kernel, also requivelent to Gaussian of sigma zero.
569% Basically a 3x3 kernel of a 1 surrounded by zeros.
570%
anthony3c10fc82010-05-13 02:40:51 +0000571% Gaussian:{radius},{sigma}
572% Generate a two-dimentional gaussian kernel, as used by -gaussian.
anthonyc1061722010-05-14 06:23:49 +0000573% The sigma for the curve is required. The resulting kernel is
574% normalized,
575%
576% If 'sigma' is zero, you get a single pixel on a field of zeros.
anthony602ab9b2010-01-05 08:06:50 +0000577%
578% NOTE: that the 'radius' is optional, but if provided can limit (clip)
579% the final size of the resulting kernel to a square 2*radius+1 in size.
580% The radius should be at least 2 times that of the sigma value, or
581% sever clipping and aliasing may result. If not given or set to 0 the
582% radius will be determined so as to produce the best minimal error
583% result, which is usally much larger than is normally needed.
584%
anthony501c2f92010-06-02 10:55:14 +0000585% LoG:{radius},{sigma}
586% "Laplacian of a Gaussian" or "Mexician Hat" Kernel.
587% The supposed ideal edge detection, zero-summing kernel.
588%
589% An alturnative to this kernel is to use a "DoG" with a sigma ratio of
590% approx 1.6 (according to wikipedia).
591%
592% DoG:{radius},{sigma1},{sigma2}
anthonyc1061722010-05-14 06:23:49 +0000593% "Difference of Gaussians" Kernel.
594% As "Gaussian" but with a gaussian produced by 'sigma2' subtracted
595% from the gaussian produced by 'sigma1'. Typically sigma2 > sigma1.
596% The result is a zero-summing kernel.
anthony602ab9b2010-01-05 08:06:50 +0000597%
anthonyc1061722010-05-14 06:23:49 +0000598% Blur:{radius},{sigma}[,{angle}]
599% Generates a 1 dimensional or linear gaussian blur, at the angle given
600% (current restricted to orthogonal angles). If a 'radius' is given the
601% kernel is clipped to a width of 2*radius+1. Kernel can be rotated
602% by a 90 degree angle.
603%
604% If 'sigma' is zero, you get a single pixel on a field of zeros.
605%
606% Note that two convolutions with two "Blur" kernels perpendicular to
607% each other, is equivelent to a far larger "Gaussian" kernel with the
608% same sigma value, However it is much faster to apply. This is how the
609% "-blur" operator actually works.
610%
anthony3c10fc82010-05-13 02:40:51 +0000611% Comet:{width},{sigma},{angle}
612% Blur in one direction only, much like how a bright object leaves
anthony602ab9b2010-01-05 08:06:50 +0000613% a comet like trail. The Kernel is actually half a gaussian curve,
anthony3c10fc82010-05-13 02:40:51 +0000614% Adding two such blurs in opposite directions produces a Blur Kernel.
615% Angle can be rotated in multiples of 90 degrees.
anthony602ab9b2010-01-05 08:06:50 +0000616%
anthony3c10fc82010-05-13 02:40:51 +0000617% Note that the first argument is the width of the kernel and not the
anthony602ab9b2010-01-05 08:06:50 +0000618% radius of the kernel.
619%
620% # Still to be implemented...
621% #
anthony4fd27e22010-02-07 08:17:18 +0000622% # Filter2D
623% # Filter1D
624% # Set kernel values using a resize filter, and given scale (sigma)
625% # Cylindrical or Linear. Is this posible with an image?
626% #
anthony602ab9b2010-01-05 08:06:50 +0000627%
anthony3c10fc82010-05-13 02:40:51 +0000628% Named Constant Convolution Kernels
629%
anthonyc1061722010-05-14 06:23:49 +0000630% All these are unscaled, zero-summing kernels by default. As such for
631% non-HDRI version of ImageMagick some form of normalization, user scaling,
632% and biasing the results is recommended, to prevent the resulting image
633% being 'clipped'.
634%
635% The 3x3 kernels (most of these) can be circularly rotated in multiples of
636% 45 degrees to generate the 8 angled varients of each of the kernels.
anthony3c10fc82010-05-13 02:40:51 +0000637%
638% Laplacian:{type}
anthony43c49252010-05-18 10:59:50 +0000639% Discrete Lapacian Kernels, (without normalization)
anthonyc1061722010-05-14 06:23:49 +0000640% Type 0 : 3x3 with center:8 surounded by -1 (8 neighbourhood)
641% Type 1 : 3x3 with center:4 edge:-1 corner:0 (4 neighbourhood)
anthony9eb4f742010-05-18 02:45:54 +0000642% Type 2 : 3x3 with center:4 edge:1 corner:-2
643% Type 3 : 3x3 with center:4 edge:-2 corner:1
644% Type 5 : 5x5 laplacian
645% Type 7 : 7x7 laplacian
anthony501c2f92010-06-02 10:55:14 +0000646% Type 15 : 5x5 LoG (sigma approx 1.4)
647% Type 19 : 9x9 LoG (sigma approx 1.4)
anthonyc1061722010-05-14 06:23:49 +0000648%
649% Sobel:{angle}
anthony46a369d2010-05-19 02:41:48 +0000650% Sobel 'Edge' convolution kernel (3x3)
anthonyc40ac1e2010-06-06 11:49:31 +0000651% | -1, 0, 1 |
652% | -2, 0,-2 |
653% | -1, 0, 1 |
654%
655% Sobel:{type},{angle}
656% Type 0: default un-nomalized version shown above.
657%
658% Type 1: As default but pre-normalized
659% | 1, 0, -1 |
660% | 2, 0, -2 | / 4
661% | 1, 0, -1 |
662%
663% Type 2: Diagonal version with same normalization as 1
664% | 1, 0, -1 |
665% | 2, 0, -2 | / 4
666% | 1, 0, -1 |
anthonye2a60ce2010-05-19 12:30:40 +0000667%
anthonyc1061722010-05-14 06:23:49 +0000668% Roberts:{angle}
anthony46a369d2010-05-19 02:41:48 +0000669% Roberts convolution kernel (3x3)
anthonyc40ac1e2010-06-06 11:49:31 +0000670% | 0, 0, 0 |
671% | -1, 1, 0 |
672% | 0, 0, 0 |
673%
anthonyc1061722010-05-14 06:23:49 +0000674% Prewitt:{angle}
675% Prewitt Edge convolution kernel (3x3)
anthonyc40ac1e2010-06-06 11:49:31 +0000676% | -1, 0, 1 |
677% | -1, 0, 1 |
678% | -1, 0, 1 |
679%
anthony9eb4f742010-05-18 02:45:54 +0000680% Compass:{angle}
681% Prewitt's "Compass" convolution kernel (3x3)
anthonyc40ac1e2010-06-06 11:49:31 +0000682% | -1, 1, 1 |
683% | -1,-2, 1 |
684% | -1, 1, 1 |
685%
anthony9eb4f742010-05-18 02:45:54 +0000686% Kirsch:{angle}
687% Kirsch's "Compass" convolution kernel (3x3)
anthonyc40ac1e2010-06-06 11:49:31 +0000688% | -3,-3, 5 |
689% | -3, 0, 5 |
690% | -3,-3, 5 |
anthony3c10fc82010-05-13 02:40:51 +0000691%
anthonyc40ac1e2010-06-06 11:49:31 +0000692% FreiChen:{angle}
anthony1d5e6702010-05-31 10:19:12 +0000693% Frei-Chen Edge Detector is based on a kernel that is similar to
694% the Sobel Kernel, but is designed to be isotropic. That is it takes
695% into account the distance of the diagonal in the kernel.
anthonyc3cd15b2010-05-27 06:05:40 +0000696%
anthonyc40ac1e2010-06-06 11:49:31 +0000697% | 1, 0, -1 |
698% | sqrt(2), 0, -sqrt(2) |
699% | 1, 0, -1 |
700%
701% FreiChen:{type},{angle}
702%
703% Frei-Chen Pre-weighted kernels...
704%
705% Type 0: default un-nomalized version shown above.
706%
707% Type 1: Orthogonal Kernel (same as type 11 below)
708% | 1, 0, -1 |
709% | sqrt(2), 0, -sqrt(2) | / 2*sqrt(2)
710% | 1, 0, -1 |
711%
712% Type 2: Diagonal form of Kernel...
713% | 1, sqrt(2), 0 |
714% | sqrt(2), 0, -sqrt(2) | / 2*sqrt(2)
715% | 0, -sqrt(2) -1 |
anthonyc3cd15b2010-05-27 06:05:40 +0000716%
anthony1d5e6702010-05-31 10:19:12 +0000717% However this kernel is als at the heart of the FreiChen Edge Detection
718% Process which uses a set of 9 specially weighted kernel. These 9
719% kernels not be normalized, but directly applied to the image. The
720% results is then added together, to produce the intensity of an edge in
721% a specific direction. The square root of the pixel value can then be
722% taken as the cosine of the edge, and at least 2 such runs at 90 degrees
723% from each other, both the direction and the strength of the edge can be
724% determined.
anthonyc3cd15b2010-05-27 06:05:40 +0000725%
anthonyc40ac1e2010-06-06 11:49:31 +0000726% Type 10: All 9 of the following pre-weighted kernels...
anthonye2a60ce2010-05-19 12:30:40 +0000727%
anthonyc40ac1e2010-06-06 11:49:31 +0000728% Type 11: | 1, 0, -1 |
729% | sqrt(2), 0, -sqrt(2) | / 2*sqrt(2)
730% | 1, 0, -1 |
anthonye2a60ce2010-05-19 12:30:40 +0000731%
anthonyc40ac1e2010-06-06 11:49:31 +0000732% Type 12: | 1, sqrt(2), 1 |
733% | 0, 0, 0 | / 2*sqrt(2)
734% | 1, sqrt(2), 1 |
anthonye2a60ce2010-05-19 12:30:40 +0000735%
anthonyc40ac1e2010-06-06 11:49:31 +0000736% Type 13: | sqrt(2), -1, 0 |
737% | -1, 0, 1 | / 2*sqrt(2)
738% | 0, 1, -sqrt(2) |
anthonye2a60ce2010-05-19 12:30:40 +0000739%
anthonyc40ac1e2010-06-06 11:49:31 +0000740% Type 14: | 0, 1, -sqrt(2) |
741% | -1, 0, 1 | / 2*sqrt(2)
742% | sqrt(2), -1, 0 |
anthonye2a60ce2010-05-19 12:30:40 +0000743%
anthonyc40ac1e2010-06-06 11:49:31 +0000744% Type 15: | 0, -1, 0 |
745% | 1, 0, 1 | / 2
746% | 0, -1, 0 |
anthonye2a60ce2010-05-19 12:30:40 +0000747%
anthonyc40ac1e2010-06-06 11:49:31 +0000748% Type 16: | 1, 0, -1 |
749% | 0, 0, 0 | / 2
750% | -1, 0, 1 |
anthony501c2f92010-06-02 10:55:14 +0000751%
anthonyc40ac1e2010-06-06 11:49:31 +0000752% Type 17: | 1, -2, 1 |
753% | -2, 4, -2 | / 6
754% | -1, -2, 1 |
anthonye2a60ce2010-05-19 12:30:40 +0000755%
anthonyc40ac1e2010-06-06 11:49:31 +0000756% Type 18: | -2, 1, -2 |
757% | 1, 4, 1 | / 6
758% | -2, 1, -2 |
759%
760% Type 19: | 1, 1, 1 |
761% | 1, 1, 1 | / 3
762% | 1, 1, 1 |
anthonye2a60ce2010-05-19 12:30:40 +0000763%
764% The first 4 are for edge detection, the next 4 are for line detection
765% and the last is to add a average component to the results.
766%
anthonyc3cd15b2010-05-27 06:05:40 +0000767% Using a special type of '-1' will return all 9 pre-weighted kernels
768% as a multi-kernel list, so that you can use them directly (without
769% normalization) with the special "-set option:morphology:compose Plus"
770% setting to apply the full FreiChen Edge Detection Technique.
771%
anthony1dd091a2010-05-27 06:31:15 +0000772% If 'type' is large it will be taken to be an actual rotation angle for
773% the default FreiChen (type 0) kernel. As such FreiChen:45 will look
774% like a Sobel:45 but with 'sqrt(2)' instead of '2' values.
775%
anthony501c2f92010-06-02 10:55:14 +0000776% WARNING: The above was layed out as per
777% http://www.math.tau.ac.il/~turkel/notes/edge_detectors.pdf
778% But rotated 90 degrees so direction is from left rather than the top.
779% I have yet to find any secondary confirmation of the above. The only
780% other source found was actual source code at
781% http://ltswww.epfl.ch/~courstiv/exos_labos/sol3.pdf
782% Neigher paper defineds the kernels in a way that looks locical or
783% correct when taken as a whole.
anthonye2a60ce2010-05-19 12:30:40 +0000784%
anthony602ab9b2010-01-05 08:06:50 +0000785% Boolean Kernels
786%
anthony3c10fc82010-05-13 02:40:51 +0000787% Diamond:[{radius}[,{scale}]]
anthony1b2bc0a2010-05-12 05:25:22 +0000788% Generate a diamond shaped kernel with given radius to the points.
anthony602ab9b2010-01-05 08:06:50 +0000789% Kernel size will again be radius*2+1 square and defaults to radius 1,
790% generating a 3x3 kernel that is slightly larger than a square.
791%
anthony3c10fc82010-05-13 02:40:51 +0000792% Square:[{radius}[,{scale}]]
anthony602ab9b2010-01-05 08:06:50 +0000793% Generate a square shaped kernel of size radius*2+1, and defaulting
794% to a 3x3 (radius 1).
795%
anthonyc1061722010-05-14 06:23:49 +0000796% Note that using a larger radius for the "Square" or the "Diamond" is
797% also equivelent to iterating the basic morphological method that many
798% times. However iterating with the smaller radius is actually faster
799% than using a larger kernel radius.
800%
801% Rectangle:{geometry}
802% Simply generate a rectangle of 1's with the size given. You can also
803% specify the location of the 'control point', otherwise the closest
804% pixel to the center of the rectangle is selected.
805%
806% Properly centered and odd sized rectangles work the best.
anthony602ab9b2010-01-05 08:06:50 +0000807%
anthony3c10fc82010-05-13 02:40:51 +0000808% Disk:[{radius}[,{scale}]]
anthony602ab9b2010-01-05 08:06:50 +0000809% Generate a binary disk of the radius given, radius may be a float.
810% Kernel size will be ceil(radius)*2+1 square.
811% NOTE: Here are some disk shapes of specific interest
anthonyc1061722010-05-14 06:23:49 +0000812% "Disk:1" => "diamond" or "cross:1"
813% "Disk:1.5" => "square"
814% "Disk:2" => "diamond:2"
815% "Disk:2.5" => a general disk shape of radius 2
816% "Disk:2.9" => "square:2"
817% "Disk:3.5" => default - octagonal/disk shape of radius 3
818% "Disk:4.2" => roughly octagonal shape of radius 4
819% "Disk:4.3" => a general disk shape of radius 4
anthony602ab9b2010-01-05 08:06:50 +0000820% After this all the kernel shape becomes more and more circular.
821%
822% Because a "disk" is more circular when using a larger radius, using a
823% larger radius is preferred over iterating the morphological operation.
824%
anthonyc1061722010-05-14 06:23:49 +0000825% Symbol Dilation Kernels
826%
827% These kernel is not a good general morphological kernel, but is used
828% more for highlighting and marking any single pixels in an image using,
829% a "Dilate" method as appropriate.
830%
831% For the same reasons iterating these kernels does not produce the
832% same result as using a larger radius for the symbol.
833%
anthony3c10fc82010-05-13 02:40:51 +0000834% Plus:[{radius}[,{scale}]]
anthony3dd0f622010-05-13 12:57:32 +0000835% Cross:[{radius}[,{scale}]]
anthonyc1061722010-05-14 06:23:49 +0000836% Generate a kernel in the shape of a 'plus' or a 'cross' with
837% a each arm the length of the given radius (default 2).
anthony3dd0f622010-05-13 12:57:32 +0000838%
839% NOTE: "plus:1" is equivelent to a "Diamond" kernel.
anthony602ab9b2010-01-05 08:06:50 +0000840%
anthonyc1061722010-05-14 06:23:49 +0000841% Ring:{radius1},{radius2}[,{scale}]
842% A ring of the values given that falls between the two radii.
843% Defaults to a ring of approximataly 3 radius in a 7x7 kernel.
844% This is the 'edge' pixels of the default "Disk" kernel,
845% More specifically, "Ring" -> "Ring:2.5,3.5,1.0"
anthony602ab9b2010-01-05 08:06:50 +0000846%
anthony3dd0f622010-05-13 12:57:32 +0000847% Hit and Miss Kernels
848%
849% Peak:radius1,radius2
anthonyc1061722010-05-14 06:23:49 +0000850% Find any peak larger than the pixels the fall between the two radii.
851% The default ring of pixels is as per "Ring".
anthony43c49252010-05-18 10:59:50 +0000852% Edges
anthony694934f2010-06-07 10:30:40 +0000853% Find flat orthogonal edges of a binary shape
anthony3dd0f622010-05-13 12:57:32 +0000854% Corners
anthony694934f2010-06-07 10:30:40 +0000855% Find 90 degree corners of a binary shape
856% LineEnds:type
anthony3dd0f622010-05-13 12:57:32 +0000857% Find end points of lines (for pruning a skeletion)
anthony694934f2010-06-07 10:30:40 +0000858% Two types of lines ends (default to both) can be searched for
859% Type 0: All line ends
860% Type 1: single kernel for 4-conneected line ends
861% Type 2: single kernel for simple line ends
anthony3dd0f622010-05-13 12:57:32 +0000862% LineJunctions
anthony43c49252010-05-18 10:59:50 +0000863% Find three line junctions (within a skeletion)
anthony694934f2010-06-07 10:30:40 +0000864% Type 0: all line junctions
865% Type 1: Y Junction kernel
866% Type 2: Diagonal T Junction kernel
867% Type 3: Orthogonal T Junction kernel
868% Type 4: Diagonal X Junction kernel
869% Type 5: Orthogonal + Junction kernel
870% Ridges:type
871% Find single pixel ridges or thin lines
872% Type 1: Fine single pixel thick lines and ridges
873% Type 2: Find two pixel thick lines and ridges
anthony3dd0f622010-05-13 12:57:32 +0000874% ConvexHull
875% Octagonal thicken kernel, to generate convex hulls of 45 degrees
anthonyc40ac1e2010-06-06 11:49:31 +0000876% Skeleton:type
877% Traditional skeleton generating kernels.
anthony694934f2010-06-07 10:30:40 +0000878% Type 1: Tradional Skeleton kernel (4 connected skeleton)
879% Type 2: HIPR2 Skeleton kernel (8 connected skeleton)
880% Type 3: Experimental Variation to try to present left-right symmetry
881% Type 4: Experimental Variation to preserve left-right symmetry
anthony602ab9b2010-01-05 08:06:50 +0000882%
883% Distance Measuring Kernels
884%
anthonyc1061722010-05-14 06:23:49 +0000885% Different types of distance measuring methods, which are used with the
886% a 'Distance' morphology method for generating a gradient based on
887% distance from an edge of a binary shape, though there is a technique
888% for handling a anti-aliased shape.
889%
890% See the 'Distance' Morphological Method, for information of how it is
891% applied.
892%
anthony3dd0f622010-05-13 12:57:32 +0000893% Chebyshev:[{radius}][x{scale}[%!]]
anthonyc94cdb02010-01-06 08:15:29 +0000894% Chebyshev Distance (also known as Tchebychev Distance) is a value of
895% one to any neighbour, orthogonal or diagonal. One why of thinking of
896% it is the number of squares a 'King' or 'Queen' in chess needs to
897% traverse reach any other position on a chess board. It results in a
898% 'square' like distance function, but one where diagonals are closer
899% than expected.
anthony602ab9b2010-01-05 08:06:50 +0000900%
anthonybee715c2010-06-04 01:25:57 +0000901% Manhattan:[{radius}][x{scale}[%!]]
902% Manhattan Distance (also known as Rectilinear Distance, or the Taxi
anthonyc94cdb02010-01-06 08:15:29 +0000903% Cab metric), is the distance needed when you can only travel in
904% orthogonal (horizontal or vertical) only. It is the distance a 'Rook'
905% in chess would travel. It results in a diamond like distances, where
906% diagonals are further than expected.
anthony602ab9b2010-01-05 08:06:50 +0000907%
anthonyc1061722010-05-14 06:23:49 +0000908% Euclidean:[{radius}][x{scale}[%!]]
anthonyc94cdb02010-01-06 08:15:29 +0000909% Euclidean Distance is the 'direct' or 'as the crow flys distance.
910% However by default the kernel size only has a radius of 1, which
911% limits the distance to 'Knight' like moves, with only orthogonal and
912% diagonal measurements being correct. As such for the default kernel
913% you will get octagonal like distance function, which is reasonally
914% accurate.
915%
916% However if you use a larger radius such as "Euclidean:4" you will
917% get a much smoother distance gradient from the edge of the shape.
918% Of course a larger kernel is slower to use, and generally not needed.
919%
920% To allow the use of fractional distances that you get with diagonals
921% the actual distance is scaled by a fixed value which the user can
922% provide. This is not actually nessary for either ""Chebyshev" or
anthonybee715c2010-06-04 01:25:57 +0000923% "Manhattan" distance kernels, but is done for all three distance
anthonyc94cdb02010-01-06 08:15:29 +0000924% kernels. If no scale is provided it is set to a value of 100,
925% allowing for a maximum distance measurement of 655 pixels using a Q16
926% version of IM, from any edge. However for small images this can
927% result in quite a dark gradient.
928%
anthony602ab9b2010-01-05 08:06:50 +0000929*/
930
cristy2be15382010-01-21 02:38:03 +0000931MagickExport KernelInfo *AcquireKernelBuiltIn(const KernelInfoType type,
anthony602ab9b2010-01-05 08:06:50 +0000932 const GeometryInfo *args)
933{
cristy2be15382010-01-21 02:38:03 +0000934 KernelInfo
anthony602ab9b2010-01-05 08:06:50 +0000935 *kernel;
936
cristybb503372010-05-27 20:51:26 +0000937 register ssize_t
anthony602ab9b2010-01-05 08:06:50 +0000938 i;
939
cristybb503372010-05-27 20:51:26 +0000940 register ssize_t
anthony602ab9b2010-01-05 08:06:50 +0000941 u,
942 v;
943
944 double
945 nan = sqrt((double)-1.0); /* Special Value : Not A Number */
946
anthonyc1061722010-05-14 06:23:49 +0000947 /* Generate a new empty kernel if needed */
cristye96405a2010-05-19 02:24:31 +0000948 kernel=(KernelInfo *) NULL;
anthonyc1061722010-05-14 06:23:49 +0000949 switch(type) {
anthony1dd091a2010-05-27 06:31:15 +0000950 case UndefinedKernel: /* These should not call this function */
anthony9eb4f742010-05-18 02:45:54 +0000951 case UserDefinedKernel:
anthony1dd091a2010-05-27 06:31:15 +0000952 case TestKernel:
anthony9eb4f742010-05-18 02:45:54 +0000953 break;
anthony1dd091a2010-05-27 06:31:15 +0000954 case UnityKernel: /* Named Descrete Convolution Kernels */
955 case LaplacianKernel:
anthony9eb4f742010-05-18 02:45:54 +0000956 case SobelKernel:
957 case RobertsKernel:
958 case PrewittKernel:
959 case CompassKernel:
960 case KirschKernel:
anthony1dd091a2010-05-27 06:31:15 +0000961 case FreiChenKernel:
anthony694934f2010-06-07 10:30:40 +0000962 case EdgesKernel: /* Hit and Miss kernels */
963 case CornersKernel:
anthony9eb4f742010-05-18 02:45:54 +0000964 case LineEndsKernel:
965 case LineJunctionsKernel:
anthony1dd091a2010-05-27 06:31:15 +0000966 case RidgesKernel:
anthony9eb4f742010-05-18 02:45:54 +0000967 case ConvexHullKernel:
968 case SkeletonKernel:
anthonyc40ac1e2010-06-06 11:49:31 +0000969 break; /* A pre-generated kernel is not needed */
970#if 0
971 /* set to 1 to do a compile-time check that we haven't missed anything */
anthonyc1061722010-05-14 06:23:49 +0000972 case GaussianKernel:
anthony501c2f92010-06-02 10:55:14 +0000973 case DoGKernel:
974 case LoGKernel:
anthonyc1061722010-05-14 06:23:49 +0000975 case BlurKernel:
anthonyc1061722010-05-14 06:23:49 +0000976 case CometKernel:
977 case DiamondKernel:
978 case SquareKernel:
979 case RectangleKernel:
980 case DiskKernel:
981 case PlusKernel:
982 case CrossKernel:
983 case RingKernel:
984 case PeaksKernel:
985 case ChebyshevKernel:
anthonybee715c2010-06-04 01:25:57 +0000986 case ManhattanKernel:
anthonyc1061722010-05-14 06:23:49 +0000987 case EuclideanKernel:
anthony1dd091a2010-05-27 06:31:15 +0000988#else
anthony9eb4f742010-05-18 02:45:54 +0000989 default:
anthony1dd091a2010-05-27 06:31:15 +0000990#endif
anthony9eb4f742010-05-18 02:45:54 +0000991 /* Generate the base Kernel Structure */
anthonyc1061722010-05-14 06:23:49 +0000992 kernel=(KernelInfo *) AcquireMagickMemory(sizeof(*kernel));
993 if (kernel == (KernelInfo *) NULL)
994 return(kernel);
995 (void) ResetMagickMemory(kernel,0,sizeof(*kernel));
anthony43c49252010-05-18 10:59:50 +0000996 kernel->minimum = kernel->maximum = kernel->angle = 0.0;
anthonyc1061722010-05-14 06:23:49 +0000997 kernel->negative_range = kernel->positive_range = 0.0;
998 kernel->type = type;
999 kernel->next = (KernelInfo *) NULL;
1000 kernel->signature = MagickSignature;
anthonyc1061722010-05-14 06:23:49 +00001001 break;
1002 }
anthony602ab9b2010-01-05 08:06:50 +00001003
1004 switch(type) {
1005 /* Convolution Kernels */
1006 case GaussianKernel:
anthony501c2f92010-06-02 10:55:14 +00001007 case DoGKernel:
1008 case LoGKernel:
anthony602ab9b2010-01-05 08:06:50 +00001009 { double
anthonyc1061722010-05-14 06:23:49 +00001010 sigma = fabs(args->sigma),
1011 sigma2 = fabs(args->xi),
anthony9eb4f742010-05-18 02:45:54 +00001012 A, B, R;
anthony602ab9b2010-01-05 08:06:50 +00001013
anthonyc1061722010-05-14 06:23:49 +00001014 if ( args->rho >= 1.0 )
cristybb503372010-05-27 20:51:26 +00001015 kernel->width = (size_t)args->rho*2+1;
anthony501c2f92010-06-02 10:55:14 +00001016 else if ( (type != DoGKernel) || (sigma >= sigma2) )
anthonyc1061722010-05-14 06:23:49 +00001017 kernel->width = GetOptimalKernelWidth2D(args->rho,sigma);
1018 else
1019 kernel->width = GetOptimalKernelWidth2D(args->rho,sigma2);
1020 kernel->height = kernel->width;
cristybb503372010-05-27 20:51:26 +00001021 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +00001022 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1023 kernel->height*sizeof(double));
1024 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001025 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001026
anthony46a369d2010-05-19 02:41:48 +00001027 /* WARNING: The following generates a 'sampled gaussian' kernel.
anthony9eb4f742010-05-18 02:45:54 +00001028 * What we really want is a 'discrete gaussian' kernel.
anthony46a369d2010-05-19 02:41:48 +00001029 *
1030 * How to do this is currently not known, but appears to be
1031 * basied on the Error Function 'erf()' (intergral of a gaussian)
anthony9eb4f742010-05-18 02:45:54 +00001032 */
1033
anthony501c2f92010-06-02 10:55:14 +00001034 if ( type == GaussianKernel || type == DoGKernel )
1035 { /* Calculate a Gaussian, OR positive half of a DoG */
anthony9eb4f742010-05-18 02:45:54 +00001036 if ( sigma > MagickEpsilon )
1037 { A = 1.0/(2.0*sigma*sigma); /* simplify loop expressions */
1038 B = 1.0/(Magick2PI*sigma*sigma);
cristybb503372010-05-27 20:51:26 +00001039 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1040 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony9eb4f742010-05-18 02:45:54 +00001041 kernel->values[i] = exp(-((double)(u*u+v*v))*A)*B;
1042 }
1043 else /* limiting case - a unity (normalized Dirac) kernel */
1044 { (void) ResetMagickMemory(kernel->values,0, (size_t)
1045 kernel->width*kernel->height*sizeof(double));
1046 kernel->values[kernel->x+kernel->y*kernel->width] = 1.0;
1047 }
anthonyc1061722010-05-14 06:23:49 +00001048 }
anthony9eb4f742010-05-18 02:45:54 +00001049
anthony501c2f92010-06-02 10:55:14 +00001050 if ( type == DoGKernel )
anthonyc1061722010-05-14 06:23:49 +00001051 { /* Subtract a Negative Gaussian for "Difference of Gaussian" */
1052 if ( sigma2 > MagickEpsilon )
1053 { sigma = sigma2; /* simplify loop expressions */
anthony9eb4f742010-05-18 02:45:54 +00001054 A = 1.0/(2.0*sigma*sigma);
1055 B = 1.0/(Magick2PI*sigma*sigma);
cristybb503372010-05-27 20:51:26 +00001056 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1057 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony9eb4f742010-05-18 02:45:54 +00001058 kernel->values[i] -= exp(-((double)(u*u+v*v))*A)*B;
anthonyc1061722010-05-14 06:23:49 +00001059 }
anthony9eb4f742010-05-18 02:45:54 +00001060 else /* limiting case - a unity (normalized Dirac) kernel */
anthonyc1061722010-05-14 06:23:49 +00001061 kernel->values[kernel->x+kernel->y*kernel->width] -= 1.0;
1062 }
anthony9eb4f742010-05-18 02:45:54 +00001063
anthony501c2f92010-06-02 10:55:14 +00001064 if ( type == LoGKernel )
anthony9eb4f742010-05-18 02:45:54 +00001065 { /* Calculate a Laplacian of a Gaussian - Or Mexician Hat */
1066 if ( sigma > MagickEpsilon )
1067 { A = 1.0/(2.0*sigma*sigma); /* simplify loop expressions */
1068 B = 1.0/(MagickPI*sigma*sigma*sigma*sigma);
cristybb503372010-05-27 20:51:26 +00001069 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1070 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony9eb4f742010-05-18 02:45:54 +00001071 { R = ((double)(u*u+v*v))*A;
1072 kernel->values[i] = (1-R)*exp(-R)*B;
1073 }
1074 }
1075 else /* special case - generate a unity kernel */
1076 { (void) ResetMagickMemory(kernel->values,0, (size_t)
1077 kernel->width*kernel->height*sizeof(double));
1078 kernel->values[kernel->x+kernel->y*kernel->width] = 1.0;
1079 }
1080 }
1081
1082 /* Note the above kernels may have been 'clipped' by a user defined
anthonyc1061722010-05-14 06:23:49 +00001083 ** radius, producing a smaller (darker) kernel. Also for very small
1084 ** sigma's (> 0.1) the central value becomes larger than one, and thus
1085 ** producing a very bright kernel.
1086 **
1087 ** Normalization will still be needed.
1088 */
anthony602ab9b2010-01-05 08:06:50 +00001089
anthony3dd0f622010-05-13 12:57:32 +00001090 /* Normalize the 2D Gaussian Kernel
1091 **
anthonyc1061722010-05-14 06:23:49 +00001092 ** NB: a CorrelateNormalize performs a normal Normalize if
1093 ** there are no negative values.
anthony3dd0f622010-05-13 12:57:32 +00001094 */
anthony46a369d2010-05-19 02:41:48 +00001095 CalcKernelMetaData(kernel); /* the other kernel meta-data */
anthonyc1061722010-05-14 06:23:49 +00001096 ScaleKernelInfo(kernel, 1.0, CorrelateNormalizeValue);
anthony602ab9b2010-01-05 08:06:50 +00001097
1098 break;
1099 }
1100 case BlurKernel:
1101 { double
anthonyc1061722010-05-14 06:23:49 +00001102 sigma = fabs(args->sigma),
anthony501c2f92010-06-02 10:55:14 +00001103 alpha, beta;
anthony602ab9b2010-01-05 08:06:50 +00001104
anthonyc1061722010-05-14 06:23:49 +00001105 if ( args->rho >= 1.0 )
cristybb503372010-05-27 20:51:26 +00001106 kernel->width = (size_t)args->rho*2+1;
anthonyc1061722010-05-14 06:23:49 +00001107 else
anthony501c2f92010-06-02 10:55:14 +00001108 kernel->width = GetOptimalKernelWidth1D(args->rho,sigma);
anthony602ab9b2010-01-05 08:06:50 +00001109 kernel->height = 1;
cristybb503372010-05-27 20:51:26 +00001110 kernel->x = (ssize_t) (kernel->width-1)/2;
cristyc99304f2010-02-01 15:26:27 +00001111 kernel->y = 0;
1112 kernel->negative_range = kernel->positive_range = 0.0;
anthony602ab9b2010-01-05 08:06:50 +00001113 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1114 kernel->height*sizeof(double));
1115 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001116 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001117
1118#if 1
1119#define KernelRank 3
1120 /* Formula derived from GetBlurKernel() in "effect.c" (plus bug fix).
1121 ** It generates a gaussian 3 times the width, and compresses it into
1122 ** the expected range. This produces a closer normalization of the
1123 ** resulting kernel, especially for very low sigma values.
1124 ** As such while wierd it is prefered.
1125 **
1126 ** I am told this method originally came from Photoshop.
anthony9eb4f742010-05-18 02:45:54 +00001127 **
1128 ** A properly normalized curve is generated (apart from edge clipping)
1129 ** even though we later normalize the result (for edge clipping)
1130 ** to allow the correct generation of a "Difference of Blurs".
anthony602ab9b2010-01-05 08:06:50 +00001131 */
anthonyc1061722010-05-14 06:23:49 +00001132
1133 /* initialize */
cristybb503372010-05-27 20:51:26 +00001134 v = (ssize_t) (kernel->width*KernelRank-1)/2; /* start/end points to fit range */
anthony9eb4f742010-05-18 02:45:54 +00001135 (void) ResetMagickMemory(kernel->values,0, (size_t)
1136 kernel->width*kernel->height*sizeof(double));
anthonyc1061722010-05-14 06:23:49 +00001137 /* Calculate a Positive 1D Gaussian */
1138 if ( sigma > MagickEpsilon )
1139 { sigma *= KernelRank; /* simplify loop expressions */
anthony501c2f92010-06-02 10:55:14 +00001140 alpha = 1.0/(2.0*sigma*sigma);
1141 beta= 1.0/(MagickSQ2PI*sigma );
anthonyc1061722010-05-14 06:23:49 +00001142 for ( u=-v; u <= v; u++) {
anthony501c2f92010-06-02 10:55:14 +00001143 kernel->values[(u+v)/KernelRank] +=
1144 exp(-((double)(u*u))*alpha)*beta;
anthonyc1061722010-05-14 06:23:49 +00001145 }
1146 }
1147 else /* special case - generate a unity kernel */
1148 kernel->values[kernel->x+kernel->y*kernel->width] = 1.0;
anthony602ab9b2010-01-05 08:06:50 +00001149#else
anthonyc1061722010-05-14 06:23:49 +00001150 /* Direct calculation without curve averaging */
1151
1152 /* Calculate a Positive Gaussian */
1153 if ( sigma > MagickEpsilon )
anthony501c2f92010-06-02 10:55:14 +00001154 { alpha = 1.0/(2.0*sigma*sigma); /* simplify loop expressions */
1155 beta = 1.0/(MagickSQ2PI*sigma);
cristybb503372010-05-27 20:51:26 +00001156 for ( i=0, u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony501c2f92010-06-02 10:55:14 +00001157 kernel->values[i] = exp(-((double)(u*u))*alpha)*beta;
anthonyc1061722010-05-14 06:23:49 +00001158 }
1159 else /* special case - generate a unity kernel */
1160 { (void) ResetMagickMemory(kernel->values,0, (size_t)
1161 kernel->width*kernel->height*sizeof(double));
1162 kernel->values[kernel->x+kernel->y*kernel->width] = 1.0;
1163 }
anthony602ab9b2010-01-05 08:06:50 +00001164#endif
anthonyc1061722010-05-14 06:23:49 +00001165 /* Note the above kernel may have been 'clipped' by a user defined
anthonycc6c8362010-01-25 04:14:01 +00001166 ** radius, producing a smaller (darker) kernel. Also for very small
1167 ** sigma's (> 0.1) the central value becomes larger than one, and thus
1168 ** producing a very bright kernel.
anthonyc1061722010-05-14 06:23:49 +00001169 **
1170 ** Normalization will still be needed.
anthony602ab9b2010-01-05 08:06:50 +00001171 */
anthonycc6c8362010-01-25 04:14:01 +00001172
anthony602ab9b2010-01-05 08:06:50 +00001173 /* Normalize the 1D Gaussian Kernel
1174 **
anthonyc1061722010-05-14 06:23:49 +00001175 ** NB: a CorrelateNormalize performs a normal Normalize if
1176 ** there are no negative values.
anthony602ab9b2010-01-05 08:06:50 +00001177 */
anthony46a369d2010-05-19 02:41:48 +00001178 CalcKernelMetaData(kernel); /* the other kernel meta-data */
1179 ScaleKernelInfo(kernel, 1.0, CorrelateNormalizeValue);
anthonycc6c8362010-01-25 04:14:01 +00001180
anthonyc1061722010-05-14 06:23:49 +00001181 /* rotate the 1D kernel by given angle */
anthony501c2f92010-06-02 10:55:14 +00001182 RotateKernelInfo(kernel, args->xi );
anthony602ab9b2010-01-05 08:06:50 +00001183 break;
1184 }
1185 case CometKernel:
1186 { double
anthony9eb4f742010-05-18 02:45:54 +00001187 sigma = fabs(args->sigma),
1188 A;
anthony602ab9b2010-01-05 08:06:50 +00001189
anthony602ab9b2010-01-05 08:06:50 +00001190 if ( args->rho < 1.0 )
anthonye1cf9462010-05-19 03:50:26 +00001191 kernel->width = (GetOptimalKernelWidth1D(args->rho,sigma)-1)/2+1;
anthony602ab9b2010-01-05 08:06:50 +00001192 else
cristybb503372010-05-27 20:51:26 +00001193 kernel->width = (size_t)args->rho;
cristyc99304f2010-02-01 15:26:27 +00001194 kernel->x = kernel->y = 0;
anthony602ab9b2010-01-05 08:06:50 +00001195 kernel->height = 1;
cristyc99304f2010-02-01 15:26:27 +00001196 kernel->negative_range = kernel->positive_range = 0.0;
anthony602ab9b2010-01-05 08:06:50 +00001197 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1198 kernel->height*sizeof(double));
1199 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001200 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001201
anthonyc1061722010-05-14 06:23:49 +00001202 /* A comet blur is half a 1D gaussian curve, so that the object is
anthony602ab9b2010-01-05 08:06:50 +00001203 ** blurred in one direction only. This may not be quite the right
anthony3dd0f622010-05-13 12:57:32 +00001204 ** curve to use so may change in the future. The function must be
1205 ** normalised after generation, which also resolves any clipping.
anthonyc1061722010-05-14 06:23:49 +00001206 **
1207 ** As we are normalizing and not subtracting gaussians,
1208 ** there is no need for a divisor in the gaussian formula
1209 **
anthony43c49252010-05-18 10:59:50 +00001210 ** It is less comples
anthony602ab9b2010-01-05 08:06:50 +00001211 */
anthony9eb4f742010-05-18 02:45:54 +00001212 if ( sigma > MagickEpsilon )
1213 {
anthony602ab9b2010-01-05 08:06:50 +00001214#if 1
1215#define KernelRank 3
cristybb503372010-05-27 20:51:26 +00001216 v = (ssize_t) kernel->width*KernelRank; /* start/end points */
anthony9eb4f742010-05-18 02:45:54 +00001217 (void) ResetMagickMemory(kernel->values,0, (size_t)
1218 kernel->width*sizeof(double));
1219 sigma *= KernelRank; /* simplify the loop expression */
1220 A = 1.0/(2.0*sigma*sigma);
1221 /* B = 1.0/(MagickSQ2PI*sigma); */
1222 for ( u=0; u < v; u++) {
1223 kernel->values[u/KernelRank] +=
1224 exp(-((double)(u*u))*A);
1225 /* exp(-((double)(i*i))/2.0*sigma*sigma)/(MagickSQ2PI*sigma); */
1226 }
cristybb503372010-05-27 20:51:26 +00001227 for (i=0; i < (ssize_t) kernel->width; i++)
anthony9eb4f742010-05-18 02:45:54 +00001228 kernel->positive_range += kernel->values[i];
anthony602ab9b2010-01-05 08:06:50 +00001229#else
anthony9eb4f742010-05-18 02:45:54 +00001230 A = 1.0/(2.0*sigma*sigma); /* simplify the loop expression */
1231 /* B = 1.0/(MagickSQ2PI*sigma); */
cristybb503372010-05-27 20:51:26 +00001232 for ( i=0; i < (ssize_t) kernel->width; i++)
anthony9eb4f742010-05-18 02:45:54 +00001233 kernel->positive_range +=
1234 kernel->values[i] =
1235 exp(-((double)(i*i))*A);
1236 /* exp(-((double)(i*i))/2.0*sigma*sigma)/(MagickSQ2PI*sigma); */
anthony602ab9b2010-01-05 08:06:50 +00001237#endif
anthony9eb4f742010-05-18 02:45:54 +00001238 }
1239 else /* special case - generate a unity kernel */
1240 { (void) ResetMagickMemory(kernel->values,0, (size_t)
1241 kernel->width*kernel->height*sizeof(double));
1242 kernel->values[kernel->x+kernel->y*kernel->width] = 1.0;
1243 kernel->positive_range = 1.0;
1244 }
anthony46a369d2010-05-19 02:41:48 +00001245
1246 kernel->minimum = 0.0;
cristyc99304f2010-02-01 15:26:27 +00001247 kernel->maximum = kernel->values[0];
anthony46a369d2010-05-19 02:41:48 +00001248 kernel->negative_range = 0.0;
anthony602ab9b2010-01-05 08:06:50 +00001249
anthony999bb2c2010-02-18 12:38:01 +00001250 ScaleKernelInfo(kernel, 1.0, NormalizeValue); /* Normalize */
1251 RotateKernelInfo(kernel, args->xi); /* Rotate by angle */
anthony602ab9b2010-01-05 08:06:50 +00001252 break;
1253 }
anthonyc1061722010-05-14 06:23:49 +00001254
anthony3c10fc82010-05-13 02:40:51 +00001255 /* Convolution Kernels - Well Known Constants */
anthony3c10fc82010-05-13 02:40:51 +00001256 case LaplacianKernel:
anthonye2a60ce2010-05-19 12:30:40 +00001257 { switch ( (int) args->rho ) {
anthony3dd0f622010-05-13 12:57:32 +00001258 case 0:
anthony9eb4f742010-05-18 02:45:54 +00001259 default: /* laplacian square filter -- default */
anthonyc1061722010-05-14 06:23:49 +00001260 kernel=ParseKernelArray("3: -1,-1,-1 -1,8,-1 -1,-1,-1");
anthony3dd0f622010-05-13 12:57:32 +00001261 break;
anthony9eb4f742010-05-18 02:45:54 +00001262 case 1: /* laplacian diamond filter */
anthonyc1061722010-05-14 06:23:49 +00001263 kernel=ParseKernelArray("3: 0,-1,0 -1,4,-1 0,-1,0");
anthony3c10fc82010-05-13 02:40:51 +00001264 break;
1265 case 2:
anthony9eb4f742010-05-18 02:45:54 +00001266 kernel=ParseKernelArray("3: -2,1,-2 1,4,1 -2,1,-2");
1267 break;
1268 case 3:
anthonyc1061722010-05-14 06:23:49 +00001269 kernel=ParseKernelArray("3: 1,-2,1 -2,4,-2 1,-2,1");
anthony3c10fc82010-05-13 02:40:51 +00001270 break;
anthony9eb4f742010-05-18 02:45:54 +00001271 case 5: /* a 5x5 laplacian */
anthony3c10fc82010-05-13 02:40:51 +00001272 kernel=ParseKernelArray(
anthony9eb4f742010-05-18 02:45:54 +00001273 "5: -4,-1,0,-1,-4 -1,2,3,2,-1 0,3,4,3,0 -1,2,3,2,-1 -4,-1,0,-1,-4");
anthony3c10fc82010-05-13 02:40:51 +00001274 break;
anthony9eb4f742010-05-18 02:45:54 +00001275 case 7: /* a 7x7 laplacian */
anthony3c10fc82010-05-13 02:40:51 +00001276 kernel=ParseKernelArray(
anthonyc1061722010-05-14 06:23:49 +00001277 "7:-10,-5,-2,-1,-2,-5,-10 -5,0,3,4,3,0,-5 -2,3,6,7,6,3,-2 -1,4,7,8,7,4,-1 -2,3,6,7,6,3,-2 -5,0,3,4,3,0,-5 -10,-5,-2,-1,-2,-5,-10" );
anthony3c10fc82010-05-13 02:40:51 +00001278 break;
anthony501c2f92010-06-02 10:55:14 +00001279 case 15: /* a 5x5 LoG (sigma approx 1.4) */
anthony9eb4f742010-05-18 02:45:54 +00001280 kernel=ParseKernelArray(
1281 "5: 0,0,-1,0,0 0,-1,-2,-1,0 -1,-2,16,-2,-1 0,-1,-2,-1,0 0,0,-1,0,0");
1282 break;
anthony501c2f92010-06-02 10:55:14 +00001283 case 19: /* a 9x9 LoG (sigma approx 1.4) */
anthony43c49252010-05-18 10:59:50 +00001284 /* http://www.cscjournals.org/csc/manuscript/Journals/IJIP/volume3/Issue1/IJIP-15.pdf */
1285 kernel=ParseKernelArray(
anthonybfb635a2010-06-04 00:18:04 +00001286 "9: 0,-1,-1,-2,-2,-2,-1,-1,0 -1,-2,-4,-5,-5,-5,-4,-2,-1 -1,-4,-5,-3,-0,-3,-5,-4,-1 -2,-5,-3,12,24,12,-3,-5,-2 -2,-5,-0,24,40,24,-0,-5,-2 -2,-5,-3,12,24,12,-3,-5,-2 -1,-4,-5,-3,-0,-3,-5,-4,-1 -1,-2,-4,-5,-5,-5,-4,-2,-1 0,-1,-1,-2,-2,-2,-1,-1,0");
anthony43c49252010-05-18 10:59:50 +00001287 break;
anthony3c10fc82010-05-13 02:40:51 +00001288 }
1289 if (kernel == (KernelInfo *) NULL)
1290 return(kernel);
1291 kernel->type = type;
1292 break;
1293 }
anthonyc1061722010-05-14 06:23:49 +00001294 case SobelKernel:
anthonyc40ac1e2010-06-06 11:49:31 +00001295 { switch ( (int) args->rho ) {
1296 default:
1297 case 0:
1298 kernel=ParseKernelArray("3: 1,0,-1 2,0,-2 1,0,-1");
1299 if (kernel == (KernelInfo *) NULL)
1300 return(kernel);
1301 kernel->type = type;
1302 break;
1303 case 1:
1304 kernel=ParseKernelArray("3: 1,0,-1 2,0,-2 1,0,-1");
1305 if (kernel == (KernelInfo *) NULL)
1306 return(kernel);
1307 kernel->type = type;
1308 ScaleKernelInfo(kernel, 0.25, NoValue);
1309 break;
1310 case 2:
1311 kernel=ParseKernelArray("3: 1,2,0 2,0,-2 0,-2,-1");
1312 if (kernel == (KernelInfo *) NULL)
1313 return(kernel);
1314 kernel->type = type;
1315 ScaleKernelInfo(kernel, 0.25, NoValue);
1316 break;
1317 }
anthonyc1061722010-05-14 06:23:49 +00001318 break;
1319 }
1320 case RobertsKernel:
1321 {
anthony501c2f92010-06-02 10:55:14 +00001322 kernel=ParseKernelArray("3: 0,0,0 1,-1,0 0,0,0");
anthonyc1061722010-05-14 06:23:49 +00001323 if (kernel == (KernelInfo *) NULL)
1324 return(kernel);
1325 kernel->type = type;
anthony46a369d2010-05-19 02:41:48 +00001326 RotateKernelInfo(kernel, args->rho);
anthonyc1061722010-05-14 06:23:49 +00001327 break;
1328 }
1329 case PrewittKernel:
1330 {
anthony501c2f92010-06-02 10:55:14 +00001331 kernel=ParseKernelArray("3: 1,0,-1 1,0,-1 1,0,-1");
anthonyc1061722010-05-14 06:23:49 +00001332 if (kernel == (KernelInfo *) NULL)
1333 return(kernel);
1334 kernel->type = type;
anthony46a369d2010-05-19 02:41:48 +00001335 RotateKernelInfo(kernel, args->rho);
anthonyc1061722010-05-14 06:23:49 +00001336 break;
1337 }
1338 case CompassKernel:
1339 {
anthony501c2f92010-06-02 10:55:14 +00001340 kernel=ParseKernelArray("3: 1,1,-1 1,-2,-1 1,1,-1");
anthonyc1061722010-05-14 06:23:49 +00001341 if (kernel == (KernelInfo *) NULL)
1342 return(kernel);
1343 kernel->type = type;
anthony46a369d2010-05-19 02:41:48 +00001344 RotateKernelInfo(kernel, args->rho);
anthonyc1061722010-05-14 06:23:49 +00001345 break;
1346 }
anthony9eb4f742010-05-18 02:45:54 +00001347 case KirschKernel:
1348 {
anthony501c2f92010-06-02 10:55:14 +00001349 kernel=ParseKernelArray("3: 5,-3,-3 5,0,-3 5,-3,-3");
anthony9eb4f742010-05-18 02:45:54 +00001350 if (kernel == (KernelInfo *) NULL)
1351 return(kernel);
1352 kernel->type = type;
anthony46a369d2010-05-19 02:41:48 +00001353 RotateKernelInfo(kernel, args->rho);
anthony9eb4f742010-05-18 02:45:54 +00001354 break;
1355 }
anthonye2a60ce2010-05-19 12:30:40 +00001356 case FreiChenKernel:
anthony501c2f92010-06-02 10:55:14 +00001357 /* Direction is set to be left to right positive */
1358 /* http://www.math.tau.ac.il/~turkel/notes/edge_detectors.pdf -- RIGHT? */
1359 /* http://ltswww.epfl.ch/~courstiv/exos_labos/sol3.pdf -- WRONG? */
anthony1dd091a2010-05-27 06:31:15 +00001360 { switch ( (int) args->rho ) {
anthonye2a60ce2010-05-19 12:30:40 +00001361 default:
anthonyc3cd15b2010-05-27 06:05:40 +00001362 case 0:
anthony501c2f92010-06-02 10:55:14 +00001363 kernel=ParseKernelArray("3: 1,0,-1 2,0,-2 1,0,-1");
anthonyc3cd15b2010-05-27 06:05:40 +00001364 if (kernel == (KernelInfo *) NULL)
1365 return(kernel);
anthonyef33d9f2010-06-02 12:27:01 +00001366 kernel->type = type;
anthony501c2f92010-06-02 10:55:14 +00001367 kernel->values[3] = +MagickSQ2;
1368 kernel->values[5] = -MagickSQ2;
anthonyc3cd15b2010-05-27 06:05:40 +00001369 CalcKernelMetaData(kernel); /* recalculate meta-data */
anthonyc3cd15b2010-05-27 06:05:40 +00001370 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001371 case 2:
1372 kernel=ParseKernelArray("3: 1,2,0 2,0,-2 0,-2,-1");
1373 if (kernel == (KernelInfo *) NULL)
1374 return(kernel);
1375 kernel->type = type;
1376 kernel->values[1] = kernel->values[3] = +MagickSQ2;
1377 kernel->values[5] = kernel->values[7] = -MagickSQ2;
1378 CalcKernelMetaData(kernel); /* recalculate meta-data */
1379 ScaleKernelInfo(kernel, 1.0/2.0*MagickSQ2, NoValue);
1380 break;
1381 case 10:
1382 kernel=AcquireKernelInfo("FreiChen:11;FreiChen:12;FreiChen:13;FreiChen:14;FreiChen:15;FreiChen:16;FreiChen:17;FreiChen:18;FreiChen:19");
1383 if (kernel == (KernelInfo *) NULL)
1384 return(kernel);
1385 break;
anthonye2a60ce2010-05-19 12:30:40 +00001386 case 1:
anthonyc40ac1e2010-06-06 11:49:31 +00001387 case 11:
anthony501c2f92010-06-02 10:55:14 +00001388 kernel=ParseKernelArray("3: 1,0,-1 2,0,-2 1,0,-1");
anthonye2a60ce2010-05-19 12:30:40 +00001389 if (kernel == (KernelInfo *) NULL)
1390 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001391 kernel->type = type;
anthony501c2f92010-06-02 10:55:14 +00001392 kernel->values[3] = +MagickSQ2;
1393 kernel->values[5] = -MagickSQ2;
anthonye2a60ce2010-05-19 12:30:40 +00001394 CalcKernelMetaData(kernel); /* recalculate meta-data */
1395 ScaleKernelInfo(kernel, 1.0/2.0*MagickSQ2, NoValue);
1396 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001397 case 12:
anthony501c2f92010-06-02 10:55:14 +00001398 kernel=ParseKernelArray("3: 1,2,1 0,0,0 1,2,1");
anthonye2a60ce2010-05-19 12:30:40 +00001399 if (kernel == (KernelInfo *) NULL)
1400 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001401 kernel->type = type;
anthony1d5e6702010-05-31 10:19:12 +00001402 kernel->values[1] = +MagickSQ2;
1403 kernel->values[7] = +MagickSQ2;
anthonye2a60ce2010-05-19 12:30:40 +00001404 CalcKernelMetaData(kernel);
1405 ScaleKernelInfo(kernel, 1.0/2.0*MagickSQ2, NoValue);
1406 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001407 case 13:
anthony501c2f92010-06-02 10:55:14 +00001408 kernel=ParseKernelArray("3: 2,-1,0 -1,0,1 0,1,-2");
anthonye2a60ce2010-05-19 12:30:40 +00001409 if (kernel == (KernelInfo *) NULL)
1410 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001411 kernel->type = type;
anthony501c2f92010-06-02 10:55:14 +00001412 kernel->values[0] = +MagickSQ2;
1413 kernel->values[8] = -MagickSQ2;
anthonye2a60ce2010-05-19 12:30:40 +00001414 CalcKernelMetaData(kernel);
1415 ScaleKernelInfo(kernel, 1.0/2.0*MagickSQ2, NoValue);
1416 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001417 case 14:
anthony1d5e6702010-05-31 10:19:12 +00001418 kernel=ParseKernelArray("3: 0,1,-2 -1,0,1 2,-1,0");
anthonye2a60ce2010-05-19 12:30:40 +00001419 if (kernel == (KernelInfo *) NULL)
1420 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001421 kernel->type = type;
anthony1d5e6702010-05-31 10:19:12 +00001422 kernel->values[2] = -MagickSQ2;
1423 kernel->values[6] = +MagickSQ2;
anthonye2a60ce2010-05-19 12:30:40 +00001424 CalcKernelMetaData(kernel);
1425 ScaleKernelInfo(kernel, 1.0/2.0*MagickSQ2, NoValue);
1426 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001427 case 15:
anthony501c2f92010-06-02 10:55:14 +00001428 kernel=ParseKernelArray("3: 0,-1,0 1,0,1 0,-1,0");
anthonye2a60ce2010-05-19 12:30:40 +00001429 if (kernel == (KernelInfo *) NULL)
1430 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001431 kernel->type = type;
anthonye2a60ce2010-05-19 12:30:40 +00001432 ScaleKernelInfo(kernel, 1.0/2.0, NoValue);
1433 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001434 case 16:
anthony1d5e6702010-05-31 10:19:12 +00001435 kernel=ParseKernelArray("3: 1,0,-1 0,0,0 -1,0,1");
anthonye2a60ce2010-05-19 12:30:40 +00001436 if (kernel == (KernelInfo *) NULL)
1437 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001438 kernel->type = type;
anthonye2a60ce2010-05-19 12:30:40 +00001439 ScaleKernelInfo(kernel, 1.0/2.0, NoValue);
1440 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001441 case 17:
anthony501c2f92010-06-02 10:55:14 +00001442 kernel=ParseKernelArray("3: 1,-2,1 -2,4,-2 -1,-2,1");
anthonye2a60ce2010-05-19 12:30:40 +00001443 if (kernel == (KernelInfo *) NULL)
1444 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001445 kernel->type = type;
anthonye2a60ce2010-05-19 12:30:40 +00001446 ScaleKernelInfo(kernel, 1.0/6.0, NoValue);
1447 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001448 case 18:
anthony501c2f92010-06-02 10:55:14 +00001449 kernel=ParseKernelArray("3: -2,1,-2 1,4,1 -2,1,-2");
anthonye2a60ce2010-05-19 12:30:40 +00001450 if (kernel == (KernelInfo *) NULL)
1451 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001452 kernel->type = type;
anthonye2a60ce2010-05-19 12:30:40 +00001453 ScaleKernelInfo(kernel, 1.0/6.0, NoValue);
1454 break;
anthonyc40ac1e2010-06-06 11:49:31 +00001455 case 19:
anthonyc3cd15b2010-05-27 06:05:40 +00001456 kernel=ParseKernelArray("3: 1,1,1 1,1,1 1,1,1");
anthonye2a60ce2010-05-19 12:30:40 +00001457 if (kernel == (KernelInfo *) NULL)
1458 return(kernel);
anthonyc3cd15b2010-05-27 06:05:40 +00001459 kernel->type = type;
anthonye2a60ce2010-05-19 12:30:40 +00001460 ScaleKernelInfo(kernel, 1.0/3.0, NoValue);
1461 break;
1462 }
anthonyc3cd15b2010-05-27 06:05:40 +00001463 if ( fabs(args->sigma) > MagickEpsilon )
1464 /* Rotate by correctly supplied 'angle' */
1465 RotateKernelInfo(kernel, args->sigma);
1466 else if ( args->rho > 30.0 || args->rho < -30.0 )
1467 /* Rotate by out of bounds 'type' */
1468 RotateKernelInfo(kernel, args->rho);
anthonye2a60ce2010-05-19 12:30:40 +00001469 break;
1470 }
1471
anthonyc1061722010-05-14 06:23:49 +00001472 /* Boolean Kernels */
1473 case DiamondKernel:
1474 {
1475 if (args->rho < 1.0)
1476 kernel->width = kernel->height = 3; /* default radius = 1 */
1477 else
cristybb503372010-05-27 20:51:26 +00001478 kernel->width = kernel->height = ((size_t)args->rho)*2+1;
1479 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthonyc1061722010-05-14 06:23:49 +00001480
1481 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1482 kernel->height*sizeof(double));
1483 if (kernel->values == (double *) NULL)
1484 return(DestroyKernelInfo(kernel));
1485
1486 /* set all kernel values within diamond area to scale given */
cristybb503372010-05-27 20:51:26 +00001487 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1488 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony1d5e6702010-05-31 10:19:12 +00001489 if ( (labs((long) u)+labs((long) v)) <= (long) kernel->x)
anthonyc1061722010-05-14 06:23:49 +00001490 kernel->positive_range += kernel->values[i] = args->sigma;
1491 else
1492 kernel->values[i] = nan;
1493 kernel->minimum = kernel->maximum = args->sigma; /* a flat shape */
1494 break;
1495 }
1496 case SquareKernel:
1497 case RectangleKernel:
1498 { double
1499 scale;
anthony602ab9b2010-01-05 08:06:50 +00001500 if ( type == SquareKernel )
1501 {
1502 if (args->rho < 1.0)
anthonyc94cdb02010-01-06 08:15:29 +00001503 kernel->width = kernel->height = 3; /* default radius = 1 */
anthony602ab9b2010-01-05 08:06:50 +00001504 else
cristybb503372010-05-27 20:51:26 +00001505 kernel->width = kernel->height = (size_t) (2*args->rho+1);
1506 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony4fd27e22010-02-07 08:17:18 +00001507 scale = args->sigma;
anthony602ab9b2010-01-05 08:06:50 +00001508 }
1509 else {
cristy2be15382010-01-21 02:38:03 +00001510 /* NOTE: user defaults set in "AcquireKernelInfo()" */
anthony602ab9b2010-01-05 08:06:50 +00001511 if ( args->rho < 1.0 || args->sigma < 1.0 )
anthony83ba99b2010-01-24 08:48:15 +00001512 return(DestroyKernelInfo(kernel)); /* invalid args given */
cristybb503372010-05-27 20:51:26 +00001513 kernel->width = (size_t)args->rho;
1514 kernel->height = (size_t)args->sigma;
anthony602ab9b2010-01-05 08:06:50 +00001515 if ( args->xi < 0.0 || args->xi > (double)kernel->width ||
1516 args->psi < 0.0 || args->psi > (double)kernel->height )
anthony83ba99b2010-01-24 08:48:15 +00001517 return(DestroyKernelInfo(kernel)); /* invalid args given */
cristybb503372010-05-27 20:51:26 +00001518 kernel->x = (ssize_t) args->xi;
1519 kernel->y = (ssize_t) args->psi;
anthony4fd27e22010-02-07 08:17:18 +00001520 scale = 1.0;
anthony602ab9b2010-01-05 08:06:50 +00001521 }
1522 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1523 kernel->height*sizeof(double));
1524 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001525 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001526
anthony3dd0f622010-05-13 12:57:32 +00001527 /* set all kernel values to scale given */
cristyeaedf062010-05-29 22:36:02 +00001528 u=(ssize_t) (kernel->width*kernel->height);
cristy150989e2010-02-01 14:59:39 +00001529 for ( i=0; i < u; i++)
anthony4fd27e22010-02-07 08:17:18 +00001530 kernel->values[i] = scale;
1531 kernel->minimum = kernel->maximum = scale; /* a flat shape */
1532 kernel->positive_range = scale*u;
anthonycc6c8362010-01-25 04:14:01 +00001533 break;
anthony602ab9b2010-01-05 08:06:50 +00001534 }
anthony602ab9b2010-01-05 08:06:50 +00001535 case DiskKernel:
1536 {
anthonye4d89962010-05-29 10:53:11 +00001537 ssize_t
1538 limit = (ssize_t)(args->rho*args->rho);
1539
1540 if (args->rho < 0.4) /* default radius approx 3.5 */
anthony83ba99b2010-01-24 08:48:15 +00001541 kernel->width = kernel->height = 7L, limit = 10L;
anthony602ab9b2010-01-05 08:06:50 +00001542 else
anthonye4d89962010-05-29 10:53:11 +00001543 kernel->width = kernel->height = (size_t)fabs(args->rho)*2+1;
cristybb503372010-05-27 20:51:26 +00001544 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +00001545
1546 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1547 kernel->height*sizeof(double));
1548 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001549 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001550
anthony3dd0f622010-05-13 12:57:32 +00001551 /* set all kernel values within disk area to scale given */
cristybb503372010-05-27 20:51:26 +00001552 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1553 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony602ab9b2010-01-05 08:06:50 +00001554 if ((u*u+v*v) <= limit)
anthony4fd27e22010-02-07 08:17:18 +00001555 kernel->positive_range += kernel->values[i] = args->sigma;
anthony602ab9b2010-01-05 08:06:50 +00001556 else
1557 kernel->values[i] = nan;
anthony4fd27e22010-02-07 08:17:18 +00001558 kernel->minimum = kernel->maximum = args->sigma; /* a flat shape */
anthony602ab9b2010-01-05 08:06:50 +00001559 break;
1560 }
1561 case PlusKernel:
1562 {
1563 if (args->rho < 1.0)
anthonyc94cdb02010-01-06 08:15:29 +00001564 kernel->width = kernel->height = 5; /* default radius 2 */
anthony602ab9b2010-01-05 08:06:50 +00001565 else
cristybb503372010-05-27 20:51:26 +00001566 kernel->width = kernel->height = ((size_t)args->rho)*2+1;
1567 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +00001568
1569 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1570 kernel->height*sizeof(double));
1571 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001572 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001573
cristycee97112010-05-28 00:44:52 +00001574 /* set all kernel values along axises to given scale */
cristybb503372010-05-27 20:51:26 +00001575 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1576 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony4fd27e22010-02-07 08:17:18 +00001577 kernel->values[i] = (u == 0 || v == 0) ? args->sigma : nan;
1578 kernel->minimum = kernel->maximum = args->sigma; /* a flat shape */
1579 kernel->positive_range = args->sigma*(kernel->width*2.0 - 1.0);
anthony602ab9b2010-01-05 08:06:50 +00001580 break;
1581 }
anthony3dd0f622010-05-13 12:57:32 +00001582 case CrossKernel:
1583 {
1584 if (args->rho < 1.0)
1585 kernel->width = kernel->height = 5; /* default radius 2 */
1586 else
cristybb503372010-05-27 20:51:26 +00001587 kernel->width = kernel->height = ((size_t)args->rho)*2+1;
1588 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony3dd0f622010-05-13 12:57:32 +00001589
1590 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1591 kernel->height*sizeof(double));
1592 if (kernel->values == (double *) NULL)
1593 return(DestroyKernelInfo(kernel));
1594
cristycee97112010-05-28 00:44:52 +00001595 /* set all kernel values along axises to given scale */
cristybb503372010-05-27 20:51:26 +00001596 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1597 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
anthony3dd0f622010-05-13 12:57:32 +00001598 kernel->values[i] = (u == v || u == -v) ? args->sigma : nan;
1599 kernel->minimum = kernel->maximum = args->sigma; /* a flat shape */
1600 kernel->positive_range = args->sigma*(kernel->width*2.0 - 1.0);
1601 break;
1602 }
1603 /* HitAndMiss Kernels */
anthonyc1061722010-05-14 06:23:49 +00001604 case RingKernel:
anthony3dd0f622010-05-13 12:57:32 +00001605 case PeaksKernel:
1606 {
cristybb503372010-05-27 20:51:26 +00001607 ssize_t
anthony3dd0f622010-05-13 12:57:32 +00001608 limit1,
anthonyc1061722010-05-14 06:23:49 +00001609 limit2,
1610 scale;
anthony3dd0f622010-05-13 12:57:32 +00001611
1612 if (args->rho < args->sigma)
1613 {
cristybb503372010-05-27 20:51:26 +00001614 kernel->width = ((size_t)args->sigma)*2+1;
anthonye4d89962010-05-29 10:53:11 +00001615 limit1 = (ssize_t)(args->rho*args->rho);
1616 limit2 = (ssize_t)(args->sigma*args->sigma);
anthony3dd0f622010-05-13 12:57:32 +00001617 }
1618 else
1619 {
cristybb503372010-05-27 20:51:26 +00001620 kernel->width = ((size_t)args->rho)*2+1;
anthonye4d89962010-05-29 10:53:11 +00001621 limit1 = (ssize_t)(args->sigma*args->sigma);
1622 limit2 = (ssize_t)(args->rho*args->rho);
anthony3dd0f622010-05-13 12:57:32 +00001623 }
anthonyc1061722010-05-14 06:23:49 +00001624 if ( limit2 <= 0 )
1625 kernel->width = 7L, limit1 = 7L, limit2 = 11L;
1626
anthony3dd0f622010-05-13 12:57:32 +00001627 kernel->height = kernel->width;
cristybb503372010-05-27 20:51:26 +00001628 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony3dd0f622010-05-13 12:57:32 +00001629 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1630 kernel->height*sizeof(double));
1631 if (kernel->values == (double *) NULL)
1632 return(DestroyKernelInfo(kernel));
1633
anthonyc1061722010-05-14 06:23:49 +00001634 /* set a ring of points of 'scale' ( 0.0 for PeaksKernel ) */
cristybb503372010-05-27 20:51:26 +00001635 scale = (ssize_t) (( type == PeaksKernel) ? 0.0 : args->xi);
1636 for ( i=0, v= -kernel->y; v <= (ssize_t)kernel->y; v++)
1637 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
1638 { ssize_t radius=u*u+v*v;
anthonyc1061722010-05-14 06:23:49 +00001639 if (limit1 < radius && radius <= limit2)
cristye96405a2010-05-19 02:24:31 +00001640 kernel->positive_range += kernel->values[i] = (double) scale;
anthony3dd0f622010-05-13 12:57:32 +00001641 else
1642 kernel->values[i] = nan;
1643 }
cristye96405a2010-05-19 02:24:31 +00001644 kernel->minimum = kernel->minimum = (double) scale;
anthonyc1061722010-05-14 06:23:49 +00001645 if ( type == PeaksKernel ) {
1646 /* set the central point in the middle */
1647 kernel->values[kernel->x+kernel->y*kernel->width] = 1.0;
1648 kernel->positive_range = 1.0;
1649 kernel->maximum = 1.0;
1650 }
anthony3dd0f622010-05-13 12:57:32 +00001651 break;
1652 }
anthony43c49252010-05-18 10:59:50 +00001653 case EdgesKernel:
1654 {
1655 kernel=ParseKernelArray("3: 0,0,0 -,1,- 1,1,1");
1656 if (kernel == (KernelInfo *) NULL)
1657 return(kernel);
1658 kernel->type = type;
anthonybfb635a2010-06-04 00:18:04 +00001659 ExpandMirrorKernelInfo(kernel); /* mirror expansion of other kernels */
anthony43c49252010-05-18 10:59:50 +00001660 break;
1661 }
anthony3dd0f622010-05-13 12:57:32 +00001662 case CornersKernel:
1663 {
anthony4f1dcb72010-05-14 08:43:10 +00001664 kernel=ParseKernelArray("3: 0,0,- 0,1,1 -,1,-");
anthony3dd0f622010-05-13 12:57:32 +00001665 if (kernel == (KernelInfo *) NULL)
1666 return(kernel);
1667 kernel->type = type;
anthonybfb635a2010-06-04 00:18:04 +00001668 ExpandRotateKernelInfo(kernel, 90.0); /* Expand 90 degree rotations */
anthony3dd0f622010-05-13 12:57:32 +00001669 break;
1670 }
1671 case LineEndsKernel:
anthony694934f2010-06-07 10:30:40 +00001672 { /* Kernels for finding the end of thin lines */
1673 switch ( (int) args->rho ) {
1674 case 0:
1675 default:
1676 /* set of kernels to find all end of lines */
1677 kernel=AcquireKernelInfo("LineEnds:1>;LineEnds:2>");
1678 if (kernel == (KernelInfo *) NULL)
1679 return(kernel);
1680 break;
1681 case 1:
1682 /* kernel for 4-connected line ends - no rotation */
1683 kernel=ParseKernelArray("3: 0,0,0 0,1,0 -,1,-");
1684 if (kernel == (KernelInfo *) NULL)
1685 return(kernel);
1686 kernel->type = type;
1687 break;
1688 case 2:
1689 /* kernel to add for 8-connected lines - no rotation */
1690 kernel=ParseKernelArray("3: 0,0,0 0,1,0 0,0,1");
1691 if (kernel == (KernelInfo *) NULL)
1692 return(kernel);
1693 kernel->type = type;
1694 break;
1695 }
anthony3dd0f622010-05-13 12:57:32 +00001696 break;
1697 }
1698 case LineJunctionsKernel:
anthony694934f2010-06-07 10:30:40 +00001699 { /* kernels for finding the junctions of multiple lines */
1700 switch ( (int) args->rho ) {
1701 case 0:
1702 default:
1703 /* set of kernels to find all line junctions */
1704 kernel=AcquireKernelInfo("LineJunctions:1@;LineJunctions:2>");
1705 if (kernel == (KernelInfo *) NULL)
1706 return(kernel);
1707 break;
1708 case 1:
1709 /* Y Junction */
1710 kernel=ParseKernelArray("3: 1,-,1 -,1,- -,1,-");
1711 if (kernel == (KernelInfo *) NULL)
1712 return(kernel);
1713 kernel->type = type;
1714 break;
1715 case 2:
1716 /* Diagonal T Junctions */
1717 kernel=ParseKernelArray("3: 1,-,- -,1,- 1,-,1");
1718 if (kernel == (KernelInfo *) NULL)
1719 return(kernel);
1720 kernel->type = type;
1721 break;
1722 case 3:
1723 /* Orthogonal T Junctions */
1724 kernel=ParseKernelArray("3: -,-,- 1,1,1 -,1,-");
1725 if (kernel == (KernelInfo *) NULL)
1726 return(kernel);
1727 kernel->type = type;
1728 break;
1729 case 4:
1730 /* Diagonal X Junctions */
1731 kernel=ParseKernelArray("3: 1,-,1 -,1,- 1,-,1");
1732 if (kernel == (KernelInfo *) NULL)
1733 return(kernel);
1734 kernel->type = type;
1735 break;
1736 case 5:
1737 /* Orthogonal X Junctions - minimal diamond kernel */
1738 kernel=ParseKernelArray("3: -,1,- 1,1,1 -,1,-");
1739 if (kernel == (KernelInfo *) NULL)
1740 return(kernel);
1741 kernel->type = type;
1742 break;
1743 }
anthony4f1dcb72010-05-14 08:43:10 +00001744 break;
1745 }
anthonyc40ac1e2010-06-06 11:49:31 +00001746 case RidgesKernel:
1747 { /* Ridges - Ridge finding kernels */
1748 KernelInfo
1749 *new_kernel;
1750 switch ( (int) args->rho ) {
1751 case 1:
1752 default:
1753 kernel=ParseKernelArray("3x1:0,1,0");
1754 if (kernel == (KernelInfo *) NULL)
1755 return(kernel);
1756 kernel->type = type;
1757 ExpandRotateKernelInfo(kernel, 90.0); /* 2 rotated kernels (symmetrical) */
1758 break;
1759 case 2:
1760 kernel=ParseKernelArray("4x1:0,1,1,0");
1761 if (kernel == (KernelInfo *) NULL)
1762 return(kernel);
1763 kernel->type = type;
1764 ExpandRotateKernelInfo(kernel, 90.0); /* 4 rotated kernels */
anthony694934f2010-06-07 10:30:40 +00001765
1766 /* Kernels to find a stepped 'thick' line, 4 rotates + mirrors */
anthonyc40ac1e2010-06-06 11:49:31 +00001767 /* Unfortunatally we can not yet rotate a non-square kernel */
1768 /* But then we can't flip a non-symetrical kernel either */
1769 new_kernel=ParseKernelArray("4x3+1+1:0,1,1,- -,1,1,- -,1,1,0");
1770 if (new_kernel == (KernelInfo *) NULL)
1771 return(DestroyKernelInfo(kernel));
1772 new_kernel->type = type;
1773 LastKernelInfo(kernel)->next = new_kernel;
1774 new_kernel=ParseKernelArray("4x3+2+1:0,1,1,- -,1,1,- -,1,1,0");
1775 if (new_kernel == (KernelInfo *) NULL)
1776 return(DestroyKernelInfo(kernel));
1777 new_kernel->type = type;
1778 LastKernelInfo(kernel)->next = new_kernel;
1779 new_kernel=ParseKernelArray("4x3+1+1:-,1,1,0 -,1,1,- 0,1,1,-");
1780 if (new_kernel == (KernelInfo *) NULL)
1781 return(DestroyKernelInfo(kernel));
1782 new_kernel->type = type;
1783 LastKernelInfo(kernel)->next = new_kernel;
1784 new_kernel=ParseKernelArray("4x3+2+1:-,1,1,0 -,1,1,- 0,1,1,-");
1785 if (new_kernel == (KernelInfo *) NULL)
1786 return(DestroyKernelInfo(kernel));
1787 new_kernel->type = type;
1788 LastKernelInfo(kernel)->next = new_kernel;
1789 new_kernel=ParseKernelArray("3x4+1+1:0,-,- 1,1,1 1,1,1 -,-,0");
1790 if (new_kernel == (KernelInfo *) NULL)
1791 return(DestroyKernelInfo(kernel));
1792 new_kernel->type = type;
1793 LastKernelInfo(kernel)->next = new_kernel;
1794 new_kernel=ParseKernelArray("3x4+1+2:0,-,- 1,1,1 1,1,1 -,-,0");
1795 if (new_kernel == (KernelInfo *) NULL)
1796 return(DestroyKernelInfo(kernel));
1797 new_kernel->type = type;
1798 LastKernelInfo(kernel)->next = new_kernel;
1799 new_kernel=ParseKernelArray("3x4+1+1:-,-,0 1,1,1 1,1,1 0,-,-");
1800 if (new_kernel == (KernelInfo *) NULL)
1801 return(DestroyKernelInfo(kernel));
1802 new_kernel->type = type;
1803 LastKernelInfo(kernel)->next = new_kernel;
1804 new_kernel=ParseKernelArray("3x4+1+2:-,-,0 1,1,1 1,1,1 0,-,-");
1805 if (new_kernel == (KernelInfo *) NULL)
1806 return(DestroyKernelInfo(kernel));
1807 new_kernel->type = type;
1808 LastKernelInfo(kernel)->next = new_kernel;
1809 break;
1810 }
1811 break;
1812 }
anthony3dd0f622010-05-13 12:57:32 +00001813 case ConvexHullKernel:
1814 {
anthony3928ec62010-05-27 14:03:29 +00001815 KernelInfo
1816 *new_kernel;
1817 /* first set of 8 kernels */
anthony4f1dcb72010-05-14 08:43:10 +00001818 kernel=ParseKernelArray("3: 1,1,- 1,0,- 1,-,0");
anthony3dd0f622010-05-13 12:57:32 +00001819 if (kernel == (KernelInfo *) NULL)
1820 return(kernel);
1821 kernel->type = type;
anthony1192faa2010-06-07 22:52:06 +00001822 ExpandRotateKernelInfo(kernel, 90.0);
anthony694934f2010-06-07 10:30:40 +00001823 /* append the mirror versions too - no flip function yet */
anthony5b93cbe2010-05-27 13:54:14 +00001824 new_kernel=ParseKernelArray("3: 1,1,1 1,0,- -,-,0");
1825 if (new_kernel == (KernelInfo *) NULL)
1826 return(DestroyKernelInfo(kernel));
1827 new_kernel->type = type;
anthony1192faa2010-06-07 22:52:06 +00001828 ExpandRotateKernelInfo(new_kernel, 90.0);
anthony5b93cbe2010-05-27 13:54:14 +00001829 LastKernelInfo(kernel)->next = new_kernel;
anthony3dd0f622010-05-13 12:57:32 +00001830 break;
1831 }
anthony47f5d062010-05-23 07:47:50 +00001832 case SkeletonKernel:
anthonya648a302010-05-27 02:14:36 +00001833 {
1834 KernelInfo
1835 *new_kernel;
anthonyc40ac1e2010-06-06 11:49:31 +00001836 switch ( (int) args->rho ) {
1837 case 1:
1838 default:
1839 /* Traditional Skeleton...
1840 ** A cyclically rotated single kernel
1841 */
1842 kernel=ParseKernelArray("3: 0,0,0 -,1,- 1,1,1");
1843 if (kernel == (KernelInfo *) NULL)
1844 return(kernel);
1845 kernel->type = type;
1846 ExpandRotateKernelInfo(kernel, 45.0); /* 8 rotations */
1847 break;
1848 case 2:
1849 /* HIPR Variation of the cyclic skeleton
1850 ** Corners of the traditional method made more forgiving,
1851 ** but the retain the same cyclic order.
1852 */
1853 kernel=ParseKernelArray("3: 0,0,0 -,1,- 1,1,1");
1854 if (kernel == (KernelInfo *) NULL)
1855 return(kernel);
1856 kernel->type = type;
1857 new_kernel=ParseKernelArray("3: -,0,0 1,1,0 -,1,-");
1858 if (new_kernel == (KernelInfo *) NULL)
1859 return(new_kernel);
1860 new_kernel->type = type;
1861 LastKernelInfo(kernel)->next = new_kernel;
1862 ExpandRotateKernelInfo(kernel, 90.0); /* 4 rotations of the 2 kernels */
1863 break;
1864 case 3:
1865 /* Jittered Skeleton: do top, then bottom, then each sides */
1866 /* Do top edge */
1867 kernel=ParseKernelArray("3: 0,0,0 -,1,- 1,1,1");
1868 if (kernel == (KernelInfo *) NULL)
1869 return(kernel);
1870 kernel->type = type;
1871 new_kernel=ParseKernelArray("3: 0,0,- 0,1,1 -,1,-");
1872 if (new_kernel == (KernelInfo *) NULL)
1873 return(new_kernel);
1874 new_kernel->type = type;
1875 LastKernelInfo(kernel)->next = new_kernel;
1876 new_kernel=ParseKernelArray("3: -,0,0 1,1,0 -,1,-");
1877 if (new_kernel == (KernelInfo *) NULL)
1878 return(new_kernel);
1879 new_kernel->type = type;
1880 LastKernelInfo(kernel)->next = new_kernel;
1881 /* Do Bottom edge */
1882 new_kernel=ParseKernelArray("3: 1,1,1 -,1,- 0,0,0");
1883 if (new_kernel == (KernelInfo *) NULL)
1884 return(new_kernel);
1885 new_kernel->type = type;
1886 LastKernelInfo(kernel)->next = new_kernel;
1887 new_kernel=ParseKernelArray("3: -,1,- 1,1,0 -,0,0");
1888 if (new_kernel == (KernelInfo *) NULL)
1889 return(new_kernel);
1890 new_kernel->type = type;
1891 LastKernelInfo(kernel)->next = new_kernel;
1892 new_kernel=ParseKernelArray("3: -,1,- 0,1,1 0,0,-");
1893 if (new_kernel == (KernelInfo *) NULL)
1894 return(new_kernel);
1895 new_kernel->type = type;
1896 LastKernelInfo(kernel)->next = new_kernel;
1897 /* Last the two sides */
1898 new_kernel=ParseKernelArray("3: 0,-,1 0,1,1 0,-,1");
1899 if (new_kernel == (KernelInfo *) NULL)
1900 return(new_kernel);
1901 new_kernel->type = type;
1902 LastKernelInfo(kernel)->next = new_kernel;
1903 new_kernel=ParseKernelArray("3: 1,-,0 1,1,0 1,-,0");
1904 if (new_kernel == (KernelInfo *) NULL)
1905 return(new_kernel);
1906 new_kernel->type = type;
1907 LastKernelInfo(kernel)->next = new_kernel;
1908 break;
1909 case 4:
1910 /* Just a simple 'Edge' kernel, but with a extra two kernels
1911 ** to finish off diagonal lines, top then bottom then sides.
1912 ** Works well for test case but fails for general case.
1913 */
1914 kernel=ParseKernelArray("3: 0,0,0 -,1,- 1,1,1");
1915 if (kernel == (KernelInfo *) NULL)
1916 return(kernel);
1917 kernel->type = type;
1918 new_kernel=ParseKernelArray("3: 0,0,0 0,1,1 1,1,-");
1919 if (new_kernel == (KernelInfo *) NULL)
1920 return(DestroyKernelInfo(kernel));
1921 new_kernel->type = type;
1922 LastKernelInfo(kernel)->next = new_kernel;
1923 new_kernel=ParseKernelArray("3: 0,0,0 1,1,0 -,1,1");
1924 if (new_kernel == (KernelInfo *) NULL)
1925 return(DestroyKernelInfo(kernel));
1926 new_kernel->type = type;
1927 LastKernelInfo(kernel)->next = new_kernel;
1928 ExpandMirrorKernelInfo(kernel);
anthony694934f2010-06-07 10:30:40 +00001929 /* Append a set of corner kernels */
1930 new_kernel=ParseKernelArray("3: 0,0,- 0,1,1 -,1,-");
1931 if (new_kernel == (KernelInfo *) NULL)
1932 return(DestroyKernelInfo(kernel));
1933 new_kernel->type = type;
1934 ExpandRotateKernelInfo(new_kernel, 90.0);
1935 LastKernelInfo(kernel)->next = new_kernel;
anthonyc40ac1e2010-06-06 11:49:31 +00001936 break;
1937 }
anthonya648a302010-05-27 02:14:36 +00001938 break;
1939 }
anthony602ab9b2010-01-05 08:06:50 +00001940 /* Distance Measuring Kernels */
1941 case ChebyshevKernel:
1942 {
anthony602ab9b2010-01-05 08:06:50 +00001943 if (args->rho < 1.0)
anthonyc94cdb02010-01-06 08:15:29 +00001944 kernel->width = kernel->height = 3; /* default radius = 1 */
anthony602ab9b2010-01-05 08:06:50 +00001945 else
cristybb503372010-05-27 20:51:26 +00001946 kernel->width = kernel->height = ((size_t)args->rho)*2+1;
1947 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +00001948
1949 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1950 kernel->height*sizeof(double));
1951 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001952 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001953
cristybb503372010-05-27 20:51:26 +00001954 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1955 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
cristyc99304f2010-02-01 15:26:27 +00001956 kernel->positive_range += ( kernel->values[i] =
cristyecd0ab52010-05-30 14:59:20 +00001957 args->sigma*((labs((long) u)>labs((long) v)) ? labs((long) u) : labs((long) v)) );
cristyc99304f2010-02-01 15:26:27 +00001958 kernel->maximum = kernel->values[0];
anthony602ab9b2010-01-05 08:06:50 +00001959 break;
1960 }
anthonybee715c2010-06-04 01:25:57 +00001961 case ManhattanKernel:
anthony602ab9b2010-01-05 08:06:50 +00001962 {
anthony602ab9b2010-01-05 08:06:50 +00001963 if (args->rho < 1.0)
anthonyc94cdb02010-01-06 08:15:29 +00001964 kernel->width = kernel->height = 3; /* default radius = 1 */
anthony602ab9b2010-01-05 08:06:50 +00001965 else
cristybb503372010-05-27 20:51:26 +00001966 kernel->width = kernel->height = ((size_t)args->rho)*2+1;
1967 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +00001968
1969 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1970 kernel->height*sizeof(double));
1971 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001972 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001973
cristybb503372010-05-27 20:51:26 +00001974 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1975 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
cristyc99304f2010-02-01 15:26:27 +00001976 kernel->positive_range += ( kernel->values[i] =
cristyecd0ab52010-05-30 14:59:20 +00001977 args->sigma*(labs((long) u)+labs((long) v)) );
cristyc99304f2010-02-01 15:26:27 +00001978 kernel->maximum = kernel->values[0];
anthony602ab9b2010-01-05 08:06:50 +00001979 break;
1980 }
1981 case EuclideanKernel:
1982 {
anthony602ab9b2010-01-05 08:06:50 +00001983 if (args->rho < 1.0)
anthonyc94cdb02010-01-06 08:15:29 +00001984 kernel->width = kernel->height = 3; /* default radius = 1 */
anthony602ab9b2010-01-05 08:06:50 +00001985 else
cristybb503372010-05-27 20:51:26 +00001986 kernel->width = kernel->height = ((size_t)args->rho)*2+1;
1987 kernel->x = kernel->y = (ssize_t) (kernel->width-1)/2;
anthony602ab9b2010-01-05 08:06:50 +00001988
1989 kernel->values=(double *) AcquireQuantumMemory(kernel->width,
1990 kernel->height*sizeof(double));
1991 if (kernel->values == (double *) NULL)
anthony83ba99b2010-01-24 08:48:15 +00001992 return(DestroyKernelInfo(kernel));
anthony602ab9b2010-01-05 08:06:50 +00001993
cristybb503372010-05-27 20:51:26 +00001994 for ( i=0, v=-kernel->y; v <= (ssize_t)kernel->y; v++)
1995 for ( u=-kernel->x; u <= (ssize_t)kernel->x; u++, i++)
cristyc99304f2010-02-01 15:26:27 +00001996 kernel->positive_range += ( kernel->values[i] =
anthonyc84dce52010-05-07 05:42:23 +00001997 args->sigma*sqrt((double)(u*u+v*v)) );
cristyc99304f2010-02-01 15:26:27 +00001998 kernel->maximum = kernel->values[0];
anthony602ab9b2010-01-05 08:06:50 +00001999 break;
2000 }
anthony46a369d2010-05-19 02:41:48 +00002001 case UnityKernel:
anthony602ab9b2010-01-05 08:06:50 +00002002 default:
anthonyc1061722010-05-14 06:23:49 +00002003 {
anthony46a369d2010-05-19 02:41:48 +00002004 /* Unity or No-Op Kernel - 3x3 with 1 in center */
2005 kernel=ParseKernelArray("3:0,0,0,0,1,0,0,0,0");
anthonyc1061722010-05-14 06:23:49 +00002006 if (kernel == (KernelInfo *) NULL)
2007 return(kernel);
anthony46a369d2010-05-19 02:41:48 +00002008 kernel->type = ( type == UnityKernel ) ? UnityKernel : UndefinedKernel;
anthonyc1061722010-05-14 06:23:49 +00002009 break;
2010 }
anthony602ab9b2010-01-05 08:06:50 +00002011 break;
2012 }
2013
2014 return(kernel);
2015}
anthonyc94cdb02010-01-06 08:15:29 +00002016
anthony602ab9b2010-01-05 08:06:50 +00002017/*
2018%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2019% %
2020% %
2021% %
cristy6771f1e2010-03-05 19:43:39 +00002022% C l o n e K e r n e l I n f o %
anthony4fd27e22010-02-07 08:17:18 +00002023% %
2024% %
2025% %
2026%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2027%
anthony1b2bc0a2010-05-12 05:25:22 +00002028% CloneKernelInfo() creates a new clone of the given Kernel List so that its
2029% can be modified without effecting the original. The cloned kernel should
cristybb503372010-05-27 20:51:26 +00002030% be destroyed using DestoryKernelInfo() when no ssize_ter needed.
anthony7a01dcf2010-05-11 12:25:52 +00002031%
cristye6365592010-04-02 17:31:23 +00002032% The format of the CloneKernelInfo method is:
anthony4fd27e22010-02-07 08:17:18 +00002033%
anthony930be612010-02-08 04:26:15 +00002034% KernelInfo *CloneKernelInfo(const KernelInfo *kernel)
anthony4fd27e22010-02-07 08:17:18 +00002035%
2036% A description of each parameter follows:
2037%
2038% o kernel: the Morphology/Convolution kernel to be cloned
2039%
2040*/
cristyef656912010-03-05 19:54:59 +00002041MagickExport KernelInfo *CloneKernelInfo(const KernelInfo *kernel)
anthony4fd27e22010-02-07 08:17:18 +00002042{
cristybb503372010-05-27 20:51:26 +00002043 register ssize_t
anthony4fd27e22010-02-07 08:17:18 +00002044 i;
2045
cristy19eb6412010-04-23 14:42:29 +00002046 KernelInfo
anthony7a01dcf2010-05-11 12:25:52 +00002047 *new_kernel;
anthony4fd27e22010-02-07 08:17:18 +00002048
2049 assert(kernel != (KernelInfo *) NULL);
anthony7a01dcf2010-05-11 12:25:52 +00002050 new_kernel=(KernelInfo *) AcquireMagickMemory(sizeof(*kernel));
2051 if (new_kernel == (KernelInfo *) NULL)
2052 return(new_kernel);
2053 *new_kernel=(*kernel); /* copy values in structure */
anthony7a01dcf2010-05-11 12:25:52 +00002054
2055 /* replace the values with a copy of the values */
2056 new_kernel->values=(double *) AcquireQuantumMemory(kernel->width,
cristy19eb6412010-04-23 14:42:29 +00002057 kernel->height*sizeof(double));
anthony7a01dcf2010-05-11 12:25:52 +00002058 if (new_kernel->values == (double *) NULL)
2059 return(DestroyKernelInfo(new_kernel));
cristybb503372010-05-27 20:51:26 +00002060 for (i=0; i < (ssize_t) (kernel->width*kernel->height); i++)
anthony7a01dcf2010-05-11 12:25:52 +00002061 new_kernel->values[i]=kernel->values[i];
anthony1b2bc0a2010-05-12 05:25:22 +00002062
2063 /* Also clone the next kernel in the kernel list */
2064 if ( kernel->next != (KernelInfo *) NULL ) {
2065 new_kernel->next = CloneKernelInfo(kernel->next);
2066 if ( new_kernel->next == (KernelInfo *) NULL )
2067 return(DestroyKernelInfo(new_kernel));
2068 }
2069
anthony7a01dcf2010-05-11 12:25:52 +00002070 return(new_kernel);
anthony4fd27e22010-02-07 08:17:18 +00002071}
2072
2073/*
2074%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2075% %
2076% %
2077% %
anthony83ba99b2010-01-24 08:48:15 +00002078% D e s t r o y K e r n e l I n f o %
anthony602ab9b2010-01-05 08:06:50 +00002079% %
2080% %
2081% %
2082%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2083%
anthony83ba99b2010-01-24 08:48:15 +00002084% DestroyKernelInfo() frees the memory used by a Convolution/Morphology
2085% kernel.
anthony602ab9b2010-01-05 08:06:50 +00002086%
anthony83ba99b2010-01-24 08:48:15 +00002087% The format of the DestroyKernelInfo method is:
anthony602ab9b2010-01-05 08:06:50 +00002088%
anthony83ba99b2010-01-24 08:48:15 +00002089% KernelInfo *DestroyKernelInfo(KernelInfo *kernel)
anthony602ab9b2010-01-05 08:06:50 +00002090%
2091% A description of each parameter follows:
2092%
2093% o kernel: the Morphology/Convolution kernel to be destroyed
2094%
2095*/
anthony83ba99b2010-01-24 08:48:15 +00002096MagickExport KernelInfo *DestroyKernelInfo(KernelInfo *kernel)
anthony602ab9b2010-01-05 08:06:50 +00002097{
cristy2be15382010-01-21 02:38:03 +00002098 assert(kernel != (KernelInfo *) NULL);
anthony4fd27e22010-02-07 08:17:18 +00002099
anthony7a01dcf2010-05-11 12:25:52 +00002100 if ( kernel->next != (KernelInfo *) NULL )
2101 kernel->next = DestroyKernelInfo(kernel->next);
2102
2103 kernel->values = (double *)RelinquishMagickMemory(kernel->values);
2104 kernel = (KernelInfo *) RelinquishMagickMemory(kernel);
anthony602ab9b2010-01-05 08:06:50 +00002105 return(kernel);
2106}
anthonyc94cdb02010-01-06 08:15:29 +00002107
2108/*
2109%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2110% %
2111% %
2112% %
anthonybfb635a2010-06-04 00:18:04 +00002113% E x p a n d M i r r o r K e r n e l I n f o %
anthony3c10fc82010-05-13 02:40:51 +00002114% %
2115% %
2116% %
2117%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2118%
anthonybfb635a2010-06-04 00:18:04 +00002119% ExpandMirrorKernelInfo() takes a single kernel, and expands it into a
2120% sequence of 90-degree rotated kernels but providing a reflected 180
2121% rotatation, before the -/+ 90-degree rotations.
2122%
2123% This special rotation order produces a better, more symetrical thinning of
2124% objects.
2125%
2126% The format of the ExpandMirrorKernelInfo method is:
2127%
2128% void ExpandMirrorKernelInfo(KernelInfo *kernel)
2129%
2130% A description of each parameter follows:
2131%
2132% o kernel: the Morphology/Convolution kernel
2133%
2134% This function is only internel to this module, as it is not finalized,
2135% especially with regard to non-orthogonal angles, and rotation of larger
2136% 2D kernels.
2137*/
2138
2139#if 0
2140static void FlopKernelInfo(KernelInfo *kernel)
2141 { /* Do a Flop by reversing each row. */
2142 size_t
2143 y;
2144 register ssize_t
2145 x,r;
2146 register double
2147 *k,t;
2148
2149 for ( y=0, k=kernel->values; y < kernel->height; y++, k+=kernel->width)
2150 for ( x=0, r=kernel->width-1; x<kernel->width/2; x++, r--)
2151 t=k[x], k[x]=k[r], k[r]=t;
2152
2153 kernel->x = kernel->width - kernel->x - 1;
2154 angle = fmod(angle+180.0, 360.0);
2155 }
2156#endif
2157
2158static void ExpandMirrorKernelInfo(KernelInfo *kernel)
2159{
2160 KernelInfo
2161 *clone,
2162 *last;
2163
2164 last = kernel;
2165
2166 clone = CloneKernelInfo(last);
2167 RotateKernelInfo(clone, 180); /* flip */
2168 LastKernelInfo(last)->next = clone;
2169 last = clone;
2170
2171 clone = CloneKernelInfo(last);
2172 RotateKernelInfo(clone, 90); /* transpose */
2173 LastKernelInfo(last)->next = clone;
2174 last = clone;
2175
2176 clone = CloneKernelInfo(last);
2177 RotateKernelInfo(clone, 180); /* flop */
2178 LastKernelInfo(last)->next = clone;
2179
2180 return;
2181}
2182
2183/*
2184%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2185% %
2186% %
2187% %
2188% E x p a n d R o t a t e K e r n e l I n f o %
2189% %
2190% %
2191% %
2192%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2193%
2194% ExpandRotateKernelInfo() takes a kernel list, and expands it by rotating
2195% incrementally by the angle given, until the first kernel repeats.
anthony3c10fc82010-05-13 02:40:51 +00002196%
2197% WARNING: 45 degree rotations only works for 3x3 kernels.
2198% While 90 degree roatations only works for linear and square kernels
2199%
anthonybfb635a2010-06-04 00:18:04 +00002200% The format of the ExpandRotateKernelInfo method is:
anthony3c10fc82010-05-13 02:40:51 +00002201%
anthonybfb635a2010-06-04 00:18:04 +00002202% void ExpandRotateKernelInfo(KernelInfo *kernel, double angle)
anthony3c10fc82010-05-13 02:40:51 +00002203%
2204% A description of each parameter follows:
2205%
2206% o kernel: the Morphology/Convolution kernel
2207%
2208% o angle: angle to rotate in degrees
2209%
2210% This function is only internel to this module, as it is not finalized,
2211% especially with regard to non-orthogonal angles, and rotation of larger
2212% 2D kernels.
2213*/
anthony47f5d062010-05-23 07:47:50 +00002214
2215/* Internal Routine - Return true if two kernels are the same */
2216static MagickBooleanType SameKernelInfo(const KernelInfo *kernel1,
2217 const KernelInfo *kernel2)
2218{
cristybb503372010-05-27 20:51:26 +00002219 register size_t
anthony47f5d062010-05-23 07:47:50 +00002220 i;
anthony1d45eb92010-05-25 11:13:23 +00002221
2222 /* check size and origin location */
2223 if ( kernel1->width != kernel2->width
2224 || kernel1->height != kernel2->height
2225 || kernel1->x != kernel2->x
2226 || kernel1->y != kernel2->y )
anthony47f5d062010-05-23 07:47:50 +00002227 return MagickFalse;
anthony1d45eb92010-05-25 11:13:23 +00002228
2229 /* check actual kernel values */
anthony47f5d062010-05-23 07:47:50 +00002230 for (i=0; i < (kernel1->width*kernel1->height); i++) {
anthony1d45eb92010-05-25 11:13:23 +00002231 /* Test for Nan equivelence */
anthony47f5d062010-05-23 07:47:50 +00002232 if ( IsNan(kernel1->values[i]) && !IsNan(kernel2->values[i]) )
2233 return MagickFalse;
2234 if ( IsNan(kernel2->values[i]) && !IsNan(kernel1->values[i]) )
2235 return MagickFalse;
anthony1d45eb92010-05-25 11:13:23 +00002236 /* Test actual values are equivelent */
anthony47f5d062010-05-23 07:47:50 +00002237 if ( fabs(kernel1->values[i] - kernel2->values[i]) > MagickEpsilon )
2238 return MagickFalse;
2239 }
anthony1d45eb92010-05-25 11:13:23 +00002240
anthony47f5d062010-05-23 07:47:50 +00002241 return MagickTrue;
2242}
2243
anthonybfb635a2010-06-04 00:18:04 +00002244static void ExpandRotateKernelInfo(KernelInfo *kernel, const double angle)
anthony3c10fc82010-05-13 02:40:51 +00002245{
2246 KernelInfo
cristy84d9b552010-05-24 18:23:54 +00002247 *clone,
anthony3c10fc82010-05-13 02:40:51 +00002248 *last;
cristya9a61ad2010-05-13 12:47:41 +00002249
anthony3c10fc82010-05-13 02:40:51 +00002250 last = kernel;
anthony47f5d062010-05-23 07:47:50 +00002251 while(1) {
cristy84d9b552010-05-24 18:23:54 +00002252 clone = CloneKernelInfo(last);
2253 RotateKernelInfo(clone, angle);
2254 if ( SameKernelInfo(kernel, clone) == MagickTrue )
anthony47f5d062010-05-23 07:47:50 +00002255 break;
anthonybfb635a2010-06-04 00:18:04 +00002256 LastKernelInfo(last)->next = clone;
cristy84d9b552010-05-24 18:23:54 +00002257 last = clone;
anthony3c10fc82010-05-13 02:40:51 +00002258 }
anthonybfb635a2010-06-04 00:18:04 +00002259 clone = DestroyKernelInfo(clone); /* kernel has repeated - junk the clone */
anthony47f5d062010-05-23 07:47:50 +00002260 return;
anthony3c10fc82010-05-13 02:40:51 +00002261}
2262
2263/*
2264%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2265% %
2266% %
2267% %
anthony46a369d2010-05-19 02:41:48 +00002268+ C a l c M e t a K e r n a l I n f o %
2269% %
2270% %
2271% %
2272%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2273%
2274% CalcKernelMetaData() recalculate the KernelInfo meta-data of this kernel only,
2275% using the kernel values. This should only ne used if it is not posible to
2276% calculate that meta-data in some easier way.
2277%
2278% It is important that the meta-data is correct before ScaleKernelInfo() is
2279% used to perform kernel normalization.
2280%
2281% The format of the CalcKernelMetaData method is:
2282%
2283% void CalcKernelMetaData(KernelInfo *kernel, const double scale )
2284%
2285% A description of each parameter follows:
2286%
2287% o kernel: the Morphology/Convolution kernel to modify
2288%
2289% WARNING: Minimum and Maximum values are assumed to include zero, even if
2290% zero is not part of the kernel (as in Gaussian Derived kernels). This
2291% however is not true for flat-shaped morphological kernels.
2292%
2293% WARNING: Only the specific kernel pointed to is modified, not a list of
2294% multiple kernels.
2295%
2296% This is an internal function and not expected to be useful outside this
2297% module. This could change however.
2298*/
2299static void CalcKernelMetaData(KernelInfo *kernel)
2300{
cristybb503372010-05-27 20:51:26 +00002301 register size_t
anthony46a369d2010-05-19 02:41:48 +00002302 i;
2303
2304 kernel->minimum = kernel->maximum = 0.0;
2305 kernel->negative_range = kernel->positive_range = 0.0;
2306 for (i=0; i < (kernel->width*kernel->height); i++)
2307 {
2308 if ( fabs(kernel->values[i]) < MagickEpsilon )
2309 kernel->values[i] = 0.0;
2310 ( kernel->values[i] < 0)
2311 ? ( kernel->negative_range += kernel->values[i] )
2312 : ( kernel->positive_range += kernel->values[i] );
2313 Minimize(kernel->minimum, kernel->values[i]);
2314 Maximize(kernel->maximum, kernel->values[i]);
2315 }
2316
2317 return;
2318}
2319
2320/*
2321%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2322% %
2323% %
2324% %
anthony9eb4f742010-05-18 02:45:54 +00002325% M o r p h o l o g y A p p l y %
anthony602ab9b2010-01-05 08:06:50 +00002326% %
2327% %
2328% %
2329%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
2330%
anthony9eb4f742010-05-18 02:45:54 +00002331% MorphologyApply() applies a morphological method, multiple times using
2332% a list of multiple kernels.
anthony602ab9b2010-01-05 08:06:50 +00002333%
anthony9eb4f742010-05-18 02:45:54 +00002334% It is basically equivelent to as MorphologyImageChannel() (see below) but
anthonye8d2f552010-06-05 10:43:25 +00002335% without any user controls. This allows internel programs to use this
2336% function, to actually perform a specific task without posible interference
2337% by any API user supplied settings.
2338%
2339% It is MorphologyImageChannel() task to extract any such user controls, and
2340% pass them to this function for processing.
anthony9eb4f742010-05-18 02:45:54 +00002341%
2342% More specifically kernels are not normalized/scaled/blended by the
anthonye8d2f552010-06-05 10:43:25 +00002343% 'convolve:scale' Image Artifact (setting), nor is the convolve bias
2344% (-bias setting or image->bias) loooked at, but must be supplied from the
2345% function arguments.
anthony602ab9b2010-01-05 08:06:50 +00002346%
anthony47f5d062010-05-23 07:47:50 +00002347% The format of the MorphologyApply method is:
anthony602ab9b2010-01-05 08:06:50 +00002348%
anthony9eb4f742010-05-18 02:45:54 +00002349% Image *MorphologyApply(const Image *image,MorphologyMethod method,
cristybb503372010-05-27 20:51:26 +00002350% const ssize_t iterations,const KernelInfo *kernel,
anthony47f5d062010-05-23 07:47:50 +00002351% const CompositeMethod compose, const double bias,
anthony9eb4f742010-05-18 02:45:54 +00002352% ExceptionInfo *exception)
anthony602ab9b2010-01-05 08:06:50 +00002353%
2354% A description of each parameter follows:
2355%
2356% o image: the image.
2357%
2358% o method: the morphology method to be applied.
2359%
2360% o iterations: apply the operation this many times (or no change).
2361% A value of -1 means loop until no change found.
2362% How this is applied may depend on the morphology method.
2363% Typically this is a value of 1.
2364%
2365% o channel: the channel type.
2366%
2367% o kernel: An array of double representing the morphology kernel.
anthony29188a82010-01-22 10:12:34 +00002368% Warning: kernel may be normalized for the Convolve method.
anthony602ab9b2010-01-05 08:06:50 +00002369%
anthony47f5d062010-05-23 07:47:50 +00002370% o compose: How to handle or merge multi-kernel results.
2371% If 'Undefined' use default of the Morphology method.
2372% If 'No' force image to be re-iterated by each kernel.
2373% Otherwise merge the results using the mathematical compose
2374% method given.
2375%
2376% o bias: Convolution Output Bias.
anthony9eb4f742010-05-18 02:45:54 +00002377%
anthony602ab9b2010-01-05 08:06:50 +00002378% o exception: return any errors or warnings in this structure.
2379%
anthony602ab9b2010-01-05 08:06:50 +00002380*/
2381
anthony930be612010-02-08 04:26:15 +00002382
anthony9eb4f742010-05-18 02:45:54 +00002383/* Apply a Morphology Primative to an image using the given kernel.
2384** Two pre-created images must be provided, no image is created.
2385** Returning the number of pixels that changed.
2386*/
cristybb503372010-05-27 20:51:26 +00002387static size_t MorphologyPrimitive(const Image *image, Image
anthony602ab9b2010-01-05 08:06:50 +00002388 *result_image, const MorphologyMethod method, const ChannelType channel,
anthony9eb4f742010-05-18 02:45:54 +00002389 const KernelInfo *kernel,const double bias,ExceptionInfo *exception)
anthony602ab9b2010-01-05 08:06:50 +00002390{
cristy2be15382010-01-21 02:38:03 +00002391#define MorphologyTag "Morphology/Image"
anthony602ab9b2010-01-05 08:06:50 +00002392
cristy5f959472010-05-27 22:19:46 +00002393 CacheView
2394 *p_view,
2395 *q_view;
2396
cristybb503372010-05-27 20:51:26 +00002397 ssize_t
anthony29188a82010-01-22 10:12:34 +00002398 y, offx, offy,
anthony602ab9b2010-01-05 08:06:50 +00002399 changed;
2400
2401 MagickBooleanType
2402 status;
2403
cristy5f959472010-05-27 22:19:46 +00002404 MagickOffsetType
2405 progress;
anthony602ab9b2010-01-05 08:06:50 +00002406
anthonye4d89962010-05-29 10:53:11 +00002407 assert(image != (Image *) NULL);
2408 assert(image->signature == MagickSignature);
2409 assert(result_image != (Image *) NULL);
2410 assert(result_image->signature == MagickSignature);
2411 assert(kernel != (KernelInfo *) NULL);
2412 assert(kernel->signature == MagickSignature);
2413 assert(exception != (ExceptionInfo *) NULL);
2414 assert(exception->signature == MagickSignature);
2415
anthony602ab9b2010-01-05 08:06:50 +00002416 status=MagickTrue;
2417 changed=0;
2418 progress=0;
2419
anthony602ab9b2010-01-05 08:06:50 +00002420 p_view=AcquireCacheView(image);
2421 q_view=AcquireCacheView(result_image);
anthony29188a82010-01-22 10:12:34 +00002422
anthonycc6c8362010-01-25 04:14:01 +00002423 /* Some methods (including convolve) needs use a reflected kernel.
anthony9eb4f742010-05-18 02:45:54 +00002424 * Adjust 'origin' offsets to loop though kernel as a reflection.
anthony29188a82010-01-22 10:12:34 +00002425 */
cristyc99304f2010-02-01 15:26:27 +00002426 offx = kernel->x;
2427 offy = kernel->y;
anthony29188a82010-01-22 10:12:34 +00002428 switch(method) {
anthony930be612010-02-08 04:26:15 +00002429 case ConvolveMorphology:
2430 case DilateMorphology:
2431 case DilateIntensityMorphology:
2432 case DistanceMorphology:
anthony5ef8e942010-05-11 06:51:12 +00002433 /* kernel needs to used with reflection about origin */
cristybb503372010-05-27 20:51:26 +00002434 offx = (ssize_t) kernel->width-offx-1;
2435 offy = (ssize_t) kernel->height-offy-1;
anthony29188a82010-01-22 10:12:34 +00002436 break;
anthony5ef8e942010-05-11 06:51:12 +00002437 case ErodeMorphology:
2438 case ErodeIntensityMorphology:
2439 case HitAndMissMorphology:
2440 case ThinningMorphology:
2441 case ThickenMorphology:
2442 /* kernel is user as is, without reflection */
2443 break;
anthony930be612010-02-08 04:26:15 +00002444 default:
anthony9eb4f742010-05-18 02:45:54 +00002445 assert("Not a Primitive Morphology Method" != (char *) NULL);
anthony930be612010-02-08 04:26:15 +00002446 break;
anthony29188a82010-01-22 10:12:34 +00002447 }
2448
anthony602ab9b2010-01-05 08:06:50 +00002449#if defined(MAGICKCORE_OPENMP_SUPPORT)
2450 #pragma omp parallel for schedule(dynamic,4) shared(progress,status)
2451#endif
cristybb503372010-05-27 20:51:26 +00002452 for (y=0; y < (ssize_t) image->rows; y++)
anthony602ab9b2010-01-05 08:06:50 +00002453 {
2454 MagickBooleanType
2455 sync;
2456
2457 register const PixelPacket
2458 *restrict p;
2459
2460 register const IndexPacket
2461 *restrict p_indexes;
2462
2463 register PixelPacket
2464 *restrict q;
2465
2466 register IndexPacket
2467 *restrict q_indexes;
2468
cristybb503372010-05-27 20:51:26 +00002469 register ssize_t
anthony602ab9b2010-01-05 08:06:50 +00002470 x;
2471
cristybb503372010-05-27 20:51:26 +00002472 size_t
anthony602ab9b2010-01-05 08:06:50 +00002473 r;
2474
2475 if (status == MagickFalse)
2476 continue;
anthony29188a82010-01-22 10:12:34 +00002477 p=GetCacheViewVirtualPixels(p_view, -offx, y-offy,
2478 image->columns+kernel->width, kernel->height, exception);
anthony602ab9b2010-01-05 08:06:50 +00002479 q=GetCacheViewAuthenticPixels(q_view,0,y,result_image->columns,1,
2480 exception);
2481 if ((p == (const PixelPacket *) NULL) || (q == (PixelPacket *) NULL))
2482 {
2483 status=MagickFalse;
2484 continue;
2485 }
2486 p_indexes=GetCacheViewVirtualIndexQueue(p_view);
2487 q_indexes=GetCacheViewAuthenticIndexQueue(q_view);
anthony29188a82010-01-22 10:12:34 +00002488 r = (image->columns+kernel->width)*offy+offx; /* constant */
2489
cristybb503372010-05-27 20:51:26 +00002490 for (x=0; x < (ssize_t) image->columns; x++)
anthony602ab9b2010-01-05 08:06:50 +00002491 {
cristybb503372010-05-27 20:51:26 +00002492 ssize_t
anthony602ab9b2010-01-05 08:06:50 +00002493 v;
2494
cristybb503372010-05-27 20:51:26 +00002495 register ssize_t
anthony602ab9b2010-01-05 08:06:50 +00002496 u;
2497
2498 register const double
2499 *restrict k;
2500
2501 register const PixelPacket
2502 *restrict k_pixels;
2503
2504 register const IndexPacket
2505 *restrict k_indexes;
2506
2507 MagickPixelPacket
anthony5ef8e942010-05-11 06:51:12 +00002508 result,
2509 min,
2510 max;
anthony602ab9b2010-01-05 08:06:50 +00002511
anthony29188a82010-01-22 10:12:34 +00002512 /* Copy input to ouput image for unused channels
anthony83ba99b2010-01-24 08:48:15 +00002513 * This removes need for 'cloning' a new image every iteration
anthony29188a82010-01-22 10:12:34 +00002514 */
anthony602ab9b2010-01-05 08:06:50 +00002515 *q = p[r];
2516 if (image->colorspace == CMYKColorspace)
2517 q_indexes[x] = p_indexes[r];
2518
anthony5ef8e942010-05-11 06:51:12 +00002519 /* Defaults */
2520 min.red =
2521 min.green =
2522 min.blue =
2523 min.opacity =
2524 min.index = (MagickRealType) QuantumRange;
2525 max.red =
2526 max.green =
2527 max.blue =
2528 max.opacity =
2529 max.index = (MagickRealType) 0;
anthony9eb4f742010-05-18 02:45:54 +00002530 /* default result is the original pixel value */
anthony5ef8e942010-05-11 06:51:12 +00002531 result.red = (MagickRealType) p[r].red;
2532 result.green = (MagickRealType) p[r].green;
2533 result.blue = (MagickRealType) p[r].blue;
2534 result.opacity = QuantumRange - (MagickRealType) p[r].opacity;
cristye96405a2010-05-19 02:24:31 +00002535 result.index = 0.0;
anthony5ef8e942010-05-11 06:51:12 +00002536 if ( image->colorspace == CMYKColorspace)
2537 result.index = (MagickRealType) p_indexes[r];
2538
anthony602ab9b2010-01-05 08:06:50 +00002539 switch (method) {
2540 case ConvolveMorphology:
anthony9eb4f742010-05-18 02:45:54 +00002541 /* Set the user defined bias of the weighted average output */
2542 result.red =
2543 result.green =
2544 result.blue =
2545 result.opacity =
2546 result.index = bias;
anthony930be612010-02-08 04:26:15 +00002547 break;
anthony4fd27e22010-02-07 08:17:18 +00002548 case DilateIntensityMorphology:
2549 case ErodeIntensityMorphology:
anthony9eb4f742010-05-18 02:45:54 +00002550 /* use a boolean flag indicating when first match found */
2551 result.red = 0.0; /* result is not used otherwise */
anthony4fd27e22010-02-07 08:17:18 +00002552 break;
anthony602ab9b2010-01-05 08:06:50 +00002553 default:
anthony602ab9b2010-01-05 08:06:50 +00002554 break;
2555 }
2556
2557 switch ( method ) {
2558 case ConvolveMorphology:
anthony930be612010-02-08 04:26:15 +00002559 /* Weighted Average of pixels using reflected kernel
2560 **
2561 ** NOTE for correct working of this operation for asymetrical
2562 ** kernels, the kernel needs to be applied in its reflected form.
2563 ** That is its values needs to be reversed.
2564 **
2565 ** Correlation is actually the same as this but without reflecting
2566 ** the kernel, and thus 'lower-level' that Convolution. However
2567 ** as Convolution is the more common method used, and it does not
2568 ** really cost us much in terms of processing to use a reflected
anthony5ef8e942010-05-11 06:51:12 +00002569 ** kernel, so it is Convolution that is implemented.
anthony930be612010-02-08 04:26:15 +00002570 **
2571 ** Correlation will have its kernel reflected before calling
2572 ** this function to do a Convolve.
2573 **
2574 ** For more details of Correlation vs Convolution see
2575 ** http://www.cs.umd.edu/~djacobs/CMSC426/Convolution.pdf
2576 */
anthony5ef8e942010-05-11 06:51:12 +00002577 if (((channel & SyncChannels) != 0 ) &&
2578 (image->matte == MagickTrue))
2579 { /* Channel has a 'Sync' Flag, and Alpha Channel enabled.
2580 ** Weight the color channels with Alpha Channel so that
2581 ** transparent pixels are not part of the results.
2582 */
anthony602ab9b2010-01-05 08:06:50 +00002583 MagickRealType
anthony5ef8e942010-05-11 06:51:12 +00002584 alpha, /* color channel weighting : kernel*alpha */
2585 gamma; /* divisor, sum of weighting values */
anthony602ab9b2010-01-05 08:06:50 +00002586
2587 gamma=0.0;
anthony29188a82010-01-22 10:12:34 +00002588 k = &kernel->values[ kernel->width*kernel->height-1 ];
anthony602ab9b2010-01-05 08:06:50 +00002589 k_pixels = p;
2590 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002591 for (v=0; v < (ssize_t) kernel->height; v++) {
2592 for (u=0; u < (ssize_t) kernel->width; u++, k--) {
anthony602ab9b2010-01-05 08:06:50 +00002593 if ( IsNan(*k) ) continue;
2594 alpha=(*k)*(QuantumScale*(QuantumRange-
2595 k_pixels[u].opacity));
2596 gamma += alpha;
2597 result.red += alpha*k_pixels[u].red;
2598 result.green += alpha*k_pixels[u].green;
2599 result.blue += alpha*k_pixels[u].blue;
anthony83ba99b2010-01-24 08:48:15 +00002600 result.opacity += (*k)*(QuantumRange-k_pixels[u].opacity);
anthony602ab9b2010-01-05 08:06:50 +00002601 if ( image->colorspace == CMYKColorspace)
2602 result.index += alpha*k_indexes[u];
2603 }
2604 k_pixels += image->columns+kernel->width;
2605 k_indexes += image->columns+kernel->width;
2606 }
2607 gamma=1.0/(fabs((double) gamma) <= MagickEpsilon ? 1.0 : gamma);
anthony83ba99b2010-01-24 08:48:15 +00002608 result.red *= gamma;
2609 result.green *= gamma;
2610 result.blue *= gamma;
2611 result.opacity *= gamma;
2612 result.index *= gamma;
anthony602ab9b2010-01-05 08:06:50 +00002613 }
anthony5ef8e942010-05-11 06:51:12 +00002614 else
2615 {
2616 /* No 'Sync' flag, or no Alpha involved.
2617 ** Convolution is simple individual channel weigthed sum.
2618 */
2619 k = &kernel->values[ kernel->width*kernel->height-1 ];
2620 k_pixels = p;
2621 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002622 for (v=0; v < (ssize_t) kernel->height; v++) {
2623 for (u=0; u < (ssize_t) kernel->width; u++, k--) {
anthony5ef8e942010-05-11 06:51:12 +00002624 if ( IsNan(*k) ) continue;
2625 result.red += (*k)*k_pixels[u].red;
2626 result.green += (*k)*k_pixels[u].green;
2627 result.blue += (*k)*k_pixels[u].blue;
2628 result.opacity += (*k)*(QuantumRange-k_pixels[u].opacity);
2629 if ( image->colorspace == CMYKColorspace)
2630 result.index += (*k)*k_indexes[u];
2631 }
2632 k_pixels += image->columns+kernel->width;
2633 k_indexes += image->columns+kernel->width;
2634 }
2635 }
anthony602ab9b2010-01-05 08:06:50 +00002636 break;
2637
anthony4fd27e22010-02-07 08:17:18 +00002638 case ErodeMorphology:
anthony5ef8e942010-05-11 06:51:12 +00002639 /* Minimum Value within kernel neighbourhood
anthony930be612010-02-08 04:26:15 +00002640 **
2641 ** NOTE that the kernel is not reflected for this operation!
2642 **
2643 ** NOTE: in normal Greyscale Morphology, the kernel value should
2644 ** be added to the real value, this is currently not done, due to
2645 ** the nature of the boolean kernels being used.
2646 */
anthony4fd27e22010-02-07 08:17:18 +00002647 k = kernel->values;
2648 k_pixels = p;
2649 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002650 for (v=0; v < (ssize_t) kernel->height; v++) {
2651 for (u=0; u < (ssize_t) kernel->width; u++, k++) {
anthony4fd27e22010-02-07 08:17:18 +00002652 if ( IsNan(*k) || (*k) < 0.5 ) continue;
anthony5ef8e942010-05-11 06:51:12 +00002653 Minimize(min.red, (double) k_pixels[u].red);
2654 Minimize(min.green, (double) k_pixels[u].green);
2655 Minimize(min.blue, (double) k_pixels[u].blue);
2656 Minimize(min.opacity,
anthonyd37a5cb2010-05-07 06:37:03 +00002657 QuantumRange-(double) k_pixels[u].opacity);
anthony4fd27e22010-02-07 08:17:18 +00002658 if ( image->colorspace == CMYKColorspace)
anthony5ef8e942010-05-11 06:51:12 +00002659 Minimize(min.index, (double) k_indexes[u]);
anthony4fd27e22010-02-07 08:17:18 +00002660 }
2661 k_pixels += image->columns+kernel->width;
2662 k_indexes += image->columns+kernel->width;
2663 }
2664 break;
2665
anthony5ef8e942010-05-11 06:51:12 +00002666
anthony83ba99b2010-01-24 08:48:15 +00002667 case DilateMorphology:
anthony5ef8e942010-05-11 06:51:12 +00002668 /* Maximum Value within kernel neighbourhood
anthony930be612010-02-08 04:26:15 +00002669 **
2670 ** NOTE for correct working of this operation for asymetrical
2671 ** kernels, the kernel needs to be applied in its reflected form.
2672 ** That is its values needs to be reversed.
2673 **
2674 ** NOTE: in normal Greyscale Morphology, the kernel value should
2675 ** be added to the real value, this is currently not done, due to
2676 ** the nature of the boolean kernels being used.
2677 **
2678 */
anthony29188a82010-01-22 10:12:34 +00002679 k = &kernel->values[ kernel->width*kernel->height-1 ];
anthony602ab9b2010-01-05 08:06:50 +00002680 k_pixels = p;
2681 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002682 for (v=0; v < (ssize_t) kernel->height; v++) {
2683 for (u=0; u < (ssize_t) kernel->width; u++, k--) {
anthony602ab9b2010-01-05 08:06:50 +00002684 if ( IsNan(*k) || (*k) < 0.5 ) continue;
anthony5ef8e942010-05-11 06:51:12 +00002685 Maximize(max.red, (double) k_pixels[u].red);
2686 Maximize(max.green, (double) k_pixels[u].green);
2687 Maximize(max.blue, (double) k_pixels[u].blue);
2688 Maximize(max.opacity,
anthonyd37a5cb2010-05-07 06:37:03 +00002689 QuantumRange-(double) k_pixels[u].opacity);
anthony602ab9b2010-01-05 08:06:50 +00002690 if ( image->colorspace == CMYKColorspace)
anthony5ef8e942010-05-11 06:51:12 +00002691 Maximize(max.index, (double) k_indexes[u]);
anthony602ab9b2010-01-05 08:06:50 +00002692 }
2693 k_pixels += image->columns+kernel->width;
2694 k_indexes += image->columns+kernel->width;
2695 }
anthony602ab9b2010-01-05 08:06:50 +00002696 break;
2697
anthony5ef8e942010-05-11 06:51:12 +00002698 case HitAndMissMorphology:
2699 case ThinningMorphology:
2700 case ThickenMorphology:
2701 /* Minimum of Foreground Pixel minus Maxumum of Background Pixels
2702 **
2703 ** NOTE that the kernel is not reflected for this operation,
2704 ** and consists of both foreground and background pixel
2705 ** neighbourhoods, 0.0 for background, and 1.0 for foreground
2706 ** with either Nan or 0.5 values for don't care.
2707 **
anthony4c827ef2010-06-05 23:56:10 +00002708 ** Note that this will never produce a meaningless negative
2709 ** result. Such results can cause Thinning/Thicken to not work
2710 ** correctly when used against a greyscale image.
anthony5ef8e942010-05-11 06:51:12 +00002711 */
2712 k = kernel->values;
2713 k_pixels = p;
2714 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002715 for (v=0; v < (ssize_t) kernel->height; v++) {
2716 for (u=0; u < (ssize_t) kernel->width; u++, k++) {
anthony5ef8e942010-05-11 06:51:12 +00002717 if ( IsNan(*k) ) continue;
2718 if ( (*k) > 0.7 )
2719 { /* minimim of foreground pixels */
2720 Minimize(min.red, (double) k_pixels[u].red);
2721 Minimize(min.green, (double) k_pixels[u].green);
2722 Minimize(min.blue, (double) k_pixels[u].blue);
2723 Minimize(min.opacity,
2724 QuantumRange-(double) k_pixels[u].opacity);
2725 if ( image->colorspace == CMYKColorspace)
2726 Minimize(min.index, (double) k_indexes[u]);
2727 }
2728 else if ( (*k) < 0.3 )
2729 { /* maximum of background pixels */
2730 Maximize(max.red, (double) k_pixels[u].red);
2731 Maximize(max.green, (double) k_pixels[u].green);
2732 Maximize(max.blue, (double) k_pixels[u].blue);
2733 Maximize(max.opacity,
2734 QuantumRange-(double) k_pixels[u].opacity);
2735 if ( image->colorspace == CMYKColorspace)
2736 Maximize(max.index, (double) k_indexes[u]);
2737 }
2738 }
2739 k_pixels += image->columns+kernel->width;
2740 k_indexes += image->columns+kernel->width;
2741 }
anthony4c827ef2010-06-05 23:56:10 +00002742 /* Pattern Match if difference is positive */
anthony5ef8e942010-05-11 06:51:12 +00002743 min.red -= max.red; Maximize( min.red, 0.0 );
2744 min.green -= max.green; Maximize( min.green, 0.0 );
2745 min.blue -= max.blue; Maximize( min.blue, 0.0 );
2746 min.opacity -= max.opacity; Maximize( min.opacity, 0.0 );
2747 min.index -= max.index; Maximize( min.index, 0.0 );
2748 break;
2749
anthony4fd27e22010-02-07 08:17:18 +00002750 case ErodeIntensityMorphology:
anthony930be612010-02-08 04:26:15 +00002751 /* Select Pixel with Minimum Intensity within kernel neighbourhood
2752 **
2753 ** WARNING: the intensity test fails for CMYK and does not
2754 ** take into account the moderating effect of teh alpha channel
2755 ** on the intensity.
2756 **
2757 ** NOTE that the kernel is not reflected for this operation!
2758 */
anthony602ab9b2010-01-05 08:06:50 +00002759 k = kernel->values;
2760 k_pixels = p;
2761 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002762 for (v=0; v < (ssize_t) kernel->height; v++) {
2763 for (u=0; u < (ssize_t) kernel->width; u++, k++) {
anthony602ab9b2010-01-05 08:06:50 +00002764 if ( IsNan(*k) || (*k) < 0.5 ) continue;
anthony4fd27e22010-02-07 08:17:18 +00002765 if ( result.red == 0.0 ||
2766 PixelIntensity(&(k_pixels[u])) < PixelIntensity(q) ) {
2767 /* copy the whole pixel - no channel selection */
2768 *q = k_pixels[u];
2769 if ( result.red > 0.0 ) changed++;
2770 result.red = 1.0;
2771 }
anthony602ab9b2010-01-05 08:06:50 +00002772 }
2773 k_pixels += image->columns+kernel->width;
2774 k_indexes += image->columns+kernel->width;
2775 }
anthony602ab9b2010-01-05 08:06:50 +00002776 break;
2777
anthony83ba99b2010-01-24 08:48:15 +00002778 case DilateIntensityMorphology:
anthony930be612010-02-08 04:26:15 +00002779 /* Select Pixel with Maximum Intensity within kernel neighbourhood
2780 **
2781 ** WARNING: the intensity test fails for CMYK and does not
anthony9eb4f742010-05-18 02:45:54 +00002782 ** take into account the moderating effect of the alpha channel
2783 ** on the intensity (yet).
anthony930be612010-02-08 04:26:15 +00002784 **
2785 ** NOTE for correct working of this operation for asymetrical
2786 ** kernels, the kernel needs to be applied in its reflected form.
2787 ** That is its values needs to be reversed.
2788 */
anthony29188a82010-01-22 10:12:34 +00002789 k = &kernel->values[ kernel->width*kernel->height-1 ];
anthony602ab9b2010-01-05 08:06:50 +00002790 k_pixels = p;
2791 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002792 for (v=0; v < (ssize_t) kernel->height; v++) {
2793 for (u=0; u < (ssize_t) kernel->width; u++, k--) {
anthony29188a82010-01-22 10:12:34 +00002794 if ( IsNan(*k) || (*k) < 0.5 ) continue; /* boolean kernel */
2795 if ( result.red == 0.0 ||
2796 PixelIntensity(&(k_pixels[u])) > PixelIntensity(q) ) {
2797 /* copy the whole pixel - no channel selection */
2798 *q = k_pixels[u];
2799 if ( result.red > 0.0 ) changed++;
2800 result.red = 1.0;
2801 }
anthony602ab9b2010-01-05 08:06:50 +00002802 }
2803 k_pixels += image->columns+kernel->width;
2804 k_indexes += image->columns+kernel->width;
2805 }
anthony602ab9b2010-01-05 08:06:50 +00002806 break;
2807
anthony5ef8e942010-05-11 06:51:12 +00002808
anthony602ab9b2010-01-05 08:06:50 +00002809 case DistanceMorphology:
anthony930be612010-02-08 04:26:15 +00002810 /* Add kernel Value and select the minimum value found.
2811 ** The result is a iterative distance from edge of image shape.
2812 **
2813 ** All Distance Kernels are symetrical, but that may not always
2814 ** be the case. For example how about a distance from left edges?
2815 ** To work correctly with asymetrical kernels the reflected kernel
2816 ** needs to be applied.
anthony5ef8e942010-05-11 06:51:12 +00002817 **
2818 ** Actually this is really a GreyErode with a negative kernel!
2819 **
anthony930be612010-02-08 04:26:15 +00002820 */
anthony29188a82010-01-22 10:12:34 +00002821 k = &kernel->values[ kernel->width*kernel->height-1 ];
anthony602ab9b2010-01-05 08:06:50 +00002822 k_pixels = p;
2823 k_indexes = p_indexes;
cristybb503372010-05-27 20:51:26 +00002824 for (v=0; v < (ssize_t) kernel->height; v++) {
2825 for (u=0; u < (ssize_t) kernel->width; u++, k--) {
anthony602ab9b2010-01-05 08:06:50 +00002826 if ( IsNan(*k) ) continue;
2827 Minimize(result.red, (*k)+k_pixels[u].red);
2828 Minimize(result.green, (*k)+k_pixels[u].green);
2829 Minimize(result.blue, (*k)+k_pixels[u].blue);
2830 Minimize(result.opacity, (*k)+QuantumRange-k_pixels[u].opacity);
2831 if ( image->colorspace == CMYKColorspace)
2832 Minimize(result.index, (*k)+k_indexes[u]);
2833 }
2834 k_pixels += image->columns+kernel->width;
2835 k_indexes += image->columns+kernel->width;
2836 }
anthony602ab9b2010-01-05 08:06:50 +00002837 break;
2838
2839 case UndefinedMorphology:
2840 default:
2841 break; /* Do nothing */
anthony83ba99b2010-01-24 08:48:15 +00002842 }
anthony5ef8e942010-05-11 06:51:12 +00002843 /* Final mathematics of results (combine with original image?)
2844 **
2845 ** NOTE: Difference Morphology operators Edge* and *Hat could also
2846 ** be done here but works better with iteration as a image difference
2847 ** in the controling function (below). Thicken and Thinning however
2848 ** should be done here so thay can be iterated correctly.
2849 */
2850 switch ( method ) {
2851 case HitAndMissMorphology:
2852 case ErodeMorphology:
2853 result = min; /* minimum of neighbourhood */
2854 break;
2855 case DilateMorphology:
2856 result = max; /* maximum of neighbourhood */
2857 break;
2858 case ThinningMorphology:
2859 /* subtract pattern match from original */
2860 result.red -= min.red;
2861 result.green -= min.green;
2862 result.blue -= min.blue;
2863 result.opacity -= min.opacity;
2864 result.index -= min.index;
2865 break;
2866 case ThickenMorphology:
anthony4c827ef2010-06-05 23:56:10 +00002867 /* Add the pattern matchs to the original */
2868 result.red += min.red;
2869 result.green += min.green;
2870 result.blue += min.blue;
2871 result.opacity += min.opacity;
2872 result.index += min.index;
anthony5ef8e942010-05-11 06:51:12 +00002873 break;
2874 default:
2875 /* result directly calculated or assigned */
2876 break;
2877 }
2878 /* Assign the resulting pixel values - Clamping Result */
anthony83ba99b2010-01-24 08:48:15 +00002879 switch ( method ) {
2880 case UndefinedMorphology:
2881 case DilateIntensityMorphology:
2882 case ErodeIntensityMorphology:
anthony930be612010-02-08 04:26:15 +00002883 break; /* full pixel was directly assigned - not a channel method */
anthony83ba99b2010-01-24 08:48:15 +00002884 default:
anthony83ba99b2010-01-24 08:48:15 +00002885 if ((channel & RedChannel) != 0)
2886 q->red = ClampToQuantum(result.red);
2887 if ((channel & GreenChannel) != 0)
2888 q->green = ClampToQuantum(result.green);
2889 if ((channel & BlueChannel) != 0)
2890 q->blue = ClampToQuantum(result.blue);
2891 if ((channel & OpacityChannel) != 0
2892 && image->matte == MagickTrue )
2893 q->opacity = ClampToQuantum(QuantumRange-result.opacity);
2894 if ((channel & IndexChannel) != 0
2895 && image->colorspace == CMYKColorspace)
2896 q_indexes[x] = ClampToQuantum(result.index);
2897 break;
2898 }
anthony5ef8e942010-05-11 06:51:12 +00002899 /* Count up changed pixels */
anthony83ba99b2010-01-24 08:48:15 +00002900 if ( ( p[r].red != q->red )
2901 || ( p[r].green != q->green )
2902 || ( p[r].blue != q->blue )
2903 || ( p[r].opacity != q->opacity )
2904 || ( image->colorspace == CMYKColorspace &&
2905 p_indexes[r] != q_indexes[x] ) )
2906 changed++; /* The pixel had some value changed! */
anthony602ab9b2010-01-05 08:06:50 +00002907 p++;
2908 q++;
anthony83ba99b2010-01-24 08:48:15 +00002909 } /* x */
anthony602ab9b2010-01-05 08:06:50 +00002910 sync=SyncCacheViewAuthenticPixels(q_view,exception);
2911 if (sync == MagickFalse)
2912 status=MagickFalse;
2913 if (image->progress_monitor != (MagickProgressMonitor) NULL)
2914 {
2915 MagickBooleanType
2916 proceed;
2917
2918#if defined(MAGICKCORE_OPENMP_SUPPORT)
2919 #pragma omp critical (MagickCore_MorphologyImage)
2920#endif
2921 proceed=SetImageProgress(image,MorphologyTag,progress++,image->rows);
2922 if (proceed == MagickFalse)
2923 status=MagickFalse;
2924 }
anthony83ba99b2010-01-24 08:48:15 +00002925 } /* y */
anthony602ab9b2010-01-05 08:06:50 +00002926 result_image->type=image->type;
2927 q_view=DestroyCacheView(q_view);
2928 p_view=DestroyCacheView(p_view);
cristybb503372010-05-27 20:51:26 +00002929 return(status ? (size_t) changed : 0);
anthony602ab9b2010-01-05 08:06:50 +00002930}
2931
anthony4fd27e22010-02-07 08:17:18 +00002932
anthony9eb4f742010-05-18 02:45:54 +00002933MagickExport Image *MorphologyApply(const Image *image, const ChannelType
cristybb503372010-05-27 20:51:26 +00002934 channel,const MorphologyMethod method, const ssize_t iterations,
anthony47f5d062010-05-23 07:47:50 +00002935 const KernelInfo *kernel, const CompositeOperator compose,
2936 const double bias, ExceptionInfo *exception)
cristy2be15382010-01-21 02:38:03 +00002937{
2938 Image
anthony47f5d062010-05-23 07:47:50 +00002939 *curr_image, /* Image we are working with or iterating */
2940 *work_image, /* secondary image for primative iteration */
2941 *save_image, /* saved image - for 'edge' method only */
2942 *rslt_image; /* resultant image - after multi-kernel handling */
anthony602ab9b2010-01-05 08:06:50 +00002943
anthony4fd27e22010-02-07 08:17:18 +00002944 KernelInfo
anthony47f5d062010-05-23 07:47:50 +00002945 *reflected_kernel, /* A reflected copy of the kernel (if needed) */
2946 *norm_kernel, /* the current normal un-reflected kernel */
2947 *rflt_kernel, /* the current reflected kernel (if needed) */
2948 *this_kernel; /* the kernel being applied */
anthony4fd27e22010-02-07 08:17:18 +00002949
2950 MorphologyMethod
anthony47f5d062010-05-23 07:47:50 +00002951 primative; /* the current morphology primative being applied */
anthony9eb4f742010-05-18 02:45:54 +00002952
2953 CompositeOperator
anthony47f5d062010-05-23 07:47:50 +00002954 rslt_compose; /* multi-kernel compose method for results to use */
2955
2956 MagickBooleanType
2957 verbose; /* verbose output of results */
anthony4fd27e22010-02-07 08:17:18 +00002958
cristybb503372010-05-27 20:51:26 +00002959 size_t
anthony47f5d062010-05-23 07:47:50 +00002960 method_loop, /* Loop 1: number of compound method iterations */
2961 method_limit, /* maximum number of compound method iterations */
2962 kernel_number, /* Loop 2: the kernel number being applied */
2963 stage_loop, /* Loop 3: primative loop for compound morphology */
2964 stage_limit, /* how many primatives in this compound */
2965 kernel_loop, /* Loop 4: iterate the kernel (basic morphology) */
2966 kernel_limit, /* number of times to iterate kernel */
2967 count, /* total count of primative steps applied */
2968 changed, /* number pixels changed by last primative operation */
2969 kernel_changed, /* total count of changed using iterated kernel */
2970 method_changed; /* total count of changed over method iteration */
2971
2972 char
2973 v_info[80];
anthony1b2bc0a2010-05-12 05:25:22 +00002974
anthony602ab9b2010-01-05 08:06:50 +00002975 assert(image != (Image *) NULL);
2976 assert(image->signature == MagickSignature);
anthony4fd27e22010-02-07 08:17:18 +00002977 assert(kernel != (KernelInfo *) NULL);
2978 assert(kernel->signature == MagickSignature);
anthony602ab9b2010-01-05 08:06:50 +00002979 assert(exception != (ExceptionInfo *) NULL);
2980 assert(exception->signature == MagickSignature);
2981
anthonyc3e48252010-05-24 12:43:11 +00002982 count = 0; /* number of low-level morphology primatives performed */
anthony602ab9b2010-01-05 08:06:50 +00002983 if ( iterations == 0 )
anthony47f5d062010-05-23 07:47:50 +00002984 return((Image *)NULL); /* null operation - nothing to do! */
anthony602ab9b2010-01-05 08:06:50 +00002985
cristybb503372010-05-27 20:51:26 +00002986 kernel_limit = (size_t) iterations;
anthony47f5d062010-05-23 07:47:50 +00002987 if ( iterations < 0 ) /* negative interations = infinite (well alomst) */
2988 kernel_limit = image->columns > image->rows ? image->columns : image->rows;
anthony602ab9b2010-01-05 08:06:50 +00002989
cristye96405a2010-05-19 02:24:31 +00002990 verbose = ( GetImageArtifact(image,"verbose") != (const char *) NULL ) ?
2991 MagickTrue : MagickFalse;
anthony4f1dcb72010-05-14 08:43:10 +00002992
anthony9eb4f742010-05-18 02:45:54 +00002993 /* initialise for cleanup */
anthony47f5d062010-05-23 07:47:50 +00002994 curr_image = (Image *) image;
2995 work_image = save_image = rslt_image = (Image *) NULL;
2996 reflected_kernel = (KernelInfo *) NULL;
anthony4fd27e22010-02-07 08:17:18 +00002997
anthony47f5d062010-05-23 07:47:50 +00002998 /* Initialize specific methods
2999 * + which loop should use the given iteratations
3000 * + how many primatives make up the compound morphology
3001 * + multi-kernel compose method to use (by default)
3002 */
3003 method_limit = 1; /* just do method once, unless otherwise set */
3004 stage_limit = 1; /* assume method is not a compount */
3005 rslt_compose = compose; /* and we are composing multi-kernels as given */
anthony9eb4f742010-05-18 02:45:54 +00003006 switch( method ) {
anthony47f5d062010-05-23 07:47:50 +00003007 case SmoothMorphology: /* 4 primative compound morphology */
3008 stage_limit = 4;
anthony9eb4f742010-05-18 02:45:54 +00003009 break;
anthony47f5d062010-05-23 07:47:50 +00003010 case OpenMorphology: /* 2 primative compound morphology */
anthony9eb4f742010-05-18 02:45:54 +00003011 case OpenIntensityMorphology:
anthony47f5d062010-05-23 07:47:50 +00003012 case TopHatMorphology:
3013 case CloseMorphology:
anthony9eb4f742010-05-18 02:45:54 +00003014 case CloseIntensityMorphology:
anthony47f5d062010-05-23 07:47:50 +00003015 case BottomHatMorphology:
3016 case EdgeMorphology:
3017 stage_limit = 2;
anthony9eb4f742010-05-18 02:45:54 +00003018 break;
3019 case HitAndMissMorphology:
anthonyc3e48252010-05-24 12:43:11 +00003020 kernel_limit = 1; /* no method or kernel iteration */
anthony47f5d062010-05-23 07:47:50 +00003021 rslt_compose = LightenCompositeOp; /* Union of multi-kernel results */
anthony9eb4f742010-05-18 02:45:54 +00003022 break;
anthonyc3e48252010-05-24 12:43:11 +00003023 case ThinningMorphology:
anthony9eb4f742010-05-18 02:45:54 +00003024 case ThickenMorphology:
anthonyc3e48252010-05-24 12:43:11 +00003025 method_limit = kernel_limit; /* iterate method with each kernel */
3026 kernel_limit = 1; /* do not do kernel iteration */
anthonye4d89962010-05-29 10:53:11 +00003027 case DistanceMorphology:
anthonyc3e48252010-05-24 12:43:11 +00003028 rslt_compose = NoCompositeOp; /* Re-iterate with multiple kernels */
anthony47f5d062010-05-23 07:47:50 +00003029 break;
3030 default:
anthony930be612010-02-08 04:26:15 +00003031 break;
anthony602ab9b2010-01-05 08:06:50 +00003032 }
3033
anthonyc3e48252010-05-24 12:43:11 +00003034 /* Handle user (caller) specified multi-kernel composition method */
anthony47f5d062010-05-23 07:47:50 +00003035 if ( compose != UndefinedCompositeOp )
3036 rslt_compose = compose; /* override default composition for method */
3037 if ( rslt_compose == UndefinedCompositeOp )
3038 rslt_compose = NoCompositeOp; /* still not defined! Then re-iterate */
3039
anthonyc3e48252010-05-24 12:43:11 +00003040 /* Some methods require a reflected kernel to use with primatives.
3041 * Create the reflected kernel for those methods. */
anthony47f5d062010-05-23 07:47:50 +00003042 switch ( method ) {
3043 case CorrelateMorphology:
3044 case CloseMorphology:
3045 case CloseIntensityMorphology:
3046 case BottomHatMorphology:
3047 case SmoothMorphology:
3048 reflected_kernel = CloneKernelInfo(kernel);
3049 if (reflected_kernel == (KernelInfo *) NULL)
3050 goto error_cleanup;
3051 RotateKernelInfo(reflected_kernel,180);
3052 break;
3053 default:
3054 break;
anthony9eb4f742010-05-18 02:45:54 +00003055 }
anthony7a01dcf2010-05-11 12:25:52 +00003056
anthony47f5d062010-05-23 07:47:50 +00003057 /* Loop 1: iterate the compound method */
3058 method_loop = 0;
3059 method_changed = 1;
3060 while ( method_loop < method_limit && method_changed > 0 ) {
3061 method_loop++;
3062 method_changed = 0;
anthony9eb4f742010-05-18 02:45:54 +00003063
anthony47f5d062010-05-23 07:47:50 +00003064 /* Loop 2: iterate over each kernel in a multi-kernel list */
3065 norm_kernel = (KernelInfo *) kernel;
cristyf2faecf2010-05-28 19:19:36 +00003066 this_kernel = (KernelInfo *) kernel;
anthony47f5d062010-05-23 07:47:50 +00003067 rflt_kernel = reflected_kernel;
anthonye4d89962010-05-29 10:53:11 +00003068
anthony47f5d062010-05-23 07:47:50 +00003069 kernel_number = 0;
3070 while ( norm_kernel != NULL ) {
anthony9eb4f742010-05-18 02:45:54 +00003071
anthony47f5d062010-05-23 07:47:50 +00003072 /* Loop 3: Compound Morphology Staging - Select Primative to apply */
3073 stage_loop = 0; /* the compound morphology stage number */
3074 while ( stage_loop < stage_limit ) {
3075 stage_loop++; /* The stage of the compound morphology */
anthony9eb4f742010-05-18 02:45:54 +00003076
anthony47f5d062010-05-23 07:47:50 +00003077 /* Select primative morphology for this stage of compound method */
3078 this_kernel = norm_kernel; /* default use unreflected kernel */
anthonybd0f5562010-05-24 13:05:02 +00003079 primative = method; /* Assume method is a primative */
anthony47f5d062010-05-23 07:47:50 +00003080 switch( method ) {
3081 case ErodeMorphology: /* just erode */
3082 case EdgeInMorphology: /* erode and image difference */
3083 primative = ErodeMorphology;
3084 break;
3085 case DilateMorphology: /* just dilate */
3086 case EdgeOutMorphology: /* dilate and image difference */
3087 primative = DilateMorphology;
3088 break;
3089 case OpenMorphology: /* erode then dialate */
3090 case TopHatMorphology: /* open and image difference */
3091 primative = ErodeMorphology;
3092 if ( stage_loop == 2 )
3093 primative = DilateMorphology;
3094 break;
3095 case OpenIntensityMorphology:
3096 primative = ErodeIntensityMorphology;
3097 if ( stage_loop == 2 )
3098 primative = DilateIntensityMorphology;
anthonye4d89962010-05-29 10:53:11 +00003099 break;
anthony47f5d062010-05-23 07:47:50 +00003100 case CloseMorphology: /* dilate, then erode */
3101 case BottomHatMorphology: /* close and image difference */
3102 this_kernel = rflt_kernel; /* use the reflected kernel */
3103 primative = DilateMorphology;
3104 if ( stage_loop == 2 )
3105 primative = ErodeMorphology;
3106 break;
3107 case CloseIntensityMorphology:
3108 this_kernel = rflt_kernel; /* use the reflected kernel */
3109 primative = DilateIntensityMorphology;
3110 if ( stage_loop == 2 )
3111 primative = ErodeIntensityMorphology;
3112 break;
3113 case SmoothMorphology: /* open, close */
3114 switch ( stage_loop ) {
3115 case 1: /* start an open method, which starts with Erode */
3116 primative = ErodeMorphology;
3117 break;
3118 case 2: /* now Dilate the Erode */
3119 primative = DilateMorphology;
3120 break;
3121 case 3: /* Reflect kernel a close */
3122 this_kernel = rflt_kernel; /* use the reflected kernel */
3123 primative = DilateMorphology;
3124 break;
3125 case 4: /* Finish the Close */
3126 this_kernel = rflt_kernel; /* use the reflected kernel */
3127 primative = ErodeMorphology;
3128 break;
3129 }
3130 break;
3131 case EdgeMorphology: /* dilate and erode difference */
3132 primative = DilateMorphology;
3133 if ( stage_loop == 2 ) {
3134 save_image = curr_image; /* save the image difference */
3135 curr_image = (Image *) image;
3136 primative = ErodeMorphology;
3137 }
3138 break;
3139 case CorrelateMorphology:
3140 /* A Correlation is a Convolution with a reflected kernel.
3141 ** However a Convolution is a weighted sum using a reflected
3142 ** kernel. It may seem stange to convert a Correlation into a
3143 ** Convolution as the Correlation is the simplier method, but
3144 ** Convolution is much more commonly used, and it makes sense to
3145 ** implement it directly so as to avoid the need to duplicate the
3146 ** kernel when it is not required (which is typically the
3147 ** default).
3148 */
3149 this_kernel = rflt_kernel; /* use the reflected kernel */
3150 primative = ConvolveMorphology;
3151 break;
3152 default:
anthony47f5d062010-05-23 07:47:50 +00003153 break;
3154 }
anthonye4d89962010-05-29 10:53:11 +00003155 assert( this_kernel != (KernelInfo *) NULL );
anthony9eb4f742010-05-18 02:45:54 +00003156
anthony47f5d062010-05-23 07:47:50 +00003157 /* Extra information for debugging compound operations */
3158 if ( verbose == MagickTrue ) {
3159 if ( stage_limit > 1 )
cristye8c25f92010-06-03 00:53:06 +00003160 (void) FormatMagickString(v_info,MaxTextExtent,"%s:%.20g.%.20g -> ",
3161 MagickOptionToMnemonic(MagickMorphologyOptions,method),(double)
3162 method_loop,(double) stage_loop);
anthony47f5d062010-05-23 07:47:50 +00003163 else if ( primative != method )
cristye8c25f92010-06-03 00:53:06 +00003164 (void) FormatMagickString(v_info, MaxTextExtent, "%s:%.20g -> ",
3165 MagickOptionToMnemonic(MagickMorphologyOptions, method),(double)
3166 method_loop);
anthony47f5d062010-05-23 07:47:50 +00003167 else
3168 v_info[0] = '\0';
3169 }
3170
3171 /* Loop 4: Iterate the kernel with primative */
3172 kernel_loop = 0;
3173 kernel_changed = 0;
3174 changed = 1;
3175 while ( kernel_loop < kernel_limit && changed > 0 ) {
3176 kernel_loop++; /* the iteration of this kernel */
anthony9eb4f742010-05-18 02:45:54 +00003177
3178 /* Create a destination image, if not yet defined */
3179 if ( work_image == (Image *) NULL )
3180 {
3181 work_image=CloneImage(image,0,0,MagickTrue,exception);
3182 if (work_image == (Image *) NULL)
3183 goto error_cleanup;
3184 if (SetImageStorageClass(work_image,DirectClass) == MagickFalse)
3185 {
3186 InheritException(exception,&work_image->exception);
3187 goto error_cleanup;
3188 }
3189 }
3190
anthony501c2f92010-06-02 10:55:14 +00003191 /* APPLY THE MORPHOLOGICAL PRIMITIVE (curr -> work) */
anthony9eb4f742010-05-18 02:45:54 +00003192 count++;
anthony47f5d062010-05-23 07:47:50 +00003193 changed = MorphologyPrimitive(curr_image, work_image, primative,
anthony9eb4f742010-05-18 02:45:54 +00003194 channel, this_kernel, bias, exception);
anthony47f5d062010-05-23 07:47:50 +00003195 kernel_changed += changed;
3196 method_changed += changed;
anthony9eb4f742010-05-18 02:45:54 +00003197
anthony47f5d062010-05-23 07:47:50 +00003198 if ( verbose == MagickTrue ) {
3199 if ( kernel_loop > 1 )
3200 fprintf(stderr, "\n"); /* add end-of-line from previous */
cristye8c25f92010-06-03 00:53:06 +00003201 (void) fprintf(stderr, "%s%s%s:%.20g.%.20g #%.20g => Changed %.20g",
3202 v_info,MagickOptionToMnemonic(MagickMorphologyOptions,
3203 primative),(this_kernel == rflt_kernel ) ? "*" : "",
3204 (double) (method_loop+kernel_loop-1),(double) kernel_number,
3205 (double) count,(double) changed);
anthony47f5d062010-05-23 07:47:50 +00003206 }
anthony9eb4f742010-05-18 02:45:54 +00003207 /* prepare next loop */
3208 { Image *tmp = work_image; /* swap images for iteration */
3209 work_image = curr_image;
3210 curr_image = tmp;
3211 }
3212 if ( work_image == image )
anthony47f5d062010-05-23 07:47:50 +00003213 work_image = (Image *) NULL; /* replace input 'image' */
anthony7a01dcf2010-05-11 12:25:52 +00003214
anthony47f5d062010-05-23 07:47:50 +00003215 } /* End Loop 4: Iterate the kernel with primative */
anthony1b2bc0a2010-05-12 05:25:22 +00003216
anthony47f5d062010-05-23 07:47:50 +00003217 if ( verbose == MagickTrue && kernel_changed != changed )
cristye8c25f92010-06-03 00:53:06 +00003218 fprintf(stderr, " Total %.20g",(double) kernel_changed);
anthony47f5d062010-05-23 07:47:50 +00003219 if ( verbose == MagickTrue && stage_loop < stage_limit )
3220 fprintf(stderr, "\n"); /* add end-of-line before looping */
anthony9eb4f742010-05-18 02:45:54 +00003221
3222#if 0
anthonye4d89962010-05-29 10:53:11 +00003223 fprintf(stderr, "--E-- image=0x%lx\n", (unsigned long)image);
3224 fprintf(stderr, " curr =0x%lx\n", (unsigned long)curr_image);
3225 fprintf(stderr, " work =0x%lx\n", (unsigned long)work_image);
3226 fprintf(stderr, " save =0x%lx\n", (unsigned long)save_image);
3227 fprintf(stderr, " union=0x%lx\n", (unsigned long)rslt_image);
anthony9eb4f742010-05-18 02:45:54 +00003228#endif
3229
anthony47f5d062010-05-23 07:47:50 +00003230 } /* End Loop 3: Primative (staging) Loop for Coumpound Methods */
anthony9eb4f742010-05-18 02:45:54 +00003231
anthony47f5d062010-05-23 07:47:50 +00003232 /* Final Post-processing for some Compound Methods
3233 **
3234 ** The removal of any 'Sync' channel flag in the Image Compositon
3235 ** below ensures the methematical compose method is applied in a
3236 ** purely mathematical way, and only to the selected channels.
3237 ** Turn off SVG composition 'alpha blending'.
3238 */
3239 switch( method ) {
3240 case EdgeOutMorphology:
3241 case EdgeInMorphology:
3242 case TopHatMorphology:
3243 case BottomHatMorphology:
3244 if ( verbose == MagickTrue )
3245 fprintf(stderr, "\n%s: Difference with original image",
3246 MagickOptionToMnemonic(MagickMorphologyOptions, method) );
3247 (void) CompositeImageChannel(curr_image,
3248 (ChannelType) (channel & ~SyncChannels),
3249 DifferenceCompositeOp, image, 0, 0);
3250 break;
3251 case EdgeMorphology:
3252 if ( verbose == MagickTrue )
3253 fprintf(stderr, "\n%s: Difference of Dilate and Erode",
3254 MagickOptionToMnemonic(MagickMorphologyOptions, method) );
3255 (void) CompositeImageChannel(curr_image,
3256 (ChannelType) (channel & ~SyncChannels),
3257 DifferenceCompositeOp, save_image, 0, 0);
3258 save_image = DestroyImage(save_image); /* finished with save image */
3259 break;
3260 default:
3261 break;
3262 }
3263
3264 /* multi-kernel handling: re-iterate, or compose results */
3265 if ( kernel->next == (KernelInfo *) NULL )
anthonyc3e48252010-05-24 12:43:11 +00003266 rslt_image = curr_image; /* just return the resulting image */
anthony47f5d062010-05-23 07:47:50 +00003267 else if ( rslt_compose == NoCompositeOp )
anthonyc3e48252010-05-24 12:43:11 +00003268 { if ( verbose == MagickTrue ) {
3269 if ( this_kernel->next != (KernelInfo *) NULL )
3270 fprintf(stderr, " (re-iterate)");
3271 else
3272 fprintf(stderr, " (done)");
3273 }
3274 rslt_image = curr_image; /* return result, and re-iterate */
anthony9eb4f742010-05-18 02:45:54 +00003275 }
anthony47f5d062010-05-23 07:47:50 +00003276 else if ( rslt_image == (Image *) NULL)
3277 { if ( verbose == MagickTrue )
3278 fprintf(stderr, " (save for compose)");
3279 rslt_image = curr_image;
3280 curr_image = (Image *) image; /* continue with original image */
anthony9eb4f742010-05-18 02:45:54 +00003281 }
anthony47f5d062010-05-23 07:47:50 +00003282 else
3283 { /* add the new 'current' result to the composition
3284 **
3285 ** The removal of any 'Sync' channel flag in the Image Compositon
3286 ** below ensures the methematical compose method is applied in a
3287 ** purely mathematical way, and only to the selected channels.
3288 ** Turn off SVG composition 'alpha blending'.
3289 */
3290 if ( verbose == MagickTrue )
3291 fprintf(stderr, " (compose \"%s\")",
3292 MagickOptionToMnemonic(MagickComposeOptions, rslt_compose) );
3293 (void) CompositeImageChannel(rslt_image,
3294 (ChannelType) (channel & ~SyncChannels), rslt_compose,
3295 curr_image, 0, 0);
3296 curr_image = (Image *) image; /* continue with original image */
3297 }
3298 if ( verbose == MagickTrue )
3299 fprintf(stderr, "\n");
anthony9eb4f742010-05-18 02:45:54 +00003300
anthony47f5d062010-05-23 07:47:50 +00003301 /* loop to the next kernel in a multi-kernel list */
3302 norm_kernel = norm_kernel->next;
3303 if ( rflt_kernel != (KernelInfo *) NULL )
3304 rflt_kernel = rflt_kernel->next;
3305 kernel_number++;
3306 } /* End Loop 2: Loop over each kernel */
anthony9eb4f742010-05-18 02:45:54 +00003307
anthony47f5d062010-05-23 07:47:50 +00003308 } /* End Loop 1: compound method interation */
anthony602ab9b2010-01-05 08:06:50 +00003309
anthony9eb4f742010-05-18 02:45:54 +00003310 goto exit_cleanup;
anthony1b2bc0a2010-05-12 05:25:22 +00003311
anthony47f5d062010-05-23 07:47:50 +00003312 /* Yes goto's are bad, but it makes cleanup lot more efficient */
anthony1b2bc0a2010-05-12 05:25:22 +00003313error_cleanup:
anthony47f5d062010-05-23 07:47:50 +00003314 if ( curr_image != (Image *) NULL &&
3315 curr_image != rslt_image &&
3316 curr_image != image )
3317 curr_image = DestroyImage(curr_image);
3318 if ( rslt_image != (Image *) NULL )
3319 rslt_image = DestroyImage(rslt_image);
anthony1b2bc0a2010-05-12 05:25:22 +00003320exit_cleanup:
anthony47f5d062010-05-23 07:47:50 +00003321 if ( curr_image != (Image *) NULL &&
3322 curr_image != rslt_image &&
3323 curr_image != image )
3324 curr_image = DestroyImage(curr_image);
anthony9eb4f742010-05-18 02:45:54 +00003325 if ( work_image != (Image *) NULL )
anthony47f5d062010-05-23 07:47:50 +00003326 work_image = DestroyImage(work_image);
anthony9eb4f742010-05-18 02:45:54 +00003327 if ( save_image != (Image *) NULL )
anthony47f5d062010-05-23 07:47:50 +00003328 save_image = DestroyImage(save_image);
3329 if ( reflected_kernel != (KernelInfo *) NULL )
3330 reflected_kernel = DestroyKernelInfo(reflected_kernel);
3331 return(rslt_image);
anthony9eb4f742010-05-18 02:45:54 +00003332}
3333
3334/*
3335%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3336% %
3337% %
3338% %
3339% M o r p h o l o g y I m a g e C h a n n e l %
3340% %
3341% %
3342% %
3343%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3344%
3345% MorphologyImageChannel() applies a user supplied kernel to the image
3346% according to the given mophology method.
3347%
3348% This function applies any and all user defined settings before calling
3349% the above internal function MorphologyApply().
3350%
3351% User defined settings include...
anthony46a369d2010-05-19 02:41:48 +00003352% * Output Bias for Convolution and correlation ("-bias")
3353% * Kernel Scale/normalize settings ("-set 'option:convolve:scale'")
3354% This can also includes the addition of a scaled unity kernel.
3355% * Show Kernel being applied ("-set option:showkernel 1")
anthony9eb4f742010-05-18 02:45:54 +00003356%
3357% The format of the MorphologyImage method is:
3358%
3359% Image *MorphologyImage(const Image *image,MorphologyMethod method,
cristybb503372010-05-27 20:51:26 +00003360% const ssize_t iterations,KernelInfo *kernel,ExceptionInfo *exception)
anthony9eb4f742010-05-18 02:45:54 +00003361%
3362% Image *MorphologyImageChannel(const Image *image, const ChannelType
cristybb503372010-05-27 20:51:26 +00003363% channel,MorphologyMethod method,const ssize_t iterations,
anthony9eb4f742010-05-18 02:45:54 +00003364% KernelInfo *kernel,ExceptionInfo *exception)
3365%
3366% A description of each parameter follows:
3367%
3368% o image: the image.
3369%
3370% o method: the morphology method to be applied.
3371%
3372% o iterations: apply the operation this many times (or no change).
3373% A value of -1 means loop until no change found.
3374% How this is applied may depend on the morphology method.
3375% Typically this is a value of 1.
3376%
3377% o channel: the channel type.
3378%
3379% o kernel: An array of double representing the morphology kernel.
3380% Warning: kernel may be normalized for the Convolve method.
3381%
3382% o exception: return any errors or warnings in this structure.
3383%
3384*/
3385
3386MagickExport Image *MorphologyImageChannel(const Image *image,
3387 const ChannelType channel,const MorphologyMethod method,
cristybb503372010-05-27 20:51:26 +00003388 const ssize_t iterations,const KernelInfo *kernel,ExceptionInfo *exception)
anthony9eb4f742010-05-18 02:45:54 +00003389{
3390 const char
3391 *artifact;
3392
3393 KernelInfo
3394 *curr_kernel;
3395
anthony47f5d062010-05-23 07:47:50 +00003396 CompositeOperator
3397 compose;
3398
anthony9eb4f742010-05-18 02:45:54 +00003399 Image
3400 *morphology_image;
3401
3402
anthony46a369d2010-05-19 02:41:48 +00003403 /* Apply Convolve/Correlate Normalization and Scaling Factors.
3404 * This is done BEFORE the ShowKernelInfo() function is called so that
3405 * users can see the results of the 'option:convolve:scale' option.
anthony9eb4f742010-05-18 02:45:54 +00003406 */
3407 curr_kernel = (KernelInfo *) kernel;
anthonyf71ca292010-05-19 04:08:43 +00003408 if ( method == ConvolveMorphology || method == CorrelateMorphology )
anthony9eb4f742010-05-18 02:45:54 +00003409 {
3410 artifact = GetImageArtifact(image,"convolve:scale");
anthonye8d2f552010-06-05 10:43:25 +00003411 if ( artifact != (const char *)NULL ) {
anthony9eb4f742010-05-18 02:45:54 +00003412 if ( curr_kernel == kernel )
3413 curr_kernel = CloneKernelInfo(kernel);
3414 if (curr_kernel == (KernelInfo *) NULL) {
3415 curr_kernel=DestroyKernelInfo(curr_kernel);
3416 return((Image *) NULL);
3417 }
anthony46a369d2010-05-19 02:41:48 +00003418 ScaleGeometryKernelInfo(curr_kernel, artifact);
anthony9eb4f742010-05-18 02:45:54 +00003419 }
3420 }
3421
3422 /* display the (normalized) kernel via stderr */
3423 artifact = GetImageArtifact(image,"showkernel");
anthony47f5d062010-05-23 07:47:50 +00003424 if ( artifact == (const char *) NULL)
3425 artifact = GetImageArtifact(image,"convolve:showkernel");
3426 if ( artifact == (const char *) NULL)
3427 artifact = GetImageArtifact(image,"morphology:showkernel");
anthony9eb4f742010-05-18 02:45:54 +00003428 if ( artifact != (const char *) NULL)
3429 ShowKernelInfo(curr_kernel);
3430
anthony47f5d062010-05-23 07:47:50 +00003431 /* override the default handling of multi-kernel morphology results
3432 * if 'Undefined' use the default method
3433 * if 'None' (default for 'Convolve') re-iterate previous result
3434 * otherwise merge resulting images using compose method given
3435 */
3436 compose = UndefinedCompositeOp; /* use default for method */
3437 artifact = GetImageArtifact(image,"morphology:compose");
3438 if ( artifact != (const char *) NULL)
3439 compose = (CompositeOperator) ParseMagickOption(
3440 MagickComposeOptions,MagickFalse,artifact);
3441
anthony9eb4f742010-05-18 02:45:54 +00003442 /* Apply the Morphology */
3443 morphology_image = MorphologyApply(image, channel, method, iterations,
anthony47f5d062010-05-23 07:47:50 +00003444 curr_kernel, compose, image->bias, exception);
anthony9eb4f742010-05-18 02:45:54 +00003445
3446 /* Cleanup and Exit */
3447 if ( curr_kernel != kernel )
anthony1b2bc0a2010-05-12 05:25:22 +00003448 curr_kernel=DestroyKernelInfo(curr_kernel);
anthony9eb4f742010-05-18 02:45:54 +00003449 return(morphology_image);
3450}
3451
3452MagickExport Image *MorphologyImage(const Image *image, const MorphologyMethod
cristybb503372010-05-27 20:51:26 +00003453 method, const ssize_t iterations,const KernelInfo *kernel, ExceptionInfo
anthony9eb4f742010-05-18 02:45:54 +00003454 *exception)
3455{
3456 Image
3457 *morphology_image;
3458
3459 morphology_image=MorphologyImageChannel(image,DefaultChannels,method,
3460 iterations,kernel,exception);
3461 return(morphology_image);
anthony602ab9b2010-01-05 08:06:50 +00003462}
anthony83ba99b2010-01-24 08:48:15 +00003463
3464/*
3465%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3466% %
3467% %
3468% %
anthony4fd27e22010-02-07 08:17:18 +00003469+ R o t a t e K e r n e l I n f o %
anthony83ba99b2010-01-24 08:48:15 +00003470% %
3471% %
3472% %
3473%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3474%
anthony46a369d2010-05-19 02:41:48 +00003475% RotateKernelInfo() rotates the kernel by the angle given.
3476%
3477% Currently it is restricted to 90 degree angles, of either 1D kernels
3478% or square kernels. And 'circular' rotations of 45 degrees for 3x3 kernels.
3479% It will ignore usless rotations for specific 'named' built-in kernels.
anthony83ba99b2010-01-24 08:48:15 +00003480%
anthony4fd27e22010-02-07 08:17:18 +00003481% The format of the RotateKernelInfo method is:
anthony83ba99b2010-01-24 08:48:15 +00003482%
anthony4fd27e22010-02-07 08:17:18 +00003483% void RotateKernelInfo(KernelInfo *kernel, double angle)
anthony83ba99b2010-01-24 08:48:15 +00003484%
3485% A description of each parameter follows:
3486%
3487% o kernel: the Morphology/Convolution kernel
3488%
3489% o angle: angle to rotate in degrees
3490%
anthony46a369d2010-05-19 02:41:48 +00003491% This function is currently internal to this module only, but can be exported
3492% to other modules if needed.
anthony83ba99b2010-01-24 08:48:15 +00003493*/
anthony4fd27e22010-02-07 08:17:18 +00003494static void RotateKernelInfo(KernelInfo *kernel, double angle)
anthony83ba99b2010-01-24 08:48:15 +00003495{
anthony1b2bc0a2010-05-12 05:25:22 +00003496 /* angle the lower kernels first */
3497 if ( kernel->next != (KernelInfo *) NULL)
3498 RotateKernelInfo(kernel->next, angle);
3499
anthony83ba99b2010-01-24 08:48:15 +00003500 /* WARNING: Currently assumes the kernel (rightly) is horizontally symetrical
3501 **
3502 ** TODO: expand beyond simple 90 degree rotates, flips and flops
3503 */
3504
3505 /* Modulus the angle */
3506 angle = fmod(angle, 360.0);
3507 if ( angle < 0 )
3508 angle += 360.0;
3509
anthony3c10fc82010-05-13 02:40:51 +00003510 if ( 337.5 < angle || angle <= 22.5 )
anthony43c49252010-05-18 10:59:50 +00003511 return; /* Near zero angle - no change! - At least not at this time */
anthony83ba99b2010-01-24 08:48:15 +00003512
anthony3dd0f622010-05-13 12:57:32 +00003513 /* Handle special cases */
anthony83ba99b2010-01-24 08:48:15 +00003514 switch (kernel->type) {
3515 /* These built-in kernels are cylindrical kernels, rotating is useless */
3516 case GaussianKernel:
anthony501c2f92010-06-02 10:55:14 +00003517 case DoGKernel:
3518 case LoGKernel:
anthony83ba99b2010-01-24 08:48:15 +00003519 case DiskKernel:
anthony3dd0f622010-05-13 12:57:32 +00003520 case PeaksKernel:
3521 case LaplacianKernel:
anthony83ba99b2010-01-24 08:48:15 +00003522 case ChebyshevKernel:
anthonybee715c2010-06-04 01:25:57 +00003523 case ManhattanKernel:
anthony83ba99b2010-01-24 08:48:15 +00003524 case EuclideanKernel:
3525 return;
3526
3527 /* These may be rotatable at non-90 angles in the future */
3528 /* but simply rotating them in multiples of 90 degrees is useless */
3529 case SquareKernel:
3530 case DiamondKernel:
3531 case PlusKernel:
anthony3dd0f622010-05-13 12:57:32 +00003532 case CrossKernel:
anthony83ba99b2010-01-24 08:48:15 +00003533 return;
3534
3535 /* These only allows a +/-90 degree rotation (by transpose) */
3536 /* A 180 degree rotation is useless */
3537 case BlurKernel:
3538 case RectangleKernel:
3539 if ( 135.0 < angle && angle <= 225.0 )
3540 return;
3541 if ( 225.0 < angle && angle <= 315.0 )
3542 angle -= 180;
3543 break;
3544
anthony3dd0f622010-05-13 12:57:32 +00003545 default:
anthony83ba99b2010-01-24 08:48:15 +00003546 break;
3547 }
anthony3c10fc82010-05-13 02:40:51 +00003548 /* Attempt rotations by 45 degrees */
3549 if ( 22.5 < fmod(angle,90.0) && fmod(angle,90.0) <= 67.5 )
3550 {
3551 if ( kernel->width == 3 && kernel->height == 3 )
3552 { /* Rotate a 3x3 square by 45 degree angle */
3553 MagickRealType t = kernel->values[0];
anthony43c49252010-05-18 10:59:50 +00003554 kernel->values[0] = kernel->values[3];
3555 kernel->values[3] = kernel->values[6];
3556 kernel->values[6] = kernel->values[7];
3557 kernel->values[7] = kernel->values[8];
3558 kernel->values[8] = kernel->values[5];
3559 kernel->values[5] = kernel->values[2];
3560 kernel->values[2] = kernel->values[1];
3561 kernel->values[1] = t;
anthony1d45eb92010-05-25 11:13:23 +00003562 /* rotate non-centered origin */
3563 if ( kernel->x != 1 || kernel->y != 1 ) {
cristybb503372010-05-27 20:51:26 +00003564 ssize_t x,y;
3565 x = (ssize_t) kernel->x-1;
3566 y = (ssize_t) kernel->y-1;
anthony1d45eb92010-05-25 11:13:23 +00003567 if ( x == y ) x = 0;
3568 else if ( x == 0 ) x = -y;
3569 else if ( x == -y ) y = 0;
3570 else if ( y == 0 ) y = x;
cristyecd0ab52010-05-30 14:59:20 +00003571 kernel->x = (ssize_t) x+1;
3572 kernel->y = (ssize_t) y+1;
anthony1d45eb92010-05-25 11:13:23 +00003573 }
anthony43c49252010-05-18 10:59:50 +00003574 angle = fmod(angle+315.0, 360.0); /* angle reduced 45 degrees */
3575 kernel->angle = fmod(kernel->angle+45.0, 360.0);
anthony3c10fc82010-05-13 02:40:51 +00003576 }
3577 else
3578 perror("Unable to rotate non-3x3 kernel by 45 degrees");
3579 }
3580 if ( 45.0 < fmod(angle, 180.0) && fmod(angle,180.0) <= 135.0 )
3581 {
3582 if ( kernel->width == 1 || kernel->height == 1 )
anthonybfb635a2010-06-04 00:18:04 +00003583 { /* Do a transpose of a 1 dimentional kernel,
3584 ** which results in a fast 90 degree rotation of some type.
anthony3c10fc82010-05-13 02:40:51 +00003585 */
cristybb503372010-05-27 20:51:26 +00003586 ssize_t
anthony3c10fc82010-05-13 02:40:51 +00003587 t;
cristybb503372010-05-27 20:51:26 +00003588 t = (ssize_t) kernel->width;
anthony3c10fc82010-05-13 02:40:51 +00003589 kernel->width = kernel->height;
cristybb503372010-05-27 20:51:26 +00003590 kernel->height = (size_t) t;
anthony3c10fc82010-05-13 02:40:51 +00003591 t = kernel->x;
3592 kernel->x = kernel->y;
3593 kernel->y = t;
anthony43c49252010-05-18 10:59:50 +00003594 if ( kernel->width == 1 ) {
3595 angle = fmod(angle+270.0, 360.0); /* angle reduced 90 degrees */
3596 kernel->angle = fmod(kernel->angle+90.0, 360.0);
3597 } else {
3598 angle = fmod(angle+90.0, 360.0); /* angle increased 90 degrees */
3599 kernel->angle = fmod(kernel->angle+270.0, 360.0);
3600 }
anthony3c10fc82010-05-13 02:40:51 +00003601 }
3602 else if ( kernel->width == kernel->height )
3603 { /* Rotate a square array of values by 90 degrees */
cristybb503372010-05-27 20:51:26 +00003604 { register size_t
anthony1d45eb92010-05-25 11:13:23 +00003605 i,j,x,y;
3606 register MagickRealType
3607 *k,t;
3608 k=kernel->values;
3609 for( i=0, x=kernel->width-1; i<=x; i++, x--)
3610 for( j=0, y=kernel->height-1; j<y; j++, y--)
3611 { t = k[i+j*kernel->width];
3612 k[i+j*kernel->width] = k[j+x*kernel->width];
3613 k[j+x*kernel->width] = k[x+y*kernel->width];
3614 k[x+y*kernel->width] = k[y+i*kernel->width];
3615 k[y+i*kernel->width] = t;
3616 }
3617 }
3618 /* rotate the origin - relative to center of array */
cristybb503372010-05-27 20:51:26 +00003619 { register ssize_t x,y;
cristyeaedf062010-05-29 22:36:02 +00003620 x = (ssize_t) (kernel->x*2-kernel->width+1);
3621 y = (ssize_t) (kernel->y*2-kernel->height+1);
cristyecd0ab52010-05-30 14:59:20 +00003622 kernel->x = (ssize_t) ( -y +(ssize_t) kernel->width-1)/2;
3623 kernel->y = (ssize_t) ( +x +(ssize_t) kernel->height-1)/2;
anthony1d45eb92010-05-25 11:13:23 +00003624 }
anthony43c49252010-05-18 10:59:50 +00003625 angle = fmod(angle+270.0, 360.0); /* angle reduced 90 degrees */
3626 kernel->angle = fmod(kernel->angle+90.0, 360.0);
anthony3c10fc82010-05-13 02:40:51 +00003627 }
3628 else
3629 perror("Unable to rotate a non-square, non-linear kernel 90 degrees");
3630 }
anthony83ba99b2010-01-24 08:48:15 +00003631 if ( 135.0 < angle && angle <= 225.0 )
3632 {
anthony43c49252010-05-18 10:59:50 +00003633 /* For a 180 degree rotation - also know as a reflection
3634 * This is actually a very very common operation!
3635 * Basically all that is needed is a reversal of the kernel data!
3636 * And a reflection of the origon
3637 */
cristybb503372010-05-27 20:51:26 +00003638 size_t
anthony83ba99b2010-01-24 08:48:15 +00003639 i,j;
3640 register double
3641 *k,t;
3642
3643 k=kernel->values;
3644 for ( i=0, j=kernel->width*kernel->height-1; i<j; i++, j--)
3645 t=k[i], k[i]=k[j], k[j]=t;
3646
cristybb503372010-05-27 20:51:26 +00003647 kernel->x = (ssize_t) kernel->width - kernel->x - 1;
3648 kernel->y = (ssize_t) kernel->height - kernel->y - 1;
anthony43c49252010-05-18 10:59:50 +00003649 angle = fmod(angle-180.0, 360.0); /* angle+180 degrees */
3650 kernel->angle = fmod(kernel->angle+180.0, 360.0);
anthony83ba99b2010-01-24 08:48:15 +00003651 }
anthony3c10fc82010-05-13 02:40:51 +00003652 /* At this point angle should at least between -45 (315) and +45 degrees
anthony83ba99b2010-01-24 08:48:15 +00003653 * In the future some form of non-orthogonal angled rotates could be
3654 * performed here, posibily with a linear kernel restriction.
3655 */
3656
anthony83ba99b2010-01-24 08:48:15 +00003657 return;
3658}
3659
3660/*
3661%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3662% %
3663% %
3664% %
anthony46a369d2010-05-19 02:41:48 +00003665% S c a l e G e o m e t r y K e r n e l I n f o %
3666% %
3667% %
3668% %
3669%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3670%
3671% ScaleGeometryKernelInfo() takes a geometry argument string, typically
3672% provided as a "-set option:convolve:scale {geometry}" user setting,
3673% and modifies the kernel according to the parsed arguments of that setting.
3674%
3675% The first argument (and any normalization flags) are passed to
3676% ScaleKernelInfo() to scale/normalize the kernel. The second argument
3677% is then passed to UnityAddKernelInfo() to add a scled unity kernel
3678% into the scaled/normalized kernel.
3679%
3680% The format of the ScaleKernelInfo method is:
3681%
3682% void ScaleKernelInfo(KernelInfo *kernel, const double scaling_factor,
3683% const MagickStatusType normalize_flags )
3684%
3685% A description of each parameter follows:
3686%
3687% o kernel: the Morphology/Convolution kernel to modify
3688%
3689% o geometry:
3690% The geometry string to parse, typically from the user provided
3691% "-set option:convolve:scale {geometry}" setting.
3692%
3693*/
3694MagickExport void ScaleGeometryKernelInfo (KernelInfo *kernel,
3695 const char *geometry)
3696{
3697 GeometryFlags
3698 flags;
3699 GeometryInfo
3700 args;
3701
3702 SetGeometryInfo(&args);
3703 flags = (GeometryFlags) ParseGeometry(geometry, &args);
3704
3705#if 0
3706 /* For Debugging Geometry Input */
3707 fprintf(stderr, "Geometry = 0x%04X : %lg x %lg %+lg %+lg\n",
3708 flags, args.rho, args.sigma, args.xi, args.psi );
3709#endif
3710
3711 if ( (flags & PercentValue) != 0 ) /* Handle Percentage flag*/
3712 args.rho *= 0.01, args.sigma *= 0.01;
3713
3714 if ( (flags & RhoValue) == 0 ) /* Set Defaults for missing args */
3715 args.rho = 1.0;
3716 if ( (flags & SigmaValue) == 0 )
3717 args.sigma = 0.0;
3718
3719 /* Scale/Normalize the input kernel */
3720 ScaleKernelInfo(kernel, args.rho, flags);
3721
3722 /* Add Unity Kernel, for blending with original */
3723 if ( (flags & SigmaValue) != 0 )
3724 UnityAddKernelInfo(kernel, args.sigma);
3725
3726 return;
3727}
3728/*
3729%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3730% %
3731% %
3732% %
cristy6771f1e2010-03-05 19:43:39 +00003733% S c a l e K e r n e l I n f o %
anthonycc6c8362010-01-25 04:14:01 +00003734% %
3735% %
3736% %
3737%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3738%
anthony1b2bc0a2010-05-12 05:25:22 +00003739% ScaleKernelInfo() scales the given kernel list by the given amount, with or
3740% without normalization of the sum of the kernel values (as per given flags).
anthonycc6c8362010-01-25 04:14:01 +00003741%
anthony999bb2c2010-02-18 12:38:01 +00003742% By default (no flags given) the values within the kernel is scaled
anthony1b2bc0a2010-05-12 05:25:22 +00003743% directly using given scaling factor without change.
anthonycc6c8362010-01-25 04:14:01 +00003744%
anthony46a369d2010-05-19 02:41:48 +00003745% If either of the two 'normalize_flags' are given the kernel will first be
3746% normalized and then further scaled by the scaling factor value given.
anthony999bb2c2010-02-18 12:38:01 +00003747%
3748% Kernel normalization ('normalize_flags' given) is designed to ensure that
3749% any use of the kernel scaling factor with 'Convolve' or 'Correlate'
anthony1b2bc0a2010-05-12 05:25:22 +00003750% morphology methods will fall into -1.0 to +1.0 range. Note that for
3751% non-HDRI versions of IM this may cause images to have any negative results
3752% clipped, unless some 'bias' is used.
anthony999bb2c2010-02-18 12:38:01 +00003753%
3754% More specifically. Kernels which only contain positive values (such as a
3755% 'Gaussian' kernel) will be scaled so that those values sum to +1.0,
anthony1b2bc0a2010-05-12 05:25:22 +00003756% ensuring a 0.0 to +1.0 output range for non-HDRI images.
anthony999bb2c2010-02-18 12:38:01 +00003757%
3758% For Kernels that contain some negative values, (such as 'Sharpen' kernels)
3759% the kernel will be scaled by the absolute of the sum of kernel values, so
3760% that it will generally fall within the +/- 1.0 range.
3761%
3762% For kernels whose values sum to zero, (such as 'Laplician' kernels) kernel
3763% will be scaled by just the sum of the postive values, so that its output
3764% range will again fall into the +/- 1.0 range.
3765%
3766% For special kernels designed for locating shapes using 'Correlate', (often
3767% only containing +1 and -1 values, representing foreground/brackground
3768% matching) a special normalization method is provided to scale the positive
3769% values seperatally to those of the negative values, so the kernel will be
3770% forced to become a zero-sum kernel better suited to such searches.
3771%
anthony1b2bc0a2010-05-12 05:25:22 +00003772% WARNING: Correct normalization of the kernel assumes that the '*_range'
anthony999bb2c2010-02-18 12:38:01 +00003773% attributes within the kernel structure have been correctly set during the
3774% kernels creation.
3775%
3776% NOTE: The values used for 'normalize_flags' have been selected specifically
anthony46a369d2010-05-19 02:41:48 +00003777% to match the use of geometry options, so that '!' means NormalizeValue, '^'
3778% means CorrelateNormalizeValue. All other GeometryFlags values are ignored.
anthonycc6c8362010-01-25 04:14:01 +00003779%
anthony4fd27e22010-02-07 08:17:18 +00003780% The format of the ScaleKernelInfo method is:
anthonycc6c8362010-01-25 04:14:01 +00003781%
anthony999bb2c2010-02-18 12:38:01 +00003782% void ScaleKernelInfo(KernelInfo *kernel, const double scaling_factor,
3783% const MagickStatusType normalize_flags )
anthonycc6c8362010-01-25 04:14:01 +00003784%
3785% A description of each parameter follows:
3786%
3787% o kernel: the Morphology/Convolution kernel
3788%
anthony999bb2c2010-02-18 12:38:01 +00003789% o scaling_factor:
3790% multiply all values (after normalization) by this factor if not
3791% zero. If the kernel is normalized regardless of any flags.
3792%
3793% o normalize_flags:
3794% GeometryFlags defining normalization method to use.
3795% specifically: NormalizeValue, CorrelateNormalizeValue,
3796% and/or PercentValue
anthonycc6c8362010-01-25 04:14:01 +00003797%
3798*/
cristy6771f1e2010-03-05 19:43:39 +00003799MagickExport void ScaleKernelInfo(KernelInfo *kernel,
3800 const double scaling_factor,const GeometryFlags normalize_flags)
anthonycc6c8362010-01-25 04:14:01 +00003801{
cristybb503372010-05-27 20:51:26 +00003802 register ssize_t
anthonycc6c8362010-01-25 04:14:01 +00003803 i;
3804
anthony999bb2c2010-02-18 12:38:01 +00003805 register double
3806 pos_scale,
3807 neg_scale;
3808
anthony46a369d2010-05-19 02:41:48 +00003809 /* do the other kernels in a multi-kernel list first */
anthony1b2bc0a2010-05-12 05:25:22 +00003810 if ( kernel->next != (KernelInfo *) NULL)
3811 ScaleKernelInfo(kernel->next, scaling_factor, normalize_flags);
3812
anthony46a369d2010-05-19 02:41:48 +00003813 /* Normalization of Kernel */
anthony999bb2c2010-02-18 12:38:01 +00003814 pos_scale = 1.0;
3815 if ( (normalize_flags&NormalizeValue) != 0 ) {
anthony999bb2c2010-02-18 12:38:01 +00003816 if ( fabs(kernel->positive_range + kernel->negative_range) > MagickEpsilon )
anthonyf4e00312010-05-20 12:06:35 +00003817 /* non-zero-summing kernel (generally positive) */
anthony999bb2c2010-02-18 12:38:01 +00003818 pos_scale = fabs(kernel->positive_range + kernel->negative_range);
anthonycc6c8362010-01-25 04:14:01 +00003819 else
anthonyf4e00312010-05-20 12:06:35 +00003820 /* zero-summing kernel */
3821 pos_scale = kernel->positive_range;
anthony999bb2c2010-02-18 12:38:01 +00003822 }
anthony46a369d2010-05-19 02:41:48 +00003823 /* Force kernel into a normalized zero-summing kernel */
anthony999bb2c2010-02-18 12:38:01 +00003824 if ( (normalize_flags&CorrelateNormalizeValue) != 0 ) {
3825 pos_scale = ( fabs(kernel->positive_range) > MagickEpsilon )
3826 ? kernel->positive_range : 1.0;
3827 neg_scale = ( fabs(kernel->negative_range) > MagickEpsilon )
3828 ? -kernel->negative_range : 1.0;
3829 }
3830 else
3831 neg_scale = pos_scale;
3832
3833 /* finialize scaling_factor for positive and negative components */
3834 pos_scale = scaling_factor/pos_scale;
3835 neg_scale = scaling_factor/neg_scale;
anthonycc6c8362010-01-25 04:14:01 +00003836
cristybb503372010-05-27 20:51:26 +00003837 for (i=0; i < (ssize_t) (kernel->width*kernel->height); i++)
anthonycc6c8362010-01-25 04:14:01 +00003838 if ( ! IsNan(kernel->values[i]) )
anthony999bb2c2010-02-18 12:38:01 +00003839 kernel->values[i] *= (kernel->values[i] >= 0) ? pos_scale : neg_scale;
anthonycc6c8362010-01-25 04:14:01 +00003840
anthony999bb2c2010-02-18 12:38:01 +00003841 /* convolution output range */
3842 kernel->positive_range *= pos_scale;
3843 kernel->negative_range *= neg_scale;
3844 /* maximum and minimum values in kernel */
3845 kernel->maximum *= (kernel->maximum >= 0.0) ? pos_scale : neg_scale;
3846 kernel->minimum *= (kernel->minimum >= 0.0) ? pos_scale : neg_scale;
3847
anthony46a369d2010-05-19 02:41:48 +00003848 /* swap kernel settings if user's scaling factor is negative */
anthony999bb2c2010-02-18 12:38:01 +00003849 if ( scaling_factor < MagickEpsilon ) {
3850 double t;
3851 t = kernel->positive_range;
3852 kernel->positive_range = kernel->negative_range;
3853 kernel->negative_range = t;
3854 t = kernel->maximum;
3855 kernel->maximum = kernel->minimum;
3856 kernel->minimum = 1;
3857 }
anthonycc6c8362010-01-25 04:14:01 +00003858
3859 return;
3860}
3861
3862/*
3863%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3864% %
3865% %
3866% %
anthony46a369d2010-05-19 02:41:48 +00003867% S h o w K e r n e l I n f o %
anthony83ba99b2010-01-24 08:48:15 +00003868% %
3869% %
3870% %
3871%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3872%
anthony4fd27e22010-02-07 08:17:18 +00003873% ShowKernelInfo() outputs the details of the given kernel defination to
3874% standard error, generally due to a users 'showkernel' option request.
anthony83ba99b2010-01-24 08:48:15 +00003875%
3876% The format of the ShowKernel method is:
3877%
anthony4fd27e22010-02-07 08:17:18 +00003878% void ShowKernelInfo(KernelInfo *kernel)
anthony83ba99b2010-01-24 08:48:15 +00003879%
3880% A description of each parameter follows:
3881%
3882% o kernel: the Morphology/Convolution kernel
3883%
anthony83ba99b2010-01-24 08:48:15 +00003884*/
anthony4fd27e22010-02-07 08:17:18 +00003885MagickExport void ShowKernelInfo(KernelInfo *kernel)
anthony83ba99b2010-01-24 08:48:15 +00003886{
anthony7a01dcf2010-05-11 12:25:52 +00003887 KernelInfo
3888 *k;
anthony83ba99b2010-01-24 08:48:15 +00003889
cristybb503372010-05-27 20:51:26 +00003890 size_t
anthony7a01dcf2010-05-11 12:25:52 +00003891 c, i, u, v;
3892
3893 for (c=0, k=kernel; k != (KernelInfo *) NULL; c++, k=k->next ) {
3894
anthony46a369d2010-05-19 02:41:48 +00003895 fprintf(stderr, "Kernel");
anthony7a01dcf2010-05-11 12:25:52 +00003896 if ( kernel->next != (KernelInfo *) NULL )
cristyf2faecf2010-05-28 19:19:36 +00003897 fprintf(stderr, " #%lu", (unsigned long) c );
anthony43c49252010-05-18 10:59:50 +00003898 fprintf(stderr, " \"%s",
3899 MagickOptionToMnemonic(MagickKernelOptions, k->type) );
3900 if ( fabs(k->angle) > MagickEpsilon )
3901 fprintf(stderr, "@%lg", k->angle);
cristyf2faecf2010-05-28 19:19:36 +00003902 fprintf(stderr, "\" of size %lux%lu%+ld%+ld",(unsigned long) k->width,
3903 (unsigned long) k->height,(long) k->x,(long) k->y);
anthony7a01dcf2010-05-11 12:25:52 +00003904 fprintf(stderr,
3905 " with values from %.*lg to %.*lg\n",
3906 GetMagickPrecision(), k->minimum,
3907 GetMagickPrecision(), k->maximum);
anthony46a369d2010-05-19 02:41:48 +00003908 fprintf(stderr, "Forming a output range from %.*lg to %.*lg",
anthony7a01dcf2010-05-11 12:25:52 +00003909 GetMagickPrecision(), k->negative_range,
anthony46a369d2010-05-19 02:41:48 +00003910 GetMagickPrecision(), k->positive_range);
3911 if ( fabs(k->positive_range+k->negative_range) < MagickEpsilon )
3912 fprintf(stderr, " (Zero-Summing)\n");
3913 else if ( fabs(k->positive_range+k->negative_range-1.0) < MagickEpsilon )
3914 fprintf(stderr, " (Normalized)\n");
3915 else
3916 fprintf(stderr, " (Sum %.*lg)\n",
3917 GetMagickPrecision(), k->positive_range+k->negative_range);
anthony43c49252010-05-18 10:59:50 +00003918 for (i=v=0; v < k->height; v++) {
cristyf2faecf2010-05-28 19:19:36 +00003919 fprintf(stderr, "%2lu:", (unsigned long) v );
anthony43c49252010-05-18 10:59:50 +00003920 for (u=0; u < k->width; u++, i++)
anthony7a01dcf2010-05-11 12:25:52 +00003921 if ( IsNan(k->values[i]) )
anthonyf4e00312010-05-20 12:06:35 +00003922 fprintf(stderr," %*s", GetMagickPrecision()+3, "nan");
anthony7a01dcf2010-05-11 12:25:52 +00003923 else
anthonyf4e00312010-05-20 12:06:35 +00003924 fprintf(stderr," %*.*lg", GetMagickPrecision()+3,
anthony7a01dcf2010-05-11 12:25:52 +00003925 GetMagickPrecision(), k->values[i]);
3926 fprintf(stderr,"\n");
3927 }
anthony83ba99b2010-01-24 08:48:15 +00003928 }
3929}
anthonycc6c8362010-01-25 04:14:01 +00003930
3931/*
3932%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3933% %
3934% %
3935% %
anthony43c49252010-05-18 10:59:50 +00003936% U n i t y A d d K e r n a l I n f o %
3937% %
3938% %
3939% %
3940%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3941%
3942% UnityAddKernelInfo() Adds a given amount of the 'Unity' Convolution Kernel
3943% to the given pre-scaled and normalized Kernel. This in effect adds that
3944% amount of the original image into the resulting convolution kernel. This
3945% value is usually provided by the user as a percentage value in the
3946% 'convolve:scale' setting.
3947%
anthony501c2f92010-06-02 10:55:14 +00003948% The resulting effect is to convert the defined kernels into blended
3949% soft-blurs, unsharp kernels or into sharpening kernels.
anthony43c49252010-05-18 10:59:50 +00003950%
anthony46a369d2010-05-19 02:41:48 +00003951% The format of the UnityAdditionKernelInfo method is:
anthony43c49252010-05-18 10:59:50 +00003952%
3953% void UnityAdditionKernelInfo(KernelInfo *kernel, const double scale )
3954%
3955% A description of each parameter follows:
3956%
3957% o kernel: the Morphology/Convolution kernel
3958%
3959% o scale:
3960% scaling factor for the unity kernel to be added to
3961% the given kernel.
3962%
anthony43c49252010-05-18 10:59:50 +00003963*/
3964MagickExport void UnityAddKernelInfo(KernelInfo *kernel,
3965 const double scale)
3966{
anthony46a369d2010-05-19 02:41:48 +00003967 /* do the other kernels in a multi-kernel list first */
3968 if ( kernel->next != (KernelInfo *) NULL)
3969 UnityAddKernelInfo(kernel->next, scale);
anthony43c49252010-05-18 10:59:50 +00003970
anthony46a369d2010-05-19 02:41:48 +00003971 /* Add the scaled unity kernel to the existing kernel */
anthony43c49252010-05-18 10:59:50 +00003972 kernel->values[kernel->x+kernel->y*kernel->width] += scale;
anthony46a369d2010-05-19 02:41:48 +00003973 CalcKernelMetaData(kernel); /* recalculate the meta-data */
anthony43c49252010-05-18 10:59:50 +00003974
3975 return;
3976}
3977
3978/*
3979%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3980% %
3981% %
3982% %
3983% Z e r o K e r n e l N a n s %
anthonycc6c8362010-01-25 04:14:01 +00003984% %
3985% %
3986% %
3987%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
3988%
3989% ZeroKernelNans() replaces any special 'nan' value that may be present in
3990% the kernel with a zero value. This is typically done when the kernel will
3991% be used in special hardware (GPU) convolution processors, to simply
3992% matters.
3993%
3994% The format of the ZeroKernelNans method is:
3995%
anthony46a369d2010-05-19 02:41:48 +00003996% void ZeroKernelNans (KernelInfo *kernel)
anthonycc6c8362010-01-25 04:14:01 +00003997%
3998% A description of each parameter follows:
3999%
4000% o kernel: the Morphology/Convolution kernel
4001%
anthonycc6c8362010-01-25 04:14:01 +00004002*/
anthonyc4c86e02010-01-27 09:30:32 +00004003MagickExport void ZeroKernelNans(KernelInfo *kernel)
anthonycc6c8362010-01-25 04:14:01 +00004004{
cristybb503372010-05-27 20:51:26 +00004005 register size_t
anthonycc6c8362010-01-25 04:14:01 +00004006 i;
4007
anthony46a369d2010-05-19 02:41:48 +00004008 /* do the other kernels in a multi-kernel list first */
anthony1b2bc0a2010-05-12 05:25:22 +00004009 if ( kernel->next != (KernelInfo *) NULL)
4010 ZeroKernelNans(kernel->next);
4011
anthony43c49252010-05-18 10:59:50 +00004012 for (i=0; i < (kernel->width*kernel->height); i++)
anthonycc6c8362010-01-25 04:14:01 +00004013 if ( IsNan(kernel->values[i]) )
4014 kernel->values[i] = 0.0;
4015
4016 return;
4017}