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1 | ///////////////////////////////////////////////////////////////////////////// | |
2 | // Name: src/common/image.cpp | |
3 | // Purpose: wxImage | |
4 | // Author: Robert Roebling | |
5 | // RCS-ID: $Id$ | |
6 | // Copyright: (c) Robert Roebling | |
7 | // Licence: wxWindows licence | |
8 | ///////////////////////////////////////////////////////////////////////////// | |
9 | ||
10 | // For compilers that support precompilation, includes "wx.h". | |
11 | #include "wx/wxprec.h" | |
12 | ||
13 | #ifdef __BORLANDC__ | |
14 | #pragma hdrstop | |
15 | #endif | |
16 | ||
17 | #if wxUSE_IMAGE | |
18 | ||
19 | #include "wx/image.h" | |
20 | ||
21 | #ifndef WX_PRECOMP | |
22 | #include "wx/log.h" | |
23 | #include "wx/hash.h" | |
24 | #include "wx/utils.h" | |
25 | #include "wx/math.h" | |
26 | #include "wx/module.h" | |
27 | #include "wx/palette.h" | |
28 | #include "wx/intl.h" | |
29 | #endif | |
30 | ||
31 | #include "wx/filefn.h" | |
32 | #include "wx/wfstream.h" | |
33 | ||
34 | #if wxUSE_XPM | |
35 | #include "wx/xpmdecod.h" | |
36 | #endif | |
37 | ||
38 | // For memcpy | |
39 | #include <string.h> | |
40 | ||
41 | // make the code compile with either wxFile*Stream or wxFFile*Stream: | |
42 | #define HAS_FILE_STREAMS (wxUSE_STREAMS && (wxUSE_FILE || wxUSE_FFILE)) | |
43 | ||
44 | #if HAS_FILE_STREAMS | |
45 | #if wxUSE_FILE | |
46 | typedef wxFileInputStream wxImageFileInputStream; | |
47 | typedef wxFileOutputStream wxImageFileOutputStream; | |
48 | #elif wxUSE_FFILE | |
49 | typedef wxFFileInputStream wxImageFileInputStream; | |
50 | typedef wxFFileOutputStream wxImageFileOutputStream; | |
51 | #endif // wxUSE_FILE/wxUSE_FFILE | |
52 | #endif // HAS_FILE_STREAMS | |
53 | ||
54 | //----------------------------------------------------------------------------- | |
55 | // wxImage | |
56 | //----------------------------------------------------------------------------- | |
57 | ||
58 | class wxImageRefData: public wxObjectRefData | |
59 | { | |
60 | public: | |
61 | wxImageRefData(); | |
62 | virtual ~wxImageRefData(); | |
63 | ||
64 | int m_width; | |
65 | int m_height; | |
66 | unsigned char *m_data; | |
67 | ||
68 | bool m_hasMask; | |
69 | unsigned char m_maskRed,m_maskGreen,m_maskBlue; | |
70 | ||
71 | // alpha channel data, may be NULL for the formats without alpha support | |
72 | unsigned char *m_alpha; | |
73 | ||
74 | bool m_ok; | |
75 | ||
76 | // if true, m_data is pointer to static data and shouldn't be freed | |
77 | bool m_static; | |
78 | ||
79 | // same as m_static but for m_alpha | |
80 | bool m_staticAlpha; | |
81 | ||
82 | #if wxUSE_PALETTE | |
83 | wxPalette m_palette; | |
84 | #endif // wxUSE_PALETTE | |
85 | ||
86 | wxArrayString m_optionNames; | |
87 | wxArrayString m_optionValues; | |
88 | ||
89 | DECLARE_NO_COPY_CLASS(wxImageRefData) | |
90 | }; | |
91 | ||
92 | wxImageRefData::wxImageRefData() | |
93 | { | |
94 | m_width = 0; | |
95 | m_height = 0; | |
96 | m_data = | |
97 | m_alpha = (unsigned char *) NULL; | |
98 | ||
99 | m_maskRed = 0; | |
100 | m_maskGreen = 0; | |
101 | m_maskBlue = 0; | |
102 | m_hasMask = false; | |
103 | ||
104 | m_ok = false; | |
105 | m_static = | |
106 | m_staticAlpha = false; | |
107 | } | |
108 | ||
109 | wxImageRefData::~wxImageRefData() | |
110 | { | |
111 | if ( !m_static ) | |
112 | free( m_data ); | |
113 | if ( !m_staticAlpha ) | |
114 | free( m_alpha ); | |
115 | } | |
116 | ||
117 | wxList wxImage::sm_handlers; | |
118 | ||
119 | wxImage wxNullImage; | |
120 | ||
121 | //----------------------------------------------------------------------------- | |
122 | ||
123 | #define M_IMGDATA wx_static_cast(wxImageRefData*, m_refData) | |
124 | ||
125 | IMPLEMENT_DYNAMIC_CLASS(wxImage, wxObject) | |
126 | ||
127 | wxImage::wxImage( int width, int height, bool clear ) | |
128 | { | |
129 | Create( width, height, clear ); | |
130 | } | |
131 | ||
132 | wxImage::wxImage( int width, int height, unsigned char* data, bool static_data ) | |
133 | { | |
134 | Create( width, height, data, static_data ); | |
135 | } | |
136 | ||
137 | wxImage::wxImage( int width, int height, unsigned char* data, unsigned char* alpha, bool static_data ) | |
138 | { | |
139 | Create( width, height, data, alpha, static_data ); | |
140 | } | |
141 | ||
142 | wxImage::wxImage( const wxString& name, long type, int index ) | |
143 | { | |
144 | LoadFile( name, type, index ); | |
145 | } | |
146 | ||
147 | wxImage::wxImage( const wxString& name, const wxString& mimetype, int index ) | |
148 | { | |
149 | LoadFile( name, mimetype, index ); | |
150 | } | |
151 | ||
152 | #if wxUSE_STREAMS | |
153 | wxImage::wxImage( wxInputStream& stream, long type, int index ) | |
154 | { | |
155 | LoadFile( stream, type, index ); | |
156 | } | |
157 | ||
158 | wxImage::wxImage( wxInputStream& stream, const wxString& mimetype, int index ) | |
159 | { | |
160 | LoadFile( stream, mimetype, index ); | |
161 | } | |
162 | #endif // wxUSE_STREAMS | |
163 | ||
164 | wxImage::wxImage( const char** xpmData ) | |
165 | { | |
166 | Create(xpmData); | |
167 | } | |
168 | ||
169 | wxImage::wxImage( char** xpmData ) | |
170 | { | |
171 | Create((const char**) xpmData); | |
172 | } | |
173 | ||
174 | bool wxImage::Create( const char** xpmData ) | |
175 | { | |
176 | #if wxUSE_XPM | |
177 | UnRef(); | |
178 | ||
179 | wxXPMDecoder decoder; | |
180 | (*this) = decoder.ReadData(xpmData); | |
181 | return Ok(); | |
182 | #else | |
183 | return false; | |
184 | #endif | |
185 | } | |
186 | ||
187 | bool wxImage::Create( int width, int height, bool clear ) | |
188 | { | |
189 | UnRef(); | |
190 | ||
191 | m_refData = new wxImageRefData(); | |
192 | ||
193 | M_IMGDATA->m_data = (unsigned char *) malloc( width*height*3 ); | |
194 | if (!M_IMGDATA->m_data) | |
195 | { | |
196 | UnRef(); | |
197 | return false; | |
198 | } | |
199 | ||
200 | if (clear) | |
201 | memset(M_IMGDATA->m_data, 0, width*height*3); | |
202 | ||
203 | M_IMGDATA->m_width = width; | |
204 | M_IMGDATA->m_height = height; | |
205 | M_IMGDATA->m_ok = true; | |
206 | ||
207 | return true; | |
208 | } | |
209 | ||
210 | bool wxImage::Create( int width, int height, unsigned char* data, bool static_data ) | |
211 | { | |
212 | UnRef(); | |
213 | ||
214 | wxCHECK_MSG( data, false, _T("NULL data in wxImage::Create") ); | |
215 | ||
216 | m_refData = new wxImageRefData(); | |
217 | ||
218 | M_IMGDATA->m_data = data; | |
219 | M_IMGDATA->m_width = width; | |
220 | M_IMGDATA->m_height = height; | |
221 | M_IMGDATA->m_ok = true; | |
222 | M_IMGDATA->m_static = static_data; | |
223 | ||
224 | return true; | |
225 | } | |
226 | ||
227 | bool wxImage::Create( int width, int height, unsigned char* data, unsigned char* alpha, bool static_data ) | |
228 | { | |
229 | UnRef(); | |
230 | ||
231 | wxCHECK_MSG( data, false, _T("NULL data in wxImage::Create") ); | |
232 | ||
233 | m_refData = new wxImageRefData(); | |
234 | ||
235 | M_IMGDATA->m_data = data; | |
236 | M_IMGDATA->m_alpha = alpha; | |
237 | M_IMGDATA->m_width = width; | |
238 | M_IMGDATA->m_height = height; | |
239 | M_IMGDATA->m_ok = true; | |
240 | M_IMGDATA->m_static = static_data; | |
241 | ||
242 | return true; | |
243 | } | |
244 | ||
245 | void wxImage::Destroy() | |
246 | { | |
247 | UnRef(); | |
248 | } | |
249 | ||
250 | wxObjectRefData* wxImage::CreateRefData() const | |
251 | { | |
252 | return new wxImageRefData; | |
253 | } | |
254 | ||
255 | wxObjectRefData* wxImage::CloneRefData(const wxObjectRefData* that) const | |
256 | { | |
257 | const wxImageRefData* refData = wx_static_cast(const wxImageRefData*, that); | |
258 | wxCHECK_MSG(refData->m_ok, NULL, wxT("invalid image") ); | |
259 | ||
260 | wxImageRefData* refData_new = new wxImageRefData; | |
261 | refData_new->m_width = refData->m_width; | |
262 | refData_new->m_height = refData->m_height; | |
263 | refData_new->m_maskRed = refData->m_maskRed; | |
264 | refData_new->m_maskGreen = refData->m_maskGreen; | |
265 | refData_new->m_maskBlue = refData->m_maskBlue; | |
266 | refData_new->m_hasMask = refData->m_hasMask; | |
267 | refData_new->m_ok = true; | |
268 | unsigned size = unsigned(refData->m_width) * unsigned(refData->m_height); | |
269 | if (refData->m_alpha != NULL) | |
270 | { | |
271 | refData_new->m_alpha = (unsigned char*)malloc(size); | |
272 | memcpy(refData_new->m_alpha, refData->m_alpha, size); | |
273 | } | |
274 | size *= 3; | |
275 | refData_new->m_data = (unsigned char*)malloc(size); | |
276 | memcpy(refData_new->m_data, refData->m_data, size); | |
277 | #if wxUSE_PALETTE | |
278 | refData_new->m_palette = refData->m_palette; | |
279 | #endif | |
280 | refData_new->m_optionNames = refData->m_optionNames; | |
281 | refData_new->m_optionValues = refData->m_optionValues; | |
282 | return refData_new; | |
283 | } | |
284 | ||
285 | wxImage wxImage::Copy() const | |
286 | { | |
287 | wxImage image; | |
288 | ||
289 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
290 | ||
291 | image.m_refData = CloneRefData(m_refData); | |
292 | ||
293 | return image; | |
294 | } | |
295 | ||
296 | wxImage wxImage::ShrinkBy( int xFactor , int yFactor ) const | |
297 | { | |
298 | if( xFactor == 1 && yFactor == 1 ) | |
299 | return *this; | |
300 | ||
301 | wxImage image; | |
302 | ||
303 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
304 | ||
305 | // can't scale to/from 0 size | |
306 | wxCHECK_MSG( (xFactor > 0) && (yFactor > 0), image, | |
307 | wxT("invalid new image size") ); | |
308 | ||
309 | long old_height = M_IMGDATA->m_height, | |
310 | old_width = M_IMGDATA->m_width; | |
311 | ||
312 | wxCHECK_MSG( (old_height > 0) && (old_width > 0), image, | |
313 | wxT("invalid old image size") ); | |
314 | ||
315 | long width = old_width / xFactor ; | |
316 | long height = old_height / yFactor ; | |
317 | ||
318 | image.Create( width, height, false ); | |
319 | ||
320 | char unsigned *data = image.GetData(); | |
321 | ||
322 | wxCHECK_MSG( data, image, wxT("unable to create image") ); | |
323 | ||
324 | bool hasMask = false ; | |
325 | unsigned char maskRed = 0; | |
326 | unsigned char maskGreen = 0; | |
327 | unsigned char maskBlue =0 ; | |
328 | ||
329 | unsigned char *source_data = M_IMGDATA->m_data; | |
330 | unsigned char *target_data = data; | |
331 | unsigned char *source_alpha = 0 ; | |
332 | unsigned char *target_alpha = 0 ; | |
333 | if (M_IMGDATA->m_hasMask) | |
334 | { | |
335 | hasMask = true ; | |
336 | maskRed = M_IMGDATA->m_maskRed; | |
337 | maskGreen = M_IMGDATA->m_maskGreen; | |
338 | maskBlue =M_IMGDATA->m_maskBlue ; | |
339 | ||
340 | image.SetMaskColour( M_IMGDATA->m_maskRed, | |
341 | M_IMGDATA->m_maskGreen, | |
342 | M_IMGDATA->m_maskBlue ); | |
343 | } | |
344 | else | |
345 | { | |
346 | source_alpha = M_IMGDATA->m_alpha ; | |
347 | if ( source_alpha ) | |
348 | { | |
349 | image.SetAlpha() ; | |
350 | target_alpha = image.GetAlpha() ; | |
351 | } | |
352 | } | |
353 | ||
354 | for (long y = 0; y < height; y++) | |
355 | { | |
356 | for (long x = 0; x < width; x++) | |
357 | { | |
358 | unsigned long avgRed = 0 ; | |
359 | unsigned long avgGreen = 0; | |
360 | unsigned long avgBlue = 0; | |
361 | unsigned long avgAlpha = 0 ; | |
362 | unsigned long counter = 0 ; | |
363 | // determine average | |
364 | for ( int y1 = 0 ; y1 < yFactor ; ++y1 ) | |
365 | { | |
366 | long y_offset = (y * yFactor + y1) * old_width; | |
367 | for ( int x1 = 0 ; x1 < xFactor ; ++x1 ) | |
368 | { | |
369 | unsigned char *pixel = source_data + 3 * ( y_offset + x * xFactor + x1 ) ; | |
370 | unsigned char red = pixel[0] ; | |
371 | unsigned char green = pixel[1] ; | |
372 | unsigned char blue = pixel[2] ; | |
373 | unsigned char alpha = 255 ; | |
374 | if ( source_alpha ) | |
375 | alpha = *(source_alpha + y_offset + x * xFactor + x1) ; | |
376 | if ( !hasMask || red != maskRed || green != maskGreen || blue != maskBlue ) | |
377 | { | |
378 | if ( alpha > 0 ) | |
379 | { | |
380 | avgRed += red ; | |
381 | avgGreen += green ; | |
382 | avgBlue += blue ; | |
383 | } | |
384 | avgAlpha += alpha ; | |
385 | counter++ ; | |
386 | } | |
387 | } | |
388 | } | |
389 | if ( counter == 0 ) | |
390 | { | |
391 | *(target_data++) = M_IMGDATA->m_maskRed ; | |
392 | *(target_data++) = M_IMGDATA->m_maskGreen ; | |
393 | *(target_data++) = M_IMGDATA->m_maskBlue ; | |
394 | } | |
395 | else | |
396 | { | |
397 | if ( source_alpha ) | |
398 | *(target_alpha++) = (unsigned char)(avgAlpha / counter ) ; | |
399 | *(target_data++) = (unsigned char)(avgRed / counter); | |
400 | *(target_data++) = (unsigned char)(avgGreen / counter); | |
401 | *(target_data++) = (unsigned char)(avgBlue / counter); | |
402 | } | |
403 | } | |
404 | } | |
405 | ||
406 | // In case this is a cursor, make sure the hotspot is scaled accordingly: | |
407 | if ( HasOption(wxIMAGE_OPTION_CUR_HOTSPOT_X) ) | |
408 | image.SetOption(wxIMAGE_OPTION_CUR_HOTSPOT_X, | |
409 | (GetOptionInt(wxIMAGE_OPTION_CUR_HOTSPOT_X))/xFactor); | |
410 | if ( HasOption(wxIMAGE_OPTION_CUR_HOTSPOT_Y) ) | |
411 | image.SetOption(wxIMAGE_OPTION_CUR_HOTSPOT_Y, | |
412 | (GetOptionInt(wxIMAGE_OPTION_CUR_HOTSPOT_Y))/yFactor); | |
413 | ||
414 | return image; | |
415 | } | |
416 | ||
417 | wxImage wxImage::Scale( int width, int height, int quality ) const | |
418 | { | |
419 | wxImage image; | |
420 | ||
421 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
422 | ||
423 | // can't scale to/from 0 size | |
424 | wxCHECK_MSG( (width > 0) && (height > 0), image, | |
425 | wxT("invalid new image size") ); | |
426 | ||
427 | long old_height = M_IMGDATA->m_height, | |
428 | old_width = M_IMGDATA->m_width; | |
429 | wxCHECK_MSG( (old_height > 0) && (old_width > 0), image, | |
430 | wxT("invalid old image size") ); | |
431 | ||
432 | // If the image's new width and height are the same as the original, no need to waste time or CPU cycles | |
433 | if(old_width == width && old_height == height) | |
434 | return *this; | |
435 | ||
436 | // Scale the image (...or more appropriately, resample the image) using either the high-quality or normal method as specified | |
437 | if(quality == wxIMAGE_QUALITY_HIGH) | |
438 | { | |
439 | // We need to check whether we are downsampling or upsampling the image | |
440 | if(width < old_width && height < old_height) | |
441 | { | |
442 | // Downsample the image using the box averaging method for best results | |
443 | image = ResampleBox(width, height); | |
444 | } | |
445 | else | |
446 | { | |
447 | // For upsampling or other random/wierd image dimensions we'll use a bicubic b-spline scaling method | |
448 | image = ResampleBicubic(width, height); | |
449 | } | |
450 | } | |
451 | else // Default scaling method == simple pixel replication | |
452 | { | |
453 | if ( old_width % width == 0 && old_width >= width && | |
454 | old_height % height == 0 && old_height >= height ) | |
455 | { | |
456 | return ShrinkBy( old_width / width , old_height / height ) ; | |
457 | } | |
458 | image.Create( width, height, false ); | |
459 | ||
460 | unsigned char *data = image.GetData(); | |
461 | ||
462 | wxCHECK_MSG( data, image, wxT("unable to create image") ); | |
463 | ||
464 | unsigned char *source_data = M_IMGDATA->m_data; | |
465 | unsigned char *target_data = data; | |
466 | unsigned char *source_alpha = 0 ; | |
467 | unsigned char *target_alpha = 0 ; | |
468 | ||
469 | if (M_IMGDATA->m_hasMask) | |
470 | { | |
471 | image.SetMaskColour( M_IMGDATA->m_maskRed, | |
472 | M_IMGDATA->m_maskGreen, | |
473 | M_IMGDATA->m_maskBlue ); | |
474 | } | |
475 | else | |
476 | { | |
477 | source_alpha = M_IMGDATA->m_alpha ; | |
478 | if ( source_alpha ) | |
479 | { | |
480 | image.SetAlpha() ; | |
481 | target_alpha = image.GetAlpha() ; | |
482 | } | |
483 | } | |
484 | ||
485 | long x_delta = (old_width<<16) / width; | |
486 | long y_delta = (old_height<<16) / height; | |
487 | ||
488 | unsigned char* dest_pixel = target_data; | |
489 | ||
490 | long y = 0; | |
491 | for ( long j = 0; j < height; j++ ) | |
492 | { | |
493 | unsigned char* src_line = &source_data[(y>>16)*old_width*3]; | |
494 | unsigned char* src_alpha_line = source_alpha ? &source_alpha[(y>>16)*old_width] : 0 ; | |
495 | ||
496 | long x = 0; | |
497 | for ( long i = 0; i < width; i++ ) | |
498 | { | |
499 | unsigned char* src_pixel = &src_line[(x>>16)*3]; | |
500 | unsigned char* src_alpha_pixel = source_alpha ? &src_alpha_line[(x>>16)] : 0 ; | |
501 | dest_pixel[0] = src_pixel[0]; | |
502 | dest_pixel[1] = src_pixel[1]; | |
503 | dest_pixel[2] = src_pixel[2]; | |
504 | dest_pixel += 3; | |
505 | if ( source_alpha ) | |
506 | *(target_alpha++) = *src_alpha_pixel ; | |
507 | x += x_delta; | |
508 | } | |
509 | ||
510 | y += y_delta; | |
511 | } | |
512 | } | |
513 | ||
514 | // In case this is a cursor, make sure the hotspot is scaled accordingly: | |
515 | if ( HasOption(wxIMAGE_OPTION_CUR_HOTSPOT_X) ) | |
516 | image.SetOption(wxIMAGE_OPTION_CUR_HOTSPOT_X, | |
517 | (GetOptionInt(wxIMAGE_OPTION_CUR_HOTSPOT_X)*width)/old_width); | |
518 | if ( HasOption(wxIMAGE_OPTION_CUR_HOTSPOT_Y) ) | |
519 | image.SetOption(wxIMAGE_OPTION_CUR_HOTSPOT_Y, | |
520 | (GetOptionInt(wxIMAGE_OPTION_CUR_HOTSPOT_Y)*height)/old_height); | |
521 | ||
522 | return image; | |
523 | } | |
524 | ||
525 | wxImage wxImage::ResampleBox(int width, int height) const | |
526 | { | |
527 | // This function implements a simple pre-blur/box averaging method for downsampling that gives reasonably smooth results | |
528 | // To scale the image down we will need to gather a grid of pixels of the size of the scale factor in each direction | |
529 | // and then do an averaging of the pixels. | |
530 | ||
531 | wxImage ret_image(width, height, false); | |
532 | ||
533 | double scale_factor_x = double(M_IMGDATA->m_width) / width; | |
534 | double scale_factor_y = double(M_IMGDATA->m_height) / height; | |
535 | ||
536 | // If we want good-looking results we need to pre-blur the image a bit first | |
537 | wxImage src_image(*this); | |
538 | src_image = src_image.BlurHorizontal(scale_factor_x / 2); | |
539 | src_image = src_image.BlurVertical(scale_factor_y / 2); | |
540 | ||
541 | unsigned char* src_data = src_image.GetData(); | |
542 | unsigned char* src_alpha = src_image.GetAlpha(); | |
543 | unsigned char* dst_data = ret_image.GetData(); | |
544 | unsigned char* dst_alpha = NULL; | |
545 | ||
546 | if(src_alpha) | |
547 | { | |
548 | ret_image.SetAlpha(); | |
549 | dst_alpha = ret_image.GetAlpha(); | |
550 | } | |
551 | ||
552 | int x, y, i, j; | |
553 | int averaged_pixels, src_pixel_index, src_x, src_y; | |
554 | double sum_r, sum_g, sum_b, sum_a; | |
555 | ||
556 | for(y = 0; y < height; y++) // Destination image - Y direction | |
557 | { | |
558 | // Source pixel in the Y direction | |
559 | src_y = y * scale_factor_y; | |
560 | ||
561 | for(x = 0; x < width; x++) // Destination image - X direction | |
562 | { | |
563 | // Source pixel in the X direction | |
564 | src_x = x * scale_factor_x; | |
565 | ||
566 | // Box of pixels to average | |
567 | averaged_pixels = 0; | |
568 | sum_r = sum_g = sum_b = sum_a = 0.0; | |
569 | ||
570 | for(j = src_y - scale_factor_y / 2 + 1; j <= int(src_y + scale_factor_y / 2); j++) // Y direction | |
571 | { | |
572 | // We don't care to average pixels that don't exist (edges) | |
573 | if(j < 0 || j > M_IMGDATA->m_height) | |
574 | continue; | |
575 | ||
576 | for(i = src_x - scale_factor_x / 2 + 1; i <= int(src_x + scale_factor_x / 2); i++) // X direction | |
577 | { | |
578 | // Don't average edge pixels | |
579 | if(i < 0 || i > M_IMGDATA->m_width) | |
580 | continue; | |
581 | ||
582 | // Calculate the actual index in our source pixels | |
583 | src_pixel_index = src_y * M_IMGDATA->m_width + src_x; | |
584 | ||
585 | sum_r += src_data[src_pixel_index * 3 + 0]; | |
586 | sum_g += src_data[src_pixel_index * 3 + 1]; | |
587 | sum_b += src_data[src_pixel_index * 3 + 2]; | |
588 | if(src_alpha) | |
589 | sum_a += src_alpha[src_pixel_index]; | |
590 | ||
591 | averaged_pixels++; | |
592 | } | |
593 | } | |
594 | ||
595 | // Calculate the average from the sum and number of averaged pixels | |
596 | dst_data[0] = int(sum_r / averaged_pixels); | |
597 | dst_data[1] = int(sum_g / averaged_pixels); | |
598 | dst_data[2] = int(sum_b / averaged_pixels); | |
599 | dst_data += 3; | |
600 | if(src_alpha) | |
601 | *dst_alpha++ = sum_a / averaged_pixels; | |
602 | } | |
603 | } | |
604 | ||
605 | return ret_image; | |
606 | } | |
607 | ||
608 | // The following two local functions are for the B-spline weighting of the bicubic sampling algorithm | |
609 | static inline double spline_cube(double value) | |
610 | { | |
611 | return value <= 0.0 ? 0.0 : value * value * value; | |
612 | } | |
613 | ||
614 | static inline double spline_weight(double value) | |
615 | { | |
616 | return (spline_cube(value + 2) - 4 * spline_cube(value + 1) + 6 * spline_cube(value) - 4 * spline_cube(value - 1)) / 6; | |
617 | } | |
618 | ||
619 | // This is the bicubic resampling algorithm | |
620 | wxImage wxImage::ResampleBicubic(int width, int height) const | |
621 | { | |
622 | // This function implements a Bicubic B-Spline algorithm for resampling. This method is certainly a little slower than wxImage's default | |
623 | // pixel replication method, however for most reasonably sized images not being upsampled too much on a fairly average CPU this | |
624 | // difference is hardly noticeable and the results are far more pleasing to look at. | |
625 | // | |
626 | // This particular bicubic algorithm does pixel weighting according to a B-Spline that basically implements a Gaussian bell-like | |
627 | // weighting kernel. Because of this method the results may appear a bit blurry when upsampling by large factors. This is basically | |
628 | // because a slight gaussian blur is being performed to get the smooth look of the upsampled image. | |
629 | ||
630 | // Edge pixels: 3-4 possible solutions | |
631 | // - (Wrap/tile) Wrap the image, take the color value from the opposite side of the image. | |
632 | // - (Mirror) Duplicate edge pixels, so that pixel at coordinate (2, n), where n is nonpositive, will have the value of (2, 1). | |
633 | // - (Ignore) Simply ignore the edge pixels and apply the kernel only to pixels which do have all neighbours. | |
634 | // - (Clamp) Choose the nearest pixel along the border. This takes the border pixels and extends them out to infinity. | |
635 | // | |
636 | // NOTE: below the y_offset and x_offset variables are being set for edge pixels using the "Mirror" method mentioned above | |
637 | ||
638 | wxImage ret_image; | |
639 | ||
640 | ret_image.Create(width, height, false); | |
641 | ||
642 | unsigned char* src_data = M_IMGDATA->m_data; | |
643 | unsigned char* src_alpha = M_IMGDATA->m_alpha; | |
644 | unsigned char* dst_data = ret_image.GetData(); | |
645 | unsigned char* dst_alpha = NULL; | |
646 | ||
647 | if(src_alpha) | |
648 | { | |
649 | ret_image.SetAlpha(); | |
650 | dst_alpha = ret_image.GetAlpha(); | |
651 | } | |
652 | ||
653 | int k, i; | |
654 | double srcpixx, srcpixy, dx, dy; | |
655 | int dstx, dsty; | |
656 | double sum_r = 0, sum_g = 0, sum_b = 0, sum_a = 0; // Sums for each color channel | |
657 | int x_offset = 0, y_offset = 0; | |
658 | double pixel_weight; | |
659 | long src_pixel_index; | |
660 | ||
661 | for(dsty = 0; dsty < height; dsty++) | |
662 | { | |
663 | // We need to calculate the source pixel to interpolate from - Y-axis | |
664 | srcpixy = double(dsty) * M_IMGDATA->m_height / height; | |
665 | dy = srcpixy - (int)srcpixy; | |
666 | ||
667 | for(dstx = 0; dstx < width; dstx++) | |
668 | { | |
669 | // X-axis of pixel to interpolate from | |
670 | srcpixx = double(dstx) * M_IMGDATA->m_width / width; | |
671 | dx = srcpixx - (int)srcpixx; | |
672 | ||
673 | // Clear all the RGBA sum values | |
674 | sum_r = sum_g = sum_b = sum_a = 0; | |
675 | ||
676 | // Here we actually determine the RGBA values for the destination pixel | |
677 | for(k = -1; k <= 2; k++) | |
678 | { | |
679 | // Y offset | |
680 | y_offset = srcpixy + double(k) < 0.0 ? 0 : (srcpixy + double(k) >= M_IMGDATA->m_height ? M_IMGDATA->m_height - 1 : srcpixy + k); | |
681 | ||
682 | // Loop across the X axis | |
683 | for(i = -1; i <= 2; i++) | |
684 | { | |
685 | // X offset | |
686 | x_offset = srcpixx + double(i) < 0.0 ? 0 : (srcpixx + double(i) >= M_IMGDATA->m_width ? M_IMGDATA->m_width - 1 : srcpixx + i); | |
687 | ||
688 | // Calculate the exact position where the source data should be pulled from based on the x_offset and y_offset | |
689 | src_pixel_index = (y_offset * M_IMGDATA->m_width) + x_offset; | |
690 | ||
691 | // Calculate the weight for the specified pixel according to the bicubic b-spline kernel we're using for interpolation | |
692 | pixel_weight = spline_weight(double(i) - dx) * spline_weight(double(k) - dy); | |
693 | ||
694 | // Create a sum of all velues for each color channel adjusted for the pixel's calculated weight | |
695 | sum_r += double(src_data[src_pixel_index * 3 + 0]) * pixel_weight; | |
696 | sum_g += double(src_data[src_pixel_index * 3 + 1]) * pixel_weight; | |
697 | sum_b += double(src_data[src_pixel_index * 3 + 2]) * pixel_weight; | |
698 | if(src_alpha) | |
699 | sum_a += double(src_alpha[src_pixel_index]) * pixel_weight; | |
700 | } | |
701 | } | |
702 | ||
703 | // Put the data into the destination image. The summed values are of double data type and are rounded here for accuracy | |
704 | dst_data[0] = int(sum_r + 0.5); | |
705 | dst_data[1] = int(sum_g + 0.5); | |
706 | dst_data[2] = int(sum_b + 0.5); | |
707 | dst_data += 3; | |
708 | ||
709 | if(src_alpha) | |
710 | *dst_alpha++ = sum_a; | |
711 | } | |
712 | } | |
713 | ||
714 | return ret_image; | |
715 | } | |
716 | ||
717 | // Blur in the horizontal direction | |
718 | wxImage wxImage::BlurHorizontal(int blurRadius) | |
719 | { | |
720 | wxImage ret_image; | |
721 | ret_image.Create(M_IMGDATA->m_width, M_IMGDATA->m_height, false); | |
722 | ||
723 | unsigned char* src_data = M_IMGDATA->m_data; | |
724 | unsigned char* dst_data = ret_image.GetData(); | |
725 | unsigned char* src_alpha = M_IMGDATA->m_alpha; | |
726 | unsigned char* dst_alpha = NULL; | |
727 | ||
728 | // Check for a mask or alpha | |
729 | if(M_IMGDATA->m_hasMask) | |
730 | ret_image.SetMaskColour(M_IMGDATA->m_maskRed, M_IMGDATA->m_maskGreen, M_IMGDATA->m_maskBlue); | |
731 | else | |
732 | if(src_alpha) | |
733 | { | |
734 | ret_image.SetAlpha(); | |
735 | dst_alpha = ret_image.GetAlpha(); | |
736 | } | |
737 | ||
738 | // Variables used in the blurring algorithm | |
739 | int x, y; | |
740 | int kernel_x; | |
741 | long sum_r, sum_g, sum_b, sum_a; | |
742 | long pixel_idx; | |
743 | ||
744 | // Horizontal blurring algorithm - average all pixels in the specified blur radius in the X or horizontal direction | |
745 | for(y = 0; y < M_IMGDATA->m_height; y++) | |
746 | { | |
747 | sum_r = sum_g = sum_b = sum_a = 0; | |
748 | ||
749 | // Calculate the average of all pixels in the blur radius for the first pixel of the row | |
750 | for(kernel_x = -blurRadius; kernel_x <= blurRadius; kernel_x++) | |
751 | { | |
752 | // To deal with the pixels at the start of a row so it's not grabbing GOK values from memory at negative indices of the image's data or grabbing from the previous row | |
753 | if(kernel_x < 0) | |
754 | pixel_idx = y * M_IMGDATA->m_width; | |
755 | else | |
756 | pixel_idx = kernel_x + y * M_IMGDATA->m_width; | |
757 | ||
758 | sum_r += src_data[pixel_idx * 3 + 0]; | |
759 | sum_g += src_data[pixel_idx * 3 + 1]; | |
760 | sum_b += src_data[pixel_idx * 3 + 2]; | |
761 | sum_a += src_alpha ? src_alpha[pixel_idx] : 0; | |
762 | } | |
763 | dst_data[y * M_IMGDATA->m_width * 3 + 0] = sum_r / (blurRadius * 2 + 1); | |
764 | dst_data[y * M_IMGDATA->m_width * 3 + 1] = sum_g / (blurRadius * 2 + 1); | |
765 | dst_data[y * M_IMGDATA->m_width * 3 + 2] = sum_b / (blurRadius * 2 + 1); | |
766 | if(src_alpha) | |
767 | dst_alpha[y * M_IMGDATA->m_width] = sum_a / (blurRadius * 2 + 1); | |
768 | ||
769 | // Now average the values of the rest of the pixels by just moving the blur radius box along the row | |
770 | for(x = 1; x < M_IMGDATA->m_width; x++) | |
771 | { | |
772 | // Take care of edge pixels on the left edge by essentially duplicating the edge pixel | |
773 | if(x - blurRadius - 1 < 0) | |
774 | pixel_idx = y * M_IMGDATA->m_width; | |
775 | else | |
776 | pixel_idx = (x - blurRadius - 1) + y * M_IMGDATA->m_width; | |
777 | ||
778 | // Subtract the value of the pixel at the left side of the blur radius box | |
779 | sum_r -= src_data[pixel_idx * 3 + 0]; | |
780 | sum_g -= src_data[pixel_idx * 3 + 1]; | |
781 | sum_b -= src_data[pixel_idx * 3 + 2]; | |
782 | sum_a -= src_alpha ? src_alpha[pixel_idx] : 0; | |
783 | ||
784 | // Take care of edge pixels on the right edge | |
785 | if(x + blurRadius > M_IMGDATA->m_width - 1) | |
786 | pixel_idx = M_IMGDATA->m_width - 1 + y * M_IMGDATA->m_width; | |
787 | else | |
788 | pixel_idx = x + blurRadius + y * M_IMGDATA->m_width; | |
789 | ||
790 | // Add the value of the pixel being added to the end of our box | |
791 | sum_r += src_data[pixel_idx * 3 + 0]; | |
792 | sum_g += src_data[pixel_idx * 3 + 1]; | |
793 | sum_b += src_data[pixel_idx * 3 + 2]; | |
794 | sum_a += src_alpha ? src_alpha[pixel_idx] : 0; | |
795 | ||
796 | // Save off the averaged data | |
797 | dst_data[x * 3 + y * M_IMGDATA->m_width * 3 + 0] = sum_r / (blurRadius * 2 + 1); | |
798 | dst_data[x * 3 + y * M_IMGDATA->m_width * 3 + 1] = sum_g / (blurRadius * 2 + 1); | |
799 | dst_data[x * 3 + y * M_IMGDATA->m_width * 3 + 2] = sum_b / (blurRadius * 2 + 1); | |
800 | if(src_alpha) | |
801 | dst_alpha[x + y * M_IMGDATA->m_width] = sum_a / (blurRadius * 2 + 1); | |
802 | } | |
803 | } | |
804 | ||
805 | return ret_image; | |
806 | } | |
807 | ||
808 | // Blur in the vertical direction | |
809 | wxImage wxImage::BlurVertical(int blurRadius) | |
810 | { | |
811 | wxImage ret_image; | |
812 | ret_image.Create(M_IMGDATA->m_width, M_IMGDATA->m_height, false); | |
813 | ||
814 | unsigned char* src_data = M_IMGDATA->m_data; | |
815 | unsigned char* dst_data = ret_image.GetData(); | |
816 | unsigned char* src_alpha = M_IMGDATA->m_alpha; | |
817 | unsigned char* dst_alpha = NULL; | |
818 | ||
819 | // Check for a mask or alpha | |
820 | if(M_IMGDATA->m_hasMask) | |
821 | ret_image.SetMaskColour(M_IMGDATA->m_maskRed, M_IMGDATA->m_maskGreen, M_IMGDATA->m_maskBlue); | |
822 | else | |
823 | if(src_alpha) | |
824 | { | |
825 | ret_image.SetAlpha(); | |
826 | dst_alpha = ret_image.GetAlpha(); | |
827 | } | |
828 | ||
829 | // Variables used in the blurring algorithm | |
830 | int x, y; | |
831 | int kernel_y; | |
832 | long sum_r, sum_g, sum_b, sum_a; | |
833 | long pixel_idx; | |
834 | ||
835 | // Vertical blurring algorithm - same as horizontal but switched the opposite direction | |
836 | for(x = 0; x < M_IMGDATA->m_width; x++) | |
837 | { | |
838 | sum_r = sum_g = sum_b = sum_a = 0; | |
839 | ||
840 | // Calculate the average of all pixels in our blur radius box for the first pixel of the column | |
841 | for(kernel_y = -blurRadius; kernel_y <= blurRadius; kernel_y++) | |
842 | { | |
843 | // To deal with the pixels at the start of a column so it's not grabbing GOK values from memory at negative indices of the image's data or grabbing from the previous column | |
844 | if(kernel_y < 0) | |
845 | pixel_idx = x; | |
846 | else | |
847 | pixel_idx = x + kernel_y * M_IMGDATA->m_width; | |
848 | ||
849 | sum_r += src_data[pixel_idx * 3 + 0]; | |
850 | sum_g += src_data[pixel_idx * 3 + 1]; | |
851 | sum_b += src_data[pixel_idx * 3 + 2]; | |
852 | sum_a += src_alpha ? src_alpha[pixel_idx] : 0; | |
853 | } | |
854 | dst_data[x * 3 + 0] = sum_r / (blurRadius * 2 + 1); | |
855 | dst_data[x * 3 + 1] = sum_g / (blurRadius * 2 + 1); | |
856 | dst_data[x * 3 + 2] = sum_b / (blurRadius * 2 + 1); | |
857 | if(src_alpha) | |
858 | dst_alpha[x] = sum_a / (blurRadius * 2 + 1); | |
859 | ||
860 | // Now average the values of the rest of the pixels by just moving the box along the column from top to bottom | |
861 | for(y = 1; y < M_IMGDATA->m_height; y++) | |
862 | { | |
863 | // Take care of pixels that would be beyond the top edge by duplicating the top edge pixel for the column | |
864 | if(y - blurRadius - 1 < 0) | |
865 | pixel_idx = x; | |
866 | else | |
867 | pixel_idx = x + (y - blurRadius - 1) * M_IMGDATA->m_width; | |
868 | ||
869 | // Subtract the value of the pixel at the top of our blur radius box | |
870 | sum_r -= src_data[pixel_idx * 3 + 0]; | |
871 | sum_g -= src_data[pixel_idx * 3 + 1]; | |
872 | sum_b -= src_data[pixel_idx * 3 + 2]; | |
873 | sum_a -= src_alpha ? src_alpha[pixel_idx] : 0; | |
874 | ||
875 | // Take care of the pixels that would be beyond the bottom edge of the image similar to the top edge | |
876 | if(y + blurRadius > M_IMGDATA->m_height - 1) | |
877 | pixel_idx = x + (M_IMGDATA->m_height - 1) * M_IMGDATA->m_width; | |
878 | else | |
879 | pixel_idx = x + (blurRadius + y) * M_IMGDATA->m_width; | |
880 | ||
881 | // Add the value of the pixel being added to the end of our box | |
882 | sum_r += src_data[pixel_idx * 3 + 0]; | |
883 | sum_g += src_data[pixel_idx * 3 + 1]; | |
884 | sum_b += src_data[pixel_idx * 3 + 2]; | |
885 | sum_a += src_alpha ? src_alpha[pixel_idx] : 0; | |
886 | ||
887 | // Save off the averaged data | |
888 | dst_data[(x + y * M_IMGDATA->m_width) * 3 + 0] = sum_r / (blurRadius * 2 + 1); | |
889 | dst_data[(x + y * M_IMGDATA->m_width) * 3 + 1] = sum_g / (blurRadius * 2 + 1); | |
890 | dst_data[(x + y * M_IMGDATA->m_width) * 3 + 2] = sum_b / (blurRadius * 2 + 1); | |
891 | if(src_alpha) | |
892 | dst_alpha[x + y * M_IMGDATA->m_width] = sum_a / (blurRadius * 2 + 1); | |
893 | } | |
894 | } | |
895 | ||
896 | return ret_image; | |
897 | } | |
898 | ||
899 | // The new blur function | |
900 | wxImage wxImage::Blur(int blurRadius) | |
901 | { | |
902 | wxImage ret_image; | |
903 | ret_image.Create(M_IMGDATA->m_width, M_IMGDATA->m_height, false); | |
904 | ||
905 | // Blur the image in each direction | |
906 | ret_image = BlurHorizontal(blurRadius); | |
907 | ret_image = ret_image.BlurVertical(blurRadius); | |
908 | ||
909 | return ret_image; | |
910 | } | |
911 | ||
912 | wxImage wxImage::Rotate90( bool clockwise ) const | |
913 | { | |
914 | wxImage image; | |
915 | ||
916 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
917 | ||
918 | image.Create( M_IMGDATA->m_height, M_IMGDATA->m_width, false ); | |
919 | ||
920 | unsigned char *data = image.GetData(); | |
921 | ||
922 | wxCHECK_MSG( data, image, wxT("unable to create image") ); | |
923 | ||
924 | unsigned char *source_data = M_IMGDATA->m_data; | |
925 | unsigned char *target_data; | |
926 | unsigned char *alpha_data = 0 ; | |
927 | unsigned char *source_alpha = 0 ; | |
928 | unsigned char *target_alpha = 0 ; | |
929 | ||
930 | if (M_IMGDATA->m_hasMask) | |
931 | { | |
932 | image.SetMaskColour( M_IMGDATA->m_maskRed, M_IMGDATA->m_maskGreen, M_IMGDATA->m_maskBlue ); | |
933 | } | |
934 | else | |
935 | { | |
936 | source_alpha = M_IMGDATA->m_alpha ; | |
937 | if ( source_alpha ) | |
938 | { | |
939 | image.SetAlpha() ; | |
940 | alpha_data = image.GetAlpha() ; | |
941 | } | |
942 | } | |
943 | ||
944 | long height = M_IMGDATA->m_height; | |
945 | long width = M_IMGDATA->m_width; | |
946 | ||
947 | for (long j = 0; j < height; j++) | |
948 | { | |
949 | for (long i = 0; i < width; i++) | |
950 | { | |
951 | if (clockwise) | |
952 | { | |
953 | target_data = data + (((i+1)*height) - j - 1)*3; | |
954 | if(source_alpha) | |
955 | target_alpha = alpha_data + (((i+1)*height) - j - 1); | |
956 | } | |
957 | else | |
958 | { | |
959 | target_data = data + ((height*(width-1)) + j - (i*height))*3; | |
960 | if(source_alpha) | |
961 | target_alpha = alpha_data + ((height*(width-1)) + j - (i*height)); | |
962 | } | |
963 | memcpy( target_data, source_data, 3 ); | |
964 | source_data += 3; | |
965 | ||
966 | if(source_alpha) | |
967 | { | |
968 | memcpy( target_alpha, source_alpha, 1 ); | |
969 | source_alpha += 1; | |
970 | } | |
971 | } | |
972 | } | |
973 | ||
974 | return image; | |
975 | } | |
976 | ||
977 | wxImage wxImage::Mirror( bool horizontally ) const | |
978 | { | |
979 | wxImage image; | |
980 | ||
981 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
982 | ||
983 | image.Create( M_IMGDATA->m_width, M_IMGDATA->m_height, false ); | |
984 | ||
985 | unsigned char *data = image.GetData(); | |
986 | unsigned char *alpha = NULL; | |
987 | ||
988 | wxCHECK_MSG( data, image, wxT("unable to create image") ); | |
989 | ||
990 | if (M_IMGDATA->m_alpha != NULL) { | |
991 | image.SetAlpha(); | |
992 | alpha = image.GetAlpha(); | |
993 | wxCHECK_MSG( alpha, image, wxT("unable to create alpha channel") ); | |
994 | } | |
995 | ||
996 | if (M_IMGDATA->m_hasMask) | |
997 | image.SetMaskColour( M_IMGDATA->m_maskRed, M_IMGDATA->m_maskGreen, M_IMGDATA->m_maskBlue ); | |
998 | ||
999 | long height = M_IMGDATA->m_height; | |
1000 | long width = M_IMGDATA->m_width; | |
1001 | ||
1002 | unsigned char *source_data = M_IMGDATA->m_data; | |
1003 | unsigned char *target_data; | |
1004 | ||
1005 | if (horizontally) | |
1006 | { | |
1007 | for (long j = 0; j < height; j++) | |
1008 | { | |
1009 | data += width*3; | |
1010 | target_data = data-3; | |
1011 | for (long i = 0; i < width; i++) | |
1012 | { | |
1013 | memcpy( target_data, source_data, 3 ); | |
1014 | source_data += 3; | |
1015 | target_data -= 3; | |
1016 | } | |
1017 | } | |
1018 | ||
1019 | if (alpha != NULL) | |
1020 | { | |
1021 | // src_alpha starts at the first pixel and increases by 1 after each step | |
1022 | // (a step here is the copy of the alpha value of one pixel) | |
1023 | const unsigned char *src_alpha = M_IMGDATA->m_alpha; | |
1024 | // dest_alpha starts just beyond the first line, decreases before each step, | |
1025 | // and after each line is finished, increases by 2 widths (skipping the line | |
1026 | // just copied and the line that will be copied next) | |
1027 | unsigned char *dest_alpha = alpha + width; | |
1028 | ||
1029 | for (long jj = 0; jj < height; ++jj) | |
1030 | { | |
1031 | for (long i = 0; i < width; ++i) { | |
1032 | *(--dest_alpha) = *(src_alpha++); // copy one pixel | |
1033 | } | |
1034 | dest_alpha += 2 * width; // advance beyond the end of the next line | |
1035 | } | |
1036 | } | |
1037 | } | |
1038 | else | |
1039 | { | |
1040 | for (long i = 0; i < height; i++) | |
1041 | { | |
1042 | target_data = data + 3*width*(height-1-i); | |
1043 | memcpy( target_data, source_data, (size_t)3*width ); | |
1044 | source_data += 3*width; | |
1045 | } | |
1046 | ||
1047 | if (alpha != NULL) | |
1048 | { | |
1049 | // src_alpha starts at the first pixel and increases by 1 width after each step | |
1050 | // (a step here is the copy of the alpha channel of an entire line) | |
1051 | const unsigned char *src_alpha = M_IMGDATA->m_alpha; | |
1052 | // dest_alpha starts just beyond the last line (beyond the whole image) | |
1053 | // and decreases by 1 width before each step | |
1054 | unsigned char *dest_alpha = alpha + width * height; | |
1055 | ||
1056 | for (long jj = 0; jj < height; ++jj) | |
1057 | { | |
1058 | dest_alpha -= width; | |
1059 | memcpy( dest_alpha, src_alpha, (size_t)width ); | |
1060 | src_alpha += width; | |
1061 | } | |
1062 | } | |
1063 | } | |
1064 | ||
1065 | return image; | |
1066 | } | |
1067 | ||
1068 | wxImage wxImage::GetSubImage( const wxRect &rect ) const | |
1069 | { | |
1070 | wxImage image; | |
1071 | ||
1072 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
1073 | ||
1074 | wxCHECK_MSG( (rect.GetLeft()>=0) && (rect.GetTop()>=0) && | |
1075 | (rect.GetRight()<=GetWidth()) && (rect.GetBottom()<=GetHeight()), | |
1076 | image, wxT("invalid subimage size") ); | |
1077 | ||
1078 | const int subwidth = rect.GetWidth(); | |
1079 | const int subheight = rect.GetHeight(); | |
1080 | ||
1081 | image.Create( subwidth, subheight, false ); | |
1082 | ||
1083 | const unsigned char *src_data = GetData(); | |
1084 | const unsigned char *src_alpha = M_IMGDATA->m_alpha; | |
1085 | unsigned char *subdata = image.GetData(); | |
1086 | unsigned char *subalpha = NULL; | |
1087 | ||
1088 | wxCHECK_MSG( subdata, image, wxT("unable to create image") ); | |
1089 | ||
1090 | if (src_alpha != NULL) { | |
1091 | image.SetAlpha(); | |
1092 | subalpha = image.GetAlpha(); | |
1093 | wxCHECK_MSG( subalpha, image, wxT("unable to create alpha channel")); | |
1094 | } | |
1095 | ||
1096 | if (M_IMGDATA->m_hasMask) | |
1097 | image.SetMaskColour( M_IMGDATA->m_maskRed, M_IMGDATA->m_maskGreen, M_IMGDATA->m_maskBlue ); | |
1098 | ||
1099 | const int width = GetWidth(); | |
1100 | const int pixsoff = rect.GetLeft() + width * rect.GetTop(); | |
1101 | ||
1102 | src_data += 3 * pixsoff; | |
1103 | src_alpha += pixsoff; // won't be used if was NULL, so this is ok | |
1104 | ||
1105 | for (long j = 0; j < subheight; ++j) | |
1106 | { | |
1107 | memcpy( subdata, src_data, 3 * subwidth ); | |
1108 | subdata += 3 * subwidth; | |
1109 | src_data += 3 * width; | |
1110 | if (subalpha != NULL) { | |
1111 | memcpy( subalpha, src_alpha, subwidth ); | |
1112 | subalpha += subwidth; | |
1113 | src_alpha += width; | |
1114 | } | |
1115 | } | |
1116 | ||
1117 | return image; | |
1118 | } | |
1119 | ||
1120 | wxImage wxImage::Size( const wxSize& size, const wxPoint& pos, | |
1121 | int r_, int g_, int b_ ) const | |
1122 | { | |
1123 | wxImage image; | |
1124 | ||
1125 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
1126 | wxCHECK_MSG( (size.GetWidth() > 0) && (size.GetHeight() > 0), image, wxT("invalid size") ); | |
1127 | ||
1128 | int width = GetWidth(), height = GetHeight(); | |
1129 | image.Create(size.GetWidth(), size.GetHeight(), false); | |
1130 | ||
1131 | unsigned char r = (unsigned char)r_; | |
1132 | unsigned char g = (unsigned char)g_; | |
1133 | unsigned char b = (unsigned char)b_; | |
1134 | if ((r_ == -1) && (g_ == -1) && (b_ == -1)) | |
1135 | { | |
1136 | GetOrFindMaskColour( &r, &g, &b ); | |
1137 | image.SetMaskColour(r, g, b); | |
1138 | } | |
1139 | ||
1140 | image.SetRGB(wxRect(), r, g, b); | |
1141 | ||
1142 | wxRect subRect(pos.x, pos.y, width, height); | |
1143 | wxRect finalRect(0, 0, size.GetWidth(), size.GetHeight()); | |
1144 | if (pos.x < 0) | |
1145 | finalRect.width -= pos.x; | |
1146 | if (pos.y < 0) | |
1147 | finalRect.height -= pos.y; | |
1148 | ||
1149 | subRect.Intersect(finalRect); | |
1150 | ||
1151 | if (!subRect.IsEmpty()) | |
1152 | { | |
1153 | if ((subRect.GetWidth() == width) && (subRect.GetHeight() == height)) | |
1154 | image.Paste(*this, pos.x, pos.y); | |
1155 | else | |
1156 | image.Paste(GetSubImage(subRect), pos.x, pos.y); | |
1157 | } | |
1158 | ||
1159 | return image; | |
1160 | } | |
1161 | ||
1162 | void wxImage::Paste( const wxImage &image, int x, int y ) | |
1163 | { | |
1164 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1165 | wxCHECK_RET( image.Ok(), wxT("invalid image") ); | |
1166 | ||
1167 | AllocExclusive(); | |
1168 | ||
1169 | int xx = 0; | |
1170 | int yy = 0; | |
1171 | int width = image.GetWidth(); | |
1172 | int height = image.GetHeight(); | |
1173 | ||
1174 | if (x < 0) | |
1175 | { | |
1176 | xx = -x; | |
1177 | width += x; | |
1178 | } | |
1179 | if (y < 0) | |
1180 | { | |
1181 | yy = -y; | |
1182 | height += y; | |
1183 | } | |
1184 | ||
1185 | if ((x+xx)+width > M_IMGDATA->m_width) | |
1186 | width = M_IMGDATA->m_width - (x+xx); | |
1187 | if ((y+yy)+height > M_IMGDATA->m_height) | |
1188 | height = M_IMGDATA->m_height - (y+yy); | |
1189 | ||
1190 | if (width < 1) return; | |
1191 | if (height < 1) return; | |
1192 | ||
1193 | if ((!HasMask() && !image.HasMask()) || | |
1194 | (HasMask() && !image.HasMask()) || | |
1195 | ((HasMask() && image.HasMask() && | |
1196 | (GetMaskRed()==image.GetMaskRed()) && | |
1197 | (GetMaskGreen()==image.GetMaskGreen()) && | |
1198 | (GetMaskBlue()==image.GetMaskBlue())))) | |
1199 | { | |
1200 | width *= 3; | |
1201 | unsigned char* source_data = image.GetData() + xx*3 + yy*3*image.GetWidth(); | |
1202 | int source_step = image.GetWidth()*3; | |
1203 | ||
1204 | unsigned char* target_data = GetData() + (x+xx)*3 + (y+yy)*3*M_IMGDATA->m_width; | |
1205 | int target_step = M_IMGDATA->m_width*3; | |
1206 | for (int j = 0; j < height; j++) | |
1207 | { | |
1208 | memcpy( target_data, source_data, width ); | |
1209 | source_data += source_step; | |
1210 | target_data += target_step; | |
1211 | } | |
1212 | return; | |
1213 | } | |
1214 | ||
1215 | if (!HasMask() && image.HasMask()) | |
1216 | { | |
1217 | unsigned char r = image.GetMaskRed(); | |
1218 | unsigned char g = image.GetMaskGreen(); | |
1219 | unsigned char b = image.GetMaskBlue(); | |
1220 | ||
1221 | width *= 3; | |
1222 | unsigned char* source_data = image.GetData() + xx*3 + yy*3*image.GetWidth(); | |
1223 | int source_step = image.GetWidth()*3; | |
1224 | ||
1225 | unsigned char* target_data = GetData() + (x+xx)*3 + (y+yy)*3*M_IMGDATA->m_width; | |
1226 | int target_step = M_IMGDATA->m_width*3; | |
1227 | ||
1228 | for (int j = 0; j < height; j++) | |
1229 | { | |
1230 | for (int i = 0; i < width; i+=3) | |
1231 | { | |
1232 | if ((source_data[i] != r) && | |
1233 | (source_data[i+1] != g) && | |
1234 | (source_data[i+2] != b)) | |
1235 | { | |
1236 | memcpy( target_data+i, source_data+i, 3 ); | |
1237 | } | |
1238 | } | |
1239 | source_data += source_step; | |
1240 | target_data += target_step; | |
1241 | } | |
1242 | } | |
1243 | } | |
1244 | ||
1245 | void wxImage::Replace( unsigned char r1, unsigned char g1, unsigned char b1, | |
1246 | unsigned char r2, unsigned char g2, unsigned char b2 ) | |
1247 | { | |
1248 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1249 | ||
1250 | AllocExclusive(); | |
1251 | ||
1252 | unsigned char *data = GetData(); | |
1253 | ||
1254 | const int w = GetWidth(); | |
1255 | const int h = GetHeight(); | |
1256 | ||
1257 | for (int j = 0; j < h; j++) | |
1258 | for (int i = 0; i < w; i++) | |
1259 | { | |
1260 | if ((data[0] == r1) && (data[1] == g1) && (data[2] == b1)) | |
1261 | { | |
1262 | data[0] = r2; | |
1263 | data[1] = g2; | |
1264 | data[2] = b2; | |
1265 | } | |
1266 | data += 3; | |
1267 | } | |
1268 | } | |
1269 | ||
1270 | wxImage wxImage::ConvertToGreyscale( double lr, double lg, double lb ) const | |
1271 | { | |
1272 | wxImage image; | |
1273 | ||
1274 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
1275 | ||
1276 | image.Create(M_IMGDATA->m_width, M_IMGDATA->m_height, false); | |
1277 | ||
1278 | unsigned char *dest = image.GetData(); | |
1279 | ||
1280 | wxCHECK_MSG( dest, image, wxT("unable to create image") ); | |
1281 | ||
1282 | unsigned char *src = M_IMGDATA->m_data; | |
1283 | bool hasMask = M_IMGDATA->m_hasMask; | |
1284 | unsigned char maskRed = M_IMGDATA->m_maskRed; | |
1285 | unsigned char maskGreen = M_IMGDATA->m_maskGreen; | |
1286 | unsigned char maskBlue = M_IMGDATA->m_maskBlue; | |
1287 | ||
1288 | if ( hasMask ) | |
1289 | image.SetMaskColour(maskRed, maskGreen, maskBlue); | |
1290 | ||
1291 | const long size = M_IMGDATA->m_width * M_IMGDATA->m_height; | |
1292 | for ( long i = 0; i < size; i++, src += 3, dest += 3 ) | |
1293 | { | |
1294 | // don't modify the mask | |
1295 | if ( hasMask && src[0] == maskRed && src[1] == maskGreen && src[2] == maskBlue ) | |
1296 | { | |
1297 | memcpy(dest, src, 3); | |
1298 | } | |
1299 | else | |
1300 | { | |
1301 | // calculate the luma | |
1302 | double luma = (src[0] * lr + src[1] * lg + src[2] * lb) + 0.5; | |
1303 | dest[0] = dest[1] = dest[2] = wx_static_cast(unsigned char, luma); | |
1304 | } | |
1305 | } | |
1306 | ||
1307 | // copy the alpha channel, if any | |
1308 | if (HasAlpha()) | |
1309 | { | |
1310 | const size_t alphaSize = GetWidth() * GetHeight(); | |
1311 | unsigned char *alpha = (unsigned char*)malloc(alphaSize); | |
1312 | memcpy(alpha, GetAlpha(), alphaSize); | |
1313 | image.InitAlpha(); | |
1314 | image.SetAlpha(alpha); | |
1315 | } | |
1316 | ||
1317 | return image; | |
1318 | } | |
1319 | ||
1320 | wxImage wxImage::ConvertToMono( unsigned char r, unsigned char g, unsigned char b ) const | |
1321 | { | |
1322 | wxImage image; | |
1323 | ||
1324 | wxCHECK_MSG( Ok(), image, wxT("invalid image") ); | |
1325 | ||
1326 | image.Create( M_IMGDATA->m_width, M_IMGDATA->m_height, false ); | |
1327 | ||
1328 | unsigned char *data = image.GetData(); | |
1329 | ||
1330 | wxCHECK_MSG( data, image, wxT("unable to create image") ); | |
1331 | ||
1332 | if (M_IMGDATA->m_hasMask) | |
1333 | { | |
1334 | if (M_IMGDATA->m_maskRed == r && M_IMGDATA->m_maskGreen == g && | |
1335 | M_IMGDATA->m_maskBlue == b) | |
1336 | image.SetMaskColour( 255, 255, 255 ); | |
1337 | else | |
1338 | image.SetMaskColour( 0, 0, 0 ); | |
1339 | } | |
1340 | ||
1341 | long size = M_IMGDATA->m_height * M_IMGDATA->m_width; | |
1342 | ||
1343 | unsigned char *srcd = M_IMGDATA->m_data; | |
1344 | unsigned char *tard = image.GetData(); | |
1345 | ||
1346 | for ( long i = 0; i < size; i++, srcd += 3, tard += 3 ) | |
1347 | { | |
1348 | if (srcd[0] == r && srcd[1] == g && srcd[2] == b) | |
1349 | tard[0] = tard[1] = tard[2] = 255; | |
1350 | else | |
1351 | tard[0] = tard[1] = tard[2] = 0; | |
1352 | } | |
1353 | ||
1354 | return image; | |
1355 | } | |
1356 | ||
1357 | int wxImage::GetWidth() const | |
1358 | { | |
1359 | wxCHECK_MSG( Ok(), 0, wxT("invalid image") ); | |
1360 | ||
1361 | return M_IMGDATA->m_width; | |
1362 | } | |
1363 | ||
1364 | int wxImage::GetHeight() const | |
1365 | { | |
1366 | wxCHECK_MSG( Ok(), 0, wxT("invalid image") ); | |
1367 | ||
1368 | return M_IMGDATA->m_height; | |
1369 | } | |
1370 | ||
1371 | long wxImage::XYToIndex(int x, int y) const | |
1372 | { | |
1373 | if ( Ok() && | |
1374 | x >= 0 && y >= 0 && | |
1375 | x < M_IMGDATA->m_width && y < M_IMGDATA->m_height ) | |
1376 | { | |
1377 | return y*M_IMGDATA->m_width + x; | |
1378 | } | |
1379 | ||
1380 | return -1; | |
1381 | } | |
1382 | ||
1383 | void wxImage::SetRGB( int x, int y, unsigned char r, unsigned char g, unsigned char b ) | |
1384 | { | |
1385 | long pos = XYToIndex(x, y); | |
1386 | wxCHECK_RET( pos != -1, wxT("invalid image coordinates") ); | |
1387 | ||
1388 | AllocExclusive(); | |
1389 | ||
1390 | pos *= 3; | |
1391 | ||
1392 | M_IMGDATA->m_data[ pos ] = r; | |
1393 | M_IMGDATA->m_data[ pos+1 ] = g; | |
1394 | M_IMGDATA->m_data[ pos+2 ] = b; | |
1395 | } | |
1396 | ||
1397 | void wxImage::SetRGB( const wxRect& rect_, unsigned char r, unsigned char g, unsigned char b ) | |
1398 | { | |
1399 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1400 | ||
1401 | AllocExclusive(); | |
1402 | ||
1403 | wxRect rect(rect_); | |
1404 | wxRect imageRect(0, 0, GetWidth(), GetHeight()); | |
1405 | if ( rect == wxRect() ) | |
1406 | { | |
1407 | rect = imageRect; | |
1408 | } | |
1409 | else | |
1410 | { | |
1411 | wxCHECK_RET( imageRect.Contains(rect.GetTopLeft()) && | |
1412 | imageRect.Contains(rect.GetBottomRight()), | |
1413 | wxT("invalid bounding rectangle") ); | |
1414 | } | |
1415 | ||
1416 | int x1 = rect.GetLeft(), | |
1417 | y1 = rect.GetTop(), | |
1418 | x2 = rect.GetRight() + 1, | |
1419 | y2 = rect.GetBottom() + 1; | |
1420 | ||
1421 | unsigned char *data wxDUMMY_INITIALIZE(NULL); | |
1422 | int x, y, width = GetWidth(); | |
1423 | for (y = y1; y < y2; y++) | |
1424 | { | |
1425 | data = M_IMGDATA->m_data + (y*width + x1)*3; | |
1426 | for (x = x1; x < x2; x++) | |
1427 | { | |
1428 | *data++ = r; | |
1429 | *data++ = g; | |
1430 | *data++ = b; | |
1431 | } | |
1432 | } | |
1433 | } | |
1434 | ||
1435 | unsigned char wxImage::GetRed( int x, int y ) const | |
1436 | { | |
1437 | long pos = XYToIndex(x, y); | |
1438 | wxCHECK_MSG( pos != -1, 0, wxT("invalid image coordinates") ); | |
1439 | ||
1440 | pos *= 3; | |
1441 | ||
1442 | return M_IMGDATA->m_data[pos]; | |
1443 | } | |
1444 | ||
1445 | unsigned char wxImage::GetGreen( int x, int y ) const | |
1446 | { | |
1447 | long pos = XYToIndex(x, y); | |
1448 | wxCHECK_MSG( pos != -1, 0, wxT("invalid image coordinates") ); | |
1449 | ||
1450 | pos *= 3; | |
1451 | ||
1452 | return M_IMGDATA->m_data[pos+1]; | |
1453 | } | |
1454 | ||
1455 | unsigned char wxImage::GetBlue( int x, int y ) const | |
1456 | { | |
1457 | long pos = XYToIndex(x, y); | |
1458 | wxCHECK_MSG( pos != -1, 0, wxT("invalid image coordinates") ); | |
1459 | ||
1460 | pos *= 3; | |
1461 | ||
1462 | return M_IMGDATA->m_data[pos+2]; | |
1463 | } | |
1464 | ||
1465 | bool wxImage::Ok() const | |
1466 | { | |
1467 | // image of 0 width or height can't be considered ok - at least because it | |
1468 | // causes crashes in ConvertToBitmap() if we don't catch it in time | |
1469 | wxImageRefData *data = M_IMGDATA; | |
1470 | return data && data->m_ok && data->m_width && data->m_height; | |
1471 | } | |
1472 | ||
1473 | unsigned char *wxImage::GetData() const | |
1474 | { | |
1475 | wxCHECK_MSG( Ok(), (unsigned char *)NULL, wxT("invalid image") ); | |
1476 | ||
1477 | return M_IMGDATA->m_data; | |
1478 | } | |
1479 | ||
1480 | void wxImage::SetData( unsigned char *data, bool static_data ) | |
1481 | { | |
1482 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1483 | ||
1484 | wxImageRefData *newRefData = new wxImageRefData(); | |
1485 | ||
1486 | newRefData->m_width = M_IMGDATA->m_width; | |
1487 | newRefData->m_height = M_IMGDATA->m_height; | |
1488 | newRefData->m_data = data; | |
1489 | newRefData->m_ok = true; | |
1490 | newRefData->m_maskRed = M_IMGDATA->m_maskRed; | |
1491 | newRefData->m_maskGreen = M_IMGDATA->m_maskGreen; | |
1492 | newRefData->m_maskBlue = M_IMGDATA->m_maskBlue; | |
1493 | newRefData->m_hasMask = M_IMGDATA->m_hasMask; | |
1494 | newRefData->m_static = static_data; | |
1495 | ||
1496 | UnRef(); | |
1497 | ||
1498 | m_refData = newRefData; | |
1499 | } | |
1500 | ||
1501 | void wxImage::SetData( unsigned char *data, int new_width, int new_height, bool static_data ) | |
1502 | { | |
1503 | wxImageRefData *newRefData = new wxImageRefData(); | |
1504 | ||
1505 | if (m_refData) | |
1506 | { | |
1507 | newRefData->m_width = new_width; | |
1508 | newRefData->m_height = new_height; | |
1509 | newRefData->m_data = data; | |
1510 | newRefData->m_ok = true; | |
1511 | newRefData->m_maskRed = M_IMGDATA->m_maskRed; | |
1512 | newRefData->m_maskGreen = M_IMGDATA->m_maskGreen; | |
1513 | newRefData->m_maskBlue = M_IMGDATA->m_maskBlue; | |
1514 | newRefData->m_hasMask = M_IMGDATA->m_hasMask; | |
1515 | } | |
1516 | else | |
1517 | { | |
1518 | newRefData->m_width = new_width; | |
1519 | newRefData->m_height = new_height; | |
1520 | newRefData->m_data = data; | |
1521 | newRefData->m_ok = true; | |
1522 | } | |
1523 | newRefData->m_static = static_data; | |
1524 | ||
1525 | UnRef(); | |
1526 | ||
1527 | m_refData = newRefData; | |
1528 | } | |
1529 | ||
1530 | // ---------------------------------------------------------------------------- | |
1531 | // alpha channel support | |
1532 | // ---------------------------------------------------------------------------- | |
1533 | ||
1534 | void wxImage::SetAlpha(int x, int y, unsigned char alpha) | |
1535 | { | |
1536 | wxCHECK_RET( HasAlpha(), wxT("no alpha channel") ); | |
1537 | ||
1538 | long pos = XYToIndex(x, y); | |
1539 | wxCHECK_RET( pos != -1, wxT("invalid image coordinates") ); | |
1540 | ||
1541 | AllocExclusive(); | |
1542 | ||
1543 | M_IMGDATA->m_alpha[pos] = alpha; | |
1544 | } | |
1545 | ||
1546 | unsigned char wxImage::GetAlpha(int x, int y) const | |
1547 | { | |
1548 | wxCHECK_MSG( HasAlpha(), 0, wxT("no alpha channel") ); | |
1549 | ||
1550 | long pos = XYToIndex(x, y); | |
1551 | wxCHECK_MSG( pos != -1, 0, wxT("invalid image coordinates") ); | |
1552 | ||
1553 | return M_IMGDATA->m_alpha[pos]; | |
1554 | } | |
1555 | ||
1556 | bool | |
1557 | wxImage::ConvertColourToAlpha(unsigned char r, unsigned char g, unsigned char b) | |
1558 | { | |
1559 | SetAlpha(NULL); | |
1560 | ||
1561 | const int w = M_IMGDATA->m_width; | |
1562 | const int h = M_IMGDATA->m_height; | |
1563 | ||
1564 | unsigned char *alpha = GetAlpha(); | |
1565 | unsigned char *data = GetData(); | |
1566 | ||
1567 | for ( int y = 0; y < h; y++ ) | |
1568 | { | |
1569 | for ( int x = 0; x < w; x++ ) | |
1570 | { | |
1571 | *alpha++ = *data; | |
1572 | *data++ = r; | |
1573 | *data++ = g; | |
1574 | *data++ = b; | |
1575 | } | |
1576 | } | |
1577 | ||
1578 | return true; | |
1579 | } | |
1580 | ||
1581 | void wxImage::SetAlpha( unsigned char *alpha, bool static_data ) | |
1582 | { | |
1583 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1584 | ||
1585 | AllocExclusive(); | |
1586 | ||
1587 | if ( !alpha ) | |
1588 | { | |
1589 | alpha = (unsigned char *)malloc(M_IMGDATA->m_width*M_IMGDATA->m_height); | |
1590 | } | |
1591 | ||
1592 | free(M_IMGDATA->m_alpha); | |
1593 | M_IMGDATA->m_alpha = alpha; | |
1594 | M_IMGDATA->m_staticAlpha = static_data; | |
1595 | } | |
1596 | ||
1597 | unsigned char *wxImage::GetAlpha() const | |
1598 | { | |
1599 | wxCHECK_MSG( Ok(), (unsigned char *)NULL, wxT("invalid image") ); | |
1600 | ||
1601 | return M_IMGDATA->m_alpha; | |
1602 | } | |
1603 | ||
1604 | void wxImage::InitAlpha() | |
1605 | { | |
1606 | wxCHECK_RET( !HasAlpha(), wxT("image already has an alpha channel") ); | |
1607 | ||
1608 | // initialize memory for alpha channel | |
1609 | SetAlpha(); | |
1610 | ||
1611 | unsigned char *alpha = M_IMGDATA->m_alpha; | |
1612 | const size_t lenAlpha = M_IMGDATA->m_width * M_IMGDATA->m_height; | |
1613 | ||
1614 | if ( HasMask() ) | |
1615 | { | |
1616 | // use the mask to initialize the alpha channel. | |
1617 | const unsigned char * const alphaEnd = alpha + lenAlpha; | |
1618 | ||
1619 | const unsigned char mr = M_IMGDATA->m_maskRed; | |
1620 | const unsigned char mg = M_IMGDATA->m_maskGreen; | |
1621 | const unsigned char mb = M_IMGDATA->m_maskBlue; | |
1622 | for ( unsigned char *src = M_IMGDATA->m_data; | |
1623 | alpha < alphaEnd; | |
1624 | src += 3, alpha++ ) | |
1625 | { | |
1626 | *alpha = (src[0] == mr && src[1] == mg && src[2] == mb) | |
1627 | ? wxIMAGE_ALPHA_TRANSPARENT | |
1628 | : wxIMAGE_ALPHA_OPAQUE; | |
1629 | } | |
1630 | ||
1631 | M_IMGDATA->m_hasMask = false; | |
1632 | } | |
1633 | else // no mask | |
1634 | { | |
1635 | // make the image fully opaque | |
1636 | memset(alpha, wxIMAGE_ALPHA_OPAQUE, lenAlpha); | |
1637 | } | |
1638 | } | |
1639 | ||
1640 | // ---------------------------------------------------------------------------- | |
1641 | // mask support | |
1642 | // ---------------------------------------------------------------------------- | |
1643 | ||
1644 | void wxImage::SetMaskColour( unsigned char r, unsigned char g, unsigned char b ) | |
1645 | { | |
1646 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1647 | ||
1648 | AllocExclusive(); | |
1649 | ||
1650 | M_IMGDATA->m_maskRed = r; | |
1651 | M_IMGDATA->m_maskGreen = g; | |
1652 | M_IMGDATA->m_maskBlue = b; | |
1653 | M_IMGDATA->m_hasMask = true; | |
1654 | } | |
1655 | ||
1656 | bool wxImage::GetOrFindMaskColour( unsigned char *r, unsigned char *g, unsigned char *b ) const | |
1657 | { | |
1658 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
1659 | ||
1660 | if (M_IMGDATA->m_hasMask) | |
1661 | { | |
1662 | if (r) *r = M_IMGDATA->m_maskRed; | |
1663 | if (g) *g = M_IMGDATA->m_maskGreen; | |
1664 | if (b) *b = M_IMGDATA->m_maskBlue; | |
1665 | return true; | |
1666 | } | |
1667 | else | |
1668 | { | |
1669 | FindFirstUnusedColour(r, g, b); | |
1670 | return false; | |
1671 | } | |
1672 | } | |
1673 | ||
1674 | unsigned char wxImage::GetMaskRed() const | |
1675 | { | |
1676 | wxCHECK_MSG( Ok(), 0, wxT("invalid image") ); | |
1677 | ||
1678 | return M_IMGDATA->m_maskRed; | |
1679 | } | |
1680 | ||
1681 | unsigned char wxImage::GetMaskGreen() const | |
1682 | { | |
1683 | wxCHECK_MSG( Ok(), 0, wxT("invalid image") ); | |
1684 | ||
1685 | return M_IMGDATA->m_maskGreen; | |
1686 | } | |
1687 | ||
1688 | unsigned char wxImage::GetMaskBlue() const | |
1689 | { | |
1690 | wxCHECK_MSG( Ok(), 0, wxT("invalid image") ); | |
1691 | ||
1692 | return M_IMGDATA->m_maskBlue; | |
1693 | } | |
1694 | ||
1695 | void wxImage::SetMask( bool mask ) | |
1696 | { | |
1697 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1698 | ||
1699 | AllocExclusive(); | |
1700 | ||
1701 | M_IMGDATA->m_hasMask = mask; | |
1702 | } | |
1703 | ||
1704 | bool wxImage::HasMask() const | |
1705 | { | |
1706 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
1707 | ||
1708 | return M_IMGDATA->m_hasMask; | |
1709 | } | |
1710 | ||
1711 | bool wxImage::IsTransparent(int x, int y, unsigned char threshold) const | |
1712 | { | |
1713 | long pos = XYToIndex(x, y); | |
1714 | wxCHECK_MSG( pos != -1, false, wxT("invalid image coordinates") ); | |
1715 | ||
1716 | // check mask | |
1717 | if ( M_IMGDATA->m_hasMask ) | |
1718 | { | |
1719 | const unsigned char *p = M_IMGDATA->m_data + 3*pos; | |
1720 | if ( p[0] == M_IMGDATA->m_maskRed && | |
1721 | p[1] == M_IMGDATA->m_maskGreen && | |
1722 | p[2] == M_IMGDATA->m_maskBlue ) | |
1723 | { | |
1724 | return true; | |
1725 | } | |
1726 | } | |
1727 | ||
1728 | // then check alpha | |
1729 | if ( M_IMGDATA->m_alpha ) | |
1730 | { | |
1731 | if ( M_IMGDATA->m_alpha[pos] < threshold ) | |
1732 | { | |
1733 | // transparent enough | |
1734 | return true; | |
1735 | } | |
1736 | } | |
1737 | ||
1738 | // not transparent | |
1739 | return false; | |
1740 | } | |
1741 | ||
1742 | bool wxImage::SetMaskFromImage(const wxImage& mask, | |
1743 | unsigned char mr, unsigned char mg, unsigned char mb) | |
1744 | { | |
1745 | // check that the images are the same size | |
1746 | if ( (M_IMGDATA->m_height != mask.GetHeight() ) || (M_IMGDATA->m_width != mask.GetWidth () ) ) | |
1747 | { | |
1748 | wxLogError( _("Image and mask have different sizes.") ); | |
1749 | return false; | |
1750 | } | |
1751 | ||
1752 | // find unused colour | |
1753 | unsigned char r,g,b ; | |
1754 | if (!FindFirstUnusedColour(&r, &g, &b)) | |
1755 | { | |
1756 | wxLogError( _("No unused colour in image being masked.") ); | |
1757 | return false ; | |
1758 | } | |
1759 | ||
1760 | AllocExclusive(); | |
1761 | ||
1762 | unsigned char *imgdata = GetData(); | |
1763 | unsigned char *maskdata = mask.GetData(); | |
1764 | ||
1765 | const int w = GetWidth(); | |
1766 | const int h = GetHeight(); | |
1767 | ||
1768 | for (int j = 0; j < h; j++) | |
1769 | { | |
1770 | for (int i = 0; i < w; i++) | |
1771 | { | |
1772 | if ((maskdata[0] == mr) && (maskdata[1] == mg) && (maskdata[2] == mb)) | |
1773 | { | |
1774 | imgdata[0] = r; | |
1775 | imgdata[1] = g; | |
1776 | imgdata[2] = b; | |
1777 | } | |
1778 | imgdata += 3; | |
1779 | maskdata += 3; | |
1780 | } | |
1781 | } | |
1782 | ||
1783 | SetMaskColour(r, g, b); | |
1784 | SetMask(true); | |
1785 | ||
1786 | return true; | |
1787 | } | |
1788 | ||
1789 | bool wxImage::ConvertAlphaToMask(unsigned char threshold) | |
1790 | { | |
1791 | if (!HasAlpha()) | |
1792 | return true; | |
1793 | ||
1794 | unsigned char mr, mg, mb; | |
1795 | if (!FindFirstUnusedColour(&mr, &mg, &mb)) | |
1796 | { | |
1797 | wxLogError( _("No unused colour in image being masked.") ); | |
1798 | return false; | |
1799 | } | |
1800 | ||
1801 | AllocExclusive(); | |
1802 | ||
1803 | SetMask(true); | |
1804 | SetMaskColour(mr, mg, mb); | |
1805 | ||
1806 | unsigned char *imgdata = GetData(); | |
1807 | unsigned char *alphadata = GetAlpha(); | |
1808 | ||
1809 | int w = GetWidth(); | |
1810 | int h = GetHeight(); | |
1811 | ||
1812 | for (int y = 0; y < h; y++) | |
1813 | { | |
1814 | for (int x = 0; x < w; x++, imgdata += 3, alphadata++) | |
1815 | { | |
1816 | if (*alphadata < threshold) | |
1817 | { | |
1818 | imgdata[0] = mr; | |
1819 | imgdata[1] = mg; | |
1820 | imgdata[2] = mb; | |
1821 | } | |
1822 | } | |
1823 | } | |
1824 | ||
1825 | free(M_IMGDATA->m_alpha); | |
1826 | M_IMGDATA->m_alpha = NULL; | |
1827 | ||
1828 | return true; | |
1829 | } | |
1830 | ||
1831 | // ---------------------------------------------------------------------------- | |
1832 | // Palette functions | |
1833 | // ---------------------------------------------------------------------------- | |
1834 | ||
1835 | #if wxUSE_PALETTE | |
1836 | ||
1837 | bool wxImage::HasPalette() const | |
1838 | { | |
1839 | if (!Ok()) | |
1840 | return false; | |
1841 | ||
1842 | return M_IMGDATA->m_palette.Ok(); | |
1843 | } | |
1844 | ||
1845 | const wxPalette& wxImage::GetPalette() const | |
1846 | { | |
1847 | wxCHECK_MSG( Ok(), wxNullPalette, wxT("invalid image") ); | |
1848 | ||
1849 | return M_IMGDATA->m_palette; | |
1850 | } | |
1851 | ||
1852 | void wxImage::SetPalette(const wxPalette& palette) | |
1853 | { | |
1854 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1855 | ||
1856 | AllocExclusive(); | |
1857 | ||
1858 | M_IMGDATA->m_palette = palette; | |
1859 | } | |
1860 | ||
1861 | #endif // wxUSE_PALETTE | |
1862 | ||
1863 | // ---------------------------------------------------------------------------- | |
1864 | // Option functions (arbitrary name/value mapping) | |
1865 | // ---------------------------------------------------------------------------- | |
1866 | ||
1867 | void wxImage::SetOption(const wxString& name, const wxString& value) | |
1868 | { | |
1869 | wxCHECK_RET( Ok(), wxT("invalid image") ); | |
1870 | ||
1871 | AllocExclusive(); | |
1872 | ||
1873 | int idx = M_IMGDATA->m_optionNames.Index(name, false); | |
1874 | if (idx == wxNOT_FOUND) | |
1875 | { | |
1876 | M_IMGDATA->m_optionNames.Add(name); | |
1877 | M_IMGDATA->m_optionValues.Add(value); | |
1878 | } | |
1879 | else | |
1880 | { | |
1881 | M_IMGDATA->m_optionNames[idx] = name; | |
1882 | M_IMGDATA->m_optionValues[idx] = value; | |
1883 | } | |
1884 | } | |
1885 | ||
1886 | void wxImage::SetOption(const wxString& name, int value) | |
1887 | { | |
1888 | wxString valStr; | |
1889 | valStr.Printf(wxT("%d"), value); | |
1890 | SetOption(name, valStr); | |
1891 | } | |
1892 | ||
1893 | wxString wxImage::GetOption(const wxString& name) const | |
1894 | { | |
1895 | wxCHECK_MSG( Ok(), wxEmptyString, wxT("invalid image") ); | |
1896 | ||
1897 | int idx = M_IMGDATA->m_optionNames.Index(name, false); | |
1898 | if (idx == wxNOT_FOUND) | |
1899 | return wxEmptyString; | |
1900 | else | |
1901 | return M_IMGDATA->m_optionValues[idx]; | |
1902 | } | |
1903 | ||
1904 | int wxImage::GetOptionInt(const wxString& name) const | |
1905 | { | |
1906 | return wxAtoi(GetOption(name)); | |
1907 | } | |
1908 | ||
1909 | bool wxImage::HasOption(const wxString& name) const | |
1910 | { | |
1911 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
1912 | ||
1913 | return (M_IMGDATA->m_optionNames.Index(name, false) != wxNOT_FOUND); | |
1914 | } | |
1915 | ||
1916 | // ---------------------------------------------------------------------------- | |
1917 | // image I/O | |
1918 | // ---------------------------------------------------------------------------- | |
1919 | ||
1920 | bool wxImage::LoadFile( const wxString& WXUNUSED_UNLESS_STREAMS(filename), | |
1921 | long WXUNUSED_UNLESS_STREAMS(type), | |
1922 | int WXUNUSED_UNLESS_STREAMS(index) ) | |
1923 | { | |
1924 | #if HAS_FILE_STREAMS | |
1925 | if (wxFileExists(filename)) | |
1926 | { | |
1927 | wxImageFileInputStream stream(filename); | |
1928 | wxBufferedInputStream bstream( stream ); | |
1929 | return LoadFile(bstream, type, index); | |
1930 | } | |
1931 | else | |
1932 | { | |
1933 | wxLogError( _("Can't load image from file '%s': file does not exist."), filename.c_str() ); | |
1934 | ||
1935 | return false; | |
1936 | } | |
1937 | #else // !HAS_FILE_STREAMS | |
1938 | return false; | |
1939 | #endif // HAS_FILE_STREAMS | |
1940 | } | |
1941 | ||
1942 | bool wxImage::LoadFile( const wxString& WXUNUSED_UNLESS_STREAMS(filename), | |
1943 | const wxString& WXUNUSED_UNLESS_STREAMS(mimetype), | |
1944 | int WXUNUSED_UNLESS_STREAMS(index) ) | |
1945 | { | |
1946 | #if HAS_FILE_STREAMS | |
1947 | if (wxFileExists(filename)) | |
1948 | { | |
1949 | wxImageFileInputStream stream(filename); | |
1950 | wxBufferedInputStream bstream( stream ); | |
1951 | return LoadFile(bstream, mimetype, index); | |
1952 | } | |
1953 | else | |
1954 | { | |
1955 | wxLogError( _("Can't load image from file '%s': file does not exist."), filename.c_str() ); | |
1956 | ||
1957 | return false; | |
1958 | } | |
1959 | #else // !HAS_FILE_STREAMS | |
1960 | return false; | |
1961 | #endif // HAS_FILE_STREAMS | |
1962 | } | |
1963 | ||
1964 | ||
1965 | ||
1966 | bool wxImage::SaveFile( const wxString& filename ) const | |
1967 | { | |
1968 | wxString ext = filename.AfterLast('.').Lower(); | |
1969 | ||
1970 | wxImageHandler * pHandler = FindHandler(ext, -1); | |
1971 | if (pHandler) | |
1972 | { | |
1973 | SaveFile(filename, pHandler->GetType()); | |
1974 | return true; | |
1975 | } | |
1976 | ||
1977 | wxLogError(_("Can't save image to file '%s': unknown extension."), filename.c_str()); | |
1978 | ||
1979 | return false; | |
1980 | } | |
1981 | ||
1982 | bool wxImage::SaveFile( const wxString& WXUNUSED_UNLESS_STREAMS(filename), | |
1983 | int WXUNUSED_UNLESS_STREAMS(type) ) const | |
1984 | { | |
1985 | #if HAS_FILE_STREAMS | |
1986 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
1987 | ||
1988 | ((wxImage*)this)->SetOption(wxIMAGE_OPTION_FILENAME, filename); | |
1989 | ||
1990 | wxImageFileOutputStream stream(filename); | |
1991 | ||
1992 | if ( stream.IsOk() ) | |
1993 | { | |
1994 | wxBufferedOutputStream bstream( stream ); | |
1995 | return SaveFile(bstream, type); | |
1996 | } | |
1997 | #endif // HAS_FILE_STREAMS | |
1998 | ||
1999 | return false; | |
2000 | } | |
2001 | ||
2002 | bool wxImage::SaveFile( const wxString& WXUNUSED_UNLESS_STREAMS(filename), | |
2003 | const wxString& WXUNUSED_UNLESS_STREAMS(mimetype) ) const | |
2004 | { | |
2005 | #if HAS_FILE_STREAMS | |
2006 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
2007 | ||
2008 | ((wxImage*)this)->SetOption(wxIMAGE_OPTION_FILENAME, filename); | |
2009 | ||
2010 | wxImageFileOutputStream stream(filename); | |
2011 | ||
2012 | if ( stream.IsOk() ) | |
2013 | { | |
2014 | wxBufferedOutputStream bstream( stream ); | |
2015 | return SaveFile(bstream, mimetype); | |
2016 | } | |
2017 | #endif // HAS_FILE_STREAMS | |
2018 | ||
2019 | return false; | |
2020 | } | |
2021 | ||
2022 | bool wxImage::CanRead( const wxString& WXUNUSED_UNLESS_STREAMS(name) ) | |
2023 | { | |
2024 | #if HAS_FILE_STREAMS | |
2025 | wxImageFileInputStream stream(name); | |
2026 | return CanRead(stream); | |
2027 | #else | |
2028 | return false; | |
2029 | #endif | |
2030 | } | |
2031 | ||
2032 | int wxImage::GetImageCount( const wxString& WXUNUSED_UNLESS_STREAMS(name), | |
2033 | long WXUNUSED_UNLESS_STREAMS(type) ) | |
2034 | { | |
2035 | #if HAS_FILE_STREAMS | |
2036 | wxImageFileInputStream stream(name); | |
2037 | if (stream.Ok()) | |
2038 | return GetImageCount(stream, type); | |
2039 | #endif | |
2040 | ||
2041 | return 0; | |
2042 | } | |
2043 | ||
2044 | #if wxUSE_STREAMS | |
2045 | ||
2046 | bool wxImage::CanRead( wxInputStream &stream ) | |
2047 | { | |
2048 | const wxList& list = GetHandlers(); | |
2049 | ||
2050 | for ( wxList::compatibility_iterator node = list.GetFirst(); node; node = node->GetNext() ) | |
2051 | { | |
2052 | wxImageHandler *handler=(wxImageHandler*)node->GetData(); | |
2053 | if (handler->CanRead( stream )) | |
2054 | return true; | |
2055 | } | |
2056 | ||
2057 | return false; | |
2058 | } | |
2059 | ||
2060 | int wxImage::GetImageCount( wxInputStream &stream, long type ) | |
2061 | { | |
2062 | wxImageHandler *handler; | |
2063 | ||
2064 | if ( type == wxBITMAP_TYPE_ANY ) | |
2065 | { | |
2066 | wxList &list=GetHandlers(); | |
2067 | ||
2068 | for (wxList::compatibility_iterator node = list.GetFirst(); node; node = node->GetNext()) | |
2069 | { | |
2070 | handler=(wxImageHandler*)node->GetData(); | |
2071 | if ( handler->CanRead(stream) ) | |
2072 | return handler->GetImageCount(stream); | |
2073 | ||
2074 | } | |
2075 | ||
2076 | wxLogWarning(_("No handler found for image type.")); | |
2077 | return 0; | |
2078 | } | |
2079 | ||
2080 | handler = FindHandler(type); | |
2081 | ||
2082 | if ( !handler ) | |
2083 | { | |
2084 | wxLogWarning(_("No image handler for type %ld defined."), type); | |
2085 | return false; | |
2086 | } | |
2087 | ||
2088 | if ( handler->CanRead(stream) ) | |
2089 | { | |
2090 | return handler->GetImageCount(stream); | |
2091 | } | |
2092 | else | |
2093 | { | |
2094 | wxLogError(_("Image file is not of type %ld."), type); | |
2095 | return 0; | |
2096 | } | |
2097 | } | |
2098 | ||
2099 | bool wxImage::LoadFile( wxInputStream& stream, long type, int index ) | |
2100 | { | |
2101 | UnRef(); | |
2102 | ||
2103 | m_refData = new wxImageRefData; | |
2104 | ||
2105 | wxImageHandler *handler; | |
2106 | ||
2107 | if ( type == wxBITMAP_TYPE_ANY ) | |
2108 | { | |
2109 | wxList &list=GetHandlers(); | |
2110 | ||
2111 | for ( wxList::compatibility_iterator node = list.GetFirst(); node; node = node->GetNext() ) | |
2112 | { | |
2113 | handler=(wxImageHandler*)node->GetData(); | |
2114 | if ( handler->CanRead(stream) ) | |
2115 | return handler->LoadFile(this, stream, true/*verbose*/, index); | |
2116 | ||
2117 | } | |
2118 | ||
2119 | wxLogWarning( _("No handler found for image type.") ); | |
2120 | return false; | |
2121 | } | |
2122 | ||
2123 | handler = FindHandler(type); | |
2124 | ||
2125 | if (handler == 0) | |
2126 | { | |
2127 | wxLogWarning( _("No image handler for type %ld defined."), type ); | |
2128 | ||
2129 | return false; | |
2130 | } | |
2131 | ||
2132 | if (stream.IsSeekable() && !handler->CanRead(stream)) | |
2133 | { | |
2134 | wxLogError(_("Image file is not of type %ld."), type); | |
2135 | return false; | |
2136 | } | |
2137 | else | |
2138 | return handler->LoadFile(this, stream, true/*verbose*/, index); | |
2139 | } | |
2140 | ||
2141 | bool wxImage::LoadFile( wxInputStream& stream, const wxString& mimetype, int index ) | |
2142 | { | |
2143 | UnRef(); | |
2144 | ||
2145 | m_refData = new wxImageRefData; | |
2146 | ||
2147 | wxImageHandler *handler = FindHandlerMime(mimetype); | |
2148 | ||
2149 | if (handler == 0) | |
2150 | { | |
2151 | wxLogWarning( _("No image handler for type %s defined."), mimetype.GetData() ); | |
2152 | ||
2153 | return false; | |
2154 | } | |
2155 | ||
2156 | if (stream.IsSeekable() && !handler->CanRead(stream)) | |
2157 | { | |
2158 | wxLogError(_("Image file is not of type %s."), (const wxChar*) mimetype); | |
2159 | return false; | |
2160 | } | |
2161 | else | |
2162 | return handler->LoadFile( this, stream, true/*verbose*/, index ); | |
2163 | } | |
2164 | ||
2165 | bool wxImage::SaveFile( wxOutputStream& stream, int type ) const | |
2166 | { | |
2167 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
2168 | ||
2169 | wxImageHandler *handler = FindHandler(type); | |
2170 | if ( !handler ) | |
2171 | { | |
2172 | wxLogWarning( _("No image handler for type %d defined."), type ); | |
2173 | ||
2174 | return false; | |
2175 | } | |
2176 | ||
2177 | return handler->SaveFile( (wxImage*)this, stream ); | |
2178 | } | |
2179 | ||
2180 | bool wxImage::SaveFile( wxOutputStream& stream, const wxString& mimetype ) const | |
2181 | { | |
2182 | wxCHECK_MSG( Ok(), false, wxT("invalid image") ); | |
2183 | ||
2184 | wxImageHandler *handler = FindHandlerMime(mimetype); | |
2185 | if ( !handler ) | |
2186 | { | |
2187 | wxLogWarning( _("No image handler for type %s defined."), mimetype.GetData() ); | |
2188 | ||
2189 | return false; | |
2190 | } | |
2191 | ||
2192 | return handler->SaveFile( (wxImage*)this, stream ); | |
2193 | } | |
2194 | #endif // wxUSE_STREAMS | |
2195 | ||
2196 | // ---------------------------------------------------------------------------- | |
2197 | // image I/O handlers | |
2198 | // ---------------------------------------------------------------------------- | |
2199 | ||
2200 | void wxImage::AddHandler( wxImageHandler *handler ) | |
2201 | { | |
2202 | // Check for an existing handler of the type being added. | |
2203 | if (FindHandler( handler->GetType() ) == 0) | |
2204 | { | |
2205 | sm_handlers.Append( handler ); | |
2206 | } | |
2207 | else | |
2208 | { | |
2209 | // This is not documented behaviour, merely the simplest 'fix' | |
2210 | // for preventing duplicate additions. If someone ever has | |
2211 | // a good reason to add and remove duplicate handlers (and they | |
2212 | // may) we should probably refcount the duplicates. | |
2213 | // also an issue in InsertHandler below. | |
2214 | ||
2215 | wxLogDebug( _T("Adding duplicate image handler for '%s'"), | |
2216 | handler->GetName().c_str() ); | |
2217 | delete handler; | |
2218 | } | |
2219 | } | |
2220 | ||
2221 | void wxImage::InsertHandler( wxImageHandler *handler ) | |
2222 | { | |
2223 | // Check for an existing handler of the type being added. | |
2224 | if (FindHandler( handler->GetType() ) == 0) | |
2225 | { | |
2226 | sm_handlers.Insert( handler ); | |
2227 | } | |
2228 | else | |
2229 | { | |
2230 | // see AddHandler for additional comments. | |
2231 | wxLogDebug( _T("Inserting duplicate image handler for '%s'"), | |
2232 | handler->GetName().c_str() ); | |
2233 | delete handler; | |
2234 | } | |
2235 | } | |
2236 | ||
2237 | bool wxImage::RemoveHandler( const wxString& name ) | |
2238 | { | |
2239 | wxImageHandler *handler = FindHandler(name); | |
2240 | if (handler) | |
2241 | { | |
2242 | sm_handlers.DeleteObject(handler); | |
2243 | delete handler; | |
2244 | return true; | |
2245 | } | |
2246 | else | |
2247 | return false; | |
2248 | } | |
2249 | ||
2250 | wxImageHandler *wxImage::FindHandler( const wxString& name ) | |
2251 | { | |
2252 | wxList::compatibility_iterator node = sm_handlers.GetFirst(); | |
2253 | while (node) | |
2254 | { | |
2255 | wxImageHandler *handler = (wxImageHandler*)node->GetData(); | |
2256 | if (handler->GetName().Cmp(name) == 0) return handler; | |
2257 | ||
2258 | node = node->GetNext(); | |
2259 | } | |
2260 | return 0; | |
2261 | } | |
2262 | ||
2263 | wxImageHandler *wxImage::FindHandler( const wxString& extension, long bitmapType ) | |
2264 | { | |
2265 | wxList::compatibility_iterator node = sm_handlers.GetFirst(); | |
2266 | while (node) | |
2267 | { | |
2268 | wxImageHandler *handler = (wxImageHandler*)node->GetData(); | |
2269 | if ( (handler->GetExtension().Cmp(extension) == 0) && | |
2270 | (bitmapType == -1 || handler->GetType() == bitmapType) ) | |
2271 | return handler; | |
2272 | node = node->GetNext(); | |
2273 | } | |
2274 | return 0; | |
2275 | } | |
2276 | ||
2277 | wxImageHandler *wxImage::FindHandler( long bitmapType ) | |
2278 | { | |
2279 | wxList::compatibility_iterator node = sm_handlers.GetFirst(); | |
2280 | while (node) | |
2281 | { | |
2282 | wxImageHandler *handler = (wxImageHandler *)node->GetData(); | |
2283 | if (handler->GetType() == bitmapType) return handler; | |
2284 | node = node->GetNext(); | |
2285 | } | |
2286 | return 0; | |
2287 | } | |
2288 | ||
2289 | wxImageHandler *wxImage::FindHandlerMime( const wxString& mimetype ) | |
2290 | { | |
2291 | wxList::compatibility_iterator node = sm_handlers.GetFirst(); | |
2292 | while (node) | |
2293 | { | |
2294 | wxImageHandler *handler = (wxImageHandler *)node->GetData(); | |
2295 | if (handler->GetMimeType().IsSameAs(mimetype, false)) return handler; | |
2296 | node = node->GetNext(); | |
2297 | } | |
2298 | return 0; | |
2299 | } | |
2300 | ||
2301 | void wxImage::InitStandardHandlers() | |
2302 | { | |
2303 | #if wxUSE_STREAMS | |
2304 | AddHandler(new wxBMPHandler); | |
2305 | #endif // wxUSE_STREAMS | |
2306 | } | |
2307 | ||
2308 | void wxImage::CleanUpHandlers() | |
2309 | { | |
2310 | wxList::compatibility_iterator node = sm_handlers.GetFirst(); | |
2311 | while (node) | |
2312 | { | |
2313 | wxImageHandler *handler = (wxImageHandler *)node->GetData(); | |
2314 | wxList::compatibility_iterator next = node->GetNext(); | |
2315 | delete handler; | |
2316 | node = next; | |
2317 | } | |
2318 | ||
2319 | sm_handlers.Clear(); | |
2320 | } | |
2321 | ||
2322 | wxString wxImage::GetImageExtWildcard() | |
2323 | { | |
2324 | wxString fmts; | |
2325 | ||
2326 | wxList& Handlers = wxImage::GetHandlers(); | |
2327 | wxList::compatibility_iterator Node = Handlers.GetFirst(); | |
2328 | while ( Node ) | |
2329 | { | |
2330 | wxImageHandler* Handler = (wxImageHandler*)Node->GetData(); | |
2331 | fmts += wxT("*.") + Handler->GetExtension(); | |
2332 | Node = Node->GetNext(); | |
2333 | if ( Node ) fmts += wxT(";"); | |
2334 | } | |
2335 | ||
2336 | return wxT("(") + fmts + wxT(")|") + fmts; | |
2337 | } | |
2338 | ||
2339 | wxImage::HSVValue wxImage::RGBtoHSV(const RGBValue& rgb) | |
2340 | { | |
2341 | const double red = rgb.red / 255.0, | |
2342 | green = rgb.green / 255.0, | |
2343 | blue = rgb.blue / 255.0; | |
2344 | ||
2345 | // find the min and max intensity (and remember which one was it for the | |
2346 | // latter) | |
2347 | double minimumRGB = red; | |
2348 | if ( green < minimumRGB ) | |
2349 | minimumRGB = green; | |
2350 | if ( blue < minimumRGB ) | |
2351 | minimumRGB = blue; | |
2352 | ||
2353 | enum { RED, GREEN, BLUE } chMax = RED; | |
2354 | double maximumRGB = red; | |
2355 | if ( green > maximumRGB ) | |
2356 | { | |
2357 | chMax = GREEN; | |
2358 | maximumRGB = green; | |
2359 | } | |
2360 | if ( blue > maximumRGB ) | |
2361 | { | |
2362 | chMax = BLUE; | |
2363 | maximumRGB = blue; | |
2364 | } | |
2365 | ||
2366 | const double value = maximumRGB; | |
2367 | ||
2368 | double hue = 0.0, saturation; | |
2369 | const double deltaRGB = maximumRGB - minimumRGB; | |
2370 | if ( wxIsNullDouble(deltaRGB) ) | |
2371 | { | |
2372 | // Gray has no color | |
2373 | hue = 0.0; | |
2374 | saturation = 0.0; | |
2375 | } | |
2376 | else | |
2377 | { | |
2378 | switch ( chMax ) | |
2379 | { | |
2380 | case RED: | |
2381 | hue = (green - blue) / deltaRGB; | |
2382 | break; | |
2383 | ||
2384 | case GREEN: | |
2385 | hue = 2.0 + (blue - red) / deltaRGB; | |
2386 | break; | |
2387 | ||
2388 | case BLUE: | |
2389 | hue = 4.0 + (red - green) / deltaRGB; | |
2390 | break; | |
2391 | ||
2392 | default: | |
2393 | wxFAIL_MSG(wxT("hue not specified")); | |
2394 | break; | |
2395 | } | |
2396 | ||
2397 | hue /= 6.0; | |
2398 | ||
2399 | if ( hue < 0.0 ) | |
2400 | hue += 1.0; | |
2401 | ||
2402 | saturation = deltaRGB / maximumRGB; | |
2403 | } | |
2404 | ||
2405 | return HSVValue(hue, saturation, value); | |
2406 | } | |
2407 | ||
2408 | wxImage::RGBValue wxImage::HSVtoRGB(const HSVValue& hsv) | |
2409 | { | |
2410 | double red, green, blue; | |
2411 | ||
2412 | if ( wxIsNullDouble(hsv.saturation) ) | |
2413 | { | |
2414 | // Grey | |
2415 | red = hsv.value; | |
2416 | green = hsv.value; | |
2417 | blue = hsv.value; | |
2418 | } | |
2419 | else // not grey | |
2420 | { | |
2421 | double hue = hsv.hue * 6.0; // sector 0 to 5 | |
2422 | int i = (int)floor(hue); | |
2423 | double f = hue - i; // fractional part of h | |
2424 | double p = hsv.value * (1.0 - hsv.saturation); | |
2425 | ||
2426 | switch (i) | |
2427 | { | |
2428 | case 0: | |
2429 | red = hsv.value; | |
2430 | green = hsv.value * (1.0 - hsv.saturation * (1.0 - f)); | |
2431 | blue = p; | |
2432 | break; | |
2433 | ||
2434 | case 1: | |
2435 | red = hsv.value * (1.0 - hsv.saturation * f); | |
2436 | green = hsv.value; | |
2437 | blue = p; | |
2438 | break; | |
2439 | ||
2440 | case 2: | |
2441 | red = p; | |
2442 | green = hsv.value; | |
2443 | blue = hsv.value * (1.0 - hsv.saturation * (1.0 - f)); | |
2444 | break; | |
2445 | ||
2446 | case 3: | |
2447 | red = p; | |
2448 | green = hsv.value * (1.0 - hsv.saturation * f); | |
2449 | blue = hsv.value; | |
2450 | break; | |
2451 | ||
2452 | case 4: | |
2453 | red = hsv.value * (1.0 - hsv.saturation * (1.0 - f)); | |
2454 | green = p; | |
2455 | blue = hsv.value; | |
2456 | break; | |
2457 | ||
2458 | default: // case 5: | |
2459 | red = hsv.value; | |
2460 | green = p; | |
2461 | blue = hsv.value * (1.0 - hsv.saturation * f); | |
2462 | break; | |
2463 | } | |
2464 | } | |
2465 | ||
2466 | return RGBValue((unsigned char)(red * 255.0), | |
2467 | (unsigned char)(green * 255.0), | |
2468 | (unsigned char)(blue * 255.0)); | |
2469 | } | |
2470 | ||
2471 | /* | |
2472 | * Rotates the hue of each pixel of the image. angle is a double in the range | |
2473 | * -1.0..1.0 where -1.0 is -360 degrees and 1.0 is 360 degrees | |
2474 | */ | |
2475 | void wxImage::RotateHue(double angle) | |
2476 | { | |
2477 | AllocExclusive(); | |
2478 | ||
2479 | unsigned char *srcBytePtr; | |
2480 | unsigned char *dstBytePtr; | |
2481 | unsigned long count; | |
2482 | wxImage::HSVValue hsv; | |
2483 | wxImage::RGBValue rgb; | |
2484 | ||
2485 | wxASSERT (angle >= -1.0 && angle <= 1.0); | |
2486 | count = M_IMGDATA->m_width * M_IMGDATA->m_height; | |
2487 | if ( count > 0 && !wxIsNullDouble(angle) ) | |
2488 | { | |
2489 | srcBytePtr = M_IMGDATA->m_data; | |
2490 | dstBytePtr = srcBytePtr; | |
2491 | do | |
2492 | { | |
2493 | rgb.red = *srcBytePtr++; | |
2494 | rgb.green = *srcBytePtr++; | |
2495 | rgb.blue = *srcBytePtr++; | |
2496 | hsv = RGBtoHSV(rgb); | |
2497 | ||
2498 | hsv.hue = hsv.hue + angle; | |
2499 | if (hsv.hue > 1.0) | |
2500 | hsv.hue = hsv.hue - 1.0; | |
2501 | else if (hsv.hue < 0.0) | |
2502 | hsv.hue = hsv.hue + 1.0; | |
2503 | ||
2504 | rgb = HSVtoRGB(hsv); | |
2505 | *dstBytePtr++ = rgb.red; | |
2506 | *dstBytePtr++ = rgb.green; | |
2507 | *dstBytePtr++ = rgb.blue; | |
2508 | } while (--count != 0); | |
2509 | } | |
2510 | } | |
2511 | ||
2512 | //----------------------------------------------------------------------------- | |
2513 | // wxImageHandler | |
2514 | //----------------------------------------------------------------------------- | |
2515 | ||
2516 | IMPLEMENT_ABSTRACT_CLASS(wxImageHandler,wxObject) | |
2517 | ||
2518 | #if wxUSE_STREAMS | |
2519 | bool wxImageHandler::LoadFile( wxImage *WXUNUSED(image), wxInputStream& WXUNUSED(stream), bool WXUNUSED(verbose), int WXUNUSED(index) ) | |
2520 | { | |
2521 | return false; | |
2522 | } | |
2523 | ||
2524 | bool wxImageHandler::SaveFile( wxImage *WXUNUSED(image), wxOutputStream& WXUNUSED(stream), bool WXUNUSED(verbose) ) | |
2525 | { | |
2526 | return false; | |
2527 | } | |
2528 | ||
2529 | int wxImageHandler::GetImageCount( wxInputStream& WXUNUSED(stream) ) | |
2530 | { | |
2531 | return 1; | |
2532 | } | |
2533 | ||
2534 | bool wxImageHandler::CanRead( const wxString& name ) | |
2535 | { | |
2536 | if (wxFileExists(name)) | |
2537 | { | |
2538 | wxImageFileInputStream stream(name); | |
2539 | return CanRead(stream); | |
2540 | } | |
2541 | ||
2542 | wxLogError( _("Can't check image format of file '%s': file does not exist."), name.c_str() ); | |
2543 | ||
2544 | return false; | |
2545 | } | |
2546 | ||
2547 | bool wxImageHandler::CallDoCanRead(wxInputStream& stream) | |
2548 | { | |
2549 | wxFileOffset posOld = stream.TellI(); | |
2550 | if ( posOld == wxInvalidOffset ) | |
2551 | { | |
2552 | // can't test unseekable stream | |
2553 | return false; | |
2554 | } | |
2555 | ||
2556 | bool ok = DoCanRead(stream); | |
2557 | ||
2558 | // restore the old position to be able to test other formats and so on | |
2559 | if ( stream.SeekI(posOld) == wxInvalidOffset ) | |
2560 | { | |
2561 | wxLogDebug(_T("Failed to rewind the stream in wxImageHandler!")); | |
2562 | ||
2563 | // reading would fail anyhow as we're not at the right position | |
2564 | return false; | |
2565 | } | |
2566 | ||
2567 | return ok; | |
2568 | } | |
2569 | ||
2570 | #endif // wxUSE_STREAMS | |
2571 | ||
2572 | // ---------------------------------------------------------------------------- | |
2573 | // image histogram stuff | |
2574 | // ---------------------------------------------------------------------------- | |
2575 | ||
2576 | bool | |
2577 | wxImageHistogram::FindFirstUnusedColour(unsigned char *r, | |
2578 | unsigned char *g, | |
2579 | unsigned char *b, | |
2580 | unsigned char r2, | |
2581 | unsigned char b2, | |
2582 | unsigned char g2) const | |
2583 | { | |
2584 | unsigned long key = MakeKey(r2, g2, b2); | |
2585 | ||
2586 | while ( find(key) != end() ) | |
2587 | { | |
2588 | // color already used | |
2589 | r2++; | |
2590 | if ( r2 >= 255 ) | |
2591 | { | |
2592 | r2 = 0; | |
2593 | g2++; | |
2594 | if ( g2 >= 255 ) | |
2595 | { | |
2596 | g2 = 0; | |
2597 | b2++; | |
2598 | if ( b2 >= 255 ) | |
2599 | { | |
2600 | wxLogError(_("No unused colour in image.") ); | |
2601 | return false; | |
2602 | } | |
2603 | } | |
2604 | } | |
2605 | ||
2606 | key = MakeKey(r2, g2, b2); | |
2607 | } | |
2608 | ||
2609 | if ( r ) | |
2610 | *r = r2; | |
2611 | if ( g ) | |
2612 | *g = g2; | |
2613 | if ( b ) | |
2614 | *b = b2; | |
2615 | ||
2616 | return true; | |
2617 | } | |
2618 | ||
2619 | bool | |
2620 | wxImage::FindFirstUnusedColour(unsigned char *r, | |
2621 | unsigned char *g, | |
2622 | unsigned char *b, | |
2623 | unsigned char r2, | |
2624 | unsigned char b2, | |
2625 | unsigned char g2) const | |
2626 | { | |
2627 | wxImageHistogram histogram; | |
2628 | ||
2629 | ComputeHistogram(histogram); | |
2630 | ||
2631 | return histogram.FindFirstUnusedColour(r, g, b, r2, g2, b2); | |
2632 | } | |
2633 | ||
2634 | ||
2635 | ||
2636 | // GRG, Dic/99 | |
2637 | // Counts and returns the number of different colours. Optionally stops | |
2638 | // when it exceeds 'stopafter' different colours. This is useful, for | |
2639 | // example, to see if the image can be saved as 8-bit (256 colour or | |
2640 | // less, in this case it would be invoked as CountColours(256)). Default | |
2641 | // value for stopafter is -1 (don't care). | |
2642 | // | |
2643 | unsigned long wxImage::CountColours( unsigned long stopafter ) const | |
2644 | { | |
2645 | wxHashTable h; | |
2646 | wxObject dummy; | |
2647 | unsigned char r, g, b; | |
2648 | unsigned char *p; | |
2649 | unsigned long size, nentries, key; | |
2650 | ||
2651 | p = GetData(); | |
2652 | size = GetWidth() * GetHeight(); | |
2653 | nentries = 0; | |
2654 | ||
2655 | for (unsigned long j = 0; (j < size) && (nentries <= stopafter) ; j++) | |
2656 | { | |
2657 | r = *(p++); | |
2658 | g = *(p++); | |
2659 | b = *(p++); | |
2660 | key = wxImageHistogram::MakeKey(r, g, b); | |
2661 | ||
2662 | if (h.Get(key) == NULL) | |
2663 | { | |
2664 | h.Put(key, &dummy); | |
2665 | nentries++; | |
2666 | } | |
2667 | } | |
2668 | ||
2669 | return nentries; | |
2670 | } | |
2671 | ||
2672 | ||
2673 | unsigned long wxImage::ComputeHistogram( wxImageHistogram &h ) const | |
2674 | { | |
2675 | unsigned char *p = GetData(); | |
2676 | unsigned long nentries = 0; | |
2677 | ||
2678 | h.clear(); | |
2679 | ||
2680 | const unsigned long size = GetWidth() * GetHeight(); | |
2681 | ||
2682 | unsigned char r, g, b; | |
2683 | for ( unsigned long n = 0; n < size; n++ ) | |
2684 | { | |
2685 | r = *p++; | |
2686 | g = *p++; | |
2687 | b = *p++; | |
2688 | ||
2689 | wxImageHistogramEntry& entry = h[wxImageHistogram::MakeKey(r, g, b)]; | |
2690 | ||
2691 | if ( entry.value++ == 0 ) | |
2692 | entry.index = nentries++; | |
2693 | } | |
2694 | ||
2695 | return nentries; | |
2696 | } | |
2697 | ||
2698 | /* | |
2699 | * Rotation code by Carlos Moreno | |
2700 | */ | |
2701 | ||
2702 | // GRG: I've removed wxRotationPoint - we already have wxRealPoint which | |
2703 | // does exactly the same thing. And I also got rid of wxRotationPixel | |
2704 | // bacause of potential problems in architectures where alignment | |
2705 | // is an issue, so I had to rewrite parts of the code. | |
2706 | ||
2707 | static const double gs_Epsilon = 1e-10; | |
2708 | ||
2709 | static inline int wxCint (double x) | |
2710 | { | |
2711 | return (x > 0) ? (int) (x + 0.5) : (int) (x - 0.5); | |
2712 | } | |
2713 | ||
2714 | ||
2715 | // Auxiliary function to rotate a point (x,y) with respect to point p0 | |
2716 | // make it inline and use a straight return to facilitate optimization | |
2717 | // also, the function receives the sine and cosine of the angle to avoid | |
2718 | // repeating the time-consuming calls to these functions -- sin/cos can | |
2719 | // be computed and stored in the calling function. | |
2720 | ||
2721 | inline wxRealPoint rotated_point (const wxRealPoint & p, double cos_angle, double sin_angle, const wxRealPoint & p0) | |
2722 | { | |
2723 | return wxRealPoint (p0.x + (p.x - p0.x) * cos_angle - (p.y - p0.y) * sin_angle, | |
2724 | p0.y + (p.y - p0.y) * cos_angle + (p.x - p0.x) * sin_angle); | |
2725 | } | |
2726 | ||
2727 | inline wxRealPoint rotated_point (double x, double y, double cos_angle, double sin_angle, const wxRealPoint & p0) | |
2728 | { | |
2729 | return rotated_point (wxRealPoint(x,y), cos_angle, sin_angle, p0); | |
2730 | } | |
2731 | ||
2732 | wxImage wxImage::Rotate(double angle, const wxPoint & centre_of_rotation, bool interpolating, wxPoint * offset_after_rotation) const | |
2733 | { | |
2734 | int i; | |
2735 | angle = -angle; // screen coordinates are a mirror image of "real" coordinates | |
2736 | ||
2737 | bool has_alpha = HasAlpha(); | |
2738 | ||
2739 | // Create pointer-based array to accelerate access to wxImage's data | |
2740 | unsigned char ** data = new unsigned char * [GetHeight()]; | |
2741 | data[0] = GetData(); | |
2742 | for (i = 1; i < GetHeight(); i++) | |
2743 | data[i] = data[i - 1] + (3 * GetWidth()); | |
2744 | ||
2745 | // Same for alpha channel | |
2746 | unsigned char ** alpha = NULL; | |
2747 | if (has_alpha) | |
2748 | { | |
2749 | alpha = new unsigned char * [GetHeight()]; | |
2750 | alpha[0] = GetAlpha(); | |
2751 | for (i = 1; i < GetHeight(); i++) | |
2752 | alpha[i] = alpha[i - 1] + GetWidth(); | |
2753 | } | |
2754 | ||
2755 | // precompute coefficients for rotation formula | |
2756 | // (sine and cosine of the angle) | |
2757 | const double cos_angle = cos(angle); | |
2758 | const double sin_angle = sin(angle); | |
2759 | ||
2760 | // Create new Image to store the result | |
2761 | // First, find rectangle that covers the rotated image; to do that, | |
2762 | // rotate the four corners | |
2763 | ||
2764 | const wxRealPoint p0(centre_of_rotation.x, centre_of_rotation.y); | |
2765 | ||
2766 | wxRealPoint p1 = rotated_point (0, 0, cos_angle, sin_angle, p0); | |
2767 | wxRealPoint p2 = rotated_point (0, GetHeight(), cos_angle, sin_angle, p0); | |
2768 | wxRealPoint p3 = rotated_point (GetWidth(), 0, cos_angle, sin_angle, p0); | |
2769 | wxRealPoint p4 = rotated_point (GetWidth(), GetHeight(), cos_angle, sin_angle, p0); | |
2770 | ||
2771 | int x1a = (int) floor (wxMin (wxMin(p1.x, p2.x), wxMin(p3.x, p4.x))); | |
2772 | int y1a = (int) floor (wxMin (wxMin(p1.y, p2.y), wxMin(p3.y, p4.y))); | |
2773 | int x2a = (int) ceil (wxMax (wxMax(p1.x, p2.x), wxMax(p3.x, p4.x))); | |
2774 | int y2a = (int) ceil (wxMax (wxMax(p1.y, p2.y), wxMax(p3.y, p4.y))); | |
2775 | ||
2776 | // Create rotated image | |
2777 | wxImage rotated (x2a - x1a + 1, y2a - y1a + 1, false); | |
2778 | // With alpha channel | |
2779 | if (has_alpha) | |
2780 | rotated.SetAlpha(); | |
2781 | ||
2782 | if (offset_after_rotation != NULL) | |
2783 | { | |
2784 | *offset_after_rotation = wxPoint (x1a, y1a); | |
2785 | } | |
2786 | ||
2787 | // GRG: The rotated (destination) image is always accessed | |
2788 | // sequentially, so there is no need for a pointer-based | |
2789 | // array here (and in fact it would be slower). | |
2790 | // | |
2791 | unsigned char * dst = rotated.GetData(); | |
2792 | ||
2793 | unsigned char * alpha_dst = NULL; | |
2794 | if (has_alpha) | |
2795 | alpha_dst = rotated.GetAlpha(); | |
2796 | ||
2797 | // GRG: if the original image has a mask, use its RGB values | |
2798 | // as the blank pixel, else, fall back to default (black). | |
2799 | // | |
2800 | unsigned char blank_r = 0; | |
2801 | unsigned char blank_g = 0; | |
2802 | unsigned char blank_b = 0; | |
2803 | ||
2804 | if (HasMask()) | |
2805 | { | |
2806 | blank_r = GetMaskRed(); | |
2807 | blank_g = GetMaskGreen(); | |
2808 | blank_b = GetMaskBlue(); | |
2809 | rotated.SetMaskColour( blank_r, blank_g, blank_b ); | |
2810 | } | |
2811 | ||
2812 | // Now, for each point of the rotated image, find where it came from, by | |
2813 | // performing an inverse rotation (a rotation of -angle) and getting the | |
2814 | // pixel at those coordinates | |
2815 | ||
2816 | // GRG: I've taken the (interpolating) test out of the loops, so that | |
2817 | // it is done only once, instead of repeating it for each pixel. | |
2818 | ||
2819 | int x; | |
2820 | if (interpolating) | |
2821 | { | |
2822 | for (int y = 0; y < rotated.GetHeight(); y++) | |
2823 | { | |
2824 | for (x = 0; x < rotated.GetWidth(); x++) | |
2825 | { | |
2826 | wxRealPoint src = rotated_point (x + x1a, y + y1a, cos_angle, -sin_angle, p0); | |
2827 | ||
2828 | if (-0.25 < src.x && src.x < GetWidth() - 0.75 && | |
2829 | -0.25 < src.y && src.y < GetHeight() - 0.75) | |
2830 | { | |
2831 | // interpolate using the 4 enclosing grid-points. Those | |
2832 | // points can be obtained using floor and ceiling of the | |
2833 | // exact coordinates of the point | |
2834 | int x1, y1, x2, y2; | |
2835 | ||
2836 | if (0 < src.x && src.x < GetWidth() - 1) | |
2837 | { | |
2838 | x1 = wxCint(floor(src.x)); | |
2839 | x2 = wxCint(ceil(src.x)); | |
2840 | } | |
2841 | else // else means that x is near one of the borders (0 or width-1) | |
2842 | { | |
2843 | x1 = x2 = wxCint (src.x); | |
2844 | } | |
2845 | ||
2846 | if (0 < src.y && src.y < GetHeight() - 1) | |
2847 | { | |
2848 | y1 = wxCint(floor(src.y)); | |
2849 | y2 = wxCint(ceil(src.y)); | |
2850 | } | |
2851 | else | |
2852 | { | |
2853 | y1 = y2 = wxCint (src.y); | |
2854 | } | |
2855 | ||
2856 | // get four points and the distances (square of the distance, | |
2857 | // for efficiency reasons) for the interpolation formula | |
2858 | ||
2859 | // GRG: Do not calculate the points until they are | |
2860 | // really needed -- this way we can calculate | |
2861 | // just one, instead of four, if d1, d2, d3 | |
2862 | // or d4 are < gs_Epsilon | |
2863 | ||
2864 | const double d1 = (src.x - x1) * (src.x - x1) + (src.y - y1) * (src.y - y1); | |
2865 | const double d2 = (src.x - x2) * (src.x - x2) + (src.y - y1) * (src.y - y1); | |
2866 | const double d3 = (src.x - x2) * (src.x - x2) + (src.y - y2) * (src.y - y2); | |
2867 | const double d4 = (src.x - x1) * (src.x - x1) + (src.y - y2) * (src.y - y2); | |
2868 | ||
2869 | // Now interpolate as a weighted average of the four surrounding | |
2870 | // points, where the weights are the distances to each of those points | |
2871 | ||
2872 | // If the point is exactly at one point of the grid of the source | |
2873 | // image, then don't interpolate -- just assign the pixel | |
2874 | ||
2875 | if (d1 < gs_Epsilon) // d1,d2,d3,d4 are positive -- no need for abs() | |
2876 | { | |
2877 | unsigned char *p = data[y1] + (3 * x1); | |
2878 | *(dst++) = *(p++); | |
2879 | *(dst++) = *(p++); | |
2880 | *(dst++) = *p; | |
2881 | ||
2882 | if (has_alpha) | |
2883 | *(alpha_dst++) = *(alpha[y1] + x1); | |
2884 | } | |
2885 | else if (d2 < gs_Epsilon) | |
2886 | { | |
2887 | unsigned char *p = data[y1] + (3 * x2); | |
2888 | *(dst++) = *(p++); | |
2889 | *(dst++) = *(p++); | |
2890 | *(dst++) = *p; | |
2891 | ||
2892 | if (has_alpha) | |
2893 | *(alpha_dst++) = *(alpha[y1] + x2); | |
2894 | } | |
2895 | else if (d3 < gs_Epsilon) | |
2896 | { | |
2897 | unsigned char *p = data[y2] + (3 * x2); | |
2898 | *(dst++) = *(p++); | |
2899 | *(dst++) = *(p++); | |
2900 | *(dst++) = *p; | |
2901 | ||
2902 | if (has_alpha) | |
2903 | *(alpha_dst++) = *(alpha[y2] + x2); | |
2904 | } | |
2905 | else if (d4 < gs_Epsilon) | |
2906 | { | |
2907 | unsigned char *p = data[y2] + (3 * x1); | |
2908 | *(dst++) = *(p++); | |
2909 | *(dst++) = *(p++); | |
2910 | *(dst++) = *p; | |
2911 | ||
2912 | if (has_alpha) | |
2913 | *(alpha_dst++) = *(alpha[y2] + x1); | |
2914 | } | |
2915 | else | |
2916 | { | |
2917 | // weights for the weighted average are proportional to the inverse of the distance | |
2918 | unsigned char *v1 = data[y1] + (3 * x1); | |
2919 | unsigned char *v2 = data[y1] + (3 * x2); | |
2920 | unsigned char *v3 = data[y2] + (3 * x2); | |
2921 | unsigned char *v4 = data[y2] + (3 * x1); | |
2922 | ||
2923 | const double w1 = 1/d1, w2 = 1/d2, w3 = 1/d3, w4 = 1/d4; | |
2924 | ||
2925 | // GRG: Unrolled. | |
2926 | ||
2927 | *(dst++) = (unsigned char) | |
2928 | ( (w1 * *(v1++) + w2 * *(v2++) + | |
2929 | w3 * *(v3++) + w4 * *(v4++)) / | |
2930 | (w1 + w2 + w3 + w4) ); | |
2931 | *(dst++) = (unsigned char) | |
2932 | ( (w1 * *(v1++) + w2 * *(v2++) + | |
2933 | w3 * *(v3++) + w4 * *(v4++)) / | |
2934 | (w1 + w2 + w3 + w4) ); | |
2935 | *(dst++) = (unsigned char) | |
2936 | ( (w1 * *v1 + w2 * *v2 + | |
2937 | w3 * *v3 + w4 * *v4) / | |
2938 | (w1 + w2 + w3 + w4) ); | |
2939 | ||
2940 | if (has_alpha) | |
2941 | { | |
2942 | v1 = alpha[y1] + (x1); | |
2943 | v2 = alpha[y1] + (x2); | |
2944 | v3 = alpha[y2] + (x2); | |
2945 | v4 = alpha[y2] + (x1); | |
2946 | ||
2947 | *(alpha_dst++) = (unsigned char) | |
2948 | ( (w1 * *v1 + w2 * *v2 + | |
2949 | w3 * *v3 + w4 * *v4) / | |
2950 | (w1 + w2 + w3 + w4) ); | |
2951 | } | |
2952 | } | |
2953 | } | |
2954 | else | |
2955 | { | |
2956 | *(dst++) = blank_r; | |
2957 | *(dst++) = blank_g; | |
2958 | *(dst++) = blank_b; | |
2959 | ||
2960 | if (has_alpha) | |
2961 | *(alpha_dst++) = 0; | |
2962 | } | |
2963 | } | |
2964 | } | |
2965 | } | |
2966 | else // not interpolating | |
2967 | { | |
2968 | for (int y = 0; y < rotated.GetHeight(); y++) | |
2969 | { | |
2970 | for (x = 0; x < rotated.GetWidth(); x++) | |
2971 | { | |
2972 | wxRealPoint src = rotated_point (x + x1a, y + y1a, cos_angle, -sin_angle, p0); | |
2973 | ||
2974 | const int xs = wxCint (src.x); // wxCint rounds to the | |
2975 | const int ys = wxCint (src.y); // closest integer | |
2976 | ||
2977 | if (0 <= xs && xs < GetWidth() && | |
2978 | 0 <= ys && ys < GetHeight()) | |
2979 | { | |
2980 | unsigned char *p = data[ys] + (3 * xs); | |
2981 | *(dst++) = *(p++); | |
2982 | *(dst++) = *(p++); | |
2983 | *(dst++) = *p; | |
2984 | ||
2985 | if (has_alpha) | |
2986 | *(alpha_dst++) = *(alpha[ys] + (xs)); | |
2987 | } | |
2988 | else | |
2989 | { | |
2990 | *(dst++) = blank_r; | |
2991 | *(dst++) = blank_g; | |
2992 | *(dst++) = blank_b; | |
2993 | ||
2994 | if (has_alpha) | |
2995 | *(alpha_dst++) = 255; | |
2996 | } | |
2997 | } | |
2998 | } | |
2999 | } | |
3000 | ||
3001 | delete [] data; | |
3002 | ||
3003 | if (has_alpha) | |
3004 | delete [] alpha; | |
3005 | ||
3006 | return rotated; | |
3007 | } | |
3008 | ||
3009 | ||
3010 | ||
3011 | ||
3012 | ||
3013 | // A module to allow wxImage initialization/cleanup | |
3014 | // without calling these functions from app.cpp or from | |
3015 | // the user's application. | |
3016 | ||
3017 | class wxImageModule: public wxModule | |
3018 | { | |
3019 | DECLARE_DYNAMIC_CLASS(wxImageModule) | |
3020 | public: | |
3021 | wxImageModule() {} | |
3022 | bool OnInit() { wxImage::InitStandardHandlers(); return true; }; | |
3023 | void OnExit() { wxImage::CleanUpHandlers(); }; | |
3024 | }; | |
3025 | ||
3026 | IMPLEMENT_DYNAMIC_CLASS(wxImageModule, wxModule) | |
3027 | ||
3028 | ||
3029 | #endif // wxUSE_IMAGE |