Cruft removal in struct image.
[bpt/emacs.git] / src / image.c
1 /* Functions for image support on window system.
2 Copyright (C) 1989, 1992-2011 Free Software Foundation, Inc.
3
4 This file is part of GNU Emacs.
5
6 GNU Emacs is free software: you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation, either version 3 of the License, or
9 (at your option) any later version.
10
11 GNU Emacs is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
18
19 #include <config.h>
20 #include <stdio.h>
21 #include <math.h>
22 #include <ctype.h>
23 #include <unistd.h>
24
25 #ifdef HAVE_PNG
26 #if defined HAVE_LIBPNG_PNG_H
27 # include <libpng/png.h>
28 #else
29 # include <png.h>
30 #endif
31 #endif
32
33 #include <setjmp.h>
34
35 /* This makes the fields of a Display accessible, in Xlib header files. */
36
37 #define XLIB_ILLEGAL_ACCESS
38
39 #include "lisp.h"
40 #include "frame.h"
41 #include "window.h"
42 #include "dispextern.h"
43 #include "blockinput.h"
44 #include "systime.h"
45 #include <epaths.h>
46 #include "character.h"
47 #include "coding.h"
48 #include "termhooks.h"
49 #include "font.h"
50
51 #ifdef HAVE_X_WINDOWS
52 #include "xterm.h"
53 #include <sys/types.h>
54 #include <sys/stat.h>
55
56 #define COLOR_TABLE_SUPPORT 1
57
58 typedef struct x_bitmap_record Bitmap_Record;
59 #define GET_PIXEL(ximg, x, y) XGetPixel(ximg, x, y)
60 #define NO_PIXMAP None
61
62 #define RGB_PIXEL_COLOR unsigned long
63
64 #define PIX_MASK_RETAIN 0
65 #define PIX_MASK_DRAW 1
66 #endif /* HAVE_X_WINDOWS */
67
68
69 #ifdef HAVE_NTGUI
70 #include "w32.h"
71 #include "w32term.h"
72
73 /* W32_TODO : Color tables on W32. */
74 #undef COLOR_TABLE_SUPPORT
75
76 typedef struct w32_bitmap_record Bitmap_Record;
77 #define GET_PIXEL(ximg, x, y) GetPixel(ximg, x, y)
78 #define NO_PIXMAP 0
79
80 #define RGB_PIXEL_COLOR COLORREF
81
82 #define PIX_MASK_RETAIN 0
83 #define PIX_MASK_DRAW 1
84
85 #define FRAME_X_VISUAL(f) FRAME_X_DISPLAY_INFO (f)->visual
86 #define x_defined_color w32_defined_color
87 #define DefaultDepthOfScreen(screen) (one_w32_display_info.n_cbits)
88
89 /* Functions from w32term.c that depend on XColor (so can't go in w32term.h
90 without modifying lots of files). */
91 extern void x_query_colors (struct frame *f, XColor *colors, int ncolors);
92 extern void x_query_color (struct frame *f, XColor *color);
93
94 /* Version of libpng that we were compiled with, or -1 if no PNG
95 support was compiled in. This is tested by w32-win.el to correctly
96 set up the alist used to search for PNG libraries. */
97 Lisp_Object Qlibpng_version;
98 #endif /* HAVE_NTGUI */
99
100 #ifdef HAVE_NS
101 #include "nsterm.h"
102 #include <sys/types.h>
103 #include <sys/stat.h>
104
105 #undef COLOR_TABLE_SUPPORT
106
107 typedef struct ns_bitmap_record Bitmap_Record;
108
109 #define GET_PIXEL(ximg, x, y) XGetPixel(ximg, x, y)
110 #define NO_PIXMAP 0
111
112 #define RGB_PIXEL_COLOR unsigned long
113 #define ZPixmap 0
114
115 #define PIX_MASK_RETAIN 0
116 #define PIX_MASK_DRAW 1
117
118 #define FRAME_X_VISUAL FRAME_NS_DISPLAY_INFO(f)->visual
119 #define x_defined_color(f, name, color_def, alloc) \
120 ns_defined_color (f, name, color_def, alloc, 0)
121 #define FRAME_X_SCREEN(f) 0
122 #define DefaultDepthOfScreen(screen) x_display_list->n_planes
123 #endif /* HAVE_NS */
124
125
126 /* The symbol `postscript' identifying images of this type. */
127
128 static Lisp_Object Qpostscript;
129
130 static void x_disable_image (struct frame *, struct image *);
131 static void x_edge_detection (struct frame *, struct image *, Lisp_Object,
132 Lisp_Object);
133
134 static void init_color_table (void);
135 static unsigned long lookup_rgb_color (struct frame *f, int r, int g, int b);
136 #ifdef COLOR_TABLE_SUPPORT
137 static void free_color_table (void);
138 static unsigned long *colors_in_color_table (int *n);
139 static unsigned long lookup_pixel_color (struct frame *f, unsigned long p);
140 #endif
141 static Lisp_Object Finit_image_library (Lisp_Object, Lisp_Object);
142
143 /* Code to deal with bitmaps. Bitmaps are referenced by their bitmap
144 id, which is just an int that this section returns. Bitmaps are
145 reference counted so they can be shared among frames.
146
147 Bitmap indices are guaranteed to be > 0, so a negative number can
148 be used to indicate no bitmap.
149
150 If you use x_create_bitmap_from_data, then you must keep track of
151 the bitmaps yourself. That is, creating a bitmap from the same
152 data more than once will not be caught. */
153
154 #ifdef HAVE_NS
155 XImagePtr
156 XGetImage (Display *display, Pixmap pixmap, int x, int y,
157 unsigned int width, unsigned int height,
158 unsigned long plane_mask, int format)
159 {
160 /* TODO: not sure what this function is supposed to do.. */
161 ns_retain_object (pixmap);
162 return pixmap;
163 }
164
165 /* use with imgs created by ns_image_for_XPM */
166 unsigned long
167 XGetPixel (XImagePtr ximage, int x, int y)
168 {
169 return ns_get_pixel (ximage, x, y);
170 }
171
172 /* use with imgs created by ns_image_for_XPM; alpha set to 1;
173 pixel is assumed to be in form RGB */
174 void
175 XPutPixel (XImagePtr ximage, int x, int y, unsigned long pixel)
176 {
177 ns_put_pixel (ximage, x, y, pixel);
178 }
179 #endif /* HAVE_NS */
180
181
182 /* Functions to access the contents of a bitmap, given an id. */
183
184 int
185 x_bitmap_height (FRAME_PTR f, int id)
186 {
187 return FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].height;
188 }
189
190 int
191 x_bitmap_width (FRAME_PTR f, int id)
192 {
193 return FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].width;
194 }
195
196 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
197 int
198 x_bitmap_pixmap (FRAME_PTR f, int id)
199 {
200 return (int) FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].pixmap;
201 }
202 #endif
203
204 #ifdef HAVE_X_WINDOWS
205 int
206 x_bitmap_mask (FRAME_PTR f, int id)
207 {
208 return FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].mask;
209 }
210 #endif
211
212 /* Allocate a new bitmap record. Returns index of new record. */
213
214 static int
215 x_allocate_bitmap_record (FRAME_PTR f)
216 {
217 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
218 int i;
219
220 if (dpyinfo->bitmaps == NULL)
221 {
222 dpyinfo->bitmaps_size = 10;
223 dpyinfo->bitmaps
224 = (Bitmap_Record *) xmalloc (dpyinfo->bitmaps_size * sizeof (Bitmap_Record));
225 dpyinfo->bitmaps_last = 1;
226 return 1;
227 }
228
229 if (dpyinfo->bitmaps_last < dpyinfo->bitmaps_size)
230 return ++dpyinfo->bitmaps_last;
231
232 for (i = 0; i < dpyinfo->bitmaps_size; ++i)
233 if (dpyinfo->bitmaps[i].refcount == 0)
234 return i + 1;
235
236 dpyinfo->bitmaps_size *= 2;
237 dpyinfo->bitmaps
238 = (Bitmap_Record *) xrealloc (dpyinfo->bitmaps,
239 dpyinfo->bitmaps_size * sizeof (Bitmap_Record));
240 return ++dpyinfo->bitmaps_last;
241 }
242
243 /* Add one reference to the reference count of the bitmap with id ID. */
244
245 void
246 x_reference_bitmap (FRAME_PTR f, int id)
247 {
248 ++FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].refcount;
249 }
250
251 /* Create a bitmap for frame F from a HEIGHT x WIDTH array of bits at BITS. */
252
253 int
254 x_create_bitmap_from_data (struct frame *f, char *bits, unsigned int width, unsigned int height)
255 {
256 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
257 int id;
258
259 #ifdef HAVE_X_WINDOWS
260 Pixmap bitmap;
261 bitmap = XCreateBitmapFromData (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
262 bits, width, height);
263 if (! bitmap)
264 return -1;
265 #endif /* HAVE_X_WINDOWS */
266
267 #ifdef HAVE_NTGUI
268 Pixmap bitmap;
269 bitmap = CreateBitmap (width, height,
270 FRAME_X_DISPLAY_INFO (XFRAME (frame))->n_planes,
271 FRAME_X_DISPLAY_INFO (XFRAME (frame))->n_cbits,
272 bits);
273 if (! bitmap)
274 return -1;
275 #endif /* HAVE_NTGUI */
276
277 #ifdef HAVE_NS
278 void *bitmap = ns_image_from_XBM (bits, width, height);
279 if (!bitmap)
280 return -1;
281 #endif
282
283 id = x_allocate_bitmap_record (f);
284
285 #ifdef HAVE_NS
286 dpyinfo->bitmaps[id - 1].img = bitmap;
287 dpyinfo->bitmaps[id - 1].depth = 1;
288 #endif
289
290 dpyinfo->bitmaps[id - 1].file = NULL;
291 dpyinfo->bitmaps[id - 1].height = height;
292 dpyinfo->bitmaps[id - 1].width = width;
293 dpyinfo->bitmaps[id - 1].refcount = 1;
294
295 #ifdef HAVE_X_WINDOWS
296 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
297 dpyinfo->bitmaps[id - 1].have_mask = 0;
298 dpyinfo->bitmaps[id - 1].depth = 1;
299 #endif /* HAVE_X_WINDOWS */
300
301 #ifdef HAVE_NTGUI
302 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
303 dpyinfo->bitmaps[id - 1].hinst = NULL;
304 dpyinfo->bitmaps[id - 1].depth = 1;
305 #endif /* HAVE_NTGUI */
306
307 return id;
308 }
309
310 /* Create bitmap from file FILE for frame F. */
311
312 int
313 x_create_bitmap_from_file (struct frame *f, Lisp_Object file)
314 {
315 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
316
317 #ifdef HAVE_NTGUI
318 return -1; /* W32_TODO : bitmap support */
319 #endif /* HAVE_NTGUI */
320
321 #ifdef HAVE_NS
322 int id;
323 void *bitmap = ns_image_from_file (file);
324
325 if (!bitmap)
326 return -1;
327
328
329 id = x_allocate_bitmap_record (f);
330 dpyinfo->bitmaps[id - 1].img = bitmap;
331 dpyinfo->bitmaps[id - 1].refcount = 1;
332 dpyinfo->bitmaps[id - 1].file = (char *) xmalloc (SBYTES (file) + 1);
333 dpyinfo->bitmaps[id - 1].depth = 1;
334 dpyinfo->bitmaps[id - 1].height = ns_image_width (bitmap);
335 dpyinfo->bitmaps[id - 1].width = ns_image_height (bitmap);
336 strcpy (dpyinfo->bitmaps[id - 1].file, SDATA (file));
337 return id;
338 #endif
339
340 #ifdef HAVE_X_WINDOWS
341 unsigned int width, height;
342 Pixmap bitmap;
343 int xhot, yhot, result, id;
344 Lisp_Object found;
345 int fd;
346 char *filename;
347
348 /* Look for an existing bitmap with the same name. */
349 for (id = 0; id < dpyinfo->bitmaps_last; ++id)
350 {
351 if (dpyinfo->bitmaps[id].refcount
352 && dpyinfo->bitmaps[id].file
353 && !strcmp (dpyinfo->bitmaps[id].file, SSDATA (file)))
354 {
355 ++dpyinfo->bitmaps[id].refcount;
356 return id + 1;
357 }
358 }
359
360 /* Search bitmap-file-path for the file, if appropriate. */
361 fd = openp (Vx_bitmap_file_path, file, Qnil, &found, Qnil);
362 if (fd < 0)
363 return -1;
364 emacs_close (fd);
365
366 filename = SSDATA (found);
367
368 result = XReadBitmapFile (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
369 filename, &width, &height, &bitmap, &xhot, &yhot);
370 if (result != BitmapSuccess)
371 return -1;
372
373 id = x_allocate_bitmap_record (f);
374 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
375 dpyinfo->bitmaps[id - 1].have_mask = 0;
376 dpyinfo->bitmaps[id - 1].refcount = 1;
377 dpyinfo->bitmaps[id - 1].file = (char *) xmalloc (SBYTES (file) + 1);
378 dpyinfo->bitmaps[id - 1].depth = 1;
379 dpyinfo->bitmaps[id - 1].height = height;
380 dpyinfo->bitmaps[id - 1].width = width;
381 strcpy (dpyinfo->bitmaps[id - 1].file, SSDATA (file));
382
383 return id;
384 #endif /* HAVE_X_WINDOWS */
385 }
386
387 /* Free bitmap B. */
388
389 static void
390 free_bitmap_record (Display_Info *dpyinfo, Bitmap_Record *bm)
391 {
392 #ifdef HAVE_X_WINDOWS
393 XFreePixmap (dpyinfo->display, bm->pixmap);
394 if (bm->have_mask)
395 XFreePixmap (dpyinfo->display, bm->mask);
396 #endif /* HAVE_X_WINDOWS */
397
398 #ifdef HAVE_NTGUI
399 DeleteObject (bm->pixmap);
400 #endif /* HAVE_NTGUI */
401
402 #ifdef HAVE_NS
403 ns_release_object (bm->img);
404 #endif
405
406 if (bm->file)
407 {
408 xfree (bm->file);
409 bm->file = NULL;
410 }
411 }
412
413 /* Remove reference to bitmap with id number ID. */
414
415 void
416 x_destroy_bitmap (FRAME_PTR f, int id)
417 {
418 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
419
420 if (id > 0)
421 {
422 Bitmap_Record *bm = &dpyinfo->bitmaps[id - 1];
423
424 if (--bm->refcount == 0)
425 {
426 BLOCK_INPUT;
427 free_bitmap_record (dpyinfo, bm);
428 UNBLOCK_INPUT;
429 }
430 }
431 }
432
433 /* Free all the bitmaps for the display specified by DPYINFO. */
434
435 void
436 x_destroy_all_bitmaps (Display_Info *dpyinfo)
437 {
438 int i;
439 Bitmap_Record *bm = dpyinfo->bitmaps;
440
441 for (i = 0; i < dpyinfo->bitmaps_last; i++, bm++)
442 if (bm->refcount > 0)
443 free_bitmap_record (dpyinfo, bm);
444
445 dpyinfo->bitmaps_last = 0;
446 }
447
448
449 #ifdef HAVE_X_WINDOWS
450
451 /* Useful functions defined in the section
452 `Image type independent image structures' below. */
453
454 static unsigned long four_corners_best (XImagePtr ximg,
455 int *corners,
456 unsigned long width,
457 unsigned long height);
458
459 static int x_create_x_image_and_pixmap (struct frame *f, int width, int height,
460 int depth, XImagePtr *ximg,
461 Pixmap *pixmap);
462
463 static void x_destroy_x_image (XImagePtr ximg);
464
465
466 /* Create a mask of a bitmap. Note is this not a perfect mask.
467 It's nicer with some borders in this context */
468
469 int
470 x_create_bitmap_mask (struct frame *f, int id)
471 {
472 Pixmap pixmap, mask;
473 XImagePtr ximg, mask_img;
474 unsigned long width, height;
475 int result;
476 unsigned long bg;
477 unsigned long x, y, xp, xm, yp, ym;
478 GC gc;
479
480 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
481
482 if (!(id > 0))
483 return -1;
484
485 pixmap = x_bitmap_pixmap (f, id);
486 width = x_bitmap_width (f, id);
487 height = x_bitmap_height (f, id);
488
489 BLOCK_INPUT;
490 ximg = XGetImage (FRAME_X_DISPLAY (f), pixmap, 0, 0, width, height,
491 ~0, ZPixmap);
492
493 if (!ximg)
494 {
495 UNBLOCK_INPUT;
496 return -1;
497 }
498
499 result = x_create_x_image_and_pixmap (f, width, height, 1, &mask_img, &mask);
500
501 UNBLOCK_INPUT;
502 if (!result)
503 {
504 XDestroyImage (ximg);
505 return -1;
506 }
507
508 bg = four_corners_best (ximg, NULL, width, height);
509
510 for (y = 0; y < ximg->height; ++y)
511 {
512 for (x = 0; x < ximg->width; ++x)
513 {
514 xp = x != ximg->width - 1 ? x + 1 : 0;
515 xm = x != 0 ? x - 1 : ximg->width - 1;
516 yp = y != ximg->height - 1 ? y + 1 : 0;
517 ym = y != 0 ? y - 1 : ximg->height - 1;
518 if (XGetPixel (ximg, x, y) == bg
519 && XGetPixel (ximg, x, yp) == bg
520 && XGetPixel (ximg, x, ym) == bg
521 && XGetPixel (ximg, xp, y) == bg
522 && XGetPixel (ximg, xp, yp) == bg
523 && XGetPixel (ximg, xp, ym) == bg
524 && XGetPixel (ximg, xm, y) == bg
525 && XGetPixel (ximg, xm, yp) == bg
526 && XGetPixel (ximg, xm, ym) == bg)
527 XPutPixel (mask_img, x, y, 0);
528 else
529 XPutPixel (mask_img, x, y, 1);
530 }
531 }
532
533 xassert (interrupt_input_blocked);
534 gc = XCreateGC (FRAME_X_DISPLAY (f), mask, 0, NULL);
535 XPutImage (FRAME_X_DISPLAY (f), mask, gc, mask_img, 0, 0, 0, 0,
536 width, height);
537 XFreeGC (FRAME_X_DISPLAY (f), gc);
538
539 dpyinfo->bitmaps[id - 1].have_mask = 1;
540 dpyinfo->bitmaps[id - 1].mask = mask;
541
542 XDestroyImage (ximg);
543 x_destroy_x_image (mask_img);
544
545 return 0;
546 }
547
548 #endif /* HAVE_X_WINDOWS */
549
550
551 /***********************************************************************
552 Image types
553 ***********************************************************************/
554
555 /* List of supported image types. Use define_image_type to add new
556 types. Use lookup_image_type to find a type for a given symbol. */
557
558 static struct image_type *image_types;
559
560 /* The symbol `xbm' which is used as the type symbol for XBM images. */
561
562 static Lisp_Object Qxbm;
563
564 /* Keywords. */
565
566 Lisp_Object QCascent, QCmargin, QCrelief;
567 static Lisp_Object Qcount, Qextension_data;
568 Lisp_Object QCconversion;
569 static Lisp_Object QCheuristic_mask;
570 static Lisp_Object QCcolor_symbols;
571 static Lisp_Object QCindex, QCmatrix, QCcolor_adjustment, QCmask, QCgeometry;
572 static Lisp_Object QCcrop, QCrotation;
573
574 /* Other symbols. */
575
576 static Lisp_Object Qlaplace, Qemboss, Qedge_detection, Qheuristic;
577
578 /* Function prototypes. */
579
580 static Lisp_Object define_image_type (struct image_type *type, int loaded);
581 static struct image_type *lookup_image_type (Lisp_Object symbol);
582 static void image_error (const char *format, Lisp_Object, Lisp_Object);
583 static void x_laplace (struct frame *, struct image *);
584 static void x_emboss (struct frame *, struct image *);
585 static int x_build_heuristic_mask (struct frame *, struct image *,
586 Lisp_Object);
587 #ifdef HAVE_NTGUI
588 #define CACHE_IMAGE_TYPE(type, status) \
589 do { Vlibrary_cache = Fcons (Fcons (type, status), Vlibrary_cache); } while (0)
590 #else
591 #define CACHE_IMAGE_TYPE(type, status)
592 #endif
593
594 #define ADD_IMAGE_TYPE(type) \
595 do { Vimage_types = Fcons (type, Vimage_types); } while (0)
596
597 /* Define a new image type from TYPE. This adds a copy of TYPE to
598 image_types and caches the loading status of TYPE. */
599
600 static Lisp_Object
601 define_image_type (struct image_type *type, int loaded)
602 {
603 Lisp_Object success;
604
605 if (!loaded)
606 success = Qnil;
607 else
608 {
609 /* Make a copy of TYPE to avoid a bus error in a dumped Emacs.
610 The initialized data segment is read-only. */
611 struct image_type *p = (struct image_type *) xmalloc (sizeof *p);
612 memcpy (p, type, sizeof *p);
613 p->next = image_types;
614 image_types = p;
615 success = Qt;
616 }
617
618 CACHE_IMAGE_TYPE (*type->type, success);
619 return success;
620 }
621
622
623 /* Look up image type SYMBOL, and return a pointer to its image_type
624 structure. Value is null if SYMBOL is not a known image type. */
625
626 static inline struct image_type *
627 lookup_image_type (Lisp_Object symbol)
628 {
629 struct image_type *type;
630
631 /* We must initialize the image-type if it hasn't been already. */
632 if (NILP (Finit_image_library (symbol, Vdynamic_library_alist)))
633 return 0; /* unimplemented */
634
635 for (type = image_types; type; type = type->next)
636 if (EQ (symbol, *type->type))
637 break;
638
639 return type;
640 }
641
642
643 /* Value is non-zero if OBJECT is a valid Lisp image specification. A
644 valid image specification is a list whose car is the symbol
645 `image', and whose rest is a property list. The property list must
646 contain a value for key `:type'. That value must be the name of a
647 supported image type. The rest of the property list depends on the
648 image type. */
649
650 int
651 valid_image_p (Lisp_Object object)
652 {
653 int valid_p = 0;
654
655 if (IMAGEP (object))
656 {
657 Lisp_Object tem;
658
659 for (tem = XCDR (object); CONSP (tem); tem = XCDR (tem))
660 if (EQ (XCAR (tem), QCtype))
661 {
662 tem = XCDR (tem);
663 if (CONSP (tem) && SYMBOLP (XCAR (tem)))
664 {
665 struct image_type *type;
666 type = lookup_image_type (XCAR (tem));
667 if (type)
668 valid_p = type->valid_p (object);
669 }
670
671 break;
672 }
673 }
674
675 return valid_p;
676 }
677
678
679 /* Log error message with format string FORMAT and argument ARG.
680 Signaling an error, e.g. when an image cannot be loaded, is not a
681 good idea because this would interrupt redisplay, and the error
682 message display would lead to another redisplay. This function
683 therefore simply displays a message. */
684
685 static void
686 image_error (const char *format, Lisp_Object arg1, Lisp_Object arg2)
687 {
688 add_to_log (format, arg1, arg2);
689 }
690
691
692 \f
693 /***********************************************************************
694 Image specifications
695 ***********************************************************************/
696
697 enum image_value_type
698 {
699 IMAGE_DONT_CHECK_VALUE_TYPE,
700 IMAGE_STRING_VALUE,
701 IMAGE_STRING_OR_NIL_VALUE,
702 IMAGE_SYMBOL_VALUE,
703 IMAGE_POSITIVE_INTEGER_VALUE,
704 IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR,
705 IMAGE_NON_NEGATIVE_INTEGER_VALUE,
706 IMAGE_ASCENT_VALUE,
707 IMAGE_INTEGER_VALUE,
708 IMAGE_FUNCTION_VALUE,
709 IMAGE_NUMBER_VALUE,
710 IMAGE_BOOL_VALUE
711 };
712
713 /* Structure used when parsing image specifications. */
714
715 struct image_keyword
716 {
717 /* Name of keyword. */
718 const char *name;
719
720 /* The type of value allowed. */
721 enum image_value_type type;
722
723 /* Non-zero means key must be present. */
724 int mandatory_p;
725
726 /* Used to recognize duplicate keywords in a property list. */
727 int count;
728
729 /* The value that was found. */
730 Lisp_Object value;
731 };
732
733
734 static int parse_image_spec (Lisp_Object, struct image_keyword *,
735 int, Lisp_Object);
736 static Lisp_Object image_spec_value (Lisp_Object, Lisp_Object, int *);
737
738
739 /* Parse image spec SPEC according to KEYWORDS. A valid image spec
740 has the format (image KEYWORD VALUE ...). One of the keyword/
741 value pairs must be `:type TYPE'. KEYWORDS is a vector of
742 image_keywords structures of size NKEYWORDS describing other
743 allowed keyword/value pairs. Value is non-zero if SPEC is valid. */
744
745 static int
746 parse_image_spec (Lisp_Object spec, struct image_keyword *keywords,
747 int nkeywords, Lisp_Object type)
748 {
749 int i;
750 Lisp_Object plist;
751
752 if (!IMAGEP (spec))
753 return 0;
754
755 plist = XCDR (spec);
756 while (CONSP (plist))
757 {
758 Lisp_Object key, value;
759
760 /* First element of a pair must be a symbol. */
761 key = XCAR (plist);
762 plist = XCDR (plist);
763 if (!SYMBOLP (key))
764 return 0;
765
766 /* There must follow a value. */
767 if (!CONSP (plist))
768 return 0;
769 value = XCAR (plist);
770 plist = XCDR (plist);
771
772 /* Find key in KEYWORDS. Error if not found. */
773 for (i = 0; i < nkeywords; ++i)
774 if (strcmp (keywords[i].name, SSDATA (SYMBOL_NAME (key))) == 0)
775 break;
776
777 if (i == nkeywords)
778 continue;
779
780 /* Record that we recognized the keyword. If a keywords
781 was found more than once, it's an error. */
782 keywords[i].value = value;
783 ++keywords[i].count;
784
785 if (keywords[i].count > 1)
786 return 0;
787
788 /* Check type of value against allowed type. */
789 switch (keywords[i].type)
790 {
791 case IMAGE_STRING_VALUE:
792 if (!STRINGP (value))
793 return 0;
794 break;
795
796 case IMAGE_STRING_OR_NIL_VALUE:
797 if (!STRINGP (value) && !NILP (value))
798 return 0;
799 break;
800
801 case IMAGE_SYMBOL_VALUE:
802 if (!SYMBOLP (value))
803 return 0;
804 break;
805
806 case IMAGE_POSITIVE_INTEGER_VALUE:
807 if (!INTEGERP (value) || XINT (value) <= 0)
808 return 0;
809 break;
810
811 case IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR:
812 if (INTEGERP (value) && XINT (value) >= 0)
813 break;
814 if (CONSP (value)
815 && INTEGERP (XCAR (value)) && INTEGERP (XCDR (value))
816 && XINT (XCAR (value)) >= 0 && XINT (XCDR (value)) >= 0)
817 break;
818 return 0;
819
820 case IMAGE_ASCENT_VALUE:
821 if (SYMBOLP (value) && EQ (value, Qcenter))
822 break;
823 else if (INTEGERP (value)
824 && XINT (value) >= 0
825 && XINT (value) <= 100)
826 break;
827 return 0;
828
829 case IMAGE_NON_NEGATIVE_INTEGER_VALUE:
830 if (!INTEGERP (value) || XINT (value) < 0)
831 return 0;
832 break;
833
834 case IMAGE_DONT_CHECK_VALUE_TYPE:
835 break;
836
837 case IMAGE_FUNCTION_VALUE:
838 value = indirect_function (value);
839 if (!NILP (Ffunctionp (value)))
840 break;
841 return 0;
842
843 case IMAGE_NUMBER_VALUE:
844 if (!INTEGERP (value) && !FLOATP (value))
845 return 0;
846 break;
847
848 case IMAGE_INTEGER_VALUE:
849 if (!INTEGERP (value))
850 return 0;
851 break;
852
853 case IMAGE_BOOL_VALUE:
854 if (!NILP (value) && !EQ (value, Qt))
855 return 0;
856 break;
857
858 default:
859 abort ();
860 break;
861 }
862
863 if (EQ (key, QCtype) && !EQ (type, value))
864 return 0;
865 }
866
867 /* Check that all mandatory fields are present. */
868 for (i = 0; i < nkeywords; ++i)
869 if (keywords[i].mandatory_p && keywords[i].count == 0)
870 return 0;
871
872 return NILP (plist);
873 }
874
875
876 /* Return the value of KEY in image specification SPEC. Value is nil
877 if KEY is not present in SPEC. if FOUND is not null, set *FOUND
878 to 1 if KEY was found in SPEC, set it to 0 otherwise. */
879
880 static Lisp_Object
881 image_spec_value (Lisp_Object spec, Lisp_Object key, int *found)
882 {
883 Lisp_Object tail;
884
885 xassert (valid_image_p (spec));
886
887 for (tail = XCDR (spec);
888 CONSP (tail) && CONSP (XCDR (tail));
889 tail = XCDR (XCDR (tail)))
890 {
891 if (EQ (XCAR (tail), key))
892 {
893 if (found)
894 *found = 1;
895 return XCAR (XCDR (tail));
896 }
897 }
898
899 if (found)
900 *found = 0;
901 return Qnil;
902 }
903
904
905 DEFUN ("image-size", Fimage_size, Simage_size, 1, 3, 0,
906 doc: /* Return the size of image SPEC as pair (WIDTH . HEIGHT).
907 PIXELS non-nil means return the size in pixels, otherwise return the
908 size in canonical character units.
909 FRAME is the frame on which the image will be displayed. FRAME nil
910 or omitted means use the selected frame. */)
911 (Lisp_Object spec, Lisp_Object pixels, Lisp_Object frame)
912 {
913 Lisp_Object size;
914
915 size = Qnil;
916 if (valid_image_p (spec))
917 {
918 struct frame *f = check_x_frame (frame);
919 int id = lookup_image (f, spec);
920 struct image *img = IMAGE_FROM_ID (f, id);
921 int width = img->width + 2 * img->hmargin;
922 int height = img->height + 2 * img->vmargin;
923
924 if (NILP (pixels))
925 size = Fcons (make_float ((double) width / FRAME_COLUMN_WIDTH (f)),
926 make_float ((double) height / FRAME_LINE_HEIGHT (f)));
927 else
928 size = Fcons (make_number (width), make_number (height));
929 }
930 else
931 error ("Invalid image specification");
932
933 return size;
934 }
935
936
937 DEFUN ("image-mask-p", Fimage_mask_p, Simage_mask_p, 1, 2, 0,
938 doc: /* Return t if image SPEC has a mask bitmap.
939 FRAME is the frame on which the image will be displayed. FRAME nil
940 or omitted means use the selected frame. */)
941 (Lisp_Object spec, Lisp_Object frame)
942 {
943 Lisp_Object mask;
944
945 mask = Qnil;
946 if (valid_image_p (spec))
947 {
948 struct frame *f = check_x_frame (frame);
949 int id = lookup_image (f, spec);
950 struct image *img = IMAGE_FROM_ID (f, id);
951 if (img->mask)
952 mask = Qt;
953 }
954 else
955 error ("Invalid image specification");
956
957 return mask;
958 }
959
960 DEFUN ("image-metadata", Fimage_metadata, Simage_metadata, 1, 2, 0,
961 doc: /* Return metadata for image SPEC.
962 FRAME is the frame on which the image will be displayed. FRAME nil
963 or omitted means use the selected frame. */)
964 (Lisp_Object spec, Lisp_Object frame)
965 {
966 Lisp_Object ext;
967
968 ext = Qnil;
969 if (valid_image_p (spec))
970 {
971 struct frame *f = check_x_frame (frame);
972 int id = lookup_image (f, spec);
973 struct image *img = IMAGE_FROM_ID (f, id);
974 ext = img->lisp_data;
975 }
976
977 return ext;
978 }
979
980 \f
981 /***********************************************************************
982 Image type independent image structures
983 ***********************************************************************/
984
985 static void free_image (struct frame *f, struct image *img);
986 static int check_image_size (struct frame *f, int width, int height);
987
988 #define MAX_IMAGE_SIZE 6.0
989 /* Allocate and return a new image structure for image specification
990 SPEC. SPEC has a hash value of HASH. */
991
992 static struct image *
993 make_image (Lisp_Object spec, EMACS_UINT hash)
994 {
995 struct image *img = (struct image *) xmalloc (sizeof *img);
996 Lisp_Object file = image_spec_value (spec, QCfile, NULL);
997
998 xassert (valid_image_p (spec));
999 memset (img, 0, sizeof *img);
1000 img->dependencies = NILP (file) ? Qnil : list1 (file);
1001 img->type = lookup_image_type (image_spec_value (spec, QCtype, NULL));
1002 xassert (img->type != NULL);
1003 img->spec = spec;
1004 img->lisp_data = Qnil;
1005 img->ascent = DEFAULT_IMAGE_ASCENT;
1006 img->hash = hash;
1007 img->corners[BOT_CORNER] = -1; /* Full image */
1008 return img;
1009 }
1010
1011
1012 /* Free image IMG which was used on frame F, including its resources. */
1013
1014 static void
1015 free_image (struct frame *f, struct image *img)
1016 {
1017 if (img)
1018 {
1019 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1020
1021 /* Remove IMG from the hash table of its cache. */
1022 if (img->prev)
1023 img->prev->next = img->next;
1024 else
1025 c->buckets[img->hash % IMAGE_CACHE_BUCKETS_SIZE] = img->next;
1026
1027 if (img->next)
1028 img->next->prev = img->prev;
1029
1030 c->images[img->id] = NULL;
1031
1032 /* Free resources, then free IMG. */
1033 img->type->free (f, img);
1034 xfree (img);
1035 }
1036 }
1037
1038 /* Return 1 if the given widths and heights are valid for display;
1039 otherwise, return 0. */
1040
1041 int
1042 check_image_size (struct frame *f, int width, int height)
1043 {
1044 int w, h;
1045
1046 if (width <= 0 || height <= 0)
1047 return 0;
1048
1049 if (INTEGERP (Vmax_image_size))
1050 w = h = XINT (Vmax_image_size);
1051 else if (FLOATP (Vmax_image_size))
1052 {
1053 if (f != NULL)
1054 {
1055 w = FRAME_PIXEL_WIDTH (f);
1056 h = FRAME_PIXEL_HEIGHT (f);
1057 }
1058 else
1059 w = h = 1024; /* Arbitrary size for unknown frame. */
1060 w = (int) (XFLOAT_DATA (Vmax_image_size) * w);
1061 h = (int) (XFLOAT_DATA (Vmax_image_size) * h);
1062 }
1063 else
1064 return 1;
1065
1066 return (width <= w && height <= h);
1067 }
1068
1069 /* Prepare image IMG for display on frame F. Must be called before
1070 drawing an image. */
1071
1072 void
1073 prepare_image_for_display (struct frame *f, struct image *img)
1074 {
1075 EMACS_TIME t;
1076
1077 /* We're about to display IMG, so set its timestamp to `now'. */
1078 EMACS_GET_TIME (t);
1079 img->timestamp = EMACS_SECS (t);
1080
1081 /* If IMG doesn't have a pixmap yet, load it now, using the image
1082 type dependent loader function. */
1083 if (img->pixmap == NO_PIXMAP && !img->load_failed_p)
1084 img->load_failed_p = img->type->load (f, img) == 0;
1085
1086 }
1087
1088
1089 /* Value is the number of pixels for the ascent of image IMG when
1090 drawn in face FACE. */
1091
1092 int
1093 image_ascent (struct image *img, struct face *face, struct glyph_slice *slice)
1094 {
1095 int height;
1096 int ascent;
1097
1098 if (slice->height == img->height)
1099 height = img->height + img->vmargin;
1100 else if (slice->y == 0)
1101 height = slice->height + img->vmargin;
1102 else
1103 height = slice->height;
1104
1105 if (img->ascent == CENTERED_IMAGE_ASCENT)
1106 {
1107 if (face->font)
1108 {
1109 #ifdef HAVE_NTGUI
1110 /* W32 specific version. Why?. ++kfs */
1111 ascent = height / 2 - (FONT_DESCENT (face->font)
1112 - FONT_BASE (face->font)) / 2;
1113 #else
1114 /* This expression is arranged so that if the image can't be
1115 exactly centered, it will be moved slightly up. This is
1116 because a typical font is `top-heavy' (due to the presence
1117 uppercase letters), so the image placement should err towards
1118 being top-heavy too. It also just generally looks better. */
1119 ascent = (height + FONT_BASE(face->font)
1120 - FONT_DESCENT(face->font) + 1) / 2;
1121 #endif /* HAVE_NTGUI */
1122 }
1123 else
1124 ascent = height / 2;
1125 }
1126 else
1127 ascent = (int) (height * img->ascent / 100.0);
1128
1129 return ascent;
1130 }
1131
1132 \f
1133 /* Image background colors. */
1134
1135 /* Find the "best" corner color of a bitmap.
1136 On W32, XIMG is assumed to a device context with the bitmap selected. */
1137
1138 static RGB_PIXEL_COLOR
1139 four_corners_best (XImagePtr_or_DC ximg, int *corners,
1140 unsigned long width, unsigned long height)
1141 {
1142 RGB_PIXEL_COLOR corner_pixels[4], best IF_LINT (= 0);
1143 int i, best_count;
1144
1145 if (corners && corners[BOT_CORNER] >= 0)
1146 {
1147 /* Get the colors at the corner_pixels of ximg. */
1148 corner_pixels[0] = GET_PIXEL (ximg, corners[LEFT_CORNER], corners[TOP_CORNER]);
1149 corner_pixels[1] = GET_PIXEL (ximg, corners[RIGHT_CORNER] - 1, corners[TOP_CORNER]);
1150 corner_pixels[2] = GET_PIXEL (ximg, corners[RIGHT_CORNER] - 1, corners[BOT_CORNER] - 1);
1151 corner_pixels[3] = GET_PIXEL (ximg, corners[LEFT_CORNER], corners[BOT_CORNER] - 1);
1152 }
1153 else
1154 {
1155 /* Get the colors at the corner_pixels of ximg. */
1156 corner_pixels[0] = GET_PIXEL (ximg, 0, 0);
1157 corner_pixels[1] = GET_PIXEL (ximg, width - 1, 0);
1158 corner_pixels[2] = GET_PIXEL (ximg, width - 1, height - 1);
1159 corner_pixels[3] = GET_PIXEL (ximg, 0, height - 1);
1160 }
1161 /* Choose the most frequently found color as background. */
1162 for (i = best_count = 0; i < 4; ++i)
1163 {
1164 int j, n;
1165
1166 for (j = n = 0; j < 4; ++j)
1167 if (corner_pixels[i] == corner_pixels[j])
1168 ++n;
1169
1170 if (n > best_count)
1171 best = corner_pixels[i], best_count = n;
1172 }
1173
1174 return best;
1175 }
1176
1177 /* Portability macros */
1178
1179 #ifdef HAVE_NTGUI
1180
1181 #define Destroy_Image(img_dc, prev) \
1182 do { SelectObject (img_dc, prev); DeleteDC (img_dc); } while (0)
1183
1184 #define Free_Pixmap(display, pixmap) \
1185 DeleteObject (pixmap)
1186
1187 #elif defined (HAVE_NS)
1188
1189 #define Destroy_Image(ximg, dummy) \
1190 ns_release_object (ximg)
1191
1192 #define Free_Pixmap(display, pixmap) \
1193 ns_release_object (pixmap)
1194
1195 #else
1196
1197 #define Destroy_Image(ximg, dummy) \
1198 XDestroyImage (ximg)
1199
1200 #define Free_Pixmap(display, pixmap) \
1201 XFreePixmap (display, pixmap)
1202
1203 #endif /* !HAVE_NTGUI && !HAVE_NS */
1204
1205
1206 /* Return the `background' field of IMG. If IMG doesn't have one yet,
1207 it is guessed heuristically. If non-zero, XIMG is an existing
1208 XImage object (or device context with the image selected on W32) to
1209 use for the heuristic. */
1210
1211 RGB_PIXEL_COLOR
1212 image_background (struct image *img, struct frame *f, XImagePtr_or_DC ximg)
1213 {
1214 if (! img->background_valid)
1215 /* IMG doesn't have a background yet, try to guess a reasonable value. */
1216 {
1217 int free_ximg = !ximg;
1218 #ifdef HAVE_NTGUI
1219 HGDIOBJ prev;
1220 #endif /* HAVE_NTGUI */
1221
1222 if (free_ximg)
1223 {
1224 #ifndef HAVE_NTGUI
1225 ximg = XGetImage (FRAME_X_DISPLAY (f), img->pixmap,
1226 0, 0, img->width, img->height, ~0, ZPixmap);
1227 #else
1228 HDC frame_dc = get_frame_dc (f);
1229 ximg = CreateCompatibleDC (frame_dc);
1230 release_frame_dc (f, frame_dc);
1231 prev = SelectObject (ximg, img->pixmap);
1232 #endif /* !HAVE_NTGUI */
1233 }
1234
1235 img->background = four_corners_best (ximg, img->corners, img->width, img->height);
1236
1237 if (free_ximg)
1238 Destroy_Image (ximg, prev);
1239
1240 img->background_valid = 1;
1241 }
1242
1243 return img->background;
1244 }
1245
1246 /* Return the `background_transparent' field of IMG. If IMG doesn't
1247 have one yet, it is guessed heuristically. If non-zero, MASK is an
1248 existing XImage object to use for the heuristic. */
1249
1250 int
1251 image_background_transparent (struct image *img, struct frame *f, XImagePtr_or_DC mask)
1252 {
1253 if (! img->background_transparent_valid)
1254 /* IMG doesn't have a background yet, try to guess a reasonable value. */
1255 {
1256 if (img->mask)
1257 {
1258 int free_mask = !mask;
1259 #ifdef HAVE_NTGUI
1260 HGDIOBJ prev;
1261 #endif /* HAVE_NTGUI */
1262
1263 if (free_mask)
1264 {
1265 #ifndef HAVE_NTGUI
1266 mask = XGetImage (FRAME_X_DISPLAY (f), img->mask,
1267 0, 0, img->width, img->height, ~0, ZPixmap);
1268 #else
1269 HDC frame_dc = get_frame_dc (f);
1270 mask = CreateCompatibleDC (frame_dc);
1271 release_frame_dc (f, frame_dc);
1272 prev = SelectObject (mask, img->mask);
1273 #endif /* HAVE_NTGUI */
1274 }
1275
1276 img->background_transparent
1277 = (four_corners_best (mask, img->corners, img->width, img->height) == PIX_MASK_RETAIN);
1278
1279 if (free_mask)
1280 Destroy_Image (mask, prev);
1281 }
1282 else
1283 img->background_transparent = 0;
1284
1285 img->background_transparent_valid = 1;
1286 }
1287
1288 return img->background_transparent;
1289 }
1290
1291 \f
1292 /***********************************************************************
1293 Helper functions for X image types
1294 ***********************************************************************/
1295
1296 static void x_clear_image_1 (struct frame *, struct image *, int,
1297 int, int);
1298 static void x_clear_image (struct frame *f, struct image *img);
1299 static unsigned long x_alloc_image_color (struct frame *f,
1300 struct image *img,
1301 Lisp_Object color_name,
1302 unsigned long dflt);
1303
1304
1305 /* Clear X resources of image IMG on frame F. PIXMAP_P non-zero means
1306 free the pixmap if any. MASK_P non-zero means clear the mask
1307 pixmap if any. COLORS_P non-zero means free colors allocated for
1308 the image, if any. */
1309
1310 static void
1311 x_clear_image_1 (struct frame *f, struct image *img, int pixmap_p, int mask_p,
1312 int colors_p)
1313 {
1314 if (pixmap_p && img->pixmap)
1315 {
1316 Free_Pixmap (FRAME_X_DISPLAY (f), img->pixmap);
1317 img->pixmap = NO_PIXMAP;
1318 /* NOTE (HAVE_NS): background color is NOT an indexed color! */
1319 img->background_valid = 0;
1320 }
1321
1322 if (mask_p && img->mask)
1323 {
1324 Free_Pixmap (FRAME_X_DISPLAY (f), img->mask);
1325 img->mask = NO_PIXMAP;
1326 img->background_transparent_valid = 0;
1327 }
1328
1329 if (colors_p && img->ncolors)
1330 {
1331 /* W32_TODO: color table support. */
1332 #ifdef HAVE_X_WINDOWS
1333 x_free_colors (f, img->colors, img->ncolors);
1334 #endif /* HAVE_X_WINDOWS */
1335 xfree (img->colors);
1336 img->colors = NULL;
1337 img->ncolors = 0;
1338 }
1339
1340 }
1341
1342 /* Free X resources of image IMG which is used on frame F. */
1343
1344 static void
1345 x_clear_image (struct frame *f, struct image *img)
1346 {
1347 BLOCK_INPUT;
1348 x_clear_image_1 (f, img, 1, 1, 1);
1349 UNBLOCK_INPUT;
1350 }
1351
1352
1353 /* Allocate color COLOR_NAME for image IMG on frame F. If color
1354 cannot be allocated, use DFLT. Add a newly allocated color to
1355 IMG->colors, so that it can be freed again. Value is the pixel
1356 color. */
1357
1358 static unsigned long
1359 x_alloc_image_color (struct frame *f, struct image *img, Lisp_Object color_name,
1360 unsigned long dflt)
1361 {
1362 XColor color;
1363 unsigned long result;
1364
1365 xassert (STRINGP (color_name));
1366
1367 if (x_defined_color (f, SSDATA (color_name), &color, 1))
1368 {
1369 /* This isn't called frequently so we get away with simply
1370 reallocating the color vector to the needed size, here. */
1371 ++img->ncolors;
1372 img->colors =
1373 (unsigned long *) xrealloc (img->colors,
1374 img->ncolors * sizeof *img->colors);
1375 img->colors[img->ncolors - 1] = color.pixel;
1376 result = color.pixel;
1377 }
1378 else
1379 result = dflt;
1380
1381 return result;
1382 }
1383
1384
1385 \f
1386 /***********************************************************************
1387 Image Cache
1388 ***********************************************************************/
1389
1390 static void cache_image (struct frame *f, struct image *img);
1391 static void postprocess_image (struct frame *, struct image *);
1392
1393 /* Return a new, initialized image cache that is allocated from the
1394 heap. Call free_image_cache to free an image cache. */
1395
1396 struct image_cache *
1397 make_image_cache (void)
1398 {
1399 struct image_cache *c = (struct image_cache *) xmalloc (sizeof *c);
1400 int size;
1401
1402 memset (c, 0, sizeof *c);
1403 c->size = 50;
1404 c->images = (struct image **) xmalloc (c->size * sizeof *c->images);
1405 size = IMAGE_CACHE_BUCKETS_SIZE * sizeof *c->buckets;
1406 c->buckets = (struct image **) xmalloc (size);
1407 memset (c->buckets, 0, size);
1408 return c;
1409 }
1410
1411
1412 /* Find an image matching SPEC in the cache, and return it. If no
1413 image is found, return NULL. */
1414 static struct image *
1415 search_image_cache (struct frame *f, Lisp_Object spec, EMACS_UINT hash)
1416 {
1417 struct image *img;
1418 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1419 int i = hash % IMAGE_CACHE_BUCKETS_SIZE;
1420
1421 if (!c) return NULL;
1422
1423 /* If the image spec does not specify a background color, the cached
1424 image must have the same background color as the current frame.
1425 The foreground color must also match, for the sake of monochrome
1426 images.
1427
1428 In fact, we could ignore the foreground color matching condition
1429 for color images, or if the image spec specifies :foreground;
1430 similarly we could ignore the background color matching condition
1431 for formats that don't use transparency (such as jpeg), or if the
1432 image spec specifies :background. However, the extra memory
1433 usage is probably negligible in practice, so we don't bother. */
1434
1435 for (img = c->buckets[i]; img; img = img->next)
1436 if (img->hash == hash
1437 && !NILP (Fequal (img->spec, spec))
1438 && img->frame_foreground == FRAME_FOREGROUND_PIXEL (f)
1439 && img->frame_background == FRAME_BACKGROUND_PIXEL (f))
1440 break;
1441 return img;
1442 }
1443
1444
1445 /* Search frame F for an image with spec SPEC, and free it. */
1446
1447 static void
1448 uncache_image (struct frame *f, Lisp_Object spec)
1449 {
1450 struct image *img = search_image_cache (f, spec, sxhash (spec, 0));
1451 if (img)
1452 {
1453 free_image (f, img);
1454 /* As display glyphs may still be referring to the image ID, we
1455 must garbage the frame (Bug#6426). */
1456 SET_FRAME_GARBAGED (f);
1457 }
1458 }
1459
1460
1461 /* Free image cache of frame F. Be aware that X frames share images
1462 caches. */
1463
1464 void
1465 free_image_cache (struct frame *f)
1466 {
1467 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1468 if (c)
1469 {
1470 int i;
1471
1472 /* Cache should not be referenced by any frame when freed. */
1473 xassert (c->refcount == 0);
1474
1475 for (i = 0; i < c->used; ++i)
1476 free_image (f, c->images[i]);
1477 xfree (c->images);
1478 xfree (c->buckets);
1479 xfree (c);
1480 FRAME_IMAGE_CACHE (f) = NULL;
1481 }
1482 }
1483
1484
1485 /* Clear image cache of frame F. FILTER=t means free all images.
1486 FILTER=nil means clear only images that haven't been
1487 displayed for some time.
1488 Else, only free the images which have FILTER in their `dependencies'.
1489 Should be called from time to time to reduce the number of loaded images.
1490 If image-cache-eviction-delay is non-nil, this frees images in the cache
1491 which weren't displayed for at least that many seconds. */
1492
1493 static void
1494 clear_image_cache (struct frame *f, Lisp_Object filter)
1495 {
1496 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1497
1498 if (c)
1499 {
1500 int i, nfreed = 0;
1501
1502 /* Block input so that we won't be interrupted by a SIGIO
1503 while being in an inconsistent state. */
1504 BLOCK_INPUT;
1505
1506 if (!NILP (filter))
1507 {
1508 /* Filter image cache. */
1509 for (i = 0; i < c->used; ++i)
1510 {
1511 struct image *img = c->images[i];
1512 if (img && (EQ (Qt, filter)
1513 || !NILP (Fmember (filter, img->dependencies))))
1514 {
1515 free_image (f, img);
1516 ++nfreed;
1517 }
1518 }
1519 }
1520 else if (INTEGERP (Vimage_cache_eviction_delay))
1521 {
1522 /* Free cache based on timestamp. */
1523 EMACS_TIME t;
1524 time_t old;
1525 int delay, nimages = 0;
1526
1527 for (i = 0; i < c->used; ++i)
1528 if (c->images[i])
1529 nimages++;
1530
1531 /* If the number of cached images has grown unusually large,
1532 decrease the cache eviction delay (Bug#6230). */
1533 delay = XFASTINT (Vimage_cache_eviction_delay);
1534 if (nimages > 40)
1535 delay = max (1, 1600 * delay / (nimages*nimages));
1536
1537 EMACS_GET_TIME (t);
1538 old = EMACS_SECS (t) - delay;
1539
1540 for (i = 0; i < c->used; ++i)
1541 {
1542 struct image *img = c->images[i];
1543 if (img && img->timestamp < old)
1544 {
1545 free_image (f, img);
1546 ++nfreed;
1547 }
1548 }
1549 }
1550
1551 /* We may be clearing the image cache because, for example,
1552 Emacs was iconified for a longer period of time. In that
1553 case, current matrices may still contain references to
1554 images freed above. So, clear these matrices. */
1555 if (nfreed)
1556 {
1557 Lisp_Object tail, frame;
1558
1559 FOR_EACH_FRAME (tail, frame)
1560 {
1561 struct frame *fr = XFRAME (frame);
1562 if (FRAME_IMAGE_CACHE (fr) == c)
1563 clear_current_matrices (fr);
1564 }
1565
1566 ++windows_or_buffers_changed;
1567 }
1568
1569 UNBLOCK_INPUT;
1570 }
1571 }
1572
1573 void
1574 clear_image_caches (Lisp_Object filter)
1575 {
1576 /* FIXME: We want to do
1577 * struct terminal *t;
1578 * for (t = terminal_list; t; t = t->next_terminal)
1579 * clear_image_cache (t, filter); */
1580 Lisp_Object tail, frame;
1581 FOR_EACH_FRAME (tail, frame)
1582 if (FRAME_WINDOW_P (XFRAME (frame)))
1583 clear_image_cache (XFRAME (frame), filter);
1584 }
1585
1586 DEFUN ("clear-image-cache", Fclear_image_cache, Sclear_image_cache,
1587 0, 1, 0,
1588 doc: /* Clear the image cache.
1589 FILTER nil or a frame means clear all images in the selected frame.
1590 FILTER t means clear the image caches of all frames.
1591 Anything else, means only clear those images which refer to FILTER,
1592 which is then usually a filename. */)
1593 (Lisp_Object filter)
1594 {
1595 if (!(EQ (filter, Qnil) || FRAMEP (filter)))
1596 clear_image_caches (filter);
1597 else
1598 clear_image_cache (check_x_frame (filter), Qt);
1599
1600 return Qnil;
1601 }
1602
1603
1604 DEFUN ("image-flush", Fimage_flush, Simage_flush,
1605 1, 2, 0,
1606 doc: /* Fush the image with specification SPEC on frame FRAME.
1607 This removes the image from the Emacs image cache. If SPEC specifies
1608 an image file, the next redisplay of this image will read from the
1609 current contents of that file.
1610
1611 FRAME nil or omitted means use the selected frame.
1612 FRAME t means refresh the image on all frames. */)
1613 (Lisp_Object spec, Lisp_Object frame)
1614 {
1615 if (!valid_image_p (spec))
1616 error ("Invalid image specification");
1617
1618 if (EQ (frame, Qt))
1619 {
1620 Lisp_Object tail;
1621 FOR_EACH_FRAME (tail, frame)
1622 {
1623 struct frame *f = XFRAME (frame);
1624 if (FRAME_WINDOW_P (f))
1625 uncache_image (f, spec);
1626 }
1627 }
1628 else
1629 uncache_image (check_x_frame (frame), spec);
1630
1631 return Qnil;
1632 }
1633
1634
1635 /* Compute masks and transform image IMG on frame F, as specified
1636 by the image's specification, */
1637
1638 static void
1639 postprocess_image (struct frame *f, struct image *img)
1640 {
1641 /* Manipulation of the image's mask. */
1642 if (img->pixmap)
1643 {
1644 Lisp_Object conversion, spec;
1645 Lisp_Object mask;
1646
1647 spec = img->spec;
1648
1649 /* `:heuristic-mask t'
1650 `:mask heuristic'
1651 means build a mask heuristically.
1652 `:heuristic-mask (R G B)'
1653 `:mask (heuristic (R G B))'
1654 means build a mask from color (R G B) in the
1655 image.
1656 `:mask nil'
1657 means remove a mask, if any. */
1658
1659 mask = image_spec_value (spec, QCheuristic_mask, NULL);
1660 if (!NILP (mask))
1661 x_build_heuristic_mask (f, img, mask);
1662 else
1663 {
1664 int found_p;
1665
1666 mask = image_spec_value (spec, QCmask, &found_p);
1667
1668 if (EQ (mask, Qheuristic))
1669 x_build_heuristic_mask (f, img, Qt);
1670 else if (CONSP (mask)
1671 && EQ (XCAR (mask), Qheuristic))
1672 {
1673 if (CONSP (XCDR (mask)))
1674 x_build_heuristic_mask (f, img, XCAR (XCDR (mask)));
1675 else
1676 x_build_heuristic_mask (f, img, XCDR (mask));
1677 }
1678 else if (NILP (mask) && found_p && img->mask)
1679 {
1680 Free_Pixmap (FRAME_X_DISPLAY (f), img->mask);
1681 img->mask = NO_PIXMAP;
1682 }
1683 }
1684
1685
1686 /* Should we apply an image transformation algorithm? */
1687 conversion = image_spec_value (spec, QCconversion, NULL);
1688 if (EQ (conversion, Qdisabled))
1689 x_disable_image (f, img);
1690 else if (EQ (conversion, Qlaplace))
1691 x_laplace (f, img);
1692 else if (EQ (conversion, Qemboss))
1693 x_emboss (f, img);
1694 else if (CONSP (conversion)
1695 && EQ (XCAR (conversion), Qedge_detection))
1696 {
1697 Lisp_Object tem;
1698 tem = XCDR (conversion);
1699 if (CONSP (tem))
1700 x_edge_detection (f, img,
1701 Fplist_get (tem, QCmatrix),
1702 Fplist_get (tem, QCcolor_adjustment));
1703 }
1704 }
1705 }
1706
1707
1708 /* Return the id of image with Lisp specification SPEC on frame F.
1709 SPEC must be a valid Lisp image specification (see valid_image_p). */
1710
1711 int
1712 lookup_image (struct frame *f, Lisp_Object spec)
1713 {
1714 struct image *img;
1715 EMACS_UINT hash;
1716 EMACS_TIME now;
1717
1718 /* F must be a window-system frame, and SPEC must be a valid image
1719 specification. */
1720 xassert (FRAME_WINDOW_P (f));
1721 xassert (valid_image_p (spec));
1722
1723 /* Look up SPEC in the hash table of the image cache. */
1724 hash = sxhash (spec, 0);
1725 img = search_image_cache (f, spec, hash);
1726 if (img && img->load_failed_p)
1727 {
1728 free_image (f, img);
1729 img = NULL;
1730 }
1731
1732 /* If not found, create a new image and cache it. */
1733 if (img == NULL)
1734 {
1735 BLOCK_INPUT;
1736 img = make_image (spec, hash);
1737 cache_image (f, img);
1738 img->load_failed_p = img->type->load (f, img) == 0;
1739 img->frame_foreground = FRAME_FOREGROUND_PIXEL (f);
1740 img->frame_background = FRAME_BACKGROUND_PIXEL (f);
1741
1742 /* If we can't load the image, and we don't have a width and
1743 height, use some arbitrary width and height so that we can
1744 draw a rectangle for it. */
1745 if (img->load_failed_p)
1746 {
1747 Lisp_Object value;
1748
1749 value = image_spec_value (spec, QCwidth, NULL);
1750 img->width = (INTEGERP (value)
1751 ? XFASTINT (value) : DEFAULT_IMAGE_WIDTH);
1752 value = image_spec_value (spec, QCheight, NULL);
1753 img->height = (INTEGERP (value)
1754 ? XFASTINT (value) : DEFAULT_IMAGE_HEIGHT);
1755 }
1756 else
1757 {
1758 /* Handle image type independent image attributes
1759 `:ascent ASCENT', `:margin MARGIN', `:relief RELIEF',
1760 `:background COLOR'. */
1761 Lisp_Object ascent, margin, relief, bg;
1762
1763 ascent = image_spec_value (spec, QCascent, NULL);
1764 if (INTEGERP (ascent))
1765 img->ascent = XFASTINT (ascent);
1766 else if (EQ (ascent, Qcenter))
1767 img->ascent = CENTERED_IMAGE_ASCENT;
1768
1769 margin = image_spec_value (spec, QCmargin, NULL);
1770 if (INTEGERP (margin) && XINT (margin) >= 0)
1771 img->vmargin = img->hmargin = XFASTINT (margin);
1772 else if (CONSP (margin) && INTEGERP (XCAR (margin))
1773 && INTEGERP (XCDR (margin)))
1774 {
1775 if (XINT (XCAR (margin)) > 0)
1776 img->hmargin = XFASTINT (XCAR (margin));
1777 if (XINT (XCDR (margin)) > 0)
1778 img->vmargin = XFASTINT (XCDR (margin));
1779 }
1780
1781 relief = image_spec_value (spec, QCrelief, NULL);
1782 if (INTEGERP (relief))
1783 {
1784 img->relief = XINT (relief);
1785 img->hmargin += eabs (img->relief);
1786 img->vmargin += eabs (img->relief);
1787 }
1788
1789 if (! img->background_valid)
1790 {
1791 bg = image_spec_value (img->spec, QCbackground, NULL);
1792 if (!NILP (bg))
1793 {
1794 img->background
1795 = x_alloc_image_color (f, img, bg,
1796 FRAME_BACKGROUND_PIXEL (f));
1797 img->background_valid = 1;
1798 }
1799 }
1800
1801 /* Do image transformations and compute masks, unless we
1802 don't have the image yet. */
1803 if (!EQ (*img->type->type, Qpostscript))
1804 postprocess_image (f, img);
1805 }
1806
1807 UNBLOCK_INPUT;
1808 }
1809
1810 /* We're using IMG, so set its timestamp to `now'. */
1811 EMACS_GET_TIME (now);
1812 img->timestamp = EMACS_SECS (now);
1813
1814 /* Value is the image id. */
1815 return img->id;
1816 }
1817
1818
1819 /* Cache image IMG in the image cache of frame F. */
1820
1821 static void
1822 cache_image (struct frame *f, struct image *img)
1823 {
1824 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1825 int i;
1826
1827 /* Find a free slot in c->images. */
1828 for (i = 0; i < c->used; ++i)
1829 if (c->images[i] == NULL)
1830 break;
1831
1832 /* If no free slot found, maybe enlarge c->images. */
1833 if (i == c->used && c->used == c->size)
1834 {
1835 c->size *= 2;
1836 c->images = (struct image **) xrealloc (c->images,
1837 c->size * sizeof *c->images);
1838 }
1839
1840 /* Add IMG to c->images, and assign IMG an id. */
1841 c->images[i] = img;
1842 img->id = i;
1843 if (i == c->used)
1844 ++c->used;
1845
1846 /* Add IMG to the cache's hash table. */
1847 i = img->hash % IMAGE_CACHE_BUCKETS_SIZE;
1848 img->next = c->buckets[i];
1849 if (img->next)
1850 img->next->prev = img;
1851 img->prev = NULL;
1852 c->buckets[i] = img;
1853 }
1854
1855
1856 /* Call FN on every image in the image cache of frame F. Used to mark
1857 Lisp Objects in the image cache. */
1858
1859 /* Mark Lisp objects in image IMG. */
1860
1861 static void
1862 mark_image (struct image *img)
1863 {
1864 mark_object (img->spec);
1865 mark_object (img->dependencies);
1866
1867 if (!NILP (img->lisp_data))
1868 mark_object (img->lisp_data);
1869 }
1870
1871
1872 void
1873 mark_image_cache (struct image_cache *c)
1874 {
1875 if (c)
1876 {
1877 int i;
1878 for (i = 0; i < c->used; ++i)
1879 if (c->images[i])
1880 mark_image (c->images[i]);
1881 }
1882 }
1883
1884
1885 \f
1886 /***********************************************************************
1887 X / NS / W32 support code
1888 ***********************************************************************/
1889
1890 #ifdef HAVE_NTGUI
1891
1892 /* Macro for defining functions that will be loaded from image DLLs. */
1893 #define DEF_IMGLIB_FN(rettype,func,args) static rettype (FAR CDECL *fn_##func)args
1894
1895 /* Macro for loading those image functions from the library. */
1896 #define LOAD_IMGLIB_FN(lib,func) { \
1897 fn_##func = (void *) GetProcAddress (lib, #func); \
1898 if (!fn_##func) return 0; \
1899 }
1900
1901 #endif /* HAVE_NTGUI */
1902
1903 static int x_create_x_image_and_pixmap (struct frame *, int, int, int,
1904 XImagePtr *, Pixmap *);
1905 static void x_destroy_x_image (XImagePtr);
1906 static void x_put_x_image (struct frame *, XImagePtr, Pixmap, int, int);
1907
1908
1909 /* Create an XImage and a pixmap of size WIDTH x HEIGHT for use on
1910 frame F. Set *XIMG and *PIXMAP to the XImage and Pixmap created.
1911 Set (*XIMG)->data to a raster of WIDTH x HEIGHT pixels allocated
1912 via xmalloc. Print error messages via image_error if an error
1913 occurs. Value is non-zero if successful.
1914
1915 On W32, a DEPTH of zero signifies a 24 bit image, otherwise DEPTH
1916 should indicate the bit depth of the image. */
1917
1918 static int
1919 x_create_x_image_and_pixmap (struct frame *f, int width, int height, int depth,
1920 XImagePtr *ximg, Pixmap *pixmap)
1921 {
1922 #ifdef HAVE_X_WINDOWS
1923 Display *display = FRAME_X_DISPLAY (f);
1924 Window window = FRAME_X_WINDOW (f);
1925 Screen *screen = FRAME_X_SCREEN (f);
1926
1927 xassert (interrupt_input_blocked);
1928
1929 if (depth <= 0)
1930 depth = DefaultDepthOfScreen (screen);
1931 *ximg = XCreateImage (display, DefaultVisualOfScreen (screen),
1932 depth, ZPixmap, 0, NULL, width, height,
1933 depth > 16 ? 32 : depth > 8 ? 16 : 8, 0);
1934 if (*ximg == NULL)
1935 {
1936 image_error ("Unable to allocate X image", Qnil, Qnil);
1937 return 0;
1938 }
1939
1940 /* Allocate image raster. */
1941 (*ximg)->data = (char *) xmalloc ((*ximg)->bytes_per_line * height);
1942
1943 /* Allocate a pixmap of the same size. */
1944 *pixmap = XCreatePixmap (display, window, width, height, depth);
1945 if (*pixmap == NO_PIXMAP)
1946 {
1947 x_destroy_x_image (*ximg);
1948 *ximg = NULL;
1949 image_error ("Unable to create X pixmap", Qnil, Qnil);
1950 return 0;
1951 }
1952
1953 return 1;
1954 #endif /* HAVE_X_WINDOWS */
1955
1956 #ifdef HAVE_NTGUI
1957
1958 BITMAPINFOHEADER *header;
1959 HDC hdc;
1960 int scanline_width_bits;
1961 int remainder;
1962 int palette_colors = 0;
1963
1964 if (depth == 0)
1965 depth = 24;
1966
1967 if (depth != 1 && depth != 4 && depth != 8
1968 && depth != 16 && depth != 24 && depth != 32)
1969 {
1970 image_error ("Invalid image bit depth specified", Qnil, Qnil);
1971 return 0;
1972 }
1973
1974 scanline_width_bits = width * depth;
1975 remainder = scanline_width_bits % 32;
1976
1977 if (remainder)
1978 scanline_width_bits += 32 - remainder;
1979
1980 /* Bitmaps with a depth less than 16 need a palette. */
1981 /* BITMAPINFO structure already contains the first RGBQUAD. */
1982 if (depth < 16)
1983 palette_colors = 1 << depth - 1;
1984
1985 *ximg = xmalloc (sizeof (XImage) + palette_colors * sizeof (RGBQUAD));
1986 if (*ximg == NULL)
1987 {
1988 image_error ("Unable to allocate memory for XImage", Qnil, Qnil);
1989 return 0;
1990 }
1991
1992 header = &(*ximg)->info.bmiHeader;
1993 memset (&(*ximg)->info, 0, sizeof (BITMAPINFO));
1994 header->biSize = sizeof (*header);
1995 header->biWidth = width;
1996 header->biHeight = -height; /* negative indicates a top-down bitmap. */
1997 header->biPlanes = 1;
1998 header->biBitCount = depth;
1999 header->biCompression = BI_RGB;
2000 header->biClrUsed = palette_colors;
2001
2002 /* TODO: fill in palette. */
2003 if (depth == 1)
2004 {
2005 (*ximg)->info.bmiColors[0].rgbBlue = 0;
2006 (*ximg)->info.bmiColors[0].rgbGreen = 0;
2007 (*ximg)->info.bmiColors[0].rgbRed = 0;
2008 (*ximg)->info.bmiColors[0].rgbReserved = 0;
2009 (*ximg)->info.bmiColors[1].rgbBlue = 255;
2010 (*ximg)->info.bmiColors[1].rgbGreen = 255;
2011 (*ximg)->info.bmiColors[1].rgbRed = 255;
2012 (*ximg)->info.bmiColors[1].rgbReserved = 0;
2013 }
2014
2015 hdc = get_frame_dc (f);
2016
2017 /* Create a DIBSection and raster array for the bitmap,
2018 and store its handle in *pixmap. */
2019 *pixmap = CreateDIBSection (hdc, &((*ximg)->info),
2020 (depth < 16) ? DIB_PAL_COLORS : DIB_RGB_COLORS,
2021 /* casting avoids a GCC warning */
2022 (void **)&((*ximg)->data), NULL, 0);
2023
2024 /* Realize display palette and garbage all frames. */
2025 release_frame_dc (f, hdc);
2026
2027 if (*pixmap == NULL)
2028 {
2029 DWORD err = GetLastError ();
2030 Lisp_Object errcode;
2031 /* All system errors are < 10000, so the following is safe. */
2032 XSETINT (errcode, (int) err);
2033 image_error ("Unable to create bitmap, error code %d", errcode, Qnil);
2034 x_destroy_x_image (*ximg);
2035 return 0;
2036 }
2037
2038 return 1;
2039
2040 #endif /* HAVE_NTGUI */
2041
2042 #ifdef HAVE_NS
2043 *pixmap = ns_image_for_XPM (width, height, depth);
2044 if (*pixmap == 0)
2045 {
2046 *ximg = NULL;
2047 image_error ("Unable to allocate NSImage for XPM pixmap", Qnil, Qnil);
2048 return 0;
2049 }
2050 *ximg = *pixmap;
2051 return 1;
2052 #endif
2053 }
2054
2055
2056 /* Destroy XImage XIMG. Free XIMG->data. */
2057
2058 static void
2059 x_destroy_x_image (XImagePtr ximg)
2060 {
2061 xassert (interrupt_input_blocked);
2062 if (ximg)
2063 {
2064 #ifdef HAVE_X_WINDOWS
2065 xfree (ximg->data);
2066 ximg->data = NULL;
2067 XDestroyImage (ximg);
2068 #endif /* HAVE_X_WINDOWS */
2069 #ifdef HAVE_NTGUI
2070 /* Data will be freed by DestroyObject. */
2071 ximg->data = NULL;
2072 xfree (ximg);
2073 #endif /* HAVE_NTGUI */
2074 #ifdef HAVE_NS
2075 ns_release_object (ximg);
2076 #endif /* HAVE_NS */
2077 }
2078 }
2079
2080
2081 /* Put XImage XIMG into pixmap PIXMAP on frame F. WIDTH and HEIGHT
2082 are width and height of both the image and pixmap. */
2083
2084 static void
2085 x_put_x_image (struct frame *f, XImagePtr ximg, Pixmap pixmap, int width, int height)
2086 {
2087 #ifdef HAVE_X_WINDOWS
2088 GC gc;
2089
2090 xassert (interrupt_input_blocked);
2091 gc = XCreateGC (FRAME_X_DISPLAY (f), pixmap, 0, NULL);
2092 XPutImage (FRAME_X_DISPLAY (f), pixmap, gc, ximg, 0, 0, 0, 0, width, height);
2093 XFreeGC (FRAME_X_DISPLAY (f), gc);
2094 #endif /* HAVE_X_WINDOWS */
2095
2096 #ifdef HAVE_NTGUI
2097 #if 0 /* I don't think this is necessary looking at where it is used. */
2098 HDC hdc = get_frame_dc (f);
2099 SetDIBits (hdc, pixmap, 0, height, ximg->data, &(ximg->info), DIB_RGB_COLORS);
2100 release_frame_dc (f, hdc);
2101 #endif
2102 #endif /* HAVE_NTGUI */
2103
2104 #ifdef HAVE_NS
2105 xassert (ximg == pixmap);
2106 ns_retain_object (ximg);
2107 #endif
2108 }
2109
2110 \f
2111 /***********************************************************************
2112 File Handling
2113 ***********************************************************************/
2114
2115 /* Find image file FILE. Look in data-directory/images, then
2116 x-bitmap-file-path. Value is the encoded full name of the file
2117 found, or nil if not found. */
2118
2119 Lisp_Object
2120 x_find_image_file (Lisp_Object file)
2121 {
2122 Lisp_Object file_found, search_path;
2123 int fd;
2124
2125 /* TODO I think this should use something like image-load-path
2126 instead. Unfortunately, that can contain non-string elements. */
2127 search_path = Fcons (Fexpand_file_name (build_string ("images"),
2128 Vdata_directory),
2129 Vx_bitmap_file_path);
2130
2131 /* Try to find FILE in data-directory/images, then x-bitmap-file-path. */
2132 fd = openp (search_path, file, Qnil, &file_found, Qnil);
2133
2134 if (fd == -1)
2135 file_found = Qnil;
2136 else
2137 {
2138 file_found = ENCODE_FILE (file_found);
2139 close (fd);
2140 }
2141
2142 return file_found;
2143 }
2144
2145
2146 /* Read FILE into memory. Value is a pointer to a buffer allocated
2147 with xmalloc holding FILE's contents. Value is null if an error
2148 occurred. *SIZE is set to the size of the file. */
2149
2150 static unsigned char *
2151 slurp_file (char *file, ptrdiff_t *size)
2152 {
2153 FILE *fp = NULL;
2154 unsigned char *buf = NULL;
2155 struct stat st;
2156
2157 if (stat (file, &st) == 0
2158 && (fp = fopen (file, "rb")) != NULL
2159 && 0 <= st.st_size && st.st_size <= min (PTRDIFF_MAX, SIZE_MAX)
2160 && (buf = (unsigned char *) xmalloc (st.st_size),
2161 fread (buf, 1, st.st_size, fp) == st.st_size))
2162 {
2163 *size = st.st_size;
2164 fclose (fp);
2165 }
2166 else
2167 {
2168 if (fp)
2169 fclose (fp);
2170 if (buf)
2171 {
2172 xfree (buf);
2173 buf = NULL;
2174 }
2175 }
2176
2177 return buf;
2178 }
2179
2180
2181 \f
2182 /***********************************************************************
2183 XBM images
2184 ***********************************************************************/
2185
2186 static int xbm_scan (unsigned char **, unsigned char *, char *, int *);
2187 static int xbm_load (struct frame *f, struct image *img);
2188 static int xbm_load_image (struct frame *f, struct image *img,
2189 unsigned char *, unsigned char *);
2190 static int xbm_image_p (Lisp_Object object);
2191 static int xbm_read_bitmap_data (struct frame *f,
2192 unsigned char *, unsigned char *,
2193 int *, int *, char **, int);
2194 static int xbm_file_p (Lisp_Object);
2195
2196
2197 /* Indices of image specification fields in xbm_format, below. */
2198
2199 enum xbm_keyword_index
2200 {
2201 XBM_TYPE,
2202 XBM_FILE,
2203 XBM_WIDTH,
2204 XBM_HEIGHT,
2205 XBM_DATA,
2206 XBM_FOREGROUND,
2207 XBM_BACKGROUND,
2208 XBM_ASCENT,
2209 XBM_MARGIN,
2210 XBM_RELIEF,
2211 XBM_ALGORITHM,
2212 XBM_HEURISTIC_MASK,
2213 XBM_MASK,
2214 XBM_LAST
2215 };
2216
2217 /* Vector of image_keyword structures describing the format
2218 of valid XBM image specifications. */
2219
2220 static const struct image_keyword xbm_format[XBM_LAST] =
2221 {
2222 {":type", IMAGE_SYMBOL_VALUE, 1},
2223 {":file", IMAGE_STRING_VALUE, 0},
2224 {":width", IMAGE_POSITIVE_INTEGER_VALUE, 0},
2225 {":height", IMAGE_POSITIVE_INTEGER_VALUE, 0},
2226 {":data", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2227 {":foreground", IMAGE_STRING_OR_NIL_VALUE, 0},
2228 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
2229 {":ascent", IMAGE_ASCENT_VALUE, 0},
2230 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
2231 {":relief", IMAGE_INTEGER_VALUE, 0},
2232 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2233 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2234 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0}
2235 };
2236
2237 /* Structure describing the image type XBM. */
2238
2239 static struct image_type xbm_type =
2240 {
2241 &Qxbm,
2242 xbm_image_p,
2243 xbm_load,
2244 x_clear_image,
2245 NULL
2246 };
2247
2248 /* Tokens returned from xbm_scan. */
2249
2250 enum xbm_token
2251 {
2252 XBM_TK_IDENT = 256,
2253 XBM_TK_NUMBER
2254 };
2255
2256
2257 /* Return non-zero if OBJECT is a valid XBM-type image specification.
2258 A valid specification is a list starting with the symbol `image'
2259 The rest of the list is a property list which must contain an
2260 entry `:type xbm..
2261
2262 If the specification specifies a file to load, it must contain
2263 an entry `:file FILENAME' where FILENAME is a string.
2264
2265 If the specification is for a bitmap loaded from memory it must
2266 contain `:width WIDTH', `:height HEIGHT', and `:data DATA', where
2267 WIDTH and HEIGHT are integers > 0. DATA may be:
2268
2269 1. a string large enough to hold the bitmap data, i.e. it must
2270 have a size >= (WIDTH + 7) / 8 * HEIGHT
2271
2272 2. a bool-vector of size >= WIDTH * HEIGHT
2273
2274 3. a vector of strings or bool-vectors, one for each line of the
2275 bitmap.
2276
2277 4. a string containing an in-memory XBM file. WIDTH and HEIGHT
2278 may not be specified in this case because they are defined in the
2279 XBM file.
2280
2281 Both the file and data forms may contain the additional entries
2282 `:background COLOR' and `:foreground COLOR'. If not present,
2283 foreground and background of the frame on which the image is
2284 displayed is used. */
2285
2286 static int
2287 xbm_image_p (Lisp_Object object)
2288 {
2289 struct image_keyword kw[XBM_LAST];
2290
2291 memcpy (kw, xbm_format, sizeof kw);
2292 if (!parse_image_spec (object, kw, XBM_LAST, Qxbm))
2293 return 0;
2294
2295 xassert (EQ (kw[XBM_TYPE].value, Qxbm));
2296
2297 if (kw[XBM_FILE].count)
2298 {
2299 if (kw[XBM_WIDTH].count || kw[XBM_HEIGHT].count || kw[XBM_DATA].count)
2300 return 0;
2301 }
2302 else if (kw[XBM_DATA].count && xbm_file_p (kw[XBM_DATA].value))
2303 {
2304 /* In-memory XBM file. */
2305 if (kw[XBM_WIDTH].count || kw[XBM_HEIGHT].count || kw[XBM_FILE].count)
2306 return 0;
2307 }
2308 else
2309 {
2310 Lisp_Object data;
2311 int width, height;
2312
2313 /* Entries for `:width', `:height' and `:data' must be present. */
2314 if (!kw[XBM_WIDTH].count
2315 || !kw[XBM_HEIGHT].count
2316 || !kw[XBM_DATA].count)
2317 return 0;
2318
2319 data = kw[XBM_DATA].value;
2320 width = XFASTINT (kw[XBM_WIDTH].value);
2321 height = XFASTINT (kw[XBM_HEIGHT].value);
2322
2323 /* Check type of data, and width and height against contents of
2324 data. */
2325 if (VECTORP (data))
2326 {
2327 int i;
2328
2329 /* Number of elements of the vector must be >= height. */
2330 if (ASIZE (data) < height)
2331 return 0;
2332
2333 /* Each string or bool-vector in data must be large enough
2334 for one line of the image. */
2335 for (i = 0; i < height; ++i)
2336 {
2337 Lisp_Object elt = XVECTOR (data)->contents[i];
2338
2339 if (STRINGP (elt))
2340 {
2341 if (SCHARS (elt)
2342 < (width + BITS_PER_CHAR - 1) / BITS_PER_CHAR)
2343 return 0;
2344 }
2345 else if (BOOL_VECTOR_P (elt))
2346 {
2347 if (XBOOL_VECTOR (elt)->size < width)
2348 return 0;
2349 }
2350 else
2351 return 0;
2352 }
2353 }
2354 else if (STRINGP (data))
2355 {
2356 if (SCHARS (data)
2357 < (width + BITS_PER_CHAR - 1) / BITS_PER_CHAR * height)
2358 return 0;
2359 }
2360 else if (BOOL_VECTOR_P (data))
2361 {
2362 if (XBOOL_VECTOR (data)->size < width * height)
2363 return 0;
2364 }
2365 else
2366 return 0;
2367 }
2368
2369 return 1;
2370 }
2371
2372
2373 /* Scan a bitmap file. FP is the stream to read from. Value is
2374 either an enumerator from enum xbm_token, or a character for a
2375 single-character token, or 0 at end of file. If scanning an
2376 identifier, store the lexeme of the identifier in SVAL. If
2377 scanning a number, store its value in *IVAL. */
2378
2379 static int
2380 xbm_scan (unsigned char **s, unsigned char *end, char *sval, int *ival)
2381 {
2382 unsigned int c;
2383
2384 loop:
2385
2386 /* Skip white space. */
2387 while (*s < end && (c = *(*s)++, isspace (c)))
2388 ;
2389
2390 if (*s >= end)
2391 c = 0;
2392 else if (isdigit (c))
2393 {
2394 int value = 0, digit;
2395
2396 if (c == '0' && *s < end)
2397 {
2398 c = *(*s)++;
2399 if (c == 'x' || c == 'X')
2400 {
2401 while (*s < end)
2402 {
2403 c = *(*s)++;
2404 if (isdigit (c))
2405 digit = c - '0';
2406 else if (c >= 'a' && c <= 'f')
2407 digit = c - 'a' + 10;
2408 else if (c >= 'A' && c <= 'F')
2409 digit = c - 'A' + 10;
2410 else
2411 break;
2412 value = 16 * value + digit;
2413 }
2414 }
2415 else if (isdigit (c))
2416 {
2417 value = c - '0';
2418 while (*s < end
2419 && (c = *(*s)++, isdigit (c)))
2420 value = 8 * value + c - '0';
2421 }
2422 }
2423 else
2424 {
2425 value = c - '0';
2426 while (*s < end
2427 && (c = *(*s)++, isdigit (c)))
2428 value = 10 * value + c - '0';
2429 }
2430
2431 if (*s < end)
2432 *s = *s - 1;
2433 *ival = value;
2434 c = XBM_TK_NUMBER;
2435 }
2436 else if (isalpha (c) || c == '_')
2437 {
2438 *sval++ = c;
2439 while (*s < end
2440 && (c = *(*s)++, (isalnum (c) || c == '_')))
2441 *sval++ = c;
2442 *sval = 0;
2443 if (*s < end)
2444 *s = *s - 1;
2445 c = XBM_TK_IDENT;
2446 }
2447 else if (c == '/' && **s == '*')
2448 {
2449 /* C-style comment. */
2450 ++*s;
2451 while (**s && (**s != '*' || *(*s + 1) != '/'))
2452 ++*s;
2453 if (**s)
2454 {
2455 *s += 2;
2456 goto loop;
2457 }
2458 }
2459
2460 return c;
2461 }
2462
2463 #ifdef HAVE_NTGUI
2464
2465 /* Create a Windows bitmap from X bitmap data. */
2466 static HBITMAP
2467 w32_create_pixmap_from_bitmap_data (int width, int height, char *data)
2468 {
2469 static unsigned char swap_nibble[16]
2470 = { 0x0, 0x8, 0x4, 0xc, /* 0000 1000 0100 1100 */
2471 0x2, 0xa, 0x6, 0xe, /* 0010 1010 0110 1110 */
2472 0x1, 0x9, 0x5, 0xd, /* 0001 1001 0101 1101 */
2473 0x3, 0xb, 0x7, 0xf }; /* 0011 1011 0111 1111 */
2474 int i, j, w1, w2;
2475 unsigned char *bits, *p;
2476 HBITMAP bmp;
2477
2478 w1 = (width + 7) / 8; /* nb of 8bits elt in X bitmap */
2479 w2 = ((width + 15) / 16) * 2; /* nb of 16bits elt in W32 bitmap */
2480 bits = (unsigned char *) alloca (height * w2);
2481 memset (bits, 0, height * w2);
2482 for (i = 0; i < height; i++)
2483 {
2484 p = bits + i*w2;
2485 for (j = 0; j < w1; j++)
2486 {
2487 /* Bitswap XBM bytes to match how Windows does things. */
2488 unsigned char c = *data++;
2489 *p++ = (unsigned char)((swap_nibble[c & 0xf] << 4)
2490 | (swap_nibble[(c>>4) & 0xf]));
2491 }
2492 }
2493 bmp = CreateBitmap (width, height, 1, 1, (char *) bits);
2494
2495 return bmp;
2496 }
2497
2498 static void
2499 convert_mono_to_color_image (struct frame *f, struct image *img,
2500 COLORREF foreground, COLORREF background)
2501 {
2502 HDC hdc, old_img_dc, new_img_dc;
2503 HGDIOBJ old_prev, new_prev;
2504 HBITMAP new_pixmap;
2505
2506 hdc = get_frame_dc (f);
2507 old_img_dc = CreateCompatibleDC (hdc);
2508 new_img_dc = CreateCompatibleDC (hdc);
2509 new_pixmap = CreateCompatibleBitmap (hdc, img->width, img->height);
2510 release_frame_dc (f, hdc);
2511 old_prev = SelectObject (old_img_dc, img->pixmap);
2512 new_prev = SelectObject (new_img_dc, new_pixmap);
2513 /* Windows convention for mono bitmaps is black = background,
2514 white = foreground. */
2515 SetTextColor (new_img_dc, background);
2516 SetBkColor (new_img_dc, foreground);
2517
2518 BitBlt (new_img_dc, 0, 0, img->width, img->height, old_img_dc,
2519 0, 0, SRCCOPY);
2520
2521 SelectObject (old_img_dc, old_prev);
2522 SelectObject (new_img_dc, new_prev);
2523 DeleteDC (old_img_dc);
2524 DeleteDC (new_img_dc);
2525 DeleteObject (img->pixmap);
2526 if (new_pixmap == 0)
2527 fprintf (stderr, "Failed to convert image to color.\n");
2528 else
2529 img->pixmap = new_pixmap;
2530 }
2531
2532 #define XBM_BIT_SHUFFLE(b) (~(b))
2533
2534 #else
2535
2536 #define XBM_BIT_SHUFFLE(b) (b)
2537
2538 #endif /* HAVE_NTGUI */
2539
2540
2541 static void
2542 Create_Pixmap_From_Bitmap_Data (struct frame *f, struct image *img, char *data,
2543 RGB_PIXEL_COLOR fg, RGB_PIXEL_COLOR bg,
2544 int non_default_colors)
2545 {
2546 #ifdef HAVE_NTGUI
2547 img->pixmap
2548 = w32_create_pixmap_from_bitmap_data (img->width, img->height, data);
2549
2550 /* If colors were specified, transfer the bitmap to a color one. */
2551 if (non_default_colors)
2552 convert_mono_to_color_image (f, img, fg, bg);
2553
2554 #elif defined (HAVE_NS)
2555 img->pixmap = ns_image_from_XBM (data, img->width, img->height);
2556
2557 #else
2558 img->pixmap
2559 = XCreatePixmapFromBitmapData (FRAME_X_DISPLAY (f),
2560 FRAME_X_WINDOW (f),
2561 data,
2562 img->width, img->height,
2563 fg, bg,
2564 DefaultDepthOfScreen (FRAME_X_SCREEN (f)));
2565 #endif /* !HAVE_NTGUI && !HAVE_NS */
2566 }
2567
2568
2569
2570 /* Replacement for XReadBitmapFileData which isn't available under old
2571 X versions. CONTENTS is a pointer to a buffer to parse; END is the
2572 buffer's end. Set *WIDTH and *HEIGHT to the width and height of
2573 the image. Return in *DATA the bitmap data allocated with xmalloc.
2574 Value is non-zero if successful. DATA null means just test if
2575 CONTENTS looks like an in-memory XBM file. If INHIBIT_IMAGE_ERROR
2576 is non-zero, inhibit the call to image_error when the image size is
2577 invalid (the bitmap remains unread). */
2578
2579 static int
2580 xbm_read_bitmap_data (struct frame *f, unsigned char *contents, unsigned char *end,
2581 int *width, int *height, char **data,
2582 int inhibit_image_error)
2583 {
2584 unsigned char *s = contents;
2585 char buffer[BUFSIZ];
2586 int padding_p = 0;
2587 int v10 = 0;
2588 int bytes_per_line, i, nbytes;
2589 char *p;
2590 int value;
2591 int LA1;
2592
2593 #define match() \
2594 LA1 = xbm_scan (&s, end, buffer, &value)
2595
2596 #define expect(TOKEN) \
2597 if (LA1 != (TOKEN)) \
2598 goto failure; \
2599 else \
2600 match ()
2601
2602 #define expect_ident(IDENT) \
2603 if (LA1 == XBM_TK_IDENT && strcmp (buffer, (IDENT)) == 0) \
2604 match (); \
2605 else \
2606 goto failure
2607
2608 *width = *height = -1;
2609 if (data)
2610 *data = NULL;
2611 LA1 = xbm_scan (&s, end, buffer, &value);
2612
2613 /* Parse defines for width, height and hot-spots. */
2614 while (LA1 == '#')
2615 {
2616 match ();
2617 expect_ident ("define");
2618 expect (XBM_TK_IDENT);
2619
2620 if (LA1 == XBM_TK_NUMBER)
2621 {
2622 char *q = strrchr (buffer, '_');
2623 q = q ? q + 1 : buffer;
2624 if (strcmp (q, "width") == 0)
2625 *width = value;
2626 else if (strcmp (q, "height") == 0)
2627 *height = value;
2628 }
2629 expect (XBM_TK_NUMBER);
2630 }
2631
2632 if (!check_image_size (f, *width, *height))
2633 {
2634 if (!inhibit_image_error)
2635 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
2636 goto failure;
2637 }
2638 else if (data == NULL)
2639 goto success;
2640
2641 /* Parse bits. Must start with `static'. */
2642 expect_ident ("static");
2643 if (LA1 == XBM_TK_IDENT)
2644 {
2645 if (strcmp (buffer, "unsigned") == 0)
2646 {
2647 match ();
2648 expect_ident ("char");
2649 }
2650 else if (strcmp (buffer, "short") == 0)
2651 {
2652 match ();
2653 v10 = 1;
2654 if (*width % 16 && *width % 16 < 9)
2655 padding_p = 1;
2656 }
2657 else if (strcmp (buffer, "char") == 0)
2658 match ();
2659 else
2660 goto failure;
2661 }
2662 else
2663 goto failure;
2664
2665 expect (XBM_TK_IDENT);
2666 expect ('[');
2667 expect (']');
2668 expect ('=');
2669 expect ('{');
2670
2671 bytes_per_line = (*width + 7) / 8 + padding_p;
2672 nbytes = bytes_per_line * *height;
2673 p = *data = (char *) xmalloc (nbytes);
2674
2675 if (v10)
2676 {
2677 for (i = 0; i < nbytes; i += 2)
2678 {
2679 int val = value;
2680 expect (XBM_TK_NUMBER);
2681
2682 *p++ = XBM_BIT_SHUFFLE (val);
2683 if (!padding_p || ((i + 2) % bytes_per_line))
2684 *p++ = XBM_BIT_SHUFFLE (value >> 8);
2685
2686 if (LA1 == ',' || LA1 == '}')
2687 match ();
2688 else
2689 goto failure;
2690 }
2691 }
2692 else
2693 {
2694 for (i = 0; i < nbytes; ++i)
2695 {
2696 int val = value;
2697 expect (XBM_TK_NUMBER);
2698
2699 *p++ = XBM_BIT_SHUFFLE (val);
2700
2701 if (LA1 == ',' || LA1 == '}')
2702 match ();
2703 else
2704 goto failure;
2705 }
2706 }
2707
2708 success:
2709 return 1;
2710
2711 failure:
2712
2713 if (data && *data)
2714 {
2715 xfree (*data);
2716 *data = NULL;
2717 }
2718 return 0;
2719
2720 #undef match
2721 #undef expect
2722 #undef expect_ident
2723 }
2724
2725
2726 /* Load XBM image IMG which will be displayed on frame F from buffer
2727 CONTENTS. END is the end of the buffer. Value is non-zero if
2728 successful. */
2729
2730 static int
2731 xbm_load_image (struct frame *f, struct image *img, unsigned char *contents,
2732 unsigned char *end)
2733 {
2734 int rc;
2735 char *data;
2736 int success_p = 0;
2737
2738 rc = xbm_read_bitmap_data (f, contents, end, &img->width, &img->height,
2739 &data, 0);
2740 if (rc)
2741 {
2742 unsigned long foreground = FRAME_FOREGROUND_PIXEL (f);
2743 unsigned long background = FRAME_BACKGROUND_PIXEL (f);
2744 int non_default_colors = 0;
2745 Lisp_Object value;
2746
2747 xassert (img->width > 0 && img->height > 0);
2748
2749 /* Get foreground and background colors, maybe allocate colors. */
2750 value = image_spec_value (img->spec, QCforeground, NULL);
2751 if (!NILP (value))
2752 {
2753 foreground = x_alloc_image_color (f, img, value, foreground);
2754 non_default_colors = 1;
2755 }
2756 value = image_spec_value (img->spec, QCbackground, NULL);
2757 if (!NILP (value))
2758 {
2759 background = x_alloc_image_color (f, img, value, background);
2760 img->background = background;
2761 img->background_valid = 1;
2762 non_default_colors = 1;
2763 }
2764
2765 Create_Pixmap_From_Bitmap_Data (f, img, data,
2766 foreground, background,
2767 non_default_colors);
2768 xfree (data);
2769
2770 if (img->pixmap == NO_PIXMAP)
2771 {
2772 x_clear_image (f, img);
2773 image_error ("Unable to create X pixmap for `%s'", img->spec, Qnil);
2774 }
2775 else
2776 success_p = 1;
2777 }
2778 else
2779 image_error ("Error loading XBM image `%s'", img->spec, Qnil);
2780
2781 return success_p;
2782 }
2783
2784
2785 /* Value is non-zero if DATA looks like an in-memory XBM file. */
2786
2787 static int
2788 xbm_file_p (Lisp_Object data)
2789 {
2790 int w, h;
2791 return (STRINGP (data)
2792 && xbm_read_bitmap_data (NULL, SDATA (data),
2793 (SDATA (data) + SBYTES (data)),
2794 &w, &h, NULL, 1));
2795 }
2796
2797
2798 /* Fill image IMG which is used on frame F with pixmap data. Value is
2799 non-zero if successful. */
2800
2801 static int
2802 xbm_load (struct frame *f, struct image *img)
2803 {
2804 int success_p = 0;
2805 Lisp_Object file_name;
2806
2807 xassert (xbm_image_p (img->spec));
2808
2809 /* If IMG->spec specifies a file name, create a non-file spec from it. */
2810 file_name = image_spec_value (img->spec, QCfile, NULL);
2811 if (STRINGP (file_name))
2812 {
2813 Lisp_Object file;
2814 unsigned char *contents;
2815 ptrdiff_t size;
2816
2817 file = x_find_image_file (file_name);
2818 if (!STRINGP (file))
2819 {
2820 image_error ("Cannot find image file `%s'", file_name, Qnil);
2821 return 0;
2822 }
2823
2824 contents = slurp_file (SSDATA (file), &size);
2825 if (contents == NULL)
2826 {
2827 image_error ("Error loading XBM image `%s'", img->spec, Qnil);
2828 return 0;
2829 }
2830
2831 success_p = xbm_load_image (f, img, contents, contents + size);
2832 }
2833 else
2834 {
2835 struct image_keyword fmt[XBM_LAST];
2836 Lisp_Object data;
2837 unsigned long foreground = FRAME_FOREGROUND_PIXEL (f);
2838 unsigned long background = FRAME_BACKGROUND_PIXEL (f);
2839 int non_default_colors = 0;
2840 char *bits;
2841 int parsed_p;
2842 int in_memory_file_p = 0;
2843
2844 /* See if data looks like an in-memory XBM file. */
2845 data = image_spec_value (img->spec, QCdata, NULL);
2846 in_memory_file_p = xbm_file_p (data);
2847
2848 /* Parse the image specification. */
2849 memcpy (fmt, xbm_format, sizeof fmt);
2850 parsed_p = parse_image_spec (img->spec, fmt, XBM_LAST, Qxbm);
2851 (void) parsed_p;
2852 xassert (parsed_p);
2853
2854 /* Get specified width, and height. */
2855 if (!in_memory_file_p)
2856 {
2857 img->width = XFASTINT (fmt[XBM_WIDTH].value);
2858 img->height = XFASTINT (fmt[XBM_HEIGHT].value);
2859 xassert (img->width > 0 && img->height > 0);
2860 }
2861
2862 /* Get foreground and background colors, maybe allocate colors. */
2863 if (fmt[XBM_FOREGROUND].count
2864 && STRINGP (fmt[XBM_FOREGROUND].value))
2865 {
2866 foreground = x_alloc_image_color (f, img, fmt[XBM_FOREGROUND].value,
2867 foreground);
2868 non_default_colors = 1;
2869 }
2870
2871 if (fmt[XBM_BACKGROUND].count
2872 && STRINGP (fmt[XBM_BACKGROUND].value))
2873 {
2874 background = x_alloc_image_color (f, img, fmt[XBM_BACKGROUND].value,
2875 background);
2876 non_default_colors = 1;
2877 }
2878
2879 if (in_memory_file_p)
2880 success_p = xbm_load_image (f, img, SDATA (data),
2881 (SDATA (data)
2882 + SBYTES (data)));
2883 else
2884 {
2885 if (VECTORP (data))
2886 {
2887 int i;
2888 char *p;
2889 int nbytes = (img->width + BITS_PER_CHAR - 1) / BITS_PER_CHAR;
2890
2891 p = bits = (char *) alloca (nbytes * img->height);
2892 for (i = 0; i < img->height; ++i, p += nbytes)
2893 {
2894 Lisp_Object line = XVECTOR (data)->contents[i];
2895 if (STRINGP (line))
2896 memcpy (p, SDATA (line), nbytes);
2897 else
2898 memcpy (p, XBOOL_VECTOR (line)->data, nbytes);
2899 }
2900 }
2901 else if (STRINGP (data))
2902 bits = SSDATA (data);
2903 else
2904 bits = (char *) XBOOL_VECTOR (data)->data;
2905
2906 #ifdef WINDOWSNT
2907 {
2908 char *invertedBits;
2909 int nbytes, i;
2910 /* Windows mono bitmaps are reversed compared with X. */
2911 invertedBits = bits;
2912 nbytes = (img->width + BITS_PER_CHAR - 1) / BITS_PER_CHAR
2913 * img->height;
2914 bits = (char *) alloca (nbytes);
2915 for (i = 0; i < nbytes; i++)
2916 bits[i] = XBM_BIT_SHUFFLE (invertedBits[i]);
2917 }
2918 #endif
2919 /* Create the pixmap. */
2920
2921 Create_Pixmap_From_Bitmap_Data (f, img, bits,
2922 foreground, background,
2923 non_default_colors);
2924 if (img->pixmap)
2925 success_p = 1;
2926 else
2927 {
2928 image_error ("Unable to create pixmap for XBM image `%s'",
2929 img->spec, Qnil);
2930 x_clear_image (f, img);
2931 }
2932 }
2933 }
2934
2935 return success_p;
2936 }
2937
2938
2939 \f
2940 /***********************************************************************
2941 XPM images
2942 ***********************************************************************/
2943
2944 #if defined (HAVE_XPM) || defined (HAVE_NS)
2945
2946 static int xpm_image_p (Lisp_Object object);
2947 static int xpm_load (struct frame *f, struct image *img);
2948 static int xpm_valid_color_symbols_p (Lisp_Object);
2949
2950 #endif /* HAVE_XPM || HAVE_NS */
2951
2952 #ifdef HAVE_XPM
2953 #ifdef HAVE_NTGUI
2954 /* Indicate to xpm.h that we don't have Xlib. */
2955 #define FOR_MSW
2956 /* simx.h in xpm defines XColor and XImage differently than Emacs. */
2957 /* It also defines Display the same way as Emacs, but gcc 3.3 still barfs. */
2958 #define XColor xpm_XColor
2959 #define XImage xpm_XImage
2960 #define Display xpm_Display
2961 #define PIXEL_ALREADY_TYPEDEFED
2962 #include "X11/xpm.h"
2963 #undef FOR_MSW
2964 #undef XColor
2965 #undef XImage
2966 #undef Display
2967 #undef PIXEL_ALREADY_TYPEDEFED
2968 #else
2969 #include "X11/xpm.h"
2970 #endif /* HAVE_NTGUI */
2971 #endif /* HAVE_XPM */
2972
2973 #if defined (HAVE_XPM) || defined (HAVE_NS)
2974 /* The symbol `xpm' identifying XPM-format images. */
2975
2976 static Lisp_Object Qxpm;
2977
2978 /* Indices of image specification fields in xpm_format, below. */
2979
2980 enum xpm_keyword_index
2981 {
2982 XPM_TYPE,
2983 XPM_FILE,
2984 XPM_DATA,
2985 XPM_ASCENT,
2986 XPM_MARGIN,
2987 XPM_RELIEF,
2988 XPM_ALGORITHM,
2989 XPM_HEURISTIC_MASK,
2990 XPM_MASK,
2991 XPM_COLOR_SYMBOLS,
2992 XPM_BACKGROUND,
2993 XPM_LAST
2994 };
2995
2996 /* Vector of image_keyword structures describing the format
2997 of valid XPM image specifications. */
2998
2999 static const struct image_keyword xpm_format[XPM_LAST] =
3000 {
3001 {":type", IMAGE_SYMBOL_VALUE, 1},
3002 {":file", IMAGE_STRING_VALUE, 0},
3003 {":data", IMAGE_STRING_VALUE, 0},
3004 {":ascent", IMAGE_ASCENT_VALUE, 0},
3005 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
3006 {":relief", IMAGE_INTEGER_VALUE, 0},
3007 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3008 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3009 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3010 {":color-symbols", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3011 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
3012 };
3013
3014 /* Structure describing the image type XPM. */
3015
3016 static struct image_type xpm_type =
3017 {
3018 &Qxpm,
3019 xpm_image_p,
3020 xpm_load,
3021 x_clear_image,
3022 NULL
3023 };
3024
3025 #ifdef HAVE_X_WINDOWS
3026
3027 /* Define ALLOC_XPM_COLORS if we can use Emacs' own color allocation
3028 functions for allocating image colors. Our own functions handle
3029 color allocation failures more gracefully than the ones on the XPM
3030 lib. */
3031
3032 #if defined XpmAllocColor && defined XpmFreeColors && defined XpmColorClosure
3033 #define ALLOC_XPM_COLORS
3034 #endif
3035 #endif /* HAVE_X_WINDOWS */
3036
3037 #ifdef ALLOC_XPM_COLORS
3038
3039 static void xpm_init_color_cache (struct frame *, XpmAttributes *);
3040 static void xpm_free_color_cache (void);
3041 static int xpm_lookup_color (struct frame *, char *, XColor *);
3042 static int xpm_color_bucket (char *);
3043 static struct xpm_cached_color *xpm_cache_color (struct frame *, char *,
3044 XColor *, int);
3045
3046 /* An entry in a hash table used to cache color definitions of named
3047 colors. This cache is necessary to speed up XPM image loading in
3048 case we do color allocations ourselves. Without it, we would need
3049 a call to XParseColor per pixel in the image. */
3050
3051 struct xpm_cached_color
3052 {
3053 /* Next in collision chain. */
3054 struct xpm_cached_color *next;
3055
3056 /* Color definition (RGB and pixel color). */
3057 XColor color;
3058
3059 /* Color name. */
3060 char name[1];
3061 };
3062
3063 /* The hash table used for the color cache, and its bucket vector
3064 size. */
3065
3066 #define XPM_COLOR_CACHE_BUCKETS 1001
3067 static struct xpm_cached_color **xpm_color_cache;
3068
3069 /* Initialize the color cache. */
3070
3071 static void
3072 xpm_init_color_cache (struct frame *f, XpmAttributes *attrs)
3073 {
3074 size_t nbytes = XPM_COLOR_CACHE_BUCKETS * sizeof *xpm_color_cache;
3075 xpm_color_cache = (struct xpm_cached_color **) xmalloc (nbytes);
3076 memset (xpm_color_cache, 0, nbytes);
3077 init_color_table ();
3078
3079 if (attrs->valuemask & XpmColorSymbols)
3080 {
3081 int i;
3082 XColor color;
3083
3084 for (i = 0; i < attrs->numsymbols; ++i)
3085 if (XParseColor (FRAME_X_DISPLAY (f), FRAME_X_COLORMAP (f),
3086 attrs->colorsymbols[i].value, &color))
3087 {
3088 color.pixel = lookup_rgb_color (f, color.red, color.green,
3089 color.blue);
3090 xpm_cache_color (f, attrs->colorsymbols[i].name, &color, -1);
3091 }
3092 }
3093 }
3094
3095 /* Free the color cache. */
3096
3097 static void
3098 xpm_free_color_cache (void)
3099 {
3100 struct xpm_cached_color *p, *next;
3101 int i;
3102
3103 for (i = 0; i < XPM_COLOR_CACHE_BUCKETS; ++i)
3104 for (p = xpm_color_cache[i]; p; p = next)
3105 {
3106 next = p->next;
3107 xfree (p);
3108 }
3109
3110 xfree (xpm_color_cache);
3111 xpm_color_cache = NULL;
3112 free_color_table ();
3113 }
3114
3115 /* Return the bucket index for color named COLOR_NAME in the color
3116 cache. */
3117
3118 static int
3119 xpm_color_bucket (char *color_name)
3120 {
3121 unsigned h = 0;
3122 char *s;
3123
3124 for (s = color_name; *s; ++s)
3125 h = (h << 2) ^ *s;
3126 return h %= XPM_COLOR_CACHE_BUCKETS;
3127 }
3128
3129
3130 /* On frame F, cache values COLOR for color with name COLOR_NAME.
3131 BUCKET, if >= 0, is a precomputed bucket index. Value is the cache
3132 entry added. */
3133
3134 static struct xpm_cached_color *
3135 xpm_cache_color (struct frame *f, char *color_name, XColor *color, int bucket)
3136 {
3137 size_t nbytes;
3138 struct xpm_cached_color *p;
3139
3140 if (bucket < 0)
3141 bucket = xpm_color_bucket (color_name);
3142
3143 nbytes = sizeof *p + strlen (color_name);
3144 p = (struct xpm_cached_color *) xmalloc (nbytes);
3145 strcpy (p->name, color_name);
3146 p->color = *color;
3147 p->next = xpm_color_cache[bucket];
3148 xpm_color_cache[bucket] = p;
3149 return p;
3150 }
3151
3152 /* Look up color COLOR_NAME for frame F in the color cache. If found,
3153 return the cached definition in *COLOR. Otherwise, make a new
3154 entry in the cache and allocate the color. Value is zero if color
3155 allocation failed. */
3156
3157 static int
3158 xpm_lookup_color (struct frame *f, char *color_name, XColor *color)
3159 {
3160 struct xpm_cached_color *p;
3161 int h = xpm_color_bucket (color_name);
3162
3163 for (p = xpm_color_cache[h]; p; p = p->next)
3164 if (strcmp (p->name, color_name) == 0)
3165 break;
3166
3167 if (p != NULL)
3168 *color = p->color;
3169 else if (XParseColor (FRAME_X_DISPLAY (f), FRAME_X_COLORMAP (f),
3170 color_name, color))
3171 {
3172 color->pixel = lookup_rgb_color (f, color->red, color->green,
3173 color->blue);
3174 p = xpm_cache_color (f, color_name, color, h);
3175 }
3176 /* You get `opaque' at least from ImageMagick converting pbm to xpm
3177 with transparency, and it's useful. */
3178 else if (strcmp ("opaque", color_name) == 0)
3179 {
3180 memset (color, 0, sizeof (XColor)); /* Is this necessary/correct? */
3181 color->pixel = FRAME_FOREGROUND_PIXEL (f);
3182 p = xpm_cache_color (f, color_name, color, h);
3183 }
3184
3185 return p != NULL;
3186 }
3187
3188
3189 /* Callback for allocating color COLOR_NAME. Called from the XPM lib.
3190 CLOSURE is a pointer to the frame on which we allocate the
3191 color. Return in *COLOR the allocated color. Value is non-zero
3192 if successful. */
3193
3194 static int
3195 xpm_alloc_color (Display *dpy, Colormap cmap, char *color_name, XColor *color,
3196 void *closure)
3197 {
3198 return xpm_lookup_color ((struct frame *) closure, color_name, color);
3199 }
3200
3201
3202 /* Callback for freeing NPIXELS colors contained in PIXELS. CLOSURE
3203 is a pointer to the frame on which we allocate the color. Value is
3204 non-zero if successful. */
3205
3206 static int
3207 xpm_free_colors (Display *dpy, Colormap cmap, Pixel *pixels, int npixels, void *closure)
3208 {
3209 return 1;
3210 }
3211
3212 #endif /* ALLOC_XPM_COLORS */
3213
3214
3215 #ifdef HAVE_NTGUI
3216
3217 /* XPM library details. */
3218
3219 DEF_IMGLIB_FN (void, XpmFreeAttributes, (XpmAttributes *));
3220 DEF_IMGLIB_FN (int, XpmCreateImageFromBuffer, (Display *, char *, xpm_XImage **,
3221 xpm_XImage **, XpmAttributes *));
3222 DEF_IMGLIB_FN (int, XpmReadFileToImage, (Display *, char *, xpm_XImage **,
3223 xpm_XImage **, XpmAttributes *));
3224 DEF_IMGLIB_FN (void, XImageFree, (xpm_XImage *));
3225
3226 static int
3227 init_xpm_functions (Lisp_Object libraries)
3228 {
3229 HMODULE library;
3230
3231 if (!(library = w32_delayed_load (libraries, Qxpm)))
3232 return 0;
3233
3234 LOAD_IMGLIB_FN (library, XpmFreeAttributes);
3235 LOAD_IMGLIB_FN (library, XpmCreateImageFromBuffer);
3236 LOAD_IMGLIB_FN (library, XpmReadFileToImage);
3237 LOAD_IMGLIB_FN (library, XImageFree);
3238 return 1;
3239 }
3240
3241 #endif /* HAVE_NTGUI */
3242
3243
3244 /* Value is non-zero if COLOR_SYMBOLS is a valid color symbols list
3245 for XPM images. Such a list must consist of conses whose car and
3246 cdr are strings. */
3247
3248 static int
3249 xpm_valid_color_symbols_p (Lisp_Object color_symbols)
3250 {
3251 while (CONSP (color_symbols))
3252 {
3253 Lisp_Object sym = XCAR (color_symbols);
3254 if (!CONSP (sym)
3255 || !STRINGP (XCAR (sym))
3256 || !STRINGP (XCDR (sym)))
3257 break;
3258 color_symbols = XCDR (color_symbols);
3259 }
3260
3261 return NILP (color_symbols);
3262 }
3263
3264
3265 /* Value is non-zero if OBJECT is a valid XPM image specification. */
3266
3267 static int
3268 xpm_image_p (Lisp_Object object)
3269 {
3270 struct image_keyword fmt[XPM_LAST];
3271 memcpy (fmt, xpm_format, sizeof fmt);
3272 return (parse_image_spec (object, fmt, XPM_LAST, Qxpm)
3273 /* Either `:file' or `:data' must be present. */
3274 && fmt[XPM_FILE].count + fmt[XPM_DATA].count == 1
3275 /* Either no `:color-symbols' or it's a list of conses
3276 whose car and cdr are strings. */
3277 && (fmt[XPM_COLOR_SYMBOLS].count == 0
3278 || xpm_valid_color_symbols_p (fmt[XPM_COLOR_SYMBOLS].value)));
3279 }
3280
3281 #endif /* HAVE_XPM || HAVE_NS */
3282
3283 #if defined HAVE_XPM && defined HAVE_X_WINDOWS && !defined USE_GTK
3284 int
3285 x_create_bitmap_from_xpm_data (struct frame *f, const char **bits)
3286 {
3287 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
3288 int id, rc;
3289 XpmAttributes attrs;
3290 Pixmap bitmap, mask;
3291
3292 memset (&attrs, 0, sizeof attrs);
3293
3294 attrs.visual = FRAME_X_VISUAL (f);
3295 attrs.colormap = FRAME_X_COLORMAP (f);
3296 attrs.valuemask |= XpmVisual;
3297 attrs.valuemask |= XpmColormap;
3298
3299 rc = XpmCreatePixmapFromData (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3300 (char **) bits, &bitmap, &mask, &attrs);
3301 if (rc != XpmSuccess)
3302 {
3303 XpmFreeAttributes (&attrs);
3304 return -1;
3305 }
3306
3307 id = x_allocate_bitmap_record (f);
3308 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
3309 dpyinfo->bitmaps[id - 1].have_mask = 1;
3310 dpyinfo->bitmaps[id - 1].mask = mask;
3311 dpyinfo->bitmaps[id - 1].file = NULL;
3312 dpyinfo->bitmaps[id - 1].height = attrs.height;
3313 dpyinfo->bitmaps[id - 1].width = attrs.width;
3314 dpyinfo->bitmaps[id - 1].depth = attrs.depth;
3315 dpyinfo->bitmaps[id - 1].refcount = 1;
3316
3317 XpmFreeAttributes (&attrs);
3318 return id;
3319 }
3320 #endif /* defined (HAVE_XPM) && defined (HAVE_X_WINDOWS) */
3321
3322 /* Load image IMG which will be displayed on frame F. Value is
3323 non-zero if successful. */
3324
3325 #ifdef HAVE_XPM
3326
3327 static int
3328 xpm_load (struct frame *f, struct image *img)
3329 {
3330 int rc;
3331 XpmAttributes attrs;
3332 Lisp_Object specified_file, color_symbols;
3333 #ifdef HAVE_NTGUI
3334 HDC hdc;
3335 xpm_XImage * xpm_image = NULL, * xpm_mask = NULL;
3336 #endif /* HAVE_NTGUI */
3337
3338 /* Configure the XPM lib. Use the visual of frame F. Allocate
3339 close colors. Return colors allocated. */
3340 memset (&attrs, 0, sizeof attrs);
3341
3342 #ifndef HAVE_NTGUI
3343 attrs.visual = FRAME_X_VISUAL (f);
3344 attrs.colormap = FRAME_X_COLORMAP (f);
3345 attrs.valuemask |= XpmVisual;
3346 attrs.valuemask |= XpmColormap;
3347 #endif /* HAVE_NTGUI */
3348
3349 #ifdef ALLOC_XPM_COLORS
3350 /* Allocate colors with our own functions which handle
3351 failing color allocation more gracefully. */
3352 attrs.color_closure = f;
3353 attrs.alloc_color = xpm_alloc_color;
3354 attrs.free_colors = xpm_free_colors;
3355 attrs.valuemask |= XpmAllocColor | XpmFreeColors | XpmColorClosure;
3356 #else /* not ALLOC_XPM_COLORS */
3357 /* Let the XPM lib allocate colors. */
3358 attrs.valuemask |= XpmReturnAllocPixels;
3359 #ifdef XpmAllocCloseColors
3360 attrs.alloc_close_colors = 1;
3361 attrs.valuemask |= XpmAllocCloseColors;
3362 #else /* not XpmAllocCloseColors */
3363 attrs.closeness = 600;
3364 attrs.valuemask |= XpmCloseness;
3365 #endif /* not XpmAllocCloseColors */
3366 #endif /* ALLOC_XPM_COLORS */
3367
3368 /* If image specification contains symbolic color definitions, add
3369 these to `attrs'. */
3370 color_symbols = image_spec_value (img->spec, QCcolor_symbols, NULL);
3371 if (CONSP (color_symbols))
3372 {
3373 Lisp_Object tail;
3374 XpmColorSymbol *xpm_syms;
3375 int i, size;
3376
3377 attrs.valuemask |= XpmColorSymbols;
3378
3379 /* Count number of symbols. */
3380 attrs.numsymbols = 0;
3381 for (tail = color_symbols; CONSP (tail); tail = XCDR (tail))
3382 ++attrs.numsymbols;
3383
3384 /* Allocate an XpmColorSymbol array. */
3385 size = attrs.numsymbols * sizeof *xpm_syms;
3386 xpm_syms = (XpmColorSymbol *) alloca (size);
3387 memset (xpm_syms, 0, size);
3388 attrs.colorsymbols = xpm_syms;
3389
3390 /* Fill the color symbol array. */
3391 for (tail = color_symbols, i = 0;
3392 CONSP (tail);
3393 ++i, tail = XCDR (tail))
3394 {
3395 Lisp_Object name;
3396 Lisp_Object color;
3397 char *empty_string = (char *) "";
3398
3399 if (!CONSP (XCAR (tail)))
3400 {
3401 xpm_syms[i].name = empty_string;
3402 xpm_syms[i].value = empty_string;
3403 continue;
3404 }
3405 name = XCAR (XCAR (tail));
3406 color = XCDR (XCAR (tail));
3407 if (STRINGP (name))
3408 {
3409 xpm_syms[i].name = (char *) alloca (SCHARS (name) + 1);
3410 strcpy (xpm_syms[i].name, SSDATA (name));
3411 }
3412 else
3413 xpm_syms[i].name = empty_string;
3414 if (STRINGP (color))
3415 {
3416 xpm_syms[i].value = (char *) alloca (SCHARS (color) + 1);
3417 strcpy (xpm_syms[i].value, SSDATA (color));
3418 }
3419 else
3420 xpm_syms[i].value = empty_string;
3421 }
3422 }
3423
3424 /* Create a pixmap for the image, either from a file, or from a
3425 string buffer containing data in the same format as an XPM file. */
3426 #ifdef ALLOC_XPM_COLORS
3427 xpm_init_color_cache (f, &attrs);
3428 #endif
3429
3430 specified_file = image_spec_value (img->spec, QCfile, NULL);
3431
3432 #ifdef HAVE_NTGUI
3433 {
3434 HDC frame_dc = get_frame_dc (f);
3435 hdc = CreateCompatibleDC (frame_dc);
3436 release_frame_dc (f, frame_dc);
3437 }
3438 #endif /* HAVE_NTGUI */
3439
3440 if (STRINGP (specified_file))
3441 {
3442 Lisp_Object file = x_find_image_file (specified_file);
3443 if (!STRINGP (file))
3444 {
3445 image_error ("Cannot find image file `%s'", specified_file, Qnil);
3446 #ifdef ALLOC_XPM_COLORS
3447 xpm_free_color_cache ();
3448 #endif
3449 return 0;
3450 }
3451
3452 #ifdef HAVE_NTGUI
3453 /* XpmReadFileToPixmap is not available in the Windows port of
3454 libxpm. But XpmReadFileToImage almost does what we want. */
3455 rc = fn_XpmReadFileToImage (&hdc, SDATA (file),
3456 &xpm_image, &xpm_mask,
3457 &attrs);
3458 #else
3459 rc = XpmReadFileToPixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3460 SSDATA (file), &img->pixmap, &img->mask,
3461 &attrs);
3462 #endif /* HAVE_NTGUI */
3463 }
3464 else
3465 {
3466 Lisp_Object buffer = image_spec_value (img->spec, QCdata, NULL);
3467 if (!STRINGP (buffer))
3468 {
3469 image_error ("Invalid image data `%s'", buffer, Qnil);
3470 #ifdef ALLOC_XPM_COLORS
3471 xpm_free_color_cache ();
3472 #endif
3473 return 0;
3474 }
3475 #ifdef HAVE_NTGUI
3476 /* XpmCreatePixmapFromBuffer is not available in the Windows port
3477 of libxpm. But XpmCreateImageFromBuffer almost does what we want. */
3478 rc = fn_XpmCreateImageFromBuffer (&hdc, SDATA (buffer),
3479 &xpm_image, &xpm_mask,
3480 &attrs);
3481 #else
3482 rc = XpmCreatePixmapFromBuffer (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3483 SSDATA (buffer),
3484 &img->pixmap, &img->mask,
3485 &attrs);
3486 #endif /* HAVE_NTGUI */
3487 }
3488
3489 if (rc == XpmSuccess)
3490 {
3491 #if defined (COLOR_TABLE_SUPPORT) && defined (ALLOC_XPM_COLORS)
3492 img->colors = colors_in_color_table (&img->ncolors);
3493 #else /* not ALLOC_XPM_COLORS */
3494 int i;
3495
3496 #ifdef HAVE_NTGUI
3497 /* W32 XPM uses XImage to wrap what W32 Emacs calls a Pixmap,
3498 plus some duplicate attributes. */
3499 if (xpm_image && xpm_image->bitmap)
3500 {
3501 img->pixmap = xpm_image->bitmap;
3502 /* XImageFree in libXpm frees XImage struct without destroying
3503 the bitmap, which is what we want. */
3504 fn_XImageFree (xpm_image);
3505 }
3506 if (xpm_mask && xpm_mask->bitmap)
3507 {
3508 /* The mask appears to be inverted compared with what we expect.
3509 TODO: invert our expectations. See other places where we
3510 have to invert bits because our idea of masks is backwards. */
3511 HGDIOBJ old_obj;
3512 old_obj = SelectObject (hdc, xpm_mask->bitmap);
3513
3514 PatBlt (hdc, 0, 0, xpm_mask->width, xpm_mask->height, DSTINVERT);
3515 SelectObject (hdc, old_obj);
3516
3517 img->mask = xpm_mask->bitmap;
3518 fn_XImageFree (xpm_mask);
3519 DeleteDC (hdc);
3520 }
3521
3522 DeleteDC (hdc);
3523 #endif /* HAVE_NTGUI */
3524
3525 /* Remember allocated colors. */
3526 img->ncolors = attrs.nalloc_pixels;
3527 img->colors = (unsigned long *) xmalloc (img->ncolors
3528 * sizeof *img->colors);
3529 for (i = 0; i < attrs.nalloc_pixels; ++i)
3530 {
3531 img->colors[i] = attrs.alloc_pixels[i];
3532 #ifdef DEBUG_X_COLORS
3533 register_color (img->colors[i]);
3534 #endif
3535 }
3536 #endif /* not ALLOC_XPM_COLORS */
3537
3538 img->width = attrs.width;
3539 img->height = attrs.height;
3540 xassert (img->width > 0 && img->height > 0);
3541
3542 /* The call to XpmFreeAttributes below frees attrs.alloc_pixels. */
3543 #ifdef HAVE_NTGUI
3544 fn_XpmFreeAttributes (&attrs);
3545 #else
3546 XpmFreeAttributes (&attrs);
3547 #endif /* HAVE_NTGUI */
3548 }
3549 else
3550 {
3551 #ifdef HAVE_NTGUI
3552 DeleteDC (hdc);
3553 #endif /* HAVE_NTGUI */
3554
3555 switch (rc)
3556 {
3557 case XpmOpenFailed:
3558 image_error ("Error opening XPM file (%s)", img->spec, Qnil);
3559 break;
3560
3561 case XpmFileInvalid:
3562 image_error ("Invalid XPM file (%s)", img->spec, Qnil);
3563 break;
3564
3565 case XpmNoMemory:
3566 image_error ("Out of memory (%s)", img->spec, Qnil);
3567 break;
3568
3569 case XpmColorFailed:
3570 image_error ("Color allocation error (%s)", img->spec, Qnil);
3571 break;
3572
3573 default:
3574 image_error ("Unknown error (%s)", img->spec, Qnil);
3575 break;
3576 }
3577 }
3578
3579 #ifdef ALLOC_XPM_COLORS
3580 xpm_free_color_cache ();
3581 #endif
3582 return rc == XpmSuccess;
3583 }
3584
3585 #endif /* HAVE_XPM */
3586
3587 #if defined (HAVE_NS) && !defined (HAVE_XPM)
3588
3589 /* XPM support functions for NS where libxpm is not available.
3590 Only XPM version 3 (without any extensions) is supported. */
3591
3592 static int xpm_scan (const unsigned char **, const unsigned char *,
3593 const unsigned char **, int *);
3594 static Lisp_Object xpm_make_color_table_v
3595 (void (**) (Lisp_Object, const unsigned char *, int, Lisp_Object),
3596 Lisp_Object (**) (Lisp_Object, const unsigned char *, int));
3597 static void xpm_put_color_table_v (Lisp_Object, const unsigned char *,
3598 int, Lisp_Object);
3599 static Lisp_Object xpm_get_color_table_v (Lisp_Object,
3600 const unsigned char *, int);
3601 static Lisp_Object xpm_make_color_table_h
3602 (void (**) (Lisp_Object, const unsigned char *, int, Lisp_Object),
3603 Lisp_Object (**) (Lisp_Object, const unsigned char *, int));
3604 static void xpm_put_color_table_h (Lisp_Object, const unsigned char *,
3605 int, Lisp_Object);
3606 static Lisp_Object xpm_get_color_table_h (Lisp_Object,
3607 const unsigned char *, int);
3608 static int xpm_str_to_color_key (const char *);
3609 static int xpm_load_image (struct frame *, struct image *,
3610 const unsigned char *, const unsigned char *);
3611
3612 /* Tokens returned from xpm_scan. */
3613
3614 enum xpm_token
3615 {
3616 XPM_TK_IDENT = 256,
3617 XPM_TK_STRING,
3618 XPM_TK_EOF
3619 };
3620
3621 /* Scan an XPM data and return a character (< 256) or a token defined
3622 by enum xpm_token above. *S and END are the start (inclusive) and
3623 the end (exclusive) addresses of the data, respectively. Advance
3624 *S while scanning. If token is either XPM_TK_IDENT or
3625 XPM_TK_STRING, *BEG and *LEN are set to the start address and the
3626 length of the corresponding token, respectively. */
3627
3628 static int
3629 xpm_scan (const unsigned char **s,
3630 const unsigned char *end,
3631 const unsigned char **beg,
3632 int *len)
3633 {
3634 int c;
3635
3636 while (*s < end)
3637 {
3638 /* Skip white-space. */
3639 while (*s < end && (c = *(*s)++, isspace (c)))
3640 ;
3641
3642 /* gnus-pointer.xpm uses '-' in its identifier.
3643 sb-dir-plus.xpm uses '+' in its identifier. */
3644 if (isalpha (c) || c == '_' || c == '-' || c == '+')
3645 {
3646 *beg = *s - 1;
3647 while (*s < end
3648 && (c = **s, isalnum (c) || c == '_' || c == '-' || c == '+'))
3649 ++*s;
3650 *len = *s - *beg;
3651 return XPM_TK_IDENT;
3652 }
3653 else if (c == '"')
3654 {
3655 *beg = *s;
3656 while (*s < end && **s != '"')
3657 ++*s;
3658 *len = *s - *beg;
3659 if (*s < end)
3660 ++*s;
3661 return XPM_TK_STRING;
3662 }
3663 else if (c == '/')
3664 {
3665 if (*s < end && **s == '*')
3666 {
3667 /* C-style comment. */
3668 ++*s;
3669 do
3670 {
3671 while (*s < end && *(*s)++ != '*')
3672 ;
3673 }
3674 while (*s < end && **s != '/');
3675 if (*s < end)
3676 ++*s;
3677 }
3678 else
3679 return c;
3680 }
3681 else
3682 return c;
3683 }
3684
3685 return XPM_TK_EOF;
3686 }
3687
3688 /* Functions for color table lookup in XPM data. A key is a string
3689 specifying the color of each pixel in XPM data. A value is either
3690 an integer that specifies a pixel color, Qt that specifies
3691 transparency, or Qnil for the unspecified color. If the length of
3692 the key string is one, a vector is used as a table. Otherwise, a
3693 hash table is used. */
3694
3695 static Lisp_Object
3696 xpm_make_color_table_v (void (**put_func) (Lisp_Object,
3697 const unsigned char *,
3698 int,
3699 Lisp_Object),
3700 Lisp_Object (**get_func) (Lisp_Object,
3701 const unsigned char *,
3702 int))
3703 {
3704 *put_func = xpm_put_color_table_v;
3705 *get_func = xpm_get_color_table_v;
3706 return Fmake_vector (make_number (256), Qnil);
3707 }
3708
3709 static void
3710 xpm_put_color_table_v (Lisp_Object color_table,
3711 const unsigned char *chars_start,
3712 int chars_len,
3713 Lisp_Object color)
3714 {
3715 XVECTOR (color_table)->contents[*chars_start] = color;
3716 }
3717
3718 static Lisp_Object
3719 xpm_get_color_table_v (Lisp_Object color_table,
3720 const unsigned char *chars_start,
3721 int chars_len)
3722 {
3723 return XVECTOR (color_table)->contents[*chars_start];
3724 }
3725
3726 static Lisp_Object
3727 xpm_make_color_table_h (void (**put_func) (Lisp_Object,
3728 const unsigned char *,
3729 int,
3730 Lisp_Object),
3731 Lisp_Object (**get_func) (Lisp_Object,
3732 const unsigned char *,
3733 int))
3734 {
3735 *put_func = xpm_put_color_table_h;
3736 *get_func = xpm_get_color_table_h;
3737 return make_hash_table (Qequal, make_number (DEFAULT_HASH_SIZE),
3738 make_float (DEFAULT_REHASH_SIZE),
3739 make_float (DEFAULT_REHASH_THRESHOLD),
3740 Qnil, Qnil, Qnil);
3741 }
3742
3743 static void
3744 xpm_put_color_table_h (Lisp_Object color_table,
3745 const unsigned char *chars_start,
3746 int chars_len,
3747 Lisp_Object color)
3748 {
3749 struct Lisp_Hash_Table *table = XHASH_TABLE (color_table);
3750 EMACS_UINT hash_code;
3751 Lisp_Object chars = make_unibyte_string (chars_start, chars_len);
3752
3753 hash_lookup (table, chars, &hash_code);
3754 hash_put (table, chars, color, hash_code);
3755 }
3756
3757 static Lisp_Object
3758 xpm_get_color_table_h (Lisp_Object color_table,
3759 const unsigned char *chars_start,
3760 int chars_len)
3761 {
3762 struct Lisp_Hash_Table *table = XHASH_TABLE (color_table);
3763 int i = hash_lookup (table, make_unibyte_string (chars_start, chars_len),
3764 NULL);
3765
3766 return i >= 0 ? HASH_VALUE (table, i) : Qnil;
3767 }
3768
3769 enum xpm_color_key {
3770 XPM_COLOR_KEY_S,
3771 XPM_COLOR_KEY_M,
3772 XPM_COLOR_KEY_G4,
3773 XPM_COLOR_KEY_G,
3774 XPM_COLOR_KEY_C
3775 };
3776
3777 static const char xpm_color_key_strings[][4] = {"s", "m", "g4", "g", "c"};
3778
3779 static int
3780 xpm_str_to_color_key (const char *s)
3781 {
3782 int i;
3783
3784 for (i = 0;
3785 i < sizeof xpm_color_key_strings / sizeof xpm_color_key_strings[0];
3786 i++)
3787 if (strcmp (xpm_color_key_strings[i], s) == 0)
3788 return i;
3789 return -1;
3790 }
3791
3792 static int
3793 xpm_load_image (struct frame *f,
3794 struct image *img,
3795 const unsigned char *contents,
3796 const unsigned char *end)
3797 {
3798 const unsigned char *s = contents, *beg, *str;
3799 unsigned char buffer[BUFSIZ];
3800 int width, height, x, y;
3801 int num_colors, chars_per_pixel;
3802 int len, LA1;
3803 void (*put_color_table) (Lisp_Object, const unsigned char *, int, Lisp_Object);
3804 Lisp_Object (*get_color_table) (Lisp_Object, const unsigned char *, int);
3805 Lisp_Object frame, color_symbols, color_table;
3806 int best_key, have_mask = 0;
3807 XImagePtr ximg = NULL, mask_img = NULL;
3808
3809 #define match() \
3810 LA1 = xpm_scan (&s, end, &beg, &len)
3811
3812 #define expect(TOKEN) \
3813 if (LA1 != (TOKEN)) \
3814 goto failure; \
3815 else \
3816 match ()
3817
3818 #define expect_ident(IDENT) \
3819 if (LA1 == XPM_TK_IDENT \
3820 && strlen ((IDENT)) == len && memcmp ((IDENT), beg, len) == 0) \
3821 match (); \
3822 else \
3823 goto failure
3824
3825 if (!(end - s >= 9 && memcmp (s, "/* XPM */", 9) == 0))
3826 goto failure;
3827 s += 9;
3828 match ();
3829 expect_ident ("static");
3830 expect_ident ("char");
3831 expect ('*');
3832 expect (XPM_TK_IDENT);
3833 expect ('[');
3834 expect (']');
3835 expect ('=');
3836 expect ('{');
3837 expect (XPM_TK_STRING);
3838 if (len >= BUFSIZ)
3839 goto failure;
3840 memcpy (buffer, beg, len);
3841 buffer[len] = '\0';
3842 if (sscanf (buffer, "%d %d %d %d", &width, &height,
3843 &num_colors, &chars_per_pixel) != 4
3844 || width <= 0 || height <= 0
3845 || num_colors <= 0 || chars_per_pixel <= 0)
3846 goto failure;
3847
3848 if (!check_image_size (f, width, height))
3849 {
3850 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
3851 goto failure;
3852 }
3853
3854 expect (',');
3855
3856 XSETFRAME (frame, f);
3857 if (!NILP (Fxw_display_color_p (frame)))
3858 best_key = XPM_COLOR_KEY_C;
3859 else if (!NILP (Fx_display_grayscale_p (frame)))
3860 best_key = (XFASTINT (Fx_display_planes (frame)) > 2
3861 ? XPM_COLOR_KEY_G : XPM_COLOR_KEY_G4);
3862 else
3863 best_key = XPM_COLOR_KEY_M;
3864
3865 color_symbols = image_spec_value (img->spec, QCcolor_symbols, NULL);
3866 if (chars_per_pixel == 1)
3867 color_table = xpm_make_color_table_v (&put_color_table,
3868 &get_color_table);
3869 else
3870 color_table = xpm_make_color_table_h (&put_color_table,
3871 &get_color_table);
3872
3873 while (num_colors-- > 0)
3874 {
3875 char *color, *max_color;
3876 int key, next_key, max_key = 0;
3877 Lisp_Object symbol_color = Qnil, color_val;
3878 XColor cdef;
3879
3880 expect (XPM_TK_STRING);
3881 if (len <= chars_per_pixel || len >= BUFSIZ + chars_per_pixel)
3882 goto failure;
3883 memcpy (buffer, beg + chars_per_pixel, len - chars_per_pixel);
3884 buffer[len - chars_per_pixel] = '\0';
3885
3886 str = strtok (buffer, " \t");
3887 if (str == NULL)
3888 goto failure;
3889 key = xpm_str_to_color_key (str);
3890 if (key < 0)
3891 goto failure;
3892 do
3893 {
3894 color = strtok (NULL, " \t");
3895 if (color == NULL)
3896 goto failure;
3897
3898 while ((str = strtok (NULL, " \t")) != NULL)
3899 {
3900 next_key = xpm_str_to_color_key (str);
3901 if (next_key >= 0)
3902 break;
3903 color[strlen (color)] = ' ';
3904 }
3905
3906 if (key == XPM_COLOR_KEY_S)
3907 {
3908 if (NILP (symbol_color))
3909 symbol_color = build_string (color);
3910 }
3911 else if (max_key < key && key <= best_key)
3912 {
3913 max_key = key;
3914 max_color = color;
3915 }
3916 key = next_key;
3917 }
3918 while (str);
3919
3920 color_val = Qnil;
3921 if (!NILP (color_symbols) && !NILP (symbol_color))
3922 {
3923 Lisp_Object specified_color = Fassoc (symbol_color, color_symbols);
3924
3925 if (CONSP (specified_color) && STRINGP (XCDR (specified_color)))
3926 {
3927 if (xstrcasecmp (SSDATA (XCDR (specified_color)), "None") == 0)
3928 color_val = Qt;
3929 else if (x_defined_color (f, SDATA (XCDR (specified_color)),
3930 &cdef, 0))
3931 color_val = make_number (cdef.pixel);
3932 }
3933 }
3934 if (NILP (color_val) && max_key > 0)
3935 {
3936 if (xstrcasecmp (max_color, "None") == 0)
3937 color_val = Qt;
3938 else if (x_defined_color (f, max_color, &cdef, 0))
3939 color_val = make_number (cdef.pixel);
3940 }
3941 if (!NILP (color_val))
3942 (*put_color_table) (color_table, beg, chars_per_pixel, color_val);
3943
3944 expect (',');
3945 }
3946
3947 if (!x_create_x_image_and_pixmap (f, width, height, 0,
3948 &ximg, &img->pixmap)
3949 #ifndef HAVE_NS
3950 || !x_create_x_image_and_pixmap (f, width, height, 1,
3951 &mask_img, &img->mask)
3952 #endif
3953 )
3954 {
3955 image_error ("Out of memory (%s)", img->spec, Qnil);
3956 goto error;
3957 }
3958
3959 for (y = 0; y < height; y++)
3960 {
3961 expect (XPM_TK_STRING);
3962 str = beg;
3963 if (len < width * chars_per_pixel)
3964 goto failure;
3965 for (x = 0; x < width; x++, str += chars_per_pixel)
3966 {
3967 Lisp_Object color_val =
3968 (*get_color_table) (color_table, str, chars_per_pixel);
3969
3970 XPutPixel (ximg, x, y,
3971 (INTEGERP (color_val) ? XINT (color_val)
3972 : FRAME_FOREGROUND_PIXEL (f)));
3973 #ifndef HAVE_NS
3974 XPutPixel (mask_img, x, y,
3975 (!EQ (color_val, Qt) ? PIX_MASK_DRAW
3976 : (have_mask = 1, PIX_MASK_RETAIN)));
3977 #else
3978 if (EQ (color_val, Qt))
3979 ns_set_alpha (ximg, x, y, 0);
3980 #endif
3981 }
3982 if (y + 1 < height)
3983 expect (',');
3984 }
3985
3986 img->width = width;
3987 img->height = height;
3988
3989 /* Maybe fill in the background field while we have ximg handy. */
3990 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
3991 IMAGE_BACKGROUND (img, f, ximg);
3992
3993 x_put_x_image (f, ximg, img->pixmap, width, height);
3994 x_destroy_x_image (ximg);
3995 #ifndef HAVE_NS
3996 if (have_mask)
3997 {
3998 /* Fill in the background_transparent field while we have the
3999 mask handy. */
4000 image_background_transparent (img, f, mask_img);
4001
4002 x_put_x_image (f, mask_img, img->mask, width, height);
4003 x_destroy_x_image (mask_img);
4004 }
4005 else
4006 {
4007 x_destroy_x_image (mask_img);
4008 Free_Pixmap (FRAME_X_DISPLAY (f), img->mask);
4009 img->mask = NO_PIXMAP;
4010 }
4011 #endif
4012 return 1;
4013
4014 failure:
4015 image_error ("Invalid XPM file (%s)", img->spec, Qnil);
4016 error:
4017 x_destroy_x_image (ximg);
4018 x_destroy_x_image (mask_img);
4019 x_clear_image (f, img);
4020 return 0;
4021
4022 #undef match
4023 #undef expect
4024 #undef expect_ident
4025 }
4026
4027 static int
4028 xpm_load (struct frame *f,
4029 struct image *img)
4030 {
4031 int success_p = 0;
4032 Lisp_Object file_name;
4033
4034 /* If IMG->spec specifies a file name, create a non-file spec from it. */
4035 file_name = image_spec_value (img->spec, QCfile, NULL);
4036 if (STRINGP (file_name))
4037 {
4038 Lisp_Object file;
4039 unsigned char *contents;
4040 ptrdiff_t size;
4041
4042 file = x_find_image_file (file_name);
4043 if (!STRINGP (file))
4044 {
4045 image_error ("Cannot find image file `%s'", file_name, Qnil);
4046 return 0;
4047 }
4048
4049 contents = slurp_file (SDATA (file), &size);
4050 if (contents == NULL)
4051 {
4052 image_error ("Error loading XPM image `%s'", img->spec, Qnil);
4053 return 0;
4054 }
4055
4056 success_p = xpm_load_image (f, img, contents, contents + size);
4057 xfree (contents);
4058 }
4059 else
4060 {
4061 Lisp_Object data;
4062
4063 data = image_spec_value (img->spec, QCdata, NULL);
4064 if (!STRINGP (data))
4065 {
4066 image_error ("Invalid image data `%s'", data, Qnil);
4067 return 0;
4068 }
4069 success_p = xpm_load_image (f, img, SDATA (data),
4070 SDATA (data) + SBYTES (data));
4071 }
4072
4073 return success_p;
4074 }
4075
4076 #endif /* HAVE_NS && !HAVE_XPM */
4077
4078
4079 \f
4080 /***********************************************************************
4081 Color table
4082 ***********************************************************************/
4083
4084 #ifdef COLOR_TABLE_SUPPORT
4085
4086 /* An entry in the color table mapping an RGB color to a pixel color. */
4087
4088 struct ct_color
4089 {
4090 int r, g, b;
4091 unsigned long pixel;
4092
4093 /* Next in color table collision list. */
4094 struct ct_color *next;
4095 };
4096
4097 /* The bucket vector size to use. Must be prime. */
4098
4099 #define CT_SIZE 101
4100
4101 /* Value is a hash of the RGB color given by R, G, and B. */
4102
4103 #define CT_HASH_RGB(R, G, B) (((R) << 16) ^ ((G) << 8) ^ (B))
4104
4105 /* The color hash table. */
4106
4107 static struct ct_color **ct_table;
4108
4109 /* Number of entries in the color table. */
4110
4111 static int ct_colors_allocated;
4112
4113 /* Initialize the color table. */
4114
4115 static void
4116 init_color_table (void)
4117 {
4118 int size = CT_SIZE * sizeof (*ct_table);
4119 ct_table = (struct ct_color **) xmalloc (size);
4120 memset (ct_table, 0, size);
4121 ct_colors_allocated = 0;
4122 }
4123
4124
4125 /* Free memory associated with the color table. */
4126
4127 static void
4128 free_color_table (void)
4129 {
4130 int i;
4131 struct ct_color *p, *next;
4132
4133 for (i = 0; i < CT_SIZE; ++i)
4134 for (p = ct_table[i]; p; p = next)
4135 {
4136 next = p->next;
4137 xfree (p);
4138 }
4139
4140 xfree (ct_table);
4141 ct_table = NULL;
4142 }
4143
4144
4145 /* Value is a pixel color for RGB color R, G, B on frame F. If an
4146 entry for that color already is in the color table, return the
4147 pixel color of that entry. Otherwise, allocate a new color for R,
4148 G, B, and make an entry in the color table. */
4149
4150 static unsigned long
4151 lookup_rgb_color (struct frame *f, int r, int g, int b)
4152 {
4153 unsigned hash = CT_HASH_RGB (r, g, b);
4154 int i = hash % CT_SIZE;
4155 struct ct_color *p;
4156 Display_Info *dpyinfo;
4157
4158 /* Handle TrueColor visuals specially, which improves performance by
4159 two orders of magnitude. Freeing colors on TrueColor visuals is
4160 a nop, and pixel colors specify RGB values directly. See also
4161 the Xlib spec, chapter 3.1. */
4162 dpyinfo = FRAME_X_DISPLAY_INFO (f);
4163 if (dpyinfo->red_bits > 0)
4164 {
4165 unsigned long pr, pg, pb;
4166
4167 /* Apply gamma-correction like normal color allocation does. */
4168 if (f->gamma)
4169 {
4170 XColor color;
4171 color.red = r, color.green = g, color.blue = b;
4172 gamma_correct (f, &color);
4173 r = color.red, g = color.green, b = color.blue;
4174 }
4175
4176 /* Scale down RGB values to the visual's bits per RGB, and shift
4177 them to the right position in the pixel color. Note that the
4178 original RGB values are 16-bit values, as usual in X. */
4179 pr = (r >> (16 - dpyinfo->red_bits)) << dpyinfo->red_offset;
4180 pg = (g >> (16 - dpyinfo->green_bits)) << dpyinfo->green_offset;
4181 pb = (b >> (16 - dpyinfo->blue_bits)) << dpyinfo->blue_offset;
4182
4183 /* Assemble the pixel color. */
4184 return pr | pg | pb;
4185 }
4186
4187 for (p = ct_table[i]; p; p = p->next)
4188 if (p->r == r && p->g == g && p->b == b)
4189 break;
4190
4191 if (p == NULL)
4192 {
4193
4194 #ifdef HAVE_X_WINDOWS
4195 XColor color;
4196 Colormap cmap;
4197 int rc;
4198
4199 color.red = r;
4200 color.green = g;
4201 color.blue = b;
4202
4203 cmap = FRAME_X_COLORMAP (f);
4204 rc = x_alloc_nearest_color (f, cmap, &color);
4205 if (rc)
4206 {
4207 ++ct_colors_allocated;
4208 p = (struct ct_color *) xmalloc (sizeof *p);
4209 p->r = r;
4210 p->g = g;
4211 p->b = b;
4212 p->pixel = color.pixel;
4213 p->next = ct_table[i];
4214 ct_table[i] = p;
4215 }
4216 else
4217 return FRAME_FOREGROUND_PIXEL (f);
4218
4219 #else
4220 COLORREF color;
4221 #ifdef HAVE_NTGUI
4222 color = PALETTERGB (r, g, b);
4223 #else
4224 color = RGB_TO_ULONG (r, g, b);
4225 #endif /* HAVE_NTGUI */
4226 ++ct_colors_allocated;
4227 p = (struct ct_color *) xmalloc (sizeof *p);
4228 p->r = r;
4229 p->g = g;
4230 p->b = b;
4231 p->pixel = color;
4232 p->next = ct_table[i];
4233 ct_table[i] = p;
4234 #endif /* HAVE_X_WINDOWS */
4235
4236 }
4237
4238 return p->pixel;
4239 }
4240
4241
4242 /* Look up pixel color PIXEL which is used on frame F in the color
4243 table. If not already present, allocate it. Value is PIXEL. */
4244
4245 static unsigned long
4246 lookup_pixel_color (struct frame *f, unsigned long pixel)
4247 {
4248 int i = pixel % CT_SIZE;
4249 struct ct_color *p;
4250
4251 for (p = ct_table[i]; p; p = p->next)
4252 if (p->pixel == pixel)
4253 break;
4254
4255 if (p == NULL)
4256 {
4257 XColor color;
4258 Colormap cmap;
4259 int rc;
4260
4261 #ifdef HAVE_X_WINDOWS
4262 cmap = FRAME_X_COLORMAP (f);
4263 color.pixel = pixel;
4264 x_query_color (f, &color);
4265 rc = x_alloc_nearest_color (f, cmap, &color);
4266 #else
4267 BLOCK_INPUT;
4268 cmap = DefaultColormapOfScreen (FRAME_X_SCREEN (f));
4269 color.pixel = pixel;
4270 XQueryColor (NULL, cmap, &color);
4271 rc = x_alloc_nearest_color (f, cmap, &color);
4272 UNBLOCK_INPUT;
4273 #endif /* HAVE_X_WINDOWS */
4274
4275 if (rc)
4276 {
4277 ++ct_colors_allocated;
4278
4279 p = (struct ct_color *) xmalloc (sizeof *p);
4280 p->r = color.red;
4281 p->g = color.green;
4282 p->b = color.blue;
4283 p->pixel = pixel;
4284 p->next = ct_table[i];
4285 ct_table[i] = p;
4286 }
4287 else
4288 return FRAME_FOREGROUND_PIXEL (f);
4289 }
4290 return p->pixel;
4291 }
4292
4293
4294 /* Value is a vector of all pixel colors contained in the color table,
4295 allocated via xmalloc. Set *N to the number of colors. */
4296
4297 static unsigned long *
4298 colors_in_color_table (int *n)
4299 {
4300 int i, j;
4301 struct ct_color *p;
4302 unsigned long *colors;
4303
4304 if (ct_colors_allocated == 0)
4305 {
4306 *n = 0;
4307 colors = NULL;
4308 }
4309 else
4310 {
4311 colors = (unsigned long *) xmalloc (ct_colors_allocated
4312 * sizeof *colors);
4313 *n = ct_colors_allocated;
4314
4315 for (i = j = 0; i < CT_SIZE; ++i)
4316 for (p = ct_table[i]; p; p = p->next)
4317 colors[j++] = p->pixel;
4318 }
4319
4320 return colors;
4321 }
4322
4323 #else /* COLOR_TABLE_SUPPORT */
4324
4325 static unsigned long
4326 lookup_rgb_color (struct frame *f, int r, int g, int b)
4327 {
4328 unsigned long pixel;
4329
4330 #ifdef HAVE_NTGUI
4331 pixel = PALETTERGB (r >> 8, g >> 8, b >> 8);
4332 #endif /* HAVE_NTGUI */
4333
4334 #ifdef HAVE_NS
4335 pixel = RGB_TO_ULONG (r >> 8, g >> 8, b >> 8);
4336 #endif /* HAVE_NS */
4337 return pixel;
4338 }
4339
4340 static void
4341 init_color_table (void)
4342 {
4343 }
4344 #endif /* COLOR_TABLE_SUPPORT */
4345
4346 \f
4347 /***********************************************************************
4348 Algorithms
4349 ***********************************************************************/
4350
4351 static XColor *x_to_xcolors (struct frame *, struct image *, int);
4352 static void x_from_xcolors (struct frame *, struct image *, XColor *);
4353 static void x_detect_edges (struct frame *, struct image *, int[9], int);
4354
4355 #ifdef HAVE_NTGUI
4356 static void XPutPixel (XImagePtr , int, int, COLORREF);
4357 #endif /* HAVE_NTGUI */
4358
4359 /* Edge detection matrices for different edge-detection
4360 strategies. */
4361
4362 static int emboss_matrix[9] = {
4363 /* x - 1 x x + 1 */
4364 2, -1, 0, /* y - 1 */
4365 -1, 0, 1, /* y */
4366 0, 1, -2 /* y + 1 */
4367 };
4368
4369 static int laplace_matrix[9] = {
4370 /* x - 1 x x + 1 */
4371 1, 0, 0, /* y - 1 */
4372 0, 0, 0, /* y */
4373 0, 0, -1 /* y + 1 */
4374 };
4375
4376 /* Value is the intensity of the color whose red/green/blue values
4377 are R, G, and B. */
4378
4379 #define COLOR_INTENSITY(R, G, B) ((2 * (R) + 3 * (G) + (B)) / 6)
4380
4381
4382 /* On frame F, return an array of XColor structures describing image
4383 IMG->pixmap. Each XColor structure has its pixel color set. RGB_P
4384 non-zero means also fill the red/green/blue members of the XColor
4385 structures. Value is a pointer to the array of XColors structures,
4386 allocated with xmalloc; it must be freed by the caller. */
4387
4388 static XColor *
4389 x_to_xcolors (struct frame *f, struct image *img, int rgb_p)
4390 {
4391 int x, y;
4392 XColor *colors, *p;
4393 XImagePtr_or_DC ximg;
4394 #ifdef HAVE_NTGUI
4395 HDC hdc;
4396 HGDIOBJ prev;
4397 #endif /* HAVE_NTGUI */
4398
4399 colors = (XColor *) xmalloc (img->width * img->height * sizeof *colors);
4400
4401 #ifndef HAVE_NTGUI
4402 /* Get the X image IMG->pixmap. */
4403 ximg = XGetImage (FRAME_X_DISPLAY (f), img->pixmap,
4404 0, 0, img->width, img->height, ~0, ZPixmap);
4405 #else
4406 /* Load the image into a memory device context. */
4407 hdc = get_frame_dc (f);
4408 ximg = CreateCompatibleDC (hdc);
4409 release_frame_dc (f, hdc);
4410 prev = SelectObject (ximg, img->pixmap);
4411 #endif /* HAVE_NTGUI */
4412
4413 /* Fill the `pixel' members of the XColor array. I wished there
4414 were an easy and portable way to circumvent XGetPixel. */
4415 p = colors;
4416 for (y = 0; y < img->height; ++y)
4417 {
4418 XColor *row = p;
4419
4420 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
4421 for (x = 0; x < img->width; ++x, ++p)
4422 p->pixel = GET_PIXEL (ximg, x, y);
4423 if (rgb_p)
4424 x_query_colors (f, row, img->width);
4425
4426 #else
4427
4428 for (x = 0; x < img->width; ++x, ++p)
4429 {
4430 /* W32_TODO: palette support needed here? */
4431 p->pixel = GET_PIXEL (ximg, x, y);
4432 if (rgb_p)
4433 {
4434 p->red = RED16_FROM_ULONG (p->pixel);
4435 p->green = GREEN16_FROM_ULONG (p->pixel);
4436 p->blue = BLUE16_FROM_ULONG (p->pixel);
4437 }
4438 }
4439 #endif /* HAVE_X_WINDOWS */
4440 }
4441
4442 Destroy_Image (ximg, prev);
4443
4444 return colors;
4445 }
4446
4447 #ifdef HAVE_NTGUI
4448
4449 /* Put a pixel of COLOR at position X, Y in XIMG. XIMG must have been
4450 created with CreateDIBSection, with the pointer to the bit values
4451 stored in ximg->data. */
4452
4453 static void
4454 XPutPixel (XImagePtr ximg, int x, int y, COLORREF color)
4455 {
4456 int width = ximg->info.bmiHeader.biWidth;
4457 unsigned char * pixel;
4458
4459 /* True color images. */
4460 if (ximg->info.bmiHeader.biBitCount == 24)
4461 {
4462 int rowbytes = width * 3;
4463 /* Ensure scanlines are aligned on 4 byte boundaries. */
4464 if (rowbytes % 4)
4465 rowbytes += 4 - (rowbytes % 4);
4466
4467 pixel = ximg->data + y * rowbytes + x * 3;
4468 /* Windows bitmaps are in BGR order. */
4469 *pixel = GetBValue (color);
4470 *(pixel + 1) = GetGValue (color);
4471 *(pixel + 2) = GetRValue (color);
4472 }
4473 /* Monochrome images. */
4474 else if (ximg->info.bmiHeader.biBitCount == 1)
4475 {
4476 int rowbytes = width / 8;
4477 /* Ensure scanlines are aligned on 4 byte boundaries. */
4478 if (rowbytes % 4)
4479 rowbytes += 4 - (rowbytes % 4);
4480 pixel = ximg->data + y * rowbytes + x / 8;
4481 /* Filter out palette info. */
4482 if (color & 0x00ffffff)
4483 *pixel = *pixel | (1 << x % 8);
4484 else
4485 *pixel = *pixel & ~(1 << x % 8);
4486 }
4487 else
4488 image_error ("XPutPixel: palette image not supported", Qnil, Qnil);
4489 }
4490
4491 #endif /* HAVE_NTGUI */
4492
4493 /* Create IMG->pixmap from an array COLORS of XColor structures, whose
4494 RGB members are set. F is the frame on which this all happens.
4495 COLORS will be freed; an existing IMG->pixmap will be freed, too. */
4496
4497 static void
4498 x_from_xcolors (struct frame *f, struct image *img, XColor *colors)
4499 {
4500 int x, y;
4501 XImagePtr oimg = NULL;
4502 Pixmap pixmap;
4503 XColor *p;
4504
4505 init_color_table ();
4506
4507 x_create_x_image_and_pixmap (f, img->width, img->height, 0,
4508 &oimg, &pixmap);
4509 p = colors;
4510 for (y = 0; y < img->height; ++y)
4511 for (x = 0; x < img->width; ++x, ++p)
4512 {
4513 unsigned long pixel;
4514 pixel = lookup_rgb_color (f, p->red, p->green, p->blue);
4515 XPutPixel (oimg, x, y, pixel);
4516 }
4517
4518 xfree (colors);
4519 x_clear_image_1 (f, img, 1, 0, 1);
4520
4521 x_put_x_image (f, oimg, pixmap, img->width, img->height);
4522 x_destroy_x_image (oimg);
4523 img->pixmap = pixmap;
4524 #ifdef COLOR_TABLE_SUPPORT
4525 img->colors = colors_in_color_table (&img->ncolors);
4526 free_color_table ();
4527 #endif /* COLOR_TABLE_SUPPORT */
4528 }
4529
4530
4531 /* On frame F, perform edge-detection on image IMG.
4532
4533 MATRIX is a nine-element array specifying the transformation
4534 matrix. See emboss_matrix for an example.
4535
4536 COLOR_ADJUST is a color adjustment added to each pixel of the
4537 outgoing image. */
4538
4539 static void
4540 x_detect_edges (struct frame *f, struct image *img, int *matrix, int color_adjust)
4541 {
4542 XColor *colors = x_to_xcolors (f, img, 1);
4543 XColor *new, *p;
4544 int x, y, i, sum;
4545
4546 for (i = sum = 0; i < 9; ++i)
4547 sum += eabs (matrix[i]);
4548
4549 #define COLOR(A, X, Y) ((A) + (Y) * img->width + (X))
4550
4551 new = (XColor *) xmalloc (img->width * img->height * sizeof *new);
4552
4553 for (y = 0; y < img->height; ++y)
4554 {
4555 p = COLOR (new, 0, y);
4556 p->red = p->green = p->blue = 0xffff/2;
4557 p = COLOR (new, img->width - 1, y);
4558 p->red = p->green = p->blue = 0xffff/2;
4559 }
4560
4561 for (x = 1; x < img->width - 1; ++x)
4562 {
4563 p = COLOR (new, x, 0);
4564 p->red = p->green = p->blue = 0xffff/2;
4565 p = COLOR (new, x, img->height - 1);
4566 p->red = p->green = p->blue = 0xffff/2;
4567 }
4568
4569 for (y = 1; y < img->height - 1; ++y)
4570 {
4571 p = COLOR (new, 1, y);
4572
4573 for (x = 1; x < img->width - 1; ++x, ++p)
4574 {
4575 int r, g, b, yy, xx;
4576
4577 r = g = b = i = 0;
4578 for (yy = y - 1; yy < y + 2; ++yy)
4579 for (xx = x - 1; xx < x + 2; ++xx, ++i)
4580 if (matrix[i])
4581 {
4582 XColor *t = COLOR (colors, xx, yy);
4583 r += matrix[i] * t->red;
4584 g += matrix[i] * t->green;
4585 b += matrix[i] * t->blue;
4586 }
4587
4588 r = (r / sum + color_adjust) & 0xffff;
4589 g = (g / sum + color_adjust) & 0xffff;
4590 b = (b / sum + color_adjust) & 0xffff;
4591 p->red = p->green = p->blue = COLOR_INTENSITY (r, g, b);
4592 }
4593 }
4594
4595 xfree (colors);
4596 x_from_xcolors (f, img, new);
4597
4598 #undef COLOR
4599 }
4600
4601
4602 /* Perform the pre-defined `emboss' edge-detection on image IMG
4603 on frame F. */
4604
4605 static void
4606 x_emboss (struct frame *f, struct image *img)
4607 {
4608 x_detect_edges (f, img, emboss_matrix, 0xffff / 2);
4609 }
4610
4611
4612 /* Transform image IMG which is used on frame F with a Laplace
4613 edge-detection algorithm. The result is an image that can be used
4614 to draw disabled buttons, for example. */
4615
4616 static void
4617 x_laplace (struct frame *f, struct image *img)
4618 {
4619 x_detect_edges (f, img, laplace_matrix, 45000);
4620 }
4621
4622
4623 /* Perform edge-detection on image IMG on frame F, with specified
4624 transformation matrix MATRIX and color-adjustment COLOR_ADJUST.
4625
4626 MATRIX must be either
4627
4628 - a list of at least 9 numbers in row-major form
4629 - a vector of at least 9 numbers
4630
4631 COLOR_ADJUST nil means use a default; otherwise it must be a
4632 number. */
4633
4634 static void
4635 x_edge_detection (struct frame *f, struct image *img, Lisp_Object matrix,
4636 Lisp_Object color_adjust)
4637 {
4638 int i = 0;
4639 int trans[9];
4640
4641 if (CONSP (matrix))
4642 {
4643 for (i = 0;
4644 i < 9 && CONSP (matrix) && NUMBERP (XCAR (matrix));
4645 ++i, matrix = XCDR (matrix))
4646 trans[i] = XFLOATINT (XCAR (matrix));
4647 }
4648 else if (VECTORP (matrix) && ASIZE (matrix) >= 9)
4649 {
4650 for (i = 0; i < 9 && NUMBERP (AREF (matrix, i)); ++i)
4651 trans[i] = XFLOATINT (AREF (matrix, i));
4652 }
4653
4654 if (NILP (color_adjust))
4655 color_adjust = make_number (0xffff / 2);
4656
4657 if (i == 9 && NUMBERP (color_adjust))
4658 x_detect_edges (f, img, trans, XFLOATINT (color_adjust));
4659 }
4660
4661
4662 /* Transform image IMG on frame F so that it looks disabled. */
4663
4664 static void
4665 x_disable_image (struct frame *f, struct image *img)
4666 {
4667 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
4668 #ifdef HAVE_NTGUI
4669 int n_planes = dpyinfo->n_planes * dpyinfo->n_cbits;
4670 #else
4671 int n_planes = dpyinfo->n_planes;
4672 #endif /* HAVE_NTGUI */
4673
4674 if (n_planes >= 2)
4675 {
4676 /* Color (or grayscale). Convert to gray, and equalize. Just
4677 drawing such images with a stipple can look very odd, so
4678 we're using this method instead. */
4679 XColor *colors = x_to_xcolors (f, img, 1);
4680 XColor *p, *end;
4681 const int h = 15000;
4682 const int l = 30000;
4683
4684 for (p = colors, end = colors + img->width * img->height;
4685 p < end;
4686 ++p)
4687 {
4688 int i = COLOR_INTENSITY (p->red, p->green, p->blue);
4689 int i2 = (0xffff - h - l) * i / 0xffff + l;
4690 p->red = p->green = p->blue = i2;
4691 }
4692
4693 x_from_xcolors (f, img, colors);
4694 }
4695
4696 /* Draw a cross over the disabled image, if we must or if we
4697 should. */
4698 if (n_planes < 2 || cross_disabled_images)
4699 {
4700 #ifndef HAVE_NTGUI
4701 Display *dpy = FRAME_X_DISPLAY (f);
4702 GC gc;
4703
4704 #ifndef HAVE_NS /* TODO: NS support, however this not needed for toolbars */
4705
4706 #define MaskForeground(f) WHITE_PIX_DEFAULT (f)
4707
4708 gc = XCreateGC (dpy, img->pixmap, 0, NULL);
4709 XSetForeground (dpy, gc, BLACK_PIX_DEFAULT (f));
4710 XDrawLine (dpy, img->pixmap, gc, 0, 0,
4711 img->width - 1, img->height - 1);
4712 XDrawLine (dpy, img->pixmap, gc, 0, img->height - 1,
4713 img->width - 1, 0);
4714 XFreeGC (dpy, gc);
4715
4716 if (img->mask)
4717 {
4718 gc = XCreateGC (dpy, img->mask, 0, NULL);
4719 XSetForeground (dpy, gc, MaskForeground (f));
4720 XDrawLine (dpy, img->mask, gc, 0, 0,
4721 img->width - 1, img->height - 1);
4722 XDrawLine (dpy, img->mask, gc, 0, img->height - 1,
4723 img->width - 1, 0);
4724 XFreeGC (dpy, gc);
4725 }
4726 #endif /* !HAVE_NS */
4727 #else
4728 HDC hdc, bmpdc;
4729 HGDIOBJ prev;
4730
4731 hdc = get_frame_dc (f);
4732 bmpdc = CreateCompatibleDC (hdc);
4733 release_frame_dc (f, hdc);
4734
4735 prev = SelectObject (bmpdc, img->pixmap);
4736
4737 SetTextColor (bmpdc, BLACK_PIX_DEFAULT (f));
4738 MoveToEx (bmpdc, 0, 0, NULL);
4739 LineTo (bmpdc, img->width - 1, img->height - 1);
4740 MoveToEx (bmpdc, 0, img->height - 1, NULL);
4741 LineTo (bmpdc, img->width - 1, 0);
4742
4743 if (img->mask)
4744 {
4745 SelectObject (bmpdc, img->mask);
4746 SetTextColor (bmpdc, WHITE_PIX_DEFAULT (f));
4747 MoveToEx (bmpdc, 0, 0, NULL);
4748 LineTo (bmpdc, img->width - 1, img->height - 1);
4749 MoveToEx (bmpdc, 0, img->height - 1, NULL);
4750 LineTo (bmpdc, img->width - 1, 0);
4751 }
4752 SelectObject (bmpdc, prev);
4753 DeleteDC (bmpdc);
4754 #endif /* HAVE_NTGUI */
4755 }
4756 }
4757
4758
4759 /* Build a mask for image IMG which is used on frame F. FILE is the
4760 name of an image file, for error messages. HOW determines how to
4761 determine the background color of IMG. If it is a list '(R G B)',
4762 with R, G, and B being integers >= 0, take that as the color of the
4763 background. Otherwise, determine the background color of IMG
4764 heuristically. Value is non-zero if successful. */
4765
4766 static int
4767 x_build_heuristic_mask (struct frame *f, struct image *img, Lisp_Object how)
4768 {
4769 XImagePtr_or_DC ximg;
4770 #ifndef HAVE_NTGUI
4771 XImagePtr mask_img;
4772 #else
4773 HDC frame_dc;
4774 HGDIOBJ prev;
4775 char *mask_img;
4776 int row_width;
4777 #endif /* HAVE_NTGUI */
4778 int x, y, rc, use_img_background;
4779 unsigned long bg = 0;
4780
4781 if (img->mask)
4782 {
4783 Free_Pixmap (FRAME_X_DISPLAY (f), img->mask);
4784 img->mask = NO_PIXMAP;
4785 img->background_transparent_valid = 0;
4786 }
4787
4788 #ifndef HAVE_NTGUI
4789 #ifndef HAVE_NS
4790 /* Create an image and pixmap serving as mask. */
4791 rc = x_create_x_image_and_pixmap (f, img->width, img->height, 1,
4792 &mask_img, &img->mask);
4793 if (!rc)
4794 return 0;
4795 #endif /* !HAVE_NS */
4796
4797 /* Get the X image of IMG->pixmap. */
4798 ximg = XGetImage (FRAME_X_DISPLAY (f), img->pixmap, 0, 0,
4799 img->width, img->height,
4800 ~0, ZPixmap);
4801 #else
4802 /* Create the bit array serving as mask. */
4803 row_width = (img->width + 7) / 8;
4804 mask_img = xmalloc (row_width * img->height);
4805 memset (mask_img, 0, row_width * img->height);
4806
4807 /* Create a memory device context for IMG->pixmap. */
4808 frame_dc = get_frame_dc (f);
4809 ximg = CreateCompatibleDC (frame_dc);
4810 release_frame_dc (f, frame_dc);
4811 prev = SelectObject (ximg, img->pixmap);
4812 #endif /* HAVE_NTGUI */
4813
4814 /* Determine the background color of ximg. If HOW is `(R G B)'
4815 take that as color. Otherwise, use the image's background color. */
4816 use_img_background = 1;
4817
4818 if (CONSP (how))
4819 {
4820 int rgb[3], i;
4821
4822 for (i = 0; i < 3 && CONSP (how) && NATNUMP (XCAR (how)); ++i)
4823 {
4824 rgb[i] = XFASTINT (XCAR (how)) & 0xffff;
4825 how = XCDR (how);
4826 }
4827
4828 if (i == 3 && NILP (how))
4829 {
4830 char color_name[30];
4831 sprintf (color_name, "#%04x%04x%04x", rgb[0], rgb[1], rgb[2]);
4832 bg = (
4833 #ifdef HAVE_NTGUI
4834 0x00ffffff & /* Filter out palette info. */
4835 #endif /* HAVE_NTGUI */
4836 x_alloc_image_color (f, img, build_string (color_name), 0));
4837 use_img_background = 0;
4838 }
4839 }
4840
4841 if (use_img_background)
4842 bg = four_corners_best (ximg, img->corners, img->width, img->height);
4843
4844 /* Set all bits in mask_img to 1 whose color in ximg is different
4845 from the background color bg. */
4846 #ifndef HAVE_NTGUI
4847 for (y = 0; y < img->height; ++y)
4848 for (x = 0; x < img->width; ++x)
4849 #ifndef HAVE_NS
4850 XPutPixel (mask_img, x, y, (XGetPixel (ximg, x, y) != bg
4851 ? PIX_MASK_DRAW : PIX_MASK_RETAIN));
4852 #else
4853 if (XGetPixel (ximg, x, y) == bg)
4854 ns_set_alpha (ximg, x, y, 0);
4855 #endif /* HAVE_NS */
4856 #ifndef HAVE_NS
4857 /* Fill in the background_transparent field while we have the mask handy. */
4858 image_background_transparent (img, f, mask_img);
4859
4860 /* Put mask_img into img->mask. */
4861 x_put_x_image (f, mask_img, img->mask, img->width, img->height);
4862 x_destroy_x_image (mask_img);
4863 #endif /* !HAVE_NS */
4864 #else
4865 for (y = 0; y < img->height; ++y)
4866 for (x = 0; x < img->width; ++x)
4867 {
4868 COLORREF p = GetPixel (ximg, x, y);
4869 if (p != bg)
4870 mask_img[y * row_width + x / 8] |= 1 << (x % 8);
4871 }
4872
4873 /* Create the mask image. */
4874 img->mask = w32_create_pixmap_from_bitmap_data (img->width, img->height,
4875 mask_img);
4876 /* Fill in the background_transparent field while we have the mask handy. */
4877 SelectObject (ximg, img->mask);
4878 image_background_transparent (img, f, ximg);
4879
4880 /* Was: x_destroy_x_image ((XImagePtr )mask_img); which seems bogus ++kfs */
4881 xfree (mask_img);
4882 #endif /* HAVE_NTGUI */
4883
4884 Destroy_Image (ximg, prev);
4885
4886 return 1;
4887 }
4888
4889 \f
4890 /***********************************************************************
4891 PBM (mono, gray, color)
4892 ***********************************************************************/
4893
4894 static int pbm_image_p (Lisp_Object object);
4895 static int pbm_load (struct frame *f, struct image *img);
4896 static int pbm_scan_number (unsigned char **, unsigned char *);
4897
4898 /* The symbol `pbm' identifying images of this type. */
4899
4900 static Lisp_Object Qpbm;
4901
4902 /* Indices of image specification fields in gs_format, below. */
4903
4904 enum pbm_keyword_index
4905 {
4906 PBM_TYPE,
4907 PBM_FILE,
4908 PBM_DATA,
4909 PBM_ASCENT,
4910 PBM_MARGIN,
4911 PBM_RELIEF,
4912 PBM_ALGORITHM,
4913 PBM_HEURISTIC_MASK,
4914 PBM_MASK,
4915 PBM_FOREGROUND,
4916 PBM_BACKGROUND,
4917 PBM_LAST
4918 };
4919
4920 /* Vector of image_keyword structures describing the format
4921 of valid user-defined image specifications. */
4922
4923 static const struct image_keyword pbm_format[PBM_LAST] =
4924 {
4925 {":type", IMAGE_SYMBOL_VALUE, 1},
4926 {":file", IMAGE_STRING_VALUE, 0},
4927 {":data", IMAGE_STRING_VALUE, 0},
4928 {":ascent", IMAGE_ASCENT_VALUE, 0},
4929 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
4930 {":relief", IMAGE_INTEGER_VALUE, 0},
4931 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
4932 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
4933 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
4934 {":foreground", IMAGE_STRING_OR_NIL_VALUE, 0},
4935 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
4936 };
4937
4938 /* Structure describing the image type `pbm'. */
4939
4940 static struct image_type pbm_type =
4941 {
4942 &Qpbm,
4943 pbm_image_p,
4944 pbm_load,
4945 x_clear_image,
4946 NULL
4947 };
4948
4949
4950 /* Return non-zero if OBJECT is a valid PBM image specification. */
4951
4952 static int
4953 pbm_image_p (Lisp_Object object)
4954 {
4955 struct image_keyword fmt[PBM_LAST];
4956
4957 memcpy (fmt, pbm_format, sizeof fmt);
4958
4959 if (!parse_image_spec (object, fmt, PBM_LAST, Qpbm))
4960 return 0;
4961
4962 /* Must specify either :data or :file. */
4963 return fmt[PBM_DATA].count + fmt[PBM_FILE].count == 1;
4964 }
4965
4966
4967 /* Scan a decimal number from *S and return it. Advance *S while
4968 reading the number. END is the end of the string. Value is -1 at
4969 end of input. */
4970
4971 static int
4972 pbm_scan_number (unsigned char **s, unsigned char *end)
4973 {
4974 int c = 0, val = -1;
4975
4976 while (*s < end)
4977 {
4978 /* Skip white-space. */
4979 while (*s < end && (c = *(*s)++, isspace (c)))
4980 ;
4981
4982 if (c == '#')
4983 {
4984 /* Skip comment to end of line. */
4985 while (*s < end && (c = *(*s)++, c != '\n'))
4986 ;
4987 }
4988 else if (isdigit (c))
4989 {
4990 /* Read decimal number. */
4991 val = c - '0';
4992 while (*s < end && (c = *(*s)++, isdigit (c)))
4993 val = 10 * val + c - '0';
4994 break;
4995 }
4996 else
4997 break;
4998 }
4999
5000 return val;
5001 }
5002
5003
5004 #ifdef HAVE_NTGUI
5005 #if 0 /* Unused. ++kfs */
5006
5007 /* Read FILE into memory. Value is a pointer to a buffer allocated
5008 with xmalloc holding FILE's contents. Value is null if an error
5009 occurred. *SIZE is set to the size of the file. */
5010
5011 static char *
5012 pbm_read_file (file, size)
5013 Lisp_Object file;
5014 int *size;
5015 {
5016 FILE *fp = NULL;
5017 char *buf = NULL;
5018 struct stat st;
5019
5020 if (stat (SDATA (file), &st) == 0
5021 && (fp = fopen (SDATA (file), "rb")) != NULL
5022 && 0 <= st.st_size && st.st_size <= min (PTRDIFF_MAX, SIZE_MAX)
5023 && (buf = (char *) xmalloc (st.st_size),
5024 fread (buf, 1, st.st_size, fp) == st.st_size))
5025 {
5026 *size = st.st_size;
5027 fclose (fp);
5028 }
5029 else
5030 {
5031 if (fp)
5032 fclose (fp);
5033 if (buf)
5034 {
5035 xfree (buf);
5036 buf = NULL;
5037 }
5038 }
5039
5040 return buf;
5041 }
5042 #endif
5043 #endif /* HAVE_NTGUI */
5044
5045 /* Load PBM image IMG for use on frame F. */
5046
5047 static int
5048 pbm_load (struct frame *f, struct image *img)
5049 {
5050 int raw_p, x, y;
5051 int width, height, max_color_idx = 0;
5052 XImagePtr ximg;
5053 Lisp_Object file, specified_file;
5054 enum {PBM_MONO, PBM_GRAY, PBM_COLOR} type;
5055 unsigned char *contents = NULL;
5056 unsigned char *end, *p;
5057 ptrdiff_t size;
5058
5059 specified_file = image_spec_value (img->spec, QCfile, NULL);
5060
5061 if (STRINGP (specified_file))
5062 {
5063 file = x_find_image_file (specified_file);
5064 if (!STRINGP (file))
5065 {
5066 image_error ("Cannot find image file `%s'", specified_file, Qnil);
5067 return 0;
5068 }
5069
5070 contents = slurp_file (SSDATA (file), &size);
5071 if (contents == NULL)
5072 {
5073 image_error ("Error reading `%s'", file, Qnil);
5074 return 0;
5075 }
5076
5077 p = contents;
5078 end = contents + size;
5079 }
5080 else
5081 {
5082 Lisp_Object data;
5083 data = image_spec_value (img->spec, QCdata, NULL);
5084 if (!STRINGP (data))
5085 {
5086 image_error ("Invalid image data `%s'", data, Qnil);
5087 return 0;
5088 }
5089 p = SDATA (data);
5090 end = p + SBYTES (data);
5091 }
5092
5093 /* Check magic number. */
5094 if (end - p < 2 || *p++ != 'P')
5095 {
5096 image_error ("Not a PBM image: `%s'", img->spec, Qnil);
5097 error:
5098 xfree (contents);
5099 return 0;
5100 }
5101
5102 switch (*p++)
5103 {
5104 case '1':
5105 raw_p = 0, type = PBM_MONO;
5106 break;
5107
5108 case '2':
5109 raw_p = 0, type = PBM_GRAY;
5110 break;
5111
5112 case '3':
5113 raw_p = 0, type = PBM_COLOR;
5114 break;
5115
5116 case '4':
5117 raw_p = 1, type = PBM_MONO;
5118 break;
5119
5120 case '5':
5121 raw_p = 1, type = PBM_GRAY;
5122 break;
5123
5124 case '6':
5125 raw_p = 1, type = PBM_COLOR;
5126 break;
5127
5128 default:
5129 image_error ("Not a PBM image: `%s'", img->spec, Qnil);
5130 goto error;
5131 }
5132
5133 /* Read width, height, maximum color-component. Characters
5134 starting with `#' up to the end of a line are ignored. */
5135 width = pbm_scan_number (&p, end);
5136 height = pbm_scan_number (&p, end);
5137
5138 if (type != PBM_MONO)
5139 {
5140 max_color_idx = pbm_scan_number (&p, end);
5141 if (max_color_idx > 65535 || max_color_idx < 0)
5142 {
5143 image_error ("Unsupported maximum PBM color value", Qnil, Qnil);
5144 goto error;
5145 }
5146 }
5147
5148 if (!check_image_size (f, width, height))
5149 {
5150 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
5151 goto error;
5152 }
5153
5154 if (!x_create_x_image_and_pixmap (f, width, height, 0,
5155 &ximg, &img->pixmap))
5156 goto error;
5157
5158 /* Initialize the color hash table. */
5159 init_color_table ();
5160
5161 if (type == PBM_MONO)
5162 {
5163 int c = 0, g;
5164 struct image_keyword fmt[PBM_LAST];
5165 unsigned long fg = FRAME_FOREGROUND_PIXEL (f);
5166 unsigned long bg = FRAME_BACKGROUND_PIXEL (f);
5167
5168 /* Parse the image specification. */
5169 memcpy (fmt, pbm_format, sizeof fmt);
5170 parse_image_spec (img->spec, fmt, PBM_LAST, Qpbm);
5171
5172 /* Get foreground and background colors, maybe allocate colors. */
5173 if (fmt[PBM_FOREGROUND].count
5174 && STRINGP (fmt[PBM_FOREGROUND].value))
5175 fg = x_alloc_image_color (f, img, fmt[PBM_FOREGROUND].value, fg);
5176 if (fmt[PBM_BACKGROUND].count
5177 && STRINGP (fmt[PBM_BACKGROUND].value))
5178 {
5179 bg = x_alloc_image_color (f, img, fmt[PBM_BACKGROUND].value, bg);
5180 img->background = bg;
5181 img->background_valid = 1;
5182 }
5183
5184 for (y = 0; y < height; ++y)
5185 for (x = 0; x < width; ++x)
5186 {
5187 if (raw_p)
5188 {
5189 if ((x & 7) == 0)
5190 {
5191 if (p >= end)
5192 {
5193 x_destroy_x_image (ximg);
5194 x_clear_image (f, img);
5195 image_error ("Invalid image size in image `%s'",
5196 img->spec, Qnil);
5197 goto error;
5198 }
5199 c = *p++;
5200 }
5201 g = c & 0x80;
5202 c <<= 1;
5203 }
5204 else
5205 g = pbm_scan_number (&p, end);
5206
5207 XPutPixel (ximg, x, y, g ? fg : bg);
5208 }
5209 }
5210 else
5211 {
5212 int expected_size = height * width;
5213 if (max_color_idx > 255)
5214 expected_size *= 2;
5215 if (type == PBM_COLOR)
5216 expected_size *= 3;
5217
5218 if (raw_p && p + expected_size > end)
5219 {
5220 x_destroy_x_image (ximg);
5221 x_clear_image (f, img);
5222 image_error ("Invalid image size in image `%s'",
5223 img->spec, Qnil);
5224 goto error;
5225 }
5226
5227 for (y = 0; y < height; ++y)
5228 for (x = 0; x < width; ++x)
5229 {
5230 int r, g, b;
5231
5232 if (type == PBM_GRAY && raw_p)
5233 {
5234 r = g = b = *p++;
5235 if (max_color_idx > 255)
5236 r = g = b = r * 256 + *p++;
5237 }
5238 else if (type == PBM_GRAY)
5239 r = g = b = pbm_scan_number (&p, end);
5240 else if (raw_p)
5241 {
5242 r = *p++;
5243 if (max_color_idx > 255)
5244 r = r * 256 + *p++;
5245 g = *p++;
5246 if (max_color_idx > 255)
5247 g = g * 256 + *p++;
5248 b = *p++;
5249 if (max_color_idx > 255)
5250 b = b * 256 + *p++;
5251 }
5252 else
5253 {
5254 r = pbm_scan_number (&p, end);
5255 g = pbm_scan_number (&p, end);
5256 b = pbm_scan_number (&p, end);
5257 }
5258
5259 if (r < 0 || g < 0 || b < 0)
5260 {
5261 x_destroy_x_image (ximg);
5262 image_error ("Invalid pixel value in image `%s'",
5263 img->spec, Qnil);
5264 goto error;
5265 }
5266
5267 /* RGB values are now in the range 0..max_color_idx.
5268 Scale this to the range 0..0xffff supported by X. */
5269 r = (double) r * 65535 / max_color_idx;
5270 g = (double) g * 65535 / max_color_idx;
5271 b = (double) b * 65535 / max_color_idx;
5272 XPutPixel (ximg, x, y, lookup_rgb_color (f, r, g, b));
5273 }
5274 }
5275
5276 #ifdef COLOR_TABLE_SUPPORT
5277 /* Store in IMG->colors the colors allocated for the image, and
5278 free the color table. */
5279 img->colors = colors_in_color_table (&img->ncolors);
5280 free_color_table ();
5281 #endif /* COLOR_TABLE_SUPPORT */
5282
5283 img->width = width;
5284 img->height = height;
5285
5286 /* Maybe fill in the background field while we have ximg handy. */
5287
5288 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
5289 /* Casting avoids a GCC warning. */
5290 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
5291
5292 /* Put the image into a pixmap. */
5293 x_put_x_image (f, ximg, img->pixmap, width, height);
5294 x_destroy_x_image (ximg);
5295
5296 /* X and W32 versions did it here, MAC version above. ++kfs
5297 img->width = width;
5298 img->height = height; */
5299
5300 xfree (contents);
5301 return 1;
5302 }
5303
5304 \f
5305 /***********************************************************************
5306 PNG
5307 ***********************************************************************/
5308
5309 #if defined (HAVE_PNG) || defined (HAVE_NS)
5310
5311 /* Function prototypes. */
5312
5313 static int png_image_p (Lisp_Object object);
5314 static int png_load (struct frame *f, struct image *img);
5315
5316 /* The symbol `png' identifying images of this type. */
5317
5318 static Lisp_Object Qpng;
5319
5320 /* Indices of image specification fields in png_format, below. */
5321
5322 enum png_keyword_index
5323 {
5324 PNG_TYPE,
5325 PNG_DATA,
5326 PNG_FILE,
5327 PNG_ASCENT,
5328 PNG_MARGIN,
5329 PNG_RELIEF,
5330 PNG_ALGORITHM,
5331 PNG_HEURISTIC_MASK,
5332 PNG_MASK,
5333 PNG_BACKGROUND,
5334 PNG_LAST
5335 };
5336
5337 /* Vector of image_keyword structures describing the format
5338 of valid user-defined image specifications. */
5339
5340 static const struct image_keyword png_format[PNG_LAST] =
5341 {
5342 {":type", IMAGE_SYMBOL_VALUE, 1},
5343 {":data", IMAGE_STRING_VALUE, 0},
5344 {":file", IMAGE_STRING_VALUE, 0},
5345 {":ascent", IMAGE_ASCENT_VALUE, 0},
5346 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
5347 {":relief", IMAGE_INTEGER_VALUE, 0},
5348 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5349 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5350 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5351 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
5352 };
5353
5354 /* Structure describing the image type `png'. */
5355
5356 static struct image_type png_type =
5357 {
5358 &Qpng,
5359 png_image_p,
5360 png_load,
5361 x_clear_image,
5362 NULL
5363 };
5364
5365 /* Return non-zero if OBJECT is a valid PNG image specification. */
5366
5367 static int
5368 png_image_p (Lisp_Object object)
5369 {
5370 struct image_keyword fmt[PNG_LAST];
5371 memcpy (fmt, png_format, sizeof fmt);
5372
5373 if (!parse_image_spec (object, fmt, PNG_LAST, Qpng))
5374 return 0;
5375
5376 /* Must specify either the :data or :file keyword. */
5377 return fmt[PNG_FILE].count + fmt[PNG_DATA].count == 1;
5378 }
5379
5380 #endif /* HAVE_PNG || HAVE_NS */
5381
5382
5383 #ifdef HAVE_PNG
5384
5385 #ifdef HAVE_NTGUI
5386 /* PNG library details. */
5387
5388 DEF_IMGLIB_FN (png_voidp, png_get_io_ptr, (png_structp));
5389 DEF_IMGLIB_FN (int, png_sig_cmp, (png_bytep, png_size_t, png_size_t));
5390 DEF_IMGLIB_FN (png_structp, png_create_read_struct, (png_const_charp, png_voidp,
5391 png_error_ptr, png_error_ptr));
5392 DEF_IMGLIB_FN (png_infop, png_create_info_struct, (png_structp));
5393 DEF_IMGLIB_FN (void, png_destroy_read_struct, (png_structpp, png_infopp, png_infopp));
5394 DEF_IMGLIB_FN (void, png_set_read_fn, (png_structp, png_voidp, png_rw_ptr));
5395 DEF_IMGLIB_FN (void, png_set_sig_bytes, (png_structp, int));
5396 DEF_IMGLIB_FN (void, png_read_info, (png_structp, png_infop));
5397 DEF_IMGLIB_FN (png_uint_32, png_get_IHDR, (png_structp, png_infop,
5398 png_uint_32 *, png_uint_32 *,
5399 int *, int *, int *, int *, int *));
5400 DEF_IMGLIB_FN (png_uint_32, png_get_valid, (png_structp, png_infop, png_uint_32));
5401 DEF_IMGLIB_FN (void, png_set_strip_16, (png_structp));
5402 DEF_IMGLIB_FN (void, png_set_expand, (png_structp));
5403 DEF_IMGLIB_FN (void, png_set_gray_to_rgb, (png_structp));
5404 DEF_IMGLIB_FN (void, png_set_background, (png_structp, png_color_16p,
5405 int, int, double));
5406 DEF_IMGLIB_FN (png_uint_32, png_get_bKGD, (png_structp, png_infop, png_color_16p *));
5407 DEF_IMGLIB_FN (void, png_read_update_info, (png_structp, png_infop));
5408 DEF_IMGLIB_FN (png_byte, png_get_channels, (png_structp, png_infop));
5409 DEF_IMGLIB_FN (png_size_t, png_get_rowbytes, (png_structp, png_infop));
5410 DEF_IMGLIB_FN (void, png_read_image, (png_structp, png_bytepp));
5411 DEF_IMGLIB_FN (void, png_read_end, (png_structp, png_infop));
5412 DEF_IMGLIB_FN (void, png_error, (png_structp, png_const_charp));
5413
5414 #if (PNG_LIBPNG_VER >= 10500)
5415 DEF_IMGLIB_FN (void, png_longjmp, (png_structp, int));
5416 DEF_IMGLIB_FN (jmp_buf *, png_set_longjmp_fn, (png_structp, png_longjmp_ptr, size_t));
5417 #endif /* libpng version >= 1.5 */
5418
5419 static int
5420 init_png_functions (Lisp_Object libraries)
5421 {
5422 HMODULE library;
5423
5424 if (!(library = w32_delayed_load (libraries, Qpng)))
5425 return 0;
5426
5427 LOAD_IMGLIB_FN (library, png_get_io_ptr);
5428 LOAD_IMGLIB_FN (library, png_sig_cmp);
5429 LOAD_IMGLIB_FN (library, png_create_read_struct);
5430 LOAD_IMGLIB_FN (library, png_create_info_struct);
5431 LOAD_IMGLIB_FN (library, png_destroy_read_struct);
5432 LOAD_IMGLIB_FN (library, png_set_read_fn);
5433 LOAD_IMGLIB_FN (library, png_set_sig_bytes);
5434 LOAD_IMGLIB_FN (library, png_read_info);
5435 LOAD_IMGLIB_FN (library, png_get_IHDR);
5436 LOAD_IMGLIB_FN (library, png_get_valid);
5437 LOAD_IMGLIB_FN (library, png_set_strip_16);
5438 LOAD_IMGLIB_FN (library, png_set_expand);
5439 LOAD_IMGLIB_FN (library, png_set_gray_to_rgb);
5440 LOAD_IMGLIB_FN (library, png_set_background);
5441 LOAD_IMGLIB_FN (library, png_get_bKGD);
5442 LOAD_IMGLIB_FN (library, png_read_update_info);
5443 LOAD_IMGLIB_FN (library, png_get_channels);
5444 LOAD_IMGLIB_FN (library, png_get_rowbytes);
5445 LOAD_IMGLIB_FN (library, png_read_image);
5446 LOAD_IMGLIB_FN (library, png_read_end);
5447 LOAD_IMGLIB_FN (library, png_error);
5448
5449 #if (PNG_LIBPNG_VER >= 10500)
5450 LOAD_IMGLIB_FN (library, png_longjmp);
5451 LOAD_IMGLIB_FN (library, png_set_longjmp_fn);
5452 #endif /* libpng version >= 1.5 */
5453
5454 return 1;
5455 }
5456 #else
5457
5458 #define fn_png_get_io_ptr png_get_io_ptr
5459 #define fn_png_sig_cmp png_sig_cmp
5460 #define fn_png_create_read_struct png_create_read_struct
5461 #define fn_png_create_info_struct png_create_info_struct
5462 #define fn_png_destroy_read_struct png_destroy_read_struct
5463 #define fn_png_set_read_fn png_set_read_fn
5464 #define fn_png_set_sig_bytes png_set_sig_bytes
5465 #define fn_png_read_info png_read_info
5466 #define fn_png_get_IHDR png_get_IHDR
5467 #define fn_png_get_valid png_get_valid
5468 #define fn_png_set_strip_16 png_set_strip_16
5469 #define fn_png_set_expand png_set_expand
5470 #define fn_png_set_gray_to_rgb png_set_gray_to_rgb
5471 #define fn_png_set_background png_set_background
5472 #define fn_png_get_bKGD png_get_bKGD
5473 #define fn_png_read_update_info png_read_update_info
5474 #define fn_png_get_channels png_get_channels
5475 #define fn_png_get_rowbytes png_get_rowbytes
5476 #define fn_png_read_image png_read_image
5477 #define fn_png_read_end png_read_end
5478 #define fn_png_error png_error
5479
5480 #if (PNG_LIBPNG_VER >= 10500)
5481 #define fn_png_longjmp png_longjmp
5482 #define fn_png_set_longjmp_fn png_set_longjmp_fn
5483 #endif /* libpng version >= 1.5 */
5484
5485 #endif /* HAVE_NTGUI */
5486
5487
5488 #if (PNG_LIBPNG_VER < 10500)
5489 #define PNG_LONGJMP(ptr) (longjmp ((ptr)->jmpbuf, 1))
5490 #define PNG_JMPBUF(ptr) ((ptr)->jmpbuf)
5491 #else
5492 /* In libpng version 1.5, the jmpbuf member is hidden. (Bug#7908) */
5493 #define PNG_LONGJMP(ptr) (fn_png_longjmp ((ptr), 1))
5494 #define PNG_JMPBUF(ptr) \
5495 (*fn_png_set_longjmp_fn((ptr), longjmp, sizeof (jmp_buf)))
5496 #endif
5497
5498 /* Error and warning handlers installed when the PNG library
5499 is initialized. */
5500
5501 static void my_png_error (png_struct *, const char *) NO_RETURN;
5502 static void
5503 my_png_error (png_struct *png_ptr, const char *msg)
5504 {
5505 xassert (png_ptr != NULL);
5506 /* Avoid compiler warning about deprecated direct access to
5507 png_ptr's fields in libpng versions 1.4.x. */
5508 image_error ("PNG error: %s", build_string (msg), Qnil);
5509 PNG_LONGJMP (png_ptr);
5510 }
5511
5512
5513 static void
5514 my_png_warning (png_struct *png_ptr, const char *msg)
5515 {
5516 xassert (png_ptr != NULL);
5517 image_error ("PNG warning: %s", build_string (msg), Qnil);
5518 }
5519
5520 /* Memory source for PNG decoding. */
5521
5522 struct png_memory_storage
5523 {
5524 unsigned char *bytes; /* The data */
5525 size_t len; /* How big is it? */
5526 int index; /* Where are we? */
5527 };
5528
5529
5530 /* Function set as reader function when reading PNG image from memory.
5531 PNG_PTR is a pointer to the PNG control structure. Copy LENGTH
5532 bytes from the input to DATA. */
5533
5534 static void
5535 png_read_from_memory (png_structp png_ptr, png_bytep data, png_size_t length)
5536 {
5537 struct png_memory_storage *tbr
5538 = (struct png_memory_storage *) fn_png_get_io_ptr (png_ptr);
5539
5540 if (length > tbr->len - tbr->index)
5541 fn_png_error (png_ptr, "Read error");
5542
5543 memcpy (data, tbr->bytes + tbr->index, length);
5544 tbr->index = tbr->index + length;
5545 }
5546
5547
5548 /* Function set as reader function when reading PNG image from a file.
5549 PNG_PTR is a pointer to the PNG control structure. Copy LENGTH
5550 bytes from the input to DATA. */
5551
5552 static void
5553 png_read_from_file (png_structp png_ptr, png_bytep data, png_size_t length)
5554 {
5555 FILE *fp = (FILE *) fn_png_get_io_ptr (png_ptr);
5556
5557 if (fread (data, 1, length, fp) < length)
5558 fn_png_error (png_ptr, "Read error");
5559 }
5560
5561
5562 /* Load PNG image IMG for use on frame F. Value is non-zero if
5563 successful. */
5564
5565 static int
5566 png_load (struct frame *f, struct image *img)
5567 {
5568 Lisp_Object file, specified_file;
5569 Lisp_Object specified_data;
5570 int x, y, i;
5571 XImagePtr ximg, mask_img = NULL;
5572 png_struct *png_ptr = NULL;
5573 png_info *info_ptr = NULL, *end_info = NULL;
5574 FILE *volatile fp = NULL;
5575 png_byte sig[8];
5576 png_byte * volatile pixels = NULL;
5577 png_byte ** volatile rows = NULL;
5578 png_uint_32 width, height;
5579 int bit_depth, color_type, interlace_type;
5580 png_byte channels;
5581 png_uint_32 row_bytes;
5582 int transparent_p;
5583 struct png_memory_storage tbr; /* Data to be read */
5584
5585 /* Find out what file to load. */
5586 specified_file = image_spec_value (img->spec, QCfile, NULL);
5587 specified_data = image_spec_value (img->spec, QCdata, NULL);
5588
5589 if (NILP (specified_data))
5590 {
5591 file = x_find_image_file (specified_file);
5592 if (!STRINGP (file))
5593 {
5594 image_error ("Cannot find image file `%s'", specified_file, Qnil);
5595 return 0;
5596 }
5597
5598 /* Open the image file. */
5599 fp = fopen (SSDATA (file), "rb");
5600 if (!fp)
5601 {
5602 image_error ("Cannot open image file `%s'", file, Qnil);
5603 return 0;
5604 }
5605
5606 /* Check PNG signature. */
5607 if (fread (sig, 1, sizeof sig, fp) != sizeof sig
5608 || fn_png_sig_cmp (sig, 0, sizeof sig))
5609 {
5610 image_error ("Not a PNG file: `%s'", file, Qnil);
5611 fclose (fp);
5612 return 0;
5613 }
5614 }
5615 else
5616 {
5617 if (!STRINGP (specified_data))
5618 {
5619 image_error ("Invalid image data `%s'", specified_data, Qnil);
5620 return 0;
5621 }
5622
5623 /* Read from memory. */
5624 tbr.bytes = SDATA (specified_data);
5625 tbr.len = SBYTES (specified_data);
5626 tbr.index = 0;
5627
5628 /* Check PNG signature. */
5629 if (tbr.len < sizeof sig
5630 || fn_png_sig_cmp (tbr.bytes, 0, sizeof sig))
5631 {
5632 image_error ("Not a PNG image: `%s'", img->spec, Qnil);
5633 return 0;
5634 }
5635
5636 /* Need to skip past the signature. */
5637 tbr.bytes += sizeof (sig);
5638 }
5639
5640 /* Initialize read and info structs for PNG lib. */
5641 png_ptr = fn_png_create_read_struct (PNG_LIBPNG_VER_STRING,
5642 NULL, my_png_error,
5643 my_png_warning);
5644 if (!png_ptr)
5645 {
5646 if (fp) fclose (fp);
5647 return 0;
5648 }
5649
5650 info_ptr = fn_png_create_info_struct (png_ptr);
5651 if (!info_ptr)
5652 {
5653 fn_png_destroy_read_struct (&png_ptr, NULL, NULL);
5654 if (fp) fclose (fp);
5655 return 0;
5656 }
5657
5658 end_info = fn_png_create_info_struct (png_ptr);
5659 if (!end_info)
5660 {
5661 fn_png_destroy_read_struct (&png_ptr, &info_ptr, NULL);
5662 if (fp) fclose (fp);
5663 return 0;
5664 }
5665
5666 /* Set error jump-back. We come back here when the PNG library
5667 detects an error. */
5668 if (setjmp (PNG_JMPBUF (png_ptr)))
5669 {
5670 error:
5671 if (png_ptr)
5672 fn_png_destroy_read_struct (&png_ptr, &info_ptr, &end_info);
5673 xfree (pixels);
5674 xfree (rows);
5675 if (fp) fclose (fp);
5676 return 0;
5677 }
5678
5679 /* Read image info. */
5680 if (!NILP (specified_data))
5681 fn_png_set_read_fn (png_ptr, (void *) &tbr, png_read_from_memory);
5682 else
5683 fn_png_set_read_fn (png_ptr, (void *) fp, png_read_from_file);
5684
5685 fn_png_set_sig_bytes (png_ptr, sizeof sig);
5686 fn_png_read_info (png_ptr, info_ptr);
5687 fn_png_get_IHDR (png_ptr, info_ptr, &width, &height, &bit_depth, &color_type,
5688 &interlace_type, NULL, NULL);
5689
5690 if (!check_image_size (f, width, height))
5691 {
5692 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
5693 goto error;
5694 }
5695 /* If image contains simply transparency data, we prefer to
5696 construct a clipping mask. */
5697 if (fn_png_get_valid (png_ptr, info_ptr, PNG_INFO_tRNS))
5698 transparent_p = 1;
5699 else
5700 transparent_p = 0;
5701
5702 /* This function is easier to write if we only have to handle
5703 one data format: RGB or RGBA with 8 bits per channel. Let's
5704 transform other formats into that format. */
5705
5706 /* Strip more than 8 bits per channel. */
5707 if (bit_depth == 16)
5708 fn_png_set_strip_16 (png_ptr);
5709
5710 /* Expand data to 24 bit RGB, or 8 bit grayscale, with alpha channel
5711 if available. */
5712 fn_png_set_expand (png_ptr);
5713
5714 /* Convert grayscale images to RGB. */
5715 if (color_type == PNG_COLOR_TYPE_GRAY
5716 || color_type == PNG_COLOR_TYPE_GRAY_ALPHA)
5717 fn_png_set_gray_to_rgb (png_ptr);
5718
5719 /* Handle alpha channel by combining the image with a background
5720 color. Do this only if a real alpha channel is supplied. For
5721 simple transparency, we prefer a clipping mask. */
5722 if (!transparent_p)
5723 {
5724 /* png_color_16 *image_bg; */
5725 Lisp_Object specified_bg
5726 = image_spec_value (img->spec, QCbackground, NULL);
5727 int shift = (bit_depth == 16) ? 0 : 8;
5728
5729 if (STRINGP (specified_bg))
5730 /* The user specified `:background', use that. */
5731 {
5732 XColor color;
5733 if (x_defined_color (f, SSDATA (specified_bg), &color, 0))
5734 {
5735 png_color_16 user_bg;
5736
5737 memset (&user_bg, 0, sizeof user_bg);
5738 user_bg.red = color.red >> shift;
5739 user_bg.green = color.green >> shift;
5740 user_bg.blue = color.blue >> shift;
5741
5742 fn_png_set_background (png_ptr, &user_bg,
5743 PNG_BACKGROUND_GAMMA_SCREEN, 0, 1.0);
5744 }
5745 }
5746 else
5747 {
5748 /* We use the current frame background, ignoring any default
5749 background color set by the image. */
5750 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
5751 XColor color;
5752 png_color_16 frame_background;
5753
5754 color.pixel = FRAME_BACKGROUND_PIXEL (f);
5755 x_query_color (f, &color);
5756
5757 memset (&frame_background, 0, sizeof frame_background);
5758 frame_background.red = color.red >> shift;
5759 frame_background.green = color.green >> shift;
5760 frame_background.blue = color.blue >> shift;
5761 #endif /* HAVE_X_WINDOWS */
5762
5763 fn_png_set_background (png_ptr, &frame_background,
5764 PNG_BACKGROUND_GAMMA_SCREEN, 0, 1.0);
5765 }
5766 }
5767
5768 /* Update info structure. */
5769 fn_png_read_update_info (png_ptr, info_ptr);
5770
5771 /* Get number of channels. Valid values are 1 for grayscale images
5772 and images with a palette, 2 for grayscale images with transparency
5773 information (alpha channel), 3 for RGB images, and 4 for RGB
5774 images with alpha channel, i.e. RGBA. If conversions above were
5775 sufficient we should only have 3 or 4 channels here. */
5776 channels = fn_png_get_channels (png_ptr, info_ptr);
5777 xassert (channels == 3 || channels == 4);
5778
5779 /* Number of bytes needed for one row of the image. */
5780 row_bytes = fn_png_get_rowbytes (png_ptr, info_ptr);
5781
5782 /* Allocate memory for the image. */
5783 pixels = (png_byte *) xmalloc (row_bytes * height * sizeof *pixels);
5784 rows = (png_byte **) xmalloc (height * sizeof *rows);
5785 for (i = 0; i < height; ++i)
5786 rows[i] = pixels + i * row_bytes;
5787
5788 /* Read the entire image. */
5789 fn_png_read_image (png_ptr, rows);
5790 fn_png_read_end (png_ptr, info_ptr);
5791 if (fp)
5792 {
5793 fclose (fp);
5794 fp = NULL;
5795 }
5796
5797 /* Create the X image and pixmap. */
5798 if (!x_create_x_image_and_pixmap (f, width, height, 0, &ximg,
5799 &img->pixmap))
5800 goto error;
5801
5802 /* Create an image and pixmap serving as mask if the PNG image
5803 contains an alpha channel. */
5804 if (channels == 4
5805 && !transparent_p
5806 && !x_create_x_image_and_pixmap (f, width, height, 1,
5807 &mask_img, &img->mask))
5808 {
5809 x_destroy_x_image (ximg);
5810 Free_Pixmap (FRAME_X_DISPLAY (f), img->pixmap);
5811 img->pixmap = NO_PIXMAP;
5812 goto error;
5813 }
5814
5815 /* Fill the X image and mask from PNG data. */
5816 init_color_table ();
5817
5818 for (y = 0; y < height; ++y)
5819 {
5820 png_byte *p = rows[y];
5821
5822 for (x = 0; x < width; ++x)
5823 {
5824 unsigned r, g, b;
5825
5826 r = *p++ << 8;
5827 g = *p++ << 8;
5828 b = *p++ << 8;
5829 XPutPixel (ximg, x, y, lookup_rgb_color (f, r, g, b));
5830 /* An alpha channel, aka mask channel, associates variable
5831 transparency with an image. Where other image formats
5832 support binary transparency---fully transparent or fully
5833 opaque---PNG allows up to 254 levels of partial transparency.
5834 The PNG library implements partial transparency by combining
5835 the image with a specified background color.
5836
5837 I'm not sure how to handle this here nicely: because the
5838 background on which the image is displayed may change, for
5839 real alpha channel support, it would be necessary to create
5840 a new image for each possible background.
5841
5842 What I'm doing now is that a mask is created if we have
5843 boolean transparency information. Otherwise I'm using
5844 the frame's background color to combine the image with. */
5845
5846 if (channels == 4)
5847 {
5848 if (mask_img)
5849 XPutPixel (mask_img, x, y, *p > 0 ? PIX_MASK_DRAW : PIX_MASK_RETAIN);
5850 ++p;
5851 }
5852 }
5853 }
5854
5855 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
5856 /* Set IMG's background color from the PNG image, unless the user
5857 overrode it. */
5858 {
5859 png_color_16 *bg;
5860 if (fn_png_get_bKGD (png_ptr, info_ptr, &bg))
5861 {
5862 img->background = lookup_rgb_color (f, bg->red, bg->green, bg->blue);
5863 img->background_valid = 1;
5864 }
5865 }
5866
5867 #ifdef COLOR_TABLE_SUPPORT
5868 /* Remember colors allocated for this image. */
5869 img->colors = colors_in_color_table (&img->ncolors);
5870 free_color_table ();
5871 #endif /* COLOR_TABLE_SUPPORT */
5872
5873 /* Clean up. */
5874 fn_png_destroy_read_struct (&png_ptr, &info_ptr, &end_info);
5875 xfree (rows);
5876 xfree (pixels);
5877
5878 img->width = width;
5879 img->height = height;
5880
5881 /* Maybe fill in the background field while we have ximg handy.
5882 Casting avoids a GCC warning. */
5883 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
5884
5885 /* Put the image into the pixmap, then free the X image and its buffer. */
5886 x_put_x_image (f, ximg, img->pixmap, width, height);
5887 x_destroy_x_image (ximg);
5888
5889 /* Same for the mask. */
5890 if (mask_img)
5891 {
5892 /* Fill in the background_transparent field while we have the
5893 mask handy. Casting avoids a GCC warning. */
5894 image_background_transparent (img, f, (XImagePtr_or_DC)mask_img);
5895
5896 x_put_x_image (f, mask_img, img->mask, img->width, img->height);
5897 x_destroy_x_image (mask_img);
5898 }
5899
5900 return 1;
5901 }
5902
5903 #else /* HAVE_PNG */
5904
5905 #ifdef HAVE_NS
5906 static int
5907 png_load (struct frame *f, struct image *img)
5908 {
5909 return ns_load_image(f, img,
5910 image_spec_value (img->spec, QCfile, NULL),
5911 image_spec_value (img->spec, QCdata, NULL));
5912 }
5913 #endif /* HAVE_NS */
5914
5915
5916 #endif /* !HAVE_PNG */
5917
5918
5919 \f
5920 /***********************************************************************
5921 JPEG
5922 ***********************************************************************/
5923
5924 #if defined (HAVE_JPEG) || defined (HAVE_NS)
5925
5926 static int jpeg_image_p (Lisp_Object object);
5927 static int jpeg_load (struct frame *f, struct image *img);
5928
5929 /* The symbol `jpeg' identifying images of this type. */
5930
5931 static Lisp_Object Qjpeg;
5932
5933 /* Indices of image specification fields in gs_format, below. */
5934
5935 enum jpeg_keyword_index
5936 {
5937 JPEG_TYPE,
5938 JPEG_DATA,
5939 JPEG_FILE,
5940 JPEG_ASCENT,
5941 JPEG_MARGIN,
5942 JPEG_RELIEF,
5943 JPEG_ALGORITHM,
5944 JPEG_HEURISTIC_MASK,
5945 JPEG_MASK,
5946 JPEG_BACKGROUND,
5947 JPEG_LAST
5948 };
5949
5950 /* Vector of image_keyword structures describing the format
5951 of valid user-defined image specifications. */
5952
5953 static const struct image_keyword jpeg_format[JPEG_LAST] =
5954 {
5955 {":type", IMAGE_SYMBOL_VALUE, 1},
5956 {":data", IMAGE_STRING_VALUE, 0},
5957 {":file", IMAGE_STRING_VALUE, 0},
5958 {":ascent", IMAGE_ASCENT_VALUE, 0},
5959 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
5960 {":relief", IMAGE_INTEGER_VALUE, 0},
5961 {":conversions", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5962 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5963 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5964 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
5965 };
5966
5967 /* Structure describing the image type `jpeg'. */
5968
5969 static struct image_type jpeg_type =
5970 {
5971 &Qjpeg,
5972 jpeg_image_p,
5973 jpeg_load,
5974 x_clear_image,
5975 NULL
5976 };
5977
5978 /* Return non-zero if OBJECT is a valid JPEG image specification. */
5979
5980 static int
5981 jpeg_image_p (Lisp_Object object)
5982 {
5983 struct image_keyword fmt[JPEG_LAST];
5984
5985 memcpy (fmt, jpeg_format, sizeof fmt);
5986
5987 if (!parse_image_spec (object, fmt, JPEG_LAST, Qjpeg))
5988 return 0;
5989
5990 /* Must specify either the :data or :file keyword. */
5991 return fmt[JPEG_FILE].count + fmt[JPEG_DATA].count == 1;
5992 }
5993
5994 #endif /* HAVE_JPEG || HAVE_NS */
5995
5996 #ifdef HAVE_JPEG
5997
5998 /* Work around a warning about HAVE_STDLIB_H being redefined in
5999 jconfig.h. */
6000 #ifdef HAVE_STDLIB_H
6001 #undef HAVE_STDLIB_H
6002 #endif /* HAVE_STLIB_H */
6003
6004 #if defined (HAVE_NTGUI) && !defined (__WIN32__)
6005 /* In older releases of the jpeg library, jpeglib.h will define boolean
6006 differently depending on __WIN32__, so make sure it is defined. */
6007 #define __WIN32__ 1
6008 #endif
6009
6010 #include <jpeglib.h>
6011 #include <jerror.h>
6012
6013 #ifdef HAVE_STLIB_H_1
6014 #define HAVE_STDLIB_H 1
6015 #endif
6016
6017 #ifdef HAVE_NTGUI
6018
6019 /* JPEG library details. */
6020 DEF_IMGLIB_FN (void, jpeg_CreateDecompress, (j_decompress_ptr, int, size_t));
6021 DEF_IMGLIB_FN (boolean, jpeg_start_decompress, (j_decompress_ptr));
6022 DEF_IMGLIB_FN (boolean, jpeg_finish_decompress, (j_decompress_ptr));
6023 DEF_IMGLIB_FN (void, jpeg_destroy_decompress, (j_decompress_ptr));
6024 DEF_IMGLIB_FN (int, jpeg_read_header, (j_decompress_ptr, boolean));
6025 DEF_IMGLIB_FN (JDIMENSION, jpeg_read_scanlines, (j_decompress_ptr, JSAMPARRAY, JDIMENSION));
6026 DEF_IMGLIB_FN (struct jpeg_error_mgr *, jpeg_std_error, (struct jpeg_error_mgr *));
6027 DEF_IMGLIB_FN (boolean, jpeg_resync_to_restart, (j_decompress_ptr, int));
6028
6029 static int
6030 init_jpeg_functions (Lisp_Object libraries)
6031 {
6032 HMODULE library;
6033
6034 if (!(library = w32_delayed_load (libraries, Qjpeg)))
6035 return 0;
6036
6037 LOAD_IMGLIB_FN (library, jpeg_finish_decompress);
6038 LOAD_IMGLIB_FN (library, jpeg_read_scanlines);
6039 LOAD_IMGLIB_FN (library, jpeg_start_decompress);
6040 LOAD_IMGLIB_FN (library, jpeg_read_header);
6041 LOAD_IMGLIB_FN (library, jpeg_CreateDecompress);
6042 LOAD_IMGLIB_FN (library, jpeg_destroy_decompress);
6043 LOAD_IMGLIB_FN (library, jpeg_std_error);
6044 LOAD_IMGLIB_FN (library, jpeg_resync_to_restart);
6045 return 1;
6046 }
6047
6048 /* Wrapper since we can't directly assign the function pointer
6049 to another function pointer that was declared more completely easily. */
6050 static boolean
6051 jpeg_resync_to_restart_wrapper (j_decompress_ptr cinfo, int desired)
6052 {
6053 return fn_jpeg_resync_to_restart (cinfo, desired);
6054 }
6055
6056 #else
6057
6058 #define fn_jpeg_CreateDecompress(a,b,c) jpeg_create_decompress(a)
6059 #define fn_jpeg_start_decompress jpeg_start_decompress
6060 #define fn_jpeg_finish_decompress jpeg_finish_decompress
6061 #define fn_jpeg_destroy_decompress jpeg_destroy_decompress
6062 #define fn_jpeg_read_header jpeg_read_header
6063 #define fn_jpeg_read_scanlines jpeg_read_scanlines
6064 #define fn_jpeg_std_error jpeg_std_error
6065 #define jpeg_resync_to_restart_wrapper jpeg_resync_to_restart
6066
6067 #endif /* HAVE_NTGUI */
6068
6069 struct my_jpeg_error_mgr
6070 {
6071 struct jpeg_error_mgr pub;
6072 jmp_buf setjmp_buffer;
6073 };
6074
6075
6076 static void my_error_exit (j_common_ptr) NO_RETURN;
6077 static void
6078 my_error_exit (j_common_ptr cinfo)
6079 {
6080 struct my_jpeg_error_mgr *mgr = (struct my_jpeg_error_mgr *) cinfo->err;
6081 longjmp (mgr->setjmp_buffer, 1);
6082 }
6083
6084
6085 /* Init source method for JPEG data source manager. Called by
6086 jpeg_read_header() before any data is actually read. See
6087 libjpeg.doc from the JPEG lib distribution. */
6088
6089 static void
6090 our_common_init_source (j_decompress_ptr cinfo)
6091 {
6092 }
6093
6094
6095 /* Method to terminate data source. Called by
6096 jpeg_finish_decompress() after all data has been processed. */
6097
6098 static void
6099 our_common_term_source (j_decompress_ptr cinfo)
6100 {
6101 }
6102
6103
6104 /* Fill input buffer method for JPEG data source manager. Called
6105 whenever more data is needed. We read the whole image in one step,
6106 so this only adds a fake end of input marker at the end. */
6107
6108 static JOCTET our_memory_buffer[2];
6109
6110 static boolean
6111 our_memory_fill_input_buffer (j_decompress_ptr cinfo)
6112 {
6113 /* Insert a fake EOI marker. */
6114 struct jpeg_source_mgr *src = cinfo->src;
6115
6116 our_memory_buffer[0] = (JOCTET) 0xFF;
6117 our_memory_buffer[1] = (JOCTET) JPEG_EOI;
6118
6119 src->next_input_byte = our_memory_buffer;
6120 src->bytes_in_buffer = 2;
6121 return 1;
6122 }
6123
6124
6125 /* Method to skip over NUM_BYTES bytes in the image data. CINFO->src
6126 is the JPEG data source manager. */
6127
6128 static void
6129 our_memory_skip_input_data (j_decompress_ptr cinfo, long int num_bytes)
6130 {
6131 struct jpeg_source_mgr *src = (struct jpeg_source_mgr *) cinfo->src;
6132
6133 if (src)
6134 {
6135 if (num_bytes > src->bytes_in_buffer)
6136 ERREXIT (cinfo, JERR_INPUT_EOF);
6137
6138 src->bytes_in_buffer -= num_bytes;
6139 src->next_input_byte += num_bytes;
6140 }
6141 }
6142
6143
6144 /* Set up the JPEG lib for reading an image from DATA which contains
6145 LEN bytes. CINFO is the decompression info structure created for
6146 reading the image. */
6147
6148 static void
6149 jpeg_memory_src (j_decompress_ptr cinfo, JOCTET *data, unsigned int len)
6150 {
6151 struct jpeg_source_mgr *src;
6152
6153 if (cinfo->src == NULL)
6154 {
6155 /* First time for this JPEG object? */
6156 cinfo->src = (struct jpeg_source_mgr *)
6157 (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
6158 sizeof (struct jpeg_source_mgr));
6159 src = (struct jpeg_source_mgr *) cinfo->src;
6160 src->next_input_byte = data;
6161 }
6162
6163 src = (struct jpeg_source_mgr *) cinfo->src;
6164 src->init_source = our_common_init_source;
6165 src->fill_input_buffer = our_memory_fill_input_buffer;
6166 src->skip_input_data = our_memory_skip_input_data;
6167 src->resync_to_restart = jpeg_resync_to_restart_wrapper; /* Use default method. */
6168 src->term_source = our_common_term_source;
6169 src->bytes_in_buffer = len;
6170 src->next_input_byte = data;
6171 }
6172
6173
6174 struct jpeg_stdio_mgr
6175 {
6176 struct jpeg_source_mgr mgr;
6177 boolean finished;
6178 FILE *file;
6179 JOCTET *buffer;
6180 };
6181
6182
6183 /* Size of buffer to read JPEG from file.
6184 Not too big, as we want to use alloc_small. */
6185 #define JPEG_STDIO_BUFFER_SIZE 8192
6186
6187
6188 /* Fill input buffer method for JPEG data source manager. Called
6189 whenever more data is needed. The data is read from a FILE *. */
6190
6191 static boolean
6192 our_stdio_fill_input_buffer (j_decompress_ptr cinfo)
6193 {
6194 struct jpeg_stdio_mgr *src;
6195
6196 src = (struct jpeg_stdio_mgr *) cinfo->src;
6197 if (!src->finished)
6198 {
6199 size_t bytes;
6200
6201 bytes = fread (src->buffer, 1, JPEG_STDIO_BUFFER_SIZE, src->file);
6202 if (bytes > 0)
6203 src->mgr.bytes_in_buffer = bytes;
6204 else
6205 {
6206 WARNMS (cinfo, JWRN_JPEG_EOF);
6207 src->finished = 1;
6208 src->buffer[0] = (JOCTET) 0xFF;
6209 src->buffer[1] = (JOCTET) JPEG_EOI;
6210 src->mgr.bytes_in_buffer = 2;
6211 }
6212 src->mgr.next_input_byte = src->buffer;
6213 }
6214
6215 return 1;
6216 }
6217
6218
6219 /* Method to skip over NUM_BYTES bytes in the image data. CINFO->src
6220 is the JPEG data source manager. */
6221
6222 static void
6223 our_stdio_skip_input_data (j_decompress_ptr cinfo, long int num_bytes)
6224 {
6225 struct jpeg_stdio_mgr *src;
6226 src = (struct jpeg_stdio_mgr *) cinfo->src;
6227
6228 while (num_bytes > 0 && !src->finished)
6229 {
6230 if (num_bytes <= src->mgr.bytes_in_buffer)
6231 {
6232 src->mgr.bytes_in_buffer -= num_bytes;
6233 src->mgr.next_input_byte += num_bytes;
6234 break;
6235 }
6236 else
6237 {
6238 num_bytes -= src->mgr.bytes_in_buffer;
6239 src->mgr.bytes_in_buffer = 0;
6240 src->mgr.next_input_byte = NULL;
6241
6242 our_stdio_fill_input_buffer (cinfo);
6243 }
6244 }
6245 }
6246
6247
6248 /* Set up the JPEG lib for reading an image from a FILE *.
6249 CINFO is the decompression info structure created for
6250 reading the image. */
6251
6252 static void
6253 jpeg_file_src (j_decompress_ptr cinfo, FILE *fp)
6254 {
6255 struct jpeg_stdio_mgr *src;
6256
6257 if (cinfo->src != NULL)
6258 src = (struct jpeg_stdio_mgr *) cinfo->src;
6259 else
6260 {
6261 /* First time for this JPEG object? */
6262 cinfo->src = (struct jpeg_source_mgr *)
6263 (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
6264 sizeof (struct jpeg_stdio_mgr));
6265 src = (struct jpeg_stdio_mgr *) cinfo->src;
6266 src->buffer = (JOCTET *)
6267 (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
6268 JPEG_STDIO_BUFFER_SIZE);
6269 }
6270
6271 src->file = fp;
6272 src->finished = 0;
6273 src->mgr.init_source = our_common_init_source;
6274 src->mgr.fill_input_buffer = our_stdio_fill_input_buffer;
6275 src->mgr.skip_input_data = our_stdio_skip_input_data;
6276 src->mgr.resync_to_restart = jpeg_resync_to_restart_wrapper; /* Use default method. */
6277 src->mgr.term_source = our_common_term_source;
6278 src->mgr.bytes_in_buffer = 0;
6279 src->mgr.next_input_byte = NULL;
6280 }
6281
6282
6283 /* Load image IMG for use on frame F. Patterned after example.c
6284 from the JPEG lib. */
6285
6286 static int
6287 jpeg_load (struct frame *f, struct image *img)
6288 {
6289 struct jpeg_decompress_struct cinfo;
6290 struct my_jpeg_error_mgr mgr;
6291 Lisp_Object file, specified_file;
6292 Lisp_Object specified_data;
6293 FILE * volatile fp = NULL;
6294 JSAMPARRAY buffer;
6295 int row_stride, x, y;
6296 XImagePtr ximg = NULL;
6297 int rc;
6298 unsigned long *colors;
6299 int width, height;
6300
6301 /* Open the JPEG file. */
6302 specified_file = image_spec_value (img->spec, QCfile, NULL);
6303 specified_data = image_spec_value (img->spec, QCdata, NULL);
6304
6305 if (NILP (specified_data))
6306 {
6307 file = x_find_image_file (specified_file);
6308 if (!STRINGP (file))
6309 {
6310 image_error ("Cannot find image file `%s'", specified_file, Qnil);
6311 return 0;
6312 }
6313
6314 fp = fopen (SSDATA (file), "rb");
6315 if (fp == NULL)
6316 {
6317 image_error ("Cannot open `%s'", file, Qnil);
6318 return 0;
6319 }
6320 }
6321 else if (!STRINGP (specified_data))
6322 {
6323 image_error ("Invalid image data `%s'", specified_data, Qnil);
6324 return 0;
6325 }
6326
6327 /* Customize libjpeg's error handling to call my_error_exit when an
6328 error is detected. This function will perform a longjmp. */
6329 cinfo.err = fn_jpeg_std_error (&mgr.pub);
6330 mgr.pub.error_exit = my_error_exit;
6331
6332 if ((rc = setjmp (mgr.setjmp_buffer)) != 0)
6333 {
6334 if (rc == 1)
6335 {
6336 /* Called from my_error_exit. Display a JPEG error. */
6337 char buf[JMSG_LENGTH_MAX];
6338 cinfo.err->format_message ((j_common_ptr) &cinfo, buf);
6339 image_error ("Error reading JPEG image `%s': %s", img->spec,
6340 build_string (buf));
6341 }
6342
6343 /* Close the input file and destroy the JPEG object. */
6344 if (fp)
6345 fclose ((FILE *) fp);
6346 fn_jpeg_destroy_decompress (&cinfo);
6347
6348 /* If we already have an XImage, free that. */
6349 x_destroy_x_image (ximg);
6350
6351 /* Free pixmap and colors. */
6352 x_clear_image (f, img);
6353 return 0;
6354 }
6355
6356 /* Create the JPEG decompression object. Let it read from fp.
6357 Read the JPEG image header. */
6358 fn_jpeg_CreateDecompress (&cinfo, JPEG_LIB_VERSION, sizeof (cinfo));
6359
6360 if (NILP (specified_data))
6361 jpeg_file_src (&cinfo, (FILE *) fp);
6362 else
6363 jpeg_memory_src (&cinfo, SDATA (specified_data),
6364 SBYTES (specified_data));
6365
6366 fn_jpeg_read_header (&cinfo, 1);
6367
6368 /* Customize decompression so that color quantization will be used.
6369 Start decompression. */
6370 cinfo.quantize_colors = 1;
6371 fn_jpeg_start_decompress (&cinfo);
6372 width = img->width = cinfo.output_width;
6373 height = img->height = cinfo.output_height;
6374
6375 if (!check_image_size (f, width, height))
6376 {
6377 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
6378 longjmp (mgr.setjmp_buffer, 2);
6379 }
6380
6381 /* Create X image and pixmap. */
6382 if (!x_create_x_image_and_pixmap (f, width, height, 0, &ximg, &img->pixmap))
6383 longjmp (mgr.setjmp_buffer, 2);
6384
6385 /* Allocate colors. When color quantization is used,
6386 cinfo.actual_number_of_colors has been set with the number of
6387 colors generated, and cinfo.colormap is a two-dimensional array
6388 of color indices in the range 0..cinfo.actual_number_of_colors.
6389 No more than 255 colors will be generated. */
6390 {
6391 int i, ir, ig, ib;
6392
6393 if (cinfo.out_color_components > 2)
6394 ir = 0, ig = 1, ib = 2;
6395 else if (cinfo.out_color_components > 1)
6396 ir = 0, ig = 1, ib = 0;
6397 else
6398 ir = 0, ig = 0, ib = 0;
6399
6400 /* Use the color table mechanism because it handles colors that
6401 cannot be allocated nicely. Such colors will be replaced with
6402 a default color, and we don't have to care about which colors
6403 can be freed safely, and which can't. */
6404 init_color_table ();
6405 colors = (unsigned long *) alloca (cinfo.actual_number_of_colors
6406 * sizeof *colors);
6407
6408 for (i = 0; i < cinfo.actual_number_of_colors; ++i)
6409 {
6410 /* Multiply RGB values with 255 because X expects RGB values
6411 in the range 0..0xffff. */
6412 int r = cinfo.colormap[ir][i] << 8;
6413 int g = cinfo.colormap[ig][i] << 8;
6414 int b = cinfo.colormap[ib][i] << 8;
6415 colors[i] = lookup_rgb_color (f, r, g, b);
6416 }
6417
6418 #ifdef COLOR_TABLE_SUPPORT
6419 /* Remember those colors actually allocated. */
6420 img->colors = colors_in_color_table (&img->ncolors);
6421 free_color_table ();
6422 #endif /* COLOR_TABLE_SUPPORT */
6423 }
6424
6425 /* Read pixels. */
6426 row_stride = width * cinfo.output_components;
6427 buffer = cinfo.mem->alloc_sarray ((j_common_ptr) &cinfo, JPOOL_IMAGE,
6428 row_stride, 1);
6429 for (y = 0; y < height; ++y)
6430 {
6431 fn_jpeg_read_scanlines (&cinfo, buffer, 1);
6432 for (x = 0; x < cinfo.output_width; ++x)
6433 XPutPixel (ximg, x, y, colors[buffer[0][x]]);
6434 }
6435
6436 /* Clean up. */
6437 fn_jpeg_finish_decompress (&cinfo);
6438 fn_jpeg_destroy_decompress (&cinfo);
6439 if (fp)
6440 fclose ((FILE *) fp);
6441
6442 /* Maybe fill in the background field while we have ximg handy. */
6443 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
6444 /* Casting avoids a GCC warning. */
6445 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
6446
6447 /* Put the image into the pixmap. */
6448 x_put_x_image (f, ximg, img->pixmap, width, height);
6449 x_destroy_x_image (ximg);
6450 return 1;
6451 }
6452
6453 #else /* HAVE_JPEG */
6454
6455 #ifdef HAVE_NS
6456 static int
6457 jpeg_load (struct frame *f, struct image *img)
6458 {
6459 return ns_load_image (f, img,
6460 image_spec_value (img->spec, QCfile, NULL),
6461 image_spec_value (img->spec, QCdata, NULL));
6462 }
6463 #endif /* HAVE_NS */
6464
6465 #endif /* !HAVE_JPEG */
6466
6467
6468 \f
6469 /***********************************************************************
6470 TIFF
6471 ***********************************************************************/
6472
6473 #if defined (HAVE_TIFF) || defined (HAVE_NS)
6474
6475 static int tiff_image_p (Lisp_Object object);
6476 static int tiff_load (struct frame *f, struct image *img);
6477
6478 /* The symbol `tiff' identifying images of this type. */
6479
6480 static Lisp_Object Qtiff;
6481
6482 /* Indices of image specification fields in tiff_format, below. */
6483
6484 enum tiff_keyword_index
6485 {
6486 TIFF_TYPE,
6487 TIFF_DATA,
6488 TIFF_FILE,
6489 TIFF_ASCENT,
6490 TIFF_MARGIN,
6491 TIFF_RELIEF,
6492 TIFF_ALGORITHM,
6493 TIFF_HEURISTIC_MASK,
6494 TIFF_MASK,
6495 TIFF_BACKGROUND,
6496 TIFF_INDEX,
6497 TIFF_LAST
6498 };
6499
6500 /* Vector of image_keyword structures describing the format
6501 of valid user-defined image specifications. */
6502
6503 static const struct image_keyword tiff_format[TIFF_LAST] =
6504 {
6505 {":type", IMAGE_SYMBOL_VALUE, 1},
6506 {":data", IMAGE_STRING_VALUE, 0},
6507 {":file", IMAGE_STRING_VALUE, 0},
6508 {":ascent", IMAGE_ASCENT_VALUE, 0},
6509 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
6510 {":relief", IMAGE_INTEGER_VALUE, 0},
6511 {":conversions", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6512 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6513 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6514 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
6515 {":index", IMAGE_NON_NEGATIVE_INTEGER_VALUE, 0}
6516 };
6517
6518 /* Structure describing the image type `tiff'. */
6519
6520 static struct image_type tiff_type =
6521 {
6522 &Qtiff,
6523 tiff_image_p,
6524 tiff_load,
6525 x_clear_image,
6526 NULL
6527 };
6528
6529 /* Return non-zero if OBJECT is a valid TIFF image specification. */
6530
6531 static int
6532 tiff_image_p (Lisp_Object object)
6533 {
6534 struct image_keyword fmt[TIFF_LAST];
6535 memcpy (fmt, tiff_format, sizeof fmt);
6536
6537 if (!parse_image_spec (object, fmt, TIFF_LAST, Qtiff))
6538 return 0;
6539
6540 /* Must specify either the :data or :file keyword. */
6541 return fmt[TIFF_FILE].count + fmt[TIFF_DATA].count == 1;
6542 }
6543
6544 #endif /* HAVE_TIFF || HAVE_NS */
6545
6546 #ifdef HAVE_TIFF
6547
6548 #include <tiffio.h>
6549
6550 #ifdef HAVE_NTGUI
6551
6552 /* TIFF library details. */
6553 DEF_IMGLIB_FN (TIFFErrorHandler, TIFFSetErrorHandler, (TIFFErrorHandler));
6554 DEF_IMGLIB_FN (TIFFErrorHandler, TIFFSetWarningHandler, (TIFFErrorHandler));
6555 DEF_IMGLIB_FN (TIFF *, TIFFOpen, (const char *, const char *));
6556 DEF_IMGLIB_FN (TIFF *, TIFFClientOpen, (const char *, const char *, thandle_t,
6557 TIFFReadWriteProc, TIFFReadWriteProc,
6558 TIFFSeekProc, TIFFCloseProc, TIFFSizeProc,
6559 TIFFMapFileProc, TIFFUnmapFileProc));
6560 DEF_IMGLIB_FN (int, TIFFGetField, (TIFF *, ttag_t, ...));
6561 DEF_IMGLIB_FN (int, TIFFReadRGBAImage, (TIFF *, uint32, uint32, uint32 *, int));
6562 DEF_IMGLIB_FN (void, TIFFClose, (TIFF *));
6563 DEF_IMGLIB_FN (int, TIFFSetDirectory, (TIFF *, tdir_t));
6564
6565 static int
6566 init_tiff_functions (Lisp_Object libraries)
6567 {
6568 HMODULE library;
6569
6570 if (!(library = w32_delayed_load (libraries, Qtiff)))
6571 return 0;
6572
6573 LOAD_IMGLIB_FN (library, TIFFSetErrorHandler);
6574 LOAD_IMGLIB_FN (library, TIFFSetWarningHandler);
6575 LOAD_IMGLIB_FN (library, TIFFOpen);
6576 LOAD_IMGLIB_FN (library, TIFFClientOpen);
6577 LOAD_IMGLIB_FN (library, TIFFGetField);
6578 LOAD_IMGLIB_FN (library, TIFFReadRGBAImage);
6579 LOAD_IMGLIB_FN (library, TIFFClose);
6580 LOAD_IMGLIB_FN (library, TIFFSetDirectory);
6581 return 1;
6582 }
6583
6584 #else
6585
6586 #define fn_TIFFSetErrorHandler TIFFSetErrorHandler
6587 #define fn_TIFFSetWarningHandler TIFFSetWarningHandler
6588 #define fn_TIFFOpen TIFFOpen
6589 #define fn_TIFFClientOpen TIFFClientOpen
6590 #define fn_TIFFGetField TIFFGetField
6591 #define fn_TIFFReadRGBAImage TIFFReadRGBAImage
6592 #define fn_TIFFClose TIFFClose
6593 #define fn_TIFFSetDirectory TIFFSetDirectory
6594 #endif /* HAVE_NTGUI */
6595
6596
6597 /* Reading from a memory buffer for TIFF images Based on the PNG
6598 memory source, but we have to provide a lot of extra functions.
6599 Blah.
6600
6601 We really only need to implement read and seek, but I am not
6602 convinced that the TIFF library is smart enough not to destroy
6603 itself if we only hand it the function pointers we need to
6604 override. */
6605
6606 typedef struct
6607 {
6608 unsigned char *bytes;
6609 size_t len;
6610 int index;
6611 }
6612 tiff_memory_source;
6613
6614 static size_t
6615 tiff_read_from_memory (thandle_t data, tdata_t buf, tsize_t size)
6616 {
6617 tiff_memory_source *src = (tiff_memory_source *) data;
6618
6619 if (size > src->len - src->index)
6620 return (size_t) -1;
6621 memcpy (buf, src->bytes + src->index, size);
6622 src->index += size;
6623 return size;
6624 }
6625
6626 static size_t
6627 tiff_write_from_memory (thandle_t data, tdata_t buf, tsize_t size)
6628 {
6629 return (size_t) -1;
6630 }
6631
6632 static toff_t
6633 tiff_seek_in_memory (thandle_t data, toff_t off, int whence)
6634 {
6635 tiff_memory_source *src = (tiff_memory_source *) data;
6636 int idx;
6637
6638 switch (whence)
6639 {
6640 case SEEK_SET: /* Go from beginning of source. */
6641 idx = off;
6642 break;
6643
6644 case SEEK_END: /* Go from end of source. */
6645 idx = src->len + off;
6646 break;
6647
6648 case SEEK_CUR: /* Go from current position. */
6649 idx = src->index + off;
6650 break;
6651
6652 default: /* Invalid `whence'. */
6653 return -1;
6654 }
6655
6656 if (idx > src->len || idx < 0)
6657 return -1;
6658
6659 src->index = idx;
6660 return src->index;
6661 }
6662
6663 static int
6664 tiff_close_memory (thandle_t data)
6665 {
6666 /* NOOP */
6667 return 0;
6668 }
6669
6670 static int
6671 tiff_mmap_memory (thandle_t data, tdata_t *pbase, toff_t *psize)
6672 {
6673 /* It is already _IN_ memory. */
6674 return 0;
6675 }
6676
6677 static void
6678 tiff_unmap_memory (thandle_t data, tdata_t base, toff_t size)
6679 {
6680 /* We don't need to do this. */
6681 }
6682
6683 static toff_t
6684 tiff_size_of_memory (thandle_t data)
6685 {
6686 return ((tiff_memory_source *) data)->len;
6687 }
6688
6689
6690 static void tiff_error_handler (const char *, const char *, va_list)
6691 ATTRIBUTE_FORMAT_PRINTF (2, 0);
6692 static void
6693 tiff_error_handler (const char *title, const char *format, va_list ap)
6694 {
6695 char buf[512];
6696 int len;
6697
6698 len = sprintf (buf, "TIFF error: %s ", title);
6699 vsprintf (buf + len, format, ap);
6700 add_to_log (buf, Qnil, Qnil);
6701 }
6702
6703
6704 static void tiff_warning_handler (const char *, const char *, va_list)
6705 ATTRIBUTE_FORMAT_PRINTF (2, 0);
6706 static void
6707 tiff_warning_handler (const char *title, const char *format, va_list ap)
6708 {
6709 char buf[512];
6710 int len;
6711
6712 len = sprintf (buf, "TIFF warning: %s ", title);
6713 vsprintf (buf + len, format, ap);
6714 add_to_log (buf, Qnil, Qnil);
6715 }
6716
6717
6718 /* Load TIFF image IMG for use on frame F. Value is non-zero if
6719 successful. */
6720
6721 static int
6722 tiff_load (struct frame *f, struct image *img)
6723 {
6724 Lisp_Object file, specified_file;
6725 Lisp_Object specified_data;
6726 TIFF *tiff;
6727 int width, height, x, y, count;
6728 uint32 *buf;
6729 int rc;
6730 XImagePtr ximg;
6731 tiff_memory_source memsrc;
6732 Lisp_Object image;
6733
6734 specified_file = image_spec_value (img->spec, QCfile, NULL);
6735 specified_data = image_spec_value (img->spec, QCdata, NULL);
6736
6737 fn_TIFFSetErrorHandler ((TIFFErrorHandler) tiff_error_handler);
6738 fn_TIFFSetWarningHandler ((TIFFErrorHandler) tiff_warning_handler);
6739
6740 if (NILP (specified_data))
6741 {
6742 /* Read from a file */
6743 file = x_find_image_file (specified_file);
6744 if (!STRINGP (file))
6745 {
6746 image_error ("Cannot find image file `%s'", specified_file, Qnil);
6747 return 0;
6748 }
6749
6750 /* Try to open the image file. */
6751 tiff = fn_TIFFOpen (SSDATA (file), "r");
6752 if (tiff == NULL)
6753 {
6754 image_error ("Cannot open `%s'", file, Qnil);
6755 return 0;
6756 }
6757 }
6758 else
6759 {
6760 if (!STRINGP (specified_data))
6761 {
6762 image_error ("Invalid image data `%s'", specified_data, Qnil);
6763 return 0;
6764 }
6765
6766 /* Memory source! */
6767 memsrc.bytes = SDATA (specified_data);
6768 memsrc.len = SBYTES (specified_data);
6769 memsrc.index = 0;
6770
6771 tiff = fn_TIFFClientOpen ("memory_source", "r", (thandle_t)&memsrc,
6772 (TIFFReadWriteProc) tiff_read_from_memory,
6773 (TIFFReadWriteProc) tiff_write_from_memory,
6774 tiff_seek_in_memory,
6775 tiff_close_memory,
6776 tiff_size_of_memory,
6777 tiff_mmap_memory,
6778 tiff_unmap_memory);
6779
6780 if (!tiff)
6781 {
6782 image_error ("Cannot open memory source for `%s'", img->spec, Qnil);
6783 return 0;
6784 }
6785 }
6786
6787 image = image_spec_value (img->spec, QCindex, NULL);
6788 if (INTEGERP (image))
6789 {
6790 int ino = XFASTINT (image);
6791 if (!fn_TIFFSetDirectory (tiff, ino))
6792 {
6793 image_error ("Invalid image number `%s' in image `%s'",
6794 image, img->spec);
6795 fn_TIFFClose (tiff);
6796 return 0;
6797 }
6798 }
6799
6800 /* Get width and height of the image, and allocate a raster buffer
6801 of width x height 32-bit values. */
6802 fn_TIFFGetField (tiff, TIFFTAG_IMAGEWIDTH, &width);
6803 fn_TIFFGetField (tiff, TIFFTAG_IMAGELENGTH, &height);
6804
6805 if (!check_image_size (f, width, height))
6806 {
6807 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
6808 fn_TIFFClose (tiff);
6809 return 0;
6810 }
6811
6812 buf = (uint32 *) xmalloc (width * height * sizeof *buf);
6813
6814 rc = fn_TIFFReadRGBAImage (tiff, width, height, buf, 0);
6815
6816 /* Count the number of images in the file. */
6817 for (count = 1; fn_TIFFSetDirectory (tiff, count); count++)
6818 continue;
6819
6820 if (count > 1)
6821 img->lisp_data = Fcons (Qcount,
6822 Fcons (make_number (count),
6823 img->lisp_data));
6824
6825 fn_TIFFClose (tiff);
6826 if (!rc)
6827 {
6828 image_error ("Error reading TIFF image `%s'", img->spec, Qnil);
6829 xfree (buf);
6830 return 0;
6831 }
6832
6833 /* Create the X image and pixmap. */
6834 if (!x_create_x_image_and_pixmap (f, width, height, 0, &ximg, &img->pixmap))
6835 {
6836 xfree (buf);
6837 return 0;
6838 }
6839
6840 /* Initialize the color table. */
6841 init_color_table ();
6842
6843 /* Process the pixel raster. Origin is in the lower-left corner. */
6844 for (y = 0; y < height; ++y)
6845 {
6846 uint32 *row = buf + y * width;
6847
6848 for (x = 0; x < width; ++x)
6849 {
6850 uint32 abgr = row[x];
6851 int r = TIFFGetR (abgr) << 8;
6852 int g = TIFFGetG (abgr) << 8;
6853 int b = TIFFGetB (abgr) << 8;
6854 XPutPixel (ximg, x, height - 1 - y, lookup_rgb_color (f, r, g, b));
6855 }
6856 }
6857
6858 #ifdef COLOR_TABLE_SUPPORT
6859 /* Remember the colors allocated for the image. Free the color table. */
6860 img->colors = colors_in_color_table (&img->ncolors);
6861 free_color_table ();
6862 #endif /* COLOR_TABLE_SUPPORT */
6863
6864 img->width = width;
6865 img->height = height;
6866
6867 /* Maybe fill in the background field while we have ximg handy. */
6868 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
6869 /* Casting avoids a GCC warning on W32. */
6870 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
6871
6872 /* Put the image into the pixmap, then free the X image and its buffer. */
6873 x_put_x_image (f, ximg, img->pixmap, width, height);
6874 x_destroy_x_image (ximg);
6875 xfree (buf);
6876
6877 return 1;
6878 }
6879
6880 #else /* HAVE_TIFF */
6881
6882 #ifdef HAVE_NS
6883 static int
6884 tiff_load (struct frame *f, struct image *img)
6885 {
6886 return ns_load_image (f, img,
6887 image_spec_value (img->spec, QCfile, NULL),
6888 image_spec_value (img->spec, QCdata, NULL));
6889 }
6890 #endif /* HAVE_NS */
6891
6892 #endif /* !HAVE_TIFF */
6893
6894
6895 \f
6896 /***********************************************************************
6897 GIF
6898 ***********************************************************************/
6899
6900 #if defined (HAVE_GIF) || defined (HAVE_NS)
6901
6902 static int gif_image_p (Lisp_Object object);
6903 static int gif_load (struct frame *f, struct image *img);
6904 static void gif_clear_image (struct frame *f, struct image *img);
6905
6906 /* The symbol `gif' identifying images of this type. */
6907
6908 static Lisp_Object Qgif;
6909
6910 /* Indices of image specification fields in gif_format, below. */
6911
6912 enum gif_keyword_index
6913 {
6914 GIF_TYPE,
6915 GIF_DATA,
6916 GIF_FILE,
6917 GIF_ASCENT,
6918 GIF_MARGIN,
6919 GIF_RELIEF,
6920 GIF_ALGORITHM,
6921 GIF_HEURISTIC_MASK,
6922 GIF_MASK,
6923 GIF_IMAGE,
6924 GIF_BACKGROUND,
6925 GIF_LAST
6926 };
6927
6928 /* Vector of image_keyword structures describing the format
6929 of valid user-defined image specifications. */
6930
6931 static const struct image_keyword gif_format[GIF_LAST] =
6932 {
6933 {":type", IMAGE_SYMBOL_VALUE, 1},
6934 {":data", IMAGE_STRING_VALUE, 0},
6935 {":file", IMAGE_STRING_VALUE, 0},
6936 {":ascent", IMAGE_ASCENT_VALUE, 0},
6937 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
6938 {":relief", IMAGE_INTEGER_VALUE, 0},
6939 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6940 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6941 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6942 {":index", IMAGE_NON_NEGATIVE_INTEGER_VALUE, 0},
6943 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
6944 };
6945
6946 /* Structure describing the image type `gif'. */
6947
6948 static struct image_type gif_type =
6949 {
6950 &Qgif,
6951 gif_image_p,
6952 gif_load,
6953 gif_clear_image,
6954 NULL
6955 };
6956
6957 /* Free X resources of GIF image IMG which is used on frame F. */
6958
6959 static void
6960 gif_clear_image (struct frame *f, struct image *img)
6961 {
6962 img->lisp_data = Qnil;
6963 x_clear_image (f, img);
6964 }
6965
6966 /* Return non-zero if OBJECT is a valid GIF image specification. */
6967
6968 static int
6969 gif_image_p (Lisp_Object object)
6970 {
6971 struct image_keyword fmt[GIF_LAST];
6972 memcpy (fmt, gif_format, sizeof fmt);
6973
6974 if (!parse_image_spec (object, fmt, GIF_LAST, Qgif))
6975 return 0;
6976
6977 /* Must specify either the :data or :file keyword. */
6978 return fmt[GIF_FILE].count + fmt[GIF_DATA].count == 1;
6979 }
6980
6981 #endif /* HAVE_GIF */
6982
6983 #ifdef HAVE_GIF
6984
6985 #if defined (HAVE_NTGUI)
6986 /* winuser.h might define DrawText to DrawTextA or DrawTextW.
6987 Undefine before redefining to avoid a preprocessor warning. */
6988 #ifdef DrawText
6989 #undef DrawText
6990 #endif
6991 /* avoid conflict with QuickdrawText.h */
6992 #define DrawText gif_DrawText
6993 #include <gif_lib.h>
6994 #undef DrawText
6995
6996 #else /* HAVE_NTGUI */
6997
6998 #include <gif_lib.h>
6999
7000 #endif /* HAVE_NTGUI */
7001
7002
7003 #ifdef HAVE_NTGUI
7004
7005 /* GIF library details. */
7006 DEF_IMGLIB_FN (int, DGifCloseFile, (GifFileType *));
7007 DEF_IMGLIB_FN (int, DGifSlurp, (GifFileType *));
7008 DEF_IMGLIB_FN (GifFileType *, DGifOpen, (void *, InputFunc));
7009 DEF_IMGLIB_FN (GifFileType *, DGifOpenFileName, (const char *));
7010
7011 static int
7012 init_gif_functions (Lisp_Object libraries)
7013 {
7014 HMODULE library;
7015
7016 if (!(library = w32_delayed_load (libraries, Qgif)))
7017 return 0;
7018
7019 LOAD_IMGLIB_FN (library, DGifCloseFile);
7020 LOAD_IMGLIB_FN (library, DGifSlurp);
7021 LOAD_IMGLIB_FN (library, DGifOpen);
7022 LOAD_IMGLIB_FN (library, DGifOpenFileName);
7023 return 1;
7024 }
7025
7026 #else
7027
7028 #define fn_DGifCloseFile DGifCloseFile
7029 #define fn_DGifSlurp DGifSlurp
7030 #define fn_DGifOpen DGifOpen
7031 #define fn_DGifOpenFileName DGifOpenFileName
7032
7033 #endif /* HAVE_NTGUI */
7034
7035 /* Reading a GIF image from memory
7036 Based on the PNG memory stuff to a certain extent. */
7037
7038 typedef struct
7039 {
7040 unsigned char *bytes;
7041 size_t len;
7042 int index;
7043 }
7044 gif_memory_source;
7045
7046 /* Make the current memory source available to gif_read_from_memory.
7047 It's done this way because not all versions of libungif support
7048 a UserData field in the GifFileType structure. */
7049 static gif_memory_source *current_gif_memory_src;
7050
7051 static int
7052 gif_read_from_memory (GifFileType *file, GifByteType *buf, int len)
7053 {
7054 gif_memory_source *src = current_gif_memory_src;
7055
7056 if (len > src->len - src->index)
7057 return -1;
7058
7059 memcpy (buf, src->bytes + src->index, len);
7060 src->index += len;
7061 return len;
7062 }
7063
7064
7065 /* Load GIF image IMG for use on frame F. Value is non-zero if
7066 successful. */
7067
7068 static const int interlace_start[] = {0, 4, 2, 1};
7069 static const int interlace_increment[] = {8, 8, 4, 2};
7070
7071 #define GIF_LOCAL_DESCRIPTOR_EXTENSION 249
7072
7073 static int
7074 gif_load (struct frame *f, struct image *img)
7075 {
7076 Lisp_Object file;
7077 int rc, width, height, x, y, i, j;
7078 XImagePtr ximg;
7079 ColorMapObject *gif_color_map;
7080 unsigned long pixel_colors[256];
7081 GifFileType *gif;
7082 int image_height, image_width;
7083 gif_memory_source memsrc;
7084 Lisp_Object specified_bg = image_spec_value (img->spec, QCbackground, NULL);
7085 Lisp_Object specified_file = image_spec_value (img->spec, QCfile, NULL);
7086 Lisp_Object specified_data = image_spec_value (img->spec, QCdata, NULL);
7087 unsigned long bgcolor = 0;
7088 int idx;
7089
7090 if (NILP (specified_data))
7091 {
7092 file = x_find_image_file (specified_file);
7093 if (!STRINGP (file))
7094 {
7095 image_error ("Cannot find image file `%s'", specified_file, Qnil);
7096 return 0;
7097 }
7098
7099 /* Open the GIF file. */
7100 gif = fn_DGifOpenFileName (SSDATA (file));
7101 if (gif == NULL)
7102 {
7103 image_error ("Cannot open `%s'", file, Qnil);
7104 return 0;
7105 }
7106 }
7107 else
7108 {
7109 if (!STRINGP (specified_data))
7110 {
7111 image_error ("Invalid image data `%s'", specified_data, Qnil);
7112 return 0;
7113 }
7114
7115 /* Read from memory! */
7116 current_gif_memory_src = &memsrc;
7117 memsrc.bytes = SDATA (specified_data);
7118 memsrc.len = SBYTES (specified_data);
7119 memsrc.index = 0;
7120
7121 gif = fn_DGifOpen (&memsrc, gif_read_from_memory);
7122 if (!gif)
7123 {
7124 image_error ("Cannot open memory source `%s'", img->spec, Qnil);
7125 return 0;
7126 }
7127 }
7128
7129 /* Before reading entire contents, check the declared image size. */
7130 if (!check_image_size (f, gif->SWidth, gif->SHeight))
7131 {
7132 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
7133 fn_DGifCloseFile (gif);
7134 return 0;
7135 }
7136
7137 /* Read entire contents. */
7138 rc = fn_DGifSlurp (gif);
7139 if (rc == GIF_ERROR || gif->ImageCount <= 0)
7140 {
7141 image_error ("Error reading `%s'", img->spec, Qnil);
7142 fn_DGifCloseFile (gif);
7143 return 0;
7144 }
7145
7146 /* Which sub-image are we to display? */
7147 {
7148 Lisp_Object image_number = image_spec_value (img->spec, QCindex, NULL);
7149 idx = INTEGERP (image_number) ? XFASTINT (image_number) : 0;
7150 if (idx < 0 || idx >= gif->ImageCount)
7151 {
7152 image_error ("Invalid image number `%s' in image `%s'",
7153 image_number, img->spec);
7154 fn_DGifCloseFile (gif);
7155 return 0;
7156 }
7157 }
7158
7159 img->corners[TOP_CORNER] = gif->SavedImages[idx].ImageDesc.Top;
7160 img->corners[LEFT_CORNER] = gif->SavedImages[idx].ImageDesc.Left;
7161 image_height = gif->SavedImages[idx].ImageDesc.Height;
7162 img->corners[BOT_CORNER] = img->corners[TOP_CORNER] + image_height;
7163 image_width = gif->SavedImages[idx].ImageDesc.Width;
7164 img->corners[RIGHT_CORNER] = img->corners[LEFT_CORNER] + image_width;
7165
7166 width = img->width = max (gif->SWidth,
7167 max (gif->Image.Left + gif->Image.Width,
7168 img->corners[RIGHT_CORNER]));
7169 height = img->height = max (gif->SHeight,
7170 max (gif->Image.Top + gif->Image.Height,
7171 img->corners[BOT_CORNER]));
7172
7173 if (!check_image_size (f, width, height))
7174 {
7175 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
7176 fn_DGifCloseFile (gif);
7177 return 0;
7178 }
7179
7180 /* Create the X image and pixmap. */
7181 if (!x_create_x_image_and_pixmap (f, width, height, 0, &ximg, &img->pixmap))
7182 {
7183 fn_DGifCloseFile (gif);
7184 return 0;
7185 }
7186
7187 /* Clear the part of the screen image not covered by the image.
7188 Full animated GIF support requires more here (see the gif89 spec,
7189 disposal methods). Let's simply assume that the part not covered
7190 by a sub-image is in the frame's background color. */
7191 for (y = 0; y < img->corners[TOP_CORNER]; ++y)
7192 for (x = 0; x < width; ++x)
7193 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7194
7195 for (y = img->corners[BOT_CORNER]; y < height; ++y)
7196 for (x = 0; x < width; ++x)
7197 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7198
7199 for (y = img->corners[TOP_CORNER]; y < img->corners[BOT_CORNER]; ++y)
7200 {
7201 for (x = 0; x < img->corners[LEFT_CORNER]; ++x)
7202 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7203 for (x = img->corners[RIGHT_CORNER]; x < width; ++x)
7204 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7205 }
7206
7207 /* Read the GIF image into the X image. */
7208
7209 /* FIXME: With the current implementation, loading an animated gif
7210 is quadratic in the number of animation frames, since each frame
7211 is a separate struct image. We must provide a way for a single
7212 gif_load call to construct and save all animation frames. */
7213
7214 init_color_table ();
7215 if (STRINGP (specified_bg))
7216 bgcolor = x_alloc_image_color (f, img, specified_bg,
7217 FRAME_BACKGROUND_PIXEL (f));
7218 for (j = 0; j <= idx; ++j)
7219 {
7220 /* We use a local variable `raster' here because RasterBits is a
7221 char *, which invites problems with bytes >= 0x80. */
7222 struct SavedImage *subimage = gif->SavedImages + j;
7223 unsigned char *raster = (unsigned char *) subimage->RasterBits;
7224 int transparency_color_index = -1;
7225 int disposal = 0;
7226
7227 /* Find the Graphic Control Extension block for this sub-image.
7228 Extract the disposal method and transparency color. */
7229 for (i = 0; i < subimage->ExtensionBlockCount; i++)
7230 {
7231 ExtensionBlock *extblock = subimage->ExtensionBlocks + i;
7232
7233 if ((extblock->Function == GIF_LOCAL_DESCRIPTOR_EXTENSION)
7234 && extblock->ByteCount == 4
7235 && extblock->Bytes[0] & 1)
7236 {
7237 /* From gif89a spec: 1 = "keep in place", 2 = "restore
7238 to background". Treat any other value like 2. */
7239 disposal = (extblock->Bytes[0] >> 2) & 7;
7240 transparency_color_index = (unsigned char) extblock->Bytes[3];
7241 break;
7242 }
7243 }
7244
7245 /* We can't "keep in place" the first subimage. */
7246 if (j == 0)
7247 disposal = 2;
7248
7249 /* Allocate subimage colors. */
7250 memset (pixel_colors, 0, sizeof pixel_colors);
7251 gif_color_map = subimage->ImageDesc.ColorMap;
7252 if (!gif_color_map)
7253 gif_color_map = gif->SColorMap;
7254
7255 if (gif_color_map)
7256 for (i = 0; i < gif_color_map->ColorCount; ++i)
7257 {
7258 if (transparency_color_index == i)
7259 pixel_colors[i] = STRINGP (specified_bg)
7260 ? bgcolor : FRAME_BACKGROUND_PIXEL (f);
7261 else
7262 {
7263 int r = gif_color_map->Colors[i].Red << 8;
7264 int g = gif_color_map->Colors[i].Green << 8;
7265 int b = gif_color_map->Colors[i].Blue << 8;
7266 pixel_colors[i] = lookup_rgb_color (f, r, g, b);
7267 }
7268 }
7269
7270 /* Apply the pixel values. */
7271 if (gif->SavedImages[j].ImageDesc.Interlace)
7272 {
7273 int row, pass;
7274
7275 for (y = 0, row = interlace_start[0], pass = 0;
7276 y < image_height;
7277 y++, row += interlace_increment[pass])
7278 {
7279 if (row >= image_height)
7280 {
7281 row = interlace_start[++pass];
7282 while (row >= image_height)
7283 row = interlace_start[++pass];
7284 }
7285
7286 for (x = 0; x < image_width; x++)
7287 {
7288 int c = raster[y * image_width + x];
7289 if (transparency_color_index != c || disposal != 1)
7290 XPutPixel (ximg, x + img->corners[LEFT_CORNER],
7291 row + img->corners[TOP_CORNER], pixel_colors[c]);
7292 }
7293 }
7294 }
7295 else
7296 {
7297 for (y = 0; y < image_height; ++y)
7298 for (x = 0; x < image_width; ++x)
7299 {
7300 int c = raster[y * image_width + x];
7301 if (transparency_color_index != c || disposal != 1)
7302 XPutPixel (ximg, x + img->corners[LEFT_CORNER],
7303 y + img->corners[TOP_CORNER], pixel_colors[c]);
7304 }
7305 }
7306 }
7307
7308 #ifdef COLOR_TABLE_SUPPORT
7309 img->colors = colors_in_color_table (&img->ncolors);
7310 free_color_table ();
7311 #endif /* COLOR_TABLE_SUPPORT */
7312
7313 /* Save GIF image extension data for `image-metadata'.
7314 Format is (count IMAGES extension-data (FUNCTION "BYTES" ...)). */
7315 img->lisp_data = Qnil;
7316 if (gif->SavedImages[idx].ExtensionBlockCount > 0)
7317 {
7318 ExtensionBlock *ext = gif->SavedImages[idx].ExtensionBlocks;
7319 for (i = 0; i < gif->SavedImages[idx].ExtensionBlockCount; i++, ext++)
7320 /* Append (... FUNCTION "BYTES") */
7321 img->lisp_data = Fcons (make_unibyte_string (ext->Bytes, ext->ByteCount),
7322 Fcons (make_number (ext->Function),
7323 img->lisp_data));
7324 img->lisp_data = Fcons (Qextension_data,
7325 Fcons (Fnreverse (img->lisp_data),
7326 Qnil));
7327 }
7328 if (gif->ImageCount > 1)
7329 img->lisp_data = Fcons (Qcount,
7330 Fcons (make_number (gif->ImageCount),
7331 img->lisp_data));
7332
7333 fn_DGifCloseFile (gif);
7334
7335 /* Maybe fill in the background field while we have ximg handy. */
7336 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
7337 /* Casting avoids a GCC warning. */
7338 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
7339
7340 /* Put the image into the pixmap, then free the X image and its buffer. */
7341 x_put_x_image (f, ximg, img->pixmap, width, height);
7342 x_destroy_x_image (ximg);
7343
7344 return 1;
7345 }
7346
7347 #else /* !HAVE_GIF */
7348
7349 #ifdef HAVE_NS
7350 static int
7351 gif_load (struct frame *f, struct image *img)
7352 {
7353 return ns_load_image (f, img,
7354 image_spec_value (img->spec, QCfile, NULL),
7355 image_spec_value (img->spec, QCdata, NULL));
7356 }
7357 #endif /* HAVE_NS */
7358
7359 #endif /* HAVE_GIF */
7360
7361
7362 /***********************************************************************
7363 ImageMagick
7364 ***********************************************************************/
7365 #if defined (HAVE_IMAGEMAGICK)
7366
7367 static Lisp_Object Qimagemagick;
7368
7369 static int imagemagick_image_p (Lisp_Object);
7370 static int imagemagick_load (struct frame *, struct image *);
7371 static void imagemagick_clear_image (struct frame *, struct image *);
7372
7373 /* Indices of image specification fields in imagemagick_format. */
7374
7375 enum imagemagick_keyword_index
7376 {
7377 IMAGEMAGICK_TYPE,
7378 IMAGEMAGICK_DATA,
7379 IMAGEMAGICK_FILE,
7380 IMAGEMAGICK_ASCENT,
7381 IMAGEMAGICK_MARGIN,
7382 IMAGEMAGICK_RELIEF,
7383 IMAGEMAGICK_ALGORITHM,
7384 IMAGEMAGICK_HEURISTIC_MASK,
7385 IMAGEMAGICK_MASK,
7386 IMAGEMAGICK_BACKGROUND,
7387 IMAGEMAGICK_HEIGHT,
7388 IMAGEMAGICK_WIDTH,
7389 IMAGEMAGICK_ROTATION,
7390 IMAGEMAGICK_CROP,
7391 IMAGEMAGICK_LAST
7392 };
7393
7394 /* Vector of image_keyword structures describing the format
7395 of valid user-defined image specifications. */
7396
7397 static struct image_keyword imagemagick_format[IMAGEMAGICK_LAST] =
7398 {
7399 {":type", IMAGE_SYMBOL_VALUE, 1},
7400 {":data", IMAGE_STRING_VALUE, 0},
7401 {":file", IMAGE_STRING_VALUE, 0},
7402 {":ascent", IMAGE_ASCENT_VALUE, 0},
7403 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
7404 {":relief", IMAGE_INTEGER_VALUE, 0},
7405 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7406 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7407 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7408 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
7409 {":height", IMAGE_INTEGER_VALUE, 0},
7410 {":width", IMAGE_INTEGER_VALUE, 0},
7411 {":rotation", IMAGE_NUMBER_VALUE, 0},
7412 {":crop", IMAGE_DONT_CHECK_VALUE_TYPE, 0}
7413 };
7414
7415 /* Structure describing the image type for any image handled via
7416 ImageMagick. */
7417
7418 static struct image_type imagemagick_type =
7419 {
7420 &Qimagemagick,
7421 imagemagick_image_p,
7422 imagemagick_load,
7423 imagemagick_clear_image,
7424 NULL
7425 };
7426
7427 /* Free X resources of imagemagick image IMG which is used on frame F. */
7428
7429 static void
7430 imagemagick_clear_image (struct frame *f,
7431 struct image *img)
7432 {
7433 x_clear_image (f, img);
7434 }
7435
7436 /* Return non-zero if OBJECT is a valid IMAGEMAGICK image specification. Do
7437 this by calling parse_image_spec and supplying the keywords that
7438 identify the IMAGEMAGICK format. */
7439
7440 static int
7441 imagemagick_image_p (Lisp_Object object)
7442 {
7443 struct image_keyword fmt[IMAGEMAGICK_LAST];
7444 memcpy (fmt, imagemagick_format, sizeof fmt);
7445
7446 if (!parse_image_spec (object, fmt, IMAGEMAGICK_LAST, Qimagemagick))
7447 return 0;
7448
7449 /* Must specify either the :data or :file keyword. */
7450 return fmt[IMAGEMAGICK_FILE].count + fmt[IMAGEMAGICK_DATA].count == 1;
7451 }
7452
7453 /* The GIF library also defines DrawRectangle, but its never used in Emacs.
7454 Therefore rename the function so it doesnt collide with ImageMagick. */
7455 #define DrawRectangle DrawRectangleGif
7456 #include <wand/MagickWand.h>
7457
7458 /* ImageMagick 6.5.3 through 6.6.5 hid PixelGetMagickColor for some reason.
7459 Emacs seems to work fine with the hidden version, so unhide it. */
7460 #include <magick/version.h>
7461 #if 0x653 <= MagickLibVersion && MagickLibVersion <= 0x665
7462 extern WandExport void PixelGetMagickColor (const PixelWand *,
7463 MagickPixelPacket *);
7464 #endif
7465
7466 /* Helper function for imagemagick_load, which does the actual loading
7467 given contents and size, apart from frame and image structures,
7468 passed from imagemagick_load. Uses librimagemagick to do most of
7469 the image processing.
7470
7471 F is a pointer to the Emacs frame; IMG to the image structure to
7472 prepare; CONTENTS is the string containing the IMAGEMAGICK data to
7473 be parsed; SIZE is the number of bytes of data; and FILENAME is
7474 either the file name or the image data.
7475
7476 Return non-zero if successful. */
7477
7478 static int
7479 imagemagick_load_image (struct frame *f, struct image *img,
7480 unsigned char *contents, unsigned int size,
7481 char *filename)
7482 {
7483 unsigned long width;
7484 unsigned long height;
7485
7486 MagickBooleanType status;
7487
7488 XImagePtr ximg;
7489 int x;
7490 int y;
7491
7492 MagickWand *image_wand;
7493 MagickWand *ping_wand;
7494 PixelIterator *iterator;
7495 PixelWand **pixels;
7496 MagickPixelPacket pixel;
7497 Lisp_Object image;
7498 Lisp_Object value;
7499 Lisp_Object crop;
7500 long ino;
7501 int desired_width, desired_height;
7502 double rotation;
7503 int imagemagick_rendermethod;
7504 int pixelwidth;
7505 ImageInfo *image_info;
7506 ExceptionInfo *exception;
7507 Image * im_image;
7508
7509
7510 /* Handle image index for image types who can contain more than one image.
7511 Interface :index is same as for GIF. First we "ping" the image to see how
7512 many sub-images it contains. Pinging is faster than loading the image to
7513 find out things about it. */
7514
7515 /* Initialize the imagemagick environment. */
7516 MagickWandGenesis ();
7517 image = image_spec_value (img->spec, QCindex, NULL);
7518 ino = INTEGERP (image) ? XFASTINT (image) : 0;
7519 ping_wand = NewMagickWand ();
7520 MagickSetResolution (ping_wand, 2, 2);
7521 if (filename != NULL)
7522 {
7523 status = MagickPingImage (ping_wand, filename);
7524 }
7525 else
7526 {
7527 status = MagickPingImageBlob (ping_wand, contents, size);
7528 }
7529
7530 if (ino >= MagickGetNumberImages (ping_wand))
7531 {
7532 image_error ("Invalid image number `%s' in image `%s'",
7533 image, img->spec);
7534 DestroyMagickWand (ping_wand);
7535 return 0;
7536 }
7537
7538 if (MagickGetNumberImages(ping_wand) > 1)
7539 img->lisp_data =
7540 Fcons (Qcount,
7541 Fcons (make_number (MagickGetNumberImages (ping_wand)),
7542 img->lisp_data));
7543
7544 DestroyMagickWand (ping_wand);
7545
7546 /* Now we know how many images are inside the file. If it's not a
7547 bundle, the number is one. */
7548
7549 if (filename != NULL)
7550 {
7551 image_info = CloneImageInfo ((ImageInfo *) NULL);
7552 (void) strcpy (image_info->filename, filename);
7553 image_info->number_scenes = 1;
7554 image_info->scene = ino;
7555 exception = AcquireExceptionInfo ();
7556
7557 im_image = ReadImage (image_info, exception);
7558 DestroyExceptionInfo (exception);
7559
7560 if (im_image == NULL)
7561 goto imagemagick_no_wand;
7562 image_wand = NewMagickWandFromImage (im_image);
7563 DestroyImage(im_image);
7564 }
7565 else
7566 {
7567 image_wand = NewMagickWand ();
7568 if (MagickReadImageBlob (image_wand, contents, size) == MagickFalse)
7569 goto imagemagick_error;
7570 }
7571
7572 /* If width and/or height is set in the display spec assume we want
7573 to scale to those values. If either h or w is unspecified, the
7574 unspecified should be calculated from the specified to preserve
7575 aspect ratio. */
7576
7577 value = image_spec_value (img->spec, QCwidth, NULL);
7578 desired_width = (INTEGERP (value) ? XFASTINT (value) : -1);
7579 value = image_spec_value (img->spec, QCheight, NULL);
7580 desired_height = (INTEGERP (value) ? XFASTINT (value) : -1);
7581
7582 height = MagickGetImageHeight (image_wand);
7583 width = MagickGetImageWidth (image_wand);
7584
7585 if (desired_width != -1 && desired_height == -1)
7586 /* w known, calculate h. */
7587 desired_height = (double) desired_width / width * height;
7588 if (desired_width == -1 && desired_height != -1)
7589 /* h known, calculate w. */
7590 desired_width = (double) desired_height / height * width;
7591 if (desired_width != -1 && desired_height != -1)
7592 {
7593 status = MagickScaleImage (image_wand, desired_width, desired_height);
7594 if (status == MagickFalse)
7595 {
7596 image_error ("Imagemagick scale failed", Qnil, Qnil);
7597 goto imagemagick_error;
7598 }
7599 }
7600
7601 /* crop behaves similar to image slicing in Emacs but is more memory
7602 efficient. */
7603 crop = image_spec_value (img->spec, QCcrop, NULL);
7604
7605 if (CONSP (crop) && INTEGERP (XCAR (crop)))
7606 {
7607 /* After some testing, it seems MagickCropImage is the fastest crop
7608 function in ImageMagick. This crop function seems to do less copying
7609 than the alternatives, but it still reads the entire image into memory
7610 before croping, which is aparently difficult to avoid when using
7611 imagemagick. */
7612 int w, h;
7613 w = XFASTINT (XCAR (crop));
7614 crop = XCDR (crop);
7615 if (CONSP (crop) && INTEGERP (XCAR (crop)))
7616 {
7617 h = XFASTINT (XCAR (crop));
7618 crop = XCDR (crop);
7619 if (CONSP (crop) && INTEGERP (XCAR (crop)))
7620 {
7621 x = XFASTINT (XCAR (crop));
7622 crop = XCDR (crop);
7623 if (CONSP (crop) && INTEGERP (XCAR (crop)))
7624 {
7625 y = XFASTINT (XCAR (crop));
7626 MagickCropImage (image_wand, w, h, x, y);
7627 }
7628 }
7629 }
7630 }
7631
7632 /* Furthermore :rotation. we need background color and angle for
7633 rotation. */
7634 /*
7635 TODO background handling for rotation specified_bg =
7636 image_spec_value (img->spec, QCbackground, NULL); if (!STRINGP
7637 (specified_bg). */
7638 value = image_spec_value (img->spec, QCrotation, NULL);
7639 if (FLOATP (value))
7640 {
7641 PixelWand* background = NewPixelWand ();
7642 PixelSetColor (background, "#ffffff");/*TODO remove hardcode*/
7643
7644 rotation = extract_float (value);
7645
7646 status = MagickRotateImage (image_wand, background, rotation);
7647 DestroyPixelWand (background);
7648 if (status == MagickFalse)
7649 {
7650 image_error ("Imagemagick image rotate failed", Qnil, Qnil);
7651 goto imagemagick_error;
7652 }
7653 }
7654
7655 /* Finally we are done manipulating the image. Figure out the
7656 resulting width/height and transfer ownerwship to Emacs. */
7657 height = MagickGetImageHeight (image_wand);
7658 width = MagickGetImageWidth (image_wand);
7659
7660 if (! check_image_size (f, width, height))
7661 {
7662 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
7663 goto imagemagick_error;
7664 }
7665
7666 /* We can now get a valid pixel buffer from the imagemagick file, if all
7667 went ok. */
7668
7669 init_color_table ();
7670 imagemagick_rendermethod = (INTEGERP (Vimagemagick_render_type)
7671 ? XFASTINT (Vimagemagick_render_type) : 0);
7672 if (imagemagick_rendermethod == 0)
7673 {
7674 /* Try to create a x pixmap to hold the imagemagick pixmap. */
7675 if (!x_create_x_image_and_pixmap (f, width, height, 0,
7676 &ximg, &img->pixmap))
7677 {
7678 #ifdef COLOR_TABLE_SUPPORT
7679 free_color_table ();
7680 #endif
7681 image_error("Imagemagick X bitmap allocation failure", Qnil, Qnil);
7682 goto imagemagick_error;
7683 }
7684
7685 /* Copy imagegmagick image to x with primitive yet robust pixel
7686 pusher loop. This has been tested a lot with many different
7687 images. */
7688
7689 /* Copy pixels from the imagemagick image structure to the x image map. */
7690 iterator = NewPixelIterator (image_wand);
7691 if (iterator == (PixelIterator *) NULL)
7692 {
7693 #ifdef COLOR_TABLE_SUPPORT
7694 free_color_table ();
7695 #endif
7696 x_destroy_x_image (ximg);
7697 image_error ("Imagemagick pixel iterator creation failed",
7698 Qnil, Qnil);
7699 goto imagemagick_error;
7700 }
7701
7702 for (y = 0; y < (long) MagickGetImageHeight (image_wand); y++)
7703 {
7704 pixels = PixelGetNextIteratorRow (iterator, &width);
7705 if (pixels == (PixelWand **) NULL)
7706 break;
7707 for (x = 0; x < (long) width; x++)
7708 {
7709 PixelGetMagickColor (pixels[x], &pixel);
7710 XPutPixel (ximg, x, y,
7711 lookup_rgb_color (f,
7712 pixel.red,
7713 pixel.green,
7714 pixel.blue));
7715 }
7716 }
7717 DestroyPixelIterator (iterator);
7718 }
7719
7720 if (imagemagick_rendermethod == 1)
7721 {
7722 /* Magicexportimage is normaly faster than pixelpushing. This
7723 method is also well tested. Some aspects of this method are
7724 ad-hoc and needs to be more researched. */
7725 int imagedepth = 24;/*MagickGetImageDepth(image_wand);*/
7726 const char *exportdepth = imagedepth <= 8 ? "I" : "BGRP";/*"RGBP";*/
7727 /* Try to create a x pixmap to hold the imagemagick pixmap. */
7728 if (!x_create_x_image_and_pixmap (f, width, height, imagedepth,
7729 &ximg, &img->pixmap))
7730 {
7731 #ifdef COLOR_TABLE_SUPPORT
7732 free_color_table ();
7733 #endif
7734 image_error("Imagemagick X bitmap allocation failure", Qnil, Qnil);
7735 goto imagemagick_error;
7736 }
7737
7738
7739 /* Oddly, the below code doesnt seem to work:*/
7740 /* switch(ximg->bitmap_unit){ */
7741 /* case 8: */
7742 /* pixelwidth=CharPixel; */
7743 /* break; */
7744 /* case 16: */
7745 /* pixelwidth=ShortPixel; */
7746 /* break; */
7747 /* case 32: */
7748 /* pixelwidth=LongPixel; */
7749 /* break; */
7750 /* } */
7751 /*
7752 Here im just guessing the format of the bitmap.
7753 happens to work fine for:
7754 - bw djvu images
7755 on rgb display.
7756 seems about 3 times as fast as pixel pushing(not carefully measured)
7757 */
7758 pixelwidth = CharPixel;/*??? TODO figure out*/
7759 #ifdef HAVE_MAGICKEXPORTIMAGEPIXELS
7760 MagickExportImagePixels (image_wand,
7761 0, 0,
7762 width, height,
7763 exportdepth,
7764 pixelwidth,
7765 /*&(img->pixmap));*/
7766 ximg->data);
7767 #else
7768 image_error ("You dont have MagickExportImagePixels, upgrade ImageMagick!",
7769 Qnil, Qnil);
7770 #endif
7771 }
7772
7773
7774 #ifdef COLOR_TABLE_SUPPORT
7775 /* Remember colors allocated for this image. */
7776 img->colors = colors_in_color_table (&img->ncolors);
7777 free_color_table ();
7778 #endif /* COLOR_TABLE_SUPPORT */
7779
7780
7781 img->width = width;
7782 img->height = height;
7783
7784 /* Put the image into the pixmap, then free the X image and its
7785 buffer. */
7786 x_put_x_image (f, ximg, img->pixmap, width, height);
7787 x_destroy_x_image (ximg);
7788
7789
7790 /* Final cleanup. image_wand should be the only resource left. */
7791 DestroyMagickWand (image_wand);
7792 /* `MagickWandTerminus' terminates the imagemagick environment. */
7793 MagickWandTerminus ();
7794
7795 return 1;
7796
7797 imagemagick_error:
7798 DestroyMagickWand (image_wand);
7799 imagemagick_no_wand:
7800 MagickWandTerminus ();
7801 /* TODO more cleanup. */
7802 image_error ("Error parsing IMAGEMAGICK image `%s'", img->spec, Qnil);
7803 return 0;
7804 }
7805
7806
7807 /* Load IMAGEMAGICK image IMG for use on frame F. Value is non-zero if
7808 successful. this function will go into the imagemagick_type structure, and
7809 the prototype thus needs to be compatible with that structure. */
7810
7811 static int
7812 imagemagick_load (struct frame *f, struct image *img)
7813 {
7814 int success_p = 0;
7815 Lisp_Object file_name;
7816
7817 /* If IMG->spec specifies a file name, create a non-file spec from it. */
7818 file_name = image_spec_value (img->spec, QCfile, NULL);
7819 if (STRINGP (file_name))
7820 {
7821 Lisp_Object file;
7822
7823 file = x_find_image_file (file_name);
7824 if (!STRINGP (file))
7825 {
7826 image_error ("Cannot find image file `%s'", file_name, Qnil);
7827 return 0;
7828 }
7829 success_p = imagemagick_load_image (f, img, 0, 0, SSDATA (file));
7830 }
7831 /* Else its not a file, its a lisp object. Load the image from a
7832 lisp object rather than a file. */
7833 else
7834 {
7835 Lisp_Object data;
7836
7837 data = image_spec_value (img->spec, QCdata, NULL);
7838 if (!STRINGP (data))
7839 {
7840 image_error ("Invalid image data `%s'", data, Qnil);
7841 return 0;
7842 }
7843 success_p = imagemagick_load_image (f, img, SDATA (data),
7844 SBYTES (data), NULL);
7845 }
7846
7847 return success_p;
7848 }
7849
7850 DEFUN ("imagemagick-types", Fimagemagick_types, Simagemagick_types, 0, 0, 0,
7851 doc: /* Return a list of image types supported by ImageMagick.
7852 Each entry in this list is a symbol named after an ImageMagick format
7853 tag. See the ImageMagick manual for a list of ImageMagick formats and
7854 their descriptions (http://www.imagemagick.org/script/formats.php).
7855
7856 Note that ImageMagick recognizes many file-types that Emacs does not
7857 recognize as images, such as C. See `imagemagick-types-inhibit'. */)
7858 (void)
7859 {
7860 Lisp_Object typelist = Qnil;
7861 unsigned long numf = 0;
7862 ExceptionInfo ex;
7863 char **imtypes = GetMagickList ("*", &numf, &ex);
7864 int i;
7865 Lisp_Object Qimagemagicktype;
7866 for (i = 0; i < numf; i++)
7867 {
7868 Qimagemagicktype = intern (imtypes[i]);
7869 typelist = Fcons (Qimagemagicktype, typelist);
7870 }
7871 return typelist;
7872 }
7873
7874 #endif /* defined (HAVE_IMAGEMAGICK) */
7875
7876
7877 \f
7878 /***********************************************************************
7879 SVG
7880 ***********************************************************************/
7881
7882 #if defined (HAVE_RSVG)
7883
7884 /* Function prototypes. */
7885
7886 static int svg_image_p (Lisp_Object object);
7887 static int svg_load (struct frame *f, struct image *img);
7888
7889 static int svg_load_image (struct frame *, struct image *,
7890 unsigned char *, ptrdiff_t);
7891
7892 /* The symbol `svg' identifying images of this type. */
7893
7894 static Lisp_Object Qsvg;
7895
7896 /* Indices of image specification fields in svg_format, below. */
7897
7898 enum svg_keyword_index
7899 {
7900 SVG_TYPE,
7901 SVG_DATA,
7902 SVG_FILE,
7903 SVG_ASCENT,
7904 SVG_MARGIN,
7905 SVG_RELIEF,
7906 SVG_ALGORITHM,
7907 SVG_HEURISTIC_MASK,
7908 SVG_MASK,
7909 SVG_BACKGROUND,
7910 SVG_LAST
7911 };
7912
7913 /* Vector of image_keyword structures describing the format
7914 of valid user-defined image specifications. */
7915
7916 static const struct image_keyword svg_format[SVG_LAST] =
7917 {
7918 {":type", IMAGE_SYMBOL_VALUE, 1},
7919 {":data", IMAGE_STRING_VALUE, 0},
7920 {":file", IMAGE_STRING_VALUE, 0},
7921 {":ascent", IMAGE_ASCENT_VALUE, 0},
7922 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
7923 {":relief", IMAGE_INTEGER_VALUE, 0},
7924 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7925 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7926 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7927 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
7928 };
7929
7930 /* Structure describing the image type `svg'. Its the same type of
7931 structure defined for all image formats, handled by emacs image
7932 functions. See struct image_type in dispextern.h. */
7933
7934 static struct image_type svg_type =
7935 {
7936 /* An identifier showing that this is an image structure for the SVG format. */
7937 &Qsvg,
7938 /* Handle to a function that can be used to identify a SVG file. */
7939 svg_image_p,
7940 /* Handle to function used to load a SVG file. */
7941 svg_load,
7942 /* Handle to function to free sresources for SVG. */
7943 x_clear_image,
7944 /* An internal field to link to the next image type in a list of
7945 image types, will be filled in when registering the format. */
7946 NULL
7947 };
7948
7949
7950 /* Return non-zero if OBJECT is a valid SVG image specification. Do
7951 this by calling parse_image_spec and supplying the keywords that
7952 identify the SVG format. */
7953
7954 static int
7955 svg_image_p (Lisp_Object object)
7956 {
7957 struct image_keyword fmt[SVG_LAST];
7958 memcpy (fmt, svg_format, sizeof fmt);
7959
7960 if (!parse_image_spec (object, fmt, SVG_LAST, Qsvg))
7961 return 0;
7962
7963 /* Must specify either the :data or :file keyword. */
7964 return fmt[SVG_FILE].count + fmt[SVG_DATA].count == 1;
7965 }
7966
7967 #include <librsvg/rsvg.h>
7968
7969 #ifdef HAVE_NTGUI
7970
7971 /* SVG library functions. */
7972 DEF_IMGLIB_FN (RsvgHandle *, rsvg_handle_new);
7973 DEF_IMGLIB_FN (void, rsvg_handle_get_dimensions);
7974 DEF_IMGLIB_FN (gboolean, rsvg_handle_write);
7975 DEF_IMGLIB_FN (gboolean, rsvg_handle_close);
7976 DEF_IMGLIB_FN (GdkPixbuf *, rsvg_handle_get_pixbuf);
7977
7978 DEF_IMGLIB_FN (int, gdk_pixbuf_get_width);
7979 DEF_IMGLIB_FN (int, gdk_pixbuf_get_height);
7980 DEF_IMGLIB_FN (guchar *, gdk_pixbuf_get_pixels);
7981 DEF_IMGLIB_FN (int, gdk_pixbuf_get_rowstride);
7982 DEF_IMGLIB_FN (GdkColorspace, gdk_pixbuf_get_colorspace);
7983 DEF_IMGLIB_FN (int, gdk_pixbuf_get_n_channels);
7984 DEF_IMGLIB_FN (gboolean, gdk_pixbuf_get_has_alpha);
7985 DEF_IMGLIB_FN (int, gdk_pixbuf_get_bits_per_sample);
7986
7987 DEF_IMGLIB_FN (void, g_type_init);
7988 DEF_IMGLIB_FN (void, g_object_unref);
7989 DEF_IMGLIB_FN (void, g_error_free);
7990
7991 Lisp_Object Qgdk_pixbuf, Qglib, Qgobject;
7992
7993 static int
7994 init_svg_functions (Lisp_Object libraries)
7995 {
7996 HMODULE library, gdklib, glib, gobject;
7997
7998 if (!(glib = w32_delayed_load (libraries, Qglib))
7999 || !(gobject = w32_delayed_load (libraries, Qgobject))
8000 || !(gdklib = w32_delayed_load (libraries, Qgdk_pixbuf))
8001 || !(library = w32_delayed_load (libraries, Qsvg)))
8002 return 0;
8003
8004 LOAD_IMGLIB_FN (library, rsvg_handle_new);
8005 LOAD_IMGLIB_FN (library, rsvg_handle_get_dimensions);
8006 LOAD_IMGLIB_FN (library, rsvg_handle_write);
8007 LOAD_IMGLIB_FN (library, rsvg_handle_close);
8008 LOAD_IMGLIB_FN (library, rsvg_handle_get_pixbuf);
8009
8010 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_width);
8011 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_height);
8012 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_pixels);
8013 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_rowstride);
8014 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_colorspace);
8015 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_n_channels);
8016 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_has_alpha);
8017 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_bits_per_sample);
8018
8019 LOAD_IMGLIB_FN (gobject, g_type_init);
8020 LOAD_IMGLIB_FN (gobject, g_object_unref);
8021 LOAD_IMGLIB_FN (glib, g_error_free);
8022
8023 return 1;
8024 }
8025
8026 #else
8027 /* The following aliases for library functions allow dynamic loading
8028 to be used on some platforms. */
8029 #define fn_rsvg_handle_new rsvg_handle_new
8030 #define fn_rsvg_handle_get_dimensions rsvg_handle_get_dimensions
8031 #define fn_rsvg_handle_write rsvg_handle_write
8032 #define fn_rsvg_handle_close rsvg_handle_close
8033 #define fn_rsvg_handle_get_pixbuf rsvg_handle_get_pixbuf
8034
8035 #define fn_gdk_pixbuf_get_width gdk_pixbuf_get_width
8036 #define fn_gdk_pixbuf_get_height gdk_pixbuf_get_height
8037 #define fn_gdk_pixbuf_get_pixels gdk_pixbuf_get_pixels
8038 #define fn_gdk_pixbuf_get_rowstride gdk_pixbuf_get_rowstride
8039 #define fn_gdk_pixbuf_get_colorspace gdk_pixbuf_get_colorspace
8040 #define fn_gdk_pixbuf_get_n_channels gdk_pixbuf_get_n_channels
8041 #define fn_gdk_pixbuf_get_has_alpha gdk_pixbuf_get_has_alpha
8042 #define fn_gdk_pixbuf_get_bits_per_sample gdk_pixbuf_get_bits_per_sample
8043
8044 #define fn_g_type_init g_type_init
8045 #define fn_g_object_unref g_object_unref
8046 #define fn_g_error_free g_error_free
8047 #endif /* !HAVE_NTGUI */
8048
8049 /* Load SVG image IMG for use on frame F. Value is non-zero if
8050 successful. this function will go into the svg_type structure, and
8051 the prototype thus needs to be compatible with that structure. */
8052
8053 static int
8054 svg_load (struct frame *f, struct image *img)
8055 {
8056 int success_p = 0;
8057 Lisp_Object file_name;
8058
8059 /* If IMG->spec specifies a file name, create a non-file spec from it. */
8060 file_name = image_spec_value (img->spec, QCfile, NULL);
8061 if (STRINGP (file_name))
8062 {
8063 Lisp_Object file;
8064 unsigned char *contents;
8065 ptrdiff_t size;
8066
8067 file = x_find_image_file (file_name);
8068 if (!STRINGP (file))
8069 {
8070 image_error ("Cannot find image file `%s'", file_name, Qnil);
8071 return 0;
8072 }
8073
8074 /* Read the entire file into memory. */
8075 contents = slurp_file (SSDATA (file), &size);
8076 if (contents == NULL)
8077 {
8078 image_error ("Error loading SVG image `%s'", img->spec, Qnil);
8079 return 0;
8080 }
8081 /* If the file was slurped into memory properly, parse it. */
8082 success_p = svg_load_image (f, img, contents, size);
8083 xfree (contents);
8084 }
8085 /* Else its not a file, its a lisp object. Load the image from a
8086 lisp object rather than a file. */
8087 else
8088 {
8089 Lisp_Object data;
8090
8091 data = image_spec_value (img->spec, QCdata, NULL);
8092 if (!STRINGP (data))
8093 {
8094 image_error ("Invalid image data `%s'", data, Qnil);
8095 return 0;
8096 }
8097 success_p = svg_load_image (f, img, SDATA (data), SBYTES (data));
8098 }
8099
8100 return success_p;
8101 }
8102
8103 /* svg_load_image is a helper function for svg_load, which does the
8104 actual loading given contents and size, apart from frame and image
8105 structures, passed from svg_load.
8106
8107 Uses librsvg to do most of the image processing.
8108
8109 Returns non-zero when successful. */
8110 static int
8111 svg_load_image (struct frame *f, /* Pointer to emacs frame structure. */
8112 struct image *img, /* Pointer to emacs image structure. */
8113 unsigned char *contents, /* String containing the SVG XML data to be parsed. */
8114 ptrdiff_t size) /* Size of data in bytes. */
8115 {
8116 RsvgHandle *rsvg_handle;
8117 RsvgDimensionData dimension_data;
8118 GError *err = NULL;
8119 GdkPixbuf *pixbuf;
8120 int width;
8121 int height;
8122 const guint8 *pixels;
8123 int rowstride;
8124 XImagePtr ximg;
8125 Lisp_Object specified_bg;
8126 XColor background;
8127 int x;
8128 int y;
8129
8130 /* g_type_init is a glib function that must be called prior to using
8131 gnome type library functions. */
8132 fn_g_type_init ();
8133 /* Make a handle to a new rsvg object. */
8134 rsvg_handle = fn_rsvg_handle_new ();
8135
8136 /* Parse the contents argument and fill in the rsvg_handle. */
8137 fn_rsvg_handle_write (rsvg_handle, contents, size, &err);
8138 if (err) goto rsvg_error;
8139
8140 /* The parsing is complete, rsvg_handle is ready to used, close it
8141 for further writes. */
8142 fn_rsvg_handle_close (rsvg_handle, &err);
8143 if (err) goto rsvg_error;
8144
8145 fn_rsvg_handle_get_dimensions (rsvg_handle, &dimension_data);
8146 if (! check_image_size (f, dimension_data.width, dimension_data.height))
8147 {
8148 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
8149 goto rsvg_error;
8150 }
8151
8152 /* We can now get a valid pixel buffer from the svg file, if all
8153 went ok. */
8154 pixbuf = fn_rsvg_handle_get_pixbuf (rsvg_handle);
8155 if (!pixbuf) goto rsvg_error;
8156 fn_g_object_unref (rsvg_handle);
8157
8158 /* Extract some meta data from the svg handle. */
8159 width = fn_gdk_pixbuf_get_width (pixbuf);
8160 height = fn_gdk_pixbuf_get_height (pixbuf);
8161 pixels = fn_gdk_pixbuf_get_pixels (pixbuf);
8162 rowstride = fn_gdk_pixbuf_get_rowstride (pixbuf);
8163
8164 /* Validate the svg meta data. */
8165 eassert (fn_gdk_pixbuf_get_colorspace (pixbuf) == GDK_COLORSPACE_RGB);
8166 eassert (fn_gdk_pixbuf_get_n_channels (pixbuf) == 4);
8167 eassert (fn_gdk_pixbuf_get_has_alpha (pixbuf));
8168 eassert (fn_gdk_pixbuf_get_bits_per_sample (pixbuf) == 8);
8169
8170 /* Try to create a x pixmap to hold the svg pixmap. */
8171 if (!x_create_x_image_and_pixmap (f, width, height, 0, &ximg, &img->pixmap))
8172 {
8173 fn_g_object_unref (pixbuf);
8174 return 0;
8175 }
8176
8177 init_color_table ();
8178
8179 /* Handle alpha channel by combining the image with a background
8180 color. */
8181 specified_bg = image_spec_value (img->spec, QCbackground, NULL);
8182 if (!STRINGP (specified_bg)
8183 || !x_defined_color (f, SSDATA (specified_bg), &background, 0))
8184 {
8185 #ifndef HAVE_NS
8186 background.pixel = FRAME_BACKGROUND_PIXEL (f);
8187 x_query_color (f, &background);
8188 #else
8189 ns_query_color (FRAME_BACKGROUND_COLOR (f), &background, 1);
8190 #endif
8191 }
8192
8193 /* SVG pixmaps specify transparency in the last byte, so right
8194 shift 8 bits to get rid of it, since emacs doesn't support
8195 transparency. */
8196 background.red >>= 8;
8197 background.green >>= 8;
8198 background.blue >>= 8;
8199
8200 /* This loop handles opacity values, since Emacs assumes
8201 non-transparent images. Each pixel must be "flattened" by
8202 calculating the resulting color, given the transparency of the
8203 pixel, and the image background color. */
8204 for (y = 0; y < height; ++y)
8205 {
8206 for (x = 0; x < width; ++x)
8207 {
8208 unsigned red;
8209 unsigned green;
8210 unsigned blue;
8211 unsigned opacity;
8212
8213 red = *pixels++;
8214 green = *pixels++;
8215 blue = *pixels++;
8216 opacity = *pixels++;
8217
8218 red = ((red * opacity)
8219 + (background.red * ((1 << 8) - opacity)));
8220 green = ((green * opacity)
8221 + (background.green * ((1 << 8) - opacity)));
8222 blue = ((blue * opacity)
8223 + (background.blue * ((1 << 8) - opacity)));
8224
8225 XPutPixel (ximg, x, y, lookup_rgb_color (f, red, green, blue));
8226 }
8227
8228 pixels += rowstride - 4 * width;
8229 }
8230
8231 #ifdef COLOR_TABLE_SUPPORT
8232 /* Remember colors allocated for this image. */
8233 img->colors = colors_in_color_table (&img->ncolors);
8234 free_color_table ();
8235 #endif /* COLOR_TABLE_SUPPORT */
8236
8237 fn_g_object_unref (pixbuf);
8238
8239 img->width = width;
8240 img->height = height;
8241
8242 /* Maybe fill in the background field while we have ximg handy.
8243 Casting avoids a GCC warning. */
8244 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
8245
8246 /* Put the image into the pixmap, then free the X image and its
8247 buffer. */
8248 x_put_x_image (f, ximg, img->pixmap, width, height);
8249 x_destroy_x_image (ximg);
8250
8251 return 1;
8252
8253 rsvg_error:
8254 fn_g_object_unref (rsvg_handle);
8255 /* FIXME: Use error->message so the user knows what is the actual
8256 problem with the image. */
8257 image_error ("Error parsing SVG image `%s'", img->spec, Qnil);
8258 fn_g_error_free (err);
8259 return 0;
8260 }
8261
8262 #endif /* defined (HAVE_RSVG) */
8263
8264
8265
8266 \f
8267 /***********************************************************************
8268 Ghostscript
8269 ***********************************************************************/
8270
8271 #ifdef HAVE_X_WINDOWS
8272 #define HAVE_GHOSTSCRIPT 1
8273 #endif /* HAVE_X_WINDOWS */
8274
8275 #ifdef HAVE_GHOSTSCRIPT
8276
8277 static int gs_image_p (Lisp_Object object);
8278 static int gs_load (struct frame *f, struct image *img);
8279 static void gs_clear_image (struct frame *f, struct image *img);
8280
8281 /* Keyword symbols. */
8282
8283 static Lisp_Object QCloader, QCbounding_box, QCpt_width, QCpt_height;
8284
8285 /* Indices of image specification fields in gs_format, below. */
8286
8287 enum gs_keyword_index
8288 {
8289 GS_TYPE,
8290 GS_PT_WIDTH,
8291 GS_PT_HEIGHT,
8292 GS_FILE,
8293 GS_LOADER,
8294 GS_BOUNDING_BOX,
8295 GS_ASCENT,
8296 GS_MARGIN,
8297 GS_RELIEF,
8298 GS_ALGORITHM,
8299 GS_HEURISTIC_MASK,
8300 GS_MASK,
8301 GS_BACKGROUND,
8302 GS_LAST
8303 };
8304
8305 /* Vector of image_keyword structures describing the format
8306 of valid user-defined image specifications. */
8307
8308 static const struct image_keyword gs_format[GS_LAST] =
8309 {
8310 {":type", IMAGE_SYMBOL_VALUE, 1},
8311 {":pt-width", IMAGE_POSITIVE_INTEGER_VALUE, 1},
8312 {":pt-height", IMAGE_POSITIVE_INTEGER_VALUE, 1},
8313 {":file", IMAGE_STRING_VALUE, 1},
8314 {":loader", IMAGE_FUNCTION_VALUE, 0},
8315 {":bounding-box", IMAGE_DONT_CHECK_VALUE_TYPE, 1},
8316 {":ascent", IMAGE_ASCENT_VALUE, 0},
8317 {":margin", IMAGE_POSITIVE_INTEGER_VALUE_OR_PAIR, 0},
8318 {":relief", IMAGE_INTEGER_VALUE, 0},
8319 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8320 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8321 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8322 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
8323 };
8324
8325 /* Structure describing the image type `ghostscript'. */
8326
8327 static struct image_type gs_type =
8328 {
8329 &Qpostscript,
8330 gs_image_p,
8331 gs_load,
8332 gs_clear_image,
8333 NULL
8334 };
8335
8336
8337 /* Free X resources of Ghostscript image IMG which is used on frame F. */
8338
8339 static void
8340 gs_clear_image (struct frame *f, struct image *img)
8341 {
8342 x_clear_image (f, img);
8343 }
8344
8345
8346 /* Return non-zero if OBJECT is a valid Ghostscript image
8347 specification. */
8348
8349 static int
8350 gs_image_p (Lisp_Object object)
8351 {
8352 struct image_keyword fmt[GS_LAST];
8353 Lisp_Object tem;
8354 int i;
8355
8356 memcpy (fmt, gs_format, sizeof fmt);
8357
8358 if (!parse_image_spec (object, fmt, GS_LAST, Qpostscript))
8359 return 0;
8360
8361 /* Bounding box must be a list or vector containing 4 integers. */
8362 tem = fmt[GS_BOUNDING_BOX].value;
8363 if (CONSP (tem))
8364 {
8365 for (i = 0; i < 4; ++i, tem = XCDR (tem))
8366 if (!CONSP (tem) || !INTEGERP (XCAR (tem)))
8367 return 0;
8368 if (!NILP (tem))
8369 return 0;
8370 }
8371 else if (VECTORP (tem))
8372 {
8373 if (ASIZE (tem) != 4)
8374 return 0;
8375 for (i = 0; i < 4; ++i)
8376 if (!INTEGERP (XVECTOR (tem)->contents[i]))
8377 return 0;
8378 }
8379 else
8380 return 0;
8381
8382 return 1;
8383 }
8384
8385
8386 /* Load Ghostscript image IMG for use on frame F. Value is non-zero
8387 if successful. */
8388
8389 static int
8390 gs_load (struct frame *f, struct image *img)
8391 {
8392 char buffer[100];
8393 Lisp_Object window_and_pixmap_id = Qnil, loader, pt_height, pt_width;
8394 Lisp_Object frame;
8395 double in_width, in_height;
8396 Lisp_Object pixel_colors = Qnil;
8397
8398 /* Compute pixel size of pixmap needed from the given size in the
8399 image specification. Sizes in the specification are in pt. 1 pt
8400 = 1/72 in, xdpi and ydpi are stored in the frame's X display
8401 info. */
8402 pt_width = image_spec_value (img->spec, QCpt_width, NULL);
8403 in_width = INTEGERP (pt_width) ? XFASTINT (pt_width) / 72.0 : 0;
8404 img->width = in_width * FRAME_X_DISPLAY_INFO (f)->resx;
8405 pt_height = image_spec_value (img->spec, QCpt_height, NULL);
8406 in_height = INTEGERP (pt_height) ? XFASTINT (pt_height) / 72.0 : 0;
8407 img->height = in_height * FRAME_X_DISPLAY_INFO (f)->resy;
8408
8409 if (!check_image_size (f, img->width, img->height))
8410 {
8411 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
8412 return 0;
8413 }
8414
8415 /* Create the pixmap. */
8416 xassert (img->pixmap == NO_PIXMAP);
8417
8418 /* Only W32 version did BLOCK_INPUT here. ++kfs */
8419 BLOCK_INPUT;
8420 img->pixmap = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
8421 img->width, img->height,
8422 DefaultDepthOfScreen (FRAME_X_SCREEN (f)));
8423 UNBLOCK_INPUT;
8424
8425 if (!img->pixmap)
8426 {
8427 image_error ("Unable to create pixmap for `%s'", img->spec, Qnil);
8428 return 0;
8429 }
8430
8431 /* Call the loader to fill the pixmap. It returns a process object
8432 if successful. We do not record_unwind_protect here because
8433 other places in redisplay like calling window scroll functions
8434 don't either. Let the Lisp loader use `unwind-protect' instead. */
8435 sprintf (buffer, "%lu %lu",
8436 (unsigned long) FRAME_X_WINDOW (f),
8437 (unsigned long) img->pixmap);
8438 window_and_pixmap_id = build_string (buffer);
8439
8440 sprintf (buffer, "%lu %lu",
8441 FRAME_FOREGROUND_PIXEL (f),
8442 FRAME_BACKGROUND_PIXEL (f));
8443 pixel_colors = build_string (buffer);
8444
8445 XSETFRAME (frame, f);
8446 loader = image_spec_value (img->spec, QCloader, NULL);
8447 if (NILP (loader))
8448 loader = intern ("gs-load-image");
8449
8450 img->lisp_data = call6 (loader, frame, img->spec,
8451 make_number (img->width),
8452 make_number (img->height),
8453 window_and_pixmap_id,
8454 pixel_colors);
8455 return PROCESSP (img->lisp_data);
8456 }
8457
8458
8459 /* Kill the Ghostscript process that was started to fill PIXMAP on
8460 frame F. Called from XTread_socket when receiving an event
8461 telling Emacs that Ghostscript has finished drawing. */
8462
8463 void
8464 x_kill_gs_process (Pixmap pixmap, struct frame *f)
8465 {
8466 struct image_cache *c = FRAME_IMAGE_CACHE (f);
8467 int class, i;
8468 struct image *img;
8469
8470 /* Find the image containing PIXMAP. */
8471 for (i = 0; i < c->used; ++i)
8472 if (c->images[i]->pixmap == pixmap)
8473 break;
8474
8475 /* Should someone in between have cleared the image cache, for
8476 instance, give up. */
8477 if (i == c->used)
8478 return;
8479
8480 /* Kill the GS process. We should have found PIXMAP in the image
8481 cache and its image should contain a process object. */
8482 img = c->images[i];
8483 xassert (PROCESSP (img->lisp_data));
8484 Fkill_process (img->lisp_data, Qnil);
8485 img->lisp_data = Qnil;
8486
8487 #if defined (HAVE_X_WINDOWS)
8488
8489 /* On displays with a mutable colormap, figure out the colors
8490 allocated for the image by looking at the pixels of an XImage for
8491 img->pixmap. */
8492 class = FRAME_X_VISUAL (f)->class;
8493 if (class != StaticColor && class != StaticGray && class != TrueColor)
8494 {
8495 XImagePtr ximg;
8496
8497 BLOCK_INPUT;
8498
8499 /* Try to get an XImage for img->pixmep. */
8500 ximg = XGetImage (FRAME_X_DISPLAY (f), img->pixmap,
8501 0, 0, img->width, img->height, ~0, ZPixmap);
8502 if (ximg)
8503 {
8504 int x, y;
8505
8506 /* Initialize the color table. */
8507 init_color_table ();
8508
8509 /* For each pixel of the image, look its color up in the
8510 color table. After having done so, the color table will
8511 contain an entry for each color used by the image. */
8512 for (y = 0; y < img->height; ++y)
8513 for (x = 0; x < img->width; ++x)
8514 {
8515 unsigned long pixel = XGetPixel (ximg, x, y);
8516 lookup_pixel_color (f, pixel);
8517 }
8518
8519 /* Record colors in the image. Free color table and XImage. */
8520 #ifdef COLOR_TABLE_SUPPORT
8521 img->colors = colors_in_color_table (&img->ncolors);
8522 free_color_table ();
8523 #endif
8524 XDestroyImage (ximg);
8525
8526 #if 0 /* This doesn't seem to be the case. If we free the colors
8527 here, we get a BadAccess later in x_clear_image when
8528 freeing the colors. */
8529 /* We have allocated colors once, but Ghostscript has also
8530 allocated colors on behalf of us. So, to get the
8531 reference counts right, free them once. */
8532 if (img->ncolors)
8533 x_free_colors (f, img->colors, img->ncolors);
8534 #endif
8535 }
8536 else
8537 image_error ("Cannot get X image of `%s'; colors will not be freed",
8538 img->spec, Qnil);
8539
8540 UNBLOCK_INPUT;
8541 }
8542 #endif /* HAVE_X_WINDOWS */
8543
8544 /* Now that we have the pixmap, compute mask and transform the
8545 image if requested. */
8546 BLOCK_INPUT;
8547 postprocess_image (f, img);
8548 UNBLOCK_INPUT;
8549 }
8550
8551 #endif /* HAVE_GHOSTSCRIPT */
8552
8553 \f
8554 /***********************************************************************
8555 Tests
8556 ***********************************************************************/
8557
8558 #if GLYPH_DEBUG
8559
8560 DEFUN ("imagep", Fimagep, Simagep, 1, 1, 0,
8561 doc: /* Value is non-nil if SPEC is a valid image specification. */)
8562 (Lisp_Object spec)
8563 {
8564 return valid_image_p (spec) ? Qt : Qnil;
8565 }
8566
8567
8568 DEFUN ("lookup-image", Flookup_image, Slookup_image, 1, 1, 0, "")
8569 (Lisp_Object spec)
8570 {
8571 int id = -1;
8572
8573 if (valid_image_p (spec))
8574 id = lookup_image (SELECTED_FRAME (), spec);
8575
8576 debug_print (spec);
8577 return make_number (id);
8578 }
8579
8580 #endif /* GLYPH_DEBUG != 0 */
8581
8582
8583 /***********************************************************************
8584 Initialization
8585 ***********************************************************************/
8586
8587 #ifdef HAVE_NTGUI
8588 /* Image types that rely on external libraries are loaded dynamically
8589 if the library is available. */
8590 #define CHECK_LIB_AVAILABLE(image_type, init_lib_fn, libraries) \
8591 define_image_type (image_type, init_lib_fn (libraries))
8592 #else
8593 #define CHECK_LIB_AVAILABLE(image_type, init_lib_fn, libraries) \
8594 define_image_type (image_type, 1)
8595 #endif /* HAVE_NTGUI */
8596
8597 DEFUN ("init-image-library", Finit_image_library, Sinit_image_library, 2, 2, 0,
8598 doc: /* Initialize image library implementing image type TYPE.
8599 Return non-nil if TYPE is a supported image type.
8600
8601 Image types pbm and xbm are prebuilt; other types are loaded here.
8602 Libraries to load are specified in alist LIBRARIES (usually, the value
8603 of `dynamic-library-alist', which see). */)
8604 (Lisp_Object type, Lisp_Object libraries)
8605 {
8606 #ifdef HAVE_NTGUI
8607 /* Don't try to reload the library. */
8608 Lisp_Object tested = Fassq (type, Vlibrary_cache);
8609 if (CONSP (tested))
8610 return XCDR (tested);
8611 #endif
8612
8613 /* Types pbm and xbm are built-in and always available. */
8614 if (EQ (type, Qpbm) || EQ (type, Qxbm))
8615 return Qt;
8616
8617 #if defined (HAVE_XPM) || defined (HAVE_NS)
8618 if (EQ (type, Qxpm))
8619 return CHECK_LIB_AVAILABLE (&xpm_type, init_xpm_functions, libraries);
8620 #endif
8621
8622 #if defined (HAVE_JPEG) || defined (HAVE_NS)
8623 if (EQ (type, Qjpeg))
8624 return CHECK_LIB_AVAILABLE (&jpeg_type, init_jpeg_functions, libraries);
8625 #endif
8626
8627 #if defined (HAVE_TIFF) || defined (HAVE_NS)
8628 if (EQ (type, Qtiff))
8629 return CHECK_LIB_AVAILABLE (&tiff_type, init_tiff_functions, libraries);
8630 #endif
8631
8632 #if defined (HAVE_GIF) || defined (HAVE_NS)
8633 if (EQ (type, Qgif))
8634 return CHECK_LIB_AVAILABLE (&gif_type, init_gif_functions, libraries);
8635 #endif
8636
8637 #if defined (HAVE_PNG) || defined (HAVE_NS)
8638 if (EQ (type, Qpng))
8639 return CHECK_LIB_AVAILABLE (&png_type, init_png_functions, libraries);
8640 #endif
8641
8642 #if defined (HAVE_RSVG)
8643 if (EQ (type, Qsvg))
8644 return CHECK_LIB_AVAILABLE (&svg_type, init_svg_functions, libraries);
8645 #endif
8646
8647 #if defined (HAVE_IMAGEMAGICK)
8648 if (EQ (type, Qimagemagick))
8649 return CHECK_LIB_AVAILABLE (&imagemagick_type, init_imagemagick_functions,
8650 libraries);
8651 #endif
8652
8653 #ifdef HAVE_GHOSTSCRIPT
8654 if (EQ (type, Qpostscript))
8655 return CHECK_LIB_AVAILABLE (&gs_type, init_gs_functions, libraries);
8656 #endif
8657
8658 /* If the type is not recognized, avoid testing it ever again. */
8659 CACHE_IMAGE_TYPE (type, Qnil);
8660 return Qnil;
8661 }
8662
8663 void
8664 syms_of_image (void)
8665 {
8666 /* Initialize this only once, since that's what we do with Vimage_types
8667 and they are supposed to be in sync. Initializing here gives correct
8668 operation on GNU/Linux of calling dump-emacs after loading some images. */
8669 image_types = NULL;
8670
8671 /* Must be defined now becase we're going to update it below, while
8672 defining the supported image types. */
8673 DEFVAR_LISP ("image-types", Vimage_types,
8674 doc: /* List of potentially supported image types.
8675 Each element of the list is a symbol for an image type, like 'jpeg or 'png.
8676 To check whether it is really supported, use `image-type-available-p'. */);
8677 Vimage_types = Qnil;
8678
8679 DEFVAR_LISP ("max-image-size", Vmax_image_size,
8680 doc: /* Maximum size of images.
8681 Emacs will not load an image into memory if its pixel width or
8682 pixel height exceeds this limit.
8683
8684 If the value is an integer, it directly specifies the maximum
8685 image height and width, measured in pixels. If it is a floating
8686 point number, it specifies the maximum image height and width
8687 as a ratio to the frame height and width. If the value is
8688 non-numeric, there is no explicit limit on the size of images. */);
8689 Vmax_image_size = make_float (MAX_IMAGE_SIZE);
8690
8691 Qpbm = intern_c_string ("pbm");
8692 staticpro (&Qpbm);
8693 ADD_IMAGE_TYPE (Qpbm);
8694
8695 Qxbm = intern_c_string ("xbm");
8696 staticpro (&Qxbm);
8697 ADD_IMAGE_TYPE (Qxbm);
8698
8699 define_image_type (&xbm_type, 1);
8700 define_image_type (&pbm_type, 1);
8701
8702 Qcount = intern_c_string ("count");
8703 staticpro (&Qcount);
8704 Qextension_data = intern_c_string ("extension-data");
8705 staticpro (&Qextension_data);
8706
8707 QCascent = intern_c_string (":ascent");
8708 staticpro (&QCascent);
8709 QCmargin = intern_c_string (":margin");
8710 staticpro (&QCmargin);
8711 QCrelief = intern_c_string (":relief");
8712 staticpro (&QCrelief);
8713 QCconversion = intern_c_string (":conversion");
8714 staticpro (&QCconversion);
8715 QCcolor_symbols = intern_c_string (":color-symbols");
8716 staticpro (&QCcolor_symbols);
8717 QCheuristic_mask = intern_c_string (":heuristic-mask");
8718 staticpro (&QCheuristic_mask);
8719 QCindex = intern_c_string (":index");
8720 staticpro (&QCindex);
8721 QCgeometry = intern_c_string (":geometry");
8722 staticpro (&QCgeometry);
8723 QCcrop = intern_c_string (":crop");
8724 staticpro (&QCcrop);
8725 QCrotation = intern_c_string (":rotation");
8726 staticpro (&QCrotation);
8727 QCmatrix = intern_c_string (":matrix");
8728 staticpro (&QCmatrix);
8729 QCcolor_adjustment = intern_c_string (":color-adjustment");
8730 staticpro (&QCcolor_adjustment);
8731 QCmask = intern_c_string (":mask");
8732 staticpro (&QCmask);
8733
8734 Qlaplace = intern_c_string ("laplace");
8735 staticpro (&Qlaplace);
8736 Qemboss = intern_c_string ("emboss");
8737 staticpro (&Qemboss);
8738 Qedge_detection = intern_c_string ("edge-detection");
8739 staticpro (&Qedge_detection);
8740 Qheuristic = intern_c_string ("heuristic");
8741 staticpro (&Qheuristic);
8742
8743 Qpostscript = intern_c_string ("postscript");
8744 staticpro (&Qpostscript);
8745 #ifdef HAVE_GHOSTSCRIPT
8746 ADD_IMAGE_TYPE (Qpostscript);
8747 QCloader = intern_c_string (":loader");
8748 staticpro (&QCloader);
8749 QCbounding_box = intern_c_string (":bounding-box");
8750 staticpro (&QCbounding_box);
8751 QCpt_width = intern_c_string (":pt-width");
8752 staticpro (&QCpt_width);
8753 QCpt_height = intern_c_string (":pt-height");
8754 staticpro (&QCpt_height);
8755 #endif /* HAVE_GHOSTSCRIPT */
8756
8757 #ifdef HAVE_NTGUI
8758 Qlibpng_version = intern_c_string ("libpng-version");
8759 staticpro (&Qlibpng_version);
8760 Fset (Qlibpng_version,
8761 #if HAVE_PNG
8762 make_number (PNG_LIBPNG_VER)
8763 #else
8764 make_number (-1)
8765 #endif
8766 );
8767 #endif
8768
8769 #if defined (HAVE_XPM) || defined (HAVE_NS)
8770 Qxpm = intern_c_string ("xpm");
8771 staticpro (&Qxpm);
8772 ADD_IMAGE_TYPE (Qxpm);
8773 #endif
8774
8775 #if defined (HAVE_JPEG) || defined (HAVE_NS)
8776 Qjpeg = intern_c_string ("jpeg");
8777 staticpro (&Qjpeg);
8778 ADD_IMAGE_TYPE (Qjpeg);
8779 #endif
8780
8781 #if defined (HAVE_TIFF) || defined (HAVE_NS)
8782 Qtiff = intern_c_string ("tiff");
8783 staticpro (&Qtiff);
8784 ADD_IMAGE_TYPE (Qtiff);
8785 #endif
8786
8787 #if defined (HAVE_GIF) || defined (HAVE_NS)
8788 Qgif = intern_c_string ("gif");
8789 staticpro (&Qgif);
8790 ADD_IMAGE_TYPE (Qgif);
8791 #endif
8792
8793 #if defined (HAVE_PNG) || defined (HAVE_NS)
8794 Qpng = intern_c_string ("png");
8795 staticpro (&Qpng);
8796 ADD_IMAGE_TYPE (Qpng);
8797 #endif
8798
8799 #if defined (HAVE_IMAGEMAGICK)
8800 Qimagemagick = intern_c_string ("imagemagick");
8801 staticpro (&Qimagemagick);
8802 ADD_IMAGE_TYPE (Qimagemagick);
8803 #endif
8804
8805 #if defined (HAVE_RSVG)
8806 Qsvg = intern_c_string ("svg");
8807 staticpro (&Qsvg);
8808 ADD_IMAGE_TYPE (Qsvg);
8809 #ifdef HAVE_NTGUI
8810 /* Other libraries used directly by svg code. */
8811 Qgdk_pixbuf = intern_c_string ("gdk-pixbuf");
8812 staticpro (&Qgdk_pixbuf);
8813 Qglib = intern_c_string ("glib");
8814 staticpro (&Qglib);
8815 Qgobject = intern_c_string ("gobject");
8816 staticpro (&Qgobject);
8817 #endif /* HAVE_NTGUI */
8818 #endif /* HAVE_RSVG */
8819
8820 defsubr (&Sinit_image_library);
8821 #ifdef HAVE_IMAGEMAGICK
8822 defsubr (&Simagemagick_types);
8823 #endif
8824 defsubr (&Sclear_image_cache);
8825 defsubr (&Simage_flush);
8826 defsubr (&Simage_size);
8827 defsubr (&Simage_mask_p);
8828 defsubr (&Simage_metadata);
8829
8830 #if GLYPH_DEBUG
8831 defsubr (&Simagep);
8832 defsubr (&Slookup_image);
8833 #endif
8834
8835 DEFVAR_BOOL ("cross-disabled-images", cross_disabled_images,
8836 doc: /* Non-nil means always draw a cross over disabled images.
8837 Disabled images are those having a `:conversion disabled' property.
8838 A cross is always drawn on black & white displays. */);
8839 cross_disabled_images = 0;
8840
8841 DEFVAR_LISP ("x-bitmap-file-path", Vx_bitmap_file_path,
8842 doc: /* List of directories to search for window system bitmap files. */);
8843 Vx_bitmap_file_path = decode_env_path ((char *) 0, PATH_BITMAPS);
8844
8845 DEFVAR_LISP ("image-cache-eviction-delay", Vimage_cache_eviction_delay,
8846 doc: /* Maximum time after which images are removed from the cache.
8847 When an image has not been displayed this many seconds, Emacs
8848 automatically removes it from the image cache. If the cache contains
8849 a large number of images, the actual eviction time may be shorter.
8850 The value can also be nil, meaning the cache is never cleared.
8851
8852 The function `clear-image-cache' disregards this variable. */);
8853 Vimage_cache_eviction_delay = make_number (300);
8854 #ifdef HAVE_IMAGEMAGICK
8855 DEFVAR_LISP ("imagemagick-render-type", Vimagemagick_render_type,
8856 doc: /* Choose between ImageMagick render methods. */);
8857 #endif
8858
8859 }
8860
8861 void
8862 init_image (void)
8863 {
8864 }