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1 /* Functions for image support on window system.
2
3 Copyright (C) 1989, 1992-2016 Free Software Foundation, Inc.
4
5 This file is part of GNU Emacs.
6
7 GNU Emacs is free software: you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation, either version 3 of the License, or
10 (at your option) any later version.
11
12 GNU Emacs is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include <config.h>
21
22 #include <fcntl.h>
23 #include <stdio.h>
24 #include <unistd.h>
25
26 /* Include this before including <setjmp.h> to work around bugs with
27 older libpng; see Bug#17429. */
28 #if defined HAVE_PNG && !defined HAVE_NS
29 # include <png.h>
30 #endif
31
32 #include <setjmp.h>
33 #include <c-ctype.h>
34
35 #include "lisp.h"
36 #include "frame.h"
37 #include "window.h"
38 #include "buffer.h"
39 #include "dispextern.h"
40 #include "blockinput.h"
41 #include "systime.h"
42 #include <epaths.h>
43 #include "coding.h"
44 #include "termhooks.h"
45 #include "font.h"
46
47 #ifdef HAVE_SYS_STAT_H
48 #include <sys/stat.h>
49 #endif /* HAVE_SYS_STAT_H */
50
51 #ifdef HAVE_SYS_TYPES_H
52 #include <sys/types.h>
53 #endif /* HAVE_SYS_TYPES_H */
54
55 #ifdef HAVE_WINDOW_SYSTEM
56 #include TERM_HEADER
57 #endif /* HAVE_WINDOW_SYSTEM */
58
59 #ifdef HAVE_X_WINDOWS
60 typedef struct x_bitmap_record Bitmap_Record;
61 #define GET_PIXEL(ximg, x, y) XGetPixel (ximg, x, y)
62 #define NO_PIXMAP None
63
64 #define PIX_MASK_RETAIN 0
65 #define PIX_MASK_DRAW 1
66 #endif /* HAVE_X_WINDOWS */
67
68 #ifdef HAVE_NTGUI
69
70 /* We need (or want) w32.h only when we're _not_ compiling for Cygwin. */
71 #ifdef WINDOWSNT
72 # include "w32.h"
73 #endif
74
75 typedef struct w32_bitmap_record Bitmap_Record;
76 #define GET_PIXEL(ximg, x, y) GetPixel (ximg, x, y)
77 #define NO_PIXMAP 0
78
79 #define PIX_MASK_RETAIN 0
80 #define PIX_MASK_DRAW 1
81
82 #define x_defined_color w32_defined_color
83 #define DefaultDepthOfScreen(screen) (one_w32_display_info.n_cbits)
84
85 #endif /* HAVE_NTGUI */
86
87 #ifdef HAVE_NS
88 typedef struct ns_bitmap_record Bitmap_Record;
89
90 #define GET_PIXEL(ximg, x, y) XGetPixel (ximg, x, y)
91 #define NO_PIXMAP 0
92
93 #define PIX_MASK_RETAIN 0
94 #define PIX_MASK_DRAW 1
95
96 #define x_defined_color(f, name, color_def, alloc) \
97 ns_defined_color (f, name, color_def, alloc, 0)
98 #define DefaultDepthOfScreen(screen) x_display_list->n_planes
99 #endif /* HAVE_NS */
100
101 #if (defined HAVE_X_WINDOWS \
102 && ! (defined HAVE_NTGUI || defined USE_CAIRO || defined HAVE_NS))
103 /* W32_TODO : Color tables on W32. */
104 # define COLOR_TABLE_SUPPORT 1
105 #endif
106
107 static void x_disable_image (struct frame *, struct image *);
108 static void x_edge_detection (struct frame *, struct image *, Lisp_Object,
109 Lisp_Object);
110
111 static void init_color_table (void);
112 static unsigned long lookup_rgb_color (struct frame *f, int r, int g, int b);
113 #ifdef COLOR_TABLE_SUPPORT
114 static void free_color_table (void);
115 static unsigned long *colors_in_color_table (int *n);
116 #endif
117
118 /* Code to deal with bitmaps. Bitmaps are referenced by their bitmap
119 id, which is just an int that this section returns. Bitmaps are
120 reference counted so they can be shared among frames.
121
122 Bitmap indices are guaranteed to be > 0, so a negative number can
123 be used to indicate no bitmap.
124
125 If you use x_create_bitmap_from_data, then you must keep track of
126 the bitmaps yourself. That is, creating a bitmap from the same
127 data more than once will not be caught. */
128
129 #ifdef HAVE_NS
130 /* Use with images created by ns_image_for_XPM. */
131 static unsigned long
132 XGetPixel (XImagePtr ximage, int x, int y)
133 {
134 return ns_get_pixel (ximage, x, y);
135 }
136
137 /* Use with images created by ns_image_for_XPM; alpha set to 1;
138 pixel is assumed to be in RGB form. */
139 static void
140 XPutPixel (XImagePtr ximage, int x, int y, unsigned long pixel)
141 {
142 ns_put_pixel (ximage, x, y, pixel);
143 }
144 #endif /* HAVE_NS */
145
146
147 /* Functions to access the contents of a bitmap, given an id. */
148
149 #ifdef HAVE_X_WINDOWS
150 static int
151 x_bitmap_height (struct frame *f, ptrdiff_t id)
152 {
153 return FRAME_DISPLAY_INFO (f)->bitmaps[id - 1].height;
154 }
155
156 static int
157 x_bitmap_width (struct frame *f, ptrdiff_t id)
158 {
159 return FRAME_DISPLAY_INFO (f)->bitmaps[id - 1].width;
160 }
161 #endif
162
163 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
164 ptrdiff_t
165 x_bitmap_pixmap (struct frame *f, ptrdiff_t id)
166 {
167 /* HAVE_NTGUI needs the explicit cast here. */
168 return (ptrdiff_t) FRAME_DISPLAY_INFO (f)->bitmaps[id - 1].pixmap;
169 }
170 #endif
171
172 #ifdef HAVE_X_WINDOWS
173 int
174 x_bitmap_mask (struct frame *f, ptrdiff_t id)
175 {
176 return FRAME_DISPLAY_INFO (f)->bitmaps[id - 1].mask;
177 }
178 #endif
179
180 /* Allocate a new bitmap record. Returns index of new record. */
181
182 static ptrdiff_t
183 x_allocate_bitmap_record (struct frame *f)
184 {
185 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
186 ptrdiff_t i;
187
188 if (dpyinfo->bitmaps_last < dpyinfo->bitmaps_size)
189 return ++dpyinfo->bitmaps_last;
190
191 for (i = 0; i < dpyinfo->bitmaps_size; ++i)
192 if (dpyinfo->bitmaps[i].refcount == 0)
193 return i + 1;
194
195 dpyinfo->bitmaps =
196 xpalloc (dpyinfo->bitmaps, &dpyinfo->bitmaps_size,
197 10, -1, sizeof *dpyinfo->bitmaps);
198 return ++dpyinfo->bitmaps_last;
199 }
200
201 /* Add one reference to the reference count of the bitmap with id ID. */
202
203 void
204 x_reference_bitmap (struct frame *f, ptrdiff_t id)
205 {
206 ++FRAME_DISPLAY_INFO (f)->bitmaps[id - 1].refcount;
207 }
208
209 /* Create a bitmap for frame F from a HEIGHT x WIDTH array of bits at BITS. */
210
211 ptrdiff_t
212 x_create_bitmap_from_data (struct frame *f, char *bits, unsigned int width, unsigned int height)
213 {
214 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
215 ptrdiff_t id;
216
217 #ifdef HAVE_X_WINDOWS
218 Pixmap bitmap;
219 bitmap = XCreateBitmapFromData (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
220 bits, width, height);
221 if (! bitmap)
222 return -1;
223 #endif /* HAVE_X_WINDOWS */
224
225 #ifdef HAVE_NTGUI
226 Pixmap bitmap;
227 bitmap = CreateBitmap (width, height,
228 FRAME_DISPLAY_INFO (XFRAME (frame))->n_planes,
229 FRAME_DISPLAY_INFO (XFRAME (frame))->n_cbits,
230 bits);
231 if (! bitmap)
232 return -1;
233 #endif /* HAVE_NTGUI */
234
235 #ifdef HAVE_NS
236 void *bitmap = ns_image_from_XBM (bits, width, height, 0, 0);
237 if (!bitmap)
238 return -1;
239 #endif
240
241 id = x_allocate_bitmap_record (f);
242
243 #ifdef HAVE_NS
244 dpyinfo->bitmaps[id - 1].img = bitmap;
245 dpyinfo->bitmaps[id - 1].depth = 1;
246 #endif
247
248 dpyinfo->bitmaps[id - 1].file = NULL;
249 dpyinfo->bitmaps[id - 1].height = height;
250 dpyinfo->bitmaps[id - 1].width = width;
251 dpyinfo->bitmaps[id - 1].refcount = 1;
252
253 #ifdef HAVE_X_WINDOWS
254 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
255 dpyinfo->bitmaps[id - 1].have_mask = false;
256 dpyinfo->bitmaps[id - 1].depth = 1;
257 #endif /* HAVE_X_WINDOWS */
258
259 #ifdef HAVE_NTGUI
260 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
261 dpyinfo->bitmaps[id - 1].hinst = NULL;
262 dpyinfo->bitmaps[id - 1].depth = 1;
263 #endif /* HAVE_NTGUI */
264
265 return id;
266 }
267
268 /* Create bitmap from file FILE for frame F. */
269
270 ptrdiff_t
271 x_create_bitmap_from_file (struct frame *f, Lisp_Object file)
272 {
273 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
274
275 #ifdef HAVE_NTGUI
276 return -1; /* W32_TODO : bitmap support */
277 #endif /* HAVE_NTGUI */
278
279 #ifdef HAVE_NS
280 ptrdiff_t id;
281 void *bitmap = ns_image_from_file (file);
282
283 if (!bitmap)
284 return -1;
285
286
287 id = x_allocate_bitmap_record (f);
288 dpyinfo->bitmaps[id - 1].img = bitmap;
289 dpyinfo->bitmaps[id - 1].refcount = 1;
290 dpyinfo->bitmaps[id - 1].file = xlispstrdup (file);
291 dpyinfo->bitmaps[id - 1].depth = 1;
292 dpyinfo->bitmaps[id - 1].height = ns_image_width (bitmap);
293 dpyinfo->bitmaps[id - 1].width = ns_image_height (bitmap);
294 return id;
295 #endif
296
297 #ifdef HAVE_X_WINDOWS
298 unsigned int width, height;
299 Pixmap bitmap;
300 int xhot, yhot, result;
301 ptrdiff_t id;
302 Lisp_Object found;
303 char *filename;
304
305 /* Look for an existing bitmap with the same name. */
306 for (id = 0; id < dpyinfo->bitmaps_last; ++id)
307 {
308 if (dpyinfo->bitmaps[id].refcount
309 && dpyinfo->bitmaps[id].file
310 && !strcmp (dpyinfo->bitmaps[id].file, SSDATA (file)))
311 {
312 ++dpyinfo->bitmaps[id].refcount;
313 return id + 1;
314 }
315 }
316
317 /* Search bitmap-file-path for the file, if appropriate. */
318 if (openp (Vx_bitmap_file_path, file, Qnil, &found,
319 make_number (R_OK), false)
320 < 0)
321 return -1;
322
323 filename = SSDATA (found);
324
325 result = XReadBitmapFile (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
326 filename, &width, &height, &bitmap, &xhot, &yhot);
327 if (result != BitmapSuccess)
328 return -1;
329
330 id = x_allocate_bitmap_record (f);
331 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
332 dpyinfo->bitmaps[id - 1].have_mask = false;
333 dpyinfo->bitmaps[id - 1].refcount = 1;
334 dpyinfo->bitmaps[id - 1].file = xlispstrdup (file);
335 dpyinfo->bitmaps[id - 1].depth = 1;
336 dpyinfo->bitmaps[id - 1].height = height;
337 dpyinfo->bitmaps[id - 1].width = width;
338
339 return id;
340 #endif /* HAVE_X_WINDOWS */
341 }
342
343 /* Free bitmap B. */
344
345 static void
346 free_bitmap_record (Display_Info *dpyinfo, Bitmap_Record *bm)
347 {
348 #ifdef HAVE_X_WINDOWS
349 XFreePixmap (dpyinfo->display, bm->pixmap);
350 if (bm->have_mask)
351 XFreePixmap (dpyinfo->display, bm->mask);
352 #endif /* HAVE_X_WINDOWS */
353
354 #ifdef HAVE_NTGUI
355 DeleteObject (bm->pixmap);
356 #endif /* HAVE_NTGUI */
357
358 #ifdef HAVE_NS
359 ns_release_object (bm->img);
360 #endif
361
362 if (bm->file)
363 {
364 xfree (bm->file);
365 bm->file = NULL;
366 }
367 }
368
369 /* Remove reference to bitmap with id number ID. */
370
371 void
372 x_destroy_bitmap (struct frame *f, ptrdiff_t id)
373 {
374 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
375
376 if (id > 0)
377 {
378 Bitmap_Record *bm = &dpyinfo->bitmaps[id - 1];
379
380 if (--bm->refcount == 0)
381 {
382 block_input ();
383 free_bitmap_record (dpyinfo, bm);
384 unblock_input ();
385 }
386 }
387 }
388
389 /* Free all the bitmaps for the display specified by DPYINFO. */
390
391 void
392 x_destroy_all_bitmaps (Display_Info *dpyinfo)
393 {
394 ptrdiff_t i;
395 Bitmap_Record *bm = dpyinfo->bitmaps;
396
397 for (i = 0; i < dpyinfo->bitmaps_last; i++, bm++)
398 if (bm->refcount > 0)
399 free_bitmap_record (dpyinfo, bm);
400
401 dpyinfo->bitmaps_last = 0;
402 }
403
404 static bool x_create_x_image_and_pixmap (struct frame *, int, int, int,
405 XImagePtr *, Pixmap *);
406 static void x_destroy_x_image (XImagePtr ximg);
407
408 #ifdef HAVE_NTGUI
409 static XImagePtr_or_DC image_get_x_image_or_dc (struct frame *, struct image *,
410 bool, HGDIOBJ *);
411 static void image_unget_x_image_or_dc (struct image *, bool, XImagePtr_or_DC,
412 HGDIOBJ);
413 #else
414 static XImagePtr image_get_x_image (struct frame *, struct image *, bool);
415 static void image_unget_x_image (struct image *, bool, XImagePtr);
416 #define image_get_x_image_or_dc(f, img, mask_p, dummy) \
417 image_get_x_image (f, img, mask_p)
418 #define image_unget_x_image_or_dc(img, mask_p, ximg, dummy) \
419 image_unget_x_image (img, mask_p, ximg)
420 #endif
421
422 #ifdef HAVE_X_WINDOWS
423
424 static void image_sync_to_pixmaps (struct frame *, struct image *);
425
426 /* Useful functions defined in the section
427 `Image type independent image structures' below. */
428
429 static unsigned long four_corners_best (XImagePtr ximg,
430 int *corners,
431 unsigned long width,
432 unsigned long height);
433
434
435 /* Create a mask of a bitmap. Note is this not a perfect mask.
436 It's nicer with some borders in this context */
437
438 void
439 x_create_bitmap_mask (struct frame *f, ptrdiff_t id)
440 {
441 Pixmap pixmap, mask;
442 XImagePtr ximg, mask_img;
443 unsigned long width, height;
444 bool result;
445 unsigned long bg;
446 unsigned long x, y, xp, xm, yp, ym;
447 GC gc;
448
449 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
450
451 if (!(id > 0))
452 return;
453
454 pixmap = x_bitmap_pixmap (f, id);
455 width = x_bitmap_width (f, id);
456 height = x_bitmap_height (f, id);
457
458 block_input ();
459 ximg = XGetImage (FRAME_X_DISPLAY (f), pixmap, 0, 0, width, height,
460 ~0, ZPixmap);
461
462 if (!ximg)
463 {
464 unblock_input ();
465 return;
466 }
467
468 result = x_create_x_image_and_pixmap (f, width, height, 1, &mask_img, &mask);
469
470 unblock_input ();
471 if (!result)
472 {
473 XDestroyImage (ximg);
474 return;
475 }
476
477 bg = four_corners_best (ximg, NULL, width, height);
478
479 for (y = 0; y < ximg->height; ++y)
480 {
481 for (x = 0; x < ximg->width; ++x)
482 {
483 xp = x != ximg->width - 1 ? x + 1 : 0;
484 xm = x != 0 ? x - 1 : ximg->width - 1;
485 yp = y != ximg->height - 1 ? y + 1 : 0;
486 ym = y != 0 ? y - 1 : ximg->height - 1;
487 if (XGetPixel (ximg, x, y) == bg
488 && XGetPixel (ximg, x, yp) == bg
489 && XGetPixel (ximg, x, ym) == bg
490 && XGetPixel (ximg, xp, y) == bg
491 && XGetPixel (ximg, xp, yp) == bg
492 && XGetPixel (ximg, xp, ym) == bg
493 && XGetPixel (ximg, xm, y) == bg
494 && XGetPixel (ximg, xm, yp) == bg
495 && XGetPixel (ximg, xm, ym) == bg)
496 XPutPixel (mask_img, x, y, 0);
497 else
498 XPutPixel (mask_img, x, y, 1);
499 }
500 }
501
502 eassert (input_blocked_p ());
503 gc = XCreateGC (FRAME_X_DISPLAY (f), mask, 0, NULL);
504 XPutImage (FRAME_X_DISPLAY (f), mask, gc, mask_img, 0, 0, 0, 0,
505 width, height);
506 XFreeGC (FRAME_X_DISPLAY (f), gc);
507
508 dpyinfo->bitmaps[id - 1].have_mask = true;
509 dpyinfo->bitmaps[id - 1].mask = mask;
510
511 XDestroyImage (ximg);
512 x_destroy_x_image (mask_img);
513 }
514
515 #endif /* HAVE_X_WINDOWS */
516
517 /***********************************************************************
518 Image types
519 ***********************************************************************/
520
521 /* List of supported image types. Use define_image_type to add new
522 types. Use lookup_image_type to find a type for a given symbol. */
523
524 static struct image_type *image_types;
525
526 /* Forward function prototypes. */
527
528 static struct image_type *lookup_image_type (Lisp_Object);
529 static void x_laplace (struct frame *, struct image *);
530 static void x_emboss (struct frame *, struct image *);
531 static void x_build_heuristic_mask (struct frame *, struct image *,
532 Lisp_Object);
533 #ifdef WINDOWSNT
534 #define CACHE_IMAGE_TYPE(type, status) \
535 do { Vlibrary_cache = Fcons (Fcons (type, status), Vlibrary_cache); } while (0)
536 #else
537 #define CACHE_IMAGE_TYPE(type, status)
538 #endif
539
540 #define ADD_IMAGE_TYPE(type) \
541 do { Vimage_types = Fcons (type, Vimage_types); } while (0)
542
543 /* Define a new image type from TYPE. This adds a copy of TYPE to
544 image_types and caches the loading status of TYPE. */
545
546 static struct image_type *
547 define_image_type (struct image_type *type)
548 {
549 struct image_type *p = NULL;
550 int new_type = type->type;
551 bool type_valid = true;
552
553 block_input ();
554
555 for (p = image_types; p; p = p->next)
556 if (p->type == new_type)
557 goto done;
558
559 if (type->init)
560 {
561 #if defined HAVE_NTGUI && defined WINDOWSNT
562 /* If we failed to load the library before, don't try again. */
563 Lisp_Object tested = Fassq (builtin_lisp_symbol (new_type),
564 Vlibrary_cache);
565 if (CONSP (tested) && NILP (XCDR (tested)))
566 type_valid = false;
567 else
568 #endif
569 {
570 type_valid = type->init ();
571 CACHE_IMAGE_TYPE (builtin_lisp_symbol (new_type),
572 type_valid ? Qt : Qnil);
573 }
574 }
575
576 if (type_valid)
577 {
578 /* Make a copy of TYPE to avoid a bus error in a dumped Emacs.
579 The initialized data segment is read-only. */
580 p = xmalloc (sizeof *p);
581 *p = *type;
582 p->next = image_types;
583 image_types = p;
584 }
585
586 done:
587 unblock_input ();
588 return p;
589 }
590
591
592 /* Value is true if OBJECT is a valid Lisp image specification. A
593 valid image specification is a list whose car is the symbol
594 `image', and whose rest is a property list. The property list must
595 contain a value for key `:type'. That value must be the name of a
596 supported image type. The rest of the property list depends on the
597 image type. */
598
599 bool
600 valid_image_p (Lisp_Object object)
601 {
602 bool valid_p = 0;
603
604 if (IMAGEP (object))
605 {
606 Lisp_Object tem;
607
608 for (tem = XCDR (object); CONSP (tem); tem = XCDR (tem))
609 if (EQ (XCAR (tem), QCtype))
610 {
611 tem = XCDR (tem);
612 if (CONSP (tem) && SYMBOLP (XCAR (tem)))
613 {
614 struct image_type *type;
615 type = lookup_image_type (XCAR (tem));
616 if (type)
617 valid_p = type->valid_p (object);
618 }
619
620 break;
621 }
622 }
623
624 return valid_p;
625 }
626
627
628 /* Log error message with format string FORMAT and trailing arguments.
629 Signaling an error, e.g. when an image cannot be loaded, is not a
630 good idea because this would interrupt redisplay, and the error
631 message display would lead to another redisplay. This function
632 therefore simply displays a message. */
633
634 static void
635 image_error (const char *format, ...)
636 {
637 va_list ap;
638 va_start (ap, format);
639 vadd_to_log (format, ap);
640 va_end (ap);
641 }
642
643 static void
644 image_size_error (void)
645 {
646 image_error ("Invalid image size (see `max-image-size')");
647 }
648
649 \f
650 /***********************************************************************
651 Image specifications
652 ***********************************************************************/
653
654 enum image_value_type
655 {
656 IMAGE_DONT_CHECK_VALUE_TYPE,
657 IMAGE_STRING_VALUE,
658 IMAGE_STRING_OR_NIL_VALUE,
659 IMAGE_SYMBOL_VALUE,
660 IMAGE_POSITIVE_INTEGER_VALUE,
661 IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR,
662 IMAGE_NON_NEGATIVE_INTEGER_VALUE,
663 IMAGE_ASCENT_VALUE,
664 IMAGE_INTEGER_VALUE,
665 IMAGE_FUNCTION_VALUE,
666 IMAGE_NUMBER_VALUE,
667 IMAGE_BOOL_VALUE
668 };
669
670 /* Structure used when parsing image specifications. */
671
672 struct image_keyword
673 {
674 /* Name of keyword. */
675 const char *name;
676
677 /* The type of value allowed. */
678 enum image_value_type type;
679
680 /* True means key must be present. */
681 bool mandatory_p;
682
683 /* Used to recognize duplicate keywords in a property list. */
684 int count;
685
686 /* The value that was found. */
687 Lisp_Object value;
688 };
689
690
691 /* Parse image spec SPEC according to KEYWORDS. A valid image spec
692 has the format (image KEYWORD VALUE ...). One of the keyword/
693 value pairs must be `:type TYPE'. KEYWORDS is a vector of
694 image_keywords structures of size NKEYWORDS describing other
695 allowed keyword/value pairs. Value is true if SPEC is valid. */
696
697 static bool
698 parse_image_spec (Lisp_Object spec, struct image_keyword *keywords,
699 int nkeywords, Lisp_Object type)
700 {
701 int i;
702 Lisp_Object plist;
703
704 if (!IMAGEP (spec))
705 return 0;
706
707 plist = XCDR (spec);
708 while (CONSP (plist))
709 {
710 Lisp_Object key, value;
711
712 /* First element of a pair must be a symbol. */
713 key = XCAR (plist);
714 plist = XCDR (plist);
715 if (!SYMBOLP (key))
716 return 0;
717
718 /* There must follow a value. */
719 if (!CONSP (plist))
720 return 0;
721 value = XCAR (plist);
722 plist = XCDR (plist);
723
724 /* Find key in KEYWORDS. Error if not found. */
725 for (i = 0; i < nkeywords; ++i)
726 if (strcmp (keywords[i].name, SSDATA (SYMBOL_NAME (key))) == 0)
727 break;
728
729 if (i == nkeywords)
730 continue;
731
732 /* Record that we recognized the keyword. If a keywords
733 was found more than once, it's an error. */
734 keywords[i].value = value;
735 if (keywords[i].count > 1)
736 return 0;
737 ++keywords[i].count;
738
739 /* Check type of value against allowed type. */
740 switch (keywords[i].type)
741 {
742 case IMAGE_STRING_VALUE:
743 if (!STRINGP (value))
744 return 0;
745 break;
746
747 case IMAGE_STRING_OR_NIL_VALUE:
748 if (!STRINGP (value) && !NILP (value))
749 return 0;
750 break;
751
752 case IMAGE_SYMBOL_VALUE:
753 if (!SYMBOLP (value))
754 return 0;
755 break;
756
757 case IMAGE_POSITIVE_INTEGER_VALUE:
758 if (! RANGED_INTEGERP (1, value, INT_MAX))
759 return 0;
760 break;
761
762 case IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR:
763 if (RANGED_INTEGERP (0, value, INT_MAX))
764 break;
765 if (CONSP (value)
766 && RANGED_INTEGERP (0, XCAR (value), INT_MAX)
767 && RANGED_INTEGERP (0, XCDR (value), INT_MAX))
768 break;
769 return 0;
770
771 case IMAGE_ASCENT_VALUE:
772 if (SYMBOLP (value) && EQ (value, Qcenter))
773 break;
774 else if (RANGED_INTEGERP (0, value, 100))
775 break;
776 return 0;
777
778 case IMAGE_NON_NEGATIVE_INTEGER_VALUE:
779 /* Unlike the other integer-related cases, this one does not
780 verify that VALUE fits in 'int'. This is because callers
781 want EMACS_INT. */
782 if (!INTEGERP (value) || XINT (value) < 0)
783 return 0;
784 break;
785
786 case IMAGE_DONT_CHECK_VALUE_TYPE:
787 break;
788
789 case IMAGE_FUNCTION_VALUE:
790 value = indirect_function (value);
791 if (!NILP (Ffunctionp (value)))
792 break;
793 return 0;
794
795 case IMAGE_NUMBER_VALUE:
796 if (! NUMBERP (value))
797 return 0;
798 break;
799
800 case IMAGE_INTEGER_VALUE:
801 if (! TYPE_RANGED_INTEGERP (int, value))
802 return 0;
803 break;
804
805 case IMAGE_BOOL_VALUE:
806 if (!NILP (value) && !EQ (value, Qt))
807 return 0;
808 break;
809
810 default:
811 emacs_abort ();
812 break;
813 }
814
815 if (EQ (key, QCtype) && !EQ (type, value))
816 return 0;
817 }
818
819 /* Check that all mandatory fields are present. */
820 for (i = 0; i < nkeywords; ++i)
821 if (keywords[i].mandatory_p && keywords[i].count == 0)
822 return 0;
823
824 return NILP (plist);
825 }
826
827
828 /* Return the value of KEY in image specification SPEC. Value is nil
829 if KEY is not present in SPEC. Set *FOUND depending on whether KEY
830 was found in SPEC. */
831
832 static Lisp_Object
833 image_spec_value (Lisp_Object spec, Lisp_Object key, bool *found)
834 {
835 Lisp_Object tail;
836
837 eassert (valid_image_p (spec));
838
839 for (tail = XCDR (spec);
840 CONSP (tail) && CONSP (XCDR (tail));
841 tail = XCDR (XCDR (tail)))
842 {
843 if (EQ (XCAR (tail), key))
844 {
845 if (found)
846 *found = 1;
847 return XCAR (XCDR (tail));
848 }
849 }
850
851 if (found)
852 *found = 0;
853 return Qnil;
854 }
855
856
857 DEFUN ("image-size", Fimage_size, Simage_size, 1, 3, 0,
858 doc: /* Return the size of image SPEC as pair (WIDTH . HEIGHT).
859 PIXELS non-nil means return the size in pixels, otherwise return the
860 size in canonical character units.
861 FRAME is the frame on which the image will be displayed. FRAME nil
862 or omitted means use the selected frame. */)
863 (Lisp_Object spec, Lisp_Object pixels, Lisp_Object frame)
864 {
865 Lisp_Object size;
866
867 size = Qnil;
868 if (valid_image_p (spec))
869 {
870 struct frame *f = decode_window_system_frame (frame);
871 ptrdiff_t id = lookup_image (f, spec);
872 struct image *img = IMAGE_FROM_ID (f, id);
873 int width = img->width + 2 * img->hmargin;
874 int height = img->height + 2 * img->vmargin;
875
876 if (NILP (pixels))
877 size = Fcons (make_float ((double) width / FRAME_COLUMN_WIDTH (f)),
878 make_float ((double) height / FRAME_LINE_HEIGHT (f)));
879 else
880 size = Fcons (make_number (width), make_number (height));
881 }
882 else
883 error ("Invalid image specification");
884
885 return size;
886 }
887
888
889 DEFUN ("image-mask-p", Fimage_mask_p, Simage_mask_p, 1, 2, 0,
890 doc: /* Return t if image SPEC has a mask bitmap.
891 FRAME is the frame on which the image will be displayed. FRAME nil
892 or omitted means use the selected frame. */)
893 (Lisp_Object spec, Lisp_Object frame)
894 {
895 Lisp_Object mask;
896
897 mask = Qnil;
898 if (valid_image_p (spec))
899 {
900 struct frame *f = decode_window_system_frame (frame);
901 ptrdiff_t id = lookup_image (f, spec);
902 struct image *img = IMAGE_FROM_ID (f, id);
903 if (img->mask)
904 mask = Qt;
905 }
906 else
907 error ("Invalid image specification");
908
909 return mask;
910 }
911
912 DEFUN ("image-metadata", Fimage_metadata, Simage_metadata, 1, 2, 0,
913 doc: /* Return metadata for image SPEC.
914 FRAME is the frame on which the image will be displayed. FRAME nil
915 or omitted means use the selected frame. */)
916 (Lisp_Object spec, Lisp_Object frame)
917 {
918 Lisp_Object ext;
919
920 ext = Qnil;
921 if (valid_image_p (spec))
922 {
923 struct frame *f = decode_window_system_frame (frame);
924 ptrdiff_t id = lookup_image (f, spec);
925 struct image *img = IMAGE_FROM_ID (f, id);
926 ext = img->lisp_data;
927 }
928
929 return ext;
930 }
931
932 \f
933 /***********************************************************************
934 Image type independent image structures
935 ***********************************************************************/
936
937 #define MAX_IMAGE_SIZE 10.0
938 /* Allocate and return a new image structure for image specification
939 SPEC. SPEC has a hash value of HASH. */
940
941 static struct image *
942 make_image (Lisp_Object spec, EMACS_UINT hash)
943 {
944 struct image *img = xzalloc (sizeof *img);
945 Lisp_Object file = image_spec_value (spec, QCfile, NULL);
946
947 eassert (valid_image_p (spec));
948 img->dependencies = NILP (file) ? Qnil : list1 (file);
949 img->type = lookup_image_type (image_spec_value (spec, QCtype, NULL));
950 eassert (img->type != NULL);
951 img->spec = spec;
952 img->lisp_data = Qnil;
953 img->ascent = DEFAULT_IMAGE_ASCENT;
954 img->hash = hash;
955 img->corners[BOT_CORNER] = -1; /* Full image */
956 return img;
957 }
958
959
960 /* Free image IMG which was used on frame F, including its resources. */
961
962 static void
963 free_image (struct frame *f, struct image *img)
964 {
965 if (img)
966 {
967 struct image_cache *c = FRAME_IMAGE_CACHE (f);
968
969 /* Remove IMG from the hash table of its cache. */
970 if (img->prev)
971 img->prev->next = img->next;
972 else
973 c->buckets[img->hash % IMAGE_CACHE_BUCKETS_SIZE] = img->next;
974
975 if (img->next)
976 img->next->prev = img->prev;
977
978 c->images[img->id] = NULL;
979
980 /* Windows NT redefines 'free', but in this file, we need to
981 avoid the redefinition. */
982 #ifdef WINDOWSNT
983 #undef free
984 #endif
985 /* Free resources, then free IMG. */
986 img->type->free (f, img);
987 xfree (img);
988 }
989 }
990
991 /* Return true if the given widths and heights are valid for display. */
992
993 static bool
994 check_image_size (struct frame *f, int width, int height)
995 {
996 int w, h;
997
998 if (width <= 0 || height <= 0)
999 return 0;
1000
1001 if (INTEGERP (Vmax_image_size))
1002 return (width <= XINT (Vmax_image_size)
1003 && height <= XINT (Vmax_image_size));
1004 else if (FLOATP (Vmax_image_size))
1005 {
1006 if (f != NULL)
1007 {
1008 w = FRAME_PIXEL_WIDTH (f);
1009 h = FRAME_PIXEL_HEIGHT (f);
1010 }
1011 else
1012 w = h = 1024; /* Arbitrary size for unknown frame. */
1013 return (width <= XFLOAT_DATA (Vmax_image_size) * w
1014 && height <= XFLOAT_DATA (Vmax_image_size) * h);
1015 }
1016 else
1017 return 1;
1018 }
1019
1020 /* Prepare image IMG for display on frame F. Must be called before
1021 drawing an image. */
1022
1023 void
1024 prepare_image_for_display (struct frame *f, struct image *img)
1025 {
1026 /* We're about to display IMG, so set its timestamp to `now'. */
1027 img->timestamp = current_timespec ();
1028
1029 #ifndef USE_CAIRO
1030 /* If IMG doesn't have a pixmap yet, load it now, using the image
1031 type dependent loader function. */
1032 if (img->pixmap == NO_PIXMAP && !img->load_failed_p)
1033 img->load_failed_p = ! img->type->load (f, img);
1034
1035 #ifdef HAVE_X_WINDOWS
1036 if (!img->load_failed_p)
1037 {
1038 block_input ();
1039 image_sync_to_pixmaps (f, img);
1040 unblock_input ();
1041 }
1042 #endif
1043 #endif
1044 }
1045
1046
1047 /* Value is the number of pixels for the ascent of image IMG when
1048 drawn in face FACE. */
1049
1050 int
1051 image_ascent (struct image *img, struct face *face, struct glyph_slice *slice)
1052 {
1053 int height;
1054 int ascent;
1055
1056 if (slice->height == img->height)
1057 height = img->height + img->vmargin;
1058 else if (slice->y == 0)
1059 height = slice->height + img->vmargin;
1060 else
1061 height = slice->height;
1062
1063 if (img->ascent == CENTERED_IMAGE_ASCENT)
1064 {
1065 if (face->font)
1066 {
1067 #ifdef HAVE_NTGUI
1068 /* W32 specific version. Why?. ++kfs */
1069 ascent = height / 2 - (FONT_DESCENT (face->font)
1070 - FONT_BASE (face->font)) / 2;
1071 #else
1072 /* This expression is arranged so that if the image can't be
1073 exactly centered, it will be moved slightly up. This is
1074 because a typical font is `top-heavy' (due to the presence
1075 uppercase letters), so the image placement should err towards
1076 being top-heavy too. It also just generally looks better. */
1077 ascent = (height + FONT_BASE (face->font)
1078 - FONT_DESCENT (face->font) + 1) / 2;
1079 #endif /* HAVE_NTGUI */
1080 }
1081 else
1082 ascent = height / 2;
1083 }
1084 else
1085 ascent = height * (img->ascent / 100.0);
1086
1087 return ascent;
1088 }
1089
1090 #ifdef USE_CAIRO
1091 static uint32_t
1092 xcolor_to_argb32 (XColor xc)
1093 {
1094 return (0xff << 24) | ((xc.red / 256) << 16)
1095 | ((xc.green / 256) << 8) | (xc.blue / 256);
1096 }
1097
1098 static uint32_t
1099 get_spec_bg_or_alpha_as_argb (struct image *img,
1100 struct frame *f)
1101 {
1102 uint32_t bgcolor = 0;
1103 XColor xbgcolor;
1104 Lisp_Object bg = image_spec_value (img->spec, QCbackground, NULL);
1105
1106 if (STRINGP (bg) && x_parse_color (f, SSDATA (bg), &xbgcolor))
1107 bgcolor = xcolor_to_argb32 (xbgcolor);
1108
1109 return bgcolor;
1110 }
1111
1112 static void
1113 create_cairo_image_surface (struct image *img,
1114 unsigned char *data,
1115 int width,
1116 int height)
1117 {
1118 cairo_surface_t *surface;
1119 cairo_format_t format = CAIRO_FORMAT_ARGB32;
1120 int stride = cairo_format_stride_for_width (format, width);
1121 surface = cairo_image_surface_create_for_data (data,
1122 format,
1123 width,
1124 height,
1125 stride);
1126 img->width = width;
1127 img->height = height;
1128 img->cr_data = surface;
1129 img->cr_data2 = data;
1130 img->pixmap = 0;
1131 }
1132 #endif
1133
1134
1135 \f
1136 /* Image background colors. */
1137
1138 /* Find the "best" corner color of a bitmap.
1139 On W32, XIMG is assumed to a device context with the bitmap selected. */
1140
1141 static RGB_PIXEL_COLOR
1142 four_corners_best (XImagePtr_or_DC ximg, int *corners,
1143 unsigned long width, unsigned long height)
1144 {
1145 RGB_PIXEL_COLOR corner_pixels[4], best IF_LINT (= 0);
1146 int i, best_count;
1147
1148 if (corners && corners[BOT_CORNER] >= 0)
1149 {
1150 /* Get the colors at the corner_pixels of ximg. */
1151 corner_pixels[0] = GET_PIXEL (ximg, corners[LEFT_CORNER], corners[TOP_CORNER]);
1152 corner_pixels[1] = GET_PIXEL (ximg, corners[RIGHT_CORNER] - 1, corners[TOP_CORNER]);
1153 corner_pixels[2] = GET_PIXEL (ximg, corners[RIGHT_CORNER] - 1, corners[BOT_CORNER] - 1);
1154 corner_pixels[3] = GET_PIXEL (ximg, corners[LEFT_CORNER], corners[BOT_CORNER] - 1);
1155 }
1156 else
1157 {
1158 /* Get the colors at the corner_pixels of ximg. */
1159 corner_pixels[0] = GET_PIXEL (ximg, 0, 0);
1160 corner_pixels[1] = GET_PIXEL (ximg, width - 1, 0);
1161 corner_pixels[2] = GET_PIXEL (ximg, width - 1, height - 1);
1162 corner_pixels[3] = GET_PIXEL (ximg, 0, height - 1);
1163 }
1164 /* Choose the most frequently found color as background. */
1165 for (i = best_count = 0; i < 4; ++i)
1166 {
1167 int j, n;
1168
1169 for (j = n = 0; j < 4; ++j)
1170 if (corner_pixels[i] == corner_pixels[j])
1171 ++n;
1172
1173 if (n > best_count)
1174 best = corner_pixels[i], best_count = n;
1175 }
1176
1177 return best;
1178 }
1179
1180 /* Portability macros */
1181
1182 #ifdef HAVE_NTGUI
1183
1184 #define Free_Pixmap(display, pixmap) \
1185 DeleteObject (pixmap)
1186
1187 #elif defined (HAVE_NS)
1188
1189 #define Free_Pixmap(display, pixmap) \
1190 ns_release_object (pixmap)
1191
1192 #else
1193
1194 #define Free_Pixmap(display, pixmap) \
1195 XFreePixmap (display, pixmap)
1196
1197 #endif /* !HAVE_NTGUI && !HAVE_NS */
1198
1199
1200 /* Return the `background' field of IMG. If IMG doesn't have one yet,
1201 it is guessed heuristically. If non-zero, XIMG is an existing
1202 XImage object (or device context with the image selected on W32) to
1203 use for the heuristic. */
1204
1205 RGB_PIXEL_COLOR
1206 image_background (struct image *img, struct frame *f, XImagePtr_or_DC ximg)
1207 {
1208 if (! img->background_valid)
1209 /* IMG doesn't have a background yet, try to guess a reasonable value. */
1210 {
1211 bool free_ximg = !ximg;
1212 #ifdef HAVE_NTGUI
1213 HGDIOBJ prev;
1214 #endif /* HAVE_NTGUI */
1215
1216 if (free_ximg)
1217 ximg = image_get_x_image_or_dc (f, img, 0, &prev);
1218
1219 img->background = four_corners_best (ximg, img->corners, img->width, img->height);
1220
1221 if (free_ximg)
1222 image_unget_x_image_or_dc (img, 0, ximg, prev);
1223
1224 img->background_valid = 1;
1225 }
1226
1227 return img->background;
1228 }
1229
1230 /* Return the `background_transparent' field of IMG. If IMG doesn't
1231 have one yet, it is guessed heuristically. If non-zero, MASK is an
1232 existing XImage object to use for the heuristic. */
1233
1234 int
1235 image_background_transparent (struct image *img, struct frame *f, XImagePtr_or_DC mask)
1236 {
1237 if (! img->background_transparent_valid)
1238 /* IMG doesn't have a background yet, try to guess a reasonable value. */
1239 {
1240 if (img->mask)
1241 {
1242 bool free_mask = !mask;
1243 #ifdef HAVE_NTGUI
1244 HGDIOBJ prev;
1245 #endif /* HAVE_NTGUI */
1246
1247 if (free_mask)
1248 mask = image_get_x_image_or_dc (f, img, 1, &prev);
1249
1250 img->background_transparent
1251 = (four_corners_best (mask, img->corners, img->width, img->height) == PIX_MASK_RETAIN);
1252
1253 if (free_mask)
1254 image_unget_x_image_or_dc (img, 1, mask, prev);
1255 }
1256 else
1257 img->background_transparent = 0;
1258
1259 img->background_transparent_valid = 1;
1260 }
1261
1262 return img->background_transparent;
1263 }
1264
1265 #if defined (HAVE_PNG) || defined (HAVE_NS) \
1266 || defined (HAVE_IMAGEMAGICK) || defined (HAVE_RSVG)
1267
1268 /* Store F's background color into *BGCOLOR. */
1269 static void
1270 x_query_frame_background_color (struct frame *f, XColor *bgcolor)
1271 {
1272 #ifndef HAVE_NS
1273 bgcolor->pixel = FRAME_BACKGROUND_PIXEL (f);
1274 x_query_color (f, bgcolor);
1275 #else
1276 ns_query_color (FRAME_BACKGROUND_COLOR (f), bgcolor, 1);
1277 #endif
1278 }
1279
1280 #endif /* HAVE_PNG || HAVE_NS || HAVE_IMAGEMAGICK || HAVE_RSVG */
1281
1282 /***********************************************************************
1283 Helper functions for X image types
1284 ***********************************************************************/
1285
1286 /* Clear X resources of image IMG on frame F according to FLAGS.
1287 FLAGS is bitwise-or of the following masks:
1288 CLEAR_IMAGE_PIXMAP free the pixmap if any.
1289 CLEAR_IMAGE_MASK means clear the mask pixmap if any.
1290 CLEAR_IMAGE_COLORS means free colors allocated for the image, if
1291 any. */
1292
1293 #define CLEAR_IMAGE_PIXMAP (1 << 0)
1294 #define CLEAR_IMAGE_MASK (1 << 1)
1295 #define CLEAR_IMAGE_COLORS (1 << 2)
1296
1297 static void
1298 x_clear_image_1 (struct frame *f, struct image *img, int flags)
1299 {
1300 if (flags & CLEAR_IMAGE_PIXMAP)
1301 {
1302 if (img->pixmap)
1303 {
1304 Free_Pixmap (FRAME_X_DISPLAY (f), img->pixmap);
1305 img->pixmap = NO_PIXMAP;
1306 /* NOTE (HAVE_NS): background color is NOT an indexed color! */
1307 img->background_valid = 0;
1308 }
1309 #ifdef HAVE_X_WINDOWS
1310 if (img->ximg)
1311 {
1312 x_destroy_x_image (img->ximg);
1313 img->ximg = NULL;
1314 img->background_valid = 0;
1315 }
1316 #endif
1317 }
1318
1319 if (flags & CLEAR_IMAGE_MASK)
1320 {
1321 if (img->mask)
1322 {
1323 Free_Pixmap (FRAME_X_DISPLAY (f), img->mask);
1324 img->mask = NO_PIXMAP;
1325 img->background_transparent_valid = 0;
1326 }
1327 #ifdef HAVE_X_WINDOWS
1328 if (img->mask_img)
1329 {
1330 x_destroy_x_image (img->mask_img);
1331 img->mask_img = NULL;
1332 img->background_transparent_valid = 0;
1333 }
1334 #endif
1335 }
1336
1337 if ((flags & CLEAR_IMAGE_COLORS) && img->ncolors)
1338 {
1339 /* W32_TODO: color table support. */
1340 #ifdef HAVE_X_WINDOWS
1341 x_free_colors (f, img->colors, img->ncolors);
1342 #endif /* HAVE_X_WINDOWS */
1343 xfree (img->colors);
1344 img->colors = NULL;
1345 img->ncolors = 0;
1346 }
1347
1348 }
1349
1350 /* Free X resources of image IMG which is used on frame F. */
1351
1352 static void
1353 x_clear_image (struct frame *f, struct image *img)
1354 {
1355 block_input ();
1356 #ifdef USE_CAIRO
1357 if (img->cr_data)
1358 cairo_surface_destroy ((cairo_surface_t *)img->cr_data);
1359 if (img->cr_data2) xfree (img->cr_data2);
1360 #endif
1361 x_clear_image_1 (f, img,
1362 CLEAR_IMAGE_PIXMAP | CLEAR_IMAGE_MASK | CLEAR_IMAGE_COLORS);
1363 unblock_input ();
1364 }
1365
1366
1367 /* Allocate color COLOR_NAME for image IMG on frame F. If color
1368 cannot be allocated, use DFLT. Add a newly allocated color to
1369 IMG->colors, so that it can be freed again. Value is the pixel
1370 color. */
1371
1372 static unsigned long
1373 x_alloc_image_color (struct frame *f, struct image *img, Lisp_Object color_name,
1374 unsigned long dflt)
1375 {
1376 XColor color;
1377 unsigned long result;
1378
1379 eassert (STRINGP (color_name));
1380
1381 if (x_defined_color (f, SSDATA (color_name), &color, 1)
1382 && img->ncolors < min (min (PTRDIFF_MAX, SIZE_MAX) / sizeof *img->colors,
1383 INT_MAX))
1384 {
1385 /* This isn't called frequently so we get away with simply
1386 reallocating the color vector to the needed size, here. */
1387 ptrdiff_t ncolors = img->ncolors + 1;
1388 img->colors = xrealloc (img->colors, ncolors * sizeof *img->colors);
1389 img->colors[ncolors - 1] = color.pixel;
1390 img->ncolors = ncolors;
1391 result = color.pixel;
1392 }
1393 else
1394 result = dflt;
1395
1396 return result;
1397 }
1398
1399
1400 \f
1401 /***********************************************************************
1402 Image Cache
1403 ***********************************************************************/
1404
1405 static void cache_image (struct frame *f, struct image *img);
1406
1407 /* Return a new, initialized image cache that is allocated from the
1408 heap. Call free_image_cache to free an image cache. */
1409
1410 struct image_cache *
1411 make_image_cache (void)
1412 {
1413 struct image_cache *c = xmalloc (sizeof *c);
1414
1415 c->size = 50;
1416 c->used = c->refcount = 0;
1417 c->images = xmalloc (c->size * sizeof *c->images);
1418 c->buckets = xzalloc (IMAGE_CACHE_BUCKETS_SIZE * sizeof *c->buckets);
1419 return c;
1420 }
1421
1422
1423 /* Find an image matching SPEC in the cache, and return it. If no
1424 image is found, return NULL. */
1425 static struct image *
1426 search_image_cache (struct frame *f, Lisp_Object spec, EMACS_UINT hash)
1427 {
1428 struct image *img;
1429 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1430 int i = hash % IMAGE_CACHE_BUCKETS_SIZE;
1431
1432 if (!c) return NULL;
1433
1434 /* If the image spec does not specify a background color, the cached
1435 image must have the same background color as the current frame.
1436 The foreground color must also match, for the sake of monochrome
1437 images.
1438
1439 In fact, we could ignore the foreground color matching condition
1440 for color images, or if the image spec specifies :foreground;
1441 similarly we could ignore the background color matching condition
1442 for formats that don't use transparency (such as jpeg), or if the
1443 image spec specifies :background. However, the extra memory
1444 usage is probably negligible in practice, so we don't bother. */
1445
1446 for (img = c->buckets[i]; img; img = img->next)
1447 if (img->hash == hash
1448 && !NILP (Fequal (img->spec, spec))
1449 && img->frame_foreground == FRAME_FOREGROUND_PIXEL (f)
1450 && img->frame_background == FRAME_BACKGROUND_PIXEL (f))
1451 break;
1452 return img;
1453 }
1454
1455
1456 /* Search frame F for an image with spec SPEC, and free it. */
1457
1458 static void
1459 uncache_image (struct frame *f, Lisp_Object spec)
1460 {
1461 struct image *img = search_image_cache (f, spec, sxhash (spec, 0));
1462 if (img)
1463 {
1464 free_image (f, img);
1465 /* As display glyphs may still be referring to the image ID, we
1466 must garbage the frame (Bug#6426). */
1467 SET_FRAME_GARBAGED (f);
1468 }
1469 }
1470
1471
1472 /* Free image cache of frame F. Be aware that X frames share images
1473 caches. */
1474
1475 void
1476 free_image_cache (struct frame *f)
1477 {
1478 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1479 if (c)
1480 {
1481 ptrdiff_t i;
1482
1483 /* Cache should not be referenced by any frame when freed. */
1484 eassert (c->refcount == 0);
1485
1486 for (i = 0; i < c->used; ++i)
1487 free_image (f, c->images[i]);
1488 xfree (c->images);
1489 xfree (c->buckets);
1490 xfree (c);
1491 FRAME_IMAGE_CACHE (f) = NULL;
1492 }
1493 }
1494
1495
1496 /* Clear image cache of frame F. FILTER=t means free all images.
1497 FILTER=nil means clear only images that haven't been
1498 displayed for some time.
1499 Else, only free the images which have FILTER in their `dependencies'.
1500 Should be called from time to time to reduce the number of loaded images.
1501 If image-cache-eviction-delay is non-nil, this frees images in the cache
1502 which weren't displayed for at least that many seconds. */
1503
1504 static void
1505 clear_image_cache (struct frame *f, Lisp_Object filter)
1506 {
1507 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1508
1509 if (c)
1510 {
1511 ptrdiff_t i, nfreed = 0;
1512
1513 /* Block input so that we won't be interrupted by a SIGIO
1514 while being in an inconsistent state. */
1515 block_input ();
1516
1517 if (!NILP (filter))
1518 {
1519 /* Filter image cache. */
1520 for (i = 0; i < c->used; ++i)
1521 {
1522 struct image *img = c->images[i];
1523 if (img && (EQ (Qt, filter)
1524 || !NILP (Fmember (filter, img->dependencies))))
1525 {
1526 free_image (f, img);
1527 ++nfreed;
1528 }
1529 }
1530 }
1531 else if (INTEGERP (Vimage_cache_eviction_delay))
1532 {
1533 /* Free cache based on timestamp. */
1534 struct timespec old, t;
1535 double delay;
1536 ptrdiff_t nimages = 0;
1537
1538 for (i = 0; i < c->used; ++i)
1539 if (c->images[i])
1540 nimages++;
1541
1542 /* If the number of cached images has grown unusually large,
1543 decrease the cache eviction delay (Bug#6230). */
1544 delay = XINT (Vimage_cache_eviction_delay);
1545 if (nimages > 40)
1546 delay = 1600 * delay / nimages / nimages;
1547 delay = max (delay, 1);
1548
1549 t = current_timespec ();
1550 old = timespec_sub (t, dtotimespec (delay));
1551
1552 for (i = 0; i < c->used; ++i)
1553 {
1554 struct image *img = c->images[i];
1555 if (img && timespec_cmp (img->timestamp, old) < 0)
1556 {
1557 free_image (f, img);
1558 ++nfreed;
1559 }
1560 }
1561 }
1562
1563 /* We may be clearing the image cache because, for example,
1564 Emacs was iconified for a longer period of time. In that
1565 case, current matrices may still contain references to
1566 images freed above. So, clear these matrices. */
1567 if (nfreed)
1568 {
1569 Lisp_Object tail, frame;
1570
1571 FOR_EACH_FRAME (tail, frame)
1572 {
1573 struct frame *fr = XFRAME (frame);
1574 if (FRAME_IMAGE_CACHE (fr) == c)
1575 clear_current_matrices (fr);
1576 }
1577
1578 windows_or_buffers_changed = 19;
1579 }
1580
1581 unblock_input ();
1582 }
1583 }
1584
1585 void
1586 clear_image_caches (Lisp_Object filter)
1587 {
1588 /* FIXME: We want to do
1589 * struct terminal *t;
1590 * for (t = terminal_list; t; t = t->next_terminal)
1591 * clear_image_cache (t, filter); */
1592 Lisp_Object tail, frame;
1593 FOR_EACH_FRAME (tail, frame)
1594 if (FRAME_WINDOW_P (XFRAME (frame)))
1595 clear_image_cache (XFRAME (frame), filter);
1596 }
1597
1598 DEFUN ("clear-image-cache", Fclear_image_cache, Sclear_image_cache,
1599 0, 1, 0,
1600 doc: /* Clear the image cache.
1601 FILTER nil or a frame means clear all images in the selected frame.
1602 FILTER t means clear the image caches of all frames.
1603 Anything else, means only clear those images which refer to FILTER,
1604 which is then usually a filename. */)
1605 (Lisp_Object filter)
1606 {
1607 if (!(EQ (filter, Qnil) || FRAMEP (filter)))
1608 clear_image_caches (filter);
1609 else
1610 clear_image_cache (decode_window_system_frame (filter), Qt);
1611
1612 return Qnil;
1613 }
1614
1615
1616 DEFUN ("image-flush", Fimage_flush, Simage_flush,
1617 1, 2, 0,
1618 doc: /* Flush the image with specification SPEC on frame FRAME.
1619 This removes the image from the Emacs image cache. If SPEC specifies
1620 an image file, the next redisplay of this image will read from the
1621 current contents of that file.
1622
1623 FRAME nil or omitted means use the selected frame.
1624 FRAME t means refresh the image on all frames. */)
1625 (Lisp_Object spec, Lisp_Object frame)
1626 {
1627 if (!valid_image_p (spec))
1628 error ("Invalid image specification");
1629
1630 if (EQ (frame, Qt))
1631 {
1632 Lisp_Object tail;
1633 FOR_EACH_FRAME (tail, frame)
1634 {
1635 struct frame *f = XFRAME (frame);
1636 if (FRAME_WINDOW_P (f))
1637 uncache_image (f, spec);
1638 }
1639 }
1640 else
1641 uncache_image (decode_window_system_frame (frame), spec);
1642
1643 return Qnil;
1644 }
1645
1646
1647 /* Compute masks and transform image IMG on frame F, as specified
1648 by the image's specification, */
1649
1650 static void
1651 postprocess_image (struct frame *f, struct image *img)
1652 {
1653 /* Manipulation of the image's mask. */
1654 if (img->pixmap)
1655 {
1656 Lisp_Object conversion, spec;
1657 Lisp_Object mask;
1658
1659 spec = img->spec;
1660
1661 /* `:heuristic-mask t'
1662 `:mask heuristic'
1663 means build a mask heuristically.
1664 `:heuristic-mask (R G B)'
1665 `:mask (heuristic (R G B))'
1666 means build a mask from color (R G B) in the
1667 image.
1668 `:mask nil'
1669 means remove a mask, if any. */
1670
1671 mask = image_spec_value (spec, QCheuristic_mask, NULL);
1672 if (!NILP (mask))
1673 x_build_heuristic_mask (f, img, mask);
1674 else
1675 {
1676 bool found_p;
1677
1678 mask = image_spec_value (spec, QCmask, &found_p);
1679
1680 if (EQ (mask, Qheuristic))
1681 x_build_heuristic_mask (f, img, Qt);
1682 else if (CONSP (mask)
1683 && EQ (XCAR (mask), Qheuristic))
1684 {
1685 if (CONSP (XCDR (mask)))
1686 x_build_heuristic_mask (f, img, XCAR (XCDR (mask)));
1687 else
1688 x_build_heuristic_mask (f, img, XCDR (mask));
1689 }
1690 else if (NILP (mask) && found_p && img->mask)
1691 x_clear_image_1 (f, img, CLEAR_IMAGE_MASK);
1692 }
1693
1694
1695 /* Should we apply an image transformation algorithm? */
1696 conversion = image_spec_value (spec, QCconversion, NULL);
1697 if (EQ (conversion, Qdisabled))
1698 x_disable_image (f, img);
1699 else if (EQ (conversion, Qlaplace))
1700 x_laplace (f, img);
1701 else if (EQ (conversion, Qemboss))
1702 x_emboss (f, img);
1703 else if (CONSP (conversion)
1704 && EQ (XCAR (conversion), Qedge_detection))
1705 {
1706 Lisp_Object tem;
1707 tem = XCDR (conversion);
1708 if (CONSP (tem))
1709 x_edge_detection (f, img,
1710 Fplist_get (tem, QCmatrix),
1711 Fplist_get (tem, QCcolor_adjustment));
1712 }
1713 }
1714 }
1715
1716
1717 /* Return the id of image with Lisp specification SPEC on frame F.
1718 SPEC must be a valid Lisp image specification (see valid_image_p). */
1719
1720 ptrdiff_t
1721 lookup_image (struct frame *f, Lisp_Object spec)
1722 {
1723 struct image *img;
1724 EMACS_UINT hash;
1725
1726 /* F must be a window-system frame, and SPEC must be a valid image
1727 specification. */
1728 eassert (FRAME_WINDOW_P (f));
1729 eassert (valid_image_p (spec));
1730
1731 /* Look up SPEC in the hash table of the image cache. */
1732 hash = sxhash (spec, 0);
1733 img = search_image_cache (f, spec, hash);
1734 if (img && img->load_failed_p)
1735 {
1736 free_image (f, img);
1737 img = NULL;
1738 }
1739
1740 /* If not found, create a new image and cache it. */
1741 if (img == NULL)
1742 {
1743 block_input ();
1744 img = make_image (spec, hash);
1745 cache_image (f, img);
1746 img->load_failed_p = ! img->type->load (f, img);
1747 img->frame_foreground = FRAME_FOREGROUND_PIXEL (f);
1748 img->frame_background = FRAME_BACKGROUND_PIXEL (f);
1749
1750 /* If we can't load the image, and we don't have a width and
1751 height, use some arbitrary width and height so that we can
1752 draw a rectangle for it. */
1753 if (img->load_failed_p)
1754 {
1755 Lisp_Object value;
1756
1757 value = image_spec_value (spec, QCwidth, NULL);
1758 img->width = (INTEGERP (value)
1759 ? XFASTINT (value) : DEFAULT_IMAGE_WIDTH);
1760 value = image_spec_value (spec, QCheight, NULL);
1761 img->height = (INTEGERP (value)
1762 ? XFASTINT (value) : DEFAULT_IMAGE_HEIGHT);
1763 }
1764 else
1765 {
1766 /* Handle image type independent image attributes
1767 `:ascent ASCENT', `:margin MARGIN', `:relief RELIEF',
1768 `:background COLOR'. */
1769 Lisp_Object ascent, margin, relief, bg;
1770 int relief_bound;
1771
1772 ascent = image_spec_value (spec, QCascent, NULL);
1773 if (INTEGERP (ascent))
1774 img->ascent = XFASTINT (ascent);
1775 else if (EQ (ascent, Qcenter))
1776 img->ascent = CENTERED_IMAGE_ASCENT;
1777
1778 margin = image_spec_value (spec, QCmargin, NULL);
1779 if (INTEGERP (margin))
1780 img->vmargin = img->hmargin = XFASTINT (margin);
1781 else if (CONSP (margin))
1782 {
1783 img->hmargin = XFASTINT (XCAR (margin));
1784 img->vmargin = XFASTINT (XCDR (margin));
1785 }
1786
1787 relief = image_spec_value (spec, QCrelief, NULL);
1788 relief_bound = INT_MAX - max (img->hmargin, img->vmargin);
1789 if (RANGED_INTEGERP (- relief_bound, relief, relief_bound))
1790 {
1791 img->relief = XINT (relief);
1792 img->hmargin += eabs (img->relief);
1793 img->vmargin += eabs (img->relief);
1794 }
1795
1796 if (! img->background_valid)
1797 {
1798 bg = image_spec_value (img->spec, QCbackground, NULL);
1799 if (!NILP (bg))
1800 {
1801 img->background
1802 = x_alloc_image_color (f, img, bg,
1803 FRAME_BACKGROUND_PIXEL (f));
1804 img->background_valid = 1;
1805 }
1806 }
1807
1808 /* Do image transformations and compute masks, unless we
1809 don't have the image yet. */
1810 if (!EQ (builtin_lisp_symbol (img->type->type), Qpostscript))
1811 postprocess_image (f, img);
1812 }
1813
1814 unblock_input ();
1815 }
1816
1817 /* We're using IMG, so set its timestamp to `now'. */
1818 img->timestamp = current_timespec ();
1819
1820 /* Value is the image id. */
1821 return img->id;
1822 }
1823
1824
1825 /* Cache image IMG in the image cache of frame F. */
1826
1827 static void
1828 cache_image (struct frame *f, struct image *img)
1829 {
1830 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1831 ptrdiff_t i;
1832
1833 /* Find a free slot in c->images. */
1834 for (i = 0; i < c->used; ++i)
1835 if (c->images[i] == NULL)
1836 break;
1837
1838 /* If no free slot found, maybe enlarge c->images. */
1839 if (i == c->used && c->used == c->size)
1840 c->images = xpalloc (c->images, &c->size, 1, -1, sizeof *c->images);
1841
1842 /* Add IMG to c->images, and assign IMG an id. */
1843 c->images[i] = img;
1844 img->id = i;
1845 if (i == c->used)
1846 ++c->used;
1847
1848 /* Add IMG to the cache's hash table. */
1849 i = img->hash % IMAGE_CACHE_BUCKETS_SIZE;
1850 img->next = c->buckets[i];
1851 if (img->next)
1852 img->next->prev = img;
1853 img->prev = NULL;
1854 c->buckets[i] = img;
1855 }
1856
1857
1858 /* Call FN on every image in the image cache of frame F. Used to mark
1859 Lisp Objects in the image cache. */
1860
1861 /* Mark Lisp objects in image IMG. */
1862
1863 static void
1864 mark_image (struct image *img)
1865 {
1866 mark_object (img->spec);
1867 mark_object (img->dependencies);
1868
1869 if (!NILP (img->lisp_data))
1870 mark_object (img->lisp_data);
1871 }
1872
1873
1874 void
1875 mark_image_cache (struct image_cache *c)
1876 {
1877 if (c)
1878 {
1879 ptrdiff_t i;
1880 for (i = 0; i < c->used; ++i)
1881 if (c->images[i])
1882 mark_image (c->images[i]);
1883 }
1884 }
1885
1886
1887 \f
1888 /***********************************************************************
1889 X / NS / W32 support code
1890 ***********************************************************************/
1891
1892 /* Return true if XIMG's size WIDTH x HEIGHT doesn't break the
1893 windowing system.
1894 WIDTH and HEIGHT must both be positive.
1895 If XIMG is null, assume it is a bitmap. */
1896 static bool
1897 x_check_image_size (XImagePtr ximg, int width, int height)
1898 {
1899 #ifdef HAVE_X_WINDOWS
1900 /* Respect Xlib's limits: it cannot deal with images that have more
1901 than INT_MAX (and/or UINT_MAX) bytes. And respect Emacs's limits
1902 of PTRDIFF_MAX (and/or SIZE_MAX) bytes for any object. */
1903 enum
1904 {
1905 XLIB_BYTES_MAX = min (INT_MAX, UINT_MAX),
1906 X_IMAGE_BYTES_MAX = min (XLIB_BYTES_MAX, min (PTRDIFF_MAX, SIZE_MAX))
1907 };
1908
1909 int bitmap_pad, depth, bytes_per_line;
1910 if (ximg)
1911 {
1912 bitmap_pad = ximg->bitmap_pad;
1913 depth = ximg->depth;
1914 bytes_per_line = ximg->bytes_per_line;
1915 }
1916 else
1917 {
1918 bitmap_pad = 8;
1919 depth = 1;
1920 bytes_per_line = (width >> 3) + ((width & 7) != 0);
1921 }
1922 return (width <= (INT_MAX - (bitmap_pad - 1)) / depth
1923 && height <= X_IMAGE_BYTES_MAX / bytes_per_line);
1924 #else
1925 /* FIXME: Implement this check for the HAVE_NS and HAVE_NTGUI cases.
1926 For now, assume that every image size is allowed on these systems. */
1927 return 1;
1928 #endif
1929 }
1930
1931 /* Create an XImage and a pixmap of size WIDTH x HEIGHT for use on
1932 frame F. Set *XIMG and *PIXMAP to the XImage and Pixmap created.
1933 Set (*XIMG)->data to a raster of WIDTH x HEIGHT pixels allocated
1934 via xmalloc. Print error messages via image_error if an error
1935 occurs. Value is true if successful.
1936
1937 On W32, a DEPTH of zero signifies a 24 bit image, otherwise DEPTH
1938 should indicate the bit depth of the image. */
1939
1940 static bool
1941 x_create_x_image_and_pixmap (struct frame *f, int width, int height, int depth,
1942 XImagePtr *ximg, Pixmap *pixmap)
1943 {
1944 #ifdef HAVE_X_WINDOWS
1945 Display *display = FRAME_X_DISPLAY (f);
1946 Window window = FRAME_X_WINDOW (f);
1947 Screen *screen = FRAME_X_SCREEN (f);
1948
1949 eassert (input_blocked_p ());
1950
1951 if (depth <= 0)
1952 depth = DefaultDepthOfScreen (screen);
1953 *ximg = XCreateImage (display, DefaultVisualOfScreen (screen),
1954 depth, ZPixmap, 0, NULL, width, height,
1955 depth > 16 ? 32 : depth > 8 ? 16 : 8, 0);
1956 if (*ximg == NULL)
1957 {
1958 image_error ("Unable to allocate X image");
1959 return 0;
1960 }
1961
1962 if (! x_check_image_size (*ximg, width, height))
1963 {
1964 x_destroy_x_image (*ximg);
1965 *ximg = NULL;
1966 image_error ("Image too large (%dx%d)",
1967 make_number (width), make_number (height));
1968 return 0;
1969 }
1970
1971 /* Allocate image raster. */
1972 (*ximg)->data = xmalloc ((*ximg)->bytes_per_line * height);
1973
1974 /* Allocate a pixmap of the same size. */
1975 *pixmap = XCreatePixmap (display, window, width, height, depth);
1976 if (*pixmap == NO_PIXMAP)
1977 {
1978 x_destroy_x_image (*ximg);
1979 *ximg = NULL;
1980 image_error ("Unable to create X pixmap");
1981 return 0;
1982 }
1983
1984 return 1;
1985 #endif /* HAVE_X_WINDOWS */
1986
1987 #ifdef HAVE_NTGUI
1988
1989 BITMAPINFOHEADER *header;
1990 HDC hdc;
1991 int scanline_width_bits;
1992 int remainder;
1993 int palette_colors = 0;
1994
1995 if (depth == 0)
1996 depth = 24;
1997
1998 if (depth != 1 && depth != 4 && depth != 8
1999 && depth != 16 && depth != 24 && depth != 32)
2000 {
2001 image_error ("Invalid image bit depth specified");
2002 return 0;
2003 }
2004
2005 scanline_width_bits = width * depth;
2006 remainder = scanline_width_bits % 32;
2007
2008 if (remainder)
2009 scanline_width_bits += 32 - remainder;
2010
2011 /* Bitmaps with a depth less than 16 need a palette. */
2012 /* BITMAPINFO structure already contains the first RGBQUAD. */
2013 if (depth < 16)
2014 palette_colors = 1 << (depth - 1);
2015
2016 *ximg = xmalloc (sizeof (XImage) + palette_colors * sizeof (RGBQUAD));
2017
2018 header = &(*ximg)->info.bmiHeader;
2019 memset (&(*ximg)->info, 0, sizeof (BITMAPINFO));
2020 header->biSize = sizeof (*header);
2021 header->biWidth = width;
2022 header->biHeight = -height; /* negative indicates a top-down bitmap. */
2023 header->biPlanes = 1;
2024 header->biBitCount = depth;
2025 header->biCompression = BI_RGB;
2026 header->biClrUsed = palette_colors;
2027
2028 /* TODO: fill in palette. */
2029 if (depth == 1)
2030 {
2031 (*ximg)->info.bmiColors[0].rgbBlue = 0;
2032 (*ximg)->info.bmiColors[0].rgbGreen = 0;
2033 (*ximg)->info.bmiColors[0].rgbRed = 0;
2034 (*ximg)->info.bmiColors[0].rgbReserved = 0;
2035 (*ximg)->info.bmiColors[1].rgbBlue = 255;
2036 (*ximg)->info.bmiColors[1].rgbGreen = 255;
2037 (*ximg)->info.bmiColors[1].rgbRed = 255;
2038 (*ximg)->info.bmiColors[1].rgbReserved = 0;
2039 }
2040
2041 hdc = get_frame_dc (f);
2042
2043 /* Create a DIBSection and raster array for the bitmap,
2044 and store its handle in *pixmap. */
2045 *pixmap = CreateDIBSection (hdc, &((*ximg)->info),
2046 (depth < 16) ? DIB_PAL_COLORS : DIB_RGB_COLORS,
2047 /* casting avoids a GCC warning */
2048 (void **)&((*ximg)->data), NULL, 0);
2049
2050 /* Realize display palette and garbage all frames. */
2051 release_frame_dc (f, hdc);
2052
2053 if (*pixmap == NULL)
2054 {
2055 DWORD err = GetLastError ();
2056 Lisp_Object errcode;
2057 /* All system errors are < 10000, so the following is safe. */
2058 XSETINT (errcode, err);
2059 image_error ("Unable to create bitmap, error code %d", errcode);
2060 x_destroy_x_image (*ximg);
2061 *ximg = NULL;
2062 return 0;
2063 }
2064
2065 return 1;
2066
2067 #endif /* HAVE_NTGUI */
2068
2069 #ifdef HAVE_NS
2070 *pixmap = ns_image_for_XPM (width, height, depth);
2071 if (*pixmap == 0)
2072 {
2073 *ximg = NULL;
2074 image_error ("Unable to allocate NSImage for XPM pixmap");
2075 return 0;
2076 }
2077 *ximg = *pixmap;
2078 return 1;
2079 #endif
2080 }
2081
2082
2083 /* Destroy XImage XIMG. Free XIMG->data. */
2084
2085 static void
2086 x_destroy_x_image (XImagePtr ximg)
2087 {
2088 eassert (input_blocked_p ());
2089 if (ximg)
2090 {
2091 #ifdef HAVE_X_WINDOWS
2092 xfree (ximg->data);
2093 ximg->data = NULL;
2094 XDestroyImage (ximg);
2095 #endif /* HAVE_X_WINDOWS */
2096 #ifdef HAVE_NTGUI
2097 /* Data will be freed by DestroyObject. */
2098 ximg->data = NULL;
2099 xfree (ximg);
2100 #endif /* HAVE_NTGUI */
2101 #ifdef HAVE_NS
2102 ns_release_object (ximg);
2103 #endif /* HAVE_NS */
2104 }
2105 }
2106
2107
2108 /* Put XImage XIMG into pixmap PIXMAP on frame F. WIDTH and HEIGHT
2109 are width and height of both the image and pixmap. */
2110
2111 static void
2112 x_put_x_image (struct frame *f, XImagePtr ximg, Pixmap pixmap, int width, int height)
2113 {
2114 #ifdef HAVE_X_WINDOWS
2115 GC gc;
2116
2117 eassert (input_blocked_p ());
2118 gc = XCreateGC (FRAME_X_DISPLAY (f), pixmap, 0, NULL);
2119 XPutImage (FRAME_X_DISPLAY (f), pixmap, gc, ximg, 0, 0, 0, 0, width, height);
2120 XFreeGC (FRAME_X_DISPLAY (f), gc);
2121 #endif /* HAVE_X_WINDOWS */
2122
2123 #ifdef HAVE_NTGUI
2124 #if 0 /* I don't think this is necessary looking at where it is used. */
2125 HDC hdc = get_frame_dc (f);
2126 SetDIBits (hdc, pixmap, 0, height, ximg->data, &(ximg->info), DIB_RGB_COLORS);
2127 release_frame_dc (f, hdc);
2128 #endif
2129 #endif /* HAVE_NTGUI */
2130
2131 #ifdef HAVE_NS
2132 eassert (ximg == pixmap);
2133 ns_retain_object (ximg);
2134 #endif
2135 }
2136
2137 /* Thin wrapper for x_create_x_image_and_pixmap, so that it matches
2138 with image_put_x_image. */
2139
2140 static bool
2141 image_create_x_image_and_pixmap (struct frame *f, struct image *img,
2142 int width, int height, int depth,
2143 XImagePtr *ximg, bool mask_p)
2144 {
2145 eassert ((!mask_p ? img->pixmap : img->mask) == NO_PIXMAP);
2146
2147 return x_create_x_image_and_pixmap (f, width, height, depth, ximg,
2148 !mask_p ? &img->pixmap : &img->mask);
2149 }
2150
2151 /* Put X image XIMG into image IMG on frame F, as a mask if and only
2152 if MASK_P. On X, this simply records XIMG on a member of IMG, so
2153 it can be put into the pixmap afterwards via image_sync_to_pixmaps.
2154 On the other platforms, it puts XIMG into the pixmap, then frees
2155 the X image and its buffer. */
2156
2157 static void
2158 image_put_x_image (struct frame *f, struct image *img, XImagePtr ximg,
2159 bool mask_p)
2160 {
2161 #ifdef HAVE_X_WINDOWS
2162 if (!mask_p)
2163 {
2164 eassert (img->ximg == NULL);
2165 img->ximg = ximg;
2166 }
2167 else
2168 {
2169 eassert (img->mask_img == NULL);
2170 img->mask_img = ximg;
2171 }
2172 #else
2173 x_put_x_image (f, ximg, !mask_p ? img->pixmap : img->mask,
2174 img->width, img->height);
2175 x_destroy_x_image (ximg);
2176 #endif
2177 }
2178
2179 #ifdef HAVE_X_WINDOWS
2180 /* Put the X images recorded in IMG on frame F into pixmaps, then free
2181 the X images and their buffers. */
2182
2183 static void
2184 image_sync_to_pixmaps (struct frame *f, struct image *img)
2185 {
2186 if (img->ximg)
2187 {
2188 x_put_x_image (f, img->ximg, img->pixmap, img->width, img->height);
2189 x_destroy_x_image (img->ximg);
2190 img->ximg = NULL;
2191 }
2192 if (img->mask_img)
2193 {
2194 x_put_x_image (f, img->mask_img, img->mask, img->width, img->height);
2195 x_destroy_x_image (img->mask_img);
2196 img->mask_img = NULL;
2197 }
2198 }
2199 #endif
2200
2201 #ifdef HAVE_NTGUI
2202 /* Create a memory device context for IMG on frame F. It stores the
2203 currently selected GDI object into *PREV for future restoration by
2204 image_unget_x_image_or_dc. */
2205
2206 static XImagePtr_or_DC
2207 image_get_x_image_or_dc (struct frame *f, struct image *img, bool mask_p,
2208 HGDIOBJ *prev)
2209 {
2210 HDC frame_dc = get_frame_dc (f);
2211 XImagePtr_or_DC ximg = CreateCompatibleDC (frame_dc);
2212
2213 release_frame_dc (f, frame_dc);
2214 *prev = SelectObject (ximg, !mask_p ? img->pixmap : img->mask);
2215
2216 return ximg;
2217 }
2218
2219 static void
2220 image_unget_x_image_or_dc (struct image *img, bool mask_p,
2221 XImagePtr_or_DC ximg, HGDIOBJ prev)
2222 {
2223 SelectObject (ximg, prev);
2224 DeleteDC (ximg);
2225 }
2226 #else /* !HAVE_NTGUI */
2227 /* Get the X image for IMG on frame F. The resulting X image data
2228 should be treated as read-only at least on X. */
2229
2230 static XImagePtr
2231 image_get_x_image (struct frame *f, struct image *img, bool mask_p)
2232 {
2233 #ifdef HAVE_X_WINDOWS
2234 XImagePtr ximg_in_img = !mask_p ? img->ximg : img->mask_img;
2235
2236 if (ximg_in_img)
2237 return ximg_in_img;
2238 else
2239 return XGetImage (FRAME_X_DISPLAY (f), !mask_p ? img->pixmap : img->mask,
2240 0, 0, img->width, img->height, ~0, ZPixmap);
2241 #elif defined (HAVE_NS)
2242 XImagePtr pixmap = !mask_p ? img->pixmap : img->mask;
2243
2244 ns_retain_object (pixmap);
2245 return pixmap;
2246 #endif
2247 }
2248
2249 static void
2250 image_unget_x_image (struct image *img, bool mask_p, XImagePtr ximg)
2251 {
2252 #ifdef HAVE_X_WINDOWS
2253 XImagePtr ximg_in_img = !mask_p ? img->ximg : img->mask_img;
2254
2255 if (ximg_in_img)
2256 eassert (ximg == ximg_in_img);
2257 else
2258 XDestroyImage (ximg);
2259 #elif defined (HAVE_NS)
2260 ns_release_object (ximg);
2261 #endif
2262 }
2263 #endif /* !HAVE_NTGUI */
2264
2265 \f
2266 /***********************************************************************
2267 File Handling
2268 ***********************************************************************/
2269
2270 /* Find image file FILE. Look in data-directory/images, then
2271 x-bitmap-file-path. Value is the full name of the file
2272 found, or nil if not found. If PFD is nonnull store into *PFD a
2273 readable file descriptor for the file, opened in binary mode. If
2274 PFD is null, do not open the file. */
2275
2276 static Lisp_Object
2277 x_find_image_fd (Lisp_Object file, int *pfd)
2278 {
2279 Lisp_Object file_found, search_path;
2280 int fd;
2281
2282 /* TODO I think this should use something like image-load-path
2283 instead. Unfortunately, that can contain non-string elements. */
2284 search_path = Fcons (Fexpand_file_name (build_string ("images"),
2285 Vdata_directory),
2286 Vx_bitmap_file_path);
2287
2288 /* Try to find FILE in data-directory/images, then x-bitmap-file-path. */
2289 fd = openp (search_path, file, Qnil, &file_found,
2290 pfd ? Qt : make_number (R_OK), false);
2291 if (fd >= 0 || fd == -2)
2292 {
2293 file_found = ENCODE_FILE (file_found);
2294 if (fd == -2)
2295 {
2296 /* The file exists locally, but has a file handler. (This
2297 happens, e.g., under Auto Image File Mode.) 'openp'
2298 didn't open the file, so we should, because the caller
2299 expects that. */
2300 fd = emacs_open (SSDATA (file_found), O_RDONLY | O_BINARY, 0);
2301 }
2302 }
2303 else /* fd < 0, but not -2 */
2304 return Qnil;
2305 if (pfd)
2306 *pfd = fd;
2307 return file_found;
2308 }
2309
2310 /* Find image file FILE. Look in data-directory/images, then
2311 x-bitmap-file-path. Value is the encoded full name of the file
2312 found, or nil if not found. */
2313
2314 Lisp_Object
2315 x_find_image_file (Lisp_Object file)
2316 {
2317 return x_find_image_fd (file, 0);
2318 }
2319
2320 /* Read FILE into memory. Value is a pointer to a buffer allocated
2321 with xmalloc holding FILE's contents. Value is null if an error
2322 occurred. FD is a file descriptor open for reading FILE. Set
2323 *SIZE to the size of the file. */
2324
2325 static unsigned char *
2326 slurp_file (int fd, ptrdiff_t *size)
2327 {
2328 FILE *fp = fdopen (fd, "rb");
2329
2330 unsigned char *buf = NULL;
2331 struct stat st;
2332
2333 if (fp)
2334 {
2335 ptrdiff_t count = SPECPDL_INDEX ();
2336 record_unwind_protect_ptr (fclose_unwind, fp);
2337
2338 if (fstat (fileno (fp), &st) == 0
2339 && 0 <= st.st_size && st.st_size < min (PTRDIFF_MAX, SIZE_MAX))
2340 {
2341 /* Report an error if we read past the purported EOF.
2342 This can happen if the file grows as we read it. */
2343 ptrdiff_t buflen = st.st_size;
2344 buf = xmalloc (buflen + 1);
2345 if (fread (buf, 1, buflen + 1, fp) == buflen)
2346 *size = buflen;
2347 else
2348 {
2349 xfree (buf);
2350 buf = NULL;
2351 }
2352 }
2353
2354 unbind_to (count, Qnil);
2355 }
2356
2357 return buf;
2358 }
2359
2360
2361 \f
2362 /***********************************************************************
2363 XBM images
2364 ***********************************************************************/
2365
2366 static bool xbm_load (struct frame *f, struct image *img);
2367 static bool xbm_image_p (Lisp_Object object);
2368 static bool xbm_file_p (Lisp_Object);
2369
2370
2371 /* Indices of image specification fields in xbm_format, below. */
2372
2373 enum xbm_keyword_index
2374 {
2375 XBM_TYPE,
2376 XBM_FILE,
2377 XBM_WIDTH,
2378 XBM_HEIGHT,
2379 XBM_DATA,
2380 XBM_FOREGROUND,
2381 XBM_BACKGROUND,
2382 XBM_ASCENT,
2383 XBM_MARGIN,
2384 XBM_RELIEF,
2385 XBM_ALGORITHM,
2386 XBM_HEURISTIC_MASK,
2387 XBM_MASK,
2388 XBM_LAST
2389 };
2390
2391 /* Vector of image_keyword structures describing the format
2392 of valid XBM image specifications. */
2393
2394 static const struct image_keyword xbm_format[XBM_LAST] =
2395 {
2396 {":type", IMAGE_SYMBOL_VALUE, 1},
2397 {":file", IMAGE_STRING_VALUE, 0},
2398 {":width", IMAGE_POSITIVE_INTEGER_VALUE, 0},
2399 {":height", IMAGE_POSITIVE_INTEGER_VALUE, 0},
2400 {":data", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2401 {":foreground", IMAGE_STRING_OR_NIL_VALUE, 0},
2402 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
2403 {":ascent", IMAGE_ASCENT_VALUE, 0},
2404 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
2405 {":relief", IMAGE_INTEGER_VALUE, 0},
2406 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2407 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2408 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0}
2409 };
2410
2411 /* Structure describing the image type XBM. */
2412
2413 static struct image_type xbm_type =
2414 {
2415 SYMBOL_INDEX (Qxbm),
2416 xbm_image_p,
2417 xbm_load,
2418 x_clear_image,
2419 NULL,
2420 NULL
2421 };
2422
2423 /* Tokens returned from xbm_scan. */
2424
2425 enum xbm_token
2426 {
2427 XBM_TK_IDENT = 256,
2428 XBM_TK_NUMBER
2429 };
2430
2431
2432 /* Return true if OBJECT is a valid XBM-type image specification.
2433 A valid specification is a list starting with the symbol `image'
2434 The rest of the list is a property list which must contain an
2435 entry `:type xbm'.
2436
2437 If the specification specifies a file to load, it must contain
2438 an entry `:file FILENAME' where FILENAME is a string.
2439
2440 If the specification is for a bitmap loaded from memory it must
2441 contain `:width WIDTH', `:height HEIGHT', and `:data DATA', where
2442 WIDTH and HEIGHT are integers > 0. DATA may be:
2443
2444 1. a string large enough to hold the bitmap data, i.e. it must
2445 have a size >= (WIDTH + 7) / 8 * HEIGHT
2446
2447 2. a bool-vector of size >= WIDTH * HEIGHT
2448
2449 3. a vector of strings or bool-vectors, one for each line of the
2450 bitmap.
2451
2452 4. a string containing an in-memory XBM file. WIDTH and HEIGHT
2453 may not be specified in this case because they are defined in the
2454 XBM file.
2455
2456 Both the file and data forms may contain the additional entries
2457 `:background COLOR' and `:foreground COLOR'. If not present,
2458 foreground and background of the frame on which the image is
2459 displayed is used. */
2460
2461 static bool
2462 xbm_image_p (Lisp_Object object)
2463 {
2464 struct image_keyword kw[XBM_LAST];
2465
2466 memcpy (kw, xbm_format, sizeof kw);
2467 if (!parse_image_spec (object, kw, XBM_LAST, Qxbm))
2468 return 0;
2469
2470 eassert (EQ (kw[XBM_TYPE].value, Qxbm));
2471
2472 if (kw[XBM_FILE].count)
2473 {
2474 if (kw[XBM_WIDTH].count || kw[XBM_HEIGHT].count || kw[XBM_DATA].count)
2475 return 0;
2476 }
2477 else if (kw[XBM_DATA].count && xbm_file_p (kw[XBM_DATA].value))
2478 {
2479 /* In-memory XBM file. */
2480 if (kw[XBM_WIDTH].count || kw[XBM_HEIGHT].count || kw[XBM_FILE].count)
2481 return 0;
2482 }
2483 else
2484 {
2485 Lisp_Object data;
2486 int width, height;
2487
2488 /* Entries for `:width', `:height' and `:data' must be present. */
2489 if (!kw[XBM_WIDTH].count
2490 || !kw[XBM_HEIGHT].count
2491 || !kw[XBM_DATA].count)
2492 return 0;
2493
2494 data = kw[XBM_DATA].value;
2495 width = XFASTINT (kw[XBM_WIDTH].value);
2496 height = XFASTINT (kw[XBM_HEIGHT].value);
2497
2498 /* Check type of data, and width and height against contents of
2499 data. */
2500 if (VECTORP (data))
2501 {
2502 EMACS_INT i;
2503
2504 /* Number of elements of the vector must be >= height. */
2505 if (ASIZE (data) < height)
2506 return 0;
2507
2508 /* Each string or bool-vector in data must be large enough
2509 for one line of the image. */
2510 for (i = 0; i < height; ++i)
2511 {
2512 Lisp_Object elt = AREF (data, i);
2513
2514 if (STRINGP (elt))
2515 {
2516 if (SCHARS (elt)
2517 < (width + BITS_PER_CHAR - 1) / BITS_PER_CHAR)
2518 return 0;
2519 }
2520 else if (BOOL_VECTOR_P (elt))
2521 {
2522 if (bool_vector_size (elt) < width)
2523 return 0;
2524 }
2525 else
2526 return 0;
2527 }
2528 }
2529 else if (STRINGP (data))
2530 {
2531 if (SCHARS (data)
2532 < (width + BITS_PER_CHAR - 1) / BITS_PER_CHAR * height)
2533 return 0;
2534 }
2535 else if (BOOL_VECTOR_P (data))
2536 {
2537 if (bool_vector_size (data) / height < width)
2538 return 0;
2539 }
2540 else
2541 return 0;
2542 }
2543
2544 return 1;
2545 }
2546
2547
2548 /* Scan a bitmap file. FP is the stream to read from. Value is
2549 either an enumerator from enum xbm_token, or a character for a
2550 single-character token, or 0 at end of file. If scanning an
2551 identifier, store the lexeme of the identifier in SVAL. If
2552 scanning a number, store its value in *IVAL. */
2553
2554 static int
2555 xbm_scan (unsigned char **s, unsigned char *end, char *sval, int *ival)
2556 {
2557 unsigned int c;
2558
2559 loop:
2560
2561 /* Skip white space. */
2562 while (*s < end && (c = *(*s)++, c_isspace (c)))
2563 ;
2564
2565 if (*s >= end)
2566 c = 0;
2567 else if (c_isdigit (c))
2568 {
2569 int value = 0, digit;
2570
2571 if (c == '0' && *s < end)
2572 {
2573 c = *(*s)++;
2574 if (c == 'x' || c == 'X')
2575 {
2576 while (*s < end)
2577 {
2578 c = *(*s)++;
2579 if (c_isdigit (c))
2580 digit = c - '0';
2581 else if (c >= 'a' && c <= 'f')
2582 digit = c - 'a' + 10;
2583 else if (c >= 'A' && c <= 'F')
2584 digit = c - 'A' + 10;
2585 else
2586 break;
2587 value = 16 * value + digit;
2588 }
2589 }
2590 else if (c_isdigit (c))
2591 {
2592 value = c - '0';
2593 while (*s < end
2594 && (c = *(*s)++, c_isdigit (c)))
2595 value = 8 * value + c - '0';
2596 }
2597 }
2598 else
2599 {
2600 value = c - '0';
2601 while (*s < end
2602 && (c = *(*s)++, c_isdigit (c)))
2603 value = 10 * value + c - '0';
2604 }
2605
2606 if (*s < end)
2607 *s = *s - 1;
2608 *ival = value;
2609 c = XBM_TK_NUMBER;
2610 }
2611 else if (c_isalpha (c) || c == '_')
2612 {
2613 *sval++ = c;
2614 while (*s < end
2615 && (c = *(*s)++, (c_isalnum (c) || c == '_')))
2616 *sval++ = c;
2617 *sval = 0;
2618 if (*s < end)
2619 *s = *s - 1;
2620 c = XBM_TK_IDENT;
2621 }
2622 else if (c == '/' && **s == '*')
2623 {
2624 /* C-style comment. */
2625 ++*s;
2626 while (**s && (**s != '*' || *(*s + 1) != '/'))
2627 ++*s;
2628 if (**s)
2629 {
2630 *s += 2;
2631 goto loop;
2632 }
2633 }
2634
2635 return c;
2636 }
2637
2638 #ifdef HAVE_NTGUI
2639
2640 /* Create a Windows bitmap from X bitmap data. */
2641 static HBITMAP
2642 w32_create_pixmap_from_bitmap_data (int width, int height, char *data)
2643 {
2644 static unsigned char swap_nibble[16]
2645 = { 0x0, 0x8, 0x4, 0xc, /* 0000 1000 0100 1100 */
2646 0x2, 0xa, 0x6, 0xe, /* 0010 1010 0110 1110 */
2647 0x1, 0x9, 0x5, 0xd, /* 0001 1001 0101 1101 */
2648 0x3, 0xb, 0x7, 0xf }; /* 0011 1011 0111 1111 */
2649 int i, j, w1, w2;
2650 unsigned char *bits, *p;
2651 HBITMAP bmp;
2652
2653 w1 = (width + 7) / 8; /* nb of 8bits elt in X bitmap */
2654 w2 = ((width + 15) / 16) * 2; /* nb of 16bits elt in W32 bitmap */
2655 bits = alloca (height * w2);
2656 memset (bits, 0, height * w2);
2657 for (i = 0; i < height; i++)
2658 {
2659 p = bits + i*w2;
2660 for (j = 0; j < w1; j++)
2661 {
2662 /* Bitswap XBM bytes to match how Windows does things. */
2663 unsigned char c = *data++;
2664 *p++ = (unsigned char)((swap_nibble[c & 0xf] << 4)
2665 | (swap_nibble[(c>>4) & 0xf]));
2666 }
2667 }
2668 bmp = CreateBitmap (width, height, 1, 1, (char *) bits);
2669
2670 return bmp;
2671 }
2672
2673 static void
2674 convert_mono_to_color_image (struct frame *f, struct image *img,
2675 COLORREF foreground, COLORREF background)
2676 {
2677 HDC hdc, old_img_dc, new_img_dc;
2678 HGDIOBJ old_prev, new_prev;
2679 HBITMAP new_pixmap;
2680
2681 hdc = get_frame_dc (f);
2682 old_img_dc = CreateCompatibleDC (hdc);
2683 new_img_dc = CreateCompatibleDC (hdc);
2684 new_pixmap = CreateCompatibleBitmap (hdc, img->width, img->height);
2685 release_frame_dc (f, hdc);
2686 old_prev = SelectObject (old_img_dc, img->pixmap);
2687 new_prev = SelectObject (new_img_dc, new_pixmap);
2688 /* Windows convention for mono bitmaps is black = background,
2689 white = foreground. */
2690 SetTextColor (new_img_dc, background);
2691 SetBkColor (new_img_dc, foreground);
2692
2693 BitBlt (new_img_dc, 0, 0, img->width, img->height, old_img_dc,
2694 0, 0, SRCCOPY);
2695
2696 SelectObject (old_img_dc, old_prev);
2697 SelectObject (new_img_dc, new_prev);
2698 DeleteDC (old_img_dc);
2699 DeleteDC (new_img_dc);
2700 DeleteObject (img->pixmap);
2701 if (new_pixmap == 0)
2702 fprintf (stderr, "Failed to convert image to color.\n");
2703 else
2704 img->pixmap = new_pixmap;
2705 }
2706
2707 #define XBM_BIT_SHUFFLE(b) (~(b))
2708
2709 #else
2710
2711 #define XBM_BIT_SHUFFLE(b) (b)
2712
2713 #endif /* HAVE_NTGUI */
2714
2715
2716 static void
2717 Create_Pixmap_From_Bitmap_Data (struct frame *f, struct image *img, char *data,
2718 RGB_PIXEL_COLOR fg, RGB_PIXEL_COLOR bg,
2719 bool non_default_colors)
2720 {
2721 #ifdef HAVE_NTGUI
2722 img->pixmap
2723 = w32_create_pixmap_from_bitmap_data (img->width, img->height, data);
2724
2725 /* If colors were specified, transfer the bitmap to a color one. */
2726 if (non_default_colors)
2727 convert_mono_to_color_image (f, img, fg, bg);
2728
2729 #elif defined (HAVE_NS)
2730 img->pixmap = ns_image_from_XBM (data, img->width, img->height, fg, bg);
2731
2732 #else
2733 img->pixmap =
2734 (x_check_image_size (0, img->width, img->height)
2735 ? XCreatePixmapFromBitmapData (FRAME_X_DISPLAY (f),
2736 FRAME_X_WINDOW (f),
2737 data,
2738 img->width, img->height,
2739 fg, bg,
2740 DefaultDepthOfScreen (FRAME_X_SCREEN (f)))
2741 : NO_PIXMAP);
2742 #endif /* !HAVE_NTGUI && !HAVE_NS */
2743 }
2744
2745
2746
2747 /* Replacement for XReadBitmapFileData which isn't available under old
2748 X versions. CONTENTS is a pointer to a buffer to parse; END is the
2749 buffer's end. Set *WIDTH and *HEIGHT to the width and height of
2750 the image. Return in *DATA the bitmap data allocated with xmalloc.
2751 Value is true if successful. DATA null means just test if
2752 CONTENTS looks like an in-memory XBM file. If INHIBIT_IMAGE_ERROR,
2753 inhibit the call to image_error when the image size is invalid (the
2754 bitmap remains unread). */
2755
2756 static bool
2757 xbm_read_bitmap_data (struct frame *f, unsigned char *contents, unsigned char *end,
2758 int *width, int *height, char **data,
2759 bool inhibit_image_error)
2760 {
2761 unsigned char *s = contents;
2762 char buffer[BUFSIZ];
2763 bool padding_p = 0;
2764 bool v10 = 0;
2765 int bytes_per_line, i, nbytes;
2766 char *p;
2767 int value;
2768 int LA1;
2769
2770 #define match() \
2771 LA1 = xbm_scan (&s, end, buffer, &value)
2772
2773 #define expect(TOKEN) \
2774 do \
2775 { \
2776 if (LA1 != (TOKEN)) \
2777 goto failure; \
2778 match (); \
2779 } \
2780 while (0)
2781
2782 #define expect_ident(IDENT) \
2783 if (LA1 == XBM_TK_IDENT && strcmp (buffer, (IDENT)) == 0) \
2784 match (); \
2785 else \
2786 goto failure
2787
2788 *width = *height = -1;
2789 if (data)
2790 *data = NULL;
2791 LA1 = xbm_scan (&s, end, buffer, &value);
2792
2793 /* Parse defines for width, height and hot-spots. */
2794 while (LA1 == '#')
2795 {
2796 match ();
2797 expect_ident ("define");
2798 expect (XBM_TK_IDENT);
2799
2800 if (LA1 == XBM_TK_NUMBER)
2801 {
2802 char *q = strrchr (buffer, '_');
2803 q = q ? q + 1 : buffer;
2804 if (strcmp (q, "width") == 0)
2805 *width = value;
2806 else if (strcmp (q, "height") == 0)
2807 *height = value;
2808 }
2809 expect (XBM_TK_NUMBER);
2810 }
2811
2812 if (!check_image_size (f, *width, *height))
2813 {
2814 if (!inhibit_image_error)
2815 image_size_error ();
2816 goto failure;
2817 }
2818 else if (data == NULL)
2819 goto success;
2820
2821 /* Parse bits. Must start with `static'. */
2822 expect_ident ("static");
2823 if (LA1 == XBM_TK_IDENT)
2824 {
2825 if (strcmp (buffer, "unsigned") == 0)
2826 {
2827 match ();
2828 expect_ident ("char");
2829 }
2830 else if (strcmp (buffer, "short") == 0)
2831 {
2832 match ();
2833 v10 = 1;
2834 if (*width % 16 && *width % 16 < 9)
2835 padding_p = 1;
2836 }
2837 else if (strcmp (buffer, "char") == 0)
2838 match ();
2839 else
2840 goto failure;
2841 }
2842 else
2843 goto failure;
2844
2845 expect (XBM_TK_IDENT);
2846 expect ('[');
2847 expect (']');
2848 expect ('=');
2849 expect ('{');
2850
2851 if (! x_check_image_size (0, *width, *height))
2852 {
2853 if (!inhibit_image_error)
2854 image_error ("Image too large (%dx%d)",
2855 make_number (*width), make_number (*height));
2856 goto failure;
2857 }
2858 bytes_per_line = (*width + 7) / 8 + padding_p;
2859 nbytes = bytes_per_line * *height;
2860 p = *data = xmalloc (nbytes);
2861
2862 if (v10)
2863 {
2864 for (i = 0; i < nbytes; i += 2)
2865 {
2866 int val = value;
2867 expect (XBM_TK_NUMBER);
2868
2869 *p++ = XBM_BIT_SHUFFLE (val);
2870 if (!padding_p || ((i + 2) % bytes_per_line))
2871 *p++ = XBM_BIT_SHUFFLE (value >> 8);
2872
2873 if (LA1 == ',' || LA1 == '}')
2874 match ();
2875 else
2876 goto failure;
2877 }
2878 }
2879 else
2880 {
2881 for (i = 0; i < nbytes; ++i)
2882 {
2883 int val = value;
2884 expect (XBM_TK_NUMBER);
2885
2886 *p++ = XBM_BIT_SHUFFLE (val);
2887
2888 if (LA1 == ',' || LA1 == '}')
2889 match ();
2890 else
2891 goto failure;
2892 }
2893 }
2894
2895 success:
2896 return 1;
2897
2898 failure:
2899
2900 if (data && *data)
2901 {
2902 xfree (*data);
2903 *data = NULL;
2904 }
2905 return 0;
2906
2907 #undef match
2908 #undef expect
2909 #undef expect_ident
2910 }
2911
2912
2913 /* Load XBM image IMG which will be displayed on frame F from buffer
2914 CONTENTS. END is the end of the buffer. Value is true if
2915 successful. */
2916
2917 static bool
2918 xbm_load_image (struct frame *f, struct image *img, unsigned char *contents,
2919 unsigned char *end)
2920 {
2921 bool rc;
2922 char *data;
2923 bool success_p = 0;
2924
2925 rc = xbm_read_bitmap_data (f, contents, end, &img->width, &img->height,
2926 &data, 0);
2927 if (rc)
2928 {
2929 unsigned long foreground = FRAME_FOREGROUND_PIXEL (f);
2930 unsigned long background = FRAME_BACKGROUND_PIXEL (f);
2931 bool non_default_colors = 0;
2932 Lisp_Object value;
2933
2934 eassert (img->width > 0 && img->height > 0);
2935
2936 /* Get foreground and background colors, maybe allocate colors. */
2937 value = image_spec_value (img->spec, QCforeground, NULL);
2938 if (!NILP (value))
2939 {
2940 foreground = x_alloc_image_color (f, img, value, foreground);
2941 non_default_colors = 1;
2942 }
2943 value = image_spec_value (img->spec, QCbackground, NULL);
2944 if (!NILP (value))
2945 {
2946 background = x_alloc_image_color (f, img, value, background);
2947 img->background = background;
2948 img->background_valid = 1;
2949 non_default_colors = 1;
2950 }
2951
2952 Create_Pixmap_From_Bitmap_Data (f, img, data,
2953 foreground, background,
2954 non_default_colors);
2955 xfree (data);
2956
2957 if (img->pixmap == NO_PIXMAP)
2958 {
2959 x_clear_image (f, img);
2960 image_error ("Unable to create X pixmap for `%s'", img->spec);
2961 }
2962 else
2963 success_p = 1;
2964 }
2965 else
2966 image_error ("Error loading XBM image `%s'", img->spec);
2967
2968 return success_p;
2969 }
2970
2971
2972 /* Value is true if DATA looks like an in-memory XBM file. */
2973
2974 static bool
2975 xbm_file_p (Lisp_Object data)
2976 {
2977 int w, h;
2978 return (STRINGP (data)
2979 && xbm_read_bitmap_data (NULL, SDATA (data),
2980 (SDATA (data) + SBYTES (data)),
2981 &w, &h, NULL, 1));
2982 }
2983
2984
2985 /* Fill image IMG which is used on frame F with pixmap data. Value is
2986 true if successful. */
2987
2988 static bool
2989 xbm_load (struct frame *f, struct image *img)
2990 {
2991 bool success_p = 0;
2992 Lisp_Object file_name;
2993
2994 eassert (xbm_image_p (img->spec));
2995
2996 /* If IMG->spec specifies a file name, create a non-file spec from it. */
2997 file_name = image_spec_value (img->spec, QCfile, NULL);
2998 if (STRINGP (file_name))
2999 {
3000 int fd;
3001 Lisp_Object file = x_find_image_fd (file_name, &fd);
3002 if (!STRINGP (file))
3003 {
3004 image_error ("Cannot find image file `%s'", file_name);
3005 return 0;
3006 }
3007
3008 ptrdiff_t size;
3009 unsigned char *contents = slurp_file (fd, &size);
3010 if (contents == NULL)
3011 {
3012 image_error ("Error loading XBM image `%s'", file);
3013 return 0;
3014 }
3015
3016 success_p = xbm_load_image (f, img, contents, contents + size);
3017 xfree (contents);
3018 }
3019 else
3020 {
3021 struct image_keyword fmt[XBM_LAST];
3022 Lisp_Object data;
3023 unsigned long foreground = FRAME_FOREGROUND_PIXEL (f);
3024 unsigned long background = FRAME_BACKGROUND_PIXEL (f);
3025 bool non_default_colors = 0;
3026 char *bits;
3027 bool parsed_p;
3028 bool in_memory_file_p = 0;
3029
3030 /* See if data looks like an in-memory XBM file. */
3031 data = image_spec_value (img->spec, QCdata, NULL);
3032 in_memory_file_p = xbm_file_p (data);
3033
3034 /* Parse the image specification. */
3035 memcpy (fmt, xbm_format, sizeof fmt);
3036 parsed_p = parse_image_spec (img->spec, fmt, XBM_LAST, Qxbm);
3037 eassert (parsed_p);
3038
3039 /* Get specified width, and height. */
3040 if (!in_memory_file_p)
3041 {
3042 img->width = XFASTINT (fmt[XBM_WIDTH].value);
3043 img->height = XFASTINT (fmt[XBM_HEIGHT].value);
3044 eassert (img->width > 0 && img->height > 0);
3045 if (!check_image_size (f, img->width, img->height))
3046 {
3047 image_size_error ();
3048 return 0;
3049 }
3050 }
3051
3052 /* Get foreground and background colors, maybe allocate colors. */
3053 if (fmt[XBM_FOREGROUND].count
3054 && STRINGP (fmt[XBM_FOREGROUND].value))
3055 {
3056 foreground = x_alloc_image_color (f, img, fmt[XBM_FOREGROUND].value,
3057 foreground);
3058 non_default_colors = 1;
3059 }
3060
3061 if (fmt[XBM_BACKGROUND].count
3062 && STRINGP (fmt[XBM_BACKGROUND].value))
3063 {
3064 background = x_alloc_image_color (f, img, fmt[XBM_BACKGROUND].value,
3065 background);
3066 non_default_colors = 1;
3067 }
3068
3069 if (in_memory_file_p)
3070 success_p = xbm_load_image (f, img, SDATA (data),
3071 (SDATA (data)
3072 + SBYTES (data)));
3073 else
3074 {
3075 USE_SAFE_ALLOCA;
3076
3077 if (VECTORP (data))
3078 {
3079 int i;
3080 char *p;
3081 int nbytes = (img->width + BITS_PER_CHAR - 1) / BITS_PER_CHAR;
3082
3083 SAFE_NALLOCA (bits, nbytes, img->height);
3084 p = bits;
3085 for (i = 0; i < img->height; ++i, p += nbytes)
3086 {
3087 Lisp_Object line = AREF (data, i);
3088 if (STRINGP (line))
3089 memcpy (p, SDATA (line), nbytes);
3090 else
3091 memcpy (p, bool_vector_data (line), nbytes);
3092 }
3093 }
3094 else if (STRINGP (data))
3095 bits = SSDATA (data);
3096 else
3097 bits = (char *) bool_vector_data (data);
3098
3099 #ifdef HAVE_NTGUI
3100 {
3101 char *invertedBits;
3102 int nbytes, i;
3103 /* Windows mono bitmaps are reversed compared with X. */
3104 invertedBits = bits;
3105 nbytes = (img->width + BITS_PER_CHAR - 1) / BITS_PER_CHAR;
3106 SAFE_NALLOCA (bits, nbytes, img->height);
3107 for (i = 0; i < nbytes; i++)
3108 bits[i] = XBM_BIT_SHUFFLE (invertedBits[i]);
3109 }
3110 #endif
3111 /* Create the pixmap. */
3112
3113 if (x_check_image_size (0, img->width, img->height))
3114 Create_Pixmap_From_Bitmap_Data (f, img, bits,
3115 foreground, background,
3116 non_default_colors);
3117 else
3118 img->pixmap = NO_PIXMAP;
3119
3120 if (img->pixmap)
3121 success_p = 1;
3122 else
3123 {
3124 image_error ("Unable to create pixmap for XBM image `%s'",
3125 img->spec);
3126 x_clear_image (f, img);
3127 }
3128
3129 SAFE_FREE ();
3130 }
3131 }
3132
3133 return success_p;
3134 }
3135
3136
3137 \f
3138 /***********************************************************************
3139 XPM images
3140 ***********************************************************************/
3141
3142 #if defined (HAVE_XPM) || defined (HAVE_NS)
3143
3144 static bool xpm_image_p (Lisp_Object object);
3145 static bool xpm_load (struct frame *f, struct image *img);
3146
3147 #endif /* HAVE_XPM || HAVE_NS */
3148
3149 #ifdef HAVE_XPM
3150 #ifdef HAVE_NTGUI
3151 /* Indicate to xpm.h that we don't have Xlib. */
3152 #define FOR_MSW
3153 /* simx.h in xpm defines XColor and XImage differently than Emacs. */
3154 /* It also defines Display the same way as Emacs, but gcc 3.3 still barfs. */
3155 #define XColor xpm_XColor
3156 #define XImage xpm_XImage
3157 #define Display xpm_Display
3158 #define PIXEL_ALREADY_TYPEDEFED
3159 #include "X11/xpm.h"
3160 #undef FOR_MSW
3161 #undef XColor
3162 #undef XImage
3163 #undef Display
3164 #undef PIXEL_ALREADY_TYPEDEFED
3165 #else
3166 #include "X11/xpm.h"
3167 #endif /* HAVE_NTGUI */
3168 #endif /* HAVE_XPM */
3169
3170 #if defined (HAVE_XPM) || defined (HAVE_NS)
3171
3172 /* Indices of image specification fields in xpm_format, below. */
3173
3174 enum xpm_keyword_index
3175 {
3176 XPM_TYPE,
3177 XPM_FILE,
3178 XPM_DATA,
3179 XPM_ASCENT,
3180 XPM_MARGIN,
3181 XPM_RELIEF,
3182 XPM_ALGORITHM,
3183 XPM_HEURISTIC_MASK,
3184 XPM_MASK,
3185 XPM_COLOR_SYMBOLS,
3186 XPM_BACKGROUND,
3187 XPM_LAST
3188 };
3189
3190 /* Vector of image_keyword structures describing the format
3191 of valid XPM image specifications. */
3192
3193 static const struct image_keyword xpm_format[XPM_LAST] =
3194 {
3195 {":type", IMAGE_SYMBOL_VALUE, 1},
3196 {":file", IMAGE_STRING_VALUE, 0},
3197 {":data", IMAGE_STRING_VALUE, 0},
3198 {":ascent", IMAGE_ASCENT_VALUE, 0},
3199 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
3200 {":relief", IMAGE_INTEGER_VALUE, 0},
3201 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3202 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3203 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3204 {":color-symbols", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3205 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
3206 };
3207
3208 #if defined HAVE_NTGUI && defined WINDOWSNT
3209 static bool init_xpm_functions (void);
3210 #else
3211 #define init_xpm_functions NULL
3212 #endif
3213
3214 /* Structure describing the image type XPM. */
3215
3216 static struct image_type xpm_type =
3217 {
3218 SYMBOL_INDEX (Qxpm),
3219 xpm_image_p,
3220 xpm_load,
3221 x_clear_image,
3222 init_xpm_functions,
3223 NULL
3224 };
3225
3226 #ifdef HAVE_X_WINDOWS
3227
3228 /* Define ALLOC_XPM_COLORS if we can use Emacs' own color allocation
3229 functions for allocating image colors. Our own functions handle
3230 color allocation failures more gracefully than the ones on the XPM
3231 lib. */
3232
3233 #ifndef USE_CAIRO
3234 #if defined XpmAllocColor && defined XpmFreeColors && defined XpmColorClosure
3235 #define ALLOC_XPM_COLORS
3236 #endif
3237 #endif /* USE_CAIRO */
3238 #endif /* HAVE_X_WINDOWS */
3239
3240 #ifdef ALLOC_XPM_COLORS
3241
3242 static struct xpm_cached_color *xpm_cache_color (struct frame *, char *,
3243 XColor *, int);
3244
3245 /* An entry in a hash table used to cache color definitions of named
3246 colors. This cache is necessary to speed up XPM image loading in
3247 case we do color allocations ourselves. Without it, we would need
3248 a call to XParseColor per pixel in the image.
3249
3250 FIXME Now that we're using x_parse_color and its cache, reevaluate
3251 the need for this caching layer. */
3252
3253 struct xpm_cached_color
3254 {
3255 /* Next in collision chain. */
3256 struct xpm_cached_color *next;
3257
3258 /* Color definition (RGB and pixel color). */
3259 XColor color;
3260
3261 /* Color name. */
3262 char name[FLEXIBLE_ARRAY_MEMBER];
3263 };
3264
3265 /* The hash table used for the color cache, and its bucket vector
3266 size. */
3267
3268 #define XPM_COLOR_CACHE_BUCKETS 1001
3269 static struct xpm_cached_color **xpm_color_cache;
3270
3271 /* Initialize the color cache. */
3272
3273 static void
3274 xpm_init_color_cache (struct frame *f, XpmAttributes *attrs)
3275 {
3276 size_t nbytes = XPM_COLOR_CACHE_BUCKETS * sizeof *xpm_color_cache;
3277 xpm_color_cache = xzalloc (nbytes);
3278 init_color_table ();
3279
3280 if (attrs->valuemask & XpmColorSymbols)
3281 {
3282 int i;
3283 XColor color;
3284
3285 for (i = 0; i < attrs->numsymbols; ++i)
3286 if (x_parse_color (f, attrs->colorsymbols[i].value, &color))
3287 {
3288 color.pixel = lookup_rgb_color (f, color.red, color.green,
3289 color.blue);
3290 xpm_cache_color (f, attrs->colorsymbols[i].name, &color, -1);
3291 }
3292 }
3293 }
3294
3295 /* Free the color cache. */
3296
3297 static void
3298 xpm_free_color_cache (void)
3299 {
3300 struct xpm_cached_color *p, *next;
3301 int i;
3302
3303 for (i = 0; i < XPM_COLOR_CACHE_BUCKETS; ++i)
3304 for (p = xpm_color_cache[i]; p; p = next)
3305 {
3306 next = p->next;
3307 xfree (p);
3308 }
3309
3310 xfree (xpm_color_cache);
3311 xpm_color_cache = NULL;
3312 free_color_table ();
3313 }
3314
3315 /* Return the bucket index for color named COLOR_NAME in the color
3316 cache. */
3317
3318 static int
3319 xpm_color_bucket (char *color_name)
3320 {
3321 EMACS_UINT hash = hash_string (color_name, strlen (color_name));
3322 return hash % XPM_COLOR_CACHE_BUCKETS;
3323 }
3324
3325
3326 /* On frame F, cache values COLOR for color with name COLOR_NAME.
3327 BUCKET, if >= 0, is a precomputed bucket index. Value is the cache
3328 entry added. */
3329
3330 static struct xpm_cached_color *
3331 xpm_cache_color (struct frame *f, char *color_name, XColor *color, int bucket)
3332 {
3333 size_t nbytes;
3334 struct xpm_cached_color *p;
3335
3336 if (bucket < 0)
3337 bucket = xpm_color_bucket (color_name);
3338
3339 nbytes = offsetof (struct xpm_cached_color, name) + strlen (color_name) + 1;
3340 p = xmalloc (nbytes);
3341 strcpy (p->name, color_name);
3342 p->color = *color;
3343 p->next = xpm_color_cache[bucket];
3344 xpm_color_cache[bucket] = p;
3345 return p;
3346 }
3347
3348 /* Look up color COLOR_NAME for frame F in the color cache. If found,
3349 return the cached definition in *COLOR. Otherwise, make a new
3350 entry in the cache and allocate the color. Value is false if color
3351 allocation failed. */
3352
3353 static bool
3354 xpm_lookup_color (struct frame *f, char *color_name, XColor *color)
3355 {
3356 struct xpm_cached_color *p;
3357 int h = xpm_color_bucket (color_name);
3358
3359 for (p = xpm_color_cache[h]; p; p = p->next)
3360 if (strcmp (p->name, color_name) == 0)
3361 break;
3362
3363 if (p != NULL)
3364 *color = p->color;
3365 else if (x_parse_color (f, color_name, color))
3366 {
3367 color->pixel = lookup_rgb_color (f, color->red, color->green,
3368 color->blue);
3369 p = xpm_cache_color (f, color_name, color, h);
3370 }
3371 /* You get `opaque' at least from ImageMagick converting pbm to xpm
3372 with transparency, and it's useful. */
3373 else if (strcmp ("opaque", color_name) == 0)
3374 {
3375 memset (color, 0, sizeof (XColor)); /* Is this necessary/correct? */
3376 color->pixel = FRAME_FOREGROUND_PIXEL (f);
3377 p = xpm_cache_color (f, color_name, color, h);
3378 }
3379
3380 return p != NULL;
3381 }
3382
3383
3384 /* Callback for allocating color COLOR_NAME. Called from the XPM lib.
3385 CLOSURE is a pointer to the frame on which we allocate the
3386 color. Return in *COLOR the allocated color. Value is non-zero
3387 if successful. */
3388
3389 static int
3390 xpm_alloc_color (Display *dpy, Colormap cmap, char *color_name, XColor *color,
3391 void *closure)
3392 {
3393 return xpm_lookup_color (closure, color_name, color);
3394 }
3395
3396
3397 /* Callback for freeing NPIXELS colors contained in PIXELS. CLOSURE
3398 is a pointer to the frame on which we allocate the color. Value is
3399 non-zero if successful. */
3400
3401 static int
3402 xpm_free_colors (Display *dpy, Colormap cmap, Pixel *pixels, int npixels, void *closure)
3403 {
3404 return 1;
3405 }
3406
3407 #endif /* ALLOC_XPM_COLORS */
3408
3409
3410 #ifdef WINDOWSNT
3411
3412 /* XPM library details. */
3413
3414 DEF_DLL_FN (void, XpmFreeAttributes, (XpmAttributes *));
3415 DEF_DLL_FN (int, XpmCreateImageFromBuffer,
3416 (Display *, char *, xpm_XImage **,
3417 xpm_XImage **, XpmAttributes *));
3418 DEF_DLL_FN (int, XpmReadFileToImage,
3419 (Display *, char *, xpm_XImage **,
3420 xpm_XImage **, XpmAttributes *));
3421 DEF_DLL_FN (void, XImageFree, (xpm_XImage *));
3422
3423 static bool
3424 init_xpm_functions (void)
3425 {
3426 HMODULE library;
3427
3428 if (!(library = w32_delayed_load (Qxpm)))
3429 return 0;
3430
3431 LOAD_DLL_FN (library, XpmFreeAttributes);
3432 LOAD_DLL_FN (library, XpmCreateImageFromBuffer);
3433 LOAD_DLL_FN (library, XpmReadFileToImage);
3434 LOAD_DLL_FN (library, XImageFree);
3435 return 1;
3436 }
3437
3438 # undef XImageFree
3439 # undef XpmCreateImageFromBuffer
3440 # undef XpmFreeAttributes
3441 # undef XpmReadFileToImage
3442
3443 # define XImageFree fn_XImageFree
3444 # define XpmCreateImageFromBuffer fn_XpmCreateImageFromBuffer
3445 # define XpmFreeAttributes fn_XpmFreeAttributes
3446 # define XpmReadFileToImage fn_XpmReadFileToImage
3447
3448 #endif /* WINDOWSNT */
3449
3450 /* Value is true if COLOR_SYMBOLS is a valid color symbols list
3451 for XPM images. Such a list must consist of conses whose car and
3452 cdr are strings. */
3453
3454 static bool
3455 xpm_valid_color_symbols_p (Lisp_Object color_symbols)
3456 {
3457 while (CONSP (color_symbols))
3458 {
3459 Lisp_Object sym = XCAR (color_symbols);
3460 if (!CONSP (sym)
3461 || !STRINGP (XCAR (sym))
3462 || !STRINGP (XCDR (sym)))
3463 break;
3464 color_symbols = XCDR (color_symbols);
3465 }
3466
3467 return NILP (color_symbols);
3468 }
3469
3470
3471 /* Value is true if OBJECT is a valid XPM image specification. */
3472
3473 static bool
3474 xpm_image_p (Lisp_Object object)
3475 {
3476 struct image_keyword fmt[XPM_LAST];
3477 memcpy (fmt, xpm_format, sizeof fmt);
3478 return (parse_image_spec (object, fmt, XPM_LAST, Qxpm)
3479 /* Either `:file' or `:data' must be present. */
3480 && fmt[XPM_FILE].count + fmt[XPM_DATA].count == 1
3481 /* Either no `:color-symbols' or it's a list of conses
3482 whose car and cdr are strings. */
3483 && (fmt[XPM_COLOR_SYMBOLS].count == 0
3484 || xpm_valid_color_symbols_p (fmt[XPM_COLOR_SYMBOLS].value)));
3485 }
3486
3487 #endif /* HAVE_XPM || HAVE_NS */
3488
3489 #if defined HAVE_XPM && defined HAVE_X_WINDOWS && !defined USE_GTK
3490 ptrdiff_t
3491 x_create_bitmap_from_xpm_data (struct frame *f, const char **bits)
3492 {
3493 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
3494 ptrdiff_t id;
3495 int rc;
3496 XpmAttributes attrs;
3497 Pixmap bitmap, mask;
3498
3499 memset (&attrs, 0, sizeof attrs);
3500
3501 attrs.visual = FRAME_X_VISUAL (f);
3502 attrs.colormap = FRAME_X_COLORMAP (f);
3503 attrs.valuemask |= XpmVisual;
3504 attrs.valuemask |= XpmColormap;
3505
3506 #ifdef ALLOC_XPM_COLORS
3507 attrs.color_closure = f;
3508 attrs.alloc_color = xpm_alloc_color;
3509 attrs.free_colors = xpm_free_colors;
3510 attrs.valuemask |= XpmAllocColor | XpmFreeColors | XpmColorClosure;
3511 xpm_init_color_cache (f, &attrs);
3512 #endif
3513
3514 rc = XpmCreatePixmapFromData (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3515 (char **) bits, &bitmap, &mask, &attrs);
3516 if (rc != XpmSuccess)
3517 {
3518 XpmFreeAttributes (&attrs);
3519 return -1;
3520 }
3521
3522 id = x_allocate_bitmap_record (f);
3523 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
3524 dpyinfo->bitmaps[id - 1].have_mask = true;
3525 dpyinfo->bitmaps[id - 1].mask = mask;
3526 dpyinfo->bitmaps[id - 1].file = NULL;
3527 dpyinfo->bitmaps[id - 1].height = attrs.height;
3528 dpyinfo->bitmaps[id - 1].width = attrs.width;
3529 dpyinfo->bitmaps[id - 1].depth = attrs.depth;
3530 dpyinfo->bitmaps[id - 1].refcount = 1;
3531
3532 #ifdef ALLOC_XPM_COLORS
3533 xpm_free_color_cache ();
3534 #endif
3535 XpmFreeAttributes (&attrs);
3536 return id;
3537 }
3538 #endif /* defined (HAVE_XPM) && defined (HAVE_X_WINDOWS) */
3539
3540 /* Load image IMG which will be displayed on frame F. Value is
3541 true if successful. */
3542
3543 #ifdef HAVE_XPM
3544
3545 static bool
3546 xpm_load (struct frame *f, struct image *img)
3547 {
3548 int rc;
3549 XpmAttributes attrs;
3550 Lisp_Object specified_file, color_symbols;
3551 USE_SAFE_ALLOCA;
3552
3553 #ifdef HAVE_NTGUI
3554 HDC hdc;
3555 xpm_XImage * xpm_image = NULL, * xpm_mask = NULL;
3556 #endif /* HAVE_NTGUI */
3557
3558 /* Configure the XPM lib. Use the visual of frame F. Allocate
3559 close colors. Return colors allocated. */
3560 memset (&attrs, 0, sizeof attrs);
3561
3562 #ifndef HAVE_NTGUI
3563 attrs.visual = FRAME_X_VISUAL (f);
3564 attrs.colormap = FRAME_X_COLORMAP (f);
3565 attrs.valuemask |= XpmVisual;
3566 attrs.valuemask |= XpmColormap;
3567 #endif /* HAVE_NTGUI */
3568
3569 #ifdef ALLOC_XPM_COLORS
3570 /* Allocate colors with our own functions which handle
3571 failing color allocation more gracefully. */
3572 attrs.color_closure = f;
3573 attrs.alloc_color = xpm_alloc_color;
3574 attrs.free_colors = xpm_free_colors;
3575 attrs.valuemask |= XpmAllocColor | XpmFreeColors | XpmColorClosure;
3576 #else /* not ALLOC_XPM_COLORS */
3577 /* Let the XPM lib allocate colors. */
3578 attrs.valuemask |= XpmReturnAllocPixels;
3579 #ifdef XpmAllocCloseColors
3580 attrs.alloc_close_colors = 1;
3581 attrs.valuemask |= XpmAllocCloseColors;
3582 #else /* not XpmAllocCloseColors */
3583 attrs.closeness = 600;
3584 attrs.valuemask |= XpmCloseness;
3585 #endif /* not XpmAllocCloseColors */
3586 #endif /* ALLOC_XPM_COLORS */
3587
3588 /* If image specification contains symbolic color definitions, add
3589 these to `attrs'. */
3590 color_symbols = image_spec_value (img->spec, QCcolor_symbols, NULL);
3591 if (CONSP (color_symbols))
3592 {
3593 Lisp_Object tail;
3594 XpmColorSymbol *xpm_syms;
3595 ptrdiff_t i, size;
3596
3597 attrs.valuemask |= XpmColorSymbols;
3598
3599 /* Count number of symbols. */
3600 attrs.numsymbols = 0;
3601 for (tail = color_symbols; CONSP (tail); tail = XCDR (tail))
3602 ++attrs.numsymbols;
3603
3604 /* Allocate an XpmColorSymbol array. */
3605 SAFE_NALLOCA (xpm_syms, 1, attrs.numsymbols);
3606 size = attrs.numsymbols * sizeof *xpm_syms;
3607 memset (xpm_syms, 0, size);
3608 attrs.colorsymbols = xpm_syms;
3609
3610 /* Fill the color symbol array. */
3611 for (tail = color_symbols, i = 0;
3612 CONSP (tail);
3613 ++i, tail = XCDR (tail))
3614 {
3615 Lisp_Object name;
3616 Lisp_Object color;
3617 char *empty_string = (char *) "";
3618
3619 if (!CONSP (XCAR (tail)))
3620 {
3621 xpm_syms[i].name = empty_string;
3622 xpm_syms[i].value = empty_string;
3623 continue;
3624 }
3625 name = XCAR (XCAR (tail));
3626 color = XCDR (XCAR (tail));
3627 if (STRINGP (name))
3628 SAFE_ALLOCA_STRING (xpm_syms[i].name, name);
3629 else
3630 xpm_syms[i].name = empty_string;
3631 if (STRINGP (color))
3632 SAFE_ALLOCA_STRING (xpm_syms[i].value, color);
3633 else
3634 xpm_syms[i].value = empty_string;
3635 }
3636 }
3637
3638 /* Create a pixmap for the image, either from a file, or from a
3639 string buffer containing data in the same format as an XPM file. */
3640 #ifdef ALLOC_XPM_COLORS
3641 xpm_init_color_cache (f, &attrs);
3642 #endif
3643
3644 specified_file = image_spec_value (img->spec, QCfile, NULL);
3645
3646 #ifdef HAVE_NTGUI
3647 {
3648 HDC frame_dc = get_frame_dc (f);
3649 hdc = CreateCompatibleDC (frame_dc);
3650 release_frame_dc (f, frame_dc);
3651 }
3652 #endif /* HAVE_NTGUI */
3653
3654 if (STRINGP (specified_file))
3655 {
3656 Lisp_Object file = x_find_image_file (specified_file);
3657 if (!STRINGP (file))
3658 {
3659 image_error ("Cannot find image file `%s'", specified_file);
3660 #ifdef ALLOC_XPM_COLORS
3661 xpm_free_color_cache ();
3662 #endif
3663 SAFE_FREE ();
3664 return 0;
3665 }
3666
3667 file = ENCODE_FILE (file);
3668 #ifdef HAVE_NTGUI
3669 #ifdef WINDOWSNT
3670 /* FILE is encoded in UTF-8, but image libraries on Windows
3671 support neither UTF-8 nor UTF-16 encoded file names. So we
3672 need to re-encode it in ANSI. */
3673 file = ansi_encode_filename (file);
3674 #endif
3675 /* XpmReadFileToPixmap is not available in the Windows port of
3676 libxpm. But XpmReadFileToImage almost does what we want. */
3677 rc = XpmReadFileToImage (&hdc, SDATA (file),
3678 &xpm_image, &xpm_mask,
3679 &attrs);
3680 #else
3681 rc = XpmReadFileToImage (FRAME_X_DISPLAY (f), SSDATA (file),
3682 &img->ximg, &img->mask_img,
3683 &attrs);
3684 #endif /* HAVE_NTGUI */
3685 }
3686 else
3687 {
3688 Lisp_Object buffer = image_spec_value (img->spec, QCdata, NULL);
3689 if (!STRINGP (buffer))
3690 {
3691 image_error ("Invalid image data `%s'", buffer);
3692 #ifdef ALLOC_XPM_COLORS
3693 xpm_free_color_cache ();
3694 #endif
3695 SAFE_FREE ();
3696 return 0;
3697 }
3698 #ifdef HAVE_NTGUI
3699 /* XpmCreatePixmapFromBuffer is not available in the Windows port
3700 of libxpm. But XpmCreateImageFromBuffer almost does what we want. */
3701 rc = XpmCreateImageFromBuffer (&hdc, SDATA (buffer),
3702 &xpm_image, &xpm_mask,
3703 &attrs);
3704 #else
3705 rc = XpmCreateImageFromBuffer (FRAME_X_DISPLAY (f), SSDATA (buffer),
3706 &img->ximg, &img->mask_img,
3707 &attrs);
3708 #endif /* HAVE_NTGUI */
3709 }
3710
3711 #ifdef USE_CAIRO
3712 // Load very specific Xpm:s.
3713 if (rc == XpmSuccess
3714 && img->ximg->format == ZPixmap
3715 && img->ximg->bits_per_pixel == 32
3716 && (! img->mask_img || img->mask_img->bits_per_pixel == 1))
3717 {
3718 int width = img->ximg->width;
3719 int height = img->ximg->height;
3720 unsigned char *data = (unsigned char *) xmalloc (width*height*4);
3721 int i;
3722 uint32_t *od = (uint32_t *)data;
3723 uint32_t *id = (uint32_t *)img->ximg->data;
3724 char *mid = img->mask_img ? img->mask_img->data : 0;
3725 uint32_t bgcolor = get_spec_bg_or_alpha_as_argb (img, f);
3726
3727 for (i = 0; i < height; ++i)
3728 {
3729 int k;
3730 for (k = 0; k < width; ++k)
3731 {
3732 int idx = i * img->ximg->bytes_per_line/4 + k;
3733 int maskidx = mid ? i * img->mask_img->bytes_per_line + k/8 : 0;
3734 int mask = mid ? mid[maskidx] & (1 << (k % 8)) : 1;
3735
3736 if (mask) od[idx] = id[idx] + 0xff000000; // ff => full alpha
3737 else od[idx] = bgcolor;
3738 }
3739 }
3740
3741 create_cairo_image_surface (img, data, width, height);
3742 }
3743 else
3744 {
3745 rc = XpmFileInvalid;
3746 x_clear_image (f, img);
3747 }
3748 #else
3749 #ifdef HAVE_X_WINDOWS
3750 if (rc == XpmSuccess)
3751 {
3752 img->pixmap = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3753 img->ximg->width, img->ximg->height,
3754 img->ximg->depth);
3755 if (img->pixmap == NO_PIXMAP)
3756 {
3757 x_clear_image (f, img);
3758 rc = XpmNoMemory;
3759 }
3760 else if (img->mask_img)
3761 {
3762 img->mask = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3763 img->mask_img->width,
3764 img->mask_img->height,
3765 img->mask_img->depth);
3766 if (img->mask == NO_PIXMAP)
3767 {
3768 x_clear_image (f, img);
3769 rc = XpmNoMemory;
3770 }
3771 }
3772 }
3773 #endif
3774 #endif /* ! USE_CAIRO */
3775
3776 if (rc == XpmSuccess)
3777 {
3778 #if defined (COLOR_TABLE_SUPPORT) && defined (ALLOC_XPM_COLORS)
3779 img->colors = colors_in_color_table (&img->ncolors);
3780 #else /* not ALLOC_XPM_COLORS */
3781 int i;
3782
3783 #ifdef HAVE_NTGUI
3784 /* W32 XPM uses XImage to wrap what W32 Emacs calls a Pixmap,
3785 plus some duplicate attributes. */
3786 if (xpm_image && xpm_image->bitmap)
3787 {
3788 img->pixmap = xpm_image->bitmap;
3789 /* XImageFree in libXpm frees XImage struct without destroying
3790 the bitmap, which is what we want. */
3791 XImageFree (xpm_image);
3792 }
3793 if (xpm_mask && xpm_mask->bitmap)
3794 {
3795 /* The mask appears to be inverted compared with what we expect.
3796 TODO: invert our expectations. See other places where we
3797 have to invert bits because our idea of masks is backwards. */
3798 HGDIOBJ old_obj;
3799 old_obj = SelectObject (hdc, xpm_mask->bitmap);
3800
3801 PatBlt (hdc, 0, 0, xpm_mask->width, xpm_mask->height, DSTINVERT);
3802 SelectObject (hdc, old_obj);
3803
3804 img->mask = xpm_mask->bitmap;
3805 XImageFree (xpm_mask);
3806 DeleteDC (hdc);
3807 }
3808
3809 DeleteDC (hdc);
3810 #endif /* HAVE_NTGUI */
3811
3812 /* Remember allocated colors. */
3813 img->colors = xnmalloc (attrs.nalloc_pixels, sizeof *img->colors);
3814 img->ncolors = attrs.nalloc_pixels;
3815 for (i = 0; i < attrs.nalloc_pixels; ++i)
3816 {
3817 img->colors[i] = attrs.alloc_pixels[i];
3818 #ifdef DEBUG_X_COLORS
3819 register_color (img->colors[i]);
3820 #endif
3821 }
3822 #endif /* not ALLOC_XPM_COLORS */
3823
3824 img->width = attrs.width;
3825 img->height = attrs.height;
3826 eassert (img->width > 0 && img->height > 0);
3827
3828 /* The call to XpmFreeAttributes below frees attrs.alloc_pixels. */
3829 XpmFreeAttributes (&attrs);
3830
3831 #ifdef HAVE_X_WINDOWS
3832 /* Maybe fill in the background field while we have ximg handy. */
3833 IMAGE_BACKGROUND (img, f, img->ximg);
3834 if (img->mask_img)
3835 /* Fill in the background_transparent field while we have the
3836 mask handy. */
3837 image_background_transparent (img, f, img->mask_img);
3838 #endif
3839 }
3840 else
3841 {
3842 #ifdef HAVE_NTGUI
3843 DeleteDC (hdc);
3844 #endif /* HAVE_NTGUI */
3845
3846 switch (rc)
3847 {
3848 case XpmOpenFailed:
3849 image_error ("Error opening XPM file (%s)", img->spec);
3850 break;
3851
3852 case XpmFileInvalid:
3853 image_error ("Invalid XPM file (%s)", img->spec);
3854 break;
3855
3856 case XpmNoMemory:
3857 image_error ("Out of memory (%s)", img->spec);
3858 break;
3859
3860 case XpmColorFailed:
3861 image_error ("Color allocation error (%s)", img->spec);
3862 break;
3863
3864 default:
3865 image_error ("Unknown error (%s)", img->spec);
3866 break;
3867 }
3868 }
3869
3870 #ifdef ALLOC_XPM_COLORS
3871 xpm_free_color_cache ();
3872 #endif
3873 SAFE_FREE ();
3874 return rc == XpmSuccess;
3875 }
3876
3877 #endif /* HAVE_XPM */
3878
3879 #if defined (HAVE_NS) && !defined (HAVE_XPM)
3880
3881 /* XPM support functions for NS where libxpm is not available.
3882 Only XPM version 3 (without any extensions) is supported. */
3883
3884 static void xpm_put_color_table_v (Lisp_Object, const unsigned char *,
3885 int, Lisp_Object);
3886 static Lisp_Object xpm_get_color_table_v (Lisp_Object,
3887 const unsigned char *, int);
3888 static void xpm_put_color_table_h (Lisp_Object, const unsigned char *,
3889 int, Lisp_Object);
3890 static Lisp_Object xpm_get_color_table_h (Lisp_Object,
3891 const unsigned char *, int);
3892
3893 /* Tokens returned from xpm_scan. */
3894
3895 enum xpm_token
3896 {
3897 XPM_TK_IDENT = 256,
3898 XPM_TK_STRING,
3899 XPM_TK_EOF
3900 };
3901
3902 /* Scan an XPM data and return a character (< 256) or a token defined
3903 by enum xpm_token above. *S and END are the start (inclusive) and
3904 the end (exclusive) addresses of the data, respectively. Advance
3905 *S while scanning. If token is either XPM_TK_IDENT or
3906 XPM_TK_STRING, *BEG and *LEN are set to the start address and the
3907 length of the corresponding token, respectively. */
3908
3909 static int
3910 xpm_scan (const unsigned char **s,
3911 const unsigned char *end,
3912 const unsigned char **beg,
3913 ptrdiff_t *len)
3914 {
3915 int c;
3916
3917 while (*s < end)
3918 {
3919 /* Skip white-space. */
3920 while (*s < end && (c = *(*s)++, c_isspace (c)))
3921 ;
3922
3923 /* gnus-pointer.xpm uses '-' in its identifier.
3924 sb-dir-plus.xpm uses '+' in its identifier. */
3925 if (c_isalpha (c) || c == '_' || c == '-' || c == '+')
3926 {
3927 *beg = *s - 1;
3928 while (*s < end
3929 && (c = **s, c_isalnum (c)
3930 || c == '_' || c == '-' || c == '+'))
3931 ++*s;
3932 *len = *s - *beg;
3933 return XPM_TK_IDENT;
3934 }
3935 else if (c == '"')
3936 {
3937 *beg = *s;
3938 while (*s < end && **s != '"')
3939 ++*s;
3940 *len = *s - *beg;
3941 if (*s < end)
3942 ++*s;
3943 return XPM_TK_STRING;
3944 }
3945 else if (c == '/')
3946 {
3947 if (*s < end && **s == '*')
3948 {
3949 /* C-style comment. */
3950 ++*s;
3951 do
3952 {
3953 while (*s < end && *(*s)++ != '*')
3954 ;
3955 }
3956 while (*s < end && **s != '/');
3957 if (*s < end)
3958 ++*s;
3959 }
3960 else
3961 return c;
3962 }
3963 else
3964 return c;
3965 }
3966
3967 return XPM_TK_EOF;
3968 }
3969
3970 /* Functions for color table lookup in XPM data. A key is a string
3971 specifying the color of each pixel in XPM data. A value is either
3972 an integer that specifies a pixel color, Qt that specifies
3973 transparency, or Qnil for the unspecified color. If the length of
3974 the key string is one, a vector is used as a table. Otherwise, a
3975 hash table is used. */
3976
3977 static Lisp_Object
3978 xpm_make_color_table_v (void (**put_func) (Lisp_Object,
3979 const unsigned char *,
3980 int,
3981 Lisp_Object),
3982 Lisp_Object (**get_func) (Lisp_Object,
3983 const unsigned char *,
3984 int))
3985 {
3986 *put_func = xpm_put_color_table_v;
3987 *get_func = xpm_get_color_table_v;
3988 return Fmake_vector (make_number (256), Qnil);
3989 }
3990
3991 static void
3992 xpm_put_color_table_v (Lisp_Object color_table,
3993 const unsigned char *chars_start,
3994 int chars_len,
3995 Lisp_Object color)
3996 {
3997 ASET (color_table, *chars_start, color);
3998 }
3999
4000 static Lisp_Object
4001 xpm_get_color_table_v (Lisp_Object color_table,
4002 const unsigned char *chars_start,
4003 int chars_len)
4004 {
4005 return AREF (color_table, *chars_start);
4006 }
4007
4008 static Lisp_Object
4009 xpm_make_color_table_h (void (**put_func) (Lisp_Object,
4010 const unsigned char *,
4011 int,
4012 Lisp_Object),
4013 Lisp_Object (**get_func) (Lisp_Object,
4014 const unsigned char *,
4015 int))
4016 {
4017 *put_func = xpm_put_color_table_h;
4018 *get_func = xpm_get_color_table_h;
4019 return make_hash_table (hashtest_equal, make_number (DEFAULT_HASH_SIZE),
4020 make_float (DEFAULT_REHASH_SIZE),
4021 make_float (DEFAULT_REHASH_THRESHOLD),
4022 Qnil);
4023 }
4024
4025 static void
4026 xpm_put_color_table_h (Lisp_Object color_table,
4027 const unsigned char *chars_start,
4028 int chars_len,
4029 Lisp_Object color)
4030 {
4031 struct Lisp_Hash_Table *table = XHASH_TABLE (color_table);
4032 EMACS_UINT hash_code;
4033 Lisp_Object chars = make_unibyte_string (chars_start, chars_len);
4034
4035 hash_lookup (table, chars, &hash_code);
4036 hash_put (table, chars, color, hash_code);
4037 }
4038
4039 static Lisp_Object
4040 xpm_get_color_table_h (Lisp_Object color_table,
4041 const unsigned char *chars_start,
4042 int chars_len)
4043 {
4044 struct Lisp_Hash_Table *table = XHASH_TABLE (color_table);
4045 ptrdiff_t i =
4046 hash_lookup (table, make_unibyte_string (chars_start, chars_len), NULL);
4047
4048 return i >= 0 ? HASH_VALUE (table, i) : Qnil;
4049 }
4050
4051 enum xpm_color_key {
4052 XPM_COLOR_KEY_S,
4053 XPM_COLOR_KEY_M,
4054 XPM_COLOR_KEY_G4,
4055 XPM_COLOR_KEY_G,
4056 XPM_COLOR_KEY_C
4057 };
4058
4059 static const char xpm_color_key_strings[][4] = {"s", "m", "g4", "g", "c"};
4060
4061 static int
4062 xpm_str_to_color_key (const char *s)
4063 {
4064 int i;
4065
4066 for (i = 0; i < ARRAYELTS (xpm_color_key_strings); i++)
4067 if (strcmp (xpm_color_key_strings[i], s) == 0)
4068 return i;
4069 return -1;
4070 }
4071
4072 static bool
4073 xpm_load_image (struct frame *f,
4074 struct image *img,
4075 const unsigned char *contents,
4076 const unsigned char *end)
4077 {
4078 const unsigned char *s = contents, *beg, *str;
4079 unsigned char buffer[BUFSIZ];
4080 int width, height, x, y;
4081 int num_colors, chars_per_pixel;
4082 ptrdiff_t len;
4083 int LA1;
4084 void (*put_color_table) (Lisp_Object, const unsigned char *, int, Lisp_Object);
4085 Lisp_Object (*get_color_table) (Lisp_Object, const unsigned char *, int);
4086 Lisp_Object frame, color_symbols, color_table;
4087 int best_key;
4088 bool have_mask = false;
4089 XImagePtr ximg = NULL, mask_img = NULL;
4090
4091 #define match() \
4092 LA1 = xpm_scan (&s, end, &beg, &len)
4093
4094 #define expect(TOKEN) \
4095 do \
4096 { \
4097 if (LA1 != (TOKEN)) \
4098 goto failure; \
4099 match (); \
4100 } \
4101 while (0)
4102
4103 #define expect_ident(IDENT) \
4104 if (LA1 == XPM_TK_IDENT \
4105 && strlen ((IDENT)) == len && memcmp ((IDENT), beg, len) == 0) \
4106 match (); \
4107 else \
4108 goto failure
4109
4110 if (!(end - s >= 9 && memcmp (s, "/* XPM */", 9) == 0))
4111 goto failure;
4112 s += 9;
4113 match ();
4114 expect_ident ("static");
4115 expect_ident ("char");
4116 expect ('*');
4117 expect (XPM_TK_IDENT);
4118 expect ('[');
4119 expect (']');
4120 expect ('=');
4121 expect ('{');
4122 expect (XPM_TK_STRING);
4123 if (len >= BUFSIZ)
4124 goto failure;
4125 memcpy (buffer, beg, len);
4126 buffer[len] = '\0';
4127 if (sscanf (buffer, "%d %d %d %d", &width, &height,
4128 &num_colors, &chars_per_pixel) != 4
4129 || width <= 0 || height <= 0
4130 || num_colors <= 0 || chars_per_pixel <= 0)
4131 goto failure;
4132
4133 if (!check_image_size (f, width, height))
4134 {
4135 image_size_error ();
4136 goto failure;
4137 }
4138
4139 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0)
4140 #ifndef HAVE_NS
4141 || !image_create_x_image_and_pixmap (f, img, width, height, 1,
4142 &mask_img, 1)
4143 #endif
4144 )
4145 {
4146 image_error ("Image too large");
4147 goto failure;
4148 }
4149
4150 expect (',');
4151
4152 XSETFRAME (frame, f);
4153 if (!NILP (Fxw_display_color_p (frame)))
4154 best_key = XPM_COLOR_KEY_C;
4155 else if (!NILP (Fx_display_grayscale_p (frame)))
4156 best_key = (XFASTINT (Fx_display_planes (frame)) > 2
4157 ? XPM_COLOR_KEY_G : XPM_COLOR_KEY_G4);
4158 else
4159 best_key = XPM_COLOR_KEY_M;
4160
4161 color_symbols = image_spec_value (img->spec, QCcolor_symbols, NULL);
4162 if (chars_per_pixel == 1)
4163 color_table = xpm_make_color_table_v (&put_color_table,
4164 &get_color_table);
4165 else
4166 color_table = xpm_make_color_table_h (&put_color_table,
4167 &get_color_table);
4168
4169 while (num_colors-- > 0)
4170 {
4171 char *color, *max_color;
4172 int key, next_key, max_key = 0;
4173 Lisp_Object symbol_color = Qnil, color_val;
4174 XColor cdef;
4175
4176 expect (XPM_TK_STRING);
4177 if (len <= chars_per_pixel || len >= BUFSIZ + chars_per_pixel)
4178 goto failure;
4179 memcpy (buffer, beg + chars_per_pixel, len - chars_per_pixel);
4180 buffer[len - chars_per_pixel] = '\0';
4181
4182 str = strtok (buffer, " \t");
4183 if (str == NULL)
4184 goto failure;
4185 key = xpm_str_to_color_key (str);
4186 if (key < 0)
4187 goto failure;
4188 do
4189 {
4190 color = strtok (NULL, " \t");
4191 if (color == NULL)
4192 goto failure;
4193
4194 while ((str = strtok (NULL, " \t")) != NULL)
4195 {
4196 next_key = xpm_str_to_color_key (str);
4197 if (next_key >= 0)
4198 break;
4199 color[strlen (color)] = ' ';
4200 }
4201
4202 if (key == XPM_COLOR_KEY_S)
4203 {
4204 if (NILP (symbol_color))
4205 symbol_color = build_string (color);
4206 }
4207 else if (max_key < key && key <= best_key)
4208 {
4209 max_key = key;
4210 max_color = color;
4211 }
4212 key = next_key;
4213 }
4214 while (str);
4215
4216 color_val = Qnil;
4217 if (!NILP (color_symbols) && !NILP (symbol_color))
4218 {
4219 Lisp_Object specified_color = Fassoc (symbol_color, color_symbols);
4220
4221 if (CONSP (specified_color) && STRINGP (XCDR (specified_color)))
4222 {
4223 if (xstrcasecmp (SSDATA (XCDR (specified_color)), "None") == 0)
4224 color_val = Qt;
4225 else if (x_defined_color (f, SSDATA (XCDR (specified_color)),
4226 &cdef, 0))
4227 color_val = make_number (cdef.pixel);
4228 }
4229 }
4230 if (NILP (color_val) && max_key > 0)
4231 {
4232 if (xstrcasecmp (max_color, "None") == 0)
4233 color_val = Qt;
4234 else if (x_defined_color (f, max_color, &cdef, 0))
4235 color_val = make_number (cdef.pixel);
4236 }
4237 if (!NILP (color_val))
4238 (*put_color_table) (color_table, beg, chars_per_pixel, color_val);
4239
4240 expect (',');
4241 }
4242
4243 for (y = 0; y < height; y++)
4244 {
4245 expect (XPM_TK_STRING);
4246 str = beg;
4247 if (len < width * chars_per_pixel)
4248 goto failure;
4249 for (x = 0; x < width; x++, str += chars_per_pixel)
4250 {
4251 Lisp_Object color_val =
4252 (*get_color_table) (color_table, str, chars_per_pixel);
4253
4254 XPutPixel (ximg, x, y,
4255 (INTEGERP (color_val) ? XINT (color_val)
4256 : FRAME_FOREGROUND_PIXEL (f)));
4257 #ifndef HAVE_NS
4258 XPutPixel (mask_img, x, y,
4259 (!EQ (color_val, Qt) ? PIX_MASK_DRAW
4260 : (have_mask = true, PIX_MASK_RETAIN)));
4261 #else
4262 if (EQ (color_val, Qt))
4263 ns_set_alpha (ximg, x, y, 0);
4264 #endif
4265 }
4266 if (y + 1 < height)
4267 expect (',');
4268 }
4269
4270 img->width = width;
4271 img->height = height;
4272
4273 /* Maybe fill in the background field while we have ximg handy. */
4274 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
4275 IMAGE_BACKGROUND (img, f, ximg);
4276
4277 image_put_x_image (f, img, ximg, 0);
4278 #ifndef HAVE_NS
4279 if (have_mask)
4280 {
4281 /* Fill in the background_transparent field while we have the
4282 mask handy. */
4283 image_background_transparent (img, f, mask_img);
4284
4285 image_put_x_image (f, img, mask_img, 1);
4286 }
4287 else
4288 {
4289 x_destroy_x_image (mask_img);
4290 x_clear_image_1 (f, img, CLEAR_IMAGE_MASK);
4291 }
4292 #endif
4293 return 1;
4294
4295 failure:
4296 image_error ("Invalid XPM file (%s)", img->spec);
4297 x_destroy_x_image (ximg);
4298 x_destroy_x_image (mask_img);
4299 x_clear_image (f, img);
4300 return 0;
4301
4302 #undef match
4303 #undef expect
4304 #undef expect_ident
4305 }
4306
4307 static bool
4308 xpm_load (struct frame *f,
4309 struct image *img)
4310 {
4311 bool success_p = 0;
4312 Lisp_Object file_name;
4313
4314 /* If IMG->spec specifies a file name, create a non-file spec from it. */
4315 file_name = image_spec_value (img->spec, QCfile, NULL);
4316 if (STRINGP (file_name))
4317 {
4318 int fd;
4319 Lisp_Object file = x_find_image_fd (file_name, &fd);
4320 if (!STRINGP (file))
4321 {
4322 image_error ("Cannot find image file `%s'", file_name);
4323 return 0;
4324 }
4325
4326 ptrdiff_t size;
4327 unsigned char *contents = slurp_file (fd, &size);
4328 if (contents == NULL)
4329 {
4330 image_error ("Error loading XPM image `%s'", file);
4331 return 0;
4332 }
4333
4334 success_p = xpm_load_image (f, img, contents, contents + size);
4335 xfree (contents);
4336 }
4337 else
4338 {
4339 Lisp_Object data;
4340
4341 data = image_spec_value (img->spec, QCdata, NULL);
4342 if (!STRINGP (data))
4343 {
4344 image_error ("Invalid image data `%s'", data);
4345 return 0;
4346 }
4347 success_p = xpm_load_image (f, img, SDATA (data),
4348 SDATA (data) + SBYTES (data));
4349 }
4350
4351 return success_p;
4352 }
4353
4354 #endif /* HAVE_NS && !HAVE_XPM */
4355
4356
4357 \f
4358 /***********************************************************************
4359 Color table
4360 ***********************************************************************/
4361
4362 #ifdef COLOR_TABLE_SUPPORT
4363
4364 /* An entry in the color table mapping an RGB color to a pixel color. */
4365
4366 struct ct_color
4367 {
4368 int r, g, b;
4369 unsigned long pixel;
4370
4371 /* Next in color table collision list. */
4372 struct ct_color *next;
4373 };
4374
4375 /* The bucket vector size to use. Must be prime. */
4376
4377 #define CT_SIZE 101
4378
4379 /* Value is a hash of the RGB color given by R, G, and B. */
4380
4381 static unsigned
4382 ct_hash_rgb (unsigned r, unsigned g, unsigned b)
4383 {
4384 return (r << 16) ^ (g << 8) ^ b;
4385 }
4386
4387 /* The color hash table. */
4388
4389 static struct ct_color **ct_table;
4390
4391 /* Number of entries in the color table. */
4392
4393 static int ct_colors_allocated;
4394 enum
4395 {
4396 ct_colors_allocated_max =
4397 min (INT_MAX,
4398 min (PTRDIFF_MAX, SIZE_MAX) / sizeof (unsigned long))
4399 };
4400
4401 /* Initialize the color table. */
4402
4403 static void
4404 init_color_table (void)
4405 {
4406 int size = CT_SIZE * sizeof (*ct_table);
4407 ct_table = xzalloc (size);
4408 ct_colors_allocated = 0;
4409 }
4410
4411
4412 /* Free memory associated with the color table. */
4413
4414 static void
4415 free_color_table (void)
4416 {
4417 int i;
4418 struct ct_color *p, *next;
4419
4420 for (i = 0; i < CT_SIZE; ++i)
4421 for (p = ct_table[i]; p; p = next)
4422 {
4423 next = p->next;
4424 xfree (p);
4425 }
4426
4427 xfree (ct_table);
4428 ct_table = NULL;
4429 }
4430
4431
4432 /* Value is a pixel color for RGB color R, G, B on frame F. If an
4433 entry for that color already is in the color table, return the
4434 pixel color of that entry. Otherwise, allocate a new color for R,
4435 G, B, and make an entry in the color table. */
4436
4437 static unsigned long
4438 lookup_rgb_color (struct frame *f, int r, int g, int b)
4439 {
4440 unsigned hash = ct_hash_rgb (r, g, b);
4441 int i = hash % CT_SIZE;
4442 struct ct_color *p;
4443 Display_Info *dpyinfo;
4444
4445 /* Handle TrueColor visuals specially, which improves performance by
4446 two orders of magnitude. Freeing colors on TrueColor visuals is
4447 a nop, and pixel colors specify RGB values directly. See also
4448 the Xlib spec, chapter 3.1. */
4449 dpyinfo = FRAME_DISPLAY_INFO (f);
4450 if (dpyinfo->red_bits > 0)
4451 {
4452 /* Apply gamma-correction like normal color allocation does. */
4453 if (f->gamma)
4454 {
4455 XColor color;
4456 color.red = r, color.green = g, color.blue = b;
4457 gamma_correct (f, &color);
4458 r = color.red, g = color.green, b = color.blue;
4459 }
4460
4461 return x_make_truecolor_pixel (dpyinfo, r, g, b);
4462 }
4463
4464 for (p = ct_table[i]; p; p = p->next)
4465 if (p->r == r && p->g == g && p->b == b)
4466 break;
4467
4468 if (p == NULL)
4469 {
4470
4471 #ifdef HAVE_X_WINDOWS
4472 XColor color;
4473 Colormap cmap;
4474 bool rc;
4475 #else
4476 COLORREF color;
4477 #endif
4478
4479 if (ct_colors_allocated_max <= ct_colors_allocated)
4480 return FRAME_FOREGROUND_PIXEL (f);
4481
4482 #ifdef HAVE_X_WINDOWS
4483 color.red = r;
4484 color.green = g;
4485 color.blue = b;
4486
4487 cmap = FRAME_X_COLORMAP (f);
4488 rc = x_alloc_nearest_color (f, cmap, &color);
4489 if (rc)
4490 {
4491 ++ct_colors_allocated;
4492 p = xmalloc (sizeof *p);
4493 p->r = r;
4494 p->g = g;
4495 p->b = b;
4496 p->pixel = color.pixel;
4497 p->next = ct_table[i];
4498 ct_table[i] = p;
4499 }
4500 else
4501 return FRAME_FOREGROUND_PIXEL (f);
4502
4503 #else
4504 #ifdef HAVE_NTGUI
4505 color = PALETTERGB (r, g, b);
4506 #else
4507 color = RGB_TO_ULONG (r, g, b);
4508 #endif /* HAVE_NTGUI */
4509 ++ct_colors_allocated;
4510 p = xmalloc (sizeof *p);
4511 p->r = r;
4512 p->g = g;
4513 p->b = b;
4514 p->pixel = color;
4515 p->next = ct_table[i];
4516 ct_table[i] = p;
4517 #endif /* HAVE_X_WINDOWS */
4518
4519 }
4520
4521 return p->pixel;
4522 }
4523
4524
4525 /* Look up pixel color PIXEL which is used on frame F in the color
4526 table. If not already present, allocate it. Value is PIXEL. */
4527
4528 static unsigned long
4529 lookup_pixel_color (struct frame *f, unsigned long pixel)
4530 {
4531 int i = pixel % CT_SIZE;
4532 struct ct_color *p;
4533
4534 for (p = ct_table[i]; p; p = p->next)
4535 if (p->pixel == pixel)
4536 break;
4537
4538 if (p == NULL)
4539 {
4540 XColor color;
4541 Colormap cmap;
4542 bool rc;
4543
4544 if (ct_colors_allocated >= ct_colors_allocated_max)
4545 return FRAME_FOREGROUND_PIXEL (f);
4546
4547 #ifdef HAVE_X_WINDOWS
4548 cmap = FRAME_X_COLORMAP (f);
4549 color.pixel = pixel;
4550 x_query_color (f, &color);
4551 rc = x_alloc_nearest_color (f, cmap, &color);
4552 #else
4553 block_input ();
4554 cmap = DefaultColormapOfScreen (FRAME_X_SCREEN (f));
4555 color.pixel = pixel;
4556 XQueryColor (NULL, cmap, &color);
4557 rc = x_alloc_nearest_color (f, cmap, &color);
4558 unblock_input ();
4559 #endif /* HAVE_X_WINDOWS */
4560
4561 if (rc)
4562 {
4563 ++ct_colors_allocated;
4564
4565 p = xmalloc (sizeof *p);
4566 p->r = color.red;
4567 p->g = color.green;
4568 p->b = color.blue;
4569 p->pixel = pixel;
4570 p->next = ct_table[i];
4571 ct_table[i] = p;
4572 }
4573 else
4574 return FRAME_FOREGROUND_PIXEL (f);
4575 }
4576 return p->pixel;
4577 }
4578
4579
4580 /* Value is a vector of all pixel colors contained in the color table,
4581 allocated via xmalloc. Set *N to the number of colors. */
4582
4583 static unsigned long *
4584 colors_in_color_table (int *n)
4585 {
4586 int i, j;
4587 struct ct_color *p;
4588 unsigned long *colors;
4589
4590 if (ct_colors_allocated == 0)
4591 {
4592 *n = 0;
4593 colors = NULL;
4594 }
4595 else
4596 {
4597 colors = xmalloc (ct_colors_allocated * sizeof *colors);
4598 *n = ct_colors_allocated;
4599
4600 for (i = j = 0; i < CT_SIZE; ++i)
4601 for (p = ct_table[i]; p; p = p->next)
4602 colors[j++] = p->pixel;
4603 }
4604
4605 return colors;
4606 }
4607
4608 #else /* COLOR_TABLE_SUPPORT */
4609
4610 static unsigned long
4611 lookup_rgb_color (struct frame *f, int r, int g, int b)
4612 {
4613 #ifdef HAVE_NTGUI
4614 return PALETTERGB (r >> 8, g >> 8, b >> 8);
4615 #elif defined HAVE_NS
4616 return RGB_TO_ULONG (r >> 8, g >> 8, b >> 8);
4617 #else
4618 xsignal1 (Qfile_error,
4619 build_string ("This Emacs mishandles this image file type"));
4620 #endif
4621 }
4622
4623 static void
4624 init_color_table (void)
4625 {
4626 }
4627 #endif /* COLOR_TABLE_SUPPORT */
4628
4629 \f
4630 /***********************************************************************
4631 Algorithms
4632 ***********************************************************************/
4633
4634 /* Edge detection matrices for different edge-detection
4635 strategies. */
4636
4637 static int emboss_matrix[9] = {
4638 /* x - 1 x x + 1 */
4639 2, -1, 0, /* y - 1 */
4640 -1, 0, 1, /* y */
4641 0, 1, -2 /* y + 1 */
4642 };
4643
4644 static int laplace_matrix[9] = {
4645 /* x - 1 x x + 1 */
4646 1, 0, 0, /* y - 1 */
4647 0, 0, 0, /* y */
4648 0, 0, -1 /* y + 1 */
4649 };
4650
4651 /* Value is the intensity of the color whose red/green/blue values
4652 are R, G, and B. */
4653
4654 #define COLOR_INTENSITY(R, G, B) ((2 * (R) + 3 * (G) + (B)) / 6)
4655
4656
4657 /* On frame F, return an array of XColor structures describing image
4658 IMG->pixmap. Each XColor structure has its pixel color set. RGB_P
4659 means also fill the red/green/blue members of the XColor
4660 structures. Value is a pointer to the array of XColors structures,
4661 allocated with xmalloc; it must be freed by the caller. */
4662
4663 static XColor *
4664 x_to_xcolors (struct frame *f, struct image *img, bool rgb_p)
4665 {
4666 int x, y;
4667 XColor *colors, *p;
4668 XImagePtr_or_DC ximg;
4669 ptrdiff_t nbytes;
4670 #ifdef HAVE_NTGUI
4671 HGDIOBJ prev;
4672 #endif /* HAVE_NTGUI */
4673
4674 if (INT_MULTIPLY_WRAPV (sizeof *colors, img->width, &nbytes)
4675 || INT_MULTIPLY_WRAPV (img->height, nbytes, &nbytes)
4676 || SIZE_MAX < nbytes)
4677 memory_full (SIZE_MAX);
4678 colors = xmalloc (nbytes);
4679
4680 /* Get the X image or create a memory device context for IMG. */
4681 ximg = image_get_x_image_or_dc (f, img, 0, &prev);
4682
4683 /* Fill the `pixel' members of the XColor array. I wished there
4684 were an easy and portable way to circumvent XGetPixel. */
4685 p = colors;
4686 for (y = 0; y < img->height; ++y)
4687 {
4688 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
4689 XColor *row = p;
4690 for (x = 0; x < img->width; ++x, ++p)
4691 p->pixel = GET_PIXEL (ximg, x, y);
4692 if (rgb_p)
4693 x_query_colors (f, row, img->width);
4694
4695 #else
4696
4697 for (x = 0; x < img->width; ++x, ++p)
4698 {
4699 /* W32_TODO: palette support needed here? */
4700 p->pixel = GET_PIXEL (ximg, x, y);
4701 if (rgb_p)
4702 {
4703 p->red = RED16_FROM_ULONG (p->pixel);
4704 p->green = GREEN16_FROM_ULONG (p->pixel);
4705 p->blue = BLUE16_FROM_ULONG (p->pixel);
4706 }
4707 }
4708 #endif /* HAVE_X_WINDOWS */
4709 }
4710
4711 image_unget_x_image_or_dc (img, 0, ximg, prev);
4712
4713 return colors;
4714 }
4715
4716 #ifdef HAVE_NTGUI
4717
4718 /* Put a pixel of COLOR at position X, Y in XIMG. XIMG must have been
4719 created with CreateDIBSection, with the pointer to the bit values
4720 stored in ximg->data. */
4721
4722 static void
4723 XPutPixel (XImagePtr ximg, int x, int y, COLORREF color)
4724 {
4725 int width = ximg->info.bmiHeader.biWidth;
4726 unsigned char * pixel;
4727
4728 /* True color images. */
4729 if (ximg->info.bmiHeader.biBitCount == 24)
4730 {
4731 int rowbytes = width * 3;
4732 /* Ensure scanlines are aligned on 4 byte boundaries. */
4733 if (rowbytes % 4)
4734 rowbytes += 4 - (rowbytes % 4);
4735
4736 pixel = ximg->data + y * rowbytes + x * 3;
4737 /* Windows bitmaps are in BGR order. */
4738 *pixel = GetBValue (color);
4739 *(pixel + 1) = GetGValue (color);
4740 *(pixel + 2) = GetRValue (color);
4741 }
4742 /* Monochrome images. */
4743 else if (ximg->info.bmiHeader.biBitCount == 1)
4744 {
4745 int rowbytes = width / 8;
4746 /* Ensure scanlines are aligned on 4 byte boundaries. */
4747 if (rowbytes % 4)
4748 rowbytes += 4 - (rowbytes % 4);
4749 pixel = ximg->data + y * rowbytes + x / 8;
4750 /* Filter out palette info. */
4751 if (color & 0x00ffffff)
4752 *pixel = *pixel | (1 << x % 8);
4753 else
4754 *pixel = *pixel & ~(1 << x % 8);
4755 }
4756 else
4757 image_error ("XPutPixel: palette image not supported");
4758 }
4759
4760 #endif /* HAVE_NTGUI */
4761
4762 /* Create IMG->pixmap from an array COLORS of XColor structures, whose
4763 RGB members are set. F is the frame on which this all happens.
4764 COLORS will be freed; an existing IMG->pixmap will be freed, too. */
4765
4766 static void
4767 x_from_xcolors (struct frame *f, struct image *img, XColor *colors)
4768 {
4769 int x, y;
4770 XImagePtr oimg = NULL;
4771 XColor *p;
4772
4773 init_color_table ();
4774
4775 x_clear_image_1 (f, img, CLEAR_IMAGE_PIXMAP | CLEAR_IMAGE_COLORS);
4776 image_create_x_image_and_pixmap (f, img, img->width, img->height, 0,
4777 &oimg, 0);
4778 p = colors;
4779 for (y = 0; y < img->height; ++y)
4780 for (x = 0; x < img->width; ++x, ++p)
4781 {
4782 unsigned long pixel;
4783 pixel = lookup_rgb_color (f, p->red, p->green, p->blue);
4784 XPutPixel (oimg, x, y, pixel);
4785 }
4786
4787 xfree (colors);
4788
4789 image_put_x_image (f, img, oimg, 0);
4790 #ifdef COLOR_TABLE_SUPPORT
4791 img->colors = colors_in_color_table (&img->ncolors);
4792 free_color_table ();
4793 #endif /* COLOR_TABLE_SUPPORT */
4794 }
4795
4796
4797 /* On frame F, perform edge-detection on image IMG.
4798
4799 MATRIX is a nine-element array specifying the transformation
4800 matrix. See emboss_matrix for an example.
4801
4802 COLOR_ADJUST is a color adjustment added to each pixel of the
4803 outgoing image. */
4804
4805 static void
4806 x_detect_edges (struct frame *f, struct image *img, int *matrix, int color_adjust)
4807 {
4808 XColor *colors = x_to_xcolors (f, img, 1);
4809 XColor *new, *p;
4810 int x, y, i, sum;
4811 ptrdiff_t nbytes;
4812
4813 for (i = sum = 0; i < 9; ++i)
4814 sum += eabs (matrix[i]);
4815
4816 #define COLOR(A, X, Y) ((A) + (Y) * img->width + (X))
4817
4818 if (INT_MULTIPLY_WRAPV (sizeof *new, img->width, &nbytes)
4819 || INT_MULTIPLY_WRAPV (img->height, nbytes, &nbytes))
4820 memory_full (SIZE_MAX);
4821 new = xmalloc (nbytes);
4822
4823 for (y = 0; y < img->height; ++y)
4824 {
4825 p = COLOR (new, 0, y);
4826 p->red = p->green = p->blue = 0xffff/2;
4827 p = COLOR (new, img->width - 1, y);
4828 p->red = p->green = p->blue = 0xffff/2;
4829 }
4830
4831 for (x = 1; x < img->width - 1; ++x)
4832 {
4833 p = COLOR (new, x, 0);
4834 p->red = p->green = p->blue = 0xffff/2;
4835 p = COLOR (new, x, img->height - 1);
4836 p->red = p->green = p->blue = 0xffff/2;
4837 }
4838
4839 for (y = 1; y < img->height - 1; ++y)
4840 {
4841 p = COLOR (new, 1, y);
4842
4843 for (x = 1; x < img->width - 1; ++x, ++p)
4844 {
4845 int r, g, b, yy, xx;
4846
4847 r = g = b = i = 0;
4848 for (yy = y - 1; yy < y + 2; ++yy)
4849 for (xx = x - 1; xx < x + 2; ++xx, ++i)
4850 if (matrix[i])
4851 {
4852 XColor *t = COLOR (colors, xx, yy);
4853 r += matrix[i] * t->red;
4854 g += matrix[i] * t->green;
4855 b += matrix[i] * t->blue;
4856 }
4857
4858 r = (r / sum + color_adjust) & 0xffff;
4859 g = (g / sum + color_adjust) & 0xffff;
4860 b = (b / sum + color_adjust) & 0xffff;
4861 p->red = p->green = p->blue = COLOR_INTENSITY (r, g, b);
4862 }
4863 }
4864
4865 xfree (colors);
4866 x_from_xcolors (f, img, new);
4867
4868 #undef COLOR
4869 }
4870
4871
4872 /* Perform the pre-defined `emboss' edge-detection on image IMG
4873 on frame F. */
4874
4875 static void
4876 x_emboss (struct frame *f, struct image *img)
4877 {
4878 x_detect_edges (f, img, emboss_matrix, 0xffff / 2);
4879 }
4880
4881
4882 /* Transform image IMG which is used on frame F with a Laplace
4883 edge-detection algorithm. The result is an image that can be used
4884 to draw disabled buttons, for example. */
4885
4886 static void
4887 x_laplace (struct frame *f, struct image *img)
4888 {
4889 x_detect_edges (f, img, laplace_matrix, 45000);
4890 }
4891
4892
4893 /* Perform edge-detection on image IMG on frame F, with specified
4894 transformation matrix MATRIX and color-adjustment COLOR_ADJUST.
4895
4896 MATRIX must be either
4897
4898 - a list of at least 9 numbers in row-major form
4899 - a vector of at least 9 numbers
4900
4901 COLOR_ADJUST nil means use a default; otherwise it must be a
4902 number. */
4903
4904 static void
4905 x_edge_detection (struct frame *f, struct image *img, Lisp_Object matrix,
4906 Lisp_Object color_adjust)
4907 {
4908 int i = 0;
4909 int trans[9];
4910
4911 if (CONSP (matrix))
4912 {
4913 for (i = 0;
4914 i < 9 && CONSP (matrix) && NUMBERP (XCAR (matrix));
4915 ++i, matrix = XCDR (matrix))
4916 trans[i] = XFLOATINT (XCAR (matrix));
4917 }
4918 else if (VECTORP (matrix) && ASIZE (matrix) >= 9)
4919 {
4920 for (i = 0; i < 9 && NUMBERP (AREF (matrix, i)); ++i)
4921 trans[i] = XFLOATINT (AREF (matrix, i));
4922 }
4923
4924 if (NILP (color_adjust))
4925 color_adjust = make_number (0xffff / 2);
4926
4927 if (i == 9 && NUMBERP (color_adjust))
4928 x_detect_edges (f, img, trans, XFLOATINT (color_adjust));
4929 }
4930
4931
4932 /* Transform image IMG on frame F so that it looks disabled. */
4933
4934 static void
4935 x_disable_image (struct frame *f, struct image *img)
4936 {
4937 Display_Info *dpyinfo = FRAME_DISPLAY_INFO (f);
4938 #ifdef HAVE_NTGUI
4939 int n_planes = dpyinfo->n_planes * dpyinfo->n_cbits;
4940 #else
4941 int n_planes = dpyinfo->n_planes;
4942 #endif /* HAVE_NTGUI */
4943
4944 if (n_planes >= 2)
4945 {
4946 /* Color (or grayscale). Convert to gray, and equalize. Just
4947 drawing such images with a stipple can look very odd, so
4948 we're using this method instead. */
4949 XColor *colors = x_to_xcolors (f, img, 1);
4950 XColor *p, *end;
4951 const int h = 15000;
4952 const int l = 30000;
4953
4954 for (p = colors, end = colors + img->width * img->height;
4955 p < end;
4956 ++p)
4957 {
4958 int i = COLOR_INTENSITY (p->red, p->green, p->blue);
4959 int i2 = (0xffff - h - l) * i / 0xffff + l;
4960 p->red = p->green = p->blue = i2;
4961 }
4962
4963 x_from_xcolors (f, img, colors);
4964 }
4965
4966 /* Draw a cross over the disabled image, if we must or if we
4967 should. */
4968 if (n_planes < 2 || cross_disabled_images)
4969 {
4970 #ifndef HAVE_NTGUI
4971 #ifndef HAVE_NS /* TODO: NS support, however this not needed for toolbars */
4972
4973 #define MaskForeground(f) WHITE_PIX_DEFAULT (f)
4974
4975 Display *dpy = FRAME_X_DISPLAY (f);
4976 GC gc;
4977
4978 image_sync_to_pixmaps (f, img);
4979 gc = XCreateGC (dpy, img->pixmap, 0, NULL);
4980 XSetForeground (dpy, gc, BLACK_PIX_DEFAULT (f));
4981 XDrawLine (dpy, img->pixmap, gc, 0, 0,
4982 img->width - 1, img->height - 1);
4983 XDrawLine (dpy, img->pixmap, gc, 0, img->height - 1,
4984 img->width - 1, 0);
4985 XFreeGC (dpy, gc);
4986
4987 if (img->mask)
4988 {
4989 gc = XCreateGC (dpy, img->mask, 0, NULL);
4990 XSetForeground (dpy, gc, MaskForeground (f));
4991 XDrawLine (dpy, img->mask, gc, 0, 0,
4992 img->width - 1, img->height - 1);
4993 XDrawLine (dpy, img->mask, gc, 0, img->height - 1,
4994 img->width - 1, 0);
4995 XFreeGC (dpy, gc);
4996 }
4997 #endif /* !HAVE_NS */
4998 #else
4999 HDC hdc, bmpdc;
5000 HGDIOBJ prev;
5001
5002 hdc = get_frame_dc (f);
5003 bmpdc = CreateCompatibleDC (hdc);
5004 release_frame_dc (f, hdc);
5005
5006 prev = SelectObject (bmpdc, img->pixmap);
5007
5008 SetTextColor (bmpdc, BLACK_PIX_DEFAULT (f));
5009 MoveToEx (bmpdc, 0, 0, NULL);
5010 LineTo (bmpdc, img->width - 1, img->height - 1);
5011 MoveToEx (bmpdc, 0, img->height - 1, NULL);
5012 LineTo (bmpdc, img->width - 1, 0);
5013
5014 if (img->mask)
5015 {
5016 SelectObject (bmpdc, img->mask);
5017 SetTextColor (bmpdc, WHITE_PIX_DEFAULT (f));
5018 MoveToEx (bmpdc, 0, 0, NULL);
5019 LineTo (bmpdc, img->width - 1, img->height - 1);
5020 MoveToEx (bmpdc, 0, img->height - 1, NULL);
5021 LineTo (bmpdc, img->width - 1, 0);
5022 }
5023 SelectObject (bmpdc, prev);
5024 DeleteDC (bmpdc);
5025 #endif /* HAVE_NTGUI */
5026 }
5027 }
5028
5029
5030 /* Build a mask for image IMG which is used on frame F. FILE is the
5031 name of an image file, for error messages. HOW determines how to
5032 determine the background color of IMG. If it is a list '(R G B)',
5033 with R, G, and B being integers >= 0, take that as the color of the
5034 background. Otherwise, determine the background color of IMG
5035 heuristically. */
5036
5037 static void
5038 x_build_heuristic_mask (struct frame *f, struct image *img, Lisp_Object how)
5039 {
5040 XImagePtr_or_DC ximg;
5041 #ifndef HAVE_NTGUI
5042 XImagePtr mask_img;
5043 #else
5044 HGDIOBJ prev;
5045 char *mask_img;
5046 int row_width;
5047 #endif /* HAVE_NTGUI */
5048 int x, y;
5049 bool use_img_background;
5050 unsigned long bg = 0;
5051
5052 if (img->mask)
5053 x_clear_image_1 (f, img, CLEAR_IMAGE_MASK);
5054
5055 #ifndef HAVE_NTGUI
5056 #ifndef HAVE_NS
5057 /* Create an image and pixmap serving as mask. */
5058 if (! image_create_x_image_and_pixmap (f, img, img->width, img->height, 1,
5059 &mask_img, 1))
5060 return;
5061 #endif /* !HAVE_NS */
5062 #else
5063 /* Create the bit array serving as mask. */
5064 row_width = (img->width + 7) / 8;
5065 mask_img = xzalloc (row_width * img->height);
5066 #endif /* HAVE_NTGUI */
5067
5068 /* Get the X image or create a memory device context for IMG. */
5069 ximg = image_get_x_image_or_dc (f, img, 0, &prev);
5070
5071 /* Determine the background color of ximg. If HOW is `(R G B)'
5072 take that as color. Otherwise, use the image's background color. */
5073 use_img_background = 1;
5074
5075 if (CONSP (how))
5076 {
5077 int rgb[3], i;
5078
5079 for (i = 0; i < 3 && CONSP (how) && NATNUMP (XCAR (how)); ++i)
5080 {
5081 rgb[i] = XFASTINT (XCAR (how)) & 0xffff;
5082 how = XCDR (how);
5083 }
5084
5085 if (i == 3 && NILP (how))
5086 {
5087 char color_name[30];
5088 sprintf (color_name, "#%04x%04x%04x",
5089 rgb[0] + 0u, rgb[1] + 0u, rgb[2] + 0u);
5090 bg = (
5091 #ifdef HAVE_NTGUI
5092 0x00ffffff & /* Filter out palette info. */
5093 #endif /* HAVE_NTGUI */
5094 x_alloc_image_color (f, img, build_string (color_name), 0));
5095 use_img_background = 0;
5096 }
5097 }
5098
5099 if (use_img_background)
5100 bg = four_corners_best (ximg, img->corners, img->width, img->height);
5101
5102 /* Set all bits in mask_img to 1 whose color in ximg is different
5103 from the background color bg. */
5104 #ifndef HAVE_NTGUI
5105 for (y = 0; y < img->height; ++y)
5106 for (x = 0; x < img->width; ++x)
5107 #ifndef HAVE_NS
5108 XPutPixel (mask_img, x, y, (XGetPixel (ximg, x, y) != bg
5109 ? PIX_MASK_DRAW : PIX_MASK_RETAIN));
5110 #else
5111 if (XGetPixel (ximg, x, y) == bg)
5112 ns_set_alpha (ximg, x, y, 0);
5113 #endif /* HAVE_NS */
5114 #ifndef HAVE_NS
5115 /* Fill in the background_transparent field while we have the mask handy. */
5116 image_background_transparent (img, f, mask_img);
5117
5118 /* Put mask_img into the image. */
5119 image_put_x_image (f, img, mask_img, 1);
5120 #endif /* !HAVE_NS */
5121 #else
5122 for (y = 0; y < img->height; ++y)
5123 for (x = 0; x < img->width; ++x)
5124 {
5125 COLORREF p = GetPixel (ximg, x, y);
5126 if (p != bg)
5127 mask_img[y * row_width + x / 8] |= 1 << (x % 8);
5128 }
5129
5130 /* Create the mask image. */
5131 img->mask = w32_create_pixmap_from_bitmap_data (img->width, img->height,
5132 mask_img);
5133 /* Fill in the background_transparent field while we have the mask handy. */
5134 SelectObject (ximg, img->mask);
5135 image_background_transparent (img, f, ximg);
5136
5137 /* Was: x_destroy_x_image ((XImagePtr )mask_img); which seems bogus ++kfs */
5138 xfree (mask_img);
5139 #endif /* HAVE_NTGUI */
5140
5141 image_unget_x_image_or_dc (img, 0, ximg, prev);
5142 }
5143
5144 \f
5145 /***********************************************************************
5146 PBM (mono, gray, color)
5147 ***********************************************************************/
5148
5149 static bool pbm_image_p (Lisp_Object object);
5150 static bool pbm_load (struct frame *f, struct image *img);
5151
5152 /* Indices of image specification fields in gs_format, below. */
5153
5154 enum pbm_keyword_index
5155 {
5156 PBM_TYPE,
5157 PBM_FILE,
5158 PBM_DATA,
5159 PBM_ASCENT,
5160 PBM_MARGIN,
5161 PBM_RELIEF,
5162 PBM_ALGORITHM,
5163 PBM_HEURISTIC_MASK,
5164 PBM_MASK,
5165 PBM_FOREGROUND,
5166 PBM_BACKGROUND,
5167 PBM_LAST
5168 };
5169
5170 /* Vector of image_keyword structures describing the format
5171 of valid user-defined image specifications. */
5172
5173 static const struct image_keyword pbm_format[PBM_LAST] =
5174 {
5175 {":type", IMAGE_SYMBOL_VALUE, 1},
5176 {":file", IMAGE_STRING_VALUE, 0},
5177 {":data", IMAGE_STRING_VALUE, 0},
5178 {":ascent", IMAGE_ASCENT_VALUE, 0},
5179 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
5180 {":relief", IMAGE_INTEGER_VALUE, 0},
5181 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5182 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5183 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5184 {":foreground", IMAGE_STRING_OR_NIL_VALUE, 0},
5185 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
5186 };
5187
5188 /* Structure describing the image type `pbm'. */
5189
5190 static struct image_type pbm_type =
5191 {
5192 SYMBOL_INDEX (Qpbm),
5193 pbm_image_p,
5194 pbm_load,
5195 x_clear_image,
5196 NULL,
5197 NULL
5198 };
5199
5200
5201 /* Return true if OBJECT is a valid PBM image specification. */
5202
5203 static bool
5204 pbm_image_p (Lisp_Object object)
5205 {
5206 struct image_keyword fmt[PBM_LAST];
5207
5208 memcpy (fmt, pbm_format, sizeof fmt);
5209
5210 if (!parse_image_spec (object, fmt, PBM_LAST, Qpbm))
5211 return 0;
5212
5213 /* Must specify either :data or :file. */
5214 return fmt[PBM_DATA].count + fmt[PBM_FILE].count == 1;
5215 }
5216
5217
5218 /* Get next char skipping comments in Netpbm header. Returns -1 at
5219 end of input. */
5220
5221 static int
5222 pbm_next_char (unsigned char **s, unsigned char *end)
5223 {
5224 int c = -1;
5225
5226 while (*s < end && (c = *(*s)++, c == '#'))
5227 {
5228 /* Skip to the next line break. */
5229 while (*s < end && (c = *(*s)++, c != '\n' && c != '\r'))
5230 ;
5231
5232 c = -1;
5233 }
5234
5235 return c;
5236 }
5237
5238
5239 /* Scan a decimal number from *S and return it. Advance *S while
5240 reading the number. END is the end of the string. Value is -1 at
5241 end of input. */
5242
5243 static int
5244 pbm_scan_number (unsigned char **s, unsigned char *end)
5245 {
5246 int c = 0, val = -1;
5247
5248 /* Skip white-space. */
5249 while ((c = pbm_next_char (s, end)) != -1 && c_isspace (c))
5250 ;
5251
5252 if (c_isdigit (c))
5253 {
5254 /* Read decimal number. */
5255 val = c - '0';
5256 while ((c = pbm_next_char (s, end)) != -1 && c_isdigit (c))
5257 val = 10 * val + c - '0';
5258 }
5259
5260 return val;
5261 }
5262
5263
5264 /* Load PBM image IMG for use on frame F. */
5265
5266 static bool
5267 pbm_load (struct frame *f, struct image *img)
5268 {
5269 bool raw_p;
5270 int x, y;
5271 int width, height, max_color_idx = 0;
5272 Lisp_Object specified_file;
5273 enum {PBM_MONO, PBM_GRAY, PBM_COLOR} type;
5274 unsigned char *contents = NULL;
5275 unsigned char *end, *p;
5276 #ifdef USE_CAIRO
5277 unsigned char *data = 0;
5278 uint32_t *dataptr;
5279 #else
5280 XImagePtr ximg;
5281 #endif
5282
5283 specified_file = image_spec_value (img->spec, QCfile, NULL);
5284
5285 if (STRINGP (specified_file))
5286 {
5287 int fd;
5288 Lisp_Object file = x_find_image_fd (specified_file, &fd);
5289 if (!STRINGP (file))
5290 {
5291 image_error ("Cannot find image file `%s'", specified_file);
5292 return 0;
5293 }
5294
5295 ptrdiff_t size;
5296 contents = slurp_file (fd, &size);
5297 if (contents == NULL)
5298 {
5299 image_error ("Error reading `%s'", file);
5300 return 0;
5301 }
5302
5303 p = contents;
5304 end = contents + size;
5305 }
5306 else
5307 {
5308 Lisp_Object data;
5309 data = image_spec_value (img->spec, QCdata, NULL);
5310 if (!STRINGP (data))
5311 {
5312 image_error ("Invalid image data `%s'", data);
5313 return 0;
5314 }
5315 p = SDATA (data);
5316 end = p + SBYTES (data);
5317 }
5318
5319 /* Check magic number. */
5320 if (end - p < 2 || *p++ != 'P')
5321 {
5322 image_error ("Not a PBM image: `%s'", img->spec);
5323 error:
5324 xfree (contents);
5325 img->pixmap = NO_PIXMAP;
5326 return 0;
5327 }
5328
5329 switch (*p++)
5330 {
5331 case '1':
5332 raw_p = 0, type = PBM_MONO;
5333 break;
5334
5335 case '2':
5336 raw_p = 0, type = PBM_GRAY;
5337 break;
5338
5339 case '3':
5340 raw_p = 0, type = PBM_COLOR;
5341 break;
5342
5343 case '4':
5344 raw_p = 1, type = PBM_MONO;
5345 break;
5346
5347 case '5':
5348 raw_p = 1, type = PBM_GRAY;
5349 break;
5350
5351 case '6':
5352 raw_p = 1, type = PBM_COLOR;
5353 break;
5354
5355 default:
5356 image_error ("Not a PBM image: `%s'", img->spec);
5357 goto error;
5358 }
5359
5360 /* Read width, height, maximum color-component. Characters
5361 starting with `#' up to the end of a line are ignored. */
5362 width = pbm_scan_number (&p, end);
5363 height = pbm_scan_number (&p, end);
5364
5365 #ifdef USE_CAIRO
5366 data = (unsigned char *) xmalloc (width * height * 4);
5367 dataptr = (uint32_t *) data;
5368 #endif
5369
5370 if (type != PBM_MONO)
5371 {
5372 max_color_idx = pbm_scan_number (&p, end);
5373 if (max_color_idx > 65535 || max_color_idx < 0)
5374 {
5375 image_error ("Unsupported maximum PBM color value");
5376 goto error;
5377 }
5378 }
5379
5380 if (!check_image_size (f, width, height))
5381 {
5382 image_size_error ();
5383 goto error;
5384 }
5385
5386 #ifndef USE_CAIRO
5387 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
5388 goto error;
5389 #endif
5390
5391 /* Initialize the color hash table. */
5392 init_color_table ();
5393
5394 if (type == PBM_MONO)
5395 {
5396 int c = 0, g;
5397 struct image_keyword fmt[PBM_LAST];
5398 unsigned long fg = FRAME_FOREGROUND_PIXEL (f);
5399 unsigned long bg = FRAME_BACKGROUND_PIXEL (f);
5400 #ifdef USE_CAIRO
5401 XColor xfg, xbg;
5402 int fga32, bga32;
5403 #endif
5404 /* Parse the image specification. */
5405 memcpy (fmt, pbm_format, sizeof fmt);
5406 parse_image_spec (img->spec, fmt, PBM_LAST, Qpbm);
5407
5408 /* Get foreground and background colors, maybe allocate colors. */
5409 #ifdef USE_CAIRO
5410 if (! fmt[PBM_FOREGROUND].count
5411 || ! STRINGP (fmt[PBM_FOREGROUND].value)
5412 || ! x_defined_color (f, SSDATA (fmt[PBM_FOREGROUND].value), &xfg, 0))
5413 {
5414 xfg.pixel = fg;
5415 x_query_color (f, &xfg);
5416 }
5417 fga32 = xcolor_to_argb32 (xfg);
5418
5419 if (! fmt[PBM_BACKGROUND].count
5420 || ! STRINGP (fmt[PBM_BACKGROUND].value)
5421 || ! x_defined_color (f, SSDATA (fmt[PBM_BACKGROUND].value), &xbg, 0))
5422 {
5423 xbg.pixel = bg;
5424 x_query_color (f, &xbg);
5425 }
5426 bga32 = xcolor_to_argb32 (xbg);
5427 #else
5428 if (fmt[PBM_FOREGROUND].count
5429 && STRINGP (fmt[PBM_FOREGROUND].value))
5430 fg = x_alloc_image_color (f, img, fmt[PBM_FOREGROUND].value, fg);
5431 if (fmt[PBM_BACKGROUND].count
5432 && STRINGP (fmt[PBM_BACKGROUND].value))
5433 {
5434 bg = x_alloc_image_color (f, img, fmt[PBM_BACKGROUND].value, bg);
5435 img->background = bg;
5436 img->background_valid = 1;
5437 }
5438 #endif
5439
5440 for (y = 0; y < height; ++y)
5441 for (x = 0; x < width; ++x)
5442 {
5443 if (raw_p)
5444 {
5445 if ((x & 7) == 0)
5446 {
5447 if (p >= end)
5448 {
5449 #ifdef USE_CAIRO
5450 xfree (data);
5451 #else
5452 x_destroy_x_image (ximg);
5453 #endif
5454 x_clear_image (f, img);
5455 image_error ("Invalid image size in image `%s'",
5456 img->spec);
5457 goto error;
5458 }
5459 c = *p++;
5460 }
5461 g = c & 0x80;
5462 c <<= 1;
5463 }
5464 else
5465 g = pbm_scan_number (&p, end);
5466
5467 #ifdef USE_CAIRO
5468 *dataptr++ = g ? fga32 : bga32;
5469 #else
5470 XPutPixel (ximg, x, y, g ? fg : bg);
5471 #endif
5472 }
5473 }
5474 else
5475 {
5476 int expected_size = height * width;
5477 if (max_color_idx > 255)
5478 expected_size *= 2;
5479 if (type == PBM_COLOR)
5480 expected_size *= 3;
5481
5482 if (raw_p && p + expected_size > end)
5483 {
5484 #ifdef USE_CAIRO
5485 xfree (data);
5486 #else
5487 x_destroy_x_image (ximg);
5488 #endif
5489 x_clear_image (f, img);
5490 image_error ("Invalid image size in image `%s'", img->spec);
5491 goto error;
5492 }
5493
5494 for (y = 0; y < height; ++y)
5495 for (x = 0; x < width; ++x)
5496 {
5497 int r, g, b;
5498
5499 if (type == PBM_GRAY && raw_p)
5500 {
5501 r = g = b = *p++;
5502 if (max_color_idx > 255)
5503 r = g = b = r * 256 + *p++;
5504 }
5505 else if (type == PBM_GRAY)
5506 r = g = b = pbm_scan_number (&p, end);
5507 else if (raw_p)
5508 {
5509 r = *p++;
5510 if (max_color_idx > 255)
5511 r = r * 256 + *p++;
5512 g = *p++;
5513 if (max_color_idx > 255)
5514 g = g * 256 + *p++;
5515 b = *p++;
5516 if (max_color_idx > 255)
5517 b = b * 256 + *p++;
5518 }
5519 else
5520 {
5521 r = pbm_scan_number (&p, end);
5522 g = pbm_scan_number (&p, end);
5523 b = pbm_scan_number (&p, end);
5524 }
5525
5526 if (r < 0 || g < 0 || b < 0)
5527 {
5528 #ifdef USE_CAIRO
5529 xfree (data);
5530 #else
5531 x_destroy_x_image (ximg);
5532 #endif
5533 image_error ("Invalid pixel value in image `%s'", img->spec);
5534 goto error;
5535 }
5536
5537 #ifdef USE_CAIRO
5538 r = (double) r * 255 / max_color_idx;
5539 g = (double) g * 255 / max_color_idx;
5540 b = (double) b * 255 / max_color_idx;
5541 *dataptr++ = (0xff << 24) | (r << 16) | (g << 8) | b;
5542 #else
5543 /* RGB values are now in the range 0..max_color_idx.
5544 Scale this to the range 0..0xffff supported by X. */
5545 r = (double) r * 65535 / max_color_idx;
5546 g = (double) g * 65535 / max_color_idx;
5547 b = (double) b * 65535 / max_color_idx;
5548 XPutPixel (ximg, x, y, lookup_rgb_color (f, r, g, b));
5549 #endif
5550 }
5551 }
5552
5553 #ifdef COLOR_TABLE_SUPPORT
5554 /* Store in IMG->colors the colors allocated for the image, and
5555 free the color table. */
5556 img->colors = colors_in_color_table (&img->ncolors);
5557 free_color_table ();
5558 #endif /* COLOR_TABLE_SUPPORT */
5559
5560 img->width = width;
5561 img->height = height;
5562
5563 /* Maybe fill in the background field while we have ximg handy. */
5564
5565 #ifdef USE_CAIRO
5566 create_cairo_image_surface (img, data, width, height);
5567 #else
5568 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
5569 /* Casting avoids a GCC warning. */
5570 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
5571
5572 /* Put ximg into the image. */
5573 image_put_x_image (f, img, ximg, 0);
5574 #endif
5575
5576 /* X and W32 versions did it here, MAC version above. ++kfs
5577 img->width = width;
5578 img->height = height; */
5579
5580 xfree (contents);
5581 return 1;
5582 }
5583
5584 \f
5585 /***********************************************************************
5586 PNG
5587 ***********************************************************************/
5588
5589 #if defined (HAVE_PNG) || defined (HAVE_NS) || defined (USE_CAIRO)
5590
5591 /* Function prototypes. */
5592
5593 static bool png_image_p (Lisp_Object object);
5594 static bool png_load (struct frame *f, struct image *img);
5595
5596 /* Indices of image specification fields in png_format, below. */
5597
5598 enum png_keyword_index
5599 {
5600 PNG_TYPE,
5601 PNG_DATA,
5602 PNG_FILE,
5603 PNG_ASCENT,
5604 PNG_MARGIN,
5605 PNG_RELIEF,
5606 PNG_ALGORITHM,
5607 PNG_HEURISTIC_MASK,
5608 PNG_MASK,
5609 PNG_BACKGROUND,
5610 PNG_LAST
5611 };
5612
5613 /* Vector of image_keyword structures describing the format
5614 of valid user-defined image specifications. */
5615
5616 static const struct image_keyword png_format[PNG_LAST] =
5617 {
5618 {":type", IMAGE_SYMBOL_VALUE, 1},
5619 {":data", IMAGE_STRING_VALUE, 0},
5620 {":file", IMAGE_STRING_VALUE, 0},
5621 {":ascent", IMAGE_ASCENT_VALUE, 0},
5622 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
5623 {":relief", IMAGE_INTEGER_VALUE, 0},
5624 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5625 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5626 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5627 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
5628 };
5629
5630 #if defined HAVE_NTGUI && defined WINDOWSNT
5631 static bool init_png_functions (void);
5632 #else
5633 #define init_png_functions NULL
5634 #endif
5635
5636 /* Structure describing the image type `png'. */
5637
5638 static struct image_type png_type =
5639 {
5640 SYMBOL_INDEX (Qpng),
5641 png_image_p,
5642 png_load,
5643 x_clear_image,
5644 init_png_functions,
5645 NULL
5646 };
5647
5648 /* Return true if OBJECT is a valid PNG image specification. */
5649
5650 static bool
5651 png_image_p (Lisp_Object object)
5652 {
5653 struct image_keyword fmt[PNG_LAST];
5654 memcpy (fmt, png_format, sizeof fmt);
5655
5656 if (!parse_image_spec (object, fmt, PNG_LAST, Qpng))
5657 return 0;
5658
5659 /* Must specify either the :data or :file keyword. */
5660 return fmt[PNG_FILE].count + fmt[PNG_DATA].count == 1;
5661 }
5662
5663 #endif /* HAVE_PNG || HAVE_NS || USE_CAIRO */
5664
5665
5666 #if (defined HAVE_PNG && !defined HAVE_NS) || defined USE_CAIRO
5667
5668 # ifdef WINDOWSNT
5669 /* PNG library details. */
5670
5671 DEF_DLL_FN (png_voidp, png_get_io_ptr, (png_structp));
5672 DEF_DLL_FN (int, png_sig_cmp, (png_bytep, png_size_t, png_size_t));
5673 DEF_DLL_FN (png_structp, png_create_read_struct,
5674 (png_const_charp, png_voidp, png_error_ptr, png_error_ptr));
5675 DEF_DLL_FN (png_infop, png_create_info_struct, (png_structp));
5676 DEF_DLL_FN (void, png_destroy_read_struct,
5677 (png_structpp, png_infopp, png_infopp));
5678 DEF_DLL_FN (void, png_set_read_fn, (png_structp, png_voidp, png_rw_ptr));
5679 DEF_DLL_FN (void, png_set_sig_bytes, (png_structp, int));
5680 DEF_DLL_FN (void, png_read_info, (png_structp, png_infop));
5681 DEF_DLL_FN (png_uint_32, png_get_IHDR,
5682 (png_structp, png_infop, png_uint_32 *, png_uint_32 *,
5683 int *, int *, int *, int *, int *));
5684 DEF_DLL_FN (png_uint_32, png_get_valid, (png_structp, png_infop, png_uint_32));
5685 DEF_DLL_FN (void, png_set_strip_16, (png_structp));
5686 DEF_DLL_FN (void, png_set_expand, (png_structp));
5687 DEF_DLL_FN (void, png_set_gray_to_rgb, (png_structp));
5688 DEF_DLL_FN (void, png_set_background,
5689 (png_structp, png_color_16p, int, int, double));
5690 DEF_DLL_FN (png_uint_32, png_get_bKGD,
5691 (png_structp, png_infop, png_color_16p *));
5692 DEF_DLL_FN (void, png_read_update_info, (png_structp, png_infop));
5693 DEF_DLL_FN (png_byte, png_get_channels, (png_structp, png_infop));
5694 DEF_DLL_FN (png_size_t, png_get_rowbytes, (png_structp, png_infop));
5695 DEF_DLL_FN (void, png_read_image, (png_structp, png_bytepp));
5696 DEF_DLL_FN (void, png_read_end, (png_structp, png_infop));
5697 DEF_DLL_FN (void, png_error, (png_structp, png_const_charp));
5698
5699 # if (PNG_LIBPNG_VER >= 10500)
5700 DEF_DLL_FN (void, png_longjmp, (png_structp, int)) PNG_NORETURN;
5701 DEF_DLL_FN (jmp_buf *, png_set_longjmp_fn,
5702 (png_structp, png_longjmp_ptr, size_t));
5703 # endif /* libpng version >= 1.5 */
5704
5705 static bool
5706 init_png_functions (void)
5707 {
5708 HMODULE library;
5709
5710 if (!(library = w32_delayed_load (Qpng)))
5711 return 0;
5712
5713 LOAD_DLL_FN (library, png_get_io_ptr);
5714 LOAD_DLL_FN (library, png_sig_cmp);
5715 LOAD_DLL_FN (library, png_create_read_struct);
5716 LOAD_DLL_FN (library, png_create_info_struct);
5717 LOAD_DLL_FN (library, png_destroy_read_struct);
5718 LOAD_DLL_FN (library, png_set_read_fn);
5719 LOAD_DLL_FN (library, png_set_sig_bytes);
5720 LOAD_DLL_FN (library, png_read_info);
5721 LOAD_DLL_FN (library, png_get_IHDR);
5722 LOAD_DLL_FN (library, png_get_valid);
5723 LOAD_DLL_FN (library, png_set_strip_16);
5724 LOAD_DLL_FN (library, png_set_expand);
5725 LOAD_DLL_FN (library, png_set_gray_to_rgb);
5726 LOAD_DLL_FN (library, png_set_background);
5727 LOAD_DLL_FN (library, png_get_bKGD);
5728 LOAD_DLL_FN (library, png_read_update_info);
5729 LOAD_DLL_FN (library, png_get_channels);
5730 LOAD_DLL_FN (library, png_get_rowbytes);
5731 LOAD_DLL_FN (library, png_read_image);
5732 LOAD_DLL_FN (library, png_read_end);
5733 LOAD_DLL_FN (library, png_error);
5734
5735 # if (PNG_LIBPNG_VER >= 10500)
5736 LOAD_DLL_FN (library, png_longjmp);
5737 LOAD_DLL_FN (library, png_set_longjmp_fn);
5738 # endif /* libpng version >= 1.5 */
5739
5740 return 1;
5741 }
5742
5743 # undef png_create_info_struct
5744 # undef png_create_read_struct
5745 # undef png_destroy_read_struct
5746 # undef png_error
5747 # undef png_get_bKGD
5748 # undef png_get_channels
5749 # undef png_get_IHDR
5750 # undef png_get_io_ptr
5751 # undef png_get_rowbytes
5752 # undef png_get_valid
5753 # undef png_longjmp
5754 # undef png_read_end
5755 # undef png_read_image
5756 # undef png_read_info
5757 # undef png_read_update_info
5758 # undef png_set_background
5759 # undef png_set_expand
5760 # undef png_set_gray_to_rgb
5761 # undef png_set_longjmp_fn
5762 # undef png_set_read_fn
5763 # undef png_set_sig_bytes
5764 # undef png_set_strip_16
5765 # undef png_sig_cmp
5766
5767 # define png_create_info_struct fn_png_create_info_struct
5768 # define png_create_read_struct fn_png_create_read_struct
5769 # define png_destroy_read_struct fn_png_destroy_read_struct
5770 # define png_error fn_png_error
5771 # define png_get_bKGD fn_png_get_bKGD
5772 # define png_get_channels fn_png_get_channels
5773 # define png_get_IHDR fn_png_get_IHDR
5774 # define png_get_io_ptr fn_png_get_io_ptr
5775 # define png_get_rowbytes fn_png_get_rowbytes
5776 # define png_get_valid fn_png_get_valid
5777 # define png_longjmp fn_png_longjmp
5778 # define png_read_end fn_png_read_end
5779 # define png_read_image fn_png_read_image
5780 # define png_read_info fn_png_read_info
5781 # define png_read_update_info fn_png_read_update_info
5782 # define png_set_background fn_png_set_background
5783 # define png_set_expand fn_png_set_expand
5784 # define png_set_gray_to_rgb fn_png_set_gray_to_rgb
5785 # define png_set_longjmp_fn fn_png_set_longjmp_fn
5786 # define png_set_read_fn fn_png_set_read_fn
5787 # define png_set_sig_bytes fn_png_set_sig_bytes
5788 # define png_set_strip_16 fn_png_set_strip_16
5789 # define png_sig_cmp fn_png_sig_cmp
5790
5791 # endif /* WINDOWSNT */
5792
5793 /* Fast implementations of setjmp and longjmp. Although setjmp and longjmp
5794 will do, POSIX _setjmp and _longjmp (if available) are often faster.
5795 Do not use sys_setjmp, as PNG supports only jmp_buf.
5796 It's OK if the longjmp substitute restores the signal mask. */
5797 # ifdef HAVE__SETJMP
5798 # define FAST_SETJMP(j) _setjmp (j)
5799 # define FAST_LONGJMP _longjmp
5800 # else
5801 # define FAST_SETJMP(j) setjmp (j)
5802 # define FAST_LONGJMP longjmp
5803 # endif
5804
5805 # if PNG_LIBPNG_VER < 10500
5806 # define PNG_LONGJMP(ptr) FAST_LONGJMP ((ptr)->jmpbuf, 1)
5807 # define PNG_JMPBUF(ptr) ((ptr)->jmpbuf)
5808 # else
5809 /* In libpng version 1.5, the jmpbuf member is hidden. (Bug#7908) */
5810 # define PNG_LONGJMP(ptr) png_longjmp (ptr, 1)
5811 # define PNG_JMPBUF(ptr) \
5812 (*png_set_longjmp_fn (ptr, FAST_LONGJMP, sizeof (jmp_buf)))
5813 # endif
5814
5815 /* Error and warning handlers installed when the PNG library
5816 is initialized. */
5817
5818 static _Noreturn void
5819 my_png_error (png_struct *png_ptr, const char *msg)
5820 {
5821 eassert (png_ptr != NULL);
5822 /* Avoid compiler warning about deprecated direct access to
5823 png_ptr's fields in libpng versions 1.4.x. */
5824 image_error ("PNG error: %s", build_string (msg));
5825 PNG_LONGJMP (png_ptr);
5826 }
5827
5828
5829 static void
5830 my_png_warning (png_struct *png_ptr, const char *msg)
5831 {
5832 eassert (png_ptr != NULL);
5833 image_error ("PNG warning: %s", build_string (msg));
5834 }
5835
5836 /* Memory source for PNG decoding. */
5837
5838 struct png_memory_storage
5839 {
5840 unsigned char *bytes; /* The data */
5841 ptrdiff_t len; /* How big is it? */
5842 ptrdiff_t index; /* Where are we? */
5843 };
5844
5845
5846 /* Function set as reader function when reading PNG image from memory.
5847 PNG_PTR is a pointer to the PNG control structure. Copy LENGTH
5848 bytes from the input to DATA. */
5849
5850 static void
5851 png_read_from_memory (png_structp png_ptr, png_bytep data, png_size_t length)
5852 {
5853 struct png_memory_storage *tbr = png_get_io_ptr (png_ptr);
5854
5855 if (length > tbr->len - tbr->index)
5856 png_error (png_ptr, "Read error");
5857
5858 memcpy (data, tbr->bytes + tbr->index, length);
5859 tbr->index = tbr->index + length;
5860 }
5861
5862
5863 /* Function set as reader function when reading PNG image from a file.
5864 PNG_PTR is a pointer to the PNG control structure. Copy LENGTH
5865 bytes from the input to DATA. */
5866
5867 static void
5868 png_read_from_file (png_structp png_ptr, png_bytep data, png_size_t length)
5869 {
5870 FILE *fp = png_get_io_ptr (png_ptr);
5871
5872 if (fread (data, 1, length, fp) < length)
5873 png_error (png_ptr, "Read error");
5874 }
5875
5876
5877 /* Load PNG image IMG for use on frame F. Value is true if
5878 successful. */
5879
5880 struct png_load_context
5881 {
5882 /* These are members so that longjmp doesn't munge local variables. */
5883 png_struct *png_ptr;
5884 png_info *info_ptr;
5885 png_info *end_info;
5886 FILE *fp;
5887 png_byte *pixels;
5888 png_byte **rows;
5889 };
5890
5891 static bool
5892 png_load_body (struct frame *f, struct image *img, struct png_load_context *c)
5893 {
5894 Lisp_Object specified_file;
5895 Lisp_Object specified_data;
5896 int x, y;
5897 ptrdiff_t i;
5898 png_struct *png_ptr;
5899 png_info *info_ptr = NULL, *end_info = NULL;
5900 FILE *fp = NULL;
5901 png_byte sig[8];
5902 png_byte *pixels = NULL;
5903 png_byte **rows = NULL;
5904 png_uint_32 width, height;
5905 int bit_depth, color_type, interlace_type;
5906 png_byte channels;
5907 png_uint_32 row_bytes;
5908 bool transparent_p;
5909 struct png_memory_storage tbr; /* Data to be read */
5910 ptrdiff_t nbytes;
5911
5912 #ifdef USE_CAIRO
5913 unsigned char *data = 0;
5914 uint32_t *dataptr;
5915 #else
5916 XImagePtr ximg, mask_img = NULL;
5917 #endif
5918
5919 /* Find out what file to load. */
5920 specified_file = image_spec_value (img->spec, QCfile, NULL);
5921 specified_data = image_spec_value (img->spec, QCdata, NULL);
5922 IF_LINT (Lisp_Object volatile specified_data_volatile = specified_data);
5923
5924 if (NILP (specified_data))
5925 {
5926 int fd;
5927 Lisp_Object file = x_find_image_fd (specified_file, &fd);
5928 if (!STRINGP (file))
5929 {
5930 image_error ("Cannot find image file `%s'", specified_file);
5931 return 0;
5932 }
5933
5934 /* Open the image file. */
5935 fp = fdopen (fd, "rb");
5936 if (!fp)
5937 {
5938 image_error ("Cannot open image file `%s'", file);
5939 return 0;
5940 }
5941
5942 /* Check PNG signature. */
5943 if (fread (sig, 1, sizeof sig, fp) != sizeof sig
5944 || png_sig_cmp (sig, 0, sizeof sig))
5945 {
5946 fclose (fp);
5947 image_error ("Not a PNG file: `%s'", file);
5948 return 0;
5949 }
5950 }
5951 else
5952 {
5953 if (!STRINGP (specified_data))
5954 {
5955 image_error ("Invalid image data `%s'", specified_data);
5956 return 0;
5957 }
5958
5959 /* Read from memory. */
5960 tbr.bytes = SDATA (specified_data);
5961 tbr.len = SBYTES (specified_data);
5962 tbr.index = 0;
5963
5964 /* Check PNG signature. */
5965 if (tbr.len < sizeof sig
5966 || png_sig_cmp (tbr.bytes, 0, sizeof sig))
5967 {
5968 image_error ("Not a PNG image: `%s'", img->spec);
5969 return 0;
5970 }
5971
5972 /* Need to skip past the signature. */
5973 tbr.bytes += sizeof (sig);
5974 }
5975
5976 /* Initialize read and info structs for PNG lib. */
5977 png_ptr = png_create_read_struct (PNG_LIBPNG_VER_STRING,
5978 NULL, my_png_error,
5979 my_png_warning);
5980 if (png_ptr)
5981 {
5982 info_ptr = png_create_info_struct (png_ptr);
5983 end_info = png_create_info_struct (png_ptr);
5984 }
5985
5986 c->png_ptr = png_ptr;
5987 c->info_ptr = info_ptr;
5988 c->end_info = end_info;
5989 c->fp = fp;
5990 c->pixels = pixels;
5991 c->rows = rows;
5992
5993 if (! (info_ptr && end_info))
5994 {
5995 png_destroy_read_struct (&c->png_ptr, &c->info_ptr, &c->end_info);
5996 png_ptr = 0;
5997 }
5998 if (! png_ptr)
5999 {
6000 if (fp) fclose (fp);
6001 return 0;
6002 }
6003
6004 /* Set error jump-back. We come back here when the PNG library
6005 detects an error. */
6006 if (FAST_SETJMP (PNG_JMPBUF (png_ptr)))
6007 {
6008 error:
6009 if (c->png_ptr)
6010 png_destroy_read_struct (&c->png_ptr, &c->info_ptr, &c->end_info);
6011 xfree (c->pixels);
6012 xfree (c->rows);
6013 if (c->fp)
6014 fclose (c->fp);
6015 return 0;
6016 }
6017
6018 /* Silence a bogus diagnostic; see GCC bug 54561. */
6019 IF_LINT (fp = c->fp);
6020 IF_LINT (specified_data = specified_data_volatile);
6021
6022 /* Read image info. */
6023 if (!NILP (specified_data))
6024 png_set_read_fn (png_ptr, &tbr, png_read_from_memory);
6025 else
6026 png_set_read_fn (png_ptr, fp, png_read_from_file);
6027
6028 png_set_sig_bytes (png_ptr, sizeof sig);
6029 png_read_info (png_ptr, info_ptr);
6030 png_get_IHDR (png_ptr, info_ptr, &width, &height, &bit_depth, &color_type,
6031 &interlace_type, NULL, NULL);
6032
6033 if (! (width <= INT_MAX && height <= INT_MAX
6034 && check_image_size (f, width, height)))
6035 {
6036 image_size_error ();
6037 goto error;
6038 }
6039
6040 #ifndef USE_CAIRO
6041 /* Create the X image and pixmap now, so that the work below can be
6042 omitted if the image is too large for X. */
6043 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
6044 goto error;
6045 #endif
6046
6047 /* If image contains simply transparency data, we prefer to
6048 construct a clipping mask. */
6049 if (png_get_valid (png_ptr, info_ptr, PNG_INFO_tRNS))
6050 transparent_p = 1;
6051 else
6052 transparent_p = 0;
6053
6054 /* This function is easier to write if we only have to handle
6055 one data format: RGB or RGBA with 8 bits per channel. Let's
6056 transform other formats into that format. */
6057
6058 /* Strip more than 8 bits per channel. */
6059 if (bit_depth == 16)
6060 png_set_strip_16 (png_ptr);
6061
6062 /* Expand data to 24 bit RGB, or 8 bit grayscale, with alpha channel
6063 if available. */
6064 png_set_expand (png_ptr);
6065
6066 /* Convert grayscale images to RGB. */
6067 if (color_type == PNG_COLOR_TYPE_GRAY
6068 || color_type == PNG_COLOR_TYPE_GRAY_ALPHA)
6069 png_set_gray_to_rgb (png_ptr);
6070
6071 /* Handle alpha channel by combining the image with a background
6072 color. Do this only if a real alpha channel is supplied. For
6073 simple transparency, we prefer a clipping mask. */
6074 if (!transparent_p)
6075 {
6076 /* png_color_16 *image_bg; */
6077 Lisp_Object specified_bg
6078 = image_spec_value (img->spec, QCbackground, NULL);
6079 XColor color;
6080
6081 /* If the user specified a color, try to use it; if not, use the
6082 current frame background, ignoring any default background
6083 color set by the image. */
6084 if (STRINGP (specified_bg)
6085 ? x_defined_color (f, SSDATA (specified_bg), &color, false)
6086 : (x_query_frame_background_color (f, &color), true))
6087 /* The user specified `:background', use that. */
6088 {
6089 int shift = bit_depth == 16 ? 0 : 8;
6090 png_color_16 bg = { 0 };
6091 bg.red = color.red >> shift;
6092 bg.green = color.green >> shift;
6093 bg.blue = color.blue >> shift;
6094
6095 png_set_background (png_ptr, &bg,
6096 PNG_BACKGROUND_GAMMA_SCREEN, 0, 1.0);
6097 }
6098 }
6099
6100 /* Update info structure. */
6101 png_read_update_info (png_ptr, info_ptr);
6102
6103 /* Get number of channels. Valid values are 1 for grayscale images
6104 and images with a palette, 2 for grayscale images with transparency
6105 information (alpha channel), 3 for RGB images, and 4 for RGB
6106 images with alpha channel, i.e. RGBA. If conversions above were
6107 sufficient we should only have 3 or 4 channels here. */
6108 channels = png_get_channels (png_ptr, info_ptr);
6109 eassert (channels == 3 || channels == 4);
6110
6111 /* Number of bytes needed for one row of the image. */
6112 row_bytes = png_get_rowbytes (png_ptr, info_ptr);
6113
6114 /* Allocate memory for the image. */
6115 if (INT_MULTIPLY_WRAPV (row_bytes, sizeof *pixels, &nbytes)
6116 || INT_MULTIPLY_WRAPV (nbytes, height, &nbytes))
6117 memory_full (SIZE_MAX);
6118 c->pixels = pixels = xmalloc (nbytes);
6119 c->rows = rows = xmalloc (height * sizeof *rows);
6120 for (i = 0; i < height; ++i)
6121 rows[i] = pixels + i * row_bytes;
6122
6123 /* Read the entire image. */
6124 png_read_image (png_ptr, rows);
6125 png_read_end (png_ptr, info_ptr);
6126 if (fp)
6127 {
6128 fclose (fp);
6129 c->fp = NULL;
6130 }
6131
6132 #ifdef USE_CAIRO
6133 data = (unsigned char *) xmalloc (width * height * 4);
6134 dataptr = (uint32_t *) data;
6135 #else
6136 /* Create an image and pixmap serving as mask if the PNG image
6137 contains an alpha channel. */
6138 if (channels == 4
6139 && !transparent_p
6140 && !image_create_x_image_and_pixmap (f, img, width, height, 1,
6141 &mask_img, 1))
6142 {
6143 x_destroy_x_image (ximg);
6144 x_clear_image_1 (f, img, CLEAR_IMAGE_PIXMAP);
6145 goto error;
6146 }
6147 #endif
6148
6149 /* Fill the X image and mask from PNG data. */
6150 init_color_table ();
6151
6152 for (y = 0; y < height; ++y)
6153 {
6154 png_byte *p = rows[y];
6155
6156 for (x = 0; x < width; ++x)
6157 {
6158 int r, g, b;
6159
6160 #ifdef USE_CAIRO
6161 int a = 0xff;
6162 r = *p++;
6163 g = *p++;
6164 b = *p++;
6165 if (channels == 4) a = *p++;
6166 *dataptr++ = (a << 24) | (r << 16) | (g << 8) | b;
6167 #else
6168 r = *p++ << 8;
6169 g = *p++ << 8;
6170 b = *p++ << 8;
6171 XPutPixel (ximg, x, y, lookup_rgb_color (f, r, g, b));
6172 /* An alpha channel, aka mask channel, associates variable
6173 transparency with an image. Where other image formats
6174 support binary transparency---fully transparent or fully
6175 opaque---PNG allows up to 254 levels of partial transparency.
6176 The PNG library implements partial transparency by combining
6177 the image with a specified background color.
6178
6179 I'm not sure how to handle this here nicely: because the
6180 background on which the image is displayed may change, for
6181 real alpha channel support, it would be necessary to create
6182 a new image for each possible background.
6183
6184 What I'm doing now is that a mask is created if we have
6185 boolean transparency information. Otherwise I'm using
6186 the frame's background color to combine the image with. */
6187
6188 if (channels == 4)
6189 {
6190 if (mask_img)
6191 XPutPixel (mask_img, x, y, *p > 0 ? PIX_MASK_DRAW : PIX_MASK_RETAIN);
6192 ++p;
6193 }
6194 #endif
6195 }
6196 }
6197
6198 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
6199 /* Set IMG's background color from the PNG image, unless the user
6200 overrode it. */
6201 {
6202 png_color_16 *bg;
6203 if (png_get_bKGD (png_ptr, info_ptr, &bg))
6204 {
6205 img->background = lookup_rgb_color (f, bg->red, bg->green, bg->blue);
6206 img->background_valid = 1;
6207 }
6208 }
6209
6210 # ifdef COLOR_TABLE_SUPPORT
6211 /* Remember colors allocated for this image. */
6212 img->colors = colors_in_color_table (&img->ncolors);
6213 free_color_table ();
6214 # endif /* COLOR_TABLE_SUPPORT */
6215
6216 /* Clean up. */
6217 png_destroy_read_struct (&c->png_ptr, &c->info_ptr, &c->end_info);
6218 xfree (rows);
6219 xfree (pixels);
6220
6221 img->width = width;
6222 img->height = height;
6223
6224 #ifdef USE_CAIRO
6225 create_cairo_image_surface (img, data, width, height);
6226 #else
6227 /* Maybe fill in the background field while we have ximg handy.
6228 Casting avoids a GCC warning. */
6229 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
6230
6231 /* Put ximg into the image. */
6232 image_put_x_image (f, img, ximg, 0);
6233
6234 /* Same for the mask. */
6235 if (mask_img)
6236 {
6237 /* Fill in the background_transparent field while we have the
6238 mask handy. Casting avoids a GCC warning. */
6239 image_background_transparent (img, f, (XImagePtr_or_DC)mask_img);
6240
6241 image_put_x_image (f, img, mask_img, 1);
6242 }
6243 #endif
6244
6245 return 1;
6246 }
6247
6248 static bool
6249 png_load (struct frame *f, struct image *img)
6250 {
6251 struct png_load_context c;
6252 return png_load_body (f, img, &c);
6253 }
6254
6255 #elif defined HAVE_NS
6256
6257 static bool
6258 png_load (struct frame *f, struct image *img)
6259 {
6260 return ns_load_image (f, img,
6261 image_spec_value (img->spec, QCfile, NULL),
6262 image_spec_value (img->spec, QCdata, NULL));
6263 }
6264
6265
6266 #endif /* HAVE_NS */
6267
6268
6269 \f
6270 /***********************************************************************
6271 JPEG
6272 ***********************************************************************/
6273
6274 #if defined (HAVE_JPEG) || defined (HAVE_NS)
6275
6276 static bool jpeg_image_p (Lisp_Object object);
6277 static bool jpeg_load (struct frame *f, struct image *img);
6278
6279 /* Indices of image specification fields in gs_format, below. */
6280
6281 enum jpeg_keyword_index
6282 {
6283 JPEG_TYPE,
6284 JPEG_DATA,
6285 JPEG_FILE,
6286 JPEG_ASCENT,
6287 JPEG_MARGIN,
6288 JPEG_RELIEF,
6289 JPEG_ALGORITHM,
6290 JPEG_HEURISTIC_MASK,
6291 JPEG_MASK,
6292 JPEG_BACKGROUND,
6293 JPEG_LAST
6294 };
6295
6296 /* Vector of image_keyword structures describing the format
6297 of valid user-defined image specifications. */
6298
6299 static const struct image_keyword jpeg_format[JPEG_LAST] =
6300 {
6301 {":type", IMAGE_SYMBOL_VALUE, 1},
6302 {":data", IMAGE_STRING_VALUE, 0},
6303 {":file", IMAGE_STRING_VALUE, 0},
6304 {":ascent", IMAGE_ASCENT_VALUE, 0},
6305 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
6306 {":relief", IMAGE_INTEGER_VALUE, 0},
6307 {":conversions", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6308 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6309 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6310 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
6311 };
6312
6313 #if defined HAVE_NTGUI && defined WINDOWSNT
6314 static bool init_jpeg_functions (void);
6315 #else
6316 #define init_jpeg_functions NULL
6317 #endif
6318
6319 /* Structure describing the image type `jpeg'. */
6320
6321 static struct image_type jpeg_type =
6322 {
6323 SYMBOL_INDEX (Qjpeg),
6324 jpeg_image_p,
6325 jpeg_load,
6326 x_clear_image,
6327 init_jpeg_functions,
6328 NULL
6329 };
6330
6331 /* Return true if OBJECT is a valid JPEG image specification. */
6332
6333 static bool
6334 jpeg_image_p (Lisp_Object object)
6335 {
6336 struct image_keyword fmt[JPEG_LAST];
6337
6338 memcpy (fmt, jpeg_format, sizeof fmt);
6339
6340 if (!parse_image_spec (object, fmt, JPEG_LAST, Qjpeg))
6341 return 0;
6342
6343 /* Must specify either the :data or :file keyword. */
6344 return fmt[JPEG_FILE].count + fmt[JPEG_DATA].count == 1;
6345 }
6346
6347 #endif /* HAVE_JPEG || HAVE_NS */
6348
6349 #ifdef HAVE_JPEG
6350
6351 /* Work around a warning about HAVE_STDLIB_H being redefined in
6352 jconfig.h. */
6353 # ifdef HAVE_STDLIB_H
6354 # undef HAVE_STDLIB_H
6355 # endif
6356
6357 # if defined (HAVE_NTGUI) && !defined (__WIN32__)
6358 /* In older releases of the jpeg library, jpeglib.h will define boolean
6359 differently depending on __WIN32__, so make sure it is defined. */
6360 # define __WIN32__ 1
6361 # endif
6362
6363 /* rpcndr.h (via windows.h) and jpeglib.h both define boolean types.
6364 Some versions of jpeglib try to detect whether rpcndr.h is loaded,
6365 using the Windows boolean type instead of the jpeglib boolean type
6366 if so. Cygwin jpeglib, however, doesn't try to detect whether its
6367 headers are included along with windows.h, so under Cygwin, jpeglib
6368 attempts to define a conflicting boolean type. Worse, forcing
6369 Cygwin jpeglib headers to use the Windows boolean type doesn't work
6370 because it created an ABI incompatibility between the
6371 already-compiled jpeg library and the header interface definition.
6372
6373 The best we can do is to define jpeglib's boolean type to a
6374 different name. This name, jpeg_boolean, remains in effect through
6375 the rest of image.c.
6376 */
6377 # if defined CYGWIN && defined HAVE_NTGUI
6378 # define boolean jpeg_boolean
6379 # endif
6380 # include <jpeglib.h>
6381 # include <jerror.h>
6382
6383 # ifdef WINDOWSNT
6384
6385 /* JPEG library details. */
6386 DEF_DLL_FN (void, jpeg_CreateDecompress, (j_decompress_ptr, int, size_t));
6387 DEF_DLL_FN (boolean, jpeg_start_decompress, (j_decompress_ptr));
6388 DEF_DLL_FN (boolean, jpeg_finish_decompress, (j_decompress_ptr));
6389 DEF_DLL_FN (void, jpeg_destroy_decompress, (j_decompress_ptr));
6390 DEF_DLL_FN (int, jpeg_read_header, (j_decompress_ptr, boolean));
6391 DEF_DLL_FN (JDIMENSION, jpeg_read_scanlines,
6392 (j_decompress_ptr, JSAMPARRAY, JDIMENSION));
6393 DEF_DLL_FN (struct jpeg_error_mgr *, jpeg_std_error,
6394 (struct jpeg_error_mgr *));
6395 DEF_DLL_FN (boolean, jpeg_resync_to_restart, (j_decompress_ptr, int));
6396
6397 static bool
6398 init_jpeg_functions (void)
6399 {
6400 HMODULE library;
6401
6402 if (!(library = w32_delayed_load (Qjpeg)))
6403 return 0;
6404
6405 LOAD_DLL_FN (library, jpeg_finish_decompress);
6406 LOAD_DLL_FN (library, jpeg_read_scanlines);
6407 LOAD_DLL_FN (library, jpeg_start_decompress);
6408 LOAD_DLL_FN (library, jpeg_read_header);
6409 LOAD_DLL_FN (library, jpeg_CreateDecompress);
6410 LOAD_DLL_FN (library, jpeg_destroy_decompress);
6411 LOAD_DLL_FN (library, jpeg_std_error);
6412 LOAD_DLL_FN (library, jpeg_resync_to_restart);
6413 return 1;
6414 }
6415
6416 # undef jpeg_CreateDecompress
6417 # undef jpeg_destroy_decompress
6418 # undef jpeg_finish_decompress
6419 # undef jpeg_read_header
6420 # undef jpeg_read_scanlines
6421 # undef jpeg_resync_to_restart
6422 # undef jpeg_start_decompress
6423 # undef jpeg_std_error
6424
6425 # define jpeg_CreateDecompress fn_jpeg_CreateDecompress
6426 # define jpeg_destroy_decompress fn_jpeg_destroy_decompress
6427 # define jpeg_finish_decompress fn_jpeg_finish_decompress
6428 # define jpeg_read_header fn_jpeg_read_header
6429 # define jpeg_read_scanlines fn_jpeg_read_scanlines
6430 # define jpeg_resync_to_restart fn_jpeg_resync_to_restart
6431 # define jpeg_start_decompress fn_jpeg_start_decompress
6432 # define jpeg_std_error fn_jpeg_std_error
6433
6434 /* Wrapper since we can't directly assign the function pointer
6435 to another function pointer that was declared more completely easily. */
6436 static boolean
6437 jpeg_resync_to_restart_wrapper (j_decompress_ptr cinfo, int desired)
6438 {
6439 return jpeg_resync_to_restart (cinfo, desired);
6440 }
6441 # undef jpeg_resync_to_restart
6442 # define jpeg_resync_to_restart jpeg_resync_to_restart_wrapper
6443
6444 # endif /* WINDOWSNT */
6445
6446 struct my_jpeg_error_mgr
6447 {
6448 struct jpeg_error_mgr pub;
6449 sys_jmp_buf setjmp_buffer;
6450
6451 /* The remaining members are so that longjmp doesn't munge local
6452 variables. */
6453 struct jpeg_decompress_struct cinfo;
6454 enum
6455 {
6456 MY_JPEG_ERROR_EXIT,
6457 MY_JPEG_INVALID_IMAGE_SIZE,
6458 MY_JPEG_CANNOT_CREATE_X
6459 } failure_code;
6460 };
6461
6462
6463 static _Noreturn void
6464 my_error_exit (j_common_ptr cinfo)
6465 {
6466 struct my_jpeg_error_mgr *mgr = (struct my_jpeg_error_mgr *) cinfo->err;
6467 mgr->failure_code = MY_JPEG_ERROR_EXIT;
6468 sys_longjmp (mgr->setjmp_buffer, 1);
6469 }
6470
6471
6472 /* Init source method for JPEG data source manager. Called by
6473 jpeg_read_header() before any data is actually read. See
6474 libjpeg.doc from the JPEG lib distribution. */
6475
6476 static void
6477 our_common_init_source (j_decompress_ptr cinfo)
6478 {
6479 }
6480
6481
6482 /* Method to terminate data source. Called by
6483 jpeg_finish_decompress() after all data has been processed. */
6484
6485 static void
6486 our_common_term_source (j_decompress_ptr cinfo)
6487 {
6488 }
6489
6490
6491 /* Fill input buffer method for JPEG data source manager. Called
6492 whenever more data is needed. We read the whole image in one step,
6493 so this only adds a fake end of input marker at the end. */
6494
6495 static JOCTET our_memory_buffer[2];
6496
6497 static boolean
6498 our_memory_fill_input_buffer (j_decompress_ptr cinfo)
6499 {
6500 /* Insert a fake EOI marker. */
6501 struct jpeg_source_mgr *src = cinfo->src;
6502
6503 our_memory_buffer[0] = (JOCTET) 0xFF;
6504 our_memory_buffer[1] = (JOCTET) JPEG_EOI;
6505
6506 src->next_input_byte = our_memory_buffer;
6507 src->bytes_in_buffer = 2;
6508 return 1;
6509 }
6510
6511
6512 /* Method to skip over NUM_BYTES bytes in the image data. CINFO->src
6513 is the JPEG data source manager. */
6514
6515 static void
6516 our_memory_skip_input_data (j_decompress_ptr cinfo, long int num_bytes)
6517 {
6518 struct jpeg_source_mgr *src = cinfo->src;
6519
6520 if (src)
6521 {
6522 if (num_bytes > src->bytes_in_buffer)
6523 ERREXIT (cinfo, JERR_INPUT_EOF);
6524
6525 src->bytes_in_buffer -= num_bytes;
6526 src->next_input_byte += num_bytes;
6527 }
6528 }
6529
6530
6531 /* Set up the JPEG lib for reading an image from DATA which contains
6532 LEN bytes. CINFO is the decompression info structure created for
6533 reading the image. */
6534
6535 static void
6536 jpeg_memory_src (j_decompress_ptr cinfo, JOCTET *data, ptrdiff_t len)
6537 {
6538 struct jpeg_source_mgr *src = cinfo->src;
6539
6540 if (! src)
6541 {
6542 /* First time for this JPEG object? */
6543 src = cinfo->mem->alloc_small ((j_common_ptr) cinfo,
6544 JPOOL_PERMANENT, sizeof *src);
6545 cinfo->src = src;
6546 src->next_input_byte = data;
6547 }
6548
6549 src->init_source = our_common_init_source;
6550 src->fill_input_buffer = our_memory_fill_input_buffer;
6551 src->skip_input_data = our_memory_skip_input_data;
6552 src->resync_to_restart = jpeg_resync_to_restart; /* Use default method. */
6553 src->term_source = our_common_term_source;
6554 src->bytes_in_buffer = len;
6555 src->next_input_byte = data;
6556 }
6557
6558
6559 struct jpeg_stdio_mgr
6560 {
6561 struct jpeg_source_mgr mgr;
6562 boolean finished;
6563 FILE *file;
6564 JOCTET *buffer;
6565 };
6566
6567
6568 /* Size of buffer to read JPEG from file.
6569 Not too big, as we want to use alloc_small. */
6570 #define JPEG_STDIO_BUFFER_SIZE 8192
6571
6572
6573 /* Fill input buffer method for JPEG data source manager. Called
6574 whenever more data is needed. The data is read from a FILE *. */
6575
6576 static boolean
6577 our_stdio_fill_input_buffer (j_decompress_ptr cinfo)
6578 {
6579 struct jpeg_stdio_mgr *src;
6580
6581 src = (struct jpeg_stdio_mgr *) cinfo->src;
6582 if (!src->finished)
6583 {
6584 ptrdiff_t bytes;
6585
6586 bytes = fread (src->buffer, 1, JPEG_STDIO_BUFFER_SIZE, src->file);
6587 if (bytes > 0)
6588 src->mgr.bytes_in_buffer = bytes;
6589 else
6590 {
6591 WARNMS (cinfo, JWRN_JPEG_EOF);
6592 src->finished = 1;
6593 src->buffer[0] = (JOCTET) 0xFF;
6594 src->buffer[1] = (JOCTET) JPEG_EOI;
6595 src->mgr.bytes_in_buffer = 2;
6596 }
6597 src->mgr.next_input_byte = src->buffer;
6598 }
6599
6600 return 1;
6601 }
6602
6603
6604 /* Method to skip over NUM_BYTES bytes in the image data. CINFO->src
6605 is the JPEG data source manager. */
6606
6607 static void
6608 our_stdio_skip_input_data (j_decompress_ptr cinfo, long int num_bytes)
6609 {
6610 struct jpeg_stdio_mgr *src;
6611 src = (struct jpeg_stdio_mgr *) cinfo->src;
6612
6613 while (num_bytes > 0 && !src->finished)
6614 {
6615 if (num_bytes <= src->mgr.bytes_in_buffer)
6616 {
6617 src->mgr.bytes_in_buffer -= num_bytes;
6618 src->mgr.next_input_byte += num_bytes;
6619 break;
6620 }
6621 else
6622 {
6623 num_bytes -= src->mgr.bytes_in_buffer;
6624 src->mgr.bytes_in_buffer = 0;
6625 src->mgr.next_input_byte = NULL;
6626
6627 our_stdio_fill_input_buffer (cinfo);
6628 }
6629 }
6630 }
6631
6632
6633 /* Set up the JPEG lib for reading an image from a FILE *.
6634 CINFO is the decompression info structure created for
6635 reading the image. */
6636
6637 static void
6638 jpeg_file_src (j_decompress_ptr cinfo, FILE *fp)
6639 {
6640 struct jpeg_stdio_mgr *src = (struct jpeg_stdio_mgr *) cinfo->src;
6641
6642 if (! src)
6643 {
6644 /* First time for this JPEG object? */
6645 src = cinfo->mem->alloc_small ((j_common_ptr) cinfo,
6646 JPOOL_PERMANENT, sizeof *src);
6647 cinfo->src = (struct jpeg_source_mgr *) src;
6648 src->buffer = cinfo->mem->alloc_small ((j_common_ptr) cinfo,
6649 JPOOL_PERMANENT,
6650 JPEG_STDIO_BUFFER_SIZE);
6651 }
6652
6653 src->file = fp;
6654 src->finished = 0;
6655 src->mgr.init_source = our_common_init_source;
6656 src->mgr.fill_input_buffer = our_stdio_fill_input_buffer;
6657 src->mgr.skip_input_data = our_stdio_skip_input_data;
6658 src->mgr.resync_to_restart = jpeg_resync_to_restart; /* Use default. */
6659 src->mgr.term_source = our_common_term_source;
6660 src->mgr.bytes_in_buffer = 0;
6661 src->mgr.next_input_byte = NULL;
6662 }
6663
6664 /* Load image IMG for use on frame F. Patterned after example.c
6665 from the JPEG lib. */
6666
6667 static bool
6668 jpeg_load_body (struct frame *f, struct image *img,
6669 struct my_jpeg_error_mgr *mgr)
6670 {
6671 Lisp_Object specified_file;
6672 Lisp_Object specified_data;
6673 /* The 'volatile' silences a bogus diagnostic; see GCC bug 54561. */
6674 FILE * IF_LINT (volatile) fp = NULL;
6675 JSAMPARRAY buffer;
6676 int row_stride, x, y;
6677 unsigned long *colors;
6678 int width, height;
6679 int i, ir, ig, ib;
6680 #ifndef USE_CAIRO
6681 XImagePtr ximg = NULL;
6682 #endif
6683
6684 /* Open the JPEG file. */
6685 specified_file = image_spec_value (img->spec, QCfile, NULL);
6686 specified_data = image_spec_value (img->spec, QCdata, NULL);
6687 IF_LINT (Lisp_Object volatile specified_data_volatile = specified_data);
6688
6689 if (NILP (specified_data))
6690 {
6691 int fd;
6692 Lisp_Object file = x_find_image_fd (specified_file, &fd);
6693 if (!STRINGP (file))
6694 {
6695 image_error ("Cannot find image file `%s'", specified_file);
6696 return 0;
6697 }
6698
6699 fp = fdopen (fd, "rb");
6700 if (fp == NULL)
6701 {
6702 image_error ("Cannot open `%s'", file);
6703 return 0;
6704 }
6705 }
6706 else if (!STRINGP (specified_data))
6707 {
6708 image_error ("Invalid image data `%s'", specified_data);
6709 return 0;
6710 }
6711
6712 /* Customize libjpeg's error handling to call my_error_exit when an
6713 error is detected. This function will perform a longjmp. */
6714 mgr->cinfo.err = jpeg_std_error (&mgr->pub);
6715 mgr->pub.error_exit = my_error_exit;
6716 if (sys_setjmp (mgr->setjmp_buffer))
6717 {
6718 switch (mgr->failure_code)
6719 {
6720 case MY_JPEG_ERROR_EXIT:
6721 {
6722 char buf[JMSG_LENGTH_MAX];
6723 mgr->cinfo.err->format_message ((j_common_ptr) &mgr->cinfo, buf);
6724 image_error ("Error reading JPEG image `%s': %s",
6725 img->spec, build_string (buf));
6726 break;
6727 }
6728
6729 case MY_JPEG_INVALID_IMAGE_SIZE:
6730 image_size_error ();
6731 break;
6732
6733 case MY_JPEG_CANNOT_CREATE_X:
6734 break;
6735 }
6736
6737 /* Close the input file and destroy the JPEG object. */
6738 if (fp)
6739 fclose (fp);
6740 jpeg_destroy_decompress (&mgr->cinfo);
6741
6742 /* If we already have an XImage, free that. */
6743 #ifndef USE_CAIRO
6744 x_destroy_x_image (ximg);
6745 #endif
6746 /* Free pixmap and colors. */
6747 x_clear_image (f, img);
6748 return 0;
6749 }
6750
6751 /* Silence a bogus diagnostic; see GCC bug 54561. */
6752 IF_LINT (specified_data = specified_data_volatile);
6753
6754 /* Create the JPEG decompression object. Let it read from fp.
6755 Read the JPEG image header. */
6756 jpeg_CreateDecompress (&mgr->cinfo, JPEG_LIB_VERSION, sizeof *&mgr->cinfo);
6757
6758 if (NILP (specified_data))
6759 jpeg_file_src (&mgr->cinfo, fp);
6760 else
6761 jpeg_memory_src (&mgr->cinfo, SDATA (specified_data),
6762 SBYTES (specified_data));
6763
6764 jpeg_read_header (&mgr->cinfo, 1);
6765
6766 /* Customize decompression so that color quantization will be used.
6767 Start decompression. */
6768 mgr->cinfo.quantize_colors = 1;
6769 jpeg_start_decompress (&mgr->cinfo);
6770 width = img->width = mgr->cinfo.output_width;
6771 height = img->height = mgr->cinfo.output_height;
6772
6773 if (!check_image_size (f, width, height))
6774 {
6775 mgr->failure_code = MY_JPEG_INVALID_IMAGE_SIZE;
6776 sys_longjmp (mgr->setjmp_buffer, 1);
6777 }
6778
6779 #ifndef USE_CAIRO
6780 /* Create X image and pixmap. */
6781 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
6782 {
6783 mgr->failure_code = MY_JPEG_CANNOT_CREATE_X;
6784 sys_longjmp (mgr->setjmp_buffer, 1);
6785 }
6786 #endif
6787
6788 /* Allocate colors. When color quantization is used,
6789 mgr->cinfo.actual_number_of_colors has been set with the number of
6790 colors generated, and mgr->cinfo.colormap is a two-dimensional array
6791 of color indices in the range 0..mgr->cinfo.actual_number_of_colors.
6792 No more than 255 colors will be generated. */
6793 USE_SAFE_ALLOCA;
6794 {
6795 if (mgr->cinfo.out_color_components > 2)
6796 ir = 0, ig = 1, ib = 2;
6797 else if (mgr->cinfo.out_color_components > 1)
6798 ir = 0, ig = 1, ib = 0;
6799 else
6800 ir = 0, ig = 0, ib = 0;
6801
6802 #ifndef CAIRO
6803 /* Use the color table mechanism because it handles colors that
6804 cannot be allocated nicely. Such colors will be replaced with
6805 a default color, and we don't have to care about which colors
6806 can be freed safely, and which can't. */
6807 init_color_table ();
6808 SAFE_NALLOCA (colors, 1, mgr->cinfo.actual_number_of_colors);
6809
6810 for (i = 0; i < mgr->cinfo.actual_number_of_colors; ++i)
6811 {
6812 /* Multiply RGB values with 255 because X expects RGB values
6813 in the range 0..0xffff. */
6814 int r = mgr->cinfo.colormap[ir][i] << 8;
6815 int g = mgr->cinfo.colormap[ig][i] << 8;
6816 int b = mgr->cinfo.colormap[ib][i] << 8;
6817 colors[i] = lookup_rgb_color (f, r, g, b);
6818 }
6819 #endif
6820
6821 #ifdef COLOR_TABLE_SUPPORT
6822 /* Remember those colors actually allocated. */
6823 img->colors = colors_in_color_table (&img->ncolors);
6824 free_color_table ();
6825 #endif /* COLOR_TABLE_SUPPORT */
6826 }
6827
6828 /* Read pixels. */
6829 row_stride = width * mgr->cinfo.output_components;
6830 buffer = mgr->cinfo.mem->alloc_sarray ((j_common_ptr) &mgr->cinfo,
6831 JPOOL_IMAGE, row_stride, 1);
6832 #ifdef USE_CAIRO
6833 {
6834 unsigned char *data = (unsigned char *) xmalloc (width*height*4);
6835 uint32_t *dataptr = (uint32_t *) data;
6836 int r, g, b;
6837
6838 for (y = 0; y < height; ++y)
6839 {
6840 jpeg_read_scanlines (&mgr->cinfo, buffer, 1);
6841
6842 for (x = 0; x < width; ++x)
6843 {
6844 i = buffer[0][x];
6845 r = mgr->cinfo.colormap[ir][i];
6846 g = mgr->cinfo.colormap[ig][i];
6847 b = mgr->cinfo.colormap[ib][i];
6848 *dataptr++ = (0xff << 24) | (r << 16) | (g << 8) | b;
6849 }
6850 }
6851
6852 create_cairo_image_surface (img, data, width, height);
6853 }
6854 #else
6855 for (y = 0; y < height; ++y)
6856 {
6857 jpeg_read_scanlines (&mgr->cinfo, buffer, 1);
6858 for (x = 0; x < mgr->cinfo.output_width; ++x)
6859 XPutPixel (ximg, x, y, colors[buffer[0][x]]);
6860 }
6861 #endif
6862
6863 /* Clean up. */
6864 jpeg_finish_decompress (&mgr->cinfo);
6865 jpeg_destroy_decompress (&mgr->cinfo);
6866 if (fp)
6867 fclose (fp);
6868
6869 #ifndef USE_CAIRO
6870 /* Maybe fill in the background field while we have ximg handy. */
6871 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
6872 /* Casting avoids a GCC warning. */
6873 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
6874
6875 /* Put ximg into the image. */
6876 image_put_x_image (f, img, ximg, 0);
6877 #endif
6878 SAFE_FREE ();
6879 return 1;
6880 }
6881
6882 static bool
6883 jpeg_load (struct frame *f, struct image *img)
6884 {
6885 struct my_jpeg_error_mgr mgr;
6886 return jpeg_load_body (f, img, &mgr);
6887 }
6888
6889 #else /* HAVE_JPEG */
6890
6891 #ifdef HAVE_NS
6892 static bool
6893 jpeg_load (struct frame *f, struct image *img)
6894 {
6895 return ns_load_image (f, img,
6896 image_spec_value (img->spec, QCfile, NULL),
6897 image_spec_value (img->spec, QCdata, NULL));
6898 }
6899 #endif /* HAVE_NS */
6900
6901 #endif /* !HAVE_JPEG */
6902
6903
6904 \f
6905 /***********************************************************************
6906 TIFF
6907 ***********************************************************************/
6908
6909 #if defined (HAVE_TIFF) || defined (HAVE_NS)
6910
6911 static bool tiff_image_p (Lisp_Object object);
6912 static bool tiff_load (struct frame *f, struct image *img);
6913
6914 /* Indices of image specification fields in tiff_format, below. */
6915
6916 enum tiff_keyword_index
6917 {
6918 TIFF_TYPE,
6919 TIFF_DATA,
6920 TIFF_FILE,
6921 TIFF_ASCENT,
6922 TIFF_MARGIN,
6923 TIFF_RELIEF,
6924 TIFF_ALGORITHM,
6925 TIFF_HEURISTIC_MASK,
6926 TIFF_MASK,
6927 TIFF_BACKGROUND,
6928 TIFF_INDEX,
6929 TIFF_LAST
6930 };
6931
6932 /* Vector of image_keyword structures describing the format
6933 of valid user-defined image specifications. */
6934
6935 static const struct image_keyword tiff_format[TIFF_LAST] =
6936 {
6937 {":type", IMAGE_SYMBOL_VALUE, 1},
6938 {":data", IMAGE_STRING_VALUE, 0},
6939 {":file", IMAGE_STRING_VALUE, 0},
6940 {":ascent", IMAGE_ASCENT_VALUE, 0},
6941 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
6942 {":relief", IMAGE_INTEGER_VALUE, 0},
6943 {":conversions", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6944 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6945 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6946 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
6947 {":index", IMAGE_NON_NEGATIVE_INTEGER_VALUE, 0}
6948 };
6949
6950 #if defined HAVE_NTGUI && defined WINDOWSNT
6951 static bool init_tiff_functions (void);
6952 #else
6953 #define init_tiff_functions NULL
6954 #endif
6955
6956 /* Structure describing the image type `tiff'. */
6957
6958 static struct image_type tiff_type =
6959 {
6960 SYMBOL_INDEX (Qtiff),
6961 tiff_image_p,
6962 tiff_load,
6963 x_clear_image,
6964 init_tiff_functions,
6965 NULL
6966 };
6967
6968 /* Return true if OBJECT is a valid TIFF image specification. */
6969
6970 static bool
6971 tiff_image_p (Lisp_Object object)
6972 {
6973 struct image_keyword fmt[TIFF_LAST];
6974 memcpy (fmt, tiff_format, sizeof fmt);
6975
6976 if (!parse_image_spec (object, fmt, TIFF_LAST, Qtiff))
6977 return 0;
6978
6979 /* Must specify either the :data or :file keyword. */
6980 return fmt[TIFF_FILE].count + fmt[TIFF_DATA].count == 1;
6981 }
6982
6983 #endif /* HAVE_TIFF || HAVE_NS */
6984
6985 #ifdef HAVE_TIFF
6986
6987 # include <tiffio.h>
6988
6989 # ifdef WINDOWSNT
6990
6991 /* TIFF library details. */
6992 DEF_DLL_FN (TIFFErrorHandler, TIFFSetErrorHandler, (TIFFErrorHandler));
6993 DEF_DLL_FN (TIFFErrorHandler, TIFFSetWarningHandler, (TIFFErrorHandler));
6994 DEF_DLL_FN (TIFF *, TIFFOpen, (const char *, const char *));
6995 DEF_DLL_FN (TIFF *, TIFFClientOpen,
6996 (const char *, const char *, thandle_t, TIFFReadWriteProc,
6997 TIFFReadWriteProc, TIFFSeekProc, TIFFCloseProc, TIFFSizeProc,
6998 TIFFMapFileProc, TIFFUnmapFileProc));
6999 DEF_DLL_FN (int, TIFFGetField, (TIFF *, ttag_t, ...));
7000 DEF_DLL_FN (int, TIFFReadRGBAImage, (TIFF *, uint32, uint32, uint32 *, int));
7001 DEF_DLL_FN (void, TIFFClose, (TIFF *));
7002 DEF_DLL_FN (int, TIFFSetDirectory, (TIFF *, tdir_t));
7003
7004 static bool
7005 init_tiff_functions (void)
7006 {
7007 HMODULE library;
7008
7009 if (!(library = w32_delayed_load (Qtiff)))
7010 return 0;
7011
7012 LOAD_DLL_FN (library, TIFFSetErrorHandler);
7013 LOAD_DLL_FN (library, TIFFSetWarningHandler);
7014 LOAD_DLL_FN (library, TIFFOpen);
7015 LOAD_DLL_FN (library, TIFFClientOpen);
7016 LOAD_DLL_FN (library, TIFFGetField);
7017 LOAD_DLL_FN (library, TIFFReadRGBAImage);
7018 LOAD_DLL_FN (library, TIFFClose);
7019 LOAD_DLL_FN (library, TIFFSetDirectory);
7020 return 1;
7021 }
7022
7023 # undef TIFFClientOpen
7024 # undef TIFFClose
7025 # undef TIFFGetField
7026 # undef TIFFOpen
7027 # undef TIFFReadRGBAImage
7028 # undef TIFFSetDirectory
7029 # undef TIFFSetErrorHandler
7030 # undef TIFFSetWarningHandler
7031
7032 # define TIFFClientOpen fn_TIFFClientOpen
7033 # define TIFFClose fn_TIFFClose
7034 # define TIFFGetField fn_TIFFGetField
7035 # define TIFFOpen fn_TIFFOpen
7036 # define TIFFReadRGBAImage fn_TIFFReadRGBAImage
7037 # define TIFFSetDirectory fn_TIFFSetDirectory
7038 # define TIFFSetErrorHandler fn_TIFFSetErrorHandler
7039 # define TIFFSetWarningHandler fn_TIFFSetWarningHandler
7040
7041 # endif /* WINDOWSNT */
7042
7043
7044 /* Reading from a memory buffer for TIFF images Based on the PNG
7045 memory source, but we have to provide a lot of extra functions.
7046 Blah.
7047
7048 We really only need to implement read and seek, but I am not
7049 convinced that the TIFF library is smart enough not to destroy
7050 itself if we only hand it the function pointers we need to
7051 override. */
7052
7053 typedef struct
7054 {
7055 unsigned char *bytes;
7056 ptrdiff_t len;
7057 ptrdiff_t index;
7058 }
7059 tiff_memory_source;
7060
7061 static tsize_t
7062 tiff_read_from_memory (thandle_t data, tdata_t buf, tsize_t size)
7063 {
7064 tiff_memory_source *src = (tiff_memory_source *) data;
7065
7066 size = min (size, src->len - src->index);
7067 memcpy (buf, src->bytes + src->index, size);
7068 src->index += size;
7069 return size;
7070 }
7071
7072 static tsize_t
7073 tiff_write_from_memory (thandle_t data, tdata_t buf, tsize_t size)
7074 {
7075 return -1;
7076 }
7077
7078 static toff_t
7079 tiff_seek_in_memory (thandle_t data, toff_t off, int whence)
7080 {
7081 tiff_memory_source *src = (tiff_memory_source *) data;
7082 ptrdiff_t idx;
7083
7084 switch (whence)
7085 {
7086 case SEEK_SET: /* Go from beginning of source. */
7087 idx = off;
7088 break;
7089
7090 case SEEK_END: /* Go from end of source. */
7091 idx = src->len + off;
7092 break;
7093
7094 case SEEK_CUR: /* Go from current position. */
7095 idx = src->index + off;
7096 break;
7097
7098 default: /* Invalid `whence'. */
7099 return -1;
7100 }
7101
7102 if (idx > src->len || idx < 0)
7103 return -1;
7104
7105 src->index = idx;
7106 return src->index;
7107 }
7108
7109 static int
7110 tiff_close_memory (thandle_t data)
7111 {
7112 /* NOOP */
7113 return 0;
7114 }
7115
7116 static int
7117 tiff_mmap_memory (thandle_t data, tdata_t *pbase, toff_t *psize)
7118 {
7119 /* It is already _IN_ memory. */
7120 return 0;
7121 }
7122
7123 static void
7124 tiff_unmap_memory (thandle_t data, tdata_t base, toff_t size)
7125 {
7126 /* We don't need to do this. */
7127 }
7128
7129 static toff_t
7130 tiff_size_of_memory (thandle_t data)
7131 {
7132 return ((tiff_memory_source *) data)->len;
7133 }
7134
7135 /* GCC 3.x on x86 Windows targets has a bug that triggers an internal
7136 compiler error compiling tiff_handler, see Bugzilla bug #17406
7137 (http://gcc.gnu.org/bugzilla/show_bug.cgi?id=17406). Declaring
7138 this function as external works around that problem. */
7139 # if defined (__MINGW32__) && __GNUC__ == 3
7140 # define MINGW_STATIC
7141 # else
7142 # define MINGW_STATIC static
7143 # endif
7144
7145 MINGW_STATIC void
7146 tiff_handler (const char *, const char *, const char *, va_list)
7147 ATTRIBUTE_FORMAT_PRINTF (3, 0);
7148 MINGW_STATIC void
7149 tiff_handler (const char *log_format, const char *title,
7150 const char *format, va_list ap)
7151 {
7152 /* doprnt is not suitable here, as TIFF handlers are called from
7153 libtiff and are passed arbitrary printf directives. Instead, use
7154 vsnprintf, taking care to be portable to nonstandard environments
7155 where vsnprintf returns -1 on buffer overflow. Since it's just a
7156 log entry, it's OK to truncate it. */
7157 char buf[4000];
7158 int len = vsnprintf (buf, sizeof buf, format, ap);
7159 add_to_log (log_format, build_string (title),
7160 make_string (buf, max (0, min (len, sizeof buf - 1))));
7161 }
7162 # undef MINGW_STATIC
7163
7164 static void tiff_error_handler (const char *, const char *, va_list)
7165 ATTRIBUTE_FORMAT_PRINTF (2, 0);
7166 static void
7167 tiff_error_handler (const char *title, const char *format, va_list ap)
7168 {
7169 tiff_handler ("TIFF error: %s %s", title, format, ap);
7170 }
7171
7172
7173 static void tiff_warning_handler (const char *, const char *, va_list)
7174 ATTRIBUTE_FORMAT_PRINTF (2, 0);
7175 static void
7176 tiff_warning_handler (const char *title, const char *format, va_list ap)
7177 {
7178 tiff_handler ("TIFF warning: %s %s", title, format, ap);
7179 }
7180
7181
7182 /* Load TIFF image IMG for use on frame F. Value is true if
7183 successful. */
7184
7185 static bool
7186 tiff_load (struct frame *f, struct image *img)
7187 {
7188 Lisp_Object specified_file;
7189 Lisp_Object specified_data;
7190 TIFF *tiff;
7191 int width, height, x, y, count;
7192 uint32 *buf;
7193 int rc;
7194 XImagePtr ximg;
7195 tiff_memory_source memsrc;
7196 Lisp_Object image;
7197
7198 specified_file = image_spec_value (img->spec, QCfile, NULL);
7199 specified_data = image_spec_value (img->spec, QCdata, NULL);
7200
7201 TIFFSetErrorHandler ((TIFFErrorHandler) tiff_error_handler);
7202 TIFFSetWarningHandler ((TIFFErrorHandler) tiff_warning_handler);
7203
7204 if (NILP (specified_data))
7205 {
7206 /* Read from a file */
7207 Lisp_Object file = x_find_image_file (specified_file);
7208 if (!STRINGP (file))
7209 {
7210 image_error ("Cannot find image file `%s'", specified_file);
7211 return 0;
7212 }
7213
7214 Lisp_Object encoded_file = ENCODE_FILE (file);
7215 # ifdef WINDOWSNT
7216 encoded_file = ansi_encode_filename (encoded_file);
7217 # endif
7218
7219 /* Try to open the image file. */
7220 tiff = TIFFOpen (SSDATA (encoded_file), "r");
7221 if (tiff == NULL)
7222 {
7223 image_error ("Cannot open `%s'", file);
7224 return 0;
7225 }
7226 }
7227 else
7228 {
7229 if (!STRINGP (specified_data))
7230 {
7231 image_error ("Invalid image data `%s'", specified_data);
7232 return 0;
7233 }
7234
7235 /* Memory source! */
7236 memsrc.bytes = SDATA (specified_data);
7237 memsrc.len = SBYTES (specified_data);
7238 memsrc.index = 0;
7239
7240 tiff = TIFFClientOpen ("memory_source", "r", (thandle_t)&memsrc,
7241 tiff_read_from_memory,
7242 tiff_write_from_memory,
7243 tiff_seek_in_memory,
7244 tiff_close_memory,
7245 tiff_size_of_memory,
7246 tiff_mmap_memory,
7247 tiff_unmap_memory);
7248
7249 if (!tiff)
7250 {
7251 image_error ("Cannot open memory source for `%s'", img->spec);
7252 return 0;
7253 }
7254 }
7255
7256 image = image_spec_value (img->spec, QCindex, NULL);
7257 if (INTEGERP (image))
7258 {
7259 EMACS_INT ino = XFASTINT (image);
7260 if (! (TYPE_MINIMUM (tdir_t) <= ino && ino <= TYPE_MAXIMUM (tdir_t)
7261 && TIFFSetDirectory (tiff, ino)))
7262 {
7263 image_error ("Invalid image number `%s' in image `%s'",
7264 image, img->spec);
7265 TIFFClose (tiff);
7266 return 0;
7267 }
7268 }
7269
7270 /* Get width and height of the image, and allocate a raster buffer
7271 of width x height 32-bit values. */
7272 TIFFGetField (tiff, TIFFTAG_IMAGEWIDTH, &width);
7273 TIFFGetField (tiff, TIFFTAG_IMAGELENGTH, &height);
7274
7275 if (!check_image_size (f, width, height))
7276 {
7277 image_size_error ();
7278 TIFFClose (tiff);
7279 return 0;
7280 }
7281
7282 /* Create the X image and pixmap. */
7283 if (! (height <= min (PTRDIFF_MAX, SIZE_MAX) / sizeof *buf / width
7284 && image_create_x_image_and_pixmap (f, img, width, height, 0,
7285 &ximg, 0)))
7286 {
7287 TIFFClose (tiff);
7288 return 0;
7289 }
7290
7291 buf = xmalloc (sizeof *buf * width * height);
7292
7293 rc = TIFFReadRGBAImage (tiff, width, height, buf, 0);
7294
7295 /* Count the number of images in the file. */
7296 for (count = 1; TIFFSetDirectory (tiff, count); count++)
7297 continue;
7298
7299 if (count > 1)
7300 img->lisp_data = Fcons (Qcount,
7301 Fcons (make_number (count),
7302 img->lisp_data));
7303
7304 TIFFClose (tiff);
7305 if (!rc)
7306 {
7307 image_error ("Error reading TIFF image `%s'", img->spec);
7308 xfree (buf);
7309 return 0;
7310 }
7311
7312 #ifdef USE_CAIRO
7313 {
7314 unsigned char *data = (unsigned char *) xmalloc (width*height*4);
7315 uint32_t *dataptr = (uint32_t *) data;
7316
7317 for (y = 0; y < height; ++y)
7318 {
7319 uint32 *row = buf + (height - 1 - y) * width;
7320 for (x = 0; x < width; ++x)
7321 {
7322 uint32 abgr = row[x];
7323 int r = TIFFGetR (abgr);
7324 int g = TIFFGetG (abgr);
7325 int b = TIFFGetB (abgr);
7326 int a = TIFFGetA (abgr);
7327 *dataptr++ = (a << 24) | (r << 16) | (g << 8) | b;
7328 }
7329 }
7330
7331 create_cairo_image_surface (img, data, width, height);
7332 }
7333 #else
7334 /* Initialize the color table. */
7335 init_color_table ();
7336
7337 /* Process the pixel raster. Origin is in the lower-left corner. */
7338 for (y = 0; y < height; ++y)
7339 {
7340 uint32 *row = buf + y * width;
7341
7342 for (x = 0; x < width; ++x)
7343 {
7344 uint32 abgr = row[x];
7345 int r = TIFFGetR (abgr) << 8;
7346 int g = TIFFGetG (abgr) << 8;
7347 int b = TIFFGetB (abgr) << 8;
7348 XPutPixel (ximg, x, height - 1 - y, lookup_rgb_color (f, r, g, b));
7349 }
7350 }
7351
7352 # ifdef COLOR_TABLE_SUPPORT
7353 /* Remember the colors allocated for the image. Free the color table. */
7354 img->colors = colors_in_color_table (&img->ncolors);
7355 free_color_table ();
7356 # endif /* COLOR_TABLE_SUPPORT */
7357
7358 img->width = width;
7359 img->height = height;
7360
7361 /* Maybe fill in the background field while we have ximg handy. */
7362 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
7363 /* Casting avoids a GCC warning on W32. */
7364 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
7365
7366 /* Put ximg into the image. */
7367 image_put_x_image (f, img, ximg, 0);
7368
7369 #endif /* ! USE_CAIRO */
7370
7371 xfree (buf);
7372 return 1;
7373 }
7374
7375 #elif defined HAVE_NS
7376
7377 static bool
7378 tiff_load (struct frame *f, struct image *img)
7379 {
7380 return ns_load_image (f, img,
7381 image_spec_value (img->spec, QCfile, NULL),
7382 image_spec_value (img->spec, QCdata, NULL));
7383 }
7384
7385 #endif
7386
7387
7388 \f
7389 /***********************************************************************
7390 GIF
7391 ***********************************************************************/
7392
7393 #if defined (HAVE_GIF) || defined (HAVE_NS)
7394
7395 static bool gif_image_p (Lisp_Object object);
7396 static bool gif_load (struct frame *f, struct image *img);
7397 static void gif_clear_image (struct frame *f, struct image *img);
7398
7399 /* Indices of image specification fields in gif_format, below. */
7400
7401 enum gif_keyword_index
7402 {
7403 GIF_TYPE,
7404 GIF_DATA,
7405 GIF_FILE,
7406 GIF_ASCENT,
7407 GIF_MARGIN,
7408 GIF_RELIEF,
7409 GIF_ALGORITHM,
7410 GIF_HEURISTIC_MASK,
7411 GIF_MASK,
7412 GIF_IMAGE,
7413 GIF_BACKGROUND,
7414 GIF_LAST
7415 };
7416
7417 /* Vector of image_keyword structures describing the format
7418 of valid user-defined image specifications. */
7419
7420 static const struct image_keyword gif_format[GIF_LAST] =
7421 {
7422 {":type", IMAGE_SYMBOL_VALUE, 1},
7423 {":data", IMAGE_STRING_VALUE, 0},
7424 {":file", IMAGE_STRING_VALUE, 0},
7425 {":ascent", IMAGE_ASCENT_VALUE, 0},
7426 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
7427 {":relief", IMAGE_INTEGER_VALUE, 0},
7428 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7429 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7430 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7431 {":index", IMAGE_NON_NEGATIVE_INTEGER_VALUE, 0},
7432 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
7433 };
7434
7435 #if defined HAVE_NTGUI && defined WINDOWSNT
7436 static bool init_gif_functions (void);
7437 #else
7438 #define init_gif_functions NULL
7439 #endif
7440
7441 /* Structure describing the image type `gif'. */
7442
7443 static struct image_type gif_type =
7444 {
7445 SYMBOL_INDEX (Qgif),
7446 gif_image_p,
7447 gif_load,
7448 gif_clear_image,
7449 init_gif_functions,
7450 NULL
7451 };
7452
7453 /* Free X resources of GIF image IMG which is used on frame F. */
7454
7455 static void
7456 gif_clear_image (struct frame *f, struct image *img)
7457 {
7458 img->lisp_data = Qnil;
7459 x_clear_image (f, img);
7460 }
7461
7462 /* Return true if OBJECT is a valid GIF image specification. */
7463
7464 static bool
7465 gif_image_p (Lisp_Object object)
7466 {
7467 struct image_keyword fmt[GIF_LAST];
7468 memcpy (fmt, gif_format, sizeof fmt);
7469
7470 if (!parse_image_spec (object, fmt, GIF_LAST, Qgif))
7471 return 0;
7472
7473 /* Must specify either the :data or :file keyword. */
7474 return fmt[GIF_FILE].count + fmt[GIF_DATA].count == 1;
7475 }
7476
7477 #endif /* HAVE_GIF */
7478
7479 #ifdef HAVE_GIF
7480
7481 # ifdef HAVE_NTGUI
7482
7483 /* winuser.h might define DrawText to DrawTextA or DrawTextW.
7484 Undefine before redefining to avoid a preprocessor warning. */
7485 # ifdef DrawText
7486 # undef DrawText
7487 # endif
7488 /* avoid conflict with QuickdrawText.h */
7489 # define DrawText gif_DrawText
7490 # include <gif_lib.h>
7491 # undef DrawText
7492
7493 /* Giflib before 5.0 didn't define these macros (used only if HAVE_NTGUI). */
7494 # ifndef GIFLIB_MINOR
7495 # define GIFLIB_MINOR 0
7496 # endif
7497 # ifndef GIFLIB_RELEASE
7498 # define GIFLIB_RELEASE 0
7499 # endif
7500
7501 # else /* HAVE_NTGUI */
7502
7503 # include <gif_lib.h>
7504
7505 # endif /* HAVE_NTGUI */
7506
7507 /* Giflib before 5.0 didn't define these macros. */
7508 # ifndef GIFLIB_MAJOR
7509 # define GIFLIB_MAJOR 4
7510 # endif
7511
7512 /* GifErrorString is declared to return char const * when GIFLIB_MAJOR
7513 and GIFLIB_MINOR indicate 5.1 or later. Do not bother using it in
7514 earlier releases, where either it returns char * or GIFLIB_MINOR
7515 may be incorrect. */
7516 # define HAVE_GIFERRORSTRING (5 < GIFLIB_MAJOR + (1 <= GIFLIB_MINOR))
7517
7518 # ifdef WINDOWSNT
7519
7520 /* GIF library details. */
7521 # if GIFLIB_MAJOR + (GIFLIB_MINOR >= 1) > 5
7522 DEF_DLL_FN (int, DGifCloseFile, (GifFileType *, int *));
7523 # else
7524 DEF_DLL_FN (int, DGifCloseFile, (GifFileType *));
7525 # endif
7526 DEF_DLL_FN (int, DGifSlurp, (GifFileType *));
7527 # if GIFLIB_MAJOR < 5
7528 DEF_DLL_FN (GifFileType *, DGifOpen, (void *, InputFunc));
7529 DEF_DLL_FN (GifFileType *, DGifOpenFileName, (const char *));
7530 # else
7531 DEF_DLL_FN (GifFileType *, DGifOpen, (void *, InputFunc, int *));
7532 DEF_DLL_FN (GifFileType *, DGifOpenFileName, (const char *, int *));
7533 # endif
7534 # if HAVE_GIFERRORSTRING
7535 DEF_DLL_FN (char const *, GifErrorString, (int));
7536 # endif
7537
7538 static bool
7539 init_gif_functions (void)
7540 {
7541 HMODULE library;
7542
7543 if (!(library = w32_delayed_load (Qgif)))
7544 return 0;
7545
7546 LOAD_DLL_FN (library, DGifCloseFile);
7547 LOAD_DLL_FN (library, DGifSlurp);
7548 LOAD_DLL_FN (library, DGifOpen);
7549 LOAD_DLL_FN (library, DGifOpenFileName);
7550 # if HAVE_GIFERRORSTRING
7551 LOAD_DLL_FN (library, GifErrorString);
7552 # endif
7553 return 1;
7554 }
7555
7556 # undef DGifCloseFile
7557 # undef DGifOpen
7558 # undef DGifOpenFileName
7559 # undef DGifSlurp
7560 # undef GifErrorString
7561
7562 # define DGifCloseFile fn_DGifCloseFile
7563 # define DGifOpen fn_DGifOpen
7564 # define DGifOpenFileName fn_DGifOpenFileName
7565 # define DGifSlurp fn_DGifSlurp
7566 # define GifErrorString fn_GifErrorString
7567
7568 # endif /* WINDOWSNT */
7569
7570 /* Reading a GIF image from memory
7571 Based on the PNG memory stuff to a certain extent. */
7572
7573 typedef struct
7574 {
7575 unsigned char *bytes;
7576 ptrdiff_t len;
7577 ptrdiff_t index;
7578 }
7579 gif_memory_source;
7580
7581 /* Make the current memory source available to gif_read_from_memory.
7582 It's done this way because not all versions of libungif support
7583 a UserData field in the GifFileType structure. */
7584 static gif_memory_source *current_gif_memory_src;
7585
7586 static int
7587 gif_read_from_memory (GifFileType *file, GifByteType *buf, int len)
7588 {
7589 gif_memory_source *src = current_gif_memory_src;
7590
7591 if (len > src->len - src->index)
7592 return -1;
7593
7594 memcpy (buf, src->bytes + src->index, len);
7595 src->index += len;
7596 return len;
7597 }
7598
7599 static int
7600 gif_close (GifFileType *gif, int *err)
7601 {
7602 int retval;
7603
7604 #if GIFLIB_MAJOR + (GIFLIB_MINOR >= 1) > 5
7605 retval = DGifCloseFile (gif, err);
7606 #else
7607 retval = DGifCloseFile (gif);
7608 #if GIFLIB_MAJOR >= 5
7609 if (err)
7610 *err = gif->Error;
7611 #endif
7612 #endif
7613 return retval;
7614 }
7615
7616 /* Load GIF image IMG for use on frame F. Value is true if
7617 successful. */
7618
7619 static const int interlace_start[] = {0, 4, 2, 1};
7620 static const int interlace_increment[] = {8, 8, 4, 2};
7621
7622 #define GIF_LOCAL_DESCRIPTOR_EXTENSION 249
7623
7624 static bool
7625 gif_load (struct frame *f, struct image *img)
7626 {
7627 int rc, width, height, x, y, i, j;
7628 ColorMapObject *gif_color_map;
7629 GifFileType *gif;
7630 gif_memory_source memsrc;
7631 Lisp_Object specified_bg = image_spec_value (img->spec, QCbackground, NULL);
7632 Lisp_Object specified_file = image_spec_value (img->spec, QCfile, NULL);
7633 Lisp_Object specified_data = image_spec_value (img->spec, QCdata, NULL);
7634 EMACS_INT idx;
7635 int gif_err;
7636
7637 #ifdef USE_CAIRO
7638 unsigned char *data = 0;
7639 #else
7640 unsigned long pixel_colors[256];
7641 unsigned long bgcolor = 0;
7642 XImagePtr ximg;
7643 #endif
7644
7645 if (NILP (specified_data))
7646 {
7647 Lisp_Object file = x_find_image_file (specified_file);
7648 if (!STRINGP (file))
7649 {
7650 image_error ("Cannot find image file `%s'", specified_file);
7651 return 0;
7652 }
7653
7654 Lisp_Object encoded_file = ENCODE_FILE (file);
7655 #ifdef WINDOWSNT
7656 encoded_file = ansi_encode_filename (encoded_file);
7657 #endif
7658
7659 /* Open the GIF file. */
7660 #if GIFLIB_MAJOR < 5
7661 gif = DGifOpenFileName (SSDATA (encoded_file));
7662 #else
7663 gif = DGifOpenFileName (SSDATA (encoded_file), &gif_err);
7664 #endif
7665 if (gif == NULL)
7666 {
7667 #if HAVE_GIFERRORSTRING
7668 image_error ("Cannot open `%s': %s",
7669 file, build_string (GifErrorString (gif_err)));
7670 #else
7671 image_error ("Cannot open `%s'", file);
7672 #endif
7673 return 0;
7674 }
7675 }
7676 else
7677 {
7678 if (!STRINGP (specified_data))
7679 {
7680 image_error ("Invalid image data `%s'", specified_data);
7681 return 0;
7682 }
7683
7684 /* Read from memory! */
7685 current_gif_memory_src = &memsrc;
7686 memsrc.bytes = SDATA (specified_data);
7687 memsrc.len = SBYTES (specified_data);
7688 memsrc.index = 0;
7689
7690 #if GIFLIB_MAJOR < 5
7691 gif = DGifOpen (&memsrc, gif_read_from_memory);
7692 #else
7693 gif = DGifOpen (&memsrc, gif_read_from_memory, &gif_err);
7694 #endif
7695 if (!gif)
7696 {
7697 #if HAVE_GIFERRORSTRING
7698 image_error ("Cannot open memory source `%s': %s",
7699 img->spec, build_string (GifErrorString (gif_err)));
7700 #else
7701 image_error ("Cannot open memory source `%s'", img->spec);
7702 #endif
7703 return 0;
7704 }
7705 }
7706
7707 /* Before reading entire contents, check the declared image size. */
7708 if (!check_image_size (f, gif->SWidth, gif->SHeight))
7709 {
7710 image_size_error ();
7711 gif_close (gif, NULL);
7712 return 0;
7713 }
7714
7715 /* Read entire contents. */
7716 rc = DGifSlurp (gif);
7717 if (rc == GIF_ERROR || gif->ImageCount <= 0)
7718 {
7719 image_error ("Error reading `%s'", img->spec);
7720 gif_close (gif, NULL);
7721 return 0;
7722 }
7723
7724 /* Which sub-image are we to display? */
7725 {
7726 Lisp_Object image_number = image_spec_value (img->spec, QCindex, NULL);
7727 idx = INTEGERP (image_number) ? XFASTINT (image_number) : 0;
7728 if (idx < 0 || idx >= gif->ImageCount)
7729 {
7730 image_error ("Invalid image number `%s' in image `%s'",
7731 image_number, img->spec);
7732 gif_close (gif, NULL);
7733 return 0;
7734 }
7735 }
7736
7737 width = img->width = gif->SWidth;
7738 height = img->height = gif->SHeight;
7739
7740 img->corners[TOP_CORNER] = gif->SavedImages[0].ImageDesc.Top;
7741 img->corners[LEFT_CORNER] = gif->SavedImages[0].ImageDesc.Left;
7742 img->corners[BOT_CORNER]
7743 = img->corners[TOP_CORNER] + gif->SavedImages[0].ImageDesc.Height;
7744 img->corners[RIGHT_CORNER]
7745 = img->corners[LEFT_CORNER] + gif->SavedImages[0].ImageDesc.Width;
7746
7747 if (!check_image_size (f, width, height))
7748 {
7749 image_size_error ();
7750 gif_close (gif, NULL);
7751 return 0;
7752 }
7753
7754 /* Check that the selected subimages fit. It's not clear whether
7755 the GIF spec requires this, but Emacs can crash if they don't fit. */
7756 for (j = 0; j <= idx; ++j)
7757 {
7758 struct SavedImage *subimage = gif->SavedImages + j;
7759 int subimg_width = subimage->ImageDesc.Width;
7760 int subimg_height = subimage->ImageDesc.Height;
7761 int subimg_top = subimage->ImageDesc.Top;
7762 int subimg_left = subimage->ImageDesc.Left;
7763 if (! (subimg_width >= 0 && subimg_height >= 0
7764 && 0 <= subimg_top && subimg_top <= height - subimg_height
7765 && 0 <= subimg_left && subimg_left <= width - subimg_width))
7766 {
7767 image_error ("Subimage does not fit in image");
7768 gif_close (gif, NULL);
7769 return 0;
7770 }
7771 }
7772
7773 #ifdef USE_CAIRO
7774 /* xzalloc so data is zero => transparent */
7775 data = (unsigned char *) xzalloc (width * height * 4);
7776 if (STRINGP (specified_bg))
7777 {
7778 XColor color;
7779 if (x_defined_color (f, SSDATA (specified_bg), &color, 0))
7780 {
7781 uint32_t *dataptr = (uint32_t *)data;
7782 int r = color.red/256;
7783 int g = color.green/256;
7784 int b = color.blue/256;
7785
7786 for (y = 0; y < height; ++y)
7787 for (x = 0; x < width; ++x)
7788 *dataptr++ = (0xff << 24) | (r << 16) | (g << 8) | b;
7789 }
7790 }
7791 #else
7792 /* Create the X image and pixmap. */
7793 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
7794 {
7795 gif_close (gif, NULL);
7796 return 0;
7797 }
7798
7799 /* Clear the part of the screen image not covered by the image.
7800 Full animated GIF support requires more here (see the gif89 spec,
7801 disposal methods). Let's simply assume that the part not covered
7802 by a sub-image is in the frame's background color. */
7803 for (y = 0; y < img->corners[TOP_CORNER]; ++y)
7804 for (x = 0; x < width; ++x)
7805 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7806
7807 for (y = img->corners[BOT_CORNER]; y < height; ++y)
7808 for (x = 0; x < width; ++x)
7809 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7810
7811 for (y = img->corners[TOP_CORNER]; y < img->corners[BOT_CORNER]; ++y)
7812 {
7813 for (x = 0; x < img->corners[LEFT_CORNER]; ++x)
7814 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7815 for (x = img->corners[RIGHT_CORNER]; x < width; ++x)
7816 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7817 }
7818 #endif
7819
7820 /* Read the GIF image into the X image. */
7821
7822 /* FIXME: With the current implementation, loading an animated gif
7823 is quadratic in the number of animation frames, since each frame
7824 is a separate struct image. We must provide a way for a single
7825 gif_load call to construct and save all animation frames. */
7826
7827 init_color_table ();
7828
7829 #ifndef USE_CAIRO
7830 if (STRINGP (specified_bg))
7831 bgcolor = x_alloc_image_color (f, img, specified_bg,
7832 FRAME_BACKGROUND_PIXEL (f));
7833 #endif
7834
7835 for (j = 0; j <= idx; ++j)
7836 {
7837 /* We use a local variable `raster' here because RasterBits is a
7838 char *, which invites problems with bytes >= 0x80. */
7839 struct SavedImage *subimage = gif->SavedImages + j;
7840 unsigned char *raster = (unsigned char *) subimage->RasterBits;
7841 int transparency_color_index = -1;
7842 int disposal = 0;
7843 int subimg_width = subimage->ImageDesc.Width;
7844 int subimg_height = subimage->ImageDesc.Height;
7845 int subimg_top = subimage->ImageDesc.Top;
7846 int subimg_left = subimage->ImageDesc.Left;
7847
7848 /* Find the Graphic Control Extension block for this sub-image.
7849 Extract the disposal method and transparency color. */
7850 for (i = 0; i < subimage->ExtensionBlockCount; i++)
7851 {
7852 ExtensionBlock *extblock = subimage->ExtensionBlocks + i;
7853
7854 if ((extblock->Function == GIF_LOCAL_DESCRIPTOR_EXTENSION)
7855 && extblock->ByteCount == 4
7856 && extblock->Bytes[0] & 1)
7857 {
7858 /* From gif89a spec: 1 = "keep in place", 2 = "restore
7859 to background". Treat any other value like 2. */
7860 disposal = (extblock->Bytes[0] >> 2) & 7;
7861 transparency_color_index = (unsigned char) extblock->Bytes[3];
7862 break;
7863 }
7864 }
7865
7866 /* We can't "keep in place" the first subimage. */
7867 if (j == 0)
7868 disposal = 2;
7869
7870 /* For disposal == 0, the spec says "No disposal specified. The
7871 decoder is not required to take any action." In practice, it
7872 seems we need to treat this like "keep in place", see e.g.
7873 http://upload.wikimedia.org/wikipedia/commons/3/37/Clock.gif */
7874 if (disposal == 0)
7875 disposal = 1;
7876
7877 gif_color_map = subimage->ImageDesc.ColorMap;
7878 if (!gif_color_map)
7879 gif_color_map = gif->SColorMap;
7880
7881 #ifndef USE_CAIRO
7882 /* Allocate subimage colors. */
7883 memset (pixel_colors, 0, sizeof pixel_colors);
7884
7885 if (gif_color_map)
7886 for (i = 0; i < gif_color_map->ColorCount; ++i)
7887 {
7888 if (transparency_color_index == i)
7889 pixel_colors[i] = STRINGP (specified_bg)
7890 ? bgcolor : FRAME_BACKGROUND_PIXEL (f);
7891 else
7892 {
7893 int r = gif_color_map->Colors[i].Red << 8;
7894 int g = gif_color_map->Colors[i].Green << 8;
7895 int b = gif_color_map->Colors[i].Blue << 8;
7896 pixel_colors[i] = lookup_rgb_color (f, r, g, b);
7897 }
7898 }
7899 #endif
7900
7901 /* Apply the pixel values. */
7902 if (GIFLIB_MAJOR < 5 && gif->SavedImages[j].ImageDesc.Interlace)
7903 {
7904 int row, pass;
7905
7906 for (y = 0, row = interlace_start[0], pass = 0;
7907 y < subimg_height;
7908 y++, row += interlace_increment[pass])
7909 {
7910 while (subimg_height <= row)
7911 row = interlace_start[++pass];
7912
7913 for (x = 0; x < subimg_width; x++)
7914 {
7915 int c = raster[y * subimg_width + x];
7916 if (transparency_color_index != c || disposal != 1)
7917 {
7918 #ifdef USE_CAIRO
7919 uint32_t *dataptr =
7920 ((uint32_t*)data + ((row + subimg_top) * subimg_width
7921 + x + subimg_left));
7922 int r = gif_color_map->Colors[c].Red;
7923 int g = gif_color_map->Colors[c].Green;
7924 int b = gif_color_map->Colors[c].Blue;
7925
7926 if (transparency_color_index != c)
7927 *dataptr = (0xff << 24) | (r << 16) | (g << 8) | b;
7928 #else
7929 XPutPixel (ximg, x + subimg_left, row + subimg_top,
7930 pixel_colors[c]);
7931 #endif
7932 }
7933 }
7934 }
7935 }
7936 else
7937 {
7938 for (y = 0; y < subimg_height; ++y)
7939 for (x = 0; x < subimg_width; ++x)
7940 {
7941 int c = raster[y * subimg_width + x];
7942 if (transparency_color_index != c || disposal != 1)
7943 {
7944 #ifdef USE_CAIRO
7945 uint32_t *dataptr =
7946 ((uint32_t*)data + ((y + subimg_top) * subimg_width
7947 + x + subimg_left));
7948 int r = gif_color_map->Colors[c].Red;
7949 int g = gif_color_map->Colors[c].Green;
7950 int b = gif_color_map->Colors[c].Blue;
7951 if (transparency_color_index != c)
7952 *dataptr = (0xff << 24) | (r << 16) | (g << 8) | b;
7953 #else
7954 XPutPixel (ximg, x + subimg_left, y + subimg_top,
7955 pixel_colors[c]);
7956 #endif
7957 }
7958 }
7959 }
7960 }
7961
7962 #ifdef COLOR_TABLE_SUPPORT
7963 img->colors = colors_in_color_table (&img->ncolors);
7964 free_color_table ();
7965 #endif /* COLOR_TABLE_SUPPORT */
7966
7967 /* Save GIF image extension data for `image-metadata'.
7968 Format is (count IMAGES extension-data (FUNCTION "BYTES" ...)). */
7969 img->lisp_data = Qnil;
7970 if (gif->SavedImages[idx].ExtensionBlockCount > 0)
7971 {
7972 int delay = 0;
7973 ExtensionBlock *ext = gif->SavedImages[idx].ExtensionBlocks;
7974 for (i = 0; i < gif->SavedImages[idx].ExtensionBlockCount; i++, ext++)
7975 /* Append (... FUNCTION "BYTES") */
7976 {
7977 img->lisp_data
7978 = Fcons (make_number (ext->Function),
7979 Fcons (make_unibyte_string (ext->Bytes, ext->ByteCount),
7980 img->lisp_data));
7981 if (ext->Function == GIF_LOCAL_DESCRIPTOR_EXTENSION
7982 && ext->ByteCount == 4)
7983 {
7984 delay = ext->Bytes[2] << CHAR_BIT;
7985 delay |= ext->Bytes[1];
7986 }
7987 }
7988 img->lisp_data = list2 (Qextension_data, img->lisp_data);
7989 if (delay)
7990 img->lisp_data
7991 = Fcons (Qdelay,
7992 Fcons (make_float (delay / 100.0),
7993 img->lisp_data));
7994 }
7995
7996 if (gif->ImageCount > 1)
7997 img->lisp_data = Fcons (Qcount,
7998 Fcons (make_number (gif->ImageCount),
7999 img->lisp_data));
8000
8001 if (gif_close (gif, &gif_err) == GIF_ERROR)
8002 {
8003 #if HAVE_GIFERRORSTRING
8004 char const *error_text = GifErrorString (gif_err);
8005
8006 if (error_text)
8007 image_error ("Error closing `%s': %s",
8008 img->spec, build_string (error_text));
8009 #else
8010 image_error ("Error closing `%s'", img->spec);
8011 #endif
8012 }
8013
8014 #ifdef USE_CAIRO
8015 create_cairo_image_surface (img, data, width, height);
8016 #else
8017 /* Maybe fill in the background field while we have ximg handy. */
8018 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
8019 /* Casting avoids a GCC warning. */
8020 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
8021
8022 /* Put ximg into the image. */
8023 image_put_x_image (f, img, ximg, 0);
8024 #endif
8025
8026 return 1;
8027 }
8028
8029 #else /* !HAVE_GIF */
8030
8031 #ifdef HAVE_NS
8032 static bool
8033 gif_load (struct frame *f, struct image *img)
8034 {
8035 return ns_load_image (f, img,
8036 image_spec_value (img->spec, QCfile, NULL),
8037 image_spec_value (img->spec, QCdata, NULL));
8038 }
8039 #endif /* HAVE_NS */
8040
8041 #endif /* HAVE_GIF */
8042
8043
8044 #ifdef HAVE_IMAGEMAGICK
8045
8046 /***********************************************************************
8047 ImageMagick
8048 ***********************************************************************/
8049
8050 /* Scale an image size by returning SIZE / DIVISOR * MULTIPLIER,
8051 safely rounded and clipped to int range. */
8052
8053 static int
8054 scale_image_size (int size, size_t divisor, size_t multiplier)
8055 {
8056 if (divisor != 0)
8057 {
8058 double s = size;
8059 double scaled = s * multiplier / divisor + 0.5;
8060 if (scaled < INT_MAX)
8061 return scaled;
8062 }
8063 return INT_MAX;
8064 }
8065
8066 /* Compute the desired size of an image with native size WIDTH x HEIGHT.
8067 Use SPEC to deduce the size. Store the desired size into
8068 *D_WIDTH x *D_HEIGHT. Store -1 x -1 if the native size is OK. */
8069 static void
8070 compute_image_size (size_t width, size_t height,
8071 Lisp_Object spec,
8072 int *d_width, int *d_height)
8073 {
8074 Lisp_Object value;
8075 int desired_width, desired_height;
8076 double scale = 1;
8077
8078 value = image_spec_value (spec, QCscale, NULL);
8079 if (NUMBERP (value))
8080 scale = extract_float (value);
8081
8082 /* If width and/or height is set in the display spec assume we want
8083 to scale to those values. If either h or w is unspecified, the
8084 unspecified should be calculated from the specified to preserve
8085 aspect ratio. */
8086 value = image_spec_value (spec, QCwidth, NULL);
8087 desired_width = NATNUMP (value) ?
8088 min (XFASTINT (value) * scale, INT_MAX) : -1;
8089 value = image_spec_value (spec, QCheight, NULL);
8090 desired_height = NATNUMP (value) ?
8091 min (XFASTINT (value) * scale, INT_MAX) : -1;
8092
8093 width = width * scale;
8094 height = height * scale;
8095
8096 if (desired_width == -1)
8097 {
8098 value = image_spec_value (spec, QCmax_width, NULL);
8099 if (NATNUMP (value))
8100 {
8101 int max_width = min (XFASTINT (value), INT_MAX);
8102 if (max_width < width)
8103 {
8104 /* The image is wider than :max-width. */
8105 desired_width = max_width;
8106 if (desired_height == -1)
8107 {
8108 desired_height = scale_image_size (desired_width,
8109 width, height);
8110 value = image_spec_value (spec, QCmax_height, NULL);
8111 if (NATNUMP (value))
8112 {
8113 int max_height = min (XFASTINT (value), INT_MAX);
8114 if (max_height < desired_height)
8115 {
8116 desired_height = max_height;
8117 desired_width = scale_image_size (desired_height,
8118 height, width);
8119 }
8120 }
8121 }
8122 }
8123 }
8124 }
8125
8126 if (desired_height == -1)
8127 {
8128 value = image_spec_value (spec, QCmax_height, NULL);
8129 if (NATNUMP (value))
8130 {
8131 int max_height = min (XFASTINT (value), INT_MAX);
8132 if (max_height < height)
8133 desired_height = max_height;
8134 }
8135 }
8136
8137 if (desired_width != -1 && desired_height == -1)
8138 /* w known, calculate h. */
8139 desired_height = scale_image_size (desired_width, width, height);
8140
8141 if (desired_width == -1 && desired_height != -1)
8142 /* h known, calculate w. */
8143 desired_width = scale_image_size (desired_height, height, width);
8144
8145 /* We have no width/height settings, so just apply the scale. */
8146 if (desired_width == -1 && desired_height == -1)
8147 {
8148 desired_width = width;
8149 desired_height = height;
8150 }
8151
8152 *d_width = desired_width;
8153 *d_height = desired_height;
8154 }
8155
8156 static bool imagemagick_image_p (Lisp_Object);
8157 static bool imagemagick_load (struct frame *, struct image *);
8158 static void imagemagick_clear_image (struct frame *, struct image *);
8159
8160 /* Indices of image specification fields in imagemagick_format. */
8161
8162 enum imagemagick_keyword_index
8163 {
8164 IMAGEMAGICK_TYPE,
8165 IMAGEMAGICK_DATA,
8166 IMAGEMAGICK_FILE,
8167 IMAGEMAGICK_ASCENT,
8168 IMAGEMAGICK_MARGIN,
8169 IMAGEMAGICK_RELIEF,
8170 IMAGEMAGICK_ALGORITHM,
8171 IMAGEMAGICK_HEURISTIC_MASK,
8172 IMAGEMAGICK_MASK,
8173 IMAGEMAGICK_BACKGROUND,
8174 IMAGEMAGICK_HEIGHT,
8175 IMAGEMAGICK_WIDTH,
8176 IMAGEMAGICK_MAX_HEIGHT,
8177 IMAGEMAGICK_MAX_WIDTH,
8178 IMAGEMAGICK_FORMAT,
8179 IMAGEMAGICK_ROTATION,
8180 IMAGEMAGICK_CROP,
8181 IMAGEMAGICK_LAST
8182 };
8183
8184 /* Vector of image_keyword structures describing the format
8185 of valid user-defined image specifications. */
8186
8187 static struct image_keyword imagemagick_format[IMAGEMAGICK_LAST] =
8188 {
8189 {":type", IMAGE_SYMBOL_VALUE, 1},
8190 {":data", IMAGE_STRING_VALUE, 0},
8191 {":file", IMAGE_STRING_VALUE, 0},
8192 {":ascent", IMAGE_ASCENT_VALUE, 0},
8193 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
8194 {":relief", IMAGE_INTEGER_VALUE, 0},
8195 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8196 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8197 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8198 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
8199 {":height", IMAGE_INTEGER_VALUE, 0},
8200 {":width", IMAGE_INTEGER_VALUE, 0},
8201 {":max-height", IMAGE_INTEGER_VALUE, 0},
8202 {":max-width", IMAGE_INTEGER_VALUE, 0},
8203 {":format", IMAGE_SYMBOL_VALUE, 0},
8204 {":rotation", IMAGE_NUMBER_VALUE, 0},
8205 {":crop", IMAGE_DONT_CHECK_VALUE_TYPE, 0}
8206 };
8207
8208 #if defined HAVE_NTGUI && defined WINDOWSNT
8209 static bool init_imagemagick_functions (void);
8210 #else
8211 #define init_imagemagick_functions NULL
8212 #endif
8213
8214 /* Structure describing the image type for any image handled via
8215 ImageMagick. */
8216
8217 static struct image_type imagemagick_type =
8218 {
8219 SYMBOL_INDEX (Qimagemagick),
8220 imagemagick_image_p,
8221 imagemagick_load,
8222 imagemagick_clear_image,
8223 init_imagemagick_functions,
8224 NULL
8225 };
8226
8227 /* Free X resources of imagemagick image IMG which is used on frame F. */
8228
8229 static void
8230 imagemagick_clear_image (struct frame *f,
8231 struct image *img)
8232 {
8233 x_clear_image (f, img);
8234 }
8235
8236 /* Return true if OBJECT is a valid IMAGEMAGICK image specification. Do
8237 this by calling parse_image_spec and supplying the keywords that
8238 identify the IMAGEMAGICK format. */
8239
8240 static bool
8241 imagemagick_image_p (Lisp_Object object)
8242 {
8243 struct image_keyword fmt[IMAGEMAGICK_LAST];
8244 memcpy (fmt, imagemagick_format, sizeof fmt);
8245
8246 if (!parse_image_spec (object, fmt, IMAGEMAGICK_LAST, Qimagemagick))
8247 return 0;
8248
8249 /* Must specify either the :data or :file keyword. */
8250 return fmt[IMAGEMAGICK_FILE].count + fmt[IMAGEMAGICK_DATA].count == 1;
8251 }
8252
8253 /* The GIF library also defines DrawRectangle, but its never used in Emacs.
8254 Therefore rename the function so it doesn't collide with ImageMagick. */
8255 #define DrawRectangle DrawRectangleGif
8256 #include <wand/MagickWand.h>
8257
8258 /* ImageMagick 6.5.3 through 6.6.5 hid PixelGetMagickColor for some reason.
8259 Emacs seems to work fine with the hidden version, so unhide it. */
8260 #include <magick/version.h>
8261 #if 0x653 <= MagickLibVersion && MagickLibVersion <= 0x665
8262 extern WandExport void PixelGetMagickColor (const PixelWand *,
8263 MagickPixelPacket *);
8264 #endif
8265
8266 /* Log ImageMagick error message.
8267 Useful when a ImageMagick function returns the status `MagickFalse'. */
8268
8269 static void
8270 imagemagick_error (MagickWand *wand)
8271 {
8272 char *description;
8273 ExceptionType severity;
8274
8275 description = MagickGetException (wand, &severity);
8276 image_error ("ImageMagick error: %s", build_string (description));
8277 MagickRelinquishMemory (description);
8278 }
8279
8280 /* Possibly give ImageMagick some extra help to determine the image
8281 type by supplying a "dummy" filename based on the Content-Type. */
8282
8283 static char *
8284 imagemagick_filename_hint (Lisp_Object spec, char hint_buffer[MaxTextExtent])
8285 {
8286 Lisp_Object symbol = intern ("image-format-suffixes");
8287 Lisp_Object val = find_symbol_value (symbol);
8288 Lisp_Object format;
8289
8290 if (! CONSP (val))
8291 return NULL;
8292
8293 format = image_spec_value (spec, intern (":format"), NULL);
8294 val = Fcar_safe (Fcdr_safe (Fassq (format, val)));
8295 if (! STRINGP (val))
8296 return NULL;
8297
8298 /* It's OK to truncate the hint if it has MaxTextExtent or more bytes,
8299 as ImageMagick would ignore the extra bytes anyway. */
8300 snprintf (hint_buffer, MaxTextExtent, "/tmp/foo.%s", SSDATA (val));
8301 return hint_buffer;
8302 }
8303
8304 /* Animated images (e.g., GIF89a) are composed from one "master image"
8305 (which is the first one, and then there's a number of images that
8306 follow. If following images have non-transparent colors, these are
8307 composed "on top" of the master image. So, in general, one has to
8308 compute ann the preceding images to be able to display a particular
8309 sub-image.
8310
8311 Computing all the preceding images is too slow, so we maintain a
8312 cache of previously computed images. We have to maintain a cache
8313 separate from the image cache, because the images may be scaled
8314 before display. */
8315
8316 struct animation_cache
8317 {
8318 MagickWand *wand;
8319 int index;
8320 struct timespec update_time;
8321 struct animation_cache *next;
8322 char signature[FLEXIBLE_ARRAY_MEMBER];
8323 };
8324
8325 static struct animation_cache *animation_cache = NULL;
8326
8327 static struct animation_cache *
8328 imagemagick_create_cache (char *signature)
8329 {
8330 struct animation_cache *cache
8331 = xmalloc (offsetof (struct animation_cache, signature)
8332 + strlen (signature) + 1);
8333 cache->wand = 0;
8334 cache->index = 0;
8335 cache->next = 0;
8336 strcpy (cache->signature, signature);
8337 return cache;
8338 }
8339
8340 /* Discard cached images that haven't been used for a minute. */
8341 static void
8342 imagemagick_prune_animation_cache (void)
8343 {
8344 struct animation_cache **pcache = &animation_cache;
8345 struct timespec old = timespec_sub (current_timespec (),
8346 make_timespec (60, 0));
8347
8348 while (*pcache)
8349 {
8350 struct animation_cache *cache = *pcache;
8351 if (timespec_cmp (old, cache->update_time) <= 0)
8352 pcache = &cache->next;
8353 else
8354 {
8355 if (cache->wand)
8356 DestroyMagickWand (cache->wand);
8357 *pcache = cache->next;
8358 xfree (cache);
8359 }
8360 }
8361 }
8362
8363 static struct animation_cache *
8364 imagemagick_get_animation_cache (MagickWand *wand)
8365 {
8366 char *signature = MagickGetImageSignature (wand);
8367 struct animation_cache *cache;
8368 struct animation_cache **pcache = &animation_cache;
8369
8370 imagemagick_prune_animation_cache ();
8371
8372 while (1)
8373 {
8374 cache = *pcache;
8375 if (! cache)
8376 {
8377 *pcache = cache = imagemagick_create_cache (signature);
8378 break;
8379 }
8380 if (strcmp (signature, cache->signature) == 0)
8381 break;
8382 pcache = &cache->next;
8383 }
8384
8385 DestroyString (signature);
8386 cache->update_time = current_timespec ();
8387 return cache;
8388 }
8389
8390 static MagickWand *
8391 imagemagick_compute_animated_image (MagickWand *super_wand, int ino)
8392 {
8393 int i;
8394 MagickWand *composite_wand;
8395 size_t dest_width, dest_height;
8396 struct animation_cache *cache = imagemagick_get_animation_cache (super_wand);
8397
8398 MagickSetIteratorIndex (super_wand, 0);
8399
8400 if (ino == 0 || cache->wand == NULL || cache->index > ino)
8401 {
8402 composite_wand = MagickGetImage (super_wand);
8403 if (cache->wand)
8404 DestroyMagickWand (cache->wand);
8405 }
8406 else
8407 composite_wand = cache->wand;
8408
8409 dest_height = MagickGetImageHeight (composite_wand);
8410
8411 for (i = max (1, cache->index + 1); i <= ino; i++)
8412 {
8413 MagickWand *sub_wand;
8414 PixelIterator *source_iterator, *dest_iterator;
8415 PixelWand **source, **dest;
8416 size_t source_width, source_height;
8417 ssize_t source_left, source_top;
8418 MagickPixelPacket pixel;
8419 DisposeType dispose;
8420 ptrdiff_t lines = 0;
8421
8422 MagickSetIteratorIndex (super_wand, i);
8423 sub_wand = MagickGetImage (super_wand);
8424
8425 MagickGetImagePage (sub_wand, &source_width, &source_height,
8426 &source_left, &source_top);
8427
8428 /* This flag says how to handle transparent pixels. */
8429 dispose = MagickGetImageDispose (sub_wand);
8430
8431 source_iterator = NewPixelIterator (sub_wand);
8432 if (! source_iterator)
8433 {
8434 DestroyMagickWand (composite_wand);
8435 DestroyMagickWand (sub_wand);
8436 cache->wand = NULL;
8437 image_error ("Imagemagick pixel iterator creation failed");
8438 return NULL;
8439 }
8440
8441 dest_iterator = NewPixelIterator (composite_wand);
8442 if (! dest_iterator)
8443 {
8444 DestroyMagickWand (composite_wand);
8445 DestroyMagickWand (sub_wand);
8446 DestroyPixelIterator (source_iterator);
8447 cache->wand = NULL;
8448 image_error ("Imagemagick pixel iterator creation failed");
8449 return NULL;
8450 }
8451
8452 /* The sub-image may not start at origin, so move the destination
8453 iterator to where the sub-image should start. */
8454 if (source_top > 0)
8455 {
8456 PixelSetIteratorRow (dest_iterator, source_top);
8457 lines = source_top;
8458 }
8459
8460 while ((source = PixelGetNextIteratorRow (source_iterator, &source_width))
8461 != NULL)
8462 {
8463 ptrdiff_t x;
8464
8465 /* Sanity check. This shouldn't happen, but apparently
8466 does in some pictures. */
8467 if (++lines >= dest_height)
8468 break;
8469
8470 dest = PixelGetNextIteratorRow (dest_iterator, &dest_width);
8471 for (x = 0; x < source_width; x++)
8472 {
8473 /* Sanity check. This shouldn't happen, but apparently
8474 also does in some pictures. */
8475 if (x + source_left >= dest_width)
8476 break;
8477 /* Normally we only copy over non-transparent pixels,
8478 but if the disposal method is "Background", then we
8479 copy over all pixels. */
8480 if (dispose == BackgroundDispose || PixelGetAlpha (source[x]))
8481 {
8482 PixelGetMagickColor (source[x], &pixel);
8483 PixelSetMagickColor (dest[x + source_left], &pixel);
8484 }
8485 }
8486 PixelSyncIterator (dest_iterator);
8487 }
8488
8489 DestroyPixelIterator (source_iterator);
8490 DestroyPixelIterator (dest_iterator);
8491 DestroyMagickWand (sub_wand);
8492 }
8493
8494 /* Cache a copy for the next iteration. The current wand will be
8495 destroyed by the caller. */
8496 cache->wand = CloneMagickWand (composite_wand);
8497 cache->index = ino;
8498
8499 return composite_wand;
8500 }
8501
8502
8503 /* Helper function for imagemagick_load, which does the actual loading
8504 given contents and size, apart from frame and image structures,
8505 passed from imagemagick_load. Uses librimagemagick to do most of
8506 the image processing.
8507
8508 F is a pointer to the Emacs frame; IMG to the image structure to
8509 prepare; CONTENTS is the string containing the IMAGEMAGICK data to
8510 be parsed; SIZE is the number of bytes of data; and FILENAME is
8511 either the file name or the image data.
8512
8513 Return true if successful. */
8514
8515 static bool
8516 imagemagick_load_image (struct frame *f, struct image *img,
8517 unsigned char *contents, unsigned int size,
8518 char *filename)
8519 {
8520 int width, height;
8521 size_t image_width, image_height;
8522 MagickBooleanType status;
8523 XImagePtr ximg;
8524 int x, y;
8525 MagickWand *image_wand;
8526 PixelIterator *iterator;
8527 PixelWand **pixels, *bg_wand = NULL;
8528 MagickPixelPacket pixel;
8529 Lisp_Object image;
8530 Lisp_Object value;
8531 Lisp_Object crop;
8532 EMACS_INT ino;
8533 int desired_width, desired_height;
8534 double rotation;
8535 int pixelwidth;
8536 char hint_buffer[MaxTextExtent];
8537 char *filename_hint = NULL;
8538
8539 /* Handle image index for image types who can contain more than one image.
8540 Interface :index is same as for GIF. First we "ping" the image to see how
8541 many sub-images it contains. Pinging is faster than loading the image to
8542 find out things about it. */
8543
8544 /* Initialize the imagemagick environment. */
8545 MagickWandGenesis ();
8546 image = image_spec_value (img->spec, QCindex, NULL);
8547 ino = INTEGERP (image) ? XFASTINT (image) : 0;
8548 image_wand = NewMagickWand ();
8549
8550 if (filename)
8551 status = MagickReadImage (image_wand, filename);
8552 else
8553 {
8554 filename_hint = imagemagick_filename_hint (img->spec, hint_buffer);
8555 MagickSetFilename (image_wand, filename_hint);
8556 status = MagickReadImageBlob (image_wand, contents, size);
8557 }
8558
8559 if (status == MagickFalse)
8560 {
8561 imagemagick_error (image_wand);
8562 DestroyMagickWand (image_wand);
8563 return 0;
8564 }
8565
8566 #ifdef HAVE_MAGICKAUTOORIENTIMAGE
8567 /* If no :rotation is explicitly specified, apply the automatic
8568 rotation from EXIF. */
8569 if (NILP (image_spec_value (img->spec, QCrotation, NULL)))
8570 if (MagickAutoOrientImage (image_wand) == MagickFalse)
8571 {
8572 image_error ("Error applying automatic orientation in image `%s'", img->spec);
8573 DestroyMagickWand (image_wand);
8574 return 0;
8575 }
8576 #endif
8577
8578 if (ino < 0 || ino >= MagickGetNumberImages (image_wand))
8579 {
8580 image_error ("Invalid image number `%s' in image `%s'", image, img->spec);
8581 DestroyMagickWand (image_wand);
8582 return 0;
8583 }
8584
8585 if (MagickGetImageDelay (image_wand) > 0)
8586 img->lisp_data =
8587 Fcons (Qdelay,
8588 Fcons (make_float (MagickGetImageDelay (image_wand) / 100.0),
8589 img->lisp_data));
8590
8591 if (MagickGetNumberImages (image_wand) > 1)
8592 img->lisp_data =
8593 Fcons (Qcount,
8594 Fcons (make_number (MagickGetNumberImages (image_wand)),
8595 img->lisp_data));
8596
8597 /* If we have an animated image, get the new wand based on the
8598 "super-wand". */
8599 if (MagickGetNumberImages (image_wand) > 1)
8600 {
8601 MagickWand *super_wand = image_wand;
8602 image_wand = imagemagick_compute_animated_image (super_wand, ino);
8603 if (! image_wand)
8604 image_wand = super_wand;
8605 else
8606 DestroyMagickWand (super_wand);
8607 }
8608
8609 /* Retrieve the frame's background color, for use later. */
8610 {
8611 XColor bgcolor;
8612 Lisp_Object specified_bg;
8613
8614 specified_bg = image_spec_value (img->spec, QCbackground, NULL);
8615 if (!STRINGP (specified_bg)
8616 || !x_defined_color (f, SSDATA (specified_bg), &bgcolor, 0))
8617 x_query_frame_background_color (f, &bgcolor);
8618
8619 bg_wand = NewPixelWand ();
8620 PixelSetRed (bg_wand, (double) bgcolor.red / 65535);
8621 PixelSetGreen (bg_wand, (double) bgcolor.green / 65535);
8622 PixelSetBlue (bg_wand, (double) bgcolor.blue / 65535);
8623 }
8624
8625 compute_image_size (MagickGetImageWidth (image_wand),
8626 MagickGetImageHeight (image_wand),
8627 img->spec, &desired_width, &desired_height);
8628
8629 if (desired_width != -1 && desired_height != -1)
8630 {
8631 status = MagickScaleImage (image_wand, desired_width, desired_height);
8632 if (status == MagickFalse)
8633 {
8634 image_error ("Imagemagick scale failed");
8635 imagemagick_error (image_wand);
8636 goto imagemagick_error;
8637 }
8638 }
8639
8640 /* crop behaves similar to image slicing in Emacs but is more memory
8641 efficient. */
8642 crop = image_spec_value (img->spec, QCcrop, NULL);
8643
8644 if (CONSP (crop) && TYPE_RANGED_INTEGERP (size_t, XCAR (crop)))
8645 {
8646 /* After some testing, it seems MagickCropImage is the fastest crop
8647 function in ImageMagick. This crop function seems to do less copying
8648 than the alternatives, but it still reads the entire image into memory
8649 before cropping, which is apparently difficult to avoid when using
8650 imagemagick. */
8651 size_t crop_width = XINT (XCAR (crop));
8652 crop = XCDR (crop);
8653 if (CONSP (crop) && TYPE_RANGED_INTEGERP (size_t, XCAR (crop)))
8654 {
8655 size_t crop_height = XINT (XCAR (crop));
8656 crop = XCDR (crop);
8657 if (CONSP (crop) && TYPE_RANGED_INTEGERP (ssize_t, XCAR (crop)))
8658 {
8659 ssize_t crop_x = XINT (XCAR (crop));
8660 crop = XCDR (crop);
8661 if (CONSP (crop) && TYPE_RANGED_INTEGERP (ssize_t, XCAR (crop)))
8662 {
8663 ssize_t crop_y = XINT (XCAR (crop));
8664 MagickCropImage (image_wand, crop_width, crop_height,
8665 crop_x, crop_y);
8666 }
8667 }
8668 }
8669 }
8670
8671 /* Furthermore :rotation. we need background color and angle for
8672 rotation. */
8673 /*
8674 TODO background handling for rotation specified_bg =
8675 image_spec_value (img->spec, QCbackground, NULL); if (!STRINGP
8676 (specified_bg). */
8677 value = image_spec_value (img->spec, QCrotation, NULL);
8678 if (FLOATP (value))
8679 {
8680 rotation = extract_float (value);
8681 status = MagickRotateImage (image_wand, bg_wand, rotation);
8682 if (status == MagickFalse)
8683 {
8684 image_error ("Imagemagick image rotate failed");
8685 imagemagick_error (image_wand);
8686 goto imagemagick_error;
8687 }
8688 }
8689
8690 /* Set the canvas background color to the frame or specified
8691 background, and flatten the image. Note: as of ImageMagick
8692 6.6.0, SVG image transparency is not handled properly
8693 (e.g. etc/images/splash.svg shows a white background always). */
8694 {
8695 MagickWand *new_wand;
8696 MagickSetImageBackgroundColor (image_wand, bg_wand);
8697 #ifdef HAVE_MAGICKMERGEIMAGELAYERS
8698 new_wand = MagickMergeImageLayers (image_wand, MergeLayer);
8699 #else
8700 new_wand = MagickFlattenImages (image_wand);
8701 #endif
8702 DestroyMagickWand (image_wand);
8703 image_wand = new_wand;
8704 }
8705
8706 /* Finally we are done manipulating the image. Figure out the
8707 resulting width/height and transfer ownership to Emacs. */
8708 image_height = MagickGetImageHeight (image_wand);
8709 image_width = MagickGetImageWidth (image_wand);
8710
8711 if (! (image_width <= INT_MAX && image_height <= INT_MAX
8712 && check_image_size (f, image_width, image_height)))
8713 {
8714 image_size_error ();
8715 goto imagemagick_error;
8716 }
8717
8718 width = image_width;
8719 height = image_height;
8720
8721 /* We can now get a valid pixel buffer from the imagemagick file, if all
8722 went ok. */
8723
8724 init_color_table ();
8725
8726 #if defined (HAVE_MAGICKEXPORTIMAGEPIXELS) && ! defined (HAVE_NS)
8727 if (imagemagick_render_type != 0)
8728 {
8729 /* Magicexportimage is normally faster than pixelpushing. This
8730 method is also well tested. Some aspects of this method are
8731 ad-hoc and needs to be more researched. */
8732 int imagedepth = 24; /*MagickGetImageDepth(image_wand);*/
8733 const char *exportdepth = imagedepth <= 8 ? "I" : "BGRP"; /*"RGBP";*/
8734 /* Try to create a x pixmap to hold the imagemagick pixmap. */
8735 if (!image_create_x_image_and_pixmap (f, img, width, height, imagedepth,
8736 &ximg, 0))
8737 {
8738 #ifdef COLOR_TABLE_SUPPORT
8739 free_color_table ();
8740 #endif
8741 image_error ("Imagemagick X bitmap allocation failure");
8742 goto imagemagick_error;
8743 }
8744
8745 /* Oddly, the below code doesn't seem to work:*/
8746 /* switch(ximg->bitmap_unit){ */
8747 /* case 8: */
8748 /* pixelwidth=CharPixel; */
8749 /* break; */
8750 /* case 16: */
8751 /* pixelwidth=ShortPixel; */
8752 /* break; */
8753 /* case 32: */
8754 /* pixelwidth=LongPixel; */
8755 /* break; */
8756 /* } */
8757 /*
8758 Here im just guessing the format of the bitmap.
8759 happens to work fine for:
8760 - bw djvu images
8761 on rgb display.
8762 seems about 3 times as fast as pixel pushing(not carefully measured)
8763 */
8764 pixelwidth = CharPixel; /*??? TODO figure out*/
8765 MagickExportImagePixels (image_wand, 0, 0, width, height,
8766 exportdepth, pixelwidth, ximg->data);
8767 }
8768 else
8769 #endif /* HAVE_MAGICKEXPORTIMAGEPIXELS */
8770 {
8771 size_t image_height;
8772 MagickRealType color_scale = 65535.0 / QuantumRange;
8773
8774 /* Try to create a x pixmap to hold the imagemagick pixmap. */
8775 if (!image_create_x_image_and_pixmap (f, img, width, height, 0,
8776 &ximg, 0))
8777 {
8778 #ifdef COLOR_TABLE_SUPPORT
8779 free_color_table ();
8780 #endif
8781 image_error ("Imagemagick X bitmap allocation failure");
8782 goto imagemagick_error;
8783 }
8784
8785 /* Copy imagemagick image to x with primitive yet robust pixel
8786 pusher loop. This has been tested a lot with many different
8787 images. */
8788
8789 /* Copy pixels from the imagemagick image structure to the x image map. */
8790 iterator = NewPixelIterator (image_wand);
8791 if (! iterator)
8792 {
8793 #ifdef COLOR_TABLE_SUPPORT
8794 free_color_table ();
8795 #endif
8796 x_destroy_x_image (ximg);
8797 image_error ("Imagemagick pixel iterator creation failed");
8798 goto imagemagick_error;
8799 }
8800
8801 image_height = MagickGetImageHeight (image_wand);
8802 for (y = 0; y < image_height; y++)
8803 {
8804 size_t row_width;
8805 pixels = PixelGetNextIteratorRow (iterator, &row_width);
8806 if (! pixels)
8807 break;
8808 int xlim = min (row_width, width);
8809 for (x = 0; x < xlim; x++)
8810 {
8811 PixelGetMagickColor (pixels[x], &pixel);
8812 XPutPixel (ximg, x, y,
8813 lookup_rgb_color (f,
8814 color_scale * pixel.red,
8815 color_scale * pixel.green,
8816 color_scale * pixel.blue));
8817 }
8818 }
8819 DestroyPixelIterator (iterator);
8820 }
8821
8822 #ifdef COLOR_TABLE_SUPPORT
8823 /* Remember colors allocated for this image. */
8824 img->colors = colors_in_color_table (&img->ncolors);
8825 free_color_table ();
8826 #endif /* COLOR_TABLE_SUPPORT */
8827
8828 img->width = width;
8829 img->height = height;
8830
8831 /* Put ximg into the image. */
8832 image_put_x_image (f, img, ximg, 0);
8833
8834 /* Final cleanup. image_wand should be the only resource left. */
8835 DestroyMagickWand (image_wand);
8836 if (bg_wand) DestroyPixelWand (bg_wand);
8837
8838 /* `MagickWandTerminus' terminates the imagemagick environment. */
8839 MagickWandTerminus ();
8840
8841 return 1;
8842
8843 imagemagick_error:
8844 DestroyMagickWand (image_wand);
8845 if (bg_wand) DestroyPixelWand (bg_wand);
8846
8847 MagickWandTerminus ();
8848 /* TODO more cleanup. */
8849 image_error ("Error parsing IMAGEMAGICK image `%s'", img->spec);
8850 return 0;
8851 }
8852
8853
8854 /* Load IMAGEMAGICK image IMG for use on frame F. Value is true if
8855 successful. this function will go into the imagemagick_type structure, and
8856 the prototype thus needs to be compatible with that structure. */
8857
8858 static bool
8859 imagemagick_load (struct frame *f, struct image *img)
8860 {
8861 bool success_p = 0;
8862 Lisp_Object file_name;
8863
8864 /* If IMG->spec specifies a file name, create a non-file spec from it. */
8865 file_name = image_spec_value (img->spec, QCfile, NULL);
8866 if (STRINGP (file_name))
8867 {
8868 Lisp_Object file = x_find_image_file (file_name);
8869 if (!STRINGP (file))
8870 {
8871 image_error ("Cannot find image file `%s'", file_name);
8872 return 0;
8873 }
8874 file = ENCODE_FILE (file);
8875 #ifdef WINDOWSNT
8876 file = ansi_encode_filename (file);
8877 #endif
8878 success_p = imagemagick_load_image (f, img, 0, 0, SSDATA (file));
8879 }
8880 /* Else its not a file, its a lisp object. Load the image from a
8881 lisp object rather than a file. */
8882 else
8883 {
8884 Lisp_Object data;
8885
8886 data = image_spec_value (img->spec, QCdata, NULL);
8887 if (!STRINGP (data))
8888 {
8889 image_error ("Invalid image data `%s'", data);
8890 return 0;
8891 }
8892 success_p = imagemagick_load_image (f, img, SDATA (data),
8893 SBYTES (data), NULL);
8894 }
8895
8896 return success_p;
8897 }
8898
8899 DEFUN ("imagemagick-types", Fimagemagick_types, Simagemagick_types, 0, 0, 0,
8900 doc: /* Return a list of image types supported by ImageMagick.
8901 Each entry in this list is a symbol named after an ImageMagick format
8902 tag. See the ImageMagick manual for a list of ImageMagick formats and
8903 their descriptions (http://www.imagemagick.org/script/formats.php).
8904 You can also try the shell command: `identify -list format'.
8905
8906 Note that ImageMagick recognizes many file-types that Emacs does not
8907 recognize as images, such as C. See `imagemagick-types-enable'
8908 and `imagemagick-types-inhibit'. */)
8909 (void)
8910 {
8911 Lisp_Object typelist = Qnil;
8912 size_t numf = 0;
8913 ExceptionInfo ex;
8914 char **imtypes;
8915 size_t i;
8916
8917 GetExceptionInfo(&ex);
8918 imtypes = GetMagickList ("*", &numf, &ex);
8919 DestroyExceptionInfo(&ex);
8920
8921 for (i = 0; i < numf; i++)
8922 {
8923 Lisp_Object imagemagicktype = intern (imtypes[i]);
8924 typelist = Fcons (imagemagicktype, typelist);
8925 imtypes[i] = MagickRelinquishMemory (imtypes[i]);
8926 }
8927
8928 MagickRelinquishMemory (imtypes);
8929 return Fnreverse (typelist);
8930 }
8931
8932 #endif /* defined (HAVE_IMAGEMAGICK) */
8933
8934
8935 \f
8936 /***********************************************************************
8937 SVG
8938 ***********************************************************************/
8939
8940 #ifdef HAVE_RSVG
8941
8942 /* Function prototypes. */
8943
8944 static bool svg_image_p (Lisp_Object object);
8945 static bool svg_load (struct frame *f, struct image *img);
8946
8947 static bool svg_load_image (struct frame *, struct image *,
8948 unsigned char *, ptrdiff_t, char *);
8949
8950 /* Indices of image specification fields in svg_format, below. */
8951
8952 enum svg_keyword_index
8953 {
8954 SVG_TYPE,
8955 SVG_DATA,
8956 SVG_FILE,
8957 SVG_ASCENT,
8958 SVG_MARGIN,
8959 SVG_RELIEF,
8960 SVG_ALGORITHM,
8961 SVG_HEURISTIC_MASK,
8962 SVG_MASK,
8963 SVG_BACKGROUND,
8964 SVG_LAST
8965 };
8966
8967 /* Vector of image_keyword structures describing the format
8968 of valid user-defined image specifications. */
8969
8970 static const struct image_keyword svg_format[SVG_LAST] =
8971 {
8972 {":type", IMAGE_SYMBOL_VALUE, 1},
8973 {":data", IMAGE_STRING_VALUE, 0},
8974 {":file", IMAGE_STRING_VALUE, 0},
8975 {":ascent", IMAGE_ASCENT_VALUE, 0},
8976 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
8977 {":relief", IMAGE_INTEGER_VALUE, 0},
8978 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8979 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8980 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8981 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
8982 };
8983
8984 # if defined HAVE_NTGUI && defined WINDOWSNT
8985 static bool init_svg_functions (void);
8986 # else
8987 #define init_svg_functions NULL
8988 # endif
8989
8990 /* Structure describing the image type `svg'. Its the same type of
8991 structure defined for all image formats, handled by emacs image
8992 functions. See struct image_type in dispextern.h. */
8993
8994 static struct image_type svg_type =
8995 {
8996 SYMBOL_INDEX (Qsvg),
8997 svg_image_p,
8998 svg_load,
8999 x_clear_image,
9000 init_svg_functions,
9001 NULL
9002 };
9003
9004
9005 /* Return true if OBJECT is a valid SVG image specification. Do
9006 this by calling parse_image_spec and supplying the keywords that
9007 identify the SVG format. */
9008
9009 static bool
9010 svg_image_p (Lisp_Object object)
9011 {
9012 struct image_keyword fmt[SVG_LAST];
9013 memcpy (fmt, svg_format, sizeof fmt);
9014
9015 if (!parse_image_spec (object, fmt, SVG_LAST, Qsvg))
9016 return 0;
9017
9018 /* Must specify either the :data or :file keyword. */
9019 return fmt[SVG_FILE].count + fmt[SVG_DATA].count == 1;
9020 }
9021
9022 # include <librsvg/rsvg.h>
9023
9024 # ifdef WINDOWSNT
9025
9026 /* SVG library functions. */
9027 DEF_DLL_FN (RsvgHandle *, rsvg_handle_new, (void));
9028 DEF_DLL_FN (void, rsvg_handle_get_dimensions,
9029 (RsvgHandle *, RsvgDimensionData *));
9030 DEF_DLL_FN (gboolean, rsvg_handle_write,
9031 (RsvgHandle *, const guchar *, gsize, GError **));
9032 DEF_DLL_FN (gboolean, rsvg_handle_close, (RsvgHandle *, GError **));
9033 DEF_DLL_FN (GdkPixbuf *, rsvg_handle_get_pixbuf, (RsvgHandle *));
9034 DEF_DLL_FN (void, rsvg_handle_set_base_uri, (RsvgHandle *, const char *));
9035
9036 DEF_DLL_FN (int, gdk_pixbuf_get_width, (const GdkPixbuf *));
9037 DEF_DLL_FN (int, gdk_pixbuf_get_height, (const GdkPixbuf *));
9038 DEF_DLL_FN (guchar *, gdk_pixbuf_get_pixels, (const GdkPixbuf *));
9039 DEF_DLL_FN (int, gdk_pixbuf_get_rowstride, (const GdkPixbuf *));
9040 DEF_DLL_FN (GdkColorspace, gdk_pixbuf_get_colorspace, (const GdkPixbuf *));
9041 DEF_DLL_FN (int, gdk_pixbuf_get_n_channels, (const GdkPixbuf *));
9042 DEF_DLL_FN (gboolean, gdk_pixbuf_get_has_alpha, (const GdkPixbuf *));
9043 DEF_DLL_FN (int, gdk_pixbuf_get_bits_per_sample, (const GdkPixbuf *));
9044
9045 # if ! GLIB_CHECK_VERSION (2, 36, 0)
9046 DEF_DLL_FN (void, g_type_init, (void));
9047 # endif
9048 DEF_DLL_FN (void, g_object_unref, (gpointer));
9049 DEF_DLL_FN (void, g_clear_error, (GError **));
9050
9051 static bool
9052 init_svg_functions (void)
9053 {
9054 HMODULE library, gdklib = NULL, glib = NULL, gobject = NULL;
9055
9056 if (!(glib = w32_delayed_load (Qglib))
9057 || !(gobject = w32_delayed_load (Qgobject))
9058 || !(gdklib = w32_delayed_load (Qgdk_pixbuf))
9059 || !(library = w32_delayed_load (Qsvg)))
9060 {
9061 if (gdklib) FreeLibrary (gdklib);
9062 if (gobject) FreeLibrary (gobject);
9063 if (glib) FreeLibrary (glib);
9064 return 0;
9065 }
9066
9067 LOAD_DLL_FN (library, rsvg_handle_new);
9068 LOAD_DLL_FN (library, rsvg_handle_get_dimensions);
9069 LOAD_DLL_FN (library, rsvg_handle_write);
9070 LOAD_DLL_FN (library, rsvg_handle_close);
9071 LOAD_DLL_FN (library, rsvg_handle_get_pixbuf);
9072 LOAD_DLL_FN (library, rsvg_handle_set_base_uri);
9073
9074 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_width);
9075 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_height);
9076 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_pixels);
9077 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_rowstride);
9078 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_colorspace);
9079 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_n_channels);
9080 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_has_alpha);
9081 LOAD_DLL_FN (gdklib, gdk_pixbuf_get_bits_per_sample);
9082
9083 # if ! GLIB_CHECK_VERSION (2, 36, 0)
9084 LOAD_DLL_FN (gobject, g_type_init);
9085 # endif
9086 LOAD_DLL_FN (gobject, g_object_unref);
9087 LOAD_DLL_FN (glib, g_clear_error);
9088
9089 return 1;
9090 }
9091
9092 /* The following aliases for library functions allow dynamic loading
9093 to be used on some platforms. */
9094
9095 # undef gdk_pixbuf_get_bits_per_sample
9096 # undef gdk_pixbuf_get_colorspace
9097 # undef gdk_pixbuf_get_has_alpha
9098 # undef gdk_pixbuf_get_height
9099 # undef gdk_pixbuf_get_n_channels
9100 # undef gdk_pixbuf_get_pixels
9101 # undef gdk_pixbuf_get_rowstride
9102 # undef gdk_pixbuf_get_width
9103 # undef g_clear_error
9104 # undef g_object_unref
9105 # undef g_type_init
9106 # undef rsvg_handle_close
9107 # undef rsvg_handle_get_dimensions
9108 # undef rsvg_handle_get_pixbuf
9109 # undef rsvg_handle_new
9110 # undef rsvg_handle_set_base_uri
9111 # undef rsvg_handle_write
9112
9113 # define gdk_pixbuf_get_bits_per_sample fn_gdk_pixbuf_get_bits_per_sample
9114 # define gdk_pixbuf_get_colorspace fn_gdk_pixbuf_get_colorspace
9115 # define gdk_pixbuf_get_has_alpha fn_gdk_pixbuf_get_has_alpha
9116 # define gdk_pixbuf_get_height fn_gdk_pixbuf_get_height
9117 # define gdk_pixbuf_get_n_channels fn_gdk_pixbuf_get_n_channels
9118 # define gdk_pixbuf_get_pixels fn_gdk_pixbuf_get_pixels
9119 # define gdk_pixbuf_get_rowstride fn_gdk_pixbuf_get_rowstride
9120 # define gdk_pixbuf_get_width fn_gdk_pixbuf_get_width
9121 # define g_clear_error fn_g_clear_error
9122 # define g_object_unref fn_g_object_unref
9123 # define g_type_init fn_g_type_init
9124 # define rsvg_handle_close fn_rsvg_handle_close
9125 # define rsvg_handle_get_dimensions fn_rsvg_handle_get_dimensions
9126 # define rsvg_handle_get_pixbuf fn_rsvg_handle_get_pixbuf
9127 # define rsvg_handle_new fn_rsvg_handle_new
9128 # define rsvg_handle_set_base_uri fn_rsvg_handle_set_base_uri
9129 # define rsvg_handle_write fn_rsvg_handle_write
9130
9131 # endif /* !WINDOWSNT */
9132
9133 /* Load SVG image IMG for use on frame F. Value is true if
9134 successful. */
9135
9136 static bool
9137 svg_load (struct frame *f, struct image *img)
9138 {
9139 bool success_p = 0;
9140 Lisp_Object file_name;
9141
9142 /* If IMG->spec specifies a file name, create a non-file spec from it. */
9143 file_name = image_spec_value (img->spec, QCfile, NULL);
9144 if (STRINGP (file_name))
9145 {
9146 int fd;
9147 Lisp_Object file = x_find_image_fd (file_name, &fd);
9148 if (!STRINGP (file))
9149 {
9150 image_error ("Cannot find image file `%s'", file_name);
9151 return 0;
9152 }
9153
9154 /* Read the entire file into memory. */
9155 ptrdiff_t size;
9156 unsigned char *contents = slurp_file (fd, &size);
9157 if (contents == NULL)
9158 {
9159 image_error ("Error loading SVG image `%s'", file);
9160 return 0;
9161 }
9162 /* If the file was slurped into memory properly, parse it. */
9163 success_p = svg_load_image (f, img, contents, size,
9164 SSDATA (ENCODE_FILE (file)));
9165 xfree (contents);
9166 }
9167 /* Else its not a file, its a lisp object. Load the image from a
9168 lisp object rather than a file. */
9169 else
9170 {
9171 Lisp_Object data, original_filename;
9172
9173 data = image_spec_value (img->spec, QCdata, NULL);
9174 if (!STRINGP (data))
9175 {
9176 image_error ("Invalid image data `%s'", data);
9177 return 0;
9178 }
9179 original_filename = BVAR (current_buffer, filename);
9180 success_p = svg_load_image (f, img, SDATA (data), SBYTES (data),
9181 (NILP (original_filename) ? NULL
9182 : SSDATA (original_filename)));
9183 }
9184
9185 return success_p;
9186 }
9187
9188 /* svg_load_image is a helper function for svg_load, which does the
9189 actual loading given contents and size, apart from frame and image
9190 structures, passed from svg_load.
9191
9192 Uses librsvg to do most of the image processing.
9193
9194 Returns true when successful. */
9195 static bool
9196 svg_load_image (struct frame *f, /* Pointer to emacs frame structure. */
9197 struct image *img, /* Pointer to emacs image structure. */
9198 unsigned char *contents, /* String containing the SVG XML data to be parsed. */
9199 ptrdiff_t size, /* Size of data in bytes. */
9200 char *filename) /* Name of SVG file being loaded. */
9201 {
9202 RsvgHandle *rsvg_handle;
9203 RsvgDimensionData dimension_data;
9204 GError *err = NULL;
9205 GdkPixbuf *pixbuf;
9206 int width;
9207 int height;
9208 const guint8 *pixels;
9209 int rowstride;
9210
9211 #if ! GLIB_CHECK_VERSION (2, 36, 0)
9212 /* g_type_init is a glib function that must be called prior to
9213 using gnome type library functions (obsolete since 2.36.0). */
9214 g_type_init ();
9215 #endif
9216
9217 /* Make a handle to a new rsvg object. */
9218 rsvg_handle = rsvg_handle_new ();
9219
9220 /* Set base_uri for properly handling referenced images (via 'href').
9221 See rsvg bug 596114 - "image refs are relative to curdir, not .svg file"
9222 (https://bugzilla.gnome.org/show_bug.cgi?id=596114). */
9223 if (filename)
9224 rsvg_handle_set_base_uri(rsvg_handle, filename);
9225
9226 /* Parse the contents argument and fill in the rsvg_handle. */
9227 rsvg_handle_write (rsvg_handle, contents, size, &err);
9228 if (err) goto rsvg_error;
9229
9230 /* The parsing is complete, rsvg_handle is ready to used, close it
9231 for further writes. */
9232 rsvg_handle_close (rsvg_handle, &err);
9233 if (err) goto rsvg_error;
9234
9235 rsvg_handle_get_dimensions (rsvg_handle, &dimension_data);
9236 if (! check_image_size (f, dimension_data.width, dimension_data.height))
9237 {
9238 image_size_error ();
9239 goto rsvg_error;
9240 }
9241
9242 /* We can now get a valid pixel buffer from the svg file, if all
9243 went ok. */
9244 pixbuf = rsvg_handle_get_pixbuf (rsvg_handle);
9245 if (!pixbuf) goto rsvg_error;
9246 g_object_unref (rsvg_handle);
9247
9248 /* Extract some meta data from the svg handle. */
9249 width = gdk_pixbuf_get_width (pixbuf);
9250 height = gdk_pixbuf_get_height (pixbuf);
9251 pixels = gdk_pixbuf_get_pixels (pixbuf);
9252 rowstride = gdk_pixbuf_get_rowstride (pixbuf);
9253
9254 /* Validate the svg meta data. */
9255 eassert (gdk_pixbuf_get_colorspace (pixbuf) == GDK_COLORSPACE_RGB);
9256 eassert (gdk_pixbuf_get_n_channels (pixbuf) == 4);
9257 eassert (gdk_pixbuf_get_has_alpha (pixbuf));
9258 eassert (gdk_pixbuf_get_bits_per_sample (pixbuf) == 8);
9259
9260 {
9261 #ifdef USE_CAIRO
9262 unsigned char *data = (unsigned char *) xmalloc (width*height*4);
9263 uint32_t bgcolor = get_spec_bg_or_alpha_as_argb (img, f);
9264
9265 for (int y = 0; y < height; ++y)
9266 {
9267 const guchar *iconptr = pixels + y * rowstride;
9268 uint32_t *dataptr = (uint32_t *) (data + y * rowstride);
9269
9270 for (int x = 0; x < width; ++x)
9271 {
9272 if (iconptr[3] == 0)
9273 *dataptr = bgcolor;
9274 else
9275 *dataptr = (iconptr[0] << 16)
9276 | (iconptr[1] << 8)
9277 | iconptr[2]
9278 | (iconptr[3] << 24);
9279
9280 iconptr += 4;
9281 ++dataptr;
9282 }
9283 }
9284
9285 create_cairo_image_surface (img, data, width, height);
9286 g_object_unref (pixbuf);
9287 #else
9288 /* Try to create a x pixmap to hold the svg pixmap. */
9289 XImagePtr ximg;
9290 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
9291 {
9292 g_object_unref (pixbuf);
9293 return 0;
9294 }
9295
9296 init_color_table ();
9297
9298 /* Handle alpha channel by combining the image with a background
9299 color. */
9300 XColor background;
9301 Lisp_Object specified_bg = image_spec_value (img->spec, QCbackground, NULL);
9302 if (!STRINGP (specified_bg)
9303 || !x_defined_color (f, SSDATA (specified_bg), &background, 0))
9304 x_query_frame_background_color (f, &background);
9305
9306 /* SVG pixmaps specify transparency in the last byte, so right
9307 shift 8 bits to get rid of it, since emacs doesn't support
9308 transparency. */
9309 background.red >>= 8;
9310 background.green >>= 8;
9311 background.blue >>= 8;
9312
9313 /* This loop handles opacity values, since Emacs assumes
9314 non-transparent images. Each pixel must be "flattened" by
9315 calculating the resulting color, given the transparency of the
9316 pixel, and the image background color. */
9317 for (int y = 0; y < height; ++y)
9318 {
9319 for (int x = 0; x < width; ++x)
9320 {
9321 int red = *pixels++;
9322 int green = *pixels++;
9323 int blue = *pixels++;
9324 int opacity = *pixels++;
9325
9326 red = ((red * opacity)
9327 + (background.red * ((1 << 8) - opacity)));
9328 green = ((green * opacity)
9329 + (background.green * ((1 << 8) - opacity)));
9330 blue = ((blue * opacity)
9331 + (background.blue * ((1 << 8) - opacity)));
9332
9333 XPutPixel (ximg, x, y, lookup_rgb_color (f, red, green, blue));
9334 }
9335
9336 pixels += rowstride - 4 * width;
9337 }
9338
9339 #ifdef COLOR_TABLE_SUPPORT
9340 /* Remember colors allocated for this image. */
9341 img->colors = colors_in_color_table (&img->ncolors);
9342 free_color_table ();
9343 #endif /* COLOR_TABLE_SUPPORT */
9344
9345 g_object_unref (pixbuf);
9346
9347 img->width = width;
9348 img->height = height;
9349
9350 /* Maybe fill in the background field while we have ximg handy.
9351 Casting avoids a GCC warning. */
9352 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
9353
9354 /* Put ximg into the image. */
9355 image_put_x_image (f, img, ximg, 0);
9356 #endif /* ! USE_CAIRO */
9357 }
9358
9359 return 1;
9360
9361 rsvg_error:
9362 g_object_unref (rsvg_handle);
9363 /* FIXME: Use error->message so the user knows what is the actual
9364 problem with the image. */
9365 image_error ("Error parsing SVG image `%s'", img->spec);
9366 g_clear_error (&err);
9367 return 0;
9368 }
9369
9370 #endif /* defined (HAVE_RSVG) */
9371
9372
9373
9374 \f
9375 /***********************************************************************
9376 Ghostscript
9377 ***********************************************************************/
9378
9379 #ifdef HAVE_X_WINDOWS
9380 #define HAVE_GHOSTSCRIPT 1
9381 #endif /* HAVE_X_WINDOWS */
9382
9383 #ifdef HAVE_GHOSTSCRIPT
9384
9385 static bool gs_image_p (Lisp_Object object);
9386 static bool gs_load (struct frame *f, struct image *img);
9387 static void gs_clear_image (struct frame *f, struct image *img);
9388
9389 /* Indices of image specification fields in gs_format, below. */
9390
9391 enum gs_keyword_index
9392 {
9393 GS_TYPE,
9394 GS_PT_WIDTH,
9395 GS_PT_HEIGHT,
9396 GS_FILE,
9397 GS_LOADER,
9398 GS_BOUNDING_BOX,
9399 GS_ASCENT,
9400 GS_MARGIN,
9401 GS_RELIEF,
9402 GS_ALGORITHM,
9403 GS_HEURISTIC_MASK,
9404 GS_MASK,
9405 GS_BACKGROUND,
9406 GS_LAST
9407 };
9408
9409 /* Vector of image_keyword structures describing the format
9410 of valid user-defined image specifications. */
9411
9412 static const struct image_keyword gs_format[GS_LAST] =
9413 {
9414 {":type", IMAGE_SYMBOL_VALUE, 1},
9415 {":pt-width", IMAGE_POSITIVE_INTEGER_VALUE, 1},
9416 {":pt-height", IMAGE_POSITIVE_INTEGER_VALUE, 1},
9417 {":file", IMAGE_STRING_VALUE, 1},
9418 {":loader", IMAGE_FUNCTION_VALUE, 0},
9419 {":bounding-box", IMAGE_DONT_CHECK_VALUE_TYPE, 1},
9420 {":ascent", IMAGE_ASCENT_VALUE, 0},
9421 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
9422 {":relief", IMAGE_INTEGER_VALUE, 0},
9423 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
9424 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
9425 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
9426 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
9427 };
9428
9429 /* Structure describing the image type `ghostscript'. */
9430
9431 static struct image_type gs_type =
9432 {
9433 SYMBOL_INDEX (Qpostscript),
9434 gs_image_p,
9435 gs_load,
9436 gs_clear_image,
9437 NULL,
9438 NULL
9439 };
9440
9441
9442 /* Free X resources of Ghostscript image IMG which is used on frame F. */
9443
9444 static void
9445 gs_clear_image (struct frame *f, struct image *img)
9446 {
9447 x_clear_image (f, img);
9448 }
9449
9450
9451 /* Return true if OBJECT is a valid Ghostscript image
9452 specification. */
9453
9454 static bool
9455 gs_image_p (Lisp_Object object)
9456 {
9457 struct image_keyword fmt[GS_LAST];
9458 Lisp_Object tem;
9459 int i;
9460
9461 memcpy (fmt, gs_format, sizeof fmt);
9462
9463 if (!parse_image_spec (object, fmt, GS_LAST, Qpostscript))
9464 return 0;
9465
9466 /* Bounding box must be a list or vector containing 4 integers. */
9467 tem = fmt[GS_BOUNDING_BOX].value;
9468 if (CONSP (tem))
9469 {
9470 for (i = 0; i < 4; ++i, tem = XCDR (tem))
9471 if (!CONSP (tem) || !INTEGERP (XCAR (tem)))
9472 return 0;
9473 if (!NILP (tem))
9474 return 0;
9475 }
9476 else if (VECTORP (tem))
9477 {
9478 if (ASIZE (tem) != 4)
9479 return 0;
9480 for (i = 0; i < 4; ++i)
9481 if (!INTEGERP (AREF (tem, i)))
9482 return 0;
9483 }
9484 else
9485 return 0;
9486
9487 return 1;
9488 }
9489
9490
9491 /* Load Ghostscript image IMG for use on frame F. Value is true
9492 if successful. */
9493
9494 static bool
9495 gs_load (struct frame *f, struct image *img)
9496 {
9497 uprintmax_t printnum1, printnum2;
9498 char buffer[sizeof " " + INT_STRLEN_BOUND (printmax_t)];
9499 Lisp_Object window_and_pixmap_id = Qnil, loader, pt_height, pt_width;
9500 Lisp_Object frame;
9501 double in_width, in_height;
9502 Lisp_Object pixel_colors = Qnil;
9503
9504 /* Compute pixel size of pixmap needed from the given size in the
9505 image specification. Sizes in the specification are in pt. 1 pt
9506 = 1/72 in, xdpi and ydpi are stored in the frame's X display
9507 info. */
9508 pt_width = image_spec_value (img->spec, QCpt_width, NULL);
9509 in_width = INTEGERP (pt_width) ? XFASTINT (pt_width) / 72.0 : 0;
9510 in_width *= FRAME_RES_X (f);
9511 pt_height = image_spec_value (img->spec, QCpt_height, NULL);
9512 in_height = INTEGERP (pt_height) ? XFASTINT (pt_height) / 72.0 : 0;
9513 in_height *= FRAME_RES_Y (f);
9514
9515 if (! (in_width <= INT_MAX && in_height <= INT_MAX
9516 && check_image_size (f, in_width, in_height)))
9517 {
9518 image_size_error ();
9519 return 0;
9520 }
9521 img->width = in_width;
9522 img->height = in_height;
9523
9524 /* Create the pixmap. */
9525 eassert (img->pixmap == NO_PIXMAP);
9526
9527 if (x_check_image_size (0, img->width, img->height))
9528 {
9529 /* Only W32 version did BLOCK_INPUT here. ++kfs */
9530 block_input ();
9531 img->pixmap = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
9532 img->width, img->height,
9533 DefaultDepthOfScreen (FRAME_X_SCREEN (f)));
9534 unblock_input ();
9535 }
9536
9537 if (!img->pixmap)
9538 {
9539 image_error ("Unable to create pixmap for `%s'" , img->spec);
9540 return 0;
9541 }
9542
9543 /* Call the loader to fill the pixmap. It returns a process object
9544 if successful. We do not record_unwind_protect here because
9545 other places in redisplay like calling window scroll functions
9546 don't either. Let the Lisp loader use `unwind-protect' instead. */
9547 printnum1 = FRAME_X_WINDOW (f);
9548 printnum2 = img->pixmap;
9549 window_and_pixmap_id
9550 = make_formatted_string (buffer, "%"pMu" %"pMu, printnum1, printnum2);
9551
9552 printnum1 = FRAME_FOREGROUND_PIXEL (f);
9553 printnum2 = FRAME_BACKGROUND_PIXEL (f);
9554 pixel_colors
9555 = make_formatted_string (buffer, "%"pMu" %"pMu, printnum1, printnum2);
9556
9557 XSETFRAME (frame, f);
9558 loader = image_spec_value (img->spec, QCloader, NULL);
9559 if (NILP (loader))
9560 loader = intern ("gs-load-image");
9561
9562 img->lisp_data = call6 (loader, frame, img->spec,
9563 make_number (img->width),
9564 make_number (img->height),
9565 window_and_pixmap_id,
9566 pixel_colors);
9567 return PROCESSP (img->lisp_data);
9568 }
9569
9570
9571 /* Kill the Ghostscript process that was started to fill PIXMAP on
9572 frame F. Called from XTread_socket when receiving an event
9573 telling Emacs that Ghostscript has finished drawing. */
9574
9575 void
9576 x_kill_gs_process (Pixmap pixmap, struct frame *f)
9577 {
9578 struct image_cache *c = FRAME_IMAGE_CACHE (f);
9579 ptrdiff_t i;
9580 struct image *img;
9581
9582 /* Find the image containing PIXMAP. */
9583 for (i = 0; i < c->used; ++i)
9584 if (c->images[i]->pixmap == pixmap)
9585 break;
9586
9587 /* Should someone in between have cleared the image cache, for
9588 instance, give up. */
9589 if (i == c->used)
9590 return;
9591
9592 /* Kill the GS process. We should have found PIXMAP in the image
9593 cache and its image should contain a process object. */
9594 img = c->images[i];
9595 eassert (PROCESSP (img->lisp_data));
9596 Fkill_process (img->lisp_data, Qnil);
9597 img->lisp_data = Qnil;
9598
9599 #if defined (HAVE_X_WINDOWS)
9600
9601 /* On displays with a mutable colormap, figure out the colors
9602 allocated for the image by looking at the pixels of an XImage for
9603 img->pixmap. */
9604 if (x_mutable_colormap (FRAME_X_VISUAL (f)))
9605 {
9606 XImagePtr ximg;
9607
9608 block_input ();
9609
9610 /* Try to get an XImage for img->pixmep. */
9611 ximg = XGetImage (FRAME_X_DISPLAY (f), img->pixmap,
9612 0, 0, img->width, img->height, ~0, ZPixmap);
9613 if (ximg)
9614 {
9615 /* Initialize the color table. */
9616 init_color_table ();
9617
9618 /* For each pixel of the image, look its color up in the
9619 color table. After having done so, the color table will
9620 contain an entry for each color used by the image. */
9621 #ifdef COLOR_TABLE_SUPPORT
9622 for (int y = 0; y < img->height; ++y)
9623 for (int x = 0; x < img->width; ++x)
9624 {
9625 unsigned long pixel = XGetPixel (ximg, x, y);
9626
9627 lookup_pixel_color (f, pixel);
9628 }
9629
9630 /* Record colors in the image. Free color table and XImage. */
9631 img->colors = colors_in_color_table (&img->ncolors);
9632 free_color_table ();
9633 #endif
9634 XDestroyImage (ximg);
9635
9636 #if 0 /* This doesn't seem to be the case. If we free the colors
9637 here, we get a BadAccess later in x_clear_image when
9638 freeing the colors. */
9639 /* We have allocated colors once, but Ghostscript has also
9640 allocated colors on behalf of us. So, to get the
9641 reference counts right, free them once. */
9642 if (img->ncolors)
9643 x_free_colors (f, img->colors, img->ncolors);
9644 #endif
9645 }
9646 else
9647 image_error ("Cannot get X image of `%s'; colors will not be freed",
9648 img->spec);
9649
9650 unblock_input ();
9651 }
9652 #endif /* HAVE_X_WINDOWS */
9653
9654 /* Now that we have the pixmap, compute mask and transform the
9655 image if requested. */
9656 block_input ();
9657 postprocess_image (f, img);
9658 unblock_input ();
9659 }
9660
9661 #endif /* HAVE_GHOSTSCRIPT */
9662
9663 \f
9664 /***********************************************************************
9665 Tests
9666 ***********************************************************************/
9667
9668 #ifdef GLYPH_DEBUG
9669
9670 DEFUN ("imagep", Fimagep, Simagep, 1, 1, 0,
9671 doc: /* Value is non-nil if SPEC is a valid image specification. */)
9672 (Lisp_Object spec)
9673 {
9674 return valid_image_p (spec) ? Qt : Qnil;
9675 }
9676
9677
9678 DEFUN ("lookup-image", Flookup_image, Slookup_image, 1, 1, 0,
9679 doc: /* */)
9680 (Lisp_Object spec)
9681 {
9682 ptrdiff_t id = -1;
9683
9684 if (valid_image_p (spec))
9685 id = lookup_image (SELECTED_FRAME (), spec);
9686
9687 debug_print (spec);
9688 return make_number (id);
9689 }
9690
9691 #endif /* GLYPH_DEBUG */
9692
9693
9694 /***********************************************************************
9695 Initialization
9696 ***********************************************************************/
9697
9698 DEFUN ("init-image-library", Finit_image_library, Sinit_image_library, 1, 1, 0,
9699 doc: /* Initialize image library implementing image type TYPE.
9700 Return non-nil if TYPE is a supported image type.
9701
9702 If image libraries are loaded dynamically (currently only the case on
9703 MS-Windows), load the library for TYPE if it is not yet loaded, using
9704 the library file(s) specified by `dynamic-library-alist'. */)
9705 (Lisp_Object type)
9706 {
9707 return lookup_image_type (type) ? Qt : Qnil;
9708 }
9709
9710 /* Look up image type TYPE, and return a pointer to its image_type
9711 structure. Return 0 if TYPE is not a known image type. */
9712
9713 static struct image_type *
9714 lookup_image_type (Lisp_Object type)
9715 {
9716 /* Types pbm and xbm are built-in and always available. */
9717 if (EQ (type, Qpbm))
9718 return define_image_type (&pbm_type);
9719
9720 if (EQ (type, Qxbm))
9721 return define_image_type (&xbm_type);
9722
9723 #if defined (HAVE_XPM) || defined (HAVE_NS)
9724 if (EQ (type, Qxpm))
9725 return define_image_type (&xpm_type);
9726 #endif
9727
9728 #if defined (HAVE_JPEG) || defined (HAVE_NS)
9729 if (EQ (type, Qjpeg))
9730 return define_image_type (&jpeg_type);
9731 #endif
9732
9733 #if defined (HAVE_TIFF) || defined (HAVE_NS)
9734 if (EQ (type, Qtiff))
9735 return define_image_type (&tiff_type);
9736 #endif
9737
9738 #if defined (HAVE_GIF) || defined (HAVE_NS)
9739 if (EQ (type, Qgif))
9740 return define_image_type (&gif_type);
9741 #endif
9742
9743 #if defined (HAVE_PNG) || defined (HAVE_NS) || defined (USE_CAIRO)
9744 if (EQ (type, Qpng))
9745 return define_image_type (&png_type);
9746 #endif
9747
9748 #if defined (HAVE_RSVG)
9749 if (EQ (type, Qsvg))
9750 return define_image_type (&svg_type);
9751 #endif
9752
9753 #if defined (HAVE_IMAGEMAGICK)
9754 if (EQ (type, Qimagemagick))
9755 return define_image_type (&imagemagick_type);
9756 #endif
9757
9758 #ifdef HAVE_GHOSTSCRIPT
9759 if (EQ (type, Qpostscript))
9760 return define_image_type (&gs_type);
9761 #endif
9762
9763 return NULL;
9764 }
9765
9766 /* Reset image_types before dumping.
9767 Called from Fdump_emacs. */
9768
9769 void
9770 reset_image_types (void)
9771 {
9772 while (image_types)
9773 {
9774 struct image_type *next = image_types->next;
9775 xfree (image_types);
9776 image_types = next;
9777 }
9778 }
9779
9780 void
9781 syms_of_image (void)
9782 {
9783 /* Initialize this only once; it will be reset before dumping. */
9784 image_types = NULL;
9785
9786 /* Must be defined now because we're going to update it below, while
9787 defining the supported image types. */
9788 DEFVAR_LISP ("image-types", Vimage_types,
9789 doc: /* List of potentially supported image types.
9790 Each element of the list is a symbol for an image type, like `jpeg' or `png'.
9791 To check whether it is really supported, use `image-type-available-p'. */);
9792 Vimage_types = Qnil;
9793
9794 DEFVAR_LISP ("max-image-size", Vmax_image_size,
9795 doc: /* Maximum size of images.
9796 Emacs will not load an image into memory if its pixel width or
9797 pixel height exceeds this limit.
9798
9799 If the value is an integer, it directly specifies the maximum
9800 image height and width, measured in pixels. If it is a floating
9801 point number, it specifies the maximum image height and width
9802 as a ratio to the frame height and width. If the value is
9803 non-numeric, there is no explicit limit on the size of images. */);
9804 Vmax_image_size = make_float (MAX_IMAGE_SIZE);
9805
9806 /* Other symbols. */
9807 DEFSYM (Qcount, "count");
9808 DEFSYM (Qextension_data, "extension-data");
9809 DEFSYM (Qdelay, "delay");
9810
9811 /* Keywords. */
9812 DEFSYM (QCascent, ":ascent");
9813 DEFSYM (QCmargin, ":margin");
9814 DEFSYM (QCrelief, ":relief");
9815 DEFSYM (QCconversion, ":conversion");
9816 DEFSYM (QCcolor_symbols, ":color-symbols");
9817 DEFSYM (QCheuristic_mask, ":heuristic-mask");
9818 DEFSYM (QCindex, ":index");
9819 DEFSYM (QCcrop, ":crop");
9820 DEFSYM (QCrotation, ":rotation");
9821 DEFSYM (QCmatrix, ":matrix");
9822 DEFSYM (QCscale, ":scale");
9823 DEFSYM (QCcolor_adjustment, ":color-adjustment");
9824 DEFSYM (QCmask, ":mask");
9825
9826 /* Other symbols. */
9827 DEFSYM (Qlaplace, "laplace");
9828 DEFSYM (Qemboss, "emboss");
9829 DEFSYM (Qedge_detection, "edge-detection");
9830 DEFSYM (Qheuristic, "heuristic");
9831
9832 DEFSYM (Qpostscript, "postscript");
9833 DEFSYM (QCmax_width, ":max-width");
9834 DEFSYM (QCmax_height, ":max-height");
9835 #ifdef HAVE_GHOSTSCRIPT
9836 ADD_IMAGE_TYPE (Qpostscript);
9837 DEFSYM (QCloader, ":loader");
9838 DEFSYM (QCpt_width, ":pt-width");
9839 DEFSYM (QCpt_height, ":pt-height");
9840 #endif /* HAVE_GHOSTSCRIPT */
9841
9842 #ifdef HAVE_NTGUI
9843 /* Versions of libpng, libgif, and libjpeg that we were compiled with,
9844 or -1 if no PNG/GIF support was compiled in. This is tested by
9845 w32-win.el to correctly set up the alist used to search for the
9846 respective image libraries. */
9847 DEFSYM (Qlibpng_version, "libpng-version");
9848 Fset (Qlibpng_version,
9849 #if HAVE_PNG
9850 make_number (PNG_LIBPNG_VER)
9851 #else
9852 make_number (-1)
9853 #endif
9854 );
9855 DEFSYM (Qlibgif_version, "libgif-version");
9856 Fset (Qlibgif_version,
9857 #ifdef HAVE_GIF
9858 make_number (GIFLIB_MAJOR * 10000
9859 + GIFLIB_MINOR * 100
9860 + GIFLIB_RELEASE)
9861 #else
9862 make_number (-1)
9863 #endif
9864 );
9865 DEFSYM (Qlibjpeg_version, "libjpeg-version");
9866 Fset (Qlibjpeg_version,
9867 #if HAVE_JPEG
9868 make_number (JPEG_LIB_VERSION)
9869 #else
9870 make_number (-1)
9871 #endif
9872 );
9873 #endif
9874
9875 DEFSYM (Qpbm, "pbm");
9876 ADD_IMAGE_TYPE (Qpbm);
9877
9878 DEFSYM (Qxbm, "xbm");
9879 ADD_IMAGE_TYPE (Qxbm);
9880
9881 #if defined (HAVE_XPM) || defined (HAVE_NS)
9882 DEFSYM (Qxpm, "xpm");
9883 ADD_IMAGE_TYPE (Qxpm);
9884 #endif
9885
9886 #if defined (HAVE_JPEG) || defined (HAVE_NS)
9887 DEFSYM (Qjpeg, "jpeg");
9888 ADD_IMAGE_TYPE (Qjpeg);
9889 #endif
9890
9891 #if defined (HAVE_TIFF) || defined (HAVE_NS)
9892 DEFSYM (Qtiff, "tiff");
9893 ADD_IMAGE_TYPE (Qtiff);
9894 #endif
9895
9896 #if defined (HAVE_GIF) || defined (HAVE_NS)
9897 DEFSYM (Qgif, "gif");
9898 ADD_IMAGE_TYPE (Qgif);
9899 #endif
9900
9901 #if defined (HAVE_PNG) || defined (HAVE_NS)
9902 DEFSYM (Qpng, "png");
9903 ADD_IMAGE_TYPE (Qpng);
9904 #endif
9905
9906 #if defined (HAVE_IMAGEMAGICK)
9907 DEFSYM (Qimagemagick, "imagemagick");
9908 ADD_IMAGE_TYPE (Qimagemagick);
9909 #endif
9910
9911 #if defined (HAVE_RSVG)
9912 DEFSYM (Qsvg, "svg");
9913 ADD_IMAGE_TYPE (Qsvg);
9914 #ifdef HAVE_NTGUI
9915 /* Other libraries used directly by svg code. */
9916 DEFSYM (Qgdk_pixbuf, "gdk-pixbuf");
9917 DEFSYM (Qglib, "glib");
9918 DEFSYM (Qgobject, "gobject");
9919 #endif /* HAVE_NTGUI */
9920 #endif /* HAVE_RSVG */
9921
9922 defsubr (&Sinit_image_library);
9923 #ifdef HAVE_IMAGEMAGICK
9924 defsubr (&Simagemagick_types);
9925 #endif
9926 defsubr (&Sclear_image_cache);
9927 defsubr (&Simage_flush);
9928 defsubr (&Simage_size);
9929 defsubr (&Simage_mask_p);
9930 defsubr (&Simage_metadata);
9931
9932 #ifdef GLYPH_DEBUG
9933 defsubr (&Simagep);
9934 defsubr (&Slookup_image);
9935 #endif
9936
9937 DEFVAR_BOOL ("cross-disabled-images", cross_disabled_images,
9938 doc: /* Non-nil means always draw a cross over disabled images.
9939 Disabled images are those having a `:conversion disabled' property.
9940 A cross is always drawn on black & white displays. */);
9941 cross_disabled_images = 0;
9942
9943 DEFVAR_LISP ("x-bitmap-file-path", Vx_bitmap_file_path,
9944 doc: /* List of directories to search for window system bitmap files. */);
9945 Vx_bitmap_file_path = decode_env_path (0, PATH_BITMAPS, 0);
9946
9947 DEFVAR_LISP ("image-cache-eviction-delay", Vimage_cache_eviction_delay,
9948 doc: /* Maximum time after which images are removed from the cache.
9949 When an image has not been displayed this many seconds, Emacs
9950 automatically removes it from the image cache. If the cache contains
9951 a large number of images, the actual eviction time may be shorter.
9952 The value can also be nil, meaning the cache is never cleared.
9953
9954 The function `clear-image-cache' disregards this variable. */);
9955 Vimage_cache_eviction_delay = make_number (300);
9956 #ifdef HAVE_IMAGEMAGICK
9957 DEFVAR_INT ("imagemagick-render-type", imagemagick_render_type,
9958 doc: /* Integer indicating which ImageMagick rendering method to use.
9959 The options are:
9960 0 -- the default method (pixel pushing)
9961 1 -- a newer method ("MagickExportImagePixels") that may perform
9962 better (speed etc) in some cases, but has not been as thoroughly
9963 tested with Emacs as the default method. This method requires
9964 ImageMagick version 6.4.6 (approximately) or later.
9965 */);
9966 /* MagickExportImagePixels is in 6.4.6-9, but not 6.4.4-10. */
9967 imagemagick_render_type = 0;
9968 #endif
9969
9970 }