src/image: Remove unused variables.
[bpt/emacs.git] / src / image.c
1 /* Functions for image support on window system.
2
3 Copyright (C) 1989, 1992-2013 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 #include <stdio.h>
22 #include <unistd.h>
23
24 #ifdef HAVE_PNG
25 #if defined HAVE_LIBPNG_PNG_H
26 # include <libpng/png.h>
27 #else
28 # include <png.h>
29 #endif
30 #endif
31
32 #include <setjmp.h>
33
34 #include <c-ctype.h>
35
36 /* This makes the fields of a Display accessible, in Xlib header files. */
37
38 #define XLIB_ILLEGAL_ACCESS
39
40 #include "lisp.h"
41 #include "frame.h"
42 #include "window.h"
43 #include "dispextern.h"
44 #include "blockinput.h"
45 #include "systime.h"
46 #include <epaths.h>
47 #include "character.h"
48 #include "coding.h"
49 #include "termhooks.h"
50 #include "font.h"
51
52 #ifdef HAVE_SYS_STAT_H
53 #include <sys/stat.h>
54 #endif /* HAVE_SYS_STAT_H */
55
56 #ifdef HAVE_SYS_TYPES_H
57 #include <sys/types.h>
58 #endif /* HAVE_SYS_TYPES_H */
59
60 #ifdef HAVE_WINDOW_SYSTEM
61 #include TERM_HEADER
62 #endif /* HAVE_WINDOW_SYSTEM */
63
64 #ifdef HAVE_X_WINDOWS
65 #define COLOR_TABLE_SUPPORT 1
66
67 typedef struct x_bitmap_record Bitmap_Record;
68 #define GET_PIXEL(ximg, x, y) XGetPixel (ximg, x, y)
69 #define NO_PIXMAP None
70
71 #define PIX_MASK_RETAIN 0
72 #define PIX_MASK_DRAW 1
73 #endif /* HAVE_X_WINDOWS */
74
75 #ifdef HAVE_NTGUI
76
77 /* We need (or want) w32.h only when we're _not_ compiling for Cygwin. */
78 #ifdef WINDOWSNT
79 # include "w32.h"
80 #endif
81
82 /* W32_TODO : Color tables on W32. */
83 #undef COLOR_TABLE_SUPPORT
84
85 typedef struct w32_bitmap_record Bitmap_Record;
86 #define GET_PIXEL(ximg, x, y) GetPixel (ximg, x, y)
87 #define NO_PIXMAP 0
88
89 #define PIX_MASK_RETAIN 0
90 #define PIX_MASK_DRAW 1
91
92 #define x_defined_color w32_defined_color
93 #define DefaultDepthOfScreen(screen) (one_w32_display_info.n_cbits)
94
95 /* Version of libpng that we were compiled with, or -1 if no PNG
96 support was compiled in. This is tested by w32-win.el to correctly
97 set up the alist used to search for PNG libraries. */
98 Lisp_Object Qlibpng_version;
99 #endif /* HAVE_NTGUI */
100
101 #ifdef HAVE_NS
102 #undef COLOR_TABLE_SUPPORT
103
104 typedef struct ns_bitmap_record Bitmap_Record;
105
106 #define GET_PIXEL(ximg, x, y) XGetPixel (ximg, x, y)
107 #define NO_PIXMAP 0
108
109 #define PIX_MASK_RETAIN 0
110 #define PIX_MASK_DRAW 1
111
112 #define x_defined_color(f, name, color_def, alloc) \
113 ns_defined_color (f, name, color_def, alloc, 0)
114 #define DefaultDepthOfScreen(screen) x_display_list->n_planes
115 #endif /* HAVE_NS */
116
117
118 /* The symbol `postscript' identifying images of this type. */
119
120 static Lisp_Object Qpostscript;
121
122 static void x_disable_image (struct frame *, struct image *);
123 static void x_edge_detection (struct frame *, struct image *, Lisp_Object,
124 Lisp_Object);
125
126 static void init_color_table (void);
127 static unsigned long lookup_rgb_color (struct frame *f, int r, int g, int b);
128 #ifdef COLOR_TABLE_SUPPORT
129 static void free_color_table (void);
130 static unsigned long *colors_in_color_table (int *n);
131 #endif
132
133 static Lisp_Object QCmax_width, QCmax_height;
134
135 /* Code to deal with bitmaps. Bitmaps are referenced by their bitmap
136 id, which is just an int that this section returns. Bitmaps are
137 reference counted so they can be shared among frames.
138
139 Bitmap indices are guaranteed to be > 0, so a negative number can
140 be used to indicate no bitmap.
141
142 If you use x_create_bitmap_from_data, then you must keep track of
143 the bitmaps yourself. That is, creating a bitmap from the same
144 data more than once will not be caught. */
145
146 #ifdef HAVE_NS
147 /* Use with images created by ns_image_for_XPM. */
148 unsigned long
149 XGetPixel (XImagePtr ximage, int x, int y)
150 {
151 return ns_get_pixel (ximage, x, y);
152 }
153
154 /* Use with images created by ns_image_for_XPM; alpha set to 1;
155 pixel is assumed to be in RGB form. */
156 void
157 XPutPixel (XImagePtr ximage, int x, int y, unsigned long pixel)
158 {
159 ns_put_pixel (ximage, x, y, pixel);
160 }
161 #endif /* HAVE_NS */
162
163
164 /* Functions to access the contents of a bitmap, given an id. */
165
166 int
167 x_bitmap_height (FRAME_PTR f, ptrdiff_t id)
168 {
169 return FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].height;
170 }
171
172 int
173 x_bitmap_width (FRAME_PTR f, ptrdiff_t id)
174 {
175 return FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].width;
176 }
177
178 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
179 ptrdiff_t
180 x_bitmap_pixmap (FRAME_PTR f, ptrdiff_t id)
181 {
182 /* HAVE_NTGUI needs the explicit cast here. */
183 return (ptrdiff_t) FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].pixmap;
184 }
185 #endif
186
187 #ifdef HAVE_X_WINDOWS
188 int
189 x_bitmap_mask (FRAME_PTR f, ptrdiff_t id)
190 {
191 return FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].mask;
192 }
193 #endif
194
195 /* Allocate a new bitmap record. Returns index of new record. */
196
197 static ptrdiff_t
198 x_allocate_bitmap_record (FRAME_PTR f)
199 {
200 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
201 ptrdiff_t i;
202
203 if (dpyinfo->bitmaps_last < dpyinfo->bitmaps_size)
204 return ++dpyinfo->bitmaps_last;
205
206 for (i = 0; i < dpyinfo->bitmaps_size; ++i)
207 if (dpyinfo->bitmaps[i].refcount == 0)
208 return i + 1;
209
210 dpyinfo->bitmaps =
211 xpalloc (dpyinfo->bitmaps, &dpyinfo->bitmaps_size,
212 10, -1, sizeof *dpyinfo->bitmaps);
213 return ++dpyinfo->bitmaps_last;
214 }
215
216 /* Add one reference to the reference count of the bitmap with id ID. */
217
218 void
219 x_reference_bitmap (FRAME_PTR f, ptrdiff_t id)
220 {
221 ++FRAME_X_DISPLAY_INFO (f)->bitmaps[id - 1].refcount;
222 }
223
224 /* Create a bitmap for frame F from a HEIGHT x WIDTH array of bits at BITS. */
225
226 ptrdiff_t
227 x_create_bitmap_from_data (struct frame *f, char *bits, unsigned int width, unsigned int height)
228 {
229 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
230 ptrdiff_t id;
231
232 #ifdef HAVE_X_WINDOWS
233 Pixmap bitmap;
234 bitmap = XCreateBitmapFromData (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
235 bits, width, height);
236 if (! bitmap)
237 return -1;
238 #endif /* HAVE_X_WINDOWS */
239
240 #ifdef HAVE_NTGUI
241 Pixmap bitmap;
242 bitmap = CreateBitmap (width, height,
243 FRAME_X_DISPLAY_INFO (XFRAME (frame))->n_planes,
244 FRAME_X_DISPLAY_INFO (XFRAME (frame))->n_cbits,
245 bits);
246 if (! bitmap)
247 return -1;
248 #endif /* HAVE_NTGUI */
249
250 #ifdef HAVE_NS
251 void *bitmap = ns_image_from_XBM (bits, width, height);
252 if (!bitmap)
253 return -1;
254 #endif
255
256 id = x_allocate_bitmap_record (f);
257
258 #ifdef HAVE_NS
259 dpyinfo->bitmaps[id - 1].img = bitmap;
260 dpyinfo->bitmaps[id - 1].depth = 1;
261 #endif
262
263 dpyinfo->bitmaps[id - 1].file = NULL;
264 dpyinfo->bitmaps[id - 1].height = height;
265 dpyinfo->bitmaps[id - 1].width = width;
266 dpyinfo->bitmaps[id - 1].refcount = 1;
267
268 #ifdef HAVE_X_WINDOWS
269 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
270 dpyinfo->bitmaps[id - 1].have_mask = 0;
271 dpyinfo->bitmaps[id - 1].depth = 1;
272 #endif /* HAVE_X_WINDOWS */
273
274 #ifdef HAVE_NTGUI
275 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
276 dpyinfo->bitmaps[id - 1].hinst = NULL;
277 dpyinfo->bitmaps[id - 1].depth = 1;
278 #endif /* HAVE_NTGUI */
279
280 return id;
281 }
282
283 /* Create bitmap from file FILE for frame F. */
284
285 ptrdiff_t
286 x_create_bitmap_from_file (struct frame *f, Lisp_Object file)
287 {
288 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
289
290 #ifdef HAVE_NTGUI
291 return -1; /* W32_TODO : bitmap support */
292 #endif /* HAVE_NTGUI */
293
294 #ifdef HAVE_NS
295 ptrdiff_t id;
296 void *bitmap = ns_image_from_file (file);
297
298 if (!bitmap)
299 return -1;
300
301
302 id = x_allocate_bitmap_record (f);
303 dpyinfo->bitmaps[id - 1].img = bitmap;
304 dpyinfo->bitmaps[id - 1].refcount = 1;
305 dpyinfo->bitmaps[id - 1].file = xmalloc (SBYTES (file) + 1);
306 dpyinfo->bitmaps[id - 1].depth = 1;
307 dpyinfo->bitmaps[id - 1].height = ns_image_width (bitmap);
308 dpyinfo->bitmaps[id - 1].width = ns_image_height (bitmap);
309 strcpy (dpyinfo->bitmaps[id - 1].file, SSDATA (file));
310 return id;
311 #endif
312
313 #ifdef HAVE_X_WINDOWS
314 unsigned int width, height;
315 Pixmap bitmap;
316 int xhot, yhot, result;
317 ptrdiff_t id;
318 Lisp_Object found;
319 int fd;
320 char *filename;
321
322 /* Look for an existing bitmap with the same name. */
323 for (id = 0; id < dpyinfo->bitmaps_last; ++id)
324 {
325 if (dpyinfo->bitmaps[id].refcount
326 && dpyinfo->bitmaps[id].file
327 && !strcmp (dpyinfo->bitmaps[id].file, SSDATA (file)))
328 {
329 ++dpyinfo->bitmaps[id].refcount;
330 return id + 1;
331 }
332 }
333
334 /* Search bitmap-file-path for the file, if appropriate. */
335 fd = openp (Vx_bitmap_file_path, file, Qnil, &found, Qnil);
336 if (fd < 0)
337 return -1;
338 emacs_close (fd);
339
340 filename = SSDATA (found);
341
342 result = XReadBitmapFile (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
343 filename, &width, &height, &bitmap, &xhot, &yhot);
344 if (result != BitmapSuccess)
345 return -1;
346
347 id = x_allocate_bitmap_record (f);
348 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
349 dpyinfo->bitmaps[id - 1].have_mask = 0;
350 dpyinfo->bitmaps[id - 1].refcount = 1;
351 dpyinfo->bitmaps[id - 1].file = xmalloc (SBYTES (file) + 1);
352 dpyinfo->bitmaps[id - 1].depth = 1;
353 dpyinfo->bitmaps[id - 1].height = height;
354 dpyinfo->bitmaps[id - 1].width = width;
355 strcpy (dpyinfo->bitmaps[id - 1].file, SSDATA (file));
356
357 return id;
358 #endif /* HAVE_X_WINDOWS */
359 }
360
361 /* Free bitmap B. */
362
363 static void
364 free_bitmap_record (Display_Info *dpyinfo, Bitmap_Record *bm)
365 {
366 #ifdef HAVE_X_WINDOWS
367 XFreePixmap (dpyinfo->display, bm->pixmap);
368 if (bm->have_mask)
369 XFreePixmap (dpyinfo->display, bm->mask);
370 #endif /* HAVE_X_WINDOWS */
371
372 #ifdef HAVE_NTGUI
373 DeleteObject (bm->pixmap);
374 #endif /* HAVE_NTGUI */
375
376 #ifdef HAVE_NS
377 ns_release_object (bm->img);
378 #endif
379
380 if (bm->file)
381 {
382 xfree (bm->file);
383 bm->file = NULL;
384 }
385 }
386
387 /* Remove reference to bitmap with id number ID. */
388
389 void
390 x_destroy_bitmap (FRAME_PTR f, ptrdiff_t id)
391 {
392 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
393
394 if (id > 0)
395 {
396 Bitmap_Record *bm = &dpyinfo->bitmaps[id - 1];
397
398 if (--bm->refcount == 0)
399 {
400 block_input ();
401 free_bitmap_record (dpyinfo, bm);
402 unblock_input ();
403 }
404 }
405 }
406
407 /* Free all the bitmaps for the display specified by DPYINFO. */
408
409 void
410 x_destroy_all_bitmaps (Display_Info *dpyinfo)
411 {
412 ptrdiff_t i;
413 Bitmap_Record *bm = dpyinfo->bitmaps;
414
415 for (i = 0; i < dpyinfo->bitmaps_last; i++, bm++)
416 if (bm->refcount > 0)
417 free_bitmap_record (dpyinfo, bm);
418
419 dpyinfo->bitmaps_last = 0;
420 }
421
422 static bool x_create_x_image_and_pixmap (struct frame *, int, int, int,
423 XImagePtr *, Pixmap *);
424 static void x_destroy_x_image (XImagePtr ximg);
425
426 #ifdef HAVE_NTGUI
427 static XImagePtr_or_DC image_get_x_image_or_dc (struct frame *, struct image *,
428 bool, HGDIOBJ *);
429 static void image_unget_x_image_or_dc (struct image *, bool, XImagePtr_or_DC,
430 HGDIOBJ);
431 #else
432 static XImagePtr image_get_x_image (struct frame *, struct image *, bool);
433 static void image_unget_x_image (struct image *, bool, XImagePtr);
434 #define image_get_x_image_or_dc(f, img, mask_p, dummy) \
435 image_get_x_image (f, img, mask_p)
436 #define image_unget_x_image_or_dc(img, mask_p, ximg, dummy) \
437 image_unget_x_image (img, mask_p, ximg)
438 #endif
439
440 #ifdef HAVE_X_WINDOWS
441
442 static void image_sync_to_pixmaps (struct frame *, struct image *);
443
444 /* Useful functions defined in the section
445 `Image type independent image structures' below. */
446
447 static unsigned long four_corners_best (XImagePtr ximg,
448 int *corners,
449 unsigned long width,
450 unsigned long height);
451
452
453 /* Create a mask of a bitmap. Note is this not a perfect mask.
454 It's nicer with some borders in this context */
455
456 void
457 x_create_bitmap_mask (struct frame *f, ptrdiff_t id)
458 {
459 Pixmap pixmap, mask;
460 XImagePtr ximg, mask_img;
461 unsigned long width, height;
462 bool result;
463 unsigned long bg;
464 unsigned long x, y, xp, xm, yp, ym;
465 GC gc;
466
467 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
468
469 if (!(id > 0))
470 return;
471
472 pixmap = x_bitmap_pixmap (f, id);
473 width = x_bitmap_width (f, id);
474 height = x_bitmap_height (f, id);
475
476 block_input ();
477 ximg = XGetImage (FRAME_X_DISPLAY (f), pixmap, 0, 0, width, height,
478 ~0, ZPixmap);
479
480 if (!ximg)
481 {
482 unblock_input ();
483 return;
484 }
485
486 result = x_create_x_image_and_pixmap (f, width, height, 1, &mask_img, &mask);
487
488 unblock_input ();
489 if (!result)
490 {
491 XDestroyImage (ximg);
492 return;
493 }
494
495 bg = four_corners_best (ximg, NULL, width, height);
496
497 for (y = 0; y < ximg->height; ++y)
498 {
499 for (x = 0; x < ximg->width; ++x)
500 {
501 xp = x != ximg->width - 1 ? x + 1 : 0;
502 xm = x != 0 ? x - 1 : ximg->width - 1;
503 yp = y != ximg->height - 1 ? y + 1 : 0;
504 ym = y != 0 ? y - 1 : ximg->height - 1;
505 if (XGetPixel (ximg, x, y) == bg
506 && XGetPixel (ximg, x, yp) == bg
507 && XGetPixel (ximg, x, ym) == bg
508 && XGetPixel (ximg, xp, y) == bg
509 && XGetPixel (ximg, xp, yp) == bg
510 && XGetPixel (ximg, xp, ym) == bg
511 && XGetPixel (ximg, xm, y) == bg
512 && XGetPixel (ximg, xm, yp) == bg
513 && XGetPixel (ximg, xm, ym) == bg)
514 XPutPixel (mask_img, x, y, 0);
515 else
516 XPutPixel (mask_img, x, y, 1);
517 }
518 }
519
520 eassert (input_blocked_p ());
521 gc = XCreateGC (FRAME_X_DISPLAY (f), mask, 0, NULL);
522 XPutImage (FRAME_X_DISPLAY (f), mask, gc, mask_img, 0, 0, 0, 0,
523 width, height);
524 XFreeGC (FRAME_X_DISPLAY (f), gc);
525
526 dpyinfo->bitmaps[id - 1].have_mask = 1;
527 dpyinfo->bitmaps[id - 1].mask = mask;
528
529 XDestroyImage (ximg);
530 x_destroy_x_image (mask_img);
531 }
532
533 #endif /* HAVE_X_WINDOWS */
534
535
536 /***********************************************************************
537 Image types
538 ***********************************************************************/
539
540 /* List of supported image types. Use define_image_type to add new
541 types. Use lookup_image_type to find a type for a given symbol. */
542
543 static struct image_type *image_types;
544
545 /* The symbol `xbm' which is used as the type symbol for XBM images. */
546
547 static Lisp_Object Qxbm;
548
549 /* Keywords. */
550
551 Lisp_Object QCascent, QCmargin, QCrelief;
552 Lisp_Object QCconversion;
553 static Lisp_Object QCheuristic_mask;
554 static Lisp_Object QCcolor_symbols;
555 static Lisp_Object QCindex, QCmatrix, QCcolor_adjustment, QCmask, QCgeometry;
556 static Lisp_Object QCcrop, QCrotation;
557
558 /* Other symbols. */
559
560 static Lisp_Object Qcount, Qextension_data, Qdelay;
561 static Lisp_Object Qlaplace, Qemboss, Qedge_detection, Qheuristic;
562
563 /* Forward function prototypes. */
564
565 static struct image_type *lookup_image_type (Lisp_Object);
566 static void x_laplace (struct frame *, struct image *);
567 static void x_emboss (struct frame *, struct image *);
568 static void x_build_heuristic_mask (struct frame *, struct image *,
569 Lisp_Object);
570 #ifdef WINDOWSNT
571 extern Lisp_Object Vlibrary_cache;
572 #define CACHE_IMAGE_TYPE(type, status) \
573 do { Vlibrary_cache = Fcons (Fcons (type, status), Vlibrary_cache); } while (0)
574 #else
575 #define CACHE_IMAGE_TYPE(type, status)
576 #endif
577
578 #define ADD_IMAGE_TYPE(type) \
579 do { Vimage_types = Fcons (type, Vimage_types); } while (0)
580
581 /* Define a new image type from TYPE. This adds a copy of TYPE to
582 image_types and caches the loading status of TYPE. */
583
584 static struct image_type *
585 define_image_type (struct image_type *type)
586 {
587 struct image_type *p = NULL;
588 Lisp_Object target_type = *type->type;
589 bool type_valid = 1;
590
591 block_input ();
592
593 for (p = image_types; p; p = p->next)
594 if (EQ (*p->type, target_type))
595 goto done;
596
597 if (type->init)
598 {
599 #if defined HAVE_NTGUI && defined WINDOWSNT
600 /* If we failed to load the library before, don't try again. */
601 Lisp_Object tested = Fassq (target_type, Vlibrary_cache);
602 if (CONSP (tested) && NILP (XCDR (tested)))
603 type_valid = 0;
604 else
605 #endif
606 {
607 type_valid = type->init ();
608 CACHE_IMAGE_TYPE (target_type, type_valid ? Qt : Qnil);
609 }
610 }
611
612 if (type_valid)
613 {
614 /* Make a copy of TYPE to avoid a bus error in a dumped Emacs.
615 The initialized data segment is read-only. */
616 p = xmalloc (sizeof *p);
617 *p = *type;
618 p->next = image_types;
619 image_types = p;
620 }
621
622 done:
623 unblock_input ();
624 return p;
625 }
626
627
628 /* Value is true if OBJECT is a valid Lisp image specification. A
629 valid image specification is a list whose car is the symbol
630 `image', and whose rest is a property list. The property list must
631 contain a value for key `:type'. That value must be the name of a
632 supported image type. The rest of the property list depends on the
633 image type. */
634
635 bool
636 valid_image_p (Lisp_Object object)
637 {
638 bool valid_p = 0;
639
640 if (IMAGEP (object))
641 {
642 Lisp_Object tem;
643
644 for (tem = XCDR (object); CONSP (tem); tem = XCDR (tem))
645 if (EQ (XCAR (tem), QCtype))
646 {
647 tem = XCDR (tem);
648 if (CONSP (tem) && SYMBOLP (XCAR (tem)))
649 {
650 struct image_type *type;
651 type = lookup_image_type (XCAR (tem));
652 if (type)
653 valid_p = type->valid_p (object);
654 }
655
656 break;
657 }
658 }
659
660 return valid_p;
661 }
662
663
664 /* Log error message with format string FORMAT and argument ARG.
665 Signaling an error, e.g. when an image cannot be loaded, is not a
666 good idea because this would interrupt redisplay, and the error
667 message display would lead to another redisplay. This function
668 therefore simply displays a message. */
669
670 static void
671 image_error (const char *format, Lisp_Object arg1, Lisp_Object arg2)
672 {
673 add_to_log (format, arg1, arg2);
674 }
675
676
677 \f
678 /***********************************************************************
679 Image specifications
680 ***********************************************************************/
681
682 enum image_value_type
683 {
684 IMAGE_DONT_CHECK_VALUE_TYPE,
685 IMAGE_STRING_VALUE,
686 IMAGE_STRING_OR_NIL_VALUE,
687 IMAGE_SYMBOL_VALUE,
688 IMAGE_POSITIVE_INTEGER_VALUE,
689 IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR,
690 IMAGE_NON_NEGATIVE_INTEGER_VALUE,
691 IMAGE_ASCENT_VALUE,
692 IMAGE_INTEGER_VALUE,
693 IMAGE_FUNCTION_VALUE,
694 IMAGE_NUMBER_VALUE,
695 IMAGE_BOOL_VALUE
696 };
697
698 /* Structure used when parsing image specifications. */
699
700 struct image_keyword
701 {
702 /* Name of keyword. */
703 const char *name;
704
705 /* The type of value allowed. */
706 enum image_value_type type;
707
708 /* True means key must be present. */
709 bool mandatory_p;
710
711 /* Used to recognize duplicate keywords in a property list. */
712 int count;
713
714 /* The value that was found. */
715 Lisp_Object value;
716 };
717
718
719 /* Parse image spec SPEC according to KEYWORDS. A valid image spec
720 has the format (image KEYWORD VALUE ...). One of the keyword/
721 value pairs must be `:type TYPE'. KEYWORDS is a vector of
722 image_keywords structures of size NKEYWORDS describing other
723 allowed keyword/value pairs. Value is true if SPEC is valid. */
724
725 static bool
726 parse_image_spec (Lisp_Object spec, struct image_keyword *keywords,
727 int nkeywords, Lisp_Object type)
728 {
729 int i;
730 Lisp_Object plist;
731
732 if (!IMAGEP (spec))
733 return 0;
734
735 plist = XCDR (spec);
736 while (CONSP (plist))
737 {
738 Lisp_Object key, value;
739
740 /* First element of a pair must be a symbol. */
741 key = XCAR (plist);
742 plist = XCDR (plist);
743 if (!SYMBOLP (key))
744 return 0;
745
746 /* There must follow a value. */
747 if (!CONSP (plist))
748 return 0;
749 value = XCAR (plist);
750 plist = XCDR (plist);
751
752 /* Find key in KEYWORDS. Error if not found. */
753 for (i = 0; i < nkeywords; ++i)
754 if (strcmp (keywords[i].name, SSDATA (SYMBOL_NAME (key))) == 0)
755 break;
756
757 if (i == nkeywords)
758 continue;
759
760 /* Record that we recognized the keyword. If a keywords
761 was found more than once, it's an error. */
762 keywords[i].value = value;
763 if (keywords[i].count > 1)
764 return 0;
765 ++keywords[i].count;
766
767 /* Check type of value against allowed type. */
768 switch (keywords[i].type)
769 {
770 case IMAGE_STRING_VALUE:
771 if (!STRINGP (value))
772 return 0;
773 break;
774
775 case IMAGE_STRING_OR_NIL_VALUE:
776 if (!STRINGP (value) && !NILP (value))
777 return 0;
778 break;
779
780 case IMAGE_SYMBOL_VALUE:
781 if (!SYMBOLP (value))
782 return 0;
783 break;
784
785 case IMAGE_POSITIVE_INTEGER_VALUE:
786 if (! RANGED_INTEGERP (1, value, INT_MAX))
787 return 0;
788 break;
789
790 case IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR:
791 if (RANGED_INTEGERP (0, value, INT_MAX))
792 break;
793 if (CONSP (value)
794 && RANGED_INTEGERP (0, XCAR (value), INT_MAX)
795 && RANGED_INTEGERP (0, XCDR (value), INT_MAX))
796 break;
797 return 0;
798
799 case IMAGE_ASCENT_VALUE:
800 if (SYMBOLP (value) && EQ (value, Qcenter))
801 break;
802 else if (RANGED_INTEGERP (0, value, 100))
803 break;
804 return 0;
805
806 case IMAGE_NON_NEGATIVE_INTEGER_VALUE:
807 /* Unlike the other integer-related cases, this one does not
808 verify that VALUE fits in 'int'. This is because callers
809 want EMACS_INT. */
810 if (!INTEGERP (value) || XINT (value) < 0)
811 return 0;
812 break;
813
814 case IMAGE_DONT_CHECK_VALUE_TYPE:
815 break;
816
817 case IMAGE_FUNCTION_VALUE:
818 value = indirect_function (value);
819 if (!NILP (Ffunctionp (value)))
820 break;
821 return 0;
822
823 case IMAGE_NUMBER_VALUE:
824 if (!INTEGERP (value) && !FLOATP (value))
825 return 0;
826 break;
827
828 case IMAGE_INTEGER_VALUE:
829 if (! TYPE_RANGED_INTEGERP (int, value))
830 return 0;
831 break;
832
833 case IMAGE_BOOL_VALUE:
834 if (!NILP (value) && !EQ (value, Qt))
835 return 0;
836 break;
837
838 default:
839 emacs_abort ();
840 break;
841 }
842
843 if (EQ (key, QCtype) && !EQ (type, value))
844 return 0;
845 }
846
847 /* Check that all mandatory fields are present. */
848 for (i = 0; i < nkeywords; ++i)
849 if (keywords[i].mandatory_p && keywords[i].count == 0)
850 return 0;
851
852 return NILP (plist);
853 }
854
855
856 /* Return the value of KEY in image specification SPEC. Value is nil
857 if KEY is not present in SPEC. Set *FOUND depending on whether KEY
858 was found in SPEC. */
859
860 static Lisp_Object
861 image_spec_value (Lisp_Object spec, Lisp_Object key, bool *found)
862 {
863 Lisp_Object tail;
864
865 eassert (valid_image_p (spec));
866
867 for (tail = XCDR (spec);
868 CONSP (tail) && CONSP (XCDR (tail));
869 tail = XCDR (XCDR (tail)))
870 {
871 if (EQ (XCAR (tail), key))
872 {
873 if (found)
874 *found = 1;
875 return XCAR (XCDR (tail));
876 }
877 }
878
879 if (found)
880 *found = 0;
881 return Qnil;
882 }
883
884
885 DEFUN ("image-size", Fimage_size, Simage_size, 1, 3, 0,
886 doc: /* Return the size of image SPEC as pair (WIDTH . HEIGHT).
887 PIXELS non-nil means return the size in pixels, otherwise return the
888 size in canonical character units.
889 FRAME is the frame on which the image will be displayed. FRAME nil
890 or omitted means use the selected frame. */)
891 (Lisp_Object spec, Lisp_Object pixels, Lisp_Object frame)
892 {
893 Lisp_Object size;
894
895 size = Qnil;
896 if (valid_image_p (spec))
897 {
898 struct frame *f = decode_window_system_frame (frame);
899 ptrdiff_t id = lookup_image (f, spec);
900 struct image *img = IMAGE_FROM_ID (f, id);
901 int width = img->width + 2 * img->hmargin;
902 int height = img->height + 2 * img->vmargin;
903
904 if (NILP (pixels))
905 size = Fcons (make_float ((double) width / FRAME_COLUMN_WIDTH (f)),
906 make_float ((double) height / FRAME_LINE_HEIGHT (f)));
907 else
908 size = Fcons (make_number (width), make_number (height));
909 }
910 else
911 error ("Invalid image specification");
912
913 return size;
914 }
915
916
917 DEFUN ("image-mask-p", Fimage_mask_p, Simage_mask_p, 1, 2, 0,
918 doc: /* Return t if image SPEC has a mask bitmap.
919 FRAME is the frame on which the image will be displayed. FRAME nil
920 or omitted means use the selected frame. */)
921 (Lisp_Object spec, Lisp_Object frame)
922 {
923 Lisp_Object mask;
924
925 mask = Qnil;
926 if (valid_image_p (spec))
927 {
928 struct frame *f = decode_window_system_frame (frame);
929 ptrdiff_t id = lookup_image (f, spec);
930 struct image *img = IMAGE_FROM_ID (f, id);
931 if (img->mask)
932 mask = Qt;
933 }
934 else
935 error ("Invalid image specification");
936
937 return mask;
938 }
939
940 DEFUN ("image-metadata", Fimage_metadata, Simage_metadata, 1, 2, 0,
941 doc: /* Return metadata for image SPEC.
942 FRAME is the frame on which the image will be displayed. FRAME nil
943 or omitted means use the selected frame. */)
944 (Lisp_Object spec, Lisp_Object frame)
945 {
946 Lisp_Object ext;
947
948 ext = Qnil;
949 if (valid_image_p (spec))
950 {
951 struct frame *f = decode_window_system_frame (frame);
952 ptrdiff_t id = lookup_image (f, spec);
953 struct image *img = IMAGE_FROM_ID (f, id);
954 ext = img->lisp_data;
955 }
956
957 return ext;
958 }
959
960 \f
961 /***********************************************************************
962 Image type independent image structures
963 ***********************************************************************/
964
965 #define MAX_IMAGE_SIZE 10.0
966 /* Allocate and return a new image structure for image specification
967 SPEC. SPEC has a hash value of HASH. */
968
969 static struct image *
970 make_image (Lisp_Object spec, EMACS_UINT hash)
971 {
972 struct image *img = xzalloc (sizeof *img);
973 Lisp_Object file = image_spec_value (spec, QCfile, NULL);
974
975 eassert (valid_image_p (spec));
976 img->dependencies = NILP (file) ? Qnil : list1 (file);
977 img->type = lookup_image_type (image_spec_value (spec, QCtype, NULL));
978 eassert (img->type != NULL);
979 img->spec = spec;
980 img->lisp_data = Qnil;
981 img->ascent = DEFAULT_IMAGE_ASCENT;
982 img->hash = hash;
983 img->corners[BOT_CORNER] = -1; /* Full image */
984 return img;
985 }
986
987
988 /* Free image IMG which was used on frame F, including its resources. */
989
990 static void
991 free_image (struct frame *f, struct image *img)
992 {
993 if (img)
994 {
995 struct image_cache *c = FRAME_IMAGE_CACHE (f);
996
997 /* Remove IMG from the hash table of its cache. */
998 if (img->prev)
999 img->prev->next = img->next;
1000 else
1001 c->buckets[img->hash % IMAGE_CACHE_BUCKETS_SIZE] = img->next;
1002
1003 if (img->next)
1004 img->next->prev = img->prev;
1005
1006 c->images[img->id] = NULL;
1007
1008 /* Free resources, then free IMG. */
1009 img->type->free (f, img);
1010 xfree (img);
1011 }
1012 }
1013
1014 /* Return true if the given widths and heights are valid for display. */
1015
1016 static bool
1017 check_image_size (struct frame *f, int width, int height)
1018 {
1019 int w, h;
1020
1021 if (width <= 0 || height <= 0)
1022 return 0;
1023
1024 if (INTEGERP (Vmax_image_size))
1025 return (width <= XINT (Vmax_image_size)
1026 && height <= XINT (Vmax_image_size));
1027 else if (FLOATP (Vmax_image_size))
1028 {
1029 if (f != NULL)
1030 {
1031 w = FRAME_PIXEL_WIDTH (f);
1032 h = FRAME_PIXEL_HEIGHT (f);
1033 }
1034 else
1035 w = h = 1024; /* Arbitrary size for unknown frame. */
1036 return (width <= XFLOAT_DATA (Vmax_image_size) * w
1037 && height <= XFLOAT_DATA (Vmax_image_size) * h);
1038 }
1039 else
1040 return 1;
1041 }
1042
1043 /* Prepare image IMG for display on frame F. Must be called before
1044 drawing an image. */
1045
1046 void
1047 prepare_image_for_display (struct frame *f, struct image *img)
1048 {
1049 /* We're about to display IMG, so set its timestamp to `now'. */
1050 img->timestamp = current_emacs_time ();
1051
1052 /* If IMG doesn't have a pixmap yet, load it now, using the image
1053 type dependent loader function. */
1054 if (img->pixmap == NO_PIXMAP && !img->load_failed_p)
1055 img->load_failed_p = ! img->type->load (f, img);
1056
1057 #ifdef HAVE_X_WINDOWS
1058 if (!img->load_failed_p)
1059 {
1060 block_input ();
1061 image_sync_to_pixmaps (f, img);
1062 unblock_input ();
1063 }
1064 #endif
1065 }
1066
1067
1068 /* Value is the number of pixels for the ascent of image IMG when
1069 drawn in face FACE. */
1070
1071 int
1072 image_ascent (struct image *img, struct face *face, struct glyph_slice *slice)
1073 {
1074 int height;
1075 int ascent;
1076
1077 if (slice->height == img->height)
1078 height = img->height + img->vmargin;
1079 else if (slice->y == 0)
1080 height = slice->height + img->vmargin;
1081 else
1082 height = slice->height;
1083
1084 if (img->ascent == CENTERED_IMAGE_ASCENT)
1085 {
1086 if (face->font)
1087 {
1088 #ifdef HAVE_NTGUI
1089 /* W32 specific version. Why?. ++kfs */
1090 ascent = height / 2 - (FONT_DESCENT (face->font)
1091 - FONT_BASE (face->font)) / 2;
1092 #else
1093 /* This expression is arranged so that if the image can't be
1094 exactly centered, it will be moved slightly up. This is
1095 because a typical font is `top-heavy' (due to the presence
1096 uppercase letters), so the image placement should err towards
1097 being top-heavy too. It also just generally looks better. */
1098 ascent = (height + FONT_BASE (face->font)
1099 - FONT_DESCENT (face->font) + 1) / 2;
1100 #endif /* HAVE_NTGUI */
1101 }
1102 else
1103 ascent = height / 2;
1104 }
1105 else
1106 ascent = height * (img->ascent / 100.0);
1107
1108 return ascent;
1109 }
1110
1111 \f
1112 /* Image background colors. */
1113
1114 /* Find the "best" corner color of a bitmap.
1115 On W32, XIMG is assumed to a device context with the bitmap selected. */
1116
1117 static RGB_PIXEL_COLOR
1118 four_corners_best (XImagePtr_or_DC ximg, int *corners,
1119 unsigned long width, unsigned long height)
1120 {
1121 RGB_PIXEL_COLOR corner_pixels[4], best IF_LINT (= 0);
1122 int i, best_count;
1123
1124 if (corners && corners[BOT_CORNER] >= 0)
1125 {
1126 /* Get the colors at the corner_pixels of ximg. */
1127 corner_pixels[0] = GET_PIXEL (ximg, corners[LEFT_CORNER], corners[TOP_CORNER]);
1128 corner_pixels[1] = GET_PIXEL (ximg, corners[RIGHT_CORNER] - 1, corners[TOP_CORNER]);
1129 corner_pixels[2] = GET_PIXEL (ximg, corners[RIGHT_CORNER] - 1, corners[BOT_CORNER] - 1);
1130 corner_pixels[3] = GET_PIXEL (ximg, corners[LEFT_CORNER], corners[BOT_CORNER] - 1);
1131 }
1132 else
1133 {
1134 /* Get the colors at the corner_pixels of ximg. */
1135 corner_pixels[0] = GET_PIXEL (ximg, 0, 0);
1136 corner_pixels[1] = GET_PIXEL (ximg, width - 1, 0);
1137 corner_pixels[2] = GET_PIXEL (ximg, width - 1, height - 1);
1138 corner_pixels[3] = GET_PIXEL (ximg, 0, height - 1);
1139 }
1140 /* Choose the most frequently found color as background. */
1141 for (i = best_count = 0; i < 4; ++i)
1142 {
1143 int j, n;
1144
1145 for (j = n = 0; j < 4; ++j)
1146 if (corner_pixels[i] == corner_pixels[j])
1147 ++n;
1148
1149 if (n > best_count)
1150 best = corner_pixels[i], best_count = n;
1151 }
1152
1153 return best;
1154 }
1155
1156 /* Portability macros */
1157
1158 #ifdef HAVE_NTGUI
1159
1160 #define Free_Pixmap(display, pixmap) \
1161 DeleteObject (pixmap)
1162
1163 #elif defined (HAVE_NS)
1164
1165 #define Free_Pixmap(display, pixmap) \
1166 ns_release_object (pixmap)
1167
1168 #else
1169
1170 #define Free_Pixmap(display, pixmap) \
1171 XFreePixmap (display, pixmap)
1172
1173 #endif /* !HAVE_NTGUI && !HAVE_NS */
1174
1175
1176 /* Return the `background' field of IMG. If IMG doesn't have one yet,
1177 it is guessed heuristically. If non-zero, XIMG is an existing
1178 XImage object (or device context with the image selected on W32) to
1179 use for the heuristic. */
1180
1181 RGB_PIXEL_COLOR
1182 image_background (struct image *img, struct frame *f, XImagePtr_or_DC ximg)
1183 {
1184 if (! img->background_valid)
1185 /* IMG doesn't have a background yet, try to guess a reasonable value. */
1186 {
1187 bool free_ximg = !ximg;
1188 #ifdef HAVE_NTGUI
1189 HGDIOBJ prev;
1190 #endif /* HAVE_NTGUI */
1191
1192 if (free_ximg)
1193 ximg = image_get_x_image_or_dc (f, img, 0, &prev);
1194
1195 img->background = four_corners_best (ximg, img->corners, img->width, img->height);
1196
1197 if (free_ximg)
1198 image_unget_x_image_or_dc (img, 0, ximg, prev);
1199
1200 img->background_valid = 1;
1201 }
1202
1203 return img->background;
1204 }
1205
1206 /* Return the `background_transparent' field of IMG. If IMG doesn't
1207 have one yet, it is guessed heuristically. If non-zero, MASK is an
1208 existing XImage object to use for the heuristic. */
1209
1210 int
1211 image_background_transparent (struct image *img, struct frame *f, XImagePtr_or_DC mask)
1212 {
1213 if (! img->background_transparent_valid)
1214 /* IMG doesn't have a background yet, try to guess a reasonable value. */
1215 {
1216 if (img->mask)
1217 {
1218 bool free_mask = !mask;
1219 #ifdef HAVE_NTGUI
1220 HGDIOBJ prev;
1221 #endif /* HAVE_NTGUI */
1222
1223 if (free_mask)
1224 mask = image_get_x_image_or_dc (f, img, 1, &prev);
1225
1226 img->background_transparent
1227 = (four_corners_best (mask, img->corners, img->width, img->height) == PIX_MASK_RETAIN);
1228
1229 if (free_mask)
1230 image_unget_x_image_or_dc (img, 1, mask, prev);
1231 }
1232 else
1233 img->background_transparent = 0;
1234
1235 img->background_transparent_valid = 1;
1236 }
1237
1238 return img->background_transparent;
1239 }
1240
1241 \f
1242 /***********************************************************************
1243 Helper functions for X image types
1244 ***********************************************************************/
1245
1246 /* Clear X resources of image IMG on frame F according to FLAGS.
1247 FLAGS is bitwise-or of the following masks:
1248 CLEAR_IMAGE_PIXMAP free the pixmap if any.
1249 CLEAR_IMAGE_MASK means clear the mask pixmap if any.
1250 CLEAR_IMAGE_COLORS means free colors allocated for the image, if
1251 any. */
1252
1253 #define CLEAR_IMAGE_PIXMAP (1 << 0)
1254 #define CLEAR_IMAGE_MASK (1 << 1)
1255 #define CLEAR_IMAGE_COLORS (1 << 2)
1256
1257 static void
1258 x_clear_image_1 (struct frame *f, struct image *img, int flags)
1259 {
1260 if (flags & CLEAR_IMAGE_PIXMAP)
1261 {
1262 if (img->pixmap)
1263 {
1264 Free_Pixmap (FRAME_X_DISPLAY (f), img->pixmap);
1265 img->pixmap = NO_PIXMAP;
1266 /* NOTE (HAVE_NS): background color is NOT an indexed color! */
1267 img->background_valid = 0;
1268 }
1269 #ifdef HAVE_X_WINDOWS
1270 if (img->ximg)
1271 {
1272 x_destroy_x_image (img->ximg);
1273 img->ximg = NULL;
1274 img->background_valid = 0;
1275 }
1276 #endif
1277 }
1278
1279 if (flags & CLEAR_IMAGE_MASK)
1280 {
1281 if (img->mask)
1282 {
1283 Free_Pixmap (FRAME_X_DISPLAY (f), img->mask);
1284 img->mask = NO_PIXMAP;
1285 img->background_transparent_valid = 0;
1286 }
1287 #ifdef HAVE_X_WINDOWS
1288 if (img->mask_img)
1289 {
1290 x_destroy_x_image (img->mask_img);
1291 img->mask_img = NULL;
1292 img->background_transparent_valid = 0;
1293 }
1294 #endif
1295 }
1296
1297 if ((flags & CLEAR_IMAGE_COLORS) && img->ncolors)
1298 {
1299 /* W32_TODO: color table support. */
1300 #ifdef HAVE_X_WINDOWS
1301 x_free_colors (f, img->colors, img->ncolors);
1302 #endif /* HAVE_X_WINDOWS */
1303 xfree (img->colors);
1304 img->colors = NULL;
1305 img->ncolors = 0;
1306 }
1307
1308 }
1309
1310 /* Free X resources of image IMG which is used on frame F. */
1311
1312 static void
1313 x_clear_image (struct frame *f, struct image *img)
1314 {
1315 block_input ();
1316 x_clear_image_1 (f, img,
1317 CLEAR_IMAGE_PIXMAP | CLEAR_IMAGE_MASK | CLEAR_IMAGE_COLORS);
1318 unblock_input ();
1319 }
1320
1321
1322 /* Allocate color COLOR_NAME for image IMG on frame F. If color
1323 cannot be allocated, use DFLT. Add a newly allocated color to
1324 IMG->colors, so that it can be freed again. Value is the pixel
1325 color. */
1326
1327 static unsigned long
1328 x_alloc_image_color (struct frame *f, struct image *img, Lisp_Object color_name,
1329 unsigned long dflt)
1330 {
1331 XColor color;
1332 unsigned long result;
1333
1334 eassert (STRINGP (color_name));
1335
1336 if (x_defined_color (f, SSDATA (color_name), &color, 1)
1337 && img->ncolors < min (min (PTRDIFF_MAX, SIZE_MAX) / sizeof *img->colors,
1338 INT_MAX))
1339 {
1340 /* This isn't called frequently so we get away with simply
1341 reallocating the color vector to the needed size, here. */
1342 ptrdiff_t ncolors = img->ncolors + 1;
1343 img->colors = xrealloc (img->colors, ncolors * sizeof *img->colors);
1344 img->colors[ncolors - 1] = color.pixel;
1345 img->ncolors = ncolors;
1346 result = color.pixel;
1347 }
1348 else
1349 result = dflt;
1350
1351 return result;
1352 }
1353
1354
1355 \f
1356 /***********************************************************************
1357 Image Cache
1358 ***********************************************************************/
1359
1360 static void cache_image (struct frame *f, struct image *img);
1361
1362 /* Return a new, initialized image cache that is allocated from the
1363 heap. Call free_image_cache to free an image cache. */
1364
1365 struct image_cache *
1366 make_image_cache (void)
1367 {
1368 struct image_cache *c = xzalloc (sizeof *c);
1369 int size;
1370
1371 size = 50;
1372 c->images = xmalloc (size * sizeof *c->images);
1373 c->size = size;
1374 size = IMAGE_CACHE_BUCKETS_SIZE * sizeof *c->buckets;
1375 c->buckets = xzalloc (size);
1376 return c;
1377 }
1378
1379
1380 /* Find an image matching SPEC in the cache, and return it. If no
1381 image is found, return NULL. */
1382 static struct image *
1383 search_image_cache (struct frame *f, Lisp_Object spec, EMACS_UINT hash)
1384 {
1385 struct image *img;
1386 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1387 int i = hash % IMAGE_CACHE_BUCKETS_SIZE;
1388
1389 if (!c) return NULL;
1390
1391 /* If the image spec does not specify a background color, the cached
1392 image must have the same background color as the current frame.
1393 The foreground color must also match, for the sake of monochrome
1394 images.
1395
1396 In fact, we could ignore the foreground color matching condition
1397 for color images, or if the image spec specifies :foreground;
1398 similarly we could ignore the background color matching condition
1399 for formats that don't use transparency (such as jpeg), or if the
1400 image spec specifies :background. However, the extra memory
1401 usage is probably negligible in practice, so we don't bother. */
1402
1403 for (img = c->buckets[i]; img; img = img->next)
1404 if (img->hash == hash
1405 && !NILP (Fequal (img->spec, spec))
1406 && img->frame_foreground == FRAME_FOREGROUND_PIXEL (f)
1407 && img->frame_background == FRAME_BACKGROUND_PIXEL (f))
1408 break;
1409 return img;
1410 }
1411
1412
1413 /* Search frame F for an image with spec SPEC, and free it. */
1414
1415 static void
1416 uncache_image (struct frame *f, Lisp_Object spec)
1417 {
1418 struct image *img = search_image_cache (f, spec, sxhash (spec, 0));
1419 if (img)
1420 {
1421 free_image (f, img);
1422 /* As display glyphs may still be referring to the image ID, we
1423 must garbage the frame (Bug#6426). */
1424 SET_FRAME_GARBAGED (f);
1425 }
1426 }
1427
1428
1429 /* Free image cache of frame F. Be aware that X frames share images
1430 caches. */
1431
1432 void
1433 free_image_cache (struct frame *f)
1434 {
1435 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1436 if (c)
1437 {
1438 ptrdiff_t i;
1439
1440 /* Cache should not be referenced by any frame when freed. */
1441 eassert (c->refcount == 0);
1442
1443 for (i = 0; i < c->used; ++i)
1444 free_image (f, c->images[i]);
1445 xfree (c->images);
1446 xfree (c->buckets);
1447 xfree (c);
1448 FRAME_IMAGE_CACHE (f) = NULL;
1449 }
1450 }
1451
1452
1453 /* Clear image cache of frame F. FILTER=t means free all images.
1454 FILTER=nil means clear only images that haven't been
1455 displayed for some time.
1456 Else, only free the images which have FILTER in their `dependencies'.
1457 Should be called from time to time to reduce the number of loaded images.
1458 If image-cache-eviction-delay is non-nil, this frees images in the cache
1459 which weren't displayed for at least that many seconds. */
1460
1461 static void
1462 clear_image_cache (struct frame *f, Lisp_Object filter)
1463 {
1464 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1465
1466 if (c)
1467 {
1468 ptrdiff_t i, nfreed = 0;
1469
1470 /* Block input so that we won't be interrupted by a SIGIO
1471 while being in an inconsistent state. */
1472 block_input ();
1473
1474 if (!NILP (filter))
1475 {
1476 /* Filter image cache. */
1477 for (i = 0; i < c->used; ++i)
1478 {
1479 struct image *img = c->images[i];
1480 if (img && (EQ (Qt, filter)
1481 || !NILP (Fmember (filter, img->dependencies))))
1482 {
1483 free_image (f, img);
1484 ++nfreed;
1485 }
1486 }
1487 }
1488 else if (INTEGERP (Vimage_cache_eviction_delay))
1489 {
1490 /* Free cache based on timestamp. */
1491 EMACS_TIME old, t;
1492 double delay;
1493 ptrdiff_t nimages = 0;
1494
1495 for (i = 0; i < c->used; ++i)
1496 if (c->images[i])
1497 nimages++;
1498
1499 /* If the number of cached images has grown unusually large,
1500 decrease the cache eviction delay (Bug#6230). */
1501 delay = XINT (Vimage_cache_eviction_delay);
1502 if (nimages > 40)
1503 delay = 1600 * delay / nimages / nimages;
1504 delay = max (delay, 1);
1505
1506 t = current_emacs_time ();
1507 old = sub_emacs_time (t, EMACS_TIME_FROM_DOUBLE (delay));
1508
1509 for (i = 0; i < c->used; ++i)
1510 {
1511 struct image *img = c->images[i];
1512 if (img && EMACS_TIME_LT (img->timestamp, old))
1513 {
1514 free_image (f, img);
1515 ++nfreed;
1516 }
1517 }
1518 }
1519
1520 /* We may be clearing the image cache because, for example,
1521 Emacs was iconified for a longer period of time. In that
1522 case, current matrices may still contain references to
1523 images freed above. So, clear these matrices. */
1524 if (nfreed)
1525 {
1526 Lisp_Object tail, frame;
1527
1528 FOR_EACH_FRAME (tail, frame)
1529 {
1530 struct frame *fr = XFRAME (frame);
1531 if (FRAME_IMAGE_CACHE (fr) == c)
1532 clear_current_matrices (fr);
1533 }
1534
1535 ++windows_or_buffers_changed;
1536 }
1537
1538 unblock_input ();
1539 }
1540 }
1541
1542 void
1543 clear_image_caches (Lisp_Object filter)
1544 {
1545 /* FIXME: We want to do
1546 * struct terminal *t;
1547 * for (t = terminal_list; t; t = t->next_terminal)
1548 * clear_image_cache (t, filter); */
1549 Lisp_Object tail, frame;
1550 FOR_EACH_FRAME (tail, frame)
1551 if (FRAME_WINDOW_P (XFRAME (frame)))
1552 clear_image_cache (XFRAME (frame), filter);
1553 }
1554
1555 DEFUN ("clear-image-cache", Fclear_image_cache, Sclear_image_cache,
1556 0, 1, 0,
1557 doc: /* Clear the image cache.
1558 FILTER nil or a frame means clear all images in the selected frame.
1559 FILTER t means clear the image caches of all frames.
1560 Anything else, means only clear those images which refer to FILTER,
1561 which is then usually a filename. */)
1562 (Lisp_Object filter)
1563 {
1564 if (!(EQ (filter, Qnil) || FRAMEP (filter)))
1565 clear_image_caches (filter);
1566 else
1567 clear_image_cache (decode_window_system_frame (filter), Qt);
1568
1569 return Qnil;
1570 }
1571
1572
1573 DEFUN ("image-flush", Fimage_flush, Simage_flush,
1574 1, 2, 0,
1575 doc: /* Fush the image with specification SPEC on frame FRAME.
1576 This removes the image from the Emacs image cache. If SPEC specifies
1577 an image file, the next redisplay of this image will read from the
1578 current contents of that file.
1579
1580 FRAME nil or omitted means use the selected frame.
1581 FRAME t means refresh the image on all frames. */)
1582 (Lisp_Object spec, Lisp_Object frame)
1583 {
1584 if (!valid_image_p (spec))
1585 error ("Invalid image specification");
1586
1587 if (EQ (frame, Qt))
1588 {
1589 Lisp_Object tail;
1590 FOR_EACH_FRAME (tail, frame)
1591 {
1592 struct frame *f = XFRAME (frame);
1593 if (FRAME_WINDOW_P (f))
1594 uncache_image (f, spec);
1595 }
1596 }
1597 else
1598 uncache_image (decode_window_system_frame (frame), spec);
1599
1600 return Qnil;
1601 }
1602
1603
1604 /* Compute masks and transform image IMG on frame F, as specified
1605 by the image's specification, */
1606
1607 static void
1608 postprocess_image (struct frame *f, struct image *img)
1609 {
1610 /* Manipulation of the image's mask. */
1611 if (img->pixmap)
1612 {
1613 Lisp_Object conversion, spec;
1614 Lisp_Object mask;
1615
1616 spec = img->spec;
1617
1618 /* `:heuristic-mask t'
1619 `:mask heuristic'
1620 means build a mask heuristically.
1621 `:heuristic-mask (R G B)'
1622 `:mask (heuristic (R G B))'
1623 means build a mask from color (R G B) in the
1624 image.
1625 `:mask nil'
1626 means remove a mask, if any. */
1627
1628 mask = image_spec_value (spec, QCheuristic_mask, NULL);
1629 if (!NILP (mask))
1630 x_build_heuristic_mask (f, img, mask);
1631 else
1632 {
1633 bool found_p;
1634
1635 mask = image_spec_value (spec, QCmask, &found_p);
1636
1637 if (EQ (mask, Qheuristic))
1638 x_build_heuristic_mask (f, img, Qt);
1639 else if (CONSP (mask)
1640 && EQ (XCAR (mask), Qheuristic))
1641 {
1642 if (CONSP (XCDR (mask)))
1643 x_build_heuristic_mask (f, img, XCAR (XCDR (mask)));
1644 else
1645 x_build_heuristic_mask (f, img, XCDR (mask));
1646 }
1647 else if (NILP (mask) && found_p && img->mask)
1648 x_clear_image_1 (f, img, CLEAR_IMAGE_MASK);
1649 }
1650
1651
1652 /* Should we apply an image transformation algorithm? */
1653 conversion = image_spec_value (spec, QCconversion, NULL);
1654 if (EQ (conversion, Qdisabled))
1655 x_disable_image (f, img);
1656 else if (EQ (conversion, Qlaplace))
1657 x_laplace (f, img);
1658 else if (EQ (conversion, Qemboss))
1659 x_emboss (f, img);
1660 else if (CONSP (conversion)
1661 && EQ (XCAR (conversion), Qedge_detection))
1662 {
1663 Lisp_Object tem;
1664 tem = XCDR (conversion);
1665 if (CONSP (tem))
1666 x_edge_detection (f, img,
1667 Fplist_get (tem, QCmatrix),
1668 Fplist_get (tem, QCcolor_adjustment));
1669 }
1670 }
1671 }
1672
1673
1674 /* Return the id of image with Lisp specification SPEC on frame F.
1675 SPEC must be a valid Lisp image specification (see valid_image_p). */
1676
1677 ptrdiff_t
1678 lookup_image (struct frame *f, Lisp_Object spec)
1679 {
1680 struct image *img;
1681 EMACS_UINT hash;
1682
1683 /* F must be a window-system frame, and SPEC must be a valid image
1684 specification. */
1685 eassert (FRAME_WINDOW_P (f));
1686 eassert (valid_image_p (spec));
1687
1688 /* Look up SPEC in the hash table of the image cache. */
1689 hash = sxhash (spec, 0);
1690 img = search_image_cache (f, spec, hash);
1691 if (img && img->load_failed_p)
1692 {
1693 free_image (f, img);
1694 img = NULL;
1695 }
1696
1697 /* If not found, create a new image and cache it. */
1698 if (img == NULL)
1699 {
1700 block_input ();
1701 img = make_image (spec, hash);
1702 cache_image (f, img);
1703 img->load_failed_p = ! img->type->load (f, img);
1704 img->frame_foreground = FRAME_FOREGROUND_PIXEL (f);
1705 img->frame_background = FRAME_BACKGROUND_PIXEL (f);
1706
1707 /* If we can't load the image, and we don't have a width and
1708 height, use some arbitrary width and height so that we can
1709 draw a rectangle for it. */
1710 if (img->load_failed_p)
1711 {
1712 Lisp_Object value;
1713
1714 value = image_spec_value (spec, QCwidth, NULL);
1715 img->width = (INTEGERP (value)
1716 ? XFASTINT (value) : DEFAULT_IMAGE_WIDTH);
1717 value = image_spec_value (spec, QCheight, NULL);
1718 img->height = (INTEGERP (value)
1719 ? XFASTINT (value) : DEFAULT_IMAGE_HEIGHT);
1720 }
1721 else
1722 {
1723 /* Handle image type independent image attributes
1724 `:ascent ASCENT', `:margin MARGIN', `:relief RELIEF',
1725 `:background COLOR'. */
1726 Lisp_Object ascent, margin, relief, bg;
1727 int relief_bound;
1728
1729 ascent = image_spec_value (spec, QCascent, NULL);
1730 if (INTEGERP (ascent))
1731 img->ascent = XFASTINT (ascent);
1732 else if (EQ (ascent, Qcenter))
1733 img->ascent = CENTERED_IMAGE_ASCENT;
1734
1735 margin = image_spec_value (spec, QCmargin, NULL);
1736 if (INTEGERP (margin))
1737 img->vmargin = img->hmargin = XFASTINT (margin);
1738 else if (CONSP (margin))
1739 {
1740 img->hmargin = XFASTINT (XCAR (margin));
1741 img->vmargin = XFASTINT (XCDR (margin));
1742 }
1743
1744 relief = image_spec_value (spec, QCrelief, NULL);
1745 relief_bound = INT_MAX - max (img->hmargin, img->vmargin);
1746 if (RANGED_INTEGERP (- relief_bound, relief, relief_bound))
1747 {
1748 img->relief = XINT (relief);
1749 img->hmargin += eabs (img->relief);
1750 img->vmargin += eabs (img->relief);
1751 }
1752
1753 if (! img->background_valid)
1754 {
1755 bg = image_spec_value (img->spec, QCbackground, NULL);
1756 if (!NILP (bg))
1757 {
1758 img->background
1759 = x_alloc_image_color (f, img, bg,
1760 FRAME_BACKGROUND_PIXEL (f));
1761 img->background_valid = 1;
1762 }
1763 }
1764
1765 /* Do image transformations and compute masks, unless we
1766 don't have the image yet. */
1767 if (!EQ (*img->type->type, Qpostscript))
1768 postprocess_image (f, img);
1769 }
1770
1771 unblock_input ();
1772 }
1773
1774 /* We're using IMG, so set its timestamp to `now'. */
1775 img->timestamp = current_emacs_time ();
1776
1777 /* Value is the image id. */
1778 return img->id;
1779 }
1780
1781
1782 /* Cache image IMG in the image cache of frame F. */
1783
1784 static void
1785 cache_image (struct frame *f, struct image *img)
1786 {
1787 struct image_cache *c = FRAME_IMAGE_CACHE (f);
1788 ptrdiff_t i;
1789
1790 /* Find a free slot in c->images. */
1791 for (i = 0; i < c->used; ++i)
1792 if (c->images[i] == NULL)
1793 break;
1794
1795 /* If no free slot found, maybe enlarge c->images. */
1796 if (i == c->used && c->used == c->size)
1797 c->images = xpalloc (c->images, &c->size, 1, -1, sizeof *c->images);
1798
1799 /* Add IMG to c->images, and assign IMG an id. */
1800 c->images[i] = img;
1801 img->id = i;
1802 if (i == c->used)
1803 ++c->used;
1804
1805 /* Add IMG to the cache's hash table. */
1806 i = img->hash % IMAGE_CACHE_BUCKETS_SIZE;
1807 img->next = c->buckets[i];
1808 if (img->next)
1809 img->next->prev = img;
1810 img->prev = NULL;
1811 c->buckets[i] = img;
1812 }
1813
1814
1815 /* Call FN on every image in the image cache of frame F. Used to mark
1816 Lisp Objects in the image cache. */
1817
1818 /* Mark Lisp objects in image IMG. */
1819
1820 static void
1821 mark_image (struct image *img)
1822 {
1823 mark_object (img->spec);
1824 mark_object (img->dependencies);
1825
1826 if (!NILP (img->lisp_data))
1827 mark_object (img->lisp_data);
1828 }
1829
1830
1831 void
1832 mark_image_cache (struct image_cache *c)
1833 {
1834 if (c)
1835 {
1836 ptrdiff_t i;
1837 for (i = 0; i < c->used; ++i)
1838 if (c->images[i])
1839 mark_image (c->images[i]);
1840 }
1841 }
1842
1843
1844 \f
1845 /***********************************************************************
1846 X / NS / W32 support code
1847 ***********************************************************************/
1848
1849 #ifdef WINDOWSNT
1850
1851 /* Macro for defining functions that will be loaded from image DLLs. */
1852 #define DEF_IMGLIB_FN(rettype,func,args) static rettype (FAR CDECL *fn_##func)args
1853
1854 /* Macro for loading those image functions from the library. */
1855 #define LOAD_IMGLIB_FN(lib,func) { \
1856 fn_##func = (void *) GetProcAddress (lib, #func); \
1857 if (!fn_##func) return 0; \
1858 }
1859
1860 #endif /* WINDOWSNT */
1861
1862 /* Return true if XIMG's size WIDTH x HEIGHT doesn't break the
1863 windowing system.
1864 WIDTH and HEIGHT must both be positive.
1865 If XIMG is null, assume it is a bitmap. */
1866 static bool
1867 x_check_image_size (XImagePtr ximg, int width, int height)
1868 {
1869 #ifdef HAVE_X_WINDOWS
1870 /* Respect Xlib's limits: it cannot deal with images that have more
1871 than INT_MAX (and/or UINT_MAX) bytes. And respect Emacs's limits
1872 of PTRDIFF_MAX (and/or SIZE_MAX) bytes for any object. */
1873 enum
1874 {
1875 XLIB_BYTES_MAX = min (INT_MAX, UINT_MAX),
1876 X_IMAGE_BYTES_MAX = min (XLIB_BYTES_MAX, min (PTRDIFF_MAX, SIZE_MAX))
1877 };
1878
1879 int bitmap_pad, depth, bytes_per_line;
1880 if (ximg)
1881 {
1882 bitmap_pad = ximg->bitmap_pad;
1883 depth = ximg->depth;
1884 bytes_per_line = ximg->bytes_per_line;
1885 }
1886 else
1887 {
1888 bitmap_pad = 8;
1889 depth = 1;
1890 bytes_per_line = (width >> 3) + ((width & 7) != 0);
1891 }
1892 return (width <= (INT_MAX - (bitmap_pad - 1)) / depth
1893 && height <= X_IMAGE_BYTES_MAX / bytes_per_line);
1894 #else
1895 /* FIXME: Implement this check for the HAVE_NS and HAVE_NTGUI cases.
1896 For now, assume that every image size is allowed on these systems. */
1897 return 1;
1898 #endif
1899 }
1900
1901 /* Create an XImage and a pixmap of size WIDTH x HEIGHT for use on
1902 frame F. Set *XIMG and *PIXMAP to the XImage and Pixmap created.
1903 Set (*XIMG)->data to a raster of WIDTH x HEIGHT pixels allocated
1904 via xmalloc. Print error messages via image_error if an error
1905 occurs. Value is true if successful.
1906
1907 On W32, a DEPTH of zero signifies a 24 bit image, otherwise DEPTH
1908 should indicate the bit depth of the image. */
1909
1910 static bool
1911 x_create_x_image_and_pixmap (struct frame *f, int width, int height, int depth,
1912 XImagePtr *ximg, Pixmap *pixmap)
1913 {
1914 #ifdef HAVE_X_WINDOWS
1915 Display *display = FRAME_X_DISPLAY (f);
1916 Window window = FRAME_X_WINDOW (f);
1917 Screen *screen = FRAME_X_SCREEN (f);
1918
1919 eassert (input_blocked_p ());
1920
1921 if (depth <= 0)
1922 depth = DefaultDepthOfScreen (screen);
1923 *ximg = XCreateImage (display, DefaultVisualOfScreen (screen),
1924 depth, ZPixmap, 0, NULL, width, height,
1925 depth > 16 ? 32 : depth > 8 ? 16 : 8, 0);
1926 if (*ximg == NULL)
1927 {
1928 image_error ("Unable to allocate X image", Qnil, Qnil);
1929 return 0;
1930 }
1931
1932 if (! x_check_image_size (*ximg, width, height))
1933 {
1934 x_destroy_x_image (*ximg);
1935 *ximg = NULL;
1936 image_error ("Image too large (%dx%d)",
1937 make_number (width), make_number (height));
1938 return 0;
1939 }
1940
1941 /* Allocate image raster. */
1942 (*ximg)->data = xmalloc ((*ximg)->bytes_per_line * height);
1943
1944 /* Allocate a pixmap of the same size. */
1945 *pixmap = XCreatePixmap (display, window, width, height, depth);
1946 if (*pixmap == NO_PIXMAP)
1947 {
1948 x_destroy_x_image (*ximg);
1949 *ximg = NULL;
1950 image_error ("Unable to create X pixmap", Qnil, Qnil);
1951 return 0;
1952 }
1953
1954 return 1;
1955 #endif /* HAVE_X_WINDOWS */
1956
1957 #ifdef HAVE_NTGUI
1958
1959 BITMAPINFOHEADER *header;
1960 HDC hdc;
1961 int scanline_width_bits;
1962 int remainder;
1963 int palette_colors = 0;
1964
1965 if (depth == 0)
1966 depth = 24;
1967
1968 if (depth != 1 && depth != 4 && depth != 8
1969 && depth != 16 && depth != 24 && depth != 32)
1970 {
1971 image_error ("Invalid image bit depth specified", Qnil, Qnil);
1972 return 0;
1973 }
1974
1975 scanline_width_bits = width * depth;
1976 remainder = scanline_width_bits % 32;
1977
1978 if (remainder)
1979 scanline_width_bits += 32 - remainder;
1980
1981 /* Bitmaps with a depth less than 16 need a palette. */
1982 /* BITMAPINFO structure already contains the first RGBQUAD. */
1983 if (depth < 16)
1984 palette_colors = 1 << (depth - 1);
1985
1986 *ximg = xmalloc (sizeof (XImage) + palette_colors * sizeof (RGBQUAD));
1987
1988 header = &(*ximg)->info.bmiHeader;
1989 memset (&(*ximg)->info, 0, sizeof (BITMAPINFO));
1990 header->biSize = sizeof (*header);
1991 header->biWidth = width;
1992 header->biHeight = -height; /* negative indicates a top-down bitmap. */
1993 header->biPlanes = 1;
1994 header->biBitCount = depth;
1995 header->biCompression = BI_RGB;
1996 header->biClrUsed = palette_colors;
1997
1998 /* TODO: fill in palette. */
1999 if (depth == 1)
2000 {
2001 (*ximg)->info.bmiColors[0].rgbBlue = 0;
2002 (*ximg)->info.bmiColors[0].rgbGreen = 0;
2003 (*ximg)->info.bmiColors[0].rgbRed = 0;
2004 (*ximg)->info.bmiColors[0].rgbReserved = 0;
2005 (*ximg)->info.bmiColors[1].rgbBlue = 255;
2006 (*ximg)->info.bmiColors[1].rgbGreen = 255;
2007 (*ximg)->info.bmiColors[1].rgbRed = 255;
2008 (*ximg)->info.bmiColors[1].rgbReserved = 0;
2009 }
2010
2011 hdc = get_frame_dc (f);
2012
2013 /* Create a DIBSection and raster array for the bitmap,
2014 and store its handle in *pixmap. */
2015 *pixmap = CreateDIBSection (hdc, &((*ximg)->info),
2016 (depth < 16) ? DIB_PAL_COLORS : DIB_RGB_COLORS,
2017 /* casting avoids a GCC warning */
2018 (void **)&((*ximg)->data), NULL, 0);
2019
2020 /* Realize display palette and garbage all frames. */
2021 release_frame_dc (f, hdc);
2022
2023 if (*pixmap == NULL)
2024 {
2025 DWORD err = GetLastError ();
2026 Lisp_Object errcode;
2027 /* All system errors are < 10000, so the following is safe. */
2028 XSETINT (errcode, err);
2029 image_error ("Unable to create bitmap, error code %d", errcode, Qnil);
2030 x_destroy_x_image (*ximg);
2031 return 0;
2032 }
2033
2034 return 1;
2035
2036 #endif /* HAVE_NTGUI */
2037
2038 #ifdef HAVE_NS
2039 *pixmap = ns_image_for_XPM (width, height, depth);
2040 if (*pixmap == 0)
2041 {
2042 *ximg = NULL;
2043 image_error ("Unable to allocate NSImage for XPM pixmap", Qnil, Qnil);
2044 return 0;
2045 }
2046 *ximg = *pixmap;
2047 return 1;
2048 #endif
2049 }
2050
2051
2052 /* Destroy XImage XIMG. Free XIMG->data. */
2053
2054 static void
2055 x_destroy_x_image (XImagePtr ximg)
2056 {
2057 eassert (input_blocked_p ());
2058 if (ximg)
2059 {
2060 #ifdef HAVE_X_WINDOWS
2061 xfree (ximg->data);
2062 ximg->data = NULL;
2063 XDestroyImage (ximg);
2064 #endif /* HAVE_X_WINDOWS */
2065 #ifdef HAVE_NTGUI
2066 /* Data will be freed by DestroyObject. */
2067 ximg->data = NULL;
2068 xfree (ximg);
2069 #endif /* HAVE_NTGUI */
2070 #ifdef HAVE_NS
2071 ns_release_object (ximg);
2072 #endif /* HAVE_NS */
2073 }
2074 }
2075
2076
2077 /* Put XImage XIMG into pixmap PIXMAP on frame F. WIDTH and HEIGHT
2078 are width and height of both the image and pixmap. */
2079
2080 static void
2081 x_put_x_image (struct frame *f, XImagePtr ximg, Pixmap pixmap, int width, int height)
2082 {
2083 #ifdef HAVE_X_WINDOWS
2084 GC gc;
2085
2086 eassert (input_blocked_p ());
2087 gc = XCreateGC (FRAME_X_DISPLAY (f), pixmap, 0, NULL);
2088 XPutImage (FRAME_X_DISPLAY (f), pixmap, gc, ximg, 0, 0, 0, 0, width, height);
2089 XFreeGC (FRAME_X_DISPLAY (f), gc);
2090 #endif /* HAVE_X_WINDOWS */
2091
2092 #ifdef HAVE_NTGUI
2093 #if 0 /* I don't think this is necessary looking at where it is used. */
2094 HDC hdc = get_frame_dc (f);
2095 SetDIBits (hdc, pixmap, 0, height, ximg->data, &(ximg->info), DIB_RGB_COLORS);
2096 release_frame_dc (f, hdc);
2097 #endif
2098 #endif /* HAVE_NTGUI */
2099
2100 #ifdef HAVE_NS
2101 eassert (ximg == pixmap);
2102 ns_retain_object (ximg);
2103 #endif
2104 }
2105
2106 /* Thin wrapper for x_create_x_image_and_pixmap, so that it matches
2107 with image_put_x_image. */
2108
2109 static bool
2110 image_create_x_image_and_pixmap (struct frame *f, struct image *img,
2111 int width, int height, int depth,
2112 XImagePtr *ximg, bool mask_p)
2113 {
2114 eassert ((!mask_p ? img->pixmap : img->mask) == NO_PIXMAP);
2115
2116 return x_create_x_image_and_pixmap (f, width, height, depth, ximg,
2117 !mask_p ? &img->pixmap : &img->mask);
2118 }
2119
2120 /* Put X image XIMG into image IMG on frame F, as a mask if and only
2121 if MASK_P. On X, this simply records XIMG on a member of IMG, so
2122 it can be put into the pixmap afterwards via image_sync_to_pixmaps.
2123 On the other platforms, it puts XIMG into the pixmap, then frees
2124 the X image and its buffer. */
2125
2126 static void
2127 image_put_x_image (struct frame *f, struct image *img, XImagePtr ximg,
2128 bool mask_p)
2129 {
2130 #ifdef HAVE_X_WINDOWS
2131 if (!mask_p)
2132 {
2133 eassert (img->ximg == NULL);
2134 img->ximg = ximg;
2135 }
2136 else
2137 {
2138 eassert (img->mask_img == NULL);
2139 img->mask_img = ximg;
2140 }
2141 #else
2142 x_put_x_image (f, ximg, !mask_p ? img->pixmap : img->mask,
2143 img->width, img->height);
2144 x_destroy_x_image (ximg);
2145 #endif
2146 }
2147
2148 #ifdef HAVE_X_WINDOWS
2149 /* Put the X images recorded in IMG on frame F into pixmaps, then free
2150 the X images and their buffers. */
2151
2152 static void
2153 image_sync_to_pixmaps (struct frame *f, struct image *img)
2154 {
2155 if (img->ximg)
2156 {
2157 x_put_x_image (f, img->ximg, img->pixmap, img->width, img->height);
2158 x_destroy_x_image (img->ximg);
2159 img->ximg = NULL;
2160 }
2161 if (img->mask_img)
2162 {
2163 x_put_x_image (f, img->mask_img, img->mask, img->width, img->height);
2164 x_destroy_x_image (img->mask_img);
2165 img->mask_img = NULL;
2166 }
2167 }
2168 #endif
2169
2170 #ifdef HAVE_NTGUI
2171 /* Create a memory device context for IMG on frame F. It stores the
2172 currently selected GDI object into *PREV for future restoration by
2173 image_unget_x_image_or_dc. */
2174
2175 static XImagePtr_or_DC
2176 image_get_x_image_or_dc (struct frame *f, struct image *img, bool mask_p,
2177 HGDIOBJ *prev)
2178 {
2179 HDC frame_dc = get_frame_dc (f);
2180 XImagePtr_or_DC ximg = CreateCompatibleDC (frame_dc);
2181
2182 release_frame_dc (f, frame_dc);
2183 *prev = SelectObject (ximg, !mask_p ? img->pixmap : img->mask);
2184
2185 return ximg;
2186 }
2187
2188 static void
2189 image_unget_x_image_or_dc (struct image *img, bool mask_p,
2190 XImagePtr_or_DC ximg, HGDIOBJ prev)
2191 {
2192 SelectObject (ximg, prev);
2193 DeleteDC (ximg);
2194 }
2195 #else /* !HAVE_NTGUI */
2196 /* Get the X image for IMG on frame F. The resulting X image data
2197 should be treated as read-only at least on X. */
2198
2199 static XImagePtr
2200 image_get_x_image (struct frame *f, struct image *img, bool mask_p)
2201 {
2202 #ifdef HAVE_X_WINDOWS
2203 XImagePtr ximg_in_img = !mask_p ? img->ximg : img->mask_img;
2204
2205 if (ximg_in_img)
2206 return ximg_in_img;
2207 else
2208 return XGetImage (FRAME_X_DISPLAY (f), !mask_p ? img->pixmap : img->mask,
2209 0, 0, img->width, img->height, ~0, ZPixmap);
2210 #elif defined (HAVE_NS)
2211 XImagePtr pixmap = !mask_p ? img->pixmap : img->mask;
2212
2213 ns_retain_object (pixmap);
2214 return pixmap;
2215 #endif
2216 }
2217
2218 static void
2219 image_unget_x_image (struct image *img, bool mask_p, XImagePtr ximg)
2220 {
2221 #ifdef HAVE_X_WINDOWS
2222 XImagePtr ximg_in_img = !mask_p ? img->ximg : img->mask_img;
2223
2224 if (ximg_in_img)
2225 eassert (ximg == ximg_in_img);
2226 else
2227 XDestroyImage (ximg);
2228 #elif defined (HAVE_NS)
2229 ns_release_object (ximg);
2230 #endif
2231 }
2232 #endif /* !HAVE_NTGUI */
2233
2234 \f
2235 /***********************************************************************
2236 File Handling
2237 ***********************************************************************/
2238
2239 /* Find image file FILE. Look in data-directory/images, then
2240 x-bitmap-file-path. Value is the encoded full name of the file
2241 found, or nil if not found. */
2242
2243 Lisp_Object
2244 x_find_image_file (Lisp_Object file)
2245 {
2246 Lisp_Object file_found, search_path;
2247 int fd;
2248
2249 /* TODO I think this should use something like image-load-path
2250 instead. Unfortunately, that can contain non-string elements. */
2251 search_path = Fcons (Fexpand_file_name (build_string ("images"),
2252 Vdata_directory),
2253 Vx_bitmap_file_path);
2254
2255 /* Try to find FILE in data-directory/images, then x-bitmap-file-path. */
2256 fd = openp (search_path, file, Qnil, &file_found, Qnil);
2257
2258 if (fd == -1)
2259 file_found = Qnil;
2260 else
2261 {
2262 file_found = ENCODE_FILE (file_found);
2263 close (fd);
2264 }
2265
2266 return file_found;
2267 }
2268
2269
2270 /* Read FILE into memory. Value is a pointer to a buffer allocated
2271 with xmalloc holding FILE's contents. Value is null if an error
2272 occurred. *SIZE is set to the size of the file. */
2273
2274 static unsigned char *
2275 slurp_file (char *file, ptrdiff_t *size)
2276 {
2277 FILE *fp = fopen (file, "rb");
2278 unsigned char *buf = NULL;
2279 struct stat st;
2280
2281 if (fp && fstat (fileno (fp), &st) == 0
2282 && 0 <= st.st_size && st.st_size <= min (PTRDIFF_MAX, SIZE_MAX)
2283 && (buf = xmalloc (st.st_size),
2284 fread (buf, 1, st.st_size, fp) == st.st_size))
2285 {
2286 *size = st.st_size;
2287 fclose (fp);
2288 }
2289 else
2290 {
2291 if (fp)
2292 fclose (fp);
2293 if (buf)
2294 {
2295 xfree (buf);
2296 buf = NULL;
2297 }
2298 }
2299
2300 return buf;
2301 }
2302
2303
2304 \f
2305 /***********************************************************************
2306 XBM images
2307 ***********************************************************************/
2308
2309 static bool xbm_load (struct frame *f, struct image *img);
2310 static bool xbm_image_p (Lisp_Object object);
2311 static bool xbm_file_p (Lisp_Object);
2312
2313
2314 /* Indices of image specification fields in xbm_format, below. */
2315
2316 enum xbm_keyword_index
2317 {
2318 XBM_TYPE,
2319 XBM_FILE,
2320 XBM_WIDTH,
2321 XBM_HEIGHT,
2322 XBM_DATA,
2323 XBM_FOREGROUND,
2324 XBM_BACKGROUND,
2325 XBM_ASCENT,
2326 XBM_MARGIN,
2327 XBM_RELIEF,
2328 XBM_ALGORITHM,
2329 XBM_HEURISTIC_MASK,
2330 XBM_MASK,
2331 XBM_LAST
2332 };
2333
2334 /* Vector of image_keyword structures describing the format
2335 of valid XBM image specifications. */
2336
2337 static const struct image_keyword xbm_format[XBM_LAST] =
2338 {
2339 {":type", IMAGE_SYMBOL_VALUE, 1},
2340 {":file", IMAGE_STRING_VALUE, 0},
2341 {":width", IMAGE_POSITIVE_INTEGER_VALUE, 0},
2342 {":height", IMAGE_POSITIVE_INTEGER_VALUE, 0},
2343 {":data", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2344 {":foreground", IMAGE_STRING_OR_NIL_VALUE, 0},
2345 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
2346 {":ascent", IMAGE_ASCENT_VALUE, 0},
2347 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
2348 {":relief", IMAGE_INTEGER_VALUE, 0},
2349 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2350 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
2351 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0}
2352 };
2353
2354 /* Structure describing the image type XBM. */
2355
2356 static struct image_type xbm_type =
2357 {
2358 &Qxbm,
2359 xbm_image_p,
2360 xbm_load,
2361 x_clear_image,
2362 NULL,
2363 NULL
2364 };
2365
2366 /* Tokens returned from xbm_scan. */
2367
2368 enum xbm_token
2369 {
2370 XBM_TK_IDENT = 256,
2371 XBM_TK_NUMBER
2372 };
2373
2374
2375 /* Return true if OBJECT is a valid XBM-type image specification.
2376 A valid specification is a list starting with the symbol `image'
2377 The rest of the list is a property list which must contain an
2378 entry `:type xbm'.
2379
2380 If the specification specifies a file to load, it must contain
2381 an entry `:file FILENAME' where FILENAME is a string.
2382
2383 If the specification is for a bitmap loaded from memory it must
2384 contain `:width WIDTH', `:height HEIGHT', and `:data DATA', where
2385 WIDTH and HEIGHT are integers > 0. DATA may be:
2386
2387 1. a string large enough to hold the bitmap data, i.e. it must
2388 have a size >= (WIDTH + 7) / 8 * HEIGHT
2389
2390 2. a bool-vector of size >= WIDTH * HEIGHT
2391
2392 3. a vector of strings or bool-vectors, one for each line of the
2393 bitmap.
2394
2395 4. a string containing an in-memory XBM file. WIDTH and HEIGHT
2396 may not be specified in this case because they are defined in the
2397 XBM file.
2398
2399 Both the file and data forms may contain the additional entries
2400 `:background COLOR' and `:foreground COLOR'. If not present,
2401 foreground and background of the frame on which the image is
2402 displayed is used. */
2403
2404 static bool
2405 xbm_image_p (Lisp_Object object)
2406 {
2407 struct image_keyword kw[XBM_LAST];
2408
2409 memcpy (kw, xbm_format, sizeof kw);
2410 if (!parse_image_spec (object, kw, XBM_LAST, Qxbm))
2411 return 0;
2412
2413 eassert (EQ (kw[XBM_TYPE].value, Qxbm));
2414
2415 if (kw[XBM_FILE].count)
2416 {
2417 if (kw[XBM_WIDTH].count || kw[XBM_HEIGHT].count || kw[XBM_DATA].count)
2418 return 0;
2419 }
2420 else if (kw[XBM_DATA].count && xbm_file_p (kw[XBM_DATA].value))
2421 {
2422 /* In-memory XBM file. */
2423 if (kw[XBM_WIDTH].count || kw[XBM_HEIGHT].count || kw[XBM_FILE].count)
2424 return 0;
2425 }
2426 else
2427 {
2428 Lisp_Object data;
2429 int width, height;
2430
2431 /* Entries for `:width', `:height' and `:data' must be present. */
2432 if (!kw[XBM_WIDTH].count
2433 || !kw[XBM_HEIGHT].count
2434 || !kw[XBM_DATA].count)
2435 return 0;
2436
2437 data = kw[XBM_DATA].value;
2438 width = XFASTINT (kw[XBM_WIDTH].value);
2439 height = XFASTINT (kw[XBM_HEIGHT].value);
2440
2441 /* Check type of data, and width and height against contents of
2442 data. */
2443 if (VECTORP (data))
2444 {
2445 EMACS_INT i;
2446
2447 /* Number of elements of the vector must be >= height. */
2448 if (ASIZE (data) < height)
2449 return 0;
2450
2451 /* Each string or bool-vector in data must be large enough
2452 for one line of the image. */
2453 for (i = 0; i < height; ++i)
2454 {
2455 Lisp_Object elt = AREF (data, i);
2456
2457 if (STRINGP (elt))
2458 {
2459 if (SCHARS (elt)
2460 < (width + BITS_PER_CHAR - 1) / BITS_PER_CHAR)
2461 return 0;
2462 }
2463 else if (BOOL_VECTOR_P (elt))
2464 {
2465 if (XBOOL_VECTOR (elt)->size < width)
2466 return 0;
2467 }
2468 else
2469 return 0;
2470 }
2471 }
2472 else if (STRINGP (data))
2473 {
2474 if (SCHARS (data)
2475 < (width + BITS_PER_CHAR - 1) / BITS_PER_CHAR * height)
2476 return 0;
2477 }
2478 else if (BOOL_VECTOR_P (data))
2479 {
2480 if (XBOOL_VECTOR (data)->size / height < width)
2481 return 0;
2482 }
2483 else
2484 return 0;
2485 }
2486
2487 return 1;
2488 }
2489
2490
2491 /* Scan a bitmap file. FP is the stream to read from. Value is
2492 either an enumerator from enum xbm_token, or a character for a
2493 single-character token, or 0 at end of file. If scanning an
2494 identifier, store the lexeme of the identifier in SVAL. If
2495 scanning a number, store its value in *IVAL. */
2496
2497 static int
2498 xbm_scan (unsigned char **s, unsigned char *end, char *sval, int *ival)
2499 {
2500 unsigned int c;
2501
2502 loop:
2503
2504 /* Skip white space. */
2505 while (*s < end && (c = *(*s)++, c_isspace (c)))
2506 ;
2507
2508 if (*s >= end)
2509 c = 0;
2510 else if (c_isdigit (c))
2511 {
2512 int value = 0, digit;
2513
2514 if (c == '0' && *s < end)
2515 {
2516 c = *(*s)++;
2517 if (c == 'x' || c == 'X')
2518 {
2519 while (*s < end)
2520 {
2521 c = *(*s)++;
2522 if (c_isdigit (c))
2523 digit = c - '0';
2524 else if (c >= 'a' && c <= 'f')
2525 digit = c - 'a' + 10;
2526 else if (c >= 'A' && c <= 'F')
2527 digit = c - 'A' + 10;
2528 else
2529 break;
2530 value = 16 * value + digit;
2531 }
2532 }
2533 else if (c_isdigit (c))
2534 {
2535 value = c - '0';
2536 while (*s < end
2537 && (c = *(*s)++, c_isdigit (c)))
2538 value = 8 * value + c - '0';
2539 }
2540 }
2541 else
2542 {
2543 value = c - '0';
2544 while (*s < end
2545 && (c = *(*s)++, c_isdigit (c)))
2546 value = 10 * value + c - '0';
2547 }
2548
2549 if (*s < end)
2550 *s = *s - 1;
2551 *ival = value;
2552 c = XBM_TK_NUMBER;
2553 }
2554 else if (c_isalpha (c) || c == '_')
2555 {
2556 *sval++ = c;
2557 while (*s < end
2558 && (c = *(*s)++, (c_isalnum (c) || c == '_')))
2559 *sval++ = c;
2560 *sval = 0;
2561 if (*s < end)
2562 *s = *s - 1;
2563 c = XBM_TK_IDENT;
2564 }
2565 else if (c == '/' && **s == '*')
2566 {
2567 /* C-style comment. */
2568 ++*s;
2569 while (**s && (**s != '*' || *(*s + 1) != '/'))
2570 ++*s;
2571 if (**s)
2572 {
2573 *s += 2;
2574 goto loop;
2575 }
2576 }
2577
2578 return c;
2579 }
2580
2581 #ifdef HAVE_NTGUI
2582
2583 /* Create a Windows bitmap from X bitmap data. */
2584 static HBITMAP
2585 w32_create_pixmap_from_bitmap_data (int width, int height, char *data)
2586 {
2587 static unsigned char swap_nibble[16]
2588 = { 0x0, 0x8, 0x4, 0xc, /* 0000 1000 0100 1100 */
2589 0x2, 0xa, 0x6, 0xe, /* 0010 1010 0110 1110 */
2590 0x1, 0x9, 0x5, 0xd, /* 0001 1001 0101 1101 */
2591 0x3, 0xb, 0x7, 0xf }; /* 0011 1011 0111 1111 */
2592 int i, j, w1, w2;
2593 unsigned char *bits, *p;
2594 HBITMAP bmp;
2595
2596 w1 = (width + 7) / 8; /* nb of 8bits elt in X bitmap */
2597 w2 = ((width + 15) / 16) * 2; /* nb of 16bits elt in W32 bitmap */
2598 bits = alloca (height * w2);
2599 memset (bits, 0, height * w2);
2600 for (i = 0; i < height; i++)
2601 {
2602 p = bits + i*w2;
2603 for (j = 0; j < w1; j++)
2604 {
2605 /* Bitswap XBM bytes to match how Windows does things. */
2606 unsigned char c = *data++;
2607 *p++ = (unsigned char)((swap_nibble[c & 0xf] << 4)
2608 | (swap_nibble[(c>>4) & 0xf]));
2609 }
2610 }
2611 bmp = CreateBitmap (width, height, 1, 1, (char *) bits);
2612
2613 return bmp;
2614 }
2615
2616 static void
2617 convert_mono_to_color_image (struct frame *f, struct image *img,
2618 COLORREF foreground, COLORREF background)
2619 {
2620 HDC hdc, old_img_dc, new_img_dc;
2621 HGDIOBJ old_prev, new_prev;
2622 HBITMAP new_pixmap;
2623
2624 hdc = get_frame_dc (f);
2625 old_img_dc = CreateCompatibleDC (hdc);
2626 new_img_dc = CreateCompatibleDC (hdc);
2627 new_pixmap = CreateCompatibleBitmap (hdc, img->width, img->height);
2628 release_frame_dc (f, hdc);
2629 old_prev = SelectObject (old_img_dc, img->pixmap);
2630 new_prev = SelectObject (new_img_dc, new_pixmap);
2631 /* Windows convention for mono bitmaps is black = background,
2632 white = foreground. */
2633 SetTextColor (new_img_dc, background);
2634 SetBkColor (new_img_dc, foreground);
2635
2636 BitBlt (new_img_dc, 0, 0, img->width, img->height, old_img_dc,
2637 0, 0, SRCCOPY);
2638
2639 SelectObject (old_img_dc, old_prev);
2640 SelectObject (new_img_dc, new_prev);
2641 DeleteDC (old_img_dc);
2642 DeleteDC (new_img_dc);
2643 DeleteObject (img->pixmap);
2644 if (new_pixmap == 0)
2645 fprintf (stderr, "Failed to convert image to color.\n");
2646 else
2647 img->pixmap = new_pixmap;
2648 }
2649
2650 #define XBM_BIT_SHUFFLE(b) (~(b))
2651
2652 #else
2653
2654 #define XBM_BIT_SHUFFLE(b) (b)
2655
2656 #endif /* HAVE_NTGUI */
2657
2658
2659 static void
2660 Create_Pixmap_From_Bitmap_Data (struct frame *f, struct image *img, char *data,
2661 RGB_PIXEL_COLOR fg, RGB_PIXEL_COLOR bg,
2662 bool non_default_colors)
2663 {
2664 #ifdef HAVE_NTGUI
2665 img->pixmap
2666 = w32_create_pixmap_from_bitmap_data (img->width, img->height, data);
2667
2668 /* If colors were specified, transfer the bitmap to a color one. */
2669 if (non_default_colors)
2670 convert_mono_to_color_image (f, img, fg, bg);
2671
2672 #elif defined (HAVE_NS)
2673 img->pixmap = ns_image_from_XBM (data, img->width, img->height);
2674
2675 #else
2676 img->pixmap =
2677 (x_check_image_size (0, img->width, img->height)
2678 ? XCreatePixmapFromBitmapData (FRAME_X_DISPLAY (f),
2679 FRAME_X_WINDOW (f),
2680 data,
2681 img->width, img->height,
2682 fg, bg,
2683 DefaultDepthOfScreen (FRAME_X_SCREEN (f)))
2684 : NO_PIXMAP);
2685 #endif /* !HAVE_NTGUI && !HAVE_NS */
2686 }
2687
2688
2689
2690 /* Replacement for XReadBitmapFileData which isn't available under old
2691 X versions. CONTENTS is a pointer to a buffer to parse; END is the
2692 buffer's end. Set *WIDTH and *HEIGHT to the width and height of
2693 the image. Return in *DATA the bitmap data allocated with xmalloc.
2694 Value is true if successful. DATA null means just test if
2695 CONTENTS looks like an in-memory XBM file. If INHIBIT_IMAGE_ERROR,
2696 inhibit the call to image_error when the image size is invalid (the
2697 bitmap remains unread). */
2698
2699 static bool
2700 xbm_read_bitmap_data (struct frame *f, unsigned char *contents, unsigned char *end,
2701 int *width, int *height, char **data,
2702 bool inhibit_image_error)
2703 {
2704 unsigned char *s = contents;
2705 char buffer[BUFSIZ];
2706 bool padding_p = 0;
2707 bool v10 = 0;
2708 int bytes_per_line, i, nbytes;
2709 char *p;
2710 int value;
2711 int LA1;
2712
2713 #define match() \
2714 LA1 = xbm_scan (&s, end, buffer, &value)
2715
2716 #define expect(TOKEN) \
2717 if (LA1 != (TOKEN)) \
2718 goto failure; \
2719 else \
2720 match ()
2721
2722 #define expect_ident(IDENT) \
2723 if (LA1 == XBM_TK_IDENT && strcmp (buffer, (IDENT)) == 0) \
2724 match (); \
2725 else \
2726 goto failure
2727
2728 *width = *height = -1;
2729 if (data)
2730 *data = NULL;
2731 LA1 = xbm_scan (&s, end, buffer, &value);
2732
2733 /* Parse defines for width, height and hot-spots. */
2734 while (LA1 == '#')
2735 {
2736 match ();
2737 expect_ident ("define");
2738 expect (XBM_TK_IDENT);
2739
2740 if (LA1 == XBM_TK_NUMBER)
2741 {
2742 char *q = strrchr (buffer, '_');
2743 q = q ? q + 1 : buffer;
2744 if (strcmp (q, "width") == 0)
2745 *width = value;
2746 else if (strcmp (q, "height") == 0)
2747 *height = value;
2748 }
2749 expect (XBM_TK_NUMBER);
2750 }
2751
2752 if (!check_image_size (f, *width, *height))
2753 {
2754 if (!inhibit_image_error)
2755 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
2756 goto failure;
2757 }
2758 else if (data == NULL)
2759 goto success;
2760
2761 /* Parse bits. Must start with `static'. */
2762 expect_ident ("static");
2763 if (LA1 == XBM_TK_IDENT)
2764 {
2765 if (strcmp (buffer, "unsigned") == 0)
2766 {
2767 match ();
2768 expect_ident ("char");
2769 }
2770 else if (strcmp (buffer, "short") == 0)
2771 {
2772 match ();
2773 v10 = 1;
2774 if (*width % 16 && *width % 16 < 9)
2775 padding_p = 1;
2776 }
2777 else if (strcmp (buffer, "char") == 0)
2778 match ();
2779 else
2780 goto failure;
2781 }
2782 else
2783 goto failure;
2784
2785 expect (XBM_TK_IDENT);
2786 expect ('[');
2787 expect (']');
2788 expect ('=');
2789 expect ('{');
2790
2791 if (! x_check_image_size (0, *width, *height))
2792 {
2793 if (!inhibit_image_error)
2794 image_error ("Image too large (%dx%d)",
2795 make_number (*width), make_number (*height));
2796 goto failure;
2797 }
2798 bytes_per_line = (*width + 7) / 8 + padding_p;
2799 nbytes = bytes_per_line * *height;
2800 p = *data = xmalloc (nbytes);
2801
2802 if (v10)
2803 {
2804 for (i = 0; i < nbytes; i += 2)
2805 {
2806 int val = value;
2807 expect (XBM_TK_NUMBER);
2808
2809 *p++ = XBM_BIT_SHUFFLE (val);
2810 if (!padding_p || ((i + 2) % bytes_per_line))
2811 *p++ = XBM_BIT_SHUFFLE (value >> 8);
2812
2813 if (LA1 == ',' || LA1 == '}')
2814 match ();
2815 else
2816 goto failure;
2817 }
2818 }
2819 else
2820 {
2821 for (i = 0; i < nbytes; ++i)
2822 {
2823 int val = value;
2824 expect (XBM_TK_NUMBER);
2825
2826 *p++ = XBM_BIT_SHUFFLE (val);
2827
2828 if (LA1 == ',' || LA1 == '}')
2829 match ();
2830 else
2831 goto failure;
2832 }
2833 }
2834
2835 success:
2836 return 1;
2837
2838 failure:
2839
2840 if (data && *data)
2841 {
2842 xfree (*data);
2843 *data = NULL;
2844 }
2845 return 0;
2846
2847 #undef match
2848 #undef expect
2849 #undef expect_ident
2850 }
2851
2852
2853 /* Load XBM image IMG which will be displayed on frame F from buffer
2854 CONTENTS. END is the end of the buffer. Value is true if
2855 successful. */
2856
2857 static bool
2858 xbm_load_image (struct frame *f, struct image *img, unsigned char *contents,
2859 unsigned char *end)
2860 {
2861 bool rc;
2862 char *data;
2863 bool success_p = 0;
2864
2865 rc = xbm_read_bitmap_data (f, contents, end, &img->width, &img->height,
2866 &data, 0);
2867 if (rc)
2868 {
2869 unsigned long foreground = FRAME_FOREGROUND_PIXEL (f);
2870 unsigned long background = FRAME_BACKGROUND_PIXEL (f);
2871 bool non_default_colors = 0;
2872 Lisp_Object value;
2873
2874 eassert (img->width > 0 && img->height > 0);
2875
2876 /* Get foreground and background colors, maybe allocate colors. */
2877 value = image_spec_value (img->spec, QCforeground, NULL);
2878 if (!NILP (value))
2879 {
2880 foreground = x_alloc_image_color (f, img, value, foreground);
2881 non_default_colors = 1;
2882 }
2883 value = image_spec_value (img->spec, QCbackground, NULL);
2884 if (!NILP (value))
2885 {
2886 background = x_alloc_image_color (f, img, value, background);
2887 img->background = background;
2888 img->background_valid = 1;
2889 non_default_colors = 1;
2890 }
2891
2892 Create_Pixmap_From_Bitmap_Data (f, img, data,
2893 foreground, background,
2894 non_default_colors);
2895 xfree (data);
2896
2897 if (img->pixmap == NO_PIXMAP)
2898 {
2899 x_clear_image (f, img);
2900 image_error ("Unable to create X pixmap for `%s'", img->spec, Qnil);
2901 }
2902 else
2903 success_p = 1;
2904 }
2905 else
2906 image_error ("Error loading XBM image `%s'", img->spec, Qnil);
2907
2908 return success_p;
2909 }
2910
2911
2912 /* Value is true if DATA looks like an in-memory XBM file. */
2913
2914 static bool
2915 xbm_file_p (Lisp_Object data)
2916 {
2917 int w, h;
2918 return (STRINGP (data)
2919 && xbm_read_bitmap_data (NULL, SDATA (data),
2920 (SDATA (data) + SBYTES (data)),
2921 &w, &h, NULL, 1));
2922 }
2923
2924
2925 /* Fill image IMG which is used on frame F with pixmap data. Value is
2926 true if successful. */
2927
2928 static bool
2929 xbm_load (struct frame *f, struct image *img)
2930 {
2931 bool success_p = 0;
2932 Lisp_Object file_name;
2933
2934 eassert (xbm_image_p (img->spec));
2935
2936 /* If IMG->spec specifies a file name, create a non-file spec from it. */
2937 file_name = image_spec_value (img->spec, QCfile, NULL);
2938 if (STRINGP (file_name))
2939 {
2940 Lisp_Object file;
2941 unsigned char *contents;
2942 ptrdiff_t size;
2943
2944 file = x_find_image_file (file_name);
2945 if (!STRINGP (file))
2946 {
2947 image_error ("Cannot find image file `%s'", file_name, Qnil);
2948 return 0;
2949 }
2950
2951 contents = slurp_file (SSDATA (file), &size);
2952 if (contents == NULL)
2953 {
2954 image_error ("Error loading XBM image `%s'", img->spec, Qnil);
2955 return 0;
2956 }
2957
2958 success_p = xbm_load_image (f, img, contents, contents + size);
2959 xfree (contents);
2960 }
2961 else
2962 {
2963 struct image_keyword fmt[XBM_LAST];
2964 Lisp_Object data;
2965 unsigned long foreground = FRAME_FOREGROUND_PIXEL (f);
2966 unsigned long background = FRAME_BACKGROUND_PIXEL (f);
2967 bool non_default_colors = 0;
2968 char *bits;
2969 bool parsed_p;
2970 bool in_memory_file_p = 0;
2971
2972 /* See if data looks like an in-memory XBM file. */
2973 data = image_spec_value (img->spec, QCdata, NULL);
2974 in_memory_file_p = xbm_file_p (data);
2975
2976 /* Parse the image specification. */
2977 memcpy (fmt, xbm_format, sizeof fmt);
2978 parsed_p = parse_image_spec (img->spec, fmt, XBM_LAST, Qxbm);
2979 eassert (parsed_p);
2980
2981 /* Get specified width, and height. */
2982 if (!in_memory_file_p)
2983 {
2984 img->width = XFASTINT (fmt[XBM_WIDTH].value);
2985 img->height = XFASTINT (fmt[XBM_HEIGHT].value);
2986 eassert (img->width > 0 && img->height > 0);
2987 if (!check_image_size (f, img->width, img->height))
2988 {
2989 image_error ("Invalid image size (see `max-image-size')",
2990 Qnil, Qnil);
2991 return 0;
2992 }
2993 }
2994
2995 /* Get foreground and background colors, maybe allocate colors. */
2996 if (fmt[XBM_FOREGROUND].count
2997 && STRINGP (fmt[XBM_FOREGROUND].value))
2998 {
2999 foreground = x_alloc_image_color (f, img, fmt[XBM_FOREGROUND].value,
3000 foreground);
3001 non_default_colors = 1;
3002 }
3003
3004 if (fmt[XBM_BACKGROUND].count
3005 && STRINGP (fmt[XBM_BACKGROUND].value))
3006 {
3007 background = x_alloc_image_color (f, img, fmt[XBM_BACKGROUND].value,
3008 background);
3009 non_default_colors = 1;
3010 }
3011
3012 if (in_memory_file_p)
3013 success_p = xbm_load_image (f, img, SDATA (data),
3014 (SDATA (data)
3015 + SBYTES (data)));
3016 else
3017 {
3018 if (VECTORP (data))
3019 {
3020 int i;
3021 char *p;
3022 int nbytes = (img->width + BITS_PER_CHAR - 1) / BITS_PER_CHAR;
3023
3024 p = bits = alloca (nbytes * img->height);
3025 for (i = 0; i < img->height; ++i, p += nbytes)
3026 {
3027 Lisp_Object line = AREF (data, i);
3028 if (STRINGP (line))
3029 memcpy (p, SDATA (line), nbytes);
3030 else
3031 memcpy (p, XBOOL_VECTOR (line)->data, nbytes);
3032 }
3033 }
3034 else if (STRINGP (data))
3035 bits = SSDATA (data);
3036 else
3037 bits = (char *) XBOOL_VECTOR (data)->data;
3038
3039 #ifdef HAVE_NTGUI
3040 {
3041 char *invertedBits;
3042 int nbytes, i;
3043 /* Windows mono bitmaps are reversed compared with X. */
3044 invertedBits = bits;
3045 nbytes = (img->width + BITS_PER_CHAR - 1) / BITS_PER_CHAR
3046 * img->height;
3047 bits = alloca (nbytes);
3048 for (i = 0; i < nbytes; i++)
3049 bits[i] = XBM_BIT_SHUFFLE (invertedBits[i]);
3050 }
3051 #endif
3052 /* Create the pixmap. */
3053
3054 if (x_check_image_size (0, img->width, img->height))
3055 Create_Pixmap_From_Bitmap_Data (f, img, bits,
3056 foreground, background,
3057 non_default_colors);
3058 else
3059 img->pixmap = NO_PIXMAP;
3060
3061 if (img->pixmap)
3062 success_p = 1;
3063 else
3064 {
3065 image_error ("Unable to create pixmap for XBM image `%s'",
3066 img->spec, Qnil);
3067 x_clear_image (f, img);
3068 }
3069 }
3070 }
3071
3072 return success_p;
3073 }
3074
3075
3076 \f
3077 /***********************************************************************
3078 XPM images
3079 ***********************************************************************/
3080
3081 #if defined (HAVE_XPM) || defined (HAVE_NS)
3082
3083 static bool xpm_image_p (Lisp_Object object);
3084 static bool xpm_load (struct frame *f, struct image *img);
3085
3086 #endif /* HAVE_XPM || HAVE_NS */
3087
3088 #ifdef HAVE_XPM
3089 #ifdef HAVE_NTGUI
3090 /* Indicate to xpm.h that we don't have Xlib. */
3091 #define FOR_MSW
3092 /* simx.h in xpm defines XColor and XImage differently than Emacs. */
3093 /* It also defines Display the same way as Emacs, but gcc 3.3 still barfs. */
3094 #define XColor xpm_XColor
3095 #define XImage xpm_XImage
3096 #define Display xpm_Display
3097 #define PIXEL_ALREADY_TYPEDEFED
3098 #include "X11/xpm.h"
3099 #undef FOR_MSW
3100 #undef XColor
3101 #undef XImage
3102 #undef Display
3103 #undef PIXEL_ALREADY_TYPEDEFED
3104 #else
3105 #include "X11/xpm.h"
3106 #endif /* HAVE_NTGUI */
3107 #endif /* HAVE_XPM */
3108
3109 #if defined (HAVE_XPM) || defined (HAVE_NS)
3110 /* The symbol `xpm' identifying XPM-format images. */
3111
3112 static Lisp_Object Qxpm;
3113
3114 /* Indices of image specification fields in xpm_format, below. */
3115
3116 enum xpm_keyword_index
3117 {
3118 XPM_TYPE,
3119 XPM_FILE,
3120 XPM_DATA,
3121 XPM_ASCENT,
3122 XPM_MARGIN,
3123 XPM_RELIEF,
3124 XPM_ALGORITHM,
3125 XPM_HEURISTIC_MASK,
3126 XPM_MASK,
3127 XPM_COLOR_SYMBOLS,
3128 XPM_BACKGROUND,
3129 XPM_LAST
3130 };
3131
3132 /* Vector of image_keyword structures describing the format
3133 of valid XPM image specifications. */
3134
3135 static const struct image_keyword xpm_format[XPM_LAST] =
3136 {
3137 {":type", IMAGE_SYMBOL_VALUE, 1},
3138 {":file", IMAGE_STRING_VALUE, 0},
3139 {":data", IMAGE_STRING_VALUE, 0},
3140 {":ascent", IMAGE_ASCENT_VALUE, 0},
3141 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
3142 {":relief", IMAGE_INTEGER_VALUE, 0},
3143 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3144 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3145 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3146 {":color-symbols", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
3147 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
3148 };
3149
3150 #if defined HAVE_NTGUI && defined WINDOWSNT
3151 static bool init_xpm_functions (void);
3152 #else
3153 #define init_xpm_functions NULL
3154 #endif
3155
3156 /* Structure describing the image type XPM. */
3157
3158 static struct image_type xpm_type =
3159 {
3160 &Qxpm,
3161 xpm_image_p,
3162 xpm_load,
3163 x_clear_image,
3164 init_xpm_functions,
3165 NULL
3166 };
3167
3168 #ifdef HAVE_X_WINDOWS
3169
3170 /* Define ALLOC_XPM_COLORS if we can use Emacs' own color allocation
3171 functions for allocating image colors. Our own functions handle
3172 color allocation failures more gracefully than the ones on the XPM
3173 lib. */
3174
3175 #if defined XpmAllocColor && defined XpmFreeColors && defined XpmColorClosure
3176 #define ALLOC_XPM_COLORS
3177 #endif
3178 #endif /* HAVE_X_WINDOWS */
3179
3180 #ifdef ALLOC_XPM_COLORS
3181
3182 static struct xpm_cached_color *xpm_cache_color (struct frame *, char *,
3183 XColor *, int);
3184
3185 /* An entry in a hash table used to cache color definitions of named
3186 colors. This cache is necessary to speed up XPM image loading in
3187 case we do color allocations ourselves. Without it, we would need
3188 a call to XParseColor per pixel in the image. */
3189
3190 struct xpm_cached_color
3191 {
3192 /* Next in collision chain. */
3193 struct xpm_cached_color *next;
3194
3195 /* Color definition (RGB and pixel color). */
3196 XColor color;
3197
3198 /* Color name. */
3199 char name[FLEXIBLE_ARRAY_MEMBER];
3200 };
3201
3202 /* The hash table used for the color cache, and its bucket vector
3203 size. */
3204
3205 #define XPM_COLOR_CACHE_BUCKETS 1001
3206 static struct xpm_cached_color **xpm_color_cache;
3207
3208 /* Initialize the color cache. */
3209
3210 static void
3211 xpm_init_color_cache (struct frame *f, XpmAttributes *attrs)
3212 {
3213 size_t nbytes = XPM_COLOR_CACHE_BUCKETS * sizeof *xpm_color_cache;
3214 xpm_color_cache = xzalloc (nbytes);
3215 init_color_table ();
3216
3217 if (attrs->valuemask & XpmColorSymbols)
3218 {
3219 int i;
3220 XColor color;
3221
3222 for (i = 0; i < attrs->numsymbols; ++i)
3223 if (XParseColor (FRAME_X_DISPLAY (f), FRAME_X_COLORMAP (f),
3224 attrs->colorsymbols[i].value, &color))
3225 {
3226 color.pixel = lookup_rgb_color (f, color.red, color.green,
3227 color.blue);
3228 xpm_cache_color (f, attrs->colorsymbols[i].name, &color, -1);
3229 }
3230 }
3231 }
3232
3233 /* Free the color cache. */
3234
3235 static void
3236 xpm_free_color_cache (void)
3237 {
3238 struct xpm_cached_color *p, *next;
3239 int i;
3240
3241 for (i = 0; i < XPM_COLOR_CACHE_BUCKETS; ++i)
3242 for (p = xpm_color_cache[i]; p; p = next)
3243 {
3244 next = p->next;
3245 xfree (p);
3246 }
3247
3248 xfree (xpm_color_cache);
3249 xpm_color_cache = NULL;
3250 free_color_table ();
3251 }
3252
3253 /* Return the bucket index for color named COLOR_NAME in the color
3254 cache. */
3255
3256 static int
3257 xpm_color_bucket (char *color_name)
3258 {
3259 EMACS_UINT hash = hash_string (color_name, strlen (color_name));
3260 return hash % XPM_COLOR_CACHE_BUCKETS;
3261 }
3262
3263
3264 /* On frame F, cache values COLOR for color with name COLOR_NAME.
3265 BUCKET, if >= 0, is a precomputed bucket index. Value is the cache
3266 entry added. */
3267
3268 static struct xpm_cached_color *
3269 xpm_cache_color (struct frame *f, char *color_name, XColor *color, int bucket)
3270 {
3271 size_t nbytes;
3272 struct xpm_cached_color *p;
3273
3274 if (bucket < 0)
3275 bucket = xpm_color_bucket (color_name);
3276
3277 nbytes = offsetof (struct xpm_cached_color, name) + strlen (color_name) + 1;
3278 p = xmalloc (nbytes);
3279 strcpy (p->name, color_name);
3280 p->color = *color;
3281 p->next = xpm_color_cache[bucket];
3282 xpm_color_cache[bucket] = p;
3283 return p;
3284 }
3285
3286 /* Look up color COLOR_NAME for frame F in the color cache. If found,
3287 return the cached definition in *COLOR. Otherwise, make a new
3288 entry in the cache and allocate the color. Value is false if color
3289 allocation failed. */
3290
3291 static bool
3292 xpm_lookup_color (struct frame *f, char *color_name, XColor *color)
3293 {
3294 struct xpm_cached_color *p;
3295 int h = xpm_color_bucket (color_name);
3296
3297 for (p = xpm_color_cache[h]; p; p = p->next)
3298 if (strcmp (p->name, color_name) == 0)
3299 break;
3300
3301 if (p != NULL)
3302 *color = p->color;
3303 else if (XParseColor (FRAME_X_DISPLAY (f), FRAME_X_COLORMAP (f),
3304 color_name, color))
3305 {
3306 color->pixel = lookup_rgb_color (f, color->red, color->green,
3307 color->blue);
3308 p = xpm_cache_color (f, color_name, color, h);
3309 }
3310 /* You get `opaque' at least from ImageMagick converting pbm to xpm
3311 with transparency, and it's useful. */
3312 else if (strcmp ("opaque", color_name) == 0)
3313 {
3314 memset (color, 0, sizeof (XColor)); /* Is this necessary/correct? */
3315 color->pixel = FRAME_FOREGROUND_PIXEL (f);
3316 p = xpm_cache_color (f, color_name, color, h);
3317 }
3318
3319 return p != NULL;
3320 }
3321
3322
3323 /* Callback for allocating color COLOR_NAME. Called from the XPM lib.
3324 CLOSURE is a pointer to the frame on which we allocate the
3325 color. Return in *COLOR the allocated color. Value is non-zero
3326 if successful. */
3327
3328 static int
3329 xpm_alloc_color (Display *dpy, Colormap cmap, char *color_name, XColor *color,
3330 void *closure)
3331 {
3332 return xpm_lookup_color ((struct frame *) closure, color_name, color);
3333 }
3334
3335
3336 /* Callback for freeing NPIXELS colors contained in PIXELS. CLOSURE
3337 is a pointer to the frame on which we allocate the color. Value is
3338 non-zero if successful. */
3339
3340 static int
3341 xpm_free_colors (Display *dpy, Colormap cmap, Pixel *pixels, int npixels, void *closure)
3342 {
3343 return 1;
3344 }
3345
3346 #endif /* ALLOC_XPM_COLORS */
3347
3348
3349 #ifdef WINDOWSNT
3350
3351 /* XPM library details. */
3352
3353 DEF_IMGLIB_FN (void, XpmFreeAttributes, (XpmAttributes *));
3354 DEF_IMGLIB_FN (int, XpmCreateImageFromBuffer, (Display *, char *, xpm_XImage **,
3355 xpm_XImage **, XpmAttributes *));
3356 DEF_IMGLIB_FN (int, XpmReadFileToImage, (Display *, char *, xpm_XImage **,
3357 xpm_XImage **, XpmAttributes *));
3358 DEF_IMGLIB_FN (void, XImageFree, (xpm_XImage *));
3359
3360 static bool
3361 init_xpm_functions (void)
3362 {
3363 HMODULE library;
3364
3365 if (!(library = w32_delayed_load (Qxpm)))
3366 return 0;
3367
3368 LOAD_IMGLIB_FN (library, XpmFreeAttributes);
3369 LOAD_IMGLIB_FN (library, XpmCreateImageFromBuffer);
3370 LOAD_IMGLIB_FN (library, XpmReadFileToImage);
3371 LOAD_IMGLIB_FN (library, XImageFree);
3372 return 1;
3373 }
3374
3375 #endif /* WINDOWSNT */
3376
3377 #if defined HAVE_NTGUI && !defined WINDOWSNT
3378 /* Glue for code below */
3379 #define fn_XpmReadFileToImage XpmReadFileToImage
3380 #define fn_XpmCreateImageFromBuffer XpmCreateImageFromBuffer
3381 #define fn_XImageFree XImageFree
3382 #define fn_XpmFreeAttributes XpmFreeAttributes
3383 #endif /* HAVE_NTGUI && !WINDOWSNT */
3384
3385 /* Value is true if COLOR_SYMBOLS is a valid color symbols list
3386 for XPM images. Such a list must consist of conses whose car and
3387 cdr are strings. */
3388
3389 static bool
3390 xpm_valid_color_symbols_p (Lisp_Object color_symbols)
3391 {
3392 while (CONSP (color_symbols))
3393 {
3394 Lisp_Object sym = XCAR (color_symbols);
3395 if (!CONSP (sym)
3396 || !STRINGP (XCAR (sym))
3397 || !STRINGP (XCDR (sym)))
3398 break;
3399 color_symbols = XCDR (color_symbols);
3400 }
3401
3402 return NILP (color_symbols);
3403 }
3404
3405
3406 /* Value is true if OBJECT is a valid XPM image specification. */
3407
3408 static bool
3409 xpm_image_p (Lisp_Object object)
3410 {
3411 struct image_keyword fmt[XPM_LAST];
3412 memcpy (fmt, xpm_format, sizeof fmt);
3413 return (parse_image_spec (object, fmt, XPM_LAST, Qxpm)
3414 /* Either `:file' or `:data' must be present. */
3415 && fmt[XPM_FILE].count + fmt[XPM_DATA].count == 1
3416 /* Either no `:color-symbols' or it's a list of conses
3417 whose car and cdr are strings. */
3418 && (fmt[XPM_COLOR_SYMBOLS].count == 0
3419 || xpm_valid_color_symbols_p (fmt[XPM_COLOR_SYMBOLS].value)));
3420 }
3421
3422 #endif /* HAVE_XPM || HAVE_NS */
3423
3424 #if defined HAVE_XPM && defined HAVE_X_WINDOWS && !defined USE_GTK
3425 ptrdiff_t
3426 x_create_bitmap_from_xpm_data (struct frame *f, const char **bits)
3427 {
3428 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
3429 ptrdiff_t id;
3430 int rc;
3431 XpmAttributes attrs;
3432 Pixmap bitmap, mask;
3433
3434 memset (&attrs, 0, sizeof attrs);
3435
3436 attrs.visual = FRAME_X_VISUAL (f);
3437 attrs.colormap = FRAME_X_COLORMAP (f);
3438 attrs.valuemask |= XpmVisual;
3439 attrs.valuemask |= XpmColormap;
3440
3441 rc = XpmCreatePixmapFromData (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3442 (char **) bits, &bitmap, &mask, &attrs);
3443 if (rc != XpmSuccess)
3444 {
3445 XpmFreeAttributes (&attrs);
3446 return -1;
3447 }
3448
3449 id = x_allocate_bitmap_record (f);
3450 dpyinfo->bitmaps[id - 1].pixmap = bitmap;
3451 dpyinfo->bitmaps[id - 1].have_mask = 1;
3452 dpyinfo->bitmaps[id - 1].mask = mask;
3453 dpyinfo->bitmaps[id - 1].file = NULL;
3454 dpyinfo->bitmaps[id - 1].height = attrs.height;
3455 dpyinfo->bitmaps[id - 1].width = attrs.width;
3456 dpyinfo->bitmaps[id - 1].depth = attrs.depth;
3457 dpyinfo->bitmaps[id - 1].refcount = 1;
3458
3459 XpmFreeAttributes (&attrs);
3460 return id;
3461 }
3462 #endif /* defined (HAVE_XPM) && defined (HAVE_X_WINDOWS) */
3463
3464 /* Load image IMG which will be displayed on frame F. Value is
3465 true if successful. */
3466
3467 #ifdef HAVE_XPM
3468
3469 static bool
3470 xpm_load (struct frame *f, struct image *img)
3471 {
3472 int rc;
3473 XpmAttributes attrs;
3474 Lisp_Object specified_file, color_symbols;
3475 #ifdef HAVE_NTGUI
3476 HDC hdc;
3477 xpm_XImage * xpm_image = NULL, * xpm_mask = NULL;
3478 #endif /* HAVE_NTGUI */
3479
3480 /* Configure the XPM lib. Use the visual of frame F. Allocate
3481 close colors. Return colors allocated. */
3482 memset (&attrs, 0, sizeof attrs);
3483
3484 #ifndef HAVE_NTGUI
3485 attrs.visual = FRAME_X_VISUAL (f);
3486 attrs.colormap = FRAME_X_COLORMAP (f);
3487 attrs.valuemask |= XpmVisual;
3488 attrs.valuemask |= XpmColormap;
3489 #endif /* HAVE_NTGUI */
3490
3491 #ifdef ALLOC_XPM_COLORS
3492 /* Allocate colors with our own functions which handle
3493 failing color allocation more gracefully. */
3494 attrs.color_closure = f;
3495 attrs.alloc_color = xpm_alloc_color;
3496 attrs.free_colors = xpm_free_colors;
3497 attrs.valuemask |= XpmAllocColor | XpmFreeColors | XpmColorClosure;
3498 #else /* not ALLOC_XPM_COLORS */
3499 /* Let the XPM lib allocate colors. */
3500 attrs.valuemask |= XpmReturnAllocPixels;
3501 #ifdef XpmAllocCloseColors
3502 attrs.alloc_close_colors = 1;
3503 attrs.valuemask |= XpmAllocCloseColors;
3504 #else /* not XpmAllocCloseColors */
3505 attrs.closeness = 600;
3506 attrs.valuemask |= XpmCloseness;
3507 #endif /* not XpmAllocCloseColors */
3508 #endif /* ALLOC_XPM_COLORS */
3509
3510 /* If image specification contains symbolic color definitions, add
3511 these to `attrs'. */
3512 color_symbols = image_spec_value (img->spec, QCcolor_symbols, NULL);
3513 if (CONSP (color_symbols))
3514 {
3515 Lisp_Object tail;
3516 XpmColorSymbol *xpm_syms;
3517 int i, size;
3518
3519 attrs.valuemask |= XpmColorSymbols;
3520
3521 /* Count number of symbols. */
3522 attrs.numsymbols = 0;
3523 for (tail = color_symbols; CONSP (tail); tail = XCDR (tail))
3524 ++attrs.numsymbols;
3525
3526 /* Allocate an XpmColorSymbol array. */
3527 size = attrs.numsymbols * sizeof *xpm_syms;
3528 xpm_syms = alloca (size);
3529 memset (xpm_syms, 0, size);
3530 attrs.colorsymbols = xpm_syms;
3531
3532 /* Fill the color symbol array. */
3533 for (tail = color_symbols, i = 0;
3534 CONSP (tail);
3535 ++i, tail = XCDR (tail))
3536 {
3537 Lisp_Object name;
3538 Lisp_Object color;
3539 char *empty_string = (char *) "";
3540
3541 if (!CONSP (XCAR (tail)))
3542 {
3543 xpm_syms[i].name = empty_string;
3544 xpm_syms[i].value = empty_string;
3545 continue;
3546 }
3547 name = XCAR (XCAR (tail));
3548 color = XCDR (XCAR (tail));
3549 if (STRINGP (name))
3550 {
3551 xpm_syms[i].name = alloca (SCHARS (name) + 1);
3552 strcpy (xpm_syms[i].name, SSDATA (name));
3553 }
3554 else
3555 xpm_syms[i].name = empty_string;
3556 if (STRINGP (color))
3557 {
3558 xpm_syms[i].value = alloca (SCHARS (color) + 1);
3559 strcpy (xpm_syms[i].value, SSDATA (color));
3560 }
3561 else
3562 xpm_syms[i].value = empty_string;
3563 }
3564 }
3565
3566 /* Create a pixmap for the image, either from a file, or from a
3567 string buffer containing data in the same format as an XPM file. */
3568 #ifdef ALLOC_XPM_COLORS
3569 xpm_init_color_cache (f, &attrs);
3570 #endif
3571
3572 specified_file = image_spec_value (img->spec, QCfile, NULL);
3573
3574 #ifdef HAVE_NTGUI
3575 {
3576 HDC frame_dc = get_frame_dc (f);
3577 hdc = CreateCompatibleDC (frame_dc);
3578 release_frame_dc (f, frame_dc);
3579 }
3580 #endif /* HAVE_NTGUI */
3581
3582 if (STRINGP (specified_file))
3583 {
3584 Lisp_Object file = x_find_image_file (specified_file);
3585 if (!STRINGP (file))
3586 {
3587 image_error ("Cannot find image file `%s'", specified_file, Qnil);
3588 #ifdef ALLOC_XPM_COLORS
3589 xpm_free_color_cache ();
3590 #endif
3591 return 0;
3592 }
3593
3594 #ifdef HAVE_NTGUI
3595 /* XpmReadFileToPixmap is not available in the Windows port of
3596 libxpm. But XpmReadFileToImage almost does what we want. */
3597 rc = fn_XpmReadFileToImage (&hdc, SDATA (file),
3598 &xpm_image, &xpm_mask,
3599 &attrs);
3600 #else
3601 rc = XpmReadFileToImage (FRAME_X_DISPLAY (f), SSDATA (file),
3602 &img->ximg, &img->mask_img,
3603 &attrs);
3604 #endif /* HAVE_NTGUI */
3605 }
3606 else
3607 {
3608 Lisp_Object buffer = image_spec_value (img->spec, QCdata, NULL);
3609 if (!STRINGP (buffer))
3610 {
3611 image_error ("Invalid image data `%s'", buffer, Qnil);
3612 #ifdef ALLOC_XPM_COLORS
3613 xpm_free_color_cache ();
3614 #endif
3615 return 0;
3616 }
3617 #ifdef HAVE_NTGUI
3618 /* XpmCreatePixmapFromBuffer is not available in the Windows port
3619 of libxpm. But XpmCreateImageFromBuffer almost does what we want. */
3620 rc = fn_XpmCreateImageFromBuffer (&hdc, SDATA (buffer),
3621 &xpm_image, &xpm_mask,
3622 &attrs);
3623 #else
3624 rc = XpmCreateImageFromBuffer (FRAME_X_DISPLAY (f), SSDATA (buffer),
3625 &img->ximg, &img->mask_img,
3626 &attrs);
3627 #endif /* HAVE_NTGUI */
3628 }
3629
3630 #ifdef HAVE_X_WINDOWS
3631 if (rc == XpmSuccess)
3632 {
3633 img->pixmap = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3634 img->ximg->width, img->ximg->height,
3635 img->ximg->depth);
3636 if (img->pixmap == NO_PIXMAP)
3637 {
3638 x_clear_image (f, img);
3639 rc = XpmNoMemory;
3640 }
3641 else if (img->mask_img)
3642 {
3643 img->mask = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
3644 img->mask_img->width,
3645 img->mask_img->height,
3646 img->mask_img->depth);
3647 if (img->mask == NO_PIXMAP)
3648 {
3649 x_clear_image (f, img);
3650 rc = XpmNoMemory;
3651 }
3652 }
3653 }
3654 #endif
3655
3656 if (rc == XpmSuccess)
3657 {
3658 #if defined (COLOR_TABLE_SUPPORT) && defined (ALLOC_XPM_COLORS)
3659 img->colors = colors_in_color_table (&img->ncolors);
3660 #else /* not ALLOC_XPM_COLORS */
3661 int i;
3662
3663 #ifdef HAVE_NTGUI
3664 /* W32 XPM uses XImage to wrap what W32 Emacs calls a Pixmap,
3665 plus some duplicate attributes. */
3666 if (xpm_image && xpm_image->bitmap)
3667 {
3668 img->pixmap = xpm_image->bitmap;
3669 /* XImageFree in libXpm frees XImage struct without destroying
3670 the bitmap, which is what we want. */
3671 fn_XImageFree (xpm_image);
3672 }
3673 if (xpm_mask && xpm_mask->bitmap)
3674 {
3675 /* The mask appears to be inverted compared with what we expect.
3676 TODO: invert our expectations. See other places where we
3677 have to invert bits because our idea of masks is backwards. */
3678 HGDIOBJ old_obj;
3679 old_obj = SelectObject (hdc, xpm_mask->bitmap);
3680
3681 PatBlt (hdc, 0, 0, xpm_mask->width, xpm_mask->height, DSTINVERT);
3682 SelectObject (hdc, old_obj);
3683
3684 img->mask = xpm_mask->bitmap;
3685 fn_XImageFree (xpm_mask);
3686 DeleteDC (hdc);
3687 }
3688
3689 DeleteDC (hdc);
3690 #endif /* HAVE_NTGUI */
3691
3692 /* Remember allocated colors. */
3693 img->colors = xnmalloc (attrs.nalloc_pixels, sizeof *img->colors);
3694 img->ncolors = attrs.nalloc_pixels;
3695 for (i = 0; i < attrs.nalloc_pixels; ++i)
3696 {
3697 img->colors[i] = attrs.alloc_pixels[i];
3698 #ifdef DEBUG_X_COLORS
3699 register_color (img->colors[i]);
3700 #endif
3701 }
3702 #endif /* not ALLOC_XPM_COLORS */
3703
3704 img->width = attrs.width;
3705 img->height = attrs.height;
3706 eassert (img->width > 0 && img->height > 0);
3707
3708 /* The call to XpmFreeAttributes below frees attrs.alloc_pixels. */
3709 #ifdef HAVE_NTGUI
3710 fn_XpmFreeAttributes (&attrs);
3711 #else
3712 XpmFreeAttributes (&attrs);
3713 #endif /* HAVE_NTGUI */
3714
3715 #ifdef HAVE_X_WINDOWS
3716 /* Maybe fill in the background field while we have ximg handy. */
3717 IMAGE_BACKGROUND (img, f, img->ximg);
3718 if (img->mask_img)
3719 /* Fill in the background_transparent field while we have the
3720 mask handy. */
3721 image_background_transparent (img, f, img->mask_img);
3722 #endif
3723 }
3724 else
3725 {
3726 #ifdef HAVE_NTGUI
3727 DeleteDC (hdc);
3728 #endif /* HAVE_NTGUI */
3729
3730 switch (rc)
3731 {
3732 case XpmOpenFailed:
3733 image_error ("Error opening XPM file (%s)", img->spec, Qnil);
3734 break;
3735
3736 case XpmFileInvalid:
3737 image_error ("Invalid XPM file (%s)", img->spec, Qnil);
3738 break;
3739
3740 case XpmNoMemory:
3741 image_error ("Out of memory (%s)", img->spec, Qnil);
3742 break;
3743
3744 case XpmColorFailed:
3745 image_error ("Color allocation error (%s)", img->spec, Qnil);
3746 break;
3747
3748 default:
3749 image_error ("Unknown error (%s)", img->spec, Qnil);
3750 break;
3751 }
3752 }
3753
3754 #ifdef ALLOC_XPM_COLORS
3755 xpm_free_color_cache ();
3756 #endif
3757 return rc == XpmSuccess;
3758 }
3759
3760 #endif /* HAVE_XPM */
3761
3762 #if defined (HAVE_NS) && !defined (HAVE_XPM)
3763
3764 /* XPM support functions for NS where libxpm is not available.
3765 Only XPM version 3 (without any extensions) is supported. */
3766
3767 static void xpm_put_color_table_v (Lisp_Object, const unsigned char *,
3768 int, Lisp_Object);
3769 static Lisp_Object xpm_get_color_table_v (Lisp_Object,
3770 const unsigned char *, int);
3771 static void xpm_put_color_table_h (Lisp_Object, const unsigned char *,
3772 int, Lisp_Object);
3773 static Lisp_Object xpm_get_color_table_h (Lisp_Object,
3774 const unsigned char *, int);
3775
3776 /* Tokens returned from xpm_scan. */
3777
3778 enum xpm_token
3779 {
3780 XPM_TK_IDENT = 256,
3781 XPM_TK_STRING,
3782 XPM_TK_EOF
3783 };
3784
3785 /* Scan an XPM data and return a character (< 256) or a token defined
3786 by enum xpm_token above. *S and END are the start (inclusive) and
3787 the end (exclusive) addresses of the data, respectively. Advance
3788 *S while scanning. If token is either XPM_TK_IDENT or
3789 XPM_TK_STRING, *BEG and *LEN are set to the start address and the
3790 length of the corresponding token, respectively. */
3791
3792 static int
3793 xpm_scan (const unsigned char **s,
3794 const unsigned char *end,
3795 const unsigned char **beg,
3796 ptrdiff_t *len)
3797 {
3798 int c;
3799
3800 while (*s < end)
3801 {
3802 /* Skip white-space. */
3803 while (*s < end && (c = *(*s)++, c_isspace (c)))
3804 ;
3805
3806 /* gnus-pointer.xpm uses '-' in its identifier.
3807 sb-dir-plus.xpm uses '+' in its identifier. */
3808 if (c_isalpha (c) || c == '_' || c == '-' || c == '+')
3809 {
3810 *beg = *s - 1;
3811 while (*s < end
3812 && (c = **s, c_isalnum (c)
3813 || c == '_' || c == '-' || c == '+'))
3814 ++*s;
3815 *len = *s - *beg;
3816 return XPM_TK_IDENT;
3817 }
3818 else if (c == '"')
3819 {
3820 *beg = *s;
3821 while (*s < end && **s != '"')
3822 ++*s;
3823 *len = *s - *beg;
3824 if (*s < end)
3825 ++*s;
3826 return XPM_TK_STRING;
3827 }
3828 else if (c == '/')
3829 {
3830 if (*s < end && **s == '*')
3831 {
3832 /* C-style comment. */
3833 ++*s;
3834 do
3835 {
3836 while (*s < end && *(*s)++ != '*')
3837 ;
3838 }
3839 while (*s < end && **s != '/');
3840 if (*s < end)
3841 ++*s;
3842 }
3843 else
3844 return c;
3845 }
3846 else
3847 return c;
3848 }
3849
3850 return XPM_TK_EOF;
3851 }
3852
3853 /* Functions for color table lookup in XPM data. A key is a string
3854 specifying the color of each pixel in XPM data. A value is either
3855 an integer that specifies a pixel color, Qt that specifies
3856 transparency, or Qnil for the unspecified color. If the length of
3857 the key string is one, a vector is used as a table. Otherwise, a
3858 hash table is used. */
3859
3860 static Lisp_Object
3861 xpm_make_color_table_v (void (**put_func) (Lisp_Object,
3862 const unsigned char *,
3863 int,
3864 Lisp_Object),
3865 Lisp_Object (**get_func) (Lisp_Object,
3866 const unsigned char *,
3867 int))
3868 {
3869 *put_func = xpm_put_color_table_v;
3870 *get_func = xpm_get_color_table_v;
3871 return Fmake_vector (make_number (256), Qnil);
3872 }
3873
3874 static void
3875 xpm_put_color_table_v (Lisp_Object color_table,
3876 const unsigned char *chars_start,
3877 int chars_len,
3878 Lisp_Object color)
3879 {
3880 ASET (color_table, *chars_start, color);
3881 }
3882
3883 static Lisp_Object
3884 xpm_get_color_table_v (Lisp_Object color_table,
3885 const unsigned char *chars_start,
3886 int chars_len)
3887 {
3888 return AREF (color_table, *chars_start);
3889 }
3890
3891 static Lisp_Object
3892 xpm_make_color_table_h (void (**put_func) (Lisp_Object,
3893 const unsigned char *,
3894 int,
3895 Lisp_Object),
3896 Lisp_Object (**get_func) (Lisp_Object,
3897 const unsigned char *,
3898 int))
3899 {
3900 *put_func = xpm_put_color_table_h;
3901 *get_func = xpm_get_color_table_h;
3902 return make_hash_table (hashtest_equal, make_number (DEFAULT_HASH_SIZE),
3903 make_float (DEFAULT_REHASH_SIZE),
3904 make_float (DEFAULT_REHASH_THRESHOLD),
3905 Qnil);
3906 }
3907
3908 static void
3909 xpm_put_color_table_h (Lisp_Object color_table,
3910 const unsigned char *chars_start,
3911 int chars_len,
3912 Lisp_Object color)
3913 {
3914 struct Lisp_Hash_Table *table = XHASH_TABLE (color_table);
3915 EMACS_UINT hash_code;
3916 Lisp_Object chars = make_unibyte_string (chars_start, chars_len);
3917
3918 hash_lookup (table, chars, &hash_code);
3919 hash_put (table, chars, color, hash_code);
3920 }
3921
3922 static Lisp_Object
3923 xpm_get_color_table_h (Lisp_Object color_table,
3924 const unsigned char *chars_start,
3925 int chars_len)
3926 {
3927 struct Lisp_Hash_Table *table = XHASH_TABLE (color_table);
3928 ptrdiff_t i =
3929 hash_lookup (table, make_unibyte_string (chars_start, chars_len), NULL);
3930
3931 return i >= 0 ? HASH_VALUE (table, i) : Qnil;
3932 }
3933
3934 enum xpm_color_key {
3935 XPM_COLOR_KEY_S,
3936 XPM_COLOR_KEY_M,
3937 XPM_COLOR_KEY_G4,
3938 XPM_COLOR_KEY_G,
3939 XPM_COLOR_KEY_C
3940 };
3941
3942 static const char xpm_color_key_strings[][4] = {"s", "m", "g4", "g", "c"};
3943
3944 static int
3945 xpm_str_to_color_key (const char *s)
3946 {
3947 int i;
3948
3949 for (i = 0;
3950 i < sizeof xpm_color_key_strings / sizeof xpm_color_key_strings[0];
3951 i++)
3952 if (strcmp (xpm_color_key_strings[i], s) == 0)
3953 return i;
3954 return -1;
3955 }
3956
3957 static bool
3958 xpm_load_image (struct frame *f,
3959 struct image *img,
3960 const unsigned char *contents,
3961 const unsigned char *end)
3962 {
3963 const unsigned char *s = contents, *beg, *str;
3964 unsigned char buffer[BUFSIZ];
3965 int width, height, x, y;
3966 int num_colors, chars_per_pixel;
3967 ptrdiff_t len;
3968 int LA1;
3969 void (*put_color_table) (Lisp_Object, const unsigned char *, int, Lisp_Object);
3970 Lisp_Object (*get_color_table) (Lisp_Object, const unsigned char *, int);
3971 Lisp_Object frame, color_symbols, color_table;
3972 int best_key;
3973 bool have_mask = 0;
3974 XImagePtr ximg = NULL, mask_img = NULL;
3975
3976 #define match() \
3977 LA1 = xpm_scan (&s, end, &beg, &len)
3978
3979 #define expect(TOKEN) \
3980 if (LA1 != (TOKEN)) \
3981 goto failure; \
3982 else \
3983 match ()
3984
3985 #define expect_ident(IDENT) \
3986 if (LA1 == XPM_TK_IDENT \
3987 && strlen ((IDENT)) == len && memcmp ((IDENT), beg, len) == 0) \
3988 match (); \
3989 else \
3990 goto failure
3991
3992 if (!(end - s >= 9 && memcmp (s, "/* XPM */", 9) == 0))
3993 goto failure;
3994 s += 9;
3995 match ();
3996 expect_ident ("static");
3997 expect_ident ("char");
3998 expect ('*');
3999 expect (XPM_TK_IDENT);
4000 expect ('[');
4001 expect (']');
4002 expect ('=');
4003 expect ('{');
4004 expect (XPM_TK_STRING);
4005 if (len >= BUFSIZ)
4006 goto failure;
4007 memcpy (buffer, beg, len);
4008 buffer[len] = '\0';
4009 if (sscanf (buffer, "%d %d %d %d", &width, &height,
4010 &num_colors, &chars_per_pixel) != 4
4011 || width <= 0 || height <= 0
4012 || num_colors <= 0 || chars_per_pixel <= 0)
4013 goto failure;
4014
4015 if (!check_image_size (f, width, height))
4016 {
4017 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
4018 goto failure;
4019 }
4020
4021 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0)
4022 #ifndef HAVE_NS
4023 || !image_create_x_image_and_pixmap (f, img, width, height, 1,
4024 &mask_img, 1)
4025 #endif
4026 )
4027 {
4028 image_error ("Image too large", Qnil, Qnil);
4029 goto failure;
4030 }
4031
4032 expect (',');
4033
4034 XSETFRAME (frame, f);
4035 if (!NILP (Fxw_display_color_p (frame)))
4036 best_key = XPM_COLOR_KEY_C;
4037 else if (!NILP (Fx_display_grayscale_p (frame)))
4038 best_key = (XFASTINT (Fx_display_planes (frame)) > 2
4039 ? XPM_COLOR_KEY_G : XPM_COLOR_KEY_G4);
4040 else
4041 best_key = XPM_COLOR_KEY_M;
4042
4043 color_symbols = image_spec_value (img->spec, QCcolor_symbols, NULL);
4044 if (chars_per_pixel == 1)
4045 color_table = xpm_make_color_table_v (&put_color_table,
4046 &get_color_table);
4047 else
4048 color_table = xpm_make_color_table_h (&put_color_table,
4049 &get_color_table);
4050
4051 while (num_colors-- > 0)
4052 {
4053 char *color, *max_color;
4054 int key, next_key, max_key = 0;
4055 Lisp_Object symbol_color = Qnil, color_val;
4056 XColor cdef;
4057
4058 expect (XPM_TK_STRING);
4059 if (len <= chars_per_pixel || len >= BUFSIZ + chars_per_pixel)
4060 goto failure;
4061 memcpy (buffer, beg + chars_per_pixel, len - chars_per_pixel);
4062 buffer[len - chars_per_pixel] = '\0';
4063
4064 str = strtok (buffer, " \t");
4065 if (str == NULL)
4066 goto failure;
4067 key = xpm_str_to_color_key (str);
4068 if (key < 0)
4069 goto failure;
4070 do
4071 {
4072 color = strtok (NULL, " \t");
4073 if (color == NULL)
4074 goto failure;
4075
4076 while ((str = strtok (NULL, " \t")) != NULL)
4077 {
4078 next_key = xpm_str_to_color_key (str);
4079 if (next_key >= 0)
4080 break;
4081 color[strlen (color)] = ' ';
4082 }
4083
4084 if (key == XPM_COLOR_KEY_S)
4085 {
4086 if (NILP (symbol_color))
4087 symbol_color = build_string (color);
4088 }
4089 else if (max_key < key && key <= best_key)
4090 {
4091 max_key = key;
4092 max_color = color;
4093 }
4094 key = next_key;
4095 }
4096 while (str);
4097
4098 color_val = Qnil;
4099 if (!NILP (color_symbols) && !NILP (symbol_color))
4100 {
4101 Lisp_Object specified_color = Fassoc (symbol_color, color_symbols);
4102
4103 if (CONSP (specified_color) && STRINGP (XCDR (specified_color)))
4104 {
4105 if (xstrcasecmp (SSDATA (XCDR (specified_color)), "None") == 0)
4106 color_val = Qt;
4107 else if (x_defined_color (f, SSDATA (XCDR (specified_color)),
4108 &cdef, 0))
4109 color_val = make_number (cdef.pixel);
4110 }
4111 }
4112 if (NILP (color_val) && max_key > 0)
4113 {
4114 if (xstrcasecmp (max_color, "None") == 0)
4115 color_val = Qt;
4116 else if (x_defined_color (f, max_color, &cdef, 0))
4117 color_val = make_number (cdef.pixel);
4118 }
4119 if (!NILP (color_val))
4120 (*put_color_table) (color_table, beg, chars_per_pixel, color_val);
4121
4122 expect (',');
4123 }
4124
4125 for (y = 0; y < height; y++)
4126 {
4127 expect (XPM_TK_STRING);
4128 str = beg;
4129 if (len < width * chars_per_pixel)
4130 goto failure;
4131 for (x = 0; x < width; x++, str += chars_per_pixel)
4132 {
4133 Lisp_Object color_val =
4134 (*get_color_table) (color_table, str, chars_per_pixel);
4135
4136 XPutPixel (ximg, x, y,
4137 (INTEGERP (color_val) ? XINT (color_val)
4138 : FRAME_FOREGROUND_PIXEL (f)));
4139 #ifndef HAVE_NS
4140 XPutPixel (mask_img, x, y,
4141 (!EQ (color_val, Qt) ? PIX_MASK_DRAW
4142 : (have_mask = 1, PIX_MASK_RETAIN)));
4143 #else
4144 if (EQ (color_val, Qt))
4145 ns_set_alpha (ximg, x, y, 0);
4146 #endif
4147 }
4148 if (y + 1 < height)
4149 expect (',');
4150 }
4151
4152 img->width = width;
4153 img->height = height;
4154
4155 /* Maybe fill in the background field while we have ximg handy. */
4156 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
4157 IMAGE_BACKGROUND (img, f, ximg);
4158
4159 image_put_x_image (f, img, ximg, 0);
4160 #ifndef HAVE_NS
4161 if (have_mask)
4162 {
4163 /* Fill in the background_transparent field while we have the
4164 mask handy. */
4165 image_background_transparent (img, f, mask_img);
4166
4167 image_put_x_image (f, img, mask_img, 1);
4168 }
4169 else
4170 {
4171 x_destroy_x_image (mask_img);
4172 x_clear_image_1 (f, img, CLEAR_IMAGE_MASK);
4173 }
4174 #endif
4175 return 1;
4176
4177 failure:
4178 image_error ("Invalid XPM file (%s)", img->spec, Qnil);
4179 x_destroy_x_image (ximg);
4180 x_destroy_x_image (mask_img);
4181 x_clear_image (f, img);
4182 return 0;
4183
4184 #undef match
4185 #undef expect
4186 #undef expect_ident
4187 }
4188
4189 static bool
4190 xpm_load (struct frame *f,
4191 struct image *img)
4192 {
4193 bool success_p = 0;
4194 Lisp_Object file_name;
4195
4196 /* If IMG->spec specifies a file name, create a non-file spec from it. */
4197 file_name = image_spec_value (img->spec, QCfile, NULL);
4198 if (STRINGP (file_name))
4199 {
4200 Lisp_Object file;
4201 unsigned char *contents;
4202 ptrdiff_t size;
4203
4204 file = x_find_image_file (file_name);
4205 if (!STRINGP (file))
4206 {
4207 image_error ("Cannot find image file `%s'", file_name, Qnil);
4208 return 0;
4209 }
4210
4211 contents = slurp_file (SSDATA (file), &size);
4212 if (contents == NULL)
4213 {
4214 image_error ("Error loading XPM image `%s'", img->spec, Qnil);
4215 return 0;
4216 }
4217
4218 success_p = xpm_load_image (f, img, contents, contents + size);
4219 xfree (contents);
4220 }
4221 else
4222 {
4223 Lisp_Object data;
4224
4225 data = image_spec_value (img->spec, QCdata, NULL);
4226 if (!STRINGP (data))
4227 {
4228 image_error ("Invalid image data `%s'", data, Qnil);
4229 return 0;
4230 }
4231 success_p = xpm_load_image (f, img, SDATA (data),
4232 SDATA (data) + SBYTES (data));
4233 }
4234
4235 return success_p;
4236 }
4237
4238 #endif /* HAVE_NS && !HAVE_XPM */
4239
4240
4241 \f
4242 /***********************************************************************
4243 Color table
4244 ***********************************************************************/
4245
4246 #ifdef COLOR_TABLE_SUPPORT
4247
4248 /* An entry in the color table mapping an RGB color to a pixel color. */
4249
4250 struct ct_color
4251 {
4252 int r, g, b;
4253 unsigned long pixel;
4254
4255 /* Next in color table collision list. */
4256 struct ct_color *next;
4257 };
4258
4259 /* The bucket vector size to use. Must be prime. */
4260
4261 #define CT_SIZE 101
4262
4263 /* Value is a hash of the RGB color given by R, G, and B. */
4264
4265 #define CT_HASH_RGB(R, G, B) (((R) << 16) ^ ((G) << 8) ^ (B))
4266
4267 /* The color hash table. */
4268
4269 static struct ct_color **ct_table;
4270
4271 /* Number of entries in the color table. */
4272
4273 static int ct_colors_allocated;
4274 enum
4275 {
4276 ct_colors_allocated_max =
4277 min (INT_MAX,
4278 min (PTRDIFF_MAX, SIZE_MAX) / sizeof (unsigned long))
4279 };
4280
4281 /* Initialize the color table. */
4282
4283 static void
4284 init_color_table (void)
4285 {
4286 int size = CT_SIZE * sizeof (*ct_table);
4287 ct_table = xzalloc (size);
4288 ct_colors_allocated = 0;
4289 }
4290
4291
4292 /* Free memory associated with the color table. */
4293
4294 static void
4295 free_color_table (void)
4296 {
4297 int i;
4298 struct ct_color *p, *next;
4299
4300 for (i = 0; i < CT_SIZE; ++i)
4301 for (p = ct_table[i]; p; p = next)
4302 {
4303 next = p->next;
4304 xfree (p);
4305 }
4306
4307 xfree (ct_table);
4308 ct_table = NULL;
4309 }
4310
4311
4312 /* Value is a pixel color for RGB color R, G, B on frame F. If an
4313 entry for that color already is in the color table, return the
4314 pixel color of that entry. Otherwise, allocate a new color for R,
4315 G, B, and make an entry in the color table. */
4316
4317 static unsigned long
4318 lookup_rgb_color (struct frame *f, int r, int g, int b)
4319 {
4320 unsigned hash = CT_HASH_RGB (r, g, b);
4321 int i = hash % CT_SIZE;
4322 struct ct_color *p;
4323 Display_Info *dpyinfo;
4324
4325 /* Handle TrueColor visuals specially, which improves performance by
4326 two orders of magnitude. Freeing colors on TrueColor visuals is
4327 a nop, and pixel colors specify RGB values directly. See also
4328 the Xlib spec, chapter 3.1. */
4329 dpyinfo = FRAME_X_DISPLAY_INFO (f);
4330 if (dpyinfo->red_bits > 0)
4331 {
4332 unsigned long pr, pg, pb;
4333
4334 /* Apply gamma-correction like normal color allocation does. */
4335 if (f->gamma)
4336 {
4337 XColor color;
4338 color.red = r, color.green = g, color.blue = b;
4339 gamma_correct (f, &color);
4340 r = color.red, g = color.green, b = color.blue;
4341 }
4342
4343 /* Scale down RGB values to the visual's bits per RGB, and shift
4344 them to the right position in the pixel color. Note that the
4345 original RGB values are 16-bit values, as usual in X. */
4346 pr = (r >> (16 - dpyinfo->red_bits)) << dpyinfo->red_offset;
4347 pg = (g >> (16 - dpyinfo->green_bits)) << dpyinfo->green_offset;
4348 pb = (b >> (16 - dpyinfo->blue_bits)) << dpyinfo->blue_offset;
4349
4350 /* Assemble the pixel color. */
4351 return pr | pg | pb;
4352 }
4353
4354 for (p = ct_table[i]; p; p = p->next)
4355 if (p->r == r && p->g == g && p->b == b)
4356 break;
4357
4358 if (p == NULL)
4359 {
4360
4361 #ifdef HAVE_X_WINDOWS
4362 XColor color;
4363 Colormap cmap;
4364 bool rc;
4365 #else
4366 COLORREF color;
4367 #endif
4368
4369 if (ct_colors_allocated_max <= ct_colors_allocated)
4370 return FRAME_FOREGROUND_PIXEL (f);
4371
4372 #ifdef HAVE_X_WINDOWS
4373 color.red = r;
4374 color.green = g;
4375 color.blue = b;
4376
4377 cmap = FRAME_X_COLORMAP (f);
4378 rc = x_alloc_nearest_color (f, cmap, &color);
4379 if (rc)
4380 {
4381 ++ct_colors_allocated;
4382 p = xmalloc (sizeof *p);
4383 p->r = r;
4384 p->g = g;
4385 p->b = b;
4386 p->pixel = color.pixel;
4387 p->next = ct_table[i];
4388 ct_table[i] = p;
4389 }
4390 else
4391 return FRAME_FOREGROUND_PIXEL (f);
4392
4393 #else
4394 #ifdef HAVE_NTGUI
4395 color = PALETTERGB (r, g, b);
4396 #else
4397 color = RGB_TO_ULONG (r, g, b);
4398 #endif /* HAVE_NTGUI */
4399 ++ct_colors_allocated;
4400 p = xmalloc (sizeof *p);
4401 p->r = r;
4402 p->g = g;
4403 p->b = b;
4404 p->pixel = color;
4405 p->next = ct_table[i];
4406 ct_table[i] = p;
4407 #endif /* HAVE_X_WINDOWS */
4408
4409 }
4410
4411 return p->pixel;
4412 }
4413
4414
4415 /* Look up pixel color PIXEL which is used on frame F in the color
4416 table. If not already present, allocate it. Value is PIXEL. */
4417
4418 static unsigned long
4419 lookup_pixel_color (struct frame *f, unsigned long pixel)
4420 {
4421 int i = pixel % CT_SIZE;
4422 struct ct_color *p;
4423
4424 for (p = ct_table[i]; p; p = p->next)
4425 if (p->pixel == pixel)
4426 break;
4427
4428 if (p == NULL)
4429 {
4430 XColor color;
4431 Colormap cmap;
4432 bool rc;
4433
4434 if (ct_colors_allocated_max <= ct_colors_allocated)
4435 return FRAME_FOREGROUND_PIXEL (f);
4436
4437 #ifdef HAVE_X_WINDOWS
4438 cmap = FRAME_X_COLORMAP (f);
4439 color.pixel = pixel;
4440 x_query_color (f, &color);
4441 rc = x_alloc_nearest_color (f, cmap, &color);
4442 #else
4443 block_input ();
4444 cmap = DefaultColormapOfScreen (FRAME_X_SCREEN (f));
4445 color.pixel = pixel;
4446 XQueryColor (NULL, cmap, &color);
4447 rc = x_alloc_nearest_color (f, cmap, &color);
4448 unblock_input ();
4449 #endif /* HAVE_X_WINDOWS */
4450
4451 if (rc)
4452 {
4453 ++ct_colors_allocated;
4454
4455 p = xmalloc (sizeof *p);
4456 p->r = color.red;
4457 p->g = color.green;
4458 p->b = color.blue;
4459 p->pixel = pixel;
4460 p->next = ct_table[i];
4461 ct_table[i] = p;
4462 }
4463 else
4464 return FRAME_FOREGROUND_PIXEL (f);
4465 }
4466 return p->pixel;
4467 }
4468
4469
4470 /* Value is a vector of all pixel colors contained in the color table,
4471 allocated via xmalloc. Set *N to the number of colors. */
4472
4473 static unsigned long *
4474 colors_in_color_table (int *n)
4475 {
4476 int i, j;
4477 struct ct_color *p;
4478 unsigned long *colors;
4479
4480 if (ct_colors_allocated == 0)
4481 {
4482 *n = 0;
4483 colors = NULL;
4484 }
4485 else
4486 {
4487 colors = xmalloc (ct_colors_allocated * sizeof *colors);
4488 *n = ct_colors_allocated;
4489
4490 for (i = j = 0; i < CT_SIZE; ++i)
4491 for (p = ct_table[i]; p; p = p->next)
4492 colors[j++] = p->pixel;
4493 }
4494
4495 return colors;
4496 }
4497
4498 #else /* COLOR_TABLE_SUPPORT */
4499
4500 static unsigned long
4501 lookup_rgb_color (struct frame *f, int r, int g, int b)
4502 {
4503 unsigned long pixel;
4504
4505 #ifdef HAVE_NTGUI
4506 pixel = PALETTERGB (r >> 8, g >> 8, b >> 8);
4507 #endif /* HAVE_NTGUI */
4508
4509 #ifdef HAVE_NS
4510 pixel = RGB_TO_ULONG (r >> 8, g >> 8, b >> 8);
4511 #endif /* HAVE_NS */
4512 return pixel;
4513 }
4514
4515 static void
4516 init_color_table (void)
4517 {
4518 }
4519 #endif /* COLOR_TABLE_SUPPORT */
4520
4521 \f
4522 /***********************************************************************
4523 Algorithms
4524 ***********************************************************************/
4525
4526 /* Edge detection matrices for different edge-detection
4527 strategies. */
4528
4529 static int emboss_matrix[9] = {
4530 /* x - 1 x x + 1 */
4531 2, -1, 0, /* y - 1 */
4532 -1, 0, 1, /* y */
4533 0, 1, -2 /* y + 1 */
4534 };
4535
4536 static int laplace_matrix[9] = {
4537 /* x - 1 x x + 1 */
4538 1, 0, 0, /* y - 1 */
4539 0, 0, 0, /* y */
4540 0, 0, -1 /* y + 1 */
4541 };
4542
4543 /* Value is the intensity of the color whose red/green/blue values
4544 are R, G, and B. */
4545
4546 #define COLOR_INTENSITY(R, G, B) ((2 * (R) + 3 * (G) + (B)) / 6)
4547
4548
4549 /* On frame F, return an array of XColor structures describing image
4550 IMG->pixmap. Each XColor structure has its pixel color set. RGB_P
4551 means also fill the red/green/blue members of the XColor
4552 structures. Value is a pointer to the array of XColors structures,
4553 allocated with xmalloc; it must be freed by the caller. */
4554
4555 static XColor *
4556 x_to_xcolors (struct frame *f, struct image *img, bool rgb_p)
4557 {
4558 int x, y;
4559 XColor *colors, *p;
4560 XImagePtr_or_DC ximg;
4561 #ifdef HAVE_NTGUI
4562 HGDIOBJ prev;
4563 #endif /* HAVE_NTGUI */
4564
4565 if (min (PTRDIFF_MAX, SIZE_MAX) / sizeof *colors / img->width < img->height)
4566 memory_full (SIZE_MAX);
4567 colors = xmalloc (sizeof *colors * img->width * img->height);
4568
4569 /* Get the X image or create a memory device context for IMG. */
4570 ximg = image_get_x_image_or_dc (f, img, 0, &prev);
4571
4572 /* Fill the `pixel' members of the XColor array. I wished there
4573 were an easy and portable way to circumvent XGetPixel. */
4574 p = colors;
4575 for (y = 0; y < img->height; ++y)
4576 {
4577 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
4578 XColor *row = p;
4579 for (x = 0; x < img->width; ++x, ++p)
4580 p->pixel = GET_PIXEL (ximg, x, y);
4581 if (rgb_p)
4582 x_query_colors (f, row, img->width);
4583
4584 #else
4585
4586 for (x = 0; x < img->width; ++x, ++p)
4587 {
4588 /* W32_TODO: palette support needed here? */
4589 p->pixel = GET_PIXEL (ximg, x, y);
4590 if (rgb_p)
4591 {
4592 p->red = RED16_FROM_ULONG (p->pixel);
4593 p->green = GREEN16_FROM_ULONG (p->pixel);
4594 p->blue = BLUE16_FROM_ULONG (p->pixel);
4595 }
4596 }
4597 #endif /* HAVE_X_WINDOWS */
4598 }
4599
4600 image_unget_x_image_or_dc (img, 0, ximg, prev);
4601
4602 return colors;
4603 }
4604
4605 #ifdef HAVE_NTGUI
4606
4607 /* Put a pixel of COLOR at position X, Y in XIMG. XIMG must have been
4608 created with CreateDIBSection, with the pointer to the bit values
4609 stored in ximg->data. */
4610
4611 static void
4612 XPutPixel (XImagePtr ximg, int x, int y, COLORREF color)
4613 {
4614 int width = ximg->info.bmiHeader.biWidth;
4615 unsigned char * pixel;
4616
4617 /* True color images. */
4618 if (ximg->info.bmiHeader.biBitCount == 24)
4619 {
4620 int rowbytes = width * 3;
4621 /* Ensure scanlines are aligned on 4 byte boundaries. */
4622 if (rowbytes % 4)
4623 rowbytes += 4 - (rowbytes % 4);
4624
4625 pixel = ximg->data + y * rowbytes + x * 3;
4626 /* Windows bitmaps are in BGR order. */
4627 *pixel = GetBValue (color);
4628 *(pixel + 1) = GetGValue (color);
4629 *(pixel + 2) = GetRValue (color);
4630 }
4631 /* Monochrome images. */
4632 else if (ximg->info.bmiHeader.biBitCount == 1)
4633 {
4634 int rowbytes = width / 8;
4635 /* Ensure scanlines are aligned on 4 byte boundaries. */
4636 if (rowbytes % 4)
4637 rowbytes += 4 - (rowbytes % 4);
4638 pixel = ximg->data + y * rowbytes + x / 8;
4639 /* Filter out palette info. */
4640 if (color & 0x00ffffff)
4641 *pixel = *pixel | (1 << x % 8);
4642 else
4643 *pixel = *pixel & ~(1 << x % 8);
4644 }
4645 else
4646 image_error ("XPutPixel: palette image not supported", Qnil, Qnil);
4647 }
4648
4649 #endif /* HAVE_NTGUI */
4650
4651 /* Create IMG->pixmap from an array COLORS of XColor structures, whose
4652 RGB members are set. F is the frame on which this all happens.
4653 COLORS will be freed; an existing IMG->pixmap will be freed, too. */
4654
4655 static void
4656 x_from_xcolors (struct frame *f, struct image *img, XColor *colors)
4657 {
4658 int x, y;
4659 XImagePtr oimg = NULL;
4660 XColor *p;
4661
4662 init_color_table ();
4663
4664 x_clear_image_1 (f, img, CLEAR_IMAGE_PIXMAP | CLEAR_IMAGE_COLORS);
4665 image_create_x_image_and_pixmap (f, img, img->width, img->height, 0,
4666 &oimg, 0);
4667 p = colors;
4668 for (y = 0; y < img->height; ++y)
4669 for (x = 0; x < img->width; ++x, ++p)
4670 {
4671 unsigned long pixel;
4672 pixel = lookup_rgb_color (f, p->red, p->green, p->blue);
4673 XPutPixel (oimg, x, y, pixel);
4674 }
4675
4676 xfree (colors);
4677
4678 image_put_x_image (f, img, oimg, 0);
4679 #ifdef COLOR_TABLE_SUPPORT
4680 img->colors = colors_in_color_table (&img->ncolors);
4681 free_color_table ();
4682 #endif /* COLOR_TABLE_SUPPORT */
4683 }
4684
4685
4686 /* On frame F, perform edge-detection on image IMG.
4687
4688 MATRIX is a nine-element array specifying the transformation
4689 matrix. See emboss_matrix for an example.
4690
4691 COLOR_ADJUST is a color adjustment added to each pixel of the
4692 outgoing image. */
4693
4694 static void
4695 x_detect_edges (struct frame *f, struct image *img, int *matrix, int color_adjust)
4696 {
4697 XColor *colors = x_to_xcolors (f, img, 1);
4698 XColor *new, *p;
4699 int x, y, i, sum;
4700
4701 for (i = sum = 0; i < 9; ++i)
4702 sum += eabs (matrix[i]);
4703
4704 #define COLOR(A, X, Y) ((A) + (Y) * img->width + (X))
4705
4706 if (min (PTRDIFF_MAX, SIZE_MAX) / sizeof *new / img->width < img->height)
4707 memory_full (SIZE_MAX);
4708 new = xmalloc (sizeof *new * img->width * img->height);
4709
4710 for (y = 0; y < img->height; ++y)
4711 {
4712 p = COLOR (new, 0, y);
4713 p->red = p->green = p->blue = 0xffff/2;
4714 p = COLOR (new, img->width - 1, y);
4715 p->red = p->green = p->blue = 0xffff/2;
4716 }
4717
4718 for (x = 1; x < img->width - 1; ++x)
4719 {
4720 p = COLOR (new, x, 0);
4721 p->red = p->green = p->blue = 0xffff/2;
4722 p = COLOR (new, x, img->height - 1);
4723 p->red = p->green = p->blue = 0xffff/2;
4724 }
4725
4726 for (y = 1; y < img->height - 1; ++y)
4727 {
4728 p = COLOR (new, 1, y);
4729
4730 for (x = 1; x < img->width - 1; ++x, ++p)
4731 {
4732 int r, g, b, yy, xx;
4733
4734 r = g = b = i = 0;
4735 for (yy = y - 1; yy < y + 2; ++yy)
4736 for (xx = x - 1; xx < x + 2; ++xx, ++i)
4737 if (matrix[i])
4738 {
4739 XColor *t = COLOR (colors, xx, yy);
4740 r += matrix[i] * t->red;
4741 g += matrix[i] * t->green;
4742 b += matrix[i] * t->blue;
4743 }
4744
4745 r = (r / sum + color_adjust) & 0xffff;
4746 g = (g / sum + color_adjust) & 0xffff;
4747 b = (b / sum + color_adjust) & 0xffff;
4748 p->red = p->green = p->blue = COLOR_INTENSITY (r, g, b);
4749 }
4750 }
4751
4752 xfree (colors);
4753 x_from_xcolors (f, img, new);
4754
4755 #undef COLOR
4756 }
4757
4758
4759 /* Perform the pre-defined `emboss' edge-detection on image IMG
4760 on frame F. */
4761
4762 static void
4763 x_emboss (struct frame *f, struct image *img)
4764 {
4765 x_detect_edges (f, img, emboss_matrix, 0xffff / 2);
4766 }
4767
4768
4769 /* Transform image IMG which is used on frame F with a Laplace
4770 edge-detection algorithm. The result is an image that can be used
4771 to draw disabled buttons, for example. */
4772
4773 static void
4774 x_laplace (struct frame *f, struct image *img)
4775 {
4776 x_detect_edges (f, img, laplace_matrix, 45000);
4777 }
4778
4779
4780 /* Perform edge-detection on image IMG on frame F, with specified
4781 transformation matrix MATRIX and color-adjustment COLOR_ADJUST.
4782
4783 MATRIX must be either
4784
4785 - a list of at least 9 numbers in row-major form
4786 - a vector of at least 9 numbers
4787
4788 COLOR_ADJUST nil means use a default; otherwise it must be a
4789 number. */
4790
4791 static void
4792 x_edge_detection (struct frame *f, struct image *img, Lisp_Object matrix,
4793 Lisp_Object color_adjust)
4794 {
4795 int i = 0;
4796 int trans[9];
4797
4798 if (CONSP (matrix))
4799 {
4800 for (i = 0;
4801 i < 9 && CONSP (matrix) && NUMBERP (XCAR (matrix));
4802 ++i, matrix = XCDR (matrix))
4803 trans[i] = XFLOATINT (XCAR (matrix));
4804 }
4805 else if (VECTORP (matrix) && ASIZE (matrix) >= 9)
4806 {
4807 for (i = 0; i < 9 && NUMBERP (AREF (matrix, i)); ++i)
4808 trans[i] = XFLOATINT (AREF (matrix, i));
4809 }
4810
4811 if (NILP (color_adjust))
4812 color_adjust = make_number (0xffff / 2);
4813
4814 if (i == 9 && NUMBERP (color_adjust))
4815 x_detect_edges (f, img, trans, XFLOATINT (color_adjust));
4816 }
4817
4818
4819 /* Transform image IMG on frame F so that it looks disabled. */
4820
4821 static void
4822 x_disable_image (struct frame *f, struct image *img)
4823 {
4824 Display_Info *dpyinfo = FRAME_X_DISPLAY_INFO (f);
4825 #ifdef HAVE_NTGUI
4826 int n_planes = dpyinfo->n_planes * dpyinfo->n_cbits;
4827 #else
4828 int n_planes = dpyinfo->n_planes;
4829 #endif /* HAVE_NTGUI */
4830
4831 if (n_planes >= 2)
4832 {
4833 /* Color (or grayscale). Convert to gray, and equalize. Just
4834 drawing such images with a stipple can look very odd, so
4835 we're using this method instead. */
4836 XColor *colors = x_to_xcolors (f, img, 1);
4837 XColor *p, *end;
4838 const int h = 15000;
4839 const int l = 30000;
4840
4841 for (p = colors, end = colors + img->width * img->height;
4842 p < end;
4843 ++p)
4844 {
4845 int i = COLOR_INTENSITY (p->red, p->green, p->blue);
4846 int i2 = (0xffff - h - l) * i / 0xffff + l;
4847 p->red = p->green = p->blue = i2;
4848 }
4849
4850 x_from_xcolors (f, img, colors);
4851 }
4852
4853 /* Draw a cross over the disabled image, if we must or if we
4854 should. */
4855 if (n_planes < 2 || cross_disabled_images)
4856 {
4857 #ifndef HAVE_NTGUI
4858 #ifndef HAVE_NS /* TODO: NS support, however this not needed for toolbars */
4859
4860 #define MaskForeground(f) WHITE_PIX_DEFAULT (f)
4861
4862 Display *dpy = FRAME_X_DISPLAY (f);
4863 GC gc;
4864
4865 image_sync_to_pixmaps (f, img);
4866 gc = XCreateGC (dpy, img->pixmap, 0, NULL);
4867 XSetForeground (dpy, gc, BLACK_PIX_DEFAULT (f));
4868 XDrawLine (dpy, img->pixmap, gc, 0, 0,
4869 img->width - 1, img->height - 1);
4870 XDrawLine (dpy, img->pixmap, gc, 0, img->height - 1,
4871 img->width - 1, 0);
4872 XFreeGC (dpy, gc);
4873
4874 if (img->mask)
4875 {
4876 gc = XCreateGC (dpy, img->mask, 0, NULL);
4877 XSetForeground (dpy, gc, MaskForeground (f));
4878 XDrawLine (dpy, img->mask, gc, 0, 0,
4879 img->width - 1, img->height - 1);
4880 XDrawLine (dpy, img->mask, gc, 0, img->height - 1,
4881 img->width - 1, 0);
4882 XFreeGC (dpy, gc);
4883 }
4884 #endif /* !HAVE_NS */
4885 #else
4886 HDC hdc, bmpdc;
4887 HGDIOBJ prev;
4888
4889 hdc = get_frame_dc (f);
4890 bmpdc = CreateCompatibleDC (hdc);
4891 release_frame_dc (f, hdc);
4892
4893 prev = SelectObject (bmpdc, img->pixmap);
4894
4895 SetTextColor (bmpdc, BLACK_PIX_DEFAULT (f));
4896 MoveToEx (bmpdc, 0, 0, NULL);
4897 LineTo (bmpdc, img->width - 1, img->height - 1);
4898 MoveToEx (bmpdc, 0, img->height - 1, NULL);
4899 LineTo (bmpdc, img->width - 1, 0);
4900
4901 if (img->mask)
4902 {
4903 SelectObject (bmpdc, img->mask);
4904 SetTextColor (bmpdc, WHITE_PIX_DEFAULT (f));
4905 MoveToEx (bmpdc, 0, 0, NULL);
4906 LineTo (bmpdc, img->width - 1, img->height - 1);
4907 MoveToEx (bmpdc, 0, img->height - 1, NULL);
4908 LineTo (bmpdc, img->width - 1, 0);
4909 }
4910 SelectObject (bmpdc, prev);
4911 DeleteDC (bmpdc);
4912 #endif /* HAVE_NTGUI */
4913 }
4914 }
4915
4916
4917 /* Build a mask for image IMG which is used on frame F. FILE is the
4918 name of an image file, for error messages. HOW determines how to
4919 determine the background color of IMG. If it is a list '(R G B)',
4920 with R, G, and B being integers >= 0, take that as the color of the
4921 background. Otherwise, determine the background color of IMG
4922 heuristically. */
4923
4924 static void
4925 x_build_heuristic_mask (struct frame *f, struct image *img, Lisp_Object how)
4926 {
4927 XImagePtr_or_DC ximg;
4928 #ifndef HAVE_NTGUI
4929 XImagePtr mask_img;
4930 #else
4931 HGDIOBJ prev;
4932 char *mask_img;
4933 int row_width;
4934 #endif /* HAVE_NTGUI */
4935 int x, y;
4936 bool rc, use_img_background;
4937 unsigned long bg = 0;
4938
4939 if (img->mask)
4940 x_clear_image_1 (f, img, CLEAR_IMAGE_MASK);
4941
4942 #ifndef HAVE_NTGUI
4943 #ifndef HAVE_NS
4944 /* Create an image and pixmap serving as mask. */
4945 rc = image_create_x_image_and_pixmap (f, img, img->width, img->height, 1,
4946 &mask_img, 1);
4947 if (!rc)
4948 return;
4949 #endif /* !HAVE_NS */
4950 #else
4951 /* Create the bit array serving as mask. */
4952 row_width = (img->width + 7) / 8;
4953 mask_img = xzalloc (row_width * img->height);
4954 #endif /* HAVE_NTGUI */
4955
4956 /* Get the X image or create a memory device context for IMG. */
4957 ximg = image_get_x_image_or_dc (f, img, 0, &prev);
4958
4959 /* Determine the background color of ximg. If HOW is `(R G B)'
4960 take that as color. Otherwise, use the image's background color. */
4961 use_img_background = 1;
4962
4963 if (CONSP (how))
4964 {
4965 int rgb[3], i;
4966
4967 for (i = 0; i < 3 && CONSP (how) && NATNUMP (XCAR (how)); ++i)
4968 {
4969 rgb[i] = XFASTINT (XCAR (how)) & 0xffff;
4970 how = XCDR (how);
4971 }
4972
4973 if (i == 3 && NILP (how))
4974 {
4975 char color_name[30];
4976 sprintf (color_name, "#%04x%04x%04x", rgb[0], rgb[1], rgb[2]);
4977 bg = (
4978 #ifdef HAVE_NTGUI
4979 0x00ffffff & /* Filter out palette info. */
4980 #endif /* HAVE_NTGUI */
4981 x_alloc_image_color (f, img, build_string (color_name), 0));
4982 use_img_background = 0;
4983 }
4984 }
4985
4986 if (use_img_background)
4987 bg = four_corners_best (ximg, img->corners, img->width, img->height);
4988
4989 /* Set all bits in mask_img to 1 whose color in ximg is different
4990 from the background color bg. */
4991 #ifndef HAVE_NTGUI
4992 for (y = 0; y < img->height; ++y)
4993 for (x = 0; x < img->width; ++x)
4994 #ifndef HAVE_NS
4995 XPutPixel (mask_img, x, y, (XGetPixel (ximg, x, y) != bg
4996 ? PIX_MASK_DRAW : PIX_MASK_RETAIN));
4997 #else
4998 if (XGetPixel (ximg, x, y) == bg)
4999 ns_set_alpha (ximg, x, y, 0);
5000 #endif /* HAVE_NS */
5001 #ifndef HAVE_NS
5002 /* Fill in the background_transparent field while we have the mask handy. */
5003 image_background_transparent (img, f, mask_img);
5004
5005 /* Put mask_img into the image. */
5006 image_put_x_image (f, img, mask_img, 1);
5007 #endif /* !HAVE_NS */
5008 #else
5009 for (y = 0; y < img->height; ++y)
5010 for (x = 0; x < img->width; ++x)
5011 {
5012 COLORREF p = GetPixel (ximg, x, y);
5013 if (p != bg)
5014 mask_img[y * row_width + x / 8] |= 1 << (x % 8);
5015 }
5016
5017 /* Create the mask image. */
5018 img->mask = w32_create_pixmap_from_bitmap_data (img->width, img->height,
5019 mask_img);
5020 /* Fill in the background_transparent field while we have the mask handy. */
5021 SelectObject (ximg, img->mask);
5022 image_background_transparent (img, f, ximg);
5023
5024 /* Was: x_destroy_x_image ((XImagePtr )mask_img); which seems bogus ++kfs */
5025 xfree (mask_img);
5026 #endif /* HAVE_NTGUI */
5027
5028 image_unget_x_image_or_dc (img, 0, ximg, prev);
5029 }
5030
5031 \f
5032 /***********************************************************************
5033 PBM (mono, gray, color)
5034 ***********************************************************************/
5035
5036 static bool pbm_image_p (Lisp_Object object);
5037 static bool pbm_load (struct frame *f, struct image *img);
5038
5039 /* The symbol `pbm' identifying images of this type. */
5040
5041 static Lisp_Object Qpbm;
5042
5043 /* Indices of image specification fields in gs_format, below. */
5044
5045 enum pbm_keyword_index
5046 {
5047 PBM_TYPE,
5048 PBM_FILE,
5049 PBM_DATA,
5050 PBM_ASCENT,
5051 PBM_MARGIN,
5052 PBM_RELIEF,
5053 PBM_ALGORITHM,
5054 PBM_HEURISTIC_MASK,
5055 PBM_MASK,
5056 PBM_FOREGROUND,
5057 PBM_BACKGROUND,
5058 PBM_LAST
5059 };
5060
5061 /* Vector of image_keyword structures describing the format
5062 of valid user-defined image specifications. */
5063
5064 static const struct image_keyword pbm_format[PBM_LAST] =
5065 {
5066 {":type", IMAGE_SYMBOL_VALUE, 1},
5067 {":file", IMAGE_STRING_VALUE, 0},
5068 {":data", IMAGE_STRING_VALUE, 0},
5069 {":ascent", IMAGE_ASCENT_VALUE, 0},
5070 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
5071 {":relief", IMAGE_INTEGER_VALUE, 0},
5072 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5073 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5074 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5075 {":foreground", IMAGE_STRING_OR_NIL_VALUE, 0},
5076 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
5077 };
5078
5079 /* Structure describing the image type `pbm'. */
5080
5081 static struct image_type pbm_type =
5082 {
5083 &Qpbm,
5084 pbm_image_p,
5085 pbm_load,
5086 x_clear_image,
5087 NULL,
5088 NULL
5089 };
5090
5091
5092 /* Return true if OBJECT is a valid PBM image specification. */
5093
5094 static bool
5095 pbm_image_p (Lisp_Object object)
5096 {
5097 struct image_keyword fmt[PBM_LAST];
5098
5099 memcpy (fmt, pbm_format, sizeof fmt);
5100
5101 if (!parse_image_spec (object, fmt, PBM_LAST, Qpbm))
5102 return 0;
5103
5104 /* Must specify either :data or :file. */
5105 return fmt[PBM_DATA].count + fmt[PBM_FILE].count == 1;
5106 }
5107
5108
5109 /* Scan a decimal number from *S and return it. Advance *S while
5110 reading the number. END is the end of the string. Value is -1 at
5111 end of input. */
5112
5113 static int
5114 pbm_scan_number (unsigned char **s, unsigned char *end)
5115 {
5116 int c = 0, val = -1;
5117
5118 while (*s < end)
5119 {
5120 /* Skip white-space. */
5121 while (*s < end && (c = *(*s)++, c_isspace (c)))
5122 ;
5123
5124 if (c == '#')
5125 {
5126 /* Skip comment to end of line. */
5127 while (*s < end && (c = *(*s)++, c != '\n'))
5128 ;
5129 }
5130 else if (c_isdigit (c))
5131 {
5132 /* Read decimal number. */
5133 val = c - '0';
5134 while (*s < end && (c = *(*s)++, c_isdigit (c)))
5135 val = 10 * val + c - '0';
5136 break;
5137 }
5138 else
5139 break;
5140 }
5141
5142 return val;
5143 }
5144
5145
5146 /* Load PBM image IMG for use on frame F. */
5147
5148 static bool
5149 pbm_load (struct frame *f, struct image *img)
5150 {
5151 bool raw_p;
5152 int x, y;
5153 int width, height, max_color_idx = 0;
5154 XImagePtr ximg;
5155 Lisp_Object file, specified_file;
5156 enum {PBM_MONO, PBM_GRAY, PBM_COLOR} type;
5157 unsigned char *contents = NULL;
5158 unsigned char *end, *p;
5159 ptrdiff_t size;
5160
5161 specified_file = image_spec_value (img->spec, QCfile, NULL);
5162
5163 if (STRINGP (specified_file))
5164 {
5165 file = x_find_image_file (specified_file);
5166 if (!STRINGP (file))
5167 {
5168 image_error ("Cannot find image file `%s'", specified_file, Qnil);
5169 return 0;
5170 }
5171
5172 contents = slurp_file (SSDATA (file), &size);
5173 if (contents == NULL)
5174 {
5175 image_error ("Error reading `%s'", file, Qnil);
5176 return 0;
5177 }
5178
5179 p = contents;
5180 end = contents + size;
5181 }
5182 else
5183 {
5184 Lisp_Object data;
5185 data = image_spec_value (img->spec, QCdata, NULL);
5186 if (!STRINGP (data))
5187 {
5188 image_error ("Invalid image data `%s'", data, Qnil);
5189 return 0;
5190 }
5191 p = SDATA (data);
5192 end = p + SBYTES (data);
5193 }
5194
5195 /* Check magic number. */
5196 if (end - p < 2 || *p++ != 'P')
5197 {
5198 image_error ("Not a PBM image: `%s'", img->spec, Qnil);
5199 error:
5200 xfree (contents);
5201 return 0;
5202 }
5203
5204 switch (*p++)
5205 {
5206 case '1':
5207 raw_p = 0, type = PBM_MONO;
5208 break;
5209
5210 case '2':
5211 raw_p = 0, type = PBM_GRAY;
5212 break;
5213
5214 case '3':
5215 raw_p = 0, type = PBM_COLOR;
5216 break;
5217
5218 case '4':
5219 raw_p = 1, type = PBM_MONO;
5220 break;
5221
5222 case '5':
5223 raw_p = 1, type = PBM_GRAY;
5224 break;
5225
5226 case '6':
5227 raw_p = 1, type = PBM_COLOR;
5228 break;
5229
5230 default:
5231 image_error ("Not a PBM image: `%s'", img->spec, Qnil);
5232 goto error;
5233 }
5234
5235 /* Read width, height, maximum color-component. Characters
5236 starting with `#' up to the end of a line are ignored. */
5237 width = pbm_scan_number (&p, end);
5238 height = pbm_scan_number (&p, end);
5239
5240 if (type != PBM_MONO)
5241 {
5242 max_color_idx = pbm_scan_number (&p, end);
5243 if (max_color_idx > 65535 || max_color_idx < 0)
5244 {
5245 image_error ("Unsupported maximum PBM color value", Qnil, Qnil);
5246 goto error;
5247 }
5248 }
5249
5250 if (!check_image_size (f, width, height))
5251 {
5252 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
5253 goto error;
5254 }
5255
5256 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
5257 goto error;
5258
5259 /* Initialize the color hash table. */
5260 init_color_table ();
5261
5262 if (type == PBM_MONO)
5263 {
5264 int c = 0, g;
5265 struct image_keyword fmt[PBM_LAST];
5266 unsigned long fg = FRAME_FOREGROUND_PIXEL (f);
5267 unsigned long bg = FRAME_BACKGROUND_PIXEL (f);
5268
5269 /* Parse the image specification. */
5270 memcpy (fmt, pbm_format, sizeof fmt);
5271 parse_image_spec (img->spec, fmt, PBM_LAST, Qpbm);
5272
5273 /* Get foreground and background colors, maybe allocate colors. */
5274 if (fmt[PBM_FOREGROUND].count
5275 && STRINGP (fmt[PBM_FOREGROUND].value))
5276 fg = x_alloc_image_color (f, img, fmt[PBM_FOREGROUND].value, fg);
5277 if (fmt[PBM_BACKGROUND].count
5278 && STRINGP (fmt[PBM_BACKGROUND].value))
5279 {
5280 bg = x_alloc_image_color (f, img, fmt[PBM_BACKGROUND].value, bg);
5281 img->background = bg;
5282 img->background_valid = 1;
5283 }
5284
5285 for (y = 0; y < height; ++y)
5286 for (x = 0; x < width; ++x)
5287 {
5288 if (raw_p)
5289 {
5290 if ((x & 7) == 0)
5291 {
5292 if (p >= end)
5293 {
5294 x_destroy_x_image (ximg);
5295 x_clear_image (f, img);
5296 image_error ("Invalid image size in image `%s'",
5297 img->spec, Qnil);
5298 goto error;
5299 }
5300 c = *p++;
5301 }
5302 g = c & 0x80;
5303 c <<= 1;
5304 }
5305 else
5306 g = pbm_scan_number (&p, end);
5307
5308 XPutPixel (ximg, x, y, g ? fg : bg);
5309 }
5310 }
5311 else
5312 {
5313 int expected_size = height * width;
5314 if (max_color_idx > 255)
5315 expected_size *= 2;
5316 if (type == PBM_COLOR)
5317 expected_size *= 3;
5318
5319 if (raw_p && p + expected_size > end)
5320 {
5321 x_destroy_x_image (ximg);
5322 x_clear_image (f, img);
5323 image_error ("Invalid image size in image `%s'",
5324 img->spec, Qnil);
5325 goto error;
5326 }
5327
5328 for (y = 0; y < height; ++y)
5329 for (x = 0; x < width; ++x)
5330 {
5331 int r, g, b;
5332
5333 if (type == PBM_GRAY && raw_p)
5334 {
5335 r = g = b = *p++;
5336 if (max_color_idx > 255)
5337 r = g = b = r * 256 + *p++;
5338 }
5339 else if (type == PBM_GRAY)
5340 r = g = b = pbm_scan_number (&p, end);
5341 else if (raw_p)
5342 {
5343 r = *p++;
5344 if (max_color_idx > 255)
5345 r = r * 256 + *p++;
5346 g = *p++;
5347 if (max_color_idx > 255)
5348 g = g * 256 + *p++;
5349 b = *p++;
5350 if (max_color_idx > 255)
5351 b = b * 256 + *p++;
5352 }
5353 else
5354 {
5355 r = pbm_scan_number (&p, end);
5356 g = pbm_scan_number (&p, end);
5357 b = pbm_scan_number (&p, end);
5358 }
5359
5360 if (r < 0 || g < 0 || b < 0)
5361 {
5362 x_destroy_x_image (ximg);
5363 image_error ("Invalid pixel value in image `%s'",
5364 img->spec, Qnil);
5365 goto error;
5366 }
5367
5368 /* RGB values are now in the range 0..max_color_idx.
5369 Scale this to the range 0..0xffff supported by X. */
5370 r = (double) r * 65535 / max_color_idx;
5371 g = (double) g * 65535 / max_color_idx;
5372 b = (double) b * 65535 / max_color_idx;
5373 XPutPixel (ximg, x, y, lookup_rgb_color (f, r, g, b));
5374 }
5375 }
5376
5377 #ifdef COLOR_TABLE_SUPPORT
5378 /* Store in IMG->colors the colors allocated for the image, and
5379 free the color table. */
5380 img->colors = colors_in_color_table (&img->ncolors);
5381 free_color_table ();
5382 #endif /* COLOR_TABLE_SUPPORT */
5383
5384 img->width = width;
5385 img->height = height;
5386
5387 /* Maybe fill in the background field while we have ximg handy. */
5388
5389 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
5390 /* Casting avoids a GCC warning. */
5391 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
5392
5393 /* Put ximg into the image. */
5394 image_put_x_image (f, img, ximg, 0);
5395
5396 /* X and W32 versions did it here, MAC version above. ++kfs
5397 img->width = width;
5398 img->height = height; */
5399
5400 xfree (contents);
5401 return 1;
5402 }
5403
5404 \f
5405 /***********************************************************************
5406 PNG
5407 ***********************************************************************/
5408
5409 #if defined (HAVE_PNG) || defined (HAVE_NS)
5410
5411 /* Function prototypes. */
5412
5413 static bool png_image_p (Lisp_Object object);
5414 static bool png_load (struct frame *f, struct image *img);
5415
5416 /* The symbol `png' identifying images of this type. */
5417
5418 static Lisp_Object Qpng;
5419
5420 /* Indices of image specification fields in png_format, below. */
5421
5422 enum png_keyword_index
5423 {
5424 PNG_TYPE,
5425 PNG_DATA,
5426 PNG_FILE,
5427 PNG_ASCENT,
5428 PNG_MARGIN,
5429 PNG_RELIEF,
5430 PNG_ALGORITHM,
5431 PNG_HEURISTIC_MASK,
5432 PNG_MASK,
5433 PNG_BACKGROUND,
5434 PNG_LAST
5435 };
5436
5437 /* Vector of image_keyword structures describing the format
5438 of valid user-defined image specifications. */
5439
5440 static const struct image_keyword png_format[PNG_LAST] =
5441 {
5442 {":type", IMAGE_SYMBOL_VALUE, 1},
5443 {":data", IMAGE_STRING_VALUE, 0},
5444 {":file", IMAGE_STRING_VALUE, 0},
5445 {":ascent", IMAGE_ASCENT_VALUE, 0},
5446 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
5447 {":relief", IMAGE_INTEGER_VALUE, 0},
5448 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5449 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5450 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
5451 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
5452 };
5453
5454 #if defined HAVE_NTGUI && defined WINDOWSNT
5455 static bool init_png_functions (void);
5456 #else
5457 #define init_png_functions NULL
5458 #endif
5459
5460 /* Structure describing the image type `png'. */
5461
5462 static struct image_type png_type =
5463 {
5464 &Qpng,
5465 png_image_p,
5466 png_load,
5467 x_clear_image,
5468 init_png_functions,
5469 NULL
5470 };
5471
5472 /* Return true if OBJECT is a valid PNG image specification. */
5473
5474 static bool
5475 png_image_p (Lisp_Object object)
5476 {
5477 struct image_keyword fmt[PNG_LAST];
5478 memcpy (fmt, png_format, sizeof fmt);
5479
5480 if (!parse_image_spec (object, fmt, PNG_LAST, Qpng))
5481 return 0;
5482
5483 /* Must specify either the :data or :file keyword. */
5484 return fmt[PNG_FILE].count + fmt[PNG_DATA].count == 1;
5485 }
5486
5487 #endif /* HAVE_PNG || HAVE_NS */
5488
5489
5490 #ifdef HAVE_PNG
5491
5492 #ifdef WINDOWSNT
5493 /* PNG library details. */
5494
5495 DEF_IMGLIB_FN (png_voidp, png_get_io_ptr, (png_structp));
5496 DEF_IMGLIB_FN (int, png_sig_cmp, (png_bytep, png_size_t, png_size_t));
5497 DEF_IMGLIB_FN (png_structp, png_create_read_struct, (png_const_charp, png_voidp,
5498 png_error_ptr, png_error_ptr));
5499 DEF_IMGLIB_FN (png_infop, png_create_info_struct, (png_structp));
5500 DEF_IMGLIB_FN (void, png_destroy_read_struct, (png_structpp, png_infopp, png_infopp));
5501 DEF_IMGLIB_FN (void, png_set_read_fn, (png_structp, png_voidp, png_rw_ptr));
5502 DEF_IMGLIB_FN (void, png_set_sig_bytes, (png_structp, int));
5503 DEF_IMGLIB_FN (void, png_read_info, (png_structp, png_infop));
5504 DEF_IMGLIB_FN (png_uint_32, png_get_IHDR, (png_structp, png_infop,
5505 png_uint_32 *, png_uint_32 *,
5506 int *, int *, int *, int *, int *));
5507 DEF_IMGLIB_FN (png_uint_32, png_get_valid, (png_structp, png_infop, png_uint_32));
5508 DEF_IMGLIB_FN (void, png_set_strip_16, (png_structp));
5509 DEF_IMGLIB_FN (void, png_set_expand, (png_structp));
5510 DEF_IMGLIB_FN (void, png_set_gray_to_rgb, (png_structp));
5511 DEF_IMGLIB_FN (void, png_set_background, (png_structp, png_color_16p,
5512 int, int, double));
5513 DEF_IMGLIB_FN (png_uint_32, png_get_bKGD, (png_structp, png_infop, png_color_16p *));
5514 DEF_IMGLIB_FN (void, png_read_update_info, (png_structp, png_infop));
5515 DEF_IMGLIB_FN (png_byte, png_get_channels, (png_structp, png_infop));
5516 DEF_IMGLIB_FN (png_size_t, png_get_rowbytes, (png_structp, png_infop));
5517 DEF_IMGLIB_FN (void, png_read_image, (png_structp, png_bytepp));
5518 DEF_IMGLIB_FN (void, png_read_end, (png_structp, png_infop));
5519 DEF_IMGLIB_FN (void, png_error, (png_structp, png_const_charp));
5520
5521 #if (PNG_LIBPNG_VER >= 10500)
5522 DEF_IMGLIB_FN (void, png_longjmp, (png_structp, int));
5523 DEF_IMGLIB_FN (jmp_buf *, png_set_longjmp_fn, (png_structp, png_longjmp_ptr, size_t));
5524 #endif /* libpng version >= 1.5 */
5525
5526 static bool
5527 init_png_functions (void)
5528 {
5529 HMODULE library;
5530
5531 if (!(library = w32_delayed_load (Qpng)))
5532 return 0;
5533
5534 LOAD_IMGLIB_FN (library, png_get_io_ptr);
5535 LOAD_IMGLIB_FN (library, png_sig_cmp);
5536 LOAD_IMGLIB_FN (library, png_create_read_struct);
5537 LOAD_IMGLIB_FN (library, png_create_info_struct);
5538 LOAD_IMGLIB_FN (library, png_destroy_read_struct);
5539 LOAD_IMGLIB_FN (library, png_set_read_fn);
5540 LOAD_IMGLIB_FN (library, png_set_sig_bytes);
5541 LOAD_IMGLIB_FN (library, png_read_info);
5542 LOAD_IMGLIB_FN (library, png_get_IHDR);
5543 LOAD_IMGLIB_FN (library, png_get_valid);
5544 LOAD_IMGLIB_FN (library, png_set_strip_16);
5545 LOAD_IMGLIB_FN (library, png_set_expand);
5546 LOAD_IMGLIB_FN (library, png_set_gray_to_rgb);
5547 LOAD_IMGLIB_FN (library, png_set_background);
5548 LOAD_IMGLIB_FN (library, png_get_bKGD);
5549 LOAD_IMGLIB_FN (library, png_read_update_info);
5550 LOAD_IMGLIB_FN (library, png_get_channels);
5551 LOAD_IMGLIB_FN (library, png_get_rowbytes);
5552 LOAD_IMGLIB_FN (library, png_read_image);
5553 LOAD_IMGLIB_FN (library, png_read_end);
5554 LOAD_IMGLIB_FN (library, png_error);
5555
5556 #if (PNG_LIBPNG_VER >= 10500)
5557 LOAD_IMGLIB_FN (library, png_longjmp);
5558 LOAD_IMGLIB_FN (library, png_set_longjmp_fn);
5559 #endif /* libpng version >= 1.5 */
5560
5561 return 1;
5562 }
5563 #else
5564
5565 #define fn_png_get_io_ptr png_get_io_ptr
5566 #define fn_png_sig_cmp png_sig_cmp
5567 #define fn_png_create_read_struct png_create_read_struct
5568 #define fn_png_create_info_struct png_create_info_struct
5569 #define fn_png_destroy_read_struct png_destroy_read_struct
5570 #define fn_png_set_read_fn png_set_read_fn
5571 #define fn_png_set_sig_bytes png_set_sig_bytes
5572 #define fn_png_read_info png_read_info
5573 #define fn_png_get_IHDR png_get_IHDR
5574 #define fn_png_get_valid png_get_valid
5575 #define fn_png_set_strip_16 png_set_strip_16
5576 #define fn_png_set_expand png_set_expand
5577 #define fn_png_set_gray_to_rgb png_set_gray_to_rgb
5578 #define fn_png_set_background png_set_background
5579 #define fn_png_get_bKGD png_get_bKGD
5580 #define fn_png_read_update_info png_read_update_info
5581 #define fn_png_get_channels png_get_channels
5582 #define fn_png_get_rowbytes png_get_rowbytes
5583 #define fn_png_read_image png_read_image
5584 #define fn_png_read_end png_read_end
5585 #define fn_png_error png_error
5586
5587 #if (PNG_LIBPNG_VER >= 10500)
5588 #define fn_png_longjmp png_longjmp
5589 #define fn_png_set_longjmp_fn png_set_longjmp_fn
5590 #endif /* libpng version >= 1.5 */
5591
5592 #endif /* WINDOWSNT */
5593
5594 /* Possibly inefficient/inexact substitutes for _setjmp and _longjmp.
5595 Do not use sys_setjmp, as PNG supports only jmp_buf. The _longjmp
5596 substitute may munge the signal mask, but that should be OK here.
5597 MinGW (MS-Windows) uses _setjmp and defines setjmp to _setjmp in
5598 the system header setjmp.h; don't mess up that. */
5599 #ifndef HAVE__SETJMP
5600 # define _setjmp(j) setjmp (j)
5601 # define _longjmp longjmp
5602 #endif
5603
5604 #if (PNG_LIBPNG_VER < 10500)
5605 #define PNG_LONGJMP(ptr) (_longjmp ((ptr)->jmpbuf, 1))
5606 #define PNG_JMPBUF(ptr) ((ptr)->jmpbuf)
5607 #else
5608 /* In libpng version 1.5, the jmpbuf member is hidden. (Bug#7908) */
5609 #define PNG_LONGJMP(ptr) (fn_png_longjmp ((ptr), 1))
5610 #define PNG_JMPBUF(ptr) \
5611 (*fn_png_set_longjmp_fn ((ptr), _longjmp, sizeof (jmp_buf)))
5612 #endif
5613
5614 /* Error and warning handlers installed when the PNG library
5615 is initialized. */
5616
5617 static _Noreturn void
5618 my_png_error (png_struct *png_ptr, const char *msg)
5619 {
5620 eassert (png_ptr != NULL);
5621 /* Avoid compiler warning about deprecated direct access to
5622 png_ptr's fields in libpng versions 1.4.x. */
5623 image_error ("PNG error: %s", build_string (msg), Qnil);
5624 PNG_LONGJMP (png_ptr);
5625 }
5626
5627
5628 static void
5629 my_png_warning (png_struct *png_ptr, const char *msg)
5630 {
5631 eassert (png_ptr != NULL);
5632 image_error ("PNG warning: %s", build_string (msg), Qnil);
5633 }
5634
5635 /* Memory source for PNG decoding. */
5636
5637 struct png_memory_storage
5638 {
5639 unsigned char *bytes; /* The data */
5640 ptrdiff_t len; /* How big is it? */
5641 ptrdiff_t index; /* Where are we? */
5642 };
5643
5644
5645 /* Function set as reader function when reading PNG image from memory.
5646 PNG_PTR is a pointer to the PNG control structure. Copy LENGTH
5647 bytes from the input to DATA. */
5648
5649 static void
5650 png_read_from_memory (png_structp png_ptr, png_bytep data, png_size_t length)
5651 {
5652 struct png_memory_storage *tbr
5653 = (struct png_memory_storage *) fn_png_get_io_ptr (png_ptr);
5654
5655 if (length > tbr->len - tbr->index)
5656 fn_png_error (png_ptr, "Read error");
5657
5658 memcpy (data, tbr->bytes + tbr->index, length);
5659 tbr->index = tbr->index + length;
5660 }
5661
5662
5663 /* Function set as reader function when reading PNG image from a file.
5664 PNG_PTR is a pointer to the PNG control structure. Copy LENGTH
5665 bytes from the input to DATA. */
5666
5667 static void
5668 png_read_from_file (png_structp png_ptr, png_bytep data, png_size_t length)
5669 {
5670 FILE *fp = (FILE *) fn_png_get_io_ptr (png_ptr);
5671
5672 if (fread (data, 1, length, fp) < length)
5673 fn_png_error (png_ptr, "Read error");
5674 }
5675
5676
5677 /* Load PNG image IMG for use on frame F. Value is true if
5678 successful. */
5679
5680 struct png_load_context
5681 {
5682 /* These are members so that longjmp doesn't munge local variables. */
5683 png_struct *png_ptr;
5684 png_info *info_ptr;
5685 png_info *end_info;
5686 FILE *fp;
5687 png_byte *pixels;
5688 png_byte **rows;
5689 };
5690
5691 static bool
5692 png_load_body (struct frame *f, struct image *img, struct png_load_context *c)
5693 {
5694 Lisp_Object file, specified_file;
5695 Lisp_Object specified_data;
5696 int x, y;
5697 ptrdiff_t i;
5698 XImagePtr ximg, mask_img = NULL;
5699 png_struct *png_ptr;
5700 png_info *info_ptr = NULL, *end_info = NULL;
5701 FILE *fp = NULL;
5702 png_byte sig[8];
5703 png_byte *pixels = NULL;
5704 png_byte **rows = NULL;
5705 png_uint_32 width, height;
5706 int bit_depth, color_type, interlace_type;
5707 png_byte channels;
5708 png_uint_32 row_bytes;
5709 bool transparent_p;
5710 struct png_memory_storage tbr; /* Data to be read */
5711
5712 /* Find out what file to load. */
5713 specified_file = image_spec_value (img->spec, QCfile, NULL);
5714 specified_data = image_spec_value (img->spec, QCdata, NULL);
5715
5716 if (NILP (specified_data))
5717 {
5718 file = x_find_image_file (specified_file);
5719 if (!STRINGP (file))
5720 {
5721 image_error ("Cannot find image file `%s'", specified_file, Qnil);
5722 return 0;
5723 }
5724
5725 /* Open the image file. */
5726 fp = fopen (SSDATA (file), "rb");
5727 if (!fp)
5728 {
5729 image_error ("Cannot open image file `%s'", file, Qnil);
5730 return 0;
5731 }
5732
5733 /* Check PNG signature. */
5734 if (fread (sig, 1, sizeof sig, fp) != sizeof sig
5735 || fn_png_sig_cmp (sig, 0, sizeof sig))
5736 {
5737 image_error ("Not a PNG file: `%s'", file, Qnil);
5738 fclose (fp);
5739 return 0;
5740 }
5741 }
5742 else
5743 {
5744 if (!STRINGP (specified_data))
5745 {
5746 image_error ("Invalid image data `%s'", specified_data, Qnil);
5747 return 0;
5748 }
5749
5750 /* Read from memory. */
5751 tbr.bytes = SDATA (specified_data);
5752 tbr.len = SBYTES (specified_data);
5753 tbr.index = 0;
5754
5755 /* Check PNG signature. */
5756 if (tbr.len < sizeof sig
5757 || fn_png_sig_cmp (tbr.bytes, 0, sizeof sig))
5758 {
5759 image_error ("Not a PNG image: `%s'", img->spec, Qnil);
5760 return 0;
5761 }
5762
5763 /* Need to skip past the signature. */
5764 tbr.bytes += sizeof (sig);
5765 }
5766
5767 /* Initialize read and info structs for PNG lib. */
5768 png_ptr = fn_png_create_read_struct (PNG_LIBPNG_VER_STRING,
5769 NULL, my_png_error,
5770 my_png_warning);
5771 if (png_ptr)
5772 {
5773 info_ptr = fn_png_create_info_struct (png_ptr);
5774 end_info = fn_png_create_info_struct (png_ptr);
5775 }
5776
5777 c->png_ptr = png_ptr;
5778 c->info_ptr = info_ptr;
5779 c->end_info = end_info;
5780 c->fp = fp;
5781 c->pixels = pixels;
5782 c->rows = rows;
5783
5784 if (! (info_ptr && end_info))
5785 {
5786 fn_png_destroy_read_struct (&c->png_ptr, &c->info_ptr, &c->end_info);
5787 png_ptr = 0;
5788 }
5789 if (! png_ptr)
5790 {
5791 if (fp) fclose (fp);
5792 return 0;
5793 }
5794
5795 /* Set error jump-back. We come back here when the PNG library
5796 detects an error. */
5797 if (_setjmp (PNG_JMPBUF (png_ptr)))
5798 {
5799 error:
5800 if (c->png_ptr)
5801 fn_png_destroy_read_struct (&c->png_ptr, &c->info_ptr, &c->end_info);
5802 xfree (c->pixels);
5803 xfree (c->rows);
5804 if (c->fp)
5805 fclose (c->fp);
5806 return 0;
5807 }
5808
5809 /* Silence a bogus diagnostic; see GCC bug 54561. */
5810 IF_LINT (fp = c->fp);
5811
5812 /* Read image info. */
5813 if (!NILP (specified_data))
5814 fn_png_set_read_fn (png_ptr, (void *) &tbr, png_read_from_memory);
5815 else
5816 fn_png_set_read_fn (png_ptr, (void *) fp, png_read_from_file);
5817
5818 fn_png_set_sig_bytes (png_ptr, sizeof sig);
5819 fn_png_read_info (png_ptr, info_ptr);
5820 fn_png_get_IHDR (png_ptr, info_ptr, &width, &height, &bit_depth, &color_type,
5821 &interlace_type, NULL, NULL);
5822
5823 if (! (width <= INT_MAX && height <= INT_MAX
5824 && check_image_size (f, width, height)))
5825 {
5826 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
5827 goto error;
5828 }
5829
5830 /* Create the X image and pixmap now, so that the work below can be
5831 omitted if the image is too large for X. */
5832 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
5833 goto error;
5834
5835 /* If image contains simply transparency data, we prefer to
5836 construct a clipping mask. */
5837 if (fn_png_get_valid (png_ptr, info_ptr, PNG_INFO_tRNS))
5838 transparent_p = 1;
5839 else
5840 transparent_p = 0;
5841
5842 /* This function is easier to write if we only have to handle
5843 one data format: RGB or RGBA with 8 bits per channel. Let's
5844 transform other formats into that format. */
5845
5846 /* Strip more than 8 bits per channel. */
5847 if (bit_depth == 16)
5848 fn_png_set_strip_16 (png_ptr);
5849
5850 /* Expand data to 24 bit RGB, or 8 bit grayscale, with alpha channel
5851 if available. */
5852 fn_png_set_expand (png_ptr);
5853
5854 /* Convert grayscale images to RGB. */
5855 if (color_type == PNG_COLOR_TYPE_GRAY
5856 || color_type == PNG_COLOR_TYPE_GRAY_ALPHA)
5857 fn_png_set_gray_to_rgb (png_ptr);
5858
5859 /* Handle alpha channel by combining the image with a background
5860 color. Do this only if a real alpha channel is supplied. For
5861 simple transparency, we prefer a clipping mask. */
5862 if (!transparent_p)
5863 {
5864 /* png_color_16 *image_bg; */
5865 Lisp_Object specified_bg
5866 = image_spec_value (img->spec, QCbackground, NULL);
5867 int shift = (bit_depth == 16) ? 0 : 8;
5868
5869 if (STRINGP (specified_bg))
5870 /* The user specified `:background', use that. */
5871 {
5872 XColor color;
5873 if (x_defined_color (f, SSDATA (specified_bg), &color, 0))
5874 {
5875 png_color_16 user_bg;
5876
5877 memset (&user_bg, 0, sizeof user_bg);
5878 user_bg.red = color.red >> shift;
5879 user_bg.green = color.green >> shift;
5880 user_bg.blue = color.blue >> shift;
5881
5882 fn_png_set_background (png_ptr, &user_bg,
5883 PNG_BACKGROUND_GAMMA_SCREEN, 0, 1.0);
5884 }
5885 }
5886 else
5887 {
5888 /* We use the current frame background, ignoring any default
5889 background color set by the image. */
5890 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NTGUI)
5891 XColor color;
5892 png_color_16 frame_background;
5893
5894 color.pixel = FRAME_BACKGROUND_PIXEL (f);
5895 x_query_color (f, &color);
5896
5897 memset (&frame_background, 0, sizeof frame_background);
5898 frame_background.red = color.red >> shift;
5899 frame_background.green = color.green >> shift;
5900 frame_background.blue = color.blue >> shift;
5901 #endif /* HAVE_X_WINDOWS */
5902
5903 fn_png_set_background (png_ptr, &frame_background,
5904 PNG_BACKGROUND_GAMMA_SCREEN, 0, 1.0);
5905 }
5906 }
5907
5908 /* Update info structure. */
5909 fn_png_read_update_info (png_ptr, info_ptr);
5910
5911 /* Get number of channels. Valid values are 1 for grayscale images
5912 and images with a palette, 2 for grayscale images with transparency
5913 information (alpha channel), 3 for RGB images, and 4 for RGB
5914 images with alpha channel, i.e. RGBA. If conversions above were
5915 sufficient we should only have 3 or 4 channels here. */
5916 channels = fn_png_get_channels (png_ptr, info_ptr);
5917 eassert (channels == 3 || channels == 4);
5918
5919 /* Number of bytes needed for one row of the image. */
5920 row_bytes = fn_png_get_rowbytes (png_ptr, info_ptr);
5921
5922 /* Allocate memory for the image. */
5923 if (min (PTRDIFF_MAX, SIZE_MAX) / sizeof *rows < height
5924 || min (PTRDIFF_MAX, SIZE_MAX) / sizeof *pixels / height < row_bytes)
5925 memory_full (SIZE_MAX);
5926 c->pixels = pixels = xmalloc (sizeof *pixels * row_bytes * height);
5927 c->rows = rows = xmalloc (height * sizeof *rows);
5928 for (i = 0; i < height; ++i)
5929 rows[i] = pixels + i * row_bytes;
5930
5931 /* Read the entire image. */
5932 fn_png_read_image (png_ptr, rows);
5933 fn_png_read_end (png_ptr, info_ptr);
5934 if (fp)
5935 {
5936 fclose (fp);
5937 c->fp = NULL;
5938 }
5939
5940 /* Create an image and pixmap serving as mask if the PNG image
5941 contains an alpha channel. */
5942 if (channels == 4
5943 && !transparent_p
5944 && !image_create_x_image_and_pixmap (f, img, width, height, 1,
5945 &mask_img, 1))
5946 {
5947 x_destroy_x_image (ximg);
5948 x_clear_image_1 (f, img, CLEAR_IMAGE_PIXMAP);
5949 goto error;
5950 }
5951
5952 /* Fill the X image and mask from PNG data. */
5953 init_color_table ();
5954
5955 for (y = 0; y < height; ++y)
5956 {
5957 png_byte *p = rows[y];
5958
5959 for (x = 0; x < width; ++x)
5960 {
5961 int r, g, b;
5962
5963 r = *p++ << 8;
5964 g = *p++ << 8;
5965 b = *p++ << 8;
5966 XPutPixel (ximg, x, y, lookup_rgb_color (f, r, g, b));
5967 /* An alpha channel, aka mask channel, associates variable
5968 transparency with an image. Where other image formats
5969 support binary transparency---fully transparent or fully
5970 opaque---PNG allows up to 254 levels of partial transparency.
5971 The PNG library implements partial transparency by combining
5972 the image with a specified background color.
5973
5974 I'm not sure how to handle this here nicely: because the
5975 background on which the image is displayed may change, for
5976 real alpha channel support, it would be necessary to create
5977 a new image for each possible background.
5978
5979 What I'm doing now is that a mask is created if we have
5980 boolean transparency information. Otherwise I'm using
5981 the frame's background color to combine the image with. */
5982
5983 if (channels == 4)
5984 {
5985 if (mask_img)
5986 XPutPixel (mask_img, x, y, *p > 0 ? PIX_MASK_DRAW : PIX_MASK_RETAIN);
5987 ++p;
5988 }
5989 }
5990 }
5991
5992 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
5993 /* Set IMG's background color from the PNG image, unless the user
5994 overrode it. */
5995 {
5996 png_color_16 *bg;
5997 if (fn_png_get_bKGD (png_ptr, info_ptr, &bg))
5998 {
5999 img->background = lookup_rgb_color (f, bg->red, bg->green, bg->blue);
6000 img->background_valid = 1;
6001 }
6002 }
6003
6004 #ifdef COLOR_TABLE_SUPPORT
6005 /* Remember colors allocated for this image. */
6006 img->colors = colors_in_color_table (&img->ncolors);
6007 free_color_table ();
6008 #endif /* COLOR_TABLE_SUPPORT */
6009
6010 /* Clean up. */
6011 fn_png_destroy_read_struct (&c->png_ptr, &c->info_ptr, &c->end_info);
6012 xfree (rows);
6013 xfree (pixels);
6014
6015 img->width = width;
6016 img->height = height;
6017
6018 /* Maybe fill in the background field while we have ximg handy.
6019 Casting avoids a GCC warning. */
6020 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
6021
6022 /* Put ximg into the image. */
6023 image_put_x_image (f, img, ximg, 0);
6024
6025 /* Same for the mask. */
6026 if (mask_img)
6027 {
6028 /* Fill in the background_transparent field while we have the
6029 mask handy. Casting avoids a GCC warning. */
6030 image_background_transparent (img, f, (XImagePtr_or_DC)mask_img);
6031
6032 image_put_x_image (f, img, mask_img, 1);
6033 }
6034
6035 return 1;
6036 }
6037
6038 static bool
6039 png_load (struct frame *f, struct image *img)
6040 {
6041 struct png_load_context c;
6042 return png_load_body (f, img, &c);
6043 }
6044
6045 #else /* HAVE_PNG */
6046
6047 #ifdef HAVE_NS
6048 static bool
6049 png_load (struct frame *f, struct image *img)
6050 {
6051 return ns_load_image (f, img,
6052 image_spec_value (img->spec, QCfile, NULL),
6053 image_spec_value (img->spec, QCdata, NULL));
6054 }
6055 #endif /* HAVE_NS */
6056
6057
6058 #endif /* !HAVE_PNG */
6059
6060
6061 \f
6062 /***********************************************************************
6063 JPEG
6064 ***********************************************************************/
6065
6066 #if defined (HAVE_JPEG) || defined (HAVE_NS)
6067
6068 static bool jpeg_image_p (Lisp_Object object);
6069 static bool jpeg_load (struct frame *f, struct image *img);
6070
6071 /* The symbol `jpeg' identifying images of this type. */
6072
6073 static Lisp_Object Qjpeg;
6074
6075 /* Indices of image specification fields in gs_format, below. */
6076
6077 enum jpeg_keyword_index
6078 {
6079 JPEG_TYPE,
6080 JPEG_DATA,
6081 JPEG_FILE,
6082 JPEG_ASCENT,
6083 JPEG_MARGIN,
6084 JPEG_RELIEF,
6085 JPEG_ALGORITHM,
6086 JPEG_HEURISTIC_MASK,
6087 JPEG_MASK,
6088 JPEG_BACKGROUND,
6089 JPEG_LAST
6090 };
6091
6092 /* Vector of image_keyword structures describing the format
6093 of valid user-defined image specifications. */
6094
6095 static const struct image_keyword jpeg_format[JPEG_LAST] =
6096 {
6097 {":type", IMAGE_SYMBOL_VALUE, 1},
6098 {":data", IMAGE_STRING_VALUE, 0},
6099 {":file", IMAGE_STRING_VALUE, 0},
6100 {":ascent", IMAGE_ASCENT_VALUE, 0},
6101 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
6102 {":relief", IMAGE_INTEGER_VALUE, 0},
6103 {":conversions", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6104 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6105 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6106 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
6107 };
6108
6109 #if defined HAVE_NTGUI && defined WINDOWSNT
6110 static bool init_jpeg_functions (void);
6111 #else
6112 #define init_jpeg_functions NULL
6113 #endif
6114
6115 /* Structure describing the image type `jpeg'. */
6116
6117 static struct image_type jpeg_type =
6118 {
6119 &Qjpeg,
6120 jpeg_image_p,
6121 jpeg_load,
6122 x_clear_image,
6123 init_jpeg_functions,
6124 NULL
6125 };
6126
6127 /* Return true if OBJECT is a valid JPEG image specification. */
6128
6129 static bool
6130 jpeg_image_p (Lisp_Object object)
6131 {
6132 struct image_keyword fmt[JPEG_LAST];
6133
6134 memcpy (fmt, jpeg_format, sizeof fmt);
6135
6136 if (!parse_image_spec (object, fmt, JPEG_LAST, Qjpeg))
6137 return 0;
6138
6139 /* Must specify either the :data or :file keyword. */
6140 return fmt[JPEG_FILE].count + fmt[JPEG_DATA].count == 1;
6141 }
6142
6143 #endif /* HAVE_JPEG || HAVE_NS */
6144
6145 #ifdef HAVE_JPEG
6146
6147 /* Work around a warning about HAVE_STDLIB_H being redefined in
6148 jconfig.h. */
6149 #ifdef HAVE_STDLIB_H
6150 #undef HAVE_STDLIB_H
6151 #endif /* HAVE_STLIB_H */
6152
6153 #if defined (HAVE_NTGUI) && !defined (__WIN32__)
6154 /* In older releases of the jpeg library, jpeglib.h will define boolean
6155 differently depending on __WIN32__, so make sure it is defined. */
6156 #define __WIN32__ 1
6157 #endif
6158
6159 /* rpcndr.h (via windows.h) and jpeglib.h both define boolean types.
6160 Some versions of jpeglib try to detect whether rpcndr.h is loaded,
6161 using the Windows boolean type instead of the jpeglib boolean type
6162 if so. Cygwin jpeglib, however, doesn't try to detect whether its
6163 headers are included along with windows.h, so under Cygwin, jpeglib
6164 attempts to define a conflicting boolean type. Worse, forcing
6165 Cygwin jpeglib headers to use the Windows boolean type doesn't work
6166 because it created an ABI incompatibility between the
6167 already-compiled jpeg library and the header interface definition.
6168
6169 The best we can do is to define jpeglib's boolean type to a
6170 different name. This name, jpeg_boolean, remains in effect through
6171 the rest of image.c.
6172 */
6173 #if defined CYGWIN && defined HAVE_NTGUI
6174 #define boolean jpeg_boolean
6175 #endif
6176 #include <jpeglib.h>
6177 #include <jerror.h>
6178
6179 #ifdef WINDOWSNT
6180
6181 /* JPEG library details. */
6182 DEF_IMGLIB_FN (void, jpeg_CreateDecompress, (j_decompress_ptr, int, size_t));
6183 DEF_IMGLIB_FN (boolean, jpeg_start_decompress, (j_decompress_ptr));
6184 DEF_IMGLIB_FN (boolean, jpeg_finish_decompress, (j_decompress_ptr));
6185 DEF_IMGLIB_FN (void, jpeg_destroy_decompress, (j_decompress_ptr));
6186 DEF_IMGLIB_FN (int, jpeg_read_header, (j_decompress_ptr, boolean));
6187 DEF_IMGLIB_FN (JDIMENSION, jpeg_read_scanlines, (j_decompress_ptr, JSAMPARRAY, JDIMENSION));
6188 DEF_IMGLIB_FN (struct jpeg_error_mgr *, jpeg_std_error, (struct jpeg_error_mgr *));
6189 DEF_IMGLIB_FN (boolean, jpeg_resync_to_restart, (j_decompress_ptr, int));
6190
6191 static bool
6192 init_jpeg_functions (void)
6193 {
6194 HMODULE library;
6195
6196 if (!(library = w32_delayed_load (Qjpeg)))
6197 return 0;
6198
6199 LOAD_IMGLIB_FN (library, jpeg_finish_decompress);
6200 LOAD_IMGLIB_FN (library, jpeg_read_scanlines);
6201 LOAD_IMGLIB_FN (library, jpeg_start_decompress);
6202 LOAD_IMGLIB_FN (library, jpeg_read_header);
6203 LOAD_IMGLIB_FN (library, jpeg_CreateDecompress);
6204 LOAD_IMGLIB_FN (library, jpeg_destroy_decompress);
6205 LOAD_IMGLIB_FN (library, jpeg_std_error);
6206 LOAD_IMGLIB_FN (library, jpeg_resync_to_restart);
6207 return 1;
6208 }
6209
6210 /* Wrapper since we can't directly assign the function pointer
6211 to another function pointer that was declared more completely easily. */
6212 static boolean
6213 jpeg_resync_to_restart_wrapper (j_decompress_ptr cinfo, int desired)
6214 {
6215 return fn_jpeg_resync_to_restart (cinfo, desired);
6216 }
6217
6218 #else
6219
6220 #define fn_jpeg_CreateDecompress(a,b,c) jpeg_create_decompress (a)
6221 #define fn_jpeg_start_decompress jpeg_start_decompress
6222 #define fn_jpeg_finish_decompress jpeg_finish_decompress
6223 #define fn_jpeg_destroy_decompress jpeg_destroy_decompress
6224 #define fn_jpeg_read_header jpeg_read_header
6225 #define fn_jpeg_read_scanlines jpeg_read_scanlines
6226 #define fn_jpeg_std_error jpeg_std_error
6227 #define jpeg_resync_to_restart_wrapper jpeg_resync_to_restart
6228
6229 #endif /* WINDOWSNT */
6230
6231 struct my_jpeg_error_mgr
6232 {
6233 struct jpeg_error_mgr pub;
6234 sys_jmp_buf setjmp_buffer;
6235
6236 /* The remaining members are so that longjmp doesn't munge local
6237 variables. */
6238 struct jpeg_decompress_struct cinfo;
6239 enum
6240 {
6241 MY_JPEG_ERROR_EXIT,
6242 MY_JPEG_INVALID_IMAGE_SIZE,
6243 MY_JPEG_CANNOT_CREATE_X
6244 } failure_code;
6245 #ifdef lint
6246 FILE *fp;
6247 #endif
6248 };
6249
6250
6251 static _Noreturn void
6252 my_error_exit (j_common_ptr cinfo)
6253 {
6254 struct my_jpeg_error_mgr *mgr = (struct my_jpeg_error_mgr *) cinfo->err;
6255 mgr->failure_code = MY_JPEG_ERROR_EXIT;
6256 sys_longjmp (mgr->setjmp_buffer, 1);
6257 }
6258
6259
6260 /* Init source method for JPEG data source manager. Called by
6261 jpeg_read_header() before any data is actually read. See
6262 libjpeg.doc from the JPEG lib distribution. */
6263
6264 static void
6265 our_common_init_source (j_decompress_ptr cinfo)
6266 {
6267 }
6268
6269
6270 /* Method to terminate data source. Called by
6271 jpeg_finish_decompress() after all data has been processed. */
6272
6273 static void
6274 our_common_term_source (j_decompress_ptr cinfo)
6275 {
6276 }
6277
6278
6279 /* Fill input buffer method for JPEG data source manager. Called
6280 whenever more data is needed. We read the whole image in one step,
6281 so this only adds a fake end of input marker at the end. */
6282
6283 static JOCTET our_memory_buffer[2];
6284
6285 static boolean
6286 our_memory_fill_input_buffer (j_decompress_ptr cinfo)
6287 {
6288 /* Insert a fake EOI marker. */
6289 struct jpeg_source_mgr *src = cinfo->src;
6290
6291 our_memory_buffer[0] = (JOCTET) 0xFF;
6292 our_memory_buffer[1] = (JOCTET) JPEG_EOI;
6293
6294 src->next_input_byte = our_memory_buffer;
6295 src->bytes_in_buffer = 2;
6296 return 1;
6297 }
6298
6299
6300 /* Method to skip over NUM_BYTES bytes in the image data. CINFO->src
6301 is the JPEG data source manager. */
6302
6303 static void
6304 our_memory_skip_input_data (j_decompress_ptr cinfo, long int num_bytes)
6305 {
6306 struct jpeg_source_mgr *src = (struct jpeg_source_mgr *) cinfo->src;
6307
6308 if (src)
6309 {
6310 if (num_bytes > src->bytes_in_buffer)
6311 ERREXIT (cinfo, JERR_INPUT_EOF);
6312
6313 src->bytes_in_buffer -= num_bytes;
6314 src->next_input_byte += num_bytes;
6315 }
6316 }
6317
6318
6319 /* Set up the JPEG lib for reading an image from DATA which contains
6320 LEN bytes. CINFO is the decompression info structure created for
6321 reading the image. */
6322
6323 static void
6324 jpeg_memory_src (j_decompress_ptr cinfo, JOCTET *data, ptrdiff_t len)
6325 {
6326 struct jpeg_source_mgr *src;
6327
6328 if (cinfo->src == NULL)
6329 {
6330 /* First time for this JPEG object? */
6331 cinfo->src = (struct jpeg_source_mgr *)
6332 (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
6333 sizeof (struct jpeg_source_mgr));
6334 src = (struct jpeg_source_mgr *) cinfo->src;
6335 src->next_input_byte = data;
6336 }
6337
6338 src = (struct jpeg_source_mgr *) cinfo->src;
6339 src->init_source = our_common_init_source;
6340 src->fill_input_buffer = our_memory_fill_input_buffer;
6341 src->skip_input_data = our_memory_skip_input_data;
6342 src->resync_to_restart = jpeg_resync_to_restart_wrapper; /* Use default method. */
6343 src->term_source = our_common_term_source;
6344 src->bytes_in_buffer = len;
6345 src->next_input_byte = data;
6346 }
6347
6348
6349 struct jpeg_stdio_mgr
6350 {
6351 struct jpeg_source_mgr mgr;
6352 boolean finished;
6353 FILE *file;
6354 JOCTET *buffer;
6355 };
6356
6357
6358 /* Size of buffer to read JPEG from file.
6359 Not too big, as we want to use alloc_small. */
6360 #define JPEG_STDIO_BUFFER_SIZE 8192
6361
6362
6363 /* Fill input buffer method for JPEG data source manager. Called
6364 whenever more data is needed. The data is read from a FILE *. */
6365
6366 static boolean
6367 our_stdio_fill_input_buffer (j_decompress_ptr cinfo)
6368 {
6369 struct jpeg_stdio_mgr *src;
6370
6371 src = (struct jpeg_stdio_mgr *) cinfo->src;
6372 if (!src->finished)
6373 {
6374 ptrdiff_t bytes;
6375
6376 bytes = fread (src->buffer, 1, JPEG_STDIO_BUFFER_SIZE, src->file);
6377 if (bytes > 0)
6378 src->mgr.bytes_in_buffer = bytes;
6379 else
6380 {
6381 WARNMS (cinfo, JWRN_JPEG_EOF);
6382 src->finished = 1;
6383 src->buffer[0] = (JOCTET) 0xFF;
6384 src->buffer[1] = (JOCTET) JPEG_EOI;
6385 src->mgr.bytes_in_buffer = 2;
6386 }
6387 src->mgr.next_input_byte = src->buffer;
6388 }
6389
6390 return 1;
6391 }
6392
6393
6394 /* Method to skip over NUM_BYTES bytes in the image data. CINFO->src
6395 is the JPEG data source manager. */
6396
6397 static void
6398 our_stdio_skip_input_data (j_decompress_ptr cinfo, long int num_bytes)
6399 {
6400 struct jpeg_stdio_mgr *src;
6401 src = (struct jpeg_stdio_mgr *) cinfo->src;
6402
6403 while (num_bytes > 0 && !src->finished)
6404 {
6405 if (num_bytes <= src->mgr.bytes_in_buffer)
6406 {
6407 src->mgr.bytes_in_buffer -= num_bytes;
6408 src->mgr.next_input_byte += num_bytes;
6409 break;
6410 }
6411 else
6412 {
6413 num_bytes -= src->mgr.bytes_in_buffer;
6414 src->mgr.bytes_in_buffer = 0;
6415 src->mgr.next_input_byte = NULL;
6416
6417 our_stdio_fill_input_buffer (cinfo);
6418 }
6419 }
6420 }
6421
6422
6423 /* Set up the JPEG lib for reading an image from a FILE *.
6424 CINFO is the decompression info structure created for
6425 reading the image. */
6426
6427 static void
6428 jpeg_file_src (j_decompress_ptr cinfo, FILE *fp)
6429 {
6430 struct jpeg_stdio_mgr *src;
6431
6432 if (cinfo->src != NULL)
6433 src = (struct jpeg_stdio_mgr *) cinfo->src;
6434 else
6435 {
6436 /* First time for this JPEG object? */
6437 cinfo->src = (struct jpeg_source_mgr *)
6438 (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
6439 sizeof (struct jpeg_stdio_mgr));
6440 src = (struct jpeg_stdio_mgr *) cinfo->src;
6441 src->buffer = (JOCTET *)
6442 (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
6443 JPEG_STDIO_BUFFER_SIZE);
6444 }
6445
6446 src->file = fp;
6447 src->finished = 0;
6448 src->mgr.init_source = our_common_init_source;
6449 src->mgr.fill_input_buffer = our_stdio_fill_input_buffer;
6450 src->mgr.skip_input_data = our_stdio_skip_input_data;
6451 src->mgr.resync_to_restart = jpeg_resync_to_restart_wrapper; /* Use default method. */
6452 src->mgr.term_source = our_common_term_source;
6453 src->mgr.bytes_in_buffer = 0;
6454 src->mgr.next_input_byte = NULL;
6455 }
6456
6457
6458 /* Load image IMG for use on frame F. Patterned after example.c
6459 from the JPEG lib. */
6460
6461 static bool
6462 jpeg_load_body (struct frame *f, struct image *img,
6463 struct my_jpeg_error_mgr *mgr)
6464 {
6465 Lisp_Object file, specified_file;
6466 Lisp_Object specified_data;
6467 FILE *fp = NULL;
6468 JSAMPARRAY buffer;
6469 int row_stride, x, y;
6470 XImagePtr ximg = NULL;
6471 unsigned long *colors;
6472 int width, height;
6473
6474 /* Open the JPEG file. */
6475 specified_file = image_spec_value (img->spec, QCfile, NULL);
6476 specified_data = image_spec_value (img->spec, QCdata, NULL);
6477
6478 if (NILP (specified_data))
6479 {
6480 file = x_find_image_file (specified_file);
6481 if (!STRINGP (file))
6482 {
6483 image_error ("Cannot find image file `%s'", specified_file, Qnil);
6484 return 0;
6485 }
6486
6487 fp = fopen (SSDATA (file), "rb");
6488 if (fp == NULL)
6489 {
6490 image_error ("Cannot open `%s'", file, Qnil);
6491 return 0;
6492 }
6493 }
6494 else if (!STRINGP (specified_data))
6495 {
6496 image_error ("Invalid image data `%s'", specified_data, Qnil);
6497 return 0;
6498 }
6499
6500 IF_LINT (mgr->fp = fp);
6501
6502 /* Customize libjpeg's error handling to call my_error_exit when an
6503 error is detected. This function will perform a longjmp. */
6504 mgr->cinfo.err = fn_jpeg_std_error (&mgr->pub);
6505 mgr->pub.error_exit = my_error_exit;
6506 if (sys_setjmp (mgr->setjmp_buffer))
6507 {
6508 switch (mgr->failure_code)
6509 {
6510 case MY_JPEG_ERROR_EXIT:
6511 {
6512 char buf[JMSG_LENGTH_MAX];
6513 mgr->cinfo.err->format_message ((j_common_ptr) &mgr->cinfo, buf);
6514 image_error ("Error reading JPEG image `%s': %s", img->spec,
6515 build_string (buf));
6516 break;
6517 }
6518
6519 case MY_JPEG_INVALID_IMAGE_SIZE:
6520 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
6521 break;
6522
6523 case MY_JPEG_CANNOT_CREATE_X:
6524 break;
6525 }
6526
6527 /* Close the input file and destroy the JPEG object. */
6528 if (fp)
6529 fclose (fp);
6530 fn_jpeg_destroy_decompress (&mgr->cinfo);
6531
6532 /* If we already have an XImage, free that. */
6533 x_destroy_x_image (ximg);
6534
6535 /* Free pixmap and colors. */
6536 x_clear_image (f, img);
6537 return 0;
6538 }
6539
6540 /* Silence a bogus diagnostic; see GCC bug 54561. */
6541 IF_LINT (fp = mgr->fp);
6542
6543 /* Create the JPEG decompression object. Let it read from fp.
6544 Read the JPEG image header. */
6545 fn_jpeg_CreateDecompress (&mgr->cinfo, JPEG_LIB_VERSION, sizeof *&mgr->cinfo);
6546
6547 if (NILP (specified_data))
6548 jpeg_file_src (&mgr->cinfo, fp);
6549 else
6550 jpeg_memory_src (&mgr->cinfo, SDATA (specified_data),
6551 SBYTES (specified_data));
6552
6553 fn_jpeg_read_header (&mgr->cinfo, 1);
6554
6555 /* Customize decompression so that color quantization will be used.
6556 Start decompression. */
6557 mgr->cinfo.quantize_colors = 1;
6558 fn_jpeg_start_decompress (&mgr->cinfo);
6559 width = img->width = mgr->cinfo.output_width;
6560 height = img->height = mgr->cinfo.output_height;
6561
6562 if (!check_image_size (f, width, height))
6563 {
6564 mgr->failure_code = MY_JPEG_INVALID_IMAGE_SIZE;
6565 sys_longjmp (mgr->setjmp_buffer, 1);
6566 }
6567
6568 /* Create X image and pixmap. */
6569 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
6570 {
6571 mgr->failure_code = MY_JPEG_CANNOT_CREATE_X;
6572 sys_longjmp (mgr->setjmp_buffer, 1);
6573 }
6574
6575 /* Allocate colors. When color quantization is used,
6576 mgr->cinfo.actual_number_of_colors has been set with the number of
6577 colors generated, and mgr->cinfo.colormap is a two-dimensional array
6578 of color indices in the range 0..mgr->cinfo.actual_number_of_colors.
6579 No more than 255 colors will be generated. */
6580 {
6581 int i, ir, ig, ib;
6582
6583 if (mgr->cinfo.out_color_components > 2)
6584 ir = 0, ig = 1, ib = 2;
6585 else if (mgr->cinfo.out_color_components > 1)
6586 ir = 0, ig = 1, ib = 0;
6587 else
6588 ir = 0, ig = 0, ib = 0;
6589
6590 /* Use the color table mechanism because it handles colors that
6591 cannot be allocated nicely. Such colors will be replaced with
6592 a default color, and we don't have to care about which colors
6593 can be freed safely, and which can't. */
6594 init_color_table ();
6595 colors = alloca (mgr->cinfo.actual_number_of_colors * sizeof *colors);
6596
6597 for (i = 0; i < mgr->cinfo.actual_number_of_colors; ++i)
6598 {
6599 /* Multiply RGB values with 255 because X expects RGB values
6600 in the range 0..0xffff. */
6601 int r = mgr->cinfo.colormap[ir][i] << 8;
6602 int g = mgr->cinfo.colormap[ig][i] << 8;
6603 int b = mgr->cinfo.colormap[ib][i] << 8;
6604 colors[i] = lookup_rgb_color (f, r, g, b);
6605 }
6606
6607 #ifdef COLOR_TABLE_SUPPORT
6608 /* Remember those colors actually allocated. */
6609 img->colors = colors_in_color_table (&img->ncolors);
6610 free_color_table ();
6611 #endif /* COLOR_TABLE_SUPPORT */
6612 }
6613
6614 /* Read pixels. */
6615 row_stride = width * mgr->cinfo.output_components;
6616 buffer = mgr->cinfo.mem->alloc_sarray ((j_common_ptr) &mgr->cinfo,
6617 JPOOL_IMAGE, row_stride, 1);
6618 for (y = 0; y < height; ++y)
6619 {
6620 fn_jpeg_read_scanlines (&mgr->cinfo, buffer, 1);
6621 for (x = 0; x < mgr->cinfo.output_width; ++x)
6622 XPutPixel (ximg, x, y, colors[buffer[0][x]]);
6623 }
6624
6625 /* Clean up. */
6626 fn_jpeg_finish_decompress (&mgr->cinfo);
6627 fn_jpeg_destroy_decompress (&mgr->cinfo);
6628 if (fp)
6629 fclose (fp);
6630
6631 /* Maybe fill in the background field while we have ximg handy. */
6632 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
6633 /* Casting avoids a GCC warning. */
6634 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
6635
6636 /* Put ximg into the image. */
6637 image_put_x_image (f, img, ximg, 0);
6638 return 1;
6639 }
6640
6641 static bool
6642 jpeg_load (struct frame *f, struct image *img)
6643 {
6644 struct my_jpeg_error_mgr mgr;
6645 return jpeg_load_body (f, img, &mgr);
6646 }
6647
6648 #else /* HAVE_JPEG */
6649
6650 #ifdef HAVE_NS
6651 static bool
6652 jpeg_load (struct frame *f, struct image *img)
6653 {
6654 return ns_load_image (f, img,
6655 image_spec_value (img->spec, QCfile, NULL),
6656 image_spec_value (img->spec, QCdata, NULL));
6657 }
6658 #endif /* HAVE_NS */
6659
6660 #endif /* !HAVE_JPEG */
6661
6662
6663 \f
6664 /***********************************************************************
6665 TIFF
6666 ***********************************************************************/
6667
6668 #if defined (HAVE_TIFF) || defined (HAVE_NS)
6669
6670 static bool tiff_image_p (Lisp_Object object);
6671 static bool tiff_load (struct frame *f, struct image *img);
6672
6673 /* The symbol `tiff' identifying images of this type. */
6674
6675 static Lisp_Object Qtiff;
6676
6677 /* Indices of image specification fields in tiff_format, below. */
6678
6679 enum tiff_keyword_index
6680 {
6681 TIFF_TYPE,
6682 TIFF_DATA,
6683 TIFF_FILE,
6684 TIFF_ASCENT,
6685 TIFF_MARGIN,
6686 TIFF_RELIEF,
6687 TIFF_ALGORITHM,
6688 TIFF_HEURISTIC_MASK,
6689 TIFF_MASK,
6690 TIFF_BACKGROUND,
6691 TIFF_INDEX,
6692 TIFF_LAST
6693 };
6694
6695 /* Vector of image_keyword structures describing the format
6696 of valid user-defined image specifications. */
6697
6698 static const struct image_keyword tiff_format[TIFF_LAST] =
6699 {
6700 {":type", IMAGE_SYMBOL_VALUE, 1},
6701 {":data", IMAGE_STRING_VALUE, 0},
6702 {":file", IMAGE_STRING_VALUE, 0},
6703 {":ascent", IMAGE_ASCENT_VALUE, 0},
6704 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
6705 {":relief", IMAGE_INTEGER_VALUE, 0},
6706 {":conversions", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6707 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6708 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
6709 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
6710 {":index", IMAGE_NON_NEGATIVE_INTEGER_VALUE, 0}
6711 };
6712
6713 #if defined HAVE_NTGUI && defined WINDOWSNT
6714 static bool init_tiff_functions (void);
6715 #else
6716 #define init_tiff_functions NULL
6717 #endif
6718
6719 /* Structure describing the image type `tiff'. */
6720
6721 static struct image_type tiff_type =
6722 {
6723 &Qtiff,
6724 tiff_image_p,
6725 tiff_load,
6726 x_clear_image,
6727 init_tiff_functions,
6728 NULL
6729 };
6730
6731 /* Return true if OBJECT is a valid TIFF image specification. */
6732
6733 static bool
6734 tiff_image_p (Lisp_Object object)
6735 {
6736 struct image_keyword fmt[TIFF_LAST];
6737 memcpy (fmt, tiff_format, sizeof fmt);
6738
6739 if (!parse_image_spec (object, fmt, TIFF_LAST, Qtiff))
6740 return 0;
6741
6742 /* Must specify either the :data or :file keyword. */
6743 return fmt[TIFF_FILE].count + fmt[TIFF_DATA].count == 1;
6744 }
6745
6746 #endif /* HAVE_TIFF || HAVE_NS */
6747
6748 #ifdef HAVE_TIFF
6749
6750 #include <tiffio.h>
6751
6752 #ifdef WINDOWSNT
6753
6754 /* TIFF library details. */
6755 DEF_IMGLIB_FN (TIFFErrorHandler, TIFFSetErrorHandler, (TIFFErrorHandler));
6756 DEF_IMGLIB_FN (TIFFErrorHandler, TIFFSetWarningHandler, (TIFFErrorHandler));
6757 DEF_IMGLIB_FN (TIFF *, TIFFOpen, (const char *, const char *));
6758 DEF_IMGLIB_FN (TIFF *, TIFFClientOpen, (const char *, const char *, thandle_t,
6759 TIFFReadWriteProc, TIFFReadWriteProc,
6760 TIFFSeekProc, TIFFCloseProc, TIFFSizeProc,
6761 TIFFMapFileProc, TIFFUnmapFileProc));
6762 DEF_IMGLIB_FN (int, TIFFGetField, (TIFF *, ttag_t, ...));
6763 DEF_IMGLIB_FN (int, TIFFReadRGBAImage, (TIFF *, uint32, uint32, uint32 *, int));
6764 DEF_IMGLIB_FN (void, TIFFClose, (TIFF *));
6765 DEF_IMGLIB_FN (int, TIFFSetDirectory, (TIFF *, tdir_t));
6766
6767 static bool
6768 init_tiff_functions (void)
6769 {
6770 HMODULE library;
6771
6772 if (!(library = w32_delayed_load (Qtiff)))
6773 return 0;
6774
6775 LOAD_IMGLIB_FN (library, TIFFSetErrorHandler);
6776 LOAD_IMGLIB_FN (library, TIFFSetWarningHandler);
6777 LOAD_IMGLIB_FN (library, TIFFOpen);
6778 LOAD_IMGLIB_FN (library, TIFFClientOpen);
6779 LOAD_IMGLIB_FN (library, TIFFGetField);
6780 LOAD_IMGLIB_FN (library, TIFFReadRGBAImage);
6781 LOAD_IMGLIB_FN (library, TIFFClose);
6782 LOAD_IMGLIB_FN (library, TIFFSetDirectory);
6783 return 1;
6784 }
6785
6786 #else
6787
6788 #define fn_TIFFSetErrorHandler TIFFSetErrorHandler
6789 #define fn_TIFFSetWarningHandler TIFFSetWarningHandler
6790 #define fn_TIFFOpen TIFFOpen
6791 #define fn_TIFFClientOpen TIFFClientOpen
6792 #define fn_TIFFGetField TIFFGetField
6793 #define fn_TIFFReadRGBAImage TIFFReadRGBAImage
6794 #define fn_TIFFClose TIFFClose
6795 #define fn_TIFFSetDirectory TIFFSetDirectory
6796 #endif /* WINDOWSNT */
6797
6798
6799 /* Reading from a memory buffer for TIFF images Based on the PNG
6800 memory source, but we have to provide a lot of extra functions.
6801 Blah.
6802
6803 We really only need to implement read and seek, but I am not
6804 convinced that the TIFF library is smart enough not to destroy
6805 itself if we only hand it the function pointers we need to
6806 override. */
6807
6808 typedef struct
6809 {
6810 unsigned char *bytes;
6811 ptrdiff_t len;
6812 ptrdiff_t index;
6813 }
6814 tiff_memory_source;
6815
6816 static tsize_t
6817 tiff_read_from_memory (thandle_t data, tdata_t buf, tsize_t size)
6818 {
6819 tiff_memory_source *src = (tiff_memory_source *) data;
6820
6821 size = min (size, src->len - src->index);
6822 memcpy (buf, src->bytes + src->index, size);
6823 src->index += size;
6824 return size;
6825 }
6826
6827 static tsize_t
6828 tiff_write_from_memory (thandle_t data, tdata_t buf, tsize_t size)
6829 {
6830 return -1;
6831 }
6832
6833 static toff_t
6834 tiff_seek_in_memory (thandle_t data, toff_t off, int whence)
6835 {
6836 tiff_memory_source *src = (tiff_memory_source *) data;
6837 ptrdiff_t idx;
6838
6839 switch (whence)
6840 {
6841 case SEEK_SET: /* Go from beginning of source. */
6842 idx = off;
6843 break;
6844
6845 case SEEK_END: /* Go from end of source. */
6846 idx = src->len + off;
6847 break;
6848
6849 case SEEK_CUR: /* Go from current position. */
6850 idx = src->index + off;
6851 break;
6852
6853 default: /* Invalid `whence'. */
6854 return -1;
6855 }
6856
6857 if (idx > src->len || idx < 0)
6858 return -1;
6859
6860 src->index = idx;
6861 return src->index;
6862 }
6863
6864 static int
6865 tiff_close_memory (thandle_t data)
6866 {
6867 /* NOOP */
6868 return 0;
6869 }
6870
6871 static int
6872 tiff_mmap_memory (thandle_t data, tdata_t *pbase, toff_t *psize)
6873 {
6874 /* It is already _IN_ memory. */
6875 return 0;
6876 }
6877
6878 static void
6879 tiff_unmap_memory (thandle_t data, tdata_t base, toff_t size)
6880 {
6881 /* We don't need to do this. */
6882 }
6883
6884 static toff_t
6885 tiff_size_of_memory (thandle_t data)
6886 {
6887 return ((tiff_memory_source *) data)->len;
6888 }
6889
6890 /* GCC 3.x on x86 Windows targets has a bug that triggers an internal
6891 compiler error compiling tiff_handler, see Bugzilla bug #17406
6892 (http://gcc.gnu.org/bugzilla/show_bug.cgi?id=17406). Declaring
6893 this function as external works around that problem. */
6894 #if defined (__MINGW32__) && __GNUC__ == 3
6895 # define MINGW_STATIC
6896 #else
6897 # define MINGW_STATIC static
6898 #endif
6899
6900 MINGW_STATIC void
6901 tiff_handler (const char *, const char *, const char *, va_list)
6902 ATTRIBUTE_FORMAT_PRINTF (3, 0);
6903 MINGW_STATIC void
6904 tiff_handler (const char *log_format, const char *title,
6905 const char *format, va_list ap)
6906 {
6907 /* doprnt is not suitable here, as TIFF handlers are called from
6908 libtiff and are passed arbitrary printf directives. Instead, use
6909 vsnprintf, taking care to be portable to nonstandard environments
6910 where vsnprintf returns -1 on buffer overflow. Since it's just a
6911 log entry, it's OK to truncate it. */
6912 char buf[4000];
6913 int len = vsnprintf (buf, sizeof buf, format, ap);
6914 add_to_log (log_format, build_string (title),
6915 make_string (buf, max (0, min (len, sizeof buf - 1))));
6916 }
6917 #undef MINGW_STATIC
6918
6919 static void tiff_error_handler (const char *, const char *, va_list)
6920 ATTRIBUTE_FORMAT_PRINTF (2, 0);
6921 static void
6922 tiff_error_handler (const char *title, const char *format, va_list ap)
6923 {
6924 tiff_handler ("TIFF error: %s %s", title, format, ap);
6925 }
6926
6927
6928 static void tiff_warning_handler (const char *, const char *, va_list)
6929 ATTRIBUTE_FORMAT_PRINTF (2, 0);
6930 static void
6931 tiff_warning_handler (const char *title, const char *format, va_list ap)
6932 {
6933 tiff_handler ("TIFF warning: %s %s", title, format, ap);
6934 }
6935
6936
6937 /* Load TIFF image IMG for use on frame F. Value is true if
6938 successful. */
6939
6940 static bool
6941 tiff_load (struct frame *f, struct image *img)
6942 {
6943 Lisp_Object file, specified_file;
6944 Lisp_Object specified_data;
6945 TIFF *tiff;
6946 int width, height, x, y, count;
6947 uint32 *buf;
6948 int rc;
6949 XImagePtr ximg;
6950 tiff_memory_source memsrc;
6951 Lisp_Object image;
6952
6953 specified_file = image_spec_value (img->spec, QCfile, NULL);
6954 specified_data = image_spec_value (img->spec, QCdata, NULL);
6955
6956 fn_TIFFSetErrorHandler ((TIFFErrorHandler) tiff_error_handler);
6957 fn_TIFFSetWarningHandler ((TIFFErrorHandler) tiff_warning_handler);
6958
6959 if (NILP (specified_data))
6960 {
6961 /* Read from a file */
6962 file = x_find_image_file (specified_file);
6963 if (!STRINGP (file))
6964 {
6965 image_error ("Cannot find image file `%s'", specified_file, Qnil);
6966 return 0;
6967 }
6968
6969 /* Try to open the image file. */
6970 tiff = fn_TIFFOpen (SSDATA (file), "r");
6971 if (tiff == NULL)
6972 {
6973 image_error ("Cannot open `%s'", file, Qnil);
6974 return 0;
6975 }
6976 }
6977 else
6978 {
6979 if (!STRINGP (specified_data))
6980 {
6981 image_error ("Invalid image data `%s'", specified_data, Qnil);
6982 return 0;
6983 }
6984
6985 /* Memory source! */
6986 memsrc.bytes = SDATA (specified_data);
6987 memsrc.len = SBYTES (specified_data);
6988 memsrc.index = 0;
6989
6990 tiff = fn_TIFFClientOpen ("memory_source", "r", (thandle_t)&memsrc,
6991 tiff_read_from_memory,
6992 tiff_write_from_memory,
6993 tiff_seek_in_memory,
6994 tiff_close_memory,
6995 tiff_size_of_memory,
6996 tiff_mmap_memory,
6997 tiff_unmap_memory);
6998
6999 if (!tiff)
7000 {
7001 image_error ("Cannot open memory source for `%s'", img->spec, Qnil);
7002 return 0;
7003 }
7004 }
7005
7006 image = image_spec_value (img->spec, QCindex, NULL);
7007 if (INTEGERP (image))
7008 {
7009 EMACS_INT ino = XFASTINT (image);
7010 if (! (TYPE_MINIMUM (tdir_t) <= ino && ino <= TYPE_MAXIMUM (tdir_t)
7011 && fn_TIFFSetDirectory (tiff, ino)))
7012 {
7013 image_error ("Invalid image number `%s' in image `%s'",
7014 image, img->spec);
7015 fn_TIFFClose (tiff);
7016 return 0;
7017 }
7018 }
7019
7020 /* Get width and height of the image, and allocate a raster buffer
7021 of width x height 32-bit values. */
7022 fn_TIFFGetField (tiff, TIFFTAG_IMAGEWIDTH, &width);
7023 fn_TIFFGetField (tiff, TIFFTAG_IMAGELENGTH, &height);
7024
7025 if (!check_image_size (f, width, height))
7026 {
7027 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
7028 fn_TIFFClose (tiff);
7029 return 0;
7030 }
7031
7032 /* Create the X image and pixmap. */
7033 if (! (height <= min (PTRDIFF_MAX, SIZE_MAX) / sizeof *buf / width
7034 && image_create_x_image_and_pixmap (f, img, width, height, 0,
7035 &ximg, 0)))
7036 {
7037 fn_TIFFClose (tiff);
7038 return 0;
7039 }
7040
7041 buf = xmalloc (sizeof *buf * width * height);
7042
7043 rc = fn_TIFFReadRGBAImage (tiff, width, height, buf, 0);
7044
7045 /* Count the number of images in the file. */
7046 for (count = 1; fn_TIFFSetDirectory (tiff, count); count++)
7047 continue;
7048
7049 if (count > 1)
7050 img->lisp_data = Fcons (Qcount,
7051 Fcons (make_number (count),
7052 img->lisp_data));
7053
7054 fn_TIFFClose (tiff);
7055 if (!rc)
7056 {
7057 image_error ("Error reading TIFF image `%s'", img->spec, Qnil);
7058 xfree (buf);
7059 return 0;
7060 }
7061
7062 /* Initialize the color table. */
7063 init_color_table ();
7064
7065 /* Process the pixel raster. Origin is in the lower-left corner. */
7066 for (y = 0; y < height; ++y)
7067 {
7068 uint32 *row = buf + y * width;
7069
7070 for (x = 0; x < width; ++x)
7071 {
7072 uint32 abgr = row[x];
7073 int r = TIFFGetR (abgr) << 8;
7074 int g = TIFFGetG (abgr) << 8;
7075 int b = TIFFGetB (abgr) << 8;
7076 XPutPixel (ximg, x, height - 1 - y, lookup_rgb_color (f, r, g, b));
7077 }
7078 }
7079
7080 #ifdef COLOR_TABLE_SUPPORT
7081 /* Remember the colors allocated for the image. Free the color table. */
7082 img->colors = colors_in_color_table (&img->ncolors);
7083 free_color_table ();
7084 #endif /* COLOR_TABLE_SUPPORT */
7085
7086 img->width = width;
7087 img->height = height;
7088
7089 /* Maybe fill in the background field while we have ximg handy. */
7090 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
7091 /* Casting avoids a GCC warning on W32. */
7092 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
7093
7094 /* Put ximg into the image. */
7095 image_put_x_image (f, img, ximg, 0);
7096 xfree (buf);
7097
7098 return 1;
7099 }
7100
7101 #else /* HAVE_TIFF */
7102
7103 #ifdef HAVE_NS
7104 static bool
7105 tiff_load (struct frame *f, struct image *img)
7106 {
7107 return ns_load_image (f, img,
7108 image_spec_value (img->spec, QCfile, NULL),
7109 image_spec_value (img->spec, QCdata, NULL));
7110 }
7111 #endif /* HAVE_NS */
7112
7113 #endif /* !HAVE_TIFF */
7114
7115
7116 \f
7117 /***********************************************************************
7118 GIF
7119 ***********************************************************************/
7120
7121 #if defined (HAVE_GIF) || defined (HAVE_NS)
7122
7123 static bool gif_image_p (Lisp_Object object);
7124 static bool gif_load (struct frame *f, struct image *img);
7125 static void gif_clear_image (struct frame *f, struct image *img);
7126
7127 /* The symbol `gif' identifying images of this type. */
7128
7129 static Lisp_Object Qgif;
7130
7131 /* Indices of image specification fields in gif_format, below. */
7132
7133 enum gif_keyword_index
7134 {
7135 GIF_TYPE,
7136 GIF_DATA,
7137 GIF_FILE,
7138 GIF_ASCENT,
7139 GIF_MARGIN,
7140 GIF_RELIEF,
7141 GIF_ALGORITHM,
7142 GIF_HEURISTIC_MASK,
7143 GIF_MASK,
7144 GIF_IMAGE,
7145 GIF_BACKGROUND,
7146 GIF_LAST
7147 };
7148
7149 /* Vector of image_keyword structures describing the format
7150 of valid user-defined image specifications. */
7151
7152 static const struct image_keyword gif_format[GIF_LAST] =
7153 {
7154 {":type", IMAGE_SYMBOL_VALUE, 1},
7155 {":data", IMAGE_STRING_VALUE, 0},
7156 {":file", IMAGE_STRING_VALUE, 0},
7157 {":ascent", IMAGE_ASCENT_VALUE, 0},
7158 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
7159 {":relief", IMAGE_INTEGER_VALUE, 0},
7160 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7161 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7162 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7163 {":index", IMAGE_NON_NEGATIVE_INTEGER_VALUE, 0},
7164 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
7165 };
7166
7167 #if defined HAVE_NTGUI && defined WINDOWSNT
7168 static bool init_gif_functions (void);
7169 #else
7170 #define init_gif_functions NULL
7171 #endif
7172
7173 /* Structure describing the image type `gif'. */
7174
7175 static struct image_type gif_type =
7176 {
7177 &Qgif,
7178 gif_image_p,
7179 gif_load,
7180 gif_clear_image,
7181 init_gif_functions,
7182 NULL
7183 };
7184
7185 /* Free X resources of GIF image IMG which is used on frame F. */
7186
7187 static void
7188 gif_clear_image (struct frame *f, struct image *img)
7189 {
7190 img->lisp_data = Qnil;
7191 x_clear_image (f, img);
7192 }
7193
7194 /* Return true if OBJECT is a valid GIF image specification. */
7195
7196 static bool
7197 gif_image_p (Lisp_Object object)
7198 {
7199 struct image_keyword fmt[GIF_LAST];
7200 memcpy (fmt, gif_format, sizeof fmt);
7201
7202 if (!parse_image_spec (object, fmt, GIF_LAST, Qgif))
7203 return 0;
7204
7205 /* Must specify either the :data or :file keyword. */
7206 return fmt[GIF_FILE].count + fmt[GIF_DATA].count == 1;
7207 }
7208
7209 #endif /* HAVE_GIF */
7210
7211 #ifdef HAVE_GIF
7212
7213 #if defined (HAVE_NTGUI)
7214 /* winuser.h might define DrawText to DrawTextA or DrawTextW.
7215 Undefine before redefining to avoid a preprocessor warning. */
7216 #ifdef DrawText
7217 #undef DrawText
7218 #endif
7219 /* avoid conflict with QuickdrawText.h */
7220 #define DrawText gif_DrawText
7221 #include <gif_lib.h>
7222 #undef DrawText
7223
7224 #else /* HAVE_NTGUI */
7225
7226 #include <gif_lib.h>
7227
7228 #endif /* HAVE_NTGUI */
7229
7230
7231 #ifdef WINDOWSNT
7232
7233 /* GIF library details. */
7234 DEF_IMGLIB_FN (int, DGifCloseFile, (GifFileType *));
7235 DEF_IMGLIB_FN (int, DGifSlurp, (GifFileType *));
7236 DEF_IMGLIB_FN (GifFileType *, DGifOpen, (void *, InputFunc));
7237 DEF_IMGLIB_FN (GifFileType *, DGifOpenFileName, (const char *));
7238
7239 static bool
7240 init_gif_functions (void)
7241 {
7242 HMODULE library;
7243
7244 if (!(library = w32_delayed_load (Qgif)))
7245 return 0;
7246
7247 LOAD_IMGLIB_FN (library, DGifCloseFile);
7248 LOAD_IMGLIB_FN (library, DGifSlurp);
7249 LOAD_IMGLIB_FN (library, DGifOpen);
7250 LOAD_IMGLIB_FN (library, DGifOpenFileName);
7251 return 1;
7252 }
7253
7254 #else
7255
7256 #define fn_DGifCloseFile DGifCloseFile
7257 #define fn_DGifSlurp DGifSlurp
7258 #define fn_DGifOpen DGifOpen
7259 #define fn_DGifOpenFileName DGifOpenFileName
7260
7261 #endif /* WINDOWSNT */
7262
7263 /* Reading a GIF image from memory
7264 Based on the PNG memory stuff to a certain extent. */
7265
7266 typedef struct
7267 {
7268 unsigned char *bytes;
7269 ptrdiff_t len;
7270 ptrdiff_t index;
7271 }
7272 gif_memory_source;
7273
7274 /* Make the current memory source available to gif_read_from_memory.
7275 It's done this way because not all versions of libungif support
7276 a UserData field in the GifFileType structure. */
7277 static gif_memory_source *current_gif_memory_src;
7278
7279 static int
7280 gif_read_from_memory (GifFileType *file, GifByteType *buf, int len)
7281 {
7282 gif_memory_source *src = current_gif_memory_src;
7283
7284 if (len > src->len - src->index)
7285 return -1;
7286
7287 memcpy (buf, src->bytes + src->index, len);
7288 src->index += len;
7289 return len;
7290 }
7291
7292
7293 /* Load GIF image IMG for use on frame F. Value is true if
7294 successful. */
7295
7296 static const int interlace_start[] = {0, 4, 2, 1};
7297 static const int interlace_increment[] = {8, 8, 4, 2};
7298
7299 #define GIF_LOCAL_DESCRIPTOR_EXTENSION 249
7300
7301 static bool
7302 gif_load (struct frame *f, struct image *img)
7303 {
7304 Lisp_Object file;
7305 int rc, width, height, x, y, i, j;
7306 XImagePtr ximg;
7307 ColorMapObject *gif_color_map;
7308 unsigned long pixel_colors[256];
7309 GifFileType *gif;
7310 gif_memory_source memsrc;
7311 Lisp_Object specified_bg = image_spec_value (img->spec, QCbackground, NULL);
7312 Lisp_Object specified_file = image_spec_value (img->spec, QCfile, NULL);
7313 Lisp_Object specified_data = image_spec_value (img->spec, QCdata, NULL);
7314 unsigned long bgcolor = 0;
7315 EMACS_INT idx;
7316
7317 if (NILP (specified_data))
7318 {
7319 file = x_find_image_file (specified_file);
7320 if (!STRINGP (file))
7321 {
7322 image_error ("Cannot find image file `%s'", specified_file, Qnil);
7323 return 0;
7324 }
7325
7326 /* Open the GIF file. */
7327 gif = fn_DGifOpenFileName (SSDATA (file));
7328 if (gif == NULL)
7329 {
7330 image_error ("Cannot open `%s'", file, Qnil);
7331 return 0;
7332 }
7333 }
7334 else
7335 {
7336 if (!STRINGP (specified_data))
7337 {
7338 image_error ("Invalid image data `%s'", specified_data, Qnil);
7339 return 0;
7340 }
7341
7342 /* Read from memory! */
7343 current_gif_memory_src = &memsrc;
7344 memsrc.bytes = SDATA (specified_data);
7345 memsrc.len = SBYTES (specified_data);
7346 memsrc.index = 0;
7347
7348 gif = fn_DGifOpen (&memsrc, gif_read_from_memory);
7349 if (!gif)
7350 {
7351 image_error ("Cannot open memory source `%s'", img->spec, Qnil);
7352 return 0;
7353 }
7354 }
7355
7356 /* Before reading entire contents, check the declared image size. */
7357 if (!check_image_size (f, gif->SWidth, gif->SHeight))
7358 {
7359 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
7360 fn_DGifCloseFile (gif);
7361 return 0;
7362 }
7363
7364 /* Read entire contents. */
7365 rc = fn_DGifSlurp (gif);
7366 if (rc == GIF_ERROR || gif->ImageCount <= 0)
7367 {
7368 image_error ("Error reading `%s'", img->spec, Qnil);
7369 fn_DGifCloseFile (gif);
7370 return 0;
7371 }
7372
7373 /* Which sub-image are we to display? */
7374 {
7375 Lisp_Object image_number = image_spec_value (img->spec, QCindex, NULL);
7376 idx = INTEGERP (image_number) ? XFASTINT (image_number) : 0;
7377 if (idx < 0 || idx >= gif->ImageCount)
7378 {
7379 image_error ("Invalid image number `%s' in image `%s'",
7380 image_number, img->spec);
7381 fn_DGifCloseFile (gif);
7382 return 0;
7383 }
7384 }
7385
7386 width = img->width = gif->SWidth;
7387 height = img->height = gif->SHeight;
7388
7389 img->corners[TOP_CORNER] = gif->SavedImages[0].ImageDesc.Top;
7390 img->corners[LEFT_CORNER] = gif->SavedImages[0].ImageDesc.Left;
7391 img->corners[BOT_CORNER]
7392 = img->corners[TOP_CORNER] + gif->SavedImages[0].ImageDesc.Height;
7393 img->corners[RIGHT_CORNER]
7394 = img->corners[LEFT_CORNER] + gif->SavedImages[0].ImageDesc.Width;
7395
7396 if (!check_image_size (f, width, height))
7397 {
7398 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
7399 fn_DGifCloseFile (gif);
7400 return 0;
7401 }
7402
7403 /* Check that the selected subimages fit. It's not clear whether
7404 the GIF spec requires this, but Emacs can crash if they don't fit. */
7405 for (j = 0; j <= idx; ++j)
7406 {
7407 struct SavedImage *subimage = gif->SavedImages + j;
7408 int subimg_width = subimage->ImageDesc.Width;
7409 int subimg_height = subimage->ImageDesc.Height;
7410 int subimg_top = subimage->ImageDesc.Top;
7411 int subimg_left = subimage->ImageDesc.Left;
7412 if (! (0 <= subimg_width && 0 <= subimg_height
7413 && 0 <= subimg_top && subimg_top <= height - subimg_height
7414 && 0 <= subimg_left && subimg_left <= width - subimg_width))
7415 {
7416 image_error ("Subimage does not fit in image", Qnil, Qnil);
7417 fn_DGifCloseFile (gif);
7418 return 0;
7419 }
7420 }
7421
7422 /* Create the X image and pixmap. */
7423 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
7424 {
7425 fn_DGifCloseFile (gif);
7426 return 0;
7427 }
7428
7429 /* Clear the part of the screen image not covered by the image.
7430 Full animated GIF support requires more here (see the gif89 spec,
7431 disposal methods). Let's simply assume that the part not covered
7432 by a sub-image is in the frame's background color. */
7433 for (y = 0; y < img->corners[TOP_CORNER]; ++y)
7434 for (x = 0; x < width; ++x)
7435 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7436
7437 for (y = img->corners[BOT_CORNER]; y < height; ++y)
7438 for (x = 0; x < width; ++x)
7439 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7440
7441 for (y = img->corners[TOP_CORNER]; y < img->corners[BOT_CORNER]; ++y)
7442 {
7443 for (x = 0; x < img->corners[LEFT_CORNER]; ++x)
7444 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7445 for (x = img->corners[RIGHT_CORNER]; x < width; ++x)
7446 XPutPixel (ximg, x, y, FRAME_BACKGROUND_PIXEL (f));
7447 }
7448
7449 /* Read the GIF image into the X image. */
7450
7451 /* FIXME: With the current implementation, loading an animated gif
7452 is quadratic in the number of animation frames, since each frame
7453 is a separate struct image. We must provide a way for a single
7454 gif_load call to construct and save all animation frames. */
7455
7456 init_color_table ();
7457 if (STRINGP (specified_bg))
7458 bgcolor = x_alloc_image_color (f, img, specified_bg,
7459 FRAME_BACKGROUND_PIXEL (f));
7460 for (j = 0; j <= idx; ++j)
7461 {
7462 /* We use a local variable `raster' here because RasterBits is a
7463 char *, which invites problems with bytes >= 0x80. */
7464 struct SavedImage *subimage = gif->SavedImages + j;
7465 unsigned char *raster = (unsigned char *) subimage->RasterBits;
7466 int transparency_color_index = -1;
7467 int disposal = 0;
7468 int subimg_width = subimage->ImageDesc.Width;
7469 int subimg_height = subimage->ImageDesc.Height;
7470 int subimg_top = subimage->ImageDesc.Top;
7471 int subimg_left = subimage->ImageDesc.Left;
7472
7473 /* Find the Graphic Control Extension block for this sub-image.
7474 Extract the disposal method and transparency color. */
7475 for (i = 0; i < subimage->ExtensionBlockCount; i++)
7476 {
7477 ExtensionBlock *extblock = subimage->ExtensionBlocks + i;
7478
7479 if ((extblock->Function == GIF_LOCAL_DESCRIPTOR_EXTENSION)
7480 && extblock->ByteCount == 4
7481 && extblock->Bytes[0] & 1)
7482 {
7483 /* From gif89a spec: 1 = "keep in place", 2 = "restore
7484 to background". Treat any other value like 2. */
7485 disposal = (extblock->Bytes[0] >> 2) & 7;
7486 transparency_color_index = (unsigned char) extblock->Bytes[3];
7487 break;
7488 }
7489 }
7490
7491 /* We can't "keep in place" the first subimage. */
7492 if (j == 0)
7493 disposal = 2;
7494
7495 /* For disposal == 0, the spec says "No disposal specified. The
7496 decoder is not required to take any action." In practice, it
7497 seems we need to treat this like "keep in place", see e.g.
7498 http://upload.wikimedia.org/wikipedia/commons/3/37/Clock.gif */
7499 if (disposal == 0)
7500 disposal = 1;
7501
7502 /* Allocate subimage colors. */
7503 memset (pixel_colors, 0, sizeof pixel_colors);
7504 gif_color_map = subimage->ImageDesc.ColorMap;
7505 if (!gif_color_map)
7506 gif_color_map = gif->SColorMap;
7507
7508 if (gif_color_map)
7509 for (i = 0; i < gif_color_map->ColorCount; ++i)
7510 {
7511 if (transparency_color_index == i)
7512 pixel_colors[i] = STRINGP (specified_bg)
7513 ? bgcolor : FRAME_BACKGROUND_PIXEL (f);
7514 else
7515 {
7516 int r = gif_color_map->Colors[i].Red << 8;
7517 int g = gif_color_map->Colors[i].Green << 8;
7518 int b = gif_color_map->Colors[i].Blue << 8;
7519 pixel_colors[i] = lookup_rgb_color (f, r, g, b);
7520 }
7521 }
7522
7523 /* Apply the pixel values. */
7524 if (gif->SavedImages[j].ImageDesc.Interlace)
7525 {
7526 int row, pass;
7527
7528 for (y = 0, row = interlace_start[0], pass = 0;
7529 y < subimg_height;
7530 y++, row += interlace_increment[pass])
7531 {
7532 while (subimg_height <= row)
7533 {
7534 lint_assume (pass < 3);
7535 row = interlace_start[++pass];
7536 }
7537
7538 for (x = 0; x < subimg_width; x++)
7539 {
7540 int c = raster[y * subimg_width + x];
7541 if (transparency_color_index != c || disposal != 1)
7542 XPutPixel (ximg, x + subimg_left, row + subimg_top,
7543 pixel_colors[c]);
7544 }
7545 }
7546 }
7547 else
7548 {
7549 for (y = 0; y < subimg_height; ++y)
7550 for (x = 0; x < subimg_width; ++x)
7551 {
7552 int c = raster[y * subimg_width + x];
7553 if (transparency_color_index != c || disposal != 1)
7554 XPutPixel (ximg, x + subimg_left, y + subimg_top,
7555 pixel_colors[c]);
7556 }
7557 }
7558 }
7559
7560 #ifdef COLOR_TABLE_SUPPORT
7561 img->colors = colors_in_color_table (&img->ncolors);
7562 free_color_table ();
7563 #endif /* COLOR_TABLE_SUPPORT */
7564
7565 /* Save GIF image extension data for `image-metadata'.
7566 Format is (count IMAGES extension-data (FUNCTION "BYTES" ...)). */
7567 img->lisp_data = Qnil;
7568 if (gif->SavedImages[idx].ExtensionBlockCount > 0)
7569 {
7570 int delay = 0;
7571 ExtensionBlock *ext = gif->SavedImages[idx].ExtensionBlocks;
7572 for (i = 0; i < gif->SavedImages[idx].ExtensionBlockCount; i++, ext++)
7573 /* Append (... FUNCTION "BYTES") */
7574 {
7575 img->lisp_data
7576 = Fcons (make_number (ext->Function),
7577 Fcons (make_unibyte_string (ext->Bytes, ext->ByteCount),
7578 img->lisp_data));
7579 if (ext->Function == GIF_LOCAL_DESCRIPTOR_EXTENSION
7580 && ext->ByteCount == 4)
7581 {
7582 delay = ext->Bytes[2] << CHAR_BIT;
7583 delay |= ext->Bytes[1];
7584 }
7585 }
7586 img->lisp_data = Fcons (Qextension_data,
7587 Fcons (img->lisp_data, Qnil));
7588 if (delay)
7589 img->lisp_data
7590 = Fcons (Qdelay,
7591 Fcons (make_float (delay / 100.0),
7592 img->lisp_data));
7593 }
7594
7595 if (gif->ImageCount > 1)
7596 img->lisp_data = Fcons (Qcount,
7597 Fcons (make_number (gif->ImageCount),
7598 img->lisp_data));
7599
7600 fn_DGifCloseFile (gif);
7601
7602 /* Maybe fill in the background field while we have ximg handy. */
7603 if (NILP (image_spec_value (img->spec, QCbackground, NULL)))
7604 /* Casting avoids a GCC warning. */
7605 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
7606
7607 /* Put ximg into the image. */
7608 image_put_x_image (f, img, ximg, 0);
7609
7610 return 1;
7611 }
7612
7613 #else /* !HAVE_GIF */
7614
7615 #ifdef HAVE_NS
7616 static bool
7617 gif_load (struct frame *f, struct image *img)
7618 {
7619 return ns_load_image (f, img,
7620 image_spec_value (img->spec, QCfile, NULL),
7621 image_spec_value (img->spec, QCdata, NULL));
7622 }
7623 #endif /* HAVE_NS */
7624
7625 #endif /* HAVE_GIF */
7626
7627
7628 static void
7629 compute_image_size (size_t width, size_t height,
7630 Lisp_Object spec,
7631 int *d_width, int *d_height)
7632 {
7633 Lisp_Object value;
7634 int desired_width, desired_height;
7635
7636 /* If width and/or height is set in the display spec assume we want
7637 to scale to those values. If either h or w is unspecified, the
7638 unspecified should be calculated from the specified to preserve
7639 aspect ratio. */
7640 value = image_spec_value (spec, QCwidth, NULL);
7641 desired_width = (INTEGERP (value) ? XFASTINT (value) : -1);
7642 value = image_spec_value (spec, QCheight, NULL);
7643 desired_height = (INTEGERP (value) ? XFASTINT (value) : -1);
7644
7645 if (desired_width == -1)
7646 {
7647 value = image_spec_value (spec, QCmax_width, NULL);
7648 if (INTEGERP (value) &&
7649 width > XFASTINT (value))
7650 {
7651 /* The image is wider than :max-width. */
7652 desired_width = XFASTINT (value);
7653 if (desired_height == -1)
7654 {
7655 value = image_spec_value (spec, QCmax_height, NULL);
7656 if (INTEGERP (value))
7657 {
7658 /* We have no specified height, but we have a
7659 :max-height value, so check that we satisfy both
7660 conditions. */
7661 desired_height = (double) desired_width / width * height;
7662 if (desired_height > XFASTINT (value))
7663 {
7664 desired_height = XFASTINT (value);
7665 desired_width = (double) desired_height / height * width;
7666 }
7667 }
7668 else
7669 {
7670 /* We have no specified height and no specified
7671 max-height, so just compute the height. */
7672 desired_height = (double) desired_width / width * height;
7673 }
7674 }
7675 }
7676 }
7677
7678 if (desired_height == -1)
7679 {
7680 value = image_spec_value (spec, QCmax_height, NULL);
7681 if (INTEGERP (value) &&
7682 height > XFASTINT (value))
7683 desired_height = XFASTINT (value);
7684 }
7685
7686 if (desired_width != -1 && desired_height == -1)
7687 /* w known, calculate h. */
7688 desired_height = (double) desired_width / width * height;
7689
7690 if (desired_width == -1 && desired_height != -1)
7691 /* h known, calculate w. */
7692 desired_width = (double) desired_height / height * width;
7693
7694 *d_width = desired_width;
7695 *d_height = desired_height;
7696 }
7697
7698 /***********************************************************************
7699 ImageMagick
7700 ***********************************************************************/
7701 #if defined (HAVE_IMAGEMAGICK)
7702
7703 static Lisp_Object Qimagemagick;
7704
7705 static bool imagemagick_image_p (Lisp_Object);
7706 static bool imagemagick_load (struct frame *, struct image *);
7707 static void imagemagick_clear_image (struct frame *, struct image *);
7708
7709 /* Indices of image specification fields in imagemagick_format. */
7710
7711 enum imagemagick_keyword_index
7712 {
7713 IMAGEMAGICK_TYPE,
7714 IMAGEMAGICK_DATA,
7715 IMAGEMAGICK_FILE,
7716 IMAGEMAGICK_ASCENT,
7717 IMAGEMAGICK_MARGIN,
7718 IMAGEMAGICK_RELIEF,
7719 IMAGEMAGICK_ALGORITHM,
7720 IMAGEMAGICK_HEURISTIC_MASK,
7721 IMAGEMAGICK_MASK,
7722 IMAGEMAGICK_BACKGROUND,
7723 IMAGEMAGICK_HEIGHT,
7724 IMAGEMAGICK_WIDTH,
7725 IMAGEMAGICK_MAX_HEIGHT,
7726 IMAGEMAGICK_MAX_WIDTH,
7727 IMAGEMAGICK_ROTATION,
7728 IMAGEMAGICK_CROP,
7729 IMAGEMAGICK_LAST
7730 };
7731
7732 /* Vector of image_keyword structures describing the format
7733 of valid user-defined image specifications. */
7734
7735 static struct image_keyword imagemagick_format[IMAGEMAGICK_LAST] =
7736 {
7737 {":type", IMAGE_SYMBOL_VALUE, 1},
7738 {":data", IMAGE_STRING_VALUE, 0},
7739 {":file", IMAGE_STRING_VALUE, 0},
7740 {":ascent", IMAGE_ASCENT_VALUE, 0},
7741 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
7742 {":relief", IMAGE_INTEGER_VALUE, 0},
7743 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7744 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7745 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
7746 {":background", IMAGE_STRING_OR_NIL_VALUE, 0},
7747 {":height", IMAGE_INTEGER_VALUE, 0},
7748 {":width", IMAGE_INTEGER_VALUE, 0},
7749 {":max-height", IMAGE_INTEGER_VALUE, 0},
7750 {":max-width", IMAGE_INTEGER_VALUE, 0},
7751 {":rotation", IMAGE_NUMBER_VALUE, 0},
7752 {":crop", IMAGE_DONT_CHECK_VALUE_TYPE, 0}
7753 };
7754
7755 #if defined HAVE_NTGUI && defined WINDOWSNT
7756 static bool init_imagemagick_functions (void);
7757 #else
7758 #define init_imagemagick_functions NULL
7759 #endif
7760
7761 /* Structure describing the image type for any image handled via
7762 ImageMagick. */
7763
7764 static struct image_type imagemagick_type =
7765 {
7766 &Qimagemagick,
7767 imagemagick_image_p,
7768 imagemagick_load,
7769 imagemagick_clear_image,
7770 init_imagemagick_functions,
7771 NULL
7772 };
7773
7774 /* Free X resources of imagemagick image IMG which is used on frame F. */
7775
7776 static void
7777 imagemagick_clear_image (struct frame *f,
7778 struct image *img)
7779 {
7780 x_clear_image (f, img);
7781 }
7782
7783 /* Return true if OBJECT is a valid IMAGEMAGICK image specification. Do
7784 this by calling parse_image_spec and supplying the keywords that
7785 identify the IMAGEMAGICK format. */
7786
7787 static bool
7788 imagemagick_image_p (Lisp_Object object)
7789 {
7790 struct image_keyword fmt[IMAGEMAGICK_LAST];
7791 memcpy (fmt, imagemagick_format, sizeof fmt);
7792
7793 if (!parse_image_spec (object, fmt, IMAGEMAGICK_LAST, Qimagemagick))
7794 return 0;
7795
7796 /* Must specify either the :data or :file keyword. */
7797 return fmt[IMAGEMAGICK_FILE].count + fmt[IMAGEMAGICK_DATA].count == 1;
7798 }
7799
7800 /* The GIF library also defines DrawRectangle, but its never used in Emacs.
7801 Therefore rename the function so it doesn't collide with ImageMagick. */
7802 #define DrawRectangle DrawRectangleGif
7803 #include <wand/MagickWand.h>
7804
7805 /* ImageMagick 6.5.3 through 6.6.5 hid PixelGetMagickColor for some reason.
7806 Emacs seems to work fine with the hidden version, so unhide it. */
7807 #include <magick/version.h>
7808 #if 0x653 <= MagickLibVersion && MagickLibVersion <= 0x665
7809 extern WandExport void PixelGetMagickColor (const PixelWand *,
7810 MagickPixelPacket *);
7811 #endif
7812
7813 /* Log ImageMagick error message.
7814 Useful when a ImageMagick function returns the status `MagickFalse'. */
7815
7816 static void
7817 imagemagick_error (MagickWand *wand)
7818 {
7819 char *description;
7820 ExceptionType severity;
7821
7822 description = MagickGetException (wand, &severity);
7823 image_error ("ImageMagick error: %s",
7824 build_string (description),
7825 Qnil);
7826 description = (char *) MagickRelinquishMemory (description);
7827 }
7828
7829 /* Helper function for imagemagick_load, which does the actual loading
7830 given contents and size, apart from frame and image structures,
7831 passed from imagemagick_load. Uses librimagemagick to do most of
7832 the image processing.
7833
7834 F is a pointer to the Emacs frame; IMG to the image structure to
7835 prepare; CONTENTS is the string containing the IMAGEMAGICK data to
7836 be parsed; SIZE is the number of bytes of data; and FILENAME is
7837 either the file name or the image data.
7838
7839 Return true if successful. */
7840
7841 static bool
7842 imagemagick_load_image (struct frame *f, struct image *img,
7843 unsigned char *contents, unsigned int size,
7844 char *filename)
7845 {
7846 size_t width, height;
7847 MagickBooleanType status;
7848 XImagePtr ximg;
7849 int x, y;
7850 MagickWand *image_wand;
7851 MagickWand *ping_wand;
7852 PixelIterator *iterator;
7853 PixelWand **pixels, *bg_wand = NULL;
7854 MagickPixelPacket pixel;
7855 Lisp_Object image;
7856 Lisp_Object value;
7857 Lisp_Object crop;
7858 EMACS_INT ino;
7859 int desired_width, desired_height;
7860 double rotation;
7861 int pixelwidth;
7862
7863 /* Handle image index for image types who can contain more than one image.
7864 Interface :index is same as for GIF. First we "ping" the image to see how
7865 many sub-images it contains. Pinging is faster than loading the image to
7866 find out things about it. */
7867
7868 /* Initialize the imagemagick environment. */
7869 MagickWandGenesis ();
7870 image = image_spec_value (img->spec, QCindex, NULL);
7871 ino = INTEGERP (image) ? XFASTINT (image) : 0;
7872 ping_wand = NewMagickWand ();
7873 /* MagickSetResolution (ping_wand, 2, 2); (Bug#10112) */
7874
7875 status = filename
7876 ? MagickPingImage (ping_wand, filename)
7877 : MagickPingImageBlob (ping_wand, contents, size);
7878
7879 if (status == MagickFalse)
7880 {
7881 imagemagick_error (ping_wand);
7882 DestroyMagickWand (ping_wand);
7883 return 0;
7884 }
7885
7886 if (ino < 0 || ino >= MagickGetNumberImages (ping_wand))
7887 {
7888 image_error ("Invalid image number `%s' in image `%s'",
7889 image, img->spec);
7890 DestroyMagickWand (ping_wand);
7891 return 0;
7892 }
7893
7894 if (MagickGetNumberImages (ping_wand) > 1)
7895 img->lisp_data =
7896 Fcons (Qcount,
7897 Fcons (make_number (MagickGetNumberImages (ping_wand)),
7898 img->lisp_data));
7899
7900 DestroyMagickWand (ping_wand);
7901
7902 /* Now we know how many images are inside the file. If it's not a
7903 bundle, the number is one. Load the image data. */
7904
7905 image_wand = NewMagickWand ();
7906
7907 if ((filename
7908 ? MagickReadImage (image_wand, filename)
7909 : MagickReadImageBlob (image_wand, contents, size))
7910 == MagickFalse)
7911 {
7912 imagemagick_error (image_wand);
7913 goto imagemagick_error;
7914 }
7915
7916 /* Retrieve the frame's background color, for use later. */
7917 {
7918 XColor bgcolor;
7919 Lisp_Object specified_bg;
7920
7921 specified_bg = image_spec_value (img->spec, QCbackground, NULL);
7922 if (!STRINGP (specified_bg)
7923 || !x_defined_color (f, SSDATA (specified_bg), &bgcolor, 0))
7924 {
7925 #ifndef HAVE_NS
7926 bgcolor.pixel = FRAME_BACKGROUND_PIXEL (f);
7927 x_query_color (f, &bgcolor);
7928 #else
7929 ns_query_color (FRAME_BACKGROUND_COLOR (f), &bgcolor, 1);
7930 #endif
7931 }
7932
7933 bg_wand = NewPixelWand ();
7934 PixelSetRed (bg_wand, (double) bgcolor.red / 65535);
7935 PixelSetGreen (bg_wand, (double) bgcolor.green / 65535);
7936 PixelSetBlue (bg_wand, (double) bgcolor.blue / 65535);
7937 }
7938
7939 compute_image_size (MagickGetImageWidth (image_wand),
7940 MagickGetImageHeight (image_wand),
7941 img->spec, &desired_width, &desired_height);
7942
7943 if (desired_width != -1 && desired_height != -1)
7944 {
7945 status = MagickScaleImage (image_wand, desired_width, desired_height);
7946 if (status == MagickFalse)
7947 {
7948 image_error ("Imagemagick scale failed", Qnil, Qnil);
7949 imagemagick_error (image_wand);
7950 goto imagemagick_error;
7951 }
7952 }
7953
7954 /* crop behaves similar to image slicing in Emacs but is more memory
7955 efficient. */
7956 crop = image_spec_value (img->spec, QCcrop, NULL);
7957
7958 if (CONSP (crop) && TYPE_RANGED_INTEGERP (size_t, XCAR (crop)))
7959 {
7960 /* After some testing, it seems MagickCropImage is the fastest crop
7961 function in ImageMagick. This crop function seems to do less copying
7962 than the alternatives, but it still reads the entire image into memory
7963 before cropping, which is apparently difficult to avoid when using
7964 imagemagick. */
7965 size_t crop_width = XINT (XCAR (crop));
7966 crop = XCDR (crop);
7967 if (CONSP (crop) && TYPE_RANGED_INTEGERP (size_t, XCAR (crop)))
7968 {
7969 size_t crop_height = XINT (XCAR (crop));
7970 crop = XCDR (crop);
7971 if (CONSP (crop) && TYPE_RANGED_INTEGERP (ssize_t, XCAR (crop)))
7972 {
7973 ssize_t crop_x = XINT (XCAR (crop));
7974 crop = XCDR (crop);
7975 if (CONSP (crop) && TYPE_RANGED_INTEGERP (ssize_t, XCAR (crop)))
7976 {
7977 ssize_t crop_y = XINT (XCAR (crop));
7978 MagickCropImage (image_wand, crop_width, crop_height,
7979 crop_x, crop_y);
7980 }
7981 }
7982 }
7983 }
7984
7985 /* Furthermore :rotation. we need background color and angle for
7986 rotation. */
7987 /*
7988 TODO background handling for rotation specified_bg =
7989 image_spec_value (img->spec, QCbackground, NULL); if (!STRINGP
7990 (specified_bg). */
7991 value = image_spec_value (img->spec, QCrotation, NULL);
7992 if (FLOATP (value))
7993 {
7994 rotation = extract_float (value);
7995 status = MagickRotateImage (image_wand, bg_wand, rotation);
7996 if (status == MagickFalse)
7997 {
7998 image_error ("Imagemagick image rotate failed", Qnil, Qnil);
7999 imagemagick_error (image_wand);
8000 goto imagemagick_error;
8001 }
8002 }
8003
8004 /* Set the canvas background color to the frame or specified
8005 background, and flatten the image. Note: as of ImageMagick
8006 6.6.0, SVG image transparency is not handled properly
8007 (e.g. etc/images/splash.svg shows a white background always). */
8008 {
8009 MagickWand *new_wand;
8010 MagickSetImageBackgroundColor (image_wand, bg_wand);
8011 #ifdef HAVE_MAGICKMERGEIMAGELAYERS
8012 new_wand = MagickMergeImageLayers (image_wand, MergeLayer);
8013 #else
8014 new_wand = MagickFlattenImages (image_wand);
8015 #endif
8016 DestroyMagickWand (image_wand);
8017 image_wand = new_wand;
8018 }
8019
8020 /* Finally we are done manipulating the image. Figure out the
8021 resulting width/height and transfer ownership to Emacs. */
8022 height = MagickGetImageHeight (image_wand);
8023 width = MagickGetImageWidth (image_wand);
8024
8025 if (! (width <= INT_MAX && height <= INT_MAX
8026 && check_image_size (f, width, height)))
8027 {
8028 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
8029 goto imagemagick_error;
8030 }
8031
8032 /* We can now get a valid pixel buffer from the imagemagick file, if all
8033 went ok. */
8034
8035 init_color_table ();
8036
8037 #ifdef HAVE_MAGICKEXPORTIMAGEPIXELS
8038 if (imagemagick_render_type != 0)
8039 {
8040 /* Magicexportimage is normally faster than pixelpushing. This
8041 method is also well tested. Some aspects of this method are
8042 ad-hoc and needs to be more researched. */
8043 int imagedepth = 24; /*MagickGetImageDepth(image_wand);*/
8044 const char *exportdepth = imagedepth <= 8 ? "I" : "BGRP"; /*"RGBP";*/
8045 /* Try to create a x pixmap to hold the imagemagick pixmap. */
8046 if (!image_create_x_image_and_pixmap (f, img, width, height, imagedepth,
8047 &ximg, 0))
8048 {
8049 #ifdef COLOR_TABLE_SUPPORT
8050 free_color_table ();
8051 #endif
8052 image_error ("Imagemagick X bitmap allocation failure", Qnil, Qnil);
8053 goto imagemagick_error;
8054 }
8055
8056 /* Oddly, the below code doesn't seem to work:*/
8057 /* switch(ximg->bitmap_unit){ */
8058 /* case 8: */
8059 /* pixelwidth=CharPixel; */
8060 /* break; */
8061 /* case 16: */
8062 /* pixelwidth=ShortPixel; */
8063 /* break; */
8064 /* case 32: */
8065 /* pixelwidth=LongPixel; */
8066 /* break; */
8067 /* } */
8068 /*
8069 Here im just guessing the format of the bitmap.
8070 happens to work fine for:
8071 - bw djvu images
8072 on rgb display.
8073 seems about 3 times as fast as pixel pushing(not carefully measured)
8074 */
8075 pixelwidth = CharPixel; /*??? TODO figure out*/
8076 MagickExportImagePixels (image_wand, 0, 0, width, height,
8077 exportdepth, pixelwidth, ximg->data);
8078 }
8079 else
8080 #endif /* HAVE_MAGICKEXPORTIMAGEPIXELS */
8081 {
8082 size_t image_height;
8083
8084 /* Try to create a x pixmap to hold the imagemagick pixmap. */
8085 if (!image_create_x_image_and_pixmap (f, img, width, height, 0,
8086 &ximg, 0))
8087 {
8088 #ifdef COLOR_TABLE_SUPPORT
8089 free_color_table ();
8090 #endif
8091 image_error ("Imagemagick X bitmap allocation failure", Qnil, Qnil);
8092 goto imagemagick_error;
8093 }
8094
8095 /* Copy imagemagick image to x with primitive yet robust pixel
8096 pusher loop. This has been tested a lot with many different
8097 images. */
8098
8099 /* Copy pixels from the imagemagick image structure to the x image map. */
8100 iterator = NewPixelIterator (image_wand);
8101 if (iterator == (PixelIterator *) NULL)
8102 {
8103 #ifdef COLOR_TABLE_SUPPORT
8104 free_color_table ();
8105 #endif
8106 x_destroy_x_image (ximg);
8107 image_error ("Imagemagick pixel iterator creation failed",
8108 Qnil, Qnil);
8109 goto imagemagick_error;
8110 }
8111
8112 image_height = MagickGetImageHeight (image_wand);
8113 for (y = 0; y < image_height; y++)
8114 {
8115 pixels = PixelGetNextIteratorRow (iterator, &width);
8116 if (pixels == (PixelWand **) NULL)
8117 break;
8118 for (x = 0; x < (long) width; x++)
8119 {
8120 PixelGetMagickColor (pixels[x], &pixel);
8121 XPutPixel (ximg, x, y,
8122 lookup_rgb_color (f,
8123 pixel.red,
8124 pixel.green,
8125 pixel.blue));
8126 }
8127 }
8128 DestroyPixelIterator (iterator);
8129 }
8130
8131 #ifdef COLOR_TABLE_SUPPORT
8132 /* Remember colors allocated for this image. */
8133 img->colors = colors_in_color_table (&img->ncolors);
8134 free_color_table ();
8135 #endif /* COLOR_TABLE_SUPPORT */
8136
8137 img->width = width;
8138 img->height = height;
8139
8140 /* Put ximg into the image. */
8141 image_put_x_image (f, img, ximg, 0);
8142
8143 /* Final cleanup. image_wand should be the only resource left. */
8144 DestroyMagickWand (image_wand);
8145 if (bg_wand) DestroyPixelWand (bg_wand);
8146
8147 /* `MagickWandTerminus' terminates the imagemagick environment. */
8148 MagickWandTerminus ();
8149
8150 return 1;
8151
8152 imagemagick_error:
8153 DestroyMagickWand (image_wand);
8154 if (bg_wand) DestroyPixelWand (bg_wand);
8155
8156 MagickWandTerminus ();
8157 /* TODO more cleanup. */
8158 image_error ("Error parsing IMAGEMAGICK image `%s'", img->spec, Qnil);
8159 return 0;
8160 }
8161
8162
8163 /* Load IMAGEMAGICK image IMG for use on frame F. Value is true if
8164 successful. this function will go into the imagemagick_type structure, and
8165 the prototype thus needs to be compatible with that structure. */
8166
8167 static bool
8168 imagemagick_load (struct frame *f, struct image *img)
8169 {
8170 bool success_p = 0;
8171 Lisp_Object file_name;
8172
8173 /* If IMG->spec specifies a file name, create a non-file spec from it. */
8174 file_name = image_spec_value (img->spec, QCfile, NULL);
8175 if (STRINGP (file_name))
8176 {
8177 Lisp_Object file;
8178
8179 file = x_find_image_file (file_name);
8180 if (!STRINGP (file))
8181 {
8182 image_error ("Cannot find image file `%s'", file_name, Qnil);
8183 return 0;
8184 }
8185 success_p = imagemagick_load_image (f, img, 0, 0, SSDATA (file));
8186 }
8187 /* Else its not a file, its a lisp object. Load the image from a
8188 lisp object rather than a file. */
8189 else
8190 {
8191 Lisp_Object data;
8192
8193 data = image_spec_value (img->spec, QCdata, NULL);
8194 if (!STRINGP (data))
8195 {
8196 image_error ("Invalid image data `%s'", data, Qnil);
8197 return 0;
8198 }
8199 success_p = imagemagick_load_image (f, img, SDATA (data),
8200 SBYTES (data), NULL);
8201 }
8202
8203 return success_p;
8204 }
8205
8206 DEFUN ("imagemagick-types", Fimagemagick_types, Simagemagick_types, 0, 0, 0,
8207 doc: /* Return a list of image types supported by ImageMagick.
8208 Each entry in this list is a symbol named after an ImageMagick format
8209 tag. See the ImageMagick manual for a list of ImageMagick formats and
8210 their descriptions (http://www.imagemagick.org/script/formats.php).
8211 You can also try the shell command: `identify -list format'.
8212
8213 Note that ImageMagick recognizes many file-types that Emacs does not
8214 recognize as images, such as C. See `imagemagick-types-enable'
8215 and `imagemagick-types-inhibit'. */)
8216 (void)
8217 {
8218 Lisp_Object typelist = Qnil;
8219 size_t numf = 0;
8220 ExceptionInfo ex;
8221 char **imtypes;
8222 size_t i;
8223 Lisp_Object Qimagemagicktype;
8224
8225 GetExceptionInfo(&ex);
8226 imtypes = GetMagickList ("*", &numf, &ex);
8227 DestroyExceptionInfo(&ex);
8228
8229 for (i = 0; i < numf; i++)
8230 {
8231 Qimagemagicktype = intern (imtypes[i]);
8232 typelist = Fcons (Qimagemagicktype, typelist);
8233 }
8234 return Fnreverse (typelist);
8235 }
8236
8237 #endif /* defined (HAVE_IMAGEMAGICK) */
8238
8239
8240 \f
8241 /***********************************************************************
8242 SVG
8243 ***********************************************************************/
8244
8245 #if defined (HAVE_RSVG)
8246
8247 /* Function prototypes. */
8248
8249 static bool svg_image_p (Lisp_Object object);
8250 static bool svg_load (struct frame *f, struct image *img);
8251
8252 static bool svg_load_image (struct frame *, struct image *,
8253 unsigned char *, ptrdiff_t);
8254
8255 /* The symbol `svg' identifying images of this type. */
8256
8257 static Lisp_Object Qsvg;
8258
8259 /* Indices of image specification fields in svg_format, below. */
8260
8261 enum svg_keyword_index
8262 {
8263 SVG_TYPE,
8264 SVG_DATA,
8265 SVG_FILE,
8266 SVG_ASCENT,
8267 SVG_MARGIN,
8268 SVG_RELIEF,
8269 SVG_ALGORITHM,
8270 SVG_HEURISTIC_MASK,
8271 SVG_MASK,
8272 SVG_BACKGROUND,
8273 SVG_LAST
8274 };
8275
8276 /* Vector of image_keyword structures describing the format
8277 of valid user-defined image specifications. */
8278
8279 static const struct image_keyword svg_format[SVG_LAST] =
8280 {
8281 {":type", IMAGE_SYMBOL_VALUE, 1},
8282 {":data", IMAGE_STRING_VALUE, 0},
8283 {":file", IMAGE_STRING_VALUE, 0},
8284 {":ascent", IMAGE_ASCENT_VALUE, 0},
8285 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
8286 {":relief", IMAGE_INTEGER_VALUE, 0},
8287 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8288 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8289 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8290 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
8291 };
8292
8293 #if defined HAVE_NTGUI && defined WINDOWSNT
8294 static bool init_svg_functions (void);
8295 #else
8296 #define init_svg_functions NULL
8297 #endif
8298
8299 /* Structure describing the image type `svg'. Its the same type of
8300 structure defined for all image formats, handled by emacs image
8301 functions. See struct image_type in dispextern.h. */
8302
8303 static struct image_type svg_type =
8304 {
8305 &Qsvg,
8306 svg_image_p,
8307 svg_load,
8308 x_clear_image,
8309 init_svg_functions,
8310 NULL
8311 };
8312
8313
8314 /* Return true if OBJECT is a valid SVG image specification. Do
8315 this by calling parse_image_spec and supplying the keywords that
8316 identify the SVG format. */
8317
8318 static bool
8319 svg_image_p (Lisp_Object object)
8320 {
8321 struct image_keyword fmt[SVG_LAST];
8322 memcpy (fmt, svg_format, sizeof fmt);
8323
8324 if (!parse_image_spec (object, fmt, SVG_LAST, Qsvg))
8325 return 0;
8326
8327 /* Must specify either the :data or :file keyword. */
8328 return fmt[SVG_FILE].count + fmt[SVG_DATA].count == 1;
8329 }
8330
8331 #include <librsvg/rsvg.h>
8332
8333 #ifdef WINDOWSNT
8334
8335 /* SVG library functions. */
8336 DEF_IMGLIB_FN (RsvgHandle *, rsvg_handle_new, (void));
8337 DEF_IMGLIB_FN (void, rsvg_handle_get_dimensions, (RsvgHandle *, RsvgDimensionData *));
8338 DEF_IMGLIB_FN (gboolean, rsvg_handle_write, (RsvgHandle *, const guchar *, gsize, GError **));
8339 DEF_IMGLIB_FN (gboolean, rsvg_handle_close, (RsvgHandle *, GError **));
8340 DEF_IMGLIB_FN (GdkPixbuf *, rsvg_handle_get_pixbuf, (RsvgHandle *));
8341 DEF_IMGLIB_FN (void *, rsvg_handle_set_size_callback, (RsvgHandle *, RsvgSizeFunc, gpointer, GDestroyNotify));
8342
8343 DEF_IMGLIB_FN (int, gdk_pixbuf_get_width, (const GdkPixbuf *));
8344 DEF_IMGLIB_FN (int, gdk_pixbuf_get_height, (const GdkPixbuf *));
8345 DEF_IMGLIB_FN (guchar *, gdk_pixbuf_get_pixels, (const GdkPixbuf *));
8346 DEF_IMGLIB_FN (int, gdk_pixbuf_get_rowstride, (const GdkPixbuf *));
8347 DEF_IMGLIB_FN (GdkColorspace, gdk_pixbuf_get_colorspace, (const GdkPixbuf *));
8348 DEF_IMGLIB_FN (int, gdk_pixbuf_get_n_channels, (const GdkPixbuf *));
8349 DEF_IMGLIB_FN (gboolean, gdk_pixbuf_get_has_alpha, (const GdkPixbuf *));
8350 DEF_IMGLIB_FN (int, gdk_pixbuf_get_bits_per_sample, (const GdkPixbuf *));
8351
8352 DEF_IMGLIB_FN (void, g_type_init, (void));
8353 DEF_IMGLIB_FN (void, g_object_unref, (gpointer));
8354 DEF_IMGLIB_FN (void, g_error_free, (GError *));
8355
8356 Lisp_Object Qgdk_pixbuf, Qglib, Qgobject;
8357
8358 static bool
8359 init_svg_functions (void)
8360 {
8361 HMODULE library, gdklib, glib, gobject;
8362
8363 if (!(glib = w32_delayed_load (Qglib))
8364 || !(gobject = w32_delayed_load (Qgobject))
8365 || !(gdklib = w32_delayed_load (Qgdk_pixbuf))
8366 || !(library = w32_delayed_load (Qsvg)))
8367 return 0;
8368
8369 LOAD_IMGLIB_FN (library, rsvg_handle_new);
8370 LOAD_IMGLIB_FN (library, rsvg_handle_get_dimensions);
8371 LOAD_IMGLIB_FN (library, rsvg_handle_write);
8372 LOAD_IMGLIB_FN (library, rsvg_handle_close);
8373 LOAD_IMGLIB_FN (library, rsvg_handle_get_pixbuf);
8374
8375 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_width);
8376 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_height);
8377 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_pixels);
8378 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_rowstride);
8379 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_colorspace);
8380 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_n_channels);
8381 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_has_alpha);
8382 LOAD_IMGLIB_FN (gdklib, gdk_pixbuf_get_bits_per_sample);
8383
8384 LOAD_IMGLIB_FN (gobject, g_type_init);
8385 LOAD_IMGLIB_FN (gobject, g_object_unref);
8386 LOAD_IMGLIB_FN (glib, g_error_free);
8387
8388 return 1;
8389 }
8390
8391 #else
8392 /* The following aliases for library functions allow dynamic loading
8393 to be used on some platforms. */
8394 #define fn_rsvg_handle_new rsvg_handle_new
8395 #define fn_rsvg_handle_get_dimensions rsvg_handle_get_dimensions
8396 #define fn_rsvg_handle_write rsvg_handle_write
8397 #define fn_rsvg_handle_close rsvg_handle_close
8398 #define fn_rsvg_handle_get_pixbuf rsvg_handle_get_pixbuf
8399
8400 #define fn_gdk_pixbuf_get_width gdk_pixbuf_get_width
8401 #define fn_gdk_pixbuf_get_height gdk_pixbuf_get_height
8402 #define fn_gdk_pixbuf_get_pixels gdk_pixbuf_get_pixels
8403 #define fn_gdk_pixbuf_get_rowstride gdk_pixbuf_get_rowstride
8404 #define fn_gdk_pixbuf_get_colorspace gdk_pixbuf_get_colorspace
8405 #define fn_gdk_pixbuf_get_n_channels gdk_pixbuf_get_n_channels
8406 #define fn_gdk_pixbuf_get_has_alpha gdk_pixbuf_get_has_alpha
8407 #define fn_gdk_pixbuf_get_bits_per_sample gdk_pixbuf_get_bits_per_sample
8408
8409 #define fn_g_type_init g_type_init
8410 #define fn_g_object_unref g_object_unref
8411 #define fn_g_error_free g_error_free
8412 #endif /* !WINDOWSNT */
8413
8414 /* Load SVG image IMG for use on frame F. Value is true if
8415 successful. */
8416
8417 static bool
8418 svg_load (struct frame *f, struct image *img)
8419 {
8420 bool success_p = 0;
8421 Lisp_Object file_name;
8422
8423 /* If IMG->spec specifies a file name, create a non-file spec from it. */
8424 file_name = image_spec_value (img->spec, QCfile, NULL);
8425 if (STRINGP (file_name))
8426 {
8427 Lisp_Object file;
8428 unsigned char *contents;
8429 ptrdiff_t size;
8430
8431 file = x_find_image_file (file_name);
8432 if (!STRINGP (file))
8433 {
8434 image_error ("Cannot find image file `%s'", file_name, Qnil);
8435 return 0;
8436 }
8437
8438 /* Read the entire file into memory. */
8439 contents = slurp_file (SSDATA (file), &size);
8440 if (contents == NULL)
8441 {
8442 image_error ("Error loading SVG image `%s'", img->spec, Qnil);
8443 return 0;
8444 }
8445 /* If the file was slurped into memory properly, parse it. */
8446 success_p = svg_load_image (f, img, contents, size);
8447 xfree (contents);
8448 }
8449 /* Else its not a file, its a lisp object. Load the image from a
8450 lisp object rather than a file. */
8451 else
8452 {
8453 Lisp_Object data;
8454
8455 data = image_spec_value (img->spec, QCdata, NULL);
8456 if (!STRINGP (data))
8457 {
8458 image_error ("Invalid image data `%s'", data, Qnil);
8459 return 0;
8460 }
8461 success_p = svg_load_image (f, img, SDATA (data), SBYTES (data));
8462 }
8463
8464 return success_p;
8465 }
8466
8467 /* svg_load_image is a helper function for svg_load, which does the
8468 actual loading given contents and size, apart from frame and image
8469 structures, passed from svg_load.
8470
8471 Uses librsvg to do most of the image processing.
8472
8473 Returns true when successful. */
8474 static bool
8475 svg_load_image (struct frame *f, /* Pointer to emacs frame structure. */
8476 struct image *img, /* Pointer to emacs image structure. */
8477 unsigned char *contents, /* String containing the SVG XML data to be parsed. */
8478 ptrdiff_t size) /* Size of data in bytes. */
8479 {
8480 RsvgHandle *rsvg_handle;
8481 RsvgDimensionData dimension_data;
8482 GError *err = NULL;
8483 GdkPixbuf *pixbuf;
8484 int width;
8485 int height;
8486 const guint8 *pixels;
8487 int rowstride;
8488 XImagePtr ximg;
8489 Lisp_Object specified_bg;
8490 XColor background;
8491 int x;
8492 int y;
8493
8494 /* g_type_init is a glib function that must be called prior to using
8495 gnome type library functions. */
8496 fn_g_type_init ();
8497 /* Make a handle to a new rsvg object. */
8498 rsvg_handle = fn_rsvg_handle_new ();
8499
8500 /* Parse the contents argument and fill in the rsvg_handle. */
8501 fn_rsvg_handle_write (rsvg_handle, contents, size, &err);
8502 if (err) goto rsvg_error;
8503
8504 /* The parsing is complete, rsvg_handle is ready to used, close it
8505 for further writes. */
8506 fn_rsvg_handle_close (rsvg_handle, &err);
8507 if (err) goto rsvg_error;
8508
8509 fn_rsvg_handle_get_dimensions (rsvg_handle, &dimension_data);
8510 if (! check_image_size (f, dimension_data.width, dimension_data.height))
8511 {
8512 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
8513 goto rsvg_error;
8514 }
8515
8516 /* We can now get a valid pixel buffer from the svg file, if all
8517 went ok. */
8518 pixbuf = fn_rsvg_handle_get_pixbuf (rsvg_handle);
8519 if (!pixbuf) goto rsvg_error;
8520 fn_g_object_unref (rsvg_handle);
8521
8522 /* Extract some meta data from the svg handle. */
8523 width = fn_gdk_pixbuf_get_width (pixbuf);
8524 height = fn_gdk_pixbuf_get_height (pixbuf);
8525 pixels = fn_gdk_pixbuf_get_pixels (pixbuf);
8526 rowstride = fn_gdk_pixbuf_get_rowstride (pixbuf);
8527
8528 /* Validate the svg meta data. */
8529 eassert (fn_gdk_pixbuf_get_colorspace (pixbuf) == GDK_COLORSPACE_RGB);
8530 eassert (fn_gdk_pixbuf_get_n_channels (pixbuf) == 4);
8531 eassert (fn_gdk_pixbuf_get_has_alpha (pixbuf));
8532 eassert (fn_gdk_pixbuf_get_bits_per_sample (pixbuf) == 8);
8533
8534 /* Try to create a x pixmap to hold the svg pixmap. */
8535 if (!image_create_x_image_and_pixmap (f, img, width, height, 0, &ximg, 0))
8536 {
8537 fn_g_object_unref (pixbuf);
8538 return 0;
8539 }
8540
8541 init_color_table ();
8542
8543 /* Handle alpha channel by combining the image with a background
8544 color. */
8545 specified_bg = image_spec_value (img->spec, QCbackground, NULL);
8546 if (!STRINGP (specified_bg)
8547 || !x_defined_color (f, SSDATA (specified_bg), &background, 0))
8548 {
8549 #ifndef HAVE_NS
8550 background.pixel = FRAME_BACKGROUND_PIXEL (f);
8551 x_query_color (f, &background);
8552 #else
8553 ns_query_color (FRAME_BACKGROUND_COLOR (f), &background, 1);
8554 #endif
8555 }
8556
8557 /* SVG pixmaps specify transparency in the last byte, so right
8558 shift 8 bits to get rid of it, since emacs doesn't support
8559 transparency. */
8560 background.red >>= 8;
8561 background.green >>= 8;
8562 background.blue >>= 8;
8563
8564 /* This loop handles opacity values, since Emacs assumes
8565 non-transparent images. Each pixel must be "flattened" by
8566 calculating the resulting color, given the transparency of the
8567 pixel, and the image background color. */
8568 for (y = 0; y < height; ++y)
8569 {
8570 for (x = 0; x < width; ++x)
8571 {
8572 int red;
8573 int green;
8574 int blue;
8575 int opacity;
8576
8577 red = *pixels++;
8578 green = *pixels++;
8579 blue = *pixels++;
8580 opacity = *pixels++;
8581
8582 red = ((red * opacity)
8583 + (background.red * ((1 << 8) - opacity)));
8584 green = ((green * opacity)
8585 + (background.green * ((1 << 8) - opacity)));
8586 blue = ((blue * opacity)
8587 + (background.blue * ((1 << 8) - opacity)));
8588
8589 XPutPixel (ximg, x, y, lookup_rgb_color (f, red, green, blue));
8590 }
8591
8592 pixels += rowstride - 4 * width;
8593 }
8594
8595 #ifdef COLOR_TABLE_SUPPORT
8596 /* Remember colors allocated for this image. */
8597 img->colors = colors_in_color_table (&img->ncolors);
8598 free_color_table ();
8599 #endif /* COLOR_TABLE_SUPPORT */
8600
8601 fn_g_object_unref (pixbuf);
8602
8603 img->width = width;
8604 img->height = height;
8605
8606 /* Maybe fill in the background field while we have ximg handy.
8607 Casting avoids a GCC warning. */
8608 IMAGE_BACKGROUND (img, f, (XImagePtr_or_DC)ximg);
8609
8610 /* Put ximg into the image. */
8611 image_put_x_image (f, img, ximg, 0);
8612
8613 return 1;
8614
8615 rsvg_error:
8616 fn_g_object_unref (rsvg_handle);
8617 /* FIXME: Use error->message so the user knows what is the actual
8618 problem with the image. */
8619 image_error ("Error parsing SVG image `%s'", img->spec, Qnil);
8620 fn_g_error_free (err);
8621 return 0;
8622 }
8623
8624 #endif /* defined (HAVE_RSVG) */
8625
8626
8627
8628 \f
8629 /***********************************************************************
8630 Ghostscript
8631 ***********************************************************************/
8632
8633 #ifdef HAVE_X_WINDOWS
8634 #define HAVE_GHOSTSCRIPT 1
8635 #endif /* HAVE_X_WINDOWS */
8636
8637 #ifdef HAVE_GHOSTSCRIPT
8638
8639 static bool gs_image_p (Lisp_Object object);
8640 static bool gs_load (struct frame *f, struct image *img);
8641 static void gs_clear_image (struct frame *f, struct image *img);
8642
8643 /* Keyword symbols. */
8644
8645 static Lisp_Object QCloader, QCbounding_box, QCpt_width, QCpt_height;
8646
8647 /* Indices of image specification fields in gs_format, below. */
8648
8649 enum gs_keyword_index
8650 {
8651 GS_TYPE,
8652 GS_PT_WIDTH,
8653 GS_PT_HEIGHT,
8654 GS_FILE,
8655 GS_LOADER,
8656 GS_BOUNDING_BOX,
8657 GS_ASCENT,
8658 GS_MARGIN,
8659 GS_RELIEF,
8660 GS_ALGORITHM,
8661 GS_HEURISTIC_MASK,
8662 GS_MASK,
8663 GS_BACKGROUND,
8664 GS_LAST
8665 };
8666
8667 /* Vector of image_keyword structures describing the format
8668 of valid user-defined image specifications. */
8669
8670 static const struct image_keyword gs_format[GS_LAST] =
8671 {
8672 {":type", IMAGE_SYMBOL_VALUE, 1},
8673 {":pt-width", IMAGE_POSITIVE_INTEGER_VALUE, 1},
8674 {":pt-height", IMAGE_POSITIVE_INTEGER_VALUE, 1},
8675 {":file", IMAGE_STRING_VALUE, 1},
8676 {":loader", IMAGE_FUNCTION_VALUE, 0},
8677 {":bounding-box", IMAGE_DONT_CHECK_VALUE_TYPE, 1},
8678 {":ascent", IMAGE_ASCENT_VALUE, 0},
8679 {":margin", IMAGE_NON_NEGATIVE_INTEGER_VALUE_OR_PAIR, 0},
8680 {":relief", IMAGE_INTEGER_VALUE, 0},
8681 {":conversion", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8682 {":heuristic-mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8683 {":mask", IMAGE_DONT_CHECK_VALUE_TYPE, 0},
8684 {":background", IMAGE_STRING_OR_NIL_VALUE, 0}
8685 };
8686
8687 /* Structure describing the image type `ghostscript'. */
8688
8689 static struct image_type gs_type =
8690 {
8691 &Qpostscript,
8692 gs_image_p,
8693 gs_load,
8694 gs_clear_image,
8695 NULL,
8696 NULL
8697 };
8698
8699
8700 /* Free X resources of Ghostscript image IMG which is used on frame F. */
8701
8702 static void
8703 gs_clear_image (struct frame *f, struct image *img)
8704 {
8705 x_clear_image (f, img);
8706 }
8707
8708
8709 /* Return true if OBJECT is a valid Ghostscript image
8710 specification. */
8711
8712 static bool
8713 gs_image_p (Lisp_Object object)
8714 {
8715 struct image_keyword fmt[GS_LAST];
8716 Lisp_Object tem;
8717 int i;
8718
8719 memcpy (fmt, gs_format, sizeof fmt);
8720
8721 if (!parse_image_spec (object, fmt, GS_LAST, Qpostscript))
8722 return 0;
8723
8724 /* Bounding box must be a list or vector containing 4 integers. */
8725 tem = fmt[GS_BOUNDING_BOX].value;
8726 if (CONSP (tem))
8727 {
8728 for (i = 0; i < 4; ++i, tem = XCDR (tem))
8729 if (!CONSP (tem) || !INTEGERP (XCAR (tem)))
8730 return 0;
8731 if (!NILP (tem))
8732 return 0;
8733 }
8734 else if (VECTORP (tem))
8735 {
8736 if (ASIZE (tem) != 4)
8737 return 0;
8738 for (i = 0; i < 4; ++i)
8739 if (!INTEGERP (AREF (tem, i)))
8740 return 0;
8741 }
8742 else
8743 return 0;
8744
8745 return 1;
8746 }
8747
8748
8749 /* Load Ghostscript image IMG for use on frame F. Value is true
8750 if successful. */
8751
8752 static bool
8753 gs_load (struct frame *f, struct image *img)
8754 {
8755 uprintmax_t printnum1, printnum2;
8756 char buffer[sizeof " " + INT_STRLEN_BOUND (printmax_t)];
8757 Lisp_Object window_and_pixmap_id = Qnil, loader, pt_height, pt_width;
8758 Lisp_Object frame;
8759 double in_width, in_height;
8760 Lisp_Object pixel_colors = Qnil;
8761
8762 /* Compute pixel size of pixmap needed from the given size in the
8763 image specification. Sizes in the specification are in pt. 1 pt
8764 = 1/72 in, xdpi and ydpi are stored in the frame's X display
8765 info. */
8766 pt_width = image_spec_value (img->spec, QCpt_width, NULL);
8767 in_width = INTEGERP (pt_width) ? XFASTINT (pt_width) / 72.0 : 0;
8768 in_width *= FRAME_RES_X (f);
8769 pt_height = image_spec_value (img->spec, QCpt_height, NULL);
8770 in_height = INTEGERP (pt_height) ? XFASTINT (pt_height) / 72.0 : 0;
8771 in_height *= FRAME_RES_Y (f);
8772
8773 if (! (in_width <= INT_MAX && in_height <= INT_MAX
8774 && check_image_size (f, in_width, in_height)))
8775 {
8776 image_error ("Invalid image size (see `max-image-size')", Qnil, Qnil);
8777 return 0;
8778 }
8779 img->width = in_width;
8780 img->height = in_height;
8781
8782 /* Create the pixmap. */
8783 eassert (img->pixmap == NO_PIXMAP);
8784
8785 if (x_check_image_size (0, img->width, img->height))
8786 {
8787 /* Only W32 version did BLOCK_INPUT here. ++kfs */
8788 block_input ();
8789 img->pixmap = XCreatePixmap (FRAME_X_DISPLAY (f), FRAME_X_WINDOW (f),
8790 img->width, img->height,
8791 DefaultDepthOfScreen (FRAME_X_SCREEN (f)));
8792 unblock_input ();
8793 }
8794
8795 if (!img->pixmap)
8796 {
8797 image_error ("Unable to create pixmap for `%s'", img->spec, Qnil);
8798 return 0;
8799 }
8800
8801 /* Call the loader to fill the pixmap. It returns a process object
8802 if successful. We do not record_unwind_protect here because
8803 other places in redisplay like calling window scroll functions
8804 don't either. Let the Lisp loader use `unwind-protect' instead. */
8805 printnum1 = FRAME_X_WINDOW (f);
8806 printnum2 = img->pixmap;
8807 window_and_pixmap_id
8808 = make_formatted_string (buffer, "%"pMu" %"pMu, printnum1, printnum2);
8809
8810 printnum1 = FRAME_FOREGROUND_PIXEL (f);
8811 printnum2 = FRAME_BACKGROUND_PIXEL (f);
8812 pixel_colors
8813 = make_formatted_string (buffer, "%"pMu" %"pMu, printnum1, printnum2);
8814
8815 XSETFRAME (frame, f);
8816 loader = image_spec_value (img->spec, QCloader, NULL);
8817 if (NILP (loader))
8818 loader = intern ("gs-load-image");
8819
8820 img->lisp_data = call6 (loader, frame, img->spec,
8821 make_number (img->width),
8822 make_number (img->height),
8823 window_and_pixmap_id,
8824 pixel_colors);
8825 return PROCESSP (img->lisp_data);
8826 }
8827
8828
8829 /* Kill the Ghostscript process that was started to fill PIXMAP on
8830 frame F. Called from XTread_socket when receiving an event
8831 telling Emacs that Ghostscript has finished drawing. */
8832
8833 void
8834 x_kill_gs_process (Pixmap pixmap, struct frame *f)
8835 {
8836 struct image_cache *c = FRAME_IMAGE_CACHE (f);
8837 int class;
8838 ptrdiff_t i;
8839 struct image *img;
8840
8841 /* Find the image containing PIXMAP. */
8842 for (i = 0; i < c->used; ++i)
8843 if (c->images[i]->pixmap == pixmap)
8844 break;
8845
8846 /* Should someone in between have cleared the image cache, for
8847 instance, give up. */
8848 if (i == c->used)
8849 return;
8850
8851 /* Kill the GS process. We should have found PIXMAP in the image
8852 cache and its image should contain a process object. */
8853 img = c->images[i];
8854 eassert (PROCESSP (img->lisp_data));
8855 Fkill_process (img->lisp_data, Qnil);
8856 img->lisp_data = Qnil;
8857
8858 #if defined (HAVE_X_WINDOWS)
8859
8860 /* On displays with a mutable colormap, figure out the colors
8861 allocated for the image by looking at the pixels of an XImage for
8862 img->pixmap. */
8863 class = FRAME_X_VISUAL (f)->class;
8864 if (class != StaticColor && class != StaticGray && class != TrueColor)
8865 {
8866 XImagePtr ximg;
8867
8868 block_input ();
8869
8870 /* Try to get an XImage for img->pixmep. */
8871 ximg = XGetImage (FRAME_X_DISPLAY (f), img->pixmap,
8872 0, 0, img->width, img->height, ~0, ZPixmap);
8873 if (ximg)
8874 {
8875 int x, y;
8876
8877 /* Initialize the color table. */
8878 init_color_table ();
8879
8880 /* For each pixel of the image, look its color up in the
8881 color table. After having done so, the color table will
8882 contain an entry for each color used by the image. */
8883 for (y = 0; y < img->height; ++y)
8884 for (x = 0; x < img->width; ++x)
8885 {
8886 unsigned long pixel = XGetPixel (ximg, x, y);
8887 lookup_pixel_color (f, pixel);
8888 }
8889
8890 /* Record colors in the image. Free color table and XImage. */
8891 #ifdef COLOR_TABLE_SUPPORT
8892 img->colors = colors_in_color_table (&img->ncolors);
8893 free_color_table ();
8894 #endif
8895 XDestroyImage (ximg);
8896
8897 #if 0 /* This doesn't seem to be the case. If we free the colors
8898 here, we get a BadAccess later in x_clear_image when
8899 freeing the colors. */
8900 /* We have allocated colors once, but Ghostscript has also
8901 allocated colors on behalf of us. So, to get the
8902 reference counts right, free them once. */
8903 if (img->ncolors)
8904 x_free_colors (f, img->colors, img->ncolors);
8905 #endif
8906 }
8907 else
8908 image_error ("Cannot get X image of `%s'; colors will not be freed",
8909 img->spec, Qnil);
8910
8911 unblock_input ();
8912 }
8913 #endif /* HAVE_X_WINDOWS */
8914
8915 /* Now that we have the pixmap, compute mask and transform the
8916 image if requested. */
8917 block_input ();
8918 postprocess_image (f, img);
8919 unblock_input ();
8920 }
8921
8922 #endif /* HAVE_GHOSTSCRIPT */
8923
8924 \f
8925 /***********************************************************************
8926 Tests
8927 ***********************************************************************/
8928
8929 #ifdef GLYPH_DEBUG
8930
8931 DEFUN ("imagep", Fimagep, Simagep, 1, 1, 0,
8932 doc: /* Value is non-nil if SPEC is a valid image specification. */)
8933 (Lisp_Object spec)
8934 {
8935 return valid_image_p (spec) ? Qt : Qnil;
8936 }
8937
8938
8939 DEFUN ("lookup-image", Flookup_image, Slookup_image, 1, 1, 0, "")
8940 (Lisp_Object spec)
8941 {
8942 ptrdiff_t id = -1;
8943
8944 if (valid_image_p (spec))
8945 id = lookup_image (SELECTED_FRAME (), spec);
8946
8947 debug_print (spec);
8948 return make_number (id);
8949 }
8950
8951 #endif /* GLYPH_DEBUG */
8952
8953
8954 /***********************************************************************
8955 Initialization
8956 ***********************************************************************/
8957
8958 DEFUN ("init-image-library", Finit_image_library, Sinit_image_library, 1, 1, 0,
8959 doc: /* Initialize image library implementing image type TYPE.
8960 Return non-nil if TYPE is a supported image type.
8961
8962 If image libraries are loaded dynamically (currently only the case on
8963 MS-Windows), load the library for TYPE if it is not yet loaded, using
8964 the library file(s) specified by `dynamic-library-alist'. */)
8965 (Lisp_Object type)
8966 {
8967 return lookup_image_type (type) ? Qt : Qnil;
8968 }
8969
8970 /* Look up image type TYPE, and return a pointer to its image_type
8971 structure. Return 0 if TYPE is not a known image type. */
8972
8973 static struct image_type *
8974 lookup_image_type (Lisp_Object type)
8975 {
8976 /* Types pbm and xbm are built-in and always available. */
8977 if (EQ (type, Qpbm))
8978 return define_image_type (&pbm_type);
8979
8980 if (EQ (type, Qxbm))
8981 return define_image_type (&xbm_type);
8982
8983 #if defined (HAVE_XPM) || defined (HAVE_NS)
8984 if (EQ (type, Qxpm))
8985 return define_image_type (&xpm_type);
8986 #endif
8987
8988 #if defined (HAVE_JPEG) || defined (HAVE_NS)
8989 if (EQ (type, Qjpeg))
8990 return define_image_type (&jpeg_type);
8991 #endif
8992
8993 #if defined (HAVE_TIFF) || defined (HAVE_NS)
8994 if (EQ (type, Qtiff))
8995 return define_image_type (&tiff_type);
8996 #endif
8997
8998 #if defined (HAVE_GIF) || defined (HAVE_NS)
8999 if (EQ (type, Qgif))
9000 return define_image_type (&gif_type);
9001 #endif
9002
9003 #if defined (HAVE_PNG) || defined (HAVE_NS)
9004 if (EQ (type, Qpng))
9005 return define_image_type (&png_type);
9006 #endif
9007
9008 #if defined (HAVE_RSVG)
9009 if (EQ (type, Qsvg))
9010 return define_image_type (&svg_type);
9011 #endif
9012
9013 #if defined (HAVE_IMAGEMAGICK)
9014 if (EQ (type, Qimagemagick))
9015 return define_image_type (&imagemagick_type);
9016 #endif
9017
9018 #ifdef HAVE_GHOSTSCRIPT
9019 if (EQ (type, Qpostscript))
9020 return define_image_type (&gs_type);
9021 #endif
9022
9023 return NULL;
9024 }
9025
9026 /* Reset image_types before dumping.
9027 Called from Fdump_emacs. */
9028
9029 void
9030 reset_image_types (void)
9031 {
9032 while (image_types)
9033 {
9034 struct image_type *next = image_types->next;
9035 xfree (image_types);
9036 image_types = next;
9037 }
9038 }
9039
9040 void
9041 syms_of_image (void)
9042 {
9043 /* Initialize this only once; it will be reset before dumping. */
9044 image_types = NULL;
9045
9046 /* Must be defined now because we're going to update it below, while
9047 defining the supported image types. */
9048 DEFVAR_LISP ("image-types", Vimage_types,
9049 doc: /* List of potentially supported image types.
9050 Each element of the list is a symbol for an image type, like 'jpeg or 'png.
9051 To check whether it is really supported, use `image-type-available-p'. */);
9052 Vimage_types = Qnil;
9053
9054 DEFVAR_LISP ("max-image-size", Vmax_image_size,
9055 doc: /* Maximum size of images.
9056 Emacs will not load an image into memory if its pixel width or
9057 pixel height exceeds this limit.
9058
9059 If the value is an integer, it directly specifies the maximum
9060 image height and width, measured in pixels. If it is a floating
9061 point number, it specifies the maximum image height and width
9062 as a ratio to the frame height and width. If the value is
9063 non-numeric, there is no explicit limit on the size of images. */);
9064 Vmax_image_size = make_float (MAX_IMAGE_SIZE);
9065
9066 DEFSYM (Qcount, "count");
9067 DEFSYM (Qextension_data, "extension-data");
9068 DEFSYM (Qdelay, "delay");
9069
9070 DEFSYM (QCascent, ":ascent");
9071 DEFSYM (QCmargin, ":margin");
9072 DEFSYM (QCrelief, ":relief");
9073 DEFSYM (QCconversion, ":conversion");
9074 DEFSYM (QCcolor_symbols, ":color-symbols");
9075 DEFSYM (QCheuristic_mask, ":heuristic-mask");
9076 DEFSYM (QCindex, ":index");
9077 DEFSYM (QCgeometry, ":geometry");
9078 DEFSYM (QCcrop, ":crop");
9079 DEFSYM (QCrotation, ":rotation");
9080 DEFSYM (QCmatrix, ":matrix");
9081 DEFSYM (QCcolor_adjustment, ":color-adjustment");
9082 DEFSYM (QCmask, ":mask");
9083
9084 DEFSYM (Qlaplace, "laplace");
9085 DEFSYM (Qemboss, "emboss");
9086 DEFSYM (Qedge_detection, "edge-detection");
9087 DEFSYM (Qheuristic, "heuristic");
9088
9089 DEFSYM (Qpostscript, "postscript");
9090 DEFSYM (QCmax_width, ":max-width");
9091 DEFSYM (QCmax_height, ":max-height");
9092 #ifdef HAVE_GHOSTSCRIPT
9093 ADD_IMAGE_TYPE (Qpostscript);
9094 DEFSYM (QCloader, ":loader");
9095 DEFSYM (QCbounding_box, ":bounding-box");
9096 DEFSYM (QCpt_width, ":pt-width");
9097 DEFSYM (QCpt_height, ":pt-height");
9098 #endif /* HAVE_GHOSTSCRIPT */
9099
9100 #ifdef HAVE_NTGUI
9101 DEFSYM (Qlibpng_version, "libpng-version");
9102 Fset (Qlibpng_version,
9103 #if HAVE_PNG
9104 make_number (PNG_LIBPNG_VER)
9105 #else
9106 make_number (-1)
9107 #endif
9108 );
9109 #endif
9110
9111 DEFSYM (Qpbm, "pbm");
9112 ADD_IMAGE_TYPE (Qpbm);
9113
9114 DEFSYM (Qxbm, "xbm");
9115 ADD_IMAGE_TYPE (Qxbm);
9116
9117 #if defined (HAVE_XPM) || defined (HAVE_NS)
9118 DEFSYM (Qxpm, "xpm");
9119 ADD_IMAGE_TYPE (Qxpm);
9120 #endif
9121
9122 #if defined (HAVE_JPEG) || defined (HAVE_NS)
9123 DEFSYM (Qjpeg, "jpeg");
9124 ADD_IMAGE_TYPE (Qjpeg);
9125 #endif
9126
9127 #if defined (HAVE_TIFF) || defined (HAVE_NS)
9128 DEFSYM (Qtiff, "tiff");
9129 ADD_IMAGE_TYPE (Qtiff);
9130 #endif
9131
9132 #if defined (HAVE_GIF) || defined (HAVE_NS)
9133 DEFSYM (Qgif, "gif");
9134 ADD_IMAGE_TYPE (Qgif);
9135 #endif
9136
9137 #if defined (HAVE_PNG) || defined (HAVE_NS)
9138 DEFSYM (Qpng, "png");
9139 ADD_IMAGE_TYPE (Qpng);
9140 #endif
9141
9142 #if defined (HAVE_IMAGEMAGICK)
9143 DEFSYM (Qimagemagick, "imagemagick");
9144 ADD_IMAGE_TYPE (Qimagemagick);
9145 #endif
9146
9147 #if defined (HAVE_RSVG)
9148 DEFSYM (Qsvg, "svg");
9149 ADD_IMAGE_TYPE (Qsvg);
9150 #ifdef HAVE_NTGUI
9151 /* Other libraries used directly by svg code. */
9152 DEFSYM (Qgdk_pixbuf, "gdk-pixbuf");
9153 DEFSYM (Qglib, "glib");
9154 DEFSYM (Qgobject, "gobject");
9155 #endif /* HAVE_NTGUI */
9156 #endif /* HAVE_RSVG */
9157
9158 defsubr (&Sinit_image_library);
9159 #ifdef HAVE_IMAGEMAGICK
9160 defsubr (&Simagemagick_types);
9161 #endif
9162 defsubr (&Sclear_image_cache);
9163 defsubr (&Simage_flush);
9164 defsubr (&Simage_size);
9165 defsubr (&Simage_mask_p);
9166 defsubr (&Simage_metadata);
9167
9168 #ifdef GLYPH_DEBUG
9169 defsubr (&Simagep);
9170 defsubr (&Slookup_image);
9171 #endif
9172
9173 DEFVAR_BOOL ("cross-disabled-images", cross_disabled_images,
9174 doc: /* Non-nil means always draw a cross over disabled images.
9175 Disabled images are those having a `:conversion disabled' property.
9176 A cross is always drawn on black & white displays. */);
9177 cross_disabled_images = 0;
9178
9179 DEFVAR_LISP ("x-bitmap-file-path", Vx_bitmap_file_path,
9180 doc: /* List of directories to search for window system bitmap files. */);
9181 Vx_bitmap_file_path = decode_env_path ((char *) 0, PATH_BITMAPS);
9182
9183 DEFVAR_LISP ("image-cache-eviction-delay", Vimage_cache_eviction_delay,
9184 doc: /* Maximum time after which images are removed from the cache.
9185 When an image has not been displayed this many seconds, Emacs
9186 automatically removes it from the image cache. If the cache contains
9187 a large number of images, the actual eviction time may be shorter.
9188 The value can also be nil, meaning the cache is never cleared.
9189
9190 The function `clear-image-cache' disregards this variable. */);
9191 Vimage_cache_eviction_delay = make_number (300);
9192 #ifdef HAVE_IMAGEMAGICK
9193 DEFVAR_INT ("imagemagick-render-type", imagemagick_render_type,
9194 doc: /* Integer indicating which ImageMagick rendering method to use.
9195 The options are:
9196 0 -- the default method (pixel pushing)
9197 1 -- a newer method ("MagickExportImagePixels") that may perform
9198 better (speed etc) in some cases, but has not been as thoroughly
9199 tested with Emacs as the default method. This method requires
9200 ImageMagick version 6.4.6 (approximately) or later.
9201 */);
9202 /* MagickExportImagePixels is in 6.4.6-9, but not 6.4.4-10. */
9203 imagemagick_render_type = 0;
9204 #endif
9205
9206 }