4 imgdouble.c - implements double per sample images
8 i_img *im = i_img_double_new(width, height, channels);
9 # use like a normal image
13 Implements double/sample images.
15 This basic implementation is required so that we have some larger
16 sample image type to work with.
26 static int i_ppix_ddoub(i_img *im, i_img_dim x, i_img_dim y, const i_color *val);
27 static int i_gpix_ddoub(i_img *im, i_img_dim x, i_img_dim y, i_color *val);
28 static i_img_dim i_glin_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_color *vals);
29 static i_img_dim i_plin_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_color *vals);
30 static int i_ppixf_ddoub(i_img *im, i_img_dim x, i_img_dim y, const i_fcolor *val);
31 static int i_gpixf_ddoub(i_img *im, i_img_dim x, i_img_dim y, i_fcolor *val);
32 static i_img_dim i_glinf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_fcolor *vals);
33 static i_img_dim i_plinf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_fcolor *vals);
34 static i_img_dim i_gsamp_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_sample_t *samps,
35 int const *chans, int chan_count);
36 static i_img_dim i_gsampf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_fsample_t *samps,
37 int const *chans, int chan_count);
39 i_psamp_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_sample_t *samps, const int *chans, int chan_count);
41 i_psampf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_fsample_t *samps, const int *chans, int chan_count);
44 =item IIM_base_16bit_direct
46 Base structure used to initialize a 16-bit/sample image.
52 static i_img IIM_base_double_direct =
55 0, 0, 0, /* xsize, ysize, bytes */
57 i_double_bits, /* bits */
58 i_direct_type, /* type */
61 { 0, 0, NULL }, /* tags */
64 i_ppix_ddoub, /* i_f_ppix */
65 i_ppixf_ddoub, /* i_f_ppixf */
66 i_plin_ddoub, /* i_f_plin */
67 i_plinf_ddoub, /* i_f_plinf */
68 i_gpix_ddoub, /* i_f_gpix */
69 i_gpixf_ddoub, /* i_f_gpixf */
70 i_glin_ddoub, /* i_f_glin */
71 i_glinf_ddoub, /* i_f_glinf */
72 i_gsamp_ddoub, /* i_f_gsamp */
73 i_gsampf_ddoub, /* i_f_gsampf */
77 NULL, /* i_f_addcolors */
78 NULL, /* i_f_getcolors */
79 NULL, /* i_f_colorcount */
80 NULL, /* i_f_maxcolors */
81 NULL, /* i_f_findcolor */
82 NULL, /* i_f_setcolors */
84 NULL, /* i_f_destroy */
87 NULL, /* i_f_psamp_bits */
89 i_psamp_ddoub, /* i_f_psamp */
90 i_psampf_ddoub /* i_f_psampf */
94 =item i_img_double_new(i_img_dim x, i_img_dim y, int ch)
95 =category Image creation/destruction
96 =synopsis i_img *img = i_img_double_new(width, height, channels);
98 Creates a new double per sample image.
102 i_img *i_img_double_new(i_img_dim x, i_img_dim y, int ch) {
106 mm_log((1,"i_img_double_new(x %" i_DF ", y %" i_DF ", ch %d)\n",
107 i_DFc(x), i_DFc(y), ch));
109 if (x < 1 || y < 1) {
110 i_push_error(0, "Image sizes must be positive");
113 if (ch < 1 || ch > MAXCHANNELS) {
114 i_push_errorf(0, "channels must be between 1 and %d", MAXCHANNELS);
117 bytes = x * y * ch * sizeof(double);
118 if (bytes / y / ch / sizeof(double) != x) {
119 i_push_errorf(0, "integer overflow calculating image allocation");
124 *im = IIM_base_double_direct;
125 i_tags_new(&im->tags);
131 im->idata = mymalloc(im->bytes);
132 memset(im->idata, 0, im->bytes);
138 static int i_ppix_ddoub(i_img *im, i_img_dim x, i_img_dim y, const i_color *val) {
142 if (x < 0 || x >= im->xsize || y < 0 || y >= im->ysize)
145 off = (x + y * im->xsize) * im->channels;
146 if (I_ALL_CHANNELS_WRITABLE(im)) {
147 for (ch = 0; ch < im->channels; ++ch)
148 ((double*)im->idata)[off+ch] = Sample8ToF(val->channel[ch]);
151 for (ch = 0; ch < im->channels; ++ch)
152 if (im->ch_mask & (1<<ch))
153 ((double*)im->idata)[off+ch] = Sample8ToF(val->channel[ch]);
159 static int i_gpix_ddoub(i_img *im, i_img_dim x, i_img_dim y, i_color *val) {
163 if (x < 0 || x >= im->xsize || y < 0 || y >= im->ysize)
166 off = (x + y * im->xsize) * im->channels;
167 for (ch = 0; ch < im->channels; ++ch)
168 val->channel[ch] = SampleFTo8(((double *)im->idata)[off+ch]);
173 static int i_ppixf_ddoub(i_img *im, i_img_dim x, i_img_dim y, const i_fcolor *val) {
177 if (x < 0 || x >= im->xsize || y < 0 || y >= im->ysize)
180 off = (x + y * im->xsize) * im->channels;
181 if (I_ALL_CHANNELS_WRITABLE(im)) {
182 for (ch = 0; ch < im->channels; ++ch)
183 ((double *)im->idata)[off+ch] = val->channel[ch];
186 for (ch = 0; ch < im->channels; ++ch)
187 if (im->ch_mask & (1 << ch))
188 ((double *)im->idata)[off+ch] = val->channel[ch];
194 static int i_gpixf_ddoub(i_img *im, i_img_dim x, i_img_dim y, i_fcolor *val) {
198 if (x < 0 || x >= im->xsize || y < 0 || y >= im->ysize)
201 off = (x + y * im->xsize) * im->channels;
202 for (ch = 0; ch < im->channels; ++ch)
203 val->channel[ch] = ((double *)im->idata)[off+ch];
208 static i_img_dim i_glin_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_color *vals) {
212 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
215 off = (l+y*im->xsize) * im->channels;
217 for (i = 0; i < count; ++i) {
218 for (ch = 0; ch < im->channels; ++ch) {
219 vals[i].channel[ch] = SampleFTo8(((double *)im->idata)[off]);
230 static i_img_dim i_plin_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_color *vals) {
234 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
237 off = (l+y*im->xsize) * im->channels;
239 if (I_ALL_CHANNELS_WRITABLE(im)) {
240 for (i = 0; i < count; ++i) {
241 for (ch = 0; ch < im->channels; ++ch) {
242 ((double *)im->idata)[off] = Sample8ToF(vals[i].channel[ch]);
248 for (i = 0; i < count; ++i) {
249 for (ch = 0; ch < im->channels; ++ch) {
250 if (im->ch_mask & (1 << ch))
251 ((double *)im->idata)[off] = Sample8ToF(vals[i].channel[ch]);
263 static i_img_dim i_glinf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_fcolor *vals) {
267 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
270 off = (l+y*im->xsize) * im->channels;
272 for (i = 0; i < count; ++i) {
273 for (ch = 0; ch < im->channels; ++ch) {
274 vals[i].channel[ch] = ((double *)im->idata)[off];
285 static i_img_dim i_plinf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_fcolor *vals) {
289 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
292 off = (l+y*im->xsize) * im->channels;
294 if (I_ALL_CHANNELS_WRITABLE(im)) {
295 for (i = 0; i < count; ++i) {
296 for (ch = 0; ch < im->channels; ++ch) {
297 ((double *)im->idata)[off] = vals[i].channel[ch];
303 for (i = 0; i < count; ++i) {
304 for (ch = 0; ch < im->channels; ++ch) {
305 if (im->ch_mask & (1 << ch))
306 ((double *)im->idata)[off] = vals[i].channel[ch];
318 static i_img_dim i_gsamp_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_sample_t *samps,
319 int const *chans, int chan_count) {
321 i_img_dim count, i, w;
324 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
327 off = (l+y*im->xsize) * im->channels;
332 /* make sure we have good channel numbers */
333 for (ch = 0; ch < chan_count; ++ch) {
334 if (chans[ch] < 0 || chans[ch] >= im->channels) {
335 i_push_errorf(0, "No channel %d in this image", chans[ch]);
339 for (i = 0; i < w; ++i) {
340 for (ch = 0; ch < chan_count; ++ch) {
341 *samps++ = SampleFTo8(((double *)im->idata)[off+chans[ch]]);
348 if (chan_count <= 0 || chan_count > im->channels) {
349 i_push_errorf(0, "chan_count %d out of range, must be >0, <= channels",
353 for (i = 0; i < w; ++i) {
354 for (ch = 0; ch < chan_count; ++ch) {
355 *samps++ = SampleFTo8(((double *)im->idata)[off+ch]);
369 static i_img_dim i_gsampf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, i_fsample_t *samps,
370 int const *chans, int chan_count) {
372 i_img_dim count, i, w;
375 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
378 off = (l+y*im->xsize) * im->channels;
383 /* make sure we have good channel numbers */
384 for (ch = 0; ch < chan_count; ++ch) {
385 if (chans[ch] < 0 || chans[ch] >= im->channels) {
386 i_push_errorf(0, "No channel %d in this image", chans[ch]);
390 for (i = 0; i < w; ++i) {
391 for (ch = 0; ch < chan_count; ++ch) {
392 *samps++ = ((double *)im->idata)[off+chans[ch]];
399 if (chan_count <= 0 || chan_count > im->channels) {
400 i_push_errorf(0, "chan_count %d out of range, must be >0, <= channels",
404 for (i = 0; i < w; ++i) {
405 for (ch = 0; ch < chan_count; ++ch) {
406 *samps++ = ((double *)im->idata)[off+ch];
421 =item i_psamp_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_sample_t *samps, int *chans, int chan_count)
423 Writes sample values to im for the horizontal line (l, y) to (r-1,y)
424 for the channels specified by chans, an array of int with chan_count
427 Returns the number of samples written (which should be (r-l) *
435 i_psamp_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y,
436 const i_sample_t *samps, const int *chans, int chan_count) {
438 i_img_dim count, i, w;
440 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
445 offset = (l+y*im->xsize) * im->channels;
450 /* make sure we have good channel numbers */
451 /* and test if all channels specified are in the mask */
453 for (ch = 0; ch < chan_count; ++ch) {
454 if (chans[ch] < 0 || chans[ch] >= im->channels) {
455 i_push_errorf(0, "No channel %d in this image", chans[ch]);
458 if (!((1 << chans[ch]) & im->ch_mask))
462 for (i = 0; i < w; ++i) {
463 for (ch = 0; ch < chan_count; ++ch) {
464 ((double*)im->idata)[offset + chans[ch]] = Sample8ToF(*samps);
468 offset += im->channels;
472 for (i = 0; i < w; ++i) {
473 for (ch = 0; ch < chan_count; ++ch) {
474 if (im->ch_mask & (1 << (chans[ch])))
475 ((double*)im->idata)[offset + chans[ch]] = Sample8ToF(*samps);
480 offset += im->channels;
485 if (chan_count <= 0 || chan_count > im->channels) {
486 i_push_errorf(0, "chan_count %d out of range, must be >0, <= channels",
490 for (i = 0; i < w; ++i) {
492 for (ch = 0; ch < chan_count; ++ch) {
493 if (im->ch_mask & mask)
494 ((double*)im->idata)[offset + ch] = Sample8ToF(*samps);
500 offset += im->channels;
507 i_push_error(0, "Image position outside of image");
513 =item i_psampf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y, const i_fsample_t *samps, int *chans, int chan_count)
515 Writes sample values to im for the horizontal line (l, y) to (r-1,y)
516 for the channels specified by chans, an array of int with chan_count
519 Returns the number of samples written (which should be (r-l) *
527 i_psampf_ddoub(i_img *im, i_img_dim l, i_img_dim r, i_img_dim y,
528 const i_fsample_t *samps, const int *chans, int chan_count) {
530 i_img_dim count, i, w;
532 if (y >=0 && y < im->ysize && l < im->xsize && l >= 0) {
537 offset = (l+y*im->xsize) * im->channels;
542 /* make sure we have good channel numbers */
543 /* and test if all channels specified are in the mask */
545 for (ch = 0; ch < chan_count; ++ch) {
546 if (chans[ch] < 0 || chans[ch] >= im->channels) {
547 i_push_errorf(0, "No channel %d in this image", chans[ch]);
550 if (!((1 << chans[ch]) & im->ch_mask))
554 for (i = 0; i < w; ++i) {
555 for (ch = 0; ch < chan_count; ++ch) {
556 ((double*)im->idata)[offset + chans[ch]] = *samps;
560 offset += im->channels;
564 for (i = 0; i < w; ++i) {
565 for (ch = 0; ch < chan_count; ++ch) {
566 if (im->ch_mask & (1 << (chans[ch])))
567 ((double*)im->idata)[offset + chans[ch]] = *samps;
572 offset += im->channels;
577 if (chan_count <= 0 || chan_count > im->channels) {
578 i_push_errorf(0, "chan_count %d out of range, must be >0, <= channels",
582 for (i = 0; i < w; ++i) {
584 for (ch = 0; ch < chan_count; ++ch) {
585 if (im->ch_mask & mask)
586 ((double*)im->idata)[offset + ch] = *samps;
592 offset += im->channels;
599 i_push_error(0, "Image position outside of image");
605 =item i_img_to_drgb(im)
607 =category Image creation
609 Returns a double/sample version of the supplied image.
611 Returns the image on success, or NULL on failure.
617 i_img_to_drgb(i_img *im) {
622 targ = i_img_double_new(im->xsize, im->ysize, im->channels);
625 line = mymalloc(sizeof(i_fcolor) * im->xsize);
626 for (y = 0; y < im->ysize; ++y) {
627 i_glinf(im, 0, im->xsize, y, line);
628 i_plinf(targ, 0, im->xsize, y, line);
641 Tony Cook <tony@develop-help.com>