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root/radiance/ray/src/util/rmatrix.c
Revision: 2.40
Committed: Wed Mar 25 01:51:09 2020 UTC (4 years, 1 month ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.39: +21 -2 lines
Log Message:
Changed rmtxop and dctimestep to undo any exposure on Radiance input pictures

File Contents

# Content
1 #ifndef lint
2 static const char RCSid[] = "$Id: rmatrix.c,v 2.39 2019/12/28 18:05:14 greg Exp $";
3 #endif
4 /*
5 * General matrix operations.
6 */
7
8 #include <stdlib.h>
9 #include <errno.h>
10 #include "rtio.h"
11 #include "platform.h"
12 #include "resolu.h"
13 #include "paths.h"
14 #include "rmatrix.h"
15
16 static char rmx_mismatch_warn[] = "WARNING: data type mismatch\n";
17
18 /* Allocate a nr x nc matrix with n components */
19 RMATRIX *
20 rmx_alloc(int nr, int nc, int n)
21 {
22 RMATRIX *dnew;
23
24 if ((nr <= 0) | (nc <= 0) | (n <= 0))
25 return(NULL);
26 dnew = (RMATRIX *)malloc(sizeof(RMATRIX)-sizeof(dnew->mtx) +
27 sizeof(dnew->mtx[0])*(n*nr*nc));
28 if (!dnew)
29 return(NULL);
30 dnew->nrows = nr; dnew->ncols = nc; dnew->ncomp = n;
31 dnew->dtype = DTdouble;
32 dnew->swapin = 0;
33 dnew->info = NULL;
34 return(dnew);
35 }
36
37 /* Free a RMATRIX array */
38 void
39 rmx_free(RMATRIX *rm)
40 {
41 if (!rm) return;
42 if (rm->info)
43 free(rm->info);
44 free(rm);
45 }
46
47 /* Resolve data type based on two input types (returns 0 for mismatch) */
48 int
49 rmx_newtype(int dtyp1, int dtyp2)
50 {
51 if ((dtyp1==DTxyze) | (dtyp1==DTrgbe) |
52 (dtyp2==DTxyze) | (dtyp2==DTrgbe)
53 && dtyp1 != dtyp2)
54 return(0);
55 if (dtyp1 < dtyp2)
56 return(dtyp1);
57 return(dtyp2);
58 }
59
60 /* Append header information associated with matrix data */
61 int
62 rmx_addinfo(RMATRIX *rm, const char *info)
63 {
64 if (!rm || !info || !*info)
65 return(0);
66 if (!rm->info) {
67 rm->info = (char *)malloc(strlen(info)+1);
68 if (rm->info) rm->info[0] = '\0';
69 } else
70 rm->info = (char *)realloc(rm->info,
71 strlen(rm->info)+strlen(info)+1);
72 if (!rm->info)
73 return(0);
74 strcat(rm->info, info);
75 return(1);
76 }
77
78 static int
79 get_dminfo(char *s, void *p)
80 {
81 RMATRIX *ip = (RMATRIX *)p;
82 char fmt[MAXFMTLEN];
83 int i;
84
85 if (headidval(fmt, s))
86 return(0);
87 if (!strncmp(s, "NCOMP=", 6)) {
88 ip->ncomp = atoi(s+6);
89 return(0);
90 }
91 if (!strncmp(s, "NROWS=", 6)) {
92 ip->nrows = atoi(s+6);
93 return(0);
94 }
95 if (!strncmp(s, "NCOLS=", 6)) {
96 ip->ncols = atoi(s+6);
97 return(0);
98 }
99 if ((i = isbigendian(s)) >= 0) {
100 ip->swapin = (nativebigendian() != i);
101 return(0);
102 }
103 if (isexpos(s)) {
104 double d = exposval(s);
105 scalecolor(ip->mtx, d);
106 return(0);
107 }
108 if (iscolcor(s)) {
109 COLOR ctmp;
110 colcorval(ctmp, s);
111 multcolor(ip->mtx, ctmp);
112 return(0);
113 }
114 if (!formatval(fmt, s)) {
115 rmx_addinfo(ip, s);
116 return(0);
117 }
118 for (i = 1; i < DTend; i++)
119 if (!strcmp(fmt, cm_fmt_id[i])) {
120 ip->dtype = i;
121 return(0);
122 }
123 return(-1);
124 }
125
126 static int
127 rmx_load_ascii(RMATRIX *rm, FILE *fp)
128 {
129 int i, j, k;
130
131 for (i = 0; i < rm->nrows; i++)
132 for (j = 0; j < rm->ncols; j++)
133 for (k = 0; k < rm->ncomp; k++)
134 if (fscanf(fp, "%lf", &rmx_lval(rm,i,j,k)) != 1)
135 return(0);
136 return(1);
137 }
138
139 static int
140 rmx_load_float(RMATRIX *rm, FILE *fp)
141 {
142 int i, j, k;
143 float val[100];
144
145 if (rm->ncomp > 100) {
146 fputs("Unsupported # components in rmx_load_float()\n", stderr);
147 exit(1);
148 }
149 for (i = 0; i < rm->nrows; i++)
150 for (j = 0; j < rm->ncols; j++) {
151 if (getbinary(val, sizeof(val[0]), rm->ncomp, fp) != rm->ncomp)
152 return(0);
153 if (rm->swapin)
154 swap32((char *)val, rm->ncomp);
155 for (k = rm->ncomp; k--; )
156 rmx_lval(rm,i,j,k) = val[k];
157 }
158 return(1);
159 }
160
161 static int
162 rmx_load_double(RMATRIX *rm, FILE *fp)
163 {
164 int i, j;
165
166 for (i = 0; i < rm->nrows; i++)
167 for (j = 0; j < rm->ncols; j++) {
168 if (getbinary(&rmx_lval(rm,i,j,0), sizeof(double), rm->ncomp, fp) != rm->ncomp)
169 return(0);
170 if (rm->swapin)
171 swap64((char *)&rmx_lval(rm,i,j,0), rm->ncomp);
172 }
173 return(1);
174 }
175
176 static int
177 rmx_load_rgbe(RMATRIX *rm, FILE *fp)
178 {
179 COLOR *scan = (COLOR *)malloc(sizeof(COLOR)*rm->ncols);
180 int i, j;
181
182 if (!scan)
183 return(0);
184 for (i = 0; i < rm->nrows; i++) {
185 if (freadscan(scan, rm->ncols, fp) < 0) {
186 free(scan);
187 return(0);
188 }
189 for (j = rm->ncols; j--; ) {
190 rmx_lval(rm,i,j,0) = colval(scan[j],RED);
191 rmx_lval(rm,i,j,1) = colval(scan[j],GRN);
192 rmx_lval(rm,i,j,2) = colval(scan[j],BLU);
193 }
194 }
195 free(scan);
196 return(1);
197 }
198
199 /* Load matrix from supported file type */
200 RMATRIX *
201 rmx_load(const char *inspec)
202 {
203 FILE *fp = stdin;
204 RMATRIX dinfo;
205 RMATRIX *dnew;
206
207 if (!inspec) { /* reading from stdin? */
208 inspec = "<stdin>";
209 SET_FILE_BINARY(stdin);
210 } else if (inspec[0] == '!') {
211 if (!(fp = popen(inspec+1, "r")))
212 return(NULL);
213 SET_FILE_BINARY(fp);
214 } else {
215 const char *sp = inspec; /* check suffix */
216 while (*sp)
217 ++sp;
218 while (sp > inspec && sp[-1] != '.')
219 --sp;
220 if (!strcasecmp(sp, "XML")) { /* assume it's a BSDF */
221 CMATRIX *cm = cm_loadBTDF((char *)inspec);
222 if (!cm)
223 return(NULL);
224 dnew = rmx_from_cmatrix(cm);
225 cm_free(cm);
226 dnew->dtype = DTascii;
227 return(dnew);
228 }
229 /* else open it ourselves */
230 if (!(fp = fopen(inspec, "rb")))
231 return(NULL);
232 }
233 #ifdef getc_unlocked
234 flockfile(fp);
235 #endif
236 dinfo.nrows = dinfo.ncols = dinfo.ncomp = 0;
237 dinfo.dtype = DTascii; /* assumed w/o FORMAT */
238 dinfo.swapin = 0;
239 dinfo.info = NULL;
240 dinfo.mtx[0] = dinfo.mtx[1] = dinfo.mtx[2] = 1.;
241 if (getheader(fp, get_dminfo, &dinfo) < 0) {
242 fclose(fp);
243 return(NULL);
244 }
245 if ((dinfo.nrows <= 0) | (dinfo.ncols <= 0)) {
246 if (!fscnresolu(&dinfo.ncols, &dinfo.nrows, fp)) {
247 fclose(fp);
248 return(NULL);
249 }
250 if (dinfo.ncomp <= 0)
251 dinfo.ncomp = 3;
252 else if ((dinfo.dtype == DTrgbe) | (dinfo.dtype == DTxyze) &&
253 dinfo.ncomp != 3) {
254 fclose(fp);
255 return(NULL);
256 }
257 }
258 dnew = rmx_alloc(dinfo.nrows, dinfo.ncols, dinfo.ncomp);
259 if (!dnew) {
260 fclose(fp);
261 return(NULL);
262 }
263 dnew->info = dinfo.info;
264 switch (dinfo.dtype) {
265 case DTascii:
266 SET_FILE_TEXT(fp);
267 if (!rmx_load_ascii(dnew, fp))
268 goto loaderr;
269 dnew->dtype = DTascii; /* should leave double? */
270 break;
271 case DTfloat:
272 dnew->swapin = dinfo.swapin;
273 if (!rmx_load_float(dnew, fp))
274 goto loaderr;
275 dnew->dtype = DTfloat;
276 break;
277 case DTdouble:
278 dnew->swapin = dinfo.swapin;
279 if (!rmx_load_double(dnew, fp))
280 goto loaderr;
281 dnew->dtype = DTdouble;
282 break;
283 case DTrgbe:
284 case DTxyze:
285 if (!rmx_load_rgbe(dnew, fp))
286 goto loaderr;
287 dnew->dtype = dinfo.dtype; /* undo exposure? */
288 if ((dinfo.mtx[0] != 1.) | (dinfo.mtx[1] != 1.) |
289 (dinfo.mtx[2] != 1.)) {
290 dinfo.mtx[0] = 1./dinfo.mtx[0];
291 dinfo.mtx[1] = 1./dinfo.mtx[1];
292 dinfo.mtx[2] = 1./dinfo.mtx[2];
293 rmx_scale(dnew, dinfo.mtx);
294 }
295 break;
296 default:
297 goto loaderr;
298 }
299 if (fp != stdin) {
300 if (inspec[0] == '!')
301 pclose(fp);
302 else
303 fclose(fp);
304 }
305 #ifdef getc_unlocked
306 else
307 funlockfile(fp);
308 #endif
309 return(dnew);
310 loaderr: /* should report error? */
311 if (inspec[0] == '!')
312 pclose(fp);
313 else
314 fclose(fp);
315 rmx_free(dnew);
316 return(NULL);
317 }
318
319 static int
320 rmx_write_ascii(const RMATRIX *rm, FILE *fp)
321 {
322 const char *fmt = (rm->dtype == DTfloat) ? " %.7e" :
323 (rm->dtype == DTrgbe) | (rm->dtype == DTxyze) ? " %.3e" :
324 " %.15e" ;
325 int i, j, k;
326
327 for (i = 0; i < rm->nrows; i++) {
328 for (j = 0; j < rm->ncols; j++) {
329 for (k = 0; k < rm->ncomp; k++)
330 fprintf(fp, fmt, rmx_lval(rm,i,j,k));
331 fputc('\t', fp);
332 }
333 fputc('\n', fp);
334 }
335 return(1);
336 }
337
338 static int
339 rmx_write_float(const RMATRIX *rm, FILE *fp)
340 {
341 int i, j, k;
342 float val[100];
343
344 if (rm->ncomp > 100) {
345 fputs("Unsupported # components in rmx_write_float()\n", stderr);
346 exit(1);
347 }
348 for (i = 0; i < rm->nrows; i++)
349 for (j = 0; j < rm->ncols; j++) {
350 for (k = rm->ncomp; k--; )
351 val[k] = (float)rmx_lval(rm,i,j,k);
352 if (putbinary(val, sizeof(val[0]), rm->ncomp, fp) != rm->ncomp)
353 return(0);
354 }
355 return(1);
356 }
357
358 static int
359 rmx_write_double(const RMATRIX *rm, FILE *fp)
360 {
361 int i, j;
362
363 for (i = 0; i < rm->nrows; i++)
364 for (j = 0; j < rm->ncols; j++)
365 if (putbinary(&rmx_lval(rm,i,j,0), sizeof(double), rm->ncomp, fp) != rm->ncomp)
366 return(0);
367 return(1);
368 }
369
370 static int
371 rmx_write_rgbe(const RMATRIX *rm, FILE *fp)
372 {
373 COLR *scan = (COLR *)malloc(sizeof(COLR)*rm->ncols);
374 int i, j;
375
376 if (!scan)
377 return(0);
378 for (i = 0; i < rm->nrows; i++) {
379 for (j = rm->ncols; j--; )
380 setcolr(scan[j], rmx_lval(rm,i,j,0),
381 rmx_lval(rm,i,j,1),
382 rmx_lval(rm,i,j,2) );
383 if (fwritecolrs(scan, rm->ncols, fp) < 0) {
384 free(scan);
385 return(0);
386 }
387 }
388 free(scan);
389 return(1);
390 }
391
392 /* Write matrix to file type indicated by dtype */
393 int
394 rmx_write(const RMATRIX *rm, int dtype, FILE *fp)
395 {
396 RMATRIX *mydm = NULL;
397 int ok = 1;
398
399 if (!rm | !fp)
400 return(0);
401 #ifdef getc_unlocked
402 flockfile(fp);
403 #endif
404 /* complete header */
405 if (rm->info)
406 fputs(rm->info, fp);
407 if (dtype == DTfromHeader)
408 dtype = rm->dtype;
409 else if ((dtype == DTrgbe) & (rm->dtype == DTxyze))
410 dtype = DTxyze;
411 else if ((dtype == DTxyze) & (rm->dtype == DTrgbe))
412 dtype = DTrgbe;
413 if ((dtype != DTrgbe) & (dtype != DTxyze)) {
414 fprintf(fp, "NROWS=%d\n", rm->nrows);
415 fprintf(fp, "NCOLS=%d\n", rm->ncols);
416 fprintf(fp, "NCOMP=%d\n", rm->ncomp);
417 } else if (rm->ncomp != 3) { /* wrong # components? */
418 double cmtx[3];
419 if (rm->ncomp != 1) /* only convert grayscale */
420 return(0);
421 cmtx[0] = cmtx[1] = cmtx[2] = 1;
422 mydm = rmx_transform(rm, 3, cmtx);
423 if (!mydm)
424 return(0);
425 rm = mydm;
426 }
427 if ((dtype == DTfloat) | (dtype == DTdouble))
428 fputendian(fp); /* important to record */
429 fputformat((char *)cm_fmt_id[dtype], fp);
430 fputc('\n', fp);
431 switch (dtype) { /* write data */
432 case DTascii:
433 ok = rmx_write_ascii(rm, fp);
434 break;
435 case DTfloat:
436 ok = rmx_write_float(rm, fp);
437 break;
438 case DTdouble:
439 ok = rmx_write_double(rm, fp);
440 break;
441 case DTrgbe:
442 case DTxyze:
443 fprtresolu(rm->ncols, rm->nrows, fp);
444 ok = rmx_write_rgbe(rm, fp);
445 break;
446 default:
447 return(0);
448 }
449 ok &= (fflush(fp) == 0);
450 #ifdef getc_unlocked
451 funlockfile(fp);
452 #endif
453 if (mydm)
454 rmx_free(mydm);
455 return(ok);
456 }
457
458 /* Allocate and assign square identity matrix with n components */
459 RMATRIX *
460 rmx_identity(const int dim, const int n)
461 {
462 RMATRIX *rid = rmx_alloc(dim, dim, n);
463 int i, k;
464
465 if (!rid)
466 return(NULL);
467 memset(rid->mtx, 0, sizeof(rid->mtx[0])*n*dim*dim);
468 for (i = dim; i--; )
469 for (k = n; k--; )
470 rmx_lval(rid,i,i,k) = 1;
471 return(rid);
472 }
473
474 /* Duplicate the given matrix */
475 RMATRIX *
476 rmx_copy(const RMATRIX *rm)
477 {
478 RMATRIX *dnew;
479
480 if (!rm)
481 return(NULL);
482 dnew = rmx_alloc(rm->nrows, rm->ncols, rm->ncomp);
483 if (!dnew)
484 return(NULL);
485 rmx_addinfo(dnew, rm->info);
486 dnew->dtype = rm->dtype;
487 memcpy(dnew->mtx, rm->mtx,
488 sizeof(rm->mtx[0])*rm->ncomp*rm->nrows*rm->ncols);
489 return(dnew);
490 }
491
492 /* Allocate and assign transposed matrix */
493 RMATRIX *
494 rmx_transpose(const RMATRIX *rm)
495 {
496 RMATRIX *dnew;
497 int i, j, k;
498
499 if (!rm)
500 return(0);
501 if ((rm->nrows == 1) | (rm->ncols == 1)) {
502 dnew = rmx_copy(rm);
503 if (!dnew)
504 return(NULL);
505 dnew->nrows = rm->ncols;
506 dnew->ncols = rm->nrows;
507 return(dnew);
508 }
509 dnew = rmx_alloc(rm->ncols, rm->nrows, rm->ncomp);
510 if (!dnew)
511 return(NULL);
512 if (rm->info) {
513 rmx_addinfo(dnew, rm->info);
514 rmx_addinfo(dnew, "Transposed rows and columns\n");
515 }
516 dnew->dtype = rm->dtype;
517 for (i = dnew->nrows; i--; )
518 for (j = dnew->ncols; j--; )
519 for (k = dnew->ncomp; k--; )
520 rmx_lval(dnew,i,j,k) = rmx_lval(rm,j,i,k);
521 return(dnew);
522 }
523
524 /* Multiply (concatenate) two matrices and allocate the result */
525 RMATRIX *
526 rmx_multiply(const RMATRIX *m1, const RMATRIX *m2)
527 {
528 RMATRIX *mres;
529 int i, j, k, h;
530
531 if (!m1 | !m2 || (m1->ncomp != m2->ncomp) | (m1->ncols != m2->nrows))
532 return(NULL);
533 mres = rmx_alloc(m1->nrows, m2->ncols, m1->ncomp);
534 if (!mres)
535 return(NULL);
536 i = rmx_newtype(m1->dtype, m2->dtype);
537 if (i)
538 mres->dtype = i;
539 else
540 rmx_addinfo(mres, rmx_mismatch_warn);
541 for (i = mres->nrows; i--; )
542 for (j = mres->ncols; j--; )
543 for (k = mres->ncomp; k--; ) {
544 long double d = 0;
545 for (h = m1->ncols; h--; )
546 d += rmx_lval(m1,i,h,k) * rmx_lval(m2,h,j,k);
547 rmx_lval(mres,i,j,k) = (double)d;
548 }
549 return(mres);
550 }
551
552 /* Element-wise multiplication (or division) of m2 into m1 */
553 int
554 rmx_elemult(RMATRIX *m1, const RMATRIX *m2, int divide)
555 {
556 int zeroDivides = 0;
557 int i, j, k;
558
559 if (!m1 | !m2 || (m1->ncols != m2->ncols) | (m1->nrows != m2->nrows))
560 return(0);
561 if ((m2->ncomp > 1) & (m2->ncomp != m1->ncomp))
562 return(0);
563 i = rmx_newtype(m1->dtype, m2->dtype);
564 if (i)
565 m1->dtype = i;
566 else
567 rmx_addinfo(m1, rmx_mismatch_warn);
568 for (i = m1->nrows; i--; )
569 for (j = m1->ncols; j--; )
570 if (divide) {
571 double d;
572 if (m2->ncomp == 1) {
573 d = rmx_lval(m2,i,j,0);
574 if (d == 0) {
575 ++zeroDivides;
576 for (k = m1->ncomp; k--; )
577 rmx_lval(m1,i,j,k) = 0;
578 } else {
579 d = 1./d;
580 for (k = m1->ncomp; k--; )
581 rmx_lval(m1,i,j,k) *= d;
582 }
583 } else
584 for (k = m1->ncomp; k--; ) {
585 d = rmx_lval(m2,i,j,k);
586 if (d == 0) {
587 ++zeroDivides;
588 rmx_lval(m1,i,j,k) = 0;
589 } else
590 rmx_lval(m1,i,j,k) /= d;
591 }
592 } else {
593 if (m2->ncomp == 1) {
594 const double d = rmx_lval(m2,i,j,0);
595 for (k = m1->ncomp; k--; )
596 rmx_lval(m1,i,j,k) *= d;
597 } else
598 for (k = m1->ncomp; k--; )
599 rmx_lval(m1,i,j,k) *= rmx_lval(m2,i,j,k);
600 }
601 if (zeroDivides) {
602 rmx_addinfo(m1, "WARNING: zero divide(s) corrupted results\n");
603 errno = ERANGE;
604 }
605 return(1);
606 }
607
608 /* Sum second matrix into first, applying scale factor beforehand */
609 int
610 rmx_sum(RMATRIX *msum, const RMATRIX *madd, const double sf[])
611 {
612 double *mysf = NULL;
613 int i, j, k;
614
615 if (!msum | !madd ||
616 (msum->nrows != madd->nrows) |
617 (msum->ncols != madd->ncols) |
618 (msum->ncomp != madd->ncomp))
619 return(0);
620 if (!sf) {
621 mysf = (double *)malloc(sizeof(double)*msum->ncomp);
622 if (!mysf)
623 return(0);
624 for (k = msum->ncomp; k--; )
625 mysf[k] = 1;
626 sf = mysf;
627 }
628 i = rmx_newtype(msum->dtype, madd->dtype);
629 if (i)
630 msum->dtype = i;
631 else
632 rmx_addinfo(msum, rmx_mismatch_warn);
633 for (i = msum->nrows; i--; )
634 for (j = msum->ncols; j--; )
635 for (k = msum->ncomp; k--; )
636 rmx_lval(msum,i,j,k) += sf[k] * rmx_lval(madd,i,j,k);
637 if (mysf)
638 free(mysf);
639 return(1);
640 }
641
642 /* Scale the given matrix by the indicated scalar component vector */
643 int
644 rmx_scale(RMATRIX *rm, const double sf[])
645 {
646 int i, j, k;
647
648 if (!rm | !sf)
649 return(0);
650 for (i = rm->nrows; i--; )
651 for (j = rm->ncols; j--; )
652 for (k = rm->ncomp; k--; )
653 rmx_lval(rm,i,j,k) *= sf[k];
654
655 if (rm->info)
656 rmx_addinfo(rm, "Applied scalar\n");
657 return(1);
658 }
659
660 /* Allocate new matrix and apply component transformation */
661 RMATRIX *
662 rmx_transform(const RMATRIX *msrc, int n, const double cmat[])
663 {
664 int i, j, ks, kd;
665 RMATRIX *dnew;
666
667 if (!msrc | (n <= 0) | !cmat)
668 return(NULL);
669 dnew = rmx_alloc(msrc->nrows, msrc->ncols, n);
670 if (!dnew)
671 return(NULL);
672 if (msrc->info) {
673 char buf[128];
674 sprintf(buf, "Applied %dx%d component transform\n",
675 dnew->ncomp, msrc->ncomp);
676 rmx_addinfo(dnew, msrc->info);
677 rmx_addinfo(dnew, buf);
678 }
679 dnew->dtype = msrc->dtype;
680 for (i = dnew->nrows; i--; )
681 for (j = dnew->ncols; j--; )
682 for (kd = dnew->ncomp; kd--; ) {
683 double d = 0;
684 for (ks = msrc->ncomp; ks--; )
685 d += cmat[kd*msrc->ncomp + ks] * rmx_lval(msrc,i,j,ks);
686 rmx_lval(dnew,i,j,kd) = d;
687 }
688 return(dnew);
689 }
690
691 /* Convert a color matrix to newly allocated RMATRIX buffer */
692 RMATRIX *
693 rmx_from_cmatrix(const CMATRIX *cm)
694 {
695 int i, j;
696 RMATRIX *dnew;
697
698 if (!cm)
699 return(NULL);
700 dnew = rmx_alloc(cm->nrows, cm->ncols, 3);
701 if (!dnew)
702 return(NULL);
703 dnew->dtype = DTfloat;
704 for (i = dnew->nrows; i--; )
705 for (j = dnew->ncols; j--; ) {
706 const COLORV *cv = cm_lval(cm,i,j);
707 rmx_lval(dnew,i,j,0) = cv[0];
708 rmx_lval(dnew,i,j,1) = cv[1];
709 rmx_lval(dnew,i,j,2) = cv[2];
710 }
711 return(dnew);
712 }
713
714 /* Convert general matrix to newly allocated CMATRIX buffer */
715 CMATRIX *
716 cm_from_rmatrix(const RMATRIX *rm)
717 {
718 int i, j;
719 CMATRIX *cnew;
720
721 if (!rm || rm->ncomp != 3)
722 return(NULL);
723 cnew = cm_alloc(rm->nrows, rm->ncols);
724 if (!cnew)
725 return(NULL);
726 for (i = cnew->nrows; i--; )
727 for (j = cnew->ncols; j--; ) {
728 COLORV *cv = cm_lval(cnew,i,j);
729 cv[0] = (COLORV)rmx_lval(rm,i,j,0);
730 cv[1] = (COLORV)rmx_lval(rm,i,j,1);
731 cv[2] = (COLORV)rmx_lval(rm,i,j,2);
732 }
733 return(cnew);
734 }