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root/radiance/ray/src/util/rmatrix.c
Revision: 2.70
Committed: Tue Dec 5 01:06:10 2023 UTC (4 months, 3 weeks ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.69: +2 -2 lines
Log Message:
feat(rmtxcomb): Initial check-in of new matrix combining tool

File Contents

# User Rev Content
1 greg 2.1 #ifndef lint
2 greg 2.70 static const char RCSid[] = "$Id: rmatrix.c,v 2.69 2023/12/04 22:02:40 greg Exp $";
3 greg 2.1 #endif
4     /*
5     * General matrix operations.
6     */
7    
8     #include <stdlib.h>
9 greg 2.25 #include <errno.h>
10 greg 2.21 #include "rtio.h"
11 schorsch 2.20 #include "platform.h"
12 greg 2.1 #include "resolu.h"
13 greg 2.19 #include "paths.h"
14 greg 2.1 #include "rmatrix.h"
15 greg 2.50 #if !defined(_WIN32) && !defined(_WIN64)
16     #include <sys/mman.h>
17     #endif
18 greg 2.1
19 greg 2.60 static const char rmx_mismatch_warn[] = "WARNING: data type mismatch\n";
20 greg 2.1
21 greg 2.50 #define array_size(rm) (sizeof(double)*(rm)->nrows*(rm)->ncols*(rm)->ncomp)
22     #define mapped_size(rm) ((char *)(rm)->mtx + array_size(rm) - (char *)(rm)->mapped)
23    
24     /* Initialize a RMATRIX struct but don't allocate array space */
25 greg 2.1 RMATRIX *
26 greg 2.50 rmx_new(int nr, int nc, int n)
27     {
28 greg 2.60 RMATRIX *dnew;
29    
30     if (n <= 0)
31     return(NULL);
32 greg 2.50
33 greg 2.60 dnew = (RMATRIX *)calloc(1, sizeof(RMATRIX));
34 greg 2.69 if (!dnew)
35     return(NULL);
36    
37     dnew->dtype = DTdouble;
38     dnew->nrows = nr;
39     dnew->ncols = nc;
40     dnew->ncomp = n;
41     setcolor(dnew->cexp, 1.f, 1.f, 1.f);
42     memcpy(dnew->wlpart, WLPART, sizeof(dnew->wlpart));
43    
44 greg 2.50 return(dnew);
45     }
46    
47     /* Prepare a RMATRIX for writing (allocate array if needed) */
48     int
49     rmx_prepare(RMATRIX *rm)
50     {
51     if (!rm) return(0);
52     if (rm->mtx)
53     return(1);
54 greg 2.60 if ((rm->nrows <= 0) | (rm->ncols <= 0) | (rm->ncomp <= 0))
55     return(0);
56 greg 2.50 rm->mtx = (double *)malloc(array_size(rm));
57     return(rm->mtx != NULL);
58     }
59    
60     /* Call rmx_new() and rmx_prepare() */
61     RMATRIX *
62 greg 2.1 rmx_alloc(int nr, int nc, int n)
63     {
64 greg 2.50 RMATRIX *dnew = rmx_new(nr, nc, n);
65 greg 2.1
66 greg 2.50 if (dnew && !rmx_prepare(dnew)) {
67     rmx_free(dnew);
68     dnew = NULL;
69     }
70 greg 2.1 return(dnew);
71     }
72    
73 greg 2.67 /* Clear state by freeing info and matrix data */
74 greg 2.6 void
75 greg 2.67 rmx_reset(RMATRIX *rm)
76 greg 2.6 {
77     if (!rm) return;
78 greg 2.67 if (rm->info) {
79 greg 2.6 free(rm->info);
80 greg 2.67 rm->info = NULL;
81     }
82     if (rm->mtx) {
83 greg 2.50 #ifdef MAP_FILE
84 greg 2.67 if (rm->mapped) {
85     munmap(rm->mapped, mapped_size(rm));
86     rm->mapped = NULL;
87     } else
88 greg 2.50 #endif
89 greg 2.67 free(rm->mtx);
90     rm->mtx = NULL;
91     }
92     }
93    
94     /* Free an RMATRIX struct and data */
95     void
96     rmx_free(RMATRIX *rm)
97     {
98     if (!rm) return;
99     rmx_reset(rm);
100 greg 2.6 free(rm);
101     }
102    
103     /* Resolve data type based on two input types (returns 0 for mismatch) */
104     int
105     rmx_newtype(int dtyp1, int dtyp2)
106     {
107 greg 2.60 if ((dtyp1==DTxyze) | (dtyp1==DTrgbe) | (dtyp1==DTspec) |
108     (dtyp2==DTxyze) | (dtyp2==DTrgbe) | (dtyp2==DTspec)
109 greg 2.14 && dtyp1 != dtyp2)
110 greg 2.6 return(0);
111     if (dtyp1 < dtyp2)
112     return(dtyp1);
113     return(dtyp2);
114     }
115    
116 greg 2.5 /* Append header information associated with matrix data */
117     int
118     rmx_addinfo(RMATRIX *rm, const char *info)
119     {
120 greg 2.50 int oldlen = 0;
121    
122 greg 2.33 if (!rm || !info || !*info)
123 greg 2.5 return(0);
124 greg 2.8 if (!rm->info) {
125 greg 2.5 rm->info = (char *)malloc(strlen(info)+1);
126 greg 2.8 if (rm->info) rm->info[0] = '\0';
127 greg 2.50 } else {
128     oldlen = strlen(rm->info);
129 greg 2.5 rm->info = (char *)realloc(rm->info,
130 greg 2.50 oldlen+strlen(info)+1);
131     }
132 greg 2.5 if (!rm->info)
133     return(0);
134 greg 2.50 strcpy(rm->info+oldlen, info);
135 greg 2.5 return(1);
136     }
137    
138 greg 2.1 static int
139     get_dminfo(char *s, void *p)
140     {
141 greg 2.6 RMATRIX *ip = (RMATRIX *)p;
142 greg 2.29 char fmt[MAXFMTLEN];
143 greg 2.1 int i;
144    
145 greg 2.59 if (headidval(NULL, s))
146 greg 2.6 return(0);
147 greg 2.60 if (isncomp(s)) {
148     ip->ncomp = ncompval(s);
149 greg 2.1 return(0);
150     }
151     if (!strncmp(s, "NROWS=", 6)) {
152     ip->nrows = atoi(s+6);
153     return(0);
154     }
155     if (!strncmp(s, "NCOLS=", 6)) {
156     ip->ncols = atoi(s+6);
157     return(0);
158     }
159 greg 2.35 if ((i = isbigendian(s)) >= 0) {
160     ip->swapin = (nativebigendian() != i);
161     return(0);
162     }
163 greg 2.40 if (isexpos(s)) {
164 greg 2.52 float f = exposval(s);
165     scalecolor(ip->cexp, f);
166 greg 2.40 return(0);
167     }
168     if (iscolcor(s)) {
169     COLOR ctmp;
170     colcorval(ctmp, s);
171 greg 2.50 multcolor(ip->cexp, ctmp);
172 greg 2.40 return(0);
173     }
174 greg 2.60 if (iswlsplit(s)) {
175     wlsplitval(ip->wlpart, s);
176     return(0);
177     }
178 greg 2.5 if (!formatval(fmt, s)) {
179 greg 2.6 rmx_addinfo(ip, s);
180 greg 2.1 return(0);
181 greg 2.50 } /* else check format */
182 greg 2.1 for (i = 1; i < DTend; i++)
183     if (!strcmp(fmt, cm_fmt_id[i])) {
184     ip->dtype = i;
185     return(0);
186     }
187     return(-1);
188     }
189    
190     static int
191 greg 2.65 rmx_load_ascii(double *drp, const RMATRIX *rm, FILE *fp)
192 greg 2.1 {
193 greg 2.65 int j, k;
194 greg 2.17
195 greg 2.65 for (j = 0; j < rm->ncols; j++)
196     for (k = rm->ncomp; k-- > 0; )
197     if (fscanf(fp, "%lf", drp++) != 1)
198     return(0);
199 greg 2.1 return(1);
200     }
201    
202     static int
203 greg 2.65 rmx_load_float(double *drp, const RMATRIX *rm, FILE *fp)
204 greg 2.1 {
205 greg 2.65 int j, k;
206 greg 2.1 float val[100];
207    
208     if (rm->ncomp > 100) {
209     fputs("Unsupported # components in rmx_load_float()\n", stderr);
210     exit(1);
211     }
212 greg 2.65 for (j = 0; j < rm->ncols; j++) {
213 greg 2.21 if (getbinary(val, sizeof(val[0]), rm->ncomp, fp) != rm->ncomp)
214 greg 2.65 return(0);
215 greg 2.35 if (rm->swapin)
216 greg 2.65 swap32((char *)val, rm->ncomp);
217     for (k = 0; k < rm->ncomp; k++)
218     *drp++ = val[k];
219     }
220 greg 2.1 return(1);
221     }
222    
223     static int
224 greg 2.65 rmx_load_double(double *drp, const RMATRIX *rm, FILE *fp)
225 greg 2.1 {
226 greg 2.65 if (getbinary(drp, sizeof(*drp)*rm->ncomp, rm->ncols, fp) != rm->ncols)
227 greg 2.50 return(0);
228 greg 2.65 if (rm->swapin)
229     swap64((char *)drp, rm->ncols*rm->ncomp);
230 greg 2.1 return(1);
231     }
232    
233     static int
234 greg 2.65 rmx_load_rgbe(double *drp, const RMATRIX *rm, FILE *fp)
235 greg 2.1 {
236 greg 2.65 COLR *scan;
237     COLOR col;
238     int j;
239 greg 2.1
240 greg 2.65 if (rm->ncomp != 3)
241     return(0);
242     scan = (COLR *)tempbuffer(sizeof(COLR)*rm->ncols);
243 greg 2.33 if (!scan)
244 greg 2.1 return(0);
245 greg 2.65 if (freadcolrs(scan, rm->ncols, fp) < 0)
246 greg 2.1 return(0);
247 greg 2.65 for (j = 0; j < rm->ncols; j++) {
248     colr_color(col, scan[j]);
249     *drp++ = colval(col,RED);
250     *drp++ = colval(col,GRN);
251     *drp++ = colval(col,BLU);
252 greg 2.1 }
253     return(1);
254     }
255    
256 greg 2.60 static int
257 greg 2.65 rmx_load_spec(double *drp, const RMATRIX *rm, FILE *fp)
258 greg 2.60 {
259     uby8 *scan;
260     SCOLOR scol;
261 greg 2.65 int j, k;
262 greg 2.60
263 greg 2.65 if ((rm->ncomp < 3) | (rm->ncomp > MAXCSAMP))
264 greg 2.60 return(0);
265 greg 2.65 scan = (uby8 *)tempbuffer((rm->ncomp+1)*rm->ncols);
266 greg 2.60 if (!scan)
267     return(0);
268 greg 2.65 if (freadscolrs(scan, rm->ncomp, rm->ncols, fp) < 0)
269 greg 2.60 return(0);
270 greg 2.65 for (j = 0; j < rm->ncols; j++) {
271     scolr2scolor(scol, scan+j*(rm->ncomp+1), rm->ncomp);
272     for (k = 0; k < rm->ncomp; k++)
273     *drp++ = scol[k];
274 greg 2.60 }
275     return(1);
276     }
277    
278 greg 2.62 /* Read matrix header from input stream (cannot be XML) */
279     int
280     rmx_load_header(RMATRIX *rm, FILE *fp)
281     {
282     if (!rm | !fp)
283 greg 2.63 return(0);
284 greg 2.67 rmx_reset(rm); /* clear state */
285 greg 2.62 if (rm->nrows | rm->ncols | !rm->dtype) {
286     rm->nrows = rm->ncols = 0;
287     rm->ncomp = 3;
288     setcolor(rm->cexp, 1.f, 1.f, 1.f);
289     memcpy(rm->wlpart, WLPART, sizeof(rm->wlpart));
290 greg 2.63 rm->swapin = 0;
291 greg 2.62 }
292     rm->dtype = DTascii; /* assumed w/o FORMAT */
293     if (getheader(fp, get_dminfo, rm) < 0) {
294     fputs("Unrecognized matrix format\n", stderr);
295 greg 2.63 return(0);
296 greg 2.62 }
297 greg 2.68 if ((rm->dtype == DTrgbe) | (rm->dtype == DTxyze) &&
298     rm->ncomp != 3)
299     return(0);
300     if (rm->ncols <= 0 && /* resolution string? */
301     !fscnresolu(&rm->ncols, &rm->nrows, fp))
302     return(0);
303     if (rm->dtype == DTascii) /* set file type (WINDOWS) */
304 greg 2.67 SET_FILE_TEXT(fp);
305     else
306     SET_FILE_BINARY(fp);
307 greg 2.63 return(1);
308 greg 2.62 }
309    
310 greg 2.65 /* Load next row as double (cannot be XML) */
311 greg 2.62 int
312 greg 2.65 rmx_load_row(double *drp, const RMATRIX *rm, FILE *fp)
313 greg 2.62 {
314     switch (rm->dtype) {
315     case DTascii:
316 greg 2.65 return(rmx_load_ascii(drp, rm, fp));
317 greg 2.62 case DTfloat:
318 greg 2.65 return(rmx_load_float(drp, rm, fp));
319 greg 2.62 case DTdouble:
320 greg 2.65 return(rmx_load_double(drp, rm, fp));
321 greg 2.62 case DTrgbe:
322     case DTxyze:
323 greg 2.65 return(rmx_load_rgbe(drp, rm, fp));
324 greg 2.62 case DTspec:
325 greg 2.65 return(rmx_load_spec(drp, rm, fp));
326 greg 2.62 default:
327 greg 2.65 fputs("Unsupported data type in rmx_load_row()\n", stderr);
328 greg 2.62 }
329     return(0);
330     }
331    
332 greg 2.65 /* Allocate & load post-header data from stream given type set in rm->dtype */
333     int
334     rmx_load_data(RMATRIX *rm, FILE *fp)
335     {
336     int i;
337     #ifdef MAP_FILE
338     long pos; /* map memory for file > 1MB if possible */
339     if ((rm->dtype == DTdouble) & !rm->swapin && array_size(rm) >= 1L<<20 &&
340     (pos = ftell(fp)) >= 0 && !(pos % sizeof(double))) {
341     rm->mapped = mmap(NULL, array_size(rm)+pos, PROT_READ|PROT_WRITE,
342     MAP_PRIVATE, fileno(fp), 0);
343     if (rm->mapped != MAP_FAILED) {
344     rm->mtx = (double *)rm->mapped + pos/sizeof(double);
345     return(1);
346     } /* else fall back on reading into memory */
347     rm->mapped = NULL;
348     }
349     #endif
350     if (!rmx_prepare(rm)) { /* need in-core matrix array */
351     fprintf(stderr, "Cannot allocate %g MByte matrix array\n",
352     (1./(1L<<20))*(double)array_size(rm));
353     return(0);
354     }
355     for (i = 0; i < rm->nrows; i++)
356     if (!rmx_load_row(rmx_lval(rm,i,0), rm, fp))
357     return(0);
358     return(1);
359     }
360    
361 greg 2.1 /* Load matrix from supported file type */
362     RMATRIX *
363 greg 2.46 rmx_load(const char *inspec, RMPref rmp)
364 greg 2.1 {
365 greg 2.46 FILE *fp;
366 greg 2.1 RMATRIX *dnew;
367 greg 2.62 int ok;
368 greg 2.1
369 greg 2.47 if (!inspec)
370     inspec = stdin_name;
371     else if (!*inspec)
372 greg 2.46 return(NULL);
373 greg 2.62 if (inspec == stdin_name) /* reading from stdin? */
374 greg 2.46 fp = stdin;
375 greg 2.62 else if (inspec[0] == '!')
376     fp = popen(inspec+1, "r");
377 greg 2.67 else if (rmp != RMPnone) {
378 greg 2.13 const char *sp = inspec; /* check suffix */
379 greg 2.1 while (*sp)
380     ++sp;
381 greg 2.13 while (sp > inspec && sp[-1] != '.')
382 greg 2.1 --sp;
383     if (!strcasecmp(sp, "XML")) { /* assume it's a BSDF */
384 greg 2.46 CMATRIX *cm = rmp==RMPtrans ? cm_loadBTDF(inspec) :
385     cm_loadBRDF(inspec, rmp==RMPreflB) ;
386 greg 2.33 if (!cm)
387 greg 2.1 return(NULL);
388     dnew = rmx_from_cmatrix(cm);
389     cm_free(cm);
390 greg 2.18 dnew->dtype = DTascii;
391 greg 2.62 return(dnew); /* return here */
392     } /* else open it ourselves */
393     fp = fopen(inspec, "r");
394 greg 2.1 }
395 greg 2.62 if (!fp)
396     return(NULL);
397 greg 2.1 #ifdef getc_unlocked
398     flockfile(fp);
399     #endif
400 greg 2.67 SET_FILE_BINARY(fp); /* load header info */
401 greg 2.63 if (!rmx_load_header(dnew = rmx_new(0,0,3), fp)) {
402 greg 2.62 fprintf(stderr, "Bad header in: %s\n", inspec);
403     if (inspec[0] == '!') pclose(fp);
404     else fclose(fp);
405     rmx_free(dnew);
406 greg 2.1 return(NULL);
407     }
408 greg 2.62 ok = rmx_load_data(dnew, fp); /* allocate & load data */
409    
410     if (fp != stdin) { /* close input stream */
411 greg 2.13 if (inspec[0] == '!')
412     pclose(fp);
413     else
414     fclose(fp);
415     }
416     #ifdef getc_unlocked
417     else
418     funlockfile(fp);
419     #endif
420 greg 2.62 if (!ok) { /* load failure? */
421     fprintf(stderr, "Error loading data from: %s\n", inspec);
422     rmx_free(dnew);
423     return(NULL);
424     }
425 greg 2.58 /* undo exposure? */
426 greg 2.60 if ((dnew->cexp[0] != 1.f) |
427 greg 2.58 (dnew->cexp[1] != 1.f) | (dnew->cexp[2] != 1.f)) {
428 greg 2.60 double cmlt[MAXCSAMP];
429     int i;
430 greg 2.58 cmlt[0] = 1./dnew->cexp[0];
431     cmlt[1] = 1./dnew->cexp[1];
432     cmlt[2] = 1./dnew->cexp[2];
433 greg 2.62 if (dnew->ncomp > MAXCSAMP) {
434     fprintf(stderr, "Excess spectral components in: %s\n",
435     inspec);
436     rmx_free(dnew);
437     return(NULL);
438     }
439 greg 2.60 for (i = dnew->ncomp; i-- > 3; )
440     cmlt[i] = cmlt[1];
441 greg 2.58 rmx_scale(dnew, cmlt);
442     setcolor(dnew->cexp, 1.f, 1.f, 1.f);
443     }
444 greg 2.1 return(dnew);
445     }
446    
447     static int
448 greg 2.67 rmx_write_ascii(const double *dp, int nc, int len, FILE *fp)
449 greg 2.1 {
450 greg 2.67 while (len-- > 0) {
451     int k = nc;
452     while (nc-- > 0)
453     fprintf(fp, " %.7e", *dp++);
454 greg 2.1 fputc('\t', fp);
455     }
456 greg 2.67 return(fputc('\n', fp) != EOF);
457 greg 2.1 }
458    
459     static int
460 greg 2.67 rmx_write_float(const double *dp, int len, FILE *fp)
461 greg 2.1 {
462 greg 2.67 float val;
463 greg 2.1
464 greg 2.67 while (len--) {
465     val = *dp++;
466     if (putbinary(&val, sizeof(float), 1, fp) != 1)
467     return(0);
468 greg 2.1 }
469     return(1);
470     }
471    
472     static int
473 greg 2.67 rmx_write_rgbe(const double *dp, int nc, int len, FILE *fp)
474 greg 2.1 {
475 greg 2.67 COLR *scan;
476     int j;
477 greg 2.1
478 greg 2.67 if ((nc != 1) & (nc != 3)) return(0);
479     scan = (COLR *)tempbuffer(sizeof(COLR)*len);
480     if (!scan) return(0);
481 greg 2.1
482 greg 2.67 for (j = 0; j < len; j++, dp += nc)
483     if (nc == 1)
484 greg 2.54 setcolr(scan[j], dp[0], dp[0], dp[0]);
485     else
486     setcolr(scan[j], dp[0], dp[1], dp[2]);
487 greg 2.67
488     return(fwritecolrs(scan, len, fp) >= 0);
489 greg 2.1 }
490    
491 greg 2.60 static int
492 greg 2.67 rmx_write_spec(const double *dp, int nc, int len, FILE *fp)
493 greg 2.60 {
494 greg 2.67 uby8 *scan;
495 greg 2.60 SCOLOR scol;
496 greg 2.67 int j, k;
497 greg 2.60
498 greg 2.67 if (nc < 3) return(0);
499     scan = (uby8 *)tempbuffer((nc+1)*len);
500     if (!scan) return(0);
501     for (j = len; j--; dp += nc) {
502     for (k = nc; k--; )
503 greg 2.60 scol[k] = dp[k];
504 greg 2.67 scolor2scolr(scan+j*(nc+1), scol, nc);
505 greg 2.60 }
506 greg 2.67 return(fwritescolrs(scan, nc, len, fp) >= 0);
507 greg 2.60 }
508    
509 greg 2.48 /* Check if CIE XYZ primaries were specified */
510     static int
511     findCIEprims(const char *info)
512     {
513     RGBPRIMS prims;
514    
515     if (!info)
516     return(0);
517     info = strstr(info, PRIMARYSTR);
518     if (!info || !primsval(prims, info))
519     return(0);
520    
521     return((prims[RED][CIEX] > .99) & (prims[RED][CIEY] < .01) &&
522     (prims[GRN][CIEX] < .01) & (prims[GRN][CIEY] > .99) &&
523     (prims[BLU][CIEX] < .01) & (prims[BLU][CIEY] < .01));
524     }
525    
526 greg 2.67 /* Finish writing header data with resolution and format, returning type used */
527 greg 2.10 int
528 greg 2.67 rmx_write_header(const RMATRIX *rm, int dtype, FILE *fp)
529 greg 2.1 {
530 greg 2.70 if (!rm | !fp || rm->ncols <= 0)
531 greg 2.1 return(0);
532 greg 2.67 if (rm->info)
533 greg 2.5 fputs(rm->info, fp);
534 greg 2.6 if (dtype == DTfromHeader)
535     dtype = rm->dtype;
536 greg 2.48 else if (dtype == DTrgbe && (rm->dtype == DTxyze ||
537     findCIEprims(rm->info)))
538 greg 2.6 dtype = DTxyze;
539 greg 2.9 else if ((dtype == DTxyze) & (rm->dtype == DTrgbe))
540 greg 2.6 dtype = DTrgbe;
541 greg 2.68 if ((dtype == DTspec) & (rm->ncomp < 3))
542     return(0);
543 greg 2.67
544 greg 2.68 if (dtype == DTascii) /* set file type (WINDOWS) */
545 greg 2.67 SET_FILE_TEXT(fp);
546     else
547     SET_FILE_BINARY(fp);
548 greg 2.60 /* write exposure? */
549     if (rm->ncomp == 3 && (rm->cexp[RED] != rm->cexp[GRN]) |
550     (rm->cexp[GRN] != rm->cexp[BLU]))
551     fputcolcor(rm->cexp, fp);
552     else if (rm->cexp[GRN] != 1.f)
553     fputexpos(rm->cexp[GRN], fp);
554 greg 2.68 /* matrix size? */
555     if ((dtype > DTspec) | (rm->nrows <= 0)) {
556     if (rm->nrows > 0)
557 greg 2.60 fprintf(fp, "NROWS=%d\n", rm->nrows);
558 greg 2.68 fprintf(fp, "NCOLS=%d\n", rm->ncols);
559     }
560     if (dtype >= DTspec) { /* # components & split? */
561 greg 2.60 fputncomp(rm->ncomp, fp);
562 greg 2.64 if (dtype == DTspec || (rm->ncomp > 3 &&
563     memcmp(rm->wlpart, WLPART, sizeof(WLPART))))
564     fputwlsplit(rm->wlpart, fp);
565 greg 2.54 } else if ((rm->ncomp != 3) & (rm->ncomp != 1))
566     return(0); /* wrong # components */
567 greg 2.35 if ((dtype == DTfloat) | (dtype == DTdouble))
568     fputendian(fp); /* important to record */
569 greg 2.49 fputformat(cm_fmt_id[dtype], fp);
570 greg 2.64 fputc('\n', fp); /* end of header */
571 greg 2.68 if ((dtype <= DTspec) & (rm->nrows > 0))
572 greg 2.67 fprtresolu(rm->ncols, rm->nrows, fp);
573     return(dtype);
574     }
575    
576     /* Write out matrix data (usually by row) */
577     int
578     rmx_write_data(const double *dp, int nc, int len, int dtype, FILE *fp)
579     {
580     switch (dtype) {
581 greg 2.1 case DTascii:
582 greg 2.67 return(rmx_write_ascii(dp, nc, len, fp));
583 greg 2.1 case DTfloat:
584 greg 2.67 return(rmx_write_float(dp, nc*len, fp));
585 greg 2.1 case DTdouble:
586 greg 2.67 return(putbinary(dp, sizeof(*dp)*nc, len, fp) == len);
587 greg 2.1 case DTrgbe:
588     case DTxyze:
589 greg 2.67 return(rmx_write_rgbe(dp, nc, len, fp));
590 greg 2.60 case DTspec:
591 greg 2.67 return(rmx_write_spec(dp, nc, len, fp));
592     }
593     return(0);
594     }
595    
596     /* Write matrix using file format indicated by dtype */
597     int
598     rmx_write(const RMATRIX *rm, int dtype, FILE *fp)
599     {
600     int ok = 0;
601     int i;
602     /* complete header */
603     dtype = rmx_write_header(rm, dtype, fp);
604     if (dtype <= 0)
605 greg 2.1 return(0);
606 greg 2.67 #ifdef getc_unlocked
607     flockfile(fp);
608     #endif
609     if (dtype == DTdouble) /* write all at once? */
610     ok = rmx_write_data(rm->mtx, rm->ncomp,
611     rm->nrows*rm->ncols, dtype, fp);
612     else /* else row by row */
613     for (i = 0; i < rm->nrows; i++) {
614     ok = rmx_write_data(rmx_val(rm,i,0), rm->ncomp,
615     rm->ncols, dtype, fp);
616     if (!ok) break;
617     }
618    
619     if (ok) ok = (fflush(fp) == 0);
620 greg 2.17 #ifdef getc_unlocked
621     funlockfile(fp);
622     #endif
623 greg 2.62 if (!ok) fputs("Error writing matrix\n", stderr);
624 greg 2.10 return(ok);
625 greg 2.1 }
626    
627     /* Allocate and assign square identity matrix with n components */
628     RMATRIX *
629     rmx_identity(const int dim, const int n)
630     {
631     RMATRIX *rid = rmx_alloc(dim, dim, n);
632 greg 2.12 int i, k;
633 greg 2.1
634 greg 2.33 if (!rid)
635 greg 2.1 return(NULL);
636 greg 2.52 memset(rid->mtx, 0, array_size(rid));
637 greg 2.53 for (i = dim; i--; ) {
638     double *dp = rmx_lval(rid,i,i);
639 greg 2.12 for (k = n; k--; )
640 greg 2.53 dp[k] = 1.;
641     }
642 greg 2.1 return(rid);
643     }
644    
645 greg 2.69 /* Duplicate the given matrix (may be unallocated) */
646 greg 2.1 RMATRIX *
647     rmx_copy(const RMATRIX *rm)
648     {
649     RMATRIX *dnew;
650    
651 greg 2.69 if (!rm)
652 greg 2.1 return(NULL);
653 greg 2.69 dnew = rmx_new(rm->nrows, rm->ncols, rm->ncomp);
654 greg 2.33 if (!dnew)
655 greg 2.1 return(NULL);
656 greg 2.69 if (rm->mtx) {
657     if (!rmx_prepare(dnew)) {
658     rmx_free(dnew);
659     return(NULL);
660     }
661     memcpy(dnew->mtx, rm->mtx, array_size(dnew));
662     }
663 greg 2.5 rmx_addinfo(dnew, rm->info);
664 greg 2.6 dnew->dtype = rm->dtype;
665 greg 2.60 copycolor(dnew->cexp, rm->cexp);
666     memcpy(dnew->wlpart, rm->wlpart, sizeof(dnew->wlpart));
667 greg 2.1 return(dnew);
668     }
669    
670 greg 2.2 /* Allocate and assign transposed matrix */
671     RMATRIX *
672     rmx_transpose(const RMATRIX *rm)
673 greg 2.1 {
674 greg 2.2 RMATRIX *dnew;
675 greg 2.55 int i, j;
676 greg 2.1
677 greg 2.67 if (!rm || !rm->mtx)
678 greg 2.1 return(0);
679 greg 2.31 if ((rm->nrows == 1) | (rm->ncols == 1)) {
680     dnew = rmx_copy(rm);
681 greg 2.33 if (!dnew)
682 greg 2.32 return(NULL);
683 greg 2.31 dnew->nrows = rm->ncols;
684     dnew->ncols = rm->nrows;
685     return(dnew);
686     }
687 greg 2.2 dnew = rmx_alloc(rm->ncols, rm->nrows, rm->ncomp);
688 greg 2.33 if (!dnew)
689 greg 2.2 return(NULL);
690 greg 2.5 if (rm->info) {
691     rmx_addinfo(dnew, rm->info);
692     rmx_addinfo(dnew, "Transposed rows and columns\n");
693     }
694 greg 2.6 dnew->dtype = rm->dtype;
695 greg 2.60 copycolor(dnew->cexp, rm->cexp);
696     memcpy(dnew->wlpart, rm->wlpart, sizeof(dnew->wlpart));
697 greg 2.56 for (j = dnew->ncols; j--; )
698     for (i = dnew->nrows; i--; )
699 greg 2.62 memcpy(rmx_lval(dnew,i,j), rmx_val(rm,j,i),
700 greg 2.53 sizeof(double)*dnew->ncomp);
701 greg 2.2 return(dnew);
702 greg 2.1 }
703    
704     /* Multiply (concatenate) two matrices and allocate the result */
705     RMATRIX *
706     rmx_multiply(const RMATRIX *m1, const RMATRIX *m2)
707     {
708     RMATRIX *mres;
709     int i, j, k, h;
710    
711 greg 2.67 if (!m1 | !m2 || !m1->mtx | !m2->mtx |
712     (m1->ncomp != m2->ncomp) | (m1->ncols != m2->nrows))
713 greg 2.1 return(NULL);
714     mres = rmx_alloc(m1->nrows, m2->ncols, m1->ncomp);
715 greg 2.33 if (!mres)
716 greg 2.1 return(NULL);
717 greg 2.6 i = rmx_newtype(m1->dtype, m2->dtype);
718     if (i)
719     mres->dtype = i;
720     else
721     rmx_addinfo(mres, rmx_mismatch_warn);
722 greg 2.1 for (i = mres->nrows; i--; )
723     for (j = mres->ncols; j--; )
724 greg 2.8 for (k = mres->ncomp; k--; ) {
725 greg 2.53 double d = 0;
726 greg 2.8 for (h = m1->ncols; h--; )
727 greg 2.62 d += rmx_val(m1,i,h)[k] * rmx_val(m2,h,j)[k];
728 greg 2.53 rmx_lval(mres,i,j)[k] = d;
729 greg 2.1 }
730     return(mres);
731     }
732    
733 greg 2.25 /* Element-wise multiplication (or division) of m2 into m1 */
734     int
735     rmx_elemult(RMATRIX *m1, const RMATRIX *m2, int divide)
736     {
737     int zeroDivides = 0;
738     int i, j, k;
739    
740 greg 2.67 if (!m1 | !m2 || !m1->mtx | !m2->mtx |
741     (m1->ncols != m2->ncols) | (m1->nrows != m2->nrows))
742 greg 2.25 return(0);
743     if ((m2->ncomp > 1) & (m2->ncomp != m1->ncomp))
744     return(0);
745     i = rmx_newtype(m1->dtype, m2->dtype);
746     if (i)
747     m1->dtype = i;
748     else
749     rmx_addinfo(m1, rmx_mismatch_warn);
750     for (i = m1->nrows; i--; )
751     for (j = m1->ncols; j--; )
752     if (divide) {
753     double d;
754     if (m2->ncomp == 1) {
755 greg 2.62 d = rmx_val(m2,i,j)[0];
756 greg 2.25 if (d == 0) {
757     ++zeroDivides;
758     for (k = m1->ncomp; k--; )
759 greg 2.53 rmx_lval(m1,i,j)[k] = 0;
760 greg 2.25 } else {
761     d = 1./d;
762     for (k = m1->ncomp; k--; )
763 greg 2.53 rmx_lval(m1,i,j)[k] *= d;
764 greg 2.25 }
765     } else
766     for (k = m1->ncomp; k--; ) {
767 greg 2.62 d = rmx_val(m2,i,j)[k];
768 greg 2.25 if (d == 0) {
769     ++zeroDivides;
770 greg 2.53 rmx_lval(m1,i,j)[k] = 0;
771 greg 2.25 } else
772 greg 2.53 rmx_lval(m1,i,j)[k] /= d;
773 greg 2.25 }
774     } else {
775     if (m2->ncomp == 1) {
776 greg 2.62 const double d = rmx_val(m2,i,j)[0];
777 greg 2.25 for (k = m1->ncomp; k--; )
778 greg 2.53 rmx_lval(m1,i,j)[k] *= d;
779 greg 2.25 } else
780     for (k = m1->ncomp; k--; )
781 greg 2.62 rmx_lval(m1,i,j)[k] *= rmx_val(m2,i,j)[k];
782 greg 2.25 }
783     if (zeroDivides) {
784 greg 2.34 rmx_addinfo(m1, "WARNING: zero divide(s) corrupted results\n");
785 greg 2.25 errno = ERANGE;
786     }
787     return(1);
788     }
789    
790 greg 2.1 /* Sum second matrix into first, applying scale factor beforehand */
791     int
792     rmx_sum(RMATRIX *msum, const RMATRIX *madd, const double sf[])
793     {
794     double *mysf = NULL;
795     int i, j, k;
796    
797 greg 2.67 if (!msum | !madd || !msum->mtx | !madd->mtx |
798 greg 2.1 (msum->nrows != madd->nrows) |
799     (msum->ncols != madd->ncols) |
800     (msum->ncomp != madd->ncomp))
801     return(0);
802 greg 2.33 if (!sf) {
803 greg 2.1 mysf = (double *)malloc(sizeof(double)*msum->ncomp);
804 greg 2.33 if (!mysf)
805 greg 2.1 return(0);
806     for (k = msum->ncomp; k--; )
807     mysf[k] = 1;
808     sf = mysf;
809     }
810 greg 2.6 i = rmx_newtype(msum->dtype, madd->dtype);
811     if (i)
812     msum->dtype = i;
813     else
814     rmx_addinfo(msum, rmx_mismatch_warn);
815 greg 2.1 for (i = msum->nrows; i--; )
816 greg 2.53 for (j = msum->ncols; j--; ) {
817 greg 2.62 const double *da = rmx_val(madd,i,j);
818 greg 2.53 double *ds = rmx_lval(msum,i,j);
819 greg 2.1 for (k = msum->ncomp; k--; )
820 greg 2.53 ds[k] += sf[k] * da[k];
821     }
822 greg 2.33 if (mysf)
823     free(mysf);
824 greg 2.1 return(1);
825     }
826    
827     /* Scale the given matrix by the indicated scalar component vector */
828     int
829     rmx_scale(RMATRIX *rm, const double sf[])
830     {
831     int i, j, k;
832    
833 greg 2.67 if (!rm | !sf || !rm->mtx)
834 greg 2.1 return(0);
835     for (i = rm->nrows; i--; )
836 greg 2.53 for (j = rm->ncols; j--; ) {
837     double *dp = rmx_lval(rm,i,j);
838 greg 2.1 for (k = rm->ncomp; k--; )
839 greg 2.53 dp[k] *= sf[k];
840     }
841 greg 2.28 if (rm->info)
842     rmx_addinfo(rm, "Applied scalar\n");
843 greg 2.60 /* XXX: should record as exposure for COLR and SCOLR types? */
844 greg 2.1 return(1);
845     }
846    
847     /* Allocate new matrix and apply component transformation */
848     RMATRIX *
849     rmx_transform(const RMATRIX *msrc, int n, const double cmat[])
850     {
851     int i, j, ks, kd;
852     RMATRIX *dnew;
853    
854 greg 2.67 if (!msrc | (n <= 0) | !cmat || !msrc->mtx)
855 greg 2.1 return(NULL);
856     dnew = rmx_alloc(msrc->nrows, msrc->ncols, n);
857 greg 2.33 if (!dnew)
858 greg 2.1 return(NULL);
859 greg 2.28 if (msrc->info) {
860     char buf[128];
861 greg 2.38 sprintf(buf, "Applied %dx%d component transform\n",
862 greg 2.28 dnew->ncomp, msrc->ncomp);
863     rmx_addinfo(dnew, msrc->info);
864     rmx_addinfo(dnew, buf);
865     }
866 greg 2.6 dnew->dtype = msrc->dtype;
867 greg 2.1 for (i = dnew->nrows; i--; )
868 greg 2.53 for (j = dnew->ncols; j--; ) {
869 greg 2.62 const double *ds = rmx_val(msrc,i,j);
870 greg 2.1 for (kd = dnew->ncomp; kd--; ) {
871     double d = 0;
872     for (ks = msrc->ncomp; ks--; )
873 greg 2.53 d += cmat[kd*msrc->ncomp + ks] * ds[ks];
874     rmx_lval(dnew,i,j)[kd] = d;
875 greg 2.1 }
876 greg 2.53 }
877 greg 2.1 return(dnew);
878     }
879    
880     /* Convert a color matrix to newly allocated RMATRIX buffer */
881     RMATRIX *
882     rmx_from_cmatrix(const CMATRIX *cm)
883     {
884     int i, j;
885     RMATRIX *dnew;
886    
887 greg 2.33 if (!cm)
888 greg 2.1 return(NULL);
889     dnew = rmx_alloc(cm->nrows, cm->ncols, 3);
890 greg 2.33 if (!dnew)
891 greg 2.1 return(NULL);
892 greg 2.6 dnew->dtype = DTfloat;
893 greg 2.1 for (i = dnew->nrows; i--; )
894     for (j = dnew->ncols; j--; ) {
895     const COLORV *cv = cm_lval(cm,i,j);
896 greg 2.53 double *dp = rmx_lval(dnew,i,j);
897     dp[0] = cv[0];
898     dp[1] = cv[1];
899     dp[2] = cv[2];
900 greg 2.1 }
901     return(dnew);
902     }
903    
904     /* Convert general matrix to newly allocated CMATRIX buffer */
905     CMATRIX *
906     cm_from_rmatrix(const RMATRIX *rm)
907     {
908     int i, j;
909     CMATRIX *cnew;
910    
911 greg 2.60 if (!rm || !rm->mtx | (rm->ncomp == 2))
912 greg 2.1 return(NULL);
913     cnew = cm_alloc(rm->nrows, rm->ncols);
914 greg 2.33 if (!cnew)
915 greg 2.1 return(NULL);
916     for (i = cnew->nrows; i--; )
917     for (j = cnew->ncols; j--; ) {
918 greg 2.62 const double *dp = rmx_val(rm,i,j);
919 greg 2.53 COLORV *cv = cm_lval(cnew,i,j);
920 greg 2.60 switch (rm->ncomp) {
921     case 3:
922     setcolor(cv, dp[0], dp[1], dp[2]);
923     break;
924     case 1:
925 greg 2.53 setcolor(cv, dp[0], dp[0], dp[0]);
926 greg 2.60 break;
927     default: {
928     SCOLOR scol;
929     int k;
930     for (k = rm->ncomp; k--; )
931     scol[k] = dp[k];
932     scolor2color(cv, scol, rm->ncomp, rm->wlpart);
933     } break;
934     }
935 greg 2.1 }
936     return(cnew);
937     }