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root/radiance/ray/src/cv/bsdf2klems.c
Revision: 2.24
Committed: Fri Feb 17 22:31:49 2017 UTC (7 years, 2 months ago) by greg
Content type: text/plain
Branch: MAIN
CVS Tags: rad5R1
Changes since 2.23: +1 -6 lines
Log Message:
Removed unnecessary calls to c_ccvt()

File Contents

# User Rev Content
1 greg 2.1 #ifndef lint
2 greg 2.24 static const char RCSid[] = "$Id: bsdf2klems.c,v 2.23 2016/10/13 16:59:29 greg Exp $";
3 greg 2.1 #endif
4     /*
5     * Load measured BSDF interpolant and write out as XML file with Klems matrix.
6     *
7     * G. Ward
8     */
9    
10     #define _USE_MATH_DEFINES
11     #include <stdio.h>
12     #include <stdlib.h>
13     #include <string.h>
14     #include <math.h>
15     #include "random.h"
16     #include "platform.h"
17 greg 2.20 #include "paths.h"
18     #include "rtio.h"
19 greg 2.1 #include "calcomp.h"
20     #include "bsdfrep.h"
21     #include "bsdf_m.h"
22 greg 2.20 /* tristimulus components */
23     enum {CIE_X, CIE_Y, CIE_Z};
24 greg 2.4 /* assumed maximum # Klems patches */
25     #define MAXPATCHES 145
26 greg 2.1 /* global argv[0] */
27     char *progname;
28     /* selected basis function name */
29 greg 2.20 static const char klems_full[] = "LBNL/Klems Full";
30     static const char klems_half[] = "LBNL/Klems Half";
31     static const char klems_quarter[] = "LBNL/Klems Quarter";
32     static const char *kbasis = klems_full;
33 greg 2.1 /* number of BSDF samples per patch */
34     static int npsamps = 256;
35 greg 2.10 /* limit on number of RBF lobes */
36     static int lobe_lim = 15000;
37 greg 2.13 /* progress bar length */
38     static int do_prog = 79;
39    
40 greg 2.20 #define MAXCARG 512 /* wrapBSDF command */
41     static char *wrapBSDF[MAXCARG] = {"wrapBSDF", "-W", "-UU"};
42     static int wbsdfac = 3;
43    
44 greg 2.23 /* Add argument to wrapBSDF, allocating space if !isstatic */
45 greg 2.20 static void
46     add_wbsdf(const char *arg, int isstatic)
47     {
48     if (arg == NULL)
49     return;
50     if (wbsdfac >= MAXCARG-1) {
51     fputs(progname, stderr);
52     fputs(": too many command arguments to wrapBSDF\n", stderr);
53     exit(1);
54     }
55     if (!*arg)
56     arg = "";
57     else if (!isstatic)
58     arg = savqstr((char *)arg);
59    
60     wrapBSDF[wbsdfac++] = (char *)arg;
61     }
62 greg 2.13
63     /* Start new progress bar */
64     #define prog_start(s) if (do_prog) fprintf(stderr, "%s: %s...\n", progname, s); else
65    
66     /* Draw progress bar of the appropriate length */
67     static void
68     prog_show(double frac)
69     {
70 greg 2.17 static unsigned call_cnt = 0;
71     static char lastc[] = "-\\|/";
72     char pbar[256];
73     int nchars;
74 greg 2.13
75 greg 2.14 if (do_prog <= 1) return;
76 greg 2.13 if (do_prog > sizeof(pbar)-2)
77     do_prog = sizeof(pbar)-2;
78     if (frac < 0) frac = 0;
79 greg 2.17 else if (frac >= 1) frac = .9999;
80     nchars = do_prog*frac;
81 greg 2.13 pbar[0] = '\r';
82     memset(pbar+1, '*', nchars);
83 greg 2.17 pbar[nchars+1] = lastc[call_cnt++ & 3];
84     memset(pbar+2+nchars, '-', do_prog-nchars-1);
85 greg 2.13 pbar[do_prog+1] = '\0';
86     fputs(pbar, stderr);
87     }
88    
89     /* Finish progress bar */
90 greg 2.14 static void
91     prog_done(void)
92     {
93     int n = do_prog;
94    
95     if (n <= 1) return;
96     fputc('\r', stderr);
97     while (n--)
98     fputc(' ', stderr);
99     fputc('\r', stderr);
100     }
101 greg 2.1
102     /* Return angle basis corresponding to the given name */
103 greg 2.13 static ANGLE_BASIS *
104 greg 2.1 get_basis(const char *bn)
105     {
106     int n = nabases;
107    
108     while (n-- > 0)
109     if (!strcasecmp(bn, abase_list[n].name))
110     return &abase_list[n];
111     return NULL;
112     }
113    
114 greg 2.20 /* Copy geometry string to file for wrapBSDF */
115     static char *
116     save_geom(const char *mgf)
117     {
118     char *tfname = mktemp(savqstr(TEMPLATE));
119     int fd = open(tfname, O_CREAT|O_WRONLY, 0600);
120    
121     if (fd < 0)
122     return(NULL);
123     write(fd, mgf, strlen(mgf));
124     close(fd);
125     add_wbsdf("-g", 1);
126     add_wbsdf(tfname, 1);
127     return(tfname);
128     }
129    
130     /* Open XYZ component file for output and add appropriate arguments */
131     static FILE *
132     open_component_file(int c)
133     {
134     static const char sname[3][6] = {"CIE-X", "CIE-Y", "CIE-Z"};
135     static const char cname[4][4] = {"-rf", "-tf", "-tb", "-rb"};
136     char *tfname = mktemp(savqstr(TEMPLATE));
137     FILE *fp = fopen(tfname, "w");
138    
139     if (fp == NULL) {
140     fprintf(stderr, "%s: cannot open '%s' for writing\n",
141     progname, tfname);
142 greg 2.1 exit(1);
143     }
144 greg 2.20 add_wbsdf("-s", 1); add_wbsdf(sname[c], 1);
145     add_wbsdf(cname[(input_orient>0)<<1 | (output_orient>0)], 1);
146     add_wbsdf(tfname, 1);
147     return(fp);
148 greg 2.1 }
149    
150 greg 2.2 /* Load and resample XML BSDF description using Klems basis */
151 greg 2.1 static void
152     eval_bsdf(const char *fname)
153     {
154     ANGLE_BASIS *abp = get_basis(kbasis);
155 greg 2.20 FILE *cfp[3];
156 greg 2.1 SDData bsd;
157     SDError ec;
158     FVECT vin, vout;
159 greg 2.20 SDValue sdv;
160     double sum, xsum, ysum;
161 greg 2.1 int i, j, n;
162    
163 greg 2.18 initurand(npsamps);
164 greg 2.1 SDclearBSDF(&bsd, fname); /* load BSDF file */
165     if ((ec = SDloadFile(&bsd, fname)) != SDEnone)
166     goto err;
167 greg 2.20 if (bsd.mgf != NULL) /* save geometry */
168     save_geom(bsd.mgf);
169     if (bsd.matn[0]) /* save identifier(s) */
170     strcpy(bsdf_name, bsd.matn);
171     if (bsd.makr[0])
172     strcpy(bsdf_manuf, bsd.makr);
173     if (bsd.dim[2] > 0) { /* save dimension(s) */
174     char buf[64];
175     if ((bsd.dim[0] > 0) & (bsd.dim[1] > 0))
176     sprintf(buf, "w=%g;h=%g;t=%g",
177     bsd.dim[0], bsd.dim[1], bsd.dim[2]);
178     else
179     sprintf(buf, "t=%g", bsd.dim[2]);
180     add_wbsdf("-f", 1);
181     add_wbsdf(buf, 0);
182     }
183 greg 2.1 /* front reflection */
184     if (bsd.rf != NULL || bsd.rLambFront.cieY > .002) {
185     input_orient = 1; output_orient = 1;
186 greg 2.20 cfp[CIE_Y] = open_component_file(CIE_Y);
187     if (bsd.rf != NULL && bsd.rf->comp[0].cspec[2].flags) {
188     rbf_colorimetry = RBCtristimulus;
189     cfp[CIE_X] = open_component_file(CIE_X);
190     cfp[CIE_Z] = open_component_file(CIE_Z);
191     } else
192     rbf_colorimetry = RBCphotopic;
193 greg 2.1 for (j = 0; j < abp->nangles; j++) {
194     for (i = 0; i < abp->nangles; i++) {
195     sum = 0; /* average over patches */
196 greg 2.20 xsum = ysum = 0;
197 greg 2.1 for (n = npsamps; n-- > 0; ) {
198     fo_getvec(vout, j+(n+frandom())/npsamps, abp);
199 greg 2.5 fi_getvec(vin, i+urand(n), abp);
200 greg 2.20 ec = SDevalBSDF(&sdv, vout, vin, &bsd);
201 greg 2.1 if (ec != SDEnone)
202     goto err;
203 greg 2.20 sum += sdv.cieY;
204     if (rbf_colorimetry == RBCtristimulus) {
205 greg 2.21 xsum += sdv.cieY * sdv.spec.cx;
206     ysum += sdv.cieY * sdv.spec.cy;
207 greg 2.20 }
208     }
209     fprintf(cfp[CIE_Y], "\t%.3e\n", sum/npsamps);
210     if (rbf_colorimetry == RBCtristimulus) {
211 greg 2.21 fprintf(cfp[CIE_X], "\t%.3e\n", xsum*sum/(npsamps*ysum));
212     fprintf(cfp[CIE_Z], "\t%.3e\n",
213 greg 2.20 (sum - xsum - ysum)*sum/(npsamps*ysum));
214 greg 2.1 }
215     }
216 greg 2.20 fputc('\n', cfp[CIE_Y]); /* extra space between rows */
217     if (rbf_colorimetry == RBCtristimulus) {
218     fputc('\n', cfp[CIE_X]);
219     fputc('\n', cfp[CIE_Z]);
220     }
221     }
222     if (fclose(cfp[CIE_Y])) {
223     fprintf(stderr, "%s: error writing Y output\n", progname);
224     exit(1);
225     }
226     if (rbf_colorimetry == RBCtristimulus &&
227     (fclose(cfp[CIE_X]) || fclose(cfp[CIE_Z]))) {
228     fprintf(stderr, "%s: error writing X/Z output\n", progname);
229     exit(1);
230 greg 2.1 }
231     }
232     /* back reflection */
233     if (bsd.rb != NULL || bsd.rLambBack.cieY > .002) {
234     input_orient = -1; output_orient = -1;
235 greg 2.20 cfp[CIE_Y] = open_component_file(CIE_Y);
236     if (bsd.rb != NULL && bsd.rb->comp[0].cspec[2].flags) {
237     rbf_colorimetry = RBCtristimulus;
238     cfp[CIE_X] = open_component_file(CIE_X);
239     cfp[CIE_Z] = open_component_file(CIE_Z);
240     } else
241     rbf_colorimetry = RBCphotopic;
242 greg 2.1 for (j = 0; j < abp->nangles; j++) {
243     for (i = 0; i < abp->nangles; i++) {
244     sum = 0; /* average over patches */
245 greg 2.20 xsum = ysum = 0;
246 greg 2.1 for (n = npsamps; n-- > 0; ) {
247     bo_getvec(vout, j+(n+frandom())/npsamps, abp);
248 greg 2.5 bi_getvec(vin, i+urand(n), abp);
249 greg 2.20 ec = SDevalBSDF(&sdv, vout, vin, &bsd);
250 greg 2.1 if (ec != SDEnone)
251     goto err;
252 greg 2.20 sum += sdv.cieY;
253     if (rbf_colorimetry == RBCtristimulus) {
254 greg 2.21 xsum += sdv.cieY * sdv.spec.cx;
255     ysum += sdv.cieY * sdv.spec.cy;
256 greg 2.20 }
257     }
258     fprintf(cfp[CIE_Y], "\t%.3e\n", sum/npsamps);
259     if (rbf_colorimetry == RBCtristimulus) {
260 greg 2.21 fprintf(cfp[CIE_X], "\t%.3e\n", xsum*sum/(npsamps*ysum));
261     fprintf(cfp[CIE_Z], "\t%.3e\n",
262 greg 2.20 (sum - xsum - ysum)*sum/(npsamps*ysum));
263 greg 2.1 }
264     }
265 greg 2.20 if (rbf_colorimetry == RBCtristimulus) {
266     fputc('\n', cfp[CIE_X]);
267     fputc('\n', cfp[CIE_Z]);
268     }
269     }
270     if (fclose(cfp[CIE_Y])) {
271     fprintf(stderr, "%s: error writing Y output\n", progname);
272     exit(1);
273     }
274     if (rbf_colorimetry == RBCtristimulus &&
275     (fclose(cfp[CIE_X]) || fclose(cfp[CIE_Z]))) {
276     fprintf(stderr, "%s: error writing X/Z output\n", progname);
277     exit(1);
278 greg 2.1 }
279     }
280     /* front transmission */
281     if (bsd.tf != NULL || bsd.tLamb.cieY > .002) {
282     input_orient = 1; output_orient = -1;
283 greg 2.20 cfp[CIE_Y] = open_component_file(CIE_Y);
284     if (bsd.tf != NULL && bsd.tf->comp[0].cspec[2].flags) {
285     rbf_colorimetry = RBCtristimulus;
286     cfp[CIE_X] = open_component_file(CIE_X);
287     cfp[CIE_Z] = open_component_file(CIE_Z);
288     } else
289     rbf_colorimetry = RBCphotopic;
290 greg 2.1 for (j = 0; j < abp->nangles; j++) {
291     for (i = 0; i < abp->nangles; i++) {
292     sum = 0; /* average over patches */
293 greg 2.20 xsum = ysum = 0;
294 greg 2.1 for (n = npsamps; n-- > 0; ) {
295     bo_getvec(vout, j+(n+frandom())/npsamps, abp);
296 greg 2.5 fi_getvec(vin, i+urand(n), abp);
297 greg 2.20 ec = SDevalBSDF(&sdv, vout, vin, &bsd);
298 greg 2.1 if (ec != SDEnone)
299     goto err;
300 greg 2.20 sum += sdv.cieY;
301     if (rbf_colorimetry == RBCtristimulus) {
302 greg 2.21 xsum += sdv.cieY * sdv.spec.cx;
303     ysum += sdv.cieY * sdv.spec.cy;
304 greg 2.20 }
305 greg 2.1 }
306 greg 2.20 fprintf(cfp[CIE_Y], "\t%.3e\n", sum/npsamps);
307     if (rbf_colorimetry == RBCtristimulus) {
308 greg 2.21 fprintf(cfp[CIE_X], "\t%.3e\n", xsum*sum/(npsamps*ysum));
309     fprintf(cfp[CIE_Z], "\t%.3e\n",
310 greg 2.20 (sum - xsum - ysum)*sum/(npsamps*ysum));
311     }
312     }
313     if (rbf_colorimetry == RBCtristimulus) {
314     fputc('\n', cfp[CIE_X]);
315     fputc('\n', cfp[CIE_Z]);
316 greg 2.1 }
317     }
318 greg 2.20 if (fclose(cfp[CIE_Y])) {
319     fprintf(stderr, "%s: error writing Y output\n", progname);
320     exit(1);
321     }
322     if (rbf_colorimetry == RBCtristimulus &&
323     (fclose(cfp[CIE_X]) || fclose(cfp[CIE_Z]))) {
324     fprintf(stderr, "%s: error writing X/Z output\n", progname);
325     exit(1);
326     }
327 greg 2.1 }
328     /* back transmission */
329 greg 2.9 if ((bsd.tb != NULL) | (bsd.tf != NULL)) {
330 greg 2.1 input_orient = -1; output_orient = 1;
331 greg 2.20 cfp[CIE_Y] = open_component_file(CIE_Y);
332 greg 2.21 if (bsd.tb != NULL)
333     rbf_colorimetry = bsd.tb->comp[0].cspec[2].flags
334     ? RBCtristimulus : RBCphotopic ;
335     if (rbf_colorimetry == RBCtristimulus) {
336 greg 2.20 cfp[CIE_X] = open_component_file(CIE_X);
337     cfp[CIE_Z] = open_component_file(CIE_Z);
338 greg 2.21 }
339 greg 2.1 for (j = 0; j < abp->nangles; j++) {
340 greg 2.9 for (i = 0; i < abp->nangles; i++) {
341     sum = 0; /* average over patches */
342 greg 2.20 xsum = ysum = 0;
343 greg 2.9 for (n = npsamps; n-- > 0; ) {
344     fo_getvec(vout, j+(n+frandom())/npsamps, abp);
345     bi_getvec(vin, i+urand(n), abp);
346 greg 2.20 ec = SDevalBSDF(&sdv, vout, vin, &bsd);
347 greg 2.9 if (ec != SDEnone)
348 greg 2.1 goto err;
349 greg 2.20 sum += sdv.cieY;
350     if (rbf_colorimetry == RBCtristimulus) {
351 greg 2.21 xsum += sdv.cieY * sdv.spec.cx;
352     ysum += sdv.cieY * sdv.spec.cy;
353 greg 2.20 }
354     }
355     fprintf(cfp[CIE_Y], "\t%.3e\n", sum/npsamps);
356     if (rbf_colorimetry == RBCtristimulus) {
357 greg 2.21 fprintf(cfp[CIE_X], "\t%.3e\n", xsum*sum/(npsamps*ysum));
358     fprintf(cfp[CIE_Z], "\t%.3e\n",
359 greg 2.20 (sum - xsum - ysum)*sum/(npsamps*ysum));
360 greg 2.1 }
361 greg 2.9 }
362 greg 2.20 if (rbf_colorimetry == RBCtristimulus) {
363     fputc('\n', cfp[CIE_X]);
364     fputc('\n', cfp[CIE_Z]);
365     }
366     }
367     if (fclose(cfp[CIE_Y])) {
368     fprintf(stderr, "%s: error writing Y output\n", progname);
369     exit(1);
370     }
371     if (rbf_colorimetry == RBCtristimulus &&
372     (fclose(cfp[CIE_X]) || fclose(cfp[CIE_Z]))) {
373     fprintf(stderr, "%s: error writing X/Z output\n", progname);
374     exit(1);
375 greg 2.1 }
376     }
377     SDfreeBSDF(&bsd); /* all done */
378     return;
379     err:
380     SDreportError(ec, stderr);
381     exit(1);
382     }
383    
384 greg 2.2 /* Interpolate and output a BSDF function using Klems basis */
385 greg 2.1 static void
386     eval_function(char *funame)
387     {
388     ANGLE_BASIS *abp = get_basis(kbasis);
389 greg 2.8 int assignD = (fundefined(funame) < 6);
390 greg 2.20 FILE *ofp = open_component_file(CIE_Y);
391 greg 2.1 double iovec[6];
392     double sum;
393     int i, j, n;
394    
395 greg 2.4 initurand(npsamps);
396 greg 2.1 for (j = 0; j < abp->nangles; j++) { /* run through directions */
397     for (i = 0; i < abp->nangles; i++) {
398     sum = 0;
399     for (n = npsamps; n--; ) { /* average over patches */
400     if (output_orient > 0)
401     fo_getvec(iovec+3, j+(n+frandom())/npsamps, abp);
402     else
403     bo_getvec(iovec+3, j+(n+frandom())/npsamps, abp);
404    
405     if (input_orient > 0)
406 greg 2.4 fi_getvec(iovec, i+urand(n), abp);
407 greg 2.1 else
408 greg 2.4 bi_getvec(iovec, i+urand(n), abp);
409 greg 2.1
410 greg 2.8 if (assignD) {
411     varset("Dx", '=', -iovec[3]);
412     varset("Dy", '=', -iovec[4]);
413     varset("Dz", '=', -iovec[5]);
414     ++eclock;
415     }
416 greg 2.1 sum += funvalue(funame, 6, iovec);
417     }
418 greg 2.20 fprintf(ofp, "\t%.3e\n", sum/npsamps);
419 greg 2.1 }
420 greg 2.20 fputc('\n', ofp);
421 greg 2.13 prog_show((j+1.)/abp->nangles);
422 greg 2.1 }
423 greg 2.13 prog_done();
424 greg 2.20 if (fclose(ofp)) {
425     fprintf(stderr, "%s: error writing Y output\n", progname);
426     exit(1);
427     }
428 greg 2.1 }
429    
430     /* Interpolate and output a radial basis function BSDF representation */
431     static void
432     eval_rbf(void)
433     {
434     ANGLE_BASIS *abp = get_basis(kbasis);
435 greg 2.20 float (*XZarr)[2] = NULL;
436 greg 2.2 float bsdfarr[MAXPATCHES*MAXPATCHES];
437 greg 2.20 FILE *cfp[3];
438 greg 2.2 FVECT vin, vout;
439 greg 2.20 double sum, xsum, ysum;
440 greg 2.1 int i, j, n;
441 greg 2.2 /* sanity check */
442     if (abp->nangles > MAXPATCHES) {
443     fprintf(stderr, "%s: too many patches!\n", progname);
444     exit(1);
445     }
446 greg 2.20 if (rbf_colorimetry == RBCtristimulus)
447     XZarr = (float (*)[2])malloc(sizeof(float)*2*abp->nangles*abp->nangles);
448 greg 2.2 for (i = 0; i < abp->nangles; i++) {
449 greg 2.20 RBFNODE *rbf;
450 greg 2.2 if (input_orient > 0) /* use incident patch center */
451     fi_getvec(vin, i+.5*(i>0), abp);
452     else
453     bi_getvec(vin, i+.5*(i>0), abp);
454    
455 greg 2.10 rbf = advect_rbf(vin, lobe_lim); /* compute radial basis func */
456 greg 2.2
457     for (j = 0; j < abp->nangles; j++) {
458     sum = 0; /* sample over exiting patch */
459 greg 2.20 xsum = ysum = 0;
460 greg 2.2 for (n = npsamps; n--; ) {
461 greg 2.20 SDValue sdv;
462 greg 2.2 if (output_orient > 0)
463     fo_getvec(vout, j+(n+frandom())/npsamps, abp);
464     else
465     bo_getvec(vout, j+(n+frandom())/npsamps, abp);
466 greg 2.1
467 greg 2.20 eval_rbfcol(&sdv, rbf, vout);
468     sum += sdv.cieY;
469 greg 2.23 if (rbf_colorimetry == RBCtristimulus) {
470 greg 2.21 xsum += sdv.cieY * sdv.spec.cx;
471     ysum += sdv.cieY * sdv.spec.cy;
472 greg 2.20 }
473     }
474     n = j*abp->nangles + i;
475 greg 2.21 bsdfarr[n] = sum / npsamps;
476 greg 2.23 if (rbf_colorimetry == RBCtristimulus) {
477 greg 2.20 XZarr[n][0] = xsum*sum/(npsamps*ysum);
478     XZarr[n][1] = (sum - xsum - ysum)*sum/(npsamps*ysum);
479 greg 2.2 }
480     }
481 greg 2.6 if (rbf != NULL)
482     free(rbf);
483 greg 2.13 prog_show((i+1.)/abp->nangles);
484 greg 2.2 }
485 greg 2.20 /* write out our matrix */
486     cfp[CIE_Y] = open_component_file(CIE_Y);
487     n = 0;
488 greg 2.2 for (j = 0; j < abp->nangles; j++) {
489 greg 2.20 for (i = 0; i < abp->nangles; i++, n++)
490     fprintf(cfp[CIE_Y], "\t%.3e\n", bsdfarr[n]);
491     fputc('\n', cfp[CIE_Y]);
492 greg 2.2 }
493 greg 2.13 prog_done();
494 greg 2.20 if (fclose(cfp[CIE_Y])) {
495     fprintf(stderr, "%s: error writing Y output\n", progname);
496     exit(1);
497     }
498     if (XZarr == NULL) /* no color? */
499     return;
500     cfp[CIE_X] = open_component_file(CIE_X);
501     cfp[CIE_Z] = open_component_file(CIE_Z);
502     n = 0;
503     for (j = 0; j < abp->nangles; j++) {
504     for (i = 0; i < abp->nangles; i++, n++) {
505     fprintf(cfp[CIE_X], "\t%.3e\n", XZarr[n][0]);
506     fprintf(cfp[CIE_Z], "\t%.3e\n", XZarr[n][1]);
507     }
508     fputc('\n', cfp[CIE_X]);
509     fputc('\n', cfp[CIE_Z]);
510     }
511     free(XZarr);
512     if (fclose(cfp[CIE_X]) || fclose(cfp[CIE_Z])) {
513     fprintf(stderr, "%s: error writing X/Z output\n", progname);
514     exit(1);
515     }
516 greg 2.1 }
517    
518 schorsch 2.22 #if defined(_WIN32) || defined(_WIN64)
519 greg 2.20 /* Execute wrapBSDF command (may never return) */
520     static int
521     wrap_up(void)
522     {
523     char cmd[8192];
524    
525     if (bsdf_manuf[0]) {
526     add_wbsdf("-f", 1);
527     strcpy(cmd, "m=");
528     strcpy(cmd+2, bsdf_manuf);
529     add_wbsdf(cmd, 0);
530     }
531     if (bsdf_name[0]) {
532     add_wbsdf("-f", 1);
533     strcpy(cmd, "n=");
534     strcpy(cmd+2, bsdf_name);
535     add_wbsdf(cmd, 0);
536     }
537     if (!convert_commandline(cmd, sizeof(cmd), wrapBSDF)) {
538     fputs(progname, stderr);
539     fputs(": command line too long in wrap_up()\n", stderr);
540     return(1);
541     }
542     return(system(cmd));
543     }
544     #else
545     /* Execute wrapBSDF command (may never return) */
546     static int
547     wrap_up(void)
548     {
549     char buf[256];
550     char *compath = getpath((char *)wrapBSDF[0], getenv("PATH"), X_OK);
551    
552     if (compath == NULL) {
553     fprintf(stderr, "%s: cannot locate %s\n", progname, wrapBSDF[0]);
554     return(1);
555     }
556     if (bsdf_manuf[0]) {
557     add_wbsdf("-f", 1);
558     strcpy(buf, "m=");
559     strcpy(buf+2, bsdf_manuf);
560     add_wbsdf(buf, 0);
561     }
562     if (bsdf_name[0]) {
563     add_wbsdf("-f", 1);
564     strcpy(buf, "n=");
565     strcpy(buf+2, bsdf_name);
566     add_wbsdf(buf, 0);
567     }
568     execv(compath, wrapBSDF); /* successful call never returns */
569     perror(compath);
570     return(1);
571     }
572     #endif
573    
574 greg 2.1 /* Read in BSDF and interpolate as Klems matrix representation */
575     int
576     main(int argc, char *argv[])
577     {
578     int dofwd = 0, dobwd = 1;
579 greg 2.20 char buf[2048];
580 greg 2.1 char *cp;
581     int i, na;
582    
583     progname = argv[0];
584     esupport |= E_VARIABLE|E_FUNCTION|E_RCONST;
585     esupport &= ~(E_INCHAN|E_OUTCHAN);
586     scompile("PI:3.14159265358979323846", NULL, 0);
587     biggerlib();
588 greg 2.2 for (i = 1; i < argc && (argv[i][0] == '-') | (argv[i][0] == '+'); i++)
589 greg 2.1 switch (argv[i][1]) { /* get options */
590     case 'n':
591     npsamps = atoi(argv[++i]);
592     if (npsamps <= 0)
593     goto userr;
594     break;
595     case 'e':
596     scompile(argv[++i], NULL, 0);
597     single_plane_incident = 0;
598     break;
599     case 'f':
600     if (!argv[i][2]) {
601 greg 2.20 if (strchr(argv[++i], '=') != NULL) {
602     add_wbsdf("-f", 1);
603     add_wbsdf(argv[i], 1);
604     } else {
605     fcompile(argv[i]);
606     single_plane_incident = 0;
607     }
608 greg 2.1 } else
609     dofwd = (argv[i][0] == '+');
610     break;
611     case 'b':
612     dobwd = (argv[i][0] == '+');
613     break;
614     case 'h':
615 greg 2.20 kbasis = klems_half;
616     add_wbsdf("-a", 1);
617     add_wbsdf("kh", 1);
618 greg 2.1 break;
619     case 'q':
620 greg 2.20 kbasis = klems_quarter;
621     add_wbsdf("-a", 1);
622     add_wbsdf("kq", 1);
623 greg 2.1 break;
624 greg 2.10 case 'l':
625     lobe_lim = atoi(argv[++i]);
626     break;
627 greg 2.13 case 'p':
628     do_prog = atoi(argv[i]+2);
629     break;
630 greg 2.20 case 'C':
631     add_wbsdf(argv[i], 1);
632     add_wbsdf(argv[++i], 1);
633     break;
634 greg 2.1 default:
635     goto userr;
636     }
637 greg 2.20 if (kbasis == klems_full) { /* default (full) basis? */
638     add_wbsdf("-a", 1);
639     add_wbsdf("kf", 1);
640     }
641     strcpy(buf, "File produced by: ");
642     if (convert_commandline(buf+18, sizeof(buf)-18, argv) != NULL) {
643     add_wbsdf("-C", 1); add_wbsdf(buf, 0);
644     }
645 greg 2.1 if (single_plane_incident >= 0) { /* function-based BSDF? */
646 greg 2.19 if (i != argc-1 || fundefined(argv[i]) < 3) {
647 greg 2.1 fprintf(stderr,
648     "%s: need single function with 6 arguments: bsdf(ix,iy,iz,ox,oy,oz)\n",
649     progname);
650 greg 2.13 fprintf(stderr, "\tor 3 arguments using Dx,Dy,Dz: bsdf(ix,iy,iz)\n");
651 greg 2.1 goto userr;
652     }
653 greg 2.8 ++eclock;
654 greg 2.1 if (dofwd) {
655     input_orient = -1;
656     output_orient = -1;
657 greg 2.13 prog_start("Evaluating outside reflectance");
658     eval_function(argv[i]);
659 greg 2.1 output_orient = 1;
660 greg 2.13 prog_start("Evaluating outside->inside transmission");
661     eval_function(argv[i]);
662 greg 2.1 }
663     if (dobwd) {
664     input_orient = 1;
665     output_orient = 1;
666 greg 2.13 prog_start("Evaluating inside reflectance");
667     eval_function(argv[i]);
668 greg 2.1 output_orient = -1;
669 greg 2.13 prog_start("Evaluating inside->outside transmission");
670     eval_function(argv[i]);
671 greg 2.1 }
672 greg 2.20 return(wrap_up());
673 greg 2.1 }
674 greg 2.2 /* XML input? */
675     if (i == argc-1 && (cp = argv[i]+strlen(argv[i])-4) > argv[i] &&
676     !strcasecmp(cp, ".xml")) {
677 greg 2.1 eval_bsdf(argv[i]); /* load & resample BSDF */
678 greg 2.20 return(wrap_up());
679 greg 2.1 }
680     if (i < argc) { /* open input files if given */
681     int nbsdf = 0;
682     for ( ; i < argc; i++) { /* interpolate each component */
683 greg 2.13 char pbuf[256];
684 greg 2.1 FILE *fpin = fopen(argv[i], "rb");
685     if (fpin == NULL) {
686     fprintf(stderr, "%s: cannot open BSDF interpolant '%s'\n",
687     progname, argv[i]);
688     return(1);
689     }
690     if (!load_bsdf_rep(fpin))
691     return(1);
692     fclose(fpin);
693 greg 2.13 sprintf(pbuf, "Interpolating component '%s'", argv[i]);
694     prog_start(pbuf);
695 greg 2.1 eval_rbf();
696     }
697 greg 2.20 return(wrap_up());
698 greg 2.1 }
699     SET_FILE_BINARY(stdin); /* load from stdin */
700     if (!load_bsdf_rep(stdin))
701     return(1);
702 greg 2.13 prog_start("Interpolating from standard input");
703 greg 2.1 eval_rbf(); /* resample dist. */
704 greg 2.20 return(wrap_up());
705 greg 2.1 userr:
706     fprintf(stderr,
707 greg 2.10 "Usage: %s [-n spp][-h|-q][-l maxlobes] [bsdf.sir ..] > bsdf.xml\n", progname);
708 greg 2.1 fprintf(stderr,
709 greg 2.3 " or: %s [-n spp][-h|-q] bsdf_in.xml > bsdf_out.xml\n", progname);
710 greg 2.1 fprintf(stderr,
711     " or: %s [-n spp][-h|-q][{+|-}for[ward]][{+|-}b[ackward]][-e expr][-f file] bsdf_func > bsdf.xml\n",
712     progname);
713     return(1);
714     }