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root/radiance/ray/src/cv/bsdf2rad.c
Revision: 2.23
Committed: Tue Apr 11 03:47:23 2017 UTC (7 years, 1 month ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.22: +10 -6 lines
Log Message:
Made directional arrows more transparent

File Contents

# User Rev Content
1 greg 2.1 #ifndef lint
2 greg 2.23 static const char RCSid[] = "$Id: bsdf2rad.c,v 2.22 2017/04/11 02:21:37 greg Exp $";
3 greg 2.1 #endif
4     /*
5 greg 2.4 * Plot 3-D BSDF output based on scattering interpolant or XML representation
6 greg 2.1 */
7    
8     #include <stdio.h>
9 greg 2.4 #include <string.h>
10 greg 2.1 #include <stdlib.h>
11 greg 2.16 #include "paths.h"
12     #include "rtmath.h"
13     #include "resolu.h"
14 greg 2.1 #include "bsdfrep.h"
15    
16 greg 2.18 #define NINCIDENT 37 /* number of samples/hemisphere */
17 greg 2.1
18 greg 2.16 #define GRIDSTEP 2 /* our grid step size */
19     #define SAMPRES (GRIDRES/GRIDSTEP)
20    
21     int front_comp = 0; /* front component flags (SDsamp*) */
22     int back_comp = 0; /* back component flags */
23     double overall_min = 1./PI; /* overall minimum BSDF value */
24     double min_log10; /* smallest log10 value for plotting */
25     double overall_max = .0; /* overall maximum BSDF value */
26    
27     char ourTempDir[TEMPLEN] = ""; /* our temporary directory */
28    
29     const char frpref[] = "frefl";
30     const char ftpref[] = "ftrans";
31     const char brpref[] = "brefl";
32     const char btpref[] = "btrans";
33     const char dsuffix[] = ".txt";
34    
35     const char sph_mat[] = "BSDFmat";
36     const double sph_rad = 10.;
37     const double sph_xoffset = 15.;
38    
39     #define bsdf_rad (sph_rad*.25)
40     #define arrow_rad (bsdf_rad*.015)
41    
42     #define FEQ(a,b) ((a)-(b) <= 1e-7 && (b)-(a) <= 1e-7)
43    
44     #define set_minlog() (min_log10 = log10(overall_min + 1e-5) - .1)
45    
46     char *progname;
47    
48     /* Get Fibonacci sphere vector (0 to NINCIDENT-1) */
49 greg 2.19 static RREAL *
50 greg 2.16 get_ivector(FVECT iv, int i)
51     {
52     const double phistep = PI*(3. - 2.236067978);
53     double r;
54    
55 greg 2.18 iv[2] = 1. - (i+.5)*(1./NINCIDENT);
56 greg 2.16 r = sqrt(1. - iv[2]*iv[2]);
57     iv[0] = r * cos((i+1.)*phistep);
58     iv[1] = r * sin((i+1.)*phistep);
59 greg 2.19
60     return(iv);
61     }
62    
63     /* Convert incident vector into sphere position */
64     static RREAL *
65     cvt_sposition(FVECT sp, const FVECT iv, int inc_side)
66     {
67 greg 2.20 sp[0] = -iv[0]*sph_rad + inc_side*sph_xoffset;
68 greg 2.19 sp[1] = -iv[1]*sph_rad;
69     sp[2] = iv[2]*sph_rad;
70    
71     return(sp);
72 greg 2.16 }
73    
74     /* Get temporary file name */
75     static char *
76     tfile_name(const char *prefix, const char *suffix, int i)
77     {
78     static char buf[128];
79    
80     if (!ourTempDir[0]) { /* create temporary directory */
81     mktemp(strcpy(ourTempDir,TEMPLATE));
82     if (mkdir(ourTempDir, 0777) < 0) {
83     perror("mkdir");
84     exit(1);
85     }
86     }
87     if (!prefix) prefix = "T";
88     if (!suffix) suffix = "";
89     sprintf(buf, "%s/%s%03d%s", ourTempDir, prefix, i, suffix);
90     return(buf);
91     }
92    
93     /* Remove temporary directory & contents */
94     static void
95     cleanup_tmp(void)
96     {
97     char buf[128];
98    
99     if (!ourTempDir[0])
100     return;
101 schorsch 2.15 #if defined(_WIN32) || defined(_WIN64)
102 greg 2.16 sprintf(buf, "RMDIR %s /S /Q", ourTempDir);
103 greg 2.11 #else
104 greg 2.16 sprintf(buf, "rm -rf %s", ourTempDir);
105 greg 2.11 #endif
106 greg 2.16 system(buf);
107     }
108    
109     /* Run the specified command, returning 1 if OK */
110     static int
111     run_cmd(const char *cmd)
112     {
113     fflush(stdout);
114     if (system(cmd)) {
115     fprintf(stderr, "%s: error running: %s\n", progname, cmd);
116     return(0);
117     }
118     return(1);
119     }
120    
121     /* Plot surface points for the given BSDF incident angle */
122     static int
123     plotBSDF(const char *fname, const FVECT ivec, int dfl, const SDData *sd)
124     {
125     FILE *fp = fopen(fname, "w");
126     int i, j;
127    
128     if (fp == NULL) {
129     fprintf(stderr, "%s: cannot open '%s' for writing\n",
130     progname, fname);
131     return(0);
132     }
133     if (ivec[2] > 0) {
134     input_orient = 1;
135     output_orient = dfl&SDsampR ? 1 : -1;
136     } else {
137     input_orient = -1;
138     output_orient = dfl&SDsampR ? -1 : 1;
139     }
140     for (i = SAMPRES; i--; )
141     for (j = 0; j < SAMPRES; j++) {
142     FVECT ovec;
143     SDValue sval;
144     double bsdf;
145     ovec_from_pos(ovec, i*GRIDSTEP, j*GRIDSTEP);
146     if (SDreportError(SDevalBSDF(&sval, ovec,
147     ivec, sd), stderr))
148     return(0);
149     if (sval.cieY > overall_max)
150     overall_max = sval.cieY;
151     bsdf = (sval.cieY < overall_min) ? overall_min : sval.cieY;
152     bsdf = log10(bsdf) - min_log10;
153     fprintf(fp, "%.5f %.5f %.5f\n",
154     ovec[0]*bsdf, ovec[1]*bsdf, ovec[2]*bsdf);
155     }
156     if (fclose(fp) == EOF) {
157     fprintf(stderr, "%s: error writing data to '%s'\n",
158     progname, fname);
159     return(0);
160     }
161     return(1);
162     }
163    
164     /* Build BSDF values from loaded XML file */
165     static int
166     build_wBSDF(const SDData *sd)
167     {
168     FVECT ivec;
169     int i;
170    
171     if (front_comp & SDsampR)
172     for (i = 0; i < NINCIDENT; i++) {
173     get_ivector(ivec, i);
174     if (!plotBSDF(tfile_name(frpref, dsuffix, i),
175     ivec, SDsampR, sd))
176     return(0);
177     }
178     if (front_comp & SDsampT)
179     for (i = 0; i < NINCIDENT; i++) {
180     get_ivector(ivec, i);
181     if (!plotBSDF(tfile_name(ftpref, dsuffix, i),
182     ivec, SDsampT, sd))
183     return(0);
184     }
185     if (back_comp & SDsampR)
186     for (i = 0; i < NINCIDENT; i++) {
187     get_ivector(ivec, i);
188     ivec[0] = -ivec[0]; ivec[2] = -ivec[2];
189     if (!plotBSDF(tfile_name(brpref, dsuffix, i),
190     ivec, SDsampR, sd))
191     return(0);
192     }
193     if (back_comp & SDsampT)
194     for (i = 0; i < NINCIDENT; i++) {
195     get_ivector(ivec, i);
196     ivec[0] = -ivec[0]; ivec[2] = -ivec[2];
197     if (!plotBSDF(tfile_name(btpref, dsuffix, i),
198     ivec, SDsampT, sd))
199     return(0);
200     }
201     return(1);
202     }
203    
204     /* Plot surface points using radial basis function */
205     static int
206     plotRBF(const char *fname, const RBFNODE *rbf)
207     {
208     FILE *fp = fopen(fname, "w");
209     int i, j;
210    
211     if (fp == NULL) {
212     fprintf(stderr, "%s: cannot open '%s' for writing\n",
213     progname, fname);
214     return(0);
215     }
216     for (i = SAMPRES; i--; )
217     for (j = 0; j < SAMPRES; j++) {
218     FVECT ovec;
219     double bsdf;
220     ovec_from_pos(ovec, i*GRIDSTEP, j*GRIDSTEP);
221     bsdf = eval_rbfrep(rbf, ovec);
222     if (bsdf > overall_max)
223     overall_max = bsdf;
224     else if (bsdf < overall_min)
225     bsdf = overall_min;
226     bsdf = log10(bsdf) - min_log10;
227     fprintf(fp, "%.5f %.5f %.5f\n",
228     ovec[0]*bsdf, ovec[1]*bsdf, ovec[2]*bsdf);
229     }
230     if (fclose(fp) == EOF) {
231     fprintf(stderr, "%s: error writing data to '%s'\n",
232     progname, fname);
233     return(0);
234     }
235     return(1);
236     }
237    
238     /* Build BSDF values from scattering interpolant representation */
239     static int
240     build_wRBF(void)
241     {
242     const char *pref;
243     int i;
244    
245     if (input_orient > 0) {
246     if (output_orient > 0)
247     pref = frpref;
248     else
249     pref = ftpref;
250     } else if (output_orient < 0)
251     pref = brpref;
252     else
253     pref = btpref;
254    
255     for (i = 0; i < NINCIDENT; i++) {
256     FVECT ivec;
257     RBFNODE *rbf;
258     get_ivector(ivec, i);
259     if (input_orient < 0) {
260 greg 2.19 ivec[0] = -ivec[0]; ivec[2] = -ivec[2];
261 greg 2.16 }
262     rbf = advect_rbf(ivec, 15000);
263     if (!plotRBF(tfile_name(pref, dsuffix, i), rbf))
264     return(0);
265     if (rbf) free(rbf);
266     }
267     return(1); /* next call frees */
268     }
269    
270     /* Put out mirror arrow for the given incident vector */
271     static void
272     put_mirror_arrow(const FVECT ivec, int inc_side)
273     {
274     const double arrow_len = 1.2*bsdf_rad;
275     const double tip_len = 0.2*bsdf_rad;
276     FVECT origin, refl;
277     int i;
278    
279 greg 2.19 cvt_sposition(origin, ivec, inc_side);
280 greg 2.16
281 greg 2.19 refl[0] = -2.*ivec[2]*ivec[0];
282     refl[1] = -2.*ivec[2]*ivec[1];
283 greg 2.16 refl[2] = 2.*ivec[2]*ivec[2] - 1.;
284    
285     printf("\n# Mirror arrow\n");
286     printf("\narrow_mat cylinder inc_dir\n0\n0\n7");
287     printf("\n\t%f %f %f\n\t%f %f %f\n\t%f\n",
288     origin[0], origin[1], origin[2]+arrow_len,
289     origin[0], origin[1], origin[2],
290     arrow_rad);
291     printf("\narrow_mat cylinder mir_dir\n0\n0\n7");
292     printf("\n\t%f %f %f\n\t%f %f %f\n\t%f\n",
293     origin[0], origin[1], origin[2],
294     origin[0] + arrow_len*refl[0],
295     origin[1] + arrow_len*refl[1],
296     origin[2] + arrow_len*refl[2],
297     arrow_rad);
298     printf("\narrow_mat cone mir_tip\n0\n0\n8");
299     printf("\n\t%f %f %f\n\t%f %f %f\n\t%f 0\n",
300     origin[0] + (arrow_len-.5*tip_len)*refl[0],
301     origin[1] + (arrow_len-.5*tip_len)*refl[1],
302     origin[2] + (arrow_len-.5*tip_len)*refl[2],
303     origin[0] + (arrow_len+.5*tip_len)*refl[0],
304     origin[1] + (arrow_len+.5*tip_len)*refl[1],
305     origin[2] + (arrow_len+.5*tip_len)*refl[2],
306     2.*arrow_rad);
307     }
308    
309     /* Put out transmitted direction arrow for the given incident vector */
310     static void
311     put_trans_arrow(const FVECT ivec, int inc_side)
312     {
313     const double arrow_len = 1.2*bsdf_rad;
314     const double tip_len = 0.2*bsdf_rad;
315     FVECT origin;
316     int i;
317    
318 greg 2.19 cvt_sposition(origin, ivec, inc_side);
319 greg 2.16
320     printf("\n# Transmission arrow\n");
321     printf("\narrow_mat cylinder trans_dir\n0\n0\n7");
322     printf("\n\t%f %f %f\n\t%f %f %f\n\t%f\n",
323     origin[0], origin[1], origin[2],
324     origin[0], origin[1], origin[2]-arrow_len,
325     arrow_rad);
326     printf("\narrow_mat cone trans_tip\n0\n0\n8");
327     printf("\n\t%f %f %f\n\t%f %f %f\n\t%f 0\n",
328     origin[0], origin[1], origin[2]-arrow_len+.5*tip_len,
329     origin[0], origin[1], origin[2]-arrow_len-.5*tip_len,
330     2.*arrow_rad);
331     }
332    
333     /* Compute rotation (x,y,z) => (xp,yp,zp) */
334     static int
335     addrot(char *xf, const FVECT xp, const FVECT yp, const FVECT zp)
336     {
337     int n = 0;
338     double theta;
339 greg 2.10
340 greg 2.16 if (yp[2]*yp[2] + zp[2]*zp[2] < 2.*FTINY*FTINY) {
341     /* Special case for X' along Z-axis */
342     theta = -atan2(yp[0], yp[1]);
343     sprintf(xf, " -ry %f -rz %f",
344     xp[2] < 0.0 ? 90.0 : -90.0,
345     theta*(180./PI));
346     return(4);
347     }
348     theta = atan2(yp[2], zp[2]);
349     if (!FEQ(theta,0.0)) {
350     sprintf(xf, " -rx %f", theta*(180./PI));
351     while (*xf) ++xf;
352     n += 2;
353     }
354     theta = Asin(-xp[2]);
355     if (!FEQ(theta,0.0)) {
356     sprintf(xf, " -ry %f", theta*(180./PI));
357     while (*xf) ++xf;
358     n += 2;
359     }
360     theta = atan2(xp[1], xp[0]);
361     if (!FEQ(theta,0.0)) {
362     sprintf(xf, " -rz %f", theta*(180./PI));
363     /* while (*xf) ++xf; */
364     n += 2;
365     }
366     return(n);
367     }
368    
369     /* Put out BSDF surfaces */
370     static int
371     put_BSDFs(void)
372     {
373     const double scalef = bsdf_rad/(log10(overall_max) - min_log10);
374 greg 2.22 FVECT ivec, sorg, upv;
375 greg 2.16 RREAL vMtx[3][3];
376     char *fname;
377     char cmdbuf[256];
378     char xfargs[128];
379     int nxfa;
380     int i;
381    
382     printf("\n# Gensurf output corresponding to %d incident directions\n",
383     NINCIDENT);
384    
385     printf("\nvoid glow arrow_glow\n0\n0\n4 1 0 1 0\n");
386 greg 2.23 printf("\nvoid mixfunc arrow_mat\n4 arrow_glow void 0.25 .\n0\n0\n");
387 greg 2.16
388 greg 2.19 if (front_comp & SDsampR) /* front reflection */
389 greg 2.16 for (i = 0; i < NINCIDENT; i++) {
390     get_ivector(ivec, i);
391     put_mirror_arrow(ivec, 1);
392 greg 2.19 cvt_sposition(sorg, ivec, 1);
393     ivec[0] = -ivec[0]; ivec[1] = -ivec[1]; /* normal */
394 greg 2.22 upv[0] = ivec[0]*ivec[1]*(ivec[2] - 1.);
395     upv[1] = ivec[0]*ivec[0] + ivec[1]*ivec[1]*ivec[2];
396     upv[2] = -ivec[1]*(ivec[0]*ivec[0] + ivec[1]*ivec[1]);
397 greg 2.16 sprintf(xfargs, "-s %f -t %f %f %f", bsdf_rad,
398 greg 2.19 sorg[0], sorg[1], sorg[2]);
399 greg 2.16 nxfa = 6;
400     printf("\nvoid colorfunc scale_pat\n");
401     printf("%d bsdf_red bsdf_grn bsdf_blu bsdf2rad.cal\n\t%s\n0\n0\n",
402     4+nxfa, xfargs);
403     printf("\nscale_pat glow scale_mat\n0\n0\n4 1 1 1 0\n");
404 greg 2.23 if (SDcompXform(vMtx, ivec, upv) != SDEnone)
405     continue;
406 greg 2.16 nxfa = addrot(xfargs, vMtx[0], vMtx[1], vMtx[2]);
407     sprintf(xfargs+strlen(xfargs), " -s %f -t %f %f %f",
408 greg 2.19 scalef, sorg[0], sorg[1], sorg[2]);
409 greg 2.16 nxfa += 6;
410     fname = tfile_name(frpref, dsuffix, i);
411 greg 2.19 sprintf(cmdbuf, "gensurf scale_mat %s%d %s %s %s %d %d | xform %s",
412 greg 2.20 frpref, i, fname, fname, fname, SAMPRES-1, SAMPRES-1,
413 greg 2.16 xfargs);
414     if (!run_cmd(cmdbuf))
415     return(0);
416     }
417 greg 2.19 if (front_comp & SDsampT) /* front transmission */
418 greg 2.16 for (i = 0; i < NINCIDENT; i++) {
419     get_ivector(ivec, i);
420     put_trans_arrow(ivec, 1);
421 greg 2.19 cvt_sposition(sorg, ivec, 1);
422     ivec[0] = -ivec[0]; ivec[1] = -ivec[1]; /* normal */
423 greg 2.22 upv[0] = ivec[0]*ivec[1]*(ivec[2] - 1.);
424     upv[1] = ivec[0]*ivec[0] + ivec[1]*ivec[1]*ivec[2];
425     upv[2] = -ivec[1]*(ivec[0]*ivec[0] + ivec[1]*ivec[1]);
426 greg 2.16 sprintf(xfargs, "-s %f -t %f %f %f", bsdf_rad,
427 greg 2.19 sorg[0], sorg[1], sorg[2]);
428 greg 2.16 nxfa = 6;
429     printf("\nvoid colorfunc scale_pat\n");
430     printf("%d bsdf_red bsdf_grn bsdf_blu bsdf2rad.cal\n\t%s\n0\n0\n",
431     4+nxfa, xfargs);
432     printf("\nscale_pat glow scale_mat\n0\n0\n4 1 1 1 0\n");
433 greg 2.23 if (SDcompXform(vMtx, ivec, upv) != SDEnone)
434     continue;
435 greg 2.16 nxfa = addrot(xfargs, vMtx[0], vMtx[1], vMtx[2]);
436     sprintf(xfargs+strlen(xfargs), " -s %f -t %f %f %f",
437 greg 2.19 scalef, sorg[0], sorg[1], sorg[2]);
438 greg 2.16 nxfa += 6;
439     fname = tfile_name(ftpref, dsuffix, i);
440 greg 2.19 sprintf(cmdbuf, "gensurf scale_mat %s%d %s %s %s %d %d | xform -I %s",
441 greg 2.20 ftpref, i, fname, fname, fname, SAMPRES-1, SAMPRES-1,
442 greg 2.16 xfargs);
443     if (!run_cmd(cmdbuf))
444     return(0);
445     }
446 greg 2.19 if (back_comp & SDsampR) /* rear reflection */
447 greg 2.16 for (i = 0; i < NINCIDENT; i++) {
448     get_ivector(ivec, i);
449     put_mirror_arrow(ivec, -1);
450 greg 2.19 cvt_sposition(sorg, ivec, -1);
451     ivec[0] = -ivec[0]; ivec[1] = -ivec[1]; /* normal */
452 greg 2.22 upv[0] = ivec[0]*ivec[1]*(ivec[2] - 1.);
453     upv[1] = ivec[0]*ivec[0] + ivec[1]*ivec[1]*ivec[2];
454     upv[2] = -ivec[1]*(ivec[0]*ivec[0] + ivec[1]*ivec[1]);
455 greg 2.16 sprintf(xfargs, "-s %f -t %f %f %f", bsdf_rad,
456 greg 2.19 sorg[0], sorg[1], sorg[2]);
457 greg 2.16 nxfa = 6;
458     printf("\nvoid colorfunc scale_pat\n");
459     printf("%d bsdf_red bsdf_grn bsdf_blu bsdf2rad.cal\n\t%s\n0\n0\n",
460     4+nxfa, xfargs);
461     printf("\nscale_pat glow scale_mat\n0\n0\n4 1 1 1 0\n");
462 greg 2.23 if (SDcompXform(vMtx, ivec, upv) != SDEnone)
463     continue;
464 greg 2.16 nxfa = addrot(xfargs, vMtx[0], vMtx[1], vMtx[2]);
465     sprintf(xfargs+strlen(xfargs), " -s %f -t %f %f %f",
466 greg 2.19 scalef, sorg[0], sorg[1], sorg[2]);
467 greg 2.16 nxfa += 6;
468     fname = tfile_name(brpref, dsuffix, i);
469 greg 2.19 sprintf(cmdbuf, "gensurf scale_mat %s%d %s %s %s %d %d | xform -I -ry 180 %s",
470 greg 2.20 brpref, i, fname, fname, fname, SAMPRES-1, SAMPRES-1,
471 greg 2.16 xfargs);
472     if (!run_cmd(cmdbuf))
473     return(0);
474     }
475 greg 2.19 if (back_comp & SDsampT) /* rear transmission */
476 greg 2.16 for (i = 0; i < NINCIDENT; i++) {
477     get_ivector(ivec, i);
478     put_trans_arrow(ivec, -1);
479 greg 2.19 cvt_sposition(sorg, ivec, -1);
480     ivec[0] = -ivec[0]; ivec[1] = -ivec[1]; /* normal */
481 greg 2.22 upv[0] = ivec[0]*ivec[1]*(ivec[2] - 1.);
482     upv[1] = ivec[0]*ivec[0] + ivec[1]*ivec[1]*ivec[2];
483     upv[2] = -ivec[1]*(ivec[0]*ivec[0] + ivec[1]*ivec[1]);
484 greg 2.16 sprintf(xfargs, "-s %f -t %f %f %f", bsdf_rad,
485 greg 2.19 sorg[0], sorg[1], sorg[2]);
486 greg 2.16 nxfa = 6;
487     printf("\nvoid colorfunc scale_pat\n");
488     printf("%d bsdf_red bsdf_grn bsdf_blu bsdf2rad.cal\n\t%s\n0\n0\n",
489     4+nxfa, xfargs);
490     printf("\nscale_pat glow scale_mat\n0\n0\n4 1 1 1 0\n");
491 greg 2.23 if (SDcompXform(vMtx, ivec, upv) != SDEnone)
492     continue;
493 greg 2.16 nxfa = addrot(xfargs, vMtx[0], vMtx[1], vMtx[2]);
494     sprintf(xfargs+strlen(xfargs), " -s %f -t %f %f %f",
495 greg 2.19 scalef, sorg[0], sorg[1], sorg[2]);
496 greg 2.16 nxfa += 6;
497     fname = tfile_name(btpref, dsuffix, i);
498 greg 2.19 sprintf(cmdbuf, "gensurf scale_mat %s%d %s %s %s %d %d | xform -ry 180 %s",
499 greg 2.20 btpref, i, fname, fname, fname, SAMPRES-1, SAMPRES-1,
500 greg 2.16 xfargs);
501     if (!run_cmd(cmdbuf))
502     return(0);
503     }
504     return(1);
505     }
506    
507     /* Put our hemisphere material */
508     static void
509     put_matBSDF(const char *XMLfile)
510     {
511     const char *curdir = "./";
512    
513     if (!XMLfile) { /* simple material */
514     printf("\n# Simplified material because we have no XML input\n");
515     printf("\nvoid brightfunc latlong\n2 latlong bsdf2rad.cal\n0\n0\n");
516     if ((front_comp|back_comp) & SDsampT)
517 greg 2.20 printf("\nlatlong trans %s\n0\n0\n7 .75 .75 .75 0 .04 .5 .8\n",
518 greg 2.16 sph_mat);
519     else
520     printf("\nlatlong plastic %s\n0\n0\n5 .5 .5 .5 0 0\n",
521     sph_mat);
522     return;
523     }
524     switch (XMLfile[0]) { /* avoid RAYPATH search */
525     case '.':
526     CASEDIRSEP:
527     curdir = "";
528     break;
529     case '\0':
530     fprintf(stderr, "%s: empty file name in put_matBSDF\n", progname);
531     exit(1);
532     break;
533     }
534     printf("\n# Actual BSDF material for rendering the hemispheres\n");
535 greg 2.22 printf("\nvoid BSDF BSDFmat\n6 0 \"%s%s\" upx upy upz bsdf2rad.cal\n0\n0\n",
536 greg 2.16 curdir, XMLfile);
537     printf("\nvoid plastic black\n0\n0\n5 0 0 0 0 0\n");
538     printf("\nvoid mixfunc %s\n4 BSDFmat black latlong bsdf2rad.cal\n0\n0\n",
539     sph_mat);
540     }
541    
542     /* Put out overhead parallel light source */
543     static void
544     put_source(void)
545     {
546     printf("\n# Overhead parallel light source\n");
547 greg 2.20 printf("\nvoid light bright\n0\n0\n3 2500 2500 2500\n");
548 greg 2.16 printf("\nbright source light\n0\n0\n4 0 0 1 2\n");
549     printf("\n# Material used for labels\n");
550     printf("\nvoid trans vellum\n0\n0\n7 1 1 1 0 0 .5 0\n");
551     }
552    
553     /* Put out hemisphere(s) */
554     static void
555     put_hemispheres(void)
556     {
557 greg 2.21 const int nsegs = 131;
558    
559 greg 2.16 printf("\n# Hemisphere(s) for showing BSDF appearance (if XML file)\n");
560     if (front_comp) {
561 greg 2.21 printf(
562     "\n!genrev %s Front \"R*sin(A*t)\" \"R*cos(A*t)\" %d -e \"R:%g;A:%f\" -s | xform -t %g 0 0\n",
563     sph_mat, nsegs, sph_rad, 0.495*PI, sph_xoffset);
564 greg 2.16 printf("\nvoid brighttext front_text\n3 helvet.fnt . FRONT\n0\n");
565     printf("12\n\t%f %f 0\n\t%f 0 0\n\t0 %f 0\n\t.01 1 -.1\n",
566 greg 2.20 -.22*sph_rad + sph_xoffset, -1.4*sph_rad,
567 greg 2.16 .35/5.*sph_rad, -1.6*.35/5.*sph_rad);
568     printf("\nfront_text alias front_label_mat vellum\n");
569     printf("\nfront_label_mat polygon front_label\n0\n0\n12");
570     printf("\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n",
571 greg 2.20 -.25*sph_rad + sph_xoffset, -1.3*sph_rad,
572     -.25*sph_rad + sph_xoffset, (-1.4-1.6*.35/5.-.1)*sph_rad,
573     .25*sph_rad + sph_xoffset, (-1.4-1.6*.35/5.-.1)*sph_rad,
574     .25*sph_rad + sph_xoffset, -1.3*sph_rad );
575 greg 2.16 }
576     if (back_comp) {
577 greg 2.21 printf(
578     "\n!genrev %s Back \"R*cos(A*t)\" \"R*sin(A*t)\" %d -e \"R:%g;A:%f\" -s | xform -t %g 0 0\n",
579     sph_mat, nsegs, sph_rad, 0.495*PI, -sph_xoffset);
580 greg 2.16 printf("\nvoid brighttext back_text\n3 helvet.fnt . BACK\n0\n");
581     printf("12\n\t%f %f 0\n\t%f 0 0\n\t0 %f 0\n\t.01 1 -.1\n",
582 greg 2.20 -.22*sph_rad - sph_xoffset, -1.4*sph_rad,
583 greg 2.16 .35/4.*sph_rad, -1.6*.35/4.*sph_rad);
584     printf("\nback_text alias back_label_mat vellum\n");
585     printf("\nback_label_mat polygon back_label\n0\n0\n12");
586     printf("\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n",
587 greg 2.20 -.25*sph_rad - sph_xoffset, -1.3*sph_rad,
588     -.25*sph_rad - sph_xoffset, (-1.4-1.6*.35/4.-.1)*sph_rad,
589     .25*sph_rad - sph_xoffset, (-1.4-1.6*.35/4.-.1)*sph_rad,
590     .25*sph_rad - sph_xoffset, -1.3*sph_rad );
591 greg 2.16 }
592     }
593    
594     /* Put out falsecolor scale and name label */
595     static void
596     put_scale(void)
597     {
598     const double max_log10 = log10(overall_max);
599 greg 2.20 const double leg_width = 2.*.75*(fabs(sph_xoffset) - sph_rad);
600 greg 2.16 const double leg_height = 2.*sph_rad;
601     const int text_lines = 6;
602 greg 2.17 const int text_digits = 8;
603 greg 2.16 char fmt[16];
604     int i;
605    
606     printf("\n# BSDF legend with falsecolor scale\n");
607     printf("\nvoid colorfunc lscale\n10 sca_red(Py) sca_grn(Py) sca_blu(Py)");
608     printf("\n\tbsdf2rad.cal -s %f -t 0 %f 0\n0\n0\n", leg_height, -.5*leg_height);
609 greg 2.17 sprintf(fmt, "%%.%df", text_digits-3);
610 greg 2.16 for (i = 0; i < text_lines; i++) {
611     char vbuf[16];
612     sprintf(vbuf, fmt, pow(10., (i+.5)/text_lines*(max_log10-min_log10)+min_log10));
613     printf("\nlscale brighttext lscale\n");
614     printf("3 helvet.fnt . %s\n0\n12\n", vbuf);
615     printf("\t%f %f 0\n", -.45*leg_width, ((i+.9)/text_lines-.5)*leg_height);
616 greg 2.17 printf("\t%f 0 0\n", .8*leg_width/strlen(vbuf));
617 greg 2.16 printf("\t0 %f 0\n", -.9/text_lines*leg_height);
618     printf("\t.01 1 -.1\n");
619     }
620     printf("\nlscale alias legend_mat vellum\n");
621     printf("\nlegend_mat polygon legend\n0\n0\n12");
622     printf("\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n",
623     -.5*leg_width, .5*leg_height,
624     -.5*leg_width, -.5*leg_height,
625     .5*leg_width, -.5*leg_height,
626     .5*leg_width, .5*leg_height);
627     printf("\nvoid brighttext BSDFtitle\n3 helvet.fnt . BSDF\n0\n12\n");
628     printf("\t%f %f 0\n", -.25*leg_width, .7*leg_height);
629     printf("\t%f 0 0\n", .4/4.*leg_width);
630     printf("\t0 %f 0\n", -.1*leg_height);
631     printf("\t.01 1 -.1\n");
632     printf("\nBSDFtitle alias title_mat vellum\n");
633     printf("\ntitle_mat polygon title\n0\n0\n12");
634     printf("\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n",
635     -.3*leg_width, .75*leg_height,
636     -.3*leg_width, .55*leg_height,
637     .3*leg_width, .55*leg_height,
638     .3*leg_width, .75*leg_height);
639     if (!bsdf_name[0])
640     return;
641     printf("\nvoid brighttext BSDFname\n3 helvet.fnt . \"%s\"\n0\n12\n", bsdf_name);
642     printf("\t%f %f 0\n", -.95*leg_width, -.6*leg_height);
643 greg 2.18 printf("\t%f 0 0\n", 1.8/strlen(bsdf_name)*leg_width);
644 greg 2.16 printf("\t0 %f 0\n", -.1*leg_height);
645     printf("\t.01 1 -.1\n");
646     printf("\nBSDFname alias name_mat vellum\n");
647     printf("\nname_mat polygon name\n0\n0\n12");
648     printf("\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n\t%f %f 0\n",
649     -leg_width, -.55*leg_height,
650     -leg_width, -.75*leg_height,
651     leg_width, -.75*leg_height,
652     leg_width, -.55*leg_height);
653     }
654    
655     /* Convert MGF to Radiance in output */
656     static void
657     convert_mgf(const char *mgfdata)
658     {
659     int len = strlen(mgfdata);
660     char mgfn[128];
661     char radfn[128];
662     char cmdbuf[256];
663     float xmin, xmax, ymin, ymax, zmin, zmax;
664     double max_dim;
665     int fd;
666     FILE *fp;
667    
668     if (!len) return;
669     strcpy(mgfn, tfile_name("geom", ".mgf", 0));
670     fd = open(mgfn, O_WRONLY|O_CREAT, 0666);
671     if (fd < 0 || write(fd, mgfdata, len) != len) {
672     fprintf(stderr, "%s: cannot write file '%s'\n",
673     progname, mgfn);
674     return;
675     }
676     close(fd);
677     strcpy(radfn, tfile_name("geom", ".rad", 0));
678     sprintf(cmdbuf, "mgf2rad %s > %s", mgfn, radfn);
679     if (!run_cmd(cmdbuf))
680     return;
681     sprintf(cmdbuf, "getbbox -w -h %s", radfn);
682     if ((fp = popen(cmdbuf, "r")) == NULL ||
683     fscanf(fp, "%f %f %f %f %f %f",
684     &xmin, &xmax, &ymin, &ymax, &zmin, &zmax) != 6
685     || pclose(fp) < 0) {
686     fprintf(stderr, "%s: error reading from command: %s\n",
687     progname, cmdbuf);
688     return;
689     }
690     max_dim = ymax - ymin;
691     if (xmax - xmin > max_dim)
692     max_dim = xmax - xmin;
693     if (front_comp) {
694     printf("\n# BSDF system geometry (front view)\n");
695     sprintf(cmdbuf, "xform -t %f %f %f -s %f -t %f %f 0 %s",
696     -.5*(xmin+xmax), -.5*(ymin+ymax), -zmax,
697     1.5*sph_rad/max_dim,
698 greg 2.20 sph_xoffset, -2.5*sph_rad,
699 greg 2.16 radfn);
700     if (!run_cmd(cmdbuf))
701     return;
702     }
703     if (back_comp) {
704     printf("\n# BSDF system geometry (back view)\n");
705     sprintf(cmdbuf, "xform -t %f %f %f -s %f -ry 180 -t %f %f 0 %s",
706     -.5*(xmin+xmax), -.5*(ymin+ymax), -zmin,
707     1.5*sph_rad/max_dim,
708 greg 2.20 -sph_xoffset, -2.5*sph_rad,
709 greg 2.16 radfn);
710     if (!run_cmd(cmdbuf))
711     return;
712     }
713     }
714    
715     /* Check RBF input header line & get minimum BSDF value */
716     static int
717     rbf_headline(char *s, void *p)
718     {
719     char fmt[64];
720    
721     if (formatval(fmt, s)) {
722     if (strcmp(fmt, BSDFREP_FMT))
723     return(-1);
724     return(0);
725     }
726     if (!strncmp(s, "IO_SIDES=", 9)) {
727     sscanf(s+9, "%d %d", &input_orient, &output_orient);
728     if (input_orient == output_orient) {
729     if (input_orient > 0)
730     front_comp |= SDsampR;
731     else
732     back_comp |= SDsampR;
733     } else if (input_orient > 0)
734     front_comp |= SDsampT;
735     else
736     back_comp |= SDsampT;
737     return(0);
738     }
739     if (!strncmp(s, "BSDFMIN=", 8)) {
740     sscanf(s+8, "%lf", &bsdf_min);
741     if (bsdf_min < overall_min)
742     overall_min = bsdf_min;
743     return(0);
744     }
745     return(0);
746     }
747 greg 2.1
748 greg 2.16 /* Produce a Radiance model plotting the given BSDF representation */
749 greg 2.1 int
750     main(int argc, char *argv[])
751     {
752 greg 2.4 int inpXML = -1;
753     SDData myBSDF;
754 greg 2.16 int n;
755 greg 2.4 /* check arguments */
756 greg 2.1 progname = argv[0];
757 greg 2.16 if (argc > 1 && (n = strlen(argv[1])-4) > 0) {
758 greg 2.4 if (!strcasecmp(argv[1]+n, ".xml"))
759     inpXML = 1;
760     else if (!strcasecmp(argv[1]+n, ".sir"))
761     inpXML = 0;
762     }
763 greg 2.16 if (inpXML < 0 || inpXML & (argc > 2)) {
764     fprintf(stderr, "Usage: %s bsdf.xml > output.rad\n", progname);
765     fprintf(stderr, " Or: %s hemi1.sir hemi2.sir .. > output.rad\n", progname);
766 greg 2.1 return(1);
767     }
768 greg 2.16 fputs("# ", stdout); /* copy our command */
769     printargs(argc, argv, stdout);
770     /* evaluate BSDF */
771 greg 2.4 if (inpXML) {
772     SDclearBSDF(&myBSDF, argv[1]);
773     if (SDreportError(SDloadFile(&myBSDF, argv[1]), stderr))
774     return(1);
775 greg 2.16 if (myBSDF.rf != NULL) front_comp |= SDsampR;
776     if (myBSDF.tf != NULL) front_comp |= SDsampT;
777     if (myBSDF.rb != NULL) back_comp |= SDsampR;
778     if (myBSDF.tb != NULL) back_comp |= SDsampT;
779     if (!front_comp & !back_comp) {
780     fprintf(stderr, "%s: nothing to plot in '%s'\n",
781 greg 2.4 progname, argv[1]);
782     return(1);
783     }
784 greg 2.16 if (front_comp & SDsampR && myBSDF.rLambFront.cieY < overall_min*PI)
785     overall_min = myBSDF.rLambFront.cieY/PI;
786     if (back_comp & SDsampR && myBSDF.rLambBack.cieY < overall_min*PI)
787     overall_min = myBSDF.rLambBack.cieY/PI;
788     if ((front_comp|back_comp) & SDsampT &&
789     myBSDF.tLamb.cieY < overall_min*PI)
790     overall_min = myBSDF.tLamb.cieY/PI;
791     set_minlog();
792     if (!build_wBSDF(&myBSDF))
793 greg 2.9 return(1);
794 greg 2.16 if (myBSDF.matn[0])
795     strcpy(bsdf_name, myBSDF.matn);
796 greg 2.1 else
797 greg 2.16 strcpy(bsdf_name, myBSDF.name);
798     strcpy(bsdf_manuf, myBSDF.makr);
799     put_matBSDF(argv[1]);
800     } else {
801     FILE *fp;
802     for (n = 1; n < argc; n++) {
803     fp = fopen(argv[n], "rb");
804     if (fp == NULL) {
805     fprintf(stderr, "%s: cannot open BSDF interpolant '%s'\n",
806     progname, argv[n]);
807     return(1);
808     }
809     if (getheader(fp, rbf_headline, NULL) < 0) {
810     fprintf(stderr, "%s: bad BSDF interpolant '%s'\n",
811     progname, argv[n]);
812     return(1);
813 greg 2.2 }
814 greg 2.16 fclose(fp);
815 greg 2.2 }
816 greg 2.16 set_minlog();
817     for (n = 1; n < argc; n++) {
818     fp = fopen(argv[n], "rb");
819     if (!load_bsdf_rep(fp))
820     return(1);
821     fclose(fp);
822     if (!build_wRBF())
823     return(1);
824 greg 2.2 }
825 greg 2.16 put_matBSDF(NULL);
826 greg 2.1 }
827 greg 2.16 put_source(); /* before hemispheres & labels */
828     put_hemispheres();
829     put_scale();
830     if (inpXML && myBSDF.mgf)
831     convert_mgf(myBSDF.mgf);
832     if (!put_BSDFs())
833     return(1);
834     cleanup_tmp();
835 greg 2.1 return(0);
836     }