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root/radiance/ray/src/rt/virtuals.c
Revision: 2.26
Committed: Wed Nov 15 18:02:53 2023 UTC (5 months, 4 weeks ago) by greg
Content type: text/plain
Branch: MAIN
CVS Tags: HEAD
Changes since 2.25: +3 -3 lines
Log Message:
feat(rpict,rtrace,rcontrib,rtpict): Hyperspectral rendering (except photon map)

File Contents

# User Rev Content
1 greg 1.1 #ifndef lint
2 greg 2.26 static const char RCSid[] = "$Id: virtuals.c,v 2.25 2021/02/12 00:41:19 greg Exp $";
3 greg 1.1 #endif
4     /*
5     * Routines for simulating virtual light sources
6     * Thus far, we only support planar mirrors.
7 greg 2.7 *
8     * External symbols declared in source.h
9     */
10    
11 greg 2.8 #include "copyright.h"
12 greg 1.1
13     #include "ray.h"
14 greg 1.3 #include "otypes.h"
15 greg 2.23 #include "otspecial.h"
16 greg 1.1 #include "source.h"
17 greg 1.7 #include "random.h"
18 greg 1.1
19 greg 1.22 #define MINSAMPLES 16 /* minimum number of pretest samples */
20     #define STESTMAX 32 /* maximum seeks per sample */
21 greg 1.1
22 greg 1.13
23 greg 1.1 static OBJECT *vobject; /* virtual source objects */
24     static int nvobjects = 0; /* number of virtual source objects */
25    
26    
27 greg 2.20 static int
28     isident4(MAT4 m)
29     {
30     int i, j;
31    
32     for (i = 4; i--; )
33     for (j = 4; j--; )
34 greg 2.25 if (!FABSEQ(m[i][j], i==j))
35 greg 2.20 return(0);
36     return(1);
37     }
38    
39    
40     void
41 schorsch 2.14 markvirtuals(void) /* find and mark virtual sources */
42 greg 1.1 {
43 greg 2.20 OBJREC *o;
44     int i;
45 greg 1.1 /* check number of direct relays */
46     if (directrelay <= 0)
47     return;
48     /* find virtual source objects */
49 greg 2.10 for (i = 0; i < nsceneobjs; i++) {
50 greg 1.1 o = objptr(i);
51 greg 1.3 if (!issurface(o->otype) || o->omod == OVOID)
52 greg 1.1 continue;
53 greg 1.31 if (!isvlight(vsmaterial(o)->otype))
54 greg 1.1 continue;
55 greg 1.3 if (sfun[o->otype].of == NULL ||
56 greg 1.21 sfun[o->otype].of->getpleq == NULL) {
57     objerror(o,WARNING,"secondary sources not supported");
58     continue;
59     }
60 greg 1.1 if (nvobjects == 0)
61     vobject = (OBJECT *)malloc(sizeof(OBJECT));
62     else
63 greg 2.9 vobject = (OBJECT *)realloc((void *)vobject,
64 greg 1.1 (unsigned)(nvobjects+1)*sizeof(OBJECT));
65     if (vobject == NULL)
66     error(SYSTEM, "out of memory in addvirtuals");
67     vobject[nvobjects++] = i;
68     }
69     if (nvobjects == 0)
70     return;
71 greg 1.4 #ifdef DEBUG
72     fprintf(stderr, "found %d virtual source objects\n", nvobjects);
73     #endif
74 greg 1.1 /* append virtual sources */
75     for (i = nsources; i-- > 0; )
76 greg 1.7 addvirtuals(i, directrelay);
77 greg 1.1 /* done with our object list */
78 greg 2.7 free((void *)vobject);
79 greg 1.1 nvobjects = 0;
80     }
81    
82    
83 greg 2.20 void
84 schorsch 2.14 addvirtuals( /* add virtuals associated with source */
85     int sn,
86     int nr
87     )
88 greg 1.1 {
89 greg 2.20 int i;
90 greg 1.1 /* check relay limit first */
91     if (nr <= 0)
92     return;
93 greg 1.7 if (source[sn].sflags & SSKIP)
94     return;
95 greg 1.1 /* check each virtual object for projection */
96     for (i = 0; i < nvobjects; i++)
97 greg 1.3 /* vproject() calls us recursively */
98 greg 1.4 vproject(objptr(vobject[i]), sn, nr-1);
99 greg 1.1 }
100    
101    
102 greg 2.20 void
103 schorsch 2.14 vproject( /* create projected source(s) if they exist */
104     OBJREC *o,
105     int sn,
106     int n
107     )
108 greg 1.3 {
109 greg 2.20 int i;
110     VSMATERIAL *vsmat;
111 greg 1.3 MAT4 proj;
112 greg 1.4 int ns;
113    
114     if (o == source[sn].so) /* objects cannot project themselves */
115     return;
116 greg 1.3 /* get virtual source material */
117 greg 1.31 vsmat = sfun[vsmaterial(o)->otype].mf;
118 greg 1.3 /* project virtual sources */
119     for (i = 0; i < vsmat->nproj; i++)
120 greg 1.4 if ((*vsmat->vproj)(proj, o, &source[sn], i))
121     if ((ns = makevsrc(o, sn, proj)) >= 0) {
122 greg 1.17 source[ns].sa.sv.pn = i;
123 greg 1.4 #ifdef DEBUG
124 greg 1.6 virtverb(ns, stderr);
125 greg 1.4 #endif
126 greg 1.3 addvirtuals(ns, n);
127 greg 1.4 }
128 greg 1.31 }
129    
130    
131 greg 2.20 OBJREC *
132 schorsch 2.14 vsmaterial( /* get virtual source material pointer */
133     OBJREC *o
134     )
135 greg 1.31 {
136 greg 2.20 int i;
137     OBJREC *m;
138 greg 1.31
139     i = o->omod;
140 greg 2.24 m = findmaterial(o);
141 greg 2.13 if (m == NULL)
142     return(objptr(i));
143 greg 1.31 if (m->otype != MAT_ILLUM || m->oargs.nsargs < 1 ||
144     !strcmp(m->oargs.sarg[0], VOIDID) ||
145 gwlarson 2.6 (i = lastmod(objndx(m), m->oargs.sarg[0])) == OVOID)
146 greg 1.31 return(m); /* direct modifier */
147     return(objptr(i)); /* illum alternate */
148 greg 1.3 }
149    
150    
151 greg 2.20 int
152 schorsch 2.14 makevsrc( /* make virtual source if reasonable */
153     OBJREC *op,
154 greg 2.20 int sn,
155 schorsch 2.14 MAT4 pm
156     )
157 greg 1.1 {
158 greg 1.9 FVECT nsloc, nsnorm, ocent, v;
159     double maxrad2, d;
160 greg 1.3 int nsflags;
161 greg 1.1 SPOT theirspot, ourspot;
162 greg 2.20 int i;
163     /* check for no-op */
164     if (isident4(pm))
165     return(0);
166 greg 1.6 nsflags = source[sn].sflags | (SVIRTUAL|SSPOT|SFOLLOW);
167 greg 1.1 /* get object center and max. radius */
168 greg 1.6 maxrad2 = getdisk(ocent, op, sn);
169     if (maxrad2 <= FTINY) /* too small? */
170     return(-1);
171 greg 1.1 /* get location and spot */
172 greg 1.4 if (source[sn].sflags & SDISTANT) { /* distant source */
173     if (source[sn].sflags & SPROX)
174 greg 1.5 return(-1); /* should never get here! */
175 greg 1.4 multv3(nsloc, source[sn].sloc, pm);
176 greg 1.17 normalize(nsloc);
177 greg 1.6 VCOPY(ourspot.aim, ocent);
178     ourspot.siz = PI*maxrad2;
179 greg 2.5 ourspot.flen = -1.;
180 greg 1.4 if (source[sn].sflags & SSPOT) {
181     multp3(theirspot.aim, source[sn].sl.s->aim, pm);
182 greg 1.29 /* adjust for source size */
183 greg 1.19 d = sqrt(dist2(ourspot.aim, theirspot.aim));
184 greg 1.28 d = sqrt(source[sn].sl.s->siz/PI) + d*source[sn].srad;
185 greg 1.19 theirspot.siz = PI*d*d;
186     ourspot.flen = theirspot.flen = source[sn].sl.s->flen;
187 greg 1.9 d = ourspot.siz;
188 greg 1.6 if (!commonbeam(&ourspot, &theirspot, nsloc))
189 greg 1.9 return(-1); /* no overlap */
190     if (ourspot.siz < d-FTINY) { /* it shrunk */
191     d = beamdisk(v, op, &ourspot, nsloc);
192     if (d <= FTINY)
193     return(-1);
194     if (d < maxrad2) {
195     maxrad2 = d;
196     VCOPY(ocent, v);
197     }
198     }
199 greg 1.1 }
200     } else { /* local source */
201 greg 1.4 multp3(nsloc, source[sn].sloc, pm);
202 greg 1.6 for (i = 0; i < 3; i++)
203     ourspot.aim[i] = ocent[i] - nsloc[i];
204 greg 1.9 if ((d = normalize(ourspot.aim)) == 0.)
205 greg 1.6 return(-1); /* at source!! */
206 greg 1.9 if (source[sn].sflags & SPROX && d > source[sn].sl.prox)
207 greg 1.6 return(-1); /* too far away */
208     ourspot.flen = 0.;
209 greg 1.29 /* adjust for source size */
210 greg 1.28 d = (sqrt(maxrad2) + source[sn].srad) / d;
211 greg 1.19 if (d < 1.-FTINY)
212     ourspot.siz = 2.*PI*(1. - sqrt(1.-d*d));
213 greg 1.14 else
214     nsflags &= ~SSPOT;
215 greg 1.4 if (source[sn].sflags & SSPOT) {
216 schorsch 2.11 theirspot = *(source[sn].sl.s);
217 greg 1.4 multv3(theirspot.aim, source[sn].sl.s->aim, pm);
218 greg 1.17 normalize(theirspot.aim);
219 greg 1.14 if (nsflags & SSPOT) {
220     ourspot.flen = theirspot.flen;
221     d = ourspot.siz;
222     if (!commonspot(&ourspot, &theirspot, nsloc))
223     return(-1); /* no overlap */
224     } else {
225     nsflags |= SSPOT;
226 schorsch 2.11 ourspot = theirspot;
227 greg 1.14 d = 2.*ourspot.siz;
228     }
229 greg 1.9 if (ourspot.siz < d-FTINY) { /* it shrunk */
230     d = spotdisk(v, op, &ourspot, nsloc);
231     if (d <= FTINY)
232     return(-1);
233     if (d < maxrad2) {
234     maxrad2 = d;
235     VCOPY(ocent, v);
236     }
237     }
238 greg 1.1 }
239 greg 1.4 if (source[sn].sflags & SFLAT) { /* behind source? */
240     multv3(nsnorm, source[sn].snorm, pm);
241 greg 1.17 normalize(nsnorm);
242 greg 1.20 if (nsflags & SSPOT && !checkspot(&ourspot, nsnorm))
243 greg 1.5 return(-1);
244 greg 1.1 }
245     }
246 greg 1.7 /* pretest visibility */
247     nsflags = vstestvis(nsflags, op, ocent, maxrad2, sn);
248     if (nsflags & SSKIP)
249     return(-1); /* obstructed */
250     /* it all checks out, so make it */
251 greg 1.6 if ((i = newsource()) < 0)
252 greg 1.1 goto memerr;
253 greg 1.6 source[i].sflags = nsflags;
254     VCOPY(source[i].sloc, nsloc);
255 greg 1.28 multv3(source[i].ss[SU], source[sn].ss[SU], pm);
256     multv3(source[i].ss[SV], source[sn].ss[SV], pm);
257 greg 1.3 if (nsflags & SFLAT)
258 greg 1.6 VCOPY(source[i].snorm, nsnorm);
259 greg 1.28 else
260     multv3(source[i].ss[SW], source[sn].ss[SW], pm);
261 greg 1.29 source[i].srad = source[sn].srad;
262 greg 1.28 source[i].ss2 = source[sn].ss2;
263 greg 1.14 if (nsflags & SSPOT) {
264     if ((source[i].sl.s = (SPOT *)malloc(sizeof(SPOT))) == NULL)
265     goto memerr;
266 schorsch 2.11 *(source[i].sl.s) = ourspot;
267 greg 1.14 }
268 greg 1.3 if (nsflags & SPROX)
269 greg 1.6 source[i].sl.prox = source[sn].sl.prox;
270 greg 1.17 source[i].sa.sv.sn = sn;
271 greg 1.6 source[i].so = op;
272     return(i);
273 greg 1.1 memerr:
274     error(SYSTEM, "out of memory in makevsrc");
275 schorsch 2.14 return -1; /* pro forma return */
276 greg 1.1 }
277    
278    
279 greg 2.20 double
280 schorsch 2.14 getdisk( /* get visible object disk */
281     FVECT oc,
282     OBJREC *op,
283 greg 2.20 int sn
284 schorsch 2.14 )
285 greg 1.6 {
286     double rad2, roffs, offs, d, rd, rdoto;
287     FVECT rnrm, nrm;
288     /* first, use object getdisk function */
289 greg 1.9 rad2 = getmaxdisk(oc, op);
290 greg 1.6 if (!(source[sn].sflags & SVIRTUAL))
291     return(rad2); /* all done for normal source */
292     /* check for correct side of relay surface */
293 greg 1.9 roffs = getplaneq(rnrm, source[sn].so);
294 greg 1.6 rd = DOT(rnrm, source[sn].sloc); /* source projection */
295     if (!(source[sn].sflags & SDISTANT))
296     rd -= roffs;
297     d = DOT(rnrm, oc) - roffs; /* disk distance to relay plane */
298     if ((d > 0.) ^ (rd > 0.))
299     return(rad2); /* OK if opposite sides */
300     if (d*d >= rad2)
301 greg 1.9 return(0.); /* no relay is possible */
302 greg 1.6 /* we need a closer look */
303 greg 1.9 offs = getplaneq(nrm, op);
304 greg 1.6 rdoto = DOT(rnrm, nrm);
305     if (d*d >= rad2*(1.-rdoto*rdoto))
306     return(0.); /* disk entirely on projection side */
307     /* should shrink disk but I'm lazy */
308     return(rad2);
309     }
310    
311    
312 greg 2.20 int
313 schorsch 2.14 vstestvis( /* pretest source visibility */
314     int f, /* virtual source flags */
315     OBJREC *o, /* relay object */
316     FVECT oc, /* relay object center */
317     double or2, /* relay object radius squared */
318 greg 2.20 int sn /* target source number */
319 schorsch 2.14 )
320 greg 1.1 {
321 greg 1.7 RAY sr;
322     FVECT onorm;
323 greg 2.21 double offsdir[3];
324 greg 1.28 SRCINDEX si;
325 greg 2.17 double or, d, d1;
326 greg 1.16 int stestlim, ssn;
327 greg 1.11 int nhit, nok;
328 greg 2.20 int i, n;
329 greg 1.7 /* return if pretesting disabled */
330     if (vspretest <= 0)
331     return(f);
332     /* get surface normal */
333 greg 1.9 getplaneq(onorm, o);
334 greg 1.7 /* set number of rays to sample */
335 greg 1.8 if (source[sn].sflags & SDISTANT) {
336 greg 1.26 /* 32. == heuristic constant */
337     n = 32.*or2/(thescene.cusize*thescene.cusize)*vspretest + .5;
338 greg 1.8 } else {
339 greg 2.21 VSUB(offsdir, source[sn].sloc, oc);
340 greg 1.20 d = DOT(offsdir,offsdir);
341     if (d <= FTINY)
342     n = 2.*PI * vspretest + .5;
343     else
344     n = 2.*PI * (1.-sqrt(1./(1.+or2/d)))*vspretest + .5;
345 greg 1.8 }
346 greg 1.13 if (n < MINSAMPLES) n = MINSAMPLES;
347 greg 1.9 #ifdef DEBUG
348     fprintf(stderr, "pretesting source %d in object %s with %d rays\n",
349     sn, o->oname, n);
350     #endif
351 greg 1.7 /* sample */
352 greg 1.8 or = sqrt(or2);
353 greg 1.16 stestlim = n*STESTMAX;
354     ssn = 0;
355 greg 1.11 nhit = nok = 0;
356 greg 2.4 initsrcindex(&si);
357 greg 1.7 while (n-- > 0) {
358 greg 1.8 /* get sample point */
359     do {
360 greg 1.16 if (ssn >= stestlim) {
361 greg 1.9 #ifdef DEBUG
362     fprintf(stderr, "\ttoo hard to hit\n");
363     #endif
364 greg 1.8 return(f); /* too small a target! */
365 greg 1.9 }
366 greg 1.25 multisamp(offsdir, 3, urand(sn*931+5827+ssn));
367 greg 1.8 for (i = 0; i < 3; i++)
368 greg 1.23 offsdir[i] = or*(1. - 2.*offsdir[i]);
369 greg 1.16 ssn++;
370 greg 2.4 d = 1. - DOT(offsdir, onorm);
371     for (i = 0; i < 3; i++) {
372     sr.rorg[i] = oc[i] + offsdir[i] + d*onorm[i];
373     sr.rdir[i] = -onorm[i];
374     }
375 greg 2.22 sr.rmax = 0.0;
376 greg 2.16 rayorigin(&sr, PRIMARY, NULL, NULL);
377 greg 1.8 } while (!(*ofun[o->otype].funp)(o, &sr));
378     /* check against source */
379 greg 2.4 VCOPY(sr.rorg, sr.rop); /* starting from intersection */
380 greg 1.7 samplendx++;
381 greg 2.4 if (si.sp >= si.np-1 ||
382     !srcray(&sr, NULL, &si) || sr.rsrc != sn) {
383     si.sn = sn-1; /* reset index to our source */
384     si.np = 0;
385     if (!srcray(&sr, NULL, &si) || sr.rsrc != sn)
386     continue; /* can't get there from here */
387     }
388 greg 2.17 sr.revf = srcvalue;
389     rayvalue(&sr); /* check sample validity */
390 greg 2.26 if ((d = scolor_mean(sr.rcol)) <= FTINY)
391 greg 1.7 continue;
392 greg 2.4 nok++; /* got sample; check obstructions */
393 greg 1.18 rayclear(&sr);
394 greg 2.17 sr.revf = raytrace;
395 greg 1.27 rayvalue(&sr);
396 greg 2.26 if ((d1 = scolor_mean(sr.rcol)) > FTINY) {
397 greg 2.17 if (d - d1 > FTINY) {
398     #ifdef DEBUG
399     fprintf(stderr, "\tpartially shadowed\n");
400     #endif
401     return(f); /* intervening transmitter */
402     }
403 greg 1.11 nhit++;
404 greg 2.17 }
405 greg 1.11 if (nhit > 0 && nhit < nok) {
406 greg 1.9 #ifdef DEBUG
407 greg 1.11 fprintf(stderr, "\tpartially occluded\n");
408 greg 1.9 #endif
409 greg 1.11 return(f); /* need to shadow test */
410     }
411 greg 1.1 }
412 greg 1.9 if (nhit == 0) {
413     #ifdef DEBUG
414     fprintf(stderr, "\t0%% hit rate\n");
415     #endif
416 greg 1.7 return(f | SSKIP); /* 0% hit rate: totally occluded */
417 greg 1.9 }
418     #ifdef DEBUG
419     fprintf(stderr, "\t100%% hit rate\n");
420     #endif
421     return(f & ~SFOLLOW); /* 100% hit rate: no occlusion */
422 greg 1.1 }
423 greg 1.7
424 greg 1.4
425     #ifdef DEBUG
426 greg 2.20 void
427 schorsch 2.14 virtverb( /* print verbose description of virtual source */
428 greg 2.20 int sn,
429 schorsch 2.14 FILE *fp
430     )
431 greg 1.4 {
432     fprintf(fp, "%s virtual source %d in %s %s\n",
433 greg 1.6 source[sn].sflags & SDISTANT ? "distant" : "local",
434     sn, ofun[source[sn].so->otype].funame,
435     source[sn].so->oname);
436 greg 1.4 fprintf(fp, "\tat (%f,%f,%f)\n",
437 greg 1.6 source[sn].sloc[0], source[sn].sloc[1], source[sn].sloc[2]);
438 greg 1.4 fprintf(fp, "\tlinked to source %d (%s)\n",
439 greg 1.17 source[sn].sa.sv.sn, source[source[sn].sa.sv.sn].so->oname);
440 greg 1.6 if (source[sn].sflags & SFOLLOW)
441 greg 1.4 fprintf(fp, "\talways followed\n");
442     else
443     fprintf(fp, "\tnever followed\n");
444 greg 1.6 if (!(source[sn].sflags & SSPOT))
445 greg 1.4 return;
446     fprintf(fp, "\twith spot aim (%f,%f,%f) and size %f\n",
447 greg 1.6 source[sn].sl.s->aim[0], source[sn].sl.s->aim[1],
448     source[sn].sl.s->aim[2], source[sn].sl.s->siz);
449 greg 1.4 }
450     #endif