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root/radiance/ray/src/rt/raytrace.c
Revision: 2.79
Committed: Thu Jul 25 16:50:54 2019 UTC (4 years, 9 months ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.78: +3 -1 lines
Log Message:
Keep track of ray flips so rayreorient() can put it back as it was

File Contents

# User Rev Content
1 greg 1.1 #ifndef lint
2 greg 2.79 static const char RCSid[] = "$Id: raytrace.c,v 2.78 2019/04/03 16:04:33 greg Exp $";
3 greg 1.1 #endif
4     /*
5     * raytrace.c - routines for tracing and shading rays.
6     *
7 greg 2.34 * External symbols declared in ray.h
8     */
9    
10 greg 2.35 #include "copyright.h"
11 greg 1.1
12     #include "ray.h"
13 schorsch 2.45 #include "source.h"
14 greg 1.1 #include "otypes.h"
15 greg 1.15 #include "otspecial.h"
16 greg 2.51 #include "random.h"
17 greg 2.66 #include "pmap.h"
18 greg 1.15
19 greg 2.3 #define MAXCSET ((MAXSET+1)*2-1) /* maximum check set size */
20    
21 greg 2.60 RNUMBER raynum = 0; /* next unique ray number */
22     RNUMBER nrays = 0; /* number of calls to localhit */
23 greg 1.1
24 schorsch 2.40 static RREAL Lambfa[5] = {PI, PI, PI, 0.0, 0.0};
25 greg 1.15 OBJREC Lamb = {
26     OVOID, MAT_PLASTIC, "Lambertian",
27 greg 2.57 {NULL, Lambfa, 0, 5}, NULL
28 greg 1.15 }; /* a Lambertian surface */
29    
30 greg 2.17 OBJREC Aftplane; /* aft clipping plane object */
31 greg 2.16
32 schorsch 2.45 #define RAYHIT (-1) /* return value for intercepted ray */
33 greg 2.5
34 schorsch 2.45 static int raymove(FVECT pos, OBJECT *cxs, int dirf, RAY *r, CUBE *cu);
35     static int checkhit(RAY *r, CUBE *cu, OBJECT *cxs);
36     static void checkset(OBJECT *os, OBJECT *cs);
37 greg 1.1
38    
39 greg 2.65 int
40 schorsch 2.45 rayorigin( /* start new ray from old one */
41 greg 2.49 RAY *r,
42 schorsch 2.45 int rt,
43 greg 2.49 const RAY *ro,
44     const COLOR rc
45 schorsch 2.45 )
46 greg 1.1 {
47 greg 2.49 double rw, re;
48     /* assign coefficient/weight */
49     if (rc == NULL) {
50     rw = 1.0;
51     setcolor(r->rcoef, 1., 1., 1.);
52     } else {
53     rw = intens(rc);
54 greg 2.70 if (rw > 1.0)
55     rw = 1.0; /* avoid calculation growth */
56 greg 2.49 if (rc != r->rcoef)
57     copycolor(r->rcoef, rc);
58     }
59 greg 1.1 if ((r->parent = ro) == NULL) { /* primary ray */
60     r->rlvl = 0;
61     r->rweight = rw;
62     r->crtype = r->rtype = rt;
63     r->rsrc = -1;
64     r->clipset = NULL;
65 greg 2.50 r->revf = raytrace;
66 greg 2.23 copycolor(r->cext, cextinction);
67 greg 2.26 copycolor(r->albedo, salbedo);
68 greg 2.23 r->gecc = seccg;
69     r->slights = NULL;
70 greg 1.1 } else { /* spawned ray */
71 greg 2.49 if (ro->rot >= FHUGE) {
72     memset(r, 0, sizeof(RAY));
73     return(-1); /* illegal continuation */
74     }
75 greg 1.1 r->rlvl = ro->rlvl;
76     if (rt & RAYREFL) {
77     r->rlvl++;
78     r->rsrc = -1;
79     r->clipset = ro->clipset;
80 greg 2.22 r->rmax = 0.0;
81 greg 1.1 } else {
82     r->rsrc = ro->rsrc;
83     r->clipset = ro->newcset;
84 greg 2.22 r->rmax = ro->rmax <= FTINY ? 0.0 : ro->rmax - ro->rot;
85 greg 1.1 }
86 greg 2.50 r->revf = ro->revf;
87 greg 2.23 copycolor(r->cext, ro->cext);
88 greg 2.26 copycolor(r->albedo, ro->albedo);
89 greg 2.23 r->gecc = ro->gecc;
90     r->slights = ro->slights;
91 greg 1.1 r->crtype = ro->crtype | (r->rtype = rt);
92     VCOPY(r->rorg, ro->rop);
93 gwlarson 2.31 r->rweight = ro->rweight * rw;
94 greg 2.49 /* estimate extinction */
95 gwlarson 2.31 re = colval(ro->cext,RED) < colval(ro->cext,GRN) ?
96     colval(ro->cext,RED) : colval(ro->cext,GRN);
97     if (colval(ro->cext,BLU) < re) re = colval(ro->cext,BLU);
98 greg 2.49 re *= ro->rot;
99 schorsch 2.58 if (re > 0.1) {
100     if (re > 92.) {
101 greg 2.53 r->rweight = 0.0;
102 schorsch 2.58 } else {
103 greg 2.53 r->rweight *= exp(-re);
104 schorsch 2.58 }
105     }
106 greg 1.1 }
107 greg 1.22 rayclear(r);
108 greg 2.53 if (r->rweight <= 0.0) /* check for expiration */
109     return(-1);
110 greg 2.52 if (r->crtype & SHADOW) /* shadow commitment */
111     return(0);
112 greg 2.67 /* ambient in photon map? */
113 greg 2.69 if (ro != NULL && ro->crtype & AMBIENT) {
114     if (causticPhotonMapping)
115     return(-1);
116     if (photonMapping && rt != TRANS)
117     return(-1);
118     }
119 greg 2.77 if ((maxdepth <= 0) & (rc != NULL)) { /* Russian roulette */
120 greg 2.51 if (minweight <= 0.0)
121     error(USER, "zero ray weight in Russian roulette");
122 greg 2.77 if ((maxdepth < 0) & (r->rlvl > -maxdepth))
123 greg 2.51 return(-1); /* upper reflection limit */
124     if (r->rweight >= minweight)
125     return(0);
126 greg 2.55 if (frandom() > r->rweight/minweight)
127 greg 2.51 return(-1);
128     rw = minweight/r->rweight; /* promote survivor */
129     scalecolor(r->rcoef, rw);
130     r->rweight = minweight;
131     return(0);
132     }
133 greg 2.77 return((r->rweight >= minweight) & (r->rlvl <= abs(maxdepth)) ? 0 : -1);
134 greg 1.22 }
135    
136    
137 greg 2.65 void
138 schorsch 2.45 rayclear( /* clear a ray for (re)evaluation */
139 greg 2.64 RAY *r
140 schorsch 2.45 )
141 greg 1.22 {
142 greg 1.20 r->rno = raynum++;
143 greg 1.1 r->newcset = r->clipset;
144 greg 2.36 r->hitf = rayhit;
145 greg 2.28 r->robj = OVOID;
146 greg 2.17 r->ro = NULL;
147 greg 2.34 r->rox = NULL;
148 greg 2.73 r->rxt = r->rmt = r->rot = FHUGE;
149 greg 1.1 r->pert[0] = r->pert[1] = r->pert[2] = 0.0;
150 greg 2.79 r->rflips = 0;
151 greg 2.37 r->uv[0] = r->uv[1] = 0.0;
152 greg 1.1 setcolor(r->pcol, 1.0, 1.0, 1.0);
153 greg 2.73 setcolor(r->mcol, 0.0, 0.0, 0.0);
154 greg 1.1 setcolor(r->rcol, 0.0, 0.0, 0.0);
155     }
156    
157    
158 greg 2.65 void
159 greg 2.50 raytrace( /* trace a ray and compute its value */
160 schorsch 2.45 RAY *r
161     )
162 greg 1.1 {
163 greg 1.15 if (localhit(r, &thescene))
164 greg 2.24 raycont(r); /* hit local surface, evaluate */
165 greg 2.16 else if (r->ro == &Aftplane) {
166 greg 2.23 r->ro = NULL; /* hit aft clipping plane */
167 greg 2.16 r->rot = FHUGE;
168     } else if (sourcehit(r))
169 greg 2.24 rayshade(r, r->ro->omod); /* distant source */
170 greg 1.1
171     if (trace != NULL)
172     (*trace)(r); /* trace execution */
173 greg 2.49
174     rayparticipate(r); /* for participating medium */
175 greg 1.1 }
176    
177    
178 greg 2.65 void
179 schorsch 2.45 raycont( /* check for clipped object and continue */
180 greg 2.64 RAY *r
181 schorsch 2.45 )
182 greg 1.8 {
183 greg 2.7 if ((r->clipset != NULL && inset(r->clipset, r->ro->omod)) ||
184 greg 2.24 !rayshade(r, r->ro->omod))
185 greg 1.8 raytrans(r);
186     }
187    
188    
189 greg 2.65 void
190 schorsch 2.45 raytrans( /* transmit ray as is */
191 greg 2.64 RAY *r
192 schorsch 2.45 )
193 greg 1.1 {
194     RAY tr;
195    
196 greg 2.67 rayorigin(&tr, TRANS, r, NULL); /* always continue */
197     VCOPY(tr.rdir, r->rdir);
198     rayvalue(&tr);
199 greg 2.75 copycolor(r->mcol, tr.mcol);
200 greg 2.67 copycolor(r->rcol, tr.rcol);
201 greg 2.73 r->rmt = r->rot + tr.rmt;
202     r->rxt = r->rot + tr.rxt;
203 greg 1.1 }
204    
205    
206 greg 2.65 int
207 greg 2.74 raytirrad( /* irradiance hack */
208     OBJREC *m,
209     RAY *r
210     )
211     {
212 greg 2.75 if (ofun[m->otype].flags & (T_M|T_X) && m->otype != MAT_CLIP) {
213 greg 2.74 if (istransp(m->otype) || isBSDFproxy(m)) {
214     raytrans(r);
215     return(1);
216     }
217     if (!islight(m->otype))
218     return((*ofun[Lamb.otype].funp)(&Lamb, r));
219     }
220     return(0); /* not a qualifying surface */
221     }
222    
223    
224     int
225 schorsch 2.45 rayshade( /* shade ray r with material mod */
226 greg 2.64 RAY *r,
227 schorsch 2.45 int mod
228     )
229 greg 1.1 {
230 greg 2.74 int tst_irrad = do_irrad && !(r->crtype & ~(PRIMARY|TRANS));
231 greg 2.64 OBJREC *m;
232 greg 2.47
233 greg 2.78 r->rxt = r->rot; /* preset effective ray length */
234 greg 2.47 for ( ; mod != OVOID; mod = m->omod) {
235 greg 1.1 m = objptr(mod);
236 greg 1.4 /****** unnecessary test since modifier() is always called
237 greg 1.1 if (!ismodifier(m->otype)) {
238     sprintf(errmsg, "illegal modifier \"%s\"", m->oname);
239     error(USER, errmsg);
240     }
241 greg 1.4 ******/
242 greg 1.16 /* hack for irradiance calculation */
243 greg 2.74 if (tst_irrad && raytirrad(m, r))
244     return(1);
245    
246 greg 2.47 if ((*ofun[m->otype].funp)(m, r))
247     return(1); /* materials call raytexture() */
248 greg 1.1 }
249 greg 2.47 return(0); /* no material! */
250 greg 2.23 }
251    
252    
253 greg 2.65 void
254 schorsch 2.45 rayparticipate( /* compute ray medium participation */
255 greg 2.64 RAY *r
256 schorsch 2.45 )
257 greg 2.23 {
258     COLOR ce, ca;
259     double re, ge, be;
260    
261     if (intens(r->cext) <= 1./FHUGE)
262     return; /* no medium */
263 greg 2.27 re = r->rot*colval(r->cext,RED);
264     ge = r->rot*colval(r->cext,GRN);
265     be = r->rot*colval(r->cext,BLU);
266 greg 2.26 if (r->crtype & SHADOW) { /* no scattering for sources */
267     re *= 1. - colval(r->albedo,RED);
268     ge *= 1. - colval(r->albedo,GRN);
269     be *= 1. - colval(r->albedo,BLU);
270     }
271 greg 2.49 setcolor(ce, re<=FTINY ? 1. : re>92. ? 0. : exp(-re),
272     ge<=FTINY ? 1. : ge>92. ? 0. : exp(-ge),
273     be<=FTINY ? 1. : be>92. ? 0. : exp(-be));
274     multcolor(r->rcol, ce); /* path extinction */
275 greg 2.26 if (r->crtype & SHADOW || intens(r->albedo) <= FTINY)
276 greg 2.23 return; /* no scattering */
277 greg 2.66
278     /* PMAP: indirect inscattering accounted for by volume photons? */
279     if (!volumePhotonMapping) {
280     setcolor(ca,
281     colval(r->albedo,RED)*colval(ambval,RED)*(1.-colval(ce,RED)),
282     colval(r->albedo,GRN)*colval(ambval,GRN)*(1.-colval(ce,GRN)),
283     colval(r->albedo,BLU)*colval(ambval,BLU)*(1.-colval(ce,BLU)));
284     addcolor(r->rcol, ca); /* ambient in scattering */
285     }
286    
287 greg 2.23 srcscatter(r); /* source in scattering */
288 greg 1.1 }
289    
290    
291 greg 2.65 void
292 schorsch 2.45 raytexture( /* get material modifiers */
293     RAY *r,
294     OBJECT mod
295     )
296 greg 1.1 {
297 greg 2.64 OBJREC *m;
298 greg 1.1 /* execute textures and patterns */
299     for ( ; mod != OVOID; mod = m->omod) {
300     m = objptr(mod);
301 greg 2.9 /****** unnecessary test since modifier() is always called
302     if (!ismodifier(m->otype)) {
303 greg 1.1 sprintf(errmsg, "illegal modifier \"%s\"", m->oname);
304     error(USER, errmsg);
305     }
306 greg 2.9 ******/
307 greg 2.20 if ((*ofun[m->otype].funp)(m, r)) {
308     sprintf(errmsg, "conflicting material \"%s\"",
309     m->oname);
310     objerror(r->ro, USER, errmsg);
311     }
312 greg 1.1 }
313     }
314    
315    
316 greg 2.65 int
317 schorsch 2.45 raymixture( /* mix modifiers */
318 greg 2.64 RAY *r,
319 schorsch 2.45 OBJECT fore,
320     OBJECT back,
321     double coef
322     )
323 greg 1.1 {
324 greg 2.9 RAY fr, br;
325 greg 2.73 double mfore, mback;
326 greg 2.9 int foremat, backmat;
327 greg 2.64 int i;
328 greg 2.24 /* bound coefficient */
329 greg 1.1 if (coef > 1.0)
330     coef = 1.0;
331     else if (coef < 0.0)
332     coef = 0.0;
333 greg 2.13 /* compute foreground and background */
334 greg 2.24 foremat = backmat = 0;
335 greg 2.9 /* foreground */
336 schorsch 2.41 fr = *r;
337 greg 2.54 if (coef > FTINY) {
338 greg 2.59 fr.rweight *= coef;
339 greg 2.54 scalecolor(fr.rcoef, coef);
340 greg 2.9 foremat = rayshade(&fr, fore);
341 greg 2.54 }
342 greg 2.9 /* background */
343 schorsch 2.41 br = *r;
344 greg 2.54 if (coef < 1.0-FTINY) {
345 greg 2.59 br.rweight *= 1.0-coef;
346 greg 2.54 scalecolor(br.rcoef, 1.0-coef);
347 greg 2.9 backmat = rayshade(&br, back);
348 greg 2.54 }
349 greg 2.24 /* check for transparency */
350 schorsch 2.41 if (backmat ^ foremat) {
351 gwlarson 2.33 if (backmat && coef > FTINY)
352 greg 2.24 raytrans(&fr);
353 gwlarson 2.33 else if (foremat && coef < 1.0-FTINY)
354 greg 2.24 raytrans(&br);
355 schorsch 2.41 }
356 greg 2.12 /* mix perturbations */
357 greg 1.1 for (i = 0; i < 3; i++)
358 greg 2.12 r->pert[i] = coef*fr.pert[i] + (1.0-coef)*br.pert[i];
359     /* mix pattern colors */
360 greg 2.9 scalecolor(fr.pcol, coef);
361     scalecolor(br.pcol, 1.0-coef);
362 greg 2.12 copycolor(r->pcol, fr.pcol);
363     addcolor(r->pcol, br.pcol);
364 greg 2.24 /* return value tells if material */
365     if (!foremat & !backmat)
366     return(0);
367 greg 2.12 /* mix returned ray values */
368 greg 2.24 scalecolor(fr.rcol, coef);
369     scalecolor(br.rcol, 1.0-coef);
370     copycolor(r->rcol, fr.rcol);
371     addcolor(r->rcol, br.rcol);
372 greg 2.75 scalecolor(fr.mcol, coef);
373     scalecolor(br.mcol, 1.0-coef);
374     copycolor(r->mcol, fr.mcol);
375     addcolor(r->mcol, br.mcol);
376 greg 2.73 mfore = bright(fr.mcol); mback = bright(br.mcol);
377     r->rmt = mfore > mback ? fr.rmt : br.rmt;
378     r->rxt = bright(fr.rcol)-mfore > bright(br.rcol)-mback ?
379     fr.rxt : br.rxt;
380 greg 2.24 return(1);
381 greg 1.1 }
382    
383    
384 greg 2.65 double
385 schorsch 2.45 raydist( /* compute (cumulative) ray distance */
386 greg 2.64 const RAY *r,
387     int flags
388 schorsch 2.45 )
389 greg 2.21 {
390     double sum = 0.0;
391    
392     while (r != NULL && r->crtype&flags) {
393     sum += r->rot;
394     r = r->parent;
395     }
396     return(sum);
397     }
398    
399    
400 greg 2.65 void
401 greg 2.49 raycontrib( /* compute (cumulative) ray contribution */
402 greg 2.63 RREAL rc[3],
403 greg 2.49 const RAY *r,
404     int flags
405     )
406     {
407 greg 2.77 static int warnedPM = 0;
408    
409 greg 2.52 rc[0] = rc[1] = rc[2] = 1.;
410 greg 2.49
411     while (r != NULL && r->crtype&flags) {
412 greg 2.76 int i = 3;
413     while (i--)
414 greg 2.52 rc[i] *= colval(r->rcoef,i);
415 greg 2.77 /* check for participating medium */
416     if (!warnedPM && (bright(r->cext) > FTINY) |
417     (bright(r->albedo) > FTINY)) {
418     error(WARNING,
419     "ray contribution calculation does not support participating media");
420     warnedPM++;
421     }
422 greg 2.49 r = r->parent;
423     }
424     }
425    
426    
427 greg 2.65 double
428 schorsch 2.45 raynormal( /* compute perturbed normal for ray */
429     FVECT norm,
430 greg 2.64 RAY *r
431 schorsch 2.45 )
432 greg 1.1 {
433     double newdot;
434 greg 2.64 int i;
435 greg 1.1
436     /* The perturbation is added to the surface normal to obtain
437     * the new normal. If the new normal would affect the surface
438     * orientation wrt. the ray, a correction is made. The method is
439     * still fraught with problems since reflected rays and similar
440     * directions calculated from the surface normal may spawn rays behind
441     * the surface. The only solution is to curb textures at high
442 greg 1.9 * incidence (namely, keep DOT(rdir,pert) < Rdot).
443 greg 1.1 */
444    
445     for (i = 0; i < 3; i++)
446     norm[i] = r->ron[i] + r->pert[i];
447    
448     if (normalize(norm) == 0.0) {
449     objerror(r->ro, WARNING, "illegal normal perturbation");
450     VCOPY(norm, r->ron);
451     return(r->rod);
452     }
453     newdot = -DOT(norm, r->rdir);
454     if ((newdot > 0.0) != (r->rod > 0.0)) { /* fix orientation */
455     for (i = 0; i < 3; i++)
456     norm[i] += 2.0*newdot*r->rdir[i];
457     newdot = -newdot;
458     }
459     return(newdot);
460 greg 1.12 }
461    
462    
463 greg 2.65 void
464 schorsch 2.45 newrayxf( /* get new tranformation matrix for ray */
465     RAY *r
466     )
467 greg 1.12 {
468     static struct xfn {
469     struct xfn *next;
470     FULLXF xf;
471     } xfseed = { &xfseed }, *xflast = &xfseed;
472 greg 2.64 struct xfn *xp;
473     const RAY *rp;
474 greg 1.12
475     /*
476     * Search for transform in circular list that
477     * has no associated ray in the tree.
478     */
479     xp = xflast;
480     for (rp = r->parent; rp != NULL; rp = rp->parent)
481     if (rp->rox == &xp->xf) { /* xp in use */
482     xp = xp->next; /* move to next */
483     if (xp == xflast) { /* need new one */
484 greg 2.64 xp = (struct xfn *)bmalloc(sizeof(struct xfn));
485 greg 1.12 if (xp == NULL)
486     error(SYSTEM,
487     "out of memory in newrayxf");
488     /* insert in list */
489     xp->next = xflast->next;
490     xflast->next = xp;
491     break; /* we're done */
492     }
493     rp = r; /* start check over */
494     }
495     /* got it */
496     r->rox = &xp->xf;
497     xflast = xp;
498 greg 1.1 }
499    
500    
501 greg 2.65 void
502 schorsch 2.45 flipsurface( /* reverse surface orientation */
503 greg 2.64 RAY *r
504 schorsch 2.45 )
505 greg 1.1 {
506     r->rod = -r->rod;
507     r->ron[0] = -r->ron[0];
508     r->ron[1] = -r->ron[1];
509     r->ron[2] = -r->ron[2];
510     r->pert[0] = -r->pert[0];
511     r->pert[1] = -r->pert[1];
512     r->pert[2] = -r->pert[2];
513 greg 2.79 r->rflips++;
514 greg 1.1 }
515    
516    
517 greg 2.65 void
518 schorsch 2.45 rayhit( /* standard ray hit test */
519     OBJECT *oset,
520     RAY *r
521     )
522 greg 2.36 {
523     OBJREC *o;
524     int i;
525    
526     for (i = oset[0]; i > 0; i--) {
527     o = objptr(oset[i]);
528     if ((*ofun[o->otype].funp)(o, r))
529     r->robj = oset[i];
530     }
531     }
532    
533    
534 greg 2.65 int
535 schorsch 2.45 localhit( /* check for hit in the octree */
536 greg 2.64 RAY *r,
537     CUBE *scene
538 schorsch 2.45 )
539 greg 1.1 {
540 greg 2.3 OBJECT cxset[MAXCSET+1]; /* set of checked objects */
541 greg 1.1 FVECT curpos; /* current cube position */
542 greg 1.11 int sflags; /* sign flags */
543 greg 1.1 double t, dt;
544 greg 2.64 int i;
545 greg 1.1
546 greg 1.21 nrays++; /* increment trace counter */
547 greg 1.11 sflags = 0;
548 greg 1.1 for (i = 0; i < 3; i++) {
549     curpos[i] = r->rorg[i];
550 greg 2.8 if (r->rdir[i] > 1e-7)
551 greg 1.11 sflags |= 1 << i;
552 greg 2.8 else if (r->rdir[i] < -1e-7)
553 greg 1.11 sflags |= 0x10 << i;
554 greg 1.1 }
555 greg 2.61 if (!sflags) {
556     error(WARNING, "zero ray direction in localhit");
557     return(0);
558     }
559 greg 2.17 /* start off assuming nothing hit */
560     if (r->rmax > FTINY) { /* except aft plane if one */
561     r->ro = &Aftplane;
562     r->rot = r->rmax;
563 greg 2.62 VSUM(r->rop, r->rorg, r->rdir, r->rot);
564 greg 2.17 }
565     /* find global cube entrance point */
566 greg 1.1 t = 0.0;
567     if (!incube(scene, curpos)) {
568     /* find distance to entry */
569     for (i = 0; i < 3; i++) {
570     /* plane in our direction */
571 greg 1.11 if (sflags & 1<<i)
572 greg 1.1 dt = scene->cuorg[i];
573 greg 1.11 else if (sflags & 0x10<<i)
574 greg 1.1 dt = scene->cuorg[i] + scene->cusize;
575     else
576     continue;
577     /* distance to the plane */
578     dt = (dt - r->rorg[i])/r->rdir[i];
579     if (dt > t)
580     t = dt; /* farthest face is the one */
581     }
582     t += FTINY; /* fudge to get inside cube */
583 greg 2.17 if (t >= r->rot) /* clipped already */
584     return(0);
585 greg 1.1 /* advance position */
586 greg 2.62 VSUM(curpos, curpos, r->rdir, t);
587 greg 1.1
588     if (!incube(scene, curpos)) /* non-intersecting ray */
589     return(0);
590     }
591 greg 2.3 cxset[0] = 0;
592 greg 2.19 raymove(curpos, cxset, sflags, r, scene);
593 schorsch 2.42 return((r->ro != NULL) & (r->ro != &Aftplane));
594 greg 1.1 }
595    
596    
597     static int
598 schorsch 2.45 raymove( /* check for hit as we move */
599     FVECT pos, /* current position, modified herein */
600     OBJECT *cxs, /* checked objects, modified by checkhit */
601     int dirf, /* direction indicators to speed tests */
602 greg 2.64 RAY *r,
603     CUBE *cu
604 schorsch 2.45 )
605 greg 1.1 {
606     int ax;
607     double dt, t;
608    
609     if (istree(cu->cutree)) { /* recurse on subcubes */
610     CUBE cukid;
611 greg 2.64 int br, sgn;
612 greg 1.1
613     cukid.cusize = cu->cusize * 0.5; /* find subcube */
614     VCOPY(cukid.cuorg, cu->cuorg);
615     br = 0;
616     if (pos[0] >= cukid.cuorg[0]+cukid.cusize) {
617     cukid.cuorg[0] += cukid.cusize;
618     br |= 1;
619     }
620     if (pos[1] >= cukid.cuorg[1]+cukid.cusize) {
621     cukid.cuorg[1] += cukid.cusize;
622     br |= 2;
623     }
624     if (pos[2] >= cukid.cuorg[2]+cukid.cusize) {
625     cukid.cuorg[2] += cukid.cusize;
626     br |= 4;
627     }
628     for ( ; ; ) {
629     cukid.cutree = octkid(cu->cutree, br);
630 greg 2.3 if ((ax = raymove(pos,cxs,dirf,r,&cukid)) == RAYHIT)
631 greg 1.1 return(RAYHIT);
632     sgn = 1 << ax;
633 greg 1.11 if (sgn & dirf) /* positive axis? */
634 greg 1.1 if (sgn & br)
635     return(ax); /* overflow */
636     else {
637     cukid.cuorg[ax] += cukid.cusize;
638     br |= sgn;
639     }
640 greg 1.11 else
641     if (sgn & br) {
642     cukid.cuorg[ax] -= cukid.cusize;
643     br &= ~sgn;
644     } else
645     return(ax); /* underflow */
646 greg 1.1 }
647     /*NOTREACHED*/
648     }
649 greg 2.18 if (isfull(cu->cutree)) {
650     if (checkhit(r, cu, cxs))
651     return(RAYHIT);
652     } else if (r->ro == &Aftplane && incube(cu, r->rop))
653 greg 1.1 return(RAYHIT);
654     /* advance to next cube */
655 greg 1.11 if (dirf&0x11) {
656     dt = dirf&1 ? cu->cuorg[0] + cu->cusize : cu->cuorg[0];
657 greg 1.1 t = (dt - pos[0])/r->rdir[0];
658     ax = 0;
659     } else
660     t = FHUGE;
661 greg 1.11 if (dirf&0x22) {
662     dt = dirf&2 ? cu->cuorg[1] + cu->cusize : cu->cuorg[1];
663 greg 1.1 dt = (dt - pos[1])/r->rdir[1];
664     if (dt < t) {
665     t = dt;
666     ax = 1;
667     }
668     }
669 greg 1.11 if (dirf&0x44) {
670     dt = dirf&4 ? cu->cuorg[2] + cu->cusize : cu->cuorg[2];
671 greg 1.1 dt = (dt - pos[2])/r->rdir[2];
672     if (dt < t) {
673     t = dt;
674     ax = 2;
675     }
676     }
677 greg 2.62 VSUM(pos, pos, r->rdir, t);
678 greg 1.1 return(ax);
679     }
680    
681    
682 greg 2.34 static int
683 schorsch 2.45 checkhit( /* check for hit in full cube */
684 greg 2.64 RAY *r,
685 schorsch 2.45 CUBE *cu,
686     OBJECT *cxs
687     )
688 greg 1.1 {
689     OBJECT oset[MAXSET+1];
690    
691     objset(oset, cu->cutree);
692 greg 2.36 checkset(oset, cxs); /* avoid double-checking */
693    
694     (*r->hitf)(oset, r); /* test for hit in set */
695    
696     if (r->robj == OVOID)
697 greg 1.1 return(0); /* no scores yet */
698    
699     return(incube(cu, r->rop)); /* hit OK if in current cube */
700 greg 2.2 }
701    
702    
703 greg 2.34 static void
704 schorsch 2.45 checkset( /* modify checked set and set to check */
705 greg 2.64 OBJECT *os, /* os' = os - cs */
706     OBJECT *cs /* cs' = cs + os */
707 schorsch 2.45 )
708 greg 2.2 {
709     OBJECT cset[MAXCSET+MAXSET+1];
710 greg 2.64 int i, j;
711 greg 2.3 int k;
712 greg 2.2 /* copy os in place, cset <- cs */
713     cset[0] = 0;
714     k = 0;
715     for (i = j = 1; i <= os[0]; i++) {
716     while (j <= cs[0] && cs[j] < os[i])
717     cset[++cset[0]] = cs[j++];
718     if (j > cs[0] || os[i] != cs[j]) { /* object to check */
719     os[++k] = os[i];
720     cset[++cset[0]] = os[i];
721     }
722     }
723 greg 2.3 if (!(os[0] = k)) /* new "to check" set size */
724     return; /* special case */
725 greg 2.2 while (j <= cs[0]) /* get the rest of cs */
726     cset[++cset[0]] = cs[j++];
727 greg 2.3 if (cset[0] > MAXCSET) /* truncate "checked" set if nec. */
728 greg 2.2 cset[0] = MAXCSET;
729 greg 2.3 /* setcopy(cs, cset); */ /* copy cset back to cs */
730     os = cset;
731     for (i = os[0]; i-- >= 0; )
732     *cs++ = *os++;
733 greg 1.1 }