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root/radiance/ray/src/rt/srcsamp.c
Revision: 2.1
Committed: Tue Nov 12 17:10:39 1991 UTC (32 years, 5 months ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 1.7: +0 -0 lines
Log Message:
updated revision number for release 2.0

File Contents

# Content
1 /* Copyright (c) 1991 Regents of the University of California */
2
3 #ifndef lint
4 static char SCCSid[] = "$SunId$ LBL";
5 #endif
6
7 /*
8 * Source sampling routines
9 */
10
11 #include "ray.h"
12
13 #include "source.h"
14
15 #include "random.h"
16
17
18 double
19 nextssamp(r, si) /* compute sample for source, rtn. distance */
20 register RAY *r; /* origin is read, direction is set */
21 register SRCINDEX *si; /* source index (modified to current) */
22 {
23 int cent[3], size[3], parr[2];
24 FVECT vpos;
25 double d;
26 register int i;
27
28 while (++si->sp >= si->np) { /* get next sample */
29 if (++si->sn >= nsources)
30 return(0.0); /* no more */
31 if (source[si->sn].sflags & SSKIP)
32 si->np = 0;
33 else if (srcsizerat <= FTINY)
34 nopart(si, r);
35 else {
36 for (i = si->sn; source[i].sflags & SVIRTUAL;
37 i = source[i].sa.sv.sn)
38 ; /* partition source */
39 (*sfun[source[i].so->otype].of->partit)(si, r);
40 }
41 si->sp = -1;
42 }
43 /* get partition */
44 cent[0] = cent[1] = cent[2] = 0;
45 size[0] = size[1] = size[2] = MAXSPART;
46 parr[0] = 0; parr[1] = si->sp;
47 if (!skipparts(cent, size, parr, si->spt))
48 error(CONSISTENCY, "bad source partition in nextssamp");
49 /* compute sample */
50 if (dstrsrc > FTINY) { /* jitter sample */
51 dimlist[ndims] = si->sn + 8831;
52 dimlist[ndims+1] = si->sp + 3109;
53 d = urand(ilhash(dimlist,ndims+2)+samplendx);
54 if (source[si->sn].sflags & SFLAT) {
55 multisamp(vpos, 2, d);
56 vpos[2] = 0.5;
57 } else
58 multisamp(vpos, 3, d);
59 for (i = 0; i < 3; i++)
60 vpos[i] = dstrsrc * (1. - 2.*vpos[i]) *
61 (double)size[i]/MAXSPART;
62 } else
63 vpos[0] = vpos[1] = vpos[2] = 0.0;
64
65 for (i = 0; i < 3; i++)
66 vpos[i] += (double)cent[i]/MAXSPART;
67 /* compute direction */
68 for (i = 0; i < 3; i++)
69 r->rdir[i] = source[si->sn].sloc[i] +
70 vpos[SU]*source[si->sn].ss[SU][i] +
71 vpos[SV]*source[si->sn].ss[SV][i] +
72 vpos[SW]*source[si->sn].ss[SW][i];
73
74 if (!(source[si->sn].sflags & SDISTANT))
75 for (i = 0; i < 3; i++)
76 r->rdir[i] -= r->rorg[i];
77 /* compute distance */
78 if ((d = normalize(r->rdir)) == 0.0)
79 return(nextssamp(r, si)); /* at source! */
80
81 /* compute sample size */
82 si->dom = source[si->sn].ss2;
83 if (source[si->sn].sflags & SFLAT) {
84 si->dom *= sflatform(si->sn, r->rdir);
85 si->dom *= (double)(size[SU]*size[SV])/(MAXSPART*MAXSPART);
86 } else if (source[si->sn].sflags & SCYL) {
87 si->dom *= scylform(si->sn, r->rdir);
88 si->dom *= (double)size[SU]/MAXSPART;
89 } else {
90 si->dom *= (double)(size[SU]*size[SV]*size[SW]) /
91 (MAXSPART*MAXSPART*MAXSPART) ;
92 }
93 if (source[si->sn].sflags & SDISTANT)
94 return(FHUGE);
95 si->dom /= d*d;
96 return(d); /* sample OK, return distance */
97 }
98
99
100 skipparts(ct, sz, pp, pt) /* skip to requested partition */
101 int ct[3], sz[3]; /* center and size of partition (returned) */
102 register int pp[2]; /* current index, number to skip (modified) */
103 unsigned char *pt; /* partition array */
104 {
105 register int p;
106 /* check this partition */
107 p = spart(pt, pp[0]);
108 pp[0]++;
109 if (p == S0) /* leaf partition */
110 if (pp[1]) {
111 pp[1]--;
112 return(0); /* not there yet */
113 } else
114 return(1); /* we've arrived */
115 /* else check lower */
116 sz[p] >>= 1;
117 ct[p] -= sz[p];
118 if (skipparts(ct, sz, pp, pt))
119 return(1); /* return hit */
120 /* else check upper */
121 ct[p] += sz[p] << 1;
122 if (skipparts(ct, sz, pp, pt))
123 return(1); /* return hit */
124 /* else return to starting position */
125 ct[p] -= sz[p];
126 sz[p] <<= 1;
127 return(0); /* return miss */
128 }
129
130
131 nopart(si, r) /* single source partition */
132 register SRCINDEX *si;
133 RAY *r;
134 {
135 clrpart(si->spt);
136 setpart(si->spt, 0, S0);
137 si->np = 1;
138 }
139
140
141 cylpart(si, r) /* partition a cylinder */
142 SRCINDEX *si;
143 register RAY *r;
144 {
145 double dist2, safedist2, dist2cent, rad2;
146 FVECT v;
147 register SRCREC *sp;
148 int pi;
149 /* first check point location */
150 clrpart(si->spt);
151 sp = source + si->sn;
152 rad2 = 1.365 * DOT(sp->ss[SV],sp->ss[SV]);
153 v[0] = r->rorg[0] - sp->sloc[0];
154 v[1] = r->rorg[1] - sp->sloc[1];
155 v[2] = r->rorg[2] - sp->sloc[2];
156 dist2 = DOT(v,sp->ss[SU]);
157 safedist2 = DOT(sp->ss[SU],sp->ss[SU]);
158 dist2 *= dist2 / safedist2;
159 dist2cent = DOT(v,v);
160 dist2 = dist2cent - dist2;
161 if (dist2 <= rad2) { /* point inside extended cylinder */
162 si->np = 0;
163 return;
164 }
165 safedist2 *= 4.*r->rweight*r->rweight/(srcsizerat*srcsizerat);
166 if (dist2 <= 4.*rad2 || /* point too close to subdivide */
167 dist2cent >= safedist2) { /* or too far */
168 setpart(si->spt, 0, S0);
169 si->np = 1;
170 return;
171 }
172 pi = 0;
173 si->np = cyl_partit(r->rorg, si->spt, &pi, MAXSPART,
174 sp->sloc, sp->ss[SU], safedist2);
175 }
176
177
178 static int
179 cyl_partit(ro, pt, pi, mp, cent, axis, d2) /* slice a cylinder */
180 FVECT ro;
181 unsigned char *pt;
182 register int *pi;
183 int mp;
184 FVECT cent, axis;
185 double d2;
186 {
187 FVECT newct, newax;
188 int npl, npu;
189
190 if (mp < 2 || dist2(ro, cent) >= d2) { /* hit limit? */
191 setpart(pt, *pi, S0);
192 (*pi)++;
193 return(1);
194 }
195 /* subdivide */
196 setpart(pt, *pi, SU);
197 (*pi)++;
198 newax[0] = .5*axis[0];
199 newax[1] = .5*axis[1];
200 newax[2] = .5*axis[2];
201 d2 *= 0.25;
202 /* lower half */
203 newct[0] = cent[0] - newax[0];
204 newct[1] = cent[1] - newax[1];
205 newct[2] = cent[2] - newax[2];
206 npl = cyl_partit(ro, pt, pi, mp/2, newct, newax, d2);
207 /* upper half */
208 newct[0] = cent[0] + newax[0];
209 newct[1] = cent[1] + newax[1];
210 newct[2] = cent[2] + newax[2];
211 npu = cyl_partit(ro, pt, pi, mp/2, newct, newax, d2);
212 /* return total */
213 return(npl + npu);
214 }
215
216
217 flatpart(si, r) /* partition a flat source */
218 register SRCINDEX *si;
219 register RAY *r;
220 {
221 register FLOAT *vp;
222 FVECT v;
223 double du2, dv2;
224 int pi;
225
226 clrpart(si->spt);
227 vp = source[si->sn].sloc;
228 v[0] = r->rorg[0] - vp[0];
229 v[1] = r->rorg[1] - vp[1];
230 v[2] = r->rorg[2] - vp[2];
231 vp = source[si->sn].snorm;
232 if (DOT(v,vp) <= FTINY) { /* behind source */
233 si->np = 0;
234 return;
235 }
236 dv2 = 2.*r->rweight/srcsizerat;
237 dv2 *= dv2;
238 vp = source[si->sn].ss[SU];
239 du2 = dv2 * DOT(vp,vp);
240 vp = source[si->sn].ss[SV];
241 dv2 *= DOT(vp,vp);
242 pi = 0;
243 si->np = flt_partit(r->rorg, si->spt, &pi, MAXSPART,
244 source[si->sn].sloc,
245 source[si->sn].ss[SU], source[si->sn].ss[SV], du2, dv2);
246 }
247
248
249 static int
250 flt_partit(ro, pt, pi, mp, cent, u, v, du2, dv2) /* partition flatty */
251 FVECT ro;
252 unsigned char *pt;
253 register int *pi;
254 int mp;
255 FVECT cent, u, v;
256 double du2, dv2;
257 {
258 double d2;
259 FVECT newct, newax;
260 int npl, npu;
261
262 if (mp < 2 || ((d2 = dist2(ro, cent)) >= du2
263 && d2 >= dv2)) { /* hit limit? */
264 setpart(pt, *pi, S0);
265 (*pi)++;
266 return(1);
267 }
268 if (du2 > dv2) { /* subdivide in U */
269 setpart(pt, *pi, SU);
270 (*pi)++;
271 newax[0] = .5*u[0];
272 newax[1] = .5*u[1];
273 newax[2] = .5*u[2];
274 u = newax;
275 du2 *= 0.25;
276 } else { /* subdivide in V */
277 setpart(pt, *pi, SV);
278 (*pi)++;
279 newax[0] = .5*v[0];
280 newax[1] = .5*v[1];
281 newax[2] = .5*v[2];
282 v = newax;
283 dv2 *= 0.25;
284 }
285 /* lower half */
286 newct[0] = cent[0] - newax[0];
287 newct[1] = cent[1] - newax[1];
288 newct[2] = cent[2] - newax[2];
289 npl = flt_partit(ro, pt, pi, mp/2, newct, u, v, du2, dv2);
290 /* upper half */
291 newct[0] = cent[0] + newax[0];
292 newct[1] = cent[1] + newax[1];
293 newct[2] = cent[2] + newax[2];
294 npu = flt_partit(ro, pt, pi, mp/2, newct, u, v, du2, dv2);
295 /* return total */
296 return(npl + npu);
297 }
298
299
300 double
301 scylform(sn, dir) /* compute cosine for cylinder's projection */
302 int sn;
303 register FVECT dir; /* assume normalized */
304 {
305 register FLOAT *dv;
306 double d;
307
308 dv = source[sn].ss[SU];
309 d = DOT(dir, dv);
310 d *= d / DOT(dv,dv);
311 return(sqrt(1. - d));
312 }