8 |
|
#include "copyright.h" |
9 |
|
|
10 |
|
#include "ray.h" |
11 |
+ |
#include "otypes.h" |
12 |
|
#include "ambient.h" |
13 |
|
#include "source.h" |
14 |
|
#include "func.h" |
15 |
|
#include "bsdf.h" |
16 |
|
#include "random.h" |
17 |
+ |
#include "pmapmat.h" |
18 |
|
|
19 |
|
/* |
20 |
|
* Arguments to this material include optional diffuse colors. |
21 |
|
* String arguments include the BSDF and function files. |
22 |
< |
* A non-zero thickness causes the strange but useful behavior |
22 |
> |
* For the MAT_BSDF type, a non-zero thickness causes the useful behavior |
23 |
|
* of translating transmitted rays this distance beneath the surface |
24 |
|
* (opposite the surface normal) to bypass any intervening geometry. |
25 |
|
* Translation only affects scattered, non-source-directed samples. |
26 |
|
* A non-zero thickness has the further side-effect that an unscattered |
27 |
< |
* (view) ray will pass right through our material if it has any |
28 |
< |
* non-diffuse transmission, making the BSDF surface invisible. This |
29 |
< |
* shows the proxied geometry instead. Thickness has the further |
30 |
< |
* effect of turning off reflection on the hidden side so that rays |
29 |
< |
* heading in the opposite direction pass unimpeded through the BSDF |
27 |
> |
* (view) ray will pass right through our material, making the BSDF |
28 |
> |
* surface invisible and showing the proxied geometry instead. Thickness |
29 |
> |
* has the further effect of turning off reflection on the reverse side so |
30 |
> |
* rays heading in the opposite direction pass unimpeded through the BSDF |
31 |
|
* surface. A paired surface may be placed on the opposide side of |
32 |
|
* the detail geometry, less than this thickness away, if a two-way |
33 |
|
* proxy is desired. Note that the sign of the thickness is important. |
36 |
|
* hides geometry in front of the surface when rays hit from behind, |
37 |
|
* and applies only the transmission and backside reflectance properties. |
38 |
|
* Reflection is ignored on the hidden side, as those rays pass through. |
39 |
+ |
* For the MAT_ABSDF type, we check for a strong "through" component. |
40 |
+ |
* Such a component will cause direct rays to pass through unscattered. |
41 |
+ |
* A separate test prevents over-counting by dropping samples that are |
42 |
+ |
* too close to this "through" direction. BSDFs with such a through direction |
43 |
+ |
* will also have a view component, meaning they are somewhat see-through. |
44 |
+ |
* A MAT_BSDF type with zero thickness behaves the same as a MAT_ABSDF |
45 |
+ |
* type with no strong through component. |
46 |
|
* The "up" vector for the BSDF is given by three variables, defined |
47 |
|
* (along with the thickness) by the named function file, or '.' if none. |
48 |
|
* Together with the surface normal, this defines the local coordinate |
50 |
|
* We do not reorient the surface, so if the BSDF has no back-side |
51 |
|
* reflectance and none is given in the real arguments, a BSDF surface |
52 |
|
* with zero thickness will appear black when viewed from behind |
53 |
< |
* unless backface visibility is off. |
53 |
> |
* unless backface visibility is on, when it becomes invisible. |
54 |
|
* The diffuse arguments are added to components in the BSDF file, |
55 |
|
* not multiplied. However, patterns affect this material as a multiplier |
56 |
|
* on everything except non-diffuse reflection. |
57 |
|
* |
58 |
+ |
* Arguments for MAT_ABSDF are: |
59 |
+ |
* 5+ BSDFfile ux uy uz funcfile transform |
60 |
+ |
* 0 |
61 |
+ |
* 0|3|6|9 rdf gdf bdf |
62 |
+ |
* rdb gdb bdb |
63 |
+ |
* rdt gdt bdt |
64 |
+ |
* |
65 |
|
* Arguments for MAT_BSDF are: |
66 |
|
* 6+ thick BSDFfile ux uy uz funcfile transform |
67 |
|
* 0 |
73 |
|
/* |
74 |
|
* Note that our reverse ray-tracing process means that the positions |
75 |
|
* of incoming and outgoing vectors may be reversed in our calls |
76 |
< |
* to the BSDF library. This is fine, since the bidirectional nature |
76 |
> |
* to the BSDF library. This is usually fine, since the bidirectional nature |
77 |
|
* of the BSDF (that's what the 'B' stands for) means it all works out. |
78 |
|
*/ |
79 |
|
|
86 |
|
RREAL toloc[3][3]; /* world to local BSDF coords */ |
87 |
|
RREAL fromloc[3][3]; /* local BSDF coords to world */ |
88 |
|
double thick; /* surface thickness */ |
89 |
+ |
SCOLOR cthru; /* "through" component for MAT_ABSDF */ |
90 |
+ |
SCOLOR cthru_surr; /* surround for "through" component */ |
91 |
|
SDData *sd; /* loaded BSDF data */ |
92 |
< |
COLOR runsamp; /* BSDF hemispherical reflection */ |
93 |
< |
COLOR rdiff; /* added diffuse reflection */ |
94 |
< |
COLOR tunsamp; /* BSDF hemispherical transmission */ |
95 |
< |
COLOR tdiff; /* added diffuse transmission */ |
92 |
> |
SCOLOR rdiff; /* diffuse reflection */ |
93 |
> |
SCOLOR runsamp; /* BSDF hemispherical reflection */ |
94 |
> |
SCOLOR tdiff; /* diffuse transmission */ |
95 |
> |
SCOLOR tunsamp; /* BSDF hemispherical transmission */ |
96 |
|
} BSDFDAT; /* BSDF material data */ |
97 |
|
|
98 |
< |
#define cvt_sdcolor(cv, svp) ccy2rgb(&(svp)->spec, (svp)->cieY, cv) |
98 |
> |
#define cvt_sdcolor(scv, svp) ccy2scolor(&(svp)->spec, (svp)->cieY, scv) |
99 |
|
|
100 |
< |
/* Jitter ray sample according to projected solid angle and specjitter */ |
100 |
> |
typedef struct { |
101 |
> |
double vy; /* brightness (for sorting) */ |
102 |
> |
FVECT tdir; /* through sample direction (normalized) */ |
103 |
> |
SCOLOR vcol; /* BTDF color */ |
104 |
> |
} PEAKSAMP; /* BTDF peak sample */ |
105 |
> |
|
106 |
> |
/* Comparison function to put near-peak values in descending order */ |
107 |
> |
static int |
108 |
> |
cmp_psamp(const void *p1, const void *p2) |
109 |
> |
{ |
110 |
> |
double diff = (*(const PEAKSAMP *)p1).vy - (*(const PEAKSAMP *)p2).vy; |
111 |
> |
if (diff > 0) return(-1); |
112 |
> |
if (diff < 0) return(1); |
113 |
> |
return(0); |
114 |
> |
} |
115 |
> |
|
116 |
> |
/* Compute "through" component color for MAT_ABSDF */ |
117 |
|
static void |
118 |
< |
bsdf_jitter(FVECT vres, BSDFDAT *ndp, int domax) |
118 |
> |
compute_through(BSDFDAT *ndp) |
119 |
|
{ |
120 |
< |
double sr_psa = ndp->sr_vpsa[domax]; |
120 |
> |
#define NDIR2CHECK 29 |
121 |
> |
static const float dir2check[NDIR2CHECK][2] = { |
122 |
> |
{0, 0}, {-0.6, 0}, {0, 0.6}, |
123 |
> |
{0, -0.6}, {0.6, 0}, {-0.6, 0.6}, |
124 |
> |
{-0.6, -0.6}, {0.6, 0.6}, {0.6, -0.6}, |
125 |
> |
{-1.2, 0}, {0, 1.2}, {0, -1.2}, |
126 |
> |
{1.2, 0}, {-1.2, 1.2}, {-1.2, -1.2}, |
127 |
> |
{1.2, 1.2}, {1.2, -1.2}, {-1.8, 0}, |
128 |
> |
{0, 1.8}, {0, -1.8}, {1.8, 0}, |
129 |
> |
{-1.8, 1.8}, {-1.8, -1.8}, {1.8, 1.8}, |
130 |
> |
{1.8, -1.8}, {-2.4, 0}, {0, 2.4}, |
131 |
> |
{0, -2.4}, {2.4, 0}, |
132 |
> |
}; |
133 |
> |
PEAKSAMP psamp[NDIR2CHECK]; |
134 |
> |
SDSpectralDF *dfp; |
135 |
> |
FVECT pdir; |
136 |
> |
double tomega, srchrad; |
137 |
> |
double tomsum, tomsurr; |
138 |
> |
SCOLOR vpeak, vsurr, btdiff; |
139 |
> |
double vypeak; |
140 |
> |
int i, ns; |
141 |
> |
SDError ec; |
142 |
|
|
143 |
+ |
if (ndp->pr->rod > 0) |
144 |
+ |
dfp = (ndp->sd->tf != NULL) ? ndp->sd->tf : ndp->sd->tb; |
145 |
+ |
else |
146 |
+ |
dfp = (ndp->sd->tb != NULL) ? ndp->sd->tb : ndp->sd->tf; |
147 |
+ |
|
148 |
+ |
if (dfp == NULL) |
149 |
+ |
return; /* no specular transmission */ |
150 |
+ |
if (sintens(ndp->pr->pcol) <= FTINY) |
151 |
+ |
return; /* pattern is black, here */ |
152 |
+ |
srchrad = sqrt(dfp->minProjSA); /* else evaluate peak */ |
153 |
+ |
for (i = 0; i < NDIR2CHECK; i++) { |
154 |
+ |
SDValue sv; |
155 |
+ |
psamp[i].tdir[0] = -ndp->vray[0] + dir2check[i][0]*srchrad; |
156 |
+ |
psamp[i].tdir[1] = -ndp->vray[1] + dir2check[i][1]*srchrad; |
157 |
+ |
psamp[i].tdir[2] = -ndp->vray[2]; |
158 |
+ |
normalize(psamp[i].tdir); |
159 |
+ |
ec = SDevalBSDF(&sv, ndp->vray, psamp[i].tdir, ndp->sd); |
160 |
+ |
if (ec) |
161 |
+ |
goto baderror; |
162 |
+ |
cvt_sdcolor(psamp[i].vcol, &sv); |
163 |
+ |
psamp[i].vy = sv.cieY; |
164 |
+ |
} |
165 |
+ |
qsort(psamp, NDIR2CHECK, sizeof(PEAKSAMP), cmp_psamp); |
166 |
+ |
if (psamp[0].vy <= FTINY) |
167 |
+ |
return; /* zero BTDF here */ |
168 |
+ |
scolorblack(vpeak); |
169 |
+ |
scolorblack(vsurr); |
170 |
+ |
vypeak = tomsum = tomsurr = 0; /* combine top unique values */ |
171 |
+ |
ns = 0; |
172 |
+ |
for (i = 0; i < NDIR2CHECK; i++) { |
173 |
+ |
if (i && psamp[i].vy == psamp[i-1].vy) |
174 |
+ |
continue; /* assume duplicate sample */ |
175 |
+ |
|
176 |
+ |
ec = SDsizeBSDF(&tomega, ndp->vray, psamp[i].tdir, |
177 |
+ |
SDqueryMin, ndp->sd); |
178 |
+ |
if (ec) |
179 |
+ |
goto baderror; |
180 |
+ |
|
181 |
+ |
scalescolor(psamp[i].vcol, tomega); |
182 |
+ |
/* not part of peak? */ |
183 |
+ |
if (tomega > 1.5*dfp->minProjSA || |
184 |
+ |
vypeak > 8.*psamp[i].vy*ns) { |
185 |
+ |
if (!i) return; /* abort */ |
186 |
+ |
saddscolor(vsurr, psamp[i].vcol); |
187 |
+ |
tomsurr += tomega; |
188 |
+ |
continue; |
189 |
+ |
} |
190 |
+ |
saddscolor(vpeak, psamp[i].vcol); |
191 |
+ |
tomsum += tomega; |
192 |
+ |
vypeak += psamp[i].vy; |
193 |
+ |
++ns; |
194 |
+ |
} |
195 |
+ |
if (tomsurr < 0.2*tomsum) /* insufficient surround? */ |
196 |
+ |
return; |
197 |
+ |
scalescolor(vsurr, 1./tomsurr); /* surround is avg. BTDF */ |
198 |
+ |
if (ndp->vray[2] > 0) /* get diffuse BTDF */ |
199 |
+ |
cvt_sdcolor(btdiff, &ndp->sd->tLambFront); |
200 |
+ |
else |
201 |
+ |
cvt_sdcolor(btdiff, &ndp->sd->tLambBack); |
202 |
+ |
scalescolor(btdiff, (1./PI)); |
203 |
+ |
for (i = NCSAMP; i--; ) { /* remove diffuse contrib. */ |
204 |
+ |
if ((vpeak[i] -= tomsum*btdiff[i]) < 0) |
205 |
+ |
vpeak[i] = 0; |
206 |
+ |
if ((vsurr[i] -= btdiff[i]) < 0) |
207 |
+ |
vsurr[i] = 0; |
208 |
+ |
} |
209 |
+ |
if (pbright(vpeak) < .0005) /* < 0.05% specular? */ |
210 |
+ |
return; |
211 |
+ |
smultscolor(vsurr, ndp->pr->pcol); /* modify by pattern */ |
212 |
+ |
smultscolor(vpeak, ndp->pr->pcol); |
213 |
+ |
copyscolor(ndp->cthru_surr, vsurr); |
214 |
+ |
copyscolor(ndp->cthru, vpeak); |
215 |
+ |
return; |
216 |
+ |
baderror: |
217 |
+ |
objerror(ndp->mp, USER, transSDError(ec)); |
218 |
+ |
#undef NDIR2CHECK |
219 |
+ |
} |
220 |
+ |
|
221 |
+ |
/* Jitter ray sample according to projected solid angle and specjitter */ |
222 |
+ |
static void |
223 |
+ |
bsdf_jitter(FVECT vres, BSDFDAT *ndp, double sr_psa) |
224 |
+ |
{ |
225 |
|
VCOPY(vres, ndp->vray); |
226 |
|
if (specjitter < 1.) |
227 |
|
sr_psa *= specjitter; |
232 |
|
normalize(vres); |
233 |
|
} |
234 |
|
|
235 |
< |
/* Evaluate BSDF for direct component, returning true if OK to proceed */ |
235 |
> |
/* Get BSDF specular for direct component, returning true if OK to proceed */ |
236 |
|
static int |
237 |
< |
direct_bsdf_OK(COLOR cval, FVECT ldir, double omega, BSDFDAT *ndp) |
237 |
> |
direct_specular_OK(SCOLOR scval, FVECT ldir, double omega, BSDFDAT *ndp) |
238 |
|
{ |
239 |
< |
int nsamp, ok = 0; |
240 |
< |
FVECT vsrc, vsmp, vjit; |
241 |
< |
double tomega; |
242 |
< |
double sf, sd[2]; |
243 |
< |
COLOR csmp; |
239 |
> |
int nsamp = 1; |
240 |
> |
int scnt = 0; |
241 |
> |
FVECT vsrc, vjit; |
242 |
> |
double tomega, tomega2; |
243 |
> |
double tsr, sd[2]; |
244 |
> |
SCOLOR csmp, cdiff; |
245 |
> |
double diffY; |
246 |
|
SDValue sv; |
247 |
|
SDError ec; |
248 |
|
int i; |
249 |
+ |
/* in case we fail */ |
250 |
+ |
scolorblack(scval); |
251 |
|
/* transform source direction */ |
252 |
|
if (SDmapDir(vsrc, ndp->toloc, ldir) != SDEnone) |
253 |
|
return(0); |
254 |
|
/* check indirect over-counting */ |
255 |
< |
if (ndp->thick != 0 && ndp->pr->crtype & (SPECULAR|AMBIENT) |
256 |
< |
&& vsrc[2] > 0 ^ ndp->vray[2] > 0) { |
257 |
< |
double dx = vsrc[0] + ndp->vray[0]; |
258 |
< |
double dy = vsrc[1] + ndp->vray[1]; |
259 |
< |
if (dx*dx + dy*dy <= omega*(1./PI)) |
260 |
< |
return(0); |
255 |
> |
if ((vsrc[2] > 0) ^ (ndp->vray[2] > 0) && sintens(ndp->cthru) > FTINY) { |
256 |
> |
double dx = vsrc[0] + ndp->vray[0]; |
257 |
> |
double dy = vsrc[1] + ndp->vray[1]; |
258 |
> |
SDSpectralDF *dfp = (ndp->pr->rod > 0) ? |
259 |
> |
((ndp->sd->tf != NULL) ? ndp->sd->tf : ndp->sd->tb) : |
260 |
> |
((ndp->sd->tb != NULL) ? ndp->sd->tb : ndp->sd->tf) ; |
261 |
> |
|
262 |
> |
tomega = omega*fabs(vsrc[2]); |
263 |
> |
if (dx*dx + dy*dy <= (2.5*4./PI)*(tomega + dfp->minProjSA + |
264 |
> |
2.*sqrt(tomega*dfp->minProjSA))) { |
265 |
> |
if (sintens(ndp->cthru_surr) <= FTINY) |
266 |
> |
return(0); |
267 |
> |
copyscolor(scval, ndp->cthru_surr); |
268 |
> |
return(1); /* return non-zero surround BTDF */ |
269 |
> |
} |
270 |
|
} |
271 |
< |
/* get local BSDF resolution */ |
271 |
> |
/* will discount diffuse portion */ |
272 |
> |
switch ((vsrc[2] > 0)<<1 | (ndp->vray[2] > 0)) { |
273 |
> |
case 3: |
274 |
> |
if (ndp->sd->rf == NULL) |
275 |
> |
return(0); /* all diffuse */ |
276 |
> |
sv = ndp->sd->rLambFront; |
277 |
> |
break; |
278 |
> |
case 0: |
279 |
> |
if (ndp->sd->rb == NULL) |
280 |
> |
return(0); /* all diffuse */ |
281 |
> |
sv = ndp->sd->rLambBack; |
282 |
> |
break; |
283 |
> |
case 1: |
284 |
> |
if ((ndp->sd->tf == NULL) & (ndp->sd->tb == NULL)) |
285 |
> |
return(0); /* all diffuse */ |
286 |
> |
sv = ndp->sd->tLambFront; |
287 |
> |
break; |
288 |
> |
case 2: |
289 |
> |
if ((ndp->sd->tf == NULL) & (ndp->sd->tb == NULL)) |
290 |
> |
return(0); /* all diffuse */ |
291 |
> |
sv = ndp->sd->tLambBack; |
292 |
> |
break; |
293 |
> |
} |
294 |
> |
if (sv.cieY > FTINY) { |
295 |
> |
diffY = sv.cieY *= 1./PI; |
296 |
> |
cvt_sdcolor(cdiff, &sv); |
297 |
> |
} else { |
298 |
> |
diffY = 0; |
299 |
> |
scolorblack(cdiff); |
300 |
> |
} |
301 |
|
ec = SDsizeBSDF(&tomega, ndp->vray, vsrc, SDqueryMin, ndp->sd); |
302 |
|
if (ec) |
303 |
|
goto baderror; |
304 |
< |
/* assign number of samples */ |
305 |
< |
if (tomega <= omega*.02) |
306 |
< |
nsamp = 50; |
307 |
< |
else |
308 |
< |
nsamp = 2.*omega/tomega + 1.; |
309 |
< |
sf = sqrt(omega); |
132 |
< |
setcolor(cval, .0, .0, .0); /* sample our source area */ |
304 |
> |
/* check if sampling BSDF */ |
305 |
> |
if ((tsr = sqrt(tomega)) > 0) { |
306 |
> |
nsamp = 4.*specjitter*ndp->pr->rweight + .5; |
307 |
> |
nsamp += !nsamp; |
308 |
> |
} |
309 |
> |
/* jitter to fuzz BSDF cells */ |
310 |
|
for (i = nsamp; i--; ) { |
311 |
< |
VCOPY(vsmp, vsrc); /* jitter query directions */ |
135 |
< |
if (nsamp > 1) { |
136 |
< |
multisamp(sd, 2, (i + frandom())/(double)nsamp); |
137 |
< |
vsmp[0] += (sd[0] - .5)*sf; |
138 |
< |
vsmp[1] += (sd[1] - .5)*sf; |
139 |
< |
if (normalize(vsmp) == 0) { |
140 |
< |
--nsamp; |
141 |
< |
continue; |
142 |
< |
} |
143 |
< |
} |
144 |
< |
bsdf_jitter(vjit, ndp, 0); |
311 |
> |
bsdf_jitter(vjit, ndp, tsr); |
312 |
|
/* compute BSDF */ |
313 |
< |
ec = SDevalBSDF(&sv, vjit, vsmp, ndp->sd); |
313 |
> |
ec = SDevalBSDF(&sv, vjit, vsrc, ndp->sd); |
314 |
|
if (ec) |
315 |
|
goto baderror; |
316 |
< |
if (sv.cieY <= FTINY) /* worth using? */ |
317 |
< |
continue; |
316 |
> |
if (sv.cieY - diffY <= FTINY) |
317 |
> |
continue; /* no specular part */ |
318 |
> |
/* check for variable resolution */ |
319 |
> |
ec = SDsizeBSDF(&tomega2, vjit, vsrc, SDqueryMin, ndp->sd); |
320 |
> |
if (ec) |
321 |
> |
goto baderror; |
322 |
> |
if (tomega2 < .12*tomega) |
323 |
> |
continue; /* not safe to include */ |
324 |
|
cvt_sdcolor(csmp, &sv); |
325 |
< |
addcolor(cval, csmp); /* average it in */ |
326 |
< |
++ok; |
325 |
> |
saddscolor(scval, csmp); |
326 |
> |
++scnt; |
327 |
|
} |
328 |
< |
sf = 1./(double)nsamp; |
329 |
< |
scalecolor(cval, sf); |
330 |
< |
return(ok); |
328 |
> |
if (!scnt) /* no valid specular samples? */ |
329 |
> |
return(0); |
330 |
> |
|
331 |
> |
scalescolor(scval, 1./scnt); /* weighted average BSDF */ |
332 |
> |
/* subtract diffuse contribution */ |
333 |
> |
for (i = NCSAMP*(diffY > FTINY); i--; ) |
334 |
> |
if ((scval[i] -= cdiff[i]) < 0) |
335 |
> |
scval[i] = 0; |
336 |
> |
return(1); |
337 |
|
baderror: |
338 |
|
objerror(ndp->mp, USER, transSDError(ec)); |
339 |
+ |
return(0); /* gratis return */ |
340 |
|
} |
341 |
|
|
342 |
|
/* Compute source contribution for BSDF (reflected & transmitted) */ |
343 |
|
static void |
344 |
|
dir_bsdf( |
345 |
< |
COLOR cval, /* returned coefficient */ |
345 |
> |
SCOLOR scval, /* returned coefficient */ |
346 |
|
void *nnp, /* material data */ |
347 |
|
FVECT ldir, /* light source direction */ |
348 |
|
double omega /* light source size */ |
351 |
|
BSDFDAT *np = (BSDFDAT *)nnp; |
352 |
|
double ldot; |
353 |
|
double dtmp; |
354 |
< |
COLOR ctmp; |
354 |
> |
SCOLOR sctmp; |
355 |
|
|
356 |
< |
setcolor(cval, .0, .0, .0); |
356 |
> |
scolorblack(scval); |
357 |
|
|
358 |
|
ldot = DOT(np->pnorm, ldir); |
359 |
|
if ((-FTINY <= ldot) & (ldot <= FTINY)) |
360 |
|
return; |
361 |
|
|
362 |
< |
if (ldot > 0 && bright(np->rdiff) > FTINY) { |
362 |
> |
if (ldot > 0 && sintens(np->rdiff) > FTINY) { |
363 |
|
/* |
364 |
< |
* Compute added diffuse reflected component. |
364 |
> |
* Compute diffuse reflected component |
365 |
|
*/ |
366 |
< |
copycolor(ctmp, np->rdiff); |
366 |
> |
copyscolor(sctmp, np->rdiff); |
367 |
|
dtmp = ldot * omega * (1./PI); |
368 |
< |
scalecolor(ctmp, dtmp); |
369 |
< |
addcolor(cval, ctmp); |
368 |
> |
scalescolor(sctmp, dtmp); |
369 |
> |
saddscolor(scval, sctmp); |
370 |
|
} |
371 |
< |
if (ldot < 0 && bright(np->tdiff) > FTINY) { |
371 |
> |
if (ldot < 0 && sintens(np->tdiff) > FTINY) { |
372 |
|
/* |
373 |
< |
* Compute added diffuse transmission. |
373 |
> |
* Compute diffuse transmission |
374 |
|
*/ |
375 |
< |
copycolor(ctmp, np->tdiff); |
376 |
< |
dtmp = -ldot * omega * (1.0/PI); |
377 |
< |
scalecolor(ctmp, dtmp); |
378 |
< |
addcolor(cval, ctmp); |
375 |
> |
copyscolor(sctmp, np->tdiff); |
376 |
> |
dtmp = -ldot * omega * (1./PI); |
377 |
> |
scalescolor(sctmp, dtmp); |
378 |
> |
saddscolor(scval, sctmp); |
379 |
|
} |
380 |
+ |
if (ambRayInPmap(np->pr)) |
381 |
+ |
return; /* specular already in photon map */ |
382 |
|
/* |
383 |
< |
* Compute scattering coefficient using BSDF. |
383 |
> |
* Compute specular scattering coefficient using BSDF |
384 |
|
*/ |
385 |
< |
if (!direct_bsdf_OK(ctmp, ldir, omega, np)) |
385 |
> |
if (!direct_specular_OK(sctmp, ldir, omega, np)) |
386 |
|
return; |
387 |
< |
if (ldot > 0) { /* pattern only diffuse reflection */ |
388 |
< |
COLOR ctmp1, ctmp2; |
207 |
< |
dtmp = (np->pr->rod > 0) ? np->sd->rLambFront.cieY |
208 |
< |
: np->sd->rLambBack.cieY; |
209 |
< |
/* diffuse fraction */ |
210 |
< |
dtmp /= PI * bright(ctmp); |
211 |
< |
copycolor(ctmp2, np->pr->pcol); |
212 |
< |
scalecolor(ctmp2, dtmp); |
213 |
< |
setcolor(ctmp1, 1.-dtmp, 1.-dtmp, 1.-dtmp); |
214 |
< |
addcolor(ctmp1, ctmp2); |
215 |
< |
multcolor(ctmp, ctmp1); /* apply derated pattern */ |
216 |
< |
dtmp = ldot * omega; |
217 |
< |
} else { /* full pattern on transmission */ |
218 |
< |
multcolor(ctmp, np->pr->pcol); |
387 |
> |
if (ldot < 0) { /* pattern for specular transmission */ |
388 |
> |
smultscolor(sctmp, np->pr->pcol); |
389 |
|
dtmp = -ldot * omega; |
390 |
< |
} |
391 |
< |
scalecolor(ctmp, dtmp); |
392 |
< |
addcolor(cval, ctmp); |
390 |
> |
} else |
391 |
> |
dtmp = ldot * omega; |
392 |
> |
scalescolor(sctmp, dtmp); |
393 |
> |
saddscolor(scval, sctmp); |
394 |
|
} |
395 |
|
|
396 |
|
/* Compute source contribution for BSDF (reflected only) */ |
397 |
|
static void |
398 |
|
dir_brdf( |
399 |
< |
COLOR cval, /* returned coefficient */ |
399 |
> |
SCOLOR scval, /* returned coefficient */ |
400 |
|
void *nnp, /* material data */ |
401 |
|
FVECT ldir, /* light source direction */ |
402 |
|
double omega /* light source size */ |
405 |
|
BSDFDAT *np = (BSDFDAT *)nnp; |
406 |
|
double ldot; |
407 |
|
double dtmp; |
408 |
< |
COLOR ctmp, ctmp1, ctmp2; |
408 |
> |
SCOLOR sctmp; |
409 |
|
|
410 |
< |
setcolor(cval, .0, .0, .0); |
410 |
> |
scolorblack(scval); |
411 |
|
|
412 |
|
ldot = DOT(np->pnorm, ldir); |
413 |
|
|
414 |
|
if (ldot <= FTINY) |
415 |
|
return; |
416 |
|
|
417 |
< |
if (bright(np->rdiff) > FTINY) { |
417 |
> |
if (sintens(np->rdiff) > FTINY) { |
418 |
|
/* |
419 |
< |
* Compute added diffuse reflected component. |
419 |
> |
* Compute diffuse reflected component |
420 |
|
*/ |
421 |
< |
copycolor(ctmp, np->rdiff); |
421 |
> |
copyscolor(sctmp, np->rdiff); |
422 |
|
dtmp = ldot * omega * (1./PI); |
423 |
< |
scalecolor(ctmp, dtmp); |
424 |
< |
addcolor(cval, ctmp); |
423 |
> |
scalescolor(sctmp, dtmp); |
424 |
> |
saddscolor(scval, sctmp); |
425 |
|
} |
426 |
+ |
if (ambRayInPmap(np->pr)) |
427 |
+ |
return; /* specular already in photon map */ |
428 |
|
/* |
429 |
< |
* Compute reflection coefficient using BSDF. |
429 |
> |
* Compute specular reflection coefficient using BSDF |
430 |
|
*/ |
431 |
< |
if (!direct_bsdf_OK(ctmp, ldir, omega, np)) |
431 |
> |
if (!direct_specular_OK(sctmp, ldir, omega, np)) |
432 |
|
return; |
260 |
– |
/* pattern only diffuse reflection */ |
261 |
– |
dtmp = (np->pr->rod > 0) ? np->sd->rLambFront.cieY |
262 |
– |
: np->sd->rLambBack.cieY; |
263 |
– |
dtmp /= PI * bright(ctmp); /* diffuse fraction */ |
264 |
– |
copycolor(ctmp2, np->pr->pcol); |
265 |
– |
scalecolor(ctmp2, dtmp); |
266 |
– |
setcolor(ctmp1, 1.-dtmp, 1.-dtmp, 1.-dtmp); |
267 |
– |
addcolor(ctmp1, ctmp2); |
268 |
– |
multcolor(ctmp, ctmp1); /* apply derated pattern */ |
433 |
|
dtmp = ldot * omega; |
434 |
< |
scalecolor(ctmp, dtmp); |
435 |
< |
addcolor(cval, ctmp); |
434 |
> |
scalescolor(sctmp, dtmp); |
435 |
> |
saddscolor(scval, sctmp); |
436 |
|
} |
437 |
|
|
438 |
|
/* Compute source contribution for BSDF (transmitted only) */ |
439 |
|
static void |
440 |
|
dir_btdf( |
441 |
< |
COLOR cval, /* returned coefficient */ |
441 |
> |
SCOLOR scval, /* returned coefficient */ |
442 |
|
void *nnp, /* material data */ |
443 |
|
FVECT ldir, /* light source direction */ |
444 |
|
double omega /* light source size */ |
447 |
|
BSDFDAT *np = (BSDFDAT *)nnp; |
448 |
|
double ldot; |
449 |
|
double dtmp; |
450 |
< |
COLOR ctmp; |
450 |
> |
SCOLOR sctmp; |
451 |
|
|
452 |
< |
setcolor(cval, .0, .0, .0); |
452 |
> |
scolorblack(scval); |
453 |
|
|
454 |
|
ldot = DOT(np->pnorm, ldir); |
455 |
|
|
456 |
|
if (ldot >= -FTINY) |
457 |
|
return; |
458 |
|
|
459 |
< |
if (bright(np->tdiff) > FTINY) { |
459 |
> |
if (sintens(np->tdiff) > FTINY) { |
460 |
|
/* |
461 |
< |
* Compute added diffuse transmission. |
461 |
> |
* Compute diffuse transmission |
462 |
|
*/ |
463 |
< |
copycolor(ctmp, np->tdiff); |
464 |
< |
dtmp = -ldot * omega * (1.0/PI); |
465 |
< |
scalecolor(ctmp, dtmp); |
466 |
< |
addcolor(cval, ctmp); |
463 |
> |
copyscolor(sctmp, np->tdiff); |
464 |
> |
dtmp = -ldot * omega * (1./PI); |
465 |
> |
scalescolor(sctmp, dtmp); |
466 |
> |
saddscolor(scval, sctmp); |
467 |
|
} |
468 |
+ |
if (ambRayInPmap(np->pr)) |
469 |
+ |
return; /* specular already in photon map */ |
470 |
|
/* |
471 |
< |
* Compute scattering coefficient using BSDF. |
471 |
> |
* Compute specular scattering coefficient using BSDF |
472 |
|
*/ |
473 |
< |
if (!direct_bsdf_OK(ctmp, ldir, omega, np)) |
473 |
> |
if (!direct_specular_OK(sctmp, ldir, omega, np)) |
474 |
|
return; |
475 |
|
/* full pattern on transmission */ |
476 |
< |
multcolor(ctmp, np->pr->pcol); |
476 |
> |
smultscolor(sctmp, np->pr->pcol); |
477 |
|
dtmp = -ldot * omega; |
478 |
< |
scalecolor(ctmp, dtmp); |
479 |
< |
addcolor(cval, ctmp); |
478 |
> |
scalescolor(sctmp, dtmp); |
479 |
> |
saddscolor(scval, sctmp); |
480 |
|
} |
481 |
|
|
482 |
|
/* Sample separate BSDF component */ |
483 |
|
static int |
484 |
< |
sample_sdcomp(BSDFDAT *ndp, SDComponent *dcp, int usepat) |
484 |
> |
sample_sdcomp(BSDFDAT *ndp, SDComponent *dcp, int xmit) |
485 |
|
{ |
486 |
< |
int nstarget = 1; |
487 |
< |
int nsent; |
488 |
< |
SDError ec; |
489 |
< |
SDValue bsv; |
490 |
< |
double xrand; |
491 |
< |
FVECT vsmp; |
492 |
< |
RAY sr; |
486 |
> |
const int hasthru = (xmit && |
487 |
> |
!(ndp->pr->crtype & (SPECULAR|AMBIENT)) |
488 |
> |
&& sintens(ndp->cthru) > FTINY); |
489 |
> |
int nstarget = 1; |
490 |
> |
int nsent = 0; |
491 |
> |
int n; |
492 |
> |
SDError ec; |
493 |
> |
SDValue bsv; |
494 |
> |
double xrand; |
495 |
> |
FVECT vsmp, vinc; |
496 |
> |
RAY sr; |
497 |
|
/* multiple samples? */ |
498 |
|
if (specjitter > 1.5) { |
499 |
|
nstarget = specjitter*ndp->pr->rweight + .5; |
500 |
< |
if (nstarget < 1) |
331 |
< |
nstarget = 1; |
500 |
> |
nstarget += !nstarget; |
501 |
|
} |
502 |
|
/* run through our samples */ |
503 |
< |
for (nsent = 0; nsent < nstarget; nsent++) { |
504 |
< |
if (nstarget == 1) /* stratify random variable */ |
503 |
> |
for (n = 0; n < nstarget; n++) { |
504 |
> |
if (nstarget == 1) { /* stratify random variable */ |
505 |
|
xrand = urand(ilhash(dimlist,ndims)+samplendx); |
506 |
< |
else |
507 |
< |
xrand = (nsent + frandom())/(double)nstarget; |
506 |
> |
if (specjitter < 1.) |
507 |
> |
xrand = .5 + specjitter*(xrand-.5); |
508 |
> |
} else { |
509 |
> |
xrand = (n + frandom())/(double)nstarget; |
510 |
> |
} |
511 |
|
SDerrorDetail[0] = '\0'; /* sample direction & coef. */ |
512 |
< |
bsdf_jitter(vsmp, ndp, 0); |
512 |
> |
bsdf_jitter(vsmp, ndp, ndp->sr_vpsa[0]); |
513 |
> |
VCOPY(vinc, vsmp); /* to compare after */ |
514 |
|
ec = SDsampComponent(&bsv, vsmp, xrand, dcp); |
515 |
|
if (ec) |
516 |
|
objerror(ndp->mp, USER, transSDError(ec)); |
517 |
|
if (bsv.cieY <= FTINY) /* zero component? */ |
518 |
|
break; |
519 |
< |
/* map vector to world */ |
519 |
> |
if (hasthru) { /* check for view ray */ |
520 |
> |
double dx = vinc[0] + vsmp[0]; |
521 |
> |
double dy = vinc[1] + vsmp[1]; |
522 |
> |
if (dx*dx + dy*dy <= ndp->sr_vpsa[0]*ndp->sr_vpsa[0]) |
523 |
> |
continue; /* exclude view sample */ |
524 |
> |
} |
525 |
> |
/* map non-view sample->world */ |
526 |
|
if (SDmapDir(sr.rdir, ndp->fromloc, vsmp) != SDEnone) |
527 |
|
break; |
528 |
|
/* spawn a specular ray */ |
529 |
|
if (nstarget > 1) |
530 |
|
bsv.cieY /= (double)nstarget; |
531 |
|
cvt_sdcolor(sr.rcoef, &bsv); /* use sample color */ |
532 |
< |
if (usepat) /* apply pattern? */ |
533 |
< |
multcolor(sr.rcoef, ndp->pr->pcol); |
534 |
< |
if (rayorigin(&sr, SPECULAR, ndp->pr, sr.rcoef) < 0) { |
535 |
< |
if (maxdepth > 0) |
536 |
< |
break; |
537 |
< |
continue; /* Russian roulette victim */ |
532 |
> |
if (xmit) /* apply pattern on transmit */ |
533 |
> |
smultscolor(sr.rcoef, ndp->pr->pcol); |
534 |
> |
if (rayorigin(&sr, xmit ? TSPECULAR : RSPECULAR, ndp->pr, sr.rcoef) < 0) { |
535 |
> |
if (!n & (nstarget > 1)) { |
536 |
> |
n = nstarget; /* avoid infinitue loop */ |
537 |
> |
nstarget = nstarget*sr.rweight/(minweight + 1e-20); |
538 |
> |
if (n == nstarget) break; |
539 |
> |
n = -1; /* moved target */ |
540 |
> |
} |
541 |
> |
continue; /* try again */ |
542 |
|
} |
543 |
< |
/* need to offset origin? */ |
361 |
< |
if (ndp->thick != 0 && ndp->pr->rod > 0 ^ vsmp[2] > 0) |
543 |
> |
if (xmit && ndp->thick != 0) /* need to offset origin? */ |
544 |
|
VSUM(sr.rorg, sr.rorg, ndp->pr->ron, -ndp->thick); |
545 |
|
rayvalue(&sr); /* send & evaluate sample */ |
546 |
< |
multcolor(sr.rcol, sr.rcoef); |
547 |
< |
addcolor(ndp->pr->rcol, sr.rcol); |
546 |
> |
smultscolor(sr.rcol, sr.rcoef); |
547 |
> |
saddscolor(ndp->pr->rcol, sr.rcol); |
548 |
> |
++nsent; |
549 |
|
} |
550 |
|
return(nsent); |
551 |
|
} |
554 |
|
static int |
555 |
|
sample_sdf(BSDFDAT *ndp, int sflags) |
556 |
|
{ |
557 |
+ |
int hasthru = (sflags == SDsampSpT && |
558 |
+ |
!(ndp->pr->crtype & (SPECULAR|AMBIENT)) |
559 |
+ |
&& sintens(ndp->cthru) > FTINY); |
560 |
|
int n, ntotal = 0; |
561 |
+ |
double b = 0; |
562 |
|
SDSpectralDF *dfp; |
563 |
|
COLORV *unsc; |
564 |
|
|
565 |
|
if (sflags == SDsampSpT) { |
566 |
|
unsc = ndp->tunsamp; |
567 |
< |
dfp = ndp->sd->tf; |
568 |
< |
cvt_sdcolor(unsc, &ndp->sd->tLamb); |
567 |
> |
if (ndp->pr->rod > 0) |
568 |
> |
dfp = (ndp->sd->tf != NULL) ? ndp->sd->tf : ndp->sd->tb; |
569 |
> |
else |
570 |
> |
dfp = (ndp->sd->tb != NULL) ? ndp->sd->tb : ndp->sd->tf; |
571 |
|
} else /* sflags == SDsampSpR */ { |
572 |
|
unsc = ndp->runsamp; |
573 |
< |
if (ndp->pr->rod > 0) { |
573 |
> |
if (ndp->pr->rod > 0) |
574 |
|
dfp = ndp->sd->rf; |
575 |
< |
cvt_sdcolor(unsc, &ndp->sd->rLambFront); |
387 |
< |
} else { |
575 |
> |
else |
576 |
|
dfp = ndp->sd->rb; |
389 |
– |
cvt_sdcolor(unsc, &ndp->sd->rLambBack); |
390 |
– |
} |
577 |
|
} |
578 |
< |
multcolor(unsc, ndp->pr->pcol); |
578 |
> |
scolorblack(unsc); |
579 |
|
if (dfp == NULL) /* no specular component? */ |
580 |
|
return(0); |
581 |
< |
/* below sampling threshold? */ |
582 |
< |
if (dfp->maxHemi <= specthresh+FTINY) { |
583 |
< |
if (dfp->maxHemi > FTINY) { /* XXX no color from BSDF */ |
584 |
< |
FVECT vjit; |
585 |
< |
double d; |
586 |
< |
COLOR ctmp; |
587 |
< |
bsdf_jitter(vjit, ndp, 1); |
588 |
< |
d = SDdirectHemi(vjit, sflags, ndp->sd); |
581 |
> |
|
582 |
> |
if (hasthru) { /* separate view sample? */ |
583 |
> |
RAY tr; |
584 |
> |
if (rayorigin(&tr, TRANS, ndp->pr, ndp->cthru) == 0) { |
585 |
> |
VCOPY(tr.rdir, ndp->pr->rdir); |
586 |
> |
rayvalue(&tr); |
587 |
> |
smultscolor(tr.rcol, tr.rcoef); |
588 |
> |
saddscolor(ndp->pr->rcol, tr.rcol); |
589 |
> |
ndp->pr->rxt = ndp->pr->rot + raydistance(&tr); |
590 |
> |
++ntotal; |
591 |
> |
b = pbright(ndp->cthru); |
592 |
> |
} else |
593 |
> |
hasthru = 0; |
594 |
> |
} |
595 |
> |
if (dfp->maxHemi - b <= FTINY) { /* have specular to sample? */ |
596 |
> |
b = 0; |
597 |
> |
} else { |
598 |
> |
FVECT vjit; |
599 |
> |
bsdf_jitter(vjit, ndp, ndp->sr_vpsa[1]); |
600 |
> |
b = SDdirectHemi(vjit, sflags, ndp->sd) - b; |
601 |
> |
b *= (b > 0); |
602 |
> |
} |
603 |
> |
if (b <= specthresh+FTINY) { /* below sampling threshold? */ |
604 |
> |
if (b > FTINY) { /* XXX no color from BSDF */ |
605 |
|
if (sflags == SDsampSpT) { |
606 |
< |
copycolor(ctmp, ndp->pr->pcol); |
607 |
< |
scalecolor(ctmp, d); |
606 |
> |
copyscolor(unsc, ndp->pr->pcol); |
607 |
> |
scalescolor(unsc, b); |
608 |
|
} else /* no pattern on reflection */ |
609 |
< |
setcolor(ctmp, d, d, d); |
408 |
< |
addcolor(unsc, ctmp); |
609 |
> |
setscolor(unsc, b, b, b); |
610 |
|
} |
611 |
< |
return(0); |
611 |
> |
return(ntotal); |
612 |
|
} |
613 |
< |
/* else need to sample */ |
614 |
< |
dimlist[ndims++] = (int)(size_t)ndp->mp; |
414 |
< |
ndims++; |
613 |
> |
dimlist[ndims] = (int)(size_t)ndp->mp; /* else sample specular */ |
614 |
> |
ndims += 2; |
615 |
|
for (n = dfp->ncomp; n--; ) { /* loop over components */ |
616 |
|
dimlist[ndims-1] = n + 9438; |
617 |
|
ntotal += sample_sdcomp(ndp, &dfp->comp[n], sflags==SDsampSpT); |
624 |
|
int |
625 |
|
m_bsdf(OBJREC *m, RAY *r) |
626 |
|
{ |
627 |
+ |
int hasthick = (m->otype == MAT_BSDF); |
628 |
|
int hitfront; |
629 |
< |
COLOR ctmp; |
629 |
> |
SCOLOR sctmp; |
630 |
|
SDError ec; |
631 |
|
FVECT upvec, vtmp; |
632 |
|
MFUNC *mf; |
633 |
|
BSDFDAT nd; |
634 |
|
/* check arguments */ |
635 |
< |
if ((m->oargs.nsargs < 6) | (m->oargs.nfargs > 9) | |
635 |
> |
if ((m->oargs.nsargs < hasthick+5) | (m->oargs.nfargs > 9) | |
636 |
|
(m->oargs.nfargs % 3)) |
637 |
|
objerror(m, USER, "bad # arguments"); |
638 |
|
/* record surface struck */ |
639 |
|
hitfront = (r->rod > 0); |
640 |
|
/* load cal file */ |
641 |
< |
mf = getfunc(m, 5, 0x1d, 1); |
642 |
< |
/* get thickness */ |
643 |
< |
nd.thick = evalue(mf->ep[0]); |
644 |
< |
if ((-FTINY <= nd.thick) & (nd.thick <= FTINY)) |
645 |
< |
nd.thick = .0; |
646 |
< |
/* check shadow */ |
647 |
< |
if (r->crtype & SHADOW) { |
648 |
< |
if (nd.thick != 0) |
448 |
< |
raytrans(r); /* pass-through */ |
449 |
< |
return(1); /* or shadow */ |
641 |
> |
mf = hasthick ? getfunc(m, 5, 0x1d, 1) |
642 |
> |
: getfunc(m, 4, 0xe, 1) ; |
643 |
> |
setfunc(m, r); |
644 |
> |
nd.thick = 0; /* set thickness */ |
645 |
> |
if (hasthick) { |
646 |
> |
nd.thick = evalue(mf->ep[0]); |
647 |
> |
if ((-FTINY <= nd.thick) & (nd.thick <= FTINY)) |
648 |
> |
nd.thick = 0; |
649 |
|
} |
650 |
+ |
/* check backface visibility */ |
651 |
+ |
if (!hitfront & !backvis) { |
652 |
+ |
raytrans(r); |
653 |
+ |
return(1); |
654 |
+ |
} |
655 |
|
/* check other rays to pass */ |
656 |
< |
if (nd.thick != 0 && (!(r->crtype & (SPECULAR|AMBIENT)) || |
657 |
< |
nd.thick > 0 ^ hitfront)) { |
656 |
> |
if (nd.thick != 0 && (r->crtype & SHADOW || |
657 |
> |
!(r->crtype & (SPECULAR|AMBIENT)) || |
658 |
> |
(nd.thick > 0) ^ hitfront)) { |
659 |
|
raytrans(r); /* hide our proxy */ |
660 |
|
return(1); |
661 |
|
} |
662 |
+ |
if (hasthick && r->crtype & SHADOW) /* early shadow check #1 */ |
663 |
+ |
return(1); |
664 |
+ |
nd.mp = m; |
665 |
+ |
nd.pr = r; |
666 |
|
/* get BSDF data */ |
667 |
< |
nd.sd = loadBSDF(m->oargs.sarg[1]); |
668 |
< |
/* diffuse reflectance */ |
667 |
> |
nd.sd = loadBSDF(m->oargs.sarg[hasthick]); |
668 |
> |
/* early shadow check #2 */ |
669 |
> |
if (r->crtype & SHADOW && (nd.sd->tf == NULL) & (nd.sd->tb == NULL)) { |
670 |
> |
SDfreeCache(nd.sd); |
671 |
> |
return(1); |
672 |
> |
} |
673 |
> |
/* diffuse components */ |
674 |
|
if (hitfront) { |
675 |
< |
if (m->oargs.nfargs < 3) |
676 |
< |
setcolor(nd.rdiff, .0, .0, .0); |
677 |
< |
else |
464 |
< |
setcolor(nd.rdiff, m->oargs.farg[0], |
675 |
> |
cvt_sdcolor(nd.rdiff, &nd.sd->rLambFront); |
676 |
> |
if (m->oargs.nfargs >= 3) { |
677 |
> |
setscolor(sctmp, m->oargs.farg[0], |
678 |
|
m->oargs.farg[1], |
679 |
|
m->oargs.farg[2]); |
680 |
+ |
saddscolor(nd.rdiff, sctmp); |
681 |
+ |
} |
682 |
+ |
cvt_sdcolor(nd.tdiff, &nd.sd->tLambFront); |
683 |
|
} else { |
684 |
< |
if (m->oargs.nfargs < 6) { /* check invisible backside */ |
685 |
< |
if (!backvis && (nd.sd->rb == NULL) & |
686 |
< |
(nd.sd->tf == NULL)) { |
471 |
< |
SDfreeCache(nd.sd); |
472 |
< |
raytrans(r); |
473 |
< |
return(1); |
474 |
< |
} |
475 |
< |
setcolor(nd.rdiff, .0, .0, .0); |
476 |
< |
} else |
477 |
< |
setcolor(nd.rdiff, m->oargs.farg[3], |
684 |
> |
cvt_sdcolor(nd.rdiff, &nd.sd->rLambBack); |
685 |
> |
if (m->oargs.nfargs >= 6) { |
686 |
> |
setscolor(sctmp, m->oargs.farg[3], |
687 |
|
m->oargs.farg[4], |
688 |
|
m->oargs.farg[5]); |
689 |
+ |
saddscolor(nd.rdiff, sctmp); |
690 |
+ |
} |
691 |
+ |
cvt_sdcolor(nd.tdiff, &nd.sd->tLambBack); |
692 |
|
} |
693 |
< |
/* diffuse transmittance */ |
694 |
< |
if (m->oargs.nfargs < 9) |
483 |
< |
setcolor(nd.tdiff, .0, .0, .0); |
484 |
< |
else |
485 |
< |
setcolor(nd.tdiff, m->oargs.farg[6], |
693 |
> |
if (m->oargs.nfargs >= 9) { /* add diffuse transmittance? */ |
694 |
> |
setscolor(sctmp, m->oargs.farg[6], |
695 |
|
m->oargs.farg[7], |
696 |
|
m->oargs.farg[8]); |
697 |
< |
nd.mp = m; |
698 |
< |
nd.pr = r; |
697 |
> |
saddscolor(nd.tdiff, sctmp); |
698 |
> |
} |
699 |
|
/* get modifiers */ |
700 |
|
raytexture(r, m->omod); |
701 |
|
/* modify diffuse values */ |
702 |
< |
multcolor(nd.rdiff, r->pcol); |
703 |
< |
multcolor(nd.tdiff, r->pcol); |
702 |
> |
smultscolor(nd.rdiff, r->pcol); |
703 |
> |
smultscolor(nd.tdiff, r->pcol); |
704 |
|
/* get up vector */ |
705 |
< |
upvec[0] = evalue(mf->ep[1]); |
706 |
< |
upvec[1] = evalue(mf->ep[2]); |
707 |
< |
upvec[2] = evalue(mf->ep[3]); |
705 |
> |
upvec[0] = evalue(mf->ep[hasthick+0]); |
706 |
> |
upvec[1] = evalue(mf->ep[hasthick+1]); |
707 |
> |
upvec[2] = evalue(mf->ep[hasthick+2]); |
708 |
|
/* return to world coords */ |
709 |
< |
if (mf->f != &unitxf) { |
710 |
< |
multv3(upvec, upvec, mf->f->xfm); |
711 |
< |
nd.thick *= mf->f->sca; |
709 |
> |
if (mf->fxp != &unitxf) { |
710 |
> |
multv3(upvec, upvec, mf->fxp->xfm); |
711 |
> |
nd.thick *= mf->fxp->sca; |
712 |
|
} |
713 |
+ |
if (r->rox != NULL) { |
714 |
+ |
multv3(upvec, upvec, r->rox->f.xfm); |
715 |
+ |
nd.thick *= r->rox->f.sca; |
716 |
+ |
} |
717 |
|
raynormal(nd.pnorm, r); |
718 |
|
/* compute local BSDF xform */ |
719 |
|
ec = SDcompXform(nd.toloc, nd.pnorm, upvec); |
723 |
|
nd.vray[2] = -r->rdir[2]; |
724 |
|
ec = SDmapDir(nd.vray, nd.toloc, nd.vray); |
725 |
|
} |
513 |
– |
if (!ec) |
514 |
– |
ec = SDinvXform(nd.fromloc, nd.toloc); |
515 |
– |
/* determine BSDF resolution */ |
516 |
– |
if (!ec) |
517 |
– |
ec = SDsizeBSDF(nd.sr_vpsa, nd.vray, NULL, |
518 |
– |
SDqueryMin+SDqueryMax, nd.sd); |
726 |
|
if (ec) { |
727 |
< |
objerror(m, WARNING, transSDError(ec)); |
727 |
> |
objerror(m, WARNING, "Illegal orientation vector"); |
728 |
|
SDfreeCache(nd.sd); |
729 |
|
return(1); |
730 |
|
} |
731 |
+ |
scolorblack(nd.cthru); /* consider through component */ |
732 |
+ |
scolorblack(nd.cthru_surr); |
733 |
+ |
if (m->otype == MAT_ABSDF) { |
734 |
+ |
compute_through(&nd); |
735 |
+ |
if (r->crtype & SHADOW) { |
736 |
+ |
RAY tr; /* attempt to pass shadow ray */ |
737 |
+ |
SDfreeCache(nd.sd); |
738 |
+ |
if (rayorigin(&tr, TRANS, r, nd.cthru) < 0) |
739 |
+ |
return(1); /* no through component */ |
740 |
+ |
VCOPY(tr.rdir, r->rdir); |
741 |
+ |
rayvalue(&tr); /* transmit with scaling */ |
742 |
+ |
smultscolor(tr.rcol, tr.rcoef); |
743 |
+ |
copyscolor(r->rcol, tr.rcol); |
744 |
+ |
return(1); /* we're done */ |
745 |
+ |
} |
746 |
+ |
} |
747 |
+ |
ec = SDinvXform(nd.fromloc, nd.toloc); |
748 |
+ |
if (!ec) /* determine BSDF resolution */ |
749 |
+ |
ec = SDsizeBSDF(nd.sr_vpsa, nd.vray, NULL, |
750 |
+ |
SDqueryMin+SDqueryMax, nd.sd); |
751 |
+ |
if (ec) |
752 |
+ |
objerror(m, USER, transSDError(ec)); |
753 |
+ |
|
754 |
|
nd.sr_vpsa[0] = sqrt(nd.sr_vpsa[0]); |
755 |
|
nd.sr_vpsa[1] = sqrt(nd.sr_vpsa[1]); |
756 |
|
if (!hitfront) { /* perturb normal towards hit */ |
763 |
|
/* sample transmission */ |
764 |
|
sample_sdf(&nd, SDsampSpT); |
765 |
|
/* compute indirect diffuse */ |
766 |
< |
copycolor(ctmp, nd.rdiff); |
767 |
< |
addcolor(ctmp, nd.runsamp); |
768 |
< |
if (bright(ctmp) > FTINY) { /* ambient from reflection */ |
769 |
< |
if (!hitfront) |
770 |
< |
flipsurface(r); |
541 |
< |
multambient(ctmp, r, nd.pnorm); |
542 |
< |
addcolor(r->rcol, ctmp); |
543 |
< |
if (!hitfront) |
544 |
< |
flipsurface(r); |
766 |
> |
copyscolor(sctmp, nd.rdiff); |
767 |
> |
saddscolor(sctmp, nd.runsamp); |
768 |
> |
if (sintens(sctmp) > FTINY) { /* ambient from reflection */ |
769 |
> |
multambient(sctmp, r, nd.pnorm); |
770 |
> |
saddscolor(r->rcol, sctmp); |
771 |
|
} |
772 |
< |
copycolor(ctmp, nd.tdiff); |
773 |
< |
addcolor(ctmp, nd.tunsamp); |
774 |
< |
if (bright(ctmp) > FTINY) { /* ambient from other side */ |
772 |
> |
copyscolor(sctmp, nd.tdiff); |
773 |
> |
saddscolor(sctmp, nd.tunsamp); |
774 |
> |
if (sintens(sctmp) > FTINY) { /* ambient from other side */ |
775 |
|
FVECT bnorm; |
550 |
– |
if (hitfront) |
551 |
– |
flipsurface(r); |
776 |
|
bnorm[0] = -nd.pnorm[0]; |
777 |
|
bnorm[1] = -nd.pnorm[1]; |
778 |
|
bnorm[2] = -nd.pnorm[2]; |
779 |
|
if (nd.thick != 0) { /* proxy with offset? */ |
780 |
|
VCOPY(vtmp, r->rop); |
781 |
< |
VSUM(r->rop, vtmp, r->ron, -nd.thick); |
782 |
< |
multambient(ctmp, r, bnorm); |
781 |
> |
VSUM(r->rop, vtmp, r->ron, nd.thick); |
782 |
> |
multambient(sctmp, r, bnorm); |
783 |
|
VCOPY(r->rop, vtmp); |
784 |
|
} else |
785 |
< |
multambient(ctmp, r, bnorm); |
786 |
< |
addcolor(r->rcol, ctmp); |
563 |
< |
if (hitfront) |
564 |
< |
flipsurface(r); |
785 |
> |
multambient(sctmp, r, bnorm); |
786 |
> |
saddscolor(r->rcol, sctmp); |
787 |
|
} |
788 |
|
/* add direct component */ |
789 |
< |
if ((bright(nd.tdiff) <= FTINY) & (nd.sd->tf == NULL)) { |
789 |
> |
if ((nd.sd->tf == NULL) & (nd.sd->tb == NULL) && |
790 |
> |
sintens(nd.tdiff) <= FTINY) { |
791 |
|
direct(r, dir_brdf, &nd); /* reflection only */ |
792 |
|
} else if (nd.thick == 0) { |
793 |
|
direct(r, dir_bsdf, &nd); /* thin surface scattering */ |