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/* Copyright (c) 1992 Regents of the University of California */ |
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#ifndef lint |
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static char SCCSid[] = "$SunId$ LBL"; |
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static const char RCSid[] = "$Id$"; |
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#endif |
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|
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/* |
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* normal.c - shading function for normal materials. |
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* |
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* Later changes described in delta comments. |
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*/ |
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|
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#include "ray.h" |
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#include "copyright.h" |
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|
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#include "ray.h" |
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#include "ambient.h" |
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#include "source.h" |
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#include "otypes.h" |
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#include "rtotypes.h" |
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#include "random.h" |
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#include "pmapmat.h" |
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|
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extern double specthresh; /* specular sampling threshold */ |
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extern double specjitter; /* specular sampling jitter */ |
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#ifndef MAXITER |
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#define MAXITER 10 /* maximum # specular ray attempts */ |
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#endif |
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/* estimate of Fresnel function */ |
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#define FRESNE(ci) (exp(-5.85*(ci)) - 0.00287989916) |
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#define FRESTHRESH 0.017999 /* minimum specularity for approx. */ |
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|
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|
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/* |
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* This routine uses portions of the reflection |
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* model described by Cook and Torrance. |
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* The computation of specular components has been simplified by |
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* numerous approximations and ommisions to improve speed. |
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* This routine implements the isotropic Gaussian |
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* model described by Ward in Siggraph `92 article. |
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* We orient the surface towards the incoming ray, so a single |
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* surface can be used to represent an infinitely thin object. |
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* |
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* red grn blu rspec rough trans tspec |
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*/ |
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|
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#define BSPEC(m) (6.0) /* specularity parameter b */ |
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|
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/* specularity flags */ |
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#define SP_REFL 01 /* has reflected specular component */ |
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#define SP_TRAN 02 /* has transmitted specular */ |
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#define SP_PURE 010 /* purely specular (zero roughness) */ |
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#define SP_FLAT 020 /* flat reflecting surface */ |
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#define SP_RBLT 040 /* reflection below sample threshold */ |
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#define SP_TBLT 0100 /* transmission below threshold */ |
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#define SP_PURE 04 /* purely specular (zero roughness) */ |
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#define SP_FLAT 010 /* flat reflecting surface */ |
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#define SP_RBLT 020 /* reflection below sample threshold */ |
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#define SP_TBLT 040 /* transmission below threshold */ |
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|
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typedef struct { |
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OBJREC *mp; /* material pointer */ |
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RAY *rp; /* ray pointer */ |
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short specfl; /* specularity flags, defined above */ |
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COLOR mcolor; /* color of this material */ |
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COLOR scolor; /* color of specular component */ |
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double pdot; /* perturbed dot product */ |
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} NORMDAT; /* normal material data */ |
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|
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static void gaussamp(NORMDAT *np); |
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|
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dirnorm(cval, np, ldir, omega) /* compute source contribution */ |
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COLOR cval; /* returned coefficient */ |
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register NORMDAT *np; /* material data */ |
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FVECT ldir; /* light source direction */ |
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double omega; /* light source size */ |
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|
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static void |
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dirnorm( /* compute source contribution */ |
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COLOR cval, /* returned coefficient */ |
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void *nnp, /* material data */ |
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FVECT ldir, /* light source direction */ |
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double omega /* light source size */ |
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) |
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{ |
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NORMDAT *np = nnp; |
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double ldot; |
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double dtmp; |
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int i; |
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double lrdiff, ltdiff; |
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double dtmp, d2, d3, d4; |
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FVECT vtmp; |
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COLOR ctmp; |
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|
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setcolor(cval, 0.0, 0.0, 0.0); |
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if (ldot < 0.0 ? np->trans <= FTINY : np->trans >= 1.0-FTINY) |
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return; /* wrong side */ |
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if (ldot > FTINY && np->rdiff > FTINY) { |
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/* Fresnel estimate */ |
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lrdiff = np->rdiff; |
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ltdiff = np->tdiff; |
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if (np->specfl & SP_PURE && np->rspec >= FRESTHRESH && |
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(lrdiff > FTINY) | (ltdiff > FTINY)) { |
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dtmp = 1. - FRESNE(fabs(ldot)); |
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lrdiff *= dtmp; |
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ltdiff *= dtmp; |
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} |
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|
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if (ldot > FTINY && lrdiff > FTINY) { |
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/* |
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* Compute and add diffuse reflected component to returned |
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* color. The diffuse reflected component will always be |
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* modified by the color of the material. |
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*/ |
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copycolor(ctmp, np->mcolor); |
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dtmp = ldot * omega * np->rdiff / PI; |
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dtmp = ldot * omega * lrdiff * (1.0/PI); |
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scalecolor(ctmp, dtmp); |
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addcolor(cval, ctmp); |
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} |
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|
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if (ldot < -FTINY && ltdiff > FTINY) { |
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/* |
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* Compute diffuse transmission. |
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*/ |
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copycolor(ctmp, np->mcolor); |
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dtmp = -ldot * omega * ltdiff * (1.0/PI); |
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scalecolor(ctmp, dtmp); |
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addcolor(cval, ctmp); |
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} |
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|
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if (ambRayInPmap(np->rp)) |
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return; /* specular already in photon map */ |
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|
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if (ldot > FTINY && (np->specfl&(SP_REFL|SP_PURE)) == SP_REFL) { |
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/* |
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* Compute specular reflection coefficient using |
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* gaussian distribution model. |
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* Gaussian distribution model. |
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*/ |
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/* roughness */ |
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dtmp = 2.0*np->alpha2; |
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dtmp = np->alpha2; |
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/* + source if flat */ |
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if (np->specfl & SP_FLAT) |
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dtmp += omega/(2.0*PI); |
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/* gaussian */ |
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dtmp = exp((DOT(np->vrefl,ldir)-1.)/dtmp)/(2.*PI)/dtmp; |
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dtmp += omega * (0.25/PI); |
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/* half vector */ |
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VSUB(vtmp, ldir, np->rp->rdir); |
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d2 = DOT(vtmp, np->pnorm); |
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d2 *= d2; |
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d3 = DOT(vtmp,vtmp); |
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d4 = (d3 - d2) / d2; |
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/* new W-G-M-D model */ |
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dtmp = exp(-d4/dtmp) * d3 / (PI * d2*d2 * dtmp); |
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/* worth using? */ |
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if (dtmp > FTINY) { |
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copycolor(ctmp, np->scolor); |
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dtmp *= omega / np->pdot; |
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dtmp *= ldot * omega; |
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scalecolor(ctmp, dtmp); |
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addcolor(cval, ctmp); |
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} |
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} |
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if (ldot < -FTINY && np->tdiff > FTINY) { |
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/* |
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* Compute diffuse transmission. |
119 |
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*/ |
120 |
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copycolor(ctmp, np->mcolor); |
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dtmp = -ldot * omega * np->tdiff / PI; |
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scalecolor(ctmp, dtmp); |
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addcolor(cval, ctmp); |
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} |
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|
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|
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if (ldot < -FTINY && (np->specfl&(SP_TRAN|SP_PURE)) == SP_TRAN) { |
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/* |
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* Compute specular transmission. Specular transmission |
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* is always modified by material color. |
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*/ |
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/* roughness + source */ |
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dtmp = np->alpha2 + omega/(2.0*PI); |
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/* gaussian */ |
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dtmp = exp((DOT(np->prdir,ldir)-1.)/dtmp)/(2.*PI)/dtmp; |
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dtmp = np->alpha2 + omega*(1.0/PI); |
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/* Gaussian */ |
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dtmp = exp((2.*DOT(np->prdir,ldir)-2.)/dtmp)/(PI*dtmp); |
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/* worth using? */ |
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if (dtmp > FTINY) { |
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copycolor(ctmp, np->mcolor); |
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dtmp *= np->tspec * omega / np->pdot; |
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dtmp *= np->tspec * omega * sqrt(-ldot/np->pdot); |
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scalecolor(ctmp, dtmp); |
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addcolor(cval, ctmp); |
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} |
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} |
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|
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|
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m_normal(m, r) /* color a ray that hit something normal */ |
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register OBJREC *m; |
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register RAY *r; |
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int |
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m_normal( /* color a ray that hit something normal */ |
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OBJREC *m, |
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RAY *r |
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) |
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{ |
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NORMDAT nd; |
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double fest; |
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double transtest, transdist; |
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double dtmp; |
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double mirtest, mirdist; |
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int hastexture; |
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double d; |
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COLOR ctmp; |
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register int i; |
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int i; |
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|
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/* PMAP: skip transmitted shadow ray if accounted for in photon map */ |
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/* No longer needed? |
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if (shadowRayInPmap(r) || ambRayInPmap(r)) |
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return(1); */ |
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|
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/* easy shadow test */ |
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if (r->crtype & SHADOW && m->otype != MAT_TRANS) |
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return; |
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return(1); |
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|
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if (m->oargs.nfargs != (m->otype == MAT_TRANS ? 7 : 5)) |
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objerror(m, USER, "bad number of arguments"); |
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/* check for back side */ |
204 |
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if (r->rod < 0.0) { |
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if (!backvis) { |
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raytrans(r); |
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return(1); |
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} |
209 |
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raytexture(r, m->omod); |
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flipsurface(r); /* reorient if backvis */ |
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} else |
212 |
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raytexture(r, m->omod); |
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nd.mp = m; |
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nd.rp = r; |
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/* get material color */ |
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setcolor(nd.mcolor, m->oargs.farg[0], |
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m->oargs.farg[1], |
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nd.alpha2 = m->oargs.farg[4]; |
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if ((nd.alpha2 *= nd.alpha2) <= FTINY) |
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nd.specfl |= SP_PURE; |
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/* reorient if necessary */ |
225 |
< |
if (r->rod < 0.0) |
226 |
< |
flipsurface(r); |
227 |
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/* get modifiers */ |
228 |
< |
raytexture(r, m->omod); |
229 |
< |
nd.pdot = raynormal(nd.pnorm, r); /* perturb normal */ |
224 |
> |
|
225 |
> |
if ( (hastexture = (DOT(r->pert,r->pert) > FTINY*FTINY)) ) { |
226 |
> |
nd.pdot = raynormal(nd.pnorm, r); /* perturb normal */ |
227 |
> |
} else { |
228 |
> |
VCOPY(nd.pnorm, r->ron); |
229 |
> |
nd.pdot = r->rod; |
230 |
> |
} |
231 |
> |
if (r->ro != NULL && isflat(r->ro->otype)) |
232 |
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nd.specfl |= SP_FLAT; |
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if (nd.pdot < .001) |
234 |
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nd.pdot = .001; /* non-zero for dirnorm() */ |
235 |
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multcolor(nd.mcolor, r->pcol); /* modify material color */ |
236 |
< |
transtest = 0; |
237 |
< |
/* get specular component */ |
238 |
< |
if ((nd.rspec = m->oargs.farg[3]) > FTINY) { |
239 |
< |
nd.specfl |= SP_REFL; |
240 |
< |
/* compute specular color */ |
241 |
< |
if (m->otype == MAT_METAL) |
242 |
< |
copycolor(nd.scolor, nd.mcolor); |
243 |
< |
else |
244 |
< |
setcolor(nd.scolor, 1.0, 1.0, 1.0); |
188 |
< |
scalecolor(nd.scolor, nd.rspec); |
189 |
< |
/* improved model */ |
190 |
< |
dtmp = exp(-BSPEC(m)*nd.pdot); |
191 |
< |
for (i = 0; i < 3; i++) |
192 |
< |
colval(nd.scolor,i) += (1.0-colval(nd.scolor,i))*dtmp; |
193 |
< |
nd.rspec += (1.0-nd.rspec)*dtmp; |
194 |
< |
/* check threshold */ |
195 |
< |
if (nd.rspec <= specthresh+FTINY) |
196 |
< |
nd.specfl |= SP_RBLT; |
197 |
< |
/* compute reflected ray */ |
198 |
< |
for (i = 0; i < 3; i++) |
199 |
< |
nd.vrefl[i] = r->rdir[i] + 2.0*nd.pdot*nd.pnorm[i]; |
200 |
< |
|
201 |
< |
if (!(r->crtype & SHADOW) && nd.specfl & SP_PURE) { |
202 |
< |
RAY lr; |
203 |
< |
if (rayorigin(&lr, r, REFLECTED, nd.rspec) == 0) { |
204 |
< |
VCOPY(lr.rdir, nd.vrefl); |
205 |
< |
rayvalue(&lr); |
206 |
< |
multcolor(lr.rcol, nd.scolor); |
207 |
< |
addcolor(r->rcol, lr.rcol); |
208 |
< |
} |
209 |
< |
} |
210 |
< |
} |
236 |
> |
mirtest = transtest = 0; |
237 |
> |
mirdist = transdist = r->rot; |
238 |
> |
nd.rspec = m->oargs.farg[3]; |
239 |
> |
/* compute Fresnel approx. */ |
240 |
> |
if (nd.specfl & SP_PURE && nd.rspec >= FRESTHRESH) { |
241 |
> |
fest = FRESNE(nd.pdot); |
242 |
> |
nd.rspec += fest*(1. - nd.rspec); |
243 |
> |
} else |
244 |
> |
fest = 0.; |
245 |
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/* compute transmission */ |
246 |
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if (m->otype == MAT_TRANS) { |
247 |
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nd.trans = m->oargs.farg[5]*(1.0 - nd.rspec); |
250 |
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if (nd.tspec > FTINY) { |
251 |
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nd.specfl |= SP_TRAN; |
252 |
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/* check threshold */ |
253 |
< |
if (nd.tspec <= specthresh+FTINY) |
253 |
> |
if (!(nd.specfl & SP_PURE) && |
254 |
> |
specthresh >= nd.tspec-FTINY) |
255 |
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nd.specfl |= SP_TBLT; |
256 |
< |
if (r->crtype & SHADOW || |
222 |
< |
DOT(r->pert,r->pert) <= FTINY*FTINY) { |
256 |
> |
if (!hastexture || r->crtype & (SHADOW|AMBIENT)) { |
257 |
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VCOPY(nd.prdir, r->rdir); |
258 |
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transtest = 2; |
259 |
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} else { |
260 |
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for (i = 0; i < 3; i++) /* perturb */ |
261 |
< |
nd.prdir[i] = r->rdir[i] - |
262 |
< |
.75*r->pert[i]; |
263 |
< |
normalize(nd.prdir); |
261 |
> |
nd.prdir[i] = r->rdir[i] - r->pert[i]; |
262 |
> |
if (DOT(nd.prdir, r->ron) < -FTINY) |
263 |
> |
normalize(nd.prdir); /* OK */ |
264 |
> |
else |
265 |
> |
VCOPY(nd.prdir, r->rdir); |
266 |
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} |
267 |
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} |
268 |
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} else |
269 |
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nd.tdiff = nd.tspec = nd.trans = 0.0; |
270 |
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/* transmitted ray */ |
271 |
< |
if ((nd.specfl&(SP_TRAN|SP_PURE)) == (SP_TRAN|SP_PURE)) { |
271 |
> |
|
272 |
> |
if ((nd.specfl&(SP_TRAN|SP_PURE|SP_TBLT)) == (SP_TRAN|SP_PURE)) { |
273 |
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RAY lr; |
274 |
< |
if (rayorigin(&lr, r, TRANS, nd.tspec) == 0) { |
274 |
> |
copycolor(lr.rcoef, nd.mcolor); /* modified by color */ |
275 |
> |
scalecolor(lr.rcoef, nd.tspec); |
276 |
> |
if (rayorigin(&lr, TRANS, r, lr.rcoef) == 0) { |
277 |
|
VCOPY(lr.rdir, nd.prdir); |
278 |
|
rayvalue(&lr); |
279 |
< |
scalecolor(lr.rcol, nd.tspec); |
241 |
< |
multcolor(lr.rcol, nd.mcolor); /* modified by color */ |
279 |
> |
multcolor(lr.rcol, lr.rcoef); |
280 |
|
addcolor(r->rcol, lr.rcol); |
281 |
|
transtest *= bright(lr.rcol); |
282 |
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transdist = r->rot + lr.rt; |
283 |
|
} |
284 |
< |
} |
284 |
> |
} else |
285 |
> |
transtest = 0; |
286 |
|
|
287 |
< |
if (r->crtype & SHADOW) /* the rest is shadow */ |
288 |
< |
return; |
287 |
> |
if (r->crtype & SHADOW) { /* the rest is shadow */ |
288 |
> |
r->rt = transdist; |
289 |
> |
return(1); |
290 |
> |
} |
291 |
> |
/* get specular reflection */ |
292 |
> |
if (nd.rspec > FTINY) { |
293 |
> |
nd.specfl |= SP_REFL; |
294 |
> |
/* compute specular color */ |
295 |
> |
if (m->otype != MAT_METAL) { |
296 |
> |
setcolor(nd.scolor, nd.rspec, nd.rspec, nd.rspec); |
297 |
> |
} else if (fest > FTINY) { |
298 |
> |
d = m->oargs.farg[3]*(1. - fest); |
299 |
> |
for (i = 0; i < 3; i++) |
300 |
> |
colval(nd.scolor,i) = fest + |
301 |
> |
colval(nd.mcolor,i)*d; |
302 |
> |
} else { |
303 |
> |
copycolor(nd.scolor, nd.mcolor); |
304 |
> |
scalecolor(nd.scolor, nd.rspec); |
305 |
> |
} |
306 |
> |
/* check threshold */ |
307 |
> |
if (!(nd.specfl & SP_PURE) && specthresh >= nd.rspec-FTINY) |
308 |
> |
nd.specfl |= SP_RBLT; |
309 |
> |
/* compute reflected ray */ |
310 |
> |
VSUM(nd.vrefl, r->rdir, nd.pnorm, 2.*nd.pdot); |
311 |
> |
/* penetration? */ |
312 |
> |
if (hastexture && DOT(nd.vrefl, r->ron) <= FTINY) |
313 |
> |
VSUM(nd.vrefl, r->rdir, r->ron, 2.*r->rod); |
314 |
> |
checknorm(nd.vrefl); |
315 |
> |
} |
316 |
> |
/* reflected ray */ |
317 |
> |
if ((nd.specfl&(SP_REFL|SP_PURE|SP_RBLT)) == (SP_REFL|SP_PURE)) { |
318 |
> |
RAY lr; |
319 |
> |
if (rayorigin(&lr, REFLECTED, r, nd.scolor) == 0) { |
320 |
> |
VCOPY(lr.rdir, nd.vrefl); |
321 |
> |
rayvalue(&lr); |
322 |
> |
multcolor(lr.rcol, lr.rcoef); |
323 |
> |
addcolor(r->rcol, lr.rcol); |
324 |
> |
if (nd.specfl & SP_FLAT && |
325 |
> |
!hastexture | (r->crtype & AMBIENT)) { |
326 |
> |
mirtest = 2.*bright(lr.rcol); |
327 |
> |
mirdist = r->rot + lr.rt; |
328 |
> |
} |
329 |
> |
} |
330 |
> |
} |
331 |
|
/* diffuse reflection */ |
332 |
|
nd.rdiff = 1.0 - nd.trans - nd.rspec; |
333 |
|
|
334 |
< |
if (nd.specfl & SP_PURE && nd.rdiff <= FTINY && nd.tdiff <= FTINY) |
335 |
< |
return; /* 100% pure specular */ |
334 |
> |
if (nd.specfl & SP_PURE && nd.rdiff <= FTINY && nd.tdiff <= FTINY) { |
335 |
> |
if (mirtest > transtest+FTINY) |
336 |
> |
r->rt = mirdist; |
337 |
> |
else if (transtest > FTINY) |
338 |
> |
r->rt = transdist; |
339 |
> |
return(1); /* 100% pure specular */ |
340 |
> |
} |
341 |
> |
if (!(nd.specfl & SP_PURE)) |
342 |
> |
gaussamp(&nd); /* checks *BLT flags */ |
343 |
|
|
256 |
– |
if (r->ro->otype == OBJ_FACE || r->ro->otype == OBJ_RING) |
257 |
– |
nd.specfl |= SP_FLAT; |
258 |
– |
|
259 |
– |
if (nd.specfl & (SP_REFL|SP_TRAN) && !(nd.specfl & SP_PURE)) |
260 |
– |
gaussamp(r, &nd); |
261 |
– |
|
344 |
|
if (nd.rdiff > FTINY) { /* ambient from this side */ |
345 |
< |
ambient(ctmp, r); |
346 |
< |
if (nd.specfl & SP_RBLT) |
347 |
< |
scalecolor(ctmp, 1.0-nd.trans); |
348 |
< |
else |
349 |
< |
scalecolor(ctmp, nd.rdiff); |
268 |
< |
multcolor(ctmp, nd.mcolor); /* modified by material color */ |
345 |
> |
copycolor(ctmp, nd.mcolor); /* modified by material color */ |
346 |
> |
scalecolor(ctmp, nd.rdiff); |
347 |
> |
if (nd.specfl & SP_RBLT) /* add in specular as well? */ |
348 |
> |
addcolor(ctmp, nd.scolor); |
349 |
> |
multambient(ctmp, r, hastexture ? nd.pnorm : r->ron); |
350 |
|
addcolor(r->rcol, ctmp); /* add to returned color */ |
351 |
|
} |
352 |
|
if (nd.tdiff > FTINY) { /* ambient from other side */ |
353 |
< |
flipsurface(r); |
273 |
< |
ambient(ctmp, r); |
353 |
> |
copycolor(ctmp, nd.mcolor); /* modified by color */ |
354 |
|
if (nd.specfl & SP_TBLT) |
355 |
|
scalecolor(ctmp, nd.trans); |
356 |
|
else |
357 |
|
scalecolor(ctmp, nd.tdiff); |
358 |
< |
multcolor(ctmp, nd.mcolor); /* modified by color */ |
358 |
> |
flipsurface(r); |
359 |
> |
if (hastexture) { |
360 |
> |
FVECT bnorm; |
361 |
> |
bnorm[0] = -nd.pnorm[0]; |
362 |
> |
bnorm[1] = -nd.pnorm[1]; |
363 |
> |
bnorm[2] = -nd.pnorm[2]; |
364 |
> |
multambient(ctmp, r, bnorm); |
365 |
> |
} else |
366 |
> |
multambient(ctmp, r, r->ron); |
367 |
|
addcolor(r->rcol, ctmp); |
368 |
|
flipsurface(r); |
369 |
|
} |
370 |
|
/* add direct component */ |
371 |
|
direct(r, dirnorm, &nd); |
372 |
|
/* check distance */ |
373 |
< |
if (transtest > bright(r->rcol)) |
373 |
> |
d = bright(r->rcol); |
374 |
> |
if (transtest > d) |
375 |
|
r->rt = transdist; |
376 |
+ |
else if (mirtest > d) |
377 |
+ |
r->rt = mirdist; |
378 |
+ |
|
379 |
+ |
return(1); |
380 |
|
} |
381 |
|
|
382 |
|
|
383 |
< |
static |
384 |
< |
gaussamp(r, np) /* sample gaussian specular */ |
385 |
< |
RAY *r; |
386 |
< |
register NORMDAT *np; |
383 |
> |
static void |
384 |
> |
gaussamp( /* sample Gaussian specular */ |
385 |
> |
NORMDAT *np |
386 |
> |
) |
387 |
|
{ |
388 |
|
RAY sr; |
389 |
|
FVECT u, v, h; |
390 |
|
double rv[2]; |
391 |
|
double d, sinp, cosp; |
392 |
< |
int ntries; |
393 |
< |
register int i; |
392 |
> |
COLOR scol; |
393 |
> |
int maxiter, ntrials, nstarget, nstaken; |
394 |
> |
int i; |
395 |
> |
/* quick test */ |
396 |
> |
if ((np->specfl & (SP_REFL|SP_RBLT)) != SP_REFL && |
397 |
> |
(np->specfl & (SP_TRAN|SP_TBLT)) != SP_TRAN) |
398 |
> |
return; |
399 |
|
/* set up sample coordinates */ |
400 |
< |
v[0] = v[1] = v[2] = 0.0; |
303 |
< |
for (i = 0; i < 3; i++) |
304 |
< |
if (np->pnorm[i] < 0.6 && np->pnorm[i] > -0.6) |
305 |
< |
break; |
306 |
< |
v[i] = 1.0; |
307 |
< |
fcross(u, v, np->pnorm); |
308 |
< |
normalize(u); |
400 |
> |
getperpendicular(u, np->pnorm, rand_samp); |
401 |
|
fcross(v, np->pnorm, u); |
402 |
|
/* compute reflection */ |
403 |
|
if ((np->specfl & (SP_REFL|SP_RBLT)) == SP_REFL && |
404 |
< |
rayorigin(&sr, r, SPECULAR, np->rspec) == 0) { |
405 |
< |
dimlist[ndims++] = (int)np->mp; |
406 |
< |
for (ntries = 0; ntries < 10; ntries++) { |
407 |
< |
dimlist[ndims] = ntries * 8912; |
408 |
< |
d = urand(ilhash(dimlist,ndims+1)+samplendx); |
404 |
> |
rayorigin(&sr, SPECULAR, np->rp, np->scolor) == 0) { |
405 |
> |
nstarget = 1; |
406 |
> |
if (specjitter > 1.5) { /* multiple samples? */ |
407 |
> |
nstarget = specjitter*np->rp->rweight + .5; |
408 |
> |
if (sr.rweight <= minweight*nstarget) |
409 |
> |
nstarget = sr.rweight/minweight; |
410 |
> |
if (nstarget > 1) { |
411 |
> |
d = 1./nstarget; |
412 |
> |
scalecolor(sr.rcoef, d); |
413 |
> |
sr.rweight *= d; |
414 |
> |
} else |
415 |
> |
nstarget = 1; |
416 |
> |
} |
417 |
> |
setcolor(scol, 0., 0., 0.); |
418 |
> |
dimlist[ndims++] = (int)(size_t)np->mp; |
419 |
> |
maxiter = MAXITER*nstarget; |
420 |
> |
for (nstaken = ntrials = 0; nstaken < nstarget && |
421 |
> |
ntrials < maxiter; ntrials++) { |
422 |
> |
if (ntrials) |
423 |
> |
d = frandom(); |
424 |
> |
else |
425 |
> |
d = urand(ilhash(dimlist,ndims)+samplendx); |
426 |
|
multisamp(rv, 2, d); |
427 |
|
d = 2.0*PI * rv[0]; |
428 |
< |
cosp = cos(d); |
429 |
< |
sinp = sin(d); |
430 |
< |
rv[1] = 1.0 - specjitter*rv[1]; |
428 |
> |
cosp = tcos(d); |
429 |
> |
sinp = tsin(d); |
430 |
> |
if ((0. <= specjitter) & (specjitter < 1.)) |
431 |
> |
rv[1] = 1.0 - specjitter*rv[1]; |
432 |
|
if (rv[1] <= FTINY) |
433 |
|
d = 1.0; |
434 |
|
else |
435 |
|
d = sqrt( np->alpha2 * -log(rv[1]) ); |
436 |
|
for (i = 0; i < 3; i++) |
437 |
|
h[i] = np->pnorm[i] + d*(cosp*u[i] + sinp*v[i]); |
438 |
< |
d = -2.0 * DOT(h, r->rdir) / (1.0 + d*d); |
439 |
< |
for (i = 0; i < 3; i++) |
440 |
< |
sr.rdir[i] = r->rdir[i] + d*h[i]; |
441 |
< |
if (DOT(sr.rdir, r->ron) > FTINY) { |
438 |
> |
d = -2.0 * DOT(h, np->rp->rdir) / (1.0 + d*d); |
439 |
> |
VSUM(sr.rdir, np->rp->rdir, h, d); |
440 |
> |
/* sample rejection test */ |
441 |
> |
if ((d = DOT(sr.rdir, np->rp->ron)) <= FTINY) |
442 |
> |
continue; |
443 |
> |
checknorm(sr.rdir); |
444 |
> |
if (nstarget > 1) { /* W-G-M-D adjustment */ |
445 |
> |
if (nstaken) rayclear(&sr); |
446 |
|
rayvalue(&sr); |
447 |
< |
multcolor(sr.rcol, np->scolor); |
448 |
< |
addcolor(r->rcol, sr.rcol); |
449 |
< |
break; |
447 |
> |
d = 2./(1. + np->rp->rod/d); |
448 |
> |
scalecolor(sr.rcol, d); |
449 |
> |
addcolor(scol, sr.rcol); |
450 |
> |
} else { |
451 |
> |
rayvalue(&sr); |
452 |
> |
multcolor(sr.rcol, sr.rcoef); |
453 |
> |
addcolor(np->rp->rcol, sr.rcol); |
454 |
|
} |
455 |
+ |
++nstaken; |
456 |
|
} |
457 |
+ |
if (nstarget > 1) { /* final W-G-M-D weighting */ |
458 |
+ |
multcolor(scol, sr.rcoef); |
459 |
+ |
d = (double)nstarget/ntrials; |
460 |
+ |
scalecolor(scol, d); |
461 |
+ |
addcolor(np->rp->rcol, scol); |
462 |
+ |
} |
463 |
|
ndims--; |
464 |
|
} |
465 |
|
/* compute transmission */ |
466 |
+ |
copycolor(sr.rcoef, np->mcolor); /* modified by color */ |
467 |
+ |
scalecolor(sr.rcoef, np->tspec); |
468 |
+ |
if ((np->specfl & (SP_TRAN|SP_TBLT)) == SP_TRAN && |
469 |
+ |
rayorigin(&sr, SPECULAR, np->rp, sr.rcoef) == 0) { |
470 |
+ |
nstarget = 1; |
471 |
+ |
if (specjitter > 1.5) { /* multiple samples? */ |
472 |
+ |
nstarget = specjitter*np->rp->rweight + .5; |
473 |
+ |
if (sr.rweight <= minweight*nstarget) |
474 |
+ |
nstarget = sr.rweight/minweight; |
475 |
+ |
if (nstarget > 1) { |
476 |
+ |
d = 1./nstarget; |
477 |
+ |
scalecolor(sr.rcoef, d); |
478 |
+ |
sr.rweight *= d; |
479 |
+ |
} else |
480 |
+ |
nstarget = 1; |
481 |
+ |
} |
482 |
+ |
dimlist[ndims++] = (int)(size_t)np->mp; |
483 |
+ |
maxiter = MAXITER*nstarget; |
484 |
+ |
for (nstaken = ntrials = 0; nstaken < nstarget && |
485 |
+ |
ntrials < maxiter; ntrials++) { |
486 |
+ |
if (ntrials) |
487 |
+ |
d = frandom(); |
488 |
+ |
else |
489 |
+ |
d = urand(ilhash(dimlist,ndims)+samplendx); |
490 |
+ |
multisamp(rv, 2, d); |
491 |
+ |
d = 2.0*PI * rv[0]; |
492 |
+ |
cosp = tcos(d); |
493 |
+ |
sinp = tsin(d); |
494 |
+ |
if ((0. <= specjitter) & (specjitter < 1.)) |
495 |
+ |
rv[1] = 1.0 - specjitter*rv[1]; |
496 |
+ |
if (rv[1] <= FTINY) |
497 |
+ |
d = 1.0; |
498 |
+ |
else |
499 |
+ |
d = sqrt( np->alpha2 * -log(rv[1]) ); |
500 |
+ |
for (i = 0; i < 3; i++) |
501 |
+ |
sr.rdir[i] = np->prdir[i] + d*(cosp*u[i] + sinp*v[i]); |
502 |
+ |
/* sample rejection test */ |
503 |
+ |
if (DOT(sr.rdir, np->rp->ron) >= -FTINY) |
504 |
+ |
continue; |
505 |
+ |
normalize(sr.rdir); /* OK, normalize */ |
506 |
+ |
if (nstaken) /* multi-sampling */ |
507 |
+ |
rayclear(&sr); |
508 |
+ |
rayvalue(&sr); |
509 |
+ |
multcolor(sr.rcol, sr.rcoef); |
510 |
+ |
addcolor(np->rp->rcol, sr.rcol); |
511 |
+ |
++nstaken; |
512 |
+ |
} |
513 |
+ |
ndims--; |
514 |
+ |
} |
515 |
|
} |