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/* Copyright (c) 1991 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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* Routines to do the actual calcultion and output for mkillum |
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* Routines to do the actual calculation for mkillum |
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*/ |
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|
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#include "mkillum.h" |
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#include <string.h> |
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#include "mkillum.h" |
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#include "face.h" |
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|
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#include "cone.h" |
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#include "source.h" |
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#include "paths.h" |
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|
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#include "random.h" |
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#ifndef R_EPS |
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#define R_EPS 0.005 /* relative epsilon for ray origin */ |
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#endif |
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|
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COLORV * distarr = NULL; /* distribution array */ |
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int distsiz = 0; |
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|
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printobj(mod, obj) /* print out an object */ |
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char *mod; |
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register OBJREC *obj; |
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|
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void |
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newdist( /* allocate & clear distribution array */ |
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int siz |
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) |
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{ |
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register int i; |
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if (siz <= 0) { |
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if (distsiz > 0) |
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free(distarr); |
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distarr = NULL; |
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distsiz = 0; |
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return; |
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} |
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if (distsiz < siz) { |
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if (distsiz > 0) |
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free(distarr); |
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distarr = (COLORV *)malloc(sizeof(COLOR)*siz); |
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if (distarr == NULL) |
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error(SYSTEM, "out of memory in newdist"); |
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distsiz = siz; |
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} |
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memset(distarr, '\0', sizeof(COLOR)*siz); |
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} |
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|
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printf("\n%s %s %s", mod, ofun[obj->otype].funame, obj->oname); |
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printf("\n%d", obj->oargs.nsargs); |
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for (i = 0; i < obj->oargs.nsargs; i++) |
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printf(" %s", obj->oargs.sarg[i]); |
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#ifdef IARGS |
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printf("\n%d", obj->oargs.niargs); |
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for (i = 0; i < obj->oargs.niargs; i++) |
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printf(" %d", obj->oargs.iarg[i]); |
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#else |
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printf("\n0"); |
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#endif |
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printf("\n%d", obj->oargs.nfargs); |
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for (i = 0; i < obj->oargs.nfargs; i++) { |
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if (i%3 == 0) |
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putchar('\n'); |
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printf(" %18.12g", obj->oargs.farg[i]); |
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|
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int |
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process_ray( /* process a ray result or report error */ |
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RAY *r, |
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int rv |
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) |
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{ |
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COLORV *colp; |
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|
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if (rv == 0) /* no result ready */ |
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return(0); |
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if (rv < 0) |
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error(USER, "ray tracing process died"); |
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if (r->rno >= distsiz) |
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error(INTERNAL, "bad returned index in process_ray"); |
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multcolor(r->rcol, r->rcoef); /* in case it's a source ray */ |
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colp = &distarr[r->rno * 3]; |
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addcolor(colp, r->rcol); |
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return(1); |
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} |
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|
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|
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void |
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raysamp( /* queue a ray sample */ |
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int ndx, |
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FVECT org, |
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FVECT dir |
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) |
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{ |
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RAY myRay; |
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int rv; |
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|
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if ((ndx < 0) | (ndx >= distsiz)) |
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error(INTERNAL, "bad index in raysamp"); |
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VCOPY(myRay.rorg, org); |
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VCOPY(myRay.rdir, dir); |
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myRay.rmax = .0; |
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rayorigin(&myRay, PRIMARY|SPECULAR, NULL, NULL); |
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myRay.rno = ndx; |
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/* queue ray, check result */ |
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process_ray(&myRay, ray_pqueue(&myRay)); |
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} |
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|
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|
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void |
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srcsamps( /* sample sources from this surface position */ |
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struct illum_args *il, |
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FVECT org, |
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double eps, |
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MAT4 ixfm |
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) |
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{ |
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int nalt=1, nazi=1; |
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SRCINDEX si; |
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RAY sr; |
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FVECT v; |
103 |
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double d; |
104 |
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int i, j; |
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/* get sampling density */ |
106 |
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if (il->sampdens > 0) { |
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i = PI * il->sampdens; |
108 |
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nalt = sqrt(i/PI) + .5; |
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nazi = PI*nalt + .5; |
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} |
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putchar('\n'); |
111 |
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initsrcindex(&si); /* loop over (sub)sources */ |
112 |
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for ( ; ; ) { |
113 |
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VCOPY(sr.rorg, org); /* pick side to shoot from */ |
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samplendx++; /* increment sample counter */ |
115 |
> |
if (!srcray(&sr, NULL, &si)) |
116 |
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break; /* end of sources */ |
117 |
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/* index direction */ |
118 |
> |
if (ixfm != NULL) |
119 |
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multv3(v, sr.rdir, ixfm); |
120 |
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else |
121 |
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VCOPY(v, sr.rdir); |
122 |
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if (v[2] >= -FTINY) |
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continue; /* only sample transmission */ |
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v[0] = -v[0]; v[1] = -v[1]; v[2] = -v[2]; |
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sr.rno = flatindex(v, nalt, nazi); |
126 |
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d = nalt*nazi*(1./PI) * v[2]; |
127 |
> |
d *= si.dom; /* solid angle correction */ |
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scalecolor(sr.rcoef, d); |
129 |
> |
VSUM(sr.rorg, sr.rorg, sr.rdir, -eps); |
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> |
process_ray(&sr, ray_pqueue(&sr)); |
131 |
> |
} |
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} |
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|
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|
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o_default(ob, il, rt, nm) /* default illum action */ |
136 |
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OBJREC *ob; |
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struct illum_args *il; |
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struct rtproc *rt; |
51 |
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char *nm; |
135 |
> |
void |
136 |
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rayclean() /* finish all pending rays */ |
137 |
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{ |
138 |
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RAY myRay; |
139 |
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|
140 |
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while (process_ray(&myRay, ray_presult(&myRay, 0))) |
141 |
+ |
; |
142 |
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} |
143 |
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|
144 |
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|
145 |
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static void |
146 |
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mkaxes( /* compute u and v to go with n */ |
147 |
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FVECT u, |
148 |
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FVECT v, |
149 |
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FVECT n |
150 |
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) |
151 |
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{ |
152 |
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getperpendicular(u, n, 1); |
153 |
+ |
fcross(v, n, u); |
154 |
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} |
155 |
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|
156 |
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|
157 |
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static void |
158 |
+ |
rounddir( /* compute uniform spherical direction */ |
159 |
+ |
FVECT dv, |
160 |
+ |
double alt, |
161 |
+ |
double azi |
162 |
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) |
163 |
+ |
{ |
164 |
+ |
double d1, d2; |
165 |
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|
166 |
+ |
dv[2] = 1. - 2.*alt; |
167 |
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d1 = sqrt(1. - dv[2]*dv[2]); |
168 |
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d2 = 2.*PI * azi; |
169 |
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dv[0] = d1*cos(d2); |
170 |
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dv[1] = d1*sin(d2); |
171 |
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} |
172 |
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|
173 |
+ |
|
174 |
+ |
void |
175 |
+ |
flatdir( /* compute uniform hemispherical direction */ |
176 |
+ |
FVECT dv, |
177 |
+ |
double alt, |
178 |
+ |
double azi |
179 |
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) |
180 |
+ |
{ |
181 |
+ |
double d1, d2; |
182 |
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|
183 |
+ |
d1 = sqrt(alt); |
184 |
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d2 = 2.*PI * azi; |
185 |
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dv[0] = d1*cos(d2); |
186 |
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dv[1] = d1*sin(d2); |
187 |
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dv[2] = sqrt(1. - alt); |
188 |
+ |
} |
189 |
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|
190 |
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|
191 |
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int |
192 |
+ |
flatindex( /* compute index for hemispherical direction */ |
193 |
+ |
FVECT dv, |
194 |
+ |
int nalt, |
195 |
+ |
int nazi |
196 |
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) |
197 |
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{ |
198 |
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double d; |
199 |
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int i, j; |
200 |
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|
201 |
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d = 1.0 - dv[2]*dv[2]; |
202 |
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i = d*nalt; |
203 |
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d = atan2(dv[1], dv[0]) * (0.5/PI); |
204 |
+ |
if (d < 0.0) d += 1.0; |
205 |
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j = d*nazi + 0.5; |
206 |
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if (j >= nazi) j = 0; |
207 |
+ |
return(i*nazi + j); |
208 |
+ |
} |
209 |
+ |
|
210 |
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|
211 |
+ |
int |
212 |
+ |
my_default( /* default illum action */ |
213 |
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OBJREC *ob, |
214 |
+ |
struct illum_args *il, |
215 |
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char *nm |
216 |
+ |
) |
217 |
+ |
{ |
218 |
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sprintf(errmsg, "(%s): cannot make illum for %s \"%s\"", |
219 |
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nm, ofun[ob->otype].funame, ob->oname); |
220 |
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error(WARNING, errmsg); |
221 |
< |
if (!(il->flags & IL_LIGHT)) |
222 |
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printobj(il->altname, ob); |
221 |
> |
printobj(il->altmat, ob); |
222 |
> |
return(1); |
223 |
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} |
224 |
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|
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|
226 |
< |
o_face(ob, il, rt, nm) /* make an illum face */ |
227 |
< |
OBJREC *ob; |
228 |
< |
struct illum_args *il; |
229 |
< |
struct rtproc *rt; |
230 |
< |
char *nm; |
226 |
> |
int |
227 |
> |
my_face( /* make an illum face */ |
228 |
> |
OBJREC *ob, |
229 |
> |
struct illum_args *il, |
230 |
> |
char *nm |
231 |
> |
) |
232 |
|
{ |
233 |
+ |
int dim[2]; |
234 |
+ |
int n, nalt, nazi, alti; |
235 |
+ |
double sp[2], r1, r2; |
236 |
+ |
int h; |
237 |
+ |
FVECT dn, org, dir; |
238 |
+ |
FVECT u, v; |
239 |
+ |
double ur[2], vr[2]; |
240 |
+ |
double epsilon; |
241 |
+ |
MAT4 xfm; |
242 |
+ |
char xfrot[64]; |
243 |
+ |
int nallow; |
244 |
+ |
FACE *fa; |
245 |
+ |
int i, j; |
246 |
+ |
/* get/check arguments */ |
247 |
+ |
fa = getface(ob); |
248 |
+ |
if (fa->area == 0.0) { |
249 |
+ |
freeface(ob); |
250 |
+ |
return(my_default(ob, il, nm)); |
251 |
+ |
} |
252 |
+ |
/* set up sampling */ |
253 |
+ |
if (il->sampdens <= 0) { |
254 |
+ |
nalt = nazi = 1; /* diffuse assumption */ |
255 |
+ |
} else { |
256 |
+ |
n = PI * il->sampdens; |
257 |
+ |
nalt = sqrt(n/PI) + .5; |
258 |
+ |
nazi = PI*nalt + .5; |
259 |
+ |
} |
260 |
+ |
n = nazi*nalt; |
261 |
+ |
newdist(n); |
262 |
+ |
/* take first edge >= sqrt(area) */ |
263 |
+ |
for (j = fa->nv-1, i = 0; i < fa->nv; j = i++) { |
264 |
+ |
u[0] = VERTEX(fa,i)[0] - VERTEX(fa,j)[0]; |
265 |
+ |
u[1] = VERTEX(fa,i)[1] - VERTEX(fa,j)[1]; |
266 |
+ |
u[2] = VERTEX(fa,i)[2] - VERTEX(fa,j)[2]; |
267 |
+ |
if ((r1 = DOT(u,u)) >= fa->area-FTINY) |
268 |
+ |
break; |
269 |
+ |
} |
270 |
+ |
if (i < fa->nv) { /* got one! -- let's align our axes */ |
271 |
+ |
r2 = 1.0/sqrt(r1); |
272 |
+ |
u[0] *= r2; u[1] *= r2; u[2] *= r2; |
273 |
+ |
fcross(v, fa->norm, u); |
274 |
+ |
} else /* oh well, we'll just have to wing it */ |
275 |
+ |
mkaxes(u, v, fa->norm); |
276 |
+ |
/* now, find limits in (u,v) coordinates */ |
277 |
+ |
ur[0] = vr[0] = FHUGE; |
278 |
+ |
ur[1] = vr[1] = -FHUGE; |
279 |
+ |
for (i = 0; i < fa->nv; i++) { |
280 |
+ |
r1 = DOT(VERTEX(fa,i),u); |
281 |
+ |
if (r1 < ur[0]) ur[0] = r1; |
282 |
+ |
if (r1 > ur[1]) ur[1] = r1; |
283 |
+ |
r2 = DOT(VERTEX(fa,i),v); |
284 |
+ |
if (r2 < vr[0]) vr[0] = r2; |
285 |
+ |
if (r2 > vr[1]) vr[1] = r2; |
286 |
+ |
} |
287 |
+ |
dim[0] = random(); |
288 |
+ |
/* sample polygon */ |
289 |
+ |
nallow = 5*n*il->nsamps; |
290 |
+ |
epsilon = R_EPS*sqrt(fa->area); |
291 |
+ |
for (dim[1] = 0; dim[1] < n; dim[1]++) |
292 |
+ |
for (i = 0; i < il->nsamps; i++) { |
293 |
+ |
/* randomize direction */ |
294 |
+ |
h = ilhash(dim, 2) + i; |
295 |
+ |
multisamp(sp, 2, urand(h)); |
296 |
+ |
alti = dim[1]/nazi; |
297 |
+ |
r1 = (alti + sp[0])/nalt; |
298 |
+ |
r2 = (dim[1] - alti*nazi + sp[1] - .5)/nazi; |
299 |
+ |
flatdir(dn, r1, r2); |
300 |
+ |
for (j = 0; j < 3; j++) |
301 |
+ |
dir[j] = -dn[0]*u[j] - dn[1]*v[j] - |
302 |
+ |
dn[2]*fa->norm[j]; |
303 |
+ |
/* randomize location */ |
304 |
+ |
do { |
305 |
+ |
multisamp(sp, 2, urand(h+4862+nallow)); |
306 |
+ |
r1 = ur[0] + (ur[1]-ur[0]) * sp[0]; |
307 |
+ |
r2 = vr[0] + (vr[1]-vr[0]) * sp[1]; |
308 |
+ |
for (j = 0; j < 3; j++) |
309 |
+ |
org[j] = r1*u[j] + r2*v[j] |
310 |
+ |
+ fa->offset*fa->norm[j]; |
311 |
+ |
} while (!inface(org, fa) && nallow-- > 0); |
312 |
+ |
if (nallow < 0) { |
313 |
+ |
objerror(ob, WARNING, "bad aspect"); |
314 |
+ |
rayclean(); |
315 |
+ |
freeface(ob); |
316 |
+ |
return(my_default(ob, il, nm)); |
317 |
+ |
} |
318 |
+ |
VSUM(org, org, dir, -epsilon); |
319 |
+ |
/* send sample */ |
320 |
+ |
raysamp(dim[1], org, dir); |
321 |
+ |
} |
322 |
+ |
/* add in direct component? */ |
323 |
+ |
if (il->flags & IL_LIGHT) { |
324 |
+ |
MAT4 ixfm; |
325 |
+ |
for (i = 3; i--; ) { |
326 |
+ |
ixfm[i][0] = u[i]; |
327 |
+ |
ixfm[i][1] = v[i]; |
328 |
+ |
ixfm[i][2] = fa->norm[i]; |
329 |
+ |
ixfm[i][3] = 0.; |
330 |
+ |
} |
331 |
+ |
ixfm[3][0] = ixfm[3][1] = ixfm[3][2] = 0.; |
332 |
+ |
ixfm[3][3] = 1.; |
333 |
+ |
dim[0] = random(); |
334 |
+ |
nallow = 10*il->nsamps; |
335 |
+ |
for (i = 0; i < il->nsamps; i++) { |
336 |
+ |
/* randomize location */ |
337 |
+ |
h = dim[0] + samplendx++; |
338 |
+ |
do { |
339 |
+ |
multisamp(sp, 2, urand(h+nallow)); |
340 |
+ |
r1 = ur[0] + (ur[1]-ur[0]) * sp[0]; |
341 |
+ |
r2 = vr[0] + (vr[1]-vr[0]) * sp[1]; |
342 |
+ |
for (j = 0; j < 3; j++) |
343 |
+ |
org[j] = r1*u[j] + r2*v[j] |
344 |
+ |
+ fa->offset*fa->norm[j]; |
345 |
+ |
} while (!inface(org, fa) && nallow-- > 0); |
346 |
+ |
if (nallow < 0) { |
347 |
+ |
objerror(ob, WARNING, "bad aspect"); |
348 |
+ |
rayclean(); |
349 |
+ |
freeface(ob); |
350 |
+ |
return(my_default(ob, il, nm)); |
351 |
+ |
} |
352 |
+ |
/* sample source rays */ |
353 |
+ |
srcsamps(il, org, epsilon, ixfm); |
354 |
+ |
} |
355 |
+ |
} |
356 |
+ |
/* wait for all rays to finish */ |
357 |
+ |
rayclean(); |
358 |
+ |
/* write out the face and its distribution */ |
359 |
+ |
if (average(il, distarr, n)) { |
360 |
+ |
if (il->sampdens > 0) |
361 |
+ |
flatout(il, distarr, nalt, nazi, u, v, fa->norm); |
362 |
+ |
illumout(il, ob); |
363 |
+ |
} else |
364 |
+ |
printobj(il->altmat, ob); |
365 |
+ |
/* clean up */ |
366 |
+ |
freeface(ob); |
367 |
+ |
return(0); |
368 |
|
} |
369 |
|
|
370 |
|
|
371 |
< |
o_sphere(ob, il, rt, nm) /* make an illum sphere */ |
372 |
< |
OBJREC *ob; |
373 |
< |
struct illum_args *il; |
374 |
< |
struct rtproc *rt; |
375 |
< |
char *nm; |
371 |
> |
int |
372 |
> |
my_sphere( /* make an illum sphere */ |
373 |
> |
OBJREC *ob, |
374 |
> |
struct illum_args *il, |
375 |
> |
char *nm |
376 |
> |
) |
377 |
|
{ |
378 |
< |
int dim[4]; |
378 |
> |
int dim[3]; |
379 |
|
int n, nalt, nazi; |
380 |
< |
float *distarr; |
381 |
< |
double r1, r2; |
80 |
< |
FVECT pos, dir; |
380 |
> |
double sp[4], r1, r2, r3; |
381 |
> |
FVECT org, dir; |
382 |
|
FVECT u, v; |
383 |
< |
register int i, j; |
383 |
> |
int i, j; |
384 |
|
/* check arguments */ |
385 |
|
if (ob->oargs.nfargs != 4) |
386 |
|
objerror(ob, USER, "bad # of arguments"); |
387 |
|
/* set up sampling */ |
388 |
< |
n = 4.*PI * il->sampdens; |
389 |
< |
nalt = sqrt(n/PI) + .5; |
390 |
< |
nazi = PI*nalt + .5; |
388 |
> |
if (il->sampdens <= 0) |
389 |
> |
nalt = nazi = 1; |
390 |
> |
else { |
391 |
> |
n = 4.*PI * il->sampdens; |
392 |
> |
nalt = sqrt(2./PI*n) + .5; |
393 |
> |
nazi = PI/2.*nalt + .5; |
394 |
> |
} |
395 |
|
n = nalt*nazi; |
396 |
< |
distarr = (float *)calloc(n, 3*sizeof(float)); |
92 |
< |
if (distarr == NULL) |
93 |
< |
error(SYSTEM, "out of memory in o_sphere"); |
396 |
> |
newdist(n); |
397 |
|
dim[0] = random(); |
398 |
|
/* sample sphere */ |
399 |
|
for (dim[1] = 0; dim[1] < nalt; dim[1]++) |
400 |
|
for (dim[2] = 0; dim[2] < nazi; dim[2]++) |
401 |
|
for (i = 0; i < il->nsamps; i++) { |
402 |
+ |
/* next sample point */ |
403 |
+ |
multisamp(sp, 4, urand(ilhash(dim,3)+i)); |
404 |
|
/* random direction */ |
405 |
< |
dim[3] = 1; |
406 |
< |
r1 = (dim[1]+urand(urind(ilhash(dim,4),i)))/nalt; |
102 |
< |
dim[3] = 2; |
103 |
< |
r2 = (dim[2]+urand(urind(ilhash(dim,4),i)))/nalt; |
405 |
> |
r1 = (dim[1] + sp[0])/nalt; |
406 |
> |
r2 = (dim[2] + sp[1] - .5)/nazi; |
407 |
|
rounddir(dir, r1, r2); |
408 |
|
/* random location */ |
409 |
|
mkaxes(u, v, dir); /* yuck! */ |
410 |
< |
dim[3] = 3; |
411 |
< |
r1 = sqrt(urand(urind(ilhash(dim,4),i))); |
412 |
< |
dim[3] = 4; |
413 |
< |
r2 = 2.*PI*urand(urind(ilhash(dim,4),i)); |
414 |
< |
for (j = 0; j < 3; j++) |
415 |
< |
org[j] = obj->oargs.farg[j] + obj->oargs.farg[3] * |
416 |
< |
( r1*cos(r2)*u[j] + r1*sin(r2)*v[j] |
417 |
< |
- sqrt(1.01-r1*r1)*dir[j] ); |
418 |
< |
|
410 |
> |
r3 = sqrt(sp[2]); |
411 |
> |
r2 = 2.*PI*sp[3]; |
412 |
> |
r1 = r3*ob->oargs.farg[3]*cos(r2); |
413 |
> |
r2 = r3*ob->oargs.farg[3]*sin(r2); |
414 |
> |
r3 = ob->oargs.farg[3]*sqrt(1.01-r3*r3); |
415 |
> |
for (j = 0; j < 3; j++) { |
416 |
> |
org[j] = ob->oargs.farg[j] + r1*u[j] + r2*v[j] + |
417 |
> |
r3*dir[j]; |
418 |
> |
dir[j] = -dir[j]; |
419 |
> |
} |
420 |
|
/* send sample */ |
421 |
< |
raysamp(distarr+dim[1]*nazi+dim[2], org, dir, rt); |
421 |
> |
raysamp(dim[1]*nazi+dim[2], org, dir); |
422 |
|
} |
423 |
< |
rayflush(rt); |
424 |
< |
/* write out distribution */ |
425 |
< |
rounddist(distarr, nalt, nazi, il, ob); |
423 |
> |
/* wait for all rays to finish */ |
424 |
> |
rayclean(); |
425 |
> |
/* write out the sphere and its distribution */ |
426 |
> |
if (average(il, distarr, n)) { |
427 |
> |
if (il->sampdens > 0) |
428 |
> |
roundout(il, distarr, nalt, nazi); |
429 |
> |
else |
430 |
> |
objerror(ob, WARNING, "diffuse distribution"); |
431 |
> |
illumout(il, ob); |
432 |
> |
} else |
433 |
> |
printobj(il->altmat, ob); |
434 |
|
/* clean up */ |
435 |
< |
free((char *)distarr); |
435 |
> |
return(1); |
436 |
|
} |
437 |
|
|
438 |
|
|
439 |
< |
o_ring(ob, il, rt, nm) /* make an illum ring */ |
440 |
< |
OBJREC *ob; |
441 |
< |
struct illum_args *il; |
442 |
< |
struct rtproc *rt; |
443 |
< |
char *nm; |
439 |
> |
int |
440 |
> |
my_ring( /* make an illum ring */ |
441 |
> |
OBJREC *ob, |
442 |
> |
struct illum_args *il, |
443 |
> |
char *nm |
444 |
> |
) |
445 |
|
{ |
446 |
< |
} |
447 |
< |
|
448 |
< |
|
449 |
< |
raysamp(res, org, dir, rt) /* compute a ray sample */ |
450 |
< |
float res[3]; |
451 |
< |
FVECT org, dir; |
452 |
< |
register struct rtproc *rt; |
453 |
< |
{ |
454 |
< |
register float *fp; |
455 |
< |
|
456 |
< |
if (rt->nrays == rt->bsiz) |
457 |
< |
rayflush(rt); |
458 |
< |
rt->dest[rt->nrays] = res; |
459 |
< |
fp = rt->buf + 6*rt->nrays++; |
460 |
< |
*fp++ = org[0]; *fp++ = org[1]; *fp++ = org[2]; |
461 |
< |
*fp++ = dir[0]; *fp++ = dir[1]; *fp = dir[2]; |
462 |
< |
} |
463 |
< |
|
464 |
< |
|
465 |
< |
rayflush(rt) /* flush buffered rays */ |
466 |
< |
register struct rtproc *rt; |
154 |
< |
{ |
155 |
< |
register int i; |
156 |
< |
|
157 |
< |
if (rt->nrays <= 0) |
158 |
< |
return; |
159 |
< |
i = 6*rt->nrays + 3; |
160 |
< |
rt->buf[i++] = 0.; rt->buf[i++] = 0.; rt->buf[i] = 0.; |
161 |
< |
if ( process(rt->pd, (char *)rt->buf, (char *)rt->buf, |
162 |
< |
3*sizeof(float)*rt->nrays, |
163 |
< |
6*sizeof(float)*(rt->nrays+1)) < |
164 |
< |
3*sizeof(float)*rt->nrays ) |
165 |
< |
error(SYSTEM, "error reading from rtrace process"); |
166 |
< |
i = rt->nrays; |
167 |
< |
while (i--) { |
168 |
< |
rt->dest[i][0] += rt->buf[3*i]; |
169 |
< |
rt->dest[i][1] += rt->buf[3*i+1]; |
170 |
< |
rt->dest[i][2] += rt->buf[3*i+2]; |
446 |
> |
int dim[2]; |
447 |
> |
int n, nalt, nazi, alti; |
448 |
> |
double sp[2], r1, r2, r3; |
449 |
> |
double epsilon; |
450 |
> |
int h; |
451 |
> |
FVECT dn, org, dir; |
452 |
> |
FVECT u, v; |
453 |
> |
MAT4 xfm; |
454 |
> |
CONE *co; |
455 |
> |
int i, j; |
456 |
> |
/* get/check arguments */ |
457 |
> |
co = getcone(ob, 0); |
458 |
> |
if (co == NULL) |
459 |
> |
objerror(ob, USER, "cannot create illum"); |
460 |
> |
/* set up sampling */ |
461 |
> |
if (il->sampdens <= 0) { |
462 |
> |
nalt = nazi = 1; /* diffuse assumption */ |
463 |
> |
} else { |
464 |
> |
n = PI * il->sampdens; |
465 |
> |
nalt = sqrt(n/PI) + .5; |
466 |
> |
nazi = PI*nalt + .5; |
467 |
|
} |
468 |
< |
rt->nrays = 0; |
468 |
> |
epsilon = R_EPS*CO_R1(co); |
469 |
> |
n = nazi*nalt; |
470 |
> |
newdist(n); |
471 |
> |
mkaxes(u, v, co->ad); |
472 |
> |
dim[0] = random(); |
473 |
> |
/* sample disk */ |
474 |
> |
for (dim[1] = 0; dim[1] < n; dim[1]++) |
475 |
> |
for (i = 0; i < il->nsamps; i++) { |
476 |
> |
/* next sample point */ |
477 |
> |
h = ilhash(dim,2) + i; |
478 |
> |
/* randomize direction */ |
479 |
> |
multisamp(sp, 2, urand(h)); |
480 |
> |
alti = dim[1]/nazi; |
481 |
> |
r1 = (alti + sp[0])/nalt; |
482 |
> |
r2 = (dim[1] - alti*nazi + sp[1] - .5)/nazi; |
483 |
> |
flatdir(dn, r1, r2); |
484 |
> |
for (j = 0; j < 3; j++) |
485 |
> |
dir[j] = -dn[0]*u[j] - dn[1]*v[j] - dn[2]*co->ad[j]; |
486 |
> |
/* randomize location */ |
487 |
> |
multisamp(sp, 2, urand(h+8371)); |
488 |
> |
r3 = sqrt(CO_R0(co)*CO_R0(co) + |
489 |
> |
sp[0]*(CO_R1(co)*CO_R1(co) - CO_R0(co)*CO_R0(co))); |
490 |
> |
r2 = 2.*PI*sp[1]; |
491 |
> |
r1 = r3*cos(r2); |
492 |
> |
r2 = r3*sin(r2); |
493 |
> |
for (j = 0; j < 3; j++) |
494 |
> |
org[j] = CO_P0(co)[j] + r1*u[j] + r2*v[j] + |
495 |
> |
epsilon*co->ad[j]; |
496 |
> |
/* send sample */ |
497 |
> |
raysamp(dim[1], org, dir); |
498 |
> |
} |
499 |
> |
/* add in direct component? */ |
500 |
> |
if (il->flags & IL_LIGHT) { |
501 |
> |
MAT4 ixfm; |
502 |
> |
for (i = 3; i--; ) { |
503 |
> |
ixfm[i][0] = u[i]; |
504 |
> |
ixfm[i][1] = v[i]; |
505 |
> |
ixfm[i][2] = co->ad[i]; |
506 |
> |
ixfm[i][3] = 0.; |
507 |
> |
} |
508 |
> |
ixfm[3][0] = ixfm[3][1] = ixfm[3][2] = 0.; |
509 |
> |
ixfm[3][3] = 1.; |
510 |
> |
dim[0] = random(); |
511 |
> |
for (i = 0; i < il->nsamps; i++) { |
512 |
> |
/* randomize location */ |
513 |
> |
h = dim[0] + samplendx++; |
514 |
> |
multisamp(sp, 2, urand(h)); |
515 |
> |
r3 = sqrt(CO_R0(co)*CO_R0(co) + |
516 |
> |
sp[0]*(CO_R1(co)*CO_R1(co) - CO_R0(co)*CO_R0(co))); |
517 |
> |
r2 = 2.*PI*sp[1]; |
518 |
> |
r1 = r3*cos(r2); |
519 |
> |
r2 = r3*sin(r2); |
520 |
> |
for (j = 0; j < 3; j++) |
521 |
> |
org[j] = CO_P0(co)[j] + r1*u[j] + r2*v[j]; |
522 |
> |
/* sample source rays */ |
523 |
> |
srcsamps(il, org, epsilon, ixfm); |
524 |
> |
} |
525 |
> |
} |
526 |
> |
/* wait for all rays to finish */ |
527 |
> |
rayclean(); |
528 |
> |
/* write out the ring and its distribution */ |
529 |
> |
if (average(il, distarr, n)) { |
530 |
> |
if (il->sampdens > 0) |
531 |
> |
flatout(il, distarr, nalt, nazi, u, v, co->ad); |
532 |
> |
illumout(il, ob); |
533 |
> |
} else |
534 |
> |
printobj(il->altmat, ob); |
535 |
> |
/* clean up */ |
536 |
> |
freecone(ob); |
537 |
> |
return(1); |
538 |
|
} |