| 1 |
greg |
2.7 |
/* Copyright (c) 1995 Regents of the University of California */
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| 2 |
greg |
1.1 |
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| 3 |
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#ifndef lint
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| 4 |
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static char SCCSid[] = "$SunId$ LBL";
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| 5 |
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#endif
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| 6 |
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| 7 |
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/*
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| 8 |
greg |
1.4 |
* Routines to do the actual calculation for mkillum
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| 9 |
greg |
1.1 |
*/
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| 10 |
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| 11 |
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#include "mkillum.h"
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| 12 |
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| 13 |
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#include "face.h"
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| 14 |
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| 15 |
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#include "cone.h"
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| 16 |
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| 17 |
greg |
1.2 |
#include "random.h"
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| 18 |
greg |
1.1 |
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| 19 |
greg |
1.2 |
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| 20 |
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o_default(ob, il, rt, nm) /* default illum action */
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| 21 |
greg |
1.1 |
OBJREC *ob;
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| 22 |
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struct illum_args *il;
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| 23 |
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struct rtproc *rt;
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| 24 |
greg |
1.2 |
char *nm;
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| 25 |
greg |
1.1 |
{
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| 26 |
greg |
1.2 |
sprintf(errmsg, "(%s): cannot make illum for %s \"%s\"",
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| 27 |
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nm, ofun[ob->otype].funame, ob->oname);
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| 28 |
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error(WARNING, errmsg);
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| 29 |
greg |
2.2 |
printobj(il->altmat, ob);
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| 30 |
greg |
1.2 |
}
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| 31 |
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| 32 |
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| 33 |
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o_face(ob, il, rt, nm) /* make an illum face */
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OBJREC *ob;
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| 35 |
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struct illum_args *il;
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| 36 |
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struct rtproc *rt;
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| 37 |
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char *nm;
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| 38 |
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{
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| 39 |
greg |
1.3 |
#define MAXMISS (5*n*il->nsamps)
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| 40 |
greg |
1.10 |
int dim[3];
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| 41 |
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int n, nalt, nazi, h;
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| 42 |
greg |
1.3 |
float *distarr;
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| 43 |
greg |
1.10 |
double sp[2], r1, r2;
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| 44 |
greg |
1.4 |
FVECT dn, org, dir;
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| 45 |
greg |
1.3 |
FVECT u, v;
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| 46 |
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double ur[2], vr[2];
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| 47 |
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int nmisses;
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| 48 |
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register FACE *fa;
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| 49 |
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register int i, j;
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| 50 |
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/* get/check arguments */
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fa = getface(ob);
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| 52 |
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if (fa->area == 0.0) {
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| 53 |
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freeface(ob);
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| 54 |
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o_default(ob, il, rt, nm);
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| 55 |
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return;
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}
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| 57 |
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/* set up sampling */
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| 58 |
greg |
1.11 |
if (il->sampdens <= 0)
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| 59 |
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nalt = nazi = 1;
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| 60 |
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else {
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| 61 |
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n = PI * il->sampdens;
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nalt = sqrt(n/PI) + .5;
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nazi = PI*nalt + .5;
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| 64 |
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}
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greg |
1.3 |
n = nalt*nazi;
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distarr = (float *)calloc(n, 3*sizeof(float));
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if (distarr == NULL)
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error(SYSTEM, "out of memory in o_face");
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greg |
2.3 |
/* take first edge longer than sqrt(area) */
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greg |
2.4 |
for (j = fa->nv-1, i = 0; i < fa->nv; j = i++) {
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| 71 |
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u[0] = VERTEX(fa,i)[0] - VERTEX(fa,j)[0];
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u[1] = VERTEX(fa,i)[1] - VERTEX(fa,j)[1];
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u[2] = VERTEX(fa,i)[2] - VERTEX(fa,j)[2];
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greg |
2.5 |
if ((r1 = DOT(u,u)) >= fa->area-FTINY)
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greg |
2.3 |
break;
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}
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if (i < fa->nv) { /* got one! -- let's align our axes */
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greg |
2.5 |
r2 = 1.0/sqrt(r1);
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u[0] *= r2; u[1] *= r2; u[2] *= r2;
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greg |
2.3 |
fcross(v, fa->norm, u);
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| 81 |
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} else /* oh well, we'll just have to wing it */
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mkaxes(u, v, fa->norm);
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/* now, find limits in (u,v) coordinates */
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greg |
1.3 |
ur[0] = vr[0] = FHUGE;
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ur[1] = vr[1] = -FHUGE;
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for (i = 0; i < fa->nv; i++) {
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r1 = DOT(VERTEX(fa,i),u);
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| 88 |
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if (r1 < ur[0]) ur[0] = r1;
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if (r1 > ur[1]) ur[1] = r1;
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| 90 |
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r2 = DOT(VERTEX(fa,i),v);
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if (r2 < vr[0]) vr[0] = r2;
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| 92 |
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if (r2 > vr[1]) vr[1] = r2;
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| 93 |
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}
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| 94 |
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dim[0] = random();
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/* sample polygon */
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nmisses = 0;
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| 97 |
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for (dim[1] = 0; dim[1] < nalt; dim[1]++)
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| 98 |
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for (dim[2] = 0; dim[2] < nazi; dim[2]++)
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| 99 |
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for (i = 0; i < il->nsamps; i++) {
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| 100 |
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/* random direction */
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greg |
1.10 |
h = ilhash(dim, 3) + i;
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| 102 |
greg |
1.11 |
multisamp(sp, 2, urand(h));
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| 103 |
greg |
1.10 |
r1 = (dim[1] + sp[0])/nalt;
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| 104 |
greg |
1.13 |
r2 = (dim[2] + sp[1] - .5)/nazi;
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greg |
1.3 |
flatdir(dn, r1, r2);
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| 106 |
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for (j = 0; j < 3; j++)
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| 107 |
greg |
1.5 |
dir[j] = -dn[0]*u[j] - dn[1]*v[j] - dn[2]*fa->norm[j];
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greg |
1.3 |
/* random location */
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do {
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greg |
1.11 |
multisamp(sp, 2, urand(h+4862+nmisses));
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greg |
1.10 |
r1 = ur[0] + (ur[1]-ur[0]) * sp[0];
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r2 = vr[0] + (vr[1]-vr[0]) * sp[1];
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| 113 |
greg |
1.3 |
for (j = 0; j < 3; j++)
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org[j] = r1*u[j] + r2*v[j]
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| 115 |
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+ fa->offset*fa->norm[j];
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| 116 |
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} while (!inface(org, fa) && nmisses++ < MAXMISS);
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| 117 |
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if (nmisses > MAXMISS) {
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| 118 |
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objerror(ob, WARNING, "bad aspect");
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| 119 |
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rt->nrays = 0;
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| 120 |
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freeface(ob);
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| 121 |
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free((char *)distarr);
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| 122 |
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o_default(ob, il, rt, nm);
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| 123 |
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return;
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| 124 |
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}
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| 125 |
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for (j = 0; j < 3; j++)
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| 126 |
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org[j] += .001*fa->norm[j];
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| 127 |
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/* send sample */
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| 128 |
greg |
1.7 |
raysamp(distarr+3*(dim[1]*nazi+dim[2]), org, dir, rt);
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| 129 |
greg |
1.3 |
}
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| 130 |
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rayflush(rt);
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| 131 |
greg |
1.11 |
/* write out the face and its distribution */
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| 132 |
greg |
1.12 |
if (average(il, distarr, nalt*nazi)) {
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| 133 |
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if (il->sampdens > 0)
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flatout(il, distarr, nalt, nazi, u, v, fa->norm);
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| 135 |
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illumout(il, ob);
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| 136 |
greg |
2.2 |
} else
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| 137 |
greg |
1.12 |
printobj(il->altmat, ob);
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| 138 |
greg |
1.3 |
/* clean up */
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| 139 |
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freeface(ob);
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| 140 |
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free((char *)distarr);
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| 141 |
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#undef MAXMISS
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| 142 |
greg |
1.2 |
}
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| 143 |
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| 144 |
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| 145 |
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o_sphere(ob, il, rt, nm) /* make an illum sphere */
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| 146 |
greg |
1.3 |
register OBJREC *ob;
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| 147 |
greg |
1.2 |
struct illum_args *il;
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| 148 |
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struct rtproc *rt;
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| 149 |
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char *nm;
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| 150 |
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{
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| 151 |
greg |
1.10 |
int dim[3];
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| 152 |
greg |
1.2 |
int n, nalt, nazi;
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| 153 |
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float *distarr;
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| 154 |
greg |
1.10 |
double sp[4], r1, r2, r3;
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| 155 |
greg |
1.4 |
FVECT org, dir;
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| 156 |
greg |
1.2 |
FVECT u, v;
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| 157 |
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register int i, j;
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| 158 |
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/* check arguments */
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| 159 |
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if (ob->oargs.nfargs != 4)
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| 160 |
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objerror(ob, USER, "bad # of arguments");
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| 161 |
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/* set up sampling */
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| 162 |
greg |
1.11 |
if (il->sampdens <= 0)
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| 163 |
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nalt = nazi = 1;
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| 164 |
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else {
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| 165 |
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n = 4.*PI * il->sampdens;
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| 166 |
greg |
2.7 |
nalt = sqrt(2./PI*n) + .5;
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| 167 |
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nazi = PI/2.*nalt + .5;
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| 168 |
greg |
1.11 |
}
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| 169 |
greg |
1.2 |
n = nalt*nazi;
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| 170 |
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distarr = (float *)calloc(n, 3*sizeof(float));
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| 171 |
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if (distarr == NULL)
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| 172 |
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error(SYSTEM, "out of memory in o_sphere");
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| 173 |
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dim[0] = random();
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| 174 |
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/* sample sphere */
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| 175 |
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for (dim[1] = 0; dim[1] < nalt; dim[1]++)
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| 176 |
greg |
1.8 |
for (dim[2] = 0; dim[2] < nazi; dim[2]++)
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| 177 |
greg |
1.2 |
for (i = 0; i < il->nsamps; i++) {
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| 178 |
greg |
1.10 |
/* next sample point */
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| 179 |
greg |
1.11 |
multisamp(sp, 4, urand(ilhash(dim,3)+i));
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| 180 |
greg |
1.2 |
/* random direction */
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| 181 |
greg |
1.10 |
r1 = (dim[1] + sp[0])/nalt;
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| 182 |
greg |
1.13 |
r2 = (dim[2] + sp[1] - .5)/nazi;
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| 183 |
greg |
1.2 |
rounddir(dir, r1, r2);
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| 184 |
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/* random location */
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| 185 |
greg |
1.8 |
mkaxes(u, v, dir); /* yuck! */
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| 186 |
greg |
1.10 |
r3 = sqrt(sp[2]);
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| 187 |
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r2 = 2.*PI*sp[3];
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| 188 |
greg |
1.5 |
r1 = r3*ob->oargs.farg[3]*cos(r2);
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| 189 |
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r2 = r3*ob->oargs.farg[3]*sin(r2);
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| 190 |
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r3 = ob->oargs.farg[3]*sqrt(1.01-r3*r3);
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| 191 |
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for (j = 0; j < 3; j++) {
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| 192 |
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org[j] = ob->oargs.farg[j] + r1*u[j] + r2*v[j] +
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| 193 |
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r3*dir[j];
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| 194 |
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dir[j] = -dir[j];
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| 195 |
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}
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| 196 |
greg |
1.2 |
/* send sample */
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| 197 |
greg |
1.7 |
raysamp(distarr+3*(dim[1]*nazi+dim[2]), org, dir, rt);
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| 198 |
greg |
1.2 |
}
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| 199 |
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rayflush(rt);
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| 200 |
greg |
1.11 |
/* write out the sphere and its distribution */
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| 201 |
greg |
1.12 |
if (average(il, distarr, nalt*nazi)) {
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| 202 |
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if (il->sampdens > 0)
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| 203 |
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roundout(il, distarr, nalt, nazi);
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| 204 |
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else
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| 205 |
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objerror(ob, WARNING, "diffuse distribution");
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| 206 |
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illumout(il, ob);
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| 207 |
greg |
2.2 |
} else
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| 208 |
greg |
1.12 |
printobj(il->altmat, ob);
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| 209 |
greg |
1.2 |
/* clean up */
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| 210 |
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free((char *)distarr);
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| 211 |
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}
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| 212 |
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| 213 |
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| 214 |
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o_ring(ob, il, rt, nm) /* make an illum ring */
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| 215 |
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OBJREC *ob;
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| 216 |
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struct illum_args *il;
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| 217 |
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struct rtproc *rt;
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| 218 |
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char *nm;
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| 219 |
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{
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| 220 |
greg |
1.10 |
int dim[3];
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| 221 |
greg |
1.3 |
int n, nalt, nazi;
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| 222 |
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float *distarr;
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| 223 |
greg |
1.10 |
double sp[4], r1, r2, r3;
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| 224 |
greg |
1.4 |
FVECT dn, org, dir;
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| 225 |
greg |
1.3 |
FVECT u, v;
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| 226 |
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register CONE *co;
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| 227 |
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register int i, j;
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| 228 |
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/* get/check arguments */
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| 229 |
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co = getcone(ob, 0);
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| 230 |
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/* set up sampling */
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| 231 |
greg |
1.11 |
if (il->sampdens <= 0)
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| 232 |
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nalt = nazi = 1;
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| 233 |
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else {
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| 234 |
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n = PI * il->sampdens;
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| 235 |
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nalt = sqrt(n/PI) + .5;
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| 236 |
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nazi = PI*nalt + .5;
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| 237 |
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}
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| 238 |
greg |
1.3 |
n = nalt*nazi;
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| 239 |
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distarr = (float *)calloc(n, 3*sizeof(float));
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| 240 |
|
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if (distarr == NULL)
|
| 241 |
|
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error(SYSTEM, "out of memory in o_ring");
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| 242 |
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mkaxes(u, v, co->ad);
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| 243 |
|
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dim[0] = random();
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| 244 |
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/* sample disk */
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| 245 |
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for (dim[1] = 0; dim[1] < nalt; dim[1]++)
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| 246 |
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for (dim[2] = 0; dim[2] < nazi; dim[2]++)
|
| 247 |
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for (i = 0; i < il->nsamps; i++) {
|
| 248 |
greg |
1.10 |
/* next sample point */
|
| 249 |
greg |
1.11 |
multisamp(sp, 4, urand(ilhash(dim,3)+i));
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| 250 |
greg |
1.3 |
/* random direction */
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| 251 |
greg |
1.10 |
r1 = (dim[1] + sp[0])/nalt;
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| 252 |
greg |
1.13 |
r2 = (dim[2] + sp[1] - .5)/nazi;
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| 253 |
greg |
1.3 |
flatdir(dn, r1, r2);
|
| 254 |
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for (j = 0; j < 3; j++)
|
| 255 |
greg |
1.5 |
dir[j] = -dn[0]*u[j] - dn[1]*v[j] - dn[2]*co->ad[j];
|
| 256 |
greg |
1.3 |
/* random location */
|
| 257 |
greg |
1.5 |
r3 = sqrt(CO_R0(co)*CO_R0(co) +
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| 258 |
greg |
1.10 |
sp[2]*(CO_R1(co)*CO_R1(co) - CO_R0(co)*CO_R0(co)));
|
| 259 |
|
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r2 = 2.*PI*sp[3];
|
| 260 |
greg |
1.5 |
r1 = r3*cos(r2);
|
| 261 |
|
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r2 = r3*sin(r2);
|
| 262 |
greg |
1.3 |
for (j = 0; j < 3; j++)
|
| 263 |
greg |
2.6 |
org[j] = CO_P0(co)[j] + r1*u[j] + r2*v[j] +
|
| 264 |
greg |
1.5 |
.001*co->ad[j];
|
| 265 |
greg |
1.3 |
|
| 266 |
|
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/* send sample */
|
| 267 |
greg |
1.7 |
raysamp(distarr+3*(dim[1]*nazi+dim[2]), org, dir, rt);
|
| 268 |
greg |
1.3 |
}
|
| 269 |
|
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rayflush(rt);
|
| 270 |
greg |
1.11 |
/* write out the ring and its distribution */
|
| 271 |
greg |
1.12 |
if (average(il, distarr, nalt*nazi)) {
|
| 272 |
|
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if (il->sampdens > 0)
|
| 273 |
|
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flatout(il, distarr, nalt, nazi, u, v, co->ad);
|
| 274 |
|
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illumout(il, ob);
|
| 275 |
greg |
2.2 |
} else
|
| 276 |
greg |
1.12 |
printobj(il->altmat, ob);
|
| 277 |
greg |
1.3 |
/* clean up */
|
| 278 |
|
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freecone(ob);
|
| 279 |
|
|
free((char *)distarr);
|
| 280 |
greg |
1.2 |
}
|
| 281 |
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|
| 282 |
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|
| 283 |
|
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raysamp(res, org, dir, rt) /* compute a ray sample */
|
| 284 |
|
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float res[3];
|
| 285 |
|
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FVECT org, dir;
|
| 286 |
|
|
register struct rtproc *rt;
|
| 287 |
|
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{
|
| 288 |
|
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register float *fp;
|
| 289 |
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|
| 290 |
|
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if (rt->nrays == rt->bsiz)
|
| 291 |
|
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rayflush(rt);
|
| 292 |
|
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rt->dest[rt->nrays] = res;
|
| 293 |
|
|
fp = rt->buf + 6*rt->nrays++;
|
| 294 |
|
|
*fp++ = org[0]; *fp++ = org[1]; *fp++ = org[2];
|
| 295 |
|
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*fp++ = dir[0]; *fp++ = dir[1]; *fp = dir[2];
|
| 296 |
|
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}
|
| 297 |
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|
| 298 |
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|
| 299 |
|
|
rayflush(rt) /* flush buffered rays */
|
| 300 |
|
|
register struct rtproc *rt;
|
| 301 |
|
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{
|
| 302 |
|
|
register int i;
|
| 303 |
|
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|
| 304 |
|
|
if (rt->nrays <= 0)
|
| 305 |
|
|
return;
|
| 306 |
greg |
1.9 |
bzero(rt->buf+6*rt->nrays, 6*sizeof(float));
|
| 307 |
greg |
1.14 |
errno = 0;
|
| 308 |
greg |
1.2 |
if ( process(rt->pd, (char *)rt->buf, (char *)rt->buf,
|
| 309 |
gregl |
2.8 |
3*sizeof(float)*(rt->nrays+1),
|
| 310 |
greg |
1.2 |
6*sizeof(float)*(rt->nrays+1)) <
|
| 311 |
gregl |
2.8 |
3*sizeof(float)*(rt->nrays+1) )
|
| 312 |
greg |
1.2 |
error(SYSTEM, "error reading from rtrace process");
|
| 313 |
|
|
i = rt->nrays;
|
| 314 |
|
|
while (i--) {
|
| 315 |
|
|
rt->dest[i][0] += rt->buf[3*i];
|
| 316 |
|
|
rt->dest[i][1] += rt->buf[3*i+1];
|
| 317 |
|
|
rt->dest[i][2] += rt->buf[3*i+2];
|
| 318 |
|
|
}
|
| 319 |
|
|
rt->nrays = 0;
|
| 320 |
greg |
1.4 |
}
|
| 321 |
|
|
|
| 322 |
|
|
|
| 323 |
|
|
mkaxes(u, v, n) /* compute u and v to go with n */
|
| 324 |
|
|
FVECT u, v, n;
|
| 325 |
|
|
{
|
| 326 |
|
|
register int i;
|
| 327 |
|
|
|
| 328 |
|
|
v[0] = v[1] = v[2] = 0.0;
|
| 329 |
|
|
for (i = 0; i < 3; i++)
|
| 330 |
|
|
if (n[i] < 0.6 && n[i] > -0.6)
|
| 331 |
|
|
break;
|
| 332 |
|
|
v[i] = 1.0;
|
| 333 |
|
|
fcross(u, v, n);
|
| 334 |
|
|
normalize(u);
|
| 335 |
|
|
fcross(v, n, u);
|
| 336 |
|
|
}
|
| 337 |
|
|
|
| 338 |
|
|
|
| 339 |
|
|
rounddir(dv, alt, azi) /* compute uniform spherical direction */
|
| 340 |
|
|
register FVECT dv;
|
| 341 |
|
|
double alt, azi;
|
| 342 |
|
|
{
|
| 343 |
|
|
double d1, d2;
|
| 344 |
|
|
|
| 345 |
|
|
dv[2] = 1. - 2.*alt;
|
| 346 |
|
|
d1 = sqrt(1. - dv[2]*dv[2]);
|
| 347 |
|
|
d2 = 2.*PI * azi;
|
| 348 |
|
|
dv[0] = d1*cos(d2);
|
| 349 |
|
|
dv[1] = d1*sin(d2);
|
| 350 |
|
|
}
|
| 351 |
|
|
|
| 352 |
|
|
|
| 353 |
|
|
flatdir(dv, alt, azi) /* compute uniform hemispherical direction */
|
| 354 |
|
|
register FVECT dv;
|
| 355 |
|
|
double alt, azi;
|
| 356 |
|
|
{
|
| 357 |
|
|
double d1, d2;
|
| 358 |
|
|
|
| 359 |
|
|
d1 = sqrt(alt);
|
| 360 |
|
|
d2 = 2.*PI * azi;
|
| 361 |
|
|
dv[0] = d1*cos(d2);
|
| 362 |
|
|
dv[1] = d1*sin(d2);
|
| 363 |
greg |
1.6 |
dv[2] = sqrt(1. - alt);
|
| 364 |
greg |
1.1 |
}
|