| 1 |
greg |
2.1 |
#ifndef lint
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| 2 |
greg |
2.3 |
static const char RCSid[] = "$Id: mkillum4.c,v 2.2 2007/09/21 05:53:21 greg Exp $";
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| 3 |
greg |
2.1 |
#endif
|
| 4 |
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/*
|
| 5 |
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* Routines for handling BSDF data within mkillum
|
| 6 |
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*/
|
| 7 |
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| 8 |
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#include "mkillum.h"
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| 9 |
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#include "paths.h"
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| 10 |
greg |
2.3 |
#include "random.h"
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| 11 |
greg |
2.2 |
#include "ezxml.h"
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| 12 |
greg |
2.1 |
|
| 13 |
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| 14 |
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struct BSDF_data *
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| 15 |
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load_BSDF( /* load BSDF data from file */
|
| 16 |
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char *fname
|
| 17 |
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)
|
| 18 |
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{
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| 19 |
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char *path;
|
| 20 |
greg |
2.2 |
ezxml_t fl, wld, wdb;
|
| 21 |
greg |
2.1 |
struct BSDF_data *dp;
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| 22 |
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| 23 |
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path = getpath(fname, getrlibpath(), R_OK);
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| 24 |
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if (path == NULL) {
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| 25 |
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sprintf(errmsg, "cannot find BSDF file \"%s\"", fname);
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| 26 |
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error(WARNING, errmsg);
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| 27 |
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return(NULL);
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| 28 |
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}
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| 29 |
greg |
2.2 |
fl = ezxml_parse_file(path);
|
| 30 |
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if (fl == NULL) {
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| 31 |
greg |
2.1 |
sprintf(errmsg, "cannot open BSDF \"%s\"", path);
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| 32 |
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error(WARNING, errmsg);
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| 33 |
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return(NULL);
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| 34 |
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}
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| 35 |
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dp = (struct BSDF_data *)malloc(sizeof(struct BSDF_data));
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| 36 |
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if (dp == NULL)
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| 37 |
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goto memerr;
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| 38 |
greg |
2.2 |
for (wld = ezxml_child(fl, "WavelengthData");
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| 39 |
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fl != NULL; fl = fl->next) {
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| 40 |
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if (strcmp(ezxml_child(wld, "Wavelength")->txt, "Visible"))
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| 41 |
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continue;
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| 42 |
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wdb = ezxml_child(wld, "WavelengthDataBlock");
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| 43 |
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if (wdb == NULL) continue;
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| 44 |
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if (strcmp(ezxml_child(wdb, "WavelengthDataDirection")->txt,
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| 45 |
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"Transmission Front"))
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| 46 |
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continue;
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| 47 |
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}
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| 48 |
greg |
2.1 |
/* etc... */
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| 49 |
greg |
2.2 |
ezxml_free(fl);
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| 50 |
greg |
2.1 |
return(dp);
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| 51 |
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memerr:
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| 52 |
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error(SYSTEM, "out of memory in load_BSDF");
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| 53 |
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return NULL; /* pro forma return */
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| 54 |
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}
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| 55 |
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| 56 |
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| 57 |
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void
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| 58 |
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free_BSDF( /* free BSDF data structure */
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| 59 |
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struct BSDF_data *b
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| 60 |
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)
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| 61 |
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{
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| 62 |
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if (b == NULL)
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| 63 |
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return;
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| 64 |
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free(b->inc_dir);
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| 65 |
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free(b->inc_rad);
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| 66 |
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free(b->out_dir);
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| 67 |
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free(b->out_rad);
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| 68 |
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free(b->bsdf);
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| 69 |
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free(b);
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| 70 |
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}
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| 71 |
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| 72 |
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| 73 |
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void
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| 74 |
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r_BSDF_incvec( /* compute random input vector at given location */
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| 75 |
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FVECT v,
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| 76 |
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struct BSDF_data *b,
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| 77 |
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int i,
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| 78 |
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double rv,
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| 79 |
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MAT4 xm
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| 80 |
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)
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| 81 |
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{
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| 82 |
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FVECT pert;
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| 83 |
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double rad;
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| 84 |
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int j;
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| 85 |
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| 86 |
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getBSDF_incvec(v, b, i);
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| 87 |
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rad = getBSDF_incrad(b, i);
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| 88 |
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multisamp(pert, 3, rv);
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| 89 |
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for (j = 0; j < 3; j++)
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| 90 |
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v[j] += rad*(2.*pert[j] - 1.);
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| 91 |
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if (xm != NULL)
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| 92 |
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multv3(v, v, xm);
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| 93 |
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normalize(v);
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| 94 |
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}
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| 95 |
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| 96 |
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| 97 |
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void
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| 98 |
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r_BSDF_outvec( /* compute random output vector at given location */
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| 99 |
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FVECT v,
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| 100 |
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struct BSDF_data *b,
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| 101 |
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int o,
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| 102 |
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double rv,
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| 103 |
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MAT4 xm
|
| 104 |
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)
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| 105 |
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{
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| 106 |
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FVECT pert;
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| 107 |
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double rad;
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| 108 |
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int j;
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| 109 |
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| 110 |
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getBSDF_outvec(v, b, o);
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| 111 |
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rad = getBSDF_outrad(b, o);
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| 112 |
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multisamp(pert, 3, rv);
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| 113 |
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for (j = 0; j < 3; j++)
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| 114 |
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v[j] += rad*(2.*pert[j] - 1.);
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| 115 |
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if (xm != NULL)
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| 116 |
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multv3(v, v, xm);
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| 117 |
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normalize(v);
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| 118 |
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}
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| 119 |
greg |
2.2 |
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| 120 |
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| 121 |
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#define FEQ(a,b) ((a)-(b) <= 1e-7 && (b)-(a) <= 1e-7)
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| 122 |
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| 123 |
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static int
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| 124 |
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addrot( /* compute rotation (x,y,z) => (xp,yp,zp) */
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| 125 |
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char *xfarg[],
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| 126 |
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FVECT xp,
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| 127 |
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FVECT yp,
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| 128 |
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FVECT zp
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| 129 |
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)
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| 130 |
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{
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| 131 |
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static char bufs[3][16];
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| 132 |
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int bn = 0;
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| 133 |
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char **xfp = xfarg;
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| 134 |
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double theta;
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| 135 |
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| 136 |
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theta = atan2(yp[2], zp[2]);
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| 137 |
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if (!FEQ(theta,0.0)) {
|
| 138 |
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*xfp++ = "-rx";
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| 139 |
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sprintf(bufs[bn], "%f", theta*(180./PI));
|
| 140 |
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*xfp++ = bufs[bn++];
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| 141 |
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}
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| 142 |
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theta = asin(-xp[2]);
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| 143 |
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if (!FEQ(theta,0.0)) {
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| 144 |
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*xfp++ = "-ry";
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| 145 |
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sprintf(bufs[bn], " %f", theta*(180./PI));
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| 146 |
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*xfp++ = bufs[bn++];
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| 147 |
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}
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| 148 |
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theta = atan2(xp[1], xp[0]);
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| 149 |
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if (!FEQ(theta,0.0)) {
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| 150 |
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*xfp++ = "-rz";
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| 151 |
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sprintf(bufs[bn], "%f", theta*(180./PI));
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| 152 |
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*xfp++ = bufs[bn++];
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| 153 |
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}
|
| 154 |
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*xfp = NULL;
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| 155 |
|
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return(xfp - xfarg);
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| 156 |
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}
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| 157 |
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|
| 158 |
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| 159 |
|
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int
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| 160 |
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getBSDF_xfm( /* compute transform for the given surface */
|
| 161 |
|
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MAT4 xm,
|
| 162 |
|
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FVECT nrm,
|
| 163 |
|
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UpDir ud
|
| 164 |
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)
|
| 165 |
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{
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| 166 |
|
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char *xfargs[7];
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| 167 |
|
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XF myxf;
|
| 168 |
|
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FVECT updir, xdest, ydest;
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| 169 |
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|
| 170 |
|
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updir[0] = updir[1] = updir[2] = 0.;
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| 171 |
|
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switch (ud) {
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| 172 |
|
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case UDzneg:
|
| 173 |
|
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updir[2] = -1.;
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| 174 |
|
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break;
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| 175 |
|
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case UDyneg:
|
| 176 |
|
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updir[1] = -1.;
|
| 177 |
|
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break;
|
| 178 |
|
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case UDxneg:
|
| 179 |
|
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updir[0] = -1.;
|
| 180 |
|
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break;
|
| 181 |
|
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case UDxpos:
|
| 182 |
|
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updir[0] = 1.;
|
| 183 |
|
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break;
|
| 184 |
|
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case UDypos:
|
| 185 |
|
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updir[1] = 1.;
|
| 186 |
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break;
|
| 187 |
|
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case UDzpos:
|
| 188 |
|
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updir[2] = 1.;
|
| 189 |
|
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break;
|
| 190 |
|
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case UDunknown:
|
| 191 |
|
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error(WARNING, "unspecified up direction");
|
| 192 |
|
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return(0);
|
| 193 |
|
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}
|
| 194 |
|
|
fcross(xdest, updir, nrm);
|
| 195 |
|
|
if (normalize(xdest) == 0.0)
|
| 196 |
|
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return(0);
|
| 197 |
|
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fcross(ydest, nrm, xdest);
|
| 198 |
|
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xf(&myxf, addrot(xfargs, xdest, ydest, nrm), xfargs);
|
| 199 |
|
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copymat4(xm, myxf.xfm);
|
| 200 |
|
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return(1);
|
| 201 |
|
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}
|
| 202 |
|
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| 203 |
|
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| 204 |
|
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void
|
| 205 |
|
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redistribute( /* pass distarr ray sums through BSDF */
|
| 206 |
|
|
struct BSDF_data *b,
|
| 207 |
|
|
int nalt,
|
| 208 |
|
|
int nazi,
|
| 209 |
|
|
FVECT u,
|
| 210 |
|
|
FVECT v,
|
| 211 |
|
|
FVECT w,
|
| 212 |
|
|
MAT4 xm
|
| 213 |
|
|
)
|
| 214 |
|
|
{
|
| 215 |
|
|
MAT4 mymat;
|
| 216 |
|
|
COLORV *outarr;
|
| 217 |
|
|
float *inpcoef;
|
| 218 |
|
|
COLORV *cp, *csum;
|
| 219 |
|
|
uint16 *distcnt;
|
| 220 |
|
|
FVECT dv;
|
| 221 |
|
|
double oom, wt;
|
| 222 |
|
|
int i, j, o;
|
| 223 |
|
|
int cnt;
|
| 224 |
|
|
COLOR col;
|
| 225 |
|
|
/* allocate temporary memory */
|
| 226 |
|
|
outarr = (COLORV *)malloc(b->nout * sizeof(COLOR));
|
| 227 |
|
|
distcnt = (uint16 *)calloc(nalt*nazi, sizeof(uint16));
|
| 228 |
|
|
inpcoef = (float *)malloc(b->ninc * sizeof(float));
|
| 229 |
|
|
if ((outarr == NULL) | (distcnt == NULL) | (inpcoef == NULL))
|
| 230 |
|
|
error(SYSTEM, "out of memory in redistribute");
|
| 231 |
|
|
/* compose matrix */
|
| 232 |
|
|
for (i = 3; i--; ) {
|
| 233 |
|
|
mymat[i][0] = u[i];
|
| 234 |
|
|
mymat[i][1] = v[i];
|
| 235 |
|
|
mymat[i][2] = w[i];
|
| 236 |
|
|
mymat[i][3] = 0.;
|
| 237 |
|
|
}
|
| 238 |
|
|
mymat[3][0] = mymat[3][1] = mymat[3][2] = 0.;
|
| 239 |
|
|
mymat[3][3] = 1.;
|
| 240 |
|
|
if (xm != NULL)
|
| 241 |
|
|
multmat4(mymat, xm, mymat);
|
| 242 |
|
|
for (i = 3; i--; ) { /* make sure it's normalized */
|
| 243 |
|
|
wt = 1./sqrt( mymat[0][i]*mymat[0][i] +
|
| 244 |
|
|
mymat[1][i]*mymat[1][i] +
|
| 245 |
|
|
mymat[2][i]*mymat[2][i] );
|
| 246 |
|
|
for (j = 3; j--; )
|
| 247 |
|
|
mymat[j][i] *= wt;
|
| 248 |
|
|
}
|
| 249 |
|
|
/* pass through BSDF */
|
| 250 |
|
|
for (i = b->ninc; i--; ) { /* get input coefficients */
|
| 251 |
|
|
getBSDF_incvec(dv, b, i);
|
| 252 |
|
|
multv3(dv, dv, mymat);
|
| 253 |
|
|
wt = getBSDF_incrad(b, i);
|
| 254 |
|
|
inpcoef[i] = PI*wt*wt * dv[2]; /* solid_angle*cosine(theta) */
|
| 255 |
|
|
}
|
| 256 |
|
|
for (o = b->nout; o--; ) {
|
| 257 |
|
|
csum = &outarr[3*o];
|
| 258 |
|
|
setcolor(csum, 0., 0., 0.);
|
| 259 |
|
|
oom = getBSDF_outrad(b, o);
|
| 260 |
|
|
oom *= oom * PI;
|
| 261 |
|
|
for (i = b->ninc; i--; ) {
|
| 262 |
|
|
wt = BSDF_data(b,i,o) * inpcoef[i] / oom;
|
| 263 |
|
|
cp = &distarr[3*i];
|
| 264 |
|
|
copycolor(col, cp);
|
| 265 |
|
|
scalecolor(col, wt);
|
| 266 |
|
|
addcolor(csum, col);
|
| 267 |
|
|
}
|
| 268 |
|
|
wt = 1./b->ninc;
|
| 269 |
|
|
scalecolor(csum, wt);
|
| 270 |
|
|
}
|
| 271 |
|
|
free(inpcoef);
|
| 272 |
|
|
newdist(nalt*nazi); /* resample distribution */
|
| 273 |
|
|
for (o = b->nout; o--; ) {
|
| 274 |
|
|
getBSDF_outvec(dv, b, o);
|
| 275 |
|
|
multv3(dv, dv, mymat);
|
| 276 |
|
|
j = (.5 + atan2(dv[1],dv[0])*(.5/PI))*nazi + .5;
|
| 277 |
|
|
if (j >= nazi) j = 0;
|
| 278 |
|
|
i = (0.9999 - dv[2]*dv[2])*nalt;
|
| 279 |
|
|
csum = &distarr[3*(i*nazi + j)];
|
| 280 |
|
|
cp = &outarr[3*o];
|
| 281 |
|
|
addcolor(csum, cp);
|
| 282 |
|
|
++distcnt[i*nazi + j];
|
| 283 |
|
|
}
|
| 284 |
|
|
free(outarr);
|
| 285 |
|
|
/* fill in missing bits */
|
| 286 |
|
|
for (i = nalt; i--; )
|
| 287 |
|
|
for (j = nazi; j--; ) {
|
| 288 |
|
|
int ii, jj, alt, azi;
|
| 289 |
|
|
if (distcnt[i*nazi + j])
|
| 290 |
|
|
continue;
|
| 291 |
|
|
csum = &distarr[3*(i*nazi + j)];
|
| 292 |
|
|
setcolor(csum, 0., 0., 0.);
|
| 293 |
|
|
cnt = 0;
|
| 294 |
|
|
for (o = 0; !cnt; o++)
|
| 295 |
|
|
for (ii = -o; ii <= o; ii++) {
|
| 296 |
|
|
alt = i + ii;
|
| 297 |
|
|
if (alt < 0) continue;
|
| 298 |
|
|
if (alt >= nalt) break;
|
| 299 |
|
|
for (jj = -o; jj <= o; jj++) {
|
| 300 |
|
|
if (ii*ii + jj*jj != o*o)
|
| 301 |
|
|
continue;
|
| 302 |
|
|
azi = j + jj;
|
| 303 |
|
|
if (azi >= nazi) azi -= nazi;
|
| 304 |
|
|
else if (azi < 0) azi += nazi;
|
| 305 |
|
|
if (!distcnt[alt*nazi + azi])
|
| 306 |
|
|
continue;
|
| 307 |
|
|
cp = &distarr[3*(alt*nazi + azi)];
|
| 308 |
|
|
addcolor(csum, cp);
|
| 309 |
|
|
cnt += distcnt[alt*nazi + azi];
|
| 310 |
|
|
}
|
| 311 |
|
|
}
|
| 312 |
|
|
wt = 1./cnt;
|
| 313 |
|
|
scalecolor(csum, wt);
|
| 314 |
|
|
}
|
| 315 |
|
|
/* finish averages */
|
| 316 |
|
|
for (i = nalt; i--; )
|
| 317 |
|
|
for (j = nazi; j--; ) {
|
| 318 |
|
|
if ((cnt = distcnt[i*nazi + j]) <= 1)
|
| 319 |
|
|
continue;
|
| 320 |
|
|
csum = &distarr[3*(i*nazi + j)];
|
| 321 |
|
|
wt = 1./cnt;
|
| 322 |
|
|
scalecolor(csum, wt);
|
| 323 |
|
|
}
|
| 324 |
|
|
free(distcnt);
|
| 325 |
|
|
}
|