| 1 |
greg |
3.2 |
#ifndef lint |
| 2 |
greg |
3.44 |
static const char RCSid[] = "$Id: bsdf_t.c,v 3.43 2015/08/01 23:27:04 greg Exp $"; |
| 3 |
greg |
3.2 |
#endif |
| 4 |
greg |
3.1 |
/* |
| 5 |
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* bsdf_t.c |
| 6 |
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* |
| 7 |
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* Definitions for variable-resolution BSDF trees |
| 8 |
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* |
| 9 |
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* Created by Greg Ward on 2/2/11. |
| 10 |
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* |
| 11 |
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*/ |
| 12 |
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| 13 |
greg |
3.17 |
#define _USE_MATH_DEFINES |
| 14 |
greg |
3.3 |
#include "rtio.h" |
| 15 |
greg |
3.1 |
#include <stdlib.h> |
| 16 |
greg |
3.3 |
#include <math.h> |
| 17 |
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#include <ctype.h> |
| 18 |
greg |
3.1 |
#include "ezxml.h" |
| 19 |
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#include "bsdf.h" |
| 20 |
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#include "bsdf_t.h" |
| 21 |
greg |
3.6 |
#include "hilbert.h" |
| 22 |
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| 23 |
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/* Callback function type for SDtraverseTre() */ |
| 24 |
greg |
3.37 |
typedef int SDtreCallback(float val, const double *cmin, double csiz, |
| 25 |
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void *cptr); |
| 26 |
greg |
3.6 |
/* reference width maximum (1.0) */ |
| 27 |
greg |
3.7 |
static const unsigned iwbits = sizeof(unsigned)*4; |
| 28 |
greg |
3.23 |
static const unsigned iwmax = 1<<(sizeof(unsigned)*4); |
| 29 |
greg |
3.7 |
/* maximum cumulative value */ |
| 30 |
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static const unsigned cumlmax = ~0; |
| 31 |
greg |
3.15 |
/* constant z-vector */ |
| 32 |
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static const FVECT zvec = {.0, .0, 1.}; |
| 33 |
greg |
3.22 |
/* quantization value */ |
| 34 |
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static double quantum = 1./256.; |
| 35 |
greg |
3.37 |
/* our RGB primaries */ |
| 36 |
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static C_COLOR tt_RGB_prim[3]; |
| 37 |
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static float tt_RGB_coef[3]; |
| 38 |
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| 39 |
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static const double czero[SD_MAXDIM]; |
| 40 |
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| 41 |
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enum {tt_Y, tt_u, tt_v}; /* tree components (tt_Y==0) */ |
| 42 |
greg |
3.6 |
|
| 43 |
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/* Struct used for our distribution-building callback */ |
| 44 |
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typedef struct { |
| 45 |
greg |
3.24 |
short nic; /* number of input coordinates */ |
| 46 |
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short rev; /* reversing query */ |
| 47 |
greg |
3.7 |
unsigned alen; /* current array length */ |
| 48 |
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unsigned nall; /* number of allocated entries */ |
| 49 |
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unsigned wmin; /* minimum square size so far */ |
| 50 |
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unsigned wmax; /* maximum square size */ |
| 51 |
greg |
3.6 |
struct outdir_s { |
| 52 |
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unsigned hent; /* entering Hilbert index */ |
| 53 |
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int wid; /* this square size */ |
| 54 |
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float bsdf; /* BSDF for this square */ |
| 55 |
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} *darr; /* output direction array */ |
| 56 |
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} SDdistScaffold; |
| 57 |
greg |
3.1 |
|
| 58 |
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/* Allocate a new scattering distribution node */ |
| 59 |
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static SDNode * |
| 60 |
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SDnewNode(int nd, int lg) |
| 61 |
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{ |
| 62 |
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SDNode *st; |
| 63 |
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| 64 |
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if (nd <= 0) { |
| 65 |
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strcpy(SDerrorDetail, "Zero dimension BSDF node request"); |
| 66 |
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return NULL; |
| 67 |
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} |
| 68 |
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if (nd > SD_MAXDIM) { |
| 69 |
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sprintf(SDerrorDetail, "Illegal BSDF dimension (%d > %d)", |
| 70 |
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nd, SD_MAXDIM); |
| 71 |
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return NULL; |
| 72 |
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} |
| 73 |
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if (lg < 0) { |
| 74 |
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st = (SDNode *)malloc(sizeof(SDNode) + |
| 75 |
greg |
3.7 |
sizeof(st->u.t[0])*((1<<nd) - 1)); |
| 76 |
greg |
3.12 |
if (st == NULL) { |
| 77 |
greg |
3.1 |
sprintf(SDerrorDetail, |
| 78 |
greg |
3.6 |
"Cannot allocate %d branch BSDF tree", 1<<nd); |
| 79 |
greg |
3.12 |
return NULL; |
| 80 |
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} |
| 81 |
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memset(st->u.t, 0, sizeof(st->u.t[0])<<nd); |
| 82 |
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} else { |
| 83 |
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st = (SDNode *)malloc(sizeof(SDNode) + |
| 84 |
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sizeof(st->u.v[0])*((1 << nd*lg) - 1)); |
| 85 |
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if (st == NULL) { |
| 86 |
greg |
3.1 |
sprintf(SDerrorDetail, |
| 87 |
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"Cannot allocate %d BSDF leaves", 1 << nd*lg); |
| 88 |
greg |
3.12 |
return NULL; |
| 89 |
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} |
| 90 |
greg |
3.1 |
} |
| 91 |
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st->ndim = nd; |
| 92 |
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st->log2GR = lg; |
| 93 |
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return st; |
| 94 |
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} |
| 95 |
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| 96 |
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/* Free an SD tree */ |
| 97 |
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static void |
| 98 |
greg |
3.6 |
SDfreeTre(SDNode *st) |
| 99 |
greg |
3.1 |
{ |
| 100 |
greg |
3.12 |
int n; |
| 101 |
greg |
3.1 |
|
| 102 |
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if (st == NULL) |
| 103 |
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return; |
| 104 |
greg |
3.12 |
for (n = (st->log2GR < 0) << st->ndim; n--; ) |
| 105 |
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SDfreeTre(st->u.t[n]); |
| 106 |
greg |
3.14 |
free(st); |
| 107 |
greg |
3.1 |
} |
| 108 |
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| 109 |
greg |
3.6 |
/* Free a variable-resolution BSDF */ |
| 110 |
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static void |
| 111 |
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SDFreeBTre(void *p) |
| 112 |
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{ |
| 113 |
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SDTre *sdt = (SDTre *)p; |
| 114 |
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| 115 |
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if (sdt == NULL) |
| 116 |
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return; |
| 117 |
greg |
3.37 |
SDfreeTre(sdt->stc[tt_Y]); |
| 118 |
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SDfreeTre(sdt->stc[tt_u]); |
| 119 |
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SDfreeTre(sdt->stc[tt_v]); |
| 120 |
greg |
3.6 |
free(sdt); |
| 121 |
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} |
| 122 |
greg |
3.5 |
|
| 123 |
greg |
3.7 |
/* Fill branch's worth of grid values from subtree */ |
| 124 |
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static void |
| 125 |
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fill_grid_branch(float *dptr, const float *sptr, int nd, int shft) |
| 126 |
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{ |
| 127 |
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unsigned n = 1 << (shft-1); |
| 128 |
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| 129 |
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if (!--nd) { /* end on the line */ |
| 130 |
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memcpy(dptr, sptr, sizeof(*dptr)*n); |
| 131 |
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return; |
| 132 |
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} |
| 133 |
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while (n--) /* recurse on each slice */ |
| 134 |
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fill_grid_branch(dptr + (n << shft*nd), |
| 135 |
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sptr + (n << (shft-1)*nd), nd, shft); |
| 136 |
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} |
| 137 |
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| 138 |
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/* Get pointer at appropriate offset for the given branch */ |
| 139 |
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static float * |
| 140 |
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grid_branch_start(SDNode *st, int n) |
| 141 |
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{ |
| 142 |
greg |
3.14 |
unsigned skipsiz = 1 << (st->log2GR - 1); |
| 143 |
greg |
3.7 |
float *vptr = st->u.v; |
| 144 |
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int i; |
| 145 |
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| 146 |
greg |
3.14 |
for (i = st->ndim; i--; skipsiz <<= st->log2GR) |
| 147 |
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if (1<<i & n) |
| 148 |
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vptr += skipsiz; |
| 149 |
greg |
3.7 |
return vptr; |
| 150 |
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} |
| 151 |
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| 152 |
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/* Simplify (consolidate) a tree by flattening uniform depth regions */ |
| 153 |
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static SDNode * |
| 154 |
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SDsimplifyTre(SDNode *st) |
| 155 |
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{ |
| 156 |
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int match, n; |
| 157 |
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| 158 |
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if (st == NULL) /* check for invalid tree */ |
| 159 |
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return NULL; |
| 160 |
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if (st->log2GR >= 0) /* grid just returns unaltered */ |
| 161 |
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return st; |
| 162 |
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match = 1; /* check if grids below match */ |
| 163 |
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for (n = 0; n < 1<<st->ndim; n++) { |
| 164 |
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if ((st->u.t[n] = SDsimplifyTre(st->u.t[n])) == NULL) |
| 165 |
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return NULL; /* propogate error up call stack */ |
| 166 |
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match &= (st->u.t[n]->log2GR == st->u.t[0]->log2GR); |
| 167 |
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} |
| 168 |
greg |
3.9 |
if (match && (match = st->u.t[0]->log2GR) >= 0) { |
| 169 |
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SDNode *stn = SDnewNode(st->ndim, match + 1); |
| 170 |
greg |
3.7 |
if (stn == NULL) /* out of memory? */ |
| 171 |
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return st; |
| 172 |
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/* transfer values to new grid */ |
| 173 |
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for (n = 1 << st->ndim; n--; ) |
| 174 |
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fill_grid_branch(grid_branch_start(stn, n), |
| 175 |
greg |
3.9 |
st->u.t[n]->u.v, stn->ndim, stn->log2GR); |
| 176 |
greg |
3.7 |
SDfreeTre(st); /* free old tree */ |
| 177 |
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st = stn; /* return new one */ |
| 178 |
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} |
| 179 |
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return st; |
| 180 |
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} |
| 181 |
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| 182 |
greg |
3.37 |
/* Assign the given voxel in tree (produces no grid nodes) */ |
| 183 |
|
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static SDNode * |
| 184 |
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SDsetVoxel(SDNode *sroot, int nd, const double *tmin, const double tsiz, float val) |
| 185 |
|
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{ |
| 186 |
|
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double ctrk[SD_MAXDIM]; |
| 187 |
|
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double csiz = 1.; |
| 188 |
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SDNode *st; |
| 189 |
|
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int i, n; |
| 190 |
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/* check arguments */ |
| 191 |
|
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for (i = nd; i-- > 0; ) |
| 192 |
|
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if ((tmin[i] < .0) | (tmin[i] >= 1.-FTINY)) |
| 193 |
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break; |
| 194 |
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if ((i >= 0) | (nd <= 0) | (tsiz <= FTINY) | (tsiz > 1.+FTINY) | |
| 195 |
|
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(sroot != NULL && sroot->ndim != nd)) { |
| 196 |
|
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SDfreeTre(sroot); |
| 197 |
|
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return NULL; |
| 198 |
|
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} |
| 199 |
|
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if (tsiz >= 1.-FTINY) { /* special case when tree is a leaf */ |
| 200 |
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SDfreeTre(sroot); |
| 201 |
|
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if ((sroot = SDnewNode(nd, 0)) != NULL) |
| 202 |
|
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sroot->u.v[0] = val; |
| 203 |
|
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return sroot; |
| 204 |
|
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} |
| 205 |
|
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/* make sure we have branching root */ |
| 206 |
|
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if (sroot != NULL && sroot->log2GR >= 0) { |
| 207 |
|
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SDfreeTre(sroot); sroot = NULL; |
| 208 |
|
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} |
| 209 |
|
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if (sroot == NULL && (sroot = SDnewNode(nd, -1)) == NULL) |
| 210 |
|
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return NULL; |
| 211 |
|
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st = sroot; /* climb/grow tree */ |
| 212 |
|
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memset(ctrk, 0, sizeof(ctrk)); |
| 213 |
|
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for ( ; ; ) { |
| 214 |
|
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csiz *= .5; /* find appropriate branch */ |
| 215 |
|
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n = 0; |
| 216 |
|
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for (i = nd; i--; ) |
| 217 |
|
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if (ctrk[i]+csiz <= tmin[i]+FTINY) { |
| 218 |
|
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ctrk[i] += csiz; |
| 219 |
|
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n |= 1 << i; |
| 220 |
|
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} |
| 221 |
|
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/* reached desired voxel? */ |
| 222 |
|
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if (csiz <= tsiz+FTINY) { |
| 223 |
|
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SDfreeTre(st->u.t[n]); |
| 224 |
|
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st = st->u.t[n] = SDnewNode(nd, 0); |
| 225 |
|
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break; |
| 226 |
|
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} |
| 227 |
|
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/* else grow tree as needed */ |
| 228 |
|
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if (st->u.t[n] != NULL && st->u.t[n]->log2GR >= 0) { |
| 229 |
|
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SDfreeTre(st->u.t[n]); st->u.t[n] = NULL; |
| 230 |
|
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} |
| 231 |
|
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if (st->u.t[n] == NULL) |
| 232 |
|
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st->u.t[n] = SDnewNode(nd, -1); |
| 233 |
|
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if ((st = st->u.t[n]) == NULL) |
| 234 |
|
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break; |
| 235 |
|
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} |
| 236 |
|
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if (st == NULL) { |
| 237 |
|
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SDfreeTre(sroot); |
| 238 |
|
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return NULL; |
| 239 |
|
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} |
| 240 |
|
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st->u.v[0] = val; /* assign leaf and return root */ |
| 241 |
|
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return sroot; |
| 242 |
|
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} |
| 243 |
|
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|
| 244 |
greg |
3.7 |
/* Find smallest leaf in tree */ |
| 245 |
|
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static double |
| 246 |
|
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SDsmallestLeaf(const SDNode *st) |
| 247 |
|
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{ |
| 248 |
|
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if (st->log2GR < 0) { /* tree branches */ |
| 249 |
|
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double lmin = 1.; |
| 250 |
|
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int n; |
| 251 |
|
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for (n = 1<<st->ndim; n--; ) { |
| 252 |
|
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double lsiz = SDsmallestLeaf(st->u.t[n]); |
| 253 |
|
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if (lsiz < lmin) |
| 254 |
|
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lmin = lsiz; |
| 255 |
|
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} |
| 256 |
|
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return .5*lmin; |
| 257 |
|
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} |
| 258 |
|
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/* leaf grid width */ |
| 259 |
|
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return 1. / (double)(1 << st->log2GR); |
| 260 |
|
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} |
| 261 |
|
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|
| 262 |
greg |
3.1 |
/* Add up N-dimensional hypercube array values over the given box */ |
| 263 |
|
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static double |
| 264 |
greg |
3.7 |
SDiterSum(const float *va, int nd, int shft, const int *imin, const int *imax) |
| 265 |
greg |
3.1 |
{ |
| 266 |
greg |
3.10 |
const unsigned skipsiz = 1 << --nd*shft; |
| 267 |
greg |
3.1 |
double sum = .0; |
| 268 |
|
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int i; |
| 269 |
greg |
3.15 |
|
| 270 |
|
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va += *imin * skipsiz; |
| 271 |
|
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|
| 272 |
greg |
3.1 |
if (skipsiz == 1) |
| 273 |
|
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for (i = *imin; i < *imax; i++) |
| 274 |
greg |
3.15 |
sum += *va++; |
| 275 |
greg |
3.1 |
else |
| 276 |
greg |
3.15 |
for (i = *imin; i < *imax; i++, va += skipsiz) |
| 277 |
|
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sum += SDiterSum(va, nd, shft, imin+1, imax+1); |
| 278 |
greg |
3.1 |
return sum; |
| 279 |
|
|
} |
| 280 |
|
|
|
| 281 |
|
|
/* Average BSDF leaves over an orthotope defined by the unit hypercube */ |
| 282 |
|
|
static double |
| 283 |
greg |
3.6 |
SDavgTreBox(const SDNode *st, const double *bmin, const double *bmax) |
| 284 |
greg |
3.1 |
{ |
| 285 |
|
|
unsigned n; |
| 286 |
|
|
int i; |
| 287 |
|
|
|
| 288 |
|
|
if (!st) |
| 289 |
|
|
return .0; |
| 290 |
|
|
/* check box limits */ |
| 291 |
|
|
for (i = st->ndim; i--; ) { |
| 292 |
|
|
if (bmin[i] >= 1.) |
| 293 |
|
|
return .0; |
| 294 |
greg |
3.13 |
if (bmax[i] <= 0) |
| 295 |
greg |
3.1 |
return .0; |
| 296 |
|
|
if (bmin[i] >= bmax[i]) |
| 297 |
|
|
return .0; |
| 298 |
|
|
} |
| 299 |
|
|
if (st->log2GR < 0) { /* iterate on subtree */ |
| 300 |
|
|
double sum = .0, wsum = 1e-20; |
| 301 |
|
|
double sbmin[SD_MAXDIM], sbmax[SD_MAXDIM], w; |
| 302 |
|
|
for (n = 1 << st->ndim; n--; ) { |
| 303 |
|
|
w = 1.; |
| 304 |
|
|
for (i = st->ndim; i--; ) { |
| 305 |
|
|
sbmin[i] = 2.*bmin[i]; |
| 306 |
|
|
sbmax[i] = 2.*bmax[i]; |
| 307 |
|
|
if (n & 1<<i) { |
| 308 |
|
|
sbmin[i] -= 1.; |
| 309 |
|
|
sbmax[i] -= 1.; |
| 310 |
|
|
} |
| 311 |
|
|
if (sbmin[i] < .0) sbmin[i] = .0; |
| 312 |
|
|
if (sbmax[i] > 1.) sbmax[i] = 1.; |
| 313 |
greg |
3.13 |
if (sbmin[i] >= sbmax[i]) { |
| 314 |
|
|
w = .0; |
| 315 |
|
|
break; |
| 316 |
|
|
} |
| 317 |
greg |
3.1 |
w *= sbmax[i] - sbmin[i]; |
| 318 |
|
|
} |
| 319 |
|
|
if (w > 1e-10) { |
| 320 |
greg |
3.6 |
sum += w * SDavgTreBox(st->u.t[n], sbmin, sbmax); |
| 321 |
greg |
3.1 |
wsum += w; |
| 322 |
|
|
} |
| 323 |
|
|
} |
| 324 |
|
|
return sum / wsum; |
| 325 |
greg |
3.15 |
} else { /* iterate over leaves */ |
| 326 |
|
|
int imin[SD_MAXDIM], imax[SD_MAXDIM]; |
| 327 |
|
|
|
| 328 |
|
|
n = 1; |
| 329 |
|
|
for (i = st->ndim; i--; ) { |
| 330 |
|
|
imin[i] = (bmin[i] <= 0) ? 0 : |
| 331 |
|
|
(int)((1 << st->log2GR)*bmin[i]); |
| 332 |
|
|
imax[i] = (bmax[i] >= 1.) ? (1 << st->log2GR) : |
| 333 |
|
|
(int)((1 << st->log2GR)*bmax[i] + .999999); |
| 334 |
|
|
n *= imax[i] - imin[i]; |
| 335 |
|
|
} |
| 336 |
|
|
if (n) |
| 337 |
|
|
return SDiterSum(st->u.v, st->ndim, |
| 338 |
|
|
st->log2GR, imin, imax) / (double)n; |
| 339 |
greg |
3.1 |
} |
| 340 |
greg |
3.15 |
return .0; |
| 341 |
greg |
3.1 |
} |
| 342 |
|
|
|
| 343 |
greg |
3.6 |
/* Recursive call for SDtraverseTre() */ |
| 344 |
|
|
static int |
| 345 |
|
|
SDdotravTre(const SDNode *st, const double *pos, int cmask, |
| 346 |
|
|
SDtreCallback *cf, void *cptr, |
| 347 |
|
|
const double *cmin, double csiz) |
| 348 |
|
|
{ |
| 349 |
|
|
int rv, rval = 0; |
| 350 |
|
|
double bmin[SD_MAXDIM]; |
| 351 |
|
|
int i, n; |
| 352 |
greg |
3.37 |
/* paranoia */ |
| 353 |
|
|
if (st == NULL) |
| 354 |
|
|
return 0; |
| 355 |
greg |
3.6 |
/* in branches? */ |
| 356 |
|
|
if (st->log2GR < 0) { |
| 357 |
|
|
unsigned skipmask = 0; |
| 358 |
|
|
csiz *= .5; |
| 359 |
|
|
for (i = st->ndim; i--; ) |
| 360 |
greg |
3.32 |
if (1<<i & cmask) { |
| 361 |
greg |
3.6 |
if (pos[i] < cmin[i] + csiz) |
| 362 |
greg |
3.13 |
for (n = 1 << st->ndim; n--; ) { |
| 363 |
greg |
3.6 |
if (n & 1<<i) |
| 364 |
|
|
skipmask |= 1<<n; |
| 365 |
greg |
3.13 |
} |
| 366 |
greg |
3.6 |
else |
| 367 |
greg |
3.13 |
for (n = 1 << st->ndim; n--; ) { |
| 368 |
greg |
3.6 |
if (!(n & 1<<i)) |
| 369 |
|
|
skipmask |= 1<<n; |
| 370 |
greg |
3.13 |
} |
| 371 |
greg |
3.32 |
} |
| 372 |
greg |
3.6 |
for (n = 1 << st->ndim; n--; ) { |
| 373 |
|
|
if (1<<n & skipmask) |
| 374 |
|
|
continue; |
| 375 |
|
|
for (i = st->ndim; i--; ) |
| 376 |
|
|
if (1<<i & n) |
| 377 |
|
|
bmin[i] = cmin[i] + csiz; |
| 378 |
|
|
else |
| 379 |
|
|
bmin[i] = cmin[i]; |
| 380 |
|
|
|
| 381 |
|
|
rval += rv = SDdotravTre(st->u.t[n], pos, cmask, |
| 382 |
|
|
cf, cptr, bmin, csiz); |
| 383 |
|
|
if (rv < 0) |
| 384 |
|
|
return rv; |
| 385 |
|
|
} |
| 386 |
|
|
} else { /* else traverse leaves */ |
| 387 |
|
|
int clim[SD_MAXDIM][2]; |
| 388 |
|
|
int cpos[SD_MAXDIM]; |
| 389 |
|
|
|
| 390 |
|
|
if (st->log2GR == 0) /* short cut */ |
| 391 |
|
|
return (*cf)(st->u.v[0], cmin, csiz, cptr); |
| 392 |
|
|
|
| 393 |
|
|
csiz /= (double)(1 << st->log2GR); |
| 394 |
|
|
/* assign coord. ranges */ |
| 395 |
|
|
for (i = st->ndim; i--; ) |
| 396 |
|
|
if (1<<i & cmask) { |
| 397 |
|
|
clim[i][0] = (pos[i] - cmin[i])/csiz; |
| 398 |
|
|
/* check overflow from f.p. error */ |
| 399 |
|
|
clim[i][0] -= clim[i][0] >> st->log2GR; |
| 400 |
|
|
clim[i][1] = clim[i][0] + 1; |
| 401 |
|
|
} else { |
| 402 |
|
|
clim[i][0] = 0; |
| 403 |
|
|
clim[i][1] = 1 << st->log2GR; |
| 404 |
|
|
} |
| 405 |
|
|
#if (SD_MAXDIM == 4) |
| 406 |
|
|
bmin[0] = cmin[0] + csiz*clim[0][0]; |
| 407 |
|
|
for (cpos[0] = clim[0][0]; cpos[0] < clim[0][1]; cpos[0]++) { |
| 408 |
|
|
bmin[1] = cmin[1] + csiz*clim[1][0]; |
| 409 |
|
|
for (cpos[1] = clim[1][0]; cpos[1] < clim[1][1]; cpos[1]++) { |
| 410 |
|
|
bmin[2] = cmin[2] + csiz*clim[2][0]; |
| 411 |
greg |
3.16 |
if (st->ndim == 3) { |
| 412 |
|
|
cpos[2] = clim[2][0]; |
| 413 |
greg |
3.6 |
n = cpos[0]; |
| 414 |
greg |
3.16 |
for (i = 1; i < 3; i++) |
| 415 |
greg |
3.6 |
n = (n << st->log2GR) + cpos[i]; |
| 416 |
greg |
3.16 |
for ( ; cpos[2] < clim[2][1]; cpos[2]++) { |
| 417 |
greg |
3.6 |
rval += rv = (*cf)(st->u.v[n++], bmin, csiz, cptr); |
| 418 |
|
|
if (rv < 0) |
| 419 |
|
|
return rv; |
| 420 |
greg |
3.16 |
bmin[2] += csiz; |
| 421 |
|
|
} |
| 422 |
|
|
} else { |
| 423 |
|
|
for (cpos[2] = clim[2][0]; cpos[2] < clim[2][1]; cpos[2]++) { |
| 424 |
|
|
bmin[3] = cmin[3] + csiz*(cpos[3] = clim[3][0]); |
| 425 |
|
|
n = cpos[0]; |
| 426 |
|
|
for (i = 1; i < 4; i++) |
| 427 |
|
|
n = (n << st->log2GR) + cpos[i]; |
| 428 |
|
|
for ( ; cpos[3] < clim[3][1]; cpos[3]++) { |
| 429 |
|
|
rval += rv = (*cf)(st->u.v[n++], bmin, csiz, cptr); |
| 430 |
|
|
if (rv < 0) |
| 431 |
|
|
return rv; |
| 432 |
|
|
bmin[3] += csiz; |
| 433 |
|
|
} |
| 434 |
|
|
bmin[2] += csiz; |
| 435 |
greg |
3.6 |
} |
| 436 |
|
|
} |
| 437 |
|
|
bmin[1] += csiz; |
| 438 |
|
|
} |
| 439 |
|
|
bmin[0] += csiz; |
| 440 |
|
|
} |
| 441 |
|
|
#else |
| 442 |
|
|
_!_ "broken code segment!" |
| 443 |
|
|
#endif |
| 444 |
|
|
} |
| 445 |
|
|
return rval; |
| 446 |
|
|
} |
| 447 |
|
|
|
| 448 |
|
|
/* Traverse a tree, visiting nodes in a slice that fits partial position */ |
| 449 |
|
|
static int |
| 450 |
|
|
SDtraverseTre(const SDNode *st, const double *pos, int cmask, |
| 451 |
|
|
SDtreCallback *cf, void *cptr) |
| 452 |
|
|
{ |
| 453 |
|
|
int i; |
| 454 |
|
|
/* check arguments */ |
| 455 |
|
|
if ((st == NULL) | (cf == NULL)) |
| 456 |
|
|
return -1; |
| 457 |
|
|
for (i = st->ndim; i--; ) |
| 458 |
|
|
if (1<<i & cmask && (pos[i] < 0) | (pos[i] >= 1.)) |
| 459 |
|
|
return -1; |
| 460 |
|
|
|
| 461 |
|
|
return SDdotravTre(st, pos, cmask, cf, cptr, czero, 1.); |
| 462 |
|
|
} |
| 463 |
greg |
3.5 |
|
| 464 |
|
|
/* Look up tree value at the given grid position */ |
| 465 |
|
|
static float |
| 466 |
greg |
3.6 |
SDlookupTre(const SDNode *st, const double *pos, double *hcube) |
| 467 |
greg |
3.5 |
{ |
| 468 |
|
|
double spos[SD_MAXDIM]; |
| 469 |
|
|
int i, n, t; |
| 470 |
greg |
3.6 |
/* initialize voxel return */ |
| 471 |
|
|
if (hcube) { |
| 472 |
|
|
hcube[i = st->ndim] = 1.; |
| 473 |
|
|
while (i--) |
| 474 |
|
|
hcube[i] = .0; |
| 475 |
|
|
} |
| 476 |
greg |
3.5 |
/* climb the tree */ |
| 477 |
greg |
3.37 |
while (st != NULL && st->log2GR < 0) { |
| 478 |
greg |
3.5 |
n = 0; /* move to appropriate branch */ |
| 479 |
greg |
3.6 |
if (hcube) hcube[st->ndim] *= .5; |
| 480 |
greg |
3.5 |
for (i = st->ndim; i--; ) { |
| 481 |
|
|
spos[i] = 2.*pos[i]; |
| 482 |
|
|
t = (spos[i] >= 1.); |
| 483 |
|
|
n |= t<<i; |
| 484 |
|
|
spos[i] -= (double)t; |
| 485 |
greg |
3.6 |
if (hcube) hcube[i] += (double)t * hcube[st->ndim]; |
| 486 |
greg |
3.5 |
} |
| 487 |
|
|
st = st->u.t[n]; /* avoids tail recursion */ |
| 488 |
|
|
pos = spos; |
| 489 |
|
|
} |
| 490 |
greg |
3.37 |
if (st == NULL) /* should never happen? */ |
| 491 |
|
|
return .0; |
| 492 |
greg |
3.6 |
if (st->log2GR == 0) /* short cut */ |
| 493 |
|
|
return st->u.v[0]; |
| 494 |
greg |
3.5 |
n = t = 0; /* find grid array index */ |
| 495 |
|
|
for (i = st->ndim; i--; ) { |
| 496 |
|
|
n += (int)((1<<st->log2GR)*pos[i]) << t; |
| 497 |
|
|
t += st->log2GR; |
| 498 |
|
|
} |
| 499 |
greg |
3.6 |
if (hcube) { /* compute final hypercube */ |
| 500 |
|
|
hcube[st->ndim] /= (double)(1<<st->log2GR); |
| 501 |
|
|
for (i = st->ndim; i--; ) |
| 502 |
|
|
hcube[i] += floor((1<<st->log2GR)*pos[i])*hcube[st->ndim]; |
| 503 |
|
|
} |
| 504 |
|
|
return st->u.v[n]; /* no interpolation */ |
| 505 |
|
|
} |
| 506 |
|
|
|
| 507 |
greg |
3.37 |
/* Convert CIE (Y,u',v') color to our RGB */ |
| 508 |
|
|
static void |
| 509 |
|
|
SDyuv2rgb(double yval, double uprime, double vprime, float rgb[3]) |
| 510 |
|
|
{ |
| 511 |
|
|
const double dfact = 1./(6.*uprime - 16.*vprime + 12.); |
| 512 |
|
|
C_COLOR cxy; |
| 513 |
|
|
|
| 514 |
|
|
c_cset(&cxy, 9.*uprime*dfact, 4.*vprime*dfact); |
| 515 |
|
|
c_toSharpRGB(&cxy, yval, rgb); |
| 516 |
|
|
} |
| 517 |
|
|
|
| 518 |
greg |
3.6 |
/* Query BSDF value and sample hypercube for the given vectors */ |
| 519 |
greg |
3.37 |
static int |
| 520 |
|
|
SDqueryTre(const SDTre *sdt, float *coef, |
| 521 |
|
|
const FVECT outVec, const FVECT inVec, double *hc) |
| 522 |
greg |
3.6 |
{ |
| 523 |
greg |
3.24 |
const RREAL *vtmp; |
| 524 |
greg |
3.37 |
float yval; |
| 525 |
greg |
3.24 |
FVECT rOutVec; |
| 526 |
|
|
double gridPos[4]; |
| 527 |
greg |
3.7 |
|
| 528 |
greg |
3.37 |
if (sdt->stc[tt_Y] == NULL) /* paranoia, I hope */ |
| 529 |
|
|
return 0; |
| 530 |
|
|
|
| 531 |
greg |
3.7 |
switch (sdt->sidef) { /* whose side are you on? */ |
| 532 |
greg |
3.24 |
case SD_FREFL: |
| 533 |
greg |
3.7 |
if ((outVec[2] < 0) | (inVec[2] < 0)) |
| 534 |
greg |
3.37 |
return 0; |
| 535 |
greg |
3.7 |
break; |
| 536 |
greg |
3.24 |
case SD_BREFL: |
| 537 |
greg |
3.7 |
if ((outVec[2] > 0) | (inVec[2] > 0)) |
| 538 |
greg |
3.37 |
return 0; |
| 539 |
greg |
3.7 |
break; |
| 540 |
greg |
3.24 |
case SD_FXMIT: |
| 541 |
|
|
if (outVec[2] > 0) { |
| 542 |
|
|
if (inVec[2] > 0) |
| 543 |
greg |
3.37 |
return 0; |
| 544 |
greg |
3.24 |
vtmp = outVec; outVec = inVec; inVec = vtmp; |
| 545 |
|
|
} else if (inVec[2] < 0) |
| 546 |
greg |
3.37 |
return 0; |
| 547 |
greg |
3.24 |
break; |
| 548 |
|
|
case SD_BXMIT: |
| 549 |
|
|
if (inVec[2] > 0) { |
| 550 |
|
|
if (outVec[2] > 0) |
| 551 |
greg |
3.37 |
return 0; |
| 552 |
greg |
3.24 |
vtmp = outVec; outVec = inVec; inVec = vtmp; |
| 553 |
|
|
} else if (outVec[2] < 0) |
| 554 |
greg |
3.37 |
return 0; |
| 555 |
greg |
3.7 |
break; |
| 556 |
|
|
default: |
| 557 |
greg |
3.37 |
return 0; |
| 558 |
greg |
3.7 |
} |
| 559 |
greg |
3.6 |
/* convert vector coordinates */ |
| 560 |
greg |
3.37 |
if (sdt->stc[tt_Y]->ndim == 3) { |
| 561 |
greg |
3.15 |
spinvector(rOutVec, outVec, zvec, -atan2(-inVec[1],-inVec[0])); |
| 562 |
greg |
3.31 |
gridPos[0] = (.5-FTINY) - |
| 563 |
|
|
.5*sqrt(inVec[0]*inVec[0] + inVec[1]*inVec[1]); |
| 564 |
greg |
3.6 |
SDdisk2square(gridPos+1, rOutVec[0], rOutVec[1]); |
| 565 |
greg |
3.37 |
} else if (sdt->stc[tt_Y]->ndim == 4) { |
| 566 |
greg |
3.6 |
SDdisk2square(gridPos, -inVec[0], -inVec[1]); |
| 567 |
|
|
SDdisk2square(gridPos+2, outVec[0], outVec[1]); |
| 568 |
|
|
} else |
| 569 |
greg |
3.37 |
return 0; /* should be internal error */ |
| 570 |
|
|
/* get BSDF value */ |
| 571 |
|
|
yval = SDlookupTre(sdt->stc[tt_Y], gridPos, hc); |
| 572 |
greg |
3.41 |
if (coef == NULL) /* just getting hypercube? */ |
| 573 |
|
|
return 1; |
| 574 |
greg |
3.42 |
if (sdt->stc[tt_u] == NULL || sdt->stc[tt_v] == NULL) { |
| 575 |
greg |
3.41 |
*coef = yval; |
| 576 |
greg |
3.37 |
return 1; /* no color */ |
| 577 |
|
|
} |
| 578 |
|
|
/* else decode color */ |
| 579 |
|
|
SDyuv2rgb(yval, SDlookupTre(sdt->stc[tt_u], gridPos, NULL), |
| 580 |
|
|
SDlookupTre(sdt->stc[tt_v], gridPos, NULL), coef); |
| 581 |
|
|
coef[0] *= tt_RGB_coef[0]; |
| 582 |
|
|
coef[1] *= tt_RGB_coef[1]; |
| 583 |
|
|
coef[2] *= tt_RGB_coef[2]; |
| 584 |
|
|
return 3; |
| 585 |
greg |
3.5 |
} |
| 586 |
|
|
|
| 587 |
|
|
/* Compute non-diffuse component for variable-resolution BSDF */ |
| 588 |
|
|
static int |
| 589 |
|
|
SDgetTreBSDF(float coef[SDmaxCh], const FVECT outVec, |
| 590 |
greg |
3.6 |
const FVECT inVec, SDComponent *sdc) |
| 591 |
greg |
3.5 |
{ |
| 592 |
greg |
3.6 |
/* check arguments */ |
| 593 |
|
|
if ((coef == NULL) | (outVec == NULL) | (inVec == NULL) | (sdc == NULL) |
| 594 |
|
|
|| sdc->dist == NULL) |
| 595 |
|
|
return 0; |
| 596 |
greg |
3.5 |
/* get nearest BSDF value */ |
| 597 |
greg |
3.37 |
return SDqueryTre((SDTre *)sdc->dist, coef, outVec, inVec, NULL); |
| 598 |
greg |
3.6 |
} |
| 599 |
|
|
|
| 600 |
|
|
/* Callback to build cumulative distribution using SDtraverseTre() */ |
| 601 |
|
|
static int |
| 602 |
|
|
build_scaffold(float val, const double *cmin, double csiz, void *cptr) |
| 603 |
|
|
{ |
| 604 |
|
|
SDdistScaffold *sp = (SDdistScaffold *)cptr; |
| 605 |
|
|
int wid = csiz*(double)iwmax + .5; |
| 606 |
greg |
3.25 |
double revcmin[2]; |
| 607 |
greg |
3.6 |
bitmask_t bmin[2], bmax[2]; |
| 608 |
|
|
|
| 609 |
greg |
3.25 |
if (sp->rev) { /* need to reverse sense? */ |
| 610 |
|
|
revcmin[0] = 1. - cmin[0] - csiz; |
| 611 |
|
|
revcmin[1] = 1. - cmin[1] - csiz; |
| 612 |
|
|
cmin = revcmin; |
| 613 |
|
|
} else { |
| 614 |
|
|
cmin += sp->nic; /* else skip to output coords */ |
| 615 |
|
|
} |
| 616 |
greg |
3.6 |
if (wid < sp->wmin) /* new minimum width? */ |
| 617 |
|
|
sp->wmin = wid; |
| 618 |
|
|
if (wid > sp->wmax) /* new maximum? */ |
| 619 |
|
|
sp->wmax = wid; |
| 620 |
|
|
if (sp->alen >= sp->nall) { /* need more space? */ |
| 621 |
|
|
struct outdir_s *ndarr; |
| 622 |
greg |
3.35 |
sp->nall = (int)(1.5*sp->nall) + 256; |
| 623 |
greg |
3.6 |
ndarr = (struct outdir_s *)realloc(sp->darr, |
| 624 |
|
|
sizeof(struct outdir_s)*sp->nall); |
| 625 |
greg |
3.12 |
if (ndarr == NULL) { |
| 626 |
|
|
sprintf(SDerrorDetail, |
| 627 |
|
|
"Cannot grow scaffold to %u entries", sp->nall); |
| 628 |
greg |
3.6 |
return -1; /* abort build */ |
| 629 |
greg |
3.12 |
} |
| 630 |
greg |
3.6 |
sp->darr = ndarr; |
| 631 |
|
|
} |
| 632 |
|
|
/* find Hilbert entry index */ |
| 633 |
|
|
bmin[0] = cmin[0]*(double)iwmax + .5; |
| 634 |
|
|
bmin[1] = cmin[1]*(double)iwmax + .5; |
| 635 |
greg |
3.10 |
bmax[0] = bmin[0] + wid-1; |
| 636 |
|
|
bmax[1] = bmin[1] + wid-1; |
| 637 |
greg |
3.7 |
hilbert_box_vtx(2, sizeof(bitmask_t), iwbits, 1, bmin, bmax); |
| 638 |
|
|
sp->darr[sp->alen].hent = hilbert_c2i(2, iwbits, bmin); |
| 639 |
greg |
3.6 |
sp->darr[sp->alen].wid = wid; |
| 640 |
|
|
sp->darr[sp->alen].bsdf = val; |
| 641 |
|
|
sp->alen++; /* on to the next entry */ |
| 642 |
|
|
return 0; |
| 643 |
|
|
} |
| 644 |
|
|
|
| 645 |
|
|
/* Scaffold comparison function for qsort -- ascending Hilbert index */ |
| 646 |
|
|
static int |
| 647 |
|
|
sscmp(const void *p1, const void *p2) |
| 648 |
|
|
{ |
| 649 |
greg |
3.10 |
unsigned h1 = (*(const struct outdir_s *)p1).hent; |
| 650 |
|
|
unsigned h2 = (*(const struct outdir_s *)p2).hent; |
| 651 |
|
|
|
| 652 |
|
|
if (h1 > h2) |
| 653 |
|
|
return 1; |
| 654 |
|
|
if (h1 < h2) |
| 655 |
|
|
return -1; |
| 656 |
|
|
return 0; |
| 657 |
greg |
3.6 |
} |
| 658 |
|
|
|
| 659 |
|
|
/* Create a new cumulative distribution for the given input direction */ |
| 660 |
|
|
static SDTreCDst * |
| 661 |
greg |
3.24 |
make_cdist(const SDTre *sdt, const double *invec, int rev) |
| 662 |
greg |
3.6 |
{ |
| 663 |
|
|
SDdistScaffold myScaffold; |
| 664 |
greg |
3.24 |
double pos[4]; |
| 665 |
|
|
int cmask; |
| 666 |
greg |
3.6 |
SDTreCDst *cd; |
| 667 |
|
|
struct outdir_s *sp; |
| 668 |
|
|
double scale, cursum; |
| 669 |
|
|
int i; |
| 670 |
|
|
/* initialize scaffold */ |
| 671 |
|
|
myScaffold.wmin = iwmax; |
| 672 |
|
|
myScaffold.wmax = 0; |
| 673 |
greg |
3.37 |
myScaffold.nic = sdt->stc[tt_Y]->ndim - 2; |
| 674 |
greg |
3.24 |
myScaffold.rev = rev; |
| 675 |
greg |
3.6 |
myScaffold.alen = 0; |
| 676 |
greg |
3.12 |
myScaffold.nall = 512; |
| 677 |
greg |
3.6 |
myScaffold.darr = (struct outdir_s *)malloc(sizeof(struct outdir_s) * |
| 678 |
|
|
myScaffold.nall); |
| 679 |
|
|
if (myScaffold.darr == NULL) |
| 680 |
|
|
return NULL; |
| 681 |
greg |
3.24 |
/* set up traversal */ |
| 682 |
|
|
cmask = (1<<myScaffold.nic) - 1; |
| 683 |
|
|
for (i = myScaffold.nic; i--; ) |
| 684 |
|
|
pos[i+2*rev] = invec[i]; |
| 685 |
|
|
cmask <<= 2*rev; |
| 686 |
greg |
3.6 |
/* grow the distribution */ |
| 687 |
greg |
3.37 |
if (SDtraverseTre(sdt->stc[tt_Y], pos, cmask, |
| 688 |
|
|
build_scaffold, &myScaffold) < 0) { |
| 689 |
greg |
3.6 |
free(myScaffold.darr); |
| 690 |
|
|
return NULL; |
| 691 |
|
|
} |
| 692 |
|
|
/* allocate result holder */ |
| 693 |
|
|
cd = (SDTreCDst *)malloc(sizeof(SDTreCDst) + |
| 694 |
|
|
sizeof(cd->carr[0])*myScaffold.alen); |
| 695 |
|
|
if (cd == NULL) { |
| 696 |
greg |
3.12 |
sprintf(SDerrorDetail, |
| 697 |
|
|
"Cannot allocate %u entry cumulative distribution", |
| 698 |
|
|
myScaffold.alen); |
| 699 |
greg |
3.6 |
free(myScaffold.darr); |
| 700 |
|
|
return NULL; |
| 701 |
|
|
} |
| 702 |
greg |
3.15 |
cd->isodist = (myScaffold.nic == 1); |
| 703 |
greg |
3.6 |
/* sort the distribution */ |
| 704 |
|
|
qsort(myScaffold.darr, cd->calen = myScaffold.alen, |
| 705 |
greg |
3.37 |
sizeof(struct outdir_s), sscmp); |
| 706 |
greg |
3.6 |
|
| 707 |
|
|
/* record input range */ |
| 708 |
greg |
3.7 |
scale = myScaffold.wmin / (double)iwmax; |
| 709 |
greg |
3.6 |
for (i = myScaffold.nic; i--; ) { |
| 710 |
greg |
3.26 |
cd->clim[i][0] = floor(pos[i+2*rev]/scale) * scale; |
| 711 |
greg |
3.6 |
cd->clim[i][1] = cd->clim[i][0] + scale; |
| 712 |
|
|
} |
| 713 |
greg |
3.15 |
if (cd->isodist) { /* avoid issue in SDqueryTreProjSA() */ |
| 714 |
|
|
cd->clim[1][0] = cd->clim[0][0]; |
| 715 |
|
|
cd->clim[1][1] = cd->clim[0][1]; |
| 716 |
|
|
} |
| 717 |
greg |
3.6 |
cd->max_psa = myScaffold.wmax / (double)iwmax; |
| 718 |
|
|
cd->max_psa *= cd->max_psa * M_PI; |
| 719 |
greg |
3.24 |
if (rev) |
| 720 |
|
|
cd->sidef = (sdt->sidef==SD_BXMIT) ? SD_FXMIT : SD_BXMIT; |
| 721 |
|
|
else |
| 722 |
|
|
cd->sidef = sdt->sidef; |
| 723 |
greg |
3.6 |
cd->cTotal = 1e-20; /* compute directional total */ |
| 724 |
|
|
sp = myScaffold.darr; |
| 725 |
|
|
for (i = myScaffold.alen; i--; sp++) |
| 726 |
|
|
cd->cTotal += sp->bsdf * (double)sp->wid * sp->wid; |
| 727 |
|
|
cursum = .0; /* go back and get cumulative values */ |
| 728 |
|
|
scale = (double)cumlmax / cd->cTotal; |
| 729 |
|
|
sp = myScaffold.darr; |
| 730 |
|
|
for (i = 0; i < cd->calen; i++, sp++) { |
| 731 |
greg |
3.7 |
cd->carr[i].hndx = sp->hent; |
| 732 |
greg |
3.6 |
cd->carr[i].cuml = scale*cursum + .5; |
| 733 |
|
|
cursum += sp->bsdf * (double)sp->wid * sp->wid; |
| 734 |
|
|
} |
| 735 |
|
|
cd->carr[i].hndx = ~0; /* make final entry */ |
| 736 |
|
|
cd->carr[i].cuml = cumlmax; |
| 737 |
|
|
cd->cTotal *= M_PI/(double)iwmax/iwmax; |
| 738 |
|
|
/* all done, clean up and return */ |
| 739 |
|
|
free(myScaffold.darr); |
| 740 |
|
|
return cd; |
| 741 |
|
|
} |
| 742 |
|
|
|
| 743 |
|
|
/* Find or allocate a cumulative distribution for the given incoming vector */ |
| 744 |
|
|
const SDCDst * |
| 745 |
|
|
SDgetTreCDist(const FVECT inVec, SDComponent *sdc) |
| 746 |
|
|
{ |
| 747 |
|
|
const SDTre *sdt; |
| 748 |
greg |
3.22 |
double inCoord[2]; |
| 749 |
greg |
3.6 |
int i; |
| 750 |
greg |
3.24 |
int mode; |
| 751 |
greg |
3.6 |
SDTreCDst *cd, *cdlast; |
| 752 |
|
|
/* check arguments */ |
| 753 |
|
|
if ((inVec == NULL) | (sdc == NULL) || |
| 754 |
|
|
(sdt = (SDTre *)sdc->dist) == NULL) |
| 755 |
|
|
return NULL; |
| 756 |
greg |
3.24 |
switch (mode = sdt->sidef) { /* check direction */ |
| 757 |
|
|
case SD_FREFL: |
| 758 |
|
|
if (inVec[2] < 0) |
| 759 |
|
|
return NULL; |
| 760 |
|
|
break; |
| 761 |
|
|
case SD_BREFL: |
| 762 |
|
|
if (inVec[2] > 0) |
| 763 |
|
|
return NULL; |
| 764 |
|
|
break; |
| 765 |
|
|
case SD_FXMIT: |
| 766 |
|
|
if (inVec[2] < 0) |
| 767 |
|
|
mode = SD_BXMIT; |
| 768 |
|
|
break; |
| 769 |
|
|
case SD_BXMIT: |
| 770 |
|
|
if (inVec[2] > 0) |
| 771 |
|
|
mode = SD_FXMIT; |
| 772 |
|
|
break; |
| 773 |
|
|
default: |
| 774 |
|
|
return NULL; |
| 775 |
|
|
} |
| 776 |
greg |
3.37 |
if (sdt->stc[tt_Y]->ndim == 3) { /* isotropic BSDF? */ |
| 777 |
greg |
3.24 |
if (mode != sdt->sidef) /* XXX unhandled reciprocity */ |
| 778 |
|
|
return &SDemptyCD; |
| 779 |
greg |
3.31 |
inCoord[0] = (.5-FTINY) - |
| 780 |
|
|
.5*sqrt(inVec[0]*inVec[0] + inVec[1]*inVec[1]); |
| 781 |
greg |
3.37 |
} else if (sdt->stc[tt_Y]->ndim == 4) { |
| 782 |
greg |
3.25 |
if (mode != sdt->sidef) /* use reciprocity? */ |
| 783 |
|
|
SDdisk2square(inCoord, inVec[0], inVec[1]); |
| 784 |
|
|
else |
| 785 |
|
|
SDdisk2square(inCoord, -inVec[0], -inVec[1]); |
| 786 |
greg |
3.21 |
} else |
| 787 |
greg |
3.6 |
return NULL; /* should be internal error */ |
| 788 |
greg |
3.21 |
/* quantize to avoid f.p. errors */ |
| 789 |
greg |
3.37 |
for (i = sdt->stc[tt_Y]->ndim - 2; i--; ) |
| 790 |
greg |
3.21 |
inCoord[i] = floor(inCoord[i]/quantum)*quantum + .5*quantum; |
| 791 |
greg |
3.6 |
cdlast = NULL; /* check for direction in cache list */ |
| 792 |
greg |
3.44 |
/* PLACE MUTEX LOCK HERE FOR THREAD-SAFE */ |
| 793 |
greg |
3.6 |
for (cd = (SDTreCDst *)sdc->cdList; cd != NULL; |
| 794 |
greg |
3.20 |
cdlast = cd, cd = cd->next) { |
| 795 |
greg |
3.24 |
if (cd->sidef != mode) |
| 796 |
|
|
continue; |
| 797 |
greg |
3.37 |
for (i = sdt->stc[tt_Y]->ndim - 2; i--; ) |
| 798 |
greg |
3.6 |
if ((cd->clim[i][0] > inCoord[i]) | |
| 799 |
|
|
(inCoord[i] >= cd->clim[i][1])) |
| 800 |
|
|
break; |
| 801 |
|
|
if (i < 0) |
| 802 |
|
|
break; /* means we have a match */ |
| 803 |
|
|
} |
| 804 |
|
|
if (cd == NULL) /* need to create new entry? */ |
| 805 |
greg |
3.24 |
cdlast = cd = make_cdist(sdt, inCoord, mode != sdt->sidef); |
| 806 |
greg |
3.6 |
if (cdlast != NULL) { /* move entry to head of cache list */ |
| 807 |
|
|
cdlast->next = cd->next; |
| 808 |
greg |
3.20 |
cd->next = (SDTreCDst *)sdc->cdList; |
| 809 |
greg |
3.6 |
sdc->cdList = (SDCDst *)cd; |
| 810 |
|
|
} |
| 811 |
greg |
3.44 |
/* END MUTEX LOCK */ |
| 812 |
greg |
3.6 |
return (SDCDst *)cd; /* ready to go */ |
| 813 |
|
|
} |
| 814 |
|
|
|
| 815 |
|
|
/* Query solid angle for vector(s) */ |
| 816 |
|
|
static SDError |
| 817 |
|
|
SDqueryTreProjSA(double *psa, const FVECT v1, const RREAL *v2, |
| 818 |
|
|
int qflags, SDComponent *sdc) |
| 819 |
|
|
{ |
| 820 |
|
|
double myPSA[2]; |
| 821 |
|
|
/* check arguments */ |
| 822 |
|
|
if ((psa == NULL) | (v1 == NULL) | (sdc == NULL) || |
| 823 |
|
|
sdc->dist == NULL) |
| 824 |
|
|
return SDEargument; |
| 825 |
|
|
/* get projected solid angle(s) */ |
| 826 |
|
|
if (v2 != NULL) { |
| 827 |
|
|
const SDTre *sdt = (SDTre *)sdc->dist; |
| 828 |
greg |
3.36 |
double hcube[SD_MAXDIM+1]; |
| 829 |
greg |
3.37 |
if (!SDqueryTre(sdt, NULL, v1, v2, hcube)) { |
| 830 |
greg |
3.7 |
strcpy(SDerrorDetail, "Bad call to SDqueryTreProjSA"); |
| 831 |
|
|
return SDEinternal; |
| 832 |
greg |
3.6 |
} |
| 833 |
greg |
3.37 |
myPSA[0] = hcube[sdt->stc[tt_Y]->ndim]; |
| 834 |
greg |
3.6 |
myPSA[1] = myPSA[0] *= myPSA[0] * M_PI; |
| 835 |
|
|
} else { |
| 836 |
|
|
const SDTreCDst *cd = (const SDTreCDst *)SDgetTreCDist(v1, sdc); |
| 837 |
|
|
if (cd == NULL) |
| 838 |
greg |
3.29 |
myPSA[0] = myPSA[1] = 0; |
| 839 |
|
|
else { |
| 840 |
|
|
myPSA[0] = M_PI * (cd->clim[0][1] - cd->clim[0][0]) * |
| 841 |
|
|
(cd->clim[1][1] - cd->clim[1][0]); |
| 842 |
|
|
myPSA[1] = cd->max_psa; |
| 843 |
|
|
} |
| 844 |
greg |
3.6 |
} |
| 845 |
|
|
switch (qflags) { /* record based on flag settings */ |
| 846 |
|
|
case SDqueryVal: |
| 847 |
|
|
*psa = myPSA[0]; |
| 848 |
|
|
break; |
| 849 |
|
|
case SDqueryMax: |
| 850 |
|
|
if (myPSA[1] > *psa) |
| 851 |
|
|
*psa = myPSA[1]; |
| 852 |
|
|
break; |
| 853 |
|
|
case SDqueryMin+SDqueryMax: |
| 854 |
|
|
if (myPSA[1] > psa[1]) |
| 855 |
|
|
psa[1] = myPSA[1]; |
| 856 |
|
|
/* fall through */ |
| 857 |
|
|
case SDqueryMin: |
| 858 |
greg |
3.30 |
if ((myPSA[0] > 0) & (myPSA[0] < psa[0])) |
| 859 |
greg |
3.6 |
psa[0] = myPSA[0]; |
| 860 |
|
|
break; |
| 861 |
|
|
} |
| 862 |
|
|
return SDEnone; |
| 863 |
|
|
} |
| 864 |
|
|
|
| 865 |
|
|
/* Sample cumulative distribution */ |
| 866 |
|
|
static SDError |
| 867 |
|
|
SDsampTreCDist(FVECT ioVec, double randX, const SDCDst *cdp) |
| 868 |
|
|
{ |
| 869 |
|
|
const unsigned nBitsC = 4*sizeof(bitmask_t); |
| 870 |
|
|
const unsigned nExtraBits = 8*(sizeof(bitmask_t)-sizeof(unsigned)); |
| 871 |
|
|
const SDTreCDst *cd = (const SDTreCDst *)cdp; |
| 872 |
greg |
3.7 |
const unsigned target = randX*cumlmax; |
| 873 |
greg |
3.6 |
bitmask_t hndx, hcoord[2]; |
| 874 |
greg |
3.15 |
double gpos[3], rotangle; |
| 875 |
greg |
3.6 |
int i, iupper, ilower; |
| 876 |
|
|
/* check arguments */ |
| 877 |
|
|
if ((ioVec == NULL) | (cd == NULL)) |
| 878 |
|
|
return SDEargument; |
| 879 |
greg |
3.24 |
if (!cd->sidef) |
| 880 |
|
|
return SDEnone; /* XXX should never happen */ |
| 881 |
greg |
3.7 |
if (ioVec[2] > 0) { |
| 882 |
greg |
3.24 |
if ((cd->sidef != SD_FREFL) & (cd->sidef != SD_FXMIT)) |
| 883 |
greg |
3.7 |
return SDEargument; |
| 884 |
greg |
3.24 |
} else if ((cd->sidef != SD_BREFL) & (cd->sidef != SD_BXMIT)) |
| 885 |
greg |
3.7 |
return SDEargument; |
| 886 |
greg |
3.6 |
/* binary search to find position */ |
| 887 |
|
|
ilower = 0; iupper = cd->calen; |
| 888 |
|
|
while ((i = (iupper + ilower) >> 1) != ilower) |
| 889 |
greg |
3.19 |
if (target >= cd->carr[i].cuml) |
| 890 |
greg |
3.6 |
ilower = i; |
| 891 |
|
|
else |
| 892 |
|
|
iupper = i; |
| 893 |
|
|
/* localize random position */ |
| 894 |
greg |
3.7 |
randX = (randX*cumlmax - cd->carr[ilower].cuml) / |
| 895 |
greg |
3.6 |
(double)(cd->carr[iupper].cuml - cd->carr[ilower].cuml); |
| 896 |
|
|
/* index in longer Hilbert curve */ |
| 897 |
|
|
hndx = (randX*cd->carr[iupper].hndx + (1.-randX)*cd->carr[ilower].hndx) |
| 898 |
|
|
* (double)((bitmask_t)1 << nExtraBits); |
| 899 |
|
|
/* convert Hilbert index to vector */ |
| 900 |
|
|
hilbert_i2c(2, nBitsC, hndx, hcoord); |
| 901 |
|
|
for (i = 2; i--; ) |
| 902 |
|
|
gpos[i] = ((double)hcoord[i] + rand()*(1./(RAND_MAX+.5))) / |
| 903 |
|
|
(double)((bitmask_t)1 << nBitsC); |
| 904 |
|
|
SDsquare2disk(gpos, gpos[0], gpos[1]); |
| 905 |
greg |
3.7 |
/* compute Z-coordinate */ |
| 906 |
greg |
3.6 |
gpos[2] = 1. - gpos[0]*gpos[0] - gpos[1]*gpos[1]; |
| 907 |
greg |
3.32 |
gpos[2] = sqrt(gpos[2]*(gpos[2]>0)); |
| 908 |
greg |
3.7 |
/* emit from back? */ |
| 909 |
greg |
3.24 |
if ((cd->sidef == SD_BREFL) | (cd->sidef == SD_FXMIT)) |
| 910 |
greg |
3.6 |
gpos[2] = -gpos[2]; |
| 911 |
greg |
3.34 |
if (cd->isodist) { /* rotate isotropic sample */ |
| 912 |
greg |
3.15 |
rotangle = atan2(-ioVec[1],-ioVec[0]); |
| 913 |
greg |
3.34 |
spinvector(ioVec, gpos, zvec, rotangle); |
| 914 |
greg |
3.15 |
} else |
| 915 |
|
|
VCOPY(ioVec, gpos); |
| 916 |
greg |
3.6 |
return SDEnone; |
| 917 |
greg |
3.5 |
} |
| 918 |
|
|
|
| 919 |
greg |
3.7 |
/* Advance pointer to the next non-white character in the string (or nul) */ |
| 920 |
|
|
static int |
| 921 |
|
|
next_token(char **spp) |
| 922 |
|
|
{ |
| 923 |
|
|
while (isspace(**spp)) |
| 924 |
|
|
++*spp; |
| 925 |
|
|
return **spp; |
| 926 |
|
|
} |
| 927 |
|
|
|
| 928 |
greg |
3.12 |
/* Advance pointer past matching token (or any token if c==0) */ |
| 929 |
greg |
3.43 |
#define eat_token(spp,c) ((next_token(spp)==(c)) ^ !(c) ? *(*(spp))++ : 0) |
| 930 |
greg |
3.9 |
|
| 931 |
greg |
3.7 |
/* Count words from this point in string to '}' */ |
| 932 |
|
|
static int |
| 933 |
|
|
count_values(char *cp) |
| 934 |
|
|
{ |
| 935 |
|
|
int n = 0; |
| 936 |
|
|
|
| 937 |
greg |
3.9 |
while (next_token(&cp) != '}' && *cp) { |
| 938 |
greg |
3.11 |
while (!isspace(*cp) & (*cp != ',') & (*cp != '}')) |
| 939 |
|
|
if (!*++cp) |
| 940 |
|
|
break; |
| 941 |
greg |
3.7 |
++n; |
| 942 |
greg |
3.9 |
eat_token(&cp, ','); |
| 943 |
greg |
3.7 |
} |
| 944 |
|
|
return n; |
| 945 |
|
|
} |
| 946 |
|
|
|
| 947 |
|
|
/* Load an array of real numbers, returning total */ |
| 948 |
|
|
static int |
| 949 |
|
|
load_values(char **spp, float *va, int n) |
| 950 |
|
|
{ |
| 951 |
|
|
float *v = va; |
| 952 |
|
|
char *svnext; |
| 953 |
|
|
|
| 954 |
|
|
while (n-- > 0 && (svnext = fskip(*spp)) != NULL) { |
| 955 |
greg |
3.33 |
if ((*v++ = atof(*spp)) < 0) |
| 956 |
|
|
v[-1] = 0; |
| 957 |
greg |
3.7 |
*spp = svnext; |
| 958 |
greg |
3.9 |
eat_token(spp, ','); |
| 959 |
greg |
3.7 |
} |
| 960 |
|
|
return v - va; |
| 961 |
|
|
} |
| 962 |
|
|
|
| 963 |
|
|
/* Load BSDF tree data */ |
| 964 |
|
|
static SDNode * |
| 965 |
|
|
load_tree_data(char **spp, int nd) |
| 966 |
|
|
{ |
| 967 |
|
|
SDNode *st; |
| 968 |
|
|
int n; |
| 969 |
|
|
|
| 970 |
greg |
3.9 |
if (!eat_token(spp, '{')) { |
| 971 |
greg |
3.7 |
strcpy(SDerrorDetail, "Missing '{' in tensor tree"); |
| 972 |
|
|
return NULL; |
| 973 |
|
|
} |
| 974 |
|
|
if (next_token(spp) == '{') { /* tree branches */ |
| 975 |
|
|
st = SDnewNode(nd, -1); |
| 976 |
|
|
if (st == NULL) |
| 977 |
|
|
return NULL; |
| 978 |
|
|
for (n = 0; n < 1<<nd; n++) |
| 979 |
|
|
if ((st->u.t[n] = load_tree_data(spp, nd)) == NULL) { |
| 980 |
|
|
SDfreeTre(st); |
| 981 |
|
|
return NULL; |
| 982 |
|
|
} |
| 983 |
|
|
} else { /* else load value grid */ |
| 984 |
|
|
int bsiz; |
| 985 |
|
|
n = count_values(*spp); /* see how big the grid is */ |
| 986 |
greg |
3.15 |
for (bsiz = 0; bsiz < 8*sizeof(size_t); bsiz += nd) |
| 987 |
greg |
3.7 |
if (1<<bsiz == n) |
| 988 |
|
|
break; |
| 989 |
|
|
if (bsiz >= 8*sizeof(size_t)) { |
| 990 |
|
|
strcpy(SDerrorDetail, "Illegal value count in tensor tree"); |
| 991 |
|
|
return NULL; |
| 992 |
|
|
} |
| 993 |
|
|
st = SDnewNode(nd, bsiz/nd); |
| 994 |
|
|
if (st == NULL) |
| 995 |
|
|
return NULL; |
| 996 |
|
|
if (load_values(spp, st->u.v, n) != n) { |
| 997 |
|
|
strcpy(SDerrorDetail, "Real format error in tensor tree"); |
| 998 |
|
|
SDfreeTre(st); |
| 999 |
|
|
return NULL; |
| 1000 |
|
|
} |
| 1001 |
|
|
} |
| 1002 |
greg |
3.9 |
if (!eat_token(spp, '}')) { |
| 1003 |
greg |
3.7 |
strcpy(SDerrorDetail, "Missing '}' in tensor tree"); |
| 1004 |
|
|
SDfreeTre(st); |
| 1005 |
|
|
return NULL; |
| 1006 |
|
|
} |
| 1007 |
greg |
3.9 |
eat_token(spp, ','); |
| 1008 |
greg |
3.7 |
return st; |
| 1009 |
|
|
} |
| 1010 |
|
|
|
| 1011 |
|
|
/* Compute min. proj. solid angle and max. direct hemispherical scattering */ |
| 1012 |
|
|
static SDError |
| 1013 |
|
|
get_extrema(SDSpectralDF *df) |
| 1014 |
|
|
{ |
| 1015 |
greg |
3.37 |
SDNode *st = (*(SDTre *)df->comp[0].dist).stc[tt_Y]; |
| 1016 |
greg |
3.7 |
double stepWidth, dhemi, bmin[4], bmax[4]; |
| 1017 |
|
|
|
| 1018 |
|
|
stepWidth = SDsmallestLeaf(st); |
| 1019 |
greg |
3.22 |
if (quantum > stepWidth) /* adjust quantization factor */ |
| 1020 |
|
|
quantum = stepWidth; |
| 1021 |
greg |
3.7 |
df->minProjSA = M_PI*stepWidth*stepWidth; |
| 1022 |
|
|
if (stepWidth < .03125) |
| 1023 |
|
|
stepWidth = .03125; /* 1/32 resolution good enough */ |
| 1024 |
|
|
df->maxHemi = .0; |
| 1025 |
|
|
if (st->ndim == 3) { /* isotropic BSDF */ |
| 1026 |
|
|
bmin[1] = bmin[2] = .0; |
| 1027 |
|
|
bmax[1] = bmax[2] = 1.; |
| 1028 |
|
|
for (bmin[0] = .0; bmin[0] < .5-FTINY; bmin[0] += stepWidth) { |
| 1029 |
|
|
bmax[0] = bmin[0] + stepWidth; |
| 1030 |
|
|
dhemi = SDavgTreBox(st, bmin, bmax); |
| 1031 |
|
|
if (dhemi > df->maxHemi) |
| 1032 |
|
|
df->maxHemi = dhemi; |
| 1033 |
|
|
} |
| 1034 |
|
|
} else if (st->ndim == 4) { /* anisotropic BSDF */ |
| 1035 |
|
|
bmin[2] = bmin[3] = .0; |
| 1036 |
|
|
bmax[2] = bmax[3] = 1.; |
| 1037 |
|
|
for (bmin[0] = .0; bmin[0] < 1.-FTINY; bmin[0] += stepWidth) { |
| 1038 |
|
|
bmax[0] = bmin[0] + stepWidth; |
| 1039 |
|
|
for (bmin[1] = .0; bmin[1] < 1.-FTINY; bmin[1] += stepWidth) { |
| 1040 |
|
|
bmax[1] = bmin[1] + stepWidth; |
| 1041 |
|
|
dhemi = SDavgTreBox(st, bmin, bmax); |
| 1042 |
|
|
if (dhemi > df->maxHemi) |
| 1043 |
|
|
df->maxHemi = dhemi; |
| 1044 |
|
|
} |
| 1045 |
|
|
} |
| 1046 |
|
|
} else |
| 1047 |
|
|
return SDEinternal; |
| 1048 |
|
|
/* correct hemispherical value */ |
| 1049 |
|
|
df->maxHemi *= M_PI; |
| 1050 |
|
|
return SDEnone; |
| 1051 |
|
|
} |
| 1052 |
|
|
|
| 1053 |
|
|
/* Load BSDF distribution for this wavelength */ |
| 1054 |
|
|
static SDError |
| 1055 |
greg |
3.37 |
load_bsdf_data(SDData *sd, ezxml_t wdb, int ct, int ndim) |
| 1056 |
greg |
3.7 |
{ |
| 1057 |
|
|
SDSpectralDF *df; |
| 1058 |
|
|
SDTre *sdt; |
| 1059 |
|
|
char *sdata; |
| 1060 |
|
|
/* allocate BSDF component */ |
| 1061 |
|
|
sdata = ezxml_txt(ezxml_child(wdb, "WavelengthDataDirection")); |
| 1062 |
|
|
if (!sdata) |
| 1063 |
|
|
return SDEnone; |
| 1064 |
|
|
/* |
| 1065 |
|
|
* Remember that front and back are reversed from WINDOW 6 orientations |
| 1066 |
|
|
*/ |
| 1067 |
greg |
3.24 |
if (!strcasecmp(sdata, "Transmission Front")) { |
| 1068 |
greg |
3.37 |
if (sd->tb == NULL && (sd->tb = SDnewSpectralDF(1)) == NULL) |
| 1069 |
greg |
3.25 |
return SDEmemory; |
| 1070 |
|
|
df = sd->tb; |
| 1071 |
|
|
} else if (!strcasecmp(sdata, "Transmission Back")) { |
| 1072 |
greg |
3.37 |
if (sd->tf == NULL && (sd->tf = SDnewSpectralDF(1)) == NULL) |
| 1073 |
greg |
3.7 |
return SDEmemory; |
| 1074 |
|
|
df = sd->tf; |
| 1075 |
|
|
} else if (!strcasecmp(sdata, "Reflection Front")) { |
| 1076 |
greg |
3.37 |
if (sd->rb == NULL && (sd->rb = SDnewSpectralDF(1)) == NULL) |
| 1077 |
greg |
3.7 |
return SDEmemory; |
| 1078 |
|
|
df = sd->rb; |
| 1079 |
|
|
} else if (!strcasecmp(sdata, "Reflection Back")) { |
| 1080 |
greg |
3.37 |
if (sd->rf == NULL && (sd->rf = SDnewSpectralDF(1)) == NULL) |
| 1081 |
greg |
3.7 |
return SDEmemory; |
| 1082 |
|
|
df = sd->rf; |
| 1083 |
|
|
} else |
| 1084 |
|
|
return SDEnone; |
| 1085 |
|
|
/* get angle bases */ |
| 1086 |
|
|
sdata = ezxml_txt(ezxml_child(wdb,"AngleBasis")); |
| 1087 |
|
|
if (!sdata || strcasecmp(sdata, "LBNL/Shirley-Chiu")) { |
| 1088 |
|
|
sprintf(SDerrorDetail, "%s angle basis for BSDF '%s'", |
| 1089 |
|
|
!sdata ? "Missing" : "Unsupported", sd->name); |
| 1090 |
|
|
return !sdata ? SDEformat : SDEsupport; |
| 1091 |
|
|
} |
| 1092 |
greg |
3.37 |
if (df->comp[0].dist == NULL) { /* need to allocate BSDF tree? */ |
| 1093 |
|
|
sdt = (SDTre *)malloc(sizeof(SDTre)); |
| 1094 |
|
|
if (sdt == NULL) |
| 1095 |
|
|
return SDEmemory; |
| 1096 |
|
|
if (df == sd->rf) |
| 1097 |
|
|
sdt->sidef = SD_FREFL; |
| 1098 |
|
|
else if (df == sd->rb) |
| 1099 |
|
|
sdt->sidef = SD_BREFL; |
| 1100 |
|
|
else if (df == sd->tf) |
| 1101 |
|
|
sdt->sidef = SD_FXMIT; |
| 1102 |
|
|
else /* df == sd->tb */ |
| 1103 |
|
|
sdt->sidef = SD_BXMIT; |
| 1104 |
|
|
sdt->stc[tt_Y] = sdt->stc[tt_u] = sdt->stc[tt_v] = NULL; |
| 1105 |
|
|
df->comp[0].dist = sdt; |
| 1106 |
|
|
df->comp[0].func = &SDhandleTre; |
| 1107 |
|
|
} else { |
| 1108 |
|
|
sdt = (SDTre *)df->comp[0].dist; |
| 1109 |
|
|
if (sdt->stc[ct] != NULL) { |
| 1110 |
|
|
SDfreeTre(sdt->stc[ct]); |
| 1111 |
|
|
sdt->stc[ct] = NULL; |
| 1112 |
|
|
} |
| 1113 |
|
|
} |
| 1114 |
greg |
3.7 |
/* read BSDF data */ |
| 1115 |
|
|
sdata = ezxml_txt(ezxml_child(wdb, "ScatteringData")); |
| 1116 |
|
|
if (!sdata || !next_token(&sdata)) { |
| 1117 |
|
|
sprintf(SDerrorDetail, "Missing BSDF ScatteringData in '%s'", |
| 1118 |
|
|
sd->name); |
| 1119 |
|
|
return SDEformat; |
| 1120 |
|
|
} |
| 1121 |
greg |
3.37 |
sdt->stc[ct] = load_tree_data(&sdata, ndim); |
| 1122 |
|
|
if (sdt->stc[ct] == NULL) |
| 1123 |
greg |
3.7 |
return SDEformat; |
| 1124 |
|
|
if (next_token(&sdata)) { /* check for unconsumed characters */ |
| 1125 |
|
|
sprintf(SDerrorDetail, |
| 1126 |
|
|
"Extra characters at end of ScatteringData in '%s'", |
| 1127 |
|
|
sd->name); |
| 1128 |
|
|
return SDEformat; |
| 1129 |
|
|
} |
| 1130 |
|
|
/* flatten branches where possible */ |
| 1131 |
greg |
3.37 |
sdt->stc[ct] = SDsimplifyTre(sdt->stc[ct]); |
| 1132 |
|
|
if (sdt->stc[ct] == NULL) |
| 1133 |
greg |
3.7 |
return SDEinternal; |
| 1134 |
greg |
3.37 |
/* compute global quantities for Y */ |
| 1135 |
|
|
return (ct == tt_Y) ? get_extrema(df) : SDEnone; |
| 1136 |
greg |
3.7 |
} |
| 1137 |
|
|
|
| 1138 |
|
|
/* Find minimum value in tree */ |
| 1139 |
|
|
static float |
| 1140 |
|
|
SDgetTreMin(const SDNode *st) |
| 1141 |
|
|
{ |
| 1142 |
greg |
3.10 |
float vmin = FHUGE; |
| 1143 |
greg |
3.7 |
int n; |
| 1144 |
|
|
|
| 1145 |
|
|
if (st->log2GR < 0) { |
| 1146 |
|
|
for (n = 1<<st->ndim; n--; ) { |
| 1147 |
|
|
float v = SDgetTreMin(st->u.t[n]); |
| 1148 |
|
|
if (v < vmin) |
| 1149 |
|
|
vmin = v; |
| 1150 |
|
|
} |
| 1151 |
|
|
} else { |
| 1152 |
|
|
for (n = 1<<(st->ndim*st->log2GR); n--; ) |
| 1153 |
|
|
if (st->u.v[n] < vmin) |
| 1154 |
|
|
vmin = st->u.v[n]; |
| 1155 |
|
|
} |
| 1156 |
|
|
return vmin; |
| 1157 |
|
|
} |
| 1158 |
|
|
|
| 1159 |
|
|
/* Subtract the given value from all tree nodes */ |
| 1160 |
|
|
static void |
| 1161 |
|
|
SDsubtractTreVal(SDNode *st, float val) |
| 1162 |
|
|
{ |
| 1163 |
|
|
int n; |
| 1164 |
|
|
|
| 1165 |
|
|
if (st->log2GR < 0) { |
| 1166 |
|
|
for (n = 1<<st->ndim; n--; ) |
| 1167 |
|
|
SDsubtractTreVal(st->u.t[n], val); |
| 1168 |
|
|
} else { |
| 1169 |
|
|
for (n = 1<<(st->ndim*st->log2GR); n--; ) |
| 1170 |
greg |
3.15 |
if ((st->u.v[n] -= val) < 0) |
| 1171 |
|
|
st->u.v[n] = .0f; |
| 1172 |
greg |
3.7 |
} |
| 1173 |
|
|
} |
| 1174 |
|
|
|
| 1175 |
greg |
3.37 |
/* Subtract minimum Y value from BSDF */ |
| 1176 |
greg |
3.7 |
static double |
| 1177 |
greg |
3.37 |
subtract_min_Y(SDNode *st) |
| 1178 |
greg |
3.7 |
{ |
| 1179 |
|
|
float vmin; |
| 1180 |
|
|
/* be sure to skip unused portion */ |
| 1181 |
greg |
3.10 |
if (st->ndim == 3) { |
| 1182 |
|
|
int n; |
| 1183 |
greg |
3.7 |
vmin = 1./M_PI; |
| 1184 |
greg |
3.10 |
if (st->log2GR < 0) { |
| 1185 |
greg |
3.15 |
for (n = 0; n < 8; n += 2) { |
| 1186 |
greg |
3.10 |
float v = SDgetTreMin(st->u.t[n]); |
| 1187 |
|
|
if (v < vmin) |
| 1188 |
|
|
vmin = v; |
| 1189 |
|
|
} |
| 1190 |
|
|
} else if (st->log2GR) { |
| 1191 |
|
|
for (n = 1 << (3*st->log2GR - 1); n--; ) |
| 1192 |
|
|
if (st->u.v[n] < vmin) |
| 1193 |
|
|
vmin = st->u.v[n]; |
| 1194 |
|
|
} else |
| 1195 |
|
|
vmin = st->u.v[0]; |
| 1196 |
greg |
3.7 |
} else /* anisotropic covers entire tree */ |
| 1197 |
|
|
vmin = SDgetTreMin(st); |
| 1198 |
|
|
|
| 1199 |
greg |
3.39 |
if (vmin <= .01/M_PI) |
| 1200 |
|
|
return .0; /* not worth bothering about */ |
| 1201 |
greg |
3.7 |
|
| 1202 |
greg |
3.8 |
SDsubtractTreVal(st, vmin); |
| 1203 |
greg |
3.7 |
|
| 1204 |
|
|
return M_PI * vmin; /* return hemispherical value */ |
| 1205 |
|
|
} |
| 1206 |
|
|
|
| 1207 |
greg |
3.37 |
/* Struct used in callback to find RGB extrema */ |
| 1208 |
|
|
typedef struct { |
| 1209 |
|
|
SDNode **stc; /* original Y, u' & v' trees */ |
| 1210 |
|
|
float rgb[3]; /* RGB value */ |
| 1211 |
|
|
SDNode *new_stu, *new_stv; /* replacement u' & v' trees */ |
| 1212 |
|
|
} SDextRGBs; |
| 1213 |
|
|
|
| 1214 |
|
|
/* Callback to find minimum RGB from Y value plus CIE (u',v') trees */ |
| 1215 |
|
|
static int |
| 1216 |
|
|
get_min_RGB(float yval, const double *cmin, double csiz, void *cptr) |
| 1217 |
|
|
{ |
| 1218 |
|
|
SDextRGBs *mp = (SDextRGBs *)cptr; |
| 1219 |
|
|
double cmax[SD_MAXDIM]; |
| 1220 |
|
|
float rgb[3]; |
| 1221 |
|
|
|
| 1222 |
|
|
if (mp->stc[tt_Y]->ndim == 3) { |
| 1223 |
|
|
if (cmin[0] + .5*csiz >= .5) |
| 1224 |
|
|
return 0; /* ignore dead half of isotropic */ |
| 1225 |
|
|
} else |
| 1226 |
|
|
cmax[3] = cmin[3] + csiz; |
| 1227 |
|
|
cmax[0] = cmin[0] + csiz; |
| 1228 |
|
|
cmax[1] = cmin[1] + csiz; |
| 1229 |
|
|
cmax[2] = cmin[2] + csiz; |
| 1230 |
|
|
/* average RGB color over voxel */ |
| 1231 |
|
|
SDyuv2rgb(yval, SDavgTreBox(mp->stc[tt_u], cmin, cmax), |
| 1232 |
|
|
SDavgTreBox(mp->stc[tt_v], cmin, cmax), rgb); |
| 1233 |
|
|
/* track smallest components */ |
| 1234 |
|
|
if (rgb[0] < mp->rgb[0]) mp->rgb[0] = rgb[0]; |
| 1235 |
|
|
if (rgb[1] < mp->rgb[1]) mp->rgb[1] = rgb[1]; |
| 1236 |
|
|
if (rgb[2] < mp->rgb[2]) mp->rgb[2] = rgb[2]; |
| 1237 |
|
|
return 0; |
| 1238 |
|
|
} |
| 1239 |
|
|
|
| 1240 |
|
|
/* Callback to build adjusted u' tree */ |
| 1241 |
|
|
static int |
| 1242 |
|
|
adjust_utree(float uprime, const double *cmin, double csiz, void *cptr) |
| 1243 |
|
|
{ |
| 1244 |
|
|
SDextRGBs *mp = (SDextRGBs *)cptr; |
| 1245 |
|
|
double cmax[SD_MAXDIM]; |
| 1246 |
greg |
3.38 |
double yval; |
| 1247 |
greg |
3.37 |
float rgb[3]; |
| 1248 |
greg |
3.38 |
C_COLOR clr; |
| 1249 |
greg |
3.37 |
|
| 1250 |
|
|
if (mp->stc[tt_Y]->ndim == 3) { |
| 1251 |
|
|
if (cmin[0] + .5*csiz >= .5) |
| 1252 |
|
|
return 0; /* ignore dead half of isotropic */ |
| 1253 |
|
|
} else |
| 1254 |
|
|
cmax[3] = cmin[3] + csiz; |
| 1255 |
|
|
cmax[0] = cmin[0] + csiz; |
| 1256 |
|
|
cmax[1] = cmin[1] + csiz; |
| 1257 |
|
|
cmax[2] = cmin[2] + csiz; |
| 1258 |
|
|
/* average RGB color over voxel */ |
| 1259 |
greg |
3.38 |
SDyuv2rgb(yval=SDavgTreBox(mp->stc[tt_Y], cmin, cmax), uprime, |
| 1260 |
greg |
3.37 |
SDavgTreBox(mp->stc[tt_v], cmin, cmax), rgb); |
| 1261 |
greg |
3.38 |
/* subtract minimum (& clamp) */ |
| 1262 |
|
|
if ((rgb[0] -= mp->rgb[0]) < 1e-5*yval) rgb[0] = 1e-5*yval; |
| 1263 |
|
|
if ((rgb[1] -= mp->rgb[1]) < 1e-5*yval) rgb[1] = 1e-5*yval; |
| 1264 |
|
|
if ((rgb[2] -= mp->rgb[2]) < 1e-5*yval) rgb[2] = 1e-5*yval; |
| 1265 |
|
|
c_fromSharpRGB(rgb, &clr); /* compute new u' for adj. RGB */ |
| 1266 |
|
|
uprime = 4.*clr.cx/(-2.*clr.cx + 12.*clr.cy + 3.); |
| 1267 |
greg |
3.37 |
/* assign in new u' tree */ |
| 1268 |
|
|
mp->new_stu = SDsetVoxel(mp->new_stu, mp->stc[tt_Y]->ndim, |
| 1269 |
|
|
cmin, csiz, uprime); |
| 1270 |
|
|
return -(mp->new_stu == NULL); |
| 1271 |
|
|
} |
| 1272 |
|
|
|
| 1273 |
|
|
/* Callback to build adjusted v' tree */ |
| 1274 |
|
|
static int |
| 1275 |
|
|
adjust_vtree(float vprime, const double *cmin, double csiz, void *cptr) |
| 1276 |
|
|
{ |
| 1277 |
|
|
SDextRGBs *mp = (SDextRGBs *)cptr; |
| 1278 |
|
|
double cmax[SD_MAXDIM]; |
| 1279 |
greg |
3.38 |
double yval; |
| 1280 |
greg |
3.37 |
float rgb[3]; |
| 1281 |
greg |
3.38 |
C_COLOR clr; |
| 1282 |
greg |
3.37 |
|
| 1283 |
|
|
if (mp->stc[tt_Y]->ndim == 3) { |
| 1284 |
|
|
if (cmin[0] + .5*csiz >= .5) |
| 1285 |
|
|
return 0; /* ignore dead half of isotropic */ |
| 1286 |
|
|
} else |
| 1287 |
|
|
cmax[3] = cmin[3] + csiz; |
| 1288 |
|
|
cmax[0] = cmin[0] + csiz; |
| 1289 |
|
|
cmax[1] = cmin[1] + csiz; |
| 1290 |
|
|
cmax[2] = cmin[2] + csiz; |
| 1291 |
|
|
/* average RGB color over voxel */ |
| 1292 |
greg |
3.38 |
SDyuv2rgb(yval=SDavgTreBox(mp->stc[tt_Y], cmin, cmax), |
| 1293 |
greg |
3.37 |
SDavgTreBox(mp->stc[tt_u], cmin, cmax), |
| 1294 |
|
|
vprime, rgb); |
| 1295 |
greg |
3.38 |
/* subtract minimum (& clamp) */ |
| 1296 |
|
|
if ((rgb[0] -= mp->rgb[0]) < 1e-5*yval) rgb[0] = 1e-5*yval; |
| 1297 |
|
|
if ((rgb[1] -= mp->rgb[1]) < 1e-5*yval) rgb[1] = 1e-5*yval; |
| 1298 |
|
|
if ((rgb[2] -= mp->rgb[2]) < 1e-5*yval) rgb[2] = 1e-5*yval; |
| 1299 |
|
|
c_fromSharpRGB(rgb, &clr); /* compute new v' for adj. RGB */ |
| 1300 |
|
|
vprime = 9.*clr.cy/(-2.*clr.cx + 12.*clr.cy + 3.); |
| 1301 |
greg |
3.37 |
/* assign in new v' tree */ |
| 1302 |
|
|
mp->new_stv = SDsetVoxel(mp->new_stv, mp->stc[tt_Y]->ndim, |
| 1303 |
|
|
cmin, csiz, vprime); |
| 1304 |
|
|
return -(mp->new_stv == NULL); |
| 1305 |
|
|
} |
| 1306 |
|
|
|
| 1307 |
|
|
/* Subtract minimum (diffuse) color and return luminance & CIE (x,y) */ |
| 1308 |
|
|
static double |
| 1309 |
|
|
subtract_min_RGB(C_COLOR *cs, SDNode *stc[]) |
| 1310 |
|
|
{ |
| 1311 |
|
|
SDextRGBs my_min; |
| 1312 |
|
|
double ymin; |
| 1313 |
|
|
|
| 1314 |
|
|
my_min.stc = stc; |
| 1315 |
|
|
my_min.rgb[0] = my_min.rgb[1] = my_min.rgb[2] = FHUGE; |
| 1316 |
|
|
my_min.new_stu = my_min.new_stv = NULL; |
| 1317 |
|
|
/* get minimum RGB value */ |
| 1318 |
|
|
SDtraverseTre(stc[tt_Y], NULL, 0, get_min_RGB, &my_min); |
| 1319 |
greg |
3.40 |
/* convert to C_COLOR */ |
| 1320 |
|
|
ymin = c_fromSharpRGB(my_min.rgb, cs); |
| 1321 |
|
|
if (ymin <= .01/M_PI) /* not worth bothering about? */ |
| 1322 |
|
|
return .0; |
| 1323 |
|
|
/* adjust u' & v' trees */ |
| 1324 |
greg |
3.37 |
SDtraverseTre(stc[tt_u], NULL, 0, adjust_utree, &my_min); |
| 1325 |
|
|
SDtraverseTre(stc[tt_v], NULL, 0, adjust_vtree, &my_min); |
| 1326 |
|
|
SDfreeTre(stc[tt_u]); SDfreeTre(stc[tt_v]); |
| 1327 |
|
|
stc[tt_u] = SDsimplifyTre(my_min.new_stu); |
| 1328 |
|
|
stc[tt_v] = SDsimplifyTre(my_min.new_stv); |
| 1329 |
greg |
3.40 |
/* subtract Y & return hemispherical */ |
| 1330 |
greg |
3.37 |
SDsubtractTreVal(stc[tt_Y], ymin); |
| 1331 |
greg |
3.40 |
|
| 1332 |
|
|
return M_PI * ymin; |
| 1333 |
greg |
3.37 |
} |
| 1334 |
|
|
|
| 1335 |
greg |
3.7 |
/* Extract and separate diffuse portion of BSDF */ |
| 1336 |
|
|
static void |
| 1337 |
|
|
extract_diffuse(SDValue *dv, SDSpectralDF *df) |
| 1338 |
|
|
{ |
| 1339 |
|
|
int n; |
| 1340 |
greg |
3.37 |
SDTre *sdt; |
| 1341 |
greg |
3.7 |
|
| 1342 |
|
|
if (df == NULL || df->ncomp <= 0) { |
| 1343 |
|
|
dv->spec = c_dfcolor; |
| 1344 |
|
|
dv->cieY = .0; |
| 1345 |
|
|
return; |
| 1346 |
|
|
} |
| 1347 |
greg |
3.37 |
sdt = (SDTre *)df->comp[0].dist; |
| 1348 |
|
|
/* subtract minimum color/grayscale */ |
| 1349 |
|
|
if (sdt->stc[tt_u] != NULL && sdt->stc[tt_v] != NULL) { |
| 1350 |
|
|
int i = 3*(tt_RGB_coef[1] < .001); |
| 1351 |
|
|
while (i--) { /* initialize on first call */ |
| 1352 |
|
|
float rgb[3]; |
| 1353 |
|
|
rgb[0] = rgb[1] = rgb[2] = .0f; rgb[i] = 1.f; |
| 1354 |
|
|
tt_RGB_coef[i] = c_fromSharpRGB(rgb, &tt_RGB_prim[i]); |
| 1355 |
|
|
} |
| 1356 |
|
|
memcpy(df->comp[0].cspec, tt_RGB_prim, sizeof(tt_RGB_prim)); |
| 1357 |
|
|
dv->cieY = subtract_min_RGB(&dv->spec, sdt->stc); |
| 1358 |
|
|
} else { |
| 1359 |
greg |
3.42 |
df->comp[0].cspec[0] = dv->spec = c_dfcolor; |
| 1360 |
greg |
3.37 |
dv->cieY = subtract_min_Y(sdt->stc[tt_Y]); |
| 1361 |
greg |
3.7 |
} |
| 1362 |
|
|
df->maxHemi -= dv->cieY; /* adjust maximum hemispherical */ |
| 1363 |
|
|
/* make sure everything is set */ |
| 1364 |
|
|
c_ccvt(&dv->spec, C_CSXY+C_CSSPEC); |
| 1365 |
|
|
} |
| 1366 |
|
|
|
| 1367 |
greg |
3.1 |
/* Load a variable-resolution BSDF tree from an open XML file */ |
| 1368 |
|
|
SDError |
| 1369 |
greg |
3.4 |
SDloadTre(SDData *sd, ezxml_t wtl) |
| 1370 |
greg |
3.1 |
{ |
| 1371 |
greg |
3.7 |
SDError ec; |
| 1372 |
|
|
ezxml_t wld, wdb; |
| 1373 |
|
|
int rank; |
| 1374 |
|
|
char *txt; |
| 1375 |
|
|
/* basic checks and tensor rank */ |
| 1376 |
|
|
txt = ezxml_txt(ezxml_child(ezxml_child(wtl, |
| 1377 |
|
|
"DataDefinition"), "IncidentDataStructure")); |
| 1378 |
|
|
if (txt == NULL || !*txt) { |
| 1379 |
|
|
sprintf(SDerrorDetail, |
| 1380 |
|
|
"BSDF \"%s\": missing IncidentDataStructure", |
| 1381 |
|
|
sd->name); |
| 1382 |
|
|
return SDEformat; |
| 1383 |
|
|
} |
| 1384 |
|
|
if (!strcasecmp(txt, "TensorTree3")) |
| 1385 |
|
|
rank = 3; |
| 1386 |
|
|
else if (!strcasecmp(txt, "TensorTree4")) |
| 1387 |
|
|
rank = 4; |
| 1388 |
|
|
else { |
| 1389 |
|
|
sprintf(SDerrorDetail, |
| 1390 |
|
|
"BSDF \"%s\": unsupported IncidentDataStructure", |
| 1391 |
|
|
sd->name); |
| 1392 |
|
|
return SDEsupport; |
| 1393 |
|
|
} |
| 1394 |
|
|
/* load BSDF components */ |
| 1395 |
|
|
for (wld = ezxml_child(wtl, "WavelengthData"); |
| 1396 |
|
|
wld != NULL; wld = wld->next) { |
| 1397 |
greg |
3.37 |
const char *cnm = ezxml_txt(ezxml_child(wld,"Wavelength")); |
| 1398 |
|
|
int ct = -1; |
| 1399 |
|
|
if (!strcasecmp(cnm, "Visible")) |
| 1400 |
|
|
ct = tt_Y; |
| 1401 |
|
|
else if (!strcasecmp(cnm, "CIE-u")) |
| 1402 |
|
|
ct = tt_u; |
| 1403 |
|
|
else if (!strcasecmp(cnm, "CIE-v")) |
| 1404 |
|
|
ct = tt_v; |
| 1405 |
|
|
else |
| 1406 |
|
|
continue; |
| 1407 |
greg |
3.7 |
for (wdb = ezxml_child(wld, "WavelengthDataBlock"); |
| 1408 |
|
|
wdb != NULL; wdb = wdb->next) |
| 1409 |
greg |
3.37 |
if ((ec = load_bsdf_data(sd, wdb, ct, rank)) != SDEnone) |
| 1410 |
greg |
3.7 |
return ec; |
| 1411 |
|
|
} |
| 1412 |
|
|
/* separate diffuse components */ |
| 1413 |
|
|
extract_diffuse(&sd->rLambFront, sd->rf); |
| 1414 |
|
|
extract_diffuse(&sd->rLambBack, sd->rb); |
| 1415 |
greg |
3.27 |
if (sd->tf != NULL) |
| 1416 |
|
|
extract_diffuse(&sd->tLamb, sd->tf); |
| 1417 |
|
|
if (sd->tb != NULL) |
| 1418 |
|
|
extract_diffuse(&sd->tLamb, sd->tb); |
| 1419 |
greg |
3.7 |
/* return success */ |
| 1420 |
|
|
return SDEnone; |
| 1421 |
greg |
3.1 |
} |
| 1422 |
|
|
|
| 1423 |
|
|
/* Variable resolution BSDF methods */ |
| 1424 |
greg |
3.5 |
SDFunc SDhandleTre = { |
| 1425 |
|
|
&SDgetTreBSDF, |
| 1426 |
greg |
3.6 |
&SDqueryTreProjSA, |
| 1427 |
|
|
&SDgetTreCDist, |
| 1428 |
|
|
&SDsampTreCDist, |
| 1429 |
|
|
&SDFreeBTre, |
| 1430 |
greg |
3.1 |
}; |