| 1 |
greg |
2.1 |
/*
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==================================================================
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Photon map main module
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Roland Schregle (roland.schregle@{hslu.ch, gmail.com})
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(c) Fraunhofer Institute for Solar Energy Systems,
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rschregle |
2.4 |
(c) Lucerne University of Applied Sciences and Arts,
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supported by the Swiss National Science Foundation (SNSF, #147053)
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greg |
2.1 |
==================================================================
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| 10 |
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rschregle |
2.5 |
$Id: pmap.c,v 2.4 2015/04/23 20:02:04 rschregle Exp $
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| 12 |
greg |
2.1 |
*/
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| 14 |
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| 15 |
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#include "pmap.h"
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#include "pmapmat.h"
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| 18 |
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#include "pmapsrc.h"
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#include "pmaprand.h"
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#include "pmapio.h"
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#include "pmapbias.h"
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#include "pmapdiag.h"
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#include "otypes.h"
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#include <time.h>
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| 25 |
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#include <sys/stat.h>
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| 26 |
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| 29 |
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extern char *octname;
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| 31 |
rschregle |
2.5 |
static char PmapRevision [] = "$Revision: 2.4 $";
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greg |
2.1 |
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| 35 |
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/* Photon map lookup functions per type */
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void (*pmapLookup [NUM_PMAP_TYPES])(PhotonMap*, RAY*, COLOR) = {
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photonDensity, photonPreCompDensity, photonDensity, volumePhotonDensity,
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photonDensity, NULL
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};
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void colorNorm (COLOR c)
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/* Normalise colour channels to average of 1 */
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{
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const float avg = colorAvg(c);
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| 48 |
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if (!avg)
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return;
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| 51 |
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c [0] /= avg;
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c [1] /= avg;
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c [2] /= avg;
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}
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void loadPmaps (PhotonMap **pmaps, const PhotonMapParams *parm)
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{
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unsigned t;
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struct stat octstat, pmstat;
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PhotonMap *pm;
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PhotonMapType type;
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for (t = 0; t < NUM_PMAP_TYPES; t++)
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if (setPmapParam(&pm, parm + t)) {
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/* Check if photon map newer than octree */
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rschregle |
2.4 |
if (pm -> fileName && octname &&
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!stat(pm -> fileName, &pmstat) && !stat(octname, &octstat) &&
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greg |
2.1 |
octstat.st_mtime > pmstat.st_mtime) {
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sprintf(errmsg, "photon map in file %s may be stale",
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pm -> fileName);
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error(USER, errmsg);
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}
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/* Load photon map from file and get its type */
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if ((type = loadPhotonMap(pm, pm -> fileName)) == PMAP_TYPE_NONE)
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error(USER, "failed loading photon map");
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/* Assign to appropriate photon map type (deleting previously
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* loaded photon map of same type if necessary) */
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if (pmaps [type]) {
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deletePhotons(pmaps [type]);
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free(pmaps [type]);
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}
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pmaps [type] = pm;
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/* Check for invalid density estimate bandwidth */
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if (pm -> maxGather > pm -> heapSize) {
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error(WARNING, "adjusting density estimate bandwidth");
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pm -> minGather = pm -> maxGather = pm -> heapSize;
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}
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}
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}
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| 96 |
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| 97 |
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| 98 |
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void savePmaps (const PhotonMap **pmaps, int argc, char **argv)
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{
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unsigned t;
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for (t = 0; t < NUM_PMAP_TYPES; t++) {
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if (pmaps [t])
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savePhotonMap(pmaps [t], pmaps [t] -> fileName, t, argc, argv);
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}
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}
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| 110 |
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void cleanUpPmaps (PhotonMap **pmaps)
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{
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unsigned t;
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for (t = 0; t < NUM_PMAP_TYPES; t++) {
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if (pmaps [t]) {
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deletePhotons(pmaps [t]);
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free(pmaps [t]);
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}
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}
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}
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| 122 |
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| 123 |
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| 124 |
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static int photonParticipate (RAY *ray)
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/* Trace photon through participating medium. Returns 1 if passed through,
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or 0 if absorbed and $*%&ed. Analogon to rayparticipate(). */
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{
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int i;
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RREAL cosTheta, cosPhi, du, dv;
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const float cext = colorAvg(ray -> cext),
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albedo = colorAvg(ray -> albedo);
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FVECT u, v;
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COLOR cvext;
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/* Mean free distance until interaction with medium */
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ray -> rmax = -log(pmapRandom(mediumState)) / cext;
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while (!localhit(ray, &thescene)) {
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setcolor(cvext, exp(-ray -> rmax * ray -> cext [0]),
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exp(-ray -> rmax * ray -> cext [1]),
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exp(-ray -> rmax * ray -> cext [2]));
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/* Modify ray color and normalise */
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multcolor(ray -> rcol, cvext);
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colorNorm(ray -> rcol);
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VCOPY(ray -> rorg, ray -> rop);
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| 147 |
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| 148 |
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if (albedo > FTINY)
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/* Add to volume photon map */
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if (ray -> rlvl > 0) addPhoton(volumePmap, ray);
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| 152 |
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/* Absorbed? */
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if (pmapRandom(rouletteState) > albedo) return 0;
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/* Colour bleeding without attenuation (?) */
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multcolor(ray -> rcol, ray -> albedo);
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| 157 |
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scalecolor(ray -> rcol, 1 / albedo);
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| 158 |
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| 159 |
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/* Scatter photon */
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cosTheta = ray -> gecc <= FTINY ? 2 * pmapRandom(scatterState) - 1
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: 1 / (2 * ray -> gecc) *
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(1 + ray -> gecc * ray -> gecc -
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| 163 |
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(1 - ray -> gecc * ray -> gecc) /
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| 164 |
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(1 - ray -> gecc + 2 * ray -> gecc *
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| 165 |
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pmapRandom(scatterState)));
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| 166 |
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| 167 |
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cosPhi = cos(2 * PI * pmapRandom(scatterState));
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| 168 |
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du = dv = sqrt(1 - cosTheta * cosTheta); /* sin(theta) */
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| 169 |
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du *= cosPhi;
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dv *= sqrt(1 - cosPhi * cosPhi); /* sin(phi) */
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| 171 |
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| 172 |
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/* Get axes u & v perpendicular to photon direction */
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i = 0;
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do {
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v [0] = v [1] = v [2] = 0;
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| 176 |
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v [i++] = 1;
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fcross(u, v, ray -> rdir);
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} while (normalize(u) < FTINY);
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| 179 |
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fcross(v, ray -> rdir, u);
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| 180 |
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| 181 |
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for (i = 0; i < 3; i++)
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| 182 |
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ray -> rdir [i] = du * u [i] + dv * v [i] +
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| 183 |
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cosTheta * ray -> rdir [i];
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| 184 |
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ray -> rlvl++;
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| 185 |
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ray -> rmax = -log(pmapRandom(mediumState)) / cext;
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| 186 |
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}
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| 188 |
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setcolor(cvext, exp(-ray -> rot * ray -> cext [0]),
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| 189 |
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exp(-ray -> rot * ray -> cext [1]),
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| 190 |
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exp(-ray -> rot * ray -> cext [2]));
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| 191 |
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| 192 |
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/* Modify ray color and normalise */
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multcolor(ray -> rcol, cvext);
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colorNorm(ray -> rcol);
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| 195 |
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| 196 |
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/* Passed through medium */
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| 197 |
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return 1;
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}
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| 199 |
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| 200 |
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| 201 |
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| 202 |
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void tracePhoton (RAY *ray)
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| 203 |
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/* Follow photon as it bounces around... */
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| 204 |
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{
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| 205 |
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long mod;
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| 206 |
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OBJREC* mat;
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| 207 |
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| 208 |
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if (ray -> rlvl > photonMaxBounce) {
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| 209 |
rschregle |
2.5 |
#ifdef PMAP_RUNAWAY_WARN
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| 210 |
greg |
2.1 |
error(WARNING, "runaway photon!");
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| 211 |
rschregle |
2.5 |
#endif
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| 212 |
greg |
2.1 |
return;
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| 213 |
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}
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| 214 |
rschregle |
2.5 |
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| 215 |
greg |
2.1 |
if (colorAvg(ray -> cext) > FTINY && !photonParticipate(ray))
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| 216 |
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return;
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| 217 |
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| 218 |
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if (localhit(ray, &thescene)) {
|
| 219 |
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mod = ray -> ro -> omod;
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| 220 |
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| 221 |
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if ((ray -> clipset && inset(ray -> clipset, mod)) || mod == OVOID) {
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| 222 |
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/* Transfer ray if modifier is VOID or clipped within antimatta */
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| 223 |
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RAY tray;
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| 224 |
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photonRay(ray, &tray, PMAP_XFER, NULL);
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| 225 |
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tracePhoton(&tray);
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| 226 |
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}
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| 227 |
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else {
|
| 228 |
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/* Scatter for modifier material */
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| 229 |
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mat = objptr(mod);
|
| 230 |
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photonScatter [mat -> otype] (mat, ray);
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| 231 |
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}
|
| 232 |
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}
|
| 233 |
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}
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| 234 |
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| 235 |
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| 236 |
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| 237 |
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static void preComputeGlobal (PhotonMap *pmap)
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| 238 |
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/* Precompute irradiance from global photons for final gathering using
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| 239 |
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the first finalGather * pmap -> heapSize photons in the heap. Returns
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| 240 |
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new heap with precomputed photons. */
|
| 241 |
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{
|
| 242 |
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unsigned long i, nuHeapSize;
|
| 243 |
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unsigned j;
|
| 244 |
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Photon *nuHeap, *p;
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| 245 |
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COLOR irrad;
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| 246 |
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RAY ray;
|
| 247 |
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float nuMinPos [3], nuMaxPos [3];
|
| 248 |
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| 249 |
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repComplete = nuHeapSize = finalGather * pmap -> heapSize;
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| 250 |
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| 251 |
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if (photonRepTime) {
|
| 252 |
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sprintf(errmsg,
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| 253 |
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"Precomputing irradiance for %ld global photons...\n",
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| 254 |
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nuHeapSize);
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| 255 |
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eputs(errmsg);
|
| 256 |
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fflush(stderr);
|
| 257 |
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}
|
| 258 |
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| 259 |
|
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p = nuHeap = (Photon*)malloc(nuHeapSize * sizeof(Photon));
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| 260 |
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if (!nuHeap)
|
| 261 |
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error(USER, "can't allocate photon heap");
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| 262 |
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| 263 |
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for (j = 0; j <= 2; j++) {
|
| 264 |
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nuMinPos [j] = FHUGE;
|
| 265 |
|
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nuMaxPos [j] = -FHUGE;
|
| 266 |
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}
|
| 267 |
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| 268 |
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/* Record start time, baby */
|
| 269 |
|
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repStartTime = time(NULL);
|
| 270 |
rschregle |
2.3 |
#ifdef SIGCONT
|
| 271 |
|
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signal(SIGCONT, pmapPreCompReport);
|
| 272 |
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#endif
|
| 273 |
greg |
2.1 |
repProgress = 0;
|
| 274 |
greg |
2.2 |
memcpy(nuHeap, pmap -> heap, nuHeapSize * sizeof(Photon));
|
| 275 |
greg |
2.1 |
|
| 276 |
|
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for (i = 0, p = nuHeap; i < nuHeapSize; i++, p++) {
|
| 277 |
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ray.ro = NULL;
|
| 278 |
|
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VCOPY(ray.rop, p -> pos);
|
| 279 |
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|
| 280 |
|
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/* Update min and max positions & set ray normal */
|
| 281 |
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for (j = 0; j < 3; j++) {
|
| 282 |
|
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if (p -> pos [j] < nuMinPos [j]) nuMinPos [j] = p -> pos [j];
|
| 283 |
|
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if (p -> pos [j] > nuMaxPos [j]) nuMaxPos [j] = p -> pos [j];
|
| 284 |
|
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ray.ron [j] = p -> norm [j] / 127.0;
|
| 285 |
|
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}
|
| 286 |
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|
| 287 |
|
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photonDensity(pmap, &ray, irrad);
|
| 288 |
|
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setPhotonFlux(p, irrad);
|
| 289 |
|
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repProgress++;
|
| 290 |
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|
| 291 |
|
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if (photonRepTime > 0 && time(NULL) >= repLastTime + photonRepTime)
|
| 292 |
|
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pmapPreCompReport();
|
| 293 |
rschregle |
2.3 |
#ifdef SIGCONT
|
| 294 |
|
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else signal(SIGCONT, pmapPreCompReport);
|
| 295 |
|
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#endif
|
| 296 |
greg |
2.1 |
}
|
| 297 |
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|
| 298 |
rschregle |
2.3 |
#ifdef SIGCONT
|
| 299 |
|
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signal(SIGCONT, SIG_DFL);
|
| 300 |
|
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#endif
|
| 301 |
greg |
2.1 |
|
| 302 |
|
|
/* Replace & rebuild heap */
|
| 303 |
|
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free(pmap -> heap);
|
| 304 |
|
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pmap -> heap = nuHeap;
|
| 305 |
|
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pmap -> heapSize = pmap -> heapEnd = nuHeapSize;
|
| 306 |
|
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VCOPY(pmap -> minPos, nuMinPos);
|
| 307 |
|
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VCOPY(pmap -> maxPos, nuMaxPos);
|
| 308 |
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|
| 309 |
|
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if (photonRepTime) {
|
| 310 |
|
|
eputs("Rebuilding global photon heap...\n");
|
| 311 |
|
|
fflush(stderr);
|
| 312 |
|
|
}
|
| 313 |
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|
| 314 |
|
|
balancePhotons(pmap, NULL);
|
| 315 |
|
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}
|
| 316 |
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|
| 317 |
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|
| 318 |
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|
| 319 |
|
|
void distribPhotons (PhotonMap **pmaps)
|
| 320 |
|
|
{
|
| 321 |
|
|
EmissionMap emap;
|
| 322 |
|
|
char errmsg2 [128];
|
| 323 |
|
|
unsigned t, srcIdx, passCnt = 0, prePassCnt = 0;
|
| 324 |
|
|
double totalFlux = 0;
|
| 325 |
|
|
PhotonMap *pm;
|
| 326 |
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|
| 327 |
|
|
for (t = 0; t < NUM_PMAP_TYPES && !photonMaps [t]; t++);
|
| 328 |
|
|
if (t >= NUM_PMAP_TYPES)
|
| 329 |
|
|
error(USER, "no photon maps defined");
|
| 330 |
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|
| 331 |
|
|
if (!nsources)
|
| 332 |
|
|
error(USER, "no light sources");
|
| 333 |
|
|
|
| 334 |
|
|
/* ===================================================================
|
| 335 |
|
|
* INITIALISATION - Set up emission and scattering funcs
|
| 336 |
|
|
* =================================================================== */
|
| 337 |
|
|
emap.samples = NULL;
|
| 338 |
|
|
emap.maxPartitions = MAXSPART;
|
| 339 |
|
|
emap.partitions = (unsigned char*)malloc(emap.maxPartitions >> 1);
|
| 340 |
|
|
if (!emap.partitions)
|
| 341 |
|
|
error(INTERNAL, "can't allocate source partitions");
|
| 342 |
|
|
|
| 343 |
|
|
/* Initialise all defined photon maps */
|
| 344 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 345 |
|
|
initPhotonMap(photonMaps [t], t);
|
| 346 |
|
|
|
| 347 |
|
|
initPhotonEmissionFuncs();
|
| 348 |
|
|
initPhotonScatterFuncs();
|
| 349 |
|
|
|
| 350 |
|
|
/* Get photon ports if specified */
|
| 351 |
|
|
if (ambincl == 1)
|
| 352 |
|
|
getPhotonPorts();
|
| 353 |
|
|
|
| 354 |
|
|
/* Get photon sensor modifiers */
|
| 355 |
|
|
getPhotonSensors(photonSensorList);
|
| 356 |
|
|
|
| 357 |
|
|
/* Seed RNGs for photon distribution */
|
| 358 |
|
|
pmapSeed(randSeed, partState);
|
| 359 |
|
|
pmapSeed(randSeed, emitState);
|
| 360 |
|
|
pmapSeed(randSeed, cntState);
|
| 361 |
|
|
pmapSeed(randSeed, mediumState);
|
| 362 |
|
|
pmapSeed(randSeed, scatterState);
|
| 363 |
|
|
pmapSeed(randSeed, rouletteState);
|
| 364 |
|
|
|
| 365 |
|
|
if (photonRepTime)
|
| 366 |
|
|
eputs("\n");
|
| 367 |
|
|
|
| 368 |
|
|
/* ===================================================================
|
| 369 |
|
|
* FLUX INTEGRATION - Get total photon flux from light sources
|
| 370 |
|
|
* =================================================================== */
|
| 371 |
|
|
for (srcIdx = 0; srcIdx < nsources; srcIdx++) {
|
| 372 |
|
|
unsigned portCnt = 0;
|
| 373 |
|
|
emap.src = source + srcIdx;
|
| 374 |
|
|
|
| 375 |
|
|
do {
|
| 376 |
|
|
emap.port = emap.src -> sflags & SDISTANT ? photonPorts + portCnt
|
| 377 |
|
|
: NULL;
|
| 378 |
|
|
photonPartition [emap.src -> so -> otype] (&emap);
|
| 379 |
|
|
|
| 380 |
|
|
if (photonRepTime) {
|
| 381 |
|
|
sprintf(errmsg, "Integrating flux from source %s ",
|
| 382 |
|
|
source [srcIdx].so -> oname);
|
| 383 |
|
|
|
| 384 |
|
|
if (emap.port) {
|
| 385 |
|
|
sprintf(errmsg2, "via port %s ",
|
| 386 |
|
|
photonPorts [portCnt].so -> oname);
|
| 387 |
|
|
strcat(errmsg, errmsg2);
|
| 388 |
|
|
}
|
| 389 |
|
|
|
| 390 |
|
|
sprintf(errmsg2, "(%lu partitions)...\n", emap.numPartitions);
|
| 391 |
|
|
strcat(errmsg, errmsg2);
|
| 392 |
|
|
eputs(errmsg);
|
| 393 |
|
|
fflush(stderr);
|
| 394 |
|
|
}
|
| 395 |
|
|
|
| 396 |
|
|
for (emap.partitionCnt = 0; emap.partitionCnt < emap.numPartitions;
|
| 397 |
|
|
emap.partitionCnt++) {
|
| 398 |
|
|
initPhotonEmission(&emap, pdfSamples);
|
| 399 |
|
|
totalFlux += colorAvg(emap.partFlux);
|
| 400 |
|
|
}
|
| 401 |
|
|
|
| 402 |
|
|
portCnt++;
|
| 403 |
|
|
} while (portCnt < numPhotonPorts);
|
| 404 |
|
|
}
|
| 405 |
|
|
|
| 406 |
|
|
if (totalFlux < FTINY)
|
| 407 |
|
|
error(USER, "zero flux from light sources");
|
| 408 |
|
|
|
| 409 |
|
|
/* Record start time and enable progress report signal handler */
|
| 410 |
|
|
repStartTime = time(NULL);
|
| 411 |
rschregle |
2.3 |
#ifdef SIGCONT
|
| 412 |
|
|
signal(SIGCONT, pmapDistribReport);
|
| 413 |
|
|
#endif
|
| 414 |
greg |
2.1 |
repProgress = prePassCnt = 0;
|
| 415 |
|
|
|
| 416 |
|
|
if (photonRepTime)
|
| 417 |
|
|
eputs("\n");
|
| 418 |
|
|
|
| 419 |
|
|
/* ===================================================================
|
| 420 |
|
|
* 2-PASS PHOTON DISTRIBUTION
|
| 421 |
|
|
* Pass 1 (pre): emit fraction of target photon count
|
| 422 |
|
|
* Pass 2 (main): based on outcome of pass 1, estimate remaining number
|
| 423 |
|
|
* of photons to emit to approximate target count
|
| 424 |
|
|
* =================================================================== */
|
| 425 |
|
|
do {
|
| 426 |
|
|
double numEmit;
|
| 427 |
|
|
|
| 428 |
|
|
if (!passCnt) {
|
| 429 |
|
|
/* INIT PASS 1 */
|
| 430 |
|
|
/* Skip if no photons contributed after sufficient iterations; make
|
| 431 |
|
|
* it clear to user which photon maps are missing so (s)he can
|
| 432 |
|
|
* check the scene geometry and materials */
|
| 433 |
|
|
if (++prePassCnt > maxPreDistrib) {
|
| 434 |
|
|
sprintf(errmsg, "too many prepasses");
|
| 435 |
|
|
|
| 436 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 437 |
|
|
if (photonMaps [t] && !photonMaps [t] -> heapEnd) {
|
| 438 |
|
|
sprintf(errmsg2, ", no %s photons stored", pmapName [t]);
|
| 439 |
|
|
strcat(errmsg, errmsg2);
|
| 440 |
|
|
}
|
| 441 |
|
|
|
| 442 |
|
|
error(USER, errmsg);
|
| 443 |
|
|
break;
|
| 444 |
|
|
}
|
| 445 |
|
|
|
| 446 |
|
|
/* Num to emit is fraction of minimum target count */
|
| 447 |
|
|
numEmit = FHUGE;
|
| 448 |
|
|
|
| 449 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 450 |
|
|
if (photonMaps [t])
|
| 451 |
|
|
numEmit = min(photonMaps [t] -> distribTarget, numEmit);
|
| 452 |
|
|
|
| 453 |
|
|
numEmit *= preDistrib;
|
| 454 |
|
|
}
|
| 455 |
|
|
|
| 456 |
|
|
else {
|
| 457 |
|
|
/* INIT PASS 2 */
|
| 458 |
|
|
/* Based on the outcome of the predistribution we can now estimate
|
| 459 |
|
|
* how many more photons we have to emit for each photon map to
|
| 460 |
|
|
* meet its respective target count. This value is clamped to 0 in
|
| 461 |
|
|
* case the target has already been exceeded in the pass 1. Note
|
| 462 |
|
|
* repProgress is the number of photons emitted thus far, while
|
| 463 |
|
|
* heapEnd is the number of photons stored in each photon map. */
|
| 464 |
|
|
double maxDistribRatio = 0;
|
| 465 |
|
|
|
| 466 |
|
|
/* Set the distribution ratio for each map; this indicates how many
|
| 467 |
|
|
* photons of each respective type are stored per emitted photon,
|
| 468 |
|
|
* and is used as probability for storing a photon by addPhoton().
|
| 469 |
|
|
* Since this biases the photon density, addPhoton() promotes the
|
| 470 |
|
|
* flux of stored photons to compensate. */
|
| 471 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 472 |
|
|
if ((pm = photonMaps [t])) {
|
| 473 |
|
|
pm -> distribRatio = (double)pm -> distribTarget /
|
| 474 |
|
|
pm -> heapEnd - 1;
|
| 475 |
|
|
|
| 476 |
|
|
/* Check if photon map "overflowed", i.e. exceeded its target
|
| 477 |
|
|
* count in the prepass; correcting the photon flux via the
|
| 478 |
|
|
* distribution ratio is no longer possible, as no more
|
| 479 |
|
|
* photons of this type will be stored, so notify the user
|
| 480 |
|
|
* rather than deliver incorrect results.
|
| 481 |
|
|
* In future we should handle this more intelligently by
|
| 482 |
|
|
* using the photonFlux in each photon map to individually
|
| 483 |
|
|
* correct the flux after distribution. */
|
| 484 |
|
|
if (pm -> distribRatio <= FTINY) {
|
| 485 |
|
|
sprintf(errmsg,
|
| 486 |
|
|
"%s photon map overflow in prepass, reduce -apD",
|
| 487 |
|
|
pmapName [t]);
|
| 488 |
|
|
error(INTERNAL, errmsg);
|
| 489 |
|
|
}
|
| 490 |
|
|
|
| 491 |
|
|
maxDistribRatio = max(pm -> distribRatio, maxDistribRatio);
|
| 492 |
|
|
}
|
| 493 |
|
|
|
| 494 |
|
|
/* Normalise distribution ratios and calculate number of photons to
|
| 495 |
|
|
* emit in main pass */
|
| 496 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 497 |
|
|
if ((pm = photonMaps [t]))
|
| 498 |
|
|
pm -> distribRatio /= maxDistribRatio;
|
| 499 |
|
|
|
| 500 |
|
|
if ((numEmit = repProgress * maxDistribRatio) < FTINY)
|
| 501 |
|
|
/* No photons left to distribute in main pass */
|
| 502 |
|
|
break;
|
| 503 |
|
|
}
|
| 504 |
|
|
|
| 505 |
|
|
/* Set completion count for progress report */
|
| 506 |
|
|
repComplete = numEmit + repProgress;
|
| 507 |
|
|
|
| 508 |
|
|
/* PHOTON DISTRIBUTION LOOP */
|
| 509 |
|
|
for (srcIdx = 0; srcIdx < nsources; srcIdx++) {
|
| 510 |
|
|
unsigned portCnt = 0;
|
| 511 |
|
|
emap.src = source + srcIdx;
|
| 512 |
|
|
|
| 513 |
|
|
do {
|
| 514 |
|
|
emap.port = emap.src -> sflags & SDISTANT ? photonPorts + portCnt
|
| 515 |
|
|
: NULL;
|
| 516 |
|
|
photonPartition [emap.src -> so -> otype] (&emap);
|
| 517 |
|
|
|
| 518 |
|
|
if (photonRepTime) {
|
| 519 |
|
|
if (!passCnt)
|
| 520 |
|
|
sprintf(errmsg, "PREPASS %d on source %s ",
|
| 521 |
|
|
prePassCnt, source [srcIdx].so -> oname);
|
| 522 |
|
|
else
|
| 523 |
|
|
sprintf(errmsg, "MAIN PASS on source %s ",
|
| 524 |
|
|
source [srcIdx].so -> oname);
|
| 525 |
|
|
|
| 526 |
|
|
if (emap.port) {
|
| 527 |
|
|
sprintf(errmsg2, "via port %s ",
|
| 528 |
|
|
photonPorts [portCnt].so -> oname);
|
| 529 |
|
|
strcat(errmsg, errmsg2);
|
| 530 |
|
|
}
|
| 531 |
|
|
|
| 532 |
|
|
sprintf(errmsg2, "(%lu partitions)...\n", emap.numPartitions);
|
| 533 |
|
|
strcat(errmsg, errmsg2);
|
| 534 |
|
|
eputs(errmsg);
|
| 535 |
|
|
fflush(stderr);
|
| 536 |
|
|
}
|
| 537 |
|
|
|
| 538 |
|
|
for (emap.partitionCnt = 0; emap.partitionCnt < emap.numPartitions;
|
| 539 |
|
|
emap.partitionCnt++) {
|
| 540 |
|
|
double partNumEmit;
|
| 541 |
|
|
unsigned long partEmitCnt;
|
| 542 |
|
|
|
| 543 |
|
|
/* Get photon origin within current source partishunn and
|
| 544 |
|
|
* build emission map */
|
| 545 |
|
|
photonOrigin [emap.src -> so -> otype] (&emap);
|
| 546 |
|
|
initPhotonEmission(&emap, pdfSamples);
|
| 547 |
|
|
|
| 548 |
|
|
/* Number of photons to emit from ziss partishunn --
|
| 549 |
|
|
* proportional to flux; photon ray weight and scalar flux
|
| 550 |
|
|
* are uniform (the latter only varying in RGB). */
|
| 551 |
|
|
partNumEmit = numEmit * colorAvg(emap.partFlux) / totalFlux;
|
| 552 |
|
|
partEmitCnt = (unsigned long)partNumEmit;
|
| 553 |
|
|
|
| 554 |
|
|
/* Probabilistically account for fractional photons */
|
| 555 |
|
|
if (pmapRandom(cntState) < partNumEmit - partEmitCnt)
|
| 556 |
|
|
partEmitCnt++;
|
| 557 |
|
|
|
| 558 |
|
|
/* Integer counter avoids FP rounding errors */
|
| 559 |
|
|
while (partEmitCnt--) {
|
| 560 |
|
|
RAY photonRay;
|
| 561 |
|
|
|
| 562 |
|
|
/* Emit photon based on PDF and trace through scene until
|
| 563 |
|
|
* absorbed/leaked */
|
| 564 |
|
|
emitPhoton(&emap, &photonRay);
|
| 565 |
|
|
tracePhoton(&photonRay);
|
| 566 |
|
|
|
| 567 |
|
|
/* Record progress */
|
| 568 |
|
|
repProgress++;
|
| 569 |
|
|
|
| 570 |
|
|
if (photonRepTime > 0 &&
|
| 571 |
|
|
time(NULL) >= repLastTime + photonRepTime)
|
| 572 |
|
|
pmapDistribReport();
|
| 573 |
rschregle |
2.3 |
#ifdef SIGCONT
|
| 574 |
greg |
2.1 |
else signal(SIGCONT, pmapDistribReport);
|
| 575 |
|
|
#endif
|
| 576 |
|
|
}
|
| 577 |
|
|
}
|
| 578 |
|
|
|
| 579 |
|
|
portCnt++;
|
| 580 |
|
|
} while (portCnt < numPhotonPorts);
|
| 581 |
|
|
}
|
| 582 |
|
|
|
| 583 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 584 |
|
|
if (photonMaps [t] && !photonMaps [t] -> heapEnd) {
|
| 585 |
|
|
/* Double preDistrib in case a photon map is empty and redo
|
| 586 |
|
|
* pass 1 --> possibility of infinite loop for pathological
|
| 587 |
|
|
* scenes (e.g. absorbing materials) */
|
| 588 |
|
|
preDistrib *= 2;
|
| 589 |
|
|
break;
|
| 590 |
|
|
}
|
| 591 |
|
|
|
| 592 |
|
|
if (t >= NUM_PMAP_TYPES) {
|
| 593 |
|
|
/* No empty photon maps found; now do pass 2 */
|
| 594 |
|
|
passCnt++;
|
| 595 |
|
|
if (photonRepTime)
|
| 596 |
|
|
eputs("\n");
|
| 597 |
|
|
}
|
| 598 |
|
|
} while (passCnt < 2);
|
| 599 |
|
|
|
| 600 |
|
|
/* ===================================================================
|
| 601 |
|
|
* POST-DISTRIBUTION - Set photon flux and build kd-tree, etc.
|
| 602 |
|
|
* =================================================================== */
|
| 603 |
rschregle |
2.3 |
#ifdef SIGCONT
|
| 604 |
|
|
signal(SIGCONT, SIG_DFL);
|
| 605 |
|
|
#endif
|
| 606 |
greg |
2.1 |
free(emap.samples);
|
| 607 |
|
|
|
| 608 |
|
|
/* Set photon flux (repProgress is total num emitted) */
|
| 609 |
|
|
totalFlux /= repProgress;
|
| 610 |
|
|
|
| 611 |
|
|
for (t = 0; t < NUM_PMAP_TYPES; t++)
|
| 612 |
|
|
if (photonMaps [t]) {
|
| 613 |
|
|
if (photonRepTime) {
|
| 614 |
|
|
sprintf(errmsg, "\nBuilding %s photon map...\n", pmapName [t]);
|
| 615 |
|
|
eputs(errmsg);
|
| 616 |
|
|
fflush(stderr);
|
| 617 |
|
|
}
|
| 618 |
|
|
|
| 619 |
|
|
balancePhotons(photonMaps [t], &totalFlux);
|
| 620 |
|
|
}
|
| 621 |
|
|
|
| 622 |
|
|
/* Precompute photon irradiance if necessary */
|
| 623 |
|
|
if (preCompPmap)
|
| 624 |
|
|
preComputeGlobal(preCompPmap);
|
| 625 |
|
|
}
|
| 626 |
|
|
|
| 627 |
|
|
|
| 628 |
|
|
|
| 629 |
|
|
void photonDensity (PhotonMap *pmap, RAY *ray, COLOR irrad)
|
| 630 |
|
|
/* Photon density estimate. Returns irradiance at ray -> rop. */
|
| 631 |
|
|
{
|
| 632 |
|
|
unsigned i;
|
| 633 |
|
|
PhotonSQNode *sq;
|
| 634 |
|
|
float r;
|
| 635 |
|
|
COLOR flux;
|
| 636 |
|
|
|
| 637 |
|
|
setcolor(irrad, 0, 0, 0);
|
| 638 |
|
|
|
| 639 |
|
|
if (!pmap -> maxGather)
|
| 640 |
|
|
return;
|
| 641 |
|
|
|
| 642 |
|
|
/* Ignore sources */
|
| 643 |
|
|
if (ray -> ro)
|
| 644 |
|
|
if (islight(objptr(ray -> ro -> omod) -> otype))
|
| 645 |
|
|
return;
|
| 646 |
|
|
|
| 647 |
|
|
pmap -> squeueEnd = 0;
|
| 648 |
|
|
findPhotons(pmap, ray);
|
| 649 |
|
|
|
| 650 |
|
|
/* Need at least 2 photons */
|
| 651 |
|
|
if (pmap -> squeueEnd < 2) {
|
| 652 |
|
|
#ifdef PMAP_NONEFOUND
|
| 653 |
|
|
sprintf(errmsg, "no photons found on %s at (%.3f, %.3f, %.3f)",
|
| 654 |
|
|
ray -> ro ? ray -> ro -> oname : "<null>",
|
| 655 |
|
|
ray -> rop [0], ray -> rop [1], ray -> rop [2]);
|
| 656 |
|
|
error(WARNING, errmsg);
|
| 657 |
|
|
#endif
|
| 658 |
|
|
|
| 659 |
|
|
return;
|
| 660 |
|
|
}
|
| 661 |
|
|
|
| 662 |
|
|
if (pmap -> minGather == pmap -> maxGather) {
|
| 663 |
|
|
/* No bias compensation. Just do a plain vanilla estimate */
|
| 664 |
|
|
sq = pmap -> squeue + 1;
|
| 665 |
|
|
|
| 666 |
|
|
/* Average radius between furthest two photons to improve accuracy */
|
| 667 |
|
|
r = max(sq -> dist, (sq + 1) -> dist);
|
| 668 |
|
|
r = 0.25 * (pmap -> maxDist + r + 2 * sqrt(pmap -> maxDist * r));
|
| 669 |
|
|
|
| 670 |
|
|
/* Skip the extra photon */
|
| 671 |
|
|
for (i = 1 ; i < pmap -> squeueEnd; i++, sq++) {
|
| 672 |
|
|
getPhotonFlux(sq -> photon, flux);
|
| 673 |
|
|
#ifdef PMAP_EPANECHNIKOV
|
| 674 |
|
|
/* Apply Epanechnikov kernel to photon flux (dists are squared) */
|
| 675 |
|
|
scalecolor(flux, 2 * (1 - sq -> dist / r));
|
| 676 |
|
|
#endif
|
| 677 |
|
|
addcolor(irrad, flux);
|
| 678 |
|
|
}
|
| 679 |
|
|
|
| 680 |
|
|
/* Divide by search area PI * r^2, 1 / PI required as ambient
|
| 681 |
|
|
normalisation factor */
|
| 682 |
|
|
scalecolor(irrad, 1 / (PI * PI * r));
|
| 683 |
|
|
|
| 684 |
|
|
return;
|
| 685 |
|
|
}
|
| 686 |
|
|
else
|
| 687 |
|
|
/* Apply bias compensation to density estimate */
|
| 688 |
|
|
biasComp(pmap, irrad);
|
| 689 |
|
|
}
|
| 690 |
|
|
|
| 691 |
|
|
|
| 692 |
|
|
|
| 693 |
|
|
void photonPreCompDensity (PhotonMap *pmap, RAY *r, COLOR irrad)
|
| 694 |
|
|
/* Returns precomputed photon density estimate at ray -> rop. */
|
| 695 |
|
|
{
|
| 696 |
|
|
Photon *p;
|
| 697 |
|
|
|
| 698 |
|
|
setcolor(irrad, 0, 0, 0);
|
| 699 |
|
|
|
| 700 |
|
|
/* Ignore sources */
|
| 701 |
|
|
if (r -> ro && islight(objptr(r -> ro -> omod) -> otype))
|
| 702 |
|
|
return;
|
| 703 |
|
|
|
| 704 |
|
|
if ((p = find1Photon(preCompPmap, r)))
|
| 705 |
|
|
getPhotonFlux(p, irrad);
|
| 706 |
|
|
}
|
| 707 |
|
|
|
| 708 |
|
|
|
| 709 |
|
|
|
| 710 |
|
|
void volumePhotonDensity (PhotonMap *pmap, RAY *ray, COLOR irrad)
|
| 711 |
|
|
/* Photon volume density estimate. Returns irradiance at ray -> rop. */
|
| 712 |
|
|
{
|
| 713 |
|
|
unsigned i;
|
| 714 |
|
|
PhotonSQNode *sq;
|
| 715 |
|
|
float gecc2, r, ph;
|
| 716 |
|
|
COLOR flux;
|
| 717 |
|
|
|
| 718 |
|
|
setcolor(irrad, 0, 0, 0);
|
| 719 |
|
|
|
| 720 |
|
|
if (!pmap -> maxGather)
|
| 721 |
|
|
return;
|
| 722 |
|
|
|
| 723 |
|
|
pmap -> squeueEnd = 0;
|
| 724 |
|
|
findPhotons(pmap, ray);
|
| 725 |
|
|
|
| 726 |
|
|
/* Need at least 2 photons */
|
| 727 |
|
|
if (pmap -> squeueEnd < 2)
|
| 728 |
|
|
return;
|
| 729 |
|
|
|
| 730 |
|
|
if (pmap -> minGather == pmap -> maxGather) {
|
| 731 |
|
|
/* No bias compensation. Just do a plain vanilla estimate */
|
| 732 |
|
|
gecc2 = ray -> gecc * ray -> gecc;
|
| 733 |
|
|
sq = pmap -> squeue + 1;
|
| 734 |
|
|
|
| 735 |
|
|
/* Average radius between furthest two photons to improve accuracy */
|
| 736 |
|
|
r = max(sq -> dist, (sq + 1) -> dist);
|
| 737 |
|
|
r = 0.25 * (pmap -> maxDist + r + 2 * sqrt(pmap -> maxDist * r));
|
| 738 |
|
|
|
| 739 |
|
|
/* Skip the extra photon */
|
| 740 |
|
|
for (i = 1 ; i < pmap -> squeueEnd; i++, sq++) {
|
| 741 |
|
|
/* Compute phase function for inscattering from photon */
|
| 742 |
|
|
if (gecc2 <= FTINY)
|
| 743 |
|
|
ph = 1;
|
| 744 |
|
|
else {
|
| 745 |
|
|
ph = DOT(ray -> rdir, sq -> photon -> norm) / 127;
|
| 746 |
|
|
ph = 1 + gecc2 - 2 * ray -> gecc * ph;
|
| 747 |
|
|
ph = (1 - gecc2) / (ph * sqrt(ph));
|
| 748 |
|
|
}
|
| 749 |
|
|
|
| 750 |
|
|
getPhotonFlux(sq -> photon, flux);
|
| 751 |
|
|
scalecolor(flux, ph);
|
| 752 |
|
|
addcolor(irrad, flux);
|
| 753 |
|
|
}
|
| 754 |
|
|
|
| 755 |
|
|
/* Divide by search volume 4 / 3 * PI * r^3 and phase function
|
| 756 |
|
|
normalization factor 1 / (4 * PI) */
|
| 757 |
|
|
scalecolor(irrad, 3 / (16 * PI * PI * r * sqrt(r)));
|
| 758 |
|
|
|
| 759 |
|
|
return;
|
| 760 |
|
|
}
|
| 761 |
|
|
|
| 762 |
|
|
else
|
| 763 |
|
|
/* Apply bias compensation to density estimate */
|
| 764 |
|
|
volumeBiasComp(pmap, ray, irrad);
|
| 765 |
|
|
}
|