/usr/bin/genBSDF is in radiance 4R0+20110410-1build1.
This file is owned by root:root, with mode 0o755.
The actual contents of the file can be viewed below.
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# RCSid $Id: genBSDF.pl,v 2.12 2011/02/24 20:27:00 greg Exp $
#
# Compute BSDF based on geometry and material description
#
# G. Ward
#
use strict;
sub userror {
print STDERR "Usage: genBSDF [-n Nproc][-c Nsamp][-r \"ropts\"][-dim xmin xmax ymin ymax zmin zmax][{+|-}f][{+|-}b][{+|-}mgf][{+|-}geom] [input ..]\n";
exit 1;
}
my $td = `mktemp -d /tmp/genBSDF.XXXXXX`;
chomp $td;
my $nsamp = 1000;
my $rtargs = "-w -ab 5 -ad 700 -lw 3e-6";
my $mgfin = 0;
my $geout = 1;
my $nproc = 1;
my $doforw = 0;
my $doback = 1;
my @dim;
# Get options
while ($#ARGV >= 0) {
if ("$ARGV[0]" =~ /^[-+]m/) {
$mgfin = ("$ARGV[0]" =~ /^\+/);
} elsif ("$ARGV[0]" eq "-r") {
$rtargs = "$rtargs $ARGV[1]";
shift @ARGV;
} elsif ("$ARGV[0]" =~ /^[-+]g/) {
$geout = ("$ARGV[0]" =~ /^\+/);
} elsif ("$ARGV[0]" =~ /^[-+]f/) {
$doforw = ("$ARGV[0]" =~ /^\+/);
} elsif ("$ARGV[0]" =~ /^[-+]b/) {
$doback = ("$ARGV[0]" =~ /^\+/);
} elsif ("$ARGV[0]" eq "-c") {
$nsamp = $ARGV[1];
shift @ARGV;
} elsif ("$ARGV[0]" eq "-n") {
$nproc = $ARGV[1];
shift @ARGV;
} elsif ("$ARGV[0]" =~ /^-d/) {
userror() if ($#ARGV < 6);
@dim = @ARGV[1..6];
shift @ARGV for (1..6);
} elsif ("$ARGV[0]" =~ /^[-+]./) {
userror();
} else {
last;
}
shift @ARGV;
}
# Check that we're actually being asked to do something
die "Must have at least one of +forward or +backward" if (!$doforw && !$doback);
# Get scene description and dimensions
my $radscn = "$td/device.rad";
my $mgfscn = "$td/device.mgf";
my $octree = "$td/device.oct";
if ( $mgfin ) {
system "mgfilt '#,o,xf,c,cxy,cspec,cmix,m,sides,rd,td,rs,ts,ir,v,p,n,f,fh,sph,cyl,cone,prism,ring,torus' @ARGV > $mgfscn";
die "Could not load MGF input\n" if ( $? );
system "mgf2rad $mgfscn > $radscn";
} else {
system "cat @ARGV | xform -e > $radscn";
die "Could not load Radiance input\n" if ( $? );
system "rad2mgf $radscn > $mgfscn" if ( $geout );
}
if ($#dim != 5) {
@dim = split ' ', `getbbox -h $radscn`;
}
print STDERR "Warning: Device extends into room\n" if ($dim[5] > 1e-5);
# Add receiver surfaces (rectangular)
my $fmodnm="receiver_face";
my $bmodnm="receiver_behind";
open(RADSCN, ">> $radscn");
print RADSCN "void glow $fmodnm\n0\n0\n4 1 1 1 0\n\n";
print RADSCN "$fmodnm source f_receiver\n0\n0\n4 0 0 1 180\n";
print RADSCN "void glow $bmodnm\n0\n0\n4 1 1 1 0\n\n";
print RADSCN "$bmodnm source b_receiver\n0\n0\n4 0 0 -1 180\n";
close RADSCN;
# Generate octree
system "oconv -w $radscn > $octree";
die "Could not compile scene\n" if ( $? );
# Set up sampling of interior portal
# Kbin to produce incident direction in full Klems basis with (x1,x2) randoms
my $tcal = '
DEGREE : PI/180;
sq(x) : x*x;
Kpola(r) : select(r+1, -5, 5, 15, 25, 35, 45, 55, 65, 75, 90);
Knaz(r) : select(r, 1, 8, 16, 20, 24, 24, 24, 16, 12);
Kaccum(r) : if(r-.5, Knaz(r) + Kaccum(r-1), 0);
Kmax : Kaccum(Knaz(0));
Kfindrow(r, rem) : if(rem-Knaz(r)+.5, Kfindrow(r+1, rem-Knaz(r)), r);
Krow = if(Kbin-(Kmax-.5), 0, Kfindrow(1, Kbin));
Kcol = Kbin - Kaccum(Krow-1);
Kazi = 360*DEGREE * (Kcol + (.5 - x2)) / Knaz(Krow);
Kpol = DEGREE * (x1*Kpola(Krow) + (1-x1)*Kpola(Krow-1));
sin_kpol = sin(Kpol);
Dx = cos(Kazi)*sin_kpol;
Dy = sin(Kazi)*sin_kpol;
Dz = sqrt(1 - sin_kpol*sin_kpol);
KprojOmega = PI * if(Kbin-.5,
(sq(cos(Kpola(Krow-1)*DEGREE)) - sq(cos(Kpola(Krow)*DEGREE)))/Knaz(Krow),
1 - sq(cos(Kpola(1)*DEGREE)));
';
# Compute Klems bin from exiting ray direction (forward or backward)
my $kcal = '
DEGREE : PI/180;
abs(x) : if(x, x, -x);
Acos(x) : 1/DEGREE * if(x-1, 0, if(-1-x, 0, acos(x)));
posangle(a) : if(-a, a + 2*PI, a);
Atan2(y,x) : 1/DEGREE * posangle(atan2(y,x));
kpola(r) : select(r, 5, 15, 25, 35, 45, 55, 65, 75, 90);
knaz(r) : select(r, 1, 8, 16, 20, 24, 24, 24, 16, 12);
kaccum(r) : if(r-.5, knaz(r) + kaccum(r-1), 0);
kfindrow(r, pol) : if(r-kpola(0)+.5, r,
if(pol-kpola(r), kfindrow(r+1, pol), r) );
kazn(azi,inc) : if((360-.5*inc)-azi, floor((azi+.5*inc)/inc), 0);
kbin2(pol,azi) = select(kfindrow(1, pol),
kazn(azi,360/knaz(1)),
kaccum(1) + kazn(azi,360/knaz(2)),
kaccum(2) + kazn(azi,360/knaz(3)),
kaccum(3) + kazn(azi,360/knaz(4)),
kaccum(4) + kazn(azi,360/knaz(5)),
kaccum(5) + kazn(azi,360/knaz(6)),
kaccum(6) + kazn(azi,360/knaz(7)),
kaccum(7) + kazn(azi,360/knaz(8)),
kaccum(8) + kazn(azi,360/knaz(9))
);
kbin = kbin2(Acos(abs(Dz)),Atan2(Dy,Dx));
';
my $ndiv = 145;
my $nx = int(sqrt($nsamp*($dim[1]-$dim[0])/($dim[3]-$dim[2])) + .5);
my $ny = int($nsamp/$nx + .5);
$nsamp = $nx * $ny;
# Compute scattering data using rtcontrib
my @tfarr;
my @rfarr;
my @tbarr;
my @rbarr;
my $cmd;
my $rtcmd = "rtcontrib -h -ff -fo -n $nproc -c $nsamp " .
"-e '$kcal' -b kbin -bn $ndiv " .
"-o '$td/%s.flt' -m $fmodnm -m $bmodnm $rtargs $octree";
my $rccmd = "rcalc -e '$tcal' " .
"-e 'mod(n,d):n-floor(n/d)*d' -e 'Kbin=mod(recno-.999,$ndiv)' " .
q{-if3 -e '$1=(0.265*$1+0.670*$2+0.065*$3)/KprojOmega'};
if ( $doforw ) {
$cmd = "cnt $ndiv $ny $nx | rcalc -of -e '$tcal' " .
"-e 'xp=(\$3+rand(.12*recno+288))*(($dim[1]-$dim[0])/$nx)+$dim[0]' " .
"-e 'yp=(\$2+rand(.37*recno-44))*(($dim[3]-$dim[2])/$ny)+$dim[2]' " .
"-e 'zp:$dim[4]' " .
q{-e 'Kbin=$1;x1=rand(2.75*recno+3.1);x2=rand(-2.01*recno-3.37)' } .
q{-e '$1=xp-Dx;$2=yp-Dy;$3=zp-Dz;$4=Dx;$5=Dy;$6=Dz' } .
"| $rtcmd";
system "$cmd" || die "Failure running: $cmd\n";
@tfarr = `$rccmd $td/$fmodnm.flt`;
die "Failure running: $rccmd $td/$fmodnm.flt\n" if ( $? );
@rfarr = `$rccmd $td/$bmodnm.flt`;
die "Failure running: $rccmd $td/$bmodnm.flt\n" if ( $? );
}
if ( $doback ) {
$cmd = "cnt $ndiv $ny $nx | rcalc -of -e '$tcal' " .
"-e 'xp=(\$3+rand(.35*recno-15))*(($dim[1]-$dim[0])/$nx)+$dim[0]' " .
"-e 'yp=(\$2+rand(.86*recno+11))*(($dim[3]-$dim[2])/$ny)+$dim[2]' " .
"-e 'zp:$dim[5]' " .
q{-e 'Kbin=$1;x1=rand(1.21*recno+2.75);x2=rand(-3.55*recno-7.57)' } .
q{-e '$1=xp-Dx;$2=yp-Dy;$3=zp+Dz;$4=Dx;$5=Dy;$6=-Dz' } .
"| $rtcmd";
system "$cmd" || die "Failure running: $cmd\n";
@tbarr = `$rccmd $td/$bmodnm.flt`;
die "Failure running: $rccmd $td/$bmodnm.flt\n" if ( $? );
@rbarr = `$rccmd $td/$fmodnm.flt`;
die "Failure running: $rccmd $td/$fmodnm.flt\n" if ( $? );
}
# Output XML prologue
print
'<?xml version="1.0" encoding="UTF-8"?>
<WindowElement xmlns="http://windows.lbl.gov" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://windows.lbl.gov/BSDF-v1.4.xsd">
<WindowElementType>System</WindowElementType>
<Optical>
<Layer>
<Material>
<Name>Name</Name>
<Manufacturer>Manufacturer</Manufacturer>
';
printf "\t\t\t<Thickness unit=\"Meter\">%.3f</Thickness>\n", $dim[5] - $dim[4];
printf "\t\t\t<Width unit=\"Meter\">%.3f</Width>\n", $dim[1] - $dim[0];
printf "\t\t\t<Height unit=\"Meter\">%.3f</Height>\n", $dim[3] - $dim[2];
print "\t\t\t<DeviceType>Integral</DeviceType>\n";
# Output MGF description if requested
if ( $geout ) {
print "\t\t\t<Geometry format=\"MGF\" unit=\"Meter\">\n";
printf "xf -t %.6f %.6f 0\n", -($dim[0]+$dim[1])/2, -($dim[2]+$dim[3])/2;
system "cat $mgfscn";
print "xf\n";
print "\t\t\t</Geometry>\n";
}
print ' </Material>
<DataDefinition>
<IncidentDataStructure>Columns</IncidentDataStructure>
<AngleBasis>
<AngleBasisName>LBNL/Klems Full</AngleBasisName>
<AngleBasisBlock>
<Theta>0</Theta>
<nPhis>1</nPhis>
<ThetaBounds>
<LowerTheta>0</LowerTheta>
<UpperTheta>5</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>10</Theta>
<nPhis>8</nPhis>
<ThetaBounds>
<LowerTheta>5</LowerTheta>
<UpperTheta>15</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>20</Theta>
<nPhis>16</nPhis>
<ThetaBounds>
<LowerTheta>15</LowerTheta>
<UpperTheta>25</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>30</Theta>
<nPhis>20</nPhis>
<ThetaBounds>
<LowerTheta>25</LowerTheta>
<UpperTheta>35</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>40</Theta>
<nPhis>24</nPhis>
<ThetaBounds>
<LowerTheta>35</LowerTheta>
<UpperTheta>45</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>50</Theta>
<nPhis>24</nPhis>
<ThetaBounds>
<LowerTheta>45</LowerTheta>
<UpperTheta>55</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>60</Theta>
<nPhis>24</nPhis>
<ThetaBounds>
<LowerTheta>55</LowerTheta>
<UpperTheta>65</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>70</Theta>
<nPhis>16</nPhis>
<ThetaBounds>
<LowerTheta>65</LowerTheta>
<UpperTheta>75</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
<AngleBasisBlock>
<Theta>82.5</Theta>
<nPhis>12</nPhis>
<ThetaBounds>
<LowerTheta>75</LowerTheta>
<UpperTheta>90</UpperTheta>
</ThetaBounds>
</AngleBasisBlock>
</AngleBasis>
</DataDefinition>
';
if ( $doforw ) {
print ' <WavelengthData>
<LayerNumber>System</LayerNumber>
<Wavelength unit="Integral">Visible</Wavelength>
<SourceSpectrum>CIE Illuminant D65 1nm.ssp</SourceSpectrum>
<DetectorSpectrum>ASTM E308 1931 Y.dsp</DetectorSpectrum>
<WavelengthDataBlock>
<WavelengthDataDirection>Transmission Front</WavelengthDataDirection>
<ColumnAngleBasis>LBNL/Klems Full</ColumnAngleBasis>
<RowAngleBasis>LBNL/Klems Full</RowAngleBasis>
<ScatteringDataType>BTDF</ScatteringDataType>
<ScatteringData>
';
# Output front transmission (transposed order)
for (my $od = 0; $od < $ndiv; $od++) {
for (my $id = 0; $id < $ndiv; $id++) {
print $tfarr[$ndiv*$id + $od];
}
print "\n";
}
print
' </ScatteringData>
</WavelengthDataBlock>
</WavelengthData>
<WavelengthData>
<LayerNumber>System</LayerNumber>
<Wavelength unit="Integral">Visible</Wavelength>
<SourceSpectrum>CIE Illuminant D65 1nm.ssp</SourceSpectrum>
<DetectorSpectrum>ASTM E308 1931 Y.dsp</DetectorSpectrum>
<WavelengthDataBlock>
<WavelengthDataDirection>Reflection Front</WavelengthDataDirection>
<ColumnAngleBasis>LBNL/Klems Full</ColumnAngleBasis>
<RowAngleBasis>LBNL/Klems Full</RowAngleBasis>
<ScatteringDataType>BRDF</ScatteringDataType>
<ScatteringData>
';
# Output front reflection (transposed order)
for (my $od = 0; $od < $ndiv; $od++) {
for (my $id = 0; $id < $ndiv; $id++) {
print $rfarr[$ndiv*$id + $od];
}
print "\n";
}
print
' </ScatteringData>
</WavelengthDataBlock>
</WavelengthData>
';
}
if ( $doback ) {
print ' <WavelengthData>
<LayerNumber>System</LayerNumber>
<Wavelength unit="Integral">Visible</Wavelength>
<SourceSpectrum>CIE Illuminant D65 1nm.ssp</SourceSpectrum>
<DetectorSpectrum>ASTM E308 1931 Y.dsp</DetectorSpectrum>
<WavelengthDataBlock>
<WavelengthDataDirection>Transmission Back</WavelengthDataDirection>
<ColumnAngleBasis>LBNL/Klems Full</ColumnAngleBasis>
<RowAngleBasis>LBNL/Klems Full</RowAngleBasis>
<ScatteringDataType>BTDF</ScatteringDataType>
<ScatteringData>
';
# Output back transmission (transposed order)
for (my $od = 0; $od < $ndiv; $od++) {
for (my $id = 0; $id < $ndiv; $id++) {
print $tbarr[$ndiv*$id + $od];
}
print "\n";
}
print
' </ScatteringData>
</WavelengthDataBlock>
</WavelengthData>
<WavelengthData>
<LayerNumber>System</LayerNumber>
<Wavelength unit="Integral">Visible</Wavelength>
<SourceSpectrum>CIE Illuminant D65 1nm.ssp</SourceSpectrum>
<DetectorSpectrum>ASTM E308 1931 Y.dsp</DetectorSpectrum>
<WavelengthDataBlock>
<WavelengthDataDirection>Reflection Back</WavelengthDataDirection>
<ColumnAngleBasis>LBNL/Klems Full</ColumnAngleBasis>
<RowAngleBasis>LBNL/Klems Full</RowAngleBasis>
<ScatteringDataType>BRDF</ScatteringDataType>
<ScatteringData>
';
# Output back reflection (transposed order)
for (my $od = 0; $od < $ndiv; $od++) {
for (my $id = 0; $id < $ndiv; $id++) {
print $rbarr[$ndiv*$id + $od];
}
print "\n";
}
print
' </ScatteringData>
</WavelengthDataBlock>
</WavelengthData>
';
}
# Output XML epilogue
print '</Layer>
</Optical>
</WindowElement>
';
# Clean up temporary files
system "rm -rf $td";
|