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root/radiance/ray/src/util/genBSDF.pl
Revision: 2.69
Committed: Fri Sep 16 22:42:42 2016 UTC (7 years, 7 months ago) by greg
Content type: text/plain
Branch: MAIN
Changes since 2.68: +2 -1 lines
Log Message:
Fix for unlikely case where first rfluxmtx has not happened before recovery

File Contents

# Content
1 #!/usr/bin/perl -w
2 # RCSid $Id: genBSDF.pl,v 2.68 2016/09/16 20:01:29 greg Exp $
3 #
4 # Compute BSDF based on geometry and material description
5 #
6 # G. Ward
7 #
8 use strict;
9 my $windoz = ($^O eq "MSWin32" or $^O eq "MSWin64");
10 use File::Temp qw/ :mktemp /;
11 sub userror {
12 print STDERR "Usage: genBSDF [-n Nproc][-c Nsamp][-W][-t{3|4} Nlog2][-r \"ropts\"][-s \"x=string;y=string\"][-dim xmin xmax ymin ymax zmin zmax][{+|-}C][{+|-}f][{+|-}b][{+|-}mgf][{+|-}geom units] [input ..]\n";
13 exit 1;
14 }
15 my ($td,$radscn,$mgfscn,$octree,$fsender,$bsender,$receivers,$facedat,$behinddat,$rmtmp);
16 my ($tf,$rf,$tb,$rb,$tfx,$rfx,$tbx,$rbx,$tfz,$rfz,$tbz,$rbz,$cph);
17 my ($curphase, $recovery);
18 if ($#ARGV == 1 && "$ARGV[0]" =~ /^-rec/) {
19 $td = $ARGV[1];
20 open(MYAVH, "< $td/savedARGV.txt") or die "$td: invalid path\n";
21 @ARGV = <MYAVH>;
22 close MYAVH;
23 chomp @ARGV;
24 $recovery = 0;
25 if (open(MYPH, "< $td/phase.txt")) {
26 while (<MYPH>) {
27 chomp($recovery = $_);
28 }
29 close MYPH;
30 }
31 } elsif ($windoz) {
32 my $tmploc = `echo \%TMP\%`;
33 chomp $tmploc;
34 $td = mkdtemp("$tmploc\\genBSDF.XXXXXX");
35 } else {
36 $td = mkdtemp("/tmp/genBSDF.XXXXXX");
37 chomp $td;
38 }
39 if ($windoz) {
40 $radscn = "$td\\device.rad";
41 $mgfscn = "$td\\device.mgf";
42 $octree = "$td\\device.oct";
43 $fsender = "$td\\fsender.rad";
44 $bsender = "$td\\bsender.rad";
45 $receivers = "$td\\receivers.rad";
46 $facedat = "$td\\face.dat";
47 $behinddat = "$td\\behind.dat";
48 $tf = "$td\\tf.dat";
49 $rf = "$td\\rf.dat";
50 $tb = "$td\\tb.dat";
51 $rb = "$td\\rb.dat";
52 $tfx = "$td\\tfx.dat";
53 $rfx = "$td\\rfx.dat";
54 $tbx = "$td\\tbx.dat";
55 $rbx = "$td\\rbx.dat";
56 $tfz = "$td\\tfz.dat";
57 $rfz = "$td\\rfz.dat";
58 $tbz = "$td\\tbz.dat";
59 $rbz = "$td\\rbz.dat";
60 $cph = "$td\\phase.txt";
61 $rmtmp = "rd /S /Q $td";
62 } else {
63 $radscn = "$td/device.rad";
64 $mgfscn = "$td/device.mgf";
65 $octree = "$td/device.oct";
66 $fsender = "$td/fsender.rad";
67 $bsender = "$td/bsender.rad";
68 $receivers = "$td/receivers.rad";
69 $facedat = "$td/face.dat";
70 $behinddat = "$td/behind.dat";
71 $tf = "$td/tf.dat";
72 $rf = "$td/rf.dat";
73 $tb = "$td/tb.dat";
74 $rb = "$td/rb.dat";
75 $tfx = "$td/tfx.dat";
76 $rfx = "$td/rfx.dat";
77 $tbx = "$td/tbx.dat";
78 $rbx = "$td/rbx.dat";
79 $tfz = "$td/tfz.dat";
80 $rfz = "$td/rfz.dat";
81 $tbz = "$td/tbz.dat";
82 $rbz = "$td/rbz.dat";
83 $cph = "$td/phase.txt";
84 $rmtmp = "rm -rf $td";
85 }
86 my @savedARGV = @ARGV;
87 my $rfluxmtx = "rfluxmtx -ab 5 -ad 700 -lw 3e-6";
88 my $wrapper = "wrapBSDF";
89 my $tensortree = 0;
90 my $ttlog2 = 4;
91 my $nsamp = 2000;
92 my $mgfin = 0;
93 my $geout = 1;
94 my $nproc = 1;
95 my $docolor = 0;
96 my $doforw = 0;
97 my $doback = 1;
98 my $pctcull = 90;
99 my $gunit = "meter";
100 my $curspec = "Visible";
101 my @dim;
102 # Get options
103 while ($#ARGV >= 0) {
104 if ("$ARGV[0]" =~ /^[-+]m/) {
105 $mgfin = ("$ARGV[0]" =~ /^\+/);
106 } elsif ("$ARGV[0]" eq "-r") {
107 $rfluxmtx .= " $ARGV[1]";
108 shift @ARGV;
109 } elsif ("$ARGV[0]" =~ /^[-+]g/) {
110 $geout = ("$ARGV[0]" =~ /^\+/);
111 $gunit = $ARGV[1];
112 if ($gunit !~ /^(?i)(meter|foot|inch|centimeter|millimeter)$/) {
113 die "Illegal geometry unit '$gunit': must be meter, foot, inch, centimeter, or millimeter\n";
114 }
115 shift @ARGV;
116 } elsif ("$ARGV[0]" =~ /^[-+]C/) {
117 $docolor = ("$ARGV[0]" =~ /^\+/);
118 } elsif ("$ARGV[0]" =~ /^[-+]f/) {
119 $doforw = ("$ARGV[0]" =~ /^\+/);
120 } elsif ("$ARGV[0]" =~ /^[-+]b/) {
121 $doback = ("$ARGV[0]" =~ /^\+/);
122 } elsif ("$ARGV[0]" eq "-t") {
123 # Use value < 0 for rttree_reduce bypass
124 $pctcull = $ARGV[1];
125 if ($pctcull >= 100) {
126 die "Illegal -t culling percentage, must be < 100\n";
127 }
128 shift @ARGV;
129 } elsif ("$ARGV[0]" =~ /^-t[34]$/) {
130 $tensortree = substr($ARGV[0], 2, 1);
131 $ttlog2 = $ARGV[1];
132 shift @ARGV;
133 } elsif ("$ARGV[0]" eq "-s") {
134 $wrapper .= " -f \"$ARGV[1]\"";
135 shift @ARGV;
136 } elsif ("$ARGV[0]" eq "-W") {
137 $wrapper .= " -W";
138 } elsif ("$ARGV[0]" eq "-c") {
139 $nsamp = $ARGV[1];
140 shift @ARGV;
141 } elsif ("$ARGV[0]" eq "-n") {
142 $nproc = $ARGV[1];
143 shift @ARGV;
144 } elsif ("$ARGV[0]" =~ /^-d/) {
145 userror() if ($#ARGV < 6);
146 @dim = @ARGV[1..6];
147 shift @ARGV for (1..6);
148 } elsif ("$ARGV[0]" =~ /^[-+]./) {
149 userror();
150 } else {
151 last;
152 }
153 shift @ARGV;
154 }
155 # Check that we're actually being asked to do something
156 die "Must have at least one of +forward or +backward\n" if (!$doforw && !$doback);
157 $wrapper .= $tensortree ? " -a t$tensortree" : " -a kf -c";
158 $wrapper .= " -u $gunit";
159 if ( !defined $recovery ) {
160 # Issue warning for unhandled reciprocity case
161 print STDERR "Warning: recommend both +forward and +backward with -t3\n" if
162 ($tensortree==3 && !($doforw && $doback));
163 # Get scene description
164 if ( $mgfin ) {
165 system "mgf2rad @ARGV > $radscn";
166 die "Could not load MGF input\n" if ( $? );
167 } else {
168 system "xform -e @ARGV > $radscn";
169 die "Could not load Radiance input\n" if ( $? );
170 }
171 }
172 if ( $#dim != 5 ) {
173 @dim = split ' ', `getbbox -h $radscn`;
174 }
175 die "Device entirely inside room!\n" if ( $dim[4] >= 0 );
176 if ( $dim[5] > 1e-5 ) {
177 print STDERR "Warning: Device extends into room\n";
178 } elsif ( $dim[5]*$dim[5] > .01*($dim[1]-$dim[0])*($dim[3]-$dim[2]) ) {
179 print STDERR "Warning: Device far behind Z==0 plane\n";
180 }
181 # Assume Zmax==0 to derive thickness so pkgBSDF will work
182 $wrapper .= ' -f "t=' . (-$dim[4]) . ';w=' . ($dim[1] - $dim[0]) .
183 ';h=' . ($dim[3] - $dim[2]) . '"';
184 $wrapper .= " -g $mgfscn" if ( $geout );
185 # Calculate CIE (u',v') from Radiance RGB:
186 my $CIEuv = 'Xi=.5141*Ri+.3239*Gi+.1620*Bi;' .
187 'Yi=.2651*Ri+.6701*Gi+.0648*Bi;' .
188 'Zi=.0241*Ri+.1229*Gi+.8530*Bi;' .
189 'den=Xi+15*Yi+3*Zi;' .
190 'uprime=4*Xi/den;vprime=9*Yi/den;' ;
191 my $FEPS = 1e-5;
192 my $ns = 2**$ttlog2;
193 my $nx = int(sqrt($nsamp*($dim[1]-$dim[0])/($dim[3]-$dim[2])) + 1);
194 my $ny = int($nsamp/$nx + 1);
195 $nsamp = $nx * $ny;
196 $rfluxmtx .= " -n $nproc -c $nsamp";
197 if ( !defined $recovery ) {
198 open(MYAVH, "> $td/savedARGV.txt");
199 foreach (@savedARGV) {
200 print MYAVH "$_\n";
201 }
202 close MYAVH;
203 # Generate octree
204 system "oconv -w $radscn > $octree";
205 die "Could not compile scene\n" if ( $? );
206 # Add MGF description if requested
207 if ( $geout ) {
208 open(MGFSCN, "> $mgfscn");
209 printf MGFSCN "xf -t %.6f %.6f 0\n", -($dim[0]+$dim[1])/2, -($dim[2]+$dim[3])/2;
210 close MGFSCN;
211 if ( $mgfin ) {
212 system qq{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};
213 } else {
214 system "rad2mgf $radscn >> $mgfscn";
215 }
216 open(MGFSCN, ">> $mgfscn");
217 print MGFSCN "xf\n";
218 close MGFSCN;
219 }
220 # Create receiver & sender surfaces (rectangular)
221 open(RADSCN, "> $receivers");
222 print RADSCN '#@rfluxmtx ' . ($tensortree ? "h=-sc$ns\n" : "h=-kf\n");
223 print RADSCN '#@rfluxmtx ' . "u=-Y o=$facedat\n\n";
224 print RADSCN "void glow receiver_face\n0\n0\n4 1 1 1 0\n\n";
225 print RADSCN "receiver_face source f_receiver\n0\n0\n4 0 0 1 180\n\n";
226 print RADSCN '#@rfluxmtx ' . ($tensortree ? "h=+sc$ns\n" : "h=+kf\n");
227 print RADSCN '#@rfluxmtx ' . "u=-Y o=$behinddat\n\n";
228 print RADSCN "void glow receiver_behind\n0\n0\n4 1 1 1 0\n\n";
229 print RADSCN "receiver_behind source b_receiver\n0\n0\n4 0 0 -1 180\n";
230 close RADSCN;
231 # Prepare sender surfaces
232 if ( $tensortree != 3 ) { # Isotropic tensor tree is exception
233 open (RADSCN, "> $fsender");
234 print RADSCN '#@rfluxmtx u=-Y ' . ($tensortree ? "h=-sc$ns\n\n" : "h=-kf\n\n");
235 print RADSCN "void polygon fwd_sender\n0\n0\n12\n";
236 printf RADSCN "\t%e\t%e\t%e\n", $dim[0], $dim[2], $dim[4]-$FEPS;
237 printf RADSCN "\t%e\t%e\t%e\n", $dim[0], $dim[3], $dim[4]-$FEPS;
238 printf RADSCN "\t%e\t%e\t%e\n", $dim[1], $dim[3], $dim[4]-$FEPS;
239 printf RADSCN "\t%e\t%e\t%e\n", $dim[1], $dim[2], $dim[4]-$FEPS;
240 close RADSCN;
241 open (RADSCN, "> $bsender");
242 print RADSCN '#@rfluxmtx u=-Y ' . ($tensortree ? "h=+sc$ns\n\n" : "h=+kf\n\n");
243 print RADSCN "void polygon bwd_sender\n0\n0\n12\n";
244 printf RADSCN "\t%e\t%e\t%e\n", $dim[0], $dim[2], $dim[5]+$FEPS;
245 printf RADSCN "\t%e\t%e\t%e\n", $dim[1], $dim[2], $dim[5]+$FEPS;
246 printf RADSCN "\t%e\t%e\t%e\n", $dim[1], $dim[3], $dim[5]+$FEPS;
247 printf RADSCN "\t%e\t%e\t%e\n", $dim[0], $dim[3], $dim[5]+$FEPS;
248 close RADSCN;
249 }
250 print STDERR "Recover using: $0 -recover $td\n";
251 }
252 # Open unbuffered progress file
253 open(MYPH, ">> $td/phase.txt");
254 {
255 my $ofh = select MYPH;
256 $| = 1;
257 select $ofh;
258 }
259 $curphase = 0;
260 # Create data segments (all the work happens here)
261 if ( $tensortree ) {
262 do_tree_bsdf();
263 } else {
264 do_matrix_bsdf();
265 }
266 # Output XML
267 # print STDERR "Running: $wrapper\n";
268 system "$wrapper -C \"Created by: genBSDF @savedARGV\"";
269 die "Could not wrap BSDF data\n" if ( $? );
270 # Clean up temporary files and exit
271 exec $rmtmp;
272
273 #============== End of main program segment ==============#
274
275 # Function to determine if next phase should be skipped or recovered
276 sub do_phase {
277 $curphase++;
278 if (defined $recovery) {
279 if ($recovery > $curphase) { return 0; }
280 if ($recovery == $curphase) { return -1; }
281 }
282 print MYPH "$curphase\n";
283 return 1;
284 }
285
286 #++++++++++++++ Tensor tree BSDF generation ++++++++++++++#
287 sub do_tree_bsdf {
288
289 # Run rfluxmtx processes to compute each side
290 do_ttree_dir(0) if ( $doback );
291 do_ttree_dir(1) if ( $doforw );
292
293 } # end of sub do_tree_bsdf()
294
295 # Call rfluxmtx and process tensor tree BSDF for the given direction
296 sub do_ttree_dir {
297 my $forw = shift;
298 my $r = do_phase();
299 if (!$r) { return; }
300 $r = ($r < 0) ? " -r" : "";
301 my $cmd;
302 if ( $tensortree == 3 ) {
303 # Isotropic BSDF
304 my $ns2 = $ns / 2;
305 if ($windoz) {
306 $cmd = "cnt $ns2 $ny $nx " .
307 qq{| rcalc -e "r1=rand(.8681*recno-.673892)" } .
308 qq{-e "r2=rand(-5.37138*recno+67.1737811)" } .
309 qq{-e "r3=rand(+3.17603772*recno+83.766771)" } .
310 qq{-e "Dx=1-2*(\$1+r1)/$ns;Dy:0;Dz=sqrt(1-Dx*Dx)" } .
311 qq{-e "xp=(\$3+r2)*(($dim[1]-$dim[0])/$nx)+$dim[0]" } .
312 qq{-e "yp=(\$2+r3)*(($dim[3]-$dim[2])/$ny)+$dim[2]" } .
313 qq{-e "zp=$dim[5-$forw]" -e "myDz=Dz*($forw*2-1)" } .
314 qq{-e "\$1=xp-Dx;\$2=yp-Dy;\$3=zp-myDz" } .
315 qq{-e "\$4=Dx;\$5=Dy;\$6=myDz" } .
316 "| $rfluxmtx$r -fa -y $ns2 - $receivers -i $octree";
317 } else {
318 $cmd = "cnt $ns2 $ny $nx " .
319 qq{| rcalc -e "r1=rand(.8681*recno-.673892)" } .
320 qq{-e "r2=rand(-5.37138*recno+67.1737811)" } .
321 qq{-e "r3=rand(+3.17603772*recno+83.766771)" } .
322 qq{-e "Dx=1-2*(\$1+r1)/$ns;Dy:0;Dz=sqrt(1-Dx*Dx)" } .
323 qq{-e "xp=(\$3+r2)*(($dim[1]-$dim[0])/$nx)+$dim[0]" } .
324 qq{-e "yp=(\$2+r3)*(($dim[3]-$dim[2])/$ny)+$dim[2]" } .
325 qq{-e "zp=$dim[5-$forw]" -e "myDz=Dz*($forw*2-1)" } .
326 qq{-e '\$1=xp-Dx;\$2=yp-Dy;\$3=zp-myDz' } .
327 qq{-e '\$4=Dx;\$5=Dy;\$6=myDz' -of } .
328 "| $rfluxmtx$r -h -ff -y $ns2 - $receivers -i $octree";
329 }
330 } else {
331 # Anisotropic BSDF
332 my $sender = ($bsender,$fsender)[$forw];
333 if ($windoz) {
334 $cmd = "$rfluxmtx$r -fa $sender $receivers -i $octree";
335 } else {
336 $cmd = "$rfluxmtx$r -h -ff $sender $receivers -i $octree";
337 }
338 }
339 # print STDERR "Starting: $cmd\n";
340 system $cmd;
341 die "Failure running rfluxmtx" if ( $? );
342 ttree_out($forw);
343 } # end of do_ttree_dir()
344
345 # Simplify and store tensor tree results
346 sub ttree_out {
347 my $forw = shift;
348 my ($refldat,$transdat);
349 if ( $forw ) {
350 $transdat = $facedat;
351 $refldat = $behinddat;
352 } else {
353 $transdat = $behinddat;
354 $refldat = $facedat;
355 }
356 # Only output one transmitted anisotropic distribution, preferring backwards
357 if ( !$forw || !$doback || $tensortree==3 ) {
358 my $ttyp = ("tb","tf")[$forw];
359 ttree_comp($ttyp, "Visible", $transdat, ($tb,$tf)[$forw]);
360 if ( $docolor ) {
361 ttree_comp($ttyp, "CIE-u", $transdat, ($tbx,$tfx)[$forw]);
362 ttree_comp($ttyp, "CIE-v", $transdat, ($tbz,$tfz)[$forw]);
363 }
364 }
365 # Output reflection
366 my $rtyp = ("rb","rf")[$forw];
367 ttree_comp($rtyp, "Visible", $refldat, ($rb,$rf)[$forw]);
368 if ( $docolor ) {
369 ttree_comp($rtyp, "CIE-u", $refldat, ($rbx,$rfx)[$forw]);
370 ttree_comp($rtyp, "CIE-v", $refldat, ($rbz,$rfz)[$forw]);
371 }
372 } # end of ttree_out()
373
374 # Call rttree_reduce on the given component
375 sub ttree_comp {
376 my $typ = shift;
377 my $spec = shift;
378 my $src = shift;
379 my $dest = shift;
380 my $cmd;
381 if ($windoz) {
382 if ("$spec" eq "Visible") {
383 $cmd = qq{rcalc -e "Omega:PI/($ns*$ns)" } .
384 q{-e "Ri=$1;Gi=$2;Bi=$3" } .
385 qq{-e "$CIEuv" } .
386 q{-e "$1=Yi/Omega"};
387 } elsif ("$spec" eq "CIE-u") {
388 $cmd = q{rcalc -e "Ri=$1;Gi=$2;Bi=$3" } .
389 qq{-e "$CIEuv" } .
390 q{-e "$1=uprime"};
391 } elsif ("$spec" eq "CIE-v") {
392 $cmd = q{rcalc -e "Ri=$1;Gi=$2;Bi=$3" } .
393 qq{-e "$CIEuv" } .
394 q{-e "$1=vprime"};
395 }
396 } else {
397 if ("$spec" eq "Visible") {
398 $cmd = "rcalc -if3 -e 'Omega:PI/($ns*$ns)' " .
399 q{-e 'Ri=$1;Gi=$2;Bi=$3' } .
400 "-e '$CIEuv' " .
401 q{-e '$1=Yi/Omega'};
402 } elsif ("$spec" eq "CIE-u") {
403 $cmd = q{rcalc -if3 -e 'Ri=$1;Gi=$2;Bi=$3' } .
404 "-e '$CIEuv' " .
405 q{-e '$1=uprime'};
406 } elsif ("$spec" eq "CIE-v") {
407 $cmd = q{rcalc -if3 -e 'Ri=$1;Gi=$2;Bi=$3' } .
408 "-e '$CIEuv' " .
409 q{-e '$1=vprime'};
410 }
411 }
412 if ($pctcull >= 0) {
413 my $avg = ( "$typ" =~ /^r[fb]/ ) ? " -a" : "";
414 my $pcull = ("$spec" eq "Visible") ? $pctcull :
415 (100 - (100-$pctcull)*.25) ;
416 if ($windoz) {
417 $cmd = "rcollate -ho -oc 1 $src | " .
418 $cmd .
419 " | rttree_reduce$avg -h -fa -t $pcull -r $tensortree -g $ttlog2";
420 } else {
421 $cmd .= " -of $src " .
422 "| rttree_reduce$avg -h -ff -t $pcull -r $tensortree -g $ttlog2";
423 }
424 # print STDERR "Running: $cmd\n";
425 system "$cmd > $dest";
426 die "Failure running rttree_reduce" if ( $? );
427 } else {
428 if ($windoz) {
429 $cmd = "rcollate -ho -oc 1 $src | " . $cmd ;
430 } else {
431 $cmd .= " $src";
432 }
433 open(DATOUT, "> $dest");
434 print DATOUT "{\n";
435 close DATOUT;
436 # print STDERR "Running: $cmd\n";
437 system "$cmd >> $dest";
438 die "Failure running rcalc" if ( $? );
439 open(DATOUT, ">> $dest");
440 for (my $i = ($tensortree==3)*$ns*$ns*$ns/2; $i-- > 0; ) {
441 print DATOUT "0\n";
442 }
443 print DATOUT "}\n";
444 close DATOUT;
445 }
446 if ( "$spec" ne "$curspec" ) {
447 $wrapper .= " -s $spec";
448 $curspec = $spec;
449 }
450 $wrapper .= " -$typ $dest";
451 } # end of ttree_comp()
452
453 #------------- End of do_tree_bsdf() & subroutines -------------#
454
455 #+++++++++++++++ Klems matrix BSDF generation +++++++++++++++#
456 sub do_matrix_bsdf {
457
458 # Run rfluxmtx processes to compute each side
459 do_matrix_dir(0) if ( $doback );
460 do_matrix_dir(1) if ( $doforw );
461
462 } # end of sub do_matrix_bsdf()
463
464 # Call rfluxmtx and process tensor tree BSDF for the given direction
465 sub do_matrix_dir {
466 my $forw = shift;
467 my $r = do_phase();
468 if (!$r) { return; }
469 $r = ($r < 0) ? " -r" : "";
470 my $cmd;
471 my $sender = ($bsender,$fsender)[$forw];
472 $cmd = "$rfluxmtx$r -fd $sender $receivers -i $octree";
473 # print STDERR "Starting: $cmd\n";
474 system $cmd;
475 die "Failure running rfluxmtx" if ( $? );
476 matrix_out($forw);
477 } # end of do_matrix_dir()
478
479 sub matrix_out {
480 my $forw = shift;
481 my ($refldat,$transdat);
482 if ( $forw ) {
483 $transdat = $facedat;
484 $refldat = $behinddat;
485 } else {
486 $transdat = $behinddat;
487 $refldat = $facedat;
488 }
489 # Output transmission
490 my $ttyp = ("tb","tf")[$forw];
491 matrix_comp($ttyp, "Visible", $transdat, ($tb,$tf)[$forw]);
492 if ( $docolor ) {
493 matrix_comp($ttyp, "CIE-X", $transdat, ($tbx,$tfx)[$forw]);
494 matrix_comp($ttyp, "CIE-Z", $transdat, ($tbz,$tfz)[$forw]);
495 }
496 # Output reflection
497 my $rtyp = ("rb","rf")[$forw];
498 matrix_comp($rtyp, "Visible", $refldat, ($rb,$rf)[$forw]);
499 if ( $docolor ) {
500 matrix_comp($rtyp, "CIE-X", $refldat, ($rbx,$rfx)[$forw]);
501 matrix_comp($rtyp, "CIE-Z", $refldat, ($rbz,$rfz)[$forw]);
502 }
503 } # end of matrix_out()
504
505 # Transpose matrix component data and save to file
506 sub matrix_comp {
507 my $typ = shift;
508 my $spec = shift;
509 my $src = shift;
510 my $dest = shift;
511 my $cmd = "rmtxop -fa -t";
512 if ("$spec" eq "Visible") {
513 $cmd .= " -c 0.2651 0.6701 0.0648";
514 } elsif ("$spec" eq "CIE-X") {
515 $cmd .= " -c 0.5141 0.3239 0.1620";
516 } elsif ("$spec" eq "CIE-Z") {
517 $cmd .= " -c 0.0241 0.1229 0.8530";
518 }
519 $cmd .= " $src | rcollate -ho -oc 145";
520 # print STDERR "Running: $cmd\n";
521 system "$cmd > $dest";
522 die "Failure running rmtxop" if ( $? );
523 if ( "$spec" ne "$curspec" ) {
524 $wrapper .= " -s $spec";
525 $curspec = $spec;
526 }
527 $wrapper .= " -$typ $dest";
528 } # end of matrix_comp()
529
530 #------------- End of do_matrix_bsdf() & subroutines --------------#