ViewVC Help
View File | Revision Log | Show Annotations | Download File | Root Listing
root/radiance/ray/doc/man/man1/dctimestep.1
Revision: 1.12
Committed: Tue Jul 14 16:08:28 2015 UTC (9 years, 9 months ago) by greg
Branch: MAIN
CVS Tags: rad5R0
Changes since 1.11: +20 -15 lines
Log Message:
Added ability for dctimestep to accept matrix files in place of XML for T

File Contents

# User Rev Content
1 greg 1.12 .\" RCSid $Id: dctimestep.1,v 1.11 2015/05/04 20:53:21 greg Exp $"
2 greg 1.1 .TH DCTIMESTEP 1 12/09/09 RADIANCE
3     .SH NAME
4 greg 1.4 dctimestep - compute annual simulation time-step(s) via matrix multiplication
5 greg 1.1 .SH SYNOPSIS
6     .B dctimestep
7 greg 1.4 [
8     .B "\-n nsteps"
9     ][
10 greg 1.10 .B "\-h"
11     ][
12 greg 1.4 .B "\-o ospec"
13 greg 1.5 ][
14 greg 1.10 .B "\-i{f|d}
15 greg 1.8 ][
16     .B "\-o{f|d}
17 greg 1.4 ]
18 greg 1.2 .B DCspec
19     [
20 greg 1.4 .B skyf
21 greg 1.2 ]
22     .br
23     .B dctimestep
24 greg 1.4 [
25     .B "\-n nsteps"
26     ][
27 greg 1.10 .B "\-h"
28     ][
29 greg 1.4 .B "\-o ospec"
30 greg 1.5 ][
31 greg 1.10 .B "\-i{f|d}
32 greg 1.8 ][
33     .B "\-o{f|d}
34 greg 1.4 ]
35 greg 1.1 .B Vspec
36 greg 1.12 .B Tbsdf
37 greg 1.1 .B Dmat.dat
38     [
39 greg 1.4 .B skyf
40 greg 1.1 ]
41     .SH DESCRIPTION
42     .I Dctimestep
43 greg 1.2 has two invocation forms.
44     In the first form,
45     .I dctimestep
46     is given a daylight coefficient specification and an optional sky
47 greg 1.4 vector or matrix, which may be read from the standard input if unspecified.
48     The daylight coefficients are multiplied against these sky values
49     and the results are written to the standard output.
50 greg 1.2 This may be a list of color values or a combined Radiance image,
51     as explained below.
52     .PP
53     In the second form,
54     .I dctimestep
55 greg 1.1 takes four input files, forming a matrix expression.
56     The first argument is the View matrix file that specifies how window output
57     directions are related to some set of measured values, such as an array of
58     illuminance points or images.
59     This matrix is usually computed by
60 greg 1.12 .I rfluxmtx(1)
61     or
62 greg 1.3 .I rcontrib(1)
63 greg 1.1 for a particular set of windows or skylight openings.
64     The second argument is the window transmission matrix, or BSDF, given as
65 greg 1.12 a matrix or a standard XML description.
66 greg 1.1 The third argument is the Daylight matrix file that defines how sky patches
67     relate to input directions on the same opening.
68     This is usually computed using
69 greg 1.12 .I rfluxmtx
70     with separate runs for each window or skylight orientation.
71 greg 1.6 The last file is the sky contribution vector or matrix,
72     typically computed by
73     .I genskyvec(1)
74     or
75     .I gendaymtx(1),
76     and may be passed on the standard input.
77 greg 1.10 .PP
78     If the input sky data lacks a header, the
79     .I \-n
80     option may be used to indicate the number of time steps, which
81     will be 1 for a sky vector.
82     The sky input file must contain the number of
83 greg 1.12 columns (time steps) specified in each sky patch row,
84     whether it is read from the standard input or from a file.
85 greg 1.10 Input starts from the first patch at the first time step, then the
86     first patch at the second time step, and so on.
87 greg 1.12 Note that all matrix elements are RGB triplets, so the actual size
88     of the sky vector or matrix is three times the number of steps times
89     the number of sky patches.
90 greg 1.5 The
91     .I \-if
92     or
93     .I \-id
94     option may be used to specify that sky data is in float or double
95 greg 1.6 format, respectively, which is more efficient for large matrices.
96 greg 1.10 These options are unnecessary in the when the sky
97     input has a header.
98 greg 1.1 .PP
99 greg 1.11 Any of the matrix or vector files may be read from a command
100     instead of a file by
101     using quotes and a beginning exclamation point ('!').
102     .PP
103 greg 1.9 The standard output of
104 greg 1.1 .I dctimestep
105 greg 1.8 is either a color vector with as many RGB triplets
106 greg 1.1 as there are rows in the View matrix, or a combined
107     .I Radiance
108     picture.
109 greg 1.2 Which output is produced depends on the first argument.
110 greg 1.1 A regular file name will be loaded and interpreted as a matrix to
111     generate a color results vector.
112     A file specification containing a '%d' format string will be
113     interpreted as a list of
114     .I Radiance
115     component pictures, which will be summed according to the computed
116     vector.
117 greg 1.4 .PP
118     The
119     .I \-o
120     option may be used to specify a file or a set of output files
121     to use rather than the standard output.
122     If the given specification contains a '%d' format string, this
123     will be replaced by the time step index, starting from 1.
124     In this way, multiple output pictures may be produced,
125 greg 1.6 or separate result vectors (one per time step).
126 greg 1.8 .PP
127 greg 1.10 A header will normally be produced on the output, unless the
128     .I \-h
129     option is specified.
130 greg 1.8 The
131     .I \-of
132     or
133     .I \-od
134     option may be used to specify IEEE float or double binary output
135     data, respectively.
136 greg 1.1 .SH EXAMPLES
137 greg 1.2 To compute workplane illuminances at 3:30pm on Feb 10th:
138     .IP "" .2i
139     gensky 2 10 15:30 | genskyvec | dctimestep workplaneDC.dmx > Ill_02-10-1530.dat
140     .PP
141     To compute an image at 10am on the equinox from a set of component images:
142     .IP "" .2i
143 greg 1.6 gensky 3 21 10 | genskyvec | dctimestep dcomp%03d.hdr > view_03-21-10.hdr
144 greg 1.2 .PP
145 greg 1.1 To compute a set of illuminance contributions for Window 1 on
146     the Winter solstice at 2pm:
147     .IP "" .2i
148     gensky 12 21 14 | genskyvec | dctimestep IllPts.vmx Blinds20.xml Window1.dmx > Ill_12-21-14.dat
149     .PP
150     To compute Window2's contribution to an interior view at 12 noon on the Summer solstice:
151     .IP "" .2i
152 greg 1.6 gensky 6 21 12 | genskyvec | dctimestep view%03d.hdr Blinds30.xml
153     Window2.dmx > view_6-21-12.hdr
154     .PP
155     To generate an hourly matrix of sensor value contributions from Skylight3
156     using a 3-phase calculation, where output columns are time steps:
157     .IP "" .2i
158 greg 1.10 gendaymtx -of Tampa.wea | dctimestep WPpts.vmx
159 greg 1.6 shade3.xml Skylight3.dmx > wp_win3.dat
160     .PP
161     Generate a series of pictures corresponding to timesteps
162     in an annual simulation:
163     .IP "" .2i
164 greg 1.10 gendaymtx NYCity.wea | dctimestep -o tstep%04d.hdr dcomp%03d.hdr
165 greg 1.8 .PP
166 greg 1.12 To multiply an irradiance view matrix through a pair of XML window layers using
167     a given exterior daylight matrix and sky vector:
168     .IP "" .2i
169     dctimestep Illum.vmx "!rmtxop -ff Blinds1.xml Windo1.xml" Exter.dmx Jan20.sky
170     .PP
171 greg 1.10 To multiply two matrices into a IEEE-float result with header:
172 greg 1.8 .IP "" .2i
173 greg 1.10 dctimestep -of Inp1.fmx Inp2.fmx > Inp1xInp2.fmx
174 greg 1.1 .SH AUTHOR
175     Greg Ward
176     .SH "SEE ALSO"
177 greg 1.12 gendaymtx(1), genskyvec(1), getinfo(1),
178     mkillum(1), rcollate(1), rcontrib(1),
179     rfluxmtx(1), rmtxop(1), rtrace(1), vwrays(1)