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Revision 1.28 by greg, Tue Oct 9 17:57:17 2018 UTC

# Line 2 | Line 2
2   <!-- RCSid $Id$ -->
3   <head>
4   <title>
5 < The RADIANCE 5.2 Synthetic Imaging System
5 > The RADIANCE 5.3 Synthetic Imaging System
6   </title>
7   </head>
8   <body>
# Line 10 | Line 10 | The RADIANCE 5.2 Synthetic Imaging System
10   <p>
11  
12   <h1>
13 < The RADIANCE 5.2 Synthetic Imaging System
13 > The RADIANCE 5.3 Synthetic Imaging System
14   </h1>
15  
16   <p>
# Line 1154 | Line 1154 | unless the line integrals consider enclosed geometry.
1154   <p>
1155  
1156   <dt>
1157 <        <a NAME="sBSDF">
1158 <        <b>sBSDF</b>
1157 >        <a NAME="aBSDF">
1158 >        <b>aBSDF</b>
1159          </a>
1160  
1161   <dd>
1162 <        The sBSDF material is identical to the BSDF type with two
1162 >        The aBSDF material is identical to the BSDF type with two
1163          important differences.  First, proxy geometry is not
1164          supported, so there is no thickness parameter.  Second, an
1165 <        sBSDF is assumed to have some specular through component,
1165 >        aBSDF is assumed to have some specular through component
1166 >        (the &rsquo;a&rsquo; stands for &quot;aperture&quot;),
1167          which is treated specially during the direct calculation
1168          and when viewing the material.  Based on the BSDF data, the
1169          coefficient of specular transmission is determined and used
1170          for modifying unscattered shadow and view rays.
1171  
1172   <pre>
1173 <        mod sBSDF id
1173 >        mod aBSDF id
1174          5+ BSDFfile ux uy uz funcfile transform
1175          0
1176          0|3|6|9
# Line 1181 | Line 1182 | unless the line integrals consider enclosed geometry.
1182   <p>
1183          If a material has no specular transmitted component, it is
1184          much better to use the BSDF type with a zero thickness
1185 <        than to use sBSDF.
1185 >        than to use aBSDF.
1186   <p>
1187  
1188   <dt>
# Line 1944 | Line 1945 | Ecole  Polytechnique  Federale de Lausanne (EPFL Unive
1945   </h2>
1946   <p>
1947   <ul>
1948 +    <li>Wang, Taoning, Gregory Ward, Eleanor Lee,
1949 +      &quot;<a href="https://authors.elsevier.com/a/1XQ0a1M7zGwT7v">Efficient
1950 +      modeling of optically-complex, non-coplanar exterior shading:
1951 +      Validation of matrix algebraic methods</a>&quot;
1952 +      <em>Energy & Buildings</em>, vol. 174, pp. 464-83, Sept. 2018.
1953 +    <li>Lee, Eleanor S., David Geisler-Moroder, Gregory Ward,
1954 +      &quot;<a href="https://eta.lbl.gov/sites/default/files/publications/solar_energy.pdf">Modeling
1955 +      the direct sun component in buildings using matrix
1956 +      algebraic approaches: Methods and
1957 +      validation</a>,&quot; <em>Solar Energy</em>,
1958 +      vol. 160, 15 January 2018, pp 380-395.
1959 +    <li>Narain, Rahul, Rachel A. Albert, Abdullah Bulbul,
1960 +       Gregory J. Ward, Marty Banks, James F. O'Brien,
1961 +       &quot;<a href="http://graphics.berkeley.edu/papers/Narain-OPI-2015-08/index.html">Optimal
1962 +       Presentation of Imagery with Focus
1963 +       Cues on Multi-Plane Displays</a>,&quot;
1964 +       <em>SIGGRAPH 2015</em>.
1965 +    <li>Ward, Greg, Murat Kurt, and Nicolas Bonneel,
1966 +        &quot;<a href="papers/WMAM14_Tensor_Tree_Representation.pdf">Reducing
1967 +        Anisotropic BSDF Measurement to Common Practice</a>,&quot;
1968 +        <em>Workshop on Material Appearance Modeling</em>, 2014.
1969 +    <li>Banks, Martin, Abdullah Bulbul, Rachel Albert, Rahul Narain,
1970 +        James F. O'Brien, Gregory Ward,
1971 +        &quot;<a href="http://graphics.berkeley.edu/papers/Banks-TPO-2014-05/index.html">The
1972 +        Perception of Surface Material from Disparity and Focus Cues</a>,&quot;
1973 +        <em>VSS 2014</em>.
1974      <li>McNeil, A., C.J. Jonsson, D. Appelfeld, G. Ward, E.S. Lee,
1975          &quot;<a href="http://gaia.lbl.gov/btech/papers/4414.pdf">
1976          A validation of a ray-tracing tool used to generate

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