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author wolffd
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wolffd@0 1 <html>
wolffd@0 2 <head>
wolffd@0 3 <title>
wolffd@0 4 Netlab Reference Manual mlphdotv
wolffd@0 5 </title>
wolffd@0 6 </head>
wolffd@0 7 <body>
wolffd@0 8 <H1> mlphdotv
wolffd@0 9 </H1>
wolffd@0 10 <h2>
wolffd@0 11 Purpose
wolffd@0 12 </h2>
wolffd@0 13 Evaluate the product of the data Hessian with a vector.
wolffd@0 14
wolffd@0 15 <p><h2>
wolffd@0 16 Synopsis
wolffd@0 17 </h2>
wolffd@0 18 <PRE>
wolffd@0 19 hdv = mlphdotv(net, x, t, v)</PRE>
wolffd@0 20
wolffd@0 21
wolffd@0 22 <p><h2>
wolffd@0 23 Description
wolffd@0 24 </h2>
wolffd@0 25
wolffd@0 26 <p><CODE>hdv = mlphdotv(net, x, t, v)</CODE> takes an MLP network data structure
wolffd@0 27 <CODE>net</CODE>, together with the matrix <CODE>x</CODE> of input vectors, the
wolffd@0 28 matrix <CODE>t</CODE> of target vectors and an arbitrary row vector <CODE>v</CODE>
wolffd@0 29 whose length equals the number of parameters in the network, and
wolffd@0 30 returns the product of the data-dependent contribution to the Hessian
wolffd@0 31 matrix with <CODE>v</CODE>. The implementation is based on the R-propagation
wolffd@0 32 algorithm of Pearlmutter.
wolffd@0 33
wolffd@0 34 <p><h2>
wolffd@0 35 See Also
wolffd@0 36 </h2>
wolffd@0 37 <CODE><a href="mlp.htm">mlp</a></CODE>, <CODE><a href="mlphess.htm">mlphess</a></CODE>, <CODE><a href="hesschek.htm">hesschek</a></CODE><hr>
wolffd@0 38 <b>Pages:</b>
wolffd@0 39 <a href="index.htm">Index</a>
wolffd@0 40 <hr>
wolffd@0 41 <p>Copyright (c) Ian T Nabney (1996-9)
wolffd@0 42
wolffd@0 43
wolffd@0 44 </body>
wolffd@0 45 </html>