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date | Tue, 10 Feb 2015 15:05:51 +0000 |
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<html> <head> <title> Netlab Reference Manual demmdn1 </title> </head> <body> <H1> demmdn1 </H1> <h2> Purpose </h2> Demonstrate fitting a multi-valued function using a Mixture Density Network. <p><h2> Synopsis </h2> <PRE> demmdn1</PRE> <p><h2> Description </h2> The problem consists of one input variable <CODE>x</CODE> and one target variable <CODE>t</CODE> with data generated by sampling <CODE>t</CODE> at equal intervals and then generating target data by computing <CODE>t + 0.3*sin(2*pi*t)</CODE> and adding Gaussian noise. A Mixture Density Network with 3 centres in the mixture model is trained by minimizing a negative log likelihood error function using the scaled conjugate gradient optimizer. <p>The conditional means, mixing coefficients and variances are plotted as a function of <CODE>x</CODE>, and a contour plot of the full conditional density is also generated. <p><h2> See Also </h2> <CODE><a href="mdn.htm">mdn</a></CODE>, <CODE><a href="mdnerr.htm">mdnerr</a></CODE>, <CODE><a href="mdngrad.htm">mdngrad</a></CODE>, <CODE><a href="scg.htm">scg</a></CODE><hr> <b>Pages:</b> <a href="index.htm">Index</a> <hr> <p>Copyright (c) Ian T Nabney (1996-9) </body> </html>