Bayesian learning for neural networks

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Bayesian learning for neural networks
Radford M. Neal
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Last edited by WorkBot
December 15, 2009 | History

Bayesian learning for neural networks

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Artificial "neural networks" are now widely used as flexible models for regression classification applications, but questions remain regarding what these models mean, and how they can safely be used when training data is limited. Bayesian Learning for Neural Networks shows that Bayesian methods allow complex neural network models to be used without fear of the "overfitting" that can occur with traditional neural network learning methods.

Insight into the nature of these complex Bayesian models is provided by a theoretical investigation of the priors over functions that underlie them. Use of these models in practice is made possible using Markov chain Monte Carlo techniques. Both the theoretical and computational aspects of this work are of wider statistical interest, as they contribute to a better understanding of how Bayesian methods can be applied to complex problems.

  1. Presupposing only the basic knowledge of probability and statistics, this book should be of interest to many researchers in statistics, engineering, and artificial intelligence. Software for Unix systems that implements the methods described is freely available over the Internet.
Publish Date
Language
English
Pages
187

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Previews available in: English

Edition Availability
Cover of: Bayesian Learning for Neural Networks
Bayesian Learning for Neural Networks
2012, Springer London, Limited
in English
Cover of: Bayesian learning for neural networks
Bayesian learning for neural networks
1996, Springer
in English
Cover of: Bayesian learning for neural networks
Bayesian learning for neural networks
1995, University of Toronto, Dept. of Computer Science
in English

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Book Details


Edition Notes

Thesis (Ph.D.)--University of Toronto, 1995.

Published in
Toronto

The Physical Object

Pagination
187 leaves.
Number of pages
187

ID Numbers

Open Library
OL16685825M
ISBN 10
0612026760

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Download catalog record: RDF / JSON / OPDS | Wikipedia citation
December 15, 2009 Edited by WorkBot link works
September 25, 2008 Created by ImportBot Imported from University of Toronto MARC record