NASA NTRS · 19920017388
Two papers on feed-forward networks
Abstract
Connectionist feed-forward networks, trained with back-propagation, can be used both for nonlinear regression and for (discrete one-of-C) classification, depending on the form of training. This report contains two papers on feed-forward networks. The papers can be read independently. They are intended for the theoretically-aware practitioner or algorithm-designer; however, they also contain a review and comparison of several learning theories so they provide a perspective for the theoretician. The first paper works through Bayesian methods to complement back-propagation in the training of feed-forward networks. The second paper addresses a problem raised by the first: how to efficiently calculate second derivatives on feed-forward networks.
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Buntine, Wray L., Weigend, Andreas S.. 1991-07-05. Two papers on feed-forward networks. https://ntrs.nasa.gov/citations/19920017388
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