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We present a new supervised learning procedure for systems composed of many separate networks, each of which learns to handle a subset of the complete set of training cases. The new procedure can be viewed either as a modular version of a multilayer supervised network, or as an associative version of competitive learning. It therefore provides a new link between these two apparently different approaches. We demonstrate that the learning procedure divides up a vowel discrimination task into appropriate subtasks, each of which can be solved by a very simple expert network.
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Robert A. Jacobs
Michael I. Jordan
Steven J. Nowlan
Neural Computation
Massachusetts Institute of Technology
University of Toronto
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Jacobs et al. (Fri,) studied this question.
www.synapsesocial.com/papers/69d758a6b4cef8fedc48f6bc — DOI: https://doi.org/10.1162/neco.1991.3.1.79
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