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ESANN
1997

Extraction of crisp logical rules using constrained backpropagation networks

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Extraction of crisp logical rules using constrained backpropagation networks
Two recently developed methods for extraction of crisp logical rules from neural networks trained with backpropagation algorithm are compared. Both methods impose constraints on the structure of the network by adding regularization terms to the error function. Networks with minimal number of connections are created, leading to a small number of crisp logical rules. The two methods are compared on the Iris and mushroom classification problems, generating the simplest logical description of this data published so far.
Wlodzislaw Duch, Rafal Adamczak, Krzysztof Grabcze
Added 01 Nov 2010
Updated 01 Nov 2010
Type Conference
Year 1997
Where ESANN
Authors Wlodzislaw Duch, Rafal Adamczak, Krzysztof Grabczewski, Masumi Ishikawa, Hiroki Ueda
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