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Neural networks and chip design
Authors:I Morgenstern
Institution:(1) Institut für Theoretische Physik, Ruprecht Karls Universität, Philosophenweg 19, D-6900 Heidelberg, Germany;(2) Institute for Theoretical Physics, University of California, Santa Barbara, California, USA
Abstract:I present an abstraction of the Hopfield-model for neural networks which is suitable for physical chip design using commerically available two-dimensional gate arrays. It can be shown that ±1-bonds combined with a dilution of about 80–90% of the original Hopfield-connections still lead to a comparable performance of the network. Furthermore the learning capability of the chips is discussed. Future extensions concerning programmable designs are outlined. The impact on aspects of brain research is discussed.
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