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NASA NTRS · 19940016638

Robust neural classifier circuits using asynchronous design

Abstract

Aerospace neural circuits must be adaptive, offer a practical size-performance ratio, and be environmentally robust. Our approach to building such circuits combines asynchronous design with a new fuzzy/neural classifier model. Asynchronous circuits offer many design advantages for neural hardware and our hybrid fuzzy/neural model, using mainly min and max operators, promises a low circuit complexity. The general approach is described and a description of a use of rule-induction to further reduce circuit complexity is described.

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BibTeXRIS

Hurdle, John F., Conwell, Peter R., Brunvand, Erik L.. 1993-01-01. Robust neural classifier circuits using asynchronous design. https://ntrs.nasa.gov/citations/19940016638

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