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A constructive algorithm that converges for real-valued input patterns.

作者信息

Burgess N

机构信息

Department of Anatomy, University College, London, U.K.

出版信息

Int J Neural Syst. 1994 Mar;5(1):59-66. doi: 10.1142/s0129065794000074.

Abstract

A constructive algorithm is presented which combines the architecture of Cascade Correlation and the training of perceptron-like hidden units with the specific error-correcting roles of Upstart. Convergence to zero errors is proved for any consistent classification of real-valued pattern vectors. Addition of one extra element to each pattern allows hyper-spherical decision regions and enables convergence on real-valued inputs for existing constructive algorithms. Simulations demonstrate robust convergence and economical construction of hidden units in the benchmark "N-bit parity" and "twin spirals" problems.

摘要

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