This book presents a systematic approach to parallel implementation of feedforward neural networks on an array of transputers. The emphasis is on backpropagation learning and training set parallelism. Using systematic analysis, a theoretical model has been developed for the parallel implementation. The model is used to find the optimal mapping to minimize the training time for large backpropagation neural networks. The model has been validated experimentally on several well known benchmark problems. Use of genetic algorithms for optimizing the performance of the parallel implementations is described. Guidelines for efficient parallel implementations are highlighted.
This work presents a systematic approach to parallel implementation of feedforward neural networks on an array of transputers. The emphasis is on back propagation learning and training-set parallelism.
Publisher
World Scientific Publishing Co Pte Ltd
Publication Date
Jul 1996
ISBN
9789810226541
Pages
220
Item Type
Book
Format
Hardcover
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