DocumentCode :
1842435
Title :
A learning algorithm for multilayer perceptron as classifier
Author :
Zhang, Zhen ; Shao, Weimin ; Zhang, Hong
Author_Institution :
Med. Univ. of South Carolina, Charleston, SC, USA
Volume :
3
fYear :
1999
fDate :
1999
Firstpage :
1681
Abstract :
Multilayer perceptron can be trained with empirical data to estimate general real-valued functions or to be used as a pattern classifier to estimate indicator functions. The typical backpropagation learning algorithm and its variations do not distinguish the training of an MLP as a pattern classifier from that of a general function estimator. In this paper, we present a learning algorithm based on an optimization layer by layer (OLL) procedure. Its main difference from previously reported OLL-type learning algorithms is that the weights between the last hidden layer and the output layer are determined through optimization of a piecewise linear objective function subject to constraints designed specifically for training an MLP to be a pattern classifier. The performance of the proposed learning algorithm is compared with that of the backpropagation algorithm, the modified Newton´s method and the improved descending epsilon algorithm over multiple training sessions using both simulated and real data classification problems
Keywords :
learning (artificial intelligence); multilayer perceptrons; optimisation; pattern classification; backpropagation; layer by layer learning; learning algorithm; multilayer perceptron; optimization; pattern classifier; piecewise linear objective function; Algorithm design and analysis; Backpropagation algorithms; Constraint optimization; Design optimization; Error correction; Multilayer perceptrons; Pattern classification; Piecewise linear techniques; Risk management; Training data;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 1999. IJCNN '99. International Joint Conference on
Conference_Location :
Washington, DC
ISSN :
1098-7576
Print_ISBN :
0-7803-5529-6
Type :
conf
DOI :
10.1109/IJCNN.1999.832627
Filename :
832627
Link To Document :
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