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Sensitivity-Based Adaptive Learning Rules for Binary Feedforward Neural Networks

delete2012-03-01
delete17
PRE
AI
S
Shuiming Zhong *
X
Xiaoqin Zeng
吴
吴胜利 (Shengli Wu)
L
Lixin Han
DOI:10.1109/TNNLS.2011.2177860delete
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Abstract

Abstract

En 中文
This paper proposes a set of adaptive learning rules for binary feedforward neural networks (BFNNs) by means of the sensitivity measure that is established to investigate the effect of a BFNN's weight variation on its output. The rules are based on three basic adaptive learning principles: the benefit principle, the minimal disturbance principle, and the burden-sharing principle. In order to follow the benefit principle and the minimal disturbance principle, a neuron selection rule and a weight adaptation rule are developed. Besides, a learning control rule is developed to follow the burden-sharing principle. The advantage of the rules is that they can effectively guide the BFNN's learning to conduct constructive adaptations and avoid destructive ones. With these rules, a sensitivity-based adaptive learning (SBALR) algorithm for BFNNs is presented. Experimental results on a number of benchmark data demonstrate that the SBALR algorithm has better learning performance than the Madaline rule II and backpropagation algorithms.
Keywords:
Adaptive learning algorithm
binary feedforward neural networks
learning rule
sensitivity
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Journal

IEEE Transactions on Neural Networks and Learning Systems cover
IEEE Transactions on Neural Networks and Learning Systems
IF:
8.9
Papers:
7.6K
Citations:
7.2W

Organization

U
Ulster University
Scholars:
5.7K
Papers: 5.9K
Citations: 25
H
Hohai University
Scholars:
2.3W
Papers: 1.8W
Citations: 2.1W
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