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Bidirectional Extreme Learning Machine for Regression Problem and Its Learning Effectiveness

delete2012-09-01
delete176
PRE
AI
杨益民 (Yimin Yang) *
王耀南 封面图
王耀南 (Yaonan Wang)
袁晓芳 封面图
袁晓芳 (Xiaofang Yuan)
DOI:10.1109/TNNLS.2012.2202289delete
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摘要

摘要

En 中文
It is clear that the learning effectiveness and learning speed of neural networks are in general far slower than required, which has been a major bottleneck for many applications. Recently, a simple and efficient learning method, referred to as extreme learning machine (ELM), was proposed by Huang et al., which has shown that, compared to some conventional methods, the training time of neural networks can be reduced by a thousand times. However, one of the open problems in ELM research is whether the number of hidden nodes can be further reduced without affecting learning effectiveness. This brief proposes a new learning algorithm, called bidirectional extreme learning machine (B-ELM), in which some hidden nodes are not randomly selected. In theory, this algorithm tends to reduce network output error to 0 at an extremely early learning stage. Furthermore, we find a relationship between the network output error and the network output weights in the proposed B-ELM. Simulation results demonstrate that the proposed method can be tens to hundreds of times faster than other incremental ELM algorithms.
Keyword:
Feedforward neural network
learning effectiveness
number of hidden nodes
universal approximation
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期刊

IEEE Transactions on Neural Networks and Learning Systems 封面图
IEEE Transactions on Neural Networks and Learning Systems
IF:
8.9
论文数:
7.5K
被引数:
7.2W

机构

H
hunan university
学者数:
4.5W
论文数: 3.3W
被引数: 70
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