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An effective multivariate time series classification approach using echo state network and adaptive differential evolution algorithm

delete2016-01-01
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王林 封面图
王林 (Lin Wang)
Z
Zhigang Wang
S
Shan Liu *
DOI:10.1016/j.eswa.2015.08.055delete
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摘要

摘要

En 中文
The multivariate time series (MIS) classification is a very difficult process because of the complexity of the MIS data type. Among all the methods to resolve this problem, the attribute-value representation classification approaches are the most popular. Despite their proven effectiveness of these however, these approaches are time consuming, sensitive to noise, or prone to damage of inner data properties as well as capable of producing undesirable accuracy. In this paper, we propose a new approach (CADS) for MIS classification that utilizes recurrent neural network (RNN) and adaptive differential evolution (ADE) algorithm. The approach can effectively overcome specific shortcomings of the attribute-value representation approaches. The principle of this approach adheres to three steps. First, an RNN is used to project the training MIS samples into different state clouds (samples in the same class are projected into a state cloud). Second, classifiers from these state clouds are induced for different classes. Third, the final MIS classifiers are obtained using ADE for parameter optimization. This approach makes full use of the network state space of a given RNN to induce classifiers rather than to train the network. Experimental results performed on 18 data sets demonstrate the accuracy and robustness of the proposed approach for MIS classification. As a new and universal approach, CADS can be very effective and stable for handling a variety of complex classification problems. (C) 2015 Elsevier Ltd. All rights reserved.
Keyword:
Multivariate time series classification
Recurrent neural network
Adaptive differential evolution algorithm
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期刊

Expert Systems with Applications 封面图
Expert Systems with Applications
IF:
7.5
论文数:
2.9W
被引数:
10.2W

机构

X
xi'an jiaotong university
学者数:
9.3W
论文数: 6.7W
被引数: 75
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