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作者:

Chai, Wei (Chai, Wei.) | Ji, Hao-Nan (Ji, Hao-Nan.)

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摘要:

This paper proposes a novel set membership parameter estimation method for nonlinear systems. According to the theory of geometry and topology, the boundary of the feasible parameter set (FPS) is homeomorphic to an n-1-sphere (n is the number of parameters). From the viewpoint of manifold learning, the proposed method constructs a mapping which can approximate the homeomorphism between the FPS boundary and the n-1-sphere. Once this mapping is established, it can be used to map the n-1-sphere into an approximation of the FPS boundary. The following technologies are used to build the mapping. First, a data set consisting of vectors uniformly sampled from the FPS boundary is mapped into a data set contained by the n-1-sphere. This is achieved by Isomap followed by the data normalization. Then, a non-parametric method based on the two data sets is used to build a mapping which approximates the homeomorphism between the FPS boundary and the n-1-sphere. The simulation results show that the proposed method exhibits superior accuracy compared with the support vector machine method. © 2018, Editorial Board of Journal of the University of Electronic Science and Technology of China. All right reserved.

关键词:

Parameter estimation Nonlinear analysis Learning systems Support vector machines Mapping Nonlinear systems Spheres

作者机构:

  • [ 1 ] [Chai, Wei]Faculty of Information Technology, Beijing University of Technology, Chaoyang, Beijing; 100124, China
  • [ 2 ] [Chai, Wei]Beijing Key Laboratory of Computational Intelligence and Intelligent Systems, Chaoyang, Beijing; 100124, China
  • [ 3 ] [Ji, Hao-Nan]Faculty of Information Technology, Beijing University of Technology, Chaoyang, Beijing; 100124, China
  • [ 4 ] [Ji, Hao-Nan]Beijing Key Laboratory of Computational Intelligence and Intelligent Systems, Chaoyang, Beijing; 100124, China

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来源 :

Journal of the University of Electronic Science and Technology of China

ISSN: 1001-0548

年份: 2018

期: 2

卷: 47

页码: 203-208

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SCOPUS被引频次: 2

ESI高被引论文在榜: 0 展开所有

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