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作者:

Liu, Lijun (Liu, Lijun.) | Shao, Hongmei (Shao, Hongmei.) | Nan, Dong (Nan, Dong.)

收录:

EI Scopus SCIE

摘要:

A continuous recurrent neural network model is presented for computing the largest and smallest generalized eigenvalue of a symmetric positive pair (A,B). Convergence properties to the extremum eigenvalues based upon Liapunov functional with the help of the generalized eigen-decomposition theorem is obtained. Compared with other existing models, this model is also suitable for computing the smallest generalized eigenvalue simply by replacing A by -A as well as maintaining invariant norm property. Numerical simulation further shows the effectiveness of the proposed model. (C) 2008 Elsevier B.V. All rights reserved.

关键词:

Generalized eigenvalue Real symmetric matrix Convergence Recurrent neural network

作者机构:

  • [ 1 ] [Liu, Lijun]Dalian Nationalities Univ, Dept Math, Dalian 116605, Peoples R China
  • [ 2 ] [Liu, Lijun]Dalian Univ Technol, Sch Elect & Informat Engn, Dalian 116624, Peoples R China
  • [ 3 ] [Shao, Hongmei]China Univ Petr, Dept Math, Dongying 266555, Peoples R China
  • [ 4 ] [Nan, Dong]Beijing Univ Technol, Dept Math & Phys, Beijing 100022, Peoples R China

通讯作者信息:

  • [Liu, Lijun]Dalian Nationalities Univ, Dept Math, Liaohe W Rd 18, Dalian 116605, Peoples R China

电子邮件地址:

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来源 :

NEUROCOMPUTING

ISSN: 0925-2312

年份: 2008

期: 16-18

卷: 71

页码: 3589-3594

6 . 0 0 0

JCR@2022

ESI学科: COMPUTER SCIENCE;

JCR分区:3

被引次数:

WoS核心集被引频次: 13

SCOPUS被引频次: 18

ESI高被引论文在榜: 0 展开所有

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中文被引频次:

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