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  • 标题:An Introduction of a CCA Weighting Matrix to a Closed-Loop Subspace Identification Method
  • 本地全文:下载
  • 作者:Kenji Ikeda ; Hideyuki Tanaka
  • 期刊名称:IFAC PapersOnLine
  • 印刷版ISSN:2405-8963
  • 出版年度:2021
  • 卷号:54
  • 期号:7
  • 页码:761-766
  • DOI:10.1016/j.ifacol.2021.08.453
  • 语种:English
  • 出版社:Elsevier
  • 摘要:AbstractThis paper introduces a CCA (canonical correlation analysis) weighting matrix to an estimation method of the innovations model previously proposed by the authors. A numerical simulation illustrates that the CCA weighting reduces the covariance of the estimate and that the proposed method gives similar or better performance compared to Closed-Loop MOESP and PBSID. Especially, the design parameter called “past horizon” in the proposed method can be set small compared to Closed-Loop MOESP and PBSID. It is also analyzed how the bias of the estimate is reduced.
  • 关键词:KeywordsSystem identificationSubspace methodsKalman filtersSemi-definite programming
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