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Output-error state-space identification of vibrating structures using evolution strategies: a benchmark study
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  • Output-error state-space identification of vibrating structures using evolution strategies: a benchmark study
  • Output-error state-space identification of vibrating structures using evolution strategies: a benchmark study
저자명
Dertimanis. Vasilis K.
간행물명
Smart structures and systems
권/호정보
2014년|14권 1호|pp.17-37 (21 pages)
발행정보
테크노프레스
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

In this study, four widely accepted and used variants of Evolution Strategies (ES) are adapted and applied to the output-error state-space identification problem. The selection of ES is justified by prior strong indication of superior performance to similar problems, over alternatives like Genetic Algorithms (GA) or Evolutionary Programming (EP). The ES variants that are being tested are (i) the (1+1)-ES, (ii) the $({mu}/{ ho}+{lambda})-{sigma}$-SA-ES, (iii) the $({mu}_I,{lambda})-{sigma}$-SA-ES, and (iv) the (${mu}_w,{lambda}$)-CMA-ES. The study is based on a six-degree-of-freedom (DOF) structural model of a shear building that is characterized by light damping (up to 5%). The envisaged analysis is taking place through Monte Carlo experiments under two different excitation types (stationary / non-stationary) and the applied ES are assessed in terms of (i) accurate modal parameters extraction, (ii) statistical consistency, (iii) performance under noise-corrupted data, and (iv) performance under non-stationary data. The results of this suggest that ES are indeed competitive alternatives in the non-linear state-space estimation problem and deserve further attention.