JOURNAL ARTICLE

Adaptive constrained unscented Kalman filtering for real-time nonlinear structural system identification

Andrea CalabreseSalvatore StranoMario Terzo

Year: 2017 Journal:   Structural Control and Health Monitoring Vol: 25 (2)Pages: e2084-e2084   Publisher: Wiley

Abstract

Summary The unscented Kalman filter (UKF) is often used for nonlinear system identification in civil engineering; nevertheless, the application of the UKF to highly nonlinear structures could not provide accurate results. In this paper, an improvement of the UKF algorithm has been adopted. This methodology can consider state constraints, and it can estimate the measurement noise covariance matrix. The results obtained adopting a modified UKF have been compared to the ones obtained using the UKF for parameter estimation of a single degree of freedom nonlinear hysteretic system. The second part of this work shows results of an experimental activity on a base-isolated prototype structure. Both numerical and experimental results underline that the adopted algorithm produces better state estimation and parameter identification than the UKF, being capable of taking into account parameter boundaries. The adopted algorithm is more robust than the standard UKF in the case of measuring noise variation.

Keywords:
Kalman filter Control theory (sociology) Unscented transform Nonlinear system Noise (video) Covariance Extended Kalman filter Identification (biology) Covariance matrix System identification Estimation theory Computer science Engineering Algorithm Invariant extended Kalman filter Mathematics Artificial intelligence Measure (data warehouse) Data mining Statistics

Metrics

54
Cited By
5.25
FWCI (Field Weighted Citation Impact)
39
Refs
0.95
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Structural Health Monitoring Techniques
Physical Sciences →  Engineering →  Civil and Structural Engineering
Hydraulic and Pneumatic Systems
Physical Sciences →  Engineering →  Mechanical Engineering
Control Systems and Identification
Physical Sciences →  Engineering →  Control and Systems Engineering

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