JOURNAL ARTICLE

A New Adaptive Square-Root Unscented Kalman Filter for Nonlinear Systems

Yong ZhouYu Feng ZhangJu Zhong Zhang

Year: 2013 Journal:   Applied Mechanics and Materials Vol: 300-301 Pages: 623-626   Publisher: Trans Tech Publications

Abstract

This paper describes a new adaptive filtering approach for nonlinear systems with additive noise. Based on Square-Root Unscented Kalman Filter (SRUKF), the traditional Maybeck’s estimator is modified and extended to the nonlinear systems, the estimation of square root of the process noise covariance matrix Q or measurement noise covariance matrix R is obtained straightforwardly. Then the positive semi-definiteness of Q or R is guaranteed, some shortcomings of traditional Maybeck’s algorithm are overcome, so the stability and accuracy of the filter is improved greatly.

Keywords:
Kalman filter Control theory (sociology) Nonlinear system Noise (video) Extended Kalman filter Estimator Covariance matrix Unscented transform Square root Mathematics Covariance intersection Covariance Filter (signal processing) Positive definiteness Invariant extended Kalman filter Ensemble Kalman filter Computer science Algorithm Positive-definite matrix Artificial intelligence Statistics Physics Eigenvalues and eigenvectors

Metrics

8
Cited By
1.41
FWCI (Field Weighted Citation Impact)
6
Refs
0.87
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Target Tracking and Data Fusion in Sensor Networks
Physical Sciences →  Computer Science →  Artificial Intelligence
Inertial Sensor and Navigation
Physical Sciences →  Engineering →  Aerospace Engineering
Advanced Computational Techniques and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence

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