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     Research Journal of Applied Sciences, Engineering and Technology


Covariance Intersection Fusion Kalman Estimators for Multi-Sensor System with Colored Measurement Noises

Wen-Juan Qi, Peng Zhang and Zi-Li Deng
Institute of Electronic Engineering, Heilongjiang University, Harbin 150080, China
Research Journal of Applied Sciences, Engineering and Technology  2013  10:1872-1878
http://dx.doi.org/10.19026/rjaset.6.3918  |  © The Author(s) 2013
Received: November 20, 2012  |  Accepted: January 11, 2013  |  Published: July 20, 2013

Abstract

For multi-sensor system with colored measurement noises, using the observation transformation, the system can be converted into an equivalent system with correlated measurement noises. Based on this method, using the classical Kalman filtering, this study proposed a Covariance Intersection (CI) fusion Kalman estimator, which can handle the fused filtering, prediction and smoothing problems. The advantage of the proposed method is that it can avoid the computation of the cross-covariances among the local filtering errors and can reduce the computational burden significantly, as well as the CI fusion algorithm can be used in the uncertain system with unknown cross-covariances. Based on classical Kalman filtering theory, the centralized fusion and three weighted fusion (weighted by matrices, scalars and diagonal) estimators are also presented respectively. Their accuracy comparisons are given. The geometric interpretations based on covariance ellipses are also given. The experiment results show that the accuracy of the CI fuser is higher than that of the each local smoothers and is lower that that of the centralized fusion Kalman smoother or the optimal fuser weighted by matrix. The MSE curves show that the accuracy of the CI fuser is close to the optimal fuser weighted by matrix in most instances, which means that our proposed method has higher accuracy and good performance.

Keywords:

Covariance intersection fusion, colored measurement noises, the centralized fusion, weighted fusion,


References


Competing interests

The authors have no competing interests.

Open Access Policy

This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.

Copyright

The authors have no competing interests.

ISSN (Online):  2040-7467
ISSN (Print):   2040-7459
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