DocumentCode :
1805390
Title :
Multi-sensor estimation fusion for linear equality constrained dynamic systems
Author :
Zhansheng Duan ; Li, X. Rong
Author_Institution :
Center for Inf. Eng. Sci. Res., Xi´an Jiaotong Univ., Xi´an, China
fYear :
2013
fDate :
9-12 July 2013
Firstpage :
93
Lastpage :
100
Abstract :
The state of many dynamic systems evolve subject to some linear equality constraints. Using different techniques, different state estimators for linear equality constrained dynamic systems have been developed in the literature, including the pseudo measurement method, the projection method, the null space method, and the direct elimination method. However, their extension to the multi-sensor case has not been addressed. In this paper, using the measurement augmentation technique, we first extend all the above four types of estimators to multi-sensor constrained centralized fusion problems. Then the properties of these centralized fusers are analyzed. For multi-sensor constrained distributed fusion, direct application of standard distributed fusion is involved due to the singularity of local estimation mean square error (MSE) matrices. We suggest to use nonstandard distributed fusion by fully considering the difference between constrained and unconstrained state estimation. For multi-sensor constrained distributed fusion, we propose to send in dimension reduced local state estimates which are directly available in both the null space method and the direct elimination method. In this way, the singularity issue of the MSE matrices can be circumvented with saved communication from local sensors to the fusion center. Numerical examples further illustrate the similarities and differences among different estimation fusers.
Keywords :
matrix algebra; mean square error methods; sensor fusion; state estimation; centralized fuser property analysis; constrained state estimation; dimension reduced local state estimation; direct elimination method; fusion center; linear equality constrained dynamic systems; local estimation MSE matrix singularity; local estimation mean square error matrix singularity; local sensors; measurement augmentation technique; multisensor constrained centralized fusion problems; multisensor constrained distributed fusion; multisensor estimation fusion; nonstandard distributed fusion; null space method; projection method; pseudomeasurement method; standard distributed fusion; state estimators; unconstrained state estimation; Noise; Noise measurement; Null space; Standards; State estimation; Vectors; Constrained system; centralized fusion; constrained estimation; distributed fusion; estimation fusion;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Fusion (FUSION), 2013 16th International Conference on
Conference_Location :
Istanbul
Print_ISBN :
978-605-86311-1-3
Type :
conf
Filename :
6641100
Link To Document :
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