Distributed Fusion Receding Horizon Filtering in Linear Stochastic Systems

被引:0
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作者
IlYoung Song
DuYong Kim
YongHoon Kim
SukJae Lee
Vladimir Shin
机构
[1] Gwangju Institute of Science and Technology,School of Information and Mechatronics
[2] Agency for Defense Development (ADD),undefined
关键词
Aircraft Engine; Linear Stochastic System; Horizon Length; Fusion Estimate; Multisensor Data Fusion;
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摘要
This paper presents a distributed receding horizon filtering algorithm for multisensor continuous-time linear stochastic systems. Distributed fusion with a weighted sum structure is applied to local receding horizon Kalman filters having different horizon lengths. The fusion estimate of the state of a dynamic system represents the optimal linear fusion by weighting matrices under the minimum mean square error criterion. The key contribution of this paper lies in the derivation of the differential equations for determining the error cross-covariances between the local receding horizon Kalman filters. The subsequent application of the proposed distributed filter to a linear dynamic system within a multisensor environment demonstrates its effectiveness.
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