The Rao-Blackwellized Particle Filter: A Filter Bank Implementation

被引:0
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作者
Gustaf Hendeby
Rickard Karlsson
Fredrik Gustafsson (EURASIPMember)
机构
[1] German Research Center for Artificial Intelligence,Department of Augmented Vision
[2] Swedish Defence Research Agency (FOI),Competence Unit Informatics, Division of Information Systems
[3] Linköping University,Department of Electrical Engineering
关键词
Kalman Filter; Particle Filter; Filter Bank; Code Reuse; Hide Markov Process;
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摘要
For computational efficiency, it is important to utilize model structure in particle filtering. One of the most important cases occurs when there exists a linear Gaussian substructure, which can be efficiently handled by Kalman filters. This is the standard formulation of the Rao-Blackwellized particle filter (RBPF). This contribution suggests an alternative formulation of this well-known result that facilitates reuse of standard filtering components and which is also suitable for object-oriented programming. Our RBPF formulation can be seen as a Kalman filter bank with stochastic branching and pruning.
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