Title of article :
Extensible Framework for Rao-Blackwellized Filtering
Author/Authors :
Li, Shidan Tsinghua University - Department of Electronic Engineering, China , Li, Xin Tsinghua University - Department of Electronic Engineering, China , Sun, Liguo Tsinghua University - Department of Electronic Engineering, China , Wang, Desheng Tsinghua University - Department of Electronic Engineering, China
From page :
324
To page :
328
Abstract :
The Rao-Blackwellized Particle Filter (RBPF) is widely used for high dimensional nonlinear systems, often with a linear Gaussian substructure. However, the RBPF is just a specific method in the class of Rao-Blackwellized Filtering (RBF). This paper analyzes the recursive structure of the RBF from a more general perspective. The research starts from a general system model and studies the interconnected relationships between the two subspaces during the iterations. The results illustrate the working mechanisms of the RBF with an extensible framework for easily building Rao-Blackwellized algorithms with common nonlinear filters. Several examples are given to illustrate how to build new filters using this framework.
Keywords :
Rao , Blackwell , nonlinear filters , high dimensional nonlinear systems , Monte Carlo method
Journal title :
Tsinghua Science and Technology
Journal title :
Tsinghua Science and Technology
Record number :
2535466
Link To Document :
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