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Decentralized Particle Filter With Arbitrary State Decomposition

机译:任意状态分解的分散式粒子滤波器

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摘要

In this paper, a new particle filter (PF) which we refer to as the decentralized PF (DPF) is proposed. By first decomposing the state into two parts, the DPF splits the filtering problem into two nested subproblems and then handles the two nested subproblems using PFs. The DPF has the advantage over the regular PF that the DPF can increase the level of parallelism of the PF. In particular, part of the resampling in the DPF bears a parallel structure and can thus be implemented in parallel. The parallel structure of the DPF is created by decomposing the state space, differing from the parallel structure of the distributed PFs which is created by dividing the sample space. This difference results in a couple of unique features of the DPF in contrast with the existing distributed PFs. Simulation results of two examples indicate that the DPF has a potential to achieve in a shorter execution time the same level of performance as the regular PF.
机译:在本文中,提出了一种新的粒子滤波器(PF),我们称之为分散PF(DPF)。通过首先将状态分解为两部分,DPF将过滤问题分为两个嵌套的子问题,然后使用PF处理两个嵌套的子问题。与常规PF相比,DPF的优势在于DPF可以提高PF的并行度。特别是,DPF中的部分重采样具有并行结构,因此可以并行实现。 DPF的并行结构是通过分解状态空间来创建的,与分布式PF的并行结构(通过划分样本空间来创建的)不同。与现有的分布式PF相比,这种差异导致DPF具有几个独特的功能。两个示例的仿真结果表明,DPF有可能在较短的执行时间内实现与常规PF相同的性能水平。

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