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A resampling method for parallel particle filter architectures

机译:并行粒子滤波器体系结构的重采样方法

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Particle filters are able to represent multi-modal beliefs but require a large number of particles in order to do so. The particle filter consists of three sequential steps: the sampling, the importance factor, and the resampling step. Each step processes every particle in oder to acquire the final state estimation. A high number of particles leads to a high processing time, thus reducing the particle filters usefulness for real-time embedded systems. Through parallelization, the processing time can be significantly reduced. However, the resampling step is not easily parallelizable since it requires the importance factor of each particle. In this work, a resampling scheme is proposed which uses virtual particles to solve the parallelization problem of the resampling component. Besides evaluating its performance against the multinomial resampling scheme, it is also implemented on a Xilinx Zynq-7000 FPGA. (C) 2016 Elsevier B.V. All rights reserved.
机译:粒子过滤器能够表示多模态信念,但需要大量粒子才能这样做。粒子过滤器包括三个连续步骤:采样,重要性因子和重采样步骤。每个步骤处理每个粒子以获取最终状态估计。大量的粒子导致较长的处理时间,从而降低了粒子过滤器对实时嵌入式系统的实用性。通过并行化,可以显着减少处理时间。但是,重采样步骤不容易并行化,因为它需要每个粒子的重要性因子。在这项工作中,提出了一种使用虚拟粒子的重采样方案来解决重采样组件的并行化问题。除了根据多项式重采样方案评估其性能外,它还可以在Xilinx Zynq-7000 FPGA上实现。 (C)2016 Elsevier B.V.保留所有权利。

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