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改进粒子滤波算法的比较
引用本文:张淼,胡建旺,周云锋,童俊.改进粒子滤波算法的比较[J].电光与控制,2009,16(2).
作者姓名:张淼  胡建旺  周云锋  童俊
作者单位:军械工程学院,石家庄,050003
摘    要:重要性密度函数的选择对粒子滤波至关重要,围绕重要性密度函数的选择,已提出许多改进粒子滤波算法,典型的有扩展卡尔曼粒子滤波(EPF),不敏卡尔曼粒子滤波(UPF)、辅助粒子滤波(APF)及正则化粒子滤波(RPF).详细讨论了4种改进粒子滤波算法的基本思想、性能特.占及主要步骤.通过对一典型标量非线性系统的滤波实验,对4种改进算法的性能进行了仿真比较,实验结果表明,4种改进算法都从不同程度上改善了粒子滤波器的性能,其中,UPF的性能最优.最后,分析了各算法的改进原因.

关 键 词:粒子滤波  重要性密度函数  滤波算法

Comparison of Improved Particle Filtering Algorithms
ZHANG Miao,HU Jianwang,ZHOU Yunfeng,TONG Jun.Comparison of Improved Particle Filtering Algorithms[J].Electronics Optics & Control,2009,16(2).
Authors:ZHANG Miao  HU Jianwang  ZHOU Yunfeng  TONG Jun
Affiliation:Ordnance Engineering College;Shijiazhuang 050003;China
Abstract:The choice of importance density function is very important for the particle filtering.Concerning the choice of importance density function,many improved particle filtering algorithms have been proposed,such as: Extended Particle Filter(EPF),Unscented Particle Filter(UPF),Auxiliary Particle Filter(APF) and Regularized Particle Filter(RPF).The basic thought,characteristics of performance and main steps of the four improved algorithms are discussed in detail.Through a filter experimentation on a typical scala...
Keywords:UPF  EPF
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