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一种粒子滤波预处理方法
引用本文:刘运杰,金明录,崔承毅.一种粒子滤波预处理方法[J].系统仿真学报,2012,24(7):1470-1473.
作者姓名:刘运杰  金明录  崔承毅
作者单位:大连理工大学电子信息与电气工程学部,大连,116023
摘    要:粒子滤波(Particle Filter)是一种基于蒙特卡罗(Monte Carlo)的贝叶斯滤波方法,通常的SIR方法存在严重的粒子匮乏现象。用大权值粒子和小权值粒子的组合来取代小权值粒子,可以减小粒子权值方差,增加粒子多样性。仿真结果表明,在状态估计的初期,使得粒子迅速靠近高似然区域,精度得到了大幅度的提高。同时,算法的实时性也有很好的改善,适用于观测噪声和状态噪声较小的情况。

关 键 词:粒子滤波  预处理  权值方差  粒子多样性  实时性

Particle Filter Pre-processing Method
LIU Yun-jie,JIN Ming-lu,CUI Cheng-yi.Particle Filter Pre-processing Method[J].Journal of System Simulation,2012,24(7):1470-1473.
Authors:LIU Yun-jie  JIN Ming-lu  CUI Cheng-yi
Institution:(Faculty of Electronic Information and Electrical Engineering Dalian University of Technology,Dalian 116023,China)
Abstract:Particle Filter is a Monte Carlo based Bayesian method,and the problem of the SIR particle filter is particle degeneracy.The combination of two particles was used to replace the particle with less weight,which could reduce the variance of weights and improve the diversity of particles.Results of simulation shows that particles can be moved to the high likelihood area quickly,and the precision of estimation is improved greatly at the beginning of state estimation.And the real-time is also improved to a large extent,and the novel algorithm works well in the environments with low noise.
Keywords:particle filter  pre-processing  variance of weights  diversity of particles  real-time
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