An adaptive particle filter based on the mixing probability

Yanbo Yang, Jie Zou, Feng Yang, Quan Pan

科研成果: 书/报告/会议事项章节会议稿件同行评审

2 引用 (Scopus)

摘要

In the stochastic system whose state is described by the multiple model particle filter, the true dynamic system motion cannot be reflected precisely by the predicted measurement from each model in time because of random sampling. It causes the probability of each model inaccuracy and falls down the performance of estimation. In the interacting multiple model particle filter (IMMPF) algorithm, the dominant model should be paid more attention in order to close the posterior. So it should have much more sampling particles. Meanwhile, it is not necessary to utilize too many particles in other models which perform weak. Considered the above problem, an improved method for the IMMPF with an adaptive particle number strategy is proposed. The sampling number in each sub-filter of the IMMPF algorithm is adaptively changed, according to the value of the mixing probability. When the mixing probability exceeds the designed threshold, which is about 5∼8 times of the initial mode transition probability, an appropriate strategy is designed by making a decision of the dominant model in the mode set. Then, the sampling number is increased in the dominant model and decreased in non-dominant models respectively. The simulation result shows that this method has a prior performance than the general IMMPF with a fixed particle number and a similar computational cost.

源语言英语
主期刊名2012 5th International Congress on Image and Signal Processing, CISP 2012
1480-1484
页数5
DOI
出版状态已出版 - 2012
活动2012 5th International Congress on Image and Signal Processing, CISP 2012 - Chongqing, 中国
期限: 16 10月 201218 10月 2012

出版系列

姓名2012 5th International Congress on Image and Signal Processing, CISP 2012

会议

会议2012 5th International Congress on Image and Signal Processing, CISP 2012
国家/地区中国
Chongqing
时期16/10/1218/10/12

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