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基于无迹粒子PHD滤波的序贯融合算法
引用本文:孟凡彬,郝燕玲,张崇猛,周卫东. 基于无迹粒子PHD滤波的序贯融合算法[J]. 系统工程与电子技术, 2011, 33(1): 30-0034. DOI: 10.3969/j.issn.1001506X.2011.01.07
作者姓名:孟凡彬  郝燕玲  张崇猛  周卫东
作者单位:1. 哈尔滨工程大学自动化学院, 黑龙江 哈尔滨 150001;;2. 天津航海仪器研究所, 天津 300131
摘    要:针对在杂波、漏检和非线性情况下,粒子概率假设密度滤波(particle probability hypothesis density filter, P-PHDF)算法估计精度不高、滤波发散及粒子退化等问题,提出了一种基于无迹粒子概率假设密度滤波(unscented particle PHDF, UP-PHDF)的序贯融合算法。利用无迹粒子滤波(unscented particle filter, UPF)实现PHDF,由UKF算法得到更好更优的重要性密度函数并从中采样,使粒子的分布更接近多目标概率假设密度分布;另外,为进一步提高滤波算法的性能,实现基于雷达和红外传感器的UP-PHDF序贯融合算法,通过两传感器交替滤波保证目标状态的可观测性。在复杂环境下,仿真结果表明该算法的估计精度和稳定性明显优于单传感器P-PHDF算法。

关 键 词:随机有限集  多目标跟踪  无迹粒子滤波  概率假设密度滤波  序贯融合

Sequential fusion algorithm based on unscented particle probability hypothesis density filter
MENG Fan-bin,HAO Yan-ling,ZHANG Chong-meng,ZHOU Wei-dong. Sequential fusion algorithm based on unscented particle probability hypothesis density filter[J]. System Engineering and Electronics, 2011, 33(1): 30-0034. DOI: 10.3969/j.issn.1001506X.2011.01.07
Authors:MENG Fan-bin  HAO Yan-ling  ZHANG Chong-meng  ZHOU Wei-dong
Affiliation:1.College of Automation, Harbin Engineering University, Harbin 150001, China; ;2.Tianjin Institute of Navigation Instrument, Tianjin 300131, China
Abstract:In the case of clutter,missed detections and no-linear,the single sensor particle probability hypothesis density filter(P-PHDF) algorithm will result in many problems,such as low accurate,filter divergence and particle degradation.To overcome these problems,an unscented PHD filter(UP-PHDF) for multi-sensor multi-target tracking based on sequential fusion is proposed.Firstly,the unscented particle filter(UPF) is employed to fulfill PHDF,and the unscented Kalman filter(UKF) method is applied to generate and s...
Keywords:random finite set (RFS)  multi-target tracking  unscented particle filter (UPF)  probability hypothesis density filter (PHDF)  sequential fusion
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