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多特征匹配 GM-PHD 滤波器在雷达多目标跟踪中的应用。

Multi-Feature Matching GM-PHD Filter for Radar Multi-Target Tracking.

机构信息

Laboratory of Array and Information Processing, Hohai University, Nanjing 210098, China.

出版信息

Sensors (Basel). 2022 Jul 17;22(14):5339. doi: 10.3390/s22145339.

Abstract

Multi-target tracking (MTT) is one of the most important functions of radar systems. Traditional multi-target tracking methods based on data association convert multi-target tracking problems into single-target tracking problems. When the number of targets is large, the amount of computation increases exponentially. The Gaussian mixture probability hypothesis density (GM-PHD) filtering based on a random finite set (RFS) provides an effective method to solve multi-target tracking problems without the requirement of explicit data association. However, it is difficult to track targets accurately in real-time with dense clutter and low detection probability. To solve this problem, this paper proposes a multi-feature matching GM-PHD (MFGM-PHD) filter for radar multi-target tracking. Using Doppler and amplitude information contained in radar echo to modify the weights of Gaussian components, the weight of the clutter can be greatly reduced and the target can be distinguished from clutter. Simulations show that the proposed MFGM-PHD filter can improve the accuracy of multi-target tracking as well as the real-time performance with high clutter density and low detection probability.

摘要

多目标跟踪(MTT)是雷达系统的最重要功能之一。传统的基于数据关联的多目标跟踪方法将多目标跟踪问题转化为单目标跟踪问题。当目标数量较大时,计算量呈指数级增加。基于随机有限集(RFS)的高斯混合概率假设密度(GM-PHD)滤波为解决多目标跟踪问题提供了一种有效的方法,而无需显式数据关联。然而,在密集杂波和低检测概率的情况下,很难实时准确地跟踪目标。为了解决这个问题,本文提出了一种用于雷达多目标跟踪的多特征匹配 GM-PHD(MFGM-PHD)滤波器。该滤波器利用雷达回波中包含的多普勒和幅度信息来修改高斯分量的权重,从而可以大大降低杂波的权重,并将目标与杂波区分开来。仿真结果表明,所提出的 MFGM-PHD 滤波器可以提高多目标跟踪的精度,同时在高杂波密度和低检测概率下具有良好的实时性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ceb/9323521/e5d18b4dcfec/sensors-22-05339-g001.jpg

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