基于高斯混合的CBMeMber多目标跟踪算法仿真

Linxi Wang, Xiaoxi Hu, Xun Han, Yin Kuang, Xinquan Yang
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引用次数: 0

摘要

多目标跟踪技术在许多领域具有重要的研究价值。基于随机有限集理论的算法可以在不关联数据的情况下获得较好的跟踪效果,受到了广泛的关注。本文在建立真实的多目标运动场景后,在线性高斯条件下对CBMeMBer滤波算法进行了仿真和实现,并与PHD、CPHD和MeMBer滤波算法进行了比较。仿真结果表明,CBMeMBer滤波算法是正确有效的。在相同的仿真条件下,其跟踪性能明显提高,在多目标跟踪领域具有良好的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of CBMeMber Multi-target Tracking Algorithm Based on Gauss Mixture
Multi-target tracking technologies have important research value in many fields. Algorithms based on random finite set theory can achieve a better tracking effect without data association, which have attracted wide attentions. In this paper, after establishing a real multi-target motion scenario, CBMeMBer filtering algorithm is simulated and implemented on the linear Gauss condition, and is compared with PHD, CPHD and MeMBer filtering algorithm. The simulation results show that CBMeMBer filtering algorithm is correct and effective. Under the same simulation conditions, its tracking performance is obviously improved, and it has good application prospects in multi-target tracking field.
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