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Research on Target Tracking Algorithm based on Particle Filter and Mean-Shift

机译:基于粒子滤波器和平均偏移的目标跟踪算法研究

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Since Mean-Shift tracking algorithm always falls into local extreme value when the target was sheltered and the particle filter tracking algorithm has huge calculation and degeneracy phenomenon, a new target tracking algorithm based on Mean-Shift and Particle Filter combination is proposed in this paper. First, this paper introduces the basic theory of Mean-Shift and Particle Filter tracking algorithm, and then presents the new target tracking which the Mean-Shift iteration embeds Particle Filter algorithm. Experiment results show that the algorithm needs less computation, while the real-time tracking has been guaranteed, robustness has been improved and the tracking results have been greatly increased.
机译:由于当静止目标时,平均移位跟踪算法总是进入局部极值并且粒子滤波器跟踪算法具有巨大的计算和退化现象,本文提出了一种基于平均偏移和粒子过滤器组合的新的目标跟踪算法。首先,本文介绍了平均移位和粒子滤波器跟踪算法的基本理论,然后介绍了平均移位迭代嵌入粒子滤波器算法的新目标跟踪。实验结果表明,该算法需要较少的计算,而实时跟踪已得到保证,已经提高了鲁棒性,并且跟踪结果大大增加。

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