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Study on Multi-Target Tracking Based on Particle Filter Algorithm

机译:基于粒子滤波算法的多目标跟踪研究

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摘要

Particle filter is a probability estimation method based on Bayesian framework and it has unique advantage to describe the target tracking non-linear and non-Gaussian. In this study, firstly, analyses the particle degeneracy and sample impoverishment in particle filter multi-target tracking algorithm and secondly, it applies Markov Chain Monte Carlo (MCMC) method to improve re-sampling process and enhance performance of particle filter algorithm.
机译:粒子滤波是一种基于贝叶斯框架的概率估计方法,具有描述目标跟踪非线性和非高斯性的独特优势。本研究首先分析了粒子滤波多目标跟踪算法中的粒子退化和样本贫乏,其次,运用马尔可夫链蒙特卡罗方法改进了采样过程,提高了粒子滤波算法的性能。

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