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A New Approach Based on Particle Filter for Target Tracking with Glint Noise

机译:一种基于闪光噪声的粒子滤波器的一种新方法

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In radar target tracking application, the observation noise is usually non-Gaussian, which is also referred to as glint noise. The performances of conventional trackers degrade severely in the presence of glint noise. An improved particle filter, Markov chain Monte Carlo iterated extended Kalman particle filter (MCMC-IEKPF), is applied to this problem. The tracking performance of the filter is evaluated and compared to the particle filter (PF) and the Markov chain Monte Carlo particle filter (MCMC-PF) via simulations. It is shown that the MCMC-IEKPF has better tracking performance.
机译:在雷达目标跟踪应用中,观察噪声通常是非高斯,其也被称为闪烁噪声。传统跟踪器的性能在闪烁的噪声存在下严重降低。改进的粒子过滤器,马尔可夫链蒙特卡罗迭代扩展卡尔曼粒子滤波器(MCMC-IEKPF)应用于此问题。通过模拟评估滤波器的跟踪性能并与粒子过滤器(PF)和Markov链蒙特卡罗粒子过滤器(MCMC-PF)进行比较。结果表明,MCMC-IEKPF具有更好的跟踪性能。

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