首页> 外文会议>European Signal Processing Conference(EUSIPCO 2005); 20050904-08; Antalya(TK) >A TWO PARALLEL EXTENDED KALMAN FILTERING ALGORITHM FOR THE ESTIMATION OF CHIRP SIGNALS IN NON-GAUSSIAN NOISE
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A TWO PARALLEL EXTENDED KALMAN FILTERING ALGORITHM FOR THE ESTIMATION OF CHIRP SIGNALS IN NON-GAUSSIAN NOISE

机译:非高斯噪声中Chirp信号估计的两个并行扩展卡尔曼滤波算法

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摘要

In this paper, we address the problem of the estimation of chirp signals in "ε-contaminated" impulsive noise using Kalman filtering technique. We consider an estimation method based on the exact non linear state space representation of the chirp signal. The observation noise's probability density function is assumed to be a sum of two-component Gaussians weighted by the probability of appearance of the impulsive and gaussian noises in the observations. We propose to use two extended Kalman filters (PEKF) operating in parallel as an alternative to the usual methods which generally use either clipping or freezing based algorithms. Simulation results show that the PEKF compared to the robust extended Kalman filter (REKF) based on Huber's function is less sensitive to impulsive noise and gives better estimates of the chirp parameters.
机译:在本文中,我们解决了使用卡尔曼滤波技术估算“ε污染”脉冲噪声中线性调频信号的问题。我们考虑一种基于线性调频信号的精确非线性状态空间表示的估计方法。观测噪声的概率密度函数假定为两分量高斯的总和,该分量由观测中脉冲噪声和高斯噪声出现的概率加权。我们建议使用两个并行运行的扩展卡尔曼滤波器(PEKF),作为通常使用基于裁剪或冻结算法的常用方法的替代方法。仿真结果表明,与基于Huber函数的鲁棒扩展卡尔曼滤波器(REKF)相比,PEKF对脉冲噪声更不敏感,并且可以更好地估计线性调频脉冲参数。

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