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Robust Matched Filtering in src='/images/tex/19467.gif' alt='ell _{p}'> -Space

机译: src =“ / images / tex / 19467.gif” alt =“ ell _ {p}”> -空格中的健壮匹配过滤

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摘要

A common approach to time-delay estimation (TDE) and joint delay-Doppler estimation (JDDE) for target localization is matched filtering, which is equivalent to the cross correlation of the received and transmitted signals. The conventional correlation in Hilbert space is statistically optimal in white Gaussian noise. However, its performance significantly degrades in the presence of non-Gaussian noise or clutter. In this paper, two new concepts called -correlation and -ambiguity functions, which generalize the conventional matched filtering from Hilbert space to -space, are proposed. In addition, several important mathematical properties of the -correlation and -ambiguity functions are given and proved. Compared with conventional ambiguity function, the time-frequency concentration of the -ambiguity function is significantly enhanced, i.e., the delay-Doppler resolution is improved and the sidelobes are suppressed. Based on these two newly defined functions, a family of TDE and JDDE algorithms that are robust against impulsive noise or clutter are developed. Furthermore, the Cramér–Rao bounds of TDE and JDDE for non-Gaussian noise with arbitrary probability distribution are derived. Simulation results under several impulsive noise models demonstrate that the performance in terms of robustness, resolution, and estimation accuracy is substantially improved when compared with the conventional matched filtering and fractional lower-order moment based methods.
机译:匹配滤波是用于目标定位的时延估计(TDE)和联合延迟多普勒估计(JDDE)的常见方法,它等效于接收和发送信号的互相关。希尔伯特空间中的常规相关性在白高斯噪声方面在统计上是最佳的。但是,在存在非高斯噪声或杂波的情况下,其性能会大大降低。在本文中,提出了两个新概念--correlation和-ambiguity函数,它们概括了从希尔伯特空间到-space的常规匹配滤波。此外,给出并证明了-correlation和-ambiguity函数的几个重要的数学性质。与传统的模糊函数相比,模糊函数的时频集中度得到了显着增强,即,延迟多普勒分辨率得到了改善,旁瓣得到了抑制。基于这两个新定义的功能,开发了一系列强大的TDE和JDDE算法,可抵御脉冲噪声或杂波。此外,推导了具有任意概率分布的非高斯噪声的TDE和JDDE的Cramér-Rao界。在几种脉冲噪声模型下的仿真结果表明,与常规匹配滤波和分数阶低阶矩方法相比,鲁棒性,分辨率和估计精度方面的性能得到了显着改善。

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