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Third-Order Volterra MVDR Beamforming for Non-Gaussian and Potentially Non-Circular Interference Cancellation

机译:用于非高斯和潜在非圆形干扰消除的三阶Volterra MVDR波束成形

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摘要

Linear beamformers are optimal, in a mean square (MS) sense, when the signal of interest (SOI) and observations are jointly Gaussian and circular. Otherwise, linear beamformers become suboptimal. When the SOI and observations are zero-mean, jointly Gaussian and noncircular, optimal beamformers become widely linear (WL). They become nonlinear with a structure depending on the unknown joint probability distribution of the SOI and observations when the latter are jointly nonGaussian, assumption which is very common in radiocommunications. In this context, the paper aims at introducing, for small-scale systems, third-order Volterra minimum variance distortionless response (MVDR) beamformers, for the reception of an SOI, whose waveform is unknown but whose steering vector is known, corrupted by nonGaussian and potentially noncircular interference, omnipresent in practical situations. Properties, performance, complexity, and adaptive implementation of these beamformers in the presence of nonGaussian and potentially noncircular interference are analyzed in this paper. These new beamformers are shown to always improve, in the steady state, the performance of Capon beamformer for nonGaussian/circular interference, whereas some of them improve the performance of the WL MVDR beamformer for nonGaussianoncircular interference. These new beamformers open new perspectives for spectrum monitoring of nonGaussian signals and for radiocommunication networks using such signals.
机译:当感兴趣的信号(SOI)和观测值共同为高斯和圆形时,线性均化器在均方(MS)意义上是最佳的。否则,线性波束形成器将变得次优。当SOI和观测值为零均值(高斯和非圆形)时,最佳波束形成器将变为宽线性(WL)。它们成为非线性结构,其结构取决于SOI的未知联合概率分布以及当观测值联合为非高斯时的观测值,这在无线电通信中非常普遍。在这种情况下,本文旨在为小型系统引入三阶Volterra最小方差无失真响应(MVDR)波束形成器,以接收SOI,其波形未知,但其转向矢量已知,并且受到非高斯破坏。以及潜在的非圆形干扰,在实际情况中无处不在。本文分析了在非高斯和潜在的非圆形干扰情况下这些波束形成器的特性,性能,复杂性和自适应实现。这些新的波束形成器在稳定状态下始终可以提高Capon波束形成器在非高斯/圆形干扰方面的性能,而其中一些改进了WL MVDR波束形成器在非高斯/非圆形干扰方面的性能。这些新的波束形成器为非高斯信号的频谱监测以及使用此类信号的无线电通信网络开辟了新的前景。

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