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Non-Gaussian noise models in signal processing for telecommunications: new methods an results for class A and class B noise models

机译:电信信号处理中的非高斯噪声模型:新方法得出A类和B类噪声模型

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The subject here is generalized (i.e., non-Gaussian) noise models, and specifically their first-order probability density functions (PDFs). Attention is focused primarily on the author's canonical statistical-physical Class A and Class B models. In particular, Class A noise describes the type of electromagnetic interference (EMI) often encountered in telecommunication applications, where this ambient noise is largely due to other, "intelligent" telecommunication operations. On the other hand, ambient Class B noise usually represents man-made or natural "nonintelligent"-i.e., nonmessage-bearing noise-and is highly impulsive. Class A noise is not an /spl alpha/-stable process, nor is it reducible to such, except in the limiting Gaussian cases of high-density noise (by the central limit theorem). Class B noise is also asymptotically normal (before model approximation). Under rather broad conditions, principally governed by the source propagation and distribution scenarios, the PDF of Class B noise alone (no Gaussian component) can usually be approximated by (1) a symmetric Gaussian /spl alpha/-stable (S/spl alpha/S) model in the case of narrowband reception, or when the PDF /spl omega//sub 1/(/spl alpha/) of the amplitude is symmetric; and (2) a nonsymmetric /spl alpha/-stable (NS/spl alpha/S) model (no Gaussian component) can be constructed in broadband regimes. New results here include: (i) counting functional methods for constructing the general qth-order characteristic functions (CFs) of Class A and Class B noise, from which (all) moments and (in principle), the PDFs follow; (ii) the first-order CFs, PDFs, and cumulative probabilities (APDs) of nonsymmetric broadband Class B noise, extended to include additive Gauss noise (AGN); (iii) proof of the existence of all moments in the basic Class A and Class B models; (iv) the key physical role of AGN and the fact that AGN removes /spl alpha/-stability; (v) the explicit roles of the propagation and distribution scenarios; and (vi) extension to noise fields. Although telecommunication applications are emphasized, Class A and Class B noise models apply selectively, but equally well, to other physical regimes, e.g., underwater acoustics and EM (radar, optics, etc.). Supportive empirical data are included.
机译:这里的主题是广义(即非高斯)噪声模型,尤其是其一阶概率密度函数(PDF)。注意主要集中在作者的规范统计物理A类和B类模型上。特别是,A类噪声描述了在电信应用中经常遇到的电磁干扰(EMI)的类型,其中这种环境噪声在很大程度上是由于其他“智能”电信运营所致。另一方面,环境B类噪声通常代表人为或自然的“非智能”噪声,即无消息的噪声,并且是高度冲动的。 A类噪声不是一个/ spl alpha / -stable过程,也不是可简化的过程,除非在高密度噪声的有限高斯情况下(通过中心极限定理)。 B类噪声也是渐近正常的(在模型逼近之前)。在相当广泛的条件下(主要由源传播和分布情况决定),通常可以通过以下公式来近似估算单独的B类噪声(无高斯分量)的PDF:(1)对称高斯/ spl alpha / -stable(S / spl alpha / S)在窄带接收的情况下,或当幅度的PDF / spl omega // sub 1 /(/ spl alpha /)对称时; (2)可以在宽带体制中构建非对称/ spl alpha /-稳定(NS / spl alpha / S)模型(无高斯分量)。这里的新结果包括:(i)计算构造A类和B类噪声的一般q阶特征函数(CF)的函数方法,从中得出(所有)矩和(原则上)PDF。 (ii)非对称宽带B类噪声的一阶CF,PDF和累积概率(APD),扩展为包括加性高斯噪声(AGN); (iii)证明基本的A类和B类模型中所有力矩的存在; (iv)AGN的关键物理作用以及AGN消除了/ spl alpha /-稳定性的事实; (v)传播和分发方案的明确作用; (vi)扩展到噪声场。尽管强调了电信应用,但是A类和B类噪声模型有选择地但同样好地适用于其他物理状态,例如水下声学和EM(雷达,光学等)。支持性经验数据也包括在内。

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