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首页> 外文期刊>IEEE Transactions on Signal Processing >Data-adaptive algorithms for signal detection in sub-Gaussian impulsive interference
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Data-adaptive algorithms for signal detection in sub-Gaussian impulsive interference

机译:次高斯脉冲干扰中信号检测的数据自适应算法

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We address the problem of coherent detection of a signal embedded in heavy-tailed noise modeled as a sub-Gaussian, alpha-stable process. We assume that the signal is a complex-valued vector of length L, known only within a multiplicative constant, while the dependence structure of the noise, i.e. the underlying matrix of the sub-Gaussian process, is not known. We implement a generalized likelihood ratio detector that employs robust estimates of the unknown noise underlying matrix and the unknown signal strength. The performance of the proposed adaptive detector is compared with that of an adaptive matched filter that uses Gaussian estimates of the noise-underlying matrix and the signal strength and is found to be clearly superior. The proposed new algorithms are theoretically analyzed and illustrated in a Monte-Carlo simulation.
机译:我们解决了以高斯,α稳定过程为模型对重尾噪声中嵌入的信号进行相干检测的问题。我们假设该信号是长度为L的复数值向量,仅在一个乘法常数内已知,而噪声的依存结构(即次高斯过程的基础矩阵)是未知的。我们实现了一个广义似然比检测器,该检测器采用了对矩阵下面的未知噪声和未知信号强度的可靠估计。所提出的自适应检测器的性能与使用匹配基础滤波器的高斯估计和信号强度的自适应匹配滤波器的性能进行了比较,发现明显更好。理论上分析了提出的新算法,并在蒙特卡罗仿真中进行了说明。

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