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Parametrically Optimal, Robust and Tree-Search Detection of Sparse Signals

机译:稀疏信号的参数最优,鲁棒和树搜索检测

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We consider sparse signals embedded in additive white noise. We study parametrically optimal as well as tree-search sub-optimal signal detection policies. As a special case, we consider a constant signal and Gaussian noise, with and without data outliers present. In the presence of outliers, we study outlier resistant robust detection techniques. We compare the studied policies in terms of error performance, complexity and resistance to outliers.
机译:我们考虑将稀疏信号嵌入附加白噪声中。我们研究参数最优以及树搜索次优信号检测策略。作为一种特殊情况,我们考虑有和没有数据异常值的恒定信号和高斯噪声。在存在异常值的情况下,我们研究了抗异常值的鲁棒检测技术。我们从错误性能,复杂性和对异常值的抵抗力方面比较研究的策略。

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