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DATA SELECTION FOR DETECTION OF KNOWN SIGNALS: THE RESTRICTED-LENGTH MATCHED FILTER

机译:检测已知信号的数据选择:受限长度匹配滤波器

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Data selection algorithms in detection search for a small subset of the available data that is sufficient for making an accurate decision. This paper considers data selection for detection of a known signal in colored Gaussian noise. In our model, the performance of the matched filter detector for a specific subset is parameterized by a quadratic form. Selection of the best subset leads to a combinatorial optimization problem using the quadratic form as the objective function. Simulations show that heuristic search algorithms often find good solutions for the selected subset. Additionally, if the noise has a banded covariance matrix, a dynamic programming algorithm finds the optimal solution for any subset size.
机译:检测中的数据选择算法,用于获得足以做出准确决定的可用数据的小子集。本文考虑了用于检测有色高斯噪声中已知信号的数据选择。在我们的模型中,特定子集的匹配滤波器检测器的性能由二次形式参数化。使用二次形式作为目标函数,选择最佳子集的选择导致组合优化问题。模拟表明,启发式搜索算法通常为所选子集找到良好的解决方案。另外,如果噪声具有带状协方差矩阵,则动态编程算法为任何子集大小找到最佳解决方案。

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