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A Subspace-Aware Kelly's Detector using Reduced Secondary Data with Fast and Slow Time Preprocessing

机译:具有子空间感知能力的凯利探测器,使用减少的辅助数据以及快速和慢速的预处理功能

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In homogeneous clutter environments, as the number of secondary cells used increases and eventually goes to infinity, the performance of the adaptive detectors increase and eventually goes to the performance of the max-SINR filter. However, this is not the case when the clutter is heterogeneous. In such environments, the adaptive detectors need to use small numbers of secondary cells. In such cases, reducing the dimension of the space in which the estimation occurs increases the detection performance. It is shown that reducing the dimension with the generalized eigenspace of signal and clutter subspaces instead of the conventional DFT subspace results in a remarkable increase in the detection performance and significantly reduces the number of secondary cells needed in the detection process. Combining this operation with a proper fast-time preprocessing method, a fast and robust detector is proposed. Simulation results are provided for comparing the detector's performance with other conventional radar detectors.
机译:在同质杂乱的环境中,随着使用的辅助小区数量增加并最终达到无穷大,自适应检测器的性能会增加并最终达到max-SINR滤波器的性能。但是,当杂波不均匀时,情况并非如此。在这样的环境中,自适应检测器需要使用少量的二次电池。在这种情况下,减小发生估计的空间的尺寸可以提高检测性能。结果表明,用信号和杂波子空间的广义本征空间代替常规DFT子空间来减小维数会导致检测性能的显着提高,并显着减少检测过程中所需的辅助细胞数量。结合该操作和适当的快速预处理方法,提出了一种快速,鲁棒的检测器。提供了仿真结果,用于将探测器的性能与其他常规雷达探测器进行比较。

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