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Adaptive Radar Detection of Distributed Targets in Homogeneous and Partially Homogeneous Noise Plus Subspace Interference

机译:均匀和部分均匀噪声加子空间干扰中分布目标的自适应雷达检测

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This paper addresses adaptive radar detection of distributed targets in noise plus interference assumed to belong to a known or unknown subspace of the observables. At the design stage we resort to either the GLRT or the so-called two-step GLRT-based design procedure and assume that a set of noise-only data is available (the so-called secondary data). Detection algorithms have been derived modeling noise vectors, corresponding to different range cells, as independent, zero-mean, complex normal ones, sharing either the same covariance matrix (homogeneous environment) or the same covariance matrix up to possibly different (mean) power levels between primary data, i.e., range cells under test, and secondary ones (partially homogeneous environment). The performance assessment has been conducted by Monte Carlo simulation, also in comparison to previously proposed detection algorithms, and confirms the effectiveness of the newly proposed ones
机译:本文讨论了噪声和干扰中分布目标的自适应雷达检测,假设它们属于可观测对象的已知或未知子空间。在设计阶段,我们求助于GLRT或所谓的基于GLRT的两步式设计程序,并假设有一组纯噪声数据(所谓的辅助数据)可用。已经推导了检测算法,将对应于不同距离单元的噪声矢量建模为独立的,零均值,复杂法线的噪声矢量,它们共享相同的协方差矩阵(均匀环境)或相同的协方差矩阵,直到可能具有不同的(均值)功率水平在主要数据(即测试中的范围单元格)和次要数据(部分同质环境)之间切换。与以前提出的检测算法相比,通过蒙特卡洛模拟进行了性能评估,并证实了新提出的检测算法的有效性。

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