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Robust non-homogeneity detector based on reweighted adaptive power residue

机译:基于加权加权自适应功率残差的鲁棒非均匀性检测器

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摘要

Space time adaptive processing (STAP) is an excellent technique for improving ground moving target detection performance of airborne radar. However, covariance matrix estimation required by STAP is commonly corrupted by the presence of target-like signals (i.e. outliers), and thus resulting severe performance degradation. To overcome this problem, a robust non-homogeneity detector based on reweighted adaptive power residue is developed, where an adaptively reweighted scheme is employed to training data set. Therefore, the deleterious effect of outliers on the covariance estimation is eliminated and the robustness of the non-homogeneity detector is guaranteed. Performance analysis using the simulated and measured data validates that the proposed method can effectively remove outliers from the training data and improves the radar detection performance in a dense target environment.
机译:时空自适应处理(STAP)是提高机载雷达地面移动目标检测性能的一项出色技术。但是,STAP所需的协方差矩阵估计通常会因存在类似目标的信号(即离群值)而受损,从而导致严重的性能下降。为了克服这个问题,开发了一种基于重加权自适应功率残差的鲁棒非均匀性检测器,其中采用自适应重加权方案来训练数据集。因此,消除了异常值对协方差估计的有害影响,并且保证了非均匀性检测器的鲁棒性。使用模拟和测量数据进行的性能分析证明,该方法可以有效地从训练数据中去除异常值,并提高了在密集目标环境中的雷达检测性能。

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