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Application of the Non-Local Log-Euclidean Mean to Radar Target Detection in NonHomogeneous Sea Clutter

机译:非局部日志欧几里德的应用意味着非均匀海洋杂波中的雷达目标检测

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摘要

In order to effectively detect moving targets in a nonhomogeneous sea clutter, the non-local Log-Euclidean mean is studied and an effective algorithm based on non-local Log-Euclidean mean is proposed. Firstly, the mathematical model of the received signal returned from a target is established. Then, the Log-Euclidean distance is introduced and the non-local method is employed for computing the Log-Euclidean mean. Furthermore, an adaptive matched filter with non-local Log-Euclidean mean is investigated. As the non-local method adopts samples similar to a given sample to estimate the Log-Euclidean mean, a robust covariance matrix estimation is obtained in a nonhomogeneous sea clutter. In the end, numerical simulations and real High-Frequency radar datasets are used to verify the validity of this proposed algorithm, and the results demonstrate that the proposed method not only outperforms the conventional detection method but also exhibits more robustness in a nonhomogeneous environment.
机译:为了有效地检测非均匀海洋杂波中的移动目标,研究了非局部日志欧几里德平均值,提出了一种基于非局部日志 - 欧几里德平均值的有效算法。首先,建立从目标返回的接收信号的数学模型。然后,引入了日志 - 欧几里德距离,并且采用非本地方法来计算日志欧几里德均值。此外,研究了具有非局部日志 - 欧几里德平均值的自适应匹配过滤器。由于非本地方法采用类似于给定样品的样品来估计日志 - 欧几里德平均值,在非均匀海洋杂波中获得强大的协方差矩阵估计。在最后,数值模拟和实际高频雷达数据集用于验证该算法的有效性,结果表明,所提出的方法不仅优于传统的检测方法,而且在非均匀环境中表现出更多的鲁棒性。

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