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A signal sub-space based approach for mitigating wind turbine clutter in fast scanning weather radar

机译:快速扫描天气雷达中减轻风力涡轮机杂波的信号子空间方法

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Removing turbine clutter from weather radar observations has become an essential problem in the community since wind turbine clutter signals (WTC) cannot be filtered using traditional clutter filtering. This paper addresses the problem of mitigation of WTC using knowledge of local precipitation and WTC signals to retain the maximum amount of precipitation and retrieve the filtered radar IQ data. The proposed algorithm uses the Generalized Likelihood Ratio Test (GLRT) to detect the range gates affected by WTC, and signal subspace estimation to mitigate the turbine clutter. The performances of the turbine clutter identification and suppression algorithms are also studied by a common evaluation technique of combining clear air wind turbine data and precipitation data.
机译:从天气雷达观察中移除涡轮杂波已成为社区中的重要问题,因为不使用传统的杂波滤波滤出风力涡轮机杂波信号(WTC)。本文使用本地降水和WTC信号的知识来解决WTC缓解的问题,以保留最大降水量并检索过滤的雷达IQ数据。所提出的算法使用广义似然比测试(GLRT)检测受WTC影响的范围栅极,以及信号子空间估计以减轻涡轮机杂波。通过结合空气风力涡轮机数据和降水数据的共同评估技术,还研究了涡轮杂波识别和抑制算法的性能。

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