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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Mitigation of Wind Turbine Clutter for Weather Radar by Signal Separation
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Mitigation of Wind Turbine Clutter for Weather Radar by Signal Separation

机译:通过信号分离减轻气象雷达的风轮机杂波

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摘要

This paper addresses the mitigation of wind turbine clutter (WTC) in weather radar data in order to increase the performance of existing weather radar systems and to improve weather analyses and forecasts. We propose a novel approach for this problem based on signal separation algorithms. We model the weather signal as group sparse in the time–frequency domain; in parallel, we model the WTC signal as having a sparse time derivative. In order to separate WTC and the desired weather returns, we formulate the signal separation problem as an optimization problem. The objective function to be minimized combines total variation regularization and time–frequency group sparsity. We also propose a three-window short-time Fourier transform for the time–frequency representation of the weather signal. To show the effectiveness of the proposed algorithm on weather radar systems, the method is applied to simulated and real data from the next-generation weather radar network. Significant improvements are observed in reflectivity, spectral width, and angular velocity estimates.
机译:本文旨在缓解气象雷达数据中的风力涡轮机杂波(WTC)的问题,以提高现有气象雷达系统的性能并改善天气分析和预报。我们提出了一种基于信号分离算法的新颖方法。我们在时频域中将天气信号建模为组稀疏。并行地,我们将WTC信号建模为具有稀疏的时间导数。为了区分WTC和期望的天气回报,我们将信号分离问题公式化为优化问题。要最小化的目标函数结合了总变化正则化和时频组稀疏性。我们还为天气信号的时频表示提出了三窗口短时傅立叶变换。为了证明该算法在天气雷达系统上的有效性,将该方法应用于下一代天气雷达网络的模拟和真实数据。在反射率,光谱宽度和角速度估计上观察到显着改善。

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