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Statistical Approach to Spectrogram Analysis for Radio-Frequency Interference Detection and Mitigation in an L-Band Microwave Radiometer

机译:L波段微波辐射计中无线电频率干扰检测和缓解的频谱图统计方法

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摘要

For the elimination of radio-frequency interference (RFI) in a passive microwave radiometer, the threshold level is generally calculated from the mean value and standard deviation. However, a serious problem that can arise is an error in the retrieved brightness temperature from a higher threshold level owing to the presence of RFI. In this paper, we propose a method to detect and mitigate RFI contamination using the threshold level from statistical criteria based on a spectrogram technique. Mean and skewness spectrograms are created from a brightness temperature spectrogram by shifting the 2-D window to discriminate the form of the symmetric distribution as a natural thermal emission signal. From the remaining bins of the mean spectrogram eliminated by RFI-flagged bins in the skewness spectrogram for data captured at 0.1-s intervals, two distribution sides are identically created from the left side of the distribution by changing the standard position of the distribution. Simultaneously, kurtosis calculations from these bins for each symmetric distribution are repeatedly performed to determine the retrieved brightness temperature corresponding to the closest kurtosis value of three. The performance is evaluated using experimental data, and the maximum error and root-mean-square error (RMSE) in the retrieved brightness temperature are served to be less than approximately 3 K and 1.7 K, respectively, from a window with a size of 100 × 100 time–frequency bins according to the RFI levels and cases.
机译:为了消除无源微波辐射计中的射频干扰(RFI),通常根据平均值和标准偏差计算阈值水平。然而,可能出现的严重问题是由于存在RFI,从较高的阈值水平检索到的亮度温度存在误差。在本文中,我们提出了一种基于频谱图技术使用统计标准中的阈值水平检测和减轻RFI污染的方法。通过移动2-D窗口以区分对称分布的形式作为自然热发射信号,从亮度温度谱图中创建均值和偏度谱图。对于以0.1 s间隔捕获的数据,从通过偏斜光谱图中带有RFI标记的bin中消除的平均光谱图的其余bin中,可以通过更改分布的标准位置从分布的左侧相同地创建两个分布侧。同时,针对每个对称分布,从这些仓中重复进行峰度计算,以确定与最接近的峰度值3对应的检索亮度温度。使用实验数据评估性能,从大小为100的窗口中,检索到的亮度温度中的最大误差和均方根误差(RMSE)分别小于约3 K和1.7K。 ×根据RFI级别和案例的100个时频点。

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