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ISAR image formation from unevenly undersampled data using adaptive feature extraction

机译:使用自适应特征提取从不均匀欠采样数据中形成ISAR图像

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Inverse synthetic aperture radar (ISAR) imaging has long been used as an effective tool to pinpoint target scattering features for signature diagnostic and target identification purposes. Normally, constructing an ISAR image requires data collection in both the frequency and the angular dimensions. If the data are evenly sampled and the sampling rate is dense enough, and provided that the total angular look on the target is small, an ISAR can be obtained by using a two dimensional FFT algorithm. In this paper, we address the case when the angular data are unevenly undersampled. Such a scenario may arise in real-world ISAR data collection when the target is fast manoeuvring or when the angular look on the target by the radar is not dense enough to satisfy the Nyquist sampling rate. We propose an algorithm to overcome the aliasing effect in the cross range dimension and construct ISAR images from seriously undersampled data. To verify the algorithm we reconstruct the radar image of a model VFY 218 aircraft.
机译:合成孔径雷达(ISAR)逆向成像长期以来一直被用作一种有效的工具,可以精确地识别目标散射特征,以进行特征诊断和目标识别。通常,构造ISAR图像需要在频率和角度维度上进行数据收集。如果对数据进行均匀采样并且采样率足够高,并且假设目标上的总角度较小,则可以使用二维FFT算法获得ISAR。在本文中,我们解决了角度数据采样不均的情况。当目标快速机动或雷达对目标的角度视线不够密集,无法满足奈奎斯特采样率时,在实际的ISAR数据收集中可能会出现这种情况。我们提出了一种算法来克服跨范围维度上的混叠效应,并从严重欠采样的数据构造ISAR图像。为了验证该算法,我们重建了VFY 218型飞机的雷达图像。

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