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A Hue-domain filtering technique for enhancing spatial sampled compressed sensing-based SAR images

机译:一种用于增强基于空间采样压缩感知的SAR图像的色相域滤波技术

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摘要

Millimeter-wave synthetic aperture radar (SAR) implementations need many sampling points that means huge data collection and long processing time. Owing to compressed sensing, SAR data can be easily reconstructed with fewer random samples than Shannon/Nyquist criteria. The most used sampling strategy is to select samples from all spatial-frequency SAR data. Since this type of sampling strategy requires many sampling probes that makes application impractical, sparse aperture sampling strategies have been proposed recently. However, a high noise ratio in spatial-sampled (SS) images is still a disturbing problem to be solved. In this study, a novel Hue-domain filtering technique (HFT) is proposed to remove unwanted noises from SS-SAR images. For this purpose, reconstructed SAR images are transformed to the red, green, and blue, and hue, saturation, and value formats, respectively. Then the best threshold ratio to distinguish the noises from the targets is determined by means of the Otsu method. Thus, the mask containing only the target information is formed and applied to the SAR image. Thanks to the proposed technique, whole noise signs are removed without any target loss from the reconstructed image. The accuracy and effectiveness of the proposed HFT are verified by means of both visual comparison of the results and integrated side-lobe ratios of the real measurements.
机译:毫米波合成孔径雷达(SAR)的实现需要许多采样点,这意味着需要收集大量数据并需要较长的处理时间。由于压缩感测,SAR数据可以比Shannon / Nyquist标准更少的随机样本轻松重建。最常用的采样策略是从所有空间频率SAR数据中选择样本。由于这种类型的采样策略需要许多采样探针,使得应用变得不切实际,因此最近提出了稀疏孔径采样策略。然而,空间采样(SS)图像中的高噪声比仍然是要解决的令人困扰的问题。在这项研究中,提出了一种新颖的色相域滤波技术(HFT),可从SS-SAR图像中去除不需要的噪声。为此,将重建的SAR图像分别转换为红色,绿色和蓝色,以及色调,饱和度和值格式。然后通过Otsu方法确定区分噪声与目标的最佳阈值比。因此,形成仅包含目标信息的掩模并将其应用于SAR图像。多亏了提出的技术,整个噪声信号被删除,而没有任何目标损失从重建的图像。通过对结果进行目测比较以及对实际测量结果进行积分的旁瓣比,可以验证所提出的HFT的准确性和有效性。

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