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首页> 外文期刊>Annals of the American Thoracic Society >Superpixel-Based LCM Detector for Faint Ships Hidden in Strong Noise Background SAR Imagery
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Superpixel-Based LCM Detector for Faint Ships Hidden in Strong Noise Background SAR Imagery

机译:基于Superpixel的LCM探测器,隐藏在强大的噪声背景SAR图像中的微弱船只

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摘要

Faint or small target detection is always a challenging task for image-based remote sensing application. Due to low signal-to-clutter ratio, many conventional methods fail to yield satisfactory results. To solve the problem, a superpixel-based local contrast measure (SLCM) detector is proposed against the faint ship targets hidden in strong noise background synthetic aperture radar (SAR) images. The detection stage consists of superpixel segmentation and SLCM detection. In the first stage, a modified simple linear iterative clustering algorithm is utilized to segment SAR image into superpixels. In the second stage, a novel SLCM is performed on the generated superpixels to enhance and find the hidden ships. Experiments on real SAR images indicate that the proposed method can effectively detect ship targets from the strong noise background SAR images.
机译:微弱或小目标检测始终是基于图像的遥感应用的具有挑战性的任务。 由于信号到杂波比例低,许多常规方法不能产生令人满意的结果。 为了解决问题,提出了一种基于超像素的局部对比度测量(SLCM)检测器,针对隐藏在强噪声背景合成孔径雷达(SAR)图像中的微弱的船舶目标。 检测阶段由SuperPixel分段和SLCM检测组成。 在第一阶段,修改的简单线性迭代聚类算法用于将SAR图像分段为超像素。 在第二阶段,对生成的超像素进行新颖的SLCM,以增强和找到隐藏的船只。 真实SAR图像的实验表明,该方法可以有效地检测来自强噪声背景SAR图像的船舶目标。

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