基于多时、多尺度特征提取的SAR影像海冰分割

R. Palenichka, T. Hirose, A. Lakhssassi, M. Petrou, M. Zaremba
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引用次数: 5

摘要

提出了一种基于SAR图像的海冰分割方法。该算法基于图像显著点的多位置描述符提取,这些显著点表示具有时间变化、高强度对比度、区域均匀性和形状显著性的图像位置。采用一种新的时空算子提取特征点,将时间变化与空间显著性相结合。最后通过尺度适应区域增长分割出海冰区域边界。初步的实验结果证实了该分割方法的可靠性,并显示了其在SAR图像分析中的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sea ice segmentation of SAR imagery using multi-temporal and multi-scale feature extraction
A method for sea-ice segmentation of SAR imagery is proposed in this paper. It is based on the multi-location descriptor extraction in salient image points, which indicate image locations with temporal change, high intensity contrast, regional homogeneity and shape saliency. A novel spatiotemporal operator is used to extract the feature points, which advantageously integrates temporal change with spatial saliency. The final segmentation by scale-adaptive region growing provides borders of sea ice regions. Preliminary experimental results confirmed the reliability of the proposed segmentation method and have shown its high potential for SAR image analysis.
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