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Automatic Mapping of Tropical Cyclone-Induced Coastal Inundation in SAR Imagery Based on Clustering of Deep Features

机译:基于深度特征的聚类自动映射热带旋风诱导的SAR图像中的沿海淹没

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摘要

Researchers have already verified that the deep learning (DL) technology can realize accurate and robust mapping of tropical cyclone-induced coastal inundation in synthetic aperture radar imagery. In order to liberate the DL-based inundation mapping from human supervision, we propose to use the clustering of deep convolutional autoencoder-generated features. The mapping results of Lekima 2019-induced inundation demonstrate the advantages and availability of the proposed method.
机译:研究人员已经验证了深度学习(DL)技术可以实现热带旋风诱导的沿海淹没在合成孔径雷达图像中的准确和鲁棒绘图。为了解放从人类监督的DL为基础的泛滥映射,我们建议使用深度卷积的自动化器生成功能的聚类。 Lekima 2019引起的淹没的映射结果证明了该方法的优缺点。

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