基于弱监督的VGG深度学习网络遥感影像云检测
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三明学院信息工程学院,福建 三明 365004

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三明学院科学研究发展基金暨福建省中青年教师教育科研项目(JAT210430/B20211);三明学院纵向科研结余资金项目(113/KD22006P)。


Remote Sensing Image Cloud Detection Based on VGG Deep Learning Network with Weak Supervision
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School of Information Engineering, Sanming University, Sanming, Fujian 365004, China

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    摘要:

    大多遥感影像云检测方法中,训练数据需要对影像的每个像素进行标记,标记成本非常昂贵,为了减轻深度学习遥感影像云检测中人工劳动标记数据的成本,图像块标签代替像素标签进行深度学习训练。首先,将多种下垫面的遥感影像裁剪成图像块并标记,带有标签的图像块作为数据集;然后,块状的数据集训练改进VGG深度学习网络,训练好的网络对大型遥感影像进行云检测;最后,选取多种中分辨率卫星图像分别用改进VGG与VGG网络进行了云检测对比实验。结果表明,改进VGG遥感影像云检测方法能很好地检测出碎云和厚云,整个云区的平均精度都在90%以上。使用带标签的图像块,不仅减少了人工劳动,而且有效地进行遥感影像云检测,可为弱监督深度学习的遥感影像相关研究提供参考。

    Abstract:

    In most remote sensing image cloud detection methods,the training data needs to mark each pixel of the image,which is very expensive. In order to reduce the cost of manual labor marking data in deep learning remote sensing image cloud detection,the image block label replaces the pixel label for in-depth learning training. First,the remote sensing images of various underlying surfaces are cut into image blocks and labeled,and the labeled image blocks are used as data sets. Then,the block data set is trained to improve the VGG deep learning network,and the trained network is used for cloud detection of large remote sensing images. Finally,multiple medium resolution satellite images are selected for cloud detection comparison experiments using improved VGG and VGG networks. The results show that the improved VGG remote sensing image cloud detection method can effectively detect fragmented and thick clouds,with an average accuracy of over 90% for the entire cloud area. The use of tagged image blocks not only reduces manual labor,but also effectively detects clouds in remote sensing images,which can provide a reference for the research of remote sensing images with weak supervision and deep learning.

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惠苗.基于弱监督的VGG深度学习网络遥感影像云检测[J].西昌学院学报(自然科学版),2023,37(2):46-52.

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  • 收稿日期:2023-02-01
  • 最后修改日期:2023-03-19
  • 录用日期:2023-04-12
  • 在线发布日期: 2023-07-25