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Using Landsat-8 imagery and Generative Adversarial Network for Glacial Lakes Mapping in High Mountain Regions
Zhao, Hang1,2; Liu, Xuebin1,2; Wang, Shuang1,2
2021
会议名称2nd IEEE International Conference on Information Technology, Big Data and Artificial Intelligence, ICIBA 2021
会议录名称Proceedings of 2021 IEEE 2nd International Conference on Information Technology, Big Data and Artificial Intelligence, ICIBA 2021
页码877-881
会议日期2021-12-17
会议地点Chongqing, China
出版者Institute of Electrical and Electronics Engineers Inc.
产权排序1
摘要

As an essential resource in High Mountain Regions (HMR), evaluating the glacial lake dynamics is of great significance to explore the impacts of climate changes and predict the risks of Glacial Lake Outburst Floods (GLOFs). However, complicated and laborious methods for glacial lake mapping are unpractically applied in automatically monitoring glacial lakes at a large-scale region. In this work, we explored the mapping efficiency of glacial lakes by combing Generative Adversarial Networks and multi-level feature pyramid (GANMFP) in HMR. We first sampled the image patches containing glacial lakes from Landsat-8 raw data to evaluate the model performance. Totally, 6583 patches with 256x256x7 pixels are randomly cropped from 62 Landsat-8 images. Then we employed these data to train and test the GAN model, which integrated a multi-level feature fusion module in generator and a Resnet-152 networks in discriminator. From the validation results and result visualization, our method achieved good performances in Precision (88.42), Recall (59.61), and Overall Accuracy (99.28), which shows excellent potential in glacial lake mapping at a large-scale region. © 2021 IEEE.

关键词Glacial Lake High Mountain Regions Generative Adversarial Networks Landsat-8 OLI
作者部门光谱成像技术研究室
DOI10.1109/ICIBA52610.2021.9687901
收录类别EI
ISBN号9781665428767
语种英语
EI入藏号20221311844088
引用统计
文献类型会议论文
条目标识符http://ir.opt.ac.cn/handle/181661/95801
专题光谱成像技术研究室
通讯作者Wang, Shuang
作者单位1.Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an; 710119, China;
2.University of Chinese Academy of Sciences, Beijing; 100049, China
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Zhao, Hang,Liu, Xuebin,Wang, Shuang. Using Landsat-8 imagery and Generative Adversarial Network for Glacial Lakes Mapping in High Mountain Regions[C]:Institute of Electrical and Electronics Engineers Inc.,2021:877-881.
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