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作 者:Alessandro Crivellari Hong Wei Chunzhu Wei Yuhui Shi
机构地区:[1]Department of Computer Science and Engineering,SouthernUniversity of Science and Technology,Shenzhen,People’s Republic of China [2]Ministry of Education Ecological Field Station for East Asian Migratory Birds,Department of Earth System Science,Institute for Global Change Studies,Tsinghua University,Beijing,People’s Republic of China [3]School of Geography and Planning,Sun Yat-sen University,Guangzhou,People’s Republic of China [4]Southern Marine Science and Engineering Guangdong Laboratory(Zhuhai),Zhuhai,People’s Republic of China
出 处:《International Journal of Digital Earth》2023年第1期2623-2643,共21页国际数字地球学报(英文)
基 金:supported by the Shenzhen Fundamental Research Program(reference number JCYJ20200109141235597);the National Science Foundation of China(reference number 61761136008)(reference number 42001178);the Southern Marine Science and Engineering Guangdong Laboratory(Zhuhai)(reference number 311021018).
摘 要:The semantic segmentation of informal urban settlements represents an essential contribution towards renovation strategies and reconstruction plans.In this context,however,a big challenge remains unsolved when dealing with incomplete data acquisitions from multiple sensing devices,especially when study areas are depicted by images of different resolutions.In practice,traditional methodologies are directed to downgrade the higher-resolution data to the lowest-resolution measure,to define an overall homogeneous dataset,which is however ineffective in downstream segmentation activities of such crowded unplanned urban environments.To this purpose,we hereby tackle the problem in the opposite direction,namely upscaling the lower-resolution data to the highest-resolution measure,contributing to assess the use of cutting-edge super-resolution generative adversarial network(SR-GAN)architectures.The experimental novelty targets the particular case involving the automatic detection of‘urban villages’,sign of the quick transformation of Chinese urban environments.By aligning image resolutions from two different data sources(Gaofen-2 and Sentinel-2 data),we evaluated the degree of improvement with regard to pixel-based landcover segmentation,achieving,on a 1 m resolution target,classification accuracies up to 83%,67%and 56%for 4x,8x,and 10x resolution upgrades respectively,disclosing the advantages of artificially-upscaled images for segmenting detailed characteristics of informal settlements.
关 键 词:SR-GAN resolution upscaling informal settlements urban villages cross-sensor analytics
分 类 号:TP751[自动化与计算机技术—检测技术与自动化装置]
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