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Remote Sensing Based Building Extraction

Remote Sensing Based Building Extraction

Mohammad Awrangjeb, Xiangyun Hu, Bisheng Yang, Jiaojiao Tian
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Building extraction from remote sensing data plays an important role in urban planning, disaster management, navigation, updating geographic databases, and several other geospatial applications. Even though significant research has been carried out for more than two decades, the success of automatic building extraction and modeling is still largely impeded by scene complexity, incomplete cue extraction, and sensor dependency of data. Most recently, deep neural networks (DNN) have been widely applied for high classification accuracy in various areas including land-cover and land-use classification. Therefore, intelligent and innovative algorithms are needed for the success of automatic building extraction and modeling. This Special Issue focuses on newly developed methods for classification and feature extraction from remote sensing data for automatic building extraction and 3D

种类:
年:
2020
出版社:
MDPI
语言:
english
页:
444
ISBN 10:
3039283839
ISBN 13:
9783039283835
文件:
PDF, 21.08 MB
IPFS:
CID , CID Blake2b
english, 2020
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