Data and coding used in paper entitled "MIU: Deep Embedded Building Cluster Model of Urban Functional Zoning"
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https://figshare.com/articles/dataset/Data_and_strong_coding_strong_used_in_paper_entitled_strong_MIU_Deep_Embedded_Building_Cluster_Model_of_Urban_Functional_Zoning_strong_/23275238
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Data and coding used in paper entitled "MIU: Deep Embedded Building Cluster Model of Urban Functional Zoning".The compressed package contains 6 folders. Building Footprint: Building vector data were used to extract geometric and compactness featrues. Google Earth Image: VHR images were applied to extract spectral and textural features. Luojia 1-01 Nighttime Light Image: Nighttime data were used to extract brightness features. OSM Street:OSM road networks were used to extract location features. POI of Study Area:POI data were used to generate labels for training the Word2Vec model. Python Code:DEC code was used to process the cluster for generating the MIU; Word2Vec code was used train the Word2Vec model.
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2023-06-01



