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楊敏的論文在GEO-SPATIAL INFORMATION SCIENCE刊出
發布時間:2024-12-11     發布者:易真         審核者:任福     浏覽次數:

标題: Classification of urban interchange patterns using a model combining shape context descriptor and graph convolutional neural network

作者: Yang, M (Yang, Min); Cao, MJ (Cao, Minjun); Cheng, LY (Cheng, Lingya); Jiang, HP (Jiang, Huiping); Ai, TH (Ai, Tinghua); Yan, XF (Yan, Xiongfeng)

來源出版物: GEO-SPATIAL INFORMATION SCIENCE : 27 : 5 : 1622-1637 DOI: 10.1080/10095020.2023.2264337 Published Date: 2024 SEP 2

摘要: Pattern recognition is critical to map data handling and their applications. This study presents a model that combines the Shape Context (SC) descriptor and Graph Convolutional Neural Network (GCNN) to classify the patterns of interchanges, which are indispensable parts of urban road networks. In the SC-GCNN model, an interchange is modeled as a graph, wherein nodes and edges represent the interchange segments and their connections, respectively. Then, a novel SC descriptor is implemented to describe the contextual information of each interchange segment and serve as descriptive features of graph nodes. Finally, a GCNN is designed by combining graph convolution and pooling operations to process the constructed graphs and classify the interchange patterns. The SC-GCNN model was validated using interchange samples obtained from the road networks of 15 cities downloaded from OpenStreetMap. The classification accuracy was 87.06%, which was higher than that of the image-based AlexNet, GoogLeNet, and Random Forest models.

作者關鍵詞: Road networks; interchange pattern; classification; Graph Convolutional Neural; Networks (GCNNs); Shape Context (SC) descriptor

地址: [Yang, Min; Cao, Minjun; Cheng, Lingya; Ai, Tinghua] Wuhan Univ, Sch Resource & Environm Sci, Wuhan, Peoples R China.

[Jiang, Huiping] Chinese Acad Sci, Inst Geog Sci & Nat Resource Res, Key Lab Reg Sustainable Dev Modeling, Beijing, Peoples R China.

[Jiang, Huiping] Int Res Ctr Big Data Sustainable Dev Goals, Beijing, Peoples R China.

[Yan, Xiongfeng] Tongji Univ, Coll Surveying & Geoinformat, Shanghai, Peoples R China.

通訊作者地址: Yan, XF (通訊作者)Tongji Univ, Coll Surveying & Geoinformat, Shanghai, Peoples R China.

電子郵件地址: xiongfengyan@tongji.edu.cn

影響因子:4.4



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