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Integrating GPS trajectory and topics from Twitter stream for human mobility estimation 被引量:2
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作者 Satoshi MIYAZAWA Xuan SONG +2 位作者 Tianqi XIA Ryosuke SHIBASAKI hodaka kaneda 《Frontiers of Computer Science》 SCIE EI CSCD 2019年第3期460-470,共11页
Understanding urban dynamics and large-scale human mobility will play a vital role in building smart cities and sustainable urbanization. Existing research in this domain mainly focuses on a single data source (e.g., ... Understanding urban dynamics and large-scale human mobility will play a vital role in building smart cities and sustainable urbanization. Existing research in this domain mainly focuses on a single data source (e.g., GPS data, CDR data, etc.). In this study, we collect big and heterogeneous data and aim to investigate and discover the relationship between spatiotemporal topics found in geo-tagged tweets and GPS traces from smartphones. We employ Latent Dirichlet Allocation-based topic modeling on geo-tagged tweets to extract and classify the topics. Then the extracted topics from tweets and temporal population distribution from GPS traces are jointly used to model urban dynamics and human crowd flow. The experimental results and validations demonstrate the efficiency of our approach and suggest that the fusion of cross-domain data for urban dynamics modeling is more practical than previously thought. 展开更多
关键词 GPS TRAJECTORY HUMAN MOBILITY SNS locationbased social network (LBSN) TOPIC modeling data mining SPATIOTEMPORAL TOPIC
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