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Social Media Meets Big Urban Data: A Case Study of Urban Waterlogging Analysis
2016
Computational Intelligence and Neuroscience
With the design and development of smart cities, opportunities as well as challenges arise at the moment. For this purpose, lots of data need to be obtained. Nevertheless, circumstances vary in different cities due to the variant infrastructures and populations, which leads to the data sparsity. In this paper, we propose a transfer learning method for urban waterlogging disaster analysis, which provides the basis for traffic management agencies to generate proactive traffic operation strategies
doi:10.1155/2016/3264587
pmid:27774098
pmcid:PMC5059775
fatcat:coam3g4ucfdtvcnv25ipkg2qpa