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A framework for mixed-use decomposition based on temporal activity signatures extracted from big geo-data

查看全文 作  者:Lun [1,2]Wu;Ximeng [1,2]Cheng;Chaogui [3]Kang;Di [1,2]Zhu;Zhou [1,2]Huang;Yu [1,2]Liu 高影响力作者 机构地区:[1]Institute of Remote Sensing and Geographical Information Systems,Peking University,Beijing,People’s Republic of China;[2]Beijing Key Lab of Spatial Information Integration and Its Applications,Peking University,Beijing,People’s Republic of China;[3]School of Remote Sensing and Information Engineering,Wuhan University,Wuhan,People’s Republic of China高影响力机构 出  处:《International Journal of Digital Earth》索引2020年第13卷第6期,共19页高影响力期刊 基  金:This work was supported by the National Key R&D Program of China[grant number 2017YFB0503602];the National Natural Science Foundation of China[grant numbers 41830645,41625003,and 41771425];Strategic Priority Research Program of the Chinese Academy of Sciences[grant number XDA19040402]. 摘  要:Mixed use has been extensively applied as an urban planning principle and hinders the study of single urban functions.To address this problem,it is worth decomposing the mixed use.Inspired by the concept of spectral unmixing in remote sensing applications,this paper proposes a framework for mixed-use decomposition based on big geo-data.Mixeduse decomposition in terms of human activities differs from traditional land use research,and it is more reasonable to infer the actual urban function of land.The framework consists of four steps,namely temporal activity signature extraction,urban function base curve extraction,mixeduse decomposition,and result validation.First,the temporal activity signatures(TASs)of each zone are extracted as the proxy of human activity patterns.Second,the diurnal TASs of routine activities are extracted as urban function base curves(i.e.endmembers).Third,a linear decomposition model is used to decompose the mixed use and obtain multiple results(urban function composition,dynamic activity proportions,and the mixing index).Finally,result validation strategies are concluded.This framework offers method extensibility and has few requirements for the input data.It is validated by means of a case study of Beijing,based on a social media check-in dataset. 关 键 词:Mixed use spatial–temporal pattern urban function human activity big geo-data
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