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contributor authorZhenjun Zhu
contributor authorYong Zhang
contributor authorShucheng Qiu
contributor authorYunpeng Zhao
contributor authorJianxiao Ma
contributor authorZhanpeng He
date accessioned2023-11-27T22:56:38Z
date available2023-11-27T22:56:38Z
date issued6/17/2023 12:00:00 AM
date issued2023-06-17
identifier otherJTEPBS.TEENG-7808.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4293166
description abstractRidership prediction of urban rail transit stations is of great significance for the operation and management of rail transit and configuration of facilities around stations. This study used automatic fare collection (AFC) data of the rail transit in Nanjing, China, for a month to obtain station ridership. Based on the point of interest (POI) data (within 800 m around urban rail transit stations), built environment factors such as land type and station accessibility were extracted, and a variable set of built environment factors was then established. Multiple collinearity and spatial autocorrelation analyses were used to screen the variables used in the regression model. A geographically weighted regression (GWR) model was constructed to explore the spatial heterogeneity of the influence on ridership of the built environment around the urban rail stations and to predict ridership. The results show that the GWR model can effectively capture the spatial heterogeneity of the effect of built environment factors on station ridership, and its ridership prediction accuracy is significantly better than that of the ordinary least squares model.
publisherASCE
titleRidership Prediction of Urban Rail Transit Stations Based on AFC and POI Data
typeJournal Article
journal volume149
journal issue9
journal titleJournal of Transportation Engineering, Part A: Systems
identifier doi10.1061/JTEPBS.TEENG-7808
journal fristpage04023077-1
journal lastpage04023077-7
page7
treeJournal of Transportation Engineering, Part A: Systems:;2023:;Volume ( 149 ):;issue: 009
contenttypeFulltext


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