Influence of Centrality Indices of Urban Railway Stations: Social Network Analysis of Transit Ridership and Travel Distance

IF 0.5 Q4 REGIONAL & URBAN PLANNING
S. Jang, Youngsoo An
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引用次数: 0

Abstract

This empirical study calculated the network centralities of urban railway stations in Seoul using Social Network Analysis (SNA) and analyzed the effect of this value on the number of passengers and average travel distance at each station. Network centrality can be calculated using various methodologies. In this study, reach, betweenness, and closeness were used as network centrality indicators. A regression model was used with the characteristics of building use in the station catchment areas as control variables. This methodology was compared to previous studies’ methods for obtaining stations’ topology values. The adjusted R2 values increased by 0.272 and 0.220 for the respective models, explaining the number of passengers and the average travel distance, respectively; the number of significant variables also increased in both models. These results indicate that defining the network centrality obtained through SNA as the station’s topology could improve explanations of the number of passengers and the average travel distance by 27.2% and 22.0%, respectively, compared to previous studies. While this methodology is not new, this study demonstrated the advantages of using SNA to determine the centrality indices of urban railway stations.
城市火车站集中度指标的影响——公交客流量和出行距离的社会网络分析
本实证研究使用社会网络分析(SNA)计算了首尔城市火车站的网络中心度,并分析了该值对每个车站的乘客人数和平均旅行距离的影响。可以使用各种方法来计算网络中心性。在这项研究中,可达性、介数和接近度被用作网络中心性指标。使用回归模型,将车站集水区的建筑使用特征作为控制变量。将该方法与先前研究中获取站点拓扑值的方法进行了比较。调整后的R2值分别增加了0.272和0.220,解释了乘客数量和平均旅行距离;两个模型中显著变量的数量也有所增加。这些结果表明,与之前的研究相比,将通过SNA获得的网络中心性定义为车站的拓扑结构,可以分别提高27.2%和22.0%对乘客数量和平均旅行距离的解释。虽然这种方法并不新鲜,但本研究证明了使用国民账户体系确定城市火车站中心性指数的优势。
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来源期刊
Journal of Regional and City Planning
Journal of Regional and City Planning REGIONAL & URBAN PLANNING-
CiteScore
1.50
自引率
0.00%
发文量
16
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