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站城融合下城市轨道交通多场景关键站点识别

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为提高城市轨道交通网络抵御安全风险的能力,从事前预防和事中控制2个层面出发,考虑站城融合和改进的CRITIC-TOPSIS(ICT)法,提出一种多场景下的城市轨道交通网络关键站点识别方法.首先,基于复杂网络理论和Space-L方法建立城市轨道交通网络模型.其次,考虑网络结构特征和站城耦合度,选取度中心性、介数中心性、接近中心性和POI搭建站点重要度评价指标体系,利用ICT法建立综合指标"ICT指数"以评价站点重要度.之后,面向事前预防和事中控制,建立静态和动态场景下的关键站点识别方法.最后,以2023年北京城市轨道交通网络为例,识别静态和动态场景下的关键站点序列.并且通过分析关键站点失效后的网络鲁棒性参数变化,对识别结果进行验证.研究结果表明,前20位静态关键站点和动态关键站点主要分布在10号线、2号线和14号线,多数为指数较高的"枢纽型"站点(如十里河站和西直门站).动态关键站点中包含度较小但其余指标值较大的"奇点"(如牛街站和牡丹园站),其周边集聚了众多城市服务要素.关键站点失效后的网络鲁棒性明显下降,验证了其对于网络抵御安全风险的重要影响.另外,经过对比分析,证明了多场景下考虑站城融合和ICT法识别关键站点的合理性.研究结论能够为保障城市轨道交通系统安全运营提供方法参考.
Key station identification of urban rail transit in multi scenario under station-city integration
To enhance the resilience of urban rail transit networks against security risks,a method for identifying key stations in urban rail transit networks under multiple scenarios is proposed,rooted in proactive prevention and in-process control,and incorporating the station-city integration and the improved CRITIC-TOPSIS(ICT)method.First,the model of urban rail transit networks was established based on complex network theory and the Space-L method.Second,considering the network structural characteristics and station-city integration,degree centrality,betweenness centrality,closeness centrality,and points of interest(POI)were selected to construct an index system for evaluating station importance.ICT is utilized to establish a comprehensive"ICT index"to assess station importance.Subsequently,key station identification methods are developed for both static and dynamic scenarios aimed at proactive prevention and mid-event control.Final,taking the Beijing urban rail transit network in 2023 as a case study,key station sequences were identified under static and dynamic scenarios.Furthermore,the identification results were validated through an analysis of changes in network robustness parameters following the failure of key stations.Research results indicate that top 20 static and dynamic key stations mainly locate in Lines 10,2,and 14,with most being high-value"hub-type"stations(such as Shilihe and Xizhimen stations).Dynamic key stations also include"special stations"(such as Niujie and Mudanyuan stations)with small values of degree but large value of other indicators,surrounded by numerous urban service elements.The significant decrease in network robustness after the failure of key stations validates their important impact on the network's resilience against security risks.Through comparative analysis,the rationality of considering station-city integration and employing ICT methods for key station identification in multiple scenarios has been demonstrated.The research conclusions can provide methodological references for ensuring the safe operation of urban rail transit systems.

urban rail transit networkstation-city integrationCRITIC-TOPSIScomplex networkidentification of key station

国景枫、宋瑞、何世伟

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北京交通大学 综合交通运输大数据应用技术交通运输行业重点实验室,北京 100044

城市轨道交通网络 站城融合 CRITIC-TOPSIS 复杂网络 关键站点识别

2024

铁道科学与工程学报
中南大学 中国铁道学会

铁道科学与工程学报

CSTPCD北大核心EI
影响因子:0.837
ISSN:1672-7029
年,卷(期):2024.21(12)