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原文传递 Modeling Actual Dwell Time for Rail Transit Using Data Analytics and Support Vector Regression
题名: Modeling Actual Dwell Time for Rail Transit Using Data Analytics and Support Vector Regression
其他题名: Aashtiani,H.,and H.Iravani.2002."Application of dwell time functions in transit assignment model."Transp.Res.Rec.1817:88-92.https://doi.org/10.3141/1817-11.
正文语种: 英文
作者: Zhibin Jiang
关键词: Rail transit;Actual dwell time (DT);Support vector regression (SVR);Density-based spatial clustering of applications with noise (DBSCAN) algorithm;Nonlinear model
摘要: Actual dwell time (DT) at rail transit stations is one of the most significant and useful parameters in evaluating the scheduled timetable and making any dynamic operation adjustments as necessary. It can be influenced by many factors with intricate nonlinearities that make it difficult to build an overall model. The purpose of this paper is to develop a data analytics approach to modeling the train actual DT by combining a density-based spatial clustering of applications with noise (DBSCAN) with the support vector regression (SVR) algorithm. There are three steps in this modeling approach: (1) identifying factors that influence train actual DT; (2) integrating data collected from automatic fare collection and automatic train supervision, and then classifying actual DT data by using the DBSCAN approach; and (3) establishing a nonlinear model to estimate the actual DT based on the SVR method, which is calibrated by using grid search techniques. Using a station along Line 12 in the Shanghai metro network as an example, this innovative hybrid approach delivers high quality results in that the mean squared error of the training set is 2.87 s and the coefficient of determination is 0.66. Application results indicate that the influential factors identified and the nonlinear model developed can be used to explain and predict the train actual DT well, and that the developed model can be applied to assist decision making at both the tactical and operational levels.
出版年: 2018
论文唯一标识: P-72Y2018V144N11008
英文栏目名称: TECHNICAL PAPERS
doi: 10.1061/JTEPBS.0000189
期刊名称: Journal of Transportation Engineering
拼音刊名(出版物代码): P-72
卷: 144
期: 11
页码: 67-78
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