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Forecasting high-speed rail ridership using a simultaneous modeling approach
Authors:Rongfang Liu  Andy Li
Institution:1. Department of Civil and Environmental Engineering, New Jersey Institute of Technology , University Heights , Newark , NJ , 07102 , USA rliu@njit.edu;3. Forecasting Group , Wasatch Front Regional Council , Salt Lake City , UT , 84116 , USA
Abstract:Abstract

The newly launched, June 2009, US High-Speed Intercity Passenger Rail Program has rekindled a renewed interest in forecasting high-speed rail (HSR) ridership. The first step to the concerted effort by the federal, state, rail, and other related agencies to develop a nationwide HSR network is the development of credible approaches to forecast the ridership. This article presents a nested logit/simultaneous choice model to improve the demand forecast in the context of intercity travel. In addition to incorporating the interrelationship between trip generation and mode choice decisions, the simultaneous model also provides a platform for the same utility function flowing between both the decision-making processes. Using American Travel Survey data, supplemented by various mode parameters, the proposed model improves the forecast accuracy and confirms the significant impact of travel costs on both mode choice and trip generation. Furthermore, the cross elasticity of mode choice and trip generation related to travel costs and other modal characteristics may shed some light on transportation policies in the area of intercity travel, especially in anticipation of HSR development.
Keywords:high-speed rail  intercity travel choices  simultaneous model  elasticity  nested logit model
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