Multimodal network equilibrium with stochastic travel times

The private car, unlike public traffic modes (e.g., subway, trolley) running along dedicated track-ways, is invariably subject to various uncertainties resulting in travel time variation. A multimodal network equilibrium model is formulated that explicitly considers stochastic link capacity variabil...

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Main Authors: Meng, M., Shao, C. F., Wong, Yiik Diew, Zhang, J.
Other Authors: School of Civil and Environmental Engineering
Format: Article
Language:English
Published: 2014
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Online Access:https://hdl.handle.net/10356/104769
http://hdl.handle.net/10220/20278
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1047692020-03-07T11:43:48Z Multimodal network equilibrium with stochastic travel times Meng, M. Shao, C. F. Wong, Yiik Diew Zhang, J. School of Civil and Environmental Engineering DRNTU::Engineering::Civil engineering::Transportation The private car, unlike public traffic modes (e.g., subway, trolley) running along dedicated track-ways, is invariably subject to various uncertainties resulting in travel time variation. A multimodal network equilibrium model is formulated that explicitly considers stochastic link capacity variability in the road network. The travel time of combined-mode trips is accumulated based on the concept of the mean excess travel time (METT) which is a summation of estimated buffer time and tardy time. The problem is characterized by an equivalent VI (variational inequality) formulation where the mode choice is expressed in a hierarchical logit structure. Specifically, the supernetwork theory and expansion technique are used herein to represent the multimodal transportation network, which completely represents the combined-mode trips as constituting multiple modes within a trip. The method of successive weighted average is adopted for problem solutions. The model and solution method are further applied to study the trip distribution and METT variations caused by the different levels of the road conditions. Results of numerical examples show that travelers prefer to choose the combined travel mode as road capacity decreases. Travelers with different attitudes towards risk are shown to exhibit significant differences when making travel choice decisions. Published version 2014-08-14T08:10:37Z 2019-12-06T21:39:20Z 2014-08-14T08:10:37Z 2019-12-06T21:39:20Z 2014 2014 Journal Article Meng, M., Shao, C. F., Wong, Y. D., & Zhang, J. (2014). Multimodal Network Equilibrium with Stochastic Travel Times. Mathematical Problems in Engineering, 2014, 136872-. 1563-5147 https://hdl.handle.net/10356/104769 http://hdl.handle.net/10220/20278 10.1155/2014/136872 en Mathematical problems in engineering Copyright © 2014 M. Meng et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. application/pdf
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Civil engineering::Transportation
spellingShingle DRNTU::Engineering::Civil engineering::Transportation
Meng, M.
Shao, C. F.
Wong, Yiik Diew
Zhang, J.
Multimodal network equilibrium with stochastic travel times
description The private car, unlike public traffic modes (e.g., subway, trolley) running along dedicated track-ways, is invariably subject to various uncertainties resulting in travel time variation. A multimodal network equilibrium model is formulated that explicitly considers stochastic link capacity variability in the road network. The travel time of combined-mode trips is accumulated based on the concept of the mean excess travel time (METT) which is a summation of estimated buffer time and tardy time. The problem is characterized by an equivalent VI (variational inequality) formulation where the mode choice is expressed in a hierarchical logit structure. Specifically, the supernetwork theory and expansion technique are used herein to represent the multimodal transportation network, which completely represents the combined-mode trips as constituting multiple modes within a trip. The method of successive weighted average is adopted for problem solutions. The model and solution method are further applied to study the trip distribution and METT variations caused by the different levels of the road conditions. Results of numerical examples show that travelers prefer to choose the combined travel mode as road capacity decreases. Travelers with different attitudes towards risk are shown to exhibit significant differences when making travel choice decisions.
author2 School of Civil and Environmental Engineering
author_facet School of Civil and Environmental Engineering
Meng, M.
Shao, C. F.
Wong, Yiik Diew
Zhang, J.
format Article
author Meng, M.
Shao, C. F.
Wong, Yiik Diew
Zhang, J.
author_sort Meng, M.
title Multimodal network equilibrium with stochastic travel times
title_short Multimodal network equilibrium with stochastic travel times
title_full Multimodal network equilibrium with stochastic travel times
title_fullStr Multimodal network equilibrium with stochastic travel times
title_full_unstemmed Multimodal network equilibrium with stochastic travel times
title_sort multimodal network equilibrium with stochastic travel times
publishDate 2014
url https://hdl.handle.net/10356/104769
http://hdl.handle.net/10220/20278
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