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      The Energy-Efficient Dynamic Route Planning for Electric Vehicles

      1 , 2
      Journal of Advanced Transportation
      Hindawi Limited

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          Abstract

          Aiming to provide an approach for finding energy-efficient routes in dynamic and stochastic transportation networks for electric vehicles, this paper addresses the route planning problem in dynamic transportation network where the link travel times are assumed to be random variables to minimize total energy consumption and travel time. The changeable signals are introduced to establish state-space-time network to describe the realistic dynamic traffic network and also used to adjust the travel time according to the signal information (signal cycle, green time, and red time). By adjusting the travel time, the electric vehicle can achieve a nonstop driving mode during the traveling. Further, the nonstop driving mode could avoid frequent acceleration and deceleration at the signal intersections so as to reduce the energy consumption. Therefore, the dynamically adjusted travel time can save the energy and eliminate the waiting time. A multiobjective 0-1 integer programming model is formulated to find the optimal routes. Two methods are presented to transform the multiobjective optimization problem into a single objective problem. To verify the validity of the model, a specific simulation is conducted on a test network. The results indicate that the shortest travel time and the energy consumption of the planning route can be significantly reduced, demonstrating the effectiveness of the proposed approaches.

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          The Electric Vehicle-Routing Problem with Time Windows and Recharging Stations

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            A real-time adaptive signal control in a connected vehicle environment

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              Dynamics of commuting decision behaviour under advanced traveller information systems

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                Author and article information

                Journal
                Journal of Advanced Transportation
                Journal of Advanced Transportation
                Hindawi Limited
                0197-6729
                2042-3195
                August 26 2019
                August 26 2019
                : 2019
                : 1-16
                Affiliations
                [1 ]State Key Laboratory of Rail Traffic Control and Safety, Beijing Jiaotong University, Beijing 100044, China
                [2 ]School of Modern Post, Beijing University of Posts and Telecommunications, Beijing 100876, China
                Article
                10.1155/2019/2607402
                3c431e12-153c-4322-bdaf-a0b6d0c23e14
                © 2019

                http://creativecommons.org/licenses/by/4.0/

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