Abstract
This paper presents an arterial green-wave synchronous coordination model for bus and non-bus lanes based on platoon dispersion theory. As the traffic light at an upstream intersection change from red to green, the dispersive characteristics of these vehicles moving from upstream to the downstream were analyzed by assuming velocities of two platoon following a normal distribution pattern. The model aims at analyzing relationship between traffic flow, distance between adjacent intersections, and signaling time in order to achieve arterial green-wave synchronous coordination in both the bus and non-bus lanes. To facilitate coordination in a traffic signal control system, the number of vehicles forced to stop at the head of the platoon as well as the number of vehicles trapped at the tail of the platoon were determined and presented in a tabular form for use in the proposed traffic light coordination model. Finally, a numeric computation for the coordination of successive signals is presented to illustrate the validity of the proposed model.
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Acknowledgement
This paper is funded by Jiangsu provincial government scholarship program;the National Natural Science Foundation of China (61503201);Natural Science Foundation of the Jiangsu Province in China (BK20161280); the Humanities and Social Sciences Foundation of the Ministry of Education in China(16YJCZH086);Natural Science Foundation of the Jiangsu High Education (15KJB580011); Nantong Science and Technology Innovation Program (GY12015025, GY12016019); Project of excellent graduate innovation in Hebei province(2016348).
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Wei, M., Sun, B. An Arterial Green-Wave Synchronous Coordination Model for Bus and Non-bus Lanes Based on Platoon Dispersion Theory. Wireless Pers Commun 95, 2091–2109 (2017). https://doi.org/10.1007/s11277-017-4040-7
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DOI: https://doi.org/10.1007/s11277-017-4040-7