Yayın: Dynamic programming-based multi-vehicle longitudinal trajectory optimization with simplified car following models
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Yayıncı
PERGAMON-ELSEVIER SCIENCE LTD
DOI
10.1016/j.trb.2017.10.012
Türü
Özet
Jointly optimizing multi-vehicle trajectories is a critical task in the next-generation transportation system with autonomous and connected vehicles. Based on a space-time lattice, we present a set of integer programming and dynamic programming models for scheduling longitudinal trajectories, where the goal is to consider both system-wide safety and throughput requirements under supports of various communication technologies. Newell's simplified linear car following model is used to characterize interactions and collision avoidance between vehicles, and a control variable of time-dependent platoon-level reaction time is introduced in this study to reflect various degrees of vehicle-to-vehicle or vehicle-to-infrastructure communication connectivity. By adjusting the lead vehicle's speed and platoon-level reaction time at each time step, the proposed optimization models could effectively control the complete set of trajectories in a platoon, along traffic backward propagation waves. This parsimonious multi-vehicle state representation sheds new lights on forming tight and adaptive vehicle platoons at a capacity bottleneck. We examine the principle of optimality conditions and resulting computational complexity under different coupling conditions. (C) 2017 Elsevier Ltd. All rights reserved.
Tanım
Dergi veya Seri
TRANSPORTATION RESEARCH PART B-METHODOLOGICAL
ISSN
0191-2615
ISBN
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Anahtar Kelimeler
Traffic flow management , Autonomous vehicle , Vehicle trajectory optimization , Car-following model , PART I , COMMUNICATION-SYSTEMS , VEHICLE AUTOMATION , FLOW OPTIMIZATION , TRAFFIC FLOW , TIME , DESIGN , SAFETY , ASSIGNMENT , BEHAVIOR , Business & Economics , Engineering , Operations Research & Management Science , Transportation