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Optimal control strategy for traffic platoon longitudinal coordination around equilibrium state enabled by partially automated vehicles

•An internal model-Kalman filtering-based optimal hybrid feedforward/feedback control strategy is developed.•A practically decoupled platoon regulation around an equilibrium state is established.•String stability of the control system thus obtained is analyzed.•Numerical simulations verified the the...

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Published in:Transportation research. Part C, Emerging technologies Emerging technologies, 2024-02, Vol.159, p.104463, Article 104463
Main Authors: Yuan, Runze, Yu, Hao, Zhang, Guohui, Ma, Tianwei, Xu, Ningshou
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Language:English
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Yu, Hao
Zhang, Guohui
Ma, Tianwei
Xu, Ningshou
description •An internal model-Kalman filtering-based optimal hybrid feedforward/feedback control strategy is developed.•A practically decoupled platoon regulation around an equilibrium state is established.•String stability of the control system thus obtained is analyzed.•Numerical simulations verified the theoretical analysis in decoupling between successive vehicles. This paper presents an internal model-Kalman filtering-based optimal hybrid feedforward/feedback control strategy for traffic platoon control coordination enabled by SAE Automation Level 2 or Level 3 vehicles, i.e., partially automated vehicles (PAVs). Based on the Helly linear car-following model, a PAV platoon is established. Taking each vehicle’s characteristic polynomial as the dominant internal model polynomial, an augmented system state model with filtered inputs is formed, and then both the system states and the external disturbance/internal perturbation from previous vehicle can be estimated by a delicately designed Kalman filter. By using a linear quadratic regulation approach, a distributed hybrid optimal feedforward/feedback controller utilizing the local estimated states is constructed to achieve a practically decoupled platoon regulation around an equilibrium state. String stability of the control system thus obtained is further analyzed. Finally, extensive numerical simulations verified the theoretical analysis in decoupling between successive vehicles, in suppressing the influence of various external disturbances, and in maintaining string stability.
doi_str_mv 10.1016/j.trc.2023.104463
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subjects Dominant internal model
Hybrid feedforward/feedback control
Partially automated vehicle
Platoon control
String stability
title Optimal control strategy for traffic platoon longitudinal coordination around equilibrium state enabled by partially automated vehicles
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