Energy dissipation based longitudinal and lateral coupling control for intelligent vehicles

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Authors

Zhang, Rui
Ma, Yulin
Li, Zhixiong
Malekian, Reza
Sotel

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Journal ISSN

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Publisher

Institute of Electrical and Electronics Engineers

Abstract

This paper proposes a combined longitudinal and lateral control approach for an intelligent vehicle system based on energy dissipation. The vehicle system dynamics resembles a series of mass/spring/damper systems that are dissipative, i.e., the energy of the system decays to zero eventually. Thus, the nonlinear-optimal longitudinal and lateral coupling control problem of the intelligent vehicle system is transformed into a dissipative control design based on an energy storage function. To satisfy the γ-performance, with respect to the quadratic supply rate, the storage function is developed by using a back-stepping based Lyapunov method and a step-by-step improvement of performance bounds. A dissipative feedback control law is formulated by successive approximation based on the step-by-step reduction of the value of γ. The results of the adaptive vehicle control simulations and test-bed experiments are provided and verified by the respective comparison of energy consumption on different values of γ and speed adaption under different road geometries.

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Keywords

Longitudinal control, Vehicle system dynamics, Successive approximations, Performance bounds, Nonlinear optimal, Lateral coupling, Intelligent vehicle systems, Dissipative feedbacks, Dissipative control, Vehicles, Lyapunov methods, Intelligent vehicle highway systems, Energy utilization, Energy dissipation, Control system synthesis

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Citation

Zhang, R., Ma, Y., Li, Z. et al. 2018, 'Energy dissipation based longitudinal and lateral coupling control for intelligent vehicles', IEEE Intelligent Transportation Systems Magazine, vol. 10, no. 2, pp. 121-133.