English

A Computationally Efficient and Human Implementable Minimum-lap-time Control Policy for Energy-limited Race Cars

Optimization and Control 2026-03-04 v1

Abstract

This paper presents a provably optimal, real-time capable energy management policy for race cars that provides simple human-driver-implementable control cues. Specifically, we first formulate the energy-constrained minimum-lap-time control problem via Pontryagin's Minimum Principle (PMP) and derive the optimal policy and costate dynamics using Karush-Kuhn-Tucker (KKT) optimality conditions. We show that the optimal control policy follows a bang-bang structure that is easily implementable by a human driver, eliminating the need for potentially dangerous active throttle pedal overwrites or distracting signals. Moreover, the analytical formulation of the optimal system dynamics allows us to recast the problem as a sequence of boundary-value problems, which can be efficiently solved using root-finding methods. Our results show that our proposed approach can compute the same globally optimal control strategies of existing numerical methods based on direct optimal control, whilst drastically reducing computation time from the order of seconds to milliseconds.

Keywords

Cite

@article{arxiv.2603.02339,
  title  = {A Computationally Efficient and Human Implementable Minimum-lap-time Control Policy for Energy-limited Race Cars},
  author = {Erik van den Eshof and Wytze de Vries and Mauro Salazar},
  journal= {arXiv preprint arXiv:2603.02339},
  year   = {2026}
}

Comments

6 pages, 5 figures, submitted to the IEEE International Conference on Intelligent Transportation Systems (ITSC) 2026