English

High-Speed, All-Terrain Autonomy: Ensuring Safety at the Limits of Mobility

Robotics 2026-03-24 v1 Systems and Control Systems and Control

Abstract

A novel local trajectory planner, capable of controlling an autonomous off-road vehicle on rugged terrain at high-speed is presented. Autonomous vehicles are currently unable to safely operate off-road at high-speed, as current approaches either fail to predict and mitigate rollovers induced by rough terrain or are not real-time feasible. To address this challenge, a novel model predictive control (MPC) formulation is developed for local trajectory planning. A new dynamics model for off-road vehicles on rough, non-planar terrain is derived and used for prediction. Extreme mobility, including tire liftoff without rollover, is safely enabled through a new energy-based constraint. The formulation is analytically shown to mitigate rollover types ignored by many state-of-the-art methods, and real-time feasibility is achieved through parallelized GPGPU computation. The planner's ability to provide safe, extreme trajectories is studied through both simulated trials and full-scale physical experiments. The results demonstrate fewer rollovers and more successes compared to a state-of-the-art baseline across several challenging scenarios that push the vehicle to its mobility limits.

Keywords

Cite

@article{arxiv.2603.20525,
  title  = {High-Speed, All-Terrain Autonomy: Ensuring Safety at the Limits of Mobility},
  author = {James R. Baxter and Bogdan I. Epureanu and Paramsothy Jayakumar and Tulga Ersal},
  journal= {arXiv preprint arXiv:2603.20525},
  year   = {2026}
}

Comments

19 pages, 16 figures, submitted to IEEE Transactions on Robotics