English

Recursively Feasible Chance-constrained Model Predictive Control under Gaussian Mixture Model Uncertainty

Systems and Control 2025-07-21 v2 Systems and Control

Abstract

We present a chance-constrained model predictive control (MPC) framework under Gaussian mixture model (GMM) uncertainty. Specifically, we consider the uncertainty that arises from predicting future behaviors of moving obstacles, which may exhibit multiple modes (for example, turning left or right). To address the multi-modal uncertainty distribution, we propose three MPC formulations: nominal chance-constrained planning, robust chance-constrained planning, and contingency planning. We prove that closed-loop trajectories generated by the three planners are safe. The approaches differ in conservativeness and performance guarantee. In particular, the robust chance-constrained planner is recursively feasible under certain assumptions on the propagation of prediction uncertainty. On the other hand, the contingency planner generates a less conservative closed-loop trajectory than the nominal planner. We validate our planners using state-of-the-art trajectory prediction algorithms in autonomous driving simulators.

Keywords

Cite

@article{arxiv.2401.03799,
  title  = {Recursively Feasible Chance-constrained Model Predictive Control under Gaussian Mixture Model Uncertainty},
  author = {Kai Ren and Colin Chen and Hyeontae Sung and Heejin Ahn and Ian Mitchell and Maryam Kamgarpour},
  journal= {arXiv preprint arXiv:2401.03799},
  year   = {2025}
}

Comments

Published in IEEE Transactions on Control Systems Technology SI: Intelligent Decision Making, Planning and Control of Automated Vehicles

R2 v1 2026-06-28T14:11:03.832Z