English

Perceptive Variable-Timing Footstep Planning for Humanoid Locomotion on Disconnected Footholds

Robotics 2026-03-10 v1

Abstract

Many real-world walking scenarios contain obstacles and unsafe ground patches (e.g., slippery or cluttered areas), leaving a disconnected set of admissible footholds that can be modeled as stepping-stone-like regions. We propose an onboard, perceptive mixed-integer model predictive control framework that jointly plans foot placement and step duration using step-to-step Divergent Component of Motion (DCM) dynamics. Ego-centric depth images are fused into a probabilistic local heightmap, from which we extract a union of convex steppable regions. Region membership is enforced with binary variables in a mixed-integer quadratic program (MIQP). To keep the optimization tractable while certifying safety, we embed capturability bounds in the DCM space: a lateral one-step condition (preventing leg crossing) and a sagittal infinite-step bound that limits unstable growth. We further re-plan within the step by back-propagating the measured instantaneous DCM to update the initial DCM, improving robustness to model mismatch and external disturbances. We evaluate the approach in simulation on Digit on randomized stepping-stone fields, including external pushes. The planner generates terrain-aware, dynamically consistent footstep sequences with adaptive timing and millisecond-level solve times.

Keywords

Cite

@article{arxiv.2603.07400,
  title  = {Perceptive Variable-Timing Footstep Planning for Humanoid Locomotion on Disconnected Footholds},
  author = {Zhaoyang Xiang and Upama Pant and Ayonga Hereid},
  journal= {arXiv preprint arXiv:2603.07400},
  year   = {2026}
}

Comments

8 pages, 5 figures, 1 table, 3 algorithms. Supplemental video at: https://youtu.be/5EeuBnSb66s