English

A Topological Approach to Gait Generation for Biped Robots

Robotics 2021-07-13 v2

Abstract

This paper describes a topological approach to generating families of open- and closed-loop walking gaits for underactuated 2D and 3D biped walkers subject to configuration inequality constraints, physical holonomic constraints (e.g.,closed-loop linkages), and virtual holonomic constraints (user-defined constraints enforced through feedback control). Our method constructs implicitly-defined manifolds of feasible periodic gaits within a state-time-control space that parameterizes the biped's hybrid trajectories. Since equilibrium configurations of the biped often belong to such manifolds, we use equilibria as "templates" from which to grow the gait families. Equilibria are reliable seeds for the construction of gait families, eliminating the need for random, intuited, or bio-inspired initial guesses at feasible trajectories in an optimization framework. We demonstrate the approach on several 2D and 3D biped walkers.

Keywords

Cite

@article{arxiv.2006.03785,
  title  = {A Topological Approach to Gait Generation for Biped Robots},
  author = {Nelson Rosa and Kevin M. Lynch},
  journal= {arXiv preprint arXiv:2006.03785},
  year   = {2021}
}

Comments

To be published in the IEEE Transactions on Robotics. This version has several updated sections and figures. For supplementary material (video and framework implementation), see https://github.com/nr-codes/BipedalGaitGeneration

R2 v1 2026-06-23T16:06:26.352Z