ICRA 2016172 citations

Optimization and stabilization of trajectories for constrained dynamical systems

Michael Posa, Scott Kuindersma, Russ Tedrake

Abstract

Contact constraints, such as those between a foot and the ground or a hand and an object, are inherent in many robotic tasks. These constraints define a manifold of feasible states; while well understood mathematically, they pose numerical challenges to many algorithms for planning and controlling whole-body dynamic motions. In this paper, we present an approach to the synthesis and stabilization of complex trajectories for both fully-actuated and underactuated robots subject to contact constraints. We introduce a trajectory optimization algorithm (DIRCON) that extends the direct collocation method, naturally incorporating manifold constraints to produce a nominal trajectory with third-order integration accuracy-a critical feature for achieving reliable tracking control. We adapt the classical time-varying linear quadratic regulator to produce a local cost-to-go in the manifold tangent plane. Finally, we descend the cost-to-go using a quadratic program that incorporates unilateral friction and torque constraints. This approach is demonstrated on three complex walking and climbing locomotion examples in simulation.

BibTeX
@inproceedings{icra2016_optimizationands,
  title = {Optimization and stabilization of trajectories for constrained dynamical systems},
  author = {Michael Posa and Scott Kuindersma and Russ Tedrake},
  booktitle = {ICRA 2016},
  year = {2016}
}
Optimization and stabilization of trajectories for constrained dynamical systems · ICRA 2016