Fast Trajectory Optimization for Legged Robots using Vertex-based ZMP Constraints
May 27, 2017 Β· Declared Dead Β· π IEEE Robotics and Automation Letters
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Authors
Alexander W Winkler, Farbod Farshidian, Diego Pardo, Michael Neunert, Jonas Buchli
arXiv ID
1705.10313
Category
cs.RO: Robotics
Cross-listed
math.OC
Citations
83
Venue
IEEE Robotics and Automation Letters
Last Checked
5 months ago
Abstract
This paper combines the fast Zero-Moment-Point (ZMP) approaches that work well in practice with the broader range of capabilities of a Trajectory Optimization formulation, by optimizing over body motion, footholds and Center of Pressure simultaneously. We introduce a vertex-based representation of the support-area constraint, which can treat arbitrarily oriented point-, line-, and area-contacts uniformly. This generalization allows us to create motions such quadrupedal walking, trotting, bounding, pacing, combinations and transitions between these, limping, bipedal walking and push-recovery all with the same approach. This formulation constitutes a minimal representation of the physical laws (unilateral contact forces) and kinematic restrictions (range of motion) in legged locomotion, which allows us to generate various motion in less than a second. We demonstrate the feasibility of the generated motions on a real quadruped robot.
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