Efficient Kinematic Planning for Mobile Manipulators with Non-holonomic Constraints Using Optimal Control
January 27, 2017 Β· Declared Dead Β· π IEEE International Conference on Robotics and Automation
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Authors
Markus Giftthaler, Farbod Farshidian, Timothy Sandy, Lukas Stadelmann, Jonas Buchli
arXiv ID
1701.08051
Category
cs.RO: Robotics
Citations
62
Venue
IEEE International Conference on Robotics and Automation
Last Checked
5 months ago
Abstract
This work addresses the problem of kinematic trajectory planning for mobile manipulators with non-holonomic constraints, and holonomic operational-space tracking constraints. We obtain whole-body trajectories and time-varying kinematic feedback controllers by solving a Constrained Sequential Linear Quadratic Optimal Control problem. The employed algorithm features high efficiency through a continuous-time formulation that benefits from adaptive step-size integrators and through linear complexity in the number of integration steps. In a first application example, we solve kinematic trajectory planning problems for a 26 DoF wheeled robot. In a second example, we apply Constrained SLQ to a real-world mobile manipulator in a receding-horizon optimal control fashion, where we obtain optimal controllers and plans at rates up to 100 Hz.
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