Data-Efficient Model Learning for Control with Jacobian-Regularized Dynamic-Mode Decomposition}
October 25, 2022 Β· Declared Dead Β· π Conference on Robot Learning
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Authors
Brian E. Jackson, Jeong Hun Lee, Kevin Tracy, Zachary Manchester
arXiv ID
2212.07885
Category
cs.RO: Robotics
Citations
6
Venue
Conference on Robot Learning
Last Checked
4 months ago
Abstract
We present a data-efficient algorithm for learning models for model-predictive control (MPC). Our approach, Jacobian-Regularized Dynamic-Mode Decomposition (JDMD), offers improved sample efficiency over traditional Koopman approaches based on Dynamic-Mode Decomposition (DMD) by leveraging Jacobian information from an approximate prior model of the system, and improved tracking performance over traditional model-based MPC. We demonstrate JDMD's ability to quickly learn bilinear Koopman dynamics representations across several realistic examples in simulation, including a perching maneuver for a fixed-wing aircraft with an empirically derived high-fidelity physics model. In all cases, we show that the models learned by JDMD provide superior tracking and generalization performance within a model-predictive control framework, even in the presence of significant model mismatch, when compared to approximate prior models and models learned by standard Extended DMD (EDMD).
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