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Learning Compositional Koopman Operators for Model-Based Control

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arxiv 1910.08264 v2 pith:Q3XOAR5D submitted 2019-10-18 cs.LG cs.ROmath.OCstat.ML

classification cs.LGcs.ROmath.OCstat.ML
keywords koopmancontroloperatorscompositionallinearnetworksneuralobjects
verification ladder T0 review T1 audit T2 compute T3 formal
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Finding an embedding space for a linear approximation of a nonlinear dynamical system enables efficient system identification and control synthesis. The Koopman operator theory lays the foundation for identifying the nonlinear-to-linear coordinate transformations with data-driven methods. Recently, researchers have proposed to use deep neural networks as a more expressive class of basis functions for calculating the Koopman operators. These approaches, however, assume a fixed dimensional state space; they are therefore not applicable to scenarios with a variable number of objects. In this paper, we propose to learn compositional Koopman operators, using graph neural networks to encode the state into object-centric embeddings and using a block-wise linear transition matrix to regularize the shared structure across objects. The learned dynamics can quickly adapt to new environments of unknown physical parameters and produce control signals to achieve a specified goal. Our experiments on manipulating ropes and controlling soft robots show that the proposed method has better efficiency and generalization ability than existing baselines.

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    cs.RO 2025-05 conditional novelty 6.0 of 10

    3D occupancy representation with a learned 3D CNN-GNN dynamics model and MPC enables a robot to shape plasticine into letter goals in both simulation and the real world.

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