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Offset-free Nonlinear MPC with Koopman-based Surrogate Models

Offset-free Nonlinear MPC with Koopman-based Surrogate Models

来源:Arxiv_logoArxiv
英文摘要

In this paper, we design offset-free nonlinear Model Predictive Control (MPC) for surrogate models based on Extended Dynamic Mode Decomposition (EDMD). The model used for prediction in MPC is augmented with a disturbance term, that is estimated by an observer. If the full information about the equilibrium of the real system is not available, a reference calculator is introduced in the algorithm to compute the MPC state and input references. The control algorithm guarantees offset-free tracking of the controlled output under the assumption that the modeling errors are asymptotically constant. The effectiveness of the proposed approach is showcased with numerical simulations for two popular benchmark systems: the van-der-Pol oscillator and the four-tanks process.

自动化基础理论

.Offset-free Nonlinear MPC with Koopman-based Surrogate Models[EB/OL].(2025-04-15)[2025-05-13].https://arxiv.org/abs/2504.10954.点此复制

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