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  1. Outputs

Robust offset-free constrained Model Predictive Control with Long Short-Term Memory Networks

Academic Article
Publication Date:
2024
abstract:
This paper develops a control scheme, based on the use of Long Short-Term Memory neural network models and Nonlinear Model Predictive Control, which guarantees recursive feasibility with slow time variant set-points and disturbances, input and output constraints and unmeasurable state. Moreover, if the set-point and the disturbance are asymptotically constant, offset-free tracking is guaranteed. Offset-free tracking is obtained by augmenting the model with a disturbance, to be estimated together with the states of the Long Short-Term Memory network model by a properly designed observer. Satisfaction of the output constraints in presence of observer estimation error, time variant set-points and disturbances is obtained using a constraint tightening approach.
Iris type:
1.1 Articolo in rivista
Keywords:
Asymptotic stability; Disturbance Attenuation; Feasibility and Stability Issues; Long short term memory; Long Short-Term Memory Networks; Mathematical models; Nonlinear Model Predictive Control Theory and Applications; Observers; Predictive models; Stability analysis; Tracking; Vectors
List of contributors:
Schimperna, I.; Magni, L.
Authors of the University:
MAGNI LALO
Schimperna Irene
Handle:
https://iris.unipv.it/handle/11571/1509999
Published in:
IEEE TRANSACTIONS ON AUTOMATIC CONTROL
Journal
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