Linear And Nonlinear Distributed Economic Model Predictive Control


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Linear and Nonlinear Distributed Economic Model Predictive Control


Linear and Nonlinear Distributed Economic Model Predictive Control

Author: Jaehwa Lee

language: en

Publisher:

Release Date: 2013


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Economic Nonlinear Model Predictive Control


Economic Nonlinear Model Predictive Control

Author: Timm Faulwasser

language: en

Publisher:

Release Date: 2018


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In recent years, Economic Model Predictive Control (EMPC) has received considerable attention of many research groups. The present tutorial survey summarizes state-of-the-art approaches in EMPC. In this context EMPC is to be understood as receding-horizon optimal control with a stage cost that does not simply penalize the distance to a desired equilibrium but encodes more sophisticated economic objectives. This survey provides a comprehensive overview of EMPC stability results: with and without terminal constraints, with and without dissipativity assumptions, with averaged constraints, formulations with multiple objectives and generalized terminal constraints as well as Lyapunov-based approaches.

Distributed Model Predictive Control Made Easy


Distributed Model Predictive Control Made Easy

Author: José M. Maestre

language: en

Publisher: Springer Science & Business Media

Release Date: 2013-11-10


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The rapid evolution of computer science, communication, and information technology has enabled the application of control techniques to systems beyond the possibilities of control theory just a decade ago. Critical infrastructures such as electricity, water, traffic and intermodal transport networks are now in the scope of control engineers. The sheer size of such large-scale systems requires the adoption of advanced distributed control approaches. Distributed model predictive control (MPC) is one of the promising control methodologies for control of such systems. This book provides a state-of-the-art overview of distributed MPC approaches, while at the same time making clear directions of research that deserve more attention. The core and rationale of 35 approaches are carefully explained. Moreover, detailed step-by-step algorithmic descriptions of each approach are provided. These features make the book a comprehensive guide both for those seeking an introduction to distributed MPC as well as for those who want to gain a deeper insight in the wide range of distributed MPC techniques available.