Decompositions for MPC of Linear Dynamic Systems with Activation Constraints
The interconnection of dynamic subsystems that share limited resources are found in many applications, and the control of such systems of subsystems has fueled significant attention from scientists and engineers. For the operation of such systems, model predictive control (MPC) has become a popular...
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doaj-785bc12753f544049530ff005a607a962020-11-25T04:06:03ZengMDPI AGEnergies1996-10732020-11-01135744574410.3390/en13215744Decompositions for MPC of Linear Dynamic Systems with Activation ConstraintsPedro Henrique Valderrama Bento da Silva0Eduardo Camponogara1Laio Oriel Seman2Gabriel Villarrubia González3Valderi Reis Quietinho Leithardt4Department of Automation and Systems Engineering, Federal University of Santa Catarina, Florianópolis 88040-900, BrazilDepartment of Automation and Systems Engineering, Federal University of Santa Catarina, Florianópolis 88040-900, BrazilDepartment of Automation and Systems Engineering, Federal University of Santa Catarina, Florianópolis 88040-900, BrazilExpert Systems and Applications Lab, Faculty of Science, University of Salamanca, Plaza de los Caídos s/n, 37008 Salamanca, SpainCOPELABS, Universidade Lusófona de Humanidades e Tecnologias, 1749-024 Lisboa, PortugalThe interconnection of dynamic subsystems that share limited resources are found in many applications, and the control of such systems of subsystems has fueled significant attention from scientists and engineers. For the operation of such systems, model predictive control (MPC) has become a popular technique, arguably for its ability to deal with complex dynamics and system constraints. The MPC algorithms found in the literature are mostly centralized, with a single controller receiving the signals and performing the computations of output signals. However, the distributed structure of such interconnected subsystems is not necessarily explored by standard MPC. To this end, this work proposes hierarchical decomposition to split the computations between a master problem (centralized component) and a set of decoupled subproblems (distributed components) with activation constraints, which brings about organizational flexibility and distributed computation. Two general methods are considered for hierarchical control and optimization, namely Benders decomposition and outer approximation. Results are reported from a numerical analysis of the decompositions and a simulated application to energy management, in which a limited source of energy is distributed among batteries of electric vehicles.https://www.mdpi.com/1996-1073/13/21/5744MPCBenders decompositionouter approximationbattery chargingEV |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pedro Henrique Valderrama Bento da Silva Eduardo Camponogara Laio Oriel Seman Gabriel Villarrubia González Valderi Reis Quietinho Leithardt |
spellingShingle |
Pedro Henrique Valderrama Bento da Silva Eduardo Camponogara Laio Oriel Seman Gabriel Villarrubia González Valderi Reis Quietinho Leithardt Decompositions for MPC of Linear Dynamic Systems with Activation Constraints Energies MPC Benders decomposition outer approximation battery charging EV |
author_facet |
Pedro Henrique Valderrama Bento da Silva Eduardo Camponogara Laio Oriel Seman Gabriel Villarrubia González Valderi Reis Quietinho Leithardt |
author_sort |
Pedro Henrique Valderrama Bento da Silva |
title |
Decompositions for MPC of Linear Dynamic Systems with Activation Constraints |
title_short |
Decompositions for MPC of Linear Dynamic Systems with Activation Constraints |
title_full |
Decompositions for MPC of Linear Dynamic Systems with Activation Constraints |
title_fullStr |
Decompositions for MPC of Linear Dynamic Systems with Activation Constraints |
title_full_unstemmed |
Decompositions for MPC of Linear Dynamic Systems with Activation Constraints |
title_sort |
decompositions for mpc of linear dynamic systems with activation constraints |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2020-11-01 |
description |
The interconnection of dynamic subsystems that share limited resources are found in many applications, and the control of such systems of subsystems has fueled significant attention from scientists and engineers. For the operation of such systems, model predictive control (MPC) has become a popular technique, arguably for its ability to deal with complex dynamics and system constraints. The MPC algorithms found in the literature are mostly centralized, with a single controller receiving the signals and performing the computations of output signals. However, the distributed structure of such interconnected subsystems is not necessarily explored by standard MPC. To this end, this work proposes hierarchical decomposition to split the computations between a master problem (centralized component) and a set of decoupled subproblems (distributed components) with activation constraints, which brings about organizational flexibility and distributed computation. Two general methods are considered for hierarchical control and optimization, namely Benders decomposition and outer approximation. Results are reported from a numerical analysis of the decompositions and a simulated application to energy management, in which a limited source of energy is distributed among batteries of electric vehicles. |
topic |
MPC Benders decomposition outer approximation battery charging EV |
url |
https://www.mdpi.com/1996-1073/13/21/5744 |
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