Modern Predictive Control
Autor Ding Baocangen Limba Engleză Paperback – 6 oct 2017
The superiority of MPC is in its numerical solution. Usually, MPC is employed to solve a finite-horizon optimal control problem at each sampling instant and obtain control actions for both the present time and a future period. However, only the current control move is applied to the plant.
This complete, step-by-step exploration of various approaches to MPC:
- Introduces basic concepts of systems, modeling, and predictive control, detailing development from classical MPC to synthesis approaches
- Explores use of Model Algorithmic Control (MAC), Dynamic Matrix Control (DMC), Generalized Predictive Control (GPC), and Two-Step Model Predictive Control
- Identifies important general approaches to synthesis
- Discusses open-loop and closed-loop optimization in synthesis approaches
- Covers output feedback synthesis approaches with and without a finite switching horizon
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Specificații
ISBN-13: 9781138117693
ISBN-10: 1138117692
Pagini: 286
Ilustrații: 41 Illustrations, black and white
Dimensiuni: 156 x 234 x 23 mm
Greutate: 0.45 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press
ISBN-10: 1138117692
Pagini: 286
Ilustrații: 41 Illustrations, black and white
Dimensiuni: 156 x 234 x 23 mm
Greutate: 0.45 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press
Public țintă
ProfessionalCuprins
Systems, modeling and model predictive control. Model algorithmic control (MAC). Dynamic matrix control (DMC). Generalized predictive control (GPC). Two-step model predictive control. Sketch of synthesis approaches of MPC. State feedback synthesis approaches. Synthesis approaches with finite switching horizon. Open-loop optimization and closed-loop optimization in synthesis approaches. Output feedback synthesis approaches. Bibliography. Index.
Descriere
MPC provides the flexibility to act while optimizing, which is essential to the solution of many engineering problems in complex plants. This complete, step-by-step exploration of various approaches to MPC introduces basic concepts of systems, modeling, and predictive control — detailing development from classical MPC to synthesis approaches. It explores the use of Model Algorithmic Control (MAC), Dynamic Matrix Control (DMC), Generalized Predictive Control (GPC), and Two-Step Model Predictive Control and identifies important general approaches to synthesis. The book also discusses open-loop and closed-loop optimization in synthesis approaches and covers output feedback synthesis approaches with and without a finite switching horizon.