Predictive Control For Linear And Hybrid Systems


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Predictive Control for Linear and Hybrid Systems


Predictive Control for Linear and Hybrid Systems

Author: Francesco Borrelli

language: en

Publisher: Cambridge University Press

Release Date: 2017-06-22


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With a simple approach that includes real-time applications and algorithms, this book covers the theory of model predictive control (MPC).

Hybrid Dynamical Systems


Hybrid Dynamical Systems

Author: Rafal Goebel

language: en

Publisher: Princeton University Press

Release Date: 2012-03-18


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Hybrid dynamical systems exhibit continuous and instantaneous changes, having features of continuous-time and discrete-time dynamical systems. Filled with a wealth of examples to illustrate concepts, this book presents a complete theory of robust asymptotic stability for hybrid dynamical systems that is applicable to the design of hybrid control algorithms--algorithms that feature logic, timers, or combinations of digital and analog components. With the tools of modern mathematical analysis, Hybrid Dynamical Systems unifies and generalizes earlier developments in continuous-time and discrete-time nonlinear systems. It presents hybrid system versions of the necessary and sufficient Lyapunov conditions for asymptotic stability, invariance principles, and approximation techniques, and examines the robustness of asymptotic stability, motivated by the goal of designing robust hybrid control algorithms. This self-contained and classroom-tested book requires standard background in mathematical analysis and differential equations or nonlinear systems. It will interest graduate students in engineering as well as students and researchers in control, computer science, and mathematics.

Model Predictive Control in the Process Industry


Model Predictive Control in the Process Industry

Author: Eduardo F. Camacho

language: en

Publisher: Springer Science & Business Media

Release Date: 2012-12-06


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Model Predictive Control is an important technique used in the process control industries. It has developed considerably in the last few years, because it is the most general way of posing the process control problem in the time domain. The Model Predictive Control formulation integrates optimal control, stochastic control, control of processes with dead time, multivariable control and future references. The finite control horizon makes it possible to handle constraints and non linear processes in general which are frequently found in industry. Focusing on implementation issues for Model Predictive Controllers in industry, it fills the gap between the empirical way practitioners use control algorithms and the sometimes abstractly formulated techniques developed by researchers. The text is firmly based on material from lectures given to senior undergraduate and graduate students and articles written by the authors.