Probabilistic and Randomized Methods for Design Under Uncertainty
(Sprache: Englisch)
Probabilistic and Randomized Methods for Design under Uncertainty is a collection of contributions from the world's leading experts in a fast-emerging branch of control engineering and operations research. The book will be bought by university researchers...
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Probabilistic and Randomized Methods for Design under Uncertainty is a collection of contributions from the world's leading experts in a fast-emerging branch of control engineering and operations research. The book will be bought by university researchers and lecturers along with graduate students in control engineering and operational research.
In many engineering design and optimisation problems, the presence of uncertainty in the data is a critical issue. Different fields of engineering use different ways to describe this uncertainty and adopt a variety of techniques to devise designs that are partly insensitive or even robust to uncertainty.
This book examines uncertain systems for which data is not known exactly. Written by the world's leading researchers in optimisation and robust control; the interactions between these two fields are discussed, as well as new randomised and probabilistic techniques for solving design problems in the presence of uncertainty:
Part I describes general theory and solution methodologies for probability-constrained and stochastic optimization problems;
Part II focuses on numerical methods for solving randomly perturbed convex programs and semi-infinite optimisation problems by probabilistic techniques;
Part III details the theory and applications of randomised techniques to the analysis and design of robust control systems.
This book will be of interest to researchers, academics and postgraduate students in this field as well as professionals working in operations research who are interested in the subject matter.
This book examines uncertain systems for which data is not known exactly. Written by the world's leading researchers in optimisation and robust control; the interactions between these two fields are discussed, as well as new randomised and probabilistic techniques for solving design problems in the presence of uncertainty:
Part I describes general theory and solution methodologies for probability-constrained and stochastic optimization problems;
Part II focuses on numerical methods for solving randomly perturbed convex programs and semi-infinite optimisation problems by probabilistic techniques;
Part III details the theory and applications of randomised techniques to the analysis and design of robust control systems.
This book will be of interest to researchers, academics and postgraduate students in this field as well as professionals working in operations research who are interested in the subject matter.
Inhaltsverzeichnis zu „Probabilistic and Randomized Methods for Design Under Uncertainty “
Part I Chance-Constrained and Stochastic Optimization: Scenario Approximations of Chance Constraints- Optimization Models with Probabilistic Constraints
- Theoretical Framework for Comparing Several Stochastic Optimization Approaches
- Optimization of Risk Measures
- Part II Robust Optimization and Random Sampling
- Sampled Convex Programs and Probabilistically Robust Design
- Tetris: A Study of Randomized Constraint Sampling
- Near Optimal Solutions to Least-Squares Problems with Stochastic Uncertainty
- The Randomized Ellipsoid Algorithm for Constrained Robust Least Squares Problems
- Randomized Algorithms for Semi-Infnite Programming Problems
- Part III Probabilistic Methods in Identifcation and Control: A Learning Theory Approach to System Identifcation and Stochastic Adaptive Control
- Probabilistic Design of a Robust Controller Using a Parameter-Dependent Lyapunov Function
- Probabilistic Robust Controller Design: Probable Near Minimax Value and Randomized Algorithms
- Sampling Random Transfer Functions
- Nonlinear Systems Stability via Random and Quasi-Random Methods
- Probabilistic Control of Nonlinear Uncertain Systems
- Fast Randomized Algorithms for Probabilistic Robustness Analysis
- References.
Autoren-Porträt von Probabilistic and Randomized Methods for Design under Uncertainty
Drs. Giuseppe Calafiore and Fabrizio Dabbene work at the Politecnico di Torino, Italy, where Dr. Calafiore is an associate professor and Dr. Dabbene is a research fellow. Dr. Calafiore is an associate editor of IEEE Transactions on Systems, Man and Cybernetics and Dr. Dabbene is an associate editor of the conference editorial board of the IEEE Control Systems Society. Dr. Calafiore has published 60+ journal papers and both editors are co-authors of Randomized Algorithms for Analysis and Control of Uncertain Systems (Tempo, Calafiore and Dabbene, Springer-Verlag London, 2004).In this edited work, Calafiore and Dabbene have brought together contributions from the world's leading experts in randomised methods as applied to robust design from both control and optimisation angles. The selection of authors is fully international and includes 15 from the United States.
Bibliographische Angaben
- Autor: Probabilistic and Randomized Methods for Design under Uncertainty
- 2006, 458 Seiten, Masse: 16,7 x 24,2 cm, Gebunden, Englisch
- Herausgegeben:Calafiore, Giuseppe; Dabbene, Fabrizio
- Verlag: Springer, London
- ISBN-10: 184628094X
- ISBN-13: 9781846280948
Sprache:
Englisch
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