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Simulation-based optimization: parametric optimization techniques and reinforcement learning

Simulation-Based Optimization: Parametric Optimization Techniques and Reinforcement Learning introduces the evolving area of simulation-based optimization. The book's objective is two-fold: (1) It examines the mathematical governing principles of simulation-based optimization, thereby providing...

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Detalles Bibliográficos
Autor principal: Gosavi, Abhijit
Lenguaje:eng
Publicado: Springer 2003
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-1-4757-3766-0
http://cds.cern.ch/record/2146573
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author Gosavi, Abhijit
author_facet Gosavi, Abhijit
author_sort Gosavi, Abhijit
collection CERN
description Simulation-Based Optimization: Parametric Optimization Techniques and Reinforcement Learning introduces the evolving area of simulation-based optimization. The book's objective is two-fold: (1) It examines the mathematical governing principles of simulation-based optimization, thereby providing the reader with the ability to model relevant real-life problems using these techniques. (2) It outlines the computational technology underlying these methods. Taken together these two aspects demonstrate that the mathematical and computational methods discussed in this book do work. Broadly speaking, the book has two parts: (1) parametric (static) optimization and (2) control (dynamic) optimization. Some of the book's special features are: *An accessible introduction to reinforcement learning and parametric-optimization techniques. *A step-by-step description of several algorithms of simulation-based optimization. *A clear and simple introduction to the methodology of neural networks. *A gentle introduction to convergence analysis of some of the methods enumerated above. *Computer programs for many algorithms of simulation-based optimization.
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spelling cern-21465732021-04-21T19:43:26Zdoi:10.1007/978-1-4757-3766-0http://cds.cern.ch/record/2146573engGosavi, AbhijitSimulation-based optimization: parametric optimization techniques and reinforcement learningMathematical Physics and MathematicsSimulation-Based Optimization: Parametric Optimization Techniques and Reinforcement Learning introduces the evolving area of simulation-based optimization. The book's objective is two-fold: (1) It examines the mathematical governing principles of simulation-based optimization, thereby providing the reader with the ability to model relevant real-life problems using these techniques. (2) It outlines the computational technology underlying these methods. Taken together these two aspects demonstrate that the mathematical and computational methods discussed in this book do work. Broadly speaking, the book has two parts: (1) parametric (static) optimization and (2) control (dynamic) optimization. Some of the book's special features are: *An accessible introduction to reinforcement learning and parametric-optimization techniques. *A step-by-step description of several algorithms of simulation-based optimization. *A clear and simple introduction to the methodology of neural networks. *A gentle introduction to convergence analysis of some of the methods enumerated above. *Computer programs for many algorithms of simulation-based optimization.Springeroai:cds.cern.ch:21465732003
spellingShingle Mathematical Physics and Mathematics
Gosavi, Abhijit
Simulation-based optimization: parametric optimization techniques and reinforcement learning
title Simulation-based optimization: parametric optimization techniques and reinforcement learning
title_full Simulation-based optimization: parametric optimization techniques and reinforcement learning
title_fullStr Simulation-based optimization: parametric optimization techniques and reinforcement learning
title_full_unstemmed Simulation-based optimization: parametric optimization techniques and reinforcement learning
title_short Simulation-based optimization: parametric optimization techniques and reinforcement learning
title_sort simulation-based optimization: parametric optimization techniques and reinforcement learning
topic Mathematical Physics and Mathematics
url https://dx.doi.org/10.1007/978-1-4757-3766-0
http://cds.cern.ch/record/2146573
work_keys_str_mv AT gosaviabhijit simulationbasedoptimizationparametricoptimizationtechniquesandreinforcementlearning