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Titlebook: Simulation-Based Optimization; Parametric Optimizat Abhijit Gosavi Book Nov 20101st edition Springer-Verlag US 2003 Response surface method

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書目名稱Simulation-Based Optimization
副標(biāo)題Parametric Optimizat
編輯Abhijit Gosavi
視頻videohttp://file.papertrans.cn/868/867691/867691.mp4
概述Accessible introduction to reinforcement learning and parametric-optimization techniques.Step-by-step description of several algorithms of simulation-based optimization.Clear and simple introduction t
叢書名稱Operations Research/Computer Science Interfaces Series
圖書封面Titlebook: Simulation-Based Optimization; Parametric Optimizat Abhijit Gosavi Book Nov 20101st edition Springer-Verlag US 2003 Response surface method
描述.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 tothe 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. .
出版日期Book Nov 20101st edition
關(guān)鍵詞Response surface methodology; Simulation; Stochastic Processes; algorithms; game theory; linear optimizat
版次1
doihttps://doi.org/10.1007/978-1-4757-3766-0
issn_series 1387-666X
copyrightSpringer-Verlag US 2003
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Convergence Analysis of Control Optimization Methods,This chapter will discuss the proofs of optimality of most of the algorithms discussed in the context of control optimization. Since all the related algorithms are iterative and generate . of values, we will be dealing with . of these sequences to optimal solutions.
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https://doi.org/10.1007/978-1-4757-3766-0Response surface methodology; Simulation; Stochastic Processes; algorithms; game theory; linear optimizat
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Springer-Verlag US 2003
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Simulation-Based Optimization: An Overview, defining stochastic optimization. We will then discuss the usefulness of simulation in the context of stochastic optimization. In this chapter, we will provide a broad description of stochastic optimization problems rather than describing their solution methods.
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