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Analysis and Approximation of Rare Events : Representations and Weak Convergence Methods / by Amarjit Budhiraja, Paul Dupuis
(Probability Theory and Stochastic Modelling. ISSN:21993149 ; 94)
版 | 1st ed. 2019. |
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出版者 | (New York, NY : Springer US : Imprint: Springer) |
出版年 | 2019 |
本文言語 | 英語 |
大きさ | XIX, 574 p. 14 illus., 1 illus. in color : online resource |
著者標目 | *Budhiraja, Amarjit author Dupuis, Paul author SpringerLink (Online service) |
件 名 | LCSH:Probabilities LCSH:Engineering mathematics LCSH:Engineering -- Data processing 全ての件名で検索 LCSH:Numerical analysis FREE:Probability Theory FREE:Mathematical and Computational Engineering Applications FREE:Numerical Analysis |
一般注記 | Preliminaries and elementary examples -- Discrete time processes -- Continuous time processes -- Monte Carlo approximation This book presents broadly applicable methods for the large deviation and moderate deviation analysis of discrete and continuous time stochastic systems. A feature of the book is the systematic use of variational representations for quantities of interest such as normalized logarithms of probabilities and expected values. By characterizing a large deviation principle in terms of Laplace asymptotics, one converts the proof of large deviation limits into the convergence of variational representations. These features are illustrated though their application to a broad range of discrete and continuous time models, including stochastic partial differential equations, processes with discontinuous statistics, occupancy models, and many others. The tools used in the large deviation analysis also turn out to be useful in understanding Monte Carlo schemes for the numerical approximation of the same probabilities and expected values. This connection is illustrated through thedesign and analysis of importance sampling and splitting schemes for rare event estimation. The book assumes a solid background in weak convergence of probability measures and stochastic analysis, and is suitable for advanced graduate students, postdocs and researchers HTTP:URL=https://doi.org/10.1007/978-1-4939-9579-0 |
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電子ブック | 配架場所 | 資料種別 | 巻 次 | 請求記号 | 状 態 | 予約 | コメント | ISBN | 刷 年 | 利用注記 | 指定図書 | 登録番号 |
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電子ブック | オンライン | 電子ブック |
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Springer eBooks | 9781493995790 |
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EB00226948 |
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データ種別 | 電子ブック |
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分 類 | LCC:QA273.A1-274.9 DC23:519.2 |
書誌ID | 4000134455 |
ISBN | 9781493995790 |
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※2017年9月4日以降