Advances in Algorithmic Methods for Stochastic Models

Advances in Algorithmic Methods for Stochastic Models
Title Advances in Algorithmic Methods for Stochastic Models PDF eBook
Author
Publisher
Pages 433
Release 2000
Genre
ISBN

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Advances in Algorithmic Methods for Stochastic Models

Advances in Algorithmic Methods for Stochastic Models
Title Advances in Algorithmic Methods for Stochastic Models PDF eBook
Author Guy Latouche
Publisher Notable Publications, Incorporated
Pages 433
Release 2000
Genre Markov processes
ISBN 9780966584714

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Constructive Computation in Stochastic Models with Applications

Constructive Computation in Stochastic Models with Applications
Title Constructive Computation in Stochastic Models with Applications PDF eBook
Author Quan-Lin Li
Publisher Springer Science & Business Media
Pages 693
Release 2011-02-02
Genre Mathematics
ISBN 364211492X

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"Constructive Computation in Stochastic Models with Applications: The RG-Factorizations" provides a unified, constructive and algorithmic framework for numerical computation of many practical stochastic systems. It summarizes recent important advances in computational study of stochastic models from several crucial directions, such as stationary computation, transient solution, asymptotic analysis, reward processes, decision processes, sensitivity analysis as well as game theory. Graduate students, researchers and practicing engineers in the field of operations research, management sciences, applied probability, computer networks, manufacturing systems, transportation systems, insurance and finance, risk management and biological sciences will find this book valuable. Dr. Quan-Lin Li is an Associate Professor at the Department of Industrial Engineering of Tsinghua University, China.

Recent Advances In Stochastic Modeling And Data Analysis

Recent Advances In Stochastic Modeling And Data Analysis
Title Recent Advances In Stochastic Modeling And Data Analysis PDF eBook
Author Christos H Skiadas
Publisher World Scientific
Pages 669
Release 2007-11-16
Genre Mathematics
ISBN 9814474479

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This volume presents the most recent applied and methodological issues in stochastic modeling and data analysis. The contributions cover various fields such as stochastic processes and applications, data analysis methods and techniques, Bayesian methods, biostatistics, econometrics, sampling, linear and nonlinear models, networks and queues, survival analysis, and time series. The volume presents new results with potential for solving real-life problems and provides novel methods for solving these problems by analyzing the relevant data. The use of recent advances in different fields is emphasized, especially new optimization and statistical methods, data warehouse, data mining and knowledge systems, neural computing, and bioinformatics.

Recent Developments in Stochastic Methods and Applications

Recent Developments in Stochastic Methods and Applications
Title Recent Developments in Stochastic Methods and Applications PDF eBook
Author Albert N. Shiryaev
Publisher Springer Nature
Pages 370
Release 2021-08-02
Genre Mathematics
ISBN 303083266X

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Highlighting the latest advances in stochastic analysis and its applications, this volume collects carefully selected and peer-reviewed papers from the 5th International Conference on Stochastic Methods (ICSM-5), held in Moscow, Russia, November 23-27, 2020. The contributions deal with diverse topics such as stochastic analysis, stochastic methods in computer science, analytical modeling, asymptotic methods and limit theorems, Markov processes, martingales, insurance and financial mathematics, queueing theory and stochastic networks, reliability theory, risk analysis, statistical methods and applications, machine learning and data analysis. The 29 articles in this volume are a representative sample of the 87 high-quality papers accepted and presented during the conference. The aim of the ICSM-5 conference is to promote the collaboration of researchers from Russia and all over the world, and to contribute to the development of the field of stochastic analysis and applications of stochastic models.

Stochastic Models, Statistics and Their Applications

Stochastic Models, Statistics and Their Applications
Title Stochastic Models, Statistics and Their Applications PDF eBook
Author Ansgar Steland
Publisher Springer Nature
Pages 450
Release 2019-10-15
Genre Mathematics
ISBN 3030286657

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This volume presents selected and peer-reviewed contributions from the 14th Workshop on Stochastic Models, Statistics and Their Applications, held in Dresden, Germany, on March 6-8, 2019. Addressing the needs of theoretical and applied researchers alike, the contributions provide an overview of the latest advances and trends in the areas of mathematical statistics and applied probability, and their applications to high-dimensional statistics, econometrics and time series analysis, statistics for stochastic processes, statistical machine learning, big data and data science, random matrix theory, quality control, change-point analysis and detection, finance, copulas, survival analysis and reliability, sequential experiments, empirical processes, and microsimulations. As the book demonstrates, stochastic models and related statistical procedures and algorithms are essential to more comprehensively understanding and solving present-day problems arising in e.g. the natural sciences, machine learning, data science, engineering, image analysis, genetics, econometrics and finance.

Advances in Stochastic Modelling and Data Analysis

Advances in Stochastic Modelling and Data Analysis
Title Advances in Stochastic Modelling and Data Analysis PDF eBook
Author Jacques Janssen
Publisher Springer Science & Business Media
Pages 428
Release 2013-04-17
Genre Mathematics
ISBN 9401706638

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Advances in Stochastic Modelling and Data Analysis presents the most recent developments in the field, together with their applications, mainly in the areas of insurance, finance, forecasting and marketing. In addition, the possible interactions between data analysis, artificial intelligence, decision support systems and multicriteria analysis are examined by top researchers. Audience: A wide readership drawn from theoretical and applied mathematicians, such as operations researchers, management scientists, statisticians, computer scientists, bankers, marketing managers, forecasters, and scientific societies such as EURO and TIMS.