Intensitivity to Non-optimal Design in Bayesian Decision Theory

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ISBN 13 :
Total Pages : 18 pages
Book Rating : 4.:/5 (658 download)

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Book Synopsis Intensitivity to Non-optimal Design in Bayesian Decision Theory by : G. R. Antelman

Download or read book Intensitivity to Non-optimal Design in Bayesian Decision Theory written by G. R. Antelman and published by . This book was released on 1965 with total page 18 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Bayes Decision Theory: Insensitivity to Non-optimal Design

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ISBN 13 :
Total Pages : 200 pages
Book Rating : 4.:/5 (319 download)

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Book Synopsis Bayes Decision Theory: Insensitivity to Non-optimal Design by : Gordon Randolph Antelman

Download or read book Bayes Decision Theory: Insensitivity to Non-optimal Design written by Gordon Randolph Antelman and published by . This book was released on 1963 with total page 200 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Non-Bayesian Decision Theory

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Publisher : Springer Science & Business Media
ISBN 13 : 1402086997
Total Pages : 176 pages
Book Rating : 4.4/5 (2 download)

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Book Synopsis Non-Bayesian Decision Theory by : Martin Peterson

Download or read book Non-Bayesian Decision Theory written by Martin Peterson and published by Springer Science & Business Media. This book was released on 2008-06-06 with total page 176 pages. Available in PDF, EPUB and Kindle. Book excerpt: For quite some time, philosophers, economists, and statisticians have endorsed a view on rational choice known as Bayesianism. The work on this book has grown out of a feeling that the Bayesian view has come to dominate the academic com- nitytosuchanextentthatalternative,non-Bayesianpositionsareseldomextensively researched. Needless to say, I think this is a pity. Non-Bayesian positions deserve to be examined with much greater care, and the present work is an attempt to defend what I believe to be a coherent and reasonably detailed non-Bayesian account of decision theory. The main thesis I defend can be summarised as follows. Rational agents m- imise subjective expected utility, but contrary to what is claimed by Bayesians, ut- ity and subjective probability should not be de?ned in terms of preferences over uncertain prospects. On the contrary, rational decision makers need only consider preferences over certain outcomes. It will be shown that utility and probability fu- tions derived in a non-Bayesian manner can be used for generating preferences over uncertain prospects, that support the principle of maximising subjective expected utility. To some extent, this non-Bayesian view gives an account of what modern - cision theory could have been like, had decision theorists not entered the Bayesian path discovered by Ramsey, de Finetti, Savage, and others. I will not discuss all previous non-Bayesian positions presented in the literature.

Bayesian Decision Theory for Determining the Optimal Size of Experiments

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ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (615 download)

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Book Synopsis Bayesian Decision Theory for Determining the Optimal Size of Experiments by : T. E. Body

Download or read book Bayesian Decision Theory for Determining the Optimal Size of Experiments written by T. E. Body and published by . This book was released on 1968 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Frontiers of Statistical Decision Making and Bayesian Analysis

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Publisher : Springer
ISBN 13 : 9781441969439
Total Pages : 631 pages
Book Rating : 4.9/5 (694 download)

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Book Synopsis Frontiers of Statistical Decision Making and Bayesian Analysis by : Ming-Hui Chen

Download or read book Frontiers of Statistical Decision Making and Bayesian Analysis written by Ming-Hui Chen and published by Springer. This book was released on 2010-08-16 with total page 631 pages. Available in PDF, EPUB and Kindle. Book excerpt: Research in Bayesian analysis and statistical decision theory is rapidly expanding and diversifying, making it increasingly more difficult for any single researcher to stay up to date on all current research frontiers. This book provides a review of current research challenges and opportunities. While the book can not exhaustively cover all current research areas, it does include some exemplary discussion of most research frontiers. Topics include objective Bayesian inference, shrinkage estimation and other decision based estimation, model selection and testing, nonparametric Bayes, the interface of Bayesian and frequentist inference, data mining and machine learning, methods for categorical and spatio-temporal data analysis and posterior simulation methods. Several major application areas are covered: computer models, Bayesian clinical trial design, epidemiology, phylogenetics, bioinformatics, climate modeling and applications in political science, finance and marketing. As a review of current research in Bayesian analysis the book presents a balance between theory and applications. The lack of a clear demarcation between theoretical and applied research is a reflection of the highly interdisciplinary and often applied nature of research in Bayesian statistics. The book is intended as an update for researchers in Bayesian statistics, including non-statisticians who make use of Bayesian inference to address substantive research questions in other fields. It would also be useful for graduate students and research scholars in statistics or biostatistics who wish to acquaint themselves with current research frontiers.

Bayesian Dose-response Modeling in Sparse Data

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ISBN 13 : 9781321846508
Total Pages : 160 pages
Book Rating : 4.8/5 (465 download)

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Book Synopsis Bayesian Dose-response Modeling in Sparse Data by : Steven B. Kim

Download or read book Bayesian Dose-response Modeling in Sparse Data written by Steven B. Kim and published by . This book was released on 2015 with total page 160 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book discusses Bayesian dose-response modeling in small samples applied to two different settings. The first setting is early phase clinical trials, and the second setting is toxicology studies in cancer risk assessment. In early phase clinical trials, experimental units are humans who are actual patients. Prior to a clinical trial, opinions from multiple subject area experts are generally more informative than the opinion of a single expert, but we may face a dilemma when they have disagreeing prior opinions. In this regard, we consider compromising the disagreement and compare two different approaches for making a decision. In addition to combining multiple opinions, we also address balancing two levels of ethics in early phase clinical trials. The first level is individual-level ethics which reflects the perspective of trial participants. The second level is population-level ethics which reflects the perspective of future patients. We extensively compare two existing statistical methods which focus on each perspective and propose a new method which balances the two conflicting perspectives. In toxicology studies, experimental units are living animals. Here we focus on a potential non-monotonic dose-response relationship which is known as hormesis. Briefly, hormesis is a phenomenon which can be characterized by a beneficial effect at low doses and a harmful effect at high doses. In cancer risk assessments, the estimation of a parameter, which is known as a benchmark dose, can be highly sensitive to a class of assumptions, monotonicity or hormesis. In this regard, we propose a robust approach which considers both monotonicity and hormesis as a possibility. In addition, We discuss statistical hypothesis testing for hormesis and consider various experimental designs for detecting hormesis based on Bayesian decision theory. Past experiments have not been optimally designed for testing for hormesis, and some Bayesian optimal designs may not be optimal under a wrong parametric assumption. In this regard, we consider a robust experimental design which does not require any parametric assumption.

Optimized Bayesian Dynamic Advising

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Publisher : Springer Science & Business Media
ISBN 13 : 9781852339289
Total Pages : 554 pages
Book Rating : 4.3/5 (392 download)

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Book Synopsis Optimized Bayesian Dynamic Advising by : Miroslav Karny

Download or read book Optimized Bayesian Dynamic Advising written by Miroslav Karny and published by Springer Science & Business Media. This book was released on 2006 with total page 554 pages. Available in PDF, EPUB and Kindle. Book excerpt: A state-of-the-art research monograph providing consistent treatment of supervisory control, by one of the world’s leading groups in the area of Bayesian identification, control, and decision making.

Optimal Bayesian Design for Nonlinear Models

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ISBN 13 :
Total Pages : 274 pages
Book Rating : 4.:/5 (319 download)

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Book Synopsis Optimal Bayesian Design for Nonlinear Models by : Marilyn A. Agin

Download or read book Optimal Bayesian Design for Nonlinear Models written by Marilyn A. Agin and published by . This book was released on 1997 with total page 274 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Journal of the American Statistical Association

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ISBN 13 :
Total Pages : 1072 pages
Book Rating : 4.:/5 (35 download)

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Book Synopsis Journal of the American Statistical Association by :

Download or read book Journal of the American Statistical Association written by and published by . This book was released on 1970 with total page 1072 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Bayesian D-optimal Design for Exponential Growth Model

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ISBN 13 :
Total Pages : 36 pages
Book Rating : 4.:/5 (269 download)

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Book Synopsis Bayesian D-optimal Design for Exponential Growth Model by : Saurabbh Mukhopadhyay

Download or read book Bayesian D-optimal Design for Exponential Growth Model written by Saurabbh Mukhopadhyay and published by . This book was released on 1992 with total page 36 pages. Available in PDF, EPUB and Kindle. Book excerpt:

A Comparison of Different Bayesian Design Criteria to Compute Efficient Conjoint Choice Experiments

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ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (838 download)

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Book Synopsis A Comparison of Different Bayesian Design Criteria to Compute Efficient Conjoint Choice Experiments by : Jie Yu

Download or read book A Comparison of Different Bayesian Design Criteria to Compute Efficient Conjoint Choice Experiments written by Jie Yu and published by . This book was released on 2008 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Selected Water Resources Abstracts

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ISBN 13 :
Total Pages : 1060 pages
Book Rating : 4.E/5 ( download)

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Book Synopsis Selected Water Resources Abstracts by :

Download or read book Selected Water Resources Abstracts written by and published by . This book was released on 1982 with total page 1060 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Scientific and Technical Aerospace Reports

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ISBN 13 :
Total Pages : 702 pages
Book Rating : 4.:/5 (31 download)

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Book Synopsis Scientific and Technical Aerospace Reports by :

Download or read book Scientific and Technical Aerospace Reports written by and published by . This book was released on 1995 with total page 702 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Real time optimal Control of industrial processes: a bayesian decision theory approach

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ISBN 13 :
Total Pages : 186 pages
Book Rating : 4.:/5 (344 download)

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Book Synopsis Real time optimal Control of industrial processes: a bayesian decision theory approach by : Robert S. Collins

Download or read book Real time optimal Control of industrial processes: a bayesian decision theory approach written by Robert S. Collins and published by . This book was released on 1974 with total page 186 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Optimal Bayesian Experimental Design for Linear Models (bayesian Optimal Design)

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ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (87 download)

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Book Synopsis Optimal Bayesian Experimental Design for Linear Models (bayesian Optimal Design) by : Kathryn Chaloner

Download or read book Optimal Bayesian Experimental Design for Linear Models (bayesian Optimal Design) written by Kathryn Chaloner and published by . This book was released on 1983 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Bayesian Statistical Decision Theory and Reliability-based Design

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ISBN 13 :
Total Pages : 22 pages
Book Rating : 4.:/5 (251 download)

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Book Synopsis Bayesian Statistical Decision Theory and Reliability-based Design by : C. Allin Cornell

Download or read book Bayesian Statistical Decision Theory and Reliability-based Design written by C. Allin Cornell and published by . This book was released on 1972 with total page 22 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Bayesian and High-Dimensional Global Optimization

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Publisher : Springer Nature
ISBN 13 : 3030647129
Total Pages : 125 pages
Book Rating : 4.0/5 (36 download)

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Book Synopsis Bayesian and High-Dimensional Global Optimization by : Anatoly Zhigljavsky

Download or read book Bayesian and High-Dimensional Global Optimization written by Anatoly Zhigljavsky and published by Springer Nature. This book was released on 2021-03-02 with total page 125 pages. Available in PDF, EPUB and Kindle. Book excerpt: Accessible to a variety of readers, this book is of interest to specialists, graduate students and researchers in mathematics, optimization, computer science, operations research, management science, engineering and other applied areas interested in solving optimization problems. Basic principles, potential and boundaries of applicability of stochastic global optimization techniques are examined in this book. A variety of issues that face specialists in global optimization are explored, such as multidimensional spaces which are frequently ignored by researchers. The importance of precise interpretation of the mathematical results in assessments of optimization methods is demonstrated through examples of convergence in probability of random search. Methodological issues concerning construction and applicability of stochastic global optimization methods are discussed, including the one-step optimal average improvement method based on a statistical model of the objective function. A significant portion of this book is devoted to an analysis of high-dimensional global optimization problems and the so-called ‘curse of dimensionality’. An examination of the three different classes of high-dimensional optimization problems, the geometry of high-dimensional balls and cubes, very slow convergence of global random search algorithms in large-dimensional problems , and poor uniformity of the uniformly distributed sequences of points are included in this book.