Case Studies In Bayesian Statistics

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Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,Robert E. Kass,Alicia Carriquiry,Andrew Gelman,David Higdon,Donna K. Pauler,Isabella Verdinelli
Publisher : Springer
Page : 384 pages
File Size : 51,6 Mb
Release : 2018-08-17
Category : Mathematics
ISBN : 9781461220787

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Case Studies in Bayesian Statistics by Constantine Gatsonis,Robert E. Kass,Alicia Carriquiry,Andrew Gelman,David Higdon,Donna K. Pauler,Isabella Verdinelli Pdf

This volume contains invited case studies with the accompanying discussion as well as contributed papers selected by a refereeing process of 6th Workshop on Case Studies in Bayesian Statistics was held at the Carnegie Mellon University in October, 2001.

Case Studies in Bayesian Statistical Modelling and Analysis

Author : Clair L. Alston,Kerrie L. Mengersen,Anthony N. Pettitt
Publisher : John Wiley & Sons
Page : 411 pages
File Size : 42,5 Mb
Release : 2012-10-10
Category : Mathematics
ISBN : 9781118394328

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Case Studies in Bayesian Statistical Modelling and Analysis by Clair L. Alston,Kerrie L. Mengersen,Anthony N. Pettitt Pdf

Provides an accessible foundation to Bayesian analysis using real world models This book aims to present an introduction to Bayesian modelling and computation, by considering real case studies drawn from diverse fields spanning ecology, health, genetics and finance. Each chapter comprises a description of the problem, the corresponding model, the computational method, results and inferences as well as the issues that arise in the implementation of these approaches. Case Studies in Bayesian Statistical Modelling and Analysis: Illustrates how to do Bayesian analysis in a clear and concise manner using real-world problems. Each chapter focuses on a real-world problem and describes the way in which the problem may be analysed using Bayesian methods. Features approaches that can be used in a wide area of application, such as, health, the environment, genetics, information science, medicine, biology, industry and remote sensing. Case Studies in Bayesian Statistical Modelling and Analysis is aimed at statisticians, researchers and practitioners who have some expertise in statistical modelling and analysis, and some understanding of the basics of Bayesian statistics, but little experience in its application. Graduate students of statistics and biostatistics will also find this book beneficial.

Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,Robert E. Kass,Bradley Carlin,Alicia Carriquiry,Andrew Gelman,Isabella Verdinelli,Mike West
Publisher : Springer Science & Business Media
Page : 441 pages
File Size : 49,7 Mb
Release : 2012-12-06
Category : Mathematics
ISBN : 9781461300359

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Case Studies in Bayesian Statistics by Constantine Gatsonis,Robert E. Kass,Bradley Carlin,Alicia Carriquiry,Andrew Gelman,Isabella Verdinelli,Mike West Pdf

The 5th Workshop on Case Studies in Bayesian Statistics was held at the Carnegie Mellon University campus on September 24-25, 1999. As in the past, the workshop featured both invited and contributed case studies. The former were presented and discussed in detail while the latter were presented in poster format. This volume contains the three invited case studies with the accompanying discussion as well as ten contributed pa pers selected by a refereeing process. The majority of case studies in the volume come from biomedical research. However, the reader will also find studies in education and public policy, environmental pollution, agricul ture, and robotics. INVITED PAPERS The three invited cases studies at the workshop discuss problems in ed ucational policy, clinical trials design, and environmental epidemiology, respectively. 1. In School Choice in NY City: A Bayesian Analysis ofan Imperfect Randomized Experiment J. Barnard, C. Frangakis, J. Hill, and D. Rubin report on the analysis of the data from a randomized study conducted to evaluate the New YorkSchool Choice Scholarship Pro gram. The focus ofthe paper is on Bayesian methods for addressing the analytic challenges posed by extensive non-compliance among study participants and substantial levels of missing data. 2. In Adaptive Bayesian Designs for Dose-Ranging Drug Trials D. Berry, P. Mueller, A. Grieve, M. Smith, T. Parke, R. Blazek, N.

Case studies in bayesian statistics

Author : Constantine Gatsonis
Publisher : Unknown
Page : 128 pages
File Size : 46,8 Mb
Release : 1995
Category : Electronic
ISBN : OCLC:874368154

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Case studies in bayesian statistics by Constantine Gatsonis Pdf

Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,James S. Hodges,Robert E. Kass,Robert E. McCulloch,Peter Rossi,Nozer D. Singpurwalla
Publisher : Springer Science & Business Media
Page : 483 pages
File Size : 45,9 Mb
Release : 2012-12-06
Category : Mathematics
ISBN : 9781461222903

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Case Studies in Bayesian Statistics by Constantine Gatsonis,James S. Hodges,Robert E. Kass,Robert E. McCulloch,Peter Rossi,Nozer D. Singpurwalla Pdf

This third volume of case studies presents detailed applications of Bayesian statistical analysis, emphasising the scientific context. The papers were presented and discussed at a workshop held at Carnegie-Mellon University, and this volume - dedicated to the memory of Morrie Groot-reproduces six invited papers, each with accompanying invited discussion, and nine contributed papers with the focus on econometric applications.

Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,James S Hodges,Robert E Kass
Publisher : Unknown
Page : 500 pages
File Size : 50,7 Mb
Release : 1997-06-01
Category : Bayesian statistical decision theory
ISBN : 1461222915

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Case Studies in Bayesian Statistics by Constantine Gatsonis,James S Hodges,Robert E Kass Pdf

Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,Robert E. Kass,Bradley Carlin,Alicia Carriquiry,A. Gelman,Isabella Verdinelli,Mike West
Publisher : Springer Science & Business Media
Page : 436 pages
File Size : 47,9 Mb
Release : 2012-12-06
Category : Mathematics
ISBN : 9781461215028

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Case Studies in Bayesian Statistics by Constantine Gatsonis,Robert E. Kass,Bradley Carlin,Alicia Carriquiry,A. Gelman,Isabella Verdinelli,Mike West Pdf

The 4th Workshop on Case Studies in Bayesian Statistics was held at the Car negie Mellon University campus on September 27-28, 1997. As in the past, the workshop featured both invited and contributed case studies. The former were presented and discussed in detail while the latter were presented in poster format. This volume contains the four invited case studies with the accompanying discus sion as well as nine contributed papers selected by a refereeing process. While most of the case studies in the volume come from biomedical research the reader will also find studies in environmental science and marketing research. INVITED PAPERS In Modeling Customer Survey Data, Linda A. Clark, William S. Cleveland, Lorraine Denby, and Chuanhai LiD use hierarchical modeling with time series components in for customer value analysis (CVA) data from Lucent Technologies. The data were derived from surveys of customers of the company and its competi tors, designed to assess relative performance on a spectrum of issues including product and service quality and pricing. The model provides a full description of the CVA data, with random location and scale effects for survey respondents and longitudinal company effects for each attribute. In addition to assessing the performance of specific companies, the model allows the empirical exploration of the conceptual basis of consumer value analysis. The authors place special em phasis on graphical displays for this complex, multivariate set of data and include a wealth of such plots in the paper.

Case Studies in Bayesian Methods for Biopharmaceutical CMC

Author : Paul Faya,Tony Pourmohamad
Publisher : CRC Press
Page : 423 pages
File Size : 45,5 Mb
Release : 2022-12-15
Category : Mathematics
ISBN : 9781000824865

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Case Studies in Bayesian Methods for Biopharmaceutical CMC by Paul Faya,Tony Pourmohamad Pdf

The subject of this book is applied Bayesian methods for chemistry, manufacturing, and control (CMC) studies in the biopharmaceutical industry. The book has multiple authors from industry and academia, each contributing a case study (chapter). The collection of case studies covers a broad array of CMC topics, including stability analysis, analytical method development, specification setting, process development and optimization, process control, experimental design, dissolution testing, and comparability studies. The analysis of each case study includes a presentation of code and reproducible output. This book is written with an academic level aimed at practicing nonclinical biostatisticians, most of whom have graduate degrees in statistics. • First book of its kind focusing strictly on CMC Bayesian case studies • Case studies with code and output • Representation from several companies across the industry as well as academia • Authors are leading and well-known Bayesian statisticians in the CMC field • Accompanying website with code for reproducibility • Reflective of real-life industry applications/problems

Case Studies in Applied Bayesian Data Science

Author : Kerrie L. Mengersen,Pierre Pudlo,Christian P. Robert
Publisher : Springer Nature
Page : 415 pages
File Size : 47,7 Mb
Release : 2020-05-28
Category : Mathematics
ISBN : 9783030425531

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Case Studies in Applied Bayesian Data Science by Kerrie L. Mengersen,Pierre Pudlo,Christian P. Robert Pdf

Presenting a range of substantive applied problems within Bayesian Statistics along with their Bayesian solutions, this book arises from a research program at CIRM in France in the second semester of 2018, which supported Kerrie Mengersen as a visiting Jean-Morlet Chair and Pierre Pudlo as the local Research Professor. The field of Bayesian statistics has exploded over the past thirty years and is now an established field of research in mathematical statistics and computer science, a key component of data science, and an underpinning methodology in many domains of science, business and social science. Moreover, while remaining naturally entwined, the three arms of Bayesian statistics, namely modelling, computation and inference, have grown into independent research fields. While the research arms of Bayesian statistics continue to grow in many directions, they are harnessed when attention turns to solving substantive applied problems. Each such problem set has its own challenges and hence draws from the suite of research a bespoke solution. The book will be useful for both theoretical and applied statisticians, as well as practitioners, to inspect these solutions in the context of the problems, in order to draw further understanding, awareness and inspiration.

Case Studies in Bayesian Statistics, Volume II

Author : Constantine Gatsonis
Publisher : Springer
Page : 396 pages
File Size : 54,9 Mb
Release : 1995-08-10
Category : Mathematics
ISBN : UOM:39015031744330

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Case Studies in Bayesian Statistics, Volume II by Constantine Gatsonis Pdf

Like its predecessor, this second volume presents detailed applications of Bayesian statistical analysis, each of which emphasizes the scientific context of the problems it attempts to solve. The emphasis of this volume is on biomedical applications. These papers were presented at a workshop at Carnegie-Mellon University in 1993.

Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,Robert E. Kass,Bradley Carlin,Alicia Carriquiry,A. Gelman,Isabella Verdinelli,Mike West
Publisher : Springer
Page : 430 pages
File Size : 53,7 Mb
Release : 1998-12-04
Category : Mathematics
ISBN : 0387986405

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Case Studies in Bayesian Statistics by Constantine Gatsonis,Robert E. Kass,Bradley Carlin,Alicia Carriquiry,A. Gelman,Isabella Verdinelli,Mike West Pdf

The 4th Workshop on Case Studies in Bayesian Statistics was held at the Car negie Mellon University campus on September 27-28, 1997. As in the past, the workshop featured both invited and contributed case studies. The former were presented and discussed in detail while the latter were presented in poster format. This volume contains the four invited case studies with the accompanying discus sion as well as nine contributed papers selected by a refereeing process. While most of the case studies in the volume come from biomedical research the reader will also find studies in environmental science and marketing research. INVITED PAPERS In Modeling Customer Survey Data, Linda A. Clark, William S. Cleveland, Lorraine Denby, and Chuanhai LiD use hierarchical modeling with time series components in for customer value analysis (CVA) data from Lucent Technologies. The data were derived from surveys of customers of the company and its competi tors, designed to assess relative performance on a spectrum of issues including product and service quality and pricing. The model provides a full description of the CVA data, with random location and scale effects for survey respondents and longitudinal company effects for each attribute. In addition to assessing the performance of specific companies, the model allows the empirical exploration of the conceptual basis of consumer value analysis. The authors place special em phasis on graphical displays for this complex, multivariate set of data and include a wealth of such plots in the paper.

Case Studies in Bayesian Statistics

Author : Constantine Gatsonis,Robert E. Kass,Alicia Carriquiry,Andrew Gelman,David Higdon,Donna K. Pauler,Isabella Verdinelli
Publisher : Springer
Page : 376 pages
File Size : 47,6 Mb
Release : 2002-08-12
Category : Mathematics
ISBN : 0387954724

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Case Studies in Bayesian Statistics by Constantine Gatsonis,Robert E. Kass,Alicia Carriquiry,Andrew Gelman,David Higdon,Donna K. Pauler,Isabella Verdinelli Pdf

This volume contains invited case studies with the accompanying discussion as well as contributed papers selected by a refereeing process of 6th Workshop on Case Studies in Bayesian Statistics was held at the Carnegie Mellon University in October, 2001.

Bayesian Analysis with R for Drug Development

Author : Harry Yang,Steven Novick
Publisher : CRC Press
Page : 262 pages
File Size : 48,9 Mb
Release : 2019-06-26
Category : Mathematics
ISBN : 9781351585934

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Bayesian Analysis with R for Drug Development by Harry Yang,Steven Novick Pdf

Drug development is an iterative process. The recent publications of regulatory guidelines further entail a lifecycle approach. Blending data from disparate sources, the Bayesian approach provides a flexible framework for drug development. Despite its advantages, the uptake of Bayesian methodologies is lagging behind in the field of pharmaceutical development. Written specifically for pharmaceutical practitioners, Bayesian Analysis with R for Drug Development: Concepts, Algorithms, and Case Studies, describes a wide range of Bayesian applications to problems throughout pre-clinical, clinical, and Chemistry, Manufacturing, and Control (CMC) development. Authored by two seasoned statisticians in the pharmaceutical industry, the book provides detailed Bayesian solutions to a broad array of pharmaceutical problems. Features Provides a single source of information on Bayesian statistics for drug development Covers a wide spectrum of pre-clinical, clinical, and CMC topics Demonstrates proper Bayesian applications using real-life examples Includes easy-to-follow R code with Bayesian Markov Chain Monte Carlo performed in both JAGS and Stan Bayesian software platforms Offers sufficient background for each problem and detailed description of solutions suitable for practitioners with limited Bayesian knowledge Harry Yang, Ph.D., is Senior Director and Head of Statistical Sciences at AstraZeneca. He has 24 years of experience across all aspects of drug research and development and extensive global regulatory experiences. He has published 6 statistical books, 15 book chapters, and over 90 peer-reviewed papers on diverse scientific and statistical subjects, including 15 joint statistical works with Dr. Novick. He is a frequent invited speaker at national and international conferences. He also developed statistical courses and conducted training at the FDA and USP as well as Peking University. Steven Novick, Ph.D., is Director of Statistical Sciences at AstraZeneca. He has extensively contributed statistical methods to the biopharmaceutical literature. Novick is a skilled Bayesian computer programmer and is frequently invited to speak at conferences, having developed and taught courses in several areas, including drug-combination analysis and Bayesian methods in clinical areas. Novick served on IPAC-RS and has chaired several national statistical conferences.

Bayesian Analysis Made Simple

Author : Phil Woodward
Publisher : CRC Press
Page : 366 pages
File Size : 55,7 Mb
Release : 2011-08-26
Category : Mathematics
ISBN : 9781439839546

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Bayesian Analysis Made Simple by Phil Woodward Pdf

Although the popularity of the Bayesian approach to statistics has been growing for years, many still think of it as somewhat esoteric, not focused on practical issues, or generally too difficult to understand. Bayesian Analysis Made Simple is aimed at those who wish to apply Bayesian methods but either are not experts or do not have the time to create WinBUGS code and ancillary files for every analysis they undertake. Accessible to even those who would not routinely use Excel, this book provides a custom-made Excel GUI, immediately useful to those users who want to be able to quickly apply Bayesian methods without being distracted by computing or mathematical issues. From simple NLMs to complex GLMMs and beyond, Bayesian Analysis Made Simple describes how to use Excel for a vast range of Bayesian models in an intuitive manner accessible to the statistically savvy user. Packed with relevant case studies, this book is for any data analyst wishing to apply Bayesian methods to analyze their data, from professional statisticians to statistically aware scientists.