Statistical Methods For Reliability Data
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Statistical Methods for Reliability Data
Author | : William Q. Meeker,Luis A. Escobar,Francis G. Pascual |
Publsiher | : John Wiley & Sons |
Total Pages | : 708 |
Release | : 2022-01-24 |
Genre | : Technology & Engineering |
ISBN | : 9781118594483 |
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An authoritative guide to the most recent advances in statistical methods for quantifying reliability Statistical Methods for Reliability Data, Second Edition (SMRD2) is an essential guide to the most widely used and recently developed statistical methods for reliability data analysis and reliability test planning. Written by three experts in the area, SMRD2 updates and extends the long- established statistical techniques and shows how to apply powerful graphical, numerical, and simulation-based methods to a range of applications in reliability. SMRD2 is a comprehensive resource that describes maximum likelihood and Bayesian methods for solving practical problems that arise in product reliability and similar areas of application. SMRD2 illustrates methods with numerous applications and all the data sets are available on the book’s website. Also, SMRD2 contains an extensive collection of exercises that will enhance its use as a course textbook. The SMRD2's website contains valuable resources, including R packages, Stan model codes, presentation slides, technical notes, information about commercial software for reliability data analysis, and csv files for the 93 data sets used in the book's examples and exercises. The importance of statistical methods in the area of engineering reliability continues to grow and SMRD2 offers an updated guide for, exploring, modeling, and drawing conclusions from reliability data. SMRD2 features: Contains a wealth of information on modern methods and techniques for reliability data analysis Offers discussions on the practical problem-solving power of various Bayesian inference methods Provides examples of Bayesian data analysis performed using the R interface to the Stan system based on Stan models that are available on the book's website Includes helpful technical-problem and data-analysis exercise sets at the end of every chapter Presents illustrative computer graphics that highlight data, results of analyses, and technical concepts Written for engineers and statisticians in industry and academia, Statistical Methods for Reliability Data, Second Edition offers an authoritative guide to this important topic.
Statistical Analysis of Reliability Data
Author | : Martin J. Crowder |
Publsiher | : Routledge |
Total Pages | : 264 |
Release | : 2017-11-13 |
Genre | : Business & Economics |
ISBN | : 9781351414623 |
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Written for those who have taken a first course in statistical methods, this book takes a modern, computer-oriented approach to describe the statistical techniques used for the assessment of reliability.
Statistical Analysis of Reliability Data
Author | : Martin J. Crowder |
Publsiher | : Routledge |
Total Pages | : 210 |
Release | : 2017-11-13 |
Genre | : Business & Economics |
ISBN | : 9781351414616 |
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Written for those who have taken a first course in statistical methods, this book takes a modern, computer-oriented approach to describe the statistical techniques used for the assessment of reliability.
Statistical Methods for Reliability Data
Author | : William Q. Meeker,Luis A. Escobar |
Publsiher | : Wiley-Interscience |
Total Pages | : 712 |
Release | : 1998-07-24 |
Genre | : Mathematics |
ISBN | : 0471143286 |
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Amstat News asked three review editors to rate their top five favorite books in the September 2003 issue. Statistical Methods for Reliability Data was among those chosen. Bringing statistical methods for reliability testing in line with the computer age This volume presents state-of-the-art, computer-based statistical methods for reliability data analysis and test planning for industrial products. Statistical Methods for Reliability Data updates and improves established techniques as it demonstrates how to apply the new graphical, numerical, or simulation-based methods to a broad range of models encountered in reliability data analysis. It includes methods for planning reliability studies and analyzing degradation data, simulation methods used to complement large-sample asymptotic theory, general likelihood-based methods of handling arbitrarily censored data and truncated data, and more. In this book, engineers and statisticians in industry and academia will find: A wealth of information and procedures developed to give products a competitive edge Simple examples of data analysis computed with the S-PLUS system-for which a suite of functions and commands is available over the Internet End-of-chapter, real-data exercise sets Hundreds of computer graphics illustrating data, results of analyses, and technical concepts An essential resource for practitioners involved in product reliability and design decisions, Statistical Methods for Reliability Data is also an excellent textbook for on-the-job training courses, and for university courses on applied reliability data analysis at the graduate level. An Instructor's Manual presenting detailed solutions to all the problems in the book is available upon requestfrom the Wiley editorial department.
System Reliability Theory
Author | : Arnljot Høyland,Marvin Rausand |
Publsiher | : John Wiley & Sons |
Total Pages | : 536 |
Release | : 2009-09-25 |
Genre | : Technology & Engineering |
ISBN | : 9780470317747 |
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A comprehensive introduction to reliability analysis. The first section provides a thorough but elementary prologue to reliability theory. The latter half comprises more advanced analytical tools including Markov processes, renewal theory, life data analysis, accelerated life testing and Bayesian reliability analysis. Features numerous worked examples. Each chapter concludes with a selection of problems plus additional material on applications.
Methods for Statistical Analysis of Reliability and Life Data
Author | : Nancy R. Mann,Ray E. Schafer,Nozer D. Singpurwalla |
Publsiher | : Unknown |
Total Pages | : 584 |
Release | : 1974 |
Genre | : Mathematics |
ISBN | : UOM:39015002013392 |
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Practical Methods for Reliability Data Analysis
Author | : Jake Ansell,M. J. Phillips |
Publsiher | : Oxford University Press |
Total Pages | : 264 |
Release | : 1994 |
Genre | : Mathematics |
ISBN | : 019853664X |
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This practical introduction to the analysis of data collected from reliability studies offers clear, detailed explanations of the best and most up-to-date techniques available. Topics include survival analysis with covariates, the assessment of systems performance, reliability growth models, dependency (which encompasses both engineering and statistical approaches), and practical aspects of analysis. A wealth of interesting case studies appear throughout the text, lending "real-world" examples to the more theoretical discussions. Throughout, the authors stress the need for investigators to understand the background and nature of their data if they are to select the most appropriate analysis method. They also provide in-depth treatments of the mathematical and statistical bases underlying each technique. Accessible and comprehensive, the book will be welcomed by students, professionals, and statisticians who are interested in the practical aspects of reliability data analysis.
Mathematical and Statistical Models and Methods in Reliability
Author | : V.V. Rykov,N. Balakrishnan,M.S. Nikulin |
Publsiher | : Springer Science & Business Media |
Total Pages | : 465 |
Release | : 2010-11-02 |
Genre | : Technology & Engineering |
ISBN | : 9780817649715 |
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The book is a selection of invited chapters, all of which deal with various aspects of mathematical and statistical models and methods in reliability. Written by renowned experts in the field of reliability, the contributions cover a wide range of applications, reflecting recent developments in areas such as survival analysis, aging, lifetime data analysis, artificial intelligence, medicine, carcinogenesis studies, nuclear power, financial modeling, aircraft engineering, quality control, and transportation. Mathematical and Statistical Models and Methods in Reliability is an excellent reference text for researchers and practitioners in applied probability and statistics, industrial statistics, engineering, medicine, finance, transportation, the oil and gas industry, and artificial intelligence.