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Flowgraph Models for Multistate Time-to-Event Data (Wiley Series in Probability and Statistics)
 
 
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Flowgraph Models for Multistate Time-to-Event Data (Wiley Series in Probability and Statistics) [Hardcover]

Aparna V. Huzurbazar (Author)
5.0 out of 5 stars  See all reviews (1 customer review)

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Book Description

0471265144 978-0471265146 November 11, 2004 1
A unique introduction to the innovative methodology of statistical flowgraphs
This book offers a practical, application-based approach to flowgraph models for time-to-event data. It clearly shows how this innovative new methodology can be used to analyze data from semi-Markov processes without prior knowledge of stochastic processes--opening the door to interesting applications in survival analysis and reliability as well as stochastic processes.
Unlike other books on multistate time-to-event data, this work emphasizes reliability and not just biostatistics, illustrating each method with medical and engineering examples. It demonstrates how flowgraphs bring together applied probability techniques and combine them with data analysis and statistical methods to answer questions of practical interest. Bayesian methods of data analysis are emphasized. Coverage includes:
* Clear instructions on how to model multistate time-to-event data using flowgraph models
* An emphasis on computation, real data, and Bayesian methods for problem solving
* Real-world examples for analyzing data from stochastic processes
* The use of flowgraph models to analyze complex stochastic networks
* Exercise sets to reinforce the practical approach of this volume
Flowgraph Models for Multistate Time-to-Event Data is an invaluable resource/reference for researchers in biostatistics/survival analysis, systems engineering, and in fields that use stochastic processes, including anthropology, biology, psychology, computer science, and engineering.

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Editorial Reviews

Review

"…this is a well-written book on a novel and interesting approach to multistate modeling." (Biometrics, September 2006)

"This book is one that researchers interested in techniques for multistate models, either in reliability or biometry should look at." (Journal of the American Statistical Association, September 2006)

"…a real addition to the toolbox of both biostatisticians who use survival analysis and reliability engineers who do failure analysis on a regular basis." (Technometrics, February 2006)

“…illustrated with interesting examples…the book is particularly welcome…” (International Statistical Institute, January 2006)

"...a useful...account of the use of flowgraphy or semi-Markov parametric models in both industrial and biological applications." (Journal of Biopharmaceutical Statistics, September/October 2005)

"Methods are explained comprehensively, with extensive examples…data analysts would find valuable examples here for their own applications." (Computing Reviews.com, June 2, 2005)

“Fruitful medical and engineering examples and applications are presented…” (Zentralblatt Math, Vol.1055, No.06, 2005)

From the Back Cover

A unique introduction to the innovative methodology of statistical flowgraphs

This book offers a practical, application-based approach to flowgraph models for time-to-event data. It clearly shows how this innovative new methodology can be used to analyze data from semi-Markov processes without prior knowledge of stochastic processes––opening the door to interesting applications in survival analysis and reliability as well as stochastic processes.

Unlike other books on multistate time-to-event data, this work emphasizes reliability and not just biostatistics, illustrating each method with medical and engineering examples. It demonstrates how flowgraphs bring together applied probability techniques and combine them with data analysis and statistical methods to answer questions of practical interest. Bayesian methods of data analysis are emphasized. Coverage includes:

  • Clear instructions on how to model multistate time-to-event data using flowgraph models
  • An emphasis on computation, real data, and Bayesian methods for problem solving
  • Real-world examples for analyzing data from stochastic processes
  • The use of flowgraph models to analyze complex stochastic networks
  • Exercise sets to reinforce the practical approach of this volume

Flowgraph Models for Multistate Time-to-Event Data is an invaluable resource/reference for researchers in biostatistics/survival analysis, systems engineering, and in fields that use stochastic processes, including anthropology, biology, psychology, computer science, and engineering.


Product Details

  • Hardcover: 270 pages
  • Publisher: Wiley-Interscience; 1 edition (November 11, 2004)
  • Language: English
  • ISBN-10: 0471265144
  • ISBN-13: 978-0471265146
  • Product Dimensions: 9.3 x 6.4 x 0.8 inches
  • Shipping Weight: 1.2 pounds (View shipping rates and policies)
  • Average Customer Review: 5.0 out of 5 stars  See all reviews (1 customer review)
  • Amazon Best Sellers Rank: #3,215,415 in Books (See Top 100 in Books)

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1 of 1 people found the following review helpful:
5.0 out of 5 stars Comprehensive treatment of an important subject, December 28, 2007
By 
David Collins (Los Alamos, NM USA) - See all my reviews
(REAL NAME)   
This review is from: Flowgraph Models for Multistate Time-to-Event Data (Wiley Series in Probability and Statistics) (Hardcover)
Flowgraph models have been used for decades in various engineering fields, but seem to be underappreciated in probability and statistics. This book offers a concise but comprehensive treatment of the subject, both theory and technique. It includes enough guidance to allow readers to implement the method on computers (this reviewer has done so with Mathematica). In the course of explaining flowgraphs, the author presents many applications, reviews background material from survival analysis and stochastic processes, and discusses numerical analysis methods ranging from saddlepoint approximations to Markov chain Monte Carlo. Practicioners will appreciate the emphasis on analyzing data to solve real-world problems. The author's indication of a one-year graduate course on probability and statistics as prerequisite is roughly accurate, but probably anyone with an engineering mathematics background will be able to profitably read the book.
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Inside This Book (learn more)
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
flowgraph model, series flowgraph, partial waiting time, competing risks distribution, saddlepoint density approximation, nonexponential waiting times, solving flowgraphs, flowgraph analysis, pump series system, retinopathy data, parallel flowgraphs, equivalent flowgraph, equivalent transmittance, flowgraph methods, constructed likelihood, hydraulic pump system, branch transmittances, transfusion data, individual waiting times, random waiting time, retinopathy model, kidney disease progression, waiting time distribution, predictive density, likelihood construction
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Monte Carlo, Time Time, John Wiley, Airlie House, San Francisco
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