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Constrained Statistical Inference: Inequality, Order, and Shape Restrictions
 
 
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Constrained Statistical Inference: Inequality, Order, and Shape Restrictions [Hardcover]

Mervyn J. Silvapulle (Author), Pranab Kumar Sen (Author)
5.0 out of 5 stars  See all reviews (1 customer review)

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Book Description

0471208272 978-0471208273 November 8, 2004 1
An up-to-date approach to understanding statistical inference

Statistical inference is finding useful applications in numerous fields, from sociology and econometrics to biostatistics. This volume enables professionals in these and related fields to master the concepts of statistical inference under inequality constraints and to apply the theory to problems in a variety of areas.

Constrained Statistical Inference: Order, Inequality, and Shape Constraints provides a unified and up-to-date treatment of the methodology. It clearly illustrates concepts with practical examples from a variety of fields, focusing on sociology, econometrics, and biostatistics.

The authors also discuss a broad range of other inequality-constrained inference problems that do not fit well in the contemplated unified framework, providing a meaningful way for readers to comprehend methodological resolutions.

Chapter coverage includes:

  • Population means and isotonic regression
  • Inequality-constrained tests on normal means
  • Tests in general parametric models
  • Likelihood and alternatives
  • Analysis of categorical data
  • Inference on monotone density function, unimodal density function, shape constraints, and DMRL functions
  • Bayesian perspectives, including Stein’s Paradox, shrinkage estimation, and decision theory

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Editorial Reviews

Review

"This monograph provides an excellent coverage of the last twenty years of constrained statistical inference." (Journal of the American Statistical Association, March 2006)

"…an invaluable resource for any researcher with interests in constrained problems…it is easy to conclude that any statistical library would be incomplete without it." (Biometrics, December 2005)

"…a valuable source of information for statisticians working in any area…" (Mathematical Reviews, 2005k)

From the Back Cover

An up-to-date approach to understanding statistical inference

Statistical inference is finding useful applications in numerous fields, from sociology and econometrics to biostatistics. This volume enables professionals in these and related fields to master the concepts of statistical inference under inequality constraints and to apply the theory to problems in a variety of areas.

Constrained Statistical Inference: Order, Inequality, and Shape Constraints provides a unified and up-to-date treatment of the methodology. It clearly illustrates concepts with practical examples from a variety of fields, focusing on sociology, econometrics, and biostatistics.

The authors also discuss a broad range of other inequality-constrained inference problems that do not fit well in the contemplated unified framework, providing a meaningful way for readers to comprehend methodological resolutions.

Chapter coverage includes:

  • Population means and isotonic regression
  • Inequality-constrained tests on normal means
  • Tests in general parametric models
  • Likelihood and alternatives
  • Analysis of categorical data
  • Inference on monotone density function, unimodal density function, shape constraints, and DMRL functions
  • Bayesian perspectives, including Stein’s Paradox, shrinkage estimation, and decision theory

Product Details

  • Hardcover: 532 pages
  • Publisher: Wiley-Interscience; 1 edition (November 8, 2004)
  • Language: English
  • ISBN-10: 0471208272
  • ISBN-13: 978-0471208273
  • Product Dimensions: 6.4 x 1.2 x 9.5 inches
  • Shipping Weight: 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: #1,365,647 in Books (See Top 100 in Books)

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0 of 7 people found the following review helpful:
5.0 out of 5 stars Constrained Statistical Inference, February 12, 2009
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Inside This Book (learn more)
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
null parameter space, simple stochastic order, local score statistic, orthant alternatives, local score test, monotone density function, uniform stochastic order, generalized odds ratios, alternative parameter space, multinormal law, approximating cone, mean testing problem, asymptotic null distribution, true null value, general testing problems, isotonic estimator, monotone test, iid setting, intersection union test, general parametric models, independent binomial samples, global mle, ordinal response data, sample null distribution, exact conditional tests
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Proof of Proposition, Blackwell Publishing, Proof of Theorem, Total Treatment, American Statistical Association, Monte Carlo
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Front Cover | Table of Contents | First Pages | Index | Back Cover | Surprise Me!
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