Statistical Inference For Models With Multivariate T-Distrib
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Uitgever: John Wiley & Sons Inc
- Engels
- Hardcover
- 9781118854051
- 17 oktober 2014
- 272 pagina's
Samenvatting
Uniquely presents systematic analytical results using Student’s t-distributed errors in linear models
Statistical Inference for Models with Multivariate t-Distributed Errors presents a wide array of applications for the analysis of multivariate observations and emphasizes the Student’s t-distribution method. The book illustrates the development of linear statistical models with applications to a variety of fields including mathematics, statistics, biostatistics, engineering, and the physical sciences.
The book begins with a summary of the results under normal theory and proceeds to the statistical analysis of location models, simple regression, analysis of variance (ANOVA), parallelism, multiple regression, ridge regression, multivariate and simple multivariate linear models, and linear prediction. Providing a clear and balanced introduction to statistical inference, the bookalso features:
- A unique connection to normal distribution, Bayesian analysis, prediction problems, and Stein shrinkage estimation
- Practical real-world examples that address linear regression models with non-normal errors with practical real-world examples
- Plentiful applications and end-of-chapter problems that enhance the applications for the analysis of multivariate observations
- An up-to-date bibliography featuring the latest trends and advances to provide a collective resource for research
Statistical Inference for Models with Multivariate t-Distributed Errors is an excellent upper-undergraduate and graduate-level textbook for courses in multivariate analysis, regression, linear models, and Bayesian analysis. The book is also a useful resource for statistical practitioners who need solid methodology within mathematical and quantitative statistics.
This book summarizes the results of various models under normal theory with a brief review of the literature. Statistical Inference for Models with Multivariate t-Distributed Errors:
- Includes a wide array of applications for the analysis of multivariate observations
- Emphasizes the development of linear statistical models with applications to engineering, the physical sciences, and mathematics
- Contains an up-to-date bibliography featuring the latest trends and advances in the field to provide a collective source for research on the topic
- Addresses linear regression models with non-normal errors with practical real-world examples
- Uniquely addresses regression models in Student's t-distributed errors and t-models
- Supplemented with an Instructor's Solutions Manual, which is available via written request by the Publisher
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Inhoud
- Taal
- en
- Bindwijze
- Hardcover
- Oorspronkelijke releasedatum
- 17 oktober 2014
- Aantal pagina's
- 272
- Illustraties
- Met illustraties
Betrokkenen
- Hoofdauteur
- A. K. Md. Ehsanes Saleh
- Tweede Auteur
- Mohammad Arashi
- Co Auteur
- S. M. M. Tabatabaey
- Hoofduitgeverij
- John Wiley & Sons Inc
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- 666 g
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- 9781118854051
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