An Introduction to Linear Statistical Models, V.1

An Introduction to Linear Statistical Models, V.1 PDF Author: F. A. Graybill
Publisher:
ISBN:
Category :
Languages : en
Pages : 0

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An Introduction to Linear Statistical Models, V.1

An Introduction to Linear Statistical Models, V.1 PDF Author: F. A. Graybill
Publisher:
ISBN:
Category :
Languages : en
Pages : 0

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An Introduction to Linear Statistical Models, V1

An Introduction to Linear Statistical Models, V1 PDF Author: Franklin Arno Graybill
Publisher:
ISBN: 9781258768737
Category :
Languages : en
Pages : 476

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An Introduction to Linear Statistical Models

An Introduction to Linear Statistical Models PDF Author: Franklin A. Graybill
Publisher:
ISBN:
Category : Mathematical statistics
Languages : en
Pages : 494

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Linear Statistical Models

Linear Statistical Models PDF Author: James H. Stapleton
Publisher: John Wiley & Sons
ISBN: 0470231467
Category : Mathematics
Languages : en
Pages : 517

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Book Description
Praise for the First Edition "This impressive and eminently readable text . . . [is] a welcome addition to the statistical literature." —The Indian Journal of Statistics Revised to reflect the current developments on the topic, Linear Statistical Models, Second Edition provides an up-to-date approach to various statistical model concepts. The book includes clear discussions that illustrate key concepts in an accessible and interesting format while incorporating the most modern software applications. This Second Edition follows an introduction-theorem-proof-examples format that allows for easier comprehension of how to use the methods and recognize the associated assumptions and limits. In addition to discussions on the methods of random vectors, multiple regression techniques, simultaneous confidence intervals, and analysis of frequency data, new topics such as mixed models and curve fitting of models have been added to thoroughly update and modernize the book. Additional topical coverage includes: An introduction to R and S-Plus® with many examples Multiple comparison procedures Estimation of quantiles for regression models An emphasis on vector spaces and the corresponding geometry Extensive graphical displays accompany the book's updated descriptions and examples, which can be simulated using R, S-Plus®, and SAS® code. Problems at the end of each chapter allow readers to test their understanding of the presented concepts, and additional data sets are available via the book's FTP site. Linear Statistical Models, Second Edition is an excellent book for courses on linear models at the upper-undergraduate and graduate levels. It also serves as a comprehensive reference for statisticians, engineers, and scientists who apply multiple regression or analysis of variance in their everyday work.

An Introduction to Linear Statistical Models

An Introduction to Linear Statistical Models PDF Author: Franklin A. Graybill
Publisher:
ISBN: 9780070243316
Category : Experimental design
Languages : en
Pages : 463

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Linear Regression

Linear Regression PDF Author: Peter Martin
Publisher: SAGE
ISBN: 1529711053
Category : Social Science
Languages : en
Pages : 150

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Book Description
This text introduces the fundamental linear regression models used in quantitative research. It covers both the theory and application of these statistical models, and illustrates them with illuminating graphs. The author offers guidence on: Deciding the most appropriate model to use for your research Conducting simple and multiple linear regression Checking model assumptions and the dangers of overfitting Part of The SAGE Quantitative Research Kit, this book will help you make the crucial steps towards mastering multivariate analysis of social science data.

An Introduction to Generalized Linear Models

An Introduction to Generalized Linear Models PDF Author: Annette J. Dobson
Publisher: CRC Press
ISBN: 1351726226
Category : Mathematics
Languages : en
Pages : 376

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Book Description
An Introduction to Generalized Linear Models, Fourth Edition provides a cohesive framework for statistical modelling, with an emphasis on numerical and graphical methods. This new edition of a bestseller has been updated with new sections on non-linear associations, strategies for model selection, and a Postface on good statistical practice. Like its predecessor, this edition presents the theoretical background of generalized linear models (GLMs) before focusing on methods for analyzing particular kinds of data. It covers Normal, Poisson, and Binomial distributions; linear regression models; classical estimation and model fitting methods; and frequentist methods of statistical inference. After forming this foundation, the authors explore multiple linear regression, analysis of variance (ANOVA), logistic regression, log-linear models, survival analysis, multilevel modeling, Bayesian models, and Markov chain Monte Carlo (MCMC) methods. Introduces GLMs in a way that enables readers to understand the unifying structure that underpins them Discusses common concepts and principles of advanced GLMs, including nominal and ordinal regression, survival analysis, non-linear associations and longitudinal analysis Connects Bayesian analysis and MCMC methods to fit GLMs Contains numerous examples from business, medicine, engineering, and the social sciences Provides the example code for R, Stata, and WinBUGS to encourage implementation of the methods Offers the data sets and solutions to the exercises online Describes the components of good statistical practice to improve scientific validity and reproducibility of results. Using popular statistical software programs, this concise and accessible text illustrates practical approaches to estimation, model fitting, and model comparisons.

An Introduction to Linear Statistical Models

An Introduction to Linear Statistical Models PDF Author: Richard K. Moore
Publisher:
ISBN:
Category :
Languages : en
Pages :

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An Introduction to Generalized Linear Models

An Introduction to Generalized Linear Models PDF Author: Annette J. Dobson
Publisher: CRC Press
ISBN: 1584889519
Category : Mathematics
Languages : en
Pages : 316

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Book Description
Continuing to emphasize numerical and graphical methods, An Introduction to Generalized Linear Models, Third Edition provides a cohesive framework for statistical modeling. This new edition of a bestseller has been updated with Stata, R, and WinBUGS code as well as three new chapters on Bayesian analysis. Like its predecessor, this edition presents the theoretical background of generalized linear models (GLMs) before focusing on methods for analyzing particular kinds of data. It covers normal, Poisson, and binomial distributions; linear regression models; classical estimation and model fitting methods; and frequentist methods of statistical inference. After forming this foundation, the authors explore multiple linear regression, analysis of variance (ANOVA), logistic regression, log-linear models, survival analysis, multilevel modeling, Bayesian models, and Markov chain Monte Carlo (MCMC) methods. Using popular statistical software programs, this concise and accessible text illustrates practical approaches to estimation, model fitting, and model comparisons. It includes examples and exercises with complete data sets for nearly all the models covered.

An introduction to linear statistical models

An introduction to linear statistical models PDF Author:
Publisher:
ISBN:
Category :
Languages : de
Pages :

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