An edition of Linear models (1995)

Linear Models

Least Squares and Alternatives

Linear Models
Rao, C. Radhakrishna, C.Radhak ...
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Last edited by MARC Bot
September 28, 2024 | History
An edition of Linear models (1995)

Linear Models

Least Squares and Alternatives

This book provides an up-to-date account of the theory and applications of linear models. It can be used as a text for courses in statistics at the graduate level as well as an accompanying text for other courses in which linear models play a part. The authors present a unified theory of inference from linear models with minimal assumptions, not only through least squares theory, but also using alternative methods of estimation and testing based on convex loss functions and general estimating equations. Some of the highlights include: A special emphasis on sensitivity analysis and model selection; a chapter devoted to the analysis of categorical data based on logit, loglinear, and logistic regression models; a chapter devoted to incomplete data sets; an extensive appendix on matrix theory, useful to researchers in econometrics, engineering, and optimization theory. The material covered will be invaluable not only to graduate students, but also to research workers and consultants in statistics.

Publish Date
Language
English
Pages
353

Buy this book

Edition Availability
Cover of: Linear Models
Linear Models: Least Squares and Alternatives
2013, Springer London, Limited
in English
Cover of: Linear Models
Linear Models: Least Squares and Alternatives
2006, Springer London, Limited
in English
Cover of: Linear Models
Linear Models: Least Squares and Alternatives (Springer Series in Statistics)
January 24, 1997, Springer
in English
Cover of: Linear models
Linear models: least squares and alternatives
1995, Springer
in English

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Book Details


Classifications

Library of Congress
QA273.A1-274.9, QA274-274.9

The Physical Object

Pagination
xi, 353
Number of pages
353

Edition Identifiers

Open Library
OL37232754M
ISBN 13
9781489900241

Work Identifiers

Work ID
OL330197W

Work Description

This book provides an up-to-date account of the theory and applications of linear models. It can be used as a text for courses in statistics at the graduate level as well as an accompanying text for other courses in which linear models play a part. The authors present a unified theory of inference from linear models with minimal assumptions, not only through least squares theory, but also using alternative methods of estimation and testing based on convex loss functions and general estimating equations.

Some of the highlights include: a special emphasis on sensitivity analysis and model selection; a chapter devoted to the analysis of categorical data based on logit, loglinear, and logistic regressions models; a chapter devoted to incomplete data sets; an extensive appendix on matrix theory, useful to researchers in econometrics, engineering, and optimization theory. The material covered will be invaluable not only to graduate students, but also to research workers and consultants in statistics.

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September 28, 2024 Edited by MARC Bot import existing book
February 27, 2022 Created by ImportBot Imported from Better World Books record