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Applied Regression Analysis A Research Tool 2nd John O Rawlings

  • SKU: BELL-1083912
Applied Regression Analysis A Research Tool 2nd John O Rawlings
$ 31.00 $ 45.00 (-31%)

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Applied Regression Analysis A Research Tool 2nd John O Rawlings instant download after payment.

Publisher: Springer
File Extension: PDF
File size: 6.09 MB
Pages: 671
Author: John O. Rawlings, Sastry G. Pantula, David A. Dickey
ISBN: 9780387984544, 0387984542
Language: English
Year: 2001
Edition: 2nd

Product desciption

Applied Regression Analysis A Research Tool 2nd John O Rawlings by John O. Rawlings, Sastry G. Pantula, David A. Dickey 9780387984544, 0387984542 instant download after payment.

Least squares estimation, when used appropriately, is a powerful research tool. A deeper understanding of the regression concepts is essential for achieving optimal benefits from a least squares analysis. This book builds on the fundamentals of statistical methods and provides appropriate concepts that will allow a scientist to use least squares as an effective research tool. This book is aimed at the scientist who wishes to gain a working knowledge of regression analysis. The basic purpose of this book is to develop an understanding of least squares and related statistical methods without becoming excessively mathematical. It is the outgrowth of more than 30 years of consulting experience with scientists and many years of teaching an applied regression course to graduate students. This book serves as an excellent text for a service course on regression for non-statisticians and as a reference for researchers. It also provides a bridge between a two-semester intro! duction to statistical methods and a thoeretical linear models course. This book emphasizes the concepts and the analysis of data sets. It provides a review of the key concepts in simple linear regression, matrix operations, and multiple regression. Methods and criteria for selecting regression variables and geometric interpretations are discussed. Polynomial, trigonometric, analysis of variance, nonlinear, time series, logistic, random effects, and mixed effects models are also discussed. Detailed case studies and exercises based on real data sets are used to reinforce the concepts.

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