Advanced Regression Models with SAS and R

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A01=Olga Korosteleva
Author_Olga Korosteleva
Beta Regression Model
BIC Criterion
BMI Percentile
Category=PBT
Category=UFM
Col1 Col2 Col3 Col4 Col5
Complementary Log Log Model
Cumulative Logit Model
Data Set
DMFT Index
eq_bestseller
eq_computing
eq_isMigrated=1
eq_isMigrated=2
eq_nobargain
eq_non-fiction
Estimated Beta Coefficients
Full Log Likelihood
Gee Model
General Linear Regression Model
generalized estimating equations
Hurdle Negative Binomial Model
Hurdle Poisson Model
Linear models
mixed models
Negative Binomial
Negative Binomial Regression Model
Poisson Regression Model
Predictor Variable X1
Proc Genmod
Proc Print Data
Random Slope
SAS Code
SAS Implementation
structural equation models
Working Correlation Matrix
Zip Model

Product details

  • ISBN 9781138049017
  • Weight: 760g
  • Dimensions: 178 x 254mm
  • Publication Date: 10 Dec 2018
  • Publisher: Taylor & Francis Ltd
  • Publication City/Country: GB
  • Product Form: Hardback
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Advanced Regression Models with SAS and R exposes the reader to the modern world of regression analysis. The material covered by this book consists of regression models that go beyond linear regression, including models for right-skewed, categorical and hierarchical observations. The book presents the theory as well as fully worked-out numerical examples with complete SAS and R codes for each regression. The emphasis is on model accuracy and the interpretation of results. For each regression, the fitted model is presented along with interpretation of estimated regression coefficients and prediction of response for given values of predictors.

Features:

  • Presents the theoretical framework for each regression.
  • Discusses data that are categorical, count, proportions, right-skewed, longitudinal and hierarchical.
  • Uses examples based on real-life consulting projects.
  • Provides complete SAS and R codes for each example.
  • Includes several exercises for every regression.

Advanced Regression Models with SAS and R is designed as a text for an upper division undergraduate or a graduate course in regression analysis. Prior exposure to the two software packages is desired but not required.

The Author:

Olga Korosteleva is a Professor of Statistics at California State University, Long Beach. She teaches a large variety of statistical courses to undergraduate and master’s students. She has published three statistical textbooks. For a number of years, she has held the position of faculty director of the statistical consulting group. Her research interests lie mostly in applications of statistical methodology through collaboration with her clients in health sciences, nursing, kinesiology, and other fields.

Olga Korosteleva is an associate professor of statistics in the Department of Mathematics and Statistics at California State University, Long Beach (CSULB). She received a Ph.D. in statistics from Purdue University.

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