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Linear Models and Generalizations

Revised and updated with the latest results, this Third Edition explores the theory and applications of linear models. The authors present a unified theory of inference from linear models and its generalizations with minimal assumptions. They not only use least squares theory, but also alternative methods of estimation and testing based on convex loss functions and general estimating equations. Highlights of coverage include sensitivity analysis and model selection, an analysis of incomplete data, an analysis of categorical data based on a unified presentation of generalized linear models, and an extensive appendix on matrix theory.

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ISBN 9783540742265
Sprache eng
Cover B, Probability Theory and Stochastic Processes, Statistical Theory and Methods, Economic Theory/Quantitative Economics/Mathematical Methods, Probability and Statistics in Computer Science, Operations Research/Decision Theory, Probability Theory, Quantitative Economics, Operations Research and Decision Theory, Mathematics and Statistics, Probabilities, Statistics, Economic Theory, Mathematical statistics, Operations Research, Decision Making, Stochastics, Probability & statistics, Economic theory & philosophy, Maths for computer scientists, Mathematical & statistical software, Operational research, Management decision making, Fester Einband
Verlag Springer Nature EN
Jahr 2007

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