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A Graduate Course on Statistical Inference
A Graduate Course on Statistical Inference
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€267,95 EUR
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This textbook offers an accessible and comprehensive overview of statistical estimation and inference that reflects current trends in statistical research. It draws from three main themes throughout: the finite-sample theory, the asymptotic theory, and Bayesian statistics. The authors have included a chapter on estimating equations as a means to unify a range of useful methodologies, including generalized linear models, generalized estimation equations, quasi-likelihood estimation, and conditional inference. They also utilize a standardized set of assumptions and tools throughout, imposing regular conditions and resulting in a more coherent and cohesive volume. Written for the graduate-level audience, this text can be used in a one-semester or two-semester course.
Author: Bing Li,G. Jogesh Babu
Publisher: Springer
Published: 08/02/2019
Pages: 379
Binding Type: Hardcover
Weight: 1.59lbs
Size: 9.21h x 6.14w x 0.88d
ISBN: 9781493997596
Author: Bing Li,G. Jogesh Babu
Publisher: Springer
Published: 08/02/2019
Pages: 379
Binding Type: Hardcover
Weight: 1.59lbs
Size: 9.21h x 6.14w x 0.88d
ISBN: 9781493997596
About the Author
Bing Li is Verne M. Wallaman Professor of Statistics at Pennsylvania State University. He is the author of Sufficient Dimension Reduction: Methods and Applications with R (2018). Dr. Li has served as an associate editor for The Annals of Statistics and is currently serving as an associate editor for Journal of the American Association.
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