Methods of Statistical Model Estimation

Printed Book
Sold as: EACH
SR 97 Per Month /4 months
Author: Hilbe, Joseph
Date of Publication: 2019
Book classification: Science & Mathematics, English Books
No. of pages: 256 Pages
Format: Paperback

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    About this Product

    This book examines the most important and popular methods used to estimate parameters for statistical models and provide informative model summary statistics. Designed for R users, the book is also ideal for anyone wanting to better understand the algorithms used for statistical model fitting. It presents algorithms for the estimation of a variety of useful regression procedures using maximum likelihood estimation, iteratively reweighted least squares regression, the EM algorithm, and MCMC sampling. Fully developed, working R code is constructed for each method.

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