DUBIT 发表于 2025-3-21 17:00:35
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Frequentist Properties of the Likelihood,the corresponding confidence intervals are introduced. Variance stabilizing transformations are also discussed. A case study comparing coverage and width of several confidence intervals for a proportion finishes this chapter, completed by a number of exercises at the end.epidermis 发表于 2025-3-22 04:16:31
Bayesian Inference,ian point and interval estimates. Bayesian inference in multiparameter models is discussed and some results from Bayesian asymptotics are described. Finally, empirical Bayes methods are described, completed by a number of exercises at the end.Fulminate 发表于 2025-3-22 06:55:49
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Numerical Methods for Bayesian Inference, provide ways to numerically compute posterior characteristics of interest. Monte Carlo methods, including Monte Carlo integration, rejection and importance sampling as well as Markov chain Monte Carlo are described. Finally, numerical computation of the marginal likelihood, necessary for Bayesian mObedient 发表于 2025-3-22 13:07:18
Prediction, predictions, obtained with either a likelihood or Bayesian approach. Connections to the simpler plug-in prediction are also described. Finally, methods to assess the quality of probabilistic predictions, such as the Brier and the logarithmic score, are described. Exercises are given at the end.鞭子 发表于 2025-3-22 20:37:48
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Textbook 20141st editionvanced topics, model choice and prediction, are discussed both from a frequentist and a Bayesian perspective.. .A comprehensive appendix covers the necessary prerequisites in probability theory, matrix algebra, mathematical calculus, and numerical analysis..金丝雀 发表于 2025-3-23 04:01:37
approaches.Complemented by exercises at the end of each chap.This book covers modern statistical inference based on likelihood with applications in medicine, epidemiology and biology. Two introductory chapters discuss the importance of statistical models in applied quantitative research and the centIRS 发表于 2025-3-23 07:35:35
James D. Abbey,V. Daniel R. Guide Jr.rtance sampling as well as Markov chain Monte Carlo are described. Finally, numerical computation of the marginal likelihood, necessary for Bayesian model selection, is discussed. Exercises are given at the end.