The Rise of Markov Chain Monte Carlo Estimation for Psychometric Modeling

Author:

Levy Roy1

Affiliation:

1. Division of Advanced Studies in Learning, Technology and Psychology in Education, Arizona State University, PO Box 870611, Tempe, AZ 85287-0611, USA

Abstract

Markov chain Monte Carlo (MCMC) estimation strategies represent a powerful approach to estimation in psychometric models. Popular MCMC samplers and their alignment with Bayesian approaches to modeling are discussed. Key historical and current developments of MCMC are surveyed, emphasizing how MCMC allows the researcher to overcome the limitations of other estimation paradigms, facilitates the estimation of models that might otherwise be intractable, and frees the researcher from certain possible misconceptions about the models.

Publisher

Hindawi Limited

Subject

Statistics and Probability

Reference113 articles.

1. Wiley Series in Probability and Mathematical Statistics,1989

2. Texts in Statistical Science Series,1995

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