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Bayesian estimation in the multidimensional three-parameter logistic model
Abstract:The Gibbs sampler has a great potential to be an efficient and versatile estimation procedure in item response theory. In this article, based on a data augmentation scheme using the Gibbs sampler, we propose a Bayesian procedure to estimate the multidimensional three-parameter logistic model. With the introduction of the two latent variables, the full conditional distributions are tractable, and consequently the Gibbs sampling is easy to implement. Finally, the technique is illustrated by using simulated and real data, respectively.
Keywords:Bayes estimation  data augmentation  Gibbs sampling  multidimensional item response theory  logistic model
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