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A multiple group item response theory model with centered skew-normal latent trait distributions under a Bayesian framework

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  • Jose R.S. Santos
  • Caio L.N. Azevedo
  • Heleno Bolfarine

Abstract

Very often, in psychometric research, as in educational assessment, it is necessary to analyze item response from clustered respondents. The multiple group item response theory (IRT) model proposed by Bock and Zimowski [12] provides a useful framework for analyzing such type of data. In this model, the selected groups of respondents are of specific interest such that group-specific population distributions need to be defined. The usual assumption for parameter estimation in this model, which is that the latent traits are random variables following different symmetric normal distributions, has been questioned in many works found in the IRT literature. Furthermore, when this assumption does not hold, misleading inference can result. In this paper, we consider that the latent traits for each group follow different skew-normal distributions, under the centered parameterization. We named it skew multiple group IRT model. This modeling extends the works of Azevedo et al . [4], Baz�n et al . [11] and Bock and Zimowski [12] (concerning the latent trait distribution). Our approach ensures that the model is identifiable. We propose and compare, concerning convergence issues, two Monte Carlo Markov Chain (MCMC) algorithms for parameter estimation. A simulation study was performed in order to evaluate parameter recovery for the proposed model and the selected algorithm concerning convergence issues. Results reveal that the proposed algorithm recovers properly all model parameters. Furthermore, we analyzed a real data set which presents asymmetry concerning the latent traits distribution. The results obtained by using our approach confirmed the presence of negative asymmetry for some latent trait distributions.

Suggested Citation

  • Jose R.S. Santos & Caio L.N. Azevedo & Heleno Bolfarine, 2013. "A multiple group item response theory model with centered skew-normal latent trait distributions under a Bayesian framework," Journal of Applied Statistics, Taylor & Francis Journals, vol. 40(10), pages 2129-2149, October.
  • Handle: RePEc:taf:japsta:v:40:y:2013:i:10:p:2129-2149
    DOI: 10.1080/02664763.2013.807331
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    Cited by:

    1. Padilla, Juan L. & Azevedo, Caio L.N. & Lachos, Victor H., 2018. "Multidimensional multiple group IRT models with skew normal latent trait distributions," Journal of Multivariate Analysis, Elsevier, vol. 167(C), pages 250-268.
    2. M. Teimourian & T. Baghfalaki & M. Ganjali & D. Berridge, 2015. "Joint modeling of mixed skewed continuous and ordinal longitudinal responses: a Bayesian approach," Journal of Applied Statistics, Taylor & Francis Journals, vol. 42(10), pages 2233-2256, October.
    3. Shaobo Jin & Fan Yang-Wallentin, 2017. "Asymptotic Robustness Study of the Polychoric Correlation Estimation," Psychometrika, Springer;The Psychometric Society, vol. 82(1), pages 67-85, March.
    4. Anrafel de Souza Barbosa & Maria Cristina Crispim & Luiz Bueno da Silva & Jonhatan Magno Norte da Silva & Aglaucibelly Maciel Barbosa & Sandra Naomi Morioka, 2024. "How can organizations measure the integration of environmental, social, and governance (ESG) criteria? Validation of an instrument using item response theory to capture workers' perception," Business Strategy and the Environment, Wiley Blackwell, vol. 33(4), pages 3607-3634, May.

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