Copula-based Logistic Regression Models for Bivariate Binary Responses

  • Li X
  • Li L
  • Fang R
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Abstract

The association between bivariate binary responses has been studied using Pearson's correlation coefficient, odds ratio, and tetrachoric correlation coefficient. This paper introduces a copula to model the association. Numerical comparisons between the proposed method and the existing methods are presented. Results show that these methods are comparative. However, the copula method has a clearer interpretation and is easier to extend to bivariate responses with three or more ordinal categories. In addition, a goodness-of-fit test for the selection of a model is performed. Applications of the method on two real data sets are also presented.

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Li, X., Li, L., & Fang, R. (2021). Copula-based Logistic Regression Models for Bivariate Binary Responses. Journal of Data Science, 12(3), 461–476. https://doi.org/10.6339/jds.201407_12(3).0005

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