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Latent Variable Models for Mixed Discrete and Continuous Outcomes
Authors:Mary Dupuis Sammel,Louise M. Ryan,&   Julie M. Legler
Affiliation:Harvard School of Public Health, Boston, USA,;Harvard School of Public Health,;Dana Farber Cancer Institute, Boston, USA,;National Cancer Institute, Bethesda, USA
Abstract:We propose a latent variable model for mixed discrete and continuous outcomes. The model accommodates any mixture of outcomes from an exponential family and allows for arbitrary covariate effects, as well as direct modelling of covariates on the latent variable. An EM algorithm is proposed for parameter estimation and estimates of the latent variables are produced as a by-product of the analysis. A generalized likelihood ratio test can be used to test the significance of covariates affecting the latent outcomes. This method is applied to birth defects data, where the outcomes of interest are continuous measures of size and binary indicators of minor physical anomalies. Infants who were exposed in utero to anticonvulsant medications are compared with controls.
Keywords:Exponential family    Hierarchical models    Latent trait    Mixed effects
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