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Partial Likelihood Estimation of IRT Models with Censored Lifetime Data: An Application to Mental Disorders in the ESEMeD Surveys
Authors:Carlos G Forero  Josué Almansa  Núria D Adroher  Jeroen K Vermunt  Gemma Vilagut  Ron De Graaf  Josep-Maria Haro  Jordi Alonso Caballero
Institution:1. CIBER en Epidemiología y Salud Pública (CIBERESP), Barcelona, Spain
2. Health Services Research Unit, IMIM-Institut Hospital del Mar d’Investigacions Mèdiques, Doctor Aiguader 88, 08003, Barcelona, Spain
3. Department of Methodology and Statistics, Faculty of Social and Behavioral Sciences, Tilburg University, Tilburg, Netherlands
4. Trimbos-instituut, Netherlands Institute of Mental Health and Addiction, Utrecht, Netherlands
5. Fundació Sant Joan de Déu, CIBERSAM, Sant Boi de Llobregat, Barcelona, Spain
Abstract:Developmental studies of mental disorders based on epidemiological data are often based on cross-sectional retrospective surveys. Under such designs, observations are right-censored, causing underestimation of lifetime prevalences and correlations, and inducing bias in latent trait models on the observations. In this paper we propose a Partial Likelihood (PL) method to estimate unbiased IRT models of lifetime predisposition to develop a certain outcome. A two-step estimation procedure corrects the IRT likelihood of outcome appearance with a function depending on (a) projected outcome frequencies at the end of the risk period, and (b) outcome censoring status at the time of the observation. Simulation results showed that the PL method yielded good recovery of true frequencies and intercepts. Slopes were best estimated when events were sufficiently correlated. When PL is applied to lifetime mental health disorders (assessed in the ESEMeD project surveys), estimated univariate prevalences were, on average, 1.4 times above raw estimates, and 2.06 higher in the case of bivariate prevalences.
Keywords:
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