Discrete-Time Survival Factor Mixture Analysis for Low-Frequency Recurrent Event Histories
- 1 June 2009
- journal article
- research article
- Published by Taylor & Francis in Research in Human Development
- Vol. 6 (2-3) , 165-194
- https://doi.org/10.1080/15427600902911270
Abstract
In this article, the latent class analysis framework for modeling single event discrete-time survival data is extended to low-frequency recurrent event histories. A partial gap time model, parameterized as a restricted factor mixture model, is presented and illustrated using juvenile offending data. This model accommodates event-specific baseline hazard probabilities and covariate effects; event recurrences within a single time period; and accounts for within- and between-subject correlations of event times. This approach expands the family of latent variable survival models in a way that allows researchers to explicitly address questions about unobserved heterogeneity in the timing of events across the lifespan.Keywords
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