The multivariate Bernoulli detector: change point estimation in discrete survival analysis
Willem van den Boom,
Maria De Iorio,
Fang Qian
et al.
Abstract:Time-to-event data are often recorded on a discrete scale with multiple, competing risks as potential causes for the event. In this context, application of continuous survival analysis methods with a single risk suffers from biased estimation. Therefore, we propose the multivariate Bernoulli detector for competing risks with discrete times involving a multivariate change point model on the cause-specific baseline hazards. Through the prior on the number of change points and their location, we impose dependence… Show more
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