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AuthorYousif, Yosra
AuthorElfaki, Faiz A. M.
AuthorHrairi, Meftah
AuthorAdegboye, Oyelola A.
Available date2025-03-20T08:10:21Z
Publication Date2020
Publication NameMathematical Problems in Engineering
ResourceScopus
Identifierhttp://dx.doi.org/10.1155/2020/8248640
ISSN1024123X
URIhttp://hdl.handle.net/10576/63829
AbstractWe present a Bayesian approach for analysis of competing risks survival data with masked causes of failure. This approach is often used to assess the impact of covariates on the hazard functions when the failure time is exactly observed for some subjects but only known to lie in an interval of time for the remaining subjects. Such data, known as partly interval-censored data, usually result from periodic inspection in production engineering. In this study, Dirichlet and Gamma processes are assumed as priors for masking probabilities and baseline hazards. Markov chain Monte Carlo (MCMC) technique is employed for the implementation of the Bayesian approach. The effectiveness of the proposed approach is illustrated with simulated and production engineering applications.
Languageen
PublisherHindawi Limited
SubjectBayesian analysis
competing risks
partly interval-censored data
Markov chain Monte Carlo (MCMC)
production engineering applications
TitleA Bayesian Approach to Competing Risks Model with Masked Causes of Failure and Incomplete Failure Times
TypeArticle
Volume Number2020
dc.accessType Open Access


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