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Titlebook: Emerging Topics in Modeling Interval-Censored Survival Data; Jianguo Sun,Ding-Geng Chen Book 2022 The Editor(s) (if applicable) and The Au

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Maximum Likelihood Estimation of Semiparametric Regression Models with Interval-Censored Dataobserved at an exact time point but is rather known to occur within a time interval induced by periodic examinations. We formulate the effects of potentially time-dependent covariates on the failure time through the semiparametric Cox proportional hazards model. We study nonparametric maximum likeli
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Copula Models and Diagnostics for Multivariate Interval-Censored Data from the non-fatal events are sometimes unobservable due to “interval-censoring” since the event status can only be determined at intermittent assessment times. In this chapter, we introduce a class of copula models to analyze multivariate interval-censored outcomes. It is a joint approach that dir
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The ,: An R Package for Nonparametric Inference of Bivariate Interval-Censored Datainterval censoring that gives rise to bivariate interval-censored data. Nonparametric inference of bivariate interval-censored data focuses on estimation of the joint distribution function of event times or the joint survival function. The conventional nonparametric maximum likelihood estimator suff
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Joint Modeling for Longitudinal and Interval-Censored Survival Data: Application to IMPI Multi-Centewith the associated event times. These models are useful in two practical applications; firstly focusing on survival outcome whilst accounting for time-varying covariates measured with error and secondly focusing on the longitudinal outcome while controlling for informative censoring. The joint mode
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