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Multiple imputation for simple estimation of the hazard function based on interval censored data

โœ Scribed by Judith D. Bebchuk; Rebecca A. Betensky


Publisher
John Wiley and Sons
Year
2000
Tongue
English
Weight
184 KB
Volume
19
Category
Article
ISSN
0277-6715

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โœฆ Synopsis


A data augmentation algorithm is presented for estimating the hazard function and pointwise variability intervals based on interval censored data. The algorithm extends that proposed by Tanner and Wong for grouped right censored data to interval censored data. It applies multiple imputation and local likelihood methods to obtain smooth non-parametric estimates for the hazard function. This approach considerably simpli"es the problem of estimation for interval censored data as it transforms it into the more tractable problem of estimation for right censored data. The method is illustrated for two real data sets: times to breast cosmesis deterioration and times to HIV-1 infection for individuals with haemophilia. Simulations are presented to assess the e!ects of various parameters on the estimates and their variances.


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