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Testing equality of survival distributions when the population marks are missing
Authors:Dipankar Bandyopadhyay  Somnath Datta
Institution:1. Department of Biostatistics, Bioinformatics and Epidemiology, Medical University of South Carolina, Charleston, SC 29425, USA;2. Department of Bioinformatics and Biostatistics, University of Louisville, Louisville, KY 40292, USA
Abstract:This paper introduces a nonparametric approach for testing the equality of two or more survival distributions based on right censored failure times with missing population marks for the censored observations. The standard log-rank test is not applicable here because the population membership information is not available for the right censored individuals. We propose to use the imputed population marks for the censored observations leading to fractional at-risk sets that can be used in a two sample censored data log-rank test. We demonstrate with a simple example that there could be a gain in power by imputing population marks (the proposed method) for the right censored individuals compared to simply removing them (which also would maintain the right size). Performance of the imputed log-rank tests obtained this way is studied through simulation. We also obtain an asymptotic linear representation of our test statistic. Our testing methodology is illustrated using a real data set.
Keywords:Equality of survival curves  Fractional at-risk set  Log-rank tests  Multistate models
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