With competing risks failure time data, one often needs to assess the covariate effects on the cumulative incidence probabilities. Fine and Gray proposed a proportional hazards regression model to directly model the subdistribution of a competing risk. They developed the estimating procedure for right-censored competing risks data, based on the inverse probability of censoring weighting. Right-censored and left-truncated competing risks data sometimes occur in biomedical researches. In this paper, we study the proportional hazards regression model for the subdistribution of a competing risk with right-censored and left-truncated data. We adopt a new weighting technique to estimate the parameters in this model. We have derived the large sample properties of the proposed estimators. To illustrate the application of the new method, we analyze the failure time data for children with acute leukemia. In this example, the failure times for children who had bone marrow transplants were left truncated. Copyright (C) 2011 John Wiley & Sons, Ltd.
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Genentech Inc, Prod Dev, San Francisco, CA 94080 USAGenentech Inc, Prod Dev, San Francisco, CA 94080 USA
McGough, Sarah F.
Incerti, Devin
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Genentech Inc, Prod Dev, San Francisco, CA 94080 USAGenentech Inc, Prod Dev, San Francisco, CA 94080 USA
Incerti, Devin
Lyalina, Svetlana
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Genentech Inc, Prod Dev, San Francisco, CA 94080 USAGenentech Inc, Prod Dev, San Francisco, CA 94080 USA
Lyalina, Svetlana
Copping, Ryan
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Genentech Inc, Prod Dev, San Francisco, CA 94080 USAGenentech Inc, Prod Dev, San Francisco, CA 94080 USA
Copping, Ryan
Narasimhan, Balasubramanian
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Stanford Univ, Dept Stat, Stanford, CA 94305 USA
Stanford Univ, Dept Biomed Data Sci, Stanford, CA 94305 USAGenentech Inc, Prod Dev, San Francisco, CA 94080 USA
Narasimhan, Balasubramanian
Tibshirani, Robert
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Stanford Univ, Dept Stat, Stanford, CA 94305 USA
Stanford Univ, Dept Biomed Data Sci, Stanford, CA 94305 USAGenentech Inc, Prod Dev, San Francisco, CA 94080 USA