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A new linear regression-like residual for survival analysis, with application to genome wide association studies of time-to-event data.


ABSTRACT: In linear regression, a residual measures how far a subject's observation is from expectation; in survival analysis, a subject's Martingale or deviance residual is sometimes interpreted similarly. Here we consider ways in which a linear regression-like interpretation is not appropriate for Martingale and deviance residuals, and we develop a novel time-to-event residual which does have a linear regression-like interpretation. We illustrate the utility of this new residual via simulation of a time-to-event genome-wide association study, motivated by a real study seeking genetic modifiers of Duchenne Muscular Dystrophy. By virtue of its linear regression-like characteristics, our new residual may prove useful in other contexts as well.

SUBMITTER: Vieland VJ 

PROVIDER: S-EPMC7197860 | biostudies-literature | 2020

REPOSITORIES: biostudies-literature

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A new linear regression-like residual for survival analysis, with application to genome wide association studies of time-to-event data.

Vieland Veronica J VJ   Seok Sang-Cheol SC   Stewart William C L WCL  

PloS one 20200504 5


In linear regression, a residual measures how far a subject's observation is from expectation; in survival analysis, a subject's Martingale or deviance residual is sometimes interpreted similarly. Here we consider ways in which a linear regression-like interpretation is not appropriate for Martingale and deviance residuals, and we develop a novel time-to-event residual which does have a linear regression-like interpretation. We illustrate the utility of this new residual via simulation of a time  ...[more]

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