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Outliers in Survival Analysis
Abstract
Survival analysis is a collection of statistical methods for analyzing data where the outcome variable is the time until the occurrence of an event of interest. Outliers in survival anaysis calculated differently from classical regression analysis. Outlier detection methods in survival analysis are commonly carried out based on residuals and residual analysis. In survival analysis, there are different types of residuals that are Cox-Snell, Martingale, Schoenfeld, Deviance, Log-odds and Normal deviance residuals. There are methods which are DFBETA, LMAX and Likelihood Displacement values for detecting influential observations. The residuals are analyzed during the study which is applied on a stomach cancer data set and the outliers are detected. After omitting these outliers, model is set up again and results were found better.
References
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Details
Primary Language
English
Subjects
-
Journal Section
-
Publication Date
December 30, 2015
Submission Date
November 2, 2015
Acceptance Date
-
Published in Issue
Year 1970 Volume: 3 Number: 2
APA
Karasoy, D., & Tuncer, N. (2015). Outliers in Survival Analysis. Alphanumeric Journal, 3(2), 139-152. https://doi.org/10.17093/aj.2015.3.2.5000149382
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