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सर्वाइवल रिग्रेशन (Survival Regression)×कॉक्स प्रोपोर्शनल हैज़र्ड्स रिग्रेशन×
क्षेत्रसांख्यिकीउत्तरजीविता
परिवारRegression modelSurvival analysis
उद्भव वर्ष1980s1972
प्रवर्तकKalbfleisch & Prentice; Cox & OakesCox, D. R.
प्रकारParametric survival modelSemi-parametric hazard regression model
मौलिक स्रोतKalbfleisch, J. D., & Prentice, R. L. (2002). The Statistical Analysis of Failure Time Data (2nd ed.). Wiley. ISBN: 978-0471363576Cox, D. R. (1972). Regression Models and Life-Tables. Journal of the Royal Statistical Society: Series B, 34(2), 187–202. DOI ↗
उपनामaccelerated failure time model, AFT model, parametric survival model, time-to-event regressioncox ph model, proportional hazards model, cox ph regression, Cox Orantılı Tehlikeler Regresyonu
संबंधित33
सारांशSurvival regression models the time until an event occurs — such as death, failure, or relapse — as a function of covariates. Unlike ordinary regression, it properly accounts for censored observations (cases where the event had not yet occurred at the end of follow-up) by specifying a parametric distribution for the survival time and estimating covariate effects via maximum likelihood.Cox proportional hazards regression, introduced by D. R. Cox in 1972, is a semi-parametric model that estimates how one or more covariates affect the hazard — the instantaneous rate of experiencing an event — while leaving the baseline hazard function unspecified. It is the standard multivariable method in survival analysis and produces hazard ratios that quantify the relative risk associated with each predictor.
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ScholarGateविधियों की तुलना करें: Survival Regression · Cox Regression. 2026-06-18 को यहाँ से प्राप्त https://scholargate.app/hi/compare