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Cox比例ハザード回帰×クラスター化された生存データのための共有脆弱性モデル×生存曲線比較のためのログランク検定×
分野生存時間解析生存時間解析生存時間解析
系統Survival analysisSurvival analysisSurvival analysis
提唱年197219791966
提唱者Cox, D. R.Vaupel, J.W., Manton, K.G. & Stallard, E.Mantel, N.
種類Semi-parametric hazard regression modelRandom effects survival modelNon-parametric hypothesis test
原典Cox, D. R. (1972). Regression Models and Life-Tables. Journal of the Royal Statistical Society: Series B, 34(2), 187–202. DOI ↗Vaupel, J.W., Manton, K.G. & Stallard, E. (1979). The Impact of Heterogeneity in Individual Frailty on the Dynamics of Mortality. Demography, 16(3), 439–454. DOI ↗Mantel, N. (1966). Evaluation of Survival Data and Two New Rank Order Statistics Arising in Its Consideration. Cancer Chemotherapy Reports, 50(3), 163–170. link ↗
別名cox ph model, proportional hazards model, cox ph regression, Cox Orantılı Tehlikeler Regresyonushared frailty model, random effects survival model, Frailty Modeli (Paylaşılan Kırılganlık)Mantel log-rank test, Mantel-Cox test, log-rank sağkalım testi, Log-Rank Testi
関連332
概要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.The shared frailty model, introduced by Vaupel, Manton, and Stallard in 1979, extends standard survival regression by incorporating a random effect — the 'frailty' — that captures unobserved heterogeneity among subjects or clusters. When survival outcomes are measured on individuals who share a common environment (patients in the same hospital, members of the same family, animals in the same litter), a frailty term accounts for the within-cluster dependence that ordinary Cox regression ignores.The log-rank test, developed by Nathan Mantel in 1966, is a non-parametric hypothesis test that compares the overall survival experience of two or more groups throughout the entire follow-up period. It is the standard companion to Kaplan-Meier curves and determines whether observed differences between curves are statistically meaningful.
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ScholarGate手法を比較: Cox Regression · Frailty Model · Log-Rank Test. 2026-06-20に以下より取得 https://scholargate.app/ja/compare