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Fine-Gray 경쟁 위험 모형×시간 의존적 Cox 회귀×
분야통계학생존분석
계열Hypothesis testSurvival analysis
기원 연도19991972
창시자Jason P. Fine & Robert J. GrayCox, D. R. (extended formulation by Therneau & Grambsch)
유형Subdistribution hazard regressionSemi-parametric hazard regression model
원전Fine, J.P. & Gray, R.J. (1999). A Proportional Hazards Model for the Subdistribution of a Competing Risk. Journal of the American Statistical Association, 94(446), 496–509. DOI ↗Therneau, T. M. & Grambsch, P. M. (2000). Modeling Survival Data: Extending the Cox Model. Springer. DOI ↗
별칭competing risks regression, subdistribution hazard model, Fine-Gray model, Fine-Gray Competing Risks Modelitime-varying covariate Cox model, extended Cox model, Zamana Bağlı Kovaryatlı Cox Regresyonu
관련54
요약The Fine-Gray model is a semiparametric regression method for survival data in which two or more mutually exclusive event types compete to occur first. Proposed by Fine and Gray in 1999, it models the subdistribution hazard of each event type directly, allowing covariates to be linked to the cumulative incidence function (CIF) — the quantity that actually answers 'what is the probability of experiencing event type k by time t?'. It corrects the well-known shortcoming of standard Cox regression, which ignores competing events and thereby overestimates cause-specific probabilities.Time-dependent Cox regression is an extension of the standard Cox proportional hazards model, introduced through the counting-process formulation developed by Therneau and Grambsch (2000), that allows one or more predictor variables to take different values at different points in a subject's follow-up period. It is the method of choice whenever a covariate — such as a laboratory measurement, a medication dose, or a disease severity score — changes over time rather than remaining fixed from study entry.
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ScholarGate방법 비교: Fine-Gray Competing Risks Model · Time-Dependent Cox Regression. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare