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베이즈 경쟁 위험 분석×Cox 비례 위험 모형×
분야역학역학
계열Process / pipelineProcess / pipeline
기원 연도1980s–2000s (classical CR: 1970s; Bayesian extension: 1990s–2000s)1972
창시자Various; Bayesian formulation advanced by Gelfand, Dey, Larson, and Dinse among othersSir David Roxbee Cox
유형Bayesian survival/time-to-event modelSemi-parametric regression model
원전Larson, M. G., & Dinse, G. E. (1985). A mixture model for the regression analysis of competing risks data. Applied Statistics, 34(3), 201–211. DOI ↗Cox, D. R. (1972). Regression models and life-tables. Journal of the Royal Statistical Society: Series B (Methodological), 34(2), 187–202. DOI ↗
별칭Bayesian cause-specific hazard model, Bayesian subdistribution hazard model, BCRA, Bayesian cumulative incidence analysisCox regression, Cox PH model, proportional hazards model, CPH
관련35
요약Bayesian competing risks analysis is a time-to-event method for settings where subjects can fail from more than one mutually exclusive cause — such as death from cancer versus death from cardiovascular disease — and prior knowledge or small-sample uncertainty makes a Bayesian framework advantageous. It extends classical competing risks models (cause-specific hazards and cumulative incidence functions) by placing probability distributions over unknown parameters and updating those distributions with observed data, yielding full posterior inference for each failure type.The Cox proportional hazards model is a semi-parametric regression method that estimates the effect of one or more covariates on the hazard — the instantaneous rate of an event such as death, relapse, or failure — while making no assumption about the shape of the baseline hazard function. Introduced by David Cox in 1972, it is the dominant tool for multivariable survival analysis in clinical and epidemiological research.
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ScholarGate방법 비교: Bayesian Competing Risks Analysis · Cox proportional hazards. 2026-06-18에 다음에서 검색함: https://scholargate.app/ko/compare