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生存研究的功效分析×基于仿真的功效分析(蒙特卡洛功效)×
领域统计学统计学
方法族Hypothesis testHypothesis test
起源年份19812011
提出者Arnold et al. (2011); Green & MacLeod (2016) for mixed-model extension
类型Sample size determination for survival outcomesSimulation-based (Monte Carlo)
开创性文献Schoenfeld, D. A. (1981). The asymptotic properties of nonparametric tests for comparing survival distributions. Biometrika, 68(1), 316–319. DOI ↗Arnold, B.F. et al. (2011). Simulation Methods to Estimate Design Power: An Overview for Applied Research. BMC Medical Research Methodology, 11, 94. DOI ↗
别名log-rank power analysis, cox regression power analysis, survival power analysis, Sağkalım Analizi Güç AnaliziMonte Carlo power analysis, Monte Carlo simulation power, MC power, Simülasyon Tabanlı Güç Analizi (Monte Carlo Power)
相关66
摘要Power analysis for survival studies determines how many participants — and how many observed events — are required so that a log-rank test or Cox regression has a sufficient probability of detecting a clinically meaningful difference in survival between groups. The foundational formulas were derived by Schoenfeld (1981) and Lachin (1981) and remain the standard approach in clinical trial planning.Simulation-based power analysis estimates the statistical power and required sample size of a study by repeating a full analysis pipeline thousands of times on artificially generated data. Because it relies on Monte Carlo simulation rather than closed-form equations, it is applicable to designs — mixed models, complex measurement structures, non-standard outcomes — where analytical power formulas do not exist. The approach was systematically described for applied research by Arnold et al. in 2011, and the mixed-model implementation via the SIMR package was formalised by Green and MacLeod in 2016.
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ScholarGate方法对比: Survival Analysis Power Analysis · Simulation-Based Power Analysis. 于 2026-06-17 检索自 https://scholargate.app/zh/compare