Asymptotic Relative Efficiency of Parametric and Nonparametric Survival Estimators

IF 0.9 Q4 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Stats Pub Date : 2023-10-25 DOI:10.3390/stats6040072
Szilárd Nemes
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Abstract

The dominance of non- and semi-parametric methods in survival analysis is not without criticism. Several studies have highlighted the decrease in efficiency compared to parametric methods. We revisit the problem of Asymptotic Relative Efficiency (ARE) of the Kaplan–Meier survival estimator compared to parametric survival estimators. We begin by generalizing Miller’s approach and presenting a formula that enables the estimation (numerical or exact) of ARE for various survival distributions and types of censoring. We examine the effect of follow-up time and censoring on ARE. The article concludes with a discussion about the reasons behind the lower and time-dependent ARE of the Kaplan–Meier survival estimator.
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参数和非参数生存估计量的渐近相对效率
非参数和半参数方法在生存分析中的主导地位并非没有批评。一些研究强调了与参数方法相比效率的降低。我们重新审视Kaplan-Meier生存估计量与参数生存估计量的渐近相对效率(ARE)问题。我们首先推广米勒的方法,并提出一个公式,该公式能够估计各种生存分布和审查类型的ARE(数值或精确)。我们考察了跟踪时间和审查对ARE的影响。本文最后讨论了Kaplan-Meier生存估计的较低且随时间变化的ARE背后的原因。
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CiteScore
0.60
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0.00%
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0
审稿时长
7 weeks
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