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Recent progresses in outcome-dependent sampling with failure time data

机译:具有故障时间数据的结果相关采样的最新进展

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An outcome-dependent sampling (ODS) design is a retrospective sampling scheme where one observes the primary exposure variables with a probability that depends on the observed value of the outcome variable. When the outcome of interest is failure time, the observed data are often censored. By allowing the selection of the supplemental samples depends on whether the event of interest happens or not and oversampling subjects from the most informative regions, ODS design for the time-to-event data can reduce the cost of the study and improve the efficiency. We review recent progresses and advances in research on ODS designs with failure time data. This includes researches on ODS related designs like case-cohort design, generalized case-cohort design, stratified case-cohort design, general failure-time ODS design, length-biased sampling design and interval sampling design.
机译:结果依赖抽样(ODS)设计是一种回顾性抽样方案,其中,人们观察主要暴露变量的可能性取决于结果变量的观察值。当关注的结果是故障时间时,通常会检查观察到的数据。通过允许选择补充样本取决于感兴趣的事件是否发生以及对信息量最大的地区进行过采样,针对事件发生时间数据的ODS设计可以降低研究成本并提高效率。我们用故障时间数据回顾了ODS设计研究的最新进展和进展。这包括对与ODS相关的设计的研究,例如案例队列设计,广义案例队列设计,分层案例队列设计,一般故障时间ODS设计,长度偏向采样设计和间隔采样设计。

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