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哪些交互作用在经济评估中重要?一项系统评价和模拟研究。

Which interactions matter in economic evaluations? A systematic review and simulation study.

机构信息

Health Economics Research Centre, Nuffield Department of Population Health, University of Oxford, Old Road Campus, Headington, Oxford, OX3 7LF, UK.

出版信息

BMC Med Res Methodol. 2020 May 7;20(1):109. doi: 10.1186/s12874-020-00978-0.

Abstract

BACKGROUND

We aimed to assess the magnitude of interactions in costs, quality-adjusted life-years (QALYs) and net benefits within a sample of published economic evaluations of factorial randomised controlled trials (RCTs), evaluate the impact that different analytical methods would have had on the results and compare the performance of different criteria for identifying which interactions should be taken into account.

METHODS

We conducted a systematic review of full economic evaluations conducted alongside factorial RCTs and reviewed the methods used in different studies, as well as the incidence, magnitude, statistical significance, and type of interactions observed within the trials. We developed the interaction-effect ratio as a measure of the magnitude of interactions relative to main effects. For those studies reporting sufficient data, we assessed whether changing the form of analysis to ignore or include interactions would have changed the conclusions. We evaluated how well different criteria for identifying which interactions should be taken into account in the analysis would perform in practice, using simulated data generated to match the summary statistics of the studies identified in the review.

RESULTS

Large interactions for economic endpoints occurred frequently within the 40 studies identified in the review, although interactions rarely changed the conclusions.

CONCLUSIONS

Simulation work demonstrated that in analyses of factorial RCTs, taking account of all interactions or including interactions above a certain size (regardless of statistical significance) minimised the opportunity cost from adopting treatments that do not in fact have the highest true net benefit.

摘要

背景

我们旨在评估发表的析因随机对照试验(RCT)的经济评估样本中成本、质量调整生命年(QALYs)和净收益交互作用的程度,评估不同分析方法对结果的影响,并比较不同标准在识别应考虑哪些交互作用方面的性能。

方法

我们对伴随析因 RCT 进行的全经济评估进行了系统回顾,并审查了不同研究中使用的方法,以及在试验中观察到的交互作用的发生率、程度、统计学意义和类型。我们开发了交互效应比作为衡量交互作用相对于主要效应程度的指标。对于那些报告了足够数据的研究,我们评估了改变分析形式以忽略或包括交互作用是否会改变结论。我们使用模拟数据评估了不同标准在识别分析中应考虑哪些交互作用方面的性能,模拟数据的汇总统计与综述中确定的研究匹配。

结果

在综述中确定的 40 项研究中,经济终点的交互作用经常发生,尽管交互作用很少改变结论。

结论

模拟工作表明,在析因 RCT 的分析中,考虑所有交互作用或包含超过一定大小的交互作用(无论统计学意义如何),可以最大程度地减少采用实际上没有最高真实净收益的治疗方法的机会成本。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b3a0/7203889/6a7938f8e2c0/12874_2020_978_Fig1_HTML.jpg

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