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A Review and Classification of Approaches for Dealing with Uncertainty in Multi-Criteria Decision Analysis for Healthcare Decisions

机译:医疗决策多标准决策分析中处理不确定性方法的回顾与分类

摘要

Multi-criteria decision analysis (MCDA) is increasingly used to support decisions in healthcare involving multiple and conflicting criteria. Although uncertainty is usually carefully addressed in health economic evaluations, whether and how the different sources of uncertainty are dealt with and with what methods in MCDA is less known. The objective of this study is to review how uncertainty can be explicitly taken into account in MCDA and to discuss which approach may be appropriate for healthcare decision makers. A literature review was conducted in the Scopus and PubMed databases. Two reviewers independently categorized studies according to research areas, the type of MCDA used, and the approach used to quantify uncertainty. Selected full text articles were read for methodological details. The search strategy identified 569 studies. The five approaches most identified were fuzzy set theory (45 % of studies), probabilistic sensitivity analysis (15 %), deterministic sensitivity analysis (31 %), Bayesian framework (6 %), and grey theory (3 %). A large number of papers considered the analytic hierarchy process in combination with fuzzy set theory (31 %). Only 3 % of studies were published in healthcare-related journals. In conclusion, our review identified five different approaches to take uncertainty into account in MCDA. The deterministic approach is most likely sufficient for most healthcare policy decisions because of its low complexity and straightforward implementation. However, more complex approaches may be needed when multiple sources of uncertainty must be considered simultaneously
机译:多标准决策分析(MCDA)越来越多地用于支持医疗保健中涉及多个冲突标准的决策。尽管在卫生经济评估中通常会仔细地解决不确定性问题,但对于不确定性的不同来源以及如何处理以及使用MCDA中的哪些方法的了解却很少。这项研究的目的是审查如何在MCDA中明确考虑不确定性,并讨论哪种方法可能适合医疗保健决策者。在Scopus和PubMed数据库中进行了文献综述。两名审稿人根据研究领域,所用MCDA的类型以及用于量化不确定性的方法对研究进行了独立分类。阅读了全文文章,以了解方法的详细信息。搜索策略确定了569项研究。最确定的五种方法是模糊集理论(占研究的45%),概率敏感性分析(占15%),确定性敏感性分析(占31%),贝叶斯框架(占6%)和灰色理论(占3%)。大量论文结合模糊集理论(31%)考虑了层次分析法。只有3%的研究发表在医疗保健相关期刊上。总之,我们的审查确定了五种不同的方法来考虑MCDA中的不确定性。确定性方法由于其低复杂性和直接的实现方式,很可能足以满足大多数医疗保健政策的决策。但是,当必须同时考虑多个不确定性来源时,可能需要更复杂的方法

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