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离散选择实验分析的统计方法:药物经济学与结果研究国际协会联合分析良好研究实践特别工作组报告

Statistical Methods for the Analysis of Discrete Choice Experiments: A Report of the ISPOR Conjoint Analysis Good Research Practices Task Force.

作者信息

Hauber A Brett, González Juan Marcos, Groothuis-Oudshoorn Catharina G M, Prior Thomas, Marshall Deborah A, Cunningham Charles, IJzerman Maarten J, Bridges John F P

机构信息

RTI Health Solutions, Research Triangle Park, NC, USA.

RTI Health Solutions, Research Triangle Park, NC, USA.

出版信息

Value Health. 2016 Jun;19(4):300-15. doi: 10.1016/j.jval.2016.04.004. Epub 2016 May 12.

Abstract

Conjoint analysis is a stated-preference survey method that can be used to elicit responses that reveal preferences, priorities, and the relative importance of individual features associated with health care interventions or services. Conjoint analysis methods, particularly discrete choice experiments (DCEs), have been increasingly used to quantify preferences of patients, caregivers, physicians, and other stakeholders. Recent consensus-based guidance on good research practices, including two recent task force reports from the International Society for Pharmacoeconomics and Outcomes Research, has aided in improving the quality of conjoint analyses and DCEs in outcomes research. Nevertheless, uncertainty regarding good research practices for the statistical analysis of data from DCEs persists. There are multiple methods for analyzing DCE data. Understanding the characteristics and appropriate use of different analysis methods is critical to conducting a well-designed DCE study. This report will assist researchers in evaluating and selecting among alternative approaches to conducting statistical analysis of DCE data. We first present a simplistic DCE example and a simple method for using the resulting data. We then present a pedagogical example of a DCE and one of the most common approaches to analyzing data from such a question format-conditional logit. We then describe some common alternative methods for analyzing these data and the strengths and weaknesses of each alternative. We present the ESTIMATE checklist, which includes a list of questions to consider when justifying the choice of analysis method, describing the analysis, and interpreting the results.

摘要

联合分析是一种陈述偏好调查方法,可用于引出能揭示与医疗保健干预措施或服务相关的偏好、优先级以及各个特征相对重要性的回应。联合分析方法,尤其是离散选择实验(DCE),已越来越多地用于量化患者、护理人员、医生及其他利益相关者的偏好。近期基于共识的良好研究实践指南,包括国际药物经济学与结果研究协会最近的两份特别工作组报告,有助于提高结果研究中联合分析和DCE的质量。然而,对于DCE数据统计分析的良好研究实践仍存在不确定性。分析DCE数据有多种方法。了解不同分析方法的特点及恰当应用对于开展精心设计的DCE研究至关重要。本报告将帮助研究人员评估并在DCE数据统计分析的替代方法中进行选择。我们首先给出一个简单的DCE示例以及使用所得数据的简单方法。然后给出一个DCE的教学示例以及分析此类问题格式数据(条件logit)最常用的方法之一。接着我们描述一些分析这些数据的常见替代方法以及每种替代方法的优缺点。我们展示了ESTIMATE清单,其中包括在证明分析方法的选择合理、描述分析过程以及解释结果时需要考虑的一系列问题。

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