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用于医疗技术评估中成本效益试验设计与分析的贝叶斯方法。

Bayesian methods for design and analysis of cost-effectiveness trials in the evaluation of health care technologies.

作者信息

O'Hagan A, Stevens J W

机构信息

Centre for Bayesian Statistics in Health Economics, Department of Probability and Statistics, University of Sheffield, UK.

出版信息

Stat Methods Med Res. 2002 Dec;11(6):469-90. doi: 10.1191/0962280202sm305ra.

Abstract

We review the development of Bayesian statistical methods for the design and analysis of randomized controlled trials in the assessment of the cost-effectiveness of health care technologies. We place particular emphasis on the benefits of the Bayesian approach; the implications of skew cost data; the need to model the data appropriately to generate efficient and robust inferences instead of relying on distribution-free methods; the importance of making full use of quantitative and structural prior information to produce realistic inferences; and issues in the determination of sample size. Several new examples are presented to illustrate the methods. We conclude with a discussion of the key areas for future research.

摘要

我们回顾了用于设计和分析随机对照试验的贝叶斯统计方法在评估医疗保健技术成本效益方面的发展。我们特别强调贝叶斯方法的优点;偏态成本数据的影响;为生成有效且稳健的推断而对数据进行适当建模的必要性,而不是依赖无分布方法;充分利用定量和结构先验信息以得出实际推断的重要性;以及样本量确定中的问题。给出了几个新例子来说明这些方法。我们最后讨论了未来研究的关键领域。

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