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An iterative Bayesian approach to health technology assessment: application to a policy of preoperative optimization for patients undergoing major elective surgery

机译:贝叶斯卫生技术评估的迭代方法:应用于主要择期手术患者的术前优化政策

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摘要

Purpose. This article presents an iterative framework for managing the dynamic process of health technology assessment. The framework uses Bayesian statistical decision theory and value of information (VOI) analysis to inform decision making regarding appropriate patient management and to direct future research effort over the lifetime of a technology. Within the article, the framework is applied to a policy decision regarding preoperative patient management before major elective surgery, for which trial data are available. Method. The evidence available prior to the trial is used to determine the appropriate method of patient management and to ascertain whether, at the time of commissioning, the trial was potentially worthwhile. The prior information is then updated with the trial data via a Bayesian analysis using informative priors. This post trial information set is then used to reassess the appropriate method for patient management and to determine whether there is a requirement for any further research. Results. Prior to the trial, preoperative optimization with dopexamine is identified as the appropriate method of patient management. The results of the VOI analysis suggest that a short-term trial was potentially worthwhile (population expected value of perfect information [EVPI] = 48 million[pounds sterling]). Following the trial, the uncertainty surrounding the choice of appropriate patient management and the potential worth of further research had increased (population EVPI = 67 million[pounds sterling]). Conclusions. The article demonstrates the value and practicality of applying the iterative framework to the dynamic process of health technology assessment. It is only by formally incorporating all of the information available to decision makers, through informed priors, that the appropriate decisions can be made. Key words: Bayesian analysis; cost-effectiveness analysis; decision analysis; preoperative procedures; technology assessment.
机译:目的。本文提供了一个用于管理卫生技术评估动态过程的迭代框架。该框架使用贝叶斯统计决策理论和信息价值(VOI)分析来指导有关适当患者管理的决策,并指导技术生命周期内的未来研究工作。在本文中,该框架适用于有关重大择期手术前术前患者管理的政策决策,该决策具有可用的试验数据。方法。试验之前可用的证据用于确定适当的患者管理方法,并确定在试运行时是否值得进行该试验。然后,使用信息性先验通过贝叶斯分析通过试验数据更新先验信息。然后,将该试验后信息集用于重新评估用于患者管理的适当方法,并确定是否需要进行任何进一步的研究。结果。在试验之前,多普沙明的术前优化被确定为患者管理的适当方法。 VOI分析的结果表明,短期试验可能是值得的(完美信息的预期总价值[EVPI] = 4800万[英镑])。试验后,围绕适当患者治疗选择的不确定性和进一步研究的潜在价值增加了​​(人口EVPI = 6700万英镑)。结论。本文演示了将迭代框架应用于卫生技术评估动态过程的价值和实用性。只有通过在事先知情的情况下正式整合决策者可获得的所有信息,才能做出适当的决策。关键字:贝叶斯分析;成本效益分析;决策分析;术前程序技术评估。

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