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The value of value of information: best informing research design and prioritization using current methods.

机译:信息价值的价值:最好地为研究设计提供信息并使用当前方法确定优先级。

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Value of information (VOI) methods have been proposed as a systematic approach to inform optimal research design and prioritization. Four related questions arise that VOI methods could address. (i) Is further research for a health technology assessment (HTA) potentially worthwhile? (ii) Is the cost of a given research design less than its expected value? (iii) What is the optimal research design for an HTA? (iv) How can research funding be best prioritized across alternative HTAs? Following Occam's razor, we consider the usefulness of VOI methods in informing questions 1-4 relative to their simplicity of use. Expected value of perfect information (EVPI) with current information, while simple to calculate, is shown to provide neither a necessary nor a sufficient condition to address question 1, given that what EVPI needs to exceed varies with the cost of research design, which can vary from very large down to negligible. Hence, for any given HTA, EVPI does not discriminate, as it can be large and further research not worthwhile or small and further research worthwhile. In contrast, each of questions 1-4 are shown to be fully addressed (necessary and sufficient) where VOI methods are applied to maximize expected value of sample information (EVSI) minus expected costs across designs. In comparing complexity in use of VOI methods, applying the central limit theorem (CLT) simplifies analysis to enable easy estimation of EVSI and optimal overall research design, and has been shown to outperform bootstrapping, particularly with small samples. Consequently, VOI methods applying the CLT to inform optimal overall research design satisfy Occam's razor in both improving decision making and reducing complexity. Furthermore, they enable consideration of relevant decision contexts, including option value and opportunity cost of delay, time, imperfect implementation and optimal design across jurisdictions. More complex VOI methods such as bootstrapping of the expected value of partial EVPI may have potential value in refining overall research design. However, Occam's razor must be seriously considered in application of these VOI methods, given their increased complexity and current limitations in informing decision making, with restriction to EVPI rather than EVSI and not allowing for important decision-making contexts. Initial use of CLT methods to focus these more complex partial VOI methods towards where they may be useful in refining optimal overall trial design is suggested. Integrating CLT methods with such partial VOI methods to allow estimation of partial EVSI is suggested in future research to add value to the current VOI toolkit.
机译:信息价值(VOI)方法已被建议作为一种系统方法来告知最佳研究设计和优先次序。 VOI方法可以解决四个相关问题。 (i)对健康技术评估进行进一步研究是否值得? (ii)给定研究设计的成本是否低于其预期价值? (iii)HTA的最佳研究设计是什么? (iv)如何​​在替代性HTA之间最好地确定研究经费的优先次序?在使用Occam的剃刀之后,我们考虑了VOI方法在告知问题1-4相对于其使用简单性方面的实用性。鉴于当前信息,完美信息(EVPI)的期望值虽然易于计算,但它不能提供解决问题1的必要条件或充分条件,因为EVPI需要超过的值会随研究设计成本的变化而变化。从很大到可以忽略不计。因此,对于任何给定的HTA,EVPI都没有区别,因为EVPI可能很大而又不值得进一步研究,或者很小而又不值得进一步研究。相反,在使用VOI方法最大化样本信息的期望值(EVSI)减去整个设计的期望成本的情况下,问题1-4中的每个问题都得到了充分说明(必要和充分)。在比较使用VOI方法的复杂性时,应用中心极限定理(CLT)可以简化分析,从而轻松评估EVSI和优化整体研究设计,并且已证明优于自举法,尤其是在小样本情况下。因此,使用CLT来指导最佳整体研究设计的VOI方法在改善决策制定和降低复杂性方面都满足了Occam的剃须刀。此外,它们可以考虑相关的决策环境,包括期权价值和延误,时间,不完善的实施以及跨辖区的最佳设计的机会成本。诸如部分EVPI期望值的自举之类的更复杂的VOI方法可能在改进总体研究设计方面具有潜在价值。但是,鉴于这些VOI方法的复杂性和目前的局限性,在使用VOI方法进行决策时必须认真考虑Occam的剃刀,但仅限于EVPI而不是EVSI,并且不允许重要的决策环境。建议最初使用CLT方法将这些更复杂的部分VOI方法集中在可能用于优化最佳总体试验设计的位置。在未来的研究中建议将CLT方法与这种部分VOI方法相集成以允许估计部分EVSI,从而为当前的VOI工具包增加价值。

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