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首页> 外文期刊>Value in health: the journal of the International Society for Pharmacoeconomics and Outcomes Research >Effect of Health State Sampling Methods on Model Predictions of EQ-5D-5L Values: Small Designs Can Suffice
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Effect of Health State Sampling Methods on Model Predictions of EQ-5D-5L Values: Small Designs Can Suffice

机译:健康状态抽样方法对模型的影响预测EQ-5D-5L价值观:小设计足够了

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Objective: The current five-level EQ-5D (EQ-5D-5L) valuation protocol requires the valuation of 86 states. It has been demonstrated that the selection of empirically valued health states affects the extrapolated values in three-level EQ-5D (EQ-3D-3L). In this investigation, we aim to compare the performance of the current EQ-5D-5L valuation design with other designs. Study Design: 1603 university students participated in a valuation study using a visual analog scale (VAS) to produce values for all EQ-5D-5L states. Different designs were generated to test their prediction accuracy. Methods: Subsamples of the dataset were used to mimic data obtained from a particular design; the remaining dataset was used as the validation set. In addition to EuroQol Group Valuation Technology (EQ-VT) design, alternative subsamples and designs were created using random, orthogonal, and "optimizing Defficiency "sampling methods. The root mean squared error (RMSE) was used as the measure of prediction accuracy. Results: The EuroQol Group Valuation Technology (EQ-VT) design showed an average RMSE of 3.44 on EQ-VAS, for all 3125 health states combined. Notably, a 25-state orthogonal design performed similarly to the EQ-VT design, with a smaller RMSE of 3.40, and was thus the most efficient design. One caveat with respect to the orthogonal design was that it did not predict the mild states well. Conclusions: Our study supports the EQ-VT design. Smaller designs were identified with similar overall prediction accuracy. It is worth investigating whether issues with misprediction of mild states can be resolved, as the use of smaller size designs would reduce the cost of the valuation of EQ-5D-5L considerably. Copyright (c) 2019, ISPOReThe Professional Society for Health Economics and Outcomes Research. Published by Elsevier Inc. This is anopenaccess article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
机译:目的:当前五级EQ-5D (EQ-5D-5L)估值协议需要86的估值州。选择经验价值的健康状态在三级影响外推值EQ-5D (EQ-3D-3L)。比较当前的性能EQ-5D-5L估值设计与其他设计。研究设计:1603大学的学生参加了一个估值研究使用可视模拟量表(血管)来产生价值EQ-5D-5L状态。为了测试他们的预测精度。次级样本数据集被用来模拟数据从一个特定的设计;数据集被用来验证集。除了EuroQol集团估值技术(EQ-VT)设计,替代次级样本和设计了使用随机的,正交的,和“优化Defficiency”抽样方法。根均方误差(RMSE)被用来预测精度的措施。EuroQol集团估值技术(EQ-VT)设计显示在EQ-VAS平均均方根误差为3.44,3125年健康状态的总和。正交设计与执行EQ-VT设计、较小的RMSE为3.40因此最有效的设计。对正交设计是它没有预测温和状态。结论:我们的研究支持EQ-VT设计。较小的设计与相似总体预测精度。调查是否说明问题温和的国家可以解决,使用小尺寸设计将减少的成本EQ-5D-5L估价。2019年,ISPOReThe专业协会的健康经济学和结果的研究。爱思唯尔有限公司CC BY-NC-ND许可证

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