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Estimating CHU-9D Utility Scores from the WAItE: A Mapping Algorithm for Economic Evaluation

机译:估计CHU-9D效用分数从韦特:一个经济评价的映射算法

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Background: The Weight-Specific Adolescent Instrument for Economic Evaluation (WAItE) is a new condition-specific patient reported outcome measure that incorporates the views of adolescents in assessing the impact of above healthy weight status on key aspects of their lives. Presently it is not possible to use the WAItE to calculate quality adjusted life years (QALYs) for cost-utility analysis (CUA), given that utility scores are not available for health states described by the WAItE. Objective: This paper examines different regression models for estimating Child Health Utility 9 Dimension (CHU-9D) utility scores from the WAItE for the purpose of calculating QALYs to inform CUA. Methods: The WAItE and CHU-9D were completed by a sample of 975 adolescents. Nine regression models were estimated: ordinary least squares, Tobit, censored least absolute deviations, twopart, generalized linear model, robust MM-estimator, beta-binomial, finite mixture models, and ordered logistic regression. The mean absolute error (MAE) and mean squared error (MSE) were used to assess the predictive ability of the models. Results: The robust MM-estimator with stepwise-selected WAItE item scores as explanatory variables had the best predictive accuracy. Conclusions: Condition-specific tools have been shown to be more sensitive to changes that are important to the population for which they have been developed for. The mapping algorithm developed in this study facilitates the estimation of health-state utilities necessary for undertaking CUA within clinical studies that have only collected the WAItE.
机译:背景:Weight-Specific青少年经济评价(韦特)是一个工具新的condition-specific病人报告结果措施,包含的观点青少年在评估的影响健康的体重状态的关键方面的生活。韦特来计算质量调整生命年(提升)成本效用分析(CUA)对健康效用分数不是可用的韦特所描述的。论文调查了不同的回归模型估计9维儿童健康效用(CHU-9D)实用工具从韦特的得分目的计算qaly通知CUA。方法:韦特和CHU-9D完成975青少年的样本。普通最小二乘估计:托比特书,twopart审查最小绝对偏差,广义线性模型,健壮的MM-estimator,beta-binomial,有限混合模型和命令逻辑回归。(美)和均方误差(MSE)被用来评估模型的预测能力。结果:MM-estimator强劲stepwise-selected韦特条目分数解释变量有最好的预测准确性。已被证明的变化更敏感重要的人口他们已经开发了。算法在本研究开发促进了健康状况评价工具内事业CUA临床研究只有收集了韦特。

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