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Mapping from the Parkinson's Disease Questionnaire PDQ-39 to the Generic EuroQol EQ-5D-3L: The Value of Mixture Models

机译:从帕金森氏病问卷PDQ-39到通用EuroQol EQ-5D-3L的映射:混合模型的价值

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Objective. To compare a range of statistical models to enable the estimation of EQ-5D-3L utilities from responses to the Parkinson's Disease Questionnaire 39 (PDQ-39). Methods. Linear regression, beta regression, mixtures of linear regressions and beta regressions, and multinomial logistic regression were compared in terms of their ability to accurately predict EQ-5D-3L utilities from responses to the PDQ-39 using mean error (ME), mean absolute error (MAE), and mean square error (MSE), overall and by Hoehn and Yahr stage. Models were estimated using data from the PD MED trial (n = 9123) and assessed on both the estimation data as well as external data from the PD SURG trial (n = 917). Results. Overall, the differences in the metrics of fit between models were small in both data sets, with performance poorer for all models in PD SURG. The performance across Hoehn and Yahr stages 1 to 3 were also similar, but multinomial logistic regression was found to exhibit less bias and better individual-level predictive accuracy in PD MED for those in Hoehn and Yahr stages 4 or 5. Overall, the multinomial logistic regression reported an ME of 0.038 out of sample and MAEs of 0.128 and 0.164 and MSEs of 0.030 and 0.044 in the estimation and external data sets, respectively. Poorer levels of the mobility domain score of the PDQ-39 were associated with increased odds of reporting problems for all EQ-5D domains except anxiety/depression. Conclusions. Finite mixture models with only few components can approximate the distribution of EQ-5D-3L utilities well but did not demonstrate improvements in predictive accuracy compared with multinomial logistic regression in the present data set.
机译:目的。为了比较一系列统计模型,以便能够根据对帕金森氏病问卷39(PDQ-39)的答复来估算EQ-5D-3L效用。方法。比较了线性回归,β回归,线性回归和β回归的混合以及多项逻辑回归的能力,这些能力使用平均误差(ME),平均绝对误差(MAE)和均方误差(MSE),按总体和Hoehn和Yahr阶段进行。使用PD MED试验的数据(n = 9123)评估模型,并根据估算数据以及PD SURG试验的外部数据(n = 917)进行评估。结果。总体而言,两个数据集中模型之间的拟合度指标差异很小,而PD SURG中所有模型的性能均较差。 Hoehn和Yahr阶段1到3的表现也相似,但多项式逻辑回归在Hoehn和Yahr阶段4或5的PD MED中表现出较小的偏倚和更好的个体水平预测准确性。回归显示估计和外部数据集的样本中的ME为0.038,MAE为0.128和0.164,MSE为0.030和0.044。 PDQ-39的迁移域得分水平较差,与所有EQ-5D域(焦虑/抑郁)报告问题的几率增加相关。结论。仅具有很少成分的有限混合模型可以很好地近似EQ-5D-3L实用程序的分布,但是与本数据集中的多项逻辑回归相比,预测精度没有提高。

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