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A smooth mixture of Tobits model for healthcare expenditure.

机译:用于医疗保健支出的Tobits模型的平滑混合。

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This paper develops a smooth mixture of Tobits (SMTobit) model for healthcare expenditure. The model is a generalization of the smoothly mixing regressions framework of Geweke and Keane (J Econometrics 2007; 138: 257-290) to the case of a Tobit-type limited dependent variable. A Markov chain Monte Carlo algorithm with data augmentation is developed to obtain the posterior distribution of model parameters. The model is applied to the US Medicare Current Beneficiary Survey data on total medical expenditure. The results suggest that the model can capture the overall shape of the expenditure distribution very well, and also provide a good fit to a number of characteristics of the conditional (on covariates) distribution of expenditure, such as the conditional mean, variance and probability of extreme outcomes, as well as the 50th, 90th, and 95th, percentiles. We find that healthier individuals face an expenditure distribution with lower mean, variance and probability of extreme outcomes, compared with their counterparts in a worse state of health. Males have an expenditure distribution with higher mean, variance and probability of an extreme outcome, compared with their female counterparts. The results also suggest that heart and cardiovascular diseases affect the expenditure of males more than that of females.
机译:本文开发了用于医疗保健支出的Tobits(SMTobit)模型的平滑混合。该模型是Geweke和Keane的平滑混合回归框架(J Econometrics 2007; 138:257-290)的一般化,适用于Tobit型有限因变量的情况。开发了具有数据扩充功能的马尔可夫链蒙特卡罗算法,以获得模型参数的后验分布。该模型已应用于有关医疗总支出的美国Medicare当前受益人调查数据。结果表明,该模型可以很好地捕获支出分布的总体形状,并且还可以很好地拟合条件性支出(在协变量上)的多个特征,例如条件均值,方差和概率极端结果,以及第50、90和95%。我们发现,与健康状况较差的人相比,健康的人面临的支出分布的均值,方差和极端结果的概率较低。与女性相比,男性的支出分布具有更高的均值,方差和极端结果的可能性。结果还表明,心脏病和心血管疾病对男性的影响比对女性的影响更大。

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