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A flexible quantile regression model for medical costs with application to Medical Expenditure Panel Survey Study

机译:一种灵活的分位式回归模型,用于医疗支出面板调查研究

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摘要

Medical costs are often skewed to the right and heteroscedastic, having a sophisticated relation with covariates. Mean function regression models with low‐dimensional covariates have been extensively considered in the literature. However, it is important to develop a robust alternative to find the underlying relationship between medical costs and high‐dimensional covariates. In this paper, we propose a new quantile regression model to analyze medical costs. We also consider variable selection, using an adaptive lasso penalized variable selection method to identify significant factors of the covariates. Simulation studies are conducted to illustrate the performance of the estimation method. We apply our method to the analysis of the Medical Expenditure Panel Survey dataset.
机译:医疗费用往往偏向于右侧和异质型,具有复杂的协调因素。 在文献中广泛考虑了具有低维协调因子的平均功能回归模型。 但是,重要的是要制定强大的替代方案,以找到医疗成本与高维协调因素之间的基础关系。 在本文中,我们提出了一种新的分位数回归模型来分析医疗费用。 我们还考虑使用自适应套索惩罚变量选择方法来考虑变量选择,以确定协变量的重要因素。 进行仿真研究以说明估计方法的性能。 我们将我们的方法应用于医疗支出面板调查数据集的分析。

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