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带有删失成本数据的中位数回归

Median regression with censored cost data.

作者信息

Bang Heejung, Tsiatis Anastasios A

机构信息

Department of Biostatistics, University of North Carolina, Chapel Hill 27514, USA.

出版信息

Biometrics. 2002 Sep;58(3):643-9. doi: 10.1111/j.0006-341x.2002.00643.x.

Abstract

Because of the skewness of the distribution of medical costs, we consider modeling the median as well as other quantiles when establishing regression relationships to covariates. In many applications, the medical cost data are also right censored. In this article, we propose semiparametric procedures for estimating the parameters in median regression models based on weighted estimating equations when censoring is present. Numerical studies are conducted to show that our estimators perform well with small samples and the resulting inference is reliable in circumstances of practical importance. The methods are applied to a dataset for medical costs of patients with colorectal cancer.

摘要

由于医疗费用分布的偏态性,我们在建立与协变量的回归关系时考虑对中位数以及其他分位数进行建模。在许多应用中,医疗费用数据也存在右删失的情况。在本文中,我们提出了基于加权估计方程的半参数方法,用于在存在删失时估计中位数回归模型中的参数。进行了数值研究以表明我们的估计量在小样本情况下表现良好,并且在实际重要的情况下所得推断是可靠的。这些方法应用于一组结直肠癌患者医疗费用的数据集。

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