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使用删失偏态正态回归方法对预期寿命的绝对差异进行建模。

Modeling absolute differences in life expectancy with a censored skew-normal regression approach.

作者信息

Moser André, Clough-Gorr Kerri, Zwahlen Marcel

机构信息

Department of Geriatrics, Bern University Hospital, and Spital Netz Bern Ziegler, and University of Bern , Bern , Switzerland ; Institute of Social and Preventive Medicine (ISPM), University of Bern , Bern , Switzerland.

Institute of Social and Preventive Medicine (ISPM), University of Bern , Bern , Switzerland.

出版信息

PeerJ. 2015 Aug 6;3:e1162. doi: 10.7717/peerj.1162. eCollection 2015.

Abstract

Parameter estimates from commonly used multivariable parametric survival regression models do not directly quantify differences in years of life expectancy. Gaussian linear regression models give results in terms of absolute mean differences, but are not appropriate in modeling life expectancy, because in many situations time to death has a negative skewed distribution. A regression approach using a skew-normal distribution would be an alternative to parametric survival models in the modeling of life expectancy, because parameter estimates can be interpreted in terms of survival time differences while allowing for skewness of the distribution. In this paper we show how to use the skew-normal regression so that censored and left-truncated observations are accounted for. With this we model differences in life expectancy using data from the Swiss National Cohort Study and from official life expectancy estimates and compare the results with those derived from commonly used survival regression models. We conclude that a censored skew-normal survival regression approach for left-truncated observations can be used to model differences in life expectancy across covariates of interest.

摘要

常用多变量参数生存回归模型的参数估计不能直接量化预期寿命年数的差异。高斯线性回归模型给出的结果是绝对平均差异,但不适用于预期寿命建模,因为在许多情况下,死亡时间具有负偏态分布。在预期寿命建模中,使用偏态正态分布的回归方法可以替代参数生存模型,因为参数估计可以根据生存时间差异进行解释,同时考虑到分布的偏态性。在本文中,我们展示了如何使用偏态正态回归,以便考虑删失和左截断观测值。借此,我们使用瑞士国民队列研究的数据和官方预期寿命估计值对预期寿命差异进行建模,并将结果与常用生存回归模型得出的结果进行比较。我们得出结论,对于左截断观测值,删失偏态正态生存回归方法可用于对感兴趣的协变量之间的预期寿命差异进行建模。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0705/4558072/9a7cebe33b3d/peerj-03-1162-g001.jpg

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