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流行病学测量的直接调整与回归调整比较

A comparison of direct adjustment and regression adjustment of epidemiologic measures.

作者信息

Wilcosky T C, Chambless L E

出版信息

J Chronic Dis. 1985;38(10):849-56. doi: 10.1016/0021-9681(85)90109-2.

Abstract

Although regression adjustment can provide a useful alternative to direct adjustment, especially when data are sparse, many researchers are unaware that adjusted summary measures can be easily derived from regression coefficients. In a non-technical discussion with examples, the direct adjustment procedure is compared with three methods of regression adjustment based on analysis of covariance models: the conditional prediction method, the stratified prediction method, and the marginal prediction method. Both the stratified prediction and direct adjustment methods yield summary measures that are weighted averages of stratum-specific measures, while adjusted measures from the conditional prediction method are similar to stratum-specific estimates. In contrast to the other adjustment procedures, which can use internal or external weights, the marginal prediction method always gives an internally adjusted measure. Under certain conditions, the three regression adjustment procedures produce identical results. Major advantages of direct adjustment include computational simplicity and relatively few statistical assumptions. Regression adjustment, however, is more convenient for statistical tests for interactions and group differences, and often precludes the need to categorize continuous variables, so that problems with empty strata are avoided.

摘要

尽管回归调整可以为直接调整提供一种有用的替代方法,尤其是在数据稀疏时,但许多研究人员并未意识到可以从回归系数轻松得出调整后的汇总指标。在一次带有实例的非技术性讨论中,将直接调整程序与基于协方差分析模型的三种回归调整方法进行了比较:条件预测法、分层预测法和边际预测法。分层预测法和直接调整法得出的汇总指标都是各层特定指标的加权平均值,而条件预测法得出的调整后指标类似于各层特定估计值。与其他可以使用内部或外部权重的调整程序不同,边际预测法始终给出内部调整后的指标。在某些条件下,三种回归调整程序会产生相同的结果。直接调整的主要优点包括计算简单和统计假设相对较少。然而,回归调整对于交互作用和组间差异的统计检验更为方便,并且通常无需对连续变量进行分类,从而避免了出现空层的问题。

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