首页> 外文OA文献 >Analysis by categorizing or dichotomizing continuous variables is inadvisable: an example from the natural history of unruptured aneurysms.
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Analysis by categorizing or dichotomizing continuous variables is inadvisable: an example from the natural history of unruptured aneurysms.

机译:不建议通过对连续变量进行分类或二分法进行分析:这是动脉瘤未破裂的自然史中的一个例子。

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摘要

In medical research analyses, continuous variables are often converted into categoric variables by grouping values into ≥2 categories. The simplicity achieved by creating ≥2 artificial groups has a cost: Grouping may create rather than avoid problems. In particular, dichotomization leads to a considerable loss of power and incomplete correction for confounding factors. The use of data-derived "optimal" cut-points can lead to serious bias and should at least be tested on independent observations to assess their validity. Both problems are illustrated by the way the results of a registry on unruptured intracranial aneurysms are commonly used. Extreme caution should restrict the application of such results to clinical decision-making. Categorization of continuous data, especially dichotomization, is unnecessary for statistical analysis. Continuous explanatory variables should be left alone in statistical models.
机译:在医学研究分析中,通常通过将值分组为≥2个类别来将连续变量转换为类别变量。通过创建≥2个人工组来实现简单性需要付出代价:分组可能会产生而不是避免出现问题。特别是,二分法会导致相当大的功率损失以及对混杂因素的不完全校正。使用数据派生的“最佳”切点可能会导致严重的偏差,因此至少应在独立观察中进行测试以评估其有效性。这两个问题都通过未破裂颅内动脉瘤的注册结果的常用方式说明。极端谨慎应将此类结果的应用限制于临床决策。连续数据的分类,尤其是二分法,对于统计分析而言是不必要的。连续的解释变量应在统计模型中保留。

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