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Identification of multiple influential observations in logistic regression

机译:逻辑回归中多种影响观察的识别

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The identification of influential observations in logistic regression has drawn a great deal of attention in recent years. Most of the available techniques like Cook's distance and difference of fits (DFFITS) are based on single-case deletion. But there is evidence that these techniques suffer from masking and swamping problems and consequently fail to detect multiple influential observations. In this paper, we have developed a new measure for the identification of multiple influential observations in logistic regression based on a generalized version of DFFITS. The advantage of the proposed method is then investigated through several well-referred data sets and a simulation study.
机译:逻辑回归中有影响的观察结果的识别近年来引起了很多关注。 Cook的距离和拟合差异(DFFITS)等大多数可用技术都基于单例删除。但是,有证据表明,这些技术存在掩盖和沼泽问题,因此无法检测到多个有影响力的观察结果。在本文中,我们基于DFFITS的广义版本,开发了一种用于识别Logistic回归中多个影响性观察结果的新方法。然后,通过几个很好参考的数据集和模拟研究来研究所提出方法的优势。

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