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Evaluating methods of correcting for multiple comparisons implemented in SPM12 in social neuroscience fMRI studies: an example from moral psychology

机译:评估SPM12在社会神经科学的SPM12中实施的多重比较的评价方法FMRI研究:来自道德心理学的一个例子

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In fMRI research, the goal of correcting for multiple comparisons is to identify areas of activity that reflect true effects, and thus would be expected to replicate in future studies. Finding an appropriate balance between trying to minimize false positives (Type I error) while not being too stringent and omitting true effects (Type II error) can be challenging. Furthermore, the advantages and disadvantages of these types of errors may differ for different areas of study. In many areas of social neuroscience that involve complex processes and considerable individual differences, such as the study of moral judgment, effects are typically smaller and statistical power weaker, leading to the suggestion that less stringent corrections that allow for more sensitivity may be beneficial and also result in more false positives. Using moral judgment fMRI data, we evaluated four commonly used methods for multiple comparison correction implemented in Statistical Parametric Mapping 12 by examining which method produced the most precise overlap with results from a meta-analysis of relevant studies and with results from nonparametric permutation analyses. We found that voxelwise thresholding with familywise error correction based on Random Field Theory provides a more precise overlap (i.e., without omitting too few regions or encompassing too many additional regions) than either clusterwise thresholding, Bonferroni correction, or false discovery rate correction methods.
机译:在FMRI研究中,纠正多种比较的目标是识别反映真实效应的活动区域,因此预计将在未来的研究中复制。在尝试之间找到适当的平衡,以最小化误报(I型错误),而不是太严格并省略了真实效果(II型错误)可能是具有挑战性的。此外,对于不同的研究领域,这些类型的误差的优点和缺点可能不同。在许多社会神经科学领域,涉及复杂的过程和相当大的个体差异,例如道德判断的研究,效果通常较小,统计功率较弱,导致允许更严格的校正的建议可能是有益的,也是有益的导致更透过的阳性。使用道德判断FMRI数据,我们通过检查多个比较参数映射12在统计参数映射12中实现的多种比较校正的四种常用方法通过相关研究的META分析和来自非参数置换分析的结果产生了最精确的重叠。我们发现基于随机场理论的各个纠错的VoxelWise阈值校正提供了更精确的重叠(即,不省略太少的区域或包含太多附加区域),而不是群集阈值处理,Bonferroni校正或错误的发现率校正方法。

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