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Cluster failure revisited: Impact of first level design and physiological noise on cluster false positive rates

机译:重新探讨群集故障:一级设计和生理噪声对群集误报率的影响

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摘要

Methodological research rarely generates a broad interest, yet our work on the validity of cluster inference methods for functional magnetic resonance imaging (fMRI) created intense discussion on both the minutia of our approach and its implications for the discipline. In the present work, we take on various critiques of our work and further explore the limitations of our original work. We address issues about the particular event‐related designs we used, considering multiple event types and randomization of events between subjects. We consider the lack of validity found with one‐sample permutation (sign flipping) tests, investigating a number of approaches to improve the false positive control of this widely used procedure. We found that the combination of a two‐sided test and cleaning the data using ICA FIX resulted in nominal false positive rates for all data sets, meaning that data cleaning is not only important for resting state fMRI, but also for task fMRI. Finally, we discuss the implications of our work on the fMRI literature as a whole, estimating that at least 10% of the fMRI studies have used the most problematic cluster inference method (p = .01 cluster defining threshold), and how individual studies can be interpreted in light of our findings. These additional results underscore our original conclusions, on the importance of data sharing and thorough evaluation of statistical methods on realistic null data.
机译:方法学研究很少引起广泛的兴趣,但是我们对功能磁共振成像(fMRI)的聚类推理方法有效性的研究引起了人们对我们方法的细节及其对学科的影响的激烈讨论。在当前的工作中,我们对工作进行了各种批评,并进一步探索了我们原始工作的局限性。我们考虑了多种事件类型以及受试者之间事件的随机性,从而解决了所使用的特定事件相关设计的问题。我们认为单样本置换(符号翻转)测试缺乏有效性,因此研究了多种方法来改善这一广泛使用的程序的假阳性对照。我们发现,双面测试和使用ICA FIX清除数据的组合会导致所有数据集的名义误报率高,这意味着数据清除不仅对于静息状态功能磁共振成像很重要,而且对任务功能磁共振成像也很重要。最后,我们讨论了我们的工作对整个功能磁共振成像文献的意义,估计至少有10%的功能磁共振成像研究使用了最有问题的聚类推断方法(p = .01聚类定义阈值),以及个别研究如何能够根据我们的发现进行解释。这些额外的结果强调了我们的原始结论,即数据共享的重要性以及对实际空数据的统计方法进行彻底评估的重要性。

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