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Demonstration and validation of Kernel Density Estimation for spatial meta-analyses in cognitive neuroscience using simulated data

机译:使用模拟数据在认知神经科学中进行空间荟萃分析的核密度估计的论证和验证

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摘要

The data presented in this article are related to the research article entitled “Convergence of semantics and emotional expression within the IFG pars orbitalis” (Belyk et al., 2017) . The research article reports a spatial meta-analysis of brain imaging experiments on the perception of semantic compared to emotional communicative signals in humans. This Data in Brief article demonstrates and validates the use of Kernel Density Estimation (KDE) as a novel statistical approach to neuroimaging data. First, we performed a side-by-side comparison of KDE with a previously published meta-analysis that applied activation likelihood estimation, which is the predominant approach to meta-analyses in cognitive neuroscience. Second, we analyzed data simulated with known spatial properties to test the sensitivity of KDE to varying degrees of spatial separation. KDE successfully detected true spatial differences in simulated data and displayed few false positives when no true differences were present. R code to simulate and analyze these data is made publicly available to facilitate the further evaluation of KDE for neuroimaging data and its dissemination to cognitive neuroscientists.
机译:本文提供的数据与题为“ IFG pars orbitalis内语义和情感表达的融合”的研究文章相关(Belyk等人,2017)。这篇研究文章报告了大脑成像实验的空间元分析,与人类的情感交流信号相比,语义感知更为丰富。这篇简短的数据演示并验证了核密度估计(KDE)作为神经影像数据的一种新型统计方法的使用。首先,我们将KDE与先前发布的应用激活可能性估计的荟萃分析进行了并排比较,这是认知神经科学中进行荟萃分析的主要方法。其次,我们分析了具有已知空间特性的模拟数据,以测试KDE对不同程度的空间分离的敏感性。 KDE成功地在模拟数据中检测到真实的空间差异,并且在不存在真实差异的情况下显示很少的假阳性。公开提供了用于模拟和分析这些数据的R代码,以帮助进一步评估KDE的神经影像数据并将其分发给认知神经科学家。

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