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Latent variable models for assessing interaction effects in cognitive neuroscience

机译:潜在变量模型,用于评估认知神经科学中的相互作用

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The aim of this study is to provide latent variable models (LVM) to evaluate interaction effects between functional brain cortical regions. Rapidly developed imaging techniques and methods, for instance, ERP and fMRI, can serve as feasible accessories on mapping brain functions by monitoring activities among different cortical regions. Without capable statistical models, for example, the proposed latent variable models, analyzing these complex brain images can be troublesome. The advanced LVM proposed in this study can provide appropriate evaluations on interaction/connectivity among cortical regions that have drawn many attentions in recent cognitive neuroscience literature. We further demonstrate the feasibility of LVM by showing satisfying LVM accuracy rates under various simulated sample sizes and magnitudes of effects in evaluating cortical interactions. Practical suggestions and interpretations of this study are established to serve guidelines for medical and substantive researchers.
机译:这项研究的目的是提供潜在变量模型(LVM)来评估功能性大脑皮层区域之间的相互作用的影响。快速发展的成像技术和方法,例如ERP和fMRI,可以通过监视不同皮层区域之间的活动,作为绘制脑功能图的可行附件。如果没有有效的统计模型(例如,建议的潜在变量模型),则分析这些复杂的大脑图像可能会很麻烦。在这项研究中提出的先进的LVM可以提供有关皮质区域之间的相互作用/连接性的适当评估,这在最近的认知神经科学文献中引起了很多关注。我们通过在各种模拟样本量和评估皮质相互作用的影响幅度下显示令人满意的LVM准确率,进一步证明了LVM的可行性。建立了本研究的实用建议和解释,以为医学和实质性研究人员提供指导。

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