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Inferring consistent functional interaction patterns from natural stimulus FMRI data

机译:从自然刺激FMRI数据推断出一致的功能相互作用模式

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There has been increasing interest in how the human brain responds to natural stimulus such as video watching in the neuroimaging field. Along this direction, this paper presents our effort in inferring consistent and reproducible functional interaction patterns under natural stimulus of video watching among known functional brain regions identified by task-based fMRI. Then, we applied and compared four statistical approaches, including Bayesian network modeling with searching algorithms: greedy equivalence search (GES), Peter and Clark (PC) analysis, independent multiple greedy equivalence search (IMaGES), and the commonly used Granger causality analysis (GCA), to infer consistent and reproducible functional interaction patterns among these brain regions. It is interesting that a number of reliable and consistent functional interaction patterns were identified by the GES, PC and IMaGES algorithms in different participating subjects when they watched multiple video shots of the same semantic category. These interaction patterns are meaningful given current neuroscience knowledge and are reasonably reproducible across different brains and video shots. In particular, these consistent functional interaction patterns are supported by structural connections derived from diffusion tensor imaging (DTI) data, suggesting the structural underpinnings of consistent functional interactions. Our work demonstrates that specific consistent patterns of functional interactions among relevant brain regions might reflect the brain's fundamental mechanisms of online processing and comprehension of video messages.
机译:人们对人脑如何响应自然刺激(例如在神经成像领域中观看视频)的兴趣日益浓厚。沿着这个方向,本文介绍了我们在基于任务的功能磁共振成像所识别的已知功能性大脑区域中,在视频观看的自然刺激下,推断出一致且可重现的功能相互作用模式的努力。然后,我们应用并比较了四种统计方法,包括使用搜索算法进行的贝叶斯网络建模:贪婪对等搜索(GES),彼得和克拉克(PC)分析,独立多重贪婪对等搜索(IMaGES)和常用的格兰杰因果关系分析( GCA),以推断这些大脑区域之间一致且可重现的功能相互作用模式。有趣的是,当GES,PC和IMaGES算法观看同一语义类别的多个视频镜头时,GES,PC和IMaGES算法可以识别出许多可靠且一致的功能交互模式。鉴于当前的神经科学知识,这些交互模式是有意义的,并且可以在不同的大脑和视频镜头之间合理地再现。特别是,这些一致的功能交互作用模式得到了来自扩散张量成像(DTI)数据的结构连接的支持,表明了一致的功能交互作用的结构基础。我们的工作表明,相关大脑区域之间功能交互的特定一致模式可能反映了大脑在线处理和理解视频消息的基本机制。

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