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Graphical Models and Dynamic Latent Factors for Modeling Functional Brain Connectivity

机译:用于建模功能性脑连接的图形模型和动态潜在因子

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With modern technology, the activity of thousands of neurons in the brain can be recorded simultaneously. Such data can potentially shed light on how neurons communicate with one another. These neuronal interactions are often viewed under the framework of functional connectivity, which is defined as the statistical dependence between recorded neuronal activity. Several have proposed to use graphical models to estimate functional connectivity between neurons directly from neuronal recording data. However, one challenge that can arise from this type of data that is not addressed by a traditional graphical model is the influence of dynamic latent brain states on recorded neuronal activity, as the neurons recorded in one experimental session constitute only a small subset of all the neurons in the brain. These latent states should be accounted for to get a more accurate estimate of functional connectivity. In this paper, we introduce two models, the dynamic mean operator (DYNAMO) and the dynamic covariance operator (DYNACO) conditional Gaussian graphical models, to infer functional connectivity from neuronal activity data after adjusting for dynamic latent brain states. We apply the DYNAMO and DYNACO models to a variety of simulation studies and demonstrate their superior performance over traditional, unconditional graphical models.
机译:通过现代技术,可以同时记录大脑中数千个神经元的活动。这些数据可能会阐明神经元如何彼此通信。这些神经元相互作用通常在功能性连接的框架下观察,这被定义为记录的神经元活动之间的统计依赖性。几个已经提出使用图形模型来直接从神经元记录数据估计神经元之间的功能连接。然而,传统图形模型未解决的这种数据可以出现的一个挑战是动态潜在脑状态对记录的神经元活动的影响,因为在一个实验会议中记录的神经元仅构成所有的小子集大脑中的神经元。应考虑这些潜在的状态以获得更准确的功能连接估算。在本文中,我们介绍了两种型号,动态平均运算符(发电机)和动态协方差操作员(Dynaco)条件高斯图形模型,在调整动态潜在脑状态后从神经元活动数据推断出功能连接。我们将Dynamo和Dynaco模型应用于各种仿真研究,并展示其对传统无条件图形模型的卓越性能。

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