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Clique topology reveals intrinsic geometric structure in neural correlations

机译:派系拓扑揭示神经关联中的内在几何结构

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摘要

Detecting meaningful structure in neural activity and connectivity data is challenging in the presence of hidden nonlinearities, where traditional eigenvalue-based methods may be misleading. We introduce a novel approach to matrix analysis, called clique topology, that extracts features of the data invariant under nonlinear monotone transformations. These features can be used to detect both random and geometric structure, and depend only on the relative ordering of matrix entries. We then analyzed the activity of pyramidal neurons in rat hippocampus, recorded while the animal was exploring a 2D environment, and confirmed that our method is able to detect geometric organization using only the intrinsic pattern of neural correlations. Remarkably, we found similar results during nonspatial behaviors such as wheel running and rapid eye movement (REM) sleep. This suggests that the geometric structure of correlations is shaped by the underlying hippocampal circuits and is not merely a consequence of position coding. We propose that clique topology is a powerful new tool for matrix analysis in biological settings, where the relationship of observed quantities to more meaningful variables is often nonlinear and unknown.
机译:在存在隐藏的非线性因素的情况下,检测神经活动和连通性数据中有意义的结构是一项挑战,在这种情况下,传统的基于特征值的方法可能会产生误导。我们介绍了一种新的矩阵分析方法,称为团簇拓扑,可提取非线性单调变换下数据不变的特征。这些功能可用于检测随机和几何结构,并且仅取决于矩阵条目的相对顺序。然后,我们分析了大鼠海马中锥体神经元的活动,并在动物探索2D环境时进行了记录,并证实了我们的方法仅使用神经相关性的固有模式就能检测几何结构。值得注意的是,我们在非空间行为(例如车轮行驶和快速眼动(REM)睡眠)中发现了相似的结果。这表明相关性的几何结构由潜在的海马回路形成,而不仅仅是位置编码的结果。我们提出,群体拓扑是在生物环境中进行矩阵分析的强大新工具,其中观测到的数量与更有意义的变量之间的关系通常是非线性且未知的。

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