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Weak pairwise correlations imply strongly correlated network states in a neural population

机译:弱的成对相关性暗示神经群体中的网络状态高度相关

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摘要

Biological networks have so many possible states that exhaustive sampling is impossible. Successful analysis thus depends on simplifying hypotheses, but experiments on many systems hint that complicated, higher-order interactions among large groups of elements have an important role. Here we show, in the vertebrate retina, that weak correlations between pairs of neurons coexist with strongly collective behaviour in the responses of ten or more neurons. We find that this collective behaviour is described quantitatively by models that capture the observed pairwise correlations but assume no higher-order interactions. These maximum entropy models are equivalent to Ising models, and predict that larger networks are completely dominated by correlation effects. This suggests that the neural code has associative or error-correcting properties, and we provide preliminary evidence for such behaviour. As a first test for the generality of these ideas, we show that similar results are obtained from networks of cultured cortical neurons.
机译:生物网络有许多可能的状态,因此不可能进行详尽的采样。因此,成功的分析取决于简化假设,但是在许多系统上进行的实验表明,大型元素组之间复杂的高阶交互具有重要作用。在这里,我们表明,在脊椎动物的视网膜中,在十个或更多神经元的反应中,成对的神经元之间的弱关联与强烈的集体行为并存。我们发现,这种集体行为是通过捕获观察到的成对相关性的模型进行定量描述的,但没有任何高级交互作用。这些最大熵模型等效于Ising模型,并预测较大的网络完全由相关效应支配。这表明神经代码具有关联或纠错属性,我们为这种行为提供了初步的证据。作为对这些想法的普遍性的首次检验,我们表明从培养的皮质神经元网络中获得了相似的结果。

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