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首页> 外文期刊>Brain Sciences >Optimal Interplay between Synaptic Strengths and Network Structure Enhances Activity Fluctuations and Information Propagation in Hierarchical Modular Networks
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Optimal Interplay between Synaptic Strengths and Network Structure Enhances Activity Fluctuations and Information Propagation in Hierarchical Modular Networks

机译:突触强度和网络结构之间的最佳相互作用增强了层次模块化网络中的活动波动和信息传播

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摘要

In network models of spiking neurons, the joint impact of network structure and synaptic parameters on activity propagation is still an open problem. Here, we use an information-theoretical approach to investigate activity propagation in spiking networks with a hierarchical modular topology. We observe that optimized pairwise information propagation emerges due to the increase of either (i) the global synaptic strength parameter or (ii) the number of modules in the network, while the network size remains constant. At the population level, information propagation of activity among adjacent modules is enhanced as the number of modules increases until a maximum value is reached and then decreases, showing that there is an optimal interplay between synaptic strength and modularity for population information flow. This is in contrast to information propagation evaluated among pairs of neurons, which attains maximum value at the maximum values of these two parameter ranges. By examining the network behavior under the increase of synaptic strength and the number of modules, we find that these increases are associated with two different effects: (i) the increase of autocorrelations among individual neurons and (ii) the increase of cross-correlations among pairs of neurons. The second effect is associated with better information propagation in the network. Our results suggest roles that link topological features and synaptic strength levels to the transmission of information in cortical networks.
机译:在尖刺神经元的网络模型中,网络结构的关节影响和突触参数对活动传播仍然是一个开放的问题。在这里,我们使用信息理论方法来调查具有分层模块拓扑的尖峰网络中的活动传播。我们观察到,由于(i)全局突触强度参数或(ii)网络中的模块数量增加,优化的成对信息传播出现,而网络尺寸保持不变。在人口级别,随着模块的数量增加,直到达到最大值然后减小,显示相邻模块之间的信息传播增强,表明突触强度与人口信息流的模块化之间存在最佳相互作用。这与在对神经元对成对的信息传播中的信息传播相反,这在这两个参数范围的最大值处达到最大值。通过在突触强度的增加和模块的增加下检查网络行为,我们发现这些增加与两种不同的效果相关:(i)单个神经元的自相关的增加和(ii)之间的互相关性增加对神经元。第二次效果与网络中的更好信息传播相关联。我们的结果表明,将拓扑特征和突触强度水平链接到皮质网络中信息传输的角色。

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