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Emergence of network structure due to spike-timing-dependent plasticity in recurrent neuronal networks IV Structuring synaptic pathways among recurrent connections

机译:复发性神经元网络中由于穗定时依赖的可塑性引起的网络结构的出现IV构建复发性连接之间的突触途径

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In neuronal networks, the changes of synaptic strength (or weight) performed by spike-timing-dependent plasticity (STDP) are hypothesized to give rise to functional network structure. This article investigates how this phenomenon occurs for the excitatory recurrent connections of a network with fixed input weights that is stimulated by external spike trains. We develop a theoretical framework based on the Poisson neuron model to analyze the interplay between the neuronal activity (firing rates and the spike-time correlations) and the learning dynamics, when the network is stimulated by correlated pools of homogeneous Poisson spike trains. STDP can lead to both a stabilization of all the neuron firing rates (homeostatic equilibrium) and a robust weight specialization. The pattern of specialization for the recurrent weights is determined by a relationship between the input firing-rate and correlation structures, the network topology, the STDP parameters and the synaptic response properties. We find conditions for feed-forward pathways or areas with strengthened self-feedback to emerge in an initially homogeneous recurrent network.
机译:在神经元网络中,假设由尖峰时序依赖的可塑性(STDP)执行的突触强度(或重量)的变化会引起功能性网络结构。本文研究了这种现象在具有固定输入权重的网络的兴奋性递归连接中如何发生,该输入权重受到外部峰值序列的刺激。我们建立了一个基于泊松神经元模型的理论框架,以分析当网络受到均质泊松峰值列车相关池的刺激时,神经元活动(点火速率和峰值时间相关性)与学习动态之间的相互作用。 STDP可以导致所有神经元放电速率的稳定(稳态平衡)和强大的体重专业化。递归权重的专业化模式由输入触发率和相关结构,网络拓扑,STDP参数和突触响应属性之间的关系确定。我们发现前向均一的递归网络中出现了前馈通路或自我反馈增强的区域的条件。

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