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Beta-Rhythm Oscillations and Synchronization Transition in Network Models of Izhikevich Neurons: Effect of Topology and Synaptic Type

机译:Izhikevich神经元网络模型中的Beta-Rhythm振荡和同步转换:拓扑和突触类型的影响

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摘要

Despite their significant functional roles, beta-band oscillations are least understood. Synchronization in neuronal networks have attracted much attention in recent years with the main focus on transition type. Whether one obtains explosive transition or a continuous transition is an important feature of the neuronal network which can depend on network structure as well as synaptic types. In this study we consider the effect of synaptic interaction (electrical and chemical) as well as structural connectivity on synchronization transition in network models of Izhikevich neurons which spike regularly with beta rhythms. We find a wide range of behavior including continuous transition, explosive transition, as well as lack of global order. The stronger electrical synapses are more conducive to synchronization and can even lead to explosive synchronization. The key network element which determines the order of transition is found to be the clustering coefficient and not the small world effect, or the existence of hubs in a network. These results are in contrast to previous results which use phase oscillator models such as the Kuramoto model. Furthermore, we show that the patterns of synchronization changes when one goes to the gamma band. We attribute such a change to the change in the refractory period of Izhikevich neurons which changes significantly with frequency.
机译:尽管有重要的功能作用,但是最不明白的β带振荡。近年来,神经元网络中的同步引起了很多关注转换类型的主要关注。是否获得爆炸性转换或连续转变是神经元网络的重要特征,其可以取决于网络结构以及突触类型。在这项研究中,我们考虑了突触相互作用(电气和化学)的影响,以及与β节奏定期飙升的Izhikevich神经元网络模型中同步转变的结构连通性。我们发现广泛的行为包括持续转型,爆炸性转换,以及缺乏全球秩序。较强的电突触更有利于同步,甚至可以导致爆炸性同步。确定转换顺序的关键网络元素是聚类系数,而不是小的世界效应,或网络中的集线器的存在。这些结果与先前的结果相反,使用诸如Kuramoto模型的相位振荡器模型。此外,我们表明,当一个人进入伽马带时,同步的模式改变。我们将这种改变归因于频率显着变化的Izhikevich神经元的耐火周期的变化。

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