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Fermionic networks: Modeling adaptive complex networks with fermionic gases

机译:费米离子网络:使用费米离子气体对自适应复杂网络进行建模

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We study the structure of fermionic networks, i.e. a model of networks based on the behavior of fermionic gases, and we analyze dynamical processes over them. In this model, particle dynamics have been mapped to the domain of networks, hence a parameter representing the temperature controls the evolution of the system. In doing so, it is possible to generate adaptive networks, i.e. networks whose structure varies over time. As shown in previous works, networks generated by quantum statistics can undergo critical phenomena as phase transitions and, moreover, they can be considered as thermodynamic systems. In this study, we analyze fermionic networks and opinion dynamics processes over them, framing this network model as a computational model useful to represent complex and adaptive systems. Results highlight that a strong relation holds between the gas temperature and the structure of the achieved networks. Notably, both the degree distribution and the assortativity vary as the temperature varies, hence we can state that fermionic networks behave as adaptive networks. On the other hand, it is worth to highlight that we did not finding relation between outcomes of opinion dynamics processes and the gas temperature. Therefore, although the latter plays a fundamental role in gas dynamics, on the network domain, its importance is related only to structural properties of fermionic networks.
机译:我们研究了费米离子网络的结构,即基于费米离子气体行为的网络模型,并分析了它们的动力学过程。在此模型中,粒子动力学已映射到网络域,因此代表温度的参数控制着系统的演化。这样做,可以生成自适应网络,即其结构随时间变化的网络。如先前的工作所示,由量子统计产生的网络可能会经历临界现象,成为相变,而且它们可以被视为热力学系统。在这项研究中,我们分析了费米子网络和对其的舆论动力学过程,并将此网络模型构建为可用于表示复杂和自适应系统的计算模型。结果表明,气体温度与所获得网络的结构之间存在密切关系。值得注意的是,度数分布和分类性都随温度的变化而变化,因此我们可以说铁离子网络表现为自适应网络。另一方面,值得强调的是,我们没有发现意见动态过程的结果与气体温度之间的关系。因此,尽管后者在气体动力学中起着基本作用,但在网络领域,其重要性仅与费米离子网络的结构性质有关。

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