Nucleation transitions in polycontextural networks toward consensus

IF 1.6 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER The European Physical Journal B Pub Date : 2024-11-30 DOI:10.1140/epjb/s10051-024-00826-w
Johannes Falk, Edwin Eichler, Katja Windt, Marc-Thorsten Hütt
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Abstract

Recently, we proposed polycontextural networks as a model of evolving systems of interacting beliefs. Here, we present an analysis of the phase transition as well as the scaling properties. The model contains interacting agents that strive for consensus, each with only subjective perception. Depending on a parameter that governs how responsive the agents are to changing their belief systems the model exhibits a phase transition that mediates between an active phase where the agents constantly change their beliefs and a frozen phase, where almost no changes appear. We observe the build-up of convention-aligned clusters only in the intermediate regime of diverging susceptibility. Here, we analyze in detail the behavior of polycontextural networks close to this transition. We provide an analytical estimate of the critical point and show that the scaling properties and the space–time structure of these clusters show self-similar behavior. Our results not only contribute to a better understanding of the emergence of consensus in systems of distributed beliefs but also show that polycontextural networks are models, motivated by social systems, where susceptibility—the sensitivity to change own beliefs—drives the growth of consensus clusters.

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多背景网络向共识方向的成核转变
最近,我们提出了多背景网络作为相互作用信念进化系统的模型。在这里,我们提出了相变和缩放性质的分析。该模型包含相互作用的代理,它们力求达成共识,每个代理都只有主观感知。根据控制代理对改变其信念系统的反应程度的参数,模型显示了一个过渡阶段,在代理不断改变其信念的活跃阶段和几乎没有变化的冻结阶段之间进行调解。我们观察到,只有在分散敏感性的中间制度下,才会形成常规排列的簇。在这里,我们详细分析了接近这种转变的多情境网络的行为。我们给出了临界点的解析估计,并证明了这些簇的尺度性质和时空结构表现出自相似的行为。我们的研究结果不仅有助于更好地理解分布式信念系统中共识的出现,而且还表明,多背景网络是由社会系统驱动的模型,其中敏感性-改变自己信念的敏感性-驱动共识集群的增长。
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来源期刊
The European Physical Journal B
The European Physical Journal B 物理-物理:凝聚态物理
CiteScore
2.80
自引率
6.20%
发文量
184
审稿时长
5.1 months
期刊介绍: Solid State and Materials; Mesoscopic and Nanoscale Systems; Computational Methods; Statistical and Nonlinear Physics
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