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A novel opinion dynamics model based on expanded observation ranges and individuals’ social influences in social networks

机译:基于扩展观察范围和社交网络中个人的社会影响力的新颖意见动态模型

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In this paper, we propose an opinion dynamics model in order to investigate opinion evolution and interactions and the behavior of individuals. By introducing social influence and its feedback mechanism, the proposed model can highlight the heterogeneity of individuals and reproduce realistic online opinion interactions. It can also expand the observation range of affected individuals. Combining psychological studies on the social impact of majorities and minorities, affected individuals update their opinions by balancing social impact from both supporters and opponents. It can be seen that complete consensus is not always obtained. When the initial density of either side is greater than 0.8, the enormous imbalance leads to complete consensus. Otherwise, opinion clusters consisting of a set of tightly connected individuals who hold similar opinions appear. Moreover, a tradeoff is discovered between high interaction intensity and low stability with regard to observation ranges. The intensity of each interaction is negatively correlated with observation range, while the stability of each individual’s opinion positively affects the correlation. Furthermore, the proposed model presents the power-law properties in the distribution of individuals’ social influences, which is in agreement with people’s daily cognition. Additionally, it is proven that the initial distribution of individuals’ social influences has little effect on the evolution.
机译:在本文中,我们提出了一种意见动态模型,以研究意见的演变,互动和个人行为。通过引入社会影响力及其反馈机制,所提出的模型可以突出个人的异质性并再现现实的在线意见互动。它还可以扩大受影响个体的观察范围。结合对少数民族和少数群体的社会影响的心理学研究,受影响的个人通过平衡支持者和反对者的社会影响来更新自己的观点。可以看出,并非总是能达成完全共识。当任一侧的初始密度大于0.8时,巨大的不平衡都会导致完全共识。否则,将出现由一群持有相似观点的紧密联系的个人组成的观点集群。而且,在观察范围的高相互作用强度和低稳定性之间发现了折衷。每次互动的强度与观察范围呈负相关,而每个人的观点的稳定性则对相关性产生积极影响。此外,该模型提出了个人社会影响力分布中的幂律属性,这与人们的日常认知是一致的。此外,事实证明,个人社会影响力的初始分布对进化的影响很小。

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