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The influence of random interactions and decision heuristics on norm evolution in social networks

机译:社交网络中随机交互和决策启发式对规范演化的影响

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In this paper we explore the effect that random social interactions have on the emergence and evolution of social norms in a simulated population of agents. In our model agents observe the behaviour of others and update their norms based on these observations. An agent's norm is influenced by both their own fixed social network plus a second random network that is composed of a subset of the remaining population. Random interactions are based on a weighted selection algorithm that uses an individual's path distance on the network to determine their chance of meeting a stranger. This means that friends-of-friends are more likely to randomly interact with one another than agents with a higher degree of separation. We then contrast the cases where agents make highest utility based rational decisions about which norm to adopt versus using a Markov Decision process that associates a weight with the best choice. Finally we examine the effect that these random interactions have on the evolution of a more complex social norm as it propagates throughout the population. We discover that increasing the frequency and weighting of random interactions results in higher levels of norm convergence and in a quicker time when agents have the choice between two competing alternatives. This can be attributed to more information passing through the population thereby allowing for quicker convergence. When the norm is allowed to evolve we observe both global consensus formation and group splintering depending on the cognitive agent model used.
机译:在本文中,我们探讨了随机的社会互动对模拟群体中社会规范的出现和演变的影响。在我们的模型中,特工观察他人的行为并根据这些观察更新他们的规范。代理商的规范受其自身固定的社交网络以及由剩余人口子集组成的第二个随机网络的影响。随机交互基于加权选择算法,该算法使用个人在网络上的路径距离来确定他们遇到陌生人的机会。这意味着,与具有较高分离度的代理相比,朋友的朋友更有可能彼此随机交互。然后,我们对比了代理商对采用哪种规范做出基于效用最高的理性决策与使用权重与最佳选择相关联的马尔可夫决策过程的情况。最后,我们研究了这些随机互动对更复杂的社会规范在整个人群中传播所产生的影响。我们发现,增加随机交互的频率和权重会导致更高水平的规范收敛,并且当代理在两个相互竞争的替代方案之间进行选择时,会更快地使准则收敛。这可以归因于更多的信息通过人群,从而可以更快地收敛。当规范得以发展时,我们会根据所使用的认知代理模型观察到总体共识的形成和群体分裂。

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