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Evolutionary Game Analysis of Competitive Information Dissemination on Social Networks: An Agent-Based Computational Approach

机译:社交网络上竞争信息传播的演化博弈分析:一种基于Agent的计算方法

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Social networks are formed by individuals, in which personalities, utility functions, and interaction rules are made as close to reality as possible. Taking the competitive product-related information as a case, we proposed a game-theoretic model for competitive information dissemination in social networks. The model is presented to explain how human factors impact competitive information dissemination which is described as the dynamic of a coordination game and players’ payoff is defined by a utility function. Then we design a computational system that integrates the agent, the evolutionary game, and the social network. The approach can help to visualize the evolution of % of competitive information adoption and diffusion, grasp the dynamic evolution features in information adoption game over time, and explore microlevel interactions among users in different network structure under various scenarios. We discuss several scenarios to analyze the influence of several factors on the dissemination of competitive information, ranging from personality of individuals to structure of networks.
机译:社交网络由个人组成,其中使人格,效用功能和交互规则尽可能接近现实。以与竞争产品相关的信息为例,我们提出了一种用于竞争信息在社交网络中传播的博弈论模型。提出该模型是为了解释人为因素如何影响竞争性信息的传播,这被描述为协调游戏的动态,而玩家的收益则由效用函数定义。然后,我们设计一个集成了代理,进化游戏和社交网络的计算系统。该方法可以帮助可视化竞争性信息采用和扩散百分比的演变,掌握信息采用游戏中随着时间推移的动态演变特征,并探索各种场景下不同网络结构中用户之间的微观互动。我们讨论了几种方案,以分析各种因素对竞争信息传播的影响,从个人个性到网络结构。

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