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A Spread Willingness Computing-Based Information Dissemination Model

机译:基于传播意愿计算的信息传播模型

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摘要

This paper constructs a kind of spread willingness computing based on information dissemination model for social network. The model takes into account the impact of node degree and dissemination mechanism, combined with the complex network theory and dynamics of infectious diseases, and further establishes the dynamical evolution equations. Equations characterize the evolutionary relationship between different types of nodes with time. The spread willingness computing contains three factors which have impact on user's spread behavior: strength of the relationship between the nodes, views identity, and frequency of contact. Simulation results show that different degrees of nodes show the same trend in the network, and even if the degree of node is very small, there is likelihood of a large area of information dissemination. The weaker the relationship between nodes, the higher probability of views selection and the higher the frequency of contact with information so that information spreads rapidly and leads to a wide range of dissemination. As the dissemination probability and immune probability change, the speed of information dissemination is also changing accordingly. The studies meet social networking features and can help to master the behavior of users and understand and analyze characteristics of information dissemination in social network.
机译:本文构建了一种基于信息传播模型的社交网络传播意愿计算方法。该模型考虑了节点度和传播机制的影响,结合复杂网络理论和传染病动力学,建立了动力学演化方程。方程描述了不同类型节点之间随着时间的演化关系。传播意愿计算包含三个对用户的传播行为有影响的因素:节点之间的关系强度,视图身份和联系频率。仿真结果表明,不同程度的节点在网络中呈现出相同的趋势,即使节点的程度很小,也有可能传播大面积的信息。节点之间的关系越弱,视图选择的可能性就越高,与信息接触的频率就越高,因此信息会迅速传播并导致广泛的传播。随着传播概率和免疫概率的变化,信息传播的速度也随之变化。这些研究符合社交网络功能,可以帮助掌握用户的行为,了解和分析社交网络中信息传播的特征。

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