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A Network-Flow Based Influence Propagation Model for Social Networks

机译:基于网络流量的社交网络影响传播模型

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摘要

Due to its popularity, influence propagation model has been recently exploited in several social network applications. However, there are some limitations in applying the model to the social network, in which negative information is propagated. In this paper, we present an effective information propagation model to overcome these limitations. Our minimum cost flow model effectively propagates influences to neighbouring nodes with minimum costs in each path of the social network. The model removes noise associated with social network marketing information and propagates influences without overlapping in information nodes.
机译:由于其受欢迎程度,最近在若干社交网络应用中阐述了影响传播模型。 然而,将模型应用于社交网络存在一些限制,其中传播负面信息。 在本文中,我们提出了有效的信息传播模型来克服这些限制。 我们的最小成本流模型有效地传播对邻近节点的影响,在社交网络的每个路径中具有最低成本。 模型消除了与社交网络营销信息相关的噪声,并在信息节点中传播影响而不会重叠。

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