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Comparison of fitness and popularity: fitness-popularity dynamic network model

机译:健身与普及比较:健身普及动态网络模型

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Dynamic networks are ubiquitous in the world. So far, many dynamic network models have been developed in search of network growth mechanisms at the node and edge levels. Especially, a number of fitness models have been employed for analysis of fitness (i.e. a node's inherent ability or characteristics) and popularity effects on growing networks. However, these models are not suitable for comparing the magnitude of the fitness and popularity effects. We propose a statistical dynamic network model called a fitness-popularity dynamic network (FPDN) model, where fitness and popularity effects are on equal footing. These effects are estimated under the FPDN model and the estimation procedure are applied to the network data, Flickr following, Facebook wallpost, and arXiv citation. The estimates of the two effects seem to represent the characters of the three networks with noteworthy interpretations. It is interesting to see that the popularity of a node negatively affects the growth of the in-degree of the node for the arXiv citation network while the effect is positive for the other networks.
机译:动态网络在世界上普遍存在。到目前为止,已经开发了许多动态网络模型,用于搜索节点和边缘水平的网络增长机制。特别是,已经采用了许多健身模型来分析健身(即节点的固有能力或特征)和对生长网络的普及效果。然而,这些模型不适用于比较健身和普及效应的大小。我们提出了一种称为健身流行性动态网络(FPDN)模型的统计动态网络模型,其中适应性和普及效果等于相等的基础。在FPDN模型下估计这些效果,估算程序应用于网络数据,Flickr以下,Facebook Wallpost和Arxiv引用。两种效果的估计似乎代表了三个具有值得注意的解释的网络的特征。有趣的是,节点的普及对ARXIV引文网络的节点的程度产生负面影响,而效果对于其他网络是肯定的。

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