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Fraction of Connections Among Friends of Friends as a New Metric for Network Analysis

机译:朋友之间的联系比例是网络分析的新指标

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Network generation models try to mimic real world networks. Basic models of network generation like Random and Preferential Attachment result in networks without communities and having clustering coefficients less than that of real networks. We have proposed an alternative model to generate network having high clustering coefficient as well as community structure. We have included two new features in our model to achieve this. They are: i) to allow a person to make friends in iterations and ii) to make a particular fraction (say f) of links among friends of friends and rest among others. By preferring the connections among friends of friends, the clustering coefficient increases. By varying the fraction f, we can generate network with desired clustering coefficient. The proposed model has certain interesting properties. it generates community structure where number of communities and their interconnectedness can also be controlled by varying f. Finally, network size, and fraction f are deciding the value of clustering coefficient of the network and responsible for having communities.
机译:网络生成模型试图模仿现实世界的网络。网络生成的基本模型(例如随机附件和优先附件)导致网络中没有社区,并且聚类系数小于真实网络。我们提出了一种替代模型来生成具有高聚类系数以及社区结构的网络。我们在模型中包括了两个新功能来实现此目的。它们是:i)允许一个人迭代地结交朋友,并且ii)在朋友的朋友之间建立联系的特定部分(例如f),而在他人之间进行休息。通过偏爱朋友之间的联系,聚类系数增加。通过改变分数f,我们可以生成具有所需聚类系数的网络。所提出的模型具有某些有趣的特性。它产生社区结构,其中社区的数量及其相互联系也可以通过改变f来控制。最后,网络规模和分数f决定了网络的聚类系数值,并负责拥有社区。

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