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Stratified Sampling Large Relational Networks Using Topologically Divided Stratums

机译:使用拓扑分割的层次分层采样大关系网络

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摘要

One challenge of visualizing the relational networks in computer screen is the scale of relational networks is too large. One solution is deriving a representative sample from a huge real graph. The purpose is to select a set of vertices and edges in graph so that the induced graph obeys some general characteristics, and so the sampled graphs can be used for simulations and further analysis. In this paper, we propose a stratified sampling algorithm using topologically divided stratums for large relational networks. In addition, we evaluate our algorithm on several well-known datasets. The experimental results show that our algorithm outperforms the previous methods.
机译:在计算机屏幕中可视化关系网络的一个挑战是关系网络的规模太大了。一种解决方案是从庞大的真实图中获取代表性的样本。目的是在图中选择一组顶点和边缘,使得诱导的图表遵守一些一般特征,因此采样的图形可用于模拟和进一步的分析。在本文中,我们向大型关系网络的拓扑划分层提出了一种分层采样算法。此外,我们在几个众所周知的数据集中评估我们的算法。实验结果表明,我们的算法优于以前的方法。

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