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Community detection in node-attributed social networks: How structure-attributes correlation affects clustering quality

机译:节点归属社交网络中的社区检测:结构属性如何相关影响聚类质量

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The majority of parametric community detection (CD) methods working with node-attributed social networks (ASNs) focus on proposing new techniques and rarely pay much attention on the general analysis how ASN properties affect the corresponding CD quality. However, the latter mostly determines the applicability of a CD method in practice. To fulfil the gap, we investigate CD quality dynamics for ASNs with different structure-attributes correlation. The structure-attributes fusion model under consideration is a weight-based one that interpolates between the so-called fixed and non-fixed topology cases and generalizes a wide class of known weight-based models. Within the model, we first theoretically study the influence of correlation on CD quality and secondly illustrate our conclusions on specially constructed synthetic ASNs. Further, we test our conclusions on original and modified real-world ASNs. Our calculations indicate that the presence of correlation noticeably affects CD quality and that the simultaneous usage of network structure and attributes is not always reasonable within the weight-based fusion model under consideration. This makes the common suggestion that "adding attributes to structure leads to better CD results" questionable in certain cases.
机译:大多数参数群体检测(CD)方法使用节点归属的社交网络(ASNS)专注于提出新技术,并且很少关注一般分析ASN属性如何影响相应的CD质量。然而,后者主要决定了CD方法在实践中的适用性。为了满足差距,我们调查具有不同结构属性相关性的ASN的CD质量动态。所考虑的结构属性融合模型是基于权重的模型,其在所谓的固定和非固定拓扑案件之间插入并概括了一类广泛的已知权重模型。在该模型中,我们首先研究了相关对CD质量的影响,其次说明了我们对专门构造的合成ASN的结论。此外,我们对原始和修改的现实ASN的结论进行了测试。我们的计算表明相关性的存在明显影响CD质量,并且网络结构和属性的同时使用在所考虑的基于重量的融合模型中并不总是合理的。这使得在某些情况下,“将属性添加到结构导致结构导致效果”可疑的共同建议。

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