最终用户排序机制对团体字检测的意义

Pawan Meena, M. Pawar, Anjana Pandey
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引用次数: 0

摘要

针对Page Rank结果过于集中而没有考虑复杂网络社区的结构特性的问题,提出了一种改进的基于复杂网络社区划分(NI-DCN)的节点重要性排序技术。根据标签传播算法(Label Propagation Algorithm, LPA)对复杂网络进行社团划分的结果,将社团的内外连接转化为社团选择的概率表示;根据社团选择概率,从每个社团中提取一定比例的候选关键节点;然后对这些候选人进行评估。为了获得关键节点的排序结果,对节点进行重新排序。SIR传播性能研究使用了来自四个现有复杂网络的实验数据来与现有算法进行比较。实验结果表明,NI-DCN算法选择的节点对网络的整体传播效率有更显著的影响。此外,NI-DCN算法可以有效地对复杂网络节点的重要度进行排序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Significance of End User Ranking Mechanism for Community Detection
An improved technique for ranking node importance based on the division of complex network communities (NI-DCN) is proposed because Page Rank results are too concentrated and do not consider the structural properties of complex network communities. According to the results of the Label Propagation Algorithm's (LPA) community division of the complex network, the internal and external connections of the community are transformed into the probability representation of community selection; based on the community selection probability, a certain proportion of candidate key nodes are extracted from each community; these candidates are then evaluated. To obtain the key node sorting results, the nodes are reordered. The SIR propagation performance investigation uses experimental data from four existing complex networks to compare with the existing algorithm. The experimental results indicate that the nodes chosen by the NI-DCN algorithm have a more significant impact on the overall efficacy of the network's propagation. Moreover, the NI-DCN algorithm can effectively rank the significance of the complex network's nodes.
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