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A novel algorithm for mining opinion leaders in social networks

机译:社交网络中采矿舆论领导者的一种新算法

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摘要

Recently, social network analysis (SNA) has attracted researchers' attention due to its practicability and popularity. Several mining techniques have been developed for extracting useful knowledge from users' regularities. Opinion leader discovery is one essential task which has great commercial and political values. By identifying the opinion leaders, companies or governments could manipulate the selling or guiding public opinion, respectively. Additionally, detecting the influential comments is able to understand the source and trend of public opinion formation. However, mining opinion leaders in a huge social network is a challenge task because of the complexity of graph processing and leadership analysis. In this study, a novel algorithm, OLMiner, is proposed to efficiently find the opinion leaders from a social network. OLMiner utilizes a community detection method to tackle the influence overlapping issue and shrink the size of candidate generation. Then, we propose a novel clustering-based leadership analysis to find out the opinion leader in a social network. The experimental study shows that the proposed algorithm can effectively discover the influential opinion leaders in different real datasets with efficiency and has graceful scalability.
机译:最近,社会网络分析(SNA)由于其实用性和普及而引起了研究人员的注意。已经开发了几种采矿技术,用于从用户的规则提取有用的知识。意见领袖发现是具有巨大商业和政治价值的重要任务。通过确定意见领导人,公司或政府可以分别操纵销售或指导舆论。此外,检测有影响力的评论能够理解舆论形成的源头和趋势。然而,由于图形处理和领导分析的复杂性,挖掘在一个庞大的社交网络中的挖掘领导人是一项挑战任务。在本研究中,提出了一种新颖的算法,奥姆纳人,以有效地从社交网络中找到意见领导者。 Olminer利用社区检测方法来解决影响重叠问题并缩小候选生成的大小。然后,我们提出了一种新的基于聚类的领导分析,以了解社交网络中的意见领导者。实验研究表明,该算法能够以效率有效地发现不同实际数据集中有影响力的意见领导者,并具有优雅的可扩展性。

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