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SemTagP: Semantic Community Detection in Folksonomies

机译:SemTagP:Folksonomies中的语义社区检测

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Building on top of our results on semantic social network analysis, we present a community detection algorithm, SemTagP, that takes benefits of the semantic data that were captured while structuring the RDF graphs of social networks. SemTagP not only offers to detect but also to label communities by exploiting (in addition to the structure of the social graph) the tags used by people during the social tagging process as well as the semantic relations inferred between tags. Doing so, we are able to refine the partitioning of the social graph with semantic processing and to label the activity of detected communities. We tested and evaluated this algorithm on the social network built from Ph.D. theses funded by ADEME, the French Environment and Energy Management Agency. We showed how this approach allows us to detect and label communities of interest and control the precision of the labels.
机译:建立在我们对语义社交网络分析的结果之上,我们介绍了一个社区检测算法,SemTagp,它对构建社交网络的RDF图形的RDF图的语义数据受益。 SEMTAGP不仅要检测,还要通过利用(除了社交图的结构)在社交标记过程中的标签以及标签之间推断的语义关系中的标签来检测这样做,我们能够通过语义处理和标记检测到的社区的活动来改进社交图的分区。我们在博士学位建造的社交网络上进行了测试和评估该算法。由Ademe,法国环境和能源管理机构提供资金的论文。我们展示了这种方法如何使我们能够检测和标记兴趣的社区并控制标签的精度。

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