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Techniques for comparing and recommending conferences

机译:比较和推荐会议的技术

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Abstract This article defines, implements, and evaluates techniques to automatically compare and recommend conferences. The techniques for comparing conferences use familiar similarity measures and a new measure based on co-authorship communities, called co-authorship network community similarity index. The experiments reported in the article indicate that the technique based on the new measure performs better than the other techniques for comparing conferences, which is therefore the first contribution of the article. Then, the article focuses on three families of techniques for conference recommendation. The first family adopts collaborative filtering based on the conference similarity measures investigated in the first part of the article. The second family includes two techniques based on the idea of finding, for a given author, the strongest related authors in the co-authorship network and recommending the conferences that his co-authors usually publish in. The first member of this family is based on the Weighted Semantic Connectivity Score—WSCS, which is accurate but quite costly to compute for large co-authorship networks. The second member of this family is based on a new score, called the Modified Weighted Semantic Connectivity Score—MWSCS, which is much faster to compute and as accurate as the WSCS. The third family includes the Cluster-WSCS-based and the Cluster-MWSCS-based conference recommendation techniques, which adopt conference clusters generated using a subgraph of the co-authorship network. The experiments indicate as the best performing conference recommendation technique the Cluster-WSCS-based technique. This is the second contribution of the article. Finally, the article includes experiments that use data extracted from the DBLP repository and a web-based application that enables users to interactively analyze and compare a set of conferences.
机译:摘要本文定义,实现和评估了自动比较和推荐会议的技术。用于比较会议的技术使用熟悉的相似性度量和基于共同作者社区的新度量,称为共同作者网络社区相似性指数。文章中报道的实验表明,基于新方法的技术比其他用于比较会议的技术表现更好,因此这是本文的第一个贡献。然后,本文重点介绍会议推荐的三种技术。第一个家庭根据本文第一部分研究的会议相似性度量采用协作过滤。第二个家族包括两种技术,其思想是为给定作者寻找共同作者网络中最强的相关作者,并推荐他的共同作者通常会发表的会议。该家族的第一个成员是基于加权语义连通性评分-WSCS,它是准确的,但对于大型共同作者网络而言,计算成本很高。这个家族的第二个成员是基于一个新的分数,称为改进的加权语义连通性分数MWSCS,它的计算速度和WSCS一样快得多。第三家族包括基于群集-WSCS的会议推荐技术和基于群集-MWSCS的会议推荐技术,它们采用使用共同作者网络的子图生成的会议群集。实验表明,基于集群-WSCS的技术是性能最佳的会议推荐技术。这是本文的第二个贡献。最后,本文包括使用从DBLP存储库中提取的数据和基于Web的应用程序进行的实验,该应用程序使用户能够交互式地分析和比较一组会议。

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