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Recommending Tripleset Interlinking through a Social Network Approach

机译:通过社交网络方法推荐三元集合交互

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摘要

Tripleset interlinking is one of the main principles of Linked Data. However, the discovery of existing triplesets relevant to be linked with a new tripleset is a non-trivial task in the publishing process. Without prior knowledge about the entire Web of Data, a data publisher must perform an exploratory search, which demands substantial effort and may become impracticable, with the growth and dissemination of Linked Data. Aiming at alleviating this problem, this paper proposes a recommendation approach for this scenario, using a Social Network perspective. The experimental results show that the proposed approach obtains high levels of recall and reduces in up to 90% the number of triplesets to be further inspected for establishing appropriate links.
机译:Tripleset互连是链接数据的主要原则之一。但是,发现与新三元集相关的现有三元集的发现是发布过程中的非琐碎任务。如果没有关于整个数据Web的知识,数据发布者必须执行探索性搜索,这需要大量努力,并且可能会变得不切实际,并具有链接数据的增长和传播。旨在减轻这个问题,本文采用了社会网络视角,提出了这种情况的推荐方法。实验结果表明,该方法获得了高水平的召回,并减少了最多90%,以进一步接受的三次组成用于建立适当的链接。

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