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Dedalo: Looking for Clusters Explanations in a Labyrinth of Linked Data

机译:dedalo:寻找群集在链接数据的迷宫中的解释

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We present Dedalo, a framework which is able to exploit Linked Data to generate explanations for clusters. In general, any result of a Knowledge Discovery process, including clusters, is interpreted by human experts who use their background knowledge to explain them. However, for someone without such expert knowledge, those results may be difficult to understand. Obtaining a complete and satisfactory explanation becomes a laborious and time-consuming process, involving expertise in possibly different domains. Having said so, not only does the Web of Data contain vast amounts of such background knowledge, but it also natively connects those domains. While the efforts put in the interpretation process can be reduced with the support of Linked Data, how to automatically access the right piece of knowledge in such a big space remains an issue. Dedalo is a framework that dynamically traverses Linked Data to find commonalities that form explanations for items of a cluster. We have developed different strategies (or heuristics) to guide this traversal, reducing the time to get the best explanation. In our experiments, we compare those strategies and demonstrate that Dedalo finds relevant and sophisticated Linked Data explanations from different areas.
机译:我们呈现Dedalo,这是一个能够利用链接数据来生成群集的解释的框架。一般而言,知识发现过程的任何结果包括集群,由使用背景知识解释它们的人类专家来解释。但是,对于没有此类专家知识的人,这些结果可能很难理解。获得完整且令人满意的解释成为一种费力且耗时的过程,涉及可能不同的域中的专业知识。已经说过,不仅数据网站是否包含大量的此类背景知识,但它也会自然地连接这些域。虽然可以通过链接数据的支持来减少在解释过程中的努力,但如何在这种大空间中自动访问正确的知识仍然是一个问题。 Dedalo是一个动态遍历链接数据的框架,以找到形成群集项目的解释的共性。我们开发了不同的策略(或启发式)来指导这一遍历,减少了获得最佳解释的时间。在我们的实验中,我们比较这些战略并证明Dedalo发现了不同领域的相关和复杂的联系数据解释。

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