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Multi-relational PageRank for Tree Structure Sense Ranking

机译:用于树结构感测排名的多关系PageRank

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In this paper, we study the problem of structural sense ranking for tree data using a multi-relational PageRank approach. By considering multiple types of structural relations, the original tree structural context is better leveraged and used to improve the ranking of the senses associated to the tree elements. Upon this intuition, we advance research on the application of PageRank-style methods to semantic graphs inferred from semistructured/plain text data by developing the first PageRank-based formulations that exploit heterogeneity of links to address the problem of structural sense ranking in tree data. Experiments on a large real-world benchmark have confirmed the performance improvement hypothesis of our proposed multi-relational approach.
机译:在本文中,我们使用多关键PageRank方法研究树数据的结构感测量的问题。通过考虑多种类型的结构关系,原始树结构上下文更好地利用并用于改善与树元素相关的感官的排名。在这种直觉上,我们通过开发基于Pagerank的制剂来推断PageRank样式方法对从半结玻璃/普通文本数据推断的语义图的研究,该配方利用链接的异构性来解决树数据中结构感测量的问题。大型现实世界基准的实验已经证实了我们提出的多关系方法的性能改善假设。

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