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Incorporating compactness to generate term-association view snippets for ontology search

机译:结合紧凑性以生成用于术语搜索的术语关联视图片段

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摘要

A query-relevant snippet for ontology search is useful for deciding if an ontology fits users' needs. In this paper, we illustrate a good snippet in a keyword-based ontology search engine should be with term-association view and compact, and propose an approach to generate it. To obtain term-association view snippets, a model of term association graph for ontology is proposed, and a concept of maximal r-radius subgraph is introduced to decompose the term association graph into connected subgraphs, which preserve close relations between terms. To achieve compactness, in a query-relevant maximal r-radius subgraph, a connected subgraph thereof with a small graph weight is extracted as a sub-snippet. Finally, a greedy method is used to select sub-snippets to form a snippet in consideration of query relevance and compactness without violating the length constraint. An empirical study on our implementation shows that our approach is feasible. An evaluation on effectiveness shows that the term-association view snippet is favored by users, and the compactness helps reading and judgment.
机译:本体搜索的查询相关代码段对于确定本体是否满足用户需求很有用。在本文中,我们举例说明了一个基于关键字的本体搜索引擎中的良好片段,该片段应具有术语关联视图并且结构紧凑,并提出一种生成它的方法。为了获得术语关联视图片段,提出了一种用于本体的术语关联图模型,并引入了最大r半径子图的概念,将术语关联图分解为连通的子图,从而保持了各个词之间的紧密联系。为了实现紧凑性,在与查询相关的最大r半径子图中,将其具有较小图权重的连接子图提取为子片段。最后,考虑到查询的相关性和紧凑性,在不违反长度约束的情况下,使用贪婪方法来选择子片段以形成片段。对我们实施情况的实证研究表明,我们的方法是可行的。有效性评估表明,术语关联视图摘要受到用户的青睐,并且紧凑性有助于阅读和判断。

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