首页> 外文会议>第十七届国际万维网大会(the 17th International World Wide Web Conference)(WWW08)论文集 >CM-PMI: Improved Web-based Association Measure with Contextual Label Matching
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CM-PMI: Improved Web-based Association Measure with Contextual Label Matching

机译:CM-PMI:具有上下文标签匹配功能的改进的基于Web的关联度量

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WebPMI is a popular web-based association measure to evaluate the semantic similarity between two queries (I.e. Words or entities) by leveraging search results returned by search engines. This paper proposes a novel measure named CM-PMI to evaluate query similarity at a finer granularity than WebPMI, under the assumption that a query is usually associated with more than one aspect and two queries are deemed semantically related if their associated aspect sets are highly consistent with each other. CM-PMI first extracts contextual labels from search results to represent the aspects of a query, and then uses the optimal matching method to assess the consistency between the aspects of two queries. Experimental results on the benchmark Miller Charles’ dataset demonstrate the good effectiveness of the proposed CM-PMI measure. Moreover, we further fuse WebPMI and CM-PMI to obtain improved results.
机译:WebPMI是一种流行的基于Web的关联度量,用于通过利用搜索引擎返回的搜索结果来评估两个查询(即单词或实体)之间的语义相似性。本文提出了一种名为CM-PMI的新颖措施,用于以比WebPMI更好的粒度来评估查询相似性,假设一个查询通常与一个以上方面相关联,并且如果两个查询的相关方面集高度一致,则认为两个查询在语义上相关彼此。 CM-PMI首先从搜索结果中提取上下文标签以表示查询的各个方面,然后使用最佳匹配方法来评估两个查询的各个方面之间的一致性。在基准Miller Charles的数据集上的实验结果证明了所提出的CM-PMI度量的良好效果。此外,我们进一步融合了WebPMI和CM-PMI,以获得改进的结果。

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