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A fuzzy ranking approach for improving search results in Turkish as an agglutinative language

机译:一种模糊排名方法,用于改进土耳其语作为凝集语言的搜索结果

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摘要

This study proposes a fuzzy ranking approach, designed for Turkish as an agglutinative language, that focuses on improving stemming techniques via using distances of characters in its search algorithm. Various studies focused on search engines are based on using stemming techniques in indexing process because of the higher percentage of relevancy that these techniques provide. However, stemming techniques may have negative effects on search results in some queries. While analyzing the search results to find the query terms those give irrelevant results and why, we observe that user's query suffixes are crucial in search performance. Therefore, the proposed fuzzy ranking approach supports traditional stemming approaches with the use of suffixes. The search results of this approach are significantly better than stemming techniques in where stemming technique is ineffective. In terms of overall results, the fuzzy ranking approach also gives satisfactory results when compared with stemming techniques such as a Turkish stemmer( 19.43% of improvement) and word truncation technique (12.61% of improvement). Moreover, it is statistically better than no stemming with 28.61% of improvement.
机译:这项研究提出了一种模糊排名方法,该方法针对土耳其语作为一种凝集性语言而设计,其重点是通过在其搜索算法中使用字符距离来改进词干提取技术。各种针对搜索引擎的研究都基于在索引过程中使用词干技术,因为这些技术提供的相关性百分比更高。但是,词干提取技术可能会对某些查询的搜索结果产生负面影响。在分析搜索结果以查找那些给出不相关结果的查询词以及原因时,我们注意到用户的查询后缀对搜索性能至关重要。因此,所提出的模糊排序方法使用后缀来支持传统的词干提取方法。在阻止技术无效的情况下,此方法的搜索结果明显优于阻止技术。从总体结果来看,与土耳其语词干分析器(改进的19.43%)和词截断技术(改进的12.61%)等词干技术相比,模糊排序方法也给出了令人满意的结果。此外,从统计上讲,它比不阻止要好,改善率为28.61%。

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