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Quantitative Similarity-based Evaluation of Text Retrieval Algorithms

机译:基于定量的相似性的文本检索算法评估

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Text retrieval engines, such as search engines, always return a list of documents in response to a given query. Existing evaluations of text retrieval algorithms mostly use Precision and Recall of the returned list of documents as main quality measures of a search engine. In this paper, we propose a novel approach for comparing different algorithms adopted by different search engines and evaluate their performance. In our approach, the results of each algorithm is treated as an inter-related set of documents and the effectiveness of the algorithm is evaluated based on the degree of relation in the set of documents. After verifying the correctness of the evaluation measure by examining the results of the two retrieval algorithms, BM25 and pivoted normalization, and comparing these results with an ideal ranking, we compare the results of these algorithms and investigate the impact of certain major factors like stemming on the results of the suggested algorithm. The effectiveness of our proposed method is justified through obtained experimental results.
机译:文本检索引擎(如搜索引擎)始终返回响应给定查询的文档列表。文本检索算法的现有评估主要使用返回的文档列表作为搜索引擎的主要质量测量。在本文中,我们提出了一种用于比较不同搜索引擎采用的不同算法的新方法,并评估其性能。在我们的方法中,将每种算法的结果视为与相关的文件集合集,并且基于该组文档中的关系程度来评估算法的有效性。通过检查两个检索算法,BM25和枢转标准化的结果并将这些结果与理想排名进行比较,比较这些算法的结果并调查某些主要因素的影响建议算法的结果。我们所提出的方法的有效性是通过获得的实验结果而合理的。

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