Aggregating Content and Connectivity based Techniques for Measure of Web Search Quality

R. Ali, M. Beg
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引用次数: 1

Abstract

Web Searching is very much popular among the Internet users. A large number of public search engines are available for this purpose. So, there must be some procedure to measure the quality of web search. In this paper, classical content-based retrieval techniques such as Vector Space Model and Boolean Similarity Measures are combined with connectivity-based techniques such as PageRank for measure of web search quality. These techniques are combined using Modified Shimura technique of Rank aggregation. The aggregated ranking obtained in the process is compared with the original ranking given by the search engine. The correlation coefficient thus obtained is averaged for a set of queries. We show our experimental results pertaining to seven public search engines and fifteen queries.
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基于聚合内容和连接的网络搜索质量度量技术
网络搜索在互联网用户中非常流行。大量的公共搜索引擎可用于此目的。因此,必须有一些程序来衡量网络搜索的质量。本文将经典的基于内容的检索技术(如向量空间模型和布尔相似度度量)与基于连接的技术(如PageRank)相结合,用于衡量网络搜索质量。将这些技术结合使用改进的Shimura秩聚合技术。在此过程中得到的综合排名与搜索引擎给出的原始排名进行比较。这样得到的相关系数是一组查询的平均值。我们展示了关于七个公共搜索引擎和15个查询的实验结果。
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