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Fusion-based methods for result diversification in web search

机译:基于融合的Web搜索结果多样化方法

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Search result diversification of text documents is especially necessary when a user issues a faceted or ambiguous query to the search engine. A variety of approaches have been proposed to deal with this issue in recent years. In this article, we propose a group of fusion-based result diversification methods with the aim to improve performance that considers both relevance and diversity. They are linear combinations of scores that are obtained from different component search systems. The weight of each search system is determined by considering three factors: performance, dissimilarity, and complementarity. There are two major contributions. Firstly, we find that all the three factors of performance and complementarity and dissimilarity are useful for effective weighting of linear combination. Secondly, we present the logarithmic function-based model for converting ranking information into scores. Experiments are carried out with four groups of results submitted to the TREC web diversity task. Experimental results show that some of the fusion methods that use the aforementioned techniques perform more effectively than the state-of-the-art fusion methods for result diversification.
机译:搜索结果在用户向搜索引擎发出分支或模糊查询时,特别是必要的文本文档的多样化。近年来提出了各种方法来处理这个问题。在本文中,我们提出了一组基于融合的结果多元化方法,旨在提高考虑相关性和多样性的性能。它们是从不同的组件搜索系统获得的分数的线性组合。通过考虑三个因素来确定每个搜索系统的重量:性能,异化和互补性。有两项主要贡献。首先,我们发现所有三种性能和互补性和异化的因素都有助于有效加权线性组合。其次,我们介绍了基于对数函数的模型,用于将排名信息转换为分数。实验与提交给TREC Web多样性任务的四组结果进行。实验结果表明,一些使用上述技术的融合方法比为结果多样化的最先进的融合方法更有效地执行。

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