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Fusion analysis of information retrieval models on biomedical collections

机译:生物医学文献信息检索模型的融合分析

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A variety of endeavors have been made to improve the performance of traditional information retrieval models in biomedical domain. However, majority of the studies have focused on improving the performance of individual information retrieval models, while few attempts have been made to the investigation of combining multiple information retrieval models and exploring their interactions in biomedical information retrieval area. In this study, a comprehensive performance evaluation of seven popular generic information retrieval models is conducted on a biomedical literature collection. In addition, an information fusion method called the Combinatorial Fusion Analysis is applied to perform extensive combinatorial experiments on these information retrieval models. Our experimental results have demonstrated that a combination of multiple information retrieval models can outperform a single model only if each of the individual models has different scoring and ranking behavior and relatively high performance.
机译:为了改善传统信息检索模型在生物医学领域的性能,已经进行了各种努力。然而,大多数研究集中在提高单个信息检索模型的性能上,而很少尝试进行组合多种信息检索模型并探索它们在生物医学信息检索领域中的相互作用的研究。在这项研究中,对生物医学文献集进行了七个流行的通用信息检索模型的综合性能评估。此外,一种称为“组合融合分析”的信息融合方法用于对这些信息检索模型进行广泛的组合实验。我们的实验结果表明,只有每个单独的模型具有不同的评分和排名行为以及相对较高的性能,多个信息检索模型的组合才能胜过单个模型。

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