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An improved BM25 algorithm for clinical decision support in Precision Medicine based on co-word analysis and Cuckoo Search

机译:基于共同词分析和杜鹃搜索的精密药物临床决策支持的改进BM25算法

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Retrieving gene and disease information from a vast collection of biomedical abstracts to provide doctors with clinical decision support is one of the important research directions of Precision Medicine. We propose a novel article retrieval method based on expanded word and co-word analyses, also conducting Cuckoo Search to optimize parameters of the retrieval function. The main goal is to retrieve the abstracts of biomedical articles that refer to treatments. The methods mentioned in this manuscript adopt the BM25 algorithm to calculate the score of abstracts. We, however, propose an improved version of BM25 that computes the scores of expanded words and co-word leading to a composite retrieval function, which is then optimized using the Cuckoo Search. The proposed method aims to find both disease and gene information in the abstract of the same biomedical article. This is to achieve higher relevance and hence score of articles. Besides, we investigate the influence of different parameters on the retrieval algorithm and summarize how they meet various retrieval needs. The data used in this manuscript is sourced from medical articles presented in Text Retrieval Conference (TREC): Clinical Decision Support (CDS) Tracks of 2017, 2018, and 2019 in Precision Medicine. A total of 120 topics are tested. Three indicators are employed for the comparison of utilized methods, which are selected among the ones based only on the BM25 algorithm and its improved version to conduct comparable experiments. The results showed that the proposed algorithm achieves better results. The proposed method, an improved version of the BM25 algorithm, utilizes both co-word implementation and Cuckoo Search, which has been verified achieving better results on a large number of experimental sets. Besides, a relatively simple query expansion method is implemented in this manuscript. Future research will focus on ontology and semantic networks to expand the query vocabulary.
机译:从大量的生物医学摘要中检索基因和疾病信息,为医生提供临床决策支持是精密药物的重要研究方向之一。我们提出了一种基于扩展词和共同分析的新颖文章检索方法,也进行了杜鹃搜索以优化检索函数的参数。主要目标是检索参考治疗的生物医学文章的摘要。本手稿中提到的方法采用BM25算法来计算摘要的得分。但是,我们提出了一种改进的BM25版本,可以计算扩展的单词和通往复合检索功能的共数,然后使用杜鹃搜索优化。该方法旨在在同一生物医学制品的摘要中找到疾病和基因信息。这是实现更高的相关性和物品的得分。此外,我们研究了不同参数对检索算法的影响,并总结了它们如何满足各种检索需求。本手稿中使用的数据来自文本检索会议(TREC)中提供的医疗文章(TREC):2017年,2018年和2019年的临床决策支持(CDS)曲目在精密医学中。共测试了120个主题。使用三个指标用于比较利用方法,这些方法仅在基于BM25算法及其改进的版本中选择,以进行可比实验。结果表明,所提出的算法实现了更好的结果。所提出的方法,BM25算法的改进版本,利用了同源实施和杜鹃搜索,这已经过了在大量实验集上实现了更好的结果。此外,在本手稿中实现了一个相对简单的查询扩展方法。未来的研究将侧重于本体和语义网络,以扩展查询词汇表。

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