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MELODI Presto: a fast and agile tool to explore semantic triples derived from biomedical literature

机译:Melodi Presto:一种快速和敏捷的工具,可以探索源自生物医学文献的语义三体

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摘要

The field of literature-based discovery is growing in step with the volume of literature being produced. From modern natural language processing algorithms to high quality entity tagging, the methods and their impact are developing rapidly. One annotation object that arises from these approaches, the subject-predicate-object triple, is proving to be very useful in representing knowledge. We have implemented efficient search methods and an application programming interface, to create fast and convenient functions to utilize triples extracted from the biomedical literature by SemMedDB. By refining these data, we have identified a set of triples that focus on the mechanistic aspects of the literature, and provide simple methods to explore both enriched triples from single queries, and overlapping triples across two query lists.
机译:以文献为基础的发现领域随着文献量的增加而同步增长。从现代自然语言处理算法到高质量的实体标注,这些方法及其影响正在迅速发展。从这些方法中产生的一个注释对象,主谓宾语三元组,被证明在表示知识方面非常有用。我们已经实现了高效的搜索方法和应用程序编程接口,以创建快速方便的函数来利用SemMedDB从生物医学文献中提取的三元组。通过细化这些数据,我们确定了一组三元组,这些三元组侧重于文献的机械方面,并提供了简单的方法来探索单个查询中丰富的三元组,以及两个查询列表中重叠的三元组。

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