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Discovering Informative Syntactic Relationships between Named Entities in Biomedical Literature

机译:在生物医学文献中发现命名实体之间的信息句法关系

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The discovery of new and potentially meaningful relationships between named entities in biomedical literature can take great advantage from the application of multirelational data mining approaches in text mining. This is motivated by the peculiarity of multi-relational data mining to be able to express and manipulate relationships between entities. We investigate the application of such an approach to address the task of identifying informative syntactic structures, which are frequent in biomedical abstract corpora. Initially, named entities are annotated in text corpora according to some biomedical dictionary (e.g. MeSH taxonomy). Tagged entities are then integrated in syntactic structures with the role of subject and/or object of the corresponding verb. These structures are represented in a first-order language. Multi-relational approach to frequent pattern discovery allows to identify the verb-based relationships between the named entities which frequently occur in the corpora. Preliminary experiments with a collection of abstracts obtained by querying Medline on a specific disease are reported.
机译:在文本挖掘中,多关系数据挖掘方法的应用可以极大地利用生物医学文献中命名实体之间新的和潜在有意义的关系。这是由于多关系数据挖掘的特殊性所致,使其能够表达和操纵实体之间的关系。我们调查这种方法的应用,以解决识别信息句法结构的任务,这在生物医学抽象语料库中很常见。最初,根据某些生物医学词典(例如,MeSH分类法)在文本语料库中对命名实体进行注释。然后,将标记的实体与相应动词的主语和/或宾语角色整合到句法结构中。这些结构以一阶语言表示。频繁模式发现的多关系方法允许识别频繁出现在语料库中的命名实体之间基于动词的关系。报告了通过查询Medline获得的关于特定疾病的摘要摘要的初步实验。

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