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An environment for relation mining over richly annotated corpora: the case of GENIA

机译:在带有丰富注释的语料库上进行关系挖掘的环境:GENIA的案例

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BackgroundThe biomedical domain is witnessing a rapid growth of the amount of published scientific results, which makes it increasingly difficult to filter the core information. There is a real need for support tools that 'digest' the published results and extract the most important information.ResultsWe describe and evaluate an environment supporting the extraction of domain-specific relations, such as protein-protein interactions, from a richly-annotated corpus. We use full, deep-linguistic parsing and manually created, versatile patterns, expressing a large set of syntactic alternations, plus semantic ontology information.ConclusionThe experiments show that our approach described is capable of delivering high-precision results, while maintaining sufficient levels of recall. The high level of abstraction of the rules used by the system, which are considerably more powerful and versatile than finite-state approaches, allows speedy interactive development and validation.
机译:背景技术生物医学领域正见证着已发表科学成果数量的快速增长,这使得越来越难以过滤核心信息。真正需要支持工具来“消化”已发表的结果并提取最重要的信息。结果我们描述并评估了一种支持从丰富注释的语料库中提取域特定关系(例如蛋白质-蛋白质相互作用)的环境。 。我们使用完整的深度语言解析和手动创建的通用模式,表示大量的语法替换以及语义本体信息。结论实验表明,所描述的方法能够提供高精度结果,同时保持足够的召回水平。与有限状态方法相比,系统使用的规则的高级抽象功能强大且通用性强,可以快速进行交互式开发和验证。

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