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Digging for Knowledge with Information Extraction: A Case Study on Human Gene-Disease Associations

机译:通过信息提取挖掘知识:人类基因疾病协会的案例研究

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We present the information extraction system Text2SemRel. The system (semi-) automatically constructs knowledge bases from textual data consisting of facts about entities using semantic relations. An integral part of the system is a graph-based interactive visualization and search layer. The second contribution in this paper is the presentation of a case study on the (semi-)automatic construction of a knowledge base consisting of gene-disease associations. The resulting knowledge base, the Literature-derived Human Gene-Disease Network (LHGDN), is now an integral part of the Linked Life Data initiative and represents currently the largest publicly available gene-disease repository. The LHGDN is compared against several curated state of the art databases. A unique feature of the LHGDN is that the semantics of the associations constitute a wide variety of biomolecular conditions.
机译:我们提出了信息提取系统Text2SemRel。该系统(半)使用语义关系从包含有关实体的事实的文本数据中自动构建知识库。系统的组成部分是基于图的交互式可视化和搜索层。本文的第二个贡献是一个案例研究的介绍,该案例研究是关于由基因-疾病关联组成的知识库的(半)自动构建的。由此产生的知识库,即源自文献的人类基因疾病网络(LHGDN),现已成为“链接生命数据”计划的组成部分,并代表了目前最大的可公开获得的基因疾病资料库。将LHGDN与几种最新技术数据库进行比较。 LHGDN的独特之处在于,关联的语义构成了各种各样的生物分子条件。

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