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PreMedOnto: A Computer Assisted Ontology for Precision Medicine

机译:PreMedOnto:精准医学的计算机辅助本体

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This paper proposes an ontology learning framework that combines text mining, information extraction and retrieval. The proposed model takes advantage of existing structured knowledge by reusing terms and concepts from other ontologies. We further apply the methodology to create a detailed ontology for the emerging precision medicine (PM) domain by collecting a corpus of relevant articles and mapping its frequent terms to existing concepts. The resulting ontology consists of 543 annotated classes. The ontology was also tested for effectiveness by applying two evaluation frameworks to validate its design and quality. The results demonstrate that the ontology learning system is able to capture and represent the semantics of the PM domain with high precision and significance. Moreover, the computer-assisted construction process reduced dependency on expert knowledge. The developed PreMedOnto ontology could be further used to enhance the potentials of other NLP applications in the PM domain.
机译:本文提出了一种结合文本挖掘,信息提取和检索的本体学习框架。所提出的模型通过重用其他本体中的术语和概念来利用现有的结构化知识。我们通过收集相关文章的语料库并将其常用术语映射到现有概念,进一步应用该方法为新兴的精密医学(PM)领域创建详细的本体。产生的本体由543个带注释的类组成。通过应用两个评估框架来验证其设计和质量,还对本体进行了有效性测试。结果表明,本体学习系统能够以较高的精度和意义捕获并表示PM域的语义。此外,计算机辅助的构建过程减少了对专家知识的依赖。开发的PreMedOnto本体可以进一步用于增强PM域中其他NLP应用程序的潜力。

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