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Semisupervised Learning Based Disease-Symptom and Symptom-Therapeutic Substance Relation Extraction from Biomedical Literature

机译:从生物医学文献中基于半监督学习的疾病-症状和症状-治疗物质关系提取

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摘要

With the rapid growth of biomedical literature, a large amount of knowledge about diseases, symptoms, and therapeutic substances hidden in the literature can be used for drug discovery and disease therapy. In this paper, we present a method of constructing two models for extracting the relations between the disease and symptom and symptom and therapeutic substance from biomedical texts, respectively. The former judges whether a disease causes a certain physiological phenomenon while the latter determines whether a substance relieves or eliminates a certain physiological phenomenon. These two kinds of relations can be further utilized to extract the relations between disease and therapeutic substance. In our method, first two training sets for extracting the relations between the disease-symptom and symptom-therapeutic substance are manually annotated and then two semisupervised learning algorithms, that is, Co-Training and Tri-Training, are applied to utilize the unlabeled data to boost the relation extraction performance. Experimental results show that exploiting the unlabeled data with both Co-Training and Tri-Training algorithms can enhance the performance effectively.
机译:随着生物医学文献的迅速发展,文献中隐藏的有关疾病,症状和治疗物质的大量知识可用于药物发现和疾病治疗。在本文中,我们提出了一种构建两个模型的方法,分别从生物医学文献中提取疾病与症状以及症状和治疗物质之间的关系。前者判断一种疾病是否引起某种生理现象,而后者则判断一种物质是缓解还是消除了某种生理现象。这两种关系可以进一步用于提取疾病与治疗物质之间的关系。在我们的方法中,首先手动提取用于提取疾病症状和症状治疗物质之间关系的两个训练集,然后应用两种半监督学习算法,即联合训练和三式训练,以利用未标记的数据以提高关系提取性能。实验结果表明,通过联合训练和三次训练算法开发未标记数据可以有效地提高性能。

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