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Extraction of causal relations based on SBEL and BERT model

机译:基于SBEL和BERT模型的因果关系提取

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摘要

Extraction of causal relations between biomedical entities in the form of Biological Expression Language (BEL) poses a new challenge to the community of biomedical text mining due to the complexity of BEL statements. We propose a simplified form of BEL statements [Simplified Biological Expression Language (SBEL)] to facilitate BEL extraction and employ BERT (Bidirectional Encoder Representation from Transformers) to improve the performance of causal relation extraction (RE). On the one hand, BEL statement extraction is transformed into the extraction of an intermediate form—SBEL statement, which is then further decomposed into two subtasks: entity RE and entity function detection. On the other hand, we use a powerful pretrained BERT model to both extract entity relations and detect entity functions, aiming to improve the performance of two subtasks. Entity relations and functions are then combined into SBEL statements and finally merged into BEL statements. Experimental results on the BioCreative-V Track 4 corpus demonstrate that our method achieves the state-of-the-art performance in BEL statement extraction with F1 scores of 54.8% in Stage 2 evaluation and of 30.1% in Stage 1 evaluation, respectively.
机译:以生物学表达语言形式的生物医学实体(BEL)形式的因果关系提取对生物医学挖掘社区的新挑战,由于BEL陈述的复杂性。我们提出了一种简化的BEL陈述形式[简化的生物表达语言(SBEL)],以方便BEL提取和采用来自变压器的双向编码器表示)来提高因果关系提取的性能(RE)。一方面,Bel语句提取被转换为中间形式SBEL语句的提取,然后进一步分解成两个子任务:实体RE和实体功能检测。另一方面,我们使用强大的预训练BERT模型来提取实体关系和检测实体函数,旨在提高两个子任务的性能。然后将实体关系和函数组合成SBET语句,最后合并为BEL语句。 Biocreative-V轨道4个语料库上的实验结果表明,我们的方法在Bel声明提取中达到了最先进的性能,在第2阶段评估中的F1分数为54.8%,分别在第1阶段评估中的30.1%。

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