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Learning Rules to Extract Protein Interactions from Biomedical Text

机译:学习规则以从生物医学文本中提取蛋白质相互作用

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We present a method for automatic extraction of protein interactions from scientific abstracts by combing machine learning and knowledge-based strategies. This method uses sample sentences, which are parsed by a link grammar parser, to leam extraction rules automatically. By incorporating heuristic rules based on morphological clues and domain specific knowledge, this method can remove the interactions that are not between proteins and improve the performance of extraction process. We present experimental results for a test set of MEDLINE abstracts. The results are encouraging and demonstrate the feasibility of our method to perform accurate extraction without need of manual rule building.
机译:我们提出了一种通过结合机器学习和基于知识的策略从科学摘要中自动提取蛋白质相互作用的方法。此方法使用链接语法分析器解析的样本语句来自动学习提取规则。通过结合基于形态学线索和领域特定知识的启发式规则,该方法可以消除蛋白质之间不存在的相互作用,并提高提取过程的性能。我们提供MEDLINE摘要测试集的实验结果。结果令人鼓舞,并证明了我们的方法无需手动建立规则即可执行精确提取的可行性。

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