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ULISBOA at SemEval-2016 Task 12: Extraction of temporal expressions, clinical events and relations using IBEnt

机译:Ulisboa在Semeval-2016任务12:使用iBENT提取时间表达,临床事件和关系

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This paper describes our approach to participate on SemEval2016 Taskl2: Clinical Tem-pEval. Our system was based on IBEnt, a framework to identify chemical entities and their relations in text using machine learning techniques. This system has two modules, one to identify chemical entities, and other to identify the pairs of entities that represent a chemical interaction in the same text. In this work we adapted both IBEnt modules to extract temporal expressions, event expressions and relations, by creating new CRF classifiers, lists and rules. The top result of our system was in phase2 for the identification of narrative container relations where it obtained the maximum score of precision (0.823) from all participants.
机译:本文介绍了我们参加Semeval2016 TaskL2的方法:临床TEM-PEVAL。我们的系统是基于IBENT,框架识别化学实体及其在文本中的关系,使用机器学习技术。该系统具有两个模块,一个模块,一个是识别化学实体,另一个模块识别代表同一文本中的化学交互的对实体对。在这项工作中,我们通过创建新的CRF分类器,列表和规则来调整IBENT模块来提取时间表达式,事件表达式和关系。我们系统的最高结果是阶段2,用于识别叙事容器关系,其中它获得了所有参与者的最高精度(0.823)的得分。

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