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Biomedical Event Trigger Identification Using Bidirectional Recurrent Neural Network Based Models

机译:基于双向递归神经网络的模型的生物医学事件触发识别

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摘要

Biomedical events describe complex interactions between various biomedical entities. Event trigger is a word or a phrase which typically signifies the occurrence of an event. Event trigger identification is an important first step in all event extraction methods. However many of the current approaches either rely on complex handcrafted features or consider features only within a window. In this paper we propose a method that takes the advantage of recurrent neural network (RNN) to extract higher level features present across the sentence. Thus hidden state representation of RNN along with word and entity type embedding as features avoid relying on the complex hand-crafted features generated using various NLP toolkits. Our experiments have shown to achieve state-of-art Fl-score on Multi Level Event Extraction (MLEE) corpus. We have also performed category-wise analysis of the result and discussed the importance of various features in trigger identification task.
机译:生物医学事件描述了各种生物医学实体之间的复杂相互作用。事件触发是通常表示事件发生的单词或短语。事件触发识别是所有事件提取方法中重要的第一步。但是,当前的许多方法要么依赖复杂的手工特征,要么仅考虑窗口内的特征。在本文中,我们提出了一种利用循环神经网络(RNN)的优势来提取整个句子中存在的高级特征的方法。因此,RNN的隐藏状态表示以及词和实体类型嵌入作为特征避免了依赖于使用各种NLP工具包生成的复杂的手工特征。我们的实验表明,在多级事件提取(MLEE)语料库上可获得最先进的Fl评分。我们还对结果进行了分类分析,并讨论了触发识别任务中各种功能的重要性。

著录项

  • 来源
  • 会议地点 Vancouver(CA)
  • 作者单位

    Department of Computer Science and Engineering Indian Institute of Technology Guwahati, Assam, India;

    Department of Computer Science and Engineering Indian Institute of Technology Guwahati, Assam, India;

    Department of Computer Science and Engineering Indian Institute of Technology Guwahati, Assam, India;

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  • 正文语种 eng
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