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BIO-MOLECULAR EVENT EXTRACTION WITH MARKOV LOGIC

机译:具有马尔可夫逻辑的生物分子事件提取

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摘要

This article presents a novel approach to event extraction from biological text using Markov Logic. It can be described by three design decisions: (1) instead of building a pipeline using local classifiers, we design and learn a joint probabilistic model over events in a sentence; (2) instead of developing specific inference and learning algorithms for our joint model, we apply Markov Logic, a general purpose Statistical Relation Learning language, for this task; (3) we represent events as relations over the token indices of a sentence, as opposed to structures that relate event entities to gene or protein mentions. In this article, we extend our original work by providing an error analysis for binding events. Moreover, we investigate the impact of different loss functions to precision, recall and F-measure. Finally, we show how to extract events of different types that share the same event clue. This extension allowed us to improve our performance our performance even further, leading to the third best scores for task 1 (in close range to the second place) and the best results for task 2 with a 14% point margin.
机译:本文提出了一种使用马尔可夫逻辑从生物文本中提取事件的新颖方法。它可以通过三个设计决策来描述:(1)我们设计和学习一个句子中事件的联合概率模型,而不是使用局部分类器构建管道。 (2)我们没有为联合模型开发特定的推理和学习算法,而是将Markov Logic(一种通用的统计关系学习语言)用于此任务; (3)我们将事件表示为句子的标记索引之间的关系,而不是将事件实体与基因或蛋白质提及相关联的结构。在本文中,我们通过对绑定事件进行错误分析来扩展我们的原始工作。此外,我们研究了不同损失函数对精度,召回率和F测度的影响。最后,我们展示了如何提取共享相同事件线索的不同类型的事件。此扩展使我们可以进一步提高性能,从而使任务1的第三佳成绩(紧随第二名)和任务2的最佳成绩达到14%的点差。

著录项

  • 来源
    《Computational Intelligence》 |2011年第4期|p.558-582|共25页
  • 作者单位

    Department of Computer Science, University of Massachusetts Amherst, Amherst, USA;

    Department of Computer Science, University of Tokyo, Tokyo, Japan;

    Knowledge Information Center, Korea Institute of Science and Technology Information, Daejeon,Republic of Korea;

    Database Center for Life Science, Research Organization of Information and System, Tokyo, Japan;

    Department of Computer Science, University of Tokyo, Tokyo, Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    event extraction; joint inference; markov logic; BioNLP.;

    机译:事件提取;联合推论马可夫逻辑BioNLP。;

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