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Acquisition and application of contextual role knowledge for coreference resolution

机译:获取和应用上下文角色知识以实现共指解析

摘要

Coreference resolution is the process of identifying when two noun phrases (NP) refer to the same entity. Two main contributions to computational coreference resolution are made. First, this work contributes a new method for recognizing when an NP is anaphoric. Second, traditional approaches to coreference resolution typically select the most appropriate antecedent by recognizing word similarity, proximity, and agreement in number, gender, and semantic class. This work contributes a new source of evidence that focuses on the roles that an anaphor and antecedent play in particular events or relationships. I show that using contextual role knowledge as part of the coreference resolution process increases the number of anaphors that can be resolved, and I demonstrate an unsupervised method for acquiring contextual role knowledge that does not require an annotated training corpus. A probabilistic model based on the Dempster-Shafer model of evidence is used to incorporate contextual role knowledge with traditional evidence sources.
机译:共指解析是识别两个名词短语(NP)何时指代同一实体的过程。对计算共参考分辨率做出了两个主要贡献。首先,这项工作为识别NP隐喻时提供了一种新的方法。其次,传统的共指解析方法通常通过识别单词的相似度,邻近度和数量,性别和语义类别上的一致来选择最合适的先行词。这项工作提供了一个新的证据来源,重点放在了回指和先行词在特定事件或关系中所扮演的角色。我展示了将上下文角色知识用作共指解析过程的一部分会增加可以解决的照应的数量,并且我演示了一种无需监督的方法来获取上下文角色知识,该方法不需要带注释的训练语料库。基于证据的Dempster-Shafer模型的概率模型用于将上下文角色知识与传统证据源相结合。

著录项

  • 公开/公告号US2009326919A1

    专利类型

  • 公开/公告日2009-12-31

    原文格式PDF

  • 申请/专利权人 DAVID L. BEAN;

    申请/专利号US20040994196

  • 发明设计人 DAVID L. BEAN;

    申请日2004-11-18

  • 分类号G06F17/27;

  • 国家 US

  • 入库时间 2022-08-21 18:50:15

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