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Unsupervised Coreference Resolution by Utilizing the Most Informative Relations

机译:利用最信息化的关系进行无监督的共指解析

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In this paper we present a novel method for unsupervised coreference resolution. We introduce a precision-oriented inference method that scores a candidate entity of a mention based on the most informative mention pair relation between the given mention entity pair. We introduce an infor-mativeness score for determining the most precise relation of a mention entity pair regarding the coreference decisions. The informativeness score is learned robustly during few iterations of the expectation maximization algorithm. The proposed unsupervised system outperforms existing unsupervised methods on all benchmark data sets.
机译:在本文中,我们提出了一种用于无监督共参考分辨率的新方法。我们引入一种面向精度的推理方法,该方法基于给定提及实体对之间最具信息性的提及对关系对一个候选候选实体进行评分。我们引入信息得分,用于确定提及实体对有关共指决策的最精确关系。在几次期望最大化算法的迭代过程中,信息性得分得到了稳健的学习。拟议的无监督系统在所有基准数据集上均优于现有的无监督方法。

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