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Improving Chinese Pronominal Anaphora Resolution by Extensive Feature Representation and Confidence Estimation

机译:通过广泛的特征表示和置信度估计来提高汉语代词照应的解析度

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摘要

Pronominal anaphora resolution denotes antecedent identification for anaphoric pronouns expressed in discourses. Effective resolution relies on the kinds of features to be concerned and how they are appropriately weighted at antecedent identification. In this paper, a rich feature set including the innovative discourse features are employed so as to resolve those commonly-used Chinese pronouns in modern Chinese written texts. Moreover, a maximum-entropy based model is presented to estimate the confidence for each antecedent candidate. Experimental results show that our method achieves 83.5% success rate which is better than those obtained by rule-based and SVM-based methods.
机译:代词回指解析表示话语中所指的代词代词的先行识别。有效的分辨率取决于要关注的特征的种类以及在进行先验识别时如何适当权衡这些特征。本文采用了包括创新话语功能在内的丰富功​​能集,以解决现代汉语书面文字中常用的汉语代词。此外,提出了一个基于最大熵的模型来估计每个先前候选者的置信度。实验结果表明,与基于规则和基于支持向量机的方法相比,该方法取得了83.5%的成功率。

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