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Zero-anaphora Resolution In Chinese Using Maximum Entropy

机译:最大熵的汉语零回指解析

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摘要

In this paper, we propose a learning classifier based on maximum entropy (ME) for resolving zero-anaphora in Chinese text. Besides regular grammatical, lexical, positional and semantic features motivated by previous research on anaphora resolution, we develop two innovative Web-based features for extracting additional semantic information from the Web. The values of the two features can be obtained easily by querying the Web using some patterns. Our study shows that our machine learning approach is able to achieve an accuracy comparable to that of state-of-the-art systems. The Web as a knowledge source can be incorporated effectively into the ME learning framework and significantly improves the performance of our approach.
机译:在本文中,我们提出了一种基于最大熵的学习分类器来解决中文文本中的零回指。除了先前对回指解析的研究所激发的常规语法,词汇,位置和语义特征之外,我们还开发了两个基于Web的创新功能,用于从Web提取其他语义信息。通过使用某些模式查询Web可以轻松获得这两个功能的值。我们的研究表明,我们的机器学习方法能够达到与最新系统相当的精度。可以将Web作为知识源有效地整合到ME学习框架中,并显着提高我们方法的性能。

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