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Finding the Right One and Resolving it

机译:找到合适的一个并解决它

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摘要

One-anaphora has figured prominently in theoretical linguistic literature, but computational linguistics research on the phenomenon is sparse. Not only that, the long standing linguistic controversy between the determinative and the nominal anaphoric element one has propagated in the limited body of computational work on one-anaphora resolution, making this task harder than it is. In the present paper, we resolve this by drawing from an adequate linguistic analysis of the word one in different syntactic environments - once again highlighting the significance of linguistic theory in Natural Language Processing (NLP) tasks. We prepare an annotated corpus marking actual instances of one-anaphora with their textual antecedents, and use the annotations to experiment with state-of-the art neural models for one-anaphora resolution. Apart from presenting a strong neural baseline for this task, we contribute a gold-standard corpus, which is, to the best of our knowledge, the biggest resource on one-anaphora till date.
机译:一位幻影在理论语言文学中占据突出,但对现象的计算语言学研究稀疏。不仅如此,确定性和标称化元素之间的长期语言争议已经在一个持久的计算工作的有限体内传播,使得这项任务比它更难。在本文中,我们通过绘制不同句法环境中的单词的充分语言分析 - 再次突出语言理论在自然语言处理(NLP)任务中的重要性。我们准备了一个带有文本前书的一个注释的语料库,标记了一个与文本的前书的实际情况,并使用注释来试验艺术艺术神经模型的一个申请决议。除了提出这项任务的强烈神经基线之外,我们还贡献了金标准的语料库,这是我们的知识,这是一个迄今为止的一个华侨视赛的最大资源。

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