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Zero Anaphora Resolution By Case-based Reasoning And Pattern Conceptualization

机译:基于案例推理和模式概念化的零回指解析

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摘要

Effective anaphora resolution is helpful to many applications of natural language processing such as machine translation, summarization and question answering. In this paper, a novel resolution approach is proposed to tackle zero anaphora, which is the most frequent type of anaphora shown in Chinese texts. Unlike most of the previous approaches relying on hand-coded rules, our resolution is mainly constructed by employing case-based reasoning and pattern conceptualization. Moreover, the resolution is incorporated with the mechanisms to identify cataphora and non-antecedent instances so as to enhance the resolution performance. Compared to a general rule-based approach, the proposed approach indeed improves the resolution performance by achieves 78% recall and 79% precision on solving 1051 zero anaphora instances in 382 narrative texts.
机译:有效的回指解析有助于自然语言处理的许多应用,例如机器翻译,摘要和问题解答。本文提出了一种新颖的解析方法来解决零回指,这是中文文本中最常见的回指类型。与大多数以前依靠手工编码规则的方法不同,我们的解决方案主要是通过基于案例的推理和模式概念化来构造的。此外,将解析与机制相结合,以识别后遗症和非先例实例,从而提高解析性能。与一般的基于规则的方法相比,该方法通过在382篇叙述文本中解决1051个零回指实例实现了78%的查全率和79%的精度,确实提高了分辨率性能。

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