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Deterministic Coreference Resolution Based on Entity-Centric, Precision-Ranked Rules

机译:基于实体中心,精确排名规则的确定性共指解析

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We propose a new deterministic approach to coreference resolution that combines the global information and precise features of modern machine-learning models with the transparency and modularity of deterministic, rule-based systems. Our sieve architecture applies a battery of deterministic coreference models one at a time from highest to lowest precision, where each model builds on the previous model's cluster output. The two stages of our sieve-based architecture, a mention detection stage that heavily favors recall, followed by coreference sieves that are precision-oriented, offer a powerful way to achieve both high precision and high recall. Further, our approach makes use of global information through an entity-centric model that encourages the sharing of features across all mentions that point to the same real-world entity. Despite its simplicity, our approach gives state-of-the-art performance on several corpora and genres, and has also been incorporated into hybrid state-of-the-art coreference systems for Chinese and Arabic. Our system thus offers a new paradigm for combining knowledge in rule-based systems that has implications throughout computational linguistics.
机译:我们提出了一种用于共指解析的确定性方法,该方法将全局信息和现代机器学习模型的精确功能与确定性,基于规则的系统的透明性和模块化相结合。我们的筛网体系结构一次使用一组确定性的共参照模型,从最高到最低,每次精确建立一个模型,其中每个模型都建立在先前模型的集群输出上。我们基于筛的体系结构的两个阶段,一个非常重视召回的提及检测阶段,其次是面向精度的共指筛,这为实现高精度和高召回率提供了一种有力的方法。此外,我们的方法通过以实体为中心的模型来利用全球信息,该模型鼓励在指向同一真实世界实体的所有提及中共享功能。尽管它很简单,但我们的方法可以在多种语料和体裁上提供最先进的性能,并且还被并入了针对中文和阿拉伯语的最新技术混合参考系统中。因此,我们的系统提供了一种新的范式,用于在基于规则的系统中组合知识,这对整个计算语言学都有影响。

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