The Pipeline Model for Resolution of Anaphoric Reference and Resolution of Entity Reference

Hongjin Kim, Damrin Kim, Harksoo Kim
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引用次数: 8

Abstract

The objective of anaphora resolution in dialogue shared-task is to go above and beyond the simple cases of coreference resolution in written text on which NLP has mostly focused so far, which arguably overestimate the performance of current SOTA models. The anaphora resolution in dialogue shared-task consists of three subtasks; subtask1, resolution of anaphoric identity and non-referring expression identification, subtask2, resolution of bridging references, and subtask3, resolution of discourse deixis/abstract anaphora. In this paper, we propose the pipelined model (i.e., a resolution of anaphoric identity and a resolution of bridging references) for the subtask1 and the subtask2. In the subtask1, our model detects mention via the parentheses prediction. Then, we yield mention representation using the token representation constituting the mention. Mention representation is fed to the coreference resolution model for clustering. In the subtask2, our model resolves bridging references via the MRC framework. We construct query for each entity as “What is related of ENTITY?”. The input of our model is query and documents(i.e., all utterances of dialogue). Then, our model predicts entity span that is answer for query.
指代指代消解和实体指代消解的管道模型
对话共享任务中回指解析的目标是超越NLP迄今为止主要关注的书面文本中简单的共指解析,这可能高估了当前SOTA模型的性能。对话共享任务中的回指消解包括三个子任务;子任务1,消解回指同一性和非指代表达识别;子任务2,消解桥接指称;子任务3,消解语篇指示语/抽象回指。在本文中,我们提出了subtask1和subtask2的流水线模型(即回指同一性的解析和桥接引用的解析)。在subtask1中,我们的模型通过括号预测检测提及。然后,我们使用构成提及的令牌表示生成提及表示。将提及表示输入到共参考解析模型中进行聚类。在subtask2中,我们的模型通过MRC框架解析桥接引用。我们将每个实体的查询构造为“与实体相关的是什么?”我们模型的输入是查询和文档(即。(所有的对话)。然后,我们的模型预测作为查询答案的实体跨度。
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