DisCut and DiscReT: MELODI at DISRPT 2023

Eleni (Lena) Metheniti, Chloé Braud, Philippe Muller, Laura Rivière
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引用次数: 1

Abstract

This paper presents the results obtained by the MELODI team for the three tasks proposed within the DISRPT 2023 shared task on discourse: segmentation, connective identification, and relation classification. The competition involves corpora in various languages in several underlying frameworks, and proposes two tracks depending on the presence or not of annotations of sentence boundaries and syntactic information. For these three tasks, we rely on a transformer-based architecture, and investigate several optimizations of the models, including hyper-parameter search and layer freezing.For discourse relations, we also explore the use of adapters—a lightweight solution for model fine-tuning—and introduce relation mappings to partially deal with the label set explosion we are facing within the setting of the shared task in a multi-corpus perspective. In the end, we propose one single architecture for segmentation and connectives, based on XLM-RoBERTa large, freezed at lower layers, with new state-of-the-art results for segmentation, and we propose 3 different models for relations, since the task makes it harder to generalize across all corpora.
DisCut and discrete: MELODI at DISRPT 2023
本文介绍了MELODI团队对DISRPT 2023关于话语的共享任务中提出的三个任务:分词、连接识别和关系分类所获得的结果。该竞赛涉及多个底层框架下的各种语言语料库,并根据句子边界和句法信息的注释是否存在提出两条轨道。对于这三个任务,我们依赖于基于变压器的架构,并研究了几种模型优化,包括超参数搜索和层冻结。对于话语关系,我们还探索了适配器(用于模型微调的轻量级解决方案)的使用,并引入关系映射来部分处理我们在多语料库视角下共享任务设置中面临的标签集爆炸问题。最后,我们提出了一个基于XLM-RoBERTa的分割和连接的单一架构,它冻结在较低的层,具有新的最先进的分割结果,我们提出了3种不同的关系模型,因为这项任务使得在所有语料库中进行泛化变得更加困难。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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