Transfer Learning Parallel Metaphor using Bilingual Embeddings

Maria Berger
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引用次数: 0

Abstract

Automated metaphor detection in languages other than English is highly restricted as training corpora are comparably rare. One way to overcome this problem is transfer learning. This paper gives an overview on transfer learning techniques applied to NLP. We first introduce types of transfer learning, then we present work focusing on: i) transfer learning with cross-lingual embeddings; ii) transfer learning in machine translation; and iii) transfer learning using pre-trained transformer models. The paper is complemented by first experiments that make use of bilingual embeddings generated from different sources of parallel data: We i) present the preparation of a parallel Gold corpus; ii) examine the embeddings spaces to search for metaphoric words cross-lingually; iii) run first experiments in transfer learning German metaphor from English labeled data only. Results show that finding data sources for bilingual embeddings training and the vocabulary covered by these embeddings is critical for learning metaphor cross-lingually.
基于双语嵌入的平行隐喻迁移学习
由于训练语料库相对较少,非英语语言的自动隐喻检测受到很大限制。克服这个问题的一种方法是迁移学习。本文综述了迁移学习技术在自然语言处理中的应用。我们首先介绍了迁移学习的类型,然后介绍了我们的工作重点:i)跨语言嵌入的迁移学习;机器翻译中的迁移学习;iii)使用预训练的变压器模型进行迁移学习。本文的第一个实验是利用从不同来源的并行数据生成的双语嵌入:我们i)提出了一个平行黄金语料库的准备;Ii)检查嵌入空间以跨语言搜索隐喻词;iii)仅从英语标注数据中进行德语隐喻迁移学习的第一次实验。研究结果表明,寻找双语嵌入训练的数据源和这些嵌入所涵盖的词汇对于跨语言学习隐喻至关重要。
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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