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篇名
Universal Recurrent Neural Network Grammar
並列篇名
Universal Recurrent Neural Network Grammar
作者 Chinmay ChoudharyColm O'riordan
英文摘要
Modern approaches to Constituency Parsing are mono-lingual supervised approaches which require large amount of labelled data to be trained on, thus limiting their utility to only a handful of high-resource languages. To address this issue of data-sparsity for low-resource languages we propose Universal Recurrent Neural Network Grammars (UniRNNG) which is a multi-lingual variant of the popular Recurrent Neural Network Grammars (RNNG) model for constituency parsing. UniRNNG involves Cross-lingual Transfer Learning for Constituency Parsing task. The architecture of UniRNNG is inspired by Principle and Parameter theory proposed by Noam Chomsky. UniRNNG utilises the linguistic typology knowledge available as feature-values within WALS database, to generalize over multiple languages. Once trained on sufficiently diverse polyglot corpus UniRNNG can be applied to any natural language thus making it Language-agnostic constituency parser. Experiments reveal that our proposed UniRNNG outperform state-of-the-art baseline approaches for most of the target languages, for which these are tested.
起訖頁 1-12
關鍵詞 Constituency ParsingCross-lingual Transfer-learning
刊名 ROCLING論文集  
期數 202112 (2021期)
出版單位 中華民國計算語言學學會
該期刊-下一篇 運用遷移式學習改善BERT於中文歌詞情緒分類模型之研發
 

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