A BERT-based two-stage model for Chinese Chengyu recommendation
In Chinese, Chengyu are fixed phrases consisting of four characters. As a type of idioms, their meanings usually cannot be derived from their component characters. In this paper, we study the task of recommending a Chengyu given a textual context. Observing some of the limitations with existing work...
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sg-smu-ink.sis_research-68242022-04-14T02:22:17Z A BERT-based two-stage model for Chinese Chengyu recommendation TAN, Minghuan Jing JIANG, DAI, Bingtian In Chinese, Chengyu are fixed phrases consisting of four characters. As a type of idioms, their meanings usually cannot be derived from their component characters. In this paper, we study the task of recommending a Chengyu given a textual context. Observing some of the limitations with existing work, we propose a two-stage model, where during the first stage we re-train a Chinese BERT model by masking out Chengyu from a large Chinese corpus with a wide coverage of Chengyu. During the second stage, we fine-tune the retrained, Chengyu-oriented BERT on a specific Chengyu recommendation dataset. We evaluate this method on ChID and CCT datasets and find that it can achieve the state of the art on both datasets. Ablation studies show that both stages of training are critical for the performance gain. 2021-11-01T07:00:00Z text application/pdf https://ink.library.smu.edu.sg/sis_research/5821 info:doi/10.1145/3453185 https://ink.library.smu.edu.sg/context/sis_research/article/6824/viewcontent/ink_Chinese_Idiom_Prediction__TALLIP___nonacm_.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University natural language processing chengyu recommendation idiom understanding question answering Databases and Information Systems East Asian Languages and Societies Numerical Analysis and Scientific Computing |
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natural language processing chengyu recommendation idiom understanding question answering Databases and Information Systems East Asian Languages and Societies Numerical Analysis and Scientific Computing TAN, Minghuan Jing JIANG, DAI, Bingtian A BERT-based two-stage model for Chinese Chengyu recommendation |
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In Chinese, Chengyu are fixed phrases consisting of four characters. As a type of idioms, their meanings usually cannot be derived from their component characters. In this paper, we study the task of recommending a Chengyu given a textual context. Observing some of the limitations with existing work, we propose a two-stage model, where during the first stage we re-train a Chinese BERT model by masking out Chengyu from a large Chinese corpus with a wide coverage of Chengyu. During the second stage, we fine-tune the retrained, Chengyu-oriented BERT on a specific Chengyu recommendation dataset. We evaluate this method on ChID and CCT datasets and find that it can achieve the state of the art on both datasets. Ablation studies show that both stages of training are critical for the performance gain. |
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text |
author |
TAN, Minghuan Jing JIANG, DAI, Bingtian |
author_facet |
TAN, Minghuan Jing JIANG, DAI, Bingtian |
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TAN, Minghuan |
title |
A BERT-based two-stage model for Chinese Chengyu recommendation |
title_short |
A BERT-based two-stage model for Chinese Chengyu recommendation |
title_full |
A BERT-based two-stage model for Chinese Chengyu recommendation |
title_fullStr |
A BERT-based two-stage model for Chinese Chengyu recommendation |
title_full_unstemmed |
A BERT-based two-stage model for Chinese Chengyu recommendation |
title_sort |
bert-based two-stage model for chinese chengyu recommendation |
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Institutional Knowledge at Singapore Management University |
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2021 |
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https://ink.library.smu.edu.sg/sis_research/5821 https://ink.library.smu.edu.sg/context/sis_research/article/6824/viewcontent/ink_Chinese_Idiom_Prediction__TALLIP___nonacm_.pdf |
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