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구어체 적응 사전 학습을 통한 한국어 감정 분류 성능 향상Improving Korean Emotion Classification via Colloquial-Adaptive Pretraining

Other Titles
Improving Korean Emotion Classification via Colloquial-Adaptive Pretraining
Authors
이정훈김동화노영빈강필성
Issue Date
2021
Publisher
대한산업공학회
Keywords
Natural Language Processing; Transfer Learning; Adaptive Pretraining; Multi-Emotion Classification
Citation
대한산업공학회지, v.47, no.4, pp.342 - 350
Indexed
KCI
Journal Title
대한산업공학회지
Volume
47
Number
4
Start Page
342
End Page
350
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/144771
ISSN
1225-0988
Abstract
Language models (LMs) pretrained on a large text corpus and fine-tuned on a task data have a remarkable performance for document classification task. Recently, an adaptive pretraining method that re-pretrains the pretrained LMs using an additional dataset in the same domain with the given task to make up the domain discrepancy has reported significant performance improvements. However, current adaptive pretraining methods only focus on the domain gap between pretraining data and fine-tuning data. The writing style is also different because the pretraining data, e.g., Wikipedia, is written in a literary style, but the task data, e.g., customer review, is usually written in a colloquial style. In this work, we propose a colloquial-adaptive pretraining method that re-pretrains the pretrained LM with informal sentences to generalize the LM to colloquial style. We verify the proposed method based on multi-emotion classification datasets. The experimental results show that the proposed method yields improved classification performance on both low- and high-resource data.
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