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ESG-Kor: A Korean Dataset for ESG-related Information Extraction and Practical Use Cases

Authors
Lee, JaeyoungSon, GeonyeongKim, Misuk
Issue Date
Nov-2024
Publisher
Association for Computational Linguistics (ACL)
Citation
EMNLP 2024 - 2024 Conference on Empirical Methods in Natural Language Processing, Findings of EMNLP 2024, pp 6627 - 6643
Pages
17
Indexed
SCOPUS
Journal Title
EMNLP 2024 - 2024 Conference on Empirical Methods in Natural Language Processing, Findings of EMNLP 2024
Start Page
6627
End Page
6643
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/206721
DOI
10.18653/v1/2024.findings-emnlp.387
Abstract
With the expansion of pre-trained language model usage in recent years, the importance of datasets for performing tasks in specialized domains has significantly increased. Therefore, we have built a Korean dataset called ESG-Kor to automatically extract Environmental, Social, and Governance (ESG) information, which has recently gained importance. ESG-Kor is a dataset consisting of a total of 118,946 sentences that extracted information on each ESG component from Korean companies' sustainability reports and manually labeled it according to objective rules provided by ESG evaluation agencies. To verify the effectiveness and applicability of the ESG-Kor dataset, classification performance was confirmed using several Korean pre-trained language models, and significant performance was obtained. Additionally, by extending the ESG classification model to documents of small and medium enterprises and extracting information based on ESG key issues and in-depth analysis, we demonstrated potential and practical use cases in the ESG field.
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