Metaphor Understanding Challenge Dataset for LLMs

Open Access
Authors
Publication date 2024
Host editors
  • L.-W. Ku
  • A. Martins
  • V. Srikumar
Book title The 62nd Annual Meeting of the Association for Computational Linguistics (ACL 2024) : proceedings of the conference
Book subtitle ACL 2024 : August 11-16, 2024
ISBN (electronic)
  • 9798891760943
Event 62nd Annual Meeting of the Association for Computational Linguistics, ACL 2024
Volume | Issue number 1
Pages (from-to) 3517-3536
Number of pages 20
Publisher Kerrville, TX: Association for Computational Linguistics
Organisations
  • Interfacultary Research - Institute for Logic, Language and Computation (ILLC)
Abstract

Metaphors in natural language are a reflection of fundamental cognitive processes such as analogical reasoning and categorisation, and are deeply rooted in everyday communication. Metaphor understanding is therefore an essential task for large language models (LLMs). We release the Metaphor Understanding Challenge Dataset (MUNCH), designed to evaluate the metaphor understanding capabilities of LLMs. The dataset provides over 10k paraphrases for sentences containing metaphor use, as well as 1.5k instances containing inapt paraphrases. The inapt paraphrases were carefully selected to serve as control to determine whether the model indeed performs full metaphor interpretation or rather resorts to lexical similarity. All apt and inapt paraphrases were manually annotated. The metaphorical sentences cover natural metaphor uses across 4 genres (academic, news, fiction, and conversation), and they exhibit different levels of novelty. Experiments with LLaMA and GPT-3.5 demonstrate that MUNCH presents a challenging task for LLMs. The dataset is freely accessible at https://github.com/xiaoyuisrain/metaphor-understanding-challenge.

Document type Conference contribution
Language English
Related publication Metaphor Understanding Challenge Dataset for LLMs
Published at https://doi.org/10.18653/v1/2024.acl-long.193
Other links https://github.com/xiaoyuisrain/metaphor-understanding-challenge https://www.scopus.com/pages/publications/85204439786
Downloads
2024.acl-long.193 (Final published version)
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