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Representing Abstract Concepts with Images: An Investigation with Large Language Models

Proceedings of the Workshop on Cognitive Aspects of the Lexicon @ LREC-COLING 2024

DOI:10.63317/55gpzsb9yxun

Abstract

Multimodal metaphorical interpretation of abstract concepts has always been a debated problem in many research fields, including cognitive linguistics and NLP. With the dramatic improvements of Large Language Models (LLMs) and the increasing attention toward multimodal Vision-Language Models (VLMs), there has been pronounced attention on the conceptualization of abstracts. Nevertheless, a systematic scientific investigation is still lacking. This work introduces a framework designed to shed light on the indirect grounding mechanisms that anchor the meaning of abstract concepts to concrete situations (e.g. ability - a person skating), following the idea that abstracts acquire meaning from embodied and situated simulation. We assessed human and LLMs performances by a situation generation task. Moreover, we assess the figurative richness of images depicting concrete scenarios, via a text-to-image retrieval task performed on LAION-400M.

Details

Paper ID
lrec2024-ws-cogalex-12
Pages
pp. 107-113
BibKey
cerini-etal-2024-representing
Editor
N/A
Publisher
European Language Resources Association (ELRA) and ICCL
ISSN
N/A
ISBN
N/A
Workshop
Proceedings of the Workshop on Cognitive Aspects of the Lexicon @ LREC-COLING 2024
Location
undefined, undefined
Date
20 May 2024 25 May 2024

Authors

  • LC

    Ludovica Cerini

  • AB

    Alessandro Bondielli

  • AL

    Alessandro Lenci

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