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Large Language Models for Cross-lingual Emotion Detection

21 October 2024
Ram Mohan Rao Kadiyala
ArXiv (abs)PDFHTMLHuggingFace (1 upvotes)Github
Main:3 Pages
1 Figures
Bibliography:2 Pages
7 Tables
Appendix:1 Pages
Abstract

This paper presents a detailed system description of our entry for the WASSA 2024 Task 2, focused on cross-lingual emotion detection. We utilized a combination of large language models (LLMs) and their ensembles to effectively understand and categorize emotions across different languages. Our approach not only outperformed other submissions with a large margin, but also demonstrated the strength of integrating multiple models to enhance performance. Additionally, We conducted a thorough comparison of the benefits and limitations of each model used. An error analysis is included along with suggested areas for future improvement. This paper aims to offer a clear and comprehensive understanding of advanced techniques in emotion detection, making it accessible even to those new to the field.

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