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Multi-Cultural Norm Base: Frame-based Norm Discovery in Multi-Cultural Settings

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Abstract

Sociocultural norms serve as guiding principles for personal conduct in social interactions within a particular society or culture.The study of norm discovery has seen significant development over the last few years, with various interesting approaches.However, it is difficult to adopt these approaches to discover norms in a new culture, as they rely either on human annotations or real-world dialogue contents.This paper presents a robust automatic norm discovery pipeline, which utilizes the cultural knowledge of GPT-3.5 Turbo (ChatGPT) along with several social factors.By using these social factors and ChatGPT, our pipeline avoids the use of human dialogues that tend to be limited to specific scenarios, as well as the use of human annotations that make it difficult and costly to enlarge the dataset.The resulting database -Multicultural Norm Base (MNB) -covers 6 distinct cultures, with over 150k sociocultural norm statements in total.A state-of-the-art Large Language Model (LLM), Llama 3, fine-tuned with our proposed dataset, shows remarkable results on various downstream tasks, outperforming models fine-tuned on other datasets significantly.

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Publication details

DOI
10.18653/v1/2024.conll-1.3
OpenAlex
W4404783592
Document type
conference-paper
Language
EN
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