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CultiVerse: Towards Cross-Cultural Understanding for Paintings with Large Language Model

Wei Zhang, Wong Kam-Kwai, Biying Xu, Yiwen Ren, Yuhuai Li, Yingchaojie Feng, Minfeng Zhu, Wei Chen

2025Year
3Citations
1Top-tier citations

Abstract

Understanding cultural heritage through technology faces challenges in connecting with diverse audiences, especially when interpreting art across cultures. In this work, we present CultiVerse, a visual analytics system that leverages Large Language Models (LLMs) to support cross-cultural appreciation of Traditional Chinese Paintings (TCPs). CultiVerse operates within a mixed-initiative framework and guides users through three stages: extracting cultural context, aligning cross-cultural symbols, and extrapolating meaning in the viewer's cultural frame. By combining an interactive interface with LLM-powered analysis, the system enables deeper engagement with symbolic meanings and encourages serendipitous cross-cultural discoveries. Our approach bridges AI interpretation and human insight to foster mutual understanding in a multicultural setting. A curated TCP dataset supports exploration, while empirical evaluations confirm that CultiVerse enhances user understanding, interpretation accuracy, and cultural empathy.

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