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E3RG: Building Explicit Emotion-driven Empathetic Response Generation System with Multimodal Large Language Model

Published 18 Aug 2025 in cs.AI, cs.CL, cs.CV, cs.HC, and cs.MM | (2508.12854v1)

Abstract: Multimodal Empathetic Response Generation (MERG) is crucial for building emotionally intelligent human-computer interactions. Although LLMs have improved text-based ERG, challenges remain in handling multimodal emotional content and maintaining identity consistency. Thus, we propose E3RG, an Explicit Emotion-driven Empathetic Response Generation System based on multimodal LLMs which decomposes MERG task into three parts: multimodal empathy understanding, empathy memory retrieval, and multimodal response generation. By integrating advanced expressive speech and video generative models, E3RG delivers natural, emotionally rich, and identity-consistent responses without extra training. Experiments validate the superiority of our system on both zero-shot and few-shot settings, securing Top-1 position in the Avatar-based Multimodal Empathy Challenge on ACM MM 25. Our code is available at https://github.com/RH-Lin/E3RG.

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