STICKERCONV: Generating Multimodal Empathetic Responses from Scratch
Yiqun Zhang, Fanheng Kong, Peidong Wang, Shuang Sun, Lingshuai Wang, Shi Feng, Daling Wang, Yifei Zhang, Kaisong Song
摘要
Stickers, while widely recognized for enhancing empathetic communication in online interactions, remain underexplored in current empathetic dialogue research, notably due to the challenge of a lack of comprehensive datasets. In this paper, we introduce the Agent for STICKERCONV (Agent4SC), which uses collaborative agent interactions to realistically simulate human behavior with sticker usage, thereby enhancing multimodal empathetic communication. Building on this foundation, we develop a multimodal empathetic dialogue dataset, STICKERCONV, comprising 12.9K dialogue sessions, 5.8K unique stickers, and 2K diverse conversational scenarios. This dataset serves as a benchmark for multimodal empathetic generation. To advance further, we propose PErceive and Generate Stickers (PEGS), a multimodal empathetic response generation framework, complemented by a comprehensive set of empathy evaluation metrics based on LLM. Our experiments demonstrate PEGS's effectiveness in generating contextually relevant and emotionally resonant multimodal empathetic responses, contributing to the advancement of more nuanced and engaging empathetic dialogue systems 1 .
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引用它的顶会 Paper8
- Towards Multimodal Empathetic Response Generation: A Rich Text-Speech-Vision Avatar-based BenchmarkHan Zhang, Zixiang Meng, Meng Luo, Hong Han 等WWW 2025 · 被引用 25 次
- A New Formula for Sticker Retrieval: Reply with Stickers in Multi-Modal and Multi-Session ConversationBingbing Wang, Yiming Du, Bin Liang, Zhixin Bai 等AAAI 2025 · 被引用 5 次
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- PerSRV: Personalized Sticker Retrieval with Vision-Language ModelHeng Er Metilda Chee, Jiayin Wang, Zhiqiang Guo, Weizhi Ma 等WWW 2025 · 被引用 3 次
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