EmoFeedback$^2$: Reinforcement of Continuous Emotional Image Generation via LVLM-based Reward and Textual Feedback 文章

ArXiv CS.CV2026-07-31PAPERen作者: Kai Shu, Jingyang Jia, Gang Yang, Long Xing, Xun Chen, Aiping Liu

详细信息

来源站点
ArXiv CS.CV
作者
Kai Shu, Jingyang Jia, Gang Yang, Long Xing, Xun Chen, Aiping Liu
文章类型
PAPER
语言
en
发布日期
2026-07-31

摘要

arXiv:2511.19982v3 Announce Type: replace Abstract: Continuous emotional image content generation (C-EICG) is emerging rapidly due to its ability to produce images aligned with both user descriptions and continuous emotional values. However, existing approaches lack emotional feedback from generated images, limiting the control of emotional continuity. Additionally, their simple emotion-text alignment fails to adaptively adjust emotional prompts according to image content, leading to insufficient emotional fidelity. To address these concerns, we propose a novel generation-understanding-feedback reinforcement paradigm (EmoFeedback$^2$) for C-EICG, which exploits the reasoning capability of the fine-tuned large vision-language model (LVLM) to provide reward and textual feedback for generating high-quality images with continuous emotions.

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