SphereVideo: Prototype-anchored Hyperspherical Boundary for Continual AI-generated Video Detection 文章

ArXiv CS.CV2026-08-04PAPERen作者: Fei Li, Yue Yu, Yuran Wang, Xinghan Li, Jingjing Chen, Yu-Gang Jiang

详细信息

来源站点
ArXiv CS.CV
作者
Fei Li, Yue Yu, Yuran Wang, Xinghan Li, Jingjing Chen, Yu-Gang Jiang
文章类型
PAPER
语言
en
发布日期
2026-08-04

摘要

arXiv:2608.01334v1 Announce Type: new Abstract: AI-generated video (AIGV) detection aims to distinguish real videos from AI-generated ones. In practice, detectors trained on existing data often fail to generalize to newly emerging generative models, making this task challenging. Therefore, continual learning (CL) is essential for improving the adaptability. However, CL frameworks for this task remain underexplored. To this end, we propose SphereVideo, a novel CL framework for AIGV detection built on two key observations. First, real videos exhibit a compact feature distribution. Based on this, we encourage real video features to cluster around a real prototype on a hypersphere while repelling AI-generated samples, thereby establishing a decision boundary. This prototype serves as a stable anchor for CL, regulating boundary evolution and mitigating catastrophic forgetting. Second, existing methods tend to rely solely on spatial artifacts as shortcuts.

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