most citedSafeGenBench: A Benchmark Framework for Security Vulnerability Detection in LLM-Generated Code

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cs.CV2026

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

Fei Li, Yue Yu, Yuran Wang +3

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 emergi…

cs.CV2026

DECODE: Tackling Representation and Decision Degradation in Continual AI-Generated Image Detection

Zihao Cai, Xinghan Li, Ruiyan Yang +3

As generative models continue to evolve, AI-generated image detectors must incrementally adapt to emerging generative domains while preserving knowledge acquired from previous ones…

cs.CV2026

VIGIL: Part-Grounded Structured Reasoning for Generalizable Deepfake Detection

Xinghan Li, Junhao Xu, Jingjing Chen

Multimodal large language models (MLLMs) offer a promising path toward interpretable deepfake detection by generating textual explanations. However, the reasoning process of curren…

cs.CV20251 cited

Emu3.5: Native Multimodal Models are World Learners

Yufeng Cui, Honghao Chen, Haoge Deng +20

We introduce Emu3.5, a large-scale multimodal world model that natively predicts the next state across vision and language. Emu3.5 is pre-trained end-to-end with a unified next-tok…

cs.CV2025

Unified Vision-Language-Action Model

Yuqi Wang, Xinghang Li, Wenxuan Wang +5

Vision-language-action models (VLAs) have garnered significant attention for their potential in advancing robotic manipulation. However, previous approaches predominantly rely on t…

cs.CV2025

Revealing the Implicit Noise-based Imprint of Generative Models

Xinghan Li, Yue Yu, Xue Song +2

With the rapid advancement of vision generation models, the potential security risks stemming from synthetic visual content have garnered increasing attention, posing significant c…