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20212026
most citedTowards Understanding and Boosting Adversarial Transferability from a Distribution Perspective

74 citations · 102 across the 11 of their papers we have counts for

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8 papers · 1 filter

cs.CV2026

ONRW: Optimizing inversion noise for high-quality and robust watermark

Xuan Ding, Xiu Yan, Chuanlong Xie +1

Watermarking methods have always been effective means of protecting intellectual property, yet they face significant challenges. Although existing deep learning-based watermarking…

cs.CV2023

COCO-O: A Benchmark for Object Detectors under Natural Distribution Shifts

Xiaofeng Mao, Yuefeng Chen, Yao Zhu +4

Practical object detection application can lose its effectiveness on image inputs with natural distribution shifts. This problem leads the research community to pay more attention…

cs.CV2023

ImageNet-E: Benchmarking Neural Network Robustness via Attribute Editing

Xiaodan Li, Yuefeng Chen, Yao Zhu +3

Recent studies have shown that higher accuracy on ImageNet usually leads to better robustness against different corruptions. Therefore, in this paper, instead of following the trad…

cs.CV2023

Information-containing Adversarial Perturbation for Combating Facial Manipulation Systems

Yao Zhu, Yuefeng Chen, Xiaodan Li +4

With the development of deep learning technology, the facial manipulation system has become powerful and easy to use. Such systems can modify the attributes of the given facial ima…

cs.CV2022

Rethinking Out-of-Distribution Detection From a Human-Centric Perspective

Yao Zhu, Yuefeng Chen, Xiaodan Li +6

Out-Of-Distribution (OOD) detection has received broad attention over the years, aiming to ensure the reliability and safety of deep neural networks (DNNs) in real-world scenarios…

cs.CV2022★ 74 cited

Towards Understanding and Boosting Adversarial Transferability from a Distribution Perspective

Yao Zhu, Yuefeng Chen, Xiaodan Li +6

Transferable adversarial attacks against Deep neural networks (DNNs) have received broad attention in recent years. An adversarial example can be crafted by a surrogate model and t…