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Chuanbiao Song

4 accepted papers

2026

Veritas: Generalizable Deepfake Detection via Pattern-Aware Reasoning

ICLR 2026oral

Deepfake detection remains a formidable challenge due to the evolving nature of fake content in real-world scenarios. However, existing benchmarks suffer from severe discrepancies from industrial practice, typically featuring homogeneous training sources and low-quality testing images, which hinder…

Cited by 0SourcecodeScholar
2020

Nesterov Accelerated Gradient and Scale Invariance for Adversarial Attacks

ICLR 2020poster

Deep learning models are vulnerable to adversarial examples crafted by applying human-imperceptible perturbations on benign inputs. However, under the black-box setting, most existing adversaries often have a poor transferability to attack other defense models. In this work, from the perspective of…

Cited by 734SourcecodeScholar
2020

Robust Local Features for Improving the Generalization of Adversarial Training

ICLR 2020poster

Adversarial training has been demonstrated as one of the most effective methods for training robust models to defend against adversarial examples. However, adversarially trained models often lack adversarially robust generalization on unseen testing data. Recent works show that adversarially trained…

Cited by 106SourcecodeScholar
2019

Improving the Generalization of Adversarial Training with Domain Adaptation

ICLR 2019poster

By injecting adversarial examples into training data, adversarial training is promising for improving the robustness of deep learning models. However, most existing adversarial training approaches are based on a specific type of adversarial attack. It may not provide sufficiently representative samp…

Cited by 170SourcePDFScholar