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Jinyin Chen

4 accepted papers

2025

PhyCamo: A Robust Physical Camouflage via Contrastive Learning for Multi-View Physical Adversarial Attack

AAAI 2025technical

Deep neural networks (DNNs) have achieved remarkable success in widespread applications. Meanwhile, its vulnerability towards carefully crafted adversarial attacks captures special attention. Not only adversarial perturbations in digital space will fool the target DNNs-based detectors making a wrong…

2024

CatchBackdoor: Backdoor Detection via Critical Trojan Neural Path Fuzzing

ECCV 2024poster

"The success of deep neural networks (DNNs) in real-world applications has benefited from abundant pre-trained models. However, the backdoored pre-trained models can pose a significant trojan threat to the deployment of downstream DNNs. Numerous backdoor detection methods have been proposed but are…

Cited by 2SourcePDFScholar
2022

Improving Robustness of Language Models from a Geometry-aware Perspective

ACL 2022findings

Recent studies have found that removing the norm-bounded projection and increasing search steps in adversarial training can significantly improve robustness. However, we observe that a too large number of search steps can hurt accuracy. We aim to obtain strong robustness efficiently using fewer step…

2022

Understanding the Dynamics of DNNs Using Graph Modularity

ECCV 2022poster

"There are good arguments to support the claim that deep neural networks (DNNs) capture better feature representations than the previous hand-crafted feature engineering, which leads to a significant performance improvement. In this paper, we move a tiny step towards understanding the dynamics of fe…