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Dingheng Zeng

6 accepted papers

2025

Device-aware Optical Adversarial Attack for a Portable Projector-camera System

ICASSP 2025accepted

Deep-learning-based face recognition (FR) systems are susceptible to adversarial examples in both digital and physical domains. Physical attacks present a greater threat to deployed systems as adversaries can easily access the input channel, allowing them to provide malicious inputs to impersonate a…

Cited by 0SourceScholar
2025

MS-UFAD: A Large-Scale Dataset for Real-world Unified Face Attack Detection with Text Descriptions

ICASSP 2025accepted

As deepfake and adversarial attacks evolve, facial recognition systems are encountering increasingly diverse threats. Most existing face liveness detection algorithms focus on single tasks, like spoofing or deepfake attack detection. The corresponding datasets have limited coverage of attack methods…

Cited by 0SourceScholar
2025

Realistic Real-Time Talking Head Synthesis with Grid Encoding and Progressive Conditioning

ICASSP 2025accepted

Dynamic NeRFs have recently been used for 3D talking portrait synthesis, but challenges remain in improving efficiency and effectiveness. We introduce R2-Talker, an efficient and effective framework for real-time talking head synthesis. Using multi-resolution hash grids, we losslessly encode facial…

Cited by 0SourceScholar
2024

Unified Physical-Digital Face Attack Detection

IJCAI 2024poster

Face Recognition (FR) systems can suffer from physical (i.e., print photo) and digital (i.e., DeepFake) attacks. However, previous related work rarely considers both situations at the same time. This implies the deployment of multiple models and thus more computational burden. The main reasons for t…

Cited by 15SourcePDFScholar