DeepRhythm: Exposing DeepFakes with Attentional Visual Heartbeat Rhythms
Hua Qi, Qing Guo, Felix Juefei-Xu, Xiaofei Xie, Lei Ma, Wei Feng, Yang Liu, Jianjun Zhao
Abstract
As the GAN-based face image and video generation techniques, widely known as DeepFakes, have become more and more matured and realistic, there comes a pressing and urgent demand for effective DeepFakes detectors. Motivated by the fact that remote visual photoplethysmography (PPG) is made possible by monitoring the minuscule periodic changes of skin color due to blood pumping through the face, we conjecture that normal heartbeat rhythms found in the real face videos will be disrupted or even entirely broken in a DeepFake video, making it a potentially powerful indicator for DeepFake detection. In this work, we propose DeepRhythm, a DeepFake detection technique that exposes Deep-Fakes by monitoring the heartbeat rhythms. DeepRhythm utilizes dual-spatial-temporal attention to adapt to dynamically changing face and fake types. Extensive experiments on FaceForensics++ and DFDC-preview datasets have confirmed our conjecture and demonstrated not only the effectiveness, but also the generalization capability of DeepRhythm over different datasets by various DeepFakes generation techniques and multifarious challenging degradations.
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Install the CLIlune papers fulltext d99ae87f-8aa5-41f2-9efb-3b319cc81cf2Cited by top-tier papers18
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Builds on8
- FaceForensics++: Learning to Detect Manipulated Facial ImagesAndreas Rössler, Davide Cozzolino, Luisa Verdoliva, Christian Riess et al.ICCV 2019 · 2,966 citations
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- DeepSonar: Towards Effective and Robust Detection of AI-Synthesized Fake VoicesRun Wang, Felix Juefei-Xu, Yihao Huang, Qing Guo et al.ACM MM 2020 · 124 citations
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- FakePolisher: Making DeepFakes More Detection-Evasive by Shallow ReconstructionYihao Huang, Felix Juefei-Xu, Run Wang, Qing Guo et al.ACM MM 2020 · 72 citations
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