cs.AI updates on arXiv.org 07月22日 12:34
Uncovering Critical Features for Deepfake Detection through the Lottery Ticket Hypothesis
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本文探讨运用彩票假设(LTH)优化深度伪造检测中的神经网络剪枝,通过MesoNet、CNN-5和ResNet-18架构在OpenForensic和FaceForensics++数据集上实验,发现深度伪造检测网络中存在性能优异的子网络,并提出基于LTH的迭代幅度剪枝方法,提高了检测准确性。

arXiv:2507.15636v1 Announce Type: cross Abstract: Recent advances in deepfake technology have created increasingly convincing synthetic media that poses significant challenges to information integrity and social trust. While current detection methods show promise, their underlying mechanisms remain poorly understood, and the large sizes of their models make them challenging to deploy in resource-limited environments. This study investigates the application of the Lottery Ticket Hypothesis (LTH) to deepfake detection, aiming to identify the key features crucial for recognizing deepfakes. We examine how neural networks can be efficiently pruned while maintaining high detection accuracy. Through extensive experiments with MesoNet, CNN-5, and ResNet-18 architectures on the OpenForensic and FaceForensics++ datasets, we find that deepfake detection networks contain winning tickets, i.e., subnetworks, that preserve performance even at substantial sparsity levels. Our results indicate that MesoNet retains 56.2% accuracy at 80% sparsity on the OpenForensic dataset, with only 3,000 parameters, which is about 90% of its baseline accuracy (62.6%). The results also show that our proposed LTH-based iterative magnitude pruning approach consistently outperforms one-shot pruning methods. Using Grad-CAM visualization, we analyze how pruned networks maintain their focus on critical facial regions for deepfake detection. Additionally, we demonstrate the transferability of winning tickets across datasets, suggesting potential for efficient, deployable deepfake detection systems.

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深度伪造检测 神经网络剪枝 彩票假设 MesoNet 数据集
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