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Hierarchical Cross-Modal Talking Face Generationwith Dynamic Pixel-Wise Loss

About

We devise a cascade GAN approach to generate talking face video, which is robust to different face shapes, view angles, facial characteristics, and noisy audio conditions. Instead of learning a direct mapping from audio to video frames, we propose first to transfer audio to high-level structure, i.e., the facial landmarks, and then to generate video frames conditioned on the landmarks. Compared to a direct audio-to-image approach, our cascade approach avoids fitting spurious correlations between audiovisual signals that are irrelevant to the speech content. We, humans, are sensitive to temporal discontinuities and subtle artifacts in video. To avoid those pixel jittering problems and to enforce the network to focus on audiovisual-correlated regions, we propose a novel dynamically adjustable pixel-wise loss with an attention mechanism. Furthermore, to generate a sharper image with well-synchronized facial movements, we propose a novel regression-based discriminator structure, which considers sequence-level information along with frame-level information. Thoughtful experiments on several datasets and real-world samples demonstrate significantly better results obtained by our method than the state-of-the-art methods in both quantitative and qualitative comparisons.

Lele Chen, Ross K. Maddox, Zhiyao Duan, Chenliang Xu• 2019

Related benchmarks

TaskDatasetResultRank
Talking Face GenerationLRW (test)
SSIM0.81
28
Talking Face GenerationLRS2 (test)
SSIM0.3944
18
Talking Face GenerationVoxCeleb2 (test)
SSIM0.826
14
Video DubbingLRS3 (test)
SyncScore4.43
6
Video DubbingLRS2 (test)
SyncScore3.51
6
Talking Face GenerationUser Study
Image Quality1.78
6
Talking Face ReconstructionLRS3 (test)
PSNR10.9
6
Talking Head GenerationVoxCeleb and LRW (test)
Lip Sync Quality2.87
4
Talking Face GenerationMEAD (test)
Mean Lip Deviation3.27
4
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