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ACM MM2024顶会

GaussianTalker: Real-Time Talking Head Synthesis with 3D Gaussian Splatting

Kyusun Cho, Joungbin Lee, Heeji Yoon, Yeobin Hong, Jaehoon Ko, Sangjun Ahn, Seungryong Kim

2024年份
52被引次数
10顶会引用

摘要

This paper proposes GaussianTalker, a novel framework for real-time generation of pose-controllable talking heads. It leverages the fast rendering capabilities of 3D Gaussian Splatting (3DGS) while addressing the challenges of directly controlling 3DGS with speech audio. GaussianTalker constructs a single 3DGS representation of the head and deforms it in sync with the audio. A key insight is to encode the 3D Gaussian attributes into a shared implicit feature representation, where it is merged with audio features to manipulate each Gaussian attribute. This design exploits the spatial information of the head and enforces interactions between neighboring points. The feature embeddings are then fed to a spatial-audio attention module, which predicts frame-wise offsets for the attributes of each Gaussian. This method is more stable than previous concatenation or multiplication approaches for manipulating the numerous Gaussians and their intricate parameters. Overall, GaussianTalker offers a promising approach for real-time generation of high-quality pose-controllable talking heads. pecifically, GaussianTalker achieves a remarkable rendering speed up to 120 FPS, surpassing previous benchmarks. Our demo video and code can be found at https://ku-cvlab.github.io/GaussianTalker/

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