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OT-Talk: Animating 3D Talking Head with Optimal Transportation

  • Xinmu Wang
  • , Xiang Gao
  • , Xiyun Song
  • , Heather Yu
  • , Zongfang Lin
  • , Liang Peng
  • , Xianfeng Gu
  • Stony Brook University
  • Futurewei Technologies, Inc.

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

2 Scopus citations

Abstract

Animating 3D head meshes using audio inputs has significant applications in AR/VR, gaming, and entertainment through 3D avatars. However, bridging the modality gap between speech signals and facial dynamics remains a challenge, often resulting in incorrect lip syncing and unnatural facial movements. To address this, we propose OT-Talk, the first approach to leverage optimal transportation to optimize the learning model in talking head animation. Building on existing learning frameworks, we utilize a pre-trained Hubert model to extract audio features and a transformer model to process temporal sequences. Unlike previous methods that focus solely on vertex coordinates or displacements, we introduce Chebyshev Graph Convolution to extract geometric features from triangulated meshes. To measure mesh dissimilarities, we go beyond traditional mesh reconstruction errors and velocity differences between adjacent frames. Instead, we represent meshes as probability measures and approximate their surfaces. This allows us to leverage the sliced Wasserstein distance for modeling mesh variations. This approach facilitates the learning of smooth and accurate facial motions, resulting in coherent and natural facial animations. Our experiments on two public audio-mesh datasets demonstrate that our method outperforms state-of-the-art techniques both quantitatively and qualitatively in terms of mesh reconstruction accuracy and temporal alignment. In addition, we conducted a user perception study with 20 volunteers to further assess the effectiveness of our approach.

Original languageEnglish
Title of host publicationICMR 2025 - Proceedings of the 2025 International Conference on Multimedia Retrieval
PublisherAssociation for Computing Machinery, Inc
Pages1340-1349
Number of pages10
ISBN (Electronic)9798400718779
DOIs
StatePublished - Jun 30 2025
Event2025 International Conference on Multimedia Retrieval, ICMR 2025 - Chicago, United States
Duration: Jun 30 2025Jul 3 2025

Publication series

NameICMR 2025 - Proceedings of the 2025 International Conference on Multimedia Retrieval

Conference

Conference2025 International Conference on Multimedia Retrieval, ICMR 2025
Country/TerritoryUnited States
CityChicago
Period06/30/2507/3/25

Keywords

  • chebyshev graph convolution
  • optimal transportation
  • talking head

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