AvatarStudio: Text-Driven Editing of 3D Dynamic Human Head Avatars

Author:

Mendiratta Mohit1,Pan Xingang2,Elgharib Mohamed2,Teotia Kartik1,R Mallikarjun B1,Tewari Ayush3,Golyanik Vladislav2,Kortylewski Adam4,Theobalt Christian2

Affiliation:

1. Max Planck Institute for Informatics and Saarland University, Germany

2. Max Planck Institute for Informatics and SIC, Germany

3. MIT CSAIL, United States of America

4. University of Freiburg, Max Planck Institute for Informatics, and SIC, Germany

Abstract

Capturing and editing full-head performances enables the creation of virtual characters with various applications such as extended reality and media production. The past few years witnessed a steep rise in the photorealism of human head avatars. Such avatars can be controlled through different input data modalities, including RGB, audio, depth, IMUs, and others. While these data modalities provide effective means of control, they mostly focus on editing the head movements such as the facial expressions, head pose, and/or camera viewpoint. In this paper, we propose AvatarStudio, a text-based method for editing the appearance of a dynamic full head avatar. Our approach builds on existing work to capture dynamic performances of human heads using Neural Radiance Field (NeRF) and edits this representation with a text-to-image diffusion model. Specifically, we introduce an optimization strategy for incorporating multiple keyframes representing different camera viewpoints and time stamps of a video performance into a single diffusion model. Using this personalized diffusion model, we edit the dynamic NeRF by introducing view-and-time-aware Score Distillation Sampling (VT-SDS) following a model-based guidance approach. Our method edits the full head in a canonical space and then propagates these edits to the remaining time steps via a pre-trained deformation network. We evaluate our method visually and numerically via a user study, and results show that our method outperforms existing approaches. Our experiments validate the design choices of our method and highlight that our edits are genuine, personalized, as well as 3D- and time-consistent.

Funder

European Research Council

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design

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3. Shivangi Aneja Justus Thies Angela Dai and Matthias Nießner. 2022. ClipFace: Text-guided Editing of Textured 3D Morphable Models. In ArXiv preprint arXiv:2212.01406. Shivangi Aneja Justus Thies Angela Dai and Matthias Nießner. 2022. ClipFace: Text-guided Editing of Textured 3D Morphable Models. In ArXiv preprint arXiv:2212.01406.

4. ShahRukh Athar Zexiang Xu Kalyan Sunkavalli Eli Shechtman and Zhixin Shu. 2022. RigNeRF: Fully Controllable Neural 3D Portraits. In Computer Vision and Pattern Recognition (CVPR). ShahRukh Athar Zexiang Xu Kalyan Sunkavalli Eli Shechtman and Zhixin Shu. 2022. RigNeRF: Fully Controllable Neural 3D Portraits. In Computer Vision and Pattern Recognition (CVPR).

5. Ziqian Bai Feitong Tan Zeng Huang Kripasindhu Sarkar Danhang Tang Di Qiu Abhimitra Meka Ruofei Du Mingsong Dou Sergio Orts-Escolano Rohit Pandey Ping Tan Thabo Beeler Sean Fanello and Yinda Zhang. 2023. Learning Personalized High Quality Volumetric Head Avatars from Monocular RGB Videos. arXiv:2304.01436 [cs.CV] Ziqian Bai Feitong Tan Zeng Huang Kripasindhu Sarkar Danhang Tang Di Qiu Abhimitra Meka Ruofei Du Mingsong Dou Sergio Orts-Escolano Rohit Pandey Ping Tan Thabo Beeler Sean Fanello and Yinda Zhang. 2023. Learning Personalized High Quality Volumetric Head Avatars from Monocular RGB Videos. arXiv:2304.01436 [cs.CV]

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