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Audio-driven High-resolution Seamless Talking Head Video Editing via StyleGAN

Authors :
Su, Jiacheng
Liu, Kunhong
Chen, Liyan
Yao, Junfeng
Liu, Qingsong
Lv, Dongdong
Publication Year :
2024

Abstract

The existing methods for audio-driven talking head video editing have the limitations of poor visual effects. This paper tries to tackle this problem through editing talking face images seamless with different emotions based on two modules: (1) an audio-to-landmark module, consisting of the CrossReconstructed Emotion Disentanglement and an alignment network module. It bridges the gap between speech and facial motions by predicting corresponding emotional landmarks from speech; (2) a landmark-based editing module edits face videos via StyleGAN. It aims to generate the seamless edited video consisting of the emotion and content components from the input audio. Extensive experiments confirm that compared with state-of-the-arts methods, our method provides high-resolution videos with high visual quality.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2407.05577
Document Type :
Working Paper