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APB2FaceV2

Python 3.7 PyTorch 1.5.1

Official pytorch implementation of the paper: "APB2FACEV2: REAL-TIME AUDIO-GUIDED MULTI-FACE REENACTMENT".

Using the Code

Requirements

This code has been developed under Python3.7, PyTorch 1.5.1 and CUDA 10.1 on Ubuntu 16.04.

Datasets in the paper

Download AnnVI dataset from Google Drive or Baidu Cloud (Key:str3) to /media/datasets/AnnVI.

Train

python3 train.py --name AnnVI --data AnnVI --data_root DATASET_PATH --img_size 256 --mode train --trainer l2face --gan_mode lsgan --gpus 0 --batch_size 16

Results are stored in checkpoints/xxx

Test

python3 test.py 

Results are stored in checkpoints/AnnVI-Big/results

Citation

@article{zhang2021real,
  title={Real-Time Audio-Guided Multi-Face Reenactment},
  author={Zhang, Jiangning and Zeng, Xianfang and Xu, Chao and Liu, Yong and Li, Hongliang},
  journal={IEEE Signal Processing Letters},
  year={2021},
  publisher={IEEE}
}

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An improved version of APB2Face: Real-Time Audio-Guided Multi-Face Reenactment

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