Recent Progress of Face Image Synthesis

June 15, 2017 Β· Declared Dead Β· πŸ› Asian Conference on Pattern Recognition

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Authors Zhihe Lu, Zhihang Li, Jie Cao, Ran He, Zhenan Sun arXiv ID 1706.04717 Category cs.CV: Computer Vision Citations 35 Venue Asian Conference on Pattern Recognition Last Checked 6 months ago
Abstract
Face synthesis has been a fascinating yet challenging problem in computer vision and machine learning. Its main research effort is to design algorithms to generate photo-realistic face images via given semantic domain. It has been a crucial prepossessing step of main-stream face recognition approaches and an excellent test of AI ability to use complicated probability distributions. In this paper, we provide a comprehensive review of typical face synthesis works that involve traditional methods as well as advanced deep learning approaches. Particularly, Generative Adversarial Net (GAN) is highlighted to generate photo-realistic and identity preserving results. Furthermore, the public available databases and evaluation metrics are introduced in details. We end the review with discussing unsolved difficulties and promising directions for future research.
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