Affiliation:
1. City University of Hong Kong
2. South China University of Technology
3. Tencent AI Lab
4. University of Science and Technology of China
Abstract
We propose a two-stage method for face hallucination. First, we generate facial components of the input image using CNNs. These components represent the basic facial structures. Second, we synthesize fine-grained facial structures from high resolution training images. The details of these structures are transferred into facial components for enhancement. Therefore, we generate facial components to approximate ground truth global appearance in the first stage and enhance them through recovering details in the second stage. The experiments demonstrate that our method performs favorably against state-of-the-art methods.
Publisher
International Joint Conferences on Artificial Intelligence Organization
Cited by
33 articles.
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