A New Dataset and Boundary-Attention Semantic Segmentation for Face Parsing
Yinglu Liu, Hailin Shi, Hao Shen, Yue Si, Xiaobo Wang, Tao Mei
Abstract
Face parsing has recently attracted increasing interest due to its numerous application potentials, such as facial make up and facial image generation. In this paper, we make contributions on face parsing task from two aspects. First, we develop a high-efficiency framework for pixel-level face parsing annotating and construct a new large-scale Landmark guided face Parsing dataset (LaPa). It consists of more than 22,000 facial images with abundant variations in expression, pose and occlusion, and each image of LaPa is provided with an 11-category pixel-level label map and 106-point landmarks. The dataset is publicly accessible to the community for boosting the advance of face parsing.1 Second, a simple yet effective Boundary-Attention Semantic Segmentation (BASS) method is proposed for face parsing, which contains a three-branch network with elaborately developed loss functions to fully exploit the boundary information. Extensive experiments on our LaPa benchmark and the public Helen dataset show the superiority of our proposed method.
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Install the CLIlune papers fulltext ae1a6e75-a46f-4bc7-9218-08c510f8a53dCited by top-tier papers13
- Fake it till you make it: face analysis in the wild using synthetic data aloneErroll Wood, Tadas Baltrusaitis, Charlie Hewitt, Sebastian Dziadzio et al.ICCV 2021 · 331 citations
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- Decoupled Multi-task Learning with Cyclical Self-Regulation for Face ParsingQingping Zheng, Jiankang Deng, Zheng Zhu, Ying Li et al.CVPR 2022 · 46 citations
- Adv-Diffusion: Imperceptible Adversarial Face Identity Attack via Latent Diffusion ModelDecheng Liu, Xijun Wang, Chunlei Peng, Nannan Wang et al.AAAI 2024 · 39 citations
- Generalized One-shot Domain Adaptation of Generative Adversarial NetworksZicheng Zhang, Yinglu Liu, Congying Han, Tiande Guo et al.NeurIPS 2022 · 29 citations
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