Gaussian Vector: An Efficient Solution for Facial Landmark Detection

October 03, 2020 ยท Declared Dead ยท ๐Ÿ› Asian Conference on Computer Vision

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Authors Yilin Xiong, Zijian Zhou, Yuhao Dou, Zhizhong Su arXiv ID 2010.01318 Category cs.CV: Computer Vision Citations 15 Venue Asian Conference on Computer Vision Last Checked 3 months ago
Abstract
Significant progress has been made in facial landmark detection with the development of Convolutional Neural Networks. The widely-used algorithms can be classified into coordinate regression methods and heatmap based methods. However, the former loses spatial information, resulting in poor performance while the latter suffers from large output size or high post-processing complexity. This paper proposes a new solution, Gaussian Vector, to preserve the spatial information as well as reduce the output size and simplify the post-processing. Our method provides novel vector supervision and introduces Band Pooling Module to convert heatmap into a pair of vectors for each landmark. This is a plug-and-play component which is simple and effective. Moreover, Beyond Box Strategy is proposed to handle the landmarks out of the face bounding box. We evaluate our method on 300W, COFW, WFLW and JD-landmark. That the results significantly surpass previous works demonstrates the effectiveness of our approach.
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