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A coupled encoder-decoder network for joint face detection and landmark localization

机译:耦合编码器/解码器网络,用于联合人脸检测和界标定位

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摘要

Face detection and landmark localization have been extensively investigated and are the prerequisite for many face related applications, such as face recognition and 3D face reconstruction. Most existing methods address only one of the two problems. In this paper, we propose a coupled encoder-decoder network to jointly detect faces and localize facial key points. The encoder and decoder generate response maps for facial landmark localization. Moreover, we observe that the intermediate feature maps from the encoder and decoder represent facial regions, which motivates us to build a unified framework for multi-scale cascaded face detection by coupling the feature maps. Experiments on face detection using two public benchmarks show improved results compared to the existing methods. They also demonstrate that face detection as a pre-processing step leads to increased robustness in face recognition. Finally, our experiments show that the landmark localization accuracy is consistently better than the state-of-the-art on three face-in-the-wild databases. (C) 2018 Published by Elsevier B.V.
机译:人脸检测和界标定位已被广泛研究,并且是许多人脸相关应用(如人脸识别和3D人脸重建)的前提。大多数现有方法仅解决两个问题之一。在本文中,我们提出了一个耦合的编码器-解码器网络,以共同检测面部并定位面部关键点。编码器和解码器生成用于面部界标定位的响应图。此外,我们观察到来自编码器和解码器的中间特征图代表面部区域,这促使我们通过耦合特征图来构建用于多尺度级联人脸检测的统一框架。使用两个公开基准进行人脸检测的实验显示,与现有方法相比,结果有所改善。他们还证明了将面部检测作为预处理步骤可以提高面部识别的鲁棒性。最后,我们的实验表明,在三个面对面的野生数据库上,地标定位精度始终优于最新技术。 (C)2018由Elsevier B.V.发布

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