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Resolution-Adaptive Face Alignment with Head Pose Correction

机译:具有头部姿势校正功能的分辨率自适应面部对齐

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Faces often appear very small and oriented in surveillance videos because of the need of wide fields of view and typically a large distance between the cameras and the scene. Both low resolution and side-view faces make tasks such as face recognition difficult. As a result, face hallucination or super-resolution techniques of face images are generally needed, which has become a thriving research field. However, most existing methods assume face images have been well aligned into some canonical form (i.e. frontal, symmetric). Therefore, face alignment, especially for low-resolution face images, is a key and first step to the success of many face applications. In this paper, we propose an auto alignment approach for face images at different resolution, which consist of two fundamental steps: 1) To find the locations of facial landmarks or feature points (i.e. eyes, nose, and etc.) even for very low resolution faces; 2) To estimate and correct head poses based on the landmark locations and a 3D reference face model. The effectiveness of this method is shown by the aligned face images and the improved face recognition score on released data sets.
机译:由于需要宽阔的视野,而且摄像头和场景之间的距离通常很大,因此在监控视频中,人脸通常显得很小且朝向不一。低分辨率和侧视面部都使诸如面部识别之类的任务变得困难。结果,通常需要面部幻觉或面部图像的超分辨率技术,这已经成为蓬勃发展的研究领域。但是,大多数现有方法都假定脸部图像已很好地对齐为某种规范形式(即正面,对称)。因此,面部对准,特别是对于低分辨率的面部图像,是许多面部应用成功的关键和第一步。在本文中,我们提出了一种针对不同分辨率的人脸图像的自动对齐方法,该方法包括两个基本步骤:1)即使在非常低的人脸位置,也要查找人脸标志或特征点(即眼睛,鼻子等)的位置分辨率的面孔; 2)根据地标位置和3D参考面部模型估算并校正头部姿势。对齐的面部图像和已发布数据集上改进的面部识别评分显示了该方法的有效性。

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