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Fully automatic face recognition from 3D videos

机译:通过3D视频实现全自动人脸识别

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Almost all of the existing research on 3D face recognition is based on static 3D images. 3D videos are believed to provide more information in terms of both the shape as well as the dynamics of an individual's face. This paper presents a system which exploits the spatiotemporal information in 3D videos for the task of face recognition. An algorithm for automatic normalization of raw 3D videos is also given. After the detection of the nose tip, all meshes of the 3D video are cropped and uniformly sampled to form range videos. Spatiotemporal Local Binary Pattern (LBP) descriptors are used for feature extraction from the range videos. For classification, a linear multiclass Support Vector Machine (SVM) is used. The system is trained on videos of a person with different facial expressions and tested on a video with new facial expression. Experimental results on the largest currently available 3D video database, BU 4DFE, show a high recognition rate of 92.68%.
机译:几乎所有有关3D人脸识别的现有研究都基于静态3D图像。人们认为3D视频可以提供有关个人脸部形状和动态的更多信息。本文提出了一种利用3D视频中的时空信息进行人脸识别的系统。还提供了一种用于原始3D视频自动归一化的算法。在检测到鼻尖之后,将3D视频的所有网格都裁剪并均匀采样以形成距离视频。时空局部二进制模式(LBP)描述符用于从范围视频中提取特征。为了进行分类,使用了线性多类支持向量机(SVM)。该系统在具有不同面部表情的人的视频上训练,并在具有新面部表情的视频上进行测试。在目前最大的3D视频数据库BU 4DFE上的实验结果显示,识别率高达92.68%。

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