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New 3D face matching technique for 3D model based face recognition

机译:用于基于3D模型的人脸识别的新3D人脸匹配技术

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摘要

Various methods have been used for face recognition over the past few years. The motivation for the continuous work on face recognition is to obtain a method which is able to recognize different angles and poses of faces accurately and efficiently. Currently, faces are identified using either two dimensional (2D) images or three dimensional (3D) range images. In this paper, a face recognition method that is able to recognize faces at various angles is proposed. This method uses only the three dimensional range images for matching. Firstly, surface matching, which consists of calculating the surface distance of the probe face with the faces in the database, is performed on the aligned face curves. The top ten candidates from the surface matching are then further processed using Principal Component Analysis (PCA) followed by Linear Discriminant Analysis (LDA). The database candidate with the lowest Euclidean distance value will be identified as the probe face. When compared with the multiview method of face recognition, which uses two dimensional images, the proposed method is able to obtain higher recognition rates. The method proposed is a fully automatic face recognition system.
机译:在过去的几年中,已经使用了各种方法来进行面部识别。继续进行面部识别的动机是获得一种能够准确且有效地识别面部的不同角度和姿势的方法。当前,使用二维(2D)图像或三维(3D)范围图像来识别面部。在本文中,提出了一种能够以各种角度识别面部的面部识别方法。该方法仅使用三维范围图像进行匹配。首先,在对齐的面部曲线上执行表面匹配,该表面匹配包括计算探针面与数据库中的面的表面距离。然后使用主成分分析(PCA)和线性判别分析(LDA)对表面匹配的前十个候选对象进行进一步处理。具有最低欧氏距离值的数据库候选者将被识别为探测面。与使用二维图像的人脸识别的多视角方法相比,该方法能够获得更高的识别率。所提出的方法是一种全自动面部识别系统。

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