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Expression-Invariant Face Recognition via 3D Face Reconstruction Using Gabor Filter Bank from a 2D Single Image

机译:通过使用Gabor滤波器BANK从2D单图像进行3D面重建的表达 - 不变性面部识别

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In this paper, a novel method for expression-insensitive face recognition is proposed from only a 2D single image in a gallery including any facial expressions. A 3D Generic Elastic Model (3D GEM) is used to reconstruct a 3D model of each human face in the present database using only a single 2D frontal image with/without facial expressions. Then, the rigid parts of the face are extracted from both the texture and reconstructed depth based on 2D facial land-marks. Afterwards, the Gabor filter bank was applied to the extracted rigid-part of the face to extract the feature vectors from both texture and reconstructed depth images. Finally, by combining 2D and 3D feature vectors, the final feature vectors are generated and classified by the Support Vector Machine (SVM). Favorable outcomes were acquired to handle expression changes on the available image database based on the proposed method compared to several state-of-the-arts in expression-insensitive face recognition.
机译:在本文中,仅从包括任何面部表情的库中的2D单个图像提出了一种表达不敏感面部识别的新方法。 3D通用弹性型号(3D Gem)用于仅使用具有/不带面部表情的单个2D正面图像在本数据库中重建每个人脸的3D模型。然后,面部的刚性部分基于2D面部陆基从纹理和重建深度中提取。之后,将Gabor滤波器组施加到所提取的刚性部分,以从两个纹理和重建深度图像中提取特征向量。最后,通过组合2D和3D特征向量,由支持向量机(SVM)生成和分类最终特征向量。获得了基于所提出的方法处理可用图像数据库对可用图像数据库的表达变化的有利结果,而表达式不敏感面部识别的若干先进的方法相比。

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