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Face Recognition Based on Geodesic Preserving Projection Algorithm with 3D Morphable Model

机译:基于3D可变形模型的大地保持投影算法的人脸识别

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A novel nonlinear face recognition method named GPPface is proposed in this paper. GPPface is based on nonlinear dimensionality reduction algorithm, geodesic preserving projection (GPP). As face images are regarded to be embedded in a nonlinear space, GPP is presented to nonlinearly map high-dimensional face images to low-dimensional feature space. GPP overcomes the weaknesses of traditional linear and nonlinear dimensionality reduction algorithms, well preserves the intrinsic structure of the manifold and can fast and efficiently map new sample point to feature space. To recover space structure of face images and tackle small sample size problem, 3D morphable model is developed to derive multiple images of a person from a single image. Experimental results on ORL and PIE face databases show that our method makes impressive performance improvement compared with conventional face recognition methods
机译:提出了一种新的非线性人脸识别方法,称为GPPface。 GPPface基于非线性降维算法,测地线保留投影(GPP)。由于面部图像被认为是嵌入在非线性空间中,因此提出了GPP以将高维面部图像非线性映射到低维特征空间。 GPP克服了传统的线性和非线性降维算法的缺点,很好地保留了流形的固有结构,并且可以快速有效地将新的采样点映射到特征空间。为了恢复人脸图像的空间结构并解决小样本量问题,开发了3D可变形模型以从单个图像导出一个人的多个图像。在ORL和PIE人脸数据库上的实验结果表明,与传统人脸识别方法相比,我们的方法在性能上有了显着提高

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