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3D Model Based Face Recognition Using Inverse Compositional Image Alignment

机译:基于3D模型的逆构图图像人脸识别

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3D model based approach for face recognition has been investigated as a robust solution for pose and illumination variation. Since a generative 3D face model consists of a large number of vertices, a 3D model based face recognition system is generally inefficient in computation time and complexity. In this paper we propose a novel 3D face representation algorithm based on pixel to vertex map (PVM) to reduce number of vertices. We explore shape and texture coefficient vectors of the model by fitting it to an input face using inverse compositional image alignment (ICIA) to evaluate face recognition performance. Experimental results show that proposed face recognition system is efficient in computation time while maintaining reasonable accuracy.
机译:已经研究了基于3D模型的人脸识别方法,作为姿势和照明变化的可靠解决方案。由于生成的3D人脸模型包含大量顶点,因此基于3D模型的人脸识别系统通常在计算时间和复杂度方面效率低下。在本文中,我们提出了一种新颖的基于像素到顶点映射(PVM)的3D人脸表示算法,以减少顶点数量。我们通过使用逆合成图像对齐(ICIA)将模型拟合到输入人脸来评估人脸识别性能,从而探索模型的形状和纹理系数向量。实验结果表明,所提出的人脸识别系统在保持合理精度的同时,在计算时间上是有效的。

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