使用先验信息的宽基线图像配准

A. Roy-Chowdhury, R. Chellappa, T. Keaton
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引用次数: 2

摘要

建立从不同视角拍摄的同一场景的两幅图像特征之间的对应关系是图像处理和计算机视觉中的一个具有挑战性的问题。然而,它的解决方案在许多应用中是重要的一步,如宽基线立体,3D模型对齐,全景视图的创建等。在本文中,我们提出了一种从不同视角获得的两幅人脸图像的配准技术。我们证明了从不同人脸的视频序列中获得的关于人脸一般特征的先验信息可以用于设计鲁棒的对应算法。该方法通过匹配面部不同特征的二维形状来工作。用Sinkhorn归一化方法导出了一个双随机矩阵,表示特征之间匹配的概率。最终的对应关系是通过最小化两个集合中整个特征星座之间匹配的误差概率来获得的,从而考虑到特征的全局空间配置。该方法用于从部分表示创建人脸的整体3D模型。虽然本文主要关注的是人脸,但该算法也可以用于其他物体,只需稍加修改。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wide baseline image registration using prior information
Establishing correspondence between features in two images of the same scene taken from different viewing angles in a challenging problem in image processing and computer vision. However, its solution is an important step in many applications like wide baseline stereo, 3D model alignment, creation of panoramic views etc. In this paper, we propose a technique for registration of two images of a face obtained from different viewing angles. We show that prior information about the general characteristics of a face obtained from video sequences of different faces can be used to design a robust correspondence algorithm. The method works by matching 2D shapes of the different features of the face. A doubly stochastic matrix, representing the probability of match between the features, is derived using the Sinkhorn normalization procedure. The final correspondence is obtained by minimizing the probability of error of a match between the entire constellations of features in the two sets, thus taking into account the global spatial configuration of the features. The method is applied for creating holistic 3D models of a face from partial representations. Although this paper focuses primarily on faces, the algorithm can also be used for other objects with small modifications.
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