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具有辐射差异的图像上立体匹配成本的评估。

Evaluation of stereo matching costs on images with radiometric differences.

作者信息

Hirschmüller Heiko, Scharstein Daniel

机构信息

DLR (German Aerospace Center), Institute of Robotics and Mechatronics, Wessling, Germany.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2009 Sep;31(9):1582-99. doi: 10.1109/TPAMI.2008.221.

Abstract

Stereo correspondence methods rely on matching costs for computing the similarity of image locations. We evaluate the insensitivity of different costs for passive binocular stereo methods with respect to radiometric variations of the input images. We consider both pixel-based and window-based variants like the absolute difference, the sampling-insensitive absolute difference, and normalized cross correlation, as well as their zero-mean versions. We also consider filters like LoG, mean, and bilateral background subtraction (BilSub) and nonparametric measures like Rank, SoftRank, Census, and Ordinal. Finally, hierarchical mutual information (HMI) is considered as pixelwise cost. Using stereo data sets with ground-truth disparities taken under controlled changes of exposure and lighting, we evaluate the costs with a local, a semiglobal, and a global stereo method. We measure the performance of all costs in the presence of simulated and real radiometric differences, including exposure differences, vignetting, varying lighting, and noise. Overall, the ranking of methods across all data sets and experiments appears to be consistent. Among the best costs are BilSub, which performs consistently very well for low radiometric differences; HMI, which is slightly better as pixelwise matching cost in some cases and for strong image noise; and Census, which showed the best and most robust overall performance.

摘要

立体匹配方法依靠匹配代价来计算图像位置的相似度。我们评估了不同代价对于被动双目立体方法在输入图像辐射度变化方面的不敏感性。我们考虑了基于像素和基于窗口的变体,如绝对差、采样不敏感绝对差和归一化互相关,以及它们的零均值版本。我们还考虑了诸如拉普拉斯高斯滤波器(LoG)、均值滤波器和双边背景减法(BilSub)等滤波器,以及诸如秩(Rank)、软秩(SoftRank)、人口普查(Census)和序数(Ordinal)等非参数度量。最后,分层互信息(HMI)被视为逐像素代价。使用在曝光和光照的受控变化下获取的具有地面真值视差的立体数据集,我们用局部、半全局和全局立体方法评估这些代价。我们在存在模拟和真实辐射度差异(包括曝光差异、渐晕、光照变化和噪声)的情况下测量所有代价的性能。总体而言,在所有数据集和实验中,方法的排名似乎是一致的。表现最佳的代价包括BilSub,它在低辐射度差异时始终表现出色;HMI,在某些情况下作为逐像素匹配代价以及对于强图像噪声时略胜一筹;以及人口普查(Census),它展现出最佳且最稳健的总体性能。

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