基于立体匹配和扫描线优化的重访引导图像滤波改进视差估计

G. Kordelas, D. Alexiadis, P. Daras, E. Izquierdo
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引用次数: 3

摘要

本文对用于立体匹配的扫描线优化进行了研究。为了提高半全局技术的性能,引入了一种新的检测深度不连续的准则。该准则是根据基于均值偏移的图像分割结果定义的。此外,这项工作提出了使用像素不相似性度量来计算成本项,然后将其提供给引导图像滤波方法来估计初始成本体积。该算法在在线Middlebury立体评价基准的四幅图像上进行了测试。此外,它是测试了27额外的米德尔伯里立体声对全面评估其性能。扩展比较验证了该工作的有效性。
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Revisiting guided image filter based stereo matching and scanline optimization for improved disparity estimation
In this paper the scanline optimization used for stereo matching, is revisited. In order to improve the performance of this semi-global technique, a new criterion to check depth discontinuity, is introduced. This criterion is defined according to the mean-shift-based image segmentation result. Additionally, this work proposes the employment of a pixel dissimilarity metric for the computation of the cost term, which is then provided to the guided image filter approach to estimate the initial cost volume. The algorithm is tested on the four images of the online Middlebury stereo evaluation benchmark. Moreover, it is tested on 27 additional Middlebury stereo pairs for assessing thoroughly its performance. The extended comparison verifies the efficiency of this work.
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