不同光照条件下基于直方图的立体匹配

Il-Lyong Jung, Jae-Young Sim, Chang-Su Kim
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引用次数: 2

摘要

提出了一种基于直方图的不同光照条件下立体图像匹配算法。图像的累积直方图表示相对像素亮度的等级,对光照变化具有鲁棒性。因此,我们根据立体图像累积直方图的相似度来设计匹配代价。作为一种可选模式,该算法可以分别评估前景和背景的直方图,以减轻遮挡伪影。为了确定每个像素的视差,该算法基于相邻像素的颜色相似度和几何接近度自适应地聚合匹配成本。然后,它使用更可靠的非遮挡像素的差异来细化遮挡像素的虚假差异。实验结果表明,在不同光照条件下,该算法能获得比传统方法更高质量的视差图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Histogram-Based stereo matching under varying illumination conditions
A histogram-based matching algorithm for stereo images captured under different illumination conditions is proposed in this work. The cumulative histogram of an image represents the ranks of relative pixel brightness, which are robust to illumination changes. Therefore, we design the matching cost based on the similarity of the cumulative histograms of stereo images. As an optional mode, the proposed algorithm can evaluate the histograms for foreground objects and the background separately to alleviate occlusion artifacts. To determine the disparity of each pixel, the proposed algorithm adaptively aggregates matching costs based on the color similarity and the geometric proximity of neighboring pixels. Then, it refines false disparities at occluded pixels using more reliable disparities of non-occluded pixels. Experimental results demonstrate that the proposed algorithm provides higher quality disparity maps than the conventional methods under varying illumination conditions.
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