基于视差空间采样的视差计算新方法

L. Le Sach, K. Atsuta, S. Kondo
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引用次数: 1

摘要

基于图像的三维重建是一个有用且活跃的研究领域。然而,即使使用特殊的硬件,对高分辨率输入图像进行实时计算3D测量也是一个挑战。本文提出了一种新的从粗到精的方法,可以减少立体匹配问题的计算时间。通过对视差空间进行采样并仅在采样位置计算匹配代价来减少时间。从视差空间采样得到的视差图用于将精细图的搜索区域限制在其周围区域。由于视差空间的采样和搜索区域的限制,即使视差搜索范围大大扩大,计算时间也大大减少。本文提出的方法已经在互联网上的多个公共立体图像数据集上进行了测试。实验结果表明,与其他需要在视差空间内计算所有匹配代价的方法相比,该方法可以节省大量的计算时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A New Coarse-To-Fine Method for Disparity Compuation by Sampling Disparity Space
Image-based 3D reconstruction is a useful and active research area. However, it is a challenge to compute 3D measurements in real-time for high resolution input images even if special hardwares are used. This paper proposes a new coarse-to-fine method that can reduce the computation time of the stereo matching problem. The time reduction is done by sampling disparity spaces and computing the matching costs at only the sampled positions. The disparity map that is derived from a sampled disparity space is used to limit the search region for the finer map to its surrounding region. Because of the sampling of disparity spaces and the limitation of the search region, the computation time is reduced dramatically even if the disparity search range is enlarged significantly. The proposed method has been tested with several public stereo image datasets on the Internet. The experimental results indicate that the proposed method can save much of the computation time compared to the other methods that need to compute all of matching costs inside disparity spaces.
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