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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Patchmatch-Based Robust Stereo Matching Under Radiometric Changes
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Patchmatch-Based Robust Stereo Matching Under Radiometric Changes

机译:基于PatchMatch的强大立体声匹配在辐射变化下

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摘要

In the real world, the two challenges of stereo vision system include a robust system under various radiometric changes and real-time process. To extract depth information from stereoscopic images, this paper proposes Patchmatch-based robust and fast stereo matching under radiometric changes. For this, a cost function was designed and minimized for estimating an accurate disparity map. Specifically, we used a prior probability to minimize the occlusion region and a smoothness term that considers convexity of objects to extract a fine disparity map. For evaluating the performance of the proposed scheme, we used Middlebury stereo data sets with radiometric changes. The experimental result showed that the proposed method outperforms state-of-the-art methods by up to 3.35 percent better and a range of 4.71 - 27.24 times faster result in terms of bad pixel error and processing time, respectively. Therefore, we believe that the proposed scheme can be a useful tool for computer vision-based applications.
机译:在现实世界中,立体声视觉系统的两个挑战包括在各种辐射变化和实时过程下的强大系统。要从立体图像中提取深度信息,本文提出了基于斑块的稳健和快速立体声匹配在辐射变化下。为此,设计了成本函数并最小化以估计准确的差异图。具体地,我们使用了现有概率来最小化遮挡区域和考虑物体凸起以提取精细视差图的平滑度术语。为了评估所提出的方案的性能,我们使用具有辐射算法的嗜脚步立体声数据集。实验结果表明,所提出的方法优于最先进的方法,优于3.35%,速度较好,范围为4.71-27.24倍,分别对像素误差和处理时间的较差而产生。因此,我们认为,所提出的方案可以是基于计算机视觉应用的有用工具。

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