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An Improved Stereo Matching Algorithm Based on Guided Image Filter

机译:一种改进的基于引导图像滤波器的立体声匹配算法

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Stereo matching is a challenging issue in computer vision field. To address the poor accuracy behavior of local algorithms, we propose an improved stereo matching algorithm based on guided image filter. Firstly, we put forward a combined matching cost by incorporating the absolute difference and improved color census transform (ICCT). Secondly, we use the guided image filter to filter the cost volume, which can aggregate the costs fast and efficiently. Then, in the disparity computing step, we design a modified dynamic programming algorithm, which can weaken the scanning line effect. At last, the final disparity maps are gained after post-processing. The experimental results are evaluated on the Middlebury stereo dataset, showing that our approach can achieve good results both in low texture and depth discontinuity areas with an average error rate of 5.14%.
机译:立体声匹配是计算机视野领域的一个具有挑战性的问题。为了解决当地算法的差的准确性差,我们提出了一种基于引导图像滤波器的改进的立体声匹配算法。首先,我们通过结合绝对差异和改进的彩色人口普查(ICCT)来提出组合的匹配成本。其次,我们使用引导图像过滤器过滤成本量,可以快速有效地聚合成本。然后,在视差计算步骤中,我们设计了一种改进的动态编程算法,可以削弱扫描线效应。最后,后处理后最终的差异图。实验结果在米德间立体声数据集上进行了评估,表明我们的方法可以在低质量和深度不连续区域中获得良好的结果,平均误差率为5.14%。

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