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A hardware friendly Stereo Match refinement algorithm using disparity gradient based region growth method

机译:一种基于视差梯度的区域增长方法的硬件友好的立体匹配细化算法

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摘要

Stereo Match is one of the key fields in computer vision. Although many dense two-frame stereo algorithms have been developed in this domain, few utilize cross check and disparity gradient based refinement method. This paper proposes: (1) Cross check method using two generated disparity maps based on left and right original images. (2) A novel occluded and low-texture region growth method based on disparity gradient. (3) Disparity voting method to reduce random error. These practical methods are hardware friendly and can notably improve match accuracy as well as lower the computational and space complexity. The proposed algorithm reaches the highest match accuracy for HR images among existing local methods, attesting to its outstanding effectiveness.
机译:立体匹配是计算机视觉的关键领域之一。尽管在该领域已经开发了许多密集的两帧立体算法,但是很少有利用基于交叉检查和视差梯度的细化方法。本文提出:(1)基于左右原始图像,使用两个生成的视差图进行交叉检查的方法。 (2)一种新的基于视差梯度的遮挡低纹理区域增长方法。 (3)视差表决方法,以减少随机误差。这些实用的方法对硬件友好,可以显着提高匹配精度,并降低计算和空间复杂度。所提出的算法在现有的局部方法中达到了HR图像的最高匹配精度,证明了其出色的有效性。

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