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首页> 外文期刊>Journal of visual communication & image representation >Stereo matching algorithm based on per pixel difference adjustment, iterative guided filter and graph segmentation
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Stereo matching algorithm based on per pixel difference adjustment, iterative guided filter and graph segmentation

机译:基于每个像素差异调整,迭代导引滤波器和图形分割的立体匹配算法

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摘要

Stereo matching process is a difficult and challenging task due to many uncontrollable factors that affect the results. These factors include the radiometric variations and illumination inconsistence. The absolute differences (AD) algorithms work fast, but they are too sensitive to noise and low textured areas. Therefore, this paper proposes an improved algorithm to overcome these limitations. First, the proposed algorithm utilizes per-pixel difference adjustment for AD and gradient matching to reduce the radiometric distortions. Then, both differences are combined with census transform to reduce the effect of illumination variations. Second, a new approach of iterative guided filter is introduced at cost aggregation to preserve and improve the object boundaries. The undirected graph segmentation is used at the last stage in order to smoothen the low textured areas. The experimental results on the standard indoor and outdoor datasets show that the proposed algorithm produces smooth disparity maps and accurate results. (C) 2016 Elsevier Inc. All rights reserved.
机译:由于许多不可控因素会影响结果,因此立体匹配过程是一项艰巨而具有挑战性的任务。这些因素包括辐射度变化和照度不一致。绝对差(AD)算法工作速度很快,但是它们对噪声和低纹理区域过于敏感。因此,本文提出了一种改进的算法来克服这些限制。首先,所提出的算法利用针对AD和梯度匹配的每像素差异调整来减少辐射失真。然后,将这两个差异与普查变换结合起来以减少照明变化的影响。其次,引入了一种新的迭代导引滤波器方法,以成本为代价来保持和改善对象边界。在最后阶段使用无向图分割以平滑低纹理区域。在室内和室外标准数据集上的实验结果表明,该算法能够生成平滑的视差图和准确的结果。 (C)2016 Elsevier Inc.保留所有权利。

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