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A census-based stereo vision algorithm using modified Semi-Global Matching and plane fitting to improve matching quality

机译:一种基于人口普查的立体视觉算法,使用改进的半全局匹配和平面拟合来提高匹配质量

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This paper introduces a new segmentation-based approach for disparity optimization in stereo vision. The main contribution is a significant enhancement of the matching quality at occlusions and textureless areas by segmenting either the left color image or the calculated texture image. The local cost calculation is done with a Census-based correlation method and is compared with standard sum of absolute differences. The confidence of a match is measured and only non-confident or non-textured pixels are estimated by calculating a disparity plane for the corresponding segment. The quality of the local optimized matches is increased by a modified Semi-Global Matching (SGM) step with subpixel accuracy. In contrast to standard SGM, not the whole image is used for disparity optimization but horizontal stripes of the image. It is shown that this modification significantly reduces the memory consumption by nearly constant matching quality and thus enables embedded realization. Using the Middlebury ranking as evaluation criterion, it is shown that the proposed algorithm performs well in comparison to the pure Census correlation. It reaches a top ten rank if subpixel accuracy is supposed. Furthermore, the matching quality of the algorithm, especially of the texture-based plane fitting, is shown on two real-world scenes where a significant enhancement could be achieved.
机译:本文介绍了一种新的基于分割的立体视觉视差优化方法。主要贡献是通过分割左侧彩色图像或计算出的纹理图像,显着提高了遮挡和无纹理区域的匹配质量。本地成本计算是使用基于人口普查的相关方法进行的,并与绝对差的标准和进行比较。通过计算对应段的视差平面,测量匹配的置信度,并且仅估计非置信或无纹理像素。通过改进的半全局匹配(SGM)步骤以亚像素精度提高了局部优化匹配的质量。与标准SGM相比,不是将整个图像用于视差优化,而是使用图像的水平条纹。结果表明,该修改通过几乎恒定的匹配质量显着降低了内存消耗,从而实现了嵌入式实现。使用Middlebury等级作为评估标准,表明与纯人口普查相关性相比,该算法具有良好的性能。如果假设亚像素精度,它将达到前十名。此外,该算法的匹配质量,尤其是基于纹理的平面拟合的匹配质量在两个可以实现显着增强的真实场景中显示。

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