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Stereo matching with space-constrained cost aggregation and segmentation-based disparity refinement

机译:立体匹配与空间受限的成本汇总以及基于细分的差异细化

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Stereo matching is a fundamental topic in computer vision. Usually, stereo matching is mainly composed of four stages: cost computation, cost aggregation, disparity optimization and disparity refinement. In this paper, we propose a novel stereo matching method with space-constrained cost aggregation and segmentation-based disparity refinement. State-of-the-art methods are used for cost aggregation and disparity optimization stages. Three technical contributions are given in this paper. First, applying space-constrained cross-region in cost aggregation stage; second, utilizing both color and disparity information in image segmentation; third, using image segmentation and occlusion region detection to aid disparity refinement. The performance of our platform ranks second in the Middlebury evaluation.
机译:立体匹配是计算机视觉中的基本主题。通常,立体匹配主要包括四个阶段:成本计算,成本汇总,视差优化和视差细化。在本文中,我们提出了一种新的立体匹配方法,该方法具有空间受限的成本聚合和基于分段的视差细化功能。最先进的方法用于成本汇总和差异优化阶段。本文提供了三个技术方面的贡献。首先,在成本汇总阶段应用空间受限的跨区域;其次,在图像分割中同时利用颜色和视差信息。第三,使用图像分割和遮挡区域检测来帮助视差细化。我们平台的性能在Middlebury评估中排名第二。

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