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3-D Geometry Enhanced Superpixels for RGB-D Data

机译:用于RGB-D数据的3D几何增强型超像素

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This paper introduces a novel 3-D geometry enhanced superpixels for RGB-D data. First, we reconstruct the 3-D geometry of the scene by projecting the depth map into 3-D coordinates. Then, a distance metric for superpixel clustering is constructed using 3-D geometry and color information. Finally, pixels are iteratively clustered into superpixels using the proposed distance metric. The proposed method is able to distinguish objects in similar colors due to the introduced 3-D geometry. The oversegmentation results on RGB-D pairs in the Middle-bury datasets demonstrate that our approach shows better performance than other three state-of-the-art superpixel methods. The proposed superpixels are also evaluated in the application of segmentation, and we achieve the best segmentation results compared with three state-of-the-art segmentation methods.
机译:本文介绍了一种用于RGB-D数据的新型3-D几何增强超像素。首先,我们通过将深度图投影到3-D坐标中来重建场景的3-D几何形状。然后,使用3-D几何形状和颜色信息构造用于超像素聚类的距离度量。最后,使用提出的距离度量将像素迭代地聚集成超级像素。由于引入了3-D几何形状,因此所提出的方法能够区分相似颜色的对象。 Middle-bury数据集中RGB-D对的过度分割结果表明,我们的方法比其他三种最新的超像素方法表现出更好的性能。提出的超像素在分割应用中也得到了评估,与三种最新的分割方法相比,我们获得了最佳的分割结果。

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