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Extended Patch Prioritization for Depth Filling Within Constrained Exemplar-Based RGB-D Image Completion

机译:深度填充的扩展补丁优先级在约束的基于示例的RGB-D图像完成中

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We address the problem of hole filling in depth images, obtained from either active or stereo sensing, for the purposes of depth image completion in an exemplar-based framework. Most existing exemplar-based inpainting techniques, designed for color image completion, do not perform well on depth information with object boundaries obstructed or surrounded by missing regions. In the proposed method, using both color (RGB) and depth (D) information available from a common-place RGB-D image, we explicitly modify the patch prioritization term utilized for target patch ordering to facilitate improved propagation of complex texture and linear structures within depth completion. Furthermore, the query space in the source region is constrained to increase the efficiency of the approach compared to other exemplar-driven methods. Evaluations demonstrate the efficacy of the proposed method compared to other contemporary completion techniques.
机译:为了在基于示例性的框架中,我们解决了从主动或立体声感测获得的深度图像中填充的孔的问题。最现有的基于示例性的基于示例性的初始化技术,用于彩色图像完成,在深度信息上不执行良好,其对象边界被丢失或被丢失的区域包围。在所提出的方法中,使用从共同放置RGB-D图像可获得的颜色(RGB)和深度(D)信息,我们明确修改用于目标补丁排序的补丁优先级术语,以便于改进复杂纹理和线性结构的传播在深度完成范围内。此外,与其他示例驱动的方法相比,源区中的查询空间被约束以提高方法的效率。评估证明了与其他当代完井技术相比的方法的功效。

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