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Image Completion by Diffusion Maps and Spectral Relaxation

机译:通过扩散图和光谱弛豫完成图像

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We present a framework for image inpainting that utilizes the diffusion framework approach to spectral dimensionality reduction. We show that on formulating the inpainting problem in the embedding domain, the domain to be inpainted is smoother in general, particularly for the textured images. Thus, the textured images can be inpainted through simple exemplar-based and variational methods. We discuss the properties of the induced smoothness and relate it to the underlying assumptions used in contemporary inpainting schemes. As the diffusion embedding is nonlinear and noninvertible, we propose a novel computational approach to approximate the inverse mapping from the inpainted embedding space to the image domain. We formulate the mapping as a discrete optimization problem, solved through spectral relaxation. The effectiveness of the presented method is exemplified by inpainting real images, where it is shown to compare favorably with contemporary state-of-the-art schemes.
机译:我们提出了一种利用扩散框架方法来降低光谱维数的图像修复框架。我们表明,在嵌入域中提出修复问题时,要修复的域通常更平滑,特别是对于带纹理的图像。因此,可以通过基于示例的简单方法和变分方法来修补纹理图像。我们讨论了感应平滑度的属性,并将其与当代修复方案中使用的基本假设相关联。由于扩散嵌入是非线性且不可逆的,因此我们提出了一种新颖的计算方法来近似从修复的嵌入空间到图像域的逆映射。我们将映射公式化为离散优化问题,可以通过频谱弛豫来解决。所提出的方法的有效性通过真实图像的修复得到了体现,该方法与现代最新方案相比具有优势。

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