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A fast and simple gradient function guided filling order prioritization for exemplar-based color image inpainting

机译:基于示例的彩色图像修复的快速简单的梯度函数指导填充顺序优先

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Image inpainting is the art of recovering the original image from images which are generally incomplete due to various factors, including degradation due to ageing, damage due to wear and tear and missing image details due to occlusion. In such situations, there is a need to predict the missing image information without introducing undesirable artifacts. Original contribution in this direction is due to a seminal paper by Criminisi et al. This has led to a number of novel contributions in terms of patch filling prioritization and associated metrics to measure colour and structure. In this paper, we propose a fast and simple technique based on a novel gradient function and its generalization via fractional derivative to evaluate the filling order prioritization. Results demonstrate superior and robust performance over all the recent advances quoted in the literature.
机译:图像修复是从由于各种因素而通常不完整的图像中恢复原始图像的技术,这些因素包括由于老化而引起的劣化,由于磨损引起的损坏以及由于遮挡导致的图像细节丢失。在这种情况下,需要在不引入不希望的伪像的情况下预测丢失的图像信息。这方面的最初贡献归功于Criminisi等人的开创性论文。这导致在补丁填充优先级划分和用于度量颜色和结构的相关指标方面做出了许多新颖的贡献。在本文中,我们提出了一种基于新颖的梯度函数及其通过分数导数进行泛化的快速简单技术,以评估填充顺序的优先级。结果表明,其性能优于文献中引用的所有最新进展。

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