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Image Inpainting by Adaptive Fusion of Variable Spline Interpolations

机译:可变样条插值自适应融合的图像染色

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There are many methods for image enhancement. Image inpainting is one of them which could be used in reconstruction and restoration of scratch images or editing images by adding or removing objects. According to its application, different algorithmic and learning methods are proposed. In this paper, the focus is on applications, which enhance the old and historical scratched images. For this purpose, we proposed an adaptive spline interpolation. In this method, a different number of neighbors in four directions are considered for each pixel in the lost block. In the previous methods, predicting the lost pixels that are on edges is the problem. To address this problem, we consider horizontal and vertical edge information. If the pixel is located on an edge, then we use the predicted value in that direction. In other situations, irrelevant predicted values are omitted, and the average of rest values is used as the value of the missing pixel. The method evaluates by PSNR and SSIM metrics on the Kodak dataset. The results show improvement in PSNR and SSIM compared to similar procedures. Also, the run time of the proposed method outperforms others.
机译:有许多用于图像增强的方法。图像染色是其中之一,可以通过添加或删除对象来重建和恢复划痕图像或编辑图像。根据其应用,提出了不同的算法和学习方法。在本文中,重点是在应用上,增强旧历史划伤图像。为此目的,我们提出了一种自适应样条插值。在该方法中,针对丢失块中的每个像素考虑四个方向上的不同数量的邻居。在以前的方法中,预测在边缘上的丢失像素是问题。为了解决这个问题,我们考虑水平和垂直边缘信息。如果像素位于边缘上,则我们在该方向上使用预测值。在其他情况下,省略了不相关的预测值,并且将静止值的平均值用作缺失像素的值。该方法在柯达数据集上由PSNR和SSIM度量评估。结果表明,与类似程序相比,PSNR和SSIM的改进。此外,所提出的方法的运行时间优于其他方法。

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