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Deep Learning-based Moiré Pattern Removal from a Single Image: A Survey and Comparative Study

机译:从单个图像中基于深度学习的莫尔条纹去除:一项调查和比较研究

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Moiré pattern in a single image is common in image visual quality degradation induced by frequency aliasing between cameras and monitors when taking a screen-shot photo. It is mainly resulted from the interference between the pixel grids of the camera sensor and the device screen. However, removal of the Moiré patterns is challenging based on the complex frequency distribution and imbalanced magnitude in color channels. Only a few studies in the literature focused on the solution of Moiré pattern removal from a single image. Traditional studies usually treated the problem as an image denoising problem and applied some filtering or signal decomposition operations based on some image priors (e.g., sparsity). Relying on the rapid development of the deep learning techniques, some deep learning-based approaches of Moiré pattern removal have been presented recently. This paper presents a brief survey and comparative study for the recent deep learning-based research works on Moiré pattern removal and discusses possible further research directions.
机译:拍摄屏幕快照时,相机和监视器之间的频率混叠会导致图像视觉质量下降,因此单幅图像中的莫尔条纹会很常见。这主要是由于相机传感器的像素网格与设备屏幕之间的干扰所致。然而,基于复杂的频率分布和色彩通道中幅度的不平衡,去除莫尔条纹非常具有挑战性。文献中只有很少的研究集中于从单个图像去除莫尔条纹的解决方案。传统研究通常将问题视为图像降噪问题,并基于某些图像先验(例如稀疏度)应用了一些滤波或信号分解操作。依靠深度​​学习技术的快速发展,最近提出了一些基于深度学习的莫尔图案去除方法。本文对基于深度学习的摩尔纹去除技术的研究工作进行了简要的调查和比较研究,并讨论了可能的进一步研究方向。

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