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High ISO JPEG Image Denoising by Deep Fusion of Collaborative and Convolutional Filtering

机译:通过协同和卷积滤波的深度融合实现高ISO JPEG图像降噪

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Capturing images at high ISO modes will introduce much realistic noise, which is difficult to be removed by traditional denoising methods. In this paper, we propose a novel denoising method for high ISO JPEG images via deep fusion of collaborative and convolutional filtering. Collaborative filtering explores the non-local similarity of natural images, while convolutional filtering takes advantage of the large capacity of convolutional neural networks (CNNs) to infer noise from noisy images. We observe that the noise variance map of a high ISO JPEG image is spatial-dependent and has a Bayer-like pattern. Therefore, we introduce the Bayer pattern prior in our noise estimation and collaborative filtering stages. Since collaborative filtering is good at recovering repeatable structures and convolutional filtering is good at recovering irregular patterns and removing noise in flat regions, we propose to fuse the strengths of the two methods via deep CNN. The experimental results demonstrate that our method outperforms the state-of-the-art realistic noise removal methods for a wide variety of testing images in both subjective and objective measurements. In addition, we construct a dataset with noisy and clean image pairs for high ISO JPEG images to facilitate research on this topic.
机译:在高ISO模式下捕获图像会引入许多逼真的噪点,而传统的降噪方法很难消除这些噪点。在本文中,我们通过协作和卷积滤波的深度融合,提出了一种用于高ISO JPEG图像的新型去噪方法。协作过滤探索了自然图像的非局部相似性,而卷积过滤则利用了卷积神经网络(CNN)的大容量来从噪声图像中推断出噪声。我们观察到高ISO JPEG图像的噪声方差图与空间有关,并且具有类似拜耳的图案。因此,我们在噪声估计和协作滤波阶段先引入Bayer模式。由于协作过滤擅长恢复可重复的结构,而卷积过滤擅长恢复不规则模式并消除平坦区域中的噪声,因此我们建议通过深层CNN融合这两种方法的优势。实验结果表明,对于主观和客观测量中的各种测试图像,我们的方法均优于最新的现实噪声消除方法。此外,我们为高ISO JPEG图像构建了一个带有噪点和干净图像对的数据集,以促进对此主题的研究。

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