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Multi-scale dilated convolution of convolutional neural network for image denoising

机译:卷积神经网络的多尺度扩张卷积,用于图像去噪

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摘要

Convolutional Neural Network has achieved great success in image denoising. The conventional methods usually sense those beyond scope contextual info at the expense of the receptive filed shrinking, which easily lead to multiple limitations. In this paper, we have proposed a concise and efficient convolutional neural network naming Multi-scale Dilated Convolution of Convolutional Neural Network (MsDC), which attempt to utilize the newly designed multi-scale dilated convolution strategy to handle the above mentioned obstinate limitation. The proposed multi-scale dilated convolution module uses the dilated filters to systematically aggregate multi-scale contextual information without reducing the receptive field. The behind rationale of our method is based on the phenomenon that the dilated convolution can effectively expand the corresponding receptive field while conserving those valuable contextual information. Meanwhile, we also utilize residual learning method to learn the residuals directly to speed up the learning procedur. Compared to the state-of-the-art methods, the results have suggested that our method can remove image noise more effectively and efficiently. Our MsDC code can be download at https://github.com/doctorwgd/MsDC.
机译:卷积神经网络在图像去噪取得了巨大成功。传统方法通常感觉到超出范围的范围上下文信息,以牺牲接受档的收缩,这容易导致多个限制。在本文中,我们提出了一种简洁有效的卷积神经网络命名多级扩张卷积卷积的卷积神经网络(MSDC),该卷积神经网络(MSDC)试图利用新设计的多尺度扩张的卷积策略来处理上述顽固限制。所提出的多尺度扩张的卷积模块使用扩张的滤波器来系统地聚合多尺度上下文信息而不减少接收领域。我们的方法的基本原理基于扩张卷积可以有效地扩展相应的接受领域的现象,同时节省这些有价值的上下文信息。同时,我们还利用残余学习方法直接学习残差以加快学习程序。与最先进的方法相比,结果表明我们的方法可以更有效且有效地去除图像噪声。我们的MSDC代码可以在https://github.com/doctorwgd/msdc下载。

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