江西理工大学信息工程学院,江西,赣州,341000
[ "罗会兰女,1974年9月生于江西上高.2008年获浙江大学工学博士学位.现为江西理工大学图像处理实验室教授、硕士生导师.主要从事机器学习、模式识别等方面的研究." ]
[ "敖阳男,1996年6月生于江西赣州.2018年进入江西理工大学.在读硕士研究生,研究方向为图像修复." ]
[ "袁璞女,1997年5月生于江西吉安.2018年进入江西理工大学.在读硕士研究生,研究方向为图像修复、显著性目标检测." ]
网络出版:2020-10-25,
纸质出版:2020
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罗会兰, 敖阳, 袁璞. 一种生成对抗网络用于图像修复的方法[J]. 电子学报, 2020,48(10):1891-1898.
LUO Hui-lan, AO Yang, YUAN Pu. Image Inpainting Using Generative Adversarial Networks[J]. Acta Electronica Sinica, 2020, 48(10): 1891-1898.
罗会兰, 敖阳, 袁璞. 一种生成对抗网络用于图像修复的方法[J]. 电子学报, 2020,48(10):1891-1898. DOI: 10.3969/j.issn.0372-2112.2020.10.003.
LUO Hui-lan, AO Yang, YUAN Pu. Image Inpainting Using Generative Adversarial Networks[J]. Acta Electronica Sinica, 2020, 48(10): 1891-1898. DOI: 10.3969/j.issn.0372-2112.2020.10.003.
近年来基于深度学习的图像修复方法相比于传统方法,表现出明显优势,前者能更好的生成视觉上合理的图像结构和纹理.但现有的标准卷积神经网络方法,通常会造成颜色差异过大和图像纹理缺失与失真的问题.本文提出了一种新型图像修复深度网络模型,该模型由两个相互独立的生成对抗式网络模块组成.其中,图像修复网络模块旨在解决图像缺失区域的修复问题,其生成器基于部分卷积网络;图像优化网络模块旨在解决修复后图像存在局部色差的问题,其生成器基于深度残差网络.通过两个网络模块的协同作用,图像的视觉效果与图像质量得到提高.与其他先进方法进行定性和定量比较的实验结果表明,本文提出的方法在图像修复质量上表现更好.
In recent years
deep learning based methods have shown preferable results for the task of inpainting corrupted images.However
the existing standard convolutional neural network approaches often cause problems with excessive color discrepancy
image texture loss and distortion.A deep network based image inpainting model is proposed in this paper
consisting of two generative adversarial network modules.One of the modules is used to inpaint the missing area of the image
where the generator is constituted with partial convolutions.The other module is the image optimization network
which is applied to solve the problem of local chromatic aberration after image restoration
and in which the generator is originated from the depth residual network.These two modules cooperated to improve the visual effect and image quality of inpainted images.Using MOS
SSIM and PSRN as the evaluation criteria
the experimental results of qualitative and quantitative comparisons with other state-of-the-art methods have shown that the proposed model performed better.
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