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An improved fusion method of infrared and visible images based on fusionGAN
Yao, Zhiqiang1,2; Guo, Huinan2; Ren, Long2
2021
会议名称13th International Conference on Digital Image Processing, ICDIP 2021
会议录名称Thirteenth International Conference on Digital Image Processing, ICDIP 2021
卷号11878
会议日期2021-05-20
会议地点Singapore, Singapore
出版者SPIE
产权排序1
摘要

Convolutional neural network is widely used in image fusion. However, the deep learning framework is only applied in some part of the fusion process in most existing methods. To generate a full end-to-end image fusion pipeline, a Y-shaped Generator model based on Generative Adversarial Network for infrared and visible image fusion is proposed. The idea of this method is to establish an adversarial game between the generator and the discriminator. The generator consisting of two Pyramid networks and three convolutional layers works as an autoencoder to improve the characteristic information of the fused images. As for the discriminator, it adopts a network structure similar to the Visual Geometry Group (VGG) network. The loss function uses the ratio loss to control the trade-off among generation loss and reconstruction loss. Results on publicly available datasets demonstrate that our method can improve the quality of detail information and sharpen the edge of infrared targets. © 2021 SPIE

关键词Image fusion FusionGAN Pyramid network Residual network Infrared image Visible image
作者部门飞行器光学成像与测量技术研究室
DOI10.1117/12.2599559
收录类别EI ; CPCI
ISBN号9781510646001
语种英语
ISSN号0277786X;1996756X
WOS记录号WOS:000694937300052
EI入藏号20212810622827
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文献类型会议论文
条目标识符http://ir.opt.ac.cn/handle/181661/94971
专题飞行器光学成像与测量技术研究室
通讯作者Guo, Huinan
作者单位1.University of Chinese Academy of Sciences, Yuquan Road, No.19, Shijingshan District, Beijing; 100049, China;
2.Xi’an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xinxi Road, No.17, Gaoxin District, Shaanxi, Xi’an; 710119, China
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Yao, Zhiqiang,Guo, Huinan,Ren, Long. An improved fusion method of infrared and visible images based on fusionGAN[C]:SPIE,2021.
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