2019
DOI: 10.3390/app9112316
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RETRACTED: Image Super-Resolution Algorithm Based on Dual-Channel Convolutional Neural Networks

Abstract: For the image super-resolution method from a single channel, it is difficult to achieve both fast convergence and high-quality texture restoration. By mitigating the weaknesses of existing methods, the present paper proposes an image super-resolution algorithm based on dual-channel convolutional neural networks (DCCNN). The novel structure of the network model was divided into a deep channel and a shallow channel. The deep channel was used to extract the detailed texture information from the original image, wh… Show more

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Cited by 35 publications
(21 citation statements)
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References 44 publications
(66 reference statements)
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“…With the rapid development of computer technology, image information acquisition, processing, transmission, and other related technologies have been rapidly developed and applied and have been widely studied by scholars [101][102][103][104][105][106][107][108][109][110]. Among them, image encryption plays an increasingly important role in the fields of information security, military, medicine, and meteorology and has become a hot issue of social concern.…”
Section: Image Encryptionmentioning
confidence: 99%
“…With the rapid development of computer technology, image information acquisition, processing, transmission, and other related technologies have been rapidly developed and applied and have been widely studied by scholars [101][102][103][104][105][106][107][108][109][110]. Among them, image encryption plays an increasingly important role in the fields of information security, military, medicine, and meteorology and has become a hot issue of social concern.…”
Section: Image Encryptionmentioning
confidence: 99%
“…The main function of this layer is to extract the most important local features of the input matrix [55]. In the field of natural language processing, the word vector representation of a word is usually a whole.…”
Section: Convolution Layermentioning
confidence: 99%
“…As a person has higher requirements for the resolution of GAN-generated images, another problem that comes with it is that the network will down-sample the images during the pooling process to extract lowdimensional features, resulting in the loss of much key information in the images [46][47][48]. The discriminator is easier to distinguish real and fake images, so that the gradient can't indicate the correct optimization direction.…”
Section: The Related Workmentioning
confidence: 99%