2023
DOI: 10.3390/photonics10080862
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Multi-Scale Cyclic Image Deblurring Based on PVC-Resnet

Abstract: Aiming at the non-uniform blurring of image caused by optical system defects or external interference factors, such as camera shake, out-of-focus, and fast movement of object, a multi-scale cyclic image deblurring model based on a parallel void convolution-Resnet (PVC-Resnet) is proposed in this paper, in which a multi-scale recurrent network architecture and a coarse-to-fine strategy are used to restore blurred images. The backbone network is built based on Unet codec architecture, where a PVC-Resnet module d… Show more

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Cited by 1 publication
(2 citation statements)
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“…In the process of collecting the existing pCLE images, optical imaging systems face inherent limitations due to the physical characteristics of their components [4], encompassing factors such as the lens's shape and material, as well as the shooting location. These constraints give rise to phenomena like scattering and refraction as light traverses the lens or reflector.…”
Section: Introductionmentioning
confidence: 99%
See 1 more Smart Citation
“…In the process of collecting the existing pCLE images, optical imaging systems face inherent limitations due to the physical characteristics of their components [4], encompassing factors such as the lens's shape and material, as well as the shooting location. These constraints give rise to phenomena like scattering and refraction as light traverses the lens or reflector.…”
Section: Introductionmentioning
confidence: 99%
“…For instance, Liu et al [16] proposed a novel approach that merged multilevel image restoration with the pix2pix generative adversarial network architecture within the lensless imaging sphere, which greatly improved image recovery quality in lensless systems. Zhang et al [4] proposed a multiscale circular image deblurring model based on PVC-Resnet in order to achieve the restoration of different scale objects in blurred images and obtain the global features of blurred images. Cheng et al [17] designed a method to mitigate atmospheric turbulence using optical flow and convolutional neural networks, thus reducing the turbulence mitigation problem to a deblurring problem.…”
Section: Introductionmentioning
confidence: 99%