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20182022
most citedConvolutional Sparse Coding for Compressed Sensing CT Reconstruction

133 citations · 167 across the 10 of their papers we have counts for

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Showing physics.med-phShow all

8 papers · 1 filter

physics.med-ph20213 cited

IDOL-Net: An Interactive Dual-Domain Parallel Network for CT Metal Artifact Reduction

Tao Wang, Wenjun Xia, Zexin Lu +5

Due to the presence of metallic implants, the imaging quality of computed tomography (CT) would be heavily degraded. With the rapid development of deep learning, several network mo…

physics.med-ph2021

DAN-Net: Dual-Domain Adaptive-Scaling Non-local Network for CT Metal Artifact Reduction

Tao Wang, Wenjun Xia, Yongqiang Huang +5

Metal implants can heavily attenuate X-rays in computed tomography (CT) scans, leading to severe artifacts in reconstructed images, which significantly jeopardize image quality and…

physics.med-ph20208 cited

LEARN++: Recurrent Dual-Domain Reconstruction Network for Compressed Sensing CT

Yi Zhang, Hu Chen, Wenjun Xia +5

Compressed sensing (CS) computed tomography has been proven to be important for several clinical applications, such as sparse-view computed tomography (CT), digital tomosynthesis a…

physics.med-ph2020

Fourth-Order Nonlocal Tensor Decomposition Model for Spectral Computed Tomography

Xiang Chen, Wenjun Xia, Yan Liu +3

Spectral computed tomography (CT) can reconstruct spectral images from different energy bins using photon counting detectors (PCDs). However, due to the limited photons and countin…

physics.med-ph20203 cited

CT Reconstruction with PDF: Parameter-Dependent Framework for Multiple Scanning Geometries and Dose Levels

Wenjun Xia, Zexin Lu, Yongqiang Huang +4

Current mainstream of CT reconstruction methods based on deep learning usually needs to fix the scanning geometry and dose level, which will significantly aggravate the training co…

physics.med-ph2019

MD-Recon-Net: A Parallel Dual-Domain Convolutional Neural Network for Compressed Sensing MRI

Maosong Ran, Wenjun Xia, Yongqiang Huang +6

Compressed sensing magnetic resonance imaging (CS-MRI) is a theoretical framework that can accurately reconstruct images from undersampled k-space data with a much lower sampling r…