Literature DB >> 32352197

Deep complex convolutional network for fast reconstruction of 3D late gadolinium enhancement cardiac MRI.

Hossam El-Rewaidy1,2, Ulf Neisius1, Jennifer Mancio1, Selcuk Kucukseymen1, Jennifer Rodriguez1, Amanda Paskavitz1, Bjoern Menze2, Reza Nezafat1.   

Abstract

Several deep-learning models have been proposed to shorten MRI scan time. Prior deep-learning models that utilize real-valued kernels have limited capability to learn rich representations of complex MRI data. In this work, we utilize a complex-valued convolutional network (ℂNet) for fast reconstruction of highly under-sampled MRI data and evaluate its ability to rapidly reconstruct 3D late gadolinium enhancement (LGE) data. ℂNet preserves the complex nature and optimal combination of real and imaginary components of MRI data throughout the reconstruction process by utilizing complex-valued convolution, novel radial batch normalization, and complex activation function layers in a U-Net architecture. A prospectively under-sampled 3D LGE cardiac MRI dataset of 219 patients (17 003 images) at acceleration rates R = 3 through R = 5 was used to evaluate ℂNet. The dataset was further retrospectively under-sampled to a maximum of R = 8 to simulate higher acceleration rates. We created three reconstructions of the 3D LGE dataset using (1) ℂNet, (2) a compressed-sensing-based low-dimensional-structure self-learning and thresholding algorithm (LOST), and (3) a real-valued U-Net (realNet) with the same number of parameters as ℂNet. LOST-reconstructed data were considered the reference for training and evaluation of all models. The reconstructed images were quantitatively evaluated using mean-squared error (MSE) and the structural similarity index measure (SSIM), and subjectively evaluated by three independent readers. Quantitatively, ℂNet-reconstructed images had significantly improved MSE and SSIM values compared with realNet (MSE, 0.077 versus 0.091; SSIM, 0.876 versus 0.733, respectively; p < 0.01). Subjective quality assessment showed that ℂNet-reconstructed image quality was similar to that of compressed sensing and significantly better than that of realNet. ℂNet reconstruction was also more than 300 times faster than compressed sensing. Retrospective under-sampled images demonstrate the potential of ℂNet at higher acceleration rates. ℂNet enables fast reconstruction of highly accelerated 3D MRI with superior performance to real-valued networks, and achieves faster reconstruction than compressed sensing.
© 2020 John Wiley & Sons, Ltd.

Entities:  

Keywords:  MRI; complex convolutional network; deep learning; image reconstruction; late gadolinium enhancement

Mesh:

Substances:

Year:  2020        PMID: 32352197     DOI: 10.1002/nbm.4312

Source DB:  PubMed          Journal:  NMR Biomed        ISSN: 0952-3480            Impact factor:   4.044


  4 in total

1.  Analysis of deep complex-valued convolutional neural networks for MRI reconstruction and phase-focused applications.

Authors:  Elizabeth Cole; Joseph Cheng; John Pauly; Shreyas Vasanawala
Journal:  Magn Reson Med       Date:  2021-03-16       Impact factor: 3.737

2.  Highly accelerated free-breathing real-time phase contrast cardiovascular MRI via complex-difference deep learning.

Authors:  Hassan Haji-Valizadeh; Rui Guo; Selcuk Kucukseymen; Amanda Paskavitz; Xiaoying Cai; Jennifer Rodriguez; Patrick Pierce; Beth Goddu; Daniel Kim; Warren Manning; Reza Nezafat
Journal:  Magn Reson Med       Date:  2021-03-15       Impact factor: 3.737

Review 3.  Application of medical imaging methods and artificial intelligence in tissue engineering and organ-on-a-chip.

Authors:  Wanying Gao; Chunyan Wang; Qiwei Li; Xijing Zhang; Jianmin Yuan; Dianfu Li; Yu Sun; Zaozao Chen; Zhongze Gu
Journal:  Front Bioeng Biotechnol       Date:  2022-09-12

Review 4.  The role of artificial intelligence in paediatric cardiovascular magnetic resonance imaging.

Authors:  Andrew M Taylor
Journal:  Pediatr Radiol       Date:  2021-12-22
  4 in total

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