Distortion-Corrected Image Reconstruction with Deep Learning on an MRI-Linac
Shanshan Shan, Yang Gao, Paul Z. Y. Liu, Brendan Whelan, Hongfu Sun,, Bin Dong, Feng Liu, David E. J. Waddington

TL;DR
This paper introduces DCReconNet, a deep learning method that rapidly reconstructs distortion-corrected MRI images, improving accuracy and speed for real-time MRI-guided radiotherapy.
Contribution
The paper presents a novel deep learning-based reconstruction network that effectively corrects geometric distortions in MRI images, enabling real-time applications in radiotherapy.
Findings
DCReconNet outperforms traditional methods in image quality metrics.
DCReconNet is over 100 times faster than iterative reconstruction methods.
High-quality, distortion-corrected images achieved with fourfold acceleration.
Abstract
Magnetic resonance imaging (MRI) is increasingly utilized for image-guided radiotherapy due to its outstanding soft-tissue contrast and lack of ionizing radiation. However, geometric distortions caused by gradient nonlinearity (GNL) limit anatomical accuracy, potentially compromising the quality of tumour treatments. In addition, slow MR acquisition and reconstruction limit the potential for real-time image guidance. Here, we demonstrate a deep learning-based method that rapidly reconstructs distortion-corrected images from raw k-space data for real-time MR-guided radiotherapy applications. We leverage recent advances in interpretable unrolling networks to develop a Distortion-Corrected Reconstruction Network (DCReconNet) that applies convolutional neural networks (CNNs) to learn effective regularizations and nonuniform fast Fourier transforms for GNL-encoding. DCReconNet was trained on…
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Taxonomy
TopicsAdvanced MRI Techniques and Applications · Medical Imaging Techniques and Applications · Advanced Radiotherapy Techniques
