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Cardiac MR Motion Artefact Correction from K-space Using Deep Learning-Based Reconstruction

机译:使用深度学习的重建,心脏MR运动人工制品校正K空间

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Incorrect ECG gating of cardiac magnetic resonance (CMR) acquisitions can lead to artefacts, which hampers the accuracy of diagnostic imaging. Therefore, there is a need for robust reconstruction methods to ensure high image quality. In this paper, we propose a method to automatically correct motion-related artefacts in CMR acquisitions during reconstruction from k-space data. Our method is based on the Automap reconstruction method, which directly reconstructs high quality MR images from k-space using deep learning. Our main methodological contribution is the addition of an adversarial element to this architecture, in which the quality of image reconstruction (the generator) is increased by using a discriminator. We train the reconstruction network to automatically correct for motion-related artefacts using synthetically corrupted CMR k-space. data and uncorrupted reconstructed images. Using 25000 images from the UK Biobank dataset we achieve good image quality in the presence of synthetic motion artefacts, but some structural information was lost. We quantitatively compare our method to a standard inverse Fourier reconstruction. In addition, we qualitatively evaluate the proposed technique using k-space data containing real motion artefacts.
机译:心脏磁共振的心电图(CMR)采集的错误网栅可能导致人工制品,其妨碍了诊断成像的准确性。因此,需要坚固的重建方法来确保高图像质量。在本文中,我们提出了一种方法在从k空间数据重建期间在CMR采集中自动纠正运动相关的艺术品。我们的方法基于自动重建方法,它使用深度学习直接从k空间重建高质量的MR图像。我们的主要方法论贡献是向该架构添加对抗性元件,其中通过使用鉴别器增加图像重建(发电机)的质量。我们训练重建网络以自动使用合成损坏的CMR k空间对运动相关的艺术品。数据和未损坏的重建图像。使用来自英国Biobank DataSet的25000张图片,我们在存在合成动作人工制品的情况下实现了良好的图像质量,但有些结构信息丢失了。我们定量将我们的方法与标准逆傅立叶重建进行比较。此外,我们使用含有真正运动伪影的k空间数据进行定性评估所提出的技术。

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