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Correcting Motion Artifacts in MRI Scans Using a Deep Neural Network with Automatic Motion Timing Detection

机译:使用具有自动运动定时检测的深神经网络校正MRI扫描中的运动伪影

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Motion artefacts created by patient motion during an MRI scan occur frequently in practice, often rendering the scans clinically unusable and requiring a re-scan. While many methods have been employed to ameliorate the effects of patient motion, these often fall short in practice. In this paper we propose a novel method for detecting and timing patient motion during an MR scan and correcting for the motion artefacts using a deep neural network. The deep neural network contains two input branches that discriminate between patient poses using the motion's timing. The first branch receives a subset of the k-space data collected during a single dominant patient pose, and the second branch receives the remaining part of the collected k-space data. The proposed method can be applied to artefacts generated by multiple movements of the patient. Furthermore, it can be used to correct motion for the case where k-space has been under-sampled to shorten the scan time, as is common when using methods such as parallel imaging or compressed sensing. Experimental results on both simulated and real MRI data show the efficacy of our approach.
机译:在MRI扫描期间患者运动产生的运动人工制品经常在实践中发生,通常临床上不可用并且需要重新扫描。虽然已经采用了许多方法来改善患者运动的影响,但这些经常在实践中缺乏短暂。在本文中,我们提出了一种新的方法,用于使用深神经网络校正MR扫描和校正运动人工制品的检测和定时患者运动的新方法。深度神经网络包含两个输入分支,可使用运动的时序区分患者姿势。第一分支接收在单个主要患者姿势期间收集的k空间数据的子集,第二分支接收收集的k空间数据的剩余部分。所提出的方法可以应用于由患者的多个运动产生的人工制品。此外,它可以用来校正对k空间被缩短以缩短扫描时间的情况来校正运动,当使用诸如并联成像或压缩感测的方法时,通常是常见的。模拟和真实MRI数据的实验结果显示了我们的方法的功效。

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