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A Comprehensive Approach for Learning-Based Fully-Automated Inter-slice Motion Correction for Short-Axis Cine Cardiac MR Image Stacks

机译:一种基于学习的短轴电影心脏MR图像叠层全自动层间运动校正的综合方法

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In the clinical routine, short axis (SA) cine cardiac MR (CMR) image stacks are acquired during multiple subsequent breath-holds. If the patient cannot consistently hold the breath at the same position, the acquired image stack will be affected by inter-slice respiratory motion and will not correctly represent the cardiac volume, introducing potential errors in the following analyses and visualisations. We propose an approach to automatically correct inter-slice respiratory motion in SA CMR image stacks. Our approach makes use of probabilistic segmentation maps (PSMs) of the left ventricular (LV) cavity generated with decision forests. PSMs are generated for each slice of the SA stack and rigidly registered in-plane to a target PSM. If long axis (LA) images are available, PSMs are generated for them and combined to create the target PSM; if not, the target PSM is produced from the same stack using a 3D model trained from motion-free stacks. The proposed approach was tested on a dataset of SA stacks acquired from 24 healthy subjects (for which anatomical 3D cardiac images were also available as reference) and compared to two techniques which use LA intensity images and LA segmentations as targets, respectively. The results show the accuracy and robustness of the proposed approach in motion compensation.
机译:在临床常规中,短轴(SA)电影心脏MR(CMR)图像堆栈是在多个随后的屏气期间获取的。如果患者不能始终将呼吸保持在同一位置,则采集的图像堆栈将受到切片间呼吸运动的影响,并且将无法正确表示心脏的体积,从而在以下分析和可视化中引入潜在的错误。我们提出一种方法来自动纠正SA CMR图像堆栈中的片间呼吸运动。我们的方法利用了由决策森林生成的左心室(LV)腔的概率分割图(PSM)。为SA堆栈的每个切片生成PSM,并在平面内将其严格注册到目标PSM。如果长轴(LA)图像可用,则会为其生成PSM,并将其组合以创建目标PSM;否则,将生成目标PSM。如果不是,则目标PSM是使用从无运动堆栈中训练的3D模型从同一堆栈中生成的。在从24位健康受试者(也可以获取解剖学3D心脏图像)作为参考的SA堆栈数据集上测试了提出的方法,并与分别使用LA强度图像和LA分割作为目标的两种技术进行了比较。结果表明了该方法在运动补偿中的准确性和鲁棒性。

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