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Use of self-gated radial cardiovascular magnetic resonance to detect and classify arrhythmias (atrial fibrillation and premature ventricular contraction)

机译:使用自控radial骨心血管磁共振检测心律失常并对其分类(房颤和室性早搏)

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摘要

BackgroundArrhythmia can significantly alter the image quality of cardiovascular magnetic resonance (CMR); automatic detection and sorting of the most frequent types of arrhythmias during the CMR acquisition could potentially improve image quality. New CMR techniques, such as non-Cartesian CMR, can allow self-gating: from cardiac motion-related signal changes, we can detect cardiac cycles without an electrocardiogram. We can further use this data to obtain a surrogate for RR intervals (valley intervals: VV). Our purpose was to evaluate the feasibility of an automated method for classification of non-arrhythmic (NA) (regular cycles) and arrhythmic patients (A) (irregular cycles), and for sorting of common arrhythmia patterns between atrial fibrillation (AF) and premature ventricular contraction (PVC), using the cardiac motion-related signal obtained during self-gated free-breathing radial cardiac cine CMR with compressed sensing reconstruction (XD-GRASP).
机译:背景心律失常可显着改变心血管磁共振(CMR)的图像质量;在CMR采集过程中自动检测和分类最常见的心律失常类型可能会改善图像质量。新的CMR技术(例如非笛卡尔CMR)可以实现自我门控:从与心脏运动相关的信号变化中,我们无需心电图就可以检测到心脏周期。我们可以进一步使用此数据来获得RR间隔(谷间隔:VV)的替代。我们的目的是评估自动方法对非心律不齐(NA)(常规周期)和心律不齐患者(A)(不规则周期)进行分类以及对房颤(AF)和早产之间常见的心律失常类型进行分类的可行性心室收缩(PVC),使用自闭式自由呼吸radial门心脏电影CMR期间通过压缩感知重建(XD-GRASP)获得的与心脏运动相关的信号。

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