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Temporal Sparse Promoting Three Dimensional Imaging of Cardiac Activation

机译:颞部稀疏促进心脏激活的三维成像

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摘要

A new Cardiac Electrical Sparse Imaging (CESI) technique is proposed to image cardiac activation throughout the three-dimensional myocardium from body surface electrocardiogram (ECG) with the aid of individualized heart-torso geometry. The sparse property of cardiac electrical activity in the time domain is utilized in the temporal sparse promoting inverse solution, one formulated to achieve higher spatial-temporal resolution, stronger robustness and thus enhanced capability in imaging cardiac electrical activity. Computer simulations were carried out to evaluate the performance of this imaging method under various circumstances. A total of 12 single site pacing and 7 dual sites pacing simulations with artificial and the hospital recorded sensor noise were used to evaluate the accuracy and stability of the proposed method. Simulations with modeling error on heart-torso geometry and electrode-torso registration were also performed to evaluate the robustness of the technique. In addition to the computer simulations, the CESI algorithm was further evaluated using experimental data in an animal model where the noninvasively imaged activation sequences were compared with those measured with simultaneous intracardiac mapping. All of the CESI results were compared with conventional weighted minimum norm solutions. The present results show that CESI can image with better accuracy, stability and stronger robustness in both simulated and experimental circumstances. In sum, we have proposed a novel method for cardiac activation imaging, and our results suggest that the CESI has enhanced performance, and offers the potential to image the cardiac activation and to assist in the clinical management of ventricular arrhythmias.
机译:提出了一种新的心脏电稀疏成像(CESI)技术,借助个体化的心脏躯干几何形状,从体表心电图(ECG)对整个三维心肌的心脏激活进行成像。时域稀疏促进逆解中利用了心脏电活动在时域中的稀疏特性,该解决方案旨在实现更高的时空分辨率,更强的鲁棒性,从而增强了对心脏电活动进行成像的能力。进行计算机模拟以评估这种成像方法在各种情况下的性能。总共使用人工和医院记录的传感器噪声对12个单站点起搏和7个双站点起搏进行了仿真,以评估该方法的准确性和稳定性。还对心脏躯干几何形状和电极躯干配准进行了建模误差仿真,以评估该技术的鲁棒性。除计算机模拟外,还使用动物模型中的实验数据对CESI算法进行了评估,在该模型中,将无创成像激活序列与同时进行心脏内定位测得的激活序列进行了比较。将所有CESI结果与常规加权最小范数解进行比较。目前的结果表明,CESI可以在模拟和实验情况下以更高的精度,稳定性和更强的鲁棒性成像。总而言之,我们提出了一种用于心脏激活成像的新方法,我们的结果表明CESI具有增强的性能,并提供了对心脏激活进行成像并有助于室性心律失常的临床管理的潜力。

著录项

  • 期刊名称 other
  • 作者

    Long Yu; Zhaoye Zhou; Bin He;

  • 作者单位
  • 年(卷),期 -1(34),11
  • 年度 -1
  • 页码 2309–2319
  • 总页数 27
  • 原文格式 PDF
  • 正文语种
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