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A Prediction Framework for Cardiac Resynchronization Therapy Via 4D Cardiac Motion Analysis

机译:通过4D心脏运动分析进行心脏再同步治疗的预测框架

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摘要

We propose a novel framework to predict pacing sites in the left ventricle (LV) of a heart and its result can be used to assist pacemaker implantation and programming in cardiac resynchronization therapy (CRT), a widely adopted therapy for heart failure patients. In a traditional CRT device deployment, pacing sites are selected without quantitative prediction. That runs the risk of subop-timal benefits. In this work, the spherical harmonic (SPHARM) description is employed to model the ventricular surfaces and a novel SPHARM-based surface correspondence approach is proposed to capture the ventricular wall motion. A hierarchical agglomerative clustering technique is applied to the time series of regional wall thickness to identify candidate pacing sites. Using clinical MRI data in our experiments, we demonstrate that the proposed framework can not only effectively identify suitable pacing sites, but also distinguish patients from normal subjects perfectly to help medical diagnosis and prognosis.
机译:我们提出了一种新的框架来预测心脏左心室(LV)的起搏部位,其结果可用于辅助心脏起搏同步治疗(CRT)的起搏器植入和编程,心脏起搏同步治疗(CRT)是心力衰竭患者广泛采用的治疗方法。在传统的CRT设备部署中,选择起搏地点时无需进行定量预测。这带来了次优利益的风险。在这项工作中,采用球谐函数(SPHARM)描述来建模心室表面,并提出了一种新颖的基于SPHARM的表面对应方法来捕获心室壁运动。将分层的聚类聚类技术应用于区域壁厚的时间序列,以识别候选起搏点。在我们的实验中使用临床MRI数据,我们证明了所提出的框架不仅可以有效地识别合适的起搏部位,而且可以完美地区分患者与正常受试者,以帮助医学诊断和预后。

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