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Semi-automated Image Segmentation of the Midsystolic Left Ventricular Mitral Valve Complex in Ischemic Mitral Regurgitation

机译:半自动化图像分割中血糖左心室二尖瓣复合体在缺血二尖瓣反流

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Ischemic mitral regurgitation (IMR) is primarily a left ventricular disease in which the mitral valve is dysfunctional due to ventricular remodeling after myocardial infarction. Current automated methods have focused on analyzing the mitral valve and left ventricle independently. While these methods have allowed for valuable insights into mechanisms of IMR, they do not fully integrate pathological features of the left ventricle and mitral valve. Thus, there is an unmet need to develop an automated segmentation algorithm for the left ventricular mitral valve complex, in order to allow for a more comprehensive study of this disease. The objective of this study is to generate and evaluate segmentations of the left ventricular mitral valve complex in pre-operative 3D transesophageal echocardiography using multi-atlas label fusion. These patient-specific segmentations could enable future statistical shape analysis for clinical outcome prediction and surgical risk stratification. In this study, we demonstrate a preliminary segmentation pipeline that achieves an average Dice coefficient of 0.78 ± 0.06.
机译:缺血二尖瓣反流(IMR)主要是左心室疾病,其中二尖瓣由于心肌梗死后心室重组而具有功能障碍。目前的自动化方法集中于独立分析二尖瓣和左心室。虽然这些方法允许有价值的见解,但它们没有完全整合左心室和二尖瓣的病理特征。因此,存在未满足的需要为左心室二尖瓣络合物进行自动分割算法,以便允许对这种疾病进行更全面的研究。本研究的目的是使用多地图集标签融合产生和评估左心室二尖瓣超声心动图中左心室二尖瓣复合物的分割。这些患者特异性分割可以使未来的统计形状分析能够进行临床结果预测和手术风险分层。在这项研究中,我们展示了初步分割管道,其平均骰子系数为0.78±0.06。

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