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Robust Live Tracking of Mitral Valve Annulus for Minimally-Invasive Intervention Guidance

机译:对二尖瓣环进行可靠的实时跟踪,以实现微创介入指导

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Mitral valve (MV) regurgitation is an important cardiac disorder that affects 2-3% of the Western population. While valve repair is commonly performed under open-heart surgery, an increasing number of transcatheter MV repair (TMVR) strategies are being developed. To be successful, TMVR requires extensive image guidance due to the complexity of MV physiology and of the therapies, in particular during device deployment. New trans-esophageal echocardiography (TEE) enable realtime, full-volume imaging of the valve including 3D anatomy and 3D color-Doppler flow. Such new transducers open a large range of applications for TMVR guidance, like the 3D assessment of the impact of a therapy on the MV function. In this manuscript we propose an algorithm towards the goal of live quantification of the MV anatomy. Leveraging the recent advances in ultrasound hardware, and combining machine learning approaches, predictive search strategies and efficient image-based tracking algorithms, we propose a novel method to automatically detect and track the MV annulus over very long image sequences. The method was tested on 12 4D TEE annotated sequences acquired in patients suffering from a large variety of disease. These sequences have been rigidly transformed to simulate probe motion. Obtained results showed a tracking accuracy of 4.04mm mean error, while demonstrating robustness when compared to purely image based methods. Our approach therefore paves the way towards quantitative guidance of TMVR through live 3D valve modeling.
机译:二尖瓣反流是一种重要的心脏病,可影响2-3%的西方人群。虽然瓣膜修复通常在心脏直视手术下进行,但越来越多的经导管MV修复(TMVR)策略正在开发中。要获得成功,由于MV生理和疗法的复杂性,尤其是在设备部署期间,TMVR需要广泛的图像指导。新的经食道超声心动图(TEE)可以对瓣膜进行实时的全体积成像,包括3D解剖结构和3D彩色多普勒血流。这样的新型换能器为TMVR指导打开了广泛的应用领域,例如3D评估疗法对MV功能的影响。在此手稿中,我们提出了一种针对MV解剖结构实时定量化的算法。利用超声硬件的最新进展,并结合机器学习方法,预测搜索策略和基于图像的有效跟踪算法,我们提出了一种新颖的方法,可以在非常长的图像序列上自动检测和跟踪MV环空。该方法在患有多种疾病的患者中获得的12个4D TEE注释序列上进行了测试。这些序列已被严格转换以模拟探针运动。所得结果显示跟踪精度为4.04mm,平均误差,与纯基于图像的方法相比,显示出鲁棒性。因此,我们的方法通过实时3D阀门建模为TMVR的定量指导铺平了道路。

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