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ANATOMICAL AND FUNCTIONAL ASSESSMENT OF CORONARY ARTERY DISEASE USING MACHINE LEARNING

机译:使用机器学习的冠状动脉疾病解剖学和功能评估

摘要

Anatomical and functional assessment of coronary artery disease (CAD) using machine learning and computational modeling techniques deploying methodologies for non-invasive Fractional Flow Reserve (FFR) quantification based on angiographically derived anatomy and hemodynamics data, relying on machine learning algorithms for image segmentation and flow assessment, and relying on accurate physics-based computational fluid dynamics (CFD) simulation for computation of the FFR.
机译:使用机器学习和计算建模技术进行冠状动脉疾病(CAD)的解剖学和功能评估,基于血管绘制解剖学和血流动力学数据的非侵入性分数流量储备(FFR)量化部署方法,依靠机器学习算法进行图像分割和流量评估,并依赖于用于计算FFR的准确物理基础计算流体动力学(CFD)仿真。

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