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A Novel Fully Automated CAD System for Left Ventricle Volume Estimation

机译:一种用于左心室体积估计的新型自动化CAD系统

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Left ventricular (LV) volumes, and emptying and filling f unction r emain i mportant i ndices i n conditions such as heart failure. These parameters are derived from the volume curve contained by the inner border of the LV of the heart, throughout the emptying and filling p hases of the cardiac cycle, and the peak emptying and filling rates. The gold standard uses the Simpson rule to estimate volume from stacks of short axis images acquired using cine MRI. In this study, a deep learning, automated supervised approach to estimate ventricular volumes is introduced. Unlike prior methods that required hand-crafted image features to segment the inner contour, the proposed approach uses an automatically selected region of interest (ROI), and intelligently determines the optimum features directly from the ROI information. These derived features are then inputted into a deep learning regression model, with the estimated volume as the output results.
机译:左心室(LV)卷,排空和填充F点r Emain,I Mpontant I ndices I n诸如心力衰竭的情况。这些参数源自心脏LV内部边框的体积曲线,整个空循环的空隙和填充P hyes以及峰值排空和填充率。黄金标准使用SIMPSON规则来估计使用CINE MRI获取的短轴图像的堆栈中的体积。在这项研究中,引入了深入的学习,自动化的估计心室容积的方法。与先前的方法不同,所需的手工制作图像特征分段内轮廓,所提出的方法使用自动选择的感兴趣区域(ROI),并且智能地确定直接来自ROI信息的最佳特征。然后将这些导出的功能输入到深度学习回归模型中,估计卷作为输出结果。

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