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首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Automatic segmentation of the aortic root in CT angiography of candidate patients for transcatheter aortic valve implantation
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Automatic segmentation of the aortic root in CT angiography of candidate patients for transcatheter aortic valve implantation

机译:经导管主动脉瓣植入的候选患者的CT血管造影中主动脉根的自动分割

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Transcatheter aortic valve implantation is a minimal-invasive intervention for implanting prosthetic valves in patients with aortic stenosis. Accurate automated sizing for planning and patient selection is expected to reduce adverse effects such as paravalvular leakage and stroke. Segmentation of the aortic root in CTA is pivotal to enable automated sizing and planning. We present a fully automated segmentation algorithm to extract the aortic root from CTA volumes consisting of a number of steps: first, the volume of interest is automatically detected, and the centerline through the ascending aorta and aortic root centerline are determined. Subsequently, high intensities due to calcifications are masked. Next, the aortic root is represented in cylindrical coordinates. Finally, the aortic root is segmented using 3D normalized cuts. The method was validated against manual delineations by calculating Dice coefficients and average distance error in 20 patients. The method successfully segmented the aortic root in all 20 cases. The mean Dice coefficient was 0.95 ± 0.03, and the mean radial absolute error was 0.74 ± 0.39 mm, where the interobserver Dice coefficient was 0.95 ± 0.03 and the mean error was 0.68 ± 0.34∈mm. The proposed algorithm showed accurate results compared to manual segmentations.
机译:经导管主动脉瓣植入术是在主动脉瓣狭窄患者中植入人工瓣膜的微创干预措施。用于计划和患者选择的准确自动尺寸调整有望减少诸如瓣周漏和中风的不良影响。 CTA中主动脉根的分割对于实现自动大小调整和计划至关重要。我们提出了一种全自动分割算法,该算法从CTA体积中提取主动脉根,包括以下几个步骤:首先,自动检测目标体积,并确定通过升主动脉的中心线和主动脉根中心线。随后,掩盖了由于钙化引起的高强度。接下来,用圆柱坐标表示主动脉根。最后,使用3D标准化切口对主动脉根进行分割。通过计算20位患者的Dice系数和平均距离误差,该方法已针对人工描述进行了验证。该方法在所有20例病例中成功地分割了主动脉根。平均Dice系数为0.95±0.03,平均径向绝对误差为0.74±0.39 mm,其中观察者间Dice系数为0.95±0.03,平均误差为0.68±0.34∈mm。与手动分割相比,该算法显示了准确的结果。

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