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Semi-automatic segmentation of preterm neonate ventricle system from 3D ultrasound images

机译:从3D超声图像对早产新生儿心室系统进行半自动分割

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3D Ultrasound (US) has been developed recently to image the intracranial ventricular system of pre-term neonates in order to monitor these patients for intraventricular hemorrhage (IVH) and the resultant dilatation of the ventricles. 3D US is capable of providing volumetric ventricle measurements, compared to clinically used 2D US, relying on linear measurements from a single slice, and visual and quantitative estimates to determine the severity of ventricular dilatation. In this work, we propose a convex optimization-based segmentation approach for 3D US images of the cerebral ventricles in preterm neonates with IVH. The proposed semi-automatic segmentation method makes use of the latest development in convex optimization techniques supervised by user interactive information. Experiments using 25 3D US images of 5 patients (5 time points for each subject) show that our proposed approach yielded a mean DSC of 78.9% compared to a manually contoured surface. This GPU-implemented semi-automated approach reduced the time required per segmentation by 1200% (mean times: 2.5 vs. 30 minutes). In addition, the intra-observer variability experiments showed that the variability introduced by the user initialization is small in terms of DSC, demonstrating a low intra-user variability.
机译:最近已经开发了3D Ultrasound(US)来对早产儿的颅内心室系统进行成像,以便监视这些患者的脑室内出血(IVH)以及由此引起的心室扩张。与临床使用的2D US相比,3D US能够提供容积心室测量,它依靠单个切片的线性测量以及视觉和定量估计来确定心室扩张的严重程度。在这项工作中,我们为IVH早产儿的脑室3D US图像提出了一种基于凸优化的分割方法。所提出的半自动分割方法利用了在用户交互信息的监督下的凸优化技术的最新发展。使用5位患者的25张3D US图像(每个受试者5个时间点)进行的实验表明,与手动绘制轮廓的表面相比,我们提出的方法产生的平均DSC为78.9%。这种由GPU实现的半自动化方法将每次细分所需的时间减少了1200%(平均时间:2.5分钟对30分钟)。此外,观察者内部的变异性实验表明,用户初始化所引入的变异性就DSC而言很小,这表明用户内部变异性很低。

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