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Positive Delta Detection for Alpha Shape Segmentation of 3D Ultrasound Images of Pathologic Kidneys

机译:阳性Delta检测用于病理肾脏的3D超声图像的Alpha形状分割

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Ultrasound is the mainstay of imaging for pediatric hydronephrosis, which appears as the dilation of the renal collecting system. However, its potential as diagnostic tool is limited by the subjective visual interpretation of radiologists. As a result, the severity of hydronephrosis in children is evaluated by invasive and ionizing diuretic renograms. In this paper, we present the first complete framework for the segmentation and quantification of renal structures in 3D ultrasound images, a difficult and barely studied challenge. In particular, we propose a new active contour-based formulation for the segmentation of the renal collecting system, which mimics the propagation of fluid inside the kidney. For this purpose, we introduce a new positive delta detector for ultrasound images that allows to identify the fat of the renal sinus surrounding the dilated collecting system, creating an alpha shape-based patient-specific positional map. Finally, we incorporate a Gabor-based semi-automatic segmentation of the kidney to create the first complete ultrasound-based framework for the quantification of hydronephrosis. The promising results obtained over a dataset of 13 pathological cases (dissimilarity of 2.8 percentage points on the computation of the volumetric hydronephrosis index) demonstrate the potential utility of the new framework for the non-invasive and non-ionizing assessment of hydronephrosis severity among the pediatric population.
机译:超声是小儿肾积水成像的主要手段,表现为肾脏收集系统的扩张。但是,其作为诊断工具的潜力受到放射科医生的主观视觉解释的限制。结果,儿童的肾积水的严重程度通过侵入性的和电离的利尿肾图进行评估。在本文中,我们提出了第一个完整的3D超声图像中肾结构的分割和量化框架,这是一项艰巨而又很少研究的挑战。特别是,我们提出了一种新的基于活动轮廓的公式,用于肾脏收集系统的分割,该公式模仿了肾脏内部液体的传播。为此,我们为超声图像引入了一种新型的正增量检测器,该超声检测器可以识别扩张的采集系统周围的肾窦脂肪,从而创建基于alpha形状的特定于患者的位置图。最后,我们结合了基于Gabor的肾脏半自动分割,以创建第一个完整的基于超声的肾盂积水量化框架。在13个病理病例的数据集上获得的有希望的结果(在计算体积性肾积水指数方面相差2.8个百分点)证明了新框架对小儿肾积水严重程度的非侵入性和非电离性评估的潜在实用性人口。

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