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Measurement of Glomerular Filtration Rate using Quantitative SPECT/CT and Deep-learning-based Kidney Segmentation

机译:使用定量SPECT / CT和基于深度学习的肾脏分割技术测量肾小球滤过率

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Quantitative SPECT/CT is potentially useful for more accurate and reliable measurement of glomerular filtration rate (GFR) than conventional planar scintigraphy. However, manual drawing of a volume of interest (VOI) on renal parenchyma in CT images is a labor-intensive and time-consuming task. The aim of this study is to develop a fully automated GFR quantification method based on a deep learning approach to the 3D segmentation of kidney parenchyma in CT. We automatically segmented the kidneys in CT images using the proposed method with remarkably high Dice similarity coefficient relative to the manual segmentation (mean?=?0.89). The GFR values derived using manual and automatic segmentation methods were strongly correlated (R2?=?0.96). The absolute difference between the individual GFR values using manual and automatic methods was only 2.90%. Moreover, the two segmentation methods had comparable performance in the urolithiasis patients and kidney donors. Furthermore, both segmentation modalities showed significantly decreased individual GFR in symptomatic kidneys compared with the normal or asymptomatic kidney groups. The proposed approach enables fast and accurate GFR measurement.
机译:定量SPECT / CT可能比传统的平面闪烁显像术更准确,更可靠地测量肾小球滤过率(GFR)。但是,在CT图像的肾实质中手动绘制感兴趣的体积(VOI)是一项劳动强度大且耗时的任务。这项研究的目的是开发一种基于深度学习方法的全自动GFR定量方法,以对CT中的肾脏实质进行3D分割。我们使用建议的方法自动对CT图像中的肾脏进行了分割,相对于手动分割,Dice相似系数非常高(均值== 0.89)。使用手动和自动分割方法得出的GFR值高度相关(R2≥0.96)。使用手动和自动方法得出的各个GFR值之间的绝对差仅为2.90%。此外,这两种分割方法在尿路结石病患者和肾脏供体中具有可比的性能。此外,与正常或无症状肾脏组相比,两种分割方式均显示有症状肾脏的个体GFR显着降低。所提出的方法可以实现快速准确的GFR测量。

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