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Toward automatic diagnosis of hip dysplasia from 2D ultrasound

机译:二维超声自动诊断髋关节发育不良

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Developmental dysplasia of the hip (DDH) is a congenital deformity occurring in ~3% of infants. If diagnosed early most cases of DDH can be effectively treated using a Pavlik harness. However, current diagnosis of DDH using 2D ultrasound is and can have high inter-operator variability. In this paper we propose a method to automatically segment the acetabulum bone and derive geometric indices of hip dysplasia from this model. In the proposed method, using multi-scale superpixels, we incorporate global and local image features into a Deep Learning framework to obtain a probability map of the bone to be segmented and then use this map in probabilistic graph search to guide the segmentation. Clinically relevant geometric measures of hip dysplasia, including a new index of acetabular rounding, are then automatically calculated from the segmented acetabulum contour. We tested this method on 2D ultrasound of 50 infant hips and the contours generated matched closely with manual segmentations at root mean square error 1.8±0.7 mm and Hausdorff distance 2.1±0.9 mm. In this pilot data, the measured indices of dysplasia give an area under the curve of 86.2% for classifying normal vs dysplastic hips. The proposed approach could be used clinically for accurate and automatic diagnosis of hip dysplasia in infants.
机译:髋部发育不良(DDH)是约3%的婴儿发生的先天性畸形。如果尽早诊断,大多数DDH病例可以使用Pavlik线束进行有效治疗。但是,当前使用2D超声诊断DDH的结果是,而且操作者之间的差异很大。在本文中,我们提出了一种自动分割髋臼骨并从该模型导出髋关节发育不良的几何指标的方法。在提出的方法中,使用多尺度超像素,我们将全局和局部图像特征合并到深度学习框架中,以获得要分割的骨骼的概率图,然后在概率图搜索中使用该图来指导分割。然后根据分段的髋臼轮廓自动计算出髋关节发育不良的临床相关几何尺寸,包括新的髋臼圆度指数。我们在50个婴儿髋部的2D超声上对该方法进行了测试,所生成的轮廓与手动分割紧密匹配,均方根误差为1.8±0.7 mm,Hausdorff距离为2.1±0.9 mm。在该初步数据中,所测得的不典型增生指数在86.2%的曲线下提供了一个区域,用于对正常髋关节和发育不良髋关节进行分类。所提出的方法可临床用于婴儿的髋关节发育不良的准确和自动诊断。

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