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Segmentation of spinal cord in the pediatric spinal Diffusion Tensor MR Imaging

机译:小儿脊柱扩散张量MR成像脊髓的分割

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Classification and segmentation of small structures such as spinal cord is extremely challenging. In this paper, a multi stage segmentation algorithm is proposed and tested to accurately and reliably segment the spinal canal and spinal cord from the background in the pediatric spinal Diffusion Tensor MR images. First, median filter and image compression methods were applied to mitigate the amplitude of the noise and improve the homogeneity of the image. Next, mathematical morphological processing was applied to segment and label the regions attributed to the spinal canal. These segmented regions were classified into the spinal canal and background using a Euclidean metric obtained by centroid coordinates of segmented regions in the volumetric DTI data. Finally, Otsu thresholding technique was applied to extract cord region from spinal canal. Segmentation accuracy, sensitivity, specificity and spatial overlap index were examined as performance measurements. The quantitative measurements represent the effectiveness of the proposed method.
机译:脊髓如脊髓等小结构的分类和分割非常具有挑战性。在本文中,提出了一种多级分段算法和测试,以精确且可靠地将脊柱管道和脊髓从儿科脊柱扩散张量MR图像中的背景分段。首先,应用中值滤波器和图像压缩方法来减轻噪声的幅度并提高图像的均匀性。接下来,将数学形态学加工施加到椎管内的区段并标记归因于脊柱管的区域。将这些分段区域分为脊柱管道和背景,使用通过体积DTI数据中的细分区域的质心坐标获得的欧氏弧度度量。最后,otOSU阈值技术被应用于从脊柱管中提取脐带区域。检查分割精度,灵敏度,特异性和空间重叠指数作为性能测量。定量测量代表了所提出的方法的有效性。

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