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Automatic segmentation of the spinal cord and the dural sac in lumbar MR images using gradient vector flow field

机译:使用梯度矢量流场自动分割腰部MR图像中的脊髓和硬膜囊

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A Computer-aided diagnosis (CAD) system aims to facilitate characterization and quantification of abnormalities as well as minimize interpretation errors caused by tedious tasks of image screening and radiologic diagnosis. The system usually consists of segmentation, feature extraction and diagnosis, and segmentation significantly affects the diagnostic performance. In this paper, we propose an automatic segmentation method that extracts the spinal cord and the dural sac from T2-weighted sagittal magnetic resonance (MR) images of lumbar spine without the need of any human intervention. Our method utilizes a gradient vector flow (GVF) field to find the candidate blobs and performs a connected component analysis for the final segmentation. MR Images from fifty two subjects were employed for our experiments and the segmentation results were quantitatively compared against reference segmentation by two medical specialists in terms of a mutual overlap metric. The experimental results showed that, on average, our method achieved a similarity index of 0.7 with a standard deviation of 0.0571 that indicated a substantial agreement. We plan to apply this segmentation method to computer-aided diagnosis of many lumbar-related pathologies.
机译:计算机辅助诊断(CAD)系统旨在促进异常的表征和定量,并最大程度地减少由图像筛选和放射学诊断的繁琐任务引起的解释错误。该系统通常由分割,特征提取和诊断组成,并且分割会显着影响诊断性能。在本文中,我们提出了一种自动分割方法,该方法可从腰椎的T2加权矢状核磁共振(MR)图像中提取脊髓和硬脑膜囊,而无需任何人工干预。我们的方法利用梯度矢量流(GVF)字段来查找候选斑点,并对最终分割执行连接的分量分析。我们将来自52个受试者的MR图像用于我们的实验,并根据相互重叠度量,将分割结果与两名医学专家的参考分割进行了定量比较。实验结果表明,平均而言,我们的方法获得的相似度指数为0.7,标准差为0.0571,表明基本吻合。我们计划将这种分割方法应用于许多与腰椎相关的病理学的计算机辅助诊断。

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