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A FULLY AUTOMATED SPINAL CORD SEGMENTATION

机译:全自动脊髓节段

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摘要

Segmentation of the spinal cord region is an imperative step in the automated analysis of neurological ailments such as multiple sclerosis. Multiple studies demonstrated the connection between progression of neurological diseases and measurements identifying with spinal cord atrophy and changes to its structure. Segmentation of spinal cord region manually or semi-automatically, can be conflicting and tedious for large datasets. We present a novel automated method, that segments the spinal cord region, utilizing circular active discs and region growth algorithm. The proposed method is validated on the Visible Human Project dataset. The results with regards to sensitivity, specificity, accuracy, Jaccard index, and Dice coefficient were 97.23%, 100%, 99.76%, 96.83%, and 98.65%, respectively. The results were observed to be highly precise in comparison to expert outlines.
机译:脊髓区域的分割是自动分析神经系统疾病(如多发性硬化症)的必要步骤。多项研究表明,神经系统疾病的进展与确定脊髓萎缩及其结构改变的测量之间存在联系。对于大型数据集,手动或半自动分割脊髓区域可能是矛盾且繁琐的。我们提出了一种新颖的自动化方法,利用圆形活动盘和区域生长算法分割脊髓区域。该方法在“可见人类项目”数据集上得到了验证。敏感性,特异性,准确性,Jaccard指数和Dice系数的结果分别为97.23%,100%,99.76%,96.83%和98.65%。与专家概述相比,观察到的结果是非常精确的。

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