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Automated localization of periventricular and subcortical white matter lesions

机译:宫颈和皮质下白质病变的自动定位

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It is still unclear whether periventricular and subcortical white matter lesions (WMLs) differ in etiology or clinical consequences. Studies addressing this issue would benefit from automated segmentation and localization of WMLs. Several papers have been published on WML segmentation in MR images. Automated localization however, has not been investigated as much. This work presents and evaluates a novel method to label segmented WMLs as periventricular and subcortical. The proposed technique combines tissue classification and registration-based segmentation to outline the ventricles in MRI brain data. The segmented lesions can then be labeled into periventricular WMLs and subcortical WMLs by applying region growing and morphological operations. The technique was tested on scans of 20 elderly subjects in which neuro-anatomy experts manually segmented WMLs. Localization accuracy was evaluated by comparing the results of the automated method with a manual localization. Similarity indices and volumetric intraclass correlations between the automated and the manual localization were 0.89 and 0.95 for periventricular WMLs and 0.64 and 0.89 for subcortical WMLs, respectively. We conclude that this automated method for WML localization performs well to excellent in comparison to the gold standard.
机译:目前尚不清楚病因或临床后果是否不同。解决此问题的研究将受益于WMLS的自动分割和本地化。已经发表了几篇论文在MR图像中的WML细分。然而,自动定位尚未得到调查。此工作提出并评估将分段的WML标记为Periventricular和Probicrical的新方法。所提出的技术将基于组织分类和基于注册的分割结合在概述MRI脑数据中的心室。然后,通过施加区域生长和形态操作,可以将分段病变标记为脑室WML和皮质标记。该技术对20名老年人的扫描进行了测试,其中神经解剖学专家手动细分WMLS。通过使用手动本地化的自动化方法的结果进行评估,评估本地化准确性。对于宫颈WML,自动化和手动定位之间的相似性指数和体积分别为0.89%和0.95,分别为次要WM10.64和0.89。我们得出结论,与金标准相比,这种用于WML定位的自动化方法很好地表现出很好。

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