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A hybrid approach based on logistic classification and iterative contrast enhancement algorithm for hyperintense multiple sclerosis lesion segmentation

机译:一种基于物流分类和迭代对比增强算法的混合方法,用于高压多发性硬化病变分割

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摘要

Multiple sclerosis (MS) is a neurodegenerative disease with increasing importance in recent years, in which the T2 weighted with fluid attenuation inversion recovery (FLAIR) MRI imaging technique has been addressed for the hyperintense MS lesion assessment. Many automatic lesion segmentation approaches have been proposed in the literature in order to assist health professionals. In this study, a new hybrid lesion segmentation approach based on logistic classification (LC) and the iterative contrast enhancement (ICE) method is proposed (LC+ICE). T1 and FLAIR MRI images from 32 secondary progressive MS (SPMS) patients were used in the LC+ICE method, in which manual segmentation was used as the ground truth lesion segmentation. The DICE, Sensitivity, Specificity, Area under the ROC curve (AUC), and Volume Similarity measures showed that the LC+ICE method is able to provide a precise and robust lesion segmentation estimate, which was compared with two recent FLAIR lesion segmentation approaches. In addition, the proposed method also showed a stable segmentation among lesion loads, showing a wide applicability to different disease stages. The LC+ICE procedure is a suitable alternative to assist the manual FLAIR hyperintense MS lesion segmentation task.
机译:近年来,多发性硬化症(MS)是一种神经退行性疾病,其急剧增加,其中T2加权流体衰减反转恢复(Flair)MRI成像技术的高速发射MS病变评估。在文献中提出了许多自动病变分割方法,以协助卫生专业人员。在本研究中,提出了一种基于物流分类(LC)的新的混合病变分割方法和迭代对比增强(ICE)方法(LC + ICE)。从32个二次渐进式MS(SPMS)患者的T1和Flair MRI图像用于LC +冰方法,其中使用手动分割作为地面真理病变分割。 ROC曲线(AUC)下的骰子,敏感度,特异性,和体积相似度措施表明,LC +冰方法能够提供精确且稳健的病变分段估计,其与最近的两个Flair病变分段方法进行比较。此外,该方法还表明病变载荷之间的稳定分段,显示对不同疾病阶段的广泛适用性。 LC + ICE手术是一种适当的替代方案,可以帮助手动Flair超敏MS损伤分割任务。

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