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Validation of White-Matter Lesion Change Detection Methods on a Novel Publicly Available MRI Image Database

机译:新型公共MRI图像数据库中白病灶变化检测方法的验证

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Changes of white-matter lesions (WMLs) are good predictors of the progression of neurodegenerative diseases like multiple sclerosis (MS). Based on longitudinal magnetic resonance (MR) imaging the changes can be monitored, while the need for their accurate and reliable quantification led to the development of several automated MR image analysis methods. However, an objective comparison of the methods is difficult, because publicly unavailable validation datasets with ground truth and different sets of performance metrics were used. In this study, we acquired longitudinal MR datasets of 20 MS patients, in which brain regions were extracted, spatially aligned and intensity normalized. Two expert raters then delineated and jointly revised the WML changes on subtracted baseline and follow-up MR images to obtain ground truth WML segmentations. The main contribution of this paper is an objective, quantitative and systematic evaluation of two unsupervised and one supervised intensity based change detection method on the publicly available datasets with ground truth segmentations, using common pre- and post-processing steps and common evaluation metrics. Besides, different combinations of the two main steps of the studied change detection methods, i.e. dissimilarity map construction and its segmentation, were tested to identify the best performing combination.
机译:白质病变(WML)的变化是神经退行性疾病(如多发性硬化症(MS))进展的良好预测指标。基于纵向磁共振(MR)成像,可以监测变化,而对它们的准确和可靠定量的需求导致了几种自动化MR图像分析方法的发展。但是,很难对这些方法进行客观的比较,因为使用了公开的,具有基本事实和不同性能指标集的验证数据集。在这项研究中,我们获得了20名MS患者的纵向MR数据集,其中提取了大脑区域,在空间上对齐并进行了强度标准化。然后,由两个专家评分员在减去的基线和后续MR图像上划定并共同修订了WML更改,以获得地面真实WML分割。本文的主要贡献是使用通用的预处理和后处理步骤以及通用的评估指标,对具有地面真实性分割的公开数据集上的两种无监督和一种有监督的基于强度的变化检测方法进行了客观,定量和系统的评估。此外,测试了所研究的变化检测方法的两个主要步骤的不同组合,即相异图的构造及其分割,以找出性能最佳的组合。

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