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Automated volumetry of temporal horn of lateral ventricle for detection of Alzheimer's disease in CT scan

机译:侧脑室颞角的自动容积测定,用于在CT扫描中检测阿尔茨海默氏病

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The rapid increase in the incidence of Alzheimer's disease (AD) has become a critical issue in low and middle income countries. In general, MR imaging has become sufficiently suitable in clinical situations, while CT scan might be uncommonly used in the diagnosis of AD due to its low contrast between brain tissues. However, in those countries, CT scan, which is less costly and readily available, will be desired to become useful for the diagnosis of AD. For CT scan, the enlargement of the temporal horn of the lateral ventricle (THLV) is one of few findings for the diagnosis of AD. In this paper, we present an automated volumetry of THLV with segmentation based on Bayes' rule on CT images. In our method, first, all CT data sets are normalized into an atlas by using linear affine transformation and non-linear wrapping techniques. Next, a probability map of THLV is constructed in the normalized data. Then. THLV regions are extracted based on Bayes' rule. Finally, the volume of the THLV is evaluated. This scheme was applied to CT scans from 20 AD patients and 20 controls to evaluate the performance of the method for detecting AD. The estimated THLV volume was markedly increased in the AD group compared with the controls (P < .0001), and the area under the receiver operating characteristic curve (AUC) was 0.921. Therefore, this computerized method may have the potential to accurately detect AD on CT images.
机译:在低收入和中等收入国家,阿尔茨海默氏病(AD)的发病率迅速增加已成为一个关键问题。通常,MR成像已经足够适合临床情况,而CT扫描由于其在脑组织之间的对比度较低而可能不常用于AD的诊断。然而,在那些国家中,期望成本较低且容易获得的CT扫描对AD的诊断有用。对于CT扫描,侧脑室颞角(THLV)增大是诊断AD的少数发现之一。在本文中,我们提出了一种基于贝叶斯定律在CT图像上进行分割的THLV自动化工作台。在我们的方法中,首先,通过使用线性仿射变换和非线性包装技术将所有CT数据集标准化为图集。接下来,在归一化数据中构造THLV的概率图。然后。根据贝叶斯规则提取THLV区域。最后,评估THLV的体积。该方案应用于20位AD患者和20位对照的CT扫描,以评估检测AD方法的性能。与对照组相比,AD组的估计THLV量显着增加(P <.0001),并且接收器工作特征曲线(AUC)下的面积为0.921。因此,这种计算机化方法可能具有在CT图像上准确检测AD的潜力。

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