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Simple brain atrophy quantification method using MR images

机译:使用MR图像的简单脑萎缩量化方法

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In this paper, age estimation models introduced with automatic preprocessing of the T-1 weighted images, dimension reduction via principal component analysis, training of a multiple regression model, and then estimating the age of the subjects from the test samples. The regression model is automatically trained from a diverse set of 80 adult subjects (age 60-92 years) exhibiting significant variation to discover anatomical structure related to age and deformation. The methods proved to be a reliable one for age estimation in healthy subjects, yielding a correlation of r = 0.780 between the estimated and real age in the test samples and a mean absolute error of 2.155 years for PCAR method, and r = 0.834 and a mean absolute error of 2.092years for the PCA-ML method. To test the potential of these proposed age estimation models in the clinical situation, very mild to moderate Alzheimer's disease (AD) subject's age has been estimated.
机译:在本文中,引入了年龄估计模型,该模型具有自动对T-1加权图像进行预处理,通过主成分分析进行降维,训练多元回归模型,然后从测试样本中估计受试者的年龄的方法。回归模型是由来自80位成年受试者(年龄在60-92岁之间)的多种多样的集合进行自动训练的,这些受试者表现出显着的变化以发现与年龄和变形有关的解剖结构。该方法被证明是健康受试者年龄估计的可靠方法,在测试样本的估计年龄与实际年龄之间的相关性为r = 0.780,PCAR方法的平均绝对误差为2.155年,r = 0.834和a PCA-ML方法的平均绝对误差为2.092年。为了测试这些建议的年龄估计模型在临床中的潜力,已经估计了非常轻至中度的阿尔茨海默氏病(AD)受试者的年龄。

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