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Identifying regions of interest for discriminating Alzheimer's disease from mild cognitive impairment

机译:识别可将阿尔茨海默氏病与轻度认知障碍区分开的目标区域

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Alzheimer's disease (AD) is one of the most common types of dementia that affects elderly people, with no known cure. Early diagnosis of this disease is very important to improve patients' life quality and slow down the disease progression. Over the years, researchers have been proposing several techniques to analyze brain images, like FDG-PET, to automatically find changes in the brain activity. This paper compares regions of voxels identified by an expert with regions of voxels found automatically, in terms of corresponding classification accuracies based on three well-known classifiers. The automatic identification of regions is made by segmenting FDG-PET images, and extracting features that represent each of those regions. Experimental results show that the regions found automatically are very discriminative, outperforming results with expert's defined regions.
机译:阿尔茨海默氏病(AD)是影响老年人的最常见的痴呆类型之一,目前尚无治愈方法。这种疾病的早期诊断对于改善患者的生活质量和减慢疾病的进展非常重要。多年来,研究人员已经提出了多种技术来分析大脑图像,例如FDG-PET,以自动发现大脑活动的变化。本文根据三个著名的分类器,根据相应的分类精度,将专家识别的体素区域与自动找到的体素区域进行了比较。通过分割FDG-PET图像并提取代表每个区域的特征,可以自动识别区域。实验结果表明,自动发现的区域非常有区别,优于专家定义的区域。

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