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Diagnostic features of Alzheimer's disease extracted from FDG pet images

机译:阿尔茨海默病的诊断特征从FDG PET图像中提取

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FDG-PET images of patients suffering from Alsheimers disease (AD) were obtained from Paul Scherre Institute, Villingen, Switzerland. The data were from a CTI/Siemens ECAT 933/04-16 scanner, comprising of 7 image slices 128×128 pixels. The study included 48 Clinically diagnosed AD patients and 73 normal controls. Using an invariant feature extraction method features were extracted. The features are invariant to translation and rotation of object(s) within the image. The patients are separated into two groups one for training (24 AD and 37 normal controls) and one cross validation testing (24 AD and 36 normal controls). Discriminant function analysis yielded a classification accuracy of 88% sensitivity and 86% specificity, when these features were used.
机译:从瑞士保罗Scherre Institute,Villingen,Villingen患者(AD)患者的FDG-PET图像。数据来自CTI / SIEMENS ECAT 933 / 04-16扫描仪,包括7个图像切片128×128像素。该研究包括48名临床诊断的AD患者和73例正常对照。提取使用不变的功能提取方法功能。该功能是不变的,以在图像中的对象转换和旋转。患者分为两组,用于培训(24 AD和37个正常对照)和一个交叉验证测试(24个AD和36个正常对照)。判别函数分析产生的分类精度为88%的灵敏度和86%的特异性,当使用这些特征时。

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