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Early Detection of the Alzheimer Disease Combining Feature Selection and Kernel Machines

机译:结合特征选择和核机器对阿尔茨海默病进行早期检测

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Alzheimer disease (AD) is a progressive neurodegenerative disorder first affecting memory functions and then gradually affecting all cognitive functions with behavioral impairments. As the number of patients with AD has increased, early diagnosis has received more attention for both social and medical reasons. However, currently, accuracy in the early diagnosis of certain neurodegenerative diseases such as the Alzheimer type dementia is below 70% and, frequently, these do not receive the suitable treatment. Functional brain imaging including single-photon emission computed tomography (SPECT) is commonly used to guide the clinician's diagnosis. However, conventional evaluation of SPECT scans often relies on manual reorientation, visual reading and semiquantitative analysis of certain regions of the brain. These steps are time consuming, subjective and prone to error. This paper shows a fully automatic computer-aided diagnosis (CAD) system for improving the accuracy in the early diagnosis of the AD. The proposed approach is based on feature selection and support vector machine (SVM) classification. The proposed system yields clear improvements over existing techniques such as the voxel as features (VAF) approach attaining a 90% AD diagnosis accuracy.
机译:阿尔茨海默病(AD)是一种进行性神经退行性疾病,首先会影响记忆功能,然后逐渐影响所有认知功能,并伴有行为障碍。随着AD患者数量的增加,出于社会和医学原因,早期诊断受到了更多关注。但是,目前,某些神经退行性疾病(例如阿尔茨海默氏痴呆)的早期诊断准确性低于70%,并且经常没有接受适当的治疗。包括单光子发射计算机断层扫描(SPECT)在内的功能性脑成像通常用于指导临床医生的诊断。但是,常规的SPECT扫描评估通常依赖于人工重新定向,视觉读取和大脑某些区域的半定量分析。这些步骤耗时,主观且容易出错。本文展示了一种用于提高AD早期诊断准确性的全自动计算机辅助诊断(CAD)系统。所提出的方法基于特征选择和支持向量机(SVM)分类。拟议的系统对现有技术(例如体素特征(VAF)方法)进行了明显的改进,可实现90%的AD诊断准确性。

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