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Jointly using computationally selected and clinically suggested cortical volumes for automated identification of mild cognitive impairment

机译:联合使用通过计算选择和临床推荐的皮层体积自动识别轻度认知障碍

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Mild cognitive impairment (MCI) has been widely seen as the prophase of Alzheimer's disease, the most prominent kind of dementia, which has become a global health problem and social threat due to its damage to the cognitive function. Magnetic resonance imaging (MRI) offers the ability to visualize degenerative histological changes, and hence has been widely used to diagnose MCI from normal aging. In this paper, we use statistics to characterize each cortical volume obtained by spatially normalizing the brain MRI study onto the automated anatomical labelling (AAL) cortical parcellation map, and adopt the integer-coded genetic algorithm (GA) to computationally select cortical volumes, based on which accurate diagnosis of MCI can be achieved. Our results suggest that the 17 cortical volumes recommended by medical professionals underperform the 17 volumes selected by GA and jointly using the volumes, which were recommended simultaneously by clinicians and GA, and those, which were selected repeatedly by GA in different settings, can further improve the accuracy of MCI differentiation.
机译:轻度认知障碍(MCI)被广泛视为阿尔茨海默氏病(痴呆症最主要的一种)的前期阶段,由于其对认知功能的损害,它已成为全球性的健康问题和社会威胁。磁共振成像(MRI)提供了可视化变性组织学变化的能力,因此已被广泛用于诊断正常衰老的MCI。在本文中,我们使用统计数据来表征通过在自动解剖标记(AAL)皮质细胞分裂图上对大脑MRI研究进行空间归一化而获得的每个皮质体积,并采用整数编码遗传算法(GA)通过计算选择皮质体积,可以对MCI进行准确的诊断。我们的研究结果表明,由医学专家推荐的17个皮质体积要比GA选择并联合使用的体积(由临床医生和GA同时推荐以及由GA在不同环境中反复选择的体积)逊色,这可以进一步改善MCI区分的准确性。

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