Early Diagnosis and Biomarkers of Alzheimer’s Disease Based on Spatio-temporal Graph Convolution Network

海马旁回 库尼乌斯 颞中回 额中回 神经影像学 功能磁共振成像 后扣带 舌回 额上回 计算机科学 神经科学 颞叶 人工智能 模式识别(心理学) 心理学 楔前 癫痫
作者
Ying Zhang,Jihai Jiang,Ronghua Ling,Luyao Wang,Jiehui Jiang,Min Wang
标识
DOI:10.1109/embc40787.2023.10341155
摘要

Functional magnetic resonance imaging (fMRI) could detect the dynamic activity of brain function and communication. Previous studies have found reduced brain functional connectivity in Alzheimer’s disease (AD) patients. In this study, we proposed to process fMRI data by spatio-temporal graph convolution network (ST-GCN) to achieve an early differential diagnosis of AD and to extract image markers using gradient-weighted class activation mapping (Grad-CAM). The data used in this study were from the Alzheimer’s Disease Neuroimaging Initiative (ADNI) database, Xuanwu Hospital, and Tongji Hospital. The study included 1105 normal controls and 790 patients with mild cognitive impairment (MCI). The grid search method of K-fold cross-validation was used to train the model. In addition, we used Grad-CAM to extract image markers and carried out visualization analysis. This model obtains better AD diagnosis power: accuracy = 0.92, sensitivity = 0.97, specificity = 0.89, and area under the curve=0.96. Salient brain regions extracted by Grad-CAM include the paracentral lobule, inferior occipital gyrus, middle frontal gyrus, superior temporal gyrus, cuneus, posterior cingulate gyrus, and superior parietal gyrus. Our proposed ST-GAN model will help to explore objective markers that can be used for the early diagnosis of AD.Clinical relevance— Our proposed model shows great potential for enhancing the understanding of the pathology of AD by detecting functional connectivity interruptions.
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