Multi-site clustering and nested feature extraction for identifying autism spectrum disorder with resting-state fMRI

人工智能 模式识别(心理学) 体素 聚类分析 功能磁共振成像 计算机科学 支持向量机 可解释性 判别式 静息状态功能磁共振成像 自闭症谱系障碍 特征提取 自闭症 心理学 神经科学 发展心理学
作者
Nan Wang,Dongren Yao,Lizhuang Ma,Mingxia Liu
出处
期刊:Medical Image Analysis [Elsevier BV]
卷期号:75: 102279-102279 被引量:83
标识
DOI:10.1016/j.media.2021.102279
摘要

Brain functional connectivity (FC) derived from resting-state functional magnetic resonance imaging (rs-fMRI) has been widely employed to study neuropsychiatric disorders such as autism spectrum disorder (ASD). Existing studies usually suffer from (1) significant data heterogeneity caused by different scanners or studied populations in multiple sites, (2) curse of dimensionality caused by millions of voxels in each fMRI scan and a very limited number (tens or hundreds) of training samples, and (3) poor interpretability, which hinders the identification of reproducible disease biomarkers. To this end, we propose a Multi-site Clustering and Nested Feature Extraction (MC-NFE) method for fMRI-based ASD detection. Specifically, we first divide multi-site training data into ASD and healthy control (HC) groups. To model inter-site heterogeneity within each category, we use a similarity-driven multiview linear reconstruction model to learn latent representations and perform subject clustering within each group. We then design a nested singular value decomposition (SVD) method to mitigate inter-site heterogeneity and extract FC features by learning both local cluster-shared features across sites within each category and global category-shared features across ASD and HC groups, followed by a linear support vector machine (SVM) for ASD detection. Experimental results on 609 subjects with rs-fMRI from the ABIDE database with 21 imaging sites suggest that the proposed MC-NFE outperforms several state-of-the-art methods in ASD detection. The most discriminative FCs identified by the MC-NFE are mainly located in default mode network, salience network, and cerebellum region, which could be used as potential biomarkers for fMRI-based ASD analysis.
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