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通过最小化位点依赖性和二阶功能连接改善多站点自闭症分类

Improving Multi-Site Autism Classification via Site-Dependence Minimization and Second-Order Functional Connectivity.

作者信息

Kunda Mwiza, Zhou Shuo, Gong Gaolang, Lu Haiping

出版信息

IEEE Trans Med Imaging. 2023 Jan;42(1):55-65. doi: 10.1109/TMI.2022.3203899. Epub 2022 Dec 29.

Abstract

Machine learning has been widely used to develop classification models for autism spectrum disorder (ASD) using neuroimaging data. Recently, studies have shifted towards using large multi-site neuroimaging datasets to boost the clinical applicability and statistical power of results. However, the classification performance is hindered by the heterogeneous nature of agglomerative datasets. In this paper, we propose new methods for multi-site autism classification using the Autism Brain Imaging Data Exchange (ABIDE) dataset. We firstly propose a new second-order measure of functional connectivity (FC) named as Tangent Pearson embedding to extract better features for classification. Then we assess the statistical dependence between acquisition sites and FC features, and take a domain adaptation approach to minimize the site dependence of FC features to improve classification. Our analysis shows that 1) statistical dependence between site and FC features is statistically significant at the 5% level, and 2) extracting second-order features from neuroimaging data and minimizing their site dependence can improve over state-of-the-art (SOTA) classification results, achieving a classification accuracy of 73%. The code is available at https://github.com/kundaMwiza/fMRI-site-adaptation.

摘要

机器学习已被广泛用于利用神经影像数据开发自闭症谱系障碍(ASD)的分类模型。最近,研究已转向使用大型多站点神经影像数据集,以提高结果的临床适用性和统计效力。然而,分类性能受到聚合数据集异质性的阻碍。在本文中,我们提出了使用自闭症脑影像数据交换(ABIDE)数据集进行多站点自闭症分类的新方法。我们首先提出了一种新的功能连接性(FC)二阶度量,称为切线皮尔逊嵌入,以提取更好的分类特征。然后,我们评估采集站点与FC特征之间的统计依赖性,并采用域适应方法来最小化FC特征的站点依赖性以改善分类。我们的分析表明:1)站点与FC特征之间的统计依赖性在5%水平上具有统计学意义;2)从神经影像数据中提取二阶特征并最小化其站点依赖性可以超越当前最先进(SOTA)的分类结果,实现73%的分类准确率。代码可在https://github.com/kundaMwiza/fMRI-site-adaptation获取。

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