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临床队列中的人群异质性会影响脑影像的预测准确性。

Population heterogeneity in clinical cohorts affects the predictive accuracy of brain imaging.

机构信息

McConnell Brain Imaging Centre (BIC), Montreal Neurological Institute (MNI), Faculty of Medicine, McGill University, Montreal, Canada.

Institute of Neuroscience and Medicine (INM-1), Forschungszentrum Jülich, Jülich, Germany.

出版信息

PLoS Biol. 2022 Apr 29;20(4):e3001627. doi: 10.1371/journal.pbio.3001627. eCollection 2022 Apr.

Abstract

Brain imaging research enjoys increasing adoption of supervised machine learning for single-participant disease classification. Yet, the success of these algorithms likely depends on population diversity, including demographic differences and other factors that may be outside of primary scientific interest. Here, we capitalize on propensity scores as a composite confound index to quantify diversity due to major sources of population variation. We delineate the impact of population heterogeneity on the predictive accuracy and pattern stability in 2 separate clinical cohorts: the Autism Brain Imaging Data Exchange (ABIDE, n = 297) and the Healthy Brain Network (HBN, n = 551). Across various analysis scenarios, our results uncover the extent to which cross-validated prediction performances are interlocked with diversity. The instability of extracted brain patterns attributable to diversity is located preferentially in regions part of the default mode network. Collectively, our findings highlight the limitations of prevailing deconfounding practices in mitigating the full consequences of population diversity.

摘要

脑成像研究越来越多地采用监督机器学习来进行单参与者疾病分类。然而,这些算法的成功可能取决于人群的多样性,包括人口统计学差异和其他可能超出主要科学兴趣的因素。在这里,我们利用倾向评分作为复合混杂指数来量化由于主要人群变异源引起的多样性。我们在两个独立的临床队列中描绘了人群异质性对预测准确性和模式稳定性的影响:自闭症脑成像数据交换(ABIDE,n = 297)和健康大脑网络(HBN,n = 551)。在各种分析场景中,我们的结果揭示了交叉验证预测性能与多样性之间的关联程度。由于多样性而导致的提取脑模式的不稳定性优先位于默认模式网络的一部分区域。总的来说,我们的研究结果强调了目前去混杂实践在减轻人群多样性的全部影响方面的局限性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5906/9094526/96e0e5203682/pbio.3001627.g001.jpg

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