Statistical Pitfalls in Brain Age Analyses

Author:

Butler Ellyn R.ORCID,Chen AndrewORCID,Ramadan RabieORCID,Le Trang T.,Ruparel Kosha,Moore Tyler M.ORCID,Satterthwaite Theodore D.,Zhang FengqingORCID,Shou HaochangORCID,Gur Ruben C.ORCID,Nichols Thomas E.,Shinohara Russell T.ORCID

Abstract

AbstractOver the past decade, there has been an abundance of research on the difference between age and age predicted using brain features, which is commonly referred to as the “brain age gap”. Researchers have identified that the brain age gap, as a linear transformation of an out-of-sample residual, is dependent on age. As such, any group differences on the brain age gap could simply be due to group differences on age. To mitigate the brain age gap’s dependence on age, it has been proposed that age be regressed out of the brain age gap. If this modified brain age gap (MBAG) is treated as a corrected deviation from age, model accuracy statistics such as R2 will be artificially inflated. Given the limitations of proposed brain age analyses, further theoretical work is warranted to determine the best way to quantify deviation from normality.HighlightsThe brain age gap is an out-of-sample residual, and as such varies as a function of age.A recently proposed modification of the brain age gap, designed to mitigate the dependence on age, results in inflated model accuracy statistics if used incorrectly.Given these limitations, we suggest that new methods should be developed to quantify deviation from normal developmental and aging trajectories.

Publisher

Cold Spring Harbor Laboratory

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