Accurate predictions of individual differences in task-evoked brain activity from resting-state fMRI using a sparse ensemble learner

Author:

Zheng Ying-QiuORCID,Farahibozorg Seyedeh-RezvanORCID,Gong WeikangORCID,Rafipoor HosseinORCID,Jbabdi SaadORCID,Smith StephenORCID

Abstract

ABSTRACTModelling and predicting individual differences in task-evoked FMRI activity can have a wide range of applications from basic to clinical neuroscience. It has been shown that models based on resting-state activity can have high predictive accuracy. Here we propose several improvements to such models. Using a sparse ensemble leaner, we show that (i) features extracted using Stochastic Probabilistic Functional Modes (sPROFUMO) outperform the previously proposed dual-regression approach, (ii) that the shape and overall intensity of individualised task activations can be modelled separately and explicitly, (iii) training the model on predicting residual differences in brain activity further boosts individualised predictions. These results hold for both surface-based analyses of the Human Connectome Project data as well as volumetric analyses of UK-biobank data. Overall, our model achieves state of the art prediction accuracy on par with the test-retest reliability of tfMRI scans, suggesting that it has potential to supplement traditional task localisers.

Publisher

Cold Spring Harbor Laboratory

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