Model and predict age and sex in healthy subjects using brain white matter features: a deep learning approach
2022 IEEE 19th International Symposium on Biomedical Imaging (ISBI), 2022•ieeexplore.ieee.org
The human brain's white matter (WM) structure is of immense interest to the scientific
community. Diffusion MRI gives a powerful tool to describe the brain WM structure non-
invasively. To potentially enable monitoring of age-related changes and investigation of sex-
related brain structure differences on the mapping between the brain connectome and
healthy subjects' age and sex, we extract fiber-cluster-based diffusion features and predict
sex and age with a novel ensembled neural network classifier. We conduct experiments on …
community. Diffusion MRI gives a powerful tool to describe the brain WM structure non-
invasively. To potentially enable monitoring of age-related changes and investigation of sex-
related brain structure differences on the mapping between the brain connectome and
healthy subjects' age and sex, we extract fiber-cluster-based diffusion features and predict
sex and age with a novel ensembled neural network classifier. We conduct experiments on …
The human brain’s white matter (WM) structure is of immense interest to the scientific community. Diffusion MRI gives a powerful tool to describe the brain WM structure non-invasively. To potentially enable monitoring of age-related changes and investigation of sex-related brain structure differences on the mapping between the brain connectome and healthy subjects’ age and sex, we extract fiber-cluster-based diffusion features and predict sex and age with a novel ensembled neural network classifier. We conduct experiments on the Human Connectome Project (HCP) young adult dataset and show that our model achieves 94.82% accuracy in sex prediction and 2.51 years MAE in age prediction. We also show that the fractional anisotropy (FA) is the most predictive of sex, while the number of fibers is the most predictive of age and the combination of different features can improve the model performance.
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