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Supported Datasets
NeuroSTORM provides end-to-end tools for fMRI preprocessing, self-supervised model training, and downstream analysis tasks across multiple public neuroimaging datasets.
Supported Datasets
Task Categories
Self-Supervised Pre-training
Analysis Modes
End-to-end preprocessing for volumetric fMRI data with skull stripping, registration, and brain extraction.
Extract and analyze region-of-interest (ROI) time series with Harvard-Oxford atlases and custom parcellations.
Support for SwiFT contrastive learning and MAE self-supervised methods on large-scale datasets.
Customizable deep learning models with configurable heads for classification, regression, and embedding tasks.
Ready-to-use preprocessing pipelines and data loaders for UKB, HCP, ABCD, ADHD200, and more.
Age/gender prediction, phenotype prediction, disease diagnosis, fMRI re-identification, and task state classification.
Browse our datasets, tasks, and documentation to get started with NeuroSTORM.