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BrainTaskonomy: Learning How to Pretrain and What to Transfer in fMRI Foundation Models

First seen · 9/10/2026, 01:50 AMLatest activity · 9/10/2026, 01:50 AM

Pretraining fMRI foundation models has traditionally relied on flat mixtures of heterogeneous data and isolated task adaptation. BrainTaskonomy introduces a structured alternative without modifying model backbones. By using a lightweight diffusion proxy across ten fMRI domains, it establishes a priority-guided curriculum paired with noise-level scheduling, reducing key reconstruction and connectivity errors by up to 16.3%. Downstream, transfer dynamics among fifteen tasks are mapped into a directed graph where budgeted integer programming selects optimal transfer routes, replacing brute-force data aggregation with a systematic taxonomy of learning relations.

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There are 8 persisted snapshots in the last 24 hours. Peak heat was 0 at 9/12, 11:00; latest heat is 0.10.509/12, 11:00, event heat 09/12, 14:00, event heat 09/12, 17:00, event heat 09/12, 20:00, event heat 09/12, 23:00, event heat 09/13, 02:00, event heat 09/13, 05:00, event heat 09/13, 08:00, event heat 024 hours agoNow
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Reporting Timeline

  1. AggregatorarXiv9/10, 01:50 AMnot independentRepresentative
    BrainTaskonomy: Learning How to Pretrain and What to Transfer in fMRI Foundation Models