Taming Epilepsy: Mean Field Control of Whole-Brain Dynamics
arXiv cs.LG / 3/20/2026
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Key Points
- GK-MFG combines reservoir-computing–based Koopman operator approximation with APAC-Net to address distributional control of high-dimensional brain dynamics.
- EEG dynamics are mapped into a linear latent space with graph Laplacian constraints derived from Phase Locking Value to preserve the brain's functional topology.
- The framework targets robust seizure suppression by integrating topology-aware control with data-driven neural dynamics.
- This work showcases a novel fusion of control theory, machine learning, and neuroscience with potential for broader whole-brain intervention applications.
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