bioRxiv · 10.1101/2024.06.15.599165
Complex harmonics reveal low-dimensional manifolds of critical brain dynamics
Abstract
The brain needs to perform time-critical computations to ensure survival. A potential solution lies in the non-local, distributed computation at the whole-brain level made possible by criticality and amplified by the rare long-range connections found in the brains unique anatomical structure. This non-locality can be captured by the mathematical structure of Schrodingers wave equation, which is at the heart of the novel CHARM (Complex Harmonics decomposition) framework that performs the necessary dimensional manifold reduction able to extract non-locality in critical spacetime brain dynamics. Using a large neuroimaging dataset of over 1,000 people, CHARM captured the critical, non-local/long-range nature of brain dynamics and the underlying mechanisms were established using a precise whole-brain model. Equally, CHARM revealed the significantly different critical dynamics of wakefulness and sleep. Overall, CHARM is a promising theoretical framework for capturing the low-dimensionality of the complex network dynamics observed in neuroscience and provides evidence that networks of brain regions rather than individual brain regions are the key computational engines of critical brain dynamics.
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Deco, G., Sanz Perl, Y., Kringelbach, M. L.. 2024-06-16. Complex harmonics reveal low-dimensional manifolds of critical brain dynamics. https://doi.org/10.1101/2024.06.15.599165
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