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predictable-mean-field-chaos-rnn

Predictable Mean-Field Chaos in Random Recurrent Networks methodology — Krylov state space analysis revealing latent determinism in mean-field dynamics for analytic nonlinearities with fast Fourier decay. Demonstrates that microscopic sensitivity and predictive complexity are distinct aspects of chaos. Use when: analyzing RNN chaos, mean-field theory, Krylov complexity, Lyapunov exponents, Hamiltonian chaotic dynamics, classical dissipative systems, or prediction theory in recurrent networks.

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hiyenwong/ai_collection
Last source activity
July 7, 2026 at 08:26
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English
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