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dynamic-neural-manifolds-neuromorphic-control

Dynamic neural manifolds for flexible closed-loop control on neuromorphic hardware. Implements a ring attractor spiking network on the SpiNNaker 2 chip where sensory-modulated heterogeneous inhibition, multiplicative gain, and transient currents drive rapid subspace rotations and fine-grained trajectory control within low-dimensional neural manifolds. Validated with a robotic maze-navigation simulation. Provides an explainable, neuroscience-grounded framework for mapping world-model plans onto motor control via manifold geometry. Applicable to: neuromorphic control, neural manifolds, ring attractor networks, subspace rotation, closed-loop SNN, SpiNNaker 2, low-dimensional neural dynamics, explainable neuromorphic architectures, behavioral switching.

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Repository
hiyenwong/ai_collection
Last source activity
July 17, 2026 at 02:00
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English
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