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neural-fields-world-models

Neural Fields as World Models methodology — isomorphic world models that preserve sensory topology for physics prediction as geometric propagation rather than abstract state transition. Motor-gated neural fields with local lateral connectivity and action-conditional prediction within spatial maps. Use for: world model architectures, sensory cortex modeling, offline task learning, action-conditional prediction, spatial prediction, embodied AI, neural field implementations. Activation: neural field, world model, isomorphic, spatial topology, motor-gated, action-conditional, offline learning, embodied cognition, sensory preservation.

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hiyenwong/ai_collection
Last source activity
July 13, 2026 at 02:00
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