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context-reconfiguration-sparse-temporal

Mechanistic analysis of joint sparse coding and temporal dynamics as the neural basis for context reconfiguration. Combines mouse mPFC recordings with computational network analysis to show how sparsity reduces cross-context interference while temporal dynamics enhance context separability. Establishes SNNs as naturally endowed with both properties, enabling lifelong learning retention without auxiliary heuristics. Energy-efficient architectural principle for stable adaptation. Activation triggers: context reconfiguration mechanism, sparse coding mPFC, temporal dynamics context, catastrophic forgetting SNN, lifelong learning without rehearsal, mPFC neural recordings, cross-context interference, energy-efficient adaptation, spiking neural network retention, neural representation preservation, context switching brain mechanism, joint sparse temporal coding

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