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quantum-memory-rl

Reinforcement learning for quantum processes with hidden memory. Agent interacts with environment maintaining hidden quantum states evolving via unknown quantum channels, using quantum instruments for sequential intervention. Proves O~(sqrt(K)) regret bound via optimistic maximum-likelihood estimation. Use when: designing RL agents for quantum control with memory, analyzing exploration-exploitation trade-offs in quantum systems, or studying thermodynamic cost of learning in quantum processes.

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Repository
hiyenwong/ai_collection
Last source activity
July 7, 2026 at 08:26
Detected SKILL.md language
English
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2
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0

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