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qnrl-quantum-native-reinforcement-learning

Quantum-Native Reinforcement Learning (QnRL) methodology — distributional RL framework that learns conditional distributions in Hilbert space via superimposed and entangled quantum states using the Quantum Amplitude Kickback (QuAK) algorithm. Achieves up to 82.9% higher evaluation scores with 94.3% fewer parameters compared to classical RL baselines.

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