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Reinforcement Learning Control Of Quantum Error Correction

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Hartmut Neven
paper · 2025-11-11
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We address this challenge by unifying calibration with computation, granting the quantum error correction process a dual role: its error detection events are not only used to correct the logical quantum state, but are also repurposed as a learning signal, teaching a reinforcement learning (RL) agent to continuously steer the physical control parameters and stabilize the quantum system during the computation.

Reinforcement Learning for Autonomous Quantum Error Correction