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ml-quantum-error-correction

Machine Learning approaches for Quantum Error Correction (QEC). Use when researching, designing, or implementing ML-assisted QEC systems including: (1) diffusion models for error decoding (DiffQEC pattern), (2) reinforcement learning for QEC control and calibration, (3) neural network decoders for surface codes and LDPC codes, (4) loss-biased fault-tolerant architectures, (5) quantum error correction for quantum machine learning (QML). Activation keywords: ML QEC, diffusion model quantum error, RL quantum control, neural decoder, quantum error correction machine learning, QEC decoder, fault-tolerant quantum computing ML, QML model validation, quantum mutation testing, quantum certified training, QNN robustness.

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