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Noise-Agnostic Quantum Error Mitigation with Data Augmented Neural Models

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arxiv 2311.01727 v2 pith:TIJNOMCJ submitted 2023-11-03 quant-ph cs.AIcs.LG

classification quant-phcs.AIcs.LG
keywords quantumnoisedataerrormitigationmodelsneuralcircuits
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Quantum error mitigation, a data processing technique for recovering the statistics of target processes from their noisy version, is a crucial task for near-term quantum technologies. Most existing methods require prior knowledge of the noise model or the noise parameters. Deep neural networks have a potential to lift this requirement, but current models require training data produced by ideal processes in the absence of noise. Here we build a neural model that achieves quantum error mitigation without any prior knowledge of the noise and without training on noise-free data. To achieve this feature, we introduce a quantum augmentation technique for error mitigation. Our approach applies to quantum circuits and to the dynamics of many-body and continuous-variable quantum systems, accommodating various types of noise models. We demonstrate its effectiveness by testing it both on simulated noisy circuits and on real quantum hardware.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. A Survey on Security with Quantum Computing

    cs.CR 2026-05 unverdicted novelty 2.0 of 10

    A survey consolidating literature on quantum computing security issues, threats to existing systems, and development of quantum-resilient solutions.

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