Publication | Open Access
Neural-network quantum state tomography
51
Citations
68
References
2022
Year
Quantum ScienceQuantum State ReconstructionQuantum TomographyQuantum ComputingPhysicsEngineeringNatural SciencesQuantum Machine LearningQuantum StatesApplied PhysicsQuantum AlgorithmQuantum InformationQuantum Optimization AlgorithmQuantum EntanglementDeep LearningState Tomography
We revisit the application of neural networks to quantum state tomography. We confirm that the positivity constraint can be successfully implemented with trained networks that convert outputs from standard feed-forward neural networks to valid descriptions of quantum states. Any standard neural-network architecture can be adapted with our method. Our results open possibilities to use state-of-the-art deep-learning methods for quantum state reconstruction under various types of noise.
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