Quantum-Tailored Machine-Learning Characterization of a Superconducting Qubit

Machine learning (ML) is a promising approach for performing challenging quantum-information tasks such as device characterization, calibration, and control. ML models can train directly on the data produced by a quantum device while remaining agnostic to the quantum nature of the learning task. How...

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Veröffentlicht in:PRX quantum 2021-12, Vol.2 (4), p.040355, Article 040355
Hauptverfasser: Genois, Elie, Gross, Jonathan A., Di Paolo, Agustin, Stevenson, Noah J., Koolstra, Gerwin, Hashim, Akel, Siddiqi, Irfan, Blais, Alexandre
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Sprache:eng
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Zusammenfassung:Machine learning (ML) is a promising approach for performing challenging quantum-information tasks such as device characterization, calibration, and control. ML models can train directly on the data produced by a quantum device while remaining agnostic to the quantum nature of the learning task. However, these generic models lack physical interpretability and usually require large datasets in order to learn accurately. Here we incorporate features of quantum mechanics in the design of our ML approach to characterize the dynamics of a quantum device and learn device parameters. This physics-inspired approach outperforms physics-agnostic recurrent neural networks trained on numerically generated and experimental data obtained from continuous weak measurement of a driven superconducting transmon qubit. This demonstration shows how leveraging domain knowledge improves the accuracy and efficiency of this characterization task, thus laying the groundwork for more scalable characterization techniques.
ISSN:2691-3399
2691-3399
DOI:10.1103/PRXQuantum.2.040355