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Detecting and tracking drift in quantum information processors

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arxiv 1907.13608 v3 pith:OBFPSBOU submitted 2019-07-31 quant-ph physics.atom-phphysics.data-an

classification quant-phphysics.atom-phphysics.data-an
keywords quantuminstabilityprocessorstimeapplieddatademonstratedependence
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If quantum information processors are to fulfill their potential, the diverse errors that affect them must be understood and suppressed. But errors typically fluctuate over time, and the most widely used tools for characterizing them assume static error modes and rates. This mismatch can cause unheralded failures, misidentified error modes, and wasted experimental effort. Here, we demonstrate a spectral analysis technique for resolving time dependence in quantum processors. Our method is fast, simple, and statistically sound. It can be applied to time-series data from any quantum processor experiment. We use data from simulations and trapped-ion qubit experiments to show how our method can resolve time dependence when applied to popular characterization protocols, including randomized benchmarking, gate set tomography, and Ramsey spectroscopy. In the experiments, we detect instability and localize its source, implement drift control techniques to compensate for this instability, and then demonstrate that the instability has been suppressed.

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Cited by 1 Pith paper

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

  1. Detecting crosstalk errors in quantum information processors

    quant-ph 2019-08 conditional novelty 6.0 of 10

    Crosstalk in multi-qubit processors can be detected and localized from conditional independence tests on settings and outcomes, using a polynomial number of experiments.

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