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Unfolding Quantum Computer Readout Noise

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arxiv 1910.01969 v2 pith:4NWWUXY5 submitted 2019-10-04 quant-ph physics.data-an

classification quant-phphysics.data-an
keywords quantummatrixphysicsreadoutunfoldingchallengeenergyerrors
verification ladder T0 review T1 audit T2 compute T3 formal

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In the current era of noisy intermediate-scale quantum (NISQ) computers, noisy qubits can result in biased results for early quantum algorithm applications. This is a significant challenge for interpreting results from quantum computer simulations for quantum chemistry, nuclear physics, high energy physics, and other emerging scientific applications. An important class of qubit errors are readout errors. The most basic method to correct readout errors is matrix inversion, using a response matrix built from simple operations to probe the rate of transitions from known initial quantum states to readout outcomes. One challenge with inverting matrices with large off-diagonal components is that the results are sensitive to statistical fluctuations. This challenge is familiar to high energy physics, where prior-independent regularized matrix inversion techniques (`unfolding') have been developed for years to correct for acceptance and detector effects when performing differential cross section measurements. We study various unfolding methods in the context of universal gate-based quantum computers with the goal of connecting the fields of quantum information science and high energy physics and providing a reference for future work. The method known as iterative Bayesian unfolding is shown to avoid pathologies from commonly used matrix inversion and least squares methods.

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

  1. Efficient multiphoton sampling of molecular vibronic spectra on a superconducting bosonic processor

    quant-ph 2019-08 conditional novelty 6.0 of 10

    A two-mode superconducting bosonic processor sampled molecular vibronic spectra of H2O, O3, NO2, and SO2 and demonstrated single-shot photon-number-resolving detection up to 15 photons per mode.

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