Improving Multilevel Qudit Readout Fidelity During Relaxation Events via Hidden Markov Models

ORAL

Abstract

Quantum state determination with high fidelity is a requirement for quantum computation. However, qubit relaxation imposes a limiting constraint on readout fidelity. Longer readout measurement times increase the distinguishability between the qudit states, however state decay during a long readout pulse can obfuscate the measurement and result in misclassification of qudit state. To overcome this constraint, we demonstrate high-fidelity multi-state readout by detecting qubit relaxation with Hidden Markov Models on LLNL’s Quantum Design and Integration Testbed (QuDIT). The ability of Hidden Markov Models to account for relaxation and thermal excitation processes allows for longer readout times, extraction of transition probabilities, and higher readout fidelity.

*This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE-AC52-07NA27344. This work was partially supported by the DOE ASCR quantum testbed pathfinder program and ASC Beyond Moore’s Law quantum effort. LLNL-ABS-795449

Presenters

  • Luis Martinez

    • Lawrence Livermore National Laboratory

Authors

  • Luis Martinez

    • Lawrence Livermore National Laboratory
  • Yaniv J. Rosen

    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
  • Jonathan L. DuBois

    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab