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  • Institute for Quantum Computing

    Characterizing large-scale quantum computers via cycle benchmarking

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    Abstract

    Quantum computers promise to solve certain problems more efficiently than their digital counterparts. A major challenge towards practically useful quantum computing is characterizing and reducing the various errors that accumulate during an algorithm running on large-scale processors. Current characterization techniques are unable to adequately account for the exponentially large set of potential errors, including cross-talk and other correlated noise sources. Here we develop cycle benchmarking, a rigorous and practically scalable protocol for characterizing local and global errors across multi-qubit quantum processors. We experimentally demonstrate its practicality by quantifying such errors in non-entangling and entangling operations on an ion-trap quantum computer with up to 10 qubits, and total process fidelities for multi-qubit entangling gates ranging from 99.6(1)% for 2 qubits to 86(2)% for 10 qubits. Furthermore, cycle benchmarking data validates that the error rate per single-qubit gate and per two-qubit coupling does not increase with increasing system size.

     

    © Erhard, A., Wallman, J. J., Postler, L., Meth, M., Stricker, R., Martinez, E. A., Schindler, P., Monz, T., Emerson, J., & Blatt, R. (2019). Characterizing large-scale quantum computers via cycle benchmarking. Nature Communications, 10(1). https://doi.org/10.1038/s41467-019-13068-7

    Author(s)

    Alexander Erhard, Joel J. Wallman, Lukas Postler, Michael Meth, Roman Stricker, Esteban A. Martinez, Philip Schindler, Thomas Monz, Joseph Emerson, Rainer Blatt

    Project

    Developing Tools for Quantum Characterization and Validation

    Date

    2019-11-25

    Publication

    Nature Communications

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