Qutrit randomized benchmarking

Ternary quantum processors offer significant computational advantages over conventional qubit technologies, leveraging the encoding and processing of quantum information in qutrits (three-level systems). To evaluate and compare the performance of such emerging quantum hardware it is essential to hav...

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Veröffentlicht in:arXiv.org 2020-08
Hauptverfasser: Morvan, A, Ramasesh, V V, Blok, M S, Kreikebaum, J M, O'Brien, K, Chen, L, Mitchell, B K, Naik, R K, Santiago, D I, Siddiqi, I
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Sprache:eng
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Zusammenfassung:Ternary quantum processors offer significant computational advantages over conventional qubit technologies, leveraging the encoding and processing of quantum information in qutrits (three-level systems). To evaluate and compare the performance of such emerging quantum hardware it is essential to have robust benchmarking methods suitable for a higher-dimensional Hilbert space. We demonstrate extensions of industry standard Randomized Benchmarking (RB) protocols, developed and used extensively for qubits, suitable for ternary quantum logic. Using a superconducting five-qutrit processor, we find a single-qutrit gate infidelity as low as \(2.38 \times 10^{-3}\). Through interleaved RB, we find that this qutrit gate error is largely limited by the native (qubit-like) gate fidelity, and employ simultaneous RB to fully characterize cross-talk errors. Finally, we apply cycle benchmarking to a two-qutrit CSUM gate and obtain a two-qutrit process fidelity of \(0.82\). Our results demonstrate a RB-based tool to characterize the obtain overall performance of a qutrit processor, and a general approach to diagnose control errors in future qudit hardware.
ISSN:2331-8422
DOI:10.48550/arxiv.2008.09134