Noisy Qudit vs Multiple Qubits : Conditions on Gate Efficiency for Enhancing Fidelity

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Hauptverfasser: Janković, Denis, Hartmann, Jean-Gabriel, Ruben, Mario, Hervieux, Paul-Antoine
Format: Preprint
Veröffentlicht: 2023
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author Janković, Denis
Hartmann, Jean-Gabriel
Ruben, Mario
Hervieux, Paul-Antoine
author_facet Janković, Denis
Hartmann, Jean-Gabriel
Ruben, Mario
Hervieux, Paul-Antoine
contents Today, multiple new platforms are implementing qudits, $d$-level quantum bases of information, for Quantum Information Processing (QIP). It is therefore crucial to study their efficiencies for QIP compared to more traditional qubit platforms. We present a comparative study of the infidelity scalings of a qudit and $n$-qubit systems, both with identical Hilbert space dimensions and noisy environments. The first-order response of the Average Gate Infidelity (AGI) to the noise in the Lindblad formalism, which was found to be gate-independent, was calculated analytically in the two systems being compared. This yielded a critical curve $O(d^2/\log_2(d))$ of the ratio of their respective gate times in units of decoherence time. This quantity indicates how time-efficient operations on these systems are. The curve delineates regions where each system has a higher rate of increase of the AGI than the other. This condition on gate efficiency was applied to different existing platforms. It was found that specific qudit platforms possess gate efficiencies competitive with state-of-the-art qubit platforms. Numerical simulations complemented this work and allowed for discussion of the applicability and limits of the linear response formalism.
format Preprint
id arxiv_https___arxiv_org_abs_2302_04543
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Noisy Qudit vs Multiple Qubits : Conditions on Gate Efficiency for Enhancing Fidelity
Janković, Denis
Hartmann, Jean-Gabriel
Ruben, Mario
Hervieux, Paul-Antoine
Quantum Physics
Mesoscale and Nanoscale Physics
Mathematical Physics
Atomic Physics
Today, multiple new platforms are implementing qudits, $d$-level quantum bases of information, for Quantum Information Processing (QIP). It is therefore crucial to study their efficiencies for QIP compared to more traditional qubit platforms. We present a comparative study of the infidelity scalings of a qudit and $n$-qubit systems, both with identical Hilbert space dimensions and noisy environments. The first-order response of the Average Gate Infidelity (AGI) to the noise in the Lindblad formalism, which was found to be gate-independent, was calculated analytically in the two systems being compared. This yielded a critical curve $O(d^2/\log_2(d))$ of the ratio of their respective gate times in units of decoherence time. This quantity indicates how time-efficient operations on these systems are. The curve delineates regions where each system has a higher rate of increase of the AGI than the other. This condition on gate efficiency was applied to different existing platforms. It was found that specific qudit platforms possess gate efficiencies competitive with state-of-the-art qubit platforms. Numerical simulations complemented this work and allowed for discussion of the applicability and limits of the linear response formalism.
title Noisy Qudit vs Multiple Qubits : Conditions on Gate Efficiency for Enhancing Fidelity
topic Quantum Physics
Mesoscale and Nanoscale Physics
Mathematical Physics
Atomic Physics
url https://arxiv.org/abs/2302.04543