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Quantum Benchmarking via Random Dynamical Quantum Maps

Quantum Physics 2024-04-30 v1

Abstract

We present a benchmarking protocol for universal quantum computers, achieved through the simulation of random dynamical quantum maps. This protocol provides a holistic assessment of system-wide error rates, encapsulating both gate inaccuracies and the errors associated with mid-circuit qubit measurements and resets. By employing random quantum circuits and segmenting mid-circuit qubit measurement and reset in a repeated fashion, we steer the system of qubits to an ensemble of steady-states. These steady-states are described by random Wishart matrices, and align with the steady-state characteristics previously identified in random Lindbladian dynamics, including the universality property. The protocol assesses the resulting ensemble probability distribution measured in the computational basis, effectively avoiding a tomographic reconstruction. Our various numerical simulations demonstrate the relationship between the final distribution and different error sources. Additionally, we implement the protocol on state-of-the-art transmon qubits provided by IBM Quantum, drawing comparisons between empirical results, theoretical expectations, and simulations derived from a fitted noise model of the device.

Keywords

Cite

@article{arxiv.2404.18846,
  title  = {Quantum Benchmarking via Random Dynamical Quantum Maps},
  author = {Daniel Volya and Prabhat Mishra},
  journal= {arXiv preprint arXiv:2404.18846},
  year   = {2024}
}
R2 v1 2026-06-28T16:10:02.536Z