English

Scalable noisy quantum circuits for biased-noise qubits

Quantum Physics 2024-08-20 v5

Abstract

In this work, we consider biased-noise qubits affected only by bit-flip errors, which is motivated by existing systems of stabilized cat qubits. This property allows us to design a class of noisy Hadamard-tests involving entangling and certain non-Clifford gates, which can be conducted reliably with only a polynomial overhead in algorithm repetitions. On the flip side we also found classical algorithms able to efficiently simulate both the noisy and noiseless versions of our specific variants of Hadamard test. We propose to use these algorithms as a simple benchmark of the biasness of the noise at the scale of large circuits. The bias being checked on a full computational task, it makes our benchmark sensitive to crosstalk or time-correlated errors, which are usually invisible from individual gate tomography. For realistic noise models, phase-flip will not be negligible, but in the Pauli-Twirling approximation, we show that our benchmark could check the correctness of circuits containing up to 10610^6 gates, several orders of magnitudes larger than circuits not exploiting a noise-bias. Our benchmark is applicable for an arbitrary noise-bias, beyond Pauli models.

Keywords

Cite

@article{arxiv.2305.02045,
  title  = {Scalable noisy quantum circuits for biased-noise qubits},
  author = {Marco Fellous-Asiani and Moein Naseri and Chandan Datta and Alexander Streltsov and Michał Oszmaniec},
  journal= {arXiv preprint arXiv:2305.02045},
  year   = {2024}
}

Comments

Updated version focusing on the benchmarking protocol by writing down the precise protocol and generalizing it to an arbitrary local biased noise model

R2 v1 2026-06-28T10:24:26.725Z