English

Demonstration of non-Markovian process characterisation and control on a quantum processor

Quantum Physics 2020-12-11 v2

Abstract

In the scale-up of quantum computers, the framework underpinning fault-tolerance generally relies on the strong assumption that environmental noise affecting qubit logic is uncorrelated (Markovian). However, as physical devices progress well into the complex multi-qubit regime, attention is turning to understanding the appearance and mitigation of correlated -- or non-Markovian -- noise, which poses a serious challenge to the progression of quantum technology. This error type has previously remained elusive to characterisation techniques. Here, we develop a framework for characterising non-Markovian dynamics in quantum systems and experimentally test it on multi-qubit superconducting quantum devices. Where noisy processes cannot be accounted for using standard Markovian techniques, our reconstruction predicts the behaviour of the devices with an infidelity of 10310^{-3}. Our results show this characterisation technique leads to superior quantum control and extension of coherence time by effective decoupling from the non-Markovian environment. This framework, validated by our results, is applicable to any controlled quantum device and offers a significant step towards optimal device operation and noise reduction.

Keywords

Cite

@article{arxiv.2004.14018,
  title  = {Demonstration of non-Markovian process characterisation and control on a quantum processor},
  author = {Gregory A. L. White and Charles D. Hill and Felix A. Pollock and Lloyd C. L. Hollenberg and Kavan Modi},
  journal= {arXiv preprint arXiv:2004.14018},
  year   = {2020}
}
R2 v1 2026-06-23T15:10:33.581Z