English

Real-time adaptive estimation of decoherence timescales for a single qubit

Quantum Physics 2024-02-22 v4

Abstract

Characterising the time over which quantum coherence survives is critical for any implementation of quantum bits, memories and sensors. The usual method for determining a quantum system's decoherence rate involves a suite of experiments probing the entire expected range of this parameter, and extracting the resulting estimation in post-processing. Here we present an adaptive multi-parameter Bayesian approach, based on a simple analytical update rule, to estimate the key decoherence timescales (T1T_1, T2T_2^* and T2T_2) and the corresponding decay exponent of a quantum system in real time, using information gained in preceding experiments. This approach reduces the time required to reach a given uncertainty by a factor up to an order of magnitude, depending on the specific experiment, compared to the standard protocol of curve fitting. A further speed-up of a factor 2\sim 2 can be realised by performing our optimisation with respect to sensitivity as opposed to variance.

Keywords

Cite

@article{arxiv.2210.06103,
  title  = {Real-time adaptive estimation of decoherence timescales for a single qubit},
  author = {Muhammad Junaid Arshad and Christiaan Bekker and Ben Haylock and Krzysztof Skrzypczak and Daniel White and Benjamin Griffiths and Joe Gore and Gavin W. Morley and Patrick Salter and Jason Smith and Inbar Zohar and Amit Finkler and Yoann Altmann and Erik M. Gauger and Cristian Bonato},
  journal= {arXiv preprint arXiv:2210.06103},
  year   = {2024}
}

Comments

made a change of word in the title ("Online" to "Real-time") and rearranged figures and text to improve the readability of the manuscript