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Correlated Noise Estimation with Quantum Sensor Networks

Quantum Physics 2026-02-27 v2

Abstract

We address the metrological problem of estimating collective stochastic properties imprinted on a network of quantum sensors. Canonical examples include center-of-mass quadrature fluctuations in a system of bosonic modes and correlated dephasing in an ensemble of qubits (e.g., spins), bosons, or fermions. We develop a theoretical framework to determine the limits of correlated (weak) noise estimation with quantum sensor networks and reveal the requirements for entanglement advantage. Notably, an advantage emerges from the synergistic interplay between quantum correlations of the sensors and ``classical'' correlations of the noises. We determine optimal entangled probe states and identify a sensing protocol -- reminiscent of a many-body echo -- that achieves the fundamental limits of measurement sensitivity for a broad class of problems, unveiling a route towards entanglement-enhanced metrology of correlated many-body phenomena.

Keywords

Cite

@article{arxiv.2412.17903,
  title  = {Correlated Noise Estimation with Quantum Sensor Networks},
  author = {Anthony J. Brady and Yu-Xin Wang and Victor V. Albert and Alexey V. Gorshkov and Quntao Zhuang},
  journal= {arXiv preprint arXiv:2412.17903},
  year   = {2026}
}

Comments

Updated to closely match published version. 8+10 pages, 2 figures. Comments welcome!

R2 v1 2026-06-28T20:47:20.032Z