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Local mapping of detector response for reliable quantum state estimation

Author

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  • Merlin Cooper

    (Clarendon Laboratory, University of Oxford)

  • Michał Karpiński

    (Clarendon Laboratory, University of Oxford)

  • Brian J. Smith

    (Clarendon Laboratory, University of Oxford)

Abstract

Improved measurement techniques are central to technological development and foundational scientific exploration. Quantum physics relies on detectors sensitive to non-classical features of systems, enabling precise tests of physical laws and quantum-enhanced technologies including precision measurement and secure communications. Accurate detector response calibration for quantum-scale inputs is key to future research and development in these cognate areas. To address this requirement, quantum detector tomography has been recently introduced. However, this technique becomes increasingly challenging as the complexity of the detector response and input space grow in a number of measurement outcomes and required probe states, leading to further demands on experiments and data analysis. Here we present an experimental implementation of a versatile, alternative characterization technique to address many-outcome quantum detectors that limits the input calibration region and does not involve numerical post processing. To demonstrate the applicability of this approach, the calibrated detector is subsequently used to estimate non-classical photon number states.

Suggested Citation

  • Merlin Cooper & Michał Karpiński & Brian J. Smith, 2014. "Local mapping of detector response for reliable quantum state estimation," Nature Communications, Nature, vol. 5(1), pages 1-6, September.
  • Handle: RePEc:nat:natcom:v:5:y:2014:i:1:d:10.1038_ncomms5332
    DOI: 10.1038/ncomms5332
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