Optical quantum super-resolution imaging and hypothesis testing

Fuente: arXiv
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Main Authors: Zanforlin, Ugo, Lupo, Cosmo, Connolly, Peter W. R., Kok, Pieter, Buller, Gerald S., Huang, Zixin
Format: Preprint
Published: 2022
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author Zanforlin, Ugo
Lupo, Cosmo
Connolly, Peter W. R.
Kok, Pieter
Buller, Gerald S.
Huang, Zixin
author_facet Zanforlin, Ugo
Lupo, Cosmo
Connolly, Peter W. R.
Kok, Pieter
Buller, Gerald S.
Huang, Zixin
contents Estimating the angular separation between two incoherent thermal sources is a challenging task for direct imaging, especially when it is smaller than or comparable to the Rayleigh length. In addition, the task of discriminating whether there are one or two sources followed by detecting the faint emission of a secondary source in the proximity of a much brighter one is in itself a severe challenge for direct imaging. Here, we experimentally demonstrate two tasks for superresolution imaging based on quantum state discrimination and quantum imaging techniques. We show that one can significantly reduce the probability of error for detecting the presence of a weak secondary source, especially when the two sources have small angular separations. In this work, we reduce the experimental complexity down to a single two-mode interferometer: we show that (1) this simple set-up is sufficient for the state discrimination task, and (2) if the two sources are of equal brightness, then this measurement can super-resolve their angular separation, saturating the quantum Cramér-Rao bound. By using a collection baseline of 5.3~mm, we resolve the angular separation of two sources that are placed 15~$μ$m apart at a distance of 1.0~m with an accuracy of $1.7\%$--this is between 2 to 3 orders of magnitudes more accurate than shot-noise limited direct imaging.
format Preprint
id arxiv_https___arxiv_org_abs_2202_09406
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Optical quantum super-resolution imaging and hypothesis testing
Zanforlin, Ugo
Lupo, Cosmo
Connolly, Peter W. R.
Kok, Pieter
Buller, Gerald S.
Huang, Zixin
Quantum Physics
Optics
Estimating the angular separation between two incoherent thermal sources is a challenging task for direct imaging, especially when it is smaller than or comparable to the Rayleigh length. In addition, the task of discriminating whether there are one or two sources followed by detecting the faint emission of a secondary source in the proximity of a much brighter one is in itself a severe challenge for direct imaging. Here, we experimentally demonstrate two tasks for superresolution imaging based on quantum state discrimination and quantum imaging techniques. We show that one can significantly reduce the probability of error for detecting the presence of a weak secondary source, especially when the two sources have small angular separations. In this work, we reduce the experimental complexity down to a single two-mode interferometer: we show that (1) this simple set-up is sufficient for the state discrimination task, and (2) if the two sources are of equal brightness, then this measurement can super-resolve their angular separation, saturating the quantum Cramér-Rao bound. By using a collection baseline of 5.3~mm, we resolve the angular separation of two sources that are placed 15~$μ$m apart at a distance of 1.0~m with an accuracy of $1.7\%$--this is between 2 to 3 orders of magnitudes more accurate than shot-noise limited direct imaging.
title Optical quantum super-resolution imaging and hypothesis testing
topic Quantum Physics
Optics
url https://arxiv.org/abs/2202.09406