Imaging stars with quantum error correction

Fuente: arXiv
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Main Authors: Huang, Zixin, Brennen, Gavin K., Ouyang, Yingkai
Format: Preprint
Published: 2022
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author Huang, Zixin
Brennen, Gavin K.
Ouyang, Yingkai
author_facet Huang, Zixin
Brennen, Gavin K.
Ouyang, Yingkai
contents The development of high-resolution, large-baseline optical interferometers would revolutionize astronomical imaging. However, classical techniques are hindered by physical limitations including loss, noise, and the fact that the received light is generally quantum in nature. We show how to overcome these issues using quantum communication techniques. We present a general framework for using quantum error correction codes for protecting and imaging starlight received at distant telescope sites. In our scheme, the quantum state of light is coherently captured into a non-radiative atomic state via Stimulated Raman Adiabatic Passage, which is then imprinted into a quantum error correction code. The code protects the signal during subsequent potentially noisy operations necessary to extract the image parameters. We show that even a small quantum error correction code can offer significant protection against noise. For large codes, we find noise thresholds below which the information can be preserved. Our scheme represents an application for near-term quantum devices that can increase imaging resolution beyond what is feasible using classical techniques.
format Preprint
id arxiv_https___arxiv_org_abs_2204_06044
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Imaging stars with quantum error correction
Huang, Zixin
Brennen, Gavin K.
Ouyang, Yingkai
Quantum Physics
Instrumentation and Methods for Astrophysics
Optics
The development of high-resolution, large-baseline optical interferometers would revolutionize astronomical imaging. However, classical techniques are hindered by physical limitations including loss, noise, and the fact that the received light is generally quantum in nature. We show how to overcome these issues using quantum communication techniques. We present a general framework for using quantum error correction codes for protecting and imaging starlight received at distant telescope sites. In our scheme, the quantum state of light is coherently captured into a non-radiative atomic state via Stimulated Raman Adiabatic Passage, which is then imprinted into a quantum error correction code. The code protects the signal during subsequent potentially noisy operations necessary to extract the image parameters. We show that even a small quantum error correction code can offer significant protection against noise. For large codes, we find noise thresholds below which the information can be preserved. Our scheme represents an application for near-term quantum devices that can increase imaging resolution beyond what is feasible using classical techniques.
title Imaging stars with quantum error correction
topic Quantum Physics
Instrumentation and Methods for Astrophysics
Optics
url https://arxiv.org/abs/2204.06044