Sufficient Conditions for Efficient Classical Simulation of Quantum Optics

We provide general sufficient conditions for the efficient classical simulation of quantum-optics experiments that involve inputting states to a quantum process and making measurements at the output. The first condition is based on the negativity of phase-space quasiprobability distributions (PQDs)...

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Main Authors: Saleh Rahimi-Keshari, Timothy C. Ralph, Carlton M. Caves
Format: Article
Language:English
Published: American Physical Society 2016-06-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.6.021039
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spelling doaj-60d6dba6f3634651a94da83216c0b1bd2020-11-24T21:57:50ZengAmerican Physical SocietyPhysical Review X2160-33082016-06-016202103910.1103/PhysRevX.6.021039Sufficient Conditions for Efficient Classical Simulation of Quantum OpticsSaleh Rahimi-KeshariTimothy C. RalphCarlton M. CavesWe provide general sufficient conditions for the efficient classical simulation of quantum-optics experiments that involve inputting states to a quantum process and making measurements at the output. The first condition is based on the negativity of phase-space quasiprobability distributions (PQDs) of the output state of the process and the output measurements; the second one is based on the negativity of PQDs of the input states, the output measurements, and the transition function associated with the process. We show that these conditions provide useful practical tools for investigating the effects of imperfections in implementations of boson sampling. In particular, we apply our formalism to boson-sampling experiments that use single-photon or spontaneous-parametric-down-conversion sources and on-off photodetectors. Considering simple models for loss and noise, we show that above some threshold for the probability of random counts in the photodetectors, these boson-sampling experiments are classically simulatable. We identify mode mismatching as the major source of error contributing to random counts and suggest that this is the chief challenge for implementations of boson sampling of interesting size.http://doi.org/10.1103/PhysRevX.6.021039
collection DOAJ
language English
format Article
sources DOAJ
author Saleh Rahimi-Keshari
Timothy C. Ralph
Carlton M. Caves
spellingShingle Saleh Rahimi-Keshari
Timothy C. Ralph
Carlton M. Caves
Sufficient Conditions for Efficient Classical Simulation of Quantum Optics
Physical Review X
author_facet Saleh Rahimi-Keshari
Timothy C. Ralph
Carlton M. Caves
author_sort Saleh Rahimi-Keshari
title Sufficient Conditions for Efficient Classical Simulation of Quantum Optics
title_short Sufficient Conditions for Efficient Classical Simulation of Quantum Optics
title_full Sufficient Conditions for Efficient Classical Simulation of Quantum Optics
title_fullStr Sufficient Conditions for Efficient Classical Simulation of Quantum Optics
title_full_unstemmed Sufficient Conditions for Efficient Classical Simulation of Quantum Optics
title_sort sufficient conditions for efficient classical simulation of quantum optics
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2016-06-01
description We provide general sufficient conditions for the efficient classical simulation of quantum-optics experiments that involve inputting states to a quantum process and making measurements at the output. The first condition is based on the negativity of phase-space quasiprobability distributions (PQDs) of the output state of the process and the output measurements; the second one is based on the negativity of PQDs of the input states, the output measurements, and the transition function associated with the process. We show that these conditions provide useful practical tools for investigating the effects of imperfections in implementations of boson sampling. In particular, we apply our formalism to boson-sampling experiments that use single-photon or spontaneous-parametric-down-conversion sources and on-off photodetectors. Considering simple models for loss and noise, we show that above some threshold for the probability of random counts in the photodetectors, these boson-sampling experiments are classically simulatable. We identify mode mismatching as the major source of error contributing to random counts and suggest that this is the chief challenge for implementations of boson sampling of interesting size.
url http://doi.org/10.1103/PhysRevX.6.021039
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