Bounding sets of sequential quantum correlations and device-independent randomness certification
An important problem in quantum information theory is that of bounding sets of correlations that arise from making local measurements on entangled states of arbitrary dimension. Currently, the best-known method to tackle this problem is the NPA hierarchy; an infinite sequence of semidefinite program...
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Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften
2020-10-01
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Series: | Quantum |
Online Access: | https://quantum-journal.org/papers/q-2020-10-19-344/pdf/ |
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doaj-9d414d6ad3914729890bfa15bbabe4a42020-11-25T03:57:27ZengVerein zur Förderung des Open Access Publizierens in den QuantenwissenschaftenQuantum2521-327X2020-10-01434410.22331/q-2020-10-19-34410.22331/q-2020-10-19-344Bounding sets of sequential quantum correlations and device-independent randomness certificationJoseph BowlesFlavio BaccariAlexia SalavrakosAn important problem in quantum information theory is that of bounding sets of correlations that arise from making local measurements on entangled states of arbitrary dimension. Currently, the best-known method to tackle this problem is the NPA hierarchy; an infinite sequence of semidefinite programs that provides increasingly tighter outer approximations to the desired set of correlations. In this work we consider a more general scenario in which one performs sequences of local measurements on an entangled state of arbitrary dimension. We show that a simple adaptation of the original NPA hierarchy provides an analogous hierarchy for this scenario, with comparable resource requirements and convergence properties. We then use the method to tackle some problems in device-independent quantum information. First, we show how one can robustly certify over 2.3 bits of device-independent local randomness from a two-quibt state using a sequence of measurements, going beyond the theoretical maximum of two bits that can be achieved with non-sequential measurements. Finally, we show tight upper bounds to two previously defined tasks in sequential Bell test scenarios.https://quantum-journal.org/papers/q-2020-10-19-344/pdf/ |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Joseph Bowles Flavio Baccari Alexia Salavrakos |
spellingShingle |
Joseph Bowles Flavio Baccari Alexia Salavrakos Bounding sets of sequential quantum correlations and device-independent randomness certification Quantum |
author_facet |
Joseph Bowles Flavio Baccari Alexia Salavrakos |
author_sort |
Joseph Bowles |
title |
Bounding sets of sequential quantum correlations and device-independent randomness certification |
title_short |
Bounding sets of sequential quantum correlations and device-independent randomness certification |
title_full |
Bounding sets of sequential quantum correlations and device-independent randomness certification |
title_fullStr |
Bounding sets of sequential quantum correlations and device-independent randomness certification |
title_full_unstemmed |
Bounding sets of sequential quantum correlations and device-independent randomness certification |
title_sort |
bounding sets of sequential quantum correlations and device-independent randomness certification |
publisher |
Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften |
series |
Quantum |
issn |
2521-327X |
publishDate |
2020-10-01 |
description |
An important problem in quantum information theory is that of bounding sets of correlations that arise from making local measurements on entangled states of arbitrary dimension. Currently, the best-known method to tackle this problem is the NPA hierarchy; an infinite sequence of semidefinite programs that provides increasingly tighter outer approximations to the desired set of correlations. In this work we consider a more general scenario in which one performs sequences of local measurements on an entangled state of arbitrary dimension. We show that a simple adaptation of the original NPA hierarchy provides an analogous hierarchy for this scenario, with comparable resource requirements and convergence properties. We then use the method to tackle some problems in device-independent quantum information. First, we show how one can robustly certify over 2.3 bits of device-independent local randomness from a two-quibt state using a sequence of measurements, going beyond the theoretical maximum of two bits that can be achieved with non-sequential measurements. Finally, we show tight upper bounds to two previously defined tasks in sequential Bell test scenarios. |
url |
https://quantum-journal.org/papers/q-2020-10-19-344/pdf/ |
work_keys_str_mv |
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