Simple and maximally robust processes with no classical common-cause or direct-cause explanation

Guided by the intuition of coherent superposition of causal relations, recent works presented quantum processes without classical common-cause and direct-cause explanation, that is, processes which cannot be written as probabilistic mixtures of quantum common-cause and quantum direct-cause relations...

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Main Authors: Marcello Nery, Marco Túlio Quintino, Philippe Allard Guérin, Thiago O. Maciel, Reinaldo O. Vianna
Format: Article
Language:English
Published: Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften 2021-09-01
Series:Quantum
Online Access:https://quantum-journal.org/papers/q-2021-09-09-538/pdf/
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spelling doaj-b16ef6335de94f1988dcf393ae98322b2021-09-09T16:43:02ZengVerein zur Förderung des Open Access Publizierens in den QuantenwissenschaftenQuantum2521-327X2021-09-01553810.22331/q-2021-09-09-53810.22331/q-2021-09-09-538Simple and maximally robust processes with no classical common-cause or direct-cause explanationMarcello NeryMarco Túlio QuintinoPhilippe Allard GuérinThiago O. MacielReinaldo O. ViannaGuided by the intuition of coherent superposition of causal relations, recent works presented quantum processes without classical common-cause and direct-cause explanation, that is, processes which cannot be written as probabilistic mixtures of quantum common-cause and quantum direct-cause relations (CCDC). In this work, we analyze the minimum requirements for a quantum process to fail to admit a CCDC explanation and present "simple" processes, which we prove to be the most robust ones against general noise. These simple processes can be realized by preparing a maximally entangled state and applying the identity quantum channel, thus not requiring an explicit coherent mixture of common-cause and direct-cause, exploiting the possibility of a process to have both relations simultaneously. We then prove that, although all bipartite direct-cause processes are bipartite separable operators, there exist bipartite separable processes which are not direct-cause. This shows that the problem of deciding weather a process is direct-cause process $\textit{is not}$ equivalent to entanglement certification and points out the limitations of entanglement methods to detect non-classical CCDC processes. We also present a semi-definite programming hierarchy that can detect and quantify the non-classical CCDC robustnesses of every non-classical CCDC process. Among other results, our numerical methods allow us to show that the simple processes presented here are likely to be also the maximally robust against white noise. Finally, we explore the equivalence between bipartite direct-cause processes and bipartite processes without quantum memory, to present a separable process which cannot be realized as a process without quantum memory.https://quantum-journal.org/papers/q-2021-09-09-538/pdf/
collection DOAJ
language English
format Article
sources DOAJ
author Marcello Nery
Marco Túlio Quintino
Philippe Allard Guérin
Thiago O. Maciel
Reinaldo O. Vianna
spellingShingle Marcello Nery
Marco Túlio Quintino
Philippe Allard Guérin
Thiago O. Maciel
Reinaldo O. Vianna
Simple and maximally robust processes with no classical common-cause or direct-cause explanation
Quantum
author_facet Marcello Nery
Marco Túlio Quintino
Philippe Allard Guérin
Thiago O. Maciel
Reinaldo O. Vianna
author_sort Marcello Nery
title Simple and maximally robust processes with no classical common-cause or direct-cause explanation
title_short Simple and maximally robust processes with no classical common-cause or direct-cause explanation
title_full Simple and maximally robust processes with no classical common-cause or direct-cause explanation
title_fullStr Simple and maximally robust processes with no classical common-cause or direct-cause explanation
title_full_unstemmed Simple and maximally robust processes with no classical common-cause or direct-cause explanation
title_sort simple and maximally robust processes with no classical common-cause or direct-cause explanation
publisher Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften
series Quantum
issn 2521-327X
publishDate 2021-09-01
description Guided by the intuition of coherent superposition of causal relations, recent works presented quantum processes without classical common-cause and direct-cause explanation, that is, processes which cannot be written as probabilistic mixtures of quantum common-cause and quantum direct-cause relations (CCDC). In this work, we analyze the minimum requirements for a quantum process to fail to admit a CCDC explanation and present "simple" processes, which we prove to be the most robust ones against general noise. These simple processes can be realized by preparing a maximally entangled state and applying the identity quantum channel, thus not requiring an explicit coherent mixture of common-cause and direct-cause, exploiting the possibility of a process to have both relations simultaneously. We then prove that, although all bipartite direct-cause processes are bipartite separable operators, there exist bipartite separable processes which are not direct-cause. This shows that the problem of deciding weather a process is direct-cause process $\textit{is not}$ equivalent to entanglement certification and points out the limitations of entanglement methods to detect non-classical CCDC processes. We also present a semi-definite programming hierarchy that can detect and quantify the non-classical CCDC robustnesses of every non-classical CCDC process. Among other results, our numerical methods allow us to show that the simple processes presented here are likely to be also the maximally robust against white noise. Finally, we explore the equivalence between bipartite direct-cause processes and bipartite processes without quantum memory, to present a separable process which cannot be realized as a process without quantum memory.
url https://quantum-journal.org/papers/q-2021-09-09-538/pdf/
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