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Causal and Non-Causal Revivals of Information: A New Regime of Non-Markovianity in Quantum Stochastic Processes

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arxiv 2405.05326 v3 pith:PQHZSRIU submitted 2024-05-08 quant-ph

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keywords revivalsinformationnon-causalgenuinenon-markovianityprocessesquantumbackflow
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The study of information revivals, witnessing the violation of certain data-processing inequalities, has provided an important paradigm in the study of non-Markovian quantum stochastic processes. Although often used interchangeably, we argue here that the notions of ``revivals'' and ``backflows'', i.e., flows of information from the environment back into the system, are distinct: an information revival can occur without any backflow ever taking place. In this paper, we examine in detail the phenomenon of non-causal revivals and relate them to the theory of short Markov chains and squashed non-Markovianity. We also provide an operational condition, in terms of system-only degrees of freedom, to witness the presence of genuine backflow that cannot be explained by non-causal revivals. As a byproduct, we demonstrate that focusing on processes with genuine backflows, while excluding those with only non-causal revivals, resolves the issue of non-convexity of Markovianity, thus enabling the construction of a convex resource theory of genuine quantum non-Markovianity.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Disorder-averaged Qudit Dynamics

    quant-ph 2024-12 conditional novelty 6.0 of 10

    Exact disorder-averaged dynamical maps are derived for periodic Hamiltonians, with decoherence functions set by the disorder distribution and the Hamiltonian's periodicity class.

  2. Superactivation of memory effects in a classical Markov environment

    quant-ph 2024-11 conditional novelty 6.0 of 10

    Superactivation of backflow of information is realized in a collision model with a classical Markov-chain environment, and the resource needed is quantumness of the Helstrom ensemble rather than entanglement.

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