Entanglement in the energy-constrained prepare-and-measure scenario: applications to randomness certification and channel discrimination

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Main Authors: D'Avino, Raffaele, Senno, Gabriel, Alimuddin, Mir, Acín, Antonio
Format: Preprint
Published: 2025
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author D'Avino, Raffaele
Senno, Gabriel
Alimuddin, Mir
Acín, Antonio
author_facet D'Avino, Raffaele
Senno, Gabriel
Alimuddin, Mir
Acín, Antonio
contents Quantum information tasks are often analyzed under varying trust assumptions about the devices involved. The semi-device-independent (SDI) framework offers a balance between needed assumptions and experimental feasibility. In this work, we study the energy-constrained SDI scenario, where the only assumption in a prepare-and-measure setup is an upper bound on the energy of the prepared quantum states. In contrast to previous studies that restricted the preparation and measurement devices to be classically correlated, we show that allowing entanglement strictly enlarges the set of achievable correlations. We identify two operational consequences of this result. The first concerns randomness certification, where we show that allowing the adversary to employ entangled strategies may significantly reduce the amount of certifiable randomness. This includes situations where the amount of randomness drops to zero in the presence of entanglement, while it remains positive when entanglement is excluded. Second, for the task of distinguishing an arbitrary quantum channel from the identity, we show that the known dimension-independent bound on the advantage conferred by entanglement is violated under an energy constraint.
format Preprint
id arxiv_https___arxiv_org_abs_2510_27559
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Entanglement in the energy-constrained prepare-and-measure scenario: applications to randomness certification and channel discrimination
D'Avino, Raffaele
Senno, Gabriel
Alimuddin, Mir
Acín, Antonio
Quantum Physics
Quantum information tasks are often analyzed under varying trust assumptions about the devices involved. The semi-device-independent (SDI) framework offers a balance between needed assumptions and experimental feasibility. In this work, we study the energy-constrained SDI scenario, where the only assumption in a prepare-and-measure setup is an upper bound on the energy of the prepared quantum states. In contrast to previous studies that restricted the preparation and measurement devices to be classically correlated, we show that allowing entanglement strictly enlarges the set of achievable correlations. We identify two operational consequences of this result. The first concerns randomness certification, where we show that allowing the adversary to employ entangled strategies may significantly reduce the amount of certifiable randomness. This includes situations where the amount of randomness drops to zero in the presence of entanglement, while it remains positive when entanglement is excluded. Second, for the task of distinguishing an arbitrary quantum channel from the identity, we show that the known dimension-independent bound on the advantage conferred by entanglement is violated under an energy constraint.
title Entanglement in the energy-constrained prepare-and-measure scenario: applications to randomness certification and channel discrimination
topic Quantum Physics
url https://arxiv.org/abs/2510.27559