most citedAll graph state verification protocols are composably secure

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quant-ph2025

Exclusive Control of Quantum Memory Erasure

Mir Alimuddin, Nathan Shettell, Raja Yehia +2

Erasing memory is a fundamental operational task in quantum information processing, governed by Landauer's principle, which links information loss to thermodynamic work. We introdu…

quant-ph2025

Quantification of the energy consumption of entanglement distribution

Karol Horodecki, Marek Winczewski, Leonard Sikorski +3

Inspired by environmental sciences, we develop a framework to quantify the energy needed to generate quantum entanglement via noisy quantum channels, focusing on the hardware-indep…

quant-ph2025

Quantum Key Distribution over Complex Networks

Luca Mariani, Raja Yehia, Carlos Pascual-García +4

There exist several initiatives worldwide to deploy quantum key distribution (QKD) over existing fibre networks and achieve quantum-safe security at large scales. To understand the…

quant-ph2024

Energetic Analysis of Emerging Quantum Communication Protocols

Raja Yehia, Yoann Piétri, Carlos Pascual-García +2

With the rapid development and early industrialization of quantum technologies, it is of great interest to analyze their overall energy consumption before planning for their wide-s…

quant-ph20242 cited

All graph state verification protocols are composably secure

Léo Colisson, Damian Markham, Raja Yehia

Graph state verification protocols allow multiple parties to share a graph state while checking that the state is honestly prepared, even in the presence of malicious parties. Sinc…