Ensemble-Based Quantum Token Protocol Benchmarked on IBM Quantum Processors

Fuente: arXiv
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Autores principales: Tsunaki, Lucas, Bauerhenne, Bernd, Xibraku, Malwin, Garcia, Martin E., Singer, Kilian, Naydenov, Boris
Formato: Preprint
Publicado: 2024
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author Tsunaki, Lucas
Bauerhenne, Bernd
Xibraku, Malwin
Garcia, Martin E.
Singer, Kilian
Naydenov, Boris
author_facet Tsunaki, Lucas
Bauerhenne, Bernd
Xibraku, Malwin
Garcia, Martin E.
Singer, Kilian
Naydenov, Boris
contents Quantum tokens envision to store unclonable quantum states in a physical device, with the goal of being used for personal authentication protocols, as required by banks. Still, the experimental realization of such devices faces many technical challenges, which can be partially mitigated using ensembles instead of single qubits. In this work, we thus propose an ensemble-based quantum token protocol, describing it through a simple yet general model based on a quantum mechanical observable. The protocol is benchmarked on five IBM quantum processors and a general hacker attack scenario is analyzed, in which the attacker attempts to read the bank token and forge a fake one, based on the information gained from this measurement. We experimentally demonstrate that the probability that the bank erroneously accepts a forged coin composed of multiple tokens can reach values below $10^{-22}$, while the probability that the bank accepts its own coin is above 0.999. The overall security of the protocol is therefore demonstrated within a hardware-agnostic framework, confirming the practical viability of the protocol in arbitrary quantum systems and thus paving the way for future applications with different ensembles of qubits, such as color center defects in solids.
format Preprint
id arxiv_https___arxiv_org_abs_2412_08530
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Ensemble-Based Quantum Token Protocol Benchmarked on IBM Quantum Processors
Tsunaki, Lucas
Bauerhenne, Bernd
Xibraku, Malwin
Garcia, Martin E.
Singer, Kilian
Naydenov, Boris
Quantum Physics
Quantum tokens envision to store unclonable quantum states in a physical device, with the goal of being used for personal authentication protocols, as required by banks. Still, the experimental realization of such devices faces many technical challenges, which can be partially mitigated using ensembles instead of single qubits. In this work, we thus propose an ensemble-based quantum token protocol, describing it through a simple yet general model based on a quantum mechanical observable. The protocol is benchmarked on five IBM quantum processors and a general hacker attack scenario is analyzed, in which the attacker attempts to read the bank token and forge a fake one, based on the information gained from this measurement. We experimentally demonstrate that the probability that the bank erroneously accepts a forged coin composed of multiple tokens can reach values below $10^{-22}$, while the probability that the bank accepts its own coin is above 0.999. The overall security of the protocol is therefore demonstrated within a hardware-agnostic framework, confirming the practical viability of the protocol in arbitrary quantum systems and thus paving the way for future applications with different ensembles of qubits, such as color center defects in solids.
title Ensemble-Based Quantum Token Protocol Benchmarked on IBM Quantum Processors
topic Quantum Physics
url https://arxiv.org/abs/2412.08530