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A probabilistic model of quantum states for classical data security

Authors
Hafiz, Muhammad WaseemHwang, Seong Oun
Issue Date
Oct-2023
Publisher
HIGHER EDUCATION PRESS
Keywords
information security; quantum-classical cryptography; quantum information processing; quantum spin states; spin-1/2 algebra; user authentication
Citation
FRONTIERS OF PHYSICS, v.18, no.5
Journal Title
FRONTIERS OF PHYSICS
Volume
18
Number
5
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/88297
DOI
10.1007/s11467-023-1293-3
ISSN
2095-0462
2095-0470
Abstract
The phenomenal progress of quantum information theory over the last decade has substantially broadened the potential to simulate the superposition of states for exponential speedup of quantum algorithms over their classical peers. Therefore, the conventional and modern cryptographic standards (encryption and authentication) are susceptible to Shor's and Grover's algorithms on quantum computers. The significant improvement in technology permits consummate levels of data protection by encoding classical data into small quantum states that can only be utilized once by leveraging the capabilities of quantum-assisted classical computations. Considering the frequent data breaches and increasingly stringent privacy legislation, we introduce a hybrid quantum-classical model to transform classical data into unclonable states, and we experimentally demonstrate perfect state transfer to exemplify the classical data. To alleviate implementation complexity, we propose an arbitrary quantum signature scheme that does not require the establishment of entangled states to authenticate users in order to transmit and receive arbitrated states to retrieve classical data. The consequences of the probabilistic model indicate that the quantum-assisted classical framework substantially enhances the performance and security of digital data, and paves the way toward real-world applications.
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Hafiz, Muhammad Waseem
College of IT Convergence (컴퓨터공학부(컴퓨터공학전공))
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